5,382 877 79MB
Pages 1244 Page size 599 x 802 pts Year 2008
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& second edition
John w. Coburn St. Louis Community College at Florissant Valley
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ALGEBRA AND TRIGONOMETRY, SECOND EDITION Published by McGraw-Hill, a business unit of The McGraw-Hill Companies, Inc., 1221 Avenue of the Americas, New York, NY 10020. Copyright © 2010 by The McGraw-Hill Companies, Inc. All rights reserved. No part of this publication may be reproduced or distributed in any form or by any means, or stored in a database or retrieval system, without the prior written consent of The McGraw-Hill Companies, Inc., including, but not limited to, in any network or other electronic storage or transmission, or broadcast for distance learning. Some ancillaries, including electronic and print components, may not be available to customers outside the United States. This book is printed on acid-free paper. 1 2 3 4 5 6 7 8 9 0 DOW/DOW 0 9 ISBN 978–0–07–351952–4 MHID 0–07–351952–9 ISBN 978–0–07–723501–7 (Annotated Instructor’s Edition) MHID 0–07–723501–0 Editorial Director: Stewart K. Mattson Sponsoring Editor: Dawn R. Bercier Senior Developmental Editor: Michelle L. Flomenhoft Developmental Editor: Katie White Marketing Manager: John Osgood Senior Project Manager: Vicki Krug Senior Production Supervisor: Sherry L. Kane Senior Media Project Manager: Sandra M. Schnee
Designer: Laurie B. Janssen Cover Designer: Christopher Reese (USE) Cover Image: ©Jeff Hunter/Gettyimages Senior Photo Research Coordinator: John C. Leland Supplement Producer: Mary Jane Lampe Compositor: Aptara®, Inc. Typeface: 10.5/12 Times Roman Printer: R. R. Donnelley Willard, OH
Chapter R Opener: © Royalty-Free/CORBIS; pg. 12: © Ryan McVay/Getty Images/RF; pg. 19: © Photodisc/Getty Images/RF; pg. 34: © Royalty-Free/CORBIS; pg. 67: © Glen Allison/Getty Images/RF. Chapter 1 Opener: © Karl Weatherly/Getty Images/RF; pg. 84: NASA/RF; pg. 102: PhotoLind/Getty Images/RF; pg. 140 top: © Brand X Pictures/PunchStock/RF; pg. 140 bottom: Photodisc Collection/Getty Images/RF. Chapter 2 Opener: © 2007 Getty Images, Inc./RF; pg. 207: Siede Preis/Getty Images/RF; pg. 208: The McGraw-Hill Companies, Inc./Ken Cavanagh Photographer; pg. 223: Steve Cole/Getty Images/RF; pg. 240: Alan and Sandy Carey/Getty Images/RF; pg. 251: Courtesy John Coburn; pg. 269 top: Patrick Clark/Getty Images/RF; pg. 269 bottom: © Digital Vision/PunchStock/ RF. Modeling With Technology I Pg. 290: © Royalty-Free/CORBIS Chapter 3 Opener: © Royalty-Free/CORBIS; pg. 311: © Adalberto Rios/Sexto Sol/Getty Images/RF; pg. 314: © Royalty-Free/CORBIS; pg. 328: © Royalty-Free/CORBIS; pg. 361: © Royalty-Free/ CORBIS; pg. 387: © Royalty-Free/CORBIS; pg. 393: © Royalty-Free/CORBIS. Chapter 4 Opener: © Comstock Images/RF; pg. 434 left: © Geostock/Getty Images/RF: pg. 434 right: © Lawrence M. Sawyer/Getty Images/RF; pg. 443: Photography by G.K. Gilbert, courtesy U.S. Geological Survery; pg. 444: © Lars Niki/RF; pg. 448: © Medioimages/Superstock/RF; pg. 465: StockTrek/Getty Images/ RF; pg. 485: Courtesy Simon Thomas. Modeling With Technology II Pg. 493: Courtesy Dawn Bercier. Chapter 5 Opener: Digital Vision/RF; pg. 512: © Jules Frazier/Getty Images/RF; pg. 516: © Karl Weatherly/Getty Images/RF; pg. 530: © Royalty-Free/CORBIS; pg. 571: © Royalty-Free/CORBIS; pg. 607: © Royalty-Free/CORBIS. Chapter 6 Opener: © Digital Vision/RF; pg. 689: © John Wang/ Getty Images/RF. Modeling With Technology III Pg. 704: Steve Cole/Getty Images/RF Chapter 7 Opener: © Royalty-Free/CORBIS. Chapter 8 Opener: U.S. Department of Energy; pg. 804: © The McGraw-Hill Companies, Inc./Jill Braaten, photographer; pg. 804: © Royalty-Free/CORBIS; pg. 805: © Royalty –Free/CORBIS; pg. 816: © Creatas/Puncstock/RF; pg. 825 © The McGraw-Hill Companies, Inc./Jill Braaten, photographer. Chapter 9 Opener: © C. Sherburne/PhotoLink/Getty Images/RF. Modeling With Technology IV Pg. 911: © Steve Cole/Getty Images/RF Chapter 10 Opener: © Royalty-Free/CORBIS; pg. 938: © The McGraw-Hill Companies, Inc.; pg. 948: © Brand-X Pictures/PunchStock/RF; pg. 949: © Digital Vision/Getty Images/RF; pg. 953: © H. Wiesenhofer/PhotoLink/Getty Images/RF; pg. 963 left: © Jim Wehtje/Getty Images/RF; pg. 963 top right: © Edmond Van Hoorick/Getty Images/RF; pg. 963 bottom right: © Creatas/PuncStock/RF; pg. 1005: © PhotoLink/Getty Images/RF. Chapter 11 Opener: © Digital Vision/RF; pg. 1033: © Royalty-Free/CORBIS; pg. 1042: © Andersen Ross/Getty Images/RF. Library of Congress Cataloging-in-Publication Data Coburn, John W. College algebra / John Coburn. — 2nd ed. p. cm. Includes index. ISBN 978–0–07–351952–4 — ISBN 0–07–351952–9 (hard copy : alk. paper) 1. Algebras--Textbooks. 2. Trigonometry—Textbooks. I. Title. QA154.3.C593 2010 512’.13–dc22 2008050849 www.mhhe.com
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Brief Contents Preface vi Index of Applications
R CHAPTER 1 CHAPTER 2 CHAPTER 3 CHAPTER 4 CHAPTER 5 CHAPTER 6 CHAPTER 7 CHAPTER 8 CHAPTER 9 C H A P T E R 10 C H A P T E R 11 CHAPTER
xxxv
A Review of Basic Concepts and Skills 1 Equations and Inequalities
73
Relations, Functions, and Graphs
151
Polynomial and Rational Functions 293 Exponential and Logarithmic Functions 411 An Introduction to Trigonometric Functions 503 Trigonometric Identities, Inverses, and Equations 615 Applications of Trigonometry
711
Systems of Equations and Inequalities
793
Matrices and Matrix Applications 847 Analytic Geometry and the Conic Sections 919 Additional Topics in Algebra 1017
Appendix I
More on Synthetic Division
A-1
Appendix II
More on Matrices
Appendix III
Deriving the Equation of a Conic
Appendix IV
Selected Proofs
Appendix V
Families of Polar Curves A-13
A-3 A-5
A-7
Student Answer Appendix (SE only)
SA-1
Instructor Answer Appendix (AIE only) Index
IA-1
I-1
Additional Topics Online (Visit www.mhhe.com/coburn) R.7 R.8 5.0 7.7 7.8 11.8 11.9
Geometry Review with Unit Conversions Expressions, Tables and Graphing Calculators An Introduction to Cycles and Periodic Functions Complex Numbers in Exponential Form Trigonometry, Complex Numbers and Cubic Equations Conditional Probability and Expected Value Probability and the Normal Curve with Applications
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About the Author Background
John Coburn grew up in the Hawaiian Islands, the seventh of sixteen children. John’s mother and father were both teachers. John’s mother taught English and his father, as fate would have it, held advanced degrees in physics, chemistry, and mathematics. Whereas John’s father was well known, well respected, and a talented mathematician, John had to work very hard to see the connections so necessary for success in mathematics. In many ways, his writing is born of this experience.
Education
In 1979 John received a bachelor’s degree in education from the University of Hawaii. After working in the business world for a number of years, John returned to his first love by accepting a teaching position in high school mathematics and in 1987 was recognized as Teacher of the Year. Soon afterward John decided to seek a master’s degree, which he received two years later from the University of Oklahoma.
Teaching Experience
John is now a full professor at the Florissant Valley campus of St. Louis Community College where he has taught mathematics for the last eighteen years. During h time there he has received numerous nominations as an his o outstanding teacher by the local chapter of Phi Theta Kappa, a was recognized as Post-Secondary Teacher of the Year and i 2004 by Mathematics Educators of Greater St. Louis in ( (MEGSL). John is a member of the following organizations: N National Council of Teachers of Mathematics (NCTM), M Missouri Council of Teachers of Mathematics (MCTM), M Mathematics Educators of Greater Saint Louis (MEGSL), A American Mathematical Association of two Year Colleges ( (AMATYC), Missouri Mathematical Association of two Y Colleges (MoMATYC), Missouri Community College Year A Association (MCCA), and Mathematics Association of A America (MAA).
Personal Interests
Some of John’s other interests include body surfing, snorkeling, and beach combing whenever he gets the chance. In addition, John’s loves include his family, music, athletics, games, and all things beautiful. John hopes that this love of life comes through in the writing, and serves to make the learning experience an interesting and engaging one for all students.
Dedication To my wife and best friend Helen, whose love, support, and willingness to sacrifice never faltered.
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About the Cover Coral reefs support an extraordinary biodiversity as they C aare home to over 4000 species of tropical or reef fish. In addition, coral reefs are iimmensely beneficial to humans; buffering coastal regions from strong waves and sstorms, providing millions of people with food and jobs, and prompting advances iin modern medicine. Similar to a reef, a college algebra and trigonometry course is unique because of iits diverse population of students. Nearly every major is represented in this course, ffeaturing students with a wide range of backgrounds and skill sets. Just like the vvariety of the fish in the sea rely on the coral reefs to survive, the assortment of sstudents in college algebra and trigonometry rely on succeeding in this course in oorder to further pursue their degree, as well as their career goals.
From the Author
directio ns. This is flue nce of needs, idea s, desires, and con hty mig a of ult res the is t ion. This tex the most dive rse in all of edu cat of one is e ienc aud d nde inte the easily und ers tan dable, as pre par atio n, bac kgr oun ds, var ying deg ree s of of ge ran e wid a h wit us to e Ou r stu den ts com ses incl ude those to exc item ent. In add itio n, our clas thy apa m fro y var t tha ls leve t and inte res fut ure eng inee rs and uiremen t, as wel l as our cou ntr y’s req ion cat edu l era gen a y onl wou ld nee ding nee ds of so dive rse a pop ulat ion the ting mee is ge llen cha st ate scie ntis ts. To say our gre cam e to min d, rsit y, the ima ge of a cor al ree f dive this on ing lect ref In t. men be an und ers tate pop ulat ion, wit h ana logy. We hav e a hug ely dive rse the of th eng str the by uck str and I was on the ree f for the ir wit h all the inh abitant s dep end ing ce, pla ting mee n mo com a as f the ree n. experiences pur pose, nou rishmen t, and directio of the most daunting and cha llenging one n bee has rse cou this for Wr iting a text that most text s on g exp erience left a nagging sense chin tea my an, beg I ore bef g Lon in my life. addition, they app ear ed t wit h so diverse an audience. In nec con to ity abil the ed lack t rke nections, the ma terse a dev elopmen t to ma ke con too ts, cep con d buil to ork mew to off er too sca nt a fra foster a love of to dev elop long-ter m retention or s set e rcis exe ir the in t por sup and insu fficient , cur ious interest, s seemed to lack a sense of rea lism tion lica app the lar, ticu par In . mathematics everyday exp erience. task of and/or connections to a studen t’s te a bet ter text, I set about the wri to ire des ng stro a and d min Wit h all of this in re sup por tive aging tool for studen ts, and a mo eng re mo a e om bec ld wou ed hop creating what I erie nce, and an ear ly rsit y of my own edu cat iona l exp dive the on g win Dra s. tor ruc too l for inst con trib ute d to the tex t’s s, and per spectiv es, I beli eve has view s, ure cult nt ere diff to re diverse exp osu re and bet ter connections wit h our mo to , end the in e hop I and le, unique and engaging sty ers, foc us peo ple, incl uding ma nuscrip t rev iew 400 n tha re mo m fro ck dba fee aud ienc e. Hav ing con nec tion s in the inva luable to help ing me hon e the was rs, uto trib con and ts, pan tici res t gro up par it the re was also a desire to inte adm I , nce erie exp this of wth love wit h boo k. As a coll ate ral outgro aga in and aga in, why we fell in us ind rem to s— tor ruc inst the and eng age our selv es, —John Cob urn ma thema tics in the firs t pla ce. v
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Making Connections . . . College algebra and trigonometry tends to be a challenging course for many students. They don’t see the connections that college algebra and trigonometry has to their life or why it is so critical that they take and pass this course for both technical and nontechnical careers alike. Others may enter into this course underprepared or improperly placed and with very little motivation. Instructors are faced with several challenges as well. They are given the task of improving pass rates and student retention while energizing a classroom full of students comprised of nearly every major. Furthermore, it can be difficult to distinguish between students who are likely to succeed and students who may struggle until after the first test is given. The goal of the Coburn series is to provide both students and instructors with tools to address these challenges, as well as the diversity of the students taking this course, so that you can experience greater success in college algebra and trigonometry. For instance, the comprehensive exercise sets have a range of difficulty that provides very strong support for weaker students, while advanced students are challenged to reach even further. The rest of this preface further explains the tools that John Coburn and McGraw-Hill have developed and how they can be used to connect students to college algebra and trigonometry and connect instructors to their students.
The Coburn Precalculus Series provides you with strong tools to achieve better outcomes in your College Algebra and Trigonometry course as follows:
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▶
Better Student Preparedness
▶
Increased Student Engagement
▶
Solid Skill Development
▶
Strong Connections
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▶
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Better Student Preparedness
No two students have the same strengths and weaknesses in mathematics. Typically students will enter any math course with different preparedness levels. For most students who have trouble retaining or recalling concepts learned in past courses, basic review is simply not enough to sustain them successfully throughout the course. Moreover, instructors whose main focus is to prepare students for the next course do not have adequate time in or out of class to individually help each student with review material. ALEKS Prep uniquely assesses each student to determine their individual strengths and weaknesses and informs the student of their capabilities using a personalized pie chart. From there, students begin learning through ALEKS via a personalized learning path uniquely designed for each student. ALEKS Prep interacts with students like a private tutor and provides a safe learning environment to remediate their individual knowledge gaps of the course pre-requisite material outside of class. ALEKS Prep is the only learning tool that empowers students by giving them an opportunity to remediate individual knowledge gaps and improve their chances for success. ALEKS Prep is especially effective when used in conjunction with ALEKS Placement and ALEKS 3.0 course-based software. ▶
Increased Student Engagement
What makes John Coburn’s applications unique is that he is constantly thinking mathematically. John’s applications are spawned during a trip to Chicago, a phone call with his brother or sister, or even while watching the evening news for the latest headlines. John literally takes notes on things that he sees in everyday life and connects these situations to math. This truly makes for relevant applications that are born from real-life experiences as opposed to applications that can seem fictitious or contrived. ▶
Solid Skill Development
The Coburn series intentionally relates the examples to the exercise sets so there is a strong connection between what students are learning while working through the examples in each section and the homework exercises that they complete. In turn, students who attempt to work the exercises first can surely rely on the examples to offer support as needed. Because of how well the examples and exercises are connected, key concepts are easily understood and students have plenty of help when using the book outside of class. There are also an abundance of exercise types to choose from to ensure that homework challenges a wide variety of skills. Furthermore, John reconnects students to earlier chapter material with Mid-Chapter Checks; students have praised these exercises for helping them understand what key concepts require additional practice. ▶
Strong Connections
John Coburn’s experience in the classroom and his strong connections to how students comprehend the material are evident in his writing style. This is demonstrated by the way he provides a tight weave from topic to topic and fosters an environment that doesn’t just focus on procedures but illustrates the big picture, which is something that so often is sacrificed in this course. Moreover, he deploys a clear and supportive writing style, providing the students with a tool they can depend on when the teacher is not available, when they miss a day of class, or simply when working on their own.
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Better Student Preparedness . . . Experience Student Success! ALEKS ALEKS ALEK S is a unique uni niqu q e online math tool that uses adaptive questioning and artificial intelligence to correctly place, prepare, and remediate students . . . all in one product! Institutional case studies have shown that ALEKS has improved pass rates by over 20% versus traditional online homework and by over 30% compared to using a text alone. By offering each student an individualized learning path, ALEKS directs students to work on the math topics that they are ready to learn. Also, to help students keep pace in their course, instructors can correlate ALEKS to their textbook or syllabus in seconds. To learn more about how ALEKS can be used to boost student performance, please visit www.aleks.com/highered/math or contact your McGraw-Hill representative.
Easy Graphing Utility! ALEKS Pie
Students can answer graphing problems with ease!
Each student is given their own individualized learning path.
Course Calendar Instructors can schedule assignments and reminders for students.
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. . . Through New ALEKS Instructor Module Enhanced Functionality and Streamlined Interface Help to Save Instructor Time The new ALEKS Instructor Module features enhanced functionality and streamlined interface based on research with ALEKS instructors and homework management instructors. Paired with powerful assignment driven features, textbook integration, and extensive content flexibility, the new ALEKS Instructor Module simplifies administrative tasks and makes ALEKS more powerful than ever.
New Gradebook! Instructors can seamlessly track student scores on automatically graded assignments. They can also easily adjust the weighting and grading scale of each assignment.
Gradebook view for all students Gradebook view for an individual student
Track Student Progress Through Detailed Reporting Instructors can track student progress through automated reports and robust reporting features.
Automatically Graded Assignments Instructors can easily assign homework, quizzes, tests, and assessments to all or select students. Deadline extensions can also be created for select students.
Learn more about ALEKS by visiting
www.aleks.com/highered/math / / or contact your McGraw-Hill representative. Select topics for each assignment
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Increased Student Engagement . . . Through Meaningful Applications weeenn mat hematics on bettwe tion ecti the con nec uires that student s exp erie nce th req ful ning mea s atic hem mat mit men t to Ma king also the result of a pow erf ul com is text This in. live y the ld wor and its impact on the and with car efully monitor ed hav ing close ties to the exa mples, lity, qua est high the of s tion lica provide app levels of diff iculty. ers came from a cur ious, my own diverse life experiences, oth of n bor e wer es mpl exa e thes of , and see the Ma ny e upon the every day events of life seiz to one ws allo t tha y foll ry lucid, and even visiona not ebo ok was use d a the bac kgr oun d. My eve r-p res ent in s atic hem mat ful ning mea or t is the genesis sign ific ant that sudden bur st of inspiration tha or n, atio erv obs ual cas t tha ture thousa nd times to cap libr ary of ref erence and sup por ted at home by a substan tial e wer se The s. tion lica app ding mod ern ma rve l of for out stan cur ren t eve nts, and of cou rse our and ory hist h bot ard tow eye res ear ch boo ks, an t, ref lect ion, and resear ch, (som etim es long) per iod of tho ugh a er Aft et. ern Int he l—t too ch student s while a resear e so that it wou ld resona te wit h rcis exe the of ing ord rew a and followed by a wor ding —JC mea ning ful app lication was bor n. filling the need, a sign ificant and
2
▶ Chapter Openers highlight Chapter Connections, an interesting application
exercise from the chapter chapter, and provide a list of other real real-world world connections to give context for students who wonder how math relates to them.
“I especially like the depth and variety of applications in this textbook.
Other College Algebra texts the department considered did not share this strength. In particular, there is a clear effort on the part of the author to include realistic examples showing how such math can be utilized in the real world. —George Alexander, Madison Area Technical College
”
▶ Examples throughout the text feature word problems,
providing students with a starting point for how to solve these types of problems in their exercise sets.
“ One of this text’s strongest features is the wide range of applications exercises. As an instructor, I can choose which exercises fit my teaching style as well as the student interest level.
CHAPTER CONNECTIONS
Relations, Functions, and Graphs
Viewing a function in terms of an equation, a table of values, and the related graph, often brings a clearer understanding of the relationships involved. For example, the power generated by a wind turbine is often modeled 8v 3 by the function P1v2 , where P is 125
2.1
Rectangular Coordinates; Graphing Circles and Other Relations 152
2.2
Graphs of Linear Equations 165
the power in watts and v is the wind velocity in miles per hour. While the formula enables us to predict the power generated for a given wind speed, the graph offers a visual representation of this relationship, where we note a rapid growth in power output as the wind speed increases. This application appears as Exercise 107 in Section 2.6.
2.3
Linear Graphs and Rates of Change 178
Check out these other real-world connections:
2.4
Functions, Function Notation, and the Graph of a Function 190
2.5
Analyzing the Graph of a Function 206
2.6
The Toolbox Functions and Transformations 225
2.7
Piecewise-Defined Functions 240
2.8
The Algebra and Composition of Functions 254
CHAPTER OUTLINE
Earthquake Area (Section 2.1, Exercise 84) Height of an Arrow (Section 2.5, Exercise 61) Garbage Collected per Number of Garbage Trucks (Section 2.2, Exercise 42) Number of People Connected to the Internet (Section 2.3, Exercise 109)
”
151
—Stephen Toner, Victor Valley College
▶ Application Exercises at the end of each section are the hallmark of
the Coburn series. Never contrived, always creative, and born out of the author’s life and experiences, each application tells a story and appeals to a variety of teaching styles, disciplines, backgrounds, and interests.
“ [The application problems] answered the question, ‘When are we ever going to use this?’ ”
—Student class tester at Metropolitan Community College–Longview
▶ M Math th iin A Action ti A Applets, l t llocated d online, li enable bl students d to work k
collaboratively as they manipulate applets that apply mathematical concepts in real-world contexts. x
EXAMPLE 10
Determining the Domain and Range from the Context Paul’s 1993 Voyager has a 20-gal tank and gets 18 mpg. The number of miles he can drive (his range) depends on how much gas is in the tank. As a function we have M1g2 18g, where M(g) represents the total distance in miles and g represents the gallons of gas in the tank. Find the domain and range.
Solution C. You’ve just learned how to use function notation and evaluate functions
Begin evaluating at x 0, since the tank cannot hold less than zero gallons. On a full tank the maximum range of the van is 20 # 18 360 miles or M1g2 3 0, 360 4 . Because of the tank’s size, the domain is g 3 0, 20 4 . Now try Exercises 94 through 101
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Through Timely Examples set the sta ge the imp ortance of exa mp les that te rsta ove to t icul diff be ld wou it In mathematics, exa mp le that was too eriences hav e falt ered due to an exp l iona cat edu few a t No . ning for lear this ser ies, a car efu l and ce, or had a dist rac ting result. In diff icul t, a poor fit, out of seq uen direct focus on the that wer e timely and clear, wit h a les mp exa ct sele to de ma was deliberate eff ort d to link pre vious concep ts possible, they wer e fur ther designe e her ryw Eve d. han at l skil or t or kno ws, concep cep ts to com e. As a tra ined edu cat con for k wor und gro the lay to to cur ren t idea s, and sequence of car efully bef ore it’s ever asked, and a timely en oft is n stio que a wer ans to e nex t logical, the best tim ma king each new idea simply the , ard reg this in way long a go constructed exa mples can ws in unnoticed matica l matur ity of a student gro the ma the l, sfu ces suc en Wh . step even anticipated supposed to be that way. —JC incr ements, as though it was just
“ The author does a great job in describing the
▶ Titles have been added to Examples in this edition to
examples and how they are to be written. In the examples, the author shows step by step ways to do just one problem . . . this makes for a better understanding of what is being done.
highlight relevant learning objectives and reinforce the importance of speaking mathematically using vocabulary.
”
▶ Annotations located to the right of the solution sequence
—Michael Gordon, student class tester at Navarro College
help the student recognize which property or procedure is being applied. ▶ “Now Try” boxes immediately following EXAMPLE 3
Examples guide students to specific matched exercises at the end of the section, helping them identify exactly which homework problems coincide with each discussed concept.
Solution
Solving a System Using Substitution 4x y 4 Solve using substitution: e . y x 2 Since y x 2, we can replace y with x 4x 1x 5x
2 in the first rst eequation.
4 first equation 4x 4 substitute x 2 for y simplify 4 2 x result 5 The x-coordinate is 25. To find the y-coordinate, substitute 25 for x into either of the original equations. Substituting in the second equation gives y x 2 second equation 2 2 2 substitute for x 5 5 12 2 10 10 2 12 , 1 5 5 5 5 5 2 12 The solution to the system is 1 5, 5 2. Verify by substituting 52 for x and 12 5 for y into both equations.
▶ Graphical Support Boxes, located after
selected examples, visually reinforce algebraicc concepts with a corresponding graphing g calculator example.
“ I thought the author did a good job of explaining
y 22 2
Now try Exercises 23 through 32
the content by using examples, because there was an example of every kind of problem.
”
—Brittney Pruitt, student class tester at Metropolitan Community College–Longview
GRAPHICAL SUPPORT Graphing the lines from Example 8 as Y1 and Y2 on a graphing calculator, we note the lines do appear to be parallel (they actually must be since they have identical slopes). Using the ZOOM 8:ZInteger feature of the TI-84 Plus we can quickly verify that Y2 indeed contains the point ( 6, 1).
each group of examples. I have not seen this in other texts and it is a really nice addition. I usually tell my students which examples correspond to which exercises, so this will save time and effort on my part.
”
31
47
“ I particularly like the ‘Now Try exercises . . .’ after
—Scott Berthiaume, Edison State College 47
“ The incorporation of technology and graphing calculator 31
usage . . . is excellent. For the faculty that do not use the technology it is easily skipped. It is very detailed for the students or faculty that [do] use technology.
”
—Rita Marie O’Brien, Navarro College
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Solid Skill Development . . . Through Exercises idea s. I con str uct ed in sup por t of eac h sec tion’s ma in es rcis exe of lth wea a d ude incl I hav e wea ker stu den ts, whi le ort to pro vide str ong sup por t for eff an in e, car at gre h wit set h rcis es to eac r. I also design ed the var ious exe the fur n eve ch rea to ts den stu cha llenging adv anc ed exercises allow —t he qua ntity and qua lity of the ors eav end g chin tea ir the in s tor sup por t inst ruc ions, and to illus tra te stu den ts thr oug h diff icul t calc ulat de gui to ies unit ort opp us ero for num ues.—JC imp ortant pro blem-so lving tech niq
MID-CHAPTER CHECK
Mid-Chapter Checks Mid-Chapter Checks provide students with a good stopping place to assess their knowledge before moving on to the second half of the chapter.
1. Compute 1x3 8x2 7x 142 1x 22 using long division and write the result in two ways: (a) dividend 1quotient21divisor2 remainder and dividend remainder 1quotient2 (b) . divisor divisor 2. Given that x 2 is a factor of f 1x2 2x4 x3 8x2 x 6, use the rational zeroes theorem to write f(x) in completely factored form.
End-of-Section Exercise Sets
9. Use the Guidelines for Graphing to draw the graph of q1x2 x3 5x2 2x 8. 10. When fighter pilots train for dogfighting, a “harddeck” is usually established below which no competitive activity can take place. The polynomial graph given shows Maverick’s altitude above and below this hard-deck during a 5-sec interval. a. What is the minimum ibl d
Altitude A (100s of feet)
1.3 EXERCISES
▶ Concepts and Vocabulary exercises to help students
recall and retain important terms.
CONCEPTS AND VOCABULARY Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. When multiplying or dividing by a negative quantity, we the inequality to maintain a true statement. 2. To write an absolute value equation or inequality in simplified form, we the absolute value
▶ Developing Your Skills exercises to provide
practice of relevant concepts just learned with increasing levels of difficulty.
“ Some of our instructors would mainly assign the developing your skills and working with formula problems, however, I would focus on the writing, research and decision making [in] extending the concept. The flexibility is one of the things I like about the Coburn text.
”
—Sherry Meier, Illinois State University
contextual applications of well-known formulas. ▶ Extending the Concept exercises that require
communication of topics, synthesis of related concepts, and the use of higher-order thinking skills. ▶ Maintaining Your Skills exercises that address
skills from previous sections to help students retain previously learning knowledge.
Describe each solution set (assume k answer.
b 6
5. ax
0). Justify your
k
DEVELOPING YOUR SKILLS Solve each absolute value equation. Write the solution in set notation.
7. 2 m
1
8. 3 n
5
9.
3x
10.
2y
7 14 5 3
15
29.
2 3 m
27.
2
6
Solve each absolute value inequality. Write solutions in interval notation.
25. x
3
5v
1 4
4
14
11. 2 4v
5
6.5
10.3
31. 3 p
12. 7 2w
5
6.3
11.2
33. 3b
13.
7p
3
6
5
35. 4
14.
3q
4
3
5
37. `
4
7
26. y
2 7 4
28.
8 6 9
30.
5 6 8
32. 5 q
6
11 3z
4x
5 3
1
9
12 6 7 1 ` 2
7 6
3
2n
3 7 7
3w
2 2
6 6 8
2
7
34. 2c
3
5 6 1
36. 2
7u
38. `
2y
3 4
7
8
4
15 3 ` 6 8 16
WORKING WITH FORMULAS 55. Spring Oscillation |d
▶ W Working ki with ith F Formulas l exercises i tto ddemonstrate t t
4. The absolute value inequality 3x 6 6 12 is true when 3x 6 7 and 3x 6 6 .
x|
L
A weight attached to a spring hangs at rest a distance of x in. off the ground. If the weight is pulled down (stretched) a distance of L inches and released, the weight begins to bounce and its distance d off the ground must satisfy the indicated formula. If x equals 4 ft and the spring is stretched 3 in. and released, solve the inequality to find what distances
56. A “Fair” Coin `
50
h 5
`
1.645
If we flipped a coin 100 times, we expect “heads” to come up about 50 times if the coin is “fair.” In a study of probability, it can be shown that the number of heads h that appears in such an experiment must satisfy the given inequality to be considered “fair.” (a) Solve this inequality for h.
EXTENDING THE CONCEPT 67. Determine the value or values (if any) that will make the equation or inequality true. x x 8 a. x b. x 2 2 6x x x x c. x d. x 3 x 3 e. 2x 1
3 2x has only one 68. The equation 5 2x solution. Find it and explain why there is only one.
MAINTAINING YOUR SKILLS 69. (R.4) Factor the expression completely: 18x3 21x2 60x. 70. (1.1) Solve V2
2W for C A
(physics).
72. (1.2) Solve the inequality, then write the solution set in interval notation: 312x 2
52 7 21x
12
7.
1
“
He not only has exercises for skill development, but also problems for ‘extending the concept’ and ‘maintaining your skills,’ which our current text does not have. I also like the mid-chapter checks provided. All these give Coburn an advantage in my view.
”
—Randy Ross, Morehead State University
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“ The strongest feature seems to be the wide variety of
exercises included at the end of each section. There are plenty of drill problems along with good applications.
”
—Jason Pallett, Metropolitan Community College–Longview
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End-of-Chapter Review Material Exercises located at the end of the chapter provide students with the tools they need to prepare for a quiz or test. Each chapter features the following: ▶
Chapter Summary and Concept Reviews that present key concepts with corresponding exercises by section in a format easily used by students.
▶
Mixed Reviews that offer more practice on topics from the entire chapter, arranged in random order requiring students to identify problem types and solution strategies on their own.
▶
Practice Tests that give students the opportunity to check their knowledge and prepare for classroom quizzes, tests, and other assessments.
“ We always did reviews and a quiz before the actual test; it helped a lot.”
—Melissa Cowan, student class tester Metropolitan Community College–Longview
▶
Cumulative Reviews that are presented at the end of each chapter help students retain previously learned skills and concepts by revisiting important ideas from earlier chapters (starting with Chapter 2).
“ The cumulative review is very good and is considerably better than some of the books I have reviewed/used. I have found these to be wonderful practice for the final exam.
”
—Sarah Clifton, Southeastern Louisiana University
/Don't del/DDOOON'T_DEL_YASH/6-12-08/HARRIS_CH-16
“ The summary and concept review was very helpful
because it breaks down each section. That is what helps me the most.
”
—Brittany Pratt, student class tester at Baton Rouge Community College
S U M M A RY A N D C O N C E P T R E V I EW SECTION SECTI ION 1.1
Linear Equations, Formulas, and Problem Solving
KEY CONCEPTS • An equation is a statement that two expressions are equal. • Replacement values that make an equation true are called solutions or roots. • Equivalent equations are those that have the same solution set. • To solve an equation we use the distributive property and the properties of equality to write a sequence of simpler, equivalent equations until the solution is obvious. A guide for solving linear equations appears on page 75. • If an equation contains fractions, multiply both sides by the LCD of all denominators, then solve. • Solutions to an equation can be checked using back-substitution, by replacing the variable with the proposed solution and verifying the left-hand expression is equal to the right. • An equation can be: 1. an identity, one that is always true, with a solution set of all real numbers. 2. a contradiction, one that is never true, with the empty set as the solution set. 3. conditional, or one that is true/false depending on the value(s) input. • To solve formulas for a specified variable, focus on the object variable and apply properties of equality to write this variable in terms of all others. • The basic elements of good problem solving include: 1. Gathering and organizing information 2. Making the problem visual 3. Developing an equation model 4. Using the model to solve the application For a complete review, see the problem-solving guide on page 78.
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 2 1. Perform the division by factoring the numerator: 1x3 5x2 2x 102 1x 52. x 6 5 and
2. Find the solution set for: 2 3x 2 6 8.
3. The area of a circle is 69 cm2. Find the circumference of the same circle. 4. The surface area of a cylinder is A 2 r2 Write r in terms of A and h (solve for r). 5. Solve for x:
213
x2
5x
41x
6. Evaluate without using a calculator: a
12 27 b 8
2 rh. 7.
2 3
.
18. Determine if the following relation is a function. If not, how is the definition of a function violated?
7. Find the slope of each line: a. through the points: 1 4, 72 and (2, 5). b. a line with equation 3x 5y 20.
Michelangelo
8. Graph using transformations of a parent function. 1x 2 3. a. f 1x2 b. f 1x2 x 2 3. 9. Graph the line passing through 1 3, 22 with a slope of m 12, then state its equation.
Graphing Calculator icons appear next to exercises where important concepts can be supported by the use of graphing technology.
Homework Selection Guide
111. Given f 1x2 1 f # g21x2, 1 f
3x2 6x and g1x2 x g2 1x2, and 1g f 2 1 22.
Parnassus
Titian
La Giocanda
Raphael
The School of Athens
Giorgione
Jupiter and Io
da Vinci
Venus of Urbino
Correggio
The Tempest
19. Solve by completing the square. Answer in both exact and approximate form: 2x2 49 20x
110. Show that x 1 5i is a solution to x2 2x 26 0.
▶
16. Simplify the radical expressions: 10 172 1 a. b. 4 12 17. Determine which of the following statements are false, and state why. a. ( ( ( ( b. ( ( ( ( c. ( ( ( ( d. ( ( ( (
2 find:
12. Graph by plotting the y-intercept, then counting ¢y m to find additional points: y 13x 2 ¢x 13. Graph the piecewise defined function x2 4 x 6 2 f 1x2 e and determine x 1 2 x 8 the following:
20. Solve using the quadratic formula. If solutions are complex, write them in a bi form. 2x2 20x 51 21. The National Geographic Atlas of the World is a very large, rectangular book with an almost inexhaustible panoply of information about the world we live in. The length of the front cover is 16 cm more than its width, and the area of the cover is 1457 cm2. Use this information to write an equation model, then use the quadratic formula to determine the length and width
A list of suggested homework exercises has been provided for each section of the text (Annotated Instructor’s Edition only). This feature may prove especially useful for departments that encourage consistency among many sections, or those having a large adjunct population. The feature was also designed as a convenience to instructors, enabling them to develop an inventory of exercises that is more in tune with the course as they like to teach it. The Guide provides prescreened and preselected p assignments at four different levels: Core, Standard, Extended, and In Depth. and . 1. After a vertical , points on the graph are • Core: These assignments go right to the heart of the 3. The vertex of h1x2 31x 52 9 is at farther from the x-axis. After a vertical , and the graph opens . points on the graph are closer to the x-axis. material, offering a minimal selection of exercises that cover the primary concepts and solution strategies of the section, along with a small selection of the best applications. • Standard: The assignments at this level include the Core exercises, while providing for additional practice without included as well as a greater variety of excessive drill. A wider assortment of the possible variations on a theme are included, applications. • Extended: Assignments from the Extended category expand on the Standard exercises to include more applications, as well as some conceptual or theory-based questions. Exercises may include selected items from the Concepts and Vocabulary, Working with Formulas, and the Extending the Thought categories of the exercise sets. • In Depth: The In Depth assignments represent a more comprehensive look at the material from each section, while attempting to keep the assignment manageable for students. These include a selection of the most popular and highest-quality exercises from each category of the exercise set, with an additional emphasis on Maintaining Your Skills. reflections
stretch
2
compression
( 5,
9)
upward
HOMEWORK SELECTION GUIDE
Core: 7–59 every other odd, 61–73 odd, 75–91 every other odd, 93–101 odd, 105, 107 (33 Exercises) Standard: 1–4 all, 7–59 every other odd, 61, 63–73 odd, 75–91 every other odd, 93–101 odd, 105, 107, 109 (38 Exercises)
Extended: 1–4 all, 7–59 every other odd, 61, 63–73 odd, 75–91 every other odd, 93–101 odd, 103, 105, 106, 107, 109, 111, 112, 114, 117 (44 Exercises) In Depth: 1–6 all, 7–59 every other odd, 61, 63–73 odd, 75–91 every other odd, 93–101 odd, 103, 104, 105–110 all, 111–117 all (54 Exercises)
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Strong Connections . . . Through a Conversational Writing Style ext, text, atics te matics mostt promin ent featur es of a mathem he m ly tthe ably g ab gu arguab argu aree ar onss ar on ttions ti cati ca pplililica pp aapplica nd app es aand es pllles ampl am examp exam ililee ex While Whil Wh ts udents s st studen er. It may be true that some t ogether th em togeth ndds them bbinds hatt bi ha t tthat iliity bility d bi t l andd readab itii style t h writing ’ the it’s for an example similar to the don’t read the text, and that others open the text only when looking studen ts who do (read the text), exercise they’re curren tly working. But when they do and for those ts in a form and at a level it’s important they have a text that “speak s to them,” relating concep ts in and keep their interest, they understand and can relate to. Ideally this text will draw studen third time, until it becomes becoming a positiv e experience and bringing them back a second and of their text (as more that just habitual. At this point, studen ts might begin to see the true value learning on equal footing with a source of problems—p un intended), and it becomes a resour ce for —JC any other form of supplementa l instruction.
Conversational Writing Style John Coburn’s experience in the classroom and his strong connections to how students comprehend the material are evident in his writing style. He uses a conversational and supportive writing style, providing the students with a tool they can depend on when the teacher is not available, when they miss a day of class, or simply when working on their own. The effort John has put into the writing is representative of his unofficial mantra: “If you want more students to reach the top, you gotta put a few more rungs on the ladder.”
“ The author does a fine job with his narrative.
His explanations are very clear and concise. I really like his explanations better than in my current text.
”
—Tammy Potter, Gadsden State College
“ The author does an excellent job of
engagement and it is easily seen that he is conscious of student learning styles.
”
—Conrad Krueger, San Antonio College
Through Student Involvement nt How do you design a student-friendly textbook? We decided to get students involved by hosting two separate focus groups. During these sessions we asked students to advise us on how they use their books, what pedagogical elements are useful, which elements are distracting and not useful, as well as general feedback on page layout. During this process there were times when we thought, “Now why hasn’t anyone ever thought of that before?” Clearly these student focus groups were invaluable. Taking direct student feedback and incorporating what is feasible and doesn’t detract from instructor use of the text is the best way to design a truly student-friendly text. The next two pages will highlight what we learned from students so you can see for yourself how their feedback played an important role in the development of the Coburn series.
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1.1 Linear Equations, Formulas, and Problem Solving
Students said that Learning Objectives should clearly define the goals of each section.
Learning Objectives In Section 1.1 you will learn how to:
A. Solve linear equations using properties of equality
In a study of algebra, you will encounter many families of equations, or groups of equations that share common characteristics. Of interest to us here is the family of linear equations in one variable, a study that lays the foundation for understanding more advanced families. In addition to solving linear equations, we’ll use the skills we develop to solve for a specified variable in a formula, a practice widely used in science, business, industry, and research.
B. Recognize equations that are identities or contradictions
C. Solve for a specified variable in a formula or literal equation
A. Solving Linear Equations Using Properties of Equality An equation is a statement that two expressions are equal. From the expressions 31x 12 x and x 7, we can form the equation
D. Use the problem-solving guide to solve various problem types
31x
12
x
Solution
A. You’ve just learned how to solve linear equations using properties of equality
31x
x
12
x
2
11
9 8
1
7
0
3
7
1
1
6
2
5
5
7
Solving a Linear Equation with Fractional Coefficients Solve for n: 14 1n
D Described ib d by b students t d t as one off th the most useful features in a math text, Caution Boxes signal a student to stop and take note in order to avoid mistakes in problem solving.
7.
x
which is a linear equation in one variable. To solve an equation, we attempt to find a specific input or xvalue that will make the equation true, meaning the left-hand expression will be equal to the right. Using
EXAMPLE 2
Students asked for Check Points throughout each section to alert them when a specific learning objective has been covered and to reinforce the use of correct mathematical terms.
Table 1.1 x
1 4 1n 1 4n
82 2
2 2 1 4n 1 41 4 n2 n n n
1 2 1n
82
2
1 2 1n 1 2n 1 2n 41 12 n
62 3 3 32 12
2n 12 12
62.
original equation distributive property combine like terms multiply both sides by LCD
4
distributive property subtract 2n multiply by
Verify the solution is n
1
12 using back-substitution. Now try Exercises 13 through 30
1 22 4 2 6 3 The slope of this line is
8 2 3 1 6 2 The slope of this line is 12.
4
2 3 .
Now try Exercises 33 through 40
CAUTION
When using the slope formula, try to avoid these common errors. 1. The order that the x- and y-coordinates are subtracted must be consistent, since
y 2 x2
y
y 1 x1
y
2
1
x2 .
x1
2. The vertical change (involving the y-values) always occurs in the numerator: y 2 x2
y 1 x1
x
2
y2
x
1
y1 .
3. When x1 or y1 is negative, use parentheses when substituting into the formula to prevent confusing the negative sign with the subtraction operation.
Students told us that the color red should only be used for things that are really important. Also, anything significant should be included in the body of the text; marginal readings imply optional.
Actually, the slope value does much more than quantify the slope of a line, it expresses a rate of change between the quantities measured along each axis. In applichange in y ¢y cations of slope, the ratio change in x is symbolized as ¢x. The symbol ¢ is the Greek letter delta and has come to represent a change in some quantity, and the notation ¢y m ¢x is read, “slope is equal to the change in y over the change in x.” Interpreting slope as a rate of change has many significant applications in college algebra and beyond.
EXAMPLE 8
Examples are called out in the margins so they are easy for students to spot. Solution
Determining the Domain of an Expression 6 Determine the domain of the expression . State the result in set notation, x 2 graphically, and using interval notation. Set the denominator equal to zero and solve: x 2 is outside the domain and must be excluded.
• Set notation: 5x|x
,x
• Graph: 1 0 1 • Interval notation: x
)) 2
0 yields x
2. This means
3
4
5
1 q, 22 ´ 12, q2 Now try Exercises 61 through 68
Examples are “boxed” so students can clearly see where they begin and end
A second area where allowable values are a concern involves the square root operation. Recall that 149 7 since 7 # 7 49. However, 1 49 cannot be written as the product of two real numbers since 1 72 # 1 72 49 and 7 # 7 49. In other words, 1X represents a real number only if the radicand is positive or zero. If X represents an algebraic expression, the domain of 1X is 5X |X 06 . EXAMPLE 9
Determining the Domain of an Expression Determine the domain of 1x and in interval notation.
Solution
3. State the domain in set notation, graphically,
The radicand must represent a nonnegative number. Solving x x 3.
• Set notation: 5x|x • Graph:
Students told us they liked when the examples were linked to the exercises.
2
26
4
[
3
2
• Interval notation: x
3
0 gives
36 1
0
1
2
3, q2 Now try Exercises 69 through 76
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Solve using the zero product property. Be sure each equation is in standard form and factor out any common factors before attempting to solve. Check all answers in the original equation.
x3
7. 22x 9. 3x3
Students told us that directions should be in bold so they are easily distinguishable from the problems.
9x2
7x2
6x
8. x3
13x2
42x
10. 7x2
15x
2x3
11. 2x4
3x3
9x2
12.
13. 2x4
16x
0
14. x4
4x
5x2
20 16. x3
12
2
15. x3 17. 4x 19. 2x3
3
3x
12x2
x
18. x
10x
41.
9x3 42.
64x
0
18
9x
2x2
2
3
7
7x
43.
x
44.
3
81
27x
3x
21. x4
7x3
4x2
28x
22. x4
3x3
23. x4
81
9x2
27x 45.
1
25. x4
256
0
26. x4
625
0
27. x6
2x4
x2
6
3x
4
29. x5
x3
30. x5
9x3
31. x6
1
32. x6
64
0
2 2
16x
34. 35. 36.
Because students spend a lot of time in the exercise section of a text, they said that a white background is hard on their eyes . . . so we used a soft, off-white color for the background
x
48
0
8
0
x2
9
0
0
x
3
m2
2
a
3m
4 3y
2
2a
2a
1
2a
18 n
2
6n
5
3
5a
3
a
3
3n 2n 1
1
3
p
6
2
2
2
4n 3n 1
1 f
1 f1 E R
r
1 ; for f f2
46.
; for r
48. q
1 y
1 x
1 ; for z z pf
p
f
; for p
49. V
1 2 r h; for h 3
50. s
1 2 gt ; for g 2
51. V
4 3 r ; for r3 3
52. V
1 2 r h; for r2 3
53. a.
313x
5
9
54. a.
214x
1
10 b.
13x
b. x 5
1
3 b. 21 7
2
3 3 d. 1 2x
b. 3 1 3 3 1 5p 2 3 1 6x 7 5 6 4 3 3 d. 31 x 3 21 2x 17 3
3
1
3
15x
1
3x
3
9 4x
x 7
1 3x
7
7
4
3
c.
1
57. a. 1x 9 1x 9 b. x 3 223 x c. 1x 2 12x 2
7 3
5 n
6
1 5p
a
56. a.
1 m
3
21 a 2y
x
5
3 m
2
p
3 55. a. 2 1 3m 3 1 2m 3 c. 5
5 2
p
2
5
x
Solve each equation and check your solutions by substitution. Identify any extraneous roots.
0
1
n
2
7
0
8x2
1
2 x
3
n
2x
20 n
6
7
x
1
x
5
x
47. I
Solve each equation. Identify any extraneous roots.
33.
10
2x
1
7
x
Solve for the variable indicated.
0
24. x
28. x
2x4
40.
60
2
20. 9x
4
7x2
14
39. x
5
velocity of 160 ft/sec and a height of 240 ft, it runs out of fuel and becomes a projectile. a. How high is the rocket three seconds later? Four seconds later? b. How long will it take the rocket to attain a height of 640 ft? c. How many times is a height of 384 ft attained? When do these occur? d. How many seconds until the rocket returns to the ground?
88. Composite figures—gelatin capsules: The gelatin capsules manufactured for cold and flu medications are shaped like a cylinder with a hemisphere on each end. The interior volume V of each capsule r2h, where h is can be modeled by V 43 r3 the height of the cylindrical portion and r is its radius. If the cylindrical portion of the capsule is 8 mm long 1h 8 mm2, what radius would give the capsule a volume that is numerically equal to 15 times this radius?
93. Printing newspapers: The editor of the school newspaper notes the college’s new copier can complete the required print run in 20 min, while the back-up copier took 30 min to do the same amount of work. How long would it take if both copiers are used? 94. Filling a sink: The cold water faucet can fill a sink in 2 min. The drain can empty a full sink in 3 min. If the faucet were left on and the drain was left open, how long would it take to fill the sink?
89. Running shoes: When a popular running shoe is priced at $70, The Shoe House will sell 15 pairs each week. Using a survey, they have determined that for each decrease of $2 in price, 3 additional pairs will be sold each week. What selling price will give a weekly revenue of $2250?
95. Triathalon competition: As one part of a Mountain-Man triathalon, participants must row a canoe 5 mi down river (with the current), circle a buoy and row 5 mi back up river (against the current) to the starting point. If the current is flowing at a steady rate of 4 mph and Tom Chaney made the round-trip in 3 hr, how fast can he row in still water? (Hint: The time rowing down river and the time rowing up river must add up to 3 hr.)
90. Cell phone charges: A cell phone service sells 48 subscriptions each month if their monthly fee is $30. Using a survey, they find that for each decrease of $1, 6 additional subscribers will join. What charge(s) will result in a monthly revenue of $2160?
96. Flight time: The flight distance from Cincinnati, Ohio, to Chicago, Illinois, is approximately 300 mi. On a recent round-trip between these cities in my private plane, I encountered a steady 25 mph headwind on the way to Chicago, with a 25 mph tailwind on the return trip. If my total flying time
Projectile height: In the absence of resistance, the height of an object that is projected upward can be modeled by the 16t2 vt k, where h represents the equation h height of the object (in feet) t sec after it has been thrown, v represents the initial velocity (in feet per second), and k represents the height of the object when t 0 (before it has
WORKING WITH FORMULAS
Students said having a lot of icons was confusing. The graphing calculator is the only icon used in the exercise sets; no unnecessary icons are used
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79. Lateral surface area of a cone: S The lateral surface area (surface area excluding the base) S of a cone is given by the formula shown, where r is the radius of the base and h is the height of the cone. (a) Solve the equation for h. (b) Find the surface area of a cone that has a radius of 6 m and a height of 10 m. Answer in simplest form.
r2r 2
h2
h
r
80. Painted area on a canvas: A
4x2
60x x
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A rectangular canvas is to contain a small painting with an area of 52 in2, and requires 2-in. margins on the left and right, with 1-in. margins on the top and bottom for framing. The total area of such a canvas is given by the formula shown, where x is the height of the painted area. a. What is the area A of the canvas if the height of the painting is x 10 in.? b. If the area of the canvas is A 120 in2, what are the dimensions of the painted area?
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Coburn’s Precalculus Series College Algebra, Second Edition Review 䉬 Equations and Inequalities 䉬 Relations, Functions, and Graphs 䉬 Polynomial and Rational Functions 䉬 Exponential and Logarithmic Functions 䉬 Systems of Equations and Inequalities 䉬 Matrices 䉬 Geometry and Conic Sections 䉬 Additional Topics in Algebra ISBN 0-07-351941-3, ISBN 978-0-07351941-8
College Algebra Essentials, Second Edition Review 䉬 Equations and Inequalities 䉬 Relations, Functions, and Graphs 䉬 Polynomial and Rational Functions 䉬 Exponential and Logarithmic Functions 䉬 Systems of Equations and Inequalities ISBN 0-07-351968-5, ISBN 978-0-07351968-5
Algebra and Trigonometry, Second Edition Review 䉬 Equations and Inequalities 䉬 Relations, Functions, and Graphs 䉬 Polynomial and Rational Functions 䉬 Exponential and Logarithmic Functions 䉬 Trigonometric Functions 䉬 Trigonometric Identities, Inverses and Equations 䉬 Applications of Trigonometry 䉬 Systems of Equations and Inequalities 䉬 Matrices 䉬 Geometry and Conic Sections 䉬 Additional Topics in Algebra ISBN 0-07-351952-9, ISBN 978-0-07-351952-4
Precalculus, Second Edition Equations and Inequalities 䉬 Relations, Functions, and Graphs 䉬 Polynomial and Rational Functions 䉬 Exponential and Logarithmic Functions 䉬 Trigonometric Functions 䉬 Trigonometric Identities, Inverses and Equations 䉬 Applications of Trigonometry 䉬 Systems of Equations and Inequalities, and Matrices 䉬 Geometry and Conic Sections 䉬 Additional Topics in Algebra 䉬 Limits ISBN 0-07-351942-1, ISBN 978-0-07351942-5
Trigonometry, Second Edition—Coming in 2010! Introduction to Trigonometry 䉬 Trigonometric Functions 䉬 Trigonometric Identities 䉬 Trigonometric Inverses and Equations 䉬 Applications of Trigonometry 䉬 Conic Sections and Polar Coordinates ISBN 0-07-351948-0, ISBN 978-0-07351948-7
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Making Connections . . . Through New and Updated Content New to the Second Edition ▶
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An extensive reworking of the narrative and reduction of advanced concepts enhances the clarity of the exposition, improves the student’s experience in the text, and decreases the overall length of the text. A modified interior design based on student and instructor feedback from focus groups features increased font size, improved exercise and example layout, more white space on the page, and the careful use of color to enhance the presentation of pedagogy. Chapter Openers based on applications bring awareness to students of the relevance of concepts presented in each chapter. The removal of algebraic proofs from the main body of the text to an appendix provides better focus in the chapter and presents mathematics in a less technical manner. Checkpoints throughout each section alert students when a specific learning objective has been covered and reinforce the use of correct mathematical terms. The Homework Selection Guide, appearing in each exercise section in the Annotated Instructor’s Edition, provides instructors with suggestions for developing core, standard, extended, and in-depth homework assignments without much prep work. The Modeling with Technology feature between chapters presents standalone coverage of regression, with pedagogy, exercises, and applications for those instructors who choose to cover this material
Chapter-by-Chapter Changes CHAPTER
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A Review of Basic Concepts and Skills
• Square and cube roots are now covered together. • Section R.2 features more opportunities for mathematical modeling as well as a summary of exponential properties. • Examples using radicals have been added to Section R.3 to provide more practice solving, factoring, and simplifying. • The discussion of factoring in Section R.4 now includes x2 − k, when k is not a perfect square, and higher-degree expressions. • A Chapter Overview has been added to the end of the chapter, offering students a study tool for the review of prerequisite topics.
CHAPTER
1
Equations and Inequalities
• Chapter 1 now includes coverage of absolute value equations and inequalities in Section 1.3. • Information on solving quadratics has been consolidated to a single section (1.5) and summary boxes are now used for solving linear equations, solving quadratic equations, and solution methods for quadratic equations. • Examples and exercises employing the use of a graphing calculator have been added throughout the chapter.
CHAPTER
2
Relations, Functions, and Graphs
• The organization of Chapter 2 has changed from the first edition in an effort to concentrate the introduction of graphs and general functions. • Coverage of the midpoint formula, the distance formula, and circles has been improved and reorganized (Section 2.1). • Linear graphs are established early in the chapter (Sections 2.2 and 2.3) before functions are introduced. • The section on the toolbox (basic parent) functions (2.6) now appears after analyzing graphs (Section 2.5) to improve connections among the material. • Coverage of rates of change has been consolidated while coverage of the implied domain, distance quotient, end behavior, and even/odd functions has been expanded and improved. • Additional applications of the floor and ceiling functions and the algebra of functions have been added. • Regression material in this chapter has been removed and concentrated in the between-chapter Modeling with Technology feature.
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Polynomial and Rational Functions
• Chapter 3 has been significantly reorganized to bring focus to and provide a better bridge between general functions and polynomial functions. • More coverage of completing the square and increased emphasis on graphing using the vertex formula is found in Section 3.1. • Complex conjugates, zeroes of multiplicity, and number of zeroes have been realigned together in Section 3.2. • Section 3.3 features an improved description of Descartes’ rule of signs, as well as stronger connections between the fundamental theorem of algebra and the linear factorization theorem and its corollaries. • A better introduction regarding polynomials versus nonpolynomials is found in Section 3.4, in addition to an improved discussion of end behavior. • Section 3.6 provides better treatment of removable discontinuities and a clearer discussion of pointwise versus asymptotic continuities. • Section 3.8 presents a clearer, stronger connection between previously covered topics and applications of variation and the toolbox functions. • Regression material in this chapter has been removed and concentrated in the between-chapter Modeling with Technology feature.
CHAPTER
4
Exponential and Logarithmic Functions
• Chapter 4 now begins with coverage of one-to-one and inverse functions given their applications for exponents and logarithms. • This section (4.1) includes examples of finding inverses of rational functions, as well as better coverage of restricting the domain to find the inverse. • Coverage of base e as an alternative to base 10 or b is addressed in one section (4.2) as opposed to two sections as in the first edition. • Likewise, coverage of properties of logs and log equations is found in the same section (4.4). • A clear introduction to fundamental logarithmic properties has also been added to Section 4.4. • Applications have been added and improved throughout the chapter. • Regression material in this chapter has been removed and concentrated in the between-chapter Modeling with Technology feature.
CHAPTER
5
Introduction to Trigonometric Functions
• Section 5.1 includes improved DMS to decimal degrees conversion coverage, improved introduction to standard 45-45-90 and 30-60-90 triangles, better illustrations of longitude and latitude applications, and streamlined/clarified coverage of angular and linear velocity • Section 5.2 has improved coverage of co-functions, and better illustrations for angles of elevation and depression • Section 5.3 has improved applications, and the connection between f and f-1 is introduced • Section 5.4 includes a table showing summary of trig functions of special angles • Section 5.5 has improved coverage of secant and cosecant graphs • Section 5.6 has a strengthened connection between y = tan x and y = (sin x)/cos(x) • Section 5.7 has an improved introduction to transformations, and a clearer distinction between phase angle and phase shift
CHAPTER
6
Trigonometric Identities, Inverses, and Equations
• Section 6.1 has an increased emphasis on what an identity is (the definition of an identity), as well as an additional example of quadrant and sign analysis • Section 6.2 has a better introduction to clarify goals, as well as an improved format for verifying identities • Section 6.3 has improved coverage of the co-function identities, as well as extended coverage of the sum and difference identities • Section 6.5 has a strengthened connection between inverse functions and drawn diagrams, improved coverage on evaluating the inverse trig functions, and more real-world applications of inverse trig functions
CHAPTER
7
Applications of Trigonometry
• Section 7.1 has consolidated coverage of the ambiguous case • Section 7.2 has expanded coverage of computing areas using trig , as well as six new contextual applications of triangular area using trig • Section 7.3 has improved discussion, coverage, and illustrations of vector subtraction, and stronger connections between solutions using components, and solutions using the law of cosines. • Section 7.5 has additional real-world applications of complex numbers (AC circuits)
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CHAPTER
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Systems S ystems of of Equations Equations and Inequalities
•T Th The he co coverage ove verage ra age ge of of systems syssttem syst sy ems an a and nd m ma matrices atrices has been split into two wo chapters c for the second edition on (Chapter ((C Chapte terr 8 on systems ssys yste tems ms and Chapter matrices). a an nd d Ch C Chap hap pter ter 9 on m mat a rice at riice ces) s. Section addition • Se Sect ction 8.1 includes improved coverage of equivalent systemss in n ad addi d tion to more examples and an nd exercises exer ex erci c se ci sess having havi ha ving ng to to with distance do w ith di d stance and navigation. • Section Sect Se ctio i n 8.2 features improved coverage of dependent and inconsistent systems. systemss. Section features better presentation • Se Sect ctio ion n 8.3 8 3 now presents nonlinear systems before linear programming and 8. nd ffea eatu ture ress a be bett tter er p pre rese sent ntat attio ion n off nonlinear nonl no nlin inea earr and and nonpolynomial systems. have also •M More Mo re business bus b usin iiness examples exam ex a ples l and d exercises i h l been bee een n added ad dd dd ded de d to t Section S tion 8.3. 8.3. 3 • New New applications appl ap plic ica atio ionss of of linear programming are found d in in Section Se e ction 8.4. 8..4. 8 4.
CHAPTER
9
Matrices and Matrix Matrix Applications Applications
•S Se Section ction 9.1 ct 9 1 features 9. feat fe atur ures es an an added adde ad ded d example exam ex ample e of o Gauss-Jordan Gau auss ss-J -Jor orda dan n Elimination. Elim imin nat atio io on. • Section Sect Se c io ion 9.2 2 includes incl in clud udes es better bet ette terr sequencing sequ se quen enci cing ng of of examples exam ex ampl ples es and and improved iimp mpro rove ved d coverage cove co vera rage ge of of matrix matr ma trix properties. pro rope p rties. Coverage • Co C v rage ve g of determinants dete de term rmin inan a ts has an has been bee b een streamlined stre st ream amliline ned d with with more mor m o e development de eve velo lopm lo pmen entt given gi n to determinants det e erminant ntts in Section Secti ec cti t on 9.3, 9.3, .3 3, while coverage partial better off th decomposition template found whil le improved cover rag age e off p arti ar tial al fra ffractions ract ctio ions ns a and nd a b e ter introduction o et the e decomp m osition templa late atte e iiss ffo oun und d in n Section 9.4.
CHAPTER
10 1 0
Analytical Analy ytical G Geometry eometry a and nd tthe he C Conic onicc S Sections ecttion ns
• New Section 10.1 presents a brief introduction to analytical analyt y tic cal geometry geo e ometry to provide a better bet ett te e ter bridge ter brrid dge to to the t e conic th co on niic sections sec se ctio onss and show why cone/conic connection c nnec co cti tion on is on is important. import im m tan antt. t. Greater on ellipses • Greate er emphasis so n th the e connection connecti tiion o between bet e ween e llllip ip ips pses se and circles circ ci irc cle le s is is featured fea eatu t re tu red d in n section ssec ec ecti ction tiion n 10.2. 10 1 0. 2. 0. 2. Exercises requiring movement equation throughout • Exer errci cises requir rin ing g the mo m vement from graph grap aph to oe quatio on have v been bee en added adde ad dd de e d th hro roug oug ugho gho outt the the he chapter. cha hapt hapt pte er. er
CHAPTER
11 1 1
Additional A dditiona al TTopics opiccs in A Algebra lg gebra
• Th The e ex expo exposition p sition o has been n revised revi re v se vi e d throughout t roughout Chapter th Cha hapt p er 11 pt 1 for fo or increased i cr in crea e se ea e d clarity clar cl clar arit it y and a d improved an imp im imp prrov o ed e d flow flo low off topics. ttop op o pics. ic cs..
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Making Connections . . . Through 360° Development McGraw-Hill’s 360° Development Process is an ongoing, never-ending, market-oriented approach to building accurate and innovative print and digital products. It is dedicated to continual large-scale and incremental improvement driven by multiple customer feedback loops and checkpoints. This process is initiated during the early planning stages of our new products, intensifies during the development and production stages, and then begins again on publication, in anticipation of the next edition. A key principle in the development of any mathematics text is its ability to adapt to teaching specifications in a universal way. The only way to do so is by contacting those
universal voices—and learning from their suggestions. We are confident that our book has the most current content the industry has to offer, thus pushing our desire for accuracy to the highest standard possible. In order to accomplish this, we have moved through an arduous road to production. Extensive and open-minded advice is critical in the production of a superior text. We engaged over 400 instructors and students to provide us guidance in the development of the second edition. By investing in this extensive endeavor, McGraw-Hill delivers to you a product suite that has been created, refined, tested, and validated to be a successful tool in your course.
Board of Advisors A hand-picked group of trusted teachers active in the College Algebra and Precalculus course areas served as the chief advisors and consultants to the author and editorial team with regards to manuscript development. The Board of Advisors reviewed the manuscript in two drafts; served as a sounding board for pedagogical, media, and design concerns; approved organizational changes; and attended a symposium to confirm the manuscript’s readiness for publication. Bill Forrest, Baton Rouge Community College Marc Grether, University of North Texas Sharon Hamsa, Metropolitan Community College –Longview Max Hibbs, Blinn College Terry Hobbs, Metropolitan Community College– Maple Woods Klay Kruczek, Western Oregon University Rita Marie O’Brien’s , Navarro College
Nancy Matthews, University of Oklahoma Rebecca Muller, Southeastern Louisiana University Jason Pallett, Metropolitan Community College Kevin Ratliff, Blue Ridge Community College Stephen Toner, Victor Valley College
Accuracy Panel A selected trio of key instructors served as the chief advisors for the accuracy and clarity of the text and solutions manual. These individuals reviewed the final manuscript, the page proofs in first and revised rounds, as well as the writing and accuracy check of the instructor’s solutions manuals. This trio, in addition to several other accuracy professionals, gives you the assurance of accuracy. J.D. Herdlick, St. Louis Community College–Meramac Richard A. Pescarino, St. Louis Community College–Florissant Valley Nathan G. Wilson, St. Louis Community College–Meramac
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Student Focus Groups Two student focus groups were held at Illinois State University and Southeastern Louisiana University to engage students in the development process and provide feedback as to how the design of a textbook impacts homework and study habits in the College Algebra and Precalculus course areas. Francisco Arceo, Illinois State University Dave Cepko, Illinois State University Andrea Connell, Illinois State University Brian Lau, Illinois State University Daniel Nathan Mielneczek, Illinois State University Mingaile Orakauskaite, Illinois State University Todd Michael Rapnikas, Illinois State University Bethany Rollet, Illinois State University Teddy Schrishuhn, Illinois State University Josh Schultz, Illinois State University Andy Thurman, Illinois State University Candace Banos, Southeastern Louisiana University Nicholas Curtis, Southeastern Louisiana University
M. D. “Boots” Feltenberger, Southeastern Louisiana University Regina Foreman, Southeastern Louisiana University Ashley Lae, Southeastern Louisiana University Jessica Smith, Southeastern Louisiana University Ashley Youngblood, Southeastern Louisiana University
Special Thanks Sherry Meier, Illinois State University Rebecca Muller, Southeastern Louisiana University Anne Schmidt, Illinois State University
Instructor Focus Groups Focus groups held at Baton Rouge Community College and ORMATYC provided feedback on the new Connections to Calculus feature in Precalculus, and shed light on the coverage of review material in this course. User focus groups at Southeastern Louisiana University and Madison Area Technical College confirmed the organizational changes planned for the second edition, provided feedback on the interior design, and helped us enhance and refine the strengths of the first edition. Virginia Adelmann, Southeastern Louisiana University George Alexander, Madison Area Technical College Kenneth R. Anderson, Chemeketa Community College Wayne G.Barber, Chemeketa Community College Thomas Dick, Oregon State University Vickie Flanders, Baton Rouge Community College Bill Forrest, Baton Rouge Community College Susan B. Guidroz, Southeastern Louisiana University Christopher Guillory, Baton Rouge Community College Cynthia Harrison, Baton Rouge Community College Judy Jones, Madison Area Technical College Lucyna Kabza, Southeastern Louisiana University Ann Kirkpatrick, Southeastern Louisiana University Sunmi Ku, Bellevue Community College
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Pamela Larson, Madison Area Technical College Jennifer Laveglia, Bellevue Community College DeShea Miller, Southeastern Louisiana University Elizabeth Miller, Southeastern Louisiana University Rebecca Muller, Southeastern Louisiana University Donna W. Newman, Baton Rouge Community College Scott L. Peterson, Oregon State University Ronald Posey, Baton Rouge Community College Ronni Settoon, Southeastern Louisiana University Jeganathan Sriskandarajah, Madison Area Technical College Martha Stevens, Bellevue Community College Mark J. Stigge, Baton Rouge Community College Nataliya Svyeshnikova, Southeastern Louisiana University
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John N. C. Szeto, Southeastern Louisiana University Christina C. Terranova, Southeastern Louisiana University Amy S. VanWey, Clackamas Community College Andria Villines, Bellevue Community College
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Jeff Weaver, Baton Rouge Community College Ana Wills, Southeastern Louisiana University Randall G. Wills, Southeastern Louisiana University Xuezheng Wu, Madison Area Technical College
Developmental Symposia McGraw-Hill conducted two symposia directly related to the development of Coburn’s second edition. These events were an opportunity for editors from McGraw-Hill to gather information about the needs and challenges of instructors teaching these courses and confirm the direction of the second edition. Rohan Dalpatadu, University of Nevada–Las Vegas Franco Fedele, University of West Florida Bill Forrest, Baton Rouge Community College Marc Grether, University of North Texas Sharon Hamsa, Metropolitan Community College–Longview Derek Hein, Southern Utah University Rebecca Heiskell, Mountain View College Terry Hobbs, Metropolitan Community College– Maple Woods Klay Kruczek, Western Oregon University Nancy Matthews, University of Oklahoma Sherry Meier, Illinois State University Mary Ann (Molly) Misko, Gadsden State Community College
Rita Marie O’Brien, Navarro College Jason Pallett, Metropolitan Community College– Longview Christopher Parks, Indiana University–Bloomington Vicki Partin, Bluegrass Community College Philip Pina, Florida Atlantic University–Boca Nancy Ressler, Oakton Community College, Des Plaines Campus Vicki Schell, Pensacola Junior College Kenan Shahla, Antelope Valley College Linda Tansil, Southeast Missouri State University Stephen Toner, Victor Valley College Christine Walker, Utah Valley State College
Diary Reviews and Class Tests Users of the first edition, Said Ngobi and Stephen Toner of Victor Valley College, provided chapter-by chapter feedback in diary form based on their experience using the text. Board of Advisors members facilitated class tests of the manuscript for a given topic. Both instructors and students returned questionnaires detailing their thoughts on the effectiveness of the text’s features.
Class Tests Instructors Bill Forrest, Baton Rouge Community College Marc Grether, University of North Texas Sharon Hamsa, Metropolitan Community College–Longview Rita Marie O’Brien’s , Navarro College
Students Cynthia Aguilar, Navarro College Michalann Amoroso, Baton Rouge Community College Chelsea Asbill, Navarro College Sandra Atkins, University of North Texas Robert Basom, University of North Texas Cynthia Beasley, Navarro College Michael Bermingham, University of North Texas Jennifer Bickham, Metropolitan Community College–Longview Rachel Brokmeier, Baton Rouge Community College Amy Brugg, University of North Texas
Zach Burke, University of North Texas Shaina Canlas, University of North Texas Kristin Chambers, University of North Texas Brad Chatelain, Baton Rouge Community College Yu Yi Chen, Baton Rouge Community College Jasmyn Clark, Baton Rouge Community College Belinda Copsey, Navarro College Melissa Cowan, Metropolitan Community College–Longview Katlin Crooks, Baton Rouge Community College Rachele Dudley, University of North Texas Kevin Ekstrom, University of North Texas Jade Fernberg, University of North Texas Joseph Louis Fino, Jr., Baton Rouge Community College Shannon M. Fleming, University of North Texas Travis Flowers, University of North Texas Teresa Foxx, University of North Texas Michael Giulietti, University of North Texas Michael Gordon, Navarro College
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Hayley Hentzen, University of North Texas Courtney Hodge, University of North Texas Janice Hollaway, Navarro College Weslon Hull, Baton Rouge Community College Sarah James, Baton Rouge Community College Georlin Johnson, Baton Rouge Community College Michael Jones, Navarro College Robert Koon, Metropolitan Community College–Longview Ben Lenfant, Baton Rouge Community College Colin Luke, Baton Rouge Community College Lester Maloney, Baton Rouge Community College Ana Mariscal, Navarro College Tracy Ann Nguyen, Baton Rouge Community College Alexandra Ortiz, University of North Texas Robert T. R. Paine, Baton Rouge Community College Kade Parent, Baton Rouge Community College Brittany Louise Pratt, Baton Rouge Community College
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Brittney Pruitt, Metropolitan Community College–Longview Paul Rachal, Baton Rouge Community College Matt Rawls, Baton Rouge Community College Adam Reichert, Metropolitan Community College–Longview Ryan Rodney, Baton Rouge Community College Cody Scallan, Baton Rouge Community College Laura Shafer, University of North Texas Natina Simpson, Navarro College Stephanie Sims, Metropolitan Community College–Longview Cassie Snow, University of North Texas Justin Stewart, Metropolitan Community College–Longview Marjorie Tulana, Navarro College Ashleigh Variest, Baton Rouge Community College James A. Wann, Navarro College Amber Wendleton, Metropolitan Community College–Longview Eric Williams, Metropolitan Community College–Longview Katy Wood, Metropolitan Community College–Longview
Developmental Editing The manuscript has been impacted by numerous developmental editors who edited for clarity and consistency. Efforts resulted in cutting length from the manuscript, while retaining a conversational and casual narrative style. Editorial work also ensured the positive visual impact of art and photo placement. First Edition Chapter Reviews and Manuscript Reviews Over 200 instructors participated in postpublication single chapter reviews of the first edition and helped the team build the revision plan for the second edition. Over 100 teachers and academics from across the country reviewed the current edition text, the proposed second edition table of contents, and first-draft second edition manuscript to give feedback on reworked narrative, design changes, pedagogical enhancements, and organizational changes. This feedback was summarized by the book team and used to guide the direction of the second-draft manuscript. Scott Adamson, Chandler-Gilbert Community College Teresa Adsit, University of Wisconsin–Green Bay Ebrahim Ahmadizadeh, Northampton Community College George M. Alexander, Madison Area Technical College Frances Alvarado, University of Texas–Pan American Deb Anderson, Antelope Valley College Philip Anderson, South Plains College Michael Anderson, West Virginia State University Jeff Anderson, Winona State University Raul Aparicio, Blinn College Judith Barclay, Cuesta College Laurie Battle, Georgia College and State University Annette Benbow, Tarrant County College–Northwest Amy Benvie, Florida Gulf Coast University
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Scott Berthiaume, Edison State College Wes Black, Illinois Valley Community College Arlene Blasius, SUNY College of Old Westbury Caroline Maher Boulis, Lee University Amin Boumenir, University of West Georgia Terence Brenner, Hostos Community College Gail Brooks, McLennan Community College G. Robert Carlson, Victor Valley College Hope Carr, East Mississippi Community College Denise Chellsen, Cuesta College Kim Christensen, Metropolitan Community College– Maple Woods Lisa Christman, University of Central Arkansas John Church, Metropolitan Community College–Longview Sarah Clifton, Southeastern Louisiana University David Collins, Southwestern Illinois College Sarah V. Cook, Washburn University Rhonda Creech, Southeast Kentucky Community and Technical College Raymond L. Crownover, Gateway College of Evangelism Marc Cullison, Connors State College Steven Cunningham, San Antonio College Callie Daniels, St. Charles Community College John Denney, Northeast Texas Community College Donna Densmore, Bossier Parish Community College Alok Dhital, University of New Mexico–Gallup
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James Michael Dubrowsky Wayne Community College Brad Dyer, Hazzard Community & Technical College Sally Edwards, Johnson County Community College John Elliott, St. Louis Community College–Meramec Gay Ellis, Missouri State University Barbara Elzey, Bluegrass Community College Dennis Evans, Concordia University Wisconsin Samantha Fay, University of Central Arkansas Victoria Fischer, California State University–Monterey Bay Dorothy French, Community College of Philadelphia Eric Garcia, South Texas College Laurice Garrett, Edison College Ramona Gartman, Gadsden State Community College– Ayers Campus Scott Gaulke, University of Wisconsin–Eau Claire Scott Gordon, University of West Georgia Teri Graville, Southern Illinois University Edwardsville Marc Grether, University of North Texas Shane Griffith, Lee University Gary Grohs, Elgin Community College Peter Haberman, Portland Community College Joseph Harris, Gulf Coast Community College Margret Hathaway, Kansas City Community College Tom Hayes, Montana State University Bill Heider, Hibbling Community College Max Hibbs, Blinn College Terry Hobbs, Metropolitan Community College–Maple Woods Sharon Holmes, Tarrant County College–Southeast Jamie Holtin, Freed-Hardeman University Brian Hons, San Antonio College Kevin Hopkins, Southwest Baptist University Teresa Houston, East Mississippi Community College Keith Hubbard, Stephen F. Austin State University Jeffrey Hughes, Hinds Community College–Raymond Matthew Isom, Arizona State University Dwayne Jennings, Union University Judy Jones, Madison Area Technical College Lucyna Kabza, Southeastern Louisiana University Aida Kadic-Galeb, University of Tampa Cheryl Kane, University of Nebraska Rahim Karimpour, Southern Illinois University Edwardsville Ryan Kasha, Valencia Community College David Kay, Moorpark College Jong Kim, Long Beach City College Lynette King, Gadsden State Community College Carolyn Kistner, St. Petersburg College Barbara Kniepkamp, Southern Illinois University Edwardsville Susan Knights, Boise State University Stephanie Kolitsch, University of Tennessee at Martin
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Louis Kolitsch, University of Tennessee at Martin William Kirby, Gadsden State Community College Karl Kruczek, Northeastern State University Conrad Krueger, San Antonio College Marcia Lambert, Pitt Community College Rebecca Lanier, Bluegrass Community College Marie Larsen, Cuesta College Pam Larson, Madison Area Technical College Jennifer Lawhon, Valencia Community College John Levko, University of Scranton Mitchel Levy, Broward Community College John Lofberg, South Dakota School of Mines and Technology Mitzi Logan, Pitt Community College Sandra Maldonado, Florida Gulf Coast University Robin C. Manker, Illinois College Manoug Manougian, University of South Florida Nancy Matthews, University of Oklahoma Roger McCoach, County College of Morris James McKinney, California Polytechnic State University– Pomona Jennifer McNeilly, University of Illinois Urbana Champaign Kathleen Miranda, SUNY College at Old Westbury Mary Ann (Molly) Misko, Gadsden State Community College Marianne Morea, SUNY College of Old Westbury Michael Nasab, Long Beach City College Said Ngobi, Victor Valley College Tonie Niblett, Northeast Alabama Community College Gary Nonnemacher, Bowling Green State University Elaine Nye, Alfred State College Rhoda Oden, Gadsden State Community College Jeannette O’Rourke, Middlesex County College Darla Ottman, Elizabethtown Community & Technical College Jason Pallett, Metropolitan Community College–Longview Priti Patel, Tarrant County College–Southeast Judy Pennington-Price, Midway College Susan Pfeifer, Butler County Community College Margaret Poitevint, North Georgia College & State University Tammy Potter, Gadsden State Community College Debra Prescott, Central Texas College Elise Price, Tarrant County College Kevin Ratliff, Blue Ridge Community College Bruce Reid, Howard Community College Jolene Rhodes, Valencia Community College Karen Rollins, University of West Georgia Randy Ross, Morehead State University Michael Sawyer, Houston Community College Richard Schnackenberg, Florida Gulf Coast University Bethany Seto, Horry-Georgetown Technical College
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Delphy Shaulis, University of Colorado–Boulder Jennifer Simonton, Southwestern Illinois College David Slay, McNeese State University David Snyder, Texas State University at San Marcos Larry L. Southard, Florida Gulf Coast University Lee Ann Spahr, Durham Technical Community College Jeganathan Sriskandarajah, Madison Area Technical College Adam Stinchcombe, Eastern Arizona College Pam Stogsdill, Bossier Parish Community College Eleanor Storey, Front Range Community College Kathy Stover, College of Southern Idaho Mary Teel, University of North Texas Carlie Thompson, Southeast Kentucky Community & Technical College Bob Tilidetzke, Charleston Southern University Stephen Toner, Victor Valley College
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Thomas Tunnell, Illinois Valley Community College Carol Ulsafer, University of Montana John Van Eps, California Polytechnic State University–San Luis Obispo Andrea Vorwark, Metropolitan Community College–Maple Woods Jim Voss, Front Range Community College Jennifer Walsh, Daytona State College Jiantian Wang, Kean University Sheryl Webb, Tennessee Technological University Bill Weber, Fort Hays State University John Weglarz, Kirkwood Community College Tressa White, Arkansas State University–Newport Cheryl Winter, Metropolitan Community College–Blue River Kenneth Word, Central Texas College Laurie Yourk, Dickinson State University
Acknowledgments I first want to express a deep appreciation for the guidance, comments and suggestions offered by all reviewers of the manuscript. I have once again found their collegial exchange of ideas and experience very refreshing and instructive, and always helping to create a better learning tool for our students. I would especially like to thank Vicki Krug for her uncanny ability to bring innumerable pieces from all directions into a unified whole; Patricia Steele for her eagle-eyed attention to detail; Katie White and Michelle Flomenhoft for their helpful suggestions, infinite patience, tireless efforts, and steady hand in bringing the manuscript to completion; John Osgood for his ready wit and creative energies, Laurie Janssen and our magnificent design team, and Dawn Bercier, the master of this large ship, whose indefatigable spirit kept the ship on course through trial and tempest, and brought us
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all safely to port. In truth, my hat is off to all the fine people at McGraw-Hill for their continuing support and belief in this series. A final word of thanks must go to Rick Armstrong, whose depth of knowledge, experience, and mathematical connections seems endless; J. D. Herdlick for his friendship and his ability to fill an instant and sudden need, Anne Marie Mosher for her contributions to various features of the text, Mitch Levy for his consultation on the exercise sets, Stephen Toner for his work on the videos, Rosemary Karr for her meticulous work on the solutions manuals, Jay Miller and Carrie Green for their invaluable ability to catch what everyone else misses; and to Rick Pescarino, Nate Wilson, and all of my colleagues at St. Louis Community College, whose friendship, encouragement and love of mathematics makes going to work each day a joy.
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Making Connections . . . Through Supplements *All online supplements are available through the book’s website: www.mhhe.com/coburn.
Instructor Supplements ⦁
⦁ ⦁
⦁
Computerized Test Bank Online: Utilizing Brownstone Diploma® algorithm-based testing software enables users to create customized exams quickly. Instructor’s Solutions Manual: Provides comprehensive, worked-out solutions to all exercises in the text. Annotated Instructor’s Edition: Contains all answers to exercises in the text, which are printed in a second color, adjacent to corresponding exercises, for ease of use by the instructor. PowerPoint Slides: Fully editable slides that follow the textbook.
Student Supplements ⦁ ⦁
Student Solutions Manual provides comprehensive, worked-out solutions to all of the odd-numbered exercises. Videos • Interactive video lectures are provided for each section in the text, which explain to the students how to do key problem types, as well as highlighting common mistakes to avoid. • Exercise videos provide step-by-step instruction for the key exercises which students will most wish to see worked out. • Graphing calculator videos help students master the most essential calculator skills used in the college algebra course. • The videos are closed-captioned for the hearing impaired, subtitled in Spanish, and meet the Americans with Disabilities Act Standards for Accessible Design.
www.mhhe.com/coburn McGraw-Hill’s MathZone is a complete online homework system for mathematics and statistics. Instructors can assign textbook-specific content from over 40 McGraw-Hill titles as well as customize the level of feedback students receive, including the ability to have students show their work for any given exercise. Assignable content includes an array of videos and other multimedia along with algorithmic exercises, providing study tools for students with many different learning styles. Within MathZone, a diagnostic assessment tool powered by ALEKS® is available to measure student preparedness and provide detailed reporting and personalized remediation. MathZone also helps ensure consistent assignment delivery across several sections through a course administration function and makes sharing courses with other instructors easy. For additional study help students have access to NetTutor™, a robust online live tutoring service that incorporates whiteboard technology to communicate mathematics. The tutoring schedules are built around peak homework times to best accommodate student schedules. Instructors can also take advantage of this whiteboard by setting up a Live Classroom for online office hours or a review session with students. For more information, visit the book’s website (www.mhhe.com/ coburn) or contact your local McGraw-Hill sales representative (www.mhhe.com/rep).
www.aleks.com ALEKS (Assessment and LEarning in Knowledge Spaces) is a dynamic online learning system for mathematics education, available over the Web 24/7. ALEKS assesses students, accurately determines their knowledge, and then guides them to the material that they are most ready to learn. With a variety of reports, Textbook Integration Plus, quizzes, and homework assignment capabilities, ALEKS offers flexibility and ease of use for instructors. • ALEKS uses artificial intelligence to determine exactly what each student knows and is ready to learn. ALEKS remediates student gaps and provides highly efficient learning and improved learning outcomes • ALEKS is a comprehensive curriculum that aligns with syllabi or specified textbooks. Used in conjunction with McGraw-Hill texts, students also receive links to text-specific videos, multimedia tutorials, and textbook pages. • Textbook Integration Plus allows ALEKS to be automatically aligned with syllabi or specified McGraw-Hill textbooks with instructor chosen dates, chapter goals, homework, and quizzes. • ALEKS with AI-2 gives instructors increased control over the scope and sequence of student learning. Students using ALEKS demonstrate a steadily increasing mastery of the content of the course. • ALEKS offers a dynamic classroom management system that enables instructors to monitor and direct student progress towards mastery of course objectives.
ALEKS Prep/Remediation: • Helps instructors meet the challenge of remediating unequally prepared or improperly placed students. • Assesses students on their pre-requisite knowledge needed for the course they are entering (i.e. Calculus students are tested on Precalculus knowledge). • Based on the assessment, students are prescribed a unique and efficient learning path specific to address their strengths and weaknesses. • Students can address pre-requisite knowledge gaps outside of class freeing the instructor to use class time pursuing course outcomes.
Electronic Textbook: CourseSmart is a new way for faculty to find and review eTextbooks. It’s also a great option for students who are interested in accessing their course materials digitally and saving money. CourseSmart offers thousands of the most commonly adopted textbooks across hundreds of courses from a wide variety of higher education publishers. It is the only place for faculty to review and compare the full text of a textbook online, providing immediate access without the environmental impact of requesting a print exam copy. At CourseSmart, students can save up to 50% off the cost of a print book, reduce their impact on the environment, and gain access to powerful web tools for learning including full text search, notes and highlighting, and email tools for sharing notes between classmates. www.CourseSmart.com
Primis: You can customize this text with McGraw-Hill/Primis Online. A digital database offers you the flexibility to customize your course including material from the largest online collection of textbooks, readings, and cases. Primis leads the way in customized eBooks with hundreds of titles available at prices that save your students over 20% off bookstore prices. Additional information is available at 800-228-0634. xxvii
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Contents Prrefface vi Preface P Pref Index of Applications
CHAPTER
R
A Review of Basic Concepts and Skills 1 R.1 R.2 R.3 R.4 R.5 R.6
CHAPTER
1
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The Language, Notation, and Numbers of Mathematics 2 Algebraic Expressions and the Properties of Real Numbers 13 Exponents, Scientific Notation, and a Review of Polynomials 21 Factoring Polynomials 35 Rational Expressions 45 Radicals and Rational Exponents 55 Overview of Chapter R: Important Definitions, Properties, Formulas, and Relationships 68 Practice Test 70
Equations and Inequalities
73
1.1 Linear Equations, Formulas, and Problem Solving 74 Technology Highlight: Using a Graphing Calculator as an Investigative Tool 81
1.2 Linear Inequalities in One Variable 86 1.3 Absolute Value Equations and Inequalities 96 Technology Highlight: Absolute Value Equations and Inequalities 100 Mid-Chapter Check 103 Reinforcing Basic Concepts: Using Distance to Understand Absolute Value Equations and Inequalities 104
1.4 Complex Numbers 105 1.5 Solving Quadratic Equations 114 Technology Highlight: The Discriminant 123
1.6 Solving Other Types of Equations 128 Summary and Concept Review 142 Mixed Review 147 Practice Test 147 Calculator Exploration and Discovery: Evaluating Expressions and Looking for Patterns 148 Strengthening Core Skills: An Alternative Method for Checking Solutions to Quadratic Equations 149
CHAPTER
2
Relations, Functions, and Graphs
151
2.1 Rectangular Coordinates; Graphing Circles and Other Relations 152 Technology Highlight: The Graph of a Circle
160
2.2 Graphs of Linear Equations 165 Technology Highlight: Linear Equations, Window Size, and Friendly Windows 173
2.3 Linear Graphs and Rates of Change 178 2.4 Functions, Function Notation, and the Graph of a Function 190 Mid-Chapter Check 205 Reinforcing Basic Concepts: The Various Forms of a Linear Equation xxviii
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2.5 Analyzing the Graph of a Function 206 Technology Highlight: Locating Zeroes, Maximums, and Minimums
217
2.6 The Toolbox Functions and Transformations 225 Technology Highlight: Function Families
234
2.7 Piecewise-Defined Functions 240 Technology Highlight: Piecewise-Defined Functions
247
2.8 The Algebra and Composition of Functions 254 Technology Highlight: Composite Functions 264 Summary and Concept Review 270 Mixed Review 277 Practice Test 279 Calculator Exploration and Discovery: Using a Simple Program to Explore Transformations 280 Strengthening Core Skills: Transformations via Composition 281 Cumulative Review: Chapters 1–2 282 Modeling With Technology I: Linear and Quadratic Equation Models 283
CHAPTER
3
Polynomial and Rational Functions 293 3.1 Quadratic Functions and Applications 294 Technology Highlight: Estimating Irrational Zeroes
299
3.2 Synthetic Division; the Remainder and Factor Theorems 304 3.3 The Zeroes of Polynomial Functions 315 Technology Highlight: The Intermediate Value Theorem and Split Screen Viewing 325
3.4 Graphing Polynomial Functions 330 Mid-Chapter Check 344 Reinforcing Basic Concepts: Approximating Real Zeroes 344
3.5 Graphing Rational Functions 345 Technology Highlight: Rational Functions and Appropriate Domains
355
3.6 Additional Insights into Rational Functions 362 Technology Highlight: Removable Discontinuities
370
3.7 Polynomial and Rational Inequalities 376 Technology Highlight: Polynomial and Rational Inequalities
383
3.8 Variation: Function Models in Action 389 Summary and Concept Review 399 Mixed Review 404 Practice Test 405 Calculator Exploration and Discovery: Complex Zeroes, Repeated Zeroes, and Inequalities 407 Strengthening Core Skills: Solving Inequalities Using the Push Principle 407 Cumulative Review: Chapters 1–3 408
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4
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Exponential and Logarithmic Functions 411 4.1 One-to-One and Inverse Functions 412 Technology Highlight: Investigating Inverse Functions
419
4.2 Exponential Functions 424 Technology Highlight: Solving Exponential Equations Graphically
431
4.3 Logarithms and Logarithmic Functions 436 Mid-Chapter Check 449 Reinforcing Basic Concepts: Linear and Logarithm Scales 450
4.4 Properties of Logarithms; Solving Exponential Logarithmic Equations 451 4.5 Applications from Business, Finance, and Science 467 Technology Highlight: Exploring Compound Interest 474 Summary and Concept Review 480 Mixed Review 484 Practice Test 485 Calculator Exploration and Discovery: Investigating Logistic Equations 486 Strengthening Core Skills: Understanding Properties of Logarithms 488 Cumulative Review: Chapters 1–4 488 Modeling With Technology II: Exponential, Logarithmic, and Other Regression Models 491
CHAPTER
5
An Introduction to Trigonometric Functions 503 5.1 5.2 5.3 5.4
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Angle Measure, Special Triangles, and Special Angles 504 The Trigonometry of Right Triangles 518 Trigonometry and the Coordinate Plane 531 Unit Circles and the Trigonometry of Real Numbers 542 Mid-Chapter Check 555 Reinforcing Basic Concepts: Trigonometry of the Real Numbers and the Wrapping Function 556 5.5 Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions 557 Technology Highlight: Exploring Amplitudes and Periods 567 5.6 Graphs of Tangent and Cotangent Functions 574 Technology Highlight: Zeroes, Asymptotes, and the Tangent/Cotangent Functions 581 5.7 Transformations and Applications of Trigonometric Graphs 587 Technology Highlight: Locating Zeroes, Roots, and x-Intercepts 595 Summary and Concept Review 601 Mixed Review 607 Practice Test 609 Calculator Exploration and Discovery: Variable Amplitudes and Modeling the Tides 611 Strengthening Core Skills: Standard Angles, Reference Angles, and the Trig Functions 612 Cumulative Review: Chapters 1–5 613
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CHAPTER
6
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Trigonometric Identities, Inverses, and Equations 615 6.1 6.2 6.3 6.4
Fundamental Identities and Families of Identities 616 Constructing and Verifying Identities 624 The Sum and Difference Identities 630 The Double-Angle, Half-Angle, and Product-to-Sum Identities 640 Mid-Chapter Check 652 Reinforcing Basic Concepts: Identities—Connections and Relationships 653 6.5 The Inverse Trig Functions and Their Applications 654 Technology Highlight: More on Inverse Functions 664 6.6 Solving Basic Trig Equations 671 Technology Highlight: Solving Equations Graphically 677 6.7 General Trig Equations and Applications 682 Summary and Concept Review 691 Mixed Review 695 Practice Test 697 Calculator Exploration and Discovery: Seeing the Beats as the Beats Go On 697 Strengthening Core Skills: Trigonometric Equations and Inequalities 698 Cumulative Review: Chapters 1–6 699 Modeling With Technology III: Trigonometric Equation Models 701
CHAPTER
7
Applications of Trigonometry
711
7.1 Oblique Triangles and the Law of Sines 712 7.2 The Law of Cosines; the Area of a Triangle 724 7.3 Vectors and Vector Diagrams 736 Technology Highlight: Vector Components Given the Magnitude and the Angle 746 Mid-Chapter Check 751 Reinforcing Basic Concepts: Scaled Drawings and the Laws of Sine and Cosine 751 7.4 Vector Applications and the Dot Product 752 7.5 Complex Numbers in Trigonometric Form 765 7.6 De Moivre’s Theorem and the Theorem on nth Roots 776 Summary and Concept Review 783 Mixed Review 787 Practice Test 788 Calculator Exploration and Discovery: Investigating Projectile Motion Strengthening Core Skills: Vectors and Static Equilibrium 791 Cumulative Review: Chapters 1–7 791
Contents
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8
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Systems of Equations and Inequalities
793
8.1 Linear Systems in Two Variables with Applications 794 Technology Highlight: Solving Systems Graphically
801
8.2 Linear Systems in Three Variables with Applications 806 Technology Highlight: More on Parameterized Solutions 813 Mid-Chapter Check 817 Reinforcing Basic Concepts: Window Size and Graphing Technology 818
8.3 Nonlinear Systems of Equations and Inequalities 819 8.4 Systems of Inequalities and Linear Programming 826 Technology Highlight: Systems of Linear Inequalities 834 Summary and Concept Review 839 Mixed Review 841 Practice Test 842 Calculator Exploration and Discovery: Optimal Solutions and Linear Programming 843 Strengthening Core Skills: Understanding Why Elimination and Substitution “Work” 844 Cumulative Review: Chapters 1–8 845
CHAPTER
9
Matrices and Matrix Applications 847 9.1 Solving Linear Systems Using Matrices and Row Operations 848 Technology Highlight: Solving Systems Using Matrices and Calculating Technology 854
9.2 The Algebra of Matrices 859 Mid-Chapter Check 870 Reinforcing Basic Concepts: More on Matrix Multiplication
871
9.3 Solving Linear Systems Using Matrix Equations 872 9.4 Applications of Matrices and Determinants: Cramer’s Rule, Partial Fractions, and More 886 Summary and Concept Review 899 Mixed Review 901 Practice Test 902 Calculator Exploration and Discovery: Cramer’s Rule 903 Strengthening Core Skills: Augmented Matrices and Matrix Inverses 904 Cumulative Review: Chapters 1–9 905 Modeling With Technology IV: Matrix Applications 907
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CHAPTER
10
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Analytic Geometry and th the he C Conic onic S Sections ections 919 919 10.1 A Brief Introduction to Analytical Analy lyti tica call Geometry Geom Ge ometry 920 0 10.2 The Circle and the Ellipse 927 10.3 The Hyperbola 940 Technology Highlight: Studying Hyperbolas 949
10.4 The Analytic Parabola 954 Mid-Chapter Check 964 Reinforcing Basic Concepts: Ellipses and Hyperbolas with Rational/Irrational Values of a and b 964
10.5 Polar Coordinates, Equations, and Graphs 965 10.6 More on the Conic Sections: Rotation of Axis and Polar Form 978 Technology Highlight: Investigating the Eccentricity e
989
10.7 Parametric Equations and Graphs 995 Technology Highlight: Exploring Parametric Graphs 1001 Summary and Concept Review 1006 Mixed Review 1010 Practice Test 1011 Calculator Exploration and Discovery: Conic Rotations in Polar Form 1012 Strengthening Core Skills: Simplifying and Streamlining Computations for the Rotation of Axes 1013 Cumulative Review: Chapters 1–10 1015
CHAPTER
11
Additional Topics in Algebra 1017 11.1 Sequences and Series 1018 Technology Highlight: Studying Sequences and Series
1023
11.2 Arithmetic Sequences 1027 11.3 Geometric Sequences 1034 11.4 Mathematical Induction 1044 Mid-Chapter Check 1051 Reinforcing Basic Concepts: Applications of Summation
1052
11.5 Counting Techniques 1053 Technology Highlight: Calculating Permutations and Combinations
1059
11.6 Introduction to Probability 1065 Technology Highlight: Principles of Quick-Counting, Combinations, and Probability 1070
11.7 The Binomial Theorem 1077 Summary and Concept Review 1085 Mixed Review 1089 Practice Test 1091 Calculator Exploration and Discovery: Infinite Series, Finite Results Strengthening Core Skills: Probability, Quick Counting, and Card Games 1093 Cumulative Review: Chapters 1–11 1094
Contents
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Appendix I
More on Synthetic Division
A-1
Appendix II
More on Matrices
Appendix III
Deriving the Equation of a Conic
Appendix IV
Selected Proofs
Appendix V
Families of Polar Curves A-13
A-3 A-5
A-7
Student Answer Appendix (SE only) SA-1 Instructor Answer Appendix (AIE only) IA-1 Index I-1
Additional Topics Online (Visit www.mhhe.com/coburn) R.7 R.8 5.0 7.7 7.8 11.8 11.9
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Geometry Review with Unit Conversions Expressions, Tables and Graphing Calculators An Introduction to Cycles and Periodic Functions Complex Numbers in Exponential Form Trigonometry, Complex Numbers, and Cubic Equations Conditional Probability and Expected Value Probability and the Normal Curve with Applications
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Index of Applications AGRICULTURE crop duster speed, 528 laying sod, 553 plowing a field, 763
ANATOMY AND PHYSIOLOGY body proportions, 292 head circumference, 495, 502 height vs. shoe size, 291 height vs. weight, 175 height vs. wing span, 290
ARCHITECTURE AND DESIGN apartment wiring, 553–554 CNN Tower, 529, 805 construction planning, 731 decorative fireplaces, 938 decorative gardens, 938 Eiffel Tower, 805 elliptical arches, 928 height of building, 525, 528–530, 609, 611, 722, 751 height of windows, 525 length of rafter, 722 pitch of a roof, 20, 175 seven-leaf rose in foyer, 1011 suspension bridges, 84
ART, FINE ARTS, THEATER Comedy of Errors, 803 cornucopia composition, 1091 mathematics and, 638 origami, 651 original value of collector’s items, 853 playtime for William Tell Overture, 818 purchase at auction, 816 rare books, 857 soft drinks sold, 880 ticket sales, 803 viewing angles at art show, 668–669
BIOLOGY AND ZOOLOGY animal birth weight, 1026 animal diet, 884 animal gestation periods, 816 animal length-to-weight models, 66 animal lifespan, 1092 animal territories, 977 animal weight, 486, 1090 bacteria growth, 434, 478, 1042 chicken production, 498
daily food intake and weight, 148 flight bird, fli ht path th off bi d 974 fruit fly population, 473 insect population, 342 observation of wildlife, 529 pest control, 19 predator/prey models, 501 species preservation, 1026 temperature and cricket chirps, 177 wildlife population growth, 54, 141, 478, 484, 498 wingspan of birds, 816
BUSINESS AND ECONOMICS account balance/service fees, 94 advertising and sales, 250, 359, 460, 464, 485 annuities, 471, 477–478, 483 balance of payments, 343 billboard design, 735 break-even analysis, 800, 804, 822, 825 business loans, 903 canned good cost, 842 car rental cost, 95, 203 cell phone charges, 140, 252 cereal package weight, 102 coffee sales, 689 company logo, 681 convenience store sales, 883 copper tubing cost, 397, 405 cost/revenue/profit, 126, 268, 315, 409, 500 credit card transactions, 291 currency conversion, 268 customer service, 1074, 1091 depreciation, 84, 176, 184, 189, 434, 464, 485, 497, 826, 1026, 1042, 1091 DVD rentals, 1084 envelope size, 139 equipment aging, 1042 exponential growth, 435 express mail rates, 288 fruit cost, 898 fuel consumption, 393 gas mileage, 177, 203 gasoline cost, 19, 803 gross domestic product, 289 home appreciation, 449, 465, 1090 home location, 993 hourly wage, 1026 households holding stock, 251, 289
inflation, 435, 1043 infl in f latio fl attio ion, n, 4435 35, 10 35 11026, 026 6, 10 104 043 43 Internet I t t commerce, 398 3988 manufacturing cost, 360, 367, 372–373, 404 marketing strategies, 444, 448 maximizing profit/revenue, 34, 71, 301–303, 832, 837–838, 841–842, 845 miles per gallon, 100 milk cost, 19 minimizing cost, 833, 838 minimum wage, 21 mixture exercises, 80, 85, 799, 803, 841 natural gas prices, 251 overtime wage, 252 package size regulations, 84 packaging material cost, 373 paper size, 134, 139, 842 patent applications, 290 patents issued, 290 personnel decisions, 1061 phone service charges, 252 postage history cost, 21 postage rates, 252 price of beef, 1015 pricing for undeveloped lots, 735 pricing strategies, 302 printing and publishing, 140, 262, 373–374 profit/loss, 221 quality control stress test, 102 rate of production, 175 real estate sales, 289 recycling cost, 358 repair cost, 21 research and development, 500 resource allocation, 884 revenue equation models, 140, 145, 146–147 running shoes cost, 140, 396 salary calculations, 92, 1086 sales goals, 1033 seasonal income, 689 seasonal revenue, 148 seasonal sales, 689 service calls, 203 sinking funds, 472 sorting coins, 803, 816, 840 spending on Internet media, 163 stock prices, 54 stock purchase, 1023
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stock value, 102 supply and demand, 397, 804, 825 surveillance camera, 735 ticket sales revenue, 1016 touch-tone phone, 647, 651 union membership, 1092 viewing angles for advertising, 669 warranties sold, 871
CHEMISTRY absorption rates of fabric, 501 chemical mixtures, 816 concentration and dilution, 360 froth height, 498 pH levels, 446, 448 photochromatic sunglasses, 435
COMMUNICATION cable length, 67 cell phone subscriptions, 127, 501 e-mail addresses, 1064 Internet connections, 189, 858 phone call volume, 397, 498 phone numbers, 1063 phone service charges, 252 radio broadcast range, 164 television programming, 1063
COMPUTERS animations, 1033 consultant salaries, 102 e-mail addresses, 1064 memory cards, 1094 ownership, 1075 repairs, 19
CONSTRUCTION building codes, 369 deck dimensions, 825 diagonal of cube, 530 fence an area, 303, 330 flooded basement, 146 home cost per square foot, 174 home improvement, 868, 903 home ventilation, 448 lawn dimensions, 20 lift capacity, 94 manufacturing cylindrical vents, 824 maximum safe load, 398, 406, 466 pitch of a roof, 20, 175 runway length, 734
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sewer line slope, 175 tool rental, 95 tunnel length, 734
CRIMINAL JUSTICE AND LEGAL STUDIES accident investigation, 67 disarm explosive device, 1075 illegal drugs seizure, 53 law enforcement, 289 prison population, 189 speeding fines, 422 stopping distance, 239, 397
DEMOGRAPHICS age, 818 AIDS cases, 501 cable television subscriptions, 496, 500 convenience store sales, 883 crop allocation, 837 debit card use, 499 eating out, 189 females in the work force, 291 fighter pilot training, 344 Goldsboro, 424, 479 homeschooling, 292 households holding stock, 251, 289 Internet connections, 189, 858 law enforcement, 289 lottery numbers, 1058 military conflicts, 1076 military expenditures, 252 military veterans, 498, 1073 military volunteer enlistments, 865 milk production, 498 multiple births, 251, 488 new books published, 288 newspapers published, 250 opinion polls, 1084 Pacific coastal population, 499 per capita debt, 32 per capita spending, 245 population density, 358 population growth, 464, 479, 486, 1042 post offices, 497 raffle tickets, 1090 reporting of ages, 252 smoking, 288 tourist population, 314 t-shirt sales, 868–869 women in politics, 289
EDUCATION AND TRAINING club membership, 869 college costs, 177 course scheduling, 1060–1061 credit hours taught, 1087 detention, 903 faculty committee, 1059 faculty retreat food cost, 869 grades, 91, 94, 361, 499, 1060 homeschooling, 292 lab project, 585 learning curves, 465 memory retention, 54, 359, 448 moving hand-over-hand across rope, 791 new and used texts, 871 scholarship awards, 1063 Stooge IQ, 857 true/false quizzes, 1075 typing speed, 54 working students, 1090
ENGINEERING Civil angle between cables, 638 nuclear cooling towers, 952 traffic and travel time, 409 traffic volume, 102, 342 Electrical AC circuits, 113, 572–573, 638, 771, 772, 775, 782 electric current, 774–775 impedance calculations, 113 parabolic car headlights, 962 parabolic receiver, 959, 962 resistance, 20, 387, 397, 405 resistors in parallel, 50 voltage calculations, 113 Mechanical fluid mechanics, 638 heat flow on pipe, 668 kinetic energy, 396 machine gears, 651 pitch diameter, 12 wind-powered energy, 67, 141, 239, 397, 423
ENVIRONMENTAL STUDIES chemical waste removal, 355 contaminated soil, 406 current speed, 517 energy rationing, 251
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forest fires, 269, 723 fuel consumption, 393 hazardous waste, 837, 1052 landfill volume, 175 motion detectors, 721 oil spills, 263 pollution removal, 141, 358 pollution testing, 1084 recycling cost, 358 resource depletion, 497 runway length, 734 solar furnace, 962 stocking a lake, 464, 1026 water rationing, 251 water usage, 611 wildlife population growth, 54 wind-powered energy, 67, 141, 239, 397, 423
FINANCE charitable giving, 1033 compound annual growth, 268 compound interest, 469, 476–477, 483–486, 1084 continuously compounding interest, 470, 477, 483, 845 debt load, 314, 499 inheritance tax, 479 interest earnings, 176, 278, 397, 803, 858 investment in coins, 189, 803, 885 investment return, 805, 898 investment strategies, 829 leaving money to grandchildren, 837 mortgage interest, 222, 478 mortgage payment, 34, 478 NYSE trading volume, 289 per capita debt, 32 simple interest, 467, 476, 483–484, 803, 812, 816 student loans, 903 subsidies for heating and cooling, 95 value of investment, 339, 446, 448, 826, 842, 1091
GEOGRAPHY AND GEOLOGY area of Nile River Delta, 735 area of Yukon Territory, 735 contour maps, 529 cradle of civilization, 84 daylight hours, 600 deep-sea fishing depth, 102
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discharge rate of rivers, 311, 685–686, 689 distance between cities, 511, 516, 530, 721, 733–734, 857 earthquakes, 163, 442–443, 447, 450, 485 geological surveys, 727 global positioning systems, 609 height of cliff, 507, 524 height of mountain, 723 land area, 79, 805, 842 land tract dimensions, 825 length of trail, 517 map distance, 722, 723 mining, 486, 497 mountain height, 443, 447 natural gas prices, 251 oceanography, 324 predicting tides, 204 rock formation, 1015 temperature of ocean water, 501 tidal motion, 571, 611–612 width of canyon, 723 width of continent, 516
HISTORY American Flag dimensions, 825 important dates in U.S. history, 805, 816 major wars, 816 postage costs, 21 Zeno’s Paradox, 1092
INDUSTRY cable winch, 553 industrial spotlight, 963 mirror manufacturing, 993 prop manufacturing, 977 solar furnace, 962–963 velocity of industrial conveyor belt, 513
INTERNATIONAL STUDIES currency conversion, 268 shoe sizing, 95, 268
MATHEMATICS analyzing graphs, 221, 328 arc length, 103, 516 area of circle, 32 of cone, 67, 139 of cylinder, 44, 83, 126–127, 224, 268, 372, 374 of frustum, 67
of inscribed circle, 164 of inscribed square, 163 of inscribed triangle, 164 of Norman window, 898 of open cylinder, 375 of parabolic segment, 826 of parallelogram, 898 of pentagon, 898 and radius, 423 of rectangle, 95, 139, 868 of rectangular box with square ends, 301 of sector, 516 of sphere, 395 of trapezoid, 826 of triangle, 95, 372, 514, 837, 857, 898, 903 of triangular pyramid, 898 art and, 638 average rate of change, 214, 215–216, 223–224, 278–279, 436 circumscribed triangle, 723 clock angles, 651 combinations and permutations books, 1062, 1091 colored balls, 1062 cornucopia, 1091 course schedules, 1060–1061 grades, 1060 group photographs, 1061, 1088 horse racing, 1061, 1088 key rings, 1090 letter permutations, 1061, 1088, 1090 license plates, 1060, 1091 lock, 1060, 1088 menu items, 1060 numbers, 1060 outfits, 1060, 1088 personnel, 1061, 1088 remote door opener, 1060 seating arrangements, 1061, 1063 songs, 1062 team members, 1062 tournament finalists, 1061 combined absolute value graphs, 253 complex numbers, 113 absolute value, 327 cubes, 113 Girolamo Cardano, 113, 329 square roots, 114, 327 complex polynomials, 127, 329
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composite figures, 140 conic sections, 220, 926, 935, 993 consecutive integers, 84, 134 constructing graphs, 222, 239, 278 correlation coefficient, 502 counting by listing and tree diagrams, 1060, 1088, 1091 cubic fit, 884 cylindrical tank dimensions, 825 diagonal of cube, 530 diagonal of rectangular parallelepiped, 530 discriminant of quadratic, 123, 145 discriminant of reduced cubic, 386 equipoise cylinder, 418 factorials, 1062 first differences, 1033 folium of Descartes, 386 functions and rational exponents, 221 geometry, 681, 734, 857–858 identities, 651 imaginary numbers, 113 involute of circle, 540 linear equations, 172, 206 maximum and minimum values, 328, 330 negative exponents, 34 nested factoring, 45 number puzzles, 134 parallelogram method, 746 perfect numbers, 1076 perimeter of rectangle, 868 Pick’s theorem, 203 polar coordinates, 977 polar curves, 977 polygon angles, 1033 probability binomial, 1083 coin toss, 102, 435, 1071, 1074, 1076 colored balls, 1075 dice, 1072, 1088, 1090 dominos, 1072 drawing a card, 1071–1073, 1088, 1090 filling a roster, 1072 going first, 1071–1072 group selection, 1073, 1076 letter selection, 1076 number selection, 1072–1073, 1076 points on a graph, 1075 production, 1072 routes, 1072 site selection, 1072
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spinning a spinner, 434, 1071–1072, 1074, 1091 winning the lottery, 435 protractor measurement, 554 Pythagorean Theorem, 63, 71, 480, 629 quadratic applications geometry, 134–135, 146 rational equation, 137 revenue, 136 work application, 136 quadratic formula, 122, 123, 282 quadratic solutions, 149 quartic polynomials, 342 radius of a ripple, 269 radius of a sphere, 422 rational function, 816 reading graphs, 266–267 regressions and parameters, 1005 Spiral of Archimedes, 540 Stirling’s Formula, 1062 sum of consecutive cubes, 388 sum of consecutive squares, 388, 1032 sum of n integers, 1032 tangent lines, 586 trigonometric graphs, 221 variation equations, 394–398, 405 volume of an egg, 398 circular coin, 405 cone, 423, 688–689, 837 conical shell, 44 cube, 32, 203, 328 cylinder/cylindrical shells, 44, 203, 224, 374, 688 equipoise cylinder, 418 hot air balloon, 147 open box, 314, 405 open cylinder, 375 rectangular box, 44, 328 sphere, 85, 238, 279 spherical cap, 374 spherical shells, 44
MEDICINE, NURSING, NUTRITION, DIETETICS, HEALTH AIDS cases, 501 appointment scheduling, 1089 body mass index, 94 deaths due to heart disease, 278 drug absorption, 465
exercise routine, 689–690 female physicians, 177, 497 fertility rates, 204 growth rates of children, 502 hodophobia, 1076 human life expectancy, 176 ideal weight, 203 low birth weight, 500 medical procedures, 928 medication in the bloodstream, 33, 54, 359, 406 multiple births, 251, 488 pediatric dosages/Clark’s Rule, 12 Poiseuille’s Law, 44 prescription drugs, 189 pressure on eardrum, 638 SARS cases, 496 smokers, 177 time of death, 464 weight loss, 497 weight of fetus, 204
METEOROLOGY addition of ordinates, 270 altitude and atmospheric pressure, 447–448 atmospheric pressure, 289, 461 atmospheric temperature, 184 avalanche conditions, 668 barometric pressure, 461, 483 jet stream altitude, 102 lake water levels, 176 monthly rainfall, 144, 609 predicting tides, 204 reservoir water levels, 343, 1087 seasonal ice thickness, 689 seasonal temperatures, 689 sinusoidal models, 571, 572 storm location, 948 temperature, 12, 95 and altitude, 422, 464 and atmospheric pressure, 443, 447 conversions, 203 drop, 12, 223, 1033 record high, 12 record low, 12 tidal motion, 571, 611–612
MUSIC classical, 869 Mozart’s arias, 884
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notes and frequency, 499 Rolling Stones, 883 sound waves, 594–595, 599
PHYSICS, ASTRONOMY, PLANETARY STUDIES acceleration of a vehicle, 189 attraction between particles, 34 boiling temperature of water, 176, 289 Boyle’s Law, 392 charged particles, 397, 952 climb rate, aircraft, 175 coefficients of friction, 586 comet path, 947–948, 1011, 1012 creating a vacuum, 1043 deflection of a beam, 387 density of objects, 329 depth and water pressure, 499 depth of a dive, 302 distance between planes, 517, 734 distance between planets, 32, 84, 717–718, 721 drag resistance on a boat, 328 elastic rebound, 1043, 1077 electron motion, 1005 fan blade speed, 541 fluid motion, 238 gravity, 215, 238, 423 acceleration due to, 239, 680 acting on object placed on ramp or inclined plane, 754 timing a falling object, 66 harmonic motion, 599 height of rainbow, 530 index of refraction, 680–681 interplanetary measurement, 554 Kepler’s Third Law, 67, 141 kinetic energy of planets, 572 light intensity, 34, 398 Lorentz transformations, 44 metric time, 21 mixture exercises, 80, 85, 799, 803, 841 model rocketry, 302 movement of light beam, 580–581 Newton’s Law of Cooling, 430, 434, 464 Newton’s law of universal gravitation, 398 particle motion, 1005 pendulums, 397, 1039, 1042, 1091 planetary motion, 992–993 planet orbit, 501, 938–939, 987, 988, 994, 1001, 1011
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projected image, 422 projectile height, 126–127, 140, 223, 292, 302–303 projectile motion, 761, 764, 790 projectile position, 670, 1000 projectile range, 221, 391, 651 projectile velocity, 44, 145, 146, 213 radioactive Carbon-14 dating, 479 radioactive decay, 436, 473–474, 479, 483, 489 radioactive half-life, 466, 473–474, 489 sound intensity, 398, 447, 449–450 sound speed, 188, 650 spaceship velocity, 465 spring oscillation, 102 star intensity, 447 supernova expansion, 269 temperature scales, 803 thermal conductivity, 884 traveling waves, 638 uniform motion, 80, 84, 800, 803–805 velocity of a falling object, 223 velocity of a particle, 382 velocity of moon, 517 velocity of planetary orbit, 517 visible light, 572 volume and pressure, 20 weight on other planets/moon, 390, 397 work and force, 755–756, 764
POLITICS city council composition, 1063 conservative and liberals in senate, 269 dependency on foreign oil, 251 federal deficit (historical data), 222 government deficits, 328, 406 guns vs. butter, 837 military expenditures, 252 per capita debt, 32 Supreme Court Justices, 175 tax reform, 805 U.S. International trade balance, 127 voting tendencies, 1070 women in politics, 289
SOCIAL SCIENCES AND HUMAN SERVICES AIDS cases, 501 females/males in the workforce, 291 homeschooling, 292 law enforcement, 289
memory retention, 54, 359, 448 population density, 358 smoking, 288
SPORTS AND LEISURE admission price, 252 amusement park attendance, 314 angle of belly-flop, 540 angle of carnival game spin, 540 angle of dive, 540 arcades, 252 archery, 1092 archery competition, 1004 athletic performance, 398 average bowling score, 148 barrel races, 554 baseball card value, 176 exponential decay of pitcher’s mound, 434 basketball free throw shooting average, 1082 height of players, 147 NBA championship, 857 salaries, 500 batting averages, 1084 blanket toss competition, 303 cartoon character height, 883 chess tournaments, 1061 circus clowns, 841 city park dimensions, 19 Clue, 1063 darts, 1075 dice games, 1072 diet and training, 884 distance to movie screen, 629 dominoes, 1072 eight ball, 1073 exercise routing, 689–690 fish tank dimensions, 826 fitness center membership, 902 flagpole height, 605 flying clubs, 952 football competition, 1004–1005 football player weight, 94 400-m race, 224 golfball distance to hole, 668 height of blimp, 723 height of climber, 529 high-wire walking, 530 hitting a target, 721, 722, 1075
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horse racing, 1061 Hurling field dimensions, 902 kiteboarding speed, 102 kite height, 67 lawn mowing, 764 Motocross miles per hour, 102 official ball size, 102 Olympic high jump records, 291 orienteering, 315 park attendance, 689 pay-per-view subscriptions, 448 photographs of dance troupes, 610–611 Pinochle, 1071 playing cards, 805, 840 poker probabilities, 1093 pool balls, 1074 pool table manufacturing, 869 projectile components, 749 pulling a sled, 763 race track area, 938–939 roller coaster design, 681 sail dimensions, 825 Scrabble, 1061 sculpture, 485 seating capacity, 1031 ski jumps, 668 snowcone dimensions, 668 soccer shooting angles, 669, 1012 softball toss, 20 spelunking, 84 sporting goods, 845 stunt pilots, 952 swimming pool hours, 34
xl
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swimming pool volume of water, 314 tandem bicycle trip, 1091 team rosters, 1064 tennis court dimensions, 127 tic-tac-toe, 1064 timed trials, 94 tough-man contest, 763 tourist population, 314 training diet, 884 training for recruits, 102 training regimen, 1052 triathalon competition, 140 trip planning, 734 Twister, 1063 velocity of carnival rides, 516 velocity of kid’s round-a-bout, 516 velocity of racing bicycle, 512 viewing angle movie screen, 663–664 walk-off home run, 1004 wheelbarrow rides, 763 Yahtzee, 1063 yoga positions, 611
TRANSPORTATION aircraft carrier distance from home port, 175 aircraft N-numbers, 1063 aircraft speed, 20, 745, 750 cruise liner smoke stacks, 19 cruise liner speed, 750 flight time, 140
fuel consumption, 393 gasoline cost, 803 highway cleanup, 397 horsepower, 489 hovering altitude, 19 hydrofoil service, 1067 moving supplies, 763 nautical distance, 734 parallel/nonparallel roads, 177 parking lot dimensions, 19 perpendicular/nonperpendicular course headings, 177 radar detection, 163, 538, 718, 721, 952–953 round-trip speed, 387 routing probabilities, 1072 runway takeoff distance, 448 submarine depth, 102 tire sales, 868 tow forces, 749 trailer dimensions, 825 train speed, 528 tugboats attempting to free a barge, 737, 744 tunnel clearance, 824
WOMEN’S ISSUES female physicians, 177, 497 females in politics, 289 females in workforce, 291 low birth weight, 500 multiple births, 251, 488
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College Algebra—
R CHAPTER CONNECTIONS
A Review of Basic Concepts and Skills CHAPTER OUTLINE R.1 The Language, Notation, and Numbers of Mathematics 2 R.2 Algebraic Expressions and the Properties of Real Numbers 13
Jared places a small inheritance of $2475 in a certificate of deposit that earns 6% interest compounded quarterly. The total in the CD after 10 years is given by the expression #
0.06 4 10 . 2475 a1 b 4 This chapter reviews the skills required to correctly determine the CD’s value, as well as other mathematical skills to be used throughout this course. This expression appears as Exercise 93 in Section R.1. Check out these other real-world connections:
R.3 Exponents, Scientific Notation, and a Review of Polynomials 21
R.4 Factoring Polynomials 35
R.5 Rational Expressions 45 R.6 Radicals and Rational Exponents 55
Pediatric Dosages and Clark’s Rule (Section R.1, Exercise 96) Maximizing Revenue of Video Game Sales (Section R.3, Exercise 143) Growth of a New Stock Hitting the Market (Section R.5, Exercise 83) Accident Investigation (Section R.6, Exercise 55)
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College Algebra—
R.1 The Language, Notation, and Numbers of Mathematics The most fundamental requirement for learning algebra is mastering the words, symbols, and numbers used to express mathematical ideas. “Words are the symbols of knowledge, the keys to accurate learning” (Norman Lewis in Word Power Made Easy, Penguin Books).
Learning Objectives In Section R.1 you will review:
A. Sets of numbers, graphing real numbers, and set notation
A. Sets of Numbers, Graphing Real Numbers, and Set Notation
B. Inequality symbols and order relations
To effectively use mathematics as a problem-solving tool, we must first be familiar with the sets of numbers used to quantify (give a numeric value to) the things we investigate. Only then can we make comparisons and develop equations that lead to informed decisions.
C. The absolute value of a real number
D. The Order of Operations
Natural Numbers The most basic numbers are those used to count physical objects: 1, 2, 3, 4, and so on. These are called natural numbers and are represented by the capital letter , often written in the special font shown. We use set notation to list or describe a set of numbers. Braces { } are used to group members or elements of the set, commas separate each member, and three dots (called an ellipsis) are used to indicate a pattern that continues indefinitely. The notation 51, 2, 3, 4, 5, p6 is read, “ is the set of numbers 1, 2, 3, 4, 5, and so on.” To show membership in a set, the symbol is used. It is read “is an element of” or “belongs to.” The statements 6 (6 is an element of ) and 0 (0 is not an element of ) are true statements. A set having no elements is called the empty or null set, and is designated by empty braces { } or the symbol .
EXAMPLE 1
Writing Sets of Numbers Using Set Notation List the set of natural numbers that are a. negative b. greater than 100 c. greater than or equal to 5 and less than 12
Solution
a. { }; all natural numbers are positive. b. 5101, 102, 103, 104, p6 c. {5, 6, 7, 8, 9, 10, 11} Now try Exercises 7 and 8
Whole Numbers Combining zero with the natural numbers produces a new set called the whole numbers 50, 1, 2, 3, 4, p6. We say that the natural numbers are a proper subset of the whole numbers, denoted ( , since every natural number is also a whole number. The symbol ( means “is a proper subset of.”
EXAMPLE 2
2
Determining Membership in a Set
Given A 51, 2, 3, 4, 5, 66, B 52, 46, and C 50, 1, 2, 3, 5, 86, determine whether the following statements are true or false. a. B ( A b. B ( C c. C ( d. C ( e. 104 f. 0 g. 2 R-2
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Section R.1 The Language, Notation, and Numbers of Mathematics
Solution
a. c. e. g.
b. False: 4 C. d. False: 0 . f. False: 0 .
True: Every element of B is in A. True: All elements are whole numbers. True: 104 is a whole number. False: 2 is a whole number.
Now try Exercises 9 through 14
Integers Numbers greater than zero are positive numbers. Every positive number has an opposite that is a negative number (a number less than zero). The set containing zero and the natural numbers with their opposites produces the set of integers 5. . . , 3, 2, 1, 0, 1, 2, 3, . . .6 . We can illustrate the location of a number (in relation to other numbers) using a number line (see Figure R.1). Negative numbers . . . 5 4 3 2 1
Figure R.1
Positive numbers 0 1 2 3 4 5
Negative 3 is the opposite of positive 3
. . .
Positive 3 is the opposite of negative 3
The number that corresponds to a given point on the number line is called the coordinate of that point. When we want to note a specific location on the line, a bold dot “•” is used and we have then graphed the number. Since we need only one coordinate to denote a location on the number line, it can be referred to as a one-dimensional graph. WORTHY OF NOTE
Rational Numbers
The integers are a subset of the rational numbers: ( , since any integer can be written as a fraction using a denominator of one: 2 2 1 and 0 01 #
Fractions and mixed numbers are part of a set called the rational numbers . A rational number is one that can be written as a fraction with an integer numerator and an integer denominator other than zero. In set notation we write 5 pq 0p, q ; q 06. The vertical bar “ 0 ” is read “such that” and indicates that a description follows. In words, we say, “ is the set of numbers of the form p over q, such that p and q are integers and q is not equal to zero.”
EXAMPLE 3
Graphing Rational Numbers Graph the fractions by converting to decimal form and estimating their location between two integers: a. 213 b. 72
Solution
a. 213 2.3333333 . . . or 2.3
7 2
b.
2.3 4 3 2 1
3.5
3.5 0
1
2
3
4
Now try Exercises 15 through 18
Since the division 72 terminated, the result is called a terminating decimal. The decimal form of 213 is called repeating and nonterminating. Recall that a repeating decimal is written with a horizontal bar over the first block of digit(s) that repeat.
Irrational Numbers Although any fraction can be written in decimal form, not all decimal numbers can be written as a fraction. One example is the number represented by the Greek letter (pi),
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frequently seen in a study of circles. Although we often approximate using 3.14, its true value has a nonrepeating and nonterminating decimal form. Other numbers of this type include 2.101001000100001 . . . (there is no block of digits that repeat), and 15 2.2360679 . . . (the decimal form never terminates). Numbers with a nonrepeating and nonterminating decimal form belong to the set of irrational numbers . EXAMPLE 4
Approximating Irrational Numbers Use a calculator as needed to approximate the value of each number given (round to 100ths), then graph them on the number line: a. 23 b. c. 219 d. 12 2
Solution
a. 23 1.73
b. 3.14 2 2
WORTHY OF NOTE
. . .
Checking the approximation for 25 shown, we obtain 2.23606792 4.999999653. While we can find better approximations by using more and more decimal places, we never obtain five exactly (although some calculators will say the result is 5 due to limitations in programming).
3 2 1
3 0
d. 12 2 0.71
c. 219 4.36
1
2
p 19 3
4
5
6
7
8
. . .
Now try Exercises 19 through 22
Real Numbers The set of rational numbers combined with the set of irrational numbers produces the set of real numbers . Figure R.2 illustrates the relationship between the sets of numbers we’ve discussed so far. Notice how each subset appears “nested” in a larger set. R (real): All rational and irrational numbers Q (rational): {qp, where p, q z and q 0} Z (integer): {. . . , 2, 1, 0, 1, 2, . . .} W (whole): {0, 1, 2, 3, . . .} N (natural): {1, 2, 3, . . .}
H (irrational): Numbers that cannot be written as the ratio of two integers; a real number that is not rational. 2, 7, 10, 0.070070007... and so on.
Figure R.2
EXAMPLE 5
Solution
Identifying Numbers
List the numbers in set A 52, 0, 5, 17, 12, 23, 4.5, 121, , 0.756 that belong to a. b. c. d. a. 2, 0, 5, 12, 23, 4.5, 0.75 c. 0, 5, 12
b. 17, 121, d. 2, 0, 5, 12 Now try Exercises 23 through 26
EXAMPLE 6
Evaluating Statements about Sets of Numbers Determine whether the statements are true or false. a. ( b. ( c. (
d. (
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Section R.1 The Language, Notation, and Numbers of Mathematics
Solution
A. You’ve just reviewed sets of numbers, graphing real numbers, and set notation
a. b. c. d.
True: All natural numbers can be written as a fraction over 1. False: No irrational number can be written in fraction form. True: All whole numbers are integers. True: Every integer is a real number. Now try Exercises 27 through 38
B. Inequality Symbols and Order Relations We compare numbers of different size using inequality notation, known as the greater than 172 and less than 162 symbols. Note that 4 6 3 is the same as saying 4 is to the left of 3 on the number line. In fact, on a number line, any given number is smaller than any number to the right of it (see Figure R.3). 4 3 2 1
a
Figure R.3
0 1 4 3
2
a b
3
4
b
Order Property of Real Numbers Given any two real numbers a and b. 1. a 6 b if a is to the left of b on the number line. 2. a 7 b if a is to the right of b on the number line. Inequality notation is used with numbers and variables to write mathematical statements. A variable is a symbol, commonly a letter of the alphabet, used to represent an unknown quantity. Over the years x, y, and n have become most common, although any letter (or symbol) can be used. Often we’ll use variables that remind us of the quantities they represent, like L for length, and D for distance.
EXAMPLE 7
Writing Mathematical Models Using Inequalities Use a variable and an inequality symbol to represent the statement: “To hit a home run out of Jacobi Park, the ball must travel over three hundred twenty-five feet.”
Solution
Let D represent distance: D 7 325 ft. Now try Exercises 39 through 42
B. You’ve just reviewed inequality symbols and order relations
In Example 7, note the number 325 itself is not a possible value for D. If the ball traveled exactly 325 ft, it would hit the fence and stay in play. Numbers that mark the limit or boundary of an inequality are called endpoints. If the endpoint(s) are not included, the less than 162 or greater than 172 symbols are used. When the endpoints are included, the less than or equal to symbol 12 or the greater than or equal to symbol 12 is used. The decision to include or exclude an endpoint is often an important one, and many mathematical decisions (and real-life decisions) depend on a clear understanding of the distinction.
C. The Absolute Value of a Real Number Any nonzero real number “n” is either a positive number or a negative number. But in some applications, our primary interest is simply the size of n, rather than its sign. This is called the absolute value of n, denoted n, and can be thought of as its distance from
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zero on the number line, regardless of the direction (see Figure R.4). Since distance is always positive or zero, n 0.
4 4
Figure R.4
EXAMPLE 8
3 3
4 3 2 1
0
1
2
3
4
Absolute Value Reading and Reasoning In the table shown, the absolute value of a number is given in column 1. Complete the remaining columns.
Solution
Column 1 (In Symbols)
Column 2 (Spoken)
Column 3 (Result)
Column 4 (Reason)
7.5
“the absolute value of seven and five-tenths”
7.5
the distance between 7.5 and 0 is 7.5 units
2
“the absolute value of negative two”
2
the distance between 2 and 0 is 2 units
6
“the opposite of the absolute value of negative six”
6
the distance between 6 and 0 is 6 units, the opposite of 6 is 6
Now try Exercises 43 through 50
Example 8 shows the absolute value of a positive number is the number itself, while the absolute value of a negative number is the opposite of that number (recall that n is positive if n itself is negative). For this reason the formal definition of absolute value is stated as follows. Absolute Value For any real number n, 0n 0 e
n n
if if
n0 n 6 0
The concept of absolute value can actually be used to find the distance between any two numbers on a number line. For instance, we know the distance between 2 and 8 is 6 (by counting). Using absolute values, we write 0 8 2 0 0 6 0 6, or 0 2 8 0 0 6 0 6. Generally, if a and b are two numbers on the real number line, the distance between them is 0 a b 0 or 0b a 0 . EXAMPLE 9
Using Absolute Value to Find the Distance between Points Find the distance between 5 and 3 on the number line.
Solution C. You’ve just reviewed the absolute value of a real number
0 5 3 0 08 0 8
or
03 152 0 0 8 0 8.
Now try Exercises 51 through 58
D. The Order of Operations The operations of addition, subtraction, multiplication, and division are defined for the set of real numbers, and the concept of absolute value plays an important role. Prior to our study of the order of operations, we will review fundamental concepts related to division and zero, exponential notation, and square roots/cube roots.
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Division and Zero EXAMPLE 10
Understanding Division with Zero by Writing the Related Product Rewrite each quotient using the related product. a. 0 8 p b. 16 c. 0 q
Solution
0 12
n
a. 0 8 p, if p # 8 0. This shows p 0. # b. 16 0 q, if q 0 16. There is no such number q. 0 c. 12 n, if n # 12 0. This shows n 0. Now try Exercises 59 through 62
WORTHY OF NOTE When a pizza is delivered to your home, it often has “8 parts to the whole,” and in fraction form we have 88. When all 8 pieces are eaten, 0 pieces remain and the fraction form becomes 08 0. However, the expression 80 is meaningless, since it would indicate a pizza that has “0 parts to the whole (??).” The special case of 00 is said to be indeterminate, as 00 n is true for all real numbers n (since the check gives n # 0 0 ✓).
In Example 10(a), a dividend of 0 and a divisor of 8 means we are going to divide zero into eight groups. The related multiplication shows there will be zero in each group. As in Example 10(b), an expression with a divisor of 0 cannot be computed or checked. Although it seems trivial, division by zero has many implications in a study of mathematics, so make an effort to know the facts: The quotient of zero and any nonzero number is zero, but division by zero is undefined. Division and Zero The quotient of zero and any real number n is zero 1n 02: 0 0. n
0n0 The expressions n 0
and
n 0
are undefined.
Squares, Cubes, and Exponential Form When a number is repeatedly multiplied by itself as in (10)(10)(10)(10), we write it using exponential notation as 104. The number used for repeated multiplication (in this case 10) is called the base, and the superscript number is called an exponent. The exponent tells how many times the base occurs as a factor, and we say 104 is written in exponential form. Numbers that result from squaring an integer are called perfect squares, while numbers that result from cubing an integer are called perfect cubes. These are often collected into a table, such as Table R.1, and memorized to help complete many common calculations mentally. Only the square and cube of selected positive integers are shown. Table R.1 Perfect Squares 2
Perfect Cubes 2
N
N
N
N
N
N3
1
1
7
49
1
1
2
4
8
64
2
8
3
9
9
81
3
27
4
16
10
100
4
64
5
25
11
121
5
125
6
36
12
144
6
216
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EXAMPLE 11
Evaluating Numbers in Exponential Form Write each exponential in expanded form, then determine its value. a. 43 b. 162 2 c. 62
Solution
d. 1 23 2 3
b. 162 2 162 # 162 36 3 8 d. A 23 B 23 # 23 # 23 27
a. 43 4 # 4 # 4 64 c. 62 16 # 62 36
Now try Exercises 63 and 64
Examples 11(b) and 11(c) illustrate an important distinction. The expression 162 2 is read, “the square of negative six” and the negative sign is included in both factors. The expression 62 is read, “the opposite of six squared,” and the square of six is calculated first, then made negative.
Square Roots and Cube Roots Index
A 3
2 For the square root operation, either the 1 or 1 notation can be used. The 1 symbol is called a radical, the number under the radical is called the radicand, and the small case number used is called the index. The index tells how many factors are needed to obtain the radicand. For example, 125 5, since 5 # 5 52 25 (when the 1 symbol is used, the index is understood to be 2). In general, 1a b only if b2 a. All numbers greater than zero have one positive and one negative square root. The positive or principal square root of 49 is 7 1 149 72 since 72 49. The negative square root of 49 is 7 1149 7). The cube root of a number has the form 3 3 3 1 a b, where b3 a. This means 1 27 3 since 33 27, and 1 8 2 since 3 122 8. The cube root of a real number has one unique real value. In general, we have the following:
Radical
Radicand
WORTHY OF NOTE
Cube Roots
2a b if b2 a
3 2 a b if b3 a
This indicates that
This indicates that
2a # 2a a
3 3 3 2 a# 2 a# 2 aa
1a 02
It is helpful to note that both 0 and 1 are their own square root, cube root, and nth root. 3 That is, 10 0, 1 0 0, . . . , n 1 0 0; and 11 1, n 3 1 1 1, . . . , 1 1 1.
EXAMPLE 12
Square Roots
or 1 1a2 2 a
1a 2
3 or 1 2a2 3 a
Evaluating Square Roots and Cube Roots Determine the value of each expression. 3 9 a. 149 b. 1 c. 216 125
Solution
d. 116
e. 125
a. 7 since 7 # 7 49 b. 5 since 5 # 5 # 5 125 3 3 # 3 9 c. 4 since 4 4 16 d. 4 since 116 4 # e. not a real number since 5 5 152152 25 Now try Exercises 65 through 70
For square roots, if the radicand is a perfect square or has perfect squares in both the numerator and denominator, the result is a rational number as in Examples 12(a) and 12(c). If the radicand is not a perfect square, the result is an irrational number. Similar statements can be made regarding cube roots [see Example 12(b)].
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9
Section R.1 The Language, Notation, and Numbers of Mathematics
The Order of Operations
WORTHY OF NOTE
When basic operations are combined into a larger mathematical expression, we use a specified priority or order of operations to evaluate them.
Sometimes the acronym PEMDAS is used as a more concise way to recall the order of operations: Parentheses, Exponents, Multiplication, Division, Addition, and Subtraction. The idea has merit, so long as you remember that multiplication and division have an equal rank, as do addition and subtraction, and these must be computed in the order they occur (from left to right).
EXAMPLE 13
The Order of Operations 1. Simplify within grouping symbols (parentheses, brackets, braces, etc.). If there are “nested” symbols of grouping, begin with the innermost group. If a fraction bar is used, simplify the numerator and denominator separately. 2. Evaluate all exponents and roots. 3. Compute all multiplications or divisions in the order they occur from left to right. 4. Compute all additions or subtractions in the order they occur from left to right.
Evaluating Expressions Using the Order of Operations Simplify using the order of operations: a. 5 2 # 3 # 0.075 12 15 c. 7500 a1 b 12
Solution
a. 5 2 # 3 5 6 11
b. 8 36 4112 32 2 4.5182 3 d. 3 1125 23
multiplication before addition result
b. 8 36 4112 3 2 8 36 4112 92 8 36 4132 8 9132 8 27 35 2
WORTHY OF NOTE Many common tendencies are hard to overcome. For instance, evaluate the expressions 3 4 # 5 and 24 6 # 2. For the first, the correct result is 23 (multiplication before addition), though some will get 35 by adding first. For the second, the correct result is 8 (multiplication or division in order), though some will get 2 by multiplying first.
d.
D. You’ve just reviewed the order of operations
4.5182 3 3 2 125 23 36 3 58 39 13 3
division before multiplication multiply result
#
0.075 12 15 b 12 # 750011.006252 12 15 750011.006252 180 7500(3.069451727) 23,020.89
c. 7500 a1
simplify within parentheses 12 9 3
original expression simplify within the parenthesis (division before addition) simplify the exponent exponents before multiplication result (rounded to hundredths) original expression
simplify terms in the numerator and denominator
combine terms result
Now try Exercises 71 through 94
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College Algebra—
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R-10
CHAPTER R A Review of Basic Concepts and Skills
R.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. The symbol ( means: is a symbol means: is an
of and the of.
2. A number corresponding to a point on the number line is called the of that point. 3. Every positive number has two square roots, one and one . The two square roots of 49 are and ; 149 represents the square root of 49.
4. The decimal form of 17 contains an infinite number of non and non digits. This means that 17 is a(n) number. 5. Discuss/Explain why the value of 12 and not 12.
# 13 23 is 423
6. Discuss/Explain (a) why 152 2 25, while 52 25; and (b) why 53 152 3 125.
DEVELOPING YOUR SKILLS b. Reorder the elements of each set from smallest to largest.
7. List the natural numbers that are a. less than 6. b. less than 1.
c. Graph the elements of each set on a number line.
23. 51, 8, 0.75, 92, 5.6, 7, 35, 66
8. List the natural numbers that are a. between 0 and 1. b. greater than 50.
24. 57, 2.1, 5.73, 356, 0, 1.12, 78 6
25. 55, 149, 2, 3, 6, 1, 13, 0, 4, 6
Identify each of the following statements as either true or false. If false, give an example that shows why.
9. (
11. 533, 35, 37, 396 (
State true or false. If false, state why.
10.
12. 52.2, 2.3, 2.4, 2.56 ( 13. 6 50, 1, 2, 3, p6
14. 1297 50, 1, 2, 3, p6
4 3
16. 78
17. 259
18. 156
Use a calculator to find the principal square root of each number (round to hundredths as needed). Then graph each number by estimating its location between two integers.
19. 7
20.
75 4
27. (
28. (
29. (
30. (
31. 225
32. 219
Match each set with its correct symbol and description/illustration.
Convert to decimal form and graph by estimating the number’s location between two integers.
15.
26. 58, 5, 235, 1.75, 22, 0.6, , 72,2646
21. 3
22.
25 2
33. 34.
Integers
a. b. c.
35.
Real numbers
36.
Rational numbers
37.
Whole numbers
e.
38.
Natural numbers
f.
For the sets in Exercises 23 through 26:
a. List all numbers that are elements of (i) , (ii) , (iii) , (iv) , (v) , and (vi) .
Irrational numbers
I. {1, 2, 3, 4, . . .} II. 5 ab, |a, b ; b 06 III. {0, 1, 2, 3, 4, . . .}
d. IV. 5, 17, 113, etc.} V. 5. . . 3, 2, 1, 0, 1, 2, 3, p6 VI. , , , ,
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College Algebra—
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Section R.1 The Language, Notation, and Numbers of Mathematics
Use a descriptive variable and an inequality symbol 1, , , 2 to write a model for each statement.
39. To spend the night at a friend’s house, Kylie must be at least 6 years old. 40. Monty can spend at most $2500 on the purchase of a used automobile. 41. If Jerod gets no more than two words incorrect on his spelling test he can play in the soccer game this weekend. 42. Andy must weigh less than 112 lb to be allowed to wrestle in his weight class at the meet. Evaluate/simplify each expression.
44. 7.24
45. 4 1 47. ` ` 2 3 49. ` ` 4
46. 6 2 48. ` ` 5 3 50. ` ` 7
Evaluate without the aid of a calculator.
121 B 36
54. What two numbers on the number line are three units from two? 55. If n is positive, then n is
.
56. If n is negative, then n is
. .
66.
3 67. 1 8
3 68. 1 64
75.
72. 45 1542
Determine which expressions are equal to zero and which are undefined. Justify your responses by writing the related multiplication.
60. 0 12 0 7
Without computing the actual answer, state whether the result will be positive or negative. Be careful to note
456
74. 0.0762 0.9034
112 2
76. 118 134 2
77. 123 2 1358 2
78. 1821214 2
79. 1122132102
80. 112102152 82. 75 1152
81. 60 12 83.
4 5
182
84. 15 12
85. 23 16 21
86. 34 78
Evaluate without a calculator, using the order of operations.
87. 12 10 2 5 132 2 88. 15 22 2 16 4 # 2 1 89.
.
62.
25 B 49
65.
73. 7.045 9.23
53. What two numbers on the number line are five units from negative three?
7 0
b. 73 d. 74
71. 24 1312
52. Write the statement two ways, then simplify. “The distance between 1325 and 235 is . . .”
61.
64. a. 172 3 c. 172 4
Perform the operation indicated without the aid of a calculator.
51. Write the statement two ways, then simplify. “The distance between 7.5 and 2.5 is . . .”
59. 12 0
b. 72 d. 75
70. What perfect cube is closest to 71?
Use the concept of absolute value to complete Exercises 51 to 58.
58. If n 7 0, then 0 n 0
63. a. 172 2 c. 172 5
69. What perfect square is closest to 78?
43. 2.75
57. If n 6 0, then 0 n 0
what power is used and whether the negative sign is included in parentheses.
91.
9 3 5 2 #a b B 16 5 3
3 2 9 25 90. a b a b 2 4 B 64
4172 62
92.
6 149
5162 32 9 164
Evaluate using a calculator (round to hundredths). #
0.06 4 10 93. 2475a1 b 4 #
0.078 52 20 b 94. 5100 a1 52
11
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CHAPTER R A Review of Basic Concepts and Skills
WORKING WITH FORMULAS
95. Pitch diameter: D
d#n n2
Mesh gears are used to transfer rotary motion and power from one shaft to another. The pitch diameter D of a drive gear is given by the formula shown, where d is the outer diameter of the gear and n is the number of teeth on the gear. Find the pitch diameter of a gear with 12 teeth and an outer diameter of 5 cm.
96. Pediatric dosages and Clark’s rule: DC
DA # W 150
The amount of medication prescribed for young children depends on their weight, height, age, body surface area and other factors. Clark’s rule is a formula that helps estimate the correct child’s dose DC based on the adult dose DA and the weight W of the child (an average adult weight of 150 lb is assumed). Compute a child’s dose if the adult dose is 50 mg and the child weighs 30 lb.
d
APPLICATIONS
Use positive and negative numbers to model the situation, then compute.
97. Temperature changes: At 6:00 P.M., the temperature was 50°F. A cold front moves through that causes the temperature to drop 3°F each hour until midnight. What is the temperature at midnight? 98. Air conditioning: Most air conditioning systems are designed to create a 2° drop in the air temperature each hour. How long would it take to reduce the air temperature from 86° to 71°?
99. Record temperatures: The state of California holds the record for the greatest temperature swing between a record high and a record low. The record high was 134°F and the record low was 45°F. How many degrees difference are there between the record high and the record low? 100. Cold fronts: In Juneau, Alaska, the temperature was 17°F early one morning. A cold front later moved in and the temperature dropped 32°F by lunch time. What was the temperature at lunch time?
EXTENDING THE CONCEPT
101. Here are some historical approximations for . Which one is closest to the true value? Archimedes: 317 Aryabhata: 62,832 20,000
355 Tsu Ch’ung-chih: 113 Brahmagupta: 110
102. If A 7 0 and B 6 0, is the product A # 1B2 positive or negative? 103. If A 6 0 and B 6 0, is the quotient 1A B2 positive or negative?
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College Algebra—
R.2 Algebraic Expressions and the Properties of Real Numbers To effectively use mathematics as a problem-solving tool, you must develop the ability to translate written or verbal information into a mathematical model. After obtaining a model, many applications require that you work effectively with algebraic terms and expressions. The basic ideas involved are reviewed here.
Learning Objectives In Section R.2 you will review how to:
A. Identify terms, coefficients, and expressions
B. Create mathematical
A. Terms, Coefficients, and Algebraic Expressions
models
An algebraic term is a collection of factors that may include numbers, variables, or expressions within parentheses. Here are some examples:
C. Evaluate algebraic expressions
D. Identify and use properties of real numbers
(2) 6P
(4) 8n2
(3) 5xy
(5) n
(6) 21x 32
If a term consists of a single nonvariable number, it is called a constant term. In (1), 3 is a constant term. Any term that contains a variable is called a variable term. We call the constant factor of a term the numerical coefficient or simply the coefficient. The coefficients for (1), (2), (3), and (4) are 3, 6, 5, and 8, respectively. In (5), the coefficient of n is 1, since 1 # n 1n n. The term in (6) has two factors as written, 2 and 1x 32. The coefficient is 2. An algebraic expression can be a single term or a sum or difference of terms. To avoid confusion when identifying the coefficient of each term, the expression can be rewritten using algebraic addition if desired: A B A 1B2. To identify the coefficient of a rational term, it sometimes helps to decompose the term, rewriting it 2 15 1n 22 and 2x 12x. using a unit fraction as in n 5
E. Simplify algebraic expressions
EXAMPLE 1
(1) 3
Identifying Terms and Coefficients State the number of terms in each expression as given, then identify the coefficient of each term. x3 2x a. 2x 5y b. c. 1x 122 d. 2x2 x 5 7
Solution
Rewritten: Number of terms: Coefficient(s):
A. You’ve just reviewed how to identify terms, coefficients, and expressions
a. 2x 15y2 b. 17 1x 32 12x2 c. 11x 122 d. 2x2 11x2 5 two 2 and 5
two 1 7
and 2
one
three
1
2, 1, and 5
Now try Exercises 7 through 14
B. Translating Written or Verbal Information into a Mathematical Model The key to solving many applied problems is finding an algebraic expression that accurately models the situation. First, we assign a variable to represent an unknown quantity, then build related expressions using words from the English language that suggest a mathematical operation. As mentioned earlier, variables that remind us of what they represent are often used in the modeling process. Capital letters are also used due to their widespread appearance in other fields. EXAMPLE 2
Translating English Phrases into Algebraic Expressions Assign a variable to the unknown number, then translate each phrase into an algebraic expression. a. twice a number, increased by five b. six less than three times the width
R-13
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CHAPTER R A Review of Basic Concepts and Skills
c. ten less than triple the payment d. two hundred fifty feet more than double the length Solution
a. Let n represent the number. Then 2n represents twice the number, and 2n 5 represents twice a number, increased by five. b. Let W represent the width. Then 3W represents three times the width, and 3W 6 represents six less than three times the width. c. Let p represent the payment. Then 3p represents a triple payment, and 3p 10 represents 10 less than triple the payment. d. Let L represent the length in feet. Then 2L represents double the length, and 2L 250 represents 250 feet more than double the length. Now try Exercises 15 through 32
Identifying and translating such phrases when they occur in context is an important problem-solving skill. Note how this is done in Example 3.
EXAMPLE 3
Creating a Mathematical Model The cost for a rental car is $35 plus 15 cents per mile. Express the cost of renting a car in terms of the number of miles driven.
Solution
B. You’ve just reviewed how to create mathematical models
Let m represent the number of miles driven. Then 0.15m represents the cost for each mile and C 35 0.15m represents the total cost for renting the car. Now try Exercises 33 through 40
C. Evaluating Algebraic Expressions We often need to evaluate expressions to investigate patterns and note relationships. Evaluating a Mathematical Expression 1. Replace each variable with open parentheses ( ). 2. Substitute the given values for each variable. 3. Simplify using the order of operations. In this evaluation, it’s best to use a vertical format, with the original expression written first, the substitutions shown next, followed by the simplified forms and the final result. The numbers substituted or “plugged into” the expression are often called the input values, with the resulting values called outputs.
EXAMPLE 4
Evaluating an Algebraic Expression Evaluate the expression x3 2x2 5 for x 3.
Solution
For x 3:
x3 2x2 5 132 3 2132 2 5 27 2192 5 27 18 5 40
substitute 3 for x
simplify: 132 3 27, 132 2 9 simplify: 2192 18 result
Now try Exercises 41 through 60
If the same expression is evaluated repeatedly, results are often collected and analyzed in a table of values, as shown in Example 5. As a practical matter, the substitutions
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College Algebra—
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Section R.2 Algebraic Expressions and the Properties of Real Numbers
15
and simplifications are often done mentally or on scratch paper, with the table showing only the input and output values.
EXAMPLE 5
Evaluating an Algebraic Expression Evaluate x2 2x 3 to complete the table shown. Which input value(s) of x cause the expression to have an output of 0?
Solution
Input x
WORTHY OF NOTE In Example 4, note the importance of the first step in the evaluation process: replace each variable with open parentheses. Skipping this step could easily lead to confusion as we try to evaluate the squared term, since 32 9, while 132 2 9. Also see Exercises 55 and 56. C. You’ve just reviewed how to evaluate algebraic expressions
Output x2 2x 3
2
5
1
0
0
3
1
4
2
3
3
0
4
5
The expression has an output of 0 when x 1 and x 3. Now try Exercises 61 through 66
For exercises that combine the skills from Examples 3 through 5, see Exercises 91 to 98.
D. Properties of Real Numbers While the phrase, “an unknown number times five,” is accurately modeled by the expression n5 for some number n, in algebra we prefer to have numerical coefficients precede variable factors. When we reorder the factors as 5n, we are using the commutative property of multiplication. A reordering of terms involves the commutative property of addition. The Commutative Properties Given that a and b represent real numbers: ADDITION:
abba
Terms can be combined in any order without changing the sum.
MULTIPLICATION:
a#bb#a
Factors can be multiplied in any order without changing the product.
Each property can be extended to include any number of terms or factors. While the commutative property implies a reordering or movement of terms (to commute implies back-and-forth movement), the associative property implies a regrouping or reassociation of terms. For example, the sum A 34 35 B 25 is easier to compute if we regroup the addends as 34 A 35 25 B . This illustrates the associative property of addition. Multiplication is also associative.
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CHAPTER R A Review of Basic Concepts and Skills
The Associative Properties Given that a, b, and c represent real numbers: ADDITION:
MULTIPLICATION:
Terms can be regrouped.
Factors can be regrouped.
1a b2 c a 1b c2
EXAMPLE 6
1a # b2 # c a # 1b # c2
Simplifying Expressions Using Properties of Real Numbers Use the commutative and associative properties to simplify each calculation. a. 38 19 58 b. 32.5 # 11.22 4 # 10
Solution
a.
3 8
19 58 19 38 58
19 1 2 19 1 18 b. 3 2.5 # 11.22 4 # 10 2.5 # 3 11.22 # 10 4 2.5 # 1122 30 3 8
WORTHY OF NOTE Is subtraction commutative? Consider a situation involving money. If you had $100, you could easily buy an item costing $20: $100 $20 leaves you with $80. But if you had $20, could you buy an item costing $100? Obviously $100 $20 is not the same as $20 $100. Subtraction is not commutative. Likewise, 100 20 is not the same as 20 100, and division is not commutative.
5 8
commutative property associative property simplify result associative property simplify result
Now try Exercises 67 and 68
For any real number x, x 0 x and 0 is called the additive identity since the original number was returned or “identified.” Similarly, 1 is called the multiplicative identity since 1 # x x. The identity properties are used extensively in the process of solving equations. The Additive and Multiplicative Identities Given that x is a real number, x0x
1#xx
Zero is the identity for addition.
One is the identity for multiplication.
For any real number x, there is a real number x such that x 1x2 0. The number x is called the additive inverse of x, since their sum results in the additive identity. Similarly, the multiplicative inverse of any nonzero number x is 1x , since p q x # 1x 1 (the multiplicative identity). This property can also be stated as q # p 1 p p q 1p, q 02 for any rational number q. Note that q and p are reciprocals. The Additive and Multiplicative Inverses Given that p, q, and x represent real numbers 1p, q 02: p q # 1 x 1x2 0 q p x and x are additive inverses.
p q
q
and p are multiplicative inverses.
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College Algebra—
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Section R.2 Algebraic Expressions and the Properties of Real Numbers
EXAMPLE 7
Determining Additive and Multiplicative Inverses Replace the box to create a true statement: # 3 x 1 # x a. b. x 4.7 5
Solution
17
a. b.
x
5 5 # 3 , since 1 3 3 5 4.7, since 4.7 14.72 0
Now try Exercises 69 and 70
The distributive property of multiplication over addition is widely used in a study of algebra, because it enables us to rewrite a product as an equivalent sum and vice versa. The Distributive Property of Multiplication over Addition Given that a, b, and c represent real numbers: a1b c2 ab ac A factor outside a sum can be distributed to each addend in the sum.
EXAMPLE 8
ab ac a1b c2 A factor common to each addend in a sum can be “undistributed” and written outside a group.
Simplifying Expressions Using the Distributive Property Apply the distributive property as appropriate. Simplify if possible. a. 71p 5.22
Solution
b. 12.5 x2
a. 71p 5.22 7p 715.22 7p 36.4
WORTHY OF NOTE From Example 8(b) we learn that a negative sign outside a group changes the sign of all terms within the group: 12.5 x2 2.5 x. D. You’ve just reviewed how to identify and use properties of real numbers
c. 7x3 x3 7x3 1x3 17 12x3 6x3
c. 7x3 x3
d.
1 5 n n 2 2
b. 12.5 x2 112.5 x2 112.52 1121x2 2.5 x 5 1 5 1 d. n na bn 2 2 2 2 6 a bn 2 3n Now try Exercises 71 through 78
E. Simplifying Algebraic Expressions Two terms are like terms only if they have the same variable factors (the coefficient is not used to identify like terms). For instance, 3x2 and 17x2 are like terms, while 5x3 and 5x2 are not. We simplify expressions by combining like terms using the distributive property, along with the commutative and associative properties. Many times the distributive property is used to eliminate grouping symbols and combine like terms within the same expression.
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CHAPTER R A Review of Basic Concepts and Skills
EXAMPLE 9
Simplifying an Algebraic Expression
Solution
712p2 12 11p2 32 14p2 7 1p2 3 114p2 1p2 2 17 32 114 12p2 4 13p2 4
Simplify the expression completely: 712p2 12 1p2 32 . original expression; note coefficient of 1 distributive property commutative and associative properties (collect like terms) distributive property result
Now try Exercises 79 through 88
The steps for simplifying an algebraic expression are summarized here: To Simplify an Expression 1. Eliminate parentheses by applying the distributive property. 2. Use the commutative and associative properties to group like terms. 3. Use the distributive property to combine like terms. E. You’ve just reviewed how to simplify algebraic expressions
As you practice with these ideas, many of the steps will become more automatic. At some point, the distributive property, the commutative and associative properties, as well as the use of algebraic addition will all be performed mentally.
R.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. A term consisting of a single number is called a(n) term.
5. Discuss/Explain why the additive inverse of 5 is 5, while the multiplicative inverse of 5 is 15.
2. A term containing a variable is called a(n) term.
6. Discuss/Explain how we can rewrite the sum 3x 6y as a product, and the product 21x 72 as a sum.
3. The constant factor in a variable term is called the .
4. When 3 # 14 # 23 is written as 3 # 23 # 14, the property has been used.
DEVELOPING YOUR SKILLS
Identify the number of terms in each expression and the coefficient of each term.
7. 3x 5y x3 9. 2x 4
8. 2a 3b n5 10. 7n 3
11. 2x2 x 5
12. 3n2 n 7
13. 1x 52
14. 1n 32
Translate each phrase into an algebraic expression.
15. seven fewer than a number 16. x decreased by six 17. the sum of a number and four 18. a number increased by nine 19. the difference between a number and five is squared
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College Algebra—
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Section R.2 Algebraic Expressions and the Properties of Real Numbers
contractor planned to construct a parking lot with a length that was 50 ft less than three times its width. Express the length of the lot in terms of the width.
20. the sum of a number and two is cubed 21. thirteen less than twice a number 22. five less than double a number 23. a number squared plus the number doubled 24. a number cubed less the number tripled 25. five fewer than two-thirds of a number 26. fourteen more than one-half of a number 27. three times the sum of a number and five, decreased by seven 28. five times the difference of a number and two, increased by six Create a mathematical model using descriptive variables.
29. The length of the rectangle is three meters less than twice the width. 30. The height of the triangle is six centimeters less than three times the base. 31. The speed of the car was fifteen miles per hour more than the speed of the bus. 32. It took Romulus three minutes more time than Remus to finish the race. 33. Hovering altitude: The helicopter was hovering 150 ft above the top of the building. Express the altitude of the helicopter in terms of the building’s height.
37. Cost of milk: In 2008, a gallon of milk cost two and one-half times what it did in 1990. Express the cost of a gallon of milk in 2008 in terms of the 1990 cost. 38. Cost of gas: In 2008, a gallon of gasoline cost one and one-half times what it did in 1990. Express the cost of a gallon of gas in 2008 in terms of the 1990 cost. 39. Pest control: In her pest control business, Judy charges $50 per call plus $12.50 per gallon of insecticide for the control of spiders and other insects. Express the total charge in terms of the number of gallons of insecticide used. 40. Computer repairs: As his reputation and referral business grew, Keith began to charge $75 per service call plus an hourly rate of $50 for the repair and maintenance of home computers. Express the cost of a service call in terms of the number of hours spent on the call. Evaluate each algebraic expression given x 2 and y 3.
41. 4x 2y
42. 5x 3y
43. 2x2 3y2
44. 5x2 4y2
45. 2y2 5y 3
46. 3x2 2x 5
47. 213y 12
48. 312y 52
2
49. 3x y
50. 6xy2
53. 12x 13y
54. 32x 12y
51. 13x2 2 4xy y2 55. 13x 2y2 2 57. 34. Stacks on a cruise liner: The smoke stacks of the luxury liner cleared the bridge by 25 ft as it passed beneath it. Express the height of the stacks in terms of the bridge’s height. 35. Dimensions of a city park: The length of a rectangular city park is 20 m more than twice its width. Express the length of the park in terms of the width. 36. Dimensions of a parking lot: In order to meet the city code while using the available space, a
19
12y 5 3x 1
59. 112y # 4
52. 12x2 2 5xy y2 56. 12x 3y2 2 58.
12x 132 3y 1
60. 7 # 127y
Evaluate each expression for integers from 3 to 3 inclusive. What input(s) give an output of zero?
61. x2 3x 4
62. x2 2x 3
63. 311 x2 6
64. 513 x2 10
65. x3 6x 4
66. x3 5x 18
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College Algebra—
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Rewrite each expression using the given property and simplify if possible.
67. Commutative property of addition a. 5 7 b. 2 n c. 4.2 a 13.6 d. 7 x 7 68. Associative property of multiplication a. 2 # 13 # 62 b. 3 # 14 # b2 c. 1.5 # 16 # a2 d. 6 # 156 # x2 Replace the box so that a true statement results.
69. a. x 13.22 b. n 56
70. a. b.
x
75. 3a 15a2
76. 13m 15m2 77. 23x 34x 78.
5 12 y
38y
79. 31a2 3a2 15a2 7a2 80. 21b2 5b2 16b2 9b2 81. x2 13x 5x2 2
84. 1x 4y 8z2 18x 5y 2z2
n 1n 3
71. 51x 2.62
85. 35 15n 42 58 1n 162 86. 23 12x 92 34 1x 122
87. 13a2 5a 72 212a2 4a 62
88. 213m2 2m 72 1m2 5m 42
72. 121v 3.22
WORKING WITH FORMULAS
89. Electrical resistance: R
kL d2
The electrical resistance in a wire depends on the length and diameter of the wire. This resistance can be modeled by the formula shown, where R is the resistance in ohms, L is the length in feet, and d is the diameter of the wire in inches. Find the resistance if k 0.000025, d 0.015 in., and L 90 ft.
2 74. 56 115 q 242
83. 13a 2b 5c2 1a b 7c2
# 23x 1x #
73. 23 115p 92
82. n2 15n 4n2 2
n
Simplify by removing all grouping symbols (as needed) and combining like terms.
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CHAPTER R A Review of Basic Concepts and Skills
90. Volume and pressure: P
k V
If temperature remains constant, the pressure of a gas held in a closed container is related to the volume of gas by the formula shown, where P is the pressure in pounds per square inch, V is the volume of gas in cubic inches, and k is a constant that depends on given conditions. Find the pressure exerted by the gas if k 440,310 and V 22,580 in3.
APPLICATIONS
Translate each key phrase into an algebraic expression, then evaluate as indicated.
91. Cruising speed: A turbo-prop airliner has a cruising speed that is one-half the cruising speed of a 767 jet aircraft. (a) Express the speed of the turbo-prop in terms of the speed of the jet, and (b) determine the speed of the airliner if the cruising speed of the jet is 550 mph. 92. Softball toss: Macklyn can throw a softball twothirds as far as her father. (a) Express the distance that Macklyn can throw a softball in terms of the distance her father can throw. (b) If her father can
throw the ball 210 ft, how far can Macklyn throw the ball? 93. Dimensions of a lawn: The length of a rectangular lawn is 3 ft more than twice its width. (a) Express the length of the lawn in terms of the width. (b) If the width is 52 ft, what is the length? 94. Pitch of a roof: To obtain the proper pitch, the crossbeam for a roof truss must be 2 ft less than three-halves the rafter. (a) Express the length of the crossbeam in terms of the rafter. (b) If the rafter is 18 ft, how long is the crossbeam?
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95. Postage costs: In 2004, a first class stamp cost 22¢ more than it did in 1978. Express the cost of a 2004 stamp in terms of the 1978 cost. If a stamp cost 15¢ in 1978, what was the cost in 2004?
97. Repair costs: The TV repairman charges a flat fee of $43.50 to come to your house and $25 per hour for labor. Express the cost of repairing a TV in terms of the time it takes to repair it. If the repair took 1.5 hr, what was the total cost?
96. Minimum wage: In 2004, the federal minimum wage was $2.85 per hour more than it was in 1976. Express the 2004 wage in terms of the 1976 wage. If the hourly wage in 1976 was $2.30, what was it in 2004?
98. Repair costs: At the local car dealership, shop charges are $79.50 to diagnose the problem and $85 per shop hour for labor. Express the cost of a repair in terms of the labor involved. If a repair takes 3.5 hr, how much will it cost?
EXTENDING THE CONCEPT
99. If C must be a positive odd integer and D must be a negative even integer, then C2 D2 must be a: a. positive odd integer. b. positive even integer. c. negative odd integer. d. negative even integer. e. Cannot be determined.
100. Historically, several attempts have been made to create metric time using factors of 10, but our current system won out. If 1 day was 10 metric hours, 1 metric hour was 10 metric minutes, and 1 metric minute was 10 metric seconds, what time would it really be if a metric clock read 4:3:5? Assume that each new day starts at midnight.
R.3 Exponents, Scientific Notation, and a Review of Polynomials Learning Objectives In Section R.3 you will review how to:
A. Apply properties of
In this section, we review basic exponential properties and operations on polynomials. Although there are five to eight exponential properties (depending on how you count them), all can be traced back to the basic definition involving repeated multiplication.
exponents
B. Perform operations in scientific notation
C. Identify and classify polynomial expressions
D. Add and subtract
A. The Properties of Exponents As noted in Section R.1, an exponent tells how many times the base occurs as a factor. For b # b # b b3, we say b3 is written in exponential form. In some cases, we may refer to b3 as an exponential term.
polynomials
E. Compute the product of
Exponential Notation bn b # b # b # . . . # b
products: binomial conjugates and binomial squares
and
n times
b # b # b # . . . # b bn
⎞ ⎜ ⎜ ⎜ ⎬ ⎜ ⎜ ⎠
For any positive integer n,
F. Compute special
⎞ ⎜ ⎜ ⎜ ⎬ ⎜ ⎜ ⎠
two polynomials
n times
The Product and Power Properties There are two properties that follow immediately from this definition. When b3 is multiplied by b2, we have an uninterrupted string of five factors: b3 # b2 1b # b # b2 # 1b # b2, which can be written as b5. This is an example of the product property of exponents.
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WORTHY OF NOTE
Product Property Of Exponents
In this statement of the product property and the exponential properties that follow, it is assumed that for any expression of the form 0m, m 7 0 hence 0m 0.
For any base b and positive integers m and n: bm # bn bmn In words, the property says, to multiply exponential terms with the same base, keep the common base and add the exponents. A special application of the product property uses repeated factors of the same exponential term, as in 1x2 2 3. Using the product property, we have 1x2 21x2 21x2 2 x6. Notice the same result can be found more quickly by # multiplying the inner exponent by the outer exponent: 1x2 2 3 x2 3 x6. We generalize this idea to state the power property of exponents. In words the property says, to raise an exponential term to a power, keep the same base and multiply the exponents. Power Property of Exponents For any base b and positive integers m and n: 1bm 2 n bm n #
EXAMPLE 1
Multiplying Terms Using Exponential Properties Compute each product. a. 4x3 # 12x2 b. 1 p3 2 2 # 1 p4 2 2
Solution
a. 4x3
b. 1 p3 2 2
# 12x2 14 # 12 21x3 # x2 2
#
122 1x32 2 2 x5 1 p4 2 2 p6 # p8 p68 p14
commutative and associative properties product property; simplify result power property product property result
Now try Exercises 7 through 12
The power property can easily be extended to include more than one factor within the parentheses. This application of the power property is sometimes called the product to a power property. We can also raise a quotient of exponential terms to a power. The result is called the quotient to a power property, and can be extended to include any number of factors. In words the properties say, to raise a product or quotient of exponential terms to a power, multiply every exponent inside the parentheses by the exponent outside the parentheses. Product to a Power Property For any bases a and b, and positive integers m, n, and p: 1ambn 2 p amp # bnp
Quotient to a Power Property For any bases a and b 0, and positive integers m, n, and p: a
am p amp b np bn b
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EXAMPLE 2
Simplifying Terms Using the Power Properties Simplify using the power property (if possible): 5a3 2 b a. 13a2 2 b. 3a2 c. a 2b
Solution
WORTHY OF NOTE Regarding Examples 2(a) and 2(b), note the difference between the expressions 13a2 2 13 # a2 2 and 3a2 3 # a2. In the first, the exponent acts on both the negative 3 and the a; in the second, the exponent acts on only the a and there is no “product to a power.”
EXAMPLE 3
a. 13a2 2 132 2 # 1a1 2 2 9a2 152 2 1a3 2 2 5a3 2 c. a b 2b 22b2 25a6 4b2
b. 3a2 is in simplified form
Now try Exercises 13 through 24
Applications of exponents sometimes involve linking one exponential term with another using a substitution. The result is then simplified using exponential properties.
Applying the Power Property after a Substitution The formula for the volume of a cube is V S3, where S is the length of one edge. If the length of each edge is 2x2: a. Find a formula for volume in terms of x. b. Find the volume if x 2.
Solution
a. V S3 S 2x ↓ 12x2 2 3 8x6
2
2x2 2x2
2x2 b. For V 8x6, 6 V 8122 substitute 2 for x 8 # 64 or 512 122 6 64 The volume of the cube would be 512 units3.
Now try Exercises 25 and 26
The Quotient Property of Exponents x 1 for x 0, we note a x x5 x#x#x#x#x pattern that helps to simplify a quotient of exponential terms. For 2 x#x x 3 or x , the exponent of the final result appears to be the difference between the exponent in the numerator and the exponent in the denominator. This seems reasonable since the subtraction would indicate a removal of the factors that reduce to 1. Regardless of how many factors are used, we can generalize the idea and state the quotient property of exponents. In words the property says, to divide two exponential terms with the same base, keep the common base and subtract the exponent of the denominator from the exponent of the numerator. By combining exponential notation and the property
Quotient Property of Exponents For any base b 0 and positive integers m and n:
bm bmn bn
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Zero and Negative Numbers as Exponents If the exponent of the denominator is greater than the exponent in the numerator, the x2 quotient property yields a negative exponent: 5 x25 x3. To help understand x what a negative exponent means, let’s look at the expanded form of the expression: x2 x # x1 1 3 # A negative exponent can literally be interpreted as “write # # # # 5 x x x x x x x the factors as a reciprocal.” A good way to remember this is three factors of 2
!
!
23
written as a reciprocal
23 1 1 3 1 8 2
Since the result would be similar regardless of the base used, we can generalize this idea and state the property of negative exponents. WORTHY OF NOTE The use of zero as an exponent should not strike you as strange or odd; it’s simply a way of saying that no factors of the base remain, since all terms have 23 been reduced to 1. For 3 , 2 1 1 1 # # 8 2 2 2 we have 1, or 1, 8 2#2#2 or 233 20 1.
Property of Negative Exponents For any base b 0 and integer n: bn 1 n 1 b
1 bn n b 1
a n b n a b a b ;a0 a b
x3 x3 by division, and 1 x33 x0 using the x3 x3 quotient property, we conclude that x0 1 as long as x 0. We can also generalize this observation and state the meaning of zero as an exponent. In words the property says, any nonzero quantity raised to an exponent of zero is equal to 1. Finally, when we consider that
Zero Exponent Property For any base b 0: b0 1
EXAMPLE 4
Solution
Simplifying Expressions Using Exponential Properties Simplify using exponential properties. Answer using positive exponents only. 2a3 2 a. a 2 b b. 13hk2 2 3 16h2k3 2 2 b 12m2n3 2 5 c. 13x2 0 3x0 32 d. 14mn2 2 3 3 2 2 2 2a b a. a 2 b a 3 b property of negative exponents b 2a
1b2 2 2
22 1a3 2 2 b4 6 4a
power property
result
b. 13hk2 2 3 16h2k3 2 2 133h3k6 2 162h4k6 2 33 # 62 # h34 # k66 27h7k0 36 3h7 4
power property product property simplify a62 result 1k 0 12
1 62
1 b 36
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WORTHY OF NOTE Notice in Example 4(c), we have 13x2 0 13 # x2 0 1, while 3x0 3 # x0 3112. This is another example of operations and grouping symbols working together: 13x2 0 1 because any quantity to the zero power is 1. However, for 3x0 there are no grouping symbols, so the exponent 0 acts only on the x and not the 3.
Section R.3 Exponents, Scientific Notation, and a Review of Polynomials
c. 13x2 0 3x0 32 1 3112 4
d.
12m2n3 2 5 14mn2 2 3
1 32
1 9
1 37 4 9 9 122 5 1m2 2 5 1n3 2 5
43m3 1n2 2 3 32m10n15 64m3n6 1m7n9 2 m7n9 2
25
zero exponent property; property of negative exponents
simplify
result
power property
simplify
quotient property
result
Now try Exercises 27 through 66
Summary of Exponential Properties
A. You’ve just reviewed how to apply properties of exponents
For real numbers a and b, and integers m, n, and p (excluding 0 raised to a nonpositive power) bm # bn bmn Product property: # Power property: 1bm 2 n bm n Product to a power: 1ambn 2 p amp # bnp am p amp Quotient to a power: a n b np 1b 02 b b m b Quotient property: bmn 1b 02 bn Zero exponents: b0 1 1b 02 bn 1 1 a n b n Negative exponents: n , n bn, a b a b 1a, b 02 a 1 b b b
B. Exponents and Scientific Notation In many technical and scientific applications, we encounter numbers that are either extremely large or very, very small. For example, the mass of the moon is over 73 quintillion kilograms (73 followed by 18 zeroes), while the constant for universal gravitation contains 10 zeroes before the first nonzero digit. When computing with numbers of this size, scientific notation has a distinct advantage over the common decimal notation (base-10 place values). WORTHY OF NOTE Recall that multiplying by 10’s (or multiplying by 10k, k 7 02 shifts the decimal to the right k places, making the number larger. Dividing by 10’s (or multiplying by 10k, k 7 0) shifts the decimal to the left k places, making the number smaller.
Scientific Notation A non-zero number written in scientific notation has the form N 10k
where 1 0 N 0 6 10 and k is an integer. To convert a number from decimal notation into scientific notation, we begin by placing the decimal point to the immediate right of the first nonzero digit (creating a number less than 10 but greater than or equal to 1) and multiplying by 10k. Then we
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determine the power of 10 (the value of k) needed to ensure that the two forms are equivalent. When writing large or small numbers in scientific notation, we sometimes round the value of N to two or three decimal places.
EXAMPLE 5
Converting from Decimal Notation to Scientific Notation The mass of the moon is about 73,000,000,000,000,000,000 kg. Write this number in scientific notation.
Solution
Place decimal to the right of first nonzero digit (7) and multiply by 10k. 73,000,000,000,000,000,000 7.3 10k To return the decimal to its original position would require 19 shifts to the right, so k must be positive 19. 73,000,000,000,000,000,000 7.3 1019 The mass of the moon is 7.3 1019 kg. Now try Exercises 67 and 68
Converting a number from scientific notation to decimal notation is simply an application of multiplication or division with powers of 10.
EXAMPLE 6
Converting from Scientific Notation to Decimal Notation The constant of gravitation is 6.67 1011. Write this number in common decimal form.
Solution
B. You’ve just reviewed how to perform operations in scientific notation
Since the exponent is negative 11, shift the decimal 11 places to the left, using placeholder zeroes as needed to return the decimal to its original position: 6.67 1011 0.000 000 000 066 7 Now try Exercises 69 through 72
C. Identifying and Classifying Polynomial Expressions A monomial is a term using only whole number exponents on variables, with no variables in the denominator. One important characteristic of a monomial is its degree. For a monomial in one variable, the degree is the same as the exponent on the variable. The degree of a monomial in two or more variables is the sum of exponents occurring on variable factors. A polynomial is a monomial or any sum or difference of monomial terms. For instance, 12x2 5x 6 is a polynomial, while 3n2 2n 7 is not (the exponent 2 is not a whole number). Identifying polynomials is an important skill because they represent a very different kind of real-world model than nonpolynomials. In addition, there are different families of polynomials, with each family having different characteristics. We classify polynomials according to their degree and number of terms. The degree of a polynomial in one variable is the largest exponent occurring on the variable. The degree of a polynomial in more than one variable is the largest sum of exponents in any one term. A polynomial with two terms is called a binomial (bi means two) and a polynomial with three terms is called a trinomial (tri means three). There are special names for polynomials with four or more terms, but for these, we simply use the general name polynomial (poly means many).
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EXAMPLE 7
27
Classifying and Describing Polynomials For each expression: a. Classify as a monomial, binomial, trinomial, or polynomial. b. State the degree of the polynomial. c. Name the coefficient of each term.
Solution
Expression
Classification
Degree
5x y 2xy
binomial
three
5, 2
x2 0.81
binomial
two
1, 0.81
z3 3z2 9z 27
polynomial (four terms)
three
1, 3, 9, 27
binomial
one
trinomial
two
2
3 4 x 2
5
2x x 3
Coefficients
3 4 ,
5
2, 1, 3
Now try Exercises 73 through 78
A polynomial expression is in standard form when the terms of the polynomial are written in descending order of degree, beginning with the highest-degree term. The coefficient of the highest-degree term is called the leading coefficient.
EXAMPLE 8
Writing Polynomials in Standard Form Write each polynomial in standard form, then identify the leading coefficient.
Solution
Polynomial
Standard Form x2 9
9 x2 5z 7z 3z 27 2
3
2 1 3 4 2x
C. You’ve just reviewed how to identify and classify polynomial expressions
Leading Coefficient 1
3z 7z 5z 27
3 2x2 x
3
2
3 4 x 2
2
3 3 4
2x x 3
2
Now try Exercises 79 through 84
D. Adding and Subtracting Polynomials Adding polynomials simply involves using the distributive, commutative, and associative properties to combine like terms (at this point, the properties are usually applied mentally). As with real numbers, the subtraction of polynomials involves adding the opposite of the second polynomial using algebraic addition. This can be viewed as distributing 1 to the second polynomial and combining like terms. EXAMPLE 9
Adding and Subtracting Polynomials Perform the indicated operations:
10.7n3 4n2 82 10.5n3 n2 6n2 13n2 7n 102.
Solution
0.7n3 4n2 8 0.5n3 n2 6n 3n2 7n 10 0.7n3 0.5n3 4n2 1n2 3n2 6n 7n 8 10 1.2n3 13n 18
eliminate parentheses (distributive property) use real number properties to collect like terms combine like terms
Now try Exercises 85 through 90
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Sometimes it’s easier to add or subtract polynomials using a vertical format and aligning like terms. Note the use of a placeholder zero in Example 10.
EXAMPLE 10
Subtracting Polynomials Using a Vertical Format Compute the difference of x3 5x 9 and x3 3x2 2x 8 using a vertical format.
Solution
D. You’ve just reviewed how to add and subtract polynomials
x3 0 x2 5x 9 x3 0x2 5x 9 3 2 1x 3x 2x 82 ¡ x3 3x2 2x 8 3x2 7x 17 2 The difference is 3x 7x 17. Now try Exercises 91 and 92
E. The Product of Two Polynomials Monomial Times Monomial The simplest case of polynomial multiplication is the product of monomials shown in Example 1(a). These were computed using exponential properties and the properties of real numbers.
Monomial Times Polynomial To compute the product of a monomial and a polynomial, we use the distributive property.
EXAMPLE 11
Solution
Multiplying a Monomial by a Polynomial Find the product: 2a2 1a2 2a 12.
2a2 1a2 2a 12 2a2 1a2 2 12a2 212a1 2 12a2 2112 2a4 4a3 2a2
distribute simplify
Now try Exercises 93 and 94
Binomial Times Polynomial For products involving binomials, we still use a version of the distributive property— this time to distribute one polynomial to each term of the other polynomial factor. Note the distribution can be performed either from the left or from the right.
EXAMPLE 12
Multiplying a Binomial by a Polynomial Multiply as indicated: a. 12z 12 1z 22
Solution
b. 12v 3214v2 6v 92
a. 12z 12 1z 22 2z1z 22 11z 22 distribute to every term in the first binomial eliminate parentheses (distribute again) 2z2 4z 1z 2 simplify 2z2 3z 2 2 2 b. 12v 32 14v 6v 92 2v14v 6v 92 314v2 6v 92 distribute 8v3 12v2 18v 12v2 18v 27 simplify combine like 8v3 27 terms Now try Exercises 95 through 100
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The F-O-I-L Method By observing the product of two binomials in Example 12(a), we note a pattern that can make the process more efficient. We illustrate here using the product 12x 12 13x 22. The F-O-I-L Method for Multiplying Binomials The product of two binomials can quickly be computed by multiplying: 6x2 4x 3x 2 First Outer Inner Last
Last First
and combining like terms
S
S
S
S
S
S
S
S
12x 1213x 22
6x2 x 2
Inner Outer
The first term of the result will always be the product of the first terms from each binomial, and the last term of the result is the product of their last terms. We also note that here, the middle term is found by adding the outermost product with the innermost product. As you practice with the F-O-I-L process, much of the work can be done mentally and you can often compute the entire product without writing anything down except the answer.
Compute each product mentally: a. 15n 121n 22 b. 12b 32 15b 62
Consider the product 1x 32 1x 22 in the context of area. If we view x 3 as the length of a rectangle (an unknown length plus 3 units), and x 2 as its width (the same unknown length plus 2 units), a diagram of the total area would look like the following, with the result x2 5x 6 clearly visible. x
10n (1n) 9n
product of first two terms
sum of outer and inner
S
5n2 9n 2 S
a. 15n 121n 22:
product of last two terms
12b 15b 3b
b. 12b 3215b 62: 10b2 3b 18 product of first two terms
S
WORTHY OF NOTE
S
E. You’ve just reviewed how to compute the product of two polynomials
Solution
Multiplying Binomials Using F-O-I-L
S
S
EXAMPLE 13
sum of outer and inner
product of last two terms
Now try Exercises 101 through 116
3
F. Special Polynomial Products x
x2
3x
2
2x
6
(x 3)(x 2) x2 5x 6
Certain polynomial products are considered “special” for two reasons: (1) the product follows a predictable pattern, and (2) the result can be used to simplify expressions, graph functions, solve equations, and/or develop other skills.
Binomial Conjugates Expressions like x 7 and x 7 are called binomial conjugates. For any given binomial, its conjugate is found by using the same two terms with the opposite sign between
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them. Example 14 shows that when we multiply a binomial and its conjugate, the “outers” and “inners” sum to zero and the result is a difference of two squares.
EXAMPLE 14
Multiplying Binomial Conjugates Compute each product mentally: a. 1x 72 1x 72 b. 12x 5y2 12x 5y2
2 2 c. ax bax b 5 5
7x 7x 0x
Solution
a. 1x 72 1x 72 x2 49
difference of squares 1x2 2 172 2
10xy (10xy) 0xy
b. 12x 5y2 12x 5y2 4x2 25y2
difference of squares: 12x2 2 15y2 2
52 x 25 x 0
2 4 2 c. ax b ax b x2 5 5 25
2 2 difference of squares: x 2 a b 5
Now try Exercises 117 through 124
The Product of a Binomial and Its Conjugate Given any expression that can be written in the form A B, the conjugate of the expression is A B and their product is a difference of two squares: 1A B21A B2 A2 B2
Binomial Squares
Expressions like 1x 72 2 are called binomial squares and are useful for solving many equations and sketching a number of basic graphs. Note 1x 72 2 1x 721x 72 x2 14x 49 using the F-O-I-L process. The expression x2 14x 49 is called a perfect square trinomial because it is the result of expanding a binomial square. If we write a binomial square in the more general form 1A B2 2 1A B21A B2 and compute the product, we notice a pattern that helps us write the expanded form more quickly. 1A B2 2 1A B2 1A B2 A2 AB AB B2 A2 2AB B2
LOOKING AHEAD Although a binomial square can always be found using repeated factors and F-O-I-L, learning to expand them using the pattern is a valuable skill. Binomial squares occur often in a study of algebra and it helps to find the expanded form quickly.
repeated multiplication F-O-I-L simplify (perfect square trinomial)
The first and last terms of the trinomial are squares of the terms A and B. Also, the middle term of the trinomial is twice the product of these two terms: AB AB 2AB. The F-O-I-L process shows us why. Since the outer and inner products are identical, we always end up with two. A similar result holds for 1A B2 2 and the process can be summarized for both cases using the symbol. The Square of a Binomial Given any expression that can be written in the form 1A B2 2, 1. 1A B2 2 A2 2AB B2 2. 1A B2 2 A2 2AB B2
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CAUTION
EXAMPLE 15
Solution
F. You’ve just reviewed how to compute special products: binomial conjugates and binomial squares
Note the square of a binomial always results in a trinomial (three terms). Specifically 1A B2 2 Z A2 B2.
Find each binomial square without using F-O-I-L: a. 1a 92 2 b. 13x 52 2 c. 13 1x2 2 a. 1a 92 2 a2 21a # 92 92 a2 18a 81 b. 13x 52 2 13x2 2 213x # 52 52 9x2 30x 25 c. 13 1x2 2 9 213 # 1x2 x 9 6 1x x
1A B2 2 A 2 2AB B 2
simplify 1A B2 2 A 2 2AB B 2 simplify 1A B2 2 A 2 2AB B 2 simplify
Now try Exercises 125 through 136
With practice, you will be able to go directly from the binomial square to the resulting trinomial.
R.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. The equation 13x2 2 3 27x6 is an example of the property of exponents. 2. The equation 12x3 2 2 property of
1 is an example of the 4x6 exponents.
3. The sum of the “outers” and “inners” for 12x 52 2 is , while the sum of outers and inners for 12x 5212x 52 is .
4. The expression 2x2 3x 10 can be classified as a of degree , with a leading coefficient of . 5. Discuss/Explain why one of the following expressions can be simplified further, while the other cannot: (a) 7n4 3n2; (b) 7n4 # 3n2. 6. Discuss/Explain why the degree of 2x2y3 is greater than the degree of 2x2 y3. Include additional examples for contrast and comparison.
DEVELOPING YOUR SKILLS
Determine each product using the product and/or power properties.
7.
2 2# n 21n5 3
9. 16p2q2 12p3q3 2
11. 1a2 2 4 # 1a3 2 2 # b2 # b5
3 8. 24g5 # g9 8 10. 11.5vy2 218v4y2
12. d2 # d 4 # 1c5 2 2 # 1c3 2 2
Simplify each expression using the product to a power property.
13. 16pq2 2 3
15. 13.2hk2 2 3 17. a
p 2 b 2q
14. 13p2q2 2
16. 12.5h5k2 2 18. a
b 3 b 3a
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19. 10.7c4 2 2 110c3d2 2 2
20. 12.5a3 2 2 13a2b2 2 3
21.
22.
23.
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CHAPTER R A Review of Basic Concepts and Skills
A 34x3y B 2 A 38x B 2 A 16xy2 B
24.
Use properties of exponents to simplify the following. Write the answer using positive exponents only.
A 45x3 B 2 A 23m2n B 2 # A 12mn2 B
47.
25. Volume of a cube: The formula 3x2 for the volume of a cube is V S3, where S is the length of one edge. If the length of each edge is 3x2, 3x2 a. Find a formula for volume in terms of the variable x. b. Find the volume of the cube if x 2. 26. Area of a circle: The formula for the area of a circle is A r2, where r is the length of the radius. If the radius is given as 5x3, a. Find a formula for area in terms of the variable x. b. Find the area of the circle if x 2.
49. 3x2
Simplify using the quotient property or the property of negative exponents. Write answers using positive exponents only.
12p4q6 20h2 12h5
5m5n2 10m5n
50.
5k3 20k2 153 2 4
a3 # b 4 53. a 2 b c
54.
1p4q8 2 2
55.
56.
57.
1a2 2 3
48.
52.
51.
5x3
9p6q4
a4 # a5
612x3 2 2 10x2
14a3bc0 713a2b2c2 3
59. 40 50 61. 21 51 63. 30 31 32 65. 5x0 15x2 0
58.
59
p5q2
18n3 813n2 2 3
312x3y4z2 2 18x2yz0
60. 132 0 172 0 62. 41 81
64. 22 21 20 66. 2n0 12n2 0
Convert the following numbers to scientific notation.
27.
6w 2w2
28.
8z 16z5
67. In mid-2007, the U.S. Census Bureau estimated the world population at nearly 6,600,000,000 people.
29.
12a3b5 4a2b4
30.
5m3n5 10mn2
68. The mass of a proton is generally given as 0.000 000 000 000 000 000 000 000 001 670 kg.
5
31. 33.
7
A 23 B 3
32.
2 h3
34.
A 56 B 1
Convert the following numbers to decimal notation.
3 m2
35. 122 3
36. 142 2
37.
38.
A B
1 3 2
69. As of 2006, the smallest microprocessors in common use measured 6.5 109 m across. 70. In 2007, the estimated net worth of Bill Gates, the founder of Microsoft, was 5.6 1010 dollars.
A B
2 2 3
Simplify each expression using the quotient to a power property. 2
39. a
2p4
b
40. a
5v4 2 b 7w3
41. a
0.2x2 3 b 0.3y3
42. a
0.5a3 2 b 0.4b2
q3
2 3 2
43. a
5m n b 2r4
45. a
5p2q3r4
b 2pq2r4
44. a 2
46. a
3
4p
3x2y
3
b
9p3q2r3
3
b 12p5qr2
Compute using scientific notation. Show all work.
71. The average distance between the Earth and the planet Jupiter is 465,000,000 mi. How many hours would it take a satellite to reach the planet if it traveled an average speed of 17,500 mi per hour? How many days? Round to the nearest whole. 72. In fiscal terms, a nation’s debt-per-capita is the ratio of its total debt to its total population. In the year 2007, the total U.S. debt was estimated at $9,010,000,000,000, while the population was estimated at 303,000,000. What was the U.S. debtper-capita ratio for 2007? Round to the nearest whole dollar.
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College Algebra—
R-33
Section R.3 Exponents, Scientific Notation, and a Review of Polynomials
Identify each expression as a polynomial or nonpolynomial (if a nonpolynomial, state why); classify each as a monomial, binomial, trinomial, or none of these; and state the degree of the polynomial.
73. 35w3 2w2 112w2 14 74. 2x3 23x2 12x 1.2 75. 5n2 4n 117 77. p3 25
4 76. 3 2.7r2 r 1 r 78. q3 2q2 5q
Write the polynomial in standard form and name the leading coefficient.
79. 7w 8.2 w3 3w2 80. 2k2 12 k 81. c 6 2c 3c 3
2
82. 3v3 14 2v2 112v2 83. 12 23x2
84. 8 2n 7n 2
96. 1s 32 15s 42
97. 1x 32 1x2 3x 92
98. 1z 52 1z2 5z 252
99. 1b2 3b 282 1b 22
100. 12h2 3h 82 1h 12 101. 17v 42 13v 52
102. 16w 1212w 52
105. 1p 2.521p 3.62
106. 1q 4.921q 1.22
103. 13 m213 m2 107. 1x 12 21x 14 2
109. 1m 34 21m 34 2
111. 13x 2y212x 5y2 113. 14c d2 13c 5d2 115. 12x2 521x2 32
104. 15 n215 n2 108. 1z 13 21z 56 2
110. 1n 25 21n 25 2
112. 16a b21a 3b2
114. 15x 3y212x 3y2 116. 13y2 2212y2 12
For each binomial, determine its conjugate and then find the product of the binomial with its conjugate.
117. 4m 3
118. 6n 5
85. 13p3 4p2 2p 72 1p2 2p 52
119. 7x 10
120. c 3
86. 15q2 3q 42 13q2 3q 42
121. 6 5k
122. 11 3r
87. 15.75b2 2.6b 1.92 12.1b2 3.2b2
123. x 16
124. p 12
88. 10.4n2 5n 0.52 10.3n2 2n 0.752
Find each binomial square.
90. 1 59n2 4n 12 2 1 23n2 2n 34 2
127. 14g 32 2
Find the indicated sum or difference.
89. 1 34x2 5x 22 1 12x2 3x 42
91. Subtract q5 2q4 q2 2q from q6 2q5 q4 2q3 using a vertical format. 92. Find x4 2x3 x2 2x decreased by x4 3x3 4x2 3x using a vertical format. Compute each product.
93. 3x1x2 x 62
94. 2v 1v 2v 152 2
2
95. 13r 52 1r 22
33
125. 1x 42 2
126. 1a 32 2
129. 14p 3q2 2
130. 15c 6d2 2
131. 14 1x2 2
128. 15x 32 2
132. 1 1x 72 2
Compute each product.
133. 1x 32 1y 22
134. 1a 321b 52
135. 1k 52 1k 621k 22
136. 1a 621a 121a 52
WORKING WITH FORMULAS
137. Medication in the bloodstream: M 0.5t4 3t3 97t2 348t If 400 mg of a pain medication are taken orally, the number of milligrams in the bloodstream is modeled by the formula shown, where M is the number of milligrams and t is the time in hours, 0 t 6 5. Construct a table of values for t 1 through 5, then answer the following.
a. How many milligrams are in the bloodstream after 2 hr? After 3 hr? b. Based on parts a and b, would you expect the number of milligrams in the bloodstream after 4 hr to be less or more than in part b? Why? c. Approximately how many hours until the medication wears off (the number of milligrams in the bloodstream is 0)?
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138. Amount of a mortgage payment: n
r r ba1 b 12 12 M n r a1 b 1 12 The monthly mortgage payment required to pay off (or amortize) a loan is given by the formula shown, Aa
where M is the monthly payment, A is the original amount of the loan, r is the annual interest rate, and n is the term of the loan in months. Find the monthly payment (to the nearest cent) required to purchase a $198,000 home, if the interest rate is 6.5% and the home is financed over 30 yr.
APPLICATIONS
139. Attraction between particles: In electrical theory, the force of attraction between two particles P and kPQ Q with opposite charges is modeled by F 2 , d where d is the distance between them and k is a constant that depends on certain conditions. This is known as Coulomb’s law. Rewrite the formula using a negative exponent. 140. Intensity of light: The intensity of illumination from a light source depends on the distance from k the source according to I 2 , where I is the d intensity measured in footcandles, d is the distance from the source in feet, and k is a constant that depends on the conditions. Rewrite the formula using a negative exponent. 141. Rewriting an expression: In advanced mathematics, negative exponents are widely used because they are easier to work with than rational expressions. Rewrite the expression 3 2 5 3 2 1 4 using negative exponents. x x x 142. Swimming pool hours: A swimming pool opens at 8 A.M. and closes at 6 P.M. In summertime, the
R-34
CHAPTER R A Review of Basic Concepts and Skills
number of people in the pool at any time can be approximated by the formula S1t2 t2 10t, where S is the number of swimmers and t is the number of hours the pool has been open (8 A.M.: t 0, 9 A.M.: t 1, 10 A.M.: t 2, etc.). a. How many swimmers are in the pool at 6 P.M.? Why? b. Between what times would you expect the largest number of swimmers? c. Approximately how many swimmers are in the pool at 3 P.M.? d. Create a table of values for t 1, 2, 3, 4, . . . and check your answer to part b. 143. Maximizing revenue: A sporting goods store finds that if they price their video games at $20, they make 200 sales per day. For each decrease of $1, 20 additional video games are sold. This means the store’s revenue can be modeled by the formula R 120 1x2 1200 20x2, where x is the number of $1 decreases. Multiply out the binomials and use a table of values to determine what price will give the most revenue. 144. Maximizing revenue: Due to past experience, a jeweler knows that if they price jade rings at $60, they will sell 120 each day. For each decrease of $2, five additional sales will be made. This means the jeweler’s revenue can be modeled by the formula R 160 2x21120 5x2, where x is the number of $2 decreases. Multiply out the binomials and use a table of values to determine what price will give the most revenue.
EXTENDING THE CONCEPT
145. If 13x2 kx 12 1kx2 5x 72 12x2 4x k2 x2 3x 2, what is the value of k?
1 2 1 b 5, then the expression 4x2 2 2x 4x is equal to what number?
146. If a2x
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College Algebra—
Section 0.0 Section Title
35
R.4 Factoring Polynomials Learning Objectives In Section R.4 you will review:
A. Factoring out the greatest common factor
It is often said that knowing which tool to use is just as important as knowing how to use the tool. In this section, we review the tools needed to factor an expression, an important part of solving polynomial equations. This section will also help us decide which factoring tool is appropriate when many different factorable expressions are presented.
B. Common binomial factors and factoring by grouping
A. The Greatest Common Factor To factor an expression means to rewrite the expression as an equivalent product. The distributive property is an example of factoring in action. To factor 2x2 6x, we might first rewrite each term using the common factor 2x: 2x2 6x 2x # x 2x # 3, then apply the distributive property to obtain 2x1x 32. We commonly say that we have factored out 2x. The greatest common factor (or GCF) is the largest factor common to all terms in the polynomial.
C. Factoring quadratic polynomials
D. Factoring special forms and quadratic forms
EXAMPLE 1
Factoring Polynomials Factor each polynomial: a. 12x2 18xy 30y
Solution
A. You’ve just reviewed how to factor out the greatest common factor
b. x5 x2
a. 6 is common to all three terms: 12x2 18xy 30y mentally: 6 # 2x2 6 # 3xy 6 # 5y 612x2 3xy 5y2 2 b. x is common to both terms: x5 x2 mentally: x2 # x3 x2 # 1 2 3 x 1x 12 Now try Exercises 7 and 8
B. Common Binomial Factors and Factoring by Grouping If the terms of a polynomial have a common binomial factor, it can also be factored out using the distributive property.
EXAMPLE 2
Factoring Out a Common Binomial Factor Factor: a. 1x 32x2 1x 325
Solution
a. 1x 32x2 1x 325 1x 32 1x2 52
b. x2 1x 22 31x 22
b. x2 1x 22 31x 22 1x 22 1x2 32 Now try Exercises 9 and 10
One application of removing a binomial factor involves factoring by grouping. At first glance, the expression x3 2x2 3x 6 appears unfactorable. But by grouping the terms (applying the associative property), we can remove a monomial factor from each subgroup, which then reveals a common binomial factor.
R-35
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CHAPTER R A Review of Basic Concepts and Skills
EXAMPLE 3
Factoring by Grouping Factor 3t3 15t2 6t 30.
Solution
Notice that all four terms have a common factor of 3. Begin by factoring it out. 3t3 15t2 6t 30 31t3 5t2 2t 102 31t3 5t2 2t 102 33t2 1t 52 21t 52 4 31t 52 1t2 22
original polynomial factor out 3 group remaining terms factor common monomial factor common binomial
Now try Exercises 11 and 12
B. You’ve just reviewed how to factor by grouping
When asked to factor an expression, first look for common factors. The resulting expression will be easier to work with and help ensure the final answer is written in completely factored form. If a four-term polynomial cannot be factored as written, try rearranging the terms to find a combination that enables factoring by grouping.
C. Factoring Quadratic Polynomials
WORTHY OF NOTE Similarly, a cubic polynomial is one of the form ax3 bx2 cx d. It’s helpful to note that a cubic polynomial can be factored by grouping only when ad bc, where a, b, c, and d are the coefficients shown. This is easily seen in Example 3, where 1321302 1152 162 gives 90 90✓.
A quadratic polynomial is one that can be written in the form ax2 bx c, where a, b, c and a 0. One common form of factoring involves quadratic trinomials such as x2 7x 10 and 2x2 13x 15. While we know 1x 521x 22 x2 7x 10 and 12x 32 1x 52 2x2 13x 15 using F-O-I-L, how can we factor these trinomials without seeing the original problem in advance? First, it helps to place the trinomials in two families—those with a leading coefficient of 1 and those with a leading coefficient other than 1.
ax2 bx c, where a 1
When a 1, the only factor pair for x2 (other than 1 # x2 2 is x # x and the first term in each binomial will be x: (x )(x ). The following observation helps guide us to the complete factorization. Consider the product 1x b21x a2: 1x b21x a2 x2 ax bx ab x2 1a b2x ab
F-O-I-L distributive property
Note the last term is the product ab (the lasts), while the coefficient of the middle term is a b (the sum of the outers and inners). Since the last term of x2 8x 7 is 7 and the coefficient of the middle term is 8, we are seeking two numbers with a product of positive 7 and a sum of negative 8. The numbers are 7 and 1, so the factored form is 1x 72 1x 12. It is also helpful to note that if the constant term is positive, the binomials will have like signs, since only the product of like signs is positive. If the constant term is negative, the binomials will have unlike signs, since only the product of unlike signs is negative. This means we can use the sign of the linear term (the term with degree 1) to guide our choice of factors. Factoring Trinomials with a Leading Coefficient of 1 If the constant term is positive, the binomials will have like signs: 1x 2 1x 2 or 1x 21x 2 ,
to match the sign of the linear (middle) term. If the constant term is negative, the binomials will have unlike signs: 1x 21x 2,
with the larger factor placed in the binomial whose sign matches the linear (middle) term.
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College Algebra—
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37
Section R.4 Factoring Polynomials
EXAMPLE 4
Factoring Trinomials Factor these expressions: a. x2 11x 24
Solution
b. x2 10 3x
a. First rewrite the trinomial in standard form as 11x2 11x 242. For x2 11x 24, the constant term is positive so the binomials will have like signs. Since the linear term is negative,
11x2 11x 242 11x 21x 2 like signs, both negative 11x 821x 32 182 132 24; 8 132 11 b. First rewrite the trinomial in standard form as x2 3x 10. The constant term is negative so the binomials will have unlike signs. Since the linear term is negative, x2 3x 10 1x 2 1x 2 1x 22 1x 52
unlike signs, one positive and one negative 5 7 2, 5 is placed in the second binomial; 122 152 10; 2 152 3
Now try Exercises 13 and 14
Sometimes we encounter prime polynomials, or polynomials that cannot be factored. For x2 9x 15, the factor pairs of 15 are 1 # 15 and 3 # 5, with neither pair having a sum of 9. We conclude that x2 9x 15 is prime.
ax2 bx c, where a 1 If the leading coefficient is not one, the possible combinations of outers and inners are more numerous. Furthermore, their sum will change depending on the position of the possible factors. Note that 12x 32 1x 92 2x2 21x 27 and 12x 921x 32 2x2 15x 27 result in a different middle term, even though identical numbers were used. To factor 2x2 13x 15, note the constant term is positive so the binomials must have like signs. The negative linear term indicates these signs will be negative. We then list possible factors for the first and last terms of each binomial, then sum the outer and inner products. Possible First and Last Terms for 2x2 and 15
Sum of Outers and Inners
2. 12x 1521x 12
2x 15x 17x
1. 12x 121x 152 3. 12x 321x 52 4. 12x 521x 32
30x 1x 31x 10x 3x 13x
d
6x 5x 11x
As you can see, only possibility 3 yields a linear term of 13x, and the correct factorization is then 12x 321x 52. With practice, this trial-and-error process can be completed very quickly. If the constant term is negative, the number of possibilities can be reduced by finding a factor pair with a sum or difference equal to the absolute value of the linear coefficient, as we can then arrange the sign of each binomial to obtain the needed result (see Example 5).
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R-38
CHAPTER R A Review of Basic Concepts and Skills
EXAMPLE 5
Factoring a Trinomial Using Trial and Error Factor 6z2 11z 35.
Solution
Note the constant term is negative (binomials will have unlike signs), 11 11, and the factors of 35 are 1 # 35 and 5 # 7. Two possible first terms are: (6z )(z ) and (3z )(2z ), and we begin with 5 and 7 as factors of 35. (6z
)(z
)
Outers/Inners Sum
Diff
(3z
)(2z
)
Outers/Inners Sum
Diff
1. (6z
5)(z
7)
47z
37z
3. (3z
5)(2z
7)
31z
11z d
2. (6z
7)(z
5)
37z
23z
4. (3z
7)(2z
5)
29z
1z
Since possibility 3 yields the linear term of 11z, we need not consider other factors of 35 and write the factored form as 6z2 11z 35 13z 5212z 72. The signs can then be arranged to obtain a middle term of 11z: 13z 5212z 72, 21z 10z 11z ✓.
C. You’ve just reviewed how to factor quadratic polynomials
Now try Exercises 15 and 16 WORTHY OF NOTE
D. Factoring Special Forms and Quadratic Forms
In an attempt to factor a sum of two perfect squares, say v2 49, let’s list all possible binomial factors. These are (1) 1v 721v 72, (2) 1v 72 1v 72, and (3) 1v 72 1v 72. Note that (1) and (2) are the binomial squares 1v 72 2 and 1v 72 2, with each product resulting in a “middle” term, whereas (3) is a binomial times its conjugate, resulting in a difference of squares: v2 49. With all possibilities exhausted, we conclude that the sum of two squares is prime!
EXAMPLE 6
Next we consider methods to factor each of the special products we encountered in Section R.3.
The Difference of Two Squares
Multiplying and factoring are inverse processes. Since 1x 72 1x 72 x2 49, we know that x2 49 1x 721x 72. In words, the difference of two squares will factor into a binomial and its conjugate. To find the terms of the factored form, rewrite each term in the original expression as a square: 1 2 2. Factoring the Difference of Two Perfect Squares Given any expression that can be written in the form A2 B2, A2 B2 1A B2 1A B2
Note that the sum of two perfect squares A2 B2 cannot be factored using real numbers (the expression is prime). As a reminder, always check for a common factor first and be sure to write all results in completely factored form. See Example 6(c).
Factoring the Difference of Two Perfect Squares Factor each expression completely. a. 4w2 81 b. v2 49 c. 3n2 48
Solution
a. 4w2 81 12w2 2 92 12w 92 12w 92 b. v2 49 is prime. c. 3n2 48 31n2 162 3n2 142 2 31n 42 1n 42
1 d. z4 81
write as a difference of squares A2 B 2 1A B2 1A B2 factor out 3 write as a difference of squares A2 B 2 1A B2 1A B2
e. x2 7
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College Algebra—
R-39
Section R.4 Factoring Polynomials 1 1z2 2 2 1 19 2 2 d. z4 81 1z2 19 21z2 19 2 z2 1 13 2 21z2 19 2 1z 13 2 1z 13 2 1z2 19 2 e. x 2 7 1x2 2 1 172 2 1x 1721x 172
39
write as a difference of squares A 2 B 2 1A B2 1A B2 write as a difference of squares result write as a difference of squares A 2 B 2 1A B2 1A B2
Now try Exercises 17 and 18
Perfect Square Trinomials
Since 1x 72 2 x2 14x 49, we know that x2 14x 49 1x 72 2. In words, a perfect square trinomial will factor into a binomial square. To use this idea effectively, we must learn to identify perfect square trinomials. Note that the first and last terms of x2 14x 49 are the squares of x and 7, and the middle term is twice the product of these two terms: 217x2 14x. These are the characteristics of a perfect square trinomial. Factoring Perfect Square Trinomials Given any expression that can be written in the form A2 2AB B2, 1. A2 2AB B2 1A B2 2 2. A2 2AB B2 1A B2 2 EXAMPLE 7
Factoring a Perfect Square Trinomial Factor 12m3 12m2 3m.
Solution
12m3 12m2 3m 3m14m2 4m 12
check for common factors: GCF 3m factor out 3m
For the remaining trinomial 4m2 4m 1 . . . 1. Are the first and last terms perfect squares?
4m2 12m2 2 and 1 112 2 ✓
Yes.
2. Is the linear term twice the product of 2m and 1? 2 # 2m # 1 4m ✓
Yes.
Factor as a binomial square: 4m2 4m 1 12m 12 2
This shows 12m3 12m2 3m 3m12m 12 2.
Now try Exercises 19 and 20
CAUTION
As shown in Example 7, be sure to include the GCF in your final answer. It is a common error to “leave the GCF behind.”
In actual practice, the tests for a perfect square trinomial are performed mentally, with only the factored form being written down.
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R-40
CHAPTER R A Review of Basic Concepts and Skills
Sum or Difference of Two Perfect Cubes Recall that the difference of two perfect squares is factorable, but the sum of two perfect squares is prime. In contrast, both the sum and difference of two perfect cubes are factorable. For either A3 B3 or A3 B3 we have the following: 1. Each will factor into the product of a binomial and a trinomial: 2. The terms of the binomial are the quantities being cubed: 3. The terms of the trinomial are the square of A, the product AB, and the square of B, respectively: 4. The binomial takes the same sign as the original expression 5. The middle term of the trinomial takes the opposite sign of the original exercise (the last term is always positive):
(
)(
)
binomial
trinomial
(A
B) (
)
(A
B) (A2
AB
B2)
1A B2 1A2
AB
B2 2
1A B2 1A2 AB B2 2
Factoring the Sum or Difference of Two Perfect Cubes: A3 B3 A3 B3 1A B2 1A2 AB B2 2 A3 B3 1A B2 1A2 AB B2 2 EXAMPLE 8
Factoring the Sum and Difference of Two Perfect Cubes Factor completely: a. x3 125
Solution
b. 5m3n 40n4
write terms as perfect cubes x3 125 x3 53 3 3 2 2 Use A B 1A B21A AB B 2 factoring template x3 53 1x 52 1x2 5x 252 A S x and B S 5 check for common 5m3n 40n4 5n1m3 8n3 2 b. factors 1GCF 5n2
a.
5n 3 m3 12n2 3 4 Use A B 1A B2 1A2 AB B2 2 m3 12n2 3 1m 2n2 3 m2 m12n2 12n2 2 4 1m 2n21m2 2mn 4n2 2 1 5m3n 40n4 5n1m 2n21m2 2mn 4n2 2. 3
3
write terms as perfect cubes factoring template
A S m and B S 2n simplify factored form
The results for parts (a) and (b) can be checked using multiplication. Now try Exercises 21 and 22
Using u-Substitution to Factor Quadratic Forms For any quadratic expression ax2 bx c in standard form, the degree of the leading term is twice the degree of the middle term. Generally, a trinomial is in quadratic form if it can be written as a1 __ 2 2 b1 __ 2 c, where the parentheses “hold” the same factors. The equation x4 13x2 36 0 is in quadratic form since 1x2 2 2 131x2 2 36 0. In many cases, we can factor these expressions using a placeholder substitution that transforms these expressions into a more recognizable form. In a study of algebra, the letter “u” often plays this role. If we let u represent x2, the expression 1x2 2 2 131x2 2 36 becomes u2 13u 36, which can be factored into 1u 921u 42. After “unsubstituting” (replace u with x2), we have 1x2 921x2 42 1x 32 1x 321x 22 1x 22.
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41
Section R.4 Factoring Polynomials
EXAMPLE 9
Factoring a Quadratic Form
Solution
Expanding the binomials would produce a fourth-degree polynomial that would be very difficult to factor. Instead we note the expression is in quadratic form. Letting u represent x2 2x (the variable part of the “middle” term), 1x2 2x2 2 21x2 2x2 3 becomes u2 2u 3.
Write in completely factored form: 1x2 2x2 2 21x2 2x2 3.
u2 2u 3 1u 32 1u 12
factor
To finish up, write the expression in terms of x, substituting x2 2x for u. 1x2 2x 321x2 2x 12
substitute x2 2x for u
The resulting trinomials can be further factored. 1x 32 1x 121x 12 2
x2 2x 1 1x 12 2
Now try Exercises 23 and 24
D. You’ve just reviewed how to factor special forms and quadratic forms
It is well known that information is retained longer and used more effectively when it’s placed in an organized form. The “factoring flowchart” provided in Figure R.5 offers a streamlined and systematic approach to factoring and the concepts involved. However, with some practice the process tends to “flow” more naturally than following a chart, with many of the decisions becoming automatic.
Factoring Polynomials
Standard Form: decreasing order of degree; positive leading coefficient
Greatest Common Factor
Number of Terms
Three
Two
Difference of squares
Difference of cubes
Sum of cubes
• Can any result be factored further?
Figure R.5
Trinomials (a 1)
Four
Trinomials (a 1)
Factor by grouping
• Polynomials that cannot be factored are said to be prime.
Advanced methods (Section 3.2)
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CHAPTER R A Review of Basic Concepts and Skills
R.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. To factor an expression means to rewrite the expression as an equivalent . 2. If a polynomial will not factor, it is said to be a(n) polynomial. 3. The difference of two perfect squares always factors into the product of a(n) and its .
4. The expression x2 6x 9 is said to be a(n) trinomial, since its factored form is a perfect (binomial) square.
5. Discuss/Explain why 4x2 36 12x 62 12x 62 is not written in completely factored form, then rewrite it so it is factored completely. 6. Discuss/Explain why a3 b3 is factorable, but a2 b2 is not. Demonstrate by writing x3 64 in factored form, and by exhausting all possibilities for x2 64 to show it is prime.
DEVELOPING YOUR SKILLS
Factor each expression using the method indicated. Greatest Common Factor
7. a. 17x2 51 b. 21b3 14b2 56b c. 3a4 9a2 6a3 8. a. 13n 52 b. 9p 27p 18p 5 4 c. 6g 12g 9g3 2
2
3
Common Binomial Factor
9. a. 2a1a 22 31a 22 b. 1b2 323b 1b2 322 c. 4m1n 72 111n 72 10. a. 5x1x 32 21x 32 b. 1v 522v 1v 523 c. 3p1q2 52 71q2 52 Grouping
11. a. 9q3 6q2 15q 10 b. h5 12h4 3h 36 c. k5 7k3 5k2 35 12. a. 6h3 9h2 2h 3 b. 4k3 6k2 2k 3 c. 3x2 xy 6x 2y
Trinomial Factoring where a 1
15. a. 3p2 13p 10 b. 4q2 7q 15 c. 10u2 19u 15 16. a. 6v2 v 35 b. 20x2 53x 18 c. 15z2 22z 48 Difference of Perfect Squares
17. a. 4s2 25 c. 50x2 72 e. b2 5
b. 9x2 49 d. 121h2 144
1 18. a. 9v2 25 4 c. v 1 e. x2 17
1 b. 25w2 49 4 d. 16z 81
Perfect Square Trinomials
19. a. a2 6a 9 b. b2 10b 25 2 c. 4m 20m 25 d. 9n2 42n 49 20. a. x2 12x 36 b. z2 18z 81 c. 25p2 60p 36 d. 16q2 40q 25
Trinomial Factoring where |a| 1
13. a. p2 5p 14 c. n2 20 9n
4
14. a. m2 13m 42 b. x2 12 13x c. v2 10v 15
b. q2 4q 45
Sum/Difference of Perfect Cubes
21. a. 8p3 27 c. g3 0.027
b. m3 18 d. 2t4 54t
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Section R.4 Factoring Polynomials
22. a. 27q3 125 c. b3 0.125
8 b. n3 27 d. 3r4 24r
u-Substitution
23. a. x4 10x2 9 c. x6 7x3 8
b. x4 13x2 36
24. a. x6 26x3 27 b. 31n 52 2 12n 102 21 c. 21z 32 2 13z 92 54 25. Completely factor each of the following (recall that “1” is its own perfect square and perfect cube). a. n2 1 c. n3 1
b. n3 1 d. 28x3 7x
26. Carefully factor each of the following trinomials, if possible. Note differences and similarities. a. x2 x 6 c. x2 x 6 e. x2 5x 6
b. x2 x 6 d. x2 x 6 f. x2 5x 6
Factor each expression completely, if possible. Rewrite the expression in standard form (factor out “1” if needed) and factor out the GCF if one exists. If you believe the expression will not factor, write “prime.”
27. a2 7a 10
28. b2 9b 20
29. 2x2 24x 40
30. 10z2 140z 450
31. 64 9m2
32. 25 16n2
33. 9r r2 18
34. 28 s2 11s
35. 2h2 7h 6
36. 3k2 10k 8
37. 9k2 24k 16
38. 4p2 20p 25
39. 6x3 39x2 63x
40. 28z3 16z2 80z
41. 12m2 40m 4m3
42. 30n 4n2 2n3
43. a2 7a 60
44. b2 9b 36
45. 8x3 125
46. 27r3 64
47. m2 9m 24
48. n2 14n 36
49. x3 5x2 9x 45 50. x3 3x2 4x 12
43
51. Match each expression with the description that fits best. a. prime polynomial b. standard trinomial a 1 c. perfect square trinomial d. difference of cubes e. binomial square f. sum of cubes g. binomial conjugates h. difference of squares i. standard trinomial a 1 A. x3 27 B. 1x 32 2 C. x2 10x 25 D. x2 144 2 E. x 3x 10 F. 8s3 125t3 G. 2x2 x 3 H. x2 9 I. 1x 72 and 1x 72 52. Match each polynomial to its factored form. Two of them are prime. a. 4x2 9 b. 4x2 28x 49 c. x3 125 d. 8x3 27 e. x2 3x 10 f. x2 3x 10 g. 2x2 x 3 h. 2x2 x 3 i. x2 25 A. 1x 52 1x2 5x 252 B. 12x 32 1x 12 C. 12x 32 12x 32 D. 12x 72 2 E. prime trinomial F. prime binomial G. 12x 32 1x 12 H. 12x 32 14x2 6x 92 I. 1x 52 1x 22
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CHAPTER R A Review of Basic Concepts and Skills
WORKING WITH FORMULAS
53. Surface area of a cylinder: 2r2 2rh The surface area of a cylinder is given by the formula shown, where h is the height of the cylinder and r is the radius. Factor out the GCF and use the result to find the surface area of a cylinder where r 35 cm and h 65 cm. Answer in exact form and in approximate form rounded to the nearest whole number.
54. Volume of a cylindrical shell: R2h r2h The volume of a cylindrical shell (a larger cylinder with a smaller cylinder removed) can be found using the formula shown, where R is r the radius of the larger cylinder and r is the radius of the smaller. Factor the expression completely and use the result to find the volume of a shell where R 9 cm, r 3 cm, and R h 10 cm (use 3.142. ;
APPLICATIONS
In many cases, factoring an expression can make it easier to evaluate as in the following applications.
55. Conical shells: The volume of a conical shell (like the shell of an ice cream cone) is given by the 1 1 formula V R2h r2h, where R is the 3 3 outer radius and r is the inner radius of the cone. Write the formula in completely factored form, then find the volume of a shell when R 5.1 cm, r 4.9 cm, and h 9 cm. Answer in exact form and in approximate form rounded to the nearest tenth. 56. Spherical shells: The volume of a spherical shell (like the outer r shell of a cherry cordial) is given R by the formula V 43R3 43r3, where R is the outer radius and r is the inner radius of the shell. Write the right-hand side in completely factored form, then find the volume of a shell where R 1.8 cm and r 1.5 cm. 57. Volume of a box: The volume of a rectangular box x inches in height is given by the relationship V x3 8x2 15x. Factor the right-hand side to determine: (a) The number of inches that the width exceeds the height, (b) the number of inches the length exceeds the height, and (c) the volume given the height is 2 ft. 58. Shipping textbooks: A publisher ships paperback books stacked x copies high in a box. The total number of books shipped per box is given by the relationship B x3 13x2 42x. Factor the right-hand side to determine (a) how many more
or fewer books fit the width of the box (than the height), (b) how many more or fewer books fit the length of the box (than the height), and (c) the number of books shipped per box if they are stacked 10 high in the box. 59. Space-Time relationships: Due to the work of Albert Einstein and other physicists who labored on space-time relationships, it is known that the faster an object moves the shorter it appears to become. This phenomenon is modeled by the v 2 1a b, c B where L0 is the length of the object at rest, L is the relative length when the object is moving at velocity v, and c is the speed of light. Factor the radicand and use the result to determine the relative length of a 12-in. ruler if it is shot past a stationary observer at 0.75 times the speed of light 1v 0.75c2 . Lorentz transformation L L0
60. Tubular fluid flow: As a fluid flows through a tube, it is flowing faster at the center of the tube than at the sides, where the tube exerts a backward drag. Poiseuille’s law gives the velocity of the flow G 2 1R r2 2, at any point of the cross section: v 4 where R is the inner radius of the tube, r is the distance from the center of the tube to a point in the flow, G represents what is called the pressure gradient, and is a constant that depends on the viscosity of the fluid. Factor the right-hand side and find v given R 0.5 cm, r 0.3 cm, G 15, and 0.25.
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Section R.5 Rational Expressions
45
EXTENDING THE CONCEPT
61. Factor out a constant that leaves integer coefficients for each term: a. 12x4 18x3 34x2 4 b. 23b5 16b3 49b2 1 62. If x 2 is substituted into 2x3 hx 8, the result is zero. What is the value of h? 63. Factor the expression: 192x3 164x2 270x. 64. As an alternative to evaluating polynomials by direct substitution, nested factoring can be used. The method has the advantage of using only products and sums—no powers. For P x3 3x2 1x 5, we begin by grouping all variable terms
and factoring x: P 3 x3 3x2 1x 4 5 x 3 x2 3x 14 5. Then we group the inner terms with x and factor again: P x3 x2 3x 14 5 x 3 x1x 32 1 4 5. The expression can now be evaluated using any input and the order of operations. If x 2, we quickly find that P 27. Use this method to evaluate H x3 2x2 5x 9 for x 3. Factor each expression completely.
65. x4 81
66. 16n4 1
67. p6 1
68. m6 64
69. q4 28q2 75
70. a4 18a2 32
R.5 Rational Expressions Learning Objectives In Section R.5 you will learn how to:
A. Write a rational expression in simplest form
A rational number is one that can be written as the quotient of two integers. Similarly, a rational expression is one that can be written as the quotient of two polynomials. We can apply the skills developed in a study of fractions (how to reduce, add, subtract, multiply, and divide) to rational expressions, sometimes called algebraic fractions.
B. Multiply and divide rational expressions
C. Add and subtract rational expressions
D. Simplify compound fractions
E. Rewrite formulas and algebraic models
A. Writing a Rational Expression in Simplest Form A rational expression is in simplest form when the numerator and denominator have no common factors (other than 1). After factoring the numerator and denominator, we apply the fundamental property of rational expressions. Fundamental Property of Rational Expressions If P, Q, and R are polynomials, with Q, R 0, (1)
P#R P # Q R Q
and
(2)
P#R P Q Q#R
In words, the property says (1) a rational expression can be simplified by canceling common factors in the numerator and denominator, and (2) an equivalent expression can be formed by multiplying numerator and denominator by the same nonzero polynomial.
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CHAPTER R A Review of Basic Concepts and Skills
EXAMPLE 1
Simplifying a Rational Expression Write the expression in simplest form:
Solution
WORTHY OF NOTE If we view a and b as two points on the number line, we note that they are the same distance apart, regardless of the order they are subtracted. This tells us the numerator and denominator will have the same absolute value but be opposite in sign, giving a value of 1 (check using a few test values).
CAUTION
EXAMPLE 2
1x 12 1x 12 x2 1 2 1x 12 1x 22 x 3x 2 1x 121x 12 1x 121x 22 x1 x2
factor numerator and denominator
cancel common factors
simplest form
Now try Exercises 7 through 10
A. You’ve just reviewed how to write a rational expression in simplest form
When simplifying rational expressions, we sometimes encounter expressions ab ab of the form . If we factor 1 from the numerator, we see that ba ba 11b a2 1. ba
When reducing rational numbers or expressions, only common factors can be reduced. 6 423 It is incorrect to reduce (or divide out) individual terms: 3 423, and 2 x1 1 (except for x 0) x2 2
Simplifying a Rational Expression Write the expression in simplest form:
Solution
x2 1 . x 3x 2 2
16 2x2
213 x2 1x 321x 32 x 9 122 112 x3 2 x3 2
16 2x2 x2 9
.
factor numerator and denominator
reduce:
13 x2 1x 32
1
simplest form
Now try Exercises 11 through 16
B. Multiplication and Division of Rational Expressions Operations on rational expressions use the factoring skills reviewed earlier, along with much of what we know about rational numbers. Multiplying Rational Expressions Given that P, Q, R, and S are polynomials with Q, S 0, PR P #R Q S QS 1. Factor all numerators and denominators completely. 2. Reduce common factors. 3. Multiply numerator numerator and denominator denominator.
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Section R.5 Rational Expressions
EXAMPLE 3
Multiplying Rational Expressions Compute the product:
Solution
47
2a 2 # 3a2 a 2 . 3a 3a2 9a2 4
21a 12 13a 221a 12 2a 2 # 3a2 a 2 # 2 2 3a11 a2 13a 2213a 22 3a 3a 9a 4 112 1 21a 12 13a 221a 1 2 # 3a11 a2 13a 2213a 22 1
factor
reduce:
a1 1 1a
1
21a 12 3a13a 22
simplest form
Now try Exercises 17 through 20
To divide fractions, we multiply the first expression by the reciprocal of the second. The quotient of two rational expressions is computed in the same way. Dividing Rational Expressions Given that P, Q, R, and S are polynomials with Q, R, S 0, R P S PS P # Q S Q R QR Invert the divisor and multiply.
EXAMPLE 4
Dividing Rational Expressions Compute the quotient
Solution
4m3 12m2 9m 10m2 15m . m2 49 m2 4m 21
4m3 12m2 9m 10m2 15m m2 49 m2 4m 21 4m3 12m2 9m # m2 4m 21 m2 49 10m2 15m 2 m14m 12m 92 1m 72 1m 32 # 1m 72 1m 72 5m12m 32
invert and multiply
factor
m 12m 32 12m 32 1m 72 1m 32 # 1m 72 1m 72 5m 12m 32
factor and reduce
lowest terms
1
1
1
12m 321m 32 51m 72
1
1
1
Note that we sometimes refer to simplest form as lowest terms. Now try Exercises 21 through 42
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CAUTION
1w 721w 72 1w 22 # , it is a common mistake to think that all 1w 721w 22 1w 72 factors “cancel,” leaving an answer of zero. Actually, all factors reduce to 1, and the result is a value of 1 for all inputs where the product is defined. For products like
1w 72 1w 72 1w 22 1
B. You’ve just reviewed how to multiply and divide rational expressions
1
1
#
1w 72 1w 22 1w 72 1
1
1
1
C. Addition and Subtraction of Rational Expressions Recall that the addition and subtraction of fractions requires finding the lowest common denominator (LCD) and building equivalent fractions. The sum or difference of the numerators is then placed over this denominator. The procedure for the addition and subtraction of rational expressions is very much the same. Addition and Subtraction of Rational Expressions 1. 2. 3. 4.
EXAMPLE 5
Find the LCD of all rational expressions. Build equivalent expressions using the LCD. Add or subtract numerators as indicated. Write the result in lowest terms.
Adding and Subtracting Rational Expressions Compute as indicated: 7 3 a. 10x 25x2
Solution
b.
10x 5 x3 x 9 2
a. The LCD for 10x and 25x2 is 50x2.
7 3 7 # 15x2 3 # 122 2 10x 10x 15x2 25x 25x2 122 35x 6 2 50x 50x2 35x 6 50x2
find the LCD write equivalent expressions
simplify add the numerators and write the result over the LCD
The result is in simplest form. b. The LCD for x2 9 and x 3 is 1x 32 1x 32.
10x 10x 5 # 1x 32 5 x3 1x 321x 32 x 3 1x 32 x 9 10x 51x 32 1x 32 1x 32 10x 5x 15 1x 321x 32 5x 15 1x 321x 32 2
find the LCD write equivalent expressions subtract numerators, write the result over the LCD
distribute
combine like terms
1
51x 32 5 1x 32 1x 32 x3
factor and reduce
1
Now try Exercises 43 through 48
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Section R.5 Rational Expressions
EXAMPLE 6
Adding and Subtracting Rational Expressions Perform the operations indicated: n3 5 a. 2 n2 n 4
Solution
c b2 2 a 4a
a. The LCD for n 2 and n2 4 is 1n 221n 22.
5 n3 n3 5 # 1n 22 2 n2 1n 22 1n 22 1n 22 1n 22 n 4 51n 22 1n 32 1n 221n 22 5n 10 n 3 1n 221n 22 4n 7 1n 221n 22
b. The LCD for a and 4a2 is 4a2 :
C. You’ve just reviewed how to add and subtract rational expressions
b.
b2 c c # 14a2 b2 2 2 a a 14a2 4a 4a b2 4ac 2 2 4a 4a 2 b 4ac 4a2
write equivalent expressions subtract numerators, write the result over the LCD distribute
result write equivalent expressions
simplify subtract numerators, write the result over the LCD
Now try Exercises 49 through 64
CAUTION
When the second term in a subtraction has a binomial numerator as in Example 6(a), be sure the subtraction is applied to both terms. It is a common error to write 51n 22 n3 5n 10 n 3 X in which the subtraction is applied 1n 221n 22 1n 221n 22 1n 221n 22 to the first term only. This is incorrect!
D. Simplifying Compound Fractions Rational expressions whose numerator or denominator contain a fraction are called 3 2 3m 2 compound fractions. The expression is a compound fraction with a 3 1 4m 3m2 2 3 1 3 and a denominator of . The two methods commonly numerator of 3m 2 4m 3m2 used to simplify compound fractions are summarized in the following boxes. Simplifying Compound Fractions (Method I) 1. Add/subtract fractions in the numerator, writing them as a single expression. 2. Add/subtract fractions in the denominator, also writing them as a single expression. 3. Multiply the numerator by the reciprocal of the denominator and simplify if possible.
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CHAPTER R A Review of Basic Concepts and Skills
Simplifying Compound Fractions (Method II) 1. Find the LCD of all fractions in the numerator and denominator. 2. Multiply the numerator and denominator by this LCD and simplify. 3. Simplify further if possible. Method II is illustrated in Example 7. EXAMPLE 7
Simplifying a Compound Fraction Simplify the compound fraction: 3 2 3m 2 3 1 4m 3m2
Solution
The LCD for all fractions is 12m2. 2 3 3 12m2 2 a ba b 3m 2 3m 2 1 3 12m2 3 1 1 a b a b 4m 4m 1 3m2 3m2 2 12m2 3 12m2 a ba ba ba b 3m 1 2 1 3 12m2 12m2 1 a ba b a 2b a b 4m 1 1 3m 8m 18m2 9m 4
multiply numerator and denominator by 12m2
12m2 1
distribute
simplify
1
2m14 9m2 2m 9m 4
D. You’ve just reviewed how to simplify compound fractions
factor and write in lowest terms
Now try Exercises 65 through 74
E. Rewriting Formulas and Algebraic Models In many fields of study, formulas and algebraic models involve rational expressions and we often need to write them in an alternative form.
EXAMPLE 8
Rewriting a Formula In an electrical circuit with two resistors in parallel, the total resistance R is related 1 1 1 . Rewrite the right-hand side as to resistors R1 and R2 by the formula R R1 R2 a single term.
Solution
1 1 1 R R1 R2 R2 R1 R1R2 R1R2 R2 R1 R1R2
LCD for the right-hand side is R1R2
build equivalent expressions using LCD
write as a single expression
Now try Exercises 75 and 76
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Section R.5 Rational Expressions
EXAMPLE 9
51
Simplifying an Algebraic Model When studying rational expressions and rates of change, we encounter the 1 1 x xh . Simplify the compound fraction. expression h
Solution
Using Method I gives: 1 x xh 1 x xh x1x h2 x1x h2 h h x 1x h2 x1x h2 h h x1x h2 h h # 1 x1x h2 h 1 x1x h2
E. You’ve just reviewed how to rewrite formulas and algebraic models
LCD for the numerator is x (x h)
write numerator as a single expression
simplify
invert and multiply
result
Now try Exercises 77 through 80
R.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. In simplest form, 1a b2/1a b2 is equal to while 1a b2/1b a2 is equal to .
,
2. A rational expression is in when the numerator and denominator have no common factors, other than . 3. As with numeric fractions, algebraic fractions require a for addition and subtraction.
4. Since x2 9 is prime, the expression 1x2 92/ . 1x 32 is already written in State T or F and discuss/explain your response.
5. 6.
x1 1 x x3 x3 x3 1x 321x 22 0 1x 221x 32
DEVELOPING YOUR SKILLS
Reduce to lowest terms.
7. a. 8. a.
a7 3a 21
b.
x4 7x 28
b.
2x 6 4x2 8x 3x 18 6x2 12x
9. a.
x2 5x 14 x2 6x 7
b.
a2 3a 28 a2 49
10. a.
r2 3r 10 r2 r 6
b.
m2 3m 4 m2 4m
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11. a.
x7 7x
b.
5x x5
28. 1m2 162
12. a.
v2 3v 28 49 v2
b.
u2 10u 25 25 u2
29.
12a b 4a2b4 y2 9 c. 3y
7x 21 63 3 m n m3 d. 4 m m4n
5m3n5 10mn2 n2 4 c. 2n
5v 20 25 w4 w4v d. 3 w v w3
3 5
13. a.
b.
14. a.
b.
2n3 n2 3n 15. a. n3 n2 x3 8 c. 2 x 2x 4
6x2 x 15 b. 4x2 9 mn2 n2 4m 4 d. mn n 2m 2
x3 4x2 5x x3 x 2 12y 13y 3
16. a. c.
b.
27y3 1
Compute as indicated. Write final results in lowest terms.
17.
a2 4a 4 # a2 2a 3 a2 9 a2 4
18.
b b 5b 24 # b2 6b 9 b2 64
xy 3x 2y 6 x 3x 10 2
2a ab 7b 14 ab 2a 2 ab 7a b 14b 49
31.
m2 2m 8 m2 16 m2 2m m2
32.
18 6x 2x2 18 x2 25 x3 2x2 25x 50
33.
y3
20.
6v 23v 21 # 4v 25 3v 7 4v2 4v 15
21.
p 64 p p 3
2
p 4p 16 2
22.
a 3a 28 a 4a 3 2 a 5a 14 a 8
23.
3x 3x 9 4x 12 5x 15
24.
2b 5b 10 7b 28 5b 20
25.
a2 a # 3a 9 a2 3a 2a 2
26.
2 p2 36 # 2 4p 2p 2p 12p
8 # 1a2 2a 352 27. 2 a 25
2
y2 4y y2 4y
35.
x2 0.49 x2 0.10x 0.21 x2 0.5x 0.14 x2 0.09
36.
x2 0.25 x2 0.8x 0.15 x 0.1x 0.2 x2 0.16 2
4 4 n2 n 3 9 37. 13 1 2 n2 n n2 15 15 25
39. 40.
p 5p 4 3
y2 16
x2 4x 5 x2 1 # x 1 x2 5x 14 x2 4 x 5
2
2
7y 12
n2
4 9
q2
9 25
1 3 q q 10 10
41.
17 3 q 20 20 1 q2 16
q2
2
2
3
#y
34.
38.
x2 7x 18 # 2x2 7x 3 x2 6x 27 2x2 5x 2 2
2
3y2 9y
2
19.
xy 3x xy 5y
30.
5p2 14p 3
5p2 11p 2 ax2 5x2 3a 15 d. ax 5x 5a 25
m2 5m m2 m 20
#
3a3 24a2 12a 96 6a2 24 a2 11a 24 3a3 81 p3 p2 49p 49 p2 6p 7
p2 p 1 p3 1
4n2 1 6n2 5n 1 # 12n2 17n 6 # 12n2 5n 3 2n2 n 6n2 7n 2
42. a
2x2 x 15 4x2 25x 21 4x2 25 b x2 11x 30 x2 9x 18 12x2 5x 3
Compute as indicated. Write answers in lowest terms [recall that a b 1(b a)].
43.
5 3 2x 8x2
44.
7 15 2 16y 2y
45.
7 1 4x2y3 8xy4
46.
3 5 6a3b 9ab3
47.
4p p 36 2
2 p6
48.
3q q 49 2
3 2q 14
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49.
m 4 4 m m 16
50.
p 2 2 p 2 4p
51.
2 5 m7
52.
4 9 x1
53.
2
y1 y y 30 2
2 y6
54.
3 4n 4n 20 n 5n
55.
a 1 2 a4 a a 20
56.
x5 2x 1 2 x 3x 4 x 3x 4
57.
53
Section R.5 Rational Expressions
2
2
3y 4 y 2y 1 2
2y 5
2 y y 20 71. 3 4 y4 y5
y 2y 1 2
2
2 7 2 58. 3a 12 a 4a m5 2 2 59. m 9 m 6m 9 m6 m2 2 2 60. m 25 m 10m 25 y2 61. 5y 11y 2
2 x 3x 10 72. 6 4 x2 x5 2
Rewrite each expression as a compound fraction. Then simplify using either method.
2
2
Simplify each compound rational expression. Use either method. 8 5 1 1 a 4 27 x3 65. 66. 1 25 2 1 2 x 16 3 a 3 1 1 p p2 y6 67. 68. 1 9 1 y p2 y6 1 3 2 2 3x x3 y5 5y 69. 70. 4 3 2 5 x y x3 y5
5 y y6
73. a.
1 3m1 1 3m1
b.
1 2x2 1 2x2
74. a.
4 9a2 3a2
b.
3 2n1 5n2
2
m m4 2 62. 3m 11m 6 2m m 15 2
Write each term as a rational expression. Then compute the sum or difference indicated. 63. a. p2 5p1
64. a. 3a1 12a2 1
b. x2 2x3
b. 2y1 13y2 1
Rewrite each expression as a single term.
1 1 f1 f2 a a x xh 77. h 1 1 2 21x h2 2x2 79. h 75.
76.
1 1 1 w x y
a a x hx 78. h a a 2 2 1x h2 x 80. h
WORKING WITH FORMULAS
81. Cost to seize illegal drugs: C
450P 100 P
The cost C, in millions of dollars, for a government to find and seize P% 10 P 6 1002 of a certain illegal drug is modeled by the rational equation shown. Complete the table (round to the nearest dollar) and answer the following questions.
a. What is the cost of seizing 40% of the drugs? Estimate the cost at 85%. b. Why does cost increase dramatically the closer you get to 100%? c. Will 100% of the drugs ever be seized?
P 40 60 80 90 93 95 98 100
450P 100 P
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82. Chemicals in the bloodstream: C
200H 2 H 3 40
Rational equations are often used to model chemical concentrations in the bloodstream. The percent concentration C of a certain drug H hours after injection into muscle tissue can be modeled by the equation shown (H 0). Complete the table (round to the nearest tenth of a percent) and answer the following questions. a. What is the percent concentration of the drug 3 hr after injection?
b. Why is the concentration virtually equal at H 4 and H 5? c. Why does the concentration begin to decrease? d. How long will it take for the concentration to become less than 10%?
H
200H2 H3 40
0 1 2 3 4 5 6 7
APPLICATIONS
83. Stock prices: When a hot new stock hits the market, its price will often rise dramatically and then taper off over time. The equation 5017d2 102 models the price P d3 50 of stock XYZ d days after it has “hit the market.” Create a table of values showing the price of the stock for the first 10 days and comment on what you notice. Find the opening price of the stock— does the stock ever return to its original price? 84. Population growth: The Department of Wildlife introduces 60 elk into a new game reserve. It is projected that the size of the herd will grow 1016 3t2 , where according to the equation N 1 0.05t N is the number of elk and t is the time in years. Approximate the population of elk after 14 yr.
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CHAPTER R A Review of Basic Concepts and Skills
85. Typing speed: The number of words per minute that a beginner can type is approximated by the 60t 120 , where N is the number equation N t of words per minute after t weeks, 2 6 t 6 12. Use a table to determine how many weeks it takes for a student to be typing an average of forty-five words per minute. 86. Memory retention: A group of students is asked to memorize 50 Russian words that are unfamiliar to them. The number N of these words that the average student remembers D days later is modeled by the 5D 35 1D 12. How many words equation N D are remembered after (a) 1 day? (b) 5 days? (c) 12 days? (d) 35 days? (e) 100 days? According to this model, is there a certain number of words that the average student never forgets? How many?
EXTENDING THE CONCEPT
87. One of these expressions is not equal to the others. Identify which and explain why. 20n a. b. 20 # n 10 # n 10n 20 n 1 # c. 20n # d. 10n 10 n 88. The average of A and B is x. The average of C, D, and E is y. The average of A, B, C, D, and E is 2x 3y 3x 2y a. b. 5 5 21x y2 31x y2 c. d. 5 5
3 2 and , what is the 5 4 reciprocal of the sum of their reciprocals? Given a c that and are any two numbers—what is the b d reciprocal of the sum of their reciprocals?
89. Given the rational numbers
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College Algebra—
R.6 Radicals and Rational Exponents Square roots and cube roots come from a much larger family called radical expressions. Expressions containing radicals can be found in virtually every field of mathematical study, and are an invaluable tool for modeling many real-world phenomena.
Learning Objectives In Section R.6 you will learn how to:
A. Simplify radical expresn
sions of the form 1 an
n
A. Simplifying Radical Expressions of the Form 1 an
B. Rewrite and simplify
In Section R.1 we noted 1a b only if b2 a. The expression 116 does not represent a real number because there is no number b such that b2 16, showing 1a is a real number only if a 0. Of particular interest to us now is an inverse operation for a2. In other words, what operation can be applied to a2 to return a? Consider the following.
radical expressions using rational exponents
C. Use properties of radicals to simplify radical expressions
D. Add and subtract radical expressions
EXAMPLE 1
E. Multiply and divide radical expressions; write a radical expression in simplest form
Evaluating a Radical Expression
Evaluate 2a2 for the values given: a. a 3 b. a 5 c. a 6 Solution
F. Evaluate formulas involving radicals
a. 232 19 3
b. 252 125 5
c. 2162 2 136 6
Now try Exercises 7 and 8
The pattern seemed to indicate that 2a2 a and that our search for an inverse operation was complete—until Example 1(c), where we found that 2162 2 6. Using the absolute value concept, we can repair this apparent discrepancy and state a general rule for simplifying these expressions: 2a2 a. For expressions like 249x2 and 2y6, the radicands can be rewritten as perfect squares and simplified in the same manner: 249x2 217x2 2 7x and 2y6 21y3 2 2 y3. The Square Root of a2: 2a2 For any real number a, 2a2 a. EXAMPLE 2
Simplifying Square Root Expressions Simplify each expression. a. 2169x2 b. 2x2 10x 25
Solution
a. 2169x2 13x 13x b. 2x 10x 25 21x 52 x 5 2
since x could be negative 2
since x 5 could be negative
Now try Exercises 9 and 10
CAUTION
In Section R.3, we noted that 1A B2 2 A2 B2, indicating that you cannot square the
individual terms in a sum (the square of a binomial results in a perfect square trinomial). In a similar way, 2A2 B2 A B, and you cannot take the square root of individual terms. There is a big difference between the expressions 2A2 B2 and 21A B2 2 A B. Try evaluating each when A 3 and B 4.
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3 3 3 3 To investigate expressions like 2 x , note the radicand in both 1 8 and 1 64 can be written as a perfect cube. From our earlier definition of cube roots we know 3 3 3 3 1 8 2 122 3 2, 1 64 2 142 3 4, and that every real number has only one real cube root. For this reason, absolute value notation is not used or needed when taking cube roots. 3 3 The Cube Root of a3: 2 a 3 3 For any real number a, 2 a a.
EXAMPLE 3
Simplifying Cube Root Expressions Simplify each expression. 3 3 a. 2 b. 2 27x3 64n6
Solution
3 3 a. 2 27x3 2 13x2 3 3x
3 3 b. 2 64n6 2 14n2 2 3 4n2
Now try Exercises 11 and 12
WORTHY OF NOTE
We can extend these ideas to fourth roots, fifth roots, and so on. For example, the 5 fifth root of a is b only if b5 a. In symbols, 1 a b implies b5 a. Since an odd number of negative factors is always negative: 122 5 32, and an even number of negative factors is always positive: 122 4 16, we must take the index into account n when evaluating expressions like 1 an. If n is even and the radicand is unknown, absolute value notation must be used.
2 Just as 1 16 is not a real 4 6 number, 1 16 or 1 16 do not represent real numbers. An even number of repeated factors is always positive!
n
The nth Root of an: 2an For any real number a, n 1. 1 an a when n is even.
EXAMPLE 4
Simplifying Radical Expressions Simplify each expression. 4 4 a. 1 b. 1 81 81 4 5 e. 2 f. 2 16m4 32p5
Solution
A. You’ve just reviewed how to simplify radical n n expressions of the form 1 a
n
2. 1 an a when n is odd.
4 1 81 3 5 1 32 2 4 4 216m4 2 12m2 4 2m or 2m 6 6 g. 2 1m 52 m 5
a. c. e.
5 c. 1 32 6 g. 2 1m 52 6
5 d. 1 32 7 h. 2 1x 22 7
4 b. 1 81 is not a real number 5 d. 1 32 2 5 5 f. 232p5 2 12p2 5 2p 7 7 h. 2 1x 22 x 2
Now try Exercises 13 and 14
B. Radical Expressions and Rational Exponents As an alternative to radical notation, a rational (fractional) exponent can be used, along 3 with the power property of exponents. For 2a3 a, notice that an exponent of onethird can replace the cube root notation and produce the same result: 1 3 3 3 2 a 1a3 2 3 a3 a. In the same way, an exponent of one-half can replace the 1 2 square root notation: 2a2 1a2 2 2 a2 a. In general, we have the following:
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Section R.6 Radicals and Rational Exponents
57
Rational Exponents If a is a real number and n is an integer greater than 1, n
n
1
then 1 a 2a1 an n
provided 1 a represents a real number.
EXAMPLE 5
Simplifying Radical Expressions Using Rational Exponents Simplify by rewriting each radicand as a perfect nth power and converting to rational exponent notation. 8w3 3 4 4 a. 2 125 b. 2 16x20 c. 2 81 d. 3 B 27
Solution
3 3 2 125 2 152 3 1 152 33 3 152 3 5
a.
4 c. 2 81 1812 4 is not a real number 1
4 4 b. 2 16x20 2 12x5 2 4 1 12x5 2 44 4 12x5 2 4 2x5 8w3 2w 3 d. 3 3a b B 27 B 3 1 2w 3 3 ca b d 3 3 2w 3 a b 3 2w 3
Now try Exercises 15 and 16 WORTHY OF NOTE Any rational number can be decomposed into the product of a unit fraction and m 1 an integer: # m. n n
n
n
1
When a rational exponent is used, as in 1a 2a1 an, the m an denominator of the exponent represents the index number, while n m the numerator of the exponent represents the original power on (a ) a. This is true even when the exponent on a is something other 4 than one! In other words, the radical expression 2163 can be Figure R.6 1 3 1 3 rewritten as A 163 B 4 A 161 B 4 or 164. This is further illustrated in Figure R.6 where we see the rational exponent has the form, “power over root.” To evaluate this expres3 1 sion without the aid of a calculator, we use the commutative property to rewrite A 161 B 4 1 3 1 3 as A 164 B 1 and begin with the fourth root of 16: A 164 B 1 23 8. m In general, if m and n have no common factors (other than 1) the expression a n can be interpreted in the following two ways. Rational Exponents If
m n
is a rational number expressed in lowest terms with n 2, then (1) a n A 2a B m m
n
n
or
m
n
(2) a n 2am
(compute 1 a, then take the mth power) (compute am, then take the nth root) n provided 1 a represents a real number.
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EXAMPLE 6
Simplifying Expressions with Rational Exponents Find the value of each expression without a calculator, by rewriting the exponent as the product of a unit fraction and an integer. 5 2 4 4x6 2 3 3 b a. 27 b. 182 c. a 9
Solution
WORTHY OF NOTE While1 the expression 3 182 3 18 represents the real number 2, the expres-
6 sion 182 6 1 1 82 2 is not a real number, even though 1 2 . Note that the second 3 6 exponent is not in lowest terms. 2
2
1
#
a. 273 273 2 1 A 273 B 2 32 or 9 5 1# 4x6 2 4x6 2 5 c. a b a b 9 9 1 4x6 2 5 b d ca 9 2x3 5 32x15 d c 3 243
b. 182 3 182 3 4 1 182 34 24 16 4
1
#
Now try Exercises 17 and 18
Expressions with rational exponents are generally easier to evaluate if we compute the root first, then apply the exponent. Computing the root first also helps us determine whether or not an expression represents a real number.
EXAMPLE 7
Simplifying Expressions with Rational Exponents Simplify each expression, if possible. 3 3 2 a. 492 b. 1492 2 c. 182 3
Solution
B. You’ve just reviewed how to rewrite and simplify radical expressions using rational exponents
a. 492 A 492 B 3 1 1492 3 172 3 or 343 2 1 3 c. 182 3 182 34 2 3
1
3 11 82 2 122 2 or 4
d. 83 2
b. 1492 2 1492 23, 1 1492 3 not a real number 2 1 d. 83 A 83 B 2 3
1
3 1 1 82 2
22 or
1 4
Now try Exercises 19 through 22
C. Using Properties of Radicals to Simplify Radical Expressions The properties used to simplify radical expressions are closely connected to the properties of exponents. For instance, the product to a power property holds even when n 1 1 1 1 1 1 is a rational number. This means 1xy2 2 x2y2 and 14 # 252 2 42 # 252. When the second statement is expressed in radical form, we have 14 # 25 14 # 225, with both forms having a value of 10. This suggests the product property of radicals, which can be extended to include cube roots, fourth roots, and so on. Product Property of Radicals n
n
If 1 A and 1 B represent real-valued expressions, then n n n n n n 1 AB 1 A # 1 B and 1 A # 1 B 1 AB.
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Section R.6 Radicals and Rational Exponents
CAUTION
59
Note that this property applies only to a product of two terms, not to a sum or difference. In other words, while 29x2 3x, 29 x2 |3 x| !
One application of the product property is to simplify radical expressions. In n general, the expression 1a is in simplified form if a has no factors (other than 1) that are perfect nth roots.
EXAMPLE 8
Simplifying Radical Expressions Write each expression in simplest form using the product property. 4 220 3 a. 118 b. 5 2125x4 c. 2
Solution
WORTHY OF NOTE For expressions like those in Example 8(c), students must resist the “temptation” to reduce individual terms as in 4 120 2 120. 2 Remember, only factors can be reduced.
a. 118 19 # 2 1912 3 12
3 3 b. 5 2 125x4 5 # 2 125 # x4 3 3 3 # 3 1 5# 2 125 # 2 x 2x These steps can e 3 be done mentally. # # # 5 5 x 1x 3 25x 1x 4 14 # 5 4 120 c. look for perfect square factors of 20 2 2 4 2 15 product property 2 212 152 factor and reduce 2 2 15 result
Now try Exercises 23 and 24
When radicals are combined using the product property, the result may contain a perfect nth root, which should be simplified. Note that the index numbers must be the same in order to use this property.
EXAMPLE 9
Simplifying Radical Expressions Combine factors using the product property and simplify: 1.2 216n4 24n5. 3
Solution
1.2 216n4 24n5 1.2 264 # n9 product property Since the index is 3, we look for perfect cube factors in the radicand. 3
3
3
1.2 264 2n9 3 3 1.2 2 64 2 1n3 2 3 3 1.2142n 4.8n3 3
WORTHY OF NOTE Rational exponents also could have been used to simplify the expression from Example 9, since 9 3 3 1.2 1 64 2 n9 1.2142n3 3 4.8n . Also see Example 11.
3
3
product property rewrite n9 as a perfect cube simplify result
Now try Exercises 25 and 26
The quotient property of radicals can also be established using exponential prop100 1100 2 suggests the following: erties. The fact that A 25 125
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Quotient Property of Radicals n
n
If 1 A and 1 B represent real-valued expressions with B 0, then n
A 1A n AB 1B n
n
and
1A n A . n A B 1B
Many times the product and quotient properties must work together to simplify a radical expression, as shown in Example 10.
EXAMPLE 10
Simplifying Radical Expressions Simplify each expression: 218a5 a. 22a
Solution
a.
218a5 22a
b.
18a5 B 2a
b.
29a4 3a2
81 A 125x3 3
3 81 1 81 3 3 A 125x 2125x3 3 1 27 # 3 5x 3 31 3 5x 3
Now try Exercises 27 and 28
Radical expressions can also be simplified using rational exponents.
EXAMPLE 11
Using Rational Exponents to Simplify Radical Expressions Simplify using rational exponents: 3 4 a. 236p4q5 b. v 2 v
Solution
a. 236p4q5 136p4q5 2 2 1 4 5 362p2q2 4 1 6p2q12 2 2 1 6p2q2q2 6p2q2 1q 1
1
C. You’ve just reviewed how to use properties of radicals to simplify radical expressions
3 3 2 c. 2 1x 2 x 1 1 1x2 2 3 1 #1 x2 3 1 6 x6 or 1 x
3 c. 2 1x
3 d. 1 m 1m 4
3 4 b. v 2 v v1 # v3 3 4 v3 # v3 7 v3 6 1 v3v3 3 v2 1 v 1
1
3 d. 1 m 1m m3m2 1 1 m3 2 5 m6 6 2m5
Now try Exercises 29 and 30
D. Addition and Subtraction of Radical Expressions 3 Since 3x and 5x are like terms, we know 3x 5x 8x. If x 1 7, the sum becomes 3 3 3 3 1 7 5 1 7 8 1 7, illustrating how like radical expressions can be combined. Like radicals are those that have the same index and radicand. In some cases, we can identify like radicals only after radical terms have been simplified.
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Section R.6 Radicals and Rational Exponents
EXAMPLE 12
Adding and Subtracting Radical Expressions Simplify and combine (if possible). 3 3 a. 145 2 120 b. 2 16x5 x 2 54x2
Solution
D. You’ve just reviewed how to add and subtract radical expressions
a. 145 2 120 3 15 212 152 simplify radicals: 245 29 # 5; 220 24 # 5 3 15 4 15 like radicals 7 15 result 3 3 3 3 b. 2 16x5 x 2 54x2 2 8 # 2 # x3 # x2 x 2 27 # 2 # x2 3 3 2x 22x2 3x 22x2 simplify radicals 3 result x 22x2 Now try Exercises 31 through 34
E. Multiplication and Division of Radical Expressions; Radical Expressions in Simplest Form Multiplying radical expressions is simply an extension of our earlier work. The multiplication can take various forms, from the distributive property to any of the special products reviewed in Section R.3. For instance, 1A B2 2 A2 2AB B2, even if A or B is a radical term. EXAMPLE 13
Multiplying Radical Expressions Compute each product and simplify. a. 5 231 26 4 232 b. 1222 6 232 13 210 2152 c. 1x 272 1x 272 d. 13 222 2
Solution
LOOKING AHEAD Notice that the answer for Example 13(c) contains no radical terms, since the outer and inner products sum to zero. This result will be used to simplify certain radical expressions in this section and later in Chapter 1.
EXAMPLE 14
5 131 16 4 132 5 118 201 132 2 distribute; 1 232 2 3 5132 12 1202 132 simplify: 218 322 15 12 60 result b. 12 12 6 13213 110 1152 6 120 2 130 18 130 6 145 F-O-I-L roots and 12 15 20 130 1815 extract simplify 30 15 20 130 result 2 2 2 c. 1x 1721x 172 x 1 172 1A B21A B2 A B 2 x2 7 result 2 2 2 d. 13 122 132 2132 1 122 1 122 1A B2 2 A2 2AB B 2 9 6 12 2 simplify each term result 11 612 a.
Now try Exercises 35 through 38
One application of products and powers of radical expressions is to evaluate certain quadratic expressions, as illustrated in Example 14.
Evaluating a Quadratic Expression Show that when x2 4x 1 is evaluated at x 2 13, the result is zero.
Solution
x2 4x 1 original expression 12 132 412 132 1 substitute 2 23 for x 4 4 13 3 8 413 1 multiply 14 3 8 12 14 13 4 132 commutative and associative properties 0✓ 2
Now try Exercises 39 through 42
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When we applied the quotient property in Example 10, we obtained a denominator free of radicals. Sometimes the denominator is not automatically free of radicals, and the need to write radical expressions in simplest form comes into play. This process is called rationalizing the denominator. Radical Expressions in Simplest Form A radical expression is in simplest form if: 1. The radicand has no perfect nth root factors. 2. The radicand contains no fractions. 3. No radicals occur in a denominator. As with other types of simplification, the desired form can be achieved in various ways. If the denominator is a single radical term, we multiply the numerator and denominator by the factors required to eliminate the radical in the denominator [see Examples 15(a) and 15(b)]. If the radicand is a rational expression, it is generally easier to build an equivalent fraction within the radical having perfect nth root factors in the denominator [see Example 15(c)].
EXAMPLE 15
Simplifying Radical Expressions Simplify by rationalizing the denominator. Assume a, x 0. 2 7 3 3 a. b. 3 c. A 4a4 1x 5 23
Solution
a.
2 5 23
2
#
23
5 23 23 2 23 223 2 15 51 232 3 3 71 1 x211 x2 7 b. 3 3 3 3 1x 1 x1 1 x2 11 x2 3 2 72x 3 3 2x 3 2 72 x x 2 3 3 3 3 # 2a c. 4 4 A 4a B 4a 2a2 6a2 3 6 B 8a 3 2 6a2 2a2
multiply numerator and denominator by 23
simplify—denominator is now rational
3 multiply using two additional factors of 1 x
product property
3 3 2 x x
4 # 2 8 is the smallest perfect cube with 4 as a factor; a4 # a2 a6 is the smallest perfect cube with a4 as a factor
the denominator is now a perfect cube—simplify
result
Now try Exercises 43 and 44
In some applications, the denominator may be a sum or difference containing a radical term. In this case, the methods from Example 15 are ineffective, and instead we multiply by a conjugate since 1A B21A B2 A2 B2. If either A or B is a square root, the result will be a denominator free of radicals.
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Section R.6 Radicals and Rational Exponents
EXAMPLE 16
Simplifying Radical Expressions Using a Conjugate Simplify the expression by rationalizing the denominator. Write the answer in exact form and approximate form rounded to three decimal places.
Solution
2 23 26 22
2 23
#
26 22
26 22 26 22 2 26 2 22 218 26
1 262 1 222 3 26 2 22 3 22 62 3 26 5 22 4 3.605
E. You’ve just reviewed how to multiply and divide radical expressions and write a radical expression in simplest form
2
2
2 23 26 22
multiply by the conjugate of the denominator FOIL difference of squares simplify
exact form approximate form
Now try Exercises 45 through 48
F. Formulas and Radicals Hypotenuse
A right triangle is one that has a 90° angle. The longest side (opposite the right angle) is called the hypotenuse, while the other two sides are simply called “legs.” The Pythagorean theorem is a formula that says if you add the square of each leg, the result will be equal to the square of the hypotenuse. Furthermore, we note the converse of this theorem is also true.
Leg 90
Leg
Pythagorean Theorem 1. For any right triangle with legs a and b and hypotenuse c, a2 b2 c2 2. For any triangle with sides a, b, and c, if a2 b2 c2, then the triangle is a right triangle. A geometric interpretation of the theorem is given in the figure, which shows 32 42 52.
Area 16 in2
ea Ar in2 25 4
25
13
5
c
7
5
3
12
Area 9 in2
EXAMPLE 17
24
25 144 169 52
122
132
b
49 576 625 72
242
252
b2 c2 general case
a2
Applying the Pythagorean Theorem An extension ladder is placed 9 ft from the base of a building in an effort to reach a third-story window that is 27 ft high. What is the minimum length of the ladder required? Answer in exact form using radicals, and approximate form by rounding to one decimal place.
a
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Solution
c
We can assume the building makes a 90° angle with the ground, and use the Pythagorean theorem to find the required length. Let c represent this length. c2 a2 b2 c2 192 2 1272 2 c2 81 729 c2 810 c 2810 c 9 210 c 28.5 ft
27 ft
Pythagorean theorem substitute 9 for a and 27 for b 92 81, 272 729 add definition of square root; c 7 0 exact form: 2810 281 # 10 9 210 approximate form
The ladder must be at least 28.5 ft tall. Now try Exercises 51 and 52
9 ft F. You’ve just reviewed how to evaluate formulas involving radicals
R.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary. n
1. 1 an a if n 7 0 is a(n) 2. The conjugate of 2 23 is
integer. .
3. By decomposing the rational exponent, we can 3 ? rewrite 164 as 116? 2 ?.
5. Discuss/Explain what it means when we say an expression like 1A has been written in simplest form. 6. Discuss/Explain why it would be easier to simplify the expression given using rational exponents rather than radicals: 1
4. 1x2 2 3 x2 3 x1 is an example of the property of exponents. 3 2
x2
#
3 2
1
x3
DEVELOPING YOUR SKILLS
Evaluate the expression 2x2 for the values given.
7. a. x 9
b. x 10
8. a. x 7
b. x 8
Simplify each expression, assuming that variables can represent any real number.
9. a. 249p2 c. 281m4 10. a. 225n2 c. 2v10
b. 21x 32 2 d. 2x2 6x 9 b. 21y 22 2 d. 24a2 12a 9
3 11. a. 1 64 3 c. 2216z12 3 12. a. 1 8 3 c. 227q9 6 13. a. 1 64 5 c. 2243x10 5 e. 2 1k 32 5
3 b. 2 125x3 3 3 v d. B 8 3 b. 2125p3 3 3 w d. B 64 6 b. 1 64 5 d. 2243x5 6 f. 2 1h 22 6
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Section R.6 Radicals and Rational Exponents
4 14. a. 1 216 5 c. 21024z15 5 e. 2 1q 92 5 3 15. a. 1125
c. 236 16. a. 1216 3
c. 2121
4 b. 1 216 5 d. 21024z20 6 f. 2 1p 42 6
4 b. 281n12 49v10 d. B 36
b. 216m 25x6 d. B 4 4
b. a
2
17. a. 83 4 2 c. a b 25 3
d. a
24
24. a. 28x6 c.
2 3 227a2b6 9
d. 254m6n8
e.
12 248 8
f.
25. a. 2.5 218a22a3 c.
8q
3
26. a. 5.1 22p232p5 2 3
b
c.
3
4 2 b. a b 9 2 125v9 3 b d. a 27w6
3 2
18. a. 9 c. a
16 b 81
34
3
3 2
19. a. 144
c. 1272
23
4 2 b. a b 25 4 27x3 3 b d. a 64 3
b. a
3
20. a. 1002 c. 11252
23
x3y 4x5y B 3 B 12y
3
16 2 b 25 27p6
49 2 b 36 4 x9 3 d. a b 8
3 b. 3 2 128a4b2
27. a.
ab2 25ab4 B 3 B 27 28m5
22m 45 c. B 16x2
28. a.
227y7
23y 20 c. B 4x4
5 29. a. 2 32x10y15 4 3 c. 3 1b
20 232 4
2 b. 23b 212b2 3 d. 29v2u23u5v2 3
4 b. 25q 220q3 5 3 3 d. 2 5cd2 125cd
b.
3 2 108n4
3 2 4n 81 d. 12 3 9 A 8z
b.
3 2 72b5
3 2 3b2 125 d. 9 3 A 27x6 4 5 b. x 2 x
d.
3 1 6
26
e. 2b1b 4
Use properties of exponents to simplify. Answer in exponential form without negative exponents.
21. a. A 2n p
B
2 25 5
22. a. a
3 8
24x
1 2
4x
2
b
b. a
3
8y4 3
64y2
1 3
b
b. A 2x4y4 B 4 1
3
Simplify each expression. Assume all variables represent non-negative real numbers.
23. a. 218m2 3 3 c. 264m3n5 8 6 228 e. 2
3 b. 2 2 125p3q7
d. 232p3q6 27 272 f. 6
4 30. a. 2 81a12b16 4
c. 32a
3
5 6 b. a 2 a
d.
3 4 e. 1 c1 c
Simplify and add (if possible).
31. a. b. c. d.
12 272 9 298 8 248 3 2108 7 218m 250m 2 228p 3 263p
32. a. b. c. d.
3280 2 2125 5 212 2 227 3 212x 5 275x 3 240q 9 210q
3 1 3 4 2 3
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CHAPTER R A Review of Basic Concepts and Skills
41. x2 2x 9 0 a. x 1 110 b. x 1 110
3 3 33. a. 3x1 54x 5 2 16x4
b. 14 13x 112x 145
42. x2 14x 29 0 a. x 7 215
c. 272x3 150 17x 127 3 3 34. a. 52 54m3 2m 2 16m3 b. 110b 1200b 120 140
Rationalize each expression by building perfect nth root factors for each denominator. Assume all variables represent positive quantities.
c. 275r 132 127r 138 3
Compute each product and simplify the result.
35. a. 17 122 c. 1n 152 1n 152 2
36. a. 10.3152 c. 14 132 14 132 2
43. a.
b. 131 15 172 d. 16 132 2
c.
b. 151 16 122 d. 12 152 2
44. a.
37. a. 13 2 172 13 2 172 b. 1 15 11421 12 1132
c.
c. 1212 616213110 172
38. a. 15 4 1102 11 2 1102 b. 1 13 1221 110 1112 c. 13 15 41221 115 162
40. x 10x 18 0 a. x 5 17
b.
20 B 27x3
27 B 50b
d.
1 A 4p
4 120
b.
125 B 12n3
5 B 12x
d.
3 A 2m2
3
e.
3
e.
45. a.
8 3 111
b.
6 1x 12
46. a.
7 17 3
b.
12 1x 13
47. a.
110 3 13 12
b.
7 16 3 3 12
48. a.
1 12 16 114
b.
1 16 5 2 13
b. x 2 13
2
3 112
5 1a 3
8 3 31 5
Simplify the following expressions by rationalizing the denominators. Where possible, state results in exact form and approximate form, rounded to hundredths.
Use a substitution to verify the solutions to the quadratic equation given.
39. x2 4x 1 0 a. x 2 13
b. x 7 215
b. x 5 17
WORKING WITH FORMULAS 1
49. Fish length to weight relationship: L 1.131W2 3 The length to weight relationship of a female Pacific halibut can be approximated by the formula shown, where W is the weight in pounds and L is the length in feet. A fisherman lands a halibut that weighs 400 lb. Approximate the length of the fish (round to two decimal places).
50. Timing a falling object: t
1s 4
The time it takes an object to fall a certain distance is given by the formula shown, where t is the time in seconds and s is the distance the object has fallen. Approximate the time it takes an object to hit the ground, if it is dropped from the top of a building that is 80 ft in height (round to hundredths).
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Section R.6 Radicals and Rational Exponents
67
APPLICATIONS
51. Length of a cable: A radio tower is secured by cables that are anchored in the ground 8 m from its base. If the cables are attached to the tower 24 m above the ground, what is the length of each cable? Answer in (a) exact form using radicals, and (b) approximate form by rounding to one decimal place.
24 m
c
8m 52. Height of a kite: Benjamin Franklin is flying his kite in a storm once again. John Adams has walked to a position directly under the kite and is 75 m from Ben. If the kite is 50 m above John Adams’ head, how much string S has Ben let out? Answer in (a) exact form using radicals, and (b) approximate form by rounding to one decimal place.
S
per hour. (a) If the skid marks were 54 ft long, how fast was the car traveling? (b) Approximate the speed of the car if the skid marks were 90 ft long. 56. Wind-powered energy: If a wind-powered generator is delivering P units of power, the velocity V of the wind (in miles per hour) can be 3 P , where k is a constant determined using V Ak that depends on the size and efficiency of the generator. Rationalize the radical expression and use the new version to find the velocity of the wind if k 0.004 and the generator is putting out 13.5 units of power.
50 m
75 m
The time T (in days) required for a planet to make one revolution around the sun is modeled by the function 3 T 0.407R2, where R is the maximum radius of the planet’s orbit (in millions of miles). This is known as Kepler’s third law of planetary motion. Use the equation given to approximate the number of days required for one complete orbit of each planet, given its maximum orbital radius.
53. a. Earth: 93 million mi b. Mars: 142 million mi c. Mercury: 36 million mi 54. a. Venus: 67 million mi b. Jupiter: 480 million mi c. Saturn: 890 million mi 55. Accident investigation: After an accident, police officers will try to determine the approximate velocity V that a car was traveling using the formula V 226L, where L is the length of the skid marks in feet and V is the velocity in miles
57. Surface area: The lateral surface area (surface area excluding the base) h S of a cone is given by the formula 2 2 S r 2r h , where r is the r radius of the base and h is the height of the cone. Find the surface area of a cone that has a radius of 6 m and a height of 10 m. Answer in simplest form. 58. Surface area: The lateral surface a area S of a frustum (a truncated cone) is given by the formula h S 1a b2 2h2 1b a2 2, b where a is the radius of the upper base, b is the radius of the lower base, and h is the height. Find the surface area of a frustum where a 6 m, b 8 m, and h 10 m. Answer in simplest form.
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College Algebra—
68
The expression x2 7 is not factorable using integer values. But the expression can be written in the form x2 1 272 2, enabling us to factor it as a “binomial” and its conjugate: 1x 2721x 272. Use this idea to factor the following expressions.
R-68
CHAPTER R A Review of Basic Concepts and Skills
59. a. x2 5
b. n2 19
60. a. 4v2 11
b. 9w2 11
EXTENDING THE CONCEPT
61. The following terms 23x 29x 227x . . . form a pattern that continues until the sixth term is found. (a) Compute the sum of all six terms; (b) develop a system (investigate the pattern further) that will enable you to find the sum of 12 such terms without actually writing out the terms.
1 1 1 1 9 63. If A x2 x2 B 2 , find the value of x2 x2. 2
64. Rewrite by rationalizing the numerator: 1x h 1x h
62. Find a quick way to simplify the expression without the aid of a calculator. 3 4
2 5
aaaa
a a a a a3 b 5 6
4 5
3 2
10 3
OVERVIEW OF CHAPTER R Important Definitions, Properties, Formulas, and Relationships R.1 Notation and Relations concept • Set notation:
notation {members}
• Is an element of • Empty set Ø or { } • Is a proper subset of ( • Defining a set
5x | x . . .6
description braces enclose the members of a set
indicates membership in a set a set having no elements indicates the elements of one set are entirely contained in another the set of all x, such that x . . .
R.1 Sets of Numbers
• Natural: 51, 2, 3, 4, p6
• Integers: 5. . . , 3, 2, 1, 0, 1, 2, 3, . . .6 • Irrational: {numbers with a nonterminating, nonrepeating decimal form}
R.1 Absolute Value of a Number
example set of even whole numbers A 50, 2, 4, 6, 8, p6 14 A odd numbers in A S 50, 6, 12, 18, 24, p6 S ( A S 5x |x 6n for n 6
• Whole: 50, 1, 2, 3, p6 p • Rational: e , where p, q ; q 0 f q • Real: {all rational and irrational numbers}
R.1 Distance between a and b on a number line
0n 0 e
n n
if n 0 if n 6 0
a b or b a
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Overview of Chapter R
R.2 Properties of Real Numbers: For real numbers a, b, and c, Commutative Property • Addition: a b b a • Multiplication: a # b b # a Identities • Additive: 0 a a • Multiplicative: 1 # a a
Associative Property • Addition: 1a b2 c a 1b c2 • Multiplication: 1a # b2 # c a # 1b # c2 Inverses • Additive: a 1a2 0 p q • Multiplicative: # 1; p, q 0 q p
R.3 Properties of Exponents: For real numbers a and b, and integers m, n, and p (excluding 0 raised to a nonpositive power), • Product property: b # b b • Product to a power: 1ambn 2 p amp # bnp bm • Quotient property: n bmn 1b 02 b 1 a n b n • Negative exponents: bn n ; a b a b a b b 1a, b 02 m
n
mn
R.3 Special Products
• 1A B2 1A B2 A2 B2 • 1A B2 1A2 AB B2 2 A3 B3
R.4 Special Factorizations
• A2 B2 1A B21A B2 • A3 B3 1A B21A2 AB B2 2
• Power property: 1bm 2 n bmn am p amp • Quotient to a power: a n b np 1b 02 b b 0 • Zero exponents: b 1 1b 02 • Scientific notation: N 10k; 1 N 6 10, k
• 1A B2 2 A2 2AB B2; 1A B2 2 A2 2AB B2 • 1A B2 1A2 AB B2 2 A3 B3 • A2 2AB B2 1A B2 2 • A3 B3 1A B2 1A2 AB B2 2
R.5 Rational Expressions: For polynomials P, Q, R, and S with no denominator of zero, P#R P P#R P • Lowest terms: # • Equivalence: # Q R Q Q Q R # P R P R PR R P S PS P • Multiplication: # • Division: # Q S Q#S QS Q S Q R QR Q PQ P R R R • Addition/subtraction with unlike denominators: 1. Find the LCD of all rational expressions. 2. Build equivalent expressions using LCD. 3. Add/subtract numerators as indicated. 4. Write the result in lowest terms. • Addition:
• Subtraction:
Q PQ P R R R
R.6 Properties of Radicals • 1a is a real number only for a 0 n • 1a b, only if bn a n • For any real number a, 1an a when n is even
• 2a b, only if b2 a n • If n is even, 1a represents a real number only if a 0 n • For any real number a, 1an a when n is odd
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CHAPTER R A Review of Basic Concepts and Skills
m is a rational number written in lowest terms with n m m n n n 2, then a n ( 1a)m and a n 1am provided n 2a represents a real number. n n • If 1A and 1B represent real numbers and B 0, n 1A n A n BB 1B 1. the radicand has no factors that are perfect nth roots, 2. the radicand contains no fractions, and 3. no radicals occur in a denominator.
• If a is a real number and n is an integer greater than 1, 1 n n then 1a an provided 1 a represents a real number n n • If 1A and 1B represent real numbers, n n n 1 AB 1 A # 1 B
• A radical expression is in simplest form when:
• If
R.6 Pythagorean Theorem • For any triangle with sides a, b, and c, if a2 b2 c2, then the triangle is a right triangle.
• For any right triangle with legs a and b and hypotenuse c: a2 b2 c2.
PRACTICE TEST 1. State true or false. If false, state why. a. ( b. ( 1 c. 22 d. 2
9. Translate each phrase into an algebraic expression. a. Nine less than twice a number is subtracted from the number cubed. b. Three times the square of half a number is subtracted from twice the number.
2. State the value of each expression. 3 a. 2121 b. 1 125 c. 236 d. 2400
10. Create a mathematical model using descriptive variables. a. The radius of the planet Jupiter is approximately 119 mi less than 11 times the radius of the Earth. Express the radius of Jupiter in terms of the Earth’s radius. b. Last year, Video Venue Inc. earned $1.2 million more than four times what it earned this year. Express last year’s earnings of Video Venue Inc. in terms of this year’s earnings.
3. Evaluate each expression: 7 1 5 1 a. a b b. 8 4 3 6 c. 0.7 1.2 d. 1.3 15.92 4. Evaluate each expression: 1 a. 142a2 b b. 10.6211.52 3 c. 2.8 d. 4.2 10.62 0.7
11. Simplify by combining like terms. a. 8v2 4v 7 v2 v b. 413b 22 5b c. 4x 1x 2x2 2 x13 x2
12 10 5. Evaluate using a calculator: 200011 0.08 12 2
#
6. State the value of each expression, if possible. a. 0 6 b. 6 0
12. Factor each expression completely. a. 9x2 16 b. 4v3 12v2 9v 3 2 c. x 5x 9x 45
7. State the number of terms in each expression and identify the coefficient of each. c2 a. 2v2 6v 5 b. c 3 8. Evaluate each expression given x 0.5 and y 2. Round to hundredths as needed. a. 2x 3y2
b. 22 x14 x2 2
y x
13. Simplify using the properties of exponents. 5 a. 3 b. 12a3 2 2 1a2b4 2 3 b 5p2q3r4 2 m2 3 c. a b d. a b 2n 2pq2r4
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14. Simplify using the properties of exponents. 12a3b5 a. 3a2b4 b. 13.2 1017 2 12.0 1015 2 a3 # b 4 c. a 2 b d. 7x0 17x2 0 c 15. Compute each product. a. 13x2 5y213x2 5y2 b. 12a 3b2 2 16. Add or subtract as indicated. a. 15a3 4a2 32 17a4 4a2 3a 152 b. 12x2 4x 92 17x4 2x2 x 92 Simplify or compute as indicated. x5 4 n2 b. 2 5x n 4n 4 x3 27 3x2 13x 10 c. 2 d. x 3x 9 9x2 4 2 2 x 25 x x 20 e. 2 2 3x 11x 4 x 8x 16 m3 2 f. 2 51m 42 m m 12
17. a.
71
Practice Test
8 A 27v3 3 25 2 4 232 c. a b d. 16 8 e. 7 240 290 f. 1x 2521x 252 2 8 g. h. B 5x 26 22 19. Maximizing revenue: Due to past experience, the manager of a video store knows that if a popular video game is priced at $30, the store will sell 40 each day. For each decrease of $0.50, one additional sale will be made. The formula for the store’s revenue is then R 130 0.5x2140 x2, where x represents the number of times the price is decreased. Multiply the binomials and use a table of values to determine (a) the number of 50¢ decreases that will give the most revenue and (b) the maximum amount of revenue.
18. a. 21x 112 2
b.
3
20. Diagonal of a rectangular prism: Use the Pythagorean theorem to determine the length of the diagonal of the rectangular prism shown in the figure. (Hint: First find the diagonal 32 cm of the base.)
42 cm
24 cm
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College Algebra—
1 CHAPTER CONNECTIONS
Equations and Inequalities CHAPTER OUTLINE 1.1 Linear Equations, Formulas, and Problem Solving 74 1.2 Linear Inequalities in One Variable 86
The more you understand equations, the better you can apply them in context. Impressed by a friend’s 3-hr time in a 10-mi kayaking event (5-mi up river, 5-mi down river), you wish to determine the speed of the kayak in still water knowing only that the river current runs at 4 mph. The techniques illustrated in this chapter will assist you in answering this question. This application appears as Exercise 95 in Section 1.6. Check out these other real-world connections:
1.3 Absolute Value Equations and Inequalities 96 1.4 Complex Numbers 105 1.5 Solving Quadratic Equations 114 1.6 Solving Other Types of Equations 128
1-1
Cradle of Civilization (Section 1.1, Exercise 64) Heating and Cooling Subsidies (Section 1.2, Exercise 85) Cell Phone Subscribers (Section 1.5, Exercise 141) Mountain-Man Triathlon (Section 1.6, Exercise 95)
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College Algebra—
1.1 Linear Equations, Formulas, and Problem Solving In a study of algebra, you will encounter many families of equations, or groups of equations that share common characteristics. Of interest to us here is the family of linear equations in one variable, a study that lays the foundation for understanding more advanced families. In addition to solving linear equations, we’ll use the skills we develop to solve for a specified variable in a formula, a practice widely used in science, business, industry, and research.
Learning Objectives In Section 1.1 you will learn how to:
A. Solve linear equations using properties of equality
B. Recognize equations that are identities or contradictions
A. Solving Linear Equations Using Properties of Equality An equation is a statement that two expressions are equal. From the expressions 31x 12 x and x 7, we can form the equation
C. Solve for a specified variable in a formula or literal equation
D. Use the problem-solving
31x 12 x x 7,
guide to solve various problem types
CAUTION
Table 1.1 x
31x 12 x
x 7
2
11
9
1
7
8
which is a linear equation in one variable. To solve 0 an equation, we attempt to find a specific input or x1 value that will make the equation true, meaning the 2 left-hand expression will be equal to the right. Using 3 Table 1.1, we find that 31x 12 x x 7 is a 4 true equation when x is replaced by 2, and is a false equation otherwise. Replacement values that make the equation true are called solutions or roots of the equation.
3
7
1
6
5
5
9
4
13
3
From Section R.6, an algebraic expression is a sum or difference of algebraic terms. Algebraic expressions can be simplified, evaluated or written in an equivalent form, but cannot be “solved,” since we’re not seeking a specific value of the unknown.
Solving equations using a table is too time consuming to be practical. Instead we attempt to write a sequence of equivalent equations, each one simpler than the one before, until we reach a point where the solution is obvious. Equivalent equations are those that have the same solution set, and are obtained by using the distributive property to simplify the expressions on each side of the equation, and the additive and multiplicative properties of equality to obtain an equation of the form x constant. The Additive Property of Equality
The Multiplicative Property of Equality
If A, B, and C represent algebraic expressions and A B,
If A, B, and C represent algebraic expressions and A B , B A then AC BC and , 1C 02 C C
then A C B C
In words, the additive property says that like quantities, numbers or terms can be added to both sides of an equation. A similar statement can be made for the multiplicative property. These properties are combined into a general guide for solving linear equations, which you’ve likely encountered in your previous studies. Note that not all steps in the guide are required to solve every equation.
74
1-2
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Section 1.1 Linear Equations, Formulas, and Problem Solving
75
Guide to Solving Linear Equations in One Variable
• Eliminate parentheses using the distributive property, then combine any like terms. • Use the additive property of equality to write the equation with all variable terms on one side, and all constants on the other. Simplify each side.
• Use the multiplicative property of equality to obtain an equation of the form x constant.
• For applications, answer in a complete sentence and include any units of measure indicated. For our first example, we’ll use the equation 31x 12 x x 7 from our initial discussion.
EXAMPLE 1
Solving a Linear Equation Using Properties of Equality Solve for x: 31x 12 x x 7.
Solution
31x 12 x x 7 3x 3 x x 7 4x 3 x 7 5x 3 7 5x 10 x2
original equation distributive property combine like terms add x to both sides (additive property of equality) add 3 to both sides (additive property of equality) multiply both sides by 15 or divide both sides by 5 (multiplicative property of equality)
As we noted in Table 1.1, the solution is x 2. Now try Exercises 7 through 12
To check a solution by substitution means we substitute the solution back into the original equation (this is sometimes called back-substitution), and verify the left-hand side is equal to the right. For Example 1 we have: 31x 12 x x 7 312 12 2 2 7 3112 2 5 5 5✓
original equation substitute 2 for x simplify solution checks
If any coefficients in an equation are fractional, multiply both sides by the least common denominator (LCD) to clear the fractions. Since any decimal number can be written in fraction form, the same idea can be applied to decimal coefficients. EXAMPLE 2
Solving a Linear Equation with Fractional Coefficients Solve for n: 14 1n 82 2 12 1n 62.
Solution
A. You’ve just learned how to solve linear equations using properties of equality
1 4 1n 82 1 4n 2
2 12 1n 62 2 12 n 3 1 1 4n 2n 3 41 14 n2 41 12 n 32 n 2n 12 n 12 n 12
original equation distributive property combine like terms multiply both sides by LCD 4 distributive property subtract 2n multiply by 1
Verify the solution is n 12 using back-substitution. Now try Exercises 13 through 30
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CHAPTER 1 Equations and Inequalities
B. Identities and Contradictions Example 1 illustrates what is called a conditional equation, since the equation is true for x 2, but false for all other values of x. The equation in Example 2 is also conditional. An identity is an equation that is always true, no matter what value is substituted for the variable. For instance, 21x 32 2x 6 is an identity with a solution set of all real numbers, written as 5x 0x 6, or x 1q, q 2 in interval notation. Contradictions are equations that are never true, no matter what real number is substituted for the variable. The equations x 3 x 1 and 3 1 are contradictions. To state the solution set for a contradiction, we use the symbol “” (the null set) or “{ }” (the empty set). Recognizing these special equations will prevent some surprise and indecision in later chapters.
EXAMPLE 3
Solving an Equation That Is a Contradiction Solve for x: 21x 42 10x 8 413x 12 , and state the solution set.
Solution
21x 42 10x 8 413x 12 2x 8 10x 8 12x 4 12x 8 12x 12 8 12
original equation distributive property combine like terms subtract 12x
Since 8 is never equal to 12, the original equation is a contradiction. The solution is the empty set { }. Now try Exercises 31 through 36
B. You’ve just learned how to recognize equations that are identities or contradictions
In Example 3, our attempt to solve for x ended with all variables being eliminated, leaving an equation that is always false—a contradiction 18 is never equal to 12). There is nothing wrong with the solution process, the result is simply telling us the original equation has no solution. In other equations, the variables may once again be eliminated, but leave a result that is always true—an identity.
C. Solving for a Specified Variable in Literal Equations A formula is an equation that models a known relationship between two or more quantities. A literal equation is simply one that has two or more variables. Formulas are a type of literal equation, but not every literal equation is a formula. For example, the formula A P PRT models the growth of money in an account earning simple interest, where A represents the total amount accumulated, P is the initial deposit, R is the annual interest rate, and T is the number of years the money is left on deposit. To describe A P PRT , we might say the formula has been “solved for A” or that “A is written in terms of P, R, and T.” In some cases, before using a formula it may be convenient to solve for one of the other variables, say P. In this case, P is called the object variable.
EXAMPLE 4
Solving for Specified Variable Given A P PRT , write P in terms of A, R, and T (solve for P).
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Section 1.1 Linear Equations, Formulas, and Problem Solving
Solution
77
Since the object variable occurs in more than one term, we first apply the distributive property. A P PRT A P11 RT2 P11 RT2 A 1 RT 11 RT2 A P 1 RT
focus on P — the object variable factor out P solve for P [divide by (1RT )]
result
Now try Exercises 37 through 48
We solve literal equations for a specified variable using the same methods we used for other equations and formulas. Remember that it’s good practice to focus on the object variable to help guide you through the solution process, as again shown in Example 5.
EXAMPLE 5
Solving for a Specified Variable Given 2x 3y 15, write y in terms of x (solve for y).
Solution
WORTHY OF NOTE
2x 3y 15 3y 2x 15 1 3 13y2
y
In Example 5, notice that in the second step we wrote the subtraction of 2x as 2x 15 instead of 15 2x. For reasons that become clear later in this chapter, we generally write variable terms before constant terms.
1 3 12x 2 3 x
152 5
focus on the object variable subtract 2x (isolate term with y) multiply by 13 (solve for y) distribute and simplify
Now try Exercises 49 through 54
Literal Equations and General Solutions Solving literal equations for a specified variable can help us develop the general solution for an entire family of equations. This is demonstrated here for the family of linear equations written in the form ax b c. A side-by-side comparison with a specific linear equation demonstrates that identical ideas are used. Specific Equation 2x 3 15 2x 15 3 x
15 3 2
Literal Equation focus on object variable subtract constant divide by coefficient
ax b c ax c b x
cb a
Of course the solution on the left would be written as x 6 and checked in the original equation. On the right we now have a general formula for all equations of the form ax b c. EXAMPLE 6
Solving Equations of the Form ax b c Using the General Formula Solve 6x 1 25 using the formula just developed, and check your solution in the original equation.
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CHAPTER 1 Equations and Inequalities
Solution
WORTHY OF NOTE Developing a general solution for the linear equation ax b c seems to have little practical use. But in Section 1.5 we’ll use this idea to develop a general solution for quadratic equations, a result with much greater significance. C. You’ve just learned how to solve for a specified variable in a formula or literal equation
For this equation, a 6, b 1, and c 25, this gives cb → Check: x 6x 1 25 a 25 112 6142 1 25 6 24 24 1 25 6 4 25 25 ✓ Now try Exercises 55 through 60
D. Using the Problem-Solving Guide Becoming a good problem solver is an evolutionary process. Over time and with continued effort, your problem-solving skills grow, as will your ability to solve a wider range of applications. Most good problem solvers develop the following characteristics:
• A positive attitude • A mastery of basic facts • Strong mental arithmetic skills
• Good mental-visual skills • Good estimation skills • A willingness to persevere
These characteristics form a solid basis for applying what we call the ProblemSolving Guide, which simply organizes the basic elements of good problem solving. Using this guide will help save you from two common stumbling blocks—indecision and not knowing where to start. Problem-Solving Guide • Gather and organize information. Read the problem several times, forming a mental picture as you read. Highlight key phrases. List given information, including any related formulas. Clearly identify what you are asked to find. • Make the problem visual. Draw and label a diagram or create a table of values, as appropriate. This will help you see how different parts of the problem fit together. • Develop an equation model. Assign a variable to represent what you are asked to find and build any related expressions referred to in the exercise. Write an equation model from the information given in the exercise. Carefully reread the exercise to double-check your equation model. • Use the model and given information to solve the problem. Substitute given values, then simplify and solve. State the answer in sentence form, and check that the answer is reasonable. Include any units of measure indicated.
General Modeling Exercises In Section R.2, we learned to translate word phrases into symbols. This skill is used to build equations from information given in paragraph form. Sometimes the variable occurs more than once in the equation, because two different items in the same exercise are related. If the relationship involves a comparison of size, we often use line segments or bar graphs to model the relative sizes.
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Section 1.1 Linear Equations, Formulas, and Problem Solving
EXAMPLE 7
79
Solving an Application Using the Problem-Solving Guide The largest state in the United States is Alaska (AK), which covers an area that is 230 square miles (mi2) more than 500 times that of the smallest state, Rhode Island (RI). If they have a combined area of 616,460 mi2, how many square miles does each cover?
Solution
Combined area is 616,460 mi2, AK covers 230 more than 500 times the area of RI.
gather and organize information highlight any key phrases
616,460
…
230
make the problem visual
500 times
Rhode Island’s area R
Alaska
Let R represent the area of Rhode Island. Then 500R 230 represents Alaska’s area.
assign a variable build related expressions
Rhode Island’s area Alaska’s area Total R 1500R 2302 616,460 501R 616,230 R 1230
write the equation model combine like terms, subtract 230 divide by 501
2
Rhode Island covers an area of 1230 mi , while Alaska covers an area of 500112302 230 615,230 mi2. Now try Exercises 63 through 68
Consecutive Integer Exercises Exercises involving consecutive integers offer excellent practice in assigning variables to unknown quantities, building related expressions, and the problem-solving process in general. We sometimes work with consecutive odd integers or consecutive even integers as well. EXAMPLE 8
Solving a Problem Involving Consecutive Odd Integers The sum of three consecutive odd integers is 69. What are the integers?
Solution
The sum of three consecutive odd integers . . . 2
2
2
2
gather/organize information highlight any key phrases
2
WORTHY OF NOTE The number line illustration in Example 8 shows that consecutive odd integers are two units apart and the related expressions were built accordingly: n, n 2, n 4, and so on. In particular, we cannot use n, n 1, n 3, . . . because n and n 1 are not two units apart. If we know the exercise involves even integers instead, the same model is used, since even integers are also two units apart. For consecutive integers, the labels are n, n 1, n 2, and so on.
4 3 2 1
odd
odd
0
1
odd
2
3
odd
4
n n1 n2 n3 n4
odd
odd
odd
Let n represent the smallest consecutive odd integer, then n 2 represents the second odd integer and 1n 22 2 n 4 represents the third.
In words: first second third odd integer 69 n 1n 22 1n 42 69 3n 6 69 3n 63 n 21
make the problem visual
assign a variable build related expressions
write the equation model equation model combine like terms subtract 6 divide by 3
The odd integers are n 21, n 2 23, and n 4 25. 21 23 25 69 ✓ Now try Exercises 69 through 72
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CHAPTER 1 Equations and Inequalities
Uniform Motion (Distance, Rate, Time) Exercises Uniform motion problems have many variations, and it’s important to draw a good diagram when you get started. Recall that if speed is constant, the distance traveled is equal to the rate of speed multiplied by the time in motion: D RT. EXAMPLE 9
Solving a Problem Involving Uniform Motion I live 260 mi from a popular mountain retreat. On my way there to do some mountain biking, my car had engine trouble—forcing me to bike the rest of the way. If I drove 2 hr longer than I biked and averaged 60 miles per hour driving and 10 miles per hour biking, how many hours did I spend pedaling to the resort?
Solution
The sum of the two distances must be 260 mi. The rates are given, and the driving time is 2 hr more than biking time.
Home
gather/organize information highlight any key phrases make the problem visual
Driving
Biking
D1 RT
D2 rt
Resort
D1 D2 Total distance 260 miles
Let t represent the biking time, then T t 2 represents time spent driving. D1 D2 260 RT rt 260 601t 22 10t 260 70t 120 260 70t 140 t2
assign a variable build related expressions write the equation model RT D1, rt D2 substitute t 2 for T, 60 for R, 10 for r distribute and combine like terms subtract 120 divide by 70
I rode my bike for t 2 hr, after driving t 2 4 hr. Now try Exercises 73 through 76
Exercises Involving Mixtures Mixture problems offer another opportunity to refine our problem-solving skills while using many elements from the problem-solving guide. They also lend themselves to a very useful mental-visual image and have many practical applications.
EXAMPLE 10
Solving an Application Involving Mixtures As a nasal decongestant, doctors sometimes prescribe saline solutions with a concentration between 6% and 20%. In “the old days,” pharmacists had to create different mixtures, but only needed to stock these concentrations, since any percentage in between could be obtained using a mixture. An order comes in for a 15% solution. How many milliliters (mL) of the 20% solution must be mixed with 10 mL of the 6% solution to obtain the desired 15% solution?
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Section 1.1 Linear Equations, Formulas, and Problem Solving
Solution
WORTHY OF NOTE For mixture exercises, an estimate assuming equal amounts of each liquid can be helpful. For example, assume we use 10 mL of the 6% solution and 10 mL of the 20% solution. The final concentration would be halfway in between, 6 2 20 13%. This is too low a concentration (we need a 15% solution), so we know that more than 10 mL of the stronger (20%) solution must be used.
D. You’ve just learned how to use the problem-solving guide to solve various problem types
Only 6% and 20% concentrations are available; mix a 20% solution with 10 mL of a 6% solution 20% solution
gather/organize information highlight any key phrases
6% solution ? mL
10 mL make the problem visual
(10 ?) mL 15% solution
Let x represent the amount of 20% solution, then 10 x represents the total amount of 15% solution. 1st quantity times its concentration
1010.062 0.6
2nd quantity times its concentration
x10.22 0.2x
assign a variable build related expressions
1st2nd quantity times desired concentration
110 x2 10.152 1.5 0.15x 0.2x 0.9 0.15x 0.05x 0.9 x 18
write equation model distribute/simplify subtract 0.6 subtract 0.15x divide by 0.05
To obtain a 15% solution, 18 mL of the 20% solution must be mixed with 10 mL of the 6% solution. Now try Exercises 77 through 84
TECHNOLOGY HIGHLIGHT
Using a Graphing Calculator as an Investigative Tool The mixture concept can be applied in a wide variety of ways, including mixing zinc and copper to get bronze, different kinds of nuts for the holidays, diversifying investments, or mixing two acid solutions in order to get a desired concentration. Whether the value of each part in the mix is monetary or a percent of concentration, the general mixture equation has this form: Quantity 1 # Value I Quantity 2 # Value II Total quantity # Desired value Graphing calculators are a great tool for exploring this relationship, because the TABLE feature enables us to test the result of various mixtures in an instant. Suppose 10 oz of an 80% glycerin solution are to be mixed with an unknown amount of a 40% solution. How much of the 40% solution is used if a 56% solution is needed? To begin, we might consider that using equal amounts of the 40% and 80% solutions would result in a 60% concentration (halfway between 40% and 80%). To illustrate, let C represent the final concentration of the mix. 1010.82 1010.42 110 102C 8 4 20C 12 20C 0.6 C
equal amounts simplify add divide by 20
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Figure 1.1
Figure 1.2
Figure 1.3
Since this is too high a concentration (a 56% 0.56 solution is desired), we know more of the weaker solution should be used. To explore the relationship further, assume x oz of the 40% solution are used and enter the resulting equation on the Y = screen as Y1 .81102 .4X. Enter the result of the mix as Y2 .56110 X2 (see Figure 1.1). Next, set up a TABLE using 2nd WINDOW (TBLSET) with TblStart 10, ¢Tbl 1, and the calculator set in Indpnt: AUTO mode (see Figure 1.2). Finally, access the TABLE results using 2nd GRAPH (TABLE). The resulting screen is shown in Figure 1.3, where we note that 15 oz of the 40% solution should be used (the equation is true when X is 15: Y1 Y2 2. Exercise 1:
Use this idea to solve Exercises 81 and 82 from the Exercises.
1.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. A(n) is an equation that is always true, regardless of the value. 2. A(n) is an equation that is always false, regardless of the value. 3. A(n)
equation is an equation having or more unknowns.
4. For the equation S 2r2 2rh, we can say that S is written in terms of and . 5. Discuss/Explain the three tests used to identify a linear equation. Give examples and counterexamples in your discussion. 6. Discuss/Explain each of the four basic parts of the problem-solving guide. Include a solved example in your discussion.
DEVELOPING YOUR SKILLS
Solve each equation. Check your answer by substitution.
7. 4x 31x 22 18 x 8. 15 2x 41x 12 9
9. 21 12v 172 7 3v
10. 12 5w 9 16w 72
11. 8 13b 52 5 21b 12 12. 2a 41a 12 3 12a 12
Solve each equation.
13. 15 1b 102 7 13 1b 92
14. 16 1n 122 14 1n 82 2 15. 23 1m 62 1 2
16. 45 1n 102 8 9
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Section 1.1 Linear Equations, Formulas, and Problem Solving
17. 12x 5 13x 7
18. 4 23y 12y 5
x3 x 19. 7 5 3
z z4 20. 2 6 2
21. 15 6
3p 8
22. 15
2q 21 9
23. 0.2124 7.5a2 6.1 4.1 24. 0.4117 4.25b2 3.15 4.16
25. 6.2v 12.1v 52 1.1 3.7v
26. 7.9 2.6w 1.5w 19.1 2.1w2
39. C 2r for r (geometry) 40. V LWH for W (geometry) 41.
P1V1 P2V2 for T2 (science) T1 T2
42.
P1 C 2 for P2 (communication) P2 d
43. V 43r2h for h (geometry) 44. V 13r2h for h (geometry) 45. Sn na
a1 an b for n (sequences) 2
h1b1 b2 2 for h (geometry) 2
27.
n 2 n 2 5 3
46. A
28.
2 m m 3 5 4
47. S B 12PS for P (geometry)
p p 29. 3p 5 2p 6 4 6 30.
q q 1 3q 2 4q 6 8
Identify the following equations as an identity, a contradiction, or a conditional equation, then state the solution.
31. 314z 52 15z 20 3z 32. 5x 9 2 512 x2 1 33. 8 813n 52 5 611 n2 34. 2a 41a 12 1 312a 12 35. 414x 52 6 218x 72 36. 15x 32 2x 11 41x 22 Solve for the specified variable in each formula or literal equation.
48. s 12gt2 vt for g (physics) 49. Ax By C for y 50. 2x 3y 6 for y 51. 56x 38y 2 for y 52. 23x 79y 12 for y
53. y 3 4 5 1x 102 for y
54. y 4 2 15 1x 102 for y
The following equations are given in ax b c form. Solve by identifying the value of a, b, and c, then using cb . the formula x a
55. 3x 2 19 56. 7x 5 47 57. 6x 1 33 58. 4x 9 43
37. P C CM for C (retail)
59. 7x 13 27
38. S P PD for P (retail)
60. 3x 4 25
83
WORKING WITH FORMULAS
61. Surface area of a cylinder: SA 2r2 2rh The surface area of a cylinder is given by the formula shown, where h is the height of the cylinder and r is the radius of the base. Find the height of a cylinder that has a radius of 8 cm and a surface area of 1256 cm2. Use 3.14.
62. Using the equation-solving process for Exercise 61 as a model, solve the formula SA 2r2 2rh for h.
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APPLICATIONS
Solve by building an equation model and using the problem-solving guidelines as needed. General Modeling Exercises
63. Two spelunkers (cave explorers) were exploring different branches of an underground cavern. The first was able to descend 198 ft farther than twice the second. If the first spelunker descended a 1218 ft, how far was the second spelunker able to descend? 64. The area near the joining of the Tigris and Euphrates Rivers (in modern Iraq) has often been called the Cradle of Civilization, since the area has evidence of many ancient cultures. The length of the Euphrates River exceeds that of the Tigris by 620 mi. If they have a combined length of 2880 mi, how long is each river? 65. U.S. postal regulations require that a package Girth can have a maximum combined length and girth (distance around) L of 108 in. A shipping H carton is constructed so that it has a width of W 14 in., a height of 12 in., and can be cut or folded to various lengths. What is the maximum length that can be used? Source: www.USPS.com
66. Hi-Tech Home Improvements buys a fleet of identical trucks that cost $32,750 each. The company is allowed to depreciate the value of their trucks for tax purposes by $5250 per year. If company policies dictate that older trucks must be sold once their value declines to $6500, approximately how many years will they keep these trucks? 67. The longest suspension bridge in the world is the Akashi Kaikyo (Japan) with a length of 6532 feet. Japan is also home to the Shimotsui Straight bridge. The Akashi Kaikyo bridge is 364 ft more than twice the length of the Shimotsui bridge. How long is the Shimotsui bridge? Source: www.guinnessworldrecords.com
68. The Mars rover Spirit landed on January 3, 2004. Just over 1 yr later, on January 14, 2005, the Huygens probe landed on Titan (one of Saturn’s moons). At their closest approach, the distance from the Earth to Saturn is 29 million mi more than 21 times the distance from the Earth to Mars. If the distance to Saturn is 743 million mi, what is the distance to Mars?
Consecutive Integer Exercises
69. Find two consecutive even integers such that the sum of twice the smaller integer plus the larger integer is one hundred forty-six. 70. When the smaller of two consecutive integers is added to three times the larger, the result is fiftyone. Find the smaller integer. 71. Seven times the first of two consecutive odd integers is equal to five times the second. Find each integer. 72. Find three consecutive even integers where the sum of triple the first and twice the second is eight more than four times the third. Uniform Motion Exercises
73. At 9:00 A.M., Linda leaves work on a business trip, gets on the interstate, and sets her cruise control at 60 mph. At 9:30 A.M., Bruce notices she’s left her briefcase and cell phone, and immediately starts after her driving 75 mph. At what time will Bruce catch up with Linda? 74. A plane flying at 300 mph has a 3-hr head start on a “chase plane,” which has a speed of 800 mph. How far from the airport will the chase plane overtake the first plane? 75. Jeff had a job interview in a nearby city 72 mi away. On the first leg of the trip he drove an average of 30 mph through a long construction zone, but was able to drive 60 mph after passing through this zone. If driving time for the trip was 112 hr, how long was he driving in the construction zone? 76. At a high-school cross-country meet, Jared jogged 8 mph for the first part of the race, then increased his speed to 12 mph for the second part. If the race was 21 mi long and Jared finished in 2 hr, how far did he jog at the faster pace?
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Section 1.1 Linear Equations, Formulas, and Problem Solving
Mixture Exercises Give the total amount of the mix that results and the percent concentration or worth of the mix.
77. Two quarts of 100% orange juice are mixed with 2 quarts of water (0% juice). 78. Ten pints of a 40% acid are combined with 10 pints of an 80% acid. 79. Eight pounds of premium coffee beans worth $2.50 per pound are mixed with 8 lb of standard beans worth $1.10 per pound. 80. A rancher mixes 50 lb of a custom feed blend costing $1.80 per pound, with 50 lb of cheap cottonseed worth $0.60 per pound. Solve each application of the mixture concept.
81. To help sell more of a lower grade meat, a butcher mixes some premium ground beef worth $3.10/lb,
with 8 lb of lower grade ground beef worth $2.05/lb. If the result was an intermediate grade of ground beef worth $2.68/lb, how much premium ground beef was used? 82. Knowing that the camping/hiking season has arrived, a nutrition outlet is mixing GORP (Good Old Raisins and Peanuts) for the anticipated customers. How many pounds of peanuts worth $1.29/lb, should be mixed with 20 lb of deluxe raisins worth $1.89/lb, to obtain a mix that will sell for $1.49/lb? 83. How many pounds of walnuts at 84¢/lb should be mixed with 20 lb of pecans at $1.20/lb to give a mixture worth $1.04/lb? 84. How many pounds of cheese worth 81¢/lb must be mixed with 10 lb cheese worth $1.29/lb to make a mixture worth $1.11/lb?
EXTENDING THE THOUGHT
85. Look up and read the following article. Then turn in a one page summary. “Don’t Give Up!,” William H. Kraus, Mathematics Teacher, Volume 86, Number 2, February 1993: pages 110–112. 86. A chemist has four solutions of a very rare and expensive chemical that are 15% acid (cost $120 per ounce), 20% acid (cost $180 per ounce), 35% acid (cost $280 per ounce) and 45% acid (cost $359 per ounce). She requires 200 oz of a 29% acid solution. Find the combination of any two of these concentrations that will minimize the total cost of the mix. 87. P, Q, R, S, T, and U represent numbers. The arrows in the figure show the sum of the two or three numbers added in the indicated direction
85
(Example: Q T 23). Find P Q R S T U. P
Q
26
S
30 40
R
T 19
U 23
34
88. Given a sphere circumscribed by a cylinder, verify the volume of the sphere is 23 that of the cylinder.
MAINTAINING YOUR SKILLS
89. (R.1) Simplify the expression using the order of operations. 2 62 4 8 90. (R.3) Name the coefficient of each term in the expression: 3v3 v2 3v 7
91. (R.4) Factor each expression: a. 4x2 9 b. x3 27 92. (R.2) Identify the property illustrated: 6 7
# 5 # 21 67 # 21 # 5
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College Algebra—
1.2 Linear Inequalities in One Variable There are many real-world situations where the mathematical model leads to a statement of inequality rather than equality. Here are a few examples:
Learning Objectives In Section 1.2 you will learn how to:
Clarice wants to buy a house costing $85,000 or less. To earn a “B,” Shantë must score more than 90% on the final exam. To escape the Earth’s gravity, a rocket must travel 25,000 mph or more.
A. Solve inequalities and state solution sets
B. Solve linear inequalities C. Solve compound
While conditional linear equations in one variable have a single solution, linear inequalities often have an infinite number of solutions—which means we must develop additional methods for writing a solution set.
inequalities
D. Solve applications of inequalities
A. Inequalities and Solution Sets The set of numbers that satisfy an inequality is called the solution set. Instead of using a simple inequality to write solution sets, we will often use (1) a form of set notation, (2) a number line graph, or (3) interval notation. Interval notation is a symbolic way of indicating a selected interval of the real number line. When a number acts as the boundary point for an interval (also called an endpoint), we use a left bracket “[” or a right bracket “]” to indicate inclusion of the endpoint. If the boundary point is not included, we use a left parenthesis “(” or right parenthesis “).”
WORTHY OF NOTE Some texts will use an open dot “º” to mark the location of an endpoint that is not included, and a closed dot “•” for an included endpoint.
EXAMPLE 1
Using Inequalities in Context Model the given phrase using the correct inequality symbol. Then state the result in set notation, graphically, and in interval notation: “If the ball had traveled at least one more foot in the air, it would have been a home run.”
Solution
WORTHY OF NOTE Since infinity is really a concept and not a number, it is never included (using a bracket) as an endpoint for an interval.
Let d represent additional distance: d 1.
• Set notation: 5d| d 16 • Graph 2 1 0 1[ 2 3 4 • Interval notation: d 31, q2
5
Now try Exercises 7 through 18
The “” symbol says the number d is an element of the set or interval given. The “ q ” symbol represents positive infinity and indicates the interval continues forever to the right. Note that the endpoints of an interval must occur in the same order as on the number line (smaller value on the left; larger value on the right). A short summary of other possibilities is given here. Many variations are possible.
Conditions (a b) x is greater than k x is less than or equal to k
A. You’ve just learned how to solve inequalities and state solution sets
86
Set Notation 5x| x 7 k6 5x| x k6
Number Line
x 1k, q2
) k
5x | a 6 x 6 b6
)
)
a
b
x is less than b and greater than or equal to a
5x |a x 6 b6
[
)
a
b
5x |x 6 a or x 7 b6
x 1q, k4
[ k
x is less than b and greater than a
x is less than a or x is greater than b
Interval Notation
x 1a, b2 x 3a, b2
)
)
a
b
x 1q, a2 ´ 1b, q 2
1-14
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Section 1.2 Linear Inequalities in One Variable
87
B. Solving Linear Inequalities A linear inequality resembles a linear equality in many respects: Linear Inequality
Related Linear Equation
(1)
x 6 3
x3
(2)
3 p 2 12 8
3 p 2 12 8
A linear inequality in one variable is one that can be written in the form ax b 6 c, where a, b, and c and a 0. This definition and the following properties also apply when other inequality symbols are used. Solutions to simple inequalities are easy to spot. For instance, x 2 is a solution to x 6 3 since 2 6 3. For more involved inequalities we use the additive property of inequality and the multiplicative property of inequality. Similar to solving equations, we solve inequalities by isolating the variable on one side to obtain a solution form such as variable 6 number. The Additive Property of Inequality If A, B, and C represent algebraic expressions and A 6 B, then A C 6 B C Like quantities (numbers or terms) can be added to both sides of an inequality. While there is little difference between the additive property of equality and the additive property of inequality, there is an important difference between the multiplicative property of equality and the multiplicative property of inequality. To illustrate, we begin with 2 6 5. Multiplying both sides by positive three yields 6 6 15, a true inequality. But notice what happens when we multiply both sides by negative three: 2 6 5
original inequality
2132 6 5132 6 6 15
multiply by negative three false
This is a false inequality, because 6 is to the right of 15 on the number line. Multiplying (or dividing) an inequality by a negative quantity reverses the order relationship between two quantities (we say it changes the sense of the inequality). We must compensate for this by reversing the inequality symbol. 6 7 15
change direction of symbol to maintain a true statement
For this reason, the multiplicative property of inequality is stated in two parts. The Multiplicative Property of Inequality If A, B, and C represent algebraic expressions and A 6 B, then AC 6 BC
If A, B, and C represent algebraic expressions and A 6 B, then AC 7 BC
if C is a positive quantity (inequality symbol remains the same).
if C is a negative quantity (inequality symbol must be reversed).
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CHAPTER 1 Equations and Inequalities
EXAMPLE 2
Solving an Inequality Solve the inequality, then graph the solution set and write it in interval notation: 2 1 5 3 x 2 6.
Solution
1 5 2 x 3 2 6 1 5 2 6a x b 162 3 2 6 4x 3 5 4x 2 1 x 2
WORTHY OF NOTE
EXAMPLE 3
clear fractions (multiply by LCD) simplify subtract 3 divide by 4, reverse inequality sign
1 2
• Graph:
As an alternative to multiplying or dividing by a negative value, the additive property of inequality can be used to ensure the variable term will be positive. From Example 2, the inequality 4x 2 can be written as 2 4x by adding 4x to both sides and subtracting 2 from both sides. This gives the solution 12 x, which is equivalent to x 12.
original inequality
3 2 1
[
0
• Interval notation: x
1
2 3 1 32, q 2
4
Now try Exercises 19 through 28
To check a linear inequality, you often have an infinite number of choices—any number from the solution set/interval. If a test value from the solution interval results in a true inequality, all numbers in the interval are solutions. For Example 2, using x 0 results in the true statement 12 56 ✓. Some inequalities have all real numbers as the solution set: 5x | x 6, while other inequalities have no solutions, with the answer given as the empty set: { }.
Solving Inequalities Solve the inequality and write the solution in set notation: a. 7 13x 52 21x 42 5x b. 31x 42 5 6 21x 32 x
Solution
a. 7 13x 52 21x 42 5x 7 3x 5 2x 8 5x 3x 2 3x 8 2 8
original inequality distributive property combine like terms add 3x
Since the resulting statement is always true, the original inequality is true for all real numbers. The solution is 5x |x 6 . b. 31x 42 5 6 21x 32 x original inequality 3x 12 5 6 2x 6 x distribute 3x 7 6 3x 6 combine like terms 7 6 6 subtract 3x B. You’ve just learned how to solve linear inequalities
Since the resulting statement is always false, the original inequality is false for all real numbers. The solution is { }. Now try Exercises 29 through 34
C. Solving Compound Inequalities In some applications of inequalities, we must consider more than one solution interval. These are called compound inequalities, and require us to take a close look at the
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operations of union “ ´ ” and intersection “ ¨”. The intersection of two sets A and B, written A ¨ B, is the set of all elements common to both sets. The union of two sets A and B, written A ´ B, is the set of all elements that are in either set. When stating the union of two sets, repetitions are unnecessary.
EXAMPLE 4
Finding the Union and Intersection of Two Sets
Solution
A ¨ B is the set of all elements in both A and B: A ¨ B 51, 2, 36. A ´ B is the set of all elements in either A or B: A ´ B 52, 1, 0, 1, 2, 3, 4, 56.
WORTHY OF NOTE For the long term, it may help to rephrase the distinction as follows. The intersection is a selection of elements that are common to two sets, while the union is a collection of the elements from two sets (with no repetitions).
EXAMPLE 5
For set A 52, 1, 0, 1, 2, 36 and set B 51, 2, 3, 4, 56, determine A ¨ B and A ´ B.
Now try Exercises 35 through 40
Notice the intersection of two sets is described using the word “and,” while the union of two sets is described using the word “or.” When compound inequalities are formed using these words, the solution is modeled after the ideas from Example 4. If “and” is used, the solutions must satisfy both inequalities. If “or” is used, the solutions can satisfy either inequality.
Solving a Compound Inequality Solve the compound inequality, then write the solution in interval notation: 3x 1 6 4 or 4x 3 6 6.
Solution WORTHY OF NOTE
Begin with the statement as given: 3x 1 6 4 3x 6 3
4x 3 6 6 original statement 4x 6 9 isolate variable term 9 or solve for x, reverse first inequality symbol x 7 1 x 6 4 The solution x 7 1 or x 6 94 is better understood by graphing each interval separately, then selecting both intervals (the union).
The graphs from Example 5 clearly show the solution consists of two disjoint (disconnected) intervals. This is reflected in the “or” statement: x 6 94 or x 7 1, and in the interval notation. Also, note the solution x 6 94 or x 7 1 is not equivalent to 94 7 x 7 1, as there is no single number that is both greater than 1 and less than 94 at the same time.
x 1:
x 9 : 4 x 9 or x 1: 4
or or
8 7 6 5 4 3 2 1
)
0
1
2
3
4
5
6
0
1
2
3
4
5
6
0
1
2
3
4
5
6
9 4
)
8 7 6 5 4 3 2 1
9 4
)
8 7 6 5 4 3 2 1
)
9 Interval notation: x aq, b ´ 11, q 2. 4 Now try Exercises 41 and 42 EXAMPLE 6
Solving a Compound Inequality Solve the compound inequality, then write the solution in interval notation: 3x 5 7 13 and 3x 5 6 1.
Solution
Begin with the statement as given: and 3x 5 7 13 3x 5 6 1 and 3x 7 18 3x 6 6 and x 7 6 x 6 2
original statement subtract five divide by 3
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The solution x 7 6 and x 6 2 can best be understood by graphing each interval separately, then noting where they intersect.
WORTHY OF NOTE The inequality a 6 b (a is less than b) can equivalently be written as b 7 a (b is greater than a). In Example 6, the solution is read, “ x 7 6 and x 6 2,” but if we rewrite the first inequality as 6 6 x (with the “arrowhead” still pointing at 62, we have 6 6 x and x 6 2 and can clearly see that x must be in the single interval between 6 and 2.
EXAMPLE 7
Solution
x 6: x 2: x 6 and x 2:
)
8 7 6 5 4 3 2 1
)
8 7 6 5 4 3 2 1
0
1
2
3
4
5
6
0
1
2
3
4
5
6
0
1
2
3
4
5
6
)
)
90
8 7 6 5 4 3 2 1
Interval notation: x 16, 22.
Now try Exercises 43 through 54
The solution from Example 6 consists of the single interval 16, 22, indicating the original inequality could actually be joined and written as 6 6 x 6 2, called a joint or compound inequality (see Worthy of Note). We solve joint inequalities in much the same way as linear inequalities, but must remember they have three parts (left, middle, and right). This means operations must be applied to all three parts in each step of the solution process, to obtain a solution form such as smaller number 6 x 6 larger number. The same ideas apply when other inequality symbols are used.
C. You’ve just learned how to solve compound inequalities
Solving a Compound Inequality Solve the compound inequality, then graph the solution set and write it in interval 2x 5 notation: 1 7 6. 3 2x 5 6 original inequality 1 7 3 3 6 2x 5 18 multiply all parts by 3; reverse the inequality symbols 8 6 2x 13 subtract 5 from all parts 13 4 6 x divide all parts by 2 2
• Graph:
)
5 4 3 2 1
13 2 0
• Interval notation: x 14,
1 13 2 4
2
3
4
5
6
[
7
8
Now try Exercises 55 through 60
D. Applications of Inequalities Domain and Allowable Values
Figure 1.4
Table 1.2 One application of inequalities involves the concept of allowable . values. Consider the expression 24 As Table 1.2 suggests, we can 24 x x x evaluate this expression using any real number other than zero, since 24 6 4 the expression 0 is undefined. Using set notation the allowable values 12 2 are written 5x | x , x 06 . To graph the solution we must be 1 careful to exclude zero, as shown in Figure 1.4. 48 2 The graph gives us a snapshot of the solution using interval 0 error notation, which is written as a union of two disjoint (disconnected) intervals so as to exclude zero: x 1q, 02 ´ 10, q 2 . The set of allowable values is referred to as the domain of the expression. Allowable values are said to be “in the domain” of the expression; values that are not allowed are said to be “outside the domain.” When the denominator of a fraction contains a variable expression, values that cause a denominator )) of zero are outside the domain. 3 2 1 0 1 2 3
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Section 1.2 Linear Inequalities in One Variable
EXAMPLE 8
Determining the Domain of an Expression 6 Determine the domain of the expression . State the result in set notation, x2 graphically, and using interval notation.
Solution
Set the denominator equal to zero and solve: x 2 0 yields x 2. This means 2 is outside the domain and must be excluded.
• Set notation: 5x | x , x 26
• Graph: 1 0 1 )2) 3 4 5 • Interval notation: x 1q, 22 ´ 12, q 2 Now try Exercises 61 through 68
A second area where allowable values are a concern involves the square root operation. Recall that 149 7 since 7 # 7 49. However, 149 cannot be written as the product of two real numbers since 172 # 172 49 and 7 # 7 49. In other words, 1X represents a real number only if the radicand is positive or zero. If X represents an algebraic expression, the domain of 1X is 5X |X 06 . EXAMPLE 9
Determining the Domain of an Expression Determine the domain of 1x 3. State the domain in set notation, graphically, and in interval notation.
Solution
The radicand must represent a nonnegative number. Solving x 3 0 gives x 3.
• Set notation: 5x | x 36 • Graph:
[
4 3 2 1
0
1
• Interval notation: x 3, q 2
2
Now try Exercises 69 through 76
Inequalities are widely used to help gather information, and to make comparisons that will lead to informed decisions. Here, the problem-solving guide is once again a valuable tool.
EXAMPLE 10
Using an Inequality to Compute Desired Test Scores Justin earned scores of 78, 72, and 86 on the first three out of four exams. What score must he earn on the fourth exam to have an average of at least 80?
Solution
Gather and organize information; highlight any key phrases. First the scores: 78, 72, 86. An average of at least 80 means A 80. Make the problem visual. Test 1
Test 2
Test 3
Test 4
Computed Average
Minimum
78
72
86
x
78 72 86 x 4
80
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Assign a variable; build related expressions. Let x represent Justin’s score on the fourth exam, then represents his average score. 78 72 86 x 80 4
78 72 86 x 4
average must be greater than or equal to 80
Write the equation model and solve. 78 72 86 x 320 236 x 320 x 84
multiply by 4 simplify solve for x (subtract 236)
Justin must score at least an 84 on the last exam to earn an 80 average. Now try Exercises 79 through 86
As your problem-solving skills improve, the process outlined in the problemsolving guide naturally becomes less formal, as we work more directly toward the equation model. See Example 11. EXAMPLE 11
Using an Inequality to Make a Financial Decision As Margaret starts her new job, her employer offers two salary options. Plan 1 is base pay of $1475/mo plus 3% of sales. Plan 2 is base pay of $500/mo plus 15% of sales. What level of monthly sales is needed for her to earn more under Plan 2?
Solution
D. You’ve just learned how to solve applications of inequalities
Let x represent her monthly sales in dollars. The equation model for Plan 1 would be 0.03x 1475; for Plan 2 we have 0.15x 500. To find the sales volume needed for her to earn more under Plan 2, we solve the inequality 0.15x 500 0.12x 500 0.12x x
7 7 7 7
0.03x 1475 1475 975 8125
Plan 2 7 Plan 1 subtract 0.03x subtract 500 divide by 0.12
If Margaret can generate more than $8125 in monthly sales, she will earn more under Plan 2. Now try Exercises 87 and 88
1.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. For inequalities, the three ways of writing a solution set are notation, a number line graph, and notation.
2. The mathematical sentence 3x 5 6 7 is a(n) inequality, while 2 6 3x 5 6 7 is a(n) inequality. 3. The The
of sets A and B is written A B. of sets A and B is written A ´ B.
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4. The intersection of set A with set B is the set of elements in A B. The union of set A with set B is the set of elements in A B.
93
6. Discuss/Explain why the inequality symbol must be reversed when multiplying or dividing by a negative quantity. Include a few examples.
5. Discuss/Explain how the concept of domain and allowable values relates to rational and radical expressions. Include a few examples.
DEVELOPING YOUR SKILLS
Use an inequality to write a mathematical model for each statement.
Solve each inequality and write the solution in set notation.
7. To qualify for a secretarial position, a person must type at least 45 words per minute.
29. 7 21x 32 4x 61x 32
8. The balance in a checking account must remain above $1000 or a fee is charged.
31. 413x 52 18 6 215x 12 2x
9. To bake properly, a turkey must be kept between the temperatures of 250° and 450°.
33. 61p 12 2p 212p 32
10. To fly effectively, the airliner must cruise at or between altitudes of 30,000 and 35,000 ft. Graph each inequality on a number line.
11. y 6 3
12. x 7 2
13. m 5
14. n 4
15. x 1
16. x 3
17. 5 7 x 7 2
18. 3 6 y 4
Write the solution set illustrated on each graph in set notation and interval notation.
19. 20. 21. 22.
[
3 2 1
0
3 2 1
[
3 2 1
[
3 2 1
1
)
0
0
0
2
1
[
1
1
3
2
2
2
2
34. 91w 12 3w 215 3w2 1 Determine the intersection and union of sets A, B, C, and D as indicated, given A 53, 2, 1, 0, 1, 2, 36, B 52, 4, 6, 86, C 54, 2, 0, 2, 46, and D 54, 5, 6, 76.
35. A B and A ´ B
36. A C and A ´ C
37. A D and A ´ D
38. B C and B ´ C
39. B D and B ´ D
40. C D and C ´ D
Express the compound inequalities graphically and in interval notation.
41. x 6 2 or x 7 1
42. x 6 5 or x 7 5
43. x 6 5 and x 2
44. x 4 and x 6 3
45. x 3 and x 1
46. x 5 and x 7
Solve the compound inequalities and graph the solution set.
3
)
3
47. 41x 12 20 or x 6 7 9 4
23. 5a 11 2a 5
49. 2x 7 3 and 2x 0 50. 3x 5 17 and 5x 0 51. 35x 12 7 2 3x
3 10
and 4x 7 1
0 and 3x 6 2 5 6
3x x 6 3 or x 1 7 5 8 4 2x x 54. 6 2 or x 3 7 2 5 10 55. 3 2x 5 6 7 56. 2 6 3x 4 19 53.
25. 21n 32 4 5n 1 26. 51x 22 3 6 3x 11 28.
48. 31x 22 7 15 or x 3 1
52.
24. 8n 5 7 2n 12
3x x 6 4 8 4
32. 8 16 5m2 7 9m 13 4m2
3
Solve the inequality and write the solution in set notation. Then graph the solution and write it in interval notation.
27.
30. 3 61x 52 217 3x2 1
2y y 6 2 5 10
57. 0.5 0.3 x 1.7
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58. 8.2 6 1.4 x 6 0.9 59. 7 6
34
x 1 11
60. 21 23x 9 6 7 Determine the domain of each expression. Write your answer in interval notation.
61.
12 m
62.
6 n
63.
5 y7
64.
4 x3
65.
a5 6a 3
66.
m5 8m 4
67.
15 3x 12
68.
7 2x 6
Determine the domain for each expression. Write your answer in interval notation.
69. 1x 2
70. 1y 7
71. 13n 12
72. 12m 5
73. 2b
74. 2a 34
4 3
75. 18 4y
WORKING WITH FORMULAS
77. Body mass index: B
704W H2
The U.S. government publishes a body mass index formula to help people consider the risk of heart disease. An index “B” of 27 or more means that a person is at risk. Here W represents weight in pounds and H represents height in inches. (a) Solve the formula for W. (b) If your height is 5¿8– what range of weights will help ensure you remain safe from the risk of heart disease? Source: www.surgeongeneral.gov/topics.
76. 112 2x
78. Lift capacity: 75S 125B 750 The capacity in pounds of the lift used by a roofing company to place roofing shingles and buckets of roofing nails on rooftops is modeled by the formula shown, where S represents packs of shingles and B represents buckets of nails. Use the formula to find (a) the largest number of shingle packs that can be lifted, (b) the largest number of nail buckets that can be lifted, and (c) the largest number of shingle packs that can be lifted along with three nail buckets.
APPLICATIONS
Write an inequality to model the given information and solve.
79. Exam scores: Jacques is going to college on an academic scholarship that requires him to maintain at least a 75% average in all of his classes. So far he has scored 82%, 76%, 65%, and 71% on four exams. What scores are possible on his last exam that will enable him to keep his scholarship? 80. Timed trials: In the first three trials of the 100-m butterfly, Johann had times of 50.2, 49.8, and 50.9 sec. How fast must he swim the final timed trial to have an average time of 50 sec? 81. Checking account balance: If the average daily balance in a certain checking account drops below $1000, the bank charges the customer a $7.50 service fee. The table gives the daily balance for
one customer. What must the daily balance be for Friday to avoid a service charge?
Weekday
Balance
Monday
$1125
Tuesday
$850
Wednesday
$625
Thursday
$400
82. Average weight: In the Lineman Weight National Football League, Left tackle 318 lb many consider an Left guard 322 lb offensive line to be “small” if the average Center 326 lb weight of the five down Right guard 315 lb linemen is less than Right tackle ? 325 lb. Using the table, what must the weight of the right tackle be so that the line will not be considered too small?
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83. Area of a rectangle: Given the rectangle shown, what is the range of values for the width, in order to keep the area less than 150 m2?
w
84. Area of a triangle: Using the triangle shown, find the height that will guarantee an area equal to or greater than 48 in2.
h
12 in.
85. Heating and cooling subsidies: As long as the outside temperature is over 45°F and less than 85°F 145 6 F 6 852, the city does not issue heating or
87. Power tool rentals: Sunshine Equipment Co. rents its power tools for a $20 fee, plus $4.50/hr. Kealoha’s Rentals offers the same tools for an $11 fee plus $6.00/hr. How many hours h must a tool be rented to make the cost at Sunshine a better deal? 88. Moving van rentals: Davis Truck Rentals will rent a moving van for $15.75/day plus $0.35 per mile. Bertz Van Rentals will rent the same van for $25/day plus $0.30 per mile. How many miles m must the van be driven to make the cost at Bertz a better deal?
EXTENDING THE CONCEPT
89. Use your local library, the Internet, or another resource to find the highest and lowest point on each of the seven continents. Express the range of altitudes for each continent as a joint inequality. Which continent has the greatest range? 90. The sum of two consecutive even integers is greater than or equal to 12 and less than or equal to 22. List all possible values for the two integers. Place the correct inequality symbol in the blank to make the statement true.
91. If m 7 0 and n 6 0, then mn
cooling subsidies for low-income families. What is the corresponding range of Celsius temperatures C? Recall that F 95 C 32. 86. U.S. and European shoe sizes: To convert a European male shoe size “E” to an American male shoe size “A,” the formula A 0.76E 23 can be used. Lillian has five sons in the U.S. military, with shoe sizes ranging from size 9 to size 14 19 A 142. What is the corresponding range of European sizes? Round to the nearest half-size.
20 m
95
Section 1.2 Linear Inequalities in One Variable
92. If m 7 n and p 7 0, then mp
np.
93. If m 6 n and p 7 0, then mp
np.
94. If m n and p 6 0, then mp
np. n.
95. If m 7 n, then m 96. If m 6 n, then
1 m
1 n.
97. If m 7 0 and n 6 0, then m2 98. If m 0, then m
3
n. 0.
0.
MAINTAINING YOUR SKILLS
99. (R.2) Translate into an algebraic expression: eight subtracted from twice a number. 100. (1.1) Solve: 41x 72 3 2x 1
101. (R.3) Simplify the algebraic expression: 21 59x 12 1 16x 32.
102. (1.1) Solve: 45m 23 12
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College Algebra—
1.3 Absolute Value Equations and Inequalities While the equations x 1 5 and x 1 5 are similar in many respects, note the first has only the solution x 4, while either x 4 or x 6 will satisfy the second. The fact there are two solutions shouldn’t surprise us, as it’s a natural result of how absolute value is defined.
Learning Objectives In Section 1.3 you will learn how to:
A. Solve absolute value equations
B. Solve “less than”
A. Solving Absolute Value Equations
absolute value inequalities
The absolute value of a number x can be thought of as its distance from zero on the number line, regardless of direction. This means x 4 will have two solutions, since there are two numbers that are four units from zero: x 4 and x 4 (see Figure 1.5).
C. Solve “greater than” absolute value inequalities
D. Solve applications involving absolute value
Exactly 4 units from zero
Figure 1.5
5 4
Exactly 4 units from zero 3 2 1
0
1
2
3
4
5
This basic idea can be extended to include situations where the quantity within absolute value bars is an algebraic expression, and suggests the following property.
WORTHY OF NOTE Note if k 6 0, the equation X k has no solutions since the absolute value of any quantity is always positive or zero. On a related note, we can verify that if k 0, the equation X 0 has only the solution X 0.
Property of Absolute Value Equations If X represents an algebraic expression and k is a positive real number, then X k implies X k or X k As the statement of this property suggests, it can only be applied after the absolute value expression has been isolated on one side.
EXAMPLE 1
Solving an Absolute Value Equation Solve: 5x 7 2 13.
Solution
Begin by isolating the absolute value expression. 5x 7 2 13 5x 7 15 x 7 3
original equation subtract 2 divide by 5 (simplified form)
Now consider x 7 as the variable expression “X” in the property of absolute value equations, giving x 7 3 x4
or or
x73 x 10
apply the property of absolute value equations add 7
Substituting into the original equation verifies the solution set is {4, 10}. Now try Exercises 7 through 18
CAUTION
96
For equations like those in Example 1, be careful not to treat the absolute value bars as simple grouping symbols. The equation 51x 72 2 13 has only the solution x 10, and “misses” the second solution since it yields x 7 3 in simplified form. The equation 5x 7 2 13 simplifies to x 7 3 and there are actually two solutions.
1-24
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Absolute value equations come in many different forms. Always begin by isolating the absolute value expression, then apply the property of absolute value equations to solve.
EXAMPLE 2
Solving an Absolute Value Equation Solve:
Solution
Check
WORTHY OF NOTE As illustrated in both Examples 1 and 2, the property we use to solve absolute value equations can only be applied after the absolute value term has been isolated. As you will see, the same is true for the properties used to solve absolute value inequalities.
2 `5 x ` 9 8 3
2 `5 x ` 9 8 original equation 3 2 ` 5 x ` 17 add 9 3 apply the property of absolute 2 2 value equations 5 x 17 5 x 17 or 3 3 2 2 x 22 or subtract 5 x 12 3 3 x 33 x 18 multiply by 32 or 2 2 For x 33: ` 5 1332 ` 9 8 For x 18: ` 5 1182 ` 9 8 3 3 0 5 21112 0 9 8 05 2162 0 9 8 05 22 0 9 8 05 12 0 9 8 0 17 0 9 8 0 17 0 9 8 17 9 8 17 9 8 8 8✓ 8 8✓
Both solutions check. The solution set is 518, 336.
Now try Exercises 19 through 22
For some equations, it’s helpful to apply the multiplicative property of absolute value: Multiplicative Property of Absolute Value If A and B represent algebraic expressions, then AB AB. Note that if A 1 the property says B 1 B B. More generally the property is applied where A is any constant.
EXAMPLE 3
Solution
A. You’ve just learned how to solve absolute value equations
Solving Equations Using the Multiplicative Property of Absolute Value Solve: 2x 5 13. 2x 5 13 2x 8 2x 8 2x 8 x 4 or x 4
original equation subtract 5 apply multiplicative property of absolute value simplify divide by 2
x4
apply property of absolute value equations
Both solutions check. The solution set is 54, 46. Now try Exercises 23 and 24
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B. Solving “Less Than” Absolute Value Inequalities Absolute value inequalities can be solved using the basic concept underlying the property of absolute value equalities. Whereas the equation x 4 asks for all numbers x whose distance from zero is equal to 4, the inequality x 6 4 asks for all numbers x whose distance from zero is less than 4. Distance from zero is less than 4
Figure 1.6
Property I can also be applied when the “” symbol is used. Also notice that if k 6 0, the solution is the empty set since the absolute value of any quantity is always positive or zero.
0
1
2
3
)
4
5
Property I: Absolute Value Inequalities If X represents an algebraic expression and k is a positive real number, then X 6 k implies k 6 X 6 k
Solving “Less Than” Absolute Value Inequalities Solve the inequalities: 3x 2 a. 1 4
Solution
3 2 1
As Figure 1.6 illustrates, the solutions are x 7 4 and x 6 4, which can be written as the joint inequality 4 6 x 6 4. This idea can likewise be extended to include the absolute value of an algebraic expression X as follows.
WORTHY OF NOTE
EXAMPLE 4
)
5 4
WORTHY OF NOTE As with the inequalities from Section 1.2, solutions to absolute value inequalities can be checked using a test value. For Example 4(a), substituting x 0 from the solution interval yields: 1 1✓ 2 B. You’ve just learned how to solve less than absolute value inequalities
a.
3x 2 1 4 3x 2 4 4 3x 2 4 6 3x 2 2 2 x 3
b. 2x 7 6 5 original inequality multiply by 4 apply Property I subtract 2 from all three parts divide all three parts by 3
The solution interval is 3 2, 23 4. b. 2x 7 6 5
original inequality
Since the absolute value of any quantity is always positive or zero, the solution for this inequality is the empty set: { }. Now try Exercises 25 through 38
C. Solving “Greater Than” Absolute Value Inequalities For “greater than” inequalities, consider x 7 4. Now we’re asked to find all numbers x whose distance from zero is greater than 4. As Figure 1.7 shows, solutions are found in the interval to the left of 4, or to the right of 4. The fact the intervals are disjoint
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Section 1.3 Absolute Value Equations and Inequalities
(disconnected) is reflected in this graph, in the inequalities x 6 4 or x 7 4, as well as the interval notation x 1q, 42 ´ 14, q 2. Distance from zero is greater than 4
)
7 6 5 4 3 2 1
Figure 1.7
0
1
2
3
)
4
Distance from zero is greater than 4 5
6
7
As before, we can extend this idea to include algebraic expressions, as follows: Property II: Absolute Value Inequalities If X represents an algebraic expression and k is a positive real number, then X 7 k implies X 6 k or X 7 k
EXAMPLE 5
Solving “Greater Than” Absolute Value Inequalities Solve the inequalities: 1 x a. ` 3 ` 6 2 3 2
Solution
b. 5x 2
3 2
a. Note the exercise is given as a less than inequality, but as we multiply both sides by 3, we must reverse the inequality symbol.
3
x 1 ` 3 ` 6 2 3 2 x `3 ` 7 6 2
original inequality multiply by 3, reverse the symbol
x x 6 6 or 3 7 6 2 2 x x 6 9 or 7 3 2 2 x 6 18 or x 7 6
apply Property II
subtract 3 multiply by 2
Property II yields the disjoint intervals x 1q, 182 ´ 16, q 2 as the solution. )
30 24 18 12 6
b. 5x 2 C. You’ve just learned how to solve greater than absolute value inequalities
3 2
0
)
6
12
18
24
30
original inequality
Since the absolute value of any quantity is always positive or zero, the solution for this inequality is all real numbers: x . Now try Exercises 39 through 54
CAUTION
Be sure you note the difference between the individual solutions of an absolute value equation, and the solution intervals that often result from solving absolute value inequalities. The solution 52, 56 indicates that both x 2 and x 5 are solutions, while the solution 3 2, 52 indicates that all numbers between 2 and 5, including 2, are solutions.
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D. Applications Involving Absolute Value Applications of absolute value often involve finding a range of values for which a given statement is true. Many times, the equation or inequality used must be modeled after a given description or from given information, as in Example 6. EXAMPLE 6
Solving Applications Involving Absolute Value Inequalities For new cars, the number of miles per gallon (mpg) a car will get is heavily dependent on whether it is used mainly for short trips and city driving, or primarily on the highway for longer trips. For a certain car, the number of miles per gallon that a driver can expect varies by no more than 6.5 mpg above or below its field tested average of 28.4 mpg. What range of mileage values can a driver expect for this car?
Solution
Field tested average: 28.4 mpg mileage varies by no more than 6.5 mpg 6.5
gather information highlight key phrases
6.5
28.4
make the problem visual
Let m represent the miles per gallon a driver can expect. Then the difference between m and 28.4 can be no more than 6.5, or m 28.4 6.5. m 28.4 6.5 6.5 m 28.4 6.5 21.9 m 34.9
D. You’ve just learned how to solve applications involving absolute value
assign a variable write an equation model equation model apply Property I add 28.4 to all three parts
The mileage that a driver can expect ranges from a low of 21.9 mpg to a high of 34.9 mpg. Now try Exercises 57 through 64
TECHNOLOGY HIGHLIGHT
Absolute Value Equations and Inequalities Graphing calculators can explore and solve inequalities in many different Figure 1.8 ways. Here we’ll use a table of values and a relational test. To begin we’ll consider the equation 2 | x 3| 1 5 by entering the left-hand side as Y1 on the Y = screen. The calculator does not use absolute value bars the way they’re written, and the equation is actually entered as Y1 2 abs 1X 32 1 (see Figure 1.8). The “abs(” notation is accessed by pressing (NUM) 1 (option 1 gives only the left parenthesis, you MATH , must supply the right). Preset the TABLE as in the previous Highlight (page 81). By scrolling through the table (use the up and down Figure 1.9 arrows), we find Y1 5 when x 1 or x 5 (see Figure 1.9). Although we could also solve the inequality 2|x 3 | 1 5 using the table (the solution interval is x 3 1, 5 4 2, a relational test can help. Relational tests have the calculator return a “1” if a given statement is true, and a “0” otherwise. Enter Y2 Y1 5, by accessing Y1 using VARS (Y-VARS) 1:Function ENTER , and the “” symbol using 2nd MATH (TEST) [the “less than or equal to” symbol is option 6]. Returning to the table shows Y1 5 is true for 1 x 5 (see Figure 1.9). Use a table and a relational test to help solve the following inequalities. Verify the result algebraically. Exercise 1:
3|x 1| 2 7
Exercise 2:
2|x 2| 5 1
Exercise 3:
1 4 x 3 1
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College Algebra—
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Section 1.3 Absolute Value Equations and Inequalities
101
1.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. When multiplying or dividing by a negative quantity, we the inequality to maintain a true statement. 2. To write an absolute value equation or inequality in simplified form, we the absolute value expression on one side.
4. The absolute value inequality 3x 6 6 12 is true when 3x 6 7 and 3x 6 6 . Describe each solution set (assume k 0). Justify your answer.
5. ax b 6 k 6. ax b 7 k
3. The absolute value equation 2x 3 7 is true when 2x 3 or when 2x 3 .
DEVELOPING YOUR SKILLS
Solve each absolute value equation. Write the solution in set notation.
Solve each absolute value inequality. Write solutions in interval notation.
7. 2m 1 7 3
25. x 2 7
26. y 1 3
8. 3n 5 14 2
27. 3 m 2 7 4
28. 2 n 3 7 7
9. 3x 5 6 15 10. 2y 3 4 14
29.
5v 1 8 6 9 4
30.
3w 2 6 6 8 2
11. 24v 5 6.5 10.3
31. 3 p 4 5 6 8
32. 5q 2 7 8
12. 72w 5 6.3 11.2
33. 3b 11 6 9
34. 2c 3 5 6 1
13. 7p 3 6 5
35. 4 3z 12 6 7
36. 2 7u 7 4
14. 3q 4 3 5
37. `
15. 2b 3 4 16. 3c 5 6 17. 23x 17 5 18. 52y 14 6 19. 3 `
w 4 ` 1 4 2
20. 2 ` 3
v ` 1 5 3
4x 5 1 7 ` 3 2 6
38. `
2y 3 3 15 ` 6 4 8 16
39. n 3 7 7
40. m 1 7 5
41. 2w 5 11 q 5 1 43. 2 6 3
42. 5v 3 23 p 3 9 44. 5 2 4
45. 35 7d 9 15
46. 52c 7 1 11
47. 4z 9 6 4
48. 5u 3 8 7 6
49. 45 2h 9 7 11 50. 37 2k 11 7 10 51. 3.94q 5 8.7 22.5
21. 8.7p 7.5 26.6 8.2
52. 0.92p 7 16.11 10.89
22. 5.3q 9.2 6.7 43.8
53. 2 6 ` 3m
23. 8.72.5x 26.6 8.2 24. 5.31.25n 6.7 43.8
1 4 ` 5 5 5 3 54. 4 ` 2n ` 4 4
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WORKING WITH FORMULAS
55. Spring Oscillation | d x | L A weight attached to a spring hangs at rest a distance of x in. off the ground. If the weight is pulled down (stretched) a distance of L inches and released, the weight begins to bounce and its distance d off the ground must satisfy the indicated formula. If x equals 4 ft and the spring is stretched 3 in. and released, solve the inequality to find what distances from the ground the weight will oscillate between.
1-30
CHAPTER 1 Equations and Inequalities
56. A “Fair” Coin `
h 50 ` 1.645 5
If we flipped a coin 100 times, we expect “heads” to come up about 50 times if the coin is “fair.” In a study of probability, it can be shown that the number of heads h that appears in such an experiment must satisfy the given inequality to be considered “fair.” (a) Solve this inequality for h. (b) If you flipped a coin 100 times and obtained 40 heads, is the coin “fair”?
APPLICATIONS
Solve each application of absolute value.
57. Altitude of jet stream: To take advantage of the jet stream, an airplane must fly at a height h (in feet) that satisfies the inequality h 35,050 2550. Solve the inequality and determine if an altitude of 34,000 ft will place the plane in the jet stream. 58. Quality control tests: In order to satisfy quality control, the marble columns a company produces must earn a stress test score S that satisfies the inequality S 17,750 275. Solve the inequality and determine if a score of 17,500 is in the passing range. 59. Submarine depth: The sonar operator on a submarine detects an old World War II submarine net and must decide to detour over or under the net. The computer gives him a depth model d 394 20 7 164, where d is the depth in feet that represents safe passage. At what depth should the submarine travel to go under or over the net? Answer using simple inequalities. 60. Optimal fishing depth: When deep-sea fishing, the optimal depths d (in feet) for catching a certain type of fish satisfy the inequality 28d 350 1400 6 0. Find the range of depths that offer the best fishing. Answer using simple inequalities. For Exercises 61 through 64, (a) develop a model that uses an absolute value inequality, and (b) solve.
61. Stock value: My stock in MMM Corporation fluctuated a great deal in 2009, but never by more than $3.35 from its current value. If the stock is worth $37.58 today, what was its range in 2009?
62. Traffic studies: On a given day, the volume of traffic at a busy intersection averages 726 cars per hour (cph). During rush hour the volume is much higher, during “off hours” much lighter. Find the range of this volume if it never varies by more than 235 cph from the average. 63. Physical training for recruits: For all recruits in the 3rd Armored Battalion, the average number of sit-ups is 125. For an individual recruit, the amount varies by no more than 23 sit-ups from the battalion average. Find the range of sit-ups for this battalion. 64. Computer consultant salaries: The national average salary for a computer consultant is $53,336. For a large computer firm, the salaries offered to their employees varies by no more than $11,994 from this national average. Find the range of salaries offered by this company. 65. According to the official rules for golf, baseball, pool, and bowling, (a) golf balls must be within 0.03 mm of d 42.7 mm, (b) baseballs must be within 1.01 mm of d 73.78 mm, (c) billiard balls must be within 0.127 mm of d 57.150 mm, and (d) bowling balls must be within 12.05 mm of d 2171.05 mm. Write each statement using an absolute value inequality, then (e) determine which sport gives the least tolerance t width of interval b for the diameter of the ball. at average value
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Mid-Chapter Check
66. The machines that fill boxes of breakfast cereal are programmed to fill each box within a certain tolerance. If the box is overfilled, the company loses money. If it is underfilled, it is considered unsuitable for sale. Suppose that boxes marked “14 ounces” of cereal must be filled to within
0.1 oz. Write this relationship as an absolute value inequality, then solve the inequality and explain what your answer means. Let W represent weight.
EXTENDING THE CONCEPT
67. Determine the value or values (if any) that will make the equation or inequality true. x a. x x 8 b. x 2 2 c. x x x x d. x 3 6x e. 2x 1 x 3
103
68. The equation 5 2x 3 2x has only one solution. Find it and explain why there is only one.
MAINTAINING YOUR SKILLS
69. (R.4) Factor the expression completely: 18x3 21x2 60x. 70. (1.1) Solve V2 71. (R.6) Simplify
2W for (physics). CA
72. (1.2) Solve the inequality, then write the solution set in interval notation: 312x 52 7 21x 12 7.
1
by rationalizing the 3 23 denominator. State the result in exact form and approximate form (to hundredths):
MID-CHAPTER CHECK 1. Solve each equation. If the equation is an identity or contradiction, so state and name the solution set. r a. 5 2 3 b. 512x 12 4 9x 7 c. m 21m 32 1 1m 72 3 1 d. y 3 y 2 5 2 3 1 e. 15j 22 1 j 42 j 2 2 f. 0.61x 32 0.3 1.8 Solve for the variable specified. 2. H 16t2 v0t; for v0
3. S 2x2 x2y; for x 4. Solve each inequality and graph the solution set. a. 5x 16 11 or 3x 2 4 1 5 3 1 6 x b. 2 12 6 4 5. Determine the domain of each expression. Write your answer in interval notation. a.
3x 1 2x 5
b. 217 6x
6. Solve the following absolute value equations. Write the solution in set notation. 2 11 a. d 5 1 7 b. 5 s 3 3 2
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CHAPTER 1 Equations and Inequalities
7. Solve the following absolute value inequalities. Write solutions in interval notation. a. 3q 4 2 6 10 x b. ` 2 ` 5 5 3 8. Solve the following absolute value inequalities. Write solutions in interval notation. a. 3.1d 2 1.1 7.3 1 y 11 2 7 b. 3 2 c. 5k 2 3 6 4
9. Motocross: An enduro motocross motorcyclist averages 30 mph through the first part of a 115-mi course, and 50 mph though the second part. If the rider took 2 hr and 50 min to complete the course, how long was she on the first part? 10. Kiteboarding: With the correct sized kite, a person can kiteboard when the wind is blowing at a speed w (in mph) that satisfies the inequality w 17 9. Solve the inequality and determine if a person can kiteboard with a windspeed of 9 mph.
REINFORCING BASIC CONCEPTS x 3 4 can be read, “the distance between 3 and an unknown number is equal to 4.” The advantage of reading it in this way (instead of the absolute value of x minus 3 is 4), is that a much clearer visualization is formed, giving a constant reminder there are two solutions. In diagram form we have Figure 1.10.
Using Distance to Understand Absolute Value Equations and Inequalities In Section R.1 we noted that for any two numbers a and b on the number line, the distance between a and b is written a b or b a. In exactly the same way, the equation Distance between 3 and x is 4.
Figure 1.10
5 4 3 2
4 units 1
0
1
4 units 2
3
From this we note the solution is x 1 or x 7. In the case of an inequality such as x 2 3, we rewrite the inequality as x 122 3 and read it, “the distance between 2 and an unknown number is less than Distance between 2 and x is less than or equal to 3.
Figure 1.11
8 7 6
Figure 1.12
6 5 4 3
3 units
3 units 0
6
7
8
9
Distance between 2 and x is less than or equal to 3.
3 units
5 4 3 2 1
2 1
5
or equal to 3.” With some practice, visualizing this relationship mentally enables a quick statement of the solution: x 3 5, 14. In diagram form we have Figure 1.11.
Equations and inequalities where the coefficient of x is not 1 still lend themselves to this form of conceptual understanding. For 2x 1 3 we read, “the distance between 1 Distance between 1 and 2x is greater than or equal to 3.
4
Distance between 3 and x is 4.
0
1
2
3
4
5
and twice an unknown number is greater than or equal to 3.” On the number line (Figure 1.12), the number 3 units to the right of 1 is 4, and the number 3 units to the left of 1 is 2. 3 units
1
For 2x 2, x 1, and for 2x 4, x 2, and the solution is x 1q, 14 ´ 3 2, q 2. Attempt to solve the following equations and inequalities by visualizing a number line. Check all results algebraically.
6
2
3
Distance between 1 and 2x is greater than or equal to 3. 4
5
6
7
8
Exercise 1: x 2 5 Exercise 2: x 1 4 Exercise 3: 2x 3 5
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College Algebra—
1.4 Complex Numbers Learning Objectives In Section 1.4 you will learn how to:
A. Identify and simplify imaginary and complex numbers
B. Add and subtract complex numbers
C. Multiply complex numbers and find powers of i
For centuries, even the most prominent mathematicians refused to work with equations like x2 1 0. Using the principal of square roots gave the “solutions” x 11 and x 11, which they found baffling and mysterious, since there is no real number whose square is 1. In this section, we’ll see how this “mystery” was finally resolved.
A. Identifying and Simplifying Imaginary and Complex Numbers The equation x2 1 has no real solutions, since the square of any real number is positive. But if we apply the principle of square roots we get x 11 and x 11, which seem to check when substituted into the original equation:
D. Divide complex numbers
x2 1 0
(1)
1 112 1 0 2
1 1 0✓
(2)
1112 1 0 2
1 1 0✓
original equation substitute 11 for x answer “checks” substitute 11 for x answer “checks”
This observation likely played a part in prompting Renaissance mathematicians to study such numbers in greater depth, as they reasoned that while these were not real number solutions, they must be solutions of a new and different kind. Their study eventually resulted in the introduction of the set of imaginary numbers and the imaginary unit i, as follows. Imaginary Numbers and the Imaginary Unit
• Imaginary numbers are those of the form 1k, where k is a positive real number. • The imaginary unit i represents the number whose square is 1: i2 1 and i 11 WORTHY OF NOTE It was René Descartes (in 1637) who first used the term imaginary to describe these numbers; Leonhard Euler (in 1777) who introduced the letter i to represent 11; and Carl F. Gauss (in 1831) who first used the phrase complex number to describe solutions that had both a real number part and an imaginary part. For more on complex numbers and their story, see www.mhhe.com/coburn
As a convenience to understanding and working with imaginary numbers, we rewrite them in terms of i, allowing that the product property of radicals 1 1AB 1A1B2 still applies if only one of the radicands is negative. For 13, we have 11 # 3 1113 i 13. In general, we simply state the following property. Rewriting Imaginary Numbers
• For any positive real number k, 1k i 1k. For 120 we have: 120 i 120 i 14 # 5 2i 15, and we say the expression has been simplified and written in terms of i. Note that we’ve written the result with the unit “i” in front of the radical to prevent it being interpreted as being under the radical. In symbols, 2i15 2 15i 215i. The solutions to x2 1 also serve to illustrate that for k 7 0, there are two solutions to x2 k, namely, i 1k and i1k. In other words, every negative number has two square roots, one positive and one negative. The first of these, i 1k, is called the principal square root of k.
1-33
105
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CHAPTER 1 Equations and Inequalities
EXAMPLE 1
Simplifying Imaginary Numbers Rewrite the imaginary numbers in terms of i and simplify if possible. a. 17 b. 181 c. 124 d. 3116
Solution
a. 17 i 17
b. 181 i 181 9i d. 3116 3i 116 3i142 12i
c. 124 i 124 i 14 # 6 2i 16
Now try Exercises 7 through 12
EXAMPLE 2
Writing an Expression in Terms of i 6 116 6 116 and x are not real, but are known 2 2 6 116 . to be solutions of x2 6x 13 0. Simplify 2
The numbers x
Solution
Using the i notation, we have 6 i116 6 116 2 2 6 4i 2 213 2i2 2 3 2i
WORTHY OF NOTE 6 4i from 2 the solution of Example 2 can also be simplified by rewriting it as two separate terms, then simplifying each term: 6 4i 6 4i 2 2 2 3 2i. The expression
write in i notation
simplify
factor numerator reduce
Now try Exercises 13 through 16
The result in Example 2 contains both a real number part 132 and an imaginary part 12i2. Numbers of this type are called complex numbers. Complex Numbers Complex numbers are numbers that can be written in the form a bi, where a and b are real numbers and i 11. The expression a bi is called the standard form of a complex number. From this definition we note that all real numbers are also complex numbers, since a 0i is complex with b 0. In addition, all imaginary numbers are complex numbers, since 0 bi is a complex number with a 0.
EXAMPLE 3
Writing Complex Numbers in Standard Form Write each complex number in the form a bi, and identify the values of a and b. 4 3 125 a. 2 149 b. 112 c. 7 d. 20
Solution
a. 2 149 2 i 149 2 7i a 2, b 7
b. 112 0 i 112 0 2i 13 a 0, b 2 13
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107
Section 1.4 Complex Numbers
c. 7 7 0i a 7, b 0
d.
4 3 125 4 3i 125 20 20 4 15i 20 3 1 i 5 4 1 3 a ,b 5 4 Now try Exercises 17 through 24
A. You’ve just learned how to identify and simplify imaginary and complex numbers
Complex numbers complete the development of our “numerical landscape.” Sets of numbers and their relationships are represented in Figure 1.13, which shows how some sets of numbers are nested within larger sets and highlights the fact that complex numbers consist of a real number part (any number within the orange rectangle), and an imaginary number part (any number within the yellow rectangle).
C (complex): Numbers of the form a bi, where a, b R and i 兹1.
Q (rational): {qp, where p, q z and q 0}
H (irrational): Numbers that cannot be written as the ratio of two integers; a real number that is not rational. 兹2, 兹7, 兹10, 0.070070007... and so on.
Z (integer): {... , 2, 1, 0, 1, 2, ...} W (whole): {0, 1, 2, 3, ...} N (natural): {1, 2, 3, ...}
i (imaginary): Numbers of the form 兹k, where k > 0 兹7 兹9 兹0.25 a bi, where a 0 i兹3
5i
3 i 4
R (real): All rational and irrational numbers: a bi, where a R and b 0.
Figure 1.13
B. Adding and Subtracting Complex Numbers The sum and difference of two polynomials is computed by identifying and combining like terms. The sum or difference of two complex numbers is computed in a similar way, by adding the real number parts from each, and the imaginary parts from each. Notice in Example 4 that the commutative, associative, and distributive properties also apply to complex numbers. EXAMPLE 4
Adding and Subtracting Complex Numbers Perform the indicated operation and write the result in a bi form. a. 12 3i2 15 2i2 b. 15 4i2 12 12i2
Solution
a. 12 3i2 15 2i2 2 3i 152 2i 2 152 3i 2i 32 152 4 13i 2i2 3 5i
original sum distribute commute terms group like terms result
b. 15 4i2 12 12 i2 5 4i 2 12 i 5 2 14i2 12 i 15 22 3 14i2 12 i4 3 14 122i
original difference distribute commute terms group like terms result
Now try Exercises 25 through 30
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CHAPTER 1 Equations and Inequalities
C. Multiplying Complex Numbers; Powers of i
B. You’ve just learned how to add and subtract complex numbers
EXAMPLE 5
The product of two complex numbers is computed using the distributive property and the F-O-I-L process in the same way we apply these to binomials. If any result gives a factor of i 2, remember that i2 1.
Multiplying Complex Numbers Find the indicated product and write the answer in a bi form. a. 1419 b. 16 12 132 c. 16 5i214 i2 d. 12 3i212 3i2
Solution
a. 1419 i 14 # i 19 2i # 3i 6i2 6 0i
b. 16 12 132 i 1612 i132 terms of i 2i 16 i2 118 distribute 2i 16 112 1912 i 2 1 2i 16 312 simplify 3 12 2i 16 standard
rewrite in
rewrite in terms of i simplify multiply result 1i 2 12
form
c. 16 5i214 i2 162142 6i 15i2 142 15i21i2 24 6i 120i2 152i2 24 6i 120i2 152112 29 14i
d. 12 3i212 3i2 122 2 13i2 2 i # i i2 4 9i2 i 2 1 4 9112 result 13 0i F-O-I-L
1A B21A B2 A2 B 2 13i2 2 9i 2
i 2 1 result
Now try Exercises 31 through 48
CAUTION
WORTHY OF NOTE Notice that the product of a complex number and its conjugate also gives us a method for factoring the sum of two squares using complex numbers! For the expression x2 4, the factored form would be 1x 2i 21x 2i 2. For more on this idea, see Exercise 79.
When computing with imaginary and complex numbers, always write the square root of a negative number in terms of i before you begin, as shown in Examples 5(a) and 5(b). Otherwise we get conflicting results, since 14 19 136 6 if we multiply the radicands first, which is an incorrect result because the original factors were imaginary. See Exercise 80.
Recall that expressions 2x 5 and 2x 5 are called binomial conjugates. In the same way, a bi and a bi are called complex conjugates. Note from Example 5(d) that the product of the complex number a bi with its complex conjugate a bi is a real number. This relationship is useful when rationalizing expressions with a complex number in the denominator, and we generalize the result as follows: Product of Complex Conjugates For a complex number a bi and its conjugate a bi, their product 1a bi2 1a bi2 is the real number a2 b2; 1a bi21a bi2 a2 b2
Showing that 1a bi21a bi2 a2 b2 is left as an exercise (see Exercise 79), but from here on, when asked to compute the product of complex conjugates, simply refer to the formula as illustrated here: 13 5i213 5i2 132 2 52 or 34.
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Section 1.4 Complex Numbers
109
These operations on complex numbers enable us to verify complex solutions by substitution, in the same way we verify solutions for real numbers. In Example 2 we stated that x 3 2i was one solution to x2 6x 13 0. This is verified here. EXAMPLE 6
Checking a Complex Root by Substitution Verify that x 3 2i is a solution to x2 6x 13 0.
Solution
x2 6x 13 0 original equation 13 2i2 613 2i2 13 0 substitute 3 2i for x 132 2 2132 12i2 12i2 2 18 12i 13 0 square and distribute 9 12i 4i2 12i 5 0 simplify 2 9 142 5 0 combine terms 112i 12i 0; i 12 0 0✓ 2
Now try Exercises 49 through 56
EXAMPLE 7
Checking a Complex Root by Substitution Show that x 2 i13 is a solution of x2 4x 7.
Solution
x2 4x 7 12 i 132 2 412 i 132 7 4 4i 13 1i 132 2 8 4i 13 7 4 4i 13 3 8 4i 13 7 7 7✓
original equation substitute 2 i 13 for x square and distribute 1i 132 2 3 solution checks
Now try Exercises 57 through 60
The imaginary unit i has another interesting and useful property. Since i 11 and i2 1, we know that i3 i2 # i 112i i and i4 1i2 2 2 1. We can now simplify any higher power of i by rewriting the expression in terms of i4. i5 i4 # i i i6 i4 # i2 1 i7 i4 # i3 i i8 1i4 2 2 1
Notice the powers of i “cycle through” the four values i, 1, i and 1. In more advanced classes, powers of complex numbers play an important role, and next we learn to reduce higher powers using the power property of exponents and i4 1. Essentially, we divide the exponent on i by 4, then use the remainder to compute the value of the expression. For i35, 35 4 8 remainder 3, showing i35 1i4 2 8 # i3 i. EXAMPLE 8
Simplifying Higher Powers of i Simplify: a. i22
Solution
b. i28
a. i22 1i4 2 5 # 1i2 2 112 5 112 1
c. i57
d. i75
b. i28 1i4 2 7 112 7 1
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C. You’ve just learned how to multiply complex numbers and find powers of i
c. i57 1i4 2 14 # i 112 14i i
d. i75 1i4 2 18 # 1i3 2 112 18 1i2 i Now try Exercises 61 and 62
D. Division of Complex Numbers 3i actually have a radical in the denominator. To 2i divide complex numbers, we simply apply our earlier method of rationalizing denominators (Section R.6), but this time using a complex conjugate. Since i 11, expressions like
EXAMPLE 9
Dividing Complex Numbers Divide and write each result in a bi form. 2 3i 6 136 a. b. c. 5i 2i 3 19
Solution
2 2 #5i 5i 5i 5i 215 i2 2 5 12 10 2i 26 10 2 i 26 26 1 5 i 13 13 6 136 6 i 136 c. 3 19 3 i 19 6 6i 3 3i
a.
b.
3i 3i 2i # 2i 2i 2i 6 3i 2i i2 22 12 6 5i 112 5 5 5i 5 5i 5 5 5 1i
convert to i notation
simplify
The expression can be further simplified by reducing common factors.
611 i2 2 311 i2
factor and reduce
Now try Exercises 63 through 68
Operations on complex numbers can be checked using inverse operations, just as we do for real numbers. To check the answer 1 i from Example 9(b), we multiply it by the divisor: 11 i2 12 i2 2 i 2i i2 2 i 112
D. You’ve just learned how to divide complex numbers
2i1 3 i✓
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Section 1.4 Complex Numbers
111
1.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
4. For i 11, i2 , i4 , i6 , and 8 3 5 7 ,i ,i ,i , and i9 i
1. Given the complex number 3 2i, its complex conjugate is .
5. Discuss/Explain which is correct: a. 14 # 19 1142 192 136 6 b. 14 # 19 2i # 3i 6i2 6
2. The product 13 2i213 2i2 gives the real number .
4 6i12 3. If the expression is written in the standard 2 form a bi, then a and b .
.
6. Compare/Contrast the product 11 12211 132 with the product 11 i 12211 i132. What is the same? What is different?
DEVELOPING YOUR SKILLS
Simplify each radical (if possible). If imaginary, rewrite in terms of i and simplify.
7. a. 116 c. 127
b. 149 d. 172
8. a. 181 c. 164
b. 1169 d. 198
9. a. 118 c. 3 125
b. 150 d. 2 19
10. a. 132 c. 3 1144
b. 175 d. 2 181
11. a. 119 12 c. A 25
b. 131 9 d. A 32
12. a. 117 45 c. A 36
b. 153 49 d. A 75
Write each complex number in the standard form a bi and clearly identify the values of a and b.
2 14 13. a. 2
6 127 b. 3
14. a.
16 18 2
b.
4 3120 2
15. a.
8 116 2
b.
10 150 5
6 172 16. a. 4
12 1200 b. 8
17. a. 5
b. 3i
18. a. 2
b. 4i
19. a. 2 181
b.
132 8
20. a. 3136
b.
175 15
21. a. 4 150
b. 5 127
22. a. 2 148
b. 7 175
23. a.
14 198 8
b.
5 1250 10
24. a.
21 163 12
b.
8 127 6
Perform the addition or subtraction. Write the result in a bi form.
25. a. 112 142 17 192 b. 13 1252 11 1812 c. 111 11082 12 1482
26. a. 17 1722 18 1502 b. 1 13 122 1 112 182 c. 1 120 132 1 15 1122 27. a. 12 3i2 15 i2 b. 15 2i2 13 2i2 c. 16 5i2 14 3i2
28. a. 12 5i2 13 i2 b. 17 4i2 12 3i2 c. 12.5 3.1i2 14.3 2.4i2
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29. a. 13.7 6.1i2 11 5.9i2 2 3 b. a8 ib a7 ib 4 3 1 5 c. a6 ib a4 ib 8 2 30. a. 19.4 8.7i2 16.5 4.1i2 7 3 b. a3 ib a11 ib 5 15 5 3 c. a4 ib a13 ib 6 8 Multiply and write your answer in a bi form.
Use substitution to determine if the value shown is a solution to the given equation.
49. x2 36 0; x 6 50. x2 16 0; x 4 51. x2 49 0; x 7i 52. x2 25 0; x 5i
53. 1x 32 2 9; x 3 3i
54. 1x 12 2 4; x 1 2i
55. x2 2x 5 0; x 1 2i 56. x2 6x 13 0; x 3 2i
31. a. 5i # 13i2
b. 14i214i2
57. x2 4x 9 0; x 2 i 15
b. 713 5i2
58. x2 2x 4 0; x 1 13 i
33. a. 7i15 3i2
b. 6i13 7i2
34. a. 14 2i213 2i2 b. 12 3i215 i2
59. Show that x 1 4i is a solution to x2 2x 17 0. Then show its complex conjugate 1 4i is also a solution.
36. a. 15 2i217 3i2 b. 14 i217 2i2
60. Show that x 2 3 12 i is a solution to x2 4x 22 0. Then show its complex conjugate 2 3 12 i is also a solution.
32. a. 312 3i2
35. a. 13 2i212 3i2 b. 13 2i211 i2
For each complex number, name the complex conjugate. Then find the product.
Simplify using powers of i.
37. a. 4 5i
b. 3 i12
61. a. i48
b. i26
c. i39
d. i53
38. a. 2 i
b. 1 i 15
62. a. i36
b. i50
c. i19
d. i65
39. a. 7i
b.
1 2
23i
40. a. 5i
b.
3 4
15i
Compute the special products and write your answer in a bi form.
41. a. 14 5i214 5i2 b. 17 5i217 5i2
42. a. 12 7i212 7i2 b. 12 i212 i2
43. a. 13 i 122 13 i 122 b. 1 16 23i21 16 23i2 44. a. 15 i 132 15 i 132 b. 1 12 34i21 12 34i2 45. a. 12 3i2 2
b. 13 4i2 2
47. a. 12 5i2 2
b. 13 i122 2
46. a. 12 i2 2
48. a. 12 5i2 2
b. 13 i2 2
b. 12 i132 2
Divide and write your answer in a bi form. Check your answer using multiplication.
63. a.
2 149
b.
4 125
64. a.
2 1 14
b.
3 2 19
65. a.
7 3 2i
b.
5 2 3i
66. a.
6 1 3i
b.
7 7 2i
67. a.
3 4i 4i
b.
2 3i 3i
68. a.
4 8i 2 4i
b.
3 2i 6 4i
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Section 1.4 Complex Numbers
WORKING WITH FORMULAS
69. Absolute value of a complex number: a bi 2a2 b2 The absolute value of any complex number a bi (sometimes called the modulus of the number) is computed by taking the square root of the sum of the squares of a and b. Find the absolute value of the given complex numbers. a. | 2 3i| b. | 4 3i | c. | 3 12 i|
70. Binomial cubes: 1A B2 3 A3 3A2B 3AB2 B3 The cube of any binomial can be found using the formula shown, where A and B are the terms of the binomial. Use the formula to compute 11 2i2 3 (note A 1 and B 2i2.
APPLICATIONS
71. Dawn of imaginary numbers: In a day when imaginary numbers were imperfectly understood, Girolamo Cardano (1501–1576) once posed the problem, “Find two numbers that have a sum of 10 and whose product is 40.” In other words, A B 10 and AB 40. Although the solution is routine today, at the time the problem posed an enormous challenge. Verify that A 5 115i and B 5 115i satisfy these conditions. 72. Verifying calculations using i: Suppose Cardano had said, “Find two numbers that have a sum of 4 and a product of 7” (see Exercise 71). Verify that A 2 13i and B 2 13i satisfy these conditions. Although it may seem odd, imaginary numbers have several applications in the real world. Many of these involve a study of electrical circuits, in particular alternating current or AC circuits. Briefly, the components of an AC circuit are current I (in amperes), voltage V (in volts), and the impedance Z (in ohms). The impedance of an electrical circuit is a measure of the total opposition to the flow of current through the circuit and is calculated as Z R iXL iXC where R represents a pure resistance, XC represents the capacitance, and XL represents the inductance. Each of these is also measured in ohms (symbolized by ).
113
73. Find the impedance Z if R 7 , XL 6 , and XC 11 . 74. Find the impedance Z if R 9.2 , XL 5.6 , and XC 8.3 . The voltage V (in volts) across any element in an AC circuit is calculated as a product of the current I and the impedance Z: V IZ.
75. Find the voltage in a circuit with a current I 3 2i amperes and an impedance of Z 5 5i . 76. Find the voltage in a circuit with a current I 2 3i amperes and an impedance of Z 4 2i . In an AC circuit, the total impedance (in ohms) is given Z1Z2 by Z , where Z represents the total impedance Z1 Z2 of a circuit that has Z1 and Z2 wired in parallel.
77. Find the total impedance Z if Z1 1 2i and Z2 3 2i. 78. Find the total impedance Z if Z1 3 i and Z2 2 i.
EXTENDING THE CONCEPT
79. Up to this point, we’ve said that expressions like x2 9 and p2 7 are factorable: x2 9 1x 32 1x 32
and
p 7 1p 172 1p 172, 2
while x 9 and p 7 are prime. More correctly, we should state that x2 9 and p2 7 2
2
are nonfactorable using real numbers, since they actually can be factored if complex numbers are used. From 1a bi2 1a bi2 a2 b2 we note a2 b2 1a bi2 1a bi2, showing x2 9 1x 3i2 1x 3i2 and
p2 7 1p i 1721p i 172.
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Use this idea to factor the following.
a. x 36
b. m 3
c. n2 12
d. 4x2 49
2
2
80. In this section, we noted that the product property of radicals 1AB 1A1B, can still be applied when at most one of the factors is negative. So what happens if both are negative? First consider the expression 14 # 25. What happens if you first multiply in the radicand, then compute the square root? Next consider the product 14 # 125. Rewrite each factor using the i notation, then compute the product. Do you get the same result as before? What can you say about 14 # 25 and 14 # 125?
1-42
CHAPTER 1 Equations and Inequalities
81. Simplify the expression i17 13 4i2 3i3 11 2i2 2. 82. While it is a simple concept for real numbers, the square root of a complex number is much more involved due to the interplay between its real and imaginary parts. For z a bi the square root of z can be found using the formula: 12 1 1z a i 1z a2, where the sign 1z 2 is chosen to match the sign of b (see Exercise 69). Use the formula to find the square root of each complex number, then check by squaring. a. z 7 24i c. z 4 3i
b. z 5 12i
MAINTAINING YOUR SKILLS
83. (R.7) State the perimeter and area formulas for: (a) squares, (b) rectangles, (c) triangles, and (d) circles.
85. (1.1) John can run 10 m/sec, while Rick can only run 9 m/sec. If Rick gets a 2-sec head start, who will hit the 200-m finish line first?
84. (R.1) Write the symbols in words and state True/False. a. 6 b. ( c. 103 53, 4, 5, p6 d.
86. (R.4) Factor the following expressions completely. a. x4 16 b. n3 27 c. x3 x2 x 1 d. 4n2m 12nm2 9m3
1.5 Solving Quadratic Equations Learning Objectives In Section 1.5 you will learn how to:
A. Solve quadratic equations using the zero product property
B. Solve quadratic equations using the square root property of equality
C. Solve quadratic equations by completing the square
D. Solve quadratic equations using the quadratic formula
E. Use the discriminant to identify solutions
F. Solve applications of quadratic equations
In Section 1.1 we solved the equation ax b c for x to establish a general solution for all linear equations of this form. In this section, we’ll establish a general solution for the quadratic equation ax2 bx c 0, 1a 02 using a process known as completing the square. Other applications of completing the square include the graphing of parabolas, circles, and other relations from the family of conic sections.
A. Quadratic Equations and the Zero Product Property A quadratic equation is one that can be written in the form ax2 bx c 0, where a, b, and c are real numbers and a 0. As shown, the equation is written in standard form, meaning the terms are in decreasing order of degree and the equation is set equal to zero. Quadratic Equations A quadratic equation can be written in the form ax2 bx c 0, with a, b, c , and a 0.
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Notice that a is the leading coefficient, b is the coefficient of the linear (first degree) term, and c is a constant. All quadratic equations have degree two, but can have one, two, or three terms. The equation n2 81 0 is a quadratic equation with two terms, where a 1, b 0, and c 81. EXAMPLE 1
Determining Whether an Equation Is Quadratic State whether the given equation is quadratic. If yes, identify coefficients a, b, and c. 3 a. 2x2 18 0 b. z 12 3z2 0 c. x50 4 d. z3 2z2 7z 8 e. 0.8x2 0
Solution
Standard Form
Quadratic
Coefficients
WORTHY OF NOTE
a.
2x 18 0
yes, deg 2
a2
The word quadratic comes from the Latin word quadratum, meaning square. The word historically refers to the “four sidedness” of a square, but mathematically to the area of a square. Hence its application to polynomials of the form ax2 bx c— the variable of the leading term is squared.
b.
3z2 z 12 0
yes, deg 2
a 3
c.
3 x50 4
no, deg 1
(linear equation)
d.
z3 2z2 7z 8 0
no, deg 3
(cubic equation)
e.
0.8x 0
yes, deg 2
2
2
b0
a 0.8
c 18
b1
b0
c 12
c0
Now try Exercises 7 through 18
With quadratic and other polynomial equations, we generally cannot isolate the variable on one side using only properties of equality, because the variable is raised to different powers. Instead we attempt to solve the equation by factoring and applying the zero product property. Zero Product Property If A and B represent real numbers or real valued expressions and A # B 0, then A 0 or B 0. In words, the property says, If the product of any two (or more) factors is equal to zero, then at least one of the factors must be equal to zero. We can use this property to solve higher degree equations after rewriting them in terms of equations with lesser degree. As with linear equations, values that make the original equation true are called solutions or roots of the equation.
EXAMPLE 2
Solving Equations Using the Zero Product Property Solve by writing the equations in factored form and applying the zero product property. a. 3x2 5x b. 5x 2x2 3 c. 4x2 12x 9
Solution
a.
3x2 5x given equation b. 5x 2x2 3 given equation 3x2 5x 0 standard form 2x2 5x 3 0 standard form factor x 13x 52 0 12x 12 1x 32 0 factor x 0 or 3x 5 0 set factors equal to zero 2x 1 0 or x 3 0 set factors equal (zero product property) to zero (zero product property) 5 1 x 0 or x result x x 3 result or 3 2
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c.
4x2 12x 9 4x 12x 9 0 12x 32 12x 32 0 2x 3 0 or 2x 3 0 3 3 x or x 2 2 2
given equation standard form factor set factors equal to zero (zero product property) result
3 This equation has only the solution x , which we call a repeated root. 2 Now try Exercises 19 through 42
CAUTION
A. You’ve just learned how to solve quadratic equations using the zero product property
Consider the equation x2 2x 3 12. While the left-hand side is factorable, the result
is 1x 321x 12 12 and finding a solution becomes a “guessing game” because the equation is not set equal to zero. If you misapply the zero factor property and say that x 3 12 or x 1 12, the “solutions” are x 15 or x 11, which are both incorrect! After subtracting 12 from both sides x2 2x 3 12 becomes x2 2x 15 0, giving 1x 521x 32 0 with solutions x 5 or x 3.
B. Solving Quadratic Equations Using the Square Root Property of Equality The equation x2 9 can be solved by factoring. In standard form we have x2 9 0 (note b 02, then 1x 32 1x 32 0. The solutions are x 3 or x 3, which are simply the positive and negative square roots of 9. This result suggests an alternative method for solving equations of the form X2 k, known as the square root property of equality. Square Root Property of Equality If X represents an algebraic expression and X2 k, then X 1k or X 1k; also written as X 1k
EXAMPLE 3
Solving an Equation Using the Square Root Property of Equality Use the square root property of equality to solve each equation. a. 4x2 3 6 b. x2 12 0 c. 1x 52 2 24
Solution
a. 4x2 3 6 9 x2 4 9 9 x or x A4 A4 3 3 x or x 2 2
original equation subtract 3, divide by 4
square root property of equality
simplify radicals
This equation has two rational solutions.
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b. x2 12 0 x2 12 x 112 or x 2i 13 or
original equation subtract 12
x 112 x 2i 13
square root property of equality simplify radicals
This equation has two complex solutions. c. 1x 52 2 24 original equation x 5 124 or x 5 124 square root property of equality x 5 2 16 x 5 2 16 solve for x and simplify radicals This equation has two irrational solutions.
B. You’ve just learned how to solve quadratic equations using the square root property of equality
Now try Exercises 43 through 58 CAUTION
117
WORTHY OF NOTE In Section R.6 we noted that for any real number a, 2a2 a. From Example 3(a), solving the equation by taking the square root of both sides produces 2x2 294. This is equivalent to x 294, again showing this equation must have two solutions, x 294 and x 294.
For equations of the form 1x d 2 2 k [see Example 3(c)], you should resist the temptation to expand the binomial square in an attempt to simplify the equation and solve by factoring—many times the result is nonfactorable. Any equation of the form 1x d 2 2 k can quickly be solved using the square root property of equality.
Answers written using radicals are called exact or closed form solutions. Actually checking the exact solutions is a nice application of fundamental skills. Let’s check x 5 2 16 from Example 3(c). check:
1x 52 2 24 15 2 16 52 2 24 12 162 2 24 4162 24 24 24✓
original equation substitute 5 2 16 for x simplify 12 162 2 4162
result checks 1x 5 2 16 also checks)
C. Solving Quadratic Equations by Completing the Square
Again consider 1x 52 2 24 from Example 3(c). If we had first expanded the binomial square, we would have obtained x2 10x 25 24, then x2 10x 1 0 in standard form. Note that this equation cannot be solved by factoring. Reversing this process leads us to a strategy for solving nonfactorable quadratic equations, by creating a perfect square trinomial from the quadratic and linear terms. This process is known as completing the square. To transform x2 10x 1 0 back into x2 10x 25 24 [which we would then rewrite as 1x 52 2 24 and solve], we subtract 1 from both sides, then add 25: x2 10x 1 0 x2 10x 1 x 10x 25 1 25 2
1x 52 24 2
subtract 1 add 25 factor, simplify
In general, after subtracting the constant term, the number that “completes the square” is found by squaring 12 the coefficient of the linear term: 12 11022 25. See Exercises 59 through 64 for additional practice.
EXAMPLE 4
Solving a Quadratic Equation by Completing the Square Solve by completing the square: x2 13 6x.
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Solution
x2 13 6x x 6x 13 0 x2 6x __ 13 ___ 3 1 12 2 162 4 2 9 2 x 6x 9 13 9 1x 32 2 4 x 3 14 or x 3 14 x 3 2i or x 3 2i 2
original equation standard form subtract 13 to make room for new constant compute 3 A 12 B 1linear coefficient 2 4 2
add 9 to both sides (completing the square) factor and simplify square root property of equality simplify radicals and solve for x
Now try Exercises 65 through 74
The process of completing the square can be applied to any quadratic equation with a leading coefficient of 1. If the leading coefficient is not 1, we simply divide through by a before beginning, which brings us to this summary of the process. WORTHY OF NOTE
Completing the Square to Solve a Quadratic Equation
It’s helpful to note that the number you’re squaring in 1 b b step three, c # d , 2 a 2a turns out to be the constant term in the factored form. From Example 4, the number we squared was A 12 B 162 3, and the binomial square was 1x 32 2.
EXAMPLE 5
To solve ax2 bx c 0 by completing the square: 1. Subtract the constant c from both sides. 2. Divide both sides by the leading coefficient a. 1 b 2 3. Compute c # d and add the result to both sides. 2 a 4. Factor left-hand side as a binomial square; simplify right-hand side. 5. Solve using the square root property of equality.
Solving a Quadratic Equation by Completing the Square Solve by completing the square: 3x2 1 4x.
Solution
3x2 1 4x 3x 4x 1 0 3x2 4x 1 4 1 x2 x 3 3 4 4 1 4 x2 x 3 9 3 9 2 2 7 ax b 3 9 2 7 x or x 3 A9 2 17 x or 3 3 x 0.22 or
original equation
2
C. You’ve just learned how to solve quadratic equations by completing the square
standard form (nonfactorable) subtract 1 divide by 3 c
1 4 2 4 4 1 b 2 d c a ba b d ; add 2 a 2 3 9 9
1 3 factor and simplify a b 3 9
7 2 3 A9 17 2 x 3 3 x 1.55
square root property of equality
solve for x and simplify (exact form) approximate form (to hundredths)
Now try Exercises 75 through 82
CAUTION
For many of the skills/processes needed in a study of algebra, it’s actually easier to work with the fractional form of a number, rather than the decimal form. For example, com9 puting A 23 B 2 is easier than computing 10.62 2, and finding 216 is much easier than finding 10.5625.
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119
D. Solving Quadratic Equations Using the Quadratic Formula In Section 1.1 we found a general solution for the linear equation ax b c by comparing it to 2x 3 15. Here we’ll use a similar idea to find a general solution for quadratic equations. In a side-by-side format, we’ll solve the equations 2x2 5x 3 0 and ax2 bx c 0 by completing the square. Note the similarities. 2x2 5x 3 0 2x2 5x
3
2 1 c 1linear coefficient2 d 2
5 25 25 3 x2 x 2 16 16 2 3 5 2 25 ax b 4 16 2
left side factors as a binomial square
determine LCDs
5 2 1 ax b 4 16
simplify right side
x
5 1 4 B 16
x
5 1 4 4
square root property of equality
simplify radicals
5 1 x 4 4
5 1 4
or
1 b 2 b2 c a bd 2 2 a 4a
add to both sides
24 5 2 25 ax b 4 16 16
x
b b2 c b2 x2 x 2 2 a a 4a 4a b 2 b2 c ax b 2 a 2a 4a 2 2 b b 4ac ax b 2 2 2a 4a 4a 2 2 b b 4ac ax b 2a 4a2 b b2 4ac x 2a B 4a2 b 2b2 4ac x 2a 2a x
solve for x
5 1 4
x
combine terms
5 1 4
solutions
x
c
b c x2 x ____ a a
divide by lead coefficient
1 5 2 25 c a bd 2 2 16
x
ax2 bx
subtract constant term
5 3 x2 x ___ 2 2
x
ax2 bx c 0
given equations
b 2b2 4ac 2a
or
b 2b2 4ac 2a 2a
b 2b2 4ac 2a
x
b 2b2 4ac 2a
On the left, our final solutions are x 1 or x 32. The general solution is called the quadratic formula, which can be used to solve any equation belonging to the quadratic family. Quadratic Formula If ax2 bx c 0, with a, b, and c and a 0, then x
b 2b2 4ac 2a also written x
CAUTION
or
x
b 2b2 4ac ; 2a
b 2b2 4ac . 2a
It’s very important to note the values of a, b, and c come from an equation written in standard form. For 3x2 5x 7, a 3 and b 5, but c Z 7! In standard form we have 3x2 5x 7 0, and note the value for use in the formula is actually c 7.
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EXAMPLE 6
Solving Quadratic Equations Using the Quadratic Formula Solve 4x2 1 8x using the quadratic formula. State the solution(s) in both exact and approximate form. Check one of the exact solutions in the original equation.
Solution
Begin by writing the equation in standard form and identifying the values of a, b, and c. 4x2 1 8x 4x 8x 1 0 a 4, b 8, c 1 182 2182 2 4142 112 x 2142 8 148 8 164 16 x 8 8 8 4 13 8 4 13 x 8 8 8 13 13 x1 or x 1 2 2 or x 0.13 x 1.87
original equation
2
Check
D. You’ve just learned how to solve quadratic equations using the quadratic formula
standard form
substitute 4 for a, 8 for b, and 1 for c
simplify
rationalize the radical (see following Caution)
exact solutions approximate solutions
4x2 1 8x 13 2 13 4a1 b 1 8a1 b 2 2 13 3 4 c 1 2a b d 1 8 4 13 2 4 4 4 13 3 1 8 4 13 8 4 13 8 4 13 ✓
original equation substitute 1
13 2
for x
square binomial; distribute distribute result checks
Now try Exercises 83 through 112
1
CAUTION
For
8 4 13 8 413 , be careful not to incorrectly “cancel the eights” as in 1 413. 8 8 1
No! Use a calculator to verify that the results are not equivalent. Both terms in the numerator are divided by 8 and we must either rewrite the expression as separate terms (as above) or factor the numerator to see if the expression simplifies further: 1 4 12 132 8 4 13 2 13 13 , which is equivalent to 1 . 8 8 2 2 2
E. The Discriminant of the Quadratic Formula Recall that 1X represents a real number only for X 0. Since the quadratic formula contains the radical 2b2 4ac, the expression b2 4ac, called the discriminant, will determine the nature (real or complex) and the number of solutions to a given quadratic equation. The Discriminant of the Quadratic Formula For ax2 bx c 0, a 0, 1. If b2 4ac 0, the equation has one real root. 2. If b2 4ac 7 0, the equation has two real roots. 3. If b2 4ac 6 0, the equation has two complex roots.
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Section 1.5 Solving Quadratic Equations
Further analysis of the discriminant reveals even more concerning the nature of quadratic solutions. If a, b, and c are rational and the discriminant is a perfect square, there will be two rational roots, which means the original equation can be solved by factoring. If the discriminant is not a perfect square, there will be two irrational roots that are conjugates. If the discriminant is zero there is one rational root, and the original equation is a perfect square trinomial.
EXAMPLE 7
Using the Discriminant to Analyze Solutions Use the discriminant to determine if the equation given has any real root(s). If so, state whether the roots are rational or irrational, and whether the quadratic expression is factorable. a. 2x2 5x 2 0 b. x2 4x 7 0 c. 4x2 20x 25 0
Solution
a. a 2, b 5, c 2 b. a 1, b 4, c 7 c. a 4, b 20, c 25 b2 4ac 152 2 4122 122 b2 4ac 142 2 4112 172 b2 4ac 1202 2 41421252 9 12 0 Since 9 7 0, S two rational roots, factorable
Since 12 6 0, S two complex roots, nonfactorable
Since b2 4ac 0, S one rational root, factorable
Now try Exercises 113 through 124
In Example 7(b), b2 4ac 12 and the quadratic formula shows 4 112 x . After simplifying, we find the solutions are the complex conjugates 2 x 2 i 13 or x 2 i 13. In general, when b2 4ac 6 0, the solutions will be complex conjugates. Complex Solutions The complex solutions of a quadratic equation with real coefficients occur in conjugate pairs.
EXAMPLE 8
Solving Quadratic Equations Using the Quadratic Formula Solve: 2x2 6x 5 0.
Solution
With a 2, b 6, and c 5, the discriminant becomes 162 2 4122152 4, showing there will be two complex roots. The quadratic formula then yields b 2b2 4ac 2a 162 14 x 2122 x
6 2i 4 3 1 x i 2 2 x
E. You’ve just learned how to use the discriminant to identify solutions
quadratic formula
b 2 4ac 4, substitute 2 for a, and 6 for b
simplify, write in i form
solutions are complex conjugates
Now try Exercises 125 through 130
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CHAPTER 1 Equations and Inequalities
Summary of Solution Methods for ax2 bx c 0
WORTHY OF NOTE While it’s possible to solve by b completing the square if is a a fraction or an odd number (see Example 5), the process is usually most efficient when b is an even number. This is a one observation you could use when selecting a solution method.
1. If b 0, isolate x and use the square root property of equality. 2. If c 0, factor out the GCF and solve using the zero product property. 3. If no coefficient is zero, you can attempt to solve by a. factoring the trinomial b. completing the square c. using the quadratic formula
F. Applications of the Quadratic Formula A projectile is any object that is thrown, shot, or projected upward with no sustaining source of propulsion. The height of the projectile at time t is modeled by the equation h 16t2 vt k, where h is the height of the object in feet, t is the elapsed time in seconds, and v is the initial velocity in feet per second. The constant k represents the initial height of the object above ground level, as when a person releases an object 5 ft above the ground in a throwing motion. If the person were on a cliff 60 ft high, k would be 65 ft.
EXAMPLE 9
Solving an Application of Quadratic Equations A person standing on a cliff 60 ft high, throws a ball upward with an initial velocity of 102 ft/sec (assume the ball is released 5 ft above where the person is standing). Find (a) the height of the object after 3 sec and (b) how many seconds until the ball hits the ground at the base of the cliff.
Solution
5 ft
Using the given information, we have h 16t2 102t 65. To find the height after 3 sec, substitute t 3. a. h 16t2 102t 65 original equation 2 16132 102132 65 substitute 3 for t result 227
60 ft
122
After 3 sec, the ball is 227 ft above the ground. b. When the ball hits the ground at the base of the cliff, it has a height of zero. Substitute h 0 and solve using the quadratic formula. 0 16t2 102t 65 b 2b2 4ac t 2a 11022 211022 2 411621652 t 21162 102 114,564 t 32
a 16, b 102, c 65 quadratic formula
substitute 16 for a, 102 for b, 65 for c
simplify
Since we’re trying to find the time in seconds, we go directly to the approximate form of the answer. t 0.58
or
t 6.96
approximate solutions
The ball will strike the base of the cliff about 7 sec later. Since t represents time, the solution t 0.58 does not apply. Now try Exercises 133 through 140
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Section 1.5 Solving Quadratic Equations
EXAMPLE 10
Solving Applications Using the Quadratic Formula For the years 1995 to 2002, the amount A of annual international telephone traffic (in billions of minutes) can be modeled by A 0.3x2 8.9x 61.8, where x 0 represents the year 1995 [Source: Data from the 2005 Statistical Abstract of the United States, Table 1372, page 870]. If this trend continues, in what year will the annual number of minutes reach or surpass 275 billion minutes?
Solution
We are essentially asked to solve A 0.3x2 8.9x 61.8, when A 275. 275 0.3x2 8.9x 61.8 0 0.3x2 8.9x 213.2
given equation subtract 275
For a 0.3, b 8.9, and c 213.2, the quadratic formula gives b 2b2 4ac 2a 8.9 218.92 2 410.321213.22 x 210.32 8.9 1335.05 x 0.6 x 15.7 or x 45.3
x
F. You’ve just learned how to solve applications of quadratic equations
quadratic formula
substitute known values
simplify result
We disregard the negative solution (since x represents time), and find the annual number of international telephone minutes will reach or surpass 275 billion 15.7 years after 1995, or in the year 2010. Now try Exercises 141 and 142
TECHNOLOGY HIGHLIGHT
The Discriminant Quadratic equations play an important role in a study of College Algebra, forming a bridge between our previous and current studies, and the more advanced equations to come. As seen in this section, the discriminant of the quadratic formula 1b2 4ac2 reveals the type and number of solutions, and whether the original equation can be solved by factoring (the discriminant is a perfect square). It will often be helpful to have this information in advance of trying to solve or graph the equation. Since this will be done for each new equation, the discriminant is a prime candidate for a short program. To begin a new program press PRGM (NEW) ENTER . The calculator will prompt you to name the program using the green ALPHA letters (eight letters max), then allow you to start entering program lines. In PRGM mode, pressing PRGM once again will bring up menus that contain all needed commands. For very basic programs, these commands will be in the I/O (Input/Output) submenu, with the most common options being 2:Prompt, 3:Disp, and 8:CLRHOME. As you can see, we have named our program DISCRMNT. PROGRAM:DISCRMNT :CLRHOME
Clears the home screen, places cursor in upper left corner
:DISP "DISCRIMINANT "
Displays the word DISCRIMINANT as user information
:DISP "B24AC"
Displays B2 4AC as user information
:DISP ""
Displays a blank line (for formatting)
:Prompt A, B, C
Prompts the user to enter the values of A, B, and C
:B24AC → D
Computes B2 4AC using given values and stores result in memory location D —continued
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:CLRHOME
Clears the home screen, places cursor in upper left corner
:DISP "DISCRIMINANT IS:" Displays the words DISCRIMINANT IS as user information :DISP D
Displays the computed value of D
Exercise 1: Run the program for x2 3x 10 0 and x2 5x 14 0 to verify that both can be solved by factoring. What do you notice? Exercise 2: Run the program for 25x2 90x 81 0 and 4x2 20x 25 0, then check to see if each is a perfect square trinomial. What do you notice? Exercise 3: Run the program for y x2 2x 10 and y x2 2x 5. Do these equations have real number solutions? Why or why not? Exercise 4:
Once the discriminant D is known, the quadratic formula becomes x
b 2D and 2a
solutions can quickly be found. Solve the equations in Exercises 1–3 above.
1.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. A polynomial equation is in standard form when written in order of degree and set equal to . 2. The solution x 2 13 is called an form of the solution. Using a calculator, we find the form is x 3.732. 3. To solve a quadratic equation by completing the square, the coefficient of the term must be a .
4. The quantity b2 4ac is called the of the quadratic equation. If b2 4ac 7 0, there are real roots. 5. According to the summary on page 122, what method should be used to solve 4x2 5x 0? What are the solutions? 6. Discuss/Explain why this version of the quadratic formula is incorrect: x b
2b2 4ac 2a
DEVELOPING YOUR SKILLS
Determine whether each equation is quadratic. If so, identify the coefficients a, b, and c. If not, discuss why.
7. 2x 15 x 0 2
9. 11.
8. 21 x 4x 0 2
2 x70 3
10. 12 4x 9
1 2 x 6x 4
12. 0.5x 0.25x2
13. 2x2 7 0
14. 5 4x2
15. 3x2 9x 5 2x3 0
16. z2 6z 9 z3 0
17. 1x 12 2 1x 12 4 9
18. 1x 52 2 1x 52 4 17 Solve using the zero factor property. Be sure each equation is in standard form and factor out any common factors before attempting to solve. Check all answers in the original equation.
19. x2 15 2x
20. z2 10z 21
21. m2 8m 16
22. 10n n2 25
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23. 5p2 10p 0
24. 6q2 18q 0
67. p2 6p 3 0
68. n2 4n 10
25. 14h2 7h
26. 9w 6w2
69. p2 6p 4
70. x2 8x 1 0
27. a2 17 8
28. b2 8 12
71. m2 3m 1
72. n2 5n 2 0
29. g2 18g 70 11
73. n2 5n 5
74. w2 7w 3 0
30. h2 14h 2 51
75. 2x2 7x 4
76. 3w2 8w 4 0
31. m3 5m2 9m 45 0
77. 2n2 3n 9 0
78. 2p2 5p 1
32. n3 3n2 4n 12 0
79. 4p2 3p 2 0
80. 3x2 5x 6 0
81. m2 7m 4
82. a2 15 4a
33. 1c 122c 15 30
34. 1d 102d 10 6
Solve each equation using the most efficient method: factoring, square root property of equality, or the quadratic formula. Write your answer in both exact and approximate form (rounded to hundredths). Check one of the exact solutions in the original equation.
35. 9 1r 52r 33 36. 7 1s 42s 28
37. 1t 421t 72 54
38. 1g 1721g 22 20
83. x2 3x 18
84. w2 6w 1 0
39. 2x2 4x 30 0
85. 4m2 25 0
86. 4a2 4a 1
40. 3z2 12z 36 0
87. 4n2 8n 1 0
88. 2x2 4x 5 0
41. 2w2 5w 3
89. 6w2 w 2
90. 3a2 5a 6 0
42. 3v2 v 2
91. 4m2 12m 15
92. 3p2 p 0
93. 4n2 9 0
94. 4x2 x 3
95. 5w2 6w 8
96. 3m2 7m 6 0
97. 3a2 a 2 0
98. 3n2 2n 3 0
Solve the following equations using the square root property of equality. Write answers in exact form and approximate form rounded to hundredths. If there are no real solutions, so state.
43. m2 16
44. p2 49
45. y2 28 0
46. m2 20 0
47. p2 36 0
48. n2 5 0
49. x2 21 16
50. y2 13 9
51. 1n 32 2 36 53. 1w 52 2 3
55. 1x 32 7 2 2
57. 1m 22 2
18 49
102. 3m2 2 5m
103. 2a2 5 3a
104. n2 4n 8 0
105. 2p2 4p 11 0
106. 8x2 5x 1 0
52. 1p 52 2 49
2 1 107. w2 w 3 9
108.
56. 1m 112 5 3
109. 0.2a2 1.2a 0.9 0
54. 1m 42 2 5 2
58. 1x 52 2 12 25
59. x2 6x
60. y2 10y
61. n2 3n
62. x2 5x
2 63. p2 p 3
3 64. x2 x 2
Solve by completing the square. Write your answers in both exact form and approximate form rounded to the hundredths place. If there are no real solutions, so state.
65. x 6x 5
100. 2x2 x 3 0
101. 5w2 w 1
Fill in the blank so the result is a perfect square trinomial, then factor into a binomial square.
2
99. 5p2 6p 3
66. m 8m 12 2
1 5 2 8 m m 0 4 3 6
110. 5.4n2 8.1n 9 0 111.
8 2 2 p 3 p 7 21
112.
5 2 16 3 x x 9 15 2
Use the discriminant to determine whether the given equation has irrational, rational, repeated, or complex roots. Also state whether the original equation is factorable using integers, but do not solve for x.
113. 3x2 2x 1 0 114. 2x2 5x 3 0 115. 4x x2 13 0 116. 10x x2 41 0
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117. 15x2 x 6 0
118. 10x2 11x 35 0
Solve the quadratic equations given. Simplify each result.
119. 4x2 6x 5 0 120. 5x2 3 2x
125. 6x 2x2 5 0 126. 17 2x2 10x
121. 2x2 8 9x
122. x2 4 7x
127. 5x2 5 5x
128. x2 2x 19
123. 4x2 12x 9
124. 9x2 4 12x
129. 2x2 5x 11
130. 4x 3 5x2
WORKING WITH FORMULAS
131. Height of a projectile: h 16t2 vt If an object is projected vertically upward from ground level with no continuing source of propulsion, the height of the object (in feet) is modeled by the equation shown, where v is the initial velocity, and t is the time in seconds. Use the quadratic formula to solve for t in terms of v and h. (Hint: Set the equation equal to zero and identify the coefficients as before.)
132. Surface area of a cylinder: A 2r2 2rh The surface area of a cylinder is given by the formula shown, where h is the height and r is the radius of the base. The equation can be considered a quadratic in the variable r. Use the quadratic formula to solve for r in terms of h and A. (Hint: Rewrite the equation in standard form and identify the coefficients as before.)
APPLICATIONS
133. Height of a projectile: The height of an object thrown upward from the roof of a building 408 ft tall, with an initial velocity of 96 ft/sec, is given by the equation h 16t2 96t 408, where h represents the height of the object after t seconds. How long will it take the object to hit the ground? Answer in exact form and decimal form rounded to the nearest hundredth. 134. Height of a projectile: The height of an object thrown upward from the floor of a canyon 106 ft deep, with an initial velocity of 120 ft/sec, is given by the equation h 16t2 120t 106, where h represents the height of the object after t seconds. How long will it take the object to rise to the height of the canyon wall? Answer in exact form and decimal form rounded to hundredths. 135. Cost, revenue, and profit: The revenue for a manufacturer of microwave ovens is given by the equation R x140 13x2, where revenue is in thousands of dollars and x thousand ovens are manufactured and sold. What is the minimum number of microwave ovens that must be sold to bring in a revenue of $900,000? 136. Cost, revenue, and profit: The revenue for a manufacturer of computer printers is given by the equation R x130 0.4x2 , where revenue is in thousands of dollars and x thousand printers are manufactured and sold. What is the minimum
number of printers that must be sold to bring in a revenue of $440,000? 137. Cost, revenue, and profit: The cost of raw materials to produce plastic toys is given by the cost equation C 2x 35, where x is the number of toys in hundreds. The total income (revenue) from the sale of these toys is given by R x2 122x 1965. (a) Determine the profit equation 1profit revenue cost2. During the Christmas season, the owners of the company decide to manufacture and donate as many toys as they can, without taking a loss (i.e., they break even: profit or P 02. (b) How many toys will they produce for charity? 138. Cost, revenue, and profit: The cost to produce bottled spring water is given by the cost equation C 16x 63, where x is the number of bottles in thousands. The total revenue from the sale of these bottles is given by the equation R x2 326x 18,463. (a) Determine the profit equation 1profit revenue cost2. (b) After a bad flood contaminates the drinking water of a nearby community, the owners decide to bottle and donate as many bottles of water as they can, without taking a loss (i.e., they break even: profit or P 0). How many bottles will they produce for the flood victims?
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139. Height of an arrow: If an object is projected vertically upward from ground level with no continuing source of propulsion, its height (in feet) is modeled by the equation h 16t2 vt, where v is the initial velocity and t is the time in seconds. Use the quadratic formula to solve for t, given an arrow is shot into the air with v 144 ft/sec and h 260 ft. See Exercise 131. 140. Surface area of a cylinder: The surface area of a cylinder is given by A 2r2 2rh, where h is the height and r is the radius of the base. The equation can be considered a quadratic in the variable r. Use the quadratic formula to solve for r, given A 4710 cm2 and h 35 cm. See Exercise 132. 141. Cell phone subscribers: For the years 1995 to 2002, the number N of cellular phone subscribers (in millions) can be modeled by the equation N 17.4x2 36.1x 83.3, where x 0 represents the year 1995 [Source: Data from the 2005 Statistical Abstract of the United States, Table 1372, page 870]. If this trend continued, in what year did the number of subscribers reach or surpass 3750 million?
127
Section 1.5 Solving Quadratic Equations
142. U.S. international trade balance: For the years 1995 to 2003, the international trade balance B (in millions of dollars) can be approximated by the equation B 3.1x2 4.5x 19.9, where x 0 represents the year 1995 [Source: Data from the 2005 Statistical Abstract of the United States, Table 1278, page 799]. If this trend continues, in what year will the trade balance reach a deficit of $750 million dollars or more? 143. Tennis court dimensions: A regulation tennis court for a doubles match is laid out so that its length is 6 ft more than two Exercises 143 times its width. The area of the and 144 doubles court is 2808 ft2. What is the length and width of the doubles court? 144. Tennis court dimensions: A regulation tennis court for a singles match is laid out so that its length is 3 ft less than three times its width. The area of the singles court is 2106 ft2. What is the length and width of the singles court?
Singles Doubles
EXTENDING THE CONCEPT
145. Using the discriminant: Each of the following equations can easily be solved by factoring, since a 1. Using the discriminant, we can create factorable equations with identical values for b and c, but where a 1. For instance, x2 3x 10 0 and 4x2 3x 10 0 can both be solved by factoring. Find similar equations 1a 12 for the quadratics given here. (Hint: The discriminant b2 4ac must be a perfect square.) a. x2 6x 16 0 b. x2 5x 14 0 c. x2 x 6 0 146. Using the discriminant: For what values of c will the equation 9x2 12x c 0 have a. no real roots b. one rational root c. two real roots d. two integer roots
Complex polynomials: Many techniques applied to solve polynomial equations with real coefficients can be applied to solve polynomial equations with complex coefficients. Here we apply the idea to carefully chosen quadratic equations, as a more general application must wait until a future course, when the square root of a complex number is fully developed. Solve each equation 1 using the quadratic formula, noting that i. i
147. z2 3iz 10 148. z2 9iz 22 149. 4iz2 5z 6i 0 150. 2iz2 9z 26i 0
151. 0.5z2 17 i2z 16 7i2 0
152. 0.5z2 14 3i2z 19 12i2 0
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MAINTAINING YOUR SKILLS
153. (R.7) State the formula for the perimeter and area of each figure illustrated. a. b. L
154. (1.3) Factor and solve the following equations: a. x2 5x 36 0 b. 4x2 25 0 c. x3 6x2 4x 24 0
r
155. (1.1) A total of 900 tickets were sold for a recent concert and $25,000 was collected. If good seats were $30 and cheap seats were $20, how many of each type were sold?
W
c.
d.
b1
156. (1.1) Solve for C: P C Ct. c
h
a b2
h
c
b
1.6 Solving Other Types of Equations Learning Objectives
The ability to solve linear and quadratic equations is the foundation on which a large percentage of our future studies are built. Both are closely linked to the solution of other equation types, as well as to the graphs of these equations. In this section, we get our first glimpse of these connections, as we learn to solve certain polynomial, rational, radical, and other equations.
In Section 1.6 you will learn how to:
A. Solve polynomial equations of higher degree
B. Solve rational equations C. Solve radical equations and equations with rational exponents
D. Solve equations in quadratic form
E. Solve applications of various equation types
A. Polynomial Equations of Higher Degree In standard form, linear and quadratic equations have a known number of terms, so we commonly represent their coefficients using the early letters of the alphabet, as in ax2 bx c 0. However, these equations belong to the larger family of polynomial equations. To write a general polynomial, where the number of terms is unknown, we often represent the coefficients using subscripts on a single variable, such as a1, a2, a3, and so on. A polynomial equation of degree n has the form anxn an1xn1 p a1x1 a0 0 where an, an1, p , a1, a0 are real numbers and an 0. Factorable polynomials of degree 3 and higher can also be solved using the zero product property and fundamental algebra skills. As with linear equations, values that make an equation true are called solutions or roots to the equation.
EXAMPLE 1
Solving Polynomials by Factoring Solve by factoring: 2x3 20x 3x2.
Solution
2x3 20x 3x2 given equation standard form 2x 3x2 20x 0 common factor is x x 12x2 3x 202 0 factored form x 12x 52 1x 42 0 x 0 or 2x 5 0 or x 4 0 zero product property 5 result x 0 or x 2 or x 4 Substituting these values into the original equation verifies they are solutions. 3
Now try Exercises 7 through 14
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EXAMPLE 2
129
Solving Higher Degree Equations Solve each equation by factoring: a. x3 7x 21 3x2 b. x4 16 0
Solution
x3 7x 21 3x2
a.
x 3x 7x 21 0 x2 1x 32 71x 32 0 1x 32 1x2 72 0 x 3 0 or x2 7 0 x 3 or x2 7 x 17 3
b.
2
given equation standard form; factor by grouping remove common factors from each group factored form zero product property isolate variables square root property of equality
The solutions are x 3, x 17, and x 17. given equation x4 16 0 2 2 factor as a difference of squares 1x 421x 42 0 1x2 421x 22 1x 22 0 factor x 2 4 x2 4 0 or x 2 0 or x 2 0 zero product property x2 4 or x 2 or x 2 isolate variables square root property of equality x 14 Since 14 2i, the solutions are x 2i, x 2i, x 2, and x 2. Now try Exercises 15 through 32
A. You’ve just learned how to solve polynomial equations of higher degree
In Examples 1 and 2, we were able to solve higher degree polynomials by “breaking them down” into linear and quadratic forms. This basic idea can be applied to other kinds of equations as well, by rewriting them as equivalent linear and/or quadratic equations. For future use, it will be helpful to note that for a third-degree equation in the standard form ax3 bx2 cx d 0, a solution using factoring by grouping is always possible when ad bc.
B. Rational Equations In Section 1.1 we solved linear equations using basic properties of equality. If any equation contained fractional terms, we “cleared the fractions” using the least common denominator (LCD). We can also use this idea to solve rational equations, or equations that contain rational expressions. Solving Rational Equations 1. Identify and exclude any values that cause a zero denominator. 2. Multiply both sides by the LCD and simplify (this will eliminate all denominators). 3. Solve the resulting equation. 4. Check all solutions in the original equation.
EXAMPLE 3
Solving a Rational Equation Solve for m:
4 1 2 2 . m m1 m m
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Solution
Since m2 m m1m 12, the LCD is m1m 12, where m 0 and m 1. 4 1 2 b m1m 12 c d m m1 m1m 12 21m 12 m 4 2m 2 m 4 m6
m1m 12 a
multiply by LCD simplify—denominators are eliminated distribute solve for m
Checking by substitution we have: 2 1 m m1 1 2 162 162 1 1 1 3 5 3 5 15 15 2 15
4 m m 4 2 162 162 4 30 2 15 2 ✓ 15 2
original equation
substitute 6 for m
simplify
common denominator
result
Now try Exercises 33 through 38
Multiplying both sides of an equation by a variable sometimes introduces a solution that satisfies the resulting equation, but not the original equation—the one we’re trying to solve. Such “solutions” are called extraneous roots and illustrate the need to check all apparent solutions in the original equation. In the case of rational equations, we are particularly aware that any value that causes a zero denominator is outside the domain and cannot be a solution.
EXAMPLE 4
Solving a Rational Equation Solve: x
Solution
4x 12 1 . x3 x3
The LCD is x 3, where x 3. 4x 12 b 1x 32a1 b x3 x3 x2 3x 12 x 3 4x x2 8x 15 0 1x 321x 52 0 x 3 or x 5
1x 32ax
multiply both sides by LCD simplify—denominators are eliminated set equation equal to zero factor zero factor property
Checking shows x 3 is an extraneous root, and x 5 is the only valid solution. Now try Exercises 39 through 44
In many fields of study, formulas involving rational expressions are used as equation models. Frequently, we need to solve these equations for one variable in terms of others, a skill closely related to our work in Section 1.1.
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Section 1.6 Solving Other Types of Equations
EXAMPLE 5
Solving for a Specified Variable in a Formula Solve for the indicated variable: S
Solution
S
a 1r
11 r2S 11 r2a
WORTHY OF NOTE
a for r. 1r
LCD is 1 r
a b 1r
S Sr a Sr a S aS r S Sa r ;S0 S
Generally, we should try to write rational answers with the fewest number of negative signs possible. Multiplying the numerator and denominator in Example a 5 by 1 gave r S S , a more acceptable answer.
multiply both sides by 11 r2 simplify—denominator is eliminated isolate term with r solve for r (divide both sides by S ) multiply numerator/denominator by 1
Now try Exercises 45 through 52 B. You’ve just learned how to solve rational equations
131
C. Radical Equations and Equations with Rational Exponents A radical equation is any equation that contains terms with a variable in the radicand. To solve a radical equation, we attempt to isolate a radical term on one side, then apply the appropriate nth power to free up the radicand and solve for the unknown. This is an application of the power property of equality. The Power Property of Equality n
n
If 1 u and v are real-valued expressions and 1 u v, n then 1 1 u2 n vn u vn for n an integer, n 2. Raising both sides of an equation to an even power can also introduce a false solution (extraneous root). Note that by inspection, the equation x 2 1x has only the solution x 4. But the equation 1x 22 2 x (obtained by squaring both sides) has both x 4 and x 1 as solutions, yet x 1 does not satisfy the original equation. This means we should check all solutions of an equation where an even power is applied.
EXAMPLE 6
Solving Radical Equations Solve each radical equation: a. 13x 2 12 x 10
Solution
a. 13x 2 12 x 10 13x 2 x 2 1 13x 22 2 1x 22 2 3x 2 x2 4x 4 0 x2 7x 6 0 1x 62 1x 12 x 6 0 or x 1 0 x 6 or x 1
3 b. 2 1 x540
original equation isolate radical term (subtract 12) apply power property, power is even simplify; square binomial set equal to zero factor apply zero product property result, check for extraneous roots
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Check
Check
13162 2 12 162 10 116 12 16 16 16 ✓
x 6:
x 1:
13112 2 12 112 10 11 12 11 13 11 x
The only solution is x 6; x 1 is extraneous. 3 b. 2 1 x540 3 1 x 5 2 3 1 1x 52 3 122 3 x 5 8 x 3
original equation isolate radical term (subtract 4, divide by 2) apply power property, power is odd simplify: 1 1 x 52 3 x 5 3
solve
Substituting 3 for x in the original equation verifies it is a solution. Now try Exercises 53 through 56
Sometimes squaring both sides of an equation still results in an equation with a radical term, but often there is one fewer than before. In this case, we simply repeat the process, as indicated by the flowchart in Figure 1.14.
Figure 1.14 Radical Equations
EXAMPLE 7
Solve the equation: 1x 15 1x 3 2.
Isolate radical term
Solution
Apply power property
Does the result contain a radical?
NO
Solve using properties of equality
Solving Radical Equations
YES
Check
1x 15 1x 3 2 1x 15 1x 3 2 1 1x 152 2 1 1x 3 22 2 x 15 1x 32 4 1x 3 4 x 15 x 4 1x 3 7 8 4 1x 3 2 1x 3 4x3 1x 1x 15 1x 3 2 1112 15 1112 3 2 116 14 2 422 2 2✓
original equation isolate one radical power property 1A B2 2; A 1x 3, B 2 simplify isolate radical divide by four power property possible solution
original equation substitute 1 for x simplify solution checks
Now try Exercises 57 and 58 Check results in original equation
Since rational exponents are so closely related to radicals, the solution process for each is very similar. The goal is still to “undo” the radical (rational exponent) and solve for the unknown.
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133
Power Property of Equality For real-valued expression u and v, with positive integers m, n, and If m is odd
m
and u v, m n n then A u n B m vm
and u n v1v 7 02, m n n then A u n B m vm n u vm
n
u vm
Solving Equations with Rational Exponents Solve each equation: 3 a. 31x 12 4 9 15
Solution
Check
3
a. 31x 12 4 9 15 3 1x 12 4 8 3 4 4 3 1x 12 443 83 x 1 16 x 15 3 4
3115 12 9 15 1 3 A 164 B 3 9 15 3122 3 9 15 3182 9 15 15 15 ✓ b.
C. You’ve just learned how to solve radical equations and equations with rational exponents
in lowest terms:
If m is even
m n
EXAMPLE 8
m n
1x 32 4 2 3 3 3 1x 32 342 42 x 3 8 x38 2 3
b. 1x 32 3 4 2
original equation; mn 34 isolate variable term (add 9, divide by 3) apply power property, note m is odd simplify 383 A 83 B 4 164 4
1
result
substitute 15 for x in the original equation simplify, rewrite exponent 4 1 16 2
23 8 solution checks original equation; mn 23 apply power property, note m is even simplify 342 A 42 B 3 84 3
1
result
The solutions are 3 8 11 and 3 8 5. Verify by checking both in the original equation. Now try Exercises 59 through 64
CAUTION
As you continue solving equations with radicals and rational exponents, be careful not to arbitrarily place the “” sign in front of terms given in radical form. The expression 118 indicates the positive square root of 18, where 118 312. The equation x2 18 becomes x 118 after applying the power property, with solutions x 312 1x 312, x 3122, since the square of either number produces 18.
D. Equations in Quadratic Form In Section R.4 we used a technique called u-substitution to factor expressions in quadratic form. The following equations are in quadratic form since2 the degree of the 1 leading term is twice the degree of the middle term: x3 3x3 10 0, 1x2 x2 2 81x2 x2 12 0 and x 13 1x 4 4 0 [Note: The last equation can be rewritten as 1x 42 31x 42 2 0]. A u-substitution will help to solve these equations by factoring. The first equation appears in Example 9, the other two are in Exercises 70 and 74, respectively.
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EXAMPLE 9
Solving Equations in Quadratic Form Solve using a u-substitution: 2 1 a. x3 3x3 10 0
Solution
b. x4 36 5x2
a. This equation is in quadratic form since it can be rewritten as: 1 1 the degree2 of leading term is twice that of A x3 B 2 3 A x3 B 1 10 0, where 1 second term. If we let u x3, then u2 x3 and the equation becomes u2 3u1 10 0 which is factorable. 1u 521u 22 or u5 1 x3 5 or 1 3 3 3 A x B 5 or x 125 or
0 u 2 1 x3 2 1 A x3 B 3 122 3 x 8
factor solution in terms of u 1
resubstitute x 3 for u cube both sides: 13 132 1 solve for x
Both solutions check. b. In the standard form x4 5x2 36 0, we note the equation is also in quadratic form, since it can be written as 1x2 2 2 51x2 2 1 36 0. If we let u x2, then u2 x4 and the equation becomes u2 5u 36 0, which is factorable. 1u 921u u9 x2 9 x 19 x 3
D. You’ve just learned how to solve equations in quadratic form
42 0 or u 4 or x2 4 or x 14 or x 2i
factor solution in terms of u resubstitute x 2 for u square root property simplify
The solutions are x 3, x 3, x 2i, and x 2i. Verify that all solutions check. Now try Exercises 65 through 78
E. Applications Applications of the skills from this section come in many forms. Number puzzles and consecutive integer exercises help develop the ability to translate written information into algebraic forms (see Exercises 81 through 84). Applications involving geometry or a stated relationship between two quantities often depend on these skills, and in many scientific fields, equation models involving radicals and rational exponents are commonplace (see Exercises 99 and 100).
EXAMPLE 10
Solving a Geometry Application A legal size sheet of typing paper has a length equal to 3 in. less than twice its width. If the area of the paper is 119 in2, find the length and width.
Solution
Let W represent the width of the paper. Then 2W represents twice the width, and 2W 3 represents three less than twice the width: L 2W 3: 1length2 1width2 area 12W 32 1W2 119
verbal model substitute 2W 3 for length
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Since the equation is not set equal to zero, multiply and write the equation in standard form. 2W2 3W 119 2W 3W 119 0 12W 1721W 72 0 W 17 2 or W 7 2
distribute subtract 119 factor solve
We ignore W 7, since the width cannot be negative. The width of the paper is 17 1 17 2 82 in. and the length is L 2 A 2 B 3 or 14 in. Now try Exercises 85 and 86
EXAMPLE 11
Solving a Geometry Application A hemispherical wash basin has a radius of 6 in. The volume of water in the basin can be modeled by V 6h2 3 h3, where h is the height of the water (see diagram). At what height h is the volume of water numerically equal to 15 times the height h?
Solution
h
We are essentially asked to solve V 6h2 3 h3 when V 15h. The equation becomes 15h 6h2
3 h 3
3 h 6h2 15h 0 3 h3 18h2 45h 0 h1h2 18h 452 0 h1h 32 1h 152 0 h 0 or h 3 or h 15
original equation, substitute15h for V
standard form multiply by 3 factor out h factored form result
The “solution” h 0 can be discounted since there would be no water in the basin, and h 15 is too large for this context (the radius is only 6 in.). The only solution that fits this context is h 3. Check
3 h 3 15132 6132 2 132 3 3 45 6192 1272 3 45 54 9 45 45 ✓ 15h 6h2
resulting equation
substitute 3 for h
apply exponents simplify result checks
Now try Exercises 87 and 88
In this section, we noted that extraneous roots can occur when (1) both sides of an equation are multiplied by a variable term (as when solving rational equations) and (2) when both sides of an equation are raised to an even power (as when solving certain radical equations or equations with rational exponents). Example 11 illustrates a third
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way that extraneous roots can occur, as when a solution checks out fine algebraically, but does not fit the context or physical constraints of the situation.
Revenue Models In a free-market economy, we know that if the price of an item is decreased, more people will buy it. This is why stores have sales and bargain days. But if the item is sold too cheaply, revenue starts to decline because less money is coming in—even though more sales are made. This phenomenon is analyzed in Example 12, where we use the revenue formula revenue price # number of sales or R P # S. EXAMPLE 12
Solving a Revenue Application When a popular printer is priced at $300, Compu-Store will sell 15 printers per week. Using a survey, they find that for each decrease of $8, two additional sales will be made. What price will result in weekly revenue of $6500?
Solution
Let x represent the number of times the price is decreased by $8. Then 300 8x represents the new price. Since sales increase by 2 each time the price is decreased, 15 2x represents the total sales. RP#S 6500 1300 8x2 115 2x2 6500 4500 600x 120x 16x2 0 16x2 480x 2000 0 x2 30x 125 0 1x 52 1x 252 x 5 or x 25
revenue model R 6500, P 300 8x, S 15 2x multiply binomials simplify and write in standard form divide by 16 factor result
Surprisingly, the store’s weekly revenue will be $6500 after 5 decreases of $8 each ($40 total), or 25 price decreases of $8 each ($200 total). The related selling prices are 300 5182 $260 and 300 25182 $100. To maximize profit, the manager of Compu-Store decides to go with the $260 selling price. Now try Exercises 89 and 90
Applications of rational equations can also take many forms. Work and uniform motion exercises help us develop important skills that can be used with more complex equation models. A work example follows here. For more on uniform motion, see Exercises 95 and 96.
EXAMPLE 13
Solving a Work Application Lyf can clean a client’s house in 5 hr, while it takes his partner Angie 4 hr to clean the same house. Both of them want to go to the Cubs’ game today, which starts in 212 hr. If they work together, will they see the first pitch?
Solution
After 1 hr, Lyf has cleaned 51 and Angie has cleaned 14 of the house, so together 1 1 9 1 1 5 4 20 or 45% of the house has been cleaned. After 2 hr, 2 A 5 B 2 A 4 B 2 1 9 or 5 2 10 or 90% of the house is clean. We can use these two illustrations to form an equation model where H represents hours worked: 1 1 Ha b Ha b 1 clean house 11 100% 2. 5 4
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1 1 Ha b Ha b 1 5 4 1 1 20Ha b 20Ha b 11202 5 4 4H 5H 20 9H 20 20 H 9
137
equation model
multiply by LCD of 20 simplify, denominators are eliminated combine like terms solve for H
It will take Lyf and Angie 229 hr (about 2 hr and 13 min) to clean the house. Yes! They will make the first pitch, since Wrigley Field is only 10 min away. Now try Exercises 93 and 94
EXAMPLE 14
Solving an Application Involving a Rational Equation In Verano City, the cost C to remove industrial waste from drinking water is given 80P , where P is the percent of total pollutants removed by the equation C 100 P and C is the cost in thousands of dollars. If the City Council budgets $1,520,000 for the removal of these pollutants, what percentage of the waste will be removed?
Solution
E. You’ve just learned how to solve applications of various equation types
80P 100 P 80P 1520 100 P 15201100 P2 80P 152,000 1600P 95 P C
equation model
substitute 1520 for C multiply by LCD of 1100 P 2 distribute and simplify result
On a budget of $1,520,000, 95% of the pollutants will be removed. Now try Exercises 97 and 98
1.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section, if necessary.
1. For rational equations, values that cause a zero denominator must be . 2. The equation or formula for revenue models is revenue . 3. “False solutions” to a rational or radical equation are also called roots.
4. Factorable polynomial equations can be solved using the property. 5. Discuss/Explain the power property of equality as it relates to rational exponents and properties of 2 reciprocals. Use the equation 1x 22 3 9 for your discussion. 6. One factored form of an equation is shown. Discuss/Explain why x 8 and x 1 are not solutions to the equation, and what must be done to find the actual solutions: 21x 821x 12 16.
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DEVELOPING YOUR SKILLS
Solve using the zero product property. Be sure each equation is in standard form and factor out any common factors before attempting to solve. Check all answers in the original equation.
7. 22x x3 9x2
39. x 40.
2x 10 x1 x5 x5
41.
20 6 5 2 n3 n2 n n6
42.
1 7 2 2 p2 p 3 p 5p 6
43.
2a2 5 a 3 2 2a 1 a3 2a 5a 3
44.
4n 18 3n 2n 1 3n 1 6n n 1
8. x3 13x2 42x
9. 3x3 7x2 6x
10. 7x2 15x 2x3
11. 2x4 3x3 9x2
12. 7x2 2x4 9x3
13. 2x4 16x 0
14. x4 64x 0
15. x3 4x 5x2 20 16. x3 18 9x 2x2 17. 4x 12 3x x 2
18. x 7 7x x
3
2
3
19. 2x3 12x2 10x 60 20. 9x 81 27x 3x 2
3
21. x4 7x3 4x2 28x 23. x 81 0 24. x4 1 0 25. x4 256 0 26. x4 625 0 27. x6 2x4 x2 2 0 28. x6 3x4 16x2 48 0 29. x5 x3 8x2 8 0 30. x5 9x3 x2 9 0 31. x6 1 0 32. x6 64 0 Solve each equation. Identify any extraneous roots.
33.
5 1 2 2 x x1 x x
5 3 1 34. 2 m m3 m 3m 35.
3 21 a2 a1
36.
4 7 2y 3 3y 5
37.
1 1 1 2 3y 4y y
3 1 1 38. 2 5x 2x x
2
Solve for the variable indicated.
22. x4 3x3 9x2 27x 4
2x 14 1 x7 x7
45.
1 1 1 ; for f f f1 f2
47. I
E ; for r Rr
46.
1 1 1 ; for z z x y
48. q
pf ; for p pf
1 49. V r2h; for h 3
1 50. s gt2; for g 2
4 51. V r3; for r3 3
1 52. V r2h; for r2 3
Solve each equation and check your solutions by substitution. Identify any extraneous roots.
53. a. 313x 5 9
b. x 13x 1 3
54. a. 214x 1 10 b. 5 15x 1 x 3 3 55. a. 2 1 b. 2 1 3m 1 7 3x 3 7 3 1 2m 3 3 3 c. 2 3 d. 1 2x 9 1 3x 7 5 3 3 56. a. 3 1 b. 3 1 5p 2 3 4x 7 4 3 1 6x 7 c. 5 6 4 3 3 d. 3 1 x 3 21 2x 17
57. a. b. c. d.
1x 9 1x 9 x 3 223 x 1x 2 12x 2 112x 9 124x 3
58. a. b. c. d.
1x 7 1x 1 12x 31 x 2 13x 1x 3 3 13x 4 17x 2
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Write the equation in simplified form, then solve. Check all answers by substitution. 3 5
59. x 17 9 5 2
61. 0.3x 39 42
3 4
60. 2x 47 7
4
Use a u-substitution to solve each radical equation.
64. 31x 22 5 29 19 Solve each equation using a u-substitution. Check all answers.
65. x 2x 15 0
66. x3 9x 8 0
69. 1x2 32 2 1x2 32 2 0
75. x 4 7 1x 4 77. 2 1x 10 8 31x 102 78. 41x 3 31x 32 4
WORKING WITH FORMULAS
79. Lateral surface area of a cone: S r 2r 2 h2 The lateral surface area (surface area excluding the base) S of a cone is given by the formula shown, where r is the radius of the base and h is the height of the cone. (a) Solve the equation for h. (b) Find the surface area of a cone that has a radius of 6 m and a height of 10 m. Answer in simplest form.
74. x 3 1x 4 4 0 76. 21x 12 5 1x 1 2
3 2
67. x4 24x2 25 0 68. x4 37x2 36 0
71. x2 3x1 4 0
73. x4 13x2 36 0
63. 21x 52 11 7
1 3
70. 1x2 x2 2 81x2 x2 12 0 72. x2 2x1 35 0
5
62. 0.5x3 92 43
2 3
2 3
139
h
r
80. Painted area on a canvas: A
4x2 60x 104 x
A rectangular canvas is to contain a small painting with an area of 52 in2, and requires 2-in. margins on the left and right, with 1-in. margins on the top and bottom for framing. The total area of such a canvas is given by the formula shown, where x is the height of the painted area. a. What is the area A of the canvas if the height of the painting is x 10 in.? b. If the area of the canvas is A 120 in2, what are the dimensions of the painted area?
APPLICATIONS
Find all real numbers that satisfy the following descriptions.
81. When the cube of a number is added to twice its square, the result is equal to 18 more than 9 times the number. 82. Four times a number decreased by 20 is equal to the cube of the number decreased by 5 times its square. 83. Find three consecutive even integers such that 4 times the largest plus the fourth power of the smallest is equal to the square of the remaining even integer increased by 24. 84. Find three consecutive integers such that the sum of twice the largest and the fourth power of the smallest is equal to the square of the remaining integer increased by 75. 85. Envelope sizes: Large mailing envelopes often come in standard sizes, with 5- by 7-in. and 9- by
12-in. envelopes being the most common. The next larger size envelope has an area of 143 in2, with a length that is 2 in. longer than the width. What are the dimensions of the larger envelope? 86. Paper sizes: Letter size paper is 8.5 in. by 11 in. Legal size paper is 812 in. by 14 in. The next larger (common) size of paper has an area of 187 in2, with a length that is 6 in. longer than the width. What are the dimensions of the Ledger size paper?
Letter
Legal Ledger
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87. Composite figures— grain silos: Grain silos can be described as a hemisphere sitting atop a cylinder. The interior volume V of the silo can be modeled by V 23r3 r2h, where h is the height of a cylinder with radius r. For a cylinder 6 m tall, what radius would give the silo a volume that is numerically equal to 24 times this radius? 88. Composite figures—gelatin capsules: The gelatin capsules manufactured for cold and flu medications are shaped like a cylinder with a hemisphere on each end. The interior volume V of each capsule can be modeled by V 43r3 r2h, where h is the height of the cylindrical portion and r is its radius. If the cylindrical portion of the capsule is 8 mm long 1h 8 mm2, what radius would give the capsule a volume that is numerically equal to 15 times this radius?
been thrown). Use this information to complete the following problems.
91. From the base of a canyon that is 480 feet deep (below ground level S 4802, a slingshot is used to shoot a pebble upward toward the canyon’s rim. If the initial velocity is 176 ft per second: a. How far is the pebble below the rim after 4 sec? b. How long until the pebble returns to the bottom of the canyon? c. What happens at t 5 and t 6 sec? Discuss and explain. 92. A model rocket blasts off. A short time later, at a velocity of 160 ft/sec and a height of 240 ft, it runs out of fuel and becomes a projectile. a. How high is the rocket three seconds later? Four seconds later? b. How long will it take the rocket to attain a height of 640 ft? c. How many times is a height of 384 ft attained? When do these occur? d. How many seconds until the rocket returns to the ground? 93. Printing newspapers: The editor of the school newspaper notes the college’s new copier can complete the required print run in 20 min, while the back-up copier took 30 min to do the same amount of work. How long would it take if both copiers are used?
89. Running shoes: When a popular running shoe is priced at $70, The Shoe House will sell 15 pairs each week. Using a survey, they have determined that for each decrease of $2 in price, 3 additional pairs will be sold each week. What selling price will give a weekly revenue of $2250? 90. Cell phone charges: A cell phone service sells 48 subscriptions each month if their monthly fee is $30. Using a survey, they find that for each decrease of $1, 6 additional subscribers will join. What charge(s) will result in a monthly revenue of $2160? Projectile height: In the absence of resistance, the height of an object that is projected upward can be modeled by the equation h 16t2 vt k, where h represents the height of the object (in feet) t sec after it has been thrown, v represents the initial velocity (in feet per second), and k represents the height of the object when t 0 (before it has
94. Filling a sink: The cold water faucet can fill a sink in 2 min. The drain can empty a full sink in 3 min. If the faucet were left on and the drain was left open, how long would it take to fill the sink? 95. Triathalon competition: As one part of a Mountain-Man triathalon, participants must row a canoe 5 mi down river (with the current), circle a buoy and row 5 mi back up river (against the current) to the starting point. If the current is flowing at a steady rate of 4 mph and Tom Chaney made the round-trip in 3 hr, how fast can he row in still water? (Hint: The time rowing down river and the time rowing up river must add up to 3 hr.) 96. Flight time: The flight distance from Cincinnati, Ohio, to Chicago, Illinois, is approximately 300 mi. On a recent round-trip between these cities in my private plane, I encountered a steady 25 mph headwind on the way to Chicago, with a 25 mph tailwind on the return trip. If my total flying time
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came to exactly 5 hr, what was my flying time to Chicago? What was my flying time back to Cincinnati? (Hint: The flight time between the two cities must add up to 5 hr.)
modeled by T 0.407R2, where R is the maximum radius of the planet’s orbit in millions of miles (Kepler’s third law of planetary motion). Use the equation to approximate the maximum radius of each orbit, given the number of days it takes for one revolution. (See Section R.6, Exercises 53 and 54.) a. Mercury: 88 days b. Venus: 225 days c. Earth: 365 days d. Mars: 687 days e. Jupiter: 4,333 days f. Saturn: 10,759 days
97. Pollution removal: For a steel mill, the cost C (in millions of dollars) to remove toxins from the 92P , where resulting sludge is given by C 100 P P is the percent of the toxins removed. What percent can be removed if the mill spends $100,000,000 on the cleanup? Round to tenths of a percent. 98. Wildlife populations: The Department of Wildlife introduces 60 elk into a new game reserve. It is projected that the size of the herd will grow 1016 3t2 , where according to the equation N 1 0.05t N is the number of elk and t is the time in years. If recent counts find 225 elk, approximately how many years have passed? (See Section R.5, Exercise 82.) 99. Planetary motion: The time T (in days) for a planet to make one revolution around the sun is
141
100. Wind-powered energy: If a wind-powered generator is delivering P units of power, the velocity V of the wind (in miles per hour) can be 3 P , where k is a constant determined using V Ak that depends on the size and efficiency of the generator. Given k 0.004, approximately how many units of power are being delivered if the wind is blowing at 27 miles per hour? (See Section R.6, Exercise 56.)
EXTENDING THE CONCEPT 8 1 , a student x x3 multiplied by the LCD x1x 32, simplified, and got this result: 3 8x 1x 32. Identify and fix the mistake, then find the correct solution(s).
101. To solve the equation 3
102. The expression x2 7 is not factorable using integer values. But the expression can be written in the form x2 1 172 2, enabling us to factor it as a binomial and its conjugate: 1x 172 1x 172. Use this idea to solve the following equations: a. x2 5 0 b. n2 19 0 c. 4v2 11 0 d. 9w2 11 0
Determine the values of x for which each expression represents a real number.
103.
1x 1 x2 4
104.
x2 4 1x 1
105. As an extension of working with absolute values, try the following exercises. Recall that for X k, X k or X k. a. x2 2x 25 10 b. x2 5x 10 4 c. x2 4 x 2 d. x2 9 x 3 e. x2 7x x 7 f. x2 5x 2 x 5
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MAINTAINING YOUR SKILLS
106. (1.1) Two jets take off on parallel runways going in opposite directions. The first travels at a rate of 250 mph and the second at 325 mph. How long until they are 980 miles apart?
108. (R.3) Simplify using properties of exponents: 21 12x2 0 2x0
109. (1.2) Graph the relation given: 2x 3 6 7 and x 2 7 1
107. (R.6) Find the missing side. 12 cm
10 cm
S U M M A RY A N D C O N C E P T R E V I E W SECTION 1.1
Linear Equations, Formulas, and Problem Solving
KEY CONCEPTS • An equation is a statement that two expressions are equal. • Replacement values that make an equation true are called solutions or roots. • Equivalent equations are those that have the same solution set. • To solve an equation we use the distributive property and the properties of equality to write a sequence of simpler, equivalent equations until the solution is obvious. A guide for solving linear equations appears on page 75. • If an equation contains fractions, multiply both sides by the LCD of all denominators, then solve. • Solutions to an equation can be checked using back-substitution, by replacing the variable with the proposed solution and verifying the left-hand expression is equal to the right. • An equation can be: 1. an identity, one that is always true, with a solution set of all real numbers. 2. a contradiction, one that is never true, with the empty set as the solution set. 3. conditional, or one that is true/false depending on the value(s) input. • To solve formulas for a specified variable, focus on the object variable and apply properties of equality to write this variable in terms of all others. • The basic elements of good problem solving include: 1. Gathering and organizing information 2. Making the problem visual 3. Developing an equation model 4. Using the model to solve the application For a complete review, see the problem-solving guide on page 78. EXERCISES 1. Use substitution to determine if the indicated value is a solution to the equation given. 1 3 5 3 a. 6x 12 x2 41x 52, x 6 b. b 2 b 16, b 8 c. 4d 2 3d, d 4 2 2 2 Solve each equation. 2. 2b 7 5 5.
1 2 3 x 2 3 4
3. 312n 62 1 7 6. 6p 13p 52 9 31p 32
4. 4m 5 11m 2 5g g 1 7. 3 6 2 12
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143
Solve for the specified variable in each formula or literal equation. 8. V r2h for h 9. P 2L 2W for L 10. ax b c for x
11. 2x 3y 6 for y
Use the problem-solving guidelines (page 78) to solve the following applications. 12. At a large family reunion, two kegs of lemonade are available. One is 2% sugar (too sour) and the second is 7% sugar (too sweet). How many gallons of the 2% keg, must be mixed with 12 gallons of the 7% keg to get a 5% mix? 13. A rectangular window with a width of 3 ft and a height of 4 ft is topped by a semi-circular window. Find the total area of the window. 14. Two cyclists start from the same location and ride in opposite directions, one riding at 15 mph and the other at 18 mph. If their radio phones have a range of 22 mi, how many minutes will they be able to communicate?
SECTION 1.2
Linear Inequalities in One Variable
KEY CONCEPTS • Inequalities are solved using properties similar to those for solving equalities (see page 87). The one exception is the multiplicative property of inequality, since the truth of the resulting statement depends on whether a positive or negative quantity is used. • Solutions to an inequality can be graphed on a number line, stated using a simple inequality, or expressed using set or interval notation. • For two sets A and B: A intersect B 1A B2 is the set of elements in both A and B (i.e., elements common to both sets). A union B 1A ´ B2 is the set of elements in either A or B (i.e., all elements from either set). • Compound inequalities are formed using the conjunctions “and”/“or.” These can be either a joint inequality as in 3 6 x 5, or a disjoint inequality, as in x 6 2 or x 7 7. EXERCISES Use inequality symbols to write a mathematical model for each statement. 15. You must be 35 yr old or older to run for president of the United States. 16. A child must be under 2 yr of age to be admitted free. 17. The speed limit on many interstate highways is 65 mph. 18. Our caloric intake should not be less than 1200 calories per day. Solve the inequality and write the solution using interval notation. 19. 7x 7 35
3 20. m 6 6 5
21. 213m 22 8
22. 1 6
23. 4 6 2b 8 and 3b 5 7 32
24. 51x 32 7 7 or x 5.2 7 2.9
1 x25 3
25. Find the allowable values for each of the following. Write your answer in interval notation. a.
7 n3
b.
5 2x 3
c. 1x 5
d. 13n 18
26. Latoya has earned grades of 72%, 95%, 83%, and 79% on her first four exams. What grade must she make on her fifth and last exam so that her average is 85% or more?
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SECTION 1.3
Absolute Value Equations and Inequalities
KEY CONCEPTS • To solve absolute value equations and inequalities, begin by writing the equation in simplified form, with the absolute value isolated on one side. • If X represents an algebraic expression and k is a nonnegative constant: • Absolute value equations: X k is equivalent to X k or X k X 6 k is equivalent to k 6 X 6 k • “Less than” inequalities: • “Greater than” inequalities: X 7 k is equivalent to X 6 k or X 7 k • These properties also apply when the symbols “” or “”are used. • If the absolute value quantity has been isolated on the left, the solution to a less-than inequality will be a single interval, while the solution to a greater-than inequality will consist of two disjoint intervals. • The multiplicative property states that for algebraic expressions A and B, AB AB. EXERCISES Solve each equation or inequality. Write solutions to inequalities in interval notation. 27. 7 0 x 3 0 28. 2x 2 10 29. 2x 3 13 2x 5 x 30. 31. 3x 2 2 6 14 32. ` 9 ` 7 89 3 2 33. 3x 5 4 34. 3x 1 6 9 35. 2x 1 7 4 3x 2 36. 5m 2 12 8 37. 6 10 2 38. Monthly rainfall received in Omaha, Nebraska, rarely varies by more than 1.7 in. from an average of 2.5 in. per month. (a) Use this information to write an absolute value inequality model, then (b) solve the inequality to find the highest and lowest amounts of monthly rainfall for this city.
SECTION 1.4
Complex Numbers
KEY CONCEPTS • The italicized i represents the number whose square is 1. This means i2 1 and i 11. • Larger powers of i can be simplified using i4 1. • For k 7 0, 1k i1k and we say the expression has been written in terms of i. • The standard form of a complex number is a bi, • The commutative, associative, and distributive where a is the real number part and bi is the properties also apply to complex numbers and are imaginary number part. used to perform basic operations. • To add or subtract complex numbers, combine the • To multiply complex numbers, use the F-O-I-L like terms. method and simplify. For any complex number its complex a bi, • • To find a quotient of complex numbers, multiply the conjugate is a bi. numerator and denominator by the conjugate of the denominator. • The product of a complex number and its conjugate is a real number. EXERCISES Simplify each expression and write the result in standard form. 39. 172
40. 6 148
42. 1316
43. i57
41.
10 150 5
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145
Perform the operation indicated and write the result in standard form. 5i 44. 15 2i2 2 45. 46. 13 5i2 12 2i2 1 2i 47. 12 3i212 3i2
48. 4i13 5i2
Use substitution to show the given complex number and its conjugate are solutions to the equation shown. 49. x2 9 34; x 5i 50. x2 4x 9 0; x 2 i 25
SECTION 1.5
Solving Quadratic Equations
KEY CONCEPTS • The standard form of a quadratic equation is ax2 bx c 0, where a, b, and c are real numbers and a 0. In words, we say the equation is written in decreasing order of degree and set equal to zero. • The coefficient of the squared term a is called the leading coefficient, b is called the linear coefficient, and c is called the constant term. The square root property of equality states that if X 2 k, where k 0, then X 1k or X 1k. • • Factorable quadratics can be solved using the zero product property, which states that if the product of two factors is zero, then one, the other, or both must be equal to zero. Symbolically, if A # B 0, then A 0 or B 0. • Quadratic equations can also be solved by completing the square, or using the quadratic formula. • If the discriminant b2 4ac 0, the equation has one real (repeated) root. If b2 4ac 7 0, the equation has two real roots; and if b2 4ac 6 0, the equation has two complex roots. EXERCISES 51. Determine whether the given equation is quadratic. If so, write the equation in standard form and identify the values of a, b, and c. a. 3 2x2 b. 7 2x 11 c. 99 x2 8x d. 20 4 x2 52. Solve by factoring. a. x2 3x 10 0 b. 2x2 50 0 c. 3x2 15 4x d. x3 3x2 4x 12 53. Solve using the square root property of equality. a. x2 9 0 b. 21x 22 2 1 11 c. 3x2 15 0 d. 2x2 4 46 54. Solve by completing the square. Give real number solutions in exact and approximate form. a. x2 2x 15 b. x2 6x 16 c. 4x 2x2 3 d. 3x2 7x 2 55. Solve using the quadratic formula. Give solutions in both exact and approximate form. a. x2 4x 9 b. 4x2 7 12x c. 2x2 6x 5 0 Solve the following quadratic applications. For 56 and 57, recall the height of a projectile is modeled by h 16t2 v0t k. 56. A projectile is fired upward from ground level with an initial velocity of 96 ft/sec. (a) To the nearest tenth of a second, how long until the object first reaches a height of 100 ft? (b) How long until the object is again at 100 ft? (c) How many seconds until it returns to the ground? 57. A person throws a rock upward from the top of an 80-ft cliff with an initial velocity of 64 ft/sec. (a) To the nearest tenth of a second, how long until the object is 120 ft high? (b) How long until the object is again at 120 ft? (c) How many seconds until the object hits the ground at the base of the cliff? 58. The manager of a large, 14-screen movie theater finds that if he charges $2.50 per person for the matinee, the average daily attendance is 4000 people. With every increase of 25 cents the attendance drops an average of 200 people. (a) What admission price will bring in a revenue of $11,250? (b) How many people will purchase tickets at this price?
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59. After a storm, the Johnson’s basement flooded and the water needed to be pumped out. A cleanup crew is sent out with two powerful pumps to do the job. Working alone (if one of the pumps were needed at another job), the larger pump would be able to clear the basement in 3 hr less time than the smaller pump alone. Working together, the two pumps can clear the basement in 2 hr. How long would it take the smaller pump alone?
SECTION 1.6
Solving Other Types of Equations
KEY CONCEPTS • Certain equations of higher degree can be solved using factoring skills and the zero product property. • To solve rational equations, clear denominators using the LCD, noting values that must be excluded. • Multiplying an equation by a variable quantity sometimes introduces extraneous solutions. Check all results in the original equation. • To solve radical equations, isolate the radical on one side, then apply the appropriate “nth power” to free up the radicand. Repeat the process if needed. See flowchart on page 132. • For equations with a rational exponent mn, isolate the variable term and raise both sides to the mn power. If m is even, there will be two real solutions. • Any equation that can be written in the form u2 bu c 0, where u represents an algebraic expression, is said to be in quadratic form and can be solved using u-substitution and standard approaches. EXERCISES Solve by factoring. 60. x3 7x2 3x 21
61. 3x3 5x2 2x
62. x4 8x 0
63. x4
Solve each equation. 3 7 1 64. 5x 10 4x 2n 3 n2 20 2 n2 n4 n 2n 8 68. 31x 4 x 4 1 70. 3ax b 4
7 3h 1 2 h3 h h 3h 2 2x 7 67. 35 2 65.
66.
32
1 0 16
8 9
72. 1x2 3x2 2 141x2 3x2 40 0
69. 13x 4 2 1x 2 2
71. 215x 22 3 17 1 73. x4 7x2 18
74. The science of allometry studies the growth of one aspect of an organism relative to the entire organism or to a set standard. Allometry tells us that the amount of food F (in kilocalories per day) an herbivore must eat to 3 survive is related to its weight W (in grams) and can be approximated by the equation F 1.5W4. a. How many kilocalories per day are required by a 160-kg gorilla 1160 kg 160,000 g2? b. If an herbivore requires 40,500 kilocalories per day, how much does it weigh?
75. The area of a common stenographer’s tablet, commonly called a steno book, is 54 in2. The length of the tablet is 3 in. more than the width. Model the situation with a quadratic equation and find the dimensions of the tablet. 76. A batter has just flied out to the catcher, who catches the ball while standing on home plate. If the batter made contact with the ball at a height of 4 ft and the ball left the bat with an initial velocity of 128 ft/sec, how long will it take the ball to reach a height of 116 ft? How high is the ball 5 sec after contact? If the catcher catches the ball at a height of 4 ft, how long was it airborne? 77. Using a survey, a firewood distributor finds that if they charge $50 per load, they will sell 40 loads each winter month. For each decrease of $2, five additional loads will be sold. What selling price(s) will result in new monthly revenue of $2520?
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Practice Test
147
MIXED REVIEW 1. Find the allowable values for each expression. Write your response in interval notation. 10 5 a. b. 3x 4 1x 8 2. Perform the operations indicated. a. 118 150 b. 11 2i2 2 3i c. d. 12 i 132 12 i 132 1i 3. Solve each equation or inequality. a. 2x3 4x2 50x 100 b. 3x4 375x 0 c. 23x 1 12 4 x d. 3 ` 5 ` 12 e. v3 81 3 1 f. 21x 12 4 6 Solve for the variable indicated. 1 2 4. V r2h r3; for h 5. 3x 4y 12; for y 3 3 Solve as indicated, using the method of your choice. 6. a. 20 4x 8 6 56 b. 2x 7 12 and 3 4x 7 5
17. a. 12v 3 3 v 3 2 3 b. 2 x 9 1 x 11 0 c. 1x 7 12x 1 18. The local Lion’s Club rents out two banquet halls for large meetings and other events. The records show that when they charge $250 per day for use of the halls, there are an average of 156 bookings per year. For every increase of $20 per day, there will be three less bookings. (a) What price per day will bring in $61,950 for the year? (b) How many bookings will there be at the price from part (a)? 19. The Jefferson College basketball team has two guards who are 6¿3– tall and two forwards who are 6¿7– tall. How tall must their center be to ensure the “starting five” will have an average height of at least 6¿6–? 20. The volume of an inflatable hot-air balloon can be approximated using the formulas for a hemisphere and a cone: V 23r3 13r2h. Assume the conical portion has height h 24 ft. During inflation, what is the radius of the balloon at the moment the volume of air is numerically equal to 126 times this radius?
7. a. 5x 12x 32 3x 415 x2 3 n 5 4 b. 2 2 n 5 3 15 8. 5x1x 102 1x 12 0 9. x2 18x 77 0
10. 3x2 10 5 x x2
11. 4x2 5 19
12. 31x 52 2 3 30
13. 25x2 16 40x
14. 3x2 7x 3 0
15. 2x4 50 0 2 2 x 1 1 b. 0 2 x 5x 12 n1 2 n 1 2x 36 x c. 2 x3 x3 x 9
16. a.
PRACTICE TEST 1. Solve each equation. 2 a. x 5 7 1x 32 3 b. 5.7 3.1x 14.5 41x 1.52
c. P C kC; for C d. 22x 5 17 11 2. How much water that is 102°F must be mixed with 25 gal of water at 91°F, so that the resulting temperature of the water will be 97°F?
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3. Solve each equation or inequality. 2 a. x 7 6 19 5 b. 1 6 3 x 8 1 2 x13 c. x 3 6 9 or 2 3 5 7 1 d. x 3 2 4 4 2 e. x 1 5 6 7 3
revenue of $405? (b) How many tins will be sold at the price from part (a)? 16. Due to the seasonal nature of the business, the revenue of Wet Willey’s Water World can be modeled by the equation r 3t2 42t 135, where t is the time in months 1t 1 corresponds to January) and r is the dollar revenue in thousands. (a) What month does Wet Willey’s open? (b) What month does Wet Willey’s close? (c) Does Wet Willey’s bring in more revenue in July or August? How much more?
4. To make the bowling team, Jacques needs a threegame average of 160. If he bowled 141 and 162 for the first two games, what score S must be obtained in the third game so that his average is at least 160? 5. z2 7z 30 0
6. x2 25 0
7. 1x 12 3 0
8. x 16 17x
2
4
8 120 6
a. x y
9. 3x 20x 12 10. 4x3 8x2 9x 18 0 2x x 16 2 2 x3 x2 x x6 4 5x 2 2 12. x3 x 9 13. 1x 1 12x 7 2
11.
1 4
15. The Spanish Club at Rock Hill Community College has decided to sell tins of gourmet popcorn as a fundraiser. The suggested selling price is $3.00 per tin, but Maria, who also belongs to the Math Club, decides to take a survey to see if they can increase “the fruits of their labor.” The survey shows it’s likely that 120 tins will be sold on campus at the $3.00 price, and for each price increase of $0.10, 2 fewer tins will be sold. (a) What price per tin will bring in a
18. i39
1 13 13 1 i and y i find 2 2 2 2 b. x y c. xy
2
2
14. 1x 32
17.
19. Given x
Solve each equation.
2 3
Simplify each expression.
20. Compute the quotient:
3i . 1i
21. Find the product: 13i 5215 3i2. 22. Show x 2 3i is a solution of x2 4x 13 0. 23. Solve by completing the square. a. 2x2 20x 49 0 b. 2x2 5x 4 24. Solve using the quadratic formula. a. 3x2 2 6x b. x2 2x 10 25. Allometric studies tell us that the necessary food intake F (in grams per day) of nonpasserine birds (birds other than song birds and other small3 birds) can be modeled by the equation F 0.3W4, where W is the bird’s weight in grams. (a) If my Greenwinged macaw weighs 1296 g, what is her anticipated daily food intake? (b) If my blue-headed pionus consumes 19.2 g per day, what is his estimated weight?
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Evaluating Expressions and Looking for Patterns These “explorations” are designed to explore the full potential of a graphing calculator, as well as to use this potential to investigate patterns and discover connections that might otherwise be overlooked. In this Exploration and Discovery, we point out the various ways an expression can be evaluated on a graphing calculator. Some ways seem easier, faster, and/or better than others, but each has
advantages and disadvantages depending on the task at hand, and it will help to be aware of them all for future use. One way to evaluate an expression is to use the TABLE feature of a graphing calculator, with the expression entered as Y1 on the Y = screen. If you want the calculator to generate inputs, use the 2nd WINDOW (TBLSET) screen to indicate a starting value
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Strengthening Core Skills
1TblStart2 and an increment value 1 ¢Tbl2 , and set the calculator in Indpnt: AUTO ASK mode (to input specific values, the calculator should be in Indpnt: AUTO ASK mode). After pressing 2nd GRAPH (TABLE), the calculator shows the corresponding input and output values. For help with the basic TABLE feature of the TI-84 Plus, you can visit Section R.7 at www.mhhe.com/coburn. Expressions can also be evaluated on the home screen for a single value or a series of values. Enter the expres3 sion 4x 5 on the Y = screen (see Figure 1.15) and use 2nd MODE (QUIT) to get back to the home screen. To evaluate this expression, access Y1 using VARS (Y-VARS), and use the first option 1:Function ENTER . This brings us to a submenu where any of the equations Y1 through Y0 (actually Y10) can be accessed. Since the default setting is the one we need 1:Y1, simply press ENTER and Y1 appears on the home screen. To evaluate a single input, simply enclose it in parentheses. To evaluate more than one input, enter the numbers as a set of values with the set enclosed in parentheses. In Figure 1.16, Y1 has been evaluated for x 4, then simultaneously for x 4, 2, 0, and 2. A third way to evaluate expressions is using a list, with the desired inputs entered in List 1 (L1), and List 2 (L2) defined in terms of L1. For example, L2 34L1 5 will return the same values for inputs of 4, 2, 0, and 2 seen previously on the home screen (remember to clear the lists first). Lists are accessed by pressing STAT 1:Edit. Enter the numbers 4, 2, 0 and 2 in L1, then use the right arrow to move to L2. It is important to note that you next press the up arrow key so that the cursor overlies L2. The bottom of the screen now reads L2= (see Figure 1.17) and the calculator is waiting for us to define L2. After entering L2 34L1 5 and pressing ENTER we obtain the same outputs as before (see Figure 1.18).
The advantage of using the “list” method is that we can further explore or experiment with the output values in a search for patterns. Exercise 1: Evaluate the expression 0.2L1 3 on the list screen, using consecutive integer inputs from 6 to 6 inclusive. What do you notice about the outputs? Exercise 2: Evaluate the expression 12 L1 19.1 on the list screen, using consecutive integer inputs from 6 to 6 inclusive. We suspect there is a pattern to the output values, but this time the pattern is very difficult to see. Compute the difference between a few successive outputs from L2 [for Example L2112 L2122 4 . What do you notice?
149
Figure 1.15
Figure 1.16
Figure 1.17
Figure 1.18
STRENGTHENING CORE SKILLS An Alternative Method for Checking Solutions to Quadratic Equations To solve x2 2x 15 0 by factoring, students will often begin by looking for two numbers whose product is 15 (the constant term) and whose sum is 2 (the linear coefficient). The two numbers are 5 and 3 since 152132 15 and 5 3 2. In factored form, we have 1x 521x 32 0 with solutions x1 5 and x2 3. When these solutions are compared to the original coefficients, we can still see the sum/product relationship, but note that while 152132 15 still gives the constant term, 5 132 2 gives the linear coefficient with opposite sign. Although more difficult to accomplish,
this method can be applied to any factorable quadratic equation ax2 bx c 0 if we divide through by a, b c giving x2 x 0. For 2x2 x 3 0, we a a 3 1 divide both sides by 2 and obtain x2 x 0, 2 2 3 then look for two numbers whose product is and 2 1 3 whose sum is . The numbers are and 1 2 2
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3 3 1 3 since a b112 and 1 , showing the 2 2 2 2 3 solutions are x1 and x2 1. We again note the 2 3 c product of the solutions is the constant , and the a 2 sum of the solutions is the linear coefficient with opposite 1 b sign: . No one actually promotes this method for a 2 solving trinomials where a 1, but it does illustrate an important and useful concept: b c If x1 and x2 are the two roots of x2 x 0, a a c b then x1x2 and x1 x2 . a a Justification for this can be found by taking the product 2b2 4ac b and sum of the general solutions x1 2a 2a 2 b 2b 4ac . Although the computation and x2 2a 2a looks impressive, the product can be computed as a binomial times its conjugate, and the radical parts add to zero for the sum, each yielding the results as already stated.
This observation provides a useful technique for checking solutions to a quadratic equation, even those having irrational or complex roots! Check the solutions shown in these exercises. Exercise 1: 2x2 5x 7 0 7 x1 2 x2 1 Exercise 2: 2x2 4x 7 0 2 312 x1 2 2 312 x2 2 Exercise 3: x2 10x 37 0 x1 5 2 13 i x2 5 2 13 i Exercise 4: Verify this sum/product check by computing the sum and product of the general solutions.
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2 CHAPTER CONNECTIONS
2.2 Graphs of Linear Equations 165
Viewing a function in terms of an equation, a table of values, and the related graph, often brings a clearer understanding of the relationships involved. For example, the power generated by a wind turbine is often modeled 8v 3 by the function P1v2 , where P is 125 the power in watts and v is the wind velocity in miles per hour. While the formula enables us to predict the power generated for a given wind speed, the graph offers a visual representation of this relationship, where we note a rapid growth in power output as the wind speed increases. This application appears as Exercise 107 in Section 2.6.
2.3 Linear Graphs and Rates of Change 178
Check out these other real-world connections:
2.4 Functions, Function Notation, and the Graph of a Function 190
2.5 Analyzing the Graph of a Function 206
Relations, Functions, and Graphs CHAPTER OUTLINE 2.1 Rectangular Coordinates; Graphing Circles and Other Relations 152
2.6 The Toolbox Functions and Transformations 225 2.7 Piecewise-Defined Functions 240 2.8 The Algebra and Composition of Functions 254
Earthquake Area (Section 2.1, Exercise 84) Height of an Arrow (Section 2.5, Exercise 61) Garbage Collected per Number of Garbage Trucks (Section 2.2, Exercise 42) Number of People Connected to the Internet (Section 2.3, Exercise 109)
151
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College Algebra—
2.1 Rectangular Coordinates; Graphing Circles and Other Relations In everyday life, we encounter a large variety of relationships. For instance, the time it takes us to get to work is related to our average speed; the monthly cost of heating a home is related to the average outdoor temperature; and in many cases, the amount of our charitable giving is related to changes in the cost of living. In each case we say that a relation exists between the two quantities.
Learning Objectives In Section 2.1 you will learn how to:
A. Express a relation in mapping notation and ordered pair form
B. Graph a relation C. Develop the equation of a circle using the distance and midpoint formulas
D. Graph circles
WORTHY OF NOTE
EXAMPLE 1
Figure 2.1 In the most general sense, a relation is simply a P B correspondence between two sets. Relations can be represented in many different ways and may even Missy April 12 Jeff be very “unmathematical,” like the one shown in Nov 11 Angie Figure 2.1 between a set of people and the set of their Sept 10 Megan corresponding birthdays. If P represents the set of Nov 28 people and B represents the set of birthdays, we say Mackenzie May 7 Michael that elements of P correspond to elements of B, or the April 14 Mitchell birthday relation maps elements of P to elements of B. Using what is called mapping notation, we might simply write P S B. Figure 2.2 The bar graph in Figure 2.2 is also 155 ($145) 145 an example of a relation. In the graph, 135 each year is related to average annual ($123) 125 consumer spending on Internet media 115 (music downloads, Internet radio, Web105 based news articles, etc.). As an alterna($98) 95 tive to mapping or a bar graph, the ($85) 85 relation could also be represented using 75 ($69) ordered pairs. For example, the 65 ordered pair (3, 98) would indicate that in 2003, spending per person on Internet 2 3 5 1 7 media averaged $98 in the United Year (1 → 2001) States. Over a long period of time, we Source: 2006 Statistical Abstract of the United States could collect many ordered pairs of the form (t, s), where consumer spending s depends on the time t. For this reason we often call the second coordinate of an ordered pair (in this case s) the dependent variable, with the first coordinate designated as the independent variable. In this form, the set of all first coordinates is called the domain of the relation. The set of all second coordinates is called the range. Consumer spending (dollars per year)
From a purely practical standpoint, we note that while it is possible for two different people to share the same birthday, it is quite impossible for the same person to have two different birthdays. Later, this observation will help us mark the difference between a relation and a function.
A. Relations, Mapping Notation, and Ordered Pairs
Expressing a Relation as a Mapping and in Ordered Pair Form Represent the relation from Figure 2.2 in mapping notation and ordered pair form, then state its domain and range.
Solution
A. You’ve just learned how to express a relation in mapping notation and ordered pair form
152
Let t represent the year and s represent consumer spending. The mapping t S s gives the diagram shown. In ordered pair form we have (1, 69), (2, 85), (3, 98), (5, 123), and (7, 145). The domain is {1, 2, 3, 5, 7}, the range is {69, 85, 98, 123, 145}.
t
s
1 2 3 5 7
69 85 98 123 145
Now try Exercises 7 through 12
For more on this relation, see Exercise 81. 2-2
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Section 2.1 Rectangular Coordinates; Graphing Circles and Other Relations
Table 2.1 y x 1 x
y
4
5
2
3
0
1
2
1
4
3
B. The Graph of a Relation Relations can also be stated in equation form. The equation y x 1 expresses a relation where each y-value is one less than the corresponding x-value (see Table 2.1). The equation x y expresses a relation where each x-value corresponds to the absolute value of y (see Table 2.2). In each case, the relation is the set of all ordered pairs (x, y) that create a true statement when substituted, and a few ordered pair solutions are shown in the tables for each equation. Relations can be expressed graphically using a rectangular coordinate system. It consists of a horizontal number line (the x-axis) and a vertical number line (the y-axis) intersecting at their zero marks. The Figure 2.3 point of intersection is called the origin. The x- and y y-axes create a flat, two-dimensional surface called 5 the xy-plane and divide the plane into four regions 4 called quadrants. These are labeled using a capital 3 QII QI 2 “Q” (for quadrant) and the Roman numerals I through 1 IV, beginning in the upper right and moving counterclockwise (Figure 2.3). The grid lines shown denote 5 4 3 2 11 1 2 3 4 5 x the integer values on each axis and further divide the 2 QIII QIV plane into a coordinate grid, where every point in 3 4 the plane corresponds to an ordered pair. Since a 5 point at the origin has not moved along either axis, it has coordinates (0, 0). To plot a point (x, y) means we place a dot at its location in the xy-plane. A few of the Figure 2.4 ordered pairs from y x 1 are plotted in Figure y 5 2.4, where a noticeable pattern emerges—the points seem to lie along a straight line. (4, 3) If a relation is defined by a set of ordered pairs, the graph of the relation is simply the plotted points. The (2, 1) graph of a relation in equation form, such as y x 1, 5 x is the set of all ordered pairs (x, y) that make the equa- 5 (0, 1) tion true. We generally use only a few select points to (2, 3) determine the shape of a graph, then draw a straight line (4, 5) or smooth curve through these points, as indicated by 5 any patterns formed.
Table 2.2 x y x
y
2
2
1
1
0
0
1
1
2
2
EXAMPLE 2
Graphing Relations Graph the relations y x 1 and x y using the ordered pairs given earlier.
Solution
For y x 1, we plot the points then connect them with a straight line (Figure 2.5). For x y, the plotted points form a V-shaped graph made up of two half lines (Figure 2.6). Figure 2.5 5
Figure 2.6
y yx1
y 5
x y (3, 3)
(4, 3)
(2, 2)
(2, 1) (0, 0) 5
5
x
5
5
(0, 1)
(2, 3)
x
(2, 2) (3, 3)
5
5
Now try Exercises 13 through 16
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2-4
CHAPTER 2 Relations, Functions, and Graphs
While we used only a few points to graph the relations in Example 2, they are actually made up of an infinite number of ordered pairs that satisfy each equation, including those that might be rational or irrational. All of these points together make these graphs continuous, which for our purposes means you can draw the entire graph without lifting your pencil from the paper. Actually, a majority of graphs cannot be drawn using only a straight line or directed line segments. In these cases, we rely on a “sufficient number” of points to outline the basic shape of the graph, then connect the points with a smooth curve. As your experience with graphing increases, this “sufficient number of points” tends to get smaller as you learn to anticipate what the graph of a given relation should look like.
WORTHY OF NOTE As the graphs in Example 2 indicate, arrowheads are used where appropriate to indicate the infinite extension of a graph.
EXAMPLE 3
Graphing Relations Graph the following relations by completing the tables given. a. y x2 2x b. y 29 x2 c. x y2
Solution
For each relation, we use each x-input in turn to determine the related y-output(s), if they exist. Results can be entered in a table and the ordered pairs used to draw the graph. a. y x2 2x Figure 2.7 y
x
y
(x, y) Ordered Pairs
4
24
(4, 24)
3
15
(3, 15)
2
8
(2, 8)
1
3
(1, 3)
0 1
0 1
2
0
(2, 0)
3
3
(3, 3)
4
8
(4, 8)
(0, 0)
(4, 8)
(2, 8) y x2 2x
5
(1, 3)
(3, 3) (2, 0)
(0, 0) 5
5
(1, 1)
x
(1, 1)
2
The result is a fairly common graph (Figure 2.7), called a vertical parabola. Although (4, 24) and 13, 152 cannot be plotted here, the arrowheads indicate an infinite extension of the graph, which will include these points. y 29 x2
b. x
y
Figure 2.8
(x, y) Ordered Pairs
4
not real
—
3
0
(3, 0)
2
15
(2, 15)
1
212
(1, 212)
0
3
(0, 3)
1
212
(1, 212)
2
15
(2, 15)
3
0
(3, 0)
4
not real
—
y 9 x2
y 5
(1, 22) (2, 5) (3, 0)
(0, 3) (1, 22) (2, 5) (3, 0)
5
5
5
x
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Section 2.1 Rectangular Coordinates; Graphing Circles and Other Relations
The result is the graph of a semicircle (Figure 2.8). The points with irrational coordinates were graphed by estimating their location. Note that when x 6 3 or x 7 3, the relation y 29 x2 does not represent a real number and no points can be graphed. Also note that no arrowheads are used since the graph terminates at (3, 0) and (3, 0). c. Similar to x y, the relation x y2 is defined only for x 0 since y2 is always nonnegative (1 y2 has no real solutions). In addition, we reason that each positive x-value will correspond to two y-values. For example, given x 4, (4, 2) and (4, 2) are both solutions. x y2
B. You’ve just learned how to graph a relation
Figure 2.9
x
y
(x, y) Ordered Pairs
2
not real
—
1
y 5
x y2 (4, 2)
(2, 2)
not real
—
0
0
(0, 0)
1
1, 1
(1, 1) and (1, 1)
2
12, 12
(2, 12) and (2, 12)
3
13, 13
(3, 13) and (3, 13)
4
2, 2
(4, 2) and (4, 2)
(0, 0) 5
5
5
x
(2, 2) (4, 2)
This is the graph of a horizontal parabola (Figure 2.9). Now try Exercises 17 through 24
C. The Equation of a Circle Using the midpoint and distance formulas, we can develop the equation of another very important relation, that of a circle. As the name suggests, the midpoint of a line segment is located halfway between the endpoints. On a standard number line, the midpoint of the line segment with endpoints 1 and 5 is 3, but more important, note that 6 15 3. This 3 is the average distance (from zero) of 1 unit and 5 units: 2 2 observation can be extended to find the midpoint between any two points (x1, y1) and (x2, y2). We simply find the average distance between the x-coordinates and the average distance between the y-coordinates. The Midpoint Formula Given any line segment with endpoints P1 1x1, y1 2 and P2 1x2, y2 2 , the midpoint M is given by M: a
x1 x2 y1 y2 , b 2 2
The midpoint formula can be used in many different ways. Here we’ll use it to find the coordinates of the center of a circle.
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EXAMPLE 4
Using the Midpoint Formula The diameter of a circle has endpoints at P1 13, 22 and P2 15, 42 . Use the midpoint formula to find the coordinates of the center, then plot this point.
Solution
x1 x2 y1 y2 , b 2 2 3 5 2 4 , b M: a 2 2 2 2 M: a , b 11, 12 2 2
Midpoint: a
y 5
P2
(1, 1) 5
5
x
P1 5
The center is at (1, 1), which we graph directly on the diameter as shown. Now try Exercises 25 through 34
Figure 2.10 y
c
The Distance Formula
(x2, y2)
In addition to a line segment’s midpoint, we are often interested in the length of the segment. For any two points (x1, y1) and (x2, y2) not lying on a horizontal or vertical line, a right triangle can be formed as in Figure 2.10. Regardless of the triangle’s orientation, the length of side a (the horizontal segment or base of the triangle) will have length x2 x1 units, with side b (the vertical segment or height) having length y2 y1 units. From the Pythagorean theorem (Section R.6), we see that c2 a2 b2 corresponds to c2 1 x2 x1 2 2 1 y2 y1 2 2. By taking the square root of both sides we obtain the length of the hypotenuse, which is identical to the distance between these two points: c 21x2 x1 2 2 1y2 y1 2 2. The result is called the distance formula, although it’s most often written using d for distance, rather than c. Note the absolute value bars are dropped from the formula, since the square of any quantity is always nonnegative. This also means that either point can be used as the initial point in the computation.
b
x
a
(x1, y1)
(x2, y1)
P2
The Distance Formula
P1
Given any two points P1 1x1, y1 2 and P2 1x2, y2 2, the straight line distance between them is
b y2 y1
d
d 21x2 x1 2 2 1y2 y1 2 2
a x2 x1
EXAMPLE 5
Using the Distance Formula Use the distance formula to find the diameter of the circle from Example 4.
Solution
For 1x1, y1 2 13, 22 and 1x2, y2 2 15, 42, the distance formula gives d 21x2 x1 2 2 1y2 y1 2 2
2 3 5 132 4 2 34 122 4 2 282 62 1100 10
The diameter of the circle is 10 units long. Now try Exercises 35 through 38
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EXAMPLE 6
Determining if Three Points Form a Right Triangle Use the distance formula to determine if the following points are the vertices of a right triangle: (8, 1), (2, 9), and (10, 0)
Solution
We begin by finding the distance between each pair of points, then attempt to apply the Pythagorean theorem. For 1x1, y1 2 18, 12, 1x2, y2 2 12, 92 : For 1x2, y2 2 12, 92, 1x3, y3 2 110, 02 : d 21x2 x1 2 2 1y2 y1 2 2
2 3 2 182 4 2 19 12 2 262 82 1100 10
For 1x1, y1 2 18, 12, 1x3, y3 2 110, 02 : d 21x3 x1 2 2 1y3 y1 2 2
2 3 10 182 4 2 10 12 2 2182 112 2 1325 5 113
d 21x3 x2 2 2 1y3 y2 2 2
23 10 122 4 2 10 92 2
2122 192 2 1225 15
Using the unsimplified form, we clearly see that a 2 b 2 c 2 corresponds to 1 11002 2 1 12252 2 1 13252 2, a true statement. Yes, the triangle is a right triangle. Now try Exercises 39 through 44
A circle can be defined as the set of all points in a plane that are a fixed distance called the radius, from a fixed point called the center. Since the definition involves distance, we can construct the general equation of a circle using the distance formula. Assume the center has coordinates (h, k), and let (x, y) represent any point on the graph. Since the distance between these points is equal to the radius r, the distance formula yields: 21x h2 2 1y k2 2 r. Squaring both sides gives the equation of a circle in standard form: 1x h2 2 1y k2 2 r2. The Equation of a Circle A circle of radius r with center at (h, k) has the equation 1x h2 2 1y k2 2 r2 If h 0 and k 0, the circle is centered at (0, 0) and the graph is a central circle with equation x2 y2 r2. At other values for h or k, the center is at (h, k) with no change in the radius. Note that an open dot is used for the center, as it’s actually a point of reference and not a part of the actual graph.
y
Circle with center at (h, k) r
k
(x, y)
(h, k)
Central circle
(x h)2 (y k)2 r2 r
(x, y)
(0, 0)
h
x
x2 y2 r2
EXAMPLE 7
Finding the Equation of a Circle
Solution
Since the center is at (0, 1) we have h 0, k 1, and r 4. Using the standard form 1x h2 2 1y k2 2 r2 we obtain
Find the equation of a circle with center 10, 1) and radius 4. 1x 02 2 3y 112 4 2 42 x2 1y 12 2 16
substitute 0 for h, 1 for k, and 4 for r simplify
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The graph of x2 1y 12 2 16 is shown in the figure. y (0, 3) Circle
r4 (4, 1)
Center: (0, 1) x Radius: r 4 (4, 1) Diameter: 2r 8
(0, 1)
C. You’ve just learned how to develop the equation of a circle using the distance and midpoint formulas
(0, 5)
Now try Exercises 45 through 62
D. The Graph of a Circle The graph of a circle can be obtained by first identifying the coordinates of the center and the length of the radius from the equation in standard form. After plotting the center point, we count a distance of r units left and right of center in the horizontal direction, and up and down from center in the vertical direction, obtaining four points on the circle. Neatly graph a circle containing these four points.
EXAMPLE 8
Graphing a Circle
Solution
Comparing the given equation with the standard form, we find the center is at 12, 32 and the radius is r 213 3.5.
Graph the circle represented by 1x 22 2 1y 32 2 12. Clearly label the center and radius.
1x h2 2 1y k2 2 r2 ↓ ↓ ↓ 1x 22 2 1y 32 2 12 h 2 k 3 h2 k 3
standard form given equation
r2 12 r 112 2 13 3.5
radius must be positive
Plot the center (2, 3) and count approximately 3.5 units in the horizontal and vertical directions. Complete the circle by freehand drawing or using a compass. The graph shown is obtained. y Some coordinates are approximate
Circle (2, 0.5) x
r ~ 3.5 (1.5, 3)
(2, 3)
Center: (2, 3) Radius: r 23
Endpoints of horizontal diameter (5.5, 3) (2 23, 3) and (2 23, 3) Endpoints of vertical diameter (2, 3 23) and (2, 3 23)
(2, 6.5)
Now try Exercises 63 through 68
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Section 2.1 Rectangular Coordinates; Graphing Circles and Other Relations
In Example 8, note the equation is composed of binomial squares in both x and y. By expanding the binomials and collecting like terms, we can write the equation of the circle in the general form:
WORTHY OF NOTE After writing the equation in standard form, it is possible to end up with a constant that is zero or negative. In the first case, the graph is a single point. In the second case, no graph is possible since roots of the equation will be complex numbers. These are called degenerate cases. See Exercise 91.
EXAMPLE 9
1x 22 2 1y 32 2 12 x 4x 4 y2 6y 9 12 x2 y2 4x 6y 1 0 2
standard form expand binomials combine like terms—general form
For future reference, observe the general form contains a sum of second-degree terms in x and y, and that both terms have the same coefficient (in this case, “1”). Since this form of the equation was derived by squaring binomials, it seems reasonable to assume we can go back to the standard form by creating binomial squares in x and y. This is accomplished by completing the square.
Finding the Center and Radius of a Circle Find the center and radius of the circle with equation x2 y2 2x 4y 4 0. Then sketch its graph and label the center and radius.
Solution
To find the center and radius, we complete the square in both x and y. x2 y2 2x 4y 4 0 1x2 2x __ 2 1y2 4y __ 2 4 1x2 2x 12 1y2 4y 42 4 1 4 adds 1 to left side
given equation group x-terms and y-terms; add 4
complete each binomial square add 1 4 to right side
adds 4 to left side
1x 12 2 1y 22 2 9
factor and simplify
The center is at 11, 22 and the radius is r 19 3. (1, 5)
(4, 2)
y
r3 (1, 2)
(2, 2)
(1, 1)
Circle x Center: (1, 2) Radius: r 3
Now try Exercises 69 through 80
EXAMPLE 10
Applying the Equation of a Circle To aid in a study of nocturnal animals, some naturalists install a motion detector near a popular watering hole. The device has a range of 10 m in any direction. Assume the water hole has coordinates (0, 0) and the device is placed at (2, 1). a. Write the equation of the circle that models the maximum effective range of the device. b. Use the distance formula to determine if the device will detect a badger that is approaching the water and is now at coordinates (11, 5).
y 5
10
5
x
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CHAPTER 2 Relations, Functions, and Graphs
Solution
a. Since the device is at (2, 1) and the radius (or reach) of detection is 10 m, any movement in the interior of the circle defined by 1x 22 2 1y 12 2 102 will be detected. b. Using the points (2, 1) and (11, 5) in the distance formula yields: d 21x2 x1 2 2 1y2 y1 2 2
2111 22 35 112 4 2
29 142 181 16 197 9.85 2
D. You’ve just learned how to graph circles
2
distance formula 2
substitute given values simplify compute squares result
Since 9.85 6 10, the badger is within range of the device and will be detected. Now try Exercises 83 through 88
TECHNOLOGY HIGHLIGHT
The Graph of a Circle When using a graphing calculator to study circles, it is important to keep two things in mind. First, we must modify the equation of the circle before it can be graphed using this technology. Second, most standard viewing windows have the x- and y-values preset at 3 10, 10 4 even though the calculator screen is not square. This tends to compress the y-values and give a skewed image of the graph. Consider the relation x2 y2 25, which we know is the equation of a circle centered at (0, 0) with radius r 5. To enable the calculator to graph this relation, we must define it in two pieces by solving for y: x2 y 2 25 y 2 25 x2 y 225 x2
original equation isolate y 2
Figure 2.11 10
solve for y
Note that we can separate this result into two parts, 10 10 enabling the calculator to draw the circle: Y1 225 x2 gives the “upper half” of the circle, and Y2 225 x2 gives the “lower half.” Enter these on the Y = screen (note that Y2 Y1 can be used instead of reentering the entire 10 expression: VARS ENTER ). But if we graph Y1 and Y2 Figure 2.12 on the standard screen, the result appears more oval than 10 circular (Figure 2.11). One way to fix this is to use the ZOOM 5:ZSquare option, which places the tick marks equally spaced on both axes, instead of trying to force both to display points 15.2 15.2 from 10 to 10 (see Figure 2.12). Although it is a much improved graph, the circle does not appear “closed” as the calculator lacks sufficient pixels to show the proper curvature. A second alternative is to manually set a “friendly” window. 10 Using Xmin 9.4, Xmax 9.4, Ymin 6.2, and Ymax 6.2 will generate a better graph, which we can use to study the relation more closely. Note that we can jump between the upper and lower halves of the circle using the up or down arrows. Exercise 1: Graph the circle defined by x2 y2 36 using a friendly window, then use the TRACE feature to find the value of y when x 3.6. Now find the value of y when x 4.8. Explain why the values seem “interchangeable.” Exercise 2: Graph the circle defined by 1x 32 2 y2 16 using a friendly window, then use the feature to find the value of the y-intercepts. Show you get the same intercept by computation.
TRACE
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Section 2.1 Rectangular Coordinates; Graphing Circles and Other Relations
161
2.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. If a relation is defined by a set of ordered pairs, the domain is the set of all components, the range is the set of all components. 2. For the equation y x 5 and the ordered pair (x, y), x is referred to as the input or variable, while y is called the or dependent variable. 3. A circle is defined as the set of all points that are an equal distance, called the , from a given point, called the .
4. For x2 y2 25, the center of the circle is at and the length of the radius is units. The graph is called a circle. 5. Discuss/Explain how to find the center and radius of the circle defined by the equation x2 y2 6x 7. How would this circle differ from the one defined by x2 y2 6y 7? 6. In Example 3b we graphed the semicircle defined by y 29 x2. Discuss how you would obtain the equation of the full circle from this equation, and how the two equations are related.
DEVELOPING YOUR SKILLS
Represent each relation in mapping notation, then state the domain and range.
GPA
7.
4.00 3.75 3.50 3.25 3.00 2.75 2.50 2.25 2.00 0
2 13. y x 1 3 x
1
2
3
4
5
Year in college
Efficiency rating
8.
95 90 85 80 75 70 65 60 55 0
Complete each table using the given equation. For Exercises 15 and 16, each input may correspond to two outputs (be sure to find both if they exist). Use these points to graph the relation.
2
3
4
5
6
Month
State the domain and range of each relation.
9. {(1, 2), (3, 4), (5, 6), (7, 8), (9, 10)} 10. {(2, 4), (3, 5), (1, 3), (4, 5), (2, 3)} 11. {(4, 0), (1, 5), (2, 4), (4, 2), (3, 3)} 12. {(1, 1), (0, 4), (2, 5), (3, 4), (2, 3)}
x
6
8
3
4
0
0
3
4
y
6
8
8
10
15. x 2 y
16. y 1 x
x
1
y
5 14. y x 3 4
y
x
2
0
0
1
1
3
3
5
6
6
7
7
y
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17. y x2 1 x
18. y x2 3 x
y
2
2
1
0
0
2
1
3
2
4
3
19. y 225 x2 x
x
y
4
12
3
5
0
0
2
3
3
5
4
12
21. x 1 y x
y
2
5
3
4
4
2
5
1.25
6
1
11
23. y 2x 1 3
x
y
54321 1 2 3 4 5
1 2 3 4 5 x
1 2 3 4 5 x
33.
y 5 4 3 2 1
34.
1 2 3 4 5 x
y 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
36. Use the distance formula to find the length of the line segment in Exercise 32.
y
37. Use the distance formula to find the length of the diameter for the circle in Exercise 33. 38. Use the distance formula to find the length of the diameter for the circle in Exercise 34.
24. y 1x 12 x
5 4 3 2 1
35. Use the distance formula to find the length of the line segment in Exercise 31.
22. y 2 x x
y
32.
Find the center of each circle with the diameter shown.
54321 1 2 3 4 5
2
10
y 5 4 3 2 1 54321 1 2 3 4 5
20. y 2169 x2
y
2
31.
y
3
Find the midpoint of each segment.
3
y
In Exercises 39 to 44, three points that form the vertices of a triangle are given. Use the distance formula to determine if any of the triangles are right triangles.
39. (5, 2), (0, 3), (4, 4)
9
2
2
1
1
0
41. (4, 3), (7, 1), (3, 2)
0
1
4
2
42. (3, 7), (2, 2), (5, 5)
7
3
40. (7, 0), (1, 0), (7, 4)
43. (3, 2), (1, 5), (6, 4) 44. (0, 0), (5, 2), (2, 5)
Find the midpoint of each segment with the given endpoints.
25. (1, 8), (5, 6)
26. (5, 6), (6, 8)
27. (4.5, 9.2), (3.1, 9.8) 28. (5.2, 7.1), (6.3, 7.1) 3 1 2 1 3 1 3 5 29. a , b, a , b 30. a , b, a , b 5 3 10 4 4 3 8 6
Find the equation of a circle satisfying the conditions given, then sketch its graph.
45. center (0, 0), radius 3 46. center (0, 0), radius 6 47. center (5, 0), radius 13 48. center (0, 4), radius 15 49. center (4, 3), radius 2 50. center (3, 8), radius 9 51. center (7, 4), radius 17
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52. center (2, 5), radius 16 53. center (1, 2), diameter 6 54. center (2, 3), diameter 10 55. center (4, 5), diameter 4 13
67. 1x 42 2 y2 81
68. x2 1y 32 2 49 Write each equation in standard form to find the center and radius of the circle. Then sketch the graph.
56. center (5, 1), diameter 4 15
69. x2 y2 10x 12y 4 0
57. center at (7, 1), graph contains the point (1, 7)
70. x2 y2 6x 8y 6 0
58. center at (8, 3), graph contains the point (3, 15)
71. x2 y2 10x 4y 4 0
59. center at (3, 4), graph contains the point (7, 9)
72. x2 y2 6x 4y 12 0
60. center at (5, 2), graph contains the point (1, 3)
73. x2 y2 6y 5 0
61. diameter has endpoints (5, 1) and (5, 7)
74. x2 y2 8x 12 0
62. diameter has endpoints (2, 3) and (8, 3)
75. x2 y2 4x 10y 18 0
Identify the center and radius of each circle, then graph. Also state the domain and range of the relation.
63. 1x 22 2 1y 32 2 4 64. 1x 52 2 1y 12 2 9
65. 1x 12 2 1y 22 2 12 66. 1x 72 2 1y 42 2 20
76. x2 y2 8x 14y 47 0 77. x2 y2 14x 12 0 78. x2 y2 22y 5 0 79. 2x2 2y2 12x 20y 4 0 80. 3x2 3y2 24x 18y 3 0
WORKING WITH FORMULAS
81. Spending on Internet media: s 12.5t 59 The data from Example 1 is closely modeled by the formula shown, where t represents the year (t 0 corresponds to the year 2000) and s represents the average amount spent per person, per year in the United States. (a) List five ordered pairs for this relation using t 1, 2, 3, 5, 7. Does the model give a good approximation of the actual data? (b) According to the model, what will be the average amount spent on Internet media in the year 2008? (c) According to the model, in what year will annual spending surpass $196? (d) Use the table to graph this relation.
163
Section 2.1 Rectangular Coordinates; Graphing Circles and Other Relations
82. Area of an inscribed square: A 2r2 The area of a square inscribed in a circle is found by using the formula given where r is the radius of the circle. Find the area of the inscribed square shown.
y
(5, 0) x
APPLICATIONS
83. Radar detection: A luxury liner is located at map coordinates (5, 12) and has a radar system with a range of 25 nautical miles in any direction. (a) Write the equation of the circle that models the range of the ship’s radar, and (b) Use the distance formula to determine if the radar can pick up the liner’s sister ship located at coordinates (15, 36).
84. Earthquake range: The epicenter (point of origin) of a large earthquake was located at map coordinates (3, 7), with the quake being felt up to 12 mi away. (a) Write the equation of the circle that models the range of the earthquake’s effect. (b) Use the distance formula to determine if a person living at coordinates (13, 1) would have felt the quake.
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CHAPTER 2 Relations, Functions, and Graphs
85. Inscribed circle: Find the equation for both the red and blue circles, then find the area of the region shaded in blue.
y
(2, 0) x
87. Radio broadcast range: Two radio stations may not use the same frequency if their broadcast areas overlap. Suppose station KXRQ has a broadcast area bounded by x2 y2 8x 6y 0 and WLRT has a broadcast area bounded by x2 y2 10x 4y 0. Graph the circle representing each broadcast area on the same grid to determine if both stations may broadcast on the same frequency.
y (3, 4)
x
88. Radio broadcast range: The emergency radio broadcast system is designed to alert the population by relaying an emergency signal to all points of the country. A signal is sent from a station whose broadcast area is bounded by x2 y2 2500 (x and y in miles) and the signal is picked up and relayed by a transmitter with range 1x 202 2 1y 302 2 900. Graph the circle representing each broadcast area on the same grid to determine the greatest distance from the original station that this signal can be received. Be sure to scale the axes appropriately.
EXTENDING THE THOUGHT
89. Although we use the word “domain” extensively in mathematics, it is also commonly seen in literature and heard in everyday conversation. Using a collegelevel dictionary, look up and write out the various meanings of the word, noting how closely the definitions given are related to its mathematical use. 90. Consider the following statement, then determine whether it is true or false and discuss why. A graph will exhibit some form of symmetry if, given a point that is h units from the x-axis, k units from the y-axis, and d units from the origin, there is a second point
86. Inscribed triangle: The area of an equilateral triangle inscribed in a circle is given 3 13 2 r, by the formula A 4 where r is the radius of the circle. Find the area of the equilateral triangle shown.
on the graph that is a like distance from the origin and each axis. 91. When completing the square to find the center and radius of a circle, we sometimes encounter a value for r2 that is negative or zero. These are called degenerate cases. If r2 6 0, no circle is possible, while if r2 0, the “graph” of the circle is simply the point (h, k). Find the center and radius of the following circles (if possible). a. x2 y2 12x 4y 40 0 b. x2 y2 2x 8y 8 0 c. x2 y2 6x 10y 35 0
MAINTAINING YOUR SKILLS
92. (1.3) Solve the absolute value inequality and write the solution in interval notation. w 2 1 5 3 4 6 93. (R.1) Give an example of each of the following: a. a whole number that is not a natural number b. a natural number that is not a whole number c. a rational number that is not an integer
d. an integer that is not a rational number e. a rational number that is not a real number f. a real number that is not a rational number. 94. (1.5) Solve x2 13 6x using the quadratic equation. Simplify the result. 95. (1.6) Solve 1 1n 3 n and check solutions by substitution. If a solution is extraneous, so state.
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College Algebra—
2.2 Graphs of Linear Equations In preparation for sketching graphs of other relations, we’ll first consider the characteristics of linear graphs. While linear graphs are fairly simple models, they have many substantive and meaningful applications. Figure 2.13 For instance, most of us are aware that 155 ($145) music and video downloads have been 145 increasing in popularity since they were 135 first introduced. A close look at Example 1 ($123) 125 of Section 2.1 reveals that spending on 115 music downloads and Internet radio 105 ($98) increased from $69 per person per year in 95 ($85) 2001 to $145 in 2007 (Figure 2.13). 85 From an investor’s or a producer’s point 75 ($69) of view, there is a very high interest in the 65 questions, How fast are sales increasing? 3 5 1 2 7 Can this relationship be modeled matheYear (1 → 2001) matically to help predict sales in future years? Answers to these and other ques- Source: 2006 SAUS tions are precisely what our study in this section is all about.
Learning Objectives In Section 2.2 you will learn how to:
A. Graph linear equations using the intercept method
Consumer spending (dollars per year)
B. Find the slope of a line C. Graph horizontal and vertical lines
D. Identify parallel and perpendicular lines
E. Apply linear equations in context
A. The Graph of a Linear Equation A linear equation can be identified using these three tests: (1) the exponent on any variable is one, (2) no variable occurs in a denominator, and (3) no two variables are multiplied together. The equation 3y 9 is a linear equation in one variable, while 2x 3y 12 and y 32 x 4 are linear equations in two variables. In general, we have the following definition: Linear Equations A linear equation is one that can be written in the form ax by c where a and b are not simultaneously zero. The most basic method for graphing a line is to simply plot a few points, then draw a straight line through the points. EXAMPLE 1
Graphing a Linear Equation in Two Variables Graph the equation 3x 2y 4 by plotting points.
Solution
WORTHY OF NOTE If you cannot draw a straight line through the plotted points, a computational error has been made. All points satisfying a linear equation lie on a straight line.
y
Selecting x 2, x 0, x 1, and x 4 as inputs, we compute the related outputs and enter the ordered pairs in a table. The result is x input 2
y output
(2, 5)
0
2
(0, 2)
1
0.5
(1, 12 )
4
5
(0, 2) (1, q)
(x, y) ordered pairs
5
4
(2, 5)
(4, 4)
5
5
(4, 4) 5
Now try Exercises 7 through 12 2-15
x
165
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CHAPTER 2 Relations, Functions, and Graphs
Note the line in Example 1 crosses the y-axis at (0, 2), and this point is called the y-intercept of the line. In general, y-intercepts have the form (0, y). Although difficult to see graphically, substituting 0 for y and solving for x shows the line crosses the x-axis at (43 , 0) and this point is called the x-intercept. In general, x-intercepts have the form (x, 0). The x- and y-intercepts are usually easier to calculate than other points (since y 0 or x 0, respectively) and we often graph linear equations using only these two points. This is called the intercept method for graphing linear equations. The Intercept Method 1. Substitute 0 for x and solve for y. This will give the y-intercept (0, y). 2. Substitute 0 for y and solve for x. This will give the x-intercept (x, 0). 3. Plot the intercepts and use them to graph a straight line. EXAMPLE 2
Graphing Lines Using the Intercept Method Graph 3x 2y 9 using the intercept method.
Solution
Substitute 0 for x (y-intercept) 3102 2y 9 2y 9 9 y 2 9 a0, b 2
Substitute 0 for y (x-intercept) 3x 2102 9 3x 9 x3 13, 02
5
y 3x 2y 9
冢0, t 冣
(3, 0) 5
A. You’ve just learned how to graph linear equations using the intercept method
5
x
5
Now try Exercises 13 through 32
B. The Slope of a Line After the x- and y-intercepts, we next consider the slope of a line. We see applications of the concept in many diverse occupations, including the grade of a highway (trucking), the pitch of a roof (carpentry), the climb of an airplane Figure 2.14 (flying), the drainage of a field (landscaping), and y the slope of a mountain (parks and recreation). y (x2, y2) 2 While the general concept is an intuitive one, we seek to quantify the concept (assign it a numeric y2 y1 value) for purposes of comparison and decision rise making. In each of the preceding examples, slope is a measure of “steepness,” as defined by the ratio (x1, y1) vertical change horizontal change . Using a line segment through y1 arbitrary points P1 1x1, y1 2 and P2 1x2, y2 2 , we x2 x1 run can create the right triangle shown in Figure 2.14. x The figure illustrates that the vertical change or the x2 x1
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College Algebra—
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Section 2.2 Graphs of Linear Equations
change in y (also called the rise) is simply the difference in y-coordinates: y2 y1. The horizontal change or change in x (also called the run) is the difference in x-coordinates: x2 x1. In algebra, we typically use the letter “m” to represent slope, y y change in y 1 giving m x22 x1 as the change in x . The result is called the slope formula.
WORTHY OF NOTE While the original reason that “m” was chosen for slope is uncertain, some have speculated that it was because in French, the verb for “to climb” is monter. Others say it could be due to the “modulus of slope,” the word modulus meaning a numeric measure of a given property, in this case the inclination of a line.
EXAMPLE 3
167
The Slope Formula Given two points P1 1x1, y1 2 and P2 1x2, y2 2 , the slope of any nonvertical line through P1 and P2 is y2 y1 m x2 x1 where x2 x1.
Using the Slope Formula Find the slope of the line through the given points. a. (2, 1) and (8, 4) b. (2, 6) and (4, 2)
Solution
a. For P1 12, 12 and P2 18, 42 , y2 y1 m x2 x1 41 82 3 1 6 2 The slope of this line is 12.
b. For P1 12, 62 and P2 14, 22, y2 y1 m x2 x1 26 4 122 4 2 6 3 The slope of this line is 2 3 . Now try Exercises 33 through 40
CAUTION
When using the slope formula, try to avoid these common errors. 1. The order that the x- and y-coordinates are subtracted must be consistent, since
y y 2 1 x2 x1
y y
x21
1
x2 .
2. The vertical change (involving the y-values) always occurs in the numerator: y y 2 1 x2 x1
x x
y22
1
y1 .
3. When x1 or y1 is negative, use parentheses when substituting into the formula to prevent confusing the negative sign with the subtraction operation.
Actually, the slope value does much more than quantify the slope of a line, it expresses a rate of change between the quantities measured along each axis. In applichange in y ¢y cations of slope, the ratio change in x is symbolized as ¢x . The symbol ¢ is the Greek letter delta and has come to represent a change in some quantity, and the notation ¢y m ¢x is read, “slope is equal to the change in y over the change in x.” Interpreting slope as a rate of change has many significant applications in college algebra and beyond.
EXAMPLE 4
Interpreting the Slope Formula as a Rate of Change Jimmy works on the assembly line for an auto parts remanufacturing company. By 9:00 A.M. his group has assembled 29 carburetors. By 12:00 noon, they have completed 87 carburetors. Assuming the relationship is linear, find the slope of the line and discuss its meaning in this context.
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Solution
First write the information as ordered pairs using c to represent the carburetors assembled and t to represent time. This gives 1t1, c1 2 19, 292 and 1t2, c2 2 112, 872. The slope formula then gives: c2 c1 ¢c 87 29 ¢t t2 t1 12 9 58 or 19.3 3
WORTHY OF NOTE Actually, the assignment of (t1, c1) to (9, 29) and (t2, c2) to (12, 87) was arbitrary. The slope ratio will be the same as long as the order of subtraction is the same. In other words, if we reverse this assignment and use 1t1, c1 2 112, 872 and 1t2, c2 2 19, 292 , we have 87 58 58 m 29 9 12 3 3 .
assembled Here the slope ratio measures carburetors , and we see that Jimmy’s group can hours assemble 58 carburetors every 3 hr, or about 1913 carburetors per hour.
Now try Exercises 41 through 44
Positive and Negative Slope If you’ve ever traveled by air, you’ve likely heard the announcement, “Ladies and gentlemen, please return to your seats and fasten your seat belts as we begin our descent.” For a time, the descent of the airplane follows a linear path, but now the slope of the line is negative since the altitude of the plane is decreasing. Positive and negative slopes, as well as the rate of change they represent, are important characteristics of linear graphs. In Example 3a, the slope was a positive number (m 7 0) and the line will slope upward from left to right since the y-values are increasing. If m 6 0, the slope of the line is negative and the line slopes downward as you move left to right since y-values are decreasing.
m 0, positive slope y-values increase from left to right
EXAMPLE 5
m 0, negative slope y-values decrease from left to right
Applying Slope to Changes in Altitude At a horizontal distance of 10 mi after take-off, an airline pilot receives instructions to decrease altitude from their current level of 20,000 ft. A short time later, they are 17.5 mi from the airport at an altitude of 10,000 ft. Find the slope ratio for the descent of the plane and discuss its meaning in this context. Recall that 1 mi 5280 ft.
Solution
Let a represent the altitude of the plane and d its horizontal distance from the airport. Converting all measures to feet, we have 1d1, a1 2 152,800, 20,0002 and 1d2, a2 2 192,400, 10,0002 , giving a2 a1 10,000 20,000 ¢a ¢d d2 d1 92,400 52,800 10,000 25 39,600 99
B. You’ve just learned how to find the slope of a line
¢altitude Since this slope ratio measures ¢distance , we note the plane decreased 25 ft in altitude for every 99 ft it traveled horizontally.
Now try Exercises 45 through 48
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169
Section 2.2 Graphs of Linear Equations
C. Horizontal Lines and Vertical Lines Horizontal and vertical lines have a number of important applications, from finding the boundaries of a given graph, to performing certain tests on nonlinear graphs. To better understand them, consider that in one dimension, the graph of x 2 is a single point (Figure 2.15), indicating a location on Figure 2.15 the number line 2 units from zero in the posx2 itive direction. In two dimensions, the equation x 2 represents all points with an 5 4 3 2 1 0 1 2 3 4 5 x-coordinate of 2. A few of these are graphed in Figure 2.16, but since there are an infinite number, we end up with a solid vertical line whose equation is x 2 (Figure 2.17). Figure 2.16
Figure 2.17
y 5
y (2, 5)
5
x2
(2, 3) (2, 1) 5
(2, 1)
5
x
5
5
x
(2, 3) 5
The same idea can be applied to horizontal lines. In two dimensions, the equation y 4 represents all points with a y-coordinate of positive 4, and there are an infinite number of these as well. The result is a solid horizontal line whose equation is y 4. See Exercises 49–54.
WORTHY OF NOTE If we write the equation x 2 in the form ax by c, the equation becomes x 0y 2, since the original equation has no y-variable. Notice that regardless of the value chosen for y, x will always be 2 and we end up with the set of ordered pairs (2, y), which gives us a vertical line.
EXAMPLE 6
5
Vertical Lines
Horizontal Lines
The equation of a vertical line is
The equation of a horizontal line is
xh
yk
where (h, 0) is the x-intercept.
where (0, k) is the y-intercept.
So far, the slope formula has only been applied to lines that were nonhorizontal or nonvertical. So what is the slope of a horizontal line? On an intuitive level, we expect that a perfectly level highway would have an incline or slope of zero. In general, for any two points on a horizontal line, y2 y1 and y2 y1 0, giving a slope of m x2 0 x1 0. For any two points on a vertical line, x2 x1 and x2 x1 0, making y y the slope ratio undefined: m 2 0 1.
The Slope of a Vertical Line
The Slope of a Horizontal Line
The slope of any vertical line is undefined.
The slope of any horizontal line is zero.
Calculating Slopes The federal minimum wage remained constant from 1997 through 2006. However, the buying power (in 1996 dollars) of these wage earners fell each year due to inflation (see Table 2.3). This decrease in buying power is approximated by the red line shown.
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a. Using the data or graph, find the slope of the line segment representing the minimum wage. b. Select two points on the line representing buying power to approximate the slope of the line segment, and explain what it means in this context. Table 2.3
Solution
WORTHY OF NOTE In the context of lines, try to avoid saying that a horizontal line has “no slope,” since it’s unclear whether a slope of zero or an undefined slope is intended.
C. You’ve just learned how to graph horizontal and vertical lines
5.15
Minimum wage w
Buying power p
1997
5.15
5.03
1998
5.15
4.96
1999
5.15
4.85
2000
5.15
4.69
2001
5.15
4.56
2002
5.15
4.49
4.15
2003
5.15
4.39
4.05
2004
5.15
4.28
2005
5.15
4.14
2006
5.15
4.04
5.05 4.95 4.85 4.75 4.65 4.55 4.45 4.35 4.25
19
97 19 98 19 9 20 9 00 20 01 20 02 20 03 20 04 20 0 20 5 06
Wages/Buying power
Time t (years)
Time in years
a. Since the minimum wage did not increase or decrease from 1997 to 2006, the line segment has slope m 0. b. The points (1997, 5.03) and (2006, 4.04) from the table appear to be on or close to the line drawn. For buying power p and time t, the slope formula yields: p2 p1 ¢p ¢t t2 t1 4.04 5.03 2006 1997 0.99 0.11 9 1 The buying power of a minimum wage worker decreased by 11¢ per year during this time period. Now try Exercises 55 and 56
D. Parallel and Perpendicular Lines Two lines in the same plane that never intersect are called parallel lines. When we place these lines on the coordinate grid, we find that “never intersect” is equivalent to saying “the lines have equal slopes but different y-intercepts.” In Figure 2.18, notice the rise ¢y and run of each line is identical, and that by counting ¢x both lines have slope m 34. y
Figure 2.18
5
Generic plane L 1
Run L2
L1 Run
Rise
L2
Rise
5
5
5
Coordinate plane
x
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171
Section 2.2 Graphs of Linear Equations
Parallel Lines Given L1 and L2 are distinct, nonvertical lines with slopes of m1 and m2, respectively. 1. If m1 m2, then L1 is parallel to L2. 2. If L1 is parallel to L2, then m1 m2. In symbols we write L1 7 L2. Any two vertical lines (undefined slope) are parallel. EXAMPLE 7A
Determining Whether Two Lines Are Parallel Teladango Park has been mapped out on a rectangular coordinate system, with a ranger station at (0, 0). BJ and Kapi are at coordinates 124, 182 and have set a direct course for the pond at (11, 10). Dave and Becky are at (27, 1) and are heading straight to the lookout tower at (2, 21). Are they hiking on parallel or nonparallel courses?
Solution
To respond, we compute the slope of each trek across the park. For BJ and Kapi: For Dave and Becky: y2 y1 x2 x1 10 1182 11 1242 28 4 35 5
m
y2 y1 x2 x1 21 1 2 1272 20 4 25 5
m
Since the slopes are equal, the couples are hiking on parallel courses.
Two lines in the same plane that intersect at right angles are called perpendicular lines. Using the coordinate grid, we note that intersect at right angles suggests that their 4 rise slopes are negative reciprocals. From Figure 2.19, the ratio rise run for L1 is 3 , the ratio run 3 for L2 is 4 . Alternatively, we can say their slopes have a product of 1, since m1 # m2 1 implies m1 m12. Figure 2.19
Generic plane
y
L1
5
L1
Run Rise
Rise Run 5
L2
WORTHY OF NOTE Since m1 # m2 1 implies m1 m12, we can easily find the slope of a line perpendicular to a second line whose slope is given—just find the reciprocal and make it 3 negative. For m1 7 7 m2 3, and for m1 5, m2 15.
5
x
L2 5
Coordinate plane
Perpendicular Lines Given L1 and L2 are distinct, nonvertical lines with slopes of m1 and m2, respectively. 1. If m1 # m2 1, then L1 is perpendicular to L2. 2. If L1 is perpendicular to L2, then m1 # m2 1. In symbols we write L1 L2. Any vertical line (undefined slope) is perpendicular to any horizontal line (slope m 0).
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CHAPTER 2 Relations, Functions, and Graphs
EXAMPLE 7B
Determining Whether Two Lines Are Perpendicular
Solution
For a right triangle to be formed, two of the lines through these points must be perpendicular (forming a right angle). From Figure 2.20, it appears a right triangle is formed, but we must verify that two of the sides are perpendicular. Using the slope formula, we have:
The three points P1 15, 12, P2 13, 22 , and P3 13, 22 form the vertices of a triangle. Use these points to draw the triangle, then use the slope formula to determine if they form a right triangle.
For P1 and P2 2 1 35 3 3 2 2
m1
Figure 2.20 y 5
P1
P3
For P1 and P3
5
x
5
P2
21 3 5 1 8
m2
5
For P2 and P3
2 122 3 3 2 4 6 3
m3 D. You’ve just learned how to identify parallel and perpendicular lines
Since m1 # m3 1, the triangle has a right angle and must be a right triangle.
Now try Exercises 57 through 68
E. Applications of Linear Equations The graph of a linear equation can be used to help solve many applied problems. If the numbers you’re working with are either very small or very large, scale the axes appropriately. This can be done by letting each tic mark represent a smaller or larger unit so the data points given will fit on the grid. Also, many applications use only nonnegative values and although points with negative coordinates may be used to graph a line, only ordered pairs in QI can be meaningfully interpreted.
EXAMPLE 8
Applying a Linear Equation Model—Commission Sales Use the information given to create a linear equation model in two variables, then graph the line and use the graph to answer the question: A salesperson gets a daily $20 meal allowance plus $7.50 for every item she sells. How many sales are needed for a daily income of $125?
Let x represent sales and y represent income. This gives verbal model: Daily income (y) equals $7.5 per sale 1x2 $20 for meals equation model: y 7.5x 20 Using x 0 and x 10, we find (0, 20) and (10, 95) are points on this graph. From the graph, we estimate that 14 sales are needed to generate a daily income of $125.00. Substituting x 14 into the equation verifies that (14, 125) is indeed on the graph:
y y 7.5x 20
150
Income
Solution
(10, 95)
100 50
(0, 20) 0
2
4
6
8 10 12 14 16
Sales
x
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Section 2.2 Graphs of Linear Equations
173
y 7.5x 20 7.51142 20 105 20 125 ✓
E. You’ve just learned how to apply linear equations in context
Now try Exercises 71 through 74
TECHNOLOGY HIGHLIGHT
Linear Equations, Window Size, and Friendly Windows To graph linear equations on the TI-84 Plus, we (1) solve the equation for the variable y, (2) enter the equation on the Y = screen, and (3) GRAPH the equation and adjust the WINDOW if necessary. 1. Solve the equation for y. For the equation 2x 3y 3, we have 2x 3y 3
Figure 2.21
given equation
3y 2x 3 2 y x1 3
subtract 2x from each side divide both sides by 3
2. Enter the equation on the Y = screen. On the Y = screen, enter 23 x 1. Note that for some calculators parentheses are needed to group 12 32x, to prevent the Figure 2.22 calculator from interpreting this term as 2 13x2. 10 3. GRAPH the equation, adjust the WINDOW . Since much of our work is centered at (0, 0) on the coordinate grid, the calculator’s default settings have a domain of x 3 10, 10 4 and a range of y 310, 10 4 , as shown in 10 10 Figure 2.21. This is referred to as the WINDOW size. To graph the line in this window, it is easiest to use the ZOOM key and select 6:ZStandard, which resets the window to these default 10 settings. The graph is shown in Figure 2.22. The Xscl and Yscl entries give the scale used on each axis, indicating that each “tic mark” represents 1 unit. Graphing calculators have many features that enable us to find ordered pairs on a line. One is the ( 2nd GRAPH ) (TABLE) feature we have seen previously. We can also use the calculator’s TRACE feature. As the name implies, this feature enables us to trace along the line by moving a blinking cursor using the left and right arrow keys. The calculator simultaneously displays the coordinates of the current location of the cursor. After pressing the TRACE button, the cursor appears automatically— usually at the y-intercept. Moving the cursor left and right, note the coordinates changing at the bottom of the screen. The point (3.4042553, 3.2695035) is on the line and satisfies the equation of the line. The calculator is displaying decimal values because the screen is exactly 95 pixels wide, 47 pixels to the left of the y-axis, and 47 pixels to the right. This means that each time you press the left or right arrow, the x-value changes by 1/47—which is not a nice round number. To TRACE through “friendlier” values, we can use the
ZOOM
4:ZDecimal feature, which sets Xmin 4.7
and Xmax 4.7, or 8:Zinteger, which sets Xmin 47 and Xmax 47. Press ZOOM 4:ZDecimal and the calculator will automatically regraph the line. Now when you TRACE the line, “friendly” decimal values are displayed. Exercise 1: Use the Y1 23 x 1.
ZOOM
4:ZDecimal and TRACE features to identify the x- and y-intercepts for
Exercise 2: Use the ZOOM 8:Zinteger and TRACE features to graph the line 79x 55y 869, then identify the x- and y-intercepts.
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CHAPTER 2 Relations, Functions, and Graphs
2.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. To find the x-intercept of a line, substitute for y and solve for x. To find the y-intercept, substitute for x and solve for y. 2. The slope formula is m , and indicates a rate of change between the x- and y-variables. 3. If m 6 0, the slope of the line is line slopes from left to right.
and the
4. The slope of a horizontal line is , the slope of a vertical line is , and the slopes of two parallel lines are . 5. Discuss/Explain If m1 2.1 and m2 2.01, will the lines intersect? If m1 23 and m2 23 , are the lines perpendicular? 6. Discuss/Explain the relationship between the slope formula, the Pythagorean theorem, and the distance formula. Include several illustrations.
DEVELOPING YOUR SKILLS
Create a table of values for each equation and sketch the graph.
7. 2x 3y 6 x
9. y x
8. 3x 5y 10 x
y
3 x4 2 y
10. y
y
5 x3 3 x
y
11. If you completed Exercise 9, verify that (3, 0.5) and (12, 19 4 ) also satisfy the equation given. Do these points appear to be on the graph you sketched? 12. If you completed Exercise 10, verify that 37 (1.5, 5.5) and 1 11 2 , 6 2 also satisfy the equation given. Do these points appear to be on the graph you sketched?
Graph the following equations using the intercept method. Plot a third point as a check.
13. 3x y 6
14. 2x y 12
15. 5y x 5
16. 4y x 8
17. 5x 2y 6
18. 3y 4x 9
19. 2x 5y 4
20. 6x 4y 8
21. 2x 3y 12 1 23. y x 2 25. y 25 50x 2 27. y x 2 5 29. 2y 3x 0
22. 3x 2y 6 2 24. y x 3 26. y 30 60x 3 28. y x 2 4 30. y 3x 0
31. 3y 4x 12
32. 2x 5y 8
Compute the slope of the line through the given points, ¢y then graph the line and use m ¢x to find two additional points on the line. Answers may vary.
33. (3, 5), (4, 6)
34. (2, 3), (5, 8)
35. (10, 3), (4, 5)
36. (3, 1), (0, 7)
37. (1, 8), (3, 7)
38. (5, 5), (0, 5)
39. (3, 6), (4, 2)
40. (2, 4), (3, 1)
41. The graph shown models the relationship between the cost of a new home and the size of the home in square feet. (a) Determine the slope of the line and
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175
Section 2.2 Graphs of Linear Equations
interpret what the slope ratio means in this context and (b) estimate the cost of a 3000 ft2 home. Exercise 41
Exercise 42 1200 960
Volume (m3)
Cost ($1000s)
500
250
720 480 240
0
1
2
3
4
5
0
ft2 (1000s)
50
100
Trucks
42. The graph shown models the relationship between the volume of garbage that is dumped in a landfill and the number of commercial garbage trucks that enter the site. (a) Determine the slope of the line and interpret what the slope ratio means in this context and (b) estimate the number of trucks entering the site daily if 1000 m3 of garbage is dumped per day. 43. The graph shown models the relationship between the distance of an aircraft carrier from its home port and the number of hours since departure. (a) Determine the slope of the line and interpret what the slope ratio means in this context and (b) estimate the distance from port after 8.25 hours. Exercise 43
Exercise 44
150
0
10
Hours
20
250
0
47. Sewer line slope: Fascinated at how quickly the plumber was working, Ryan watched with great interest as the new sewer line was laid from the house to the main line, a distance of 48 ft. At the edge of the house, the sewer line was six in. under ground. If the plumber tied in to the main line at a depth of 18 in., what is the slope of the (sewer) line? What does this slope indicate? 48. Slope (pitch) of a roof: A contractor goes to a lumber yard to purchase some trusses (the triangular frames) for the roof of a house. Many sizes are available, so the contractor takes some measurements to ensure the roof will have the desired slope. In one case, the height of the truss (base to ridge) was 4 ft, with a width of 24 ft (eave to eave). Find the slope of the roof if these trusses are used. What does this slope indicate? Graph each line using two or three ordered pairs that satisfy the equation.
500
Circuit boards
Distance (mi)
300
46. Rate of climb: Shortly after takeoff, a plane increases altitude at a constant (linear) rate. In 5 min the altitude is 10,000 feet. Fifteen minutes after takeoff, the plane has reached its cruising altitude of 32,000 ft. (a) Find the slope of the line and discuss its meaning in this context and (b) determine how long it takes the plane to climb from 12,200 feet to 25,400 feet.
5
10
Hours
44. The graph shown models the relationship between the number of circuit boards that have been assembled at a factory and the number of hours since starting time. (a) Determine the slope of the line and interpret what the slope ratio means in this context and (b) estimate how many hours the factory has been running if 225 circuit boards have been assembled. 45. Height and weight: While there are many exceptions, numerous studies have shown a close relationship between an average height and average weight. Suppose a person 70 in. tall weighs 165 lb, while a person 64 in. tall weighs 142 lb. Assuming the relationship is linear, (a) find the slope of the line and discuss its meaning in this context and (b) determine how many pounds are added for each inch of height.
49. x 3
50. y 4
51. x 2
52. y 2
Write the equation for each line L1 and L2 shown. Specifically state their point of intersection. y
53.
L1
54.
L1
L2
4 2 4
2
2 2 4
4
x
4
2
y 5 4 3 2 1 1 2 3 4 5
L2 2
4
x
55. The table given shows the total number of justices j sitting on the Supreme Court of the United States for selected time periods t (in decades), along with the number of nonmale, nonwhite justices n for the same years. (a) Use the data to graph the linear relationship between t and j, then determine the slope of the line and discuss its meaning in this context. (b) Use the data to graph the linear relationship between t and n, then determine the slope of the line and discuss its meaning.
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Exercise 55 Time t (1960 S 0)
Justices j
Nonwhite, nonmale n
0
9
0
10
9
1
20
9
2
30
9
3
40
9
4
50
9
5 (est)
56. The table shown gives the boiling temperature t of water as related to the altitude h. Use the data to graph the linear relationship between h and t, then determine the slope of the line and discuss its meaning in this context. Exercise 56 Altitude h (ft)
Boiling Temperature t (F)
Two points on L1 and two points on L2 are given. Use the slope formula to determine if lines L1 and L2 are parallel, perpendicular, or neither.
57. L1: (2, 0) and (0, 6) L2: (1, 8) and (0, 5)
58. L1: (1, 10) and (1, 7) L2: (0, 3) and (1, 5)
59. L1: (3, 4) and (0, 1) 60. L1: (6, 2) and (8, 2) L2: (5, 1) and (3, 0) L2: (0, 0) and (4, 4) 61. L1: (6, 3) and (8, 7) L2: (7, 2) and (6, 0)
62. L1: (5, 1) and (4, 4) L2: (4, 7) and (8, 10)
In Exercises 63 to 68, three points that form the vertices of a triangle are given. Use the points to draw the triangle, then use the slope formula to determine if any of the triangles are right triangles. Also see Exercises 39–44 in Section 2.1.
63. (5, 2), (0, 3), (4, 4) 64. (7, 0), (1, 0), (7, 4)
0
212.0
65. (4, 3), (7, 1), (3, 2)
1000
210.2
2000
208.4
66. (3, 7), (2, 2), (5, 5)
3000
206.6
67. (3, 2), (1, 5), (6, 4)
4000
204.8
68. (0, 0), (5, 2), (2, 5)
5000
203.0
6000
201.2
WORKING WITH FORMULAS
69. Human life expectancy: L 0.11T 74.2 The average number of years that human beings live has been steadily increasing over the years due to better living conditions and improved medical care. This relationship is modeled by the formula shown, where L is the average life expectancy and T is number of years since 1980. (a) What was the life expectancy in the year 2000? (b) In what year will average life expectancy reach 77.5 yr?
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CHAPTER 2 Relations, Functions, and Graphs
70. Interest earnings: I a
7 b(5000)T 100 If $5000 dollars is invested in an account paying 7% simple interest, the amount of interest earned is given by the formula shown, where I is the interest and T is the time in years. (a) How much interest is earned in 5 yr? (b) How much is earned in 10 yr? (c) Use the two points (5 yr, interest) and (10 yr, interest) to calculate the slope of this line. What do you notice?
APPLICATIONS
For exercises 71 to 74, use the information given to build a linear equation model, then use the equation to respond.
71. Business depreciation: A business purchases a copier for $8500 and anticipates it will depreciate in value $1250 per year. a. What is the copier’s value after 4 yr of use? b. How many years will it take for this copier’s value to decrease to $2250?
72. Baseball card value: After purchasing an autographed baseball card for $85, its value increases by $1.50 per year. a. What is the card’s value 7 yr after purchase? b. How many years will it take for this card’s value to reach $100? 73. Water level: During a long drought, the water level in a local lake decreased at a rate of 3 in. per month. The water level before the drought was 300 in.
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a. What was the water level after 9 months of drought? b. How many months will it take for the water level to decrease to 20 ft? 74. Gas mileage: When empty, a large dump-truck gets about 15 mi per gallon. It is estimated that for each 3 tons of cargo it hauls, gas mileage decreases by 34 mi per gallon. a. If 10 tons of cargo is being carried, what is the truck’s mileage? b. If the truck’s mileage is down to 10 mi per gallon, how much weight is it carrying? 75. Parallel/nonparallel roads: Aberville is 38 mi north and 12 mi west of Boschertown, with a straight road “farm and machinery road” (FM 1960) connecting the two cities. In the next county, Crownsburg is 30 mi north and 9.5 mi west of Dower, and these cities are likewise connected by a straight road (FM 830). If the two roads continued indefinitely in both directions, would they intersect at some point? 76. Perpendicular/nonperpendicular course headings: Two shrimp trawlers depart Charleston Harbor at the same time. One heads for the shrimping grounds located 12 mi north and 3 mi east of the harbor. The other heads for a point 2 mi south and 8 mi east of the harbor. Assuming the harbor is at (0, 0), are the routes of the trawlers perpendicular? If so, how far apart are the boats when they reach their destinations (to the nearest one-tenth mi)? 77. Cost of college: For the years 1980 to 2000, the cost of tuition and fees per semester (in constant dollars) at a public 4-yr college can be approximated by the equation y 144x 621, where y represents the cost in dollars and x 0
177
represents the year 1980. Use the equation to find: (a) the cost of tuition and fees in 2002 and (b) the year this cost will exceed $5250. Source: 2001 New York Times Almanac, p. 356
78. Female physicians: In 1960 only about 7% of physicians were female. Soon after, this percentage began to grow dramatically. For the years 1980 to 2002, the percentage of physicians that were female can be approximated by the equation y 0.72x 11, where y represents the percentage (as a whole number) and x 0 represents the year 1980. Use the equation to find: (a) the percentage of physicians that were female in 1992 and (b) the projected year this percentage will exceed 30%. Source: Data from the 2004 Statistical Abstract of the United States, Table 149
79. Decrease in smokers: For the years 1980 to 2002, the percentage of the U.S. adult population who were smokers can be approximated by the equation 7 x 32, where y represents the percentage y 15 of smokers (as a whole number) and x 0 represents 1980. Use the equation to find: (a) the percentage of adults who smoked in the year 2000 and (b) the year the percentage of smokers is projected to fall below 20%. Source: Statistical Abstract of the United States, various years
80. Temperature and cricket chirps: Biologists have found a strong relationship between temperature and the number of times a cricket chirps. This is modeled by the equation T N4 40, where N is the number of times the cricket chirps per minute and T is the temperature in Fahrenheit. Use the equation to find: (a) the outdoor temperature if the cricket is chirping 48 times per minute and (b) the number of times a cricket chirps if the temperature is 70°.
EXTENDING THE CONCEPT
81. If the lines 4y 2x 5 and 3y ax 2 are perpendicular, what is the value of a? 82. Let m1, m2, m3, and m4 be the slopes of lines L1, L2, L3, and L4, respectively. Which of the following statements is true? a. m4 6 m1 6 m3 6 m2 y L2 L1 b. m3 6 m2 6 m4 6 m1 L3 c. m3 6 m4 6 m2 6 m1 L4 x d. m1 6 m3 6 m4 6 m2 e. m1 6 m4 6 m3 6 m2 83. An arithmetic sequence is a sequence of numbers where each successive term is found by adding a
fixed constant, called the common difference d, to the preceding term. For instance 3, 7, 11, 15, . . . is an arithmetic sequence with d 4. The formula for the “nth term” tn of an arithmetic sequence is a linear equation of the form tn t1 1n 12d , where d is the common difference and t1 is the first term of the sequence. Use the equation to find the term specified for each sequence. a. 2, 9, 16, 23, 30, . . . ; 21st term b. 7, 4, 1, 2, 5, . . . ; 31st term c. 5.10, 5.25, 5.40, 5.55, . . . ; 27th term 9 d. 32, 94, 3, 15 4 , 2 , . . . ; 17th term
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MAINTAINING YOUR SKILLS
84. (1.1) Simplify the equation, then solve. Check your answer by substitution: 3x2 3 4x 6 4x2 31x 52
86. (1.1) How many gallons of a 35% brine solution must be mixed with 12 gal of a 55% brine solution in order to get a 45% solution?
85. (R.7) Identify the following formulas:
87. (1.1) Two boats leave the harbor at Lahaina, Maui, going in opposite directions. One travels at 15 mph and the other at 20 mph. How long until they are 70 mi apart?
P 2L 2W V r2h
V LWH C 2r
2.3 Linear Graphs and Rates of Change The concept of slope is an important part of mathematics, because it gives us a way to measure and compare change. The value of an automobile changes with time, the circumference of a circle increases as the radius increases, and the tension in a spring grows the more it is stretched. The real world is filled with examples of how one change affects another, and slope helps us understand how these changes are related.
Learning Objectives In Section 2.3 you will learn how to:
A. Write a linear equation in slope-intercept form
B. Use slope-intercept form to graph linear equations
A. Linear Equations and Slope-Intercept Form
C. Write a linear equation in point-slope form
D. Apply the slope-intercept form and point-slope form in context
EXAMPLE 1
In Section 1.1, formulas and literal equations were written in an alternate form by solving for an object variable. The new form made using the formula more efficient. Solving for y in equations of the form ax by c offers similar advantages to linear graphs and their applications. Solving for y in ax by c Solve 2y 6x 4 for y, then evaluate at x 4, x 0, and x 13.
Solution
2y 6x 4 2y 6x 4 y 3x 2
given equation add 6x divide by 2
Since the coefficients are integers, evaluate the function mentally. Inputs are multiplied by 3, then increased by 2, yielding the ordered pairs (4, 14), (0, 2), and 113, 12 . Now try Exercises 7 through 12
This form of the equation (where y has been written in terms of x) enables us to quickly identify what operations are performed on x in order to obtain y. For y 3x 2, multiply inputs by 3, then add 2.
EXAMPLE 2
Solving for y in ax by c Solve the linear equation 3y 2x 6 for y, then identify the new coefficient of x and the constant term.
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Solution
given equation add 2x divide by 3
The new coefficient of x is 23 and the constant term is 2.
WORTHY OF NOTE In Example 2, the final form can be written y 23x 2 as shown (inputs are multiplied by two-thirds, then increased by 2), or written 2x as y 2 (inputs are 3 multiplied by two, the result divided by 3 and this amount increased by 2). The two forms are equivalent.
EXAMPLE 3
3y 2x 6 3y 2x 6 2 y x2 3
Now try Exercises 13 through 18
When the coefficient of x is rational, it’s helpful to select inputs that are multiples of the denominator if the context or application requires us to evaluate the equation. This enables us to perform most operations mentally. For y 23x 2, possible inputs might be x 9, 6, 0, 3, 6, and so on. See Exercises 19 through 24. In Section 2.2, linear equations were graphed using the intercept method. When a linear equation is written with y in terms of x, we notice a powerful connection between the graph and its equation, and one that highlights the primary characteristics of a linear graph.
Noting Relationships between an Equation and Its Graph Find the intercepts of 4x 5y 20 and use them to graph the line. Then, a. Use the intercepts to calculate the slope of the line, then b. Write the equation with y in terms of x and compare the calculated slope and y-intercept to the equation in this form. Comment on what you notice.
Solution
A. You’ve just learned how to write a linear equation in slope-intercept form
Substituting 0 for x in 4x 5y 20, we find the y-intercept is 10, 42. Substituting 0 for y gives an x-intercept of 15, 02 . The graph is displayed here. ¢y , the slope is a. By calculation or counting ¢x 4 m 5. b. Solving for y: 4x 5y 20 5y 4x 20 4 y x4 5
y 5 4 3 2
(5, 0)
1
5 4 3 2 1 1
4
subtract 4x
2
3
4
5
x
2 3
given equation
1
(0, 4)
5
divide by 5
The slope value seems to be the coefficient of x, while the y-intercept is the constant term. Now try Exercises 25 through 30
B. Slope-Intercept Form and the Graph of a Line After solving a linear equation for y, an input of x 0 causes the “x-term” to become zero, so the y-intercept is automatically the constant term. As Example 3 illustrates, we can also identify the slope of the line—it is the coefficient of x. In general, a linear equation of the form y mx b is said to be in slope-intercept form, since the slope of the line is m and the y-intercept is (0, b). Slope-Intercept Form For a nonvertical line whose equation is y mx b, the slope of the line is m and the y-intercept is (0, b).
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EXAMPLE 4
Finding the Slope-Intercept Form Write each equation in slope-intercept form and identify the slope and y-intercept of each line. a. 3x 2y 9 b. y x 5 c. 2y x
Solution
a. 3x 2y 9
b. y x 5
2y 3x 9 3 9 y x 2 2 3 9 m ,b 2 2 9 y-intercept a0, b 2
y x 5 y 1x 5 m 1, b 5
c. 2y x x y 2 1 y x 2 1 m ,b0 2
y-intercept (0, 5)
y-intercept (0, 0)
Now try Exercises 31 through 38
If the slope and y-intercept of a linear equation are known or can be found, we can construct its equation by substituting these values directly into the slope-intercept form y mx b. EXAMPLE 5
y
Finding the Equation of a Line from Its Graph
5
Find the slope-intercept form of the line shown.
Solution
Using 13, 22 and 11, 22 in the slope formula, ¢y or by simply counting , the slope is m 42 or 21. ¢x By inspection we see the y-intercept is (0, 4). Substituting 21 for m and 4 for b in the slopeintercept form we obtain the equation y 2x 4.
5
5
x
5
Now try Exercises 39 through 44
Actually, if the slope is known and we have any point (x, y) on the line, we can still construct the equation since the given point must satisfy the equation of the line. In this case, we’re treating y mx b as a simple formula, solving for b after substituting known values for m, x, and y.
EXAMPLE 6
Using y mx b as a Formula
Solution
Using y mx b as a “formula,” we have m 45, x 5, and y 2.
Find the equation of a line that has slope m 45 and contains 15, 22. y mx b 2 45 152 b 2 4 b 6b
slope-intercept form substitute 45 for m, 5 for x, and 2 for y simplify solve for b
The equation of the line is y 45x 6. Now try Exercises 45 through 50
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Writing a linear equation in slope-intercept form enables us to draw its graph with a minimum of effort, since we can easily locate the y-intercept and a second point using ¢y ¢y 2 m . For instance, means count down 2 and right 3 from a known point. ¢x ¢x 3
EXAMPLE 7
Graphing a Line Using Slope-Intercept Form Write 3y 5x 9 in slope-intercept form, then graph the line using the y-intercept and slope.
Solution
3y 5x 9 3y 5x 9 y 53x 3
y fx 3 y
given equation
y f x
Rise 5
divide by 3
The slope is m and the y-intercept is (0, 3). ¢y 5 (up 5 and Plot the y-intercept, then use ¢x 3 right 3—shown in blue) to find another point on the line (shown in red). Finish by drawing a line through these points.
5 3
Noting the fraction is equal to 5 3 , we could also begin at ¢y 5 (0, 3) and count ¢x 3 (down 5 and left 3) to find an additional point on the line: (3, 2). Also, for any ¢y a negative slope , ¢x b a a a note . b b b
(3, 8)
isolate y term
5 3
WORTHY OF NOTE
Run 3
(0, 3)
5
5
x
2
Now try Exercises 51 through 62
For a discussion of what graphing method might be most efficient for a given linear equation, see Exercises 103 and 115.
Parallel and Perpendicular Lines From Section 2.2 we know parallel lines have equal slopes: m1 m2, and perpendicular 1 lines have slopes with a product of 1: m1 # m2 1 or m1 . In some applim2 cations, we need to find the equation of a second line parallel or perpendicular to a given line, through a given point. Using the slope-intercept form makes this a simple four-step process. Finding the Equation of a Line Parallel or Perpendicular to a Given Line 1. Identify the slope m1 of the given line. 2. Find the slope m2 of the new line using the parallel or perpendicular relationship. 3. Use m2 with the point (x, y) in the “formula” y mx b and solve for b. 4. The desired equation will be y m2x b.
EXAMPLE 8
Finding the Equation of a Parallel Line
Solution
Begin by writing the equation in slope-intercept form to identify the slope.
Find the equation of a line that goes through 16, 12 and is parallel to 2x 3y 6. 2x 3y 6 3y 2x 6 y 2 3 x 2
given line isolate y term result
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The original line has slope m1 2 3 and this will also be the slope of any line 1x, y2 S 16, 12 we have parallel to it. Using m2 2 with 3 y mx b 2 1 162 b 3 1 4 b 5 b
The equation of the new line is y
slope-intercept form substitute 2 3 for m, 6 for x, and 1 for y simplify solve for b 2 3 x
5. Now try Exercises 63 through 76
GRAPHICAL SUPPORT Graphing the lines from Example 8 as Y1 and Y2 on a graphing calculator, we note the lines do appear to be parallel (they actually must be since they have identical slopes). Using the ZOOM 8:ZInteger feature of the TI-84 Plus we can quickly verify that Y2 indeed contains the point (6, 1).
31
⫺47
47
⫺31
For any nonlinear graph, a straight line drawn through two points on the graph is called a secant line. The slope of the secant line, and lines parallel and perpendicular to this line, play fundamental roles in the further development of the rate-of-change concept.
EXAMPLE 9
Finding Equations for Parallel and Perpendicular Lines A secant line is drawn using the points (4, 0) and (2, 2) on the graph of the function shown. Find the equation of a line that is: a. parallel to the secant line through (1, 4) b. perpendicular to the secant line through (1, 4).
Solution
Either by using the slope formula or counting m
WORTHY OF NOTE The word “secant” comes from the Latin word secare, meaning “to cut.” Hence a secant line is one that cuts through a graph, as opposed to a tangent line, which touches the graph at only one point.
¢y , we find the secant line has slope ¢x
1 2 . 6 3
a. For the parallel line through (1, 4), m2 y mx b 1 4 112 b 3 1 12 b 3 3 13 b 3
1 . 3
y 5
slope-intercept form substitute 1 3 for m, 1 for x, and 4 for y
⫺5
5
simplify
result
The equation of the parallel line (in blue) is y
(⫺1, ⫺4)
13 1 x . 3 3
⫺5
x
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b. For the line perpendicular through (1, 4), m2 3. y mx b 4 3112 b 4 3 b 1 b B. You’ve just learned how to use the slope-intercept form to graph linear equations
y 5
slope-intercept form substitute 3 for m, 1 for x, and 4 for y simplify
5
5
x
result
The equation of the perpendicular line (in yellow) is y 3x 1.
(1, 4)
5
Now try Exercises 77 through 82
C. Linear Equations in Point-Slope Form As an alternative to using y mx b, we can find the equation of the line using the y2 y1 m, and the fact that the slope of a line is constant. For a given slope formula x2 x1 slope m, we can let (x1, y1) represent a given point on the line and (x, y) represent any y y1 m. Isolating the “y” terms other point on the line, and the formula becomes x x1 on one side gives a new form for the equation of a line, called the point-slope form: y y1 m x x1 1x x1 2 y y1 a b m1x x1 2 x x1 1 y y1 m1x x1 2
slope formula multiply both sides by 1x x1 2 simplify S point-slope form
The Point-Slope Form of a Linear Equation For a nonvertical line whose equation is y y1 m1x x1 2 , the slope of the line is m and (x1, y1) is a point on the line. While using y mx b as in Example 6 may appear to be easier, both the y-intercept form and point-slope form have their own advantages and it will help to be familiar with both.
EXAMPLE 10
Using y y1 m1x x1 2 as a Formula
Find the equation of a line in point-slope form, if m 23 and (3, 3) is on the line. Then graph the line. Solution
C. You’ve just learned how to write a linear equation in point-slope form
y y1 m1x x1 2 2 y 132 3 x 132 4 3 2 y 3 1x 32 3
y y 3 s (x 3)
point-slope form
5
substitute 23 for m; (3, 3) for (x1, y1) simplify, point-slope form
¢y 2 to To graph the line, plot (3, 3) and use ¢x 3 find additional points on the line.
x3
5
5
x
y2 (3, 3) 5
Now try Exercises 83 through 94
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D. Applications of Linear Equations As a mathematical tool, linear equations rank among the most common, powerful, and versatile. In all cases, it’s important to remember that slope represents a rate of change. ¢y The notation m literally means the quantity measured along the y-axis, is chang¢x ing with respect to changes in the quantity measured along the x-axis.
EXAMPLE 11
Relating Temperature to Altitude In meteorological studies, atmospheric temperature depends on the altitude according to the formula T 3.5h 58.6, where T represents the approximate Fahrenheit temperature at height h (in thousands of feet). a. Interpret the meaning of the slope in this context. b. Determine the temperature at an altitude of 12,000 ft. c. If the temperature is 10°F what is the approximate altitude?
Solution
3.5 ¢T , ¢h 1 meaning the temperature drops 3.5°F for every 1000-ft increase in altitude. b. Since height is in thousands, use h 12.
a. Notice that h is the input variable and T is the output. This shows
T 3.5h 58.6 3.51122 58.6 16.6
original function substitute 12 for h result
At a height of 12,000 ft, the temperature is about 17°F. c. Replacing T with 10 and solving gives 10 3.5h 58.6 68.6 3.5h 19.6 h
substitute 10 for T simplify result
The temperature is 10°F at a height of 19.6 1000 19,600 ft. Now try Exercises 105 and 106
In some applications, the relationship is known to be linear but only a few points on the line are given. In this case, we can use two of the known data points to calculate the slope, then the point-slope form to find an equation model. One such application is linear depreciation, as when a government allows businesses to depreciate vehicles and equipment over time (the less a piece of equipment is worth, the less you pay in taxes).
EXAMPLE 12A
Using Point-Slope Form to Find an Equation Model Five years after purchase, the auditor of a newspaper company estimates the value of their printing press is $60,000. Eight years after its purchase, the value of the press had depreciated to $42,000. Find a linear equation that models this depreciation and discuss the slope and y-intercept in context.
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Solution
Since the value of the press depends on time, the ordered pairs have the form (time, value) or (t, v) where time is the input, and value is the output. This means the ordered pairs are (5, 60,000) and (8, 42,000). v2 v1 t2 t1 42,000 60,000 85 6000 18,000 3 1
m
WORTHY OF NOTE Actually, it doesn’t matter which of the two points are used in Example 12A. Once the point (5, 60,000) is plotted, a constant slope of m 6000 will “drive” the line through (8, 42,000). If we first graph (8, 42,000), the same slope would “drive” the line through (5, 60,000). Convince yourself by reworking the problem using the other point.
185
slope formula 1t1, v1 2 15, 60,0002; 1t2, v2 2 18, 42,0002 simplify and reduce
6000 ¢value , indicating the printing press loses ¢time 1 $6000 in value with each passing year. The slope of the line is
v v1 m1t t1 2 v 60,000 60001t 52 v 60,000 6000t 30,000 v 6000t 90,000
point-slope form substitute 6000 for m; (5, 60,000) for (t1, v1) simplify solve for v
The depreciation equation is v 6000t 90,000. The v-intercept (0, 90,000) indicates the original value (cost) of the equipment was $90,000.
Once the depreciation equation is found, it represents the (time, value) relationship for all future (and intermediate) ages of the press. In other words, we can now predict the value of the press for any given year. However, note that some equation models are valid for only a set period of time, and each model should be used with care.
EXAMPLE 12B
Using an Equation Model to Gather Information From Example 12A, a. How much will the press be worth after 11 yr? b. How many years until the value of the equipment is less than $9,000? c. Is this equation model valid for t 18 yr (why or why not)?
Solution
a. Find the value v when t 11: v 6000t 90,000 v 60001112 90,000 24,000
equation model substitute 11 for t result (11, 24,000)
After 11 yr, the printing press will only be worth $24,000. b. “. . . value is less than $9000” means v 6 9000: v 6000t 90,000 6000t t D. You’ve just learned how to apply the slope-intercept form and point-slope form in context
6 6 6 7
9000 9000 81,000 13.5
value at time t substitute 6000t 90,000 for v subtract 90,000 divide by 6000, reverse inequality symbol
After 13.5 yr, the printing press will be worth less than $9000. c. Since substituting 18 for t gives a negative quantity, the equation model is not valid for t 18. In the current context, the model is only valid while v 0 and we note the domain of the function is t 30, 15 4 . Now try Exercises 107 through 112
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2.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
4. The equation y y1 m1x x1 2 is called the form of a line.
7 1. For the equation y x 3, the slope 4 is and the y-intercept is . ¢cost indicates the ¢time changing in response to changes in
2. The notation
3. Line 1 has a slope of 0.4. The slope of any line perpendicular to line 1 is .
is .
5. Discuss/Explain how to graph a line using only the slope and a point on the line (no equations).
6. Given m 35 and 15, 62 is on the line. Compare and contrast finding the equation of the line using y mx b versus y y1 m1x x1 2.
DEVELOPING YOUR SKILLS
Solve each equation for y and evaluate the result using x 5, x 2, x 0, x 1, and x 3.
7. 4x 5y 10
8. 3y 2x 9
9. 0.4x 0.2y 1.4 10. 0.2x 0.7y 2.1 11. 13x 15y 1
12. 17y 13x 2
For each equation, solve for y and identify the new coefficient of x and new constant term.
13. 6x 3y 9
14. 9y 4x 18
15. 0.5x 0.3y 2.1 16. 0.7x 0.6y 2.4 17.
5 6x
1 7y
47
18.
7 12 y
4 15 x
Write each equation in slope-intercept form (solve for y), then identify the slope and y-intercept.
31. 2x 3y 6
32. 4y 3x 12
33. 5x 4y 20
34. y 2x 4
35. x 3y
36. 2x 5y
37. 3x 4y 12 0
38. 5y 3x 20 0
For Exercises 39 to 50, use the slope-intercept form to state the equation of each line.
39.
Evaluate each equation by selecting three inputs that will result in integer values. Then graph each line.
19. y 43x 5
20. y 54x 1
21. y 32x 2
22. y 25x 3
23. y 16x 4
24. y 13x 3
Find the x- and y-intercepts for each line, then (a) use these two points to calculate the slope of the line, (b) write the equation with y in terms of x (solve for y) and compare the calculated slope and y-intercept to the equation from part (b). Comment on what you notice.
25. 3x 4y 12
26. 3y 2x 6
27. 2x 5y 10
28. 2x 3y 9
29. 4x 5y 15
30. 5y 6x 25
40.
y 5 4 3 2 1
7 6
54321 1 2 (3, 1) 3 4 5
41.
(3, 3) (0, 1) 1 2 3 4 5 x
(5, 5)
y 5 4 (0, 3) 3 2 1
54321 1 2 3 4 5
(5, 1)
1 2 3 4 5 x
y
(1, 0)
5 4 3 (0, 3) 2 1
54321 1 2 (2, 3) 3 4 5
1 2 3 4 5 x
42. m 2; y-intercept 43. m 3; y-intercept 10, 32 10, 22 44. m 32; y-intercept 10, 42
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45.
46.
y 10,000
1600
6000
1200
4000
800
2000
400 14
16
18
Write the lines in slope-intercept form and state whether they are parallel, perpendicular, or neither.
y 2000
8000
12
47.
187
Section 2.3 Linear Graphs and Rates of Change
20 x
8
10
12
14
16 x
y 1500
71. 4y 5x 8 5y 4x 15
72. 3y 2x 6 2x 3y 3
73. 2x 5y 20 4x 3y 18
74. 5y 11x 135 11y 5x 77
75. 4x 6y 12 2x 3y 6
76. 3x 4y 12 6x 8y 2
1200
A secant line is one that intersects a graph at two or more points. For each graph given, find the equation of the line (a) parallel and (b) perpendicular to the secant line, through the point indicated.
900 600 300 26
28
30
32
34 x
48. m 4; 13, 22 is on the line
77.
78.
y 5
y 5
49. m 2; 15, 32 is on the line
(1, 3)
50. m 32; 14, 72 is on the line
5
Write each equation in slope-intercept form, then use the slope and intercept to graph the line.
51. 3x 5y 20 53. 2x 3y 15
52. 2y x 4
79.
57. y
1 3 x
2
58. y
60. y 3x 4
61. y 12x 3
62. y 3 2 x 2
Find the equation of the line using the information given. Write answers in slope-intercept form.
63. parallel to 2x 5y 10, through the point 15, 22 64. parallel to 6x 9y 27, through the point 13, 52
65. perpendicular to 5y 3x 9, through the point 16, 32 66. perpendicular to x 4y 7, through the point 15, 32
67. parallel to 12x 5y 65, through the point 12, 12 68. parallel to 15y 8x 50, through the point 13, 42 69. parallel to y 3, through the point (2, 5)
70. perpendicular to y 3 through the point (2, 5)
y 5
(1, 3)
5
5
5 x
5
2
59. y 2x 5
80.
y
56. y 52x 1 4 5 x
5 x
5
5
54. 3x 2y 4
5
(2, 4)
5
Graph each linear equation using the y-intercept and slope determined from each equation.
55. y 23x 3
5 x
81.
5 x
5
82.
y 5
(1, 2.5)
y 5
(1, 3)
5
5 x
5
5 x
(0, 2) 5
5
Find the equation of the line in point-slope form, then graph the line.
83. m 2; P1 12, 52
84. m 1; P1 12, 32
85. P1 13, 42, P2 111, 12 86. P1 11, 62, P2 15, 12
87. m 0.5; P1 11.8, 3.12
88. m 1.5; P1 10.75, 0.1252
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Find the equation of the line in point-slope form, and state the meaning of the slope in context—what information is the slope giving us?
89.
90.
0
x
1 2 3 4 5 6 7 8 9
10 9 8 7 6 5 4 3 2 1
y E
0
0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 x Hours of television per day
60 40 20
1
2
3
4
5
x
0 1 2 3 4 5 6 7 8 9 10 x Independent investors (1000s)
y F
x
x y G
x
x y H
x
x
97. At first I ran at a steady pace, then I got tired and walked the rest of the way. 98. While on my daily walk, I had to run for a while when I was chased by a stray dog.
8 6 4
99. I climbed up a tree, then I jumped out.
2 0
60
65
70
75
80
x
Temperature in °F
Using the concept of slope, match each description with the graph that best illustrates it. Assume time is scaled on the horizontal axes, and height, speed, or distance
100. I steadily swam laps at the pool yesterday. 101. I walked toward the candy machine, stared at it for a while then changed my mind and walked back. 102. For practice, the girls’ track team did a series of 25-m sprints, with a brief rest in between.
WORKING WITH FORMULAS
103. General linear equation: ax by c The general equation of a line is shown here, where a, b, and c are real numbers, with a and b not simultaneously zero. Solve the equation for y and note the slope (coefficient of x) and y-intercept (constant term). Use these to find the slope and y-intercept of the following lines, without solving for y or computing points. a. 3x 4y 8 b. 2x 5y 15 c. 5x 6y 12 d. 3y 5x 9
x
10
Rainfall per month (in inches)
y D
96. After hitting the ball, I began trotting around the bases shouting, “Ooh, ooh, ooh!” When I saw it wasn’t a home run, I began sprinting.
y Eggs per hen per week
Cattle raised per acre
80
0
10 9 8 7 6 5 4 3 2 1
94.
y 100
y C
95. While driving today, I got stopped by a state trooper. After she warned me to slow down, I continued on my way.
y Online brokerage houses
Student’s final grade (%) (includes extra credit)
100 90 80 70 60 50 40 30 20 10
93.
x
1 2 3 4 5 6 7 8 9
Year (1990 → 0)
92.
y
y B
x
Sales (in thousands)
91.
y A
y Typewriters in service (in ten thousands)
Income (in thousands)
y 10 9 8 7 6 5 4 3 2 1
from the origin (as the case may be) is scaled on the vertical axis.
104. Intercept/Intercept form of a linear x y equation: 1 h k The x- and y-intercepts of a line can also be found by writing the equation in the form shown (with the equation set equal to 1). The x-intercept will be (h, 0) and the y-intercept will be (0, k). Find the x- and y-intercepts of the following lines using this method: (a) 2x 5y 10, (b) 3x 4y 12, and (c) 5x 4y 8. How is the slope of each line related to the values of h and k?
APPLICATIONS
105. Speed of sound: The speed of sound as it travels through the air depends on the temperature of the air according to the function V 35C 331, where V represents the velocity of the sound waves in meters per second (m/s), at a temperature of C° Celsius.
a. Interpret the meaning of the slope and y-intercept in this context. b. Determine the speed of sound at a temperature of 20°C. c. If the speed of sound is measured at 361 m/s, what is the temperature of the air?
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106. Acceleration: A driver going down a straight highway is traveling 60 ft/sec (about 41 mph) on cruise control, when he begins accelerating at a rate of 5.2 ft/sec2. The final velocity of the car is given by V 26 5 t 60, where V is the velocity at time t. (a) Interpret the meaning of the slope and y-intercept in this context. (b) Determine the velocity of the car after 9.4 seconds. (c) If the car is traveling at 100 ft/sec, for how long did it accelerate? 107. Investing in coins: The purchase of a “collector’s item” is often made in hopes the item will increase in value. In 1998, Mark purchased a 1909-S VDB Lincoln Cent (in fair condition) for $150. By the year 2004, its value had grown to $190. (a) Use the relation (time since purchase, value) with t 0 corresponding to 1998 to find a linear equation modeling the value of the coin. (b) Discuss what the slope and y-intercept indicate in this context. (c) How much will the penny be worth in 2009? (d) How many years after purchase will the penny’s value exceed $250? (e) If the penny is now worth $170, how many years has Mark owned the penny? 108. Depreciation: Once a piece of equipment is put into service, its value begins to depreciate. A business purchases some computer equipment for $18,500. At the end of a 2-yr period, the value of the equipment has decreased to $11,500. (a) Use the relation (time since purchase, value) to find a linear equation modeling the value of the equipment. (b) Discuss what the slope and y-intercept indicate in this context. (c) What is the equipment’s value after 4 yr? (d) How many years after purchase will the value decrease to $6000? (e) Generally, companies will sell used equipment while it still has value and use the funds to purchase new equipment. According to the function, how many years will it take this equipment to depreciate in value to $1000? 109. Internet connections: The number of households that are hooked up to the Internet (homes that are online) has been increasing steadily in recent years. In 1995, approximately 9 million homes were online. By 2001 this figure had climbed to about 51 million. (a) Use the relation (year, homes online) with t 0 corresponding to 1995 to find an
Section 2.3 Linear Graphs and Rates of Change
189
equation model for the number of homes online. (b) Discuss what the slope indicates in this context. (c) According to this model, in what year did the first homes begin to come online? (d) If the rate of change stays constant, how many households will be on the Internet in 2006? (e) How many years after 1995 will there be over 100 million households connected? (f) If there are 115 million households connected, what year is it? Source: 2004 Statistical Abstract of the United States, Table 965
110. Prescription drugs: Retail sales of prescription drugs have been increasing steadily in recent years. In 1995, retail sales hit $72 billion. By the year 2000, sales had grown to about $146 billion. (a) Use the relation (year, retail sales of prescription drugs) with t 0 corresponding to 1995 to find a linear equation modeling the growth of retail sales. (b) Discuss what the slope indicates in this context. (c) According to this model, in what year will sales reach $250 billion? (d) According to the model, what was the value of retail prescription drug sales in 2005? (e) How many years after 1995 will retail sales exceed $279 billion? (f) If yearly sales totaled $294 billion, what year is it? Source: 2004 Statistical Abstract of the United States, Table 122
111. Prison population: In 1990, the number of persons sentenced and serving time in state and federal institutions was approximately 740,000. By the year 2000, this figure had grown to nearly 1,320,000. (a) Find a linear equation with t 0 corresponding to 1990 that models this data, (b) discuss the slope ratio in context, and (c) use the equation to estimate the prison population in 2007 if this trend continues. Source: Bureau of Justice Statistics at www.ojp.usdoj.gov/bjs
112. Eating out: In 1990, Americans bought an average of 143 meals per year at restaurants. This phenomenon continued to grow in popularity and in the year 2000, the average reached 170 meals per year. (a) Find a linear equation with t 0 corresponding to 1990 that models this growth, (b) discuss the slope ratio in context, and (c) use the equation to estimate the average number of times an American will eat at a restaurant in 2006 if the trend continues. Source: The NPD Group, Inc., National Eating Trends, 2002
EXTENDING THE CONCEPT
113. Locate and read the following article. Then turn in a one-page summary. “Linear Function Saves Carpenter’s Time,” Richard Crouse, Mathematics Teacher, Volume 83, Number 5, May 1990: pp. 400–401.
114. The general form of a linear equation is ax by c, where a and b are not simultaneously zero. (a) Find the x- and y-intercepts using the general form (substitute 0 for x, then 0 for y). Based on what you see, when does the intercept method work most efficiently? (b) Find the slope
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and y-intercept using the general form (solve for y). Based on what you see, when does the intercept method work most efficiently?. 115. Match the correct graph to the conditions stated for m and b. There are more choices than graphs. a. m 6 0, b 6 0 b. m 7 0, b 6 0 c. m 6 0, b 7 0 d. m 7 0, b 7 0 e. m 0, b 7 0 f. m 6 0, b 0 g. m 7 0, b 0 h. m 0, b 6 0
2-40
CHAPTER 2 Relations, Functions, and Graphs
(1)
y
(2)
y
(3)
x
(4)
y
x
y
(5)
x
x
y
(6)
y
x
x
MAINTAINING YOUR SKILLS
116. (2.2) Determine the domain: a. y 12x 5 5 b. y 2 2x 3x 2
119. (R.7) Compute the area of the circular sidewalk shown here. Use your calculator’s value of and round the answer (only) to hundredths. 10 yd
117. (1.5) Solve using the quadratic formula. Answer in exact and approximate form: 3x2 10x 9. 118. (1.1) Three equations follow. One is an identity, another is a contradiction, and a third has a solution. State which is which.
8 yd
21x 52 13 1 9 7 2x
21x 42 13 1 9 7 2x 21x 52 13 1 9 7 2x
2.4 Functions, Function Notation, and the Graph of a Function Learning Objectives In Section 2.4 you will learn how to:
A. Distinguish the graph of a function from that of a relation
B. Determine the domain and range of a function
C. Use function notation and evaluate functions
D. Apply the rate-of-change concept to nonlinear functions
In this section we introduce one of the most central ideas in mathematics—the concept of a function. Functions can model the cause-and-effect relationship that is so important to using mathematics as a decision-making tool. In addition, the study will help to unify and expand on many ideas that are already familiar.
A. Functions and Relations There is a special type of relation that merits further attention. A function is a relation where each element of the domain corresponds to exactly one element of the range. In other words, for each first coordinate or input value, there is only one possible second coordinate or output. Functions A function is a relation that pairs each element from the domain with exactly one element from the range.
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Section 2.4 Functions, Function Notation, and the Graph of a Function
If the relation is defined by a mapping, we need only check that each element of the domain is mapped to exactly one element of the range. This is indeed the case for the mapping P S B from Figure 2.1 (page 152), where we saw that each person corresponded to only one birthday, and that it was impossible for one person to be born on two different days. For the relation x y shown in Figure 2.6 (page 153), each element of the domain except zero is paired with more than one element of the range. The relation x y is not a function. EXAMPLE 1
Determining Whether a Relation Is a Function Three different relations are given in mapping notation below. Determine whether each relation is a function. a. b. c.
Solution
Person
Room
Pet
Weight (lbs)
War
Year
Marie Pesky Bo Johnny Rick Annie Reece
270 268 274 276 272 282
Fido
450 550 2 40 8 3
Civil War
1963
Bossy Silver Frisky Polly
World War I
1950
World War II
1939
Korean War
1917
Vietnam War
1861
Relation (a) is a function, since each person corresponds to exactly one room. This relation pairs math professors with their respective office numbers. Notice that while two people can be in one office, it is impossible for one person to physically be in two different offices. Relation (b) is not a function, since we cannot tell whether Polly the Parrot weighs 2 lb or 3 lb (one element of the domain is mapped to two elements of the range). Relation (c) is a function, where each major war is paired with the year it began. Now try Exercises 7 through 10
If the relation is defined by a set of ordered pairs or a set of individual and distinct plotted points, we need only check that no two points have the same first coordinate with a different second coordinate.
EXAMPLE 2
Identifying Functions Two relations named f and g are given; f is stated as a set of ordered pairs, while g is given as a set of plotted points. Determine whether each is a function. f: 13, 02, 11, 42, 12, 52, 14, 22, 13, 22, 13, 62, 10, 12, (4, 5), and (6, 1)
Solution
WORTHY OF NOTE The definition of a function can also be stated in ordered pair form: A function is a set of ordered pairs (x, y), in which each first component is paired with only one second component.
The relation f is not a function, since 3 is paired with two different outputs: (3, 02 and (3, 22 . The relation g shown in the figure is a function. Each input corresponds to exactly one output, otherwise one point would be directly above the other and have the same first coordinate.
g
5
y (0, 5)
(4, 2) (3, 1)
(2, 1) 5
5
x
(4, 1) (1, 3) 5
Now try Exercises 11 through 18
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The graphs of y x 1 and x y from Section 2.1 offer additional insight into the definition of a function. Figure 2.23 shows the line y x 1 with emphasis on the plotted points (4, 3) and 13, 42. The vertical movement shown from the x-axis to a point on the graph illustrates the pairing of a given x-value with one related y-value. Note the vertical line shows only one related y-value ( x 4 is paired with only y 3). Figure 2.24 gives the graph of x y, highlighting the points (4, 4) and (4, 4). The vertical movement shown here branches in two directions, associating one x-value with more than one y-value. This shows the relation y x 1 is also a function, while the relation x y is not. Figure 2.24
Figure 2.23 y yx1
5
y
x y (4, 4)
5
(4, 3) (2, 2) (0, 0) 5
5
5
x
5
x
(2, 2) (3, 4)
(4, 4)
5
5
This “vertical connection” of a location on the x-axis to a point on the graph can be generalized into a vertical line test for functions. Vertical Line Test A given graph is the graph of a function, if and only if every vertical line intersects the graph in at most one point. Applying the test to the graph in Figure 2.23 helps to illustrate that the graph of any nonvertical line is a function.
EXAMPLE 3
Using the Vertical Line Test Use the vertical line test to determine if any of the relations shown (from Section 2.1) are functions.
Solution
Visualize a vertical line on each coordinate grid (shown in solid blue), then mentally shift the line to the left and right as shown in Figures 2.25, 2.26, and 2.27 (dashed lines). In Figures 2.25 and 2.26, every vertical line intersects the graph only once, indicating both y x2 2x and y 29 x2 are functions. In Figure 2.27, a vertical line intersects the graph twice for any x 7 0. The relation x y2 is not a function. Figure 2.25
Figure 2.26
y (4, 8)
(2, 8) y x 2x
5
Figure 2.27 y
y y 9 x2 (0, 3)
5
(4, 2) (2, 2)
2
5
(1, 3)
(3, 0)
(3, 3)
(0, 0)
(0, 0)
(3, 0)
5
5
x
5
5
(2, 0)
5
5 2
y2 x
(1, 1)
x 5
5
x
(2, 2) (4, 2)
Now try Exercises 19 through 30
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Section 2.4 Functions, Function Notation, and the Graph of a Function
EXAMPLE 4
Using the Vertical Line Test Use a table of values to graph the relations defined by a. y x b. y 1x, then use the vertical line test to determine whether each relation is a function.
Solution
WORTHY OF NOTE For relations and functions, a good way to view the distinction is to consider a mail carrier. It is possible for the carrier to put more than one letter into the same mailbox (more than one x going to the same y), but quite impossible for the carrier to place the same letter in two different boxes (one x going to two y’s).
a. For y x , using input values from x 4 to x 4 produces the following table and graph (Figure 2.28). Note the result is a V-shaped graph that “opens upward.” The point (0, 0) of this absolute value graph is called the vertex. Since any vertical line will intersect the graph in at most one point, this is the graph of a function. y x Figure 2.28 x
y x
4
4
3
3
2
2
1
1
0
0
1
1
2
2
3
3
4
4
y 5
5
x
5
5
b. For y 1x, values less than zero do not produce a real number, so our graph actually begins at (0, 0) (see Figure 2.29). Completing the table for nonnegative values produces the graph shown, which appears to rise to the right and remains in the first quadrant. Since any vertical line will intersect this graph in at most one place, y 1x is also a function. Figure 2.29
y 1x x
y 1x
0
0
1
1
2
12 1.4
3
13 1.7
4
y 5
5
5
x
2
A. You’ve just learned how to distinguish the graph of a function from that of a relation
5
Now try Exercises 31 through 34
B. The Domain and Range of a Function Vertical Boundary Lines and the Domain In addition to its use as a graphical test for functions, a vertical line can help determine the domain of a function from its graph. For the graph of y 1x (Figure 2.29), a vertical line will not intersect the graph until x 0, and then will intersect the graph for all values x 0 (showing the function is defined for these values). These vertical boundary lines indicate the domain is x 3 0, q 2 . For the graph of y x (Figure 2.28), a vertical line will intersect the graph (or its infinite extension) for all values of x, and the
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domain is x 1q, q 2 . Using vertical lines in this way also affirms the domain of y x 1 (Section 2.1, Figure 2.5) is x 1q, q 2 while the domain of the relation x y (Section 2.1, Figure 2.6) is x 30, q 2 .
Range and Horizontal Boundary Lines The range of a relation can be found using a horizontal “boundary line,” since it will associate a value on the y-axis with a point on the graph (if it exists). Simply visualize a horizontal line and move the line up or down until you determine the graph will always intersect the line, or will no longer intersect the line. This will give you the boundaries of the range. Mentally applying this idea to the graph of y 1x (Figure 2.29) shows the range is y 3 0, q2. Although shaped very differently, a horizontal boundary line shows the range of y x (Figure 2.28) is also y 30, q 2. EXAMPLE 5
Determining the Domain and Range of a Function Use a table of values to graph the functions defined by 3 a. y x2 b. y 1 x Then use boundary lines to determine the domain and range of each.
Solution
a. For y x2, it seems convenient to use inputs from x 3 to x 3, producing the following table and graph. Note the result is a basic parabola that “opens upward” (both ends point in the positive y direction), with a vertex at (0, 0). Figure 2.30 shows a vertical line will intersect the graph or its extension anywhere it is placed. The domain is x 1 q, q 2 . Figure 2.31 shows a horizontal line will intersect the graph only for values of y that are greater than or equal to 0. The range is y 30, q 2 . Figure 2.30
Squaring Function x
yx
2
3
9
2
4
1
1
0
0
1
1
2
4
3
9
5
5
Figure 2.31
y y x2
5
5
5
x
5
y y x2
5
x
5
3 b. For y 1x, we select points that are perfect cubes where possible, then a few others to round out the graph. The resulting table and graph are shown, and we notice there is a “pivot point” at (0, 0) called a point of inflection, and the ends of the graph point in opposite directions. Figure 2.32 shows a vertical line will intersect the graph or its extension anywhere it is placed. Figure 2.33 shows a horizontal line will likewise always intersect the graph. The domain is x 1q, q 2 , and the range is y 1q, q2 .
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Cube Root Function x
y 2x
8
2
4
1.6
1
1
0
0
1
1
4
1.6
8
2
Figure 2.33
Figure 2.32
3
5
3 y y x
10
195
5
10
x
3 y y x
10
5
10
x
5
Now try Exercises 35 through 46
Implied Domains When stated in equation form, the domain of a function is implicitly given by the expression used to define it, since the expression will dictate the allowable values (Section 1.2). The implied domain is the set of all real numbers for which the function represents a real number. If the function involves a rational expression, the domain will exclude any input that causes a denominator of zero. If the function involves a square root expression, the domain will exclude inputs that create a negative radicand.
EXAMPLE 6
Determining Implied Domains State the domain of each function using interval notation. 3 a. y b. y 12x 3 x2 x5 c. y 2 d. y x2 5x 7 x 9
Solution
a. By inspection, we note an x-value of 2 gives a zero denominator and must be excluded. The domain is x 1q, 22 ´ 12, q 2. b. Since the radicand must be nonnegative, we solve the inequality 2x 3 0, 3 giving x 3 2 . The domain is x 3 2 , q 2. c. To prevent division by zero, inputs of 3 and 3 must be excluded (set x2 9 0 and solve by factoring). The domain is x 1q, 32 ´ 13, 32 ´ 13, q 2 . Note that x 5 is in the domain 0 0 is defined. since 16 d. Since squaring a number and multiplying a number by a constant are defined for all reals, the domain is x 1q, q 2. Now try Exercises 47 through 64
EXAMPLE 7
Determining Implied Domains Determine the domain of each function: 7 2x a. y b. y Ax 3 14x 5
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Solution
B. You’ve just learned how to determine the domain and range of a function
7 7 , we must have 0 (for the radicand) and x 3 0 Ax 3 x3 (for the denominator). Since the numerator is always positive, we need x 3 7 0, which gives x 7 3. The domain is x 13, q 2 . 2x b. For y , we must have 4x 5 0 and 14x 5 0. This indicates 14x 5 4x 5 7 0 or x 7 54. The domain is x 154, q 2 .
a. For y
Now try Exercises 65 through 68
C. Function Notation Figure 2.34 x
In our study of functions, you’ve likely noticed that the relationship between input and output values is an important one. To highlight this fact, think of a function as a simple machine, which can process inputs using a stated sequence of operations, then deliver a single output. The inputs are x-values, a program we’ll name f performs the operations on x, and y is the resulting output (see Figure 2.34). Once again we see that “the value of y depends on the value of x,” or simply “y is a function of x.” Notationally, we write “y is a function of x” as y f 1x2 using function notation. You are already familiar with letting a variable represent a number. Here we do something quite different, as the letter f is used to represent a sequence of operations to be performed on x. Consider the function y 2x 1, which we’ll now write as f 1x2 2x 1 [since y f 1x2 ]. In words the function says, “divide inputs by 2, then add 1.” To evaluate the function at x 4 (Figure 2.35) we have:
Input f Sequence of operations on x as defined by f(x)
Output
y
input 4
↓
x ↓ f 1x2 1 2 4 f 142 1 2 21
input 4
Figure 2.35 4
Input f(x) Divide inputs by 2 then add 1 4 +1 2
3 Output
3
Instead of saying, “. . . when x 4, the value of the function is 3,” we simply say “f of 4 is 3,” or write f 142 3. Note that the ordered pair (4, 3) is equivalent to (4, f(4)). CAUTION
EXAMPLE 8
Although f(x) is the favored notation for a “function of x,” other letters can also be used. For example, g(x) and h(x) also denote functions of x, where g and h represent a different sequence of operations on the x-inputs. It is also important to remember that these represent function values and not the product of two variables: f1x2 f # 1x2.
Evaluating a Function
Given f 1x2 2x2 4x, find 3 a. f 122 b. f a b 2
c. f 12a2
d. f 1a 12
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Solution
a.
c.
f 1x2 2x2 4x f 122 2122 2 4122 8 182 16
b.
f 1x2 2x2 4x f 12a2 212a2 2 412a2 214a2 2 8a 8a2 8a
d.
197
f 1x2 2x2 4x 3 2 3 3 f a b 2a b 4a b 2 2 2 3 9 6 2 2
f 1x2 2x2 4x f 1a 12 21a 12 2 41a 12 21a2 2a 12 4a 4 2a2 4a 2 4a 4 2a2 2 Now try Exercises 69 through 84
Graphs are an important part of studying functions, and learning to read and interpret them correctly is a high priority. A graph highlights and emphasizes the allimportant input/output relationship that defines a function. In this study, we hope to firmly establish that the following statements are synonymous: 1. 2. 3. 4.
EXAMPLE 9A
f 122 5 12, f 122 2 12, 52 12, 52 is on the graph of f, and When x 2, f 1x2 5
Reading a Graph For the functions f (x) and g(x) whose graphs are shown in Figures 2.36 and 2.37 a. State the domain of the function. b. Evaluate the function at x 2. c. Determine the value(s) of x for which y 3. d. State the range of the function. Figure 2.36 y 5
y 4
3
3
2
2
1
1 1
2
3
g(x)
5
4
5 4 3 2 1 1
Solution
Figure 2.37
f(x)
4
5
x
5 4 3 2 1 1
2
2
3
3
1
2
3
4
5
x
For f(x), a. The graph is a continuous line segment with endpoints at (4, 3) and (5, 3), so we state the domain in interval notation. Using a vertical boundary line we note the smallest input is 4 and the largest is 5. The domain is x 34, 5 4. b. The graph shows an input of x 2 corresponds to y 1: f 122 1 since (2, 1) is a point on the graph. c. For f 1x2 3 (or y 3) the input value must be x 5 since (5, 3) is the point on the graph. d. Using a horizontal boundary line, the smallest output value is 3 and the largest is 3. The range is y 3 3, 34 .
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For g(x), a. Since the graph is pointwise defined, we state the domain as the set of first coordinates: D 54, 2, 0, 2, 46. b. An input of x 2 corresponds to y 2: g122 2 since (2, 2) is on the graph. c. For g1x2 3 (or y 32 the input value must be x 4, since (4, 3) is a point on the graph. d. The range is the set of all second coordinates: R 51, 0, 1, 2, 36. EXAMPLE 9B
Solution
Reading a Graph
Use the graph of f 1x2 given to answer the following questions: a. What is the value of f 122 ? (2, 4) b. What value(s) of x satisfy f 1x2 1?
y 5
f (x) a. The notation f 122 says to find the value of the (0, 1) function f when x 2. Expressed graphically, (3, 1) we go to x 2, locate the corresponding point 5 on the graph of f (blue arrows), and find that f 122 4. b. For f 1x2 1, we’re looking for x-inputs that result in an output of y 1 3since y f 1x2 4 . 5 From the graph, we note there are two points with a y-coordinate of 1, namely, (3, 1) and (0, 1). This shows f 132 1, f 102 1, and the required x-values are x 3 and x 0.
5
Now try Exercises 85 through 90
x
In many applications involving functions, the domain and range can be determined by the context or situation given.
EXAMPLE 10
Determining the Domain and Range from the Context Paul’s 1993 Voyager has a 20-gal tank and gets 18 mpg. The number of miles he can drive (his range) depends on how much gas is in the tank. As a function we have M1g2 18g, where M(g) represents the total distance in miles and g represents the gallons of gas in the tank. Find the domain and range.
Solution
C. You’ve just learned how to use function notation and evaluate functions
Begin evaluating at x 0, since the tank cannot hold less than zero gallons. On a full tank the maximum range of the van is 20 # 18 360 miles or M1g2 30, 360 4 . Because of the tank’s size, the domain is g 3 0, 20 4. Now try Exercises 94 through 101
D. Average Rates of Change As noted in Section 2.3, one of the defining characteristics of a linear function is that ¢y the rate of change m is constant. For nonlinear functions the rate of change is ¢x not constant, but we can use a related concept called the average rate of change to study these functions.
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Average Rate of Change For a function that is smooth and continuous on the interval containing x1 and x2, the average rate of change between x1 and x2 is given by ¢y y2 y1 x2 x1 ¢x which is the slope of the secant line through (x1, y1) and (x2, y2) EXAMPLE 11
Calculating Average Rates of Change The graph shown displays the number of units shipped of vinyl records, cassette tapes, and CDs for the period 1980 to 2005. Units shipped in millions
1000
CDs
900
Units shipped (millions)
800 700 600 500 400 300
Cassettes
200
Vinyl
100
80
82
84
86
88
90
92
94
96
98
100
102
104
Year
Vinyl
Cassette
CDs
1980
323
110
0
1982
244
182
0
1984
205
332
6
1986
125
345
53
1988
72
450
150
1990
12
442
287
1992
2
366
408
1994
2
345
662
1996
3
225
779
1998
3
159
847
2000
2
76
942
2004
1
5
767
2005
1
3
705
106
Year (80 → 1980) Source: Swivel.com
a. Find the average rate of change in CDs shipped and in cassettes shipped from 1994 to 1998. What do you notice? b. Does it appear that the rate of increase in CDs shipped was greater from 1986 to 1992, or from 1992 to 1996? Compute the average rate of change for each period and comment on what you find. Solution
Using 1980 as year zero (1980 S 0), we have the following: a. CDs Cassettes 1994: 114, 6622, 1998: 118, 8472 1994: 114, 3452, 1998: 118, 1592 ¢y ¢y 847 662 159 345 ¢x 18 14 ¢x 18 14 185 186 4 4 46.25 46.5 The decrease in the number of cassettes shipped was roughly equal to the increase in the number of CDs shipped (about 46,000,000 per year).
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b. From the graph, the secant line for 1992 to 1996 appears to have a greater slope. 1986–1992 CDs 1986: 16, 532, 1992: 112, 4082 ¢y 408 53 ¢x 12 6 355 6 59.16
D. You’ve just learned how to apply the rate-of-change concept to nonlinear functions
1992–1996 CDs 1992: 112, 4082, 1996: 116, 7792 ¢y 779 408 ¢x 16 12 371 4 92.75
For 1986 to 1992: m 59.2; for 1992 to 1996: m 92.75, a growth rate much higher than the earlier period. Now try Exercises 102 and 103
2.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. If a relation is given in ordered pair form, we state the domain by listing all of the coordinates in a set. 2. A relation is a function if each element of the is paired with element of the range. 3. The set of output values for a function is called the of the function.
4. Write using function notation: The function f evaluated at 3 is negative 5: 5. Discuss/Explain why the relation y x2 is a function, while the relation x y2 is not. Justify your response using graphs, ordered pairs, and so on. 6. Discuss/Explain the process of finding the domain and range of a function given its graph, using vertical and horizontal boundary lines. Include a few illustrative examples.
DEVELOPING YOUR SKILLS
Determine whether the mappings shown represent functions or nonfunctions. If a nonfunction, explain how the definition of a function is violated.
7.
Woman
Country
Indira Gandhi Clara Barton Margaret Thatcher Maria Montessori Susan B. Anthony
Britain U.S. Italy India
8.
Book
Author
Hawaii Roots Shogun 20,000 Leagues Under the Sea Where the Red Fern Grows
Rawls Verne Haley Clavell Michener
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Section 2.4 Functions, Function Notation, and the Graph of a Function
Basketball star
Reported height
MJ The Mailman The Doctor The Iceman The Shaq
7'1" 6'6" 6'7" 6'9" 7'2"
10.
Country
Language
Canada Japan Brazil Tahiti Ecuador
Japanese Spanish French Portuguese English
y
21.
5
5
y
5
5
5
5
5 x
5 x
5
y
30.
5
5
5 x
(1, 4)
(0, 2) (5, 3) 5
y
y
28.
y
29.
5
5
5 x
5 x
y
18.
5
5 x
5
5
(4, 2)
(4, 2)
17.
5
5
5 x
y
(3, 4) (1, 3)
(5, 0)
5
y
26.
5
5
(3, 5)
5 x
5
5
27.
5 x
y
16. (2, 4)
5
5
5 x
5
14. (1, 81), (2, 64), (3, 49), (5, 36), (8, 25), (13, 16), (21, 9), (34, 4), and (55, 1)
(1, 1)
5
5
13. (9, 10), (7, 6), (6, 10), (4, 1), (2, 2), (1, 8), (0, 2), (2, 7), and (6, 4)
(3, 4)
y
24.
5
25.
5 x
5
5
12. (7, 5), (5, 3), (4, 0), (3, 5), (1, 6), (0, 9), (2, 8), (3, 2), and (5, 7)
y
5
5 x
y
23.
11. (3, 0), (1, 4), (2, 5), (4, 2), (5, 6), (3, 6), (0, 1), (4, 5), and (6, 1)
5
5
5
Determine whether the relations indicated represent functions or nonfunctions. If the relation is a nonfunction, explain how the definition of a function is violated.
15.
y
22.
5
5
(3, 4)
5
(3, 4)
(2, 3)
5
(3, 3) (1, 2)
(5, 1)
(1, 1)
5
5
5 x
5 x
(3, 2)
(5, 2) (2, 4)
(1, 4)
(4, 5)
5
31. y x
5
Determine whether or not the relations given represent a function. If not, explain how the definition of a function is violated. y
19.
y
20.
5
Graph each relation using a table, then use the vertical line test to determine if the relation is a function.
33. y 1x 22 2
5 x
5
y
5
y
36.
5
5
5 x 5
5
34. x y 2
Determine whether or not the relations indicated represent a function, then determine the domain and range of each.
35. 5
3 32. y 2 x
5 x
5
5 x
5 5
5
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37.
5
5
5
5 x
y
5
y
40.
5
5
5 x
5 x
5
5
63. y
1x 2 2x 5
64. y
1x 1 3x 2
5 x
5
y
5
y
44.
5
5
5 x
5 x
5
y
66. g1x2
4 A3 x
67. h1x2
2 14 x
68. p1x2
7 15 x
y
46.
2 70. f 1x2 x 5 3
71. f 1x2 3x2 4x
72.
73. h1x2
3 x
74. h1x2
2 x2
75. h1x2
5x x
76. h1x2
4x x
5
77. g1r2 2r
78. g1r2 2rh
79. g1r2 r
80. g1r2 r2h
2
5
5 x
5
5 x
5
f 1x2 2x2 3x
Determine the value of g(4), g(32 ), g(2c), and g(c 3), then simplify as much as possible.
5
5
5 Ax 2
Determine the value of h(3), h(23), h(3a), and h(a 2), then simplify as much as possible.
5
5
65. f 1x2
1 69. f 1x2 x 3 2
5
5
5 x
45.
x4 x 2x 15 2
y
42.
5
43.
62. y2
2
Determine the value of f(6), f(32 ), f(2c), and f(c 1), then simplify as much as possible.
5
y
41.
x x 3x 10
5
5
60. y x 2 3
61. y1 5 x
5
39.
59. y 2x 1
y
38.
5
5
Determine the value of p(5), p(32 ), p(3a), and p(a 1), then simplify as much as possible.
81. p1x2 12x 3
82. p1x2 14x 1
3x 5 x2 2
Determine the domain of the following functions.
47. f 1x2
3 x5
49. h1a2 13a 5 51. v1x2
x2 x2 25
v5 53. u 2 v 18 55. y
17 x 123 25
57. m n2 3n 10
48. g1x2
2 3x
50. p1a2 15a 2 52. w1x2 54. p 56. y
x4 x2 49
83. p1x2
84. p1x2
2x2 3 x2
Use the graph of each function given to (a) state the domain, (b) state the range, (c) evaluate f(2), and (d) find the value(s) x for which f 1x2 k (k a constant). Assume all results are integer-valued.
85. k 4
86. k 3 y
q7
y
5
5
q2 12 11 x 89 19
58. s t2 3t 10
5
5 x
5
5
5 x
5
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87. k 1
88. k 3
89. k 2
y
5
5 x
5
y 5
5
5
5
5 x
5
5
5 x
5
5
5 x
5
WORKING WITH FORMULAS
91. Ideal weight for males: W(H) 92H 151 The ideal weight for an adult male can be modeled by the function shown, where W is his weight in pounds and H is his height in inches. (a) Find the ideal weight for a male who is 75 in. tall. (b) If I am 72 in. tall and weigh 210 lb, how much weight should I lose? 92. Celsius to Fahrenheit conversions: C 59(F 32) The relationship between Fahrenheit degrees and degrees Celsius is modeled by the function shown. (a) What is the Celsius temperature if °F 41? (b) Use the formula to solve for F in terms of C, then substitute the result from part (a). What do you notice?
90. k 1 y
y
5
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Section 2.4 Functions, Function Notation, and the Graph of a Function
1 93. Pick’s theorem: A B I 1 2 Picks theorem is an interesting yet little known formula for computing the area of a polygon drawn in the Cartesian coordinate system. The formula can be applied as long as the vertices of the polygon are lattice points (both x and y are integers). If B represents the number of lattice points lying directly on the boundary of the polygon (including the vertices), and I represents the number of points in the interior, the area of the polygon is given by the formula shown. Use some graph paper to carefully draw a triangle with vertices at (3, 1), (3, 9), and (7, 6), then use Pick’s theorem to compute the triangle’s area.
APPLICATIONS
94. Gas mileage: John’s old ’87 LeBaron has a 15-gal gas tank and gets 23 mpg. The number of miles he can drive is a function of how much gas is in the tank. (a) Write this relationship in equation form and (b) determine the domain and range of the function in this context. 95. Gas mileage: Jackie has a gas-powered model boat with a 5-oz gas tank. The boat will run for 2.5 min on each ounce. The number of minutes she can operate the boat is a function of how much gas is in the tank. (a) Write this relationship in equation form and (b) determine the domain and range of the function in this context. 96. Volume of a cube: The volume of a cube depends on the length of the sides. In other words, volume is a function of the sides: V1s2 s3. (a) In practical terms, what is the domain of this function? (b) Evaluate V(6.25) and (c) evaluate the function for s 2x2. 97. Volume of a cylinder: For a fixed radius of 10 cm, the volume of a cylinder depends on its height. In other words, volume is a function of height:
V1h2 100h. (a) In practical terms, what is the domain of this function? (b) Evaluate V(7.5) and 8 (c) evaluate the function for h . 98. Rental charges: Temporary Transportation Inc. rents cars (local rentals only) for a flat fee of $19.50 and an hourly charge of $12.50. This means that cost is a function of the hours the car is rented plus the flat fee. (a) Write this relationship in equation form; (b) find the cost if the car is rented for 3.5 hr; (c) determine how long the car was rented if the bill came to $119.75; and (d) determine the domain and range of the function in this context, if your budget limits you to paying a maximum of $150 for the rental. 99. Cost of a service call: Paul’s Plumbing charges a flat fee of $50 per service call plus an hourly rate of $42.50. This means that cost is a function of the hours the job takes to complete plus the flat fee. (a) Write this relationship in equation form; (b) find the cost of a service call that takes 212 hr; (c) find the number of hours the job took if the
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charge came to $262.50; and (d) determine the domain and range of the function in this context, if your insurance company has agreed to pay for all charges over $500 for the service call. 100. Predicting tides: The graph shown approximates the height of the tides at Fair Haven, New Brunswick, for a 12-hr period. (a) Is this the graph of a function? Why? (b) Approximately what time did high tide occur? (c) How high is the tide at 6 P.M.? (d) What time(s) will the tide be 2.5 m? 5
Meters
4 3 2 1
5
7
9
11 1 A.M.
4.0
3
Time
101. Predicting tides: The graph shown approximates the height of the tides at Apia, Western Samoa, for a 12-hr period. (a) Is this the graph of a function? Why? (b) Approximately what time did low tide occur? (c) How high is the tide at 2 A.M.? (d) What time(s) will the tide be 0.7 m? Meters
1.0
6
8
10
12 2 A.M.
4
Time
3800
3400
Full term
3200
(40, 3200)
2800
(36, 2600) 2400 2000
(32, 1600)
1600 1200
20
30
40
50
60
70
80
90
100
110
Source: Statistical History of the United States from Colonial Times to Present
(29, 1100)
800
2.0
10
3600
Weight (g)
102. Weight of a fetus: The growth rate of a fetus in the mother’s womb (by weight in grams) is modeled by the graph shown here, beginning with the 25th week of
3.0
1.0
0.5
4 P.M.
103. Fertility rates: Over the years, fertility rates for (60, 3.6) (10, 3.4) women in the (20, 3.2) (50, 3.0) United States (average number (70, 2.4) of children per (40, 2.2) (90, 2.0) woman) have (80, 1.8) varied a great deal, though in the twenty-first Year (10 → 1910) century they’ve begun to level out. The graph shown models this fertility rate for most of the twentieth century. (a) Calculate the average rate of change from the years 1920 to 1940. Is the slope of the secant line positive or negative? Discuss what the slope means in this context. (b) Calculate the average rate of change from the year 1940 to 1950. Is the slope of the secant line positive or negative? Discuss what the slope means in this context. (c) Was the fertility rate increasing faster from 1940 to 1950, or from 1980 to 1990? Compare the slope of both secant lines and comment. Rate (children per woman)
3 P.M.
gestation. (a) Calculate the average rate of change (slope of the secant line) between the 25th week and the 29th week. Is the slope of the secant line positive or negative? Discuss what the slope means in this context. (b) Is the fetus gaining weight faster between the 25th and 29th week, or between the 32nd and 36th week? Compare the slopes of both secant lines and discuss.
(25, 900) 24
26
28
30
32
34
36
38
40
42
Age (weeks)
EXTENDING THE CONCEPT
Distance in meters
104. A father challenges his son to a 400-m race, depicted in the graph shown here.
b. Approximately how many meters behind was the second place finisher? c. Estimate the number of seconds the father was in the lead in this race. d. How many times during the race were the father and son tied?
400 300 200 100 0
10
20
30
40
50
60
70
Time in seconds Father:
Son:
a. Who won and what was the approximate winning time?
80
105. Sketch the graph of f 1x2 x, then discuss how you could use this graph to obtain the graph of F1x2 x without computing additional points. x What would the graph of g1x2 look like? x
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106. Sketch the graph of f 1x2 x2 4, then discuss how you could use this graph to obtain the graph of F1x2 x2 4 without computing additional x2 4 points. Determine what the graph of g1x2 2 x 4 would look like. 107. If the equation of a function is given, the domain is implicitly defined by input values that generate real
205
Section 2.4 Functions, Function Notation, and the Graph of a Function
valued outputs. But unless the graph is given or can be easily sketched, we must attempt to find the range analytically by solving for x in terms of y. We should note that sometimes this is an easy task, while at other times it is virtually impossible and we must rely on other methods. For the following functions, determine the implicit domain and find the range by 3 2 solving for x in terms of y. a. y xx 2 b. y x 3
MAINTAINING YOUR SKILLS
108. (2.2) Which line has a steeper slope, the line through (5, 3) and (2, 6), or the line through (0, 4) and (9, 4)?
110. (1.5) Solve the equation using the quadratic formula, then check the result(s) using substitution: x2 4x 1 0
109. (R.6) Compute the sum and product indicated: a. 124 6 154 16 b. 12 132 12 132
111. (R.4) Factor the following polynomials completely: a. x3 3x2 25x 75 b. 2x2 13x 24 c. 8x3 125
MID-CHAPTER CHECK
2. Find the slope of the line passing through the given points: 13, 82 and 14, 102 . 3. In 2002, Data.com lost $2 million. In 2003, they lost $0.5 million. Will the slope of the line through these points be positive or negative? Why? Calculate the slope. Were you correct? Write the slope as a unit rate and explain what it means in this context.
Exercises 5 and 6 L1
y 5 L 2
5
5 x
5
Exercises 7 and 8 y 5
h(x)
5
5 x
8. Judging from the appearance of the graph alone, compare the average rate of change from x 1 to x 2 to the rate of change from x 4 to x 5. Which rate of change is larger? How is that demonstrated graphically? Exercise 9 F 9. Find a linear function that models the graph of F(p) given. F(p) Explain the slope of the line in this context, then use your model to predict the fox population when the pheasant P population is 20,000. Pheasant population (1000s) Fox population (in 100s)
1. Sketch the graph of the line 4x 3y 12. Plot and label at least three points.
10
9 8 7 6 5 4 3 2 1
0
1
2
3
4
5
6
7
5
5
4. Sketch the line passing through (1, 4) with slope m 2 3 (plot and label at least two points). Then find the equation of the line perpendicular to this line through (1, 4).
5
5 x
y
c.
5
5
5 x
5
5
5 x
5
5
6. Write the equation for line L2 shown. Is this the graph of a function? Discuss why or why not. 7. For the graph of function h(x) shown, (a) determine the value of h(2); (b) state the domain; (c) determine the value of x for which h1x2 3; and (d) state the range.
9 10
10. State the domain and range for each function below. y y a. b. 5
5. Write the equation for line L1 shown. Is this the graph of a function? Discuss why or why not.
8
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REINFORCING BASIC CONCEPTS The Various Forms of a Linear Equation In a study of mathematics, getting a glimpse of the “big picture” can be an enormous help. Learning mathematics is like building a skyscraper: The final height of the skyscraper ultimately depends on the strength of the foundation and quality of the frame supporting each new floor as it is built. Our work with linear functions and their graphs, while having a number of useful applications, is actually the foundation on which much of your future work will be built. The study of quadratic and polynomial functions and their applications all have their roots in linear equations. For this reason, it’s important that you gain a certain fluency with linear functions—even to a point where things come to you effortlessly and automatically. This level of performance requires a strong desire and a sustained effort. We begin by reviewing the basic facts a student MUST know to reach this level. MUST is an acronym for memorize, understand, synthesize, and teach others. Don’t be satisfied until you’ve done all four. Given points (x1, y1) and (x2, y2): Forms and Formulas slope formula point-slope form slope-intercept form standard form y2 y1 m y y1 m1x x1 2 y mx b Ax By C x2 x1 given any two points given slope m and given slope m and also used in linear y-intercept (0, b) systems (Chapter 6) on the line any point (x1, y1) Characteristics of Lines y-intercept x-intercept increasing decreasing (0, y) (x, 0) m 7 0 m 6 0 let x 0, let y 0, line slants upward line slants downward solve for y solve for x from left to right from left to right Practice for Speed and Accuracy For the two points given, (a) compute the slope of the line and state whether the line is increasing or decreasing; (b) find the equation of the line using point-slope form; (c) write the equation in slope-intercept form; (d) write the equation in standard form; and (e) find the x- and y-intercepts and graph the line. 1. P1(0, 5); P2(6, 7) 4. P1 15, 42; P2 13, 22
2. P1(3, 2); P2(0, 9) 5. P1 12, 52; P2 16, 12
3. P1(3, 2); P2(9, 5) 6. P1 12, 72; P2 18, 22
2.5 Analyzing the Graph of a Function Learning Objectives In Section 2.5 you will learn how to:
A. Determine whether a function is even, odd, or neither
B. Determine intervals where a function is positive or negative
C. Determine where a function is increasing or decreasing
D. Identify the maximum and minimum values of a function
E. Develop a formula to calculate rates of change for any function
In this section, we’ll consolidate and refine many of the ideas we’ve encountered related to functions. When functions and graphs are applied as real-world models, we create a numeric and visual representation that enables an informed response to questions involving maximum efficiency, positive returns, increasing costs, and other relationships that can have a great impact on our lives.
A. Graphs and Symmetry While the domain and range of a function will remain dominant themes in our study, for the moment we turn our attention to other characteristics of a function’s graph. We begin with the concept of symmetry.
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Symmetry with Respect to the y-Axis
Consider the graph of f 1x2 x4 4x2 shown in Figure 2.38, where the portion of the graph to the left of the y-axis appears to be a mirror image of the portion to the right. A function is symmetric to the y-axis if, given any point (x, y) on the graph, the point 1x, y2 is also on the graph. We note that 11, 32 is on the graph, as is 11, 32, and that 12, 02 is an x-intercept of the graph, as is (2, 0). Functions that are symmetric to the y-axis are also known as even functions and in general we have:
Figure 2.38 5
y f(x) x4 4x2 (2.2, ~4)
(2.2, ~4)
(2, 0)
(2, 0)
5
5
x
(1, 3) 5 (1, 3)
Even Functions: y-Axis Symmetry A function f is an even function if and only if, for each point (x, y) on the graph of f, the point (x, y) is also on the graph. In function notation f 1x2 f 1x2
Symmetry can be a great help in graphing new functions, enabling us to plot fewer points, and to complete the graph using properties of symmetry.
EXAMPLE 1
Graphing an Even Function Using Symmetry a. The function g(x) in Figure 2.39 is known to be even. Draw the complete graph (only the left half is shown). Figure 2.39 2 y b. Show that h1x2 x3 is an even function using 5 the arbitrary value x k [show h1k2 h1k2 ], g(x) then sketch the complete graph using h(0), (1, 2) h(1), h(8), and y-axis symmetry. (1, 2)
Solution
a. To complete the graph of g (see Figure 2.39) use the points (4, 1), (2, 3), (1, 2), and y-axis symmetry to find additional points. The corresponding ordered pairs are (4, 1), (2, 3), and (1, 2), which we use to help draw a “mirror image” of the partial graph given. 2 b. To prove that h1x2 x3 is an even function, we must show h1k2 h1k2 for any 2 1 constant k. After writing x3 as 3x2 4 3, we have: h1k2 h1k2
3 1k2 4 3 1k2 4 2
The proof can also be 2 demonstrated by writing x3 1 as A x3 B 2, and you are asked to complete this proof in Exercise 82.
2
2 1k2 2 1k2 3
WORTHY OF NOTE
1 3
2
3
(4, 1)
(2, 3)
2
3 2 3 2 2 k 2 k✓
(2, 3) 5
Figure 2.40 y 5
(8, 4)
first step of proof 1 3
(4, 1) 5 x
5
evaluate h 1k2 and h (k )
(1, 1)
radical form
10
result: 1k2 2 k 2
Using h102 0, h112 1, and h182 4 with y-axis symmetry produces the graph shown in Figure 2.40.
h(x)
(8, 4)
(1, 1) (0, 0)
10
x
5
Now try Exercises 7 through 12
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Symmetry with Respect to the Origin Another common form of symmetry is known as symmetry to the origin. As the name implies, the graph is somehow “centered” at (0, 0). This form of symmetry is easy to see for closed figures with their center at (0, 0), like certain polygons, circles, and ellipses (these will exhibit both y-axis symmetry and symmetry to the origin). Note the relation graphed in Figure 2.41 contains the points (3, 3) and (3, 3), along with (1, 4) and (1, 4). But the function f(x) in Figure 2.42 also contains these points and is, in the same sense, symmetric to the origin (the paired points are on opposite sides of the x- and y-axes, and a like distance from the origin). Figure 2.41
Figure 2.42
y
y
5
5
(1, 4)
(1, 4)
(3, 3)
(3, 3)
5
5
x
f(x)
5
5
(3, 3) (1, 4)
x
(3, 3) (1, 4)
5
5
Functions symmetric to the origin are known as odd functions and in general we have: Odd Functions: Symmetry about the Origin A function f is an odd function if and only if, for each point (x, y) on the graph of f, the point (x, y) is also on the graph. In function notation f 1x2 f 1x2
EXAMPLE 2
Graphing an Odd Function Using Symmetry a. In Figure 2.43, the function g(x) given is known to be odd. Draw the complete graph (only the left half is shown). b. Show that h1x2 x3 4x is an odd function using the arbitrary value x k 3show h1x2 h1x2 4 , then sketch the graph using h122 , h112 , h(0), and odd symmetry.
Solution
a. To complete the graph of g, use the points (6, 3), (4, 0), and (2, 2) and odd symmetry to find additional points. The corresponding ordered pairs are (6, 3), (4, 0), and (2, 2), which we use to help draw a “mirror image” of the partial graph given (see Figure 2.43). Figure 2.43
Figure 2.44
y
y
10
5
(1, 3)
g(x)
WORTHY OF NOTE While the graph of an even function may or may not include the point (0, 0), the graph of an odd function will always contain this point.
(6, 3)
(2, 2) (4, 0)
10
h(x)
(4, 0)
(2, 0) x (6, 3) 10
(2, 2)
5
(2, 0) (0, 0)
5
(1, 3) 10
5
x
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Section 2.5 Analyzing the Graph of a Function
b. To prove that h1x2 x3 4x is an odd function, we must show that h1k2 h1k2. h1k2 h1k2
1k2 41k2 3 k3 4k 4 k3 4k k3 4k ✓ 3
A. You’ve just learned how to determine whether a function is even, odd, or neither
Using h122 0, h112 3, and h102 0 with symmetry about the origin produces the graph shown in Figure 2.44. Now try Exercises 13 through 24
B. Intervals Where a Function Is Positive or Negative
Consider the graph of f 1x2 x2 4 shown in Figure 2.45, which has x-intercepts at (2, 0) and (2, 0). Since x-intercepts have the form (x, 0) they are also called the zeroes of the function (the x-input causes an output of 0). Just as zero on the number line separates negative numbers from positive numbers, the zeroes of a function that crosses the x-axis separate x-intervals where a function is negative from x-intervals where the function is positive. Noting that outputs ( y-values) are positive in Quadrants I and II, f 1x2 7 0 in intervals where its graph is above the x-axis. Conversely, f 1x2 6 0 in x-intervals where its graph is below the x-axis. To illustrate, compare the graph of f in Figure 2.45, with that of g in Figure 2.46. Figure 2.45 5
(2, 0)
Figure 2.46
y f(x) x2 4
5
y g(x) (x 4)2
(2, 0)
5
5
x
3
(4, 0)
5
x
(0, 4) 5
WORTHY OF NOTE These observations form the basis for studying polynomials of higher degree, where we extend the idea to factors of the form 1x r2 n in a study of roots of multiplicity (also see the Calculator Exploration and Discovery feature in this chapter).
EXAMPLE 3
5
The graph of f is a parabola, with x-intercepts of (2, 0) and (2, 0). Using our previous observations, we note f 1x2 0 for x 1q, 2 4 ´ 32, q2 and f 1x2 6 0 for x 12, 22 . The graph of g is also a parabola, but is entirely above or on the x-axis, showing g1x2 0 for x . The difference is that zeroes coming from factors of the form ( x r) (with degree 1) allow the graph to cross the x-axis. The zeroes of f came from 1x 221x 22 0. Zeroes that come from factors of the form 1x r2 2 (with degree 2) cause the graph to “bounce” off the x-axis since all outputs must be nonnegative. The zero of g came from 1x 42 2 0.
Solving an Inequality Using a Graph Use the graph of g1x2 x3 2x2 4x 8 given to solve the inequalities a. g1x2 0 b. g1x2 6 0
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Solution
From the graph, the zeroes of g (x-intercepts) occur at (2, 0) and (2, 0). a) For g1x2 0, the graph must be on or above the x-axis, meaning the solution is x 32, q 2 . b) For g1x2 6 0, the graph must be below the x-axis, and the solution is x 1q, 22 . As we might have anticipated from the graph, factoring by grouping gives g1x2 1x 221x 22 2, with the graph crossing the x-axis at 2, and bouncing off the x-axis (intersects without crossing) at x 2.
y (0, 8) g(x) 5
5
x
5 2
Now try Exercises 25 through 28
Even if the function is not a polynomial, the zeroes can still be used to find x-intervals where the function is positive or negative.
EXAMPLE 4
Solution
B. You’ve just learned how to determine intervals where a function is positive or negative
y
Solving an Inequality Using a Graph
For the graph of r 1x2 1x 1 2 shown, solve a. r 1x2 0 b. r 1x2 7 0 a. The only zero of r is at (3, 0). The graph is on or below the x-axis for x 3 1, 34 , so r 1x2 0 in this interval. b. The graph is above the x-axis for x 13, q 2 , and r 1x2 7 0 in this interval.
10
r(x) 10
10
x
10
Now try Exercises 29 through 32
C. Intervals Where a Function Is Increasing or Decreasing In our study of linear graphs, we said a graph was increasing if it “rose” when viewed from left to right. More generally, we say the graph of a function is increasing on a given interval if larger and larger x-values produce larger and larger y-values. This suggests the following tests for intervals where a function is increasing or decreasing. Increasing and Decreasing Functions Given an interval I that is a subset of the domain, with x1 and x2 in I and x2 7 x1, 1. A function is increasing on I if f 1x2 2 7 f 1x1 2 for all x1 and x2 in I (larger inputs produce larger outputs). 2. A function is decreasing on I if f 1x2 2 6 f 1x1 2 for all x1 and x2 in I (larger inputs produce smaller outputs). 3. A function is constant on I if f 1x2 2 f 1x1 2 for all x1 and x2 in I (larger inputs produce identical outputs).
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Section 2.5 Analyzing the Graph of a Function
f (x)
f (x) is increasing on I
f (x)
f(x2)
f(x) is constant on I
f (x)
f (x) is decreasing on I
f (x1)
f(x1)
f (x2)
f (x2)
f (x1)
f (x1)
f (x1) x1
x2
x
x1
Interval I
Interval I
x2 x1 and f (x2) f (x1) for all x I graph rises when viewed from left to right
x
x1
Questions about the behavior of a function are asked with respect to the y outputs: where is the function positive, where is the function increasing, etc. Due to the input/ output, cause/effect nature of functions, the response is given in terms of x, that is, what is causing outputs to be negative, or to be decreasing.
x2 x1 and f(x2) f(x1) for all x I graph is level when viewed from left to right
x2 x1 and f (x2) f (x1) for all x I graph falls when viewed from left to right
1 7 2
x2 7 x1
and
and
f 112 7 f 122 8 7 7
Figure 2.47 10
y f(x) x2 4x 5 (2, 9) (0, 5)
(1, 0)
(5, 0)
5
5
x
10
x (3, 2)
f 1x2 2 7 f 1x1 2
Finding Intervals Where a Function Is Increasing or Decreasing
y 5
Use the graph of v(x) given to name the interval(s) where v is increasing, decreasing, or constant. Solution
x
x2
Interval I
Consider the graph of f 1x2 x2 4x 5 in Figure 2.47. Since the graph opens downward with the vertex at (2, 9), the function must increase until it reaches this maximum value at x 2, and decrease thereafter. Notationally we’ll write this as f 1x2c for x 1q, 22 and f 1x2T for x 12, q 2. Using the interval 13, 22 shown, we see that any larger input value from the interval will indeed produce a larger output value, and f 1x2c on the interval. For instance,
WORTHY OF NOTE
EXAMPLE 5
x2
f(x2)
f(x1)
f (x2)
From left to right, the graph of v increases until leveling off at (2, 2), then it remains constant until reaching (1, 2). The graph then increases once again until reaching a peak at (3, 5) and decreases thereafter. The result is v 1x2c for x 1q, 22 ´ 11, 32, v1x2T for x 13, q2, and v(x) is constant for x 12, 12 .
v(x)
5
5
x
5
Now try Exercises 33 through 36
Notice the graph of f in Figure 2.47 and the graph of v in Example 5 have something in common. It appears that both the far left and far right branches of each graph point downward (in the negative y-direction). We say that the end behavior of both graphs is identical, which is the term used to describe what happens to a graph as x becomes very large. For x 7 0, we say a graph is, “up on the right” or “down on the right,” depending on the direction the “end” is pointing. For x 6 0, we say the graph is “up on the left” or “down on the left,” as the case may be.
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EXAMPLE 6
Describing the End Behavior of a Graph
y
The graph of f 1x2 x 3x is shown. Use the graph to name intervals where f is increasing or decreasing, and comment on the end-behavior of the graph.
5
3
Solution
C. You’ve just learned how to determine where a function is increasing or decreasing
From the graph we observe that: f 1x2c for x 1q, 12 ´ 11, q 2 , and f 1x2T for x 11, 12 . The end behavior of the graph is down on the left, up on the right (down/up).
f(x) x2 3x
5
5
x
5
Now try Exercises 37 through 40
D. More on Maximum and Minimum Values The y-coordinate of the vertex of a parabola where a 6 0, and the y-coordinate of “peaks” from other graphs are called maximum values. A global maximum (also called an absolute maximum) names the largest range value over the entire domain. A local maximum (also called a relative maximum) gives the largest range value in a specified interval; and an endpoint maximum can occur at an endpoint of the domain. The same can be said for the corresponding minimum values. We will soon develop the ability to locate maximum and minimum values for quadratic and other functions. In future courses, methods are developed to help locate maximum and minimum values for almost any function. For now, our work will rely chiefly on a function’s graph.
EXAMPLE 7
Analyzing Characteristics of a Graph Analyze the graph of function f shown in Figure 2.48. Include specific mention of a. domain and range, b. intervals where f is increasing or decreasing, c. maximum (max) and minimum (min) values, d. intervals where f 1x2 0 and f 1x2 6 0, e. whether the function is even, odd, or neither.
Solution
D. You’ve just learned how to identify the maximum and minimum values of a function
a. Using vertical and horizontal boundary lines show the domain is x , with range: y 1q, 7 4 . b. f 1x2c for x 1q, 32 ´ 11, 52 shown in blue in Figure 2.49, and f 1x2T for x 13, 12 ´ 15, q2 as shown in red. c. From Part (b) we find that y 5 at (3, 5) and y 7 at (5, 7) are local maximums, with a local minimum of y 1 at (1, 1). The point (5, 7) is also a global maximum (there is no global minimum). d. f 1x2 0 for x 36, 8 4; f 1x2 6 0 for x 1q, 62 ´ 18, q 2 e. The function is neither even nor odd.
Figure 2.48 y 10
(5, 7) f(x)
(3, 5)
(1, 1) 10
10
x
10
Figure 2.49 y 10
(5, 7) (3, 5) (6, 0)
(1, 1)
10
(8, 0) 10 x
10
Now try Exercises 41 through 48
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Section 2.5 Analyzing the Graph of a Function
The ideas presented here can be applied to functions of all kinds, including rational functions, piecewise-defined functions, step functions, and so on. There is a wide variety of applications in Exercises 51 through 58.
E. Rates of Change and the Difference Quotient We complete our study of graphs by revisiting the concept of average rates of change. In many business, scientific, and economic applications, it is this attribute of a function that draws the most attention. In Section 2.4 we computed average rates of change by selecting two points from a graph, and computing the slope of the secant line: ¢y y2 y1 m . With a simple change of notation, we can use the function’s equax ¢x 2 x1 tion rather than relying on a graph. Note that y2 corresponds to the function evaluated at x2: y2 f 1x2 2 . Likewise, y1 f 1x1 2 . Substituting these into the slope formula yields f 1x2 2 f 1x1 2 ¢y , giving the average rate of change between x1 and x2 for any func x2 x1 ¢x tion f (assuming the function is smooth and continuous between x1 and x2). Average Rate of Change For a function f and [x1, x2] a subset of the domain, the average rate of change between x1 and x2 is f 1x2 2 f 1x1 2 ¢y , x1 x2 x2 x1 ¢x
Average Rates of Change Applied to Projectile Velocity A projectile is any object that is thrown, shot, or cast upward, with no continuing source of propulsion. The object’s height (in feet) after t sec is modeled by the function h1t2 16t2 vt k, where v is the initial velocity of the projectile, and k is the height of the object at contact. For instance, if a soccer ball is kicked upward from ground level (k 0) with an initial speed of 64 ft/sec, the height of the ball t sec later is h1t2 16t2 64t. From Section 2.5, we recognize the graph will be a parabola and evaluating the function for t 0 to 4 produces Table 2.4 and the graph shown in Figure 2.50. Experience tells us the ball is traveling at a faster rate immediately after being kicked, as compared to when it nears its maximum height where it ¢height momentarily stops, then begins its descent. In other words, the rate of change ¢time has a larger value at any time prior to reaching its maximum height. To quantify this we’ll compute the average rate of change between t 0.5 and t 1, and compare it to the average rate of change between t 1 and t 1.5. Table 2.4 WORTHY OF NOTE Keep in mind the graph of h represents the relationship between the soccer ball’s height in feet and the elapsed time t. It does not model the actual path of the ball.
Time in seconds
Figure 2.50
Height in feet
0
0
1
48
2
64
3
48
4
0
h(t) 80
(2, 64) 60
(3, 48)
(1, 48) 40 20
0
1
2
3
4
5
t
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EXAMPLE 8
Calculating Average Rates of Change For the projectile function h1t2 16t2 64t, find a. the average rate of change for t 30.5, 1 4 b. the average rate of change for t 31, 1.5 4 . Then graph the secant lines representing these average rates of change and comment.
Solution
Using the given intervals in the formula a.
h112 h10.52 ¢h ¢t 1 10.52 48 28 0.5 40
b.
h1t2 2 h1t1 2 ¢h yields ¢t t2 t1
h11.52 h112 ¢h ¢t 1.5 1 60 48 0.5 24
For t 30.5, 1 4 , the average rate of change is meaning the height of the ball is increasing at an average rate of 40 ft/sec. For t 31, 1.5 4 , the average rate of change has slowed to 24 1 , and the soccer ball’s height is increasing at only 24 ft/sec. The secant lines representing these rates of change are shown in the figure, where we note the line from the first interval (in red), has a steeper slope than the line from the second interval (in blue). 40 1,
h(t) 80 60
(1.5, 60) (1, 48)
40
(0.5, 28) 20
(4, 0)
(0, 0) 0
1
2
3
4
Now try Exercises 59 through 64
5
t
¢y for ¢x each new interval. Using a slightly different approach, we can develop a general formula for the average rate of change. This is done by selecting a point x1 x from the domain, then a point x2 x h that is very close to x. Here, h 0 is assumed to be a small, arbitrary constant, meaning the interval [x, x h] is very small as well. Substituting x h for x2 and x for x1 in the rate of change formula gives f 1x h2 f 1x2 f 1x h2 f 1x2 ¢y . The result is called the difference quotient ¢x 1x h2 x h and represents the average rate of change between x and x h, or equivalently, the slope of the secant line for this interval. The approach in Example 8 works very well, but requires us to recalculate
The Difference Quotient For a function f (x) and constant h 0, if f is smooth and continuous on the interval containing x and x h, f 1x h2 f 1x2 h is the difference quotient for f.
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215
Section 2.5 Analyzing the Graph of a Function
Note the formula has three parts: (1) the function f evaluated at x h S f 1x h2 , (2) the function f itself, and (3) the constant h. For convenience, the expression f 1x h2 can be evaluated and simplified prior to its use in the difference quotient. (1)
(2)
f 1x h2 f 1x2 h (3)
EXAMPLE 9
Computing a Difference Quotient and Average Rates of Change For a. b. c.
Solution
f 1x2 x2 4x, Compute the difference quotient. Find the average rate of change in the intervals [1.9, 2.0] and [3.6, 3.7]. Sketch the graph of f along with the secant lines and comment on what you notice.
a. For f 1x2 x2 4x, f 1x h2 1x h2 2 41x h2 x2 2xh h2 4x 4h Using this result in the difference quotient yields,
f 1x h2 f 1x2 1x2 2xh h2 4x 4h2 1x2 4x2 h h 2 2 x 2xh h 4x 4h x2 4x h 2 2xh h 4h h h12x h 42 h 2x 4 h b. For the interval [1.9, 2.0], x 1.9 and h 0.1. The slope of the secant line is ¢y 211.92 4 0.1 0.1. For the ¢x 5 interval [3.6, 3.7], x 3.6 and h 0.1. The slope of this secant line is ¢y 213.62 4 0.1 3.3. ¢x 4 c. After sketching the graph of f and the secant lines from each interval (see the figure), we note the slope of the first line (in red) is negative and very near zero, while the slope of 5 the second (in blue) is positive and very steep.
substitute into the difference quotient
eliminate parentheses
combine like terms
factor out h result
y
6
Now try Exercises 65 through 76
x
You might be familiar with Galileo Galilei and his studies of gravity. According to popular history, he demonstrated that unequal weights will fall equal distances in equal time periods, by dropping cannonballs from the upper floors of the Leaning Tower of Pisa. Neglecting air resistance, this distance an object falls is modeled by the function d1t2 16t2, where d(t) represents the distance fallen after t sec. Due to the effects of gravity, the velocity of the object increases as it falls. In other words, the ¢distance velocity or the average rate of change is a nonconstant (increasing) rate of ¢time change. We can analyze this rate of change using the difference quotient.
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CHAPTER 2 Relations, Functions, and Graphs
EXAMPLE 10
Applying the Difference Quotient in Context A construction worker drops a heavy wrench from atop the girder of new skyscraper. Use the function d1t2 16t2 to a. Compute the distance the wrench has fallen after 2 sec and after 7 sec. b. Find a formula for the velocity of the wrench (average rate of change in distance per unit time). c. Use the formula to find the rate of change in the intervals [2, 2.01] and [7, 7.01]. d. Graph the function and the secant lines representing the average rate of change. Comment on what you notice.
Solution
a. Substituting t 2 and t 7 in the given function yields d122 16122 2 16142 64
d172 16172 2 161492 784
evaluate d 1t 2 16t 2 square input multiply
After 2 sec, the wrench has fallen 64 ft; after 7 sec, the wrench has fallen 784 ft. b. For d1t2 16t2, d1t h2 161t h2 2, which we compute separately. d1t h2 161t h2 2 161t2 2th h2 2 16t2 32th 16h2
substitute t h for t square binomial distribute 16
Using this result in the difference quotient yields
116t2 32th 16h2 2 16t2 d1t h2 d1t2 h h 2 16t 32th 16h2 16t2 h 2 32th 16h h h132t 16h2 h 32t 16h
substitute into the difference quotient
eliminate parentheses
combine like terms
factor out h and simplify result
For any number of seconds t and h a small increment of time thereafter, the 32t 16h distance velocity of the wrench is modeled by . time 1 c. For the interval 3t, t h 4 32, 2.01 4, t 2 and h 0.01: 32122 1610.012 ¢distance ¢time 1 64 0.16 64.16
substitute 2 for t and 0.01 for h
Two seconds after being dropped, the velocity of the wrench is approximately 64.16 ft/sec. For the interval 3 t, t h4 37, 7.01 4, t 7 and h 0.01: 32172 1610.012 ¢distance ¢time 1 224 0.16 224.16
substitute 7 for t and 0.01 for h
Seven seconds after being dropped, the velocity of the wrench is approximately 224.16 ft/sec (about 153 mph).
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Section 2.5 Analyzing the Graph of a Function
d.
217
y 1000
Distance fallen (ft)
800
600
400
200
E. You’ve learned how to develop a formula to calculate rates of change for any function
0 1
2
3
4
5
6
7
8
9
10
x
Time in seconds
The velocity increases with time, as indicated by the steepness of each secant line. Now try Exercises 77 and 78
TECHNOLOGY HIGHLIGHT
Locating Zeroes, Maximums, and Minimums Figure 2.51
Figure 2.52 10
▲
Graphically, the zeroes of a function appear as x-intercepts with coordinates (x, 0). An estimate for these zeroes can easily be found using a graphing calculator. To illustrate, enter the function y x2 8x 9 on the Y = screen and graph it using the standard window ( ZOOM 6). We access the option for finding zeroes by pressing 2nd TRACE (CALC), which displays the screen shown in Figure 2.51. Pressing the number “2” selects 2:zero and returns you to the graph, where you’re asked to enter a “Left Bound.” The calculator is asking you to narrow the area it has to search. Select any number conveniently to the left of the x-intercept you’re interested in. For this graph, we entered a left bound of “0” (press ENTER ). The calculator marks this choice with a “ ” marker (pointing to the right), then asks you to enter a “Right Bound.” Select any value to the right of the x-intercept, but be sure the value you enter bounds 10 only one intercept (see Figure 2.52). For this graph, a choice of 10 would include both x-intercepts, while a choice of 3 would bound only the intercept on the left. After entering 3, the calculator asks for a “Guess.” This option is used when there is more than one zero in the interval, and most of the time we’ll bypass this option by pressing ENTER again. The calculator then finds the zero in the selected interval (if it exists), with the coordinates displayed at the bottom of the screen (Figure 2.53). The maximum and minimum values of a function are located in the same way. Enter y x3 3x 2 on the Y = screen and 10 graph the function. As seen in Figure 2.54, it appears a local maximum occurs near x 1. To check, we access the CALC 4:maximum option, which returns you to the graph and asks you for a Left Bound, a Right Bound, and a Guess as before. After entering a left bound of “3” and a right bound of “0,” and
10
10
Figure 2.53 10
10
10
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CHAPTER 2 Relations, Functions, and Graphs
Figure 2.54
Figure 2.55
5
5
4
4
4
4
5
▲
▲
5
bypassing the Guess option (note the “ ” and “ ” markers), the calculator locates the maximum you selected, and again displays the coordinates. Due to the algorithm used by the calculator to find these values, a decimal number is sometimes displayed, even if the actual value is an integer (see Figure 2.55). Use a calculator to find all zeroes and to locate the local maximum and minimum values. Round to the nearest hundredth as needed. Exercise 1: y 2x2 4x 5
Exercise 2: y w3 3w 1
Exercise 3: y x2 8x 9
Exercise 4: y x3 2x2 4x 8
Exercise 5: y x4 5x2 2x
Exercise 6: y x1x 4
2.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The graph of a polynomial will cross through the x-axis at zeroes of factors of degree 1, and off the x-axis at the zeroes from linear factors of degree 2.
2. If f 1x2 f 1x2 for all x in the domain, we say that f is an function and symmetric to the axis. If f 1x2 f 1x2 , the function is and symmetric to the .
3. If f 1x2 2 7 f 1x1 2 for x1 6 x2 for all x in a given interval, the function is in the interval.
4. If f 1c2 f 1x2 for all x in a specified interval, we say that f (c) is a local for this interval. 5. Discuss/Explain the following statement and give an example of the conclusion it makes. “If a function f is decreasing to the left of (c, f (c)) and increasing to the right of (c, f (c)), then f (c) is either a local or a global minimum.” 6. Without referring to notes or textbook, list as many features/attributes as you can that are related to analyzing the graph of a function. Include details on how to locate or determine each attribute.
DEVELOPING YOUR SKILLS
The following functions are known to be even. Complete each graph using symmetry.
7.
8.
y 5
5
5 x
5
y 10
10
10 x
10
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Section 2.5 Analyzing the Graph of a Function
Determine whether the following functions are even: f 1k2 f 1k2 .
27. f 1x2 x4 2x2 1; f 1x2 7 0 y
9. f 1x2 7x 3x 5 10. p1x2 2x 6x 1 2
5
4
1 1 11. g1x2 x4 5x2 1 12. q1x2 2 x 3 x
5
The following functions are known to be odd. Complete each graph using symmetry.
13.
14.
y 10
5 x
5
28. f 1x2 x3 2x2 4x 8; f 1x2 0
y 10
y
1 5 10
10 x
10
5 x
10 x 5
10
10
Determine whether the following functions are odd: f 1k2 f 1k2 . 3 15. f 1x2 41 xx
1 16. g1x2 x3 6x 2
17. p1x2 3x3 5x2 1
18. q1x2
1 x x
3 29. p1x2 1 x 1 1; p1x2 0 y 5
5
Determine whether the following functions are even, odd, or neither.
19. w1x2 x3 x2
3 20. q1x2 x2 3x 4
1 3 21. p1x2 2 1x x3 4
22. g1x2 x3 7x
23. v1x2 x3 3x
24. f 1x2 x4 7x2 30
Use the graphs given to solve the inequalities indicated. Write all answers in interval notation.
25. f 1x2 x 3x x 3; f 1x2 0 3
2
5 x
p(x)
5
30. q1x2 1x 1 2; q1x2 7 0 y 5
q(x) 5
5 x
5
31. f 1x2 1x 12 3 1; f 1x2 0 y
5
y
5
5 5
f(x)
5 x
5 x
5 5
26. f 1x2 x3 2x2 4x 8; f 1x2 7 0
32. g1x2 1x 12 3 1; g1x2 6 0 y 5
y
5
5
5 x
g(x) 5
5 1
5 x
219
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CHAPTER 2 Relations, Functions, and Graphs
Name the interval(s) where the following functions are increasing, decreasing, or constant. Write answers using interval notation. Assume all endpoints have integer values.
33. y V1x2
34. y H1x2 y
y
10
5
For Exercises 41 through 48, determine the following (answer in interval notation as appropriate): (a) domain and range of the function; (b) zeroes of the function; (c) interval(s) where the function is greater than or equal to zero, or less than or equal to zero; (d) interval(s) where the function is increasing, decreasing, or constant; and (e) location of any local max or min value(s).
42. y f 1x2
41. y H1x2 10
10 x
5
5 x
H(x)
10
5
y (2, 5)
5
(1, 0)
35. y f 1x2
y
5
36. y g1x2
(3.5, 0)
(3, 0)
5
5
5 x
5 x
y
y
10 5 (0, 5)
10
f(x)
8
43. y g1x2
g(x)
6
10
5
10 x
44. y h1x2 y
y
4
5
2
10
2
4
6
8
5
x
10
5
For Exercises 37 through 40, determine (a) interval(s) where the function is increasing, decreasing or constant, and (b) comment on the end behavior.
37. p1x2 0.51x 22 3
3 38. q1x2 2 x1
y
2
5
5
45. y Y1
46. y Y2 y
5
y
5
(0, 4)
(2, 0)
x
2
y
5
5 x
g(x)
5
(1, 0)
5
5 x
5
5
39. y f 1x2
5 x
(0, 1)
5
5
5 x
5
5
47. p1x2 1x 32 3 1
40. y g1x2 y
y
5
5 x
48. q1x2 x 5 3 y
y
10
10
5
10 8
10
5 3
10 x
5 x
6
10
10 x
4 2
10
10
2
4
6
8
10
x
WORKING WITH FORMULAS
49. Conic sections—hyperbola: y 13 24x2 36 While the conic sections are not covered in detail until later in the course, we’ve already developed a number of tools that will help us understand these relations and their graphs. The equation here gives the “upper branches” of a hyperbola, as shown in the figure. Find the following by analyzing the
y
equation: (a) the domain and range; (b) the zeroes of the relation; (c) interval(s) where y is increasing or decreasing; and (d) whether the relation is even, odd, or neither.
5
f(x) 5
5 x
5
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Section 2.5 Analyzing the Graph of a Function
50. Trigonometric graphs: y sin1x2 and y cos1x2 The trigonometric functions are also studied at some future time, but we can apply the same tools to analyze the graphs of these functions as well. The graphs of y sin x and y cos x are given, graphed over the interval x 3180, 360 4 degrees. Use them to find (a) the range of the functions; (b) the zeroes of the functions; (c) interval(s) where
y is increasing/decreasing; (d) location of minimum/maximum values; and (e) whether each relation is even, odd, or neither. y
y
(90, 1)
1
1
y cos x
y sin x
(90, 0) 90
90
180
270
90
360 x
1
90
180
270
360 x
1
APPLICATIONS
Height (feet)
51. Catapults and projectiles: Catapults have a long and interesting history that dates back to ancient times, when they were used to launch javelins, rocks, and other projectiles. The diagram given illustrates the path of the projectile after release, which follows a parabolic arc. Use the graph to determine the following: 80 70 60 50 40 30
20
60
100
140
180
220
260
Distance (feet)
a. State the domain and range of the projectile. b. What is the maximum height of the projectile? c. How far from the catapult did the projectile reach its maximum height? d. Did the projectile clear the castle wall, which was 40 ft high and 210 ft away? e. On what interval was the height of the projectile increasing? f. On what interval was the height of the projectile decreasing? P (millions of dollars)
52. Profit and loss: The profit of DeBartolo Construction Inc. is illustrated by the graph shown. Use the graph to t (years since 1990) estimate the point(s) or the interval(s) for which the profit P was: a. increasing b. decreasing c. constant d. a maximum 16 12 8 4 0 4 8
1 2 3 4 5 6 7 8 9 10
e. f. g. h.
a minimum positive negative zero
53. Functions and rational exponents: The graph of 2 f 1x2 x3 1 is shown. Use the graph to find: a. domain and range of the function b. zeroes of the function c. interval(s) where f 1x2 0 or f 1x2 6 0 d. interval(s) where f (x) is increasing, decreasing, or constant e. location of any max or min value(s) Exercise 53
Exercise 54 y
y 5
5
(1, 0) (1, 0) 5
(0, 1)
5
(3, 0) 5 x
(3, 0) (0, 1)
5
5 x
5
54. Analyzing a graph: Given h1x2 x2 4 5, whose graph is shown, use the graph to find: a. domain and range of the function b. zeroes of the function c. interval(s) where h1x2 0 or h1x2 0 d. interval(s) where f(x) is increasing, decreasing, or constant e. location of any max or min value(s)
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c. location of the maximum and minimum values d. the one-year period with the greatest rate of increase and the one-year period with the greatest rate of decrease
I(t) rate of interest (%) for years 1972 to 1996
55. Analyzing interest rates: The graph shown approximates the average annual interest rates on 30-yr fixed mortgages, rounded to the nearest 14 % . Use the graph to estimate the following (write all answers in interval notation). a. domain and range b. interval(s) where I(t) is increasing, decreasing, or constant
Source: 1998 Wall Street Journal Almanac, p. 446; 2004 Statistical Abstract of the United States, Table 1178
16 15 14 13 12 11 10 9 8 7
t
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
Year (1972 → 72)
D(t): Federal Deficit (in billions)
56. Analyzing the deficit: The following graph approximates the federal deficit of the United States. Use the graph to estimate the following (write answers in interval notation). a. the domain and range b. interval(s) where D(t) is increasing, decreasing, or constant
c. the location of the maximum and minimum values d. the one-year period with the greatest rate of increase, and the one-year period with the greatest rate of decrease Source: 2005 Statistical Abstract of the United States, Table 461
240 160 80 0 80 160 240 320 400
t
75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102
Year (1975 → 75)
57. Constructing a graph: Draw the function f that has the following characteristics, then state the zeroes and the location of all maximum and minimum values. [Hint: Write them as (c, f(c)).] a. Domain: x 110, q 2 b. Range: y 16, q 2 c. f 102 0; f 142 0 d. f 1x2c for x 110, 62 ´ 12, 22 ´ 14, q 2 e. f 1x2T for x 16, 22 ´ 12, 42 f. f 1x2 0 for x 3 8, 44 ´ 30, q 2 g. f 1x2 6 0 for x 1q, 82 ´ 14, 02
58. Constructing a graph: Draw the function g that has the following characteristics, then state the zeroes and the location of all maximum and minimum values. [Hint: Write them as (c, g(c)).] a. Domain: x 1q, 82 b. Range: y 36, q2 c. g102 4.5; g162 0 d. g1x2c for x 16, 32 ´ 16, 82 e. g1x2T for x 1q, 62 ´ 13, 62 f. g1x2 0 for x 1q, 9 4 ´ 33, 82 g. g1x2 6 0 for x 19, 32
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Section 2.5 Analyzing the Graph of a Function
For Exercises 59 to 64, use the formula for the average f 1x2 2 f 1x1 2 rate of change . x2 x1
height of the rocket after t sec (assume the rocket was shot from ground level). a. Find the rocket’s height at t 1 and t 2 sec. b. Find the rocket’s height at t 3 sec. c. Would you expect the average rate of change to be greater between t 1 and t 2, or between t 2 and t 3? Why? d. Calculate each rate of change and discuss your answer.
59. Average rate of change: For f 1x2 x3, (a) calculate the average rate of change for the interval x 2 and x 1 and (b) calculate the average rate of change for the interval x 1 and x 2. (c) What do you notice about the answers from parts (a) and (b)? (d) Sketch the graph of this function along with the lines representing these average rates of change and comment on what you notice. 60. Average rate of change: Knowing the general 3 shape of the graph for f 1x2 1x, (a) is the average rate of change greater between x 0 and x 1 or between x 7 and x 8? Why? (b) Calculate the rate of change for these intervals and verify your response. (c) Approximately how many times greater is the rate of change? 61. Height of an arrow: If an arrow is shot vertically from a bow with an initial speed of 192 ft/sec, the height of the arrow can be modeled by the function h1t2 16t2 192t, where h(t) represents the height of the arrow after t sec (assume the arrow was shot from ground level).
a. What is the arrow’s height at t 1 sec? b. What is the arrow’s height at t 2 sec? c. What is the average rate of change from t 1 to t 2? d. What is the rate of change from t 10 to t 11? Why is it the same as (c) except for the sign? 62. Height of a water rocket: Although they have been around for decades, water rockets continue to be a popular toy. A plastic rocket is filled with water and then pressurized using a handheld pump. The rocket is then released and off it goes! If the rocket has an initial velocity of 96 ft/sec, the height of the rocket can be modeled by the function h1t2 16t2 96t, where h(t) represents the
223
63. Velocity of a falling object: The impact velocity of an object dropped from a height is modeled by v 12gs, where v is the velocity in feet per second (ignoring air resistance), g is the acceleration due to gravity (32 ft/sec2 near the Earth’s surface), and s is the height from which the object is dropped. a. Find the velocity at s 5 ft and s 10 ft. b. Find the velocity at s 15 ft and s 20 ft. c. Would you expect the average rate of change to be greater between s 5 and s 10, or between s 15 and s 20? d. Calculate each rate of change and discuss your answer. 64. Temperature drop: One day in November, the town of Coldwater was hit by a sudden winter storm that caused temperatures to plummet. During the storm, the temperature T (in degrees Fahrenheit) could be modeled by the function T1h2 0.8h2 16h 60, where h is the number of hours since the storm began. Graph the function and use this information to answer the following questions. a. What was the temperature as the storm began? b. How many hours until the temperature dropped below zero degrees? c. How many hours did the temperature remain below zero? d. What was the coldest temperature recorded during this storm? Compute and simplify the difference quotient f 1x h2 f 1x2 for each function given. h
65. f 1x2 2x 3
66. g1x2 4x 1
67. h1x2 x 3
68. p1x2 x2 2
69. q1x2 x2 2x 3
70. r1x2 x2 5x 2
71. f 1x2
72. g1x2
2
2 x
3 x
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CHAPTER 2 Relations, Functions, and Graphs
day, the distance is approximated by the function d1h2 1.5 1h, where d(h) represents the viewing distance (in miles) at height h (in feet). Find the average rate of change in the intervals (a) [9, 9.01] and (b) [225, 225.01]. Then (c) graph the function along with the lines representing the average rates of change and comment on what you notice.
Use the difference quotient to find: (a) a rate of change formula for the functions given and (b)/(c) calculate the rate of change in the intervals shown. Then (d) sketch the graph of each function along with the secant lines and comment on what you notice.
73. g1x2 x2 2x 74. h1x2 x2 6x [3.0, 2.9], [0.50, 0.51] [1.9, 2.0], [5.0, 5.01]
78. A special magnifying lens is crafted and installed in an overhead projector. When the projector is x ft from the screen, the size P(x) of the projected image is x2. Find the average rate of change for P1x2 x2 in the intervals (a) [1, 1.01] and (b) [4, 4.01]. Then (c) graph the function along with the lines representing the average rates of change and comment on what you notice.
75. g1x2 x3 1 [2.1, 2], [0.40, 0.41] 76. r1x2 1x (Hint: Rationalize the numerator.) [1, 1.1], [4, 4.1] 77. The distance that a person can see depends on how high they’re standing above level ground. On a clear
EXTENDING THE THOUGHT
79. Does the function shown have a maximum value? Does it have a minimum value? Discuss/explain/justify why or why not.
c. By approximately how many seconds? d. Who was leading at t 40 seconds? e. During the race, how many seconds was the daughter in the lead? f. During the race, how many seconds was the mother in the lead?
y 5
5
5 x
5
81. Draw a general function f (x) that has a local maximum at (a, f (a)) and a local minimum at (b, f (b)) but with f 1a2 6 f 1b2 .
80. The graph drawn here depicts a 400-m race between a mother and her daughter. Analyze the graph to answer questions (a) through (f). a. Who wins the race, the mother or daughter? b. By approximately how many meters? Mother
2
82. Verify that h1x2 x3 is an even function, by first 1 rewriting h as h1x2 1x3 2 2.
Daughter
Distance (meters)
400 300 200 100
10
20
30
40
50
60
70
80
Time (seconds)
MAINTAINING YOUR SKILLS 86. (R.7) Find the surface area and volume of the cylinder shown.
83. (1.5) Solve the given quadratic equation three different ways: (a) factoring, (b) completing the square, and (c) using the quadratic formula: x2 8x 20 0 y
36 cm 12 cm
5
84. (R.5) Find the (a) sum and (b) product of the rational 3 3 expressions and . x2 2x 85. (2.3) Write the equation of the line shown, in the form y mx b.
5
5 x
5
Exercise 85
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College Algebra—
2.6 The Toolbox Functions and Transformations Learning Objectives In Section 2.6 you will learn how to:
A. Identify basic characteristics of the toolbox functions
B. Perform vertical/ horizontal shifts of a basic graph
C. Perform vertical/ horizontal reflections of a basic graph
D. Perform vertical stretches and compressions of a basic graph
E. Perform transformations on a general function f(x)
Many applications of mathematics require that we select a function known to fit the context, or build a function model from the information supplied. So far we’ve looked extensively at linear functions, and have introduced the absolute value, squaring, square root, cubing, and cube root functions. These are the six toolbox functions, so called because they give us a variety of “tools” to model the real world. In the same way a study of arithmetic depends heavily on the multiplication table, a study of algebra and mathematical modeling depends (in large part) on a solid working knowledge of these functions.
A. The Toolbox Functions While we can accurately graph a line using only two points, most toolbox functions require more points to show all of the graph’s important features. However, our work is greatly simplified in that each function belongs to a function family, in which all graphs from a given family share the characteristics of one basic graph, called the parent function. This means the number of points required for graphing will quickly decrease as we start anticipating what the graph of a given function should look like. The parent functions and their identifying characteristics are summarized here.
The Toolbox Functions Identity function
Absolute value function y
y 5
5
x
f(x) x
3
3
2
2
1
1
f(x) x 5
5
x
x
f(x) |x|
3
3
2
2
1
1
0
0
0
0
1
1
1
1
2
2
3
3
2
2
3
3
5
Domain: x (q, q), Range: y (q, q) Symmetry: odd Increasing: x (q, q) End behavior: down on the left/up on the right
Squaring function
5
Domain: x (q, q), Range: y [0, q) Symmetry: even Decreasing: x (q, 0); Increasing: x (0, q ) End behavior: up on the left/up on the right Vertex at (0, 0)
Square root function y
y
5
5
x
f(x) x2
x
f(x) 1x
3
9
2
–
2
4
1
1
0
0
1
1
1
1
2
1.41
2
4
3
1.73
3
9
4
2
2-75
x
5
x
Domain: x (q, q), Range: y [0, q) Symmetry: even Decreasing: x (q, 0); Increasing: x (0, q) End behavior: up on the left/up on the right Vertex at (0, 0)
1
–
0
0
5
x
Domain: x [0, q), Range: y [0, q) Symmetry: neither even nor odd Increasing: x (0, q) End behavior: up on the right Initial point at (0, 0)
225
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Cubing function x
f(x) x3
3
27
2
8
1
1
0
0
1
Cube root function y
y
x
3 f(x) 2 x
27
3
8
2
1
1
0
0
1
1
1
2
8
8
2
3
27
27
3
10
5
x
Domain: x (q, q), Range: y (q, q) Symmetry: odd Increasing: x (q, q) End behavior: down on the left/up on the right Point of inflection at (0, 0)
5
f(x) 3 x
10
10
x
5
Domain: x (q, q), Range: y (q, q) Symmetry: odd Increasing: x (q, q) End behavior: down on the left/up on the right Point of inflection at (0, 0)
In applications of the toolbox functions, the parent graph may be altered and/or shifted from its original position, yet the graph will still retain its basic shape and features. The result is called a transformation of the parent graph. Analyzing the new graph (as in Section 2.5) will often provide the answers needed. EXAMPLE 1
Solution
Identifying the Characteristics of a Transformed Graph The graph of f 1x2 x2 2x 3 is given. Use the graph to identify each of the features or characteristics indicated. a. function family b. domain and range c. vertex d. max or min value(s) e. end behavior f. x- and y-intercept(s)
y 5
5
5
x
5
a. The graph is a parabola, from the squaring function family. b. domain: x 1q, q 2 ; range: y 34, q 2 c. vertex: (1, 4) d. minimum value y 4 at (1, 4) e. end-behavior: up/up f. y-intercept: (0, 3); x-intercepts: (1, 0) and (3, 0) Now try Exercises 7 through 34
A. You’ve just learned how to identify basic characteristics of the toolbox functions
Note that we can algebraically verify the x-intercepts by substituting 0 for f(x) and solving the equation by factoring. This gives 0 1x 121x 32 , with solutions x 1 and x 3. It’s also worth noting that while the parabola is no longer symmetric to the y-axis, it is symmetric to the vertical line x 1. This line is called the axis of symmetry for the parabola, and will always be a vertical line that goes through the vertex.
B. Vertical and Horizontal Shifts As we study specific transformations of a graph, try to develop a global view as the transformations can be applied to any function. When these are applied to the toolbox
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functions, we rely on characteristic features of the parent function to assist in completing the transformed graph.
Vertical Translations We’ll first investigate vertical translations or vertical shifts of the toolbox functions, using the absolute value function to illustrate.
EXAMPLE 2
Solution
Graphing Vertical Translations
Construct a table of values for f 1x2 x, g1x2 x 1, and h1x2 x 3 and graph the functions on the same coordinate grid. Then discuss what you observe. A table of values for all three functions is given, with the corresponding graphs shown in the figure. x
f (x) |x|
g(x) |x| 1
h(x) |x| 3
3
3
4
0
2
2
3
1
1
1
2
2
0
0
1
3
1
1
2
2
2
2
3
1
3
3
4
0
(3, 4)5
y g(x) x 1
(3, 3) (3, 0)
1
f(x) x
5
5
x
h(x) x 3 5
Note that outputs of g(x) are one more than the outputs for f (x), and that each point on the graph of f has been shifted upward 1 unit to form the graph of g. Similarly, each point on the graph of f has been shifted downward 3 units to form the graph of h. Since h1x2 f 1x2 3. Now try Exercises 35 through 42
We describe the transformations in Example 2 as a vertical shift or vertical translation of a basic graph. The graph of g is the graph of f shifted up 1 unit, and the graph of h is the graph of f shifted down 3 units. In general, we have the following: Vertical Translations of a Basic Graph Given k 7 0 and any function whose graph is determined by y f 1x2 , 1. The graph of y f 1x2 k is the graph of f(x) shifted upward k units. 2. The graph of y f 1x2 k is the graph of f(x) shifted downward k units.
Horizontal Translations The graph of a parent function can also be shifted left or right. This happens when we alter the inputs to the basic function, as opposed to adding or subtracting something to the basic function itself. For Y1 x2 2 note that we first square inputs, then add 2, which results in a vertical shift. For Y2 1x 22 2, we add 2 to x prior to squaring and since the input values are affected, we might anticipate the graph will shift along the x-axis—horizontally.
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EXAMPLE 3
Graphing Horizontal Translations
Solution
Both f and g belong to the quadratic family and their graphs are parabolas. A table of values is shown along with the corresponding graphs.
Construct a table of values for f 1x2 x2 and g1x2 1x 22 2, then graph the functions on the same grid and discuss what you observe.
f (x ) x2
x
y
g(x) (x 2)2
3
9
1
2
4
0
1
1
1
0
0
4
1
1
9
2
4
16
3
9
25
9 8
(3, 9)
(1, 9)
7
f(x) x2
6 5
(0, 4)
4
(2, 4)
3
g(x) (x 2)2
2 1
5 4 3 2 1 1
1
2
3
4
5
x
It is apparent the graphs of g and f are identical, but the graph of g has been shifted horizontally 2 units left. Now try Exercises 43 through 46
We describe the transformation in Example 3 as a horizontal shift or horizontal translation of a basic graph. The graph of g is the graph of f, shifted 2 units to the left. Once again it seems reasonable that since input values were altered, the shift must be horizontal rather than vertical. From this example, we also learn the direction of the shift is opposite the sign: y 1x 22 2 is 2 units to the left of y x2. Although it may seem counterintuitive, the shift opposite the sign can be “seen” by locating the new x-intercept, which in this case is also the vertex. Substituting 0 for y gives 0 1x 22 2 with x 2, as shown in the graph. In general, we have Horizontal Translations of a Basic Graph Given h 7 0 and any function whose graph is determined by y f 1x2 , 1. The graph of y f 1x h2 is the graph of f(x) shifted to the left h units. 2. The graph of y f 1x h2 is the graph of f(x) shifted to the right h units. EXAMPLE 4
Graphing Horizontal Translations Sketch the graphs of g1x2 x 2 and h1x2 1x 3 using a horizontal shift of the parent function and a few characteristic points (not a table of values).
Solution
The graph of g1x2 x 2 (Figure 2.56) is the absolute value function shifted 2 units to the right (shift the vertex and two other points from y x 2 . The graph of h1x2 1x 3 (Figure 2.57) is a square root function, shifted 3 units to the left (shift the initial point and one or two points from y 1x).
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Figure 2.56 5
Figure 2.57
y g(x) x 2
y h(x) x 3
(1, 3)
5
(6, 3)
(5, 3) 5
Vertex
(2, 0)
5
(1, 2)
x 4
5
(3, 0)
x
B. You’ve just learned how to perform vertical/horizontal shifts of a basic graph
Now try Exercises 47 through 50
C. Vertical and Horizontal Reflections The next transformation we investigate is called a vertical reflection, in which we compare the function Y1 f 1x2 with the negative of the function: Y2 f 1x2 .
Vertical Reflections EXAMPLE 5
Graphing Vertical Reflections Construct a table of values for Y1 x2 and Y2 x2, then graph the functions on the same grid and discuss what you observe.
Solution
A table of values is given for both functions, along with the corresponding graphs. y 5
x
Y1 x2
Y2 x2
2
4
4
1
1
1
0
0
0
1
1
1
2
4
4
Y1 x2
(2, 4)
5 4 3 2 1
Y2 x2
1
2
3
4
5
x
(2, 4) 5
As you might have anticipated, the outputs for f and g differ only in sign. Each output is a reflection of the other, being an equal distance from the x-axis but on opposite sides. Now try Exercises 51 and 52
The vertical reflection in Example 5 is called a reflection across the x-axis. In general, Vertical Reflections of a Basic Graph For any function y f 1x2 , the graph of y f 1x2 is the graph of f(x) reflected across the x-axis.
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Horizontal Reflections It’s also possible for a graph to be reflected horizontally across the y-axis. Just as we noted that f (x) versus f 1x2 resulted in a vertical reflection, f (x) versus f 1x2 results in a horizontal reflection.
EXAMPLE 6
Graphing a Horizontal Reflection
Solution
A table of values is given here, along with the corresponding graphs.
Construct a table of values for f 1x2 1x and g1x2 1x, then graph the functions on the same coordinate grid and discuss what you observe.
x
f 1x2 1x
g1x2 1x
4
not real
2
2
not real
12 1.41
1
not real
1
0
0
0
1
1
not real
2
12 1.41
not real
4
2
not real
y (4, 2)
(4, 2) 2
g(x) x
f(x) x
1
5 4 3 2 1
1
2
3
4
5
x
1 2
The graph of g is the same as the graph of f, but it has been reflected across the y-axis. A study of the domain shows why— f represents a real number only for nonnegative inputs, so its graph occurs to the right of the y-axis, while g represents a real number for nonpositive inputs, so its graph occurs to the left. Now try Exercises 53 and 54
The transformation in Example 6 is called a horizontal reflection of a basic graph. In general, Horizontal Reflections of a Basic Graph C. You’ve just learned how to perform vertical/horizontal reflections of a basic graph
For any function y f 1x2 , the graph of y f 1x2 is the graph of f(x) reflected across the y-axis.
D. Vertically Stretching/Compressing a Basic Graph As the words “stretching” and “compressing” imply, the graph of a basic function can also become elongated or flattened after certain transformations are applied. However, even these transformations preserve the key characteristics of the graph.
EXAMPLE 7
Stretching and Compressing a Basic Graph
Construct a table of values for f 1x2 x2, g1x2 3x2, and h1x2 13x2, then graph the functions on the same grid and discuss what you observe.
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Solution
A table of values is given for all three functions, along with the corresponding graphs.
x
f (x) x 2
g(x) 3x 2
h(x) 13 x 2
3
9
27
3
2
4
12
4 3
1
1
3
1 3
0
0
0
0
1
1
3
1 3
2
4
12
4 3
3
9
27
3
y g(x) 3x2
(2, 12)
(2, 4)
f(x) x2
10
h(x) ax2 (2, d) 5 4 3 2 1
1
2
3
4
5
x
4
The outputs of g are triple those of f, making these outputs farther from the x-axis and stretching g upward (making the graph more narrow). The outputs of h are one-third those of f, and the graph of h is compressed downward, with its outputs closer to the x-axis (making the graph wider).
WORTHY OF NOTE In a study of trigonometry, you’ll find that a basic graph can also be stretched or compressed horizontally, a phenomenon known as frequency variations.
Now try Exercises 55 through 62
The transformations in Example 7 are called vertical stretches or compressions of a basic graph. In general, Stretches and Compressions of a Basic Graph
D. You’ve just learned how to perform vertical stretches and compressions of a basic graph
For any function y f 1x2 , the graph of y af 1x2 is 1. the graph of f (x) stretched vertically if a 7 1, 2. the graph of f (x) compressed vertically if 0 6 a 6 1.
E. Transformations of a General Function If more than one transformation is applied to a basic graph, it’s helpful to use the following sequence for graphing the new function. General Transformations of a Basic Graph Given a function y f 1x2 , the graph of y af 1x h2 k can be obtained by applying the following sequence of transformations: 1. horizontal shifts 2. reflections 3. stretches or compressions 4. vertical shifts We generally use a few characteristic points to track the transformations involved, then draw the transformed graph through the new location of these points.
EXAMPLE 8
Graphing Functions Using Transformations Use transformations of a parent function to sketch the graphs of 3 a. g1x2 1x 22 2 3 b. h1x2 2 1 x21
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Solution
a. The graph of g is a parabola, shifted left 2 units, reflected across the x-axis, and shifted up 3 units. This sequence of transformations in shown in Figures 2.58 through 2.60.
Figure 2.58 y (x
Figure 2.59
y
2)2
y x2
5
(4, 4)
5
Figure 2.60
y y (x 2)2
5
y g(x) (x 2)2 3
(2, 3)
(0, 4)
(2, 0) 5
(0, 2) Vertex
5
x
5
5
x
5
(4, 4)
5
5
(0, 4)
x
5
Reflected across the x-axis
Shifted left 2 units
5
(0, 1)
(4, 1)
Shifted up 3
b. The graph of h is a cube root function, shifted right 2, stretched by a factor of 2, then shifted down 1. This sequence is shown in Figures 2.61 through 2.63. Figure 2.61 y 5
Figure 2.63
Figure 2.62
3
y y 2x 2 3
y x 2
5
5
3 y h(x) 2x 21
(3, 2) (3, 1) (2, 0) Inflection (1, 1)
4
(2, 0) 6
x
4
x
4
(2, 1)
(1, 2)
6
x
(1, 3)
5
5
Shifted right 2
(3, 1) 6
5
Stretched by a factor of 2
Shifted down 1
Now try Exercises 63 through 92
Parent Function quadratic: absolute value: cube root: general:
Transformation of Parent Function y 21x 32 2 1 y 2x 3 1 3 y 21 x31 y 2f 1x 32 1
yx y x 3 y 1 x y f 1x2 2
In each case, the transformation involves a horizontal shift right 3, a vertical reflection, a vertical stretch, and a vertical shift up 1. Since the shifts are the same regardless of the initial function, we can generalize the results to any function f(x). General Function
y af 1x h2 k vertical reflections vertical stretches and compressions
S
y f 1x2
Transformed Function S
Since the shape of the initial graph does not change when translations or reflections are applied, these are called rigid transformations. Stretches and compressions of a basic graph are called nonrigid transformations, as the graph is distended in some way.
It’s important to note that the transformations can actually be applied to any function, even those that are new and unfamiliar. Consider the following pattern:
S
WORTHY OF NOTE
horizontal shift h units, opposite direction of sign
vertical shift k units, same direction as sign
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Also bear in mind that the graph will be reflected across the y-axis (horizontally) if x is replaced with x. Use this illustration to complete Exercise 9. Remember—if the graph of a function is shifted, the individual points on the graph are likewise shifted.
EXAMPLE 9
Graphing Transformations of a General Function
Solution
For g, the graph of f is (1) shifted horizontally 1 unit left, (2) reflected across the x-axis, and (3) shifted vertically 2 units down. The final result is shown in Figure 2.65.
Given the graph of f (x) shown in Figure 2.64, graph g1x2 f 1x 12 2.
Figure 2.65
Figure 2.64 y
y
5
(2, 3)
5
f (x)
g (x) (1, 1) (0, 0) 5
5
x
5
5
(3, 2) (1, 2)
(5, 2) (2, 3) 5
(3, 5)
x
5
Now try Exercises 93 through 96
Using the general equation y af 1x h2 k, we can identify the vertex, initial point, or inflection point of any toolbox function and sketch its graph. Given the graph of a toolbox function, we can likewise identify these points and reconstruct its equation. We first identify the function family and the location (h, k) of the characteristic point. By selecting one other point (x, y) on the graph, we then use the general equation as a formula (substituting h, k, and the x- and y-values of the second point) to solve for a and complete the equation.
EXAMPLE 10
Writing the Equation of a Function Given Its Graph Find the equation of the toolbox function f (x) shown in Figure 2.66.
Solution
y 5
The function f belongs to the absolute value family. The vertex (h, k) is at (1, 2). For an additional point, choose the x-intercept (3, 0) and work as follows: y ax h k 0 a 132 1 2
E. You’ve just learned how to perform transformations on a general function f(x)
Figure 2.66
0 4a 2 2 4a 1 a 2
general equation
f(x) 5
x
Now try Exercises 97 through 102
5
substitute 1 for h and 2 for k, substitute 3 for x and 0 for y simplify subtract 2
5
solve for a
The equation for f is y 12x 1 2.
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TECHNOLOGY HIGHLIGHT
Function Families Graphing calculators are able to display a number of graphs Figure 2.67 simultaneously, making them a wonderful tool for studying families of functions. Let’s begin by entering the function y |x| [actually y abs( x) MATH ] as Y1 on the Y = screen. Next, we enter different variations of the function, but always in terms of its variable name “Y1.” This enables us to simply change the basic function, and observe how the changes affect the graph. Recall that to access the function name Y1 press VARS (to access the Y-VARS menu) ENTER (to access the function variables Figure 2.68 menu) and ENTER (to select Y1). Enter the functions Y2 Y1 3 10 and Y3 Y1 6 (see Figure 2.67). Graph all three functions in the ZOOM 6:ZStandard window. The calculator draws each graph in the order they were entered and you can always 10 10 identify the functions by pressing the TRACE key and then the up arrow or down arrow keys. In the upper left corner of the window shown in Figure 2.68, the calculator identifies which function the cursor is currently on. Most 10 importantly, note that all functions in this family maintain the same “V” shape. Next, change Y1 to Y1 abs1x 32 , leaving Y2 and Y3 as is. What do you notice when these are graphed again? Exercise 1: Change Y1 to Y1 1x and graph, then enter Y1 1x 3 and graph once again. What do you observe? What comparisons can be made with the translations of Y1 abs1x2 ?
Exercise 2: Change Y1 to Y1 x2 and graph, then enter Y1 1x 32 2 and graph once again. What do you observe? What comparisons can be made with the translations of Y1 abs1x2 and Y1 1x?
2.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. After a vertical , points on the graph are farther from the x-axis. After a vertical , points on the graph are closer to the x-axis.
2. Transformations that change only the location of a graph and not its shape or form, include and . 3. The vertex of h1x2 31x 52 2 9 is at and the graph opens .
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4. The inflection point of f 1x2 21x 42 3 11 is at and the end behavior is , . 5. Given the graph of a general function f(x), discuss/ explain how the graph of F1x2 2f 1x 12 3 can be obtained. If (0, 5), (6, 7), and 19, 42 are on the graph of f, where do they end up on the graph of F?
235
Section 2.6 The Toolbox Functions and Transformations
6. Discuss/Explain why the shift of f 1x2 x2 3 is a vertical shift of 3 units in the positive direction, while the shift of g1x2 1x 32 2 is a horizontal shift 3 units in the negative direction. Include several examples linked to a table of values.
DEVELOPING YOUR SKILLS
By carefully inspecting each graph given, (a) indentify the function family; (b) describe or identify the end behavior, vertex, axis of symmetry, and x- and y-intercepts; and (c) determine the domain and range. Assume required features have integer values.
7. f 1x2 x2 4x
8. g1x2 x2 2x
y
For each graph given, (a) indentify the function family; (b) describe or identify the end behavior, initial point, and x- and y-intercepts; and (c) determine the domain and range. Assume required features have integer values.
13. p1x2 21x 4 2 14. q1x2 21x 4 2 y
y
y
5
5
5
5
p(x)
5
5 x
5
5 x
5
9. p1x2 x2 2x 3
10. q1x2 x2 2x 8
y
5
10
11. f 1x2 x2 4x 5
10 x
5
y
5 x
5
5 x
f(x)
r(x)
5
5
12. g1x2 x2 6x 5
17. g1x2 2 14 x
y
18. h1x2 21x 1 4
y
10
10
y 5
5
10
5
5
y
y
5 x
5 x
q(x)
15. r 1x2 314 x 3 16. f 1x2 21x 1 4
10
5
5
5
5
5
5 x
y 5
5
g(x) h(x) 10
10 x
10
10
10 x
10
5
5 x
5
5
5 x
5
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For each graph given, (a) indentify the function family; (b) describe or identify the end behavior, vertex, axis of symmetry, and x- and y-intercepts; and (c) determine the domain and range. Assume required features have integer values.
19. p1x2 2x 1 4
27. h1x2 x3 1 y
y 5
p(x) h(x) 5
5
5 x
5 x
y
5
5
p(x)
5 x
5
5
q(x)
5
3
5
20. q1x2 3x 2 3
y
28. p1x2 2x 1
5
3 29. q1x2 2 x11
3 30. r1x2 2 x 11
5 x
y
y 5
5 5
5
21. r1x2 2x 1 6
22. f1x2 3x 2 6
y
5
5
5 x
q(x)
5 x
r(x)
y 4
6
5
5
r(x) 5 5
5 x
5 x
f(x) 6
4
23. g1x2 3x 6
31.
24. h1x2 2x 1
y
For Exercises 31–34, identify and state the characteristic features of each graph, including (as applicable) the function family, domain, range, intercepts, vertex, point of inflection, and end behavior. y
g(x)
y 5
g(x)
5
5
5 x
5 x
h(x)
5 x
5
4
33.
4
25. f 1x2 1x 12 3
26. g1x2 1x 12 3
y
5
5
5 x
5 x
g(x)
5
5 x
5
g1x2 1x 2,
h1x2 1x 3
3 3 g1x2 2 x 3, h1x2 2 x1
37. p1x2 x, q1x2 x 5, r1x2 x 2 38. p1x2 x2,
5
y 5
5
3 36. f 1x2 2 x,
g(x)
5 x
34.
f(x)
35. f 1x2 1x,
5
f(x)
y 5
Use a table of values to graph the functions given on the same grid. Comment on what you observe.
y
5
5
5
5 x
For each graph given, (a) indentify the function family; (b) describe or identify the end behavior, inflection point, and x- and y-intercepts; and (c) determine the domain and range. Assume required features have integer values. Be sure to note the scaling of each axis.
5
y 5
6
6
5
32.
f(x)
5
q1x2 x2 4, r1x2 x2 1
Sketch each graph using transformations of a parent function (without a table of values).
39. f 1x2 x3 2 41. h1x2 x2 3
40. g1x2 1x 4 42. Y1 x 3
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c.
Use a table of values to graph the functions given on the same grid. Comment on what you observe.
d.
y
43. p1x2 x2, q1x2 1x 32 2
44. f 1x2 1x, g1x2 1x 4
y
x
x
45. Y1 x, Y2 x 1 46. h1x2 x3,
H1x2 1x 22 3
e.
f.
y
y
Sketch each graph using transformations of a parent function (without a table of values).
47. p1x2 1x 32 2
48. Y1 1x 1
51. g1x2 x
52. Y2 1x
x
3 50. f 1x2 1 x2
49. h1x2 x 3 53. f 1x2 2x
54. g1x2 1x2
3
g.
55. p1x2 x2, q1x2 2x2,
y
x
x
r1x2 12x2
56. f 1x2 1x, g1x2 4 1x, 57. Y1 x, Y2 3x, Y3 v1x2 2x3,
h.
y
3
Use a table of values to graph the functions given on the same grid. Comment on what you observe.
58. u1x2 x3,
x
h1x2 14 1x
i.
j.
y
y
1 3 x
w1x2 15x3
x
x
Sketch each graph using transformations of a parent function (without a table of values). 3 59. f 1x2 4 2 x
61. p1x2
60. g1x2 2x 62. q1x2
1 3 3x
k.
Use the characteristics of each function family to match a given function to its corresponding graph. The graphs are not scaled—make your selection based on a careful comparison.
63. f 1x2 12x3
x
64. f 1x2 2 3 x 2
65. f 1x2 1x 32 2
66. f 1x2 1x 1 1
67. f 1x2 x 4 1
68. f 1x2 1x 6
69. f 1x2 1x 6 1 70. f 1x2 x 1 71. f 1x2 1x 42 3
72. f 1x2 x 2 5
2
73. f 1x2 1x 3 1 a. y
74. f 1x2 1x 32 5 y b. 2
x
y
x
Graph each function using shifts of a parent function and a few characteristic points. Clearly state and indicate the transformations used and identify the location of all vertices, initial points, and/or inflection points.
3
2
l.
y
3 4 1x
x
75. f 1x2 1x 2 1
76. g1x2 1x 3 2
79. p1x2 1x 32 3 1
80. q1x2 1x 22 3 1
77. h1x2 1x 32 2 2
78. H1x2 1x 22 2 5
3 81. Y1 1 x12
3 82. Y2 1 x31
83. f 1x2 x 3 2
84. g1x2 x 4 2
85. h1x2 21x 12 2 3 86. H1x2 12x 2 3 3 87. p1x2 13 1x 22 3 1 88. q1x2 5 1 x12
89. Y1 2 1x 1 3 90. Y2 3 1x 2 1 91. h1x2 15 1x 32 2 1
92. H1x2 2 x 3 4
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Apply the transformations indicated for the graph of the general functions given.
93.
y 5
94.
f(x)
y 5
g(x)
97.
(1, 4) (4, 4)
Use the graph given and the points indicated to determine the equation of the function shown using the general form y af (x h) k.
98.
y 5
y (5, 6)
(3, 2)
5
(1, 2) 5
5
5 x
5 x
(4, 2)
y 5
a. b. c. d.
g1x2 2 g1x2 3 2g1x 12 1 2 g1x 12 2
96.
h(x)
y 5
a. b. c. d.
99.
5 x
4
100.
y
(0, 4)
y (4, 5) 5
(6, 4.5)
5
p(x)
r(x) 4
H(x)
3(3, 0)
5
x
(5, 1)
x
5
3
5
5 x
5
101.
102.
y 5
(1, 3)
(2, 4)
h1x2 3 h1x 22 h1x 22 1 1 4 h1x2 5
5 x
(2, 0)
y (3, 7)
7
(1, 4) 5
a. b. c. d.
H1x 32 H1x2 1 2H1x 32 1 3 H1x 22 1
f(x) 8
h(x) 2 x
(4, 0)
3 5
7 x 3
(0, 2)
WORKING WITH FORMULAS
103. Volume of a sphere: V1r2 43r3 The volume of a sphere is given by the function shown, where V(r) is the volume in cubic units and r is the radius. Note this function belongs to the cubic family of functions. Approximate the value of 4 3 to one decimal place, then graph the function on the interval [0, 3]. From your graph, estimate the volume of a sphere with radius 2.5 in. Then compute the actual volume. Are the results close?
5
(2, 0)
(1, 0) 5
5
f(x) (0, 4)
(1, 3)
(4, 4)
5 x
5
a. f 1x 22 b. f 1x2 3 c. 12 f 1x 12 d. f 1x2 1 95.
(2, 2) 5
5
g(x)
(2, 0) 5
104. Fluid motion: V1h2 4 1h 20 Suppose the velocity of a fluid flowing from an open tank (no top) through an opening in its side is given by the function shown, where V(h) is the velocity of the fluid (in feet per second) at water height h (in feet). Note this function belongs to the square root family of functions. An open tank is 25 ft deep and filled to the brim with fluid. Use a table of values to graph the function 25 ft on the interval [0, 25]. From your graph, estimate the velocity of the fluid when the water level is 7 ft, then find the actual velocity. Are the answers close? If the fluid velocity is 5 ft/sec, how high is the water in the tank?
APPLICATIONS
105. Gravity, distance, time: After being released, the time it takes an object to fall x ft is given by the function T1x2 14 1x, where T(x) is in seconds. Describe the transformation applied to obtain the
graph of T from the graph of y 1x, then sketch the graph of T for x 30, 100 4 . How long would it take an object to hit the ground if it were dropped from a height of 81 ft?
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Section 2.6 The Toolbox Functions and Transformations
106. Stopping distance: In certain weather conditions, accident investigators will use the function v1x2 4.9 1x to estimate the speed of a car (in miles per hour) that has been involved in an accident, based on the length of the skid marks x (in feet). Describe the transformation applied to obtain the graph of v from the graph of y 1x, then sketch the graph of v for x 30, 400 4. If the skid marks were 225 ft long, how fast was the car traveling? Is this point on your graph? 107. Wind power: The power P generated by a certain 8 3 v wind turbine is given by the function P1v2 125 where P(v) is the power in watts at wind velocity v (in miles per hour). (a) Describe the transformation applied to obtain the graph of P from the graph of y v3, then sketch the graph of P for v 30, 25 4 (scale the axes appropriately). (b) How much power is being generated when the wind is blowing at 15 mph? (c) Calculate the rate of change ¢P ¢v in the intervals [8, 10] and [28, 30]. What do you notice? 108. Wind power: If the power P (in watts) being generated by a wind turbine is known, the velocity of the wind can be determined using the function
3 v1P2 1 52 2 2 P. Describe the transformation applied to obtain the graph of v from the graph of 3 y 2 P, then sketch the graph of v for P 3 0, 512 4 (scale the axes appropriately). How fast is the wind blowing if 343W of power is being generated?
109. Acceleration due to gravity: The distance a ball rolls down an inclined plane is given by the function d1t2 2t2, where d(t) represents the distance in feet after t sec. (a) Describe the transformation applied to obtain the graph of d from the graph of y t2, then sketch the graph of d for t 30, 3 4. (b) How far has the ball rolled after 2.5 sec? (c) Calculate the rate of change ¢d ¢t in the intervals [1, 1.5] and [3, 3.5]. What do you notice? 110. Acceleration due to gravity: The velocity of a steel ball bearing as it rolls down an inclined plane is given by the function v1t2 4t, where v(t) represents the velocity in feet per second after t sec. Describe the transformation applied to obtain the graph of v from the graph of y t, then sketch the graph of v for t 30, 3 4. What is the velocity of the ball bearing after 2.5 sec?
EXTENDING THE CONCEPT
111. Carefully graph the functions f 1x2 x and g1x2 21x on the same coordinate grid. From the graph, in what interval is the graph of g(x) above the graph of f (x)? Pick a number (call it h) from this interval and substitute it in both functions. Is g1h2 7 f 1h2? In what interval is the graph of g(x) below the graph of f (x)? Pick a number from this interval (call it k) and substitute it in both functions. Is g1k2 6 f 1k2?
239
112. Sketch the graph of f 1x2 2x 3 8 using transformations of the parent function, then determine the area of the region in quadrant I that is beneath the graph and bounded by the vertical lines x 0 and x 6.
113. Sketch the graph of f 1x2 x2 4, then sketch the graph of F1x2 x2 4 using your intuition and the meaning of absolute value (not a table of values). What happens to the graph?
MAINTAINING YOUR SKILLS
114. (2.1) Find the distance between the points 113, 92 and 17, 122, and the slope of the line containing these points. 32 in. 32 in.
115. (R.7) Find the perimeter and area of the figure shown (note the units).
2 ft 38 in.
2 1 1 7 116. (1.1) Solve for x: x x . 3 4 2 12 117. (2.5) Without graphing, state intervals where f 1x2c and f 1x2T for f 1x2 1x 42 2 3.
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College Algebra—
2.7 Piecewise-Defined Functions Learning Objectives
Most of the functions we’ve studied thus far have been smooth and continuous. Although “smooth” and “continuous” are defined more formally in advanced courses, for our purposes smooth simply means the graph has no sharp turns or jagged edges, and continuous means you can draw the entire graph without lifting your pencil. In this section, we study a special class of functions, called piecewise-defined functions, whose graphs may be various combinations of smooth/not smooth and continuous/not continuous. The absolute value function is one example (see Exercise 31). Such functions have a tremendous number of applications in the real world.
In Section 2.7 you will learn how to:
A. State the equation and domain of a piecewisedefined function
B. Graph functions that are piecewise-defined
C. Solve applications involving piecewisedefined functions
A. The Domain of a Piecewise-Defined Function For the years 1990 to 2000, the American bald eagle remained on the nation’s endangered species list, although the number of breeding pairs was growing slowly. After 2000, the population of eagles grew at a much faster rate, and they were removed from the list soon afterward. From Table 2.5 and plotted points modeling this growth (see Figure 2.69), we observe that a linear model would fit the period from 1992 to 2000 very well, but a line with greater slope would be needed for the years 2000 to 2006 and (perhaps) beyond.
Table 2.5
Figure 2.69
Bald Eagle Breeding Pairs
Year
Bald Eagle Breeding Pairs
2
3700
10
6500
4
4400
12
7600
6
5100
14
8700
8
5700
16
9800
Source: www.fws.gov/midwest/eagle/population 1990 corresponds to year 0.
WORTHY OF NOTE For the years 1992 to 2000, we can estimate the growth in breeding pairs ¢pairs ¢time using the points (2, 3700) and (10, 6500) in the slope formula. The result is 350 1 , or 350 pairs per year. For 2000 to 2006, using (10, 6500) and (16, 9800) shows the rate of growth is significantly larger: ¢pairs 550 ¢years 1 or 550 pairs per year.
240
10,000 9,000
Bald eagle breeding pairs
Year
8,000 7,000 6,000 5,000 4,000 3,000
0
2
4
6
8
10
12
14
16
18
t (years since 1990)
The combination of these two lines would be a single function that modeled the population of breeding pairs from 1990 to 2006, but it would be defined in two pieces. This is an example of a piecewise-defined function. The notation for these functions is a large “left brace” indicating the equations it groups are part of a single function. Using selected data points and techniques from Section 2.3, we find equations that could represent each piece are p1t2 350t 3000 2-90
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241
Section 2.7 Piecewise-Defined Functions
for 0 t 10 and p1t2 550t 1000 for t 7 10, where p(t) is the number of breeding pairs in year t. The complete function is then written:
WORTHY OF NOTE In Figure 2.69, note that we indicated the exclusion of t 10 from the second piece of the function using an open half-circle.
EXAMPLE 1
function name
function pieces
domain of each piece
350t 3000 p1t2 e 550t 1000
2 t 10 t 7 10
Writing the Equation and Domain of a Piecewise-Defined Function y
The linear piece of the function shown has an equation of y 2x 10. The equation of the quadratic piece is y x 2 9x 14. Write the related piecewise-defined function, and state the domain of each piece by inspecting the graph. Solution
A. You’ve just learned how to state the equation and domain of a piecewisedefined function
10 8
f(x) 6
From the graph we note the linear portion is defined between 0 and 3, with these endpoints included as indicated by the closed dots. The domain here is 0 x 3. The quadratic portion begins at x 3 but does not include 3, as indicated by the half-circle notation. The equation is function name
function pieces
2x 10 f 1x2 e 2 x 9x 14
4
(3, 4)
2
0
2
4
6
8
10
x
domain
0x3 3 6 x7 Now try Exercises 7 and 8
Piecewise-defined functions can be composed of more than two pieces, and can involve functions of many kinds.
B. Graphing Piecewise-Defined Functions As with other functions, piecewise-defined functions can be graphed by simply plotting points. Careful attention must be paid to the domain of each piece, both to evaluate the function correctly and to consider the inclusion/exclusion of endpoints. In addition, try to keep the transformations of a basic function in mind, as this will often help graph the function more efficiently.
EXAMPLE 2
Graphing a Piecewise-Defined Function Graph the function by plotting points, then state its domain and range: h1x2 e
Solution
x 2 21x 1 1
5 x 6 1 x 1
The first piece of h is a line with negative slope, while the second is a transformed square root function. Using the endpoints of each domain specified and a few additional points, we obtain the following: For h1x2 x 2, 5 x 6 1, x
x
h(x)
3
1
1
3
1
0
1
1
1
3
3
5
h(x)
For h1x2 2 1x 1 1, x 1,
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After plotting the points from the first piece, we connect them with a line segment noting the left endpoint is included, while the right endpoint is not (indicated using a semicircle around the point). Then we plot the points from the second piece and draw a square root graph, noting the left endpoint here is included, and the graph rises to the right. From the graph we note the complete domain of h is x 3 5, q 2 , and the range is y 31, q 2 .
h(x) 5
h(x) x 2 h(x) 2 x 1 1 5
5
x
5
Now try Exercises 9 through 14
As an alternative to plotting points, we can graph each piece of the function using transformations of a basic graph, then erase those parts that are outside of the corresponding domain. Repeat this procedure for each piece of the function. One interesting and highly instructive aspect of these functions is the opportunity to investigate restrictions on their domain and the ranges that result.
Piecewise and Continuous Functions
EXAMPLE 3
Graphing a Piecewise-Defined Function Graph the function and state its domain and range: f 1x2 e
Solution
1x 32 2 12 3
0 6 x6 x 7 6
The first piece of f is a basic parabola, shifted three units right, reflected across the x-axis (opening downward), and shifted 12 units up. The vertex is at (3, 12) and the axis of symmetry is x 3, producing the following graphs. 1. Graph first piece of f (Figure 2.70).
2. Erase portion outside domain of 0 6 x 6 (Figure 2.71).
Figure 2.70
Figure 2.71 y
y 12
y 1(x 3)2 12
12
10
10
8
8
6
6
4
4
2
2
1
1 2 3 4 5 6 7 8 9 10
x
1
y 1(x 3)2 12
1 2 3 4 5 6 7 8 9 10
The second function is simply a horizontal line through (0, 3).
x
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3. Graph second piece of f (Figure 2.72).
4. Erase portion outside domain of x 7 6 (Figure 2.73).
Figure 2.72
Figure 2.73
y
y
12
12
y 1(x 3)2 12
10
10
8
8
6
6
y3
4
f (x)
4
2
2
1
1 2 3 4 5 6 7 8 9 10
1
x
1 2 3 4 5 6 7 8 9 10
x
The domain of f is x 10, q 2, and the corresponding range is y 33, 12 4. Now try Exercises 15 through 18
Piecewise and Discontinuous Functions Notice that although the function in Example 3 was piecewise-defined, the graph was actually continuous—we could draw the entire graph without lifting our pencil. Piecewise graphs also come in the discontinuous variety, which makes the domain and range issues all the more important.
EXAMPLE 4
Graphing a Discontinuous Piecewise-Defined Function Graph g(x) and state the domain and range: g1x2 e
Solution
12x 6 x 6 10
0x4 4 6 x9
The first piece of g is a line, with y-intercept (0, 6) and slope 1. Graph first piece of g (Figure 2.74).
¢y ¢x
12.
2. Erase portion outside domain of 0 x 4 (Figure 2.75).
Figure 2.74
Figure 2.75 y
y 10
10
8
8
6
6
y qx 6
4
4
2
2
1
2
3
4
5
6
7
8
9 10
x
y qx 6
1
2
3
4
5
6
7
8
9 10
x
The second is an absolute value function, shifted right 6 units, reflected across the x-axis, then shifted up 10 units.
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3. Graph second piece of g (Figure 2.76).
WORTHY OF NOTE As you graph piecewisedefined functions, keep in mind that they are functions and the end result must pass the vertical line test. This is especially important when we are drawing each piece as a complete graph, then erasing portions outside the effective domain.
4. Erase portion outside domain of 4 6 x 9 (Figure 2.77).
Figure 2.76
Figure 2.77
y x 6 10
y
y
10
10
8
8
6
6
4
4
2
2
1
2
3
4
5
6
7
8
9 10
x
g(x)
1
2
3
4
5
6
7
8
9 10
x
Note that the left endpoint of the absolute value portion is not included (this piece is not defined at x 4), signified by the open dot. The result is a discontinuous graph, as there is no way to draw the graph other than by jumping the pencil from where one piece ends to where the next begins. Using a vertical boundary line, we note the domain of g includes all values between 0 and 9 inclusive: x 3 0, 94 . Using a horizontal boundary line shows the smallest y-value is 4 and the largest is 10, but no range values exist between 6 and 7. The range is y 34, 64 ´ 37, 10 4. Now try Exercises 19 through 22 EXAMPLE 5
Graphing a Discontinuous Function The given piecewise-defined function is not continuous. Graph h(x) to see why, then comment on what could be done to make it continuous. x2 4 •x2 h1x2 1
Solution
x2 x2
The first piece of h is unfamiliar to us, so we elect to graph it by plotting points, noting x 2 is outside the domain. This produces the table shown in Figure 2.78. After connecting the points, the graph of h turns out to be a straight line, but with no corresponding y-value for x 2. This leaves a “hole” in the graph at (2, 4), as designated by the open dot. Figure 2.78
WORTHY OF NOTE The discontinuity illustrated here is called a removable discontinuity, as the discontinuity can be removed by redefining a piece of the function. Note that after factoring the first piece, the denominator is a factor of the numerator, and writing the result in lowest terms 1x 22 1x 22 gives h1x2 x 2 x 2, x 2. This is precisely the equation of the line in Figure 2.78 3 h1x2 x 2 4 .
x
h(x)
4
2
2
0
0
2
2
—
4
6
Figure 2.79
y
y
5
5
5
5
5
x
5
5
x
5
The second piece is point-wise defined, and its graph is simply the point (2, 1) shown in Figure 2.79. It’s interesting to note that while the domain of h is all real numbers (h is defined at all points), the range is y 1q, 42 ´ 14, q2 as the function never takes on the value y 4. In order for h to be continuous, we would need to redefine the second piece as y 4 when x 2. Now try Exercises 23 through 26
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To develop these concepts more fully, it will help to practice finding the equation of a piecewise-defined function given its graph, a process similar to that of Example 10 in Section 2.6.
EXAMPLE 6
Determining the Equation of a Piecewise-Defined Function Determine the equation of the piecewise-defined function shown, including the domain for each piece.
Solution
y 5
y
¢ By counting ¢x from (2, 5) to (1, 1), we find the linear portion has slope m 2, and the y-intercept must be (0, 1). The equation of the line is y 2x 1. The second piece appears to be a parabola with vertex (h, k) at (3, 5). Using this vertex with the point (1, 1) in the general form y a1x h2 2 k gives
y a1x h2 2 k 1 a11 32 2 5 4 a122 2 4 4a 1 a
4
6
x
5
general form substitute 1 for x, 1 for y, 3 for h, 5 for k simplify; subtract 5 122 2 4 divide by 4
The equation of the parabola is y 1x 32 2 5. Considering the domains shown in the figure, the equation of this piecewise-defined function must be B. You’ve just learned how to graph functions that are piecewise-defined
p1x2 e
2x 1 1x 32 2 5
2 x 1 x 7 1
Now try Exercises 27 through 30
C. Applications of Piecewise-Defined Functions The number of applications for piecewise-defined functions is practically limitless. It is actually fairly rare for a single function to accurately model a situation over a long period of time. Laws change, spending habits change, and technology can bring abrupt alterations in many areas of our lives. To accurately model these changes often requires a piecewise-defined function.
EXAMPLE 7
Modeling with a Piecewise-Defined Function For the first half of the twentieth century, per capita spending on police protection can be modeled by S1t2 0.54t 12, where S(t) represents per capita spending on police protection in year t (1900 corresponds to year 0). After 1950, perhaps due to the growth of American cities, this spending greatly increased: S1t2 3.65t 144. Write these as a piecewise-defined function S(t), state the domain for each piece,
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then graph the function. According to this model, how much was spent (per capita) on police protection in 2000? How much will be spent in 2010? Source: Data taken from the Statistical Abstract of the United States for various years.
Solution
function name
S1t2 e
function pieces
effective domain
0.54t 12 3.65t 144
0 t 50 t 7 50
Since both pieces are linear, we can graph each part using two points. For the first function, S102 12 and S1502 39. For the second function S1502 39 and S1802 148. The graph for each piece is shown in the figure. Evaluating S at t 100: S1t2 3.65t 144 S11002 3.6511002 144 365 144 221
S(t) 240 200
(80, 148)
160 120 80 40 0
(50, 39) 10 20 30 40 50 60 70 80 90 100 110
t
About $221 per capita was spent on police protection in the year 2000. For 2010, the model indicates that $257.50 per capita will be spent: S11102 257.5. Now try Exercises 33 through 44
Step Functions The last group of piecewise-defined functions we’ll explore are the step functions, so called because the pieces of the function form a series of horizontal steps. These functions find frequent application in the way consumers are charged for services, and have a number of applications in number theory. Perhaps the most common is called the greatest integer function, though recently its alternative name, floor function, has gained popularity (see Figure 2.80). This is in large part due to an improvement in notation and as a better contrast to ceiling functions. The floor function of a real number x, denoted f 1x2 :x ; or Œ x œ (we will use the first), is the largest integer less than or equal to x. For instance, :5.9 ; 5, : 7; 7, and : 3.4; 4. In contrast, the ceiling function C1x2 < x = is the smallest integer greater than or equal to x, meaning < 5.9 = 6, 0 (only y is positive)
QI x > 0, y > 0 (both x and y are positive)
sin is positive
All functions are positive
tan is positive
cos is positive
QIII x < 0, y < 0 (both x and y are negative)
EXAMPLE 5
QIV x > 0, y < 0 (only x is positive)
Evaluating Trig Functions for a Rotation Evaluate the six trig functions for
Solution
x
y q
5 . 4
5 terminates in QIII, so 4 5 . The associated point is r 4 4 12 12 a , b since x 6 0 and y 6 0 in QIII. 2 2
5 4
A rotation of
2`
r d
√22 , √22 3 2
x
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Section 5.4 Unit Circles and the Trigonometry of Real Numbers
547
This yields cosa
5 12 b 4 2
sina
5 12 b 4 2
tana
5 b1 4
12 is 12 after rationalizing, we have 2 5 5 5 seca b 12 csca b 12 cota b 1 4 4 4
Noting the reciprocal of
C. You’ve just learned how to define the six trig functions in terms of a point on the unit circle
Now try Exercises 37 through 40
D. The Trigonometry of Real Numbers Defining the trig functions in terms of a point on the Figure 5.47 unit circle is precisely what we needed to work with y 3 s 4 √2, √2 them as functions of real numbers. This is because 2 2 when r 1 and is in radians, the length of the subtended arc is numerically the same as the sr d 3 measure of the angle: s 112 1 s ! This means 4 we can view any function of as a like function of arc 1x length s, where s (see the Reinforcing Basic Concepts feature following this section). As a compromise the variable t is commonly used, with t representing either the amount of rotation or the length of the arc. As such we will assume t is a unitless quantity, although there are other reasons 3 for this assumption. In Figure 5.47, a rotation of is subtended by an arc length 4 3 of s (about 2.356 units). The reference angle for is , which we will now 4 4 refer to as a reference arc. As you work through the remaining examples and the exercises that follow, it will often help to draw a quick sketch similar to that in Figure 5.47 to determine the quadrant of the terminal side, the reference arc, and the sign of each function.
EXAMPLE 6
Evaluating Trig Functions for a Real Number t Evaluate the six trig functions for the given value of t. 3 11 a. t b. t 6 2
Solution y q
11 6
x
r k 2`
√32 , 12 3 2
11 , the arc terminates in QIV where x 7 0 and y 6 0. The 6 reference arc is , and from our previous work we know the corresponding 6 13 1 , b. This gives point (x, y) is a 2 2
a. For t
11 13 b 6 2 2 13 11 b seca 6 3 cosa
11 1 b 6 2 11 csca b 2 6
sina
11 13 b 6 3 11 cota b 13 6
tana
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3 is a quadrantal angle and the associated point is 10, 12. 2 This yields
y q
b. t
3 2
3 b0 2 3 seca b undefined 2 cosa
2`
(0, 1)
x
3 b 1 2 3 csca b 1 2
sina
3 b undefined 2 3 cota b 0 2
tana
Now try Exercises 41 through 44
3 2
As Example 6(b) indicates, as functions of a real number the concept of domain comes into play. From their definition it is apparent there are no restrictions on the domain of cosine and sine, but the domains of the other functions must be restricted to exclude division by zero. For functions with x in the denominator, we cast out the odd multiples of , since the x-coordinate of the related quadrantal points is zero: 2 3 S 10, 12, S 10, 12, and so on. The excluded values can be stated as 2 2 t k for all integers k. For functions with y in the denominator, we cast out all 2 multiples of 1t k for all integers k) since the y-coordinate of these points is zero: 0 S 11, 02, S 11, 02, 2 S 11, 02, and so on. The Domains of the Trig Functions as Functions of a Real Number For t and k , the domains of the trig functions are: cos t x
sin t y
t
t
1 sec t ; x 0 x t k 2
1 csc t ; y 0 y
y ;x0 x t k 2 x cot t ; y 0 y
t k
t k
tan t
For a given point (x, y) on the unit circle associated with the real number t, the value of each function at t can still be determined even if t is unknown.
EXAMPLE 7
Finding Function Values Given a Point on the Unit Circle
Solution
24 Using the definitions from the previous box we have cos t 7 25 , sin t 25 , and sin t 24 25 tan t cos t 7. The values of the reciprocal functions are then sec t 7 , 25 7 csc t 24, and cot t 24 .
D. You’ve just learned how to define the six trig functions in terms of a real number t
24 Given 1 7 25 , 25 2 is a point on the unit circle corresponding to a real number t, find the value of all six trig functions of t.
Now try Exercises 45 through 70
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Section 5.4 Unit Circles and the Trigonometry of Real Numbers
E. Finding a Real Number t Whose Function Value Is Known In Example 7, we were able to determine the values of the trig functions even though t was unknown. In many cases, however, we need to find the value of t. For instance, what is the value of t given 13 cos t with t in QII? Exercises of 2 this type fall into two broad categories: (1) you recognize the given number as one of the special values: 1 12 13 13 , , , 13, 1 f ; e 0, , or 2 2 2 3 (2) you don’t. If you recognize a special value, you can often name the real number t after a careful consideration of the related quadrant and required sign.
Figure 5.48 (0, 1)
y
12 , √32 √22 , √22 √32 , 12 k
d
u
(1, 0) x
but 2 remember—all other special values can be found using reference arcs and the symmetry of the circle. The diagram in Figure 5.48 reviews these special values for 0 t
EXAMPLE 8
Finding t for Given Values and Conditions Find the value of t that corresponds to the given function values. 12 a. cos t b. tan t 13; t in QIII ; t in QII 2
Solution
a. The cosine function is negative in QII and QIII, where x 6 0. We recognize 12 as a standard value for sine and cosine, related to certain multiples of 2 3 t . In QII, we have t . 4 4 b. The tangent function is positive in QI and QIII, where x and y have like signs. We recognize 13 as a standard value for tangent and cotangent, related to 4 . certain multiples of t . For tangent in QIII, we have t 3 3 Now try Exercises 71 through 94
If the given function value is not one of the special values, properties of the inverse trigonometric functions must be used to find the associated value of t. The inverse functions are developed in Section 6.5. Using radian measure and the unit circle is much more than a simple convenience to trigonometry and its applications. Whether the unit is 1 cm, 1 m, 1 km, or even 1 light-year, using 1 unit designations serves to simplify a great many practical applications, including those involving the arc length formula, s r. See Exercises 97 through 104. The following table summarizes the relationship between a special arc t (t in QI) and the value of each trig function at t. Due to the frequent use of these relationships, students are encouraged to commit them to memory.
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E. You’ve just learned how to find the real number t corresponding to given values of sin t, cos t, and tan t
t
sin t
cos t
tan t
csc t
sec t
cot t
0
0
1
0
undefined
1
undefined
6
1 2
13 2
1 13 3 13
2
2 13 2 3 13
13
4
12 2
12 2
1
12
12
1
3
13 2
1 2
13
2 2 13 3 13
2
1 13 3 13
2
1
0
undefined
1
undefined
0
5.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. A central circle is symmetric to the axis and to the .
axis, the
5 2. Since 1 13 , 12 13 2 is on the unit circle, the point in QII is also on the circle.
3. On a unit circle, cos t
, sin t
1 and tan t ; while x 1 x , and . y y
,
,
4. On a unit circle with in radians, the length of a(n) is numerically the same as the measure of the , since for s r, s when r 1. 5. Discuss/Explain how knowing only one point on the unit circle, actually gives the location of four points. Why is this helpful to a study of the circular functions? 6. A student is asked to find t using a calculator, given sin t 0.5592 with t in QII. The answer submitted is t sin1 0.5592 34°. Discuss/Explain why this answer is not correct. What is the correct response?
DEVELOPING YOUR SKILLS
Given the point is on a unit circle, complete the ordered pair (x, y) for the quadrant indicated. For Exercises 7 to 14, answer in radical form as needed. For Exercises 15 to 18, round results to four decimal places.
7. 1x, 0.82; QIII
9. a
5 , yb; QIV 13
111 11. a , yb; QI 6 13. a
111 , yb; QII 4
8. 10.6, y2; QII
10. ax,
8 b; QIV 17
113 12. ax, b; QIII 7 14. ax,
16 b; QI 5
15. 1x, 0.21372 ; QIII
16. (0.9909, y); QIV
17. (x, 0.1198); QII
18. (0.5449, y); QI
Verify the point given is on a unit circle, then use symmetry to find three more points on the circle. Results for Exercises 19 to 22 are exact, results for Exercises 23 to 26 are approximate.
19. a 21. a
13 1 , b 2 2
111 5 , b 6 6
20. a
17 3 , b 4 4
22. a
16 13 , b 3 3
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23. (0.3325, 0.9431)
25. 10.9937, 0.11212
24. 10.7707, 0.63722
26. 10.2029, 0.97922
: : triangle with a hypotenuse of length 6 3 2 1 13 1 to verify that a , b is a point on the unit circle. 2 2
40. a. sin c. sina b 2
551
b. sin 0 3 d. sina b 2
27. Use a
28. Use the results from Exercise 27 to find three additional points on the circle and name the quadrant of each point. Find the reference angle associated with each rotation, then find the associated point (x, y) on the unit circle.
29.
5 4
31.
5 6
11 33. 4 35.
25 6
30.
5 3
32.
7 4
11 34. 3 36.
39 4
Without the use of a calculator, state the exact value of the trig functions for the given angle. A diagram may help.
37. a. sina b 4 5 c. sina b 4 9 e. sina b 4 5 g. sina b 4 38. a. tana b 3 4 c. tana b 3 7 e. tana b 3 4 g. tana b 3 39. a. cos c. cosa b 2
3 b 4 7 d. sina b 4 f. sina b 4 11 b h. sina 4
b. sina
2 b 3 5 d. tana b 3 f. tana b 3 10 b h. tana 3
b. tana
b. cos 0 3 d. cosa b 2
Use the symmetry of the circle and reference arcs as needed to state the exact value of the trig functions for the given real number, without the use of a calculator. A diagram may help.
41. a. cosa b 6 7 c. cosa b 6 13 b e. cosa 6 5 g. cosa b 6
5 b 6 11 b d. cosa 6 f. cosa b 6 23 b h. cosa 6
b. cosa
42. a. csca b 6 7 c. csca b 6 13 b e. csca 6 11 b g. csca 6
5 b 6 11 b d. csca 6 f. csca b 6 17 b h. csca 6
b. csca
43. a. tan c. tana b 2
b. tan 0 3 d. tana b 2
44. a. cot c. cota b 2
b. cot 0 3 d. cota b 2
Given (x, y) is a point on a unit circle corresponding to t, find the value of all six circular functions of t.
45.
y (0.8, 0.6) t
46.
(1, 0) x
y
t
(1, 0) x
15 , 8 17 17
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47.
figure to estimate function values to one decimal place (use a straightedge). Check results using a calculator.
y
Exercises 59 to 70 t
(1, 0) x
y
q
1.5
2.0
1.0
2.5
5 , 12 13 13
0.5
48.
3.0
y
1 0.8 0.6 0.4 0.2 0 0.2 0.4 0.6 0.8 1
0 x 6.0
3.5
t (1, 0)
24 7 , 25 25
x
5.5 4.0 4.5 3 2
y
49.
5 , √11 6 6
(1, 0)
t
x
59. sin 0.75
60. cos 2.75
61. cos 5.5
62. sin 4.0
63. tan 0.8
64. sec 3.75
65. csc 2.0
66. cot 0.5
69. tana t
(1, 0) x
√5 , 2 3 3
53. 55. 57.
2 121 a , b 5 5 1 212 a , b 3 3 1 13 a , b 2 2 12 12 a , b 2 2
5 b 8
68. sina
8 b 5
70. seca
67. cosa
y
50.
51.
5.0
52. 54. 56. 58.
17 3 , b a 4 4 2 16 1 , b a 5 5 13 1 , b a 2 2 12 17 a , b 3 3
On a unit circle, the real number t can represent either the amount of rotation or the length of the arc when we associate t with a point (x, y) on the circle. In the circle diagram shown, the real number t in radians is marked off along the circumference. For Exercises 59 through 70, name the quadrant in which t terminates and use the
5 b 8 8 b 5
Without using a calculator, find the value of t in [0, 2 ) that corresponds to the following functions.
71. sin t
13 ; t in QII 2
1 72. cos t ; t in QIV 2 73. cos t
23 ; t in QIII 2
1 74. sin t ; t in QIV 2 75. tan t 13; t in QII 76. sec t 2; t in QIII 77. sin t 1; t is quadrantal 78. cos t 1; t is quadrantal
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Without using a calculator, find the two values of t (where possible) in [0, 2 ) that make each equation true.
79. sec t 12 81. tan t undefined 83. cos t
12 2
85. sin t 0
2 13 82. csc t undefined
80. csc t
84. sin t
12 2
86. cos t 1
87. Given 1 34, 45 2 is a point on the unit circle that corresponds to t. Find the coordinates of the point corresponding to (a) t and (b) t .
553
7 24 88. Given 125 , 25 2 is a point on the unit circle that corresponds to t. Find the coordinates of the point corresponding to (a) t and (b) t .
Find an additional value of t in [0, 2 ) that makes the equation true.
89. sin 0.8 0.7174 90. cos 2.12 0.5220 91. cos 4.5 0.2108 92. sin 5.23 0.8690 93. tan 0.4 0.4228 94. sec 5.7 1.1980
WORKING WITH FORMULAS
95. From Pythagorean triples to points on the x y unit circle: 1x, y, r2 S a , , 1b r r While not strictly a “formula,” dividing a Pythagorean triple by r is a simple algorithm for rewriting any Pythagorean triple as a triple with hypotenuse 1. This enables us to identify certain points on a unit circle, and to evaluate the six trig functions of the related acute angle. Rewrite each x y triple as a triple with hypotenuse 1, verify a , b is r r a point on the unit circle, and evaluate the six trig functions using this point. a. (5, 12, 13) b. (7, 24, 25) c. (12, 35, 37) d. (9, 40, 41)
96. The sine and cosine of 12k 12 ; k 4 In the solution to Example 8(a), we mentioned 12 were standard values for sine and cosine, 2 “related to certain multiples of .” Actually, we 4 meant “odd multiples of .” The odd multiples of 4 are given by the “formula” shown, where k is 4 any integer. (a) What multiples of are generated 4 by k 3, 2, 1, 0, 1, 2, 3? (b) Find similar formulas for Example 8(b), where 13 is a standard value for tangent and cotangent, “related to certain multiples of .” 6
APPLICATIONS
97. Laying new sod: When new sod is laid, a heavy roller is used to press the sod down to ensure good contact with the ground 1 ft beneath. The radius of the roller is 1 ft. (a) Through what angle (in radians) has the roller turned after being pulled across 5 ft of yard? (b) What angle must the roller turn through to press a length of 30 ft?
98. Cable winch: A large winch with a radius of 1 ft winds in 3 ft of cable. (a) Through what angle (in radians) has it turned? (b) What angle must it turn through in order to winch in 12.5 ft of cable?
Exercise 98
99. Wiring an apartment: In the wiring of an apartment complex, electrical wire is being pulled from a spool with radius 1 decimeter
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(1 dm 10 cm). (a) What length (in decimeters) is removed as the spool turns through 5 rad? (b) How many decimeters are removed in one complete turn 1t 22 of the spool? 100. Barrel races: In the barrel races popular at some family reunions, contestants stand on a hard rubber barrel with a radius of 1 cubit (1 cubit 18 in.), and try to “walk the barrel” from the start line to the finish line without falling. (a) What distance (in cubits) is traveled as the barrel is walked through an angle of 4.5 rad? (b) If the race is 25 cubits long, through what angle will the winning barrel walker walk the barrel?
from the Sun as 1 AU. In this case, 1 AU would be 480 million miles. If Jupiter travels through an angle of 4 rad about the Sun, (a) what distance in the “new” astronomical units (AU) has it traveled? (b) How many of the new AU does it take to complete one-half an orbit about the Sun? (c) What distance in the new AU is the dwarf planet Pluto from the Sun? 103. Compact disk circumference: A standard compact disk has a radius of 6 cm. Call this length “1 unit.” Mark a starting point on any large surface, then carefully roll the compact disk along this line without slippage, through one full revolution (2 rad) and mark this spot. Take an accurate measurement of the resulting line segment. Is the result close to 2 “units” (2 6 cm)? Exercise 104 104. Verifying s r: On a protractor, carefully measure the distance from the middle of the protractor’s eye to the edge of the eye 1 unit protractor along the 0° mark, to the nearest half-millimeter. Call this length “1 unit.” Then use a ruler to draw a straight line on a blank sheet of paper, and with the protractor on edge, start the zero degree mark at one end of the line, carefully roll the protractor until it reaches 1 radian 157.3°2 , and mark this spot. Now measure the length of the line segment created. Is it very close to 1 “unit” long? 110 70
12 60 0
13 50 0
10 170
0 180
20 160
3 1500
4 14 0 0
100 80
180 0
90 90
170 10
102. If you include the dwarf planet Pluto, Jupiter is the middle (fifth of nine) planet from the Sun. Suppose astronomers had decided to use its average distance
80 100
160 20
101. If the Earth travels through an angle of 2.5 rad about the Sun, (a) what distance in astronomical units (AU) has it traveled? (b) How many AU does it take for one complete orbit around the Sun?
70 110
1500 3
Interplanetary measurement: In the year 1905, astronomers began using astronomical units or AU to study the distances between the celestial bodies of our solar system. One AU represents the average distance between the Earth and the Sun, which is about 93 million miles. Pluto is roughly 39.24 AU from the Sun.
60 0 12
0 14 0 4
50 0 13
EXTENDING THE CONCEPT
105. In this section, we discussed the domain of the circular functions, but said very little about their range. Review the concepts presented here and determine the range of y cos t and y sin t. In other words, what are the smallest and largest output values we can expect? sin t , what can you say about the cos t range of the tangent function?
106. Since tan t
Use the radian grid given with Exercises 59–70 to answer Exercises 107 and 108.
107. Given cos12t2 0.6 with the terminal side of the arc in QII, (a) what is the value of 2t? (b) What quadrant is t in? (c) What is the value of cos t? (d) Does cos12t2 2cos t? 108. Given sin12t2 0.8 with the terminal side of the arc in QIII, (a) what is the value of 2t? (b) What quadrant is t in? (c) What is the value of sin t? (d) Does sin12t2 2sin t?
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Mid-Chapter Check
MAINTAINING YOUR SKILLS
109. (2.1) Given the points (3, 4) and (5, 2) find a. the distance between them b. the midpoint between them c. the slope of the line through them.
111. (1.3) Solve each equation: a. 2x 1 3 7 b. 2 1x 1 3 7 112. (3.2) Use the rational zeroes theorem to solve the equation completely, given x 3 is one root.
110. (4.3) Use a calculator to find the value of each expression, then explain the results. a. log 2 log 5 ______ b. log 20 log 2 ______
x4 x3 3x2 3x 18 0
MID-CHAPTER CHECK 1. The city of Las Vegas, Nevada, is located at 36°06¿36– north latitude, 115°04¿48– west longitude. (a) Convert both measures to decimal Exercise 2 degrees. (b) If the radius of y the Earth is 3960 mi, how far north of the equator is Las 86 cm Vegas?
7. Use the special triangle to state the length of side b and hypotenuse c.
2. Find the angle subtended by the arc shown in the figure, then determine the area of the sector.
20 cm
x
3. Evaluate without using a calculator: (a) cot 60° 7 and (b) sin a b. 4
60
c
7 cm
8. From a distance of 30
325 ft, the angle of b elevation from eye level to the top of the world’s tallest tree is 48°. If the person taking the sighting is 6 ft tall, how tall is the tree to the nearest foot? 9. On a unit circle, if arc t has length 5.94, (a) in what quadrant does it terminate? (b) What is its reference arc? (c) Of sin t, cos t, and tan t, which are negative for this value of t?
4. Evaluate using a calculator: (a) sec a b and 12 (b) tan 83.6°. 5. Complete the ordered pair indicated on the unit circle in the figure and find the value of all six trigonometric functions at this point.
10. At a high school gym, sightings are taken from the basketball half-court line to help determine the height of the backboard. The angle of elevation to the top of the backboard is 18°, while the angle of elevation to the bottom of the backboard is 13.4°. If the half-court line is 40 ft away, how tall is the backboard? Answer in feet and inches to the nearest inch.
Exercise 5 y
t 1
6. For the point on the unit circle in Exercise 5, find the related angle t in both degrees (to tenths) and radians (to ten-thousandths).
Exercise 7
√53 , y
x
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REINFORCING BASIC CONCEPTS Trigonometry of the Real Numbers and the Wrapping Function The circular functions are sometimes discussed in terms of what is called a wrapping function, in which the real number line is literally wrapped around the unit circle. This approach can help illustrate how the trig functions can be seen as functions of the real numbers, and apart from any reference to a right triangle. Figure 5.49 shows (1) a unit circle with the location of certain points on the circumference clearly marked and (2) a number line that has been marked in multiples of to coincide with the length of the special arcs (integers are shown in the background). Figure 5.50 shows this same 12 number line wrapped counterclockwise around the unit circle in the positive direction. Note how the resulting diagram 12 12 12 , b on the unit circle: cos confirms that an arc of length t is associated with the point a and 4 2 2 4 2 12 5 13 1 5 13 1 5 sin , b: cos . ; while an arc of length of t is associated with the point a and sin 4 2 6 2 2 6 2 6 2 Use this information to complete the exercises given. Figure 5.50
Figure 5.49 12, √32 √2 √2 2, 2 √3 1 2, 2
(1, 0)
(0, 1) y
1 , √3 2 2 √2, √2 2 2 √3 , 1 2 2 45 x 4
7 2 12 3 3 2 4
0
12
1 6
4
3
2 5 12 2
3
7 2 3 5 11 12 3 4 6 12
1. What is the ordered pair associated with an arc length of t 2. What arc length t is associated with the ordered pair a
t
5 6 11 12 3
2
y
5 12 3 1
45
4
4
6
12
0 x
2 ? What is the value of cos t? sin t? 3
13 1 , b? Is cos t positive or negative? Why? 2 2
3. If we continued to wrap this number line all the way around the circle, in what quadrant would an arc length of 11 t terminate? Would sin t be positive or negative? 6 4. Suppose we wrapped a number line with negative values clockwise around the unit circle. In what quadrant would 5 an arc length of t terminate? What is cos t? sin t? What positive rotation terminates at the same point? 3
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5.5 Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions Learning Objectives
As with the graphs of other functions, trigonometric graphs contribute a great deal toward the understanding of each trig function and its applications. For now, our primary interest is the general shape of each basic graph and some of the transformations that can be applied. We will also learn to analyze each graph, and to capitalize on the features that enable us to apply the functions as real-world models.
In Section 5.5 you will learn how to:
A. Graph f1t2 sin t using special values and symmetry
A. Graphing f(t) sin t
B. Graph f1t2 cos t using special values and symmetry
Consider the following table of values (Table 5.4) for sin t and the special angles in QI. Table 5.4
C. Graph sine and cosine t
0
6
sin t
0
1 2
functions with various amplitudes and periods
D. Investigate graphs of the reciprocal functions f1t2 csc 1Bt2 and f1t2 sec 1Bt2
3
2
12 2
13 2
1
to 2 (QII), special values taken from the unit circle show sine values are decreasing from 1 to 0, but through the same output values as in QI. See Figures 5.51 through 5.53. Observe that in this interval, sine values are increasing from 0 to 1. From
E. Write the equation for a given graph
Figure 5.51
Figure 5.52
y (0, 1)
y (0, 1)
12 , √32
4
Figure 5.53 y (0, 1)
√22 , √22
√32 , 12
2 3
3 4
(1, 0) x
(1, 0)
5 6
(1, 0) x
(1, 0)
(1, 0) x
(1, 0)
3 22 sin a b 4 2
2 23 sin a b 3 2
5 1 sin a b 6 2
With this information we can extend our table of values through , noting that sin 0 (see Table 5.5). Table 5.5 t
0
6
4
3
2
2 3
3 4
5 6
sin t
0
1 2
12 2
13 2
1
13 2
12 2
1 2
0
Using the symmetry of the circle and the fact that y is negative in QIII and QIV, we can complete the table for values between and 2. EXAMPLE 1
Finding Function Values Using Symmetry Use the symmetry of the unit circle and reference arcs of special values to complete Table 5.6. Recall that y is negative in QIII and QIV. Table 5.6 t
7 6
5 4
4 3
3 2
5 3
7 4
11 6
2
sin t
5-55
557
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12 , sin t depending on 4 2 1 the quadrant of the terminal side. Similarly, for any reference arc of , sin t , 6 2 13 while any reference arc of will give sin t . The completed table is 3 2 shown in Table 5.7. Symmetry shows that for any odd multiple of t
Table 5.7 t
7 6
sin t
0
5 4
1 2
4 3
12 2
3 2
13 2
1
5 3
13 2
7 4
11 6
12 2
1 2
2 0
Now try Exercises 7 and 8
13 1 12 0.5, 0.71, and 0.87, we plot these points and 2 2 2 connect them with a smooth curve to graph y sin t in the interval 30, 2 4. The first Noting that
five plotted points are labeled in Figure 5.54. Figure 5.54
, 6
0.5
4 , 0.71
3 , 0.87
sin t
2 , 1
1
ng asi cre De
ng
si
0.5
rea
Solution
In c
558
(0, 0)
2
3 2
2
t
0.5 1
Expanding the table from 2 to 4 using reference arcs and the unit circle 13 b sin a b since shows that function values begin to repeat. For example, sin a 6 6 9 r ; sin a b sin a b since r , and so on. Functions that cycle through a 6 4 4 4 set pattern of values are said to be periodic functions. Periodic Functions A function f is said to be periodic if there is a positive number P such that f 1t P2 f 1t2 for all t in the domain. The smallest number P for which this occurs is called the period of f. For the sine function we have sin t sin1t 22, as in sin a sin a
13 b 6
9 2b and sin a b sin a 2b, with the idea extending to all other real 6 4 4
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numbers t: sin t sin1t 2k2 for all integers k. The sine function is periodic with period P 2. Although we initially focused on positive values of t in 3 0, 24, t 6 0 and k 6 0 are certainly possibilities and we note the graph of y sin t extends infinitely in both directions (see Figure 5.55). Figure 5.55
2 , 1
y 1
y sin t
0.5
4 3
3
2 3
0.5
3
2 3
t
4 3
1
2 , 1
Finally, both the graph and the unit circle confirm that the range of y sin t is 3 1, 14 , and that y sin t is an odd function. In particular, the graph shows sina b sina b, and the unit circle 2 2 shows (Figure 5.56) sin t y, and sin1t2 y, from which we obtain sin1t2 sin t by substitution. As a handy reference, the following box summarizes the main characteristics of y sin t.
Figure 5.56 y (0, 1)
y sin t ( x, y) t
(1, 0)
(1, 0) t
(0, 1)
(x, y)
Characteristics of f(t) sin t For all real numbers t and integers k, Domain 1q, q 2
Range 3 1, 14
Period
Symmetry
Maximum value
Minimum value
odd
sin t 1 at t 2k 2
sin t 1 3 2k at t 2
Decreasing
Zeroes
3 b a , 2 2
t k
sin1t2 sin t Increasing
a0,
EXAMPLE 2
3 b ´ a , 2b 2 2
Using the Period of sin t to Find Function Values
2
Use the characteristics of f 1t2 sin t to match the given value of t to the correct value of sin t. 17 11 a. t a 8b b. t c. t d. t 21 e. t 4 6 2 2 12 1 I. sin t 1 II. sin t III. sin t 1 IV. sin t V. sin t 0 2 2
x
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Solution
8b sin , the correct match is (IV). 4 4 Since sin a b sin , the correct match is (II). 6 6 17 Since sin a b sina 8b sin , the correct match is (I). 2 2 2 Since sin 1212 sin1 202 sin , the correct match is (V). 11 3 3 b sin a 4b sin a b, the correct match is (III). Since sin a 2 2 2
a. Since sin a b. c. d. e.
Now try Exercises 9 and 10
Many of the transformations applied to algebraic graphs can also be applied to trigonometric graphs. These transformations may stretch, reflect, or translate the graph, but it will still retain its basic shape. In numerous applications it will help if you’re able to draw a quick, accurate sketch of the transformations involving f 1t2 sin t. To assist this effort, we’ll begin with the interval 30, 2 4 , combine the characteristics just listed with some simple geometry, and offer the following four-step process. Steps I through IV are illustrated in Figures 5.57 through 5.60. Draw the y-axis, mark zero halfway up, with 1 and 1 an equal distance from this zero. Then draw an extended t-axis and tick mark 2 to the extreme right (Figure 5.57). Step II: On the t-axis, mark halfway between 0 and 2 and label it “,” mark 3 . Halfway halfway between on either side and label the marks and 2 2 between these you can draw additional tick marks to represent the remain ing multiples of (Figure 5.58). 4 Step III: Next, lightly draw a rectangular frame, which we’ll call the reference rectangle, P 2 units wide and 2 units tall, centered on the t-axis and with the y-axis along one side (Figure 5.59). Step IV: Knowing y sin t is positive and increasing in QI, that the range is 3 1, 14 , that the zeroes are 0, , and 2, and that maximum and minimum values occur halfway between the zeroes (since there is no horizontal shift), we can draw a reliable graph of y sin t by partitioning the rectangle into four equal parts to locate these values (note bold tick-marks). We will call this partitioning of the reference rectangle the rule of fourths, since we are then P scaling the t-axis in increments of (Figure 5.60). t 4 Step I:
Figure 5.57 y 1
0 2
1
Figure 5.58
Figure 5.59 1
1
1
Increasing 0
0 2
1
Figure 5.60 y
y
y
3 2
2
2
t 1
3 2
2
t
Decreasing
0 2
1
3 2
2
t
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EXAMPLE 3
561
Graphing y sin t Using a Reference Rectangle 3 d. Use steps I through IV to draw a sketch of y sin t for the interval c , 2 2
Solution
A. You’ve just learned how to graph f1t2 sin t using special values and symmetry
Start by completing steps I and II, then y 1 extend the t-axis to include . Beginning Increasing Decreasing 2 at , draw a reference rectangle 2 units 3 t 2 2 2 2 wide and 2 units tall, centered on the x-axis 1 3 aending at b. After applying the rule of 2 fourths, we note the zeroes occur at t 0 and t , with the max/min values spaced equally between and on either side. Plot these points and connect them with a smooth curve (see the figure). Now try Exercises 11 and 12
B. Graphing f(t) cos t
With the graph of f1t2 sin t established, sketching the graph of f 1t2 cos t is a very natural next step. First, note that when t 0, cos t 1 so the graph of y cos t 1 13 b, will begin at (0, 1) in the interval 30, 2 4 . Second, we’ve seen a , 2 2 12 13 1 12 a , b and a , b are all points on the unit circle since they satisfy 2 2 2 2 x2 y2 1. Since cos t x and sin t y, the equation cos2t sin2t 1 can be 1 13 obtained by direct substitution. This means if sin t , then cos t and 2 2 vice versa, with the signs taken from the appropriate quadrant. The table of values for cosine then becomes a simple variation of the table for sine, as shown in Table 5.8 for t 30, 4. Table 5.8 t
0
6
4
3
2
2 3
3 4
5 6
sin t
0
1 0.5 2
12 0.71 2
13 0.87 2
1
13 0.87 2
12 0.71 2
1 0.5 2
0
cos t
1
13 0.87 2
12 0.71 2
1 0.5 2
0
1 0.5 2
12 0.71 2
13 0.87 2
1
The same values can be taken from the unit circle, but this view requires much less effort and easily extends to values of t in 3, 2 4. Using the points from Table 5.8 and its extension through 3 , 2 4 , we can draw the graph of y cos t in 3 0, 2 4 and identify where the function is increasing and decreasing in this interval. See Figure 5.61.
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Figure 5.61
D
2
g sin rea ec
0.5
2 , 0
2
0
ng
1
6 , 0.87 4 , 0.71 3 , 0.5 Inc rea si
cos t
2
3 2
t
0.5
1
The function is decreasing for t in 10, 2, and increasing for t in 1, 22. The end result appears to be the graph of y sin t shifted to the left units, a fact more easily 2 seen if we extend the graph to as shown. This is in fact the case, and 2 is a relationship we will later prove in Chapter 6. Like y sin t, the function y cos t is periodic with period P 2, with the graph extending infinitely in both directions. Finally, we note that cosine is an even function, meaning cos1t2 cos t for all t in the domain. For instance, cos a b cos a b 0 (see Figure 5.61). Here is a 2 2 summary of important characteristics of the cosine function. Characteristics of f(t) cos t For all real numbers t and integers k, Domain 1q, q 2
Range 3 1, 14
Period
Symmetry
Maximum value
Minimum value
even cos1t2 cos t
cos t 1 at t 2k
cos t 1 at t 2k
Increasing
Decreasing
Zeroes
1, 22
EXAMPLE 4
10, 2
B. You’ve just learned how to graph f1t2 cos t using special values and symmetry
t
k 2
Graphing y cos t Using a Reference Rectangle Draw a sketch of y cos t for t in c,
Solution
2
3 d. 2
After completing steps I and II, y extend the negative x-axis to include 1 y cos t . Beginning at , draw a Decreasing reference rectangle 2 units wide and 2 units tall, centered on the 3 0 t 2 2 2 x-axis. After applying the rule of Increasing fourths, we note the zeroes will 1 occur at t /2 and t /2, with the max/min values spaced equally between these zeroes and on either side 1at t , t 0, and t 2. Finally, we extend the graph to include 3/2. Now try Exercises 13 and 14
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563
WORTHY OF NOTE
C. Graphing y A sin(Bt) and y A cos(Bt)
Note that the equations y A sin t and y A cos t both indicate y is a function of t, with no reference to the unit circle definitions cos t x and sin t y.
In many applications, trig functions have maximum and minimum values other than 1 and 1, and periods other than 2. For instance, in tropical regions the maximum and minimum temperatures may vary by no more than 20°, while for desert regions this difference may be 40° or more. This variation is modeled by the amplitude of sine and cosine functions.
Amplitude and the Coefficient A (assume B 1) For functions of the form y A sin t and y A cos t, let M represent the Maximum Mm value and m the minimum value of the functions. Then the quantity gives the 2 Mm average value of the function, while gives the amplitude of the function. 2 Amplitude is the maximum displacement from the average value in the positive or negative direction. It is represented by A, with A playing a role similar to that seen for algebraic graphs 3Af 1t2 vertically stretches or compresses the graph of f, and reflects it across the t-axis if A 6 0 4. Graphs of the form y sin t (and y cos t) can quickly be sketched with any amplitude by noting (1) the zeroes of the function remain fixed since sin t 0 implies A sin t 0, and (2) the maximum and minimum values are A and A, respectively, since sin t 1 or 1 implies A sin t A or A. Note this implies the reference rectangle will be 2A units tall and P units wide. Connecting the points that result with a smooth curve will complete the graph.
EXAMPLE 5
Graphing y A sin t Where A 1
Solution
With an amplitude of A 4, the reference rectangle will be 2142 8 units tall, by 2 units wide, centered on the x-axis. Using the rule of fourths, the zeroes are still t 0, t , and t 2, with the max/min values spaced equally between. The maximum value is 4 sin a b 4112 4, with a minimum value of 2 3 4 sin a b 4112 4. Connecting these points with a “sine curve” gives the 2 graph shown 1y sin t is also shown for comparison).
Draw a sketch of y 4 sin t in the interval 30, 2 4.
4
y 4 sin t Zeroes remain fixed 2
y sin t
3 2
2
t
4
Now try Exercises 15 through 20
Period and the Coefficient B While basic sine and cosine functions have a period of 2, in many applications the period may be very long (tsunami’s) or very short (electromagnetic waves). For the equations y A sin1Bt2 and y A cos1Bt2, the period depends on the value of B. To see why, consider the function y cos12t2 and Table 5.9. Multiplying input values
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by 2 means each cycle will be completed twice as fast. The table shows that y cos12t2 completes a full cycle in 30, 4 , giving a period of P (Figure 5.62, red graph). Table 5.9 t
0
4
2
3 4
2t
0
2
3 2
2
cos(2t)
1
0
1
0
1
Dividing input values by 2 (or multiplying by 12 2 will cause the function to complete a cycle only half as fast, doubling the time required to complete a full cycle. Table 5.10 shows y cos A 12t B completes only one-half cycle in 2 (Figure 5.62, blue graph). Table 5.10 (values in blue are approximate) t
0
4
2
3 4
5 4
3 2
7 4
2
1 t 2
0
8
4
3 8
2
5 8
3 4
7 8
1 cos a tb 2
1
0.92
12 2
0.38
0
0.38
0.92
1
The graphs of y cos t, y cos12t2,
12 2
Figure 5.62
y cos(2t) and y cos A 12t B shown in Figure 5.62 1 clearly illustrate this relationship and how the value of B affects the period of a graph. To find the period for arbitrary values 2 of B, the formula P is used. Note for B 1 2 y cos12t2, B 2 and P , as 2 2 1 1 4. shown. For y cos a tb, B , and P 2 2 1/2 y
y cos t
2
3
y cos 12 t
4
t
Period Formula for Sine and Cosine For B a real number and functions y A sin1Bt2 and y A cos1Bt2, 2 . P B To sketch these functions for periods other than 2, we still use a reference rectangle of height 2A and length P, then break the enclosed t-axis in four equal parts to help draw the graph. In general, if the period is “very large” one full cycle is appropriate for the graph. If the period is very small, graph at least two cycles. Note the value of B in Example 6 includes a factor of . This actually happens quite frequently in applications of the trig functions.
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EXAMPLE 6
Solution
Graphing y A cos(Bt), Where A, B 1
Draw a sketch of y 2 cos10.4t2 for t in 3, 2 4 .
The amplitude is A 2, so the reference rectangle will be 2122 4 units high. Since A 6 0 the graph will be vertically reflected across the t-axis. The period is 2 P 5 (note the factors of reduce to 1), so the reference rectangle will 0.4 be 5 units in length. Breaking the t-axis into four parts within the frame (rule of fourths) gives A 14 B 5 54 units, indicating that we should scale the t-axis in multiples 1 10 of 4. Note the zeroes occur at 54 and 15 4 , with a maximum value at 4 . In cases where the factor reduces, we scale the t-axis as a “standard” number line, and estimate the location of multiples of . For practical reasons, we first draw the unreflected graph (shown in blue) for guidance in drawing the reflected graph, which is then extended to fit the given interval. y
C. You’ve just learned how to graph sine and cosine functions with various amplitudes and periods
y 2cos(0.4t)
2
3
1
2
1
1
2
3
2
4
5
6
t
1
y 2 cos(0.4t)
2
Now try Exercises 21 through 32
D. Graphs of y csc(Bt) and y sec(Bt) The graphs of these reciprocal functions follow quite naturally from the graphs of y A sin1Bt2 and y A cos1Bt2, by using these observations: (1) you cannot divide by zero, (2) the reciprocal of a very small number is a very large number (and vice versa), and (3) the reciprocal of 1 is 1. Just as with rational functions, division 1 by zero creates a vertical asymptote, so the graph of y csc t will have a sin t vertical asymptote at every point where sin t 0. This occurs at t k, where k is an integer 1p2, , 0, , 2, p2. Further, when csc1Bt2 1, sin1Bt2 1 since the reciprocal of 1 and 1 are still 1 and 1, respectively. Finally, due to observation 2, the graph of the cosecant function will be increasing when the sine function is decreasing, and decreasing when the sine function is increasing. In most cases, we graph y csc1Bt2 by drawing a sketch of y sin1Bt2, then using these observations as demonstrated in Example 7. In doing so, we discover that the period of the cosecant function is also 2 and that y csc1Bt2 is an odd function. EXAMPLE 7
Graphing a Cosecant Function
Solution
The related sine function is y sin t, which means we’ll draw a rectangular frame 2 2A 2 units high. The period is P 2, so the reference frame will be 2 1 units in length. Breaking the t-axis into four parts within the frame means each tick 1 2 mark will be a b a b units apart, with the asymptotes occurring at 0, , 4 1 2 and 2. A partial table and the resulting graph are shown.
Graph the function y csc t for t 3 0, 4 4 .
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1
t
t
sin t
0
0
6
1 0.5 2
4
12 0.71 2
3 2
13 0.87 2
2 1.41 12 2 1.15 13
1
1
csc t 1 S undefined 0 2 2 1
Now try Exercises 33 and 34 D. You’ve just learned how to investigate graphs of the reciprocal functions f(t) csc(Bt) and f(t) sec(Bt)
Similar observations can be made regarding y sec1Bt2 and its relationship to y cos1Bt2 (see Exercises 8, 35, and 36). The most important characteristics of the cosecant and secant functions are summarized in the following box. For these functions, there is no discussion of amplitude, and no mention is made of their zeroes since neither graph intersects the t-axis.
Characteristics of f(t) csc t and f(t) sec t For all real numbers t and integers k, y sec t
y csc t Domain
t k
Range
Asymptotes
Domain
Range
t k
t k 2
1q, 14 ´ 31, q 2
1q, 1 4 ´ 3 1, q 2 Period
2
Asymptotes
t
Symmetry
Period
Symmetry
odd csc1t2 csc t
2
even sec1t2 sec t
k 2
E. Writing Equations from Graphs Mathematical concepts are best reinforced by working with them in both “forward and reverse.” Where graphs are concerned, this means we should attempt to find the equation of a given graph, rather than only using an equation to sketch the graph. Exercises of this type require that you become very familiar with the graph’s basic characteristics and how each is expressed as part of the equation.
EXAMPLE 8
Determining the Equation of a Given Graph The graph shown here is of the form y A sin1Bt2. Find the value of A and B. y 2
y A sin(Bt)
⫺
2
2
2
3 2
2
t
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Solution
By inspection, the graph has an amplitude of A 2 and a period of P To find B we used the period formula P 2 B 2 3 2 B 3B 4 4 B 3 P
E. You’ve just learned how to write the equation for a given graph
3 . 2
2 3 , substituting for P and solving. B 2
period formula
substitute
3 for P; B 7 0 2
multiply by 2B solve for B
The result is B 43, which gives us the equation y 2 sin A 43t B . Now try Exercises 37 through 58
There are a number of interesting applications of this “graph to equation” process in the exercise set. See Exercises 61 to 72.
TECHNOLOGY HIGHLIGHT
Exploring Amplitudes and Periods In practice, trig applications offer an immense range of coefficients, creating amplitudes that are sometimes very large and sometimes extremely small, as well as periods ranging from nanoseconds, to many years. This Technology Highlight is designed to help you use the calculator more effectively in the study of these functions. To begin, we note that many calculators offer a preset ZOOM option that automatically sets a window size convenient to many trig Figure 5.63 graphs. The resulting WINDOW after pressing ZOOM 7:ZTrig on a TI-84 Plus is shown in Figure 5.63 for a calculator set in Radian MODE . In Section 5.3 we noted that a change in amplitude will not change the location of the zeroes or max/min values. On the 1 sin x, Y2 sin x, Y3 2 sin x, and Y = screen, enter Y1 2 Y4 4 sin x , then use ZOOM 7:ZTrig to graph the functions. As you see in Figure 5.64, each graph rises to the expected Figure 5.64 amplitude at the expected location, while “holding on” to 4 the zeroes. To explore concepts related to the coefficient B and 1 the period of a trig function, enter Y1 sina xb and 2 6.2 6.2 Y2 sin12x2 on the Y = screen and graph using ZOOM 7:ZTrig. While the result is “acceptable,” the graphs are difficult to read and compare, so we manually change the window size to obtain a better view (Figure 5.65). 4
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A true test of effective calculator use comes when the amplitude or period is a very large or very small number. For instance, the tone you hear while pressing “5” on your telephone is actually a combination of the tones modeled by Y1 sin 3 217702t 4 and Y2 sin 32113362t 4. Graphing these functions requires a careful analysis of the period, otherwise the graph can appear garbled, misleading, or difficult to read —try graphing Y1 on the ZOOM 7:ZTrig or
Figure 5.65 1.4
0
2
6:ZStandard screens (see Figure 5.66). First note 1.4 1 2 or A 1, and P . With a period this short, 2770 770 even graphing the function from Xmin 1 to Xmax 1 gives a distorted graph. Setting Xmin to 1/770, Xmax to 1/770, and Xscl to (1/770)/10 gives the graph in Figure 5.67, which can be used to investigate characteristics of the function. ZOOM
Figure 5.67
Figure 5.66
1.4
10
10
10
1 770
1 770
1.4
10
Exercise 1: Graph the second tone Y2 sin 32113362t 4 and find its value at t 0.00025 sec.
Exercise 2: Graph the function Y1 950 sin10.005t2 on a “friendly” window and find the value at x 550.
5.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. For the sine function, output values are the interval c 0, d . 2 2. For the cosine function, output values are in the interval c 0 , d . 2
in
3. For the sine and cosine functions, the domain is and the range is . 4. The amplitude of sine and cosine is defined to be the maximum from the value in the positive and negative directions.
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5. Discuss/Describe the four-step process outlined in this section for the graphing of basic trig functions. Include a worked-out example and a detailed explanation.
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Section 5.5 Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions
6. Discuss/Explain how you would determine the domain and range of y sec x. Where is this function undefined? Why? Graph y 2 sec12t2 using y 2 cos12t2. What do you notice?
DEVELOPING YOUR SKILLS 7. Use the symmetry of the unit circle and reference arcs of standard values to complete a table of values for y cos t in the interval t 3 , 2 4 .
8. Use the standard values for y cos t for t 3 , 24 to create a table of values for y sec t on the same interval. Use the characteristics of f1t2 sin t to match the given value of t (a through e) to the correct value of sin t (I through V).
10b 6 15 t 4 21 t 2 1 sin t 2 12 sin t 2
9. a. t a c. e. II. IV. 10. a. c. e. II. IV.
t a 12b 4 23 t 2 25 t 4 12 sin t 2 12 sin t 2
4
Use a reference rectangle and the rule of fourths to draw an accurate sketch of the following functions through two complete cycles—one where t 0, and one where t 0. Clearly state the amplitude and period as you begin.
15. y 3 sin t
16. y 4 sin t
17. y 2 cos t
18. y 3 cos t
19. y
1 sin t 2
20. y
3 sin t 4
21. y sin12t2
22. y cos12t2
23. y 0.8 cos12t2
24. y 1.7 sin14t2
d. t 13
1 25. f 1t2 4 cos a tb 2
3 26. y 3 cosa tb 4
I. sin t 0
27. f1t2 3 sin14t2
28. g1t2 5 cos18t2
29. y 4 sin a
30. y 2.5 cos a
b. t
III. sin t 1 V. sin t
12 2
11 b. t 6 d. t 19 1 I. sin t 2 III. sin t 0 V. sin t 1
Use steps I through IV given in this section to draw a sketch of each graph.
3 11. y sin t for t c , d 2 2 12. y sin t for t 3 , 4
13. y cos t for t c , 2 d 2 5 14. y cos t for t c , d 2 2
5 tb 3
31. f 1t2 2 sin1256t2
2 tb 5
32. g1t2 3 cos1184t2
Draw the graph of each function by first sketching the related sine and cosine graphs, and applying the observations made in this section.
33. y 3 csc t 35. y 2 sec t
34. g1t2 2 csc14t2
36. f 1t2 3 sec12t2
Clearly state the amplitude and period of each function, then match it with the corresponding graph.
37. y 2 cos14t2
38. y 2 sin14t2
39. y 3 sin12t2
40. y 3 cos12t2
1 41. y 2 csc a tb 2
1 42. y 2 sec a tb 4
3 43. f 1t2 cos10.4t2 4
44. g1t2
45. y sec18t2
46. y csc112t2
7 cos10.8t2 4
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47. y 4 sin1144t2 a. 2 y
48. y 4 cos172t2 y b. 2
1
1
0
c.
The graphs shown are of the form y A cos(Bt) or y A csc(Bt). Use the characteristics illustrated for each graph to determine its equation.
2
3
4
5 t
49.
0
1
1
2
2
d.
y 4 2
2
3
4
5
0.5
4
y
2
3 8
5 t 8
1 144
2
1 72
1 48
1 36
5 t 144
1 144
0 2
4
1 72
1 48
1 36
5 t 144
52.
y 0.8 0.4
f.
y 4
2
2
3 2
t
2
y 4
2
0 2
4
2
4
t
6
0
0.4
0.2
0.8
0.4
3 2
2
53.
t
54.
y 6
0
h.
4
4
2
3 4
t
2
3
4
t
y 1.2
1
2
3
4
5 t
0
y 4 1.2
6 2
2
0
2
4
6
t
8
0
2
2
4
4
j.
y 4 2
2
4
6
8
t
Match each graph to its equation, then graphically estimate the points of intersection. Confirm or contradict your estimate(s) by substituting the values into the given equations using a calculator.
y 4
55. y cos x; y sin x
2 1 12
0 2
1 6
1 4
1 3
5 12
t
0
1 12
2
4
1 6
1 4
1 3
5 12
4
l.
y 2 1
2
y 0.4
4
y
0
t
1
2
0
1
4 5
0.2
4
2
k.
3 5
8
0
i.
2 5
1 5
0 4
1
51.
g.
4
8
0 0.5
4
y 8
2
0
e.
50.
y 1
6 t
4
2
3 4
t
t
y
y
1
1
0.5
0.5 2
0
y 2
0.5
1
1
0 1
4
2
3 4
t
56. y cos x; y sin12x2
3 2
2 x
y
1
1
2
2 x
y 2
0
3 2
58. y 2 cos12x2; y 2 sin1x2
2
1
1
57. y 2 cos x; y 2 sin13x2
2
2
0 0.5
2
3 2
2 x
0 1 2
1 2
1
3 2
2 x
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WORKING WITH FORMULAS
59. The Pythagorean theorem in trigonometric form: sin2 cos2 1 The formula shown is commonly known as a Pythagorean identity and is introduced more formally in Chapter 6. It is derived by noting that on a unit circle, cos t x and sin t y, while 15 x2 y2 1. Given that sin t 113 , use the formula to find the value of cos t in Quadrant I. What is the Pythagorean triple associated with these values of x and y?
571
Section 5.5 Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions
60. Hydrostatics, surface tension, and contact 2 cos angles: y kr
Capillary
y The height that a liquid will Tube rise in a capillary tube is given by the formula shown, where Liquid r is the radius of the tube, is the contact angle of the liquid (the meniscus), is the surface tension of the liquid-vapor film, and k is a constant that depends on the weight-density of the liquid. How high will the liquid rise given that the surface tension 0.2706, the tube has radius r 0.2 cm, the contact angle 22.5°, and k 1.25?
APPLICATIONS
Tidal waves: Tsunamis, also known as tidal waves, are ocean waves produced by earthquakes or other upheavals in the Earth’s crust and can move through the water undetected for hundreds of miles at great speed. While traveling in the open ocean, these waves can be represented by a sine graph with a very long wavelength (period) and a very small amplitude. Tsunami waves only attain a monstrous size as they approach the shore, and represent a very different phenomenon than the ocean swells created by heavy winds over an extended period of time. Height 61. A graph modeling a in feet 2 tsunami wave is given in 1 the figure. (a) What is 20 40 60 80 100 Miles 1 the height of the tsunami 2 wave (from crest to trough)? Note that h 0 is considered the level of a calm ocean. (b) What is the tsunami’s wavelength? (c) Find the equation for this wave.
62. A heavy wind is kicking up ocean swells approximately 10 ft high (from crest to trough), with wavelengths of 250 ft. (a) Find the equation that models these swells. (b) Graph the equation. (c) Determine the height of a wave measured 200 ft from the trough of the previous wave.
Sinusoidal models: The sine and cosine functions are of great importance to meteorological studies, as when modeling the temperature based on the time of day, the illumination of the Moon as it goes through its phases, or even the prediction of tidal motion. Temperature 63. The graph given shows deviation 4 the deviation from 2 the average daily t 0 temperature for the hours 4 8 12 16 20 24 of a given day, with t 0 2 corresponding to 6 A.M. 4 (a) Use the graph to determine the related equation. (b) Use the equation to find the deviation at t 11 (5 P.M.) and confirm that this point is on the graph. (c) If the average temperature for this day was 72°, what was the temperature at midnight?
64. The equation y 7 sin a tb models the height of 6 the tide along a certain coastal area, as compared to average sea level. Assuming t 0 is midnight, (a) graph this function over a 12-hr period. (b) What will the height of the tide be at 5 A.M.? (c) Is the tide rising or falling at this time?
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Sinusoidal movements: Many animals exhibit a wavelike motion in their movements, as in the tail of a shark as it swims in a straight line or the wingtips of a large bird in flight. Such movements can be modeled by a sine or cosine function and will vary depending on the animal’s size, speed, and other factors. Distance 65. The graph shown models in inches 20 the position of a shark’s 10 t sec tail at time t, as measured 10 2 3 4 5 1 20 to the left (negative) and right (positive) of a straight line along its length. (a) Use the graph to determine the related equation. (b) Is the tail to the right, left, or at center when t 6.5 sec? How far? (c) Would you say the shark is “swimming leisurely,” or “chasing its prey”? Justify your answer.
66. The State Fish of Hawaii is the humuhumunukunukuapua’a, a small colorful fish found abundantly in coastal waters. Suppose the tail motion of an adult fish is modeled by the equation d1t2 sin115t2 with d(t) representing the position of the fish’s tail at time t, as measured in inches to the left (negative) or right (positive) of a straight line along its length. (a) Graph the equation over two periods. (b) Is the tail to the left or right of center at t 2.7 sec? How far? (c) Would you say this fish is “swimming leisurely,” or “running for cover”? Justify your answer. Kinetic energy: The kinetic energy a planet possesses as it orbits the Sun can be modeled by a cosine function. When the planet is at its apogee (greatest distance from the Sun), its kinetic energy is at its lowest point as it slows down and “turns around” to head back toward the Sun. The kinetic energy is at its highest when the planet “whips around the Sun” to begin a new orbit.
68. The potential energy of the planet is the antipode of its kinetic energy, meaning when kinetic energy is at 100%, the potential energy is 0%, and when kinetic energy is at 0% the potential energy is at 100%. (a) How is the graph of the kinetic energy related to the graph of the potential energy? In other words, what transformation could be applied to the kinetic energy graph to obtain the potential energy graph? (b) If the kinetic energy is at 62.5% and increasing [as in Graph 67(b)], what can be said about the potential energy in the planet’s orbit at this time? Visible light: One of the narrowest bands in the electromagnetic spectrum is the region involving visible light. The wavelengths (periods) of visible light vary from 400 nanometers (purple/violet colors) to 700 nanometers (bright red). The approximate wavelengths of the other colors are shown in the diagram. Violet
Blue
400
Green
Yellow Orange
500
600
Red
700
69. The equations for the colors in this spectrum have 2 the form y sin1t2, where gives the length of the sine wave. (a) What color is represented by tb? (b) What color is the equation y sina 240 represented by the equation y sin a
tb? 310
70. Name the color represented by each of the graphs (a) and (b) here and write the related equation. a. 1 y t (nanometers)
75
Percent of KE
Percent of KE
67. Two graphs are given here. (a) Which of the graphs could represent the kinetic energy of a planet orbiting the Sun if the planet is at its perigee (closest distance to the Sun) when t 0? (b) For what value(s) of t does this planet possess 62.5% of its maximum kinetic energy with the kinetic energy increasing? (c) What is the orbital period of this planet? a. 100 b. 100
50 25 0
0
300
600
900
300
600
900
1200
1
b.
y 1
t (nanometers) 0
1200
1
75 50 25 0
12 24 36 48 60 72 84 96
12 24 36 48 60 72 84 96
t days
t days
Alternating current: Surprisingly, even characteristics of the electric current supplied to your home can be modeled by sine or cosine functions. For alternating current (AC), the amount of current I (in amps) at time t can be modeled by I A sin1 t2, where A represents the maximum current that is produced, and is related to the frequency at which the generators turn to produce the current.
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71. Find the equation of the household current modeled by the graph, then use the equation to determine I when t 0.045 sec. Verify that the resulting ordered pair is on the graph.
Section 5.5 Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions
Exercise 71 Current I 30 15
t sec 15
1 50
1 25
3 50
2 25
72. If the voltage produced by an AC circuit is modeled by the equation E 155 sin1120t2, (a) what is the period and amplitude of the related graph? (b) What voltage is produced when t 0.2?
1 10
30
EXTENDING THE CONCEPT
73. For y A sin1Bx2 and y A cos1Bx2, the Mm expression gives the average value of the 2 function, where M and m represent the maximum and minimum values, respectively. What was the average value of every function graphed in this section? Compute a table of values for y 2 sin t 3, and note its maximum and minimum values. What is the average value of this function? What transformation has been applied to change the average value of the function? Can you name the average value of y 2 cos t 1 by inspection?
573
2 B came from, consider that if B 1, the graph of y sin1Bt2 sin11t2 completes one cycle from 1t 0 to 1t 2. If B 1, y sin1Bt2 completes one cycle from Bt 0 to Bt 2. Discuss how this observation validates the period formula.
74. To understand where the period formula P
75. The tone you hear when pressing the digit “9” on your telephone is actually a combination of two separate tones, which can be modeled by the functions f 1t2 sin 3 218522t4 and g1t2 sin 32 114772t 4. Which of the two functions has the shortest period? By carefully scaling the axes, graph the function having the shorter period using the steps I through IV discussed in this section.
MAINTAINING YOUR SKILLS
76. (5.2) Given sin 1.12 0.9, find an additional value of t in 30, 22 that makes the equation sin t 0.9 true. Exercise 77 77. (5.1) Use a special triangle to calculate the distance from the ball to the pin on the seventh hole, given the ball is in a straight line with the 100-yd plate, as shown in the 100 yd figure. 60
100 yd
78. (5.1) Invercargill, New Zealand, is at 46°14¿24– south latitude. If the Earth has a radius of 3960 mi, how far is Invercargill from the equator? 79. (1.4) Given z1 1 i and z2 2 5i, compute the following: a. z1 z2 b. z1 z2 c. z1z2 z2 d. z1
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College Algebra & Trignometry—
5.6
Graphs of Tangent and Cotangent Functions
Learning Objectives
Unlike the other four trig functions, tangent and cotangent have no maximum or minimum value on any open interval of their domain. However, it is precisely this unique feature that adds to their value as mathematical models. Collectively, the six functions give scientists the tools they need to study, explore, and investigate a wide range of phenomena, extending our understanding of the world around us.
In Section 5.6 you will learn how to:
A. Graph y tan t using asymptotes, zeroes, sin t and the ratio cos t
A. The Graph of y tan t
B. Graph y cot t using asymptotes, zeroes, cos t and the ratio sin t
C. Identify and discuss important characteristics of y tan t and y cot t
D. Graph y A tan1Bt2 and y A cot1Bt2 with various values of A and B
Like the secant and cosecant functions, tangent is defined in terms of a ratio, creating asymptotic behavior at the zeroes of the denominator. In terms of the unit circle, y tan t , which means in 3 , 2 4, vertical asymptotes occur at t , t , and x 2 2 3 , since the x-coordinate on the unit circle is zero (see Figure 5.68). We further note 2 tan t 0 when the y-coordinate is zero, so the function will have t-intercepts at t , 0, , and 2 in the same interval. This produces the framework for graphing the tangent function shown in Figure 5.69.
E. Solve applications of
Figure 5.69
y tan t and y cot t
tan t
Figure 5.68
Asymptotes at odd multiples of
y (0, 1)
(x, y)
4
2
2
t (1, 0)
(0, 0)
(0, 1) y tan t x
t-intercepts at integer multiples of
2
2
2
2
3 2
t
4
(1, 0)
x
Knowing the graph must go through these zeroes and approach the asymptotes, we are left with determining the direction of the approach. This can be discovered by noting that in QI, the y-coordinates of points on the unit circle start at 0 and increase, y while the x-values start at 1 and decrease. This means the ratio defining tan t is x increasing, and in fact becomes infinitely large as t gets very close to . A similar 2 observation can be made for a negative rotation of t in QIV. Using the additional points provided by tan a b 1 and tan a b 1, we find the graph of tan t is increasing 4 4 throughout the interval a , b and that the function has a period of . We also note 2 2 y tan t is an odd function (symmetric about the origin), since tan1t2 tan t as evidenced by the two points just computed. The completed graph is shown in Figure 5.70 with the primary interval in red. Figure 5.70 tan t 4
4 , 1
2
4 , 1
2
2
2
3 2
2
t
4
574
5-72
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Section 5.6 Graphs of Tangent and Cotangent Functions
y The graph can also be developed by noting sin t y, cos t x, and tan t . x sin t This gives tan t by direct substitution and we can quickly complete a table of cos t values for tan t, as shown in Example 1. These and other relationships between the trig functions will be fully explored in Chapter 6. EXAMPLE 1
Constructing a Table of Values for f1t2 tan t y Complete Table 5.11 shown for tan t using the values given for sin t and cos t, x then graph the function by plotting points. Table 5.11 t
0
6
4
3
2
2 3
3 4
5 6
sin t y
0
1 2
12 2
13 2
1
13 2
12 2
1 2
0
cos t x
1
13 2
12 2
1 2
0
tan t
Solution
1 2
12 2
13 2
1
y x
For the noninteger values of x and y, the “twos will cancel” each time we compute y . This means we can simply list the ratio of numerators. The resulting points are x shown in Table 5.12, along with the plotted points. The graph shown in Figure 5.71 was completed using symmetry and the previous observations. Table 5.12
t
0
6
4
3
2
2 3
3 4
5 6
sin t y
0
1 2
12 2
13 2
1
13 2
12 2
1 2
0
cos t x
1
13 2
12 2
1 2
0
y x
0
1
23 1.7
undefined
tan t
1 23
0.58
1 2
12 2
1
23
13 2 1 23
1 0
Figure 5.71
6 , 0.58
f (t)
4 , 1
4
tan t
2
2
3 , 1.7
2
2
3
2
t 4
3
4
3
2
6
5
2
, 1
, 0.58
, 1.7
Now try Exercises 7 and 8
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Additional values can be found using a calculator as needed. For future use and reference, it will help to recognize the approximate decimal equivalent of all special 1 0.58. See values and radian angles. In particular, note that 13 1.73 and 13 Exercises 9 through 14.
A. You’ve just learned how to graph y tan t using asymptotes, zeroes, and the sin t ratio cos t
B. The Graph of y cot t Since the cotangent function is also defined in terms of a ratio, it too displays asymptotic behavior at the zeroes of the denominator, with t-intercepts at the zeroes of the x numerator. Like the tangent function, cot t can be written in terms of cos t x y cos t and sin t y: cot t , and the graph obtained by plotting points. sin t
EXAMPLE 2
Constructing a Table of Values for f1t2 cot t x for t in 30, 4 using its ratio relationship y with cos t and sin t. Use the results to graph the function for t in 1, 22. Complete a table of values for cot t
Solution
The completed table is shown here. In this interval, the cotangent function has asymptotes at 0 and since y 0 at these points, and has a t-intercept at since 2 x 0. The graph shown in Figure 5.72 was completed using the period P .
t
0
6
4
3
2
2 3
3 4
5 6
sin t y
0
1 2
12 2
13 2
1
13 2
12 2
1 2
0
cos t x
1
13 2
12 2
1 2
0
undefined
23
1
cot t
x y
1
0
23
1 2
1
12 2
1
23
13 2
23
1 undefined
Figure 5.72 cot t 4 2
2
2
2
3 2
2
t
4
Now try Exercises 15 and 16 B. You’ve just learned how to graph y cot t using asymptotes, zeroes, and the cos t ratio sin t
C. Characteristics of y tan t and y cot t The most important characteristics of the tangent and cotangent functions are summarized in the following box. There is no discussion of amplitude, maximum, or minimum values, since maximum or minimum values do not exist. For future use and
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reference, perhaps the most significant characteristic distinguishing tan t from cot t is that tan t increases, while cot t decreases over their respective domains. Also note that due to symmetry, the zeroes of each function are always located halfway between the asymptotes. Characteristics of f(t) tan t and f(t) cot t For all real numbers t and integers k, y tan t Domain
t k 2 Period
y cot t Range
Asymptotes
1q, q 2 Behavior increasing
EXAMPLE 3
t k 2 Symmetry odd tan1t2 tan t
Domain
Range
Asymptotes
t k
1q, q 2
t k
Period
Behavior decreasing
Symmetry
odd cot1t2 cot t
Using the Period of f1t2 tan t to Find Additional Points 7 13 1 , what can you say about tan a b, tan a b, and Given tan a b 6 6 6 13 5 tan a b? 6
Solution
7 by a multiple of : tana b tana b, 6 6 6 5 13 tana b tana 2b and tana b tana b. Since the period of 6 6 6 6 1 . the tangent function is P , all of these expressions have a value of 13 Each value of t differs from
Now try Exercises 17 through 22
C. You’ve just learned how to identify and discuss important characteristics of y tan t and y cot t
Since the tangent function is more common than the cotangent, many needed calculations will first be done using the tangent function and its properties, then reciprocated. For instance, to evaluate cota b we reason that cot t is an odd 6 function, so cota b cota b. Since cotangent is the reciprocal of tangent and 6 6 1 tana b , cota b 13. See Exercises 23 and 24. 6 6 13
D. Graphing y A tan1Bt2 and y A cot1Bt2 The Coefficient A: Vertical Stretches and Compressions For the tangent and cotangent functions, the role of coefficient A is best seen through an analogy from basic algebra (the concept of amplitude is foreign to these functions). Consider the graph of y x3 (Figure 5.73). Comparing the parent function y x3 with
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functions y Ax3, the graph is stretched vertically if A 7 1 (see Figure 5.74) and compressed if 0 6 A 6 1. In the latter case the graph becomes very “flat” near the zeroes, as shown in Figure 5.75. Figure 5.73
Figure 5.74
Figure 5.75
y x3 y
y 4x3; A 4 y
y 14 x3; A 14 y
x
x
x
While cubic functions are not asymptotic, they are a good illustration of A’s effect on the tangent and cotangent functions. Fractional values of A 1 A 6 12 compress the graph, flattening it out near its zeroes. Numerically, this is because a fractional part of a small quantity is an even smaller quantity. For instance, compare tana b with 6 1 1 tana b. To two decimal places, tana b 0.57, while tana b 0.14, so the 4 6 6 4 6 graph must be “nearer the t-axis” at this value.
EXAMPLE 4
Comparing the Graph of f1t2 tan t and g1t2 A tan t Draw a “comparative sketch” of y tan t and y 14 tan t on the same axis and discuss similarities and differences. Use the interval 3, 2 4 .
Solution
Both graphs will maintain their essential features (zeroes, asymptotes, period, increasing, and so on). However, the graph of y 14 tan t is vertically compressed, causing it to flatten out near its zeroes and changing how the graph approaches its asymptotes in each interval. y y tan t y 14 tan t
4 2
2
2
2
3 2
2
t
4
Now try Exercises 25 through 28
The Coefficient B: The Period of Tangent and Cotangent WORTHY OF NOTE It may be easier to interpret the phrase “twice as fast” as 2P and “one-half as fast” as 12P . In each case, solving for P gives the correct interval for the period of the new function.
Like the other trig functions, the value of B has a material impact on the period of the function, and with the same effect. The graph of y cot12t2 completes a cycle twice 1 versus P b, while y cota tb completes a cycle 2 2 one-half as fast 1P 2 versus P 2. This reasoning leads us to a period formula for tangent and cotangent, namely, P , where B is the coefficient of the input variable. B as fast as y cot t aP
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579
Similar to the four-step process used to graph sine and cosine functions, we can graph tangent and cotangent functions using a rectangle P units in length and 2A B units high, centered on the primary interval. After dividing the length of the rectangle into fourths, the t-intercept will always be the halfway point, with y-values of A occuring at the 41 and 34 marks. See Example 5.
EXAMPLE 5
Graphing y A cot1Bt2 for A, B, 1
Solution
For y 3 cot12t2, A 3 which results in a vertical stretch, and B 2 which
Sketch the graph of y 3 cot12t2 over the interval 3 , 4.
. The function is still undefined at t 0 and is asymptotic there, 2 then at all integer multiples of P . We also know the graph is decreasing, with 2 3 zeroes of the function halfway between the asymptotes. The inputs t and t 8 8 3 1 3 a the and marks between 0 and b yield the points a , 3b and a , 3b, which 4 4 2 8 8 we’ll use along with the period and symmetry of the function to complete the graph: gives a period of
y y 3 cot(2t) 6
8 , 3
3
2
2
t
6
, 3 3 8
Now try Exercises 29 through 40
As with the trig functions from Section 5.3, it is possible to determine the equation of a tangent or cotangent function from a given graph. Where previously we used the amplitude, period, and max/min values to obtain our equation, here we first determine the period of the function by calculating the “distance” between asymptotes, then choose any convenient point on the graph (other than a t-intercept) and substitute in the equation to solve for A.
EXAMPLE 6
Constructing the Equation for a Given Graph Find the equation of the graph, given it’s of the form y A tan1Bt2. y A tan(Bt)
y 3 2 1
2 3
3
1 2 3
3
2 3
, 2
2
t
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Solution
D. You’ve just learned how to graph y A tan1Bt2 and y A cot1Bt2 with various values of A and B
and t , we find the 3 3 2 2 . To find the value of B we substitute period is P a b for P in 3 3 3 3 3 3 P and find B (verify). This gives the equation y A tan a tb. B 2 2 To find A, we take the point a , 2b shown, and use t with y 2 to 2 2 solve for A: Using the primary interval and the asymptotes at t
3 y A tana tb 2 3 2 A tan c a ba b d 2 2 3 2 A tana b 4 2 A 3 tana b 4 2 The equation of the graph is y 2
substitute
3 for B 2
substitute 2 for y and
for t 2
multiply
solve for A
result
tan1 32t2. Now try Exercises 41 through 46
E. Applications of Tangent and Cotangent Functions We end this section with one example of how tangent and cotangent functions can be applied. Numerous others can be found in the exercise set.
EXAMPLE 7
Applications of y A tan1Bt2 : Modeling the Movement of a Light Beam One evening, in port during a Semester at Sea, Richard is debating a project choice for his Precalculus class. Looking out his porthole, he notices a revolving light turning at a constant speed near the corner of a long warehouse. The light throws its beam along the length of the warehouse, then disappears into the air, and then returns time and time again. Suddenly—Richard has his project. He notes the time it takes the beam to traverse the warehouse wall is very close to 4 sec, and in the morning he measures the wall’s length at 127.26 m. His project? Modeling the distance of the beam from the corner of the warehouse as a function of time using a tangent function. Can you help?
Solution
The equation model will have the form D1t2 A tan1Bt2, where D(t) is the distance (in meters) of the beam from the corner after t sec. The distance along the wall is measured in positive values so we’re using only 12 the period of the function, giving 12P 4 (the beam “disappears” at t 4) so P 8. Substitution in the period formula gives B and the equation D A tana tb. 8 8
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Section 5.6 Graphs of Tangent and Cotangent Functions
581
Knowing the beam travels 127.26 m in about 4 sec (when it disappears into infinity), we’ll use t 3.9 and D 127.26 in order to solve for A and complete our equation model (see note following this example). A tana tb D 8 A tan c 13.92 d 127.26 8 127.26 A tan c 13.92 d 8 5
equation model
substitute 127.26 for D and 3.9 for t
solve for A
result
One equation approximating the distance of the beam from the corner of the warehouse is D1t2 5 tana tb. 8 Now try Exercises 49 through 52
E. You’ve just learned how to solve applications of y tan t and y cot t
For Example 7, we should note the choice of 3.9 for t was arbitrary, and while we obtained an “acceptable” model, different values of A would be generated for other choices. For instance, t 3.95 gives A 2.5, while t 3.99 gives A 0.5. The true value of A depends on the distance of the light from the corner of the warehouse wall. In any case, it’s interesting to note that at t 2 sec (one-half the time it takes the beam to disappear), the beam has traveled only 5m from the corner of the building: D122 5 tana b 5 m. Although the light is rotating at a constant angular speed, 4 the speed of the beam along the wall increases dramatically as t gets close to 4 sec.
TECHNOLOGY HIGHLIGHT
Zeroes, Asymptotes, and the Tangent/Cotangent Functions In this Technology Highlight we’ll explore the tangent and cotangent functions from the perspective of their ratio definition. While we could easily use Y1 tan x to generate and explore the graph, we would miss an opportunity to note the many important connections that emerge from a ratio definition perspective. To begin, enter Y1 Y1 sin x, Y2 cos x, and Y3 , as shown in Figure 5.76 [recall Y2 that function variables are accessed using VARS (Y-VARS) ENTER (1:Function)]. Note that Y2 has been disabled by overlaying the cursor on the equal sign and pressing ENTER . In addition, note the slash next to Y1 is more bold than the other slashes. The TI-84 Plus offers options that help distinguish between graphs when more than one is being displayed, and we selected a bold line for Y1 by moving the cursor to the far left position and repeatedly pressing ENTER until the desired option appeared. Pressing ZOOM 7:ZTrig at this point produces the screen shown in Figure 5.77, where we note that tan x is zero everywhere that sin x
Figure 5.76
Figure 5.77 4
6.2
6.2
4
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sin x , but is a cos x point that is often overlooked. Going back to the Y = screen and disabling Y1 while enabling Y2 will produce the graph shown in Figure 5.78.
Figure 5.78
is zero. This is hardly surprising since tan x
4
6.2
6.2
Exercise 1: What do you notice about the zeroes of cos x as they relate to the graph of Y3 tan x? Y1 Exercise 2: Go to the Y = screen and change Y3 from Y2 Y2 (tangent) to (cotangent), then repeat the Y1 previous investigation regarding y sin x and y cos x.
4
5.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The period of y tan t and y cot t is ________. To find the period of y tan1Bt2 and y cot1Bt2, the formula _________ is used. 2. The function y tan t is ___________ everywhere it is defined. The function y cot t is ___________ everywhere it is defined. 3. Tan t and cot t are _______ functions, so f 1t2 11 b, 0.268, then ___________. If tana 12 11 b _________. tana 12
4. The asymptotes of y _________ are located at odd multiples of . The asymptotes of y 2 _________ are located at integer multiples of . 5. Discuss/Explain how you can obtain a table of values for y cot t (a) given the values for y sin t and y cos t, and (b) given the values for y tan t. 6. Explain/Discuss how the zeroes of y sin t and y cos t are related to the graphs of y tan t and y cot t. How can these relationships help graph functions of the form y A tan1Bt2 and y A cot1Bt2 ?
DEVELOPING YOUR SKILLS
Use the values given for sin t and cos t to complete the tables.
7.
8. t
7 6
sin t y
0
cos t x
1
tan t
y x
5 4
1 2
12 2
13 2
12 2
4 3
3 2
3 2
13 2
1
sin t y
1
1 2
0
cos t x
0
tan t
y x
5 3
13 2 1 2
7 4
12 2
12 2
11 6
2
1 2
0
13 2
1
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9. Without reference to a text or calculator, attempt to name the decimal equivalent of the following values to one decimal place. 2
4
6
12
12 2
3 2
13
13 2
15.
2 13
10. Without reference to a text or calculator, attempt to name the decimal equivalent of the following values to one decimal place. 3
Use the values given for sin t and cos t to complete the tables.
1 13
11. State the value of each expression without the use of a calculator. a. tana b b. cota b 4 6 3 c. cota b d. tana b 4 3 12. State the value of each expression without the use of a calculator. a. cota b b. tan 2 5 5 c. tana b d. cota b 4 6 13. State the value of t without the use of a calculator, given t 3 0, 22 terminates in the quadrant indicated. a. tan t 1, t in QIV b. cot t 13, t in QIII 1 , t in QIV c. cot t 13 d. tan t 1, t in QII 14. State the value of t without the use of a calculator, given t 3 0, 22 terminates in the quadrant indicated. a. cot t 1, t in QI b. tan t 13, t in QII 1 , t in QI c. tan t 13 d. cot t 1, t in QIII
t
7 6
sin t y
0
cos t x
1
cot t
5 4
1 2
12 2
13 2
12 2
4 3
3 2
13 2
1
1 2
0
x y
16. 3 2 sin t y
1
cos t x
0
cot t
5 3
13 2
7 4
1 2
12 2
12 2
11 6
2
1 2
0
13 2
1
x y
11 is a solution to tan t 7.6, use the 24 period of the function to name three additional solutions. Check your answer using a calculator.
17. Given t
7 is a solution to cot t 0.77, use the 24 period of the function to name three additional solutions. Check your answer using a calculator.
18. Given t
19. Given t 1.5 is a solution to cot t 0.07, use the period of the function to name three additional solutions. Check your answers using a calculator. 20. Given t 1.25 is a solution to tan t 3, use the period of the function to name three additional solutions. Check your answers using a calculator. Verify the value shown for t is a solution to the equation given, then use the period of the function to name all real roots. Check two of these roots on a calculator.
21. t
; tan t 0.3249 10
22. t
; tan t 0.1989 16
23. t
; cot t 2 13 12
24. t
5 ; cot t 2 13 12
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Graph each function over the interval indicated, noting the period, asymptotes, zeroes, and value of A. Include a comparative sketch of y tan t or y cot t as indicated.
Find the equation of each graph, given it is of the form y A tan1Bt2.
41.
y
25. f 1t2 2 tan t; 3 2, 24 26. g1t2
9
2 , 3
1 tan t; 3 2, 2 4 2
2
3 2
2
27. h1t2 3 cot t; 3 2, 24 28. r1t2
1 cot t; 3 2, 2 4 4
42.
2
3
6
6
1
43.
14 , 2√3
y 3
3
2
1
1
2
3
t
1 2
t
3
44.
y
9 , √3 1
1 35. y 5 cota tb; 33, 3 4 3
38. y 4 tana tb; 3 2, 24 2
39. f 1t2 2 cot1t2; 3 1, 14 40. p1t2
1 cota tb; 3 4, 44 2 4
t
Find the equation of each graph, given it is of the form y A cot1Bt2 .
3
1 1 37. y 3 tan12t2; c , d 2 2
2
2
1
12 , 2
33. y 2 tan14t2; c , d 4 4
1 36. y cot 12t2; c , d 2 2 2
3
y
1
1 32. y cota tb; 32, 2 4 2
1 34. y 4 tana tb; 32, 2 4 2
t
2
29. y tan12t2; c , d 2 2
31. y cot14t2; c , d 4 4
9
Graph each function over the interval indicated, noting the period, asymptotes, zeroes, and value of A and B.
1 30. y tana tb; 34, 4 4 4
2
1 2
1 3
1 6
1 6
1 3
3
3 and t are solutions to 8 8 cot13t2 tan t, use a graphing calculator to find two additional solutions in 30, 24 .
45. Given that t
46. Given t 16 is a solution to tan12t2 cot1t2, use a graphing calculator to find two additional solutions in 31, 14 .
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WORKING WITH FORMULAS 48. Position of an image reflected from a spherical h lens: tan sk
47. The height of an object calculated from a d distance: h cot u cot v The height h of a tall structure can be computed using two h angles of elevation measured some u v distance apart along a d xd straight line with the object. This height is given by the formula shown, where d is the distance between the two points from which angles u and v were measured. Find the height h of a building if u 40°, v 65°, and d 100 ft.
The equation Lens shown is used to help locate the h position of an k P P image reflected Object Reflected by a spherical image mirror, where s s is the distance of the object from the lens along a horizontal axis, is the angle of elevation from this axis, h is the altitude of the right triangle indicated, and k is distance from the lens to the foot of altitude h. Find the distance k given h 3 mm, , and that the object is 24 24 mm from the lens.
APPLICATIONS
Tangent function data models: Model the data in Exercises 49 and 50 using the function y A tan(Bx). State the period of the function, the location of the asymptotes, the value of A, and name the point (x, y) used to calculate A (answers may vary). Use your equation model to evaluate the function at x 2 and x 2. What observations can you make? Also see Exercise 58.
49.
50.
Input
Output
Input
Output
6
q
1
1.4
5
20
2
3
4
9.7
3
5.2
3
5.2
4
9.7
2
3
5
20
1
1.4
6
q
0
0
Input
Output
Input
Output
3
q
0.5
6.4
2.5
91.3
1
13.7
2
44.3
1.5
23.7
1.5
23.7
2
44.3
1
13.7
2.5
91.3
0.5
6.4
3
q
0
0
Exercise 51 51. As part of a lab setup, a laser pen is made to swivel on a large protractor as illustrated in the figure. For their lab project, students are asked to take the Distance instrument to one end of (degrees) (cm) a long hallway and 0 0 measure the distance of 10 2.1 the projected beam relative to the angle the 20 4.4 pen is being held, and 30 6.9 collect the data in a 40 10.1 table. Use the data to 50 14.3 find a function of the 60 20.8 form y A tan1B2. 70 33.0 State the period of the function, the location of 80 68.1 the asymptotes, the value 89 687.5 of A, and name the point (, y) you used to calculate A (answers may vary). Based on the result, can you approximate the length of the laser pen? Note that in degrees, the 180° . period formula for tangent is P B Laser Light
585
Section 5.6 Graphs of Tangent and Cotangent Functions
52. Use the equation model obtained in Exercise 51 to compare the values given by the equation with the actual data. As a percentage, what was the largest deviation between the two?
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Exercise 53 53. Circumscribed polygons: The perimeter of a regular polygon circumscribed about a circle of radius r is r given by P 2nr tana b, n where n is the number of sides 1n 32 and r is the radius of the circle. Given r 10 cm, (a) What is the circumference of the circle? (b) What is the circumference of the polygon when n 4? Why? (c) Calculate the perimeter of the polygon for n 10, 20, 30, and 100. What do you notice?
54. Circumscribed polygons: The area of a regular polygon circumscribed about a circle of radius r is given by A nr2tana b, where n is the number n of sides 1n 32 and r is the radius of the circle. Given r 10 cm, a. What is the area of the circle? b. What is the area of the polygon when n 4? Why? c. Calculate the area of the polygon for n 10, 20, 30, and 100. What do you notice? Coefficients of friction: Material Coefficient Pulling someone on a steel on steel 0.74 sled is much easier copper on glass 0.53 during the winter than in the summer, due to glass on glass 0.94 a phenomenon known copper on steel 0.68 as the coefficient of wood on wood 0.5 friction. The friction between the sled’s skids and the snow is much lower than the friction between the skids and the dry ground or pavement. Basically, the coefficient of friction is defined by the relationship m tan , where is the angle at which a block composed of one material will slide down an inclined plane made of another material, with a constant velocity. Coefficients of friction have been established experimentally for many materials and a short list is shown here.
55. Graph the function tan , with in degrees over the interval 3 0°, 60° 4 and use the graph to estimate solutions to the following. Confirm or contradict your estimates using a calculator. a. A block of copper is placed on a sheet of steel, which is slowly inclined. Is the block of copper moving when the angle of inclination is 30°? At what angle of inclination will the copper block be moving with a constant velocity down the incline?
5-84
b. A block of copper is placed on a sheet of castiron. As the cast-iron sheet is slowly inclined, the copper block begins sliding at a constant velocity when the angle of inclination is approximately 46.5°. What is the coefficient of friction for copper on cast-iron? c. Why do you suppose coefficients of friction greater than 2.5 are extremely rare? Give an example of two materials that likely have a high m-value. 56. Graph the function tan with in radians 5 d and use the graph to over the interval c 0, 12 estimate solutions to the following. Confirm or contradict your estimates using a calculator. a. A block of glass is placed on a sheet of glass, which is slowly inclined. Is the block of glass moving when the angle of inclination is ? 4 What is the smallest angle of inclination for which the glass block will be moving with a constant velocity down the incline (rounded to four decimal places)? b. A block of Teflon is placed on a sheet of steel. As the steel sheet is slowly inclined, the Teflon block begins sliding at a constant velocity when the angle of inclination is approximately 0.04. What is the coefficient of friction for Teflon on steel? c. Why do you suppose coefficients of friction less than 0.04 are extremely rare for two solid materials? Give an example of two materials that likely have a very low m value. 57. Tangent lines: The actual definition of the word tangent comes from the tan Latin tangere, meaning “to touch.” In mathematics, a tangent line touches the 1 graph of a circle at only one point and function values for tan are obtained from the length of the line segment tangent to a unit circle. a. What is the length of the line segment when 80°? b. If the line segment is 16.35 units long, what is the value of ? c. Can the line segment ever be greater than 100 units long? Why or why not? d. How does your answer to (c) relate to the asymptotic behavior of the graph?
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EXTENDING THE CONCEPT
58. Rework Exercises 49 and 50, obtaining a new equation for the data using a different ordered pair to compute the value of A. What do you notice? Try yet another ordered pair and calculate A once again for another equation Y2. Complete a table of values using the given inputs, with the outputs of the three equations generated (original, Y1, and Y2). Does any one equation seem to model the data better than the others? Are all of the equation models “acceptable”? Please comment. 59. Regarding Example 7, we can use the standard distance/rate/time formula D RT to compute the
587
average velocity of the beam of light along the wall D in any interval of time: R . For example, using T D1t2 5 tana tb, the average velocity in the 8 D122 D102 2.5 m/sec. interval [0, 2] is 20 Calculate the average velocity of the beam in the time intervals [2, 3], [3, 3.5], and [3.5, 3.8] sec. What do you notice? How would the average velocity of the beam in the interval [3.9, 3.99] sec compare?
MAINTAINING YOUR SKILLS
60. (5.1) A lune is a section of surface area on a sphere, which is subtended by an angle at the r circumference. For in radians, the surface area of a lune is A 2r2, where r is the radius of the sphere. Find the area of a lune on the surface of the Earth which is subtended by an angle of 15°. Assume the radius of the Earth is 6373 km. 61. (3.4/3.5) Find the y-intercept, x-intercept(s), and all asymptotes of each function, but do not graph. x1 3x2 9x a. h1x2 b. t1x2 2 2 2x 8 x 4x
c. p1x2
x2 1 x2
62. (5.2) State the points on the unit circle that 3 3 correspond to t 0, , , , , , and 2. 4 2 4 2 What is the value of tana b? Why? 2 63. (4.1) The radioactive element potassium-42 is sometimes used as a tracer in certain biological experiments, and its decay can be modeled by the formula Q1t2 Q0e0.055t, where Q(t) is the amount that remains after t hours. If 15 grams (g) of potassium-42 are initially present, how many hours until only 10 g remain?
5.7 Transformations and Applications of Trigonometric Graphs Learning Objectives In Section 5.7 you will learn how to:
A. Apply vertical translations in context
B. Apply horizontal translations in context
C. Solve applications involving harmonic motion
From your algebra experience, you may remember beginning with a study of linear graphs, then moving on to quadratic graphs and their characteristics. By combining and extending the knowledge you gained, you were able to investigate and understand a variety of polynomial graphs—along with some powerful applications. A study of trigonometry follows a similar pattern, and by “combining and extending” our understanding of the basic trig graphs, we’ll look at some powerful applications in this section.
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A. Vertical Translations: y A sin1Bt2 D
Figure 5.79
On any given day, outdoor temperatures tend to follow a sinusoidal pattern, or a pattern that can be modeled by a sine function. As the sun rises, the morning temperature begins to warm and rise until reaching its high in the late afternoon, then begins to cool during the early evening and nighttime hours until falling to its nighttime low just prior to sunrise. Next morning, the cycle begins again. In the northern latitudes where the winters are very cold, it’s not unreasonable to assume an average daily temperature of 0°C 132°F2, and a temperature graph in degrees Celsius that looks like the one in Figure 5.79. For the moment, we’ll assume that 2 t 0 corresponds to 12:00 noon. Note that A 15 and P 24, yielding 24 B or B . 12 If you live in a more temperate area, the daily temperatures still follow a sinusoidal pattern, but the average temperature could be much higher. This is an example of a vertical shift, and is the role D plays in the equation y A sin1Bt2 D. All other aspects of a graph remain the same; it is simply shifted D units up if D 7 0 and D units down if D 6 0. As in Section 5.3, for maximum value M and minimum value m, Mm Mm gives the amplitude A of a sine curve, while gives the average value D. 2 2
C 15
6
12
5-86
18
24
t
15
EXAMPLE 1
Solution
Modeling Temperature Using a Sine Function On a fine day in Galveston, Texas, the high temperature might be about 85°F with an overnight low of 61°F. a. Find a sinusoidal equation model for the daily temperature. b. Sketch the graph. c. Approximate what time(s) of day the temperature is 65°F. Assume t 0 corresponds to 12:00 noon. a. We first note the period is still P 24, so B , and the equation model 12 85 61 Mm will have the form y A sina tb D. Using , we find 12 2 2 85 61 the average value D 73, with amplitude A 12. The resulting 2 equation is y 12 sina tb 73. 12 b. To sketch the graph, use a reference rectangle 2A 24 units tall and P 24 units wide, along with the rule of fourths to locate zeroes and max/min values (see Figure 5.80). Then lightly sketch a sine curve through these points and within the rectangle as shown. This is the graph of y 12 sina tb 0. 12 Using an appropriate scale, shift the rectangle and plotted points vertically upward 73 units and carefully draw the finished graph through the points and within the rectangle (see Figure 5.81).
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Figure 5.80
Figure 5.81
F
90
12
y 12 sin 12 t
6
85
t (hours) 0
WORTHY OF NOTE
12
18
24
6
Recall from Section 5.5 that transformations of any function y f1x2 remain consistent regardless of the function f used. For the sine function, the transformation y af1x h2 k is more commonly written y A sin1t C2 D, and A gives a vertical stretch or compression, C is a horizontal shift opposite the sign, and D is a vertical shift, as seen in Example 1.
F
y 12 sin 12 t 73
80 75
6
589
12
Average value
70 65 60
(c) t (hours)
0 6
12
18
24
tb 73. Note the brokenline notation 12 “ ” in Figure 5.81 indicates that certain values along an axis are unused (in this case, we skipped 0° to 60°2, and we began scaling the axis with the values needed. This gives the graph of y 12 sina
c. As indicated in Figure 5.81, the temperature hits 65° twice, at about 15 and 21 hr after 12:00 noon, or at 3:00 A.M. and 9:00 A.M. Verify by computing f(15) and f(21). Now try Exercises 7 through 18
Sinusoidal graphs actually include both sine and cosine graphs, the difference being that sine graphs begin at the average value, while cosine graphs begin at the maximum value. Sometimes it’s more advantageous to use one over the other, but equivalent forms can easily be found. In Example 2, a cosine function is used to model an animal population that fluctuates sinusoidally due to changes in food supplies.
EXAMPLE 2
Modeling Population Fluctuations Using a Cosine Function The population of a certain animal species can be modeled by the function P1t2 1200 cos a tb 9000, where P1t2 represents the population in year t. 5 Use the model to a. b. c. d.
Solution
Find the period of the function. Graph the function over one period. Find the maximum and minimum values. Estimate the number of years the population is less than 8000. 2 , the period is P 10, meaning the population of this 5 /5 species fluctuates over a 10-yr cycle.
a. Since B
b. Use a reference rectangle (2A 2400 by P 10 units) and the rule of fourths to locate zeroes and max/min values, then sketch the unshifted graph y 1200 cos a tb. With P 10, these occur at t 0, 2.5, 5, 7.5, and 10 5 (see Figure 5.82). Shift this graph upward 9000 units (using an appropriate scale) to obtain the graph of P(t) shown in Figure 5.83.
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Figure 5.82 P 1500
Figure 5.83 P
10,500
y 1200 cos 5 t
P(t) 1200 cos 5 t 9000
10,000
1000
9500
500
t (years)
9000
10
8500
Average value
0 500
2
4
6
8
8000
1000
(d)
7500
1500
t (years)
0 2
A. You’ve just learned how to apply vertical translations in context
4
6
8
10
c. The maximum value is 9000 1200 10,200 and the minimum value is 9000 1200 7800. d. As determined from the graph, the population drops below 8000 animals for approximately 2 yr. Verify by computing P(4) and P(6). Now try Exercises 19 and 20
B. Horizontal Translations: y A sin1Bt C2 D In some cases, scientists would rather “benchmark” their study of sinusoidal phenomena by placing the average value at t 0 instead of a maximum value (as in Example 2), or by placing the maximum or minimum value at t 0 instead of the average value (as in Example 1). Rather than make additional studies or recompute using available data, we can simply shift these graphs using a horizontal translation. To help understand how, consider the graph of y x2. The graph is a parabola, concave up, with a vertex at the origin. Comparing this function with y1 1x 32 2 and y2 1x 32 2, we note y1 is simply the parent graph shifted 3 units right, and y2 is the parent graph shifted 3 units left (“opposite the sign”). See Figures 5.84 through 5.86. While quadratic functions have no maximum value if A 0, these graphs are a good reminder of how a basic graph can be horizontally shifted. We simply replace the independent variable x with 1x h2 or t with 1t h2, where h is the desired shift and the sign is chosen depending on the direction of the shift. Figure 5.84 y x2
x
Figure 5.86
y1 (x 3)2
y2 (x 3)2
y
y
EXAMPLE 3
Figure 5.85
y
x
3
3
x
Investigating Horizontal Shifts of a Trigonometric Graph Use a horizontal translation to shift the graph from Example 2 so that the average population begins at t 0. Verify the result on a graphing calculator, then find a sine function that gives the same graph as the shifted cosine function.
11,000
0
10
7000
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Section 5.7 Transformations and Applications of Trigonometric Graphs
Solution
For P1t2 1200 cosa tb 9000 from Example 2, the average value first occurs 5 at t 2.5. For the average value to occur at t 0, we must shift the graph to the right 2.5 units. Replacing t with 1t 2.52 gives P1t2 1200 cos c 1t 2.52 d 9000. 5 A graphing calculator shows the desired result is obtained (see figure). The new graph appears to be a sine function with the same amplitude and period, and the equation is y 1200 sina tb 9000. 5 Now try Exercises 21 and 22
WORTHY OF NOTE When the function P1t2 1200 cos c 1t 2.52 d 5 9000 is written in standard form as P1t2 1200 cos c t d 9000, we 5 2 can easily see why they are equivalent to P1t2 1200 sina tb 9000. Using the 5 cofunction relationship, cos c t d sina tb. 5 2 5
591
Equations like P1t2 1200 cos c 1t 2.52 d 9000 from Example 3 are said 5 to be written in shifted form, since we can easily tell the magnitude and direction of the shift. To obtain the standard form we distribute the value of B: P1t2 1200 cosa t b 9000. In general, the standard form of a sinusoidal 5 2 equation (using either a cosine or sine function) is written y A sin1Bt C2 D, with the shifted form found by factoring out B from Bt C : y A sin1Bt C2 D S y A sin c B at
C bd D B
In either case, C gives what is known as the phase angle of the function, and is used in a study of AC circuits and other areas, to discuss how far a given function is C “out of phase” with a reference function. In the latter case, is simply the horizontal B shift (or phase shift) of the function and gives the magnitude and direction of this shift (opposite the sign). Characteristics of Sinusoidal Models Transformations of the graph of y sin t are written as y A sin1Bt2, where 1. A gives the amplitude of the graph, or the maximum displacement from the average value. 2 2. B is related to the period P of the graph according to the ratio P B (the interval required for one complete cycle). Translations of y A sin1Bt2 can be written as follows: Standard form
Shifted form
C bd D B C 3. In either case, C is called the phase angle of the graph, while gives the B magnitude and direction of the horizontal shift (opposite the given sign). y A sin1Bt C2 D
y A sin c Bat
4. D gives the vertical shift of the graph, and the location of the average value. The shift will be in the same direction as the given sign.
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Knowing where each cycle begins and ends is a helpful part of sketching a graph of the equation model. The primary interval for a sinusoidal graph can be found by solving the inequality 0 Bt C 6 2, with the reference rectangle and rule of fourths giving the zeroes, max/min values, and a sketch of the graph in this interval. The graph can then be extended in either direction, and shifted vertically as needed.
EXAMPLE 4
Analyzing the Transformation of a Trig Function Identify the amplitude, period, horizontal shift, vertical shift (average value), and endpoints of the primary interval. 3 y 2.5 sina t b6 4 4
Solution
WORTHY OF NOTE
The equation gives an amplitude of A 2.5, with an average value of D 6. The maximum value will be y 2.5112 6 8.5, with a minimum of 2 , the period is P 8. To find the 4 /4 3 b horizontal shift, we factor out to write the equation in shifted form: a t 4 4 4 1t 32. The horizontal shift is 3 units left. For the endpoints of the primary interval 4 we solve 0 1t 32 6 2, which gives 3 t 6 5. 4 y 2.5112 6 3.5. With B
It’s important that you don’t confuse the standard form with the shifted form. Each has a place and purpose, but the horizontal shift can be identified only by focusing on the change in an independent variable. Even though the equations y 41x 32 2 and y 12x 62 2 are equivalent, only the first explicitly shows that y 4x2 has been shifted three units left. Likewise y sin 321t 32 4 and y sin12t 62 are equivalent, but only the first explicitly gives the horizontal shift (three units left). Applications involving a horizontal shift come in an infinite variety, and the shifts are generally not uniform or standard.
Now try Exercises 23 through 34
GRAPHICAL SUPPORT The analysis of y 2.5 sin c 1t 32 d 6 from 4 Example 4 can be verified on a graphing calculator. Enter the function as Y1 on the Y = screen and set an appropriate window size using the information gathered. Press the TRACE key and 3 ENTER and the calculator gives the average value y 6 as output. Repeating this for x 5 shows one complete cycle has been completed.
10
3
7
0
To help gain a better understanding of sinusoidal functions, their graphs, and the role the coefficients A, B, C, and D play, it’s often helpful to reconstruct the equation of a given graph.
EXAMPLE 5
Determining the Equation of a Trig Function from Its Graph Determine the equation of the given graph using a sine function.
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Solution
From the graph it is apparent the maximum value is 300, with a minimum of 50.This gives a value
y 350 300
300 50 300 50 of 175 for D and 125 2 2 for A. The graph completes one cycle from t 2 to t 18, showing P 18 2 16 and B . 8 The average value first occurs at t 2, so the basic graph has been shifted to the right 2 units. The equation is y 125 sin c 1t 22 d 175. 8
B. You’ve just learned how to apply horizontal translations in context
250 200 150 100 50 0
4
8
12
16
20
24
Now try Exercises 35 through 44
t
C. Simple Harmonic Motion: y A sin1Bt2 or y A cos1Bt2 The periodic motion of springs, tides, sound, and other phenomena all exhibit what is known as harmonic motion, which can be modeled using sinusoidal functions.
Harmonic Models—Springs Consider a spring hanging from a beam with a weight attached to one end. When the weight is at rest, we say it is in equilibrium, or has zero displacement from center. Stretching the spring and then releasing it causes the weight to “bounce up and down,” with its displacement from center neatly modeled over time by a sine wave (see Figure 5.87). Figure 5.87 At rest
Stretched
Figure 5.88 Released
Harmonic motion Displacement (cm)
4
4
4
2
2
2
0
0
0
2
2
2
4
4
4
4
t (seconds) 0 0.5
1.0
1.5
2.0
2.5
4
For objects in harmonic motion (there are other harmonic models), the input variable t is always a time unit (seconds, minutes, days, etc.), so in addition to the period of the sinusoid, we are very interested in its frequency—the number of cycles it completes per unit time (see Figure 5.88). Since the period gives the time required to complete one 1 B . cycle, the frequency f is given by f P 2
EXAMPLE 6
Applications of Sine and Cosine: Harmonic Motion For the harmonic motion modeled by the sinusoid in Figure 5.88, a. Find an equation of the form y A cos1Bt2 . b. Determine the frequency. c. Use the equation to find the position of the weight at t 1.8 sec.
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Solution
a. By inspection the graph has an amplitude A 3 and a period P 2. After 2 , we obtain B and the equation y 3 cos1t2. substitution into P B 1 b. Frequency is the reciprocal of the period so f , showing one-half a cycle is 2 completed each second (as the graph indicates). c. Evaluating the model at t 1.8 gives y 3 cos 311.82 4 2.43, meaning the weight is 2.43 cm below the equilibrium point at this time. Now try Exercises 47 through 50
Harmonic Models—Sound Waves A second example of harmonic motion is the production of sound. For the purposes of this study, we’ll look at musical notes. The vibration of matter produces a pressure wave or sound energy, which in turn vibrates the eardrum. Through the intricate structure of the middle ear, this sound energy is converted into mechanical energy and sent to the inner ear where it is converted to nerve impulses and transmitted to the brain. If the sound wave has a high frequency, the eardrum vibrates with greater frequency, which the brain interprets as a “high-pitched” sound. The intensity of the sound wave can also be transmitted to the brain via these mechanisms, and if the arriving sound wave has a high amplitude, the eardrum vibrates more forcefully and the sound is interpreted as “loud” by the brain. These characteristics are neatly modeled using y A sin1Bt2 . For the moment we will focus on the frequency, keeping the amplitude constant at A 1. The musical note known as A4 or “the A above middle C” is produced with a frequency of 440 vibrations per second, or 440 hertz (Hz) (this is the note most often used in the tuning of pianos and other musical instruments). For any given note, the same note one octave higher will have double the frequency, and the same note one octave 1 lower will have one-half the frequency. In addition, with f the value of P 1 B 2a b can always be expressed as B 2f , so A4 has the equation P y sin 344012t2 4 (after rearranging the factors). The same note one octave lower is A3 and has the equation y sin 322012t2 4 , Figure 5.89 with one-half the frequency. To draw the representative graphs, we must scale the t-axis in A4 y sin[440(2t)] y A3 y sin[220(2t)] very small increments (seconds 103) 1 1 0.0023 for A4, and since P 440 t (sec 103) 1 0 0.0045 for A3. Both are graphed P 1 2 3 4 5 220 in Figure 5.89, where we see that the higher note completes two cycles in the same inter- 1 val that the lower note completes one.
EXAMPLE 7
Applications of Sine and Cosine: Sound Frequencies The table here gives the frequencies for three octaves of the 12 “chromatic” notes with frequencies between 110 Hz and 840 Hz. Two of the 36 notes are graphed in the figure. Which two?
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Section 5.7 Transformations and Applications of Trigonometric Graphs y 1
y1 sin[ f (2t)]
Frequency by Octave
y2 sin[ f (2t)] t (sec 103)
0
1.0 2.0 3.0 4.0 5.0 6.0 7.0 1
Solution
C. You’ve just learned how to solve applications involving harmonic motion
Note
Octave 3
Octave 4
Octave 5
A
110.00
220.00
440.00
A#
116.54
233.08
466.16
B
123.48
246.96
493.92
C
130.82
261.64
523.28
C#
138.60
277.20
554.40
D
146.84
293.68
587.36
D#
155.56
311.12
622.24
E
164.82
329.24
659.28
F
174.62
349.24
698.48
F#
185.00
370.00
740.00
G
196.00
392.00
784.00
G#
207.66
415.32
830.64
Since amplitudes are equal, the only difference is the frequency and period of the notes. It appears that y1 has a period of about 0.004 sec, giving a frequency of 1 250 Hz—very likely a B4 (in bold). The graph of y2 has a period of about 0.004 1 0.006, for a frequency of 167 Hz—probably an E3 (also in bold). 0.006 Now try Exercises 51 through 54
TECHNOLOGY HIGHLIGHT
Locating Zeroes, Roots, and x-Intercepts As you know, the zeroes of a function are input values that cause an output of zero. Graphically, these show up as x-intercepts and once a function is graphed they can be located (if they exist) using the 2nd CALC 2:zero feature. This feature is similar to the 3:minimum and 4:maximum features, in that we have the calculator search a specified interval by giving a left bound and a right bound. To illustrate, enter Y1 3 sina xb 1 on the Y = screen and graph it 2
Figure 5.90 4
6.2
6.2
4 using the ZOOM 7:ZTrig option. The resulting graph shows there are six zeroes in this interval and we’ll locate the first negative root. Knowing the 7:Trig option
uses tick marks that are spaced every CALC
units, this root is in the interval a, b. After pressing 2 2
2nd
2:zero the calculator returns you to the graph, and requests a “Left Bound,” (see Figure 5.90).
We enter (press
) and the calculator marks this choice with a “ N ” marker (pointing to the right), then asks for a “Right Bound.” After entering , the calculator marks this with a “ > ” marker and asks 2 for a “Guess.” Bypass this option by pressing ENTER once again (see Figure 5.91). The calculator searches the interval until it locates a zero (Figure 5.92) or displays an error message indicating it was unable to comply (no zeroes in the interval). Use these ideas to locate the zeroes of the following functions in [0, ]. ENTER
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Figure 5.91
Figure 5.92
4
6.2
4
6.2
6.2
6.2
4
4
Exercise 2: y 0.5 sin 31t 22 4
Exercise 1: y 2 cos1t2 1 Exercise 3: y
3 tan12x2 1 2
Exercise 4: y x3 cos x
5.7 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. A sinusoidal wave is one that can be modeled by functions of the form ______________ or _______________. 2. The graph of y sin x k is the graph of y sin x shifted __________ k units. The graph of y sin1x h2 is the graph of y sin x shifted __________ h units. 3. To find the primary interval of a sinusoidal graph, solve the inequality ____________.
4. Given the period P, the frequency is __________, and given the frequency f, the value of B is __________. 5. Explain/Discuss the difference between the standard form of a sinusoidal equation, and the shifted form. How do you obtain one from the other? For what benefit? 6. Write out a step-by-step procedure for sketching 1 the graph of y 30 sina t b 10. Include 2 2 use of the reference rectangle, primary interval, zeroes, max/mins, and so on. Be complete and thorough.
DEVELOPING YOUR SKILLS
Use the graphs given to (a) state the amplitude A and period P of the function; (b) estimate the value at x 14; and (c) estimate the interval in [0, P] where f (x) 20.
7.
8.
f (x) 50
6
50
12
18
24
30
f (x) 50
x
5
50
10 15 20 25
30
x
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Use the graphs given to (a) state the amplitude A and period P of the function; (b) estimate the value at x 2; and (c) estimate the interval in [0, P], where f (x) 100.
9.
10.
f (x) 250
3 3 9 3 15 9 21 6 27 4 2 4 4 2 4 4
f (x) 125
x
250
1
2
3
4
5
6
7
8 x
125
Use the information given to write a sinusoidal equation 2 and sketch its graph. Recall B . P
11. Max: 100, min: 20, P 30 12. Max: 95, min: 40, P 24 13. Max: 20, min: 4, P 360 14. Max: 12,000, min: 6500, P 10 Use the information given to write a sinusoidal equation, sketch its graph, and answer the question posed.
15. In Geneva, Switzerland, the daily temperature in January ranges from an average high of 39°F to an average low of 29°F. (a) Find a sinusoidal equation model for the daily temperature; (b) sketch the graph; and (c) approximate the time(s) each January day the temperature reaches the freezing point (32°F). Assume t 0 corresponds to noon. Source: 2004 Statistical Abstract of the United States, Table 1331.
16. In Nairobi, Kenya, the daily temperature in January ranges from an average high of 77°F to an average low of 58°F. (a) Find a sinusoidal equation model for the daily temperature; (b) sketch the graph; and (c) approximate the time(s) each January day the temperature reaches a comfortable 72°F. Assume t 0 corresponds to noon. Source: 2004 Statistical Abstract of the United States, Table 1331.
17. In Oslo, Norway, the number of hours of daylight reaches a low of 6 hr in January, and a high of nearly 18.8 hr in July. (a) Find a sinusoidal equation model for the number of daylight hours each month; (b) sketch the graph; and (c) approximate the number of days each year there are more than 15 hr of daylight. Use 1 month 30.5 days. Assume t 0 corresponds to January 1. Source: www.visitnorway.com/templates.
597
18. In Vancouver, British Columbia, the number of hours of daylight reaches a low of 8.3 hr in January, and a high of nearly 16.2 hr in July. (a) Find a sinusoidal equation model for the number of daylight hours each month; (b) sketch the graph; and (c) approximate the number of days each year there are more than 15 hr of daylight. Use 1 month 30.5 days. Assume t 0 corresponds to January 1. Source: www.bcpassport.com/vital/temp.
19. Recent studies seem to indicate the population of North American porcupine (Erethizon dorsatum) varies sinusoidally with the solar (sunspot) cycle due to its effects on Earth’s ecosystems. Suppose the population of this species in a certain locality is modeled by the 2 function P1t2 250 cosa tb 950, where P(t) 11 represents the population of porcupines in year t. Use the model to (a) find the period of the function; (b) graph the function over one period; (c) find the maximum and minimum values; and (d) estimate the number of years the population is less than 740 animals. Source: Ilya Klvana, McGill University (Montreal), Master of Science thesis paper, November 2002.
20. The population of mosquitoes in a given area is primarily influenced by precipitation, humidity, and temperature. In tropical regions, these tend to fluctuate sinusoidally in the course of a year. Using trap counts and statistical projections, fairly accurate estimates of a mosquito population can be obtained. Suppose the population in a certain region was modeled by the function P1t2 50 cosa tb 950, where P(t) was the 26 mosquito population (in thousands) in week t of the year. Use the model to (a) find the period of the function; (b) graph the function over one period; (c) find the maximum and minimum population values; and (d) estimate the number of weeks the population is less than 915,000. 21. Use a horizontal translation to shift the graph from Exercise 19 so that the average population of the North American porcupine begins at t 0. Verify results on a graphing calculator, then find a sine function that gives the same graph as the shifted cosine function. 22. Use a horizontal translation to shift the graph from Exercise 20 so that the average population of mosquitoes begins at t 0. Verify results on a graphing calculator, then find a sine function that gives the same graph as the shifted cosine function.
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Identify the amplitude (A), period (P), horizontal shift (HS), vertical shift (VS), and endpoints of the primary interval (PI) for each function given.
23. y 120 sin c 1t 62 d 12
Find the equation of the graph given. Write answers in the form y A sin1Bt C2 D.
35.
24. y 560 sin c 1t 42 d 4 25. h1t2 sina t b 6 3 26. r1t2 sina
2 t b 10 5
27. y sina t b 4 6 5 28. y sina t b 3 12 29. f 1t2 24.5 sin c 1t 2.52 d 15.5 10 30. g1t2 40.6 sin c 1t 42 d 13.4 6 5 31. g1t2 28 sina t b 92 6 12 32. f 1t2 90 sina
t b 120 10 5
33. y 2500 sina t b 3150 4 12 34. y 1450 sina
0
37.
6
12
18
t 24
0
38.
y
25
50
75
100
t 125
0
40.
t 90
180
270
t 8
24
32
t 6
12
18
12
18
24
30
36
y 6000 5000 4000 3000 2000 1000 0
360
16
y 140 120 100 80 60 40 20
y 12 10 8 6 4 2 0
y 140 120 100 80 60 40 20
20 18 16 14 12 10 8 0
39.
36.
y 700 600 500 400 300 200 100
t 6
24
30
36
Sketch one complete period of each function.
41. f 1t2 25 sin c
1t 22 d 55 4
42. g1t2 24.5 sin c
1t 2.52 d 15.5 10
43. h1t2 3 sin14t 2 44. p1t2 2 cosa3t
b 2
3 t b 2050 4 8
WORKING WITH FORMULAS
45. The relationship between the coefficient B, the frequency f, and the period P In many applications of trigonometric functions, the equation y A sin1Bt2 is written as y A sin 3 12f 2t4 , where B 2f . Justify the new 1 2 equation using f and P . In other words, P B explain how A sin(Bt) becomes A sin 3 12f2t 4 , as though you were trying to help another student with the ideas involved.
46. Number of daylight hours: 2 K 1t 792 d 12 D1t2 sin c 2 365 The number of daylight hours for a particular day of the year is modeled by the formula given, where D(t) is the number of daylight hours on day t of the year and K is a constant related to the total variation of daylight hours, latitude of the location, and other factors. For the city of Reykjavik, Iceland, K 17, while for Detroit, Michigan, K 6. How many hours of daylight will each city receive on June 30 (the 182nd day of the year)?
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APPLICATIONS
47. Harmonic motion: A weight on the end of a spring is oscillating in harmonic motion. The equation model for the oscillations is d1t2 6 sina tb, where d is the 2 distance (in centimeters) from the equilibrium point in t sec. a. What is the period of the motion? What is the frequency of the motion? b. What is the displacement from equilibrium at t 2.5? Is the weight moving toward the equilibrium point or away from equilibrium at this time? c. What is the displacement from equilibrium at t 3.5? Is the weight moving toward the equilibrium point or away from equilibrium at this time? d. How far does the weight move between t 1 and t 1.5 sec? What is the average velocity for this interval? Do you expect a greater or lesser velocity for t 1.75 to t 2? Explain why. 48. Harmonic motion: The bob on the end of a 24-in. pendulum is oscillating in harmonic motion. The equation model for the oscillations is d1t2 20 cos14t2 , where d is the distance (in inches) from the equilibrium point, t sec after being released d d from one side. a. What is the period of the motion? What is the frequency of the motion? b. What is the displacement from equilibrium at t 0.25 sec? Is the weight moving toward the equilibrium point or away from equilibrium at this time? c. What is the displacement from equilibrium at t 1.3 sec? Is the weight moving toward the equilibrium point or away from equilibrium at this time? d. How far does the bob move between t 0.25 and t 0.35 sec? What is its average velocity for this interval? Do you expect a greater velocity for the interval t 0.55 to t 0.6? Explain why.
49. Harmonic motion: A simple pendulum 36 in. in length is oscillating in harmonic motion. The bob at the end of the pendulum swings through an arc of 30 in. (from the far left to the far right, or one-half cycle) in about 0.8 sec. What is the equation model for this harmonic motion? 50. Harmonic motion: As part of a study of wave motion, the motion of a floater is observed as a series of uniform ripples of water move beneath it. By careful observation, it is noted that the floater bobs up and down through a distance of 2.5 cm 1 every sec. What is the equation model for this 3 harmonic motion? 51. Sound waves: Two of the musical notes from the chart on page 595 are graphed in the figure. Use the graphs given to determine which two. y
y2 sin[ f (2t)]
1
t (sec 103) 0 2
1
4
6
8
10
y1 sin[ f (2t)]
52. Sound waves: Two chromatic notes not on the chart from page 595 are graphed in the figure. Use the graphs and the discussion regarding octaves to determine which two. Note the scale of the t-axis has been changed to hundredths of a second. y 1
y2 sin[ f (2t)] t (sec 102)
0 0.4
0.8
1.2
1.6
2.0
y1 sin[ f (2t)] 1
Sound waves: Use the chart on page 595 to write the equation for each note in the form y sin 3f(2t) 4 and clearly state the period of each note.
53. notes D3 and G4
54. the notes A5 and C#3
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Daylight hours model: Solve using a graphing calculator and the formula given in Exercise 46.
55. For the city of Caracas, Venezuela, K 1.3, while for Tokyo, Japan, K 4.8. a. How many hours of daylight will each city receive on January 15th (the 15th day of the year)? b. Graph the equations modeling the hours of daylight on the same screen. Then determine (i) what days of the year these two cities will have the same number of hours of daylight, and (ii) the number of days each year that each city receives 11.5 hr or less of daylight.
EXTENDING THE CONCEPT
57. The formulas we use in mathematics can sometimes seem very mysterious. We know they “work,” and we can graph and evaluate them—but where did they come from? Consider the formula for the number of daylight hours from Exercise 46: 2 K 1t 792 d 12. D1t2 sin c 2 365 a. We know that the addition of 12 represents a vertical shift, but what does a vertical shift of 12 mean in this context? b. We also know the factor 1t 792 represents a phase shift of 79 to the right. But what does a horizontal (phase) shift of 79 mean in this context? K c. Finally, the coefficient represents a change 2 in amplitude, but what does a change of amplitude mean in this context? Why is the coefficient bigger for the northern latitudes?
56. For the city of Houston, Texas, K 3.8, while for Pocatello, Idaho, K 6.2. a. How many hours of daylight will each city receive on December 15 (the 349th day of the year)? b. Graph the equations modeling the hours of daylight on the same screen. Then determine (i) how many days each year Pocatello receives more daylight than Houston, and (ii) the number of days each year that each city receives 13.5 hr or more of daylight.
58. Use a graphing calculator to graph the equation 3x 2 sin12x2 1.5. f 1x2 2 a. Determine the interval between each peak of the graph. What do you notice? 3x b. Graph g1x2 1.5 on the same screen 2 and comment on what you observe. c. What would the graph of 3x f 1x2 2 sin12x2 1.5 look like? 2 What is the x-intercept?
MAINTAINING YOUR SKILLS
59. (5.1) In what quadrant does the arc t 3.7 terminate? What is the reference arc?
60. (3.1) Given f 1x2 31x 12 2 4, name the vertex and solve the inequality f 1x2 7 0.
61. (1.4) Compute the sum, difference, product and quotient of 1 i 15 and 1 i 15. 62. (5.3/5.4) Sketch the graph of (a) y cos t in the interval [0, 2) and (b) y tan t in the interval 3 b. a , 2 2
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Summary and Concept Review
S U M M A RY A N D C O N C E P T R E V I E W SECTION 5.1
Angle Measure, Special Triangles, and Special Angles
KEY CONCEPTS • An angle is defined as the joining of two rays at a common endpoint called the vertex. • An angle in standard position has its vertex at the origin and its initial side on the positive x-axis. • Two angles in standard position are coterminal if they have the same terminal side. • A counterclockwise rotation gives a positive angle, a clockwise rotation gives a negative angle. 1 of a full revolution. One (1) radian is the measure of a central • One degree (1°) is defined to be 360 angle subtended by an arc equal in length to the radius. • Degrees can be divided into a smaller unit called minutes: 1° 60¿; minutes can be divided into a smaller unit called seconds: 1¿ 60–. This implies 1° 3600–. • Two angles are complementary if they sum to 90° and supplementary if they sum to 180°. • Properties of triangles: (I) the sum of the angles is 180°; (II) the combined length of any two sides must exceed that of the third side and; (III) larger angles are opposite larger sides. • Given two triangles, if all three corresponding angles are equal, the triangles are said to be similar. If two triangles are similar, then corresponding sides are in proportion. • In a 45-45-90 triangle, the sides are in the proportion 1x : 1x: 12x. • In a 30-60-90 triangle, the sides are in the proportion 1x : 13x: 2x. • The formula for arc length: s r; area of a circular sector: A 12 r2, in radians. 180° ; for radians to degrees, multiply by . • To convert degree measure to radians, multiply by 180° • Special angle conversions: 30° , 45° , 60° , 90° . 6 4 3 2 • Angular velocity is a rate of rotation per unit time: . t r • Linear velocity is a change in position per unit time: V or V r. t EXERCISES 1. Convert 147°36¿48– to decimal degrees. 2. Convert 32.87° to degrees, minutes, and seconds. 3. All of the right triangles given are similar. Find the dimensions of the largest triangle. Exercise 3
Exercise 4
16.875 3 6
4
60
d
40
0y
d
4. Use special angles/special triangles to find the length of the bridge needed to cross the lake shown in the figure. 5. Convert to degrees:
2 . 3
7. Find the arc length if r 5 and 57°.
6. Convert to radians: 210°. 8. Evaluate without using a calculator: sina
7 b. 6
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Find the angle, radius, arc length, and/or area as needed, until all values are known. y y 9. 10. 11. 96 in.
y 152 m2
s 1.7
2.3 15 cm
r
x
8
x
x
12. With great effort, 5-year-old Mackenzie has just rolled her bowling ball down the lane, and it is traveling painfully slow. So slow, in fact, that you can count the number of revolutions the ball makes using the finger holes as a reference. (a) If the ball is rolling at 1.5 revolutions per second, what is the angular velocity? (b) If the ball’s radius is 5 in., what is its linear velocity in feet per second? (c) If the distance to the first pin is 60 feet and the ball is true, how many seconds until it hits?
The Trigonometry of Right Triangles
SECTION 5.2
KEY CONCEPTS • The sides of a right triangle are named using their location with respect to a given angle. • The ratios of two sides are named as follows: adj cos hyp
opp sin hyp
B Hypotenuse
opp tan adj
A
Side adjacent
• The reciprocal ratios are likewise given special names: hyp opp 1 csc sin csc
hyp adj 1 sec cos sec
adj opp 1 cot tan
Side opposite C
cot
• Each function of is equal to the cofunction of its complement. For instance, the complement of sine is cosine
and sin cos190° 2. • To solve a right triangle means to apply any combination of the trig functions, along with the triangle properties, until all sides and all angles are known. • An angle of elevation is the angle formed by a horizontal line of sight (parallel to level ground) and the line of sight. An angle of depression is likewise formed, but with the line of sight below the line of orientation.
EXERCISES 13. Use a calculator to solve for A: a. cos 37° A b. cos A 0.4340
14. Rewrite each expression in terms of a cofunction. a. tan 57.4° b. sin119°30¿15– 2
Solve each triangle. Round angles to the nearest tenth and sides to the nearest hundredth. B 15. 16. B
20 m c
89 in.
C A
c
49 b
C
21 m
A
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Summary and Concept Review
17. Josephine is to weld a vertical support to a 20 m ramp so that the incline is exactly 15°. What is the height h of the support that must be used? 18. From the observation deck of a seaside building 480 m high, Armando sees two fishing boats in the distance. The angle of depression to the nearer boat is 63.5°, while for the boat farther away the angle is 45°. (a) How far out to sea is the nearer boat? (b) How far apart are the two boats?
20 m
h
15 45 63.5 480 m
19. A slice of bread is roughly 14 cm by 10 cm. If the slice is cut diagonally in half, what acute angles are formed?
SECTION 5.3
Trigonometry and the Coordinate Plane
KEY CONCEPTS • In standard position, the terminal sides of 0°, 90°, 180°, 270°, and 360° angles coincide with one of the axes and are called quadrantal angles. • Given P(x, y) is any point on the terminal side of an angle in standard position, with r 2x2 y2 the distance from the origin to this point. The six trigonometric functions of are then defined as follows: y r r x csc sec cot x x y y x0 y0 x0 y0 A reference angle r is defined to be the acute angle formed by the terminal side of a given angle and the x-axis. Reference angles can be used to evaluate the trig functions of any nonquadrantal angle, since the values are fixed by the ratio of sides and the signs are dictated by the quadrant of the terminal side. If the value of a trig function and the quadrant of the terminal side are known, the related angle can be found using a reference arc/angle, or the sin1, cos1, or tan1 features of a calculator. If is a solution to sin k, then 360°k is also a solution for any integer k. sin
• • • •
y r
cos
x r
tan
EXERCISES 20. Find two positive angles and two negative angles that are coterminal with 207°. 21. Name the reference angle for the angles given: 152° 521° 210° 22. Find the value of the six trigonometric functions, given P(x, y) is on the terminal side of angle in standard position. a. P112, 352 b. 112, 182 23. Find the values of x, y, and r using the information given, and state the quadrant of the terminal side of . Then state the values of the six trig functions of . 12 4 a. cos ; sin 6 0 b. tan ; cos 7 0 5 5 24. Find all angles satisfying the stated relationship. For special angles, express your answer in exact form. For other angles, use a calculator and round to the nearest tenth. a. tan 1
SECTION 5.4
b. cos
13 2
c. tan 4.0108
d. sin 0.4540
Unit Circles and the Trigonometry of Real Numbers
KEY CONCEPTS • A central unit circle is a circle with radius 1 unit having its center at the origin. • A central circle is symmetric to both axes and the origin. This means that if (a, b) is a point on the circle, then 1a, b2, 1a, b2 , and 1a, b2 are also on the circle and satisfy the equation of the circle.
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CHAPTER 5 An Introduction to Trigonometry
• On a unit circle, the length of a subtended arc is numerically the same as the subtended angle ( in radians), making the arc a “circular number line” and associating any given rotation with a unique real number. • For functions of a real number we refer to a reference arc rather than a reference angle. • For any real number t and a point on the unit circle associated with t, we have: cos t x
y x x0
sin t y
1 x x0
tan t
1 y y0
sec t
x y y0
csc t
cot t
EXERCISES 113 , yb is on a unit circle, find y if the point is in QIV, then use the symmetry of the circle to locate 7 three other points.
25. Given a
17 3 26. Given a , b is on the unit circle, find the value of all six trig functions of t without the use of a calculator. 4 4 2 27. Without using a calculator, find two values in [0, 2) that make the equation true: csc t . 13 28. Use a calculator to find the value of t that corresponds to the situation described: cos t 0.7641 with t in QII. 29. A crane used for lifting heavy equipment has a winch-drum with a 1-yd radius. (a) If 59 ft of cable has been wound in while lifting some equipment to the roof-top of a building, what radian angle has the drum turned through? (b) What angle must the drum turn through to wind in 75 ft of cable?
Graphs of the Sine and Cosine Functions; Cosecant and Secant Functions
SECTION 5.5
KEY CONCEPTS • Graphing sine and cosine functions using the special values from a unit circle results in a periodic, wavelike graph with domain 1q, q 2. 6 , 0.87
4 , 0.71
cos t
3 , 0.5
6 , 0.5
2 , 0
sin t
3 , 0.87
2 , 1
g
asin
Incr e
re Dec
0.5
asin g
1
1
0.5
4 , 0.71
(0, 0)
2
3 2
2
t
(0, 0)
0.5
0.5
1
1
2
3 2
2
t
• The characteristics of each graph play a vital role in their contextual application, and these are summarized on pages 559 and 562. • The amplitude of a sine or cosine graph is the maximum displacement from the average value. For y A sin1Bt2 and y A cos1Bt2, the amplitude is A. • The period of a periodic function is the smallest interval required to complete one cycle. 2 For y A sin1Bt2 and y A cos1Bt2, the period is P . B • If A 7 1, the graph is vertically stretched. If 0 6 A 6 1 the graph is vertically compressed. If A 6 0 the graph is reflected across the x-axis.
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Summary and Concept Review
• If B 7 1, the graph is horizontally compressed (the period is smaller/shorter). If B 6 1 the graph is horizontally stretched (the period is larger/longer). 2 units wide, centered • To graph y A sin1Bt2 or A cos (Bt), draw a reference rectangle 2A units high and P B on the x-axis. Then use the rule of fourths to locate the zeroes and max/min values (see page 560), and connect these points with a smooth curve. 1 will be asymptotic everywhere cos t 0, increasing where cos t is decreasing, • The graph of y sec t cos t and decreasing where cos t is increasing. 1 will be asymptotic everywhere sin t 0, increasing where sin t is decreasing, • The graph of y csc t sin t and decreasing where sin t is increasing.
EXERCISES Use a reference rectangle and the rule of fourths to draw an accurate sketch of the following functions through at least one full period. Clearly state the amplitude (as applicable) and period as you begin. 30. y 3 sin t 31. y 3 sec t 32. y cos12t2 33. y 1.7 sin14t2
34. f1t2 2 cos14t2
35. g1t2 3 sin1398t2
The given graphs are of the form y A sin1Bt2 and y A csc1Bt2 . Determine the equation of each graph. y 36. 37. 8 y 1 6 0.5
4 2
(0, 0) 0.5
6
3
2
2 3
5 t 6
(0, 0) 2 4
1 3
2 3
1
4 3
5 3
t
6 1
8
38. Referring to the chart of colors visible in the electromagnetic spectrum (page 572), what color is represented by tb? By y sina tb? the equation y sina 270 320
SECTION 5.6
Graphs of Tangent and Cotangent Functions
KEY CONCEPTS y
• Since tan t is defined in terms of the ratio x , the graph will be asymptotic everywhere x 0
• • • • •
2
(0, 1) (x, y)
on the unit circle, meaning all odd multiples of . 0 2 (1, 0) (1, 0) x x Since cot t is defined in terms of the ratio , the graph will be asymptotic everywhere y 0 y on the unit circle, meaning all integer multiples of . 3 (0, 1) 2 The graph of y tan t is increasing everywhere it is defined; the graph of y cot t is decreasing everywhere it is defined. The characteristics of each graph play a vital role in their contextual application, and these are summarized on page 577. P To graph y A tan1Bt2, note A tan (Bt) is zero at t 0. Compute P and draw asymptotes a distance of B 2 on either side of the y-axis. Plot zeroes halfway between asymptotes and use symmetry to complete the graph. To graph y A cot1Bt2, note it is asymptotic at t 0. Compute P and draw asymptotes a distance P on either B side of the y-axis. Plot zeroes halfway between the asymptotes and use symmetry to complete the graph.
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• If A 7 1, the graph is vertically stretched.
If 0 6 A 6 1 the graph is vertically compressed. If A 6 0 the graph is reflected across the x-axis. • If B 7 1, the graph is horizontally compressed (the period is smaller/shorter). If B 6 1 the graph is horizontally stretched (the period is larger/longer).
EXERCISES 39. State the value of each expression without the aid of a calculator: 7 cota b tana b 4 3 40. State the value of each expression without the aid of a calculator, given that t terminates in QII. 1 tan1 1 132 cot1a b 13 1 1 41. Graph y 6 tana tb in the interval [2, 2]. 42. Graph y cot12t2 in the interval [1, 1]. 2 2 43. Use the period of y cot t to name three additional solutions to cot t 0.0208, given t 1.55 is a solution. Many solutions are possible. 44. Given t 0.4444 is a solution to cot1 1t2 2.1, use an analysis of signs and quadrants to name an additional solution in [0, 2). d 45. Find the approximate height of Mount Rushmore, using h and the values shown. cot u cot v
h (not to scale) v 40
u 25 144 m
46. Model the data in the table using a tangent function. Clearly state the period, the value of A, and the location of the asymptotes. Input
SECTION 5.7
Output
Input
Output
6
q
1
1.4
5
19.4
2
3
4
9
3
5.2
3
5.2
4
9
2
3
5
19.4
1
1.4
6
q
0
0
Transformations and Applications of Trigonometric Graphs
KEY CONCEPTS • Many everyday phenomena follow a sinusoidal pattern, or a pattern that can be modeled by a sine or cosine function (e.g., daily temperatures, hours of daylight, others). • To obtain accurate equation models of sinusoidal phenomena, vertical and horizontal shifts of a basic function are used.
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Mixed Review
607
• The equation y A sin1Bt C2 D is the standard form of a general sinusoid. The equation y A sin c B at
• • • •
C C b d D is the shifted form of a general sinusoid. gives the horizontal shift. B B In either form, D represents the average value of the function and a vertical shift D units upward if D 7 0, Mm Mm D, A. D units downward if D 6 0. For a maximum value M and minimum value m, 2 2 To graph a shifted sinusoid, locate the primary interval by solving 0 Bt C 6 2, then use a reference rectangle along with the rule of fourths to sketch the graph in this interval. The graph can then be extended as needed, then shifted vertically D units. One application of sinusoidal graphs involves phenomena in harmonic motion, or motion that can be modeled by functions of the form y A sin1Bt2 or y A cos1Bt2 (with no horizontal or vertical shift). If the period P and critical points (X, M) and (x, m) of a sinusoidal function are known, a model of the form y A sin1Bx C2 D can be obtained using: B
2 P
A
Mm 2
D
Mm 2
C
3 Bx 2
EXERCISES For each equation given, (a) identify/clearly state the amplitude, period, horizontal shift, and vertical shift; then (b) graph the equation using the primary interval, a reference rectangle, and rule of fourths. 3 47. y 240 sin c 1t 32 d 520 48. y 3.2 cosa t b 6.4 6 4 2 For each graph given, identify the amplitude, period, horizontal shift, and vertical shift, and give the equation of the graph. 49. 350 y 50. 210 y 300
180
250
150
200
120
150
90
100
60
50
30
0 6
12
18
0
24 t
4
2
3 4
t
51. Monthly precipitation in Cheyenne, Wyoming, can be modeled by a sine function, by using the average precipitation for July (2.26 in.) as a maximum (actually slightly higher in May), and the average precipitation for February (0.44 in.) as a minimum. Assume t 0 corresponds to March. (a) Use the information to construct a sinusoidal model, and (b) use the model to estimate the inches of precipitation Cheyenne receives in August (t 5) and December (t 9). Source: 2004 Statistical Abstract of the United States, Table 380.
MIXED REVIEW 1. For the graph of periodic function f given, state the (a) amplitude, (b) average value, (c) period, and (d) value of f(4).
2. Name two values in 3 0, 22 where tan t 1.
1 3. Name two values in 30, 22 where cos t . 2 8 4. Given sin with in QII, state the value 1185 of the other five trig functions.
Exercise 1 y 30
y f(x)
25 20 15 10 5 4
8
12
16
x
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5. Convert to DMS form: 220.8138°. 6. Find two negative angles and two positive angles that are coterminal with (a) 57° and (b) 135°. 7. To finish the top row of the tile pattern on our bathroom wall, 12– by 12– tiles must be cut diagonally. Use a standard triangle to find the length of each cut and the width of the wall covered by tiles.
Exercise 7
8. The service door into the foyer of a large office building is 36– wide by 78– tall. The building manager has ordered a large wall painting 85– by 85– to add some atmosphere to the foyer area. (a) Can the painting be brought in the service door? (b) If so, at what two integer-valued angles (with respect to level ground) could the painting be tilted? Exercise 9 9. Find the arc length and area of the shaded sector. 10. Monthly precipitation in Minneapolis, Minnesota, can be modeled by a sine function, by using the average precipitation for (4√3, 4) August (4.05 in.) as a maximum (actually slightly higher in June), and the average precipitation for February (0.79 in.) as a minimum. Assume t 0 corresponds to April. (a) Use the information to construct a sinusoidal model, and (b) Use the model to approximate the inches of precipitation Minneapolis receives in July (t 3) and December (t 8). Source: 2004 Statistical Abstract of the United States, Table 380 11. Convert from DMS to decimal degrees: 86° 54¿ 54–. 12. Name the reference angle r for the angle given. 5 5 a. 735° b. 135° c. d. 6 3 13. Find the value of all six trig functions of , given the point 115, 82 is on the terminal side. 12 12 , b is a point on the unit circle 2 2 and find the value of all six trig functions at this point.
14. Verify that a
5-106
15. On your approach shot to the ninth green, the Global Positioning System (GPS) your cart is equipped with 115.47 yd tells you the pin is 115.47 yd away. The distance plate states the straight line 100 yd distance to the hole is 100 yd (see the diagram). Relative to a straight line between the plate and the hole, at what acute angle should you hit the shot? 16. The electricity supply lines to the top of Lone Eagle Plateau must be replaced, and the B new lines will be run A in conduit buried 1:150 slightly beneath the 1 in. 200 ft surface. The scale of elevation is 1:150 (each closed figure indicates an increase in 150 ft of elevation), and the scale of horizontal distance is 1 in. 200 ft. (a) Find the increase in elevation from point A to point B, (b) use a proportion to find the horizontal distance from A to B if the measured distance on the map is 214 in., (c) draw the corresponding right triangle and use it to estimate the length of conduit needed from A to B and the angle of incline the installers will experience while installing the conduit. 17. State the amplitude, period, horizontal shift, vertical shift, and endpoints of the primary interval (as applicable), then sketch the graph using a reference rectangle and the rule of fourths. 7 a. y 5 cos12t2 8 b. y sin c 1x 12 d 2 2 1 c. y 2 tana tb d. y 3 secax b 4 2 18. Solve each equation in [0, 2) without the use of a calculator. If the expression is undefined, so state. a. x sina b b. sec x 12 4 c. cota b x d. cos x 2 2 13 e. csc x f. tana b x 3 2
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Practice Test
19. A salad spinner consists of a colander basket inside a large bowl, and is used to wash and dry lettuce and other salad ingredients. The spinner is turned at about 3 revolutions per second. (a) Find the angular velocity and (b) find the linear velocity of a point on the circumference if the basket has a 20 cm radius.
609
to the base of the statue is 24.07°. How tall is the statue Freedom (the name sculptor Thomas Crawford gave this statue)?
20. Virtually everyone is familiar with the Statue of Liberty in New York Bay, but fewer know that America is home to a second “Statue of Liberty” standing proudly atop the iron dome of the Capitol Building. From a distance of 600 ft, the angle of elevation from ground level to the top of the statue (from the east side) is 25.60°. The angle of elevation
H
25.6 600 ft
PRACTICE TEST 3. Find two negative angles and two positive angles that are coterminal with 30°. Many solutions are possible.
1. State the complement and supplement of 35°. 2. Name the reference angle of each angle given. a. 225° b. 510° 25 7 c. d. 6 3
4. Convert from DMS to decimal degrees or decimal degrees to DMS as indicated. a. 100°45¿18– to decimal degrees b. 48.2125° to DMS
5. Four Corners USA is the point at which Utah, Colorado, Arizona, and New Mexico meet. The southern border of Colorado, the western border of Kansas, and the point P where Colorado, Nebraska, and Kansas meet, very nearly approximates a 30-60-90 triangle. If the western border of Kansas is 215 mi long, (a) what is the distance from Four Corners USA to point P? (b) How long is Colorado’s southern border?
Exercise 5
Colorado
Nebraska P Kansas
Utah Arizona
New Mexico
6. Complete the table from memory using exact values. If a function is undefined, so state. t 0 2 3 7 6 5 4 5 3 13 6
sin t
cos t
tan t
csc t
sec t
cot t
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2 and tan 6 0, find the value of the 5 other five trig functions of .
7. Given cos
1 212 b is a point on the unit circle, 8. Verify that a , 3 3 then find the value of all six trig functions associated with this point. 9. In order to take pictures of a dance troupe as it performs, a camera crew rides in a cart on tracks that trace a circular arc. The radius of the arc is 75 ft, and from end to end the cart sweeps out an angle of 172.5° in 20 seconds. Use this information to find (a) the length of the track in feet and inches, (b) the angular velocity of the cart, and (c) the linear velocity of the cart in both ft/sec and mph. 10. Solve the triangle shown. Answer in table form.
Exercise 10 A
C
11. The “plow” is a yoga position in which a person lying on 15.0 cm 57 their back brings their feet up, over, and behind their B head and touches them to the floor. If distance from hip to shoulder (at the right angle) is 57 cm and from hip to toes is 88 cm, find the distance from shoulders to toes and the angle formed at the hips. Exercise 11
Arms
Toes
12. While doing some Exercise 12 night fishing, you round a peninsula and a tall light house comes into view. Taking a sighting, 25 you find the angle of elevation to the top of the lighthouse is 25°. If the lighthouse is known to be 27 m tall, how far from the lighthouse are you? 13. Find the value of t 30, 2 4 satisfying the conditions given. 1 a. sin t , t in QIII 2 2 13 b. sec t , t in QIV 3 c. tan t 1, t in QII
16. State the amplitude, period, horizontal shift, vertical shift, and endpoints of the primary interval. Then sketch the graph using a reference rectangle and the rule of fourths: y 12 sina3t
b 19. 4
17. An athlete throwing the shot-put begins his first attempt facing due east, completes three and onehalf turns and launches the shot facing due west. What angle did his body turn through? 18. State the domain, range, and period, then sketch the graph in 30, 22. 1 b. y cota tb 2
19. Due to tidal motions, the depth of water in Brentwood Bay varies sinusoidally as shown in the diagram, where time is in hours and depth is in feet. Find an equation that models the depth of water at time t.
Legs
Head
15. State the domain, range, period, and amplitude (if it exists), then graph the function over 1 period. a. y 2 sin a tb b. y sec t 5 c. y 2 tan13t2
a. y tan12t2
Hips
Torso
14. In arid communities, daily water usage can often be approximated using a sinusoidal model. Suppose water consumption in the city of Caliente del Sol reaches a maximum of 525,000 gallons in the heat of the day, with a minimum usage of 157,000 gallons in the cool of the night. Assume t 0 corresponds to 6:00 A.M. (a) Use the information to construct a sinusoidal model, and (b) Use the model to approximate water usage at 4:00 P.M. and 4:00 A.M.
Exercise 19 Depth (ft) 20 16 12 8 4
Time (hours)
27 m
20. Find the value of t satisfying the given conditions. a. sin t 0.7568; t in QIII b. sec t 1.5; t in QII
0
4
8
12
16
20
24
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C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Tidal motion is often too complex to be modeled by a single sine function. In this Exploration and Discovery, we’ll look at a method that combines two sine functions to help model a tidal motion with variable amplitude. In the process, we’ll use much of what we know about the amplitude, horizontal shifts and vertical shifts of a sine function, helping to reinforce these important concepts and broaden our understanding about how they can be applied. The graph in Figure 5.93 shows three days of tidal motion for Davis Inlet, Canada.
Variable Amplitudes and Modeling the Tides
Figure 5.93 Height (m) 2.4
2.3 1.9
2
2.4 2.0
1.9
1
0.9 0 Midnight
0.8
0.7 Noon
0.7
0.7
Midnight
Noon
Midnight
0.6 Noon
t Midnight
As you can see, the amplitude of the graph varies, and there is no single sine function that can serve as a model. However, notice that the amplitude varies predictably, and that the high tides and low tides can independently be modeled by a sine function. To simplify our exploration, we will use the assumption that tides have an exact 24-hr period (close, but no), that variations between high and low tides takes place every 12 hr (again close but not exactly true), and the variation between the “low-high” (1.9 m) and the “high-high” (2.4 m) is uniform. A similar assumption is made for the low tides. The result is the graph in Figure 5.94. Figure 5.94 Height (m)
2.4
2.4 1.9
2
2.4 1.9
1.9
1
0.9
Figure 5.95
0 Midnight
3
0
24
0
Figure 5.96 3
0
24
0
0.7
0.9
0.7
0.9
0.7 t
Noon
Midnight
Noon
Midnight
Noon
Midnight
First consider the high tides, which vary from a maximum of 2.4 to a minimum of 1.9. Using the ideas from Section 5.7 to construct an equation model gives 2.4 1.9 2.4 1.9 A 0.25 and D 2.15. With a period of P 24 hr we 2 2 obtain the equation Y1 0.25 sina xb 2.15. Using 0.9 and 0.7 as the 12 maximum and minimum low tides, similar calculations yield the equation Y2 0.1 sina xb 0.8 (verify this). Graphing these two functions over a 24-hr period 12 yields the graph in Figure 5.95, where we note the high and low values are correct, but the two functions are in phase with each other. As can be determined from Figure 5.94, we want the high tide model to start at the average value and decrease, and the low tide equation model to start at high-low and decrease. Replacing x with x 12 in Y1 and x with x 6 in Y2 accomplishes this result (see Figure 5.96). Now comes the fun part! Since Y1
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Figure 5.97 3
0
24
0
represents the low/high maximum values for high tide, and Y2 represents the low/high minimum values for low tide, the amplitude and average value for the tidal motion at Davis Y1 Y2 Y1 Y2 Y1 Y2 ! By entering Y3 Inlet are A and D and 2 2 2 Y1 Y2 Y4 , the equation for the tidal motion (with its variable amplitude) will have 2 the form Y5 Y3 sin1Bx C2 Y4, where the value of B and C must be determined. The key here is to note there is only a 12-hr difference between the changes in ampli tude, so P 12 (instead of 24) and B for this function. Also, from the graph 6 (Figure 5.94) we note the tidal motion begins at a minimum and increases, indicating a shift of 3 units to the right is required. Replacing x with x 3 gives the equation modeling these tides, and the final equation is Y5 Y3 sin c 1x 32 d Y4. 6 Figure 5.97 gives a screen shot of Y1, Y2, and Y5 in the interval [0, 24]. The tidal graph from Figure 5.94 is shown in Figure 5.98 with Y3 and Y4 superimposed on it. Figure 5.98 Height (m)
2.4
2.4 1.9
2
2.4 Y1
1.9
1.9
Y5 1
0.9 0 Midnight
0.7
0.9
0.9
0.7
0.7
Y2 t
Noon
Midnight
Noon
Midnight
Noon
Midnight
Exercise 1: The website www.tides.com/tcpred.htm offers both tide and current predictions for various locations around the world, in both numeric and graphical form. In addition, data for the “two” high tides and “two” low tides are clearly highlighted. Select a coastal area where tidal motion is similar to that of Davis Inlet, and repeat this exercise. Compare your model to the actual data given on the website. How good was the fit?
STRENGTHENING CORE SKILLS Standard Angles, Reference Angles, and the Trig Functions A review of the main ideas discussed in this chapter indicates there are four of what might be called “core skills.” These are skills that (a) play a fundamental part in the acquisition of concepts, (b) hold the overall structure together as we move from concept to concept, and (c) are ones we return to again and again throughout our study. The first of these is (1) knowing the standard angles and standard values. These values are “standard” because no estimation, interpolation, or special methods are required to name their value, and each can be expressed as a single factor. This gives them a great advantage in that further conceptual development can take place without the main points being obscured by large expressions or decimal approximations. Knowing the value of the trig functions for each standard angle will serve you very well through-
out this study. Know the chart on page 550 and the ideas that led to it. The standard angles/values brought us to the trigonometry of any angle, forming a strong bridge to the second core skill: Figure 5.99 (2) using reference y sin r 12 2 angles to determine the value of the trig (√3, 1) r 30 r 30 (√3, 1) functions in each 2 2 quadrant. For review, a 30-60-90 triangle 2 2 x will always have sides 2 2 that are in the proporr 30 r 30 (√3, 1) tion 1x: 13x: 2x, (√3, 1) regardless of its size. 2
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613
Cumulative Review Chapters 1–5
This means for any angle , where r 30°, sin 12 or sin 12 since the ratio is fixed but the sign depends on the quadrant of : sin 30° 12 [QI], sin 150° 12 [QII], sin 210° 12 [QIII], sin 330° 12 [QIV], and so on (see Figure 5.99). In turn, the reference Figure 5.100 y angles led us to a third core 2 cos r √3 2 skill, helping us realize that if was not a quadrantal (√3, 1) angle, (3) equations like 210 2 13 150 30 r cos12 must have 2 2 2 x r 30 2 two solutions in 3 0, 360°2. From the standard angles (√3, 1) and standard values we 2 learn to recognize that for 13 , r 30°, cos 2 which will occur as a reference angle in the two quadrants where cosine is negative, QII and QIII. The solutions in 3 0, 360°2 are 150° and 210° (see Figure 5.100). Of necessity, this brings us to the fourth core skill, (4) effective use of a calculator. The standard angles are a wonderful vehicle for introducing the basic ideas of trigonometry, and actually occur quite frequently in realworld applications. But by far, most of the values we encounter will be nonstandard values where r must be found using a calculator. However, once r is found, the reason and reckoning inherent in these ideas can be directly applied. The Summary and Concept Review Exercises, as well as the Practice Test offer ample opportunities to refine these skills, so that they will serve you well in future chapters as we continue our attempts to explain and understand the world around us in mathematical terms.
Exercise 1: Fill in the table from memory. 0
6
4
3
2
3 4
5 6
7 6
5 4
t sin t y cos t x tan t
y x
2 3
Exercise 2: Solve each equation in 30, 22 without the use of a calculator. a. 2 sin t 13 0 b. 312 cos t 4 1 c. 13 tan t 2 1 d. 12 sec t 1 3
Exercise 3: Solve each equation in 30, 22 using a calculator and rounding answers to four decimal places. a. 16 sin t 2 1 b. 3 12 cos t 12 0 1 1 c. 3 tan t 2 4 d. 2 sec t 5
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 5 1. Solve the inequality given: 2x 1 3 6 5 2. Find the domain of the function: y 2x 2x 15 80 3. Given that tan , draw a right triangle that 39 corresponds to this ratio, then use the Pythagorean theorem to find the length of the missing side. Finally, find the two acute angles. 2
17 3 5. Given a , b is a point on the unit circle 4 4 corresponding to t, find all six trig functions of t. State the domain and range of each function shown: 6. y f1x2
13 ? 2
b. g1x2
5
4. Without a calculator, what values in 3 0, 22 make the equation true: sin t
7. a. f1x2 12x 3 y
5
5 x
f(x) 5
2x x2 49
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CHAPTER 5 An Introduction to Trigonometry
8. y T1x2
the sprinkler reaches? (b) What is the area in m2 of the yard that is watered?
x
T(x)
0
7
1
5
2
3
3
1
4
1
5
3
6
5
9. Analyze the graph of the function in Exercise 6, including: (a) maximum and minimum values; (b) intervals where f1x2 0 and f1x2 6 0; (c) intervals where f is increasing or decreasing; and (d) any symmetry noted. Assume the features you are to describe have integer values. 10. The attractive force that exists between two magnets varies inversely as the square of the distance between them. If the attractive force is 1.5 newtons (N) at a distance of 10 cm, how close are the magnets when the attractive force reaches 5 N? 11. The world’s tallest indoor waterfall is in Detroit, Michigan, in the lobby of the International Center Building. Standing 66 ft from the base of the falls, the angle of elevation is 60°. How tall is the waterfall? 12. It’s a warm, lazy Saturday and Hank is watching a county maintenance crew mow the park across the street. He notices the mower takes 29 sec to pass through 77° of rotation from one end of the park to the other. If the corner of the park is 60 ft directly across the street from his house, (a) how wide is the park? (b) How fast (in mph) does the mower travel as it cuts the grass?
18. Determine the equation of graph shown given it is of the form y A tan1Bt2. y 4 2 3
4
2
15. Find f12 for all six trig functions, given the point P19, 402 is a point on the terminal side of the angle. Then find the angle in degrees, rounded to tenths. 16. Given t 5.37, (a) in what quadrant does the arc terminate? (b) What is the reference arc? (c) Find the value of sin t rounded to four decimal places. 17. A jet-stream water sprinkler shoots water a distance of 15 m and turns back-and-forth through an angle of t 1.2 rad. (a) What is the length of the arc that
2
3 4
t
4
8 , 1
19. Determine the equation of the graph shown given it is of the form y A sin1Bt C2 D. y 2 1 4
0 1
2
3 4
x
2
20. In London, the average temperatures on a summer day range from a high of 72°F to a low of 56°F (Source: 2004 Statistical Abstract of the United States, Table 1331). Use this information to write a sinusoidal equation model, assuming the low temperature occurs at 6:00 A.M. Clearly state the amplitude, average value, period, and horizontal shift. 21. The graph of a function f(x) is given. Sketch the graph of f1 1x2. y 5
5
5 x
13. Graph using transformations of a parent function: 1 f1x2 2. x1 14. Graph using transformations of a parent function: g1x2 ex1 2.
4
4 2
5
22. The volume of a spherical cap is given by h2 V 13r h2. Solve for r in terms of V and h. 3 h r
23. Find the slope and y-intercept: 3x 4y 8. 24. Solve by factoring: 4x3 8x2 9x 18 0. 25. At what interest rate will $1000 grow to $2275 in 12 yr if compounded continuously?
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6 CHAPTER CONNECTIONS
Trigonometric Identities, Inverses, and Equations CHAPTER OUTLINE 6.1 Fundamental Identities and Families of Identities 616 6.2 Constructing and Verifying Identities 624 6.3 The Sum and Difference Identities 630 6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities 640 6.5 The Inverse Trig Functions and Their Applications 654
Have you ever noticed that people who arrive early at a movie tend to choose seats about halfway up the theater’s incline and in the middle of a row? More than likely, this is due to a phenomenon called the optimal viewing angle, or the angle formed by the viewer’s eyes and the top and bottom of the screen. Seats located in this area maximize the viewing angle, with the measure of the angle depending on factors such as the distance from the floor to the bottom of the screen, the height of the screen, the location of a seat, and the incline of the auditorium. Here, trigonometric functions and identities play an important role. This application appears as Exercise 59 of Section 6.2. Check out these other real-world connections:
6.6 Solving Basic Trig Equations 671 6.7 General Trig Equations and Applications 682
Finding the Viewing Angle from a Seat at the Theatre (Section 6.2, Exercise 64) Modeling the Range of a Projectile (Section 6.4, Exercise 109) Maximizing the Shooting Angle during a Break-away (Section 6.5, Exercise 95) Modeling the Grade of a Treadmill during a Workout Session (Section 6.7, Exercise 54) 615
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College Algebra & Trignometry—
6.1 Fundamental Identities and Families of Identities Learning Objectives In Section 6.1 you will learn how to:
A. Use fundamental identities to help understand and recognize identity “families”
In this section we begin laying the foundation necessary to work with identities successfully. The cornerstone of this effort is a healthy respect for the fundamental identities and vital role they play. Students are strongly encouraged to do more than memorize them—they should be internalized, meaning they must become a natural and instinctive part of your core mathematical knowledge.
A. Fundamental Identities and Identity Families
B. Verify other identities using the fundamental identities and basic algebra skills
C. Use fundamental identities to express a given trig function in terms of the other five
D. Use counterexamples and contradictions to show an equation is not an identity
WORTHY OF NOTE
An identity is an equation that is true for all elements in the domain. In trigonometry, some identities result directly from the way the trig functions are defined. For instance, y y 1 r 1 , and the identity sin since sin and csc , immediately r r y csc csc follows. We call identities of this type fundamental identities. Successfully working with other identities will depend a great deal on your mastery of these fundamental types. For convenience, the definition of the trig functions are reviewed here, followed by the fundamental identities that result. Given point P(x, y) on the unit circle, and the central angle associated with P, we have 2x2 y2 1 and y tan ; x 0 cos x sin y x 1 1 x sec ; x 0 csc ; y 0 cot ; y 0 x y y Fundamental Trigonometric Identities
The word fundamental itself means, “a basis or foundation supporting an essential structure or function” (Merriam Webster).
Reciprocal identities
1 csc 1 cos sec 1 tan cot sin
Ratio identities
sin cos sec tan csc cos cot sin tan
Pythagorean identities
Identities due to symmetry
sin2 cos2 1
sin12 sin
tan2 1 sec2
cos12 cos
1 cot2 csc2
tan12 tan
These identities seem to naturally separate themselves into the four groups or families listed, with each group having additional relationships that can be inferred from the definitions. For instance, since sin is the reciprocal of csc , csc must be the reciprocal of sin . Similar statements can be made regarding cos and sec as well as tan and cot . Recognizing these additional “family members” enlarges the number of identities you can work with, and will help you use them more effectively. In particular, since they are reciprocals: sin csc 1, cos sec 1, tan cot 1. See Exercises 7 and 8. EXAMPLE 1
Identifying Families of Identities Use algebra to write four additional identities that belong to the Pythagorean family.
616
6-2
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Solution
617
Starting with sin2 cos2 1, sin2 cos2 1 • sin2 1 cos2 • sin 21 cos2 sin2 cos2 1 • cos2 1 sin2 • cos 21 sin2
original identity subtract cos2 take square root original identity subtract sin2 take square root
For the identities involving a radical, the choice of sign will depend on the quadrant of the terminal side. Now try Exercises 9 and 10
A. You’ve just learned how to use fundamental identities to help understand and recognize identity “families”
The four additional Pythagorean identities are marked with a “•” in Example 1. The fact that each of them represents an equality gives us more options when attempting to verify or prove more complex identities. For instance, since cos2 1 sin2, we can replace cos2 with 1 sin2, or replace 1 sin2 with cos2, any time they occur in an expression. Note there are many other members of this family, since similar steps can be performed on the other Pythagorean identities. In fact, each of the fundamental identities can be similarly rewritten and there are a variety of exercises at the end of this section for practice.
B. Verifying an Identity Using Algebra Note that we cannot prove an equation is an identity by repeatedly substituting input values and obtaining a true equation. This would be an infinite exercise and we might easily miss a value or even a range of values for which the equation is false. Instead we attempt to rewrite one side of the equation until we obtain a match with the other side, so there can be no doubt. As hinted at earlier, this is done using basic algebra skills combined with the fundamental identities and the substitution principle. For now we’ll focus on verifying identities by using algebra. In Section 6.2 we’ll introduce some guidelines and ideas that will help you verify a wider range of identities.
EXAMPLE 2
Using Algebra to Help Verify an Identity Use the distributive property to verify that sin 1csc sin 2 cos2 is an identity.
Solution
Use the distributive property to simplify the left-hand side. sin 1csc sin 2 sin csc sin2 1 sin2 cos2
distribute substitute 1 for sin csc 1 sin2 cos2
Since we were able to transform the left-hand side into a duplicate of the right, there can be no doubt the original equation is an identity. Now try Exercises 11 through 20
Often we must factor an expression, rather than multiply, to begin the verification process.
EXAMPLE 3
Using Algebra to Help Verify an Identity Verify that 1 cot2x sec2x cot2x is an identity.
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Solution
The left side is as simple as it gets. The terms on the right side have a common factor and we begin there. cot2x sec2x cot2x cot2x 1sec2x 12 cot2x tan2x 1cot x tan x2 2 12 1
factor out cot2x substitute tan2x for sec2x 1 power property of exponents cot x tan x 1
Now try Exercises 21 through 28
Examples 2 and 3 show you can begin the verification process on either the left or right side of the equation, whichever seems more convenient. Example 4 shows how the special products 1A B21A B2 A2 B2 and/or 1A B2 2 A2 2AB B2 can be used in the verification process. EXAMPLE 4
Using a Special Product to Help Verify an Identity Use a special product and fundamental identities to verify that 1sin x cos x2 2 1 2 sin(x) cos x is an identity.
Solution
Begin by squaring the left-hand side, in hopes of using a Pythagorean identity. 1sin x cos x2 2 sin2x 2 sin x cos x cos2x sin2x cos2x 2 sin x cos x 1 2 sin x cos x
binomial square rewrite terms substitute 1 for sin2x cos2x
At this point we appear to be off by a sign, but quickly recall that sine is on odd function and sin x sin1x2. By writing 1 2 sin x cos x as 1 21sin x21cos x2, we can complete the verification: 1 21sin x21cos x2 1 2 sin( x) cos x ✓
rewrite expression to obtain sin x substitute sin1x2 for sin x
Now try Exercises 29 through 34 B. You’ve just learned how to verify other identities using the fundamental identities and basic algebra skills
Another common method used to verify identities is simplification by combining sin2u C AD BC A . For sec u cos u, the rightterms, using the model cos u B D BD 1 sin2u cos2u hand side immediately becomes , which gives sec u. See cos u cos u Exercises 35 through 40.
C. Writing One Function in Terms of Another Any one of the six trigonometric functions can be written in terms of any of the other functions using fundamental identities. The process involved offers practice in working with identities, highlights how each function is related to the other, and has practical applications in verifying more complex identities.
EXAMPLE 5
Writing One Trig Function in Terms of Another Write the function cos x in terms of the tangent function.
Solution
Begin by noting these functions share “common ground” via sec x, since 1 sec2x 1 tan2x and cos x . Starting with sec2x, sec x sec2x 1 tan2x sec x 21 tan2x
Pythagorean identity square roots
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Section 6.1 Fundamental Identities and Families of Identities
We can now substitute 21 tan2x for sec x in cos x cos x
1 21 tan x 2
WORTHY OF NOTE
EXAMPLE 6
substitute 21 tan2x for sec x
Example 5 also reminds us of a very important point — the sign we choose for the final answer is dependent on the terminal side of the angle. If the terminal side is in QI or QIV we chose the positive sign since cos x 7 0 in those quadrants. If the angle terminates in QII or QIII, the final answer is negative since cos x 6 0 in those quadrants. Similar to our work in Chapter 5, given the value of cot t and the quadrant of t, the fundamental identities enable us to find the value of the other five functions at t. In fact, this is generally true for any given trig function and real number or angle t.
Using a Known Value and Quadrant Analysis to Find Other Function Values Given cot t
Solution
1 . sec x
Now try Exercises 41 through 46
It is important to note the stipulation “valid where both are defined” does not preclude a difference in the domains of each function. The result of Example 5 is indeed an identity, even though the expressions have unequal domains.
619
9 with t in QIV, find the value of the other five functions at t. 40
40 follows immediately, since cotangent and tangent 9 are reciprocals. The value of sec t can be found using sec2t 1 tan2t. The function value tan t
sec2t 1 tan2t 40 2 1 a b 9 81 1600 81 81 1681 81 41 sec t 9
Pythagorean identity substitute square
40 for tan t 9
40 81 , substitute for 1 9 81
combine terms
take square roots
41 . This automatically gives 9 40 9 (reciprocal identities), and we find sin t using sin2t 1 cos2t cos t 41 41 sin t or the ratio identity tan t (verify). cos t Since sec t is positive in QIV, we have sec t
C. You’ve just learned how to use fundamental identities to express a given trig function in terms of the other five
Now try Exercises 47 through 55
D. Showing an Equation Is Not an Identity To show an equation is not an identity, we need only find a single value for which the functions involved are defined but the equation is false. This can often be done by trial and error, or even by inspection. To illustrate the process, we’ll use two common misconceptions that arise in working with identities.
EXAMPLE 7
Showing an Equation is Not an Identity Show the equations given are not identities. a. sin12x2 2 sin x b. cos1 2 cos cos
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
Solution
a. The assumption here seems to be that we can factor out the coefficient from the argument. By inspection we note the amplitude of sin(2x) is A 1, while the amplitude of 2 sin x is A 2. This means they cannot possibly be equal for all values of x, although they are equal for integer multiples of . Verify they are not equivalent using x or other standard values. 6 GRAPHICAL SUPPORT While not a definitive method of proof, a graphing calculator can be used to investigate whether an equation is an identity. Since the left and right members of the equation must 3 be equal for all values (where they are 2 defined), their graphs must be identical. Graphing the functions from Example 7(a) as Y1 and Y2 shows the equation s in12x2 2 s in x is definitely not an identity.
3
3 2
3
b. The assumption here is that we can distribute function values. This is similar to saying 1x 4 1x 2, a statement obviously false for all values except x 0. Here we’ll substitute convenient values to prove the equation false, 3 namely, and . 4 4 cosa D. You’ve just learned how to use counterexamples and contradictions to show an equation is not an identity
3 3 b cosa b cosa b 4 4 4 4 12 12 cos 2 2 1 0
substitute
for and for 3 4
simplify result is false
Now try Exercises 56 through 62
6.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Three fundamental ratio identities are ? ? ? , and cot tan , tan . cos csc sin 2. When applying identities due to symmetry, and cos 1x2 cot x sin 1x2 tan x . 3. To show an equation is not an identity, we must find at least value(s) where both sides of the equation are defined, but which makes the equation .
4. Using a calculator we find sec245° and 3 tan 45° 1 . We also find sec2225° and 3 tan 225° 1 . Is the equation sec2 3 tan 1 an identity? C AD BC A to add the B D BD following terms, and comment on this process versus “finding a common denominator:” cos x sin x . sec x sin x
5. Use the pattern
6. Name at least four algebraic skills that are used with the fundamental identities in order to rewrite a trigonometric expression. Use algebra to quickly rewrite 1sin x cos x2 2.
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621
DEVELOPING YOUR SKILLS
Starting with the ratio identity given, use substitution and fundamental identities to write four new identities belonging to the ratio family. Answers may vary.
7. tan x
sin x cos x
8. cot x
cos x sin x
Starting with the Pythagorean identity given, use algebra to write four additional identities belonging to the Pythagorean family. Answers may vary.
9. 1 tan2x sec2x
10. 1 cot2x csc2x
Verify the equation is an identity using multiplication and fundamental identities.
11. sin x cot x cos x
12. cos x tan x sin x
13. sec2x cot2x csc2x
14. csc2x tan2x sec2x
30.
11 tan x2 2 sec x 2 sin x sec x
31. 11 sin x2 3 1 sin1x2 4 cos2x
32. 1sec x 12 3 sec1x2 14 tan2x 33. 34.
1csc x cot x21csc x cot x2 cot x tan x
1sec x tan x21sec x tan x2 sin x csc x
Verify the equation is an identity using fundamental A C AD BC identities and to combine terms. B D BD
35.
cos2x sin x csc x sin x 1
16. tan x 1cot x tan x2 sec2x
36.
tan2 sec cos sec 1
18. cot x 1tan x cot x2 csc2x
37.
tan x sin x sin x 1 csc x cos x cot x
38.
cot x cos x 1 cos x sec x sin x tan x
39.
csc x csc x sec x sec x tan x 40. cot x sec x cos x csc x sin x
15. cos x 1sec x cos x2 sin2x 17. sin x 1csc x sin x2 cos2x
19. tan x 1csc x cot x2 sec x 1 20. cot x 1sec x tan x2 csc x 1
Verify the equation is an identity using factoring and fundamental identities.
21. tan2x csc2x tan2x 1 22. sin2x cot2x sin2x 1
Write the given function entirely in terms of the second function indicated.
sin x cos x sin x 23. tan x cos x cos2x
41. tan x in terms of sin x
42. tan x in terms of sec x
43. sec x in terms of cot x
44. sec x in terms of sin x
sin x cos x cos x cot x sin x sin2x
45. cot x in terms of sin x
46. cot x in terms of csc x
24. 25.
1 sin x sec x cos x cos x sin x
For the function f 12 and the quadrant in which terminates, state the value of the other five trig functions.
20 with in QII 29
1 cos x csc x 26. sin x cos x sin x
47. cos
sin x tan x sin x cos x 27. tan x tan2x
48. sin
12 with in QII 37
cos x cot x cos x sin x 28. cot x cot2x
49. tan
15 with in QIII 8
50. sec
45 with in QIV 27
51. cot
x with in QI 5
Verify the equation is an identity using special products and fundamental identities.
29.
1sin x cos x2 2 sec x 2 sin x cos x
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52. csc
7 with in QII x
53. sin
7 with in QIII 13
57. cosa b cos cosa b 4 4 58. cos122 2 cos 59. tan122 2 tan
23 54. cos with in QIV 25
tan 60. tana b 4 tan 4
9 55. sec with in QII 7
61. cos2 sin2 1 62. 2sin2x 9 sin x 3
Show that the following equations are not identities.
56. sina
b sin sina b 3 3
WORKING WITH FORMULAS
63. The illuminance of a point on a surface by a I cos source of light: E r2 The illuminance E (in lumens/m2) of a point on a horizontal surface is given by the formula shown, where I is the intensity of the light source in lumens, r is the distance in meters from the light source to the point, and is the complement of the angle (in degrees) made by the light source and the horizontal surface. Calculate the illuminance if I 800 lumens, and the flashlight is held so that the distance r is 2 m while the angle is 40°.
64. The area of regular polygon: A a
nx2 cos1 n 2 b 4 sin1 n 2
The area of a regular polygon is given by the formula shown, where n represents the number of sides and x is the length of each side. a. Rewrite the formula in terms of a single trig function. b. Verify the formula for a square with sides of 8 m. c. Find the area of a dodecagon (12 sides) with 10-in. sides.
Exercise 63 Intensity I
r
Illuminance E ␣
APPLICATIONS
Writing a given expression in an alternative form is an idea used at all levels of mathematics. In future classes, it is often helpful to decompose a power into smaller powers (as in writing A3 as A # A2) or to rewrite an expression using known identities so that it can be factored.
65. Show that cos3x can be written as cos x 11 sin2x2 .
68. Show that cot3x can be written as cot x1csc2x 12 . 69. Show tan2x sec x 4 tan2 x can be factored into 1sec x 421sec x 12 1sec x 12 .
70. Show 2 sin2x cos x 13 sin2x can be factored into 11 cos x2 11 cos x2 12 cos x 132 .
66. Show that tan3x can be written as tan x1sec2x 12 .
71. Show cos2x sin x cos2x can be factored into 111 sin x211 sin x2 2.
67. Show that tan x tan3x can be written as tan x(sec2x).
72. Show 2 cot2x csc x 212 cot2x can be factored into 21csc x 122 1csc x 12 1csc x 12 .
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Section 6.1 Fundamental Identities and Families of Identities
Many applications of fundamental identities involve geometric figures, as in Exercises 73 and 74.
73. Area of a polygon: The area of a regular polygon that has been circumscribed about a circle of radius sin1 n 2 r (see figure) is given by the formula A nr2 , cos1 n 2 where n represents the number of sides. (a) Rewrite the formula r in terms of a single trig function; (b) verify the formula for a square circumscribed about a circle with radius 4 m; and (c) find the area of a dodecagon (12 sides) circumscribed about the same circle. 74. Perimeter of a polygon: The perimeter of a regular polygon circumscribed about a circle of sin1 n 2 radius r is given by the formula P 2nr , cos1 n 2
where n represents the number of sides. (a) Rewrite the formula in terms of a single trig function; (b) verify the formula for a square circumscribed about a circle with radius 4 m; and (c) Find the perimeter of a dodecagon (12 sides) circumscribed about the same circle. 75. Angle of intersection: At their point of intersection, the angle between any two nonparallel lines satisfies the relationship 1m2 m1 2cos sin m1m2sin , where m1 and m2 represent the slopes of the two lines. Rewrite the equation in terms of a single trig function. 76. Angle of intersection: Use the result of Exercise 2 75 to find the angle between the lines Y1 x 3 5 7 and Y2 x 1. 3 77. Angle of intersection: Use the result of Exercise 75 to find the angle between the lines Y1 3x 1 and Y2 2x 7.
EXTENDING THE CONCEPT
78. The word tangent literally means “to touch,” which in mathematics we take to mean touches in only and exactly one point. In the figure, the circle has a radius of 1 and the vertical line is
623
y sin 1
tan
cos
x
“tangent” to the circle at the x-axis. The figure can be used to verify the Pythagorean identity for sine and cosine, as well as the ratio identity for tangent. Discuss/Explain how. 79. Use factoring and fundamental identities to help find the x-intercepts of f in 3 0, 22 .
f 12 2 sin4 23 sin3 2 sin2 23 sin .
MAINTAINING YOUR SKILLS
80. (4.6) Solve for x: 2351
2500 1 e1.015x
81. (5.6) Standing 265 ft from the base of the Strastosphere Tower in Las Vegas, Nevada, the angle of elevation to the top of the tower is about 77°. Approximate the height of the tower to the nearest foot.
82. (3.3) Use the rational zeroes theorem and other “tools” to find all zeroes of the function f 1x2 2x4 9x3 4x2 36x 16. 83. (5.3) Use a reference rectangle and the rule of fourths to sketch the graph of y 2 sin12t2 for t in [0, 2).
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College Algebra & Trignometry—
6.2 Constructing and Verifying Identities Learning Objectives
In Section 6.1, our primary goal was to illustrate how basic algebra skills are used to help rewrite trigonometric expressions. In this section, we’ll sharpen and refine these skills so they can be applied more generally, as we develop the ability to verify a much wider range of identities.
In Section 6.2 you will learn how to:
A. Create and verify a new identity
B. Verify general identities
A. Creating and Verifying Identities
In Example 2 of Section 6.1, we showed sin 1csc sin 2 cos2 was an identity by transforming the left-hand side into cos2. There, the instructions were very specific: “Use the distributive property to . . .” When verifying identities, one of the biggest issues students face is that the directions are deliberately vague — because there is no single, fail-proof approach for verifying an identity. This sometimes leaves students feeling they don’t know where to start, or what to do first. To help overcome this discomfort, we’ll first create an identity by substituting fundamental identities into a given expression, then reverse these steps to get back the original expression. This return to the original illustrates the essence of verifying identities, namely, if two things are equal, one can be substituted for the other at any time. The process may seem arbitrary (actually—it is), and the steps could vary. But try to keep the underlying message in mind, rather than any specific steps. When working with identities, there is actually no right place to start, and the process begins by using the substitution principle to create an equivalent expression as you work toward the expression you’re trying to match.
EXAMPLE 1
Creating and Verifying an Identity Starting with the expression csc x cot x, use fundamental identities to rewrite the expression and create a new identity. Then verify the identity by reversing the steps.
Solution
csc x cot x cos x 1 sin x sin x 1 cos x sin x
original expression substitute reciprocal and ratio identities
write as a single term
1 cos x sin x
Resulting identity
csc x cot x
Verify identity
Working with the right-hand side, we reverse each step with a view toward the original expression. 1 cos x 1 cos x sin x sin x sin x csc x cot x
rewrite as individual terms substitute reciprocal and ratio identities
Now try Exercises 7 through 9
In actual practice, all you’ll see is this instruction, “Verify the following is an identity: 1 cos x csc x cot x ,” and it will be up to you to employ the algebra and fundasin x mental identities needed.
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EXAMPLE 2
625
Creating and Verifying an Identity Starting with the expression 2 tan x sec x, use fundamental identities to rewrite the expression and create a new identity. Then verify the identity by reversing the steps.
Solution
2 tan x sec x sin x # 1 2# cos x cos x 2 sin x cos2x 2 sin x 1 sin2x 2 sin x 1 sin2x
original expression substitute ratio and reciprocal identities
multiply substitute 1 sin2x for cos2x
Resulting identity
2 tan x sec x
Verify identity
Working with the right-hand side, we reverse each step with a view toward the original expression.
A. You’ve just learned how to create and verify a new identity
identity
2 sin x 2 sin x 1 sin2x cos2x sin x # 1 2# cos x cos x 2 tan x sec x
substitute cos2x for 1 sin2x substitute cos x # cos x for cos2x substitute ratio and reciprocal identities
Now try Exercises 10 through 12
B. Verifying Identities We’re now ready to put these ideas, and the ideas from Section 6.1, to work for us. When verifying identities we attempt to mold, change, or rewrite one side of the equality until we obtain a match with the other side. What follows is a collection of the ideas and methods we’ve observed so far, which we’ll call the Guidelines for Verifying Identities. But remember, there really is no right place to start. Think things over for a moment, then attempt a substitution, simplification, or operation and see where it leads. If you hit a dead end, that’s okay! Just back up and try something else. Guidelines for Verifying Identities WORTHY OF NOTE When verifying identities, it is actually permissible to work on each side of the equality independently, in the effort to create a “match.” But properties of equality can never be used, since we cannot assume an equality exists.
1. As a general rule, work on only one side of the identity. • We cannot assume the equation is true, so properties of equality cannot be applied. • We verify the identity by changing the form of one side until we get a match with the other. 2. Work with the more complex side, as it is easier to reduce/simplify than to “build.” 3. If an expression contains more than one term, it is often helpful to combine A C AD BC terms using . B D BD 4. Converting all functions to sines and cosines can be helpful. 5. Apply other algebra skills as appropriate: distribute, factor, multiply by a conjugate, and so on. 6. Know the fundamental identities inside out, upside down, and backward — they are the key!
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Note how these ideas are employed in Examples 3 through 5, particularly the frequent use of fundamental identities.
EXAMPLE 3
Verifying an Identity Verify the identity: sin2 tan2 tan2 sin2.
Solution
As a general rule, the side with the greater number of terms or the side with rational terms is considered “more complex,” so we begin with the right-hand side. tan2 sin2
sin2 sin2 cos2 sin2 # 1 2 2 sin 1 cos sin2 sec2 sin2 sin2 1sec2 12 sin2 tan2
substitute
sin2 cos2
for tan2
decompose rational term substitute sec2 for factor out sin2
1 cos2
substitute tan2 for sec2 1
Now try Exercises 13 through 18
Example 3 involved factoring out a common expression. Just as often, we’ll need to multiply numerators and denominators by a common expression, as in Example 4.
EXAMPLE 4
Verifying an Identity by Multiplying Conjugates Verify the identity:
Solution
1 cos t cos t . 1 sec t tan2t
Both sides of the identity have a single term and one is really no more complex than the other. As a matter of choice we begin with the left side. Noting the denominator on the left has the term sec t, with a corresponding term of tan2t to the right, we reason that multiplication by a conjugate might be productive. cos t cos t 1 sec t a ba b 1 sec t 1 sec t 1 sec t cos t 1 1 sec2t cos t 1 tan2t 1 cos t tan2t
multiply above and below by the conjugate distribute: cos t sec t 1, 1A B 2 1A B2 A 2 B 2 substitute tan2t for 1 sec2t 11 tan2t sec2t 1 1 sec2t tan2t 2 multiply above and below by 1
Now try Exercises 19 through 22
Example 4 highlights the need to be very familiar with families of identities. To replace 1 sec2t, we had to use tan2t, not simply tan2t, since the related Pythagorean identity is 1 tan2t sec2t. As noted in the Guidelines, combining rational terms is often helpful. At this point, A C AD BC students are encouraged to work with the pattern as a means of B D BD combing rational terms quickly and efficiently.
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Section 6.2 Constructing and Verifying Identities
EXAMPLE 5
Verifying an Identity by Combining Terms Verify the identity:
Solution
sec x sin x tan2x cos2x . sec x sin x tan x
We begin with the left-hand side. sin x sec x sec2x sin2x sec x sin x sin x sec x 11 tan2x2 11 cos2x2 sin x 1 a ba b cos x 1
B. You’ve just learned how to verify general identities
tan2x cos2x tan x
combine terms:
A C AD BC B D BD
substitute 1 tan2x for sec2x, 1 cos2x for sin2x,
1 for sec x, cos x
simplify numerator, substitute tan x for
sin x cos x
Now try Exercises 23 through 28
Identities come in an infinite variety and it would be impossible to illustrate all variations. Using the general ideas and skills presented should prepare you to verify any of those given in the exercise set, as well as those you encounter in your future studies. See Exercises 29 through 58.
6.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. If two expressions are equal, then one may be for the other at any time and the result will be equivalent.
4. Converting all terms to functions of may help verify an identity.
and
2. We verify an identity by changing the form of one side, working until we the other side.
5. Discuss/Explain why you must not add, subtract, multiply, or divide both sides of the equation when verifying identities.
3. To verify an identity, always begin with the more expression, since it is easier to than to .
6. Discuss/Explain the difference between operating on both sides of an equation (see Exercise 5) and working on each side independently.
DEVELOPING YOUR SKILLS
Using algebra and the fundamental identities, rewrite each given expression to create a new identity relationship. Then verify your identity by reversing the steps. Answers will vary.
7. sec x tan x
8. 1cos x sin x2 2
9. 11 sin2x2sec x 11.
sin x sin x cos x sin2x
10. 2 cot x csc x
12. 1cos x sin x2 1cos x sin x2
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38.
cos x sec x sin2x sec x
39.
1 tan x sec x csc x sin x
16. cot x cos x csc x sin x
40.
1 cot x csc x sec x cos x
17.
cos x csc x sin x tan x
41.
1 sin x 1tan x sec x2 2 1 sin x
18.
sin x sec x cos x cot x
42.
19.
cos sec tan 1 sin
1 cos x 1csc x cot x2 2 1 cos x
43.
20.
sin csc cot 1 cos
cos x sin x cos x sin x 1 tan x 1 tan x
44.
21.
cos x 1 sin x cos x 1 sin x
sin x cos x 1 cot x 1 cot x sin x cos x
45.
22.
sin x 1 cos x sin x 1 cos x
tan2x cot2x csc x sec x tan x cot x
46.
23.
cos x cot2x sin2x csc x cos x csc x cot x
cot x tan x sin x cos x cot2x tan2x
47.
cot x 1 sin2x cot x tan x
24.
1 1 csc2x sec2x 2 cos x sin2x
48.
tan x 1 cos2x cot x tan x
25.
sin x sin x 2 tan2x 1 sin x 1 sin x
49.
sec4x tan4x 1 sec2x tan2x
26.
cos x cos x 2 cot2x 1 cos x 1 cos x
50.
27.
cot x cot x 2 sec x 1 csc x 1 csc x
csc4x cot4x 1 csc2x cot2x
51.
cos4x sin4x 2 sec2x cos2x
28.
tan x tan x 2 csc x 1 sec x 1 sec x
52.
29.
sec2x tan2x 1 cot2x
sin4x cos4x 2 csc2x sin2x
Verify that the following equations are identities.
13. cos2x tan2x 1 cos2x 14. sin2x cot2x 1 sin2x 15. tan x cot x sec x csc x
30.
csc2x cot2x 1 tan2x
31. sin x 1cot x csc x2 sin x 2
2
2
2
53. 1sec x tan x2 2
1sin x 12 2 cos2x
1cos x 12 2
32. cos2x 1tan2x sec2x2 cos2x
54. 1csc x cot x2 2
34. sin x tan x cos x sec x
55.
cos x sin x csc x sec x cos x cos x sec x sin x sin x
35.
sec x sin x cot x tan x
56.
cos x sin x sec x csc x sin x cos x csc x cos x sin x
36.
csc x cos x cot x tan x
57.
sin4x cos4x sin x cos x 3 3 1 sin x cos x sin x cos x
37.
sin x csc x cos2x csc x
58.
sin4x cos4x sin x cos x 3 3 1 sin x cos x sin x cos x
33. cos x cot x sin x csc x
sin2x
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WORKING WITH FORMULAS
59. Distance to top of movie screen: d 2 120 x cos 2 2 120 x sin 2 2 At a theater, the optimum viewing angle depends on a number of factors, like the height of the screen, the incline of the auditorium, the location of a seat, the height of your eyes while seated, and so on. One of the measures needed to find the “best” seat is the distance from your eyes to
60. The area of triangle ABC: A
(not to scale)
d 20 ft
the top of the screen. For a theater with the dimensions shown, this distance is given by the formula here (x is the diagonal distance from the horizontal floor to your seat). (a) Show the formula is equivalent to 800 40x 1cos sin 2 x2. (b) Find the distance d if 18° and you are sitting in the eighth row with the rows spaced 3 ft apart.
3 ft
c2 sin A sin B 2 sin C
If one side and three angles of a triangle are known, its area can be computed using this formula, where side c is opposite angle C. Find the area of the triangle shown in the diagram. C
D
75
x 3 ft
20 ft
A
45 20 cm
60 B
APPLICATIONS
61. Pythagorean theorem: For the triangle shown, (a) find an expression for the length of the hypotenuse in terms of h tan x and cot x, then √cot x determine the length of √tan x the hypotenuse when x 1.5 rad; (b) show the expression you found in part (a) is equivalent to h 1csc x sec x and recompute the length of the hypotenuse using this expression. Did the answers match? 62. Pythagorean theorem: For the triangle shown, (a) find an expression for the area of the triangle in terms of cot x and cos Exercise 62 x, then determine its cos x area given x ; 6 (b) show the expression cot x you found in part (a) is equivalent to 1 A 1csc x sin x2 and recompute the area 2 using this expression. Did the answers match?
63. Viewing distance: Referring to Exercise 59, find a formula for D—the distance from this patron’s eyes to the bottom of the movie screen. Simplify the result using a Pythagorean identity, then find the value of D. 64. Viewing angle: Referring to Exercises 59 and 63, once d and D are known, the viewing angle (the angle subtended by the movie screen and the viewer’s eyes) can be found using the formula d2 D2 202 cos . Find the value of cos 2dD for this particular theater, person, and seat. 65. Intensity of light: In a study of the luminous intensity of light, the expression I1cos sin can occur. 21I1cos 2 2 1I2sin 2 2 Simplify the equation for the moment I1 I2. 66. Intensity of light: Referring to Exercise 65, find the angle given I1 I2 and 60°.
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67. Just as the points P(x, y) on the unit circle x2 y2 1 are used to name the circular trigonometric functions, the points P(x, y) on the unit hyperbola x2 y2 1 are used to name what are called the hyperbolic trigonometric functions. The hyperbolic functions are used extensively in many of the applied sciences. The identities for these functions have many similarities to those for the circular functions, but also have some significant
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
differences. Using the Internet or the resources of a library, do some research on the functions sinh t, cosh t, and tanh t, where t is any real number. In particular, see how the Pythagorean identities compare/contrast between the two forms of trigonometry. 68. Verify the identity
sin6x cos6x 1 sin2x cos2x. sin4x cos4x
69. Use factoring to show the equation is an identity: sin4x 2 sin2x cos2x cos4x 1.
MAINTAINING YOUR SKILLS
70. (3.5) Graph the rational function given. x1 h1x2 2 x 4 27 3 , b is a point on the unit 4 4 circle, then state the values of sin t, cos t, and tan t associated with this point.
71. (5.2) Verify that a
72. (5.7) Use an appropriate trig ratio to find the length of the bridge needed to cross the lake shown in the figure.
Exercise 72 400 yd 62
d
73. (2.5) Graph using transformations of a basic function: f 1x2 2x 3 6
6.3 The Sum and Difference Identities Learning Objectives In Section 6.3 you will learn how to:
A. Develop and use sum and difference identities for cosine
B. Use the cofunction identities to develop the sum and difference identities for sine and tangent
C. Use the sum and difference identities to verify other identities
Figure 6.1
The sum and difference formulas for sine and cosine have a long and ancient history. Originally developed to help study the motion of celestial bodies, they were used centuries later to develop more complex concepts, such as the derivatives of the trig functions, complex number theory, and the study wave motion in different mediums. These identities are also used to find exact results (in radical form) for many nonstandard angles, a result of great importance to the ancient astronomers and still of notable mathematical significance today.
A. The Sum and Difference Identities for Cosine On a unit circle with center C, consider the point A on the terminal side of angle , and point B on the terminal side of angle , as shown in Figure 6.1. Since r 1, the coordinates of A and B are 1cos , sin 2 and 1cos , sin 2, respectively. Using the distance formula, we find that AB is equal to AB 21cos cos 2 2 1sin sin 2 2
2cos 2 cos cos cos sin 2 sin sin sin 2
A (cos , sin ) 1
C
(cos , sin ) B
2
2
2
21cos2 sin22 1cos2 sin22 2 cos cos 2 sin sin 22 2 cos cos 2 sin sin
binomial squares regroup
cos2u sin2u 1
With no loss of generality, we can rotate sector ACB clockwise, until side CB coincides with the x-axis. This creates new coordinates of (1, 0) for B, and new coordinates of 1cos1 2, sin1 2 2 for A, but the distance AB remains unchanged! (see Figure 6.2). Recomputing the distance gives
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631
AB 23cos1 2 1 4 2 3sin1 2 0 4 2
Figure 6.2
2cos2 1 2 2 cos1 2 1 sin2 1 2
2 3 cos2 1 2 sin2 1 2 4 2 cos1 2 1 (cos( ), sin( )) A 1 C
(1, 0)
12 2 cos1 2
Since both expressions represent the same distance, we can set them equal to each other and solve for cos1 2. 12 2 cos1 2 12 2 cos cos 2 sin sin
B
2 2 cos1 2 2 2 cos cos 2 sin sin 2 cos1 2 2 cos cos 2 sin sin cos1 2 cos cos sin sin
AB AB property of radicals subtract 2 divide both sides by 2
The result is called the difference identity for cosine. The sum identity for cosine follows immediately, by substituting for . cos1 2 cos cos sin sin
cos1 3 4 2 cos cos12 sin sin12 cos1 2 cos cos sin sin
difference identity substitute for cos 12 cos ; sin 12 sin
The sum and difference identities can be used to find exact values for the trig functions of certain angles (values written in nondecimal form using radicals), simplify expressions, and to establish additional identities.
EXAMPLE 1
Finding Exact Values for Non-Standard Angles Use the sum and difference identities for cosine to find exact values for a. cos 15° cos145° 30°2 b. cos 75° cos145° 30°2 Check results on a calculator.
Solution WORTHY OF NOTE Be aware that cos160° 30°2 cos 60° cos 30° 1 13 a0 b and in general 2 2 f 1a b2 f 1a2 f 1b2.
Each involves a direct application of the related identity, and uses special values. a. difference identity cos1 2 cos cos sin sin cos145° 30°2 cos 45° cos 30° sin 45° sin 30° 45°, 30° 12 13 12 1 a standard values ba ba ba b 2 2 2 2 16 12 combine terms cos 15° 4 b.
To 10 decimal places, cos 15° 0.9659258263. cos1 2 cos cos sin sin cos145° 30°2 cos 45° cos 30° sin 45° sin 30° 13 12 1 12 ba ba ba b a 2 2 2 2 16 12 cos 75° 4
sum identity 45°, 30° standard values
combine terms
To 10 decimal places, cos 75° 0.2588190451. Now try Exercises 7 through 12
These identities are listed here using the “” and “ ” notation to avoid needless repetition. In their application, use both upper symbols or both lower symbols depending on whether you’re evaluating the cosine of a sum or difference of two angles. As with the other identities, these can be rewritten to form other members of the identity family, as when they are used to consolidate a larger expression. This is shown in Example 2.
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The Sum and Difference Identities for Cosine cosine family: cos1 2 cos cos sin sin
functions repeat, signs alternate
cos cos sin sin cos1 2
EXAMPLE 2
can be used to expand or contract
Using a Sum/Difference Identity to Simplify an Expression Write as a single expression in cosine and evaluate: cos 57° cos 78° sin 57° sin 78°
Solution
Since the functions repeat and are expressed as a difference, we use the sum identity for cosine to rewrite the difference as a single expression. cos cos sin sin cos1 2 cos 57° cos 78° sin 57° sin 78° cos157° 78°2 The expression is equal to cos 135°
sum identity for cosine 57°, 78°
12 . 2 Now try Exercises 13 through 16
The sum and difference identities can be used to evaluate the cosine of the sum of two angles, even when they are not adjacent, or even expressed in terms of cosine.
EXAMPLE 3
Computing the Cosine of a Sum 5 Given sin 13 with the terminal side in QI, and tan 24 7 with the terminal side in QII. Compute the value of cos1 2.
Solution
Figure 6.3
To use the sum formula we need the value of cos , sin , cos , and sin . Using the given information about the quadrants along with the Pythagorean theorem, we draw the triangles shown in Figures 6.3 and 6.4, yielding the values that follow.
y
cos
13 12 5 2
5
Using cos1 2 cos cos sin sin gives this result:
x
122
132
cos1 2 a
12 7 5 24 b a b a b a b 13 25 13 25 84 120 325 325 204 325
Figure 6.4 y
25 24 27
Now try Exercises 17 and 18
x (27)2
⫹
242
5 7 24 12 1QI2, sin 1QI2, cos 1QII2, and sin 1QII2 13 13 25 25
⫽
252
B. The Sum and Difference Identities for Sine and Tangent A. You’ve just learned how to develop and use sum and difference identities for cosine
The cofunction identities were actually introduced in Section 5.1, using the comple mentary angles in a right triangle. In this section we’ll verify that cosa b sin 2
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WORTHY OF NOTE
and sina
It is worth pointing out that in Example 3, if we approximate the values of and using tables or a calculator, we find 22.62° and 106.26°. Sure enough, cos122.62° 106.26°2 204 325 !
obtain
633
b cos . For the first, we use the difference identity for cosine to 2
cosa
b cos cos sin sin 2 2 2 102cos 112sin sin
For the second, we use cosa
b sin , and replace with the real number t. 2 2
This gives cosa cosa
b sin 2
cofunction identity for cosine
c t d b sina tb 2 2 2 cos t sina
tb 2
replace with result, note c
t 2
a tb d t 2 2
tb cos t for any 2 real number t. Both identities can be written in terms of the real number t. See Exercises 19 through 24. This establishes the cofunction relationship for sine: sina
The Cofunction Identities cosa
tb sin t 2
sina
tb cos t 2
The sum and difference identities for sine can easily be developed using cofunction identities. Since sin t cosa tb, we need only rename t as the sum 1 2 or 2 the difference 1 2 and work from there. tb 2
cofunction identity
1 2 d 2
substitute 1 2 for t
sin t cosa sin1 2 cos c
cos c a cos a
b d 2
b cos sin a b sin 2 2
sin 1 2 sin cos cos sin
regroup argument apply difference identity for cosine result
The difference identity for sine is likewise developed. The sum and difference identities for tangent can be derived using ratio identities and their derivation is left as an exercise (see Exercise 78).
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The Sum and Difference Identities for Sine and Tangent sine family: sin1 2 sin cos cos sin sin cos cos sin sin1 2 tan tan 1 tan tan tan tan tan1 2 1 tan tan
tangent family: tan1 2
functions alternate, signs repeat can be used to expand or contract
signs match original in numerator signs alternate in denominator can be used to expand or contract
EXAMPLE 4A
Simplifying Expressions Using Sum/Difference Identities
Solution
Since the functions in each term alternate and the expression is written as a sum, we use the sum identity for sine:
Write as a single expression in sine: sin 12t2 cos t cos12t2 sin t. sin cos cos sin sin 1 2
sin12t2cos t cos 12t2 sin t sin 12t t2
sum identity for sine substitute 2t for and t for
The expression is equal to sin(3t).
EXAMPLE 4B
Simplifying Expressions Using Sum/Difference Identities Use the sum or difference identity for tangent to find the exact value of tan
Solution
11 must be the sum or difference of two 12 2 11 standard angles. A casual inspection reveals . This gives 12 3 4 Since an exact value is requested,
tan tan 1 tan tan 2 tan a b tana b 3 4 2 b tana 3 4 2 1 tana b tana b 3 4 13 1 1 1 132112 1 13 1 13 tan1 2
B. You’ve just learned how to use the cofunction identities to develop the sum and difference identities for sine and tangent
11 . 12
sum identity for tangent
2 , 3 4
tan a
2 b 13, tan a b 1 3 4
simplify expression
Now try Exercises 25 through 54
C. Verifying Other Identities Once the sum and difference identities are established, we can simply add these to the tools we use to verify other identities.
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Section 6.3 The Sum and Difference Identities
EXAMPLE 5
Verifying an Identity Verify that tana
Solution
tan 1 is an identity. b 4 tan 1
Using a direct application of the difference formula for tangent we obtain 4 tana b 4 1 tan tan 4 tan 1 tan 1 1 tan tan 1 tan tan
,
4
tan a b 1 4
Now try Exercises 55 through 60
EXAMPLE 6
635
Verifying an Identity Verify that sin1 2sin1 2 sin2 sin2 is an identity.
Solution
Using the sum and difference formulas for sine we obtain
sin1 2sin1 2 1sin cos cos sin 2 1sin cos cos sin 2 sin2 cos2 cos2 sin2
C. You’ve just learned how to use the sum and difference identities to verify other identities
1A B21A B2 A2 B2
sin 11 sin 2 11 sin 2 sin
use cos2x 1 sin2x to write the expression solely in terms of sine
sin2 sin2 sin2 sin2 sin2 sin2
distribute
sin sin
simplify
2
2
2
2
2
2
Now try Exercises 61 through 68
6.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Since tan 45° tan 60° 7 1, we know tan 45° tan 60° tan 105° is since tan 6 0 in . 2. To find an exact value for tan 105°, use the sum identity for tangent with a and b . 3. For the cosine sum/difference identities, the functions in each term, with the sign between them. 4. For the sine sum/difference identities, the functions in each term, with the sign between them.
5. Discuss/Explain how we know the exact value for 11 2 cos cosa b will be negative, prior 12 3 4 to applying any identity. sin1 2 cos1 2 is an identity, even though the arguments of cosine have been reversed. Then verify the identity.
6. Discuss/Explain why tan1 2
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
DEVELOPING YOUR SKILLS
Find the exact value of the expression given using a sum or difference identity. Some simplifications may involve using symmetry and the formulas for negatives.
7. cos 105°
8. cos 135°
9. cos a
10. cos a
7 b 12
5 b 12
12. a. cosa
b. cos a
b 4 3
Rewrite as a single expression in cosine.
13. cos172 cos122 sin172 sin122
15. cos 183° cos 153° sin 183° sin 153°
cot
4 17. For sin with terminal side in QIV and 5 5 tan with terminal side in QII, find 12 cos1 2. 112 with terminal side in QII and 113 89 sec with terminal side in QII, find 39 cos1 2.
18. For sin
Use a cofunction identity to write an equivalent expression.
b 10
23. sin a
b 6
5 21. tan a b 12 24. cos a
Rewrite as a single expression.
25. sin13x2 cos15x2 cos13x2 sin15x2 x x x x 26. sina b cosa b cosa b sina b 2 3 2 3
4 11 b tan a b 21 21 31. 11 4 1 tan a b tan a b 21 21 tan a
33. For cos
5 7 5 7 16. cos a b cosa b sina b sina b 36 36 36 36
22. sec a
5 11 5 11 b cosa b cos a b sina b 24 24 24 24
tan a
Find the exact value of the given expressions.
20. sin 18°
30. sin a
3 b tan a b 20 10 32. 3 1 tan a b tana b 20 10
14. cosa b cosa b sina b sina b 3 6 3 6
19. cos 57°
x x tana b tana b 2 8 28. x x 1 tana b tana b 2 8
29. sin 137° cos 47° cos 137° sin 47°
b. cos1120° 45°2
b 6 4
tan152 tan122 1 tan152 tan122
Find the exact value of the given expressions.
Use sum/difference identities to verify that both expressions give the same result.
11. a. cos145° 30°2
27.
b 3
7 with terminal side in QII and 25
15 with terminal side in QIII, find 8
a. sin1 2
b. tan1 2
29 with terminal side in QI and 20 12 cos with terminal side in QII, find 37 a. sin1 2 b. tan1 2
34. For csc
Find the exact value of the expression given using a sum or difference identity. Some simplifications may involve using symmetry and the formulas for negatives.
35. sin 105°
36. sin 175°2
37. sin a
38. sin a
5 b 12
11 b 12
39. tan 150°
40. tan 75°
41. tan a
42. tan a
2 b 3
b 12
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Section 6.3 The Sum and Difference Identities
53. For the figure indicated, show that and compute the following:
Use sum/difference identities to verify that both expressions give the same result.
43. a. sin 145°30°2
b 3 4 b. sin a b 4 6
44. a. sin a
b. sin 1135° 120°2
a. sin
19 19 5 b given 2 . See 12 12 12 Exercises 10 and 37.
a. sin
c. tan1 2
51. Use the diagram indicated to compute the following: b. cos A
5
12 
55. sin1 2 sin
c. tan1 2
b. cos1 2
c. tan A Exercise 52
Exercise 51
6
Verify each identity.
60 50. Given and are obtuse angles with tan 11 35 and sin , find 37
a. sin A
Exercise 54
c. tan1 2
b. cos1 2
c. tan
␣
28 49. Given and are obtuse angles with sin 53 13 and cos , find 85
a. sin1 2
b. cos
8
8 48. Given and are acute angles with cos 17 25 and sec , find 7
a. sin1 2

54. For the figure indicated, show that and compute the following:
c. tan1 2
b. cos1 2
28
␣
12 47. Given and are acute angles with sin 13 35 and tan , find 12
a. sin1 2
45
24
32
46. Find cos a
b. cos1 2
c. tan
Exercise 53
45. Find sin 255° given 150° 105° 255°. See Exercises 7 and 35.
a. sin1 2
b. cos
56. cos1 2 cos 57. cos ax
22 b 1cos x sin x2 4 2
58. sin ax
12 b 1sin x cos x2 4 2
59. tanax
1 tan x b 4 1 tan x
60. tanax
tan x 1 b 4 tan x 1
61. cos1 2 cos1 2 2 cos cos 62. sin1 2 sin1 2 2 sin sin 15
30
A
5

64. sin12t2 2 sin t cos t
45
8
15 12
52. Use the diagram indicated to compute the following: a. sin
b. cos
63. cos12t2 cos2t sin2t
c. tan
65. sin13t2 4 sin3t 3 sin t 66. cos13t2 4 cos3t 3 cos t 67. Use a difference identity to show 12 cos ax b 1cos x sin x2. 4 2 68. Use sum/difference identities to show sinax b sinax b 12 sin x. 4 4
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WORKING WITH FORMULAS
69. Force and equilibrium: F
Wk tan1p 2 c
The force and equilibrium when a screw jack is used can be modeled by the formula shown, where p is the pitch angle of the screw, W is the weight of the load, is the angle of friction, with k and c being constants related to a particular jack. Simplify the formula using the difference formula for tangent given p and . 6 4
6-24
CHAPTER 6 Trigonometric Identities, Inverses, and Equations
70. Brewster’s law: tan p
n2 n1
Brewster’s law of optics states that when unpolarized light strikes a dielectric surface, the transmitted light rays and the reflected light rays are perpendicular to each other. The proof of Brewster’s law involves the expression n1sin p n2 sin a p b. Use the 2 difference identity for sine to verify that this expression leads to Brewster’s law.
APPLICATIONS
71. AC circuits: In a study of AC circuits, the equation cos s cos t sometimes arises. Use a sum R C sin1s t2 identity and algebra to show this equation is 1 equivalent to R . C1tan s tan t2 72. Fluid mechanics: In studies of fluid mechanics, the equation 1V1sin 2V2sin1 2 sometimes arises. Use a difference identity to show that if 1V1 2V2, the equation is equivalent to cos cot sin 1. 73. Art and mathematics: When working in twopoint geometric perspective, artists must scale their work to fit on the paper or canvas they are using. In A tan doing so, the equation arises. B tan190° 2 Rewrite the expression on the right in terms of sine and cosine, then use the difference identities to A show the equation can be rewritten as tan2. B
75. Pressure on the eardrum: If a frequency generator is placed a certain distance from the ear, the pressure on the eardrum can be modeled by the function P1 1t2 A sin12ft2, where f is the frequency and t is the time in seconds. If a second frequency generator with identical settings is placed slightly closer to the ear, its pressure on the eardrum could be represented by P2 1t2 A sin12ft C2 , where C is a constant. Show that if C , the total 2 pressure on the eardrum 3P1 1t2 P2 1t2 4 is P1t2 A 3sin12ft2 cos12ft2 4 . 76. Angle between two cables: Two cables used to steady a radio tower are attached to the tower at heights of 5 ft and 35 ft, with both secured to a stake 12 ft from the tower (see figure). Find the value of cos , where is the angle between the upper and lower cables. Exercise 76
74. Traveling waves: If two waves of the same frequency, velocity, and amplitude are traveling along a string in opposite directions, they can be represented by the equations Y1 A sin1kx t2 and Y2 A sin1kx t2 . Use the sum and difference formulas for sine to show the result YR Y1 Y2 of these waves can be expressed as YR 2A sin1kx2cos1t2.
35 ft
5 ft
12 ft
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77. Difference quotient: Given f1x2 sin x, show that the difference quotient results in the expression sin h cos h 1 cos x a b. sin x h h
78. Difference identity: Derive the difference identity sin1 2 . for tangent using tan1 2 cos1 2 (Hint: After applying the difference identities, divide the numerator and denominator by cos cos .)
EXTENDING THE CONCEPT
A family of identities called the angle reduction formulas, will be of use in our study of complex numbers and other areas. These formulas use the period of a function to reduce large angles to an angle in [0, 360°) or [0, 2) having an equivalent function value: (1) cos1t 2k2 cos t; (2) sin1t 2k2 sin t . Use the reduction formulas to find values for the following functions (note the formulas can also be expressed in degrees).
81. sin a
41 b 6
80. cos a
(cos( ), sin( )) (cos , sin ) D
d
(1, 0)
91 b 6
82. sin 2385° Exercise 84
83. An alternative method of proving the difference formula for cosine uses a unit circle and the fact that equal arcs are subtended by equal chords (D d in the diagram). Using a combination of algebra, the distance formula, and a Pythagorean identity, show that cos1 2 cos cos sin sin (start by computing D2 and d2). Then discuss/explain how the sum identity can be found using the fact that 12. 84. A proof without words: Verify the Pythagorean theorem for each right triangle in the diagram, then discuss/explain how the diagram offers a proof of the sum identities for sine and cosine. Be detailed and thorough.
(cos , sin )
A
1
sin B
sin B sin A cos B B
A
cos B sin A
79. cos 1665°
Exercise 83
sin B cos A
639
Section 6.3 The Sum and Difference Identities
cos B cos A
MAINTAINING YOUR SKILLS
85. (5.3/5.4) State the period of the functions given: a. y 3 sin a x b 8 3 b. y 4 tan a2x b 4
87. (5.2) Clarence the Clown is about to be shot from a circus cannon to a safety net on the other side of the main tent. If the cannon is 30 ft long and must be aimed at 40° for Clarence to hit the net, the end of the cannon must be how high from ground level?
86. (2.7) Graph the piecewise-defined function given:
88. (2.3) Find the equation of the line parallel to 2x 5y 10, containing the point (5, 2). Write your answer in standard form.
3 f 1x2 • x2 x
x 6 1 1 x 1 x 7 1
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6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities Learning Objectives In Section 6.4 you will learn how to:
A. Derive and use the double-angle identities for cosine, tangent, and sine
B. Develop and use the power reduction and half-angle identities
C. Derive and use the product-to-sum and sum-to-product identities
D. Solve applications using these identities
The derivation of the sum and difference identities in Section 6.3 was a “watershed event” in the study of identities. By making various substitutions, they lead us very naturally to many new identity families, giving us a heightened ability to simplify expressions, solve equations, find exact values, and model real-world phenomena. In fact, many of the identities are applied in very practical ways, as in a study of projectile motion and the conic sections (Chapter 10). In addition, one of the most profound principles discovered in the eighteenth and nineteenth centuries was that electricity, light, and sound could all be studied using sinusoidal waves. These waves often interact with each other, creating the phenomena known as reflection, diffraction, superposition, interference, standing waves, and others. The product-to-sum and sum-to-product identities play a fundamental role in the investigation and study of these phenomena.
A. The Double-Angle Identities The double-angle identities for sine, cosine, and tangent can all be derived using the related sum identities with two equal angles 1 2. We’ll illustrate the process here for the cosine of twice an angle. cos1 2 cos cos sin sin
sum identity for cosine
cos1 2 cos cos sin sin
assume and substitute for
cos122 cos sin 2
2
simplify—double-angle identity for cosine
Using the Pythagorean identity cos sin2 1, we can easily find two additional members of this family, which are often quite useful. For cos2 1 sin2 we have 2
cos122 cos2 sin2
11 sin 2 sin 2
2
cos122 1 2 sin 2
double-angle identity for cosine substitute 1 sin2 for cos2 double-angle in terms of sine
Using sin 1 cos we obtain an additional form: 2
2
cos122 cos2 sin2
cos 11 cos 2 2
2
cos122 2 cos2 1
double-angle identity for cosine substitute 1 cos2 for sin2 double-angle in terms of cosine
The derivations of sin122 and tan122 are likewise developed and are asked for in Exercise 103. The double-angle identities are collected here for your convenience. The Double-Angle Identities cosine:
cos122 cos2 sin2
sine: sin122 2 sin cos
1 2 sin 2
2 cos2 1 tangent:
640
tan122
2 tan 1 tan2
6-26
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Section 6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities
EXAMPLE 1
Using a Double-Angle Identity to Find Function Values 5 Given sin , find the value of cos122. 8
Solution
Using the double-angle identity for cosine in terms of sine, we find cos122 1 2 sin2 5 2 1 2a b 8 25 1 32 7 32
double-angle in terms of sine substitute
5 for sin 8
5 2 25 2a b 8 32 result
7 5 If sin , then cos122 . 8 32 Now try Exercises 7 through 20
Like the fundamental identities, the double-angle identities can be used to verify or develop others. In Example 2, we explore one of many multiple-angle identities, verifying that cos132 can be rewritten as 4 cos3 3 cos (in terms of powers of cos ).
EXAMPLE 2
Verifying a Multiple Angle Identity Verify that cos132 4 cos3 3 cos is an identity.
Solution
Use the sum identity for cosine, with 2 and . Note that our goal is an expression using cosines only, with no multiple angles. cos1 2 cos cos sin sin cos12 2 cos122 cos sin122sin cos132 12 cos2 12 cos 12 sin cos 2 sin 2 cos3 cos 2 cos sin2 2 cos3 cos 2 cos 11 cos22 2 cos3 cos 2 cos 2 cos3 4 cos3 3 cos
sum identity for cosine substitute 2 for and for substitute for cos122 and sin122 multiply substitute 1 cos2 for sin2 multiply combine terms
Now try Exercises 21 and 22
EXAMPLE 3
Using a Double-Angle Formula to Find Exact Values Find the exact value of sin 22.5° cos 22.5°.
Solution
A product of sines and cosines having the same argument hints at the double-angle identity for sine. Using sin122 2 sin cos and dividing by 2 gives
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
sin122 2 sin12 322.5° 4 2 sin 22.5° cos 22.5° 2 sin 45° 2 12 2 12 2 4 sin cos
A. You’ve just learned how to derive and use the doubleangle identities for cosine, tangent, and sine
double-angle identity for sine
replace with 22.5°
multiply
sin 45°
12 2
Now try Exercises 23 through 30
B. The Power Reduction and Half-Angle Identities Expressions having a trigonometric function raised to a power occur quite frequently in various applications. We can rewrite even powers of these trig functions in terms of an expression containing only cosine to the power 1, using what are called the power reduction identities. This makes the expression easier to use and evaluate. It can legitimately be argued that the power reduction identities are actually members of the double-angle family, as all three are a direct consequence. To find identities for cos2x and sin2x, we solve the related double-angle identity involving cos (2x). 1 2 sin2 cos122
cos122 in terms of sine
2 sin cos122 1 2
sin2
1 cos122 2
subtract 1, then divide by 2 power reduction identity for sine
Using the same approach for cos2 gives cos2
1 cos122 . The identity for 2
2 tan (see Exercise 104), but in this case 1 tan2 1 cos122 sin2u it’s easier to use the identity tan2u . 2 . The result is 1 cos122 cos u tan2 can be derived from tan122
The Power Reduction Identities cos2
EXAMPLE 4
1 cos122 2
sin2
1 cos122 2
tan2
1 cos122 1 cos122
Using a Power Reduction Formula Write 8 sin4x in terms of an expression containing only cosines to the power 1.
Solution
8 sin4x 81sin2x2 2 1 cos12x2 2 8c d 2 2 3 1 2 cos12x2 cos2 12x2 4 1 cos14x2 d 2 c 1 2 cos12x2 2 2 4 cos12x2 1 cos14x2 3 4 cos12x2 cos14x2
original expression substitute
1 cos12x2 2
for sin2x
multiply substitute
1 cos14x2 2
for cos2(2x)
multiply result
Now try Exercises 31 through 36
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643
The half-angle identities follow directly from those above, using algebra and a 1 cos122 , we first take square roots and simple change of variable. For cos2 2 u 1 cos122 . Using the substitution u 2 gives , obtain cos A 2 2 and making these substitutions results in the half-angle identity for cosine: u 1 cos u cosa b , where the radical’s sign depends on the quadrant in which 2 A 2 u u 1 cos u , terminates. Using the same substitution for sine gives sin a b 2 2 A 2 u u 1 cos u . In the case of tan a b, we can and for the tangent identity, tan a b 2 A 1 cos u 2 actually develop identities that are free of radicals by rationalizing the denominator or numerator. We’ll illustrate the former, leaving the latter as an exercise (see Exercise 102). u 11 cos u2 11 cos u2 tan a b 2 A 11 cos u2 11 cos u2 11 cos u2 2 B 1 cos2u
B `
multiply by the conjugate
rewrite
11 cos u2 2
Pythagorean identity
sin2u
1 cos u ` sin u
2x2 x
u Since 1 cos u 7 0 and sin u has the same sign as tan a b for all u in its domain, 2 u 1 cos u the relationship can simply be written tan a b . 2 sin u The Half-Angle Identities u 1 cos u cosa b 2 A 2
u 1 cos u sin a b 2 A 2
u 1 cos u tan a b 2 sin u
EXAMPLE 5
u 1 cos u tan a b 2 A 1 cos u
sin u u tan a b 2 1 cos u
Using Half-Angle Formulas to Find Exact Values Use the half-angle identities to find exact values for (a) sin 15° and (b) tan 15°.
Solution
Noting that 15° is one-half the standard angle 30°, we can find each value by applying the respective half-angle identity with u 30° in Quadrant I.
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
30 1 cos 30 b 2 A 2 13 1 2 Q 2 12 13 sin 15° 2
a. sin a
1 cos 30 30 b 2 sin 30 13 1 2 2 13 tan 15° 1 2
b. tan a
Now try Exercises 37 through 48
EXAMPLE 6
Using Half-Angle Formulas to Find Exact Values For cos
Solution
B. You’ve just learned how to develop and use the power reduction and half-angle identities
7 and in QIII, find exact values of sin a b and cos a b. 25 2 2
3 3 and , we know must be in QII S 6 6 2 2 2 2 4 we choose our signs accordingly: sin a b 7 0 and cos a b 6 0. 2 2
With in QIII S 6 6
1 cos sin a b 2 A 2 7 1 a b 25 Q 2 4 16 A 25 5
1 cos cos a b 2 A 2 7 1 a b 25 2 Q 3 9 5 A 25 Now try Exercises 49 through 64
C. The Product-to-Sum Identities As mentioned in the introduction, the product-to-sum and sum-to-product identities are of immense importance to the study of any phenomenon that travels in waves, like light and sound. In fact, the tones you hear as you dial a telephone are actually the sum of two sound waves interacting with each other. Each derivation of a product-to-sum identity is very similar (see Exercise 105), and we illustrate by deriving the identity for cos cos . Beginning with the sum and difference identities for cosine, we have cos cos sin sin cos1 2 cos cos sin sin cos1 2 2 cos cos cos1 2 cos1 2 1 cos cos 3 cos1 2 cos1 2 4 2 The identities from this family are listed here.
cosine of a difference cosine of a sum combine equations divide by 2
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645
The Product-to-Sum Identities 1 cos cos 3 cos1 2 cos1 2 4 2
sin sin
1 sin cos 3 sin1 2 sin1 2 4 2
1 cos sin 3 sin1 2 sin1 2 4 2
EXAMPLE 7
1 3cos1 2 cos1 2 4 2
Rewriting a Product as an Equivalent Sum Using Identities Write the product 2 cos(27t) cos(15t) as the sum of two cosine functions.
Solution
This is a direct application of the product-to-sum identity, with 27t and 15t. 1 cos cos 3 cos1 2 cos1 2 4 2 1 2 cos127t2cos115t2 2a b 3cos127t 15t2 cos127t 15t2 4 2 cos112t2 cos142t2
product-to-sum identity
substitute result
Now try Exercises 65 through 73
There are times we find it necessary to “work in the other direction,” writing a sum of two trig functions as a product. This family of identities can be derived from the product-to-sum identities using a change of variable. We’ll illustrate the process for sin u sin v. You are asked for the derivation of cos u cos v in Exercise 106. To begin, we use 2 u v and 2 u v. This creates the sum 2 2 2u and the difference 2 2 2v, yielding u and v, respectively. uv uv , which all Dividing the original expressions by 2 gives and 2 2 together make the derivation a matter of direct substitution. Using these values in any product-to-sum identity gives the related sum-to-product, as shown here. 1 sin cos 3 sin1 2 sin1 2 4 2 sina
product-to-sum identity (sum of sines)
uv 1 uv b cosa b 1sin u sin v2 2 2 2
substitute
uv uv for , for , 2 2
substitute u for and v for multiply by 2
uv uv b cosa b sin u sin v 2 sina 2 2 The sum-to-product identities follow. The Sum-to-Product Identities
uv uv b cosa b 2 2
cos u cos v 2 cosa
uv uv b cosa b 2 2
sin u sin v 2 sina
sin u sin v 2 cosa
uv uv b sina b 2 2
cos u cos v 2 sina
uv uv b sina b 2 2
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
EXAMPLE 8
Rewriting a Sum as an Equivalent Product Using Identities Given y1 sin112t2 and y2 sin110t2, express y1 y2 as a product of trigonometric functions.
Solution
This is a direct application of the sum-to-product identity sin u sin v, with u 12t and v 10t. uv uv b cosa b 2 2 12t 10t 12t 10t b cosa b sin112t2 sin110t2 2 sina 2 2 2 sin111t2 cos1t2 sin u sin v 2 sina
C. You’ve just learned how to derive and use the product-to-sum and sumto-product identities
sum-to-product identity
substitute 12t for u and 10t for v substitute
Now try Exercises 74 through 82
For a mixed variety of identities, see Exercises 83–100.
D. Applications of Identities In more advanced mathematics courses, rewriting an expression using identities enables the extension or completion of a task that would otherwise be very difficult (or even impossible). In addition, there are a number of practical applications in the physical sciences.
Projectile Motion A projectile is any object that is thrown, shot, kicked, dropped, or otherwise given an initial velocity, but lacking a continuing source of propulsion. If air resistance is ignored, the range of the projectile depends only on its initial velocity v and the angle at which it is propelled. This phenomenon is modeled by the function 1 2 r 12 v sin cos . 16
EXAMPLE 9
Using Identities to Solve an Application a. Use an identity to show r12
1 2 v sin cos is equivalent to 16
r 12
1 2 v sin122. 32 b. If the projectile is thrown with an initial velocity of v 96 ft/sec, how far will it travel if 15°? c. From the result of part (a), determine what angle will give the maximum range for the projectile. Solution
a. Note that we can use a double-angle identity if we rewrite the coefficient. 1 1 Writing as 2a b and commuting the factors gives 16 32 1 1 2 r 12 a bv 12 sin cos 2 a b v2sin122. 32 32 1 b. With v 96 ft/sec and 15°, the formula gives r 115°2 a b1962 2sin 30°. 32 Evaluating the result shows the projectile travels a horizontal distance of 144 ft.
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Section 6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities
c. For any initial velocity v, r 12 will be maximized when sin122 is a maximum. This occurs when sin122 1, meaning 2 90° and 45°. The maximum range is achieved when the projectile is released at an angle of 45°.
Now try Exercises 109 and 110 GRAPHICAL SUPPORT The result in Example 9(c) can be verified graphically by assuming an initial velocity of 96 ft/sec and entering the function 1 r12 1962 2sin122 288 sin122 as Y1 on a 32 0 graphing calculator. With an amplitude of 288 and results confined to the first quadrant, we set an appropriate window, graph the function, and use the 2nd TRACE (CALC 4:maximum) feature. As shown in the figure, the max occurs at 45°.
300
90
0
Sound Waves Each tone you hear on a touch-tone phone is actually the combination of precisely two B sound waves with different frequencies (frequency f is defined as f ). This is why 2 the tones you hear sound identical, regardless of what phone you use. The sumto-product and product-to-sum formulas help us to understand, study, and use sound in very powerful and practical ways, like sending faxes and using other electronic media.
EXAMPLE 10
Using an Identity to Solve an Application On a touch-tone phone, the sound created by pressing 5 is produced by combining a sound wave with frequency 1336 cycles/sec, with another wave having frequency 770 cycles/sec. Their respective equations are y1 cos12 1336t2 and y2 cos12 770t2, with the resultant wave being y y1 y2 or y cos12672t2 cos11540t2. Rewrite this sum as a product.
Solution
1
2
3
697 cps
4
5
6
770 cps
7
8
9
852 cps
*
0
#
941 cps
1209 cps
1477 cps
1336 cps
This is a direct application of the sum-to-product identity, with u 2672t and v 1540t. Computing one-half the sum/difference of u and v gives 2672t 1540t 2672t 1540t 2106t and 566t. 2 2 uv uv b cos a b 2 2 cos12672t2 cos11540t2 2 cos12106t2cos1566t2 cos u cos v 2 cos a
sum-to-product identity substitute 2672t for u and 1540t for v
Now try Exercises 111 and 112
D. You’ve just learned how to solve applications using identities
Note we can identify the button pressed when the wave is written as a sum. If we have only the resulting wave (written as a product), the product-to-sum formula must be used to identify which button was pressed. Additional applications requiring the use of identities can be found in Exercises 113 through 117.
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
6.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The double-angle identities can be derived using the identities with . For cos122 we expand cos1 2 using . 2. If is in QIII then 180° 6 6 270° and in
since
6
6 2
must be 2 .
3. Multiple-angle identities can be derived using the sum and difference identities. For sin (3x) use sin ( ).
4. For the half-angle identities the sign preceding the u radical depends on the in which . 2 5. Explain/Discuss how the three different identities u for tana b are related. Verify that 2 sin x 1 cos x . sin x 1 cos x 7 6. In Example 6, we were given cos and 25 in QIII. Discuss how the result would differ if we stipulate that is in QII instead.
DEVELOPING YOUR SKILLS
Find exact values for sin(2), cos(2), and tan(2) using the information given.
7. sin
5 ; in QII 13
9. cos
21 ; in QII 29
9 63 ; in QII 10. sin ; in QIII 41 65
11. tan
13 ; in QIII 84
13. sin
48 ; cos 6 0 73
14. cos
8. cos
12. sec
53 ; in QI 28
8 ; tan 7 0 17
5 15. csc ; sec 6 0 3 16. cot
80 ; cos 7 0 39
Find exact values for sin , cos , and tan using the information given.
24 17. sin122 ; 2 in QII 25 18. sin122
240 ; 2 in QIII 289
19. cos122 20. cos122
41 ; 2 in QII 841
120 ; 2 in QIV 169
21. Verify the following identity: sin132 3 sin 4 sin3 22. Verify the following identity: cos142 8 cos4 8 cos2 1 Use a double-angle identity to find exact values for the following expressions.
23. cos 75° sin 75°
24. cos215° sin215°
25. 1 2 sin2 a b 8
26. 2 cos2 a
27.
2 tan 22.5° 1 tan222.5°
28.
b1 12
2 2 tan 1 12
1 tan2 1 12 2
29. Use a double-angle identity to rewrite 9 sin (3x) cos (3x) as a single function. [Hint: 9 92 122 .] 30. Use a double-angle identity to rewrite 2.5 5 sin2x as a single term. [Hint: Factor out a constant.]
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Section 6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities
Rewrite in terms of an expression containing only cosines to the power 1.
31. sin2x cos2x
32. sin4x cos2x
4
4
34. cos x sin x
6
36. 4 cos6x
33. 3 cos x 35. 2 sin x
4
Use a half-angle identity to find exact values for sin , cos , and tan for the given value of .
37. 22.5° 39.
12
40.
5 12
42. 112.5°
3 8
44.
11 12
Use the results of Exercises 37–40 and a half-angle identity to find the exact value.
45. sin 11.25° 47. sin a
46. tan 37.5°
b 24
48. cos a
5 b 24
Use a half-angle identity to rewrite each expression as a single, nonradical function.
49.
A
1 cos 30° 2
50.
A
1 cos 45° 2
1 cos142 51. A 1 cos142
1 cos16x2 52. sin16x2
sin12x2 53. 1 cos12x2
1211 cos x2 54. 1 cos x
Find exact values for sin a b, cos a b, and tan a b 2 2 2 using the information given.
55. sin
12 ; is obtuse 13
56. cos
8 ; is obtuse 17
4 57. cos ; in QII 5 58. sin
7 ; in QIII 25
59. tan
35 ; in QII 12
65 ; in QIII 33
61. sin
15 ; is acute 113
62. cos
48 ; is acute 73
63. cot
3 21 ; 6 6 20 2
64. csc
41 ; 6 6 9 2
38. 75°
41. 67.5° 43.
60. sec
649
Write each product as a sum using the product-to-sum identities.
65. sin142 sin182
66. cos1152 sin132
7t 3t 67. 2 cosa b cosa b 2 2
9t 5t 68. 2 sina b sina b 2 2
69. 2 cos11979t2 cos1439t2 70. 2 cos12150t2 cos1268t2 Find the exact value using product-to-sum identities.
71. 2 cos 15° sin 135° 72. sina
7 b cosa b 8 8
73. sina
7 b sina b 12 12
Write each sum as a product using the sum-to-product identities.
74. cos19h2 cos14h2 76. sina
75. sin114k2 sin141k2
11x 5x 5x 7x b sina b 77. cosa b cosa b 8 8 6 6
78. cos1697t2 cos 11447t2
79. cos1852t2 cos11209t2 Find the exact value using sum-to-product identities.
80. cos 75° cos15° 81. sina
13 17 b sina b 12 12
82. sina
7 11 b sina b 12 12
Verify the following identities.
83.
2 sin x cos x tan12x2 cos2x sin2x
84.
1 2 sin2 x cot12x2 2 sin x cos x
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85. 1sin x cos x2 2 1 sin 12x2
86. 1sin x 12 sin x cos 12x2 2
2
4
87. cos182 cos2 142 sin2 142
88. sin 14x2 4 sin x cos x 11 2 sin2x2 89.
cos 122 sin2
cot 1 2
90. csc2 2 91. tan 122
cos 122 sin2
2 cot tan
92. cot tan
2 cos 122 sin 122
93. tan x cot x 2 csc 12x2 94. csc 12x2
1 csc x sec x 2
x x 95. cos2 a b sin2 a b cos x 2 2 x x 96. 1 2 sin a b cos a b 4 2 2
97. 1 sin2 122 1 4 sin2 4 sin4
6-36
CHAPTER 6 Trigonometric Identities, Inverses, and Equations
x 98. 2 cos2 a b 1 cos x 2 99. 100.
sin1120t2 sin180t2 cot120t2 cos1120t2 cos180t2 sin m sin n mn tan a b cos m cos n 2
2 101. Show sin2 11 cos 2 2 c 2 sin a b d . 2 1 cos u u 102. Show that tan a b is equivalent 2 A 1 cos u sin u to by rationalizing the numerator. 1 cos u 103. Derive the identity for sin 122 and tan 122 using sin 1 2 and tan 1 2, where .
104. Derive the identity for tan2 12 using 2 tan12 tan122 . Hint: Solve for tan2 and 1 tan2 12 work in terms of sines and cosines. 105. Derive the product-to-sum identity for sin sin . 106. Derive the sum-to-product identity for cos u cos v.
WORKING WITH FORMULAS
107. Supersonic speeds, the sound barrier, and Mach numbers: M csc a b 2 The speed of sound varies with temperature and altitude. At 32°F, sound travels about 742 mi/hr at sea level. A jet-plane flying faster than the speed of sound (called supersonic speed) has “broken the sound barrier.” The plane projects threedimensional sound waves about the nose of the craft that form the shape of a cone. The cone intersects the Earth along a hyperbolic path, with a sonic boom being heard by anyone along this path. The ratio of the plane’s speed to the speed of sound is
called its Mach number M, meaning a plane flying at M 3.2 is traveling 3.2 times the speed of sound. This Mach number can be determined using the formula given here, where is the vertex angle of the cone described. For the following exercises, use the formula to find M or as required. For parts (a) and (b), answer in exact form (using a half-angle identity) and approximate form. a. 30° b. 45° c. M 2 108. Malus’s law: I I0 cos2 When a beam of plane-polarized light with intensity I0 hits an analyzer, the intensity I of the transmitted beam of light can be found using the formula shown, where is the angle formed between the transmission axes of the polarizer and the analyzer. Find the intensity of the beam when 15° and I0 300 candelas (cd). Answer in exact form (using a power reduction identity) and approximate form.
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Section 6.4 The Double-Angle, Half-Angle, and Product-to-Sum Identities
651
APPLICATIONS
Range of a projectile: Exercises 109 and 110 refer to Example 9. In Example 9, we noted that the range of a projectile was maximized at 45°. If 7 45° or 6 45°, the projectile falls short of its maximum potential distance. In Exercises 109 and 110 assume that the projectile has an initial velocity of 96 ft/sec.
109. Compute how many feet short of maximum the projectile falls if (a) 22.5° and (b) 67.5°. Answer in both exact and approximate form. 110. Use a calculator to compute how many feet short of maximum the projectile falls if (a) 40° and 50° and (b) 37.5° and 52.5°. Do you see a pattern? Discuss/explain what you notice and experiment with other values to confirm your observations. Touch-tone phones: The diagram given in Example 10 shows the various frequencies used to create the tones for a touch-tone phone. One button is randomly pressed and the resultant wave is modeled by y(t) shown. Use a product-tosum identity to write the expression as a sum and determine the button pressed.
111. y 1t2 2 cos 12150t2cos 1268t2 112. y 1t2 2 cos 11906t2cos 1512t2
113. Clock angles: Kirkland City has a large clock atop city hall, with a minute hand that is 3 ft d long. Claire and Monica independently attempt to devise a function that will track the distance between the tip of the minute hand at t minutes between the hours, and the tip of the minute hand when it is in the vertical position as shown. Claire finds the t function d1t2 ` 6 sina b ` , while Monica devises 60 t d1t2 18 c 1 cos a b d . Use the identities 30 A from this section to show the functions are equivalent. L
21.6 cm
114. Origami: The Japanese art of origami involves the repeated folding of a single piece of paper to create various art forms. When the upper right corner of
28 cm
a rectangular 21.6-cm by 28-cm piece of paper is folded down until the corner is flush with the other side, the length L of the fold is 10.8 related to the angle by L . (a) Show sin cos2 21.6 sec this is equivalent to L , (b) find the sin122 length of the fold if 30°, and (c) find the angle if L 28.8 cm. 115. Machine gears: A machine part involves two gears. The first has a radius of 2 cm and the second a radius of 1 cm, so the smaller gear 2 cm turns twice as fast as the larger gear. Let represent the angle of rotation in the larger gear, measured from a vertical and downward 2 1 m h starting position. Let P be a P point on the circumference of the smaller gear, starting at the vertical and downward position. Four engineers working on an improved design for this component devise functions that track the height of point P above the horizontal plane shown, for a rotation of ° by the larger gear. The functions they develop are: Engineer A: f 12 sin 12 90°2 1; Engineer B: g12 2 sin2; Engineer C: k12 1 sin2 cos2; and Engineer D: h12 1 cos 122. Use any of the identities you’ve learned so far to show these four functions are equivalent. 116. Working with identities: Compute the value of sin 15° two ways, first using the half-angle identity for sine, and second using the difference identity for sine. (a) Find a decimal approximation for each to show the results are equivalent and (b) verify algebraically that they are equivalent. (Hint: Square both sides.) 117. Working with identities: Compute the value of cos 15° two ways, first using the half-angle identity for cosine, and second using the difference identity for cosine. (a) Find a decimal approximation for each to show the results are equivalent and (b) verify algebraically that they are equivalent. (Hint: Square both sides.)
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EXTENDING THE CONCEPT
118. Can you find three distinct, real numbers whose sum is equal to their product? A little known fact from trigonometry stipulates that for any triangle, the sum of the tangents of the angles is equal to the products of their tangents. Use a calculator to test this statement, recalling the three angles must sum to 180°. Our website at www.mhhe.com/coburn shows a method that enables you to verify the statement using tangents that are all rational values. Exercise 119
1 2
1
sin
119. A proof without words: From elementary geometry we have the following: (a) an angle inscribed in a semicircle is a right angle; and (b) the measure of an
6-38
CHAPTER 6 Trigonometric Identities, Inverses, and Equations
s
cos
inscribed angle (vertex on the circumference) is one-half the measure of its intercepted arc. Discuss/explain how the unit-circle diagram offers sin x x a proof that tan a b . Be detailed and 2 1 cos x thorough. 120. Using 30° and repeatedly applying the halfangle identity for cosine, show that cos 3.75° is 12 12 12 13 equal to . Verify the result 2 using a calculator, then use the patterns noted to write the value of cos 1.875° in closed form (also verify this result). As becomes very small, what appears to be happening to the value of cos ?
MAINTAINING YOUR SKILLS
121. (3.3) Use the rational roots theorem to find all zeroes of x4 x3 8x2 6x 12 0. 122. (5.1) The hypotenuse of a certain right triangle is twice the shortest side. Solve the triangle. 63 123. (5.3) Verify that 1 16 65 , 65 2 is on the unit circle, then find tan and sec to verify 1 tan2 sec2.
124. (5.5) Write the equation of the function graphed in terms of a sine function of the form y A sin 1Bx C2 D.
y 3 2 1 1 2 3
MID-CHAPTER CHECK 1. Verify the identity using a multiplication: sin x 1csc x sin x2 cos2x 2. Verify the identity by factoring: cos2x cot2x cos2x cot2x 3. Verify the identity by combining terms: 2 sin x cos x cos x sin x sec x csc x 4. Show the equation given is not an identity. 1 sec2x tan2x 5. Verify each identity. sin3x cos3x 1 sin x cos x a. sin x cos x b.
1 cos x 1 sec x 0 csc x cot x
6. Verify each identity. sec2x tan2x a. cos2x sec2x cot x tan x b. cos2x sin2x csc x sec x 56 7. Given and are obtuse angles with sin 65 80 and tan , find 39 a. sin 1 2 b. cos 1 2 c. tan 1 2
2 x
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Reinforcing Basic Concepts
8. Use the diagram shown to compute sin A, cos A, and tan A.
Exercise 8
7 with in QIII, find the value of 25 sin 122, cos 122 , and tan 122 .
10. Given sin
60⬚ A
48
653
15 17 14 and in QII, find exact values of sina b and cosa b. 2 2
9. Given cos
REINFORCING BASIC CONCEPTS Identities—Connections and Relationships It is a well-known fact that information is retained longer and used more effectively when it is organized, sequential, and connected. In this Strengthening Core Skills (SCS), we attempt to do just that with our study of identities. In flowchart form we’ll show that the entire range of identities has only two tiers, and that the fundamental identities and the sum and difference identities are really the keys to the entire range of identities. Beginning with the right triangle definition of sine, cosine, and tangent, the reciprocal identities and ratio identities are more semantic (word related) than mathematical, and the Pythagorean identities follow naturally from the properties of right triangles. These form the first tier. Basic Definitions sin
opp hyp
cos
adj hyp
tan
opp adj
Fundamental Identities defined
Reciprocal Identities 1 csc sin 1 sec cos 1 cot tan
defined
Ratio Identities sin tan cos cos cot sin sec tan csc
derived
Pythagorean Identities sin2 cos2 1
tan2 1 sec2
1 cot2 csc2
(divide by cos )
(divide by sin2)
2
The reciprocal and ratio identities are actually defined, while the Pythagorean identities are derived from these two families. In addition, the identity sin2 cos2 1 is the only Pythagorean identity we actually need to memorize; the other two follow by division of cos2 and sin2 as indicated. In virtually the same way, the sum and difference identities for sine and cosine are the only identities that need to be memorized, as all other identities in the second tier flow from these.
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
Sum/Difference Identities
cos 1 2 cos cos sin sin sin 1 2 sin cos cos sin
Double-Angle Identities Power Reduction Identities use solve for cos2, sin2 in in sum identities related cos122 identity
Half-Angle Identities solve for cos , sin and use u/2 in the power reduction identities
Product-to-Sum Identities combine various sum/difference identities
sin 122 2 sin cos
cos2
1 cos 122 2
u 1 cos u cos a b 2 A 2
see Section 6.4
cos 122 cos2 sin2
sin2
1 cos 122 2
u 1 cos u sin a b 2 A 2
see Section 6.4
cos 122 2 cos2 1 (use sin2 1 cos2)
cos 122 1 2 sin2 (use cos2 1 sin2)
2 2 Exercise 1: Starting with the identity sin cos 1, derive the other two Pythagorean identities.
Exercise 2: Starting with the identity cos 1 2 cos cos sin sin , derive the double-angle identities for cosine.
6.5 The Inverse Trig Functions and Their Applications Learning Objectives In Section 6.5 you will learn how to:
A. Find and graph the inverse sine function and evaluate related expressions
B. Find and graph the inverse cosine and tangent functions and evaluate related expressions
C. Apply the definition and notation of inverse trig functions to simplify compositions
D. Find and graph inverse functions for sec x, csc x, and cot x
E. Solve applications involving inverse functions
While we usually associate the number with the features of a circle, it also occurs in some “interesting” places, such as the study of normal (bell) curves, Bessel functions, Stirling’s formula, Fourier series, Laplace transforms, and infinite series. In much the same way, the trigonometric functions are surprisingly versatile, finding their way into a study of complex numbers and vectors, the simplification of algebraic expressions, and finding the area under certain curves—applications that are hugely important in a continuing study of mathematics. As you’ll see, a study of the inverse trig functions helps support these fascinating applications.
A. The Inverse Sine Function In Section 4.1 we established that only one-to-one functions have an inverse. All six trig functions fail the horizontal line test and are not one-to-one as given. However, by suitably restricting the domain, a one-to-one function can be defined that makes finding an inverse possible. For the sine function, it seems natural to choose the interval c , d since it is centrally located and the sine function attains all 2 2 possible range values in this interval. A graph of y sin x is shown in Figure 6.5, with the portion corresponding to this interval colored in red. Note the range is still 31, 1 4 (Figure 6.6).
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College Algebra & Trignometry—
6-41 Figure 6.5 2
Figure 6.6
y 2
2
2
3 2
2
x
2
1
2 , 1
2
1
1 2
Figure 6.7
y
y y sin1 x
y sin x
y sin x
1
655
Section 6.5 The Inverse Trig Functions and Their Applications
1
y sin x
1
2,
1
2
x
2 , 1
2 2 ,
1
2
1
x
1 1
1
2
2
yx
We can obtain an implicit equation for the inverse of y sin x by interchanging x- and y-values, obtaining x sin y. By accepted convention, the explicit form of the inverse sine function is written y sin1x or y arcsin x. Since domain and range values have been interchanged, the domain of y sin1x is 3 1, 14 and the range is c , d . The graph of y sin1x can be found by reflecting the portion in red across 2 2 the line y x and using the endpoints of the domain and range (see Figure 6.7).
WORTHY OF NOTE In Example 4 of Section 4.1, we noted that by suitably restricting the domain of y x 2, a one-to-one function could be defined that made finding an inverse function possible. Specifically, for f1x2 x 2; x 0, f 1 1x2 1x.
The Inverse Sine Function For y sin x with domain c , d and range 31, 1 4, 2 2 the inverse sine function is
2
y y sin1 x
1, 2
1
y sin1x or y arcsin x,
1
2
with domain 31, 1 4 and range c , d . 2 2
1
2
x
1
y sin1x if and only if sin y x
1,
2
2
From the implicit form x sin y, we learn to interpret the inverse function as, “y is the number or angle whose sine is x.” Learning to read and interpret the explicit form in this way will be helpful. That is, y sin1x means “y is the number or angle whose sine is x.” y sin 1x 3 x sin y EXAMPLE 1
x sin y 3 y sin 1x
Evaluating y sin 1x Using Special Values Evaluate the inverse sine function for the values given: 13 1 a. y sin1a b. y arcsin a b c. y sin12 b 2 2
Solution
For x in 31, 1 4 and y in c , d , 2 2 13 13 b: y is the number or angle whose sine is a. y sin1a 2 2 13 13 1 sin y , so sin1a b . 2 2 3
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
1 1 b. y arcsin a b: y is the arc or angle whose sine is 2 2 1 1 1 sin y , so arcsin a b . 2 2 6 1 c. y sin 122: y is the number or angle whose sine is 2 1 sin y 2. Since 2 is not in 31, 1 4, sin1 122 is undefined. Now try Exercises 7 through 12
Table 6.1 x
sin x
2
1
3
13 2
4
12 2
6
12
0
0
6
1 2
4
12 2
3
13 2
2
1
EXAMPLE 2
1 13 and sin y 2 2 each have an infinite number of solutions, but only one solution in c , d . 2 2 1 13 , 1, and so onb, y sin1x can be When x is one of the standard values a0, , 2 2 evaluated by reading a standard table “in reverse.” For y arcsin 112, we locate the number 1 in the right-hand column of Table 6.1, and note the “number or angle whose sine is 1,” is . If x is between 1 and 1 but is not a standard value, we can 2 use the sin1 function on a calculator, which is most often the 2nd or function for . In Examples 1a and 1b, note that the equations sin y
Evaluating y sin1x Using a Calculator Evaluate each inverse sine function twice. First in radians rounded to four decimal places, then in degrees to the nearest tenth. a. y sin10.8492 b. y arcsin 10.23172
Solution WORTHY OF NOTE The sin1x notation for the inverse sine function is a carryover from the f 1 1x2 notation for a general inverse function, and likewise has nothing to do with the reciprocal of the function. The arcsin x notation derives from our work in radians on the unit circle, where y arcsin x can be interpreted as “y is an arc whose sine is x.”
For x in 31, 14 , we evaluate y sin1x. a. y sin10.8492: With the calculator in radian MODE , use the keystrokes 2nd 1 0.8492 ) 10.84922 1.0145 radians. In degree ENTER . We find sin 1 MODE , the same sequence of keystrokes gives sin 10.84922 58.1° (note that 1.0145 rad 58.1°2 . b. y arcsin 10.23172: In radian MODE , we find sin1 10.23172 0.2338 rad. In degree MODE , sin1 10.23172 13.4°.
Now try Exercises 13 through 16
From our work in Section 4.1, we know that if f and g are inverses, 1 f g21x2 x and 1g f 21x2 x. This suggests the following properties. Inverse Function Properties for Sine For f 1x2 sin x and g1x2 sin1x:
I. 1f g21x2 sin 1sin1x2 x for x in 31, 14 and II. 1g f 21x2 sin1 1sin x2 x for x in c , d 2 2
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Section 6.5 The Inverse Trig Functions and Their Applications
EXAMPLE 3
Evaluating Expressions Using Inverse Function Properties Evaluate each expression and verify the result on a calculator. 1 5 a. sin c sin1a b d b. arcsin c sin a b d c. sin1 c sin a b d 2 4 6
Solution
1 1 1 a. sin c sin1a b d , since is in 31, 1 4 Property I 2 2 2 b. arcsin c sin a b d , since is in c , d Property II 4 4 4 2 2 5 5 5 c. sin1 c sin a b d , since is not in c , d . 6 6 6 2 2 This doesn’t mean the expression cannot be evaluated, only that we cannot use 5 5 Property II. Since sin a b sina b, sin1 c asin b d sin1 c sin a b d . 6 6 6 6 6 The calculator verification for each is shown in Figures 6.8 and 6.9. Note 0.5236 and 0.7854. 6 4 Figure 6.8
Figure 6.9
Parts (a) and (b)
Part (c)
A. You’ve just learned how to find and graph the inverse sine function and evaluate related expressions
Now try Exercises 17 through 24
B. The Inverse Cosine and Inverse Tangent Functions Like the sine function, the cosine function is not one-to-one and its domain must also be restricted to develop an inverse function. For convenience we choose the interval x 3 0, 4 since it is again somewhat central and takes on all of its range values in this interval. A graph of the cosine function, with the interval corresponding to this interval shown in red, is given in Figure 6.10. Note the range is still 3 1, 14 (Figure 6.11). Figure 6.10
y
3
y cos1 (x)
2
y cos(x)
1
(1, )
3
2
2
Figure 6.12
Figure 6.11
y
2
3 2
2
2
1
3 2
(0, 1)
(0, 1) x
y
2
y cos(x)
x (, 1)
2
1
(1, 0) y cos (x)
x (, 1)
For the implicit equation of inverse cosine, y cos x becomes x cos y, with the corresponding explicit forms being y cos1x or y arccos x. By reflecting the graph of y cos x across the line y x, we obtain the graph of y cos1x shown in Figure 6.12.
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
The Inverse Cosine Function For y cos x with domain 3 0, 4 and range 3 1, 1 4 , the inverse cosine function is
(1, )
y cos1x or y arccos x
y cos1 (x)
with domain 31, 1 4 and range 30, 4 .
2
(1, 0)
1
x
Evaluating y cos 1x Using Special Values Evaluate the inverse cosine for the values given: 13 b a. y cos10 b. y arccos a 2
Solution
2 1
y cos1x if and only if cos y x
EXAMPLE 4
y 3
c. y cos1
For x in 3 1, 14 and y in 30, 4 , a. y cos10: y is the number or angle whose cosine is 0 1 cos y 0. This shows cos10 . 2 13 b. y arccos a b: y is the arc or angle whose cosine is 2 13 13 5 13 1 cos y . This shows arccosa b . 2 2 2 6 c. y cos1: y is the number or angle whose cosine is 1 cos y . Since 31, 1 4, cos1 is undefined. Now try Exercises 25 through 34
Knowing that y cos x and y cos1x are inverse functions enables us to state inverse function properties similar to those for sine. Inverse Function Properties for Cosine For f 1x2 cos x and g1x2 cos1x: I. 1 f g21x2 cos1cos1x2 x for x in 3 1, 14 and II. 1g f 21x2 cos1 1cos x2 x for x in 30, 4
EXAMPLE 5
Evaluating Expressions Using Inverse Function Properties Evaluate each expression. a. cos 3 cos1 10.732 4
Solution
b. arccos c cos a
bd 12
c. cos1 c cos a
a. cos 3cos1 10.732 4 0.73, since 0.73 is in 3 1, 14 b. arccos c cos a b d , since is in 30, 4 12 12 12
Property I Property II
4 bd 3
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659
4 4 4 bd , since is not in 30, 4 . 3 3 3 This expression cannot be evaluated using Property II. Since 4 2 4 2 2 cos a b cos a b, cos1 c cos a b d cos1 c cos a b d . 3 3 3 3 3 The results can also be verified using a calculator. c. cos1 c cosa
Now try Exercises 35 through 42
For the tangent function, we likewise restrict the domain to obtain a one-to-one function, with the most common choice being a , b. The corresponding range 2 2 Figure 6.14 is . The implicit equation for the inverse tangent y function is x tan y with the explicit forms 3 y tan1x or y arctan x. With the domain and 1 2 y tan x range interchanged, the domain of y tan1x is 2 1 1, 4 , and the range is a , b. The graph of y tan x 2 2 x 1 for x in a , b is shown in red (Figure 6.13), with 2 2 2 1, 4 2 the inverse function y tan1x shown in blue (Figure 6.14). 3
Figure 6.13 y tan x
y
3 2 1
4 , 1
4 , 1
x
1 2 3
The Inverse Tangent Function
Inverse Function Properties for Tangent
For y tan x with domain a , b and 2 2 range , the inverse tangent function is y tan 1x or y arctan x, with domain and range a , b. 2 2 y tan1x if and only if tan y x
EXAMPLE 6
For f 1x2 tan x and g1x2 tan1x:
I. 1 f g2 1x2 tan1tan1x2 x for x in and
II. 1g f 21x2 tan1 1tan x2 x for x in a , b. 2 2
Evaluating Expressions Involving Inverse Tangent Evaluate each expression. a. tan1 1 132 b. arctan 3tan 10.892 4
Solution
B. You’ve just learned how to find and graph the inverse cosine and tangent functions and evaluate related expressions
For x in and y in a , b, 2 2 a. tan1 1 132 , since tan a b 13 3 3 b. arctan 3tan10.892 4 0.89, since 0.89 is in a , b 2 2
Property II
Now try Exercises 43 through 52
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C. Using the Inverse Trig Functions to Evaluate Compositions 1 In the context of angle measure, the expression y sin1a b represents an angle— 2 1 the angle y whose sine is . It seems natural to ask, “What happens if we take the 2 1 tangent of this angle?” In other words, what does the expression tan c sin1a b d 2 mean? Similarly, if y cos a b represents a real number between 1 and 1, how do 3 we compute sin1 c cos a b d ? Expressions like these occur in many fields of study. 3
EXAMPLE 7
Simplifying Expressions Involving Inverse Trig Functions Simplify each expression: 1 a. tan c arcsin a b d b. sin1 c cos a b d 2 3
Solution
WORTHY OF NOTE To verify the result of Example 8, we can actually 8 find the value of sin1a b 17 on a calculator, then take the tangent of the result. See the figure.
1 1 a. In Example 1 we found arcsin a b . Substituting for arcsin a b 2 6 6 2 13 13 1 gives tan a b , showing tan c arcsina b d . 6 3 2 3 1 b. For sin1 c cosa b d , we begin with the inner function cos a b . 3 3 2 1 1 Substituting for cos a b gives sin1a b. With the appropriate checks 2 3 2 1 satisfied we have sin1a b , showing sin1 c cos a b d . 2 6 3 6 Now try Exercises 53 through 64
If the argument is not a special value and we need the Figure 6.15 answer in exact form, we can draw the triangle described by the inner expression using the definition of the trigonometric functions as ratios. In other words, for either 17 8 8 1 y or sin a b, we draw a triangle with hypotenuse 17 17 and side 8 opposite to model the statement, “an angle adj opp 8 whose sine is ” (see Figure 6.15). Using the Pythagorean theorem, we find 17 hyp the adjacent side is 15 and can now name any of the other trig functions.
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EXAMPLE 8
Solution
Using a Diagram to Evaluate an Expression Involving Inverse Trig Functions 8 Evaluate the expression tan c sin1a b d . 17 The expression tan c sin1a where sin1a
8 b d is equivalent to tan , 17
8 b with in 17
c , d (QIV or QI). For 2 2 8 sin 1sin 6 02, must be in 17 QIII or QIV. To satisfy both, must be in QIV. From the figure 8 8 8 we note tan , showing tan c sin1a b d . 15 17 15
15 17
8 (15, 8)
Now try Exercises 65 through 72
These ideas apply even when one side of the triangle is unknown. In other words, x b, since “ is an angle whose we can still draw a triangle for cos1a 2 2x 16 adj x cosine is .” 2 hyp 2x 16
EXAMPLE 9
Using a Diagram to Evaluate an Expression Involving Inverse Trig Functions Evaluate the expression tan c cos1a
x
2x 16 function is defined for the expression given. Solution
Rewrite tan c cos1a cos1a
C. You’ve just learned how to apply the definition and notation of inverse trig functions to simplify compositions
x
x 2x2 16
2
b d . Assume x 7 0 and the inverse
b d as tan , where
b. Draw a triangle with
2x2 16 side x adjacent to and a hypotenuse of 2x2 16. The Pythagorean theorem gives
√x2 16
opp
x
x2 opp2 1 2x2 162 2, which leads to opp2 1x2 162 x2 giving opp 116 4. This shows x 4 b d (see the figure). tan tan c cos1a 2 x 2x 16 Now try Exercises 73 through 76
D. The Inverse Functions for Secant, Cosecant, and Cotangent As with the other functions, we restrict the domain of the secant, cosecant, and cotangent functions to obtain a one-to-one function that is invertible (an inverse can be found). Once again the choice is arbitrary, and some domains are easier to work with than others in more advanced mathematics. For y sec x, we’ve chosen the “most
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Figure 6.16
Figure 6.17
y sec x
y sec 1 x
y
y 3
y sec x y (, 1] [1, )
2
x (, 1] [1, ) y [0, 2 ) ( 2 , ]
1
1
x
x
1
1
2
2
3
3
intuitive” restriction, one that seems more centrally located (nearer the origin). The graph of y sec x is reproduced here, along with its inverse function (see Figures 6.16 and 6.17). The domain, range, and graphs of the functions y csc1x and y cot1x are asked for in the Exercises (see Exercise 100). The functions y sec1x, y csc1x, and y cot1x can be evaluated by noting their relationship to y cos1x, y sin1x, and y tan1x, respectively. For y sec1x, we have
WORTHY OF NOTE While the domains of y cot1x and y tan1x both include all real numbers, evaluating cot1x 1 using tan1a b involves the x restriction x 0. To maintain consistency, the equation cot1x tan1x is often 2 used. The graph of y tan1x is that of 2 y tan1x reflected across the x-axis and shifted 2 units up, with the result identical to the graph of y cot1x.
EXAMPLE 10
y sec1x
2
x [0, 2 ) ( 2 , ]
3
sec y x 1 1 x sec y 1 cos y x 1 y cos1a b x 1 sec1x cos1a b x
definition of inverse function property of reciprocals
reciprocal ratio
rewrite using inverse function notation substitute sec1x for y
1 In other words, to find the value of y sec1x, evaluate y cos1a b, x 1. x 1 Similarly, the expression csc1x can be evaluated using sin1a b, x 1. The x 1 expression cot x can likewise be evaluated using an inverse tangent function: 1 cot1x tan1a b. x
Evaluating an Inverse Trig Function Evaluate using a calculator only if necessary: 2 a. sec1a b. cot1a b b 12 13
Solution
D. You’ve just learned how to find and graph inverse functions for sec x, csc x, and cot x
2 13 b, we evaluate cos1a b. 2 13 Since this is a standard value, no calculator is needed and the result is 30°. 12 b. For cot1a b, find tan1a b on a calculator: 12 12 cot1a b tan1a b 1.3147. 12 a. From our previous discussion, for sec1a
Now try Exercises 77 through 86
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A summary of the highlights from this section follows. Summary of Inverse Function Properties and Compositions 1. For sin x and sin1x,
2. For cos x and cos1x,
sin1 1sin x2 x, for any x in the interval c , d 2 2 3. For tan x and tan1x,
cos1 1cos x2 x, for any x in the interval 30, 4 1 4. To evaluate sec1x, use cos1a b, x 1, x
sin1sin1x2 x, for any x in the interval 31, 1 4
tan1tan1x2 x, for any real number x tan1 1tan x2 x, for any x in the interval a , b 2 2
cos1cos1x2 x, for any x in the interval 31, 1 4
1 csc1x, use sin1a b, x 1 x cot1x, use
tan1x, for all real numbers x 2
E. Applications of Inverse Trig Functions We close this section with one example of the many ways that inverse functions can be applied.
EXAMPLE 11
Using Inverse Trig Functions to Find Viewing Angles Believe it or not, the drive-in Figure 6.18 movie theaters that were so popular in the 1950s are making a comeback! If you arrive early, you can park in 30 ft one of the coveted “center spots,” but if you arrive late, you might have to park very close and strain your neck to 10 ft watch the movie. Surprisingly, the maximum viewing angle x (not the most comfortable viewing angle in this case) is actually very close to the front. Assume the base of a 30-ft screen is 10 ft above eye level (see Figure 6.18). a. Use the inverse function concept to find expressions for angle and angle . b. Use the result of Part (a) to find an expression for the viewing angle . c. Use a calculator to find the viewing angle (to tenths of a degree) for distances of 15, 25, 35, and 45 ft, then to determine the distance x (to tenths of a foot) that maximizes the viewing angle.
Solution
a. The side opposite is 10 ft, and we want to know x — the adjacent side. This 10 10 suggests we use tan , giving tan1a b. In the same way, we find x x 40 that tan1a b. x b. From the diagram we note that , and substituting for and 40 10 directly gives tan1a b tan1a b. x x
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c. After we enter Y1 tan1a
E. You’ve just learned how to solve applications involving inverse functions
40 10 b tan1a b, a graphing calculator gives x x Figure 6.19 approximate viewing angles of 50 35.8 °, 36.2°, 32.9°, and 29.1°, for x 15, 25, 35, and 45 ft, respectively. From these data, we note the distance x that makes a maximum must be between 15 and 35 ft, 0 and using 2nd TRACE (CALC) 4:maximum shows is a maximum of 36.9° at a distance of 20 ft from the screen (see Figure 6.19).
100
0
Now try Exercises 89 through 95
TECHNOLOGY HIGHLIGHT
More on Inverse Functions The domain and range of the inverse functions for sine, cosine, and tangent are preprogrammed into most graphing calculators, making them an ideal tool for reinforcing the concepts involved. In particular, sin x y implies that sin1y x only if 90° y 90° and 1 x 1. For a stark reminder of this fact we’ll use the TABLE feature of the grapher. Begin by using the TBLSET screen ( 2nd WINDOW
Figure 6.20
) to set TblStart 90 with ¢Tbl 30. After placing the
calculator in degree MODE , go to the Y = screen and input Y1 sin x, Y2 sin1x, and Y3 Y2 1Y1 2 (the composition Y2 Y1). Figure 6.21 Then disable Y2 [turn it off—Y3 will read it anyway) so that both Y1 and Y3 will be displayed simultaneously on the TABLE screen. Pressing GRAPH brings up the TABLE shown in Figure 6.20, where we 2nd note the inputs are standard angles, the outputs in Y1 are the (expected) standard values, and the outputs in Y3 return the original standard values. Now scroll upward until 180° is at the top of the X column (Figure 6.21), and note that Y3 continues to return standard angles from the interval 390°, 90°4 —a stark reminder that while the expression sin 150° 0.5, sin1 1sin 150°2 150°. Once again we note that while sin1 1sin 150°2 can be evaluated, it cannot be evaluated directly using the inverse function properties. Use these ideas to complete the following exercises. Exercise 1: Go through an exercise similar to the one here using Y1 cos x and Y2 cos1x. Remember to modify the TBLSET to accommodate the restricted domain for cosine. Exercise 2: Complete parts (a) and (b) using the TABLE from Exercise 1. Complete parts (c) and (d) without a calculator. 1 a. cos 1cos 150°2 1 c. cos 1cos 120°2
1 b. cos 1cos 210°2 1 d. cos 1cos 240°2
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Section 6.5 The Inverse Trig Functions and Their Applications
6.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. All six trigonometric functions fail the test and therefore are not to .
5. Most calculators do not have a key for evaluating an expression like sec15. Explain how it is done using the key.
2. The two most common ways of writing the inverse function for y sin x are and .
6. Discuss/Explain what is meant by the implicit form of an inverse function and the explicit form. Give algebraic and trigonometric examples.
3. The domain for the inverse sine function is and the range is .
4. The domain for the inverse cosine function is and the range is .
DEVELOPING YOUR SKILLS
The tables here show values of sin , cos , and tan for [180 to 210]. The restricted domain used to develop the inverse functions is shaded. Use the
information from these tables to complete the exercises that follow.
y cos
y sin
y tan
sin
sin
cos
cos
tan
tan
180°
0
30°
1 2
180°
1
30°
13 2
180°
0
30°
13 3
150°
1 2
60°
13 2
150°
13 2
60°
1 2
150°
13 3
60°
13
13 2
90°
1
120°
1 2
90°
0
120°
13
90°
—
120°
13 2
90°
0
120°
1 2
90°
—
120°
13
13 2
150°
1 2
60°
1 2
150°
13 2
60°
13
150°
1 2
180°
0
30°
13 2
180°
30°
13 3
180°
0
210°
0
1
210°
0
210°
13
120°
90° 60°
1
30°
0
0
1 2
1
13 2
0
Use the preceding tables to fill in each blank (principal values only). 7.
sin 0 0 sin a b 6
sin10
1 arcsin a b 2 6
8.
sin 0 sin 120°
13 2
5 1 b 6 2
1 sin1a b 2
sin 160°2
sin a b 1 2
sin1 112
sin 180°
sin a
sin10 sin1a
13 b 2
13 13 arcsina b 2 2 arcsin 0 0
13 3
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Evaluate without the aid of calculators or tables, keeping the domain and range of each function in mind. Answer in radians.
12 9. sin1a b 2
13 10. arcsina b 2 1 12. arcsina b 2
11. sin11
Evaluate using a calculator, keeping the domain and range of each function in mind. Answer in radians to the nearest ten-thousandth and in degrees to the nearest tenth.
13. arcsin 0.8892
7 14. arcsina b 8
1 b 15. sin a 17
1 15 b 16. sin a 2
1
12 bd 2
18. sin c arcsina
19. arcsin c sina b d 3 1
21. sin
23. sin 1sin
1
13 bd 2
20. sin1 1sin 30°2 2 22. arcsin c sina bd 3
1sin 135°2
3 24. sin c arcsina b d 5
0.82052
1 27. cos1a b 2
29. cos1 112
cos a b 6 cos 120°
arccos a
33. cos1a
1
cos 1
26.
cos160°2
cos 1 2
13 cos a b 6 2 cos1120°2 cos 122 1
112
1 cos1a b 2 13 cos1a b 2 1 arccos a b 120° 2 1
cos 1
4 32. arccosa b 7
15 b 3
34. cos1a
16 1 b 5
35. arccos c cosa b d 4
36. cos1 1cos 60°2
37. cos 1cos1 0.55602
38. cos c arccos a
39. cos c cos1a 41. cos1 c cosa
12 bd 2
5 bd 4
40. cos c arccos a
8 bd 17
13 bd 2
42. arccos 1cos 44.2°2
Use the tables presented before Exercise 7 to fill in each blank. Convert from radians to degrees as needed.
43.
tan10
tan 0 0 tan a b 3 tan 30°
arctan1132 13 3
tan a b 3
13 b 2 6
1 arccos a b 2
1 2
30. arccos (0)
31. arccos 0.1352
cos11
cos 0 1
13 b 2
Evaluate using a calculator. Answer in radians to the nearest ten-thousandth, degrees to the nearest tenth.
Use the tables given prior to Exercise 7 to fill in each blank (principal values only).
25.
28. arccosa
Evaluate each expression.
1
Evaluate each expression.
17. sin c sin1a
Evaluate without the aid of calculators or tables. Answer in radians.
44.
tan 1150°2
13 b 3
tan1 1 132 13 3
tan 0 tan 120° 13 tan a b 4
arctan a
3
tan1a
13 b 3
tan10
arctan 1132 arctan 1
4
Evaluate without the aid of calculators or tables.
45. tan1a
13 b 3
47. arctan1 132
46. arctan112 48. tan10
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Evaluate using a calculator, keeping the domain and range of each function in mind. Answer in radians to the nearest ten-thousandth and in degrees to the nearest tenth.
49. tan1 12.052
50. tan1 10.32672
29 51. arctana b 21
52. arctan1162
53. sin1 c cosa
69. sin c cos1a
73. cot c arcsina
76. tan c sec1a
29 x2 bd x
12 bd 2
1 58. cot c cos1a b d 2 60. arcsin1cos 135°2
1
64. cos
77.
arcsec 2
sec130°2
2 13
sec12
78.
sec160°2 2 seca
7 2 b 6 13
sec1360°2 1
0.4
10√3
arcseca
3
2 b 13
sec1 112 arcsec 2 arcseca
2 b 13
arcsec 1 sec1 2 60°
sec160°2
20
bd
sec11
sec 0 1 seca b 3
2 c seca b d 3
10
x
Use the tables given prior to Exercise 7 to help fill in each blank.
62. cot(arccos 1)
66.
0.3
Evaluate using a calculator only as necessary. √x 2
6
5 bd 2x
1 56. sec c arcsina b d 2
Use the diagrams below to write the value of: (a) sin , (b) cos , and (c) tan .
67.
74. tan c arcseca
13 bd 2
c csca b d 4
0.5
123 bd 12
212 x2
61. tan1sin112
65.
3x bd 5
11 bd 61
72. tan c cos1a
75. cos c sin1a
Explain why the following expressions are not defined.
63. sin
15 bd 2
54. cos1 c sina b d 3
59. arccos3 sin130°2 4
1
70. cos c sin1a
7 bd 25
2 bd 3
55. tan c arccosa 57. csc c sin1a
Evaluate each expression by drawing a right triangle and labeling the sides.
71. sin c tan1a
Simplify each expression without using a calculator.
36
x
68. √100 9x2
10
3x
667
Section 6.5 The Inverse Trig Functions and Their Applications
79. arccsc 2
80. csc1a
2 b 13
81. cot1 13
82. arccot112
83. arcsec 5.789
84. cot1a
85. sec1 17
86. arccsc 2.9875
17 b 2
WORKING WITH FORMULAS
87. The force normal to an object on an inclined plane: FN mg cos When an object is on an inclined plane, the normal force is the force acting perpendicular to the plane and away from the force of gravity, and is measured in a unit called newtons (N). The magnitude of this force depends on the angle of incline of the plane according to the formula
above, where m is the mass of the object in kilograms and g is the force of gravity (9.8 m/sec2). Given m 225 g, find (a) FN for 15° and 45° and (b) for FN 1 N and FN 2 N. FN
FN 225
g
g
5k
kg
22
g
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88. Heat flow on a cylindrical pipe: T 1T0 TR 2 sina When a circular pipe is Fan exposed to a fan-driven source of heat, the Heat source temperature of the air reaching the pipe is y greatest at the point nearest to the source (see diagram). As you move around the r circumference of the pipe away from the Pipe source, the temperature of the air reaching the x2 y 2 r 2 pipe gradually decreases.
6-54
CHAPTER 6 Trigonometric Identities, Inverses, and Equations
x
y 2x y2 2
b TR; y 0
One possible model of this phenomenon is given by the formula shown, where T is the temperature of the air at a point (x, y) on the circumference of a pipe with outer radius r 2x2 y2, T0 is the temperature of the air at the source, and TR is the surrounding room temperature. Assuming T0 220°F, TR 72° and r 5 cm: (a) Find the temperature of the air at the points (0, 5), (3, 4), (4, 3), (4.58, 2), and (4.9, 1). (b) Why is the temperature decreasing for this sequence of points? (c) Simplify the formula using r 5 and use it to find two points on the pipe’s circumference where the temperature of the air is 113°.
APPLICATIONS
89. Snowcone dimensions: Made in the Shade Snowcones sells a colossal size cone that uses a conical cup holding 20 oz of ice and liquid. The cup is 20 cm tall and has a radius of 5.35 cm. Find the angle formed by a cross-section of the cup.
Exercise 89 5.35 cm
20 cm
90. Avalanche conditions: Winter avalanches occur for many reasons, one being the slope of the mountain. Avalanches Exercise 90 seem to occur most often for slopes between 35° and 60° (snow gradually slides off steeper slopes). The slopes at a local ski resort have an 2000 ft average rise of 2000 ft for each horizontal run of 2559 ft. Is this resort prone to avalanches? 2559 ft Find the angle and respond.
Exercise 91 91. Distance to hole: A popular story on the PGA Tour has Gerry Yang, Tiger H Woods’ teammate at Stanford and occasional caddie, using the Pythagorean theorem to find the distance Tiger needed to reach a 150 yd particular hole. Suppose you notice a marker in the ground stating that M the straight line B Marker 48 yd distance from the marker to the hole (H ) is 150 yd. If your ball B is 48 yd from the marker (M ) and angle BMH is a right angle, determine the angle and your straight line distance from the hole.
92. Ski jumps: At a waterskiing contest on a large lake, skiers use a ramp rising out of the water that is 30 ft long and 10 ft high at the high end. What angle does the ramp make with the lake?
Exercise 92
10 ft
30 ft
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93. Viewing angles for advertising: A 25-ft-wide billboard is erected perpendicular to a straight highway, with the closer edge 50 ft away (see figure). Assume the advertisement on the billboard is most easily read when the viewing angle is 10.5° or more. (a) Use inverse functions to find an expression for the viewing angle . (b) Use a calculator to help determine the distance d (to tenths of a foot) for which the viewing angle is greater than 10.5°. (c) What distance d maximizes this viewing angle?
Exercise 94
2.5 ft
1.5 ft
x
Exercise 93
calculator to help determine the distance x (to tenths of a foot) that maximizes this viewing angle.
50 ft 25 ft
95. Shooting angles and shots on goal: A soccer player is on a breakaway and is dribbling just inside the right sideline toward the opposing goal (see figure). As the defense closes in, she has just a few seconds to decide when to shoot. (a) Use inverse functions to find an expression for the shooting angle . (b) Use a calculator to help determine the distance d (to tenths of a foot) that will maximize the shooting angle for the dimensions shown.
d
Exercise 95 24 ft
70 ft
(goal area)
94. Viewing angles at an art show: At an art show, a painting 2.5 ft in height is hung on a wall so that its base is 1.5 ft above the eye level of an average viewer (see figure). (a) Use inverse functions to find expressions for angles and . (b) Use the result to find an expression for the viewing angle . (c) Use a
(penalty area)
d
(sideline)
EXTENDING THE CONCEPT
Consider a satellite orbiting at an altitude of x mi above the Earth. The distance d from the satellite to the horizon and the length s of the corresponding arc of the Earth are shown in the diagram. Earth
96. To find the distance d we use the formula d 22rx x2. (a) Show how this formula was developed using the
Pythagorean theorem. (b) Find a formula for the angle in terms of r and x, then a formula for the arc length s. d
x s r
r Center of the Earth
97. If the Earth has a radius of 3960 mi and the satellite is orbiting at an altitude of 150 mi, (a) what is the measure of angle ? (b) how much longer is d than s?
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A projectile is any object that is shot, thrown, slung, or otherwise projected and has no continuing source of propulsion. The horizontal and vertical position of the projectile depends on its initial velocity, angle of projection, and height of release (air resistance is neglected). The horizontal position of the projectile is given by x v0cos t, while its vertical position is modeled by y y0 v0sin t 16t2, where y0 is the height it is projected from, is the projection angle, and t is the elapsed time in seconds.
98. A circus clown is shot out of a specially made cannon at an angle of 55°, 55° 10 ft with an initial velocity of 85 ft/sec, and the end of the cannon is 10 ft high. a. Find the position of the safety net (distance from the cannon and height from the ground) if the clown hits the net after 4.3 sec. b. Find the angle at which the clown was shot if the initial velocity was 75 ft/sec and the clown hits a net which is placed 175.5 ft away after 3.5 sec.
6-56 Exercise 99 99. A winter ski jumper leaves the ski-jump with an initial velocity of 70 ft/sec at an 10 70 ft/sec (0, 0). angle of 10°. Assume the jump-off point has coordinates (0, 0). a. What is the horizontal position of the skier after 6 sec? b. What is the vertical position of the skier after 6 sec? c. What diagonal distance (down the mountain side) was traveled if the skier touched down after being airborne for 6 sec?
100. Suppose the domain of y csc x was restricted to x c , 0b ´ a0, d , and the domain of 2 2 y cot x to x 10, 2. (a) Would these functions then be one-to-one? (b) What are the corresponding ranges? (c) State the domain and range of y csc1x and y cot1x. (d) Graph each function.
MAINTAINING YOUR SKILLS 103. (3.7) Solve the inequality f 1x2 0 using zeroes and end behavior given f 1x2 x3 9x.
101. (6.4) Use the triangle given with a double-angle identity to find the exact value of sin122. ␣
√85
89
6
39
 7
80
102. (6.3) Use the triangle given with a sum identity to find the exact value of sin1 2.
104. (2.3) In 2000, Space Tourists Inc. sold 28 low-orbit travel packages. By 2005, yearly sales of the loworbit package had grown to 105. Assuming the growth is linear, (a) find the equation that models this growth 12000 S t 02 , (b) discuss the meaning of the slope in this context, and (c) use the equation to project the number of packages that will be sold in 2010.
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6.6 Solving Basic Trig Equations Learning Objectives In Section 6.6 you will learn how to:
A. Use a graph to gain information about principal roots, roots in [0, 2), and roots in
B. Use inverse functions to solve trig equations for the principal root
In this section, we’ll take the elements of basic equation solving and use them to help solve trig equations, or equations containing trigonometric functions. All of the algebraic techniques previously used can be applied to these equations, including the properties of equality and all forms of factoring (common terms, difference of squares, etc.). As with polynomial equations, we continue to be concerned with the number of solutions as well as with the solutions themselves, but there is one major difference. There is no “algebra” that can transform a function like sin x 12 into x solution. For that we rely on the inverse trig functions from Section 6.5.
A. The Principal Root, Roots in [0, 2 ), and Real Roots
C. Solve trig equations for roots in [0, 2 ) or [0, 360°)
In a study of polynomial equations, making a connection between the degree of an equation, its graph, and its possible roots, helped give insights as to the number, location, and nature of the roots. Similarly, keeping graphs of basic trig functions constantly in mind helps you gain information regarding the solutions to trig equations. When solving trig equations, we refer to the solution found using sin1, cos1, and tan1 as the principal root. You will alternatively be asked to find (1) the principal root, (2) solutions in 3 0, 22 or 3 0°, 360°2, or (3) solutions from the set of real numbers . For convenience, graphs of the basic sine, cosine, and tangent functions are repeated in Figures 6.22 through 6.24. Take a mental snapshot of them and keep them close at hand.
D. Solve trig equations for roots in
E. Solve trig equations using fundamental identities
F. Solve trig equations using graphing technology
Figure 6.22 1
Figure 6.24
Figure 6.23
y
y
y y sin x
1
y cos x
3
y tan x
2 2
2
2
x
1
1
2
1
x 2
1
2
x
2 3
EXAMPLE 1
Visualizing Solutions Graphically Consider the equation sin x 23. Using a graph of y sin x and y 23, a. State the quadrant of the principal root. b. State the number of roots in 30, 22 and their quadrants. c. Comment on the number of real roots.
Solution WORTHY OF NOTE b 2 as Quadrant I or QI, regardless of whether we’re discussing the unit circle or the graph of the function. In Example 1b, the solutions correspond to those found in QI and QII on the unit circle, where sin x is also positive. Note that we refer to a0,
y We begin by drawing a quick sketch of y sin x 2 y sin x 1 and y 3, noting that solutions will occur where ys the graphs intersect. a. The sketch shows the principal root occurs 2 2 x between 0 and in QI. 1 2 b. For 3 0, 22 we note the graphs intersect twice and there will be two solutions in this interval. c. Since the graphs of y sin x and y 23 extend infinitely in both directions, they will intersect an infinite number of times — but at regular intervals! Once a root is found, adding integer multiples of 2 (the period of sine) to this root will give the location of additional roots.
Now try Exercises 7 through 10 6-57
671
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A. You’ve just learned how to use a graph to gain information about principal roots, roots in [0, 2 ), and roots in
When this process is applied to the equation tan x 2, the graph shows the principal root occurs between and 0 in QIV (see Figure 6.25). In the 2 interval 30, 22 the graphs intersect twice, in QII and QIV where tan x is negative (graphically—below the x-axis). As in Example 1, the graphs continue infinitely and will intersect an infinite number of times— but again at regular intervals! Once a root is found, adding integer multiples of (the period of tangent) to this root will give the location of other roots.
Figure 6.25 y 3
y tan x
2 1 2
y 2
1
2
x
2 3
B. Inverse Functions and Principal Roots To solve equations having a single variable term, the basic goal is to isolate the variable term and apply the inverse function or operation. This is true for algebraic equations like 2x 1 0, 2 1x 1 0, or 2x2 1 0, and for trig equations like 2 sin x 1 0. In each case we would add 1 to both sides, divide by 2, then apply the appropriate inverse. When the inverse trig functions are applied, the result is only the principal root and other solutions may exist depending on the interval under consideration.
EXAMPLE 2
Finding Principal Roots Find the principal root of 13 tan x 1 0.
Solution
We begin by isolating the variable term, then apply the inverse function. 13 tan x 1 0
B. You’ve just learned how to use inverse functions to solve trig equations for the principal root
tan x
Table 6.2
sin
cos
0
0
1
6 4
1 2 12 2
13 2 12 2
3
13 2
1 2
1
0
2 2 3
13 2
3 4
12 2
12 2
5 6
1 2
0
1 2
13 2
1
1 13
tan1 1tan x2 tan1a x
given equation
6
add 1 and divide by 13
1 b 13
apply inverse tangent to both sides
result (exact form)
Now try Exercises 11 through 28
Equations like the one in Example 2 demonstrate the need to be very familiar with the functions of a special angle. They are frequently used in equations and applications to ensure results don’t get so messy they obscure the main ideas. For convenience, the values of sin and cos are repeated in Table 6.2 for x 3 0, 4 . Using symmetry and the appropriate sign, the table can easily be extended to all values in 30, 22 . Using the reciprocal and ratio relationships, values for the other trig functions can also be found.
C. Solving Trig Equations for Roots in [0, 2 ) or [0, 360) To find multiple solutions to a trig equation, we simply take the reference angle of the principal root, and use this angle to find all solutions within a specified range. A mental image of the graph still guides us, and the standard table of values (also held in memory) allows for a quick solution to many equations.
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Section 6.6 Solving Basic Trig Equations
EXAMPLE 3
Finding Solutions in [0, 2)
Solution
Isolate the variable term, then apply the inverse function.
For 2 cos 12 0, find all solutions in 30, 22. 2 cos 12 0 cos
WORTHY OF NOTE Note how the graph of a trig function displays the information regarding quadrants. From the graph of y cos x we “read” that cosine is negative in QII and QIII [the lower “hump” of the graph is below the x-axis in 1/2, 3/22 ] and positive in QI and QIV [the graph is above the x-axis in the intervals 10, /22 and 13/2, 22 ].
given equation
12 2
subtract 12 and divide by 2
cos1 1cos 2 cos1a
12 b 2
3 4
apply inverse cosine to both sides
result
3 as the principal root, we know r . 4 4 Since cos x is negative in QII and QIII, the second 5 . The second solution could also have solution is 4 been found from memory, recognition, or symmetry on the unit circle. Our (mental) graph verifies these are the only solutions in 3 0, 22 . With
1
2
y y cos x
2
x
√2
1
y 2
Now try Exercises 29 through 34 EXAMPLE 4
Finding Solutions in [0, 2)
Solution
As with the other equations having a single variable term, we try to isolate this term or attempt a solution by factoring.
For tan2x 1 0, find all solutions in 30, 22 .
tan2x 1 0 2tan2x 11 tan x 1
given equation add 1 to both sides and take square roots result
The algebra gives tan x 1 or tan x 1 and we solve each equation independently. tan x 1 tan1 1tan x2 tan1 112 x 4
tan x 1 tan1 1tan x2 tan1 112 x 4
is in the 4 specified interval. With tan x positive in QI and 5 . While x is QIII, a second solution is 4 4 not in the interval, we still use it as a reference angle in QII and QIV (for tan x 12 and find 3 7 . The four solutions the solutions x and 4 4 3 5 7 , , which is supported are x , , and 4 4 4 4 by the graph shown. Of the principal roots, only x
apply inverse tangent principal roots
y 3
y tan x
2
y1
y 1
1
2
1 2 3
Now try Exercises 35 through 42
x
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For any trig function that is not equal to a standard value, we can use a calculator to approximate the principal root or leave the result in exact form, and apply the same ideas to this root to find all solutions in the interval.
EXAMPLE 5
Finding Solutions in [0, 360°)
Solution
Use a u-substitution to simplify the equation and help select an appropriate strategy. For u cos , the equation becomes 3u2 u 2 0 and factoring seems the best approach. The factored form is 1u 12 13u 22 0, with solutions u 1 and u 23. Re-substituting cos for u gives
Find all solutions in 30°, 360°2 for 3 cos2 cos 2 0.
cos 1
cos
equations from factored form
2 cos1 1cos 2 cos1a b 3 48.2°
cos1 1cos 2 cos1 112 180°
C. You’ve just learned how to solve trig equations for roots in [0, 2 ) or [0, 360°)
2 3
Both principal roots are in the specified interval. The first is quadrantal, the second was found using a calculator and is approximately 48.2°. With cos x positive in QI and QIV, a second solution is 1360 48.22° 311.8°. The three solutions are 48.2°, 180°, and 311.8° although only 180° is exact.
apply inverse cosine principal roots y y cos x
1
360
ys
180
180 1
360
x
y 1
Now try Exercises 43 through 50
D. Solving Trig Equations for All Real Roots () As we noted, the intersections of a trig function with a horizontal line occur at regular, predictable intervals. This makes finding solutions from the set of real numbers a simple matter of extending the solutions we found in 3 0, 22 or 3 0°, 360°2. To illustrate, consider 3 the solutions to Example 3. For 2 cos 12 0, we found the solutions 4 5 . For solutions in , we note the “predictable interval” between roots is and 4 identical to the period of the function. This means all real solutions will be represented by 3 5 2k and 2k, k (k is an integer). Both are illustrated in 4 4 Figures 6.26 and 6.27 with the primary solution indicated with a “*.”
Figure 6.26 y
f 2k
y cos
1
43 2
Figure 6.27
2 3 4
etc.
etc. 2
s 4
x
2 h
43 2
2 3 4
etc.
x
etc. 2
z 4
y cos x
1
2 f
y
h 2k
z 4
2 f
2 h
m 4
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Section 6.6 Solving Basic Trig Equations
EXAMPLE 6
Finding Solutions in Find all real solutions to 13 tan x 1 0.
Solution
y
y tan x z
etc.
In Example 2 we found the principal root was x . Since the 3 6 tangent function has a period of , adding integer multiples of to this root will identify all solutions: x k, k , as illustrated here. 6
3
l
2
k
'
m
etc. 2
3
y 0.58
x
3
Now try Exercises 51 through 56
These fundamental ideas can be extended to many different situations. When asked to find all real solutions, be sure you find all roots in a stipulated interval before naming solutions by applying the period of the function. For instance, cos x 0 has two 3 d , which we can quickly extend to find all real solutions in 3 0, 22 c x and x 2 2 roots. But using x cos10 or a calculator limits us to the single (principal) root 3 x , and we’d miss all solutions stemming from . Note that solutions involving 2 2 multiples of an angle (or fractional parts of an angle) should likewise be “handled with care,” as in Example 7. EXAMPLE 7
Finding Solutions in
Solution
Since we have a common factor of cos x, we begin by rewriting the equation as cos x 3 2 sin12x2 1 4 0 and solve using the zero factor property. The resulting equations are cos x 0 and 2 sin12x2 1 0 S sin 12x2 12.
WORTHY OF NOTE When solving trig equations that involve arguments other than a single variable, a u-substitution is sometimes used. For Example 7, substituting u for 2x gives the 1 equation sin u , making 2 it “easier to see” that u 6 1 (since is a special value), 2 and therefore 2x and 6 x . 12
D. You’ve just learned how to solve trig equations for roots in
Find all real solutions to 2 sin 12x2 cos x cos x 0.
cos x 0
sin 12x2
In 30, 22, cos x 0 has solutions x
1 2
equations from factored form
3 and x , giving x 2k 2 2 2
3 2k as solutions in . Note these can actually be combined and 2 1 written as x k, k . The solution process for sin 12x2 yields 2 2 5 2x and 2x . Since we seek all real roots, we first extend each solution 6 6 by 2k before dividing by 2, otherwise multiple solutions would be overlooked. and x
2k 6 x k 12
2x
5 2k 6 5 x k 12
2x
solutions from sin 12x2 12 ; k divide by 2
Now try Exercises 57 through 66
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E. Trig Equations and Trig Identities In the process of solving trig equations, we sometimes employ fundamental identities to help simplify an equation, or to make factoring or some other method possible. EXAMPLE 8
Solving Trig Equations Using an Identity
Solution
With a mixture of functions, exponents, and arguments, the equation is almost impossible to solve as it stands. But we can eliminate the sine function using the identity cos 122 cos2 sin2, leaving a quadratic equation in cos x.
Find all solutions in 30°, 360°2 for cos 122 sin2 3 cos 1.
cos122 sin2 3 cos 1 cos2 sin2 sin2 3 cos 1 cos2 3 cos 1 cos2 3 cos 1 0
given equation substitute cos2 sin2 for cos122 combine like terms subtract 1
Let’s substitute u for cos to give us a simpler view of the equation. This gives u2 3u 1 0, which is clearly not factorable over the integers. Using the quadratic formula with a 1, b 3, and c 1 gives
E. You’ve just learned how to solve trig equations using fundamental identities
3 2132 2 4112 112 u quadratic formula in u 2112 3 113 simplified 2 To four decimal places we have u 3.3028 and u 0.3028. To answer in terms of the original variable we re-substitute cos for u, realizing that cos 3.3028 has no solution, so solutions in 3 0°, 360°2 must be provided by cos 0.3028 and occur in QII and QIII. The solutions are cos1 10.30282 107.6° and 360° 107.6° 252.4° to the nearest tenth of a degree. Now try Exercises 67 through 82
F. Trig Equations and Graphing Technology A majority of the trig equations you’ll encounter in your studies can be solved using the ideas and methods presented here. But there are some equations that cannot be solved using standard methods because they mix polynomial functions (linear, quadratic, and so on) that can be solved using algebraic methods, with what are called transcendental functions (trigonometric, logarithmic, and so on). By definition, transcendental functions are those that transcend the reach of standard algebraic methods. These kinds of equations serve to highlight the value of graphing and calculating technology to today’s problem solvers. EXAMPLE 9
Solving Trig Equations Using Technology Use a graphing calculator in radian mode to find all real roots of 3x 2 sin x 2 0. Round solutions to four decimal places. 5
Solution
When using graphing technology our initial concern is the size of the viewing window. After carefully entering the equation on the Y = screen, we note the term 2 sin x will never be larger than 2 or less than 2 for any real number x. On the 3x other hand, the term becomes larger for larger values of x, which would seem 5 3x to cause 2 sin x to “grow” as x gets larger. We conclude the standard 5 window is a good place to start, and the resulting graph is shown in Figure 6.28.
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Section 6.6 Solving Basic Trig Equations
Figure 6.28
Figure 6.29
10
10
10
0
10
10
F. You’ve just learned how to solve trig equations using graphing technology
20
10
From this screen it appears there are three real roots, but to be sure none are hidden to the right, we extend the Xmax value to 20 (Figure 6.29). Using 2nd TRACE CALC 2:zero, we follow the prompts and enter a left bound of 0 (a number to the left of the zero) and a right bound of 2 (a number to the right of the zero—see Figure 6.29). If you can visually approximate the root, the calculator prompts you for a GUESS, otherwise just bypass the request by pressing ENTER . The smallest root is approximately x 0.8435. Repeating this sequence we find the other roots are x 3.0593 and x 5.5541. Now try Exercises 83 through 88
TECHNOLOGY HIGHLIGHT
Solving Equations Graphically Some equations are very difficult to solve analytically, and even with the use of a graphing calculator, a strong combination of analytical skills with technical skills is required to state the solution set. Consider 1 1 the equation 5 sin a xb 5 cot a xb and solutions in 32, 22 . There appears to be no quick analytical 2 2 solution, and the first attempt at a graphical solution holds Figure 6.30 1 4 some hidden surprises. Enter Y1 5 sin a xb 5 and 2 1 Y2 on the Y = screen. Pressing ZOOM 7:ZTrig gives tan1 12x2 the screen in Figure 6.30, where we note there are at least two and possibly three solutions, depending on how the sine graph intersects the cotangent graph. We are also uncertain as to whether the graphs intersect again between and . 2 2 Increasing the maximum Y-value to Ymax 8 shows they do indeed. But once again, are there now three or four solutions? In situations like this it may be helpful to use the zeroes method for solving graphically. On the Y = screen, disable Y1 and Y2 and enter Y3 as Y1 Y2. Pressing ZOOM 7:ZTrig at this point clearly shows that there are four solutions in this interval CALC (Figure 6.31), which can easily be found using 2nd 2:zero: x 5.7543, 4.0094, 3.1416, and 0.3390. Use these ideas to find solutions in 32, 22 for the exercises that follow. Exercise 1:
11 sin x2 2 cos 12x2 4 cos x11 sin x2
Exercise 2:
x 4 sin x 2 cos2 a b 2
2
2
4
Figure 6.31 4
2
2
4
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CHAPTER 6 Trigonometric Identities, Inverses, and Equations
6.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if necessary.
4. For tan x 1, the principal root is solutions in 30, 22 are and and an expression for all real roots is
1. For simple equations, a mental graph will tell us the quadrant of the root, the number of roots in , and show a pattern for all roots.
12 the principal root is 2 solutions in 3 0, 22 are and and an expression for all real roots is ; k .
, .
3 and 4 y cos x have two solutions in 30, 22, even though the period of y tan x is , while the period of y cos x is 2.
5. Discuss/Explain/Illustrate why tan x
2. Solving trig equations is similar to solving algebraic equations, in that we first the variable term, then apply the appropriate function. 3. For sin x
,
1 has four solutions in 2 30, 22 . Explain how these solutions can be viewed as the vertices of a square inscribed in the unit circle.
6. The equation sin2x
, , and
DEVELOPING YOUR SKILLS 3 7. For the equation sin x and the graphs of 4 3 y sin x and y given, state (a) the quadrant 4 of the principal root and (b) the number of roots in 3 0, 22. Exercise 7 1
2
Exercise 8
y y sin x
1
2
2 x
y 1
34
y y cos x 3
yE
2 x
1
8. For the equation cos x 34 and the graphs of y cos x and y 34 given, state (a) the quadrant of the principal root and (b) the number of roots in 30, 22.
9. Given the graph y tan x shown here, draw the horizontal line y 1.5 and then for tan x 1.5 state (a) the quadrant of the principal root and (b) the number of roots in 3 0, 22.
Exercise 9 3
Exercise 10
y y tan x
1
y
y sec x
2
2
2
3
1
2 x
1
2 3 21 2
2
2
3
3
2
3 2 x 2
10. Given the graph of y sec x shown, draw the horizontal line y 54 and then for sec x 54 , state (a) the quadrant of the principal root and (b) the number of roots in 3 0, 22. 11. The table that follows shows in multiples of 6 4 between 0 and , with the values for sin given. 3 Complete the table without a calculator or references using your knowledge of the unit circle, the signs of f 12 in each quadrant, memory/recognition, sin tan , and so on. cos
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Section 6.6 Solving Basic Trig Equations
Exercise 11
sin
0
0
0
1
6
1 2
4
12 2
3
13 2
2
0
2
1
3 4
2 3
13 2
5 6
1 2
5 4
7 6 4 3
cos
Exercise 12 tan
sin
cos tan
12 2
1
38. 3 sec2x 6
39. 4 csc2x 8
40. 6 13 cos2x 3 13
41. 4 12 sin2x 4 12
42.
679
5 4 2 cos2x 3 6 3
Solve the following equations by factoring. State all real solutions in radians using the exact form where possible and rounded to four decimal places if the result is not a standard value.
43. 3 cos2 14 cos 5 0
12 2
44. 6 tan2 2 13 tan 0
0
3 2
0
46. 2 sin2x 7 sin x 4 47. sec2x 6 sec x 16
1 2
7 4
12 2
2
1
13 2
between 0 and 4 2, with the values for cos given. Complete the table without a calculator or references using your knowledge of the unit circle, the signs of f 12 in sin each quadrant, memory/recognition, tan , cos and so on.
12. The table shows in multiples of
Find the principal root of each equation.
45. 2 cos x sin x cos x 0 48. 2 cos3x cos2x 0
49. 4 sin2x 1 0
50. 4 cos2x 3 0 Find all real solutions. Note that identities are not required to solve these exercises.
51. 2 sin x 12
52. 2 cos x 1
53. 4 cos x 212
54. 4 sin x 2 13
55. 13 tan x 13
56. 213 tan x 2
57. 6 cos12x2 3
58. 2 sin13x2 12
59. 13 tan12x2 13
60. 213 tan13x2 6
1 61. 213 cosa xb 213 3
13. 2 cos x 12
14. 2 sin x 1
15. 4 sin x 2 12
16. 4 cos x 213
1 62. 8 sina xb 4 13 2
17. 13 tan x 1
18. 213 tan x 2
19. 2 13 sin x 3
20. 312 csc x 6
63. 12 cos x sin12x2 3 cos x 0
21. 6 cos x 6
22. 4 sec x 8
7 7 23. cos x 8 16
5 5 24. sin x 3 6
25. 2 4 sin
26. tan x 0
27. 513 10 cos
28. 4 13 4 tan
Find all solutions in [0, 2 ).
29. 9 sin x 3.5 1
30. 6.2 cos x 4 7.1
31. 8 tan x 713 13 1 3 7 32. sec x 2 4 4
2 5 3 33. cot x 3 6 2
34. 110 sin x 5513 35. 4 cos2x 3 36. 4 sin2x 1
37. 7 tan2x 21
64. 13 sin x tan12x2 sin x 0 65. cos13x2 csc12x2 2 cos13x2 0
66. 13 sin12x2 sec 12x2 2 sin12x2 0 Solve each equation using calculator and inverse trig functions to determine the principal root (not by graphing). Clearly state (a) the principal root and (b) all real roots.
67. 3 cos x 1
68. 5 sin x 2
69. 12 sec x 3 7
70. 13 csc x 2 11
71.
1 1 sin122 2 3
73. 5 cos122 1 0
72.
2 1 cos122 5 4
74. 6 sin122 3 2
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Solve the following equations using an identity. State all real solutions in radians using the exact form where possible and rounded to four decimal places if the result is not a standard value.
75. cos2x sin2x
1 2
1 1 77. 2 cosa xbcos x 2 sina xbsin x 1 2 2 78. 12 sin 12x2 cos 13x2 12 sin13x2cos12x2 1
80. 1cos sin 2 2 2
81. cos122 2 sin2 3 sin 0 82. 3 sin122 cos2 122 1 0
83. 5 cos x x 3
85. cos 12x2 x 3 2
87. x2 sin12x2 1
84. 3 sin x x 4
86. sin2 12x2 2x 1
88. cos12x2 x2 5
WORKING WITH FORMULAS
89. Range of a projectile: R
5 2 v sin122 49
The distance a projectile travels is called its range and is modeled by the formula shown, where R is the range in meters, v is the initial velocity in meters per second, and is the angle of release. Two friends are standing 16 m apart playing catch. If the first throw has an initial velocity of 15 m/sec, what two angles will insure the ball travels the 16 m between the friends?
79. 1cos sin 2 2 1
Find all roots in [0, 2 ) using a graphing calculator. State answers in radians rounded to four decimal places.
76. 4 sin2x 4 cos2x 213
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90. Fine-tuning a golf swing: 1club head to shoulder2 2 1club length2 2 1arm length2 2 2 1club length21arm length2cos A golf pro is taking 37 in. specific measurements on a client’s swing to help 39 in. improve her game. If the angle is too small, the ball is hit late and “too 27 in. thin” (you top the ball). If is too large, the ball is hit early and “too fat” (you scoop the ball). Approximate the angle formed by the club and the extended (left) arm using the given measurements and formula shown.
APPLICATIONS
Acceleration due to gravity: When a steel ball is released down an inclined plane, the rate of the ball’s acceleration depends on the angle of incline. The acceleration can be approximated by the formula A12 9.8 sin , where is in degrees and the acceleration is measured in meters per second/per second. To the nearest tenth of a degree,
91. What angle produces an acceleration of 0 m/sec2 when the ball is released? Explain why this is reasonable. 92. What angle produces an acceleration of 9.8 m/sec2? What does this tell you about the acceleration due to gravity? 93. What angle produces an acceleration of 5 m/sec2? Will the angle be larger or smaller for an acceleration of 4.5 m/sec2? 94. Will an angle producing an acceleration of 2.5 m/sec2 be one-half the angle required for an acceleration of 5 m/sec2? Explore and discuss.
Exercises 95 to 98 Snell’s law states that when a ray of light passes light incidence reflection from one medium into another, the sine of the angle of incidence a varies directly with the refraction sine of the angle of new medium refraction b (see the figure). This phenomenon sin() k sin() is modeled by the formula sin k sin , where k is called the index of refraction. Note the angle is the angle at which the light strikes the surface, so that 90° . Use this information to work Exercises 95 to 98.
95. A ray of light passes from air into water, striking the water at an angle of 55°. Find the angle of incidence and the angle of refraction , if the index of refraction for water is k 1.33.
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96. A ray of light passes from air into a diamond, striking the surface at an angle of 75°. Find the angle of incidence and the angle of refraction , if the index of refraction for a diamond is k 2.42. 97. Find the index of refraction for ethyl alcohol if a beam of light strikes the surface of this medium at an angle of 40° and produces an angle of refraction 34.3°. Use this index to find the angle of incidence if a second beam of light created an angle of refraction measuring 15°. 98. Find the index of refraction for rutile (a type of mineral) if a beam of light strikes the surface of this medium at an angle of 30° and produces an angle of refraction 18.7°. Use this index to find the angle of incidence if a second beam of light created an angle of refraction measuring 10°. 99. Roller coaster design: As part of a science fair project, Hadra Loading platform builds a scale model of a roller coaster using the equation 1 y 5 sina xb 7, where y is the height of the 2 model in inches and x is the distance from the “loading platform” in inches. (a) How high is the platform? (b) What distances from the platform does the model attain a height of 9.5 in.? 100. Company logo: Part of the logo for an engineering firm was modeled by a cosine function. The logo was then manufactured in steel and installed on the entrance marquee of the home office. The position and size of the logo is modeled by the function y 9 cos x 15, where y is the height of the graph above the base of the marquee in inches and
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Section 6.6 Solving Basic Trig Equations
x represents the distance from the edge of the marquee. Assume the graph begins flush with the edge. (a) How far above the base is the beginning of the cosine graph? (b) What distances from the edge does the graph attain a height of 19.5 in.?
Entrance marquee
International Engineering
Geometry applications: Solve Exercises 101 and 102 graphically using a calculator. For Exercise 101, give in radians rounded to four decimal places. For Exercise 102, answer in degrees to the nearest tenth of a degree.
101. The area of a circular segment (the shaded portion shown) is given by the 1 formula A r2 1 sin 2, 2 where is in radians. If the circle has a radius of 10 cm, find the angle that gives an area of 12 cm2.
r
r
Exercise 102 b
102. The perimeter of a trapezoid with parallel sides B and b, h altitude h, and base angles and is given by the formula B P B b h1csc csc 2. If b 30 m, B 40 m, h 10 m, and 45°, find the angle that gives a perimeter of 105 m.
EXTENDING THE CONCEPT
103. Find all real solutions to 5 cos x x x in two ways. First use a calculator with Y1 5 cos x x and Y2 x to determine the regular intervals between points of intersection. Second, simplify by adding x to both sides, and draw a quick sketch of the result to locate x-intercepts. Explain why both methods give the same result, even though the first presents you with a very different graph.
104. Once the fundamental ideas of solving a given family of equations is understood and practiced, a student usually begins to generalize them—making the numbers or symbols used in the equation irrelevant. (a) Use the inverse sine function to find the principal root of y A sin1Bx C2 D, by solving for x in terms of y, A, B, C, and D. (b) Solve the following equation using the techniques addressed in this section, and then using the “formula” from Part (a). Do the results agree? 1 5 2 sin a x b 3. 2 4
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MAINTAINING YOUR SKILLS
105. (1.4) Use a substitution to show that x 2 i is a zero of f 1x2 x2 4x 5. 106. (3.1) Currently, tickets to productions of the Shakespeare Community Theater cost $10.00, with an average attendance of 250 people. Due to market research, the theater director believes that for each $0.50 reduction in price, 25 more people will attend. What ticket price will maximize the theater’s revenue? What will the average attendance projected to become at that price?
107. (6.5) Evaluate without using a calculator: 1 a. tan c sin1a b d b. sin 3tan1 112 4 2 108. (5.1) The largest Ferris wheel in the world, located in Yokohama, Japan, has a radius of 50 m. To the nearest hundredth of a meter, how far does a seat on the rim travel as the wheel turns through 292.5°?
6.7 General Trig Equations and Applications Learning Objectives In Section 6.7 you will learn how to:
A. Use additional algebraic techniques to solve trig equations
B. Solve trig equations using multiple angle, sum and difference, and sumto-product identities
At this point you’re likely beginning to understand the true value of trigonometry to the scientific world. Essentially, any phenomenon that is cyclic or periodic is beyond the reach of polynomial (and other) functions, and may require trig for an accurate understanding. And while there is an abundance of trig applications in oceanography, astronomy, meteorology, geology, zoology, and engineering, their value is not limited to the hard sciences. There are also rich applications in business and economics, and a growing number of modern artists are creating works based on attributes of the trig functions. In this section, we try to place some of these applications within your reach, with the exercise set offering an appealing variety from many of these fields.
C. Solve trig equations of the form A sin1Bx C2 D k
A. Trig Equations and Algebraic Methods
D. Use a combination of skills to model and solve a variety of applications
We begin this section with a follow-up to Section 6.6, by introducing trig equations that require slightly more sophisticated methods to work out a solution.
EXAMPLE 1
Solving a Trig Equation by Squaring Both Sides
Solution
Our first instinct might be to rewrite the equation in terms of sine and cosine, but that simply leads to a similar equation that still has two different functions 3 13 cos x sin x 1 4. Instead, we square both sides and see if the Pythagorean identity 1 tan2x sec2x will be of use. Prior to squaring, we separate the functions on opposite sides to avoid the mixed term 2 tan x sec x.
Find all solutions in 30, 22: sec x tan x 13.
sec x tan x 13 1sec x2 2 1 13 tan x2 2 sec2x 3 2 13 tan x tan2x
given equation subtract tan x and square result
Since sec2x 1 tan2x, we substitute directly and obtain an equation in tangent alone. 1 tan2x 3 2 13 tan x tan2x 2 213 tan x 1 tan x 13 tan x 7 0 in QI and QIII
substitute 1 tan2x for sec2x simplify solve for tan x
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7 [QI] and [QIII]. Since squaring an 6 6 equation sometimes introduces extraneous roots, both should be checked in the original equation. The check shows only x is a solution. 6 The proposed solutions are x
Now try Exercises 7 through 12
Here is one additional example that uses a factoring strategy commonly employed when an equation has more than three terms.
EXAMPLE 2
Solving a Trig Equation by Factoring
Solution
The four terms in the equation share no common factors, so we attempt to factor by grouping. We could factor 2 cos from the first two terms but instead elect to group the sin2 terms and begin there.
Find all solutions in 3 0°, 360°2: 8 sin2 cos 2 cos 4 sin2 1 0.
8 sin2 cos 2 cos 4 sin2 1 18 sin2 cos 4 sin22 12 cos 12 4 sin212 cos 12 112 cos 12 12 cos 12 14 sin2 12
0 0 0 0
given equation rearrange and group terms remove common factors remove common binomial factors
Using the zero factor property, we write two equations and solve each independently. 2 cos 1 0 2 cos 1 cos
A. You’ve just learned how to use additional algebraic techniques to solve trig equations
1 2
cos 7 0 in QI and QIV 60°, 300°
4 sin2 1 0 1 sin2 4 sin
resulting equations isolate variable term
1 2
solve
sin 7 0 in QI and QII sin 6 0 in QIII and QIV 30°, 150°, 210°, 330°
solutions
Initially factoring 2 cos from the first two terms and proceeding from there would have produced the same result. Now try Exercises 13 through 16
B. Solving Trig Equations Using Various Identities To solve equations effectively, a student should strive to develop all of the necessary “tools.” Certainly the underlying concepts and graphical connections are of primary importance, as are the related algebraic skills. But to solve trig equations effectively we must also have a ready command of commonly used identities. Observe how Example 3 combines a double-angle identity with factoring by grouping.
EXAMPLE 3
Using Identities and Algebra to Solve a Trig Equation
Solution
Noting that one of the terms involves a double angle, we attempt to replace that term to make factoring a possibility. Using the double identity for sine, we have
Find all solutions in 30, 22: 3 sin12x2 2 sin x 3 cos x 1. Round solutions to four decimal places as necessary.
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3 12 sin x cos x2 2 sin x 3 cos x 1 16 sin x cos x 2 sin x2 13 cos x 12 0 2 sin x 13 cos x 12 113 cos x 12 0 13 cos x 12 12 sin x 12 0
substitute 2 sin x cos x for sin (2x) set equal zero and group terms factor using 3 cos x 1 common binomial factor
Use the zero factor property to solve each equation independently. 3 cos x 1 0 1 cos x 3 cos x 6 0 in QII and QIII B. You’ve just learned how to solve trig equations using multiple angle, sum and difference, and sum-to-product identities
x 1.9106, 4.3726
resulting equations 2 sin x 1 0 1 isolate variable term sin x 2 sin x 7 0 in QI and QII 5 x , solutions 6 6
Should you prefer the exact form, the solutions from the cosine equation could be 1 1 written as x cos1a b and x 2 cos1a b. 3 3 Now try Exercises 17 through 26
C. Solving Equations of the Form A sin (Bx C) D k You may remember equations of this form from Section 5.7. They actually occur quite frequently in the investigation of many natural phenomena and in the modeling of data from a periodic or seasonal context. Solving these equations requires a good combination of algebra skills with the fundamentals of trig.
EXAMPLE 4
Solution
Solving Equations That Involve Transformations Given f 1x2 160 sina x b 320 and x 30, 22 , for what real numbers x 3 3 is f (x) less than 240?
We reason that to find values where f 1x2 6 240, we should begin by finding values where f 1x2 240. The result is 160 sin a x b 320 240 equation 3 3 sin a x b 0.5 subtract 320 and divide by 160; isolate variable term 3 3 At this point we elect to use a u-substitution for a x b 1x 12 to obtain 3 3 3 a “clearer view.” sin u 0.5
substitute u for
1x 12 3
sin u 6 0 in QIII and QIV u
7 6
u
11 6
solutions in u
1x 12 for u and solve. 3 11 re-substitute 1x 12 for u 1x 12 3 3 6 11 3 x1 multiply both sides by 2 x 4.5 solutions
To complete the solution we re-substitute 7 1x 12 3 6 7 x1 2 x 2.5
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We now know f 1x2 240 when x 2.5 and x 4.5 but when will f (x) be less C. You’ve just learned how to solve trig equations of the form A sin 1Bx C2 D k
than 240? By analyzing the equation, we find the function has period of 2 P 6 and is shifted to the left units. This would indicate the graph peaks 3 3 early in the interval 3 0, 22 with a “valley” in the interior. We conclude f 1x2 6 240 in the interval (2.5, 4.5).
Now try Exercises 27 through 30
GRAPHICAL SUPPORT Support for the result in Example 4 can be
500
obtained by graphing the equation over the specified interval. Enter Y1 160 sin a x b 320 on the Y = 3 3 screen, then Y2 240. After locating points of
0
intersection, we note the graphs indeed verify
2
0
that in the interval 30, 22, f 1x2 6 240 for x 12.5, 4.52.
There is a mixed variety of equation types in Exercises 31 through 40.
D. Applications Using Trigonometric Equations Figure 6.32
Using characteristics of the trig functions, we can often generalize and extend many of the formulas that are familiar to you. For example, the formulas for the volume of a right circular cylinder and a right circular cone are well known, but what about the volume of a nonright figure (see Figure 6.32)? Here, trigonometry provides the answer, as the most general volume formula is V V0 sin , where V0 is a “standard” volume formula and is the complement of angle of deflection (see Exercises 43 and 44). As for other applications, consider the following from the environmental sciences. Natural scientists are very interested in the discharge rate of major rivers, as this gives an indication of rainfall over the inland area served by the river. In addition, the discharge rate has a large impact on the freshwater and saltwater zones found at the river’s estuary (where it empties into the sea).
␣ h
EXAMPLE 5
Solving an Equation Modeling the Discharge Rate of a River For May through December, the discharge rate of the Ganges River (Bangladesh) 2 b 17,760 where t 1 can be modeled by D 1t2 16,580 sina t 3 3 represents May 1, and D(t) is the discharge rate in m3/sec. Source: Global River Discharge Database Project; www.rivdis.sr.unh.edu.
a. What is the discharge rate in mid-October? b. For what months (within this interval) is the discharge rate over 26,050 m3/sec?
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Solution
a. To find the discharge rate in mid-October we simply evaluate the function at t 6.5: 2 b 17,760 D 1t2 16,580 sin a t 3 3 2 d 17,760 D 16.52 16,580 sin c 16.52 3 3 1180
given function
substitute 6.5 for t compute result on a calculator
In mid-October the discharge rate is 1180 m3/sec. b. We first find when the rate is equal to 26,050 m3/sec: D1t2 26,050. 2 b 17,760 26,050 16,580 sin a t 3 3 2 b 0.5 sin a t 3 3
substitute 26,050 for D(t )
subtract 17,760; divide by 16,580
2 b we obtain the equation Using a u-substitution for a t 3 3 0.5 sin u sin u 7 0 in QI and QII u
6
u
5 6
solutions in u
2 b 1t 22 for u and solve. To complete the solution we re-substitute a t 3 3 3 1t 22 3 6 t 2 0.5 t 2.5
5 1t 22 3 6 t 2 2.5 t 4.5
1t 22 for u 3 3 multiply both sides by solutions re-substitute
The Ganges River will have a flow rate of over 26,050 m3/sec between mid-June (2.5) and mid-August (4.5). Now try Exercises 45 through 48
GRAPHICAL SUPPORT To obtain a graphical view of the solution to Example 5, enter 2 b 17,760 on the Y = screen, then Y2 26,050. To set Y1 16,580 sin a t 3 3 an appropriate window, note the amplitude is 40,000
16,580 and that the graph has been vertically shifted by 17,760. Also note the x-axis 0
r
represents months 5 through 12. After locating points of intersection, we note the graphs verify that in the interval [1, 9] D 1t2 7 26,050 for t (2.5, 4.5).
0
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D. You’ve just learned how to use a combination of skills to model and solve a variety of applications
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There is a variety of additional exercises in the Exercise Set. See Exercises 49 through 54.
6.7 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The three Pythagorean identities are , and .
,
2. When an equation contains two functions from a Pythagorean identity, sometimes both sides will lead to a solution. 3. One strategy to solve equations with four terms and no common factors is by .
4. To combine two sine or cosine terms with different arguments, we can use the to formulas. 5. Regarding Example 5, discuss/explain how to determine the months of the year the discharge rate is under 26,050 m3/sec, using the solution set given. 6. Regarding Example 6, discuss/explain how to determine the months of the year the revenue projection is under $1250 using the solution set given.
DEVELOPING YOUR SKILLS
Solve each equation in [0, 2) using the method indicated. Round nonstandard values to four decimal places. • Squaring both sides
16 7. sin x cos x 2 9. tan x sec x 1 4 11. cos x sin x 3 • Factor by grouping
8. cot x csc x 13
24. sin17x2 cos 14x2 sin 15x2 cos17x2 sin14x2 cos x 0
12. sec x tan x 2
25. sec4x 2 sec2x tan2x tan4x tan2x 26. tan4x 2 sec2x tan2x sec4x cot2x
14. 4 sin x cos x 213 sin x 2 cos x 13 0 15. 3 tan2x cos x 3 cos x 2 2 tan2x 16. 413 sin x sec x 13 sec x 2 8 sin x 2
2
• Using identities
1 cot2x 2 cot2x
23. cos 13x2 cos 15x2 cos 12x2 sin 15x2 sin 12x2 1 0
10. sin x cos x 12
13. cot x csc x 2 cot x csc x 2 0
17.
x x 22. 2 cos2 a b 3 sin a b 3 0 3 3
18.
4 1 tan2x 2 3 tan x
19. 3 cos12x2 7 sin x 5 0 20. 3 cos12x2 cos x 1 0 x x 21. 2 sin2a b 3 cos a b 0 2 2
State the period P of each function and find all solutions in [0, P). Round to four decimal places as needed.
27. 250 sin a x b 125 0 6 3 28. 7512 sec a x b 150 0 4 6 29. 1235 cos a
x b 772 1750 12 4
30. 0.075 sin a x b 0.023 0.068 2 3
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• Using any appropriate method to solve.
31. cos x sin x
37. sec x cosa
12 2
38. sin a
32. 5 sec x 2 tan x 8 0 2
33.
1 cos2x 13 2 2 tan x
xbcsc x 13 2
39. sec2x tana
34. 5 csc2x 5 cot x 5 0 35. csc x cot x 1
36.
1 sin2x 12 2 2 cot x
40. 2 tana
xb 4 2
13 xbsin2x 2 2
WORKING WITH FORMULAS
41. The equation of a line in trigonometric form: y
D x cos sin
Exercise 41 y
The trigonometric form of a linear equation is given by the formula shown, where D D is the perpendicular distance from the origin to the line x and is the angle between the perpendicular segment and the x-axis. For each pair of perpendicular lines given, (a) find the point (a, b) of their intersection; (b) compute the distance b D 2a2 b2 and the angle tan1a b, and a give the equation of the line in trigonometric form; and (c) use the GRAPH or the 2nd GRAPH TABLE feature of a graphing calculator to verify that both equations name the same line. 1 I. L1: y x 5 II. L1: y x 5 2 L2: y x L2: y 2x
xb 1 2
13 4 13 x 3 3 L2: y 13x
III. L1: y
42. Rewriting y a cos x b sin x as a single function: y k sin(x ) Linear terms of sine and cosine can be rewritten as a single function using the formula shown, where a k 2a2 b2 and sin1a b. Rewrite the k equations given using these relationships and verify they are equivalent using the GRAPH or the 2nd GRAPH TABLE feature of a graphing calculator: a. y 2 cos x 2 13 sin x b. y 4 cos x 3 sin x The ability to rewrite a trigonometric equation in simpler form has a tremendous number of applications in graphing, equation solving, working with identities, and solving applications.
APPLICATIONS
43. Volume of a cylinder: The volume Exercise 43 of a cylinder is given by the formula V r2h sin , where r is ␣ the radius and h is the height of the cylinder, and is the indicated h complement of the angle of deflection . Note that when , the formula becomes that 2 of a right circular cylinder (if , then h is 2 called the slant height or lateral height of the cylinder). An old farm silo is built in the form of a right circular cylinder with a radius of 10 ft and a
height of 25 ft. After an earthquake, the silo became tilted with an angle of deflection 5°. (a) Find the volume of the silo before the earthquake. (b) Find the volume of the silo after the earthquake. (c) What angle is required to bring the original volume of the silo down 2%? 44. Volume of a cone: The volume of a cone is given 1 by the formula V r2h sin , where r is the 3 radius and h is the height of the cone, and is the indicated complement of the angle of deflection . Note that when , the formula becomes that 2 of a right circular cone (if , then h is called 2
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the slant height or lateral height of the cone). As part of a sculpture exhibit, an artist is constructing three such structures each with a radius of 2 m and a slant height of 3 m. (a) Find the volume of the sculptures if the angle of deflection is 15°. (b) What angle was used if the volume of each sculpture is 12 m3?
Exercise 44
h
␣
45. River discharge rate: For June through February, the discharge rate of the La Corcovada River (Venezuela) can be modeled by the function 9 D1t2 36 sina t b 44, where t represents 4 4 the months of the year with t 1 corresponding to June, and D(t) is the discharge rate in cubic meters per second. (a) What is the discharge rate in midSeptember? (b) For what months of the year is the discharge rate over 50 m3/sec? Source: Global River Discharge Database Project; www.rivdis.sr.unh.edu.
46. River discharge rate: For February through June, the average monthly discharge of the Point Wolfe River (Canada) can be modeled by the function D1t2 4.6 sina t 3b 7.4, where t represents 2 the months of the year with t 1 corresponding to February, and D(t) is the discharge rate in cubic meters/second. (a) What is the discharge rate in mid-March 1t 2.52 ? (b) For what months of the year is the discharge rate less than 7.5 m3/sec? Source: Global River Discharge Database Project; www.rivdis.sr.unh.edu.
47. Seasonal sales: Hank’s Heating Oil is a very seasonal enterprise, with sales in the winter far exceeding sales in the summer. Monthly sales for the company can be modeled by S1x2 1600 cosa x b 5100, where S1x2 6 12 is the average sales in month x 1x 1 S January2. (a) What is the average sales amount for July? (b) For what months of the year are sales less than $4000? 48. Seasonal income: As a roofing company employee, Mark’s income fluctuates with the seasons and the availability of work. For the past several years his average monthly income could be approximated by the function I1m2 2100 sina m b 3520, 6 2 where I(m) represents income in month m 1m 1 S January2. (a) What is Mark’s average
689
monthly income in October? (b) For what months of the year is his average monthly income over $4500? 49. Seasonal ice thickness: The average thickness of the ice covering an arctic lake can be modeled by the function T1x2 9 cosa xb 15, where T(x) 6 is the average thickness in month x 1x 1 S January2. (a) How thick is the ice in mid-March? (b) For what months of the year is the ice at most 10.5 in. thick? 50. Seasonal temperatures: The function T1x2 19 sina x b 53 models the average 6 2 monthly temperature of the water in a mountain stream, where T(x) is the temperature 1°F2 of the water in month x 1x 1 S January2 . (a) What is the temperature of the water in October? (b) What two months are most likely to give a temperature reading of 62°F? (c) For what months of the year is the temperature below 50°F? 51. Coffee sales: Coffee sales fluctuate with the weather, with a great deal more coffee sold in the winter than in the summer. For Joe’s Diner, assume 2 x b 29 the function G1x2 21 cosa 365 2 models daily coffee sales (for non-leap years), where G(x) is the number of gallons sold and x represents the days of the year 1x 1 S January 12. (a) How many gallons are projected to be sold on March 21? (b) For what days of the year are more than 40 gal of coffee sold? 52. Park attendance: Attendance at a popular state park varies with the weather, with a great deal more visitors coming in during the summer months. Assume daily attendance at the park can be modeled 2 x b 545 by the function V1x2 437 cosa 365 (for non-leap years), where V(x) gives the number of visitors on day x 1x 1 S January 12 . (a) Approximately how many people visited the park on November 1 111 30.5 335.52? (b) For what days of the year are there more than 900 visitors?
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53. Exercise routine: As part of his yearly physical, Manu Tuiosamoa’s heart rate is closely monitored during a 12-min, cardiovascular exercise routine. His heart rate in beats per minute (bpm) is modeled by the function B1x2 58 cosa x b 126 6 where x represents the duration of the workout in minutes. (a) What was his resting heart rate? (b) What was his heart rate 5 min into the workout? (c) At what times during the workout was his heart rate over 170 bpm?
begun. (a) What is the initial grade for her workout? (b) What is the grade at x 4 min? (c) At G1x2 4.9%, how long has she been working out? (d) What is the duration of the treadmill workout?
54. Exercise routine: As part of her workout routine, Sara Lee programs her treadmill to begin at a slight initial grade (angle of incline), gradually increase to a maximum grade, then gradually decrease back to the original grade. For the duration of her workout, the grade is modeled by the function G1x2 3 cosa x b 4, where G(x) is the 5 percent grade x minutes after the workout has
EXTENDING THE CONCEPT
55. As we saw in Chapter 6, cosine is the cofunction of sine and each can be expressed in terms of the other: cosa b sin and sina b cos . 2 2 This implies that either function can be used to model the phenomenon described in this section by adjusting the phase shift. By experimentation, (a) find a model using cosine that will produce results identical to the sine function in Exercise 50 and (b) find a model using sine that will produce results identical to the cosine function in Exercise 51.
MAINTAINING YOUR SKILLS
58. (5.7) Find f 12 for all six trig functions, given P151, 682 is on the terminal side. 59. (3.4) Sketch the graph of f by locating its zeroes and using end behavior: f 1x2 x4 3x3 4x. 60. (4.3) Use a calculator and the change-of-base formula to find the value of log5279. 61. (5.6) The Sears Tower in Chicago, Illinois, remains one of the tallest structures in the world. The top of the roof reaches 1450 ft above the street below and the antenna extends an additional 280 ft
56. Use multiple identities to find all real solutions for the equation given: sin15x2 sin12x2cos x cos12x2sin x 0. Exercise 57 57. A rectangular parallelepiped with square ends has 12 edges and six surfaces. If the sum of all edges is 176 cm and the total surface area is 1288 cm2, find (a) the length of the diagonal of the parallelepiped (shown in bold) and (b) the angle the diagonal makes with the base (two answers are possible). Exercise 61
into the air. Find the viewing angle for the antenna from a distance of 1000 ft (the angle formed from the base of the antenna to its top).
280 ft
1450 ft
1000 ft
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S U M M A RY A N D C O N C E P T R E V I E W SECTION 6.1
Fundamental Identities and Families of Identities
KEY CONCEPTS • The fundamental identities include the reciprocal, ratio, and Pythagorean identities. • A given identity can algebraically be rewritten to obtain other identities in an identity “family.” • Standard algebraic skills like distribution, factoring, combining terms, and special products play an important role in working with identities. A C AD BC gives an efficient method for combining rational terms. • The pattern B D BD • Using fundamental identities, a given trig function can be expressed in terms of any other trig function. • Once the value of a given trig function is known, the value of the other five can be uniquely determined using fundamental identities, if the quadrant of the terminal side is known. • To show an equation is not an identity, find any one value where the expressions are defined but the equation is false, or graph both functions on a calculator to see if the graphs are identical. EXERCISES Verify using the method specified and fundamental identities. 1. multiplication 2. factoring sin x 1csc x sin x2 cos2x
3. special products 1sec x tan x21sec x tan x2 sin x csc x
tan2x csc x csc x csc x sec2x
4. combine terms using C AD BC A B D BD 2 tan2x sec x sin x csc x csc x
Find the value of all six trigonometric functions using the information given. 12 25 5. cos ; in QIII 6. sec ; in QIV 37 23
SECTION 6.2
Constructing and Verifying Identities
KEY CONCEPTS • The steps used to verify an identity must be reversible. • If two expressions are equal, one may be substituted for the other and the result will be equivalent. • To verify an identity we mold, change, substitute, and rewrite one side until we “match” the other side. • Verifying identities often involves a combination of algebraic skills with the fundamental trig identities. A collection and summary of the Guidelines for Verifying Identities can be found on page 625. EXERCISES Rewrite each expression to create a new identity, then verify the identity by reversing the steps. cos x sin x cos x 7. csc x cot x 8. cos2x Verify that each equation is an identity. csc2x 11 cos2x2 9. cot2x tan2x
10.
cot x csc x cot x 1cos x csc x2 sec x tan x
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sin4x cos4x tan x cot x sin x cos x
SECTION 6.3
12.
1sin x cos x2 2 csc x sec x 2 sin x cos x
The Sum and Difference Identities
KEY CONCEPTS The sum and difference identities can be used to • Find exact values for nonstandard angles that are a sum or difference of two standard angles. • Verify the cofunction identities and to rewrite a given function in terms of its cofunction. • Find coterminal angles in 30, 360°2 for very large angles (the angle reduction formulas). • Evaluate the difference quotient for sin x, cos x, and tan x. • Rewrite a sum as a single expression: cos cos sin sin cos1 2 . The sum and difference identities for sine and cosine can be remembered by noting • For cos1 2 , the function repeats and the signs alternate: cos1 2 cos cos sin sin • For sin1 2 the signs repeat and the functions alternate: sin1 2 sin cos cos sin
EXERCISES Find exact values for the following expressions using sum and difference formulas. 13. a. cos 75° b. tana b 14. a. tan 15° 12 Evaluate exactly using sum and difference formulas. 15. a. cos 109° cos 71° sin 109° sin 71°
b. sina
b 12
b. sin 139° cos 19° cos 139° sin 19°
Rewrite as a single expression using sum and difference formulas. 16. a. cos13x2cos12x2 sin13x2sin12x2
x 3x x 3x b. sina bcosa b cosa bsina b 4 8 4 8
Evaluate exactly using sum and difference formulas, by reducing the angle to an angle in 30, 360°2 or 30, 22. 57 b 17. a. cos 1170° b. sina 4 Use a cofunction identity to write an equivalent expression for the one given. x 18. a. cosa b b. sinax b 8 12 19. Verify that both expressions yield the same result using sum and difference formulas. tan 15° tan145° 30°2 and tan 15° tan1135° 120°2 . 20. Use sum and difference formulas to verify the following identity. cosax b cosax b 13 cos x 6 6
SECTION 6.4
The Double-Angle, Half-Angle, and Product-to-Sum Identities
KEY CONCEPTS • When multiple angle identities (identities involving n) are used to find exact values, the terminal side of must be determined so the appropriate sign can be used. • The power reduction identities for cos2x and sin2x are closely related to the double-angle identities, and can be derived directly from cos12x2 2 cos2x 1 and cos12x2 1 2 sin2x.
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• The half-angle identities can be developed from the power reduction identities by using a change of variable and taking square roots. The sign is then chosen based on the quadrant of the half angle. • The product-to-sum and sum-to-product identities can be derived using the sum and difference formulas, and have important applications in many areas of science.
EXERCISES Find exact values for sin122, cos122 , and tan122 using the information given. 13 29 21. a. cos ; in QIV b. csc ; in QIII 85 20 Find exact values for sin , cos , and tan using the information given. 336 41 22. a. cos122 b. sin122 ; in QII ; in QII 841 625 Find exact values using the appropriate double-angle identity. 23. a. cos222.5° sin222.5°
b. 1 2 sin2 a
b 12
Find exact values for sin and cos using the appropriate half-angle identity. 5 24. a. 67.5° b. 8 Find exact values for sina b and cosa b using the given information. 2 2 65 24 25. a. cos ; 0° 6 6 360°; in QIV b. csc ; 90° 6 6 0; in QIV 25 33 26. Verify the equation is an identity. cos132 cos 2 tan2 cos132 cos sec2 2
27. Solve using a sum-to-product formula. cos13x2 cos x 0
28. The area of an isosceles triangle (two equal sides) is given by the formula A x2sina b cosa b, where the 2 2 equal sides have length x and the vertex angle measures °. (a) Use this formula and the half-angle identities to find the area of an isosceles triangle with vertex angle 30° and equal sides of 12 cm. (b) Use substitution and 1 a double-angle identity to verify that x2sina b cosa b x2sin , then recompute the triangle’s area. Do the 2 2 2 results match?
SECTION 6.5
The Inverse Trig Functions and Their Applications
KEY CONCEPTS • In order to create one-to-one functions, the domains of y sin t, y cos t, and y tan t are restricted as follows: (a) y sin t, t c , d ; (b) y cos t, t 3 0, 4 ; and (c) y tan t; t a , b. 2 2 2 2 • For y sin x, the inverse function is given implicitly as x sin y and explicitly as y sin1x or y arcsin x. • The expression y sin1x is read, “y is the angle or real number whose sine is x.” The other inverse functions are similarly read/understood. • For y cos x, the inverse function is given implicitly as x cos y and explicitly as y cos1x or y arccos x. • For y tan x, the inverse function is given implicitly as x tan y and explicitly as y tan1x or y arctan x.
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• The domains of y sec x, y csc x, and y cot x are likewise restricted to create one-to-one functions:
b ´ a , d ; (b) y csc t, t c , 0b ´ a0, d ; and (c) y cot t, t 10, 2. 2 2 2 2 • In some applications, inverse functions occur in a composition with other trig functions, with the expression best evaluated by drawing a diagram using the ratio definition of the trig functions. 1 1 • To evaluate y sec1t, we use y cos1a b; for y cot1t, use tan1a b; and so on. t t • Trigonometric substitutions can be used to simplify certain algebraic expressions. (a) y sec t; t c 0,
EXERCISES Evaluate without the aid of calculators or tables. State answers in both radians and degrees in exact form. 12 13 29. y sin1a 30. y csc12 31. y arccosa b b 2 2 Evaluate the following using a calculator, keeping the domain and range of each function in mind. Answer in radians to the nearest ten-thousandth and in degrees to the nearest tenth. Some may be undefined. 7 32. y tan14.3165 33. y sin10.8892 34. f 1x2 arccosa b 8 Evaluate the following without the aid of a calculator. Some may be undefined. 1 35. sin c sin1a b d 36. arcsec c seca b d 37. cos 1cos122 2 4 Evaluate the following using a calculator. Some may be undefined. 38. sin1 1sin 1.02452
39. arccos3 cos 160°2 4
Evaluate each expression by drawing a right triangle and labeling the sides. 12 7 41. sin c cos1a b d 42. tan c arcsec a b d 37 3x
40. cot1 c cot a 43. cot c sin1a
11 bd 4
x 281 x2
bd
Use an inverse function to solve the following equations for in terms of x. 44. x 5 cos
SECTION 6.6
45. 7 13 sec x
46. x 4 sin a
b 6
Solving Basic Trig Equations
KEY CONCEPTS • When solving trig equations, we often consider either the principal root, roots in 3 0, 22, or all real roots. • Keeping the graph of each function in mind helps to determine the desired solution set. • After isolating the trigonometric term containing the variable, we solve by applying the appropriate inverse function, realizing the result is only the principal root. • Once the principal root is found, roots in 30, 22 or all real roots can be found using reference angles and the period of the function under consideration. • Trig identities can be used to obtain an equation that can be solved by factoring or other solution methods. EXERCISES Solve each equation without the aid of a calculator (all solutions are standard values). Clearly state (a) the principal root; (b) all solutions in the interval 3 0, 22 ; and (c) all real roots. 47. 2 sin x 12 48. 3 sec x 6 49. 8 tan x 7 13 13
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Solve using a calculator and the inverse trig functions (not by graphing). Clearly state (a) the principal root; (b) solutions in 3 0, 22; and (c) all real roots. Answer in radians to the nearest ten-thousandth as needed. 2 1 50. 9 cos x 4 51. sin122 52. 12 csc x 3 7 5 4 53. The area of a circular segment (the shaded portion shown in the diagram) is given by the 1 formula A r2 1 sin 2 , where is in radians. If the circle has a radius of 10 cm, find 2 the angle that gives an area of 12 cm2.
SECTION 6.7
r
r
General Trig Equations and Applications
KEY CONCEPTS • In addition to the basic solution methods from Section 6.6, additional strategies include squaring both sides, factoring by grouping, and using the full range of identities to simplify an equation. • Many applications result in equations of the form Asin1Bx C2 D k. To solve, isolate the factor sin1Bx C2 (subtract D and divide by A), then apply the inverse function. • Once the principal root is found, roots in 30, 22 or all real roots can be found using reference angles and the period of the function under consideration. EXERCISES Find solutions in 3 0, 22 using the method indicated. Round nonstandard values to four decimal places. 54. squaring both sides 55. using identities sin x cos x
16 2
3 cos12x2 7 sin x 5 0
56. factor by grouping 4 sin x cos x 213 sin x 2 cos x 13 0
57. using any appropriate method csc x cot x 1
State the period P of each function and find all solutions in [0, P). Round to four decimal places as needed. 58. 750 sina x b 120 0 6 2
59. 80 cos a x b 40 12 0 3 4
60. The revenue earned by Waipahu Joe’s Tanning Lotions fluctuates with the seasons, with a great deal more lotion sold in the summer than in the winter. The function R1x2 15 sin a x b 30 models the monthly sales of 6 2 lotion nationwide, where R(x) is the revenue in thousands of dollars and x represents the months of the year ( x 1 S Jan). (a) How much revenue is projected for July? (b) For what months of the year does revenue exceed $37,000?
MIXED REVIEW Find the value of all six trig functions using the information given. 1. csc
1117 ; in QII 6
4 2. tan1a b 3
Find the exact value of each expression using a sum or difference identity. 19 b 3. tan 255° 4. cos a 12
Evaluate each expression by drawing a right triangle and labeling the sides appropriately. 5. tan c arccsca
10 bd x
6. sin c sec1a
264 x2 bd x
7. Solve for x in the interval [0, 2). Round to four decimal places as needed: 100 sin a x b 80 100 4 6
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8. The horizontal distance R that an object will travel when it is projected at angle with initial velocity v 1 is given by the equation R v2 sin cos . 16 a. Use an identity to show this equation can be 1 written as R v2 sin122. 32 b. Use this equation to show why the horizontal distance traveled by the object is the same for any two complementary angles.
x x 12. Find exact values for sina b and cosa b using the 2 2 information given. 6 ; 540° 6 x 6 630° a. sin x 7.5 11.7 b. sec x ;0 6 x 6 4.5 2 Evaluate without the aid of calculator or tables. Answer in both radians and degrees. 13. y arcsec1 122
15. Verify the following identities using a sum formula. a. sin12x2 2 sin x cos x b. cos12x2 cos2x sin2x
R
9. The profits of Red-Bud Nursery can be modeled by a sinusoid, with profit peaking twice each year. Given profits reach a yearly low of $4000 in midJanuary (month 1.5), and a yearly high of $14,000 in mid-April (month 4.5). (a) Construct an equation for their yearly profits. (b) Use the model to find their profits for August. (c) Name the other month at which profit peaks. 10. Find the exact value of 2 cos2a
b 1 using an 12
appropriate identity. Verify the following identity. 11.
14. y tan1 13
1 cos2 sin2 1 cos122 tan2
Use an inverse function to solve each equation for in terms of x. 16.
x tan 10
17. 2 12 csc a
bx 4
18. Find the value of each expression using sum-to-product and half-angle identities (without using a calculator). a. sin 172.5° sin 52.5° b. cos 172.5° cos 52.5° 19. Given 100 sin t 70, use a calculator to find (a) the principal root, (b) all solutions in [0, 2], and (c) all real solutions. Round to the nearest ten-thousandth. 20. Use the product-to-sum formulas to find the exact value of 13 13 7 7 a. sina b. sina bcosa b bsina b 24 24 24 24
PRACTICE TEST Verify each identity using fundamental identities and the method specified. 1. special products 1csc x cot x2 1csc x cot x2 cos x sec x 2. factoring
sin3x cos3x sin x cos x 1 cos x sin x
3. Find the value of all six trigonometric functions 48 given cos ; in QIV 73 4. Find the exact value of tan 15° using a sum or difference formula. 5. Rewrite as a single expression and evaluate: cos 81° cos 36° sin 81° sin 36°
6. Evaluate cos 1935° exactly using an angle reduction formula. 7. Use sum and difference formulas to verify sinax b sinax b 12 cos x. 4 4 8. Find exact values for sin , cos , and tan given 161 cos122 ; in QI 289 9. Use a double-angle identity to evaluate 2 cos275° 1. 10. Find exact values for sina b and cosa b given 2 2 12 tan ; in QI 35
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11. The area of a triangle is given geometrically as 1 A base # height. The 2 trigonometric formula for
b ␣
a
c
1 the triangle’s area is A bc sin , where is the 2 angle formed by the sides b and c. In a certain triangle, b 8, c 10, and 22.5°. Use the formula for A given here and a half-angle identity to find the area of the triangle in exact form. 12. The equation Ax2 Bxy Cy2 0 can be written in an alternative form that makes it easier to graph. This is done by eliminating the mixed xy-term using B the relation tan122 to find . We can then AC find values for sin and cos , which are used in a conversion formula. Find sin and cos for 17x2 5 13xy 2y2 0, assuming 2 in QI. 13. Evaluate without the aid of calculators or tables. 1 1 b a. y tan1a b. y sin c sin1a b d 2 13 c. y arccos1cos 30°2 14. Evaluate the following. Use a calculator for part (a), give exact answers for part (b), and find the value of the expression in part (c) without using a calculator. Some may be undefined. a. y sin10.7528 b. y arctan1tan 78.5°2 c. y sec1 c seca
7 bd 24
697
Evaluate the expressions by drawing a right triangle and labeling the sides. 15. cos c tan1a
56 bd 33
16. cot c cos1a
bd 125 x2 17. Solve without the aid of a calculator (all solutions are standard values). Clearly state (a) the principal root, (b) all solutions in the interval 30, 22, and (c) all real roots. I. 8 cos x 412 II. 13 sec x 2 4 x
18. Solve each equation using a calculator and inverse trig functions to find the principal root (not by graphing). Then state (a) the principal root, (b) all solutions in the interval 30, 22 , and (c) all real roots. 1 2 I. sin12x2 II. 3 cos12x2 0.8 0 3 4 19. Solve the equations graphically in the indicated interval using a graphing calculator. State answers in radians rounded to the nearest ten-thousandth. a. 3 cos12x 12 sin x; x 3, 4 b. 2 1x 1 3 cos2x; x 30, 22 20. Solve the following equations for x 30, 22 using a combination of identities and/or factoring. State solutions in radians using the exact form where possible. a. 2 sin x sin12x2 sin12x2 0 1 b. 1cos x sin x2 2 2
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Seeing the Beats as the Beats Go On When two sound waves of slightly different frequencies are combined, the resultant wave varies periodically in amplitude over time. These Figure 6.33 amplitude pulsations are called beats. In this Exploration and Discovery, we’ll look at ways to “see” the beats more clearly on a graphing calculator, by representing sound waves very simplistically as Y1 cos1mt2 and Y2 cos1nt2 and noting a relationship between m, n, and the number of beats in 30, 2 4 . Using a sum-to-product formula, we can represent the resultant wave as a single term. For Y1 cos112t2 and Y2 cos18t2
the result is
12t 8t 12t 8t b cosa b 2 2 2 cos110t2cos12t2
cos112t2 cos18t2 2 cosa
The window used and resulting graph are shown in Figures 6.33 and 6.34, and it appears that “silence” occurs four times in this interval—where the graph of the combined waves is
Figure 6.34 3
2
0
3
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Figure 6.35 tangent to (bounces off of) the x-axis. This indicates a total of four beats. Note the number of beats is equal to the difference m n: 12 8 4. Further experimentation will show this is not a coincidence, and this Figure 6.36 enables us to construct two additional 3 functions that will frame these pulsations and make them 2 easier to see. Since 0 the maximum amplitude of the resulting wave is 2, we use functions of the 3 k form 2 cosa xb to construct the frame, where k is the 2
number of beats in the interval 1m n k2. For Y2 cos18t2, Y1 cos112t2 and we have 12 8 k 2 and the functions we use will be 2 Y2 2 cos12x2 and Y3 2 cos12x2 as shown in Figure 6.35. The result is shown in Figure 6.36, where the frame clearly shows the four beats or more precisely, the four moments of silence. For each exercise, (a) express the sum Y1 Y2 as a product, (b) graph YR on a graphing calculator for x 3 0, 2 4 and identify the number of beats in this interk val, and (c) determine what value of k in 2 cosa xb 2 would be used to frame the resultant YR, then enter these as Y2 and Y3 to check the result. Exercise 1: Exercise 2: Exercise 3: Exercise 4:
Y1 Y1 Y1 Y1
cos114t2; cos112t2; cos114t2; cos111t2;
Y2 Y2 Y2 Y2
cos18t2 cos19t2 cos16t2 cos110t2
STRENGTHENING CORE SKILLS Trigonometric Equations and Inequalities The ability to draw a quick graph of the trigonometric functions is a tremendous help in understanding equations and inequalities. A basic sketch can help reveal the number of solutions in 3 0, 22 and the quadrant of each solution. For nonstandard angles, the value given by the inverse function can then be used as a basis for stating the solution set for all real numbers. We’ll illustrate the process using a few simple examples, then generalize our observations to solve more realistic applications. Consider the function f 1x2 2 sinx 1, a sine wave with amplitude 2, and a vertical translation of 1. To find intervals in 3 0, 22 where f 1x2 7 2.5, we reason that f has a maximum of 3 2112 1 and a minimum of 1 2112 1, since 1 sin x 1. With no phase shift and a standard period of 2, we can easily draw a quick sketch of f by vertically translating x-intercepts and max/min points 1 unit up. After Figure 6.37 drawing the line y 2.5 (see y y 2.5 Figure 6.37), it appears there are 3 f (x) two intersections in the interval, one in QI and one in QII. More 2 x importantly, it is clear that f 1x2 7 2.5 between these two 3 solutions. Substituting 2.5 for f (x) in f 1x2 2 sin x 1, we solve for sin x to obtain sin x 0.75, which we use to state the solution in exact form: f 1x2 7 2.5 for x 1sin10.75, sin10.752. In approximate form the solution interval is x 10.85, 2.292.
If the function involves a horizontal shift, the graphical analysis will reveal which intervals should be chosen to satisfy the given inequality. Illustration 1 Given g1x2 3 sinax g1x2 1.2 for x 3 0, 22.
b 1, solve 4
Solution Plot the x-intercepts and maximum/minimum values for a standard sine wave with amplitude 3, then shift these points units to the right. Then shift each point one 4 unit down and draw a sine wave Figure 6.38 through the points (see Figure y 6.38). This sketch along with the 3 graph of y 1.2 is sufficient to f (x) reveal that solutions to 2 x g1x2 1.2 occur in QI and QIII, with solutions to g1x2 1.2 outside this interval. Substituting 4 1.2 for g(x) and isolat 1 ing the sine function we obtain sin ax b , 4 15 1 1 then x sin a b after taking the inverse 15 4 sine of both sides. This is the QI solution, with 1 x c sin1a b d being the solution in 15 4
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QIII. In approximate form the solution interval is x 3 0, 0.72 4 ´ 3 3.99, 24 . The basic ideas remain the same regardless of the complexity of the equation. Remember—our current goal is not a supremely accurate graph, just a sketch that will guide us to the solution using the inverse functions and the correct quadrants. Perhaps that greatest challenge is recallC ing that when B 1, the horizontal shift is , but other B than this a fairly accurate sketch can quickly be obtained.
699
Practice with these ideas by solving the following inequalities within the intervals specified. f 1x2 3 sin x 2; f 1x2 7 3.7; x 30, 22 Exercise 2: g1x2 4 sin ax b 1; 3 g1x2 2; x 30, 22 Exercise 3: h1x2 125 sin a x b 175; 6 2 h1x2 150; x 30, 122 2 Exercise 4: f 1x2 15,750 sin a x b 19,250; 360 4 f 1x2 7 25,250; x 30, 3602
Exercise 1:
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 6 1. Find f 12 for all six trig
Exercise 2 241 ft
functions, given P113, 842 is on the terminal side with in QII.
60
2. Find the lengths of the
missing sides. 3. Verify that x 2 13
5√3 1483 ft
is a zero of g1x2 x2 4x 1.
4. Determine the domain of r1x2 29 x2. Answer
in interval notation. 5. Standing 5 mi (26,400 ft) from the base of Mount
Logan (Yukon) the angle of elevation to the summit is 36° 56¿ . How much taller is Mount McKinley (Alaska) which stands at 20,320 ft high? 6. Use the Guidelines for Graphing Polynomial
Functions to sketch the graph of f 1x2 x3 3x2 4. 7. Use the Guidelines for Graphing Rational Functions
x1 x2 4 8. The Petronas Towers in Malaysia are two of the tallest structures in the world. The top of the roof reaches 1483 ft above the street below and the stainless steel pinnacles extend an additional 241 ft into the air (see figure). Find the viewing angle for the pinnacles from a distance of 1000 ft (the angle formed from the base of the antennae to its top). to sketch the graph of h1x2
1000 ft
9. A wheel with radius 45 cm is turning at 5
revolutions per second. Find the linear velocity of a point on the rim in kilometers per hour, rounded to the nearest 10th of a kilometer. 10. Solve for x:
3
21x 32 4 1 55.
11. Solve for x: 3x
1 5 10 2
12. The Earth has a radius of 3960 mi. Tokyo, Japan, is
located at 35.4° N latitude, very near the 139° E latitude line. Adelaide, Australia, is at 34.6° S latitude, and also very near 139° E latitude. How many miles separate the two cities?
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13. Since 1970, sulphur dioxide emissions in the United
States have been decreasing at a nearly linear rate. In 1970, about 31 million tons were emitted into the atmosphere. In 2000, the amount had decreased to approximately 16 million tons. (a) Find a linear equation that models sulphur dioxide emissions. (b) Discuss the meaning of the slope ratio in this context. (c) Use the equation model to estimate the emissions in 1985, and project the emission for 2010.
c. intervals where f 1x2T and f 1x2c d. name the location of all local maximums and minimums y 5 3
5
5 x 3
Source: 2004 Statistical Abstract of the United States, Table 360.
14. List the three Pythagorean identities and three
identities equivalent to cos122. 15. For f1x2 325 cosa x b 168, what values 6 2 of x in 3 0, 22 satisfy f 1x2 7 330.5?
f(x)
5
21. Use the triangle shown to find the exact value of
sin122. √202
16. Write as a single logarithmic expression in simplest
9
form: log1x 92 log1x 12 log1x 2x 32. 2
2
17. After doing some market research, the manager of a
sporting goods store finds that when a four-pack of premium tennis balls are priced at $9 per pack, 20 packs per day are sold. For each decrease of $0.25, 1 additional pack per day will be sold. Find the price at which four-packs of tennis balls should be sold in order to maximize the store’s revenue on this item. 18. Write the equation of the function whose graph is
11
22. Use the triangle shown to find the exact value of
sin1 2.
51
given, in terms of a sine function.
y 6
68
23. The amount of waste product released by a 8 4
4
8 x
6
19. Verify that the following is an
cos x 1 cos x 2 sec x 1 tan x 20. The graph of a function f(x) is shown. Given the zeroes are x 4 and x 12, estimate the following: a. the domain and range of the function b. intervals where f 1x2 7 0 and f 1x2 0 identity:
manufacturing company varies according to its production schedule, which is much heavier during the summer months and lighter in the winter. Waste product amount reaches a maximum of 32.5 tons in the month of July, and falls to a minimum of 21.7 tons in January 1t 12 . (a) Use this information to build a sinusoidal equation that models the amount of waste produced each month. (b) During what months of the year does output exceed 30 tons? 24. At what interest rate will $2500 grow to $3500 if it’s
left on deposit for 6 yr and interest is compounded continuously? 25. Identify each geometric formula:
a. y r2h
b. y LWH
c. y 2r
1 d. y bh 2
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A. Create a trigonometric model from critical points or data
B. Create a sinusoidal model from data using regression
Trigonometric Equation Models
In the most common use of the word, a cycle is any series of events or operations that occur in a predictable pattern and return to a starting point. This includes things as diverse as the wash cycle on a washing machine and the powers of i. There are a number of common events that occur in sinusoidal cycles, or events that can be modeled by a sine wave. As in Section 5.7, these include monthly average temperatures, monthly average daylight hours, and harmonic motion, among many others. Less well-known applications include alternating current, biorhythm theory, and animal populations that fluctuate over a known period of years. In this section, we develop two methods for creating a sinusoidal model. The first uses information about the critical points (where the cycle reaches its maximum or minimum values), the second involves computing the equation of best fit (a regression equation) for a set of data.
A. Critical Points and Sinusoidal Models Although future courses will define them more precisely, we will consider critical points to be inputs where a function attains a minimum or maximum value. If an event or phenomenon is known to behave sinusoidally (regularly fluctuating between a maximum and minimum), we can create an acceptable model of the form y A sin1Bx C2 D given these critical points (x, y) and the period. For instance, 2 , we find many weather patterns have a period of 12 months. Using the formula P B 2 B and substituting 12 for P gives B (always the case for phenomena with P 6 a 12-month cycle). The maximum value of A sin1Bx C2 D will always occur when sin1Bx C2 1, and the minimum at sin1Bx C2 1, giving this system of equations: max value M A112 D and min value m A112 D. Solving the Mm Mm system for A and D gives A and D as before. To find C, assume 2 2 the maximum and minimum values occur at (x2, M) and (x1, m), respectively. We can substitute the values computed for A, B, and D in y A sin1Bx C2 D, along with either (x2, M) or (x1, m), and solve for C. Using the minimum value (x1, m), where x x1 and y m, we have y A sin1Bx C2 D m A sin1Bx1 C2 D mD sin1Bx1 C2 A
sinusoidal equation model substitute m for y and x1 for x isolate sine function
Fortunately, for sine models constructed from critical points we have yD mD S , which is always equal to 1 (see Exercise 27). This gives a simple A A 3 3 Bx1 C or C Bx1. See result for C, since 1 sin1Bx1 C2 leads to 2 2 Exercises 1 through 6 for practice with these ideas.
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EXAMPLE 1
Developing a Model for Polar Ice Cap Area from Critical Points When the Spirit and Odyssey Rovers landed on Mars (January 2004), there was a renewed public interest in studying the planet. Of particular interest were the polar ice caps, which are now thought to hold frozen water, especially the northern cap. The Martian ice caps expand and contract with the seasons, just as they do here on Earth but there are about 687 days in a Martian year, making each Martian “month” just over 57 days long (1 Martian day 1 Earth day). At its smallest size, the northern ice cap covers an area of roughly 0.17 million square miles. At the height of winter, the cap covers about 3.7 million square miles (an area about the size of the 50 United States). Suppose these occur at the beginning of month 4 1x 42 and month 10 1x 102 respectively. a. Use this information to create a sinusoidal model of the form f 1x2 A sin1Bx C2 D. b. Use the model to predict the area of the ice cap in the eighth Martian month. c. Use a graphing calculator to determine the number of months the cap covers less than 1 million mi2.
Solution
. The maximum 6 and minimum points are (10, 3.7) and (4, 0.17). Using this information, 3.7 0.17 3.7 0.17 D 1.935 and A 1.765. Using 2 2 3 3 5 C Bx1, gives C 142 . The equation model is 2 2 6 6 5 f 1x2 1.765 sin a x b 1.935, where f(x) represents millions of square 6 6 miles in month x. b. For the size of the cap in month 8 we evaluate the function at x 8. a. Assuming a “12-month” weather pattern, P 12 and B
f 182 1.765 sin c 2.8175
5 182 d 1.935 6 6
substitute 8 for x result
In month 8, the polar ice cap will cover about 2,817,500 mi2. c. Of the many options available, we opt to solve by locating the points where 5 Y1 1.765 sin a x b 1.935 and Y2 1 intersect. After entering the 6 6 functions on the Y = screen, we set x 3 0, 12 4 and y 31, 54 for a window with a frame around the output values. 5 Press 2nd TRACE (CALC) 5:intersect to find the intersection points. To four decimal places they occur at x 2.0663 and x 5.9337. The ice cap at the 0 12 northern pole of Mars has an area of less than 1 million mi2 from early in the second month to late in the fifth month. The second intersection is shown in 1 the figure. Now try Exercises 7 and 8
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While this form of “equation building” can’t match the accuracy of a regression model (computed from a larger set of data), it does lend insight as to how sinusoidal functions work. The equation will always contain the maximum and minimum values, and using the period of the phenomena, we can create a smooth sine wave that “fills in the blanks” between these critical points.
EXAMPLE 2
Developing a Model of Wildlife Population from Critical Points Naturalists have found that many animal populations, such as the arctic lynx, some species of fox, and certain rabbit breeds, tend to fluctuate sinusoidally over 10-year periods. Suppose that an extended study of a lynx population began in 2000, and in the third year of the study, the population had fallen to a minimum of 2500. In the eighth year the population hit a maximum of 9500. a. Use this information to create a sinusoidal model of the form P1x2 A sin1Bx C2 D. b. Use the model to predict the lynx population in the year 2006. c. Use a graphing calculator to determine the number of years the lynx population is above 8000 in a 10-year period.
Solution
2 . Using 2000 as year zero, the minimum 10 5 and maximum populations occur at (3, 2500) and (8, 9500). From the information 9500 2500 9500 2500 6000, and A 3500. Using the given, D 2 2 3 9 132 , giving an equation model of minimum value we have C 2 5 10 9 b 6000, where P(x) represents the lynx P1x2 3500 sin a x 5 10 population in year x. b. For the population in 2006 we evaluate the function at x 6. a. Since P 10, we have B
9 b 6000 P1x2 3500 sin a x 5 10 9 P162 3500 sin c 162 d 6000 5 10 7082 In 2006, the lynx population was about 7082. c. Using a graphing calculator and the functions 9 Y1 3500 sin a x b 6000 and 5 10 Y2 8000, we attempt to find points of intersection. Enter the functions (press Y = ) and set a viewing window (we used 0 x 30, 12 4 and y 30, 10,000 4 ). Press TRACE (CALC) 5:intersect to find 2nd where Y1 and Y2 intersect. To four decimal places this occurs at x 6.4681 and x 9.5319. The lynx population exceeded 8000 for roughly 3 yr. The first intersection is shown.
sinusoidal function model
substitute 6 for x result
10,000
12
0
Now try Exercises 9 and 10
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This type of equation building isn’t limited to the sine function, in fact there are many situations where a sine model cannot be applied. Consider the length of the shadows cast by a flagpole or radio tower as the Sun makes its way across the sky. The shadow’s length follows a regular pattern (shortening then lengthening) and “always returns to a starting point,” yet when the Sun is low in the sky the shadow becomes (theoretically) infinitely long, unlike the output values from a sine function. In this case, an equation involving tan x might provide a good model, although the data will vary greatly depending on latitude. We’ll attempt to model the data using y A tan1Bx C2, with the D-term absent since a vertical shift in this context has C no meaning. Recall that the period of the tangent function is P and that B B gives the magnitude and direction of the horizontal shift, in a direction opposite the sign.
EXAMPLE 3
Using Data to Develop a Function Model for Shadow Length The data given tracks the length of a Hour of Length Hour of gnomon’s shadow for the 12 daythe Day (cm) the Day light hours at a certain location near q 0 7 the equator (positive and negative values indicate lengths before noon 1 29.9 8 and after noon respectively). 2 13.9 9 Assume t 0 represents 6:00 A.M. 3 8.0 10 a. Use the data to find an equation 4 4.6 11 model of the form 5 2.1 12 L1t2 A tan1Bt C2. b. Graph the function and scatter6 0 plot. c. Find the shadow’s length at 4:30 P.M. d. If the shadow is 6.1 cm long, what time in the morning is it?
Solution
A gnomon is the protruding feature of a sundial, casting the shadow used to estimate the time of day (see photo).
2.1 4.6 8.0 13.9 29.9 q
a. We begin by noting this phenomenon has a period of P 12. Using the period formula for tangent we solve for B: P gives 12 , so B . Since we B B 12 want (6, 0) to be the “center” of the function [instead of (0, 0)], we desire a C horizontal shift 6 units to the right. Using the ratio awith B b gives B 12 12C 6 so C . To find A we use the equation built so far: 2 L1t2 A tan a t b, and any data point to solve for A. Using (3, 8) 12 2 we obtain 8 A tan a 132 b: 12 2 8 A tan a b 4 8 A
WORTHY OF NOTE
Length (cm)
simplify
35
solve for A: tan a b 1 4
The equation model is L1t2 8 tan a t b. 12 2 b. The scatter-plot and graph are shown in the figure.
1
13
35
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c. 4:30 P.M. indicates t 10.5. Evaluating L(10.5) gives t b 12 2 L110.52 8 tan c 110.52 d 12 2 3 8 tan a b 8 19.31 L1t2 8 tan a
A. You’ve just learned how to create a trigonometric model from critical points or data
At 4:30 P.M., the shadow has a length of 19.31 19.31 cm. d. Substituting 6.1 for L(t) and solving for t graphically gives the graph shown, where we note the day is about 3.5 hr old — it is about 9:30 A.M.
function model
substitute 10.5 for t
simplify result 35
1
13
35
Now try Exercises 11 and 14
B. Data and Sinusoidal Regression Most graphing calculators are programmed to handle numerous forms of polynomial and nonpolynomial regression, including sinusoidal regression. The sequence of steps used is the same regardless of the form chosen. Exercises 15 through 18 offer further practice with regression fundamentals. Example 4 illustrates their use in context. EXAMPLE 4
Calculating a Regression Equation for Seasonal Temperatures The data shown give the record high Month Temp. Month Temp. temperature for selected months in (Jan S 1) (°F) (Jan S 1) (°F) Bismarck, North Dakota. 1 63 9 105 a. Use the data to draw a scatter-plot, 3 81 11 79 then find a sinusoidal regression model and graph both on the same 5 98 12 65 screen. 7 109 b. Use the equation model to estimate the record high temperatures for months 2, 6, and 8. c. Determine what month gives the largest difference between the actual data and the computed results. Source: NOAA Comparative Climate Data 2004.
Solution
a. Entering the data and running the regression (in radian mode) results in the coefficients shown in Figure MWT III.1. After entering the equation in Y1 and pressing ZOOM 9:Zoom Stat we obtain the graph shown in Figure MWT III.2 (indicated window settings have been rounded). Figure MWT III.1 Figure MWT III.2 117
0
13
55
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b. Using x 2, x 6, and x 8 as inputs, projects record high temperatures of 68.5°, 108.0°, and 108.1°, respectively. c. In the header of L3, use Y1(L1) ENTER to evaluate the regression model using the inputs from L1, and place the results in L3. Entering L2 L3 in the header of L4 gives the results shown in Figure MWT III.3 and we note the largest difference occurs in September—about 4°.
Figure MWT III.3
Now try Exercises 19 and 20
Weather patterns differ a great deal depending on the locality. For example, the annual rainfall received by Seattle, Washington, far exceeds that received by Cheyenne, Wyoming. Our final example compares the two amounts and notes an interesting fact about the relationship.
EXAMPLE 5
Calculating a Regression Model for Seasonal Rainfall The average monthly rainfall (in inches) for Cheyenne, Wyoming, and Seattle, Washington, is shown in the table. a. Use the data to find a sinusoidal regression model for the average monthly rainfall in each city. Enter or paste the equation for Cheyenne in Y1 and the equation for Seattle in Y2. b. Graph both equations on the same screen (without the scatter-plots) and use TRACE or TRACE (CALC) 5:intersect 2nd to help estimate the number of months Cheyenne receives more rainfall than Seattle.
Month (Jan. S 1)
WY Rain
WA Rain
1
0.45
5.13
2
0.44
4.18
3
1.05
3.75
4
1.55
2.59
5
2.48
1.77
6
2.12
1.49
7
2.26
0.79
8
1.82
1.02
9
1.43
1.63
Source: NOAA Comparative Climate Data 2004.
Solution
10 0.75 3.19 a. Setting the calculator in Float 0 1 2 3 4 5 6 7 8 9 MODE and running sinusoidal regressions gives 11 0.64 5.90 the equations shown in Figure MWT III.4. 12 0.46 5.62 b. Both graphs are shown in Figure MWT III.5. Using the TRACE feature, we find the graphs intersect at approximately (4.7, 2.0) and (8.4, 1.7). While Cheyenne receives far less rainfall each year, it actually receives more rain than Seattle for about 8.4 4.7 3.7 months of the year. Figure MWT III.5 Figure MWT III.4 7
0
B. You’ve just learned how to create a sinusoidal model from data using regression
13
0
Now try Exercises 21 through 24
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MODELING WITH TECHNOLOGY EXERCISES Find the sinusoidal equation for the information as given.
1. minimum value at (9, 25); maximum value at (3, 75); period: 12 min 2. minimum value at (4.5, 35); maximum value at (1.5, 121); period: 6 yr 3. minimum value at (15, 3); maximum value at (3, 7.5); period: 24 hr 4. minimum value at (3, 3.6); maximum value at (7, 12); period: 8 hr 5. minimum value at (5, 279); maximum value at (11, 1285); period: 12 yr 6. minimum value at (6, 8280); maximum value at (22, 23,126); period: 32 yr 7. Record monthly temperatures: The U.S. National Oceanic and Atmospheric Administration (NOAA) keeps temperature records for most major U.S. cities. For Phoenix, Arizona, they list an average high temperature of 65.0°F for the month of January (month 1) and an average high temperature of 104.2°F for July (month 7). Assuming January and July are the coolest and warmest months of the year, (a) build a sinusoidal function model for temperatures in Phoenix, and (b) use the model to find the average high temperature in September. (c) If a person has a tremendous aversion to temperatures over 95°, during what months should they plan to vacation elsewhere? 8. Seasonal size of polar ice caps: Much like the polar ice cap on Mars, the sea ice that surrounds the continent of Antarctica (the Earth’s southern
polar cap) varies seasonally, from about 8 million mi2 in September to about 1 million mi2 in March. Use this information to (a) build a sinusoidal equation that models the advance and retreat of the sea ice, and (b) determine the size of the ice sheet in May. (c) Find the months of the year that the sea ice covers more than 6.75 million mi2. 9. Body temperature cycles: A phenomenon is said to be circadian if it occurs in 24-hr cycles. A person’s body temperature is circadian, since there are normally small, sinusoidal variations in body temperature from a low of 98.2°F to a high of 99°F throughout a 24-hr day. Use this information to (a) build the circadian equation for a person’s body temperature, given t 0 corresponds to midnight and that a person usually reaches their minimum temperature at 5 A.M.; (b) find the time(s) during a day when a person reaches “normal” body temperature 198.6°2; and (c) find the number of hours each day that body temperature is 98.4°F or less. 10. Position of engine piston: For an internal combustion engine, the position of a piston in the cylinder can be modeled by a sinusoidal function. For a particular engine size and idle speed, the piston head is 0 in. from the top of the cylinder (the minimum value) when t 0 at the beginning of the intake stroke, and reaches a maximum distance of 4 in. from the top of the cylinder (the maximum 1 value) when t 48 sec at the beginning of the compression stroke. Following the compression 2 2, the exhaust stroke is the power stroke 1t 48 3 4 2, after stroke 1t 48 2, and the intake stroke 1t 48 which it all begins again. Given the period of a four-stroke engine under these conditions is 1 P 24 second, (a) find the sinusoidal equation modeling the position of the piston, and (b) find the distance of the piston from the top of the cylinder at t 19 sec. Which stroke is the engine in at this moment? 0 1 2 3 4
Ice caps mininum maximum
Intake
0 1 2 3 4
0 1 2 3 4
Compression
0 1 2 3 4
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Data and tangent functions: Use the data given to find an equation model of the form f 1x2 A tan1Bx C2. Then graph the function and scatter plot to help find (a) the output for x 2.5, and (b) the value of x where f 1x2 16.
11.
12.
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x
y
x
y
0
q
7
1.4
1
20
8
3
2
9.7
9
5.2
3
5.2
10
9.7
4
3
11
20
5
1.4
12
q
6
0
x
y
x
y
0
q
7
6.4
1
91.3
8
13.7
2
44.3
9
23.7
3
23.7
10
44.3
4
13.7
11
91.3
5
6.4
12
q
6
0
14. Earthquakes and elastic rebound: The theory of elastic rebound has been used by seismologists to study the cause of earthquakes. As seen in the figure, the Earth’s crust is stretched to a breaking point by the slow movement of one tectonic plate in a direction opposite the other along a fault line, and when the rock snaps—each half violently rebounds to its original alignment causing the Earth to quake. Stress line
Start
After years of movement
Elastic rebound
POP! Fault line
(0, 0)
13. Distance and Distance Height apparent height: Traveled (mi) (cm) While driving toward 0 0 a Midwestern town 3 1 on a long, flat stretch 6 1.8 of highway, I decide 9 2.8 to pass the time by measuring the 12 4.2 apparent height of 15 6.3 the tallest building in 18 10 the downtown area 21 21 as I approach. At the 24 q time the idea occurred to me, the buildings were barely visible. Three miles later I hold a 30-cm ruler up to my eyes at arm’s length, and the apparent height of the tallest building is 1 cm. After three more miles the apparent height is 1.8 cm. Measurements are taken every 3 mi until I reach town and are shown in the table (assume I was 24 mi from the parking garage when I began this activity). (a) Use the data to come up with a tangent function model of the building’s apparent height after traveling a distance of x mi closer. (b) What was the apparent height of the building at after I had driven 19 mi? (c) How many miles had I driven when the apparent height of the building took up all 30 cm of my ruler?
x
y
4.5
61
1
4
26
2
6.8
3
14.8
3
15.3
2
7.2
4
25.4
1
1.9
4.5
59
0
x
y 2.1
0
Suppose the misalignment of these plates through the stress and twist of crustal movement can be modeled by a tangent graph, where x represents the horizontal distance from the original stress line, and y represents the vertical distance from the fault line. Assume a “period” of 10.2 m. (a) Use the data from the table on page 141 to come up with a trigonometric model of the deformed stress line. (b) At a point 4.8 m along the fault line, what is the distance to the deformed stress line (moving parallel to the original stress line)? (c) At what point along the fault line is the vertical distance to the deformed stress line 50 m?
Data and sinusoidal regression models: For the following sets of data (a) find a sinusoidal regression equation using your calculator; (b) construct an equation manually using the period and maximum/minimum values;
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and (c) graph both on the same screen, then use a TABLE to find the largest difference between output values. 15.
17.
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16.
Day of Month
Output
Day of Month
Output
1
15
1
179
4
41
4
201
7
69
7
195
10
91
10
172
13
100
13
145
16
90
16
120
19
63
19
100
22
29
22
103
25
5
25
124
28
2
28
160
31
18
31
188
18.
to draw a scatter-plot, Month Rate then find a sinusoidal (Jan. S 1) (m3/sec) regression model and 1 1569 graph both on the same 3 1781 screen. (b) Use the 5 1333 equation to estimate the flow rate for the 7 401 even-numbered 9 261 months. (c) Use the 11 678 graph and equation to estimate the number of days per year the flow rate is below 500 m3/sec. Source: Global River Discharge Database Project; www.rivdis.sr.unh.edu.
Month (Jan. 1)
Output
Month (Jan. 1)
Output
1
16
1
86
2
19
2
96
3
21
3
99
4
22
4
95
5
21
5
83
6
19
6
72
7
16
7
56
8
13
8
48
9
11
9
43
10
10
10
49
11
11
11
58
12
13
12
73
19. Record monthly Month High temperatures: The (Jan. S 1) Temp. (°F) highest temperature of 2 76 record for the even 4 89 months of the year are 6 98 given in the table for the city of Pittsburgh, 8 100 Pennsylvania. (a) Use 10 87 the data to draw a 12 74 scatter-plot, then find a sinusoidal regression model and graph both on the same screen. (b) Use the equation to estimate the record high temperature for the odd-numbered months. (c) What month shows the largest difference between the actual data and the computed results? Source: 2004 Statistical Abstract of the United States, Table 378.
20. River discharge rate: The average discharge rate of the Alabama River is given in the table for the odd-numbered months of the year. (a) Use the data
21. Average monthly rainfall: The average monthly rainfall (in inches) for Reno, Nevada, is shown in the table. (a) Use the data to find a sinusoidal regression model for the monthly rainfall. (b) Graph this equation model and the rainfall equation model for Cheyenne, Wyoming (from Example 5), on the same screen, and estimate the number of months that Reno gets more rainfall than Cheyenne. Source: NOAA Comparative Climate Data 2004.
Month (Jan S 1)
Reno Rainfall
Month (Jan S 1)
Reno Rainfall
1
1.06
7
0.24
2
1.06
8
0.27
3
0.86
9
0.45
4
0.35
10
0.42
5
0.62
11
0.80
6
0.47
12
0.88
22. Hours of daylight by month: The number of daylight hours per month (as measured on the 15th of each month) is shown in the table for the cities of Beaumont, Month TX MN Texas, and (Jan S 1) Sunlight Sunlight Minneapolis, 1 10.4 9.1 Minnesota. 2 11.2 10.4 (a) Use the data to find a 3 12.0 11.8 sinusoidal 4 12.9 13.5 regression 5 14.4 16.2 model of the 6 14.1 15.7 daylight hours 7 13.9 15.2 for each city. 8 13.3 14.2 (b) Graph both equations on the 9 12.4 12.6 same screen and 10 11.5 11.0 use the graphs to 11 10.7 9.6 estimate the 12 10.2 8.7 number of days each year that Beaumont receives more daylight than Minneapolis (use 1 month 30.5 days). Source: www.encarta.msn.com/media_701500905/ Hours_of_Daylight_by_Latitude.html.
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23. Illumination of the moon’s surface: The table given indicates the percent of the Moon that is illuminated for the days of a particular month, at a given latitude. (a) Use a graphing calculator to find a sinusoidal regression model. (b) Use the model to determine what percent of the Moon is illuminated on day 20. (c) Use the maximum and minimum values with the period and an appropriate horizontal shift to create your own model of the data. How do the values for A, B, C, and D compare? Day
% Illum.
Day
% Illum.
1
28
19
34
4
55
22
9
7
82
25
0
10
99
28
9
13
94
31
30
16
68
24. Connections between weather and mood: The mood of persons with SAD syndrome (seasonal affective disorder) often depends on the weather. Victims of SAD are typically more despondent in rainy weather than when the Sun is out, and more comfortable in the daylight hours than at night. The table shows the average number of daylight hours for Vancouver, British Columbia, for 12 months of a year. (a) Use a calculator to find a sinusoidal regression model. (b) Use the model to estimate the number of days per year (use 1 month 30.5 days) with more than 14 hr of daylight. (c) Use the maximum and minimum values with the period and an appropriate horizontal shift to create a model of the data. How do the values for A, B, C, and D compare? Source: Vancouver Climate at www.bcpassport.com/vital.
Month
Hours
Month
Hours
1
8.3
7
16.2
2
9.4
8
15.1
3
11.0
9
13.5
4
12.9
10
11.7
5
14.6
11
9.9
6
15.9
12
8.5
25. Orbiting distance north or south of the equator: D(t) A cos(Bt) Unless a satellite is placed in a strict equatorial orbit, its distance north or south of the equator will vary according to the sinusoidal
MWTIII–10
model shown, where D(t) is the distance t min after entering orbit. Negative values indicate it is south of the equator, and the distance D is actually a twodimensional distance, as seen from a vantage point in outer space. The value of B depends on the speed of the satellite and the time it takes to complete one orbit, while A represents the maximum distance from the equator. (a) Find the equation model for a satellite whose maximum distance north of the equator is 2000 miles and that completes one orbit every 2 hr (P 120). (b) How many minutes after entering orbit is the satellite directly above the equator 3D1t2 04 ? (c) Is the satellite north or south of the equator 257 min after entering orbit? How far north or south? 26. Biorhythm theory: P(d ) 50 sin(Bd ) 50 Advocates of biorhythm theory believe that human beings are influenced by certain biological cycles that begin at birth, have different periods, and continue throughout life. The classical cycles and their periods are physical potential (23 days), emotional potential (28 days), and intellectual potential (33 days). On any given day of life, the percent of potential in these three areas is purported to be modeled by the function shown, where P(d) is the percent of available potential on day d of life. Find the value of B for each of the physical, emotional, and intellectual potentials and use it to see what the theory has to say about your potential today. Use day d 365.251age2 days since last birthday. 27. Verifying the amplitude formula: For the equations from Examples 1 and 2, use the minimum value (x, m) to show that yD mD is equal to 1. Then verify this A A Mm relationship in general by substituting for 2 Mm A, for D. 2
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7 CHAPTER CONNECTIONS
7.2 The Law of Cosines; the Area of a Triangle 724
When an airline pilot charts a course, it’s not as simple as pointing the airplane in the right direction. Wind currents must be taken into consideration, and compensated for by additional thrust or a change of heading to equalize the force of the wind and keep the plane flying in the desired direction. The effect of these forces working together can be modeled using a carefully drawn vector diagram, and with the aid of trigonometry, a pilot can easily determine any adjustments in navigation needed. This application appears as Exercise 85 in Section 7.3
7.3 Vectors and Vector Diagrams 736
Check out these other real-world connections:
7.4 Vector Applications and the Dot Product 752
7.5 Complex Numbers in Trigonometric Form 765
Applications of Trigonometry CHAPTER OUTLINE 7.1 Oblique Triangles and the Law of Sines 712
7.6 De Moivre’s Theorem and the Theorem on nth Roots 776
Tracking Large Game in a Wildlife Preserve (Section 7.1, Exercise 50) Calculating Distances between Cities Using Satellite Information (Section 7.2, Exercise 37) Forces Required to Tow a Van out of a Ditch (Section 7.3, Exercise 81) Measuring Forces Used by Contestents in a Tough-Man Contest (Section 7.4, Exercise 37) 711
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7.1 Oblique Triangles and the Law of Sines Learning Objectives In Section 7.1 you will learn how to:
A. Develop the law of sines, and use it to solve ASA and AAS triangles
B. Solve SSA triangles (the ambiguous case) using the law of sines
Figure 7.1
Many applications of trigonometry involve oblique triangles, or triangles that do not have a 90° angle. For example, suppose a trolley carries passengers from ground level up to a mountain chateau, as shown in Figure 7.1. Assuming the cable could be held taut, what is its approximate length? Can we also determine the slant height of the mountain? To answer questions like these, we’ll develop techniques that enable us to solve acute and obtuse triangles using fundamental trigonometric relationships.
23 2000 m
67
C. Use the law of sines to solve applications
WORTHY OF NOTE As with right triangles, solving an oblique triangle involves determining the lengths of all three sides and the measures of all three angles.
A. The Law of Sines and Unique Solutions Consider the oblique triangle ABC pictured in Figure 7.2 Figure 7.2. Since it is not a right triangle, it seems B the trigonometric ratios studied earlier cannot be applied. But if we draw the altitude h (from vertex B), two right triangles are formed that share c a h a common side. By applying the sine ratio to angles A and C, we can develop a relationship that will help us solve the triangle. h A C For A we have sin A or h c sin A. For b c h C we have sin C or h a sin C. Since both products are equal to h, the transitive a property gives c sin A a sin C, which leads to c sin A a sin C
since h h
c sin A a sin C ac ac
divide by ac
sin C sin A a c
simplify
Using the same triangle and the altitude drawn from C (Figure 7.3), we note a h similar relationship involving angles A and B: sin A or h b sin A, and b h sin B sin A sin B or h a sin B. As before, we can then write . If A is obtuse, a a b the altitude h actually falls outside the triangle, as shown in Figure 7.4. In this case, consider that sin1180° 2 sin from the difference formula for sines (Exercise 55, h Section 6.3). In the figure we note sin1180° 2 sin , yielding h c sin c Figure 7.4
Figure 7.3 B
B
a
c
h
h
A
712
b
a c
180 ␣ C
␣ A
b
C
7-2
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and the preceding relationship can now be stated using any pair of angles and corresponding sides. The result is called the law of sines, which is usually stated by combing the three possible proportions. The Law of Sines For any triangle ABC, the ratio of the sine of an angle to the side opposite that angle is constant: sin C sin B sin A a c b As a proportional relationship, the law requires that we have three parts in order to solve for the fourth. This suggests the following possibilities: 1. 2. 3. 4. 5.
two angles and an included side (ASA) two angles and a side opposite one of these angles (AAS) two sides and a angle opposite one of these sides (SSA) two sides and an included angle (SAS) three sides (SSS)
Each of these possibilities is diagrammed in Figures 7.5 through 7.9. Figure 7.5
Figure 7.6
ASA
A
A Angle
Figure 7.7
AAS
A SSA
WORTHY OF NOTE When working with triangles, keeping these basic properties in mind will prevent errors and assist in their solution:
Side Angle B
1. The angles must sum to 180°. 2. The combined length of any two sides must exceed the length of the third side. 3. Longer sides will be opposite larger angles. 4. This sine of an angle cannot be greater than 1. 5. For y 10, 12 , the equation y sin has two solutions in (0°, 180°) that are supplements.
EXAMPLE 1
Side
Angle C
Angle B
Side
C
Figure 7.8 Angle
B
Side
Angle C
Figure 7.9
SAS
SSS
Side
Side
Side
Side Side
Since applying the law of sines requires we have a given side opposite a known angle, it cannot be used in the case of SAS or SSS triangles. These require the law of cosines, which we will develop in Section 7.2. In the case of ASA and AAS triangles, a unique triangle is formed since the measure of the third angle is fixed by the two angles given (they must sum to 180°) and the remaining sides must be of fixed length.
Solving a Triangle Using the Law of Sines Solve the triangle shown, and state your answer using a table.
Solution
This is not a right triangle, so the standard ratios cannot be used. Since B and C are given, we know A 180° 1110° 32°2 38°. With A and side a, we have
B 110
39.0 cm
c A
32 b
C
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sin A sin B a b sin 110° sin 38° 39 b b sin 38° 39 sin 110° 39 sin 110° b sin 38° b 59.5
WORTHY OF NOTE Although not a definitive check, always review the solution table to ensure the smallest side is opposite the smallest angle, the largest side is opposite the largest angle, and so on. If this is not the case, you should go back and check your work.
Repeating this procedure using
law of sines applied to A and B
substitute given values multiply by 39b divide by sin 38° result
sin C sin A shows side c 33.6 cm. In table a c
form we have A. You’ve just learned to develop the law of sines and use it to solve ASA and AAS triangles
Angles
Sides (cm)
A 38°
a 39.0
B 110
b 59.5
C 32
c 33.6
Now try Exercises 7 through 24
B. Solving SSA Triangles—The Ambiguous Case
Figure 7.10 15
12
25
15
12 25
15
To understand the concept of unique and nonunique solutions regarding the law of sines, consider an instructor who asks a large group of students to draw a triangle with sides of 15 and 12 units, and a nonincluded 25° angle. Unavoidably, three different solutions will be offered (see Figure 7.10). For the SSA case, there is some doubt as to the number of solutions possible, or whether a solution even exists. To further understand why, consider a triangle with side c 30 cm, A 30°, and side a opposite the 30° angle (Figure 7.11— note the length of side b is yet to be determined). From our work with 30-60-90 triangles, we know if a 15 cm, it is exactly the length needed to form a right triangle (Figure 7.12). Figure 7.11
12
Figure 7.12 B
B
25 c 30 cm A
60
c 30 cm
a
a 15 cm
One solution
30 b 15√3
30 C
b
A
C
By varying the length of side a, we note three other possibilities. If side a 6 15 cm, no triangle is possible since a is too short to contact side b (Figure 7.13), while if 15 cm 6 side a 6 30 cm, two triangles are possible since side a will then intersect side b at two points, C1 and C2 (Figure 7.14). For future use, note that when two triangles are possible, angles C1 and C2 must be supplements since an-isosceles triangle is formed. Finally, if side a 7 30 cm, it will Figure 7.14
Figure 7.13
B
B c 30 cm
c 30 cm
a 10 cm
No 30 solution
A
b
C
A
Two a 20 cm solutions
30 C2 b
C1
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Figure 7.15
WORTHY OF NOTE
B
The case where three angles are known (AAA) is not considered since we then have a family of similar triangles, with infinitely many solutions.
c 30 cm
a 35 cm
30 A
C
b
intersect side b only once, forming the obtuse triangle shown in Figure 7.15, where we’ve assumed a 35 cm. Since the final solution is in doubt until we do further work, the SSA case is called the ambiguous case of the law of sines. EXAMPLE 2
Analyzing the Ambiguous Case of the Law of Sines Given triangle ABC with A 45° and side c 10012 mm, a. What length for side a will produce a right triangle where C 90°? b. How many triangles can be formed if side c 100√2 a 90 mm? c. If side a 120 mm, how many triangles can be formed? 45 A d. If side a 145 mm, how many triangles can be formed?
Solution
B
a ?? mm
C
a. Recognizing the sides of a 45-45-90 triangle are in proportion according to 1x:1x: 12x, side a must be 100 mm for a right triangle to be formed. b. If a 90 mm, it will be too short to contact side b and no triangle is possible. c. As shown in Figure 7.16, if a 120 mm, it will contact side b in two distinct places and two triangles are possible. d. If a 145 mm, it will contact side b only once, since it is longer than side c and will “miss” side b as it pivots around B (see Figure 7.17). One triangle is possible. Figure 7.16 Figure 7.17 B
B
a 120 mm
c 100√2 45 A
C2
C1
a 145 mm
c 100√2 Misses side b A
C1
45 b
Now try Exercises 25 and 26
For a better understanding of the SSA (ambiguous) case, scaled drawings can initially be used along with a metric ruler and protractor. Begin with a horizontal line segment of undetermined length to represent the third (unknown) side, and use the protractor to draw the given angle on either the left or right side of this segment (we chose the left). Then use the metric ruler to draw an adjacent side of appropriate length, choosing a scale that enables a complete diagram. For instance, if the given sides are 3 ft and 5 ft, use 3 cm and 5 cm instead 11 cm 1 ft2. If the sides are 80 mi and 120 mi, use 8 cm and 12 cm 11 cm 10 mi2, and so on. Once the adjacent side is drawn, start at the free endpoint and draw a vertical segment to represent the remaining side. A careful sketch will often indicate whether none, one, or two triangles are possible (see the Reinforcing Basic Concepts feature on page 751).
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EXAMPLE 3
Solving the Ambiguous Case of the Law of Sines Solve the triangle with side b 100 ft, side c 60 ft, and C 28.0°.
Solution
Two sides and an angle opposite are given (SSA), A and we draw a diagram to help determine the possibilities. Draw the horizontal segment of b 100 ft c 60 ft some length and use a protractor to mark C 28°. Then draw a segment 10 cm long 28 (to represent b 100 ft) as the adjacent side of B1 the angle, with a vertical segment 6 cm long from C the free end of b (to represent c 60 ft). It seems apparent that side c will intersect the horizontal side in two places (see figure), and two triangles are possible. We apply the law of sines to solve the first triangle, whose features we’ll note with a subscript of 1. sin B1 sin C c b sin B1 sin 28° 100 60 5 sin B1 sin 28° 3 B1 51.5°
law of sines
substitute
solve for sin B1 apply arcsine
Since B1 B2 180°, we know B2 128.5°. These values give 100.5° and 23.5° as the measures of A1 and A2, respectively. By once again applying the law of sines to each triangle, we find side a1 125.7 ft and a2 51.0 ft. See Figure 7.18.
WORTHY OF NOTE In Example 3, we found B2 using the property that states the angles in a triangle must sum to 180. We could also view B1 as a QI reference angle, which also gives a QII solution of 1180 51.52 128.5.
Angles
Sides (ft)
A1 100.5°
a1 125.7°
Angles
Sides (ft)
A2 23.5°
a2 51.0
B1 51.5°
b 100
B2 128.5°
b 100
C 28
c 60
C 28
c 60
Figure 7.18 First solution
A b 100 ft C
28.0
B2
b 100 ft
c 60 ft B1
C
28.0
Second solution
A1
100.5
a1 ≈ 125.7 ft
b 100 ft
c 60 ft 51.5
B1
C
A2
23.5
c 60 ft
28.0 128.5
a2 ≈ 51.0 ft B2
Now try Exercises 27 through 32
Admittedly, the scaled drawing approach has some drawbacks — it takes time to draw the diagrams and is of little use if the situation is a close call. It does, however, offer a deeper understanding of the subtleties involved in solving the SSA case. Instead of a scaled drawing, we can use a simple sketch as a guide, while keeping in mind the properties mentioned in the Worthy of Note on page 713.
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EXAMPLE 4
Solving the Ambiguous Case of the Law of Sines Solve the triangle with side a 220 ft, side b 200 ft, and A 40°.
Solution
The information given is again SSA, and we apply the law of sines with this in mind. sin A sin B a b sin 40° sin B 220 200 200 sin 40° sin B 220 B1 35.7°
C
law of sines
b 200 ft
a 220 ft
substitute
solve for sin B
40
A
a
B1
apply arcsine
This is the solution from Quadrant I. The QII solution is about 1180 35.72° 144.3°. At this point our solution tables have this form: Angles
B. You’ve just learned how to solve SSA triangles (the ambiguous case) using the law of sines
Sides (ft)
Angles
Sides (ft)
A 40
a 220
A 40
a 220
B1 35.7°
b 200
B2 144.3°
C1
c1
C2
b 200 c2
It seems reasonable to once again find the remaining angles and finish by reapplying the law of sines, but observe that the sum of the two angles from the second solution already exceeds 180°: 40° 144.3° 188.3°! This means no second solution is possible (side a is too long). We find that C1 104.3°, and applying the law of sines gives a value of c1 331.7 ft. Now try Exercises 33 through 44
C. Applications of the Law of Sines As “ambiguous” as it is, the ambiguous case has a number of applications in engineering, astronomy, physics, and other areas. Here is an example from astronomy.
EXAMPLE 5
Solving an Application of the Ambiguous Case — Planetary Distance The planet Venus can be seen from Earth with the naked eye, but as the diagram indicates, the position of Venus is uncertain (we are unable to tell if Venus is in the near position or the far position). Given the Earth is 93 million miles from the Sun and Venus is 67 million miles from the Sun, determine the closest and farthest possible distances that separate the planets in this alignment. Assume a viewing angle of 18° and that the orbits of both planets are roughly circular.
Solution
A close look at the information and diagram shows a SSA case. Begin by applying the law of sines where E S Earth, V S Venus, and S S Sun. sin V sin E e v sin V sin 18° 67 93 93 sin 18° sin V 67 V 25.4°
Venus
law of sines
67 substitute given values
Venus
solve for sin V apply arcsine
Earth
67 93
Sun
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This is the angle V1 formed when Venus is farthest away. The angle V2 at the closer distance is 180° 25.4° 154.6°. At this point, our solution tables have this form: Angles
Sides (106 mi)
E 18
e 67
V1 25.4°
v 93
S1
s1
Angles E 18
Sides (106 mi) e 67
V2 154.6°
v 93
S2
s2
For S1 and S2 we have S1 180 118 25.4°2 136.6° (larger angle) and S2 180 118 154.6°2 7.4° (smaller angle). Re-applying the law of sines for s1 shows the farther distance between the planets is about 149 million miles. Solving for s2 shows that the closer distance is approximately 28 million miles. Now try Exercises 47 and 48 EXAMPLE 6
Solving an Application of the Ambiguous Case — Radar Detection As shown in Figure 7.19, a radar ship is 30.0 mi off shore when a large fleet of ships leaves port at an angle of 43.0°. Figure 7.19 a. If the maximum range of the ship’s radar is 20.0 mi, Fleet will the departing fleet be detected? b. If the maximum range of the ship’s radar is 25.0 mi, Radar how far from port is the fleet when it is first detected? 20 mi
Solution
a. This is again the SSA (ambiguous) case. Applying the law of sines gives sin 43° sin 20 30 30 sin 43° sin 20 sin 1.02299754
Radar ship
43.0 30 mi Port
law of sines solve for sin result
No triangle is possible and the departing fleet will not be detected. b. If the radar has a range of 25.0 mi, the radar beam will intersect the projected course of the fleet in two places. sin sin 43° law of sines 25 30 30 sin 43° sin solve for sin 25 54.9° apply arcsine Figure 7.20
Radar 25 mi Radar ship
125.1
␣ 43.0 30 mi Port
C. You’ve just learned how to use the law of sines to solve applications
This is the acute angle related to the farthest point from port at which the fleet could be detected (see Figure 7.20). For the second triangle, we have 180° 54.9° 125.1° (the obtuse angle) giving a measure of 180° 1125.1° 43°2 11.9° for angle . For d as the side opposite we have sin 11.9° sin 43° 25 d 25 sin 11.9° d sin 43° 7.6
law of sines solve for d simplify
This shows the fleet is first detected about 7.6 mi from port. Now try Exercises 49 and 50
There are a number of additional, interesting applications in the exercise set (see Exercises 51 through 70).
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Section 7.1 Oblique Triangles and the Law of Sines
7.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. For the law of sines, if two sides and an angle opposite one side are given, this is referred to as the case, since the solution is in doubt until further work. 2. Two inviolate properties of a triangle that can be used to help solve the ambiguous case are: (a) the angles must sum to and (b) no sine ratio can exceed . 3. For positive k, the equation sin k has two solutions, one in Quadrant and the other in Quadrant .
4. After a triangle is solved, you should always check to ensure that the side is opposite the angle. 5. In your own words, explain why the AAS case results in a unique solution while the SSA case does not. Give supporting diagrams. 6. Explain why no triangle is possible in each case: a. A 34°, B 73°, C 52°, a 14¿, b 22¿, c 18¿ b. A 42°, B 57°, C 81°, a 7–, b 9–, c 22–
DEVELOPING YOUR SKILLS
Solve each of the following equations for the unknown part (if possible). Round sides to the nearest hundredth and degrees to the nearest tenth.
7.
sin 18.5° sin 32° a 15
sin C sin 19° 48.5 43.2
12.
15. side b 1013 in. A 30° B 60° 16.
121 29
19.
A 45° B 45° side c 15 12 mi
20.
21.
B 103.4° side a 42.7 km C 19.6°
22.
sin 38° sin B 125 190
Solve each triangle using the law of sines. If the law of sines cannot be used, state why. Draw and label a triangle or label the triangle given before you begin.
13. side a 75 cm A 38° B 64°
89 yd
sin 30° sin 52° b 12
sin B sin 105° 10. 3.14 6.28
sin 63° sin C 9. 21.9 18.6 11.
8.
18.
13
14. side b 385 m B 47° A 108° 23.
112 0.8 cm
98 56
24.
17.
47
33
19 in. 102
126.2 mi
22
7.2 m 27
A 20.4° side c 12.9 mi B 63.4°
37
27.5 cm
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Answer each question and justify your response using a diagram, but do not solve.
25. Given ^ABC with A 30° and side c 20 cm, (a) what length for side a will produce a right triangle? (b) How many triangles can be formed if side a 8 cm? (c) If side a 12 cm, how many triangles can be formed? (d) If side a 25 cm, how many triangles can be formed?
35.
36. c
a
33. a
58 ft c 67 ft b
59
C
34.
465 mm
59
C
b
37.
25
10 2.6 c
B
mi
a
mi
Use the law of sines to determine if no triangle, one triangle, or two triangles can be formed from the diagrams given (diagrams may not be to scale), then solve. If two solutions exist, solve both completely. Note the arrowhead marks the side of undetermined length.
62 b
38.
C
B 6 .8 c
5.9
10 13
km
10 13 km a
A
51 b
For Exercises 39 to 44, assume the law of sines is being applied to solve a triangle. Solve for the unknown angle (if possible), then determine if a second angle (0 180) exists that also satisfies the proportion.
39.
sin A sin 48° 12 27
40.
sin B sin 60° 32 9
41.
sin 57° sin C 35.6 40.2
42.
sin 65° sin B 5.2 4.9
43.
sin A sin 15° 280 52
44.
sin B sin 29° 121 321
a 432 cm
c
398 mm
25
32. side b 24.9 km B 45° side a 32.8 km
38 b 382 cm
B
10
31. side c 58 mi C 59° side b 67 mi
A
b
30. side c 10 13 in. A 60° side a 15 in.
A
38
C
28. side a 36.5 yd B 67° side b 12.9 yd
29. side c 25.8 mi A 30° side a 12.9 mi
6.7 km
2.9
27. side b 385 m B 67° side a 490 m
c
10.9 km a
26. Given ^ABC with A 60° and side c 6 13 m, (a) what length for side a will produce a right triangle? (b) How many triangles can be formed if side a 8 m? (c) If side a 10 m, how many triangles can be formed? (d) If side a 15 m, how many triangles can be formed? Solve using the law of sines and a scaled drawing. If two triangles exist, solve both completely.
B
C
WORKING WITH FORMULAS
45. Triple angle formula for sine: sin132 3 sin 4 sin3 Most students are familiar with the double angle formula for sine: sin122 2 sin cos . The
triple angle formula for sine is given here. Use the formula to find an exact value for sin 135°, then verify the result using a reference angle.
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46. Radius of a circumscribed circle: R
b 2 sin B
Given ^ABC is circumscribed by a circle of radius R, the radius of the circle can be found using the formula shown, where side b is opposite angle B. Find the radius of the circle shown.
721
Section 7.1 Oblique Triangles and the Law of Sines
B 51 c A
R a
b 15 cm
C
APPLICATIONS
47. Planetary distances: In a solar system that parallels our own, the planet Sorus can be seen from a Class M planet Exercise 47 with the naked eye, but Sorus as the diagram indicates, the position 51 of Sorus is uncertain. Sorus 51 Assume the orbits of Sun both planets are 82 roughly circular and that the viewing angle Class M is about 20°. If the Class M planet is 82 million miles from its sun and Sorus is 51 million miles from this sun, determine the closest and farthest possible distances that separate the planets in this alignment. 48. Planetary distances: In a solar system that parallels our own, the planet Cirrus can be seen from a Class M planet Exercise 48 with the naked eye, but Cirrus as the diagram indicates, the position 70 of Cirrus is uncertain. 70 Assume the orbits of Sun Cirrus both planets are 105 roughly circular and Class M that the viewing angle is about 15°. If the Class M planet is 105 million miles from its sun and Cirrus is 70 million miles from this sun, determine the closest and farthest possible distances that separate the planets in this alignment. 49. Radar detection: A radar ship is 15.0 mi off shore from a major port when a large fleet of ships leaves the port at the 35.0° angle shown. (a) If the maximum range of the Radar ship’s radar is 8.0 mi, will 8 mi the departing fleet be 35.0 detected? (b) If the 15 mi Radar Port maximum range of the ship ship’s radar is 12 mi, how far from port is the fleet when it is first detected?
50. Motion detection: To notify environmentalists of the presence of big game, motion detectors are installed 200 yd from a Exercise 50 watering hole. A pride of lions has just visited the hole and is leaving the Range 90 yd area at the 29.0° angle 29.0 shown. (a) If the Motion 200 yd Water maximum range of the detector motion detector is 90 yd, will the pride be detected? (b) If the maximum range of the motion detector is 120 yd, how far from the watering hole is the pride when first detected? Exercise 51 51. Distance between R cities: The cities of 80 km Van Gogh, 55 km Rembrandt, Pissarro, 40 and Seurat are S P situated as shown in V the diagram. Assume that triangle RSP is isosceles and use the law of sines to find the distance between Van Gogh and Seurat, and between Van Gogh and Pissarro. Exercise 52 52. Distance between M V O cities: The cities of 33 Mozart, Rossini, Offenbach, and Verdi 100 km 75 km are situated as shown in the diagram. Assume that triangle ROV is R isosceles and use the law of sines to find the distance between Mozart and Verdi, and between Mozart and Offenbach.
53. Distance to target: To practice for a competition, an archer stands as shown in the diagram and attempts to hit a moving target. (a) If the archer has a maximum effective 246 ft range of about 180 ft, can the target be 55 hit?
Exercise 53
Archer
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(b) What is the shortest range the archer can have and still hit the target? (c) If the archer’s range is 215 ft and the target is moving at 10 ft/sec, how many seconds is the target within range? 54. Distance to target: As part of an All-Star competition, a quarterback stands as shown in the diagram and attempts to hit a moving target Quarterback with a football. (a) If the quarterback has a maximum effective 50 yd range of about 35 yd, can the target be hit? (b) What is the shortest range the 53 quarterback can have and still hit the target? (c) If the quarterback’s range is 45 yd and the target is moving at 5 yd/sec, how many seconds is the target within range? In Exercises 55 and 56, three rods are attached via pivot joints so the rods can be manipulated to form a triangle. How many triangles can be formed if angle B must measure 26? If one triangle, solve it. If two, solve both. Diagrams are not drawn to scale.
55.
C
B
A
8
cm
cm
cm
12
??
56.
C
B
4
A
in .
11 in .
i ?? n.
In the diagrams given, the measure of angle C and the length of sides a and c are fixed. Side c can be rotated at pivot point B. Solve any triangles that can be formed. (Hint: Begin by using the grid to find lengths a and c, then find angle C.) 57.
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CHAPTER 7 Applications of Trigonometry
Length of a rafter: Determine the length of both roof rafters in the diagrams given.
59.
B Rafter c
Rafter a
53
32 C
A
42 ft
60.
B Rafter a
Rafter c
29
45 A
C
50 ft
61. Map distance: A cartographer is using aerial photographs to prepare a map for publication. The distance from Sexton to Rhymes is known to be 27.2 km. Using a protractor, the map T maker measures an angle of 96° from Sexton to Tarryson (a newly developed area) S 96 27 .2 58 and an angle of km 58° from Rhymes R to Tarryson. Compute each unknown distance. 62. Height of a fortress: An ancient fortress is built on a steep hillside, with the base of the fortress walls making a 102° angle with the hill. At the moment the fortress casts a 112-ft shadow, the angle of elevation from the tip of the shadow to the top of the wall is 32°. What is the distance from the base of the fortress to the top of the tower? Exercise 62
y a
B
C
c A x
58.
y
B
a
102 C
32 112 ft
c
x
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63. Distance to a fire: In Yellowstone Park, a fire is spotted by park rangers stationed in two towers that are known to be 5 mi apart. Using the line between them as a baseline, tower A reports the fire is at an angle of 39°, while tower B reports an angle of 58°. How far is the fire from the closer tower? 64. Width of a Exercise 64 canyon: To find the distance across Waimea Canyon (on the island of Kauai), a surveyor A 1000 m B marks a 1000-m 28 110 baseline along the southern rim. Using a transit, she sights on a large C rock formation on the north rim, and finds the angles indicated. How wide is the canyon from point B to point C? Exercise 65 65. Height of a blimp: When the GoodYear Blimp is viewed from the field-level bleachers near the southern end-zone of a 70 62 football stadium, the 145 yd N S angle of elevation is 62°. From the fieldlevel bleachers near the northern endzone, the angle of elevation is 70°. Find the height of the blimp if the distance from the southern bleachers to the northern bleachers is 145 yd. Eat at Ron
' s .....
..
66. Height of a blimp: The rock-n-roll group Pink Floyd just finished their most recent tour and has moored their touring blimp at a hangar near the airport in Indianapolis, Indiana. From an unknown distance away, the angle of elevation is measured at 26.5°. After moving 110 yd closer, the angle of
723
elevation has become 48.3°. At what height is the blimp moored? Exercises 67 and 68 67. Circumscribed triangles: A triangle is circumscribed within 5 cm the upper semicircle 27 63 drawn in the figure. Use 52 38 the law of sines to solve the triangle given the measures shown. What is the diameter of the circle? What do you notice about the triangle? 68. Circumscribed triangles: A triangle is circumscribed within the lower semicircle shown. Use the law of sines to solve the triangle given the measures shown. How long is the longer chord? What do you notice about the triangle? 69. Height of a mountain: Exercise 69 Approaching from the west, a group of hikers notes the angle of elevation to the summit of a steep 48 35 mountain is 35° at a 1250 m distance of 1250 meters. Arriving at the base of the mountain, they estimate this side of the mountain has an average slope of 48°. (a) Find the slant height of the mountain’s west side. (b) Find the slant height of the east side of the mountain, if the east side has an average slope of 65°. (c) How tall is the mountain? 70. Distance on a map: Coffeyville and Liberal, Kansas, lie along the state’s southern border and are roughly 298 miles apart. Olathe, Kansas, is Exercise 70 very near the state’s eastern border at an KANSAS Olathe angle of 23° with Liberal and 72° with Liberal Coffeyville 72 Coffeyville 23 298 mi (using the southern border as one side of the angle). (a) Compute the distance between these cities. (b) What is the shortest (straight line) distance from Olathe to the southern border of Kansas?
EXTENDING THE CONCEPT
71. Solve the triangle shown in three ways—first by using the law of sines, second using right triangle trigonometry, and third using the standard 30-60-90 triangle. Was one method “easier” than the others? Use these connections to express the irrational number 13 as a quotient of two trigonometric
functions of an angle. Can you find a similar expression for 12?
10.2 cm 30
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72. Use the law of sines and any needed identities to solve the triangles shown. 20 m
Exercise 74 74. Lines L1 and L2 shown are parallel. The three triangles between these lines all share the same base (in bold). Explain why all three triangles must have the same area.
B 2x
50 m
x 73. Similar to the law of A C sines, there is a law of tangents. The law says for any triangle 1 tan c 1A B2 d 2 ab . ABC, ab 1 tan c 1A B2 d 2 Use the law of tangents to solve the triangle shown. B 45 cm 19
L2
75. A UFO is sighted on a direct line between the towns of Batesville and Cave City, sitting stationary in the sky. The towns are 13 mi apart as the crow flies. A student in Batesville calls a friend in Cave City and both take measurements of the angle of elevation: 35° from Batesville and 42° from Cave City. Suddenly the UFO zips across the sky at a level altitude heading directly for Cave City, then stops and hovers long enough for an additional measurement from Batesville: 24°. If the UFO was in motion for 1.2 sec, at what average speed (in mph) did it travel?
31
A
L1
C
MAINTAINING YOUR SKILLS
76. (6.7) Find all solutions to the equation 2 sin x cos12x2
78. (3.3) Write an equation for the real polynomial with smallest degree, possible, having the solutions x 2, x 1, and x 1 2i.
77. (6.2) Prove the given identity: tan2x sin2x tan2x sin2x
79. (2.3) Given the points 15, 32 and (4, 2), find (a) the equation of the line containing these points and (b) the distance between these points.
7.2 The Law of Cosines; the Area of a Triangle Learning Objectives In Section 7.2 you will learn how to:
A. Apply the law of cosines when two sides and an included angle are known (SAS)
B. Apply the law of cosines when three sides are known (SSS)
C. Solve applications using the law of cosines
D. Use trigonometry to find the area of a triangle
The distance formula d 21x2 x1 2 2 1y2 y1 2 2 is traditionally developed by placing two arbitrary points on a rectangular coordinate system and using the Pythagorean theorem. The relationship known as the law of cosines is developed in much the same way, but this time by using three arbitrary points (the vertices of a triangle). After giving the location of one vertex in trigonometric form, we obtain a formula that enables us to solve SSS and SAS triangles, which cannot be solved using the law of sines alone.
A. The Law of Cosines and SAS Triangles In situations where all three sides are known (but no angles), the law of sines cannot be applied. The same is true when two sides and the angle between them are known, since we must have an angle opposite one of the sides. In these two cases (Figure 7.21), side-side-side (SSS) and side-angle-side (SAS), we use the law of cosines. Figure 7.21 Law of Sines cannot be applied. B c 7 ft A
B
SSS
a 16 ft
b 18 ft
C
c 7 ft A
95 SAS b
a 16 ft C
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Figure 7.22 To solve these cases, it’s evident we need additional insight on the unknown angles. Cony C (b cos , b sin ) sider a general triangle ABC on the rectangular coordinate system conveniently placed with b vertex A at the origin, side c along the x-axis, and y a the vertex C at some point (x, y) in QI (Figure A x c 7.22). Note cos giving x b cos , and B xc x (0, 0) b x y sin or y b sin . This means we can b write the point (x, y) as (b cos , b sin ) as shown, and use the Pythagorean theorem with side x c to find the length of side a of the exterior, right triangle. It follows that
WORTHY OF NOTE Keep in mind that the sum of any two sides of a triangle must be greater than the remaining side. For example, if a 7, B 20, and C 12, no triangle is possible (see the figure). 12 cm
7 cm 20 cm
a2 1x c2 2 y2 1b cos c2 2 1b sin 2 2 b2cos2 2bc cos c2 b2sin2 b2cos2 b2sin2 c2 2bc cos b2 1cos2 sin22 c2 2bc cos b2 c2 2bc cos
Pythagorean theorem substitute b cos for x and b sin for y square binomial, square term rearrange terms factor out b2 substitute 1 for cos2 sin2
We now have a formula relating all three sides and an included angle. Since the naming of the angles is purely arbitrary, the formula can be used in any of the three forms shown. For the derivation of the formula where B is acute, see Exercise 61. The Law of Cosines For any triangle ABC and corresponding sides a, b, and c,
"
"
a2 b2 c2 2bc cos A b2 a2 c2 2ac cos B c2 a2 b2 2ab cos C
Note the relationship between the indicated angle and the squared term. In words, the law of cosines says that the square of any side is equal to the sums of the squares of the other two sides, minus twice their product times the cosine of the included angle. It is interesting to note that if the included angle is 90°, the formula reduces to the Pythagorean theorem since cos 90° 0. EXAMPLE 1
Verifying the Law of Cosines B
For the triangle shown, verify: a. c2 a2 b2 2ab cos C b. b2 a2 c2 2ac cos B Solution
c 20
Note the included angle C is a right angle. A a. c2 a2 b2 2ab cos C 2 2 2 20 10 110 132 2110 132 1102cos 90° 400 100 300 0 400 ✓ b2 a2 c2 2ac cos B b. 110132 2 102 202 21102 1202cos 60° 1 300 100 400 400a b 2 500 200 300 ✓
30 30 b 10 √3
60 a 10 C
Now try Exercises 7 through 14
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CAUTION
When evaluating the law of cosines, a common error is to combine the coefficient of cos with the squared terms (the terms shown in blue): a2 b2 c2 2bc cos A. Be sure to use the correct order of operations when simplifying the expression.
Once additional information about the triangle is known, the law of sines can be used to complete the solution.
EXAMPLE 2
Solving a Triangle Using the Law of Cosines—SAS Solve the triangle shown. Write the solution in table form.
Solution
WORTHY OF NOTE After using the law of cosines, we often use the law of sines to complete a solution. With a little foresight, we can avoid the ambiguous case—since the ambiguous case occurs only if could be obtuse (the largest angle of the triangle). After calculating the third side of a SAS triangle using the law of cosines, use the law of sines to find the smallest angle, since it cannot be obtuse. For SSS triangles, using the law of cosines to find the largest angle will ensure that when the second angle is found using the law of sines, it cannot be obtuse.
B 95
c 7.0 ft
The given information is SAS. Apply the law of A cosines with respect to side b and B: 2 2 2 law of cosines with respect to b b a c 2ac cos B 2 2 2 b 1162 172 21162 172cos 95° substitute known values simplify 324.522886 b 18.0 1324.522886 18.0
a 16.0 ft C
b
We now have side b opposite B, and complete the solution using the law of sines, selecting the smaller angle to avoid the ambiguous case (we could apply the law of cosines again, if we chose). sin C sin B c b sin 95° sin C 7 18 sin 95° sin C 7 # 18 7 sin 95° C sin1a b 18 22.8°
A. You’ve just learned how to apply the law of cosines when two sides and an included angle are known (SAS)
law of sines applied to C and B
substitute given values
solve for sin C apply sin1
Angles result
Sides (ft)
A 62.2° a 16.0
For the remaining angle, C: 180° 195° 22.8°2 62.2°. The finished solution is shown in the table (given information is in bold).
B 95.0 b 18.0 C 22.8° c 7.0
Now try Exercises 15 through 26
B. The Law of Cosines and SSS Triangles When three sides of a triangle are given, we use the law of cosines to find any one of the three angles. As a good practice, we first find the largest angle, or the angle opposite the largest side. This will ensure that the remaining two angles are acute, avoiding the ambiguous case if the law of sines is used to complete the solution.
EXAMPLE 3
Solving a Triangle Using the Law of Cosines—SSS Solve the triangle shown. Write the solution in table form, with angles rounded to tenths of a degree.
C b 25 m A
c 28 m
a 15 m B
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Solution
The information is given as SSS. Since side c is the longest side, we apply the law of cosines with respect to side c and C: c2 a2 b2 2ab cos C 282 1152 2 1252 2 211521252cos C 784 850 750 cos C 66 750 cos C 0.088 cos C cos10.088 C 85.0 C
law of cosines with respect to c substitute known values simplify isolate variable term divide solve for C result
We now have side c opposite C and finish up using the law of sines. sin A sin C a c sin 85° sin A 15 28 sin 85° sin A 15 # 28 0.5336757311 A sin10.5336757311 32.3° B. You’ve just learned how to apply the law of cosines when three sides are known (SSS)
law of sines applied to A and C
substitute given values
solve for sin A simplify solve for A result
Since the remaining angle must be acute, we compute it directly. B: 180° 185° 32.3°2 62.7°. The finished solution is shown in the table, with the information originally given shown in bold.
Angles
Sides (m)
A 32.3°
a 15
B 62.7°
b 25
C 85°
c 28
Now try Exercises 27 through 34
C. Applications Using the Law of Cosines As with the law of sines, the law of cosines has a large number of applications from very diverse fields including geometry, navigation, surveying, and astronomy, as well as being put to use in solving recreational exercises (see Exercises 37 through 40). EXAMPLE 4
Solving an Application of the Law of Cosines—Geological Surveys A volcanologist needs to measure the distance across the base of an active volcano. Distance AB is measured at 1.5 km, while distance AC is 3.2 km. Using a theodolite (a sighting instrument used by surveyors), angle BAC is found to be 95.7°. What is the distance across the base?
Solution
C. You’ve just learned how to solve applications using the law of cosines
The information is given as SAS. To find the distance BC across the base of the volcano, we apply the law of cosines with respect to A.
B
C
1.5 km
a2 b2 c2 2bc cos A 11.52 2 13.22 2 211.52 13.22cos 95.7° 13.44347 a 3.7
3.2 km 95.7 A
law of cosines with respect to a substitute known values simplify solve for a
The volcano is approximately 3.7 km wide at its base. Now try Exercises 41 through 52
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A variety of additional applications can be found in the exercise set (see Exercises 45 through 52).
D. Trigonometry and the Area of a Triangle While you’re likely familiar with the most common formula for a triangle’s area, A 12 bh, there are actually over 20 formulas for computing this area. Many involve basic trigonometric ideas, and we’ll use some of these ideas to develop three additional formulas here. Figure 7.23 For A 12bh, recall that b represents the length of a designated base, and h represents the B length of the altitude drawn to that base (see Figure 7.23). If the height h is unknown, but a c sides a and b with angle C between them are h h known, h can be found using sin C , giving a h a sin C. Figure 7.24 indicates the same C b A result is obtained if C is obtuse, since Figure 7.24 sin1180° C2 sin C. Substituting B for in the formula A 12 b gives A 12 b , or A 12 ab sin C in more common form. Since naming the angles in a c triangle is arbitrary, the formulas A 12 bc sin A h a 1 and A 2 ac sin B can likewise be obtained. 180 C
C
b
A
Area Given Two Sides and an Included Angle (SAS) 1. A
1 ab sin C 2
2. A
1 bc sin A 2
3. A
1 ac sin B 2
In words, the formulas say the area of a triangle is equal to one-half the product of two sides times the sine of the angle between them.
EXAMPLE 5
Finding the Area of a Nonright Triangle Find the area of ^ ABC, if a 16.2 cm, b 25.6 cm, and C 28.3°.
Solution
A
Since sides a and b and angle C are given, we apply the first formula. 1 ab sin C 2 1 116.22 125.62 sin 28.3° 2 98.3 cm2
A
area formula
25.6 cm
C
28.3 16.2 cm
B
substitute 15.2 for a, 25.6 for b, and 28.3° for C result
The area of this triangle is approximately 98.3 cm2. Now try Exercises 53 and 54
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Using these formulas, a second formula type requiring two angles and one side 2A 1 (AAS or ASA) can be developed. Solving for b in A bc sin A gives b . 2 c sin A 1 Likewise, solving for a in A ac sin B yields a . Substituting these for b 2 1 and in A ab sin C gives 2 A 2A
1# # # a b sin C 2
given formula
2A # 2A # sin C c sin B c sin A
substitute
c2 sin A # sin B 2A # sin C
2A 2A for a, for b ; multiply by 2 c sin B c sin A
multiply by c sin A # c sin B ; divide by 2A
2
c sin A sin B A 2 sin C
solve for A
As with the previous formula, versions relying on side a or side b can also be found. Area Given Two Angles and Any Side (AAS/ASA) 1. A
EXAMPLE 6
c2 # sin A # sin B 2 sin C
2. A
a2 # sin B # sin C 2 sin A
3. A
b2 # sin A # sin C 2 sin B
Finding the Area of a Nonright Triangle Find the area of ^ABC if a 34.5 ft, B 87.9°, and C 29.3°.
Solution
A
Since side a is given, we apply the second version of the formula. First we find the measure of angle A, then make the appropriate substitutions: A 180° 187.9 29.32° 62.8° a2sin B sin C A 2 sin A 134.52 2sin 87.9° sin 29.3° 2 sin 62.8° 327.2 ft2
C
29.3 34.5 ft
87.9 B
area formula—side a
substitute 34.5 for a, 87.9° for B, 29.3° for C, and 62.8° for A simplify
The area of this triangle is approximately 327.2 ft2. Now try Exercises 55 and 56
Our final formula for a triangle’s area is a useful addition to the other two, as it requires only the lengths of the three sides. The development of the formula requires only a Pythagorean identity and solving for the angle C in the law of cosines, as follows. a2 b2 2ab cos C c2
law of cosines
a b c 2ab cos C
add 2ab cos C, subtract c2
a2 b2 c2 cos C 2ab
divide by 2ab
2
2
2
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Beginning with our first area formula, we then have 1 ab sin C 2
previous area formula
1 ab 21 cos2C 2
sin2C cos2C 1 S sin C 21 cos2C
a2 b2 c2 2 1 ab 1 a b 2 B 2ab
substitute
A
a2 b2 c2 for cos C 2ab
and can find the area of any triangle given its three sides. While the formula certainly serves this purpose, it is not so easy to use. By working algebraically and using the perimeter of the triangle, we can derive a more elegant version. 1 2 2 a2 b2 c2 2 a b c1 a b d 4 2ab
square both sides
1 2 2 a2 b2 c2 a2 b2 c2 a b c1 a bd c1 a bd 4 2ab 2ab
factor as a difference of squares
1 2 2 2ab a2 b2 c2 2ab a2 b2 c2 ab c dc d 4 2ab 2ab
1
2 2 2 1a2 2ab b2 2 c2 1 1a 2ab b 2 c c dc d 4 2 2
rewrite/regroup numerator; cancel a2b2
A2
1 3 1a b2 2 c2 4 3 c2 1a b2 2 4 16 1 1a b c21a b c2 1c a b2 1c a b2 16
2ab ; combine terms 2ab
factor (binomial squares)
factor (difference of squares)
For the perimeter p a b c, we note the following relationships: a b c p 2c
c a b p 2b
c a b p 2a
and making the appropriate substitutions gives
1 p1p 2c21p 2b21p 2a2 16
substitute
While this would provide a usable formula for the area in terms of the perimeter, we p abc . Since can refine it further using the semiperimeter s 2 2 1 4 1 a b , we can write the expression as 16 2
p p 2c p 2b p 2a a ba ba b 2 2 2 2
rewrite expression
p p p p a cb a bb a ab 2 2 2 2
simplify
s1s c21s b2 1s a2
substitute s for
p 2
Taking the square root of each side produces what is known as Heron’s formula. A 1s1s a21s b2 1s c2
Heron’s formula
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Heron’s Formula Given ^ ABC with sides a, b, and c and semiperimeter s
abc , 2
the area of the triangle is A 1s1s a21s b2 1s c2 EXAMPLE 7
Solving an Application of Heron’s Formula—Construction Planning A New York City developer wants to build condominiums on the triangular lot formed by Greenwich, Watts, and Canal Streets. How many square meters does the developer have to work with if the frontage along each street is approximately 34.1 m, 43.5 m, and 62.4 m, respectively?
Solution
The perimeter of the lot is p 34.1 43.5 62.4 140 m, so s 70 m. By direct substitution we obtain A 1s1s a21s b21s c2
D. You’ve just learned how to use trigonometry to find the area of a triangle
Heron’s formula
170170 34.12170 43.52170 62.42
substitute known values
170135.92126.5217.62
simplify
1506,118.2
multiply
711.4
result
The developer has about 711.4 m2 of land to work with. Now try Exercises 57 and 58
For a derivation of Heron’s formula that does not depend on trigonometry, see Appendix IV.
7.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. When the information given is SSS or SAS, the law of is used to solve the triangle. 2. Fill in the blank so that the law of cosines is complete: c2 a2 b2 cos C 3. If the law of cosines is applied to a right triangle, the result is the same as the theorem, since cos 90° 0.
4. Write out which version of the law of cosines you would use to begin solving the A triangle shown:
B
52 m 17 37 m
C
5. Solve the triangle in Exercise 4 using only the law of cosines, then by using the law of cosines followed by the law of sines. Which method was more efficient? 6. Begin with a2 b2 c2 2bc cos A and write cos A in terms of a, b, and c (solve for cos A). Why must b2 c2 a2 6 2bc hold in order for a solution to exist?
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DEVELOPING YOUR SKILLS
Determine whether the law of cosines can be used to begin the solution process for each triangle.
7.
8. A
B 28 km
9.
15 mi 12 mi
11.
B
10.
A
15 in.
85
A
30 km
C
12 in.
15 km
C
C
6.8 AU
C
49
23. side c 25.8 mi B 30° side a 12.9 mi Solve using the law of cosines (if possible). Label each triangle appropriately before you begin.
24.
92
88
B
B
12.
B
12.5 yd
29 49 cm
C
C
52.4 km
80
70
15 yd
25. B
A 538 mm
32.5 ft
577 mi C
Solve each of the following equations for the unknown part.
27. side c 10 13 in. side b 6 13 in. side a 15 13 in.
30. B
432 cm 382 cm
16. 12.9 15.2 9.8 2115.2219.82cos C 2
2
17. a2 92 72 2192 172cos 52°
19. 102 122 152 21122 1152cos A
A
31.
A
2.3
21. side a 75 cm C 38° side b 32 cm
10 25
2
Solve each triangle using the law of cosines.
2.9 10 25 m
i
20. 202 182 98 2118221982cos B 2
C
208 cm
mi
18. b2 3.92 9.52 213.9219.52cos 30°
28. side a 282 ft side b 129 ft side c 300 ft
29. side a 32.8 km side b 24.9 km side c 12.4 km
15. 42 52 62 2152 162cos B
2
C
A
105
2
27.5 ft
141
26.6 km
30 45 1114.7 mi
A
C
B
A
B 816 mi
29 465 mm
A
B
14.
6.7 km C
26.
50 km 30
C
98
A 8 yd
For each triangle, verify all three forms of the law of cosines.
13.
B 10.9 km
B
50 cm A
A
22. side b 385 m C 67° side a 490 m
C
25
4.1
0 1
mi
B
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32.
33. side a 12 13 yd side b 12.9 yd side c 9.2 yd
3
10 1 8 6.
4.9
2.9 1013 km
km
C
B
34. side a 36.5 AU side b 12.9 AU side c 22 AU
A 13 km 10
WORKING WITH FORMULAS
35. Alternative form for the law of cosines: B
b2 c2 a2 2bc 52 m 39 m By solving the law of cosines for the cosine of the angle, the formula A C 37 m can be written as shown. Derive this formula (solve for cos ), beginning from a2 b2 c2 2bc cos A, then use this form to begin the solution of the triangle given. cos A
733
Section 7.2 The Law of Cosines; the Area of a Triangle
36. The Perimeter of a Trapezoid: P a b h1csc csc ) a The perimeter of a trapezoid can be h found using the formula shown, where a and b b represent the lengths of the parallel sides, h is the height of the trapezoid, and and are the base angles. Find the perimeter of Trapezoid Park (to the nearest foot) if a 5000 ft, b 7500 ft, and h 2000 ft, with base angles 42° and 78°.
APPLICATIONS
37. Distance between cities: The satellite Mercury II measures its distance from Portland and from Green Bay using radio waves as shown. Using an on-board sighting device, the satellite determines that M is 99°. How many miles is it from Portland to Green Bay?
38. Distance between cities: Voyager VII measures its distance from Los Angeles and from San Francisco using radio waves as shown. Using an on-board sighting device, the satellite determines V is 95°. How many kilometers separate Los Angeles and San Francisco? Voyager VII
Mercury II
V
M
95
99
488 km
311 km
1435 mi
692 mi S
P
L
G San Francisco
Portland
m
Green Bay
WORTHY OF NOTE In navigation, there are two basic methods for defining a course. Headings are understood to be the amount of rotation from due north in the clockwise direction 10 6 360°2 . Bearings give the number of degrees East or West from a due North or due South orientation, hence the angle indicated is always less than 90°. For instance, the bearing N 25° W and a heading of 335° would indicate the same direction.
Los Angeles
v
39. Trip planning: A business executive is going to fly the corporate jet from Providence to College Cove. Exercise 39 North West
College Cove C
East South
p 198 mi
M Mannerly Main
m 354 mi
c 423 mi
P Providence
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She calculates the distances shown using a map, with Mannerly Main for reference since it is due east of Providence. What is the measure of angle P? What heading should she set for this trip? 40. Trip planning: A troop of Scouts is planning a hike from Montgomery to Pattonville. They calculate the distances shown using a map, using Bradleyton for reference since it is due east of Montgomery. What is the measure of angle M? What heading should they set for this trip? Exercise 40 p 21 mi
M
B
b 18 mi
m 10 mi P
41. Runway length: Surveyors are measuring a large, marshy area outside of the city as part of a feasibility study for the construction of a new airport. Using a theodolite and the markers shown gives the information indicated. If the main runway must be at least 11,000 ft long, and environmental concerns are satisfied, can the airport be constructed at this site (recall that 1 mi 5280 ft)?
43. Aerial distance: Two planes leave Los Angeles International Airport at the same time. One travels due west (at heading 270°) with a cruising speed of 450 mph, going to Tokyo, Japan, with a group that seeks tranquility at the foot of Mount Fuji. The other travels at heading 225° with a cruising speed of 425 mph, going to Brisbane, Australia, with a group seeking adventure in the Great Outback. Approximate the distance between the planes after 5 hr of flight. 44. Nautical distance: Two ships leave Honolulu Harbor at the same time. One travels 15 knots (nautical miles per hour) at heading 150°, and is going to the Marquesas Islands (Crosby, Stills, and Nash). The other travels 12 knots at heading 200°, and is going to the Samoan Islands (Samoa, le galu a tu). How far apart are the two ships after 10 hr? 45. Geoboard geometry: A rubber band is placed on a geoboard (a board with all pegs 1 cm apart) as shown. Approximate the perimeter of the triangle formed by the rubber band and the angle formed at each vertex. (Hint: Use a standard triangle to find A and length AB.) Exercise 45 B
C A 1.8 mi
2.6 mi 51
42. Tunnel length: An engineering firm decides to bid on a proposed tunnel through Harvest Mountain. In order to find the tunnel’s length, the measurements shown are taken. (a) How long will the tunnel be? (b) Due to previous tunneling experience, the firm estimates a cost of $5000 per foot for boring through this type of rock and constructing the tunnel according to required specifications. If management insists on a 25% profit, what will be their minimum bid to the nearest hundred?
685 yd
610 yd 79
46. Geoboard geometry: A rubber band is placed on a geoboard as shown. Approximate the perimeter of the triangle formed by the rubber band and the angle formed at each vertex. (Hint: Use a Pythagorean triple, then find angle A.) Exercise 46
B
C A
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Section 7.2 The Law of Cosines; the Area of a Triangle
In Exercises 47 and 48, three rods are attached via pivot joints so the rods can be manipulated to form a triangle. Find the three angles of the triangle formed.
47.
C B A
9 cm
12 cm 20 cm
48. A
B C 6 in.
11 in. 16 in.
Exercise 49
49. Pentagon perimeter: Find the perimeter of a regular pentagon that is circumscribed by a circle with radius r 10 cm.
m
10 c
50. Hexagon perimeter: Find the perimeter of a regular hexagon that is circumscribed by a circle with radius r 15 cm.
Exercise 55 55. Pricing for undeveloped lots: Undeveloped land in a popular resort area is selling for $3,000,000/acre. Given the dimensions of the lot 42° 65° shown, (a) find what 299 ft percent of a full acre is being purchased (to the nearest whole percent), and (b) compute the cost of the lot. Recall that 1 acre 43,560 ft2. 56. Area of the Nile River Delta: The Nile River Delta is one of the world’s largest. The delta begins slightly up river from the Egyptian capitol (Cairo) and stretches along the Mediterranean from Alexandria in the west to Port Said in the east (over 240 km). Approximate the area of this rich agricultural region using the two triangles shown.
Alexandria
20° 42°
Solve the following triangles. Round sides and angles to the nearest tenth. (Hint: Use Pythagorean triples.)
51.
52.
y A
C
218 km Nile Delta
20° 45°
Port Said
Cairo
y A
B
B
x
C
x
Exercise 53 53. Billboard design: Creative Designs iNc. has designed a flashy, new billboard for "Spice one of its clients. Using a rectangular highway up" billboard measuring 20 ft ␣ by 30 ft, the primary advertising area is a triangle formed using the diagonal of the billboard as one side, and one-half the base as another (see figure). Use the dimensions given to find the angle formed at the corner, then compute the area of the triangle using two sides and this included angle.
54. Area caught by Exercise 54 surveillance camera: A stationary 110 ft surveillance camera is 225 ft set up to monitor 38° activity in the parking lot of a shopping mall. If the camera has a 38° field of vision, how many square feet of the parking lot can it tape using the dimensions given?
57. Area of the Yukon Territory: The Yukon Territory in northwest Canada is roughly triangular in shape with sides of 1289 km, 1063 km, and 922 km. What is the approximate area covered by this territory?
YUKON
58. Alternate method for computing area: Referring to Exercise 53, since the dimensions of the billboard are known, all three sides of the triangle can actually be determined. Find the length of the sides rounded to the nearest whole, then use Heron’s formula to find the area of the triangle. How close was your answer to that in Exercise 53?
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CHAPTER 7 Applications of Trigonometry
EXTENDING THE CONCEPT
59. No matter how hard I try, I cannot solve the triangle shown. Why? Exercise 59 Sputnik 10 B
502 mi
387 mi
A
902 mi
C
60. In Figure 7.22 (page 725), note that if the x-coordinate of vertex B is greater than the x-coordinate of vertex C, B becomes acute, and C obtuse. How does this change the relationship
between x and c? Verify the law of cosines remains unchanged. Exercise 61 61. For the triangle shown, B verify that 117 c b cos A a cos B, 53.9 mi 37 mi then use two different 25 38 forms of the law of A C 78 mi cosines to show this relationship holds for any triangle ABC. 62. Most students are familiar with this double-angle formula for cosine: cos122 cos2 sin2. The triple angle formula for cosine is cos132 4 cos3 3 cos . Use the formula to find an exact value for cos 135°. Show that you get the same result as when using a reference angle.
MAINTAINING YOUR SKILLS
63. (4.4) Write the expression as a single term in simplest form: 2 log24 2 log23 2 log26 64. (5.4) State exact forms for each of the following: 7 sina b, cosa b, and tana b. 6 6 3
65. (5.7) Use fundamental identities to find the values of all six trig functions that satisfy the conditions. 5 sin x and cos x 7 0. 13 66. (3.2) Use synthetic division to show f 122 7 0 for f 1x2 x4 x3 7x2 x 6.
7.3 Vectors and Vector Diagrams Learning Objectives In Section 7.3 you will learn how to:
A. Represent a vector quantity geometrically
B. Represent a vector
The study of vectors is closely connected to the study of force, motion, velocity, and other related phenomena. Vectors enable us to quantify certain characteristics of these phenomena and to physically represent their magnitude and direction with a simple model. To quantify something means we assign it a relative numeric value for purposes of study and comparison. While very uncomplicated, this model turns out to be a powerful mathematical tool.
quantity graphically
C. Perform defined
A. The Notation and Geometry of Vectors
operations on vectors
D. Represent a vector quantity algebraically and find unit vectors
E. Use vector diagrams to solve applications
Measurements involving time, area, volume, energy, and temperature are called scalar measurements or scalar quantities because each can be adequately described by their magnitude alone and the appropriate unit or “scale.” The related real number is simply called a scalar. Concepts that require more than a single quantity to describe their attributes are called vector quantities. Examples might include Figure 7.25 force, velocity, and displacement, which require knowing a A B magnitude and direction to describe them completely. To begin our study, consider two identical airplanes flying Line AB at 300 mph, on a parallel course and in the same direction. A B Although we don’t know how far apart they are, what direction they’re flying, or if one is “ahead” of the other, we can still Segment AB model, “300 mph on a parallel course,” using directed line segA B ments (Figure 7.25). Drawing these segments parallel with the Directed segment AB arrowheads pointing the same way models the direction of
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flight, while drawing segments the same length indicates the velocities are equal. The directed segment used to represent a vector quantity is simply called a vector. In this case the length of the vector models the magnitude of the velocity, while the arrowhead indicates the direction of travel. The origin of the segment is called the initial point, with the arrowhead pointing to the terminal point. Both are labeled using capital letters as shown in Figure 7.26 and we call this a geometric representation of the vectors. Vectors can be !named using the initial and terminal points that define them (initial ! point first) as in AB and CD , or using a bold, small case letter with the favorites being v (first letter of the word vector) and u. Other small Figure 7.27 case, bold letters can be used and subscripted vector names (v1, v2, v3, . . .) are also common. Two vectors are equal if they have ! the same magnitude ! and direction. For! u AB ! and v CD , we can say u v or AB CD since both airplanes are v 300 flying at the same speed and in the same direction mph (Figure 7.26). Based on these conventions, it seems reasonx able to represent an airplane flying at 600 mph 150 600 with a vector that is twice as long as u and v, and w mph mph one flying at 150 mph with a vector that is half as long. If all planes are flying in the same direction on a parallel course, we can represent them geometrically as shown in Figure 7.27, and state that w 2v, x 12v, and w 4x. The multiplication of a vector by a constant is called scalar multiplication, since the product changes only the scale or size of the vector and not its direction. Finally, consider the airplane represented by vector v2, flying at 200 mph on a parallel course but in the opposite direction (see Figure 7.28). In this case, the directed 2 segment will be 200 300 3 as long as v and point in the opposite or “negative” direction. In perspective we can now state: v2 23v, v2 13w, v2 43x, or any equivalent form of these equations.
Figure 7.26 B D
300 mph A
737
Section 7.3 Vectors and Vector Diagrams
300 mph C
Figure 7.28
v 300 mph v2 200 mph
EXAMPLE 1
Using Geometric Vectors to Model Forces Acting on a Point Two tugboats are attempting to free a barge that is stuck on a sand bar. One is pulling with a force of 2000 newtons (N) in a certain direction, the other is pulling with a force of 1500 N in a direction that is perpendicular to the first. Represent the situation geometrically using vectors.
Solution
A. You’ve just learned how to represent a vector quantity geometrically
We could once again draw a vector of arbitrary length and let it represent the 2000-N force applied by the first tugboat. For better perspective, we can actually use a ruler and choose a convenient length, say 6 cm. We then represent the pulling force of the second tug 3 with a vector that is 1500 2000 4 as long (4.5 cm), drawn at a 90° angle with relation to the first. Note that many correct solutions are possible, depending on the direction of the first vector drawn.
3 35
N
Now try Exercises 7 through 12
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CHAPTER 7 Applications of Trigonometry
B. Vectors and the Rectangular Coordinate System Representing vectors geometrically (with a directed Figure 7.29 line segment) is fine for simple comparisons, but y many applications involve numerous vectors acting on (3, 4) a single point or changes in a vector quantity over time. For these situations, a graphical representation v u in the coordinate plane helps to analyze this interac3 tion. The only question is where to place the vector x on the grid, and the answer is—it really doesn’t matw 5 4 ter. Consider the three vectors shown in Figure 7.29. From the initial point of each, counting four units in the vertical direction, then three units in the horizontal direction, puts us at the terminal point. This shows the vectors are all 5 units long (since a 3-4-5 triangle is formed) and are all parallel ¢y 4 ). In other words, they are equivalent vectors. (since slopes are equal: ¢x 3 Since a vector’s location is unimportant, we can replace any given vector with a unique and equivalent vector whose initial point is (0, 0), called the position vector. WORTHY OF NOTE
Position Vectors
For vector u, the initial and terminal points are (5, 1) and (2, 3), respectively, yielding the position vector H2 152, 3 112I H3, 4I as before.
For a vector v with initial point (x1, y1) and terminal point (x2, y2), the position vector for v is v Hx2 x1, y2 y1I,
an equivalent vector with initial point (0, 0) and terminal point 1x2 x1, y2, y1 2.
For instance, the initial and terminal points of vector w in Figure 7.29 are 12, 42 and (5, 0), respectively, with 15 2, 0 142 2 13, 42. Since (3, 4) is also the terminal point of v (whose initial point is at the origin), v is the position vector for u and w. This observation also indicates that every geometric vector in the xy-plane corresponds to a unique ordered pair of real numbers (a, b), with a as the horizontal component and b as the vertical component of the vector. As indicated, we denote the vector in component form as Ha, bI, using the new notation to prevent confusing vector Ha, bI with the ordered pair (a, b). Finally, while each of the vectors in Figure 7.29 has a component form of H3, 4I, the horizontal and vertical components can be read directly only from v H3, 4I, giving it a distinct advantage.
EXAMPLE 2
Solution
Verifying the Components of a Position Vector
Vector v H12, 5I has initial point (4, 3). a. Find the coordinates of the terminal point. b. Verify the position vector for v is also H12, 5I and find its length. a. Since v has a horizontal component of 12 and a 12 r vertical component of 5, we add 12 to the xcoordinate and 5 to the y-coordinate of the initial v point. This gives a terminal point of 112 142, 5 32 18, 22. H12, 5I b. To verify we use the initial and terminal points to compute Hx2 x1, y2, y1I, giving a position vector y of H8 142, 2 3I H12, 5I. To find its length we can use either the Pythagorean theorem or simply note that a 5-12-13 Pythagorean triple is formed. Vector v has a length of 13 units.
x 5
Now try Exercises 13 through 20
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Section 7.3 Vectors and Vector Diagrams
Figure 7.30 For the remainder of this section, vector v Ha, bI will y refer to the unique position vector for all those equivalent to v. Upon considering the graph of Ha, bI (shown Ha, bI in QI for convenience in Figure 7.30), several things are |v| immediately evident. The length or magnitude of the vecb tor, which is denoted v, can be determined using the r Pythagorean theorem: v 2a2 b2. In addition, basic a x trigonometry shows the horizontal component can be a found using cos or a vcos , with the vertical component being v b sin or b vsin . Finally, we note the angle can be determined using v b b tan a b, or r tan1a b and the quadrant of v. a a
Vector Components in Trig Form For a position vector v Ha, bI and angle , we have horizontal component: a vcos vertical component: b vsin , where
b r tan a b and a
y
1
Ha, bI
v 2a b 2
2
v
b r
x
a
The ability to model characteristics of a vector using these equations is a huge benefit to solving applications, since we must often work out solutions using only the partial information given.
EXAMPLE 3
Solution
Finding the Magnitude and Direction Angle of a Vector For v1 H2.5, 6I and v2 H313, 3I, a. Graph each vector and name the quadrant where it is located. b. Find their magnitudes. c. Find the angle for each vector (round to tenths of a degree as needed).
y
H3√3, 3I v2
1
2 x
v1
a. The graphs of v1 and v2 are shown in the figure. Using the signs of each coordinate, we H2.5, 6I note that v1 is in QIII, and v2 is in QI. v2 213 132 2 132 2 b. v1 212.52 2 162 2 16.25 36 127 9 136 142.25 6.5 6 6 3 c. For v1: r tan1a b b For v2: r tan1a 2.5 3 13 13 tan1a tan1 12.42 67.4° b 30° 3 In QIII, 247.4°. In QI, 30°. Now try Exercises 21 through 24
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CHAPTER 7 Applications of Trigonometry
EXAMPLE 4
Solution
Finding the Horizontal and Vertical Components of a Vector The vector v Ha, bI is in QIII, has a magnitude of v 21, and forms an angle of 25° with the negative x-axis (Figure 7.31). Find the horizontal and vertical components of the vector, rounded to tenths.
Figure 7.31 205 x 25 |v| 21
Begin by graphing the vector and setting up the equations for its components. For r 25°, 205°.
Ha, bI y
Figure 7.32
For the horizontal component: For the vertical component: a vcos b vsin 21 cos 205° 21 sin 205° 19 8.9 With v in QIII, its component form is approximately H19, 8.9I. As a check, we apply the Pythagorean theorem: 21192 2 18.92 2 21 ✓. See Figure 7.32.
19
x
25
8.9
|v| 21 Ha, bI y B. You’ve just learned how to represent a vector quantity graphically
C. Operations on Vectors and Vector Properties The operations defined for vectors have a close knit graphical representation. Consider a local park having a large pond with pathways around both sides, so that a park visitor can enjoy the view from either side. Suppose v H8, 2I is the position vector representing a person who decides to turn to the right at the pond, while u H2, 6I represents a person who decides to first turn left. At (8, 2) the first person changes direction and walks to (10, 8) on the other side of the pond, while the second person arrives at (2, 6) and turns to head for (10, 8) as well. This is shown graphically in Figure 7.33 and demonstrates that (1) a parallelogram is formed (opposite sides equal and parallel), (2) the path taken is unimportant relative to the destination, and (3) the coordinates of the destination represent the sum of corresponding coordinates from the terminal points of u and v: 12, 62 18, 22 12 8, 6 22 110, 82. In other words, the result of adding u and v gives the new position vector u v w, called the resultant or the resultant vector. Note the resultant vector is a diagonal of the parallelogram formed. Geometrically or graphically, the addition of vectors can be viewed as a “tail-to-tip” combination of one with another, by shifting one vector (without changing its direction) so that its tail (initial point) is at the tip (terminal point) of the other vector. This is illustrated in Figures 7.34 through 7.36.
Figure 7.33 y (10 0 8) (2 2
Now try Exercises 25 through 30
v
) x
Figure 7.34
Figure 7.35
Given vectors u and v
Figure 7.36
x
u
v
Shift vector u
Shift vector v x
v
u
u uv
uv
v Tail of v to the tip of u
y
u
v H10, 9I
y
Tail of u to the tip of v
H10, 9I y
x
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Section 7.3 Vectors and Vector Diagrams
The subtraction of vectors can be understood as either as u v or u 1v2. Since the location of a vector is unimportant relative to the information it carries, vector subtraction can be interpreted as the tipto-tip diagonal of the parallelogram from vector addition. In Figures 7.34 to 7.36, assume u H1, 5I and v H9, 4I. Then u v H1, 5I H9, 4I H1 9, 5 4I giving the position vector H8, 1I. By repositioning this vector with its tail at the tip of v, we note the new vector points directly at u, forming the diagonal (see Figure 7.37). Scalar multiplication of vectors also has a graphical representation that corresponds to the geometric description given earlier.
WORTHY OF NOTE The geometry of vector subtraction is a key part of resolving a vector into orthogonal components that are nonquadrantal. Applications of this concept are wide ranging, and include thrust and drag forces, tension and stress limits in a cable, and others.
Figure 7.37
x
v u uv (repositioned) u v
y
Operations on Vectors Given vectors u Ha, bI, v Hc, dI, and a scalar k,
1. u v Ha c, b dI 2. u v Ha c, b dI 3. ku Hka, kbI for k
If k 7 0, the new vector points in the same direction as u. If k 6 0, the new vector points in the opposite direction as u.
EXAMPLE 5
Solution
Representing Operations on Vectors Graphically
Given u H3, 2I and v H4, 6I compute each of the following and represent the result graphically: 1 1 a. 2u b. v c. 2u v 2 2 Note the relationship between part (c) and parts (a) and (b). a. 2u 2H3, 2I
b.
H6, 4I y
1 1 v H4, 6I 2 2 H2, 3I
c. 2u
y
1 v H6, 4I H2, 3I 2 H8, 1I y
H6, 4I
H6, 4I 2u
2u
u H3, 2I
x
x
qv
H2, 3I
H8, 1I
qv
x
H2, 3I
v H4, 6I
Now try Exercises 31 through 48
The properties that guide operations on vectors closely resemble the familiar properties of real numbers. Note we define the zero vector 0 H0, 0I as one having no magnitude or direction.
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Properties of Vectors For vector quantities u, v, and w and real numbers c and k, 1. 3. 5. 7. 9.
1u u uvvu 1u v2 w u 1v w2 u0u k1u v2 ku kv
2. 4. 6. 8. 10.
0u 0 k0 u v u 1v2 1ck2u c1ku2 k1cu2 u 1u2 0 1c k2u cu ku
Proof of Property 3
For u Ha, bI and v Hc, dI, we have
u v Ha, bI Hc, d I
Ha c, b d I
Hc a, d bI
C. You’ve just learned how to perform defined operations on vectors
Hc, dI Ha, bI vu
sum of u and v vector addition commutative property vector addition result
Proofs of the other properties are similarly derived (see Exercises 89 through 97).
D. Algebraic Vectors, Unit Vectors, and i, j Form
While the bold, small case v and the Ha, bI notation for vectors has served us well, we now introduce an alternative form that is somewhat better suited to the algebra of vectors, and is used extensively in some of the physical sciences. Consider the vector H1, 0I, a vector 1 unit in length extending along the x-axis. It is called the horizontal unit vector and given the special designation i (not to be confused with the imaginary unit i 11). Likewise, the vector H0, 1I is called the vertical unit vector and given the designation j (see Figure 7.38). Using scalar multiplication, the unit vector along the negative x-axis is i and along the negative y-axis is Figure 7.38 j. Similarly, the vector 4i represents a position vector 4 units long y (0, 1) along the x-axis, and 5j represents a position vector 5 units long along the negative y-axis. Using these conventions, any nonquadrantal vector Ha, bI can be written as a linear combination of i and j, with j (1, 0) a and b expressed as multiples of i and j, respectively: ai bj. These x i ideas can easily be generalized and applied to any vector. WORTHY OF NOTE
Algebraic Vectors and i, j Form
Earlier we stated, “Two vectors were equal if they have the same magnitude and direction.” Note that this means two vectors are equal if their components are equal.
EXAMPLE 6
For the unit vectors i H1, 0I and j H0, 1I, any arbitrary vector v Ha, bI can be written as a linear combination of i and j: v ai bj Graphically, v is being expressed as the resultant of a vector sum.
Finding the Horizontal and Vertical Components of Algebraic Vectors Vector u is in QII, has a magnitude of 15, and makes an angle of 20° with the negative x-axis. a. Graph the vector. b. Find the horizontal and vertical components (round to one decimal place) then write u in component form. c. Write u in terms of i and j.
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Solution
b. Horizontal Component Figure 7.40 Ha, bI x
a
y
|u| 15
vcos 15 cos 160° 14.1
y
Vertical Component
b
vsin 15 sin 160 ° 5.1
Ha, bI |u| 15 20
160 x
With the vector in QII, u H14.1, 5.1I in component form. c. In terms of i and j we have u 14.1i 5.1j. See Figure 7.40
5.1
20
Figure 7.39
a. The vector is graphed in Figure 7.39.
14.1
Now try Exercises 49 through 62
Some applications require that we find a nonhorizontal, nonvertical vector one unit in length, having the same direction as a given vector v. To understand how this is done, consider vector v H6, 8I. Using the Pythagorean theorem we find v 10, and can form a 6-8-10 triangle using the horizontal and vertical components (Figure 7.41). Knowing that similar triangles have sides that are proportional, we can find a unit vector in the same direction as v by dividing all three sides by 10, giving a triangle with sides 35, 45, and 1. The new vector “u” (along the hypotenuse) indeed points in the same direction since we have merely shortened v, and is a unit vector 3 2 4 2 9 16 1. In retrospect, we have divided the components since a b a b S 5 5 25 25 of vector v by its magnitude v (or multiplied components by the reciprocal of v) to H6, 8I v 6 8 3 4 h , i h , i . In general we obtain the desired unit vector: v 10 10 10 5 5 have the following:
Figure 7.41 y
H6, 8I v
8 10 6
x
Unit Vectors For any nonzero vector v Ha, bI ai bj, the vector v a b u i j 2 2 2 v 2a b 2a b2 is a unit vector in the same direction as v. You are asked to verify this relationship in Exercise 100. In summary, for vector v 6i 8j, we find v 262 82 10, so the unit vector pointing in the same v 3 4 direction is i j. See Exercises 63 through 74. v 5 5 EXAMPLE 7
Using Unit Vectors to Find Coincident Vectors Vectors u and v form the 37° angle illustrated in the figure. Find the vector w (in red), which points in the same direction as v (is coincident with v) and forms the base of the right triangle shown. y
Solution
WORTHY OF NOTE In this context w is called the projection of u on v, an idea applied more extensively in Section 7.4 D. You’ve just learned how to represent a vector quantity algebraically and find unit vectors
Using the Pythagorean theorem we find u 7.3 and v 10. Using the cosine of 37° the magnitude of w is then w 7.3 cos 37° or about 5.8. To ensure that w will point in the same direction as v, we simply multiply the 5.8 magnitude by the unit H8, 6I v 15.82H0.8, 0.6I, vector for v: w 15.82 v 10 and we find that w H4.6, 3.5I. As a check we use the Pythagorean theorem: 24.62 3.52 133.41 5.8.
H2, 7I
u
H8, 6I v
37 w
Now try Exercises 75 through 78
x
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E. Vector Diagrams and Vector Applications Applications of vectors are virtually unlimited, with many of these in the applied sciences. Here we’ll look at two applications that are an extension of our work in this section. In Section 7.4 we’ll see how vectors can be applied in a number of other creative and useful ways. In Example 1, two tugboats were pulling on a barge to dislodge it from a sand bar, with the pulling force of each represented by a vector. Using our knowledge of vector components, vector addition, and resultant forces (a force exerted along the resultant), we can now determine the direction and magnitude of the resultant force if we know the angle formed by one of the vector forces and the barge.
EXAMPLE 8
Solving an Application of Vectors—Force Vectors Acting on a Barge Two tugboats are attempting to free a barge that is stuck on a sand bar, and are exerting the forces shown in Figure 7.42. Find the magnitude and direction of the resultant force.
Solution
Begin by orienting the diagram on a coordinate grid (see Figure 7.43). Since the angle between the vectors is 90°, we know the acute angle formed by the first tugboat and the x-axis is 55°. With this information, we can write each vector in “i, j” form and add the vectors to find the resultant.
Figure 7.42
2000 N 1500 N
35°
For vector v1 (in QII): Horizontal Component
Vertical Component
a v1cos 2000 cos 125° 1147
b v1sin 2000 sin 125° 1638
v1 1147i 1638j.
Figure 7.43
For vector v2 (in QI):
y
Horizontal Component
Vertical Component
a v2cos 1500 cos 35° 1229
b v2sin 1500 sin 35° 860
v2 1229i 860j.
This gives a resultant of v1 v2 11147i 1638j2 11229i 860j2 82i 2498j, with magnitude v1 v2 2822 24982 2499 N. To find the direction 2498 of the force, we have r tan1a b, or about 88°. 82
v1 2000 N
125v
2
55
35
1500 N x
Now try Exercises 81 and 82
It’s worth noting that a single tugboat pulling at 88° with a force of 2499 N would have the same effect as the two tugs in the original diagram. In other words, the resultant vector 82i 2498j truly represents the “result” of the two forces. Knowing that the location of a vector is unimportant enables us to model and solve a great number of seemingly unrelated applications. Although the final example concerns aviation, headings, and crosswinds, the solution process has a striking similarity to the “tugboat” example just discussed. In navigation, headings involve a single
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angle, which is understood to be the amount of rotation from due north in the clockwise direction. Several headings are illustrated in Figures 7.44 through 7.47. Figure 7.44
Figure 7.45
Figure 7.46
Figure 7.47
North West
East
Heading 30
Heading 330
30 115
South
210
330
Heading 210 Heading 115
In order to keep an airplane on course, the captain must consider the direction and speed of any wind currents, since the plane’s true course (relative to the ground) will be affected. Both the plane and the wind can be represented by vectors, with the plane’s true course being the resultant vector.
EXAMPLE 9
Solving an Application of Vectors—Airplane Navigation An airplane is flying at 240 mph, heading 75°, when it suddenly encounters a strong, 60 mph wind blowing from the southwest, heading 10°. What is the actual course and speed of the plane (relative to the ground) as it flies through this wind?
Solution
Figure 7.48 y
Begin by drawing a vector p to represent the speed and direction of the airplane (Figure 7.48). Since the heading is 75°, the angle between the vector and the x-axis must be 15°. For convenience (and because location is unimportant) we draw it as a 60 14 as long, and position vector. Note the vector w representing the wind will be 240 can also be drawn as a position vector—with an acute 80° angle. To find the resultant, we first find the components of each vector, then add. For vector w (in QI): Horizontal Component
a wcos 60 cos 80° 10.4 w
15 x
For vector p (in QI): Horizontal Component
y
wp p
80
Vertical Component
a pcos b psin 240 cos 15° 240 sin 15° 231.8 62.1 p 231.8i 62.1j.
Figure 7.49
w
b wsin 60 sin 80° 59.1
w 10.4i 59.1j.
p
80
Vertical Component
15 x
The resultant is w p 110.4i 59.1j2 1231.8i 62.1j2 242.2i 121.2j, with magnitude w p 21242.22 2 1121.22 2 270.8 mph (see Figure 7.49). 121.2 b, To find the heading of the plane relative to the ground we use r tan1a 242.2 which shows r 26.6°. The plane is flying on a course heading of 90° 26.6° 63.4° at a speed of about 270.8 mph relative to the ground. Note the airplane has actually “increased speed” due to the wind. Now try Exercises 83 through 86
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Applications like those in Examples 8 and 9 can also be solved using what is called the parallelogram method, which takes its name from the tailto-tip vector addition noted earlier (See Figure 7.50). The resultant will be a diagonal of the parallelogram, whose magnitude can be found using the law of cosines. For Example 9, we note the parallelogram has two acute angles of 180 152° 65°, and since the adjacent angles must sum to 180°, the obtuse angles must be 115°. Using the law of cosines,
WORTHY OF NOTE Be aware that using the rounded values of intermediate calculations may cause slight variations in the final result. In Example 9, if we calculate w p 160 cos 80° 240 cos 15°2i 160 sin 80° 240 sin 15°2j, then find w p, the result is actually closer to 270.9 mph.
w p2 p2 w2 2pw cos 115°
y
w
p
80 15
x
law of cosines substitute 240 for p, 60 for w
73371.40594
compute result
2
w p 270.9
115
wp
240 60 2124021602 cos 115° 2
E. You’ve just learned how to use vector diagrams to solve applications
Figure 7.50
take square roots
Note this answer is slightly more accurate, since there was no rounding until the final stage.
TECHNOLOGY HIGHLIGHT
Vector Components Given the Magnitude and the Angle The TABLE feature of a graphing calculator can help us find the horizontal and vertical components of any vector with ease. Consider the vector v shown in Figure 7.51, which has a magnitude of 9.5 with 15°. Knowing this magnitude is used in both computations, first store 9.5 in storage location A: 9.5 ALPHA STO MATH . Next, enter the expressions for the horizontal and vertical components as Y1 and Y2 on the Y = screen (see Figure 7.52). Note that storing the magnitude 9.5 in memory will prevent our having to alter Y1 and Y2 as we apply these ideas to other values of . As an additional check, note that Y3 recomputes the magnitude of the vector using the components generated in Y1 and Y2. To access ENTER and select the desired function. Although our the function variables we press: VARS primary interest is the components for 15°, we use the TBLSET screen to begin at TblStart 0°, ¢Tbl 5, and have it count AUTOmatically, so we can make additional observations. Pressing (TABLE) brings up the screen shown in Figure 7.53. As expected, at 0° the horizontal component is the same as the magnitude and the vertical component is zero. At 15° we have the components of the vector pictured in Figure 7.51, approximately H9.18, 2.46I. If the angle were increased to 30°, a 30-60-90 triangle could be formed and one component should be 13 times the other. Sure enough, 1314.752 8.2272. 2nd
GRAPH
Figure 7.52
Figure 7.51 y v 15 x
Figure 7.53
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Exercise 1: If 45°, what would you know about the lengths of the horizontal and vertical components? Scroll down to 45° to verify. Exercise 2: If 60°, what would you know about the lengths of the horizontal and vertical components? Scroll down to 60° to verify. Exercise 3: We used column Y3 as a double check on the magnitude of v for any given . What would this value be for 45° and 60°? Press the right arrow to verify. What do you notice?
7.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Measurements that can be described using a single number are called quantities. 2.
quantities require more than a single number to describe their attributes. Examples are force, velocity, and displacement.
3. To represent a vector quantity geometrically we use a segment.
4. Two vectors are equal if they have the same and . 5. Discuss/Explain the geometric interpretation of vector addition. Give several examples and illustrations. 6. Describe the process of finding a resultant vector given the magnitude and direction of two arbitrary vectors u and v. Follow-up with an example.
DEVELOPING YOUR SKILLS
Draw the comparative geometric vectors indicated.
7. Three oceanic research vessels are traveling on a parallel course in the same direction, mapping the ocean floor. One ship is traveling at 12 knots (nautical miles per hour), one at 9 knots, and the third at 6 knots. 8. As part of family reunion activities, the Williams Clan is at a bowling alley and using three lanes. Being amateurs they all roll the ball straight on, aiming for the 1 pin. Grand Dad in Lane 1 rolls his ball at 50 ft/sec. Papa in Lane 2 lets it rip at 60 ft/sec, while Junior in Lane 3 can muster only 30 ft/sec. 9. Vector v1 is a geometric vector representing a boat traveling at 20 knots. Vectors v2, v3, and v4 are geometric vectors representing boats traveling at 10 knots, 15 knots, and 25 knots, respectively. Draw these vectors given that v2 and v3 are traveling the same direction and parallel to v1, while v4 is traveling in the opposite direction and parallel to v1.
10. Vector F1 is a geometric vector representing a force of 50 N. Vectors F2, F3, and F4 are geometric vectors representing forces of 25 N, 35 N, and 65 N, respectively. Draw these vectors given that F2 and F3 are applied in the same direction and parallel to F1, while F4 is applied in the opposite direction and parallel to F1. Represent each situation described using geometric vectors.
11. Two tractors are pulling at a stump in an effort to clear land for more crops. The Massey-Ferguson is pulling with a force of 250 N, while the John Deere is pulling with a force of 210 N. The chains attached to the stump and each tractor form a 25° angle. 12. In an effort to get their mule up and plowing again, Jackson and Rupert are pulling on ropes attached to the mule’s harness. Jackson pulls with 200 lb of force, while Rupert, who is really upset, pulls with 220 lb of force. The angle between their ropes is 16°.
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Draw the vector v indicated, then graph the equivalent position vector.
Use the graphs of vectors a, b, c, d, e, f, g, and h given to determine if the following statements are true or false.
13. initial point 13, 22; terminal point (4, 5)
y
14. initial point 14, 42; terminal point (2, 3) 15. initial point 15, 32; terminal point 11, 22
b
16. initial point (1, 4); terminal point 12, 22
For each vector v Ha, bI and initial point (x, y) given, find the coordinates of the terminal point and the magnitude v of the vector.
17. v H7, 2I; initial point 12, 32 18. v H6, 1I; initial point 15, 22
19. v H3, 5I; initial point (2, 6)
20. v H8, 2I; initial point 13, 52
a
23. H2, 5I
39. c f h
40. b h c
41. d e h
42. d f 0
For the vectors u and v shown, compute u v and u v and represent each result graphically.
43.
44.
y
27. w 140.5; 41°; QIV
y x
H4, 1I
v u
H1, 4I H3, 6I
H7, 2I
v
u
x
45.
46.
y v
H8, 3I
u
y
x
H1, 3I
H4, 4I H5, 2I u v
x
47.
26. u 25; 32°; QIII
f
38. f e g
For Exercises 25 through 30, the magnitude of a vector is given, along with the quadrant of the terminal point and the angle it makes with the nearest x-axis. Find the horizontal and vertical components of each vector and write the result in component form.
25. v 12; 25°; QII
e
37. a c b
22. H7, 6I 24. H8, 6I
c
x
For each position vector given, (a) graph the vector and name the quadrant, (b) compute its magnitude, and (c) find the acute angle formed by the vector and the nearest x-axis.
21. H8, 3I
d g h
48.
y v
u
H5, 3I
y
x
H4, 3I
H2, 3I
v u H5, 1I
28. p 15; 65°; QI
x
29. q 10; 15°; QIII 30. r 4.75; 62°; QII For each pair of vectors u and v given, compute (a) through (d) and illustrate the indicated operations graphically.
a. u v c. 2u 1.5v
b. u v d. u 2v
31. u H2, 3I; v H3, 6I
32. u H3, 4I; v H0, 5I 33. u H7, 2I; v H1, 6I
34. u H5, 3I; v H6, 4I 35. u H4, 2I; v H1, 4I 36. u H7, 3I; v H7, 3I
Graph each vector and write it as a linear combination of i and j. Then compute its magnitude.
49. u H8, 15I
51. p H3.2, 5.7I
50. v H5, 12I
52. q H7.5, 3.4I
For each vector here, r represents the acute angle formed by the vector and the x-axis. (a) Graph each vector, (b) find the horizontal and vertical components and write the vector in component form, and (c) write the vector in i, j form. Round to the nearest tenth.
53. v in QIII, v 12, r 16° 54. u in QII, u 10.5, r 25° 55. w in QI, w 9.5, r 74.5° 56. v in QIV, v 20, r 32.6°
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a. v1 v2 p
b. v1 v2 q
c. 2v1 1.5v2 r
d. v1 2v2 s
57. v1 2i 3j; v2 4i 5j 58. v1 7.8i 4.2j; v2 5j
69. 3.5i 12j
70. 9.6i 18j
73. 6i 11j
74. 2.5i 7.2j
71. v1 H13, 3I
75.
H10, 4I
p
H7, 4I p
52
62. v1 2 13i 6j; v2 413i 2j
67. 20i 21j
y
H2, 7I
61. v1 12i 4j; v2 4i
65. p H20, 21I
76.
y
60. v1 6.8i 9j; v2 4i 9j
Find a unit vector pointing in the same direction as the vector given. Verify that a unit vector was found.
72. v2 H4, 7I
Vectors p and q form the angle indicated in each diagram. Find the vector r that points in the same direction as q and forms the base of the right triangle shown.
59. v1 5 12i 7j; v2 312i 5j
63. u H7, 24I
749
Section 7.3 Vectors and Vector Diagrams
q
23 r
r
H9, 1I q
x
77.
78.
y r
36
64. v H15, 36I
q
y
x H2, 7I
H8, 3I
p
66. q H12, 35I
x
p
q
H10, 5I
H4, 6I
48 r
68. 4i 7.5j
x
WORKING WITH FORMULAS
The magnitude of a vector in three dimensions: v 2a2 b2 c2
79. The magnitude of a vector in three dimensional space is given by the formula shown, where the components of the position vector v are Ha, b, cI. Find the magnitude of v if v H5, 9, 10I.
80. Find a cardboard box of any size and carefully measure its length, width, and height. Then use the given formula to find the magnitude of the box’s diagonal. Verify your calculation by direct measurement.
APPLICATIONS
81. Tow forces: A large van has careened off of the road into a ditch, and two tow trucks are attempting to winch it out. The cable W1 from the first winch exerts a force of 900 lb, while the cable 32 from the second exerts a force of 700 lb. W2 Determine the angle for the first tow truck that will bring the van directly out of the ditch and along the line indicated.
82. Tow forces: Two tugboats are pulling a large ship into dry dock. The first is pulling with a force of 1250 N and the second with a force of 1750 N. Determine the angle for the second tugboat that will keep the ship moving straight forward and into the dock.
83. Projectile components: An arrow is shot into the air at an angle of 37° with an initial velocity of 100 ft/sec. Compute the horizontal and vertical components of the representative vector.
84. Projectile components: A football is punted (kicked) into the air at an angle of 42° with an initial velocity of 20 m/sec. Compute the horizontal and vertical components of the representative vector.
T1
40 T2
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85. Headings and cross-winds: An airplane is flying at 250 mph on a heading of 75°. There is a strong, 35 mph wind blowing from the southwest on a heading of 10°. What is the true course and speed of the plane (relative to the ground)?
86. Headings and currents: A cruise ship is traveling at 16 knots on a heading of 300°. There is a strong water current flowing at 6 knots from the northwest on a heading of 120°. What is the true course and speed of the cruise ship?
The lights used in a dentist’s office are multijointed so they can be configured in multiple ways to accommodate various needs. As a simple model, consider such a light that has the three joints, as illustrated. The first segment has a length of 45 cm, the second is 40 cm in length, and the third is 35 cm.
87. If the joints of the light are positioned so a straight line is formed and the angle made with the horizontal is 15°, determine the approximate coordinates of the joint nearest the light.
88. If the first segment is rotated 75° above horizontal, the second segment 30° (below the horizontal), and the third segment is parallel to the horizontal, determine the approximate coordinates of the joint nearest the light.
30 15
75
EXTENDING THE CONCEPT
For the arbitrary vectors u Ha, bI, v Hc, dI, and w He, f I and the scalars c and k, prove the following vector properties using the properties of real numbers.
89. 1u u
91. u v u 1v2
90. 0u 0 k0
99. Show that the sum of the vectors given, which form the sides of a closed polygon, is the zero vector. Assume all vectors have integer coordinates and each tick mark is 1 unit. y
92. 1u v2 w u 1v w2 93. 1ck2u c1ku2 k1cu2 94. u 0 u
95. u 1u2 0
96. k1u v2 ku kv 97. 1c k2u cu ku 98. Consider an airplane flying at 200 mph at a heading of 45°. Compute the groundspeed of the plane under the following conditions. A strong, 40-mph wind is blowing (a) in the same direction; (b) in the direction of due north (0°); (c) in the direction heading 315°; (d) in the direction heading 270°; and (e) in the direction heading 225°. What did you notice about the groundspeed for (a) and (b)? Explain why the plane’s speed is greater than 200 mph for (a) and (b), but less than 200 mph for the others.
750
s r t
p
v
u
x
100. Verify that for v ai bj and v v 2a2 b2, 1. v v (Hint: Create the vector u and find its magnitude.) v 101. Referring to Exercises 87 and 88, suppose the dentist needed the pivot joint at the light (the furthest joint from the wall) to be at (80, 20) for a certain patient or procedure. Find at least one set of “joint angles” that will make this possible.
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Reinforcing Basic Concepts
MAINTAINING YOUR SKILLS
102. (6.1) Derive the other two common versions of the Pythagorean identities, given sin2x cos2x 1. 103. (2.5) Evaluate each expression for x 3 (if possible): 5 a. y ln12x 72 b. y x3 1 x5 c. y A3
104. (6.5) Evaluate the expression csc c tan1a
55 b d by 48
drawing a representative triangle. 105. (3.4) Graph the function g1x2 x3 7x and find its zeroes.
MID-CHAPTER CHECK sin B sin A , solve for sin B. a b 2. Given b2 a2 c2 2ac cos B, solve for cos B.
1. Beginning with
Solve the triangles shown below using any appropriate method. 3.
B 207 m C 250 m
31
A
B
4.
A
8. Modeled after an Egyptian obelisk, the Washington Monument (Washington, D.C.) is one of the tallest masonry buildings in the world. Find the height of the monument given the measurements shown (see the figure). 58 70
17 cm 21 cm
the sign casts a 75 ft shadow. Find the height of the sign if the angle of elevation (measured from a horizontal line) from the tip of the shadow to the top of the sign is 65°.
C 25 cm
9. The circles shown here have 44 m radii of 4 cm, 9 cm, and 12 cm, and are tangent to each other. Find the angles formed by the line segments joining their centers.
Solve the triangles described below using the law of sines. If more than one triangle exists, solve both.
5. A 44°, a 2.1 km, c 2.8 km
6. C 27°, a 70 yd, c 100 yd 7. A large highway sign is erected on a steep hillside that is inclined 45° from the horizontal. At 9:00 A.M.
75 ft 45
10. On her delivery route, Judy drives 23 miles to Columbus, then 17 mi to 17 mi Drake, then back home to Balboa. Use the diagram 21 given to find the distance C from Drake to Balboa.
D B 23 mi
REINFORCING BASIC CONCEPTS Scaled Drawings and the Laws of Sine and Cosine In mathematics, there are few things as satisfying as the tactile verification of a concept or computation. In this Reinforcing Basic Concepts, we’ll use scaled drawings to
verify the relationships stated by the law of sines and the law of cosines. First, gather a blank sheet of paper, a ruler marked in centimeters/millimeters, and a protractor. When working with scale models, always measure and mark as carefully as possible. The greater the care, the better the 751
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Figure 7.54 results. For the first illustration (see Figure 7.54), we’ll 18 cm draw a 20-cm horizontal line ? segment near the bottom of 35 the paper, then use the left endpoint to mark off a 35° 20 cm angle. Draw the second side a length of 18 cm. Our first goal is to compute the length of the side needed to complete the triangle, then verify our computation by measurement. Since the current “triangle” is SAS, we use the law of cosines. Label the 35° as A, the top vertex as B, and the right endpoint as C.
measure these angles from the diagram using your protractor. How close was the computed measure to the actual measure?
90
180
a2 b2 c2 2bc cos A
0
law of cosines with respect to a
1202 1182 21202 1182cos 35 2
2
substitute known values
724 589.8
simplify (round to 10)
134.2
combine terms
a 11.6
solve for a
The computed length of side a is 11.6 cm, and if you took great care in drawing your diagram, you’ll find the missing side is indeed very close to this length. Exercise 1: Finish solving the triangle above using the law of sines. Once you’ve computed B and C,
For the second illustraFigure 7.55 tion (see Figure 7.55), draw any arbitrary triangle on a separate blank sheet, noting 13.3 cm 15.3 cm that the larger the triangle, the easier it is to measure the 21.2 cm angles. After you’ve drawn it, measure the length of each side to the nearest millimeter (our triangle turned out to be 21.2 cm 13.3 cm 15.3 cm). Now use the law of cosines to find one angle, then the law of sines to solve the triangle. The computations for our triangle gave angles of 95.4°, 45.9°, and 38.7°. What angles did your computations give? Finally, use your protractor to measure the angles of the triangle you drew. With careful drawings, the measured results are often remarkably accurate! Exercise 2: Using sides of 18 cm and 15 cm, draw a 35° angle, a 50° angle, and a 70° angle, then complete each triangle by connecting the endpoints. Use the law of cosines to compute the length of this third side, then actually measure each one. Was the actual length close to the computed length?
7.4 Vector Applications and the Dot Product Learning Objectives In Section 7.4 you will learn how to:
A. Use vectors to investigate forces in equilibrium
In Section 7.3 we introduced the concept of a vector, with its geometric, graphical, and algebraic representations. We also looked at operations on vectors and employed vector diagrams to solve basic applications. In this section we introduce additional ideas that enable us to solve a variety of new applications, while laying a strong foundation for future studies.
B. Find the components of one vector along another
C. Solve applications involving work
D. Compute dot products and the angle between two vectors
E. Find the projection of one vector along another and resolve a vector into orthogonal components
F. Use vectors to develop an equation for nonvertical projectile motion, and solve related applications
A. Vectors and Equilibrium Much like the intuitive meaning of the word, vector forces are in equilibrium when they “counterbalance” each other. The simplest example is two vector forces of equal magnitude acting on the same point but in opposite directions. Similar to a tug-of-war with both sides equally matched, no one wins. If vector F1 has a magnitude of 500 lb in the positive direction, F1 H500, 0I would need vector F2 H500, 0I to counter it. If the forces are nonquadrantal, we intuitively sense the components must still sum to zero, and that F3 H600, 200I would need F4 H600, 200I for equilibrium to occur (see Figure 7.56). In other words, two vectors are in equilibrium when their sum is
Figure 7.56 y
H600, 200I F4 x
F3
H600, 200I
F3 F4 H600, 200I H600, 200I H0, 0I 0
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the zero vector 0. If the forces have unequal magnitudes or do not pull in opposite directions, recall a resultant vector F Fa Fb can be found that represents the combined force. Equilibrium will then occur by adding the vector 1 (F) and this vector is sometimes called the equilibriant. These ideas can be extended to include any number of vector forces acting on the same point. In general, we have the following: Vectors and Equilibrium Given vectors F1, F2, . . . , Fn acting on a point P, 1. The resultant vector is F F1 F2 # # # Fn. 2. Equilibrium for these forces requires the vector 1F, where F 112F 0
EXAMPLE 1
Finding the Equilibriant for Vector Forces
y
Two force vectors F1 and F2 act on the point P as shown. Find a force F3 so equilibrium will occur, and sketch it on the grid. Solution
A. You’ve just learned how to use vectors to investigate forces in equilibrium
5
F1 4.5
Begin by finding the horizontal and vertical components of each vector. For F1 we have 5 H4.5 cos 64°, 4.5 sin 64°I H2.0, 4.0I, and for F2 we have H6.3 cos 18°, 6.3 sin 18°I H6.0, 1.9I. The resultant vector is F F1 F2 H4.0, 5.9I, meaning H4.0, 5.9I equilibrium will occur by applying the force 1F H4.0, 5.9I (see figure).
F2
6.3 18
64 P
5
x
5
Now try Exercises 7 through 20
B. The Component of u along v: compvu As in Example 1, many simple applications involve position vectors where the angle and horizontal/vertical components are known or can easily be found. In these situations, the components are often quadrantal, that is, they lie along the x- and y-axes and meet at a right angle. Many other applications require us to find components of a vector that are nonquadrantal, with one of the components parallel to, or lying along a second vector. Given vectors u and v, as shown in Figure 7.57, we symbolize the component of u that lies along v as compvu, noting its value is simply ucos since adj compvu . As the diagrams further indicate, compvu ucos regardless cos u hyp Figure 7.57 u
v
u
p vu
com
u u
v
v
u
p vu
u comp v 0q
com
q
u
of how the vectors are oriented. Note that even when the components of a vector do not lie along the x- or y-axes, they are still orthogonal (meet at a 90° angle). It is important to note that compvu is a scalar quantity (not a vector), giving only the magnitude of this component (the vector projection of u along v is studied later in this section). From these developments we make the following observations regarding the angle at which vectors u and v meet:
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Vectors and the Component of u Along v Given vectors u and v, which meet at an angle , 1. compvu ucos . 2. If 0 6 6 90°, compvu 7 0; if 90° 6 6 180°, compvu 6 0. 3. If 0, u and v have the same direction and compvu u. 4. If 90°, u and v are orthogonal and compvu 0. 5. If 180°, u and v have opposite directions and compvu u.
EXAMPLE 2
Finding the Component of Vector G Along Vector v Given the vectors G and v with G 850 lb as shown in the figure, find compvG.
Solution
Using Gcos compvG we have 850 cos 65° 359 lb. The component of G along v is about 359 pounds.
p vG com 65
v
850 lb
G
Now try Exercises 21 through 26
One interesting application of equilibrium and compvu involves the force of gravity acting on an object placed on a ramp or an inclined plane. The greater the incline, the greater the tendency of the object to slide down the plane (for this study, we assume there is no friction between the object and the plane). While the force of gravity continues to pull straight downward (represented by the vector G in Figure 7.58), G is now the resultant of a force acting parallel to the plane along vector v (causing the object to slide) and a force acting perpendicular to the plane along vector p (causing the object to press against the plane). If we knew the component of G along v (indicated by the shorter, bold segment), we would know the force required to keep the object stationary as the two forces must be opposites. Note that G forms a right angle with the base of the inclined plane (see Figure 7.59), meaning that and must be complementary angles. Also note that since the location of a vector is unimportant, vector p has been repositioned for clarity. Figure 7.58
Figure 7.59 850 
v
lb
850  v
␣
␣
p
p G
G
EXAMPLE 3A
Finding Components of Force for an Object on a Ramp A 850-lb object is sitting on a ramp that is inclined at 25°. Find the force needed to hold the object stationary (in equilibrium).
Solution
lb
Given 25°, we know 65°. This means the component of G along the inclined plane is compvG 850 cos 65° or about 359 lb. A force v of 359 lb is required to keep the object from sliding down the incline (compare to Example 2).
compvG
850 
lb
850 lb 25 G
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EXAMPLE 3B
Solution
B. You’ve just learned how to find the components of one vector along another
A winch is being used to haul a 2000-lb block of granite up a ramp that is inclined at 15°. If the winch has a maximum tow rating of 500 lb, will it be successful? We again need the component of G along the inclined plane: compvG 2000 cos 75 518 lb. Since the capacity of the winch is exceeded, the attempt will likely not be successful.
0 lb
200  v
15 2000 lb
G
Now try Exercises 27 through 30
C. Vector Applications Involving Work Figure 7.60
In common, everyday usage, work is understood to involve the exertion of energy or force to move an object a certain distance. For example, digging a ditch is hard work and involves moving dirt (exerting a force) from the trench to the bankside (over a certain distance). In an office, moving a filing cabinet likewise involves work. If the filing cabinet is heavier, or the distance it needs to be moved is greater, more work is required to move it (Figures 7.60 and 7.61). To determine how much work was done by each person, we need to quantify the concept. Consider a constant force F, applied to move an object a distance D in the same direction as the force. In this case, work is defined as the product of the force applied and the distance the object is moved: Work Force Distance or W FD. If the force is given in pounds and the distance in feet, the amount of work is measured in a unit called foot-pounds (ft-lb). If the force is in newtons and the distance in meters, the amount of work is measured in newton-meters (N-m).
D
Figure 7.61
D
EXAMPLE 4
Solving Applications of Vectors — Work and Force Parallel to the Direction of Movement While rearranging the office, Carrie must apply a force of 55.8 N to relocate a filing cabinet 4.5 m, while Bernard applies a 77.5 N force to move a second cabinet 3.2 m. Who did the most work?
Solution
For Carrie: W F D 155.8214.52 251.1 N-m
For Bernard: W F D 177.5213.22 248 N-m
Carrie did 251.1 248 3.1 N-m more work than Bernard. Now try Exercises 31 and 32
In many applications of work, the force F is not applied parallel to the direction of movement, as illustrated in Figures 7.62 and 7.63. In calculating the amount of work done, the general concept of force distance is preserved, but only the component of force in the direction of movement is used. In Figure 7.62
Figure 7.63
F 30°
F D
25°
D
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terms of the component forces discussed earlier, if F is a constant force applied at angle to the direction of movement, the amount of work done is the component of force along D times the distance the object is moved.
WORTHY OF NOTE In the formula W F cos D, observe that if 0, we have the old formula for work when the force is applied in the direction of movement W FD. If 0, cos 1 and the “effective force” on the object becomes F cos .
EXAMPLE 5
Force Vectors and Work W Given a force F applied in the direction of movement at the acute angle to an object, and D the distance it is moved, W Fcos D
F
D Fcos
Solving an Application of Vectors — Work and Force Applied at Angle to the Direction of Movement To help move heavy pieces of furniture across the floor, movers sometime employ a body harness similar to that used for a plow horse. A mover applies a constant 200-lb force to drag a piano 100 ft down a long hallway and into another room. If the straps make a 40° angle with the direction of movement, find the amount of work performed.
Solution
40° D
The component of force in the direction of movement is 200 cos 40° or about 153 lb. The amount of work done is W 15311002 15,300 ft-lb. Now try Exercises 35 through 40
These ideas can be generalized to include work problems where the component of force in the direction of motion is along a nonhorizontal vector v. Consider Example 6.
EXAMPLE 6
Solution
C. You’ve just learned how to solve applications involving work
Solving an Application of Vectors —Forces Along a Nonhorizontal Vector The force vector F H5, 12I moves an object along the vector v H15.44, 2I as shown. Find the amount of work required to move the object along the entire length of v. Assume force is in pounds and distance in feet.
y
H5, 12I F
To begin, we first determine the angle between the vectors. H15.44, 2I 2 1 12 1 v 60 In this case we have tan a b tan a b 60°. x 5 15.44 For F 13 (5-12-13 triangle), the component of force in the direction of motion is compvF 13 cos 60° 6.5. With v 2115.442 2 122 2 15.57, the work required is W compvF v or 16.52 115.572 101.2 ft-lb. Now try Exercises 41 through 44
D. Dot Products and the Angle Between Two Vectors When the component of force in the direction of motion lies along a nonhorizontal vector (as in Example 6), the work performed can actually be computed more efficiently using an operation called the dot product. For any two vectors u and v, the dot product u # v is equivalent to compvu v, yet is much easier to compute (for the proof of u # v compvu v, see Appendix IV). The operation is defined as follows:
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The Dot Product u # v Given vectors u Ha, bI and v Hc, dI, u # v Ha, bI # Hc, dI ac bd. In words, it is the real number found by taking the sum of corresponding component products.
EXAMPLE 7
Using the Dot Product to Determine Force Along a Nonhorizontal Vector Verify the answer to Example 6 using the dot product u # v.
Solution
For u H5, 12I and v H15.44, 2I, we have u # v H5, 12I # H15.44, 2I giving 5115.442 12122 101.2. The result is 101.2, as in Example 6. Now try Exercises 45 through 48
Note that dot products can also be used in the simpler case where the direction of motion is along a horizontal distance (Examples 4 and 5). While the dot product offers a powerful and efficient way to compute the work performed, it has many other applications; for example, to find the angle between two vectors. Consider that for any two u v # (solve for vectors u and v, u # v ucos v, leading directly to cos u v cos ). In summary, The Angle Between Two Vectors Given the nonzero vectors u and v: u # v cos and u v
Figure 7.64 y
cos1a
u # v b u v
(x, y)
u 1
In the special case where u and v are unit vectors, this simplifies to cos u # v since u v 1. This relationship is shown in Figure 7.64. The dot product u # v gives compvu v, but v 1 and the component of u along v is simply the adjacent side of a right triangle whose hypotenuse is 1. Hence u # v cos .
x
v compvu x
v 1
EXAMPLE 8
Determining the Angle Between Two Vectors Find the angle between the vectors given. a. u H3, 4I; v H5, 12I b. v1 2i 3j; v2 6i 4j
Solution
u # v u v 3 4 5 12 h , i # h , i 5 5 13 13 15 48 65 65 33 65 33 cos1a b 65 59.5°
a. cos
v1 v2 # v1 v2 2 3 6 4 h , i # h , i 113 113 152 152 12 12 1676 1676 0 0 26
b. cos
cos10 90° Now try Exercises 49 through 66
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Note we have implicitly shown that if u # v 0, then u is orthogonal to v. As with other vector operations, recognizing certain properties of the dot product will enable us to work with them more efficiently. Properties of the Dot Product Given vectors u, v, and w and a constant k, 2. u # u u2 4. k1u # v2 ku # v u # kv u#v u # v 6. u v uv
1. u # v v # u 3. w # 1u v2 w # u w # v 5. 0 # u u # 0 0
Property 6 offers an alternative to unit vectors when finding cos — the dot product of the vectors can be computed first, and the result divided by the product of u#v their magnitudes: cos . Proofs of the first two properties are given here. uv Proofs of the others have a similar development (see Exercises 79 through 82). For any two nonzero vectors u Ha, bI and v Hc, dI: Property 1: u # v Ha, bI # Hc, dI ac bd ca db Hc, dI # Ha, bI v#u D. You’ve just learned how to compute dot products and the angle between two vectors
Property 2: u # u Ha, bI # Ha, bI a2 b2 u2 (since u 2a2 b2)
Using compvu ucos and u # v compvu v, we can also state the following relationships, which give us some flexibility on how we approach applications of the dot product. For any two vectors u Ha, bI and v Hc, dI: (1) u # v ac bd (2) u # v ucos v (3) u # v compvu v u#v cos (4) uv u#v compvu (5) v
standard computation of the dot product alternative computation of the dot product replace ucos in (2) with compvu divide (2) by scalars u and v divide (3) by v
E. Vector Projections and Orthogonal Components In work problems and other simple applications, it is enough to find and apply compvu (Figure 7.65). However, applications involving thrust and drag forces, tension and stress limits in a cable, electronic circuits, and cartoon animations often require that we also find the vector form of compvu. This is called the projection of u along v or projvu, and is a vector in the same direction of v with magnitude compvu (Figures 7.66 and 7.67). Figure 7.65
Figure 7.66
u
u
v
v
u comp v r) a l a c s (
Figure 7.67 u
u proj v r) o t c e v (
v
u proj v r) o t c (ve
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v has a length of one and points in the same direction as v v (see Example 7, Section 7.3). Using v, so projvu can be computed as compvu v equation (5) above and the properties shown earlier, an alternative formula for projvu can be found that is usually easier to simplify: By its design, the unit vector
projvu compvu u#v v v v u#v 2 v v
v v
definition of a projection
substitute
u#v for compvu v
rewrite factors
Vector Projections Given vectors u and v, the projection of u along v is the vector projvu a
EXAMPLE 9A Solution
Finding the Projection of One Vector Along Another Given u H7, 1I and v H6, 6I, find projvu. To begin, find u # v and v. u # v H7, 1I # H6, 6I 42 6 36 u#v bv v2 36 b H6, 6I a 72 H3, 3I
projvu a
v 262 62 172 612
y (6, 6) v
(7, 1)
u
projvu
x
projection of u along v substitute 36 for u # v, 172 for v, and H6, 6I for v result
A useful consequence of computing projvu is we can then resolve the vector u into orthogonal components that need not be quadrantal. One component will be parallel to v and the other perpendicular to v (the dashed line in the diagram in Example 9A). In general terms, this means we can write u as the vector sum u1 u2, where u1 projvu and u2 u u1 (note u1 7 v).
WORTHY OF NOTE Note that u2 u u1 is the shorter diagonal of the parallelogram formed by the vectors u and u1 projvu. This can also be seen in the graph supplied for Example 9B.
EXAMPLE 9B
u#v bv v2
Resolving a Vector into Orthogonal Components Given vectors u, v, and projvu, u can be resolved into the orthogonal components u1 and u2, where u u1 u2, u1 projvu, and u2 u u1.
Resolving a Vector into Orthogonal Components
Given u H2, 8I and v H8, 6I, resolve u into orthogonal components u1 and u2, where u1 7 v and u2v. Also verify u1u2.
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Solution
Once again, begin by finding u # v and v.
projvu a
u#v
bv v2 64 a bH8, 6I 100 H5.12, 3.84I
E. You’ve just learned how to find the projection of one vector along another and resolve a vector into orthogonal components
y
v 282 62 2100 10
u # v H2, 8I # H8, 6I 16 48 64
(2, 8) u u2
(8, 6) v
projection of u along v u1 projvu
substitute 64 for u # v, 10 for v, and H8, 6I for v
x
result
For projvu u1 H5.12, 3.84I, we have u2 u u1 H2, 8I H5.12, 3.84I H3.12, 4.16I . To verify u1u2, we need only show u1 # u2 0: u1 # u2 H5.12, 3.84I # H3.12, 4.16I 15.12213.122 13.842 14.162 0✓ Now try Exercises 67 through 72
F. Vectors and the Height of a Projectile Our final application of vectors involves projectile motion. A projectile is any object that is thrown or projected upward, with no source of propulsion to sustain its motion. In this case, the only force acting on the projectile is gravity (air resistance is neglected), so the maximum height and the range of the projectile depend solely on its initial velocity and the angle at which it is projected. In a college algebra course, the equation y v0t 16t2 is developed to model the height in feet (at time t) of a projectile thrown vertically upward with initial velocity of v0 feet per second. Here, we’ll modify the equation slightly to take into account that the object is now moving horizontally as well as vertically. As you can see in Figure 7.68, the vector v representing the initial velocity, as well as the velocity vector at other times, can easily be decomposed into horizontal and vertical components. This will enable us to find a more general relationship for the position of the projectile. For now, we’ll let vy represent the component of velocity in the vertical (y) direction, and vx represent the component of velocity in the horizontal (x) direction. Since gravity acts only in the vertical (and negative) direction, the horizontal component of the velocity remains constant at vx vcos . Using D RT, the x-coordinate of the projectile at time t is x 1 vcos 2t. For the vertical component vy we use the projectile equation developed earlier, substituting vsin for v0, since the angle of projection is no longer 90°. This gives the y-coordinate at time t as y v0t 16t2 1 vsin 2t 16t2. Figure 7.68 y
vy
vy
3 0 vy 0
v 2
vx
4
vx v 1
vx
vy vx
x
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Projectile Motion Given an object is projected upward from the origin with initial velocity v at angle °. The x-coordinate of its position at time t is x 1 vcos 2t. The y-coordinate of its position at time t is y 1 vsin 2t 16t2.
EXAMPLE 10
Solving an Application of Vectors —Projectile Motion An arrow is shot upward with an initial velocity of 150 ft/sec at an angle of 50°. a. Find the position of the arrow after 2 sec. b. How many seconds does it take to reach a height of 190 ft?
Solution
a. Using the preceding equations yields these coordinates for its position at t 2: x 1 vcos 2t 1150 cos 50°2 122 193
y 1 vsin 2t 16t2 1150 sin 50°2 122 16122 2 166
The arrow has traveled a horizontal distance of about 193 ft and is 166 ft high. b. To find the time required to reach 190 ft in height, set the equation for the y coordinate equal to 190, which yields a quadratic equation in t:
F. You’ve just learned how to use vectors to develop an equation for nonvertical, projectile motion and solve related applications
y 1 vsin 2t 16t2 190 1150 sin 50°2t 16t2 0 161t2 2 115t 190
equation for y substitute 150 for v and 50° for 150 sin 50 115
Using the quadratic formula we find that t 2.6 sec and t 4.6 sec are solutions. This makes sense, since the arrow reaches a given height once on the way up and again on the way down, as long as it hasn’t reached its maximum height. Now try Exercises 73 through 78
For more on projectile motion, see the Calculator Exploration and Discovery feature at the end of this chapter.
7.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Vector forces are in when they counterbalance each other. Such vectors have a sum of . 2. The component of a vector u along another vector v is written notationally as , and is computed as . 3. Two vectors that meet at a right angle are said to be .
4. The component of u along v is a quantity. The projection of u along v is a . 5. Explain/Discuss exactly what information the dot product of two vectors gives us. Illustrate with a few examples. 6. Compare and contrast the projectile equations y v0t 16t2 and y 1v0sin 2t 16t2. Discuss similarities/differences using illustrative examples.
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DEVELOPING YOUR SKILLS
The force vectors given are acting on a common point P. Find an additional force vector so that equilibrium takes place.
7. F1 H8, 3I; F2 H2, 5I
Find the component of u along v (compute compvu) for the vectors u and v given.
21.
u
8. F1 H2, 7I; F2 H5, 3I
v
50 kg
9. F1 H2, 7I; F2 H2, 7I; F3 H5, 4I 42
10. F1 H3, 10I; F2 H10, 3I; F3 H9, 2I
22. u
11. F1 5i 2j; F2 i 10j
3.5 tons
12. F1 7i 6j; F2 8i 3j 13. F1 2.5i 4.7j; F2 0.3i 6.9j; F3 12j 14. F1 312i 2 13j; F2 2i 7j; F3 5i 2 13j 15.
F1
16.
y
v
128
23. 65
F1
v
y
1525 lb 20
F2
10 104
6 25 20 9
F2 x
F3
17 19
115 35 18
u x
24.
F3
17. The force vectors F1 and F2 are simultaneously acting on a point P. Find a third vector F3 so that equilibrium takes place if F1 H19, 10I and F2 H5, 17I.
221 lb v
18. The force vectors F1, F2, and F3 are simultaneously acting on a point P. Find a fourth vector F4 so that equilibrium takes place if F1 H12, 2I, F2 H6, 17I, and F3 H3, 15I. 19. A new “Survivor” game y F2 involves a three-team tugF1 of-war. Teams 1 and 2 are 2210 2500 pulling with the magnitude 50 40 and at the angles indicated x ?F3 in the diagram. If the teams are currently in a stalemate, find the magnitude and angle of the rope held by team 3. 20. Three cowhands have roped y F1 a wild stallion and are attempting to hold him steady. The first and second F2 200 170 cowhands are pulling with 75 19 the magnitude and at the ?F3 angles indicated in the diagram. If the stallion is held fast by the three cowhands, find the magnitude and angle of the rope from the third cowhand.
u
x
70
25. 30 3010 kg
v
u
26.
u v
2 tons 115
27. Static equilibrium: A 500-lb crate is sitting on a ramp that is inclined at 35°. Find the force needed to hold the object stationary.
500
lb
500 lb 35 G
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28. Static equilibrium: A 1200-lb skiff is 1200 lb being pulled from a lake, using a boat 1200 lb ramp inclined at 20°. Find the G minimum force needed to dock the skiff. 29. Static equilibrium: A 325-kg carton is sitting on a ramp, held stationary by 225 kg of tension in a restraining rope. Find the ramps’s angle of incline.
20
325
kg
225 kg
325 kg
G
30. Static 1.75 tons ? ton equilibrium: s A heavy dump truck is being 18 winched up a ramp with an G 18° incline. Approximate the weight of the truck if the winch is working at its maximum capacity of 1.75 tons and the truck is barely moving. 31. While rearranging the patio furniture, Rick has to push the weighted base of the umbrella stand 15 m. If he uses a constant force of 75 N, how much work did he do? 32. Vinny’s car just broke down in the middle of the road. Luckily, a buddy is with him and offers to steer if Vinny will get out and push. If he pushes with a constant force of 185 N to move the car 30 m, how much work did he do?
WORKING WITH FORMULAS
The range of a projectile: R
v2sin cos 16
33. The range of a projected object (total horizontal distance traveled) is given by the formula shown, where v is the initial velocity and is the angle at which it is projected. If an arrow leaves the bow traveling 175 ft/sec at an angle of 45°, what horizontal distance will it travel?
763
34. A collegiate javelin thrower releases the javelin at a 40° angle, with an initial velocity of about 95 ft/sec. If the NCAA record is 280 ft, will this throw break the record? What is the smallest angle of release that will break this record? If the javelin were released at the optimum 45°, by how many feet would the record be broken?
APPLICATIONS
35. Plowing a field: An old-time farmer is plowing his field with a mule. How much work does the mule do in plowing one length of a field 300 ft long, if it pulls the plow with a constant force of 250 lb and the straps make a 30° angle with the horizontal.
37. Tough-man contest: As part of a “tough-man” contest, participants are required to pull a bus along a level street for 100 ft. If one contestant did 45,000 ft-lb of work to accomplish the task and the straps used made an angle of 5° with the street, find the tension in the strap during the pull.
36. Pulling a sled: To enjoy a beautiful snowy day, a mother is pulling her three 32° children on a sled along a level street. How much work (play) is done if the street is 100 ft long and she pulls with a constant force of 55 lb with the tow-rope making an angle of 32° with the street?
38. Moving supplies: An arctic explorer is hauling supplies from the supply hut to her tent, a distance of 150 ft, in a sled she is dragging behind her. If 9000 ft-lb of work was done and the straps used made an angle of 25° with the snow-covered ground, find the tension in the strap during the task. 39. Wheelbarrow rides: To break up the monotony of a long, hot, boring Saturday, a father decides to (carefully) give his kids a ride in a wheelbarrow. He applies a force of 30 N to move the “load” 100 m, then stops to rest. Find the amount of work done if the wheelbarrow makes an angle of 20° with level ground while in motion.
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40. Mowing the lawn: A home owner applies a force of 40 N to push her lawn mower back and forth across the back yard. Find the amount of work done if the yard is 50 m long, requires 24 passes to get the lawn mowed, and the mower arm makes an angle of 39° with the level ground. Force vectors: For the force vector F and vector v given, find the amount of work required to move an object along the entire length of v. Assume force is in pounds and distance in feet.
41. F H15, 10I; v H50, 5I
42. F H5, 12I; v H25, 10I 43. F H8, 2I; v H15, 1I
44. F H15, 3I; v H24, 20I 45. Use the dot product to verify the solution to Exercise 41. 46. Use the dot product to verify the solution to Exercise 42. 47. Use the dot product to verify the solution to Exercise 43. 48. Use the dot product to verify the solution to Exercise 44. For each pair of vectors given, (a) compute the dot product p # q and (b) find the angle between the vectors to the nearest tenth of a degree.
49. p H5, 2I; q H3, 7I
50. p H3, 6I; q H2,5I
51. p 2i 3j; q 6i 4j 52. p 4i 3j; q 6i 8j 53. p 7 12i 3j; q 212i 9j 54. p 12i 3j; q 312i 5j Determine if the pair of vectors given are orthogonal.
55. u H7, 2I; v H4, 14I
56. u H3.5, 2.1I; v H6, 10I 57. u H6, 3I; v H8, 15I
58. u H5, 4I; v H9, 11I
59. u 2i 6j; v 9i 3j
60. u 3 12i 2j; v 2 12i 6j Find compvu for the vectors u and v given.
61. u H3, 5I; v H7, 1I
62. u H3, 5I; v H7, 1I
63. u 7i 4j; v 10j 64. u 8i; v 10i 3j 65. u 7 12i 3j; v 6i 513j 66. u 3 12i 6j; v 2i 5 15j For each pair of vectors given, (a) find the projection of u along v (compute projvu) and (b) resolve u into vectors u1 and u2, where u1 7v and u2v.
67. u H2, 6I; v H8, 3I
68. u H3, 8I; v H12, 3I
69. u H2, 8I; v H6, 1I
70. u H4.2, 3I; v H5, 8.3I 71. u 10i 5j; v 12i 2j 72. u 3i 9j; v 5i 3j Projectile motion: A projectile is launched from a catapult with the initial velocity v0 and angle indicated. Find (a) the position of the object after 3 sec and (b) the time required to reach a height of 250 ft.
73. v0 250 ft/sec; 60° 74. v0 300 ft/sec; 55° 75. v0 200 ft/sec; 45° 76. v0 500 ft/sec; 70° 77. At the circus, a “human cannon ball” is shot from a large cannon with an initial velocity of 90 ft/sec at an angle of 65° from the horizontal. How high is the acrobat after 1.2 sec? How long until the acrobat is again at this same height? 78. A center fielder runs down a long hit by an opposing batter and whirls to throw the ball to the infield to keep the hitter to a double. If the initial velocity of the throw is 130 ft/sec and the ball is released at an angle of 30° with level ground, how high is the ball after 1.5 sec? How long until the ball again reaches this same height?
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For the arbitrary vectors u H a, bI, v Hc, d I, and w He, f I and the scalar k, prove the following vector properties using the properties of real numbers.
represent the slopes of the vectors. Find the angle between the vectors 1i 5j and 5i 2j using each equation and comment on which you found more efficient. Then see if you can find a geometric connection between the two equations.
79. w # 1u v2 w # u w # v 80. k1u # v2 ku # v u # kv 81. 0 # u u # 0 0
82.
84. Use the equations for the horizontal and vertical components of the projected object’s position to obtain the equation of trajectory 16 y 1tan 2x 2 2 x2. This is a quadratic v cos equation in x. What can you say about its graph? Include comments about the concavity, x-intercepts, maximum height, and so on.
u#v
u # v u v uv
u#v for finding the uv angle between two vectors, the equation m2 m1 can be used, where m1 and m2 tan 1 m2m1
83. As alternative to cos
765
Section 7.4 Vector Applications and the Dot Product
MAINTAINING YOUR SKILLS
85. (4.4) Solve for t: 2.9e0.25t 7.6 438
88. (7.3) A plane is flying 200 mph at heading 30°, with a 40 mph wind blowing from due west. Find the true course and speed of the plane.
86. (5.5) Graph the function using a reference rectangle and the rule of fourths: y 3 cosa2 b 4 87. (7.2) Solve the triangle shown, then A compute its perimeter and area.
Plane
200 mph 30
C 250 m
Wind 40 mph
32 172 m B
7.5 Complex Numbers in Trigonometric Form Learning Objectives In Section 7.5 you will learn how to:
A. Graph a complex number B. Write a complex number in trigonometric form
C. Convert from trigonometric form to rectangular form
D. Interpret products and quotients geometrically
E. Compute products and quotients in trigonometric form
F. Solve applications involving complex numbers (optional)
Once the set of complex numbers became recognized and defined, the related basic operations matured very quickly. With little modification—sums, differences, products, quotients, and powers all lent themselves fairly well to the algebraic techniques used for real numbers. But roots of complex numbers did not yield so easily and additional tools and techniques were needed. Writing complex numbers in trigonometric form enables us to find complex roots (Section 7.6) and in some cases, makes computing products, quotients, and powers more efficient.
A. Graphing Complex Numbers In previous sections we defined a vector quantity as one that required more than a single component to describe its attributes. The complex number z a bi certainly fits this description, since both a real number “component” and an imaginary “component” are needed to define it. In many respects, we can treat complex numbers in the same way we treated vectors and in fact, there is much we can learn from this connection. Since both axes in the xy-plane have real number values, it’s not possible to graph a complex number in (the real plane). However, in the same way we used
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the x-axis for the horizontal component of a vector and the y-axis for the vertical, we can let the x-axis represent the real valued part of a complex number and the y-axis the imaginary part. The result is called the complex plane . Every point (a, b) in can be associated with a complex number a bi, and any complex number a bi can be associated with a point (a, b) in (Figure 7.69). The point (a, b) can also be regarded as the terminal point of a position vector representing the complex number, generally named using the letter z.
WORTHY OF NOTE Surprisingly, the study of complex numbers matured much earlier than the study of vectors, and representing complex numbers as directed line segments actually preceded their application to a vector quantity.
EXAMPLE 1
Figure 7.69 Imaginary yi axis b
(a + bi) z x a Real axis
Graphing Complex Numbers
yi
Graph the complex numbers below on the same complex plane. a. z1 2 6i b. z2 5 4i c. z3 5 d. z4 4i Solution
(5, 4)
(0, 4) z4
z2 z3
The graph of each complex number is shown in the figure.
(5, 0) x
z1 (2, 6)
Now try Exercises 7 through 10
A. You’ve just learned how to graph a complex number
Figure 7.70 z2 (2, 3)
z
(5, 2) z2
In Example 1, you likely noticed that from a vector perspective, z2 is the “resultant vector” for the sum z3 z4. To investigate further, consider z1 12 3i2, z2 15 2i2, and the sum z1 z2 z shown in Figure 7.70. The figure helps to confirm that the sum of complex numbers can be illustrated geometrically using the parallelogram (tail-to-tip) method employed for vectors in Section 7.4.
B. Complex Numbers in Trigonometric Form
yi (3, 5)
z1 x
The complex number z a bi is said to be in rectangular form since it can be graphed using the rectangular coordinates of the complex plane. Complex numbers can also be written in trigonometric form. Similar to how x represents the distance between the real number x and zero, z represents the distance between Figure 7.71 (a, b) and the origin in the complex yi plane, and is computed as z 2a2 b2. With any nonzero z, we can also associate z a bi an angle , which is the angle in standard r b position whose terminal side coincides x with the graph of z. If we let r represent r a a z, Figure 7.71 shows cos and r b sin , yielding r cos a and r sin b. The appropriate substitutions into r a bi give the trigonometric form: z a bi r cos r sin # i
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Factoring out r and writing the imaginary unit as the lead factor of sin gives the b relationship in its more common form, z r 1cos i sin 2, where tan . a WORTHY OF NOTE
The Trigonometric Form of a Complex Number
While it is true the trigonometric form can more generally be written as z r 3cos 1 2k2 i sin 1 2k2 4 for k , the result is identical for any integer k and we will select so that 0 6 2 or 0° 6 360°, depending on whether we are working in radians or degrees.
For the complex number z a bi and angle shown, z r1cos i sin 2 b is the trigonometric form of z, where r 2a2 b2, and tan ; a 0. a yi • r z represents the magnitude of z (also called the modulus). z a bi • is often referred to as the r argument of z. b r
x
a
b b Be sure to note that for tan , tan1a b is equal to r (the reference angle a a for ) and the value of will ultimately depend on the quadrant of z. EXAMPLE 2
Converting a Complex Number from Rectangular to Trigonometric Form State the quadrant of the complex number, then write each in trigonometric form. a. z1 2 2i b. z2 6 2i
Solution
yi 2 r
3
2 x
r
2 2i
v
3 yi 5 6 2i r r 6 x
4
Knowing that modulus r and angle are needed for the trigonometric form, we first determine these values. Once again, to find the correct value of , it’s important to note the quadrant of the complex number. a. z1 2 2i; QIII b. z 6 2i; QI 2 2 r 2122 122 r 2162 2 122 2 18 2 12 140 2 110 2 2 r tan1a b r tan1a b 2 6 1 tan1a b tan1 112 3 1 z is in QI, so tan1a b 4 3 5 1 with z1 in QIII, . z 2 110 acos c tan1a b d 4 3 1 5 5 i sin c tan1a b d b z1 2 12 c cos a b i sin a b d 3 4 4 See the figure.
5
Now try Exercises 11 through 26
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B. You’ve just learned how to write a complex number in trigonometric form
WORTHY OF NOTE Using the triangle diagrams from Section 6.5, 1 cos ctan1a bd and 3 1 sin ctan1a b d can easily be 3 evaluated and used to verify 1 2110 cis ctan1a bd 6 2i. 3
EXAMPLE 3
Since the angle is repeated for both cosine and sine, we often use an abbreviated notation for the trigonometric form, called “cis” (sis) notation: z r 1cos i sin 2 r cis . The results of Example 2(a) and 2(b) would then be 5 1 written z 212 cis a b and z 2 110 cis c tan1a b d , respectively. 4 3 b As in Example 2b, when r tan1a b is not a standard angle we either answer a in exact form as shown, or use a four-decimal-place approximation: 2 110 cis10.32182.
C. Converting from Trigonometric Form to Rectangular Form Converting from trigonometric form back to rectangular form is simply a matter of evaluating r cis . This can be done regardless of whether is a standard angle or in b the form tan1a b, since in the latter case we can construct a right triangle with side a b opposite and side a adjacent , and find the needed values as in Section 6.5.
Converting a Complex Number from Trigonometric to Rectangular Form Graph the following complex numbers, then write them in rectangular form. 5 a. z 12 cis a b b. z 13 cis c tan1a b d 6 12
Solution
, which yields the 6 graph in Figure 7.72. In the nonabbreviated form we have z 12 c cos a b i sin a b d . 6 6 Evaluating within the brackets gives 1 13 i d 6 13 6i. z 12 c 2 2 5 b. For r 13 and tan1a b, we have 12 the graph shown in Figure 7.73. Here we obtain the rectangular form directly from the diagram with z 12 5i. Verify by 5 noting that for tan1a b, 12 5 12 cos , and sin , meaning 5 13 13 z 131cos i sin 2 13 c
C. You’ve just learned how to convert from trigonometric form to rectangular form
Figure 7.72
a. We have r 12 and
12 5 i d 12 5i. 13 13
yi z (6√3 6i) 12 k x
Figure 7.73 yi z (12 5i) 13 5 tan112
12 x
Now try Exercises 27 through 34
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Section 7.5 Complex Numbers in Trigonometric Form
D. Interpreting Products and Quotients Geometrically The multiplication and division of complex numbers has some geometric connections that can help us understand their computation in trigonometric form. Note the relationship between the modulus and argument of the following product, with the moduli (plural of modulus) and arguments from each factor.
EXAMPLE 4
Noting Graphical Connections for the Product of Two Complex Numbers For z1 3 3i and z2 0 2i, a. Graph the complex numbers and compute their moduli and arguments. b. Compute and graph the product z1z2 and find its modulus and argument. Discuss any connections you see between the factors and the resulting product.
Solution
a. The graphs of z1 and z2 are shown in the figure. For the modulus and argument we have: z1 3 3i; QI r 2132 2 132 2 118 3 12 1
tan 1 1 45°
D. You’ve just learned how to interpret products and quotients geometrically
yi
z3
z2 0 2i; 1quadrantal2 r 2 directly
z1
135 z2 45
x
90° directly
b. The product z1z2 is 13 3i2 12i2 6 6i, which is in QII. The modulus is 2162 2 162 2 172 6 12, with an argument of r tan1 112 or 135° (QII). Note the product of the two moduli is equal to the modulus of the final product: 2 # 3 12 6 12. Also note that the sum of the arguments for z1 and z2 is equal to the argument of the product: 45° 90° 135°! Now try Exercises 35 and 36
A similar geometric connection exists for the division of complex numbers. This connection is explored in Exercises 37 and 38 of the exercise set.
E. Products and Quotients in Trigonometric Form The connections in Example 4 are not a coincidence, and can be proven to hold for all complex numbers. Consider any two nonzero complex numbers z1 r1 1cos i sin 2 and z2 r2 1cos i sin 2. For the product z1z2 we have product in trig form z1z2 r1 1cos i sin 2 r2 1cos i sin 2 r1r2 3 1cos i sin 21cos i sin 2 4 rearrange factors r1r2 3cos cos i sin cos i sin cos i2sin sin 4 r1r2 3 1cos cos sin sin 2 i1sin cos sin cos 2 4
r1r2 3cos1 2 i sin1 2 4
F-O-I-L commute terms; i 2 1
use sum/difference identities for sine/cosine
In words, the proof says that to multiply complex numbers in trigonometric form, we multiply the moduli and add the arguments. For division, we divide the moduli and subtract the arguments. The proof for division resembles that for multiplication and is asked for in Exercise 71.
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Products and Quotients of Complex Numbers in Trigonometric Form For the complex numbers z1 r1 1cos i sin 2 and z2 r2 1cos i sin 2,
z1z2 r1r2 3cos1 2 i sin1 2 4 and
z1 r1 3cos1 2 i sin1 2 4 , z2 0. z2 r2
EXAMPLE 5
Multiplying Complex Numbers in Trigonometric Form For z1 3 13i and z2 13 1i, a. Write z1 and z2 in trigonometric form and compute z1z2. z1 b. Compute the quotient in trigonometric form. z2 c. Verify the product using the rectangular form.
Solution
a. For z1 in QII we find r 213 and 150°, for z2 in QI, r 2 and 30°. In trigonometric form, z1 2 131cos 150° i sin 150°2 and z2 21cos 30° i sin 30°2: z1z2 2 131cos 150° i sin 150°2 # 21cos 30° i sin 30°2 213 # 2 3cos1150° 30°2 i sin1150° 30°2 4 4 131cos 180° i sin 180°2 4 13 11 0i2 4 13 2 131cos 150° i sin 150°2 z1 z2 21cos 30° i sin 30°2 133cos1150° 30°2 i sin1150° 30°2 4 131cos 120° i sin 120°2 1 13 ib 13a 2 2 3 13 i 2 2 c. z1z2 13 13i21 13 1i2 3 13 3i 3i 13i2 4 13
multiply moduli, add arguments
b.
divide moduli, subtract arguments
Now try Exercises 39 through 46
E. You’ve just learned how to compute products and quotients in trigonometric form
Converting to trigonometric form for multiplication and division seems too clumsy for practical use, as we can often compute these results more efficiently in rectangular form. However, this approach leads to powers and roots of complex numbers, an indispensable part of advanced equation solving, and these are not easily found in rectangular form. In any case, note that the power and simplicity of computing products/quotients in trigonometric form is highly magnified when the complex numbers are given in trig form: 112 cis 50°2 13 cis 20°2 36 cis 70° See Exercises 47 through 50.
12 cis 50° 4 cis 30°. 3 cis 20°
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Section 7.5 Complex Numbers in Trigonometric Form
F. (Optional) Applications of Complex Numbers Somewhat surprisingly, complex numbers Figure 7.74 have several applications in the real Magnetic flux world. Many of these involve a study of electricity, and in particular AC (alternating current) circuits. In simplistic terms, when an armature (molded wire) is rotated in a S N uniform magnetic field, a voltage V is generated that depends on the strength of the field. As the armature is rotated, the voltage varies between a maximum and a minimum value, with the amount of voltage modeled by V12 Vmaxsin1B2, with in degrees. Here, Vmax represents the maximum voltage attained, and the input variable represents the angle the armature makes with the magnetic flux, indicated in Figure 7.74 by the dashed arrows between the magnets. When the armature is perpendicular to the flux, we say 0°. At 0° and 180°, no voltage is produced, while at 90° and 270°, the voltage reaches its maximum and minimum values respectively (hence the name alternating current). Many electric dryers and other large appliances are labeled as 220 volt (V) appliances, but use an alternating current that varies from 311 V to 311 V (see Worthy of Note). This means when 52°, V152°2 311 sin152°2 245 V is being generated. In practical applications, we use time t as the independent variable, rather the angle of the armature. These large appliances usually operate with a frequency of 60 cycles per 1 1 2 , we obtain second, or 1 cycle every of a second aP b. Using B 60 60 P B 120 and our equation model becomes V1t2 311 sin1120t2 with t in radians. This variation in voltage is an excellent example of a simple harmonic model.
WORTHY OF NOTE You may have wondered why we’re using an amplitude of 311 for a 220-V appliance. Due to the nature of the sine wave, the average value of an alternating current is always zero and gives no useful information about the voltage generated. Instead, the root-mean-square (rms) of the voltage is given on most appliances. While the maximum voltage is 311 V, the rms voltage is 311 220 V. See 12 Exercise 72.
EXAMPLE 6
Analyzing Alternating Current Using Trigonometry Use the equation V1t2 311 sin1120t2 to: a. Create a table of values illustrating the voltage produced every thousandth of a 1 second for the first half-cycle at 0.008b. 120 b. Use a graphing calculator to find the times t in this half-cycle when 160 V is being produced.
Solution
a. Starting at t 0 and using increments of 0.001 sec produces the table shown. 400
0
0.0165
400
Time t
Voltage
0
0
0.001
114.5
0.002
212.9
0.003
281.4
0.004
310.4
0.005
295.8
0.006
239.6
0.007
149.8
0.008
39.9
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b. From the table we note V1t2 160 when t 10.001, 0.0022 and t 10.006, 0.0072 . Using the intersection of graphs method places these values at t 0.0014 and t 0.0069 (see graph). Now try Exercises 53 and 54 Figure 7.77 Voltage leads current by 90 (phase angle 90)
sin
90
180
270
Figure 7.78 Voltage lags current by 90 (phase angle 90)
sin
90
180
270
Figure 7.79 yi XL R x
XC
WORTHY OF NOTE While mathematicians generally use the symbol i to represent 11, the “i” is used in other fields to represent an electric current so the symbol j 11 is used instead. In conformance with this convention, we will temporarily use j for 11 as well.
EXAMPLE 7
The chief components of AC circuits are voltage (V ) and current (I ). Due to the nature of how the current is generated, V and I can be modeled by sine functions. Other characteristics of electricity include pure resistance (R), Figure 7.75 inductive reactance (XL), and capacitive reactance (XC) (see Figure 7.75). Each of these is measured in a unit called XL XC R ohms (2, while current I is measured in amperes (A), and B C D voltages are measured in volts (V). These components of A electricity are related by fixed and inherent traits, which include the following: (1) voltage across a Figure 7.76 resistor is always in phase with the current, Voltage and current sin meaning the phase shift or phase angle between are in phase (phase angle 0) them is 0° (Figure 7.76);(2) voltage across an inductor leads the current by 90° (Figure 7.77); (3) voltage across a capacitor lags the current by 90 180 270 90° (Figure 7.78); and (4) voltage is equal to the product of the current times the resistance or reactance: V IR, V IXL, and V IXC. Different combinations of R, XL, and XC in a combined (series) circuit alter the phase angle and the resulting voltage. Since voltage across a resistance is always in phase with the current (trait 1), we can model the resistance as a vector along the positive real axis (since the phase angle is 0°). For traits (2) and (3), XL is modeled on the positive imaginary axis since voltage leads current by 90°, and XC on the negative imaginary axis since voltage lags current by 90° (see Figure 7.79). These natural characteristics make the complex plane a perfect fit for describing the characteristics of the circuit. Consider a series circuit (Figure 7.75), where R 12 , XL 9 , and XC 4 . For a current of I 2 amps through this circuit, the voltage across each individual element would be VR 122 1122 24 V (A to B), VL 122192 18 V (B to C), and VC 122142 8 V (C to D). However, the resulting voltage across this circuit cannot be an arithmetic sum, since R is real while XL and XC are represented by imaginary numbers. The joint effect of resistance (R) and reactance (XL, XC) in a circuit is called the impedance, denoted by the letter Z, and is a measure of the total resistance to the flow of electrons. It is computed Z R XL j XC j (see Worthy of Note), due to the phase angle relationship of the voltage in each element (XL and XC point in opposite directions, hence the subtraction). The expression for Z is more commonly written R 1XL XC 2 j, where we more clearly note Z is a complex number whose magnitude and angle with the x-axis can be found as before: XL XC b. The angle represents the Z 2R2 1XL XC 2 2 and r tan1a R phase angle between the voltage and current brought about by this combination of elements. The resulting voltage of the circuit is then calculated as the product of the current with the magnitude of the impedance, or VRLC I Z (Z is also measured in ohms, ).
Finding the Impedence and Phase Angle of the Current in a Circuit For the circuit diagrammed in the figure, (a) find the magnitude of Z, the phase angle between current and voltage, and write the result in trigonometric form; and (b) find the total voltage across this circuit.
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Solution XL
R A
12 Ω
B
9Ω
XC C
4Ω
D
F. You have just learned how to solve applications involving complex numbers
773
a. Using the values given, we find Z R 1XL XC 2 j 12 19 42 j 12 5j (QI). This gives a magnitude of
Z 21122 2 152 2 1169 13 , with a phase angle of 5 tan1a b 22.6° (voltage leads the current by about 22.6°). 12 In trigonometric form Z 13 cis 22.6°. b. With I 2 amps, the total voltage across this circuit is VRLC I Z 21132 26 V. Now try Exercises 55 through 68
7.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. For a complex number written in the form z r 1cos i sin 2, r is called the and is called the .
4. To divide complex numbers in trigonometric form, we the moduli and the arguments.
2. The complex number z 2 c cosa b i sina b d 4 4 can be written as the abbreviated “cis” notation as .
5. Write z 1 13i in trigonometric form and explain why the argument is 240° instead of 60° as indicated by your calculator.
3. To multiply complex numbers in trigonometric form, we the moduli and the arguments.
6. Discuss the similarities between finding the components of a vector and writing a complex number in trigonometric form.
DEVELOPING YOUR SKILLS
Graph the complex numbers z1, z2, and z3 given, then express one as the sum of the other two.
7. z1 7 2i z2 8 6i z3 1 4i 9. z1 2 5i z2 1 7i z3 3 2i
8. z1 2 7i z2 3 4i z3 1 3i 10. z1 2 6i z2 7 2i z3 5 4i
State the quadrant of each complex number, then write it in trigonometric form. For Exercises 11 through 14, answer in degrees. For 15 through 18, answer in radians.
11. 2 2i
12. 7 7i
13. 5 13 5i
14. 2 213i
15. 312 3 12i
16. 5 17 5 17i
17. 4 13 4i
18. 6 6 13i
Write each complex number in trigonometric form. For Exercises 19 through 22, answer in degrees using both an exact form and an approximate form, rounding to tenths. For 23 through 26, answer in radians using both an exact form and an approximate form, rounding to four decimal places.
19. 8 6i
20. 9 12i
21. 5 12i
22. 8 15i
23. 6 17.5i
24. 30 5.5i
25. 6 10i
26. 12 4i
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Graph each complex number using its trigonometric form, then convert each to rectangular form.
27. 2 cis a b 4
28. 12 cis a b 6
29. 4 13 cis a b 3
30. 513 cis a
31. 17 cis c tan1a
15 bd 8
7 b 6
3 32. 10 cis c tan1a b d 4
z1 using the z2 trigonometric form. Answer in exact rectangular form where possible, otherwise round all values to two decimal places. Compute the product z1z2 and quotient
40. z1
41. z1 213 0i
42. z1 0 6i 12
33. 6 cis c tan1a
5 bd 111
z2
34. 4 cis c tan1a
17 bd 3
43. z1 9 c cos a
For the complex numbers z1 and z2 given, find their moduli r1 and r2 and arguments 1 and 2. Then compute their product in rectangular form. For modulus r and argument of the product, verify that r1r2 r and 1 2 .
35. z1 2 2i; z2 3 3i 36. z1 1 13i; z2 3 13i For the complex numbers z1 and z2 given, find their moduli r1 and r2 and arguments 1 and 2. Then compute their quotient in rectangular form. For modulus r and argument of the quotient, verify that r1 r and 1 2 . r2
37. z1 13 i; z2 1 13i 38. z1 13 i; z2 3 0i
7i 13 21 2 2
z2
3i 16 3 12 2 2
b i sin a b d 15 15 2 2 z2 1.8 c cos a b i sin a b d 3 3 3 3 b i sin a b d 5 5 z2 8.4 c cos a b i sin a b d 5 5
44. z1 2 c cos a
45. z1 101cos 60° i sin 60°2 z2 41cos 30° i sin 30°2 46. z1 71cos 120° i sin 120°2 z2 21cos 300° i sin 300°2 47. z1 5 12 cis 210° z2 2 12 cis 30°
48. z1 513 cis 240° z2 13 cis 90°
49. z1 6 cis 82° z2 1.5 cis 27°
50. z1 1.6 cis 59° z2 8 cis 275°
WORKING WITH FORMULAS
51. Equilateral triangles in the complex plane: u2 v2 w2 uv uw vw If the line segments connecting the complex numbers u, v, and w form the vertices of an equilateral triangle, the formula shown above holds true. Verify that u 2 13i, v 10 13i, and w 6 5 13i form the vertices of an equilateral triangle using the distance formula, then verify the formula given.
5 13 5 i 2 2 z2 0 6i
39. z1 413 4i 3 13 3 i z2 2 2
52. The cube of a complex number: 1A B2 3 A3 3A2B 3AB2 B3 The cube of any binomial can be found using the formula here, where A and B are the terms of the binomial. Use the formula to compute the cube of 1 2i (note A 1 and B 2i2.
APPLICATIONS
53. Electric current: In the United States, electric power is supplied to homes and offices via a “120 V circuit,” using an alternating current that varies from 170 V to 170 V, at a frequency of 60 cycles/sec. (a) Write the voltage equation for U.S.
households, (b) create a table of values illustrating the voltage produced every thousandth of a second for the first half-cycle, and (c) find the first time t in this half-cycle when exactly 140 V is being produced.
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54. Electric current: While the electricity supplied in Europe is still not quite uniform, most countries employ 230-V circuits, using an alternating current that varies from 325 V to 325 V. However, the frequency is only 50 cycles per second. (a) Write the voltage equation for these European countries, (b) create a table of values illustrating the voltage produced every thousandth of a second for the first half-cycle, and (c) find the first time t in this halfcycle when exactly 215 V is being produced.
trigonometric form and find the voltage in each circuit. Recall V IZ.
61. I 13 1j A and Z 5 5j 62. I 13 1j A and Z 2 2j 63. I 3 2j A and Z 2 3.75j 64. I 4 3j A and Z 2 4j
AC circuits: For the circuits indicated in Exercises 55 through 60, (a) find the magnitude of Z, the phase angle between current and voltage, and write the result in trigonometric form; and (b) find the total voltage across this circuit. Recall Z R (XL XC) j and |Z | 1R2 (XL XC)2. Exercises 55 through 58
55. R 15 , XL 12 , and XC 4 , with I 3 A.
A
56. R 24 , XL 12 , and XC 5 , with I 2.5 A. 57. R 7 , XL 6 , and XC 11 , with I 1.8 A. 58. R 9.2 , XL 5.6 , and XC 8.3 , with I 2.0 A.
XL
XC
R B
D
Exercises 59 and 60 A
XL B
C
59. R 12 and XL 5 , with I 1.7 A. 60. R 35 and XL 12 , with I 4 A. AC circuits — voltage: The current I and the impedance Z for certain AC circuits are given. Write I and Z in
AC circuits — current: If the voltage and impedance are known, the current I in the circuit is calculated as the V quotient I . Write V and Z in trigonometric form to Z find the current in each circuit.
65. V 2 2 13j and Z 4 4j 66. V 4 13 4j and Z 1 1j 67. V 3 4j and Z 4 7.5j
C
R
775
68. V 2.8 9.6j and Z 1.4 4.8j Parallel circuits: For AC circuits wired in parallel, the Z1Z2 total impedance is given by Z , where Z1 and Z1 Z2 Z2 represent the impedance in each branch. Find the total impedance for the values given. Compute the product in the numerator using trigonometric form, and the sum in the denominator in rectangular form.
69. Z1 1 2j and Z2 3 2j 70. Z1 3 j and Z2 2 j
EXTENDING THE CONCEPT
71. Verify/prove that for the complex numbers z1 r1 1cos i sin 2 and z2 r2 1cos i sin 2, z1 r1 3cos1 2 i sin1 2 4 . z2 r2 72. Using the Internet, a trade manual, or some other resource, find the voltage and frequency at which electricity is supplied to most of Japan (oddly enough — two different frequencies are in common use). As in Example 6, the voltage given will likely be the root-mean-square (rms) voltage. Use the information to find the true voltage and the equation model for voltage in most of Japan.
73. Recall that two lines are perpendicular if their slopes have a product of 1. For the directed line segment representing the complex number z1 7 24i, find complex numbers z2 and z3 whose directed line segments are perpendicular to z1 and have a magnitude one-fifth as large. 74. The magnitude of the impedance is Z 2R2 1XL XC 2 2. If R, XL, and XC are all nonzero, what conditions would make the magnitude of Z as small as possible?
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75. (6.7) Solve for x 30, 22: 350 750 sina2x b 25 4 76. (3.6) Name all asymptotes of the function 1 x3 h1x2 x2
78. (7.2) A ship is spotted by two observation posts that are 4 mi apart. Using the line between them for reference, the first post reports the ship is at an angle of 41°, while the second reports an angle of 63°, as shown. How far is the ship from the closest post? Exercise 78
77. (2.7) Graph the piecewise-defined function given: 2 x 6 2 f 1x2 • x2 2 x 6 1 x x1
41
63 4 mi
7.6 De Moivre’s Theorem and the Theorem on nth Roots Learning Objectives In Section 7.6 you will learn how to:
A. Use De Moivre’s theorem to raise complex numbers to any power
B. Use De Moivre’s theorem to check solutions to polynomial equations
C. Use the nth roots theorem to find the nth roots of a complex number
The material in this section represents some of the most significant developments in the history of mathematics. After hundreds of years of struggle, mathematical scientists had not only come to recognize the existence of complex numbers, but were able to make operations on them commonplace and routine. This allowed for the unification of many ideas related to the study of polynomial equations, and answered questions that had puzzled scientists from many different fields for centuries. In this section, we will look at two fairly simple theorems that actually represent over 1000 years in the evolution of mathematical thought.
A. De Moivre’s Theorem Having found acceptable means for applying the four basic operations to complex numbers, our attention naturally shifts to the computation of powers and roots. Without them, we’d remain wholly unable to offer complete solutions to polynomial equations and find solutions for many applications. The computation of powers, squares, and cubes offer little challenge, as they can be computed easily using the formula for binomial squares 3 1A B2 2 A2 2AB B2 4 or by applying the binomial theorem. For larger powers, the binomial theorem becomes too time consuming and a more efficient method is desired. The key here is to use the trigonometric form of the complex number. In Section 7.5, we noted the product of two complex numbers involved multiplying their moduli and adding their arguments: For z1 r1 1cos 1 i sin 1 2 and z2 r2 1cos 2 i sin 2 2 we have z1z2 r1r 3cos11 2 2 i sin11 2 2 4
For the square of a complex number, r1 r2 and 1 2. Using itself yields z2 r2 3cos1 2 i sin1 2 4 r2 3cos122 i sin122 4
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Multiplying this result by z r 1cos i sin 2 to compute z3 gives
r2 3cos122 i sin122 4 r1cos i sin 2 r3 3cos12 2 i sin12 2 4
WORTHY OF NOTE
r3 3cos132 i sin132 4 .
Sometimes the argument of cosine and sine becomes very large after applying De Moivre’s theorem. In these cases, we use the fact that 360°k and 2 k represent coterminal angles for integers k, and use the coterminal angle where 0 6 360° or 0 6 2.
EXAMPLE 1
The result can be extended further and generalized into De Moivre’s theorem. De Moivre’s Theorem For any positive integer n, and z r 1cos i sin 2,
zn rn 3cos1n2 i sin1n2 4
For a proof of the theorem where n is an integer and n 1, see Appendix V.
Using De Moivre’s Theorem to Compute the Power of a Complex Number Use De Moivre’s theorem to compute z9, given z 12 12i.
Solution
1 2 1 2 12 a b a b . With z in QIII, tan 1 yields B 2 2 2 5 5 5 12 . The trigonometric form is z c cosa b i sina b d and applying 4 2 4 4 the theorem with n 9 gives Here we have r
5 5 12 9 b c cosa9 # b i sina9 # bd 2 4 4 45 45 12 c cosa b i sina bd 32 4 4 5 5 12 c cosa b i sina b d 32 4 4 12 12 12 ib a 32 2 2 1 1 i 32 32
z9 a
A. You’ve just learned how to use De Moivre’s theorem to raise complex numbers to any power
De Moivre’s theorem
simplify
coterminal angles
evaluate functions
result
Now try Exercises 7 through 14
As with products and quotients, if the complex number is given in trigonometric form, computing any power of the number is both elegant and efficient. For instance, if z 2 cis 40°, then z4 16 cis 160°. See Exercises 15 through 18. For cases where is not a standard angle, De Moivre’s theorem requires an intriguing application of the skills developed in Chapter 6, including the use of multiple angle b identities and working from a right triangle drawn relative to r tan1a b. a See Exercises 57 and 58.
B. Checking Solutions to Polynomial Equations One application of De Moivre’s theorem is checking the complex roots of a polynomial, as in Example 2.
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EXAMPLE 2
Using De Moivre’s Theorem to Check Solutions to a Polynomial Equation Use De Moivre’s theorem to show that z 2 2i is a solution to z4 3z3 38z2 128z 144 0.
Solution
We will apply the theorem to the third and fourth degree terms, and compute the square directly. Since z is in QIII, the trigonometric form is z 2 12 cis 225°. In the following illustration, note that 900° and 180° are coterminal, as are 675° and 315°. 12 2i2 4 12 122 4cis14 # 225°2 12 122 4cis 900° 64 cis 180° 6411 0i2 64
12 2i2 3 12 122 3cis13 # 225°2 12 122 3cis 675° 12122 3cis 315° 12 12 ib 16 12a 2 2 16 16i
12 2i2 2 4 8i 12i2 2 4 8i 4i2 4 8i 4 0 8i 8i
Substituting back into the original equation gives B. You’ve just learned to use De Moivre’s theorem to check solutions to polynomial equations
1z4 3z3 38z2 128z 144 0 11642 3116 16i2 3818i2 12812 2i2 144 0 64 48 48i 304i 256 256i 144 0 164 48 256 1442 148 304 2562i 0 0 0✓ Now try Exercises 19 through 26
Regarding Example 2, we know from a study of algebra that complex roots must occur in conjugate pairs, meaning 2 2i is also a root. This equation actually has two real and two complex roots, with z 9 and z 2 being the two real roots.
C. The nth Roots Theorem Having looked at De Moivre’s theorem, which raises a complex number to any power, we now consider the nth roots theorem, which will compute the nth roots of a complex number. If we allow that De Moivre’s theorem also holds for rational values 1 , instead of only the integers n illustrated previously, the formula for computing an n nth root would be a direct result: 1 1 1 1 zn r n c cosa b i sina b d n n n 1 r c cosa b i sina b d n n
De Moivre’s theorem
simplify
However, this formula would find only the principal nth root! In other words, periodic solutions would be ignored. As in Section 7.5, it’s worth noting the most general form of a complex number is z r 3cos1 360°k2 i sin1 360°k2 4 , for k . When De Moivre’s theorem is applied to this form for integers n, we obtain z n r n 3cos1n 360°kn2 i sin1n 360°kn2 4 , which returns a result identical to 1 r n 3 cos 1n2 i sin 1n2 4 . However, for the rational exponent , the general form takes n additional solutions into account and will return all n, nth roots. 1 1 1 1 z n r n ecos c 1 360°k2 d i sin c 1 360°k2 d f n n 360°k 360°k n 1r c cosa b i sina bd n n n n
De Moivre’s theorem for rational exponents simplify
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The nth Roots Theorem For z r 1cos i sin 2, a positive integer n, and r , z has exactly n distinct nth roots determined by 360°k 360°k n n 1 z 1 r c cosa b i sina bd n n n n where k 0, 1, 2, # # # , n 1. For ease of computation, it helps to note that once the argument for the principal 360 360°k 2 aor b to the previous root is found using k 0, simply adds n n n n argument for k 1, 2, 3, # # # , n 1. In Example 3 you’re asked to find the three cube roots of 1, also called the cube roots of unity, and graph the results. The nth roots of unity play a significant role in the solution of many polynomial equations. For an in-depth study of this connection, visit www.mhhe.com/coburn and go to Section 7.8: Trigonometry, Complex Numbers and Cubic Equations.
EXAMPLE 3
Finding nth Roots Use the nth roots theorem to solve the equation x3 1 0. Write the results in rectangular form and graph.
Solution
From x3 1 0, we have x3 1 and must find the three cube roots of unity. As before, we begin in trigonometric form: 1 0i 11cos 0° i sin 0°2. 3 3 With n 3, r 1, and 0°, we have 1 r 1 1 1, 0° 360°k 0° 120°k. The principal and √3 yi 3 3 q, ] root (k 0) is z0 11cos 0° i sin 0°2 1. Adding 120° to each previous argument, we find z2 the other roots are z1 11cos 120° i sin 120°2 z2 11cos 240° i sin 240°2 .
120
13 1 i, and In rectangular form these are 2 2 13 1 i, as shown in the figure. 2 2
120 z1 120
(1, 0) x
z3 √3
q, ]
Now try Exercises 27 through 40
EXAMPLE 4
Finding nth Roots Use the nth roots theorem to find the five fifth roots of z 16 13 16i.
Solution
In trigonometric form, 16 13 16i 321cos 30° i sin 30°2. With 5 5 n 5, r 32, and 30°, we have 1 r 1 32 2, and 30° 360°k 6° 72°k. The principal root is z0 21cos 6° i sin 6°2. 5 5 Adding 72° to each previous argument, we find the other four roots are z1 21cos 78° i sin 78°2 z3 21cos 222° i sin 222°2
z2 21cos 150° i sin 150°2 z4 21cos 294° i sin 294°2 Now try Exercises 41 through 44
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Figure 7.80 Of the five roots in Example 4, only z2 21cos 150° i sin 150°2 uses a standard yi z1 2 cis 78 angle. Applying De Moivre’s theorem with n 5 5 gives 12 cis 150°2 32 cis 750° 32 cis 30° z2 2 cis 150 or 1613 16i.✓ See Exercise 54. As a consequence of the arguments in a z0 2 cis 6 2 360° x , the solution being uniformly separated by n graphs of complex roots are equally spaced z3 2 cis 222 about a circle of radius r. The five fifth roots z4 2 cis 294 from Example 3 are shown in Figure 7.80 (note each argument differs by 72°). For additional insight into roots of complex numbers, we reason that the nth roots of a complex number must also be complex. To find the four fourth roots of z 8 8 13i 161cos 60° i sin 60°2, we seek a number of the form r 1cos i sin 2 such that 3 r 1cos i sin 2 4 4 161cos 60° i sin 60°2. Applying De Moivre’s theorem to the left-hand side and equating equivalent parts we obtain
r4 3cos142 i sin142 4 161cos 60° i sin 60°2, which leads to r4 16 and
4 60° From this it is obvious that r 2, but as with similar equations solved in Chapter 6, the equation 4 60° has multiple solutions. To find them, we first add 360°k to 60°, then solve for . 4 60° 360°k 60° 360°k 4 15° 90°k
add 360°k divide by 4 result
For convenience, we start with k 0, 1, 2, and so on, which leads to For k 0:
15° 90°102
For k 1:
15° For k 2:
15° 90°122 195°
15° 90°112 105°
For k 3:
15° 90°132 285°
At this point it should strike us that we have four roots—exactly the number required. Indeed, using k 4 gives 15° 90°142 375°, which is coterminal with the 15° obtained when k 0. Hence, the four fourth roots are
C. You’ve just learned how to use the nth roots theorem to find the nth roots of a complex number
z0 21cos 15° i sin 15°2
z1 21cos 105° i sin 105°2
z2 21cos 195° i sin 195°2
z3 21cos 285° i sin 285°2 .
The check for these solutions is asked for in Exercise 53. As a final note, it must have struck the mathematicians who pioneered these discoveries with some amazement that complex numbers and the trigonometric functions should be so closely related. The amazement must have been all the more profound upon discovering an additional connection between complex numbers and exponential functions. For more on these connections, visit www.mhhe.com/coburn and review Section 7.7: Complex Numbers in Exponential Form.
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7.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. For z r 1cos i sin 2, z5 is computed as according to theorem. 2. If z 6i, then z raised to an power will be real and z raised to an power will be since . .
3. One application of De Moivre’s theorem is to check solutions to a polynomial equation.
4. The nth roots of a complex number are equally spaced on a circle of radius r, since their arguments all differ by degrees or radians. 5. From Example 4, go ahead and compute the value of z5, z6, and z7. What do you notice? Discuss how this reaffirms that there are exactly n, nth roots.
6. Use a calculator to find 11 3i2 4. Then use it again to find the fourth root of the result. What do you notice? Explain the discrepancy and then resolve it using the nth roots theorem to find all four roots.
DEVELOPING YOUR SKILLS
Use De Moivre’s theorem to compute the following. Clearly state the value of r, n, and before you begin.
7. 13 3i2 4
8. 12 2i2 6
9. 11 13i2 3
1 13 11. a ib 2 2 13. a
12 12 ib 2 2
6
15. 14 cis 330°2 3 17. a
27. five fifth roots of unity
10. 1 13 i2 3
5
5 12 cis 135°b 2
28. six sixth roots of unity
12. a
13 1 ib 2 2
14. a
12 12 ib 2 2
6
29. five fifth roots of 243 30. three cube roots of 8 5
16. 14 cis 300°2 3 18. a
Find the nth roots indicated by writing and solving the related equation.
8 12 cis 135°b 2
Use De Moivre’s theorem to verify the solution given for each polynomial equation.
19. z4 3z3 6z2 12z 40 0; z 2i 20. z4 z3 7z2 9z 18 0; z 3i 21. z4 6z3 19z2 6z 18 0; z 3 3i 22. 2z4 3z3 4z2 2z 12 0; z 1 i 23. z5 z4 4z3 4z2 16z 16 0; z 13 i 24. z5 z4 16z3 16z2 256z 256 0; z 2 13 2i 25. z4 4z3 7z2 6z 10 0; z 1 2i 26. z4 2z3 7z2 28z 52 0; z 3 2i
31. three cube roots of 27i 32. five fifth roots of 32i Solve each equation using the nth roots theorem.
33. x5 32 0
34. x5 243 0
35. x3 27i 0
36. x3 64i 0
37. x5 12 12i 0
38. x5 1 13i 0
39. Solve the equation x3 1 0 by factoring it as the difference of cubes and applying the quadratic formula. Compare results to those obtained in Example 3. 40. Use the nth roots theorem to find the four fourth roots of unity, then find all solutions to x4 1 0 by factoring it as a difference of squares. What do you notice?
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Use the nth roots theorem to find the nth roots. Clearly state r, n, and (from the trigonometric form of z) as you begin. Answer in exact form when possible, otherwise use a four decimal place approximation.
42. five fifth roots of 16 1613i 43. four fourth roots of 7 7i 44. three cube roots of 9 9i
41. four fourth roots of 8 813i
WORKING WITH FORMULAS
The discriminant of a cubic equation: D
4p3 27q2 108
For cubic equations of the form z3 pz q 0, where p and q are real numbers, one solution has the form q q 3 3 z 1D 1D, where D is called the A 2 A 2
discriminant. Compute the value of D for the cubic equations given, then use the nth roots theorem to find q q the three cube roots of 1D and 1D in 2 2 trigonometric form (also see Exercises 61 and 62).
45. z3 6z 4 0
46. z3 12z 8 0
APPLICATIONS
47. Powers and roots: Just after Example 4, the four fourth roots of z 8 8 13i were given as
48. Powers and roots: In Example 4 we found the five fifth roots of z 16 13 16i were
z0 21cos 15° i sin 15°2
z0 21cos 6° i sin 6°2
z1 21cos 105° i sin 105°2
z1 21cos 78° i sin 78°2
z2 21cos 195° i sin 195°2
z2 21cos 150° i sin 150°2
z3 21cos 285° i sin 285°2.
z3 21cos 222° i sin 222°2
Verify these are the four fourth roots of z 8 813i using a calculator and De Moivre’s theorem.
z4 21cos 294° i sin 294°2 Verify these are the five fifth roots of 16 13 16i using a calculator and De Moivre’s theorem.
Electrical circuits: For an AC circuit with three branches wired in parallel, the total impedance is given by Z1Z2Z3 ZT , where Z1, Z2, and Z3 represent the impedance in each branch of the circuit. If the impedance Z1Z2 Z1Z3 Z2Z3 in each branch is identical, Z1 Z2 Z3 Z, and the numerator becomes Z 3 and the denominator becomes 3Z 2, (a) use De Moivre’s theorem to calculate the numerator and denominator for each value of Z given, (b) find the total impedance by Z Z3 computing the quotient 2 , and (c) verify your result is identical to . 3 3Z
49. Z 3 4j in all three branches
50. Z 5 13 5j in all three branches
EXTENDING THE CONCEPT
In Chapter 6, you were asked to verify that sin132 3 sin 4 sin3 and cos142 8 cos2 8 cos2 1 were identities (Section 6.4, Exercises 21 and 22). For 17 z 3 17i, verify z 4 and tan1a b, then 3 draw a right triangle with 17 opposite and 3 adjacent to . Discuss how this right triangle and the identities given can be used in conjunction with De Moivre’s theorem to find the exact value of the powers given (also see Exercises 53 and 54).
51. 13 17i2 3
52. 13 17i2 4
For cases where is not a standard angle, working toward an exact answer using De Moivre’s theorem requires the use of multiple angle identities and drawing the right triangle b related to tan1a b. For Exercises 53 and 54, use De a Moivre’s theorem to compute the complex powers by (a) constructing the related right triangle for , (b) evaluating sin142 using two applications of double-angle identities, and (c) evaluating cos142 using a Pythagorean identity and the computed value of sin142.
53. z 11 2i2 4
54. 12 15i2 4
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Summary and Concept Review
The solutions to the cubic equations in Exercises 45 and 46 (repeated in Exercises 55 and 56) can be found by adding the q q cube roots of 1D and 1D that have arguments summing to 360°. 2 2
55. Find the roots of z3 6z 4 0
56. Find the roots of z3 12z 8 0
MAINTAINING YOUR SKILLS
57. (6.2) Prove the following is a identity: tan2x 1 cos x cos x sec x 1
59. (2.3) Find the equation of the line whose graph is given.
y 5
5 x
1
58. (3.3) Given f 1x2 2x2 3x, determine: 1 f 112, f a b, f(a) and f 1a h2. 3
60. (5.2) Solve the triangle given. Round lengths to hundredths of a meter.
B 52
213 m
C
A
S U M M A RY A N D C O N C E P T R E V I E W SECTION 7.1
Oblique Triangles and the Law of Sines
KEY CONCEPTS sin A sin C sin B . • In any triangle, the ratio of the sine of an angle to its opposite side is constant: a c b • The law of sines requires a known angle, a side opposite this angle and an additional side or angle, hence cannot be applied for SSS and SAS triangles. • For AAS and ASA triangles, the law of sines yields a unique solution. • When given two sides of a triangle and an angle opposite one of these sides (SSA), the number of solutions is in doubt, giving rise to the designation, “the ambiguous case.” • SSA triangles may have no solution, one solution, or two solutions, depending on the length of the side opposite the given angle. • When solving triangles, always remember: • The sum of all angles must be 180°: A B C 180°. • The sum of any two sides must exceed the length of the remaining side. • Longer sides are opposite larger angles. • k sin1 has no solution for k 7 1. • k sin1 has two solutions in 30, 360°2 for 0 6 k 6 1. EXERCISES Solve the following triangles. 1.
A
2. B
293 cm B
21
123 C
A 28 142 52 yd C
3. A tree is growing vertically on a hillside. Find the height of the tree if it makes an angle of 110° with the hillside and the angle of elevation from the base of the hill to the top of the tree is 25° at a distance of 70 ft.
25
110
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4. Find two values of that will make the equation true:
sin sin 50 . 14 31
5. Solve using the law of sines. If two solutions exist, find both (figure not drawn to scale). C 105 cm
67 cm
35 A
6. Jasmine is flying her tethered, gas-powered airplane at a local park, where a group of bystanders is watching from a distance of 60 ft, as shown. If the tether has a radius of 35 ft and one of the bystanders walks away at an angle of 40°, will he get hit by the plane? What is the smallest angle of exit he could take (to the nearest whole) without being struck by Jasmine’s plane?
SECTION 7.2
Radius 35 ft Jasmine
40 60 ft Bystanders
The Law of Cosines; the Area of a Triangle
KEY CONCEPTS • The law of cosines is used to solve SSS and SAS triangles. • The law of cosines states that in any triangle, the square of any side is equal to the sums of the squares of the other two sides, minus twice their product times the cosine of the included angle: a2 b2 c2 2bc cos A • When using the law of cosines to solve a SSS triangle, always begin with the largest angle or the angle opposite the largest side. • The area of a nonright triangle can be found using the following formulas. The choice of formula depends on the information given. • two sides a and b • two angles A and B • three sides a, b, and c abc with included angle c with included side c with S 1 c2 sin A sin B 2 A ab sin C A 2 2 sin C A 2s1s a2 1s b21s c2
EXERCISES 98 167 m 325 m 7. Solve for B: 92 122 152 211221152 cos B 8. Use the law of cosines to find the missing side. 1250 yd 9. While preparing for the day’s orienteering meet, Rick finds that the distances between the first three markers he wants to pick up are 1250 yd, 1820 yd, and 720 yd. Find the 720 yd measure of each angle in the triangle formed so that Rick is sure to find all three markers. 1820 yd 10. The Great Pyramid of Giza, also known Khufu’s pyramid, is the sole remaining member of the Seven Wonders of the Ancient World. It was built as a tomb for the Egyptian pharaoh Khufu from the fourth dynasty. This square pyramid is made up of four isosceles triangles, each with a base of 230.0 m and a slant height of about 218.7 m. Approximate the total surface area of Khufu’s pyramid (excluding the base).
SECTION 7.3
Vectors and Vector Diagrams
KEY CONCEPTS • Quantities/concepts that can be described using a single number are called scalar quantities. Examples are time, perimeter, area, volume, energy, temperature, weight, and so on. • Quantities/concepts that require more than a single number to describe their attributes are called vector quantities. Examples are force, velocity, displacement, pressure, and so on.
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• Vectors can be represented using directed line segments to indicate magnitude and direction. The origin of the segment is called the initial point, with the arrowhead pointing to the terminal point. When used solely for comparative analysis, they are called geometric vectors. • Two vectors are equal if they have the same magnitude and direction. • Vectors can be represented graphically in the xy-plane by naming the initial and terminal points of the vector or by giving the magnitude and angle of the related position vector [initial point at (0, 0)]. • For a vector with initial point (x1, y1) and terminal point (x2, y2), the related position vector can be written in the component form Ha, bI, where a x2 x1 and b y2 y1. • For a vector written in the component form Ha, bI, a is called the horizontal component and b is called the vertical component of the vector. • For vector v H a, bI, the magnitude of v is v 2a2 b2. • Vector components can also be written in trigonometric form. See page 739. • For u Ha, bI, v Hc, d I, and any scalar k, we have the following operations defined: u v Ha c, b d I
u v Ha c, b d I
ku Hka, kbI for k R
If k 7 0, the new vector has the same direction as u; k 6 0, the opposite direction. • Vectors can be written in algebraic form using i, j notation, where i is an x-axis unit vector and j is a y-axis unit vector. The vector Ha, bI is written as a linear combination of i and j: Ha, bI ai bj. v • For any nonzero vector v, vector u is a unit vector in the same direction as v. v • In aviation and shipping, the heading of a ship or plane is understood to be the amount of rotation from due north in the clockwise direction.
EXERCISES 11. Graph the vector v H9, 5I, then compute its magnitude and direction angle. 12. Write the vector u H8, 3I in i, j form and compute its magnitude and direction angle. 13. Approximate the horizontal and vertical components of the vector u, where u 18 and 52°. 14. Compute 2u v, then find the magnitude and direction of the resultant: u H3, 5I and v H2, 8I. 15. Find a unit vector that points in the same direction as u 7i 12j. 16. Without computing, if u H9, 2I and v H2, 8I, will the resultant sum lie in Quadrant I or II? Why? 17. It’s once again time for the Great River Race, a 12 -mi swim across the Panache River. If Karl fails to take the river’s 1-mph current into account and he swims the race at 3 mph, how far from the finish marker does he end up when he makes it to the other side? 18 18. Two Coast Guard vessels are towing a large yacht into port. The first is pulling with a force of 928 N and the second with a force of 850 N. Determine the angle for the second Coast Guard vessel that will keep the ship moving safely in a straight line.
SECTION 7.4
Vector Applications and the Dot Product
KEY CONCEPTS • Vector forces are in equilibrium when the sum of their components is the zero vector. • When the components of vector u are nonquadrantal, with one of its components lying along vector v, we call this component the “component of u along v” or compvu. • For vectors u and v, compvu ucos , where is the angle between u and v. • Work done is computed as the product of the constant force F applied, times the distance D the force is applied: W F # D. • If force is not applied parallel to the direction of movement, only the component of the force in the direction of movement is used in the computation of work. If u is a force vector not parallel to the direction of vector v, the equation becomes W compvu # v.
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• For vectors u Ha, bI and v Hc, d I, the dot product u # v is defined as the scalar ac bd. • The dot product u # v is equivalent to compuv # v and to uvcos . u#v u # v • The angle between two vectors can be computed using cos . u v uv u#v b v. v2 • Given vectors u and v and projvu, u can be resolved into the orthogonal components u1 and u2 where u u1 u2, u1 projvu, and u2 u u1. • The horizontal distance x a projectile travels in t seconds is x 1 vcos 2t. • The vertical height y of a projectile after t seconds is y 1 vsin 2t 16t2, where v is the magnitude of the initial velocity, and is the angle of projection. • Given vectors u and v, the projection of u along v is the vector projvu defined by projvu a
EXERCISES 19. For the force vectors F1 and F2 given, find the resultant and an additional force vector so that equilibrium takes place: F1 H20, 70I; F2 H45, 53I. 20. Find compvu for u 12i 16j and v 19i 13j. 21. Find the component d that ensures vectors u and v are orthogonal: u H2, 9I and v H18, d I. 22. Compute p # q and find the angle between them: p H5, 2I; q H4, 7I. 23. Given force vector F H50, 15I and v H85, 6I, find the work required to move an object along the entire length of v. Assume force is in pounds and distance in feet. 24. A 650-lb crate is sitting on a ramp that is inclined at 40°. Find the force needed to hold the crate stationary. 25. An arctic explorer is hauling supplies from the supply hut to her tent, a distance of lb 120 ft, in a sled she is dragging behind her. If the straps used make an angle of 25° 650 with the snow-covered ground and she pulls with a constant force of 75 lb, find the amount of work done. 650 lb 40 26. A projectile is launched from a sling-shot with an initial velocity of v0 280 ft/sec at an angle of 50°. Find (a) the position of the object after 1.5 sec and (b) the G time required to reach a height of 150 ft.
SECTION 7.5
Complex Numbers in Trigonometric Form
KEY CONCEPTS • A complex number a bi 1a, b2 can be written in trigonometric form by Imaginary yi (a, b) axis noting (from its graph) that a r cos and b r sin : a bi (r cos , r sin ) b r1cos i sin 2. • The angle is called the argument of z and r is called the modulus of z. r • The argument of a complex number z is not unique, since any rotation of x 2k (k an integer) will yield a coterminal angle. a Real • To convert from trigonometric to rectangular form, evaluate cos and sin axis and multiply by the modulus. • To multiply complex numbers in trig form, multiply the moduli and add the arguments. To divide complex numbers in trig form, divide the moduli and subtract the arguments. • Complex numbers have numerous real-world applications, particularly in a study of AC electrical circuits. • The impedance of an AC circuit is given as Z R j1XL XC 2, where R is a pure resistance, XC is the capacitive reactance, XL is the inductive reactance, and j 11. XL XC • Z is a complex number with magnitude Z 2R2 1XL XC 2 2 and phase angle tan1a b R ( represents the angle between the voltage and current). V • In an AC circuit, voltage V IZ ; current I . Z
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EXERCISES 27. Write in trigonometric
28. Write in rectangular form: form: z 1 13i z 3 12 c cisa b d 4 z1 30. For z1 8 cisa b and z2 2 cisa b, compute z1z2 and . z2 4 6
29. Graph in the complex plane: z 51cos 30° i sin 30°2
31. Find the current I in a circuit where V 413 4j and Z 1 13j . 32. In the VRLC series circuit shown, R 10 , XL 8 , and XC 5 . Find the magnitude of Z and the phase angle between current and voltage. Express the result in trigonometric form.
SECTION 7.6
XL
R A
10 Ω
B
8Ω
XC C
5Ω
D
De Moivre’s Theorem and the Theorem on nth Roots
KEY CONCEPTS • For complex number z r1cos i sin 2, zn rn 3cos1n2 i sin1n2 4 (De Moivre’s theorem). • De Moivre’s theorem can be used to check complex solutions of polynomial equations. 2k 2k n n b i sina b d , for • For complex number z r1cos i sin 2 , 2z 2r c cosa n n n n k 1, 2, 3,p, n 1 (nth roots theorem). • The nth roots of a complex number are equally spaced around a circle of radius r in the complex plane.
EXERCISES 33. Use De Moivre’s theorem to compute the value of 11 i 132 5. 34. Use De Moivre’s theorem to verify that z 1 i is a solution of z4 z3 2z2 2z 4 0. 35. Use the nth roots theorem to find the three cube roots of 125i. 36. Solve the equation using the nth roots theorem: x3 216 0. 37. Given that z 2 2i is a fourth root of 64, state the other three roots. 38. Solve using the quadratic formula and the nth roots theorem: z4 6z2 25 0. 39. Use De Moivre’s theorem to verify the three roots of 125i found in Exercise 35.
MIXED REVIEW Solve each triangle using either the law of sines or law of cosines (whichever is appropriate) then find the area of each. 1. B 27
19 in. 112
A
C
2.
C 31 cm 37 A
B 52 cm
3. Find the horizontal and vertical components of the vector u, where u 21 and 40°. 4. Compute 2u v, then find the magnitude and direction of the resultant: u H6, 3I, v H2, 8I. 5. Find the height of a flagpole that sits atop a hill, if it makes an angle 122 of 122° with the 35 hillside, and the angle of elevation between the side of the hill to the top of the flagpole is 35° at a distance of 120 ft.
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6. A 900-lb crate is sitting on a ramp that is inclined at 28°. Find the force needed to hold the object stationary. Exercise 6 900
13. a. Graph the complex number using the rectangular form, then convert to trigonometric form: z 4 4i. b. Graph the complex number using the trigonometric form, then convert to rectangular form: z 61cos 120° i sin 120°2.
lb
900 lb 28 G
7. A jet plane is flying at 750 mph on a heading of 30°. There is a strong, 50-mph wind blowing from due south (heading 0°). What is the true course and speed of the plane (relative to the ground)? 8. Graph the vector v H8, 5I, then compute its magnitude and direction.
12. Given the vectors p H5, 2I and q H4, 7I, use the dot product p # q to find the angle between them.
C 36 m
9. Solve using the law of sines. If two solutions exist, find both.
24 m
31
A
Exercise 10 10. A local Outdoors Club C sponsors a treasure hunt 0.9 mi activity for its members, 0.7 mi and has placed surprise B packages at the corners of the triangular park 1.2 mi A shown. Find the measure of each angle to help club members find their way to the treasure.
11. As part of a lab demonstrating centrifugal Teacher Students and centripetal forces, a 20 ft 35 physics teacher is whirling 10 ft a tethered weight above Radius her head while a group of students looks on from a distance of 20 ft as shown. If the tether has a radius of 10 ft and a student departs at the 35° angle shown, will the student be struck by the weight? What is the smallest angle of exit the student could take (to the nearest whole) without being struck by the whirling weight?
14 a. Verify that z 4 5i and its conjugate are solutions to z2 8z 41 0. b. Solve using the quadratic formula: z2 6iz 7 0 15. Two tractors are dragging a large, fallen tree into the brush pile 10 that’s being prepared for a large Fourth of July bonfire. The first is pulling with a force of 418 N and the second with a force of 320 N. Determine the angle for the second tractor that will keep the tree headed straight for the brush pile. 16. Given z1 81cos 45° i sin 45°2 and z2 41cos 15° i sin 15°2 compute: a. the product z1z2
b. the quotient
z1 z2
17. Given the vectors u 12i 16j and v 19i 13j, find compvu and projvu. 18. Find the result using De Moivre’s theorem: 12 13 2i2 6. 19. Use the nth roots theorem to find the four fourth roots of 2 2i 13. 20. The impedance of an AC circuit is Z R j1XL XC 2. The voltage across the circuit is VRLC IZ. Given R 12 , XL 15.2 , and XC 9.4 , write Z in trigonometric form and find the voltage in the circuit if the current is I 6.5 A.
PRACTICE TEST 1. Within the Kilimanjaro Game Reserve, a fire is spotted by park rangers stationed in two towers 39 68 known to be 10 mi apart. 10 mi Using the line between them as a baseline, tower A A B reports the fire is at an angle of 39°, while tower B reports an angle of 68°. How far is the fire from the closer tower?
Exercise 2 2. At the circus, Mac and Joe are watching a high-wire act from first-row seats on opposite Acrobat sides of the center ring. Find the height of the performing acrobat at the instant Mac measures an angle of elevation 72 of 68° while Joe measures an Joe 68 angle of 72°. Assume Mac and Mac Joe are sitting 100 ft apart.
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3. Three rods are C B attached via two A joints and shaped 6 in. 15 in. into a triangle. How ?? in. many triangles can be formed if the angle at the joint B must measure 20°? If two triangles can be formed, solve both. 4. Jackie and Sam are rounding up cattle in the brush country, and are Range communicating via walkie3 mi 32 talkie. Jackie is at the water 6 mi Dead hole and Sam is at Dead Water hole Oak Oak, which are 6 mi apart. Sam finds some strays and heads them home at the 32° indicated. (a) If the maximum range of Jackie’s unit is 3 mi, will she be able to communicate with Sam as he heads home? (b) If the maximum range were 4 mi, how far from Dead Oak is Sam when he is first contacted by Jackie? 5. As part of an All-Star Exercise 5 competition, a group of soccer players (forwards) stand where shown in the diagram and attempt to hit a moving target with a twohanded overhead pass. If a Overhead 35 yd player has a maximum pass effective range of approximately (a) 25 yd, can 53 the target be hit? (b) about 28 yd, how many “effective” throws can be made? (c) 35 yd and the target is moving at 5 yd/sec, how many seconds is the target within range? 6. The summit of Triangle 3.5 mi Peak can only be reached from one side, using a trail 24 straight up the side that is 5 mi approximately 3.5 mi long. If the mountain is 5 mi wide at its base and the trail makes a 24° angle with the horizontal, (a) what is the approximate length of the opposing side? (b) How tall is the peak (in feet)?
Practice Test
789
helicopter relative to the ground? Draw a diagram as part of your solution. 9. Two mules walking along a river bank are pulling a heavy barge up river. The first is pulling with a force of 250 N and the second with a force of 210 N. Determine 30 the angle for the second mule that will ensure the barge stays midriver and does not collide with the shore. Exercise 10 10. Along a production line, 22 various tools are attached to the ceiling with a multijointed arm 42 so that workers can draw one down, position it for use, then 58 Joint move it up out of the way for the next tool (see the diagram). If the first segment is 100 cm, the second is 75 cm, and the third is 50 cm, determine the approximate coordinates of the last joint. 11. Three ranch hands have roped a run-away steer and are attempting to hold him steady. F1 F2 The first and second ranch hands 150 are pulling with the magnitude 110 and at the angles indicated in the 67 42 diagram. If the steer is held fast ?F by the efforts of all three, find 3 the magnitude of the tension and angle of the rope from the third cowhand. 12. For u H9, 5I and v H2, 6I, (a) compute the angle between u and v; (b) find the projection of u along v (find projvu; and (c) resolve u into vectors u1 and u2, where u1 7 v and u2v.
13. A lacrosse player flips a long pass to a teammate way down field who is near the opponent’s goal. If the initial velocity of the pass is 110 ft/sec and the ball is released at an angle of 50° with level ground, how high is the ball after 2 sec? How long until the ball again reaches this same height? 14. Compute the quotient
z1 , given z2
7. The Bermuda Triangle is 1025 mi B generally thought to be the M triangle formed by Miami, 977 mi Florida, San Juan, Puerto 1020 mi Rico, and Bermuda itself. P If the distances between these locations are the 1025 mi, 1020 mi, and 977 mi indicated, find the measure of each angle and the area of the Bermuda Triangle.
16. Use De Moivre’s theorem to compute the value of 1 13 i2 4.
8. A helicopter is flying at 90 mph on a heading of 40°. A 20-mph wind is blowing from the NE on a heading of 190°. What is the true course and speed of the
18. Use the nth roots theorem to solve x3 125i 0.
z1 6 15 cisa b and z2 3 15 cisa b. 8 12 15. Compute the product z z1z2 in trigonometric form, then verify z1z2 z and 1 2 : z1 6 6i; z2 4 4 13i
17. Use De Moivre’s theorem to verify 2 213i is a solution to z5 3z3 64z2 192 0.
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19. Solve using u-substitution, the quadratic formula, and the nth roots theorem: z4 6z2 58 0. 20. Due to its huge biodiversity, preserving Southeast Asia’s Coral Triangle has become a top priority for conservationists. Stretching from the northern Philippines (P), south along the coast of Borneo (B) to the Lesser Sunda Islands (L), then eastward to the Solomon Islands (S), this area is home to over 75% of all coral species known. Use Heron’s formula to help find the total area of this natural wonderland, given the dimensions shown.
P
1275 mi Halmahera
B 2010 mi
2390 mi 23⬚
L
1690 mi
1590 mi
S
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Investigating Projectile Motion Figure 7.81 There are two important aspects of projectile motion that were not discussed earlier, the range of the projectile and the optimum angle that will maximize this range. Both can be explored using the equations for the horizontal and Figure 7.82 vertical components of the projectile’s position: horizontal S 1 vcos 2t and vertical S 1 vsin 2 t 16t2. In Example 10 of Section 7.4, an arrow was shot from a bow with initial velocity v 150 ft/sec at an angle of 50°. Enter Figure 7.83 the equations above on the Y= screen as Y1 and Y2, using these values (Figure 7.81). Then set up the TABLE using TblStart 0, ¢Tbl 0.5 and the AUTO mode. The resulting table is shown in Figure 7.82, where Y1 represents the horizontal distance the arrow has traveled, and Y2 represents the height of the arrow. To find the range of the arrow, scroll downward until the height (Y2) shows a value that is less than or equal to zero (the arrow has hit the ground). As Figure 7.83 shows, this happens somewhere between t 7 and t 7.5 sec. We could now change the TBLSET settings to TblStart 0 and ¢Tbl 0.1 to get a better approximation of the time the arrow is in flight (it’s just less than 7.2 sec) and the horizontal range of the arrow (about 692.4 ft), but our main interest is how to compute these values exactly. We begin with the equation for the arrow’s vertical position y 1 vsin 2t 16t2. Since the object returns to Earth when y 0, we substitute 0 for y and factor out
t: 0 t1 vsin 16t2. Solving for t gives t 0 or vsin t . Since the component of velocity in the hori16 zontal direction is vcos , the basic distance relationship D r # t gives the horizontal range of R vcos # v2sin cos vsin or . Checking the values given for 16 16 the arrow (v 150 ft/sec and 50°) verifies the range is R 692.4. But what about the maximum possible range for the arrow? Using v 150 for R results in an equation 1502sin cos , which we can 16 enter as Y3 and investigate for various . After carefully entering R12 as Y3 and resetting TBLSET to TblStart 30 and ¢Tbl 5, the TABLE in Figure 7.84 shows a maximum range of about 703 ft at 45°. Resetting TBLSET to TblStart 40 and ¢Tbl 1 verifies this fact. For each of the following exercises, find (a) the height of the projectile after 1.75 sec, (b) the maximum height of the projectile, (c) the range of the projectile, and (d) the number of seconds the proFigure 7.84 jectile is airborne. in theta only: R12
Exercise 1: A javelin is thrown with an initial velocity of 85 ft/sec at an angle of 42°. Exercise 2: A cannon ball is shot with an initial velocity of 1120 ft/sec at an angle of 30°. Exercise 3: A baseball is hit with an initial velocity of 120 ft/sec at an angle of 50°. Will it clear the center field fence, 10 ft high and 375 ft away? Exercise 4: A field goal (American football) is kicked with an initial velocity of 65 ft/sec at an angle of 35°. Will it clear the crossbar, 10 ft high and 40 yd away?
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STRENGTHENING CORE SKILLS Vectors and Static Equilibrium In Sections 7.3 and 7.4, the concepts of vector forces, resultant forces, and equilibrium were studied extensively. A nice extension of these concepts involves what is called static equilibrium. Assuming that only coplanar forces are acting on an object, the object is said to be in static equilibrium if the sum of all vector forces acting on it is 0. This implies that the object is stationary, since the forces all counterbalance each other. The methods involved are simple and direct, with a wonderful connection to the systems of equations you’ve likely seen previously. Consider the following example. Illustration 1 As part of their training, prospective FBI agents must move hand-over-hand across a rope strung between two towers. An agent-in-training weighing 180 lb is two-thirds of the way u v across, causing the rope to deflect from the horizontal at the angles 9 14 shown. What is the w tension in each part of 180 lb the rope at this point? Solution We have three concurrent forces acting on the point where the agent grasps the rope. Begin by drawing a vector diagram u and computing the components of 9 each force, using the i, j notation. 180 Note that w 180j. u ucos19°2i usin19°2j 0.9877ui 0.1564uj v vcos114°2i vsin114°2j 0.9703vi 0.2419vj
y
v 14
x
w
For equilibrium, all vector forces must sum to the zero vector: u v w 0, which results in the following
equation: 0.9877| u|i 0.1564| u|j 0.9703 |v| i 0.2419 |v | j 180j 0i 0j. Factoring out i and j from the left-hand side yields 10.9877|u | 0.9703| v| 2i 10.1564 | u| 0.2419 |v | 1802j i 0j. Since any two vectors are equal only when corresponding components are equal, we obtain a system in the two variables u and v: e
0.9877u 0.9703v 2 0 . 0.1564u 0.2419v 180 0
Solving the system using matrix equations and a calculator (or any desired method), gives u 447 lb and v 455 lb. At first it may seem surprising that the vector forces (tension) in each part of the rope are so much greater than the 180-lb the agent weighs. But with a 180-lb object hanging from the middle of the rope, the tension required to keep the rope taut (with small angles of deflection) must be very great. This should become more obvious to you after you work Exercise 2. Exercise 1: A 500-lb crate is suspended by two 25 20 ropes attached 500 lb to the ceiling rafters. Find the tension in each rope. Exercise 2: Two people 45 45 team up to carry a 150-lb 150 lb weight by passing a rope through an eyelet in the object. Find the tension in each rope. Exercise 3: Referring to Illustration 1, if the rope has a tension limit of 600-lb (before it snaps), can a 200-lb agent make it across?
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 7 1. Solve using a standard triangle. a 20, b ____, c ____ 30°, ____, ____ A 2. Solve using trigonometric ratios. a ____, b ____, c 82 ____, 63°, ____
B 20 m 30
C B
82 ft A
3. A torus is a donut-shaped solid figure. Its surface area is given by the formula
63 C
A 2 1R2 r2 2 , where R is the outer radius of the donut, and r is the inner radius. Solve the formula for R in terms of r and A. 4. For a complex number a bi, (a) verify the sum of a complex number and its conjugate is a real number, and (b) verify the product of a complex number and its conjugate is a real number. 5. State the value of all six trig functions given 3 tan with cos 7 0. 4
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6. Sketch the graph of y 4 cosa x b using 6 3 transformations of y cos x. 7. Solve using the quadratic formula: 5x2 8x 2 0. 8. Solve by completing the square: 3x2 72x 427 0. 9. Given cos 53° 0.6 and cos 72° 0.3, approximate the value of cos 19° and cos 125° without using a calculator. 10. Find all real values of x that satisfy the equation 13 2 sin12x2 2 13. State the answer in degrees. 11. a. Given that 2008 ft 1 acre 43,560 ft2, find the cost of a lot with the 25.9 dimensions shown (to the 1475 ft nearest dollar) if land in this area is going for $4500 per acre. North b. After an accident at (5, 12) 12 sea, a search and 10 rescue team decides 8 to focus their efforts 6 on the area shown due (12, 5) 4 to prevailing winds 2 and currents. Find the 0 2 4 6 8 10 12 14 East (0, 0) distances between each vertex (use Pythagorean triples and a special triangle) and the number of square miles in the search area.
15.
C 31 cm
B
37
52 cm
A
16. A commercial fishery stocks a lake with 250 fish. Based on previous experience, the population of fish is expected to grow according to the model 12,000 P1t2 , where t is the time in months. 1 25e0.2t From on this model, (a) how many months are required for the population to grow to 7500 fish? (b) If the fishery expects to harvest three-fourths of the fish population in 2 yr, approximately how many fish will be taken? 17. A 900-lb crate is sitting on a ramp which is inclined at 28°. Find the force needed to hold the object stationary.
lb
900
900 lb 28
18. A jet plane is flying at G 750 mph on a heading of 30°. There is a strong, 50-mph wind blowing from due south (heading 0°). What is the true course and speed of the plane (relative to the ground)? 19. Use the Guidelines for Graphing to sketch the graph of function f given, then use it to solve f1x2 6 0. f 1x2 x3 4x2 x 6
20. Use the Guidelines for Graphing to sketch the graph of function g given, then use it to name the intervals where g1x2T and g1x2c. x2 4 x2 1
12. State the domain of each function: a. f1x2 12x 3 b. g1x2 logb 1x 32 x3 c. h1x2 2 x 5 d. v1x2 2x2 x 6
21. Find 11 13i2 8 using De Moivre’s theorem.
13. Write the following formulas from memory: a. slope formula b. midpoint formula c. quadratic formula d. distance formula e. interest formula (compounded continuously)
24. Mount Tortolas lies on the Argentine-Chilean border. When viewed from a distance of 5 mi, the angle of elevation to the top of the peak is 38°. How tall is Mount Tortolas? State the answer in feet.
Solve each triangle using the law of sines or the law of cosines, whichever is appropriate.
g1x2
22. Solve ln1x 22 ln1x 32 ln14x2 .
23. If I saved $200 each month in an annuity program that paid 8% annual interest compounded monthly, how long would it take to save $10,000?
25. The graph given is of the form y A sin1Bx C2. Find the values of A, B, and C. y 2
14. A
1
27
19 in.
2
C
112
B
1 2
2
3 2
2
x
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8 CHAPTER CONNECTIONS
Systems of Equations and Inequalities CHAPTER OUTLINE 8.1 Linear Systems in Two Variables with Applications 794 8.2 Linear Systems in Three Variables with Applications 806 8.3 Nonlinear Systems of Equations and Inequalities 819 8.4 Systems of Inequalities and Linear Programming 826
The disposal of hazardous waste is a growing concern for today’s communities, and with many budgets stretched to the breaking point, there is a cost/benefit analysis involved. One major hauler uses trucks with a carrying capacity of 800 ft3, and can transport at most 10 tons. A full container of liquid waste weighs 800 lb and has a volume of 20 ft3, while a full container of solid waste weighs 600 lb and has a volume of 30 ft3. If the hauler makes $300 for disposing of liquid waste and $400 for disposing of solid waste, what is the maximum revenue that can be generated per truck? Chapter 8 outlines a systematic process for answering this question. This application appears as Exercise 58 in Section 8.4. Check out these other real-world connections:
Appropriate Measurements in Dietetics (Section 8.1, Exercise 64) Allocating Winnings to Different Investments (Section 8.2, Exercise 54) Minimizing Shipping Costs (Section 8.4, Exercise 61) Market Pricing for Organic Produce (Section 8.3, Exercise 56) 793
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8.1 Linear Systems in Two Variables with Applications Learning Objectives
In earlier chapters, we used linear equations in two variables to model a number of realworld situations. Graphing these equations gave us a visual image of how the variables were related, and helped us better understand this relationship. In many applications, two different measures of the independent variable must be considered simultaneously, leading to a system of two linear equations in two unknowns. Here, a graphical presentation once again supports a better understanding, as we explore systems and their many applications.
In Section 8.1 you will learn how to:
A. Verify ordered pair solutions
B. Solve linear systems by graphing
C. Solve linear systems by substitution
A. Solutions to a System of Equations
D. Solve linear systems by elimination
E. Recognize inconsistent systems and dependent systems
F. Use a system of equations to model and solve applications
Children
700
9a 5c 3100
e
500
(150, 350)
300
0
100
300
500
700
Adults
EXAMPLE 1
a c 500 9a 5c 3100
amount of revenue
Verifying Solutions to a System Verify that (150, 350) is a solution to e
Solution
number of tickets
We note that both equations are linear and will have different slope values, so their graphs must intersect at some point. Since every point on a line satisfies the equation of that line, this point of intersection must satisfy both equations simultaneously and is the solution to the system. The figure that accompanies Example 1 shows the point of intersecion for this system is (150, 350).
a c 500
100
A system of equations is a set of two or more equations for which a common solution is sought. Systems are widely used to model and solve applications when the information given enables the relationship between variables to be stated in different ways. For example, consider an amusement park that brought in $3100 in revenue by charging $9.00 for adults and $5.00 for children, while selling 500 tickets. Using a for adult and c for children, we could write one equation modeling the number of tickets sold: a c 500, and a second modeling the amount of revenue brought in: 9a 5c 3100. To show that we’re considering both equations simultaneously, a large “left brace” is used and the result is called a system of two equations in two variables:
a c 500 . 9a 5c 3100
Substitute the 150 for a and 350 for c in each equation. a c 500 first equation 11502 13502 500 500 500 ✓
A. You’ve just learned how to verify ordered pair solutions
9a 5c 3100 second equation 911502 513502 3100 3100 3100 ✓
Since (150, 350) satisfies both equations, it is the solution to the system and we find the park sold 150 adult tickets and 350 tickets for children. Now try Exercises 7 through 18
B. Solving Systems Graphically To solve a system of equations means we apply various methods in an attempt to find ordered pair solutions. As Example 1 suggests, one method for finding solutions is to graph the system. Any method for graphing the lines can be employed, but to keep important concepts fresh, the slope-intercept method is used here.
794
8-2
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EXAMPLE 2
Solution
Solving a System Graphically
4x 3y 9 . 2x y 5 First write each equation in slope-intercept form (solve for y): 4 y x3 4x 3y 9 3 • S• 2x y 5 y 2x 5 Solve the system by graphing: e
4 For the first line, ¢y ¢x 3 with y-intercept 10, 32. 2 The second equation yields ¢y ¢x 1 with 10, 52 as the y-intercept. Both are then graphed on the grid as shown. The point of intersection appears to be (3, 1), and checking this point in both equations gives
B. You’ve just learned how to solve linear systems by graphing
4x 3y 9 4132 3112 9 99✓
y 5
y 2x 5
(3, 1) 5
5
x
y 43 x 3
(0, 3)
2x y 5 substitute 3 2132 112 5 for x and 1 for y 5 5 ✓
5
(0, 5)
This verifies that (3, 1) is the solution to the system. Now try Exercises 19 through 22
C. Solving Systems by Substitution While a graphical approach best illustrates why the solution must be an ordered pair, it does have one obvious drawback — noninteger solutions are difficult to spot. The 4x y 4 ordered pair 1 25, 12 , but this would be difficult to 5 2 is the solution to e yx2 “pinpoint” as a precise location on a hand-drawn graph. To overcome this limitation, we next consider a method known as substitution. The method involves converting a system of two equations in two variables into a single equation in one variable by using 4x y 4 an appropriate substitution. For e , the second equation says “y is two more yx2 than x.” We reason that all points on this line are related this way, including the point where this line intersects the other. For this reason, we can substitute x 2 for y in the first equation, obtaining a single equation in x. EXAMPLE 3
Solution
Solving a System Using Substitution 4x y 4 Solve using substitution: e . yx2 Since y x 2, we can replace y with x 2 in the first equation. first equation 4x y 4 4x 1x 22 4 substitute x 2 for y 5x 2 4 simplify 2 x result 5 The x-coordinate is 52. To find the y-coordinate, substitute 25 for x into either of the original equations. Substituting in the second equation gives yx2 second equation 2 2 2 substitute for x 5 5 12 10 10 2 12 2 , 1 5 5 5 5 5 2 12 The solution to the system is 1 25, 12 5 2. Verify by substituting 5 for x and 5 for y into both equations.
Now try Exercises 23 through 32
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If neither equation allows an immediate substitution, we first solve for one of the variables, either x or y, and then substitute. The method is summarized here, and can actually be used with either like variables or like variable expressions. See Exercises 57 to 60. Solving Systems Using Substitution
C. You’ve just learned how to solve linear systems by substitution
1. Solve one of the equations for x in terms of y or y in terms of x. 2. Substitute for the appropriate variable in the other equation and solve for the variable that remains. 3. Substitute the value from step 2 into either of the original equations and solve for the other unknown. 4. Write the answer as an ordered pair and check the solution in both original equations.
D. Solving Systems Using Elimination 2x 5y 13 , where solving for any one of the variables 2x 3y 7 will result in fractional values. The substitution method can still be used, but often the elimination method is more efficient. The method takes its name from what happens when you add certain equations in a system (by adding the like terms from each). If the coefficients of either x or y are additive inverses — they sum to zero and are eliminated. For the system shown, adding the equations produces 2y 6, giving y 3, then x 1 using back-substitution (verify). When neither variable term meets this condition, we can multiply one or both equations by a nonzero constant to “match up” the coefficients, so an elimination will take place. In doing so, we create an equivalent system of equations, meaning one 7x 4y 16 that has the same solution as the original system. For e , multiplying 3x 2y 6 7x 4y 16 the second equation by 2 produces e , giving x 4 after “adding 6x 4y 12 the equations.” Note the three systems produced are equivalent, and have the solution (4, 3) ( y 3 was found using back-substitution). Now consider the system e
1. e
7x 4y 16 3x 2y 6
2. e
7x 4y 16 6x 4y 12
3. e
7x 4y 16 x 4
In summary, Operations that Produce an Equivalent System 1. Changing the order of the equations. 2. Replacing an equation by a nonzero constant multiple of that equation. 3. Replacing an equation with the sum of two equations from the system. Before beginning a solution using elimination, check to make sure the equations are written in the standard form Ax By C, so that like terms will appear above/below each other. Throughout this chapter, we will use R1 to represent the equation in row 1 of the system, R2 to represent the equation in row 2, and so on. These designations are used to help describe and document the steps being used to solve a system, as in Example 4 where 2R1 R2 indicates the first equation has been multiplied by two, with the result added to the second equation.
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EXAMPLE 4
Solution
797
Solving a System by Elimination 2x 3y 7 Solve using elimination: e 6y 5x 4 The second equation is not in standard form, so we re-write the system as 2x 3y 7 e . If we “add the equations” now, we would get 7x 3y 11, with 5x 6y 4 neither variable eliminated. However, if we multiply both sides of the first equation by 2, the y-coefficients will be additive inverses. The sum then results in an equation with x as the only unknown. 2R1 4x 6y 14 R2 5x 6y 4 add sum 9x 0y 18 9x 18 x 2 solve for x Substituting 2 for x back into either of the original equations yields y 1. The ordered pair solution is (2, 1). Verify using the original equations.
{
WORTHY OF NOTE As the elimination method involves adding two equations, it is sometimes referred to as the addition method for solving systems.
Now try Exercises 33 through 38
The elimination method is summarized here. If either equation has fraction or decimal coefficients, we can “clear” them using an appropriate constant multiplier. Solving Systems Using Elimination 1. Write each equation in standard form: Ax By C. 2. Multiply one or both equations by a constant that will create coefficients of x (or y) that are additive inverses. 3. Combine the two equations using vertical addition and solve for the variable that remains. 4. Substitute the value from step 3 into either of the original equations and solve for the other unknown. 5. Write the answer as an ordered pair and check the solution in both original equations.
EXAMPLE 5
Solving a System Using Elimination 5 x 34y 14 . Solve using elimination: e 81 2 2x 3y 1
Solution
Multiplying the first equation by 8(8R1) and the second equation by 6(6R2) will clear the fractions from each. 5x 6y 2 8R1 81 1 58 2x 81 1 34 2y 81 1 14 2 e6 1 Se 6 2 3x 4y 6 6R2 1 1 2 2x 1 1 3 2y 6112
The x-terms can now be eliminated if we use 3R1 15R22 . 3R1 15x 18y 6 5R2 15x 20y 30 0x 2y 24 sum y 12
{
D. You’ve just learned how to solve linear systems by elimination
add
solve for y
Substituting y 12 in either of the original equations yields x 14, and the solution is 114, 122. Verify by substituting in both equations. Now try Exercises 39 through 44
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CAUTION
Be sure to multiply all terms (on both sides) of the equation when using a constant multiplier. Also, note that for Example 5, we could have eliminated the y-terms using 2R1 with 3R2.
E. Inconsistent and Dependent Systems A system having at least one solution is called a consistent system. As seen in Example 2, if the lines have different slopes, they intersect at a single point and the system has exactly one solution. Here, the lines are independent of each other and the system is called an independent system. If the lines have equal slopes and the same y-intercept, they are identical or coincident lines. Since one is right atop the other, they intersect at all points, and the system has an infinite number of solutions. Here, one line depends on the other and the system is called a dependent system. Using substitution or elimination on a dependent system results in the elimination of all variable terms and leaves a statement that is always true, such as 0 0 or some other simple identity.
EXAMPLE 6
Solving a Dependent System Solve using elimination: e
Solution
WORTHY OF NOTE When writing the solution to a dependent system using a parameter, the solution can be written in many different ways. For instance, if we let p 4b for the first coordinate of the solution to Example 6, we have 314b2 3 3b 3 as 4 the second coordinate, and the solution becomes (4b, 3b 3) for any constant b.
3x 4y 12 . 6x 24 8y
y 5
Writing the system in standard form gives 3x 4y 12 . By applying 2R1, we can e 6x 8y 24 eliminate the variable x: 2R1 6x 8y 24 e R2 6x 8y 24 add sum 0x 0y 0 variables are eliminated 0 0 true statement
3x 4y 12
(0, 3) (4, 0)
5
6x 24 8y
5
x
5
Although we didn’t expect it, both variables were eliminated and the final statement is true 10 02. This indicates the system is dependent, which the graph verifies (the lines are coincident). Writing both equations in slope-intercept form shows they represent the same line. e
3x 4y 12 6x 8y 24
e
4y 3x 12 8y 6x 24
3 y x3 4 μ 3 y x3 4
The solutions of a dependent system are often written in set notation as the set of ordered pairs (x, y), where y is a specified function of x. For Example 6 the solution would be 51x, y2 0 y 34x 36. Using an ordered pair with an arbitrary 3p 3b. variable, called a parameter, is also common: ap, 4 Now try Exercises 45 through 56
E. You’ve just learned how to recognize inconsistent and dependent systems
Finally, if the lines have equal slopes and different y-intercepts, they are parallel and the system will have no solution. A system with no solutions is called an inconsistent system. An “inconsistent system” produces an “inconsistent answer,” such as 12 0 or some other false statement when substitution or elimination is applied. In other words, all variable terms are once again eliminated, but the remaining statement is false. A summary of the three possibilities is shown here for arbitrary slope m and y-intercept (0, b).
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Dependent m1 m2, b1 b2
Independent m1 m2 y
Inconsistent m1 m2, b1 b2
y
y
x
One point in common
x
All points in common
x
No points in common
F. Systems and Modeling In previous chapters, we solved numerous real-world applications by writing all given relationships in terms of a single variable. Many situations are easier to model using a system of equations with each relationship modeled independently using two variables. We begin here with a mixture application. Although they appear in many different forms (coin problems, metal alloys, investments, merchandising, and so on), mixture problems all have a similar theme. Generally one equation is related to quantity (how much of each item is being combined) and one equation is related to value (what is the value of each item being combined).
EXAMPLE 7
Solving a Mixture Application A jeweler is commissioned to create a piece of artwork that will weigh 14 oz and consist of 75% gold. She has on hand two alloys that are 60% and 80% gold, respectively. How much of each should she use?
Solution
WORTHY OF NOTE As an estimation tool, note that if equal amounts of the 60% and 80% alloys were used (7 oz each), the result would be a 70% alloy (halfway in between). Since a 75% alloy is needed, more of the 80% gold will be used.
Let x represent ounces of the 60% alloy and y represent ounces of the 80% alloy. The first equation must be x y 14, since the piece of art must weigh exactly 14 oz (this is the quantity equation). The x ounces are 60% gold, the y ounces are 80% gold, and the 14 oz will be 75% gold. This gives the value equation: x y 14 0.6x 0.8y 0.751142. The system is e (after clearing decimals). 6x 8y 105 Solving for y in the first equation gives y 14 x. Substituting 14 x for y in the second equation gives 6x 8y 105 6x 8114 x2 105 2x 112 105 7 x 2
second equation substitute 14 x for y simplify solve for x
Substituting 72 for x in the first equation gives y 21 2 . She should use 3.5 oz of the 60% alloy and 10.5 oz of the 80% alloy. Now try Exercises 63 through 70
Systems of equations also play a significant role in cost-based pricing in the business world. The costs involved in running a business can broadly be understood as either a fixed cost k or a variable cost v. Fixed costs might include the monthly rent paid for facilities, which remains the same regardless of how many items are produced and sold. Variable costs would include the cost of materials needed to produce the item, which depends on the number of items made. The total cost can then be modeled by
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C1x2 vx k for x number of items. Once a selling price p has been determined, the revenue equation is simply R1x2 px (price times number of items sold). We can now set up and solve a system of equations that will determine how many items must be sold to break even, performing what is called a break-even analysis.
EXAMPLE 8
Solving an Application of Systems: Break-Even Analysis In home businesses that produce items to sell on Ebay®, fixed costs are easily determined by rent and utilities, and variable costs by the price of materials needed to produce the item. Karen’s home business makes large, decorative candles for all occasions. The cost of materials is $3.50 per candle, and her rent and utilities average $900 per month. If her candles sell for $9.50, how many candles must be sold each month to break even?
Solution
WORTHY OF NOTE This break-even concept can also be applied in studies of supply and demand, as well as in the decision to buy a new car or appliance that will enable you to break even over time due to energy and efficiency savings.
EXAMPLE 9
Let x represent the number of candles sold. Her total cost is C1x2 3.5x 900 (variable cost plus fixed cost), and projected revenue is R1x2 9.5x. This gives the C 1x2 3.5x 900 system e . To break even, Cost Revenue which gives R1x2 9.5x 9.5x 3.5x 900 6x 900 x 150 The analysis shows that Karen must sell 150 candles each month to break even. Now try Exercises 71 through 74
Our final example involves an application of uniform motion (distance rate # time ), and explores concepts of great importance to the navigation of ships and airplanes. As a simple illustration, if you’ve ever walked at your normal rate r on the “moving walkways” at an airport, you likely noticed an increase in your total speed. This is because the resulting speed combines your walking rate r with the speed w of the walkway: total speed r w. If you walk in the opposite direction of the walkway, your total speed is much slower, as now total speed r w. This same phenomenon is observed when an airplane is flying with or against the wind, or a ship is sailing with or against the current.
Solving an Application of Systems — Uniform Motion An airplane flying due south from St. Louis, Missouri, to Baton Rouge, Louisiana, uses a strong, steady tailwind to complete the trip in only 2.5 hr. On the return trip, the same wind slows the flight and it takes 3 hr to get back. If the flight distance between these cities is 912 km, what is the cruising speed of the airplane (speed with no wind)? How fast is the wind blowing?
Solution
F. You’ve just learned how to use a system of equations to model and solve applications
Let r represent the rate of the plane and w the rate of the wind. Since D RT , the flight to Baton Rouge can be modeled by 912 1r w2 12.52 , and the return flight 912 2.5r 2.5w R1 by 912 1r w2132 . This produces the system e . Using and 912 3r 3w 2.5 364.8 r w R2 gives the equivalent system e , which is easily solved using 304 r w 3 elimination with R1 R2. 668.8 2r 334.4 r
R1 R2 divide by 2
The cruising speed of the plane (with no wind) is 334.4 kph. Using r w 304 shows the wind is blowing at 30.4 kph. Now try Exercises 75 through 78
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TECHNOLOGY HIGHLIGHT
Solving Systems Graphically When used with care, graphing calculators offer an accurate way to solve linear systems and to check 4x y 4 solution(s) obtained by hand. We’ll illustrate using the system from Example 3: e , where we yx2 2 12 found the solution was 1 5, 5 2 .
Figure 8.1
1. Solve for y in both equations: y 4x 4 e y x2 3. Graph using
ZOOM
6
2. Enter the equations as
10
Y1 4x 4 Y2 x 2 4. Press 2nd TRACE (CALC) 5
Y1 4x 4 Y2 x 2
10
to have the calculator compute the point of intersection. ENTER
ENTER
10
ENTER
10
The coordinates of the intersection appear as decimal fractions at the bottom of the screen (Figure 8.1). In step 4, The first ENTER selects Y1, the second ENTER selects Y2 and the third ENTER bypasses the GUESS option (this option is most often used if the graphs intersect at more than one point). The calculator automatically registers the x-coordinate as its most recent entry, and from the home screen, converting it to a standard fraction (using MATH 1: Frac ENTER ) shows x 25 . You can also get an approximate solution by tracing along either line towards the point of intersection using the TRACE key and the left or right arrows. Solve each system graphically, using a graphing calculator.
Exercise 1:
e
3x y 7 y 5x 1
Exercise 2:
e
2x 3y 3 6 8x 3y
8.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Systems that have no solution are called systems. 2. Systems having at least one solution are called systems. 3. If the lines in a system intersect at a single point, the system is said to be and . 4. If the lines in a system are coincident, the system is referred to as and .
5. The given systems are equivalent. How do we obtain the second system from the first? 2 1 5 x y 4x 3y 10 3 2 3 e • 2x 4y 10 0.2x 0.4y 1 2x 5y 8 , which solution method would 3x 4y 5 be more efficient, substitution or elimination? Discuss/Explain why.
6. For e
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DEVELOPING YOUR SKILLS
Show the lines in each system would intersect in a single point by writing the equations in slope-intercept form.
7. e
7x 4y 24 4x 3y 15
8. e
0.3x 0.4y 2 0.5x 0.2y 4
An ordered pair is a solution to an equation if it makes the equation true. Given the graph shown here, determine which equation(s) have the indicated point as a solution. If the point satisfies more than one equation, write the system for which it is a solution.
y 5
3x 2y 6
yx2 A
F 5
5 x
C D
5
9. A
10. B
11. C
12. D
13. E
14. F
Substitute the x- and y-values indicated by the ordered pair to determine if it solves the system.
15. e
3x y 11 13, 22 5x y 13;
16. e
3x 7y 4 16, 22 7x 8y 21;
17. e
8x 24y 17 7 5 a , b 12x 30y 2; 8 12
18. e
4x 15y 7 1 1 a , b 8x 21y 11; 2 3
Solve each system by graphing. If the coordinates do not appear to be integers, estimate the solution to the nearest tenth (indicate that your solution is an estimate).
5x 2y 2 3x y 10
19. e
3x 2y 12 x y9
21. e
3x y 2 5x 2y 4 22. e x 3y 15 5x 3y 12
20. e
Solve each system using substitution. Write solutions as an ordered pair.
23. e
x 5y 9 x 2y 6
24. e
4x 5y 7 2x 5 y
25. e
y 23x 7 3x 2y 19
26. e
2x y 6 y 34x 1
27. e
3x 4y 24 5x y 17
29. e
0.7x 2y 5 0.8x y 7.4 30. e x 1.4y 11.4 0.6x 1.5y 9.3
31. e
5x 6y 2 x 2y 6
28. e
32. e
3x 2y 19 x 4y 3
2x 5y 5 8x y 6
B
E
x 3y 3
Identify the equation and variable that makes the substitution method easiest to use. Then solve the system.
Solve using elimination. In some cases, the system must first be written in standard form.
33. e
2x 4y 10 3x 4y 5
34. e
x 5y 8 x 2y 6
35. e
4x 3y 1 3y 5x 19
36. e
5y 3x 5 3x 2y 19
37. e
2x 3y 17 4x 5y 12
38. e
2y 5x 2 4x 17 6y
39. e
0.5x 0.4y 0.2 0.2x 0.3y 0.8 40. e 0.3y 1.3 0.2x 0.3x 0.4y 1.3
41. e
0.32m 0.12n 1.44 0.24m 0.08n 1.04
42. e
0.06g 0.35h 0.67 0.12g 0.25h 0.44
43. e
16u 14v 4 1 2 2 u 3 v 11
x 13y 2 1 2x 5y 3 3
44. e 43
Solve using any method and identify the system as consistent, inconsistent, or dependent.
45. e
4x 34y 14 9x 58y 13
2 xy2 46. e 3 2y 56x 9
47. e
0.2y 0.3x 4 1.2x 0.4y 5 48. e 0.6x 0.4y 1 0.5y 1.5x 2
49. e
6x 22 y 3x 12y 11
51. e
10x 35y 5 2x 3y 4 52. e y 0.25x x 2.5y
53. e
7a b 25 2a 5b 14
50. e
54. e
15 5y 9x 3x 53y 5
2m 3n 1 5m 6n 4
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55. e
4a 2 3b 6b 2a 7
56. e
3p 2q 4 9p 4q 3
The substitution method can be used for like variables or for like expressions. Solve the following systems, using the expression common to both equations (do not solve for x or y alone).
2x 4y 6 x 12 4y
59. e
5x 11y 21 11y 5 8x
58. e
8x 3y 24 8x 5y 36
60. e
6x 5y 16 5y 6x 4
WORKING WITH FORMULAS
61. Uniform motion with current: e
1R C2T1 D1 1R C2T2 D2
The formula shown can be used to solve uniform motion problems involving a current, where D represents distance traveled, R is the rate of the object with no current, C is the speed of the current, and T is the time. Chan-Li rows 9 mi up river (against the current) in 3 hr. It only took him 1 hr to row 5 mi downstream (with the current). How fast was the current? How fast can he row in still water?
57. e
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62. Fahrenheit and Celsius temperatures: F y 95x 32 e 5 y 9 1x 322 C Many people are familiar with temperature measurement in degrees Celsius and degrees Fahrenheit, but few realize that the equations are linear and there is one temperature at which the two scales agree. Solve the system using the method of your choice and find this temperature.
APPLICATIONS
Solve each application by modeling the situation with a linear system. Be sure to clearly indicate what each variable represents. Mixture
63. Theater productions: At a recent production of A Comedy of Errors, the Community Theater brought in a total of $30,495 in revenue. If adult tickets were $9 and children’s tickets were $6.50, how many tickets of each type were sold if 3800 tickets in all were sold? 64. Milk-fat requirements: A dietician needs to mix 10 gal of milk that is 212 % milk fat for the day’s rounds. He has some milk that is 4% milk fat and some that is 112 % milk fat. How much of each should be used? 65. Filling the family cars: Cherokee just filled both of the family vehicles at a service station. The total cost for 20 gal of regular unleaded and 17 gal of premium unleaded was $144.89. The premium gas was $0.10 more per gallon than the regular gas. Find the price per gallon for each type of gasoline. 66. Household cleaners: As a cleaning agent, a solution that is 24% vinegar is often used. How much pure (100%) vinegar and 5% vinegar must be mixed to obtain 50 oz of a 24% solution?
67. Alumni contributions: A wealthy alumnus donated $10,000 to his alma mater. The college used the funds to make a loan to a science major at 7% interest and a loan to a nursing student at 6% interest. That year the college earned $635 in interest. How much was loaned to each student? 68. Investing in bonds: A total of $12,000 is invested in two municipal bonds, one paying 10.5% and the other 12% simple interest. Last year the annual interest earned on the two investments was $1335. How much was invested at each rate? 69. Saving money: Bryan has been doing odd jobs around the house, trying to earn enough money to buy a new Dirt-Surfer©. He saves all quarters and dimes in his piggy bank, while he places all nickels and pennies in a drawer to spend. So far, he has 225 coins in the piggy bank, worth a total of $45.00. How many of the coins are quarters? How many are dimes? 70. Coin investments: In 1990, Molly attended a coin auction and purchased some rare “Flowing Hair” fifty-cent pieces, and a number of very rare twocent pieces from the Civil War Era. If she bought 47 coins with a face value of $10.06, how many of each denomination did she buy?
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71. Lawn service: Dave and his sons run a lawn service, which includes mowing, edging, trimming, and aerating a lawn. His fixed cost includes insurance, his salary, and monthly payments on equipment, and amounts to $4000/mo. The variable costs include gas, oil, hourly wages for his employees, and miscellaneous expenses, which run about $75 per lawn. The average charge for fullservice lawn care is $115 per visit. Do a breakeven analysis to (a) determine how many lawns Dave must service each month to break even and (b) the revenue required to break even. 72. Production of mini-microwave ovens: Due to high market demand, a manufacturer decides to introduce a new line of mini-microwave ovens for personal and office use. By using existing factory space and retraining some employees, fixed costs are estimated at $8400/mo. The components to assemble and test each microwave are expected to run $45 per unit. If market research shows consumers are willing to pay at least $69 for this product, find (a) how many units must be made and sold each month to break even and (b) the revenue required to break even.
74. Digital music: Market research has indicated that by 2010, sales of MP3 portables will mushroom into a $70 billion dollar market. With a market this large, competition is often fierce — with suppliers fighting to earn and hold market shares. For x million MP3 players sold, supply is modeled by y 10.5x 25, where y is the current market price (in dollars). The related demand equation might be y 5.20x 140. (a) How many million MP3 players will be supplied at a market price of $88? What will the demand be at this price? Is supply less than demand? (b) How many million MP3 players will be supplied at a market price of $114? What will the demand be at this price? Is demand less than supply? (c) To the nearest cent, at what price does the market reach equilibrium? How many units are being supplied/demanded?
In a market economy, the availability of goods is closely related to the market price. Suppliers are willing to produce more of the item at a higher price (the supply), with consumers willing to buy more of the item at a lower price (the demand). This is called the law of supply and demand. When supply and demand are equal, both the buyer and seller are satisfied with the current price and we have market equilibrium.
73. Farm commodities: One area where the law of supply and demand is clearly at work is farm commodities. Both growers and consumers watch this relationship closely, and use data collected by government agencies to track the relationship and make adjustments, as when a farmer decides to convert a large portion of her farmland from corn to soybeans to improve profits. Suppose that for x billion bushels of soybeans, supply is modeled by y 1.5x 3, where y is the current market price (in dollars per bushel). The related demand equation might be y 2.20x 12. (a) How many billion bushels will be supplied at a market price of $5.40? What will the demand be at this price? Is supply less than demand? (b) How many billion bushels will be supplied at a market price of $7.05? What will the demand be at this price? Is demand less than supply? (c) To the nearest cent, at what price does the market reach equilibrium? How many bushels are being supplied/demanded?
Uniform Motion
75. Canoeing on a stream: On a recent camping trip, it took Molly and Sharon 2 hr to row 4 mi upstream from the drop in point to the campsite. After a leisurely weekend of camping, fishing, and relaxation, they rowed back downstream to the drop in point in just 30 min. Use this information to find (a) the speed of the current and (b) the speed Sharon and Molly would be rowing in still water. 76. Taking a luxury cruise: A luxury ship is taking a Caribbean cruise from Caracas, Venezuela, to just off the coast of Belize City on the Yucatan Peninsula, a distance of 1435 mi. En route they encounter the Caribbean Current, which flows to the northwest, parallel to the coastline. From Caracas to the Belize coast, the trip took 70 hr. After a few days of fun in the sun, the ship leaves for Caracas, with the return trip taking 82 hr. Use
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this information to find (a) the speed of the Caribbean Current and (b) the cruising speed of the ship. 77. Airport walkways: As part of an algebra field trip, Jason takes his class to the airport to use their moving walkways for a demonstration. The class measures the longest walkway, which turns out to be 256 ft long. Using a stop watch, Jason shows it takes him just 32 sec to complete the walk going in the same direction as the walkway. Walking in a direction opposite the walkway, it takes him 320 sec — 10 times as long! The next day in class, Jason hands out a two-question quiz: (1) What was the speed of the walkway in feet per second? (2) What is my (Jason’s) normal walking speed? Create the answer key for this quiz. 78. Racing pigeons: The American Racing Pigeon Union often sponsors opportunities for owners to fly their birds in friendly competitions. During a recent competition, Steve’s birds were liberated in Topeka, Kansas, and headed almost due north to their loft in Sioux Falls, South Dakota, a distance of 308 mi. During the flight, they encountered a steady wind from the north and the trip took 4.4 hr. The next month, Steve took his birds to a competition in Grand Forks, North Dakota, with the birds heading almost due south to home, also a distance of 308 mi. This time the birds were aided by the same wind from the north, and the trip took only 3.5 hr. Use this information to (a) find the racing speed of Steve’s birds and (b) find the speed of the wind.
Descriptive Translation
79. Important dates in U.S. history: If you sum the year that the Declaration of Independence was signed and the year that the Civil War ended, you get 3641. There are 89 yr that separate the two events. What year was the Declaration signed? What year did the Civil War end? 80. Architectual wonders: When it was first constructed in 1889, the Eiffel Tower in Paris, France, was the tallest structure in the world. In 1975, the CN Tower in Toronto, Canada, became the world’s tallest structure. The CN Tower is 153 ft less than twice the height of the Eiffel Tower, and the sum of their heights is 2799 ft. How tall is each tower? 81. Pacific islands land area: In the South Pacific, the island nations of Tahiti and Tonga have a combined land area of 692 mi2. Tahiti’s land area is 112 mi2 more than Tonga’s. What is the land area of each island group? 82. Card games: On a cold winter night, in the lobby of a beautiful hotel in Sante Fe, New Mexico, Marc and Klay just barely beat John and Steve in a close game of Trumps. If the sum of the team scores was 990 points, and there was a 12-point margin of victory, what was the final score?
EXTENDING THE CONCEPT
83. Answer using observations only — no calculations. Is the given system consistent/independent, consistent/dependent, or inconsistent? y 5x 2 Explain/Discuss your answer. e y 5.01x 1.9 84. Federal income tax reform has been a hot political topic for many years. Suppose tax plan A calls for a flat tax of 20% tax on all income (no deductions or loopholes). Tax plan B requires taxpayers to pay
805
$5000 plus 10% of all income. For what income level do both plans require the same tax? 85. Suppose a certain amount of money was invested at 6% per year, and another amount at 8.5% per year, with a total return of $1250. If the amounts invested at each rate were switched, the yearly income would have been $1375. To the nearest whole dollar, how much was invested at each rate?
MAINTAINING YOUR SKILLS
86. (2.6) Given the parent function f 1x2 x, sketch the graph of F1x2 x 3 2. 87. (5.1) Find two positive and two negative angles that are coterminal with 112°.
88. (4.4) Solve for x (rounded to the nearest thousandth): 33 77.5e0.0052x 8.37 89. (6.2) Verify that identity.
sin x csc x cos2x is an csc x
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8.2 Linear Systems in Three Variables with Applications Learning Objectives
The transition to systems of three equations in three variables requires a fair amount of “visual gymnastics” along with good organizational skills. Although the techniques used are identical and similar results are obtained, the third equation and variable give us more to track, and we must work more carefully toward the solution.
In Section 8.2 you will learn how to:
A. Visualize a solution in three dimensions
B. Check ordered triple
A. Visualizing Solutions in Three Dimensions
solutions
C. Solve linear systems in three variables
D. Recognize inconsistent and dependent systems
E. Use a system of three equations in three variables to solve applications
WORTHY OF NOTE We can visualize the location of a point in space by considering a large rectangular box 2 ft long 3 ft wide 1 ft tall, placed snugly in the corner of a room. The floor is the xy-plane, one wall is the xz-plane, and the other wall is the yz-plane. The z-axis is formed where the two walls meet and the corner of the room is the origin (0, 0, 0). To find the corner of the box located at (2, 3, 1), first locate the point (2, 3) in the xy-plane (the floor), then move up 1 ft.
Figure 8.2
Figure 8.3
z
z
(0, 0, 6)
(0, 0, 6)
(2, 3, 1) y
2 units along x
nit ly
lle ara
x
sp
x
z el all par
nit
(6, 0, 0)
(6, 0, 0)
y
(0, 6, 0)
1u
(0, 6, 0)
3u
EXAMPLE 1
The solution to an equation in one variable is the single number that satisfies the equation. For x 1 3, the solution is x 2 and its graph is a single point on the number line, a one-dimensional graph. The solution to an equation in two variables, such as x y 3, is an ordered pair (x, y) that satisfies the equation. When we graph this solution set, the result is a line on the xy-coordinate grid, a two-dimensional graph. The solutions to an equation in three variables, such as x y z 6, are the ordered triples (x, y, z) that satisfy the equation. When we graph this solution set, the result is a plane in space, a graph in three dimensions. Recall a plane is a flat surface having infinite length and width, but no depth. We can graph this plane using the intercept method and the result is shown in Figure 8.2. For graphs in three dimensions, the xy-plane is parallel to the ground (the y-axis points to the right) and z is the vertical axis. To find an additional point on this plane, we use any three numbers whose sum is 6, such as (2, 3, 1). Move 2 units along the x-axis, 3 units parallel to the y-axis, and 1 unit parallel to the z-axis, as shown in Figure 8.3.
Finding Solutions to an Equation in Three Variables Use a guess-and-check method to find four additional points on the plane determined by x y z 6.
Solution
A. You’ve just learned how to visualize a solution in three dimensions
We can begin by letting x 0, then use any combination of y and z that sum to 6. Two examples are (0, 2, 4) and (0, 5, 1). We could also select any two values for x and y, then determine a value for z that results in a sum of 6. Two examples are 12, 9, 12 and 18, 3, 12. Now try Exercises 7 through 10
B. Solutions to a System of Three Equations in Three Variables When solving a system of three equations in three variables, remember each equation represents a plane in space. These planes can intersect in various ways, creating 806
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different possibilities for a solution set (see Figures 8.4 to 8.7). The system could have a unique solution (a, b, c), if the planes intersect at a single point (Figure 8.4) (the point satisfies all three equations simultaneously). If the planes intersect in a line (Figure 8.5), the system is linearly dependent and there are an infinite number of solutions. Unlike the two-dimensional case, the equation of a line in three dimensions is somewhat complex, and the coordinates of all points on this line are usually represented by a specialized ordered triple, which we use to state the solution set. If the planes intersect at all points, the system has coincident dependence (see Figure 8.6). This indicates the equations of the system differ by only a constant multiple—they are all “disguised forms” of the same equation. The solution set is any ordered triple (a, b, c) satisfying this equation. Finally, the system may have no solutions. This can happen a number of different ways, most notably if the planes intersect as shown in Figure 8.7 (other possibilities are discussed in the exercises). In the case of “no solutions,” an ordered triple may satisfy none of the equations, only one of the equations, only two of the equations, but not all three equations. Figure 8.4
Unique solution
Figure 8.5
Figure 8.6
Figure 8.7
Linear dependence
Coincident dependence
No solutions
EXAMPLE 2
Determining If an Ordered Triple Is a Solution
Solution
Substitute 1 for x, 2 for y, and 3 for z in the first system. x 4y z 10 112 4122 132 10 10 10 true a. • 2x 5y 8z 4 S • 2112 5122 8132 4 S • 16 4 false x 2y 3z 4 112 2122 3132 4 4 4 true
B. You’ve just learned how to check ordered triple solutions
Determine if the ordered triple 11, 2, 32 is a solution to the systems shown. x 4y z 10 3x 2y z 4 a. • 2x 5y 8z 4 b. • 2x 3y 2z 2 x 2y 3z 4 x y 2z 9
No, the ordered triple 11, 2, 32 is not a solution to the first system. Now use the same substitutions in the second system. 3x 2y z 4 3112 2122 132 4 4 4 true b. • 2x 3y 2z 2 S • 2112 3122 2132 2 S • 2 2 true x y 2z 9 112 122 2132 9 9 9 true The ordered triple 11, 2, 32 is a solution to the second system only.
Now try Exercises 11 and 12
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C. Solving Systems of Three Equations in Three Variables Using Elimination From Section 8.1, we know that two systems of equations are equivalent if they have the same solution set. The systems 2x y 2z 7 2x y 2z 7 • x y z 1 and • y 4z 5 2y z 3 z1
are equivalent, as both have the unique solution 13, 1, 12. In addition, it is evident that the second system can be solved more easily, since R2 and R3 have fewer variables than the first system. In the simpler system, mentally substituting 1 for z into R2 immediately gives y 1, and these values can be back-substituted into the first equation to find that x 3. This observation guides us to a general approach for solving larger systems—we would like to eliminate variables in the second and third equations, until we obtain an equivalent system that can easily be solved by back-substitution. To begin, let’s review the three operations that “transform” a given system, and produce an equivalent system. Operations That Produce an Equivalent System 1. Changing the order of the equations. 2. Replacing an equation by a nonzero constant multiple of that equation. 3. Replacing an equation with the sum of two equations from the system. Building on the ideas from Section 8.1, we develop the following approach for solving a system of three equations in three variables. Solving a System of Three Equations in Three Variables 1. Write each equation in standard form: Ax By Cz D. 2. If the “x” term in any equation has a coefficient of 1, interchange equations (if necessary) so this equation becomes R1. 3. Use the x-term in R1 to eliminate the x-terms from R2 and R3. The original R1, with the new R2 and R3, form an equivalent system that contains a smaller “subsystem” of two equations in two variables. 4. Solve the subsystem and keep the result as the new R3. The result is an equivalent system that can be solved using back-substitution. 2x y 2z 7 We’ll begin by solving the system • x y z 1 using the elimination 2y z 3 method and the procedure outlined. In Example 3, the notation 2R1 R2 S R2 indicates the equation in row 1 has been multiplied by 2 and added to the equation in row 2, with the result placed in the system as the new row 2.
EXAMPLE 3
Solving a System of Three Equations in Three Variables 2x y 2z 7 Solve using elimination: • x y z 1. 2y z 3
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Solution
1. The system is in standard form. 2. If the x-term in any equation has a coefficient of 1, interchange equations so this equation becomes R1. 2x y 2z 7 • x y z 1 2y z 3
R2 4 R1 S
x y z 1 • 2x y 2z 7 2y z 3
3. Use R1 to eliminate the x-term in R2 and R3. Since R3 has no x-term, the only elimination needed is the x-term from R2. Using 2R1 R2 will eliminate this term: 2R1 2x 2y 2z 2 2x y 2z 7 R2 0x 1y 4z 5 y 4z 5
sum simplify
The new R2 is y 4z 5. The original R1 and R3, along with the new R2 form an equivalent system that contains a smaller subsystem x y z 1 x y z 1 2R1 R2 S R2 S • y 4z 5 • 2x y 2z 7 R3 S R3 2y z 3 2y z 3
new equivalent system
4. Solve the subsystem for either y or z, and keep the result as a new R3. We choose to eliminate y using 2R2 R3: 2R2 2y 8z 10 R3 2y z 3 0y 7z 7 z 1
sum simplify
The new R3 is z 1. x y z 1 x y z 1 2R2 R3 S R3 S • y 4z 5 • y 4z 5 2y z 3 z1
new equivalent system
The new R3, along with the original R1 and R2 from step 3, form an equivalent system that can be solved using back-substitution. Substituting 1 for z in R2 yields y 1. Substituting 1 for z and 1 for y in R1 yields x 3. The solution is 13, 1, 12. Now try Exercises 13 through 18
While not absolutely needed for the elimination process, there are two reasons for wanting the coefficient of x to be “1” in R1. First, it makes the elimination method more efficient since we can more easily see what to use as a multiplier. Second, it lays the foundation for developing other methods of solving larger systems. If no equation has an x-coefficient of 1, we simply use the y- or z-variable instead (see Example 7). Since solutions to larger systems generally are worked out in stages, we will sometimes track the transformations used by writing them between the original system and the equivalent system, rather than to the left as we did in Section 8.1. Here is an additional example illustrating the elimination process, but in abbreviated form. Verify the calculations indicated using a separate sheet.
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EXAMPLE 4
Solution
Solving a System of Three Equations in Three Variables 5y 2x z 8 Solve using elimination: • x 3z 2y 13 . z 3y x 5 2x 5y z 8 1. Write the equations in standard form: • x 2y 3z 13 x 3y z 5 2x 5y z 8 x 3y z 5 R3 4 R1 • x 2y 3z 13 • x 2y 3z 13 2. S x 3y z 5 2x 5y z 8
equivalent system
3. Using R1 R2 will eliminate the x-term from R2, yielding 5y 2z 18. Using 2R1 R3 eliminates the x-term from R3, yielding 11y z 18. x 3y z 5 R1 R2 S R2 S • x 2y 3z 13 2R1 R3 S R3 2x 5y z 8
•
x 3y z 5 equivalent 5y 2z 18 system 11y z 18
4. Using 2R3 R2 will eliminate z from the subsystem, leaving 27y 54. x 3y z 5 x 3y z 5 2R3 R2 S R3 equivalent S • 5y 2z 18 • 5y 2z 18 system 11y z 18 27y 54 C. You’ve learned just how to solve linear systems in three variables
Solving for y in R3 shows y 2. Substituting 2 for y in R2 yields z 4, and substituting 2 for y and 4 for z in R1 shows x 3. The solution is (3, 2, 4). Now try Exercises 19 through 24
D. Inconsistent and Dependent Systems As mentioned, it is possible for larger systems to have no solutions or an infinite number of solutions. As with our work in Section 8.1, an inconsistent system (no solutions) will produce inconsistent results, ending with a statement such as 0 3 or some other contradiction.
EXAMPLE 5
Solution
Attempting to Solve an Inconsistent System 2x y 3z 3 Solve using elimination: • 3x 2y 4z 2 . 4x 2y 6z 7 1. This system has no equation where the coefficient of x is 1. 2. We can still use R1 to begin the solution process, but this time we’ll use the variable y since it does have coefficient 1. Using 2R1 R2 eliminates the y-term from R2, leaving 7x 2z 4. But using 2R1 R3 to eliminate the y-term from R3 results in a contradiction: 2R1 4x 2y 6z 6 2R1 4x 2y 6z 6 R2 3x 2y 4z 2 4x 2y 6z 7 R3 7x 2z 4 0x 0y 0z 1 0 1 contradiction We conclude the system is inconsistent. The answer is the empty set , and we need work no further. Now try Exercises 25 and 26
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Unlike our work with systems having only two variables, systems in three variables can have two forms of dependence — linear dependence or coincident dependence. To help understand linear dependence, consider a system of two equations in 2x 3y z 5 . Each of these equations represents a plane, three variables: e x 3y 2z 1 and unless the planes are parallel, their intersection will be a line (see Figure 8.5). As in Section 8.1, we can state solutions to a dependent system using set notation with two of the variables written in terms of the third, or as an ordered triple using a parameter. The relationships named can then be used to generate specific solutions to the system. Systems with two equations and two variables or three equations and three variables are called square systems, meaning there are exactly as many equations as there are variables. A system of linear equations cannot have a unique solution unless there are at least as many equations as there are variables in the system. EXAMPLE 6
Solving a Dependent System Solve using elimination: e
Solution
2x 3y z 5 . x 3y 2z 1
Using R1 R2 eliminates the y-term from R2, yielding x z 4. This means (x, y, z) will satisfy both equations only when x z 4 (the x-coordinate must be 4 less than the z-coordinate). Since x is written in terms of z, we substitute z 4 for x in either equation to find how y is related to z. Using R2 we have: 1z 42 3y 2z 1, which yields y z 1 (verify). This means the y-coordinate of the solution must be 1 less than z. In set notation the solution is 5 1x, y, z,2 | x z 4, y z 1, z 6 . For z 2, 0, and 3, the solutions would be 16, 3, 22, 14, 1, 02, and 11, 2, 32 , respectively. Verify that these satisfy both equations. Using p as our parameter, the solution could be written 1p 4, p 1, p2 in parameterized form. Now try Exercises 27 through 30
The system in Example 6 was nonsquare, and we knew ahead of time the system would be dependent. The system in Example 7 is square, but only by applying the elimination process can we determine the nature of its solution(s). EXAMPLE 7
Solving a Dependent System 3x 2y z 1 Solve using elimination: • 2x y z 5 . 10x 2y 8
Solution
This system has no equation where the coefficient of x is 1. We will still use R1, but we’ll try to eliminate z in R2 (there is no z-term in R3). Using R1 R2 eliminates the z-term from R2, yielding 5x y 4. 3x 2y z 1 3x 2y z 1 R1 R2 S R2 • 5x y 4 • 2x y z 5 R3 S R3 S 10x 2y 8 10x 2y 8 We next solve the subsystem. Using 2R2 R3 eliminates the y-term in R3, but also all other terms: 2R2 10x 2y 8 10x 2y 8 R3 0x 0y 0 sum 0 0 result
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Since R3 is the same as 2R2, the system is linearly dependent and equivalent to 3x 2y z 1 e . We can solve for y in R2 to write y in terms of x: y 5x 4. 5x y 4 Substituting 5x 4 for y in R1 enables us to also write z in terms of x: R1 3x 2y z 1 3x 215x 42 z 1 substitute 5x 4 distribute 3x 10x 8 z 1 simplify 7x z 9 z 7x 9 solve for z
D. You’ve just learned how to recognize inconsistent and dependent systems
for y
The solution set is 51x, y, z2 | x , y 5x 4, z 7x 926. Three of the infinite number of solutions are 10, 4, 92 for x 0, 12, 6, 52 for x 2, and 11, 9, 162 for x 1. Verify these triples satisfy all three equations. Again using the parameter p, the solution could be written as 1p, 5p 4, 7p 92 in parameterized form. Now try Exercises 31 through 34
Solutions to linearly dependent systems can actually be written in terms of either x, y, or z, depending on which variable is eliminated in the first step and the variable we elect to solve for afterward. For coincident dependence the equations in a system differ by only a constant multiple. After applying the elimination process — all variables are eliminated from the other equations, leaving statements that are always true (such as 2 2 or some other). See Exercises 35 and 36. For additional practice solving various kinds of systems, see Exercises 37 to 51.
E. Applications Applications of larger systems are simply an extension of our work with systems of two equations in two variables. Once again, the applications come in a variety of forms and from many fields. In the world of business and finance, systems can be used to diversify investments or spread out liabilities, a financial strategy hinted at in Example 8.
EXAMPLE 8
Modeling the Finances of a Business A small business borrowed $225,000 from three different lenders to expand their product line. The interest rates were 5%, 6%, and 7%. Find how much was borrowed at each rate if the annual interest came to $13,000 and twice as much was borrowed at the 5% rate than was borrowed at the 7% rate.
Solution
Let x, y, and z represent the amount borrowed at 5%, 6%, and 7%, respectively. This means our first equation is x y z 225 (in thousands). The second equation is determined by the total interest paid, which was $13,000: 0.05x 0.06y 0.07z 13. The third is found by carefully reading the problem. “twice as much was borrowed at the 5% rate than was borrowed at the 7% rate”, or x 2z. x y z 225 These equations form the system: • 0.05x 0.06y 0.07z 13. The x-term of x 2z the first equation has a coefficient of 1. Written in standard form we have:
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x y z 225 R1 • 5x 6y 7z 1300 R2 (multiplied by 100) x 2z 0 R3 Using 5R1 R2 will eliminate the x term in R2, while R1 R3 will eliminate the x-term in R3. 5R1 5x 5y 5z 1125 R2 5x 6y 7z 1300 y 2z 175
R1 R3
x y z 225 x
2z 0 y 3z 225
The new R2 is y 2z 175, and the new R3 (after multiplying by 1) is x y z 225 y 3z 225, yielding the equivalent system • y 2z 175. y 3z 225 E. You’ve just learned how to use a system of three equations in three variables to solve applications
Solving the 2 2 subsystem using R2 R3 yields z 50. Back-substitution shows y 75 and x 100, yielding the solution (100, 75, 50). This means $50,000 was borrowed at the 7% rate, $75,000 was borrowed at 6%, and $100,000 at 5%. Now try Exercises 54 through 63
TECHNOLOGY HIGHLIGHT
More on Parameterized Solutions For linearly dependent systems, a graphing calculator can be used to both find and check possible solutions using the parameters Y1, Y2, and Y3. This is done by assigning the chosen parameter to Y1, then using Y2 and Y3 to form the other coordinates of the solution. We can then build the equations in the system using Y1, Y2, and Y3 in place of x, y, and z. The system from Example 7 is 3x 2y z 1 • 2x y z 5 , which we found had solutions of the form 1x, 5x 4, 7x 92. We first form the 10x 2y 8 solution using Y1 X, Y2 5Y1 4 (for y), and Y3 7Y1 9 (for z). Then we form the equations in the system using Y4 3Y1 2Y2 Y3, Y5 2Y1 Y2 Y3 , and Y6 10Y1 2Y2 (see Figure 8.8). After setting up the table (set on AUTO), solutions can be found by enabling only Y1, Y2, and Y3, which gives values of x, y, and z, respectively (see Figure 8.9—use the right arrow to view Y3). By enabling Y4, Y5, and Y6 you can verify that for any value of the parameter, the first equation is equal to 1, the second is equal to 5, and the third is equal to 8 (see Figure 8.10—use the right arrow to view Y6).
Figure 8.8
Figure 8.9
Figure 8.10
Exercise 1: Use the ideas from this Technology Highlight to (a) find four specific solutions to Example 6, (b) check multiple variations of the solution given, and (c) determine if 19, 6, 52, 12, 1, 22, and (6, 2, 4) are solutions.
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8.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The solution to an equation in three variables is an ordered . 2. The graph of the solutions to an equation in three variables is a(n) . 3. Systems that have the same solution set are called .
4. If a 3 3 system is linearly dependent, the ordered triple solutions can be written in terms of a single variable called a(n) . 5. Find a value of z that makes the ordered triple 12, 5, z2 a solution to 2x y z 4. Discuss/Explain how this is accomplished. 6. Explain the difference between linear dependence and coincident dependence, and describe how the equations are related.
DEVELOPING YOUR SKILLS
Find any four ordered triples that satisfy the equation given.
7. x 2y z 9 9. x y 2z 6
8. 3x y z 8 10. 2x y 3z 12
Determine if the given ordered triples are solutions to the system.
x y 2z 1 11. • 4x y 3z 3 ; 3x 2y z 4
(0, 3, 2) (3, 4, 1)
2x 3y z 9 12. • 5x 2y z 32; 14, 5, 22 x y 2z 13 15, 4, 112 Solve each system using elimination and back-substitution.
x y 2z 10 13. • x z1 z4
x y 2z 1 14. • 4x y 3 3x 6
x 3y 2z 16 x y 5z 1 15. • 2y 3z 1 16. • 4x y 1 8y 13z 7 3x 2y 8 2x y 4z 7 2x 3y 4z 18 17. • x 2y 5z 13 18. • x 2y z 4 y 4z 9 4x z 19 x y 2z 10 x y 2z 1 19. • x y z 7 20. • 4x y 3z 3 2x y z 5 3x 2y z 4
3x y 2z 3 2x 3y 2z 0 21. • x 2y 3z 10 22. • 3x 4y z 20 4x 8y 5z 5 x 2y z 16 3x y z 6 23. • 2x 2y z 5 2x y z 5
2x 3y 2z 7 24. • x y 2z 5 2x 2y 3z 7
Solve using the elimination method. If a system is inconsistent or dependent, so state. For systems with linear dependence, write solutions in set notation and as an ordered triple in terms of a parameter.
3x y 2z 3 2x y 3z 8 25. • x 2y 3z 1 26. • 3x 4y z 4 4x 8y 12z 7 4x 2y 6z 5 27. e
4x y 3z 8 4x y 2z 9 28. e x 2y 3z 2 3x y 5z 5
29. e
6x 3y 7z 2 3x 4y z 6
30. e
2x 4y 5z 2 3x 2y 3z 7
Solve using elimination. If the system is linearly dependent, state the general solution in terms of a parameter. Different forms of the solution are possible.
3x 4y 5z 5 31. •x 2y 3z 3 3x 2y z 1 5x 3y 2z 4 32. • 9x 5y 4z 12 3x y 2z 12
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x 2y 3z 1 33. • 3x 5y 8z 7 x y 2z 5
x 5y 4z 3 42. • 2x 9y 7z 2 3x 14y 11z 5
2x 3y 5z 3 34. • 5x 7y 12z 8 x y 2z 2
2x 3y 5z 4 43. • x y 2z 3 x 3y 4z 1
Solve using elimination. If the system has coincident dependence, state the solution in set notation.
0.2x 1.2y 2.4z 1 35. • 0.5x 3y 6z 2.5 x 6y 12z 5
44.
6x 3y 9z 21 36. • 4x 2y 6z 14 2x y 3z 7
x 2y z 1 37. • x z3 2x y z 3
u
1 1 1 x y z2 6 3 2 1 1 3 x y z9 4 3 2 1 1 x y z2 2 2
45.
u
y x 2 3 2x y 3 x 2y 6
z 2 2 z8 3z 6 2
Some applications of systems lead to systems similar to those that follow. Solve using elimination.
Solve using the elimination method. If a system is inconsistent or dependent, so state. For systems with linear dependence, write the answer in terms of a parameter. For coincident dependence, state the solution in set notation.
3x 5y z 11 38. • 2x y 3z 12 y 2z 4
2x 5y 4z 6 39. • x 2.5y 2z 3 3x 7.5y 6z 9
46. •
2A B 3C 21 B C1 A B 4
A 3B 2C 11 47. • 2B C 9 B 2C 8 A 2C 7 48. • 2A 3B 8 3A 6B 8C 33 A 2B 5 49. • B 3C 7 2A B C 1
x 2y 2z 6 40. • 2x 6y 3z 13 3x 4y z 11
C 2 50. • 5A 2C 5 4B 9C 16
4x 5y 6z 5 41. • 2x 3y 3z 0 x 2y 3z 5
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51. • 2A
C3 3C 10 3B 4C 11
WORKING WITH FORMULAS
52. Dimensions of a rectangular solid: 2w 2h P1 P2 16 cm (top) • 2l 2w P2 P1 14 cm P3 18 cm (small side) 2l 2h P3 h (large side)
w
l
Using the formula shown, the dimensions of a rectangular solid can be found if the perimeters of the three distinct faces are known. Find the dimensions of the solid shown.
53. Distance from a point (x, y, z) to the plane Ax By Cz D Ax By Cz D: ` ` 2A2 B2 C2 The perpendicular distance from a given point (x, y, z) to the plane defined by Ax By Cz D is given by the formula shown. Consider the plane given in Figure 8.2 1x y z 62. What is the distance from this plane to the point (3, 4, 5)?
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APPLICATIONS
Solve the following applications by setting up and solving a system of three equations in three variables. Note that some equations may have only two of the three variables used to create the system. Investment/Finance and Simple Interest Problems
54. Investing the winnings: After winning $280,000 in the lottery, Maurika decided to place the money in three different investments: a certificate of deposit paying 4%, a money market certificate paying 5%, and some Aa bonds paying 7%. After 1 yr she earned $15,400 in interest. Find how much was invested at each rate if $20,000 more was invested at 7% than at 5%. 55. Purchase at auction: At an auction, a wealthy collector paid $7,000,000 for three paintings: a Monet, a Picasso, and a van Gogh. The Monet cost $800,000 more than the Picasso. The price of the van Gogh was $200,000 more than twice the price of the Monet. What was the price of each painting? Descriptive Translation
56. Major wars: The United States has fought three major wars in modern times: World War II, the Korean War, and the Vietnam War. If you sum the years that each conflict ended, the result is 5871. The Vietnam War ended 20 years after the Korean War and 28 years after World War II. In what year did each end? 57. Animal gestation periods: The average gestation period (in days) of an elephant, rhinoceros, and camel sum to 1520 days. The gestation period of a rhino is 58 days longer than that of a camel. Twice the camel’s gestation period decreased by 162 gives the gestation period of an elephant. What is the gestation period of each? 58. Moments in U.S. history: If you sum the year the Declaration of Independence was signed, the year the 13th Amendment to the Constitution abolished slavery, and the year the Civil Rights Act was signed, the total would be 5605. Ninety-nine years separate the 13th Amendment and the Civil Rights Act. The Civil Rights Act was signed 188 years after the Declaration of Independence. What year was each signed? 59. Aviary wingspan: If you combine the wingspan of the California Condor, the Wandering Albatross (see photo), and the prehistoric Quetzalcoatlus, you get an astonishing 18.6 m (over 60 ft). If the wingspan of the Quetzalcoatlus is equal to five times that of the Wandering Albatross minus twice
that of the California Condor, and six times the wingspan of the Condor is equal to five times the wingspan of the Albatross, what is the wingspan of each? Mixtures
60. Chemical mixtures: A chemist mixes three different solutions with concentrations of 20%, 30%, and 45% glucose to obtain 10 L of a 38% glucose solution. If the amount of 30% solution used is 1 L more than twice the amount of 20% solution used, find the amount of each solution used. 61. Value of gold coins: As part of a promotion, a local bank invites its customers to view a large sack full of $5, $10, and $20 gold pieces, promising to give the sack to the first person able to state the number of coins for each denomination. Customers are told there are exactly 250 coins, with a total face value of $1875. If there are also seven times as many $5 gold pieces as $20 gold pieces, how many of each denomination are there? 62. Rewriting a rational function: It can be shown that the rational function V1x2 3x 11 can be written as a sum of the 3 x 3x2 x 3 Bx C A 2 terms , where the coefficients x3 x 1 A B 0 A, B, and C are solutions to • 3B C 3 . A 3C 11 Find the missing coefficients and verify your answer by adding the terms. 63. Rewriting a rational function: It can be shown that the rational function V1x2 x9 can be written as a sum of the 3 x 6x2 9x C B A terms , where the x x3 1x 32 2 coefficients A, B, and C are solutions to A B 0 • 6A 3B C 1 . Find the missing 9A 9 coefficients and verify your answer by adding the terms.
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EXTENDING THE CONCEPT
x 2y z 2 64. The system • x 2y kz 5 is inconsistent if 2x 4y 4z 10 , and dependent if k . k
a. 9 cm d. 12 cm
b. 10 cm e. 13 cm
65. One form of the equation of a circle is x2 y2 Dx Ey F 0. Use a system to find the equation of the circle through the points 12, 12, 14, 32, and 12, 52. 66. The lengths of each side of the squares A, B, C, D, E, F, G, H, and I (the smallest square) shown are whole numbers. Square B has sides of 15 cm and square G has sides of 7 cm. What are the dimensions of square D?
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c. 11 cm
B
A
G
H
F
C D
E
MAINTAINING YOUR SKILLS
67. (7.3) Given u H1, 7I and v H3, 12I, compute u 4v and 3u v. 68. (5.2) Given cot A 1.6831, use a calculator to find the acute angle A to the nearest tenth of a degree. 69. (4.4) Solve the logarithmic equation: log1x 22 logx log3 70. (2.5) Analyze the graph of g shown. Clearly state the domain and range, the zeroes of g, intervals
where g1x2 7 0, intervals where g1x2 6 0, local maximums or minimums, and intervals where the function is increasing or decreasing. Assume each tick mark is one unit and estimate endpoints to the nearest tenths.
y
MID-CHAPTER CHECK 1. Solve using the substitution method. State whether the system is consistent, inconsistent, or dependent. x 3y 2 e 2x y 3 2. Solve the system using elimination. State whether the system is consistent, inconsistent, or dependent. x 3y 4 e 2x y 13 3. Solve using a system of linear equations and any method you choose: How many ounces of a 40% acid, should be mixed with 10 oz of a 64% acid, to obtain a 48% acid solution? 4. Determine whether the ordered triple is a solution to the system. 5x 2y 4z 22 • 2x 3y z 1 3x 6y z 2
12, 0, 32
5. The system given is a dependent system. Without solving, state why. x 2y 3z 3 • 2x 4y 6z 6 x 2y 5z 1 6. Solve the system of equations: x 2y 3z 4 • 2y z 7 5y 2z 4 7. Solve using elimination: 2x 3y 4z 4 • x 2y z 0 3x 2y 2z 1
x
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8. Solve the following system and write the solution as an ordered triple in terms of the parameter p. e
2x y z 1 5x 2y 3z 2
9. If you add Mozart’s age when he wrote his first symphony, with the age of American chess player Paul Morphy when he began dominating the international chess scene, and the age of Blaise Pascal when he formulated his well-known Essai pour les coniques (Essay on Conics), the sum is 37. At the time of each event, Paul Morphy’s age was 3 yr less than twice Mozart’s, and Pascal was 3 yr older than Morphy. Set up a system of equations and find the age of each.
10. The William Tell Overture (Gioachino Rossini, 1829) is one of the most famous, and best-loved overtures known. It is played in four movements: a prelude, the storm (often used in animations with great clashes of thunder and a driving rain), the sunrise (actually, A call to the dairy cows . . .), and the finale (better known as the Lone Ranger theme song). The prelude takes 2.75 min. Depending on how fast the finale is played, the total playing time is about 11 min. The playing time for the prelude and finale is 1 min longer than the playing time of the storm and the sunrise. Also, the playtime of the storm plus twice the playtime of the sunrise is 1 min longer than twice the finale. Find the playtime for each movement.
REINFORCING BASIC CONCEPTS Window Size and Graphing Technology Since most substantial applications involve noninteger values, technology can play an important role in applying mathematical models. However, with its use comes a heavy responsibility to use it carefully. A very real effort must be made to determine the best approach and to secure a reasonable estimate. This is the only way to guard against (the inevitable) keystroke errors, or ensure a window size that properly displays the results.
Rationale On October 1, 1999, the newspaper USA TODAY ran an article titled, “Bad Math added up to Doomed Mars Craft.” The article told of how a $125,000,000.00 spacecraft was lost, apparently because the team of scientists that plotted the course for the craft used U.S. units of measurement, while the team of scientists guiding the craft were using metric units. NASA’s space chief was later quoted, “The problem here was not the error, it was the failure of . . . the checks and balances in our process to detect the error.” No matter how powerful the technology, always try to begin your problem-solving efforts with an estimate. Begin by exploring the context of the problem, asking questions about the range of possibilities: How fast can a human run? How much does a new car cost? What is a reasonable price for a ticket? What is the total available to invest? There is no calculating involved in these estimates, they simply rely on “horse sense” and human experience. In many applied problems, the input and output values must be positive — which means the solution will appear in the first quadrant, narrowing the possibilities considerably.
This information will be used to set the viewing window of your graphing calculator, in preparation for solving the problem using a system and graphing technology. Illustration 1 Erin just filled both her boat and Blazer with gas, at a total cost of $211.14. She purchased 35.7 gallons of premium for her boat and 15.3 gal of regular for her Blazer. Premium gasoline cost $0.10 per gallon more than regular. What was the cost per gallon of each grade of gasoline? Solution Asking how much you paid for gas the last time you filled up should serve as a fair estimate. Certainly (in 2008) a cost of $6.00 or more per gallon in the United States is too high, and a cost of $1.50 per gallon or less would be too low. Also, we can estimate a solution by assuming that both kinds of gasoline cost the same. This would mean 51 gal were purchased for about $211, and a quick division would place the estimate at near 211 51 $4.14 per gallon. A good viewing window would be restricted to the first quadrant (since cost 7 0) with maximum values of Xmax 6 and Ymax 6. Exercise 1: Solve Illustration 1 using graphing technology. Exercise 2: Re-solve Exercises 63 and 64 from Section 8.1 using graphing technology. Verify results are identical.
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8.3 Nonlinear Systems of Equations and Inequalities Learning Objectives In Section 8.3 you will learn how to:
A. Visualize possible
Equations where the variables have exponents other than 1 or that are transcendental (like logarithmic and exponential equations) are all nonlinear equations. A nonlinear system of equations has at least one nonlinear equation, and these occur in a great variety.
solutions
B. Solve nonlinear systems using substitution
C. Solve nonlinear systems using elimination
D. Solve nonlinear systems of inequalities
A. Possible Solutions for a Nonlinear System When solving nonlinear systems, it is often helpful to visualize the graphs of each equation in the system. This can help determine the number of possible intersections and further assist the solution process.
E. Solve applications of nonlinear systems
EXAMPLE 1
Sketching Graphs to Visualize the Number of Possible Solutions Identify each equation in the system as the equation of a line, parabola, circle, or one of the toolbox functions. Then determine the number of solutions possible by considering the different ways the graphs might intersect: e
x2 y2 25 . x y 1
Finally, solve the system by graphing. Solution
A. You’ve just learned how to visualize possible solutions
The first equation contains a sum of second-degree terms with equal coefficients, which we recognize as the equation of a circle. The second equation is obviously linear. This means the system may have no solution, one solution, or two solutions, as shown in Figure 8.11. The graph of the system is shown in Figure 8.12 and the two points of intersection appear to be 13, 42 and (4, 3). After checking these in the original equations we find that both are solutions to the system. Figure 8.11
Figure 8.12 (0, 5) y
y
(4, 3)
No solutions One solution x
(5, 0)
(5, 0)
x
Two solutions (3, 4) (0, 5)
Now try Exercises 7 through 12
8-27
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B. Solving Nonlinear Systems by Substitution Since graphical methods at best offer an estimate for the solution (points of intersection may not have integer values), we more often turn to the algebraic methods just developed. Recall the substitution method involves solving one of the equations for a variable or expression that can be substituted in the other equation to eliminate one of the variables.
EXAMPLE 2
Solving a Nonlinear System Using Substitution Solve the system using substitution: e
Solution
y x2 2x 3 . 2x y 7
The first equation is the equation of a parabola. The second equation is linear. Since the first equation is already written with y in terms of x, we can substitute x2 2x 3 for y in the second equation to solve. 2x y 7 2x 1x 2x 32 7 2x x2 2x 3 7 x2 4x 3 7 x2 4x 4 0 1x 22 2 0 2
B You’ve just learned how to solve nonlinear systems using substitution
second equation substitute x 2 2x 3 for y distribute simplify set equal to zero
We find that x 2 is a repeated root. Since the second equation is simpler than the first, we substitute 2 for x in this equation and find y 3. The system has only one (repeated) solution at 12, 32, as shown in the figure.
y 10
factor
2x y 7
y x2 2x 3 10
10
x
(2, 3)
10
Now try Exercises 13 through 18
C. Solving Nonlinear Systems by Elimination When both equations in the system have second-degree terms with like variables, it is generally easier to use the elimination method, rather than substitution. Remember to watch for systems that have no solutions. EXAMPLE 3
Solving a Nonlinear System Using Elimination y 1 x2 3 Solve the system using elimination: e 2 2 2 . x y 41
Solution
The first equation can be rewritten as y 12x2 3 and is a parabola opening upward with vertex 10, 32. The second equation represents a circle with center at (0, 0)
WORTHY OF NOTE Note that the x-terms sum to zero, and the y-terms cannot be combined as they are not like terms.
and radius r 141 6.4. Mentally visualizing these graphs indicates there will be two solutions (see figure). After writing the system with x- and y-terms in the same order, we find that using 2R1 R2 will eliminate the variable x: 2R1 R2
e
x2 2y 6 x y 41 y2 2y 35 2
2
rewrite first equation; multiply by 2 second equation add
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To find solutions, we set the equation equal to zero and factor or use the quadratic formula if needed. y2 2y 35 0 1y 72 1y 52 0 y 7 or y 5
standard form factored form result
The solution y 7 is extraneous, due to the radius of the circle. Using y 5 in the second equation gives the following: x2 y2 41 x2 152 2 41 x2 25 41 x2 16 x 4
y qx 2 3
y
10
equation 2 substitute 5 for y 10
52 25
10
x
subtract 25 x2 y2 41
square root property
The solutions are 14, 52 and (4, 5), which is supported by the graph shown.
10
Now try Exercises 19 through 24
Nonlinear systems may involve other relations as well, including power, polynomial, logarithmic, or exponential functions. These are solved using the same methods.
EXAMPLE 4
Solution
Solving a System of Logarithmic Equations
y log1x 72 2 . y log1x 42 1 Since both equations have y written in terms of x, substitution appears to be the better choice. The result is a logarithmic equation, which we can solve using the techniques from Chapter 4. Solve the system using the method of your choice: e
log1x 42 1 log1x 72 2 log1x 42 log1x 72 1 log1x 421x 72 1 1x 421x 72 101 x2 11x 18 0 1x 921x 22 0 x 9 0 or x 2 0 x 9 or x 2
substitute log1x 42 1 for y in first equation add log1x 72; subtract 1 product property of logarithms exponential form eliminate parentheses and set equal to zero factor zero factor theorem possible solutions
By inspection, we see that x 9 is not a solution, since log 19 42 and log19 72 are not real numbers. Substituting 2 for x in the second equation we find one form of the (exact) solution is 12, log 2 12. If we substitute 2 for x in the first equation the exact solution is 12, log 5 22. Use a calculator to verify the answers are equivalent and approximately 12, 1.32. Now try Exercises 25 through 36 C. You’ve just learned how to solve nonlinear systems using elimination
For practice solving more complex systems using a graphing calculator, see Exercises 37 to 42.
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D. Solving Systems of Nonlinear Inequalities
Figure 8.13 x2
y2
(5, 0)
25
y
(5, 0)
EXAMPLE 5
Nonlinear inequalities can be solved by graphing the boundary given by the related equation, and checking the regions that result using a test point. For example, the inequality x2 y2 6 25 is solved by first graphing x2 y2 25, a circle with radius 5, and deciding if the boundary is included or excluded (in this case it is not). We then use a test point from either “outside” or “inside” the region formed. The test point (0, 0) results in a true statement since 102 2 102 2 6 25, so the inside of the circle is shaded to indicate the solution region (Figure 8.13). For a system of nonlinear inequalities, we identify regions where the solution set for both inequalities overlap, paying special attention to points of intersection.
x
Solving Systems of Nonlinear Inequalities Solve the system: e
Solution
x2 y2 6 25 . 2y x 5
We recognize the first inequality from Figure 8.13, a circle with radius 5, and a solution region in the interior. The second inequality is linear and after solving for x we’ll use a substitution to find points of intersection (if they exist). From 2y x 5, we obtain x 2y 5. x2 y2 25 12y 52 2 y2 25 5y2 20y 25 25 y2 4y 0 y1y 42 0 y 0 or y 4
D You’ve just learned how to solve nonlinear systems of inequalities
given substitute 2y 5 for x expand and simplify subtract 25; divide by 5 factor
y
x 2y 5
result
Back-substitution shows the graphs intersect at 15, 02 and (3, 4). Graphing a line through these points and using (0, 0) as a test point shows the (5, 0) upper half plane is the solution region for the linear inequality [2102 0 5 is false]. The overlapping (solution) region for both inequalities is the circular section shown. Note the points of intersection are x2 y2 25 graphed using “open dots” (see figure), since points on the graph of the circle are excluded from the solution set.
(3, 4)
Now try Exercises 43 through 50
x
E. Applications of Nonlinear Systems In the business world, a fast growing company can often reduce the average price of its products using what are called the economies of scale. These would include the ability to buy necessary materials in larger quantities, integrating new technology into the production process, and other means. However, there are also countering forces called the diseconomies of scale, which may include the need to hire additional employees, rent more production space, and the like. EXAMPLE 6
Solving an Application of Nonlinear Systems Suppose the cost to produce a new and inexpensive shoe made from molded plastic is modeled by the function C1x2 x2 5x 18, where C(x) represents the cost to produce x thousand of these shoes. The revenue from the sales of these shoes is modeled by R1x2 x2 10x 4. Use a break-even analysis to find the quantity of sales that will cause the company to break even.
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Solution
E You’ve just learned how to solve applications of nonlinear systems
823
Essentially we are asked to solve the system formed by the two equations: C1x2 x2 5x 18 . Since we want to know the point where the company e R1x2 x2 10x 4 breaks even, we set C1x2 R1x2 and solve. C1x2 R1x2 x2 5x 18 x2 10x 4 2x2 15x 22 0 12x 112 1x 22 0 11 x or x 2 2
substitute for C(x ) and R(x ) set equal to zero factored form result
With x in thousands, it appears the company will break even if either 2000 shoes or 5500 shoes are made and sold. Now try Exercises 53 and 54
8.3 EXERCISES
CONCEPTS AND VOCABULARY 1. Draw sketches showing the different ways each pair of relations can intersect and give one, two, three, and/or four points of intersection. If a given number of intersections is not possible, so state. a. circle and line b. parabola and line c. circle and parabola d. circle and absolute value function e. absolute value function and line f. absolute value function and parabola 2. By inspection only, identify the systems having no solutions and justify your choices. y x2 4 y x 6 e a. e 2 b. x2 y2 4 x y2 9 yx1 c. e 2 x y2 12
3. The solution to a system of nonlinear inequalities is a(n) of the plane where the for each individual inequality overlap. 4. When both equations in the system have at least one -degree term, it is generally easier to use the method to find a solution. 5. Suppose a nonlinear system contained a central hyperbola and an exponential function. Are three solutions possible? Are four solutions possible? Explain/Discuss. 6. Solve the system twice, once using elimination, then again using substitution. Compare/contrast each process and comment on which is more x2 y2 25 . efficient in this case: e 2 x y 5
DEVELOPING YOUR SKILLS
Identify each equation in the system as that of a line, parabola, circle, or absolute value function, then solve the system by graphing.
x2 y 6 7. e x y4
x y 4 8. e 2 x y2 16
9. e 11. e
y2 x2 100 y x 2
10. e
x2 y2 25 x2 y 13
1x 12 2 2 y y x2 3
12. e
y 4 x2 y x 1 3
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Solve using substitution. In Exercises 17 and 18, solve for x2 or y2 and use the result as a substitution.
13. e
x2 y2 25 yx1
14. e
x 7y 50 x2 y2 100
15. e
x2 y 9 2x y 1
16. e
x2 y 8 x y4
17. e
x2 y 13 x2 y2 25
18. e
y2 1x 32 2 25 y2 1x 12 2 9
20. e
1 y 2 x y 65
Solve each system.
x y 25 2 4x y 1
19. e 1
2
2
x2 y2 4 21. e y x2 5 x2 y2 65 23. e y 3x 25
1 2 2x 2
y x2 6x 22. e y 11 1x 32 2 y 2x 5 24. e 2 x y2 85
Solve using the method of your choice.
26. e
y log1x 42 1 y 2 log1x 72
27. e
y ln1x2 2 1 y 1 ln1x 122
28. e
log1x 1.12 y 3 y 4 log1x2 2
30. e
y 2e2x 5 y 1 6ex
32. e
y 3x 2x 0 y 9x2 2
33. e
x3 y 2x y 5x 6
34. e
y x3 2 y 4 3x
35. e
x2 6x y 4 y 2x 8
36. e
y x 2 y 4x x2
Solve each system using a graphing calculator. Round solutions to hundredths (as needed).
37. e
x2 y2 34 y2 1x 32 2 25
38. e
5x2 5y2 40 y 2x x2 6
39. e
y 2x 3 y 2x2 9
40. e
y 2 log1x 82 y x3 4x 2
1 y2 x2 5 2 2 1x 32 41. • 42. • 1 1x 32 2 y2 10 2 y x1 y
Solve each system of inequalities.
y 5 log x 25. e y 6 log1x 32
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29. e
y 9 e2x 3 y 7ex
31. e
y 4x3 2 y 2x 3x 0
43. e
y x2 1 xy3
44. e
x2 y2 25 x 2y 5
45. e
x2 y2 7 16 x2 y2 64
46. e
y 4 x2 x2 y2 34
47. e
y x2 16 y2 x2 6 9
48. e
x2 y2 16 x 2y 7 10
49. e
y2 x2 25 x 1 7 y
50. e
y2 x2 4 x y 6 4
WORKING WITH FORMULAS
51. Tunnel clearance: h 2r2 d2 The maximum rectangular clearance allowed by a circular tunnel can be found using the formula shown, where x2 y2 r2 models the tunnel’s circular cross section and h is the height of the tunnel at a distance d from the center. If r 50 ft,
find the maximum clearance at distances of d 20, 30, and 40 ft from center. 52. Manufacturing cylindrical vents: e
A 2rh V r2h
In the manufacture of cylindrical vents, a rectangular piece of sheet metal is rolled, riveted, and sealed to form the vent. The radius and height required to form a vent with a specified volume, using a piece of sheet metal with a given area, can be found by solving the system shown. Use the system to find the radius and height if the volume required is 4071 cm3 and the area of the rectangular piece is 2714 cm2.
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APPLICATIONS
Market equilibrium: In a free-enterprise (supply and demand) economy, the amount buyers are willing to pay for an item and the number of these items manufacturers are willing to produce depend on the price of the item. As the price increases, demand for the item decreases since buyers are less willing to pay the higher price. On the other hand, an increase in price increases the supply of the item since manufacturers are now more willing to supply it. When the supply and demand curves are graphed, their point of intersection is called the market equilibrium for the item. Solve the following applications of economies of scale.
53. World’s most inexpensive car: Early in 2008, the Tata Company (India) unveiled the new Tata Nano, the world’s most inexpensive car. With its low price and 54 miles per gallon, the car may prove to be very popular. Assume the cost to produce these cars is modeled by the function C1x2 2.5x2 120x 3500, where C(x) represents the cost to produce x-thousand cars. Suppose the revenue from the sale of these cars is modeled by R1x2 2x2 180x 500. Use a break-even analysis to find the quantity of sales (to the nearest hundred) that will cause the company to break even. 54. Document reproduction: In a world of technology, document reproduction has become a billion dollar business. With very stiff competition, the price of a single black and white copy has varied greatly in recent years. Suppose the cost to produce these copies is modeled by the function C1x2 0.1x2 1.2x 7, where C(x) represents the cost to produce x hundred thousand copies. If the revenue from the sale of these copies is modeled by R1x2 0.1x2 1.8x 2, use a break-even analysis to find the quantity of copies that will cause the company to break even. 55. Suppose the monthly market demand D (in tenthousands of gallons) for a new synthetic oil is related to the price P in dollars by the equation 10P2 6D 144. For the market price P, assume the amount D that manufacturers are willing to supply is modeled by 8P2 8P 4D 12. (a) What is the minimum price at which manufacturers are willing to begin supplying the oil? (b) Use this information to create a system of nonlinear equations, then solve the system to find the market equilibrium price (per gallon) and the quantity of oil supplied and sold at this price.
56. The weekly demand D for organically grown carrots (in thousands of pounds) is related to the price per pound P by the equation 8P2 4D 84. At this market price, the amount that growers are willing to supply is modeled by the equation 8P2 6P 2D 48. (a) What is the minimum price at which growers are willing to supply the organically grown carrots? (b) Use this information to create a system of nonlinear equations, then solve the system to find the market equilibrium price (per pound) and the quantity of carrots supplied and sold at this price. Solve by setting up and solving a system of nonlinear equations.
57. Dimensions of a flag: A large American flag has an area of 85 m2 and a perimeter of 37 m. Find the dimensions of the flag. 58. Dimensions of a sail: The sail on a boat is a right triangle with a perimeter of 36 ft and a hypotenuse of 15 ft. Find the height and width of the sail. 59. Dimensions of a tract: The area of a rectangular tract of land is 45 km2. The length of a diagonal is 1106 km. Find the dimensions of the tract. 60. Dimensions of a deck: A rectangular deck has an area of 192 ft2 and the length of the diagonal is 20 ft. Find the dimensions of the deck. 61. Dimensions of a trailer: The surface area of a rectangular trailer with square ends is 928 ft2. If the sum of all edges of the trailer is 164 ft, find its dimensions. 62. Dimensions of a cylindrical tank: The surface area of a closed cylindrical tank is 192 m2. Find the dimensions of the tank if the volume is 320 m3 and the radius is as small as possible.
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EXTENDING THE CONCEPT 64. Find the area of the trapezoid formed by joining the points where the parabola y 12x2 26 and the circle x2 y2 100 intersect.
63. The area of a vertical parabolic segment is given by A 23BH, where B is the length of the horizontal base of the H segment and H is the height from the base to the vertex. Investigate how this formula can be used to B find the area of the solution region for the general system of inequalities shown. y x2 bx c e y c bx x2
65. A rectangular fish tank has a bottom and four sides made out of glass. Use a system of equations to help find the dimensions of the tank if the height is 18 in., surface area is 4806 in2, the tank must hold 108 gal 11 gal 231 in3 2 , and all three dimensions are integers.
(Hint: Begin by investigating with b 6 and c 8, then use other values and try to generalize what you find.)
MAINTAINING YOUR SKILLS
66. (1.5) Solve by factoring: a. 2x2 5x 63 0 b. 4x2 121 0 c. 2x3 3x2 8x 12 0 67. (6.3) Find the exact value of cos a
tripled in value, and the third property was worth $10,000 less than when he bought it, for a current value of $485,000. Find the original purchase price if he paid $20,000 more for the first property than he did for the second. 5 b using a sum 12
or difference identity. 68. (5.2) Solve using any method. As an investment for retirement, Donovan bought three properties for a total of $250,000. Ten years later, the first property had doubled in value, the second property had
69. (7.4) Kiaro is using a leash to drag his stubborn dog Maya out of the kitchen. (She is a shameless beggar of table scraps.) He is pulling her with a constant horizontal force of 20 lb, with the leash making an angle of 37° with the floor. How much work is done as Maya is dragged the 12 ft out of the kitchen? Round your answer to the nearest tenth.
8.4 Systems of Inequalities and Linear Programming Learning Objectives In Section 8.4 you will learn how to:
A. Solve a linear inequality in two variables
B. Solve a system of linear
In this section, we'll build on many of the ideas from Section 8.3, with a more direct focus on systems of linear inequalities. While systems of linear equations have an unlimited number of applications, there are many situations that can only be modeled using linear inequalities. For example, many decisions in business and industry are based on a large number of limitations or constraints, with many different ways these constraints can be satisfied.
inequalities
C. Solve applications using a system of linear inequalities
D. Solve applications using linear programming
A. Linear Inequalities in Two Variables A linear equation in two variables is any equation that can be written in the form Ax By C, where A and B are real numbers, not simultaneously equal to zero. A linear inequality in two variables is similarly defined, with the “ ” sign replaced by the “ 6 ,” “ 7 ,” “ ,” or “ ” symbol: Ax By 6 C Ax By C
Ax By 7 C Ax By C
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Solving a linear inequality in two variables has many similarities with the one variable case. For one variable, we graph the boundary point on a number line, decide whether the endpoint is included or excluded, and shade the appropriate half line. For x 1 3, we have the solution x 2 with the endpoint included and the line shaded to the left (Figure 8.14): Figure 8.14
3
Figure 8.15
2
1
[ 0
2
1
3
Interval notation: x (, 2]
y 5
For linear inequalities in two variables, we graph a boundary line, decide whether the boundary line is included or excluded, and shade the appropriate half plane. For x y 3, the boundary line x y 3 is graphed in Figure 8.15. Note it divides the coordinate plane into two regions called half planes, and it forms the boundary between the two regions. If the boundary is included in the solution set, we graph it using a solid line. If the boundary is excluded, a dashed line is used. Recall that solutions to a linear equation are ordered pairs that make the equation true. We use a similar idea to find or verify solutions to linear inequalities. If any one point in a half plane makes the inequality true, all points in that half plane will satisfy the inequality.
(0, 3)
xy3
Upper half plane
5
(4, 1)
Lower half plane
5
x
5
EXAMPLE 1
Checking Solutions to an Inequality in Two Variables Determine whether the given ordered pairs are solutions to x 2y 6 2: a. 14, 32 b. 12, 12
Solution
a. Substitute 4 for x and 3 for y: 142 2132 10 14, 32 is a solution. b. Substitute 2 for x and 1 for y: 122 2112 4 12, 12 is not a solution.
6 2 6 2
substitute 4 for x, 3 for y
6 2 6 2
substitute 2 for x, 1 for y
true
false
Now try Exercises 7 through 10
WORTHY OF NOTE
Earlier we graphed linear equations by plotting a small number of ordered pairs or by solving for y and using the slope-intercept method. The line represented all ordered pairs that made the equation true, meaning the left-hand expression was equal to the right-hand expression. To graph linear inequalities, we reason that if the line represents all ordered pairs that make the expressions equal, then any point not on that line must make the expressions unequal—either greater than or less than. These ordered pair solutions must lie in one of the half planes formed by the line, which we shade to indicate the solution region. Note this implies the boundary line for any inequality is determined by the related equation, temporarily replacing the inequality symbol with an “” sign.
This relationship is often called the trichotomy axiom or the “three-part truth.” Given any two quantities, they are either equal to each other, or the first is less than the second, or the first is greater than the second.
EXAMPLE 2
Solving an Inequality in Two Variables Solve the inequality x 2y 2.
Solution
The related equation and boundary line is x 2y 2. Since the inequality is inclusive (less than or equal to), we graph a solid line. Using the intercepts, we graph the line through (0, 1) and 12, 02 shown in Figure 8.16. To determine the solution region and which side to shade, we select (0, 0) as a test point, which results in a true statement: 102 2102 2✓. Since (0, 0) is in the “lower” half plane, we shade this side of the boundary (see Figure 8.17).
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Figure 8.16
Figure 8.17
y
y
5
Upper half plane
5
(4, 3)
(4, 3)
(0, 1)
(0, 1) (2, 0)
(2, 0) 5
x 2y 2
(0, 0) Test point
5
Lower half plane
x
5
5
x 2y 2
5
x
(0, 0) Test point
5
Now try Exercises 11 through 14
A. You’ve just learned how to solve a linear inequality in two variables
The same solution would be obtained if we first solve for y and graph the boundary line using the slope-intercept method. However, using the slope-intercept method offers a distinct advantage — test points are no longer necessary since solutions to “less than” inequalities will always appear below the boundary line and solutions to “greater than” inequalities appear above the line. Written in slope-intercept form, the inequality from Example 2 is y 12x 1. Note that (0, 0) still results in a true statement, but the “less than or equal to” symbol now indicates directly that solutions will be found in the lower half plane. This observation leads to our general approach for solving linear inequalities: Solving a Linear Inequality 1. Graph the boundary line by solving for y and using the slope-intercept form. • Use a solid line if the boundary is included in the solution set. • Use a dashed line if the boundary is excluded from the solution set. 2. For “greater than” inequalities shade the upper half plane. For “less than” inequalities shade the lower half plane.
B. Solving Systems of Linear Inequalities To solve a system of inequalities, we apply the procedure outlined above to all inequalities in the system, and note the ordered pairs that satisfy all inequalities simultaneously. In other words, we find the intersection of all solution regions (where they overlap), which then represents the solution for the system. In the case of vertical boundary lines, the designations “above” or “below” the line cannot be applied, and instead we simply note that for any vertical line x k, points with x-coordinates larger than k will occur to the right.
EXAMPLE 3
Solution
Solving a System of Linear Inequalities 2x y 4 Solve the system of inequalities: e . xy 6 2
Solving for y, we obtain y 2x 4 and y 7 x 2. The line y 2x 4 will be a solid boundary line (included), while y x 2 will be dashed (not included). Both inequalities are “greater than” and so we shade the upper half plane for each. The regions overlap and form the solution region (the lavender region shown). This sequence of events is illustrated here:
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Section 8.4 Systems of Inequalities and Linear Programming Shade above y x 2 (in pink) y
Shade above y 2x 4 (in blue) y 5
Overlapping region y
5
2x y 4
5
2x y 4
Solution region
2x y 4 xy2
5
5
x
5
5
x
xy2 5
5
x
Corner point 5
5
5
The solutions are all ordered pairs found in this region and its included boundaries. To verify the result, test the point (2, 3) from inside the region, 15, 22 from outside the region (the point (2, 0) is not a solution since x y 6 2). Now try Exercises 15 through 42 B. You’ve just learned how to solve a system of linear inequalities
For further reference, the point of intersection (2, 0) is called a corner point or vertex of the solution region. If the point of intersection is not easily found from the graph, we can find it by solving a linear system using the two lines. For Example 3, the system is e
2x y 4 xy2
and solving by elimination gives 3x 6, x 2, and (2, 0) as the point of intersection.
C. Applications of Systems of Linear Inequalities Systems of inequalities give us a way to model the decision-making process when certain constraints must be satisfied. A constraint is a fact or consideration that somehow limits or governs possible solutions, like the number of acres a farmer plants — which may be limited by time, size of land, government regulation, and so on. EXAMPLE 4
Solving Applications of Linear Inequalities As part of their retirement planning, James and Lily decide to invest up to $30,000 in two separate investment vehicles. The first is a bond issue paying 9% and the second is a money market certificate paying 5%. A financial adviser suggests they invest at least $10,000 in the certificate and not more than $15,000 in bonds. What various amounts can be invested in each?
Solution
Consider the ordered pairs (B, C) where B represents the money invested in bonds and C the money invested in the certificate. Since they plan to invest no more than $30,000, the investment constraint would be B C 30 (in thousands). Following the adviser’s recommendations, the constraints on C each investment would be B 15 and C 10. B 15 40 Since they cannot invest less than zero dollars, the Solution (0, 6) last two constraints are B 0 and C 0. region QI 30 B C 30 B 15 20 (15, 15) C 10 C 10 10 B0 (0, 10) C0 (15, 10) The resulting system is shown in the figure, and 10 20 30 40 B indicates solutions will be in the first quadrant.
u
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C. You’ve just learned how to solve applications using a system of linear inequalities
There is a vertical boundary line at B 15 with shading to the left (less than) and a horizontal boundary line at C 10 with shading above (greater than). After graphing C 30 B, we see the solution region is a quadrilateral with vertices at (0, 10), (0, 30), (15, 10), and (15, 15), as shown. Now try Exercises 53 and 54
D. Linear Programming To become as profitable as possible, corporations look for ways to maximize their revenue and minimize their costs, while keeping up with delivery schedules and product demand. To operate at peak efficiency, plant managers must find ways to maximize productivity, while minimizing related costs and considering employee welfare, union agreements, and other factors. Problems where the goal is to maximize or minimize the value of a given quantity under certain constraints or restrictions are called programming problems. The quantity we seek to maximize or minimize is called the objective function. For situations where linear programming is used, the objective function is given as a linear function in two variables and is denoted f(x, y). A function in two variables is evaluated in much the same way as a single variable function. To evaluate f 1x, y2 2x 3y at the point (4, 5), we substitute 4 for x and 5 for y: f 14, 52 2142 3152 23. EXAMPLE 5
Determining Maximum Values Determine which of the following ordered pairs maximizes the value of f 1x, y2 5x 4y: (0, 6), (5, 0), (0, 0), or (4, 2).
Solution
Organizing our work in table form gives Given Point (0, 6) (5, 0) (0, 0) (4, 2)
Evaluate f 1x, y2 5x 4y
f 10, 62 5102 4162 24
f 15, 02 5152 4102 25
f 10, 02 5102 4102 0
f 14, 22 5142 4122 28
The function f 1x, y2 5x 4y is maximized at (4, 2). Now try Exercises 43 through 46
Figure 8.18
Convex
Not convex
When the objective is stated as a linear function in two variables and the constraints are expressed as a system of linear inequalities, we have what is called a linear programming problem. The systems of inequalities solved earlier produced a solution region that was either bounded (as in Example 4) or unbounded (as in Example 3). We interpret the word bounded to mean we can enclose the solution region within a circle of appropriate size. If we cannot draw a circle around the region because it extends indefinitely in some direction, the region is said to be unbounded. In this study, we will consider only situations that produce a bounded solution region, meaning the region will have three or more vertices. The regions we study will also be convex, meaning that for any two points in the feasible region, the line segment between them is also in the region (Figure 8.18). Under these conditions, it can be shown that the optimal solution(s) must occur at one of the corner points of the solution region, also called the feasible region.
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EXAMPLE 6
Finding the Maximum of an Objective Function
Solution
4 Begin by noting that the solutions must be in QI, (1, 3) 3 since x 0 and y 0. Graph the boundary lines Feasible 2 region y x 4 and y 3x 6, shading the lower 1 half plane in each case since they are “less than” 5 4 3 2 1 1 2 3 4 5 x 1 inequalities. This produces the feasible region 2 shown in lavender. There are four corner points to this region: (0, 0), (0, 4), (2, 0), and (1, 3). Three of these points are intercepts and can be found quickly. The point (1, 3) was found by xy4 solving the system e . Knowing that the objective function will be 3x y 6 maximized at one of the corner points, we test them in the objective function, using a table to organize our work.
Find the maximum value of the objective function f 1x, y2 2x y given the xy4 y 3x y 6 8 constraints shown: μ . x0 7 (0, 6) 6 y0 5
Corner Point (0, 0) (0, 4) (2, 0) (1, 3)
Objective Function f 1x, y2 2x y
f 10, 02 2102 102 0
f 10, 42 2102 142 4
f 12, 02 2122 102 4
f 11, 32 2112 132 5
The objective function f 1x, y2 2x y is maximized at (1, 3). Now try Exercises 47 through 50 Figure 8.19 y 8 7 6 5 4
(1, 3)
3 2 1 5 4 3 2 1 1
1
K1
2
3
4
5
K5 K3
x
To help understand why solutions must occur at a vertex, note the objective function f(x, y) is maximized using only (x, y) ordered pairs from the feasible region. If we let K represent this maximum value, the function from Example 6 becomes K 2x y or y 2x K, which is a line with slope 2 and y-intercept K. The table in Example 6 suggests that K should range from 0 to 5 and graphing y 2x K for K 1, K 3, and K 5 produces the family of parallel lines shown in Figure 8.19. Note that values of K larger than 5 will cause the line to miss the solution region, and the maximum value of 5 occurs where the line intersects the feasible region at the vertex (1, 3). These observations lead to the following principles, which we offer without a formal proof. Linear Programming Solutions 1. If the feasible region is convex and bounded, a maximum and a minimum value exist. 2. If a unique solution exists, it will occur at a vertex of the feasible region. 3. If more than one solution exists, at least one of them occurs at a vertex of the feasible region with others on a boundary line. 4. If the feasible region is unbounded, a linear programming problem may have no solutions. Solving linear programming problems depends in large part on two things: (1) identifying the objective and the decision variables (what each variable represents
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in context), and (2) using the decision variables to write the objective function and constraint inequalities. This brings us to our five-step approach for solving linear programming applications. Solving Linear Programming Applications 1. Identify the main objective and the decision variables (descriptive variables may help) and write the objective function in terms of these variables. 2. Organize all information in a table, with the decision variables and constraints heading up the columns, and their components leading each row. 3. Complete the table using the information given, and write the constraint inequalities using the decision variables, constraints, and the domain. 4. Graph the constraint inequalities, determine the feasible region, and identify all corner points. 5. Test these points in the objective function to determine the optimal solution(s).
EXAMPLE 7
Solving an Application of Linear Programming The owner of a snack food business wants to create two nut mixes for the holiday season. The regular mix will have 14 oz of peanuts and 4 oz of cashews, while the deluxe mix will have 12 oz of peanuts and 6 oz of cashews. The owner estimates he will make a profit of $3 on the regular mixes and $4 on the deluxe mixes. How many of each should be made in order to maximize profit, if only 840 oz of peanuts and 348 oz of cashews are available?
Solution
Our objective is to maximize profit, and the decision variables could be r to represent the regular mixes sold, and d for the number of deluxe mixes. This gives P1r, d2 $3r $4d as our objective function. The information is organized in Table 8.1, using the variables r, d, and the constraints to head each column. Since the mixes are composed of peanuts and cashews, these lead the rows in the table. Table 8.1 P1r, d2 $3r T Regular r
$4 d T Deluxe d
Constraints: Total Ounces Available
Peanuts
14
12
840
Cashews
4
6
348
After filling in the appropriate values, reading the table from left to right along the “peanut” row and the “cashew” row, gives the constraint inequalities 14r 12d 840 and 4r 6d 348. Realizing we won’t be making a negative number of mixes, the remaining constraints are r 0 and d 0. The complete system is 14r 12d 840 4r 6d 348 μ r0 d0 Note once again that the solutions must be in QI, since r 0 and d 0. Graphing the first two inequalities using slope-intercept form gives d 76r 70 and d 23r 58 producing the feasible region shown in lavender. The four corner
d 100 90 80 70 60 50 40 30 20
Feasible region
10 10 20 30 40 50 60 70 80 90 100
r
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points are (0, 0), (60, 0), (0, 58), and (24, 42). Three of these points are intercepts and can be read from a table of values or the graph itself. The point (24, 42) 14r 12d 840 was found by solving the system e . 4r 6d 348 Knowing the objective function will be maximized at one of these points, we test them in the objective function (Table 8.2). Table 8.2 Corner Point (0, 0) (60, 0)
Objective Function P1r, d2 $3r $4d P10, 02 $3102 $4102 0 P160, 02 $31602 $4102 $180
(0, 58)
P10, 582 $3102 $41582 $232
(24, 42)
P124, 422 $31242 $41422 $240
Profit will be maximized if 24 boxes of the regular mix and 42 boxes of the deluxe mix are made and sold. Now try Exercises 55 through 60
Linear programming can also be used to minimize an objective function, as in Example 8.
EXAMPLE 8
Minimizing Costs Using Linear Programming A beverage producer needs to minimize shipping costs from its two primary plants in Kansas City (KC) and St. Louis (STL). All wholesale orders within the state are shipped from one of these plants. An outlet in Macon orders 200 cases of soft drinks on the same day an order for 240 cases comes from Springfield. The plant in KC has 300 cases ready to ship and the plant in STL has 200 cases. The cost of shipping each case to Macon is $0.50 from KC, and $0.70 from STL. The cost of shipping each case to Springfield is $0.60 from KC, and $0.65 from STL. How many cases should be shipped from each warehouse to minimize costs?
Solution
Our objective is to minimize costs, which depends on the number of cases shipped from each plant. To begin we use the following assignments: A S cases shipped from KC to Macon B S cases shipped from KC to Springfield C S cases shipped from STL to Macon D S cases shipped from STL to Springfield From this information, the equation for total cost T is T 0.5A 0.6B 0.7C 0.65D, an equation in four variables. To make the cost equation more manageable, note since Macon ordered 200 cases, A C 200. Similarly, Springfield ordered 240 cases, so B D 240. After solving for C and D, respectively, these equations enable us to substitute for C and D, resulting in an equation with just two variables. For C 200 A and D 240 B we have T1A, B2 0.5A 0.6B 0.71200 A2 0.651240 B2 0.5A 0.6B 140 0.7A 156 0.65B 296 0.2A 0.05B The constraints involving the KC plant are A B 300 with A 0, B 0. The constraints for the STL plant are C D 200 with C 0, D 0. Since we want
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a system in terms of A and B only, we again substitute C 200 A and D 240 B in all the STL inequalities: C D 200 1200 A2 1240 B2 200
STL inequalities substitute 200 A for C, 240 B for D
440 A B 200 240 A B
C0 200 A 0 200 A
D0 240 B 0 240 B
simplify result
Combining the new STL constraints with those from KC produces the following system and solution. All points of intersection were read from the graph or located using the related system of equations. 400
u
A B 300 A B 240 A 200 B 240 A0 B0
B
A 200
300
B 240
(60, 240) 200
100
Feasible region
(200, 100)
(200, 40) 100
200
A 300
400
To find the minimum cost, we check each vertex in the objective function. Objective Function T1A, B2 296 0.2 A 0.05B
Vertices (0, 240)
P10, 2402 296 0.2102 0.0512402 $284
(60, 240)
P160, 2402 296 0.21602 0.0512402 $272
(200, 100)
P1200, 1002 296 0.212002 0.0511002 $251
(200, 40)
P1200, 402 296 0.212002 0.051402 $254
The minimum cost occurs when A 200 and B 100, meaning the producer should ship the following quantities:
D. You’ve just learned how to solve applications using linear programming
A S cases shipped from KC to Macon 200 B S cases shipped from KC to Springfield 100 C S cases shipped from STL to Macon 0 D S cases shipped from STL to Springfield 140 Now try Exercises 61 and 62
TECHNOLOGY HIGHLIGHT
Systems of Linear Inequalities Solving systems of linear inequalities on the TI-84 Plus involves three steps, which are performed on both equations: (1) enter the related equations in Y1 and Y2 (solve for y in each equation) to create the boundary lines, (2) graph both lines and test the resulting half planes, and (3) shade the appropriate half plane. Since many real-world applications of linear inequalities preclude the use of negative numbers, we set Xmin 0 and Ymin 0 for the WINDOW size. Xmax and Ymax will depend on the equations given. We illustrate 3x 2y 6 14 by solving the system e . x 2y 6 8 —continued
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1. Enter the related equations. For 3x 2y 14, we have y 1.5 7. For x 2y 8, we have y 0.5x 4. Enter these as Y1 and Y2 on the Y = screen.
Figure 8.20
2. Graph the boundary lines. Note the x- and y-intercepts of both lines are less than 10, so we can graph them using a friendly window where x [0, 9.4] and y [0, 6.2]. After setting the window, press GRAPH to graph the lines. 3. Shade the appropriate half plane. Since both equations are in slope-intercept form, we shade below both lines for the less than inequalities, using the “ ” feature located to the far left of Y1 and Y2. Simply overlay the diagonal line and press ENTER repeatedly until the symbol appears (Figure 8.20). After pressing the GRAPH key, the calculator draws both lines and shades the appropriate regions (Figure 8.21). Note the calculator uses two different kinds of shading. This makes it easy to identify the solution region—it will be the “checker0 board area” where the horizontal and vertical lines cross. As a final check, you could navigate the position marker into the solution region and test a few points in both equations.
Figure 8.21 6.2
9.4
0
Use these ideas to solve the following systems of linear inequalities. Assume all solutions lie in Quadrant I. Exercise 1: e
y 2x 6 8 y x 6 6
Exercise 2: e
3x y 6 8 xy 6 4
Exercise 3: e
4x y 7 9 3x y 7 7
8.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Any line y mx b drawn in the coordinate plane divides the plane into two regions called . 2. For the line y mx b drawn in the coordinate plane, solutions to y 7 mx b are found in the region the line. 3. The overlapping region of two or more linear inequalities in a system is called the region.
4. If a linear programming problem has a unique solution (x, y), it must be a of the feasible region. 5. Suppose two boundary lines in a system of linear inequalities intersect, but the point of intersection is not a vertex of the feasible region. Describe how this is possible. 6. Describe the conditions necessary for a linear programming problem to have multiple solutions. (Hint: Consider the diagram in Figure 8.19, and the slope of the line from the objective function.)
DEVELOPING YOUR SKILLS
Determine whether the ordered pairs given are solutions.
7. 2x y 7 3; (0, 0), 13, 52, 13, 42, 13, 92
8. 3x y 7 5; (0, 0), 14, 12 , 11, 52, 11, 22
9. 4x 2y 8; (0, 0), 13, 52 , 13, 22 , 11, 12
10. 3x 5y 15; (0, 0), 13, 52, 11, 62, 17, 32
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Solve the linear inequalities by shading the appropriate half plane.
11. x 2y 6 8
12. x 3y 7 6
13. 2x 3y 9
14. 4x 5y 15
Use the equations given to write the system of linear inequalities represented by each graph.
39.
Determine whether the ordered pairs given are solutions to the accompanying system.
5y x 10 ; 15. e 5y 2x 5 12, 12, 15, 42, 16, 22, 18, 2.22 8y 7x 56 16. • 3y 4x 12 y 4; 11, 52, 14, 62, 18, 52, 15, 32
Solve each system of inequalities by graphing the solution region. Verify the solution using a test point.
17. e
x 2y 1 2x y 2
18. e
x 5y 6 5 x 2y 1
19. e
3x y 7 4 x 7 2y
20. e
3x 2y y 4x 3
21. e
2x y 6 4 2y 7 3x 6
22. e
x 2y 6 7 2x y 7 5
x 7 3y 2 23. e x 3y 6
2x 5y 6 15 24. e 3x 2y 7 6
25. e
5x 4y 20 x1y
26. e
10x 4y 20 5x 2y 7 1
27. e
0.2x 7 0.3y 1 0.3x 0.5y 0.6
28. e
x 7 0.4y 2.2 x 0.9y 1.2
29. •
3 x 2 4y 6x 12
30. •
3x 4y 7 12 2 y 6 x 3
y
2 3 x y1 3 4 31. μ 1 x 2y 3 2
2 1 x y5 2 5 32. μ 5 x 2y 5 6
x y 4 33. • 2x y 4 x 1, y 0
2x y 5 34. • x 3y 6 x1
yx3 35. • x 2y 4 y0
4y 6 3x 12 36. • x 0 yx1
2x 3y 18 37. • x 0 y0
8x 5y 40 38. • x 0 y0
54321 1 2 3 4 5
41.
40.
y 5 4 3 2 1
yx1
54321 1 2 3 4 5
54321 1 2 3 4 5
1 2 3 4 5 x
xy3
42.
y 5 4 3 2 1
yx1 1 2 3 4 5 x
xy3
y 5 4 3 2 1
yx1 1 2 3 4 5 x
xy3
y 5 4 3 2 1 54321 1 2 3 4 5
yx1 1 2 3 4 5 x
xy3
Determine which of the ordered pairs given produces the maximum value of f (x, y).
43. f 1x, y2 12x 10y; (0, 0), (0, 8.5), (7, 0), (5, 3) 44. f 1x, y2 50x 45y; (0, 0), (0, 21), (15, 0), (7.5, 12.5)
Determine which of the ordered pairs given produces the minimum value of f (x, y).
45. f 1x, y2 8x 15y; (0, 20), (35, 0), (5, 15), (12, 11)
46. f 1x, y2 75x 80y; (0, 9), (10, 0), (4, 5), (5, 4) For Exercises 47 and 48, find the maximum value of the objective function f 1x, y2 8x 5y given the constraints shown.
x 2y 6 3x y 8 47. μ x0 y0
2x y 7 x 2y 5 48. μ x0 y0
For Exercises 49 and 50, find the minimum value of the objective function f1x, y2 36x 40y given the constraints shown.
3x 2y 18 3x 4y 24 49. μ x0 y0
2x y 10 x 4y 3 50. μ x2 y0
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WORKING WITH FORMULAS
Area Formulas
51. The area of a triangle is usually given as A 12 BH, where B and H represent the base and height, respectively. The area of a rectangle can be stated as A BH. If the base of both the triangle and rectangle is equal to 20 in., what are the possible values for H if the triangle must have an area greater than 50 in2 and the rectangle must have an area less than 200 in2?
837
Volume Formulas
52. The volume of a cone is V 13r 2h, where r is the radius of the base and h is the height. The volume of a cylinder is V r 2h. If the radius of both the cone and cylinder is equal to 10 cm, what are the possible values for h if the cone must have a volume greater than 200 cm3 and the volume of the cylinder must be less than 850 cm3?
APPLICATIONS
Write a system of linear inequalities that models the information given, then solve.
53. Gifts to grandchildren: Grandpa Augustus is considering how to divide a $50,000 gift between his two grandchildren, Julius and Anthony. After weighing their respective positions in life and family responsibilities, he decides he must bequeath at least $20,000 to Julius, but no more than $25,000 to Anthony. Determine the possible ways that Grandpa can divide the $50,000. 54. Guns versus butter: Every year, governments around the world have to make the decision as to how much of their revenue must be spent on national defense and domestic improvements (guns versus butter). Suppose total revenue for these two needs was $120 billion, and a government decides they need to spend at least $42 billion on butter and no more than $80 billion on defense. Determine the possible amounts that can go toward each need. Solve the following linear programming problems.
55. Land/crop allocation: A farmer has 500 acres of land to plant corn and soybeans. During the last few years, market prices have been stable and the farmer anticipates a profit of $900 per acre on the corn harvest and $800 per acre on the soybeans. The farmer must take into account the time it takes to plant and harvest each crop, which is 3 hr/acre for corn and 2 hr/acre for soybeans. If the farmer has at most 1300 hr to plant, care for, and harvest each crop, how many acres of each crop should be planted in order to maximize profits? 56. Coffee blends: The owner of a coffee shop has decided to introduce two new blends of coffee in order to attract new customers—a Deluxe Blend and a Savory Blend. Each pound of the deluxe blend contains 30% Colombian and 20% Arabian coffee, while each pound of the savory blend
contains 35% Colombian and 15% Arabian coffee (the remainder of each is made up of cheap and plentiful domestic varieties). The profit on the deluxe blend will be $1.25 per pound, while the profit on the savory blend will be $1.40 per pound. How many pounds of each should the owner make in order to maximize profit, if only 455 lb of Colombian coffee and 250 lb of Arabian coffee are currently available? 57. Manufacturing screws: A machine shop manufactures two types of screws—sheet metal screws and wood screws, using three different machines. Machine Moe can make a sheet metal screw in 20 sec and a wood screw in 5 sec. Machine Larry can make a sheet metal screw in 5 sec and a wood screw in 20 sec. Machine Curly, the newest machine (nyuk, nyuk) can make a sheet metal screw in 15 sec and a wood screw in 15 sec. (Shemp couldn’t get a job because he failed the math portion of the employment exam.) Each machine can operate for only 3 hr each day before shutting down for maintenance. If sheet metal screws sell for 10 cents and wood screws sell for 12 cents, how many of each type should the machines be programmed to make in order to maximize revenue? (Hint: Standardize time units.) 58. Hauling hazardous waste: A waste disposal company is contracted to haul away some hazardous waste material. A full container of liquid waste weighs 800 lb and has a volume of 20 ft3. A full container of solid waste weighs 600 lb and has a volume of 30 ft3. The trucks used can carry at most 10 tons (20,000 lb) and have a carrying volume of 800 ft3. If the trucking company makes $300 for disposing of liquid waste and $400 for disposing of solid waste, what is the maximum revenue per truck that can be generated?
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59. Maximizing profit—food service: P. Barrett & Justin, Inc., is starting up a fast-food restaurant specializing in peanut butter and jelly sandwiches. Some of the peanut butter varieties are smooth, crunchy, reduced fat, and reduced sugar. The jellies will include those expected and common, as well as some exotic varieties such as kiwi and mango. Independent research has determined the two most popular sandwiches will be the traditional P&J (smooth peanut butter and grape jelly), and the Double-T (three slices of bread). A traditional P&J uses 2 oz of peanut butter and 3 oz of jelly. The Double-T uses 4 oz of peanut butter and 5 oz of jelly. The traditional sandwich will be priced at $2.00, and a Double-T at $3.50. If the restaurant has 250 oz of smooth peanut butter and 345 oz of grape jelly on hand for opening day, how many of each should they make and sell to maximize revenue? 60. Maximizing profit—construction materials: Mooney and Sons produces and sells two varieties of concrete mixes. The mixes are packaged in 50-lb bags. Type A is appropriate for finish work, and contains 20 lb of cement and 30 lb of sand. Type B is appropriate for foundation and footing work, and contains 10 lb of cement and 20 lb of sand. The remaining weight comes from gravel aggregate. The profit on type A is $1.20/bag, while the profit on type B is $0.90/bag. How many bags of each should the company make to maximize profit, if
2750 lb of cement and 4500 lb of sand are currently available? 61. Minimizing shipping costs: An oil company is trying to minimize shipping costs from its two primary refineries in Tulsa, Oklahoma, and Houston, Texas. All orders within the region are shipped from one of these two refineries. An order for 220,000 gal comes in from a location in Colorado, and another for 250,000 gal from a location in Mississippi. The Tulsa refinery has 320,000 gal ready to ship, while the Houston refinery has 240,000 gal. The cost of transporting each gallon to Colorado is $0.05 from Tulsa and $0.075 from Houston. The cost of transporting each gallon to Mississippi is $0.06 from Tulsa and $0.065 from Houston. How many gallons should be distributed from each refinery to minimize the cost of filling both orders? 62. Minimizing transportation costs: Robert’s Las Vegas Tours needs to drive 375 people and 19,450 lb of luggage from Salt Lake City, Utah, to Las Vegas, Nevada, and can charter buses from two companies. The buses from company X carry 45 passengers and 2750 lb of luggage at a cost of $1250 per trip. Company Y offers buses that carry 60 passengers and 2800 lb of luggage at a cost of $1350 per trip. How many buses should be chartered from each company in order for Robert to minimize the cost?
EXTENDING THE CONCEPT
63. Graph the feasible region formed by the system x0 y0 μ . How would you describe this region? y3 x3 Select random points within the region or on any boundary line and evaluate the objective function f1x, y2 4.5x 7.2y. At what point (x, y) will this
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CHAPTER 8 Systems of Equations and Inequalities
function be maximized? How does this relate to optimal solutions to a linear programing problem?
64. Find the maximum value of the objective function f 1x, y2 22x 15y given the constraints 2x 5y 24 3x 4y 29 x 6y 26 . x0 y0
u
MAINTAINING YOUR SKILLS
65. (5.3) Given the point 13, 42 is on the terminal side of angle with in standard position, find a. cos b. csc c. cot
67. (3.8) The resistance to current flow in copper wire varies directly as its length and inversely as the square of its diameter. A wire 8 m long with a 0.004-m diameter has a resistance of 1500 . Find the resistance in a wire of like material that is 2.7 m long with a 0.005-m diameter.
66. (3.7) Solve the rational inequality. Write your x2 7 0 answer in interval notation. 2 x 9
68. (6.4) Use a half-angle identity to find an exact 7 value for cosa b. 12
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S U M M A RY A N D C O N C E P T R E V I E W SECTION 8.1
Linear Systems in Two Variables with Applications
KEY CONCEPTS • A solution to a linear system in two variables is an ordered pair (x, y) that makes all equations in the system true. • Since every point on the graph of a line satisfies the equation of that line, a point where two lines intersect must satisfy both equations and is a solution of the system. • A system with at least one solution is called a consistent system. • If the lines have different slopes, there is a unique solution to the system (they intersect at a single point). The system is called a consistent and independent system. • If the lines have equal slopes and the same y-intercept, they form identical or coincident lines. Since one line is right atop the other, they intersect at all points with an infinite number of solutions. The system is called a consistent and dependent system. • If the lines have equal slopes but different y-intercepts, they will never intersect. The system has no solution and is called an inconsistent system. EXERCISES Solve each system by graphing. If the solution does not have integer values indicate your solution is an estimate. If the system is inconsistent or dependent, so state. 3x 2y 4 0.2x 0.5y 1.4 2x y 2 1. e 2. e 3. e x 3y 8 x 0.3y 1.4 x 2y 4 Solve using substitution. Indicate whether each system is consistent, inconsistent, or dependent. Write unique solutions as an ordered pair. y5x x y4 x 2y 3 4. e 5. e 6. e 2x 2y 13 0.4x 0.3y 1.7 x 4y 1 Solve using elimination. Indicate whether each system is consistent, inconsistent, or dependent. Write unique solutions as an ordered pair. 2x 4y 10 x 5y 8 2x 3y 6 7. e 8. e 9. e 3x 4y 5 x 2y 6 2.4x 3.6y 6 10. When it was first constructed in 1968, the John Hancock building in Chicago, Illinois, was the tallest structure in the world. In 1985, the Sears Tower in Chicago became the world’s tallest structure. The Sears Tower is 323 ft taller than the John Hancock Building, and the sum of their heights is 2577 ft. How tall is each structure?
SECTION 8.2
Linear Systems in Three Variables with Applications
KEY CONCEPTS • The graph of a linear equation in three variables is a plane. • Systems in three variables can be solved using substitution and elimination. • A linear system in three variables has the following possible solution sets: • If the planes intersect at a point, the system has one unique solution (x, y, z). • If the planes intersect at a line, the system has linear dependence and the solution (x, y, z) can be written as linear combinations of a single variable (a parameter). • If the planes are coincident, the equations in the system differ by a constant multiple, meaning they are all “disguised forms” of the same equation. The solutions have coincident dependence, and the solution set can be represented by any one of the equations. • In all other cases, the system has no solutions and is an inconsistent system.
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EXERCISES Solve using elimination. If a system is inconsistent or dependent, so state. For systems with linear dependence, give the answer as an ordered triple using a parameter. x y 2z 1 x y 2z 2 3x y 2z 3 11. • 4x y 3z 3 12. • x y z 1 13. • x 2y 3z 1 3x 2y z 4 2x y z 4 4x 8y 12z 7 Solve using a system of three equations in three variables. 14. In one version of the card game Gin Rummy, numbered cards (N) 2 through 9 are worth 5 points, the 10s and all face cards (F) are worth 10 points, and aces (A) are worth 20 points. At the moment his opponent said “Gin!” Kenan had 12 cards in his hand, worth a total value of 125 points. If the value of his aces and face cards was equal to four times the value of his numbered cards, how many aces, face cards, and numbered cards was he holding? 15. A vending machine accepts nickels, dimes, and quarters. At the end of a week, there is a total of $536 in the machine. The number of nickels and dimes combined is 360 more than the number of quarters. The number of quarters is 110 more than twice the number of nickels. How many of each type of coin are in the machine?
SECTION 8.3
Nonlinear Systems of Equations and Inequalities
KEY CONCEPTS • Nonlinear systems of equations can be solved using substitution or elimination. • First identify the graphs of the equations in the system to help determine the number of solutions possible. • For nonlinear systems of inequalities, graph the related equation for each inequality given, then use a test point to decide what region to shade as the solution. • The solution for the system is the overlapping region (if it exists) created by solutions to the individual inequalities. • If the boundary is included, graph it using a solid line; if the boundary is not included use a dashed line. EXERCISES Solve Exercises 16–21 using substitution or elimination. Identify the graph of each relation before you begin. x2 y2 25 x y2 1 x2 y 1 16. e 17. e 18. e 2 y x 1 x 4y 5 x y2 7 x2 y2 10 y x2 2 x2 y2 7 9 19. e 20. e 2 21. e 2 2 2 y 3x 0 x y 16 x y 3
SECTION 8.4
Systems of Linear Inequalities and Linear Programming
KEY CONCEPTS • As in Section 8.3, to solve a system of linear inequalities, we find the intersecting or overlapping areas of the solution regions from the individual inequalities. The common area is called the feasible region. • The process known as linear programming seeks to maximize or minimize the value of a given quantity under certain constraints or restrictions. • The quantity we attempt to maximize or minimize is called the objective function. • The solution(s) to a linear programming problem occur at one of the corner points of the feasible region. • The process of solving a linear programming application contains these six steps: • Identify the main objective and the decision variables. • Write the objective function in terms of these variables. • Organize all information in a table, using the decision variables and constraints. • Fill in the table with the information given and write the constraint inequalities. • Graph the constraint inequalities and determine the feasible region. • Identify all corner points of the feasible region and test these points in the objective function.
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EXERCISES Graph the solution region for each system of linear inequalities and verify the solution using a test point. x y 7 2 x y 6 4
23. e
x 4y 5 x 2y 0
24. e
25. Carefully graph the feasible region for the system of inequalities shown, then maximize the objective function: f 1x, y2 30x 45y
x 2y 1 2x y 2
x y7 2x y 10 2x 3y 18 x 0, y 0
⎞ ⎪ ⎬ ⎪ ⎠
22. e
26. After retiring, Oliver and Lisa Douglas buy and work a small farm (near Hooterville) that consists mostly of milk cows and egg-laying chickens. Although the price of a commodity is rarely stable, suppose that milk sales bring in an average of $85 per cow and egg sales an average of $50 per chicken over a period of time. During this time period, the new ranchers estimate that care and feeding of the animals took about 3 hr per cow and 2 hr per chicken, while maintaining the related equipment took 2 hr per cow and 1 hr per chicken. How many animals of each type should be maintained in order to maximize profits, if at most 1000 hr can be spent on care and feeding, and at most 525 hr on equipment maintenance?
MIXED REVIEW 1. Write the equations in each system in slope-intercept form, then state whether the system is consistent/independent, consistent/dependent, or inconsistent. Do not solve. 3x 5y 10 4x 3y 9 a. e b. e 6x 20 10y 2x 5y 10 x 3y 9 c. e 6y 2x 10 2. Solve by graphing. e
x 2y 6 2x y 9
3. Solve using a substitution. e
2x 3y 5 x 5y 17
4. Solve using elimination. e
7x 4y 5 3x 2y 9
5. A burrito stand sells a veggie burrito for $2.45 and a beef burrito for $2.95. If the stand sold 54 burritos in one day, for a total revenue of $148.80, how many of each did they sell? Solve using elimination. x 2y 3z 4 6. • 3x 4y z 1 2x 6y z 1 z 1.7 0.1x 0.2y y 0.1z 3.6 7. • 0.3x 0.2x 0.1y 0.2z 1.7
Solve using elimination. If the system has coincident dependence, state the solution set using set notation. x 2y 3z 4 8. • 2x y z 1 5x z2
x 2y 3z 4 9. • 2x y z 1 5x z6
10. It’s the end of another big day at the circus, and the clowns are putting away their riding equipment— a motley collection of unicycles, bicycles, and tricycles. As she loads them into the storage shed, Trixie counts 21 cycles in all with a total of 40 wheels. In addition, she notes the number of bicycles is one fewer than twice the number of tricycles. How many cycles of each type do the clowns use? Solve each system of inequalities by graphing the solution region. 11. e
2x y 4 x 3y 7 6
13. e
x 2y 5 x 2y
12. e
2x y 6 3 2x y 7 3
14. Graph the solution region for the system of 4x 2y 14 2x 3y 15 inequalities. μ y0 x0
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15. Maximize P1x, y2 2.5x 3.75y, given x y8 x 2y 14 μ 4x 3y 30 x, y 0 16. Solve the system by substitution. x2 y2 1 e x y 1
17. Solve using elimination: e
4x2 y2 9 x2 3y2 79
18. Solve using the method of your choice. y 1 x2 e 2 x y7 Solve each system of inequalities. 19. e
x y 7 1 x2 y2 16
20. e
x2 y2 6 4 x2 y 6 0
PRACTICE TEST Solve each system and state whether the system is consistent, inconsistent, or dependent. 1. Solve graphically: e
3x 2y 12 x 4y 10
2. Solve using substitution: e
3x y 2 7x 4y 6
3. Solve using elimination: 4. Solve using elimination: 5x 8y 1 e 3x 7y 5
x 2y z 4 • 2x 3y 5z 27 5x y 4z 27
5. Solve using elimination: 2x y z 4 • x 2z 1 x 2y 8z 11
6. Find values of a and b such that 12, 12 is a solution of the system. e
ax by 12 bx ay 1
Create a system of equations to model each exercise, then solve using the method of your choice. 7. The perimeter of a “legal-size” paper is 114.3 cm. The length of the paper is 7.62 cm less than twice the width. Find the dimensions of a legal-size sheet of paper. 8. The island nations of Tahiti and Tonga have a combined land area of 692 mi2. Tahiti’s land area is 112 mi2 more than Tonga’s. What is the land area of each island group? 9. Many years ago, two cans of corn (C), 3 cans of green beans (B), and 1 can of peas (P) cost $1.39. Three cans of C, 2 of B, and 2 of P cost $1.73. One
can of C, 4 of B, and 3 of P cost $1.92. What was the price of a single can of C, B, and P? 10. After inheriting $30,000 from a rich aunt, David decides to place the money in three different investments: a savings account paying 5%, a bond account paying 7%, and a stock account paying 9%. After 1 yr he earned $2080 in interest. Find how much was invested at each rate if $8000 less was invested at 9% than at 7%. 11. Solve the system of inequalities by graphing. x y2 e x 2y 8 12. Maximize the objective function: P 50x 12y x 2y 8 • 8x 5y 40 x, y0 Solve the linear programming problem. 13. A company manufactures two types of T-shirts, a plain T-shirt and a deluxe monogrammed T-shirt. To produce a plain shirt requires 1 hr of working time on machine A and 2 hr on machine B. To produce a deluxe shirt requires 1 hr on machine A and 3 hr on machine B. Machine A is available for at most 50 hr/week, while machine B is available for at most 120 hr/week. If a plain shirt can be sold at a profit of $4.25 each and a deluxe shirt can be sold at a profit of $5.00 each, how many of each should be manufactured to maximize the profit? Solve each nonlinear system using the technique of your choice. 14. e
x2 y2 16 yx2
15. e
4y x2 1 y2 x2 4
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16. A support bracket on the frame of a large ship is a steel right triangle with a hypotenuse of 25 ft and a perimeter of 60 ft. Find the lengths of the other sides using a system of nonlinear equations. 17. Solve e
843
Calculator Exploration and Discovery
x y 2 . x y2 2 2
19. Solve the system of inequalities.
y
2x y 1 • 3x 2y 2 x 3y 3 20. Write a system of four inequalities that describes the location of the dart on the dartboard shown.
18. Write a system of inequalities that describes all the points with positive y-values that are less than 3 units away from the origin.
Exercise 20 5 4 3 2 1 5 4 3 2 1 1
1
2
3
4
5
x
2 3 4 5
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Optimal Solutions and Linear Programming In this exercise, we’ll use a graphing calculator to explore various areas of the feasible region, repeatedly evaluating the objective function to see where the maximal values (optimal solutions) seem to “congregate.” If all goes as expected, ordered pairs nearest to a vertex should give relatively larger values. To demonstrate, we’ll use Example 6 from Section 8.4, stated below. Example 6 Find the maximum value of the objective function f 1x, y2 2x y given the constraints shown: xy4 3x y 6 μ . x0 y y0 7 Solution The feasible region is shown in lavender. There are four corner points to this region: (0, 0), (0, 4), (2, 0), and (1, 3), and we found f (x, y) was maximized at (1, 3): f 11, 32 5.
(0, 6)
Feasible region 5
(1, 3)
5 x 3
To explore this feasible region in terms of the objective function f 1x, y2 2x y, enter the boundary lines Y1 x 4 and Y2 3x 6 on the Y = screen. However, instead of shading below the lines to show the feasible region (using the feature to the extreme left), we shade above both lines (using the feature) so that the feasible region remains clear. Setting the window size at x 3 0, 3 4 and y 31.5, 4 4 produces Figure 8.22. Using YMin 1.5 will leave a blank area just below QI that enables you to explore the feasible region as the x- and y-values are displayed. Next we place the calculator in “split-screen” mode so that we can view the graph and the home screen simultaneously. Press the MODE key
Figure 8.22 and notice the secondto-last line reads Full 4 Horiz G-T. The Full (screen) mode is the default operating mode. The Horiz 0 3 mode splits the screen horizontally, placing the graph directly 1.5 above a shorter home screen. Highlight Horiz, then press ENTER and GRAPH to have the calculator reset the screen in this mode. The TI-84 Plus has a free-moving cursor that is brought into view by pressing the left or right arrow (Figure 8.23). A useful feature of this Figure 8.23 cursor is that it auto4 matically stores the current X value as the variable X ( X,T,,n or ALPHA STO ) and 0 3 the current Y value as the variable Y ( ALPHA 1), which allows us to evaluate 1.5 the objective function f 1x, y2 2x y right on the home screen. To access the graph and free-moving cursor you must press GRAPH each time, and to access the home screen you must press MODE (QUIT) each time. Begin by moving the 2nd cursor to the upper-left corner of the region, near the y-intercept [we stopped at (~0.0957, 3.262 4 . Once you have the cursor “tucked up into the corner,” press 2nd MODE (QUIT) to get to the home screen, then enter the objective function: 2X Y. Pressing ENTER evaluates the function for the values indicated by the cursor’s location
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Figure 8.24 (Figure 8.24). It 4 appears the value of the objective function for points (x, y) in this corner are close to 4, 3 and it’s no accident 0 that at the corner point (0, 4) the maximum value is in 1.5 fact 4. Repeating this procedure for the lower-right corner suggests the maximum value near (2, 0) is also 4. Finally, press GRAPH to explore the region in the upper-right corner, where the lines intersect. Move the cursor to this vicinity, locate it very near the point of intersection [we stopped at (0.957, 2.7162 4 and return to the home screen and evaluate (Figure 8.25). The value of the objective function is
Figure 8.25 near 5 in this corner of 4 the region, and at the corner point (1, 3) the maximum value is 5. Exercise 1: The feasible region for the 0 system given to the right has four corner points. Use the ideas 1.5 here to explore the area near each corner point of the feasible region to determine which point is the likely candidate to produce 2x 2y 15 the minimum value of the objective x y6 function f 1x, y2 2x 4y. Then μ x 4y 9 solve the linear programming x, y 0 problem to verify your guess.
3
STRENGTHENING CORE SKILLS Understanding Why Elimination and Substitution “Work” When asked to solve a system of two equations in two variables, we first select an appropriate method. In Section 8.1, we learned three basic techniques: graphing, substitution, and elimination. In this feature, we’ll explore how these methods are Figure 8.26 related using Example 2 y 5 from Section 8.1 where we 4 were asked to solve the 3 4x 3y 9 2 system e (3, 1) 1 2x y 5 by graphing. The result- 5 4 3 2 1 1 2 3 4 5 x 1 ing graph, shown here in 2 Figure 8.26, clearly indi3 cates the solution is (3, 1). 4 5 As for the elimination method, either x or y can be easily eliminated. If the second equation is multiplied by 2, the x-coefficients will be additive inverses, and the sum results in an equation with y as the only unknown. R1 4x 3y 9 2R2 4x 2y 10 sum y 1 The result is y 1 but remember, this is a system of linear equations, and y 1 is still the equation of a 4x 3y 9 (horizontal) line. Since the system e is equiy1 valent to the original, it will have the same solution set. In Figure 8.27, we note the point of intersection for the new system is still (3, 1). If we eliminate the y-terms instead
Figure 8.27 (using R1 3R22 , the y result is x 3, which is 5 also the equation of a (ver4 tical) line. Creating another 3 2 equivalent system using 1 x3 this line produces e y 1 5 4 3 2 11 1 2 3 4 5 x and the graph shown in 2 3 Figure 8.28, where the 4 vertical and horizontal 5 lines intersect at (3, 1), making the solution trivial. Figure 8.28 Note: Here we see a y close connection to solving 5 4 general equations, in that 3 the goal is to write a series 2 of equivalent yet simpler 1 equations, continuing until 5 4 3 2 1 1 2 3 4 5 x the solution is obvious. 1 2 As for the substitution 3 method, consider the 4 second equation written as 5 y 2x 5. This equation represents every point (x, y) on its graph, meaning the relationship for the ordered pair solutions can also be written 1x, 2x 52 . The same thing can be said for the line 4x 3y 9, with its ordered pair solutions represented by 1x, 43x 32 . At the point of intersection the y-coordinates must be identical, giving 2x 5 43x 3. In other words, we can substitute 2x 5 for y in the first equation, or 4 3 x 3 for y in the second equation, with both yielding the
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correct solution. Substituting 2x 5 for y in the first equation gives 4x 312x 52 9 4x 6x 15 9 2x 6 x3
substitute 2x 5 for y
845
All three methods will produce the same solution, and the best method to use at the time often depends on the nature of the system given, or even personal preference.
expand simplify
and the solution 1x, 2x 52 becomes 13, 2132 52 or (3, 1).
Exercise 1: Solve the system by (a) graphing, (b) elimination, and (c) substitution. Which method was most efficient for solving this system?
e
2x y 2 4x 3y 8
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 8 Graph each of the following. Include x- and y-intercepts and other important features of each graph. 1. y 23x 2 2. f 1x2 x 2 3 3. g1x2 1x 3 1
4. h1x2
5. g1x2 1x 321x 12 1x 42
1 2 x1
6. y 2x 3
7. y 2 sin ax
b 4
b 2 9 x2 . Give the coordinates of all 9. Graph h1x2 2 x 4 intercepts and the equation of all asymptotes. 8. y tan a2x
10. Chance’s skill at bowling is slowly improving with practice. In February his average score was 102, but by May he had raised his average to 126. Assuming the relationship is linear, (a) find the equation of the line, (b) explain what the slope of the line means in this context, and (c) predict the month when Chance’s average score will exceed 151. y 11. Determine the following for 5 4 (0, 3.5) the graph shown to the right. 3 2 Use interval notation as 1 appropriate. 6 54321 1 2 3 1 a. domain 2 3 b. range 4 5 c. interval(s) where f (x) is increasing or decreasing d. interval(s) where f (x) is constant e. location of any maximum or minimum value(s) f. interval(s) where f (x) is positive or negative g. the average rate of change using 14, 02 and 12, 3.52. 1
4 x
12. Suppose the cost of making a rubber ball is given by C1x2 3x 10, where x is the number of balls in hundreds. If the revenue from the sale of these balls is given by R1x2 x2 123x 1990, find the profit function 1Profit Revenue Cost2. How many balls should be produced and sold to obtain the maximum profit? What is this maximum profit? 13. Solve each equation. a. 1x 2 13x 4 3 b. x2 8 0 c. 2n 4 3 13 d. x2 6x 13 0 e. x2 3x1 40 0 f. 4 # 2x1 18 g. 3x2 7 h. log3 81 x i. log3x log3 1x 22 1
Given f 1x2 2x 5 and g1x2 3x2 2x find: 14. Solve each equation in 30, 22. a. 2 sin12x2 13 2 13 b. 3 tanax b 7 13 4 13 4 15. Solve using a special triangle. a 20, b __, c __ A 30°, B __, C 90°
20 m
30
A
16. Solve using trigonometric ratios (round to tenths). a __, b __, c 82 A __, B 63°, C 90° A
B
C B 63 82 ft
C
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17. State the three Pythagorean identities.
26.
B
18. Find in Quadrant IV given r 32°. 19. State the value of all six trig functions given 3 tan with cos 7 0. 4 20. Verify the following is an identity: 1 sec2 tan4 1 csc2 21. Find the average rate of change in the interval [1.1, 1.2] for f1x2 x2 3x. 22. Use the rational roots theorem to factor the polynomial completely: x4 6x3 13x2 24x 36. Solve each inequality. Write your answer using interval notation. 23. x2 3x 10 6 0 x2 3 24. x3 Solve each triangle using either the law of sines or the law of cosines, whichever is appropriate. 25. A 41
B
19 in. 112
C
31 cm C 33 A
52 cm
Solve each system using elimination. 27. e
4x 3y 13 9x 5y 6
x 2y z 0 28. • 2x 5y 4z 6 x 3y 4z 5 29. A 900-lb crate is sitting on a ramp that has a 28° incline. Find the force needed to hold the crate stationary.
900
lb
21 G
30. A jet plane is flying at 750 mph on a heading of 30°. There is a strong, 50 mph wind blowing from due south (heading 0°). What is the true course and speed of the plane (relative to the ground)?
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9 CHAPTER CONNECTIONS
Matrices and Matrix Applications CHAPTER OUTLINE 9.1 Solving Linear Systems Using Matrices and Row Operations 848 9.2 The Algebra of Matrices 859 9.3 Solving Linear Systems Using Matrix Equations 872 9.4 Applications of Matrices and Determinants: Cramer’s Rule, Partial Fractions, and More 886
From pediatric and geriatric care, to the training of a modern athlete, dietetic applications have become increasingly effective. In the latter case, athletes generally need high levels of carbohydrates and protein, but only moderate levels of fat. Suppose a physical trainer wants to supply one of her clients with 24 g of fat, 244 g of “carbs,” and 40 g of protein for the noontime meal. Knowing the amount of these nutrients contained in certain foods, the trainer can recommend a variety of foods and the amount of each that should be eaten. The matrix operations in this chapter demonstrate how to do this effectively. This application occurs as Exercise 78 in Section 9.3. Check out these other real-world connections:
Calculating Contract Totals for Home Improvement Jobs (Section 9.2, Exercise 61) Calculating Appropriate Resource Allocation (Section 9.3, Exercise 71) Applying the Mean Value Principle of Physics and Thermal Conductivity (Section 9.3, Exercise 73) Calculating Area of Norman Windows (Section 9.4, Exercise 49) 847
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9.1 Solving Linear Systems Using Matrices and Row Operations Learning Objectives
Just as synthetic division streamlines the process of polynomial division, matrices and row operations streamline the process of solving systems using elimination. With the equations of the system in standard form, the location of the variable terms and constant terms are set, and we simply apply the elimination process on the coefficients and constants.
In Section 9.1 you will learn how to:
A. State the size of a matrix and identify its entries
B. Form the augmented
A. Introduction to Matrices
matrix of a system of equations
C. Solve a system of equations using row operations
D. Recognize inconsistent and dependent systems
E. Solve applications using linear systems
EXAMPLE 1A
In general terms, a matrix is simply a rectangular arrangement of numbers, called the entries of the matrix. Matrices (plural of matrix) are denoted by enclosing the entries between a left and right bracket, and named using a capital letter, such as 2 1 3 1 3 2 A c d and B £ 4 6 2 § . They occur in many different sizes 5 1 1 1 0 1 as defined by the number of rows and columns each has, with the number of rows always given first. Matrix A is said to be a 2 3 (two by three) matrix, since it has two rows and three columns. Matrix B is a 3 3 (three by three) matrix.
Identifying the Size and Entries of a Matrix Determine the size of each matrix and identify the entry located in the second row and first column. 3 2 0.2 0.5 0.7 3.3 a. C £ 1 b. D £ 0.4 5 § 0.3 1 2 § 4 3 2.1 0.1 0.6 4.1
Solution
a. Matrix C is 3 2. The row 2, column 1 entry is 1. b. Matrix D is 3 4. The row 2, column 1 entry is 0.4. If a matrix has the same number of rows and columns, it’s called a square matrix. Matrix B above is a square matrix, while matrix A is not. For square matrices, the values on a diagonal line from the upper left to the lower right are called the diagonal entries and are said to be on the diagonal of the matrix. When solving systems using matrices, much of our focus is on these diagonal entries.
EXAMPLE 1B
Identifying the Diagonal Entries of a Square Matrix Name the diagonal entries of each matrix. 0.2 1 4 d a. E c b. F £ 0.4 2 3 2.1
Solution
A. You’ve just learned how to state the size of a matrix and identify its entries
0.5 0.3 0.1
0.7 1 § 0.6
a. The diagonal entries of matrix E are 1 and 3. b. For matrix F, the diagonal entries are 0.2, 0.3, and 0.6. Now try Exercises 7 through 9
B. The Augmented Matrix of a System of Equations A system of equations can be written in matrix form by augmenting or joining the coefficient matrix, formed by the variable coefficients, with the matrix of constants. 848
9-2
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849
2x 3y z 1 2 3 1 The coefficient matrix for the system • x 0 1 § with z 2 is £ 1 1 3 4 x 3y 4z 5 column 1 for the coefficients of x, column 2 for the coefficients of y, and so on. The 1 matrix of constants is £ 2 § . These two are joined to form the augmented matrix, 5 2 3 1 1 with a dotted line often used to separate the two as shown here: £ 1 0 1 2§. 1 3 4 5 It’s important to note the use of a zero placeholder for the y-variable in the second row of the matrix, signifying there is no y-variable in the corresponding equation. EXAMPLE 2
Solution
Forming Augmented Matrices Form the augmented matrix for each system, and name the diagonal entries of each coefficient matrix. 1 y 7 x 4y z 10 2x 2x y 11 a. e b. • 2x 5y 8z 4 c. • x 23y 56z 11 12 x 3y 2 x 2y 3z 7 2y z 3 1 11 2x y 11 ¡ 2 c d a. e 1 3 2 x 3y 2 Diagonal entries: 2 and 3. 1 x 4y z 10 ¡ £2 b. • 2x 5y 8z 4 1 x 2y 3z 7
4 5 2
1 8 3
10 4 § 7
1
0
7
2 3
5 6
11 12
2
1
3
Diagonal entries: 1, 5, and 3. c. • x 1 2x
1 y 7 2 2 5 11 ¡ £1 3 y 6 z 12 2y z 3 0
§
Diagonal entries: 12, 23, and 1. Now try Exercises 10 through 12
This process can easily be reversed to write a system of equations from a given augmented matrix. EXAMPLE 3
Writing the System Corresponding to an Augmented Matrix Write the system of equations corresponding to each matrix. 1 4 1 10 3 5 14 a. c d b. £ 0 3 10 7 § 0 1 4 0 0 1 1
Solution
B. You’ve just learned how to form the augmented matrix of a system of equations
a. c
3 0 1 b. £ 0 0
5 1 4 3 0
14 ¡ 3x 5y 14 e d 0x 1y 4 4 1 10 1x 4y 1z 10 ¡ 10 7 § • 0x 3y 10z 7 1 1 0x 0y 1z 1 Now try Exercises 13 through 18
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C. Solving a System Using Matrices When a system of equations is written in augmented matrix form, we can solve the system by applying the same operations to each row of the matrix, that would be applied to the equations in the system. In this context, the operations are referred to as elementary row operations.
Elementary Row Operations 1. Any two rows in a matrix can be interchanged. 2. The elements of any row can be multiplied by a nonzero constant. 3. Any two rows can be added together, and the sum used to replace one of the rows.
In this section, we’ll use these operations to triangularize the augmented matrix, employing a solution method known as Gaussian elimination. A matrix is said to be in triangular form when all of the entries below the diagonal are zero. For example, 1 4 1 10 1 4 1 10 7 § is in triangular form: £ 0 3 10 7 §. the matrix £ 0 3 10 0 0 1 1 0 0 1 1 x 4y z 10 In system form we have • 3y 10z 7 , meaning a matrix written in trianz 1 gular form can be used to solve the system using back-substitution. We’ll illustrate by 1x 4y 1z 4 solving • 2x 5y 8z 15, using elimination to the left, and row operations on the 1x 3y 3z 1 augmented matrix to the right. As before, R1 represents the first equation in the system and the first row of the matrix, R2 represents equation 2 and row 2, and so on. The calculations involved are shown for the first stage only and are designed to offer a careful comparison. In actual practice, the format shown in Example 4 is used. Elimination (System of Equations) 1x 4y 1z 4 • 2x 5y 8z 15 1x 3y 3z 1
Row Operations (Augmented Matrix) 1 £2 1
1 8 3
4 5 3
4 15 § 1
To eliminate the x-term in R2, we use 2R1 R2 S R2. For R3 the operations would be 1R1 R3 S R3. Identical operations are performed on the matrix, which begins the process of triangularizing the matrix. System Form 2R1 R2 New R2
2x 8y 2z 8
1R1 R3 New R3
1x 4y 1z 4
2x 5y 8z 15 3y 10z 7
1x 3y 3z 1 1y 2z 3
Matrix Form 2R1 R2 New R2
2
1R1 R3 New R3
1
8
2
8
2 5 8 0 3 10
15 7
4
1
4
1 3 3 1 0 1 2 3
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As always, we should look for opportunities to simplify any equation in the system (and any row in the matrix). Note that 1R3 will make the coefficients and related matrix entries positive. Here is the new system and matrix. New System •
1x
New Matrix
4y 1z 4 3y 10z 7 1y 2z 3
1 £0 0
1 10 2
4 3 1
4 7§ 3
On the left, we would finish by solving the 2 2 subsystem using R2 3R3 S R3. In matrix form, we eliminate the corresponding entry (third row, second column) to triangularize the matrix. 1 £0 0 WORTHY OF NOTE The procedure outlined for solving systems using matrices is virtually identical to that for solving systems by elimination. Using a 3 3 system for illustration, the “zeroes below the first diagonal entry” indicates we’ve eliminated the x-term from R2 and R3, the “zeroes below the second entry” indicates we’ve eliminated the y-term from the subsystem, and the division “to obtain a ‘1’ in the final entry” indicates we have just solved for z.
EXAMPLE 4
4 3 1
1 10 2
4 1 R2 3R3 S R3 7 § ¬¬¬¬¡ £0 3 0
1 10 16
4 3 0
4 7§ 16
Dividing R3 by 16 gives z 1 in the system, and entries of 0 0 1 1 in the augmented matrix. Completing the solution by back-substitution in the system gives the ordered triple (1, 1, 1). See Exercises 19 through 27. The general solution process is summarized here. Solving Systems by Triangularizing the Augmented Matrix 1. 2. 3. 4. 5.
Write the system as an augmented matrix. Use row operations to obtain zeroes below the first diagonal entry. Use row operations to obtain zeroes below the second diagonal entry. Continue until the matrix is triangularized (entries below diagonal are zero). Divide to obtain a “1” in the last diagonal entry (if it is nonzero), then convert to equation form and solve using back-substitution.
Note: At each stage, look for opportunities to simplify row entries using multiplication or division. Also, to begin the process any equation with an x-coefficient of 1 can be made R1 by interchanging the equations.
Solving Systems Using the Augmented Matrix 2x y 2z 7 Solve by triangularizing the augmented matrix: • x y z 1 2y z 3
Solution
2x y 2z 7 • x y z 1 2y z 3 1 £2 0
1 1 2
1 2 1
1 7 § 3
1 £0 0
1 1 2
1 4 1
1 5 § 3
matrix form S
2 £1 0
1 1 2
2 1 1
7 1 § 3
R1 4 R2
1 £2 0
1 1 2
1 2 1
1 7 § 3
2R1 R2 S R2
1 £0 0
1 1 2
1 4 1
1 5 § 3
1R2 S R2
1 £0 0
1 1 2
1 4 1
1 5 § 3
2R2 R3 S R3
1 £0 0
1 1 0
1 4 7
1 5 § 7
R3 S R3 7
1 £0 0
1 1 0
1 4 1
1 5 § 1
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x y z 1 y 4z 5 . Converting the augmented matrix back into equation form yields • z1 Back-substitution shows the solution is 13, 1, 12. Now try Exercises 28 through 32
C. You’ve just learned how to solve a system of equations using row operations
EXAMPLE 5
The process used in Example 4 is also called Gaussian elimination (Carl Friedrich Gauss, 1777–1855), with the last matrix written in row-echelon form. It’s possible to solve a system entirely using only the augmented matrix, by continuing to use row operations until the diagonal entries are 1’s, with 0’s for all other entries: 1 0 0 a £ 0 1 0 b § . The process is then called Gauss-Jordan elimination (Wilhelm 0 0 1 c Jordan, 1842–1899), with the final matrix written in reduced row-echelon form (see Appendix II). Note that with Gauss-Jordan elimination, our initial focus is less on getting 1’s along the diagonal, and more on obtaining zeroes for all entries other than the diagonal entries. This will enable us to work with integer values in the solution process.
Solving a System Using Gauss-Jordan Elimination 2x 5z 15 2y Solve using Gauss-Jordan elimination • 2x 3y 1 z. 4y z 7 standard form
Solution
2x 2y 5z 15 • 2x 3y 1z 1 0x 4y 1z 7 2 2 5 £ 0 5 6 0 4 1 10 £0 0
0 5 0
matrix form S
2 2 5 £ 2 3 1 0 4 1
15 2R2 5R1 S R1 10 16 § £0 7 4R2 5R3 S R3 0
0 5 0
13 6 29
10 £0 0
0 5 0
0 0 1
13 43 6 16 § 1 1
13R3 R1 S R1 6R3 R2 S R2
15 1 § 7
R1 R2 S R2
43 16 § 29
R3 S R3 29
30 10 § 1
R1 S R1 10 R2 S R2 5
2 2 5 £ 0 5 6 0 4 1
15 16 § 7
10 £0 0
43 16 § 1
1 £0 0
0 5 0 0 1 0
13 6 1 0 0 1
3 2 § 1
The final matrix shows the solution is (3, 2, 1). Now try Exercises 33 through 36
D. Inconsistent and Dependent Systems Due to the strong link between a linear system and its augmented matrix, inconsistent and dependent systems can be recognized just as in Sections 5.1 and 5.2. An inconsistent system will yield an inconsistent or contradictory statement such as 0 12, meaning all entries in a row of the matrix of coefficients are zero, but the constant is not. A linearly dependent system will yield an identity statement such as 0 0, meaning all entries in one row of the matrix are zero. If the system has coincident dependence, there will be only one nonzero row of coefficients.
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EXAMPLE 6
Solution
x y 5z 3 2z 1 Solve the system using Gauss-Jordan elimination: • x 2x y z 0 Solving a Dependent System
x y 5z 3 • x 2z 1 2x y z 0 1 1 £ 1 0 2 1
5 2 1
3 1 § 0
standard form S
R1 R2 S R2 2R1 R3 S R3
x y 5z 3 • x 0y 2z 1 2x y z 0 1 £0 0
1 5 1 3 3 9
3 2 § 6
matrix form S
1R2 R1 S R1 3R2 R3 S R3
5 2 1
1 1 £ 1 0 2 1 1 £0 0
0 2 1 3 0 0
3 1 § 0
1 2§ 0
Since all entries in the last row are zeroes and it’s the only row of zeroes, we conclude the system is x 2z 1 linearly dependent and equivalent to e . As in Chapter 5, we demonstrate this dependence y 3z 2 by writing the (x, y, z) solution in terms of a parameter. Solving for y in R2 gives y in terms of z: y 3z 2. Solving for x in R1 gives x in terms of z: x 2z 1. As written, the solutions all depend on z: x 2z 1, y 3z 2, and z z. Selecting p as the parameter (or some other “neutral” variable), we write the solution as 12p 1, 3p 2, p2. Two of the infinite number of solutions would be (1, 2, 0) for p 0, and 11, 1, 12 for p 1. Test these triples in the original equations. Now try Exercises 37 through 45 D. You’ve just learned how to recognize inconsistent and dependent systems
E. Solving Applications Using Matrices As in other areas, solving applications using systems relies heavily on the ability to mathematically model information given verbally or in context. As you work through the exercises, read each problem carefully. Look for relationships that yield a system of two equations in two variables, three equations in three variables and so on.
EXAMPLE 7
Determining the Original Value of Collector’s Items A museum purchases a famous painting, a ruby tiara, and a rare coin for its collection, spending a total of $30,000. One year later, the painting has tripled in value, while the tiara and the coin have doubled in value. The items now have a total value of $75,000. Find the purchase price of each if the original price of the painting was $1000 more than twice the coin.
Solution
Let P represent the price of the painting, T the tiara, and C the coin. Total spent was $30,000: S P T C 30,000 One year later: S 3P 2T 2C 75,000 Value of painting versus coin: S P 2C 1000
P T C 30000 1P 1T 1C 30000 • 3P 2T 2C 75000 standard form S • 3P 2T 2C 75000 P 2C 1000 1P 0T 2C 1000
matrix form S
1 £3 1
1 2 0
1 2 2
30000 75000 § 1000
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1 £3 1 1 £0 0
1 2 0 1 1 1
1 2 2
30000 75000 § 1000
1 1 3
30000 15000 § 29000
3R1 R2 S R2 1R1 R3 S R3
1R2 R3 S R3
1 £0 0
1 1 1
1 £0 0
1 1 0
1 1 3 1 1 2
30000 15000 § 29000
30000 15000 § 14000
1R2 S R2 1R3 S R3 R3 S R3 2
1 £0 0
1 1 1
1 1 3
30000 15000 § 29000
1 £0 0
1 1 0
1 1 1
30000 15000 § 7000
From R3 of the triangularized form, C $7000 directly. Since R2 represents T C 15,000, we find the tiara was purchased for T $8000. Substituting these values into the first equation shows the painting was purchased for $15,000. The solution is (15,000, 8000, 7000). Now try Exercises 48 through 55
E. You’ve just learned how to solve applications using linear systems
TECHNOLOGY HIGHLIGHT
Solving Systems Using Matrices and Calculating Technology Graphing calculators offer a very efficient way to solve systems using matrices. Once the system has been written in matrix form, it can easily be entered and solved by asking the calculator to instantly perform the Xⴚ1 (MATRIX) gives a screen similar to the one shown in Figure 9.1, row operations needed. Pressing 2nd where we begin by selecting the EDIT option (push the right arrow twice). Pressing ENTER places you on a screen where you can EDIT matrix A, changing the size as needed. Using the 3 4 matrix from Example 4, we press 3 and ENTER , then 4 and ENTER , giving the screen shown in Figure 9.2. The dash marks to the right indicate that there is a fourth column that cannot be seen, but that comes into view as you enter the elements of the matrix. Begin entering the first row of the matrix resulting from R1 4 R2, which has entries {1, 1, 1, 1}. Press ENTER after each entry and the cursor automatically goes to the next position in the matrix (note that the TI-84 Plus automatically shifts left and right to allow all four columns to be entered). After entering the second row {2, 1, 2, 7} and the third row {0, 2, 1, 3}, the completed matrix should look like the one shown in Figure 9.3 (the matrix is currently shifted to the right, showing the fourth column). To write this matrix in reduced row-echelon form (rref) MODE (QUIT). Press the CLEAR key for a clean home we return to the home screen by pressing 2nd ⴚ1
X screen. To access the rref function, press 2nd (MATRIX) and select the MATH option, then scroll upward (or downward) until you get to B:rref. Pressing ENTER places this function on the home Xⴚ1 (MATRIX) screen, where we must tell it to perform the rref operation on matrix [A]. Press 2nd to select a matrix (notice that matrix NAMES is automatically highlighted. Press ENTER to select matrix
Figure 9.1
Figure 9.2
Figure 9.3
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[A] as the object of the rref function. After pressing ENTER the calculator quickly computes the reduced row-echelon form and displays it on the screen as in Figure 9.4. The solution is easily read as x 3, y 1, and z 1, as we found in Example 4. Use these ideas to complete the following.
Exercise 1:
855
Figure 9.4
Use this method to solve the 2 2 system from Exercise 30.
Exercise 2: Use this method to solve the 3 3 system from Exercise 32.
9.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. A matrix with the same number of rows and columns is called a(n) matrix. 2. When the coefficient matrix is used with the matrix of constants, the result is a(n) matrix. 2 4 3 by d is a 1 2 1 matrix. The entry in the second row and third column is .
3. Matrix A c
4. Given matrix B shown here, the diagonal entries are , , and . 1 4 3 B £ 1 5 2§ 3 2 1 5. The notation 2R1 R2 S R2 indicates that an equivalent matrix is formed by performing what operations/replacements? 6. Describe how to tell an inconsistent system apart from a dependent system when solving using matrix methods (row reduction).
DEVELOPING YOUR SKILLS
Determine the size (order) of each matrix and identify the third row and second column entry. If the matrix given is a square matrix, identify the diagonal entries.
1 7. £ 2.1 3 1 1 9. ≥ 5 2
0 1 § 5.8 0 3 1 3
1 8. £ 1 5 4 7 ¥ 2 9
0 3 1
4 7 § 2
Form the augmented matrix, then name the diagonal entries of the coefficient matrix.
2x 3y 2z 7 10. • x y 2z 5 3x 2y z 11 x 2y z 1 11. • x z3 2x y z 3 2x 3y z 5 12. • 2y z 7 x y 2z 5
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Write the system of equations for each matrix. Then use back-substitution to find its solution.
13. c
1 0
4 1
d
5 1 2
1 14. c 0
5 1
1 15. £ 0 0
2 1 0
1 2 1
0 2§ 3
1 16. £ 0 0
0 1 0
7 5 1
5 15 § 26
1 17. £ 0 0
3 1 0
4 32 1
29
1 18. £ 0 0
2 1 0
1
3
15 d 2
21 2
3
§
2 3 § 22 7
1 6
1
Perform the indicated row operation(s) and write the new matrix.
19. c
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CHAPTER 9 Matrices and Matrix Applications
3 2
1 2
5
7 20. c 4
1 2R1 S R1, d 5R1 R2 S R2 4 3 14R2 S R2, d 12 R1 4 R2
4 8
2 21. £ 5 1
1 8 3
3 22. £ 1 4
2 1 1
0 2 3
0 6 § R1 4 R2, 2 4R1 R3 S R3
3 23. £ 6 4
1 1 2
1 1 3
8 10 § 2R1 R2 S R2, 22 4R1 3R3 S R3
2 24. £ 3 4
1 1 3
0 3 3
1 1 2
4 5 § R1 4 R3, 5R1 R2 S R2 2
3 0 § 3R1 2R2 S R2, 2R1 R3 S R3 3
What row operations would produce zeroes beneath the first entry in the diagonal?
1 25. £ 2 3
3 4 1
0 1 2
2 1§ 9
1 26. £ 3 5
1 0 3
4 1 2
3 5 § 3
1 27. £ 5 4
2 1 3
0 2 3
10 6 § 2
Solve each system by triangularizing the augmented matrix and using back-substitution. Simplify by clearing fractions or decimals before beginning.
28. e
2y 5x 4 5x 2 4y
29. e
0.15g 0.35h 0.5 0.12g 0.25h 0.1
30. e
15u 14v 1 1 1 10 u 2 v 7
x 2y 2z 7 31. • 2x 2y z 5 3x y z 6
2x 3y 2z 7 32. • x y 2z 5 3x 2y z 11
x 2y z 1 33. • x z3 2x y z 3
34. •
x y 2z 2 35. • x y z 1 2x y z 4
x y 2z 1 36. • 4x y 3z 3 3x 2y z 4
2x 3y z 5 2y z 7 x y 2z 5
Solve each system by triangularizing the augmented matrix and using back-substitution. If the system is linearly dependent, give the solution in terms of a parameter. If the system has coincident dependence, answer in set notation as in Chapter 5.
4x 8y 8z 24 37. • 2x 6y 3z 13 3x 4y z 11 3x y z 2 38. • x 2y 3z 1 2x 3y 5z 3 x 3y 5z 20 39. • 2x 3y 4z 16 x 2y 3z 12 x 2y 3z 6 40. • x y 2z 4 3x 6y 9z 18
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3x 4y 2z 2 41. • 23x 2y z 1 6x 8y 4z 4
x 2y z 4 44. • 3x 4y z 4 6x 8y 2z 8
2x y 3z 1 42. • 4x 2y 6z 2 10x 5y 15z 5
2x 4y 3z 4 45. • 5x 6y 7z 12 x 2y z 4
43. •
2x y 3z 1 2y 6z 2 x 12y 32z 5
WORKING WITH FORMULAS
Area of a triangle in the plane: 1 A 1x1 y2 x2 y1 x2 y3 x3 y2 x3 y1 x1 y3 2 2 The area of a triangle in the plane is given by the formula shown, where the vertices of the triangle are located at the points (x1, y1), (x2, y2), and (x3, y3), and the sign is chosen to ensure a positive value.
857
46. Find the area of a triangle whose vertices are 11, 32, (5, 2), and (1, 8). 47. Find the area of a triangle whose vertices are 16, 22, 15, 42 , and 11, 72.
APPLICATIONS
Model each problem using a system of linear equations. Then solve using the augmented matrix. Descriptive Translation
48. The distance (via air travel) from Los Angeles (LA), California, to Saint Louis (STL), Missouri, to Cincinnati (CIN), Ohio, to New York City (NYC), New York, is approximately 2480 mi. Find the distances between each city if the distance from LA to STL is 50 mi more than five times the distance between STL and CIN and 110 mi less than three times the distance from CIN to NYC.
New York City St. Louis
Cincinnati
Los Angeles
title game and the Heat won by 3 points, what was the final score? 50. Moe is lecturing Larry and Curly once again (Moe, Larry, and Curly of The Three Stooges fame) claiming he is twice as smart as Larry and three times as smart as Curly. If he is correct and the sum of their IQs is 165, what is the IQ of each stooge? 51. A collector of rare books buys a handwritten, autographed copy of Edgar Allan Poe’s Annabel Lee, an original advance copy of L. Frank Baum’s The Wonderful Wizard of Oz, and a first print copy of The Caine Mutiny by Herman Wouk, paying a total of $100,000. Find the cost of each one, given that the cost of Annabel Lee and twice the cost of The Caine Mutiny sum to the price paid for The Wonderful Wizard of Oz, and The Caine Mutiny cost twice as much as Annabel Lee. Geometry
49. In the 2006 NBA Championship Series, Dwayne Wade of the Miami Heat carried his team to the title after the first two games were lost to the Dallas Mavericks. If 187 points were scored in the
52. A right triangle has a hypotenuse of 39 m. If the perimeter is 90 m, and the longer leg is 6 m longer than twice the shorter leg, find the dimensions of the triangle.
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53. In triangle ABC, the sum of angles A and C is equal to three times angle B. Angle C is 10 degrees more than twice angle B. Find the measure of each angle. Investment and Finance
54. Suppose $10,000 is invested in three different investment vehicles paying 5%, 7%, and 9% annual interest. Find the amount invested at each rate if the interest earned after 1 yr is $760 and the amount invested at 9% is equal to the sum of the amounts invested at 5% and 7%.
55. The trustee of a union’s pension fund has invested the funds in three ways: a savings fund paying 4% annual interest, a money market fund paying 7%, and government bonds paying 8%. Find the amount invested in each if the interest earned after one year is $0.178 million and the amount in government bonds is $0.3 million more than twice the amount in money market funds. The total amount invested is $2.5 million dollars.
EXTENDING THE CONCEPT
56. In previous sections, we noted that one condition for a 3 3 system to be dependent was for the third equation to be a linear combination of the other two. To test this, write any two (different) equations using the same three variables, then form a third equation by performing some combination of elementary row operations. Solve the resulting 3 3 system. What do you notice? 57. Given the drawing shown, use a system of equations and the matrix method to find the measure of the angles labeled as x and y. Recall that vertical angles
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CHAPTER 9 Matrices and Matrix Applications
are equal and that the sum of the angles in a triangle is 180°. 71 y
x
(x 59)
58. The system given here has a solution of 11, 2, 32. Find the value of a and b. 1 £ 2b 2a
a 2a 7
b 5 3b
1 13 § 8
MAINTAINING YOUR SKILLS
59. (7.5) a. Convert z1 1 3i to trigonometric form. 2 b. Convert z2 5 cisa b to rectangular 3 form. 60. (5.4) State the exact value of the following trig functions: 5 a. sina b b. cosa b 6 4 2 3 c. tana b d. csca b 3 2 61. (4.4) Since 2005, cable installations for an Internet company have been modeled by the function C1t2 15 ln 1t 12 , where C(t) represents cable installations in thousands, t yr after 2005. In what
year will the number of installations be greater than 30,000? 62. (4.5) If a set amount of money p is deposited regularly (daily, weekly, monthly, etc.) n times per year at a fixed interest rate r, the amount of money A accumulated in t years is given by the formula shown. If a parent deposits $250 per month for 18 yr at 4.6% beginning when her first child was born, how much has been accumulated to help pay for college expenses? r nt p c a1 b 1 d n A r n
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9.2 The Algebra of Matrices Learning Objectives
Matrices serve a much wider purpose than just a convenient method for solving systems. To understand their broader application, we need to know more about matrix theory, the various ways matrices can be combined, and some of their more practical uses. The common operations of addition, subtraction, multiplication, and division are all defined for matrices, as are other operations. Practical applications of matrix theory can be found in the social sciences, inventory management, genetics, operations research, engineering, and many other fields.
In Section 9.2 you will learn how to:
A. Determine if two matrices are equal
B. Add and subtract matrices
C. Compute the product of two matrices
A. Equality of Matrices To effectively study matrix algebra, we first give matrices a more general definition. For the general matrix A, all entries will be denoted using the lowercase letter “a,” with their position in the matrix designated by the dual subscript aij. The letter “i ” gives the row and the letter “j ” gives the column of the entry’s location. The general m n matrix A is written col 1 row 1 S a11 row 2 S l a21 a31 row 3 S row i S row m S
p
col 2 a12 a22 a32
col 3 a13 a23 a33
p p p
col j a1j a2j a3j
p p p
o ai1
o ai2
o ai3
p
o aij
p
am1
o am2
o am3
p
o amj
p
z o
col n a1n a2n } a3n o p ain
aij is a general matrix element
o { amn
The size of a matrix is also referred to as its order, and we say the order of general matrix A is m n. Note that diagonal entries have the same row and column number, aij, where i j. Also, where the general entry of matrix A is aij, the general entry of matrix B is bij, of matrix C is cij, and so on. EXAMPLE 1
Identifying the Order and Entries of a Matrix State the order of each matrix and name the entries corresponding to a22, a31; b22, b31; and c22, c31. a. A c
Solution
1 2
4 d 3
3 b. B £ 1 4
2 5 § 3
0.2 c. C £ 1 2.1
0.5 0.3 0.1
0.7 1 § 0.6
a. matrix A: order 2 2. Entry a22 3 (the row 2, column 2 entry is 3). There is no a31 entry (A is only 2 2). b. matrix B: order 3 2. Entry b22 5, entry b31 4. c. matrix C: order 3 3. Entry c22 0.3, entry c31 2.1. Now try Exercises 7 through 12
Equality of Matrices Two matrices are equal if they have the same order and their corresponding entries are equal. In symbols, this means that A B if aij bij for all i and j.
9-13
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EXAMPLE 2
Solution
A. You’ve just learned how to determine if two matrices are equal
Determining If Two Matrices Are Equal Determine whether the following statements are true, false, or conditional. If false, explain why. If conditional, find values that will make the statement true. 3 2 3 2 1 4 3 2 1 a. c b. £ 1 d d c 5 § c d 2 3 4 1 5 4 3 4 3 1 4 a 2 2b d c d c. c 2 3 c 3 1 4 3 2 a. c d c d is false. The matrices have the same order 2 3 4 1 and entries, but corresponding entries are not equal. 3 2 3 2 1 b. £ 1 5 § c d is false. Their orders are not equal. 5 4 3 4 3 1 4 a 2 2b d c d is conditional. The statement is true when c. c 2 3 c 3 a 2 1 1a 32, 2b 4 1b 22, c 2, and is false otherwise. Now try Exercises 13 through 16
B. Addition and Subtraction of Matrices A sum or difference of matrices is found by combining the corresponding entries. This limits the operations to matrices of like orders, so that every entry in one matrix has a “corresponding entry” in the other. This also means the result is a new matrix of like order, whose entries are the corresponding sums or differences. Note that since aij represents a general entry of matrix A, [aij] represents the entire matrix. Addition and Subtraction of Matrices Given matrices A, B, and C having like orders. The sum A B C, where 3aij bij 4 3cij 4. EXAMPLE 3
The difference A B D, where 3aij bij 4 3dij 4.
Adding and Subtracting Matrices Compute the sum or difference of the matrices indicated. 2 6 A £1 0 § 1 3 a. A C
Solution
2 a. A C £ 1 1
3 B c 5 b. A B
6 0 § 3 23 £ 11 1 142
2 4
1 d 3
3 C £ 1 4
2 5 § 3
c. C A
3 2 £ 1 5 § sum of A and C 4 3 6 122 5 4 05 § £ 2 5§ 3 3 3 0
add corresponding entries
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B. You’ve just learned how to add and subtract matrices
861
2 6 Addition and subtraction are not defined 3 2 1 b. A B £ 1 0 § c d for matrices of unlike order. 5 4 3 1 3 3 2 2 6 c. C A £ 1 5 § £1 0 § difference of C and A 4 3 1 3 32 2 6 1 8 £ 11 50 § £ 0 5 § subtract corresponding entries 4 1 3 132 5 6 Now try Exercises 17 through 20
Since the addition of two matrices is defined as the sum of corresponding entries, we find the properties of matrix addition closely resemble those of real number addition. Properties of Matrix Addition Given matrices A, B, C, and Z are m I. A B B A II. 1A B2 C A 1B C2 III. A Z Z A A IV. A 1A2 1A2 A Z
n matrices, with Z the zero matrix. Then, matrix addition is commutative matrix addition is associative Z is the additive identity A is the additive inverse of A
C. Matrices and Multiplication The algebraic terms 2a and ab have counterparts in matrix algebra. The product 2A represents a constant times a matrix and is called scalar multiplication. The product AB represents the product of two matrices.
Scalar Multiplication Scalar multiplication is defined by taking the product of the constant with each entry in the matrix, forming a new matrix of like size. In symbols, for any real number k and matrix A, kA 3 kaij 4. Similar to standard algebraic properties, A represents the scalar product 1 # A and any subtraction can be rewritten as an algebraic sum: A B A 1B2. As noted in the properties box, for any matrix A, the sum A 1A2 will yield the zero matrix Z, a matrix of like size whose entries are all zeroes. Also note that matrix A is the additive inverse for A, while Z is the additive identity. EXAMPLE 4
Computing Operations on Matrices 4 Given A £ 12 0
3 3 1 § and B £ 0 3 4
a. 12 B Solution
3 1 1 a. B a b £ 0 2 2 4 1 12 2 132 £ 1 12 2 102 1 12 2 142
2 6 § , compute the following: 0.4
b. 4A 12 B 2 6 § 0.4 3 1 12 2122 2 1 12 2162 § £ 0 1 12 2 10.42 2
1 3 § 0.2
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1 1 b. 4A B 4A a b B rewrite using algebraic addition 2 2 112 2 132 142 142 142132 112 2122 £ 142 1 12 2 142112 § £ 112 2 102 112 2162 § 1 142 102 142132 12 2 142 112 210.42 32 16 12 1 £ 2 4 § £ 0 3 § simplify 0 12 2 0.2 16 132 2 12 1 11 35 2 £ 2 0 4 132 § £ 2 7 § result 02 12 10.22 2 11.8 Now try Exercises 21 through 24
Matrix Multiplication Consider a cable company offering three different levels of Internet service: Bronze — fast, Silver—very fast, and Gold—lightning fast. Table 9.1 shows the number and types of programs sold to households and businesses for the week. Each program has an incentive package consisting of a rebate and a certain number of free weeks, as shown in Table 9.2. Table 9.1 Matrix A Bronze
Silver
Table 9.2 Matrix B Gold
Rebate
Free Weeks
Homes
40
20
25
Bronze
$15
2
Businesses
10
15
45
Silver
$25
4
Gold
$35
6
To compute the amount of rebate money the cable company paid to households for the week, we would take the first row (R1) in Table 9.1 and multiply by the corresponding entries (bronze with bronze, silver with silver, and so on) in the first column (C1) of Table 9.2 and add these products. In matrix form, we have 15 3 40 20 254 # £ 25 § 40 # 15 20 # 25 25 # 35 $1975. Using R1 of Table 9.1 35 with C2 from Table 9.2 gives the number of free weeks awarded to homes: 2 340 20 254 # £ 4 § 40 # 2 20 # 4 25 # 6 310. Using the second row (R2) of 6 Table 9.1 with the two columns from Table 9.2 will give the amount of rebate money and the number of free weeks, respectively, awarded to business customers. When all computations are complete, the result is a product matrix P with order 2 2. This is because the product of R1 from matrix A, with C1 from matrix B, gives the entry in 15 2 40 20 25 1975 310 # d £ 25 4 § c d. position P11 of the product matrix: c 10 15 45 2100 350 35 6 Likewise, the product R1 # C2 will give entry P12 (310), the product of R2 with C1
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will give P21 (2100), and so on. This “row column” multiplication can be generalized, and leads to the following. Given m n matrix A and s t matrix B, A 1m n2
c
B 1s t 2
A 1m n2
c
B 1s t 2
c
matrix multiplication is possible only when ns
c
result will be an m t matrix
In more formal terms, we have the following definition of matrix multiplication. Matrix Multiplication Given the m n matrix A 3aij 4 and the s t matrix B 3bij 4. If n s, then matrix multiplication is possible and the product AB is an m t matrix P 3pij 4, where pij is product of the ith row of A with the jth column of B. In less formal terms, matrix multiplication involves multiplying the row entries of the first matrix with the corresponding column entries of the second, and adding them together. In Example 5, two of the matrix products [parts (a) and (b)] are shown in full detail, with the first entry of the product matrix color-coded.
EXAMPLE 5
Multiplying Matrices Given the matrices A through E shown here, compute the following products: a. AB
A c
Solution
2 3
b. CD 1 d 4
B c
4 6
3 d 1
c. DC 2 1 C £ 1 0 4 1
1 4 3 2 d c dc 4 6 1 36 122142 112162 Computation: c 132 4 142 162
a. AB c
2 3
d. AE 3 2 § 1
2 D £4 0
5 d 13 122132 112 112 d 132132 142112
0 2 7 2 1 3 2 5 1 b. CD £ 1 0 2 § £ 4 1 1 § £ 2 11 3 § 12 16 7 4 1 1 0 3 2 122122 112142 (3)(0) Computation: £ 112 102142 122(0) 142 112142 112(0)
e. EA 5 1 2 1 1 § E £ 3 3 2 1 A B (2 2) (2 2)
c
A B (2 2) (2 2)
c
multiplication is possible since 2 2 C D (3 3) (3 3)
c
c
c result will be a 2 2 matrix
C D (3 3) (3 3)
c
multiplication is possible since 3 3
122 152 112112 (3)132 112 152 102 112 122 132 142 152 112 112 112 132
2 5 1 2 1 3 5 3 15 c. DC £ 4 1 1 § £ 1 0 2 § £ 5 5 9 § 0 3 2 4 1 1 5 2 8
c
1 0 § 2
c result will be a 3 3 matrix
122 112 112112 (3)122 112112 102112 122122 § 142112 112112 112122
D (3 3)
c
C (3 3)
D C (3 3) (3 3)
c
c
multiplication is possible since 3 3
c
result will be a 3 3 matrix
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d. AE c
2 3
2 EA £ 3 1
e.
2 1 d£ 3 4 1 1 2 0 §c 3 2
A (2 2)
1 0 § 2
c
E (3 2)
c
multiplication is not possible since 2 3
1 1 d £ 6 4 4
E (3 2)
6 3 § 9
c
A (2 2)
E A (3 2) (2 2)
c
c
multiplication is possible since 2 2
c
result will be a 3 2 matrix
Now try Exercises 25 through 36
Example 5 shows that in general, matrix multiplication is not commutative. Parts (b) and (c) show CD DC since we get different results, and parts (d) and (e) show AE EA, since AE is not defined while EA is. Operations on matrices can be a laborious process for larger matrices and for matrices with noninteger or large entries. For these, we can turn to available technology for assistance.This shifts our focus from a meticulous computation of entries, to carefully entering each matrix into the calculator, double-checking each entry, and appraising results to see if they’re reasonable.
EXAMPLE 6
Using Technology for Matrix Operations Use a calculator to compute the difference A B for the matrices given. 2 11
A £ 0.9 0 Solution
3 4
6
6 5
4 § 5 12
B £
1 6 11 25
4
7 10
0 5 9
0.75 5 § 5 12
The entries for matrix A are shown in Figure 9.5. After entering matrix B, exit to MODE (QUIT)], call up matrix A, press the ⴚ the home screen [ 2nd (subtract) key, then call up matrix B and press ENTER . The calculator quickly finds the difference and displays the results shown in Figure 9.6. The last line on the screen shows the result can be stored for future use in a new matrix C by pressing the STO key, calling up matrix C, and pressing ENTER . Figure 9.5
Figure 9.7
0.5
Figure 9.6
Now try Exercises 37 through 40
In Figure 9.6 the dots to the right on the calculator screen indicate there are additional digits or matrix columns that can’t fit on the display, as often happens with larger matrices or decimal numbers. Sometimes, converting entries to fraction form will provide a display that’s easier to read. Here, this is done by calling up the matrix C, and using the MATH 1: Frac option. After pressing ENTER , all entries are converted to fractions in simplest form (where possible), as in Figure 9.7. The third column can be viewed by pressing the right arrow.
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EXAMPLE 7
Using Technology for Matrix Operations Use a calculator to compute the product AB.
Solution
2 1 A ≥ 6 3
Carefully enter matrices A and B into the MODE (QUIT) calculator, then press 2nd to get to the home screen. Use [A][B] ENTER , and the calculator finds the product shown in the figure.
2 1 AB ≥ 6 3
3 5 0 2
0 1 2 4 ¥ £ 0.5 2 2 1
0.7 3.2 3 4
3 5 0 2
0 1 2 4 ¥ B £ 0.5 2 2 1
A (4 3)
c
0.7 3.2 3 4
B (3 3)
A (4 3)
c
c
multiplication is possible since 3 3
1 3 § 4 B (3 3)
c
result will be a 4 3 matrix
1 3 § 4
Now try Exercises 41 through 52
Properties of Matrix Multiplication Earlier, Example 5 demonstrated that matrix multiplication is not commutative. Here is a group of properties that do hold for matrices. You are asked to check these properties in the exercise set using various matrices. See Exercises 53 through 56. Properties of Matrix Multiplication Given matrices A, B, and C for which the products are defined: I. A1BC2 1AB2C II. A1B C2 AB AC
III. 1B C2A BA CA IV. k1A B2 kA kB
matrix multiplication is associative matrix multiplication is distributive from the left matrix multiplication is distributive from the right a constant k can be distributed over addition
We close this section with an application of matrix multiplication. There are many other interesting applications in the exercise set.
EXAMPLE 8
Using Matrix Multiplication to Track Volunteer Enlistments In a certain country, the number of males and females that will join the military depends on their age. This information is stored in matrix A (Table 9.3). The likelihood a volunteer will join a particular branch of the military also depends on their age, with this information stored in matrix B (Table 9.4). (a) Compute the product P AB and discuss/interpret what is indicated by the entries P11, P13, and P24 of the product matrix. (b) How many males are expected to join the Navy this year?
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Table 9.4 Matrix B
Table 9.3 Matrix A A
Solution
B
Age Groups
Likelihood of Joining
Sex
18–19
20–21
22–23
Age Group
Army
Navy
Air Force
Marines
Female
1000
1500
500
18–19
0.42
0.28
0.17
0.13
Male
2500
3000
2000
20–21
0.38
0.26
0.27
0.09
22–23
0.33
0.25
0.35
0.07
a. Matrix A has order 2 3 and matrix B has order 3 4. The product matrix P can be found and is a 2 4 matrix. Carefully enter the matrices in your calculator. Figure 9.8 shows the entries of matrix B. Using 3A 4 3 B4 ENTER , the calculator finds the product matrix shown in Figure 9.9. Pressing the right arrow shows the complete product matrix is P c
1155 2850
795 1980
750 1935
300 d. 735
The entry P11 is the product of R1 from A and C1 from B, and indicates that for the year, 1155 females are projected to join the Army. In like manner, entry P13 shows that 750 females are projected to join the Air Force. Entry P24 indicates that 735 males are projected to join the Marines. Figure 9.8
Figure 9.9
C. You’ve just learned how to compute the product of two matrices
b. The product R2 (males) # C2 (Navy) gives P22 1980, meaning 1980 males are expected to join the Navy. Now try Exercise 59 through 66
9.2 EXERCISES CONCEPTS AND VOCABULARY Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Two matrices are equal if they are like size and the corresponding entries are equal. In symbols, A B if . 2. The sum of two matrices (of like size) is found by adding the corresponding entries. In symbols, AB . 3. The product of a constant times a matrix is called multiplication.
4. The size of a matrix is also referred to as its 1 2 3 The order of A c . d is 4 5 6
.
5. Give two reasons why matrix multiplication is generally not commutative. Include several examples using matrices of various sizes. 6. Discuss the conditions under which matrix multiplication is defined. Include several examples using matrices of various sizes.
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867
DEVELOPING YOUR SKILLS
State the order of each matrix and name the entries in positions a12 and a23 if they exist. Then name the position aij of the 5 in each.
7. c
19 8. £ 11 § 5
3 d 7
1 5
3 5
2 9. c 0 2 11. £ 0 5
2 10. £ 0.1 0.3
0.5 d 6 7 1§ 4
1 8 1
89 12. £ 13 2
0.4 5§ 3 55 8 1
34 5 1
21 3§ 0
14 132
11 116
7 5 2 5
3 2 14. ≥ 1 2 2 15. £ 2b 0
3 5 9
18 1 d c 164 4 13 10 1.5 ¥ c 1 0.5 3
a c 4 § £6 3c 0
2p 1 16. £ 1 q5
5 12 9
2 12 d 8
2 4 12 1.4 0.4
1.3 d 0.3
4 a § 6
3 5 3b
5 3r 3p
9 7 0 § £ 1 2r 2
2q 0 § 8
For matrices A through H as given, perform the indicated operation(s), if possible. Do not use a calculator. If an operation cannot be completed, state why.
A c
2 5
2 C £ 0.2 1 1 E £0 4
2 B £ 1 § 3
3 d 8 0.5 5 § 3 2 1 3
0 2 § 6
1 D £0 0 6 F c 12
0 1 0 3 0
0 0§ 1 9 d 6
2 1 3
0 2 § 6
H c
3 d 2
8 5
17. A H
18. E G
19. F H
20. G D
21. 3H 2A
22. 2E 3G
23.
Determine if the following statements are true, false, or conditional. If false, explain why. If conditional, find values of a, b, c, p, q, and r that will make the statement true.
13. c
1 G £ 0 4
1 E 3D 2
2 24. F F 3
25. ED
26. DE
27. AH
28. HA
29. FD
30. FH
31. HF
32. EB
33. H 2
34. F 2
35. FE
36. EF
For matrices A through H as given, use a calculator to perform the indicated operation(s), if possible. If an operation cannot be completed, state why.
A c
5 3
C c
13 2
13 3
13
2 13
1 E £0 4 0
G
£ 1 2 1 4
4 d 9
2 1 3 3 4 3 8 11 16
B c d
1 0
1 D £0 0
0 d 1 0 1 0
0 0.52 2 § F c 1.021 6 1 4 1 8 § 1 16
3
H c 19 1 19
0 0§ 1 0.002 1.27
4 57 5 d 57
37. C H
38. A H
39. E G
40. G E
41. AH
42. HA
43. EG
44. GE
45. HB
46. BH
47. DG
48. GD
49. C
2
51. FG
50. E 2 52. AF
1.032 d 0.019
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For Exercises 53 through 56, use a calculator and matrices A, B, and C to verify each statement.
53. Matrix multiplication is not generally commutative: (a) AB BA, (b) AC CA, and (c) BC CB.
1 A £ 2 4
3 7 0
54. Matrix multiplication is distributive from the left: A1B C2 AB AC.
45 C £ 6 21
1 10 28
c
5 1 § 6
0.3 B £ 2.5 1
0.4 2 0.5
1.2 0.9 § 0.2
3 15 § 36
55. Matrix multiplication is distributive from the right: 1B C2A BA CA. 56. Matrix multiplication is associative: 1AB2C A1BC2.
WORKING WITH FORMULAS
2 W
2 d 0
#
c
L Perimeter d c d W Area
rectangles shown, then check the results using P 2L 2W and A LW. 57.
The perimeter and area of a rectangle can be simultaneously calculated using the matrix formula shown, where L represents the length and W represents the width of the rectangle. Use the matrix formula and your calculator to find the perimeter and area of the
6.374 cm
4.35 cm
58.
5.02 cm
3.75 cm
APPLICATIONS
59. Custom T’s designs and sells specialty T-shirts and sweatshirts, with plants in Verdi and Minsk. The company offers this apparel in three quality levels: standard, deluxe, and premium. Last fall the Verdi office produced 3820 standard, 2460 deluxe, and 1540 premium T-shirts, along with 1960 standard, 1240 deluxe, and 920 premium sweatshirts. The Minsk office produced 4220 standard, 2960 deluxe, and 1640 premium T-shirts, along with 2960 standard, 3240 deluxe, and 820 premium sweatshirts in the same time period. a. Write a 3 2 “production matrix” for each plant 3V S Verdi, M S Minsk], with a T-shirt column, a sweatshirt column, and three rows showing how many of the different types of apparel were manufactured. b. Use the matrices from Part (a) to determine how many more or less articles of clothing were produced by Minsk than Verdi. c. Use scalar multiplication to find how many shirts of each type will be made at Verdi and Minsk next fall, if each is expecting a 4% increase in business. d. What will be Custom T’s total production next fall (from both plants), for each type of apparel? 60. Terry’s Tire Store sells automobile and truck tires through three retail outlets. Sales at the Cahokia store for the months of January, February, and March
broke down as follows: 350, 420, and 530 auto tires and 220, 180, and 140 truck tires. The Shady Oak branch sold 430, 560, and 690 auto tires and 280, 320, and 220 truck tires during the same 3 months. Sales figures for the downtown store were 864, 980, and 1236 auto tires and 535, 542, and 332 truck tires. a. Write a 2 3 “sales matrix” for each store 3C S Cahokia, S S Shady Oak, D S Downtown], with January, February, and March columns, and two rows showing the sales of auto and truck tires respectively. b. Use the matrices from Part (a) to determine how many more or fewer tires of each type the downtown store sold (each month) over the other two stores combined. c. Market trends indicate that for the same three months in the following year, the Cahokia store will likely experience a 10% increase in sales, the Shady Oak store a 3% decrease, with sales at the downtown store remaining level (no change). What will be the combined monthly sales from all three stores next year, for each type of tire? 61. Home improvements: Dream-Makers Home Improvements specializes in replacement windows, replacement doors, and new siding. During the peak season, the number of contracts that came from various parts of the city (North, South, East, and West) are shown in matrix C. The average
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profit per contract is shown in matrix P. Compute the product PC and discuss what each entry of the product matrix represents. N Windows 9 Doors £ 7 Siding 2
S 6 5 3
E W 5 4 7 6§ C 5 2
Windows Doors 31500 500
Siding 2500 4 P
62. Classical music: Station 90.7—The Home of Classical Music —is having their annual fund drive. Being a loyal listener, Mitchell decides that for the next 3 days he will donate money according to his favorite composers, by the number of times their music comes on the air: $3 for every piece by Mozart (M ), $2.50 for every piece by Beethoven (B ), and $2 for every piece by Vivaldi (V ). This information is displayed in matrix D. The number of pieces he heard from each composer is displayed in matrix C. Compute the product DC and discuss what each entry of the product matrix represents. Mon. Tue. Wed. 3 5 2 4§ C 3 3 M B V 33 2.5 2 4 D
M 4 B £3 V 2
63. Pizza and salad: The science department and math department of a local college are at a pre-semester retreat, and decide to have pizza, salads, and soft drinks for lunch. The quantity of food ordered by each department is shown in matrix Q. The cost of the food item at each restaurant is shown in matrix C using the published prices from three popular restaurants: Pizza Home (PH), Papa Jeff’s (PJ), and Dynamos (D). a. What is the total cost to the math department if the food is ordered from Pizza Home? b. What is the total cost to the science department if the food is ordered from Papa Jeff’s? c. Compute the product QC and discuss the meaning of each entry in the product matrix. Pizza Science 8 c Math 10 PH Pizza 8 Salad £ 1.5 Drink 0.90
Salad 12 8 PJ 7.5 1.75 1
Drink 20 d Q 18 D 10 2 § C 0.75
869
64. Manufacturing pool tables: Cue Ball Incorporated makes three types of pool tables, for homes, commercial use, and professional use. The amount of time required to pack, load, and install each is summarized in matrix T, with all times in hours. The cost of these components in dollars per hour, is summarized in matrix C for two of its warehouses, one on the west coast and the other in the midwest. a. What is the cost to package, load, and install a commercial pool table from the coastal warehouse? b. What is the cost to package, load, and install a commercial pool table from the warehouse in the midwest? c. Compute the product TC and discuss the meaning of each entry in the product matrix. Pack Load Install Home 1 0.2 1.5 Comm £ 1.5 0.5 2.2 § T Prof 1.75 0.75 2.5 Coast Midwest Pack 10 8 Load £ 12 10.5 § C Install 13.5 12.5 65. Joining a club: Each school year, among the students planning to join a club, the likelihood a student joins a particular club depends on their class standing. This information is stored in matrix C. The number of males and females from each class that are projected to join a club each year is stored in matrix J. Compute the product JC and use the result to answer the following: a. Approximately how many females joined the chess club? b. Approximately how many males joined the writing club? c. What does the entry P13 of the product matrix tells us? Fresh Female 25 c Male 22 Spanish Fresh 0.6 Soph £ 0.5 Junior 0.4
Soph Junior 18 21 d J 19 18 Chess 0.1 0.2 0.2
Writing 0.3 0.3 § C 0.4
66. Designer shirts: The SweatShirt Shoppe sells three types of designs on its products: stenciled (S), embossed (E), and applique (A). The quantity of each size sold is shown in matrix Q. The retail price
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of each sweatshirt depends on its size and whether it was finished by hand or machine. Retail prices are shown in matrix C. Assuming all stock is sold, a. How much revenue was generated by the large sweatshirts? b. How much revenue was generated by the extralarge sweatshirts? c. What does the entry P11 of the product matrix QC tell us?
S med 30 large £ 60 x-large 50 Hand S 40 E £ 60 A 90
E 30 50 40
A 15 20 § Q 30
Machine 25 40 § C 60
EXTENDING THE CONCEPT
67. For the matrix A shown, use your calculator to compute A2, A3, A4, and A5. Do you notice a pattern? Try to write a “matrix formula” for An, where n is a positive integer, then use your formula to find A6. Check results using a calculator. 1 0 1 A £1 1 1§ 1 0 1 68. The matrix M c
2 3
1 d has some very 2
M 3, M 4, and M 5, then discuss what you find. Try to find/create another 2 2 matrix that has similar properties. 69. For the “matrix equation” 1 0 2 1 # a b d c d , use matrix c d c c d 0 1 3 2 multiplication and two systems of equations to find the entries a, b, c, and d that make the equation true.
interesting properties. Compute the powers M 2,
MAINTAINING YOUR SKILLS
70. (5.2) Solve the system using elimination. x 2y z 3 • 2x y 3z 5 5x 3y 2z 2
72. (7.6) Solve z4 81i 0 using the nth roots theorem. Leave your answer in trigonometric form. 73. (3.2) Find the quotient using synthetic division, then check using multiplication. x3 9x 10 x2
71. (6.5) Evaluate cos1cos10.32112 .
MID-CHAPTER CHECK State the size of each matrix and identify the entry in second row, third column. 0.4 1. A £ 0.2 0.7 2. c
2 4
1.1 0.1 0.4
1
1 2
3 4
0
5 d 3
0.2 0.9 § 0.8
Write each system in matrix form and solve using row operations to triangularize the matrix. If the system is linearly dependent, write the solution using a parameter. 3. e
2x 3y 5 5x 4y 2
x y 5z 23 4. • 2x 4y z 9 3x 5y z 1
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Section 9.2 The Algebra of Matrices
x y 3z 11 5. • 4x y 2z 4 3x 2y z 7 6. For matrices A and B given, compute: A c
3 5
2 10 d B c 4 30
a. A B
b.
15 d 5
2 B 5
c. 5A B
7. For matrices C and D given, use a calculator to find: 0.2 C £ 0.4 0.1
0 0.8 0.2
0.2 5 0 § D £ 2.5 0.1 10
1 a. C D 5
b. 0.6D
2.5 0 2.5
10 5 § 10
c. CD
A c
4 0
4 C c 1 a. AC
1 d 5 8 0
3 d 1
2 1 § 7
b. 2CD
2 D £ 1 1 c. BA
0 3 5
10. Matrix A shown gives the number and type of extended warranties sold to individual car owners and to business fleets. Matrix B shows the promotions offered to those making the purchase. Compute the product matrix P AB, and state what each entry of the product matrix represents. Matrix A
8. For the matrices A, B, C, and D given, compute the products indicated (if possible): 6 B £0 4
9. Create a system of equations to model this exercise, then write the system in matrix form and solve. The campus bookstore offers both new and used texts to students. In a recent biology class with 24 students, 14 bought used texts and 10 bought new texts, with the class as a whole paying $2370. Of the 6 premed students in class, 2 bought used texts, and 4 bought new texts, with the group paying a total of $660. How much does a used text cost? How much does a new text cost?
Extended Warranties
80,000 mi
100,000 mi
120,000 mi
Individuals
30
25
10
Businesses
20
12
5
Matrix B
6 0 § 4
d. CB 4A
Rebate
Free AAA Membership
80,000 mi
$50
1 yr
100,000 mi
$75
2 yr
120,000 mi
$100
3 yr
Promotions
REINFORCING BASIC CONCEPTS More on Matrix Multiplication To help understand and master the concept of matrix multiplication, it helps to take a closer look at the entries of the product matrix. Recall for the product AB P, the entry P11 in the product matrix is the result of multiplying the 1st row of A with the 1st column of B, the entry P12 is the result of multiplying 1st row of A, with the 2nd column of B, and so on. Exercise 1: The product of the 3rd row of A with the 2nd column of B, gives what entry in P? Exercise 2: The entry P13 is the result of what product? The entry P22 is the result of what product? Exercise 3: If P33 is the last entry of the product matrix, what are the possible sizes of A and B? 1 Exercise 4: Of the eight matrices shown here, only two produce the product matrix P £ 6 P shown. Use the ideas highlighted above 7 to determine which two.
2 2 § 7
3 A £2 4 2 C £ 1 1 1 E c 3 1 G £4§ 6
1 1 § 1 0 3 5 2 d 1
B c 6 0 § 4
1 d 0
1 2
2 D £ 1 3 1 F £0 4 H 31
4 0§ 5 0 2§ 1
34
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Solving Linear Systems Using Matrix Equations
Learning Objectives
While using matrices and row operations offers a degree of efficiency in solving systems, we are still required to solve for each variable individually. Using matrix multiplication we can actually rewrite a given system as a single matrix equation, in which the solutions are computed simultaneously. As with other kinds of equations, the use of identities and inverses are involved, which we now develop in the context of matrices.
In Section 9.3 you will learn how to:
A. Recognize the identity matrix for multiplication
B. Find the inverse of a square matrix
A. Multiplication and Identity Matrices
C. Solve systems using matrix equations
D. Use determinants to find whether a matrix is invertible
EXAMPLE 1A
From the properties of real numbers, 1 is the identity for multiplication since n # 1 1 # n n. A similar identity exists for matrix multiplication. Consider the 2 2 1 4 matrix A c d . While matrix multiplication is not generally commutative, 2 3 if we can find a matrix B where AB BA A, then B is a prime candidate for the identity matrix, which is denoted I. For the products AB and BA to be possible and have the same order as A, we note B must also be a 2 2 matrix. Using the arbitrary matrix a b B c d , we have the following. c d Solving AB A to Find the Identity Matrix For c
1 4 a b 1 4 d c d c d , use matrix multiplication, the equality of 2 3 c d 2 3 matrices, and systems of equations to find the value of a, b, c, and d. Solution
a 4c b 4d 1 4 d c d. 2a 3c 2b 3d 2 3 Since corresponding entries must be equal (shown by matching colors), we can find a 4c 1 b 4d 4 a, b, c, and d by solving the systems e and e . For 2a 3c 2 2b 3d 3 the first system, 2R1 R2 shows a 1 and c 0. Using 2R1 R2 for the second 1 0 shows b 0 and d 1. It appears c d is a candidate for the identity matrix. 0 1 The product on the left gives c
Before we name B as the identity matrix, we must show that AB BA A. EXAMPLE 1B
Verifying AB BA A Given A c
Solution
AB c
1 2
4 1 d and B c 3 0
0 d , determine if AB A and BA A. 1
1 4 1 0 d c d 2 3 0 1 1112 4102 1102 4112 d c 2112 3102 2102 3112 1 4 c d A✓ 2 3
BA c
1 0 1 4 d c d 0 1 2 3 1112 0122 1142 0132 c d 0112 1122 0142 1132 1 4 c d A✓ 2 3
Since AB A BA, B is the identity matrix I. Now try Exercises 7 through 10 872
9-26
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By replacing the entries of A c
A. You’ve just learned how to recognize the identity matrix for multiplication
Figure 9.10
1 4 d with those of the general matrix 2 3 a11 a12 1 0 c d is the identity for all 2 2 matrices. In d , we can show that I c 0 1 a21 a22 considering the identity for larger matrices, we find that only square matrices have inverses, since AI IA is the primary requirement (the multiplication must be possible in both directions). This is commonly referred to as multiplication from the right and multiplication from the left. Using the same procedure as before we can show 1 0 0 £ 0 1 0 § is the identity for 3 3 matrices (denoted I3). The n n identity 0 0 1 matrix In consists of 1’s down the main diagonal and 0’s for all other entries. Also, the identity In for a square matrix is unique. As in Section 9.2, a graphing calculator can be used to investigate operations on 2 5 1 matrices and matrix properties. For the 3 3 matrix A £ 4 1 1 § and 0 3 2 1 0 0 I3 £ 0 1 0 § , a calculator will confirm that AI3 A I3 A. Carefully enter A 0 0 1 into your calculator as matrix A, and I3 as matrix B. Figure 9.10 shows AB A and after pressing ENTER , the calculator will verify BA A, although the screen cannot display the result without scrolling. See Exercises 11 through 14.
B. The Inverse of a Matrix Again from the properties of real numbers, we know the multiplicative inverse for a is 1 a1 1a 02, since the products a # a1 and a1 # a yield the identity 1. To show a 6 5 d and that a similar inverse exists for matrices, consider the square matrix A c 2 2 a b d . If we can find a matrix B, where AB BA I, then an arbitrary matrix B c c d B is a prime candidate for the inverse matrix of A, which is denoted A1. Proceeding as in Examples 1A and 1B gives the result shown in Example 2.
EXAMPLE 2A
Solving AB I to find A1 For c
6 5 a b 1 0 d c d c d , use matrix multiplication, the equality of matrices, 2 2 c d 0 1 and systems of equations to find the entries of B. Solution
6a 5c 6b 5d 1 0 d c d . Since corresponding 2a 2c 2b 2d 0 1 entries must be equal (shown by matching colors), we find the values of a, b, c, and 6b 5d 0 6a 5c 1 . Using 3R2 R1 d by solving the systems e and e 2b 2d 1 2a 2c 0 for the first system shows a 1 and c 1, while 3R2 R1 for the second a b 1 2.5 d c d is the system shows b 2.5 and d 3. Matrix B c c d 1 3 prime candidate for A1. The product on the left gives c
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To determine if A1 has truly been found, we check to see if multiplication from the right and multiplication from the left yields the matrix I: AB BA I. EXAMPLE 2B
Verifying B A1 For the matrices A c if AB BA I.
Solution
6 2
1 5 d and B c 2 1
6 5 1 2.5 d c d 2 2 1 3 6112 5112 612.52 5132 c d 2112 2112 212.52 2132 1 0 c d✓ 0 1
AB c
2.5 d from Example 2A, determine 3 1 2.5 6 5 d c d 1 3 2 2 1162 12.52 122 1152 12.52122 c d 1162 3122 1152 3122 1 0 c d✓ 0 1
BA c
Since AB BA I, we conclude B A 1. Now try Exercises 15 through 22
These observations guide us to the following definition of an inverse matrix. The Inverse of a Matrix Given an n n matrix A, if there exists an n n matrix A1 such that AA1 A1A In, then A1 is the inverse of matrix A. We will soon discover that while only square matrices have inverses, not every square matrix has an inverse. If an inverse exists, the matrix is said to be invertible. For 2 2 matrices that are invertible, a simple formula exists for computing the inverse. The formula is derived in the Strengthening Core Skills feature at the end of Chapter 9. The Inverse of a 2 2 Matrix If A c
a b 1 d d , then A1 c c d ad bc c
b d provided ad bc 0 a
To “test” the formula, again consider the matrix A c c 2, and d 2: B. You’ve just learned how to find the inverse of a square matrix
A1
1 2 c 162122 152122 2
6 2
5 d , where a 6, b 5, 2
5 d 6
1 2.5 1 2 5 c d c d✓ 2 2 6 1 3
See Exercises 63 through 66 for more practice with this formula. Almost without exception, real-world applications involve much larger matrices, with entries that are not integer-valued. Although the equality of matrices method from Example 2 can be extended to find the inverse of larger matrices, the process becomes very tedious and too time consuming to be useful. As an alternative, the augmented matrix method can be used. This process is discussed in the Strengthening Core Skills feature at the end Chapter 9 (see page 904). For practical reasons, we will rely on a calculator to produce these larger inverse matrices. This is done by (1) carefully
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entering a square matrix A into the calculator, (2) returning to the home screen and (3) calling up matrix A and pressing the Xⴚ1 key and ENTER to find A1. In the context of matrices, calculators are programmed to compute an inverse matrix, rather than to somehow find a reciprocal. See Exercises 23 through 26.
C. Solving Systems Using Matrix Equations One reason matrix multiplication has its row column definition is to assist in writing a linear system of equations as a single matrix equation. The equation consists of the matrix of constants B on the right, and a product of the coefficient matrix A with x 4y z 10 the matrix of variables X on the left: AX B. For • 2x 5y 3z 7, the matrix 8x y 2z 11 1 4 1 x 10 equation is £ 2 5 3 § £ y § £ 7 § . Note that computing the product on the left 8 1 2 z 11 will yield the original system. Once written as a matrix equation, the system can be solved using an inverse matrix and the following sequence. If A represents the matrix of coefficients, X the matrix of variables, B the matrix of constants, and I the appropriate identity, the sequence is 112 122 132 142 152
AX B A1 1AX2 A1B 1A1A2X A1B IX A1B X A1B
matrix equation multiply from the left by the inverse of A associative property A1 A I IX X
Lines 1 through 5 illustrate the steps that make the method work. In actual practice, after carefully entering the matrices, only step 5 is used when solving matrix equations using technology. Once matrix A is entered, the calculator will automatically find and use A1 as we enter A1B.
EXAMPLE 3
Using Technology to Solve a Matrix Equation Use a calculator and a matrix equation to solve the system x 4y z 10 • 2x 5y 3z 7. 8x y 2z 11
Solution
1 4 1 x 10 As before, the matrix equation is £ 2 5 3 § £ y § £ 7 § . 8 1 2 z 11 Carefully enter (and double-check) the matrix of coefficients as matrix A in your calculator, and the matrix of constants as matrix B. The product A1B shows the solution is x 2, y 3, z 4. Verify by substitution.
Now try Exercises 27 through 44
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The matrix equation method does have a few shortcomings. Consider the system 4 10 x 8 d c d c d . After entering whose corresponding matrix equation is c 2 5 y 13 the matrix of coefficients A and matrix of constants B, attempting to compute A1B results in the error message shown in Figure 9.11. The calculator is unable to return a solution due to something called a “singular matrix.” To investigate further, we 4 10 d using the formula for a 2 2 matrix. With attempt to find A1 for c 2 5 a 4, b 10, c 2, and d 5, we have
Figure 9.11
1 d c ad bc c 1 5 10 c d 0 2 4
A1
C. You’ve just learned how to solve systems using matrix equations
b 1 5 d c a 142 152 1102 122 2
10 d 4
Since division by zero is undefined, we conclude that matrix A has no inverse. A matrix having no inverse is said to be singular or noninvertible. Solving systems using matrix equations is only possible when the matrix of coefficients is nonsingular.
D. Determinants and Singular Matrices As a practical matter, it becomes important to know ahead of time whether a particular matrix has an inverse. To help with this, we introduce one additional operation on a square matrix, that of calculating its determinant. For a 1 1 matrix the determinant a11 a12 d , the determinant of A, written is the entry itself. For a 2 2 matrix A c a21 a22 as det(A) or denoted with vertical bars as A, is computed as a difference of diagonal products beginning with the upper-left entry:
det1A2 `
a11 a21
2nd diagonal product a12 ` a11a22 a21a12 a22 1st diagonal product
The Determinant of a 2 2 Matrix Given any 2 2 matrix A c
a11 a12 d, a21 a22 det1A2 A a11a22 a21a12
EXAMPLE 4
Calculating Determinants Compute the determinant of each matrix given. 3 2 a. B c d 1 6 5 2 1 b. C c d 1 3 4 4 10 c. D c d 2 5
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Solution
3 2 ` 132 162 112 122 20 1 6 b. Determinants are only defined for square matrices. 4 10 ` 142 152 1221102 20 20 0 c. det1D2 ` 2 5 a. det1B2 `
Now try Exercises 45 through 48
4 10 d was zero, and this 2 5 is the same matrix we earlier found had no inverse. This observation can be extended to larger matrices and offers the connection we seek between a given matrix, its inverse, and matrix equations. Notice from Example 4c, the determinant of c
Singular Matrices If A is a square matrix and det1A2 0, the inverse matrix does not exist and A is said to be singular or noninvertible.
WORTHY OF NOTE For the determinant of a general n n matrix using cofactors, see Appendix II.
In summary, inverses exist only for square matrices, but not every square matrix has an inverse. If the determinant of a square matrix is zero, an inverse does not exist and the method of matrix equations cannot be used to solve the system. To use the determinant test for a 3 3 system, we need to compute a 3 3 determinant. At first glance, our experience with 2 2 determinants appears to be of little help. However, every entry in a 3 3 matrix is associated with a smaller 2 2 matrix, formed by deleting the row and column of that entry and using the entries that remain. These 2 2’s are called the associated minor matrices or simply the minors. Using a general matrix of coefficients, we’ll identify the minors associated with the entries in the first row. a11 a12 a13 £ a21 a22 a23 § a31 a32 a33
a11 £ a21 a31
a12 a22 a32
a13 a23 § a33
Entry: a11 associated minor a22 a23 c d a32 a33
Entry: a12 associated minor a21 a23 c d a31 a33
a11 £ a21 a31
a12 a22 a32
a13 a23 § a33
Entry: a13 associated minor a21 a22 d c a31 a32
To illustrate, consider the system shown, and (1) form the matrix of coefficients, (2) identify the minor matrices associated with the entries in the first row, and (3) compute the determinant of each minor. 2x 3y z 1 • x 4y 2z 3 1 3x y 2 122 £ 1 3
3 4 1
1 2§ 0
Entry a11: 2 associated minor 4 2 c d 1 0
2 (1) Matrix of coefficients £ 1 3 2 £1 3
3 4 1
1 2§ 0
Entry a12: 3 associated minor 1 2 c d 3 0
2 £1 3
3 1 4 2 § 1 0 3 4 1
1 2§ 0
Entry a13: 1 associated minor 1 4 c d 3 1
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(3) Determinant of minor
142 102 112122 2
Determinant of minor
Determinant of minor
112 102 132122 6 112 112 132142 13
For computing a 3 3 determinant, we illustrate a technique called expansion by minors. The Determinant of a 3 3 Matrix — Expansion by Minors matrix M For the matrix M shown, det(M) is the unique number computed as follows: a11 a12 a13 1. Select any row or column and form the product of each £ a21 a22 a23 § entry with its minor matrix. The illustration here uses the a31 a32 a33 entries in row 1: det1M2 a11 `
a22 a32
a23 a21 ` a12 ` a33 a31
a23 a21 ` a13 ` a33 a31
a22 ` a32
2. The signs used between terms of the expansion depends on the row or column chosen, according to the sign chart shown.
Sign Chart £
§
The determinant of a matrix is unique and any row or column can be used. For this reason, it’s helpful to select the row or column having the most zero, positive, and/or smaller entries.
EXAMPLE 5
Calculating a 3 3 Determinant 2 1 Compute the determinant of M £ 1 1 2 1
Solution
3 0 §. 4
Since the second row has the “smallest” entries as well as a zero entry, we compute the determinant using this row. According to the sign chart, the signs of the terms will be negative–positive–negative, giving 1 3 2 3 2 1 ` 112 ` ` 102 ` ` 1 4 2 4 2 1 114 32 11218 62 10212 22 7 (2) 0 9 S The value of det1M2 is 9.
det1M2 112 `
Now try Exercises 49 through 54
Try computing the determinant of M two more times, using a different row or column each time. Since the determinant is unique, you should obtain the same result. There are actually other alternatives for computing a 3 3 determinant. The first is called determinants by column rotation, and takes advantage of patterns generated from the expansion of minors. This method is applied to the matrix shown, which uses alphabetical entries for simplicity. a det £ d g
b e h
c f § a1ei fh2 b1di fg2 c1dh eg2 aei afh bdi bfg cdh ceg i aei bfg cdh afh bdi ceg
expansion using R1 distribute rewrite result
Although history is unsure of who should be credited, notice that if you repeat the first two columns to the right of the given matrix (“rotation of columns”), identical
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products are obtained using the six diagonals formed—three in the downward direction using addition, three in the upward direction using subtraction. a £d g
b e h
gec c f§ i aei
hfa idb a b d e g h bfg cdh
Adding the products in blue (regardless of sign) and subtracting the products in red (regardless of sign) gives the determinant. This method is more efficient than expansion by minors, but can only be used for 3 3 matrices! EXAMPLE 6
Calculating det(A) Using Column Rotation 1 Use the column rotation method to find the determinant of A £ 2 3
Solution
5 3 8 0 § . 11 1
Rotate columns 1 and 2 to the right as above, and compute the diagonal products. 72 0 10 1 5 1 5 3 £ 2 8 0 § 2 8 3 11 3 11 1 8 0 66 Adding the products in blue (regardless of sign) and subtracting the products in red (regardless of sign) shows det1A2 4: 8 0 66 72 0 1102 4.
Now try Exercises 55 through 58
The final method is presented in the Extending the Concept feature of the Exercise Set, and shows that if certain conditions are met, the determinant of a matrix can be found using its triangularized form. EXAMPLE 7
Solving a System after Verifying A is Invertible Given the system shown here, (1) form the matrix equation AX B; (2) compute the determinant of the coefficient matrix and determine if you can proceed; and (3) if so, solve the system using a matrix equation. 2x 1y 3z 11 1 • 1x 1y 2x 1y 4z 8
Solution
1. Form the matrix equation AX B: 2 £ 1 2
1 1 1
3 x 11 0 § £y§ £ 1 § 4 z 8
2. Since det(A) is nonzero (from Example 5), we can proceed.
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3. For X A1B, input A1B on your calculator and press X
4 9 £ 94 1 9
7 9 29 4 9
1 3 1 3§ 1 3
11 3 £ 1 § £ 2 § 8 1
ENTER
.
calculator computes and uses A1 in one step
The solution is the ordered triple 13, 2, 12
Now try Exercises 59 through 62
We close this section with an application involving a 4 4 system. EXAMPLE 8
Solving an Application Using Technology and Matrix Equations A local theater sells four sizes of soft drinks: 32 oz @ $2.25; 24 oz @ $1.90; 16 oz @ $1.50; and 12 oz @ $1.20/each. As part of a “free guest pass” promotion, the manager asks employees to try and determine the number of each size sold, given the following information: (1) the total revenue from soft drinks was $719.80; (2) there were 9096 oz of soft drink sold; (3) there was a total of 394 soft drinks sold; and (4) the number of 24-oz and 12-oz drinks sold was 12 more than the number of 32-oz and 16-oz drinks sold. Write a system of equations that models this information, then solve the system using a matrix equation.
Solution
D. You’ve just learned how to use determinants to find whether a matrix is invertible
If we let x, l, m, and s represent the number of 32-oz, 24-oz, 16-oz, and 12-oz soft drinks sold, the following system is produced: revenue: 2.25x 1.90l 1.50m 1.20s 719.8 ounces sold: 32x 24l 16m 12s 9096 μ quantity sold: x l m s 394 relationship between l s x m 12 amounts sold: When written as a matrix equation the system becomes: 2.25 32 ≥ 1 1
1.9 24 1 1
1.5 1.2 x 719.8 16 12 l 9096 ¥ ≥ ¥ ≥ ¥ 1 1 m 394 1 1 s 12
To solve, carefully enter the matrix of coefficients as matrix A, and the matrix of constants as matrix B, then compute A1B X [verify det1A2 0 4 . This gives a solution of 1x, l, m, s2 1112, 151, 79, 522.
Now try Exercises 67 to 78
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9.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The n n identity matrix In consists of 1’s down the and for all other entries. 2. Given square matrices A and B of like size, B is the inverse of A if . Notationally we write B . 3. The product of a square matrix A and its inverse matrix. A1 yields the
4. If the determinant of a matrix is zero, the matrix is said to be or , meaning no inverse exists. 5. Explain why inverses exist only for square matrices, then discuss why some square matrices do not have an inverse. Illustrate each point with an example. 6. What is the connection between the determinant of a 2 2 matrix and the formula for finding its inverse? Use the connection to create a 2 2 matrix that is invertible, and another that is not.
DEVELOPING YOUR SKILLS
Use matrix multiplication, equality of matrices, and the a b 1 0 arbitrary matrix given to show that c d c d. c d 0 1
7. A c
5 a b 2 5 dc d c d 7 c d 3 7
2 3
9 8. A c 5
7 a b 9 dc d c 4 c d 5
7 d 4
9. A c
0.4 0.6 a b dc d c 0.3 0.2 c d
0.6 d 0.2
0.4 0.3 1
10. A c 21 3
1 4 1d 8
c
1 a b d c 21 c d 3
1 4 1d 8
1 0 0 0 d , I3 £ 0 1 0 § , and 1 0 0 1 1 0 0 0 0 1 0 0 I4 ≥ ¥ , show AI IA A for the 0 0 1 0 0 0 0 1 matrices of like size. Use a calculator for Exercise 14.
1 For I2 c 0
11. c
3 4
8 d 10
12. c
0.5 0.2 d 0.7 0.3
4 1 5 13. £ 9 0 2
6 3§ 1
9 2 14. ≥ 4 0
1 3 1 0 5 3 ¥ 6 1 0 2 4 1
Find the inverse of each 2 2 matrix using matrix multiplication, equality of matrices, and a system of equations.
15. c
5 2
4 d 2
16. c
1 0
5 d 4
17. c
1 4
3 d 10
18. c
2 0.4 d 1 0.8
Demonstrate that B A1, by showing AB BA I. Do not use a calculator.
19. A c
1 5 d 2 9
20. A c
2 4
6 d 11
B c
9 5 d 2 1
B c
5.5 2
3 d 1
21. A c
4 0
5 d 2
1
5 8 1d 2
B c4 0
22. A c
2 5 d 3 4 4
B c 73 7
5 7 2d 7
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Use a calculator to find A1 B, then confirm the inverse by showing AB BA I.
2 3 1 23. A £ 5 2 4 § 2 0 1 0.5 24. A £ 0 1
0.2 0.3 0.4
0.1 0.6 § 0.3
7 5 25. A £ 1 9 2 2 12 1 0 26. A ≥ 12 12 0
3 0 § 5
6 4 12 12
3 0 8 12 ¥ 0 0 0 12
Write each system in the form of a matrix equation. Do not solve.
27. e
2x 3y 9 5x 7y 8
28. e
0.5x 0.6y 0.6 0.7x 0.4y 0.375
x 2y z 1 29. • x z 3 2x y z 3 2x 3y 2z 4 30. • 14x 25y 34z 1 3 2x 1.3y 3z 5 2w x 4y 5z 3 2w 5x y 3z 4 31. μ 3w x 6y z 1 w 4x 5y z 9 1.5w 2.1x 0.4y z 1 0.2w 2.6x y 5.8 32. μ 3.2x z 2.7 1.6w 4x 5y 2.6z 1.8 Write each system as a matrix equation and solve (if possible) using inverse matrices and your calculator. If the coefficient matrix is singular, write no solution.
33. e
0.05x 3.2y 15.8 0.02x 2.4y 12.08
34. e
0.3x 1.1y 3.5 0.5x 2.9y 10.1
1 u 14v 1 35. e 16 2 2 u 3 v 2
36. e
12a 13b 15 16a 3b 17
37. e
1 3 5 8 a 5b 6 5 3 4 16 a 2 b 5
38. e
3 12a 2 13b 12 5 12a 3 13b 1
0.2x 1.6y 2z 1.9 39. • 0.4x y 0.6z 1 0.8x 3.2y 0.4z 0.2 1.7x 2.3y 2z 41.5 40. • 1.4x 0.9y 1.6z 10 0.8x 1.8y 0.5z 16.5 x 2y 2z 6 41. • 2x 1.5y 1.8z 2.8 2 1 3 11 3 x 2y 5 z 30 42.
4x 5y 6z 5 35y 54z 2 3 0.5x 2.4y 5z 5
• 18x
2w 3x 4y 5z 3 0.2w 2.6x y 0.4z 2.4 43. μ 3w 3.2x 2.8y z 6.1 1.6w 4x 5y 2.6z 9.8 2w 5x 3y 4z 7 1.6w 4.2y 1.8z 5.4 44. μ 3w 6.7x 9y 4z 8.5 0.7x 0.9z 0.9 Compute the determinant of each matrix and state whether an inverse matrix exists. Do not use a calculator.
45. c
4 3
47. c
1.2 0.3
7 d 5 0.8 d 0.2
46. c
0.6 0.4
0.3 d 0.5
48. c
2 3
6 d 9
Compute the determinant of each matrix without using a calculator. If the determinant is zero, write singular matrix.
1 49. A £ 0 2
0 2 1 1 § 1 4
2 2 50. B £ 0 1 4 4
1 2§ 0
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2 3 51. C £ 0 6 1 1.5
Compute the determinant of each matrix using the column rotation method.
4 2 § 2
1 2 0.8 52. D £ 2.5 5 2 § 3 0 2.5 Use a calculator to compute the determinant of each matrix. If the determinant is zero, write singular matrix. If the determinant is nonzero, find A 1 and store the 2nd Xⴚ1 2: [B] ENTER ). result as matrix B ( STO Then verify each inverse by showing AB BA I.
1 2 53. A ≥ 8 0
0 5 15 8
3 4 0 1 ¥ 6 5 4 1
1 2 0 1 54. M ≥ 1 0 2 1
1 3 2 1
1 2 ¥ 3 4
2 55. £ 4 1
3 1 1 5 § 0 2
56.
3 £ 1 3
1 57. £ 3 4
1 2 2 4 § 3 1
58.
5 6 2 £ 2 1 2 § 3 4 1
2 4 2 0 § 1 5
For each system shown, form the matrix equation AX B; compute the determinant of the coefficient matrix and determine if you can proceed; and if possible, solve the system using the matrix equation.
x 2y 2z 7 59. • 2x 2y z 5 60. 3x y z 6
2x 3y 2z 7 • x y 2z 5 3x 2y z 11
x 3y 4z 1 61. • 4x y 5z 7 62. 3x 2y z 3
5x 2y z 1 • 3x 4y 9z 2 4x 3y 5z 6
WORKING WITH FORMULAS
The inverse of a 2 2 matrix: a b 1 #c d d S A1 A c c d ad bc c
b d a
The inverse of a 2 2 matrix can be found using the formula shown, as long as ad bc 0. Use the formula to find inverses for the matrices here (if possible), then verify by showing A # A 1 A # A 1 I.
883
Section 9.3 Solving Linear Systems Using Matrix Equations
5 d 1
63. A c
3 2
65. C c
0.3 0.6
0.4 d 0.8
64. B c 66. c
2 5
0.2 0.4
3 d 4
0.3 d 0.6
APPLICATIONS
Solve each application using a matrix equation. Descriptive Translation
67. Convenience store sales: The local Moto-Mart sells four different sizes of Slushies—behemoth, 60 oz @ $2.59; gargantuan, 48 oz @ $2.29; mammoth, 36 oz @ $1.99; and jumbo, 24 oz @ $1.59. As part of a promotion, the owner offers free gas to any customer who can tell how many of each size were sold last week, given the following information: (1) The total revenue for the Slushies was $402.29; (2) 7884 ounces were sold; (3) a total of 191 Slushies were sold; and (4) the number of behemoth Slushies sold was one more than the number of jumbo. How many of each size were sold?
68. Cartoon characters: In America, four of the most beloved cartoon characters are Foghorn Leghorn, Elmer Fudd, Bugs Bunny, and Tweety Bird. Suppose that Bugs Bunny is four times as tall as Tweety Bird. Elmer Fudd is as tall as the combined height of Bugs Bunny and Tweety Bird. Foghorn Leghorn is 20 cm taller than the combined height of Elmer Fudd and Tweety Bird. The combined height of all four characters is 500 cm. How tall is each one? 69. Rolling Stones music: One of the most prolific and popular rock-and-roll bands of all time is the Rolling Stones. Four of their many great hits include: Jumpin’ Jack Flash, Tumbling Dice, You Can’t Always Get What You Want, and Wild Horses. The total playing time of all four songs is 20.75 min.
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The combined playing time of Jumpin’ Jack Flash and Tumbling Dice equals that of You Can’t Always Get What You Want. Wild Horses is 2 min longer than Jumpin’ Jack Flash, and You Can’t Always Get What You Want is twice as long as Tumbling Dice. Find the playing time of each song. 70. Mozart’s arias: Mozart wrote some of vocal music’s most memorable arias in his operas, including Tamino’s Aria, Papageno’s Aria, the Champagne Aria, and the Catalogue Aria. The total playing time of all four arias is 14.3 min. Papageno’s Aria is 3 min shorter than the Catalogue Aria. The Champagne Aria is 2.7 min shorter than Tamino’s Aria. The combined time of Tamino’s Aria and Papageno’s Aria is five times that of the Champagne Aria. Find the playing time of all four arias. Manufacturing
71. Resource allocation: Time Pieces Inc. manufactures four different types of grandfather clocks. Each clock requires these four stages: (1) assembly, (2) installing the clockworks, (3) inspection and testing, and (4) packaging for delivery. The time required for each stage is shown in the table, for each of the four clock types. At the end of a busy week, the owner determines that personnel on the assembly line worked for 262 hours, the installation crews for 160 hours, the testing department for 29 hours, and the packaging department for 68 hours. How many clocks of each type were made? Dept. Assemble
Clock A
Clock B
Clock C
Clock D
2.2
2.5
2.75
3
Install
1.2
1.4
1.8
2
Test
0.2
0.25
0.3
0.5
Pack
0.5
0.55
0.75
1.0
72. Resource allocation: Figurines Inc. makes and sells four sizes of metal figurines, mostly historical figures and celebrities. Each figurine goes through four stages of development: (1) casting, (2) trimming, (3) polishing, and (4) painting. The time required for each stage is shown in the table, for each of the four sizes. At the end of a busy week, the manager finds that the casting department put in 62 hr, and the trimming department worked for 93.5 hr, with the polishing and painting departments logging 138 hr and 358 hr respectively. How many figurines of each type were made? Dept. Casting
Small
Medium
Large
X-Large
0.5
0.6
0.75
1
Trimming
0.8
0.9
1.1
1.5
Polishing
1.2
1.4
1.7
2
Painting
2.5
3.5
4.5
6
73. Thermal conductivity: In lab experiments designed to measure the heat conductivity of a square metal plate of 64°C uniform density, the edges are held at four different (constant) p2 p1 temperatures. The 70°C 80°C mean-value principle p3 p4 from physics tells us that the temperature 96°C at a given point pi on the plate, is equal to the average temperature of nearby points. Use this information to form a system of four equations in four variables, and determine the temperature at interior points p1, p2, p3, and p4 on the plate shown. (Hint: Use the temperature of the four points closest to each.) 74. Thermal conductivity: Repeat Exercise 73 if (a) the temperatures at the top and bottom of the plate were increased by 10°, with the temperatures at the left and right edges decreased by 10° (what do you notice?); (b) the temperature at the top and the temperature to the left were decreased by 10°, with the temperatures at the bottom and right held at their original temperature. Curve Fitting
75. Cubic fit: Find a cubic function of the form y ax3 bx2 cx d such that 14, 62, 11, 02, 11, 162, and (3, 8) are on the graph of the function. 76. Cubic fit: Find a cubic function of the form y ax3 bx2 cx d such that 12, 52, 10, 12, 12, 32, and (3, 25) are on the graph of the function. Nutrition
77. Animal diets: A zoo dietician needs to create a specialized diet that regulates an animal’s intake of fat, carbohydrates, and protein during a meal. The table given shows three different foods and the amount of these nutrients (in grams) that each ounce of food provides. How many ounces of each should the dietician recommend to supply 20 g of fat, 30 g of carbohydrates, and 44 g of protein? Nutrient
Food I
Food II
Food III
Fat
2
4
3
Carb.
4
2
5
Protein
5
6
7
78. Training diet: A physical trainer is designing a workout diet for one of her clients, and wants to supply him with 24 g of fat, 244 g of
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carbohydrates, and 40 g of protein for the noontime meal. The table given shows three different foods and the amount of these nutrients (in grams) that each ounce of food provides. How many ounces of each should the trainer recommend?
Food I
Food II
Food III
Fat
2
5
0
Carb.
10
15
18
Protein
2
10
0.75
EXTENDING THE CONCEPT
79. Some matrix applications require that you solve a matrix equation of the form AX B C, where A, B, and C are matrices with the appropriate number of rows and columns and A1 exists. Investigate the solution process for such equations using A c
2 5
3 4 12 d, B c d, C c d , and 4 9 4
x X c d , then solve AX B C for X y symbolically (using A1, I, and so on). 80. It is possible for the matrix of coefficients to be singular, yet for solutions to exist. If the system is dependent instead of inconsistent, there may be infinitely many solutions and the solution set must be written using a parameter or the set notation seen previously. Try solving the exercise given here using matrix equations. If this is not possible, discuss why, then solve using elimination. If the system is dependent, find at least two sets of three fractions that fit the criteria.The sum of the two smaller fractions equals the larger, the larger less the smaller equals the “middle” fraction, and four times the smaller fraction equals the sum of the other two.
Nutrient
885
81. Another alternative for finding determinants uses the triangularized form of a matrix and is offered without proof: If nonsingular matrix A is written in triangularized form without exchanging any rows and without using the operations kRi to replace any row (k a constant), then det(A) is equal to the product of resulting diagonal entries. Compute the determinant of each matrix using this method. Be careful not to interchange rows and do not replace any row by a multiple of that row in the process. 1 2 3 2 5 1 a. £ 4 5 6 § b. £ 2 3 4 § 2 5 3 4 6 5 2 4 1 3 1 4 7 2 § d. £ 0 2 6 § c. £ 5 3 8 1 2 1 3 82. Find 2 2 nonzero matrices A and B whose product gives the zero matrix c
0 0
0 d. 0
MAINTAINING YOUR SKILLS
83. (5.5) Find the amplitude and period of y 125 cos13t2.
85. (1.3) Solve the absolute value inequality: 32x 5 7 19.
84. (2.5/4.3) Match each equation to its related graph. Justify your answers.
86. (6.6) Find all solutions of 7 tan2x 21 in 30, 22.
y log2 1x 22
a.
y 5 4 3 2 1 1 1 2 3 4 5 6
x2
1 2 3 4 5 6 7 8 9 10 x
y log2x 2 b.
y 5 4 3 2 1 1 1 2 3 4 5 6
1 2 3 4 5 6 7 8 9 10 x
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Applications of Matrices and Determinants: Cramer’s Rule, Partial Fractions, and More
Learning Objectives In Section 9.4 you will learn how to:
A. Solve a system using
In addition to solving systems, matrices can be used to accomplish such diverse things as finding the volume of a three-dimensional solid or establishing certain geometrical relationships in the coordinate plane. Numerous uses are also found in higher mathematics, such as checking whether solutions to a differential equation are linearly independent.
determinants and Cramer’s rule
B. Decompose a rational expression into partial fractions
C. Use determinants in applications involving geometry in the coordinate plane
A. Solving Systems Using Determinants and Cramer’s Rule In addition to identifying singular matrices, determinants can actually be used to develop a formula for the solution of a system. Consider the following solution to a general 2 2 system, which parallels the solution to a specific 2 2 system. With a view toward a solution involving determinants, the coefficients of x are written as a11 and a21 in the general system, and the coefficients of y are a12 and a22. Specific System e
General System
2x 5y 9 3x 4y 10
a11x a12y c1 a21x a22y c2
e
eliminate the x-term 3R1 2R2
eliminate the x-term a21R1 + a11R2
sums to zero
sums to zero
3 # 2x 3 # 5y 3 # 9 a21a11x a21a12y a21c1 e e # # # 2 3x 2 4y 2 10 a11a21x a11a22y a11c2 a11a22y a21a12y a11c2 a21c1 2 # 4y 3 # 5y 2 # 10 3 # 9 Notice the x-terms sum to zero in both systems. We are deliberately leaving the solution on the left unsimplified to show the pattern developing on the right. Next we solve for y. Factor Out y
12 # 4 3 # 52y 2 # 10 3 # 9 2 # 10 3 # 9 y 2#43#5
Factor Out y
1a11a22 a21a12 2y a11c2 a21c1 a11c2 a21c1 divide divide y a11a22 a21a12
On the left we find y 7 7 1 and back-substitution shows x 2. But more importantly, on the right we obtain a formula for the y-value of any 2 2 system: a11c2 a21c1 y . If we had chosen to solve for x, the solution would be a11a22 a21a12 a22c1 a12c2 x . Note these formulas are defined only if a11a22 a21a12 0. a11a22 a21a12 You may have already noticed, but this denominator is the determinant of the matrix a11 a12 of coefficients c d from the previous section! Since the numerator is also a difa21 a22 ference of two products, we investigate the possibility that it too can be expressed as a determinant. Working backward, we’re able to reconstruct the numerator for x in c1 a12 determinant form as c d , where it is apparent this matrix was formed by replacing c2 a22 the coefficients of the x-variables with the constant terms. (removed)
a11 `a 21
a12 a22 `
remove coefficients of x
886
`
a12 a22 `
c1 `c 2
a12 a22 `
replace with constants
9-40
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It is also apparent the numerator for y can be also written in determinant form as a11 c1 , or the determinant formed by replacing the coefficients of the y-variables `a c2 ` 21 with the constant terms: a11 `a 21
a12 a22 `
a11 `a 21
(removed)
a11 `a
`
remove coefficients of y
21
c1 c2 `
replace with constants
If we use the notation Dy for this determinant, Dx for the determinant where x coefficients were replaced by the constants, and D as the determinant for the matrix of coefficients—the solutions can be written as shown next, with the result known as Cramer’s rule. Cramer’s Rule for 2 2 Systems Given a 2 2 system of linear equations a11x a12y c1 e a21x a22y c2 the solution is the ordered pair (x, y), where c1 a12 a11 c1 ` ` ` ` Dy c2 a22 Dx a21 c2 x and y a11 a12 a11 a12 D D ` ` ` ` a21 a22 a21 a22 provided D 0. EXAMPLE 1
Solution
Solving a System Using Cramer’s Rule 2x 5y 9 . Use Cramer’s rule to solve the system e 3x 4y 10 Begin by finding the value of D, Dx, and Dy. 2 5 ` 3 4 122 142 132152 7
D `
9 5 ` 10 4 192142 1102152 14
Dx `
Dy `
2 9 ` 3 10 1221102 132192 7
Dy Dx 14 7 2 and y 1. The solution is D 7 D 7 12, 12. Check by substituting these values into the original equations. This gives x
Now try Exercises 7 through 14
Regardless of the method used to solve a system, always be aware that a consistent, y 2x 3 inconsistent, or dependent system is possible. The system e yields 4x 6 2y 2x y 3 2 1 in standard form, with D ` ` 122122 142112 0. 4x 2y 6 4 2 Since det1D2 0, Cramer’s rule cannot be applied, and the system is either inconsistent or dependent. To find out which, we write the equations in function form (solve y 2x 3 for y). The result is e , showing the system consists of two parallel lines y 2x 3 and has no solutions. e
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Cramer’s Rule for 3 3 Systems Cramer’s rule can be extended to a 3 3 system of linear equations, using the same pattern as for 2 2 systems. Given the general 3 3 system a11x a12y a13z c1 • a21x a22y a23z c2 a31x a32y a33z c3 Dy Dz Dx , y , and z , where Dx, Dy, and Dz are again formed D D D by replacing the coefficients of the indicated variable with the constants, and D is the determinant of the matrix of coefficients 1D 02 .
the solutions are x
Cramer’s Rule Applied to 3 3 Systems Given a 3 3 system of linear equations a11x a12y a13z c1 • a21x a22y a23z c2 a31x a32y a33z c3 The solution is an ordered triple (x, y, z), where c1 a12 a13 † c2 a22 a23 † c3 a32 a33 x a11 a12 a13 † a21 a22 a23 † a31 a32 a33
A. You’ve just learned how to solve a system using determinants and Cramer’s rule
EXAMPLE 2
Solution
a11 † a21 a31 y a11 † a21 a31
c1 c2 c3 a12 a22 a32
a13 a23 † a33 a13 a23 † a33
a11 a12 c1 † a21 a22 c2 † a31 a32 c3 , z a11 a12 a13 † a21 a22 a23 † a31 a32 a33
provided D 0.
Solving a 3 3 System Using Cramer’s Rule x 2y 3z 1 Solve using Cramer’s rule: • 2x y 5z 1 3x 3y 4z 2 Begin by computing the determinant of the matrix of coefficients, to ensure that Cramer’s rule can be applied. Using the third row, we have 1 D † 2 3
2 1 3
3 2 3 1 3 1 5 † 3 ` ` 3` ` 4` 1 5 2 5 2 4 3172 3112 4132 6
2 ` 1
Since D 0 we continue, electing to compute the remaining determinants using a calculator. 1 Dx † 1 2
2 1 3
3 5 † 12 4
1 Dy † 2 3
1 1 2
3 5 † 0 4
1 Dz † 2 3
2 1 3
1 1 † 6 2
Dy Dz Dx 12 0 6 2, y 0, and z 1, or D 6 D 6 D 6 12, 0, 12 in triple form. Check this solution in the original equations.
The solution is x
Now try Exercises 15 through 22
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B. Rational Expressions and Partial Fractions P1x2 , where P and Q are polynomials Q1x2 and Q1x2 0. The addition of rational expressions is widely taught in courses prior to college algebra, and involves combining two rational expressions into a single term using a common denominator. In some applications of higher mathematics, we seek to reverse this process and decompose a rational expression into a sum of its partial fractions. To begin, we make the following observations:
Recall that a rational expression is one of the form
5 7 , noting both terms are proper fractions (the x2 x3 degree of the numerator is less than the degree of the denominator) and have distinct linear denominators.
1. Consider the sum
71x 32 51x 22 5 7 x2 x3 1x 22 1x 32 1x 32 1x 22 71x 32 51x 22 1x 22 1x 32 12x 11 1x 22 1x 32
common denominators
combine numerators
result
Assuming we didn’t have the original sum to look at, reversing the process would require us to begin with a decomposition template such as 12x 11 A B 1x 221x 32 x2 x3 and solve for the constants A and B. We know the numerators must be constant, else the fraction(s) would be improper while the original expression is not. 2. Consider the sum
5 3 2 , again noting both terms are proper x1 x 2x 1
fractions. 3 5 5 3 2 x1 x1 1x 121x 12 x 2x 1 31x 12 5 1x 12 1x 12 1x 12 1x 12 13x 32 5 1x 121x 12 3x 2 1x 12 2
factor denominators
common denominators
combine numerators
result
Note that while the new denominator is the repeated factor 1x 12 2, both 1x 12 and 1x 12 2 were denominators in the original sum. Assuming we didn’t know the original sum, reversing the process would require us to begin with the template 3x 2 A B 2 x1 1x 12 1x 12 2 and solve for the constants A and B. As with observation 1, we know the numerator of the first term must be constant. While the second term would still be a proper fraction if the numerator were linear (degree 1), the denominator is a repeated linear factor and using a single constant in the numerator of all such fractions will ensure we obtain unique values for A and B. In the end, for any repeated linear factor 1ax b2 n in the
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original denominator, terms of the form
An1 A1 A2 p ax b 1ax b2 2 1ax b2 n1
An must appear in the decomposition template, although some of these numer1ax b2 n ators may turn out to be zero.
EXAMPLE 3
Writing the Decomposition Template for Unique and Repeated Linear Factors Write the decomposition template for x1 x8 a. 2 b. 2 2x 5x 3 x 6x 9
Solution
x8 . With two distinct linear 12x 32 1x 12 factors in the denominator, the decomposition template is
a. Factoring the denominator gives
A B x8 12x 32 1x 12 2x 3 x1
decomposition template
x1 , and the denominator is a repeated linear 1x 32 2 factor. Using our previous observations the template would be
b. After factoring we have
x1 A B 2 x3 1x 32 1x 32 2
decomposition template
Now try Exercises 23 through 28
When both distinct and repeated linear factors are present in the denominator, the decomposition template maintains the elements illustrated in both observations 1 and 2.
EXAMPLE 4
Writing the Decomposition Template for Unique and Repeated Linear Factors Write the decomposition template for
Solution
x2 4x 15 . x3 2x2 x
x2 4x 15 x2 4x 15 or after factoring x1x2 2x 12 x1x 12 2 completely. With a distinct linear factor of x, and the repeated linear factor 1x 12 2, the decomposition template becomes Factoring the denominator gives
A C B x2 4x 15 x x1 x1x 12 2 1x 12 2
decomposition template
Now try Exercises 29 and 30
To continue our observations, 4 2x 3 3. Consider the sum 2 , noting the denominator of the first term is linear, x x 1 while the denominator of the second is an irreducible quadratic. 41x2 12 12x 32x 4 2x 3 2 2 2 x x 1 x1x 12 1x 12x 2 14x 42 12x2 3x2 x1x2 12 2 6x 3x 4 x1x2 12
find common denominator
combine numerators
result
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Here, reversing the process would require us to begin with the template 6x2 3x 4 Bx C A , 2 2 x x1x 12 x 1 allowing that the numerator of the second term might be linear since the denominator is quadratic but not due to a repeated linear factor. 1 x2 , where the denominator of the first term 2 x 3 1x 32 2 is an irreducible quadratic, with the second being the same factor with multiplicity two.
4. Finally, consider the sum
11x2 32 1 x2 x2 2 2 2 2 2 2 x 3 1x 32 1x 32 1x 32 1x 321x2 32 2 1x 32 1x 22 1x2 321x2 32 x2 x 1 1x2 32 2
WORTHY OF NOTE Note that the second term in the decomposition template would still be a proper fraction if the numerator were quadratic or cubic, but since the denominator is a repeated quadratic factor, using only a linear form ensures we obtain unique values for all coefficients.
EXAMPLE 5
2
common denominators
combine numerators
result after simplifying
Reversing the process would require us to begin with the template x2 x 1 Ax B Cx D 2 2 2 2 1x 32 x 3 1x 32 2 allowing that the numerator of either term might be nonconstant for the reasons in observation 3. Similar to our reasoning in observation 2, all powers of a repeated quadratic factor must be present in the template.
Writing the Decomposition Template for Linear and Quadratic Factors Write the decomposition template for a.
Solution
x2 10x 1 1x 121x2 3x 12
b.
x2 1x 22 3 2
a. One factor of the denominator is a distinct linear factor, and the other is an irreducible quadratic. The decomposition template is x2 10x 1 Bx C A 2 2 x 1 1x 12 1x 3x 12 x 3x 1
decomposition template
b. The denominator consists of a repeated, irreducible quadratic factor. Using our previous observations the template would be x2 Ax B Ex F Cx D 2 2 3 2 2 1x 22 x 2 1x 22 1x2 22 3
decomposition template
Now try Exercises 31 and 32
When both distinct and repeated factors are present in the denominator, the decomposition template maintains the essential elements determined by observations 1 through 4. Using these observations, we can formulate a general approach to the decomposition template.
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Decomposition Template for Rational Expressions For the rational expression
P1x2 in lowest terms and constants A, B, C, D, . . . Q1x2
1. Factor Q completely into linear factors and irreducible quadratic factors. 2. For the linear factors, each distinct linear factor and each power of a repeated linear factor must appear in the decomposition template with a constant numerator. 3. For the irreducible quadratic factors, each distinct quadratic factor and each power of a repeated quadratic factor must appear in the decomposition template with a linear numerator. 4. If the degree of P is greater than or equal to the degree of Q, find the quotient and remainder using polynomial division. Only the remainder portion need be decomposed into partial fractions. Once the template is obtained, we multiply both sides of the equation by the factored form of the original denominator and simplify. The resulting equation is an identity — a true statement for all real numbers x, and in many cases the constants A, B, C, and so on can be identified using a choice of convenient values for x, as in Example 6. EXAMPLE 6
Decomposing a Rational Expression with Linear Factors Decompose the expression
Solution
4x 11 into partial fractions. x 7x 10 2
4x 11 , with two distinct linear factors in 1x 521x 22 the denominator. The required template is Factoring the denominator gives
A B 4x 11 1x 52 1x 22 x5 x2
decomposition template
Multiplying both sides by 1x 52 1x 22 clears all denominators and yields 4x 11 A1x 22 B1x 52
clear denominators
Since the equation must be true for all x, using x 5 will conveniently eliminate the term with B, and enable us to solve for A directly: 4152 11 A15 22 B15 52 20 11 3A B102 9 3A 3A
substitute 5 for x simplify term with B is eliminated solve for A
To find B, we repeat this procedure, using an x-value that conveniently eliminates the term with A, namely, x 2. 4x 11 A1x 22 B1x 52 4122 11 A12 22 B12 52 8 11 A102 3B 3 3B 1B
original equation substitute 2 for x simplify term with A is eliminated solve for B
With A 3 and B 1, the complete decomposition is 4x 11 3 1 1x 521x 22 x5 x2 which can be checked by adding the fractions on the right. Now try Exercises 33 through 38
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EXAMPLE 7
Decomposing a Rational Expression with Repeated Linear Factors Decompose the expression
Solution
893
9 into partial fractions. 1x 52 1x 7x 102 2
9 9 , 1x 521x 22 1x 52 1x 221x 52 2 (one distinct linear factor, one repeated linear factor). The decomposition template 9 A B C is . Multiplying both sides by x2 x5 1x 221x 52 2 1x 52 2 1x 22 1x 52 2 clears all denominators and yields Factoring the denominator gives
9 A1x 52 2 B1x 221x 52 C1x 22.
Using x 5 will eliminate the terms with A and B, giving
9 A15 52 2 B15 22 1 5 52 C15 22 9 A102 B132 102 3C 9 3C 3 C
substitute 5 for x simplify terms with A and B are eliminated solve for C
Using x 2 will eliminate the terms with B and C, and we have
9 A1x 52 2 B1x 22 1x 52 C1x 22 9 A12 52 2 B12 22 12 52 C12 22 9 A132 2 B102 132 C102 9 9A 1A
original equation substitute 2 for x simplify terms with B and C are eliminated solve for A
To find B, we substitute A 1 and C 3 into the original equation, with any value of x that does not eliminate B. For efficiency, we’ll often use x 0 or x 1 for this purpose (if possible). 9 A1x 52 2 B1x 22 1x 52 C1x 22 9 110 52 2 B10 22 10 52 310 22 9 25 10B 6 1 B
original equation substitute 1 for A, 3 for C, 0 for x simplify solve for B
With A 1, B 1, and C 3 the complete decomposition is 1 3 9 1 2 x 2 x 5 1x 22 1x 52 1x 52 2 1 1 3 x2 x5 1x 52 2 Now try Exercises 39 and 40
As an alternative to using convenient values, a system of equations can be set up by multiplying out the right-hand side (after clearing fractions) and equating coefficients of the terms with like degrees.
EXAMPLE 8
Decomposing a Rational Expression with Linear and Quadratic Factors Decompose the given expression into partial fractions:
3x2 x 11 . x3 3x2 4x 12
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Solution
A careful inspection indicates the denominator will factor by grouping, giving x3 3x2 4x 12 x2 1x 32 41x 32 1x 32 1x2 42 . With one linear factor and one irreducible quadratic factor, the required template is Bx C 3x2 x 11 A 2 2 x3 1x 321x 42 x 4 3x2 x 11 A1x2 42 1Bx C2 1x 32 Ax2 4A Bx2 3Bx Cx 3C 1A B2x2 1C 3B2x 4A 3C
decomposition template multiply by (x 3)(x 2 4) (clear denominators) distribute/F-O-I-L group and factor
For the left side to equal the right, we must equate coefficients of terms with like degree: A B 3, C 3B 1, and 4A 3C 11. This gives the 3 3 system 1 1 0 3 £ 0 3 1 1 § in matrix form (verify this). Using the matrix of 4 0 3 11 coefficients we find that D 13, and we complete the solution using Cramer’s rule. 3 DA † 1 11
1 0 1 3 1 † 13 DB † 0 0 3 4
3 0 1 1 1 † 26 DC † 0 11 3 4
1 3 3 1 † 65 0 11
26 65 The result is A 13 13 1, B 13 2, and C 13 5, giving the decomposition
3x2 x 11 2x 5 1 2 . 2 x3 1x 32 1x 42 x 4 Now try Exercises 41 through 46
In some cases, the “convenient values” method cannot be applied and a system of equations is our only option. Also, if the decomposition template produces a large or cumbersome system, a graphing calculator can be used to assist the solution process.
EXAMPLE 9
Decomposing a Rational Expression Using Technology Use matrix equations and a graphing calculator to decompose the given expression 12x3 62x2 102x 56 into partial fractions: . x1x 22 3
Solution
The decomposition template will be A C D 12x3 62x2 102x 56 B . 3 2 x x2 x1x 22 1x 22 1x 22 3 Clearing denominators and simplifying yields 12x3 62x2 102x 56 A1x 22 3 Bx1x 22 2 Cx1x 22 Dx clear denominators After expanding the powers on the right and factoring we obtain
12x3 62x2 102x 56 1A B2x3 16A 4B C2x2 112A 4B 2C D2x 8A.
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By equating the coefficients of like terms, the following system and matrix equation are obtained: A B 12 1 6A 4B C 62 6 μ S≥ 12A 4B 2C D 102 12 8A 56 8
1 4 4 0
0 1 2 0
0 A 12 0 B 62 ¥≥ ¥ ≥ ¥. 1 C 102 0 D 56
After carefully entering the matrices F (coefficients) and G (constants), we obtain the solution A 7, B 5, C 0, and D 2 as shown in the figure. The decomposed form is
7 2 5 12x3 62x2 102x 56 . x x2 x1x 22 3 1x 22 3
Now try Exercises 47 and 48
As a final reminder, if the degree of the numerator is greater than the degree of the denominator, divide using long division and apply the preceding methods to the remainder 3x3 6x2 5x 7 2x 7 , and 3x polynomial. For instance, you can check that 2 x 2x 1 1x 12 2 9 2 decomposing the remainder polynomial gives a final result of 3x . x1 1x 12 2
B. You’ve just learned how to decompose a rational expression into partial fractions
C. Determinants, Geometry, and the Coordinate Plane As mentioned in the introduction, the use of determinants extends far beyond solving systems of equations. Here, we’ll demonstrate how determinants can be used to find the area of a triangle whose vertices are given as three points in the coordinate plane. The Area of a Triangle in the xy-Plane Given a triangle with vertices at (x1, y1), (x2, y2), and (x3, y3), Area `
x1 det1T2 ` where T £ x2 2 x3
y1 y2 y3
EXAMPLE 10
Finding the Area of a Triangle Using Determinants
Solution
Begin by forming matrix T and computing det(T):
1 1§ 1
Find the area of a triangle with vertices at (3, 1), 12, 32, and (1, 7). 3 1 1 x1 y1 1 det 1T2 † x2 y2 1 † † 2 3 1 † x3 y3 1 1 7 1 313 72112 12 1114 32 12 3 1172 26
y
7
(1, 7)
6 5 4
(2, 3)
3 2
(3, 1)
1 5 4 3 2 1 1 2 3
1
2
3
4
5
x
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det1T 2 26 ` ` ` 2 2 13
Compute the area: A `
The area of this triangle is 13 units2. Now try Exercises 51 through 56
As an extension of this formula, what if the three points were collinear? After a moment, it may occur to you that the formula would give an area of 0 units2, since no triangle could be formed. This gives rise to a test for collinear points. Test for Collinear Points Three points (x1, y1), (x2, y2), and (x3, y3) are collinear if C. You’ve just learned how to use determinants in applications involving geometry in the coordinate plane
x1 det1A2 † x2 x3
y1 y2 y3
1 1 † 0. 1
See Exercises 57 through 62.
9.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The determinant ` as: 2.
a11 a21
a12 ` is evaluated a22
.
rule uses a ratio of determinants to solve for the unknowns in a system.
3. Given the matrix of coefficients D, the matrix Dx is formed by replacing the coefficients of x with the terms.
4. The three points (x1, y1), (x2, y2), and (x3, y3) are x1 collinear if 0 T 0 † x2 x3
y1 y2 y3
1 1 † has a value of 1
5. Discuss/Explain the process of writing
8x 3 as a x2 x
sum of partial fractions. 6. Discuss/Explain why Cramer’s rule cannot be applied if D 0. Use an example to illustrate.
DEVELOPING YOUR SKILLS
Write the determinants D, Dx, and Dy for the systems given. Do not solve.
7. e
2x 5y 7 3x 4y 1
8. e
x 5y 12 3x 2y 8
Solve each system of equations using Cramer’s rule, if possible. Do not use a calculator.
9. e
4x y 11 3x 5y 60
10. e
.
x 2y 11 y 2x 13
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y x 1 8 4 11. μ y x 6 5 2 13. e
0.6x 0.3y 8 0.8x 0.4y 3
3 7 2 x y 3 8 5 12. μ 3 11 5 x y 6 4 10 14. e
2.5x 6y 1.5 0.5x 1.2y 3.6
Write the determinants D, Dx, Dy, and Dz for the systems given, then determine if a solution using Cramer’s rule is possible by computing the value of D without the use of a calculator (do not solve the system). Try to determine how the system from part (a) is related to the system in part (b).
4x y 2z 5 4x y 2z 5 15. a. • 3x 2y z 8 b. • 3x 2y z 8 x 5y 3z 3 x y z 3 2x 3z 2 2x 3z 2 16. a. • x 5y z 12 b. • x 5y z 12 3x 2y z 8 x 5y 4z 8
897
Use Cramer’s rule to solve each system of equations.
x 2y 5z 10 x 3y 5z 6 17. • 3x 4y z 10 18. • 2x 4y 6z 14 x y z 2 9x 6y 3z 3 y 2z 1 x 2y 5z 10 19. • 4x 5y 8z 8 20. • 3x z 8 8x 9z 9 y z 3 w 2x 3y 8 x 3y 5z 22 21. μ 4w 5x 5 y 3z 11 w 2x 3y z 11 3w 2y 6z 13 22. μ 2x 4y 5z 16 3x 4z 5
DECOMPOSITION OF RATIONAL EXPRESSIONS 37.
8x2 3x 7 x3 x
38.
x2 24x 12 x3 4x
39.
3x2 7x 1 x3 2x2 x
40.
2x2 7x 28 x3 4x2 4x
41.
3x2 10x 4 8 x3
42.
3x2 4x 1 x3 1
2
43.
6x2 x 13 x3 2x2 3x 6
44.
2x2 14x 7 x3 2x2 5x 10
x 7 1x 421x 22x
45.
x4 x2 2x 1 x5 2x3 x
46.
3x4 13x2 x 12 x5 4x3 4x
2x 3x 4x 1 x1x2 32 2
47.
x3 17x2 76x 98 1x2 6x 921x2 2x 32
Exercises 23 through 32 are designed solely to reinforce the various possibilities for decomposing a rational expression. All are proper fractions whose denominators are completely factored. Set up the partial fraction decomposition using appropriate numerators, but do not solve.
3x 2 23. 1x 32 1x 22
3x 2x 5 2x 3x 4 26. 1x 12 1x 221x 32 1x 32 1x 121x 22 2
25.
4x 1 24. 1x 22 1x 52
27.
x 5 x1x 321x 12
29.
x x1 x2 1x 22
2
2
28.
2
x 3x 2 1x 121x2 22 2
30.
3
31.
x 3x 5 1x 321x 22 2 2
3
32.
2
Decompose each rational expression into partial fractions.
33.
4x x2 x
34.
3x 13 x 5x 6
35.
2x 27 2x x 15
36.
11x 6 5x 4x 12
2
2
2
48.
16x3 66x2 98x 54 12x2 3x214x2 12x 92
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WORKING WITH FORMULAS
L r2 Area of a Norman window: A † † . The determinant shown can be used to find the area of a Norman W 2 W window (rectangle half-circle) with length L, width W, and radius r . Find the area of the following windows. 2
49.
50. 16 in. 20 in. 58 cm
32 cm
APPLICATIONS
Geometric Applications Find the area of the triangle with the vertices given. Assume units are in centimeters.
51. (2, 1), (3, 7), and (5, 3)
52. 12, 32, 13, 42, and 16, 12 Find the area of the parallelogram with vertices given. Assume units are in feet.
53. 14, 22, 16, 12, 13, 12, and 15, 22
54. 15, 62 , (5, 0), (5, 4), and 15, 22 The volume of a triangular pyramid is given by the formula V 13Bh, where B represents the area of the triangular base and h is the height of the pyramid. Find the volume of a triangular pyramid whose height is given and whose base has the coordinates shown. Assume units are in meters.
55. h 6 m; vertices (3, 5), 14, 22, and 11, 62
56. h 7.5 m; vertices 12, 32, 13, 42, and 16, 12 Determine if the following sets of points are collinear.
57. (1, 5), 12, 12 , and (4, 11) 58. (1, 1), 13, 52, and 12, 92
59. 12.5, 5.22, 11.2, 5.62 , and 12.2, 8.52 60. 10.5, 1.252, 12.8, 3.752, and (3, 6.25)
For each linear equation given, substitute the first two points to verify they are solutions. Then use the test for collinear points to determine if the third point is also a solution.
61. 2x 3y 7; 12, 12, 11.3, 3.22, 13.1, 4.42 62. 5x 2y 4; 12, 32, 13.5, 6.752, 12.7, 8.752
Write a linear system that models each application. Then solve using Cramer’s rule.
63. Return on investments: If $15,000 is invested at a certain interest rate and $25,000 is invested at another interest rate, the total return was $2900. If the investments were reversed the return would be $2700. What was the interest rate paid on each investment? 64. Cost of fruit: Many years ago, two pounds of apples, 2 lb of kiwi, and 10 lb of pears cost $3.26. Three pounds of apples, 2 lb of kiwi, and 7 lb of pears cost $2.98. Two pounds of apples, 3 lb of kiwi, and 6 lb of pears cost $2.89. Find the cost of a pound of each fruit.
EXTENDING THE CONCEPT
65. Solve the given system four different ways: (1) elimination, (2) row reduction, (3) Cramer’s rule, and (4) using a matrix equation. Which method seems to be the least error-prone? Which method seems most efficient (takes the least time)? Discuss the advantages and drawbacks of each method. x 3y 5z 6 • 2x 4y 6z 14 9x 6y 3z 3
66. Find the area of the pentagon whose vertices are: 15, 52, 15, 52, 18, 62, 18, 62, and (0, 12.5). 67. The polynomial form for the equation of a circle is x2 y2 Dx Ey F 0. Find the equation of the circle that contains the points 11, 72, (2, 8), and 15, 12.
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MAINTAINING YOUR SKILLS
68. (3.4) Graph the polynomial using information about end behavior, y-intercept, x-intercept(s), and midinterval points: f 1x2 x3 2x2 7x 6.
70. (4.2/4.5) Solve the equation 32x1 92x two ways. First using logarithms, then by equating the bases and using properties of equality.
69. (7.1) Solve the triangle with the following measures: side a 8.7 in. side b 11.2 in. A 49.0°
71. (5.6) Graph y 3 tan12t2 over the interval 3 12, 12 4 . Note the period, asymptotes, zeroes, and value of A.
S U M M A RY A N D C O N C E P T R E V I E W SECTION 9.1
Solving Linear Systems Using Matrices and Row Operations
KEY CONCEPTS • A matrix is a rectangular arrangement of numbers. An m n matrix has m rows and n columns. • An augmented matrix is derived from a system of linear equations by augmenting the coefficient matrix (formed by the variable coefficients) with the matrix of constants. • One matrix method for solving systems of equations is by triangularizing the augmented matrix. • An inconsistent system with no solutions will yield a contradictory statement such as 0 1. A dependent system with infinitely many solutions will yield an identity statement such as 0 0. EXERCISES 1. Write an example of the following matrices: a. 2 3 b. 3 2 c. 3 4, in triangular form Solve by triangularizing the matrix. Use a calculator for Exercise 4. x 2y 6 2. e 4x 3y 4
SECTION 9.2
x 2y 2z 7 3. • 2x 2y z 5 3x y z 6
2w x 2y 3z 19 w 2x y 4z 15 4. μ x 2y z 1 3w 2x 5z 60
2x y 2z 1 5. • x 2y 2z 3 3x 4y 2z 1
The Algebra of Matrices
KEY CONCEPTS • The entries of a matrix are denoted aij, where i gives the row and j gives the column of its location. • Two matrices A and B of equal size (or order) are equal if corresponding entries are equal. • The sum or difference of two matrices of equal order is found by combining corresponding entries: A B 3 aij bij 4 • The identity matrix for addition is an m n matrix whose entries are all zeroes. • To perform scalar multiplication, take the product of the constant with each entry in the matrix, forming a new matrix of like size. For matrix A: kA 3kaij 4 .
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CHAPTER 9 Matrices and Matrix Applications
• Matrix multiplication is performed as row entry column entry. For an m n matrix A 3aij 4 and an s t
matrix B 3bij 4 , AB is possible if n s. The result will be an m t matrix P 3 pij 4 , where pij is the product of the ith row of A with the jth column of B. When technology is used to perform operations on matrices, carefully enter each matrix into the calculator. Then • double check that each entry is correct and appraise the results to see if they are reasonable.
EXERCISES Compute the operations indicated below (if possible), using the following matrices. A
1 4 c 1 8
3 4 7 d 8
6. A B
7. B A
11. C D
12. D C
SECTION 9.3
1 3 C £ 5 2 6 3
7 6 B c d 1 2
8. C B
4 0§ 2 9. 8A
0 1 § 5
10. BA
14. 4D
13. BC
3 1 0.1
2 D £ 0.5 4
Solving Linear Systems Using Matrix Equations
15. CD 2 16
4
0 4
KEY CONCEPTS • I, the identity matrix for multiplication, has 1’s on the main diagonal and 0’s for all other entries. For any n n matrix A, the identity matrix is also an n n matrix, is called In, and AIn In A A. • For an n n (square) matrix A, the inverse matrix for multiplication is a matrix B such that AB BA In. For matrix A the inverse is denoted A1. Only square matrices have an inverse. • Any n n system of equations can be written as a matrix equation and solved (if a unique solution exists) using an inverse matrix. The system e
2x 3y 7 2 is written as c x 4y 2 1
3 x 7 dc d c d. 4 y 2
• Every square matrix has a real number associated with it, called its determinant. For 2 2 matrix
a11 a12 d , det1A2 a11a22 a21a12. a21 a22 • If the determinant of a matrix is zero, the matrix is said to be singular or noninvertible. If the coefficient matrix of a matrix equation is noninvertible, the system is either inconsistent or dependent. A c
EXERCISES Complete Exercises 16 through 18 using the following matrices: A c
1 0
0 d 1
B c
0.2 0.2 d 0.6 0.4
C c
2 3
1 d 1
D c
10 15
6 d 9
16. Exactly one of the matrices given is singular. Compute each determinant to identify it. 17. Show that AB BA B. What can you conclude about the matrix A? 18. Show that BC CB I. What can you conclude about the matrix C? Complete Exercises 19 through 21 using the matrices given: 1 E £ 2 1
2 1 1
3 5 § 2
1 F £ 0 2
1 1 1
1 0 § 1
19. Exactly one of the matrices is singular. Use a calculator to determine which. 20. Compute the products FG and GF. What can you conclude about matrix G? 21. Verify that EG GE and EF FE. What can you conclude?
1 G £ 0 2
0 1 1
1 0§ 1
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Mixed Review
Solve using a matrix equation and your calculator. 0.5x 2.2y 3z 8 23. • 0.6x y 2z 7.2 x 1.5y 0.2z 2.6
Solve manually using a matrix equation. 2x 5y 14 22. e 3y 4x 14
SECTION 9.4
Applications of Matrices and Determinants: Cramer’s Rule, Partial Fractions, and More
KEY CONCEPTS • Cramer’s rule uses a ratio of determinants to solve systems of equations (if solutions exist). a11 a12 ` is a11a22 a21a12. • The determinant of the 2 2 matrix ` a21 a22 • To compute the value of 3 3 and larger determinants, a calculator is generally used. • Determinants can be used to find the area of a triangle in the plane if the vertices of the triangle are known, and as a test to see if three points are collinear. • A system of equations can be used to write a rational expression as a sum of its partial fractions. EXERCISES Solve using Cramer’s rule. 2x y 2 2x y z 1 25. • x y 5z 12 26. • x 2y z 5 3x 2y z 8 3x y 2z 8 27. Find the area of a triangle whose vertices have the coordinates (6, 1), 11, 62 , and 16, 22. 7x2 5x 17 28. Find the partial fraction decomposition for 3 . x 2x2 3x 6 24. e
5x 6y 8 10x 2y 9
MIXED REVIEW Solve using row operations to triangularize the matrix. 1 x 2 1. μ 2 x 5
2 y3 3 1 y1 4
2. e
2x 5y 5 y 0.4x 1.2
3x 4y 5z 5 3. • x 2y 3z 3 3x 2y z 1 4. •
1 C c 2
4 2 d 0 1
6. a. BA
b. CB 4A
7. Find: a. a22
b. b21
c. c12
d. d32
8. Find values of x, y, and z so that A B, given: 2x yz 5 1 A c d and B c d yz 4 5 4 x 2z 5 • 2y z 4 x 2y 3 10. Use a matrix equation and a calculator to solve:
Compute as indicated for 1 d 3
b. CD
9. Solve using a matrix equation:
2x y 4z 11 x 3y z 4 3x 2y z 7
2 A c 0
5. a. 2AC
1 B £3 2
2 0 § 4
3 0 1 D £ 1 2 0 § 1 1 4
2 1 w x y z 3 2 3 3 5 41 xy z 4 8 8 2 3 27 wx z 5 10 10 w 2x 3y 4z 16
μ
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11. Find the inverse of A c
3 d. 8
2 5
12. Compute the determinant of the following matrix without the use of a calculator, and state whether an 1 3 2 4 § inverse exists. A £ 3 7 0 1 1 1 1 2 x 13. Given A £ 2 0 1 § , X £ y § , and 1 1 1 z 1 B £ 3 § , write the system of equations represented 3 by the matrix equation AX B. 14. Solve using Cramer’s rule: e
2x y 8 x 2y 7
15. Solve using Cramer’s rule: x 5y 2z 1 • 2x 3y z 3 3x y 3z 2 16. Decompose the expression into partial fractions: x2 1 x3 3x 2 17. Find the area of a triangle with vertices at (1, 2), (3, 1), and (0, 4).
18. Determine if the following points are collinear: a. (1, 1), (2, 1), and (2, 7) b. (2, 0), (3, 2), (0, 1) 19. The ancient Gaelic game of Hurling is one of the most demanding and skillful field sports being played today. The field (or pitch) is a rectangle whose perimeter is 438 m. Its length is 55 m longer than its width. Use a system of linear equations and the augmented matrix to find the dimensions of the pitch. 20. A local fitness center is offering incentives in an effort to boost membership. If you buy a year’s membership (Y ), you receive a $50 rebate and six tickets to a St. Louis Cardinals home game. For a half-year membership (H ), you receive a $30 rebate and four tickets to a Cardinals home game. For a monthly trial membership (M ), you receive a $10 rebate and two tickets to a Cardinals home game. During the last month, male clients purchased 40 one-year, 52 half-year, and 70 monthly memberships, while female clients purchased 50 one-year, 44 half-year, and 60 monthly memberships. Write the number of sales of each type to males and females as a 2 3 matrix, and the amount of the rebates and number of Cards tickets awarded per type of membership as a 3 2 matrix. Use these matrices to determine (a) the total amount of rebate money paid to males and (b) the number of Cardinals tickets awarded to females.
PRACTICE TEST Solve each system by triangularizing the augmented matrix and using back-substitution. 1. e
3x 8y 5 x 10y 2
0.5 C £ 0.4 0.1
3x y 5z 1 2. • 3x y 4z 4 x y z 73
4. Given matrices A and B, compute: 2 a. A B b. B c. AB d. A1 5 3 5
2 d 4
0 0.2 0.5 0 § 0.4 0.1
0.5 0.1 0.2 D £ 0.1 0.1 0 § 0.3 0.4 0.8
4x 5y 6z 5 3. • 2x 3y 3z 0 x 2y 3z 5
A c
5. Given matrices C and D, use a calculator to find: a. C D b. 0.6D c. DC d. D1 e. D
B c
3 3
3 d 5
e. A
6. Use matrices to find three different solutions of the dependent system: 2x y z 4 • 3x 2y 4z 9 x 2y 8z 11 7. Solve using Cramer’s rule: e
2x 3y 2 x 6y 2
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Calculator Exploration and Discovery
8. Solve using a calculator and Cramer’s rule: 2x 3y z 3 • x 2y z 4 x y 2z 1 9. Solve using a matrix equation and your calculator: 2x 5y 11 e 4x 7y 4 10. Solve using a matrix equation and your calculator: x 2y 2z 7 • 2x 2y z 5 3x y z 6 11. Find values of x, y, and z so that A B, given 2x y 3 A c d and xz 3x 2z B c
z1 2y 5
3 d y8
12. Given matrix X is a solution to AX B for the matrix A given. Find matrix B. 1 1 2 2 X £ 3 A £ 2 6 3 § § 2 3 4 1 2 13. Use matrices to determine which three of the following four points are collinear: (1, 4), (1, 3), (2, 1), (4, 1) 14. A farmer plants a triangular field with wheat. The first vertex of the triangular field is 1 mi east and 1 mi north of his house. The second vertex is 3 mi east and 1 mi south of his house. The third vertex is 1 mi west and 2 mi south of his house. What is the area of the field? 15. For A c
r 2 10 d and A2 c 3 s 3 find r and s.
2 d given, 7
903
Create a system of equations to model each exercise, then solve using any matrix method. 16. Dr. Brown and Dr. Stamper graduate from medical school with $155,000 worth of student loans. Due to her state’s tuition reimbursement plan, Dr. Brown owes one fourth of what Dr. Stamper owes. How much does each doctor owe? 17. Justin is rehabbing two old houses simultaneously. He calculates that last week he spent 23 hr working on these houses. If he spent 8 more hours on one of the houses, how many hours did he spend on each house? 18. In his first month as assistant principal of Washington High School, Mr. Johnson gave out 20 detentions. They were either for 1 day, 2 days, or 5 days. He recorded a total of 38 days of detention served. He also noted that there were twice as many 2-day detentions as 5-day detentions. How many of each type of detention did Mr. Johnson give out? 19. The city of Cherrywood has approved a $1,800,000 plan to renovate its historic commercial district. The money will be coming from three separate sources. The first is a federal program that charges a low 2% interest annually. The second is a municipal bond offering that will cost 5% annually. The third is a standard loan from a neighborhood bank, but it will cost 8.5% annually. In the first year, the city will not make any repayment on these loans and will accrue $94,500 more debt. The federal program and bank loan together are responsible for $29,500 of this interest. How much money was originally provided by each source? 20. Decompose the expression into partial fractions: 4x2 4x 3 x3 27
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Cramer’s Rule In Section 9.4, we saw that one interesting application of matrices is Cramer’s rule. You may have noticed that when technology is used with Cramer’s rule, the chances of making an error are fairly high, as we need to input the entries for numerous matrices. However, as we mentioned in the chapter introduction, one of the advantages of matrices is that they are easily programmable, and we can actually write a very simple program that will make Cramer’s rule a more efficient method.
To begin, press the PRGM key, and then the right arrow twice to enter a name for our program. At the prompt, we’ll enter CRAMER2. As we write the program, note that the needed commands (ClrHome, Disp, Prompt, Stop) are all located in the submenus of the PRGM key, and the ⴝ sign is found under the TEST menu, accessed using the 2nd MATH keys (the arrows “S” are used to indicate the key.
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This program asks for the coefficients of two linear equations in two variables, written in standard form. Then, using Cramer’s rule and the formula for the determinant of a 2 2 matrix, it returns the solutions of the system. :PROGRAM:CRAMER2 :ClrHome :Disp ''22 SYSTEM'' :Disp ''AXBY C'' :Disp ''DXEY F'' :Prompt A,B,C,D,E,F SX :(CE–BF)/(AE–BD)S
SY :(AF–DC)/(AE–BD)S :Disp ''X '',X,''Y '',Y :Stop Exercise 1: Create 2 2 systems of your own that are (a) consistent, (b) inconsistent, and (c) dependent. Then verify results using the program. Exercise 2: Use the formula from page 598 of Section 9.4 to write a similar program for 3 3 systems. Call the program CRAMER3, and repeat parts (a), (b), and (c) from Exercise 1.
STRENGTHENING CORE SKILLS Augmented Matrices and Matrix Inverses The formula for finding the inverse of a 2 2 matrix has its roots in the more general method of computing the inverse of an n n matrix. This involves augmenting a square matrix M with its corresponding identity In on the right (forming an n 2n matrix), and using row operations to transform M into the identity. In some sense, as the original matrix is transformed, the “identity part” keeps track of the operations we used to convert M and we can use the results to “get back home,” so to speak. We’ll illustrate with the 2 2 matrix from Section 9.3, Example 2B, where we found that 1 2.5 6 5 6 5 c d was the inverse matrix for c d . We begin by augmenting c d with the 2 2 identity. 1 3 2 2 2 2 c c
6 0
6 2
5 2
0 6 d 2R1 6R2 S R2 c 1 0
5 1 2 2
0 6 d 5R2 R1 S R1 c 3 0
1 6 15 R1 S R1 c d 6 0 1 3
1 0
5 1 1 1
0 1
0 R2 6 d S R2 c 6 2 0
5 1 1 1 0 1
0 d 3
1 2.5 d 1 3
As you can see, the identity is automatically transformed into the inverse matrix when this method is applied. a b Performing similar row operations on the general matrix c d results in the formula given earlier. c d c
£
a 0
a b 1 0 a b 1 0 d cR1 aR2 → R2 c d c d 0 1 0 ad bc c a a b 1 0 a b 1 0 R2 c d → R2 £ § c a 0 adbc c a ad bc 0 1 ad bc ad bc bc ba a 0 1 b 1 0 ad bc ad bc bR2 R1 S R1 ≥ ¥ § c c a a 1 0 1 ad bc ad bc ad bc ad bc
bc bc ad bc ad 1 and combining like terms gives , ad bc ad bc ad bc ad bc and making this replacement we then have Finding a common denominator for
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Cumulative Review Chapters 1–9
ad ad bc ≥ c 0 1 ad bc d ad bc A1 ≥ c ad bc a
0
905
d ba b 1 0 ad bc R1 ad bc ad bc ¥ ¥ . This shows → R1 ≥ a a a c 0 1 ad bc ad bc ad bc b ad bc 1 produces the familiar formula. ¥ and factoring out a ad bc ad bc
As you might imagine, attempting this on a general 3 3 matrix is problematic at best, and instead we simply apply the augmented matrix method to find A1 for the 3 3 matrix shown in blue. 2 1 £ 1 3 3 1
0 1 0 0 2 0 1 0 § 2 0 0 1
R1 2R2 → R2 → 3R1 2R3 → R3 R2 7R1 → R1 → 5R2 7R3 → R3 R3 → R3 8 4R3 R2 → R2 → 4R3 R1 → R1
2 1 £0 7 0 5 14 0 £ 0 7 0 0 14 0 £ 0 7 0 0 14 0 £ 0 7 0 0
0 1 0 0 4 1 2 0 § 4 3 0 2 4 6 2 4 1 2 8 16 10 4 6 2 4 1 2 1 2 1.25 0 14 7 0 7 7 1 2 1.25
0 0§ 14 0 0 § 1.75 7 7 § 1.75
1 0.5 0.5 R1 R2 1 1 1 §. S R1 and S R2 produces the inverse matrix A £ 1 Using 14 7 2 1.25 1.75 To verify, we show AA
1
2 1 I: £ 1 3 3 1
0 1 0.5 0.5 1 2 § £ 1 1 1 § £0 2 2 1.25 1.75 0
0 1 0
0 0 § ✓ ( A1A is also true). 1
Exercise 1: Use the preceding inverse and a matrix equation to solve the system 2x y 2 • x 3y 2z 15. 3x y 2z 9
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 9 1. Solve each equation by factoring. a. 9x 12x 4 2
b. x2 7x 0 c. 3x3 15x2 6x 30 d. x3 4x 3x2 2. Solve for x. 3 3x 1 2 x3 x 2 x x6
3. A torus is a donut-shaped solid figure. Its surface area is given by the formula A 2 1R2 r2 2, where R is the outer radius of the donut, and r is the inner radius. Solve the formula for R in terms of r and A. 4. State the value of all six trig functions given (21, 28) is a point on the terminal side of .
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5. Sketch the graph of y 3 cosa x b using 6 3 transformations of y cos x. 6. A jai alai player in an open-air court becomes frustrated and flings the pelota out and beyond the court. If the initial velocity of the ball is 136 mph and it is released at height of 5 ft, (a) how high is the ball after 3 sec? (b) What is the maximum height of the ball? (c) How long until the ball hits the ground (hopefully in an unpopulated area)? Recall the projectile equation is h1t2 16t2 v0t k. 7. For a complex number a bi, (a) verify the sum of a complex number and its conjugate is a real number. (b) Verify the product of a complex number and its conjuate is a real number. 8. Solve using the quadratic formula: 5x2 8x 2 0. 9. Solve by completing the square: 3x2 72x 427 0. 10. Given cos 53° 0.6 and cos 72° 0.3, approximate the value of cos 19° and cos 125° without using a calculator.
11. Given A 13 4 , y B is a point on the unit circle, find the value of sin , cos , and tan if y 7 0. 12. State the domain of each function: a. f 1x2 12x 3 b. g 1x2 logb 1x 32 x3 c. h 1x2 2 x 5 13. Write the following formulas from memory: a. slope formula b. midpoint formula c. quadratic formula d. distance formula e. interest formula (compounded continuously) 14. Find the equation of the line perpendicular to the line 4x 5y 20, that contains the point (0, 1). 15. For the force vectors F1 and F2 given, find a third force vector F3 that will bring these vectors into equilibrium: F1 H5, 12I F2 H8, 6I
16. A commercial fishery stocks a lake with 250 fish. Based on previous experience, the population of fish is expected to grow according to the model 12,000 P 1t2 , where t is the time in months. 1 25e0.2t From on this model, (a) how many months are required for the population to grow to 7500 fish? (b) If the fishery expects to harvest three-fourths of the fish population in 2 yr, approximately how many fish will be taken? 17. Evaluate each expression by drawing a right triangle and labeling the sides. x bd a. sec c sin1a 2121 x2 b. sin c csc1a
29 x2 bd x
18. An luxury ship is traveling at 15 mph on a heading of 10°. There is a strong, 12 mph ocean current flowing from the southeast, at a heading of 330°. What is the true course and speed of the ship? 19. Use the Guidelines for Graphing to sketch the graph of function f given, then use it to solve f 1x2 6 0: f 1x2 x3 4x2 x 6 20. Use the Guidelines for Graphing to sketch the graph of function g given, then use it to name the intervals x2 4 where g 1x2T and g 1x2c: g1x2 2 x 1 21. Find 11 23i2 8 using De Moivre’s theorem. 22. Solve ln1x 22 ln1x 32 ln14x2.
23. If I saved $200 each month in an annuity program that paid 8% annual interest compounded monthly, how long would it take to save $10,000? 24. Mount Tortolas lies on the Argentine-Chilean border. When viewed from a distance of 5 mi, the angle of elevation to the top of the peak is 38°. How tall is Mount Tortolas? State the answer in feet. 25. The graph given is of the form y A sin1Bx C2. Find the values of A, B, and C. y 2 1
2
1 2
2
3 2
2
x
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College Algebra & Trignometry—
Modeling With Technology IV Learning Objectives
Matrix Applications
Most of the skills needed for this study have been presented in previous sections. Here we’ll use various types of regression, combined with systems of equations, to solve practical applications from business and industry.
In this section, you will learn how to:
A. Find market equilibrium graphically
B. Use matrix equations to solve static systems
In a “free-market” economy, also referred to as a “supply-and-demand” economy, there are naturally occurring forces that invariably come into play if no outside forces act on the producers (suppliers) and consumers (demanders). Generally speaking, the higher the price of an item, the lower the demand. A good advertising campaign can increase the demand, but the increasing demand brings an increase in price, which moderates the demand—and so it goes until a balance is reached. There are limitations to this model, and this interplay can be affected by the number of available consumers, production limits, “shelf-life” issues, and so on, but at any given moment in the life cycle of a product, consumer demand responds to price in this way. On the other hand, producers also respond to price in a very predictable way. The higher the price of an item, the more producers are willing to supply, but as the price of the item decreases, the producers’ willingness to supply the item also decreases. These free-market forces ebb and flow until market equilibrium occurs, at the specific price where the supply and demand are equal. In the mathematical model for these market forces, it seems reasonable that price is the independent variable, with quantity demanded and quantity produced as the dependent variables.
C. Use matrices for encryption/decryption
EXAMPLE 1
Solution
A. Supply/Demand Curves and Market Equilibrium
Finding Market Equilibrium Graphically An electronics company manufactures mp3 players. The monthly demand for their player can be modeled by the function D1 p2 95p 11,900, where D( p) represents the number of players purchased (demanded) at price p. The supply function for these players is S1 p2 130p 1600, where S( p) represents the number of players manufactured (supplied) at price p. Use a graphing calculator to help find the price at which market equilibrium will occur. Figure MWT IV.1 Enter the demand equation as Y1 and the supply equation as Y2, as shown in Figure MWT IV.1. To set an appropriate viewing window, note that negative values do not fit the context, so we restrict our attention to QI. Since the y-intercepts are 11,900 and 600, respectively, appropriate settings for the y-values would be Ymin 0 and Ymax 12,000. The x-intercepts are approximately 12 and 125, so appropriate Figure MWT IV.2 settings for the x-values would be Xmin 0 12,000 and Xmax 130 to allow for a frame around the viewing window. Pressing the GRAPH key at this point should produce the graph shown in Figure MWT IV.2. To find the 130 equilibrium point (where supply and demand 0 meet), we’ll use the 2nd TRACE (CALC), 5:intersect option. As before, we press ENTER three times to identify the first curve, 0
MWT IV–1
907
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the second curve, and to bypass the “Guess” option. The result shows (60, 6200) is the point of intersection, meaning equilibrium will occur at a price of $60/player, and 6200 units will be demanded and supplied at this price. Now try Exercises 1 through 4
As a follow-up to Example 1, a person could reasonably ask, “Where did the equations come from?” In this instance, they were artificially constructed to yield a “nice” solution. In actual practice, the equations and coefficients are not so “well behaved” and are based on the collection and interpretation of real data. While market analysts have sophisticated programs and numerous models to help develop these equations, in this study we’ll use our experience with regression to develop the supply and demand curves.
EXAMPLE 2
Using Technology to Find Market Equilibrium The company from Exercise 1 hired a consulting firm to do market research on their “next generation” mp3 player. Over a 10-week period, the firm collected the data shown for the mp3 player market (data includes mp3 players sold and expected to sell). a. Use a graphing calculator to simultaneously display the demand and supply scatter-plots. b. Calculate a line of best fit for each and graph them with the scatter-plots (identify each curve). c. Find the equilibrium point.
Solution
a. Begin by clearing all lists. This can be done ⴙ manually, or by pressing 2nd (MEM) and selecting option 4:ClrAllLists (the command appears on the home screen). Pressing ENTER will execute the command, and the word DONE will appear. Carefully input price in L1, demand in L2, and supply in L3 (see Figure MWT IV.3). With the window settings given in Figure MWT IV.4, pressing GRAPH will display the price/demand and price/supply scatter-plots shown. If this is not the case, use 2nd Y = (STAT PLOT) to be sure that “On” is highlighted in Plot1 and Plot2, and that Plot1 uses L1 and L2, while Plot2 uses L1 and L3 (Figure MWT IV.5). Note we’ve chosen a different mark to indicate the data points in Plot2. b. Calculate the linear regression equation for L1 and L2 (demand), and paste it in Y1: LinReg (ax b) L1, L2, Y1 ENTER . 40 Next, calculate the linear regression for L1 and L3 (supply) and paste it in
Price Supply (dollars) Demand (Inventory) 107.10
6,900
12,200
85.50
7,900
9,900
64.80
13,200
8,000
52.20
13,500
7,900
108.00
6,700
14,000
91.80
7,600
12,000
77.40
9,200
9,400
46.80
13,800
6,100
74.70
10,600
8,800
68.40
12,800
8,600
Figure MWT IV.3
Figure MWT IV.4 16,000
120
0
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Figure MWT IV.5
A. You’ve just learned how to find market equilibrium graphically
Figure MWT IV.6
Figure MWT IV.7 Y2: LinReg(ax b) L1, L3, Y2 ENTER 15,000 (recall that Y1 and Y2 are accessed using the VARS key). The resulting equations and graphs are shown in Figures MWT IV.6 and MWT IV.7. c. Once again we use 2nd TRACE (CALC) 0 5:intersect to find the equilibrium point, which is approximately (80, 9931). Supply and demand for this mp3 player 0 model are approximately equal at a price of about $80, with 9931 mp3 players bought and sold.
130
Now try Exercises 5 through 8
B. Solving Static Systems with Varying Constraints When the considerations of a business or industry involve more than two variables, solutions using matrix methods have a distinct advantage over other methods. Companies often have to perform calculations using basic systems weekly, daily, or even hourly, to keep up with trends, market changes, changes in cost of raw materials, and so on. In many situations, the basic requirements remain the same, but the frequently changing inputs require a recalculation each time they change.
EXAMPLE 3
Determining Supply Inventories Using Matrices BNN Soft Drinks receives new orders daily for its most popular drink, Saratoga Cola. It can deliver the carbonated beverage in a twelve-pack of 12-ounce (oz) cans, a six-pack of 20-oz bottles, or in a 2-L bottle. The ingredients required to produce a twelve-pack include 1 gallon (gal) of carbonated water, 1.25 pounds (lb) of sugar, 2 cups (c) of flavoring, and 0.5 grams (g) of caffeine. For the six-pack, 0.8 gal of carbonated water, 1 lb of sugar, 1.6 c of flavoring, and 0.4 g of caffeine are needed. The 2-L bottle contains 0.47 gal of carbonated water, 0.59 lb of sugar, 0.94 c of flavoring, and 0.24 g of caffeine. How much of each ingredient must be on hand for Monday’s order of 300 twelve-packs, 200 six-packs, and 500 2-L bottles? What quantities must be on hand for Tuesday’s order: 410 twelvepacks, 320 six-packs, and 275 2-L bottles?
Solution
Begin by setting up a general system of equations, letting x represent the number of twelve-packs, y the number of six-packs, and z the number of 2-L bottles: 1x 0.8y 0.47z gallons of carbonated water 1.25x 1y 0.59z pounds of sugar μ 2x 1.6y 0.94z cups of flavoring 0.5x 0.4y 0.24z grams of caffeine
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As a matrix equation we have w 1 0.8 0.47 x s 1.25 1 0.59 ≥ ¥ £y§ ≥ ¥ 2 1.6 0.94 f z c 0.5 0.4 0.24 Enter the 4 3 matrix as matrix A, and the size of the order as matrix as B. Using a calculator, we find 1 0.8 1.25 1 AB ≥ 2 1.6 0.5 0.4
695 0.47 300 0.59 870 ¥ £ 200 § ≥ ¥, 1390 0.94 500 350 0.24
and BNN Soft Drinks will need 695 gal of 410 carbonated water, 870 lb of sugar, 1390 c of flavoring, and 350 g of caffeine for Monday’s order. After entering C £ 320 § 275 for Tuesday’s orders, computing the product AC shows 795.25 gal of carbonated water, 994.75 lb of sugar, 1590.5 c of flavoring, and 399 g of caffeine are needed for Tuesday. Now try Exercises 9 through 14
Example 3 showed how the creation of a static matrix can help track and control inventory requirements. In Example 4, we use a static matrix to solve a system that will identify the amount of data traffic used by a company during various hours of the day.
EXAMPLE 4
Identifying the Source of Data Traffic Using Matrices Mariño Imports is a medium-size company that is considering upgrading from a 1.544 megabytes per sec (Mbps) T1 Internet line to a fractional T3 line with a bandwidth of 7.72 Mbps. They currently use their bandwidth for phone traffic, office data, and Internet commerce. The IT (Internet Technology) director devises a plan to monitor how much data traffic each resource uses on an hourly basis. Because of the physical arrangement of the hardware, she cannot monitor each resource individually. The table shows the information she collected for the first 3 hr. Determine how many gigabytes (GB) each resource used individually during these 3 hrs.
Solution
Phone, Data, and Commerce
Phone and Data
Data and Commerce
9–10:00 A.M.
5.4 GB
4.0 GB
4.2 GB
10–11:00 A.M.
5.3 GB
3.8 GB
4.2 GB
11–12:00 P.M.
5.1 GB
3.5 GB
3.6 GB
Using p to represent the phone traffic, d for office data, p d c 5.4 and c for Internet commerce, we create the system •p d 4.0 shown, which models data use for the 9:00 o’clock hour. d c 4.2 Since we actually need to solve two more systems whose only difference is the constant terms (for the 10 and 11 o’clock hours), using a matrix equation to solve the system (Section 6.3)
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will be most convenient. Begin by writing the related matrix equation for this system: 1 AX B : £ 1 0
1 1 1
1 p 5.4 0 § £ d § £ 4.0 § 1 c 4.2
Using X A1B to solve the system (see figure), we find there was 1.2 GB of phone traffic, 2.8 GB of office data, and 1.4 GB of Internet commerce during this hour. Note that the IT director may make this calculation 10 or more times a day (once for every hour of business). While we could solve for the 10 and 11 o’clock hours using 5.3 5.1 C £ 3.8 § and D £ 3.5 § , then calculate A1C and A1D, these calculations 4.2 3.6 can all be performed simultaneously by combining the matrices B, C, and D into one 3 3 matrix and multiplying by A1. Due to the properties of matrix multiplication, each column of the product will represent the data information for a given hour, as shown here: 5.4 3A1 4 £ 4.0 4.2 B. You’ve just learned how to use matrix equations to solve static systems
5.3 3.8 4.2
5.1 1.2 3.5 § £ 2.8 3.6 1.4
1.1 2.7 1.5
1.5 2.0 § 1.6
In the second hour, there was 1.1 GB of phone traffic, 2.7 GB of office data, and 1.5 GB of Internet commerce. In the third hour, 1.5 GB of phone traffic, 2.0 GB of office data, and 1.6 GB of Internet commerce bandwidth was used. Now try Exercises 15 through 18
C. Using Matrices to Encode Messages In The Gold-Bug, by Edgar Allan Poe, the narrator deciphers the secret message on a treasure map by accounting for the frequencies of specific letters and words. The coding used was a simple substitution cipher, which today can be broken with relative ease. In modern times where information wields great power, a simple cipher like the one used here will not suffice. When you pay your tuition, register for classes, make on-line purchases, and so on, you are publicly transmitting very private data, which needs to be protected. While there are many complex encryption methods available (including the now famous symmetric-key and publickey techniques), we will use a matrix-based technique. The nature of matrix multiplication makes it very difficult to determine the exact matrices that yield a given product, and we’ll use this fact to our advantage. Beginning with a fixed, invertible matrix A, we will develop a matrix B such that the product AB is possible, and our secret message is encrypted in AB. At the receiving end, they will need to know A1 to decipher the message, since A1 1AB2 1A1A2B B, which is the original message. Note that in case an intruder were to find matrix A (perhaps purchasing the information from a disgruntled employee), we must be able to change it easily.
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This means we should develop a method for generating a matrix A, with integer entries, where A is invertible and A1 also has integer entries.
EXAMPLE 5
Finding an Invertible Matrix A Where Both A and A1 Have Integer Entries Find an invertible 3 3 matrix A as just described, and its inverse A1.
Solution
Begin with any 3 3 matrix that has only 1s or 1s on its main diagonal, and 0s below the diagonal. The upper triangle can consist of any integer values you choose, as in 1 £ 0 0
5 1 0
1 8§ 1
Now, use any of the elementary row operations Figure MWT IV.8 to make the matrix more complex. For instance, we’ll using a calculator to create a new matrix by (1) using R1 R2 S R2, and R1 R3 S R3 to create matrix [C], then (2) using R2 R3 S R2 to create matrix [D], then (3) using R3 R2 S R2 to create matrix [E], and finally (4) 2 R1 R3 S R3 to obtain our final matrix [A]. To begin, enter the initial matrix as matrix B. For (1) R1 R2 S R2, go to the (MATRIX) Figure MWT IV.9 MATH submenu, select option D:row ( and press ENTER to bring this option to the home screen (Figure MWT IV.8). This feature requires us to name the matrix we’re using, and to indicate what rows to add, so we enter D:row( [B], 1, 2) . The screen shown in Figure MWT IV.9 indicates we’ve placed the result in matrix [C]. For R1 R3 S R3, recall D:row( [B], 1, 2) using 2nd ENTER and Figure MWT IV.10 change it to D:row( [C], 1, 3) STO [D]. Repeat this process for (3) R3 R2 S R2 to create matrix [E]: D:row( [D], 3, 2) STO [E] (Figure MWT IV.10). Finally, we compute (4) 2R1 R3 S R3 using the (new) option F:*row(2, [E], 1, 3) STO [A] and the process is complete. The entries of matrix A are all integers, and A1 exists and also has integer entries (see Figures MWT IV.11 and MWT IV.12). This will always be the case for matrices created in this way. Figure MWT IV.11
Figure MWT IV.12
Now try Exercises 19 through 24
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EXAMPLE 6
Using Matrices to Encode Messages Set up a substitution cipher to encode the message MATH IS SWEET, and then use the matrix A from Example 5 to encrypt it.
Solution
For the cipher, we will associate a unique number to every letter in the alphabet. This can be done randomly or using a systematic approach. Here we choose to associate 0 with a blank space, and assign 1 to A, 1 to B, 2 to C, 2 to D, and so on. Blank
A
B
C
D
E
F
G
H
I
J
K
L
M
0
1
1
2
2
3
3
4
4
5
5
6
6
7
N
O
P
Q
R
S
T
U
V
W
X
Y
Z
7
8
8
9
9
10 10 11 11 12 12 13
13
Now encode the secret message as shown: M
A
7
1
T
H
10 4
0
I
S
5
10
0
S
W
E
E
T
10
12
3
3
10
We next enter the coded message into a new matrix B, by entering it letter by letter into the columns of B. Note that since the encrypting matrix A is 3 3, B must have 3 rows for multiplication to be possible. The result is M B £A T
H * I
S * S
W E E
T 7 *§ £ 1 * 10
4 0 5
10 0 10
12 3 3
10 0§ 0
If the message is too short to fill matrix B, we use blank spaces to complete the final column. Computing the product AB encrypts the message, and only someone with access to A1 will be able to read it: 1 AB £ 2 1 8 £ 73 18
5 11 5
1 7 7§ £ 1 2 10
1 43 6
20 50 30
0 30 3
4 0 5
10 0 10
12 3 3
10 0§ 0
10 20 § 10
The coded message is 8, 73, 18, 1, 43, 6, 20, 50, 30, 0, 30, 3, 10, 20, 10. Now try Exercises 25 through 30
EXAMPLE 7
Deciphering Coded Messages Using an Inverse Matrix Decipher the coded message from Example 6, using A1 from Example 5.
Solution
The received message is 8, 73, 18, 1, 43, 6, 20, 50, 30, 0, 30, 3, 10, 20, 10, and is the result of the product AB. To find matrix B, we apply A1 since A1 1AB2 1A1 A2B B. Writing the received message in matrix form we have 8 AB £ 73 18
1 43 6
20 50 30
0 30 3
10 20 § 10
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Next multiply AB by A1 on the left, to determine matrix B: 1
A
57 1AB2 £ 11 1 7 £ 1 10
C. You’ve just learned how to use matrices for encryption/decryption
46 8 9 § £ 73 1 18
5 1 0 4 0 5
10 0 10
12 3 3
1 43 6
20 50 30
0 30 3
10 20 § 10
10 0§ B 0
Writing matrix B in sentence form gives 7, 1, 10, 4, 0, 5, 10, 0, 10, 12, 3, 3, 10, 0, 0, and using the substitution cipher to replace numbers with letters, reveals the message MATH IS SWEET. Now try Exercises 31 through 36
MODELING WITH TECHNOLOGY EXERCISES 1. A water sports company manufactures high-end wakeboards. The monthly demand for their boards is modeled by D1 p2 2.25p 1125, where D( p) represents the number of boards bought at price p. The supply function is S1p2 0.75p 75, where S(p) represents the number of boards supplied at price p. Use a graphing calculator to find the market equilibrium for this product. 2. A local metal shop manufactures rabbit cages. The monthly demand for their cage is related to its price. The function D1 p2 12 p 45 2 models this demand, where D(p) represents the number of cages bought at price p. The supply function is S1 p2 p 15, where S( p) represents the number of cages supplied at price p. Use a graphing calculator to find the market equilibrium for this product. 3. The Bureau of Labor and Statistics (BLS) keeps track of important statistics for many different markets. In studying the supply and demand for refined gasoline in Atlanta, Georgia, for the month of April, the BLS stated that monthly demand was modeled by the function D shown, where D( p) represents the number of gallons bought at price p. The monthly supply was modeled by the function S shown, where S(p) represents the number of gallons supplied at price p. Use a graphing calculator to find the market equilibrium for this product: D1p2 15.000 107 2p 12.435 108 2 , S1p2 15.000 107 2p 16.350 107 2 4. The Bureau of Labor and Statistics has been closely following the energy-efficient fluorescent lightbulb market over the past year. The yearly demand for these “green” lightbulbs is related to its price. The demand function is
D1p2 14.500 106 2p 15.191 107 2 , where D( p) represents the number of 30-W bulbs bought at price p. The supply function is S1p2 18.5 106 2p 16.483 107 2 , where S( p) represents the number of 30-watt bulbs supplied at price p. Use a graphing calculator to find the market equilibrium for this product. 5. The company from Exercise 1 has hired an outside consulting firm to do some market research on their wakeboard. This consulting firm collected the following supply and demand data for this and comparable wakeboards over a 10-week period. Find the equilibrium point. Round your answer to the nearest integer and dollar.
Average Price (in U.S. dollars)
Quantity Demanded
Available Inventory
424.85
175
232
445.25
166
247
389.55
291
215
349.98
391
201
402.22
218
226
413.87
200
222
481.73
139
251
419.45
177
235
397.05
220
219
361.90
317
212
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6. The metal shop from Exercise 2 has collected some data on sales and production of its rabbit cages over the past 8 weeks. The following table shows the supply and demand data for this cage. Find the equilibrium point (round to the nearest cent and whole cage). Average Price (in U.S. dollars)
Quantity Sold (Demand)
Production (Supply)
22.99
12
7
21.49
14
6
23.99
11
7
26.99
9
11
25.99
8
10
27.99
8
13
24.49
10
9
26.49
9
11
7. The Bureau of Labor and Statistics from Exercise 3 collected the following supply-and-demand data for refined gasoline for the month of May. Data were collected every Tuesday and Friday. Find the equilibrium point, rounding your answer to the nearest hundred thousand gallons and whole cent. Average Price Quantity Demanded Available Inventory (in U.S. dollars) (1 107 gal) (1 107 gal) 3.17
8.82
9.10
3.12
8.87
9.05
3.04
9.08
8.97
2.84
9.22
8.91
3.11
8.92
9.02
3.15
8.76
9.08
3.10
9.01
8.99
3.11
8.94
9.01
2.93
9.13
8.93
8. The Bureau of Labor and Statistics from Exercise 4 collected the following supply and demand data for the energy-efficient fluorescent lightbulbs sold each month for the past year. Find the equilibrium point, rounding your answer to the nearest ten thousand lightbulbs and whole cent. What is the yearly demand at the equilibrium point?
Average Price Quantity Demanded Available Inventory (in U.S. dollars) (in millions) (in millions) 9.40
0.84
1.23
8.51
1.17
0.95
8.78
1.05
1.11
10.82
0.68
1.29
6.77
1.47
0.77
9.33
0.91
1.21
8.34
1.25
0.88
10.37
0.76
1.27
8.62
1.09
1.02
8.44
1.21
0.92
8.58
1.18
0.97
8.96
1.01
1.17
9. Slammin’ Drums manufactures several different types of drums. Its most popular drums are the 22 bass drum, the 12 tom, and the 14 snare drum. The 22 bass drum requires 7 ft2 of skin, 8.5 ft2 of wood veneer, 8 tension rods, and 11.5 ft of hoop. The 12 tom requires 2 ft2 of skin, 3 ft2 of wood veneer, 6 tension rods, and 6.5 ft of hoop. The 14 snare requires 2.5 ft2 of skin, 1.5 ft2 of wood veneer, 10 tension rods, and 7 ft of hoop. In February, Slammin’ Drums received orders for 15 bass drums, 21 toms, and 27 snares. Use your calculator and a matrix equation to determine how much of each raw material they need to have on hand, to fill these orders. 10. In March, Slammin’ Drum’s orders consisted of 19 bass drums, 19 toms, and 25 snares. Use your calculator and a matrix equation to determine how much of each raw material they need to have on hand, to fill their orders. (See Exercise 9.) 11. The following table represents Slammin’s orders for the months of April through July. Use your calculator and a matrix equation to determine how much of each raw material they need to have on hand to fill these orders. (See Exercise 9.) (Hint: Using a clever 4 3 and 3 1 matrix can reduce this problem to a single step.) April
May
June
July
Bass drum
23
21
17
14
Tom
20
18
15
17
Snare drum
29
35
27
25
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12. The following table represents Slammin’s orders for the months of August through November. Use your calculator and a matrix equation to determine how much of each raw material they need to have on hand to fill their orders. (See Exercise 9.) (Hint: Using a clever 4 3 and 3 1 matrix can reduce this problem to a single step.) August
September
October
November
Bass drum
17
22
16
12
Tom
15
14
13
11
Snare drum
32
28
27
21
13. Midwest Petroleum (MP) produces three types of combustibles using common refined gasoline and vegetable products. The first is E10 (also known as gasohol), the second is E85, and the third is biodiesel. One gallon of E10 requires 0.90 gal of gasoline, 2 lb of corn, 1 oz of yeast, and 0.5 gal of water. One gallon of E85 requires 0.15 gal of gasoline, 17 lb of corn, 8.5 oz of yeast, and 4.25 gal of water. One gallon of biodiesel requires 20 lb of corn and 3 gal of water. One week’s production at MP consisted of 100,000 gal of E10, 15,000 gal of E85, and 7000 gal of biodiesel. Use your calculator and a matrix equation to determine how much of each raw material they used to fill their orders. 14. The following table represents Midwest Petroleum’s production for the next 3 weeks. Use your calculator and a matrix equation to determine the total amount of raw material they used to fill their orders. See Exercise 13. Week 2
Week 3
Week 4
E10
110,000
95,000
105,000
E85
17,000
18,000
20,000
6,000
8,000
10,000
Biodiesel
15. Roll-X Watches makes some of the finest wristwatches in the world. Their most popular model is the Clam. It comes in three versions: Silver, Gold, and Platinum. Management thinks there might be a thief in the production line, so they decide to closely monitor the precious metal
consumption. A Silver Clam contains 1.2 oz of silver and 0.2 oz of gold. A Gold Clam contains 0.5 oz of silver, 0.8 oz of gold, and 0.1 oz of platinum. A Platinum Clam contains 0.2 oz of silver, 0.5 oz of gold, and 0.7 oz of platinum. During the first week of monitoring, the production team used 10.9 oz of silver, 9.2 oz of gold, and 2.3 oz of platinum. Use your calculator and a matrix equation to determine the number of each type of watch that should have been produced. 16. The following table contains the precious metal consumption of the Roll-X Watch production line during the next five weeks (see Exercise 15). Use your graphing calculator to determine the number of each type of watch that should have been produced each week. For which week does the data seem to indicate a possible theft of precious metal? Ounces
Week 1
Week 2
Week 3
Week 4
Week 5
Silver
13.1
9
12.9
11.9
11.2
Gold
11
7.7
8.6
8.4
9.5
Platinum
2.5
1.5
0.9
2.8
1.7
17. There are three classes of grain, of which three bundles from the first class, two from the second, and one from the third make 39 measures. Two of the first, three of the second, and one of the third make 34 measures. And one of the first, two of the second, and three of the third make 26 measures. How many measures of grain are contained in one bundle of each class? (This is the historic problem from the Chiu chang suan shu.) 18. During a given week, the measures of grain that make up the bundles in Exercise 17 can vary slightly. Three local Chinese bakeries always buy the same amount of bundles, as outlined in Exercise 17. That is to say, bakery 1 buys three bundles of the first class, two of the second, and one of the third. Bakery 2 buys two of the first, three of the second, and one of the third. And finally, bakery 3 buys one of the first, two of the second, and three of the third. The following table outlines how many measures of grain each bakery received each day. How many measures of grain were contained in one bundle of each class, on each day? Mon
Tues
Wed
Thurs
Fri
Bakery 1 (measures)
39
38
38
37.75
39.75
Bakery 2 (measures)
34
33
33.5
32.5
35
Bakery 3 (measures)
26
26
27
26.25
27.25
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19. The lower triangle is all zeroes. 20. The upper triangle is all zeroes. 21. a2,1 5 22. a3,2 2 23. a3,1 1 and a2,3 2 24. a2,1 3 and a1,3 1 25. Use the matrix A you created in Exercise 19 and the substitution cipher from Example 6 to encrypt your full name. 26. Use the matrix A you created in Exercise 20 and the substitution cipher from Example 6 to encrypt your school’s name. 27. Design your own substitution cipher. Then use it and the matrix A you created in Exercise 21 to encrypt the title of your favorite movie. 28. Design your own substitution cipher. Then use it and the matrix A you created in Exercise 22 to encrypt the title of your favorite snack food. 29. Design your own substitution cipher. Then use it and the matrix A you created in Exercise 23 to encrypt the White House switchboard phone number, 202-456-1414.
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30. Design your own substitution cipher. Then use it and the matrix A you created in Exercise 24 to encrypt the Casa Rosada switchboard phone number 54-11-4344-3600. The Casa Rosada, or Pink House, consists of the offices of the president of Argentina. 31. Use the matrix A1 from Exercise 19, and the appropriate substitution cipher to decrypt the message from Exercise 25. 32. Use the matrix A1 from Exercise 20, and the appropriate substitution cipher to decrypt the message from Exercise 26. 33. Use the matrix A1 from Exercise 21, and the appropriate substitution cipher to decrypt the message from Exercise 27. 34. Use the matrix A1 from Exercise 22, and the appropriate substitution cipher to decrypt the message from Exercise 28. 35. Use the matrix A1 from Exercise 23, and the appropriate substitution cipher to decrypt the message from Exercise 29. 36. Use the matrix A1 from Exercise 24, and the appropriate substitution cipher to decrypt the message from Exercise 30.
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10 CHAPTER CONNECTIONS
Analytic Geometry and the Conic Sections CHAPTER OUTLINE 10.1 A Brief Introduction to Analytical Geometry 920 10.2 The Circle and the Ellipse 927 10.3 The Hyperbola 940 10.4 The Analytic Parabola 954 10.5 Polar Coordinates, Equations, and Graphs 965 10.6 More on the Conic Sections: Rotation of Axes and Polar Form 978
One of the most breath-taking, dare devil stunts per formed at air shows is the power dive. In some cases, as the pilot dives toward the ground and pulls out of the dive just in time, the plane flys along a path that can be modeled by a hyperpola (the third member of the family of conic sections). If we consider a given point on the ground and under the grandstand as the origin (0, 0), we can use the equation that models the hyperbolic path of the plane to determine its minimum altitude as it passes over the stands. This application appears as Exercise 81 in Section 10.3. Check out these other real-world connections:
10.7 Parametric Equations and Graphs 995
Designing an Elliptical Garden (Section 10.2, Exercise 66) The Design of a Lithotripter for treating kidney stones (Section 10.2, Exercise 68) Locating a Ship Using Radar (Section 10.3, Exercise 85) Parabolic Shape of a Solar Furnace (Section 10.4, Exercise 90) 919
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10.1 A Brief Introduction to Analytical Geometry Generally speaking, analytical geometry is a study of geometry using the tools of algebra and a coordinate system. These tools include the midpoint and distance formulas; the algebra of parallel, perpendicular, and intersecting lines; and other tools that help establish geometric concepts. In this section, we’ll use these tools to verify certain relationships, then use these relationships to introduce a family of curves known as the conic sections.
Learning Objectives In Section 10.1 you will learn how to:
A. Verify theorems from basic geometry involving the distance between two points
A. Verifying Relationships from Plane Geometry
B. Verify that points (x, y) are an equal distance from a given point and a given line
C. Use the defining
For the most part, the algebraic tools used in this study were introduced in previous chapters. As the midpoint and distance formulas play a central role, they are restated here for convenience. Algebraic Tools Used in Analytical Geometry
characteristics of a conic section to find its equation
Given two points P1 1x1, y1 2 and P2 1x2, y2 2 in the xy-plane. Midpoint Formula The midpoint of line segment P1P2 is x1 x2 y1 y2 1x, y2 a , b 2 2
Distance Formula The distance from P1 to P2 is d 21x2 x1 2 2 1y2 y1 2 2
These formulas can be used to verify the conclusion of many theorems from Euclidean geometry, while providing important links to an understanding of the conic sections. EXAMPLE 1
Verifying a Theorem from Basic Geometry A theorem from basic geometry states: The midpoint of the hypotenuse of a right triangle is an equal distance from all three vertices. Verify this statement for the right triangle formed by 14, 22, 14, 22 , and (4, 4).
Solution
y 5
(0, 1)
5 After the plotting points and drawing a P triangle, we note the hypotenuse has endpoints (4, 2) 14, 22 and (4, 4), with midpoint 4 142 4 122 a , b 10, 12. Using the 2 2 distance formula to find the distance from (0, 1) to (4, 4) gives
R (4, 4) M 5
x
Q (4, 2) 5
d 210 42 2 11 42 2 2142 2 132 2 125
5 From the definition of midpoint, (0, 1) is also 5 units from 14, 22 . Checking the distance from (0, 1) to the vertex 14, 22 gives
d 214 02 2 12 12 2 242 132 2 125 5 The midpoint of the hypotenuse is an equal distance from all three vertices (see the figure). Now try Exercises 7 through 12
920
10-2
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A. You’ve just learned how to verify theorems from basic geometry involving the distance between two points
Recall from Section 2.1 that a circle is the set of all points that are an equal distance (called the radius) from a given point (called the center). If all three vertices of a triangle lie on the circumference of a circle, we say the circle circumscribes the triangle. Based on our earlier work, it appears we could also state the theorem in Example 1 as For any circle in the xy-plane whose center (h, k) is the midpoint of the hypotenuse of a right triangle, all vertices lie on the circle defined by 1x h2 2 1y k2 2 1 d2 2 2 , where d is the length of the hypotenuse. See Figure 10.1 and Exercises 13 through 20.
Figure 10.1 y 5
(4, 4)
(0, 1) 5
x
5
(4, 2)
(4, 2) 5
B. The Distance between a Point and a Line Figure 10.2
In a study of analytical geometry, we are also interested in the distance d between a point and a line. This is always defined as the perpendicular distance, or the length of a line segment perpendicular to the given line, with the given point and the point of intersection as endpoints (see Figure 10.2).
EXAMPLE 2
d
Locating Points That Are an Equal Distance from a Given Point and Line In Figure 10.3, the origin (0, 0) is seen to be an equal distance from the point (0, 2) and the line y 2. Show that the following points are also an equal distance from (0, 2) and y 2: a. 12, 12 2
Solution
b. (4, 2)
c. (8, 8)
Since the given line is horizontal, the perpendicular distance from the line to each point can be found by vertically counting the units. It remains to show that this is also the distance from the given point to (0, 2) (see Figure 10.4). a. The distance from 12, 12 2 to y 2 Figure 10.3 is 2.5 units. The distance from y 12, 12 2 to (0, 2) is d
210 22 2 12 0.52 2 2122 2 11.52 2 16.25 2.5 ✓
b. The distance from (4, 2) to y 2 is 4 units. The distance from (4, 2) to (0, 2) is d 210 42 12 22 2
2142 2 102 2 116 4 ✓
5
(0, 2) 5
(0, 0)
2 3
x
5
y 2
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c. The distance from (8, 8) to y 2 is 10 units. The distance from (8, 8) to (0, 2) is
Figure 10.4 y
d 210 82 2 12 82 2
d1 d2 (8, 8)
2182 2 162 2 1100 10 ✓
d1
5
(0, 2)
(4, 2)
d2
(2, 0.5) 5
B. You’ve just learned how to verify that points (x, y) are an equal distance from a given point and a given line
(0, 0)
x
5
y 2
3
Now try Exercises 23 through 26
C. Characteristics of the Conic Sections Figure 10.5 Axis
Nappe Generator Vertex
Examples 1 and 2 bring us one step closer to the wider application of these ideas in a study of the conic sections. But before the connection is clearly made, we’ll introduce some background on this family of curves. In common use, a cone might bring to mind the conical paper cups found at a water cooler. The point of the cone is called the vertex and the sheet of paper forming the sides is called a nappe. In mathematical terms, a cone has two nappes, formed by rotating a nonvertical line (called the generator), about a vertical line (called the axis), at their point of intersection—the vertex (see Figure 10.5). The conic sections are so named because all curves in the family can be formed by a section of the cone, or more precisely the intersection of a plane and a cone. Figure 10.6 shows that if the plane does not go through the vertex, the intersection will produce a circle, ellipse, parabola, or hyperbola.
Nappe
Figure 10.6
WORTHY OF NOTE If the plane does go through the vertex, the result is a single point, a single line (if the plane contains the generator), or a pair of intersecting lines (if the plane contains the axis).
Circle
Ellipse
Parabola
Hyperbola
Circle
Ellipse
Parabola
Hyperbola
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Figure 10.7 The connection we seek to make is that y each conic section can be defined in terms of the distance between points in the plane, as in Example 1, or the distance between a given point and a line, as in Example 2. In Example (8, 8) 1, we noted the points 14, 22, 14, 22, and (4, 4) were all on a circle of radius 5 with d1 5 center (0, 1), in line with the analytic definiFocus tion of a circle: A circle is the set of all points d2 that are an equal distance (called the radius) (4, 2) (0, 2) from a given point (called the center). In Example 2, you may have noticed 5 5 (0, 0) x that the points seemed to form the right y 2 branch of a parabola (see Figure 10.7), and directrix d d in fact, this example illustrates the analytic 1 2 definition of a parabola: A parabola is the set of all points that are an equal distance from a given point (called the focus), and a given line (called the directrix). The focus and directrix are not actually part of the graph, they are simply used to locate points on the graph. For this reason all foci (plural of focus) will be represented by a “*” symbol rather than a point.
EXAMPLE 3
Finding an Equation for All Points That Form a Certain Parabola With Example 2 as a pattern, use the analytic definition to find a formula (equation) for the set of all points that form the parabola.
Solution
Use the ordered pair (x, y) to represent an arbitrary point on the parabola. Since any point on the line y 2 has coordinates 1x, 22 , we set the distance from 1x, 22 to (x, y) equal to the distance from (0, 2) to (x, y). The result is 21x x2 2 3y 122 4 2 21x 02 2 1y 22 2 21y 22 2x 1y 22 1y 22 2 x2 1y 22 2 y2 4y 4 x2 y2 4y 4 8y x2 1 y x2 8 2
2
2
distances are equal simplify power property expand binomials simplify result
All points satisfying these conditions are on the parabola defined by y 18x2. Now try Exercises 27 and 28
At this point, it seems reasonable to ask what happens when the distance from the focus to (x, y) is less than the distance from the directrix to (x, y). For example, what if the distance is only two-thirds as long? As you might guess, the result is one of the other conic sections, in this case an ellipse. If the distance from the focus to a point (x, y) is greater than the distance from the directrix to (x, y), one branch of a hyperbola is formed. While we will defer a development of their general equations until later in the chapter, the following diagrams serve to illustrate this relationship for the ellipse, and show why we refer to the conic sections as a family of curves. In Figure 10.8, the line segment from the focus to each point on the graph (shown in blue), is exactly two-thirds the length of the line segment from the directrix to the same point (shown in red). Note the graph of these points forms the right half of an ellipse. In Figure 10.9, the lines and points forming the first half are moved to the background to more clearly show the remaining points that form the complete graph.
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CHAPTER 10 Analytic Geometry and the Conic Sections
Figure 10.8
EXAMPLE 4
Figure 10.9
Finding an Equation for All Points That Form a Certain Ellipse Suppose we arbitrarily select the point (1, 0) as a focus and the (vertical) line x 4 as the directrix. Use these to find an equation for the set of all points where the distance from the focus to a point (x, y) is 12 the distance from the directrix to (x, y).
Solution
Since any point on the line x 4 has coordinates (4, y), we have Distance from 11, 02 to 1x, y2
1 3 distance from 14, y2 to 1x, y2 4 2
1 21x 12 2 3y 102 4 2 21x 42 2 1y y2 2 2 1 21x 12 2 y2 21x 42 2 2 1 1x 12 2 y2 1x 42 2 4 1 x2 2x 1 y2 1x2 8x 162 4 1 x2 2x 1 y2 x2 2x 4 4 3 2 x y2 3 4 3x2 4y2 12
in words
resulting equation
simplify
power property
expand binomials
distribute
simplify: 1x 2
1 2 3 2 x x 4 4
polynomial form
All points satisfying these conditions are on the ellipse defined by 3x2 4y2 12. Now try Exercises 29 and 30
C. You’ve just learned how to use the defining characteristics of a conic section to find its equation
Actually, any given ellipse has two foci (see Figure 10.10) and the equation from Example 4 could also have been developed using the left focus (with the directrix also on the left). This symmetrical relationship leads us to an alternative definition for the ellipse, which we will explore further in Section 10.2. For foci f1 and f2, an ellipse is the set of all points (x, y) where the sum of the distances from f1 to (x, y) and f2 to (x, y) is constant. See Figure 10.11 and Exercises 31 and 32. Both the focus/directrix definition and the two foci definition have merit, and simply tend to call out different characteristics and applications of the ellipse. The hyperbola also has a focus/directrix definition and a two foci definition. See Exercises 33 and 34.
Figure 10.10 f1
f2
Figure 10.11 d1
d2
f1 d3 (x, y)
d4 d1 d2 d3 d4
f2
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Section 10.1 A Brief Introduction to Analytical Geometry
10.1 EXERCISES
CONCEPTS AND VOCABULARY 4. The conic sections are formed by the intersection of a and a .
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Analytical geometry is a study of using the tools of . 2. The distance formula is d the midpoint formula is M
; .
3. The distance between a point and a line always refers to the distance.
6. A circle is defined relative to an equal distance between two . A parabola is defined relative to an equal distance between a and a .
DEVELOPING YOUR SKILLS
The three points given form a right triangle. Find the midpoint of the hypotenuse and verify that the midpoint is an equal distance from all three vertices.
7. P1 15, 22 P2 11, 22 P3 15, 62 9. P1 12, 12 P2 16, 52 P3 12, 72
11. P1 110, 212 P2 16, 92 P3 13, 32
8. P1 13, 22 P2 13, 142 P3 18, 22
10. P1 10, 52 P2 16, 42 P3 16, 12
12. P1 16, 62 P2 112, 182 P3 120, 422
13. Find the equation of the circle that circumscribes the triangle in Exercise 7. 14. Find the equation of the circle that circumscribes the triangle in Exercise 8. 15. Find the equation of the circle that circumscribes the triangle in Exercise 9.
5. If a plane intersects a cone at its vertex, the result is a , a line, or a pair of lines.
16. Find the equation of the circle that circumscribes the triangle in Exercise 10. 17. Find the equation of the circle that circumscribes the triangle in Exercise 11. 18. Find the equation of the circle that circumscribes the triangle in Exercise 12. 19. Of the following six points, four are an equal distance from the point A(2, 3) and two are not. (a) Identify which four, and (b) find any two additional points that are this same (nonvertical, nonhorizontal) distance from (2, 3): C110, 82 E13, 92 B(7, 15) D(9, 14) G12 2 130, 102 F15, 4 3 1102 20. Of the following six points, four are an equal distance from the point P11, 42 and two are not. (a) Identify which four, and (b) Find any two additional points that are the same (nonvertical, nonhorizontal) distance from (1, 4). Q19, 102 R(5, 12) S17, 112 T14, 4 5132 U11 4 16, 62 V17, 4 1512
WORKING WITH FORMULAS
The Perpendicular Distance from a Point to a Line: Ax1 By1 C d ` ` 2A2 B2 The perpendicular distance from a point (x1, y1) to a given line can be found using the formula shown, where Ax By C 0 is the equation of the line in standard form (A, B, and C are integers).
21. Use the formula to verify that P16, 22 and Q(6, 4) are an equal distance from the line y 12x 3. 22. Find the value(s) for y that ensure (1, y) is this same distance from y 12x 3.
Exercise 21 (x1, y1) d
Ax By C 0
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APPLICATIONS
23. Of the following four points, three are an equal distance from the point A(0, 1) and the line y 1. (a) Identify which three, and (b) find any two additional points that satisfy these conditions. B16, 92 C14, 42 D1212, 62 E14 12, 82 24. Of the following four points, three are an equal distance from the point P(2, 4) and the line y 4. (a) Identify which three, and (b) find any two additional points that satisfy these conditions. R12 4 12, 32 S110, 42 Q110, 92 T12 4 15, 52 25. Consider a fixed point 10, 42 and a fixed line y 4. Verify that the distance from each point to 10, 42 , is equal to the distance from the point to the line y 4. 25 C14 12, 22 A14, 12 Ba10, b 4 D1815, 202
26. Consider a fixed point 10, 22 and a fixed line y 2. Verify that the distance from each point to 10, 22 , is equal to the distance from the point to the line y 2. 9 R1415, 102 P112, 182 Q a6, b 2 S1416, 122 27. The points from Exercise 25 are on the graph of a parabola. Find the equation of the parabola. 28. The points from Exercise 26 are on the graph of a parabola. Find the equation of the parabola.
29. Using 10, 22 as the focus and the horizontal line y 8 as the directrix, find an equation for the set of all points (x, y) where the distance from the focus to (x, y) is one-half the distance from the directrix to (x, y).
points (x, y) where the distance from the focus to (x, y) is two-thirds the distance from the directrix to (x, y). Exercise 31
31. From Exercise 29, verify the points 13, 22 and 1 112, 02 are on the ellipse defined by 4x2 3y2 48. Then verify that d1 d2 d3 d4.
y 5
f2 (0, 2)
(3, 2) d1 5
32. From Exercise 30, verify the points 14, 10 3 2 and 13, 1152 are on the ellipse defined by 5x2 9y2 180. Then verify that d1 d2 d3 d4.
( 12, 0)
d3
5 x
d2 (0, 2)
f1
d4
5
Exercise 32 y 5
4, j d1 (4, 0)
f
d2
2 33. From the focus/directrix 6 f1 (4, 0) 6 x definition of a hyperbola: d3 d4 If the distance from the (3, 15) 5 focus to a point (x, y) is greater than the distance from the directrix to (x, y), one branch of a hyperbola is formed. Using (2, 0) as the focus and the vertical line x 12 as the directrix, find an equation for the set of all points (x, y) where the distance from the focus to (x, y), is twice the distance from the directrix to (x, y).
34. From the two foci definition 5 of a hyperbola: For foci f1 and f2, a hyperbola is the (2, 0) d1 f2 set of all points (x, y) where 5 the difference of the d4 distances from f1 to (x, y) d3 and f2 to (x, y) is constant. (3, 2 6) 5 Verify the points (2, 3) and 13, 2162 are on the graph of the hyperbola from Exercise 33. Then verify d1 d2 d3 d4.
y (2, 3) d2 (2, 0) f1 5 x
30. Using (4, 0) as the focus and the vertical line x 9 as the directrix, find an equation for the set of all
EXTENDING THE CONCEPT
35. Do some reading or research on the orthocenter of a triangle, and the centroid of a triangle. How are they found? What are their properties? Use the ideas and skills from this section to find the (a) orthocenter and (b) centroid of the triangle formed by the points A18, 22, B12, 62 , and C(4, 0).
36. Properties of a circle: A theorem from elementary geometry states: If a radius is perpendicular to a chord, it bisects the chord. Verify this is true for the circle, radii, and chords shown.
y 5
(3, 4) Q (4, 2) T
C
P 5
5 x
S (2, 4) U 5
R
(4, 3)
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Section 10.2 The Circle and the Ellipse
37. Verify that points C 12, 32 and D12 12, 162 are points on the ellipse with foci at A 12, 02 and B 12, 02 , by verifying d1AC2 d1BC2 d1AD2 d1BD2. The expression that results has the form
927
2A B 2A B, which prior to the common use of technology had to be simplified using the formula 1A B 1A B 2a 1b, where a 2A and b 41A2 B 2 2 . Use this relationship to verify the equation above.
MAINTAINING YOUR SKILLS
38. (6.4) Verify the following is an identity: cos12x2 sin2x cot2 1x2 1 cos2x 39. (6.7) Find all solutions in 3 0, 22 225 600 825 sinax b 6
40. (4.4) Solve for x in both exact and approximate form: 10 a. 5 1 9e0.5x b. 345 5e0.4x 75 x2 9 . x2 4 Clearly label all intercepts and asymptotes.
41. (3.5) Sketch a complete graph of h1x2
10.2 The Circle and the Ellipse Learning Objectives
In Section 10.1, we introduced the equation of an ellipse using analytical geometry and the focus-directrix definition. Here we’ll take a different approach, and use the equation of a circle to demonstrate that a circle is simply a special ellipse. In doing so, we’ll establish a relationship between the foci and vertices of the ellipse, that enables us to apply these characteristics in context.
In Section 10.2 you will learn how to:
A. Use the characteristics of a circle and its graph to understand the equation of an ellipse B. Use the equation of an ellipse to graph central and noncentral ellipses C. Locate the foci of an ellipse and use the foci and other features to write the equation D. Solve applications involving the foci
EXAMPLE 1
A. The Equation and Graph of a Circle Recall that the equation of a circle with radius r and center at (h, k) is 1x h2 2 1y k2 2 r2.
As in Section 2.1, the standard form can be used to construct the equation of the circle given the center and radius as in Example 1, or to graph the circle as in Example 2.
Determining the Equation of a Circle Given Its Center and Radius Find the equation of a circle with radius 5 and center at (2, 1).
Solution
With a center of (2, 1), we have h 2, k 1, and r 5. Making the corresponding substitutions into the standard form we obtain 1x h2 2 1y k2 2 r 2 1x 22 2 3y 112 4 2 52 1x 22 2 1y 12 2 25
standard form substitute 2 for h, 1 for k, and 5 for r simplify
The equation of this circle is 1x 22 1y 12 2 25. 2
Now try Exercises 7 through 12
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If the equation is given in polynomial form, recall that we first complete the square in x and y to identify the center and radius.
EXAMPLE 2
Completing the Square to Graph a Circle Find the center and radius of the circle whose equation is given, then sketch its graph: x2 y2 6x 4y 3 0.
Solution
Begin by completing the square in both x and y.
1x2 6x __ 2 1y2 4y __ 2 3 1x2 6x 92 1y2 4y 42 3 9 4 adds 9 to left side
adds 4 to left side
1x 32 2 1y 22 2
group x- and y-terms; add 3
complete the square add 9 4 to right side 16 factor and simplify
The center is at (3, 2), with radius is r 116 4. y 3
(3, 2)
Circle Center at (3, 2)
2
8
r4 (3, 2)
(1, 2)
7
Radius: r 4
x
Diameter: 2r 8
(7, 2)
Endpoints of horizontal diameter (1, 2) and (7, 2) Endpoints of vertical diameter (3, 2) and (3, 6)
(3, 6)
Now try Exercises 13 through 18
The equation of a circle in standard form provides a useful link to some of the other conic sections, and is obtained by setting the equation equal to 1. In the case of a circle, this means we simply divide by r2. 1x h2 2 1y k2 2 r2
1x h2 2
r
A. You’ve just learned how to use the characteristics of a circle and its graph to understand the equation of an ellipse
2
1y k2 r2
standard form
2
1
divide by r 2
In this form, the value of r in each denominator gives the horizontal and vertical distances, respectively, from the center to the graph. This is not so important in the case of a circle, since this distance is the same in any direction. But for other conics, these horizontal and vertical distances are not the same, making the new form a valuable tool for graphing. To distinguish the horizontal from the vertical distance, r2 is replaced by a2 in the “x-term” (horizontal distance), and by b2 in the “y-term” (vertical distance).
B. The Equation of an Ellipse It then seems reasonable to ask, “What happens to the graph when a b?” To answer, 1x 32 2 1y 22 2 1 (after consider the equation from Example 2. We have 42 42 1x 32 2 1y 22 2 dividing by 16), which we now compare to 1, where a 4 42 32
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WORTHY OF NOTE If you point a flashlight at the floor keeping it perpendicular to the ground, a circle is formed with the bulb pointing directly at the center and every point along the outer edge of the beam an equal distance from this center. If you hold the flashlight at an angle, the circle is elongated and becomes an ellipse, with the bulb pointing directly at one focus.
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Section 10.2 The Circle and the Ellipse
and b 3. The center of the graph is still at (3, 2), since h 3 and k 2 remain unchanged. Substituting y 2 to find additional points, eliminates the yterm and gives two values for x: 1x 32 2 42
12 22 2
32 1x 32 2
1
01 42 1x 32 2 16 x3 4 x34 x 7 and x 1
substitute 2 for y
simplify multiply by 42 16 property of square roots add 3
This shows the horizontal distance from the center to the graph is still a 4, and the points (1, 22 and (7, 2) are on the graph (see Figure 10.12). Similarly, for x 3 we have 1y 22 2 9, giving y 5 and y 1, and showing the vertical distance from the center to the graph is b 3, with points (3, 1) and (3, 5) also on the graph. Using this information to sketch the curve reveals the “circle” is elongated and has become an ellipse. For an ellipse, the longest distance across the graph is called the major axis, with the endpoints of the major axis called vertices. The segment perpendicular to and bisecting the major axis (with its endpoints on the ellipse) is called the minor axis, as shown in see Figure 10.13. Figure 10.12 y 3
(3, 1)
Figure 10.13 b3
2
(1, 2)
8
a4
(3, 2) 5
x
Major axis
(7, 2)
a
b Vertex
Vertex Ellipse
(3, 5) The case where a>b
Minor axis
• If a 7 b, the major axis is horizontal (parallel to the x-axis) with length 2a, and the minor axis is vertical with length 2b (see Example 3). • If b 7 a the major axis is vertical (parallel to the y-axis) with length 2b, and the minor axis is horizontal with length 2a (see Example 4). Generalizing this observation we obtain the equation of an ellipse in standard form. The Equation of an Ellipse in Standard Form 1x h2 2
1y k2 2
1. a2 b2 If a b the equation represents the graph of an ellipse with center at (h, k). • a gives the horizontal distance from center to graph. • b gives the vertical distance from center to graph. Given
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EXAMPLE 3
Graphing a Horizontal Ellipse Sketch the graph of 1x 22 2 1y 12 2 1. 25 9
Solution
y Ellipse (2, 2)
Noting a b, we have an ellipse with center 1h, k2 12, 12. The horizontal distance from the center to the graph is a 5, and the vertical distance from the center to the graph is b 3. After plotting the corresponding points and connecting them with a smooth curve, we obtain the graph shown.
(3, 1)
b3 a5 (2, 1)
x
(7, 1)
(2, 4)
Now try Exercises 19 through 24
WORTHY OF NOTE In general, for the equation Ax2 By2 F ( A, B, F 7 0), the equation represents a circle if A B, and an ellipse if A B.
EXAMPLE 4
As with the circle, the equation of an ellipse can be given in polynomial form, and here our knowledge of circles is helpful. For the equation 25x2 4y2 100, we know the graph cannot be a circle since the coefficients are unequal, and the center of the graph must be at the origin since h k 0. To actually draw the graph, we convert the equation to standard form.
Graphing a Vertical Ellipse For 25x2 4y2 100, (a) write the equation in standard form and identify the center and the values of a and b, (b) identify the major and minor axes and name the vertices, and (c) sketch the graph.
Solution
The coefficients of x2 and y2 are unequal, and 25, 4, and 100 have like signs. The equation represents an ellipse with center at (0, 0). To obtain standard form: a. 25x2 4y2 100 given equation 4y2 25x2 1 divide by 100 100 100 y2 x2 1 standard form 4 25 y2 x2 1 write denominators in squared form; a 2, b 5 22 52 b. The result shows a 2 and b 5, indicating the major axis will be vertical and the minor axis will be horizontal. With the center at the origin, the x-intercepts will be (2, 0) and 12, 02, with the vertices (and y-intercepts) at (0, 5) and 10, 52. c. Plotting these intercepts and sketching the ellipse results in the graph shown. y (0, 5)
Vertical ellipse Center at (0, 0)
b5 (2, 0)
Endpoints of major axis (vertices) (0, 5) and (0, 5)
(2, 0) a2
x
Endpoints of minor axis (2, 0) and (2, 0) Length of major axis 2b: 2(5) 10 Length of minor axis 2a: 2(2) 4
(0, 5)
Now try Exercises 25 through 36
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WORTHY OF NOTE After writing the equation in standard form, it is possible to end up with a constant that is zero or negative. In the first case, the graph is a single point. In the second case, no graph is possible since roots of the equation will be complex numbers. These are called degenerate cases. See Exercise 78.
EXAMPLE 5
If the center of the ellipse is not at the origin, the polynomial form has additional linear terms and we must first complete the square in x and y, then write the equation in standard form to sketch the graph (see the Reinforcing Basic Concepts feature for more on completing the square). Figure 10.14 illustrates how the central ellipse and the shifted ellipse are related.
931
Figure 10.14 y Ellipse with center at (h, k) k
(h, k)
(x h)2 (y k)2 1 a2 b2 ab
Central ellipse (0, b) (a, 0) (a, 0) (0, 0) (0, b)
All points shift h units horizontally, k units vertically, opposite the sign
x h x2 y2 2 1 a2 b ab
Completing the Square to Graph an Ellipse Sketch the graph of 25x2 4y2 150x 16y 141 0.
Solution
The coefficients of x2 and y2 are unequal and have like signs, and we assume the equation represents an ellipse but wait until we have the factored form to be certain. 25x2 4y2 150x 16y 141 0 25x2 150x 4y2 16y 141 251x2 6x __ 2 41y2 4y __ 2 141 251x2 6x 92 41y2 4y 42 141 225 16 c
c
adds 25192 225
c
c
add 225 16 to right
given equation (polynomial form) group like terms; subtract 141 factor out leading coefficient from each group complete the square
adds 4142 16
251x 32 2 41y 22 2 100 41y 22 2 251x 32 2 100 100 100 100 1y 22 2 1x 32 2 1 4 25 1y 22 2 1x 32 2 1 22 52 The result is a vertical ellipse with center at 13, 22, with a 2 and b 5. The vertices are a vertical distance of 5 units from center, and the endpoints of the minor axis are a horizontal distance of 2 units from center. Note this is the same ellipse as in Example 4, but shifted 3 units left and 2 up.
factor divide both sides by 100
simplify (standard form)
write denominators in squared form
(3, 7)
y
Vertical ellipse Center at (3, 2)
(5, 2)
(3, 2)
Endpoints of major axis (vertices) (3, 3) and (3, 7) (1, 2)
Endpoints of minor axis (5, 2) and (1, 2) x Length of major axis 2b: 2(5) 10 Length of minor axis 2a: 2(2) 4
(3, 3)
Now try Exercises 37 through 44 B. You’ve just learned how to use the equation of an ellipse to graph central and noncentral ellipses
C. The Foci of an Ellipse In Section 10.1, we noted that an ellipse could also be defined in terms of two special points called the foci. The Museum of Science and Industry in Chicago, Illinois (http://www.msichicago.org), has a permanent exhibit called the Whispering Gallery. The construction of the room is based on some of the reflective properties of an ellipse. If two people stand at designated points in the room and one of them
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whispers very softly, the other person can hear the whisper quite clearly—even though they are over 40 ft apart! The point where each person stands is a focus of the ellipse. This reflective property also applies to light and radiation, giving the ellipse some powerful applications in science, medicine, acoustics, and other areas. To understand and appreciate these applications, we introduce the analytic definition of an ellipse. WORTHY OF NOTE
Definition of an Ellipse
You can easily draw an ellipse that satisfies the definition. Press two pushpins (these form the foci of the ellipse) halfway down into a piece of heavy cardboard about 6 in. apart. Take an 8-in. piece of string and loop each end around the pins. Use a pencil to draw the string taut and keep it taut as you move the pencil in a circular motion—and the result is an ellipse! A different length of string or a different distance between the foci will produce a different ellipse.
Given two fixed points f1 and f2 in a plane, an ellipse is the set of all points (x, y) where the distance from f1 to (x, y) added to the distance from f2 to (x, y) remains constant.
y P(x, y) d1
d1 d2 k f1
The fixed points f1 and f2 are called the foci of the ellipse, and the points P(x, y) are on the graph of the ellipse.
To find the equation of an ellipse in terms of a and b we combine the definition just given with the distance formula. Consider the ellipse shown in Figure 10.15 (for calculating ease we use a central ellipse). Note the vertices have coordinates 1a, 02 and (a, 0), and the endpoints of the minor axis have coordinates 10, b2 and (0, b) as before. It is customary to assign foci the coordinates f1 S 1c, 02 and f2 S 1c, 02. We can calculate the distance between (c, 0) and any point P(x, y) on the ellipse using the distance formula:
6 in. 8 in.
d2
d1 d2 k
Figure 10.15 y (0, b) P(x, y) (a, 0) (c, 0)
(c, 0)
(0, b)
21x c2 2 1y 02 2
Likewise the distance between 1c, 02 and any point (x, y) is 21x c2 2 1y 02 2
According to the definition, the sum must be constant: 21x c2 2 y2 21x c2 2 y2 k EXAMPLE 6
Finding the Value of k from the Definition of an Ellipse Use the definition of an ellipse and the diagram given to determine the constant k used for this ellipse following (also see the following Worthy of Note). Note that a 5, b 3, and c 4. y (0, 3)
P(3, 2.4)
(5, 0) (4, 0) (0, 3)
x
f2
(4, 0)
(5, 0) x
(a, 0) x
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Solution
21x c2 2 1y 02 2 21x c2 2 1y 02 2 k
213 42 12.4 02 213 42 12.4 02 k 2
WORTHY OF NOTE Note that if the foci are coincident (both at the origin) the “ellipse” will actually be a circle with radius k ; 2x2 y2 2x2 y2 k 2 k2 leads to x2 y2 . In 4 Example 1 we found k 10, 10 giving 5, and if we used 2 the “string” to draw the circle, the pencil would be 5 units from the center, creating a circle of radius 5.
2
2
2
2112 2.4 27 2.4 k 16.76 154.76 k 2.6 7.4 k 10 k The constant used for this ellipse is 10 units. 2
2
2
2
given substitute add simplify radicals compute square roots result
Now try Exercises 45 through 48 In Example 6, the sum of the distances could also be found by moving the point (x, y) to the location of a vertex (a, 0), then using the symmetry of the ellipse. The sum is identical to the length of the major axis, since the overlapping part of the string from (c, 0) to (a, 0) is the same length as from (a, 0) to (c, 0) (see Figure 10.16). This shows the constant k is equal to 2a regardless of the distance between foci. As we noted, the result is
Figure 10.16 y
d1
d2
(a, 0) (c, 0)
21x c2 2 y2 21x c2 2 y2 2a
(c, 0)
(a, 0) x
These two segments are equal: d1 d2 2a substitute 2a for k
The details for simplifying this expression are given in Appendix III, and the result is very close to the standard form seen previously: y2 x2 1 a2 a2 c2 y2 y2 x2 x2 with 1 1, we might a2 b2 a2 a2 c2 suspect that b2 a2 c2, and this is indeed the case. Note from Example 6 the relationship yields By comparing the standard form
b2 a2 c2 32 52 42 9 25 16 Additionally, when we consider that (0, b) is Figure 10.17 a point on the ellipse, the distance from (0, b) to y (c, 0) must be equal to a due to symmetry (the (0, b) “constant distance” used to form the ellipse is always 2a). We then see in Figure 10.17, that a a b2 c2 a2 (Pythagorean Theorem), yielding b (a, 0) (a, 0) 2 2 2 b a c as above. x (c, 0) (c, 0) With this development, we now have the ability to locate the foci of any ellipse—an important step toward using the ellipse in prac(0, b) tical applications. Because we’re often asked to find the location of the foci, it’s best to rewrite the relationship in terms of c2, using absolute value bars to allow for a major axis that is vertical: c2 a2 b2.
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EXAMPLE 7
Completing the Square to Graph an Ellipse and Locate the Foci For the ellipse defined by 25x2 9y2 100x 54y 44 0, find the coordinates of the center, vertices, foci, and endpoints of the minor axis. Then sketch the graph.
Solution
25x2 9y2 100x 54y 44 0 25x2 100x 9y2 54y 44 2 251x 4x __ 2 91y2 6y __ 2 44 251x2 4x 42 91y2 6y 92 44 100 81 c
c adds 25142 100
c
given group terms; add 44 factor out lead coefficients
add 100 81 to right-hand side
c adds 9192 81
251x 22 2 91y 32 3 91y 32 2 251x 22 2 225 225 1y 32 2 1x 22 2 9 25 2 1x 22 1y 32 2 32 52
225 225 225
factored form divide by 225
1
simplify (standard form)
1
write denominators in squared form
The result shows a vertical ellipse with a 3 and b 5. The center of the ellipse is at (2, 3). The vertices are a vertical distance of b 5 units from center at (2, 8) and (2, 2). The endpoints of the minor axis are a horizontal distance of a 3 units from center at (1, 3) and (5, 3). To locate the foci, we use the foci formula for an ellipse: c2 a2 b2, giving c2 32 52 16. This shows the foci “✹” are located a vertical distance of 4 units from center at (2, 7) and (2, 1). y (2, 8)
Vertical ellipse Center at (2, 3)
(2, 7)
(1, 3)
(2, 3)
(2, 1) (2, 2)
Endpoints of major axis (vertices) (2, 8) and (2, 2) (5, 3)
x
Endpoints of minor axis (1, 3) and (5, 3) Location of foci (2, 7) and (2, 1) Length of major axis: 2b 2(5) 10 Length of minor axis: 2a 2(3) 6
Now try Exercises 49 through 54
For future reference, remember the foci of an ellipse always occur on the major axis, with a 7 c and a2 7 c2 for a horizontal ellipse. This makes it easier to remember the foci formula for ellipses: c2 a2 b2. Since a2 is larger, it must be decreased by b2 to equal c2. If any two of the values for a, b, and c are known, the relationship between them can be used to construct the equation of the ellipse. EXAMPLE 8
Finding the Equation of an Ellipse Find the equation of the ellipse (in standard form) that has foci at (0, 2) and (0, 2), with a minor axis 6 units in length.
Solution
Since the foci must be on the major axis, we know this is a vertical and central ellipse with c 2 and c2 4. The minor axis has a length of 2a 6 units, meaning a 3 and a2 9. To find b2, use the foci equation and solve.
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c2 a2 b2 4 9 b2 4 9 b2 4 9 b2 2 b2 5 b 13
LOOKING AHEAD For the hyperbola, we’ll find that c 7 a, and the formula for the foci of a hyperbola will be c2 a2 b2.
foci equation (ellipse) substitute
(0, √13)
solve result
2
C. You’ve just learned how to locate the foci of an ellipse and use the foci and other features to write the equation
y
(0, 2) 2
Since we know b must be greater than a (the major axis is always longer), b2 5 can be y2 x2 1. discarded. The standard form is 2 3 1 2132 2
(3, 0)
(3, 0) x
(0, 2) (0, √13)
Now try Exercises 55 through 64
D. Applications Involving Foci Applications involving the foci of a conic section can take various forms. In many cases, only partial information about the conic section is available and the ideas from Example 8 must be used to “fill in the gaps.” In other applications, we must rewrite a known or given equation to find information related to the values of a, b, and c. EXAMPLE 9
Solving Applications Using the Characteristics of an Ellipse In Washington, D.C., there is a park called the Ellipse located between the White House and the Washington Monument. The park is surrounded by a path that forms an ellipse with the length of the major axis being about 1502 ft and the minor axis having a length of 1280 ft. Suppose the park manager wants to install water fountains at the location of the foci. Find the distance between the fountains rounded to the nearest foot.
Solution
Since the major axis has length 2a 1502, we know a 751 and a2 564,001. The minor axis has length 2b 1280, meaning b 640 and b2 409,600. To find c, use the foci equation:
D. You’ve just learned how to solve applications involving the foci
c2 a2 b2 564,001 409,600 154,401 c 393 and c 393 The distance between the water fountains would be 213932 786 ft. Now try Exercises 65 through 76
10.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. For an ellipse, the relationship between a, b, and c is given by the foci equation , since c 6 a or c 6 b.
2. The greatest distance across an ellipse is called the and the endpoints are called .
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3. For a vertical ellipse, the length of the minor axis is and the length of the major axis is .
4. To write the equation 2x2 y2 6x 7 in standard form, the in x.
5. Explain/Discuss how the relations a 7 b, a b and a 6 b affect the graph of a conic section with 1y k2 2 1x h2 2 1. equation a2 b2
6. Suppose foci are located at (3, 2) and (5, 2). Discuss/Explain the conditions necessary for the graph to be an ellipse.
DEVELOPING YOUR SKILLS
Find the equation of a circle satisfying the conditions given.
7. center (0, 0), radius 7 8. center (0, 0), radius 9 9. center (5, 0), radius 13
For each exercise, (a) write the equation in standard form, then identify the center and the values of a and b, (b) state the coordinates of the vertices and the coordinates of the endpoints of the minor axis, and (c) sketch the graph.
10. center (0, 4), radius 15
25. x2 4y2 16
26. 9x2 y2 36
11. diameter has endpoints (4, 9) and (2, 1)
27. 16x2 9y2 144
28. 25x2 9y2 225
12. diameter has endpoints (2, 32 , and (3, 9)
29. 2x2 5y2 10
30. 3x2 7y2 21
Identify the center and radius of each circle, then sketch its graph.
13. x2 y2 12x 10y 52 0
Identify each equation as that of an ellipse or circle, then sketch its graph.
31. 1x 12 2 41y 22 2 16
14. x2 y2 8x 6y 11 0
32. 91x 22 2 1y 32 2 36
15. x2 y2 4x 10y 4 0
33. 21x 22 2 21y 42 2 18
16. x2 y2 4x 6y 3 0 17. x2 y2 6x 5 0 18. x y 8y 5 0 2
2
Sketch the graph of each ellipse.
1x 12 2 1y 22 2 1 19. 9 16 1x 32 2 1y 12 2 20. 1 4 25 21.
1x 22 2 1y 32 2 1 25 4
1x 52 2 1y 22 2 22. 1 1 16
34. 1x 62 2 y2 49
35. 41x 12 2 91y 42 2 36 36. 251x 32 2 41y 22 2 100 Complete the square in both x and y to write each equation in standard form. Then draw a complete graph of the relation and identify all important features.
37. 4x2 y2 6y 5 0 38. x2 3y2 8x 7 0 39. x2 4y2 8y 4x 8 0 40. 3x2 y2 8y 12x 8 0 41. 5x2 2y2 20y 30x 75 0
1x 12 2 1y 22 2 23. 1 16 9
42. 4x2 9y2 16x 18y 11 0
24.
44. 6x2 3y2 24x 18y 3 0
1x 12 2 1y 32 2 1 36 9
43. 2x2 5y2 12x 20y 12 0
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Use the definition of an ellipse to find the constant k used for each ellipse (figures are not drawn to scale).
45.
53. 6x2 24x 9y2 36y 6 0 54. 5x2 50x 2y2 12y 93 0
y (0, 8) (6, 6.4) (a, 0) (6, 0)
(6, 0)
(a, 0) x
55. vertices at (6, 0) and (6, 0); foci at (4, 0) and (4, 0) 56. vertices at (8, 0) and (8, 0); foci at (5, 0) and (5, 0)
(0, 8)
46.
Find the equation of an ellipse (in standard form) that satisfies the following conditions:
y (0, 12)
57. foci at (3, 6) and (3, 2); length of minor axis: 6 units
(9, 9.6) (a, 0) (9, 0)
(9, 0)
(a, 0) x
58. foci at (4, 3) and (8, 3); length of minor axis: 8 units
(0, 12)
47.
(0, b) y (0, 8)
(4.8, 6)
Use the characteristics of an ellipse and the graph given to write the related equation and find the location of the foci.
59.
60.
y
y
(6, 0) x
(6, 0) (0, 8)
x
(0, b)
48.
x
(0, b) y
(0, 28) (96, 0) x
(96, 0) (0, 28)
(76.8, 60)
61.
62.
y
y
(0, b)
Find the coordinates of the (a) center, (b) vertices, (c) foci, and (d) endpoints of the minor axis. Then (e) sketch the graph.
x
x
49. 4x2 25y2 16x 50y 59 0 50. 9x2 16y2 54x 64y 1 0 51. 25x2 16y2 200x 96y 144 0 52. 49x2 4y2 196x 40y 100 0
WORKING WITH FORMULAS
63. Area of an Ellipse: A ab The area of an ellipse is given by the formula shown, where a is the distance from the center to the graph in the horizontal direction and b is the distance from center to graph in the vertical direction. Find the area of the ellipse defined by 16x2 9y2 144.
a2 b2 B 2 The perimeter of an ellipse can be approximated by the formula shown, where a represents the length of the semimajor axis and b represents the length of the semiminor axis. Find the perimeter of the y2 x2 ellipse defined by the equation 1. 49 4
64. The Perimeter of an Ellipse: P 2
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APPLICATIONS
65. Decorative fireplaces: A bricklayer intends to build an elliptical fireplace 3 ft high and 8 ft wide, with two glass doors that open at the middle. The hinges to these doors are to be screwed onto a spine that is perpendicular to the hearth and goes through the foci of the ellipse. How far from center will the spines be located? How tall will each spine be?
for the best result? Round to the nearest hundredth. Exercise 68 Vertex Focus Lithotripter
8 ft
3 ft
Spines
66. Decorative gardens: A retired math teacher decides to present her husband with a beautiful elliptical garden to help celebrate their 50th anniversary. The ellipse is to be 8 m long and 5 m across, with decorative fountains located at the foci. How far from the center of the ellipse should the fountains be located (round to the nearest 100th of a meter)? How far apart are the fountains? 67. Attracting attention to art: As part of an art show, a gallery owner asks a student from the local university to design a unique exhibit that will highlight one of the more significant pieces in the collection, an ancient sculpture. The student decides to create an elliptical showroom with reflective walls, with a rotating laser light on a stand at one focus, and the sculpture placed at the other focus on a stand of equal height. The laser light then points continually at the sculpture as it rotates. If the elliptical room is 24 ft long and 16 ft wide, how far from the center of the ellipse should the stands be located (round to the nearest 10th of a foot)? How far apart are the stands? 68. Medical procedures: The medical procedure called lithotripsy is a noninvasive medical procedure that is used to break up kidney and bladder stones in the body. A machine called a lithotripter uses its three-dimensional semielliptical shape and the foci properties of an ellipse to concentrate shock waves generated at one focus, on a kidney stone located at the other focus (see diagram — not drawn to scale). If the lithotripter has a length (semimajor axis) of 16 cm and a radius (semiminor axis) of 10 cm, how far from the vertex should a kidney stone be located
69. Elliptical arches: In some Exercise 69 situations, bridges are built using uniform 8 ft elliptical archways as 60 ft shown in the figure given. Find the equation of the ellipse forming each arch if it has a total width of 30 ft and a maximum center height (above level ground) of 8 ft. What is the height of a point 9 ft to the right of the center of each arch? 70. Elliptical arches: An elliptical arch bridge is built across a one lane highway. The arch is 20 ft across and has a maximum center height of 12 ft. Will a farm truck hauling a load 10 ft wide with a clearance height of 11 ft be able to go through the bridge without damage? (Hint: See Exercise 69.)
As a planet orbits around the Sun, it traces out an ellipse. If the center of the ellipse were placed at (0, 0) on a coordinate grid, the Sun would be actually off-centered (located at the focus of the ellipse). Use this information and the graphs provided to complete Exercises 71 through 74.
71. Orbit of Mercury: The approximate orbit of the planet Mercury is shown in the figure given. Find an equation that models this orbit.
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(1.296 million miles per day), how many days does it take Mars to orbit the Sun? (Hint: Use the formula from Exercise 64).
Exercise 71 y
Sun x
70.5 million miles
Mercury
72 million miles
72. Orbit of Pluto: The approximate orbit of the dwarf planet Pluto is shown in the figure given. Find an equation that models this orbit. Exercise 72 y
Sun x
3540 million miles
Pluto
3650 million miles
73. Planetary orbits: Except for small variations, a planet’s orbit around the Sun is elliptical with the Sun at one focus. The aphelion (maximum distance from the Sun) of the planet Mars is approximately 156 million miles, while the perihelion (minimum distance from the Sun) of Mars is about 128 million miles. Use this information to find the lengths of the semimajor and semiminor axes, rounded to the nearest million. If Mars has an orbital velocity of 54,000 miles per hour
939
74. Planetary orbits: The aphelion (maximum distance from the Sun) of the planet Saturn is approximately 940 million miles, while the perihelion (minimum distance from the Sun) of Saturn is about 840 million miles. Use this information to find the lengths of the semimajor and semiminor axes, rounded to the nearest million. If Saturn has an orbital velocity of 21,650 miles per hour (about 0.52 million miles per day), how many days does it take Saturn to orbit the Sun? How many years? 75. Area of a race track: Suppose the Toronado 500 is a car race that is run on an elliptical track. The track is bounded by two ellipses with equations of 4x2 9y2 900 and 9x2 25y2 900, where x any y are in hundreds of yards. Use the formula given in Exercise 63 to find the area of the race track. Exercise 76 76. Area of a border: The table cloth for a large oval table is elliptical in shape. It is designed with two concentric ellipses (one within the other) as shown in the figure. The equation of the outer ellipse is 9x2 25y2 225, and the equation of the inner ellipse is 4x2 16y2 64 with x and y in feet. Use the formula given in Exercise 63 to find the area of the border of the tablecloth.
EXTENDING THE THOUGHT
Exercise 77 77. When graphing the conic sections, it is often helpful y Focal to use what is called a focal chords chord, as it gives additional points on the graph with very x little effort. A focal chord is a line segment through a focus (perpendicular to the major or transverse axis), with the endpoints on the graph. For an ellipse, 2 the length of the focal chord is given by L 2m n , where m is the length of the semiminor axis, and n is the length of the semimajor axis. The focus will always be the midpoint of this line segment. Find the length of the focal chord for the ellipse
x2 81
y2
36 1 and the coordinates of the endpoints. Verify (by substituting into the equation) that these endpoints are indeed points on the graph, then use them to help complete the graph. 78. For the equation 6x2 36x 3y2 24y 74 28, does the equation appear to be that of a circle, ellipse, or parabola? Write the equation in factored form. What do you notice? What can you say about the graph of this equation? 79. Verify that for the ellipse the focal chord is
2b2 . a
y2 x2 2 2 1, the length of a b
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MAINTAINING YOUR SKILLS
80. (4.4) Evaluate the expression using the change-ofbase formula: log320. 81. (3.8) The resistance R to current flow in an electrical wire varies directly as the length L of the wire and inversely as the square of its diameter d. (a) Write the equation of variation; (b) find the constant of variation if a wire 2 m long with diameter d 0.005 m has a resistance of 240 ohms (); and (c) find the resistance in a similar wire 3 m long and 0.006 m in diameter.
82. (7.6) Use De Moivre’s theorem to compute the value of z 11 13i2 6. 83. (8.4) Find the true direction and groundspeed of the airplane shown, given the direction and speed of the wind (indicated in blue).
Exercise 83 250 mph heading 20
N
30 mph heading 90
10.3 The Hyperbola Learning Objectives In Section 10.3 you will learn how to:
A. Use the equation of a hyperbola to graph central and noncentral hyperbolas
B. Distinguish between the
As seen in Section 10.1 (see Figure 10.18), a hyperbola is a conic section formed by a plane that cuts both nappes of a right circular cone. A hyperbola has two symmetric parts called branches, which open in opposite directions. Although the branches appear to resemble parabolas, we will soon discover they are actually a very different curve.
Figure 10.18 Axis
Hyperbola
equations of a circle, ellipse, and hyperbola
A. The Equation of a Hyperbola
C. Locate the foci of a hyperbola and use the foci and other features to write its equation
In Section 10.2, we noted that for the equation Ax2 By2 F, if A B, the equation is that of a circle, if A B, the equation represents an ellipse. Both cases contain a sum of second-degree terms. Perhaps driven by curiosity, we might wonder what happens if the equation has a difference of second-degree terms. Consider the equation 9x2 16y2 144. It appears the graph will be centered at (0, 0) since no shifts are applied (h and k are both zero). Using the intercept method to graph this equation reveals an entirely new curve, called a hyperbola.
D. Solve applications involving foci
EXAMPLE 1
Graphing a Central Hyperbola Graph the equation 9x2 16y2 144 using intercepts and additional points as needed.
Solution
9x2 16y2 9102 2 16y2 16y2 y2
144 144 144 9
given substitute 0 for x simplify divide by 16
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Since y2 can never be negative, we conclude that the graph has no y-intercepts. Substituting y 0 to find the x-intercepts gives 9x2 16y2 144 9x2 16102 2 144 9x2 144 x2 16 x 116 and x 116 x 4 and x 4 (4, 0) and 14, 02
given substitute 0 for y simplify divide by 9 square root property simplify x-intercepts
Knowing the graph has no y-intercepts, we select inputs greater than 4 and less than 4 to help sketch the graph. Using x 5 and x 5 yields 9x2 16y2 9152 2 16y2 91252 16y2 225 16y2 16y2
144 144 144 144 81 81 y2 16 9 9 y y 4 4 y 2.25 y 2.25 15, 2.252 15, 2.252
9x2 16y2 9152 2 16y2 91252 16y2 225 16y2 16y2
given substitute for x 52 152 2 25 simplify subtract 225 divide by 16
9 4 y 2.25 15, 2.252 y
square root property decimal form ordered pairs
Plotting these points and connecting them with a smooth curve, while knowing there are no y-intercepts, produces the graph in the figure. The point at the origin (in blue) is not a part of the graph, and is given only to indicate the “center” of the hyperbola.
144 144 144 144 81 81 y2 16 9 y 4 y 2.25 15, 2.252 y Hyperbola
(5, 2.25) (5, 2.25) (4, 0)
(4, 0) (0, 0)
x
(5, 2.25) (5, 2.25)
Now try Exercises 7 through 22
Since the hyperbola crosses a horizontal line of symmetry, it is referred to as a horizontal hyperbola. The points 14, 02 and (4, 0) are called vertices, and the center of the hyperbola is always the point halfway between them. If the center is at the origin, we have a central hyperbola. The line passing through the center and both vertices is called the transverse axis (vertices are always on the transverse axis), and the line passing through the center and perpendicular to this axis is called the conjugate axis (see Figure 10.19). In Example 1, the coefficient of x2 was positive and we were subtracting 2 16y : 9x2 16y2 144. The result was a horizontal hyperbola. If the y2-term is
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positive and we subtract the term containing x2, the result is a vertical hyperbola (Figure 10.20). Figure 10.19
Figure 10.20
y Conjugate axis
Center Vertex
Transverse axis
Transverse axis Vertex
x
Vertex Center
x
Vertical hyperbola
Identifying the Axes, Vertices, and Center of a Hyperbola from Its Graph For the hyperbola shown, state the location of the vertices and the equation of the transverse axis. Then identify the location of the center and the equation of the conjugate axis.
Solution
Conjugate axis
Vertex
Horizontal hyperbola
EXAMPLE 2
y
By inspection we locate the vertices at (0, 0) and (0, 4). The equation of the transverse axis is x 0. The center is halfway between the vertices at (0, 2), meaning the equation of the conjugate axis is y 2.
y
5
5
5
x
5
Now try Exercises 23 through 26
Standard Form As with the ellipse, the polynomial form of the equation is helpful for identifying hyperbolas, but not very helpful when it comes to graphing a hyperbola (since we still must go through the laborious process of finding additional points). For graphing, standard form is once again preferred. Consider the hyperbola 9x2 16y2 144 from Example 1. To write the equation in standard form, we y2 x2 divide by 144 and obtain 2 2 1. By comparing the standard form to the graph, 4 3 we note a 4 represents the distance from center to vertices, similar to the way we used a previously. But since the graph has no y-intercepts, what could b 3 represent? The answer lies in the fact that branches of a hyperbola are asymptotic, meaning they will approach and become very close to imaginary lines that can be used to sketch the graph. b For a central hyperbola, the slopes of the asymptotic lines are given by the ratios and a b b b , with the related equations being y x and y x. The graph from Example 1 a a a is repeated in Figure 10.21, with the asymptotes drawn. For a clearer understanding of how the equations for the asymptotes were determined, see Exercise 88.
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A second method of drawing the asymptotes involves drawing a central rectangle with dimensions 2a by 2b, as shown in Figure 10.22. The asymptotes will be the extended diagonals of this rectangle. This brings us to the equation of a hyperbola in standard form. Figure 10.21
Figure 10.22 y
y Slope m
34
Slope m
3 4
run a4
rise b3 (4, 0)
(4, 0)
(4, 0)
2b
x
(0, 0)
x
2a
Slope method
Central rectangle method
The Equation of a Hyperbola in Standard Form The equation 1x h2 a2
2
1y k2 b2
The equation 2
1
represents a horizontal hyperbola with center (h, k) • transverse axis y k • conjugate axis x h • a gives the distance from center to vertices.
1y k2 2 b2
1x h2 2 a2
1
represents a vertical hyperbola with center (h, k) • transverse axis x h • conjugate axis y k • b gives the distance from center to vertices.
b • Asymptotes can be drawn by starting at (h, k) and using slopes m . a
EXAMPLE 3
Graphing a Hyperbola Using Its Equation in Standard Form Sketch the graph of 161x 22 2 91y 12 2 144. Label the center, vertices, and asymptotes.
Solution
Begin by noting a difference of the second-degree terms, with the x2-term occurring first. This means we’ll be graphing a horizontal hyperbola whose center is at (2, 1). Continue by writing the equation in standard form. 161x 22 2 91y 12 2 144 161x 22 2 91y 12 2 144 144 144 144 1x 22 2 1y 12 2 1 9 16 1x 22 2 1y 12 2 1 32 42
given equation divide by 144
simplify
write denominators in squared form
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Since a 3 the vertices are a horizontal distance of 3 units from the center (2, 1), giving 12 3, 12 S 15, 12 and 12 3, 12 S 11, 12 . After plotting the center and b 4 vertices, we can begin at the center and count off slopes of m , or a 3 draw a rectangle centered at (2, 1) with dimensions 2132 6 (horizontal dimension) by 2142 8 (vertical dimension) to sketch the asymptotes. The complete graph is shown here. Horizontal hyperbola
y
Center at (2, 1)
md
Vertices at (1, 1) and (5, 1) Transverse axis: y 1 Conjugate axis: x 2
(2, 1) (1, 1)
(5, 1) x
2(3) 6 m d
Width of rectangle horizontal dimension and distance between vertices 2a 2(3) 6
Length of rectangle (vertical dimension) 2b 2(4) 8
Now try Exercises 27 through 38
Polynomial Form If the equation is given as a polynomial in expanded form, complete the square in x and y, then write the equation in standard form.
EXAMPLE 4
Graphing a Hyperbola by Completing the Square Graph the equation 9y2 x2 54y 4x 68 0.
Solution
Since the y2-term occurs first, we assume the equation represents a vertical hyperbola, but wait for the factored form to be sure (see Exercise 87). 9y2 x2 54y 4x 68 0 9y2 54y x2 4x 68 91y2 6y ____ 2 11x2 4x ____ 2 68 91y2 6y 92 11x2 4x 42 68 81 142 c
c
adds 9 19 2 81
c
c
adds 1 14 2 4
add 81 14 2 to right
91y 32 2 11x 22 2 9 1y 32 2 1x 22 2 1 1 9 1y 32 2 1x 22 2 1 12 32
given collect like-variable terms; subtract 68 factor out 9 from y-terms and 1 from x-terms complete the square
factor S vertical hyperbola divide by 9 (standard form)
write denominators in squared form
The center of the hyperbola is 12, 32 with a 3, b 1, and a transverse axis of x 2. The vertices are at 12, 3 12 and 12, 3 12 S 12, 22 and 12, 42 . After plotting the center and vertices, we draw a rectangle centered at 12, 32 with a horizontal “width” of 2132 6 and a vertical “length” of 2112 2 to sketch the asymptotes. The completed graph is given in the figure.
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Vertical hyperbola
y
Center at (2, 3) Vertices at (2, 2) and (2, 4)
m 3 1
A. You’ve just learned how to use the equation of a hyperbola to graph central and noncentral hyperbolas
(2, 2)
Transverse axis: x 2 Conjugate axis: y 3
x 1 m3 (2, 3) center
Width of rectangle (horizontal dimension) 2a 2(3) 6
(2, 4)
Length of rectangle vertical dimension and distance between vertices 2b 2(1) 2
Now try Exercises 39 through 48
B. Distinguishing between the Equations of a Circle, Ellipse, and Hyperbola So far we’ve explored numerous graphs of circles, ellipses, and hyperbolas. In Example 5 we’ll attempt to identify a given conic section from its equation alone (without graphing the equation). As you’ve seen, the corresponding equations have unique characteristics that can help distinguish one from the other.
EXAMPLE 5
Identifying a Conic Section from Its Equation Identify each equation as that of a circle, ellipse, or hyperbola. Justify your choice and name the center, but do not draw the graphs. a. y2 36 9x2 b. 4x2 16 4y2 c. x2 225 25y2 d. 25x2 100 4y2 2 2 e. 31x 22 41y 32 12 f. 41x 52 2 36 91y 42 2
Solution
B. You’ve just learned how to distinguish between the equations of a circle, ellipse, and hyperbola
a. Writing the equation in factored form gives y2 9x2 36 1h 0, k 02. Since the equation contains a difference of second-degree terms, it is the equation of a (vertical) hyperbola. The center is at (0, 0). b. Rewriting the equation as 4x2 4y2 16 and dividing by 4 gives x2 y2 4. The equation represents a circle of radius 2, with the center at (0, 0). c. Writing the equation as x2 25y2 225 we note a sum of second-degree terms with unequal coefficients. The equation is that of an ellipse, with the center at (0, 0). d. Rewriting the equation as 25x2 4y2 100 we note the equation contains a difference of second-degree terms. The equation represents a central (horizontal) hyperbola, whose center is at (0, 0). e. The equation is in factored form and contains a sum of second-degree terms with unequal coefficients. This is the equation of an ellipse with the center at 12, 32 . f. Rewriting the equation as 41x 52 2 91y 42 2 36 we note a difference of second-degree terms. The equation represents a horizontal hyperbola with center 15, 42. Now try Exercises 49 through 60
C. The Foci of a Hyperbola Like the ellipse, the foci of a hyperbola play an important part in their application. A long distance radio navigation system (called LORAN for short), can be used to determine the location of ships and airplanes and is based on the characteristics of a hyperbola
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(see Exercises 85 and 86). Hyperbolic mirrors are also used in some telescopes, and have the property that a beam of light directed at one focus will be reflected to the second focus. To understand and appreciate these applications, we use the analytic definition of a hyperbola: Definition of a Hyperbola Given two fixed points f1 and f2 in a plane, a hyperbola is the set of all points (x, y) such that the distance from f2 to (x, y) subtracted from the distance from f1 to (x, y) is a positive constant. In symbols,
y
d1
d1 d2 k, k 7 0
(x, y) d2
The fixed points f1 and f2 are called the foci of the hyperbola, and the points (x, y) are on the graph of the hyperbola.
f1
f2
x
d1 d2 k k>0
Figure 10.23
As with the analytic definition of the ellipse, it can be shown that the constant k is again equal to 2a (for horizontal hyperbolas). To find the equation of a hyperbola in terms of a and b, we use an approach similar to that of the ellipse (see Appendix III), y2 x2 and the result is identical to that seen earlier: 2 2 1 where b2 c2 a2 (see a b Figure 10.23). We now have the ability to find the foci of any hyperbola—and can use this information in many significant applications. Since the location of the foci play such an important role, it is best to remember the relationship as c2 a2 b2 (called the foci formula for hyperbolas), noting that for a hyperbola, c 7 a and c2 7 a2 (also c 7 b and c2 7 b2).
y
(x, y)
(c, 0) x
(c, 0) (a, 0)
(a, 0)
EXAMPLE 6
Graphing a Hyperbola and Identifying Its Foci by Completing the Square. For the hyperbola defined by 7x2 9y2 14x 72y 200 0, find the coordinates of the center, vertices, foci, and the dimensions of the central rectangle. Then sketch the graph.
Solution
7x2 9y2 14x 72y 200 0 given 2 2 7x 14x 9y 72y 200 group terms; add 200 71x2 2x ____ 2 91y2 8y ____ 2 200 factor out leading coefficients 2 2 71x 2x 12 91y 8y 162 200 7 11442 complete the square c
c
adds 7112 7
c
c
adds 9 116 2 144
71x 12 2 91y 42 2 63 1x 12 2 1y 42 2 1 9 7 1x 12 2 1y 42 2 1 32 1 172 2
S add 7 11442 to right-hand side factored form
divide by 63 and simplify
write denominators in squared form
This is a horizontal hyperbola with a 3 1a2 92 and b 17 1b2 72. The center is at (1, 4), with vertices 12, 42 and (4, 4). Using the foci formula c2 a2 b2 yields c2 9 7 16, showing the foci are 13, 42 and (5, 4) (4 units from center). The central rectangle is 217 5.29 by 2132 6.
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Drawing the rectangle and sketching the asymptotes to complete the graph, results in the graph shown. Horizontal hyperbola
y
Center at (1, 4) Vertices at (2, 4) and (4, 4) (3, 4)
(2, 4)
(1, 4)
Transverse axis: y 4 Conjugate axis: x 1 Location of foci: (3, 4) and (5, 4)
(5, 4) x
(4, 4)
Width of rectangle horizontal dimension and distance between vertices 2a 2(3) 6
Length of rectangle (vertical dimension) 2b 2(√7) ≈ 5.29
C. You’ve just learned how to locate the foci of a hyperbola and use the foci and other features to write its equation
Now try Exercises 61 through 70
As with the ellipse, if any two of the values for a, b, and c are known, the relationship between them can be used to construct the equation of the hyperbola. See Exercises 71 through 78.
D. Applications Involving Foci Applications involving the foci of a conic section can take many forms. As before, only partial information about the hyperbola may be available, and we’ll determine a solution by manipulating a given equation, or constructing an equation from given facts.
EXAMPLE 7
Applying the Properties of a Hyperbola—The Path of a Comet Comets with a high velocity cannot be captured by the Sun’s gravity, and are slung around the Sun in a hyperbolic path with the Sun at one focus. If the path illustrated by the graph shown is modeled by the equation 2116x2 400y2 846,400, how close did the comet get to the Sun? Assume units are in millions of miles and round to the nearest million.
Solution
We are essentially asked to find the distance between a vertex and focus. Begin by writing the equation in standard form: 2116x2 400y2 846,400 y2 x2 1 400 2116 y2 x2 1 202 462
given divide by 846,400 y write denominators in squared form
This is a horizontal hyperbola with a 20 1a2 4002 and b 46 1b2 21162. Use the foci formula to find c2 and c.
(0, 0) x
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c2 a2 b2 c2 400 2116 c2 2516 c 50 and c 50 Since a 20 and c 50, the comet came within 50 20 30 million miles of the Sun. Now try Exercises 81 through 84
EXAMPLE 8
Applying the Properties of a Hyperbola—The Location of a Storm Two amateur meteorologists, living 4 km apart (4000 m), see a storm approaching. The one farthest from the storm hears a loud clap of thunder 9 sec after the one nearest. Assuming the speed of sound is 340 m/sec, determine an equation that models possible locations for the storm at this time.
Solution
D. You’ve just learned how to solve applications involving foci
Let M1 represent the meteorologist nearest the storm and M2 the farthest. Since M2 heard the thunder 9 sec after M1, M2 must be 9 # 340 3060 m farther away from the storm S. In other words, M2S M1S 3060. The set of all points that satisfy this description fit the definition of a hyperbola, and we’ll use this fact to develop an equation model for possible locations of the storm. Let’s place the information on a coordinate grid. For convenience, we’ll use y the straight line distance S between M1 and M2 as the 2 x-axis, with the origin an equal distance from each. 1 With the constant difference M2 M1 equal to 3060, we have 3 2 1 1 2 3 x in 1000s 2a 3060, a 1530 from 1 the definition of a hyperbola, 2 y2 x2 giving 2 2 1. With 1530 b c 2000 m (the distance from the origin to M1 or M2), we find the value of b using the equation c2 a2 b2: 20002 15302 b2 or b2 120002 2 115302 2 1,659,100 12882. The equation that models possible locations of the storm is y2 x2 1. 15302 12882 Now try Exercises 85 and 86
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TECHNOLOGY HIGHLIGHT
Studying Hyperbolas As with the circle and ellipse, the hyperbola must also be defined in two pieces in order to use a graphing calculator to study its graph. Consider the relation 4x2 9y2 36. From our work in this section, we know this is the equation of a horizontal hyperbola centered at (0, 0). Solving for y gives 4x2 9y2 36
original equation
9y 36 4x 2
y2
2
isolate y2-term
36 4x2 9
y
divide by 9
36 4x2 B 9
solve for y
Figure 10.24
36 4x2 B 9 36 4x2 gives the “upper half” of the hyperbola, and Y2 gives B 9 the “lower half.” In Figure 10.24, note the use of parentheses on the Y = screen to ensure we’re taking the square root of the entire expression. Entering these on the Y = screen, graphing them with the window shown, and pressing the TRACE key gives the graph shown in Figure 10.25. Note the location of the cursor at x 0, but no y-value is displayed. This is because the hyperbola is not defined at x 0. Press the right arrow key and walk the cursor to the right until the y-values begin appearing. In fact, they begin to appear at (3, 0), which is one of the vertices of the hyperbola. We could also graph the asymptotes 1 y 23 x2 by entering the lines as Y3 and Y4 on the Y = screen. The resulting graph is shown in Figure 10.26 using the standard window (the TRACE key has been pushed and the down arrow used to highlight Y2). Use these ideas to complete the following exercises. We can again separate this result into two parts: Y1
Figure 10.26
Figure 10.25
10
6
10
10
6
10
10
10
Exercise 1: Graph the hyperbola 25y2 4x2 100 using a friendly window. What are the coordinates of the vertices? Use the TRACE feature to find the value(s) of y when x 4. Determine (from the graph) the value(s) of y when x 4, then verify your response using the TABLE feature. Exercise 2: Graph the hyperbola 9x2 16y2 144 using the standard window. Then determine the equations of the asymptotes and graph these as well. Why do the asymptotes intersect at the origin? When will the asymptotes not intersect at the origin?
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10.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
4. The center of the hyperbola defined by 1x 22 2
1. The line that passes through the vertices of a hyperbola is called the axis. 2. The conjugate axis is axis and contains the
to the of the hyperbola.
3. The center of a hyperbola is located between the vertices.
42
1y 32 2 52
1 is at
.
5. Compare/Contrast the two methods used to find the asymptotes of a hyperbola. Include an example illustrating both methods. 6. Explore/Explain why A1x h2 2 B1y k2 2 F results in a hyperbola regardless of whether A B or A B. Illustrate with an example.
DEVELOPING YOUR SKILLS
Graph each hyperbola. Label the center, vertices, and any additional points used.
7.
y2 x2 1 9 4 2
8.
2
y2 x2 1 16 9 2
y x 1 4 9
10.
y x 1 25 16
11.
y2 x2 1 49 16
12.
y2 x2 1 25 9
13.
y2 x2 1 36 16
14.
y2 x2 1 81 16
15.
2
y x 1 9 1 2
16.
2
24.
y 10
10
y 10
10
10 x
10 x
2
9.
2
23.
2
2
2
2
10
25.
17.
y x 1 12 4
18.
y x 1 9 18
19.
y2 x2 1 9 9
20.
y2 x2 1 4 4
21.
y2 x2 1 36 25
22.
y2 x2 1 16 4
For the graphs given, state the location of the vertices and the equation of the transverse axis. Then identify the location of the center and the equation of the conjugate axis. Note the scale used on each axis.
26.
y 10
10
y x 1 1 4
10
10 x
10
y 10
10
10 x
10
Sketch a complete graph of each equation, including the asymptotes. Be sure to identify the center and vertices.
27.
1y 12 2 x2 1 4 25
1x 22 2 y2 28. 1 4 9
1x 32 2 1y 22 2 29. 1 36 49 30.
1x 22 2 1y 12 2 1 9 4
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31. 32.
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Section 10.3 The Hyperbola
1y 12 2 1x 52 2 1 7 9
1y 32 2 1x 22 2 1 16 5
33. 1x 22 41y 12 16 2
Use the definition of a hyperbola to find the distance between the vertices and the dimensions of the rectangle centered at (h, k). Figures are not drawn to scale. Note that Exercises 63 and 64 are vertical hyperbolas.
61.
62.
y
y
2
34. 91x 12 2 1y 32 2 81
(15, 6.75)
(5, 2.25)
35. 21y 32 2 51x 12 2 50
(a, 0) (5, 0)
(5, 0)
x
(15, 0)
(a, 0)
36. 91y 42 2 51x 32 2 45
(a, 0) (15, 0) x
(a, 0)
37. 121x 42 2 51y 32 2 60 38. 81x 42 2 31y 32 2 24
63.
39. 16x2 9y2 144 40. 16x2 25y2 400 41. 9y 4x 36 2
2
64.
y
y (0, 13)
(0, 10) (0, b) (0, b)
(6, 7.5)
(9, 6.25)
x
(0, b) (0, b)
x
(0, 10) (0, 13)
42. 25y2 4x2 100 43. 12x2 9y2 72 44. 36x2 20y2 180 45. 4x y 40x 4y 60 0 2
2
46. x2 4y2 12x 16y 16 0
Find and list the coordinates of the (a) center, (b) vertices, (c) foci, and (d) dimensions of the central rectangle. Then (e) sketch the graph, including the asymptotes.
47. x2 4y2 24y 4x 36 0
65. 4x2 9y2 24x 72y 144 0
48. 9x 4y 18x 24y 9 0
66. 4x2 36y2 40x 144y 188 0
2
2
Classify each equation as that of a circle, ellipse, or hyperbola. Justify your response.
67. 16x2 4y2 24y 100 0 68. 81x2 162x 4y2 243 0
49. 4x2 4y2 24
69. 9x2 3y2 54x 12y 33 0
50. 9y 4x 36
70. 10x2 60x 5y2 20y 20 0
2
2
51. x2 y2 2x 4y 4 52. x2 y2 6y 7 53. 2x2 4y2 8 54. 36x2 25y2 900 55. x2 5 2y2 56. x y2 3x2 9 57. 2x2 2y2 x 20 58. 2y2 3 6x2 8 59. 16x 5y 3x 4y 538 2
2
60. 9x2 9y2 9x 12y 4 0
Find the equation of the hyperbola (in standard form) that satisfies the following conditions:
71. vertices at (6, 0) and (6, 0); foci at (8, 0) and (8, 0) 72. vertices at (4, 0) and (4, 0); foci at (6, 0) and (6, 0) 73. foci at 12, 3122 and 12, 3 122; length of conjugate axis: 6 units
74. foci at (5, 2) and (7, 2); length of conjugate axis: 8 units
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Use the characteristics of a hyperbola and the graph given to write the related equation and state the location of the foci (75 and 76) or the dimensions of the central rectangle (77 and 78).
75.
y 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
76.
y 10 8 6 4 2 108642 2 4 6 8 10
77.
y 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
78.
y 10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
WORKING WITH FORMULAS 36 4x2 B 9 The “upper half” of a certain hyperbola is given by the equation shown. (a) Simplify the radicand, (b) state the domain of the expression, and (c) enter the expression as Y1 on a graphing calculator and graph. What is the equation for the “lower half” of this hyperbola?
79. Equation of a semi-hyperbola: y
2b2 a The focal chords of a hyperbola are line segments parallel to the conjugate axis with endpoints on the
80. Focal chord of a hyperbola: L
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CHAPTER 10 Analytic Geometry and the Conic Sections
y hyperbola, and containing 10 8 certain points f1 and f2 called 6 the foci (see grid). The length 4 f 2 f of the chord is given by the formula shown. Use it to find 1086422 2 4 6 4 the length of the focal chord 6 8 for the hyperbola indicated, 10 then compare the calculated value with the length estimated from the given graph: 1y 12 2 1x 22 2 1. 4 5 1
2
8 10 x
APPLICATIONS
81. Stunt pilots: At an air show, a stunt plane dives along a hyperbolic path whose vertex is directly over the grandstands. If the plane’s flight path can be modeled by the hyperbola 25y2 1600x2 40,000, what is the minimum altitude of the plane as it passes over the stands? Assume x and y are in yards. 82. Flying clubs: To test their skill as pilots, the members of a flight club attempt to drop sandbags on a target placed in an open field, by diving along a hyperbolic path whose vertex is directly over the target area. If the flight path of the plane flown by the club’s president is modeled by 9y2 16x2 14,400, what is the minimum altitude of her plane as it passes over the target? Assume x and y are in feet. 83. Nuclear cooling towers: The natural draft cooling towers for nuclear power stations are called hyperboloids of one sheet. The
perpendicular cross sections of these hyperboloids form two branches of a hyperbola. Suppose the central cross section of one such tower is modeled by the hyperbola 1600x2 4001y 502 2 640,000. What is the minimum distance between the sides of the tower? Assume x and y are in feet. 84. Charged particles: It has been shown that when like particles with a common charge are hurled at each other, they deflect and travel along paths that are hyperbolic. Suppose the path of two such particles is modeled by the hyperbola x2 9y2 36. What is the minimum distance between the particles as they approach each other? Assume x and y are in microns. 85. Locating a ship using radar: Under certain conditions, the properties of a hyperbola can be used to help locate the position of a ship. Suppose two radio stations are located 100 km apart along a straight shoreline. A ship is sailing parallel to the shore and is 60 km out to sea. The ship sends out a distress call that is picked up by the closer station
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in 0.4 milliseconds (msec—one-thousandth of a second), while it takes 0.5 msec to reach the station that is farther away. Radio waves travel at a speed of approximately 300 km/msec. Use this information to find the equation of a hyperbola that will help you find the location of the ship, then find the coordinates of the ship. (Hint: Draw the hyperbola on a coordinate system with the radio stations on the x-axis at the foci, then use the definition of a hyperbola.) 86. Locating a plane using radar: Two radio stations are located 80 km apart along a straight shoreline, when a “mayday” call (a plea for immediate help) is received from a plane that is about to ditch in the ocean (attempt a water landing). The plane was flying at low altitude, parallel to the shoreline, and 20 km out when it ran into trouble. The plane’s distress call is picked up by the closer station in 0.1 msec, while it takes 0.3 msec to reach the other. Use this information to construct the equation of a hyperbola that will help you find the location of the ditched plane, then find the coordinates of the plane. Also see Exercise 85. 87. It is possible for the plane to intersect only the vertex of the cone or to be tangent to the sides. These are called degenerate cases of a conic section. Many times we’re unable to tell if the equation represents a degenerate case until it’s written in standard form. Write the following equations in standard form and comment. a. 4x2 32x y2 4y 60 0 b. x2 4x 5y2 40y 84 0
953
88. For a greater understanding as to why the branches y2 x2 of a hyperbola are asymptotic, solve 2 2 1 a b for y, then consider what happens as x S q (note that x2 k x2 for large x). 89. Which has a greater area: (a) The central rectangle of the hyperbola given by 1x 52 2 1y 42 2 57, (b) the circle given by 1x 52 2 1y 42 2 57, or (c) the ellipse given by 91x 52 2 101y 42 2 570? 90. Find the equation of the circle shown, given the equation of the hyperbola: 91x 22 2 251y 32 2 225 y
Focus
Focus x
91. Find the equation of the ellipse shown, given the equation of the hyperbola and (2, 0) is on the graph of the ellipse. The hyperbola and ellipse share the same foci: 91x 22 2 251y 32 2 225 y
Focus
Focus x
92. Verify that for a central hyperbola, a circle that circumscribes the central rectangle must also go through both foci.
MAINTAINING YOUR SKILLS
93. (7.3) In weight-lifting competitions, Ursula Unger has shown she can lift up to 350 lb. Use a vector analysis to determine whether she will be able to pull the crate up the frictionless ramp shown.
700
lb
25
94. (5.1) The wheels on a motorized scooter are rotating at 403 rpm. If the wheels have a 2.5 in. radius, how fast is the scooter traveling in miles per hour?
95. (1.4) The number z 1 i 12 is a solution to two out of the three equations given. Which two? a. x4 4 0 b. x3 6x2 11x 12 0 c. x2 2x 3 0 96. (5.4) A government-approved company is licensed to haul toxic waste. Each container of solid waste weighs 800 lb and has a volume of 100 ft3. Each container of liquid waste weighs 1000 lb and is 60 ft3 in volume. The revenue from hauling solid waste is $300 per container, while the revenue from liquid waste is $375 per container. The truck used by this company has a weight capacity of 39.8 tons and a volume capacity of 6960 ft3. What combination of solid and liquid weight containers will produce the maximum revenue?
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10.4 The Analytic Parabola Learning Objectives In Section 10.4 you will learn how to:
A. Graph parabolas with a horizontal axis of symmetry
B. Identify and use the focus-directrix form of the equation of a parabola
Figure 10.27 In previous coursework, you likely learned that the graph of a quadratic function was a parabola. Parabo- Parabola las are actually the fourth and final member of the Axis family of conic sections, and as we saw in Section 10.1, the graph can be obtained by observing the intersection Element of a plane and a cone. If the plane is parallel to the generator of the cone (shown as a dark line in Figure 10.27), the intersection of the plane with one nappe forms a parabola. In this section we develop the general equation of a parabola from its analytic definition, opening a new realm of applications that extends far beyond those involving only zeroes and extreme values.
C. Solve nonlinear systems involving the conic sections
D. Solve applications of the analytic parabola
A. Parabolas with a Horizontal Axis An introductory study of parabolas generally involves those with a vertical axis, defined by the equation y ax2 bx c. Unlike the previous conic sections, this equation has only one seconddegree (squared) term in x and defines a function. As a review of our work in section 3.1, the primary characteristics are listed here and illustrated in Figure 10.28.
Figure 10.28 1. Opens upward
y
4. Axis of symmetry
2. y-intercept
3. x-intercepts
x
5. Vertex
Vertical Parabolas For a second-degree equation of the form y ax2 bx c, the graph is a vertical parabola with these characteristics: 1. opens upward if a 7 0, downward if a 6 0. 2. y-intercept: (0, c) (substitute 0 for x) b 3. x-intercept(s): substitute 0 for y and solve. 4. axis of symmetry: x 2a b 5. vertex: a , yb 2a See Exercises 7 through 12 for additional review and practice.
Horizontal Parabolas Similar to our study of horizontal and vertical hyperbolas, the graph of a parabola can open to the right or left, as well as up or down. After interchanging the variables x and y in the standard equation, we obtain the parabola x ay2 by c, noting the resulting graph will be a reflection about the line y k. Here, the axis of symmetry is a horizontal line and factoring or the quadratic formula is used to find the y-intercepts (if they exist). Note that although the graph is still a parabola—it is not the graph of a function. Horizontal Parabolas For a second-degree equation of the form x ay2 by c, the graph is a horizontal parabola with these characteristics: 1. opens right if a 7 0, left if a 6 0. 2. x-intercept: (c, 0) (substitute 0 for y) b 3. y-intercepts(s): substitute 0 for x 4. axis of symmetry: y 2a and solve. b 5. vertex: ax, b 2a 954
10-36
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Section 10.4 The Analytic Parabola
EXAMPLE 1
Graphing a Horizontal Parabola Graph the relation whose equation is x y2 3y 4, then state the domain and range of the relation.
Solution
Since the equation has a single squared term in y, the graph will be a horizontal parabola. With a 7 0 1a 12, the parabola opens to the right. The x-intercept is 14, 02. Factoring shows the y-intercepts are y 4 and y 1. The axis of symmetry is y 3 2 1.5, and substituting this value into the original equation gives x 6.25. The coordinates of the vertex are 16.25, 1.52. Using horizontal and vertical boundary lines we find the domain for this relation is x 36.25, q 2 and the range is y 1q, q 2. The graph is shown.
y 10
(0, 1)
(4, 0) 10
10
(6.25, 1.5)
x
y 1.5 (0, 4) 10
Now try Exercises 13 through 18
As with the vertical parabola, the equation of a horizontal parabola can be written as a transformation: x a1y k2 2 h by completing the square. Note that in this case, the vertical shift is k units opposite the sign, with a horizontal shift of h units in the same direction as the sign.
EXAMPLE 2
Graphing a Horizontal Parabola by Completing the Square Graph by completing the square: x 2y2 8y 9.
Solution
Using the original equation, we note the graph will be a horizontal parabola opening to the left 1a 22 and have an x-intercept of 19, 02. Completing the square gives x 21y2 4y 42 9 8, so x 21y 22 2 1. The vertex is at 11, 22 and y 2 is the axis of symmetry. This means there are no y-intercepts, a fact that comes to light when we attempt to solve the equation after substituting 0 for x: 21y 22 2 1 0
A. You’ve just learned how to graph parabolas with a horizontal axis of symmetry
1y 22 2
y 10
(9, 0)
(0, 1)
10
y 2
10
x
(1, 2)
(9, 4)
substitute 0 for x
1 2
isolate squared term
The equation has no real roots. Using symmetry, the point 19, 42 is also on the graph. After plotting these points we obtain the graph shown. Now try Exercises 19 through 36
B. The Focus-Directrix Form of the Equation of a Parabola As with the ellipse and hyperbola, many significant applications of the parabola rely on its analytical definition rather than its algebraic form. From the construction of radio telescopes to the manufacture of flashlights, the location of the focus of a parabola is critical. To understand these and other applications, we use the analytic definition of a parabola first introduced in Section 10.1.
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Definition of a Parabola Given a fixed point f and fixed line D in the plane, a parabola is the set of all points (x, y) such that the distance from f to (x, y) is equal to the distance from line D to (x, y). The fixed point f is the focus of the parabola, and the fixed line is the directrix.
d1
(x, y)
f d2 Vertex D
d1 d2
The general equation of a parabola can be obtained by combining this definition with the distance formula. With no loss of generality, we can assume the parabola shown in the definition box is oriented in the plane with the vertex at (0, 0) and the focus at (0, p). As the diagram in Figure 10.29 indicates, this gives the directrix an equation of y p with all points on D having coordinates of 1x, p2. Using d1 d2 the distance formula yields
WORTHY OF NOTE For the analytic parabola, we use p to designate the focus, since c is so commonly used as the constant term in y ax2 bx c.
Figure 10.29 y
d1
(0, p)
P(x, y) d2
F y p (0, 0) D
21x 02 2 1y p2 2 21x x2 2 1y p2 2 1x 02 2 1y p2 2 1x x2 2 1y p2 2 x2 y2 2py p2 0 y2 2py p2 x2 2py 2py x2 4py
(0, p)
x (x, p)
from definition square both sides simplify; expand binomials subtract p 2 and y 2 isolate x 2
The resulting equation is called the focus-directrix form of a vertical parabola with vertex at (0, 0). If we had begun by orienting the parabola so it opened to the right, we would have obtained the equation of a horizontal parabola with vertex (0, 0): y2 4px. The Equation of a Parabola in Focus-Directrix Form Vertical Parabola
Horizontal Parabola
x 4py
y2 4px
2
focus (0, p), directrix: y p If p 7 0, opens upward. If p 6 0, opens downward.
focus at ( p, 0) directrix: x p If p 7 0, opens to the right. If p 6 0, opens to the left.
For a parabola, note there is only one second-degree term.
EXAMPLE 3
Locating the Focus and Directrix of a Parabola Find the vertex, focus, and directrix for the parabola defined by x2 12y. Then sketch the graph, including the focus and directrix.
Solution
Since the x-term is squared and no shifts have been applied, the graph will be a vertical parabola with a vertex of (0, 0). Use a direct comparison between the given equation and the focus-directrix form to determine the value of p: x2 12y T 2 x 4 y
given equation
focus-directrix form
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This shows: 4p 12 p 3
y 10
Since p 3 1p 6 02, the parabola opens downward, with the focus at 10, 32 and directrix y 3. To complete the graph we need a few additional points. Since 36 (6)2 is divisible by 12, we can use inputs of x 6 and x 6, giving the points 16, 32 and 16, 32. Note the axis of symmetry is x 0. The graph is shown.
x0 y3
D (0, 0) 10
(6, 3)
f
(0, 3)
10 x (6, 3)
10
Now try Exercises 37 through 48
As an alternative to calculating additional points to sketch the graph, we can use what is called the focal chord of the parabola. Similar to the ellipse and hyperbola, the focal chord is a line segment that contains the focus, is parallel to the directrix, and has its endpoints on the graph. Using the definition of a parabola and the diagram in Figure 10.30, we see the horizontal distance from f to (x, y) is 2p. Since d1 d2, a line segment parallel to the directrix from the focus to the graph will also have a length of 2p, and the focal chord of any parabola has a total length of 4p. Note that in Example 3, the points we happened to choose were actually the endpoints of the focal chord. Finally, if the vertex of a vertical parabola is shifted to (h, k), the equation will have the form 1x h2 2 4p1y k2. As with the other conic sections, both the horizontal and vertical shifts are “opposite the sign.”
Figure 10.30 y 2p f d1 Vertex y p
P
(x, y) d2 p x p D
EXAMPLE 4
Locating the Focus and Directrix of a Parabola Find the vertex, focus, and directrix for the parabola whose equation is given, then sketch the graph, including the focus and directrix: x2 6x 12y 15 0.
Solution
Since only the x-term is squared, the graph will be a vertical parabola. To find the concavity, vertex, focus, and directrix, we complete the square in x and use a direct comparison between the shifted form and the focus-directrix form: x2 6x 12y 15 0 x2 6x ___ 12y 15 x2 6x 9 12y 24 1x 32 2 121y 22 Notice the parabola has been shifted 3 right and 2 up, so all features of the parabola will likewise be shifted. Since we have 4p 12 (the coefficient of the linear term), we know p 3 1p 6 02 and the parabola opens downward. If the parabola were in standard position, the vertex would be at (0, 0), the focus at (0, 3) and the directrix a horizontal line at y 3. But since the parabola is shifted 3 right and 2 up, we add 3 to all x-values and 2 to all y-values to locate the features of the shifted parabola. The vertex is at
given equation complete the square in x add 9 factor y 10
x3 y5 (3, 2)
(3, 1)
(9, 1)
10
10
(3, 1)
10
x
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10 3, 0 22 13, 22. The focus is 10 3, 3 22 13, 12 and the directrix is y 3 2 5. Finally, the horizontal distance from the focus to the graph is 2p 6 units (since 4p 12), giving us the additional points 13, 12 and 19, 12. The graph is shown. Now try Exercises 49 through 60
In many cases, we need to construct the equation of the parabola when only partial information in known, as illustrated in Example 5.
EXAMPLE 5
Constructing the Equation of a Parabola Find the equation of the parabola with vertex (4, 4) and focus (4, 1). Then graph the parabola using the equation and focal chord.
Solution
B. You’ve just learned how to identify and use the focusdirectrix form of the equation of a parabola
As the vertex and focus are on a vertical y y7 line, we have a vertical parabola with general equation 1x h2 2 4p1y k2 . The distance p from vertex to focus is 5 (4, 4) 3 units, and with the focus below the vertex, the parabola opens downward so p 3. Using the focal chord, the (4, 1) (10, 1) (2, 1) horizontal distance from (4, 1) to the 5 10 x graph is 2p 2132 6, giving points (2, 1) and (10, 1). The vertex 2 x4 is shifted 4 units right and 4 units up from (0, 0), showing h 4 and k 4, and the equation of the parabola must be 1x 42 2 121y 42 , with directrix y 7. The graph is shown. Now try Exercises 61 through 76
C. Nonlinear Systems and the Conic Sections Similar to our work with nonlinear systems in Section 5.3, the graphing, substitution, or elimination method can still be used when the system involves a conic section. When both equations in the system have at least one second degree term, it is generally easier to use the elimination method.
EXAMPLE 6
Solving a System of Nonlinear Equations Solve the system using elimination: e
Solution
2y2 5x2 13 3x2 4y2 39
The first equation represents a vertical and central hyperbola, while the second represents a horizontal and central ellipse. After writing the system with the x- and 5x2 2y2 13 y-terms in the same order, we obtain e . Using 2R1 R2 3x2 4y2 39 will eliminate the y-term. e
10x2 4y2 26 3x2 4y2 39 13x2 0 13 x2 1 x 1 or x 1
2R1 R2 sum divide by 13 square root property
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Substituting x 1 and x 1 into the second equation we obtain 3112 2 4y2 39 3 4y2 39 4y2 36 y2 9 y 3 or y 3
3112 2 4y2 39 3 4y2 39 4y2 36 y2 9 y 3 or y 3
Since 1 and 1 each generated two outputs, there are a total of four ordered pair solutions: (1, 3), (1, 3), (1, 3), and (1, 3). The graph is shown and supports our results.
y 5
(1, 3)
5x2 2y2 13 (1, 3)
5
5
(1, 3)
C. You’ve just learned how to solve nonlinear systems involving the conic sections
x
3x2 4y2 39 (1, 3) 5
Now try Exercises 77 through 82
D. Application of the Analytic Parabola Here is just one of the many ways the analytic definition of a parabola can be applied. There are several others in the exercise set.
EXAMPLE 7
Locating the Focus of a Parabolic Receiver The diagram shows the cross section of a radio antenna dish. Engineers have located a point on the cross section that is 0.75 m above and 6 m to the right of the vertex. At what coordinates should the engineers build the focus of the antenna?
Solution
Focus
(6, 0.75) (0, 0)
By inspection we see this is a vertical parabola with center at (0, 0). This means its equation must be of the form x2 4py. Because we know (6, 0.75) is a point on this graph, we can substitute (6, 0.75) in this equation and solve for p: x2 4py 162 2 4p10.752 36 3p p 12
equation for vertical parabola, vertex at (0, 0) substitute 6 for x and 0.75 for y simplify result
With p 12, we see that the focus must be located at (0, 12), or 12 m directly above the vertex. Now try Exercises 85 through 92 D. You’ve just learned how to solve applications of the analytic parabola
Note that in many cases, the focus of a parabolic dish may be taller than the rim of the dish.
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10.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The equation x ay2 by c is that of a(n) parabola, opening to the if a 7 0 and to the left if . 2. If point P is on the graph of a parabola with directrix D, the distance from P to line D is equal to the distance between P and the of the parabola. 3. Given y2 4px, the focus is at equation of the directrix is
and the .
4. Given x2 16y, the value of p is the coordinates of the focus are
and .
5. Discuss/Explain how to find the vertex, directrix, and focus from the equation 1x h2 2 4p1y k2.
6. If a horizontal parabola has a vertex of 12, 3) with a 7 0, what can you say about the y-intercepts? Will the graph always have an x-intercept? Explain.
DEVELOPING YOUR SKILLS
Find the x- and y-intercepts (if they exist) and the vertex of the parabola. Then sketch the graph by using symmetry and a few additional points or completing the square and shifting a parent function. Scale the axes as needed to comfortably fit the graph and state the domain and range.
7. y x2 2x 3 9. y 2x2 8x 10 11. y 2x 5x 7 2
8. y x2 6x 5 10. y 3x2 12x 15 12. y 2x 7x 3 2
Find the x- and y-intercepts (if they exist) and the vertex of the graph. Then sketch the graph using symmetry and a few additional points (scale the axes as needed). Finally, state the domain and range of the relation.
13. x y 2y 3
14. x y 4y 12
15. x y 6y 7
16. x y2 8y 12
17. x y 8y 16
18. x y 6y 9
2
2 2
2
2
Sketch using symmetry and shifts of a basic function. Be sure to find the x- and y-intercepts (if they exist) and the vertex of the graph, then state the domain and range of the relation.
27. x y2 10y 4
28. x y2 12y 5
29. x 3 8y 2y2
30. x 2 12y 3y2
33. x 1y 32 2 2
34. x 1y 12 2 4
31. y 1x 22 2 3
35. x 21y 32 2 1
32. y 1x 22 2 4
36. x 21y 32 2 5
Find the vertex, focus, and directrix for the parabolas defined by the equations given, then use this information to sketch a complete graph (illustrate and name these features). For Exercises 43 to 60, also include the focal chord.
37. x2 8y
38. x2 16y
39. x2 24y
40. x2 20y
41. x2 6y
42. x2 18y
43. y2 4x
44. y2 12x
45. y2 18x
46. y2 20x
47. y2 10x
48. y2 14x
49. x2 8x 8y 16 0 50. x2 10x 12y 25 0
19. x y2 6y
20. x y2 8y
51. x2 14x 24y 1 0
21. x y2 4
22. x y2 9
52. x2 10x 12y 1 0
23. x y2 2y 1
24. x y2 4y 4
53. 3x2 24x 12y 12 0
25. x y2 y 6
26. x y2 4y 5
54. 2x2 8x 16y 24 0
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55. y2 12y 20x 36 0
74.
y
56. y 6y 16x 9 0
6
57. y 6y 4x 1 0
4
58. y2 2y 8x 9 0
2
2 2
y5 (2, 2)
4
59. 2y2 20y 8x 2 0
961
2
4
6
8
10 x
8
10 x
2
60. 3y2 18y 12x 3 0 75.
y
For Exercises 61–72, find the equation of the parabola in standard form that satisfies the conditions given.
63. focus: (4, 0) directrix: x 4
64. focus: (3, 0) directrix: x 3
65. focus: (0, 5) directrix: y 5
66. focus: (5, 0) directrix: x 5
67. vertex: (2, 2) focus: (1, 2)
68. vertex: (4, 1) focus: (1, 1)
69. vertex: (4, 7) focus: (4, 4)
70. vertex: (3, 4) focus: (3, 1)
71. focus: (3, 4) directrix: y 0
72. focus: (1, 2) directrix: x 5
2
(2, 2) 6
4
2
x
2 2
76.
y 2
(4, 0) 4
2
2
4
6
2 4
For the graphs in Exercises 73–76, only two of the following four features are displayed: vertex, focus, directrix, and endpoints of the focal chord. Find the remaining two features and the equation of the parabola. y 4
4
(4, 2)
62. focus: (0, 3) directrix: y 3
61. focus: (0, 2) directrix: y 2
73.
6
(1, 4)
y 6
Solve using substitution or elimination, then graph the system.
77. e
x2 y2 25 2x2 3y2 5
78. e
y2 x2 12 x2 y2 20
79. e
x2 y 4 y2 x2 16
80. e
2x2 3y2 38 x2 5y 35
81. e
5x2 2y2 75 2x2 3y2 125
82. e
3x2 7y2 20 4x2 9y2 45
2 2
2
4
6
x
2 4
(1, 4)
x 3
WORKING WITH FORMULAS
83. The area of a right parabolic segment: A 23 ab A right parabolic segment is that part of a parabola formed by a line perpendicular to its axis, which cuts the parabola. The area of this segment is given by the formula shown, where b is the length of the chord cutting the parabola
y 10 8 (3, 4) 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
and a is the perpendicular distance from the vertex to this chord. What is the area of the parabolic segment shown in the figure? 84. The arc length of a right parabolic segment: b2 4a 2b2 16a2 1 2b2 16a2 lna b 2 8a b Although a fairly simple concept, finding the length of the parabolic arc traversed by a projectile requires a good deal of computation. To find the
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length of the arc ABC shown, we use the formula given where a is the maximum height attained by the projectile, A b is the horizontal distance it traveled, and
10-44
“ln” represents the natural log function. Suppose a baseball thrown from centerfield reaches a maximum height of 20 ft and traverses an arc length of 340 ft. Will the ball reach the catcher 310 ft away without bouncing?
B a C b
APPLICATIONS
85. Parabolic car headlights: The cross section of a typical car headlight can be modeled by an equation similar to 25x 16y2, where x and y are in inches and x 3 0, 4 4 . Use this information to graph the relation for the indicated domain. 86. Parabolic flashlights: The cross section of a typical flashlight reflector can be modeled by an equation similar to 4x y2, where x and y are in centimeters and x 30, 2.25 4 . Use this information to graph the relation for the indicated domain.
87. Parabolic sound receivers: Sound technicians at professional sports events often use parabolic receivers as they move along the sidelines. If a two-dimensional cross section of the receiver is modeled by the equation y2 54x, and is 36 in. in diameter, how deep is the parabolic receiver? What is the location of the focus? [Hint: Graph the parabola on the coordinate grid (scale the axes).]
Exercise 87 y
88. Parabolic sound receivers: Private investigators will often use a smaller and less expensive
x
parabolic receiver (see Exercise 87) to gather information for their clients. If a two-dimensional cross section of the receiver is modeled by the equation y2 24x, and the receiver is 12 in. in diameter, how deep is the parabolic dish? What is the location of the focus? 89. Parabolic radio wave receivers: The program known as S.E.T.I. (Search for Extra-Terrestrial Intelligence) identifies a group of scientists using radio telescopes to y look for radio signals from possible intelligent x species in outer space. The radio telescopes are actually parabolic dishes that vary in size from a few feet to hundreds of feet in diameter. If a particular radio telescope is 100 ft in diameter and has a cross section modeled by the equation x2 167y, how deep is the parabolic dish? What is the location of the focus? [Hint: Graph the parabola on the coordinate grid (scale the axes).] 90. Solar furnace: Another form of technology that uses a parabolic dish is called a solar furnace. In general, the rays of the Sun are reflected by the dish and concentrated at the focus, producing extremely high temperatures. Suppose the dish of one of these parabolic reflectors had a 30-ft diameter and a cross section modeled by the equation x2 50y. How deep is the parabolic dish? What is the location of the focus?
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91. The reflector of a large, commercial flashlight has the shape of a parabolic dish, with a diameter of 10 cm and a depth of 5 cm. What equation will the engineers and technicians use for the manufacture of the dish? How far from the vertex (the lowest point of the dish) will the bulb be placed? (Hint: Analyze the information using a coordinate system.)
EXTENDING THE CONCEPT
93. In a study of quadratic graphs from the equation y ax2 bx c, no mention is made of a parabola’s focus and directrix. Generally, when a 1, the focus of a parabola is very near its vertex. Complete the square of the function y 2x2 8x and write the result in the form 1x h2 2 4p1y k2 . What is the value of p? What are the coordinates of the vertex? 94. Like the ellipse and Exercise 94 hyperbola, the focal chord y 7 of a parabola (also called 6 y5 5 the latus rectum) can be 4 3 (3, 2) used to help sketch its 2 graph. From our earlier 1 x 642 work, we know the 1 2 4 6 8 10 12 14 (3, 1) 2 (9, 1) endpoints of the focal chord are 2p units from the focus. Write the equation 12y 15 x2 6x in the form 4p1y k2 1x h2 2, and use the endpoints of the focal chord to help graph the parabola.
963
92. The reflector of an industrial spotlight has the shape of a parabolic dish with a diameter of 120 cm. What is the depth of the dish if the correct placement of the bulb is 11.25 cm above the vertex (the lowest point of the dish)? What equation will the engineers and technicians use for the manufacture of the dish? (Hint: Analyze the information using a coordinate system.)
Exercise 95 95. In Exercise 83, a formula y was given for the area of a right parabolic segment. The (3, 5) area of an oblique parabolic (0, 4) segment (the line segment x cutting the parabola is not perpendicular to the axis) is (6, 3) more complex, as it involves locating the point where a line parallel to this segment is tangent (touches at only one point) to the parabola. The formula is A 43T, where T represents the area of the triangle formed by the endpoints of the segment and this point of tangency. What is the area of the parabolic segment shown (assuming the lines are parallel)? See Section 9.1, Exercises 46 and 47 and Section 9.4, Example 3.
MAINTAINING YOUR SKILLS
96. (6.6) Find all real solutions to sec 1.1547 (round to the nearest degree). 97. (3.3/3.4) Use the function f1x2 x5 2x4 17x3 34x2 18x 36 to comment and give illustrations of the tools available for working with polynomials: (a) synthetic division, (b) rational roots theorem, (c) the remainder and factor theorems, (d) the test for x 1 and x 1, (e) the upper/lower bounds property, (f) Descartes’ rule of signs, and (g) roots of multiplicity (bounces, cuts, alternating intervals).
98. (1.6) Find all roots (real and complex) to the equation x6 64 0. (Hint: Begin by factoring the expression as the difference of two perfect squares.) 99. (6.5) The graph shown 3 displays the variation in daylight from an average of 12 hours per 0 60 120 180 240 300 360 day (i.e., the maximum is 15 hours and the minimum is 9). Use the 3 Day of year graph to approximate the number of days in a year there are 10.5 or less hours of daylight. Answers may vary. Hours
Section 10.4 The Analytic Parabola
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MID-CHAPTER CHECK c.
Sketch the graph of each conic section. 1. 1x 42 1y 32 9 2
2
2. x2 y2 10x 4y 4 0 3.
1x 22 2 1y 32 2 1 16 1
108642 2 4 6 8 10
4. 9x2 4y2 18x 24y 9 0 5.
1x 32 2 1y 42 2 1 9 4
6. 9x2 4y2 18x 24y 63 0 7. Find the equation of each relation and state its domain and range. a. b. (3, 5)
(5, 1)
y
y 10 8 6 4 (1, 2) 2
5 4 3 2 (1, 1) 1
54321 1 2 3 (3, 3)4 5
1 2 3 4 5 x
108642 2 4 6 8 10
y 10 8 6 4 2
(3, 6) (7, 2) 2 4 6 8 10 x
(3, 2)
2 4 6 8 10 x
(3, 4)
8. Solve the following system of inequalities by graphing. y2 x2 1 25 • 100 x2 1y 42 2 36 9. Find the equation of the ellipse (in standard form) if the vertices are (4, 0) and (4, 0) and the distance between the foci is 4 13 units. 10. The radio signal emanating from a tall radio tower spreads evenly in all directions with a range of 50 mi. If the tower is located at coordinates (20, 30) and my home is at coordinates (10, 78), will I be able to pick up this station on my home radio? Assume coordinates are in miles.
REINFORCING BASIC CONCEPTS Ellipses and Hyperbolas with Rational/Irrational Values of a and b Using the process known as completing the square, we were able to convert from the polynomial form of a conic section to the standard form. However, for some equations, values of a and b are somewhat difficult to identify, since the coefficients are not factors. Consider the equation 20x2 120x 27y2 54y 192 0 the equation of an ellipse. 20x2 120x 27y2 54y 192 0 201x 6x ____ 2 271y2 2y ____ 2 192 201x2 6x 92 271y2 2y 12 192 27 180 201x 32 2 271y 12 2 15 41x 32 2 91y 12 2 1 3 5 2
original equation subtract 192, begin process complete the square in x and y factor and simplify standard form
Unfortunately, we cannot easily identify the values of a and b, since the coefficients of each binomial square were not “1.” In these cases, we can write the equation in standard form by using a simple property of fractions— the numerator and denominator of any fraction can be divided by the same quantity to obtain an equivalent fraction. Although the result may look odd, it can nevertheless be applied here, giving a result of 1x 32 2 1y 12 2 1. We can now identify a and b by writing these denominators in squared form, 3/4 5/9 1x 32 2 1y 12 2 1. The values of a and b are now easily seen as which gives the following expression: 13 2 15 2 a b a b 2 3 a 0.866 and b 0.745. Use this idea to complete the following exercises.
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Exercise 1: Identify the values of a and b by writing the equation 100x2 400x 18y2 108y 230 0 in standard form. Exercise 2: Identify the values of a and b by writing the equation 28x2 56x 48y2 192y 195 0 in standard form. Exercise 3: Write the equation in standard form, then identify the values of a and b and use them to graph the ellipse.
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Exercise 4: Write the equation in standard form, then identify the values of a and b and use them to graph the hyperbola. 91x 32 2 41y 12 2 1 80 81
251y 12 2 41x 32 2 1 49 36
10.5 Polar Coordinates, Equations, and Graphs Learning Objectives In Section 10.5 you will learn how to:
A. Plot points given in polar form
B. Convert from rectangular form to polar form
C. Convert from polar form to rectangular form
D. Sketch basic polar graphs using an r-value analysis
E. Use symmetry and families of curves to write a polar equation given a polar graph or information about the graph
Figure 10.31 N
4 mi 2 mi 60 30 Coast Guard (pole)
23 mi
shoreline
One of the most enduring goals of mathematics is to express relations with the greatest tan cot possible simplicity and ease of use. For sin cos, we would tan2 cot2 definitely prefer working with sin cos , although the expressions are equivalent. Similarly, we would prefer computing 13 13i2 6 in trigonometric form rather than algebraic form—and would quickly find the result is 1728. In just this way, many equations and graphs are easier to work with in polar form rather than rectangular form. In rectangular form, a circle of radius 2 centered at (0, 2) has the equation x2 1y 22 2 4. In polar form, the equation of the same circle is simply r 4 sin . As you’ll see, polar coordinates offer an alternative method for plotting points and graphing relations.
A. Plotting Points Using Polar Coordinates Suppose a Coast Guard station receives a distress call from a stranded boat. The boater could attempt to give the location in rectangular form, but this might require imposing an arbitrary coordinate grid on an uneven shoreline, using uncertain points of reference. However, if the radio message said, “We’re stranded 4 miles out, bearing 60°,” the Coast Guard could immediately locate the boat and send help. In polar coordinates, “4 miles out, bearing 60°” would simply be written 1r, 2 14, 30°2, with r representing the distance from the station and 7 0 measured from a horizontal axis in the counterclockwise direction as before (see Figure 10.31). If we placed the scenario on a rectangular grid (assuming a straight shoreline), the coordinates of the boat would be 1213, 22 using basic trigonometry. As you see, the polar coordinate system uses angles and distances to locate a point in the plane. In this example, the Coast Guard station would be considered the pole or origin, with the x-axis as the polar axis or axis of reference (Figure 10.32). A distinctive feature of polar coordinates is that we allow r to be negative, in which case P1r, 2 is the point r units from the pole in a direction opposite 1180°2 to that of (Figure 10.33). For convenience, polar graph paper is often used when working with polar coordinates. It consists of a series of concentric circles that share the same center and have integer radii. The standard angles are marked off 15° depending on whether you’re working in radians or degrees in multiples of 12
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(Figure 10.34). To plot the point P1r, 2, go a distance of r at 0° then move ° counterclockwise along a circle of radius r. If r 7 0, plot a point at that location (you’re finished). If r 6 0, the point is plotted on a circle of the same radius, but 180° in the opposite direction. Figure 10.32
Figure 10.34
Figure 10.33 P(r, ) r0
120 135 150
r r Pole
Pole
105
165
Polar axis Polar axis
5 4 3 2 1
75
45 30 15
195
P(r, ) r0
60
345 330 315 300
210 225 240
255 285 Polar graph paper
EXAMPLE 1
Plotting Points in Polar Coordinates Plot each point P1r, 2 given A14, 45°2; B15, 135°2; C 13, 30°2; Da2, Ea5,
Solution
b; and Fa3, b. 3 6
2 b; 3
For A14, 45°2 go 4 units at 0°, then rotate 45° counterclockwise and plot point A. For B15, 135°2, move 5 5 units at 0°, rotate 135°, then actually plot point B 180° in the opposite direction, as shown. Point C13, 30°2 is plotted by moving 3 3 units at 0°, rotating 30°, then plotting point C 180° in the opposite 2 b, Ea5, b, and direction (since r 6 0). See Figure 10.35. The points Da2, 3 3 F a3, b are plotted on the grid in Figure 10.36. 6 Figure 10.35 120 135 150 C (3, 30)
210 225 240
5 4 3 2 1
Figure 10.36 60 3 4
45 A
30
(4, 45)
(5, 135)
2 3
5 6
(2, ) 2 3
B
330 315 300
3
5 4 3 D 2 1
4 6
F 3, 6
(
7 6
E 5 4
4 3
)
3
(5, ) 5 3
11 6 7 4
Now try Exercises 7 through 22
While plotting the points B15, 135°2 and F a3, b, you likely noticed that the 6 coordinates of a point in polar coordinates are not unique. For B15, 135°2 it appears more natural to name the location 15, 315°2; while for F a3, b, the expression 6
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a3,
11 b is just as reasonable. In fact, for any point P1r, 2 in polar coordinates, 6 P1r, 22 and P1r, 2 name the same location. See Exercises 23 through 36.
A. You’ve just learned how to plot points given in polar form
B. Converting from Rectangular Coordinates to Polar Coordinates Figure 10.37 Conversions between rectangular and polar coordiy nates is a simple application of skills from previous sections, and closely resembles the conversion from P(x, y) the rectangular form to the trigonometric form of a r y complex number. To make the connection, we first assume r 7 0 with in Quadrant II (see Figure r x 10.37). In rectangular form, the coordinates of the x point are simply (x, y), with the lengths of x and y forming the sides of a right triangle. The distance r from the origin to point P resembles the modulus of a complex number and is computed in the same way: y r 2x2 y2. As long as x 0, we have r tan1a b, noting r is a reference x angle if the terminal side is not in Quadrant I. If needed, refer to Section 5.3 for a review of reference arcs and reference angles.
Converting from Rectangular to Polar Coordinates y
Any point P1x, y2 in rectangular coordinates can be represented as P1r, 2 in polar coordinates, y where r 2x2 y2 and r tan1a b, x 0. x
P(x, y) r
y
r
x
x
EXAMPLE 2
Converting a Point from Rectangular Form to Polar Form Convert from rectangular to polar form, with r 7 0 and 0 360° (round values to one decimal place as needed). a. P15, 122 b. P13 12, 3122
Solution
a. Point P15, 122 is in Quadrant II. 12 b 5 1169 r 67.4° 13 112.6° P15, 122 S P113, 112.6°2 tan1a
r 2152 2 122
b. Point P13 12, 3122 is in Quadrant IV. r 313222 2 13222 2 B. You’ve just learned how to convert from rectangular form to polar form
136 6
tan1a
312 b 312
r 45° 315° P13 12, 3122 S P16, 315°2 Now try Exercises 37 through 44
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C. Converting from Polar Coordinates to Rectangular Coordinates The conversion from polar form to rectangular form is likewise straightforward. From Figure 10.38 y x we again note cos and sin , giving r r x r cos and y r sin . The conversion simply consists of making these substitutions and simplifying.
Figure 10.38 y
P(x, y) r
y
r
x
x
Converting from Polar to Rectangular Coordinates Any point P1r, 2 in polar coordinates can be represented as P(x, y) in rectangular coordinates, where x r cos and y r sin .
P(r cos , r sin ) r
y y
r
x
x
EXAMPLE 3
Converting a Point from Polar Form to Rectangular Form Convert from polar to rectangular form (round values to one decimal place as needed). 5 a. Pa12, b. P16, 240°2 b 3
Solution
C. You’ve just learned how to convert from polar form to rectangular form
5 b is in Quadrant IV. 3 x r cos y r sin 5 5 12 cosa b 12 sina b 3 3 1 13 12a b b 12a 2 2 6 6 13 5 b S P16, 6132 P16, 10.42 Pa12, 3 b. Point P16, 240°2 is in Quadrant III. a. Point Pa12,
x 6 cos 240° y 6 sin 240° 1 23 6a b b 6a 2 2 3 3 13 P16, 240°2 S P13, 3132 P13, 5.22 Now try Exercises 45 through 52
Using the relationships x r cos , y r sin , and x2 y2 1, we can actually convert an equation given in polar form, to the equivalent equation in rectangular form. See Exercises 105 and 106.
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Section 10.5 Polar Coordinates, Equations, and Graphs
D. Basic Polar Graphs and r-Value Analysis To really understand polar graphs, an intuitive sense Figure 10.39 of how they’re developed is needed. Polar equations 5 7 2 12 12 are generally stated in terms of r and trigonometric 5 3 3 3 4 4 4 functions of , with being the input value and r 5 3 being the output value. First, it helps to view the 6 6 2 length r as the long second hand of a clock, but 11 12 12 1 extending an equal distance in both directions from center (Figure 10.39). This “second hand” ticks 13 23 around the face of the clock in the counterclockwise 12 12 7 direction, with the angular measure of each tick 11 6 6 5 7 4 radians 15°. As each angle “ticks by,” being 4 4 5 12 3 17 19 3 12 12 we locate a point somewhere along the radius, depending on whether r is positive or negative, and plot it on the face of the clock before going on to the next tick. For the purposes of this study, we will allow that all polar graphs are continuous and smooth curves, without presenting a formal proof.
EXAMPLE 4
Graphing Basic Polar Equations Graph the polar equations. a. r 4
Solution
b.
4
a. For r 4, we’re plotting all points of the form 14, 2 where r has a constant value and varies. As the second hand “ticks around the polar grid,” we plot all points a distance of 4 units from the pole. As you might imagine, the graph is 5 7 2 12 12 a circle with radius 4. r, 4 5 3 3 3 4 4 4 5 b. For , all points have the form 3 6 6 4 2 11 12 12 1 ar, b with constant and r varying. In 4 4 13 23 this case, the “second hand” is frozen at 12 12 7 11 etc. 6 , and we plot any selection of r-values, 6 5 4 7 4 4 4 5 producing the straight line shown in the 3 17 19 3 12 12 figure.
( )
Now try Exercises 53 through 56
To develop an “intuitive sense” that allows for the efficient graphing of more sophisticated equations, we use a technique called r-value analysis. This technique basically takes advantage of the predictable patterns in r sin and r cos taken from their graphs, including the zeros and maximum/minimum values. We begin with the r-value analysis for r sin , using the graph shown in Figure 10.40. Note the analysis occurs in the four colored parts corresponding to Quadrants I, II, III, and IV, and that the maximum value of sin 1.
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Figure 10.40 r 1
(1)
(2) r sin
2
2
3 2
(3)
(4)
1
, sin is positive and sin increases from 0 to 1. 2 1 for r sin , r is increasing 2. As moves from to , sin is positive and sin decreases from 1 to 0. 2 1 for r sin , r is decreasing 3 , sin is negative and sin increases from 0 to 1. 3. As moves from to 2 1 for r sin , r is increasing 3 4. As moves from to 2, sin is negative and sin decreases from 1 to 0. 2 1 for r sin , r is decreasing 1. As moves from 0 to
WORTHY OF NOTE It is important to remember that if r 6 0, the related point on the graph is r units from center, 180° in the opposite direction: 1r, 2 S 1r, 180°2. In addition, students are encouraged not to use a table of values, a conversion to rectangular coordinates, or a graphing calculator until after the r-value analysis.
EXAMPLE 5
In summary, note that the value of r goes through four cycles, two where it is increasing from 0 to 1 (in red), and two where it is decreasing from 1 to 0 (in blue).
Graphing Polar Equations Using an r-Value Analysis Sketch the graph of r 4 sin using an r-value analysis.
Solution
Figure 10.41 3 4
2 3
5 6
3
5 4 3 2 1
4 6
(1)
7 6
11 6
5 4 4 3
5 3
7 4
Figure 10.42 3 4
2 3
5 6
(2) and (4)
5 4 3 2 1
3
4 6
(1) and (3) r 4 sin
7 6 5 4
11 6 4 3
Begin by noting that r 0 at 0, and will increase from 0 to 4 as the clock “ticks” from 0 to , since sin is increasing from 0 to 1. (1) For , , and 2 6 4 , r 2, r 2.8, and r 3.5, respectively (at , r 4). See Figure 10.41. 3 2 (2) As continues “ticking” from to , r decreases from 4 to 0, since sin is 2 5 2 3 , , and , r 3.5, r 2.8, decreasing from 1 to 0. For 3 4 6 3 , r and r 2, respectively (at , r 0). See Figure 10.42. (3) From to 2 increases from 0 to 4, but since r 6 0, this portion of the graph is reflected back 3 into Quadrant I, overlapping the portion already drawn from 0 to . (4) From 2 2 to 2, r decreases from 4 to 0, overlapping the portion drawn from to . We 2 conclude the graph is a closed figure limited to Quadrants I and II as shown in Figure 10.42. This is a circle with radius 2, centered at (0, 2). In summary:
5 3
7 4
2
0 to
r
0 to 4
to 2
to
4 to 0
0 to 4
3 2
3 to 2 2 4 to 0
Now try Exercises 57 and 58
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Section 10.5 Polar Coordinates, Equations, and Graphs
Although it takes some effort, r-value analysis offers an efficient way to graph polar equations, and gives a better understanding of graphing in polar coordinates. In addition, it often enables you to sketch the graph with a minimum number of calculations and plotted points. As you continue using the technique, it will help to have Figure 10.40 in plain view for quick reference, as well as the corresponding analysis of y cos for polar graphs involving cosine (see Exercise 98). EXAMPLE 6
Graphing Polar Equations Using an r-Value Analysis Sketch the graph of r 2 2 sin using an r-value analysis.
Solution
WORTHY OF NOTE While the same graph is obtained by simply plotting points, using an r-value analysis is often more efficient, particularly with more complex equations.
r 4 sin
0
0
30
2
45
212 2.8
60
213 3.5
90
4
120
213 3.5
135
2 12 2.8
150
2
180
0
Since the minimum value of sin is 1, we note that r will always be greater than or equal to zero. At 0, r has a value of 2 (sin 0 0), and will increase from 2 to 4 as the clock “ticks” from 0 to (sin is positive and sin is increasing). 2 From to , r decreases from 4 to 2 (sin is positive and sin is decreasing). 2 3 From to , r decreases from 2 to 0 (sin is negative and sin is increasing); 2 3 and from to 2, r increases from 0 to 2 (sin is negative and sin is 2 decreasing). We conclude the graph is a closed figure containing the points (2, 0), 5 3 a4, b, 12, 2 , and a0, b. Noting that and will produce 2 2 6 6 integer values, we evaluate r 2 2 sin and obtain the additional points a3, b 6 5 b. Using these points and the r-value analysis produces the and a3, 6 graph shown here, called a cardioid (from the limaçon family of curves). In summary we have:
2
2 to 4
to 2
4 to 2
3 (3) to 2
2 to 0
(1) 0 to (2)
D. You’ve just learned how to sketch basic polar graphs using an r-value analysis
r 2 2 sin
(4)
3 to 2 2
3 4 5 6 11 12
0 to 2
(2)
(3)
13 12 7 6
7 2 12 3
5 4
4 3 17 12
5 4 3 2 1
5 12
3
(1)
4
6 12
(4)
19 12
5 3
7 4
23 12 11 6
Now try Exercises 59 through 62
E. Symmetry and Families of Polar Graphs Even with a careful r-value analysis, some polar graphs require a good deal of effort to produce. In many cases, symmetry can be a big help, as can recognizing certain families of equations and their related graphs. As with other forms of graphing, gathering this information beforehand will enable you to graph relations with a smaller number of plotted points. Figures 10.43 to 10.46 offer some examples of symmetry for polar graphs.
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Figure 10.43 Vertical-axis symmetry: r 2 2 sin 5 4 3 2 1
Figure 10.44 Polar-axis symmetry: r 5 sin 5 4 3 2 1
Figure 10.45 Polar symmetry: r 5 sin 12 2 5 4 3 2 1
Figure 10.46 Polar symmetry: r 2 25 sin12 2 5 4 3 2 1
2
WORTHY OF NOTE In mathematics we refer to the tests for polar symmetry as sufficient but not necessary conditions. The tests are sufficient to show symmetry (if the test is satisfied, the graph must be symmetric), but the tests are not necessary to show symmetry (the graph may be symmetric even if the test is not satisfied).
The tests for symmetry in polar coordinates bear a strong resemblance to those for rectangular coordinates, but there is a major difference. Since there are many different ways to name a point in polar coordinates, a polar graph may actually exhibit a form of symmetry without satisfying the related test. In other words, the tests are sufficient to establish symmetry, but not necessary. The formal tests for symmetry are explored in Exercises 100 to 102. For our purposes, we’ll rely on a somewhat narrower view, one that is actually a synthesis of our observations here and our previous experience with the sine and cosine. Symmetry for Graphs of Certain Polar Equations Given the polar equation r f 12 , 1. If f 12 represents an expression in terms of sine(s), the graph will be symmetric to : 1r, 2 and 1r, 2 are on the graph. 2 2. If f 12 represents an expression in terms of cosine(s), the graph will be symmetric to 0: 1r, 2 and (r, ) are on the graph. Figure 10.47 While the fundamental ideas from Examy ples 5 and 6 go a long way toward graphing 1 (1) other polar equations, our discussion would (2) (5) (6) not be complete without a review of the y sin(2) period of sine and cosine. Many polar equa 3 2 tions have factors of sin1n2 or cos1n2 in 2 2 them, and it helps to recall the period formula (3) (4) (7) (8) 1 2 P . Comparing r 4 sin from n Example 5 with r 4 sin122, we note the period of sine changes from P 2 to 2 , meaning there will be twice as many cycles and r will now go through P 2 eight cycles—four where sin122 is increasing from 0 to 1 (in red), and four where it is decreasing from 1 to 0 (in blue). See Figure 10.47.
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EXAMPLE 7
Sketching Polar Graphs Using Symmetry and r-Values Sketch the graph of r 4 sin122 using symmetry and an r-value analysis.
Solution
Since r is expressed in terms of sine, the graph will be symmetric to . We 2 n note that r 0 at , where n is even, and the graph will go through the pole 2 at these points. This also tells us the graph will be a closed figure. From the graph 7 3 5 , of sin122 in Figure 10.47, we see sin122 1 at , , and , so the 4 4 4 4 3 5 7 b, a4, b, and a4, b. Only the graph will include the points a4, b, a4, 4 4 4 4 analysis of the first four cycles is given next, since the remainder of the graph can be drawn using symmetry. Cycle
r-Value Analysis
Location of Graph
(1)
0 to
4
r increases from 0 to 4
QI 1r 7 02
(2)
to 4 2
r decreases from 4 to 0
QI 1r 7 02
(3)
3 to 2 4
r increases from 0 to 4
QIV 1r 6 02
(4)
3 to 4
r decreases from 4 to 0
QIV 1r 6 02
Plotting the points and applying the r-value analysis with the symmetry involved produces the graph in the figure, called a four-leaf rose. At any time during this process, additional points can be calculated to “round-out” the graph. r 4 sin122 4 to 4 2 3 to 2 4 3 to 4
0 to
3 4
|r| 0 to 4
7 2 12 3
5 6 11 12
5 4 3 2 1
5 12
3
(2)
4
6
(1)
12
(4)
23 12 11 6
4 to 0 0 to 4 4 to 0
13 12 7 6 5 4
(3) 4 3 17 12
5 19 3 12
7 4
Now try Exercises 63 through 70
Graphing Polar Equations To assist the process of graphing polar equations: 1. Carefully note any symmetries you can use. 2. Have graphs of y sin1n2 and y cos1n2 in view for quick reference. 3. Use these graphs to analyze the value of r as the “clock ticks” around the polar grid: (a) determine the max/min r-values and write them in polar form, and (b) determine the polar-axis intercepts and write them in polar form. 4. Plot the points, then use the r-value analysis and any symmetries to complete the graph.
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Similar to polynomial graphs, polar graphs come in numerous shapes and varieties, yet many of them share common characteristics and can be organized into certain families. Some of the more common families are illustrated in Appendix V, and give the general equation and related graph for common family members. Also included are characteristics of certain graphs that will enable you to develop the polar equation given its graph or information about its graph. For further investigations using a graphing calculator, see Exercises 71 through 76.
EXAMPLE 8
Graphing a Limaçon Using Stated Conditions Find the equation of the polar curve satisfying the given conditions, then sketch the graph: limaçon, symmetric to 90°, with a 2 and b 3.
Solution
The general equation of a limaçon symmetric to 90° is r a b sin , so our desired equation is r 2 3 sin . Since a 6 b, the limaçon has an inner loop of length 3 2 1 and a maximum distance from the origin of 2 3 5. The polar-axis intercepts are (2, 0) and 12, 180°2 . With b 6 0, the graph is reflected across the polar axis (facing “downward”). The complete graph is shown in the figure.
(2, 180)
(2, 0) (1, 90)
(5, 270)
Now try Exercises 79 through 94
EXAMPLE 9
Modeling the Flight Path of a Scavenger Bird Scavenger birds sometimes fly over dead or dying animals (called carrion) in a “figure-eight” formation, closely resembling the graph of a lemniscate. Suppose the flight path of one of these birds was plotted and found to contain the polar coordinates (81, 0°) and (0, 45°). Find the equation of the lemniscate. If the bird lands at the point (r, 136°), how far is it from the carrion? Assume r is in yards.
Solution
Since (81, 0°) is a point on the graph, the lemniscate is symmetric to the polar axis and the general equation is r2 a2cos122 . The point (81, 0°) indicates a 81, hence the equation is r2 6561 cos122 . At 136° we have r2 6561 cos 272°, and the bird has landed r 15 yd away.
(15, 136) (81, 0)
Lemniscate
Now try Exercises 95 through 97
E. You’ve just learned how to use symmetry and families of curves to write a polar equation given a polar graph or information about the graph
You’ve likely been wondering how the different families of polar graphs were named. The roses are easy to figure as each graph has a flower-like appearance. The limaçon (pronounced li-ma-sawn) family takes its name from the Latin words limax or lamacis, meaning “snail.” With some imagination, these graphs do have the appearance of a snail shell. The cardioids are a subset of the limaçon family and are so named due to their obvious resemblance to the human heart. In fact, the name stems from the Greek kardia meaning heart, and many derivative words are still in common use (a cardiologist is one who specializes in a study of the heart). Finally, there is the lemniscate family, a name derived from the Latin lemniscus, which describes a certain kind of ribbon. Once again, a little creativity enables us to make the connection between ribbons, bows, and the shape of this graph.
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10.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The point (r, ) is said to be written in coordinates. 2. In polar coordinates, the origin is called the and the horizontal axis is called the axis. 3. The point (4, 135°) is located in Q (4, 135°) is located in Q .
, while
4. If a polar equation is given in terms of cosine, the graph will be symmetric to . 5. Write out the procedure for plotting points in polar coordinates, as though you were explaining the process to a friend. 6. Discuss the graph of r 6 cos in terms of an r-value analysis, using y cos and a color-coded graph.
DEVELOPING YOUR SKILLS
Plot the following points using polar graph paper.
7. a4,
b 2
8. a3,
3 b 2
10. a4.5, b 3
11. a5,
13. a3,
14. a4, b 4
2 b 3
5 b 6
9. a2,
21.
5 b 4
12. a4,
16.
y
y
(0, 4)
(4, 4)
y
7 b 4
Express the points shown using polar coordinates with in radians, 0 2 and r 0.
15.
22. y
(4, 0) x
x
x
x
(4√3, 4)
List three alternative ways the given points can be expressed in polar coordinates using r 0, r 0, and [ 2, 2 ).
23. a3 12, 25. a2,
24. a4 13,
3 b 4
11 b 6
26. a3,
5 b 3
7 b 6
Match each (r, ) given to one of the points A, B, C, or D shown.
17.
18.
y
Exercise 27–36
y
(4, 4)
7 2 12 3
3 4
x
x
5 6 11 12
(4, 4)
19.
20.
y
13 12 7 6
y
(4, 4√3) x
(4√3, 4)
27. a4,
5 b 6
5 12
3
4
B
6
C D 5 4
x
A
5 4 3 2 1
4 3 17 12
5 19 3 12
28. a4,
7 4
12
23 12 11 6
5 b 4
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29. a4,
b 6
31. a4, 33. a4,
5 b 4
13 b 6
35. a4,
21 b 4
30. a4,
3 b 4
32. a4, b 4 34. a4,
36. a4,
37. (8, 0)
35 b 6
38. (0, 7)
39. (4, 4)
40. 14 13, 42
41. (512, 5 12)
42. (6, 6 13)
43. (5, 12)
44. (3.5, 12)
Convert from polar coordinates to rectangular coordinates. A diagram may help.
45. (8, 45°)
46. (6, 60°)
47. a4,
48. a5,
3 b 4
49. a2,
7 b 6
51. 15, 135°2
5 b 6
50. a10,
4 b 3
52. 14, 30°2
53. r 5 6
54. r 6 56.
3 4
57. r 4 cos
58. r 2 sin
59. r 3 3 sin
60. r 2 2 cos
61. r 2 4 sin
62. r 1 2 cos
63. r 5 cos122
64. r 3 sin142
65. r 4 sin 2
66. r 6 cos152
67. r 9 sin122
68. r2 16 cos122
69. r 4 sina b 2
70. r 6 cosa b 2
2
Use a graphing calculator in polar mode to produce the following polar graphs.
71. r 4 21 sin2, a hippopede 72. r 3 csc , a conchoid 73. r 2 cos cot , a cissoid 74. r cot , a kappa curve 75. r 8 sin cos2, a bifoliate 76. r 8 cos 14 sin2 22 , a folium
WORKING WITH FORMULAS
77. The midpoint formula in polar coordinates: r cos R cos r sin R sin , b Ma 2 2 The midpoint of a line segment connecting the points (r, ) and (R, ) in polar coordinates can be found using the formula shown. Find the midpoint of the line segment between 1r, 2 16, 45°2 and 1R, 2 18, 30°2 , then convert these points to rectangular coordinates and find the midpoint using the “standard” formula. Do the results match?
Sketch each polar graph using an r-value analysis (a table may help), symmetry, and any convenient points.
55.
19 b 6
Convert from rectangular coordinates to polar coordinates. A diagram may help.
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CHAPTER 10 Analytic Geometry and the Conic Sections
78. The distance formula in polar coordinates: d 2R2 r2 2Rr cos( ) Using the law of cosines, it can be shown that the distance between the points (R, ) and (r, ) in polar coordinates is given by the formula indicated. Use the formula to find the distance between 1R, 2 16, 45°2 and 1r, 2 18, 30°2 , then convert these to rectangular coordinates and compute the distance between them using the “standard” formula. Do the results match?
APPLICATIONS
Polar graphs: Find the equation of a polar graph satisfying the given conditions, then sketch the graph.
79. limaçon, symmetric to polar axis, a 4 and b 4
80. rose, four petals, two petals symmetric to the polar axis, a 6 81. rose, five petals, one petal symmetric to the polar axis, a 4
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82. limaçon, symmetric to
, a 2 and b 4 2
83. lemniscate, a 4 through (, 4) 84. lemniscate, a 8 through a8, 85. circle, symmetric to containing a2,
b 6
b 4
, center at a2, b, 2 2
86. circle, symmetric to polar axis, through 16, 2
a. c. e. g.
r 6 cos r 6 cos142 r2 36 sin122 r 6 sin
b. d. f. h.
977
r 3 3 sin r2 36 cos122 r 2 4 sin r 6 sin152
95. Figure eights: Waiting for help to arrive on foot, a light plane is circling over some stranded hikers using a “figure eight” formation, closely resembling the graph of a lemniscate. Suppose the flight path of the plane was plotted (using the hikers as the origin) and found to contain the polar coordinates (7200, 45°) and (0, 90°) with r in meters. Find the equation of the lemniscate.
Matching: Match each graph to its equation a through h, which follow. Justify your answers.
87.
88. 96. Animal territories: Territorial animals often prowl the borders of their territory, marking the boundaries with various bodily excretions. Suppose the territory of one such animal was limaçon shaped, with the pole representing the den of the animal. Find the polar equation defining the animal’s territory if markings are left at (750, 0°), (1000, 90°), and (750, 180°). Assume r is in meters.
6 6
89.
90. 6 6
91.
92. 6
93.
6
94. 6 6
97. Prop manufacturing: The propellers for a toy boat are manufactured by stamping out a rose with n petals and then bending each blade. If the manufacturer wants propellers with five blades and a radius of 15 mm, what two polar equations will satisfy these specifications?
98. Polar curves and cosine: Do a complete r-value analysis for graphing polar curves involving cosine. Include a color-coded graph showing the relationship between r and , similar to the analysis for sines that preceded Example 6.
EXTENDING THE CONCEPT
99. The polar graph r a is called the Spiral of 1 Archimedes. Consider the spiral r . As this 2 graph spirals around the origin, what is the distance between each positive, polar intercept? In QI, what is the distance between consecutive branches of the
? What is the 4 distance between consecutive branches of the spiral at ? What can you conclude? 2 spiral each time it intersects
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As mentioned in the exposition, tests for symmetry of polar graphs are sufficient to show symmetry (if the test is satisfied, the graph must be symmetric), but the tests are not necessary to show symmetry (the graph may be symmetric even if the test is not satisfied). For r f(), the formal tests for the symmetry are: (1) the graph will be symmetric to the polar axis if f() f(); (2) the graph will be symmetric to the line if 2 f( ) f (); and (3) the graph will be symmetric to the pole if f() f().
100. Sketch the graph of r 4 sin122. Show the equation fails the first test, yet the graph is still symmetric to the polar axis. 101. Why is the graph of every lemniscate symmetric to the pole? 102. Verify that the graph of every limaçon of the form r a b cos is symmetric to the polar axis.
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CHAPTER 10 Analytic Geometry and the Conic Sections
103. The graphs of r a sin1n2 and r a cos1n2 are from the rose family of polar graphs. If n is odd, there are n petals in the rose, and if n is even, there are 2n petals. An interesting extension of this fact is that the n petals enclose exactly 25% of the area of the circumscribed circle, and the 2n petals enclose exactly 50%. Find the area within the boundaries of the rose defined by r 6 sin152. To develop an understanding of polar equations, we used the following facts x2 y2 r2, x r cos , and y r sin . Using these relationships, we can actually convert polar equations to rectangular equations and vice versa, showing that a particular equation can be graphed in either form. Use these relationships to write these polar equations in rectangular form. (Hint: Isolate the term kr (k a constant) on one side, then square.)
104. r
1 1 sin
105. r
6 2 4 sin
MAINTAINING YOUR SKILLS
106. (6.2) Verify the following is an identity: cos2x sin2x 1 sin12x2 tan x. 107. (6.7) Solve for t 3 0, 22: 20 5 30 sin a2t b. 6
109. (2.7) Graph the piecewise function shown and state its domain and range. x 2 5 x 6 1 f 1x2 • x 1 x 6 2 4 26x5
108. (1.3) Solve the absolute value inequality. Answer in interval notation: 32x 5 7 7 19
10.6 More on the Conic Sections: Rotation of Axes and Polar Form Learning Objectives In Section 10.6 you will learn how to:
A. Graph conic sections that have nonvertical and nonhorizontal axes (rotated conics)
B. Identify conics using the discriminant of the polynomial form—the invariant B2 4AC
C. Write the equation of a conic section in polar form
D. Solve applications involving the conic sections in polar form
Our study of conic sections would not be complete without considering conic sections whose graphs are not symmetric to a vertical or horizontal axis. The axis of symmetry still exists, but is rotated by some angle. We’ll first study these rotated conics using the equation in its polynomial form, then investigate some interesting applications of the polar form.
A. Rotated Conics and the Rotation of Axes It’s always easier to understand a new idea in terms of a known idea, so we begin our 1 study with a review of the reciprocal function y . From the equation we note: x 1. The denominator is zero when x 0, and the y-axis is a vertical asymptote (the vertical line x 0). 2. Since the degree of the numerator is less than the degree of the denominator, the x-axis is a horizontal asymptote (the horizontal line y 0). 3. Since x 6 0 implies y 6 0 and x 7 0 implies y 7 0, the graph will have two branches—one in the first quadrant and one in the third.
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Section 10.6 More on the Conic Sections: Rotation of Axes and Polar Form
Note the polynomial form of this equation is xy 1. The resulting graph is shown in Figure 10.48, and is actually the graph of a hyperbola with a transverse axis of y x. Using the 45-45-90 triangle indicated, we find the distance from the origin to each vertex is 12. If we rotated the hyperbola 45° clockwise, we would obtain a more “standard” graph with a horizontal transverse axis and vertices at 1a, 02 S 112, 02. The asymptotes would be b y 1x, and since y x is the general form a we know b 12. This information can be used to find the equation of the rotated hyperbola.
Figure 10.48 y
yx
(1, 1) 1 1
(1, 1)
EXAMPLE 1
Finding the Equation of a Rotated Conic from Its Graph
Solution
Using the standard form
x
The hyperbola xy 1 is rotated clockwise 45°, with new vertices at 1 12, 02, asymptotes at y 1x and b 12. Find the equation and graph the hyperbola. y2 x2 1 and a2 b2 substituting 12 for a and b, the equation of the rotated hyperbola is y2 x2 1 or x2 y2 2 in polynomial 2 2 form. The resulting graph is the central hyperbola shown.
y
(√2, 0)
(√2, 0) x
Now try Exercises 7 and 8 Figure 10.49 y x r cos ␣ y r sin ␣
(x, y)
r
␣ x
It’s important to note the equation of the rotated hyperbola is devoid of the mixed “xy” term. In nondegenerate cases, the equation Ax2 Cy2 Dx Ey F 0 is the polynomial form of a conic with axes that are vertical/horizontal. However, the most general form of the equation is Ax2 Bxy Cy2 Dx Ey F 0, and includes this Bxy term. As noted in Example 1, the inclusion of this term will rotate the graph through some angle . Based on these observations, we reason that one approach to graphing these conics is to find the angle of rotation with respect to the xy-axes. We can then use to rewrite the equation so that it corresponds to a new set of XY-axes, which are parallel to the axes of the conic. The mixed xy-term will be absent from the new equation and we can graph the Figure 10.50 conic on the new axes using the same ideas as before y Y (identifying a, b, foci, and so on). To find , recall that X r cos(␣ ) Y r sin(␣ ) a point (x, y) in the xy-plane can be written (X, Y) x r cos , y r sin , as in Figure 10.49. The diagram in Figure 10.50 shows the axes of a new XY-plane, rotated counterclockwise by angle . In r this new plane, the coordinates of the point (x, y) ␣ X become X r cos1 2 and Y r sin1 2 as ␣ shown. Using the difference identities for sine and  x cosine and substituting x r cos and y r sin leads to
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X r cos1 2 r1cos cos sin sin 2 r cos cos r sin sin x cos y sin
Y r sin1 2 r1sin cos cos sin 2 r sin cos r cos sin y cos x sin
The last two equations can be written as a system, which we will use to solve for x and y in terms of X and Y. X x cos y sin Y y cos x sin X cos x cos2 y sin cos e Y sin y sin cos x sin2 X cos Y sin x cos2 x sin2 e
WORTHY OF NOTE
X cos Y sin x
If you are familiar with matrices, it may be easier to remember the rotation formulas in their matrix form, since the pattern of functions is the same, with only a difference in sign:
original system multiply first equation by cos multiply second equation by sin first equation second equation factor out x 1cos2 sin2 12
Re-solving the system for y results in y X sin Y cos , yielding what are called the rotation of axes formulas (see Exercise 79). Rotation of Axes Formulas If the x- and y-axes of the xy-plane are rotated counterclockwise by the (acute) angle to form the X- and Y-axes of an XY-plane, the coordinates of the points (x, y) and (X, Y ) are related by the formulas
x cos sin X c d c dc d sin cos Y y X cos sin x c d c dc d sin cos y Y See Exercises 86 and 87.
x X cos Y sin
X x cos y sin
y X sin Y cos
Y x sin y cos
EXAMPLE 2
Naming the Location of a Point After Rotating the Axes
Solution
Using the formulas with x 1, y 13, and 60°, we obtain
Given the point 11, 132 in the xy-plane, find the coordinates of this point in the XY-plane given the angle between the xy-axes and the XY-axes is 60°. X x cos y sin 1 cos 60° 13 sin 60° 1 13 a b 13 a b 2 2 2
Y x sin y cos 1 sin 60° 13 cos 60° 13 13 2 2 0
The coordinates of P(X, Y) would be (2, 0). Now try Exercises 9 through 16
Figure 10.51 y (2,
0)
X
pla n
e:
Y
xy-plane: (1, √3)
XY -
The diagram in Figure 10.51 provides a more intuitive look at the rotation from Example 2. As you can see, a 30-60-90 triangle is formed with a hypotenuse of 2, giving coordinates (2, 0) in the XY-plane.
√3 60 1
x
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EXAMPLE 3
Writing the Equation of a Conic After Rotating the Axes The ellipse X2 4Y2 16 is rotated clockwise 45°. What is the corresponding equation in the xy-plane?
Solution
We proceed as before, using the rotation formulas X x cos y sin and 12 Y y cos x sin . With 45° we have cos sin , yielding 2 X2 4Y2 16 2 1x cos y sin 2 41y cos x sin 2 2 16 use rotation formulas 12 12 2 12 12 2 12 a x yb 4a y xb 16 substitute for sin and cos 2 2 2 2 2 1 1 1 1 a x2 xy y2 b 4a x2 xy y2 b 16 square binomials 2 2 2 2 1 2 1 x xy y2 2x2 4xy 2y2 16 distribute 2 2 5 2 5 x 3xy y2 16 result 2 2 Now try Exercises 17 through 20
Note the equation of the conic in the standard xy-plane contains the “mixed” Bxyterm. In practice, we seek to reverse this procedure by starting in the xy-plane, and finding the angle needed to eliminate the Bxy-term. Using the rotation formulas and the appropriate angle , the equation Ax2 Bxy Cy2 Dx Ey F 0 becomes aX2 cY2 dX eY f 0, where the xy-term is absent. To find the angle , note that without loss of generality, we can assume D E 0 since only the second-degree terms are used to identify a conic. Starting with the simplified equation Ax2 Bxy Cy2 F 0 and using the rotation formulas we obtain
Ax2
Bx
#
y
F0
Cy2
A1X cos Y sin 2 B1X cos Y sin 2 1X sin Y cos 2 C1X sin Y cos 2 F 0 2
2
Expanding this expression and collecting like terms (see Exercise 80), gives the following expressions for coefficients a, b, and c of the corresponding equation aX2 bXY cY2 f 0: a S A cos2 B sin cos C sin2
a is the coefficient of X 2
b S 2A sin cos B1cos2 sin22 2C sin cos
b is the coefficient of XY
c S A sin B sin cos C cos
c is the coefficient of Y 2
fSF
f F (the constant remains unchanged)
2
2
To accomplish our purpose, we require the coefficient b to be zero. While this expression looks daunting, the double-angle identities for sine and cosine simplify it very nicely: b S A12 sin cos 2 B1cos2 sin22 C12 sin cos 2 0 A sin122 B cos122 C sin(2) 0 1C A2sin122 B cos122 B tan122 CA B tan122 ;AC AC
(1) (2) (3) (4)
(5)
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Note from line (3) that A C would imply cos122 0, giving 2 90° or 90°, with 45° or 45° (for the sake of convenience, we select the angle in QI). B This fact can many times be used to great advantage. If A C, tan122 and AC we choose 2 between 0 and 180° so that will be in the first quadrant 3 0 6 6 90° 4. The Equation of a Conic After Rotating the Axes For a conic defined by Ax2 Bxy Cy2 Dx Ey F 0 and its graph in the B xy-plane, an angle can be determined using tan122 and used in the AC rotation formulas to find a polynomial aX2 cY2 dX eY f 0 in XY-plane, where the conic is either vertical or horizontal.
EXAMPLE 4
Rotating the Axes to Eliminate the Bxy-Term For x2 2 13xy 3y2 13x y 16 0, eliminate the xy-term using a rotation of axes and identify the conic associated with the resulting equation. Then sketch the graph of the rotated conic in the XY-plane.
Solution
B 213 , giving tan122 13. AC 13 13 This shows 2 tan1 13, yielding 2 60° so 30°. Using cos 30° 2 1 and sin 30° along with the rotation formulas we obtain the following 2 XY-equation, with corresponding terms shown side-by-side for clarity: Since A C, we find using tan122
Given Term in xy-Plane x2 2 13xy 3y2
13x y 16
Corresponding Term in xy-Plane → a
13 1 2 3 1 13 X Yb X2 XY Y2 2 2 4 2 4
13 1 1 13 3 2 3 2 → 213a 2 X 2 Yba 2 X 2 Yb 2 X 13XY 2 Y 13 2 3 2 13 9 2 1 → 3a 2 x 2 Yb 4 X 3 2 XY 4 Y → 13a
13 1 3 13 X Yb X Y 2 2 2 2
13 1 13 1 → a 2 X 2 Yb 2 X 2 Y → 16
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Adding the like terms to the far right, the X2-terms (in red), the Y-terms (in bold), and the mixed XYterms (in blue) sum to zero, leaving the equation 2X 4Y2 16 0, which is the parabola defined by Y2 12 1X 82. This parabola is symmetric to the X-axis and opens to the right, with a vertex at (8, 0), Y-intercepts at (0, 2) and (0, 2), focus at 163 8 , 02 and directrix 65 through 1 8 , 02 . The graph is shown in the figure.
y Y X (0, 2) 30 x
(0, 2) (8, 0)
Now try Exercises 21 through 30
A. You’ve just learned how to graph conic sections that have nonvertical and nonhorizontal axes (rotated conics)
In Example 4, the angle was a standard angle and easily found. In general, this is not the case and finding exact values of cos and sin for use in the rotation formulas sin122 , the corresponding (triangle) diagram, and the idenrequires using tan122 cos122 1 cos122 1 cos122 tities cos and sin . See Exercises 31, 32, 84, A 2 2 B and 85 for further study.
B. Identifying Conics Using the Discriminant In addition to rotating the axes, the inclusion of the “xy-term” makes it impossible to identify the conic section using the tests seen earlier. For example, having A C no longer guarantees a circle, and A 0 or C 0 does not guarantee a parabola. Rather than continuing to look at what the mixed term and the resulting rotation changes, we now look at what the rotation does not change, called invariants of the transformation. These invariants can be used to double-check the algebra involved and to identify the conic using the discriminant. These are given here without proof. Invariants of a Rotation and Classification Using the Discriminant By rotating the coordinate axes through a predetermined angle , the equation Ax2 Bxy Cy2 Dx Ey F 0 can be transformed into aX2 cY2 dX eY f 0 in which the xy-term is absent. This rotation has the following invariants: (1) F f
(2) A C a c
(3) B2 4AC b2 4ac.
The discriminant of a conic equation in polynomial form is B2 4AC. Except in degenerate cases, the graph of the equation can be classified as follows: If B2 4AC 0, the graph will be a parabola. If B2 4AC 6 0, the graph will be a circle or an ellipse. If B2 4AC 7 0, the graph will be a hyperbola.
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EXAMPLE 5A
Verifying the Invariants of a Rotation of Axes Verify the invariants just given using the equations from Example 4. Also verify the discriminant test.
Solution
From the equation x2 2 13xy 3y2 13x y 16 0, we have A 1, B 2 13, C 3, D 13, E 1, and F 16. After applying the rotation the equation became 2X 4Y2 16 0, with a 0, b 0, c 4, d 2, e 0, and f 16. Checking each invariant gives (1) 16 16✓, (2) 1 3 0 4✓, and (3) 12 132 2 4112 132 102 2 4102142 ✓. With B2 4AC 0, the discriminant test indicates the conic is a parabola ✓.
EXAMPLE 5B
Identifying the Equation of a Conic Using the Discriminant Use the discriminant to identify each equation as that of a circle, ellipse, parabola, or hyperbola, but do not graph the equation. a. 3x2 4xy 3y2 6x 12y 2 0 b. 4x2 9xy 4y2 8x 24y 9 0 c. 6x2 7xy y2 5 0 d. x2 6xy 9y2 6x 0
Solution
a.
A 3; B 4; C 3
B 4AC 142 4132132 2
2
20 circle or ellipse
c. A 6; B 7; C 1 B. You’ve just learned how to identify conics using the discriminant of the polynomial form—the invariant B2 4AC
B 4AC 172 4162112 2
2
25
b. A 4; B 9; C 4
B2 4AC 192 2 4142142 17 hyperbola
d. A 1; B 6; C 9
B2 4AC 162 2 4112192 0
hyperbola
parabola Now try Exercises 33 through 36
Figure 10.52
C. Conic Equations in Polar Form
y P(r, )
D
r
F(0, 0)
A d
x B
You might recall that earlier in this chapter we defined ellipses and hyperbolas in terms of a distance between two points, but a parabola in terms of a distance between a point and a line (the focus and directrix). Actually, all conic sections can be defined using a focus/directrix development and written in polar form. This serves to unify and greatly simplify their study. We begin by revisiting the focus/directrix development of a parabola, using a directrix l and placing the focus at the origin. With the polar axis as the axis of symmetry and the point P1r, 2 in polar coordinates, we obtain the graph shown in Figure 10.52. Given D and A are points on l (with A on the polar axis), we note the following: (1) DP FP (2) DP AB
Directrix ᏸ
(3) FB r cos (4) AB AF FB
definition of a parabola equal line segments FB cos r sum of line segments
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Using the preceding equations and representing the distance AF by the constant d, we obtain this sequence: AB d r cos
substitute d for AF and r cos for FB
FP d r cos r d r cos
substitute FP for AB since FP DP AB substitute r for FP
d , 1 cos which is the equation of a parabola in polar form with its focus at the origin, vertex at d 3 a , b, and y-intercepts at ad, b and ad, b. Note the constant “1” in the denom2 2 2 inator is a key characteristic of polar equations, and helps define the standard form. Solving the last equation for r we have r r cos d, then r
EXAMPLE 6A
Identifying a Conic from Its Polar Equation Verify the equation r
6 represents a parabola, then describe and 3 3 cos
sketch the graph. Solution
Figure 10.54 P3
D1 F P1
D1P3 2FP3 D2P4 2FP4
D2 ᏸ
P4
P2
Write the equation in standard form by dividing the numerator and denominator by 3, 2 obtaining r . From this we see 1 cos d 2 and the represents a parabola symmetric to the polar axis, with vertex at (1, ) and 3 b, as shown y-intercepts at a2, b and a2, 2 2 in the figure.
2 3 3 4
3
ᏸ
5 6
4 3 (2, 2 )
4 6
(1,)
(2, 3 2 ) 7 6 5 4
11 6 4 3
5 3
7 4
The polar equation for a parabola depended on Figure 10.53 DP and FP being equal in length, with ratio FP 1. But what if this ratio is not equal to 1? DP2 2FP2 DP1 2FP1 DP D Similar to our introduction to conics in Section 10.1, P1 F P2 FP 1 Directrix and investigate the graph that we assume ᏸ 2 DP results.Cross-multiplying gives 2FP DP, which states that the distance from D to P is twice the distance from F to P. Note that we are able to locate two points P1 and P2 on the polar axis that satisfy this relation, rather than only one as in the case of the parabola. Figure 10.53 illustrates the location of these points. Using the focal chord for convenience, two additional points P3 and P4 can be located that also satisfy the stated condition (see Figure 10.54). In fact, we can locate an infinite number of these FP 1 , and the resulting graph appears to be an ellipse (and is definitely points using 2 DP not aparabola). These illustrations provide the basis for stating a general focus/directrix FP definition of the conic sections. The ratio is often represented by the letter e, DP and represents the eccentricity of the conic. Using FP r and DP d r cos from r FP e, which enables us to state the general our initial development, d r cos DP
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de , 1 e cos where the type of conic depends solely on e. Depending on the orientation of the conic, the general form may involve sine instead of cosine, and have a sum of terms in the denominator rather than a difference. Note once again that if e 1, the relation simplifies into the parabolic equation seen earlier. equation of a conic in polar form. Solving for r leads to the equation r
The Standard Equation of a Conic in Polar Form Given a conic section with eccentricity e, one foci at the pole of the r-plane, and directrix l located d units from this focus. Then the polar equations r
de 1 e cos
and
r
de 1 e sin
represent one of the conic sections as determined by the value of e. • If e 1, the graph is a parabola. • If 0 6 e 6 1, the graph is an ellipse. • If e 7 1, the graph is a hyperbola. For the ellipse and hyperbola, the major axis and transverse axis (respectively) are both perpendicular to the directrix and contain the vertices and foci. Our earlier development of eccentricity can then be expressed in terms of a and c, as the c ratio e . a As in our previous study of polar equations, if the equation involves cosine the graph will be symmetric to the polar axis. If the graph involves sine, the line is 2 the axis of symmetry. In addition, if the denominator contains a difference of terms (as in Example 6A), the graph will be above or to the right of the directrix (depending on whether the equation involves sine or cosine). If the denominator contains a sum of terms, the graph will be below or to the left of the directrix.
EXAMPLE 6B
Using the Standard Equation to Graph a Conic in Polar Form 10 represents a parabola, ellipse, or 5 3 sin hyperbola. Then describe and sketch the graph. Determine if the equation r
Solution
C. You’ve just learned how to write the equation of a conic section in polar form
To write the equation in standard form, we divide 2 3 (5, 2 ) 3 both numerator and denominator by 5, obtaining 3 4 4 2 4 . From the standard 5 the equation r 6 6 3 3 1 sin 2 5 1 (2, 0) (2, ) 3 form we note e so the equation represents an 5 (1.25, 3 2 ) ellipse. With a difference of terms and the sine 11 7 6 function involved, the graph is symmetric to 6 ᏸ 5 7 4 4 and is above the directrix. Given so much 4 5 2 3 3 information by the equation, we require very few points to sketch the graph and settle for those generated by 3 5 3 0, , , and , yielding the points (2, 0), a5, b, 12, 2, and a , b. The 2 2 2 4 2 graph is shown in the figure. Now try Exercises 37 through 56
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D. Applications of Conics in Polar Form For centuries it has been known that the orbits of the planets around the Sun are elliptical, with the Sun at one focus. In addition, comets may approach our Sun in an elliptical, hyperbolic, or parabolic path with the Sun again at the foci. This makes planetary studies a very natural application of the conic sections in polar form. To aid this study, it helps to know that in an elliptical orbit, the maximum distance of a planet from the Sun is called its aphelion, and the shortest distance is the perihelion (Figure 10.55). This means the length of the major axis is “aphelion perihelion,” enabling us to find the value of c if the aphelion and peric helion are known (Figure 10.56). Using e , we can a then find the eccentricity of the planet’s orbit.
EXAMPLE 7
Figure 10.55
Sun Perihelion
Aphelion
Figure 10.56 a Perihelion c
Determining the Eccentricity of a Planet’s Orbit In its elliptical orbit around the Sun, Mars has an aphelion of 154.9 million miles and a perihelion of 128.4 million miles. What is the eccentricity of its orbit?
Solution
The length of the major axes would be 2a 1154.9 128.42 mi, yielding a semimajor axis of a 141.65 million miles. Since a c perihelion (Figure 10.56), we have 141.65 c 128.4 so c 13.25. The eccentricity of the orbit is 13.25 c or about 0.0935. e a 141.65 Now try Exercises 59 and 60
We can also find the perihelion and aphelion directly in terms of a (semimajor axis) and e (eccentricity) if these quantities are known. Using a c perihelion, we c obtain: perihelion a c. For e , we have ea c and by direct substitution we a obtain: perihelion a ea a11 e2. For Example 8, recall that “AU” designates an astronomical unit, and represents the mean distance from the Earth to the Sun, approximately 92.96 million miles.
EXAMPLE 8
Determining the Perihelion of a Planet’s Orbit The orbit of the planet Jupiter has a semimajor axis of 5.2 AU (1 AU 92.96 million miles) and an eccentricity of 0.0489. What is the closest distance from Jupiter to the Sun?
Solution
With perihelion a11 e2, we have 5.211 0.04892 4.946. At its closest approach, Jupiter is 4.946 AU from the Sun (about 460 million miles). Now try Exercises 61 through 64 To find the polar equation of a planetary orbit, it’s helpful to write the general polar equation in terms of the semimajor axis a, which is often known or easily found, rather than in terms of the distance d from directrix to focus, which is often unknown. Consider the diagram in Figure 10.57, which shows an elliptical orbit with the Sun at one focus, vertices
Figure 10.57 d D ᏸ
P1
F
a
C
P2
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P1 and P2 (perihelion and aphelion), and the center C of the ellipse. Assume the point FP1 e. From Example 8 we P used to define the conic sections is at position P1, giving DP1 have FP1 a11 e2. Substituting a11 e2 for FP1 and solving for DP1 gives a11 e2 DP1 . Using d DP1 FP1, we obtain the following sequence: e d DP1 FP1 a11 e2 a11 e2 e a11 e2 ae11 e2 e e a11 e211 e2 e a11 e2 2 e de a11 e2 2
substitute
a 11 e2 e
for DP1 and a 11 e2 for FP1
common denominator combine terms, factor out a 11 e2 11 e211 e2 1 e 2 multiply by e
Substituting a11 e2 2 for de in the standard equation r
de gives the 1 e cos a11 e2 2 . equation of the orbit entirely in terms of a and e: r 1 e cos EXAMPLE 9
Writing the Polar Equation of an Ellipse from Given Information At its aphelion, the dwarf planet Pluto is the most distant from the Sun at 4538 million miles. It has a perihelion of 2756 million miles. Use this information to find the polar equation Perihelion that models the orbit of Pluto, then find the length of the focal chord for this ellipse.
Solution
D. you’ve just learned how to solve applications involving the conic sections in polar form
a c Center
Aphelion
With all figures in millions of miles, the major axis is 2a 4538 2756 7294, so the semimajor axis has length a 3647. With a c perihelion, we obtain 891 3647 c 2756 or c 891. The eccentricity of the orbit is e 0.2443. 3647 136472 11 3 0.244 4 2 2 The polar equation for the orbit of Pluto is r or 1 3 0.24434 cos 3430 r . Substituting (since the left-most focus is at the pole), 1 0.2443 cos 2 we obtain r 3430, so the length of the focal chord is 2134302 6860 million miles. Now try Exercises 65 through 70
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TECHNOLOGY HIGHLIGHT
Investigating the Eccentricity e Figure 10.58 One meaning of the word eccentric is “to deviate from a circular pattern.” In a very real sense, this is the role that eccentricity plays as it helps to describe the conic sections. For an ellipse we’ve learned that 0 6 e 6 1. If the eccentricity is near zero, there is little deviation and the ellipse appears nearly circular. If e is near 1, the ellipse is very elongated. To explore the eccentricity of an ellipse, enter the equation a11 e2 2 on the Y = screen, using a 2 (arbitrarily chosen) r 1 e cos and ALPHA “E” for the eccentricity. The result is shown in Figure 10.58. We will enter and store values for E on the home screen and graph the resulting ellipse (see Exercise 2 for an alternative ALPHA method). Return to the home screen and enter 0.1 and graph the result on the ZOOM 4:ZDecimal screen. Repeat the procedure using e 0.25, 0.5, 0.75, and 0.9. The graphs for e 0.1 and e 0.9 are shown in Figures 10.59 and 10.60. As you can see, when e 0.1 the ellipse is nearly circular, while e 0.9 produces a graph that is cigar shaped. Figure 10.59
Figure 10.60
3
5
3
5
5
5
3
3
Exercise 1: Try entering a value of e 0, then use your graphing calculator and basic knowledge to verify the resulting graph is a circle. Exercise 2: Try the same exercise using the set/list option. In other words, enter the equation as shown 211 50.1, 0.25, 0.5, 0.75, 0.962 2 here, with the values of e in braces { }: r1 . This will enable you to 11 50.1, 0.25, 0.5, 0.75, 0.96cos122 view all five ellipses on the same \screen. Discuss the similarities and differences of this family of graphs.
10.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. The set of points (x, y) in the xy-plane are related to points (X, Y) in the XY-plane by the
formulas. To find the angle between the original axes and the rotated axes, we use tan122 . .
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2. For a point P on the graph of a conic with focus F FP and D a point on the directrix, the ratio gives DP the ________ of the graph. For the eccentricity e, if e 1 the graph is a ________, if e 7 1 the graph is a ________, and if 0 6 e 6 1 the graph will be an ellipse. 3. Features or relationships that do not change when certain transformations are applied are called ________ of the transformation.
the ________ axis, and r
de if symmetric 1 e sin
to the line ________. 5. Discuss the advantages of graphing a rotated conic using the rotation of axes, over graphing by simply plotting points. 6. Discuss the primary advantages of using a11 e2 2 de r rather than r to 1 e cos 1 e cos develop the equation of planetary orbit.
4. The ________ form of the equation of a conic de is r if the graph is symmetric to 1 e cos
DEVELOPING YOUR SKILLS
The graph of a conic rotated in the xy-plane is given. Use the graph (not the rotation of axes formulas) to find the equation of the conic in the XY-plane.
7.
y Y
X
(2, 2)
x
(2, 2)
Y
14. 1 13, 32
15. (3, 4)
16. (12, 5)
17. X2 Y2 9; 60°
18. X2 Y 4; 60°
The conic sections whose equations are given in the xy-plane are rotated by the indicated angle. What is the corresponding equation in the XY-plane?
y X
19. 3x2 2xy 3y2 9; 45°
(3√3, 3)
20. x2 13xy 2y2 8; 60°
(√3, 3) 30 x
(3√3, 3)
13. 12, 2 132
The conic sections whose equations are given in the XY-plane are rotated clockwise by the indicated angle. Find the corresponding equation in the xy-plane.
45
8.
Given the point (X, Y) in the XY-plane, find the coordinates of this point in the xy-plane given the angle between the xy-axes and the XY-axes is 30.
(√3, 3)
For the given conics in the xy-plane, (a) use a rotation of axes to find the corresponding equation in the XY-plane (clearly state the angle of rotation ), and (b) sketch its graph. Be sure to indicate the characteristic features of each conic in the XY-plane.
21. x2 4xy y2 2 0 Given the point (x, y) in the xy-plane, find the coordinates of this point in the XY-plane given the angle between the xy-axes and the XY-axes is 45.
9. 1612, 62
11. (0, 5)
10. 14, 3 122 12. (8, 0)
22. x2 2xy y2 12 0 23. 5x2 6xy 5y2 16 24. 5x2 26xy 5y2 72 25. x2 10 13xy 11y2 64 26. 37x2 42 13xy 79y2 400 0
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27. 3x2 213xy y2 8x 813y 0
38.
2 2 ᏸ 3 3 4
28. 6x 413xy 2y 2x 213y 0 2
2
29. 13x2 6 13xy 7y2 100 0
5 6
30. x 4xy y 12x 12y 11 2
2
(1.3, )
Identify the graph of each equation using the discriminant, then find the value of cos122 using sin122 and the related triangle diagram. tan122 cos122 Finally, find sin and cos using the half-angle 1 cos122 and B 2 1 cos122 sin . B 2
5 4
3
2 3
5 6
For the following equations, (a) use the discriminant to identify the equation as that of a circle, ellipse, parabola, or hyperbola; (b) find the angle of rotation and use it to find the corresponding equation in the XY-plane; and (c) verify all invariants of the transformation.
(4,
3 2 )
4 3
3 4
ᏸ
36. 3x2 813xy 5y2 12y 2
5 6
(1.5, )
6 5 4 3 (3, 2 ) 2 1
(3,
5 6
4
4 3
5 4
3 4
4 3
(1.4, 0)
5 3
2 3
(3, 2 )
11 6 5 3
6
11 6
41.
3 2)
7 4
4
7 6
6
5
5 4
3
2 3
5 6
7 6
5 3
4 3 2 (0.84, 2 ) 1 (1.4, )
Match each graph to its corresponding equation. Justify your answers (two equations have no match).
3 4
6
11 6
40.
3
4
5 4
35. 3x 13xy 4y 4x 1
ᏸ
6 5 4 3 2 1 (0.8, 2 )
7 6
2
2 3
7 4
5 3
32. 25x2 840xy 16y2 400 0
37.
(4, 0)
4 3
3 4
31. 12x2 24xy 5y2 40x 30y 25
2
6
11 6
39.
34. 2x2 3xy 2y2 0
4
7 6
identities cos
33. x2 2xy y2 5 0
3
5 4 3 2 1
6 5 4 3 2 1
7 4
3
4 6
(3, )
7 4
(3,
7 6
3 2)
11 6
5 4 4 3
5 3
7 4
991
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42. 3 4
3
2 3
6 5 4 3 2 (1, 2 ) 1 (2, 0)
5 6
For the conic equations given, determine if the equation represents a parabola, ellipse, or hyperbola. Then describe and sketch the graphs using polar graph paper.
4 6
ᏸ
7 6
11 6
5
5 4 4 3
a. r c. r e. r g. r
5 3 4 2
5 3
10 5 sin 5.4 2 sin 12 6 sin 4 3 sin
7 4
b. r d. r f. r h. r
4 3 2 3
8 2 cos 4.2 2 sin 6 2 cos 9 6 cos
43. r
4 2 2 sin
44. r
10 5 5 sin
45. r
12 6 3 sin
46. r
6 4 3 cos
47. r
6 2 4 cos
48. r
2 2 3 sin
49. r
5 5 4 cos
50. r
2 4 5 sin
Write the equation of a conic that satisfies the conditions given. Assume each has one focus at the pole.
51. ellipse, e 0.8, directrix to focus: d 4 52. hyperbola, e 1.25, directrix to focus: d 6 53. parabola, vertex at 12, 2
54. ellipse, e 0.35, vertex at (4, 0) 55. hyperbola, e 1.5, vertex at a3,
b 2
56. parabola, directrix to focus: d 5.4
WORKING WITH FORMULAS
57. Equation of a line in polar form: C r A cos B sin For the line Ax By C in the xy-plane with C A slope m and y-intercept a0, b, the B B corresponding equation in the r-plane is given by the formula shown. (a) Given the line 2x 3y 12 in the xy-plane, find the corresponding polar equation and (b) verify r1/22 A . that B r102
58. Polar form of an ellipse with center at the pole: a 2b 2 r2 2 2 a sin b 2cos 2 If an ellipse in the r-plane has its center at the pole (with major axis parallel to the x-axis), its equation is given by the formula here, where 2a and 2b are the lengths of the major and minor axes, respectively. (a) Given an ellipse with center at the pole has a major axis of length 8 and a minor axis of length 4, find the equation of the ellipse in polar form and (b) graph the result on a calculator and verify that 2a 8 and 2b 4.
APPLICATIONS
Planetary motion: The perihelion, aphelion, and orbital period of the planets Jupiter, Saturn, Uranus, and Neptune are shown in the table. Use the information to answer or complete the following exercises. The formula L 220.51a2 b2 2 can be used to estimate the length of the orbital path. Recall for an ellipse, c2 a2 b2.
Planet
Perihelion (106 mi)
Aphelion (106 mi)
Period (yr)
Jupiter
460
507
11.9
Saturn
840
941
29.5
Uranus
1703
1866
84
Neptune
2762
2824
164.8
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Section 10.6 More on the Conic Sections: Rotation of Axes and Polar Form
59. Find the eccentricity of the planets Jupiter and Saturn. 60. Find the eccentricity of the planets Uranus and Neptune. 61. The orbit of Pluto (a dwarf planet) has a semimajor axis of 3647 million miles and an eccentricity of e 0.2443. Find the perihelion of Pluto. 62. The orbit of Ceres (a large asteroid) has a semimajor axis 257 million miles and an eccentricity of e 0.097. Find the perihelion of Ceres. 63. Which of the four planets in the table given has the greatest orbital eccentricity? 64. Which of these four planets has the greatest orbital velocity? 65. Find the polar equation modeling the orbit of Jupiter. 66. Find the polar equation modeling the orbit of Saturn. 67. Find the polar equation modeling the orbit of Uranus. 68. Find the polar equation modeling the orbit of Neptune. 69. Suppose all four major planets arrived at the focal chord of their orbit a b simultaneously. Use 2 the equations in Exercises 65 to 68 to determine the distance between each of the planets at this moment. 70. The polar equation for the orbit of Pluto (a dwarf planet) was developed in Example 9. From an earlier exercise, the polar equation for the orbit of 2793 Neptune is r . Using the 1 0.0111 cos TABLE of your graphing calculator, determine if Pluto is always the farthest planet from the Sun. If not, how much further from the Sun is Neptune than Pluto at their perihelion? Mirror manufacturing: A modern manufacturer of oval (elliptical) mirrors for consumer use has programmed the equipment to automatically cut the glass for each mirror (major axis horizontal). The most popular mirrors are those that fit within a golden rectangle (ratio of L to W is approximately 1 to 0.618). Find the polar equation the manufacturer should use to program the equipment for mirror orders of the following lengths. Recall that c2 a2 b2 c and e and assume one focus is at the pole. a
71. L 4 ft
72. L 3.5 ft
73. L 1.5 m
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74. L 0.5 m
75. Referring to Exercises 71 to 74, find the total cost of each mirror (to the consumer) if they sell for $75 per square foot ($807 per square meter). The area of an ellipse is given by A ab. 76. Referring to Exercises 71 to 74, find the total cost of an elliptical frame for each mirror (to the consumer) if the frame sells for $12.50 per linear foot ($41.01 per meter). The circumference of an ellipse is approximated by C 221a2 b2 2. 77. Home location: Candice Exercise 77 is an enthusiastic golfer R d H and an avid swimmer. Home After being transferred to River a new city, she decides to buy a house that is an d equal distance from the local golf course and the G B river running through the Golf course city. If the distance between the river and the golf course at the closest point is 3 mi, find the polar equation of the parabola that will trace through the possible locations for her new home. Assume the golf course is at the focus of the parabola. 78. Home location: Referring to Exercise 77, assume Candice finds the perfect dream house in a subdivision located at a6, b. Does this home fit 3 the criteria (is it an equal distance from the river and golf course)? 79. Solve the system below for y to verify the rotation formula for y given on page 980. e
X x cos y sin Y y cos x sin
80. Rotation of a conic section: Expand the following, collect like terms, and simplify. Show the result is the equation aX2 bXY cY2 f 0, where the coefficients a, b, c, and f are as given on page 981. A1X cos Y sin 2 2 B1X cos Y sin 2 1X sin Y cos 2 C1X sin Y cos 2 2 F0
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EXTENDING THE CONCEPT
81. Using the rotation of axes formulas in the general equation Ax2 Bxy Cy2 F 0 1D E 02, we were able to obtain the equation aX2 bXY cY2 f 0 (see page 981), where a S A cos2 B sin cos C sin2 b S 2A sin cos B1cos2 sin22 2C sin cos c S A sin2 B sin cos C cos2 and f S F b. Use these to verify a c A C.
a. Use these to verify b2 4ac B2 4AC.
82. A short-period comet is one that orbits the Sun in 200 yr or less. Two of the best known are Halley’s Comet and Encke’s Comet. Using any of the resources available to you, find the perihelion and aphelion of each comet and use the information to find the lengths of the semimajor and semiminor axes. Also find the period of each comet. If the length of an elliptical (orbital) path is approximated by L 220.51a2 b2 2, find the approximate average speed of each comet in miles per hour. Finally, determine the polar equation of each orbit.
For the given conics in the xy-plane, use a rotation of axes to find the corresponding equation in the XY-plane. See Exercises 31 and 32.
84. 12x2 24xy 5y2 40x 30y 25 85. 25x2 840xy 16y2 400 0 86. A right triangle in the xy-plane had vertices at (0, 0), (8, 0), and (8,6). Use the matrix equation X cos sin # x c d c d c d to find the y Y sin cos vertices in the XY-plane after the triangle is rotated 60°.
83. In the r-plane, the equation of a circle having radius R, center at 1R, 2, and going through the pole is given by r 2R cos1 2. Consider the circle defined by x2 y2 6 12x 6 12y 0 in the xy-plane. Verify this circle goes through the origin, then find the equation of the circle in polar form.
c. Explain why the invariant f F must always hold.
87. A square in the XY-plane has vertices at (0, 0), 12 13, 22, 12 13 2, 2 2 132 and 12, 2132. Use the matrix equation x cos sin # X c d c d c d to find the Y y sin cos vertices in the xy-plane after the triangle is rotated 30°.
MAINTAINING YOUR SKILLS
88. (8.2) Solve the system using elimination.
91. (7.3) A ship is moving at 12 mph on a heading of 325°, with a 5 mph current flowing at a 100° heading. Find the true course and speed of the ship.
x 2y z 3 • 2x 6y z 4 5x 4y 2z 3
N
89. (4.5) Solve for x (to the nearest tenth): 21.7 77.5e0.0052x 44.95 90. (5.5) Use the graph shown to write an equation of the form y A sec1Bx C2. Clearly state the values of A, B, and C.
12 mph ship
y 5
100 325
2
2
5
3 2
x
5 mph current
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10.7 Parametric Equations and Graphs A large portion of the mathematics curriculum is devoted to functions, due to their overall importance and widespread applicability. But there are a host of applications for which nonfunctions are a more natural fit. In this section, we show that many nonfunctions can be expressed as parametric equations, where each is actually a function. These equations can be appreciated for the diversity and versatility they bring to the mathematical spectrum.
Learning Objectives In Section 10.7 you will learn how to:
A. Sketch the graph of a parametric equation
B. Write parametric equations in rectangular form
A. Sketching a Curve Defined Parametrically
C. Graph curves from
Suppose you were given the set of points in the table here, and asked to come up with an equation model for the data. To begin, you might plot the points to see if any patterns or clues emerge, but in this case the result seems to be a curve we’ve never seen before (see Figure 10.61).
the cycloid family
D. Solve applications involving parametric equations
Figure 10.61 1
y
1
1
x
1
Figure 10.62 1
1
y
Lissajous figure
1
x
1
x
0
13 2
13 2
0
y
1
13 2
1 2
0
13 2
13 2
0
1 2
13 2
1
You also might consider running a regression on the data, but it’s not possible since the graph is obviously not a function. However, a closer look at the data reveals the y-values could be modeled independently of the x-values by a cosine function, y cos t for t 30, 4 . This observation leads to a closer look at the x-values, which we find could be modeled by a sine function over the same interval, namely, x sin 12t2 for t 30, 4 . These two functions combine to name all points on this curve, and both use the independent variable t called a parameter. The functions x sin 12t2 and y cos t are called the parametric equations for this curve. The complete curve, shown in Figure 10.62, is called a Lissajous figure, or a closed graph (coincident beginning and ending points) that crosses itself to form two or more loops. Note that since the maximum value of x and y is 1 (the amplitude of each function), the entire figure will fit within a 1 1 rectangle centered at the origin. This observation can often be used to help sketch parametric graphs with trigonometric parameters. In general, parametric equations can take many forms, including polynomial, exponential, trigonometric, and other forms. Parametric Equations Given the set of points P(x, y) such that x f 1t2 and y g1t2, where f and g are both defined on an interval of the domain, the equations x f 1t2 and y g1t2 are called parametric equations, with parameter t.
EXAMPLE 1
Graphing a Parametric Curve Where f and g Are Algebraic Graph the curve defined by the parametric equations x t2 3 and y 2t 1.
Solution
10-77
Begin by creating a table of values using t 33, 3 4. After plotting ordered pairs (x, y), the result appears to be a parabola, opening to the right.
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y
x t2 3
t 3
x
y 2t 1
6
5
2
1
3
1
2
1
0
3
1
1
2
3
2
1
5
3
6
7
Now try Exercises 7 through 12, Part a
If the parameter is a trig function, we’ll often use standard angles as inputs to simplify calculations and the period of the function(s) to help sketch the resulting graph. Also note that successive values of t give rise to a directional evolution of the graph, meaning the curve is traced out in a direction dictated by the points that correspond to the next value of t. The arrows drawn along the graph illustrate this direction, also known as the orientation of the graph.
EXAMPLE 2
Graphing a Parametric Curve Where f and g Are Trig Functions Graph the curve defined by the parametric equations x 2 cos t and y 4 sin t.
Solution
Using standard angle inputs and knowing the maximum value of any x- and y-coordinate will be 2 and 4, respectively, we begin computing and graphing a few points. After going from 0 to , we note the graph appears to be a vertical ellipse. This is verified using standard values from to 2. Plotting the points and connecting them with a smooth curve produces the ellipse shown in the figure. y
x
t
x 2 cos t
y 4 sin t
0 6 3 2 2 3 5 6
2
0
13
2
1
2 13
0
4
1
2 13
13
2
2
0
A. You’ve just learned how to sketch the graph of a parametric equation
Now try Exercises 13 through 18, Part a Note the ellipse has a counterclockwise orientation.
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B. Writing Parametric Equations in Rectangular Form When graphing parametric equations, there are sometimes alternatives to simply plotting points. One alternative is to try and eliminate the parameter, writing the parametric equations in standard, rectangular form. To accomplish this we use some connection that allows us to “rejoin” the parameterized equations, such as variable t itself, a trigonometric identity, or some other connection.
EXAMPLE 3
Solution
Eliminating the Parameter to Obtain the Rectangular Form Eliminate the parameter from the equations in Example 1: x t2 3 and y 2t 1. y1 Solving for t in the second equation gives t , which we then substitute into 2 y1 2 1 the first. The result is x a b 3 1y 12 2 3. Notice this is indeed a 2 4 horizontal parabola, opening to the right, with vertex at 13, 12. Now try Exercises 7 through 12, Part b
EXAMPLE 4
Eliminating the Parameter to Obtain the Rectangular Form Eliminate the parameter from the equations in Example 2: x 2 cos t and y 4 sin t.
Solution
Instead of trying to solve for t, we note the parametrized equations involve sine and cosine functions with the same argument (t), and opt to use the identity cos2t sin2t 1. Squaring both equations and solving for cos2t and sin2t yields y2 y2 x2 x2 cos2t and sin2t. This shows cos2t sin2t 1, and as we 4 16 4 16 suspected—the result is a vertical ellipse with vertices at 10, 42 and endpoints of the minor axis at 12, 02. Now try Exercises 13 through 16, Part b
It’s important to realize that a given curve can be represented parametrically in infinitely many ways. This flexibility sometimes enables us to simplify the given form, or to write a given polynomial form in an equivalent nonpolynomial form. The easiest way to write the function y f 1x2 in parametric form is x t; y f 1t2, which is valid as long as t is in the domain of f(t).
EXAMPLE 5
Writing an Equation in Terms of Various Parameters Write the equation y 41x 32 2 1 in three different parametric forms.
Solution
1. If we let x t, we have y 41t 32 2 1. 2. Letting x t 3 simplifies the related equation for y, and we begin to see some of the advantages of using a parameter: x t 3; y 4t2 1. 3. As a third alternative, we can let x
B. You’ve just learned how to write parametric equations in rectangular form
x
1 tan t 3, which gives 2
2 1 1 tan t 3; y 4 a tan tb 1 tan2t 1 or y sec2t. 2 2
Now try Exercises 19 through 26
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C. Graphing Curves from the Cycloid Family The cycloids are an important family of curves, and are used extensively to solve what are called brachistochrone applications. The name comes from the Greek brakhus, meaning short, and khronos, meaning time, and deal with finding the path along which a weight will fall in the shortest time possible. Cycloids are an excellent example of why parametric equations are important, as it’s very difficult to name them in rectangular form. Consider a point fixed to the circumference of a wheel as it rolls from left to right. If we trace the path of the point as the wheel rolls, the resulting curve is a cycloid. Figure 10.63 shows the location of the point every one-quarter turn. Figure 10.63
By superimposing a coordinate grid on the diagram in Figure 10.63, we can construct parametric equations that will produce the graph. This is done by developing equations for the location of a point P(x, y) on the circumference of a circle with center (h, k), as the circle rotates through angle t. After a rotation of t rad, the x-coordinate of P(x, y) is x h a (Figure 10.64), and the y-coordinate is y k b. Using a right a b triangle with the radius as the hypotenuse, we find sin t and cos t , giving r r a r sin t and b r cos t. Substituting into x h a and y k b yields x h r sin t and y k r cos t. Since the circle has radius r, we know k r (the “height” of the center is constantly k r). The arc length subtended by t is the same as the distance h (see Figure 10.65), meaning h rt (t in radians) Substituting rt for h and r for k in the equations x h r sin t and y k r cos t, gives the equation of the cycloid in parametric form: x rt r sin t and y r r cos t, sometimes written x r 1t sin t2 and y r 11 cos t2. Figure 10.64
Figure 10.65
y
(h, k) r k
P(x, y)
t
b
a
h
x
Most graphers have a parametric MODE that enables you to enter the equations for x and y separately, and graph the resulting points as a single curve. After pressing the Y= key (in parametric mode), the screen in Figure 10.65 comes into view using a TI-84 Plus, and we enter the equation of the cycloid formed by a circle of radius r 3. To set the viewing window (including a frame), press WINDOW and set Ymin 1 and Ymax at slightly more than 6 (since r 3). Since the cycloid completes one cycle every 2r, we set Xmax at 2rn, where n is the number of cycles we’d like to see. In
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this case, we set it for four cycles 122132142 24 (Figure 10.66). With r 3 we conveniently set Xscl at 3122 6 18.8 to tick each cycle, and Xscl 3 9.4 to tick each half cycle (Figure 10.66). For parametric equations, we must also specify a range of values for t, which we set at Tmin 0, Tmax 8 25.1 for the four cycles, and Tstep 0.52 (Tstep controls the number of points plotted and joined 6 to form the curve). The window settings and resulting graph are shown in Figure 10.67, which doesn’t look much like a cycloid because the current settings do not produce a square viewing window. Using ZOOM 5:ZSquare (and changing Yscl) produces the graph shown in Figure 10.68, which looks much more like the cycloid we expected.
Figure 10.66
Figure 10.67
Figure 10.68
7
28.9
24
1
EXAMPLE 6
24
22.9
Using Technology to Graph a Cycloid Use a graphing calculator to graph the curve defined by the equations x 3 cos3t and y 3 sin3t, called a hypocycloid with four cusps.
Solution Figure 10.69 r y
A hypocycloid is a curve traced out by the path of a point on the circumference of a circle as it rolls inside a larger circle of radius r (see Figure 10.69). Here r 3 and we set Xmax and Ymax accordingly. Knowing ahead of time the hypocycloid will have four cusps, we set Tmax 4122 25.13 to show all four. The window settings used and the resulting graph are shown in Figures 10.70 and 10.71. Figure 10.71
x
r
Figure 10.70
5
r
5
5
r
C. You’ve just learned how to graph curves from the cycloid family
5
Now try Exercises 27 through 35
D. Common Applications of Parametric Equations In Example 1 the parameter was simply the real number t, which enabled us to model the x- and y-values of an ordered pair (x, y) independently. In Examples 2 and 6, the parameter t represented an angle. Here we introduce yet another kind of parameter, that of time t. A projectile is any object thrown, dropped, or projected in some way with no continuing source of propulsion. The parabolic path traced out by the projectile (assuming negligible air resistance) will be fully developed in Section 7.4. It is stated here in
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parametric terms. For the projectile’s location P(x, y) and any time t in seconds, the x-coordinate (horizontal distance from point of projection) is given by x v0t cos , where v0 is the initial velocity in feet per second and t is the time in seconds. The y-coordinate (vertical height) is y v0t sin 16t2. EXAMPLE 7
Using Parametric Equations in Projectile Applications As part of a circus act, Karl the Human Cannonball is shot out of a specially designed cannon at an angle of 40° with an initial velocity of 120 ft/sec. Use a graphing calculator to graph the resulting parametric curve. Then use the graph to determine how high the Ring Master must place a circular ring for Karl to be shot through at the maximum height of his trajectory, and how far away the net must be placed to catch Karl.
Solution
The information given leads to the equations x 120t cos 40° and y 120t sin 40° 16t2. Enter these equations on the Y = screen of your calculator, remembering to reset the MODE to degrees (circus clowns may not know or understand radians). To set the window size, we can use trial and error, or estimate using 45° (instead of 40°) and an estimate for t (the time that Karl 12 b 36012 for will stay aloft). With t 6 we get estimates of x 120162 a 2 the horizontal distance. To find a range for y, use t 3 since the maximum height of the parabolic path will occur halfway through the flight. This gives an estimate 12 b 16192 180 12 144 for y. The results are shown in Figures of 120132 a 2 10.72 and 10.73. Using the TRACE feature or 2nd GRAPH (TABLE) feature, we find the center of the net used to catch Karl should be set at a distance of about 450 ft from the cannon, and the ring should be located 220 ft from the cannon at a height of about 93 ft. Figure 10.73 Figure 10.72
0
0
509
100
Now try Exercises 46 through 49
It is well known that planets orbit the Sun in elliptical paths. While we’re able to model their orbits in both rectangular and polar form, neither of these forms can give a true picture of the direction they travel. This gives parametric forms a great advantage, in that they can model the shape of the orbit, while also indicating the direction of travel. We illustrate in Example 8 using a “planet” with a very simple orbit.
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EXAMPLE 8
Modeling Elliptical Orbits Parametrically The elliptical orbit of a certain planet is defined parametrically as x 4 sin t and y 3 cos t. Graph the orbit and verify that for increasing values of t, the planet orbits in a counterclockwise direction.
Solution
y2 x2 1, 16 9 or the equation of an ellipse with center at (0, 0), major axis of length 8, and minor axis of length 6. The path of the planet is traced out by the ordered pairs (x, y) generated by the parametric equations, shown in the table for t 3 0, 4 . Starting at t 0, P(x, y) begins at 10, 32 with x and y both increasing until t . Then from t to 2 2 t , y continues to increase as x decreases, indicating a counterclockwise orbit in this case. The orbit is illustrated in the figure. Eliminating the parameter as in Example 4, we obtain the equation
y
(4, 0) x (3.46, 1.5) (0, 3)
(2, 2.6)
t
x 4 sin t
y 3 cos t
0 6 3 2 2 3 5 6
0
3
2
2.6
3.46
1.5
4
0
3.46
1.5
2
2.6
0
3
Now try Exercises 50 and 51
D. You’ve just learned how to solve applications involving parametric equations
Finally, you may recall from your previous work with linear 3 3 systems, that a dependent system occurs when one of the three equations is a linear combination of the other two. The result is a system with more variables than equations, with solutions expressed in terms of a parameter, or in parametric form. These solutions can be explored on a graphing calculator using ordered triples of the form (t, f(t), g(t)), where Y1 f 1t2 and Y2 g1t2 (see Exercises 52 through 55). For more information, see the Calculator Exploration and Discovery feature on page 1012.
TECHNOLOGY HIGHLIGHT
Exploring Parametric Graphs Most graphing calculators have features that make it easy (and fun) to explore parametric equations. For example, the TI-84 Plus can use a circular cursor to trace the path of the plotted points, as they are generated by the equations. This can be used to illustrate the path of a projectile, the distance of a runner, or the orbit of a planet. Operations can also be applied to the parameter T to give the effect of “speed” (the points from one set of equations are plotted faster than the points of a second set). To help illustrate their use, consider again the simple, elliptical orbit of a planet in Example 8. Physics tells us the closer a planet is to the Sun, the faster its orbit. In fact, the orbital speed of Mercury is about twice that of Mars and about 10 times as fast as the dwarf planet Pluto (29.8, 15, and 2.9 mi/sec,
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respectively). With this information, we can explore a number of Figure 10.74 interesting questions. On the Y = screen, let the orbits of Planet 1 and Planet 2 be modeled parametrically by the equations shown in Figure 10.74. Since the orbit of Planet 1 is “smaller” (closer to the Sun), we have T-values growing at a rate that is four times as fast as for Planet 2. Notice to the far left of X1T, there is a symbol that looks like an old key “0.” By moving the cursor to the far left of the equation, you can change how the graph will look by repeatedly pressing ENTER . With this symbol in view, the calculator will trace out the curve with a circular cursor, which in this case represents the planets as they orbit (be sure you are in simultaneous MODE ). Setting the window as in Figure 10.75 and pressing GRAPH produces Figure 10.76, which displays their elliptical paths as they race around the Sun. Notice the inner planet has already completed one orbit while the outer planet has just completed one-fourth of an orbit.
Figure 10.76
Figure 10.75
10
10
10
10
Exercise 1: Verify that the inner planet completes four orbits for every single orbit of the outer planet. Exercise 2: Suppose that due to some cosmic interference, the orbit of the faster planet begins to decay at a rate of T0.84 (replace T with T0.84 in both equations for the inner planet). By observation, about how many orbits did the inner planet make for the first revolution of the outer planet? What is the ratio of orbits for the next complete orbit of the outer planet?
10.7 EXERCISES
CONCEPTS AND VOCABULARY
Fill in each blank with the appropriate word or phrase. Carefully reread the section if needed.
1. When the coordinates of a point (x, y) are generated independently using x f 1t2 and y g1t2 , t is called a(n) .
2. The equations x f 1t2 and y g1t2 used to generate the ordered pairs (x, y) are called equations. 3. Parametric equations can both graph a curve and indicate the traveled by a point on the curve.
4. To write parametric equations in rectangular form, we must the parameter to write a single equation. 5. Discuss the connection between solutions to dependent systems and the parametric equations studied in this section. 6. In your own words, explain and illustrate the process used to develop the equation of a cycloid. Illustrate with a specific example.
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DEVELOPING YOUR SKILLS
For Exercises 7 through 18, (a) graph the curves defined by the parametric equations using the specified interval and identify the graph (if possible) and (b) eliminate the parameter (Exercises 7 to 16 only) and write the corresponding rectangular form.
7. x t 2; t 3 3, 34 y t2 1
27. x 8 cos t 2 cos14t2, y 8 sin t 2 sin14t2, hypocycloid (5-cusp)
8. x t 3; t 3 5, 54 y 2 0.5t2
28. x 8 cos t 4 cos12t2, y 8 sin t 4 sin12t2, hypocycloid (3-cusp)
9. x 12 t2 2; t 3 0, 54 y 1t 32 2
29. x
10. x t3 3; t 3 2, 2.5 4 y t2 1 5 11. x , t 0; t 3 3.5, 3.5 4 t y t2 3
t ; t 3 5, 5 4 10 y t
12. x
3 d 16. x 4 cos12t2; t c , 2 2 y 6 sin t 3 ; t 10, 2 17. x tan t y 5 sin12t2 18. x tan2t; t , t 3 0, 4 2 y 3 cos t Write each function in three different parametric forms by altering the parameter. For Exercises 19–22 use at least one trigonometric form, restricting the domain as needed.
23. y tan 1x 22 1 2
8 sin3t , cissoid of Diocles cos t
31. x 21cos t t sin t2, y 21sin t t cos t2, involute of a circle 32. 4x 116 362cos3t, 6y 116 362sin3t, evolute of an ellipse
35. x 23 3 cos t cos13t2 4 , y 233 sin t sin13t2 4, nephroid
15. x 4 sin12t2; t 3 0, 22 y 6 cos t
21. y 1x 32 1
30. x 8 sin2t, y
34. x t 3 sin t, y 1 3 cos t, prolate cycloid
14. x 2 sin t; t 30, 22 y 3 cos t
2
2 , y 8 sin t cos t, serpentine curve tan t
33. x 3t sin t, y 3 cos t, curtate cycloid
13. x 4 cos t; t 30, 22 y 3 sin t
19. y 3x 2
The curves defined by the following parametric equations are from the cycloid family. (a) Use a graphing calculator or computer to draw the graph and (b) use the graph to approximate all x- and y-intercepts, and maximum and minimum values to one decimal place.
20. y 0.5x 6 22. y 21x 52 2 1 24. y sin12x 12
25. Use a graphing calculator or computer to verify that the parametric equations from Example 5 all produce the same graph. 26. Use a graphing calculator or computer to verify that your parametric equations from Exercise 21 all produce the same graph.
Use a graphing calculator or computer to draw the following parametrically defined graphs, called Lissajous figures (Exercise 37 is a scaled version of the initial example from this section). Then find the dimensions of the rectangle necessary to frame the figure and state the number of times the graph crosses itself.
36. x 6 sin13t2 y 8 cos t
37. x 6 sin12t2 y 8 cos t
38. x 8 sin14t2 y 10 cos t
39. x 5 sin17t2 y 7 cos14t2
40. x 8 sin14t2 y 10 cos13t2
41. x 10 sin11.5t2 y 10 cos12.5t2
42. Use a graphing calculator to experiment with parametric equations of the form x A sin1mt2 and y B cos1nt2. Try different values of A, B, m, and n, then discuss their effect on the Lissajous figures. 43. Use a graphing calculator to experiment with a parametric equations of the form x and tan t y b sin t cos t. Try different values of a and b, then discuss their effect on the resulting graph, called a serpentine curve. Also see Exercise 29.
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WORKING WITH FORMULAS
44. The Folium of Descartes: 3kt 2 3kt ; y1t2 x1t2 1 t3 1 t3 The Folium of Descartes is a parametric curve developed by Descartes in order to test the ability of Fermat to find its maximum and minimum values. a. Graph the curve on a graphing calculator with k 1 using a reduced window ( ZOOM 4), with Tmin 6, Tmax 6, and Tstep 0.1. Locate the coordinates of the tip of the folium (the loop). b. This graph actually has a discontinuity (a break in the graph). At what value of t does this occur? c. Experiment with different values of k and generalize its effect on the basic graph.
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45. The Witch of Agnesi: x1t2 2kt; y1t2
2k 1 t2
The Witch of Agnesi is a parametric curve named by Maria Agnesi in 1748. Some believe she confused the Italian word for witch (versiera), with a similar word that meant free to move. In any case, the name stuck. The curve can also be stated in trigonometric form: x1t2 2k cot t and y 2k sin2t. a. Graph the curve with k 1 on a calculator or computer on a reduced window ( ZOOM 4) using both of the forms shown with Tmin 6, Tmax 6, and Tstep 0.1. Try to determine the maximum value. b. Explain why the x-axis is a horizontal asymptote. c. Experiment with different values of k and generalize its effect on the basic graph.
APPLICATIONS
Model each application using parametric equations, then solve using the GRAPH and TRACE features of a graphing calculator.
46. Archery competition: At an archery contest, a large circular target 5 ft in diameter is laid flat on the ground with the bull’s-eye exactly 180 yd (540 ft) away from the archers. Marion draws her bow and shoots an arrow at an angle of 25° above horizontal with an initial velocity of 150 ft/sec (assume the archers are standing in a depression and the arrow is shot from ground level). (a) What was the maximum height of the arrow? (b) Does the arrow hit the target? (c) What is the distance between Marion’s arrow and the bull’s-eye after the arrow hits?
47. Football competition: As part of their contribution to charity, a group of college quarterbacks participate in a contest. The object is to throw a football through a hoop whose center is 30 ft high and 25 yd (75 ft) away, trying to hit a stationary (circular) target laid on the ground with the center
56 yd (168 ft) away. The hoop and target both have a diameter of 4 ft. On his turn, Lance throws the football at an angle of 36° with an initial velocity of 75 ft/sec. (a) Does the football make it through the hoop? (b) Does the ball hit the target? (c) What is the approximate distance between the football and the center of the target when the ball hits the ground? 48. Walk-off home run: It’s the bottom of the ninth, two outs, the count is full, and the bases are loaded with the opposing team ahead 5 to 2. The home team has Heavy Harley, their best hitter at the plate; the opposition has Raymond the Rocket on the mound. Here’s the pitch . . . it’s hit . . . a long fly ball to left-center field! If the ball left the bat at an angle of 30° with an initial velocity of 112 ft/sec, will it clear the home run fence, 9 ft high and 320 ft away? 49. Last-second win: It’s fourth-and-long, late in the fourth quarter of the homecoming football game, with the home team trailing 29 to 27. The coach elects to kick a field goal, even though the goal posts are 50 yd (150 ft) away from the spot of the kick. If the ball leaves the kicker’s foot at an angle
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Section 10.7 Parametric Equations and Graphs
of 29° with an initial velocity of 80 ft/sec, and the kick is “true,” will the home team win (does the ball clear the 10-ft high cross bar)?
50 yards (150 feet)
50. Particle motion: The motion of a particle is modeled by the parametric equations x 5t 2t2 . Between t 0 and t 1, is the y 3t 2 particle moving to the right or to the left? Is the particle moving upward or downward? e
51. Electron motion: The motion of an electron as it orbits the nucleus is modeled by the parametric x 6 cos t equations e with t in radians. Between y 2 sin t t 2 and t 3, is the electron moving to the right or to the left? Is the electron moving upward or downward? Systems applications: Solve the following systems using elimination. If the system is dependent, write the general solution in parametric form and use a calculator to generate several solutions.
2x y 3z 3 52. • 3x 2y z 4 8x 3y z 5
x 5y z 3 53. • 5x y 7z 9 2x 3y 4z 6
5x 3z 1 54. • x 2y 2z 3 2x 6y 9z 10 x y 5z 4 55. • 2y 3z 1 x 3y z 3
1005
56. Regressions and parameters: x y Draw a scatter-plot of the data 0 0 given in the table. Note that 0.25 12 connecting the points with a smooth curve will not result 2 2 in a function, so a standard 6.75 12 regression cannot be run on 0 16 the data. Now consider the 12 31.25 x-values alone—what do 54 2 you notice? Find a sinusoidal 85.75 12 model for the x-values, using T 0, 1, 2, 3, . . . , 8. Use the 0 128 same inputs to run some form of regression on the y-values, then use the results to form the “best-fit” parametric equations for this data (use L1 for T, L2 for the x-values, and L3 for the y-values). With your calculator in parametric MODE , enter the equations as X1T and Y1T, then graph these along with the scatterplot (L2, L3) to see the finished result. Use the TABLE feature of your calculator to comment on the accuracy of the model. 57. Regressions and parameters: x y Draw a scatter-plot of the data 1 0 given in the table, and connect 1.75 the points with a smooth curve. 1.2247 The result is a function, but no 3 1.5 standard regression seems to 3.75 1.8371 give an accurate model. The 4 2.25 x-values alone are actually 3.75 2.7557 generated by an exponential 3 3.375 function. Run a regression 4.1335 1.75 on these values using T 0, 1, 2, 3, . . . , 8 as inputs 5.0625 0 to find the exponential model. Then use the same inputs to run some form of regression on the y-values and use the results to form the “best-fit” parametric equations for this data (use L1 for T, L2 for the x-values, and L3 for the y-values). With your calculator in parametric MODE , enter the equations as X1T and Y1T, then graph these along with the scatterplot (L2, L3) to see the finished result. Use the TABLE feature of your calculator to comment on the accuracy of the model.
EXTENDING THE CONCEPT
58. What is the difference between an epicycloid, a hypercycloid, and a hypocycloid? Do a word study on the prefixes epi-, hyper-, and hypo-, and see
how their meanings match with the mathematical figures graphed in Exercises 27 to 35. To what other shapes or figures are these prefixes applied?
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59. The motion of a particle in a certain medium is x 6 sin14t2 modeled by the parametric equations e . y 8 cos t GRAPH (TABLE) Initially, use only the 2nd feature of your calculator (not the graph) to name the intervals for which the particle is moving (a) to the left and upward and (b) to the left and downward. Answer to the nearest tenth (set ¢Tbl 0.1). Is it possible for this particle to collide with another particle in this medium whose
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CHAPTER 10 Analytic Geometry and the Conic Sections
x 3 cos t 7 movement is modeled by e ? Discuss y 2 sin t 2 why or why not. 1 1x 32 2 1 in 2 parametric form using the substitution x 2 cos t 3 and the appropriate double-angle identity. Is the result equivalent to the original function? Why or why not?
60. Write the function y
MAINTAINING YOUR SKILLS
61. (1.1) The price of a popular video game is reduced by 20% and is selling for $39.96. By what percentage must the sale price be increased to return the item to its original price? 62. (5.2) When the tip of the antenna atop the Eiffel Tower is viewed at a distance of 265 ft from its base, the angle of elevation is 76°. Is the Eiffel Tower taller or shorter than the Chrysler Building (New York City) at 1046 ft?
63. (3.4) Graph f 1x2 x3 2x2 5x 6 using information about end behavior, y-intercept, x-intercept(s), and midinterval points: 64. (6.6) The maximum height a projectile will attain depends on the angle it is projected and its initial velocity. This phenomena is modeled by the v2 sin2 , where v is the initial function H 64 velocity (in feet/sec) of the projectile and is the angle of projection. Find the angle of projection if the projectile attained a maximum height of 151 ft, and the initial velocity was 120 ft/sec.
S U M M A RY A N D C O N C E P T R E V I E W SECTION 10.1
A Brief Introduction to Analytical Geometry
KEY CONCEPTS • The midpoint and distance formulas play an important role in the study of analytical geometry: x2 x1 y2 y1 , b distance: d 21x2 x1 2 2 1y2 y1 2 2 midpoint: 1x, y2 a 2 2
• The perpendicular distance from a point to a line is the length of a line segment perpendicular to a given line with the given point and the point of intersection as endpoints. • Using these tools, we can verify or construct relationships between points, lines, and curves in the plane; verify properties of geometric figures; prove theorems from Euclidean geometry; and construct relationships that define the conic sections.
EXERCISES 1. Verify the closed figure with vertices (3, 4), (5, 4), (3, 6), and (5, 2) is a square. 2. Find the equation of the circle that circumscribes the square in Exercise 1. 3. A theorem from Euclidean geometry states: If any two points are equidistant from the endpoints of a line segment, they are on the perpendicular bisector of the segment. Determine if the line through (3, 6) and (6, 9) is a perpendicular bisector of the segment through (5, 2) and (5, 4). 4. Four points are given below. Verify that the distance from each point to the line y 1 is the same as the distance from the given point to the fixed point (0, 1): (6, 9), (2, 1), (4, 4), and (8, 16).
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SECTION 10.2
1007
Summary and Concept Review
The Circle and the Ellipse
KEY CONCEPTS • The equation of a circle centered at (h, k) with radius r is 1x h2 2 1y k2 2 r2.
• Dividing both sides by r 2, we obtain the standard form vertical distance from center to graph is r.
1x h2 2
1x h2 2 r2
1y k2 2
1y k2 2 r2
1, showing the horizontal and
1. The center of the ellipse is (h, k), with a2 b2 horizontal distance a and vertical distance b from center to graph. y • Given two fixed points f1 and f2 in a plane (called the foci), an ellipse is the set of all points (x, y) such that the distance from the first focus to (x, y), plus the distance from (x, y) the second focus to (x, y), remains constant. d1 d2 (a, 0) (a, 0) For an ellipse, the distance a from center to vertex is greater than the distance c from • x (c, 0) (c, 0) center to one focus. d1 d2 k • To find the foci of an ellipse: a2 b2 c2 (since a 7 c).
• The equation of an ellipse in standard form is
EXERCISES Sketch the graph of each equation in Exercises 5 through 9. 5. x2 y2 16 6. x2 4y2 36 7. 9x2 y2 18x 27 0 1x 32 2 1y 22 2 1 8. x2 y2 6x 4y 12 0 9. 16 9 10. Find the equation of the ellipse with minor axis of length 6 and foci at (4, 0) and (4, 0). 11. Find the equation of the ellipse with vertices at (a) (13, 0) and (13, 0), foci at (12, 0) and (12, 0); (b) foci at (0, 16) and (0, 16), major axis: 40 units. 12. Write the equation in standard form and sketch the graph, noting all of the characteristic features of the ellipse. 4x2 25y2 16x 50y 59 0
SECTION 10.3
The Hyperbola
KEY CONCEPTS 1x h2 2 1y k2 2 1. The center of the hyperbola • The equation of a horizontal hyperbola in standard form is a2 b2 is (h, k) with horizontal distance a from center to vertices and vertical distance b from center to the midpoint of one side of the central rectangle. y • Given two fixed points f1 and f2 in a plane (called the foci), a hyperbola is the set of all (x, y) d1 points (x, y) such that the distance from the first focus to point (x, y), less the distance d 2 (a, 0) (a, 0) from the second focus to (x, y), remains constant. (c, 0) (c, 0) x • For a hyperbola, the distance from center to one of the vertices is less than the distance from center to one focus. • To find the foci of a hyperbola: c2 a2 b2 (since c 7 a). d1 d2 k
EXERCISES Sketch the graph of each equation, indicating the center, vertices, and asymptotes. For Exercise 18, also give the equation of the hyperbola in standard form. 1y 32 2 1x 22 2 1y 12 2 1x 22 2 1 1 13. 4y2 25x2 100 14. 15. 16 9 9 4
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16. 9y2 x2 18y 72 0
17. x2 4y2 12x 8y 16 0
4 18. vertices at (3, 0) and (3, 0), asymptotes of y x 3 19. Find the equation of the hyperbola with (a) vertices at (15, 0), foci at (17, 0), and (b) foci at (0, 5) with vertical dimension of central rectangle 8 units. 20. Write the equation in standard form and sketch the graph, noting all of the characteristic features of the hyperbola. 4x2 9y2 40x 36y 28 0
SECTION 10.4
The Analytic Parabola
KEY CONCEPTS • Horizontal parabolas have equations of the form x ay2 by c; a 0. b , 2a
• A horizontal parabola will open to the right if a 7 0, and to the left if a 6 0. The axis of symmetry is y
b or by completing the square and 2a y writing the equation in shifted form: x a1y k2 2 h. Given a fixed point f (called the focus) and fixed line D in the plane, a parabola is the set d1 (x, y) of all points (x, y) such that the distance from f to (x, y) is equal to the distance from (x, y) f d1 d2 d2 to line D. Vertex x D The equation x2 4py describes a vertical parabola, opening upward if p 7 0, and opening downward if p 6 0. The equation y2 4px describes a horizontal parabola, opening to the right if p 7 0, and opening to the left if p 6 0. The focal chord of a parabola is a line segment that contains the focus and is parallel the directrix, with its endpoints on the graph. It has a total length of 4p, meaning the distance from the focus to a point of the graph is 2p. It is commonly used to assist in drawing a graph of the parabola. with the vertex (h, k) found by evaluating at y
• • • •
EXERCISES For Exercises 21 and 22, find the vertex and x- and y-intercepts if they exist. Then sketch the graph using symmetry and a few points or by completing the square and shifting a parent function. 21. x y2 4 22. x y2 y 6 For Exercises 23 and 24, find the vertex, focus, and directrix for each parabola. Then sketch the graph using this information and the focal chord. Also graph the directrix. 23. x2 20y
SECTION 10.5
24. x2 8x 8y 16 0
Polar Coordinates, Equations, and Graphs
KEY CONCEPTS • In polar coordinates, the location of a point in the plane is denoted 1r, 2, where r is the distance to the point from the origin or pole, and is the angle between a stipulated polar axis and a ray containing P. • In the polar coordinate system, the location 1r, 2 of a point is not unique for two reasons: (1) the angles and 2n are coterminal (n an integer), and (2) r may be negative. • The point P1r, 2 can be converted to P(x, y) in rectangular coordinates where x r cos and y r sin .
P(r, ) r0 r Pole
Polar axis
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Summary and Concept Review
1009
• The point P(x, y) in rectangular coordinates can be converted to P1r, 2 in polar coordinates, where r 2x2 y2
•
• • • •
y and r tan1a b. x To sketch a polar graph, we view the length r as being along the second hand of a clock, ticking in a counterclockwise direction. Each “tick” is rad or 15°. For each tick we locate a point on the radius and plot it 12 on the face of the clock before going on. For graphing, we also apply an “r-value” analysis, which looks where r is increasing, decreasing, zero, maximized, and/or minimized. If the polar equation is given in terms of sines, the graph will be symmetric to . 2 If the polar equation is given in terms of cosines, the graph will be symmetric to the polar axis. The graphs of several common polar equations are given in Appendix V.
EXERCISES Sketch using an r-value analysis (include a table), symmetry, and any convenient points. 25. r 5 sin 26. r 4 4 cos 27. r 2 4 cos 28. r 8 sin122
SECTION 10.6
More on the Conic Sections: Rotation of Axes and Polar Form
KEY CONCEPTS • Using a rotation, the conic equation Ax2 Bxy Cy2 Dx Ey F 0 in the xy-plane can be transformed into aX2 cY2 dX eY f 0 in the XY-plane, in which the mixed xy-term is absent. B • The required angle of rotation is found using tan122 ; 0 6 2 6 180°. AC • The change in coordinates from the xy-plane to the XY-plane is accomplished using the rotation formulas: x X cos Y sin
y X sin Y cos
• In the process of this conversion, certain quantities, called invariants, remain unchanged and can be used to •
• •
•
check that the conversion was correctly performed. These invariants are (1) F f, (2) A C a c, and (3) B2 4AC b2 4ac. The invariants B2 4AC b2 4ac are called discriminants and can be used to classify the type of graph the equation will give, except in degenerate cases: • If B2 4AC 0, the equation is that of a parabola. • If B2 4AC 6 0, the equation is that of a circle or an ellipse. • If B2 4AC 7 0, the equation is that of a hyperbola. All conics (not only the parabola) can be stated in terms of a focus/directrix definition. This is done using the concept of eccentricity, symbolized by the letter e. FP If F is a fixed point and l a fixed line in the plane with the point D on l, the set of all points P such that e DP (e a constant) is the graph of a conic section. If e 1, the graph is a parabola. If 0 6 e 6 1, the graph is an ellipse. If e 7 1, the graph is a hyperbola. Given a conic section with eccentricity e, one focus at the pole of the r-plane, and directrix l located d units de de from this focus, then the polar equations r and r represent one of the conic sections 1 e cos 1 e sin as determined by the value of e.
EXERCISES For the given conics in the xy-plane, use a rotation of axes to find the corresponding equation in the XY-plane, then sketch its graph. 29. 2x2 4xy 2y2 8 12y 24 0 30. x2 6 13xy 7y2 160 0
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For the conic equations given, determine if the equation represents a parabola, ellipse, or hyperbola. Then describe and sketch the graphs using polar graph paper. 4 9 8 31. r 32. r 33. r 3 2 cos 4 6 cos 3 3 sin 34. Mars has a perihelion of 128.4 million miles and an aphelion of 154.9 million miles. Use this information to find a polar equation that models the elliptical orbit, then find the length of the focal chord.
SECTION 10.7
Parametric Equations and Graphs
KEY CONCEPTS • If we consider the set of points P(x, y) such that the x-values are generated by f (t) and the y-values are generated by g(t) (assuming f and g are both defined on an interval of the domain), the equations x f 1t2 and y g1t2 are called parametric equations, with parameter t. • Parametric equations can be converted to rectangular form by eliminating the parameter. This can sometimes be done by solving for t in one equation and substituting in the other, or by using trigonometric forms. • A function can be written in parametric form many different ways, by altering the parameter or using trigonometric identities. • The cycloids are an important family of curves, with equations x r1t sin t2 and y r11 cos t2. • The solutions to dependent systems of equations are often expression in parametric form, with the points P(x, y) given by the parametric equations generating solutions to the system. EXERCISES Graph the curves defined by the parametric equations over the specified interval and identify the graph. Then eliminate the parameter and write the corresponding rectangular form. 35. x t 4: t 3 3, 3 4: 36. x 12 t2 2: t 30, 5 4: 37. x 3 sin t: t 30, 22: 2 y 1t 32 2 y 4 cos t y 2t 3 38. Write the function in three different forms by altering the parameter: y 21x 52 2 1 39. Use a graphing calculator to graph the Lissajous figure indicated, then state the size of the rectangle needed to frame it: x 4 sin15t2; y 8 cos t
MIXED REVIEW For Exercises 1 through 16, graph the conic section and locate the center, vertices, directrix, foci, focal chords, asymptotes, and other important features as these apply to a particular equation and conic.
10. x 1y 22 2 3
11. x2 8x 8y 16 0 12. x2 24y
1. 9x2 9y2 54
13. 4x2 25y2 24x 150y 289 0
2. 16x2 25y2 400
14. 4x2 16y2 12x 48y 19 0
3. 9y2 25x2 225 1x 32 2 1y 12 2 1 4. 9 25
16. x2 y2 8x 12y 16 0
5. 41x 12 361y 22 144 2
2
6. 161x 22 2 41y 12 2 64 7. y 2x2 10x 15 8. x y2 8y 11 9. x y2 2y 3
15. 491x 22 2 1y 32 2 49
17. Graph the curve defined by the parametric equations given, using the interval t 30, 10 4 . Then identify the graph: x 1t 22 2, y 1t 42 2 18. Plot the polar coordinates given, then convert to rectangular coordinates. 2 5 b b a. a3.5, b. a4, 3 4
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Practice Test
19. Solve using elimination: 4x2 y2 9 4x2 9y2 36 a. e 2 b. e x 3y2 79 x2 3y 6 20. Match each equation to its corresponding graph. Justify each response. (i) r 3.5 cos (ii) r2 20.25 sin122 (iii) r 4.5 cos a. 4.5
b.
(4.5, 0)
1011
21. A go-cart travels around an elliptical track with a 100-m major axis that is horizontal. The minor axis measures 60 m. Write an equation model for the track in parametric form. 22. Except for small variations, a planet’s orbit around the Sun is elliptical, with the Sun at one focus. The perihelion or minimum distance from the planet Mercury to the Sun is about 46 million kilometers. Its aphelion or maximum distance from the Sun is approximately 70 million kilometers. Use this information to find the length of the major and minor axes, then determine the equation model for the orbit of Mercury in the standard form y2 x2 1. a2 b2 23. The orbit of a comet can also be modeled by one of the conic sections, with the Sun at one focus. Assuming the equations given model a comet’s path, (1) determine if the path is circular, elliptic, hyperbolic, or parabolic; and (2) determine the closest distance the comet will come to the Sun (in millions of miles). 31 84 a. r b. r 100 70 cos 5 5 sin 24. In the design of their corporate headquarters, Centurion Computing includes a seven-leaf rose in a large foyer, with a fountain in the center. Each of the leaves is 5 m long (when measured from the center of the fountain), and will hold flower beds for carefully chosen perennials. The rose is to be symmetric to a vertical axis, with the leaf bisected by pointing directly to the elevators. Find the 2 equation of the rose in polar form.
c.
(4.5, 0)
Y2 X2 1 in the 802 4002 XY-plane is rotated clockwise by 45°. What is the corresponding equation in the xy-plane?
25. The hyperbola defined by
PRACTICE TEST By inspection only (no graphing), match each equation to its correct description. 1. x2 y2 6x 4y 9 0
Identify and then graph each of the following conic sections. State the center, vertices, foci, asymptotes, and other important points when applicable. 5. x2 y2 4x 10y 20 0
2. 4y2 x2 4x 8y 20 0 3. x2 4y2 4x 12y 20 0
6. 251x 22 2 41y 12 2 100
4. y x2 4x 20 0 a. Parabola b. Hyperbola
7. r
c. Circle
d. Ellipse
10 5 4 cos
8. r
12 5 5 cos
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CHAPTER 10 Analytic Geometry and the Conic Sections
1y 32 2 1x 22 2 1 9 16
10. 41x 12 2 251y 22 2 100 Use the equation 80x2 120xy 45y2 100y 44 0 to complete Exercises 11 and 12. 11. Use the discriminant B2 4AC to identify the B graph, and tan122 to find cos and sin . AC 12. Find the equation in the xy-plane and use a rotation of axes to draw a neat sketch of the graph in the XY-plane.
22. The orbit of Mars around the Sun is elliptical, with the Sun at one foci. When the orbit is expressed as a central ellipse on the coordinate grid, its equation is y2 x2 1. Use this information to 1141.652 2 1141.032 2 find the aphelion of Mars and the perihelion of Mars in millions of miles. Determine the equation of each relation and state its domain and range. For the parabola and the ellipse, also give the location of the foci. 23.
y
Graph each polar equation. 13. r 3 3 cos
14. r 4 8 cos
15. r 6 sin122
(1, 0)
(3, 0) x
For Exercises 16 and 17, identify and graph each conic section from the parametric equations given. Then remove the parameter and convert to rectangular form. 16. x 4 sin t y 5 cos t
17. x 1t 32 2 1 yt2
(0, 3)
24.
18. Use a graphing calculator to graph the cycloid, then identify the maximum and minimum values, and the period. x 4T 4 sin T y 4 4 cos T
21. The soccer match is tied, with time running out. In a desperate attempt to win, the opposing coach pulls his goalie and substitutes a forward. Suddenly, Marques gets a break-away and has an open shot at the empty net, 165 ft away. If the kick is on-line and leaves his foot at an angle of 28° with an initial velocity of 80 ft/sec, is the ball likely to go in the net and score the winning goal?
y (3, 4)
19. Solve each nonlinear system using the technique of your choice. 4x2 y2 16 4y2 x2 4 a. e b. e 2 yx2 x y2 4 20. Halley’s comet has a perihelion of 54.5 million miles and an aphelion of 3253 million miles. Use this information to find a polar equation that models its elliptical orbit. How does its eccentricity compare with that of the planets in our solar system?
(1, 4)
(4, 1)
(6, 1) x
(5, 2)
25.
(2, 6)
(5, 1)
y
(1, 1) x
(2, 4)
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Conic Rotations in Polar Form While all planets orbit around the sun in an Sun elliptical path, their ecliptic planes, or the planes containing the orbits, differ considerably. For example, using the ecliptic plane of the Earth for refer-
ence, the plane containing Mercury’s orbit is inclined by 7° and the plane of the dwarf planet Pluto by 17°! In addition, if we use the major axis of Earth’s orbit for reference, the major axes of the other planets, assuming they are transformed to the ecliptic plane, are rotated by some angle . We can gain a basic understanding of the rotations
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Strengthening Core Skills
of an elliptical path (relative to some point of reference) using skills developed in this chapter. Here we’ve seen that the equation of a conic can be given in rectangular form, polar form, and parametric form. Each form seems to have its advantages. When it comes to the rotations of a conic section, it’s hard to match the ease and versatility of the polar form. To illustrate, recall that in polar form the general equation of a horizontal ellipse with one focus (the a11 e2 2 . The constant a gives Sun) at the origin is r 1 e cos the length of the semimajor axis and e represents the eccentricity of the orbit. With the exception of Mercury and Pluto (a dwarf planet), the orbits of most planets are close to circular (e is very near zero). This makes the rotations difficult to see. Instead we will explore the concept of axes rotation using “planets” with higher eccentricities. Consider the following planets and their orbital equations. The planet Agnesi has an eccentricity of e 0.5, while the planet Erdös is the most eccentric at e 0.75. 2.9 1 0.5 cos 5.75 Galois: 1 0.7 cos 7.875 Erdös: 1 0.75 cos Agnesi:
Figure 10.77 We’ll investigate the concept of conic rotations in polar form by rotating these ellipses. With your calculator in polar MODE , enter these three equations on the Y = screen and use the settings shown in Figure 10.77 to set the window size (use max 7). The resulting graph is displayed in Figure 10.78, showing the very hypothetical case where all planets share the same major axis. To show a more realistic case where the planets approach the Sun along orbits with differing major axes, we’ll use Galois as a reference and rotate Agnesi rad clockwise and Erdös rad counter4 12
clockwise. This is done by simply adjusting the argument of cosine in each equation, using 10 cosa b for 4 Agnesi and cosa b for 12 Erdös. The adjusted Y = screen is shown in Figure 10.79, and new graphs in Figure 10.80. Use these ideas to explore and investigate other rotations by completing the following exercises.
1013
Figure 10.78 15
32
15
Figure 10.79
Figure 10.80 15 Exercise 1: What happens if the angle of rotation is ? Is the orbit 10 32 identical if you rotate by ? Exercise 2: If the denominator in 15 the equation is changed to a sum, what effect does it have on the graph? Exercise 3: If the sign in the numerator is changed, what effect does it have on how the graph is generated? Exercise 4: After resetting the orbits as originally given, use trial and error to approximate the smallest angle of rotation required for the orbit of Galois to intersect the orbit of Erdös. Exercise 5: What minimum rotation is required for the orbit of Galois to intersect the orbit of both Agnesi and Erdös? Exercise 6: What is the minimum rotation required for the orbit of Agnesi to intersect the orbit of Galois?
STRENGTHENING CORE SKILLS Simplifying and Streamlining Computations for the Rotation of Axes
While the calculations involved for eliminating the mixed xy-term require a good deal of concentration, there are a few things we can do to simplify the overall process. Basically this involves two things. First, in Figure 10.81 we’ve organized the process in flowchart form to help you “see” the sequence involved in finding cos and sin (for use in the rotation formulas). Second, calculating x2, y2, and xy (from the equations x X cos Y sin and y X sin Y cos ) as single terms and apart from their actual substitution is somewhat less restrictive and seems to help to streamline the algebra.
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CHAPTER 10 Analytic Geometry and the Conic Sections
Illustration 1
B , giving AC 12 tan122 5 . Using the triangle shown in Figure 10.82 we find 5 cos122 13 . We then find the values of cos and sin (choosing 2 in QII), using the double-angle identities as follows:
Figure 10.82
13
For 2x2 12xy 3y2 42 0, use a rotation of axes to eliminate the xy-term, then identify the conic and its characteristic features.
Solution Since A C, we find using tan122
Figure 10.81
12
Is A C? (B 0)
cos
2 5
1 cos122 2 A 1
Q
5 13
2
18 13 S Q 2
3 113 1 cos122 sin 2 A
1
Q
2
5 13
8 13 S Q 2
2 113
yes
 45
no B AC 1 or 3? 兹 3
Is
yes
兹
 30 or  60
no Find sin(2) and cos(2) from the triangle corresponding to tan(2), then cos and sin from the double-angle identities.
Use cos  and sin  in the rotation formulas to compute x 2, xy, and y 2, writing each as a single term.
Substitute, simplify, and use the invariants to double-check your work.
We now compute x2, xy, and y2 prior to substitution in the original equation, writing each as a single term: 3 2 3X 2Y X Y 113 113 113 2 3X 2Y b x2 a 113
• x •
9X2 12XY 4Y2 13
• •
2 3 2X 3Y X Y 113 113 113 2 2X 3Y y2 a b 113 y
•
xy
13X 2Y212X 3Y2
113 6X 5XY 6Y2 13 2
4X2 12XY 9Y2 13
Next, we substitute into the original equation, clearing denominators prior to using the distributive property.
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Cumulative Review Chapters 1–10
1015
42 2x2 12xy 3y2 6X2 5XY 6Y2 9X2 12XY 4Y2 4x2 12XY 9Y2 42 2a b 12a b 3a b 13 13 13 multiply both sides by 13, then distribute
546 18X2 24XY 8Y2 72X2 60XY 72Y2 12X2 36XY 27Y2 546 78X2 91Y2 combine like terms 2 2 42 6X 7Y simplify and check invariants: F f ✓ A C a c ✓ 2 2 B2 4AC b2 4ac ✓ Y X standard form 1 1 172 2 1 162 2
The graph is a central hyperbola along the X-axis, with vertices at 1 17, 02 6 X. and asymptotes Y A7 Exercise 1: Return to Section 10.6 and resolve Exercises 31 and 32 using these methods. Do the new ideas make a difference?
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 1 0 Solve each equation.
1. 1x 2 2 13x 4 2. x2 6x 13 0
13. A surveyor needs to estimate the width of a large rock formation in Canyonlands National Park. From her current position she is 540 yd from one edge of the formation and 850 yd from the other edge. If the included angle is 110°, how wide is the formation?
3. 4 # 2x1 18 4. 3x2 7 5. log381 x
6. log3x log3 1x 22 1
540 yd
850 yd
7. 6 tan x 2 13
8. 25 sina x b 3 15.5 3 6 sin x sin 27° 9. 18 35 10. Use De Moivre’s theorem to find the three cube roots of 8i. Write the roots in a bi form. 11. The price of beef in Argentina varies directly with demand and inversely with supply. In the small town of Chascomus, the tender-cut lomito was selling for 18 pesos/kg last week. There were 1000 kg available, and 850 kg were bought. Next week there is a 3-day weekend, so the demand is expected to be closer to 1400 kg, but the butchers will only be able to supply 1200 kg. What will a kilogram of tendercut lomito cost next week? 12. Find the inverse of f 1x2 3 sin12x 12 .
110
Graph each relation. Include vertices, x- and y-intercepts, asymptotes, and other features.
14. f1x2 x 2 3 15. y 1x 3 1
16. g1x2 1x 321x 12 1x 42 x2 x2 9 18. y 2x 3 17. h1x2
19. f1x2 log2 1x 12
20. x2 y2 10x 4y 20 0 21. 41x 12 2 361y 22 2 144 22. y 2 cosax
b1 4
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23. r 4 cos122 24. x 2 sin t y tan t 25. Use the dot product to find the angle between the vectors u H4, 5I and v H3, 7I. Solve each system of equations.
4x 3y 13 26. • 9y 5z 19 x 4z 4 27. e
10-98
CHAPTER 10 Analytic Geometry and the Conic Sections
x2 y2 25 64x2 12y2 768
28. Find the equation of the parabola with vertex at (2, 3) and directrix x 0.
29. Decompose y
3x3 2x2 x 3 into partial x4 x2
fractions. 30. In the summer, Hollywood releases its big budget, big star, big money movies. Suppose the weekly summer revenue generated by ticket sales was modeled by the function R1w2 w4 25w3 200w2 560w 234, where R(w) represents the revenue generated in week w and 1 w 12. Use the remainder theorem to determine the amount of revenue generated in week 5.
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11 CHAPTER CONNECTIONS
11.6 Introduction to Probability 1065
For a corporation of any size, decisions made by upper management often depend on a large number of factors, with the desired outcome attainable in many different ways. For instance, consider a legal firm that specializes in family law, with a support staff of 15 employees—6 paralegals and 9 legal assistants. Due to recent changes in the law, the firm wants to send some combination of five support staff to a conference dedicated to the new changes. In Chapter 11, we’ll see how counting techniques and probability can be used to determine the various ways such a group can be randomly formed, even if certain constraints are imposed. This application appears as Exercise 34 in Section 11.6.
11.7 The Binomial Theorem 1077
Check out these other real-world connections:
Additional Topics in Algebra CHAPTER OUTLINE 11.1 Sequences and Series 1018 11.2 Arithmetic Sequences 1027 11.3 Geometric Sequences 1034 11.4 Mathematical Induction 1044 11.5 Counting Techniques 1053
Determining the Effects of Inflation (Section 11.1, Exercise 86) Counting the Number of Possible Area Codes and Phone Numbers (Section 11.5, Exercise 84) Calculating Possible Movements of a Computer Animation (Section 11.2, Exercise 73) Tracking and Improving Customer Service Using Probability (Section 11.6, Exercise 53) 1017
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11.1 Sequences and Series A sequence can be thought of as a pattern of numbers listed in a prescribed order. A series is the sum of the numbers in a sequence. Sequences and series come in countless varieties, and we’ll introduce some general forms here. In following sections we’ll focus on two special types: arithmetic and geometric sequences. These are used in a number of different fields, with a wide variety of significant applications.
Learning Objectives In Section 11.1 you will learn how to:
A. Write out the terms of a sequence given the general or nth term
B. Work with recursive
A. Finding the Terms of a Sequence Given the General Term
sequences and sequences involving a factorial
C. Find the partial sum of a series
D. Use summation notation
Suppose a person had $10,000 to invest, and decided to place the money in government bonds that guarantee an annual return of 7%. From our work in Chapter 4, we know the amount of money in the account after x years can be modeled by the function f 1x2 10,00011.072 x. If you reinvest your earnings each year, the amount in the account would be (rounded to the nearest dollar):
to write and evaluate series
Year:
f (1) T
T
T
T
T
E. Use sequences to solve
Value:
$10,700
$11,449
$12,250
$13,108
$14,026 . . .
applied problems
f (3)
f (4)
f (5) . . .
Note the relationship (year, value) is a function that pairs 1 with $10,700, 2 with $11,449, 3 with $12,250 and so on. This is an example of a sequence. To distinguish sequences from other algebraic functions, we commonly name the functions a instead of f, use the variable n instead of x, and employ a subscript notation. The function f 1x2 10,00011.072 x would then be written an 10,00011.072 n. Using this notation a1 10,700, a2 11,449, and so on. The values a1, a2, a3, a4, p are called the terms of the sequence. If the account were closed after a certain number of years (for example, after the fifth year) we have a finite sequence. If we let the investment grow indefinitely, the result is called an infinite sequence. The expression an that defines the sequence is called the general or nth term and the terms immediately preceding it are called the 1n 12st term, the 1n 22nd term, and so on.
WORTHY OF NOTE Sequences can actually start with any natural number. For instance, the sequence 2 must start at an n1 n 2 to avoid division by zero. In addition, we will sometimes use a0 to indicate a preliminary or inaugural element, as in a0 $10,000 for the amount of money initially held, prior to investing it.
1018
f (2)
Sequences A finite sequence is a function an whose domain is the set of natural numbers from 1 to n. The terms of the sequence are labeled a1, a2, a3, p , ak, ak1, p , an1, an where ak represents an arbitrary “interior” term and an also represents the last term of the sequence. An infinite sequence is a function an whose domain is the set of all natural numbers.
EXAMPLE 1A
Solution
EXAMPLE 1B
Computing Specified Terms of a Sequence n1 , find a1, a3, a6, and a7. For an n2 11 2 12 61 7 a6 2 36 6 a1
31 4 2 9 3 71 8 a7 2 49 7 a3
Computing the First k Terms of a Sequence Find the first four terms of the sequence an 112 n2n. Write the terms of the sequence as a list. 11-2
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Section 11.1 Sequences and Series
Solution
a2 112 222 4
a3 112 323 8
WORTHY OF NOTE
a4 112 424 16
The sequence can be written 2, 4, 8, 16, . . . , or more generally as 2, 4, 8, 16, . . . , 112 n2n, . . . to show how each term was generated.
When the terms of a sequence alternate in sign as in Example 1B, we call it an alternating sequence.
Now try Exercises 7 through 32
A. You’ve just learned how to write out the terms of a sequence given the general or nth term
EXAMPLE 2
a1 112 121 2
1019
B. Recursive Sequences and Factorial Notation Sometimes the formula defining a sequence uses the preceding term or terms to generate those that follow. These are called recursive sequences and are particularly useful in writing computer programs. Because of how they are defined, recursive sequences must give an inaugural term or seed element, to begin the recursion process. Perhaps the most famous recursive sequence is associated with the work of Leonardo of Pisa (A.D. 1180–1250), better known to history as Fibonacci. In fact, it is commonly called the Fibonacci sequence in which each successive term is the sum of the previous two, beginning with 1, 1, . . . . Computing the Terms of a Recursive Sequence Write out the first eight terms of the recursive (Fibonacci) sequence defined by c1 1, c2 1, and cn cn1 cn2.
Solution
The first two terms are given, so we begin with n 3. c3 c31 c32 c2 c1 11 2
c4 c41 c42 c3 c2 21 3
c5 c51 c52 c4 c3 32 5
At this point we can simply use the fact that each successive term is simply the sum of the preceding two, and find that c6 3 5 8, c7 5 8 13, and c8 13 8 21. The first eight terms are 1, 1, 2, 3, 5, 8, 13, and 21.
WORTHY OF NOTE One application of the Fibonacci sequence involves the Fibonacci spiral, found in the growth of many ferns and the spiral shell of many mollusks.
Now try Exercises 33 through 38
Sequences can also be defined using a factorial, which is the product of a given natural number with all those that precede it. The expression 5! is read, “five factorial,” and is evaluated as: 5! 5 # 4 # 3 # 2 # 1 120. Factorials For any natural number n,
n! n # 1n 12 # 1n 22 # p # 3 # 2 # 1
Rewriting a factorial in equivalent forms often makes it easier to simplify certain expressions. For example, we can rewrite 5! 5 # 4! or 5! 5 # 4 # 3!. Consider Example 3. EXAMPLE 3
Simplifying Expressions Using Factorial Notation Simplify by writing the numerator in an equivalent form. 6! 9! 11! a. b. c. 7! 8!2! 3!5!
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Solution
WORTHY OF NOTE
a.
9! 9 # 8 # 7! 7! 7!
b.
9#8
Most calculators have a factorial option or key. On the TI-84 Plus it is located on a submenu of the MATH key: MATH
11-4
CHAPTER 11 Additional Topics in Algebra
72
11! 11 # 10 # 9 # 8! 8!2! 8!2! 990 2 495
c.
6! 6 # 5! 3!5! 3!5! 6 6 1
Now try Exercises 39 through 44
PRB (option) 4: !
EXAMPLE 4
Computing a Specified Term from a Sequence Defined Using Factorials Find the third term of each sequence. n! a. an n 2
Solution
B. You’ve just learned how to work with recursive sequences and sequences involving a factorial
3! 23 6 3 8 4
a. a3
112 n 12n 12! b. cn n! 112 3 32132 14 ! 3! 112 3 5 # 4 # 3!4 112152! 3! 3! 20
b. c3
Now try Exercises 45 through 50 Figure 11.1
C. Series and Partial Sums Sometimes the terms of a sequence are dictated by context rather than a formula. Consider the stacking of large pipes in a storage yard. If there are 10 pipes in the bottom row, then 9 pipes, then 8 (see Figure 11.1), how many pipes are in the stack if there is a single pipe at the top? The sequence generated is 10, 9, 8, . . . , 3, 2, 1 and to answer the question we would have to compute the sum of all terms in the sequence. When the terms of a finite sequence are added, the result is called a finite series. Finite Series Given the sequence a1, a2, a3, a4, . . . , an, the sum of the terms is called a finite series or partial sum and is denoted Sn: Sn a1 a2 a3 a4 p an
EXAMPLE 5
Computing a Partial Sum Given an 2n, find the value of a. S4 and b. S7.
Solution
C. You’ve just learned how to find the partial sum of a series
Since we eventually need the sum of the first seven terms (for Part b), begin by writing out these terms: 2, 4, 6, 8, 10, 12, and 14. a. S4 a1 a2 a3 a4 2468 20 b. S7 a1 a2 a3 a4 a5 a6 a7 2 4 6 8 10 12 14 56 Now try Exercises 51 through 56
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Section 11.1 Sequences and Series
1021
D. Summation Notation When the general term of a sequence is known, the Greek letter sigma © can be used to write the related series as a formula. For instance, to indicate the sum of the first 4
four terms of an 3n 2, we write
13i 22. This result is called summation or
i1
sigma notation and the letter i is called the index of summation. The letters j, k, l, and m are also used as index numbers, and the summation need not start at 1.
EXAMPLE 6
Computing a Partial Sum Compute each sum: 4
a.
i1
5
13i 22
b.
6
1 j1 j
c.
112 k
k 2
k3
4
Solution
a.
13i 22 13 # 1 22 13 # 2 22 13 # 3 22 13 # 4 22
i1 5
b.
5 8 11 14 38
1
1
1
1
1
1
j 12345
j1
60 30 20 15 12 137 60 60 60 60 60 60
6
c.
112 k
k 2
k3
112 3 # 32 112 4 # 42 112 5 # 52 112 6 # 62 9 16 25 36 18
Now try Exercises 57 through 68
If a definite pattern is noted in a given series expansion, this process can be reversed, with the expanded form being expressed in summation notation using the nth term. EXAMPLE 7
Writing a Sum in Sigma Notation Write each of the following sums in summation (sigma) notation. a. 1 3 5 7 9 b. 6 9 12 p
Solution
a. The series has five terms and each term is an odd number, or 1 less than a 5
WORTHY OF NOTE By varying the function given and/or where the sum begins, more than one acceptable form is possible.
13 3n2 q
For example 7(b)
n1
multiple of 2. The general term is an 2n 1, and the series is
12n 12.
n1
b. This is an infinite sum whose terms are multiples of 3. The general term is q
an 3n, but the series starts at 2 and not 1. The series is
3j.
j2
Now try Exercises 69 through 78
also works.
Since the commutative and associative laws hold for the addition of real numbers, summations have the following properties:
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11-6
CHAPTER 11 Additional Topics in Algebra
Properties of Summation Given any real number c and natural number n, n
(I)
c cn
i1
If you add a constant c “n” times the result is cn. n
(II)
n
cai c
i1
a
i
i1
A constant can be factored out of a sum. n
(III)
i1
n
1ai bi 2
n
ai
i1
b
i
i1
A summation can be distributed to two (or more) sequences. m
(IV)
n
i1
n
ai
ai
im1
a; 1 m 6 n i
i1
A summation is cumulative and can be written as a sum of smaller parts. The verification of property II depends solely on the distributive property. n
Proof:
ca ca i
1
ca2 ca3 p can
expand sum
i1
c1a1 a2 a3 p an 2
factor out c
n
a
c
write series in summation form
i
i1
The verification of properties III and IV simply uses the commutative and associative properties. You are asked to prove property III in Exercise 91.
EXAMPLE 8
Computing a Sum Using Summation Properties 4
Recompute the sum
13i 22 from Example 6(a) using summation properties.
i1 4
Solution
i1
13i 22
4
4
2
property III
i 2
property II
3i
i1 4
3
i1
D. You’ve just learned how to use summation notation to write and evaluate series
i1 4 i1
31102 2142 38
1 2 3 4 10; property I result
Now try Exercises 79 through 82
E. Applications of Sequences To solve applications of sequences, (1) identify where the sequence begins (the initial term) and (2) write out the first few terms to help identify the nth term.
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Section 11.1 Sequences and Series
EXAMPLE 9
1023
Solving an Application — Accumulation of Stock Hydra already owned 1420 shares of stock when her company began offering employees the opportunity to purchase 175 discounted shares per year. If she made no purchases other than these discounted shares each year, how many shares will she have 9 yr later? If this continued for the 25 yr she will work for the company, how many shares will she have at retirement?
Solution
E. You’ve just learned to use sequences to solve applied problems
To begin, it helps to simply write out the first few terms of the sequence. Since she already had 1420 shares before the company made this offer, we let a0 1420 be the inaugural element, showing a1 1595 (after 1 yr, she owns 1595 shares). The first few terms are 1595, 1770, 1945, 2120, and so on. This supports a general term of an 1595 1751n 12. After 9 years
After 25 years
a9 1595 175182 2995
a25 1595 1751242 5795
After 9 yr she would have 2995 shares. Upon retirement she would own 5795 shares of company stock. Now try Exercises 85 through 90
TECHNOLOGY HIGHLIGHT
Studying Sequences and Series To support a study of sequences and series, we can use a graphing calculator to generate the desired terms. This can be done either on the home screen or directly into the LIST feature of the calculator. On the TI-84 Plus this is accomplished using the “seq(” and “sum(” STAT commands, which are accessed using the keystrokes 2nd (LIST) and the screen shown in Figure 11.2. The “seq(” feature is option 5 under the OPS submenu (press 5) and the “sum(” feature is option 5 under the MATH submenu (press 5). To generate the first four terms of the sequence an n2 1, and STAT to find the sum, CLEAR the home screen and press 2nd 5 to place “seq(” on the home screen. This command requires four inputs: an (the nth term), variable used (the calculator can work with any letter), initial term and the last term. For this example the screen reads “seq 1x2 1, x, 1, 42,” with the result being the four terms shown in Figure 11.3. To find the sum of these terms, we simply precede the seq 1x2 1, x, 1, 42 command by “sum(,” and two methods are shown in Figure 11.4. Each of the following sequences have some interesting properties or mathematical connections. Use your graphing calculator to generate the first 10 terms of each sequence and the sum of the first 10 terms. Next, generate the first 20 terms of each sequence and the sum of these terms. What conclusion (if any) can you reach about the sum of each sequence?
Exercise 1: an
1 3n
Exercise 2: an
2 n1n 12
Exercise 3: an
Figure 11.2
Figure 11.3
Figure 11.4
1 12n 1212n 12
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CHAPTER 11 Additional Topics in Algebra
11.1 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. A sequence is a(n) specific . 2. A series is the given sequence.
5. Describe the characteristics of a recursive sequence and give one example.
of the numbers from a
3. When each term of a sequence is larger than the preceding term, the sequence is said to be
4. When each term of a sequence is smaller than the preceding term, the sequence is said to be .
of numbers listed in a
.
6. Describe the characteristics of an alternating sequence and give one example.
DEVELOPING YOUR SKILLS
Find the first four terms, then find the 8th and 12th term for each nth term given.
7. an 2n 1
8. an 2n 3
9. an 3n 3
10. an 2n 12
2
3
11. an 112 nn 13. an
12. an
112 n n
1 n 14. an a1 b n
n n1 n
n
1 15. an a b 2
2 16. an a b 3
1 17. an n
1 18. an 2 n
112 n 19. an n1n 12 21. an 112 n2n
20. an
112 n1 2n2 1
22. an 112 n2n
Find the indicated term for each sequence.
23. an n2 2; a9
24. an 1n 22 2; a9
25. an
26. an
112 n1 ; a5 n n1
1 27. an 2a b 2
112 n1 ; a5 2n 1 n1
; a7
1 28. an 3a b 3
; a7
1 n 29. an a1 b ; a10 n
1 n 30. an an b ; a9 n
31. an
1 ; a4 n12n 12
32. an
1 ; a5 12n 12 12n 12
Find the first five terms of each recursive sequence.
33. e
a1 2 an 5an1 3
34. e
a1 3 an 2an1 3
35. e
a1 1 an 1an1 2 2 3
36. e
a1 2 an an1 16
37. •
c1 64, c2 32 cn2 cn1 cn 2
38. e
c1 1, c2 2 cn cn1 1cn2 2 2
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Section 11.1 Sequences and Series
Simplify each factorial expression.
39. 42.
8! 5!
40.
6! 3!3!
43.
7
12! 10!
41.
8! 2!6!
44.
9! 7!2! 10! 3!7!
Write out the first four terms in each sequence.
45. an
n! 1n 12!
1n 12! 13n2! n n 49. an n! 47. an
46. an
n! 1n 32!
1n 32! 12n2! n 2 50. an n! 48. an
Find the indicated partial sum for each sequence.
51. an n; S5
52. an n2; S7
53. an 2n 1; S8
54. an 3n 1; S6
1 55. an ; S5 n
56. an
n ; S4 n1
Expand and evaluate each series. 4
57.
13i 52 5
k1 7
61.
k1 4
63.
58.
i1
12i 32 5
60.
112 kk
62.
i2
j3
j3
112 k k3 k1k 22 8
67.
j
2
6
68.
j
112 k1
k2
k2 1
Write each sum using sigma notation. Answers are not necessarily unique.
69. 4 8 12 16 20 70. 5 10 15 20 25 71. 1 4 9 16 25 36 72. 1 8 27 64 125 216 For the given general term an, write the indicated sum using sigma notation.
73. an n 3; S5 74. an
n2 1 ; S4 n1
75. an
n2 ; third partial sum 3
76. an 2n 1; sixth partial sum
i1
12k2 32
2
7
66.
2j
5
i1
59.
65.
1025
1k2 12
5
112 k2k
k1
k1
77. an
78. an n2; sum for n 2 to 6 Compute each sum by applying properties of summation. 5
79.
i
2
i2
i1
4
64.
n ; sum for n 3 to 7 2n
14i 52
6
80.
4
81.
13k
2
k1
13 2i2
i1 4
k2
82.
12k
3
52
k1
WORKING WITH FORMULAS
83. Sum of an 3n 2: Sn
n(3n 1) 2
The sum of the first n terms of the sequence defined by an 3n 2 1, 4, 7, 10, . . . , 13n 22, . . . is given by the formula shown. Find S5 using the formula, then verify by direct calculation.
84. Sum of an 3n 1: Sn
n(3n 1) 2
The sum of the first n terms of the sequence defined by an 3n 1 2, 5, 8, 11, . . . , 13n 12, . . . is given by the formula shown. Find S8 using the formula, then verify by direct calculation. Observing the results of Exercises 83 and 84, can you now state the sum formula for an 3n 0?
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APPLICATIONS
Use the information given in each exercise to determine the nth term an for the sequence described. Then use the nth term to list the specified number of terms.
85. Blue-book value: Steve’s car has a blue-book value of $6000. Each year it loses 20% of its value (its value each year is 80% of the year before). List the value of Steve’s car for the next 5 yr. (Hint: For a1 6000, we need the next five terms.) 86. Effects of inflation: Suppose inflation (an increase in value) will average 4% for the next 5 yr. List the growing cost (year by year) of a DVD that costs $15 right now. (Hint: For a1 15, we need the next five terms.) 87. Wage increases: Latisha gets $5.20 an hour for filling candy machines for Archtown Vending. Each year she receives a $0.50 hourly raise. List Latisha’s wage for the first 5 yr. How much will she make in the fifth year if she works 8 hr per day for 240 working days? 88. Average birth weight: The average birth weight of a certain animal species is 900 g, with the baby gaining 125 g each day for the first 10 days. List the infant’s weight for the first 10 days. How much does the infant weigh on the 10th day?
89. Stocking a lake: A local fishery stocks a large lake with 1500 bass and then adds an additional 100 mature bass per month until the lake nears maximum capacity. If the bass population grows at a rate of 5% per month through natural reproduction, the number of bass in the pond after n months is given by the recursive sequence b0 1500, bn 1.05bn1 100. How many bass will be in the lake after 6 months? 90. Species preservation: The Interior Department introduces 50 wolves (male and female) into a large wildlife area in an effort to preserve the species. Each year about 12 additional adult wolves are added from capture and relocation programs. If the wolf population grows at a rate of 10% per year through natural reproduction, the number of wolves in the area after n years is given by the recursive sequence w0 50, wn 1.10wn1 12. How many wolves are in the wildlife area after 6 years?
EXTENDING THE CONCEPT
91. Verify that a summation may be distributed to two (or more) sequences. That is, verify that the following statement is true: n
n
n
1ai bi 2 ai bi.
i1
i1
i1
Surprisingly, some of the most celebrated numbers in mathematics can be represented or approximated by a series expansion. Use your calculator to find the partial
11-10
CHAPTER 11 Additional Topics in Algebra
sums for n 4, n 8, and n 12 for the summations given, and attempt to name the number the summation approximates: n
1 k0 k! n 1 94. k k1 2 92.
n
1 k k1 3
93.
MAINTAINING YOUR SKILLS
95. (6.7) Solve csc x sin a
xb 1 2
96. (2.5) Set up the difference quotient for f 1x2 1x, then rationalize the numerator.
97. (7.2) Given a triangle where a 0.4 m, b 0.3 m, and c 0.5 m, find the three corresponding angles. 98. (6.3) Solve the system using a matrix 25x y 2z 14 equation. • 2x y z 40 7x 3y z 13
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College Algebra & Trignometry—
11.2 Arithmetic Sequences Learning Objectives
Similar to the way polynomials fall into certain groups or families (linear, quadratic, cubic, etc.), sequences and series with common characteristics are likewise grouped. In this section, we focus on sequences where each successive term is generated by adding a constant value, as in the sequence 1, 8, 15, 22, 29, . . . , where 7 is added to a given term in order to produce the next term.
In Section 11.2 you will learn how to:
A. Identify an arithmetic sequence and its common difference
B. Find the nth term of an
A. Identifying an Arithmetic Sequence and Finding the Common Difference
arithmetic sequence
C. Find the nth partial sum of an arithmetic sequence
An arithmetic sequence is one where each successive term is found by adding a fixed constant to the preceding term. For instance 3, 7, 11, 15, . . . is an arithmetic sequence, since adding 4 to any given term produces the next term. This also means if you take the difference of any two consecutive terms, the result will be 4 and in fact, 4 is called the common difference d for this sequence. Using the notation developed earlier, we can write d ak1 ak, where ak represents any term of the sequence and ak1 represents the term that follows ak.
D. Solve applications involving arithmetic sequences
Arithmetic Sequences Given a sequence a1, a2, a3, . . . , ak, ak1, . . . , an, where k, n and k 6 n, if there exists a common difference d such that ak1 ak d, then the sequence is an arithmetic sequence. The difference of successive terms can be rewritten as ak1 ak d (for k 12 to highlight that each following term is found by adding d to the previous term.
EXAMPLE 1
Identifying an Arithmetic Sequence Determine if the given sequence is arithmetic. a. 2, 5, 8, 11, . . . b. 12, 56, 43, 76, p
Solution
a. Begin by looking for a common difference d ak1 ak. Checking each pair of consecutive terms we have 523
853
11 8 3 and so on.
This is an arithmetic sequence with common difference d 3. b. Checking each pair of consecutive terms yields 5 1 5 3 6 2 6 6 2 1 6 3
5 8 5 4 3 6 6 6 3 1 6 2
Since the difference is not constant, this is not an arithmetic sequence. Now try Exercises 7 through 18
EXAMPLE 2
Writing the First k Terms of an Arithmetic Sequence Write the first five terms of the arithmetic sequence, given the first term a1 and the common difference d. a. a1 12 and d 4 b. a1 12 and d 13
11-11
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Solution
A. You’ve just learned how to identify an arithmetic sequence and its common difference
a. a1 12 and d 4. Starting at a1 12, add 4 to each new term to generate the sequence: 12, 8, 4, 0, 4 b. a1 12 and d 13. Starting at a1 12 and adding 13 to each new term will generate the sequence: 12, 56, 76, 32, 11 6 Now try Exercises 19 through 30
B. Finding the nth Term of an Arithmetic Sequence If the values a1 and d from an arithmetic sequence are known, we could generate the terms of the sequence by adding multiples of d to the first term, instead of adding d to each new term. For example, we can generate the sequence 3, 8, 13, 18, 23 by adding multiples of 5 to the first term a1 3: 3 3 1025
a1 a1 0d
13 3 1225
a3 a1 2d
8 3 1125
a2 a1 1d
18 3 1325
a4 a1 3d
23 3 1425
current term
initial term
S
a5 a1 4d S
1028
coefficient of common difference
It’s helpful to note the coefficient of d is 1 less than the subscript of the current term (as shown): 5 1 4. This observation leads us to a formula for the nth term. The nth Term of an Arithmetic Sequence The nth term of an arithmetic sequence is given by
an a1 1n 12d
where d is the common difference.
EXAMPLE 3
Finding a Specified Term in an Arithmetic Sequence Find the 24th term of the sequence 0.1, 0.4, 0.7, 1, . . . .
Solution
Instead of creating all terms up to the 24th, we determine the constant d and use the nth term formula. By inspection we note a1 0.1 and d 0.3. an a1 1n 12d 0.1 1n 120.3 0.1 0.3n 0.3 0.3n 0.2
n th term formula substitute 0.1 for a1 and 0.3 for d eliminate parentheses simplify
To find the 24th term we substitute 24 for n: a24 0.31242 0.2 7.0
substitute 24 for n result
Now try Exercises 31 through 42
EXAMPLE 4
Finding the Number of Terms in an Arithmetic Sequence Find the number of terms in the arithmetic sequence 2, 5, 12, 19, . . . , 411.
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Section 11.2 Arithmetic Sequences
Solution
1029
By inspection we see that a1 2 and d 7. As before, an a1 1n 12d 2 1n 12 172 7n 9
n th term formula substitute 2 for a1 and 7 for d simplify
Although we don’t know the number of terms in the sequence, we do know the last or nth term is 411. Substituting 411 for an gives 411 7n 9 60 n
substitute 411 for an solve for n
There are 60 terms in this sequence. Now try Exercises 43 through 50
If the term a1 is unknown but a term ak is given, the nth term can be written an ak 1n k2d since n k 1n k2
(the subscript of the term ak and coefficient of d sum to n). EXAMPLE 5
Finding the First Term of an Arithmetic Sequence Given an arithmetic sequence where a6 0.55 and a13 0.9, find the common difference d and the value of a1.
Solution
At first it seems that not enough information is given, but recall we can express a13 as the sum of any earlier term and the appropriate multiple of d. Since a6 is known, we write a13 a6 7d (note 13 6 7 as required). a13 a6 7d 0.9 0.55 7d 0.35 7d d 0.05
a1 is unknown substitute 0.9 for a13 and 0.55 for a6 subtract 0.55 solve for d
Having found d, we can now solve for a1.
B. You’ve just learned how to find the nth term of an arithmetic sequence
a13 a1 12d 0.9 a1 1210.052 0.9 a1 0.6 a1 0.3
n th term formula for n 13 substitute 0.9 for a13 and 0.05 for d simplify solve for a1
The first term is a1 0.3 and the common difference is d 0.05. Now try Exercises 51 through 56
C. Finding the nth Partial Sum of an Arithmetic Sequence Using sequences and series to solve applications often requires computing the sum of a given number of terms. Consider the sequence a1, a2, a3, a4, . . . , an with common difference d. Use Sn to represent the sum of the first n terms and write the original series, then the series in reverse order underneath. Since one row increases at the same rate the other decreases, the sum of each column remains constant, and for simplicity’s sake we choose a1 an to represent this sum. a1 a2 a3 p an2 an1 an Sn add p Sn an an1 an2 a3 a2 a1 columns 2Sn 1a1 an 2 1a1 an 2 1a1 an 2 p 1a1 an 2 1a1 an 2 1a1 an 2 ↓ vertically
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To understand why each column adds to a1 an, consider the sum in the second column: a2 an1. From a2 a1 d and an1 an d, we obtain a2 an1 1a1 d2 1an d2 by direct substitution, which gives a result of a1 an. Since there are n columns, we end up with 2Sn n1a1 an 2, and solving for Sn gives the formula for the first n terms of an arithmetic sequence. The nth Partial Sum of an Arithmetic Sequence Given an arithmetic sequence with first term a1, the nth partial sum is given by Sn na
a1 an b. 2
In words: The sum of an arithmetic sequence is the number of terms times the average of the first and last term.
EXAMPLE 6
Computing the Sum of an Arithmetic Sequence 75
Find the sum of the first 75 positive, odd integers:
12k 12.
k1
Solution
The initial terms of the sequence are 1, 3, 5, . . . and we note a1 1, d 2, and n 75. To use the sum formula, we need the value of an a75. The nth term formula shows a75 a1 74d 1 74122, so a75 149. n1a1 an 2 2 751a1 a75 2 S75 2 7511 1492 2 5625 Sn
C. You’ve just learned how to find the nth partial sum of an arithmetic sequence
sum formula
substitute 75 for n
substitute 1 for a1, 149 for a75 result
The sum of the first 75 positive, odd integers is 5625. Now try Exercises 57 through 62
Figure 11.5
By substituting the nth term formula directly into the formula for partial sums, we’re able to find a partial sum without actually having to find the nth term: n1a1 an 2 2 n1a1 3a1 1n 12d 4 2 2 n 3 2a1 1n 12d 4 2
Sn spiral fern
Figure 11.6
sum formula substitute a1 1n 12d for an alternative formula for the nth partial sum
See Exercises 63 through 68 for more on this alternative formula.
D. Applications nautilus
In the evolution of certain plants and shelled animals, sequences and series seem to have been one of nature’s favorite tools (see Figures 11.5 and 11.6). Sequences and series also provide a good mathematical model for a variety of other situations as well.
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Section 11.2 Arithmetic Sequences
EXAMPLE 7
1031
Solving an Application of Arithmetic Sequences: Seating Capacity Cox Auditorium is an amphitheater that has 40 seats in the first row, 42 seats in the second row, 44 in the third, and so on. If there are 75 rows in the auditorium, what is the auditorium’s seating capacity?
Solution
D. You’ve just learned how to solve applications involving arithmetic sequences
The number of seats in each row gives the terms of an arithmetic sequence with a1 40, d 2, and n 75. To find the seating capacity, we need to find the total number of seats, which is the sum of this arithmetic sequence. Since the value of n a75 is unknown, we opt for the alternative formula Sn 3 2a1 1n 12d4 . 2 n Sn 3 2a1 1n 12d 4 2 75 S75 3 21402 175 12 122 4 2 75 12282 2 8550
sum formula
substitute 40 for a1, 2 for d and 75 for n
simplify result
The seating capacity for Cox Auditorium is 8550. Now try Exercises 71 through 76
11.2 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Consecutive terms in an arithmetic sequence differ by a constant called the . 2. The sum of the first n terms of an arithmetic sequence is called the nth . 3. The formula for the nth partial sum of an arithmetic sequence is sn the term.
, where an is
4. The nth term formula for an arithmetic sequence is term an , where a1 is the and d is the . 5. Discuss how the terms of an arithmetic sequence can be written in various ways using the relationship an ak 1n k2d. 6. Describe how the formula for the nth partial sum was derived, and illustrate its application using a sequence from the exercise set.
DEVELOPING YOUR SKILLS
Determine if the sequence given is arithmetic. If yes, name the common difference. If not, try to determine the pattern that forms the sequence.
10. 1.2, 3.5, 5.8, 8.1, 10.4, . . . 11. 2, 3, 5, 7, 11, 13, 17, . . .
7. 5, 2, 1, 4, 7, 10, . . .
12. 1, 4, 8, 13, 19, 26, 34, . . .
8. 1, 2, 5, 8, 11, 14, . . .
13.
9. 0.5, 3, 5.5, 8, 10.5, . . .
1 1 1 1 5 24 , 12 , 8 , 6 , 24 ,
...
14.
1 1 1 1 1 12 , 15 , 20 , 30 , 60 ,
...
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CHAPTER 11 Additional Topics in Algebra
15. 1, 4, 9, 16, 25, 36, . . .
45. a1 0.4, an 10.9, d 0.25
16. 125, 64, 27, 8, 1, . . .
46. a1 0.3, an 36, d 2.1
17. ,
5 2 7 3 5 , , , , , . . . 18. , , , , ,... 6 3 2 3 6 8 4 8 2
Write the first four terms of the arithmetic sequence with the given first term and common difference.
20. a1 8, d 3
21. a1 7, d 2
22. a1 60, d 12
23. a1 0.3, d 0.03
24. a1 0.5, d 0.25
25. a1 32, d 12
1 26. a1 15, d 10
27. a1 34, d 18
28. a1 16, d 13
29. a1 2, d 3
30. a1 4, d 4
Identify the first term and the common difference, then write the expression for the general term an and use it to find the 6th, 10th, and 12th terms of the sequence.
33. 5.10, 5.25, 5.40, . . . 35.
3 9 2, 4,
3,
15 4,
...
32. 7, 4, 1, 2, 5, . . . 34. 9.75, 9.40, 9.05, . . . 36.
5 3 7 , 14 ,
27,
11 14 ,
48. 3.4, 1.1, 1.2, 3.5, . . . , 38 49.
1 1 1 5 1 12 , 8 , 6 , 24 , 4 ,
...
51. a3 7, a7 19
50.
1 1 1 1 12 , 15 , 20 , 30 ,
. . . , 14
Find the indicated term using the information given.
37. a1 5, d 4; find a15 38. a1 9, d 2; find a17 1 39. a1 32, d 12 ; find a7 1 40. a1 12 25 , d 10 ; find a9
41. a1 0.025, d 0.05; find a50 42. a1 3.125, d 0.25; find a20 Find the number of terms in each sequence.
43. a1 2, an 22, d 3 44. a1 4, an 42, d 2
52. a5 17, a11 2
53. a2 1.025, a26 10.025 54. a6 12.9, a30 1.5 27 55. a10 13 18 , a24 2
56. a4 54, a8 94
Evaluate each sum. For Exercises 61 and 62, use the summation properties from Section 11.1. 30
57.
13n 42
29
58.
n1 37
3 59. a n 2b n1 4
61.
13 5n2
14n 12
n1 20
60.
a 2n 3b 5
n1 20
15
n4
. . . , 98
Find the common difference d and the value of a1 using the information given.
19. a1 2, d 3
31. 2, 7, 12, 17, . . .
47. 3, 0.5, 2, 4.5, 7, . . . , 47
62.
17 2n2
n7
Use the alternative formula for the nth partial sum to compute the sums indicated.
63. The sum S15 for the sequence 12 19.52 172 14.52 p
64. The sum S20 for the sequence 92 72 52 32 p 65. The sum S30 for the sequence 0.003 0.173 0.343 0.513 p 66. The sum S50 for the sequence 122 172 1122 1172 p 67. The sum S20 for the sequence 12 2 12 3 12 4 12 p 68. The sum S10 for the sequence 12 13 10 13 8 13 6 13 p
WORKING WITH FORMULAS n1n 12 2 The sum of the first n natural numbers can be found using the formula shown, where n represents the number of terms in the sum. Verify the formula by adding the first six natural numbers by hand, and then evaluating S6. Then find the sum of the first 75 natural numbers.
69. Sum of the first n natural numbers: Sn
70. Sum of the squares of the first n natural n1n 12 12n 12 numbers: Sn 6 If the first n natural numbers are squared, the sum of these squares can be found using the formula shown, where n represents the number of terms in the sum. Verify the formula by computing the sum of the squares of the first six natural numbers by hand, and then evaluating S6. Then find the sum of the squares of the first 20 natural numbers: 112 22 32 p 202 2.
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Section 11.2 Arithmetic Sequences
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APPLICATIONS
71. Temperature fluctuation: At 5 P.M. in Coldwater, the temperature was a chilly 36°F. If the temperature decreased by 3°F every half-hour for the next 7 hr, at what time did the temperature hit 0°F?
has 88, the third row has 96, and so on. How many seats are in the 10th row? If there is room for 25 rows, how many chairs will be needed to set up the theater?
72. Arc of a baby swing: When Mackenzie’s baby swing is started, the first swing (one way) is a 30-in. arc. As the swing slows down, each successive arc is 3 2 in. less than the previous one. Find (a) the length of the tenth swing and (b) how far Mackenzie has traveled during the 10 swings.
75. Sales goals: At the time that I was newly hired, 100 sales per month was what I required. Each following month—the last plus 20 more, as I work for the goal of top sales award. When 2500 sales are thusly made, it’s Tahiti, Hawaii, and pina coladas in the shade. How many sales were made by this person in the seventh month? What were the total sales after the 12th month? Was the goal of 2500 total sales met after the 12th month?
73. Computer animations: The animation on a new computer game initially allows the hero of the game to jump a (screen) distance of 10 in. over booby traps and obstacles. Each successive jump is limited to 34 in. less than the previous one. Find (a) the length of the seventh jump and (b) the total distance covered after seven jumps. 74. Seating capacity: The Fox Theater creates a “theater in the round” when it shows any of Shakespeare’s plays. The first row has 80 seats, the second row
EXTENDING THE THOUGHT
77. From a study of numerical analysis, a function is known to be linear if its “first differences” (differences between each output) are constant. Likewise, a function is known to be quadratic if its “first differences” form an arithmetic sequence. Use this information to determine if the following sets of output come from a linear or quadratic function: a. 19, 11.8, 4.6, 2.6, 9.8, 17, 24.2, . . . b. 10.31, 10.94, 11.99, 13.46, 15.35, . . .
76. Bequests to charity: At the time our mother left this Earth, she gave $9000 to her children of birth. This we kept and each year added $3000 more, as a lasting memorial from the children she bore. When $42,000 is thusly attained, all goes to charity that her memory be maintained. What was the balance in the sixth year? In what year was the goal of $42,000 met?
78. From elementary geometry it is known that the interior angles of a triangle sum to 180°, the interior angles of a quadrilateral sum to 360°, the interior angles of a pentagon sum to 540°, and so on. Use the pattern created by the relationship between the number of sides to the number of angles to develop a formula for the sum of the interior angles of an n-sided polygon. The interior angles of a decagon (10 sides) sum to how many degrees?
MAINTAINING YOUR SKILLS
79. (5.7) Identify the amplitude (A), period (P), horizontal shift (HS), vertical shift (VS) and endpoints of the primary interval (PI) for f 1t2 7 sin a t b 10. 3 6 80. (3.1) Graph by completing the square. Label all important features: y x2 2x 3.
81. (2.3) In 2000, the deer population was 972. By 2005 it had grown to 1217. Assuming the growth is linear, find the function that models this data and use it to estimate the deer population in 2008. 82. (6.1) Verify identity.
sin x sin x 1 tan x is an csc x cos x cot x
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College Algebra & Trignometry—
11.3 Geometric Sequences Learning Objectives
Recall that arithmetic sequences are those where each term is found by adding a constant value to the preceding term. In this section, we consider geometric sequences, where each term is found by multiplying the preceding term by a constant value. Geometric sequences have many interesting applications, as do geometric series.
In Section 11.3 you will learn how to:
A. Identify a geometric sequence and its common ratio
A. Geometric Sequences
B. Find the nth term of a
A geometric sequence is one where each successive term is found by multiplying the preceding term by a fixed constant. Consider growth of a bacteria population, where a single cell splits in two every hour over a 24-hr period. Beginning with a single bacterium 1a0 12, after 1 hr there are 2, after 2 hr there are 4, and so on. Writing the number of bacteria as a sequence we have:
geometric sequence
C. Find the nth partial sum of a geometric sequence
D. Find the sum of an infinite geometric series
hours:
E. Solve application bacteria:
problems involving geometric sequences and series
EXAMPLE 1
a1 T 2
a2 T 4
a3 T 8
a4 T 16
a5 T 32
... ...
The sequence 2, 4, 8, 16, 32, . . . is a geometric sequence since each term is found by multiplying the previous term by the constant factor 2. This also means that the ratio of any two consecutive terms must be 2 and in fact, 2 is called the common ratio r for ak1 this sequence. Using the notation from Section 11.1 we can write r , where ak ak represents any term of the sequence and ak1 represents the term that follows ak.
Testing a Sequence for a Common Ratio Determine if the given sequence is geometric. a. 1, 0.5, 0.25, 0.125, . . . b. 18, 14, 34, 3, 15, . . .
Solution
ak1 . ak a. For 1, 0.5, 0.25, 0.125, . . . , the ratio of consecutive terms gives 0.25 0.125 0.5 and so on. 0.5, 0.5, 0.5, 1 0.5 0.25 This is a geometric sequence with common ratio r 0.5. b. For 18, 14, 34, 3, 15, . . . , we have: 1 1 1 8 1 3 4 3 4 3 3 # # and so on. 3 # 4 8 4 1 4 4 4 1 4 1 3 2 3 4
Apply the definition to check for a common ratio r
Since the ratio is not constant, this is not a geometric sequence. Now try Exercises 7 through 24 EXAMPLE 2
Writing the Terms of a Geometric Sequence Write the first five terms of the geometric sequence, given the first term a1 16 and the common ratio r 0.25.
Solution
A. You’ve just learned how to identify a geometric sequence and its common ratio
Given a1 16 and r 0.25. Starting at a1 16, multiply each term by 0.25 to generate the sequence. a2 16 # 0.25 4 a4 1 # 0.25 0.25
a3 4 # 0.25 1 a5 0.25 # 0.25 0.0625
The first five terms of this sequence are 16, 4, 1, 0.25, and 0.0625. Now try Exercises 25 through 38
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Section 11.3 Geometric Sequences
1035
B. Find the nth Term of a Geometric Sequence If the values a1 and r from a geometric sequence are known, we could generate the terms of the sequence by applying additional factors of r to the first term, instead of multiplying each new term by r. If a1 3 and r 2, we simply begin at a1, and continue applying additional factors of r for each successive term. 6 3 # 21
a2 a1r1
12 3 # 22
a3 a1r2
24 3 # 23
a4 a1r3
48 3 # 24
a5 a1r4
current term
initial term
S
a1 a1r0
S
3 3 # 20
exponent on common ratio
From this pattern, we note the exponent on r is always 1 less than the subscript of the current term: 5 1 4, which leads us to the formula for the nth term of a geometric sequence. The nth Term of a Geometric Sequence The nth term of a geometric sequence is given by an a1r n1 where r is the common ratio.
EXAMPLE 3
Finding a Specific Term in a Sequence Find the 10th term of the sequence 3, 6, 12, 24, . . . .
Solution
Instead of writing out all 10 terms, we determine the constant ratio r and use the nth term formula. By inspection we note that a1 3 and r 2. an a1r n1 3122 n1
n th term formula substitute 3 for a1 and 2 for r
To find the 10th term we substitute n 10: a10 3122 101 3122 9 1536
substitute 10 for n simplify
Now try Exercises 39 through 46
EXAMPLE 4
Determining the Number of Terms in a Geometric Sequence 1 . Find the number of terms in the geometric sequence 4, 2, 1, . . . , 64
Solution
Observing that a1 4 and r 12, we have n th term formula an a1rn1 1 n1 1 4a b substitute 4 for a1 and for r 2 2 Although we don’t know the number of terms in the sequence, we do know the last 1 1 . Substituting an 64 or nth term is 64 gives
1 1 n1 4a b 64 2 1 1 n1 a b 256 2
substitute
1 for an 64
1 divide by 4 amultiply by b 4
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From our work in Chapter 4, we attempt to write both sides as exponentials with a like base, or apply logarithms. Since 256 28, we equate bases. 1 8 1 n1 a b a b 2 2 S8 n 1 9n
write
1 1 8 as a b 256 2
like bases imply exponents must be equal solve for n
This shows there are nine terms in the sequence. Now try Exercises 47 through 58
If the term a1 is unknown but a term ak is given, the nth term can be written an akr nk, since n k 1n k2
(the subscript on the term ak and the exponent on r sum to n). EXAMPLE 5
Finding the First Term of a Geometric Sequence Given a geometric sequence where a4 0.075 and a7 0.009375, find the common ratio r and the value of a1.
Solution
Since a1 is not known, we express a7 as the product of a known term and the appropriate number of common ratios: a7 a4r 3 17 4 3, as required). a7 a4 # r 3 0.009375 0.075r3 0.125 r3 r 0.5
a1 is unknown substitute 0.009375 for a 7 and 0.075 for a4 divide by 0.075 solve for r
Having found r, we can now solve for a1
B. You’ve just learned how to find the nth term of a geometric sequence
a7 a1r6 0.009375 a1 10.52 6 0.009375 a1 10.0156252 a1 0.6
n th term formula substitute 0.009375 for a7 and 0.5 for r simplify solve for a1
The first term is a1 0.6 and the common ratio is r 0.5. Now try Exercises 59 through 64
C. Find the nth Partial Sum of a Geometric Sequence As with arithmetic series, applications of geometric series often involve computing a sum of consecutive terms. We can adapt the method for finding the sum of an arithmetic sequence to develop a formula for adding the first n terms of a geometric sequence. For the nth term an a1r n1, we have Sn a1 a1r a1r2 a1r3 p n1 . If we multiply Sn by r then add the original series, the “interior terms” sum a 1r to zero. 2 1a1r2 1a1r 3 2 p- 1a1rn1 2 1a1rn 2 rSn a1r-----S --S --S -S S Sn a1 a1r a1r 2 p a1rn2 a1rn1
Sn rSn
a1
0
0
0
0
We then have Sn rSn a1 a1rn, and can now solve for Sn: Sn rSn a1 a1r n Sn 11 r2 a1 a1r n a1 a1r n Sn 1r
difference of Sn and rSn factor out Sn solve for Sn
0
1a1rn 2
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Section 11.3 Geometric Sequences
The result is a formula for the nth partial sum of a geometric sequence. The nth Partial Sum of a Geometric Sequence Given a geometric sequence with first term a1 and common ratio r, the nth partial sum (the sum of the first n terms) is a1 11 r n 2 a1 a1r n Sn ,r1 1r 1r
In words: The sum of a geometric sequence is the difference of the first and 1n 12st term, divided by 1 minus the common ratio.
EXAMPLE 6
Computing a Partial Sum 9
Find the sum:
3 (the first nine powers of 3). i
i1
Solution
The initial terms of this series are 3 9 27 p , and we note a1 3, r 3, and n 9. We could find the first nine terms and add, but using the partial sum formula gives a1 11 rn 2 1r 311 39 2 S9 13 3119,6822 2 29,523 Sn
C. You’ve just learned how to find the nth partial sum of a geometric sequence
sum formula
substitute 3 for a1, 9 for n, and 3 for r
simplify result
Now try Exercises 65 through 88
D. The Sum of an Infinite Geometric Series To this point we’ve considered only partial sums of a geometric series. While it is impossible to add an infinite number of these terms, some of these “infinite sums” appear to have a limiting value. The sum appears to get ever closer to this value but never exceeds it— much like the asymptotic behavior of some graphs. We will define the sum of this infinite geometric series to be this limiting value, if it exists. Consider the illustration in Figure 11.7, where a standard sheet of typing paper is cut in half. One of the halves is again cut in half and the process is continued indefinitely, as 1 1 p , 32, with a1 12 and shown. Notice the “halves” create an infinite sequence 12, 14, 18, 16 1 1 1 1 1 1 r 2. The corresponding infinite series is 2 4 8 16 32 p 1n p . 2
Figure 11.7 1 2
1 8 1 2
1 4
1 4 1 8
1 16
1 16
1 32 1 32
1 64
and so on
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CHAPTER 11 Additional Topics in Algebra
If we arrange one of the halves from each stage as shown in Figure 11.8, we would be rebuilding the original sheet of paper. As we add more and more of these halves together, we get closer and closer to the size of the original sheet. We gain an intuitive sense that this series must add to 1, because the pieces of the original sheet of paper must add to 1 whole sheet. To explore this idea further, consider what happens to 1 12 2 n as n becomes large.
Figure 11.8 1 64
1 16
1 32
1 4 1 8
1 4 n 4: a b 0.0625 2
1 2
The formula for the sum of an infinite geometric series can also be derived by noting that Sq a1 a1r a1r 2 a1r 3 p can be rewritten as Sq a1 r 1a1 a1r a1r 2 a1r 3 p 2 a1 rSq.
Infinite Geometric Series Given a geometric sequence with first term a1 and r 6 1, the sum of the related infinite series is given by
Sq rSq a1
Sq 11 r2 a1
Sq
a1 . 1r
EXAMPLE 7
1 12 n 12: a b 0.0002 2
Further exploration with a calculator seems to support the idea that as n S q, 1 12 2 n S 0, although a definitive proof is left for a future course. In fact, it can be shown that for any r 6 1, r n becomes very close to zero as n becomes large. a1 a1r n a1 a1r n , note that if In symbols: as n S q, r n S 0. For Sn 1r 1r 1r r 6 1 and “we sum an infinite number of terms,” the second term becomes zero, leaving only the first term. In other words, the limiting value (represented by Sq 2 is a1 Sq . 1r
WORTHY OF NOTE
Sq
1 8 n 8: a b 0.004 2
a1 ;r1 1r
If r 7 1, no finite sum exists.
Computing an Infinite Sum Find the limiting value of each infinite geometric series (if it exists). a. 1 2 4 8 p b. 3 2 43 89 p c. 0.185 0.000185 0.000000185 p
Solution
Begin by determining if the infinite series is geometric. If so, a1 use Sq . 1r a. Since r 2 (by inspection), a finite sum does not exist. b. Using the ratio of consecutive terms we find r 23 and the infinite sum exists. With a1 3, we have Sq
3 3 2 1 9 13 3
c. This series is equivalent to the repeating decimal 0.185185185 p 0.185. The common ratio is r 0.000185 0.185 0.001 and the infinite sum exists: D. You’ve just learned how to find the sum of an infinite geometric series
Sq
0.185 5 1 0.001 27 Now try Exercises 89 through 104
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E. Applications Involving Geometric Sequences and Series Here are a few of the ways these ideas can be put to use.
EXAMPLE 8
Solving an Application of Geometric Sequences: Pendulums A pendulum is any object attached to a fixed point and allowed to swing freely under the influence of gravity. Suppose each swing is 0.9 the length of the previous one. Gradually the swings become shorter and shorter and at some point the pendulum will appear to have stopped (although theoretically it never does). a. How far does the pendulum travel on its eighth swing, if the first swing was 2 m? b. What is the total distance traveled by the pendulum for these eight swings? c. How many swings until the length of each swing falls below 0.5 m? d. What total distance does the pendulum travel before coming to rest?
Solution
a. The lengths of each swing form the terms of a geometric sequence with a1 2 and r 0.9. The first few terms are 2, 1.8, 1.62, 1.458, and so on. For the 8th term we have: an a1r n1 a8 210.92 81 0.956
n th term formula substitute 8 for n, 2 for a1, and 0.9 for r
The pendulum travels about 0.956 m on its 8th swing. b. For the total distance traveled after eight swings, we compute the value of S8. a1 11 r n 2 1r 211 0.98 2 S8 1 0.9 11.4 Sn
n th partial sum formula
substitute 2 for a1, 0.9 for r, and 8 for n
The pendulum has traveled about 11.4 m by the end of the 8th swing. c. To find the number of swings until the length of each swing is less than 0.5 m, we solve for n in the equation 0.5 210.92 n1. This yields 0.25 10.92 n1 ln 0.25 1n 12ln 0.9 ln 0.25 1n ln 0.9 14.16 n
divide by 2 take the natural log, apply power property solve for n (exact form) solve for n (approximate form)
After the 14th swing, each successive swing will be less than 0.5 m. d. For the total distance traveled before coming to rest, we consider the related infinite geometric series, with a1 2 and r 0.9. a1 1r 2 Sq 1 0.9 20
Sq
E. You’ve just learned how to solve application problems involving geometric sequences and series
infinite sum formula
substitute 2 for a1 and 0.9 for r result
The pendulum would travel 20 m before coming to rest. Now try Exercises 107 through 119
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CHAPTER 11 Additional Topics in Algebra
11.3 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. In a geometric sequence, each successive term is found by the preceding term by a fixed value r. 2. In a geometric sequence, the common ratio r can be found by computing the of any two consecutive terms. 3. The nth term of a geometric sequence is given by an , for any n 1.
4. For the general sequence a1, a2, a3, p , ak, p , the fifth partial sum is given by S5 . 5. Describe/Discuss how the formula for the nth partial sum is related to the formula for the sum of an infinite geometric series. 6. Describe the difference(s) between an arithmetic and a geometric sequence. How can a student prevent confusion between the formulas?
DEVELOPING YOUR SKILLS
Determine if the sequence given is geometric. If yes, name the common ratio. If not, try to determine the pattern that forms the sequence.
7. 4, 8, 16, 32, p 8. 2, 6, 18, 54, 162, p 9. 3, 6, 12, 24, 48, p 10. 128, 32, 8, 2, p 11. 2, 5, 10, 17, 26, p 12. 13, 9, 5, 1, 3, p 13. 3, 0.3, 0.03, 0.003, p
23. 240, 120, 40, 10, 2, p 24. 120, 60, 20, 5, 1, p Write the first four terms of the sequence, given a1 and r.
25. a1 5, r 2 27. a1 6, r
26. a1 2, r 4 12
29. a1 4, r 13
30. a1 15, r 15
31. a1 0.1, r 0.1
32. a1 0.024, r 0.01
Find the indicated term for each sequence.
14. 12, 0.12, 0.0012, 0.000012, p
33. a1 24, r 12; find a7
15. 1, 3, 12, 60, 360, p
34. a1 48, r 13; find a6
16. 23, 2, 8, 40, 240, p 17. 25, 10, 4, 85, p 18. 36, 24, 16, 32 3,p 1 19. 12, 14, 18, 16 ,p 8 16 20. 23, 49, 27 , 81, p
21. 3,
12 48 192 ,p , , x x2 x3
22. 5,
10 20 40 , , ,p a a2 a3
28. a1 23, r 15
1 , r 5; find a4 35. a1 20 3 , r 4; find a5 36. a1 20
37. a1 2, r 12; find a7 38. a1 13, r 13; find a8 Identify a1 and r, then write the expression for the nth term an a1r n1 and use it to find a6, a10, and a12.
39.
1 27 ,
19, 13, 1, 3, p
41. 729, 243, 81, 27, 9, p 43. 12,
12 2 ,
1, 12, 2, p
40. 78, 74, 72, 7, 14, p 42. 625, 125, 25, 5, 1, p
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Section 11.3 Geometric Sequences
44. 36 13, 36, 12 13, 12, 4 13, p 45. 0.2, 0.08, 0.032, 0.0128, p 46. 0.5, 0.35, 0.245, 0.1715, p
16 12 p ; find S7
76.
1 18
77.
4
5
10
j
j1
79.
47. a1 9, an 729, r 3 48. a1 1, an 128, r 2 1 49. a1 16, an 64 , r 12 1 50. a1 4, an 512 , r 12
51. a1 1, an 1296, r 16
2 k1 5a b 3 k1
7
80.
1 i1 9a b 2 i4
53. 2, 6, 18, 54, p , 4374
84. a3 1, a6 27; find S6
54. 3, 6, 12, 24, p , 6144
9 85. a3 49, a7 64 ; find S6
55. 64, 32 12, 32, 16 12, p , 1
2 86. a2 16 81 , a5 3 ; find S8
56. 243, 81 13, 81, 27 13, p , 1
87. a3 2 12, a6 8; find S7
57. 38, 34, 32, 3, p , 96
88. a2 3, a5 9 13; find S7
58.
5, p , 135
Find the common ratio r and the value of a1 using the information given (assume r 0).
59. a3 324, a7 64
60. a5 6, a9 486
61. a4
2 62. a2 16 81 , a5 3
91. 9 3 1 p
64. a3 16 25 , a7 25
92. 36 24 16 p
a8
9 4
63. a4 32 3 , a8 54
Find the indicated sum. For Exercises 81 and 82, use the summation properties from Section 11.1.
65. a1 8, r 2; find S12 66. a1 2, r 3; find S8 67. a1 96, r 13; find S5 68. a1 12, r 12; find S8 69. a1 8, r 32; find S7 70. a1 1, r 32; find S10 71. 2 6 18 p ; find S6 72. 2 8 32 p ; find S7 73. 16 8 4 p ; find S8 74. 4 12 36 p ; find S8 1 p ; find S9 75. 43 29 27
1 i1 5a b 4 i3
Determine whether the infinite geometric series has a finite sum. If so, find the limiting value.
89. 3 6 12 24 p 90. 4 8 16 32 p
4 9,
Find the indicated partial sum using the information given. Write all results in simplest form. 1 83. a2 5, a5 25 ; find S5
53,
1 j1 3a b 5 j1 8
82.
52. a1 2, an 1458, r 13
5 5 27 , 9,
k
k1
10
81.
2
78.
8
Find the number of terms in each sequence.
1041
93. 25 10 4 85 p 94. 10 2 2 2 p 5
25
95. 6 3 p 3 2
3 4
96. 49 172 117 2 p 97. 6 3 3 3 p 2
4
98. 10 5 54 p 5 2
99. 0.3 0.03 0.003 p 100. 0.63 0.0063 0.000063 p 101.
3 2 k a b k1 4 3
102.
1 i 5a b 2 i1
103.
2 j 9a b 3 j1
104.
4 k 12a b 3 k1
q
q
q
q
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WORKING WITH FORMULAS
105. Sum of the cubes of the first n natural numbers: n2(n 1)2 Sn 4 Compute 13 23 33 p 83 using the formula given. Then confirm the result by direct calculation.
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CHAPTER 11 Additional Topics in Algebra
106. Student loan payment: An P(1 r)n If P dollars is borrowed at an annual interest rate r with interest compounded annually, the amount of money to be paid back after n years is given by the indicated formula. Find the total amount of money that the student must repay to clear the loan, if $8000 is borrowed at 4.5% interest and the loan is paid back in 10 yr.
APPLICATIONS
107. Pendulum movement: On each swing, a pendulum travels only 80% as far as it did on the previous swing. If the first swing is 24 ft, how far does the pendulum travel on the 7th swing? What total distance is traveled before the pendulum comes to rest? 108. Pendulum movement: Ernesto is swinging to and fro on his backyard tire swing. Using his legs and body, he pumps each swing until reaching a maximum height, then suddenly relaxes until the swing comes to a stop. With each swing, Ernesto travels 75% as far as he did on the previous swing. If the first arc (or swing) is 30 ft, find the distance Ernesto travels on the 5th arc. What total distance will he travel before coming to rest?
111. Equipment aging: Tests have shown that the pumping power of a heavy-duty oil pump decreases by 3% per month. If the pump can move 160 gallons per minute (gpm) new, how many gpm can the pump move 8 months later? If the pumping rate falls below 118 gpm, the pump must be replaced. How many months until this pump is replaced? 112. Equipment aging: At the local mill, a certain type of saw blade can saw approximately 2 log-feet/sec when it is new. As time goes on, the blade becomes worn, and loses 6% of its cutting speed each week. How many log-feet/sec can the saw blade cut after 6 weeks? If the cutting speed falls below 1.2 logfeet/sec, the blade must be replaced. During what week of operation will this blade be replaced? 113. Population growth: At the beginning of the year 2000, the population of the United States was approximately 277 million. If the population is growing at a rate of 2.3% per year, what will the population be in 2010, 10 yr later?
109. Depreciation: A certain new SUV depreciates in value about 20% per year (meaning it holds 80% of its value each year). If the SUV is purchased for $46,000, how much is it worth 4 yr later? How many years until its value is less than $5000? 110. Depreciation: A new photocopier under heavy use will depreciate about 25% per year (meaning it holds 75% of its value each year). If the copier is purchased for $7000, how much is it worth 4 yr later? How many years until its value is less than $1246?
114. Population growth: The population of the Zeta Colony on Mars is 1000 people. Determine the population of the Colony 20 yr from now, if the population is growing at a constant rate of 5% per year. 115. Population growth: A biologist finds that the population of a certain type of bacteria doubles each half-hour. If an initial culture has 50 bacteria, what is the population after 5 hr? How long will it take for the number of bacteria to reach 204,800? 116. Population growth: Suppose the population of a “boom town” in the old west doubled every 2 months after gold was discovered. If the initial population was 219, what was the population 8 months later? How many months until the population exceeds 28,000?
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117. Elastic rebound: Megan discovers that a rubber ball dropped from a height of 2 m rebounds four-fifths of the distance it has previously fallen. How high does it rebound on the 7th bounce? How far does the ball travel before coming to rest? 118. Elastic rebound: The screen saver on my computer is programmed to send a colored ball vertically down the middle of the screen so that it rebounds 95% of the distance it last traversed. If the ball always begins at the top and the screen is 36 cm tall,
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how high does the ball bounce after its 8th rebound? How far does the ball travel before coming to rest (and a new screen saver starts)? 119. Creating a vacuum: To create a vacuum, a hand pump is used to remove the air from an air-tight cube with a volume of 462 in3. With each stroke of the pump, two-fifths of the air that remains in the cube is removed. How much air remains inside after the 5th stroke? How many strokes are required to remove all but 12.9 in3 of the air?
EXTENDING THE CONCEPT
120. As part of a science experiment, identical rubber balls are dropped from a certain height on these surfaces: slate, cement, and asphalt. When dropped on slate, the ball rebounds 80% of the height from which it last fell. On cement the figure is 75% and on asphalt the figure is 70%. The ball is dropped from 130 m on the slate, 175 m on the cement, and 200 m on the asphalt. Which ball has traveled the shortest total distance at the time of the fourth bounce? Which ball will travel farthest before coming to rest? 121. Consider the following situation. A person is hired at a salary of $40,000 per year, with a guaranteed raise of $1750 per year. At the same time, inflation is running about 4% per year. How many years until this person’s salary is overtaken and eaten up by the actual cost of living? 122. A standard piece of typing paper is approximately 0.001 in. thick. Suppose you were able to fold this
Section 11.3 Geometric Sequences
piece of paper in half 26 times. How thick would the result be? (a) As tall as a hare, (b) as tall as a hen, (c) as tall as a horse, (d) as tall as a house, or (e) over 1 mi high? Find the actual height by computing the 27th term of a geometric sequence. Discuss what you find. 123. Find an alternative formula for the sum n
Sn
log k, that does not use the sigma notation.
k1
124. Verify the following statements: a. If a1, a2, a3, p , an is a geometric sequence with r and a1 greater than zero, then log a1, log a2, log a3, p , log an is an arithmetic sequence. b. If a1, a2, a3, p , an is an arithmetic sequence, then 10a1, 10a2, p , 10an, is a geometric sequence.
MAINTAINING YOUR SKILLS
125. (1.5) Find the zeroes of f using the quadratic formula: f 1x2 x2 5x 9. 126. (7.3) Find a unit vector in the same direction as 3i 7j. 127. (4.6) Graph the rational function: x2 h1x2 x1
128. (5.1) The cars on the Millenium Ferris Wheel are 100 ft from the center axle. If the top speed of the wheel is 1.5 revolutions per minute, find the linear velocity of a passenger in a car. Round your answer to the nearest whole number. Also, give the velocity in miles per hour.
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11.4 Mathematical Induction Learning Objectives
Since middle school (or even before) we have accepted that, “The product of two negative numbers is a positive number.” But have you ever been asked to prove it? It’s not as easy as it seems. We may think of several patterns that yield the result, analogies that indicate its truth, or even number line illustrations that lead us to believe the statement. But most of us have never seen a proof (see www.mhhe.com/coburn). In this section, we introduce one of mathematics’ most powerful tools for proving a statement, called proof by induction.
In Section 11.4 you will learn how to:
A. Use subscript notation to evaluate and compose functions
B. Apply the principle of mathematical induction to sum formulas involving natural numbers
A. Subscript Notation and Composition of Functions One of the challenges in understanding a proof by induction is working with the notation. Earlier in the chapter, we introduced subscript notation as an alternative to function notation, since it is more commonly used when the functions are defined by a sequence. But regardless of the notation used, the functions can still be simplified, evaluated, composed, and even graphed. Consider the function f 1x2 3x2 1 and the sequence defined by an 3n2 1. Both can be evaluated and graphed, with the only difference being that f(x) is continuous with domain x , while an is discrete (made up of distinct points) with domain n .
C. Apply the principle of mathematical induction to general statements involving natural numbers
EXAMPLE 1
Solution
A. You’ve just learned how to use subscript notation to evaluate and compose functions
Using Subscript Notation for a Composition
For f 1x2 3x2 1 and an 3n2 1, find f 1k 12 and ak1. f 1k 12 31k 12 2 1 31k2 2k 12 1 3k2 6k 2
ak1 31k 12 2 1 31k2 2k 12 1 3k2 6k 2 Now try Exercises 7 through 18
No matter which notation is used, every occurrence of the input variable is replaced by the new value or expression indicated by the composition.
B. Mathematical Induction Applied to Sums Consider the sum of odd numbers 1 3 5 7 9 11 13 p . The sum of the first four terms is 1 3 5 7 16, or S4 16. If we now add a5 (the next term in line), would we get the same answer as if we had simply computed S5? Common sense would say, “Yes!” since S5 1 3 5 7 9 25 and S4 a5 16 9 25✓. In diagram form, we have add next term a5 9 to S4
>
1 3 5 7 9 11 13 15 p c c S4 S5
sum of 4 terms sum of 5 terms
Our goal is to develop this same degree of clarity in the notational scheme of things. For a given series, if we find the kth partial sum Sk (shown next) and then add the next term ak1, would we get the same answer if we had simply computed Sk1? In other words, is Sk ak1 Sk1 true?
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11-28
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add next term ak1
>
a1 a2 a3 p ak1 ak ak1 p an–1 an c c sum of k terms Sk sum of k 1 terms
Sk1
Now, let’s return to the sum 1 3 5 7 p 2n 1. This is an arithmetic series with a1 1, d 2, and nth term an 2n 1. Using the sum formula for an arithmetic sequence, an alternative formula for this sum can be established. Sn
n1a1 an 2 2
n11 2n 12 2
substitute 1 for a1 and 2n 1 for an
n12n2 2
simplify
n2
WORTHY OF NOTE No matter how distant the city or how many relay stations are involved, if the generating plant is working and the k th station relays to the (k 1)st station, the city will get its power.
summation formula for an arithmetic sequence
result
This shows that the sum of the first n positive odd integers is given by Sn n2. As a check we compute S5 1 3 5 7 9 25 and compare to S5 52 25✓. We also note S6 62 36, and S5 a6 25 11 36, showing S6 S5 a6. For more on this relationship, see Exercises 19 through 24. While it may seem simplistic now, showing S5 a6 S6 and Sk ak1 Sk1 (in general) is a critical component of a proof by induction. Unfortunately, general summation formulas for many sequences cannot be established from known formulas. In addition, just because a formula works for the first few values of n, we cannot assume that it will hold true for all values of n (there are infinitely many). As an illustration, the formula an n2 n 41 yields a prime number for every natural number n from 1 to 40, but fails to yield a prime for n 41. This helps demonstrate the need for a more conclusive proof, particularly when a relationship appears to be true, and can be “verified” in a finite number of cases, but whether it is true in all cases remains in question. Proof by induction is based on a relatively simple idea. To help understand how it works, consider n relay stations that are used to transport electricity from (k 1)st kth Generating plant a generating plant to a distant relay relay city. If we know the generating plant is operating, and if we assume that the kth relay station (any station in the series) is making the transfer to the 1k 12st station (the next station in the series), then we’re sure the city will have electricity. This idea can be applied mathematically as follows. Consider the statement, “The sum of the first n positive, even integers is n2 n.” In other words, 2 4 6 8 p 2n n2 n. We can certainly verify the statement for the first few even numbers: The first even number is 2 and . . . The sum of the first two even numbers is 2 4 6 and . . . The sum of the first three even numbers is 2 4 6 12 and . . . The sum of the first four even numbers is 2 4 6 8 20 and . . .
112 2 1 2 122 2 2 6
132 2 3 12 142 2 4 20
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While we could continue this process for a very long time (or even use a computer), no finite number of checks can prove a statement is universally true. To prove the statement true for all positive integers, we use a reasoning similar to that applied in the relay stations example. If we are sure the formula works for n 1 (the generating station is operating), and assume that if the formula is true for n k, it must also be true for n k 1 [the kth relay station is transferring electricity to the 1k 12st station], then the statement is true for all n (the city will get its electricity). The case where n 1 is called the base case of an inductive proof, and the assumption that the formula is true for n k is called the induction hypothesis. When the induction hypothesis is applied to a sum formula, we attempt to show that Sk ak1 Sk1. Since k and k 1 are arbitrary, the statement must be true for all n. Mathematical Induction Applied to Sums WORTHY OF NOTE To satisfy our finite minds, it might help to show that Sn is true for the first few cases, prior to extending the ideas to the infinite case.
EXAMPLE 2
Let Sn be a sum formula involving positive integers. If 1. S1 is true, and 2. the truth of Sk implies that Sk1 is true, then Sn must be true for all positive integers n. Both parts 1 and 2 must be verified for the proof to be complete. Since the process requires the terms Sk, ak1, and Sk1, we will usually compute these first.
Proving a Statement Using Mathematical Induction Use induction to prove that the sum of the first n perfect squares is given by n1n 12 12n 12 . 1 4 9 16 25 p n2 6
Solution
Given an n2 and Sn
n1n 1212n 12 , the needed components are . . . 6
For an n2: ak k2 For Sn
and
ak1 1k 12 2
n1n 12 12n 12 k1k 1212k 12 1k 121k 2212k 32 and Sk1 : Sk 6 6 6
1. Show Sn is true for n 1. n1n 1212n 12 6 1122132 S1 6 1✓
Sn
2. Assume Sk is true, 1 4 9 16 p k2
sum formula base case: n 1 result checks, the first term is 1
k1k 12 12k 12 6
⎫ ⎪ ⎪ ⎪ ⎪ ⎪ ⎪ ⎬ ⎪ ⎪ ⎪ ⎪ ⎪ ⎪ ⎭
⎫ ⎬ ⎭
and use it to show the truth of Sk1 follows. That is,
induction hypothesis: Sk is true
1k 121k 22 12k 32 6
Sk
ak1
Sk1
1 4 9 16 p k2 1k 12 2
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⎫ ⎪ ⎪ ⎪ ⎪ ⎪ ⎪ ⎬ ⎪ ⎪ ⎪ ⎪ ⎪ ⎪ ⎭
Working with the left-hand side, we have 1 4 9 16 p k2 1k 12 2
B. You’ve just learned how to apply the principle of mathematical induction to sum formulas involving natural numbers
k1k 12 12k 12 1k 12 2 6 k1k 12 12k 12 61k 12 2 6 1k 12 3 k12k 12 61k 12 4 6 1k 12 3 2k2 7k 64 6 1k 121k 22 12k 32 6
use the induction hypothesis: substitute k1k 12 12k 12 6
for 1 4 9 16 25 p k2
common denominator
factor out k 1
multiply and combine terms
factor the trinomial, result is Sk1✓
Since the truth of Sk1 follows from Sk, the formula is true for all n. Now try Exercises 27 through 38
C. The General Principle of Mathematical Induction Proof by induction can be used to verify many other kinds of relationships involving a natural number n. In this regard, the basic principles remain the same but are stated more broadly. Rather than having Sn represent a sum, we take it to represent any statement or relationship we might wish to verify. This broadens the scope of the proof and makes it more widely applicable, while maintaining its value to the sum formulas verified earlier. The General Principle of Mathematical Induction Let Sn be a statement involving natural numbers. If 1. S1 is true, and 2. the truth of Sk implies that Sk1 is also true then Sn must be true for all natural numbers n.
EXAMPLE 3
Proving a Statement Using the General Principle of Mathematical Induction Use the general principle of mathematical induction to show the statement Sn is true for all natural numbers n. Sn: 2n n 1
Solution
The statement Sn is defined as 2n n 1. This means that Sk is represented by 2k k 1 and Sk1 by 2k1 k 2. 1. Show Sn is true for n 1: Sn: 2n n 1 S1: 21 1 1 2 2✓
given statement base case: n 1 true
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Although not a part of the formal proof, a table of values can help to illustrate the relationship we’re trying to establish. It appears that the statement is true. n
1
2
3
4
5
n
2
4
8
16
32
2
3
4
5
6
2
n1
2. Assume that Sk is true, Sk: 2k k 1
induction hypothesis
and use it to show that the truth of Sk1. That is, Sk1: 2k1 k 2. Begin by working with the left-hand side of the inequality, 2k1. 2k1 212k 2
21k 12
2k 2
properties of exponents induction hypothesis: substitute k 1 for 2k (symbol changes since k 1 is less than 2k) distribute
WORTHY OF NOTE
Since k is a positive integer, 2k 2 k 2,
Note there is no reference to an, ak, or ak1 in the statement of the general principle of mathematical induction.
showing 2k1 k 2.
EXAMPLE 4
Since the truth of Sk1 follows from Sk, the formula is true for all n. Now try Exercises 39 through 42
Proving Divisibility Using Mathematical Induction Let Sn be the statement, “4n 1 is divisible by 3 for all positive integers n.” Use mathematical induction to prove that Sn is true.
Solution
If a number is evenly divisible by three, it can be written as the product of 3 and some positive integer we will call p.
1. Show Sn is true for n 1: Sn: S1:
4n 1 3p 4112 1 3p 3 3p✓
4n 1 3p, p substitute 1 for n statement is true for n 1
2. Assume that Sk is true . . . Sk: 4k 1 3p
induction hypothesis
4 3p 1 k
and use it to show the truth of Sk1. That is, Sk1: 4k1 1 3q for q is also true. Beginning with the left-hand side we have: 4k1 1 4 # 4k 1
4 # 13p 12 1 12p 3 314p 12 3q
properties of exponents induction hypothesis: substitute 3p 1 for 4k distribute and simplify factor
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The last step shows 4k1 1 is divisible by 3. Since the original statement is true for n 1, and the truth of Sk implies the truth of Sk1, the statement, “4n 1 is divisible by 3” is true for all positive integers n. Now try Exercises 43 through 47
C. You’ve just learned how to apply the principle of mathematical induction to general statements involving natural numbers
We close this section with some final notes. Although the base step of a proof by induction seems trivial, both the base step and the induction hypothesis are necessary 1 1 parts of the proof. For example, the statement n 6 is false for n 1, but true for 3 3n all other positive integers. Finally, for a fixed natural number p, some statements are false for all n 6 p, but true for all n p. By modifying the base case to begin at p, we can use the induction hypothesis to prove the statement is true for all n greater than p. For example, n 6 13 n2 is false for n 6 4, but true for all n 4.
11.4 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. No statement
number of verifications can prove a true.
2. Showing a statement is true for n 1 is called the of an inductive proof. 3. Assuming that a statement/formula is true for . n k is called the
4. The graph of a sequence is made up of distinct points.
, meaning it is
5. Explain the equation Sk ak1 Sk1. Begin by saying, “Since the kth term is arbitrary . . .” (continue from here). 6. Discuss the similarities and differences between mathematical induction applied to sums and the general principle of mathematical induction.
DEVELOPING YOUR SKILLS
For the given nth term an, find a4, a5, ak, and ak1.
7. an 10n 6 9. an n 11. an 2n1
8. an 6n 4 10. an 7n
12. an 213n1 2
For the given sum formula Sn, find S4, S5, Sk, and Sk1.
Verify that S4 a5 S5 for each exercise. These are identical to Exercises 13 through 18.
19. an 10n 6; Sn n15n 12 20. an 6n 4; Sn n13n 12 21. an n; Sn
n1n 12 2
13. Sn n15n 12
14. Sn n13n 12
n1n 12 15. Sn 2
7n1n 12 16. Sn 2
22. an 7n; Sn
17. Sn 2 1
18. Sn 3 1
24. an 213n1 2; Sn 3n 1
n
n
7n1n 12 2
23. an 2n1; Sn 2n 1
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WORKING WITH FORMULAS
25. Sum of the first n cubes (alternative form): (1 + 2 + 3 + 4 + p + n)2
26. Powers of the imaginary unit: in 4 in, where i = 1 1
Earlier we noted the formula for the sum of the n2 1n 12 2 . An alternative is given first n cubes was 4 by the formula shown. a. Verify the formula for n 1, 5, and 9. b. Verify the formula using n1n 12 123pn . 2
APPLICATIONS
Use mathematical induction to prove the indicated sum formula is true for all natural numbers n.
27. 2 4 6 8 10 p 2n; an 2n, Sn n1n 12 28. 3 7 11 15 19 p 14n 12; an 4n 1, Sn n12n 12 29. 5 10 15 20 25 p 5n; 5n1n 12 an 5n, Sn 2 30. 1 4 7 10 13 p 13n 22; n13n 12 an 3n 2, Sn 2 31. 5 9 13 17 p 14n 12; an 4n 1, Sn n12n 32 32. 4 12 20 28 36 p 18n 42; an 8n 4, Sn 4n2 33. 3 9 27 81 243 p 3n; 313n 12 n an 3 , Sn 2 34. 5 25 125 625 p 5n; 515n 12 an 5n, Sn 4 35. 2 4 8 16 32 64 p 2n; an 2n, Sn 2n1 2
Use a proof by induction to prove that powers of the imaginary unit are cyclic. That is, that they cycle through the numbers i, 1, i, and 1 for consecutive powers.
36. 1 8 27 64 125 216 p n3; n2 1n 12 2 an n3, Sn 4 37.
38.
1 1 1 1 p ; 1132 3152 5172 12n 1212n 12 1 n , Sn an 12n 12 12n 12 2n 1 1 1 1 1 p ; 1122 2132 3142 n1n 12 1 n an , Sn n1n 12 n1
Use the principle of mathematical induction to prove that each statement is true for all natural numbers n.
39. 3n 2n 1
40. 2n n 1
41. 3 # 4n1 4n 1
42. 4 # 5n1 5n 1
43. n2 7n is divisible by 2 44. n3 n 3 is divisible by 3 45. n3 3n2 2n is divisible by 3 46. 5n 1 is divisible by 4 47. 6n 1 is divisible by 5
EXTENDING THE THOUGHT
48. You may have noticed that the sum formula for the first n integers was quadratic, and the formula for the first n integer squares was cubic. Is the formula for the first n integer cubes, if it exists, a quartic (degree four) function? Use your calculator to run a quartic regression on the first five perfect cubes (enter 1
through 5 in L1 and the cumulative sums in L2). What did you find? Use proof by induction to show that the sum of the first n cubes is: n2 1n 12 2 n4 2n3 n2 1 8 27 p n3 . 4 4
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Mid-Chapter Check
49. Use mathematical induction to prove that xn 1 11 x x2 x3 p xn1 2. x1
1051
50. Use mathematical induction to prove that for 14 24 34 p n4, where an n4, n1n 12 12n 12 13n2 3n 12 . Sn 30
MAINTAINING YOUR SKILLS
51. (6.2) Verify the identity 1sin cos 2 2 1sin cos 2 2 2.
53. (2.1) State the equation of the circle whose graph is shown here.
52. (2.7) State the domain and range of the piecewise function shown here.
y 10 (1, 7) 8 6 (4, 3) 4 2
y 5 4 3 (1, 1) 2 1 54321 1 2 3 4 5
1 2 3
108642 2 4 6 8 10
5 x
(3, 2)
2 4 6 8 10 x
54. (7.4) Given p H13, 1I and q H1, 1I, find a. the dot product p # q b. the angle between the vectors
MID-CHAPTER CHECK c. sum of a finite geometric series d. summation formula for an arithmetic series e. nth term formula for a geometric series
In Exercises 1 to 3, the nth term is given. Write the first three terms of each sequence and find a9. 1. an 7n 4
2. an n2 3
3. an 112 n 12n 12 4
4. Evaluate the sum
3
n1
n1
5. Rewrite using sigma notation. 1 4 7 10 13 16 Match each formula to its correct description.
11. Identify a1 and the common difference d. Then find an expression for the general term an. a. 2, 5, 8, 11, . . . b. 32, 94, 3, 15 4 , ... Find the number of terms in each series and then find the sum. 12. 2 5 8 11 p 74 1 2
32 52 72 p 31 2
n1a1 an 2 6. Sn 2
13.
7. an a1rn1
15. For a geometric series, a3 81 and a7 1. Find S10.
a1 8. Sq 1r
9. an a1 1n 12d
a1 11 rn 2 1r a. sum of an infinite geometric series
10. Sn
b. nth term formula for an arithmetic series
14. For an arithmetic series, a3 8 and a7 4. Find S10.
16. Identify a1 and the common ratio r. Then find an expression for the general term an. 1 a. 2, 6, 18, 54, . . . b. 21, 14, 18, 16 ,... 17. Find the number of terms in the series then compute the sum. 1 1 1 p 81 54 18 6 2
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18. Find the infinite sum (if it exists). 49 172 112
117 2
p
19. Barrels of toxic waste are stacked at a storage facility in pyramid form, with 60 barrels in the first row, 59 in the second row, and so on, until there are 10 barrels in the top row. How many barrels are in the storage facility?
20. As part of a conditioning regimen, a drill sergeant orders her platoon to do 25 continuous standing broad jumps. The best of these recruits was able to jump 96% of the distance from the previous jump, with a first jump distance of 8 ft. Use a sequence/ series to determine the distance the recruit jumped on the 15th try, and the total distance traveled by the recruit after all 25 jumps.
REINFORCING BASIC CONCEPTS 12
Applications of Summation
IV:
The properties of summation play a large role in the development of key ideas in a first semester calculus course, and the following summation formulas are an integral part of these ideas. The first three formulas were verified in Section 11.4, while proof of the fourth was part of Exercise 48 on page 714. n n n1n 12 c cn i (1) (2) 2 i1 i1 2 n n n1n 12 12n 12 n 1n 12 2 i2 i3 (3) (4) 6 4 i1 i1
To see the various ways they can be applied consider the following. Illustration 1 Over several years, the owner of Morgan’s LawnCare has noticed that the company’s monthly profits (in thousands) can be approximated by the sequence an 0.0625n3 1.25n2 6n, with the points plotted in Figure 11.9 (the continuous graph is shown for effect only). Find the company’s approximate annual profit. Figure 11.9 12
0
12
0
Solution The most obvious approach would be to simply compute terms a1 through a12 (January through December) and find their sum: sum(seq(Y1, X, 1, 12) (see Section 11.1 Technology Highlight), which gives a result of 35.75 or $35,750. As an alternative, we could add the amount of profit earned by the company in the first 8 months, then add the amount the company lost (or broke even) during the last 4 months. In other words, we could apply summation property
8
a
n
12
a
n
a
n (see Figure 11.10), which gives
the same result: 42 16.252 35.75 or $35,750. Figure 11.10 i1
i1
i9
As a third option, we could use summation properties along with the appropriate summation formulas, and compute the result manually. Note the function is now written in terms of “i.” Distribute summations and factor out constants (properties II and III): 12
10.0625i
1.25i2 6i2
3
i1
12
0.0625
i
i1
3
12
1.25
i
2
i1
12
6
i
i1
Replace each summation with the appropriate summation formula, substituting 12 for n: n2 1n 12 2 n1n 1212n 12 0.0625 c d 1.25 c d 4 6 n1n 12 6c d 2 2 2 1122 11321252 1122 1132 d 1.25 c d 0.0625 c 4 6 1122 1132 d 6c 2 0.0625160842 1.2516502 61782 or 35.75 As we expected, the result shows profit was $35,750. While some approaches seem “easier” than others, all have great value, are applied in different ways at different times, and are necessary to adequately develop key concepts in future classes. Exercise 1: Repeat Illustration 1 if the profit sequence is an 0.125x3 2.5x2 12x.
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11.5 Counting Techniques Learning Objectives In Section 11.5 you will learn how to:
A. Count possibilities using lists and tree diagrams
B. Count possibilities using the fundamental principle of counting
How long would it take to estimate the number of fans sitting shoulder-to-shoulder at a sold-out basketball game? Well, it depends. You could actually begin counting 1, 2, 3, 4, 5, . . . , which would take a very long time, or you could try to simplify the process by counting the number of fans in the first row and multiplying by the number of rows. Techniques for “quick-counting” the objects in a set or various subsets of a large set play an important role in a study of probability.
A. Counting by Listing and Tree Diagrams
C. Quick-count distinguishable permutations
Consider the simple spinner shown in Figure 11.11, which is divided into three equal parts. What are the different possible outcomes for two spins, spin 1 followed by spin 2? We might begin by organizing the possibilities using a tree diagram. As the name implies, each choice or possibility appears as the branch of a tree, with the total possibilities being equal to the number of (unique) paths from the beginning point to the end of a branch. Figure 11.12 shows how the spinner exercise would appear (possibilities for two spins). Moving from top to bottom we can trace nine possible paths: AA, AB, AC, BA, BB, BC, CA, CB, and CC.
D. Quick-count nondistinguishable permutations
E. Quick-count using combinations
Figure 11.12
Figure 11.11
Begin B A
C A A
EXAMPLE 1
B
B C
A
B
C C
A
B
C
Listing Possibilities Using a Tree Diagram A basketball player is fouled and awarded three free throws. Let H represent the possibility of a hit (basket is made), and M the possibility of a miss. Determine the possible outcomes for the three shots using a tree diagram.
Solution
Each shot has two possibilities, hit (H) or miss (M), so the tree will branch in two directions at each level. As illustrated in the figure, there are a total of eight possibilities: HHH, HHM, HMH, HMM, MHH, MHM, MMH, and MMM. Begin
H
M
H H
WORTHY OF NOTE Sample spaces may vary depending on how we define the experiment, and for simplicity’s sake we consider only those experiments having outcomes that are equally likely.
11-37
M M
H
H M
H
M M
H
M
Now try Exercises 7 through 10
To assist our discussion, an experiment is any task that can be done repeatedly and has a well-defined set of possible outcomes. Each repetition of the experiment is called a trial. A sample outcome is any potential outcome of a trial, and a sample space is a set of all possible outcomes. In our first illustration, the experiment was spinning a spinner, there were three sample outcomes (A, B, or C), the experiment had two trials (spin 1 and spin 2), and 1053
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there were nine elements in the sample space. Note that after the first trial, each of the three sample outcomes will again have three possibilities (A, B, and C ). For two trials we have 32 9 possibilities, while three trials would yield a sample space with 33 27 possibilities. In general, we have A “Quick-Counting” Formula for a Sample Space If an experiment has N sample outcomes that are equally likely and the experiment is repeated t times, the number of elements in the sample space is N t.
EXAMPLE 2
Counting the Outcomes in a Sample Space Many combination locks have the digits 0 through 39 arranged along a circular dial. Opening the lock requires stopping at a sequence of three numbers within this range, going counterclockwise to the first number, clockwise to the second, and counterclockwise to the third. How many three-number combinations are possible?
Solution
A. You’ve just learned how to count possibilities using lists and tree diagrams
35
5 10
30
25 There are 40 sample outcomes 1N 402 in this experiment, and 20 three trials 1t 32. The number of possible combinations is identical to the number of elements in the sample space. The quick-counting formula gives 403 64,000 possible combinations.
15
Now try Exercises 11 and 12
B. Fundamental Principle of Counting The number of possible outcomes may differ depending on how the event is defined. For example, some security systems, license plates, and telephone numbers exclude certain numbers. For example, phone numbers cannot begin with 0 or 1 because these are reserved for operator assistance, long distance, and international calls. Constructing a three-digit area code is like filling in three blanks with three digit digit digit
digits. Since the area code must start with a number between 2 and 9, there are eight choices for the first blank. Since there are 10 choices for the second digit and 10 choices for the third, there are 8 # 10 # 10 800 possibilities in the sample space.
EXAMPLE 3
Counting Possibilities for a Four-Digit Security Code A digital security system requires that you enter a four-digit PIN (personal identification number), using only the digits 1 through 9. How many codes are possible if a. Repetition of digits is allowed? b. Repetition is not allowed? c. The first digit must be even and repetitions are not allowed?
Solution
a. Consider filling in the four blanks
digit digit digit digit
with the number of
ways the digit can be chosen. If repetition is allowed, the experiment is similar to that of Example 2 and there are N t 94 6561 possible PINs. b. If repetition is not allowed, there are only eight possible choices for the second digit of the PIN, then seven for the third, and six for the fourth. The number of possible PIN numbers decreases to 9 # 8 # 7 # 6 3024. c. There are four choices for the first digit (2, 4, 6, 8). Once this choice has been made there are eight choices for the second digit, seven for the third, and six for the last: 4 # 8 # 7 # 6 1344 possible codes. Now try Exercises 13 through 20
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Given any experiment involving a sequence of tasks, if the first task can be completed in p possible ways, the second task has q possibilities, and the third task has r possibilities, a tree diagram will show that the number of possibilities in the sample space for task1–task2–task3 is p # q # r. Even though the examples we’ve considered to this point have varied a great deal, this idea was fundamental to counting all possibilities in a sample space and is, in fact, known as the fundamental principle of counting (FPC).
WORTHY OF NOTE In Example 4, we could also reason that since there are 6! 720 random seating arrangements and 240 of them consist of Bob and Carol sitting together [Example 4(a)], the remaining 720 240 480 must consist of Bob and Carol not sitting together. More will be said about this type of reasoning in Section 11.6.
Fundamental Principle of Counting (Applied to Three Tasks) Given any experiment with three defined tasks, if there are p possibilities for the first task, q possibilities for the second, and r possibilities for the third, the total number of ways the experiment can be completed is p # q # r. This fundamental principle can be extended to include any number of tasks.
EXAMPLE 4
Counting Possibilities for Seating Arrangements Adrienne, Bob, Carol, Dax, Earlene, and Fabian bought tickets to see The Marriage of Figaro. Assuming they sat together in a row of six seats, how many different seating arrangements are possible if a. Bob and Carol are sweethearts and must sit together? b. Bob and Carol are enemies and must not sit together?
Solution
Figure 11.13 Bob 1
Carol 2
3
4
5
6
1
Bob 2
Carol 3
4
5
6
1
2
Bob 3
Carol 4
5
6
1
2
3
Bob 4
Carol 5
6
1
2
3
4
Bob 5
Carol 6
B. You’ve just learned how to count possibilities using the fundamental principle of counting
a. Since a restriction has been placed on the seating arrangement, it will help to divide the experiment into a sequence of tasks: task 1: they sit together; task 2: either Bob is on the left or Bob is on the right; and task 3: the other four are seated. Bob and Carol can sit together in five different ways, as shown in Figure 11.13, so there are five possibilities for task 1. There are two ways they can be side-by-side: Bob on the left and Carol on the right, as shown, or Carol on the left and Bob on the right. The remaining four people can be seated randomly, so task 3 has 4! 24 possibilities. Under these conditions they can be seated 5 # 2 # 4! 240 ways. b. This is similar to Part (a), but now we have to count the number of ways they can be separated by at least one seat: task 1: Bob and Carol are in nonadjacent seats; task 2: either Bob is on the left or Bob is on the right; and task 3: the other four are seated. For task 1, be careful to note there is no multiplication involved, just a simple counting. If Bob sits in seat 1, there are four nonadjacent seats. If Bob sits in seat 2, there are three nonadjacent seats, and so on. This gives 4 3 2 1 10 possibilities for Bob and Carol not sitting together. Task 2 and task 3 have the same number of possibilities as in Part (a), giving 10 # 2 # 4! 480 possible seating arrangements. Now try Exercises 21 through 28
C. Distinguishable Permutations In the game of Scrabble® (Milton Bradley), players attempt to form words by rearranging letters. Suppose a player has the letters P, S, T, and O at the end of the game. These letters could be rearranged or permuted to form the words POTS, SPOT, TOPS, OPTS, POST, or STOP. These arrangements are called permutations of the four letters. A permutation is any new arrangement, listing, or sequence of objects obtained by changing an existing order. A distinguishable permutation is a permutation that produces a result different from the original. For example, a distinguishable permutation of the digits in the number 1989 is 8199. Example 4 considered six people, six seats, and the various ways they could be seated. But what if there were fewer seats than people? By the FPC, with six people
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and four seats there could be 6 # 5 # 4 # 3 360 different arrangements, with six people and three seats there are 6 # 5 # 4 120 different arrangements, and so on. These rearrangements are called distinguishable permutations. You may have noticed that for six people and six seats, we used all six factors of 6!, while for six people and four seats we used the first four, six people and three seats required only the first three, and so on. Generally, for n people and r seats, the first r factors of n! will be used. The notation and formula for distinguishable permutations of n objects taken r at a time is n! . By defining 0! 1, the formula includes the case where all n objects nPr 1n r2! n! n! n! n!. are selected, which of course results in nPn 1n n2! 0! 1 Distinguishable Permutations: Unique Elements If r objects are selected from a set containing n unique elements 1r n2 and placed in an ordered arrangement, the number of distinguishable permutations is n! or nPr n1n 121n 22 # # # 1n r 12 nPr 1n r2!
EXAMPLE 5
Computing a Permutation Compute each value of nPr using the methods just described. a. 7P4 b. 10P3
Solution
n! Begin by evaluating each expression using the formula nPr , noting the 1n r2! third line (in bold) gives the first r factors of n!. 7! 10! a. 7P4 b. 10P3 17 42! 110 32! 7 # 6 # 5 # 4 # 3! 10 # 9 # 8 # 7! 3! 7! # # # # 7 6 5 4 10 9 # 8 840 720 Now try Exercises 29 through 36
EXAMPLE 6
Counting the Possibilities for Finishing a Race As part of a sorority’s initiation process, the nine new inductees must participate in a 1-mi race. Assuming there are no ties, how many first- through fifth-place finishes are possible if it is well known that Mediocre Mary will finish fifth and Lightning Louise will finish first?
Solution
To help understand the situation, we can diagram the possibilities for finishing first through fifth. Since Louise will finish first, this slot can be filled in only one way, Louise by Louise herself. The same goes for Mary and her fifth-place finish: 1st Mary 2nd
C. You’ve just learned how to quick-count distinguishable permutations
3rd
4th
5th
. The remaining three slots can be filled in 7P3 7 # 6 # 5
different ways, indicating that under these conditions, there are 1 # 7 # 6 # 5 # 1 210 different ways to finish. Now try Exercises 37 through 42
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D. Nondistinguishable Permutations As the name implies, certain permutations are nondistinguishable, meaning you cannot tell one apart from another. Such is the case when the original set contains elements or sample outcomes that are identical. Consider a family with four children, Lyddell, Morgan, Michael, and Mitchell, who are at the photo studio for a family picture. Michael and Mitchell are identical twins and cannot be told apart. In how many ways can they be lined up for the picture? Since this is an ordered arrangement of four children taken from a group of four, there are 4P4 24 ways to line them up. A few of them are Lyddell Morgan Michael Mitchell Lyddell Michael Morgan Mitchell Michael Lyddell Morgan Mitchell
Lyddell Morgan Mitchell Michael Lyddell Mitchell Morgan Michael Mitchell Lyddell Morgan Michael
But of these six arrangements, half will appear to be the same picture, since the difference between Michael and Mitchell cannot be distinguished. In fact, of the 24 total permutations, every picture where Michael and Mitchell have switched places will be nondistinguishable. To find the distinguishable permutations, we need to take the total permutations (4P4) and divide by 2!, the number of ways the twins can be 24 4P4 12 distinguishable pictures. permuted: 122! 2 These ideas can be generalized and stated in the following way. WORTHY OF NOTE
Nondistinguishable Permutations: Nonunique Elements
In Example 7, if a Scrabble player is able to play all seven letters in one turn, he or she “bingos” and is awarded 50 extra points. The player in Example 7 did just that. Can you determine what word was played?
In a set containing n elements where one element is repeated p times, another is repeated q times, and another is repeated r times 1p q r n2, the number of nondistinguishable permutations is n! nPn p!q!r! p!q!r! The idea can be extended to include any number of repeated elements.
EXAMPLE 7
Counting Distinguishable Permutations A Scrabble player has the seven letters S, A, O, O, T, T, and T in his rack. How many distinguishable arrangements can be formed as he attempts to play a word?
Solution D. You’ve just learned how to quick-count nondistinguishable permutations
Essentially the exercise asks for the number of distinguishable permutations of the seven letters, given T is repeated three times and O is repeated twice. There are 7P7 420 distinguishable permutations. 3!2! Now try Exercises 43 through 54
E. Combinations Similar to nondistinguishable permutations, there are other times the total number of permutations must be reduced to quick-count the elements of a desired subset. Consider a vending machine that offers a variety of 40¢ candies. If you have a quarter (Q), dime (D), and nickel (N), the machine wouldn’t care about the order the coins were deposited. Even though QDN, QND, DQN, DNQ, NQD, and NDQ give the 3P3 6 possible permutations, the machine considers them as equal and will vend your snack. Using sets, this is similar to saying the set A 5X, Y, Z6 has only one subset with three elements, since {X, Z, Y}, {Y, X, Z}, {Y, Z, X}, and so on, all represent the same set. Similarly, there are six, two-letter permutations of X, Y, and Z 1 3P2 62: XY, XZ, YX,
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YZ, ZX, and ZY, but only three two-letter subsets: {X, Y}, {X, Z} and {Y, Z}. When permutations having the same elements are considered identical, the result is the number of possible combinations and is denoted nCr. Since the r objects can be selected in r! nPr ways, we divide nPr by r! to “quick-count” the number of possibilities: nCr , r! which can be thought of as the first r factors of n!, divided by r!. By substituting n! for nPr in this formula, we find an alternative method for computing nCr is 1n r2! n! . Take special note that when r objects are selected from a set with n r!1n r2! elements and the order they’re listed is unimportant (because you end up with the same subset), the result is a combination, not a permutation. Combinations The number of combinations of n objects taken r at a time is given by n! nPr or nCr nCr r! r!1n r2!
EXAMPLE 8
Computing Combinations Using a Formula Compute each value of nCr given. a. 7C4 b. 8C3
Solution
7#6#5#4 4! 35
a. 7C4
c. 5C2 8#7#6 3! 56
b. 8C3
5#4 2! 10
c. 5C2
Now try Exercises 55 through 64
EXAMPLE 9
Applications of Combinations-Lottery Results A small city is getting ready to draw five Ping-Pong balls of the nine they have numbered 1 through 9 to determine the winner(s) for its annual raffle. If a ticket holder has the same five numbers, they win. In how many ways can the winning numbers be drawn?
Solution
Since the winning numbers can be drawn in any order, we have a combination of 9 things taken 5 at a time. The five numbers can be 9#8#7#6#5 126 ways. drawn in 9C5 5! Now try Exercises 65 and 66
Somewhat surprisingly, there are many situations where the order things are listed is not important. Such situations include • The formation of committees, since the order people volunteer is unimportant • Card games with a standard deck, since the order cards are dealt is unimportant • Playing BINGO, since the order the numbers are called is unimportant When the order in which people or objects are selected from a group is unimportant, the number of possibilities is a combination, not a permutation. Another way to tell the difference between permutations and combinations is the following memory device: Permutations have Priority or Precedence; in other
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words, the Position of each element matters. By contrast, a Combination is like a Committee of Colleagues or Collection of Commoners; all members have equal rank. For permutations, a-b-c is different from b-a-c. For combinations, a-b-c is the same as b-a-c.
EXAMPLE 10
Applications of Quick-Counting — Committees and Government The Sociology Department of Lakeside Community College has 12 dedicated faculty members. (a) In how many ways can a three-member textbook selection committee be formed? (b) If the department is in need of a Department Chair, Curriculum Chair, and Technology Chair, in how many ways can the positions be filled?
Solution
E. You’ve just learned how to quick-count using combinations
a. Since textbook selection depends on a Committee of Colleagues, the order members are chosen is not important. This is a Combination of 12 people taken 3 at a time, and there are 12C3 220 ways the committee can be formed. b. Since those selected will have Position or Priority, this is a Permutation of 12 people taken 3 at a time, giving 12P3 1320 ways the positions can be filled. Now try Exercises 67 through 78
The Exercise Set contains a wide variety of additional applications. See Exercises 81 through 107.
TECHNOLOGY HIGHLIGHT
Calculating Permutations and Combinations Both the nPr and nCr functions are Figure 11.15 Figure 11.14 accessed using the MATH key and the PRB submenu (see Figure 11.14). To compute the permutations of 12 objects taken 9 at a time (12P9), clear the home screen and enter a 12, then press MATH 2:nPr to access the nPr operation, which is automatically pasted on the home screen after the 12. Now enter a 9, press ENTER and a result of 79833600 is displayed (Figure 11.15). Repeat the sequence to compute the value of 12C9 ( MATH 3:nCr). Note that the value of 12P9 is nPr much larger than 12C9 and that they differ by a factor of 9! since nCr . r! Exercise 1: The Department of Humanities has nine faculty members who must serve on at least one committee per semester. How many different committees can be formed that have (a) two members, (b) three members, (c) four members, and (d) five members? Exercise 2: A certain state places 45 Ping-Pong balls numbered 1 through 45 in a container, then draws out five to form the winning lottery numbers. How many different ways can the five numbers be picked? Exercise 3: Dairy King maintains six different toppings at a self-service counter, so that customers can top their ice cream sundaes with as many as they like. How many different sundaes can be created if a customer were to select any three ingredients?
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11.5 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. A(n) has a(n)
is any task that can be repeated and set of possible outcomes.
2. If an experiment has N equally likely outcomes and is repeated t times, the number of elements in the sample space is given by . 3. When unique elements of a set are rearranged, the result is called a(n) permutation.
4. If some elements of a group are identical, certain rearrangements are identical and the result is a(n) permutation. 5. A three-digit number is formed from digits 1 to 9. Explain how forming the number with repetition differs from forming it without repetition. 6. Discuss/Explain the difference between a permutation and a combination. Try to think of new ways to help remember the distinction.
DEVELOPING YOUR SKILLS 7. For the spinner shown here, (a) draw a tree diagram illustrating all possible outcomes for two spins and (b) create an ordered list showing all possible outcomes for two spins. Heads 8. For the fair coin shown here, (a) draw a tree diagram illustrating all possible outcomes for four flips and (b) create an ordered list showing the possible outcomes for four flips.
14. Repetition is not allowed? Z
W
Y
X
Tails
9. A fair coin is flipped five times. If you extend the tree diagram from Exercise 8, how many elements are in the sample space? 10. A spinner has the two equally likely outcomes A or B and is spun four times. How is this experiment related to the one in Exercise 8? How many elements are in the sample space? 11. An inexpensive lock uses the numbers 0 to 24 for a three-number combination. How many different combinations are possible? 12. Grades at a local college consist of A, B, C, D, F, and W. If four classes are taken, how many different report cards are possible? License plates. In a certain (English-speaking) country, license plates for automobiles consist of two letters followed by one of four symbols (■, ◆, ❍, or ●), followed by three digits. How many license plates are possible if
13. Repetition is allowed?
15. A remote access door opener requires a five-digit (1–9) sequence. How many sequences are possible if (a) repetition is allowed? (b) repetition is not allowed? 16. An instructor is qualified to teach Math 020, 030, 140, and 160. How many different four-course schedules are possible if (a) repetition is allowed? (b) repetition is not allowed? Use the fundamental principle of counting and other quick-counting techniques to respond.
17. Menu items: At Joe’s Diner, the manager is offering a dinner special that consists of one choice of entree (chicken, beef, soy meat, or pork), two vegetable servings (corn, carrots, green beans, peas, broccoli, or okra), and one choice of pasta, rice, or potatoes. How many different meals are possible? 18. Getting dressed: A frugal businessman has five shirts, seven ties, four pairs of dress pants, and three pairs of dress shoes. Assuming that all possible arrangements are appealing, how many different shirt-tie-pants-shoes outfits are possible? 19. Number combinations: How many four-digit numbers can be formed using the even digits 0, 2, 4, 6, 8, if (a) no repetitions are allowed; (b) repetitions are allowed; (c) repetitions are not allowed and the number must be less than 6000 and divisible by 10. 20. Number combinations: If I was born in March, April, or May, after the 19th but before the 30th,
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and after 1949 but before 1981, how many different MM–DD–YYYY dates are possible for my birthday? Seating arrangements: William, Xayden, York, and Zelda decide to sit together at the movies. How many ways can they be seated if
21. They sit in random order? 22. York must sit next to Zelda? 23. York and Zelda must be on the outside? 24. William must have the aisle seat? Course schedule: A college student is trying to set her schedule for the next semester and is planning to take five classes: English, art, math, fitness, and science. How many different schedules are possible if
25. The classes can be taken in any order. 26. She wants her science class to immediately follow her math class. 27. She wants her English class to be first and her fitness class to be last. 28. She can’t decide on the best order and simply takes the classes in alphabetical order. Find the value of nPr in two ways: (a) compute r factors n! of n! and (b) use the formula nPr . 1n r2!
29.
10P3
32. 5P3
30.
12P2
33. 8P7
35. T, R, and A
40. From a pool of 32 applicants, a board of directors must select a president, vice-president, labor relations liaison, and a director of personnel for the company’s day-to-day operations. Assuming all applicants are qualified and willing to take on any of these positions, how many ways can this be done? 41. A hugely popular chess tournament now has six finalists. Assuming there are no ties, (a) in how many ways can the finalists place in the final round? (b) In how many ways can they finish first, second, and third? (c) In how many ways can they finish if it’s sure that Roberta Fischer is going to win the tournament and that Geraldine Kasparov will come in sixth? 42. A field of 10 horses has just left the paddock area and is heading for the gate. Assuming there are no ties in the big race, (a) in how many ways can the horses place in the race? (b) In how many ways can they finish in the win, place, or show positions? (c) In how many ways can they finish if it’s sure that John Henry III is going to win, Seattle Slew III will come in second (place), and either Dumb Luck II or Calamity Jane I will come in tenth? Assuming all multiple births are identical and the children cannot be told apart, how many distinguishable photographs can be taken of a family of six, if they stand in a single row and there is
43. one set of twins 44. one set of triplets
31. 9P4
45. one set of twins and one set of triplets
34. 8P1
46. one set of quadruplets
Determine the number of three-letter permutations of the letters given, then use an organized list to write them all out. How many of them are actually words or common names?
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47. How many distinguishable numbers can be made by rearranging the digits of 105,001? 48. How many distinguishable numbers can be made by rearranging the digits in the palindrome 1,234,321?
36. P, M, and A
37. The regional manager for an office supply store needs to replace the manager and assistant manager at the downtown store. In how many ways can this be done if she selects the personnel from a group of 10 qualified applicants? 38. The local chapter of Mu Alpha Theta will soon be electing a president, vice-president, and treasurer. In how many ways can the positions be filled if the chapter has 15 members? 39. The local school board is going to select a principal, vice-principal, and assistant viceprincipal from a pool of eight qualified candidates. In how many ways can this be done?
How many distinguishable permutations can be formed from the letters of the given word?
49. logic
50. leave
51. lotto
52. levee
A Scrabble player (see Example 7) has the six letters shown remaining in her rack. How many distinguishable, six-letter permutations can be formed? (If all six letters are played, what was the word?)
53. A, A, A, N, N, B 54. D, D, D, N, A, E
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nPr (r factors of n! Find the value of nCr: (a) using nCr r! n! . over r!) and (b) using nCr r!1n r2!
55. 9C4
56.
58. 6C3
59. 6C6
10C3
57. 8C5 60. 6C0
Use a calculator to verify that each pair of combinations is equal.
61. 9C4, 9C5
62.
63. 8C5, 8C3
64. 7C2, 7C5
10C3, 10C7
65. A platoon leader needs to send four soldiers to do some reconnaissance work. There are 12 soldiers in the platoon and each soldier is assigned a number between 1 and 12. The numbers 1 through 12 are placed in a helmet and drawn randomly. If a soldier’s number is drawn, then that soldier goes on the mission. In how many ways can the reconnaissance team be chosen? 66. Seven colored balls (red, indigo, violet, yellow, green, blue, and orange) are placed in a bag and three are then withdrawn. In how many ways can the three colored balls be drawn? 67. When the company’s switchboard operators went on strike, the company president asked for three volunteers from among the managerial ranks to temporarily take their place. In how many ways can the three volunteers “step forward,” if there are 14 managers and assistant managers in all? 68. Becky has identified 12 books she wants to read this year and decides to take four with her to read while on vacation. She chooses Pastwatch by Orson Scott Card for sure, then decides to randomly choose any three of the remaining books. In how many ways can she select the four books she’ll end up taking? 69. A new garage band has built up their repertoire to 10 excellent songs that really rock. Next month they’ll be playing in a Battle of the Bands contest, with the
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winner getting some guaranteed gigs at the city’s most popular hot spots. In how many ways can the band select 5 of their 10 songs to play at the contest? 70. Pierre de Guirré is an award-winning chef and has just developed 12 delectable, new main-course recipes for his restaurant. In how many ways can he select three of the recipes to be entered in an international culinary competition? For each exercise, determine whether a permutation, a combination, counting principles, or a determination of the number of subsets is the most appropriate tool for obtaining a solution, then solve. Some exercises can be completed using more than one method.
71. In how many ways can eight second-grade children line up for lunch? 72. If you flip a fair coin five times, how many different outcomes are possible? 73. Eight sprinters are competing for the gold, silver, and bronze medals. In how many ways can the medals be awarded? 74. Motorcycle license plates are made using two letters followed by three numbers. How many plates can be made if repetition of letters (only) is allowed? 75. A committee of five students is chosen from a class of 20 to attend a seminar. How many different ways can this be done? 76. If onions, cheese, pickles, and tomatoes are available to dress a hamburger, how many different hamburgers can be made? 77. A caterer offers eight kinds of fruit to make various fruit trays. How many different trays can be made using four different fruits? 78. Eighteen females try out for the basketball team, but the coach can only place 15 on her roster. How many different teams can be formed?
WORKING WITH FORMULAS
79. Stirling’s Formula: n! 12 # 1nn0.5 2 # en Values of n! grow very quickly as n gets larger (13! is already in the billions). For some applications, scientists find it useful to use the approximation for n! shown, called Stirling’s Formula. a. Compute the value of 7! on your calculator, then use Stirling’s Formula with n 7. By what percent does the approximate value differ from the true value? b. Compute the value of 10! on your calculator, then use Stirling’s Formula with n 10. By
what percent does the approximate value differ from the true value? 80. Factorial formulas: For n, k , where n 7 k, n! n1n 12 1n 22 p 1n k 12 1n k2! a. Verify the formula for n 7 and k 5. b. Verify the formula for n 9 and k 6.
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APPLICATIONS
81. Yahtzee: In the game of “Yahtzee”® (Milton Bradley) five dice are rolled simultaneously on the first turn in an attempt to obtain various arrangements (worth various point values). How many different arrangements are possible? 82. Twister: In the game of “Twister”® (Milton Bradley) a simple spinner is divided into four quadrants designated Left Foot (LF), Right Hand (RH), Right Foot (RF), and Left Hand (LH), with four different color possibilities in each quadrant (red, green, yellow, blue). Determine the number of possible outcomes for three spins. 83. Clue: In the game of “Clue”® (Parker Brothers) a crime is committed in one of nine rooms, with one of six implements, by one of six people. In how many different ways can the crime be committed? Phone numbers in North America have 10 digits: a threedigit area code, a three-digit exchange number, and the four final digits that make each phone number unique. Neither area codes nor exchange numbers can start with 0 or 1. Prior to 1994 the second digit of the area code had to be a 0 or 1. Sixteen area codes are reserved for special services (such as 911 and 411). In 1994, the last area code was used up and the rules were changed to allow the digits 2 through 9 as the middle digit in area codes.
84. How many different area codes were possible prior to 1994? 85. How many different exchange numbers were possible prior to 1994? 86. How many different phone numbers were possible prior to 1994? 87. How many different phone numbers were possible after 1994? Aircraft N-numbers: In the United States, private aircraft are identified by an “N-Number,” which is generally the letter “N” followed by five characters and includes these restrictions: (1) the N-Number can consist of five digits, four digits followed by one letter, or three digits followed by two letters; (2) the first digit cannot be a zero; (3) to avoid confusion with the numbers zero and one, the letters O and I cannot be used; and (4) repetition of digits and letters is allowed. How many unique N-Numbers can be formed
88. that have four digits and one letter? 89. that have three digits and two letters?
90. that have five digits? 91. that have three digits, two letters with no repetitions of any kind allowed? Seating arrangements: Eight people would like to be seated. Assuming some will have to stand, in how many ways can the seats be filled if the number of seats available is
92. eight
93. five
94. three
95. one
Seating arrangements: In how many different ways can eight people (six students and two teachers) sit in a row of eight seats if
96. the teachers must sit on the ends 97. the teachers must sit together Television station programming: A television station needs to fill eight half-hour slots for its Tuesday evening schedule with eight programs. In how many ways can this be done if
98. there are no constraints 99. Seinfeld must have the 8:00 P.M. slot 100. Seinfeld must have the 8:00 P.M. slot and The Drew Carey Show must be shown at 6:00 P.M. 101. Friends can be aired at 7:00 or 9:00 P.M. and Everybody Loves Raymond can be aired at 6:00 or 8:00 P.M. Scholarship awards: Fifteen students at Roosevelt Community College have applied for six available scholarship awards. How many ways can the awards be given if
102. there are six different awards given to six different students 103. there are six identical awards given to six different students Committee composition: The local city council has 10 members and is trying to decide if they want to be governed by a committee of three people or by a president, vicepresident, and secretary.
104. If they are to be governed by committee, how many unique committees can be formed? 105. How many different president, vice-president, and secretary possibilities are there?
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106. Team rosters: A soccer team has three goalies, eight defensive players, and eight forwards on its roster. How many different starting line-ups can be formed (one goalie, three defensive players, and three forwards)? 107. e-mail addresses: A business wants to standardize the e-mail addresses of its
employees. To make them easier to remember and use, they consist of two letters and two digits (followed by @esmtb.com), with zero being excluded from use as the first digit and no repetition of letters or digits allowed. Will this provide enough unique addresses for their 53,000 employees worldwide?
EXTENDING THE CONCEPT
108. In Exercise 79, we learned that an approximation for n! can be found using Stirling’s Formula: n! 121nn0.5 2en. As with other approximations, mathematicians are very interested in whether the approximation gets better or worse for larger values of n (does their ratio get closer to 1 or farther from 1). Use your calculator to investigate and answer the question. 109. Verify that the following equations are true, then generalize the patterns and relationships noted to create your own equation. Afterward, write each of the four factors from Part (a) (the two combinations on each side) in expanded form and discuss/explain why the two sides are equal. a. 10C3 # 7C2 10C2 # 8C5 b. 9C3 # 6C2 9C2 # 7C4
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c. 11C4 # 7C5 11C5 # 6C4 d. 8C3 # 5C2 8C2 # 6C3 110. Tic-Tac-Toe: In the game Tic-Tac-Toe, players alternately write an “X” or an “O” in one of nine squares on a 3 3 grid. If either player gets three in a row horizontally, vertically, or diagonally, that player wins. If all nine squares are played with neither person winning, the game is a draw. Assuming “X” always goes first, a. How many different “boards” are possible if the game ends after five plays? b. How many different “boards” are possible if the game ends after six plays?
MAINTAINING YOUR SKILLS
111. (5.4) Solve the given system of linear inequalities by graphing. Shade the feasible region. 2x y 6 6 x 2y 6 6 μ x0 y0 12 , determine the other five 13 trig functions of the acute angle .
112. (5.2) Given sin
113. (6.3) Rewrite cos122cos132 sin122sin132 as a single expression. 114. (7.3) Graph the hyperbola that is defined by 1y 32 2 1x 22 2 1. 4 9
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11.6 Introduction to Probability Learning Objectives
There are few areas of mathematics that give us a better view of the world than probability and statistics. Unlike statistics, which seeks to analyze and interpret data, probability (for our purposes) attempts to use observations and data to make statements concerning the likelihood of future events. Such predictions of what might happen have found widespread application in such diverse fields as politics, manufacturing, gambling, opinion polls, product life, and many others. In this section, we develop the basic elements of probability.
In Section 11.6 you will learn how to:
A. Define an event on a sample space
B. Compute elementary probabilities
C. Use certain properties of probability
A. Defining an Event
D. Compute probabilities
In Section 11.5 we defined the following terms: experiment and sample outcome. Flipping a coin twice in succession is an experiment, and two sample outcomes are HH and HT. An event E is any designated set of sample outcomes, and is a subset of the sample space. One event might be E1: (two heads occur), another possibility is E2: (at least one tail occurs).
using quick-counting techniques
E. Compute probabilities involving nonexclusive events
EXAMPLE 1
Stating a Sample Space and Defining an Event Consider the experiment of rolling one standard, six-sided die (plural is dice). State the sample space S and define any two events relative to S.
Solution
A. You’ve just learned how to define an event on a sample space
S is the set of all possible outcomes, so S 51, 2, 3, 4, 5, 66. Two possible events are E1: (a 5 is rolled) and E2: (an even number is rolled). Now try Exercises 7 through 10
WORTHY OF NOTE
B. Elementary Probability
Our study of probability will involve only those sample spaces with events that are equally likely.
When rolling the die, we know the result can be any of the six equally likely outcomes in the sample space, so the chance of E1:(a five is rolled) is 16. Since three of the elements in S are even numbers, the chance of E2:(an even number is rolled) is 36 12. This suggests the following definition. The Probability of an Event E Given S is a sample space of equally likely events and E is an event relative to S, the probability of E, written P(E), is computed as n1E2 P1E2 n1S2 where n(E) represents the number of elements in E, and n(S) represents the number of elements in S. A standard deck of playing cards consists of 52 cards divided in four groups or suits. There are 13 hearts (♥), 13 diamonds 12, 13 spades (♠), and 13 clubs (♣). As you can see in the illustration, each of the 13 cards in a suit is labeled 2, 3, 4, 5, 6, 7, 8, 9, 10, J, Q, K, and A. Also notice that 26 of the cards are red (hearts and diamonds), 26 are black (spades and clubs) and 12 of the cards are “face cards” (J, Q, K of each suit).
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EXAMPLE 2
Stating a Sample Space and the Probability of a Single Outcome A single card is drawn from a well-shuffled deck. Define S and state the probability of any single outcome. Then define E as a King is drawn and find P(E).
Solution
Sample space: S 5the 52 cards6 . There are 52 equally likely outcomes, 1 so the probability of any one outcome is 52 . Since S has four Kings, n1E2 4 or about 0.077. P1E2 n1S2 52
Now try Exercises 11 through 14
EXAMPLE 3
Stating a Sample Space and the Probability of a Single Outcome A family of five has two girls and three boys named Sophie, Maria, Albert, Isaac, and Pythagoras. Their ages are 21, 19, 15, 13, and 9, respectively. One is to be selected randomly. Find the probability a teenager is chosen.
Solution
B. You’ve just learned how to compute elementary probabilities
The sample space is S 59, 13, 15, 19, 216. Three of the five are teenagers, meaning the probability is 35, 0.6, or 60%.
Now try Exercises 15 and 16
C. Properties of Probability A study of probability necessarily includes recognizing some basic and fundamental properties. For example, when a fair die is rolled, what is P(E) if E is defined as a 1, 2, 3, 4, 5, or 6 is rolled? The event E will occur 100% of the time, since 1, 2, 3, 4, 5, 6 are the only possibilities. In symbols we write P(outcome is in the sample space) or simply P1S2 1 (100%). What percent of the time will a result not in the sample space occur? Since the die has only the six sides numbered 1 through 6, the probability of rolling something else is zero. In symbols, P1outcome is not in sample space2 0 or simply P1~S2 0.
WORTHY OF NOTE In probability studies, the tilde “~” acts as a negation symbol. For any event E defined on the sample space, ~E means the event does not occur.
EXAMPLE 4
Properties of Probability Given sample space S and any event E defined relative to S. 1. P1S2 1
2. P1~S2 0
3. 0 P1E2 1
Determining the Probability of an Event A game is played using a spinner like the one shown. Determine the probability of the following events: E1: A nine is spun.
Solution
2
3 4
1
E2: An integer greater than 0 and less than 9 is spun.
8
5 7
6
The sample space consists of eight equally likely outcomes. P1E1 2
0 0 8
P1E2 2
8 1. 8
Technically, E1: A nine is spun is not an “event,” since it is not in the sample space and cannot occur, while E2 contains the entire sample space and must occur. Now try Exercises 17 and 18
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Because we know P1S2 1 and all sample outcomes are equally likely, the probabilities of all single events defined on the sample space must sum to 1. For the experiment of rolling a fair die, the sample space has six outcomes that are equally likely. Note that P112 P122 P132 P142 P152 P162 16, and 16 16 16 16 16 16 1. Probability and Sample Outcomes Given a sample space S with n equally likely sample outcomes s1, s2, s3, . . . , sn. n
P1s 2 P1s 2 P1s 2 P1s 2 i
1
2
3
i1
# # #
P1sn 2 1
The complement of an event E is the set of sample outcomes in S not contained in E. Symbolically, ~E is the complement of E. Probability and Complementary Events Given sample space S and any event E defined relative to S, the complement of E, written ~E, is the set of all outcomes not in E and: 1. P1E2 1 P1~E2
EXAMPLE 5
2. P1E2 P1~E2 1
Stating a Probability Using Complements Use complementary events to answer the following questions: a. A single card is drawn from a well-shuffled deck. What is the probability that it is not a diamond? b. A single letter is picked at random from the letters in the word “divisibility.” What is the probability it is not an “i”?
Solution
WORTHY OF NOTE Probabilities can be written in fraction form, decimal form, or as a percent. For P(E2) from Example 1, the probability is 3 4 , 0.75, or 75%.
EXAMPLE 6
a. Since there are 13 diamonds in a standard 52-card deck, there are 39 39 nondiamonds: P1~D2 1 P1D2 1 13 52 52 0.75. b. Of the 12 letters in d-i-v-i-s-i-b-i-l-i-t-y, 5 are “i’s.” This means 5 7 P1~i2 1 P1i2, or 1 12 12 . The probability of choosing a letter other than i is 0.583. Now try Exercises 19 through 22
Stating a Probability Using Complements Inter-Island Waterways has just opened hydrofoil service between several islands. The hydrofoil is powered by two engines, one forward and one aft, and will operate if either of its two engines is functioning. Due to testing and past experience, the company knows the probability of the aft engine failing is P1aft engine fails2 0.05, the probability of the forward engine failing is P1forward engine fails2 0.03, and the probability that both fail is P1both engines simultaneously fail2 0.012. What is the probability the hydrofoil completes its next trip?
Solution
Although the answer may seem complicated, note that P(trip is completed) and P(both engines simultaneously fail) are complements. P1trip is completed2 1 P1both engines simultaneously fail2 1 0.012 0.988 There is close to a 99% probability the trip will be completed. Now try Exercises 23 and 24
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The chart in Figure 11.16 shows all 36 possible outcomes (the sample space) from the experiment of rolling two fair dice. Figure 11.16
EXAMPLE 7
Stating a Probability Using Complements Two fair dice are rolled. What is the probability the sum of both dice is greater than or equal to 5, P1sum 52?
Solution
C. You’ve just learned how to use certain properties of probability
See Figure 11.16. For P 1sum 52 it may be easier to use complements as there are far fewer possibilities: P1sum 52 1 P1sum 6 52, which gives 6 1 5 1 1 0.83. 36 6 6 Now try Exercises 25 and 26
D. Probability and Quick-Counting Quick-counting techniques were introduced earlier to help count the number of elements in a large or more complex sample space, and the number of sample outcomes in an event. EXAMPLE 8A
Stating a Probability Using Combinations Five cards are drawn from a shuffled 52-card deck. Calculate the probability of E1:(all five cards are face cards) or E2:(all five cards are hearts)?
Solution
The sample space for both events consists of all five-card groups that can be formed from the 52 cards or 52C5. For E1 we are to select five face cards from the 12 that are available (three from each suit), or 12C5. The probability of five face n1E2 792 12C5 , which gives 0.0003. For E2 we are to select five cards is n1S2 2,598,960 52C5 n1E2 13C5 hearts from the 13 available, or 13C5. The probability of five hearts is , n1S2 52C5 1287 0.0005. which is 2,598,960
Stating a Probability Using Combinations and the Fundamental Principle of Counting
WORTHY OF NOTE It seems reasonable that the probability of 5 hearts is slightly higher, as 13 of the 52 cards are hearts, while only 12 are face cards.
EXAMPLE 8B
Of the 42 seniors at Jacoby High School, 23 are female and 19 are male. A group of five students is to be selected at random to attend a conference in Reno, Nevada. What is the probability the group will have exactly three females?
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Solution
D. You’ve just learned how to compute probabilities using quick-counting techniques
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The sample space consists of all five-person groups that can be formed from the 42 seniors or 42C5. The event consists of selecting 3 females from the 23 available (23C3) and 2 males from the 19 available (19C2). Using the fundamental principle of counting n1E2 23C3 # 19C2 and the probability the group has 3 females is
# n1E2 302,841 23C3 19C2 , which gives 0.356. There is approximately a n1S2 850,668 42C5 35.6% probability the group will have exactly 3 females. Now try Exercises 27 through 34
E. Probability and Nonexclusive Events Figure 11.17 Sometimes the way events are defined S causes them to share sample outcomes. Using a standard deck of E1 E2 J♠ A♣ 2♣ Q♠ playing cards once again, if we define 3♣ J♣ the events E1:(a club is drawn) and J♦ K♠ 4♣ 5♣ Q♦ Q♣ E2:(a face card is drawn), they share 6♣ K♦ the outcomes J♣, Q♣, and K♣ as K♣ J♥ 8♣ 7♣ Q♥ shown in Figure 11.17. This overlap9♣ K♥ 10♣ ping region is the intersection of the events, or E1 E2. If we compute n1E1 ´ E2 2 as n1E1 2 n1E2 2 as before, this intersecting region gets counted twice! In cases where the events are nonexclusive (not mutually exclusive), we maintain the correct count by subtracting one of the two intersections, obtaining n1E1 ´ E2 2 n1E1 2 n1E2 2 n1E1 E2 2. This leads to the following calculation for the probability of nonexclusive events:
WORTHY OF NOTE This can be verified by simply counting the elements involved: n1E1 2 13 and n1E2 2 12 so n1E1 2 n1E2 2 25. However, there are only 22 possibilities—the J♣, Q♣, and K♣ got counted twice.
n1E1 2 n1E2 2 n1E1 E2 2 n1S2 n1E1 2 n1E1 2 n1E1 E2 2 n1S2 n1S2 n1S2 P1E1 2 P1E2 2 P1E1 E2 2
P1E1 ´ E2 2
definition of probability
property of rational expressions definition of probability
Probability and Nonexclusive Events Given sample space S and nonexclusive events E1 and E2 defined relative to S, the probability of E1 or E2 is given by P1E1 ´ E2 2 P1E1 2 P1E2 2 P1E1 E2 2
EXAMPLE 9A
Stating the Probability of Nonexclusive Events What is the probability that a club or a face card is drawn from a standard deck of 52 well-shuffled cards?
Solution
As before, define the events E1:(a club is drawn) and E2:(a face card is drawn). 12 Since there are 13 clubs and 12 face cards, P1E1 2 13 52 and P1E2 2 52 . But three of 3 the face cards are clubs, so P1E1 E2 2 52 . This leads to P1E1 ´ E2 2 P1E1 2 13 52 22 52
P1E2 2 P1E1 E2 2 12 3 52 52
0.423
nonexclusive events substitute
combine terms
There is about a 42% probability that a club or face card is drawn.
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EXAMPLE 9B
Stating the Probability of Nonexclusive Events A survey of 100 voters was taken to gather information on critical issues and the demographic information collected is shown in the table. One out of the 100 voters is to be drawn at random to be interviewed on the 5 O’Clock News. What is the probability the person is a woman (W) or a Republican (R)?
Solution
E. You’ve just learned how to compute probabilities involving nonexclusive events
Women
Men
Totals
Republican
17
20
37
Democrat
22
17
39
Independent
8
7
15
Green Party
4
1
5
Tax Reform Totals
2
2
4
53
47
100
Since there are 53 women and 37 Republicans, P1W2 0.53 and P1R2 0.37. The table shows 17 people are both female and Republican so P1W R2 0.17. P1W ´ R2 P1W2 P1R2 P1W R2 0.53 0.37 0.17 0.73
nonexclusive events substitute combine
There is a 73% probability the person is a woman or a Republican. Now try Exercises 35 through 48
Two events that have no common outcomes are called mutually exclusive events (one excludes the other and vice versa). For example, in rolling one die, E1:(a 2 is rolled) and E2:(an odd number is rolled) are mutually exclusive, since 2 is not an odd number. For the probability of E3:(a 2 is rolled or an odd number is rolled), we note that n1E1 E2 2 0 and the previous formula simply reduces to P1E1 2 P1E2 2 . See Exercises 49 and 50. There is a large variety of additional applications in the Exercise Set. See Exercises 53 through 68.
TECHNOLOGY HIGHLIGHT
Principles of Quick-Counting, Combinations, and Probability At this point you are likely using the Y = screen and tables ( , 2nd GRAPH TABLE, and so on) with relative ease. When probability calculations require a repeated use of permutations and combinations, these features can make the work more efficient and help to explore the patterns they generate. For choosing r children from a group of six children 1n 62, set the to AUTO, then press Y = and enter 6 nCr X as Y1 (Figure 11.18). Access the TABLE ( 2nd GRAPH ) and note that the calculator has automatically computed the value of 6C0, 6C1, 6C2, . . . , 6C6 (Figure 11.19) and the pattern of outputs is symmetric. For calculations similar to those required in Example 8B 1 23C3 # 19C2 2, enter
Figure 11.18
Figure 11.19
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Y1 23 nCr X, Y2 19 nCr 1X 12, and Y3 Y1 # Y2, or any variation of these. Use these ideas to work the following exercises. Exercise 1: Use your calculator to display the values of 5C0, 5C1, . . . , 5C5. Is the result a pattern similar to that for 6C0, 6C1, 6C2, . . . , 6C6? Repeat for 7Cr. Why are the “middle values” repeated for n 7 and n 5, but not for n 6? Exercise 2: A committee consists of 10 Republicans and eight Democrats. In how many ways can a committee of four Republicans and three Democrats be formed?
11.6 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
1. Given a sample space S and an event E defined relative to S, P1E2
n1S2
.
4. The of an event E is the set of sample outcomes in S which are not contained in E.
2. In elementary probability, we consider all events in the sample space to be likely.
5. Discuss/Explain the difference between mutually exclusive events and nonmutually exclusive events. Give an example of each.
3. Given a sample space S and an event E defined relative to S: , P1S2 , P1E2 and P1~S2 .
6. A single die is rolled. With no calculations, explain why the probability of rolling an even number is greater than rolling a number greater than four.
DEVELOPING YOUR SKILLS
State the sample space S and the probability of a single outcome. Then define any two events E relative to S (many answers possible).
7. Two fair coins (heads and tails) are flipped.
Exercise 8
8. The simple spinner shown is spun.
1
2
4 3 9. The head coaches for six little league teams (the Patriots, Cougars, Angels, Sharks, Eagles, and Stars) have gathered to discuss new changes in the rule book. One of them is randomly chosen to ask the first question.
10. Experts on the planets Mercury, Venus, Mars, Jupiter, Saturn, Uranus, Neptune, and the dwarf planet Pluto have gathered at a space exploration conference. One group of experts is selected at random to speak first.
Find P(E) for the events defined.
11. Nine index cards numbered 1 through 9 are shuffled and placed in an envelope, then one of the cards is randomly drawn. Define event E as the number drawn is even. 12. Eight flash cards used for studying basic geometric shapes are shuffled and one of the cards is drawn at random. The eight cards include information on circles, squares, rectangles, kites, trapezoids, parallelograms, pentagons, and triangles. Define event E as a quadrilateral is drawn. 13. One card is drawn at random from a standard deck of 52 cards. What is the probability of a. drawing a Jack b. drawing a spade c. drawing a black card d. drawing a red three 14. Pinochle is a card game played with a deck of 48 cards consisting of 2 Aces, 2 Kings, 2 Queens, 2 Jacks, 2 Tens, and 2 Nines in each of the four
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standard suits [hearts (♥), diamonds (), spades (♠), and clubs (♣)]. If one card is drawn at random from this deck, what is the probability of a. drawing an Ace b. drawing a club c. drawing a red card d. drawing a face card (Jack, Queen, King) 15. A group of finalists on a game show consists of three males and five females. Hank has a score of 520 points, with Harry and Hester having 490 and 475 points, respectively. Madeline has 532 points, with Mackenzie, Morgan, Maggie, and Melanie having 495, 480, 472, and 470 points, respectively. One of the contestants is randomly selected to start the final round. Define E1 as Hester is chosen, E2 as a female is chosen, and E3 as a contestant with less than 500 points is chosen. Find the probability of each event. 16. Soccer coach Maddox needs to fill the last spot on his starting roster for the opening day of the season and has to choose between three forwards and five defenders. The forwards have jersey numbers 5, 12, and 17, while the defenders have jersey numbers 7, 10, 11, 14, and 18. Define E1 as a forward is chosen, E2 as a defender is chosen, and E3 as a player whose jersey number is greater than 10 is chosen. Find the probability of each event. 17. A game is played using a spinner like the one shown. For each spin, 1 2 a. What is the probability the arrow lands in a shaded region? 4 3 b. What is the probability your spin is less than 5? c. What is the probability you spin a 2? d. What is the probability the arrow lands on a prime number? 18. A game is played using a spinner like the one shown here. For each spin, 2 1 a. What is the probability the arrow lands in a lightly 3 6 shaded region? 5 4 b. What is the probability your spin is greater than 2? c. What is the probability the arrow lands in a shaded region? d. What is the probability you spin a 5? Use the complementary events to complete Exercises 19 through 22.
19. One card is drawn from a standard deck of 52. What is the probability it is not a club?
20. Four standard dice are rolled. What is the probability the sum is less than 24? 21. A single digit is randomly selected from among the digits of 10!. What is the probability the digit is not a 2? 22. A corporation will be moving its offices to Los Angeles, Miami, Atlanta, Dallas, or Phoenix. If the site is randomly selected, what is the probability Dallas is not chosen? 23. A large manufacturing plant can remain at full production as long as one of its two generators is functioning. Due to past experience and the age difference between the systems, the plant manager estimates the probability of the main generator failing is 0.05, the probability of the secondary generator failing is 0.01, and the probability of both failing is 0.009. What is the probability the plant remains in full production today? 24. A fire station gets an emergency call from a shopping mall in the mid-afternoon. From a study of traffic patterns, Chief Nozawa knows the probability the most direct route is clogged with traffic is 0.07, while the probability of the secondary route being clogged is 0.05. The probability both are clogged is 0.02. What is the probability they can respond to the call unimpeded using one of these routes? 25. Two fair dice are rolled (see Figure 11.16). What is the probability of a. a sum less than four b. a sum less than eleven c. the sum is not nine d. a roll is not a “double” (both dice the same) “Double-six” dominos is a game played with the 28 numbered tiles shown in the diagram.
26. The 28 dominos are placed in a bag, shuffled, and then one domino is randomly drawn. What is the probability the total number of dots on the domino a. is three or less b. is greater than three c. does not have a blank half d. is not a “double” (both sides the same)
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27. 28. 29. 30.
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n1E2 6C3 # 4C2; n1S2 10C5 n1E2 12C9 # 8C7; n1S2 20C16 n1E2 9C6 # 5C3; n1S2 14C9 n1E2 7C6 # 3C2; n1S2 10C8
31. Five cards are drawn from a well-shuffled, standard deck of 52 cards. Which has the greater probability: (a) all five cards are red or (b) all five cards are numbered cards? How much greater? 32. Five cards are drawn from a well-shuffled pinochle deck of 48 cards (see Exercise 14). Which has the greater probability (a) all five cards are face cards (King, Queen, or Jack) or (b) all five cards are black? How much greater? 33. A dietetics class has 24 students. Of these, 9 are vegetarians and 15 are not. The instructor receives enough funding to send six students to a conference. If the students are selected randomly, what is the probability the group will have a. exactly two vegetarians b. exactly four nonvegetarians c. at least three vegetarians 34. A large law firm has a support staff of 15 employees: six paralegals and nine legal assistants. Due to recent changes in the law, the firm wants to send five of them to a forum on the new changes. If the selection is done randomly, what is the probability the group will have a. exactly three paralegals b. exactly two legal assistants c. at least two paralegals
a. b. c. d.
42. Eight Ball is a game played on a pool table with 15 balls numbered 1 through 15 and a cue ball that is solid white. Of the 15 numbered balls, 8 are a solid (nonwhite) color and numbered 1 through 8, and seven are striped balls numbered 9 through 15. The fifteen numbered pool balls (no cueball) are placed in a large bowl and mixed, then one is drawn out. What is the probability of drawing a. the eight ball b. a number greater than fifteen c. an even number d. a multiple of three e. a solid color and an even number f. a striped ball and an odd number g. an even number and a number divisible by three h. an odd number and a number divisible by 4 43. A survey of 50 veterans was taken to gather information on their service career and what life is like out of the military. A breakdown of those surveyed is shown in the table. One out of the 50 will be selected at random for an interview and a biographical sketch. What is the probability the person chosen is Women Private
Find the probability indicated using the information given.
35. Given P1E1 2 0.7, P1E2 2 0.5, and P1E1 ¨ E2 2 0.3, compute P1E1 ´ E2 2. 36. Given P1E1 2 0.6, P1E2 2 0.3, and P1E1 ¨ E2 2 0.2, compute P1E1 ´ E2 2.
37. Given P1E1 2 38, P1E2 2 34, and P1E1 ´ E2 2 15 18 ; compute P1E1 ¨ E2 2. 38. Given P1E1 2 12, P1E2 2 35, and P1E1 ´ E2 2 17 20 ; compute P1E1 ¨ E2 2. 39. Given P1E1 ´ E2 2 0.72, P1E2 2 0.56, and P1E1 ¨ E2 2 0.43; compute P(E1).
40. Given P1E1 ´ E2 2 0.85, P1E1 2 0.4, and P1E1 ¨ E2 2 0.21; compute P(E2).
41. Two fair dice are rolled. What is the probability the sum of the dice is
a multiple of 3 and an odd number a sum greater than 5 and a 3 on one die an even number and a number greater than 9 an odd number and a number less than 10
Totals
6
9
15
Corporal
10
8
18
Sergeant
4
5
9
Lieutenant
2
1
3
Captain Totals
a. b. c. d. e.
Men
2
3
5
24
26
50
a woman and a sergeant a man and a private a private and a sergeant a woman and an officer a person in the military
44. Referring to Exercise 43, what is the probability the person chosen is a. a woman or a sergeant b. a man or a private c. a woman or a man d. a woman or an officer e. a captain or a lieutenant
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A computer is asked to randomly generate a three-digit number. What is the probability the
45. ten’s digit is odd or the one’s digit is even 46. first digit is prime and the number is a multiple of 10 A computer is asked to randomly generate a four-digit number. What is the probability the number is
47. at least 4000 or a multiple of 5 48. less than 7000 and an odd number 49. Two fair dice are rolled. What is the probability of rolling a. boxcars (a sum of 12) or snake eyes (a sum of 2) b. a sum of 7 or a sum of 11 c. an even-numbered sum or a prime sum
d. an odd-numbered sum or a sum that is a multiple of 4 e. a sum of 15 or a multiple of 12 f. a sum that is a prime number 50. Suppose all 16 balls from a game of pool (see Exercise 42) are placed in a large leather bag and mixed, then one is drawn out. Consider the cue ball as “0.” What is the probability of drawing a. a striped ball b. a solid-colored ball c. a polka-dotted ball d. the cue ball e. the cue ball or the eight ball f. a striped ball or a number less than five g. a solid color or a number greater than 12 h. an odd number or a number divisible by 4
WORKING WITH FORMULAS
51. Games involving a fair spinner (with numbers 1 through 4): P1n2 1 14 2 n Games that involve moving pieces around a board using a fair spinner are fairly common. If a fair spinner has the numbers 1 through 4, the probability that any one number is spun n times in succession is given by the formula shown, where n represents the number of spins. What is the probability (a) the first player spins a two? (b) all four players spin a two? (c) Discuss the graph of P(n) and explain the connection between the graph and the probability of consistently spinning a two.
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52. Games involving a fair coin (heads and tails): P1n2 1 12 2 n When a fair coin is flipped, the probability that heads (or tails) is flipped n times in a row is given by the formula shown, where n represents the number of flips. What is the probability (a) the first flip is heads? (b) the first four flips are heads? (c) Discuss the graph of P(n) and explain the connection between the graph and the probability of consistently flipping heads.
APPLICATIONS
53. To improve customer service, a company tracks the number of minutes a caller is “on hold” and waiting for a customer service representative. The table shows the probability that a caller will wait m minutes. Based on the table, what is the probability a caller waits a. at least 2 minutes b. less than 2 minutes c. 4 minutes or less d. over 4 minutes e. less than 2 or more than 4 minutes f. 3 or more minutes
Wait Time (minutes m)
Probability
0
0.07
0 6 m 6 1
0.28
1m 6 2
0.32
2m 6 3
0.25
3m 6 4
0.08
54. To study the impact of technology on American families, a researcher first determines the probability that a family has n computers at home. Based on the table, what is the probability a home
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a. b. c. d. e. f.
has at least one computer has two or more computers has less than four computers has five computers has one, two, or three computers does not have two computers Number of Computers
time you throw a dart. Assuming the probabilities are related to area, on the next dart that you throw what is the probability you a. score at least a 4? b. score at least a 6? c. hit the bull’s-eye? d. score exactly 4 points? 58. Three red balls, six blue balls, and four white balls are placed in a bag. What is the probability the first ball you draw out is a. red b. blue c. not white d. purple e. red or white f. red and white
Probability
0
9%
1
51%
2
28%
3
9%
4
3%
55. Jolene is an experienced markswoman and is able to hit a 10 in. by 20 in. target 100% of the time at a range of 100 yd. Assuming the 10 in. probability she hits a target is related to its area, what is the 20 in. probability she hits the shaded portions shown? a. isosceles triangle
b. right triangle
b. circle
c. isosceles trapezoid with b B2
57. A circular dartboard has a total radius of 8 in., with circular bands that are 2 in. wide, as shown. You are skilled enough to hit this board 100% of the time so you always score at least two points each
59. Three red balls, six blue balls, and four white balls are placed in a bag, then two are drawn out and placed in a rack. What is the probability the balls drawn are a. first red, second blue b. first blue, second red c. both white d. first blue, second not red e. first white, second not blue f. first not red, second not blue 60. Consider the 210 discrete points found in the first and second quadrants where 10 x 10, 1 y 10, and x and y are integers. The coordinates of each point is written on a slip of paper and placed in a box. One of the slips is then randomly drawn. What is the probability the point (x, y) drawn a. is on the graph of y x b. is on the graph of y 2x c. is on the graph of y 0.5x d. has coordinates 1x, y 7 22 e. has coordinates 1x 5, y 7 22 f. is between the branches of y x2
c. equilateral triangle
56. a. square
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61. Your instructor surprises you with a True/False quiz for which you are totally unprepared and must guess randomly. What is the probability you pass the quiz with an 80% or better if there are a. three questions b. four questions c. five questions 62. A robot is sent out to disarm a timed explosive device by randomly changing some switches from a neutral position to a positive flow or negative flow position. The problem is, the switches are independent and unmarked, and it is unknown
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which direction is positive and which direction is negative. The bomb is harmless if a majority of the switches yield a positive flow. All switches must be thrown. What is the probability the device is disarmed if there are a. three switches b. four switches c. five switches 63. A survey of 100 retirees was taken to gather information concerning how they viewed the Vietnam War back in the early 1970s. A breakdown of those surveyed is shown in the table. One out of the hundred will be selected at random for a personal, taped interview. What is the probability the person chosen had a a. career of any kind and opposed the war b. medical career and supported the war c. military career and opposed the war d. legal or business career and opposed the war e. academic or medical career and supported the war Career
Support
Opposed
T
Military Medical
9
3
12
8
16
24
Legal
15
12
27
Business
18
6
24
Academics Totals
3
10
13
53
47
100
64. Referring to Exercise 63, what is the probability the person chosen a. had a career of any kind or opposed the war b. had a medical career or supported the war c. supported the war or had a military career d. had a medical or a legal career e. supported or opposed the war
65. The Board of Directors for a large hospital has 15 members. There are six doctors of nephrology (kidneys), five doctors of gastroenterology (stomach and intestines), and four doctors of endocrinology (hormones and glands). Eight of them will be selected to visit the nation’s premier hospitals on a 3-week, expenses-paid tour. What is the probability the group of eight selected consists of exactly a. four nephrologists and four gastroenterologists b. three endocrinologists and five nephrologists 66. A support group for hodophobics (an irrational fear of travel) has 32 members. There are 15 aviophobics (fear of air travel), eight siderodrophobics (fear of train travel), and nine thalassophobics (fear of ocean travel) in the group. Twelve of them will be randomly selected to participate in a new therapy. What is the probability the group of 12 selected consists of exactly a. two aviophobics, six siderodrophobics, and four thalassophobics b. five thalassophobics, four aviophobics, and three siderodrophobics 67. A trained chimpanzee is given a box containing eight wooden cubes with the letters p, a, r, a, l, l, e, l printed on them (one letter per block). Assuming the chimp can’t read or spell, what is the probability he draws the eight blocks in order and actually forms the word “parallel”? 68. A number is called a “perfect number” if the sum of its proper factors is equal to the number itself. Six is the first perfect number since the sum of its proper factors is six: 1 2 3 6. Twenty-eight is the second since: 1 2 4 7 14 28. A young child is given a box containing eight wooden blocks with the following numbers (one per block) printed on them: four 3’s, two 5’s, one 0, and one 6. What is the probability she draws the eight blocks in order and forms the fifth perfect number: 33,550,336?
EXTENDING THE CONCEPT
69. The function f 1x2 1 12 2 x gives the probability that x number of flips will all result in heads (or tails). Compute the probability that 20 flips results in 20 heads in a row, then use the Internet or some other resource to find the probability of winning a state lottery. Which is more likely to happen (which has the greater probability)? Were you surprised? 70. Recall that a function is a relation in which each element of the domain is paired with only one element from the range. Is the relation defined by C1x2 nCx (n is a constant) a function? To
investigate, plot the points generated by C1x2 6Cx for x 0 to x 6 and answer the following questions: a. Is the resulting graph continuous or discrete (made up of distinct points)? b. Does the resulting graph pass the vertical line test? c. Discuss the features of the relation and its graph, including the domain, range, maximum or minimum values, and symmetries observed.
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71. (5.3) Given csc 3 and cos 6 0, find the values of the remaining five trig functions of . 72. (4.4) Complete the following logarithmic properties: logb b __
logb 1 __
logb bn __
blogbn __
73. (6.4) Find exact values for sin122, cos122, and 21 tan122 given cos and is in Quadrant II. 29 74. (8.3) A rubber ball is dropped from a height of 25 ft onto a hard surface. With each bounce, it rebounds 60% of the height from which it last fell. Use sequences/series to find (a) the height of the sixth bounce, (b) the total distance traveled up to the sixth bounce, and (c) the distance the ball will travel before coming to rest.
11.7 The Binomial Theorem Learning Objectives In Section 11.7 you will learn how to:
A. Use Pascal’s triangle to find 1a b2 n
B. Find binomial coefficients n using a b notation k C. Use the binomial theorem to find 1a b2 n
D. Find a specific term of a binomial expansion
1 1 1 1
? ?
Strictly speaking, a binomial is a polynomial with two terms. This limits us to terms with real number coefficients and whole number powers on variables. In this section, we will loosely regard a binomial as the sum or difference of any two terms. Hence 1 1 13 3x2 y4, 1x 4, x , and i are all “binomials.” Our goal is to develop x 2 2 an ability to raise a binomial to any natural number power, with the results having important applications in genetics, probability, polynomial theory, and other areas. The tool used for this purpose is called the binomial theorem.
A. Binomial Powers and Pascal’s Triangle
Much of our mathematical understanding comes from a study of patterns. One area where the study of patterns has been particularly fruitful is Pascal’s triangle (Figure 11.20), named after the French scientist Blaise Pascal Figure 11.20 (although the triangle was well known before his time). It begins 1 First row with a “1” at the vertex of the triangle, with 1’s extending diagonally downward to the left and right as shown. The entries on Second row 1 1 the interior of the triangle are found by adding the two entries Third row 1 2 directly above and to the left and right of each new position. There are a variety of patterns hidden within the triangle. In Fourth row 1 3 3 this section, we’ll use the horizontal rows of the triangle to help us raise a binomial to various powers. To begin, recall that 1 6 ? 1a b2 0 1 and 1a b2 1 1a 1b (unit coefficients are ? ? 1 ? included for emphasis). In our earlier work, we saw that a and so on binomial square (a binomial raised to the second power) always
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followed the pattern 1a b2 2 1a2 2ab 1b2. Observe the overall pattern that is developing as we include 1a b2 3: 1a b2 0 1a b2 1 1a b2 2 1a b2 3
1 1a 1b 1a2 2ab 1b2 1a3 3a2b 3ab2 1b3
row 1 row 2 row 3 row 4
Apparently the coefficients of 1a b2 will occur in row n 1 of Pascal’s triangle. Also observe that in each term of the expansion, the exponent of the first term a decreases by 1 as the exponent on the second term b increases by 1, keeping the degree of each term constant (recall the degree of a term with more than one variable is the sum of the exponents). n
1a3b0 3a2b1 3a1b2 1a0b3 30 degree 3
21 degree 3
12 degree 3
03 degree 3
These observations help us to quickly expand a binomial power.
EXAMPLE 1
Expanding a Binomial Using Pascal’s Triangle
Solution
Working step-by-step we have 1. The coefficients will be in the fifth row of Pascal’s triangle. 1 4 6 4 1 2. The exponents on x begin at 4 and decrease, while the exponents on 12 begin at 0 and increase.
Use Pascal’s triangle and the patterns noted to expand 1x 12 2 4.
1 0 1 1 1 2 1 3 1 4 1x4 a b 4x3 a b 6x2 a b 4x1 a b 1x0 a b 2 2 2 2 2 3. Simplify each term. 1 3 1 The result is x4 2x3 x2 x . 2 2 16 Now try Exercises 7 through 10
If the exercise involves a difference rather than a sum, we simply rewrite the expression using algebraic addition and proceed as before.
EXAMPLE 2
Raising a Complex Number to a Power Using Pascal’s Triangle Use Pascal’s triangle and the patterns noted to compute 13 2i2 5.
Begin by rewriting 13 2i2 5 as 33 12i2 4 5. 1. The coefficients will be in the sixth row of Pascal’s triangle. 5 10 10 5 1 1 2. The exponents on 3 begin at 5 and decrease, while the exponents on 12i2 begin at 0 and increase. 1135 212i2 0 5134 2 12i2 1 10133 212i2 2 10132 212i2 3 5131 2 12i2 4 1130 212i2 5 3. Simplify each term. A. You’ve just learned how 243 810i 1080 720i 240 32i to use Pascal’s triangle to find The result is 597 122i. Solution
1a b2 n
Now try Exercises 11 and 12
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Expanding Binomial Powers 1a b2 n 1. The coefficients will be in row n 1 of Pascal’s triangle. 2. The exponents on the first term begin at n and decrease, while the exponents on the second term begin at 0 and increase. 3. For any binomial difference 1a b2 n, rewrite the base as 3a 1b2 4 n using algebraic addition and proceed as before, then simplify each term.
B. Binomial Coefficients and Factorials
Pascal’s triangle can easily be used to find the coefficients of 1a b2 n, as long as the exponent is relatively small. If we needed to expand 1a b2 25, writing out the first 26 rows of the triangle would be rather tedious. To overcome this limitation, we introduce a formula for the binomial coefficients that enables us to find the coefficients of any expansion. The Binomial Coefficients n For natural numbers n and r where n r, the expression a b, read “n choose r,” r is called the binomial coefficient and evaluated as: n n! a b r!1n r2! r In Example 1, we found the coefficients of 1a b2 4 using the fifth or 1n 12st row of Pascal’s triangle. In Example 3, these coefficients are found using the formula for binomial coefficients.
EXAMPLE 3
Computing Binomial Coefficients n n! Evaluate a b as indicated: r r!1n r2! 4 a. a b 1
Solution
4 b. a b 2
4 c. a b 3
4 # 3! 4 4! a. a b 4 1!14 12! 1!3! 1 4 # 3 # 2! 4#3 4 4! b. a b 6 2!14 22! 2!2! 2 2 4 # 3! 4 4! c. a b 4 3!14 32! 3!1! 3 Now try Exercises 13 through 20
4 4 4 Note a b 4, a b 6, and a b 4 give the interior entries in the fifth row of 1 2 3 Pascal’s triangle: 1 4 6 4 1. For consistency and symmetry, we define 0! 1, which enables the formula to generate all entries of the triangle, including the “1’s.” 4 4! a b 0 0!14 02! 4! # 1 1 4!
apply formula
0! 1
4 4! 4! a b # 4 4!14 42! 4! 0! 4! # 1 4! 1
apply formula
0! 1
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n The formula for a b with 0 r n now gives all coefficients in the 1n 12st r row. For n 5, we have 5 a b 0 1
EXAMPLE 4
5 a b 1 5
5 a b 2 10
5 a b 3 10
5 a b 4 5
5 a b 5 1
Computing Binomial Coefficients Compute the binomial coefficients: 9 a. a b 0
Solution
9 b. a b 1
6 c. a b 5
9 9! a. a b 0 0!19 02! 9! 1 9! 6 6! c. a b 5 5!16 52! 6! 6 5!
6 d. a b 6 9 9! b. a b 1 1!19 12! 9! 9 8! 6 6! d. a b 6 6!16 62! 6! 1 6! Now try Exercises 21 through 24
B. You’ve just learned how to find binomial coefficients n using a b notation k
n You may have noticed that the formula for a b is identical to that of nCr, and both r yield like results for given values of n and r. For future use, it will help to commit the n n n b n, and general results from Example 4 to memory: a b 1, a b n, a 0 1 n 1 n a b 1. n
C. The Binomial Theorem n Using a b notation and the observations made regarding binomial powers, we can now r state the binomial theorem. Binomial Theorem For any binomial 1a b2 and natural number n, n n n 1a b2 n a banb0 a ban1b1 a ban2b2 p 0 1 2 n n a b a1bn1 a b a0bn n1 n The theorem can also be stated in summation form as n n 1a b2 n a b anrbr r0 r
The expansion actually looks overly impressive in this form, and it helps to summarize the process in words, as we did earlier. The exponents on the first term a begin at n and decrease, while the exponents on the second term b begin at 0 and increase,
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n keeping the degree of each term constant. The a b notation simply gives the coefficients r n of each term. As a final note, observe that the r in a b gives the exponent on b. r EXAMPLE 5
Solution
Expanding a Binomial Using the Binomial Theorem Expand 1a b2 6 using the binomial theorem.
6 6 6 6 6 6 6 1a b2 6 a b a6b0 a b a5b1 a b a4b2 a b a3b3 a b a2b4 a b a1b5 a b a0b6 0 1 2 3 4 5 6 6! 6 6! 5 1 6! 4 2 6! 3 3 6! 2 4 6! 1 5 6! 6 a ab ab ab ab ab b 0!6! 1!5! 2!4! 3!3! 4!2! 5!1! 6!0! 1a6 6a5b 15a4b2 20a3b3 15a2b4 6ab5 1b6 Now try Exercises 25 through 32
EXAMPLE 6
Using the Binomial Theorem to Find the Initial Terms of an Expansion
Solution
Use the binomial theorem with a 2x, b y2, and n 10.
Find the first three terms of 12x y2 2 10. 12x y2 2 10 a
10 10 10 b 12x2 10 1y2 2 0 a b 12x2 9 1y2 2 1 a b 12x2 8 1y2 2 2 p 0 1 2
1121024x10 1102512x9y2 C. You’ve just learned how to use the binomial theorem to find 1a b2 n
10! 256x8y4 p 2!8! 1024x10 5120x9y2 1452256x8y4 p 1024x10 5120x9y2 11,520x8y4 p
a
first three terms
10 10 b 1, a b 10 0 1
10! 45 2!8! result
Now try Exercises 33 through 36
D. Finding a Specific Term of the Binomial Expansion In some applications of the binomial theorem, our main interest is a specific term of the expansion, rather than the expansion as a whole. To find a specified term, it helps to consider that the expansion of 1a b2 n has n 1 terms: 1a b2 0 has one term,
n 1a b2 1 has two terms, 1a b2 2 has three terms, and so on. Because the notation a b r always begins at r 0 for the first term, the value of r will be 1 less than the term we are seeking. In other words, for the seventh term of 1a b2 9, we use r 6. The kth Term of a Binomial Expansion For the binomial expansion 1a b2 n, the kth term is given by n a b anrbr, where r k 1. r
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EXAMPLE 7
Solution
Finding a Specific Term of a Binomial Expansion Find the eighth term in the expansion of 1x 2y2 12.
By comparing 1x 2y2 12 to 1a b2 n we have a x, b 2y, and n 12. Since we want the eighth term, k 8 S r 7. The eighth term of the expansion is a
12 5 b x 12y2 7 7
12! 128x5y7 7!5! 17922 1128x5y7 2 101,376x5y7
27 128 1 12 7 2 792 result
Now try Exercises 37 through 42
One application of the binomial theorem involves a binomial experiment and binomial probability. For binomial probabilities, the following must be true: (1) The experiment must have only two possible outcomes, typically called success and failure, and (2) if the experiment has n trials, the probability of success must be constant for n all n trials. If the probability of success for each trial is p, the formula a b 11 p2 nkpk k gives the probability that exactly k trials will be successful. Binomial Probability Given a binomial experiment with n trials, where the probability for success in each trial is p. The probability that exactly k trials are successful is given by n a b 11 p2 nk pk. k
EXAMPLE 8
Applying the Binomial Theorem–Binomial Probability Paula Rodrigues has a free-throw shooting average of 85%. On the last play of the game, with her team behind by three points, she is fouled at the three-point line, and is awarded two additional free throws via technical fouls on the opposing coach (a total of five free-throws). What is the probability she makes at least three (meaning they at least tie the game)?
Solution
Here we have p 0.85, 1 p 0.15, and n 5. The key idea is to recognize the phrase at least three means “3 or 4 or 5.” So P(at least 3) P13 ´ 4 ´ 52. P1at least 32 P13 ´ 4 ´ 52 P132 P142 P152
“or” implies a union sum of probabilities (mutually exclusive events)
5 5 5 a b 10.152 2 10.852 3 a b 10.152 1 10.852 4 a b 10.152 0 10.852 5 4 5 3 D. You’ve just learned how to find a specific term of a binomial expansion
0.1382 0.3915 0.4437 0.9734 Paula’s team has an excellent chance 197.3% 2 of at least tying the game. New try Exercises 45 and 46
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11.7 EXERCISES
CONCEPTS AND VOCABULARY
Fill in the blank with the appropriate word or phrase. Carefully reread the section if needed.
4. In a binomial experiment with n trials, the probability there are exactly k successes is given
1. In any binomial expansion, there is always more term than the power applied.
2. In all terms in the expanded form of 1a b2 n, the exponents on a and b must sum to .
by the formula
3. To expand a binomial difference such as 1a 2b2 , we rewrite the binomial as and proceed as before. 5
5. Discuss why the expansion of 1a b2 n has n 1 terms. 6. For any defined binomial experiment, discuss the relationships between the phrases, “exactly k success,” and “at least k successes.”
DEVELOPING YOUR SKILLS
Use Pascal’s triangle and the patterns explored to write each expansion.
7. 1x y2 5
10. 1x2 13 2 3
8. 1a b2 6
11. 11 2i2 5
9. 12x 32 4
12. 12 5i2 4
Evaluate each of the following
7 13. a b 4 9 16. a b 5 40 19. a b 3 5 22. a b 0
.
8 14. a b 2 20 17. a b 17 45 20. a b 3 15 23. a b 15
5 15. a b 3 30 18. a b 26 6 21. a b 0 10 24. a b 10
Use the binomial theorem to expand each expression. Write the general form first, then simplify.
25. 1c d2 5
26. 1v w2 4
31. 11 2i2 3
32. 12 13i2 5
28. 1x y2 7
29. 12x 32 4
27. 1a b2 6
30. 1a 2b2 5
Use the binomial theorem to write the first three terms.
33. 1x 2y2 9
36. 1 12a b2 2 10
34. 13p q2 8
35. 1v2 12w2 12
Find the indicated term for each binomial expansion.
37. 1x y2 7; 4th term
39. 1p 22 8; 7th term
41. 12x y2 12; 11th term
38. 1m n2 6; 5th term
40. 1a 32 14; 10th term
42. 13n m2 9; 6th term
WORKING WITH FORMULAS
n 1 k 1 nk 43. Binomial probability: P1k2 a b a b a b 2 k 2 The theoretical probability of getting exactly k heads in n flips of a fair coin is given by the formula above. What is the probability that you would get 5 heads in 10 flips of the coin?
n 1 k 4 nk 44. Binomial probability: P1k2 a b a b a b 5 k 5 A multiple choice test has five options per question. The probability of guessing correctly k times out of n questions is found using the formula shown. What is the probability a person scores a 70% by guessing randomly (7 out of 10 questions correct)?
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APPLICATIONS
45. Batting averages: Tony Gwynn (San Diego Padres) had a lifetime batting average of 0.347, ranking him as one of the greatest hitters of all time. Suppose he came to bat five times in any given game. a. What is the probability that he will get exactly three hits? b. What is the probability that he will get at least three hits?
47. Late rental returns: The manager of Victor’s DVD Rentals knows that 6% of all DVDs rented are returned late. Of the eight videos rented in the last hour, what is the probability that a. exactly five are returned on time b. exactly six are returned on time c. at least six are returned on time d. none of them will be returned late
46. Pollution testing: Erin suspects that a nearby iron smelter is contaminating the drinking water over a large area. A statistical study reveals that 83% of the wells in this area are likely contaminated. If the figure is accurate, find the probability that if another 10 wells are tested a. exactly 8 are contaminated b. at least 8 are contaminated
48. Opinion polls: From past experience, a research firm knows that 20% of telephone respondents will agree to answer an opinion poll. If 20 people are contacted by phone, what is the probability that a. exactly 18 refuse to be polled b. exactly 19 refuse to be polled c. at least 18 refuse to be polled d. none of them agree to be polled
EXTENDING THE CONCEPT
49. Prior to calculators and computers, the binomial theorem was frequently used to approximate the value of compound interest given by the expression r nt a1 b by expanding the first three terms. For n example, if the interest rate were 8% 1r 0.082 and the interest was compounded quarterly 142152 1n 42 for 5 yr 1t 52, we have 11 0.08 4 2 20 11 0.022 . The first three terms of the expansion give a value of: 1 2010.022 19010.00042 1.476. a. Calculate the percent error: approximate value %error actual value b. What is the percent error if only two terms are used.
50. If you sum the entries in each row of Pascal’s triangle, a pattern emerges. Find a formula that generalizes the result for any row of the triangle, and use it to find the sum of the entries in the 12th row of the triangle. n n b for n 6 and k 6. 51. Show that a b a k nk
52. The derived polynomial of f (x) is f 1x h2 or the original polynomial evaluated at x h. Use Pascal’s triangle or the binomial theorem to find the derived polynomial for f 1x2 x3 3x2 5x 11. Simplify the result completely.
MAINTAINING YOUR SKILLS
53. (2.7) Graph the function shown and find x2 x2 f 132: f 1x2 e 2 1x 42 x 7 2 54. (5.4) Given the point (0.6, y) is a point on the unit circle in the third quadrant, find y.
55. (3.4) Graph the function g1x2 x3 x2 6x. Clearly indicate all intercepts and intervals where g1x2 7 0. 56. (6.5) Evaluate arcsin c sina
5 bd. 6
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S U M M A RY A N D C O N C E P T R E V I E W SECTION 11.1
Sequences and Series
KEY CONCEPTS • A finite sequence is a function an whose domain is the set of natural numbers from 1 to n. • The terms of the sequence are labeled a1, a2, a3, . . . , ak1, ak, ak1, p , an2, an1, an. • The expression an, which defines the sequence (generates the terms in order), is called the nth term. • An infinite sequence is a function whose domain is the set of natural numbers. • When each term of a sequence is larger than the preceding term, it is called an increasing sequence. • When each term of a sequence is smaller than the preceding term, it is called a decreasing sequence. • When successive terms of a sequence alternate in sign, it is called an alternating sequence. • When the terms of a sequence are generated using previous term(s), it is called a recursive sequence. • Sequences are sometimes defined using factorials, which are the product of a given natural number with all natural numbers that precede it: n! n # 1n 12 # 1n 22 # p # 3 # 2 # 1. • Given the sequence a1, a2, a3, a4, . . . , an the sum is called a finite series and is denoted Sn. • Sn a1 a2 a3 a4 p an. The sum of the first n terms is called a partial sum. k
• In sigma notation, the expression
a a i
1
a2 p ak represents a finite series.
i1
• When sigma notation is used, the letter “i” is called the index of summation. EXERCISES Write the first four terms that are defined and the value of a10. n1 1. an 5n 4 2. an 2 n 1 Find the general term an for each sequence, and the value of a6. 3. 1, 16, 81, 256, . . . 4. 17, 14, 11, 8, p Find the eighth partial sum (S8). 5.
1 1 1 2, 4, 8,
6. 21, 19, 17, p
p
Evaluate each sum. 7
7.
5
n2
8.
n1
13n 22
n1
Write the first five terms that are defined. n! 9. an 1n 22!
10. e
a1 12 an1 2an 14
Write as a single summation and evaluate. 7
11.
7
n2
n1
13n 22
n1
SECTION 11.2
Arithmetic Sequences
KEY CONCEPTS • In an arithmetic sequence, successive terms are found by adding a fixed constant to the preceding term. • In a sequence, if there exists a number d, called the common difference, such that ak1 ak d, then the sequence is arithmetic. Alternatively, ak1 ak d for k 1.
1085
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• The nth term n of an arithmetic sequence is given by an a1 1n 12d, where a1 is the first term and d is the
common difference. If • the initial term is unknown or is not a1 the nth term can be written an ak 1n k2d, where the subscript of the term ak and the coefficient of d sum to n. • For an arithmetic sequence with first term a1, the nth partial sum (the sum of the first n terms) is given by n1a1 an 2 Sn . 2
EXERCISES Find the general term (an) for each arithmetic sequence. Then find the indicated term. 12. 2, 5, 8, 11, . . . ; find a40 13. 3, 1, 1, 3, p ; find a35 Find the sum of each series. 14. 1 3 7 11 p 75 16. 3 6 9 12 p ; S20
15. 1 4 7 10 p 88 17. 1 3 1 1 p ; S15 4
25
18.
13n 42
19.
n1
SECTION 11.3
2
4
40
14n 12
n1
Geometric Sequences
KEY CONCEPTS • In a geometric sequence, successive terms are found by multiplying the preceding term by a nonzero constant. ak1 • In other words, if there exists a number r, called the common ratio, such that a r, then the sequence is k geometric. Alternatively, we can write ak1 akr for k 1. • The nth term an of a geometric sequence is given by an a1rn1, where a1 is the first term and an represents the general term of a finite sequence. • If the initial term is unknown or is not a1, the nth term can be written an akrnk, where the subscript of the term ak and the exponent on r sum to n. a1 11 rn 2 . • The nth partial sum of a geometric sequence is Sn 1r a1 . • If r 6 1, the sum of an infinite geometric series is Sq 1r EXERCISES Find the indicated term for each geometric sequence. 20. a1 5, r 3; find a7 21. a1 4, r 12; find a7
22. a1 17, r 17; find a8
Find the indicated sum, if it exists. 23. 16 8 4 p find S7 25. 4 2 1 1 p ; find S12
24. 2 6 18 p ; find S8 26. 4 8 12 24 p
27. 5 0.5 0.05 0.005 p
28. 6 3 32 34 p
5
5
5
8
29.
2 n 5a b 3 n1
10
4 n 12a b 3 n1 q
30.
1 n 5a b 2 n1 q
31.
32. Charlene began to work for Grayson Natural Gas in January of 1990 with an annual salary of $26,000. Her contract calls for a $1220 raise each year. Use a sequence/series to compute her salary after nine years, and her total earnings up to and including that year. (Hint: For a1 26,000, her salary after 9 yrs will be what term of the sequence?)
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33. Sumpter reservoir contains 121,500 ft3 of water and is being drained in the following way. Each day one-third of the water is drained (and not replaced). Use a sequence/series to compute how much water remains in the pond after 7 days. 34. Credit-hours taught at Cody Community College have been increasing at 7% per year since it opened in 2000 and taught 1225 credit-hours. For the new faculty, the college needs to predict the number of credit-hours that will be taught in 2009. Use a sequence/series to compute the credit-hours for 2009 and to find the total number of credit hours taught through the 2009 school year.
SECTION 11.4
Mathematical Induction
KEY CONCEPTS • Functions written in subscript notation can be evaluated, graphed, and composed with other functions. • A sum formula involving only natural numbers n as inputs can be proven valid using a proof by induction. Given that Sn represents a sum formula involving natural numbers, if (1) S1 is true and (2) Sk ak1 Sk1, then Sn must be true for all natural numbers. • Proof by induction can also be used to validate other relationships, using a more general statement of the principle. Let Sn be a statement involving the natural numbers n. If (1) S1 is true (Sn for n 12 and (2) the truth of Sk implies that Sk1 is also true, then Sn must be true for all natural numbers n. EXERCISES Use the principle of mathematical induction to prove the indicated sum formula is true for all natural numbers n. 35. 1 2 3 4 5 p n; 36. 1 4 9 16 25 36 p n2; n1n 12 n1n 1212n 12 an n and Sn . an n2 and Sn . 2 6 Use the principle of mathematical induction to prove that each statement is true for all natural numbers n. 37. 4n 3n 1 38. 6 # 7n1 7n 1 39. 3n 1 is divisible by 2
SECTION 11.5
Counting Techniques
KEY CONCEPTS • An experiment is any task that can be repeated and has a well-defined set of possible outcomes. • Each repetition of an experiment is called a trial. • Any potential outcome of an experiment is called a sample outcome. • The set of all sample outcomes is called the sample space. • An experiment with N (equally likely) sample outcomes that is repeated t times, has a sample space with N t elements. • If a sample outcome can be used more than once, the counting is said to be with repetition. If a sample outcome can be used only once the counting is said to be without repetition. • The fundamental principle of counting states: If there are p possibilities for a first task, q possibilities for the second, and r possibilities for the third, the total number of ways the experiment can be completed is pqr. This fundamental principle can be extended to include any number of tasks. • If the elements of a sample space have precedence or priority (order or rank is important), the number of elements is counted using a permutation, denoted nPr and read, “the distinguishable permutations of n objects taken r at a time.” n! . • To expand nPr, we can write out the first r factors of n! or use the formula nPr 1n r2! • If any of the sample outcomes are identical, certain permutations will be nondistinguishable. In a set containing n elements where one element is repeated p times, another is repeated q times, and another r times 1p q r n2, n! nPn the number of distinguishable permutations is given by . p!q!r! p!q!r!
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• If the elements of a set have no rank, order, or precedence (as in a committee of colleagues) permutations with the same elements are considered identical. The result is the number of combinations, nCr
n! . r!1n r2!
EXERCISES 40. Three slips of paper with the letters A, B, and C are placed in a box and randomly drawn one at a time. Show all possible ways they can be drawn using a tree diagram. 41. The combination for a certain bicycle lock consists of three digits. How many combinations are possible if (a) repetition of digits is not allowed and (b) repetition of digits is allowed. 42. Jethro has three work shirts, four pairs of work pants, and two pairs of work shoes. How many different ways can he dress himself (shirt, pants, shoes) for a day’s work? 43. From a field of 12 contestants in a pet show, three cats are chosen at random to be photographed for a publicity poster. In how many different ways can the cats be chosen? 44. How many subsets can be formed from the elements of this set: { , , , , }? 45. Compute the following values by hand, showing all work: c. 7C4 a. 7! b. 7P4 46. Six horses are competing in a race at the McClintock Ranch. Assuming there are no ties, (a) how many different ways can the horses finish the race? (b) How many different ways can the horses finish first, second, and third place? (c) How many finishes are possible if it is well known that Nellie-the-Nag will finish last and Sea Biscuit will finish first? 47. How many distinguishable permutations can be formed from the letters in the word “tomorrow”? 48. Quality Construction Company has 12 equally talented employees. (a) How many ways can a three-member crew be formed to complete a small job? (b) If the company is in need of a Foreman, Assistant Foreman, and Crew Chief, in how many ways can the positions be filled?
SECTION 11.6
Introduction to Probability
KEY CONCEPTS • An event E is any designated set of sample outcomes. • Given S is a sample space of equally likely sample outcomes and E is an event relative to S, the probability of E, n1E2 written P(E), is computed as P1E2 , where n(E) represents the number of elements in E, and n(S) n1S2 represents the number of elements in S. • The complement of an event E is the set of sample outcomes in S, but not in E and is denoted E. • Given sample space S and any event E defined relative to S: 112 P1S2 0, 122 0 P1E2 1, 132 P1S2 1, 142 P1E2 1 P1E2, and 152 P1E2 P1E2 1. • Two events that have no outcomes in common are said to be mutually exclusive. • If two events are not mutually exclusive, P1E1 or E2 2 S P1E1 ´ E2 2 P1E1 2 P1E2 2 P1E1 ¨ E2 2. • If two events are mutually exclusive, P1E1 or E2 2 S P1E1 ´ E2 2 P1E1 2 P1E2 2 . EXERCISES 49. One card is drawn from a standard deck. What is the probability the card is a ten or a face card? 50. One card is drawn from a standard deck. What is the probability the card is a Queen or a face card? 51. One die is rolled. What is the probability the result is not a three? 52. Given P1E1 2 38, P1E2 2 34, and P1E1 ´ E2 2 56, compute P1E1 ¨ E2 2. 53. Find P(E) given that n1E2 7C4 # 5C3 and n1S2 12C7.
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54. To determine if more physicians should be hired, a medical clinic tracks the number of days between a patient’s request for an appointment and the actual appointment date. The table given shows the probability that a patient must wait “d” days. Based on the table, what is the probability a patient must wait a. at least 20 days c. 40 days or less e. less than 40 and more than 10 days
SECTION 11.7
1089
Mixed Review
b. less than 20 days d. over 40 days f. 30 or more days
Wait (days d)
Probability
0
0.002
0 6 d 6 10
0.07
10 d 6 20
0.32
20 d 6 30
0.43
30 d 6 40
0.178
The Binomial Theorem
KEY CONCEPTS • To expand 1a b2 n for n of “moderate size,” we can use Pascal’s triangle and observed patterns. n • For any natural numbers n and r, where n r, the expression a b (read “n choose r”) is called the binomial r n n! . coefficient and evaluated as a b r r!1n r2! • If n is large, it is more efficient to expand using the binomial coefficients and binomial theorem. • The following binomial coefficients are useful/common and should be committed to memory: n n n n a b1 a bn a bn a b1 0 1 n1 n n n! 1 1 1. • We define 0! 1; for example a b n n!1n n2! 0! 1 n n n n n b a1bn1 a b a0bn. • The binomial theorem: 1a b2 n a b anb0 a b an1b1 a b an2b2 p a 0 1 2 n1 n n • The kth term of 1a b2 n can be found using the formula a b anrbr, where r k 1. r EXERCISES 55. Evaluate each of the following: 7 8 a. a b b. a b 5 3 Use the binomial theorem to: 57. Write the first four terms of a. 1a 132 8 b. 15a 2b2 7
56. Use Pascal’s triangle to expand the binomials: a. 1x y2 4
b. 11 2i2 5
58. Find the indicated term of each expansion. a. 1x 2y2 7; fourth b. 12a b2 14; 10th
MIXED REVIEW 1. Identify each sequence as arithmetic, geometric, or neither. If neither, try to identify the pattern that forms the sequence. a. 120, 163, 206, 249, . . . b. 4, 4, 4, 4, 4, 4, . . . c. 1, 2, 6, 24, 120, 720, 5040, . . .
d. e. f. g. h. i.
2.00, 1.95, 1.90, 1.85, . . . ... 5.5, 6.05, 6.655, 7.3205, . . . 0.1, 0.2, 0.3, 0.4, . . . 525, 551.25, 578.8125, . . . 1 1 1 1 2, 4, 6, 8, . . . 5 5 5 5 8 , 64 , 512 , 4096 ,
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2. Compute by hand (show your work). a. 10!
b.
10! 6!
c.
10P4
d.
e.
10C6
f.
10C4
10P9
3. The call letters for a television station must consist of four letters and begin with either a K or a W. How many distinct call letters are possible if repeating any letter is not allowed? 4. Given a1 9 and r 13, write out the first five terms and the 15th term. 5. Given a1 0.1 and r 5, write out the first five terms and the 15th term. 6. One card is drawn from a well-shuffled deck of standard cards. What is the probability the card is a Queen or an Ace? 7. Two fair dice are rolled. What is the probability the result is not doubles (doubles same number on both die)? 8. A house in a Boston suburb cost $185,000 in 1985. Each year its value increased by 8%. If this appreciation were to continue, find the value of the house in 2005 and 2015 using a sequence. 9. Evaluate each sum using summation formulas. 2 n a b n1 3
5
c.
19 2n2
b.
n1
14. The owner of an arts and crafts store makes specialty key rings by placing five colored beads on a nylon cord and tying it to the ring that will hold the keys. If there are eight different colors to choose from, (a) how many distinguishable key rings are possible if no colors are repeated? (b) How many distinguishable key rings are possible if a repetition of colors is allowed? 15. Donell bought 15 raffle tickets from the Inner City Children’s Music School, and five tickets from the Arbor Day Everyday raffle. The Music School sold a total of 2000 tickets and the Arbor Day foundation sold 550 tickets. For E1: Donell wins the Music School raffle and E2: Donell wins the Arbor Day raffle, find P(E1 or E2). Find the sum if it exists. 16. 13 23 1 43 p 20 3 17. 0.36 0.0036 0.000036 0.00000036 p Find the first five terms of the sequences in Exercises 18 and 19. 18. an
n1 5
12n
13. Use a proof by induction to show that 3n1n 12 3 6 9 p 3n . 2
10
q
a.
11-74
CHAPTER 11 Additional Topics in Algebra
n1
152
5
n2
n1
10. Expand each binomial using the binomial theorem. Simplify each term. a. 12x 52 5 b. 11 2i2 4 11. For 1a b2 n, determine: a. the first three terms for n 20 b. the last three terms for n 20 c. the fifth term for n 35 d. the fifth term for n 35, a 0.2, and b 0.8
12. On average, bears older than 3 yr old increase their weight by 0.87% per day from July to November. If a bear weighed 110 kg on June 30th: (a) identify the type of sequence that gives the bear’s weight each day; (b) find the general term for the sequence; and (c) find the bear’s weight on July 1, July 2, July 3, July 31, August 31, and September 30.
19. e
12! 112 n2!
a1 10 an1 an 1 15 2
20. A random survey of 200 college students produces the data shown. One student from this group is randomly chosen for an interview. Use the data to find a. P(student works more than 10 hr) b. P(student takes less than 13 credit-hours) c. P(student works more than 20 hr and takes more than 12 credit-hours) d. P(student works between 11 and 20 hr or takes 6 to 12 credit-hours) 0-10 hr
11-20 hr
Over 20 hr
Total
1-5 credits
3
7
10
20
6-12 credits
21
55
48
124
8
28
20
56
32
90
78
200
over 13 credits Total:
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PRACTICE TEST 1. The general term of a sequence is given. Find the first four terms, the 8th term, and the 12th term. 1n 22! 2n a. an b. an n3 n! a1 3 c. an e an1 21an 2 2 1 2. Expand each series and evaluate. 6
a.
b.
3 j 122a b 4 j1
d.
k2 5
c.
6
12k2 32
112 a j 1 b j
j
j2 q
1 k 7a b 2 k1
3. Identify the first term and the common difference or common ratio. Then find the general term an. a. 7, 4, 1, 2, . . . b. 8, 6, 4, 2, . . . c. 4, 8, 16, 32, . . . d. 10, 4, 85, 16 25 , . . . 4. Find the indicated value for each sequence. a. a1 4, d 5; find a40 b. a1 2, an 22, d 3; find n c. a1 24, r 12; find a6 d. a1 2, an 486, r 3; find n 5. Find the sum of each series. a. 7 10 13 p 100 37
b.
13k 22
k1
c. For 4 12 36 108 p , find S7 d. 6 3 32 34 p 6. Each swing of a pendulum (in one direction) is 95% of the previous one. If the first swing is 12 ft, (a) find the length of the seventh swing and (b) determine the distance traveled by the pendulum for the first seven swings. 7. A rare coin that cost $3000 appreciates in value 7% per year. Find the value of after 12 yr. 8. A car that costs $50,000 decreases in value by 15% per year. Find the value of the car after 5 yr. 9. Use mathematical induction to prove that for 5n2 n an 5n 3, the sum formula Sn is true 2 for all natural numbers n. 10. Use the principle of mathematical induction to prove that Sn: 2 # 3n1 3n 1 is true for all natural numbers n. 11. Three colored balls (Aqua, Brown, and Creme) are to be drawn without replacement from a bag. List all possible ways they can be drawn using (a) a tree diagram and (b) an organized list.
12. Suppose that license plates for motorcycles must consist of three numbers followed by two letters. How many license plates are possible if zero and “Z” cannot be used and no repetition is allowed? 13. How many subsets can be formed from the elements in this set: {,,,,,}. 14. Compute the following values by hand, showing all work: (a) 6! (b) 6P3 (c) 6C3 15. An English major has built a collection of rare books that includes two identical copies of The Canterbury Tales (Chaucer), three identical copies of Romeo and Juliet (Shakespeare), four identical copies of Faustus (Marlowe), and four identical copies of The Faerie Queen (Spenser). If these books are to be arranged on a shelf, how many distinguishable permutations are possible? 16. A company specializes in marketing various cornucopia (traditionally a curved horn overflowing with fruit, vegetables, gourds, and ears of grain) for Thanksgiving table settings. The company has seven fruit, six vegetable, five gourd, and four grain varieties available. If two from each group (without repetition) are used to fill the horn, how many different cornucopia are possible? 17. Use Pascal’s triangle to expand/simplify: a. 1x 2y2 4 b. 11 i2 4 18. Use the binomial theorem to write the first three terms of (a) 1x 122 10 and (b) 1a 2b3 2 8. 19. Michael and Mitchell are attempting to make a nonstop, 100-mi trip on a tandem bicycle. The probability that Michael cannot continue pedaling for the entire trip is 0.02. The probability that Mitchell cannot continue pedaling for the entire trip is 0.018. The probability that neither one can pedal the entire trip is 0.011. What is the probability that they complete the trip? 20. The spinner shown is spun once. 12 1 2 11 What is the probability of spinning 10 3 a. a striped wedge 9 4 b. a shaded wedge 8 5 7 6 c. a clear wedge d. an even number e. a two or an odd number f. a number greater than nine g. a shaded wedge or a number greater than 12 h. a shaded wedge and a number greater than 12 21. To improve customer service, a cable company tracks the number of days a customer must wait
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until their cable service Wait (days d ) Probability is installed. The table 0 0.02 shows the probability 0 6 d 6 1 0.30 that a customer must wait d days. Based on 1d 6 2 0.60 the table, what is the 2d 6 3 0.05 probability a customer 3d 6 4 0.03 waits a. at least 2 days b. less than 2 days c. 4 days or less d. over 4 days e. less than 2 or at least 3 days f. three or more days 22. An experienced archer can hit 48 cm the rectangular target shown 100% of the time at a range of 75 m. Assuming the probability the target is hit is 64 cm related to its area, what is the probability the archer hits within the a. triangle b. circle c. circle but outside the triangle d. lower half-circle e. rectangle but outside the circle f. lower half-rectangle, outside the circle 23. A survey of 100 union workers was taken to register concerns to be raised at the next bargaining session. A breakdown of those surveyed is shown in the table in the right column. One out of the hundred will be
Expertise Level
Women
Men
Total
Apprentice
16
18
34
Technician
15
13
28
Craftsman
9
9
18
Journeyman
7
6
13
Contractor
3
4
7
50
50
100
Totals
selected at random for a personal interview. What is the probability the person chosen is a a. woman or a craftsman b. man or a contractor c. man and a technician d. journeyman or an apprentice 24. Cheddar is a 12-year-old male box turtle. Provolone is an 8-year-old female box turtle. The probability that Cheddar will live another 8 yr is 0.85. The probability that Provolone will live another 8 yr is 0.95. Find the probability that a. both turtles live for another 8 yr b. neither turtle lives for another 8 yr c. at least one of them will live another 8 yr 25. Use a proof by induction to show that the sum of the n1n 12 first n natural numbers is . That is, prove 2 n1n 12 123pn . 2
C A L C U L AT O R E X P L O R AT I O N A N D D I S C O V E RY Infinite Series, Finite Results Although there were many earlier flirtations with infinite processes, it may have been the paradoxes of Zeno of Elea (450 B.C.) that crystallized certain questions that simultaneously frustrated and fascinated early mathematicians. The first paradox, called the dichotomy paradox, can be summarized by the following question: How can one ever finish a race, seeing that one-half the distance must first be traversed, then one-half the remaining distance, then onehalf the distance that then remains, and so on an infinite number of times? Although we easily accept that races can be finished, the subtleties involved in this question stymied mathematicians for centuries and were not satisfactorily resolved until the eighteenth century. In modern notation, 1 p 6 1. This Zeno’s first paradox says 12 14 18 16 1 is a geometric series with a1 2 and r 12.
Illustration 1 For the geometric sequence with a1 12 1 1 and r , the nth term is an n . Use the “sum(” and 2 2 “seq(” features of your calculator to compute S5, S10, and S15 (see Technology Highlight from Section 11.1). Does the sum appear to be approaching some “limiting value”? If so, what is this value? Now compute S20, S25, and S30. Does there still appear to be a limit to the sum? What happens when you have the calculator compute S35? Solution CLEAR the calculator and enter sum(seq (0.5^X, X, 1, 5)) on the home screen. Pressing ENTER gives
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Strengthening Core Skills
Figure 11.21 S50.96875 (Figure 11.21). Press 2nd ENTER to recall the expression and overwrite the 5, changing it to a 10. Pressing ENTER shows S10 0.9990234375. Repeating these steps gives S15 0.9999694824, and it seems that “1” may be a limiting value. Our conjecture receives further support as S20, S25, and S30 are closer and closer to 1, but do not exceed it. Note that the sum of additional terms will create a longer string of 9’s. That the sum of an infinite number of these terms is 1 can be understood by converting the repeating decimal 0.9 to its fractional form (as shown). For x 0.9, 10x 9.9 and it follows that
10x 9.9 x 0.9 9x 9 x 1
1093
For a geometric sequence, the result of an infinite sum a1 can be verified using Sq . However, there are 1r many nongeometric, infinite series that also have a limiting value. In some cases these require many, many more terms before the limiting value can be observed. Use a calculator to write the first five terms and to find S5, S10, and S15. Decide if the sum appears to be approaching some limiting value, then compute S20 and S25. Do these sums support your conjecture? Exercise 1: a1 13 and r 13 Exercise 2: a1 0.2 and r 0.2 1 1n 12! Additional Insight: Zeno’s first paradox can also be “resolved” by observing that the “half-steps” needed to complete the race require increasingly shorter (infinitesimally short) amounts of time. Eventually the race is complete. Exercise 3: an
STRENGTHENING CORE SKILLS Probability, Quick-Counting, and Card Games The card game known as Five Card Stud is often played for fun and relaxation, using toothpicks, beans, or pocket change as players attempt to develop a winning “hand” Five Card Hand
from the five cards dealt. The various “hands” are given here with the higher value hands listed first (e.g., a full house is a better/higher hand than a flush).
Description
Probability of Being Dealt
royal flush
five cards of the same suit in sequence from Ace to 10
0.000 001 540
straight flush
any five cards of the same suit in sequence (exclude royal)
0.000 013 900
four of a kind
four cards of the same rank, any fifth card
full house
three cards of the same rank, with one pair
flush
five cards of the same suit, no sequence required
straight
five cards in sequence, regardless of suit
three of a kind
three cards of the same rank, any two other cards
two pairs
two cards of the one rank, two of another rank, one other card
0.047 500
one pair
two cards of the same rank, any three others
0.422 600
0.001 970
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For this study, we will consider the hands that are based on suit (the flushes) and the sample space to be five cards dealt from a deck of 52, or 52C5. A flush consists of five cards in the same suit, a straight consists of five cards in sequence. Let’s consider that an Ace can be used as either a high card (as in 10, J, Q, K, A) or a low card (as in A, 2, 3, 4, 5). Since the dominant characteristic of a flush is its suit, we first consider choosing one suit of the four, then the number of ways that the straight can be formed (if needed). Illustration 1 What is the probability of being dealt a royal flush? Solution For a royal flush, all cards must be of one suit. Since there are four suits, it can be chosen in 4C1 ways. A royal flush must have the cards A, K, Q, J, and 10 and once the suit has been decided, it can happen in only this (one) way or 1 C 1 . This means # 4C1 1C1 P 1royal flush2 0.000 001 540. 52C5
Illustration 2 What is the probability of being dealt a straight flush? Solution Once again all cards must be of one suit, which can be chosen in 4C1 ways. A straight flush is any five cards in sequence and once the suit has been decided, this can happen in 10 ways (Ace on down, King on down, Queen on down, and so on). By the FCP, there are 4C1 # 10C1 40 ways this can happen, but four of these will be royal flushes that are of a higher value and must be subtracted from this total. So in the intended context we have # 4C1 10C1 4 0.000 013 900 P1straight flush2 52C5 Using these examples, determine the probability of being dealt Exercise 1: a simple flush (no royal or straight flushes) Exercise 2: three cards of the same suit and any two other (nonsuit) cards Exercise 3: four cards of the same suit and any one other (nonsuit) card Exercise 4: a flush having no face cards
C U M U L AT I V E R E V I E W C H A P T E R S 1 – 1 1 1. Robot Moe is assembling memory cards for computers. At 9:00 A.M., 52 cards had been assembled. At 11:00 A.M., a total of 98 had been made. Assuming the production rate is linear a. Find the slope of this line and explain what it means in this context. b. Determine how many boards Moe Table for can assemble in an eight-hour day. Exercise 3 c. Find a linear equation model for x y this data. 0 d. Determine the approximate time that Moe began work this 6 morning. 2. When using a calculator to find 13 , yet sin 120°, you get 2 13 b 120°. Explain why. sin1a 2 3. Complete this table of special values for y cos x without using a calculator.
4 3 2 2 3 5 6
4. Sketch the graph of y 1x 4 3 using transformations of a parent function. Label the x- and y-intercepts and state what transformations were used. 5. Solve using the quadratic formula: 3x2 5x 7 0. State your answer in exact and approximate form. 6. The orbit of Venus around the Sun is nearly circular, with a radius of 67 million miles. The planet completes one revolution in about 225 days. Calculate the planet’s (a) angular velocity in radians per hour and (b) the planet’s orbital velocity in miles per hour. 7. For the graph of g(x) shown, state where a. g1x2 0 b. g1x2 6 0 5 c. g1x2 7 0 d. g1x2c e. g1x2T f. local max g. local min h. g1x2 2 5 i. g(4) j. g112 k. as x S 1 , g1x2 S 5 l. as x S q, g1x2 S m. the domain of g(x)
y
g(x)
5 x
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Cumulative Review Chapters 1–11
8. Match each equation to its corresponding graph. a. y sin1x2 b. y sin1x 2 c. y sin12x 2 d. y sinax b 2 e. y sin12x2 f. y sinax b 2 (1) y (2) y 1
1
2
x
1
1
(3)
17. Solve for x. a. e2x1 217
2
x
y 1
1
1
2
x
1
1
1
2
x
(6)
1
y 1
1
2
x
1
b. log13x 22 1 4
18. Solve using matrices and row reduction: 2a 3b 6c 15 • 4a 6b 5c 35 3a 2b 5c 24 19. Solve using a calculator and inverse matrices. 0.7x 1.2y 3.2z 32.5 • 1.5x 2.7y 0.8z 7.5 2.8x 1.9y 2.1z 1.5 20. Find the equation of the hyperbola with foci at 16, 02 and (6, 0) and vertices at 14, 02 and (4, 0). 21. Write x2 4y2 24y 6x 29 0 by completing the square, then identify the center, vertices, and foci.
1
y
1
1
(4)
y
1
16. What interest rate is required to ensure that $2000 will double in 10 yr if interest is compounded continuously?
1
1
(5)
15. Write each expression in exponential form: a. 3 logx 11252 b. ln12x 12 5
1
1
1095
1
2
x
1
9. Graph the piecewise function and state the domain and range. 2 3 x 1 y •x 1 6 x 6 2 x2 2x3 10. For u 3i 4j and v 12i 8j, find the resultant vector w u v, then use the dot product to compute the angle between u and w. 11. Compute the difference quotient for each function given. 1 a. f 1x2 2x2 3x b. h1x2 x2 12. Graph the polynomial function given. Clearly indicate all intercepts. f 1x2 x3 x2 4x 4
2x2 8 . Clearly x2 1 indicate all asymptotes and intercepts.
13. Graph the rational function h1x2
14. Write each expression in logarithmic form: 1 34 a. x 10 y b. 81
22. Use properties of sequences to determine a20 and S20. a. 262144, 65536, 16384, 4096, . . . 7 27 19 11 b. , , , , . . . 8 40 40 40 23. Use the difference identity for cosine to a. verify that cosa b sin and 2 b. find the value of cos 15° in exact form. 24. Caleb’s grandparents live in a small town that lies 125 mi away at a heading of 110°. Having just received his pilot’s license, he sets out on a heading of 110° in a rented plane, traveling at 125 mph (total flight time 1 hr). Unfortunately, he forgets to account for the wind, which is coming from the northeast at 20 mph on a heading of 190°. (a) If Caleb starts out at coordinates (0, 0), what are the coordinates of his grandparent’s town? (b) What are the vector coordinates of the plane 1 hr later? (c) How many miles is he actually away from his grandparent’s town? 25. Empty 55-gal drums are stacked at a storage facility in the form of a pyramid with 52 barrels in the bottom row, 51 barrels in the next row, and so on, until there are 10 barrels in the top row. Use properties of sequences to determine how many barrels are in this stack.
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CHAPTER 11 Additional Topics in Algebra
26. Three $20 bills, six $50 bills, and four $100 bills are placed in a large box and mixed thoroughly, then two bills are drawn out and placed in a savings account. What is the probability the bills drawn are a. first $20, second $50 b. first $50, second $20 c. both $100 d. first $100, second not $20 e. first $100, second not $50 f. first not $20, second $20 27. The manager of Tom’s Tool and Equipment Rentals knows that 4% of all tools rented are returned late. Of the 12 tools rented in the last hour, what is the probability that a. exactly ten will be returned on time b. at least eleven will be returned on time c. at least ten will be returned on time d. none of them will be returned on time
11-80
28. Use a proof by induction to show 3 7 11 15 p 14n 12 n12n 12 for all natural numbers n. 29. State the three double angle formulas for cosine. If 1 cos122 , what is the value of sin ? 2 30. A park ranger tracks the number of campers at a remote national park from January 1m 12 to December 1m 122 and collects the following data (month, number of campers): (3, 6), (5, 110), (7, 134), and (9, 78). Assuming the data is quadratic 1y ax2 bx c2, (a) select any of the three points and create a system of three equations in three variables to obtain a parabolic equation model for the data and (b) determine the month that brought the maximum number of campers. (c) What was this maximum number? (d) How many campers might be expected in September? (e) Based on your model, what month(s) is the park apparently closed to campers (number of campers is zero or negative)?
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College Algebra and Trigonometry—
APPENDIX I
More on Synthetic Division As the name implies, synthetic division simulates the long division process, but in a condensed and more efficient form. It’s based on a few simple observations of long division, as noted in the division (x3 2x2 13x 172 1x 52 shown in Figure AI.1. Figure AI.1
Figure AI.2
x 3x 2 x 5 x 2x2 13x 17 2
x 5 1
3
1x 5x 2 3
2
3 13
2 17
5
↓
3x 13x 2
1 2
13x 15x2 2
3 15
↓
2x 17
2
12x 102 7
10 7
remainder
remainder
A careful observation reveals a great deal of repetition, as any term in red is a duplicate of the term above it. In addition, since the dividend and divisor must be written in decreasing order of degree, the variable part of each term is unnecessary as we can let the position of each coefficient indicate the degree of the term. In other words, we’ll agree that 1
2
13
17 represents the polynomial 1x3 2x2 13x 17.
Finally, we know in advance that we’ll be subtracting each partial product, so we can “distribute the negative,” shown at each stage. Removing the repeated terms and variable factors, then distributing the negative to the remaining terms produces Figure AI.2. The entire process can now be condensed by vertically compressing the rows of the division so that a minimum of space is used (Figure AI.3).
1
x 5 1
Figure AI.3 3
Figure AI.4 2
quotient
1 2
3 13
2 17
dividend
10
products
2
13
17
dividend
5
15
10
products
↓
5
15
3
2
7
sums
1
3
2
x 5 1
7
remainder
quotient
Further, if we include the lead coefficient in the bottom row (Figure AI.4), the coefficients in the top row (in blue) are duplicated and no longer necessary, since the quotient and remainder now appear in the last row. Finally, note all entries in the product row (in red) are five times the sum from the prior column. There is a direct connection between this multiplication by 5 and the divisor x 5, and in fact, it is the zero of the divisor that is used in synthetic division ( x 5 from x 5 0). A simple change in format makes this method of division easier to use, and highlights the location of the divisor and remainder (the blue brackets in Figure AI.5). Note the process begins by “dropping the lead coefficient into place” (shown in bold). The full process of synthetic division is shown in Figure AI.6 for the same exercise. A-1
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College Algebra and Trigonometry—
Appendix I More on Synthetic Division
Figure AI.5 2 13
divisor (use 5, not 5) →
5 1 ↓ drop lead coefficient into place → 1
17
← coefficients of dividend ← quotient and remainder appear in this row
We then multiply this coefficient by the “divisor,” place the result in the next column and add. In a sense, we “multiply in the diagonal direction,” and “add in the vertical direction.” Continue the process until the division is complete.
5 1 multiply by 5
↓ 1
The result is x2 3x 2
2 5 3
↓
A-2
Figure AI.6 13 17 15 10 2 7
← coefficients of dividend ← quotient and remainder appear in this row
7 , read from the last row. x5
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College Algebra and Trigonometry—
APPENDIX II
More on Matrices Reduced Row-Echelon Form A matrix is in reduced row-echelon form if it satisfies the following conditions: 1. All null rows (zeroes for all entries) occur at the bottom of the matrix. 2. The first non-zero entry of any row must be a 1. 3. For any two consecutive, nonzero rows, the leading 1 in the higher row is to the left of the 1 in the lower row. 4. Every column with a leading 1 has zeroes for all other entries in the column. Matrices A through D are in reduced row-echelon form. 0 A £0 0
1 0 0
0 0 0
0 1 0
0 0 1
5 3§ 2
1 B £0 0
0 1 0
0 0 0
5 3§ 0
1 C £0 0
0 1 0
0 3 0
5 2 § 0
1 D £0 0
0 1 0
5 2 0
0 0§ 1
Where Gaussian elimination places a matrix in row-echelon form (satisfying the first three conditions), Gauss-Jordan elimination places a matrix in reduced rowechelon form. To obtain this form, continue applying row operations to the matrix until the fourth condition above is also satisfied. For a 3 3 system having a unique solution, the diagonal entries of the coefficient matrix will be 1’s, with 0’s for all other entries. To illustrate, we’ll extend Example 4 from Section 9.1 until reduced rowechelon form is obtained. EXAMPLE 4
Solving Systems Using the Augmented Matrix 2x y 2z 7 Solve using Gauss-Jordan elimination: • x y z 1 2y z 3 2x y 2z 7 • x y z 1 2y z 3 1 1 1 1 £2 1 2 7 § 0 2 1 3 1 1 1 1 £0 1 4 5§ 0 2 1 3 1 £0 0
1 1 0
1 1 4 5§ 1 1
R 1 4 R2
x y z 1 • 2x y 2z 7 2y z 3
matrix form →
1 1 1 1 £2 1 2 7 § 0 2 1 3
2R1 R2 S R2
1 1 1 1 £ 0 1 4 5 § 0 2 1 3
1R2 → R2
1 1 1 1 £0 1 4 5§ 0 2 1 3
1 1 4 5§ 7 7
2R2 R3 S R3
1 £0 0
1 1 0
R2 R1 S R1
1 £0 0
0 3 6 1 4 5§ 0 1 1
R3 S R3 7
3R3 R1 S R1 4R3 R2 S R2
1 £0 0
1 1 0
1 1 4 5§ 1 1
1 £0 0
0 1 0
0 3 0 1§ 1 1
The final matrix is in reduced row-echelon form with solution (3, 1, 1) just as in Section 9.1.
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Appendix II More on Matrices
The Determinant of a General Matrix To compute the determinant of a general square matrix, we introduce the idea of a cofactor. For an n n matrix A, Aij 112 ij Mij is the cofactor of matrix element aij, where Mij represents the determinant of the corresponding minor matrix. Note that i j is the sum of the row and column of the entry, and if this sum is even, 112 ij 1, while if the sum is odd, 112 ij 1 (this is how the sign table for a 3 3 determinant was generated). To compute the determinant of an n n matrix, multiply each element in any row or column by its cofactor and add. The result is a tier-like process in which the determinant of a larger matrix requires computing the determinant of smaller matrices. In the case of a 4 4 matrix, each of the minor matrices will be size 3 3, whose determinant then requires the computation of other 2 2 determinants. In the following illustration, two of the entries in the first row are zero for convenience. For 2 1 A ≥ 3 0 2 we have: det1A2 2 # 112 11 † 1 3
0 2 1 3 0 4 2
3 0 4 2
0 2 ¥, 1 1
2 1 1 † 132 # 112 13 † 3 1 0
2 1 3
2 1† 1
Computing the first 3 3 determinant gives 16, the second 3 3 determinant is 14. This gives: det1A2 21162 31142 74
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College Algebra and Trigonometry—
APPENDIX III
Deriving the Equation of a Conic The Equation of an Ellipse In Section 10.2, the equation 21x c2 2 y2 21x c2 2 y2 2a was developed using the distance formula and the definition of an ellipse. To find the standard form of the equation, we treat this result as a radical equation, isolating one of the radicals and squaring both sides. 21x c2 2 y2 2a 21x c2 2 y2
1x c2 2 y2 4a2 4a 21x c2 2 y2 1x c2 2 y2
isolate one radical square both sides
We continue by simplifying the equation, isolating the remaining radical, and squaring again. x2 2cx c2 y2 4a2 4a 21x c2 2 y2 x2 2cx c2 y2 4cx 4a 4a 21x c2 y 2
2
2
simplify
a 21x c2 y a cx 2
2
2
isolate radical; divide by 4
a 3 1x c2 y 4 a 2a cx c x 2
2
2
4
2
expand binomials
2 2
square both sides
a x 2a cx a c a y a 2a cx c x
expand and distribute a 2 on left
ax cx ay a ac
add 2a 2cx and rewrite equation
2 2
2
2 2
2 2
2 2
2 2
4
2 2
2
4
2 2
2 2
x 1a c 2 a y a 1a c 2 y2 x2 1 a2 a2 c2 2
2
2
2 2
2
2
2
factor divide by a 2 1a 2 c 2 2
Since a 7 c, we know a2 7 c2 and a2 c2 7 0. For convenience, we let b2 a2 c2 and it also follows that a2 7 b2 and a 7 b (since c 7 0). Substituting b2 for a2 c2 we obtain the standard form of the equation of an ellipse (major axis y2 x2 horizontal, since we stipulated a 7 b): 2 2 1. Note once again the x-intercepts a b are (a, 0), while the y-intercepts are (0, b).
The Equation of a Hyperbola Similar to the development of the equation of an ellipse, the equation 21x c2 2 y2 21x c2 2 y2 2a could have been developed using the distance formula and the definition of a hyperbola. To find the standard form of this equation, we apply the same procedures as before. 21x c2 2 y2 2a 21x c2 2 y2
isolate one radical
1x c2 y 4a 4a 21x c2 y 1x c2 2 y2 2
2
2
2
2
square both sides
x 2cx c y 4a 4a 21x c2 y x 2cx c y2 2
2
2
2
2
2
4cx 4a2 4a 21x c2 2 y2 cx a a 21x c2 y 2
2
2
c x 2a cx a a 3 1x c2 y 4 2 2
2
4
2
2
2
4
2 2
c2x2 a2x2 a2y2 a2c2 a4
2
x2 1c2 a2 2 a2y2 a2 1c2 a2 2 2
2
y x 1 2 2 a c a2
2
expand binomials
simplify isolate radical; divide by 4
2
square both sides
c x 2a cx a a x 2a cx a c a y 2 2
2
2 2
2 2
expand and distribute a 2 on the right add 2a 2cx and rewrite equation factor divide by a 2 1c 2 a 2 2
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Appendix III Deriving the Equation of a Conic
From the definition of a hyperbola we have 0 6 a 6 c, showing c2 7 a2 and c2 a2 7 0. For convenience, we let b2 c2 a2 and substitute to obtain the stany2 x2 dard form of the equation of a hyperbola (transverse axis horizontal): 2 2 1. a b Note the x-intercepts are (0, a) and there are no y-intercepts.
The Asymptotes of a Central Hyperbola From our work in Section 10.3, a central hyperbola with a horizontal axis will have b asymptotes at y x. To understand why, recall that for asymptotic behavior we a investigate what happens to the relation for large values of x, meaning as x S q . y2 x2 Starting with 2 2 1, we have a b b2x2 a2y2 a2b2
clear denominators
ay bx ab 2 2
2 2
2 2
a2y2 b2x2 a1 y2
a b x2
b2 2 a2 2 x a1 2 b a x
b a2 y x 1 2 a B x As x S q,
isolate term with y
2
factor out b 2x 2 from right side
divide by a 2
square root both sides
b a2 2 S 0, and we find that for large values of x, y a x. x
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College Algebra and Trigonometry—
APPENDIX IV
Selected Proofs Proofs from Chapter 3 The Remainder Theorem If a polynomial p(x) is divided by ( x c) using synthetic division, the remainder is equal to p(c). Proof of the Remainder Theorem From our previous work, any number c used in synthetic division will occur as the factor ( x c) when written as 1quotient2 1divisor2 remainder: p1x2 1x c2q1x2 r . Here, q(x) represents the quotient polynomial and r is a constant. Evaluating p(c) gives p1x2 1x c2q1x2 r
p1c2 1c c2q1c2 r 0 # q1c2 r r✓
The Factor Theorem Given a polynomial p(x), (1) if p(c) 0, then x c is a factor of p(x), and (2) if x c is a factor of p(x), then p(c) 0. Proof of the Factor Theorem
1. Consider a polynomial p written in the form p1x2 1x c2q1x2 r. From the remainder theorem we know p1c2 r, and substituting p(c) for r in the equation shown gives: p1x2 1x c2q1x2 p1c2
and x c is a factor of p(x), if p1c2 0
p1x2 1x c2q1x2 ✓
2. The steps from part 1 can be reversed, since any factor (x c) of p(x), can be written in the form p1x2 1x c2q1x2 . Evaluating at x c produces a result of zero: p1c2 1c c2q1x2 0✓
Complex Conjugates Corollary Given p(x) is a polynomial with real number coefficients, complex solutions must occur in conjugate pairs. If a bi, b 0 is a solution, then a bi must also be a solution. To prove this for polynomials of degree n 7 2, we let z1 a bi and z2 c di be complex numbers, and let z1 a bi, and z2 c di represent their conjugates, and observe the following properties: 1. The conjugate of a sum is equal to the sum of the conjugates. sum of conjugates: z1 z2 sum: z1 z2 1a bi2 1c di2
1a c2 1b d2i
→ conjugate of sum →
1a bi2 1c di2
1a c2 1b d2i ✓
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Appendix IV Selected Proofs
2. The conjugate of a product is equal to the product of the conjugates. product: z1 # z2
1a bi2 # 1c di2
product of conjugates: z1 # z2 1a bi2 # 1c di2
ac adi bci bdi2
ac adi bci bdi
2
1ac bd2 1ad bc2i
1ac bd2 1ad bc2i ✓ Since polynomials involve only sums and products, and the complex conjugate of any real number is the number itself, we have the following: → conjugate of product →
Proof of the Complex Conjugates Corollary Given polynomial p1x2 anxn an1xn1 p a1x1 a0, where an, an1, p , a1, a0 are real numbers and z a bi is a zero of p, we must show that z a bi is also a zero. anzn an1zn1 p a1z1 a0 p1z2 evaluate p (x ) at z anzn an1zn1 p a1z1 a0 anzn an1zn1 p a1z1 a0 anzn an1zn1 p a1z1 a0 1 n n1 an 1z 2 an1 1z 2 p a1 1z 2 a0 n n1 1 an 1z 2 an1 1z 2 p a1 1z 2 a0
0
p 1z2 0 given
0
conjugate both sides
0
property 1
0
property 2
0
conjugate of a real number is the number
p1z2 0
✓
result
An immediate and useful result of this theorem is that any polynomial of odd degree must have at least one real root.
Linear Factorization Theorem If p(x) is a complex polynomial of degree n 1, then p has exactly n linear factors and can be written in the form p(x) an(x c1)(x c2) # . . . # (x cn), where an 0 and c1, c2, . . . , cn are complex numbers. Some factors may have multiplicities greater than 1 (c1, c2, . . . , cn are not necessarily distinct). Proof of the Linear Factorization Theorem Given p(x) anxn an1xn1 . . . a1x a0 is a complex polynomial, the Fundamental Theorem of Algebra establishes that p(x) has a least one complex zero, call it c1. The factor theorem stipulates (x c1) must be a factor of P, giving p1x2 1x c1 2q1 1x2
where q1(x) is a complex polynomial of degree n 1. Since q1(x) is a complex polynomial in its own right, it too must also have a complex zero, call it c2. Then ( x c2) must be a factor of q1(x), giving p1x2 1x c1 2 1x c2 2q2 1x2
where q2(x) is a complex polynomial of degree n 2. Repeating this rationale n times will cause p(x) to be rewritten in the form p1x2 1x c1 2 1x c2 2
#
...
#
1x cn 2qn 1x2
where qn(x) has a degree of n n 0, a nonzero constant typically called an. The result is p1x2 an 1x c1 21x c2 2 # . . . # 1x cn 2 , and the proof is complete.
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Appendix IV Selected Proofs
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Proofs from Chapter 4 The Product Property of Logarithms Given M, N, and b 1 are positive real numbers, logb(MN) logbM logbN . Proof of the Product Property For P logb M and Q logb N , we have bP M and bQ N in exponential form. It follows that logb 1MN2 logb 1bPbQ 2
substitute b P for M and b Q for N
logb 1bPQ 2
properties of exponents
PQ
log property 3
logb M logb N
substitute logb M for P and logb N for Q
The Quotient Property of Logarithms Given M, N, and b 1 are positive real numbers, M logb a b logb M logb N . N Proof of the Quotient Property For P logb M and Q logb N , we have bP M and bQ N in exponential form. It follows that logb a
M bP b logb a Q b N b
substitute b P for M and b Q for N
logb 1bPQ 2
properties of exponents
PQ
log property 3
logb M logb N
substitute logb M for P and logb N for Q
The Power Property of Logarithms Given M and b 1 are positive real numbers and any real number x, logb Mx x logb M . Proof of the Power Property For P logb M , we have bP M in exponential form. It follows that logb 1M2 x logb 1bP 2 x logb 1b 2 Px
Px
1logb M2x x logb M
substitute b P for M properties of exponents log property 3 substitute logb M for P rewrite factors
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Appendix IV Selected Proofs
Proof of the Determinant Formula for the Area of a Parallelogram 1 Since the area of a triangle is A ab sin , the area of the corresponding parallelogram 2 is twice as large: A ab sin . In terms of the vectors u Ha, bI and v Hc, dI, we have A uv sin , and it follows that
u
Area uv 21 cos2,
v
Pythagorean identity
1u # v2 u2v2
2
uv
B
1
substitute for cos
u2v2 1u # v2 2 B u2v2
uv
common denominator
2u2v2 1u # v2 2
simplify
21a2 b2 2 1c2 d2 2 1ac bd2 2
substitute
2a c a d b c b d 1a c 2acbd b d 2 2 2
2 2
2 2
2 2
2 2
2 2
expand
2a2d2 2acbd b2c2
simplify
21ad bc2
factor
2
ad bc
result
Proof of Heron’s Formula Using Algebra Note that 2a2 d2 h 2c2 e2. It follows that a
h
2a2 d2 2c2 e2
c
d
a2 d2 c2 e2
e
a2 1b e2 2 c2 e2
b
a2 b2 2be e2 c2 e2 a2 b2 c2 2be b2 c2 a2 e 2b This shows:
1 A bh 2 1 b 2c2 e2 2 1 b2 c2 a2 2 b c2 a b 2 B 2b 1 b4 2b2c2 2a2b2 2a2c2 a4 c4 b c2 a b 2 B 4b2 1 4b2c2 b4 2b2c2 2a2b2 2a2c2 a4 c4 b a b 2 B 4b2 4b2 1 4b2c2 b4 2b2c2 2a2b2 2a2c2 a4 c4 b 2 B 4b2
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Appendix IV Selected Proofs
A-11
1 22a2b2 2a2c2 2b2c2 a4 b4 c4 4 1 2 3 1a b2 2 c2 4 3 c2 1a b2 2 4 4 1 21a b c2 1a b c21c a b21c a b2 4
From this point, the conclusion of the proof is the same as the trigonometric development found on page 730.
Proof that u v compv u |v| z
Consider the vectors in the figure shown, which form a triangle. Applying the Law of Cosines to this triangle yields: u–v
v x
u y
0u v 0 2 0 u 0 2 0 v 0 2 2 0 u 0 0v 0 cos
Using properties of the dot product (page 758), we can rewrite the left-hand side as follows: 0 u v 0 2 1u v2 # 1u v2
u#uu#vv#uv#v 0u 0 2 2 u # v 0v 0 2
Substituting the last expression for 0u v 0 2 from the Law of Cosines gives 0 u 0 2 2 u # v 0v 0 2 0 u 0 2 0 v 0 2 2 0 u 0 0 v 0 cos 2 u # v 2 0 u 0 0v 0 cos u # v 0u 0 0 v 0 cos
0 u 0 cos 0v 0 .
Substituting compv u for 0 u 0 cos completes the proof: u # v compv u 0 v 0
Proof of DeMoivre’s Theorem: (cos x i sin x)n cos(nx) i sin(nx) For n 7 0, we proceed using mathematical induction. 1. Show the statement is true for n 1 (base case):
1cos x i sin x2 1 cos11x2 i sin11x2 cos x i sin x cos x i sin x ✓
2. Assume the statement is true for n k (induction hypothesis): 1cos x i sin x2 k cos1kx2 i sin1kx2
3. Show the statement is true for n k 1:
1cos x i sin x2 k1 1cos x i sin x2 k 1cos x i sin x2 1 3cos1kx2 i sin1kx2 4 1cos x i sin x2 induction hypothesis cos1kx2cos x sin1kx2sin x i 3 cos1kx2sin x sin1kx2cos x 4 F-O-I-L cos 3 1k 12x 4 i sin 3 1k 12x 4 ✓ sum/difference identities
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Appendix IV Selected Proofs
By the principle of mathematical induction, the statement is true for all positive integers. For n 6 0 (the theorem is obviously true for n 0), consider a positive integer m, where n m. 1cos x i sin x2 n 1cos x i sin x2 m 1 1cos x i sin x2 m 1 cos1mx2 i sin1mx2 cos1mx2 i sin1mx2 cos1mx2 i sin1mx2 cos1nx2 i sin1nx2
negative exponent property
DeMoivre’s theorem for n 7 0
multiply numerator and denom by cos1mx2 i sin1mx2 and simplify even/odd identities n m
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College Algebra and Trigonometry—
APPENDIX V
Families of Polar Curves Circles and Spiral Curves
r
a
a
Circle Circle r a cos r a sin a represents the diameter of the circle
Circle ra 2
Spiral r k
Roses: r a sin(n) (illustrated here) and r a cos(n) a
Four-petal rose r a sin(2)
a
a
Three-petal rose Eight-petal rose r a sin(3) r a sin(4) If n is odd S there are n petals, if n is even S there are 2n petals. |a| represents the maximum distance from the origin (the radius of a circumscribed circle)
a
Five-petal rose r a sin(5)
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A-14
Appendix V Families of Polar Graphs
Limaçons: r a b sin (illustrated here) and r a b cos
|a| |b| |b| |a|
|a| |b|
|a| |b| |a| |b|
a
a
|a| |b| |a| |b|
a
a
Cardioid Apple Eye-ball Limaçon (limaçon where |a| |b|) (limaçon where |a| |b|) (limaçon where |a| 2|b|) (inner loop if |a| |b|) r a b sin r a b sin r a b sin r a b sin |a| |b| represents the maximum distance from the origin (along the axis of symmetry)
Lemniscates: r 2 a2sin(2) and r 2 a2cos(2)
a a
Lemniscate Lemniscate r2 a2 cos(2) r2 a2 sin(2) a represents the maximum distance from the origin (the radius of a circumscribed circle)
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Student Answer Appendix CHAPTER R Exercises R.1, pp. 10–12 1. proper subset; element 3. positive; negative, 7, 7; principal 5. Order of operations requires multiplication before addition. 7. a. {1, 2, 3, 4, 5} b. { } 9. True 11. True 13. True 15. 1.3 1
0
1
2
3
4
0
1
2
3
4
0
1
2
3
2
3
4
5
17. 2.5 1
19. 2.65 2
1
21. 1.73 0
1
23. a. i. {8, 7, 6} ii. {8, 7, 6} iii. 11, 8, 7, 62 iv. 51, 8, 0, 75, 92 , 5, 6, 7, 35 , 66 v. { } vi. 51, 8, 0.75, 92 , 5.6, 7, 35 , 66 b. 51, 35 , 0.75, 92 , 5.6, 6, 7, 86 c. 5.6 E t 0.75 2 1 0 1 2 3 4 5 6 7 8
25. a. i. 5 249, 2, 6, 46 ii. 5 249, 2, 6, 0, 46 iii. 55, 249, 2, 3, 6, 1, 0, 46 iv. 55, 249, 2, 3, 6, 1, 0, 46 v. 5 23, 6 vi. 55, 249, 2, 3, 6, 1, 23, 0, 4, 6 b. 55, 3, 1, 0, 23, 2, , 4, 6, 2496 c. 3 p 49
39. T 12.50g 50 41. 14 43. 19 45. 0 47. 16 51. 51 53. 2 55. 144 57. 41 59. 24 5 61. 63. x Output x Output 14 3 18 3 6 2 15 2 0 1 12 1 0 0 9 4 1 1 6 6 2 3 2 6 3 0 3 4 3 has an output of 0. 1 has an output of 0. 65. x Output 3 5 2 8 1 9 0 4 1 1 2 0 3 13 2 has an output of 0. 67. a. 7 152 2 d. x 7 7 x 2 73. 15 p6
91. a. t
85.
5
c. a 14.22 13.6 a 9.4
b. 6 71. 5x 13 77. 17 79. x 2a2 2a 81. 6x2 3x 12
69. a. 3.2
75. 2a
83. 2a 3b 2c 1 2j
b. n 122
29 8n
38 5
87. 7a2 13a 5
b. t 225 mph 93. a. L 2W 3
95. t c 22; 37¢
49. 36
89. 10 ohms
b. 107 ft
97. C 25t 43.50; $81
99. a. positive odd integer
65 4 3 2 1 0 1 2 3 4 5 6 7
27. False; not all real numbers are irrational. 29. False; not all rational numbers are integers. 31. False; 125 5 is not irrational. 33. c IV 35. a VI 37. d III 39. Let a represent Kylie’s age: a 6 years. 41. Let n represent the number of incorrect words: n 2 incorrect. 3 1 43. 2.75 45. 4 47. 49. 51. 10 53. 8, 2 55. negative 2 4 57. n 59. undefined, since 12 0 k implies k # 0 12 61. undefined, since 7 0 k implies k # 0 7 63. a. positive 11 b. negative c. negative d. negative 65. 67. 2 6 1 5 2 69. 9 81 is closest 71. 7 73. 2.185 75. 43 77. 29 12 or 212 11 1 79. 0 81. 5 83. 10 85. 78 87. 4 89. 91. 64 12 93. 4489.70 95. D 4.3 cm 97. 32°F 99. 179°F 101. Tsu Ch’ung-chih: 355 103. negative 113
Exercises R.2, pp. 18–21
1. constant 3. coefficient 5. 5 5 0, 5 # 115 2 1 7. two; 3 and 5 9. two; 2 and 14 11. three; 2, 1, and 5 13. one; 1 15. n 7 17. n 4 19. 1n 52 2 21. 2n 13 23. n2 2n 25. 23 n 5 27. 31n 52 7 29. Let w represent the width. Then 2w represents twice the width and 2w 3 represents three meters less than twice the width. 31. Let b represent the speed of the bus. Then b 15 represents 15 mph more than the speed of the bus. 33. h b 150 35. L 2W 20 37. M 2.5N
Exercises R.3, pp. 31–34 1. power 3. 20x; 0 5. a. cannot be simplified, unlike terms b. can be simplified, like bases 7. 14n7 9. 12p5q4 11. a14b7 p2 9 6 2 13. 216p3q6 15. 32.768h3k6 17. 19. 49c14d4 21. 16 xy 4q2 9 3 2 6 3 3 23. 4 x y 25. a. V 27x b. 1728 units 27. 3w 29. 3ab 4p8 27 1 8x6 25m4n6 31. 33. 2h3 35. 37. 8 39. 6 41. 43. 9 8 8 27y 4r8 q 2 2 2 12 25p q 3p 5 1 a 12 45. 47. 49. 51. 3 53. 4 8 55. 4 3h7 4q2 a bc 5x4 2b7 7 57. 59. 2 61. 10 63. 13 65. 4 67. 6.6 109 9 27a9c3 69. 0.000 000 006 5 71. 26,571 hrs; 1,107 days 73. polynomial, none of these, degree 3 75. nonpolynomial because exponents are not whole numbers, NA, NA 77. polynomial, binomial, degree 3 79. w3 3w2 7w 8.2; 1 81. c3 2c2 3c 6; 1 2 2 83. 2 85. 3p3 3p2 12 87. 7.85b2 0.6b 1.9 3 x 12; 3 89. 14 x2 8x 6 91. q6 q5 q4 2q3 q2 2q 93. 3x3 3x2 18x 95. 3r2 11r 10 97. x3 27 99. b3 b2 34b 56 101. 21v2 47v 20 103. 9 m2 9 105. p2 1.1p 9 107. x2 34 x 18 109. m2 16 2 2 2 2 111. 6x 11xy 10y 113. 12c 23cd 5d 115. 2x4 x2 15 117. 4m 3; 16m2 9 119. 7x 10; 49x2 100 121. 6 5k; 36 25k2
SA1
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123. x 16; x2 6 125. x2 8x 16 127. 16g2 24g 9 129. 16p2 24pq 9q2 131. 16 8 1x x 133. xy 2x 3y 6 135. k3 3k2 28k 60 137. a. 340 mg, 292.5 mg b. Less, amount is decreasing. c. after 5 hr 139 F kPQd2 141. 5x3 3x2 2x1 4 143. $15 145. 6
Exercises R.4, pp. 42–45 1. product 3. binomial; conjugate 5. Answers will vary. 7. a. 171x2 32 b. 7b13b2 2b 82 c. 3a2 1a2 2a 32 9. a. 1a 2212a 32 b. 1b2 3213b 22 c. 1n 72 14m 112 11. a. 13q 2213q2 52 b. 1h 1221h4 32 c. 1k2 72 1k3 52 13. a. 11p 721p 22 b. 1q 921q 52 c. 1n 42 1n 52 15. a. 13p 221p 52 b. 14q 521q 32 c. 15u 32 12u 52 17. a. 12s 5212s 52 b. 13x 7213x 72 c. 215x 62 15x 62 d. 111h 122111h 122 e. 1b 2521b 252 19. a. 1a 32 2 b. 1b 52 2 c. 12m 52 2 d. 13n 72 2 21. a. 12p 3214p2 6p 92 b. 1m 12 21m2 12 m 14 2 c. 1g 0.321g2 0.3g 0.092 d. 2t1t 321t2 3t 92 23. a. 1x 321x 321x 121x 12 b. 1x2 921x2 42 c. 1x 22 1x2 2x 421x 121x2 x 12 25. a. 1n 121n 12 b. 1n 121n2 n 12 c. 1n 121n2 n 12 d. 7x12x 1212x 12 27. 1a 52 1a 22 29. 21x 221x 102 31. 113m 8213m 82 33. 1r 32 1r 62 35. 12h 321h 22 37. 13k 42 2 39. 3x12x 721x 32 41. 4m1m 521m 22 43. 1a 521a 122 45. 12x 5214x2 10x 252 47. prime 49. 1x 521x 321x 32 51. a. H b. E c. C d. F e. B f. A g. I h. D i. G 53. 2r 1r h2, 7000 cm2; 21,991 cm2 1 55. V h1R r21R r2; 6 cm3; 18.8 cm3 3 57. V x1x 521x 32 a. 3 in. b. 5 in. c. V 2412921272 18,792 in3 v v 59. L L0 a1 ba1 b L 12211 0.752 11 0.752 B c c 3 27 in. 7.94 in. 61. a. 18 14x4 x3 6x2 322 1 b. 18 112b5 3b3 8b2 182 63. 2x116x 27216x 52 65. 1x 321x 321x2 92 67. 1p 121p2 p 121p 121p2 p 12 69. 1q 521q 521q 2321q 232
Exercises R.5, pp. 51–54 1. 1; 1 3. common denominator 5. F; numerator should be 1 a4 1 x3 7. a. b. 9. a. simplified b. 3 2x1x 22 a7 x3 1 11. a. 1 b. 1 13. a. 3ab9 b. c. 11y 32 d. 9 m 3x 5 2n 3 15. a. b. 2x 3 c. x 2 d. n 2 n 1p 42 2 1a 221a 12 3 15 17. 19. 1 21. 23. 25. 1a 321a 22 4 2 p2 81a 72 y y3 m x 0.3 27. 29. 31. 33. 35. a5 x m4 3y1y 42 x 0.2 1 n 31a2 3a 92 5 2n 1 3 20x 37. 39. 41. 43. 2 2 n 8x2 n 3 14y x 5m 37 2 3m 16 45. 47. 49. 51. p6 1m 421m 42 m7 8x2y4 y 11 1 2a 5 53. 55. 57. 1y 621y 52 1a 421a 52 y1 2 2 y 26y 1 m 6m 21 59. 61. 15y 121y 321y 22 1m 32 2 1m 32 1 5 1 5p 2 x2 1 4a 63. a. 2 ; b. 2 3 ; 65. 67. p 1 p a 20 p p2 x x x3
3 2 1 2 2 m m3 x x 2 73. a. b. ; ; 3 m3 2 x2 2 1 1 2 m x 12x h2 f2 f1 a 75. 77. 79. f1 f2 x1x h2 2x2 1x h2 2 81. a. $300 million; $2550 million 83. Price rises rapidly for first four b. It would require many resources. days, then begins a gradual c. No decrease. Yes, on the 35th day of trading. 450P P Day Price 100 P 0 10 40 300 1 16.67 2 32.76 60 675 3 47.40 80 1800 4 53.51 5 52.86 90 4050 6 49.25 93 5979 7 44.91 95 8550 8 40.75 9 37.03 98 22050 10 33.81 100 ERROR
x 69. 9x 12
1
2 71. y 31
85. t 8 weeks 87. b. 20 # n 10 # n 2n2, all others equal 2 6 ac 89. ; 23 ad bc
Exercises R.6, pp. 64–68 3. 1164 2 3 1
9. a. 7p b. x 3 v 2 13. a. 2 b. not a real number c. 3x2 d. 3x e. k 3 f. h 2 7v5 15. a. 5 b. 3n3 c. not a real number d. 17. a. 4 6 4 9p 64 125 b. c. d. 19. a. 1728 b. not a real number 125 8 4q2 1 256 32n10 1 3 c. d. 21. a. b. 23. a. 3m12 b. 10pq2 1q 1 4 9 81x p2 2y4 3 9 3 c. mn 2n2 d. 4pq3 12p e. 3 17 f. 12 2 2 1. even
c. 9m2
d. x 3
25. a. 15a2
5. Answers will vary. 11. a. 4
b. 4b 1b
c.
b. 5x
x4 1y 3
7. 9
c. 6z4
3 d. 3u2v1v
d.
27. a. 2m2
3 3 15 18 1 3 12 4 d. 29. a. 2x2y3 b. x2 1x c. 1 b 3 4x z 6 5 3 1 2 6 d. 6 e. b4 31. a. 9 12 b. 14 13 c. 1612m 6 16 3 d. 5 17p 33. a. x 12x b. 2 13x 315 c. 6x22x 522 27x 323 35. a. 98 b. 115 121 c. n2 5 d. 39 12 13 37. a. 19 b. 110 165 217 1182 c. 1215 2114 36115 6142 39. Verified 3 22p2 23 2 215x 3 26b 41. Verified 43. a. b. c. d. 2 2 10b 2p 9x 3 2 6 1x 6 12 52 a e. 45. a. 12 4 111; 1.27 b. a x2 47. a. 130 215 313 312; 0.05 7 7 12 16 213 ; 7.60 49. 8.33 ft 51. a. 8210 m; b. 3 b. about 25.3 m 53. a. 365.02 days b. 688.69 days c. 87.91 days 55. a. 36 mph b. 46.5 mph 57. 12 234 219.82 m2 59. a. 1x 152 1x 152 b. 1n 11921n 1192 3 22 61. a. 1313x 391x b. Answers will vary. 63. 2
b. 3n
c.
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Practice Test, pp. 70–71 1. a. True b. True c. False; 12 cannot be expressed as a ratio of two integers. d. True 2. a. 11 b. 5 c. not a real number d. 20 3. a. 89 b. 7 c. 0.5 d. 4.6 4. a. 28 b. 0.9 c. 4 d. 7 6 3 5. a. 4439.28 6. a. 0 b. undefined 7. a. 3; 2, 6, 5 b. 2; 13 , 1 8. a. 13 b. 7.29 9. a. x3 12x 92 n 2 b. 2n 3a b 10. a. Let r represent Earth’s radius. Then 11r 119 2 represents Jupiter’s radius. b. Let e represent this year’s earnings. Then 4e 1.2 million represents last year’s earnings. 11. a. 9v2 3v 7 b. 7b 8 c. x2 6x 12. a. 13x 4213x 42 b. v12v 32 2 m6 25 2 2 c. 1x 521x 321x 32 13. a. 5b3 b. 4a12b12 c. d. p q 4 8n3 14. a. 4ab
2
b. 6.4 10
0.064
c.
a12 b4c8
d. 6
15. a. 9x 25y b. 4a 12ab 9b 16. a. 7a4 5a3 8a2 3a 18 b. 7x4 4x2 5x 17. a. 1 31m 72 2n x5 x5 b. c. x 3 d. e. f. 2n 3x 2 3x 1 51m 421m 32 2 64 1 12 18. a. x 11 b. c. d. e. 11 110 3v 125 2 2 110x f. x2 5 g. h. 21 16 122 19. 0.5x2 10x 1200; 5x a. 10 decreases of 0.50 or $5.00 b. Maximum revenue is $1250. 20. 58 cm 4
2
2
2
19. 5x| x 26; 3 2, q 2 23. 5a |a 26; 3 2 1
0
25. 5n |n 16;
3. literal; two 5. Answers will vary. 7. x 3 27 6 9. v 11 11. b 13. b 15 15. m 17. x 12 5 4 19. x 12 21. p 56 23. a 3.6 25. v 0.5 20 12 27. n 29. p 31. contradiction; { } 21 5 P 11 33. conditional; n 35. identity; 5x |x 6 37. C 10 1M 3V 2Sn T1P2V2 C 39. r 41. T2 43. h 4r2 45. n 2 P1V1 a1 an 21S B2 20 A C 16 x 47. P 49. y x 51. y S B B 9 3 4 x 5 55. a 3; b 2; c 19; x 7 53. y 5 57. a 6; b 1; c 33; x 16 3 59. a 7; b 13; c 27; x 2 61. h 17 cm 63. 510 ft 65. 56 in. 67. 3084 ft 69. 48; 50 71. 5; 7 73. 11: 30 A.M. 75. 36 min 77. 4 quarts; 50% O.J. 79. 16/lb; $1.80/lb 81. 12 lb 83. 16 lb 85. Answers will vary 87. 69 89. 3 91. a. 12x 3212x 32 b. 1x 321x2 3x 92
Exercises 1.2, pp. 92–95 1. set; interval 3. intersection; union 7. w 45 9. 250 6 T 6 450 1
2
2
[
0
27. 5x| x 6
1
3
)
3
5. Answers will vary.
4
2
32 5 6;
5
; a 32, q2
3
; n 3 1, q2
)
10 9 8 7 6 5 43 2 1 0
29. 35. 37. 39. 41.
)
4 3 2 1
43. x 32, 52 ;
[
3 2 1
0
)
0
1
1
2
2
3
4
3
)
5
6
3
4
45. no solution 47. x 1q, q 2 ; 4 3 2 1
0
1
2
[
0
1 51. x 1 1 3 , 4 2;
1
0.5
)(
0
0.5
53. x 1q, q 2; 4 3 2 1
55. x 34, 12;
0
1
[
6 5 4 3 2 1
2
1
59. x 116, 82;
[
1
1
3
4
2
3
0.8
[
0
20 1612 8 4
)
0
57. x 31.4, 0.8 4; 1.4
[
2
1
0
1
4
2
)
8
12
61. m 1q, 02 ´ 10, q 2 63. y 1q, 72 ´ 17, q 2 65. a 1q, 12 2 ´ 1 12 , q 2 67. x 1q, 42 ´ 14, q2 69. x 3 2, q 2 71. n 3 4, q 2 73. b 3 43 , q 2 75. y 1q, 2 4 BH2 77. a. W b. W 6 177.34 lb 79. x 81% 81. b $2000 704 83. 0 6 w 6 7.5 m 85. 7.2° 6 C 6 29.4° 87. h 7 6 89. Answers may vary. 91. 93. 95. 97. 99. 2n 8 101. 17 18 x 5
Exercises 1.3, pp. 101–103 4
13. 4 3 2 1 0 1 2 3 4 [5 6 15. 4 3 2 1 0 )1) 2 3 4 5 6
; x 1q, 32 5 2
{ } 31. 5x| x 6 33. 5x |x 6 526; 53, 2, 1, 0, 1, 2, 3, 4, 6, 86 5 6; 53, 2, 1, 0, 1, 2, 3, 4, 5, 6, 76 54, 66; 52, 4, 5, 6, 7, 86 x 1q, 22 ´ 11, q 2;
6 5 4 3 2 1
1. identity; unknown
0
[
1
21. 5x |2 x 16; 32, 14
[
Exercises 1.1, pp. 82–85
11. 3 2 1
17. 43 21 0 1 2) 3 4 5) 6 7
49. x 35, 0 4;
CHAPTER 1
SA3
5. no solution; answers will vary. 7. 54, 66 1 1 8 9. 52, 126 11. 53.35, 0.856 13. e , 2 f 15. e , f 7 2 2 17. { } 19. 510, 66 21. {3.5, 11.5} 23. 51.6, 1.66 3 8 14 d 25. 35, 9 4 27. 29. a1, b 31. 15, 32 33. c , 5 3 3
1. reverse
3. 7; 7
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Student Answer Appendix
7 35. 37. c , 0 d 4
39. 1q, 102 ´ 14, q 2
41. 1q, 3 4 ´ 3 3, q 2 45. aq, 3 d ´ 3 1, q2 7
43. aq, 7 d ´ c 7 , qb 3 3
47. 1q, q2
49. 1q, 02 ´ 15, q 2 .
51. 1q, 0.754 ´ 33.25, q 2
53. aq, 7 b ´ 11, q2 15 55. 45 d 51 in. 57. in feet: [32,500, 37,600]; yes 59. in feet: d 6 210 or d 7 578 61. a. s 37.58 3.35 b. [34.23, 40.93] 63. a. s 125 23 b. [102, 148] 65. a. | d 42.7| 6 0.03 b. |d 73.78 | 6 1.01 c. | d 57.150 | 6 0.127 d. |d 2171.05 | 6 12.05 e. golf: t 0.0014
67. a. x 4
e. { } 69. 3x 12x 5213x 42
4 b. c , 4 d 3
c. x 0
1. a. r 9
b. x 6
e. contradiction: { }
c. identity; m
f. x 5.5
3 d. aq, d 5
3 13 71. 0.21 6
Mid-Chapter Check, pp. 103–104
2. v0
d. y
50 13
H 16t2 t
S B 12 y2 4. a. x 1 or x 2 3. x
[
4 3 2 1
0
[
1
2
3
b. 16 6 x 19 0
15
(
[
20
5 5 17 5. a. x aq, b ´ a , qb b. x aq, d 2 2 6 6. a. 54, 146 b. { } 7. a. q 18, 02 b. 566 23 19 8. a. d 1q, 04 ´ 34, q2 b. y aq, b ´ a , q b 2 2 c. k 1q, q 2 9. 1 hr, 20 min 10. w 38, 26 4 ; yes
Reinforcing Basic Concepts pp. 104 Exercise 1: x 3 or x 7 Exercise 2: x 3 5, 3 4 Exercise 3: x 1q, 1 4 ´ 3 4, q 2
Exercises 1.4, pp. 111–114 1. 3 2i 3. 2; 3 12 5. (b) is correct. 7. a. 4i b. 7i c. 3 13 d. 612 9. a. 3i 12 b. 5i 12 c. 15i d. 6i 11. a. i 119 2 13 312 i d. i 13. a. 1 i; a 1, b 1 b. i131 c. 5 8 b. 2 13i; a 2, b 13 15. a. 4 2i; a 4, b 2 b. 2 12i; a 2, b 12 17. a. 5 0i; a 5, b 0 b. 0 3i; a 0, b 3 19. a. 18i; a 0, b 18 12 12 i; a 0, b b. 21. a. 4 5 12i; a 4, b 5 12 2 2 b. 5 313i; a 5, b 3 13 7 7 12 7 712 1 110 1 110 i; a , b i; a , b b. 4 8 4 8 2 2 2 2 25. a. 19 i b. 2 4i c. 9 10 13i 27. a. 3 2i b. 8 1 1 c. 2 8i 29. a. 2.7 0.2i b. 15 i c. 2 i 12 8 31. a. 15 b. 16 33. a. 21 35i b. 42 18i 23. a.
a. 12 5i b. 1 5i 37. a. 4 5i; 41 b. 3 i12; 11 a. 7i; 49 b. 12 23 i; 25 41. a. 41 b 74 43. a. 11 b 17 36 36 a. 5 12i b 7 24i 47. a. 21 20i b 7 612i no 51. yes 53. yes 55. yes 57. yes 59. Answers will vary. 4 2 61. a. 1 b. 1 c. i d. i 63. a. i b. i 7 5 21 14 10 15 3 2 65. a. i b. i 67. a. 1 i b. 1 i 13 13 13 13 4 3 69. a. 113 b. 5 c. 111 71. A B 10 AB 40 73. 7 5i 75. 25 5i V 77. 74 i 79. a. 1x 6i21x 6i2 b. 1m i 1321m i 132 c. 1n 2i 1321n 2i 132 d. 12x 7i212x 7i2 81. 8 6i 83. a. P 4s; A s2 b. P 2L 2W; A LW 85. John
35. 39. 45. 49.
Exercises 1.5, pp. 124–128 1. descending; 0 3. quadratic; 1 5. GCF factoring: x 0, x 54 7. a 1; b 2; c 15 9. not quadratic 11. a 14 ; b 6; c 0 13. a 2; b 0; c 7 15. not quadratic 17. a 1; b 1; c 5 19. x 5 or x 3 21. m 4 23. p 0 or p 2 25. h 0 or h 1 27. a 3 or a 3 2 29. g 9 31. m 5 or m 3 or m 3 33. c 3 or c 15 35. r 8 or r 3 37. t 13 or t 2 39. x 5 or x 3 41. w 12 or w 3 43. m 4 45. y 217; y 5.29 47. no real solutions 49. x 121 51. n 9; n 3 4 ; x 1.15 53. w 5 13; w 3.27 or w 6.73 55. no real solutions 57. m 2 3 12 59. 9; 1x 32 2 7 ; m 2.61 or m 1.39 3 2 1 1 2 9 61. 4 ; 1n 2 2 63. 9 ; 1p 3 2 65. x 1; x 5 67. p 3 16; p 5.45 or p 0.55 69. p 3 15; p 0.76 or p 5.24 113 71. m 3 2 2 ; m 0.30 or m 3.30 73. n 52 3 15 2 ; n 5.85 or n 0.85 75. x 12 or x 4 77. n 3 or n 3 2 79. p 38 141 8 ; p 1.18 or p 0.43 7 133 81. m 2 2 ; m 6.37 or m 0.63 83. x 6 or x 3 85. m 52 87. n 2 2 15 ; n 2.12 or n 0.12 89. w 23 or w 1 2 91. m 32 16 93. n 32 2 i; m 1.5 1.12i 95. w 4 97. a 16 123 5 or w 2 6 i; a 0.16 0.80i 99. p 3 52 16 ; p 1.58 or p 0.38 101. w 1 10121 ; w 0.56 or w 0.36 103. a 34 131 4 i; a 0.75 1.39i 105. p 1 3 12 2 i; p 1 2.12i 12 107. w 1 3 3 ; w 0.14 or w 0.80 6 3 12 109. a ; a 0.88 or a 5.12 2 111. p 4 61394 ; p 3.97 or p 2.64 113. two rational; factorable 115. two complex 117. two rational; factorable 119. two complex 121. two irrational 123. one repeated; factorable 125. x 32 12 i 127. x 12 i 13 2 129. x 54 3i 417 133. t 6
1138 2 2
131. t v
2v2 64h 32
sec, t 8.87 sec
135. 30,000 ovens
137. a. P x 120x 2000 b. 10,000 139. t 2.5 sec, 6.5 sec 141. x 13.5, or the year 2008 143. 36 ft, 78 ft 145. a. 7x2 6x 16 0 b. 6x2 5x 14 0 3 c. 5x2 x 6 0 147. x 2i; x 5i 149. x i; x 2i 4 151. x 1 i; x 13 i 153. a. P 2L 2W, A LW b. P 2r, A r2 c. A 12 h1b1 b2 2, P c h b1 b2 d. A 12 bh, P a b c 155. 700 $30 tickets; 200 $20 tickets
Exercises 1.6, pp. 137–142 1. excluded 3. extraneous 5. Answers will vary. 7. x 2, x 0, x 11 9. x 3, x 0, x 23 11. x 32 , x 0, x 3 13. x 0, x 2, x 1 i13
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Student Answer Appendix x 2, x 5 17. x 3, x 2i 19. x 15, x 6 x 0, x 7, x 2i 23. x 3, x 3i x 4, x 4i 27. x 12, x 1, i x 1, x 2, x 1 i 13 1 i 13 33. x 1 35. a 32 x 12 i 13 2 , x 2 2 , x 1 y 12 39. x 3; x 7 is extraneous 41. n 7 f1f2 E IR E 43. a 1, a 8 45. f 47. r or R f1 f2 I I
15. 21. 25. 29. 31. 37.
3V 3V 51. r3 53. a. x 14 3 4 r2 b. x 8, x 1 is extraneous 55. a. m 3 b. x 5 c. m 64 d. x 16 57. a. x 25 b. x 7; x 2 is extraneous c. x 2, x 18 d. x 6; x 0 is extraneous 59. x 32 61. x 9 63. x 32, x 22 65. x 27, 125 67. x 5, x i 69. x 1, 2 71. x 1, 14 73. x 13 , 12 75. x 4, 45 S 2 77. x 6; x 74 79. a. h a b r2 9 is extraneous B r b. S 12 134 m2 81. x 3, x 2 83. x 2, 4, 6 or x 2, 0, 2 85. 11 in. by 13 in. 87. r 3 m; r 0 and r 12 m do not fit the context 89. either $50 or $30 91. a. 32 ft, 1h 322 b. 11 sec c. pebble is at canyon’s rim 93. 12 min 95. v 6 mph 97. P 52.1% 99. a. 36 million mi b. 67 million mi c. 93 million mi d. 142 million mi e. 484 million mi f. 887 million mi 101. The constant “3” was not multiplied by the LCD, 103. x 1, 22 ´ 12, q 2 3x1x 328x x 3; x 1, 1 105. a. x 5, 3, 5, 7 b. x 2, 1, 6, 7 c. x 2, 1, 3 d. x 4, 2, 3 e. x 1, 1, 7 f. x 1, 1, 2, 7 107. 2111 cm 109. 1 6 x 6 5; 49. h
)
2 1
) 0
1
2
3
4
5
6
Summary and Concept Review, pp. 142–146 3. n 4 4. m 1 V 5. x 16 6. no solution 7. g 10 8. h 2 9. L P 2 2W r 10. x c a b 11. y 23 x 2 12. 8 gal 13. 12 98 ft2 15.5 ft2 14. 23 hr 40 min 15. a 35 16. a 6 2 17. s 65 18. c 1200 19. 15, q2 20. 110, q2 21. 1 q, 2 4 23 22. 19, 94 23. 1 6, q 2 24. A q, 8 5 B ´ A 10 , q B 25. a. 1q, 32 ´ 13, q2 b. A q, 32 B ´ A 32 , q B c. 35, q 2 d. 1q, 6 4 26. x 96% 27. {4, 10} 28. 57, 36 29. 55, 86 30. 54, 16 31. 1q, 62 ´ 12, q 2 32. [4, 32] 33. { } 34. { } 35. 1q, q 2 36. 3 2, 6 4 37. 1q, 2 4 ´ 3 10 3 , q2 38. a. r 2.5 1.7 b. highest: 4.2 in., lowest: 0.8 in. 39. 6 12i 40. 2413i 41. 2 12i 42. 3 12i 43. i 44. 21 20i 45. 2 i 46. 5 7i 47. 13 48. 20 12i 49. 15i2 2 9 34 15i2 2 9 34 25i2 9 34 25i2 9 34 25 9 34 ✓ 25 9 34 ✓ 50. 12 i 152 2 412 i 152 9 0 12 i152 2 412 i 152 9 0 4 4i15 5i2 8 4i 15 9 0 4 4i15 5i2 8 4i 15 9 0 5 152 0 ✓ 5 152 0 ✓ 51. a. 2x2 3 0; a 2, b 0, c 3 b. not quadratic c. x2 8x 99 0; a 1, b 8, c 99 d. x2 16 0; a 1, b 0, c 16 52. a. x 5 or x 2 b. x 5 or x 5 c. x 53 or x 3 d. x 2 or x 2 or x 3 53. a. x 3 b. x 2 15 c. x 15i d. x 5 54. a. x 3 or x 5 b. x 8 or x 2 c. x 1 110 d. x 2 or x 13 2 ; x 2.58 or x 0.58 55. a. x 2 15 i; x 2 2.24i b. x 3 2 12 ; x 2.21 or x 0.79 c. x 32 12 i 56. a. 1.3 sec b. 4.7 sec c. 6 sec
1. a. yes
b. yes
c. yes
2. b 6
SA5
57. a. 0.8 sec b. 3.2 sec c. 5 sec 58. $3.75; 3000 59. 6 hr 60. x 13, x 7 61. x 2, x 0, x 13 62. x 0, x 2, x 1 13i 63. x 12 , x 12 i 64. x 1 2 65. h 53 , h 2 66. n 13; n 2 is extraneous 67. x 3; x 3 68. x 4; x 5 69. x 1; x 7 is extraneous 70. x 52 71. x 5.8; x 5 72. x 2, x 1, x 4, x 5 73. x 3, x 3, x i 12, x i 12 74. a. 12,000 kilocalories b. 810 kg 75. width, 6 in.; length, 9 in. 76. 1 sec; 244 ft; 8 sec 77. $24 per load; $42 per load
Mixed Review, pp. 147–147
4 1. a. x 18, q 2 b. x 1q, 4 3. a. x 2, x 5i 3 2 ´ 1 3 , q2 b. x 0, x 5, x 52 5i 213 c. x 73 , x 53 d. 1q, 3 4 ´ 327, q 2 e. v 27 f. x 80 5. y 3 4 x 3 7. a. x 2 b. n 5 9. x 7, 11 11. x 16, 16 13. x 45 15. x 15, i 15 17. a. v 6, 2 is extraneous b. x 5; x 4 c. x 2; x 18 is extraneous 19. 6¿10–
Practice Test, pp. 147 P 1. a. x 27 b. x 2 c. C 1 d. x 4, x 1 k 2. 30 gal 3. a. x 7 30 b. 5 x 6 4 c. x d. x 2, x 4 e. x 6 4 or x 7 2 4. S 177 5. z 3, z 10 6. x 5i 7. x 1 i13 8. x 1, x 4 9. x 23 , x 6 10. x 2, x 32 11. x 6, x 2 is extraneous 12. x 32 , x 2 13. x 16, x 4 is extraneous 14. x 11, x 5 15. a. $4.50 per tin b. 90 tins 16. a. t 5 (May) b. t 9 (Sept.) c. July; $3000 more 17. 43 i 15 18. i 19. a. 1 b. i13 3 c. 1 20. 32 32 i 21. 34 22. 12 3i2 2 412 3i2 13 0 5 12i 8 12i 13 0 0 0 ✓ 23. a. x 5 12 2 b. x 54 i 17 24. a. x 3 3 13 b. x 1 3i 4 25. a. F 64.8 g b. W 256 g
Strengthening Core Skills pp. 149–150 7 7# 7 5 b c 112 ✓ 112 ✓ 2 2 a 2 2 a 2 3 12 2 3 12 # 2 312 2 3 12 4 b Exercise 2: ✓ 2 2 2 a 2 2 14 7 c ✓ 4 2 a b Exercise 3: 15 213i2 15 2 13i2 10 ✓ a c 15 2 13i2 15 213i2 25 12 37 ✓ a Exercise 1:
CHAPTER 2 Exercises 2.1, pp. 161–164 1. first, second 3. radius, center 5. Answers will vary. 7. Year in D 51, 2, 3, 4, 56 college GPA R 52.75, 3.00, 3.25, 3.50, 3.756 1
2.75
2
3.00
3
3.25
4
3.50
5
3.75
9. D 51, 3, 5, 7, 96; R 52, 4, 6, 8, 106 11. D 54, 1, 2, 36; R 50, 5, 4, 2, 36 13. y
x
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
y
6
5
3
3
0
1
3
1
6
3
8
13 3
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA6
SA6
Student Answer Appendix
15.
10 8 6 4 2 108642 2 4 6 8 10
17.
y
y
3
0
2, 2
1
3, 3
3 6 7
108642 2 4 6 8 10
10 8 6 4 2 108642 2 4 6 8 10
1 2 3 4 5 x
y
0
10 8 6 4 2
19.
y
x
2
21.
61. 1x 52 2 1y 42 2 9
y
2 4 6 8 10 x
x
y
4
3
2
3
3
4
0
1
0
5
5, 5
2
3
2
121
8, 8
3
8
3
4
9, 9
4
15
4
3
23.
y
5 4 3 2 1 108642 1 2 3 4 5
2 4 6 8 10 x
x
y
3, 3
9
2
5
2, 2
2
1
4
13, 13
1
0
2
1, 1
0
1
0.5, 0.5
4
3 1 5
0
7
2
108642 2 4 6 8 10
2 4 6 8 10 x
108642 2 4 6 8 10
49. 1x 42 2 1y 32 2 4 10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
53. 1x 12 2 1y 22 2 9 10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
57. 1x 72 2 1y 12 2 100 20 16 12 8 4 2016 1284 4 8 12 16 20
y
4 8 12 16 20 x
108642 2 4 6 8 10
y
2 4 6 8 10 x
65. 11, 22, r 2 13, x 31 2 13, 1 2 134, y 32 2 13, 2 2 134
10 8 6 4 2 108642 2 4 6 8 10
67. 14, 02, r 9, x 313, 5 4 , y 39, 9 4
15 12 9 6 3 1512963 3 6 9 12 15
15 12 9 6 3 1512963 3 6 9 12 15
71. 1x 52 2 1y 22 2 25, 15, 22, r 5
1 1 (3, 1) 27. (0.7, 0.3) 29. A 20 , 24 B 31. (0, 1) (1, 0) 35. 2134 37. 10 39. not a right triangle not a right triangle 43. right triangle 47. 1x 52 2 y2 3 x2 y2 9 10 8 6 4 2
10 8 6 4 2
69. 1x 52 2 1y 62 2 57, (5, 6), r 157
y
y
2 4 6 8 10 x
63. (2, 3), r 2, x 30, 44 , y 3 1, 54
2 4 6 8 10 x
x
10 8 6 4 2
y
y
10
1
10 8 6 4 2 108642 2 4 6 8 10
8
1.25
25. 33. 41. 45.
54321 3 6 9 12 15
2 4 6 8 10 x
x
15 12 9 6 3
108642 2 4 6 8 10
73. x2 1y 32 2 14, 10, 32, r 114
75. 1x 22 2 1y 52 2 11, 12, 52, r 111
51. 1x 72 2 1y 42 2 7 10 8 6 4 2 108642 2 4 6 8 10
77. 1x 72 2 y2 37, 17, 02, r 137
55. 1x 42 2 1y 52 2 12 10 8 6 4 2 108642 2 4 6 8 10
59. 1x 32 2 1y 42 2 41 15 12 9 6 3 1512963 3 6 9 12 15
y
3 6 9 12 15 x
15 12 9 6 3 1512963 3 6 9 12 15
y
2 4 6 8 10 x
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
10 8 6 4 2
79. 1x 32 2 1y 52 2 32, 13, 52, r 4 12
15 12 9 6 3 1512963 3 6 9 12 15
y
2 4 6 8 10 x
y
3 6 9 12 15 x
y
3 6 9 12 15 x
y
2 4 6 8 10 x
y
2 4 6 8 10 x
y
2 4 6 8 10 x
y
3 6 9 12 15 x
y
3 6 9 12 15 x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA7
Student Answer Appendix 33. m 1; 12, 42 and 11, 32
81. a. (1, 71.5), (2, 84), (3, 96.5), (5, 121.5), (7, 146.5); yes b. $159 c. 2011 d. s 155 145 135 125 115 105 95 85 75 65
35. m 43 ; 17, 12 and 11, 92 y
y
(7, 146.5)
8
8
8
(4, 6) (3, 5)
4 4
4
8
SA7
(10, 3)
4 8
x
4
4
4
4
8
8
8
x
(4, 5)
(1, 71.5)
37. m 15 4 ; 11, 82 and 11, 12 2
0 1 2 3 4 5 6 7 8 9 10 t
83. a. 1x 52 2 1y 122 2 625 b. no 85. Red: 1x 22 2 1y 22 2 4; Blue: 1x 22 2 y2 16; Area blue 12 units2 y 87. No, distance between centers is less than sum of 15 12 radii. 89. Answers will vary. 9
y
39. m 4 7 ; 110, 102 and 111, 22 y
8
(3, 7)
8
(3, 6) 4
4 8
4
4
8
8
x
4 8
(4, 2)
4
4
8
x
4
(1, 8)
8
6 3 1512963 3 6 9 12 15
41. a. m 125, cost increased $125,000 per 1000 sq ft b. $375,000 43. a. m 22.5, distance increases 22.5 mph b. about 186 mi 45. a. m 23 6 , a person weighs 23 lb more for each additional 6 in. in height b. 3.8 47. In inches: (0, 6) and (576, 18): m 1 48 . The sewer line is 1 in. deeper for each 48 in. in length. 49. 51. y y
3 6 9 12 15 x
91. a. center: 16, 22; r 0 (degenerate case) b. center: (1, 4); r 5 c. r2 1; degenerate case 93. a. 0 b. not possible c. 0.3; many answers possible d. not possible e. not possible f. 13; many answers possible 95. n 1 is a solution, n 2 is extraneous
10 8
(3, 0)
Exercises 2.2, pp. 174–177 1. 0, 0 7.
3. negative, downward 5.
x
y
6
6
3
4
0
2
3
0
y
10 8 6 (6, 6) 4 (3, 4) 2 (0, 2) (3, 0) 108642 2 2 4 6 8 10 x 4 6 8 10
11. 0.5 32 132 4 0.5 92 4 0.5 0.5 ✓ 19 3 1 4 2 12 2 4 19 3 4 4 4 19 4
15.
10 8 6 4 2
10 8 6 4 (6, 0)2
y
17.
y
23.
108642 2 2 4 6 8 10 x 4 (0, 4) (3, 6) 6 8 10
27.
10 8 6 4 (5, 0) 2
y
108642 2 2 4 6 8 10 x (0, 2) 4 6 (5, 4) 8 10
29.
y
2
1
0
4
2
7
4
10
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
y
10 8 (2, 8) 6 4 (T, 0) 2 (0, 3)
y
10 8 6 4 2 108642 2 4 6 8 10
19.
(2, 0)
25.
(4, 6) (2, 3) (0, 0) 2 4 6 8 10 x
(2, 4) (2, 0) 2 4 6 8 10 x
(2, 6)
(q, 0) 8
40
53. L1: x 2; L2: y 4; point of intersection (2, 4) 55. a. For any two points chosen m 0, indicating there has been no increase or decrease in the number of supreme court justices. 1 b. For any two points chosen m 10 , which indicates that over the last 5 decades, one nonwhite or nonfemale justice has been added to the court every 10 yr. 57. parallel 59. neither 61. parallel 63. not a right triangle 65. not a right triangle 67. right triangle 69. a. 76.4 yr b. 2010 71. v 1250t 8500 a. $3500 b. 5 yr 73. h 3t 300 a. 273 in. b. 20 months 30 75. Yes they will meet, the two roads are not parallel: 38 12 9.5 . 77. a. $3789 b. 2012 79. a. 23% b. 2005 81. a 6 83. a. 142 b. 83 c. 9 d. 27 2 85. perimeter of a rectangle, volume of a rectangular prism, volume of a right circular cylinder, circumference of a circle 87. 2 hr
Exercises 2.3, pp. 186–190
y 80
1. (0, 25)
4 40
4
8
x
80
31.
y
y
10 8 6 4 (4, R) 2
108642 2 2 4 6 8 10 x 4 6 (0, R) 8 10
2 4 6 8 10 x
10 8 6 4 2 (0, 0) (4, 2) 108642 2 2 4 6 8 10 x 4 6 (2, 1) 8 10
108642 2 4 6 8 10
2 4 6 8 10 x
y
10 (4, 10) 8 (2, 7) 6 4 (0, 4) (2, 1) 2
10 8 6 (0, 6) 4 (1, 3) 2 (2, 0)
108642 2 4 6 8 10
2 4 6 8 10 x
no m1 # m2 1
x
4 2
108642 2 (3, 4) 4 6 8 10
y
108642 2 4 6 8 10
19 4 ✓
108642 2 4 6 8 10
21.
13.
yes m1 m2 9.
10 8 6 4 2
(3, 5) 6
y
10 8 6 4 (0, 4) 2 (3, 0) 108642 2 2 4 6 8 10 x 4 6 (6, 4) 8 10
7 4 ;
(0, 3)
3. 2.5
7. y 4 5 x 2 x 5 2 0 1 3
y 6 18 5
2 6 5 2 5
5. Answers will vary
9. y 2x 7 x 5 2 0 1 3
y 3 3 7 9 13
11. y 5 3 x 5 x 5 2 0 1 3
y 10 3 5 3
5 20 3
10
5 13. y 2x 3: 2, 3 15. y 5 3 x 7: 3 , 7 35 17. y 35 : , 4 x 4 6 6
cob19529_saa_SA01-SA14.qxd 1/3/09 20:34 Page SA8 User-S178 MAC-OSX_1:Users:user-s178:Desktop:03/01/09:MHDQ092-SAA:
SA8 19.
Student Answer Appendix y
10 8 6 (0, 5) 4 2 (3, 1) 108642 2 2 4 6 8 10 x 4 (6, 3) 6 8 10
21.
23.
y
10 8 6 4 2
10 8
(6, 5) 6 4 2
108642 2 4 6 8 10
108642 2 4 6 8 10
2 4 6 8 10 x
(0, 2) (2, 5) (4, 8)
y (0, 4) (6, 3) 2 4 6 8 10 x
25. a. 3 b. y 3 c. The coeff. of x is the slope and the con4 4 x 3 stant is the y-intercept. 27. a. 25 b. y 25 x 2 c. The coeff. of x is the slope and the constant is the y-intercept. 29. a. 45 b. y 45 x 3 c. The coeff. of x is the slope and the constant 2 is the y-intercept. 31. y 2 3 x 2, m 3 , y-intercept (0, 2) 5 5 33. y 4 x 5, m 4 , y-intercept (0, 5) 35. y 13 x, m 13 , 3 y-intercept (0, 0) 37. y 3 4 x 3, m 4 , y-intercept (0, 3) 2 39. y 3 x 1 41. y 3x 3 43. y 3x 2 75 45. y 250x 500 47. y 2 x 150 49. y 2x 13 3 y 51. y 5 x 4 53. y 23 x 5 55. 10 y
10 8 6 4 (0, 4) 2 108642 2 4 6 8 10
57.
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
63. y 25 x 4 69. 77. 79. 81. 83.
108642 2 4 6 8 10
2 4 6 8 10 x
(0, 5)
59.
y
8 6 4 2
y
10 8 6 4 2
108642 2 4 6 8 10
65. y 5 3 x 7
61.
y
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
29 67. y 12 5 x 5
y 5 71. perpendicular 73. neither 75. neither 5 a. y 3 b. y 43 x 20 4 x 2 3 4 31 3 a. y 9 x 9 b. y 9 4 x 4 1 a. y 2 x 2 b. y 2x 2 85. y 4 38 1x 32 y 5 21x 22 10 8 6 4 2
108642 2 4 6 8 10
y
2 4 6 8 10 x
87. y 3.1 0.51x 1.82
10 8 6 4 2 8642 2 4 6 8 10
y
2 4 6 8 10 12 x
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
89. y 2 65 1x 42 ; For each 5000 additional sales, income rises $6000. 91. y 100 20 1 1x 0.52 ; For every hour of television, a student’s 1 final grade falls 20%. 93. y 10 35 2 1x 2 2 ; Every 2 in. of rainfall increases the number of cattle raised per acre by 35. 95. C 97. A c 99. B 101. D 103. m a a. m 3 b , y-intercept b 4 , y-intercept 5 (0, 2) b. m 2 , y-intercept ( ) c. , 0, 3 m 5 6 y-intercept (0, 2) d. m 53 , y-intercept (0, 3) 105. a. As the temperature increases 5°C, the velocity of sound waves increases 3 m/s. At a temperature of 0°C, the velocity is 331 m/s. b. 343 m/s c. 50°C 107. a. V 20 b. Every 3 3 t 150 yr the value of the coin increases by $20; the initial value was $150. c. $223.33 d. 15 years, in 2013 e. 3 yr 109. a. N 7t 9 b. Every 1 yr the number of homes with Internet access increases by 7 million. c. 1993 d. 86 million e. 13 yr f. 2010 111. a. P 58,000t 740,000 b. Each year, the prison population increases by 58,000. c. 1,726,000 113. Answers will vary.
115. (1) d (2) a (3) c (4) b (5) f (6) h 117. x 5 23 113 ; x 0.74 or x 4.07 119. 113.10 yd2
Exercises 2.4, pp. 200–205 1. first 3. range 5. Answers will vary. 7. function 9. Not a function. The Shaq is paired with two heights. 11. Not a function; 4 is paired with 2 and 5. 13. function 15. function 17. Not a function; 2 is paired with 3 and 4. 19. function 21. function 23. Not a function; 0 is paired with 4 and 4. 25. function 27. Not a function; 5 is paired with 1 and 1. 29. function 31. function 33. function y y 5 4 3 2 1
54321 1 2 3 4 5
1 2 3 4 5 x
7 6 5 4 3 2 1
7654321 1 2 3
1 2 3 x
35. function, x 34, 5 4 , y 32, 3 4 37. function, x 34, q2 , y 34, q 2 39. function, x 34, 4 4 , y 3 5, 1 4 41. function, x 1q, q2 , y 1q, q 2 43. Not a function, x 3 3, 54 , y 3 3, 3 4 45. Not a function, x 1q, 34 , y 1q, q2 47. x 1q, 52 ´ 15, q 2 49. x 3 5 3 , q2 51. x 1q, 52 ´ 15, 52 ´ 15, q 2 53. v 1q, 3 122 ´ 13 12, 3 122 ´ 13 12, q 2 55. x 1q, q 2 57. x 1q, q2 59. x 1q, q2 61. x 1q, 22 ´ 12, 52 ´ 15, q 2 63. x 32, 52 2 ´ 1 52 , q 2
65. x 12, q2 67. x 14, q2 69. f 162 0, f 1 32 2 15 4 , f 12c2 c 3, 1 7 3 3 f 1c 12 c 71. f 162 132, f 1 2 2 4 , f 12c2 12c2 8c, 2 2 1 9 f 1c 12 3c2 2c 1 73. h132 1, h1 2 3 2 2 , h13a2 , a 3 75. h132 5, h1 2 h1a 22 3 2 5, h13a2 5 if a 6 0 or a2 |a 2 | 5 if a 7 0, h1a 22 5a b a2 3 77. g142 8, ga b 3, g12c2 4c, g1c 32 21c 32 2 3 9 79. g142 16, ga b , g12c2 4c2, g1c 32 1c2 6c 92 2 4 3 81. p152 213, pa 2 b 26, p13a2 26a 3, p 1a 12 22a 1 3 7 27a2 5 14 83. p152 , pa b , p 13a2 , 5 2 9 9a2 2 3a 6a 2 p1a 12 2 a 2a 1 85. a. D 51, 0, 1, 2, 3, 4, 56 b. R 52, 1, 0, 1, 2, 3, 46 c. 1 d. 1 87. a. D 35, 5 4 b. y 3 3, 4 4 c. 2 d. 4 and 0 89. a. D 33, q 2 b. y 1q, 4 4 c. 2 d. 2 and 2 1 91. a. 186.5 lb b. 37 lb 93. A 182 22 1 25 units2 2 95. a. N1g2 2.5g b. g 30, 5 4 ; N 3 0, 12.5 4 97. a. 30, q ) b. 750 c. 800 99. a. c1t2 42.50t 50 b. $156.25 c. 5 hr d. t 30, 10.6 4 ; c 30, 500 4 101. a. Yes. Each x is paired with exactly one y. b. 10 P.M. c. 0.9 m d. 7 P.M. and 1 A.M. 1 103. a. ¢fertility ¢time 20 , negative, fertility is decreasing by one child every ¢f 20 yr b. 1940 to 1950: ¢t 0.8 10 ; positive, fertility is increasing by less than 0.8 ¢f 0.2 one child every 10 yr c. 1940 to 1950: ¢f ¢t 10 ; 1980 to 1990: ¢t 10 , the fertility rate was increasing four times as fast from 1940 to 1950. 105. negative outputs become positive y x
10 8 6 4 2
108642 2 4 6 8 10
y
y
yx 2 4 6 8 10 x
10 x 8 6 y x 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA9
Student Answer Appendix 3 107. a. x 1q, 22 ´ 12, q 2 ; x 2y 1 y ; y 1q, 12 ´ 11, q 2 b. x x 1y 3; y 33, q2 109. a. 19 16 b. 1 111. a. 1x 321x 521x 52 b. 12x 321x 82 c. 12x 5214x2 10x 252
5. a. 3 b. y 5 3 4 , decreasing 4 1x 22 d. 3x 4y 14 e. (0, 72 ), (14 3 , 0) 10 8 6 4 2
Mid-Chapter Check, p. 205 1.
108642 2 4 6 8 10
y
10 8 6 4 (6, 4) 2 (3, 0) 108642 2 2 4 6 8 10 x 4 (0, 4) 6 8 10
3. positive, loss is decreasing (profit is increasing); m each year Data.com’s loss decreases by 1.5 million. y 4. y 32 x 52 10 2.
3 2,
15 12 9 6 3
yes;
1.5 1 ,
8 6 4 2 108642 2 4 6 8 10
(1, 4) (4, 2)
1 3 1x
1. a. increasing b. y 5 02 d. x 3y 15 e. (0, 5), (15, 0) 1 3,
108642 2 4 6 8 10
108642 2 4 6 8 10
108642 2 4 6 8 10
1. linear; bounce 3. increasing 5. Answers will vary. y 7. 9. even 11. even 5
5
5 x
5
y 10
1 3x
5
10
2 4 6 8 10 x
c. y 7 3 x 9
2 4 6 8 10 x
c. y 12 x 12
y
2 4 6 8 10 x
y
2 4 6 8 10 x
10 x
10
y
4. a. 34 , increasing b. y 4 34 1x 52 1 d. 3x 4y 1 e. (0, 1 4 ), (3 , 0) 10 8 6 4 2
3 6 9 12 15 x
y
3. a. 12 , increasing b. y 2 12 1x 32 d. x 2y 1 e. (0, 12 ), (1, 0) 10 8 6 4 2
y
13.
c. y
2. a. 7 b. y 9 7 3 , decreasing 3 1x 02 d. 7x 3y 27 e. (0, 9), (22 7 , 0) 10 8 6 4 2
c. y 1 2 x 6
Exercises 2.5, pp. 218–224
Reinforcing Basic Concepts, p. 206
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
5. x 3; no; input 3 is paired with more than one output. 4 6. y x 4; yes 7. a. 0 b. x 3 3, 5 4 c. 1 3 d. y 3 4, 5 4 8. from x 1 to x 2; steeper line S greater slope 9. F1p2 34 p 54 , For every 4000 pheasants, the fox population increases by 300: 1625. 10. a. x 53, 2, 1, 0, 1, 2, 3, 46 y 53, 2, 1, 0, 1, 2, 3, 46 b. x 3 3, 4 4 y 3 3, 44 c. x 1q, q 2 y 1q, q2
10 8 6 4 2
1512963 3 6 9 12 15
7 c. y 3 4 x 2
y
6. a. 1 b. y 7 1 2 , decreasing 2 1x 22 d. x 2y 12 e. (0, 6), (12, 0)
18 7
SA9
c. y 34 x 14
15. odd 17. not odd 19. neither 21. odd 23. neither 25. x 31, 1 4 ´ 3 3, q 2 27. x 1q, 12 ´ 11, 12 ´ 11, q2 29. p1x2 0 for x 3 2, q 2 31. f 1x2 0 for x 1q, 24 33. V1x2c: x 13, 12 ´ 14, 62 V1x2T: x 1q, 32 ´ 11, 42 constant: none 35. f 1x2c: x 11, 42 f 1x2T: x 12, 12 ´ 14, q2 constant: x 1q, 22 37. a. p1x2c: x 1q, q2 p1x2T: none b. down, up 39. a. f 1x2c: x 13, 02 ´ 13, q2 f 1x2T: x 1q, 32 ´ 10, 32 b. up, up 41. a. x 1q, q 2, y 1q, 52 b. x 1, 3 c. H1x2 0: x 31, 3 4 H1x2 0: x 1q, 14 ´ 33, q2 d. H1x2c: x 1q, 22 H1x2T: x 12, q 2 e. local max: y 5 at (2, 5) 43. a. x 1q, q 2, y 1q, q 2 b. x 1, 5 c. g1x2 0: x 3 1, q 2 g1x2 0: x 1q, 14 ´ 30, 3.54 d. g1x2c: x 1q, 12 ´ 15, q2 g1x2T: x 11, 52 e. local max: y 6 at (1, 6); local min: y 0 at (5, 0) 45. a. x 34, q 2, y 1q, 3 4 b. x 4, 2 c. Y1 0: x 34, 2 4 Y1 0: x 32, q 4 d. Y1c: x 14, 22 Y1T: x 12, q 2 e. local max: y 3 at (2, 3) 47. a. x , y b. x 4 c. p1x2 0: x 34, q2; p1x2 0: x 1q, 44 d. p1x2c: x 1q, 32 ´ 13, q 2; p1x2T: never decreasing e. local max: none; local min: none 49. a. x 1q, 3 4 ´ 3 3, q 2 , y 30, q 2 b. 13, 02 , (3, 0) c. f 1x2c: x 13, q2 f 1x2T: x 1q, 32 d. even 51. a. x 30, 2604, y 3 0, 804 b. 80 ft c. 120 ft d. yes e. (0, 120) f. (120, 260) 53. a. x 1q, q2; y 3 1, q2 b. (1, 0), (1, 0) c. f 1x2 0: x 1q, 1 4 ´ 3 1, q2; f 1x2 6 0: x 11, 12; d. f 1x2c: x 10, q2, f 1x2T: x 1q, 02 e. min: (0, 1)
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA10
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Student Answer Appendix
55. a. t 372, 96 4 , I 37.25, 16 4 b. I1t2c: t 172, 742 ´ 177, 812 ´ 183, 842 ´ 193, 942 I1t2T: t 174, 752 ´ 181, 832 ´ 184, 862 ´ 190, 932 ´ 194, 952 I(t) constant: t 175, 772 ´ 186, 902 ´ 195, 962 c. max: (74, 9.25), (81, 16) (global max), (84, 13), (94, 8.5), min: (72, 7.5), (83, 12.75), (93, 7.25) d. Increase: 80 to 81; Decrease: 82 to 83 or 85 to 86 y 57. zeroes: (8, 0), (4, 0), (0, 0), (4, 0); 8 min: (2, 1), (4, 0); max: (6, 2), (2, 2) 4 8
4
4
8
x
4 8
59. a. 7 b. 7 c. They are the same. d. Slopes are equal.
10 8 6 4 (1, 1) 2 54321 2 4 6 (2, 8) 8 10
19. a. absolute value; b. up/up, (1, 4), x 1, (3, 0), (1, 0), (0, 2); c. D: x , R: y 34, q 2 21. a. absolute value; b. down/down, (1, 6), x 1, (4, 0), (2, 0), (0, 4); c. D: x , R: y 1q, 64 23. a. absolute value; b. down/down, (0, 6), x 0, (2, 0), (2, 0), (0, 6); c. D: x , R: y 1q, 6 4 25. a. cubic; b. up/down, (1, 0), (1, 0), (0, 1); c. D: x , R: y 27. a. cubic; b. down/up, (0, 1), (1, 0), (0, 1); c. D: x , R: y 29. a. cube root; b. down/up, (1, 1), (2, 0), (0, 2); c. D: x , R: y 31. square root function; y-int (0, 2); x-int (3, 0); initial point (4, 2); up on right; D: x 34, q 2, R: y 32, q 2 33. cubic function; y-int (0, 2); x-int (2, 0); inflection point (1, 1); up, down; D: x , R: y 35. 37. 39. y y y 8
y
8
¢g ¢x
d.
c.
4 8
6 12
¢g b.
12.61
¢g c.
4
8
8
x
8
49.
8
4
4
8
4
8
x
4
65. i
67. e
108642 2 4 6 8 10
8
8
x
4
y 8
4
4 4
8
8
x
4
4
4
8
79.
x
Y3 4
2 4 6 8 10 x
8
4
8
Y1
y
69. j 71. l 73. c left 2, down 1 77.
y
x
4
8
4
79. no; no; Answers will vary. 83. x 2, x 10
p(x) q(x)
4
10 8 6 4 2
8
y
8
61.
4
8 Y2
8
(2, 1) 4
81. Answers will vary. 2 85. y x 1 3
57. r(x)
4
y
8
8
4
8
100 200 300 400 500
4
4
4
x
8
x
y
8
x
x
4 8
8
4
8
y
4
4
4
8
4
8
59.
63. g 75.
51.
4
55.
y
4
y
4 8
4
8
Y2
4
y
8
x
8
¢d 0.05 ¢h As height increases you can see farther, the sight distance is increasing much slower.
8
x
4 4
8
(3, 2)
x
left 3, reflected across x-axis, down 2
8
left 3, down 1
y
81.
left 1, down 2
y
8
8
4
4
(3, 1)
Exercises 2.6, pp. 234–239 1. stretch; compression 3. (5, 9); upward 5. Answers will vary. 7. a. quadratic; b. up/up, (2, 4), x 2, (4, 0), (0, 0), (0, 0); c. D: x , R: y 34, q 2 9. a. quadratic; b. up/up, (1, 4), x 1, (1, 0), (3, 0), (0, 3); c. D: x , R: y 3 4, q2 11. a. quadratic; b. up/up, (2, 9), x 2, (1, 0), (5, 0), (0, 5); c. D: x , R: y 39, q 2 13. a. square root; b. up to the right, (4, 22 , (3, 0), (0, 2); c. D: x 3 4, q2 , R: y 32, q 2 15. a. square root; b. down to the left, (4, 3), (3, 0), (0, 3); c. D: x 1q, 4 4 , R: y 1q, 34 17. a. square root; b. up to the left, (4, 0), (4, 0), (0, 4); c. D: x 1q, 4 4 , R: y 3 0, q 2
8
4
4
8
x
8
4
4
(1, 2)
8
83. left 3, reflected across x-axis, down 2
4 8 4 (0, 1)
y
y 8
4 4
4 4
8
4 (3, 2) 8
x
8
85. left 1, reflected across x-axis, stretched vertically, down 3
8
8
x
Y1
4 8
8
y 8
8
4
b.
45. p(x) 4
4
1 2 3 4 5 x
¢d 0.25 ¢h
8
8
4
4
8
4
4
8
4 4
4
y
8
8
x
4
4
8
0.49
8
y
q(x)
4
47.
8
4
8
8
53.
¢x ¢x Both lines have a positive slope, but the line at x 2 is much steeper.
y
48 42 36 30 24 18 12 6
4
43.
y
4
q(x) 8
x
8
41.
1 2 3 4 x
20 16 12 8 4
77. a.
8
8
3x2 3xh h2
54321 4 8 12 16 20
h(x)
4
(1, 1)
4 3 2 1
75. a.
4
8
p(x)
4
f(x)
4
1 2 3 4 5 x
61. a. 176 ft b. 320 ft c. 144 ft/sec d. 144 ft/sec; The arrow is going down. 63. a. 17.89 ft/sec; 25.30 ft/sec b. 30.98 ft/sec; 35.78 ft/sec c. Between 5 and 10. d. 1.482 ft/sec, 0.96 ft/sec 65. 2 2 67. 2x h 69. 2x 2 h 71. x1x h2 ¢g ¢g ¢g 73. a. 2x 2 h b. 3.9 c. 3.01 ¢x ¢x ¢x y d. The rates of change have opposite sign, with the 7 6 secant line to the left being slightly more steep. 5
654321 1 2 3
r(x)
8
g(x) 4
(2, 8)
x
8
4
4 8 4 (1, 3) 8
x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA11
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Student Answer Appendix 87. left 2, reflected across x-axis, compressed vertically down 1,
89. left 1, reflected across y-axis, reflected across x-axis, stretched vertically up 3,
y
5 4
8
4
4
8
987654321 1 2 3 4 5
x
8
91. right 3, compressed vertically up 1 8
8
4
(2, 4) 4
4
4
8
x
8
4 4
8
8
c.
y
8
d.
y
5 4321 1 2 3 4 5
x
8
4
4
4
4
8
8
x
4
4
8
8
x
4
4
4
8
8
8
95. a.
b.
y
c.
y 8
8
4
4
4
4
8
8
x
4
4
8
8
x
4
4
4
8
8
8
97. f 1x2 1x 22 2
y
8
4
4
8
f(x) x2 4 1 2 3 4 5 x
5 4321 1 2 3 4 5
F(x) F(x) x2 4 1 2 3 4 5 x
1. continuous 3. smooth 5. Each piece must be continuous on the corresponding interval, and the function values at the endpoints of each interval must be equal. Answers will vary. x2 6x 10 0 x 5 7. a. f 1x2 e 3 b. y 31, 11 4 5 5 6 x9 2x 2 1 9. 2, 2, 2 , 0, 2.999, 5 11. 5, 5, 0, 4, 5, 11 13. D: x 36, q 2 ; R: y 34, q2 y
x
y
8
4
5 4 3 2 1
Exercises 2.7, pp. 248–253
4
4
f(x)
115. p 140 in. A 1168 in2 117. f 1x2 T : x 1q, 42 f 1x2 c : x 14, q 2 y
8
4
5 4 3 2 1
x
8
d.
8
113. Any points in Quadrants III and IV will reflect across the x-axis and move to Quadrants I and II.
1 x
(0, 4) (1, 2) (5, 2) 4
4
8
g(x) 4
8
y
(3, 1)
8
4 4
93. a.
y
b.
x 10, 42 ; yes, x 14, q 2 ; yes
f(x)
4 8
y
2 1
(2, 1)4
8
y 8
(1, 3) 3
4 8
111.
8
10 8 6 4 2
x
99. p1x2 1.51x 3
108642 2 4 6 8 10
15. D: x 12, q2 ; R: y 14, q2
2 4 6 8 10 x
y 8
4 4 8
4
4
8
x
8
4
4
4
8
x
4
8
8
101. f 1x2
4 5 x
4
103.
4.2, about 65 units3, 65.4 units3, yes
V(r) 4.2r3 120 100 80
17. D: x 1q, q2 ; R: y 1q, 32, ´ 13, q2
60
54321 1 2 3 4 5
40 20 1
105.
2
3
r
compressed vertically, 2.25 sec
T(x) 5
y
5 4 3 2 1
19. x 1q, 92; y 32, q2
1 2 3 4 5 x
y 8
4
4
3 2 8
1
107.
1000
4
4 8
a. compressed vertically, b. 216 W, c. 15.6, 161.5, power increases dramatically at higher windspeeds
P(v)
800 600 400
21. x 1q, q 2; y 30, q 2
y 8 4
200 4
109.
x
8
4 20 40 60 80 100 x
8
12
16
20
24
28 v
d(t) 14 12 10 8 6 4 2
d(t) 2t2
1
2
3
4
t
8
a. vertical stretch by a factor of 2, b. 12.5 ft, c. 5, 13, distance fallen by unit time increases very fast
4
4
8
x
4 8
23. x 1q, q 2; y 1q, 62 ´ 16, q2 ; discontinuity at x 3, redefine f 1x2 6 at x 3; c 6
y 8 4 8
4
4 4 8
8
x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA12
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Student Answer Appendix
25. x 1q, q2; y 30.75, q2; discontinuity at x 1, redefine f 1x2 3 at x 1; c 3
5 49. yes; h1x2 • 2x 1 5
y 8 4 8
4
4 8
4
4 4
4
8
x
t2 6t 5
0t5 b. S1t2 30, 9 4 t 7 5 b. Each piece gives a slightly different value due to rounding of coeffiPercent cients in each model. At t 30, we 7.33 use the “first” piece: 14.13 P1302 13.08. 14.93 22.65 41.55 60.45
0.09h 0 h 1000 0.18h 90 h 7 1000 C 112002 $126
200 180 160 140 120 100 80 60 40 20
C(h)
h 200
39. C1t2 e
0.75t 0 t 25 1.5t 18.75 t 7 25 C 1452 $48.75
60 55 50 45 40 35 30 25 20 15 10 5
1000
1400
t 20
30
40
50
1.35t2 31.9t 152 0 t 12 2.5t2 80.6t 950 12 6 t 22 (12, 340)
350 250 150 50 2
6 10 14 18 22
t (years since 1980)
$498 billion, $653 billion, $782 billion 3.3m 0 m 30 43. c1m2 e ; 7m 111 m 7 30 $2.11
350
Cost of call in cents
Spending (in billions of dollars)
450
600
C(t)
10
41. S1t2 e
300 250 200 150 100
(30, 99)
50 10 20 30 40 50 60
Duration of call in min
a 6 2 10 8 2 a 6 13 6 13 a 6 20 4 20 a 6 65 2 a 65 0 10 20 30 40 50 60 70 Age in years $38 47. a. C1w 12 173 w 14 80, b. 0 6 w 13; d. 165¢, e. 165¢, f. 165¢, g. 182¢ Cost of admission
0 2 45. C1a2 μ 5 7 5
4
x
Exercises 2.8, pp. 264–270
y 8
8
37. C1h2 e
2 2
4
Year (0 S 1950) 5 15 25 35 45 55
2
51. Y1 has a removable discontinuity at x 2; Y2 has a discontinuity at x 2 53. x 7, x 4 55. a. 4 15 cm b. 1615 cm2 c. V 320 15 cm3
8
35. a.
2 4
x
8
y 4
4
1 x 1 4 x 6 2 27. f 1x2 e 2 3x 6 x 2 x2 2x 3 x 1 29. p1x2 e x1 x 7 1 31. Graph is discontinuous at x 0; f 1x2 1 for x 7 0; f 1x2 1 for x 6 0.
33. a. S 1t2 e
x 3 3 6 x 6 2 x2
c. 80¢,
1. ( f g)(x); A B 3. intersection; g(x) 5. Answers will vary. 7. a. x b. f 122 g122 13 9. a. h 1x2 x2 6x 3 b. h122 13 c. they are identical 11. a. x 33, q 2 b. h1x2 1x 3 2x3 54 c. h142 75, 2 is not in the domain of h. 13. a. x 3 5, 3 4 b. r 1x2 1x 5 13 x c. 2172 17 1, 4 is not in the domain of r. 15. a. x 34, q2 b. h 1x2 1x 412x 32 c. h142 0, h1212 225 17. a. x 31, 7 4 b. r 1x2 1x2 6x 7 c. 15 is not in the domain of r, r 132 4 19. a. x 1q, 42 ´ 14, q2 b. h1x2 x 4, x 4 21. a. x 1q, 42 ´ 14, q2 b. h1x2 x2 2, x 4 23. a. x 1q, 12 ´ 11, q2 b. h1x2 x2 6x, x 1 25. a. x 1q, 52 ´ 15, q 2 2x 3 x1 b. h1x2 , x 5 27. a. x 1q, 22 b. r 1x2 x5 12 x 15 c. 6 is not in the domain of r. r 162 29. a. x 15, q 2 2 x5 b. r 1x2 c. r 162 1; 6 is not in the domain of r. 1x 5 x2 36 13 31. a. x a , q b b. r 1x2 c. r 162 0, r 162 0 2 12x 13 2x 4 33. a. h1x2 b. x 1q, 32 ´ 13, q2 c. x 2, x 0 x3 35. sum: 3x 1, x 1q, q 2 ; difference: x 5, x 1q, q2 ; product: 2x 3 2x2 x 6, x 1q, q2 ; quotient: , x 1q, 22 ´ 12, q2 x2 2 37. sum: x 3x 5, x 1q, q 2 ; difference: x2 3x 9, x 1q, q 2 ; product: 3x3 2x2 21x 14, x 1q, q 2 ; x2 7 2 2 quotient: , x aq, b ´ a , q b 3x 2 3 3 39. sum: x2 3x 4, x 1q, q 2 ; difference: x2 x 2, x 1q, q2 ; product: x3 x2 5x 3, x 1q, q2 ; quotient: x 3, x 1q, 12 ´ 11, q 2 41. sum: 3x 1 1x 3, x 33, q 2 ; difference: 3x 1 1x 3, x 33, q 2 ; product: 13x 12 1x 3, x 33, q 2 ; 3x 1 quotient: , x 13, q 2 43. sum: 2x2 1x 1, x 31, q2 ; 1x 3 difference: 2x2 1x 1, x 3 1, q 2 ; product: 2x2 2x2 1x 1, x 31, q2 ; quotient: , x 11, q2 1x 1 7x 11 45. sum: , x 1q, 22 ´ 12, 32 ´ 13, q2 ; 1x 32 1x 22 3x 19 difference: , x 1q, 22 ´ 12, 32 ´ 13, q 2 ; 1x 32 1x 22 10 product: 2 , x 1q, 22 ´ 12, 32 ´ 13, q 2 ; 1x x 62 2x 4 quotient: , x 1q, 22 ´ 12, 32 ´ 13, q 2 15x 152 47. 0; 0; 4a2 10a 14 a2 9a 49. a. h1x2 12x 2 b. H1x2 2 1x 3 5 c. D of h(x): x 31, q 2 ; D of H(x): x 33, q 2 51. a. h1x2 13x 1 b. H1x2 3 1x 3 4 c. D of h(x): x 313 , q 2 D of H(x): x 33, q 2
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA13
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Student Answer Appendix 53. a. h1x2 x2 x 2 b. H1x2 x2 3x 2 c. D of h(x): x 1q, q2 D of H(x): x 1q, q2 55. a. h1x2 x2 7x 8 b. H1x2 x2 x 1 c. D of h(x): x 1q, q 2 D of H(x): x 1q, q 2 57. a. h1x2 3x 1 5 b. H1x2 3x 16 c. D of h(x): x 1q, q2 D of H(x): x 1q, q 2 59. a. 1 f g21x2 : For g(x) to be defined, x 0. 2g1x2 5 For f 3 g1x2 4 , g1x2 3 so x . g1x2 3 3 5 domain: e x | x 0, x f 3 b. 1g f 21x2 : For f(x) to be defined, x 3. 5 For g3 f 1x2 4 , f 1x2 0 so x 0. f 1x2 domain: {x | x 0, x 3} 5x 15 10 ; 1g f 21x2 c. 1 f g21x2 ; 5 3x 2x the domain of a composition cannot always be determined from the composed form 61. a. 1 f g21x2 : For g(x) to be defined, x 5. 4 , g1x2 0 and g(x) is never zero For f 3g1x2 4 g1x2 domain: {x| x 5} b. 1g f 21x2 : For f(x) to be defined, x 0. 4 1 , f 1x2 5 so x . For g 3 f 1x2 4 f 1x2 5 5 4 domain: e x | x 0, x f 5 x c. 1 f g21x2 4x 20; 1g f 21x2 ; the domain of a composition 4 5x cannot always be determined from the composed form 63. a. 41 b. 41 65. g1x2 1x 2 1, f 1x2 x3 5 67. p1x2 21x 42 2 3, q1x2 12x 72 2 1 69. a. 6000 b. 3000 c. 8000 d. C(9) T(9); 4000 71. a. $1 billion b. $5 billion c. 2003, 2007, 2010 d. t 12000, 20032 ´ 12007, 20102 e. t 32003, 2007 4 f. R152 C152 ; $4 billion 73. a. 4 b. 0 c. 2 1 d. 3 e. f. 6 g. 3 h. 1 i. 1 j. undefined k. 0.5 l. 2 3 2 75. h1x2 x 4 77. h1x2 4x x2 3 79. A 2r 120 r2; f 1r2 2r, g1r2 20 r; A152 250 units2 81. a. P1x2 12,000x 108,000; b. nine boats must be sold 83. a. p1n2 11.45n 0.1n2 b. $123 c. $327 d. C11152 7 R11152 85. h1x2 x 2.5; 10.5 87. a. 4160 b. 45,344 c. M1x2 453.44x; yes 89. a. 6 ft b. 36 ft2 c. A1t2 9t2; yes 91. a. 1995 to 1996; 1999 to 2004 b. 30; 1995 c. 20 seats; 1997 d. The total number in the senate (50); the number of additional seats held by the majority 93. Answers will vary. 95. no, yes x f(x) g(x) ( f g)(x) ( f g)(x) 2
27
15
12
1
18
11
7
0
11
7
4
1
6
3
3
97. a.
2
3
1
4
3
2
5
7
c.
4
3
1
4
5
6
3
3
6
11
7
4
7
18
11
7
8
27
15
12
5
x
f(x)
4
4
4 8
4 4
8
8
99.
4
g(x)
4
4
y
8
8
x
8
8
x
3 y x 2
h(x)
4
4
8
x
4 8
Summary and Concept Review, pp. 270–277 1. x 57, 4, 0, 3, 56 y 52, 0, 1, 3, 86 7
3
4
2
5
1
3
0
0
8
2. x 35, 5 4 y 30, 5 4
3. 65 mi
4. 1 52 , 32
5 4 3 2 1
5.
1 2 3 4 5 x
6.
y 5 4 3 2 1 54321 1 2 3 4 5
10 8 6 9 4 2
8 6 4 2
5 108642 2 2 4 6 8 10 x 4 9 6 8 10
108642 2 4 6 8 10
5 , 114, 72 1 9 3 , 10, 32 9. a. parallel b. perpendicular y 10. a. b. 10
y
10 8 6 (0, 2) 4 2 (3, 0) 108642 2 2 4 6 8 10 x 4 6 8 10
12. a. vertical b. horizontal c. neither
y
3 2 4 6 8 10 x
y
10 8 6 4 2 (0, 1)
(1, 1)
108642 2 2 4 6 8 10 x 4 (0, 2) 6 8 10
108642 2 4 6 8 10
b.
10 8 6 4 2
2 4 6 8 10 x
(2, 2)
y
(w, 0)
108642 2 2 4 6 8 10 x 4 (0, 2) 6 8 10
5
y x5
2y x 5
(0, ) 5 2
5
(5, 0) 5x
y 4 5
y 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
7. 1x 1.52 2 1y 22 2 6.25 y 8. a. b. 10
8 6 4 2
x y 0 5 3 4 2 121 4.58 0 5 2 121 4.58 4 3 5 0
y
54321 1 2 3 4 5
11. a.
2 1
y 8
4 8
10
5
b.
y 8
1 2 3 4 5 x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:40 am Page SA14
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Student Answer Appendix
13. yes 14. m 23 , y-intercept (0, 2) when the rodent population increases by 3000, the hawk population increases by 200. 4 15. a. y 4 b. y 53 x 5, m 53 , 3 x 4, m 3 , y-intercept (0, 4) y-intercept 10, 52 16. a. b. y y
108642 2 4 6 8 10
2 4 6 8 10 x
b.
y
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
10 8 6 4 2 108642 2 4 6 8 10
4
4
4
4
8
(0, 1)
8
x
43. a.
44. a. 45.
5 4 3 2 1
8
x
8
4
4 4
8
8
(2, 0)
4
8
x
(0.5, 1)
4 4
8
8
8
x
c.
54321 1 2 3 4 5
1 2 3 4 5 x
4
4
5 4 3 2 1
(3, 3)
8
y
5 4 3 2 1
4, w
54321 1 2 3 4 5
1 2 3 4 5 x
y
1, w 1 2 3 4 5 x
8
5 x 3 f 1x2 • x 1 3 6 x 3 b. R: y 3 2, q2 3 1x 3 1 x 7 3 D: x 1q, q 2, y R: y 1q, 82 ´ 18, q 2 , 8 discontinuity at x 3; 4 h(x) define h1x2 8 at x 3
4
(3, 6)
4
8
x
4 8
46. 4, 4, 4.5, 4.99, 3 13 9, 3 13.5 9 47. D: x 1q, q 2 R: y 34, q 2 y
8 4 8
4
4
8
x
4 8
20x x2 48. • 30x 20 2 6 x 4 40x 60 x 7 4 For 5 hrs the total cost is $140.
8
x
160 120 80 40 0
2
4
6
8
Hours
49. a2 7a 2 50. 147 51. x 1q, 23 2 ´ 1 23 , q 2 52. 4x2 8x 3 53. 99 54. x; x 55. f 1x2 1x 1; g1x2 3x 2 1 56. f 1x2 x2 3x 10; g1x2 x3 57. A1t2 12t 32 2 b. 7 c. 6 d. 1 e. 14 5
58. a. 4
Mixed Review, pp. 277–278 3. a. 1q, 12 ´ 11, 42 ´ 14, q 2
4 1. y x 4 3 3 5. y x 2 2 9. y 5 4 3 2 1
54321 1
y 3
3 b. a , q b 2
7. (2, 2); 1x 22 2 1y 22 2 50
x 5 1 2 3 4 5 x
3 4 5
11. a.
4
(3, 0) 4
4
4
b. y
8
(2, 5) 4
y 8
2 4 6 8 10 x
y
4 4
4
54321 1 2 3 4 5
33. squaring function a. up on left/up on the right; b. x-intercepts: (4, 0), (0, 0); y-intercept: (0, 0) c. vertex (2, 4) d. x 1q, q 2, y 3 4, q2 34. square root function a. down on the right; b. x-intercept: (0,0); y-intercept: (0, 0) c. initial point (1, 2); d. x 31, q 2, y 1q, 2 4 35. cubing function a. down on left/up on the right b. x-intercepts: (2, 0), (1, 0), (4, 0); y-intercept: (0, 2) c. inflection point: (1, 0) d. x 1q, q2, y 1q, q 2 36. absolute value function a. down on left/down on the right b. x-intercepts: (1, 0), (3, 0); y-intercept: (0, 1) c. vertex: (1, 2); d. x 3q, q 2, y 1q, 2 4 37. cube root a. up on left, down on right b. x-intercept: (1, 0); y-intercept: (0, 1) c. inflection point: (1,0) d. x 1q, q 2, y 1q, q 2 38. quadratic 39. absolute value
8
8
y
8
8
8
(9, 4)
(2, 3)
11 18. y 5, x 2; y 5 19. y 3 20. f 1x2 43 x 4 x 4 21. m 25 , y-intercept (0, 2), y 25 x 2. When the rabbit population increases by 500, the wolf population increases by 200. 15 22. a. y 90 15 x 105 2 1x 22 b. (14, 0), (0, 105) c. f 1x2 2 5 d. f 1202 45, x 12 23. a. x 3 4 , q2 2 b. x 1q, 22 ´ 12, 32 ´ 13, q 2 24. 14; 26 25. It is 9 ; 18a 9a a function. 26. I. a. D 51, 0, 1, 2, 3, 4, 56, R 52, 1, 0, 1, 2, 3, 46 b. 1 c. 2 II. a. x 1q, q2 , y 1q, q2 b. 1 c. 3 III. a. x 33, q ), y 34, q2 b. 1 c. 3 or 3 27. D: x 1q, q 2 , R: y 35, q2 , f 1x2c: x 12, q2 , f 1x2T: x 1q, 22 , f 1x2 7 0: x 1q, 12 ´ 15, q 2 , f 1x2 6 0: x 11, 52 28. D: x 3 3, q 2 , R: y 1q,02 , f 1x2c: none, f 1x2T: x 13, q 2 , f 1x2 7 0: none, f 1x2 6 0: x 13, q 2 29. D: x 1q, q2, R: y 1q, q 2 , f 1x2c: x 1q, 32 ´ 11,q 2 , f 1x2T: x 13, 12 , f 1x2 7 0: x 15, 12 ´ 14, q 2 , f 1x2 6 0: x 1q, 52 ´ 11, 42 1 30. a. odd b. even c. neither d. odd 31. a. ; the graph is rising 4 to the right. b. 2x 1 h; 3.01 y 32. zeroes: 6, 02 , (0, 0), 8 (10, 6) (6, 0) (9, 0) (3, 4) 4 min: 13, 82, 8 4 4 8 x (7.5 2) (7.5, 2) 4 max: (6, 0), (3, 4)
y
8
8
2 4 6 8 10 x
42. cube root
y
(5, 2)
10 8 6 4 2
108642 2 4 6 8 10
17. a.
41. square root y
Cost
10 8 6 4 2
40. cubic
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
rate of change is positive in 32, 1 4 since p ¢y 14 is increasing in 1q, 22; less; in ¢x 1 ¢y 2 in [1, 2] 32, 1 4 ; ¢x 1
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA15
Student Answer Appendix ¢A 200.1 ¢t 1 1 1 ; aq, b ´ a , 1b ´ 11, q 2 13. 3 3 3x2 4x 1 ¢f ¢g 3 2x h, 3; For small h, 2x h 3 when x . 15. ¢x ¢x 2 17. D: x 1q, 6 4; R : y 1q, 34 g1x2c: x 1q, 62 ´ 13, 62 g1x2T: x 13, 32 g(x) constant: x 16, 32 g1x2 7 0: x 17, 12 g1x2 6 0: x 1q, 72 ´ 11, 62 max: y 3 for x 16, 32; y 0 at 16, 02 min: y 3 at 13, 32 19. f 1x2 2x2 x 3 b. In the interval [15, 15.01],
Strengthening Core Skills, p. 281 Exercise 1: h1x2 x2 28; x 4 2 17 Exercise 2: h1x2 x2 1; x 2 i 5 13 Exercise 3: h1x2 2x2 32 ; x 2 2
Cumulative Review, p. 282
8
321 1 2 3 4 5 6 7
x 4 1 2 3 4 5 x
1 2 3 4 5 6 7 x
(2, 3) 8
4
4
8
x
8
4
4 4
8
8
8
x
4 8
4
(2, 4) 4
(2, 4) 4 8
8
x
4
4
5 4321 1 2 3 4 5
8
x
4 8
x7 b2 4ac b. 1x 52 1x 22 4a2 17. a. False; X b. False; X c. True d. False; X 12 19. x 5 ; x 5.707; x 4.293 2 5 21. W 31 cm, L 47 cm 23. a. x 4 b. x 5, 13, 13 3 ,2 25. p 15 197 units 24.8 units. No, it is not a right triangle. 52 1 1972 2 102 15. a.
MODELING WITH TECHNOLOGY I Exercises, pp. 288–292 1.
positive
y
1800 1600 1400 1200 1000
x 0
3.
4
8
12 16 20 24 Year (1980 → 0)
a. linear b. positive
y
150
100 75 50 x
0
5
3
5 4 3 2 1
8
8
25
16. a. V1t2 b. 36 in 17. a. D: x 34, q2 ; R: y 13, q2 b. f 112 2.2 c. f 1x2 6 0: x 14, 32 f 1x2 7 0: x 13, q 2 d. f 1x2c: x 14, q 2 f 1x2T: none e. f 1x2 31x 4 3 18. a. 4, 4, 6.25 b. 19. 20. y y 4 3 3 1 1t2
4
125
4
4
13. a. D: x 1q, 84 , R: y 3 4, q 2 b. 5, 3, 3, 1, 2 c. 12, 02 d. f 1x2 6 0: x 12, 22 f 1x2 7 0: x 1q, 22 ´ 32, 8 4 e. min: (0, 4), max: (8, 7) f. f 1x2c: x 10, 82 f 1x2T: x 1q, 02 y
8
(3, 2)
x
8
Congresswomen
8
8
8
2 6 5. y x 6. a. (7.5, 1.5), b. 61.27 mi 5 5 7. L1: x 3 L2: y 4 8. a. x 54, 2, 0, 2, 4, 66 y 52, 1, 0, 1, 2, 36 b. x 3 2, 6 4 y 3 1, 44 9. a. 300 b. 30 c. W1h2 25 d. Wages are $12.50 per hr. 2 h e. h 30, 40 4 ; w 3 0, 5004 10. I. a. square root b. x 3 4, q2, y 3 3, q2 c. 12, 02, 10, 12 d. up on right e. x 12, q 2 f. x 3 4, 22 II. a. cubic b. x 1q, q2 y 1q, q2 c. 12, 02, 10, 12 d. down on left, up on right e. x 12, q2 f. x 1q, 22 III. a. absolute value b. x 1q, q2 y 1q, 4 4 c. 11, 02, 13, 02, 10, 22 d. down/down e. x 11, 32 f. x 1q, 12 ´ 13, q2 IV. a. quadratic b. x 1q, q 2 ; y 35.5, q 2 c. 10, 02, 15, 02, 10, 02 d. up/up e. x 1q, 02 ´ 15, q 2 f. x 10, 52 31 a2 6a 7 8 7 11. a. b. 2 c. i 2 25 25 a 6a 9 12. 3x 1; x 3 13 , q2 13. a. No, new company and sales should be growing b. 19 for [5, 6]; 23 for [6, 7] ¢s c. 4t 3 2h. For small h, sales volume is approximately ¢t 93,000 units 37,000 units 69,000 units in month 10, in in month 18, and 1 mo 1mo 1 mo month 24 14. 15. y y (0, 5) 4
4 4
Cost (cents)
54321 1 2 3 4 5
3 2 1
4
5 4 3 2 1
1 2 3 4 5 x
5 4321 1 2 3 4 5
5. a.
y
b. positive
50 40 30 20 10 0
1 2 3 4 5 x
10 15 20 25 30 35 Year (1970 → 0)
y GDP per capita (1000s)
5 4 3 2 y 11
3. 29.45 cm 5. x 1 7. a. 1 b. 35 3 1 7 y 2 x 2 11. 1f # g21x2 3x3 12x2 12x; y 8 f a b1x2 3x, x 2; 1g f 2 22 4 g
1. x2 2 9.
Practice Test, pp. 279–280 1. a. a and c are nonfunctions, they do not pass the vertical line test 2. neither 3. 4. 12, 32; r 4 y y
SA15
10 20 30 40 50 x Year (1970 → 0)
c. m 1
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Student Answer Appendix
7. a. Officers (1000s)
c. y 2.4x 69.4, 74,200, 112,600
b. positive
y 100 90
60
(q, 0) 8
b. linear c. positive d. y 0.96x 1.55, 63.95 in.
y Wingspan (in.)
4
69.5 63.5
8
(0, 6) (3, 0)
x
8
8
(74, 258)
(s, 0)
4
4
21. left 1, down 7 y
8
8
b. linear c. positive d. y 9.55x 70.42; about 271,000 The number of applications, since the line has a greater slope.
y 260 220 180 140 100
4
4 8
Percent of men
65
82 78 74 70
25 0
4 4
(e, *)
(1, 7)
8
10 20 30 40 50x
Year (1950 → 0)
0
10 20 30 40 50 x Year (1950 → 0)
4
4
冢3, e冣 8
x
8
4 4 4
8
8
27. right 52 , reflected across x-axis, stretched vertically, up 11 2
(0, 7)
4
(.4, 0) 4
15.
a. linear b. y 108.2x 330.2 c. $1736.8 billion; about $2602.4 billion
y 1800
Dollar volume (billions)
1600 1400
4
y
(0, 7)
1200
4
(0, 3)
(4.2, 0)
4
x
8
冢e, y冣
(0.8, 0) 8
8
29. right 23 , stretched vertically, down 6
y 8
x
y 8
(4.4, 0) 8
8
(0, 6)
25. left 3, compressed vertically, up 52
(0, 2) 4
b. women: linear c. positive b. men: linear c. negative d. yes, |slope| is greater
86
35
(1.6, 0)
4
8 (2, 6)
13. a. 45
8
x
8
y
5 7 9 11 13 Year (1990 → 0)
55
(3.6, 0)
23. right 2, reflected across x-axis, up 6
x 3
4
(4.6, 0)
(.4, 0) 4
11. a.
8
4 (0, 2)
51 57 63 69 75 x Height (in.)
x
8
y
51.5
8
4
19. right 25 , down 17 4
57.5
Patents (1000s)
8 4
(3, 0)
4
75.5
(0, 3)
4
4
y
12
(C, 121 ) 12
8
70
Percent of women
17. left 67 , stretched vertically, reflected across x-axis, up 121 12
y
80
3 5 7 9 11 13 x Year (1990 → 0)
9. a.
15. right 74 , stretched vertically, down 25 8
4
8
x
8
4
(2.7, 0) 4
4
(0.3, 0) 4
8
8
8
x
冢w, 6冣
1000
31. left 3, compressed vertically, down 19 2
800 600
y
400
8
200
4
0
(7.4, 0)
4 6 8 10 12 14 x Year (1990 → 0)
2
17. a. h1t2 14.5t 90t 2
8
b. v 90 ft/sec
c. Venus
(1.4, 0) 4
冢3, p冣
x
4 8 4 (0, 5) 8
CHAPTER 3
33. y 11x 22 2 1
Exercises 3.1, pp. 300–304
3 37. y 1x 22 2 3 39. i. x 3 15 ii. x 4 13 2 iii. x 4 114 iv. x 2 12 v. t 2.7, t 1.3 2 vi. t 1.4, t 2.6 41. a. 10, 66,0002; when no cars are produced, there is a loss of $66,000. b. (20, 0), (330, 0); no profit will be made if less than 20 or more than 330 cars are produced. c. 175 d. $240,250 43. a. 6 mi b. 3600 ft c. 3200 ft d. 12 mi 45. a. 10, 33002; if no appliances are sold, the loss will be $3300. b. (20, 0), (330, 0); if less than 20 or more than 330 appliances are made and sold, there will be no profit. c. 0 x 200; maximum capacity is 200 d. 175, $12,012.50 47. a. 288 ft b. c. 484 ft; 5.5 sec d. 11 sec h(t)
1. 25 3. 0, f (x) 2 7. left 2, down 9
5. Answers will vary. 9. right 1, reflected across x-axis, up 4
y
y
8
8
4
(5, 0) 8
(0, 3) 4 (1, 0)
(1, 0) 4
4 4
8
x
8
4
(1, 4) (3, 0) 4
(0, 5)
(2, 9) 8
8
11. left 1, stretched vertically, down 8
13. right 2, stretched vertically, reflected across x-axis, up 15
y
8
y
8
16
4
(0, 7) 8 (.7, 0)
(2.6, 0)
(.6, 0)
4
4 4
(1, 8) 8
x
8
4
(0, 5)
8
x
8
4 16
600 500 400 300
(2, 15)
200 100
(4.7, 0) 4
8
35. y 11x 22 2 4
8
x
2
4
6
8 10 12 t
49. a. h1t2 16t 32t 5 b. (i) 17 ft (ii) 17 ft c. it must occur between t 0.5 and t 1.5 d. t 1 sec e. h112 21 ft f. 2 sec 51. 155,000; $16,625 53. a. 96 ft 48 ft b. 32 ft 48 ft 55. f 1x2 x2 4x 13 2
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Student Answer Appendix
SA17
1. synthetic; zero 3. P1c2 ; remainder 5. Answers will vary. 7. x3 5x2 4x 21 1x 221x2 3x 102 3 9. 2x3 5x2 4x 17 1x 3212x2 x 72 4 11. x3 8x2 11x 20 1x 521x2 3x 42 0 2x2 5x 3 0 13. a. 12x 12 x3 x3 b. 2x2 5x 3 1x 3212x 12 0 x3 3x2 14x 8 0 15. a. 1x2 5x 42 x2 x2 b. x3 3x2 14x 8 1x 221x2 5x 42 0 x3 5x2 4x 23 3 1x2 3x 102 17. a. x2 x2 b. x3 5x2 4x 23 1x 221x2 3x 102 3 2x3 5x2 11x 17 13 12x2 3x 12 19. a. x4 x4 b. 2x3 5x2 11x 17 1x 4212x2 3x 12 13 21. x3 5x2 7 1x 121x2 4x 42 11 23. x3 13x 12 1x 421x2 4x 32 0 25. 3x3 8x 12 1x 1213x2 3x 52 7 27. n3 27 1n 321n2 3n 92 0 29. x4 3x3 16x 8 1x 221x3 5x2 10x 42 0 4x 3 7x 5 31. 12x 72 2 33. 1x2 42 2 x 3 x 1 35. a. 30 b. 12 37. a. 2 b. 22 39. a. 1 b. 3 41. a. 31 b. 0 43. a. 10 b. 0 45. a. yes b. yes 47. a. no b. yes 49. a. yes b. yes 51. 3 1 2 5 6 53. 2 1 0 7 6 3 6 2 4 6 3 1 1 2 0 1 2 3 0 55. 23 9 18 4 8 6 16 8 9 24 12 0 57. P1x2 1x 221x 321x 52, P1x2 x3 4x2 11x 30 59. P1x2 1x 221x 2321x 232, P1x2 x3 2x2 3x 6 61. P1x2 1x 521x 22321x 2 232, P1x2 x3 5x2 12x 60 63. P1x2 1x 121x 221x 21021x 2102, P1x2 x4 x3 12x2 10x 20 65. P1x2 1x 221x 321x 42 67. p1x2 1x 32 2 1x 321x 12 69. f 1x2 21x 32 2 1x 221x 52 71. p1x2 1x 321x 32 2 73. p1x2 1x 22 3 75. p1x2 1x 321x 32 3 77. p1x2 1x 321x 32 2 1x 42 2 79. 4-in. squares; 16 in. 10 in. 4 in. 81. a. week 10, 22.5 thousand b. one week before closing, 36 thousand c. week 9 83. a. 198 ft3 b. 2 ft c. about 7 ft 85. k 10 87. k 3 89. The theorems also apply to complex zeroes of polynomials. 91. S3 36; S5 225 93. yes, John wins. 95. G1t2 1400t 5000
17. 1x 72 2 1x 22 2 1x 72; x 7, multiplicity 2; x 2, multiplicity 2; x 7, multiplicity 1 19. P1x2 x3 3x2 4x 12 21. P1x2 x4 x3 x2 x 2 23. P1x2 x4 6x3 13x2 24x 36 25. P1x2 x4 2x2 8x 5 27. P1x2 x4 4x3 27 29. a. yes b. yes 31. a. yes b. yes 3 5 1 15 3 5 33. 51, 15, 3, 5, 14 , 15 4 , 4 , 4 , 2 , 2 , 2 , 2 6 1 15 3 5 35. 51, 15, 3, 5, 2 , 2 , 2 , 2 6 1 7 2 7 1 7 28 4 37. 51, 28, 2, 14, 4, 7, 16 , 14 3 , 3 , 3 , 3 , 6 , 2 , 2 , 3 , 3 6 1 1 3 3 39. 51, 3, 32 , 12 , 16 , 14 , 18 , 32 , 32 , 16 , 34 , 38 6 41. 1x 421x 121x 32, x 4, 1, 3 43. 1x 321x 221x 52, x 3, 2, 5 45. 1x 321x 121x 42, x 3, 1, 4 47. 1x 221x 321x 52, x 2, 3, 5 49. 1x 421x 121x 22 1x 32, x 4, 1, 2, 3 51. 1x 721x 221x 12 1x 32, x 7, 2, 1, 3 53. 12x 3212x 121x 12; x 32 , 12 , 1 55. 12x 32 2 1x 12; x 32 , 1 57. 1x 221x 1212x 52; x 2, 1, 52 59. 1x 1212x 121x 152 1x 152; x 1, 12 , 15, 15 61. 1x 1213x 221x 2i21x 2i2; x 1, 23 , 2i, 2i 63. x 1, 2, 3, 3 65. x 2, 1, 2 67. x 2, 32 , 4 2 3 69. x 3, 1, 53 71. x 1, 2, 3, 17 i 73. x 2, 23 , 1, 13 i 75. x 1, 2, 4, 2 77. x 3, 1, 12 79. x 1, 32 , 13 i 81. x 12 , 1, 2, 13 i 83. a. possible roots: 51, 8, 2, 46 ; b. neither 1 nor 1 is a root; c. 3 or 1 positive roots, 1 negative root; d. roots must lie between 2 and 2 85. a. possible roots: 51, 26 ; b. 1 is a root; c. 2 or 0 positive roots, 3 or 1 negative roots; d. roots must lie between 3 and 2 87. a. possible roots: 51, 12, 2, 6, 3, 46 ; b. x 1 and x 1 are roots; c. 4, 2, or 0 positive roots, 1 negative root; d. roots must lie between 1 and 4 89. a. possible roots: 1, 20, 2, 10, 4, 5, 12 , 52 ; b. x 1 is a root; c. 1 positive root, 1 negative root; d. roots must lie between 2 and 1 91. 1x 4212x 3212x 32; x 4, 32 , 32 93. 12x 1213x 221x 122; x 12 , 23 , 12 95. 1x 2212x 1212x 12 1x 122; x 2, 12 , 12 , 12 97. a. 5 b. 13 c. 2 99. yes 101. yes 103. a. 4 cm 4 cm 4 cm b. 5 cm 5 cm 5 cm 105. length 10 in., width 5 in., height 3 in. 107. 1994, 1998, 2002, about 5 yr 109. a. 8.97 m, 11.29 m, 12.05 m, 12.94 m; b. 9.7 m, 3.7 111. a. yes, b. no, c. about 14.88 113A. a. 1x 5i21x 5i2 b. 1x 3i2 1x 3i2 c. 1x i 172 1x i 172 113B. a. x 17, 17 b. x 2 13, 2 13 c. x 3 12, 3 12 115. a. C1z2 1z 4i2 1z 32 1z 22 b. C1z2 1z 9i2 1z 42 1z 12 c. C1z2 1z 3i2 1z 1 2i2 1z 1 2i2 d. C1z2 1z i21z 2 5i2 1z 2 5i2 e. C1z2 1z 6i2 1z 1 13 i21z 1 13 i2 f. C1z2 1z 4i2 1z 3 12 i2 1z 3 12 i2 g. C1z2 1z 2 i21z 3i2 1z i2 h. C1z2 1z 2 3i2 1z 5i2 1z 2i2 117. a. w 150 ft, l 300; b. A 15,000 ft2 119. r 1x2 2 1x 4 2
Exercises 3.3, pp. 325–330
Exercises 3.4, pp. 340–343
1. coefficients 3. a bi 5. b; 4 is not a factor of 6 7. P1x2 1x 221x 221x 3i21x 3i2 x 2, x 2, x 3i, x 3i 9. Q1x2 1x 221x 221x 2i21x 2i2 x 2, x 2, x 2i, x 2i 11. P1x2 1x 12 1x 12 1x 12 x 1, x 1, x 1 13. P1x2 1x 521x 52 1x 52 x 5, x 5, x 5 15. 1x 52 3 1x 92 2; x 5, multiplicity 3; x 9, multiplicity 2
1. zero; m 3. bounce; flatter 5. Answers will vary. 7. polynomial, degree 3 9. not a polynomial, sharp turns 11. polynomial, degree 2 13. up/down 15. down/down 17. down/up; 10, 22 19. down/down; 10, 62 21. up/down; 10, 62 23. a. even b. 3 odd, 1 even, 3 odd c. f 1x2 1x 32 1x 12 2 1x 32, deg 4 d. x , y 39, q 2 25. a. even b. 3 odd, 1 odd, 2 odd, 4 odd c. f 1x2 1x 321x 12 1x 22 1x 42, deg 4
57. a. radicand will be negative—two complex zeroes. b. radicand will be positive—two real zeroes. c. radicand is zero—one real zero. d. two real, rational zeroes. x2 e. two real, irrational zeroes. 59. 61. x 3 3, 23 4 x5
Exercises 3.2, pp. 312–315
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Student Answer Appendix
d. x , y 1q, 25 4 27. a. odd b. 1 even, 3 odd c. f 1x2 1x 12 2 1x 32, deg 3 d. x , y 29. degree 6; up/up; 10, 122 31. degree 5; up/down; 10, 242 33. degree 6; up/up; 10, 1922 35. degree 5; up/down; 10, 22 37. b 39. e 41. c 43. 45. 47. y y y 10 8 6 4 2
108642 2 4 6 8 10
49.
10 8 6 4 2 108642 2 4 6 8 10
55.
10 8 6 4 2 108642 2 4 6 8 10
61.
10 8 6 4 2 108642 2 4 6 8 10
67.
10 8 6 4 2 54321 2 4 6 8 10
73.
40 32 24 16 8 54321 8 16 24 32 40
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
y
51.
108642 2 4 6 8 10
2 4 6 8 10 x
y
57.
63.
69.
1 2 3 4 5 x
200 160 120 80 40 54321 40 80 120 160 200
1 2 3 4 5 x
y
20 16 12 8 4 54321 4 8 12 16 20
2 4 6 8 10 x
y
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y
10 8 6 4 2
75.
30 24 18 12 6 54321 6 12 18 24 30
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
y
53.
108642 4 8 12 16 20
2 4 6 8 10 x
y
59.
65.
1 2 3 4 5 x
20 16 12 8 4 54321 4 8 12 16 20
1 2 3 4 5 x
y
20 16 12 8 4 108642 4 8 12 16 20
2 4 6 8 10 x
y
20 16 12 8 4
71.
40 32 24 16 8 54321 8 16 24 32 40
2 4 6 8 10 x
60 120 180 240 300
1. a. x3 8x2 7x 14 1x2 6x 521x 22 4 x3 8x2 7x 14 4 b. x2 6x 5 x2 x2 2. f 1x2 12x 321x 12 1x 12 1x 22 3. f 122 7 4. f 1x2 x3 2x 4 5. g122 8 and g132 5 have opposite signs 6. f 1x2 1x 221x 12 1x 22 1x 42 7. x 2, x 1, x 1 3i 8. 9. y y 15 12 9 6 3
108642 3 6 9 12 15
y
2 4 6 8 10 x
y
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
10. a. degree 4; three turning points b. 2 sec c. A1t2 1t 12 2 1t 32 1t 52 A1t2 t4 10t3 32t2 38t 15 A122 3; altitude is 300 ft above hard-deck A142 9; altitude is 900 ft below hard-deck
Reinforcing Basic Concepts, pp. 344–345 2 4 6 8 10 x
y
1 2 3 4 5 x
y
1 2 3 4 5 x
y
1 2 3 4 5 x
77. h1x2 1x 421x 2321x 2321x 23i21x 23i2 79. f 1x2 21x 52 21x 2221x 2221x 2321x 232 81. P1x2 16 1x 421x 121x 32, P1x2 16 1x3 13x 122 83. P1x2 x4 2x3 13x2 14x 24 85. a. 280 vehicles above average, 216 vehicles below average, 154 vehicles below average b. 6:00 A.M. 1t 02, 10:00 A.M. 1T 42 , 3:00 P.M. 1t 92 , 6:00 P.M. 1t 122 c. max: about 300 vehicles above average at 7:30 A.M.; min: about 220 vehicles below average at 12 noon 300 240 180 120 60
Mid Chapter, p. 344
y
2 4 6 8 10 12 14 16 x
87. c. B1x2 14 x1x 421x 92, $80,000 89. a. f 1x2 S q, f 1x2q b. g1x2 S q, g1x2 S q; x4 0 for all x 1 2x 1 91. verified 93. h1x2 ; D : x 5x | x 06; H1x2 2 ; x2 x 2x D : x 5x| x 0, x 26 95. a. x 2 b. x 8 c. x 4, x 6
Exercise 1: 1.532 Exercise 2: 2.152, 1.765
Exercises 3.5, pp. 356–362 1. as x S q, y S 2 3. denominator; numerator 5. about x 98 7. a. as x S q, y S 2 9. a. as x S q, y S 1 as x S q, y S 2 as x S q, y S 1 b. as x S 1 , y S q b. as x S 2 , y S q as x S 1 , y S q as x S 2 , y S q 1 11. reciprocal quadratic, S1x2 2 1x 12 2 1 13. reciprocal function, Q1x2 2 x1 1 15. reciprocal quadratic, v 1x2 5 1x 22 2 17. S 2 19. S q 21. 1; q 23. x 3, x 1q, 32 ´ 13, q 2 25. x 3, x 3, x 1q, 32 ´ 13, 32 ´ 13, q2 5 5 27. x 5 2 , x 1, x 1q, 2 2 ´ 12 , 12 ´ 11, q2 29. No V.A., x 1q, q2 31. x 3, yes; x 2, yes 33. x 3, no 35. x 2, yes; x 2, no 37. y 0, crosses at 1 32 , 02 39. y 4, crosses at 121 41. y 3, does not cross 4 , 42 43. (0, 0) cross, (3, 0) cross 45. 14, 02 cross, (0, 4) 47. (0, 0) cross, (3, 0) bounce 49. 51. 53. y y y 10 8 6 4 2
108642 2 4 6 8 10
55.
10 8 6 4 2 108642 2 4 6 8 10
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
y
2 4 6 8 10 x
57.
10 8 6 4 2 108642 2 4 6 8 10
10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
y
2 4 6 8 10 x
59.
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y
2 4 6 8 10 x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA19
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Student Answer Appendix 61.
10 8 6 4 2 108642 2 4 6 8 10
67. f 1x2
63.
y
2 4 6 8 10 x
1x 421x 12
10 8 6 4 2 108642 2 4 6 8 10
65.
y
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y
x3 8 x2 13. P1x2 • 12
2 4 6 8 10 x
900 700 500
x2
y
10 8 6 4 2
16 12
x2 4
69. f 1x2 1x 221x 32 9 x2 71. a. Population density approaches zero far from town. c. 4.5 mi, 704 people per square mi 73. a. $20,000, $80,000, $320,000; cost increases dramatically b. c. as p S 100 , C S q Cost ($1000)
x3 7x 6 x1 15. q1x2 • 4
x2
(2, 12)
8
8
4 2
4
8
x
x 3x x 3 3
1 2 3 4 5 x
2
x 3, x 1
x2 2x 3 17. R1x2 μ 2 2
Percent 10 30 50 70 90
75. a. 5 hr; about 0.28 b. 0.019, 0.005; As the number of hours increases, the rate of change decreases. c. h S q, C S 0 ; horizontal asymptote 77. 50 W(t) 79. a. y (1, 46)
19.
x 3 x1
10 8 6 4 (3, 0) 2
yx (2, 0)
108642 2 4 6 8 10
0.9
40
21.
y
10 8 6 4 (2, 0) 2
2 4 6 8 10 x
0.5 20
25.
0.3 0.1 10 20 30 40 50 t
70 140 210 280 350x
b. 35%; 62.5%; 160 gal; c. 160 gal; 200 gal; d. 70%; 75% 81. a. $225; $175 b. 2000 heaters c. 4000 d. The horizontal asymptote at y 125 means the average cost approaches $125 as monthly production gets very large. Due to limitations on production (maximum of 5000 heaters) the average cost will never fall below A150002 135. 83. a. 5 b. 18 c. The horizontal asymptote at y 95 means her average grade will approach 95 as the number of tests taken increases; no d. 6 85. a. 16.0 28.7 65.8 277.8 b. 12.7, 37.1, 212.0 c. a. 22.4, 40.2, 92.1, 388.9 b. 17.8, 51.9, 296.8; answers will vary. 87. a. q1x2 3, horizontal asymptote at y 3; r1x2 7x 10, graph 10 crosses HA at x b. q1x2 2, horizontal asymptote at 7 y 2; r1x2 7, no zeroes—graph will not cross 4 1 89. y 91. 39, 32 , 1 x 3 3 3. two
x2 4 7. F1x2 • x 2 4
x 2
10 8 6 4 2
x 2
x2 2x 3 9. G1x2 • x 1 4
3x 2x2 2x 3 11. H1x2 μ 3 2
108642 2 (2, 4) 4 6 8 10
x 1 x 1
3 x 2 3 x 2
10 8 6 4 2
10 8 6 4 2 108642 2 4 6 8 10
39.
y
108642 2 4 6 8 10
yx
2 4 6 8 10 x
y
10 8 6 4 (2, 0) 2
(4, 0)
108642 2 2 4 6 8 10 x 4 6 (0, 0) 8 10
49. y 14 x
y
10 8 6 4 2
yx3 (1, 0)
yx
(2, 0)
y yx1
2 4 6 8 10 x
35.
y
10 8 6 4 (2, 0) 2
x3
yx1
108642 2 4 6 8 10
2 4 6 8 10 x
41. 10
x1 8 6 4 (2, 0) 2
y x3
(1, 0)
108642 2 4 6 8 10
2 4 6 8 10 x
108642 2 4 6 8 10
47. 8 7 6 5 4 3 2 1
yx (1, 0) 2 4 6 8 10 x
54321 1 2
2 4 6 8 10 x
y
yx x1 (2, 0)
2 4 6 8 10 x
(0, 0)
y
y x2 1 1 2 3 4 5 x
51. 119.1
y 2
108642 2 4 6 8 10
(0, 0.2)
2 4 6 8 10 x
29.
y
108642 2 2 4 6 8 10 x 4 (0, 4) 6 8 10
x3
yx
108642 2 4 6 8 10
x1
10 8 6 4 2
y
10 8 6 4 2
(3, 0)
y
45.
2 4 6 8 10 x
23.
y
10 8 yx1 6 4 (2, 0) 2 (2, 0)
6 4 (0, 1) 2 yx1
y
w, w
(4.8, 0)
10
2 4 6 8 10 x
2 4 6 8 10 x
108642 2 4 6 8 10
x 1 8
(4, 0)
y
10 8 6 4 2
2 4 6 8 10 x
37.
y
108642 2 2 4 6 8 10 x 4 (1, 4) 6 8 10
33.
y
108642 2 4 6 8 10
43.
5. Answers will vary.
108642 2 4 6 8 10
2 4 6 8 10 x
10 8 yx5 6 4 (0.8, 0) 2 (1, 0)
Exercises 3.6, pp. 371–375 1. nonremovable
10 8 6 4 2
(2, 0)
108642 2 4 6 8 10
31.
27.
y yx2
10 8 6 4 (1, 0) 2
10
(1, 2)
108642 2 4 6 8 10
108642 2 2 4 6 8 10 x 4 6 8 y x 10
0.7
30
y
10 8 6 (3, 2) 4 2
300 100
x 1
y
54321 2 (1, 4) 4 6 8 10
4
x 1
16 12 8 4
6 4 2 4 8 12 16
2
4
6 x
53. a. a 5, y 3a 15 b. 60.5 c. 10 4x2 53x 250 ; x 0, g1x2 4x 53 55. a. A1x2 x b. cost: $307, $372, $445, Avg. cost: $307, $186, $148.33
c. 8, $116.25
cob19529_saa_SA15-SA26.qxd 1/3/09 20:52 Page SA20 User-S178 MAC-OSX_1:Users:user-s178:Desktop:03/01/09:MHDQ092-SAA:
SA20 d.
500
Student Answer Appendix
Exercises 3.8, pp. 394–399
Cost
1. constant
400
3. y
k x2
7. d kr
5. Answers will vary.
9. F ka
300
11. y 0.025 x
200
x
100
2x3 48 57. a. S1x, y2 2x 4xy; V1x, y2 x y b. S1x2 x c. S1x2 is asymptotic to y 2x2. d. x 2 ft 3.5 in.; y 2 ft 3.5 in. 2x 55 59. a. A1x, y2 xy; R1x, y2 1x 2.521y 22 b. y x 2.5 2x2 55x A1x2 c. A(x) is asymptotic to y 2x 60 x 2.5 V 2V d. x 11.16 in.; y 8.93 in. 61. a. h b. S 2r2 r r2 2r3 2V c. S d. r 5.76 cm, h 11.51 cm; S 625.13 cm2 r r3 2V ; r 3.1 in., h 3 in. 63. Answers will vary. 65. S r 3 3 67. y 4 x 4, m 4 , 10, 42 69. a. P 30 cm, b. CD 60 13 cm, 2
2
4320 2 2 c. 30 cm2, d. A 750 169 cm , and A 169 cm
y
500
12.5
650
16.25
750
18.75
13. w 9.18h; $321.30; the hourly wage; k $9.18/hr 192 15. a. k 192 47 S 47 h b. 360 c. 330 stairs 280 240
s(t) ⫽
192 47 h
200 160 120 80 40 10 20 30 40 50 60 70 80 90100
Height h (in meters)
17. A kS2 19. P kc2 21. k 0.112; p 0.112 q2
Exercises 3.7, pp. 384–388
107. F1x2 e
f 1x2 6
x 4 x 4
3 2 1 ⫺5⫺4⫺3⫺2⫺1 ⫺1 ⫺2 ⫺3 ⫺4 ⫺5 ⫺6 ⫺7
109.
⫺2
2
y
1 2 3 4 5x
q
p
45
226.8
55
338.8
70
548.8
23. k 6, A 6s2; 55,303,776 m2 25. a. k 16 d 16t2 b. 360 320
Height h in feet
1. vertical; multiplicity 3. empty 5. Answers will vary. 7 7. x 10, 42 9. x 1q, 5 4 ´ 3 1, q2 11. x 11, 2 2 3 133 3 133 13. x 3 17, 174 15. x 3 2 2 , 2 2 4 17. x 1q, 53 4 ´ 3 1, q2 19. x 1q, q 2 21. { } 23. x 1q, 52 ´ 15, q 2 25. { } 27. x 1q, q 2 29. x 1q, q2 31. x 1q, 5 4 ´ 3 5, q2 33. x 1q, 04 ´ 3 5, q2 35. { } 37. x 13, 52 39. x 3 4, q 2 ´ 516 41. x 1q, 2 4 ´ 526 ´ 3 4, q 2 43. x 12 13, 2 132 45. x 3 q, 34 ´ 516 47. x 13, 12 ´ 12, q2 49. x 1q, 32 ´ 11, 12 ´ 13, q2 51. x 1q, 22 ´ 12, 12 ´ 13, q 2 53. x 3 1, 14 ´ 536 55. x 3 3, 22 57. x 1q, 22 ´ 12, 12 59. x 1q, 22 ´ 3 2, 32 61. x 1q, 52 ´ 10, 12 ´ 12, q2 63. x 14, 2 4 ´ 11, 2 4 ´ 13, q2 65. x 17, 32 ´ 12, q 2 67. x 1q, 2 4 ´ 10, 22 69. x 1q, 172 ´ 12, 12 ´ 17, q2 7 71. x 13, 4 4 ´ 12, q2 73. x 12, q 2 75. x 11, q2 77. 1q, 32 ´ 13, q2 79. x 1q, 3 4 ´ 35, q2 81. x 33, 0 4 ´ 3 3, q2 83. x 1q, 22 ´ 12, 32 85. x 1q, 2 4 ´ 11, 12 ´ 3 3, q2 87. b 89. b 91. a. verified 1 b. D 41p 34 21p 32 2, p 3, q 2; p 3 4 ,q 4 c. 1q, 32 ´ 13, 3 d. verified 2 4 93. d1x2 k1x3 192x 10242 a. x 15, 8 4 b. 320 units c. x 3 0, 32 d. 2 ft 95. a. verified b. horizontal: r2 20, as r1 increases, r2 decreases to maintain R 40 vertical: r1 20, as r1 decreases, r2 increases to maintain R 40 97. R1t2 0.01t2 0.1t 30 a. 3 0°, 30°2 b. 120°, q 2 c. 150°, q 2 99. a. n 4 b. n 9 x2 c. 13 101. a. yes, x2 0 b. yes, 2 0 x 1 x1x 22 103. x1x 221x 12 2 7 0; 7 0 1x 12 105. R1x2 6 0 for x 12, 82 ´ 18, 142
d. S 331; yes
320
Number of stairs
4
Sheds made 8 12 16 20
d(t) ⫽ 16t 2
280 240 200 160 120 80 40
0.5 1 1.5 2 2.5 3 3.5 4 4.5 5
Time t (in sec)
c. about 3.5 sec 31. Y
d. 3.5 sec; yes
12,321
Z
Z2
3,072,000,000
r2 37. A kh1B b2 6.75R 41. C S2
9
74
2.25
; 48 kg
27. F
k 2 d
29. S Lk
Y
37
111 33. w
e. 2.75 sec
1 35. l krt
39. V ktr2 R
S
C
120
6
22.5
200
12.5
350
15
43. E 0.5mv ; 612.50 J 45. cube root family; answers will vary; 0.054 or 5.4%
8.64 10.5
2
Amount A
Rate R
1.0
0.000
1.05
0.016
1.10
0.032
1.15
0.048
1.20
0.063
1.25
0.077
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Student Answer Appendix 29. a. 5xx ; x 1, 46 b. HA: y 1; VA: x 1, x 4 c. V102 94 (y-intercept); x 3, 3 (x-intercepts) d. V112 43 31. 32. y y
1 48 ; 32 volunteers 49. M E; 41.7 kg V 6 51. D 21.61S; 144.9 ft 53. C 8.5LD; $76.50 p1p2 55. C 14.4 104 2 2 ; about 223 calls 57. a. about 23.39 cm3, d b. about 191% 59. a. M kwh2 1 L1 2 b. 180 lb ¢y ¢y 10 110 ; less; for both f and g, as 61. For f: For g: ¢x 3 ¢x 9 x S q, y S 0 63. a. about 3.5 ft b. about 6.9 ft 65. x 0, x 2 2i 67. y 47. T
8
10 8 6 4 2
108642 2 4 6 8 10
33. V1x2
(3, 5)
4
4
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
x2 x 12
; V102 2 x2 x 6 34. a. y 15; as x S q A1x2 S 15. As production increases, average cost decreases and approaches 15. b. x 7 2000 y 35. removable discontinuity at 12, 52 ; 10
4 8
10 8 6 4 2
8 6 4 2
x
8
4 8
108642 2 4 6 8 10
Summary and Concept Review, pp. 399–404 1.
2.
y
4
(5, 0) 8
(4, 1)4
4
8
8
4
(0, 3) 4 (0.3, 0)
(2, 1) x
8
4
4
8
x
8
(2.7, 0)
4
4
4
4
8
8
(0, 5)
8
x2 3x 4 x1 36. H1x2 • 5
y
8
(3, 0) 4
3.
y
8
8
54321 2 4 6 8 10
20 16 12 8 4
1 2 3 4 5 x
54321 4 8 12 16 20
28. a. even b. x 2, odd; x 1, even; x 1, odd c. deg 6: P1x2 1x 221x 12 2 1x 12 3
x 1
108642 2 4 6 8 10
w, 6
37.
54321 3 6 9 12 15
1 2 3 4 5 x
20 16 12 8 4 108642 4 8 12 16 20
38.
y
108642 2 4 6 8 10
2 4 6 8 10 x
39. a.
y
10 8 6 4 2
2 4 6 8 10 x
y 10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
b. about 2450 favors c. about $2.90 ea. 40. factored form 1x 42 1x 12 1x 22 7 0 outputs are positive for When x 0 Neg Pos Neg Pos x 14, 12 ´ 12, q 2 4
0
2
1
1x 521x 22 x 3x 10
0 x2 x2 2
41.
outputs are positive or zero for x 2, 22 ´ 5, q 2
When x 0 Neg
Pos
Neg
2
42.
0
1x 221x 12 x1x 22
2
Pos 5
0 outputs are negative or zero for
When x 1 Neg Pos Neg
Pos 2
1
0
1
3 43. k 17.5; y 17.51 x
15 12 9 6 3
1 2 3 4 5 x
y
10 8 6 4 2
x
4. a. 0 ft b. 108 ft c. 2.25 sec d. 144 ft, t 3 sec 5. q1x2 x2 6x 7; R 8 6. q1x2 x 1; R 3x 4 7. 7 2 13 6 9 14 7 7 14 14 2 1 2 0 1 Since R 0, 7 is a root and x 7 is a factor. 8. x3 4x 5 1x 221x2 2x2 5 9. 1x 42 1x 121x 32 10. h1x2 1x 121x 421x2 2x 22 11. 12 4 8 3 1 2 5 1 4 10 2 0 Since R 0, 12 is a root and 1x 12 2 is a factor. 12. 3i 1 9 2 18 3i 18 9 6i 1 2 3i 0 6i Since R 0, 3i is a zero 13. 7 1 9 13 10 7 7 14 1 2 1 3 h172 3 14. P1x2 x3 x2 5x 5 15. C1x2 x4 2x3 5x2 8x 4 16. a. C102 350 customers b. more at 2 P.M., 170 c. busier at 1 P.M., 760 7 710 17. 51, 12 , 14 , 5, 10, 52 , 54 , 26 18. x 12 , 2, 52 19. p1x2 12x 321x 421x 12 20. only possibilities are 1, 3, none give a remainder of zero 21. [1, 2], [4, 5]; verified 22. one sign change for g1x2 S 1 positive zero; three sign changes for g1x2 S 3 or 1 negative zeroes; 1 positive, 3 negative, 0 complex, or 1 positive, 1 negative, 2 complex; verified 23. degree 5; up/down; 10, 42 24. degree 4; up/up; 10, 82 25. 26. 27. y y y 10 8 6 4 2
x 1
2 4 6 8 10 x
x
y
216
105
0.343
12.25
729
157.5
45. t 160
Pos
44. k 0.72; z
v
0.72v w2
w
z
196
7
2.88
38.75
1.25
17.856
24
0.6
48
46. 4.5 sec
Mixed Review, pp. 404–405 1. 5. b. b.
x 2, 02 ´ 1, 22
2
y 21x 12 2 2 92 3. 80 GB, $40.00 q1x2 x3 2x2 x 3; R 7 7. a. P112 42 P112 26 c. P152 6 9. a. x 9; x 83 P1x2 1x 22 1x 121x2 92; x 2, x 1, x 3i, x 3i
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA22
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Student Answer Appendix
11.
5 4 3 2 1 108642 1 2 3 4 5
13.
y
20 16 12 8 4 108642 4 8 12 16 20
2 4 6 8 10 x
Cumulative Review chapter R–3, pp. 408–409
y
R1R2 3. a. 1x 12 1x2 x 12 R1 R2 b. 1x 32 1x 221x 22 5. all reals 7. verified 11 1009 9. y x ; 39 min, driving time increases 11 min every 60 days 60 60 x3 3 11. Month 9 13. f 1 1x2 2 y 15. 17. X 63 19. y 10 1. R
2 4 6 8 10 x
15. x 1q, 32 ´ 12, 22 17. a. V1x2 124 2x2116 2x21x2 4x3 80x2 384x b. 512 4x3 80x2 384x 0 x3 20x2 96x 128 c. for 0 6 x 6 8, possible rational zeroes are 1, 2, and 4 d. x 4 e. x 8 422 2.34 in. 19. R kL1 A1 2 1. a. f 1x2 1x 52 9
b. g1x2
1 2 1x
(5, 9) (8, 0)
42 4 2 4 6 8 10 12 14 16 x 8 (2, 0) 12 16 (0, 16) 20
42 8
5
(4, 8)
18 16 (0, 16) 14 12 10 8 6 4 2
108642
Exercises 4.1, pp. 420–424
2 4 6 8 10 x
20 16 12 8 4
500 300 100
2 4 6 8 10 x
300 500
108642 4 8 12 16 20
10 8 6 4 2
2 4 6 8 10 x
15. a. removal of 100% of the contaminants dramatic increase c. 88% 16. a. b. y y 50 40 30 20 10
108642 10 20 30 40 50
108642 2 4 6 8 10
2 4 6 8 10 x
b. $500,000; $3,000,000;
10 8 6 4 2
2 4 6 8 10 x
108642 2 4 6 8 10
2 4 6 8 10 x
18. a. x 1q, 3 4 ´ 3 1, 4 4 b. x 1q, 42 ´ 10, 22 3 y b. h 1 55; no c. 28.6% 29.6% 0.8 d. 11.7 hr e. 4 hr 43.7% 0.4 f. The amount of the chemical in the blood4 0 4 8 12 16 20x stream becomes neglible. 20. 520 lb 17. 800 19. a.
1.2
Strengthening Core Skills, pp. 407–408 Exercise 1: Exercise 2: Exercise 3: Exercise 4: Exercise 5: Exercise 6:
1 2 3 4 5 x
CHAPTER 4
2. 12, 02, y 2x2 4x 3. a. 40 ft, 48 ft b. 49 ft c. 14 sec 14x 3 2 4. x 5 2 5. x2 2x 9 x2 x 2x 1 0 15 10 24 6. 3 1 3 9 18 24 1 3 6 8 0 R0✓ 7. 1 8. P1x2 x 3 2x2 9x 18 9. Q1x2 1x 22 2 1x 12 2 1x 12, 2 mult 2, 1 mult 2, 1 mult 1 10. a. 1, 18, 2, 9, 3, 6 b. 1 positive zero, 3 or 1 negative zeroes; 2 or 0 complex zeroes c. C1x2 1x 221x 12 1x 3i2 1x 3i2 11. a. 1992, 1994, 1998 b. 4 yr c. surplus of $2.5 million 12. 13. 14. y y y
108642 100
54321 2 4 6 8 10
5 x
2
y
y
20 16 12 8 4
8 6 4 2
5
Practice Test, pp. 405–406 2
5
x 1q, 3 4 x 12, 12 ´ 12, q 2 x 1q, 42 ´ 11, 32 x 32, q 2 x 1q, 22 ´ 12, q 2 x 3 3, 1 4 ´ 3 3, q 2
1. second; one 3. 111, 22 , (5, 0), (1, 2), (19, 4) 5. False, answers will vary. 7. one-to-one 9. one-to-one 11. not a function 13. oneto-one 15. not one-to-one, fails horizontal line test: x 3 and x 3 are paired with y 1 17. not one-to-one, y 7 is paired with x 2 and x 2 19. one-to-one 21. one-to-one 23. not one-to-one; p1t2 7 5, corresponds to two x-values 25. one-to-one 27. one-to-one 29. f 1 1x2 5 11, 22, 14, 12, 15, 02, 19, 22, 115, 526 31. v1 1x2 513, 42, 12, 32, 11, 02, 10, 52, 11, 122, 12, 212, 13, 3226 5 x3 33. f 1 1x2 x 5 35. p1 1x2 x 37. f 1 1x2 4 4 3 3 39. Y1 41. f 1 1x2 x3 2 43. f 1 1x2 2 x1 1 x 4 8 x 1 1 45. f 1x2 2 47. f 1x2 49. a. x 5, y 0 x 1x 1 b. f 1x2 1x 5, x 0, y 5 51. a. x 7 3, y 7 0 8 b. v 1 1x2 3, x 7 0, y 7 3 53 a. x 4, y 2 Ax 1 b. p 1x2 1x 2 4, x 2, y 4 55. 1 f g2 1x2 x, 1g f 21x2 x 57. 1 f g21x2 x, 1g f 21x2 x 59. 1 f g2 1x2 x, 1g f 21x2 x 61. 1 f g21x2 x, 1g f 21x2 x x5 63. f 1 1x2 65. f 1 1x2 2x 5 67. f 1 1x2 2x 6 3 x3 1 3 3 69. f 1 1x2 2 73. f 1 1x2 2 2 x 3 71. f 1 1x2 x1 2 x2 2 2 75. f 1 1x2 , x 0; y c , q b 3 3 x2 3, x 0; y 33, q 2 77. p1 1x2 4 1 79. v 1x2 1x 3, x 3; y 3 0, q 2 81. 83. 85. y y y f 1(x)
8 4 8
8
f(x) f 1(x)
4
4
8
4
x
4
4
8
x
8
4
4
4
4
8
8
8
y 8 4 4
f(x) f 1(x) 4
4 8
8
x
f(x)
4
f(x)
4
87.
8
8
8
f 1(x)
8
x
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA23
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Student Answer Appendix 89.
5 4 3 2 1 54321 1 2 3 4 5
91.
5 4 3 2 1 54321 1 2 3 4 5
93.
5 4 3 2 1 54321 1 2 3 4 5
D: x 3 0, q2 , R: y 3 2, q 2 ; D: x 3 2, q 2 , R: y 3 0, q 2
y
1 2 3 4 5 x
1 2 3 4 5 x
D: x 1q, 4 4 , R: y 1q, 4 4 ; D: x 1q, 4 4 , R: y 1q, 4 4
y
95. a. 31.5 cm b. The result is 80 cm. It gives the distance of the projector from the screen. 97. a. 63.5°F b. f 1 1x2 2 7 1x 592; independent: temperature, dependent: altitude c. 22,000 ft 99. a. 144 ft 1x b. f 1 1x2 , independent: distance fallen, dependent: time fallen 4 3x c. 7 sec 101. a. 28,260 ft3 b. f 1 1x2 3 , independent: volume, B dependent: height c. 9 ft 103. Answers will vary. 105. d 107. x 31, 2 4 109. a. P 2l 2w b. A r2 c. V r2h d. V 13 r2h e. C 2r f. A 12 bh g. A 12 1b1 b2 2h h. V 43 r3 i. a2 b2 c2
Exercises 4.2, pp. 432–436 1. bx; b; b; x 3. a; 1 5. False; for b 6 1 and x2 7 x1, bx2 6 bx1 so function is decreasing 7. 40,000; 5000; 20,000; 27,589.162 9. 500; 1.581; 2.321; 221.168 11. 10,000; 1975.309; 1487.206; 1316.872 13. increasing 15. decreasing
y0
y
(0, 1) 2 4 6 8 10 x
10
y0
108642 2 4 6 8 10
10 8 6 (1, 5) 4 (0, 3) 2
(1, 9)10
y0
2 4 6 8 10 x
21. reflect across y-axis
(3, 1)
108642 2 4 6 8 10
2 4 6 8 10 x
25. left 1, down 3 10 8 6 4 2 108642 2 4 6 8 10
y 3
2 4 6 8 10 x
10 8
y
(2, 7) 6
4 (0, 4) 2
y3
108642 2 4 6 8 10
2 4 6 8 10 x
y
(2, 10) 10 (2, 5) y1
(1, 2)
4 6
b
39. 2.718282 49.
50,000
41. 7.389056
2
1 2 3 4 x
x
43. 4.481689 y
10 8 6 (0, 6.39) 4 2 (2, 0)
(0, 1)
654321 1 2 3 4 5 6
4
(0, 1)
51.
y
4 3 2 1
y
108642 2 4 6 8 10
2 4 6 8 10 x
y
8 6 4 2 (0, 2)
108642 2 4 6 8 10
p
40,000 30,000 20,000 10,000
1
2
3 4 (days)
5t
75. no, they will have to wait about 10 min 77. a. $100,000 b. 3 yr 79. a. $86,806 b. 3 yr 81. a. $40 million b. 7 yr 83. 32% transparent 85. 17% transparent 87. $32,578 89. a. 8 g 3 b. 48 min 91. 9.5 107; answers will vary 93. 9 95. 2 ¢y 0.3842, 0.056, 0.011, 0.003; the rate of growth seems to 97. a. ¢x be approaching zero b. 16,608 c. yes, the secant lines are becoming virtually horizontal 99. 101. a. volume of a sphere b. area of a y 10 triangle c. volume of a rectangular prism 8 6 d. Pythagorean theorem 4 2 4
2
2
4
6
8 10 x
4
2 4 6 8 10 x
5; answers will vary 7. 23 8 15. 21 2 17. 72 49 log464 3 25. log3 19 2 1 log 1000 3 33. log100 2 1 39. 1 41. 2 43. 1 45. 2 53. 0.4700 55. 5.4161 57. 0.7841 61. shift right 2, up 3
1. logb x; b; b; greater 3. (1, 0); 0 5. 1 9. 71 17 11. 90 1 13. 83 2 2 4 19. 10 100 21. e 54.598 23. 27. 0 loge1 29. log13 27 3 31. 37. log4 18 3 2
47. 2 49. 2 59. shift up 3 10 8 6 4 2 108642 2 4 6 8 10
51. 1.6990
y
(1, 3) 2 4 6 8 10 x
63. shift left 1
27. up 1
2 4 6 8 10 x
y 2 4 2 2
2 4 6 8 10 x
35. log48 32
23. reflect across y-axis, up 3
(3, 8) 8 6 4 2 (0, 1)
y
8 6 4 2
108642 2 4 6 8 10
y
10
14 12 10 8 6 4 2
Exercises 4.3, pp. 445–449
19. left 3
108642 2 4 6 8 10
y0
2 4 6 8 10 x
decreasing
y
y2
y
6 4 2 (0, 1)
increasing
17. up 2
2 4 6 8 10 x
10 8 6 4 (2.3, 0) 2
108642 2 4 6 8 10
(2, 7)
(2, 1)
108642 2 4 6 8 10
33. e 35. a 37. 45. 4.113250 47. y
(2, 9) 8
(2, 9)
108642 2 4 6 8 10
6 4 2
53. 3 55. 23 57. 13 59. 4 61. 3 63. 3 65. 2 67. 2 69. 2 71. 3 73. a. 1732, 3000, 5196, 9000 b. yes c. as t S q, P S q
1 2 3 4 5 x
10 8 6 4 2
31. down 2 y 10 8 (0, 9)
y0
D: x 10, q 2 , R: y 1q, q2 ; D: x 1q, q 2 , R: y 10, q 2
y
29. right 2
10 8 6 4 2
10 8 6 4 2 108642 2 4 6 8 10
y
(3, 3) 2 4 6 8 10 x
65. reflect across x-axis, shift left 1 y
108642 2 2 4 6 8 10 x 4 6 (0, 0) 8 10
y
10 8 6 4 2 (0, 0) 108642 2 2 4 6 8 10 x 4 6 8 10
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA24
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Student Answer Appendix
67. II 69. VI 71. V 73. x 1q, 12 ´ 13, q 2 75. x 1 32 , q 2 77. x 13, 32 79. pH 4.1; acid 81. a. 4.7 b. 4.9 83. about 3.2 times 85. a. 2.4 b. 1.2 87. a. 20 dB b. 120 dB 89. about 3162 times 91. 6,194 m 93. a. about 5434 m b. 4000 m 95. a. 2225 items b. 2732 items c. $117,000 d. verified 97. a. about 58.6 cfm b. about 1605 ft2 99. a. 95% b. 67% c. 39% 101. 4.3; acid 103. Answers will vary. a. 0 dB 2 b. 90 dB c. 15 dB d. 120 dB e. 100 dB f. 140 dB 105. a. 3 3 5 b. c. 107. D: x R: y y 10 2 2 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
109. x 1q, 52; f 1x2 1x 521x 42 2 x3 3x2 24x 80
Mid-Chapter Check, pp. 449–450 5
1. a. 23 log279 b. 54 log81243 2. a. 83 32 b. 12960.25 6 3. a. x 5 b. b 54 4. a. x 3 b. b 5 5. a. $71,191.41 b. 6 yr 6. F1x2 4 # 5x3 2 7. f 1 1x2 1x 12 2 3, D: x 3 1, q2 ; R: y 3 3, q 2 ; verified 8. a. 4 log381, verified 2 b. 4 ln 54.598, verified 9. a. 273 9, verified b. e1.4 4.0552, verified 10. 7.9 times more intense
101. x 2 13, x 2 13 is extraneous ln 128,965 ln 231 2 2; x 0.7968 105. x ; x 3.1038 103. x ln 7 3 ln 5 3 ln 2 ln 9 ln 5 ; x 1.7095 109. x ; x 0.5753 107. x ln 3 ln 2 2 ln 5 ln 9 C p 1 b ln a a , t 55.45 111. x 46.2 113. t k 115. a. 30 fish b. about 37 months 117. about 3.2 cmHg 119. about 50.2 min 121. $15,641 123. 6 hr, 18.0% 125. Mf 52.76 tons 127. a. 26 planes b. 9 days 129. a. log34 log35 2.7268 b. log34 log35 0.203 c. 2 log35 2.9298 131. a. d b. e c. b d. f e. a f. c 133. x 0.69314718 135. a. 1 f g2 1x2 31log3x22 2 3log3x x; 1g f 2 1x2 log3 13x2 2 2 x 2 2 x b. 1 f g2 1x2 e1ln x12 1 eln x x; 1g f 2 1x2 ln ex1 1 x 1 1 x x 137. a. y ex ln 2 eln 2 2x; x ln y y 2 1 ln y x ln 2, e ex ln 2 1 y ex ln 2 b. y bx, ln y x ln b, eln y ex ln b, y exr for r ln b 139. Answers will vary. 141. b 143. y 10 8
(0, 4) 6 (2, 0)
Reinforcing Basic Concepts p. 450 Exercise 1: Exercise 2: Exercise 3: Exercise 4: Exercise 5:
about 158 times about 501 times about 12,589 times about 398 times about 39,811 times
Exercises 4.4, pp. 462–466 1. e 3. extraneous 5. 2.316566275 7. x 29.964 9. x 1.778 11. x 2.200 13. x 1.260 15. x 4.7881 17. x 3.1079 8 ln 2.32 19. x , x 1.1221 21. x e3 4, x 10.3919 0.75 e0.4 5 23. x 5 101.25, x 12.7828 25. x , 2 2 2 x 1.7541 27. ln12x 14x2 29. log1x 12 31. log34 x5 x b 35. ln a b 37. ln1x 22 39. log242 33. loga x1 x 41. log5 1x 22 43. 1x 22 log 8 45. 12x 12 ln 5 47. 12 log 22 49. 4 log5 3 51. 3 log a log b 53. ln x 14 ln y 55. 2 ln x ln y 57. 12 3 log1x 22 log x 4 59. ln 7 ln x 12 ln13 4x2 ln 2 3 ln1x 12 ln 152 ln 60 ; 2.104076884 63. ; 3.121512475 61. ln 7 ln 5 log 1.73205 log 0.125 ; 0.499999576 67. ;3 65. log 3 log 0.5 log1x2 ; f 152 1.4650; f 1152 2.4650; f 1452 3.4650; 69. f 1x2 log132 outputs increase by 1; f 133 # 52 4.465 log1x2 ; h122 0.3155; h142 0.6309; h182 0.9464; 71. h1x2 log192 outputs are multiples of 0.3155; h124 2 410.31552 1.2619 73. x 32 75. x 6.4 77. x 20, 5 is extraneous 79. x 2, 52 is extraneous 81. x 0 83. x 52 85. x 23 e2 63 87. x 32 89. x 19 91. x 9 9 93. x 2; 9 is extraneous 95. x 3e3 12 ; x 59.75661077 97. no solution 99. t 12 ; 4 is extraneous
4 2
108642 2 4 6 8 10
(2, 0) 2 4 6 8 10 x
x1
Exercises 4.5, pp. 475–480 1. Compound 3. Q0ert 5. Answers will vary. 7. $4896 9. 250% 11. $2152.47 13. 5.25 yr 15. 80% 17. 4 yr 19. 16 yr 21. $7561.33 23. about 5 yr 25. 7.5 yr 27. no 29. a. no b. 9.12% 31. 7.9 yr 33. 7.5 yr 35. a. no b. 9.4% 37. a. no b. approx 13,609 euros 39. No; $234,612.01 41. about 7 yr A AP 43. 23 yr 45. a. no b. $302.25 47. a. t b. p pr 1 rt A ln a b Q1t2 p nt A 1b b. t 49. a. r n a 51. a. Q0 rt Bp e r n ln a1 b n Q1t2 b lna Q0 b. t 53. $709.74 55. a. 5.78% b. 91.67 hr 57. 0.65 g r 59. 816 yr 61. about 12.4% 63. $17,027,502.21 65. 7.93% 67. 2548.8 m 69. P1x2 x4 4x3 6x2 4x 15
Summary and Concept Review, pp. 480–484 1. no
2. no
3. yes
4. f 1 1x2
x2 3
5. f 1 1x2 1x 2
6. f 1 1x2 x2 1; x 0 7. f 1x2: D: x 3 4, q 2, R: y 3 0, q2; f 1 1x2: D: x 30, q 2, R: y 3 4, q 2 8. f 1x2: D: x 1q, q2, R: y 1q, q2; f 1 1x2: D: 1q, q 2, R: y 1q, q 2 9. f 1x2: D: x 1q, q 2, R: y 10, q2; f 1 1x2: D: x 10, q 2, R: y 1q, q 2 10. a. $3.05 2 1 b. f 1 1t2 t 0.15 f 13.052 7 c. 12 days 11. 12. 13. y y y 10 8 6 4 2
108642 2 4 6 8 10
y3 2 4 6 8 10 x
10 8 6 4 2
108642 y 1 2 4 6 8 10
10 8 6 4 2
2 4 6 8 10 x
108642 2 4 6 8 10
2 4 6 8 10 x
y 2
1 14. 2 15. 2 16. 52 17. 12.1 yr 18. 32 9 19. 53 125 3.7612 20. e 43 21. log525 2 22. ln 0.7788 0.25 23. log381 4 24. 5 25. 1 26. 12
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:49 am Page SA25
Student Answer Appendix 27.
10 8 6 4 2 108642 2 4 6 8 10
28.
y
x 3
108642 2 4 6 8 10
2 4 6 8 10 x
30. x 1q, 02 ´ 16, q 2 33. a. x e
32
2 4 6 8 10 x
31. x 132 , q2
b. x 10
2.38
ln 4 , x 2.7726 0.5
34. a. x
29.
y
10 8 6 4 2
c. x ln 9.8 b. x
10 8 6 4 2 108642 2 4 6 8 10
y x1
2 4 6 8 10 x
32. a. 4.79 b. 107.3 I0 1 d. x log 7 2
ln 19 , x 6.3938 0.2
103 , x 33.3333 d. x e2.75, x 0.0639 35. a. ln 42 3 3 d. log1x2 x2 36. a. 2 log59 b. 2 log74 b. log930 c. ln 1 xx 12 c. 12x 12ln 5 d. 13x 22ln 10 37. a. ln x 14 ln y b. 13 ln p ln q c. 53 log x 43 log y 52 log x 32 log y c. x
d. log 4 53 log p 43 log q 32 log p log q log 128
38. a.
log 45 log 6
log 3
4.417
Strengthening Core Skills, p. 488 Exercise 1: Exercise 2: Exercise 3: Exercise 4:
c.
Answers will vary. a. log1x2 3x2 b. ln1x2 42 c. logx Answers will vary. a. x log 3 b. 5 ln x c. 13x 12 ln 2
1. x 2 7i 3. 14 5i2 2 814 5i2 41 0 5. f 1g1x22 x g1f 1x22 x Since 1f g2 1x2 1g f2 1x2, they are inverse functions. ¢T 455 7. a. T1t2 455t 2645 11991 S year 12 b. , triple births ¢t 1 increase by 455 each year c. T162 5375 sets of triplets, T 1172 10,380 sets of triplets 9. D: x 310, q 2, R: y 39, q2 y 10 8 h1x2c: x 12, 02 ´ 13, q2 h1x2T: x 10, 32 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
11. x 3, x 2 1multiplicity 22; x 4 15. a. f 1 1x2
5x 3 2
108642 2 4 6 8 10
2 4 6 8 10 x
10 8 6 4 2
108642 2 4 6 8 10
3. a. 2 log1020
b. 0.05x
9. a. 54 625
y
x0
1129
vary. 13. 6 log 2 15. 4 4 17. I 6.3 1017 19. 1.6 m, 1.28 m, 1.02 m, 0.82 m, 0.66 m, 0.52 m
Practice Test, pp. 485–486 1. 34 81 2. log255 12 3. 52 logbx 3 logby logbz m 2n3 5 4. logb 5. x 10 6. x 7. 2.68 8. 1.24 3 1p 9. 10. 11. a. 4.19 b. 0.81 y y 10 8 6 4 2
108642 2 4 6 8 10
y3 2 4 6 8 10 x
10 8 6 4 2
108642 2 4 6 8 10
c. f 1( f 1x2 ) x
2 4 6 8 10 x
17. x 5, x 6 is an extraneous root 19. a. 88 hp for sport wagon, ~81 hp for minivan b. 3294 rpm c. minivan, 208 hp at 5800 rpm
Modeling with Technology Exercises, pp. 495–502 1. e 3. a 5. d 7. linear 9. exponential 11. logistic 13. exponential 15. As time increases, the amount of radioactive 0.9 material decreases but will never truly reach 0 or 0.7 become negative. Exponential with 0.5 b 6 1 and k 7 0 is the best choice. 0.3 0.1 y 11.04220.5626x 0 1 2 3 4 17. Sales will increase rapidly, then level off as the Grams market is saturated with ads and advertising becomes less effective, possibly modeled by a logarithmic function. y 120.4938 217.2705 ln1x2 1719 19. a. b. about 1750 c. y y 2000 1 10.2e0.11x 1750
x2
2 4 6 8 10 x
12. f is a parabola (hence not one-to-one), x , y 33, q 2 ; vertex is at 12, 32 , so restricted domain could be x 3 2, q 2 to create a one-to-one function; f 1 1x2 1x 3 2, x 33, q2, y 32, q 2 .
13. x 1 ln 3 14. x 1, x 5 is extraneous 15. 5 yr 16. 8.7 yr 17. 19.1 months 18. 7% compounded semi-annually 19. a. no b. $54.09 20. a. 10.2 lb b. 19 weeks ln 89
y
MODELING WITH TECHNOLOGY II 2 4 6 8 10 x
b. e0.45 0.15x c. 107 0.1 108 11. a. x 3 1, q 2, y 3 2, q2 b. g1 1x2 1x 22 2 1, x 3 2, q 2, y 3 1, q 2 c. Answers will 9
10 8 6 4 2
2V 13. 2a b
Time (hours)
y0
10 8 6 4 2
1 3
c.
New cases per day
4.9069 b. 1.5 log 2 c. 1x 32 ln 2 5. 7. y
1500 1250 1000 750 500 250
10
30
50
70
90 x
logistic 21. 4.95 23. 6.25 25. 5.75 27. 6.84 29. logarithmic, y 27.4 13.5 ln x y a. 9.2 lb b. 29 days c. 34.8 lb Days after outbreak
Weight (pounds)
log 30
b.
108642 2 4 6 8 10
Mixed Review, pp. 484–485 1. a.
x 3
Cumulative Review chapters 1–4, pp. 488–489
2.215
ln 124 ln 0.42 6.954 d. 0.539 ln 2 ln 5 ln 7 ln 5 2 39. x ln 2 40. x ln 3 1 41. x 1ln 3 42. x 6.389 43. x 5; 2 is extraneous 44. x 4.25 45. a. 17.77% b. 23.98 days 46. 38.6 cmHg 47. 18.5% 48. Almost, she needs $42.15 more. 49. a. no b. $268.93 50. 55.0% b.
SA25
45 35 25 15 5 10
30
50
70
Time (days)
90
x
5
6
cob19529_saa_SA01-SA68.qxd 01/03/2009 05:50 am Page SA26
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Student Answer Appendix 49. quadratic, y 1.18x2 10.99x 4.60; month 8
c. 30,400
90
3
70
9
50
20
40
60
80 100
Year (1900 S 0)
33. exponential, y 50.2111.072 a. 86,270 b. 272,511 y
51. logistic, y
7
9
11
x
Month
; 1 32.280e0.336x
c. 1990
135 105 75 45
6
10
14
18
Year (1980 S 0)
150
Logistic
125 100 75 50 25 6
10
14
18
Year (1960 S 0)
x
35. exponential, y 346.7910.942 x a. 155,142 b. 78,548 y
53.
about 55 million, about 184 million, about 214 million; 2014
y 175 Exponential
2
15 2
Number of farms (1000s)
5
15
222.133
Subscriptions (millions)
Number of female MDs
x
x
power regression, a. y x0.665, 9.5 AU; b. 84.8 yr
7.5
c. 1993
450 350 250 150
0
50 2
6
10
14
18
Year (1980 S 0)
15
x
37. quadratic y 0.576x2 8.879x 394 a. 360 million b. about 513 million y 480 c. from 1984 to 1990
0 a. power regression, y 58555.891x1.056 2; b. about 295 rodents c. about 17 predators
440
55.
400
y 5000
360
4000
2
6
10
14
18
Year (1980 S 0)
Rodents
320
x
39. linear, y 6.555x 165.308 a. 224 million y
3000 2000 1000
b. 264 million
c. 2010
20
40
60
80
100
x
Predators
450
57. a.
350
linear, W 1.24L 15.83, 32.5 lb, 35.3 in.
W 25
Weight (lb)
250 150 50 1
3
5
7
9
11
Year (1990 S 0)
x
20 15 10 5
Percent of U.S. Population
41. linear, P1t2 0.51t 22.51, 2005: 40.4%, 2010: 43%
16
y
57. b.
5 10 15 20 25 30 35 40 x
Year (1970 → 0)
Debt
2500
170 150 130 110 10 12 x
Number of notes
y Monthly charge
44 36 28 20 12 4 4
12
logarithmic, C1a2 37.9694 3.4229 ln 1a2, about 49.3 cm, about 34 mo
52 48 44 40 36 10
15
20
25
a
CHAPTER 5
3500
Exercises 5.1, pp. 513–518 4 6 8 10 x Month
45. exponential, y 103.83 11.05952 x y a. 220 b. The 22nd note, or F sharp 210 c. frequency doubles, yes 190
47. exponential, y 8.02 11.05642 x $41.59/mo, $54.72/mo
L
4500
2
8
32
Age (months)
500
6
28
y
1500
4
24
C(a)
5
43. linear, y 509.18x 7.96; about $6100; the next July 1x 19.72
2
20
Length (in.)
50 45 40 35 30 25 20 15 10 5
Circumference (cm)
Chicken production (millions)
3
27
x 0
Debit cards (millions)
1
21
30 10
Frequency
y 6 3
Profit
Offices (1000s)
31. logarithmic, y 78.8 10.3 ln x a. 51,000 b. 1977 y
20
28
Year (1980 S 0)
36 x
1 2 1. Complementary; 180°; less; greater1. 3. r, 2 r , radians 5. Answers will vary. 7. a. 77.5° b. 30.8° 9. 53° 11. 42.5° 13. 67.555° 15. 285.0025° 17. 45.7625° 19. 20° 15¿ 00– 21. 67° 18¿ 25.2– 23. 275° 19¿ 48– 25. 5° 27¿ 9– 27. No, 19 16 6 40 29. 69° 31. 25° 33. 62.5 m 35. 41 12 ft 58 ft 10 ft 68 ft 37. 645°, 285°, 435°, 795° 39. 765°, 405°, 315°, 675° 41. s 980 m 43. 0.75 rad 8 mi 49. 0.2575 rad 45. r 1760 yd 47. s 3 51. r 9.4 km 53. A 115.6 km2 55. 0.6 rad 57. r 3 m 59. 1.5 rad; s 7.5 cm; r 5 cm; A 18.75 cm2 61. 4.3 rad s 43 m; r 10 m; A 215 m2 63. 3 rad; A 864 mm2; s 72 mm; r 24 mm 7 2 65. 2 rad 67. rad 69. rad 71. rad 73. 0.4712 rad 4 6 3 75. 3.9776 rad 77. 60° 79. 30° 81. 120° 83. 720° 85. 165°
cob19529_saa_SA01-SA68.qxd 1/5/09 13:18 Page SA27 User-S178 MAC-OSX_1:Users:user-s178:Desktop:
Student Answer Appendix 87. 186.4° 89. 171.9° 91. 143.2° 93. h 7.06 cm; m 3.76 cm; n 13.24 cm 95. 960.7 mi apart 97. a. 50.3 m2 b. 80° c. 17 m 99. a. 1.5 rad/sec b. about 15 mi/hr 101. a. 40 rad/min b. ft/sec 0.52 ft/sec c. about 11.5 sec 6 103. a. 1000 m b. 1000 m 100012 m 1414.2 m c. 45
1000 m
√2 (1000) m
45
h cot v h cot u d d h cot u h cot v d h cot u cot v 91. a. approx. 3055.6 mi b. approx. 9012.8 mi c. approx. 7 hr, 13 min 93. a. local max: 15, 22, (2, 3); local min: 12, 12, 17, 22, 16, 32 b. zeroes: x 6, 3, 1, 4 c. T1x2T: x 15, 22 ´ 12, 62; T1x2c: x 17, 52 ´ 12, 22 d. T1x2 7 0: x 16, 32 ´ 11, 42; T1x2 6 0: x 37, 62 ´ 13, 12 ´ 14, 6 4 95. d 53.74 in. D 65.82 in.
1000 m
105. 5012 or about 70.7 mi apart 107. a. 50.3°/day; 0.8788 rad/day b. 0.0366 rad/hr c. 6.67 mi/sec 109. Answers will vary. 111. a. 192 yd b. 86.7 rpm 1 113. 8.14% 115. y 1x 22 2 4 4
Exercises 5.2, pp. 525–531 1. tan1x 3. opposite; hypotenuse 5. To find the measure of all three angles and all three sides 13 13 12 5 7. sin 12 13 , csc 12 , sec 5 , tan 5 , cot 12 85 13 84 85 9. cos 13 , sec , cot , sin , csc 85 13 84 85 84 11 5 15 2 5 15 11. sin 511 15 , tan 2 , csc 11 , cos 5 15 , sec 2 13. 15. Angles Sides Angles Sides A 30° a 98 cm A 45° a 9.9 mm B 45° b 9.9 mm B 60° b 98 13 cm C 90° c 9.912 mm C 90° c 196 cm 17.
Angles A 22° B 68° C 90°
19.
Sides a 14 m b 34.65 m c 37.37 m
verified 21.
Angles A 65° B 25° C 90°
23. 35. 47. 55. 59. 65. 71. 77. 79. 83.
Angles A 32° B 58° C 90°
Sides a 5.6 mi b 8.96 mi c 10.57 mi
verified Sides a 625 mm b 291.44 mm c 689.61 mm
0.4540 25. 0.8391 27. 1.3230 29. 0.9063 31. 27° 33. 40° 40.9° 37. 65° 39. 44.7° 41. 20.2° 43. 18.4° 45. 46.2° 61.6° 49. 21.98 mm 51. 3.04 mi 53. 177.48 furlongs They have like values. 57. They have like values. 2 13 1 13 13 13 1 43° 61. 21° 63. , , , , , 13, 2, , 13 2 2 3 2 2 3 6 2 23 67. 7 423 69. 11.0°, 23.9°, 145.1° approx. 300.6 m 73. approx. 1483.8 ft 75. approx. 118.1 mph a. approx. 250.0 yd b. approx. 351.0 yd c. approx. 23.1 yd approx. 1815.2 ft; approx. 665.3 ft 81. approx. 386.0 a. 875 m b. 1200 m c. 1485 m; 36.1°
875 m
1200 m 85. approx. 450 ft 87. a. approx. 20.2 cm for each side b. approx. 35.3° x 89. cot u h x h cot u xd cot v h h cot u d cot v h
SA27
Exercises 5.3, pp. 538–541 1. origin; x-axis 3. positive; clockwise 5. Answers will vary. 7. slope 13, equation: y 13x, 13 1 sin 60° , cos 60° , tan 60° 13 2 2 y 9. QI/III; 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
3 3 (4, 3): sin ; (4, 3): sin 5 5 4 4 cos cos 5 5 3 3 tan tan 4 4 y 11. QII/QIV; 5 4 3 2 1 54321 1 2 3 4 5
1 2 3 4 5 x
1 1 (3, 13): sin ; 13, 132: sin 2 2 13 13 cos cos 2 2 1 1 tan tan 13 13 15 17 8 17 15 13. sin , csc , cos , sec , tan , 17 15 17 8 8 8 cot 15 21 29 20 15. sin , csc , cos , 29 21 29 29 21 20 sec , tan , cot 20 20 21 12 2 12 17. sin , csc , cos , 2 2 12 2 sec , tan 1, cot 1 12 1 13 19. sin , csc 2, cos , 2 2 2 1 sec , tan , cot 13 13 13 4 117 1 21. sin , csc , cos , 4 117 117 1 sec 117, tan 4, cot 4
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Student Answer Appendix
2 113 3 , csc , cos , 2 113 113 2 3 113 sec , tan , cot 3 3 2 161 5 6 25. sin , csc , cos , 6 161 161 161 6 5 sec , tan , cot 5 5 6 2 15 121 1 27. sin , , csc , cos 121 2 15 121 1 sec 121, tan 2 15, cot 2 15 29. x 0, y k; k 7 0; r k; k 0 k sin 90° , cos 90° , tan 90° , k k 0 sin 90° 1, cos 90° 0, tan 90° is undefined csc 90° 1, sec 90° is undefined cot 90° 0 31. 60° 33. 45° 35. 45° 37. 68° 39. 40° 41. 11.6° 43. QII 45. QII 13 1 1 47. sin ; cos ; tan 2 2 13 12 12 49. sin ; cos ; tan 1 2 2 13 1 51. sin ; cos ; tan 13 2 2 1 13 1 53. sin ; cos ; tan 2 2 13 3 5 4 55. x 4, y 3, r 5; QIV; sin , csc , cos , 5 3 5 5 3 4 sec , tan , cot 4 4 3 35 37 57. x 12, y 35, r 37; QIII; sin , csc , 37 35 12 12 37 35 cos , sec , tan , cot 37 12 12 35 1 212 59. x 212, y 1, r 3; QI; sin , csc 3, cos , 3 3 3 1 sec , tan , cot 2 12 2 12 2 12 8 7 61. x 115, y 7, r 8; QIII; sin , csc , 8 7 115 8 7 115 , tan , cot , sec cos 7 115 115 8 63. 52° 360°k 65. 87.5° 360°k 67. 225° 360°k 13 1 1 13 1 , , 13 73. , , 69. 107° 360°k 71. 2 2 2 2 13 13 1 75. sin , cos , tan 13 2 2 13 1 77. sin , cos , tan 13 2 2 1 13 1 79. sin , cos , tan 2 2 13 1 13 1 81. sin , cos , tan 2 2 13 83. QIV, neg., 0.0175 85. QIV, neg., 1.6643 87. QIV, neg., 1.5890 89. QI, pos., 0.0872 91. a. approx. 144.78 units2 b. 53° c. The parallelogram is a rectangle ab sin whose area is A ab. d. A 2 93. 60° 360°k and 300° 360°k 95. 240° 360°k and 300° 360°k 23. sin
97. 61.1° 360°k and 118.9° 360°k 99. 113.0° 360°k and 293.0° 360°k 101. 1890°; 90° 360°k 103. head first; 900° 105. approx. 701.6° 107. 343.12 in2 109. Answers will vary. 111. a. 12,960° b. 125.66 in. c. 15,080 in. d. 85.68 mph 113. about 555.4 ft 115. y 54 x 2
Exercises 5.4, pp. 550–555
y 3. x; y ; x sec t; csc t; cot t 5. Answers will vary. ; 5 12 111 5 111 15 7. 10.6, 0.82 9. a , b 11. a , b 13. a , b 13 13 6 6 4 4 15. 10.9769, 0.21372 17. 10.9928, 0.11982 13 1 13 1 13 1 , b, a , b, a , b 19. a 2 2 2 2 2 2 111 5 111 5 111 5 21. a , b, a , b, a , b 6 6 6 6 6 6 23. 10.3325, 0.94312, 10.3325, 0.94312, 10.3325, 0.94312 25. (0.9937, 0.1121), 10.9937, 0.11212, 10.9937, 0.11212 1 13 12 12 27. a , b is on unit circle 29. ; a , b 2 2 4 2 2 13 1 12 12 13 1 31. ; a , b 33. ; a , b 35. ; a , b 6 2 2 4 2 2 6 2 2 12 12 12 12 12 12 37. a. b. c. d. e. f. 2 2 2 2 2 2 12 12 g. h. 39. a. 1 b. 1 c. 0 d. 0 2 2 13 13 13 13 13 13 13 41. a. b. c. d. e. f. g. 2 2 2 2 2 2 2 13 h. 43. a. 0 b. 0 c. undefined d. undefined 2 45. sin t 0.6, cos t 0.8, tan t 0.75, csc t 1.6, sec t 1.25, cot t 1.3 5 12 13 13 47. sin t 12 13 , cos t 13 , tan t 5 , csc t 12 , sec t 5 ,
1. x; y; origin
49.
51.
53.
55.
57. 59. 67. 79. 89.
5 cot t 12 6 111 5 111 6 111 sin t , cos t , tan t , csc t , sec t , 6 6 5 11 5 5 111 cot t 11 121 2 121 5 121 sin t , cos t , tan t , csc t , 5 5 2 21 5 2 121 sec t , cot t 2 21 1 2 12 3 12 sin t , cos t , tan t 212, csc t , 3 3 4 12 sec t 3, cot t 4 13 1 2 13 sin t , cos t , tan t 13, csc t , sec t 2, 2 2 3 13 cot t 3 12 12 sin t , cos t , tan t 1, csc t 12, sec t 12, 2 2 cot t 1 QI, 0.7 61. QIV, 0.7 63. QI, 1 65. QII, 1.1 2 7 2 QII, 0.4 69. QIV, 3.1 71. 73. 75. 77. 2 3 6 3 3 5 3 3 5 4 , , 81. , 83. 85. 0, 87. a. 1 34 , 45 2 b. 1 3 4 , 52 4 4 2 2 4 4 2.3416 91. 1.7832 93. 3.5416
5 12 5 2 25 144 169 12 2 , 13 , 12, 1 13 2 1 12 95. a. 1 13 13 2 169 169 169 1; sin t 13 , 5 13 13 5 cos t 13 , tan t 12 , csc t , sec t , cot t 5 12 5 12
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Student Answer Appendix 7 24 7 2 49 576 625 24 2 , 25 , 12, 1 25 2 1 24 b. 1 25 25 2 625 625 625 1; sin t 25 , 7 25 25 7 cot t cos t 25 , tan t 24 , csc t , sec t , 7 24 7 24 35 12 2 35 2 144 1225 1369 35 c. 1 12 37 , 37 , 12, 1 37 2 1 37 2 1369 1369 1369 1; sin t 37 , 12 35 37 37 12 cos t 37 , tan t 12 , csc t 35 , sec t 12 , cot t 35 9 40 9 2 81 1600 1681 40 2 , 41 , 12, 1 41 2 1 40 d. 1 41 41 2 1681 1681 1681 1; sin t 41 , 9 41 41 9 cot t cos t 41 , tan t 40 , csc t , sec t , 9 40 9 40
97. a. 5 rad b. 30 rad 99. a. 5 dm b. 6.28 dm 101. a. 2.5 AU b. 6.28 AU 103. yes 105. range of sin t and cos t is [1, 1] 107. a. 2t 2.2 b. QI c. cos t 0.5 d. No 109. a. d 10
b. midpoint: (1, 1)
111. a. x 6, 4
c. m
15. A 3, P 2
17. A 2, P 2
y
y 2
3
2
t
3
y
Q
1
3 4
2
t
1
23. A 0.8, P
25. A 4, P 4
y
1 12 2. 4.3; A 860 cm 3. a. b. 2 13 4. a. 1.0353 b. 8.9152 2 2 3 15 3 ; sin , csc , cos , sec , 5. y 3 3 2 3 15 2 15 tan , cot 2 15 6. 221.8°, 3.8711 7. b 713 cm, c 14 cm 8. approximately 367 ft 9. a. QIV b. 2 5.94 0.343 c. sin t, tan t 10. approximately 3 ft 5.6 in.
2
t
Q
1. a. 36.11°N, 115.08°W b. 2495.7 mi
t
21. A 1, P
y
b. x 24
2
2
19. A 12 , P 2
Mid-Chapter Check, p. 555
SA29
y
0.8
4
2
2
2
t
0.8
4
t
4
27. A 3, P 12
29. A 4, P 65
y
y 4
3
~
Q
t
T
E
3
Reinforcing Basic Concepts, p. 556 5 1 23 , negative since x 6 0 1. 112 , 23 2. t 2 2, cos t 2 , sin t 2 6 1 3. QIV, negative since y 6 0 4. QI, cos t 2 , sin t 23 2 ,t 3
t
4
1 31. A 2, P 128
33.
y
y
2 3
Exercises 5.5, pp. 568–573
3. 1q, q 2 ; 3 1, 1 4
1. increasing 7. t
9. a. II 11.
35.
13 2 12 2 1 2
d. I 13.
e. III y
1
3
2
1
2
2
1
t
37. A 2, P
2
39. 0 A 0 3, P , f 45. P 14 , j
y
2
t
3
y
2
1 2 12 2 13 2 1 c. IV
t
,k 2
2
0
b. V
1 128
2
y cos t 1
7 6 5 4 4 3 3 2 5 3 7 4 11 6 2
1 256
5. Answers will vary.
2
2
1
3 2
2 t
t
41. P 4, h
1 ,d 47. A 4, P 72
43. 0A 0 34 , P 5, b
49. y 34 cos18t2 2 51. y 0.2 csc1 12 t2 53. y 6 cosa tb 3 3 7 , 55. red: y cos x; blue: y sin x; x 4 4 57. red: y 2 cos x; blue: y 2 sin13x2; 3 3 7 11 7 15 x , , , , , 8 4 8 8 4 8 112 59. cos t 113 , (15, 112, 113) 61. a. 3 ft b. 80 mi c. h 1.5 cos a xb 40 63. a. D 4 cos a tb b. D 3.86 c. 72° 12 65. a. D 15 cos1t2 b. at center c. Swimming leisurely. One complete cycle in 2 sec 67. a. Graph a b. 76 days c. 96 days 69. a. 480 nm S blue b. 620 nm S orange 71. I 30 sin150t2, I 21.2 amps
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Student Answer Appendix
73. Since m M, 0; t y avg. value 3; shifted up 3 units; 0 3 avg. value 1; amplitude is “centered” on average value. 5 2 3 3 1 2 2 3
xb; P 12; asymptotes at x 6 12k, k ; using 12 (3, 5.2), A 5.2; at x 2, model gives y 3.002; at x 2, model gives y 3.002; answers will vary. 51. Answers will vary; y 11.95 tan ; P 180°; asymptotes at 90° 180°k; A 11.95 from 130°, 6.9 cm2; pen is 12 cm long 53. a. 20 cm 62.8 cm b. 80 cm; it is a square c. n P 49.
y 5.2 tan a
10 20 30 100
75. g(t) has the shortest period; y 1
55.
1 t 1477
1 2954
64.984 63.354 63.063 62.853
getting close to 20
tan
2.5 2 1.5
1
1 0.5
200 77. distance yd 115.5 yd 13 79. a. 3 4i
b. 1 6i
0
c. 7 3i
d.
3 7i 2
Exercises 5.6, pp. 582–587 B
1. ; P
cos t sin t
3. odd, f1t2 ; 0.268 5. a. use
1 , 1, 13, und. 13 9. 1.6, 0.8, 0.5, 1.4, 0.7, 1.2 11. a. 1 b. 13 c. 1 d. 13 3 7 7 5 1 b. c. d. 15. und., 13, 1, ,0 13. a. 4 6 3 4 13 13 35 59 17. 19. 1.6, 4.6, 7.8 21. , , k, k Z 24 24 24 10 23. k, k Z 12 25. y 2 tan t5 y y tan t 27. y cot x y h(t) b. use reciprocals of tan t 7. 0,
5 4 3 2 1
4 3 2 1 3 2 2 1 2 2 3 4 5
29.
2
3 2 2
3 2 2 1 2 2 3 4 5
t
31.
y
1
2
4
2
20
30
40
50
60
63. 7.37 hr
Exercises 5.7, pp. 596–600 2
3 2 2
t
y
1
4
10
a. no; 35° b. 1.05 c. Angles will be greater than 68.2°; soft rubber on sandstone 57. a. 5.67 units b. 86.5° c. Yes. Range of tan is (q, q ). d. The closer gets to 90°, the longer the line segment gets. 59. 3 2, 34 S 7.1 m/sec; 33, 3.5 4 S 26.1 m/sec; 3 3.5, 3.84 S 128 m/sec. The velocity of the beam is increasing dramatically, 3 3.9, 3.994 S 12,733 m/sec 61. a. x-intercepts: (0, 0), (3, 0); y-intercept: (0, 0); vertical 3 asymptotes: x 2, x 2; horizontal asymptote: y 2 b. x-intercept: (1, 02 ; y-intercept: none; vertical asymptotes: x 0, x 4; horizontal asymptote: y 0 1 c. x-intercepts: (1, 02, (1, 0); y-intercept: a0, b; vertical 2 asymptote: x 2, slant asymptote: y x 2
8
t
4
y A sin1Bt C2 D; y A cos1Bt C2 D 0 Bt C 6 2 5. Answers will vary. a. A 50, P 24 b. 25 c. [1.6, 10.4] a. A 200, P 3 b. 175 c. [1.75, 2.75] y 100 11. y 40 sina tb 60 80 15 60 1. 3. 7. 9.
40
t
20 6
33.
35.
y
13. y 8 sina
y
tb 12 180
20
12
18
24
30 t
y
16 12 8 4
5
2 8
4
3 2
t
3
60
t
15. a. y 5 sina tb 34 12
b.
120 180
40
240 300 360 t
y
32 24
37.
39.
y
c. 1:30 A.M., 10:30 A.M.
y
16 8 5
3 1 2
1 4
2 1 4
1 2
t
1 2
1
t
17. a. y 6.4 cosa tb 12.4 6 b. 20 y c. 134 days 16
1 41. y 3 tana tb 2 47. about 137.8 ft
2 43. y 2 cot a tb 3
3 45. , 8 8
12 8 4 2
4
6
8
10
12 t
10
15
20
25 t
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Student Answer Appendix c. max 1200, min 700 d. about 2 yr.
19. a. P 11 yr b. 1500 P 1200 900 600 300 2
21. 23. 25. 27. 29. 31. 33. 35. 39.
4
6
8
10
12 t
2 2 P1t2 250 cos c 1t 2.752 d 950; P1t2 250 sina tb 950 11 11 A 120; P 24; HS: 6 units right; VS: (none); PI: 6 t 6 30 A 1; P 12; HS: 2 units right; VS: (none); PI: 2 t 6 14 A 1; P 8; HS: 23 unit right; VS: (none); PI: 23 t 6 26 3 A 24.5; P 20; HS: 2.5 units right; VS: 15.5 units up; PI: 2.5 t 6 22.5 A 28; P 12; HS: 52 units right; VS: 92 units up; PI: 52 t 6 29 2 A 2500; P 8; HS: 31 unit left; 1 23 VS: 3150 units up; PI: 3 t 6 3 y 250 sina tb 350 37. y 5 sina t b 13 12 50 2 t b 7 41. 100 y y 4 sina 180 4 80 60 40 20 2
43.
4
4
6
8
10 t
y
3 2 1 0 1 2
4
2
3 2
t
3 4
2 2 1 1 2 ,B ;f ,P ;B 2f. B P P f 1/f A sin1Bt2 A sin 3 12f 2t 4 1 47. a. P 4 sec, f cycle/sec b. 4.24 cm, moving away 4 c. 4.24 cm, moving toward d. about 1.76 cm. avg. vel. 3.52 cm/sec, greater, still gaining speed 5 49. d1t2 15 cosa tb 51. red S D3; blue S A#3 4 53. D3: y sin 3146.84 12t2 4 ; P 0.0068 sec; G4: y sin 3 392 12t2 4 ; P 0.00255 sec 55. a. Caracas: 11.4 hr, Tokyo: 9.9 hr b. (i) Same # of hours on 79th day & 261st day (ii) Caracas: 81 days, Tokyo: 158 days 45. P
13
Summary and Concept Review, pp. 601–608 3. 10.125 13.5 16.875 1 7 7. approx. 4.97 units 8. 4. approx. 692.82 yd 5. 120° 6. 6 2 9. s 25.5 cm. A 191.25 cm2 10. r 41.74 in., A 2003.48 in2 11. 4.75 rad, s 38 m 12. a. approx. 9.4248 rad/sec b. approx. 3.9 ft/sec c. about 15.4 sec 13. a. A 0.80 b. A 64.3° 14. a. cot 32.6° b. cos170°29¿45– 2 15. 16. Angles Sides Angles Sides 1. 147.613 2. 32°52¿12–
A 49° a 89 in. A 43.6° a 20 m B 41° b 77.37 in. B 46.4° c 21 m C 90° c 117.93 in. C 90° c 29 m 17. approx. 5.18 m 18. a. approx. 239.32 m b. approx. 240.68 m apart 19. approx. 54.5° and 35.5° 20. 207° 360°k; answers will vary. 21. 28°, 19°, 30° 35 37 12 22. a. sin , csc , cos , 37 35 37 37 35 12 sec , tan , cot 12 12 35 2 3 113 , cos b. sin , csc , 3 113 113 3 2 113 , tan , cot sec 2 2 3 3 5 23. a. x 4, y 3, r 5; QIV; sin , csc , 5 3 4 5 3 4 cos , sec , tan , cot 5 4 4 3 12 13 b. x 5, y 12, r 13; QIV; sin , csc , 13 12 5 13 12 5 , cot cos , sec , tan 13 5 5 12 24. a. 135° 180°k b. 30° 360°k or 330° 360°k c. 76.0° 180°k d. 27.0° 360°k or 207.0° 360°k 113 6 6 113 6 113 6 , b, a , b, and a , b 25. y , a 7 7 7 7 7 7 7 17 3 4 , csc t cos t , 26. sin t 4 4 27 4 17 3 sec t , tan t , cot t 3 3 17 2 27. 3 and 3 28. t 2.44 29. a. approx. 19.67 rad b. 25 rad 30. A 3, P 2 31. P 2
365
10 8 6 4 2 2
1 2 3 4
0
y
y
4 3 2 1
2 t
3 2
y 2
1
2
61. sum: 2, difference: 2i 25, product: 6, quotient:
2 i 25 3 3
t
3 2
2
y
1
0.5
57. a. Adds 12 hr. The sinusoidal behavior is actually based on hours more/less than an average of 12 hr of light. b. Means 12 hr of light and dark on March 20, day 79 (Solstice!). c. Additional hours of deviation from average. In the north, the planet is tilted closer toward the Sun or farther from Sun, depending on date. Variations will be greater! 59. QIII; 3.7 0.5584
33. A 1.7, P
32. A 1, P
11
2
2 2 4 6 8 10
2
0.5
t
0
8
1
4
t 2
3 8
1 2
1 34. A 2, P 2
35. A 3, P
y
4
1 199
y
2 2
1 1 4
1 8
1 2
1 8
1 4
t
0 2 4
1 398
1 199
t
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Student Answer Appendix
36. y 0.75 sin16t2 37. y 4 csc13t2 38. green, red 7 1 2 2 39. tana b 1; cota b 40. ; 4 3 3 3 13 y y 41. 42. 5 12
2
6
1 0.51 2 3 4 5
t
2
12
43. 1.55 k radians; k Z
44. 3.5860
0.5
1
10 8 6 4 2
45. 151.14 m
1. complement: 55°; supplement: 145° 2. a. 45° b. 30° c. 6 3. 30° 360°k; k Z 4. a. 100.755° b. 48°12¿45– 5. a. 430 mi b. 215 13 372 mi 6.
t
sin t
cos t
0
1
2 3
13 2
7 6
6
9
15 t
12
6 4 2
t 8
6
4
2
2
49. A 125, P 24, HS: 3 units right, VS: 175 units up, y 125 cos c 1t 32 d 175 12 3 50. A 75, P , HS: (none), VS: 105 units up, 8 16 y 75 sin a tb 105 51. a. P1t2 0.91 sin a tb 1.35 3 6 b. August: 1.81 in., Dec: 0.44 in.
Mixed Review, pp. 607–609 1. a. A 10 b. D 15 c. P 6 d. f142 20 2 4 3. t and t 5. 220°48¿50– 3 3 7. 1212 in.; 60 12 84.9 in. 28 112 9. arc length: 29.3 units; area: 117.3 units2 11. 86.915° 3 3 8 17 15 13. sin , sec , cos , 17 15 17 15 17 8 15. 60° csc , tan , cot 8 15 8 7 17. a. A 5; P ; HS: (none); b. A ; P 4; HS: 1 unit right; 2 VS: 8 units down; PI: 0 t 6 VS: (none); PI: 1 t 6 5 y
4 3 2 1 2
3 2
19. a. 6 rad/sec
2
t
1 2 3 4
y
2
4
6
8
10 t
1 2 3 4 5 6 x
Practice Test, pp. 609–610
0 3
6543 21 2 4 6
2 4 6 8 10 x
280
8
3 6 9 12 15
y 10 8 6 4 2
520
48. a. A 3.2, P 8, HS: 6 units left, VS: 6.4 units up y b.
15 12 9 6 3
y
108642 2 4 6 8 10
t
46. y 5.2 tana xb; period 12; A 5.2; asymptotes x 6, x 6 12 47. a. A 240, P 12, HS: 3 units right, VS: 520 units up b. 760 y
0
d. A: NA; P 2; HS:
VS: none; PI: (2, 2)
4 3 2 1
6
to the 2 right; VS: none; PI: (, )
c. A: NA; P 4; HS: none;
csc t
sec t
cot t
undefined
1
undefined
1 2
13
2 13 3
2
13 3
13 2
13 3
2
2 13 3
13
12 2
1
12
12
1
2
13 3
213 3
13
12 2
5 3
13 2 1 2
3
0
1 2
5 4
13 6
tan t
d.
1 2
13
13 2
13 3
2 13 3 2
5 5 121 121 , , tan , csc 7. sec , sin 121 2 5 2 2 cot 121 1 2 2 12 2 1 8 1 212 8. a b a b 1; cos t , sin t , tan t 212, 3 3 9 9 3 3 sec t 3, csc t
3 12 12 , cot t 4 4
9. a. 225.8 ft or 225 ft 9.6 in.
b.
23 0.1505 rad/sec 480
c. 11.29 ft/sec 7.7 mph 10. Angles Sides A 33° B 57° C 90°
a 8.2 cm b 12.6 cm c 15.0 cm
11. about 67 cm, 49.6°
12. 57.9 m
tb 34.1 12 b. 433,000 gal; 249,000 gal 15. a. D: t R, R: y 32, 2 4, P 10, A 2; 14. a. W1t2 18.4 sina
2
y
1
b. 20162 cm/sec 377 cm/sec
2 1 2
4
6
8
10 t
13. a.
7 6
b.
11 6
c.
3 4
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Student Answer Appendix 12k 12 for k Z, 2 R: y 1q, 1 4 ´ 3 1, q 2, P 2 c. D: t 12k 12 for k Z, R: y R, P 6 3
Exercise 2: 4 5 a. t , 3 3
b. D: t
y
3 2 1
y
1
8
2
3 2
2 t
2 4
b. t
7 , 4 4
Exercise 3: a. no solution
7 , 6 6
b. t 1.2310, t 5.0522 d. t 1.9823, t 4.3009
d. t
7 , 4 4
c. t 6.0382, t 2.8966
3 3
4
2 3
4 3
5 3
Cumulative Review Chapters 1–5, pp. 613–614
2 t
1. 5 6 x 6 3 3.
8
2 , HS: units right, VS: 19 units up 3 12 , 3 y 4 31 32 t 6 PI: 12 4 24
89
16. A 12, P
8 3
2
2 3
5 3
3 17 17 4 5. cos t , sin t , tan t , sec t , 4 4 3 3 4 4 17 317 3 csc t , cot t 7 7 17 17
t
17. 1260° 18. a. D: t
12k 12, k Z; R: y R; P ; 4 2
3 7. a. D: x c , q b, R: y 30, q 2 2 b. D: x 1q, 72 ´ 17, 72 ´ 17, q 2, R: y 1q, q2 9. a. max: (2, 4), endpoint max: (4, 0) min: (2, 4), endpoint min: (4, 0) b. f 1x2 0: x 3 4, 04 ´ 546 f 1x2 6 0: x 10, 42 c. f 1x2c: x 14, 22 ´ 12, 42 f 1x2T: x 12, 22 d. function is odd: f 1x2 f 1x2 y 11. 114.3 ft 13. 5
y 8 4
2
4
3 2
39
80
, 7 12 7 6
hyp 89; 64°; 90 26°
16
2 t
8
b. D: t 2k, k Z; R: y R, P 2,
y 4 2
2
2
3 2
2 t
x 1
19. y 7.5 sina t b 12.5 20. a. t 4 6 2
(0, 1)
5
4
5 x
y 2
b. t 2.3
5
15. x 9, y 40, r 41, QII; 9 40 40 41 41 cos , sin , tan , sec , csc , 41 41 9 9 40 9 cot , 102.7° 40
Strengthening Core Skills, pp. 612–613 Exercise 1:
t
0
6
4
3
2
17. S 18 m; A 135 m2
sin t y
0
1 2
12 2
13 2
1
21.
cos t x
1
13 2
12 2
1 2
0
y x
0
13 3
1
13
—
2 3
3 4
5 6
7 6
5 4
13 2
12 2
1 2
0
1 2
12 2
1 2
12 2
13 2
1
13 2
12 2
13
1
13 3
0
13 3
1
tan t
c. t
f(x)
5 4 3 2 1
54321 1 2 3 4 5
3 1 sina4t b 2 2 2 3 3 23. y x 2 m , y-intercept (0, 2) , 4 4
y
1 2 3 4 5 x
25. about 6.85%
f 1 (x)
19. y
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Student Answer Appendix
CHAPTER 6 Exercises 6.1, pp. 620–623
1 sin2x 1. sin ; sec ; cos . 3. one, false 5. ; Answers will vary. sin x sec x 7. Answers may vary; sec x 1 sec x 1 sin x sec x sin x ; ; ; tan x csc x cos x csc x cot x csc x cot x cos x 9. 1 sec2x tan2x; tan2x sec2x 1; 1 1sec x tan x21sec x tan x2; tan x 2sec2x 1 cos x 11. sin x cot x sin x cos x sin x 2 1 cos x 1 13. sec2x cot2x csc2x cos2x sin2x sin2x 15. cosx 1sec x cos x2 cos x sec x cos2x 1 cos x cos2x 1 cos2x sin2x cos x 17. sin x1csc x sin x2 1 sin2x cos2x 19. tan x1csc x cot x2 tan x csc x tan x cot x sin x cos x 1 sin x 1 1 sec x 1 cos x sin x cos x sin x cos x 2 2 2 2 21. tan x csc x tan x tan x 1csc2x 12 1; tan2x 1cot2x2 1 sin x 1cos x 12 sin x cos x sin x sin x tan x; tan x 23. cos x 11 cos x2 cos x cos x cos2x 11211 sin x2 1 sin x 1 sec x 25. cos x cos x sin x 1cos x211 sin x2 cos x sinx 1tan x 12 sin x tan x sin x sin x 27. tan x11 tan x2 tan x tan x tan2x sin x sin x cos x cos x sin x/cos x sin x 2 1sin x cos x2 sin2x 2 sin x cos x cos2x 29. cos x cos x 2 2 sin x cos x 2 sin x cos x 1 2 sin x cos x cos x cos x 2 sin x cos x 1 sec x 2 sin x cos x cos x 31. 11 sin x2 31 sin1x2 4 11 sin x211 sin x2 1 sin2x cos2x 1csc x cot x21csc x cot x2 csc2x cot2x 1 cot x 33. tan x tan x tan x 2 2 2 cos x sin x cos x sin x 1 csc x 35. sin x 1 sin x sin x sin x cos x 1 tan x sin x tan x cos x sin x csc x cos x sin x 1 37. csc x cos x csc x cos x 1 cot x cos x sin x 39.
csc x sec2x sin x csc x sec2x 1 tan2x sec x tan x sin x sec x sin x sec x 1 tan x sin x cos x
21 sin2x B cot x sin x 21 sin2x 21 21 29 29 20 47. sin , tan , sec , csc , cot 29 20 20 21 21 8 15 17 17 8 49. cos , sin , sec , csc , cot 17 17 8 15 15 5 5 x , sin , tan , 51. cos x 2x2 25 2x2 25 41.
sin x
43.
1
2
1
45.
2x2 25 2x2 25 , csc x 5 1120 2 130 7 13 , tan , sec , 53. cos 13 13 2 130 2 130 2130 13 csc , cot 7 7 sec
4 12 7 412 , cos , tan , 9 9 7 9 7 57. Answers will vary. csc , cot 4 12 4 12 59. Answers will vary. 61. Answers will vary. 4 18 m2 2 nx2 63. a. A cot a b b. A cot a b 64 m2 # 1 64 m2 4 n 4 4 c. A 119.62 in2 65. cos3x 1cos x21cos2x2 1cos x2 11 sin2x2 67. tan x tan3x 1tan x211 tan2x2 1tan x2 1sec2x2 69. tan2x sec x 4 tan2x 1tan2x21sec x 42 1sec x 421tan2x2 1sec x 421sec2 12 1sec x 421sec x 12 1sec x 12 71. cos2x sin x cos2x 1cos2x21sin x 12 11 sin2x21sin x 12 11 sin x211 sin x2 1sin x 12 11 sin x211 sin x2 112 11 sin x2 112 11 sin x2 11 sin x2 2 73. a. A nr2tan a b b. A 4 # 42 tan a b 64 m2 n 4 1 m1m2 2 c. A 51.45 m 75. tan 77. 45° m2 m1 55. sin
79. 0, 83.
2 3 , , , , 3 2 3 2
81. about 1148 ft
y 2
y = 2 sin(2t)
1
t 1
2
3 2
2
2
Exercises 6.2, pp. 627–630 1. substituted 3. complicated; simplify; build 5. Because we don’t know if the equation is true. 1 cos x 9. cos x 11. sin x sin2x 2 2 13. cos x tan x cos2x cos2x sin2x 1 cos2x sin x cos x 15. tan x cot x cos x sin x sin2x cos2x cos x sin x 1 cos x sin x 1 1 cos x sin x sec x csc x 1 sin x 17. csc x sin x sin x 1 sin2x sin x cos2x sin x cos x sin x cos x cos x tan x
7.
1 sin x cos x
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Student Answer Appendix
19. sec tan
1 sin cos cos 1 sin cos 11 sin 211 sin 2
cos 11 sin 2 1 sin2 cos 11 sin 2 cos2 cos 11 sin 2 cos 1 sin
21.
23.
25.
27.
29.
11 sin x211 sin x2 1 sin x cos x cos x 11 sin x2 1 sin2x cos x 11 sin x2 cos2x cos x11 sin x2 cos x 1 sin x csc x cos x csc2x cos2x cos x csc x cos x csc x csc2x 11 sin2x2 1 cos x sin x csc2x 1 sin2x cot x cot2x sin2x cot x sin x 11 sin x2 sin x 11 sin x2 sin x sin x 1 sin x 1 sin x 11 sin x2 11 sin x2 sin x sin2x sin x sin2x 1 sin2x 2 2 sin x cos2x 2 tan2x cot x 11 csc x2 cot x 11 csc x2 cot x cot x 1 csc x 1 csc x 11 csc x2 11 csc x2 cot x cot x csc x cot x cot x csc x 1 csc2x 2 cot x csc x cot2x 2 csc x cot x 1 2 sin x cos x sin x 2 cos x 2 sec x sec2x sec2x 1 cot2x csc2x 1
cos2x 1 sin2x sin2x
cos2x tan2x
31. sin2x1cot2x csc2x2 sin2x cot2x sin2x csc2x cos2x 1 sin2x 2 sin2x 2 sin x sin x cos2x 1 sin2x cos x sin x 33. cos x cot x sin x cos x sin x cos2x sin x sin x 2 cos x sin2x sin x 1 sin x csc x 1 1sin x21cos x2 sec x cos x sin x cot x tan x cos x b 1sin x21cos x2 a sin x cos x sin x cos2x sin2x sin x 1 sin x sin x csc x sin x csc x csc x csc x csc x sin2x 1 cos2x 1 sin x 1 csc x sin x 1csc x sin x2 sin x sin x 1 sin2x sin x cos2x sin x 1 cos x cos x tan x sec x 11 sin x2 11 sin x2 1 sin x 1 sin x 11 sin x2 11 sin x2
35.
37.
39.
41.
1 2 sin x sin2x
1 sin2x 1 2 sin x sin2x
cos2x 1 sin2x sin x 1 2 2 cos x cos x cos x cos2x sec2x 2 tan x sec x tan2x 1sec x tan x2 2
1tan x sec x2 2 1cos x sin x2 1cos x sin x2 cos x sin x 43. 1 tan x 11 tan x2 1cos x sin x2 1cos x sin x2 1cos x sin x2 sin2x cos x sin x sin x cos x 1cos x sin x21cos x sin x2 sin2x cos x a1 b cos2x 1cos x sin x21cos x sin x2 cos x 11 tan2x2 1cos x sin x21cos x sin x2 cos x 11 tan x2 11 tan x2
1cos x sin x21cos x sin x2
1cos x sin x211 tan x2 cos x sin x 1 tan x
SA35
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45.
47.
49.
51.
53.
55.
57.
59.
Student Answer Appendix
1tan x cot x21tan x cot x2 tan2x cot2x tan x cot x 1tan x cot x2 tan x cot x sin x cos x cos x sin x sin2x cos2x cos x sin x 1 cos x sin x 1 1 cos x sin x sec x csc x csc x sec x cos x 1cos x21sin x2 cot x sin x cot x tan x cos x sin x 1cos x21sin x2 sin x cos x cos2x cos2x sin2x cos2x 1 1 sin2x 1sec2x tan2x21sec2x tan2x2 sec4x tan4x 2 2 sec x tan x 1sec2x tan2x2 2 sec x tan2x 1 1cos2x sin2x21cos2x sin2x2 cos4x sin4x 2 cos x cos2x 2 2 1cos x sin x2112 cos2x cos2x sin2x cos2x cos2x 1 tan2x 1 1sec2x 12 1 sec2x 1 2 sec2x 1sec x tan x2 2 sec2x 2 sec x tan x tan2x 1 2 sin x sin2x 2 2 cos x cos x cos2x 2 1 2 sin x sin x cos2x 11 sin x2 2 cos2x 1sin x 12 2 cos2x cos2x sec x sin2x sec x csc x sin x cos x cos x sin x csc x sin x cos x sec x sin x cos x sec x sec x1cos2x sin2x2 112cos x sin x112 sec x cos x sin x 1sin2x cos2x21sin2x cos2x2 sin4x cos4x sin3x cos3x 1sin x cos x21sin2x sin x cos x cos2x2 1121sin x cos x21sin x cos x2 1sin x cos x21sin2x cos2x sin x cos x2 sin x cos x 1 sin x cos x a. d2 120 x cos 2 2 120 x sin 2 2 400 40x cos x2cos2 400 40 x sin x2sin2 800 40x1cos sin 2 x2 1cos2 sin22 800 40x1cos sin 2 x2
b. 42.2 ft 61. a. h 1cot x tan x; h 3.76 sin x cos x b. cot x tan x sin x cos x cos2x sin2x sin x cos x 1 sin x cos x csc x sec x; h 1csc x sec x h 3.76; yes 63. D2 400 40x cos x2 D 40.5 ft 65. sin cos 67. Answers will vary. 69. 1sin2x cos2x2 2 112 2 1 3 17 3 71. sin t , cos t , tan t 4 4 17 73. y 6 5 4 3 2 1
4 321 1 1 1 2 3 4 5 6 x 2 3 4
Exercises 6.3, pp. 635–639 1. false; QII 3. repeat; opposite 12 16 12 16 7. 9. 4 4
5. Answers will vary.
11. a. cos145° 30°2 cos 45° cos 30° sin 45° sin 30°
26 22 4
b. cos1120° 45°2 cos 120° cos 45° sin 120° sin 45° 22 26 26 22 4 4 13 16 13. cos152 15. 17. 19. sin 33° 21. cot a b 2 65 12 23. cos a b 25. sin(8x) 27. tan 132 29. 1 31. 13 3 16 12 304 304 16 12 33. a. b. 35. 37. 425 297 4 4 1 13 39. 41. 13 3 13 16 12 43. a. sin145° 30°2 sin 45° cos 30° cos 45° sin 30° 4 b. sin1135° 120°2 sin 135° cos 120° cos 135° sin 120° 12 1 12 13 a b a b a ba b 2 2 2 2 12 16 4 4 16 12 4 319 12 16 319 480 45. 47. a. b. c. 4 481 481 360 3416 3416 1767 49. a. b. c. 4505 4505 2937 12 5 13 12 5 13 12 13 5 51. a. b. c. 26 26 12 13 5 247 96 247 53. 190° 2 190° 2 180° a. b. c. 265 265 96 55. sin1 2 sin cos cos sin 0 112sin sin
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Student Answer Appendix b cos x cosa b sin x sina b 4 4 4 12 12 12 cos xa b sin xa b 1cos x sin x2 2 2 2 tan x tana b 4 tan x 1 1 tan x 59. tanax b 4 1 tan x 1 tan x 1 tan x tana b 4 57. cosax
61. cos1 2 cos1 2 cos cos sin sin cos cos sin sin 2 cos cos 63. cos12t2 cos1t t2 cos t cos t sin t sin t cos2t sin2t 65. sin13t2 sin12t t2 sin12t2 cos t cos12t2 sin t 2 sin t cos t cos t 1cos2t sin2t2 sin t 2 sin t cos2t sin t cos2t sin3t 3 sin t cos2t sin3t 3 sin t11 sin2t2 sin3t 3 sin t 3 sin3t sin3t 4 sin3t 3 sin t 67. cosax b cos x cosa b sin x sina b 4 4 4 12 12 b sin xa b cos xa 2 2 12 1cos x sin x2 2 Wk 1 13 69. F c 1 13 cos s cos t 71. R C sin1s t2 cos s cos t C1sin s cos t cos s sin t2 1 cos s cos t cos s cos t 1 C1sin s cos t cos s sin t2 cos s cos t 1 sin s cos t cos s sin t b C a cos s cos t cos s cos t 1 C1tan s tan t2 sin cos190° 2 A 73. B cos sin190° 2 sin 1cos 90° cos sin 90° sin 2 A B cos 1sin 90° cos cos 90° sin 2 sin 10 sin 2 cos 1cos 02 sin2 cos2 tan2 75. verified using sum identity for sine sin1x h2 sin x f 1x h2 f 1x2 77. h h sin x cos h cos x sin h sin x sin x cos h sin x cos x sin h h h sin x1cos h 12 cos x sin h cos h 1 sin h sin x cos x h h h 12 1 79. 81. 2 2
83. D d, so D2 d2, and D2 1cos cos 2 2 1sin sin 2 2 cos2 2 cos cos cos2 sin2 2 sin sin sin2 2 2 cos cos 2 sin sin d2 sin2 1 2 3cos1 2 14 2 sin2 1 2 cos2 1 2 2 cos1 2 1 2 2 cos1 2 D2 d2 so 2 2 cos cos 2 sin sin 2 2 cos1 2 2 cos1 2 2 cos cos 2 sin sin 2 2 cos cos sin sin cos1 2 85. P 16 87. about 19.3 ft
Exercises 6.4, pp. 648–652 1. sum;
3. 2x; x
5. Answers will vary
120 120 119 , cos122 , tan122 7. sin122 169 169 119 720 720 1519 , cos122 , tan122 9. sin122 1681 1681 1519 2184 2184 6887 , cos122 , tan122 11. sin122 7225 7225 6887 5280 5280 721 , cos122 , tan122 13. sin122 5329 5329 721 24 24 7 , cos122 , tan122 15. sin122 25 25 7 4 4 3 17. sin , cos , tan 5 5 3 21 20 21 19. sin , cos , tan 29 29 20 21. sin132 sin12 2 sin122cos cos122sin 12 sin cos 2cos 11 2 sin22sin 2 sin cos2 sin 2 sin3 2 sin 11 sin22 sin 2 sin3 2 sin 2 sin3 sin 2 sin3 3 sin 4 sin3 1 12 1 1 23. 25. 27. 1 29. 4.5 sin(6x) 31. cos14x2 4 2 8 8 3 3 9 33. cos12x2 cos14x2 8 2 8 5 7 3 1 35. cos12x2 cos14x2 cos12x2cos14x2 8 8 8 8 12 12 12 12 , cos , tan 12 1 37. sin 2 2 12 13 12 13 , cos , tan 2 13 39. sin 2 2 12 12 12 12 , cos , tan 12 1 41. sin 2 2 12 12 12 12 , cos , tan 12 1 43. sin 2 2 12 12 12 12 12 13 45. 47. 49. cos 15° 2 2 51. tan 2 53. tan x 3 2 3 , cos a b , tan a b 55. sin a b 2 2 2 2 113 113 3 1 , cos a b , tan a b 3 57. sin a b 2 2 2 110 110 7 5 7 , cos a b , tan a b 59. sin a b 2 2 2 5 174 174 1 15 1 , cos a b , tan a b 61. sin a b 2 2 2 15 1226 1226
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Student Answer Appendix
5 2 5 , cos a b , tan a b 63. sin a b 2 2 2 2 129 129 1 65. 3cos1122 cos142 4 67. cos12t2 cos15t2 2 1 13 1 69. cos11540t2 cos12418t2 71. 73. 2 4 55 27 x 75. 2 sin a kbcos a kb 77. 2 sin x sin a b 2 2 6 2061 357 12 tb cos a tb 81. 79. 2 cos a 2 2 2 sin12x2 2 sin x cos x 83. cos12x2 cos2x sin2x tan12x2 85. 1sin x cos x2 2 sin2x 2 sin x cos x cos2x sin2x cos2x 2 sin x cos x 1 2 sin x cos x 1 sin12x2 87. cos182 cos12 # 42 cos2 142 sin2 142 cos 122 cos2 sin2 89. 2 sin sin2 2 cos sin2 2 sin sin2 cot2 1 2 tan 91. tan 122 1 tan2 1 12 tan 2 tan 1 11 tan22 tan 2 1 tan tan 2 cot tan 2 93. 2 csc 12x2 sin 12x2 2 2 sin x cos x 1 sin x cos x sin2x cos2x sin x cos x sin2x cos2x sin x cos x sin x cos x sin x cos x cos x sin x tan x cot x x x x 95. cos2 a b sin2 a b cos a2 # b 2 2 2 cos x 97. 1 4 sin2 4 sin4 11 2 sin22 2 3 cos 122 4 2 cos2 122 1 sin2 122 sin 1120t2 sin 180t2 2 sin 1100t2cos 120t2 99. cos 1120t2 cos 180t2 2 sin 1100t2sin 120t2 cos 120t2 sin 120t2 cot 120t2
101. sin2 11 cos 2 2 sin2 1 2 cos cos2 sin2 cos2 1 2 cos 1 1 2 cos 2 2 cos 1 cos 2 2 11 cos 2 4 a b 4 sin2 a b c 2 sin a b d 2 2 2 sin 122 sin 1 2 103. sin cos cos sin sin cos sin cos 2 sin cos tan 1 2 tan 1 2 tan tan 1 tan tan 2 tan tan 122 1 tan2 1 105. 3 cos 1 2 cos 1 2 4 sin sin 2 2 107. a. M , M 3.9 22 13 2 , M 2.6 c. 60° b. M 22 12 109. a. 288 144 12 ft 84.3 ft b. 288 144 12 ft 84.3 ft 111. cos 32112092t 4 cos 3 219412t 4; the * key t b` 60 1 t ` 6 sin a # b ` 2 30
113. d 1t2 ` 6 sin a
† ° 6
1 cosa Q
2
t b 30 ¢ †
t 1 cosa b 30 6 R 2 t 1 cosa b 30 36 R 2 t 18 c 1 cos a b d A 30 115. a. sin 12 90°2 1 sin 122cos 90° cos 122sin 90° 1 0 cos 122 1 1 cos 122 b. 2 sin2 sin2 sin2 1 cos2 sin2 1 1cos2 sin22 1 cos122 c. 1 sin2 cos2 1 1cos2 sin22 1 cos122 d. 1 cos122 1 cos122 117. a. 0.9659; 0.9659 12 13 2 16 12 2 b a b b. a 2 4 2 13 6 2 112 2 4 16 2 13 8 4 13 4 16 2 13 2 13 4 4 119. Must be a unit circle with in radians. Must use a right triangle opposite side sin . definition of tangent: tangent a b 2 adjacent side 1 cos 121. x 1; x 2; x 16; x 16
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Student Answer Appendix 3969 4225 16 2 63 2 256 b a b 1, 65 65 4224 4225 4225 63 65 tan ; sec 16 16 63 2 65 2 1a b a b 16 16 4225 3969 1 256 256 256 3969 4225 256 256 256
123. a
Mid-Chapter Check, pp. 652–653
1. sin x 3csc x sin x 4 sin x csc x sin2x 1 sin x sin2x sin x 1 sin2x cos2x cos2x 2. cos2x cot2x cos2x sin2x 1 cos2xa1 b sin2x 2 2 cos x11 csc x2 cos2x1cot2x2 cos2x cot2x 2 sin x cos x 2 sin x csc x cos x sec x 3. sec x csc x sec x csc x 2112 1 sec x csc x 1 sec x csc x cos x sin x 4. 1 sec2x tan2x 1 sec20 tan20 1 12 02 110 2 0 False 1sin x cos x21sin2x sin x cos x cos2x2 sin3x cos3x 5. a. sin x cos x 1sin x cos x2 1sin2x cos2x sin x cos x2 1 sin x cos x 1 1 1 sec x 1 cos x cos x 1 cos x b. csc x cot x 1 cos x sin x sin x sin x sin x asin x ba sin xb cos x cos x sin x sin x sin x sin x cos x cos x 0 sec2x sec2x tan2x tan2x 6. a. 2 2 sec x sec x sec2x sin2x 1
cos2x 1
cos2x 1 sin2x cos2x
SA39
cot x tan x tan x cot x csc x sec x csc x sec x csc x sec x sin x cos x sin x cos x 1 # 1 1 # 1 sin x cos x sin x cos x cos2x sin x sin2x cos x sin x cos x cos2x sin2x 456 3193 456 7. a. b. c. 5785 5785 5767 7 2413 24 7 13 7 24 13 , cos A , tan A 8. sin A 50 50 24 7 13 4 1 , cos a b 9. sin a b 2 2 117 117 336 527 336 , cos 122 , tan 122 10. sin 122 625 625 527 b.
Reinforcing Basic Concepts, pp. 653–654 1. sin2x cos2x 1 sin2x cos2x 1 2 sin x sin2x sin2x 1 cot2x csc2x ✓ sin2x cos2x 1 sin2x cos2x 1 cos2x cos2x cos2x tan2x 1 sec2x ✓ 2. cos 1 2 cos 1 2 cos cos sin sin cos2 sin2 cos2 11 cos22 2 cos2 1 cos2 sin2 11 sin22 sin2 1 2 sin2
Exercises 6.5, pp. 665–670 3. 31, 1 4 ; c , d 5. cos1 1 15 2 2 2 1 7. 0; ; ; 9. 11. 13. 1.0956, 62.8° 2 6 2 4 2 12 15. 0.3876, 22.2° 17. 19. 21. 45° 23. 0.8205 2 3 13 25. 0; 29. 31. 1.4352; 82.2° ; 120°; 27. 2 3 12 3 33. 0.7297; 41.8° 35. 37. 0.5560 39. 41. 4 2 4 43. 0; 13; 30°; 13; 45. 47. 49. 1.1170, 64.0° 3 6 3 13 51. 0.9441, 54.1° 53. 55. 57. 12 59. 30° 6 3 61. cannot evaluate tan a b 2 63. csc 12 7 1, not in domain of sin1x. 4 3 4 3 65. sin , cos , tan 5 5 4 2x2 36 6 2x2 36 67. sin , cos , tan x x 6 1. horizontal; line; one; one
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Student Answer Appendix
94 70 b tan1a b b. 8.4° at d 81.1 ft x x 97. a. 15.5°; 0.2705 rad b. 29 mi 99. a. 413.6 ft away 84 b. 503 ft c. 651.2 ft 101. sin122 85 103. x 1q, 3 4 ´ 3 0, 34
7 5 5 k or k 51. x 2k or 2k 6 6 4 4 3 3 5 2k or 2k 55. x k 53. x 4 4 4 3 2 k 59. x k 61. x 3 6k 57. x k or 3 3 8 2 5 k or k 63. x k 65. x k or 2 6 3 12 12 67. a. x 1.2310 b. x 1.2310 2k, 5.0522 2k 69. a. x 1.2094 b. x 1.2094 2k, 5.0738 2k 71. a. 0.3649 b. 0.3649 k, 1.2059 k 73. a. 0.8861 b. 0.8861 k, 2.2555 k 5 2 4 10 4 k 77. x k or k 75. x k or 6 6 9 3 9 3 79. k 81. 0.3398 2k or 2.8018 2k 83. x 0.7290 2 85. x 2.6649 87. x 0.4566 89. 22.1° and 67.9° 91. 0°; the ramp is horizontal. 93. 30.7°; smaller 95. 35°, 25.5° 97. k 1.36, 20.6° 99. a. 7 in. k, explanations b. 1.05 in. and 5.24 in. 101. 1.1547 103. 2 will vary. 12 1 105. f 12 i2 12 i2 2 4 12 i2 5 107. a. b. 2 13 2 4 4i i 8 4i 5 4 4i 1 8 4i 5 0
Exercises 6.6, pp. 678–682
Exercises 6.7, pp. 687–690
3 3 1. principal; 3 0, 22 ; real 3. ; ; ; 2k; 2k 4 4 4 4 4 5. Answers will vary. 7. a. QIV b. 2 roots 9. a. QIV b. 2 roots
1. sin2x cos2x 1; 1 tan2x sec2x; 1 cot2x csc2x 5 3. factor; grouping 5. Answers will vary. 7. 9. 0 , 12 12 5 5 3 5 7 11. 0.4456, 1.1252 13. , 15. , , , , , , 0.8411, 5.4421 4 4 6 6 4 4 4 4 2 5 3 5 7 17. , 19. , , , , 0.7297, 2.4119 21. 3 4 4 4 4 6 6
69.
24 25
y
71.
25 24 7
73.
15 3
y 3
√5
2
x
225 9x2 3x
49. x
5
3x
12 B 12 x2
75.
√25 9x2
x
√12 x2
x
√12
77. 0; 2; 30°; 1; 79. 81. 83. 80.1° 85. 67.8° 6 6 87. a. FN 2.13 N; FN 1.56 N b. 63° for FN 1 N, 24.9° for FN 2 N 89. 30° 91. 72.3°; straight line distance; 157.5 yd 93. a. tan1a
75 50 b tan1a b d d c. 11.5° at d 61.2 ft
b. d 139.2, 95.72
95. a. tan1a
11.
sin
cos
tan
0
0
1
0
6
1 2
13 2
13 3
3
13 2
1 2
13
2
1
0
und.
2 3
13 2
5 6
1 2
0
7 6
4 3 13. 29. 37. 43. 45. 47.
1 2
13 2
1 2
13 2
1
13
13 3 0
13 2
13 3
1 2
13
5 15. 17. 19. 21. 23. 25. 27. 6 3 3 6 6 4 4 5 2 5 5 7 11 3 7 31. 33. 35. , , , , , , 6 6 3 3 6 6 6 6 4 4 2 4 5 3 5 7 3 , , , , , 39. , 41. , 3 3 3 3 4 4 4 4 2 2 1.2310 2k or 5.0522 2k 5 x k or 2k or 2k 2 6 6 2 4 x 2k or 2k or 1.4455 2k or 4.8377 2k 3 3
2 5 2 3 5 7 k, k; k 0, 1, 2 25. , , , 9 3 9 3 4 4 4 4 27. P 12; x 3; x 11 29. P 24; x 0.4909, x 5.5091 17 31. 12 , 12 33. 0.3747, 5.9085, 2.7669, 3.5163 3 3 7 5 13 17 35. 39. a is extraneousb 37. , , , , 2 2 4 4 12 12 12 12 112.5 x cosa b 4 5 5 41. I. a. a , b b. D 112.5, , y 2 2 4 sina b 4 c. verified 2 15 x cos 1.1071 II. a. (2, 4) b. D 2 15, 1.1071, y sin 1.1071 c. verified 2 x cosa b 3 III. a. (1, 13) b. D 2, , y c. verified 3 sina b 3 23.
43. a. 2500 ft3 7853.98 ft3 b. 7824.09 ft3 c. 78.5° 45. a. 78.53 m3/sec b. during the months of August, September, October, and November 47. a. $3554.52 b. during the months of May, June, July, and August 49. a. 12.67 in. b. during the months of April, May, June, July, and August 51. a. 8.39 gal b. approx. day 214 to day 333 53. a. 68 bpm b. 176.2 bpm c. from about 4.6 min to 7.4 min 2 xb 29 55. a. y 19 cosa xb 53 b. y 21 sina 6 365
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Student Answer Appendix 57. a. L 25.5 cm. b. 38.9° or 33.4°, depending on what side you consider the base. y 59. 11, 02, (0, 0), (2, 0) (multiplicity 2): up/up; 3
3
3
x
3
61. 4.56°
Summary and Concept Review, pp. 691–695
1. sin x 1csc x sin x2 sin x csc x sin x sin x 1 sin x sin2x sin x 1 sin2x cos2x csc x 1tan2x 12 tan2x csc x csc x 2. sec2x sec2x csc x sec2x sec2x csc x 1sec x tan x21sec x tan x2 sec2x sec x tan x sec x tan x tan2x 3. csc x csc x sec2x tan2x csc x 1 tan2x tan2x csc x 1 csc x sin x sec2x sec2x sin x csc x sin x 4. csc x csc x sec2x 1 csc x tan2x csc x 35 37 12 35 37 , csc , cot , tan , sec 5. sin 37 35 35 12 12 4 16 25 23 4 16 , csc , cot , tan , 6. sin 25 23 4 16 4 16 23 cos 25 1 cos x 7. ; answers will vary. 8. sec x tan x; answers will vary. sin x 2 csc x 11 cos2x2 csc2x sin2x 9. 2 tan x tan2x 1 tan2x cot2x cot x csc x 1 cot x 10. cot x csc x sec x tan x sec x cot x cos x cot x csc x cot x1cos x csc x2 1sin2x cos2x21sin2x cos2x2 sin4x cos4x 11. sin x cos x sin x cos x 1sin2x cos2x2112 sin x cos x sin x sin x cos x cos x sin x cos x sin x cos x cos x sin x cos x sin x tan x cot x
1sin x cos x2 2
SA41
sin2x 2 sin x cos x cos2x sin x cos x sin x cos x sin2x cos2x 2 sin x cos x sin x cos x sin x cos x 1 2 sin x cos x csc x sec x 2 16 12 13. a. cos 75° 4 1 13 12 2 13 1 b. tan a b 2 13 12 2 1 13 1 13 12 2 13 1 14. a. tan 15° 2 13 2 1 13 12 16 13 b. sin a 15. a. cos 180° 1 b. sin 120° b 12 4 2 5x 16. a. cos x b. sina b 17. a. cos 1170° cos 90° 0 8 57 12 x x b. sin a 18. a. cos a b sin a b b sin a b 4 4 2 8 2 8 7 b. sin a x b cos a xb 12 12 tan 45° tan 30° 19. tan145° 30°2 1 tan 45° tan 30° 13 3 13 13 1 1 3 3 3 13 13 3 13 11# 1 3 3 3 131 13 12 3 13 3 3 13 13 1 3 3 13 3 13 131 13 12 13 1 tan 135° tan 120° tan 1135° 120°2 1 tan 135° tan 120° 1 13 13 1 13 1 1 112 1 132 1 13 13 1 20. cos ax b cos ax b 13 cos x 6 6 cos x cos a b sin x sin a b cos x cos a b sin x sin a b 6 6 6 6 13 2 cos x cos a b 0 2 cos x a b 13 cos x 6 2 84 13 2184 21. a. sin122 2 a ba b 85 85 7225 84 2 6887 13 2 cos122 a b a b 85 85 7225 2184 7225 2184 tan122 a b 7225 6887 6887 20 21 840 b. sin122 2 a ba b 29 29 841 21 2 20 2 441 400 41 cos122 a b a b 29 29 841 841 20 2a b 21 840 tan122 41 20 2 1a b 21 21 20 21 22. a. sin , cos , tan , 29 29 20 7 24 24 7 7 b. sin or sin , cos or cos , tan 25 25 25 25 24 24 or tan 7 12 13 23. a. cos 45° b. cosa b 2 6 2 12.
cob19529_saa_SA01-SA68.qxd 1/5/09 13:20 Page SA42 User-S178 MAC-OSX_1:Users:user-s178:Desktop:
SA42
Student Answer Appendix
1 cos 135° A 2 R 22 12 2
24. a. sin 67.5
1
12 2
2
1
B
2 12 4
37. undefined 41.
2 12 1 cos 135° cos 67.5 A 2 R 2 B 4 22 12 2 5 12 1 cosa b 1 4 5 2 2 12 b. sin a b 8 R 2 R 2 B 4 22 12 2 5 12 1 cosa b 1 4 5 2 2 12 cos a b 8 R 2 R 2 B 4 22 12 2 1 24/25 25 24 1 , in QII 25. a. sin a b 2 A 2 A 50 5 12 2 1 24/25 25 24 cos a b 2 A 2 A 50 49 7 , in QII A 50 5 12 2 1 56/65 65 56 b. sin a b 2 A 2 A 130 3 9 , in QIV A 130 1130 2 65 56 121 11 1 56/65 cosa b , in QIV 2 A 2 A 130 A 130 1130 2 2 sin122 sin cos132 cos 26. cos132 cos 2 cos122 cos 2 sin2 2 sin2 2 2 2 cos sin sin cos2 2 tan2 2 sin2 1 2 cos2 sec2 2 27. cos13x2 cos x 0 S 2 cos12x2cos x 0 cos12x2 0: x k; k 4 2 cos x 0: x k; k 2 30° 30° 1 cos 30° 1 cos 30° 2 28. a. A 12 sin a b cos a b 144 2 2 A 2 A 2 13 13 1 1 2 2 2 13 2 13 144 144 R R B B 2 2 4 4 14414 3 36 cm2; yes 4 2 b. x sina b cosa b 2 2 1 1 Let u , then x2 sin u cos u x2 12sin u cos u2 x2 sin 12u2 2 2 2 1 1 1 x2 sin; A 1122 2 sin130°2 72a b 36 cm2; yes 2 2 2 5 29. or 45° 30. or 30° 31. or 150° 32. 1.3431 or 77.0° 4 6 6 1 36. 33. 1.0956 or 62.8° 34. 0.5054 or 29.0° 35. 2 4
42.
y
37
12 2
38. 1.0245
40.
7 x
√49 9x2 3x
x 44. cos1a b 5
y
1
x
249 9r2 tan 3x
35 sin 37
√8
3 4
y
35
12
43.
39. 60°
45. sec1a
x b 713
2
x
x 9
cot
x
9 x
x 46. sin1a b 4 6 3 3 2k, k 47. a. b. , c. x 2k or 4 4 4 4 4 2 2 4 2 4 , 2k or 2k, k 48. a. b. c. 3 3 3 3 3 2 2 5 , k, k 49. a. b. c. 3 3 3 3 50. a. 1.1102 b. 1.1102, 5.1729 c. 1.1102 2k or 5.1729 2k, k 51. a. 0.3376 b. 0.3376, 1.2332, 3.4792, 4.3748 c. 0.3376 k or 1.2332 k, k 52. a. 0.3614 b. 0.3614, 2.7802 c. 0.3614 2k or 2.7802 2k, k
Mixed Review, pp. 695–696 6 1117 6 2 9 , sec , tan , cos , 9 9 3 1117 1117 1117 3 csc , cot 3. 13 2 6 2 x y tan 5. 2100 x2 1. sin
10 √100 x2
x x
7. x 0.4103; x 4.9230 9. a. y 5000 sin a x b 9000 b. $4670 c. mid-October 3 1 1cos2 sin22 1 cos122 1 cos122 1 cos122 11. 2 1 cos122 1 cos122 tan 1 cos122 1 cos122 3 13. or 135° 4 15. a. sin12x2 sin1x x2 sin x cos x sin x cos x 2 sin x cos x b. cos12x2 cos1x x2 cos x cos x sin x sin x cos2x sin2x x b 17. csc1a 19. a. t 0.7754 b. t 0.7754, 4 2 12 2.3662 c. t 0.7754 2k or 2.3662 2k
cob19529_saa_SA34-SA48.qxd 1/16/09 18:17 Page SA43 User-S178 MAC-OSX_1:broker:MH-DUBUQUE:MHDQ092:MHDQ092-SAA:MHDQ092-SAA:
Student Answer Appendix
Practice Test, pp. 697–698 1csc x cot x21csc x cot x2
1.
sec x
csc x csc x cot x csc x cot x cot x sec x 2
2
csc2x cot2x scc x 11 cot2x2 cot2x sec x
1 sec x cos x 1sin x cos x21sin2x sin x cos x cos2x2
2.
sin3x cos3x 1 cos x sin x
3. 4. 7.
8.
1 cos x sin x 1sin x cos x211 sin x cos x2
1 cos x sin x sin x cos x 55 73 48 55 73 sin , sec , cot , tan , csc 73 48 55 48 55 13 1 12 12 5. 6. 2 2 13 1 sin ax b sin ax b 4 4 sin x cosa b cos x sina b sin x cosa b cos x sina b 4 4 4 4 sin a b cos x sin a b cos x 4 4 2 sina bcos x 4 12 2 cos x 2 12 cos x 15 8 15 13 1 6 sin , cos , tan 9. 10. ; 17 17 8 2 137 137
16 12 16 12 0.2588; 0.9659 4 4 1 13. a. y 30° b. f1x2 c. y 30° 2 157 rad 14. a. y 0.8523 rad or y 48.8° b. y 78.5° or 360 7 rad or 52.5° c. y 24 y 33 cos 15. 65 11. 20 22 12
65
12.
56
x
33 y
cot
x 5
√2 5
x2
16.
5
x
x
12 3 3 5 b , b. x 2 4 4 4 11 3 5 2k or 2k, k II. a. c. x b. x , 4 4 6 6 6 11 2k, k 18. I. a. x 0.1922 c. x 2k or 6 6 b. x 0.1922, 1.3786, 3.3338, 4.5202 c. x 0.1922 k or 1.3786 k, k II. a. x 0.9204 b. x 0.9204, 2.2212, 4.0620, 5.3628 c. x 0.9204 k or 2.2212 k, k 17. I. a. cos1a
SA43
19. a. x 1.6875, 0.3413, 1.1321, 2.8967 b. x 0.9671, 2.6110, 7 11 19 23 7 11 3.4538 20. a. x 0, , b. x , , , , 6 6 12 12 12 12
Strengthening Core Skills p. 699 Exercise 1: Exercise 2: Exercise 3: Exercise 4:
x 10.6025, 2.53912 x 3 0, 0.79454 ´ 34.4415, 2 4 x 30, 2.6154 4 ´ 39.3847, 12 4 x 167.3927, 202.60732
Cumulative Review Chapters 1–6, p. 700 85 13 85 1. sin 84 85 , csc 84 , cos 85 , sec 13 , 13 tan 84 , cot 13 84 3. g12 132 12 132 2 412 132 1 4 4 13 3 8 413 1 0 5. about 474 ft 7. y 5 4 3 2 1
54321 1 2 3 4 5
1 2 3 4 5 x
9 11 1 d 13. a. y x 31 b. every 11. x c , 2 2 2 2 years, the amount of emissions decreases by 1 million tons. c. 23.5 million tons; 11 million tons 15. x 11, 52 17. $7 cos x1sec x 12 cos x 99 19. 21. sec x 1 1sec x 121sec x 12 101 1 cos x sec2x 1 1 cos x tan2x 2 23. a. y 5.4 sin a x b 27.1 b. from early May until late 6 3 August 9. 50.89 km/hr
MODELING WITH TECHNOLOGY III Modeling with Technology III Exercises, pp. 707–710 1. y 25 sin a xb 50 3. y 2.25 sin a x b 5.25 6 12 4 2 b 782 5. y 503 sin a x 6 3 4 xb 84.6 b. about 94.4°F 7. a. T1x2 19.6 sin a x 6 3 c. beginning of May 1x 5.12 to end of August 1x 8.92
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Student Answer Appendix
13 x b 98.6 b. at 11 A.M. and 11 P.M. 12 12 c. from x 1 to x 9, about 8 hr 11. P 12, B , C ; using (4, 3) gives A 3 13, so 12 2 f 1x2 3 13 tana x b a. f 12.52 6.77 b. f 1x2 16 for 12 2 x 1.20 13. a. using (18, 10) gives A 4.14; H1d2 4.14 tan a db 48 b. 12.2 cm c. 21.9 mi 9. a. T1x2 0.4 sina
13
25. a. 10 cm
112
b. 0
c. 2
d. 1
0.8 cm 56
5
95
27. not possible 29. B 60°, C 90°, b 12.913 mi 31. A 39°, B 82°, a 42.6 mi or A 23°, B 98°, a 26.4 mi 33. A 39°, B 82°, a 42.6 ft or A 23°, B 98°, a 26.4 ft 35. not possible 37. A 80.0°, B 38.0°, b 1.8 1025 mi 39. A1 19.3°, A2 160.7°, 48° 160.7° 7 180°; no second solution possible 41. C1 71.3°, C2 108.7°, 57° 108.7° 6 180°; two solutions possible 12 43. not possible, sin A 7 1 45. 2 47. 34.6 million miles or 119.7 million miles 49. a. No b. 3.9 mi 51. V 4 S 41.7 km, V 4 P 80.8 km 53. a. No b. about 201.5 ft c. 15 sec 55. Two triangles Angles Sides Angles Sides A2 138.9° a 12 cm A1 41.1° a 12 cm B 26° b 8 cm B 26° b 8 cm C2 15.1° c2 4.8 cm C1 112.9° c1 16.8 cm
7
101
57.
9
94
15. a. y 49.26 sin 10.213x 1.1042 51.43 b. y 49 sin 10.203x 0.9632 51 c. at day 31 5.6 17. a. y 5.88 sin 10.523x 0.5212 16.00 b. y 6 sin 10.524x 0.5242 16 c. at month 9 0.12 19. a. T1m2 15.328 sin10.461m 1.6102 85.244 b. 120
0
23.
Month
Temp. (°F)
1
71
3
82
11 80 60 c. max difference is about 1°F in months 6 and 8 21. a. Reno: R1t2 0.452 sin10.396t 1.8312 0.750 b. The graphs intersect at t 2.6 and t 10.5. Reno gets more rainfall than Cheyenne for about 4 months of the year: 2.6 112 10.52 4.1 3
Angles A1 47.0° B1 109.0° C 24°
Sides a 9 cm b1 11.6 cm c 5 cm
Angles A2 133.0° B2 23.0° C 24°
Sides a 9 cm b2 4.8 cm c 5 cm
59. a 33.7 ft, c 22.3 ft 61. Rhymes to Tarryson: 61.7 km, Sexton to Tarryson: 52.6 km 63. 3.2 mi 65. h 161.9 yd 67. angle 90°; sides 9.8 cm, 11 cm; diameter 11 cm; it is a right triangle. 69. a. about 3187 m b. about 2613 m c. about 2368 m 71. sin 60° sin 90° 60 ; 12 13 20.4 cm sin 30° sin 45° 10.2 cm 30 10.2(√3) cm
0
12
73. A 19°, B 31°, C 130°, a 45 cm, b 71.2 cm, c 105.8 cm 75. 12,564 mph 77. tan2x sin2x
1
23. a. f 1x2 49.659 sin10.214x 0.6892 48.328 b. about 26.8% 2 7 g1x2 49.5 sina x b 49.5; values for A, B, and D are very c. 31 62 close; some variation in C. 25. a. D1t2 2000 cosa tb b. 30 min c. north, 1258.6 mi. 60 Mm ma b 2 mD 2m M m mM 1 27. A Mm Mm Mm 2
CHAPTER 7 Exercises 7.1, pp. 719–724 1. ambiguous 3. I; II 5. Answers will vary. 7. a 8.98 9. C 49.2° 11. C 21.4° 13. C 78°, b 109.5 cm, c 119.2 cm 15. C 90°, a 10 in., c 20 in. 17. 19. C 90°, a 15 mi, b 15 mi 33
19 in. 102
21. A 57°, b 49.5 km, c 17.1 km
sin2x cos2x sin2x 2
sin2x
sin2x cos2x
cos x cos2x sin2x sin2x cos2x cos2x sin x11 cos2x2 2
cos2x sin x sin2x 2
cos2x sin2x sin2x cos2x sin2x tan2x 5 2 79. a. y x b. 1106 units 9 9
Exercises 7.2, pp. 731–736 1. cosines 3. Pythagorean 5. B 33.1°, C 129.9°, a 19.8 m; law of sines 7. yes 9. no 11. yes 13. verified 15. B 41.4° 17. a 7.24 19. A 41.6° 21. A 120.4°, B 21.6°, c 53.5 cm 23. A 23.8°, C 126.2°, b 16 mi 25. B
59.8
538 mm
260.9 mm A
91.2
29 465 mm
C
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Student Answer Appendix c. H0.5, 15I
27. A 137.9°, B 15.6°, C 26.5° 29. A 119.3°, B 41.5°, C 19.2° 31. A
2.9 10 25 m
mi 10 25
y
6
u
i 33.2
103.3
d. H8, 9I
y
20
(0.5, 15)
B
5
1.5v
10
r
2.3
mi
25
0
43.5
4.1
1
10
2u 5
33. a. H8, 4I
b. H6, 8I y
y
5
A 139.7°, B 23.7°, C 16.6° C 86.3° 37. about 1688 mi 39. P 27.7°; heading 297.7° It cannot be constructed (available length 10,703.6 ft) 1678.2 mi 45. P 22.4 cm, A 135°, B 23.2°, C 21.8° A 20.6°, B 15.3°, C 144.1° 49. 58.78 cm 53. 33.7º; 150 ft2 a 13 A 133.2° b5 B 16.3° c 182 C 30.5° 55. a. 0.65 65% b. $1,950,000 57. about 483,529 km2 59. 387 502 889 6 902 61. (1) a2 b2 c2 2bc cos A (2) b2 a2 c2 2ac cos B, use substitution for a2 and (2) becomes b2 1b2 c2 2bc cos A2 c2 2ac cos B. Then 0 2c2 2bc cos A 2ac cos B, 2bc cos A 2ac cos B 2c2, b cos A a cos B c 63. 2 5 13 12 13 65. sin x , csc x , cos x , sec x , 13 5 13 12 5 12 tan x , cot x 12 5
33. 35. 41. 43. 47. 51.
(8, 4) 2
r
1. scalar 3. directed; line 7. 9. 12 knots
2
x
5
u
c. H15.5, 5I y
5
d. H5, 14I y
(15.5, 5)
3
r
r 20 x
10
(5, 14)
5
35. a. H3, 6I
b. H5, 2I
y 5
v
r
(3, 2)
321 1 2 3 4 5
y
5
5
H7, 3I
u r
H6, 5I
2 ( 3) 5
4
(1, 2)
4
4
5
8
t
5
y QIII 2
4
y 16
5
u
uv
5
v r 55
y
u 5
5
5
x
uv 5
2
8 x 4
51. p 3.2i 5.7j p 6.54 4
v
53. a.
4
y
r 16
y 10
8 x
v
5 x
r
u
(5, 3) 5 x
49. u 8i 15j u 17
x
b. 173 c. 20.6° b. 129 c. 68.2° 25. H10.9, 5.1I 27. H106, 92.2I 29. H9.7, 2.6I 31. a. H1, 9I b. H5, 3I
5
x
5
47. u v H3, 6I u v H7, 0I
4
y
5
uv
y
2
uv
5
x
5
H2, 5I
(1, 9)
y
5
5
2
8
45. u v H9, 6I u v H7, 0I
uv
5
2 4
(6, 6)
uv
H8, 3I QI 4
41. True
y
x (5, 3)
8
4
x
8
4
4
x
3
v
37. True 39. False 43. u v H8, 6I u v H6, 2I
y 8 1 5 6
8
4
y
5
5
2u
17. Terminal point: 15, 12 , magnitude: 153 19. Terminal point: 11, 12 , magnitude: 134 y 21. a. 23. a.
8
d. H6, 6I
y
5
10
1.5v
V4
4
4 (3) 7 523
(5, 2)
5 x
r
8
1 2 3 4 5 6 7 x
3 x
r
3
M
15.
(4, 5)
u
v
u
5
5 4 3 2 1
y 5
(3, 6)
25 J 210 N
V2 V3
2v
10
2u
250 N
V1
x
u
1.5v
(6.5, 10)
9 knots 6 knots
v
r
5
(6, 8)
5
c. H6.5, 10I
5. Answers will vary. 11.
x
5
u
v
3
Exercises 7.3, pp. 747–751
(8, 9)
5 x
C
13.
x
2v
r
5
5
5 x
p 5
5
b. v H11.5, 3.3I c. v 11.5i, 3.3j
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Student Answer Appendix
55. a.
10
5
b. w H2.5, 9.2I c. w 2.5i 9.2j
y
Reinforcing Basic Concepts, p. 751 1.
w
r 74.5 5
5 x
p 2i 2j; p 212, 135° q 6i 8j; q 10, 306.9° r 2i 1.5j; r 2.5, 143.1° s 10i 13j; s 16.4, 307.6° p 2 12i 2j; p 3.5, 35.3° q 8 12i 12j; q 16.5, 46.7° r 5.512i 6.5j; r 10.1, 39.9° s 1112i 17j; s 23.0, 47.5° p 8i 4j; p 8.9, 26.6° q 16i 4j; q 16.5, 14.0° r 18i 8j; r 19.7, 24.0° s 20i 4j; s 20.4, 11.3° 7 24 20 21 h , i , verified 65. h , i , verified 25 25 29 29 20 21 24 7 i j, verified 69. i j, verified 29 29 25 25 13 3 6 11 h , i , verified 73. i j, verified 1178 1178 1157 1157 2 5 4.48 h , i H4.16, 1.66I 129 129
57. a. b. c. d. 59. a. b. c. d. 61. a. b. c. d. 63. 67. 71. 75.
3 8 , i H5.46, 2.05I 79. 14.4 81. 24.3° 173 173 83. hor. comp. 79.9 ft/sec; vert. comp. 60.2 ft/sec 85. heading 68.2° at 266.7 mph 87. 182.10 cm, 22.00 cm2 89. 1Ha, bI H1a, 1bI Ha, bI 91. Ha, bI Hc, dI Ha c, b dI Ha 1c2, b 1d2I Ha, bI Hc, dI Ha, bI 1Hc, dI u 11v2 93. 1ck2u Hcka, ckbI cHka, kbI c1ku2 c1ku2 Hcka, ckbI Hkca, kcbI kHca, cbI k1cu2 95. u 1u2 Ha, bI Ha, bI Ha a, b bI H0, 0I 97. 1c k2u 1c k2Ha, bI H1c k2a, 1c k2bI Hca ka, cb kbI Hca, cbI Hka, kbI cu ku 99. H1, 3I H3, 3I H4, 1I H2, 4I H4, 3I H6, 2I H0, 0I 101. Answers will vary, one possibility: 0°, 81.4°, 34° 103. a. not a real number b. not possible c. not a real number 105. x 0, 17; see graph y 77. 5.83 h
Exercises 7.4, pp. 761–765 1. equilibrium; zero 3. orthogonal 5. Answers will vary. 7. H6, 8I 9. H5, 10I 11. 6i 8j 13. 2.2i 0.4j 15. H11.48, 9.16I 17. H24, 27I 19. F3 3336.8; 268.5° 21. 37.16 kg 23. 644.49 lb 25. 2606.74 kg 27. approx. 286.79 lb 29. approx. 43.8° 31. 1125 N-m 33. approx. 957.0 ft 35. approx. 64,951.90 ft-lb 37. approx. 451.72 lb 39. approx. 2819.08 N-m 41. 800 ft-lb 43. 118 ft-lb 45. verified 47. verified 49. a. 29 b. 45° 51. a. 0 b. 90° 53. a. 1 b. 89.4° 55. yes 57. no 59. yes 61. 3.68 63. 4 65. 3.17 67. a. H3.73, 1.40I b. u1 H3.73, 1.40I, u2 H1.73, 4.60I 69. a. H0.65, 0.11I b. u1 H0.65, 0.11I, u2 H1.35, 8.11I 71. a. 10.54i 1.76j b. u1 10.54i 1.76j, u2 0.54i 3.24j 73. a. projectile is about 375 ft away, and 505.52 ft high b. approx. 1.27 sec and 12.26 sec 75. a. projectile is about 424.26 ft away, and 280.26 ft high b. approx. 2.44 sec and 6.40 sec 77. about 74.84 ft; t 3.9 1.2 2.7 sec 79. w # 1u v2 He, f I # Ha c, b dI e1a c2 f 1b d 2 ea ec fb fd 1ea fb2 1ec fd2 He, f I # Ha, bI He, f I # Hc, dI w#uw#v 81. 0 # u H0, 0I # Ha, bI 01a2 01b2 0 u # 0 Ha, bI # H0, 0I a102 b102 0 83. 56.9°; answers will vary. 85. x 20 87. a 138.4, B 106.8° C 41.2°; P 560.4 m, A 11,394.3 m2
Exercises 7.5, pp. 773–776 1. modulus; argument 3. multiply; add 5. 21cos 240° i sin 240°2, z is in QIII 7. z2 z1 z3 9. z2 z1 z3 yi 4
yi
z2
6
z3
2
z1
x z3
1 2 3 4 5 x
7 8 x
z1 z2
11. 2 121cos 225° i sin 225°2
Mid-Chapter Check, p. 751
a2 c2 b2 b sin A 2. cos B 2ac a 3. a 129 m, B 86.5°, C 62.5° 4. A 42.3°, B 81.5°, C 56.2° a 2.1 km a 70 yd 5. A 44° 6. A 18.5° B 68.1° b 2.8 km B 134.5° b 157.1 yd C 67.9° c 2.8 km C 27° c 100 yd or A 44° a 2.1 km B 23.9° b 1.2 km C 112.1° c 2.8 km 7. about 60.7 ft 8. 169 m 9. 49.6°; 92.2°; 38.2° 10. 9.4 mi 1. sin B
2. For A 35°, a 10.3 For A 50°, a 14.2 For A 70°, a 19.1; yes, very close
Sides a 11.6 cm a 20 cm c 18 cm
Very close.
10 8 6 4 2
54321 2 4 6 8 10
Angles A 35° B 81.5° C 63.5°
15. 6 c cosa 19. 21. 23. 25. 27.
13. 101cos 210° i sin 210°2
3 3 11 11 b i sina b d b i sina bd 17. 8 c cosa 4 4 6 6 6 10 cis c tan1a b d ; 10 cis 36.9° 8 12 13 cis c 180° tan1a b d ; 13 cis 247.4° 5 17.5 18.5 cis c tan1a b d ; 18.5 cis 1.2405 6 5 2 134 cis c tan1a b d ; 2 134 cis 2.1112 3 yi 4 r 2, 3 4 2 (√2, √2) z 2 cisa b 1 2 4
4 12 12i 2 1 1 2 x 1
cob19529_saa_SA01-SA68.qxd 1/5/09 13:20 Page SA47 User-S178 MAC-OSX_1:Users:user-s178:Desktop:
Student Answer Appendix 3 z 4 13 cisa b 3 2 13 6i
29. r 413,
55. a. 17 cis 28.1° b. 51 V 57. a. 8.60 cis 324.5° b. 15.48 V 59. a. 13 cis 22.6° b. 22.1 V 61. I 2 cis 30°; Z 5 12 cis 45°; V 10 12 cis 75° 17 17113 cis 61.9°; V cis 28.2° 63. I 113 cis 326.3°; Z 4 4 12 cis 105° 65. V 4 cis 60°; Z 4 12 cis 315°; I 2 10 cis 245° 67. V 5 cis 306.9°; Z 8.5 cis 61.9°; I 17 165 cis 29.7° 69. 71. verified 4 24 7 24 7 5 13 29 37 i, z3 i 75. , , , 73. z2 5 5 5 5 24 24 24 24 77. y
yi (2√3, 6) 5
4√3
3
5
5 x 2
31. r 17, tan1a
15 b 8 15 z 17 cis c tan1a b d 8 15 8 17a ib 8 15i 17 17
33. r 6, tan1a
20
yi (8, 15)
10
17 tan1 8 15
2
5 b 111 5 z 6 cis c tan1 d 111 111 5 6a ib 111 5i 6 6
x
5
yi (√11, 5)
5
6 5
45. 47. 49.
117 12 13i2 13 1613i2 145 56 13i2,
59 84 13i 59 8413i 53. a. V1t2 170 sin1120t2 b. t V(t) 0
0
0.001
62.6
0.002
116.4
0.003
153.8
0.004
169.7
0.005
161.7
0.006
131.0
0.007
81.9
0.008
21.3
c. t 0.00257 sec
x
3
z1 4 413 i z2 3 3 z1 13 1 i z1z2 21 13 21i, z2 7 7 z1 z1z2 10.84 12.04i, 1.55 4.76i z2 z1 5 13 5 z1z2 0 40i, i z2 4 4 z1 5 0i z1z2 10 10 13i, z2 2 z1 z1z2 2.93 8.5i, 2.29 3.28i z2
51. verified; verified, u2 v2 w2 uv uw vw 11 413i2 197 20 13i2 139 6013i2
1 2 3 4
3 x
39. z1z2 24 0i,
43.
3 1
5 tan1√11
35. r1 2 12, r2 3 12, 1 135°, 2 45°; z z1z2 12 0i 1 r 12, 180°; r1r2 2 1213122 12✓ 1 2 135° 45° 180°✓ 37. r1 2, r2 2, 1 30°, 2 60°; r1 z1 2 13 1 z i 1 r 1, 30°; 1✓ r2 2 z2 2 2 1 2 30° 60° 30°✓
41.
SA47
Exercises 7.6, pp. 781–783 r5 3cos152 i sin152 4 ; De Moivre’s 3. complex z5 2 cis 366° 2 cis 6°, z6 2 cis 438° 2 cis 78°, 2 cis 510° 2 cis 150°; Answers will vary. r 3 12; n 4; 45°; 324 9. r 2; n 3; 120°; 8 13 1 11. r 1; n 5; 60°; i 13. r 1; n 6; 45°; i 2 2 15. r 4; n 3; 330°; 64i 12 1 1 17. r ; n 5; 135°; i 2 8 8 19. verified 21. verified 23. verified 25. verified 27. r 1; n 5; 0°; roots: 1, 0.3090 0.9511i, 0.8090 0.5878i 29. r 243; n 5; 0°; roots: 3, 0.9271 2.8532i, 2.4271 1.7634i 3 13 3 313 3 31. r 27; n 3; 270°; roots: 3i, i, i 2 2 2 2 33. 2, 0.6180 1.9021i, 1.6180 1.1756i 313 3 3 13 3 35. i, i, 3i 2 2 2 2 37. 1.1346 0.1797i, 0.1797 1.1346i, 1.0235 0.5215i, 0.8123 0.8123i, 0.5215 1.0235i 1 13 39. x 1, i. These are the same results as in Example 3. 2 2 41. r 16; n 4; 120°; roots: 13 i, 1 13i, 13 i, 1 13i 43. r 712; n 4; 225°; roots: 0.9855 1.4749i, 1.4749 0.9855i, 0.9855 1.4749i, 1.4749i 0.9855i 1 1 1 45. D 4, z0 86 cis 45°, z1 86 cis 165°, z2 86 cis 285°, 1 1 1 6 6 6 z0 8 cis 75°, z1 8 cis 195°, z2 8 cis 315° 47. verified 4 49. a. numerator: 117 44j, denominator: 21 72j b. 1 j 3 c. verified 51. Answers will vary. 53. 7 24i 55. z 2.7320, z 0.7320, z 2. Note: Using sum and difference identities, all three solutions can actually be given in exact form: 1 13, 1 13, 2. 1. 5. z7 7.
tan2x sec2x 1 sec x 1 sec x 1 1sec x 121sec x 12 sec x 1 sec x 1 1 cos x cos x cos x 1 cos x cos x 4 12 59. y x 5 5 57.
cob19529_saa_SA34-SA48.qxd 1/16/09 18:18 Page SA48 User-S178 MAC-OSX_1:broker:MH-DUBUQUE:MHDQ092:MHDQ092-SAA:MHDQ092-SAA:
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Student Answer Appendix
Summary and Concept Review pp. 783–787 1.
2.
Angles A 36° B 21° C 123°
Sides a 205.35 cm b 125.20 cm c 293 cm
Angles A 28° B 10° C 142°
Sides a 140.59 yd b 52 yd c 184.36 yd
120 45 4
15. 13.1°
x
17. compvu 0.87, projvu
38 26 i 53 53
16 12 12 16 i, z1 i, 2 2 2 2 16 12 12 16 z2 i, z3 i 2 2 2 2
19. z0
Practice Test pp. 788–790 1. 6.58 mi 2. 137.18 ft 3. Angles Sides (in.) A1 58.8° a 15 B 20° b6 C1 101.2° c1 17.21
Sides a 67 cm b 105 cm c2 56.63 cm
5 10.30 29.1 9 x
13. horiz. comp. 11.08, vertical comp. 14.18 14. H4, 2I; 2u v 4.47, 206.6°
x
4
3. approx. 41.84 ft
6. no; 36° 7. approx. 36.9° 8. approx. 385.5 m 9. 133.2°, 30.1°, and 16.7° 10. 85,570.7 m2 11. 12. 8i 3j; u 8.54; 159.4° y
7 12 i j 1193 1193 16. QII; since the x-component is negative and the y-component is positive. 17. 16 mi 18. approx. 19.7° 19. H25, 123I 20. approx. 0.87 21. 4 22. p # q 6; 97.9° 23. 4340 ft-lb 24. approx. 417.81 lb 25. approx. 8156.77 ft-lb 26. a. x 269.97 ft; y 285.74 ft b. approx. 0.74 sec 27. 21cos 240° i sin 240°2 28. 3 3i 5 z1 29. 30. z1z2 16 cisa b; 4 cisa b yi 12 z2 12 15.
\, e 5√3
3 2
yi 6
4. approx. 20.2° and 159.8° 5. Angles Sides A 35° a 67 cm B1 64.0° b 105 cm C1 81.0° c1 115.37 cm Angles A 35° B2 116.0° C2 29.0°
13. a. 4 121cos 315° i sin 315°2 yi b. 3 3 13i
Angles A2 121.2° B 20° C2 38.8°
Sides (in.) a 15 b6 c2 11.0
4. a. No b. 2.66 mi 5. a. No b. 1 c. 8.43 sec 6. a. 2.30 mi b. 7516.5 ft 7. A 438,795 mi2, P 61.7°, B 61.2°, M 57.1° 8. speed 73.36 mph, bearing 47.8° 9. 36.5° 10. 63.48 cm to the right and 130.05 cm down from the initial point on the ceiling 11. F3 212.94 N, 251.2° 12. a. 42.5° b. projv u H2.4, 7.2I c. u1 H2.4, 7.2I, u2 H6.6, 2.2I 13. 104.53 ft; 3.27 sec 14. 2 cisa b 15. 4812 cis 75°; verified 24 5 5 13 5 5 13 16. 8 8 13i 17. verified 18. i, i, 5i 2 2 2 2 2 19. 2.3039 1.5192i, 2.3039 1.5192i 20. 2, 414,300 mi
Strengthening Core Skills p. 791 Exercise 1: Exercise 2: Exercise 3:
664.46 lb, 640.86 lb 106.07 lb, 106.07 lb yes
Cumulative Review Chapters 1–7 pp. 791–792 30
32. Z 10.44; 16.7°, 10.44 cis 16.7° 5 13 5 5 13 5 i, i, 5i 33. 16 16 13i 34. verified 35. 2 2 2 2 36. 6, 3 3i 13 37. 2 2i, 2 2i 38. 1 2i, 1 2i 39. verified 31. 213 2j
Mixed Review pp. 787–788 1.
Angles Sides A 41° a 13.44 in. B 27° b 9.30 in. C 112° c 19 in. , Area 57.9 in2 3. x 16.09, y 13.50 5. approx. 176.15 ft heading 28.2° 9. One solution possible since Angles side a 7 side b A 31° B 20.1° C 128.9° 11. No; barely touches (“tangent”) at 30°
1 2A 1r2 2 4 3 5 5. QIV sin 3 5 ; cos 5 ; tan 4 ; csc 3 ; 4 16 sec 54 ; cot 4 7. x 3 5 5 9. cos 19° 0.94, cos 125° 0.58 11. a. about $66,825 y2 y1 b. 13, 13, 7 12; A 59.5 mi2 13. a. m x2 x1 x2 x1 y2 y1 b 2b2 4ac , b c. x b. a 2 2 2a d. d 21x2 x1 2 2 1y2 y1 2 2 e. A Pert 15. A 37°, a 33 cm, B 34.4°, b 31 cm, C 108.6°, c 52 cm 17. about 422.5 lb 19. y 1. 20 23; 40; 60°; 90°
4 5 x
7. approx. 793.70 mph;
3. R
8 4
Sides a 36 m b 24 m c 54.4 m
54321 4
1 2 3 4 5 x
8
x1q, 12 ´ 12, 32 21. 128 128i 13
23. about 3.6 yr
25. A 2, B 1, C
4
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Student Answer Appendix
CHAPTER 8
Reinforcing Basic Concepts, p. 818
Exercises 8.1, pp. 801–805
Exercise 1. Premium: $4.17/gal, Regular: $4.07/gal 15.3R 35.7P 211.14 e P R 0.10 Exercise 2. Verified
1. inconsistent 3. consistent; independent 5. Multiply the first equation by 6 and the second equation by 10. 7. y 74 x 6, y 4 9. y x 2 11. x 3y 3 3 x 5 13. y x 2, x 3y 3 15. yes 17. yes 19. 21. y y 10 8 6 4 2
108642 2 4 6 8 10
10 8 6 4 2
(6, 3)
25. 13, 52
33. 13, 12
35. 12, 32
27. second equation, y, 14, 32
29. second equation, x, 110, 12 43. 16, 122
1. a. 3 or 4 not possible
y
y
108642 2 2 4 6 8 10 x 4 (1.1, 4.6) 6 8 10
2 4 6 8 10 x
23. 14, 12
Exercises 8.3, pp. 823–826
37.
31. second equation, x, 1 52 , 74 2
1 11 2,
22
39. 12, 32
45. (2, 8); consistent/independent
49. 51x, y2 |6x y 226; consistent/dependent 51. (4, 1); consistent/independent
41. 13, 42
x
b. 3 or 4 not possible
x
y
y
47. ; inconsistent x
x
53. 13, 42; consistent/independent
4 55. 1 1 57. 12, 52 2 59. 12, 12 2 , 3 2; consistent/independent 61. 1 mph 4 mph 63. 2318 adult tickets; 1482 child tickets 65. premium: $3.97, regular: $3.87 67. nursing student $6500; science major $3500 69. 150 quarters, 75 dimes 71. a. 100 lawns/mo, b. $11,500/mo 73. a. 1.6 billion bu, 3 billion bu, yes; b. 2.7 billion bu, 2.25 billion bu, yes; c. $6.65, 2.43 billion bu 75. a. 3 mph, b. 5 mph 77. a. 3.6 ft/sec, b. 4.4 ft/sec 79. 1776; 1865 81. Tahiti: 402 mi2, Tonga: 290 mi2 83. m1 m2; consistent/independent 85. $6552 at 8.5%; $11,551 at 6% 87. 472°, 832°, 248°, 608° 89. verified
c.
y
y
y
x
x
x
y
x
Exercises 8.2, pp. 814–818 1. triple 3. equivalent; systems 5. z 5 7. Answers will vary. 9. Answers will vary. 11. yes, no 13. (5, 7, 4) 15. (2, 4, 3) 17. (1, 1, 2) 19. (4, 0, 3) 21. (3, 4, 5) 23. (1, 6, 9) 25. no solution, inconsistent 27. 1p, 2 p, 2 p2 5 2 29. a p , p 2, pb, other solutions possible 3 3 31. 1p, 2p, p 12 33. 1p 9, p 4, p2 35. 51x, y, z2 |x 6y 12z 56 5 1 37. (1, 1, 2) 39. e 1x, y, z2 |x y 2z 3 f 41. a2, 1, b 2 3 11 10 7 43. 1p 5, p 2, p2 45. 118, 6, 102 47. a , , b 3 3 3 1 1 49. 11, 2, 32 51. a , , 3b 53. 3.464 units 2 3 55. Monet $1,900,000; Picasso $1,100,000; van Gogh $4,000,000 57. elephant, 650 days; rhino, 464 days; camel, 406 days 59. Albatross: 3.6 m, Condor: 3.0 m, Quetzalcoatlus: 12.0 m 61. 175 $5 gold pieces; 50 $10 gold pieces; 25 $20 gold pieces 63. A 1, B 1, C 2; verified 65. x2 y2 4x 6y 9 0 67. H11, 5I; H6, 43 69. x 1 2I
d.
y
y
y
x
x
x
y
x
e. 3 or 4 solutions not possible y
y
y
x
f.
x
y
x
y
y
Mid-Chapter Check, pp. 817–818 1. (1, 1) consistent 2. (5, 3) consistent 3. 20 oz 4. No 5. 2R1 R2 6. (1, 2, 3) 7. (1, 2, 3) 8. 1p, p 5, p 42 9. Morphy: 13, Mozart: 8, Pascal: 16 10. prelude: 2.75 min, storm: 2.5 min, sunrise: 2.5 min, finale: 3.25 min
x
x
x
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Student Answer Appendix 11.
y
10 8 6
(1, 5) 4
19.
25. 5 4 3 2 1
54321 1 2 3 4 5
parabola, parabola; 11, 22 , (2, 1)
10 8 6 4 2
108642 2 4 6 8 10
108642 2 4 6 8 10
2 4 6 8 10 x
47. no solution
49.
5 4 3 2 1
y
4 8 12 16 20 x
54321 1 2 3 4 5
2 4 6 8 10 x
y
1 2 3 4 5 x
51. h 45.8 ft; h 40 ft; h 30 ft 53. The company breaks even if either 18,400 or 48,200 cars are sold. 10P2 6D 144 55. $1.83; $3 e 2 8P 8P 4D 12 90,000 gal 57. 8.5 m 10 m 59. 5 km, 9 km 61. 8 8 25 ft 16 12 63. Answers will vary. 65. 18 in. by 18 in. by 77 in. 67. 4 69. W 191.7 ft-lb
Exercises 8.4 pp. 835–838 1. half, planes 3. solution 5. The feasible region may be bordered by three or more oblique lines, with two of them intersecting outside and away from the feasible region. 7. No, No, No, No 9. No, Yes, Yes, No
31.
10 8 6 4 2
37.
10 8 6 4 2
27.
y
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
33.
y
2 4 6 8 10 x
5 4 3 2 1 54321 1 2 3 4 5
39. e
y
108642 2 4 6 8 10
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
108642 2 4 6 8 10
y
2 4 6 8 10 x
y
2 4 6 8 10 x
y
23.
108642 2 4 6 8 10
2 4 6 8 10 x
y
29.
1 2 3 4 5 x
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y
10 8 6 4 2
35.
10 8 6 4 2 108642 2 4 6 8 10
y
2 4 6 8 10 x
y
2 4 6 8 10 x
y
2 4 6 8 10 x
yx 1 xy 7 3
2 4 6 8 10 x
yx 1 41. • x y 6 3 43. (5, 3) 45. (12, 11) 47. (2, 2) y 0 49. (4, 3) 51. 5 6 H 6 10 53. 10 55. 300 acres of corn; 200 acres of soybeans J (in ten thousands)
10 8 6 4 2
10 8 6 4 2
21.
y
108642 2 4 6 8 10
1 2 3 4 5 x
13. 14, 32, 13, 42 15. (2, 5), 14, 72 17. 13, 42 , 14, 32 , (3, 4), 14, 32 19. 14, 32, 14, 32 21. no solution 23. 18, 12, 17, 42 25. 15, log 5 52 27. 13, ln 9 12, 14, ln 16 12 29. (0, 10), (ln 6, 45) 31. 13, 12 , (2, 1024) 33. 13, 212 , 11, 12 , (2, 4) 35. 12, 42 , (6, 4) 37. (3, 5), 13, 52 39. 12.43, 2.812, (2, 1) 41. (0.72, 2.19), (2, 3), (4, 3), (5.28, 2.19) 43. 45. y y
2016 1284 4 8 12 16 20
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y
10 8 6 4 2 108642 2 4 6 8 10
circle, absolute value; 16, 82 , (8, 6)
y
108642 2 4 6 8 10
20 16 12 8 4
17.
2 4 6 8 10 x
10 8 6 4 2
11.
15. No, No, No, Yes
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
(2, 2)
2 108642 2 4 6 8 10
9.
5. Answers will vary. line, parabola; 11, 52, 12, 22
13.
y
108642 2 4 6 8 10
x
3. region; solutions 7. y
10 8 6 4 2
9 8 7 6 5 4 3 2 1 1 2 3 4 5 6 7 8 9 10
A (in ten thousands)
J A 50,000 J 20,000 A 25,000 57. 240 sheet metal screws; 480 wood screws 59. 65 traditionals, 30 Double-T’s 61. 220,000 gallons from Tulsa to Colorado; 100,000 gal from Tulsa to Mississippi; 0 thousand gal from Houston to Colorado; 150,000 gal from Houston to Mississippi y 63. (3, 3); optimal solutions occur at vertices 10 8 6 4 2 108642 2 4 6 8 10
65. a. 35
(3, 3) 2 4 6 8 10 x
b.
5 4
3 c. 4
67. 324
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Student Answer Appendix
Summary and Concept Review, pp. 839–841 1.
10 8 6 4 2
(4, 4)
108642 2 4 6 8 10
3.
2.
y 3x 2y 4
10 8 6 4 x 3y 8 2
54321 2
2 4 6 8 10 x
x 0.3y 1.4 4 6 8 10
(4, 4)
15.
y 0.2x 0.5y 1.4 1 2 3 4 5 x
(q, 3)
1 12 , 32
y
5
max value 27.5 at (2, 6) 17. (2, 5), 12, 52 12, 52, 12, 52 19. y
2x y 2 4 3 2 1 54321 1 2
10 8 6 4 2
1 2 3 4 5 x
(U, T)
x 2y 4 3 4 5
1 85 , 6 5 2
4. no solution; inconsistent 5. 15, 12 ; consistent 6. (7, 2); consistent 1 7. 13, 12 ; consistent 8. (2, 2); consistent 9. 1 11 4 , 6 2 ; consistent 10. Sears Tower is 1450 ft; Hancock Building is 1127 ft. 11. (0, 3, 2) 12. (1, 1, 1) 13. no solution, inconsistent 14. 3 aces, 4 face cards, 5 numbered cards 15. 1530 quarters, 1180 dimes, 710 nickels 16. circle, line, (4, 3), 13, 42 17. parabola, line, 13, 22 18. parabola, circle, 1 13, 22, 1 13, 22 19. circle, parabola, (1, 3), 11, 32 20. 21. y y 6 5 4 3 2 1
6 5 4 3 2 1
654321 1 2 3 4 5 6
1 2 3 4 5 6 x
parabola, circle 22.
108642 2 4 6 8 10
25.
23.
y
10 8 6 4 2
1 2 3 4 5 6 x
note the open circle showing noninclusion at 10, 32 ; circle, parabola 24. y y 10 8 6 4 2
108642 2 4 6 8 10
2 4 6 8 10 x
108642 2 4 6 8 10
1.
y
10 3x 2y 12 8 x 4y 10 6 4 2 (2, 3) 108642 2 4 6 8 10
2 4 6 8 10 x
2x 3y 120
10 10
y
5 4 3 2 1
19.
108642 2 4 6 8 10
4. 12, 1, 42
(30, 20)
20
2 4 6 8 10 x
15. 1 13, 12, 1 13, 12 16. 15 ft, 20 ft
1. a. e
108642 2 4 6 8 10
3. 13, 22
30
54321 1 2 3 4 5
10 8 6 4 2
2
20
30
40
50 x
14. 11 27, 1 172, 11 17, 1 172
26. 50 cows, 425 chickens
10 8 6 4 2
2 4
2 4 6 8 10 x
108642 2 4 6 8 10
2 4 6 8 10 x
y 35 x 2 y 43 x 3 ; consistent/dependent b. e ; consistent/ y 35 x 2 y 25 x 2 1 y 3x 3 independent c. e ; inconsistent y 13 x 53 3. 12 32 5. 21 veggie, 33 beef 7. (9, 1, 1) 9. 51x, y, z2 ƒ x , y 7x 7, z 5x 66 11. 13. no solution y y
2. 1 5 , 5
4 2
17.
Mixed Review, pp. 841–842
(2, 3)
5. 5 1x, y, z2 0 x 2z 1, y 5z 6, z 6 6. a 5, b 2 7. 21.59 cm by 35.56 cm 8. Tahiti 402 mi2; Tonga 290 mi2 9. Corn 25¢, Beans 20¢, Peas 29¢ 10. $15,000 at 7%, $8000 at 5%, $7000 at 9% 11. 12. (5, 0) 13. 50 y 30 plain; y 10 x y 50 8 20 deluxe 40 6
2 4 6 8 10 x
(3, 4)
2 4 6 8 10 x
Practice Test, pp. 842–843
10 8 6 4 2
Maximum of 270 occurs at both (0, 6) and (3, 4).
y
6 4 2 2 4 6
654321 1 2 3 4 5 6
108642 2 4 6 8 10
2 4 6 8 10 x
10 8 6 4 2
(x, y) P1x, y2 2.5x 3.75y (0, 0) 0 (0, 7) 26.25 (7.5, 0) 18.75 (2, 6) 27.5 (6, 2) 22.5
18. e
y 7 0 x2 y2 6 9
1 2 3 4 5 x
y
5 4 3 2 1 54321 1 2 3 4 5
the solution is (0, 1)
20. Answers may vary. Possible solution: x2 y2 7 1 • x2 y2 6 4 x 7 0, y 6 0
1 2 3 4 5 x
Strengthening Core Skills, pp. 844–845 Exercise 1. 11, 42 , elimination
Cumulative Review Chapters 1–8, pp. 845–846 2 4 6 8 10 x
1.
y
10 8 6 4 (3, 0) 2 (0, 2) 108642 2 4 6 8 10
2 4 6 8 10 x
3.
10 8 6 4 2 108642 2 4 6 8 10
y
(3, 1)
5. (1, 0) (4, 0)
2 4 6 8 10 x
45 36 27 18 9
108642 9 18 27 36 45
y
(3, 0) 2 4 6 8 10 x
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Student Answer Appendix
7.
5 4 3 2 1
2
2 3 4 5
9.
y
2
x
10 8 6 4 (3, 0) 2 108642 2 4 6 8 10
x 2
y
(3, 0) 2 4 6 8 10 x
y 1 (0, 2.25)
x2
11. a. D: x 1q, q 2 b. R: y 1q, 4 4 c. f 1x2c: x 1q, 12 f 1 x2T: x 11, q2 d. n/a e. max: 11, 42 f. f 1x2 7 0: x 14, 22 f 1x2 6 0: x 1q, 42 ´ 12, q 2 ¢y 7 g. ¢x 4 13. a. no solution b. no solution c. n 1, n 9 d. x 3 2i ln 7 e. x 18 , x 1 f. x 6 g. x 2 h. x 4 i. x 3 5 ln 3 15. a 20, b 20 13, c 40, A 30°, B 60°, C 90° 17. sin2x cos2x 1 tan2x 1 sec2x 1 cot2x csc2x 4 3 4 19. cot , sin , cos 3 5 5 5 5 csc , sec 3 4 ¢y 7 21. 23. x 12, 52 ¢x 10 25. a 13.4, b 19, c 9.3, A 41°, B 112°, C 27° 27. (1, 3) 29. 900 cos 69° 322.5 lb
CHAPTER 9 Exercises 9.1, pp. 855–858 1. square 3. 2; 3; 1 5. Multiply R1 by 2 and add that result to R2. This sum will be the new R2. 7. 3 2, 5.8 9. 4 3, 1 1 2 1 1 0 1 3 § ; diagonal entries 1, 0, 1 11. £ 1 2 1 1 3 x 2y z 0 x 4y 5 1 y 2z 2 S 111, 4, 32 13. e 15. • 1 S 13, 2 2 y2 z3 x 3y 4z 29 y 32 z 21 17. • 2 S 14, 15, 32 z3 1 3 3 2 1 6 2 d 21. £ 0 23 12 15 § 19. c 0 28 6 2 1 0 4 3 1 1 8 3 6 § 23. £ 0 3 0 10 13 34 25. 2R1 R2 S R2 27. 5R1 R2 S R2 3R1 R3 S R3 4R1 R3 S R3 29. (20, 10) 31. (1, 6, 9) 33. (1, 1, 2) 35. (1, 1, 1) 37. 11, 3 2 , 22 39. linear dependence (p 4, 2p 8, p) 41. coincident dependence {(x, y, z)|3x 4y 2z 2} 43. no solution 45. linear dependence, 154 p 3, 18 p 12 , p2 47. 28.5 units2 49. Heat: 95, Mavericks: 92 51. Poe, $12,500; Baum, $62,500; Wouk, $25,000 53. A 35, B 45, C 100 55. $.4 million at 4%; $.6 million at 7%; $1.5 million at 8% 57. x 84; y 25 5 5 13 59. a. z1 110 cis 3 tan1 132 4 b. z2 i 2 2 61. C 30,000 in the year 2011 (t 6.39)
Exercises 9.2, pp. 866–870 1. aij; bij 3. scalar 5. Answers will vary. 7. 2 2, a12 3, a21 5 9. 2 3, a12 3, a23 6, a22 5
11. 3 3, a12 1, a23 1, a31 5 13. true 15. conditional, c 2, a 4, b 3 10 0 17. c d 19. different orders, sum not possible 0 10 5 1 2 0 1 0 2 20 15 2 § d 23. £ 0 7 21. c 1 § 25. £ 0 1 2 25 10 3 4 3 6 6 2 2 6 3 9 12 24 90 1 0 d 31. c d d 29. c 27. c 0 1 12 0 6 6 15 57 42 18 60 d 12 42 36 1 1.25 0.25 0.71 0.65 d 39. £ 0.5 0.63 2.13 § 37. c 1.78 3.55 3.75 3.69 5.94 1 3 1 0 0 0 4 4 4 3 1 0 19 57 1 3 1 d 43. £ 0 1 0 § 45. c 1 41. c 47. £ 2 8 8 § 5 d 0 1 19 57 1 11 1 0 0 1 4 16 16 1.75 2.5 0.26 0.32 0.07 d 51. c d 53. verified 49. c 7.5 13 0.63 0.30 0.10 55. verified 57. P 21.448 cm; A 27.7269 cm2 T S T S 59. a. S 3820 1960 S 4220 2960 V D £ 2460 1240 § M D £ 2960 3240 § P 1540 920 P 1640 820 b. 3900 more by Minsk 3972.8 2038.4 c. d. 8361.6 5116.8 V £ 2558.4 1289.6 § £ 5636.8 4659.2 § 1601.6 956.8 3307.2 1809.6 4388.8 3078.4 M £ 3078.4 3369.6 § 1705.6 852.8 61. 322,000 19,000 23,500 14,000 4 ; total profit North: $22,000 South: $19,000 East: $23,500 West: $14,000 63. a. $108.20 b. $101 Science 100 101 119 c. c d Math 108.2 107 129.5 First row, total cost for science from each restaurant; Second row, total cost for math from each restaurant. 65. a. 10 b. 20 c. Spanish Chess Writing 33. c
79 50
30 d 19
35. c
Female 32.4 Male c 29.9
21.3 d, 19.5
10.3 9.6
the approximate number of females expected to join the writing club 2n1 0 2n1 n £ 2 1 1 2n 1 § 2n1 0 2n1 69. a 2, b 1, c 3, d 2 71. 0.3211 73. x2 2x 5 67.
Mid-Chapter Check pp. 870–871 1. 3 3, 0.9 2. 2 4, 0 3. 12, 32 5. 1 p 3, 2p 8, p2 6. a. c
13 35
0.8 7. a. £ 0.1 2.1
17 d 9 0.5 0.8 0.3
b. c
2.2 1 § 1.9
4 12
6 d 2
3 b. £ 1.5 6
4. 12, 0, 52
c. c
1.5 0 1.5
5 5
5 d 15
6 3 § 6
1 c. £ 0 0
0 1 0
0 0§ 1
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Student Answer Appendix
8. a. c d. c
32 0
17 5 4 2
33 d 29
13 d 5
b. c
26 2
18 10
24 d 4
24 c. £ 0 16
4 5 § 39
9. used: $80, new: $125
10. c
4375 110 d, 2400 59 P11: total rebates paid by individuals, P21: total rebates paid by business, P12: free AAA years given to individuals, P22: free AAA years given to business
Reinforcing Basic Concepts, p. 871 Exercise 1: P32 Exercise 2: 1st row of A with 3rd column of B 2nd row of A with 2nd column of B Exercise 3: 3 A4 3 A4 3 A4 3 A4
S 3 1; S 3 2; S 3 3; S 3 n;
3B4 3 B4 3B4 3 B4
S1 3 S2 3 S3 3 S n 3; n
4 1 2 5 1 2 15. a. D † 3 2 1 † Dx † 8 2 1 † 1 5 3 3 5 3 4 5 2 4 1 5 Dy † 3 8 1 † Dz † 3 2 8† 1 3 3 1 5 3 D 22, solutions possible b. D 0, Cramer’s rule cannot be used 3 5 1 B A 17. (1, 2, 1) 19. a , , b 21. 10, 1, 2, 32 23. 4 3 3 x3 x2 A A B C B C 25. 27. x1 x2 x3 x x3 x1 A B Bx C A C Dx E 29. 31. 2 2 2 x x2 x1 x x 2 1x 22 2 4 5 4 3 2 1 7 33. 35. 37. x x1 2x 5 x3 x x1 x1 3 4 5 4 1 39. 41. x x1 2x 1x 12 2 4 2x x2 x1 3x 2 5 1 2 43. 45. 2 x2 x x 3 1x 12 2
Exercises 9.3, pp. 881–885
47.
1. diagonal; zeroes 3. identity 5. Answers will vary. 7. verified 9. verified 11. verified 13. verified 2 1 5 1.5 9 9 d 19. verified 21. verified 15. c 1 17. c 5 d 2 0.5 9 18
51.
23.
2 39 £ 13 4 39
1 29. £ 1 2
31.
33. 41. 51.
1 13
0 2 13
10 39 1 3 § 19 39
25.
9 80 1 £ 80 1 20
31 400 41 400 1 100
27 400 3 400 § 17 100
27. c
2 5
63.
3 x 9 dc d c d 7 y 8
65. 69. 71.
2 1 3 49. 320 32 420.5 in2 x1 x3 1x 32 3 8 cm2 53. 27 ft2 55. 19 m3 57. yes 59. no 61. yes, yes, yes 15,000x 25,000y 2900 e ; 6%, 8% 25,000x 15,000y 2700 (1, 1, 2); answers will vary. 67. x2 y2 4x 6y 12 0 B 76.3°, C 54.7°, side c 9.4 in. y 10 1 1 8 ; p , A 3, x 6 2 4 4 2
2 1 x 1 0 1 § £y§ £3§ 1 1 z 3
0.5 0.25 2 4 6 8 10
2 1 4 5 w 3 2 5 1 3 x 4 ≥ ¥ ≥ ¥ ≥ ¥ 3 1 6 1 y 1 1 4 5 1 z 9 (4, 5) 35. (12, 12) 37. no solution 39. 11.5, 0.5, 1.52 no solution 43. 11, 0.5, 1.5, 0.52 45. 1, yes 47. 0, no 49. 1 singular matrix 53. singular matrix 55. 34 57. 7
59. det1A2 5; (1, 6, 9)
1
61. det1A2 0
13 63. A1 c 2 13
5 13 3 d 13
65. singular 67. 31 behemoth, 52 gargantuan, 78 mammoth, 30 jumbo 69. Jumpin’ Jack Flash: 3.75 min Tumbling Dice: 3.75 min You Can’t Always Get: 7.5 min Wild Horses: 5.75 min 71. 30 of clock A; 20 of clock B; 40 of clock C; 12 of clock D 73. p1 72.25°, p2 74.75°, p3 80.25°, p4 82.75° 75. y x3 2x2 9x 10 77. 2 oz food I, 1 oz Food II, 4 oz Food III 79. Answers will vary. 81. a. 45 b. 52 c. 19 d. 4 2 9 1 83. A 125, period 85. x aq, d ´ c , q b 3 2 2
Exercises 9.4 pp. 896–899 1. a11a22 a21a12 3. constant 5. Answers will vary. 2 5 7 5 2 7 7. D ` ` ; Dx ` ` ; Dy ` ` 3 4 1 4 3 1 26 25 , b 13. no solution 9. 15, 92 11. a 3 3
0.25
0.5
x
Summary and Concept Review, pp. 899–901 2. 12, 42
3. (1, 6, 9) 4. (2, 7, 1, 8) 5 5 5. e 1x, y, z2 | x 3y 2, y , z y f 2 2 7.25 5.25 6.75 6.75 d 7. c d 8. not possible 6. c 0.875 2.875 1.125 1.125 1 0 4 2 6 1 0 d 10. c d 11. £ 5.5 1 1 § 9. c 1 7 0 1 10 2.9 7 3 6 4 3 1 § 13. not possible 12. £ 4.5 2 3.1 3 8 12 0 15.5 6.4 17 4 4 § 15. £ 9 17 2 § 16. D 14. £ 2 16 0.4 20 18.5 20.8 13 1. Answers will vary.
17. It’s an identity. 18. It’s the inverse of B. 19. E 20. It is the inverse of F. 21. Matrix multiplication is not generally commutative. 19 25 37 36 31 , b 25. a , , b 22. 18,62 23. 12, 0,32 24. a 35 14 19 19 19 2x 1 91 5 units2 28. 2 26. 11, 1, 22 27. 2 x2 x 3
Mixed Review, pp. 901–902
1. (10, 12) 3. 5 1x, y, z2 |x z 1, y 2z 2, z 6 8 16 10 9 6 7 5. a. c d b. c d 12 0 6 7 1 2
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Student Answer Appendix
7. a. 3
b. 3
c. 4
x 2y z 1 xz3 13. • 2x y z 3 19. 137 m by 82 m
d. 1
9. (9, 3, 2)
10 57 1 33 31 , 31 , 31 2
15.
11. A 1 c
3 d 2
8 5
4
17. A 4.5 units
54321 4
1 2 3 4 5 x
8
21. 128 128i 13
1 16 1. a3, b 2. e 1x, y, z2 ` x 3y , y , z 2 3 1 6 5 1.2 1.2 b 4. a. c d b. c d 3. a2, 1, 3 8 9 1.2 2 2 1 d e. 2 d. c 2.5 1.5 0 0.1 0 0.3 0.06 0.6 0 § b. £ 0.06 0.06 5. a. £ 0.5 0.2 0.8 0.9 0.18 0.24 0.13 0.05 0.52
x 1q, 12 ´ 12, 32
y 8
2
Practice Test, pp. 902–903
0.31 c. £ 0.01 0.39
19.
0.08 0.02 § 0.02
d.
40 17 40 £ 17 35 17
0 10 5
2y 3 f
10 17 10 17 § 30 17
c. c
3 3
1 d 5
17 500
6. (1, 6, 0), (1, 1, 1), (3, 4, 2), answers vary as (2p 1, 5p 6, p) 2 97 18 b 10. (1, 6, 9) 7. a2, b 8. 13, 2, 32 9. a , 3 34 17 6 12. B £ 13 § 13. (1, 4), (2, 1), (4, 1) 11 14. 5 mi2 15. r 2, s 1 16. Dr. Brown owes $31,000; Dr. Stamper owes $124,000 17. 7.5 hr, 15.5 hr 18. 11 one day, 6 two day, 3 five day 19. federal program: $200,000; municipal bonds: $1,300,000; 1 3x 2 2 bank loan: $300,000 20. x3 x 3x 9 11. (1, 1, 2)
CHAPTER 10 Exercises 10.1, pp. 925–927 1. geometry, algebra 3. perpendicular 5. point, intersecting 7. 12, 22; verified 9. 12, 22; verified 11. 1 13 2 , 92; verified 13. 1x 22 2 1y 22 2 52 15. 1x 22 2 1y 22 2 52
Exercise 1: (1, 4, 1)
21.
Cumulative Review Chapters 1–9, pp. 905–906
25.
2 b. x 0, 7 c. x 5, i 12 3 1 3. R 2A 1r2 2 y 5.
31.
d. x 1, 0, 4
35. 39.
6
13 2 25 2 b 1y 92 2 a b 2 2 a. d 13; B, C, E, G; b. 113, 3 4 132, 114, 82; Many others 8 15 Verified, d 23. a. B, C, E; b. Answers will vary. 5 1 Verified 27. y x2 29. 4x2 3y2 48 16 Verified, verified 33. 3x2 y2 3 12 30 4 a. a , b, b. a2, b 37. Verified (both add to 8) 7 7 3 y 1x 321x 32 4 10 x 41. h1x2 8 3 1x 221x 22 6
17. ax 19.
4 2
4 2 2 2
2
4
6
8642 2 4 6 8
8 10 12 x
4
x 2
6
7. a. 1a bi2 1a bi2 2a b. 1a bi21a bi2 a2 1bi2 2 115 a2 b2 9. x 12 3 113 13 139 , cos 11. sin , tan 4 4 3 y2 y1 x2 x1 y2 y1 , b 13. a. m b. a x2 x1 2 2 c. x
b 2b2 4ac 2a
e. A Pert
17. a.
2121 x2 11
b.
y1 2 4 6 8 x
x2
Exercises 10.2, pp. 935–940 1. c2 | a2 b2 | 3. 2a; 2b 5. answers will vary. 7. x2 y2 49 9. 1x 52 2 y2 3 11. 1x 12 2 1y 52 2 25 13. 1x 62 2 1y 52 2 9 15. 1x 22 2 1y 52 2 25 center: (6, 5), r 3 center: 12, 52, r 5 10
y
10
y
r3 (6, 5)
d. d 21x2 x1 2 2 1y2 y1 2 2
15. H3, 18I
4
1. 225 boards at $400 a piece 3. 90,000,000 gal at $3.07 per gallon 5. 1~410.07. ~226.582 or about 227 boards at approximately $410 a piece 7. 13.0442, 8.99642 , or about 90,000,000 gal at approximately $3.04 per gallon 9. 214.5 ft2 of skin, 231.0 ft2 of wood veneer, 516 tension rods, and 498 ft of hoop 11. 955 ft2 of skin, 1021.5 ft2 of wood veneer, 2180 tension rods, and 2129.5 ft of hoop 13. 92,250 gal gasoline, 595,000 lb corn, 227,500 oz yeast, and 134,750 gal water 15. 5 Silver, 9 Gold, and 2 Platinum 17. one bundle of first class 9.25 measures of grain; one bundle of second class 4.25 measures of grain; one bundle of third class 2.75 measures of grain 19. Answers will vary. 21. Answers will vary. 23. Answers will vary. 25. Answers will vary. 27. Answers will vary. 29. Answers will vary. 31. Answers will vary. 33. Answers will vary. 35. Answers will vary.
Strengthening Core Skills p. 905
1. a. x
25. A 2, B 1, C
Modeling With Technology Exercises, pp. 914–917
0.12 0 § 0.48 e.
23. about 3.6 yr
10
10 x
10
r5 (2, 5)
10
x 29 x
2
10
10 x
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Student Answer Appendix 17. 1x 32 2 y2 14 center: (3, 0), r 114 10
41.
1x 32 2 4
y 10
r 3.7
10
1
43.
1x 32 2 25
y
10 x
10
10
(3, 0)
y
10 8 6 4 2 108642 2 4 6 8 10
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
23.
y
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
y2 x2 25. a. 1, (0, 0), a 4, b 2 16 4 b. (4, 0), (4, 0), (0, 2), (0, 2) c.
y
10
(3, 5 √10)
45. 20 47. 20 49. a. (2, 1) b. (3, 1) and (7, 1) d. (2, 3) and (2, 1) e.
2 4 6 8 10 x
y 10
10
10 x
51. a. (4, 3) b. (4, 2) and (4, 8) d. (0, 3) and (8, 3) e.
2 4 6 8 10 x
10 8 6 4 2
b. (0, 4), (0, 4), 13, 02 , (3, 0) c.
108642 2 4 6 8 10
y2 x2 1, (0, 0), a 15, b 12 5 2 b. ( 15, 0), ( 15, 0), (0, 12), (0, 12) c.
29. a.
c. (4, 0) and (4, 6) y 10
10
2 4 6 8 10 x
10 8 6 4 2 108642 2 4 6 8 10
1y 32 2 4 5
1
10
y
10
5 x
(1, 3) (0, 3) 5
33. circle
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
(1, 3) (0, 5)
2 4 6 8 10 x
x
1x 32 2
2 4 6 8 10 x
39.
1x 22 2 16
(2, 3) (6, 1) 5 x
y
1y 22 2 1x 32 2 y2 x2 55. 1 57. 1 36 20 9 25 2 y x2 59. 1, 1 17, 02 16 9 y 61.
y
10
(0, 1)
10 x
5
y
5
53. a. (2, 2) b. (5, 2) and (1, 2) c. (2 13, 2) and (2 13, 2) d. (2, 2 16) and (2, 2 16) e. y 10
5
35. ellipse
10 x
y
5
108642 2 4 6 8 10
(3, 2 √10)
c. (2 121, 1) and (2 121, 1)
10
y
10 x (8, 2)
(2, 2)
10
y2 x2 27. a. 1, (0, 0), a 3, b 4 9 16
10 8 6 4 2
1
y
10 8 6 4 2 108642 2 4 6 8 10
31. ellipse
10
y
10
10 x
10
21.
1y 22 2
(3, 2 √10) (3, 2)
(5, 5) (3, 5)
(1, 5) 10
37. x2
(3, 5 √10)
10
19.
1y 52 2
10
1y 12 2 4
y
(2, 1) 10 x
(2, 1) 10
1y 12 2
4 16 13, 1 2 132
63. A 12 units2 1 69.
(2, 1)
x2 15
2
y2 2
8
1,
65. 27 2.65 ft 2.25 ft
1; 6.4 ft
71.
x2 36
2
67. 8.9 ft 17.9 ft y2
135.252 2
1
73. a 142 million miles, b 141 million miles, orbit time 686 days 75. 90,000 yd2 77. L 8 units; 1315, 42, 13 15, 42, 13 15, 42, 13 15, 42; verified kL 79. Verified 81. R 2 k 0.003 250 d 83. 261.8 mph, heading 26.2°
Exercises 10.3, pp. 950–953 1. transverse
3. midway
5. Answers will vary.
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Student Answer Appendix
7.
9.
y
10
(3, 0)
(2, 0)
10
10
15.
y
6 4 (0, 0) 2
108642 2 4 6 8 10
(6, 0)
21.
y
10 8 (0, 3) 6 4 2
(0, 3)
(0, 0)
108642 2 4 6 8 10
y
10 8 6 4 (0, 2√3) 2
71.
(0, 0) 2 4 6 8 10 x
(0, 2√3)
(0, 6)
85.
(0, 0)
108642 2 4 6 8 10
2 4 6 8 10 x
2 4 6 8 10 x
y2 y2 1x 22 2 x2 1 73. 1 36 28 9 9 2 2 1x 22 2 1y 12 2 y x 1, 1 113, 02 77. 1, 4 by 215 4 9 4 5 2 2 2 a. y 3 2x 9 b. x 1q, 3 4 ´ 3 3, q 2 c. y 2 3 2x 9 40 yd 83. 40 ft y2 x2 1, about 124.1, 602 or 124.1, 602 225 2275
87. a.
1x 42 2
89. a
91.
(0, 6)
14, 22, 12, 22, y 2, 11, 22, x 1 14, 12, 14, 32, x 4, 14, 12, y 1 29. y y 10
75. 79. 81.
y
c. 11, 22 and 17, 22
10 8 6 4 2
2 4 6 8 10 x
108642 2 4 6 8 10
2 4 6 8 10 x
10 8 6 4 2
108642 2 2 4 6 8 10 x 4 6 8 (0, 3) 10
23. 25. 27.
(0, 3) (0, 0)
10864 6 2 2 4 6 8 10
2 4 6 8 10 x
17.
y
10 8 6 4 2
(6, 0) 8
19.
108642 2 4 6 8 10
10 x
10 10
(7, 0)
4 (0, 0) 2
(2, 0)
10
10 x
69. a. 13,22 b. 11, 22 and 15, 22 d. 2a 4, 2b 4 13 e. y
y
10 8
(0, 0)
(7, 0) 6
(3, 0)
13.
11.
y
10
(0, 0)
1 4
1x 22 2 43
1y 32 2 9
1x 42 2
b. 1x 22 2
1y 22 2 0
1
1 5
0
93. 700 cos 65° 295.8, yes
95. b and c
10
(9, 2) (0, 1)
Exercises 10.4, pp. 960–963
10
10 x (0, 1) 10
31.
10
(0, 3)
10
33.
10
10 x
(5, 1)
5, 1 7
y (4, 3)
(2, 1)
10
14
y
(√6, 0)
47.
10
10 x
(2, 2) 10
(5, 2)
10
10 8 6 4 2
108642 2 4 6 8 10
x
y
16 8
8
(0, 7)
4
(16, 3)
(7, 0)
8 16 4 (0, 1)
x
19. x 39, q 2, y 1q, q 2 y
4
4
8
x
4 8
14 12 10 8 6 4 2
2 4 6 8 10 x
4
8
(3, 0) 4 (0, 1)
x
8
17. x 1q, 04 , y 1q, q 2 y
(16, 0)
4 (0, 4)
16 8
8
16
x
4
23. x 1q, 04 , y 1q, q 2 y
21. x 34, q 2, y 1q, q 2 y
10 8 6 4 (0, 2) (4, 0) 2
(0, 0)
c. 12 15, 3 and 12 15, 32
(0, 3)
4
8
8
8
8
8
4 (0, 6)
2 4 6 8 10 x
y
(4, 1) 12
(9, 3) 8
67. a. (0, 3) b. 12, 32 and (2, 3) d. 2a 4, 2b 8 e. y
108642 2 4 6
6
12 (1.25, 10.125)
49. circle 51. circle 53. hyperbola 55. hyperbola 57. circle 59. ellipse 61. 8, 2a 8, 2b 6 63. 12, 2a 16, 2b 12 65. a. (3, 4) b. (0, 4) and (6, 4) c. 13 113, 42 and 13 113, 42 d. 2a 6, 2b 4 e. y
(2, 18)
4
(1, 0)
12 6
(2, 3)
x
8
(3.5, 0)
(4, 3)
16
13. x 34, q 2, y 1q, q 2
12
10 x
(0, 3)
8
16
15. x 1q, 164 , y 1q, q 2
10
(5, 0)
(0, 10) 8
(1, 4)
y
y
8
16 8
2 4 6 8 10 x
6 (0, 7)
(√6, 0) 10
108642 2 (0, 3) 4 6 8 10
6
(0, 2)
10
(1, 0)
(3, 0)
(1, 0)
10 x
(8, 2)
10 x
10
10
10
y
y
16
(0, 0)
10
45.
y
y
10 8 6 4 2
11. x 1q, q 2, y 3 10.125, q 2
y (0, 2)
10 x
4 5, 3
(0, 0)
10
10
(3, 0)
10
10 x
10
41.
(0, 0) (3, 0)
10
10 x (1, 3)
(1, 8)
10
39.
4 5, 3
43.
10
10 x
(2, 1)
10
10
y 6
(1, 2) (6, 1)
10
10
35.
y
10
5, 1 7
37.
1. horizontal; right; a 6 0 3. ( p, 0); x p 5. Answers will vary. 7. x 1q, q2, y 3 4, q2 9. x 1q, q 2, y 318, q 2
(3, 2)
10
y
x
(3, 2)
10 8 6 4 2 (0, 1) 108642 2 2 4 6 8 10 x 4 (1, 0) 6 8 10
108642 2 4 6 8 10
2 4 6 8 10 x
(0, 2)
25. x 36.25, q 2, y 1q, q 2 y
10 8 6 (0, 2) 4 2 108642 2 4
2 4 6 8 10 x
(6.25, 0.5) 6 (0, 3) 8 10
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Student Answer Appendix 27. x 3 21, q2, y 1q, q2
29. x 1q, 11 4 , y 1q, q 2
y 15 (0, 5 21)
15 4 22 12 9 0, 2 6 3
(21, 5) 12
25 15 5 3 6 9 12 15
5
15
15 12963 3 6 9 12 15
25 x
(4, 0)
31. x 1q, q2, y 33, q 2 10 8 (0, 7) 6 4 2 108642 2 4 6 8 10
10 8 6 4 2
(2, 3)
15 12963 2 4 6 8 10
2 4 6 8 10 x
35. x 3 1, q2, y 1q, q2 10 8 6 4 2 20 16 1284 2 4 6 8 10
37.
43.
108642 2 4 6 8 10
49.
53.
10 8 6 4 2 10 6
59.
2 2 4 6 8 10
(0, 4)
y
10 8 6 4 2
(5, 5) 3 6 9 12 15 x
(11, 0)
(5, 5)
108642 2 4 6 8 10
2 4 6 8 10 x
(5, 5)
(5, 5)
y
(4, 2.5)
25
, 25 64 0 1
(19, 0)
1
2
3
4
5 x
(4, 2.5)
39.
41.
y
10
y6
6
2 (0, 0) 20 12 4 2
2 4 6 8 10 x
y 2
4
(0, 0) 12
10 (0, 6)
45.
y x1
x
(0, 0)
9 2
108642 2 4 6 8 10
2 4 6 8 10 x
51.
y 2
55.
y
x 5 (4, 2)
2
6
10 x
y 4
(4, 3)
10 8 6 4 5, 2 0 2
9
( 2 , 0)
108642 2 4 6 8 10
2 4 6 8 10 x
(0, 0)
5
2 4 6 8 10 x 3
y 2
93. 1x 22 2 12 1y 82; p 18 ; 12, 82 97. Answers will vary.
y 5
x2
1.
2.
y
(0, 0) 2 4 6 8 10 x 4
4
8
12
x
4
4
10 8 6
(1, 3) 4
(5, 6) 2 4 6 8 10 x
2 108642 2 4 6 8 10
y
x7
x3 (2, 3) 2 4 6 8 10 x
12
16 x
321 1 2 3 4 5
12
5.
y
8 7 6 5 4 3 2 1
1 2 3 4 5 6 7 x
6.
y
y 4
12 8
8
12 8 1 2 3 4 x
1x 32 2
4
4
4
8
x
4
4
654321 1 2
y
8
8
4.
57.
4 4
8
y
5 4 3 2 1
4
25 x
y 20 (0, 6)
3.
y 8
4
y 8
108642 4 8 12 16 20
99. about 120 days
12
15
95. 18 units2
Mid-Chapter Check, p. 964
(7, 2)
16 12 8 4
89. 14.97 ft, (0, 41.75)
91. y2 5x or x2 5y, 1.25 cm
y
25 15 5 2 4 6 8 10
15 x
47.
y
87. 6 in.; (13.5, 0)
10 8 6 (7, 4) 4 2
(4, 0) 9
10 8 6 4 2
10 8 6 0, 3 2 4 2
108642 2 4 6 8 10
20 x
6
3
y
4
x
4
8 12
1y 12 2
1; D: x 3 5, 1 4; R: y 33, 5 4 4 16 2 2 b. 1x 32 1y 22 16; D: x 31, 7 4; R: y 3 2, 64 c. y 1x 32 2 4 D: x 1q, q2; R: y 34, q2 7. a.
8. (6, 4)
2 4 6 8 10 x
12 10 8 6 4 2
108642 2 4 6 8
(6, 5)
x2 8y 63. y2 16x 65. x2 20y 1y 22 2 121x 22 69. 1x 42 2 121y 72 1x 32 2 81y 22 y2 81x 12 vertex (1, 0) focus (1, 0) 75. 1y 22 2 81x 22 directrix: x 0 endpoints (4, 6) and (4, 2) 61. 67. 71. 73.
2 4 6 8 10 x
83. 16 units2
(2, 3)
4 8 12 16 20 x
15 12 (5, 5) 9 6 3 108642 3 6 9 12 15
(4, 3)
x 64
y
3 2 4 6 8 10
(3, 5)
108642 2 4 6 8 10
2 4 6 8 10 x
81. 7.3/23
y
(1, 3)
10 8 6 (4, 2) 4 2 15 9
85.
y
10 8 6 4 (1, 0) 2
(11, 2) 4 22 2
y
10 8 6 (3, 5) 4 2
(4, 3)
108642 2 (4, 3) 4 6 8 10
y
10 8 6 4 (0, 2) 2 108642 2 (0, 0) 4 6 8 10
0,
79. 7.3/21
y
10 8 6 4 2
(4, 3)
(3, 0) 3 6 9 12 15 x
33. x 3 2, q 2, y 1q, q 2
y
16 77. 7.3/19 1 2555 3 , 3 2
9 6 3 (0, 5 21)
y
y2 x2 9. 16 4 1
y
10. yes, distance d 49 mi
(6, 4) 2 4 6 8 10 x
Reinforcing Basic Concepts, pp. 964–965 1.
2.
1x 22 2
12 a b 5 1x 12 2 2
a
5 17 b 14
2
1y 32 2
2 2 a b 3 1y 22 2
a
5 13 b 12
2
1a
12 2 ,b 5 3
1a
513 5117 ,b 14 12
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3.
Student Answer Appendix
1x 32 2 7 a b 2
2
1y 12 2
2
6 a b 5
10 8 6 (3, 2.2) 4 2
(6.5, 1)
108642 2 (3, 0.2)4 6 8 10
4.
1x 32 2
a
2
415 b 3
(6, 1)
7 6
2 4 6 8 10 x
108642 2 4 6 8 10
2 3
3 4
59.
3 4
5 4 3 2 1
5 4 4 3
5 6
9 a b 2
3 4
61.
(0.5, 1)
2
10 8 6 4 2
5 6
y
1y 12 2
(3, 1)
57.
6 7 1; a , b 2 5
6
5 6
11 6
7 6
7 5 4 3
2 3
6
5 4 3 2 1
5 4 4 3
63.
3 4
5 4 3 2 1
3 4
2 3
3 4
5 6
7 5 4 3
2 3
3 4
6
3
5 4 3 2 1
(2.5, 150)
11 6
4
6
(2.5, 30)
(2.5, 60) 7 6
415 9 1; a 3, b 3 2 65.
5 6
y
(0, 1)
7 6
2 4 6 8 10 x
11 6
5 4 4 3
3 4
6
2 3
5 4 3 2 1
5 6
3 4
6
5 6
11 6
7 6
7 5 4 3
2 3
6
3 4
(5, 90)
2 3
5 6
3 4
7 5 4 3 3 4
5 4 3 2 1
6
11 6
5 4 4 3
71.
3 4
5 4 3 2 1
11 6
5 4 4 3
67.
3 4
5 4 4 3
69.
7 6
7 5 4 3
7 5 4 3
2 3
3 4
5 4 3 2 1
6
Exercises 10.5, pp. 975–978 1. polar 3. II; IV 5. To plot the point 1r, 2 start at the origin or pole and move r units out along the polar axis. Then move counterclockwise an angle measure of . You should be r units straight out from the pole in a direction of from the positive polar axis. If r is negative, final resting place for the point 1r, 2 will be 180° from . 2 2 2 7. 9. 11. 3 3 3 3 3 3 5 6
7 6
3 4
4
5 P 4 3 2 1
5 6
3 4
5 6
11 6 7 5 4 3
5 4 4 3
13.
6
2 3
5 4 3 2 1
3 4
P
7 6
3 4
5 4 3 2 1
P
4
6
5 6
11 6 7 5 4 3
5 4 4 3
7 6
3 4
5 4 4 3
5 4 3 2 1
4
7 6
73. 5 6
6
77. a
15. a4, 23. 25. 27. 39. 43. 49. 53.
b 2
7 6
3 4
5 4 4 3
5 4 3 2 1
4
6
11 6
7 5 4 3
5 4 3 2 1
3 4
75. 6
5 6
7 5 4 3
3 4
2 3
3 4
5 4 3 2 1
6
11 6 7 5 4 3
5 4 4 3
7 6
11 6
5 4 4 3
7 5 4 3
4 13 312 4 3 12 , b; 13 12, 3 122; 14 13, 42; yes 2 2
3 4
2 3
10 8 6 4 2
3 4
6
81. r 4 cos152 5 6
3 4
2 3
5 4 72 3 2 1
144
3 4
6
4
b 4
2 3 21. a4 12, b b 3 4 5 7 11 a312, b, a3 12, b, a3 12, b, a3 12, b 4 4 4 4 5 7 17 a2, b, a2, b, a2, b, a2, b 6 6 6 6 C 29. C 31. D 33. B 35. D 37. (8, 180°) or 18, 2 1412, 45°2 or a4 12, b 41. 110, 45°2 or a10, b 4 4 113, 247.4°2 or 113, 4.31762 45. 1412, 4 122 47. 12 12, 2 122 5 12 5 12 1 13, 12 51. a , b 2 2 2 2 55. 3 3 3 3 5 6
17. a412,
2 3
3 12 413 3 12 4 , b 2 2 79. r 4 4 cos
11 6 7 5 4 3
5 4 4 3
3 4
11 6
5 4 4 3
Ma
5 6 7 6
7 6
7 5 4 3
Open dot 7 6
6
P 11 6 7 5 4 3
11 6
5 4 4 3
19. a8,
5 6
7 6
3 4
5 4 4 3
5 4 3 2 1
4
6
11 6
7 5 4 3
7 6
11 6 7 5 4 3
5 4 4 3
83. r2 16 cos122 5 6
3 4
2 3
5 4 3 2 1
3 4
6
7 6
216 288
5 4 4 3
11 6
7 5 4 3
85. r 4 sin 4
2
6
2 7 6
5 4 4 3
11 6
7 5 4 3
87. a; this is a circle through 16, 0°2 symmetric about the polar axis 89. g; this is a circle through a6, b symmetric about . 2 2 91. f; this is a limaçon symmetric about with an inner loop. 2 Thus a 6 b. 3 b. 93. b; this is a cardioid symmetric about through a6, 2 2 2 2 95. r 7200 sin122 97. r 15 cos152 or r 15 sin152 99. ; ; ; Answers will vary.
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Student Answer Appendix 101. Consider r a 1cos122 and r a 1cos122 ; both satisfy r2 a2cos122. Thus, 1r, 2 and 1r, 2 will both be on the curve. The same is true with a1sin122 and a 1sin122. 103. 9 units2 105. 3y2 x2 12y 9 0 2 5 , , 107. t 0, 3 3 109. D: x 3 5, 22 ´ 12, 5 4 y 5 R: y 33, 22 ´ 546 4
49. ellipse 7 2 12 3 3 4 5 6 11 (5, ) 12 13 12 7 6
2
B AC
3. invariants
1 2 3 4 5 x
5. Answers will vary.
2
Y X 1 9. 6 3 12 X, 6 312 Y 8 8 512 5 12 X, Y 13. 0 x, 4 y 11. 2 2 y2 3 13 3 x2 2 x; 213 y 17. xy 13 9 15. 2 2 2 2 2 2 19. 4X 2Y 9 21. a. 3X2 Y2 2 23. a. 4X2 Y2 8 b. b. y y 7.
Y
X
Y
3.2 1 0.8 cos
12 23 12
5 4 4 3 17 12
11 7 6 5 4 19 3 12
4 7.5 55. r 1 cos 1 1.5 sin r 1/22 12 2 A 2 57. a. r b. and 2 cos 3 sin r 102 3 B 3 59. Jupiter: e 0.0486, Saturn: e 0.0567 61. about 2757.1 million miles 63. Saturn: e 0.0567 482.36 1780.77 65. r 67. r 1 0.0486 cos 1 0.0457 cos 69. In millions of miles (approx): JS: 405.3, JU: 1298.4, JN: 2310.3, SU: 893.1, SN: 1905.0, UN: 1011.9 0.7638 0.2864 71. r 73. r 1 0.7862 cos 1 0.7862 cos 3 75. $582.45; $445.94; $881.32; $97.92 77. y 1 cos 79. verified 81. Answers will vary 83. r 12 cosa b 6 12 1cos sin 2 4 85. 425X2 416Y2 400 0 87. (0, 0), (4, 0), (4, 4), (0, 4) 89. x 29.0 91. 9.2 mph at heading 347.7°
Exercises 10.6, pp. 989–994 1. rotation of axes;
(1, 2 ) ( 59 , 0)
51. r
53. r
3 2 1
54321 1 2 3 4 5
5 12 3 4 6
X
Exercise 10.7, pp. 1002–1006 45
45
vertices: √6, 0 3
vertices: (0, 2√2)
x
x
foci: (0, √6) minor axis endpoints: (√6, 0)
foci: 2√10, 0 3 asymptotes: Y √3X
25. a. Y2 4X2 16 b. y
27. a. Y2 4X 0 b. y
X
3
3
X
Y
1
x
3
Y x
60
x
60
vertices: (4, 0)
9. a. parabola b. y x 2 1x 1
vertex: (0, 0)
foci: (2√5, 0)
foci: (1, 0)
asymptotes: Y 2X
directrix: X 1
29. a. X 4Y 25 b. y 2
1. parameter 3. direction 5. Answers will vary. 7. a. parabola with vertex at (2, 1) y b. y x2 4x 3
ᏸ
y
2
X
x
Y 60
x
vertices: (5, 0) foci: 5√3, 0 2 minor axis 0, 5 endpoints: 2
3 7 4 31. 336 7 0; hyperbola; cos122 ; cos ; sin 25 5 5 33. a. parabola b. 45°; 2Y2 5 c. verified 9 5Y2 2X 2 13Y 1 35. a. circle or ellipse b. 60°; X2 2 2 (ellipse) c. verified 37. f 39. g 41. h 43. parabola 45. ellipse 47. hyperbola 7 2 12 3 3 4 5 6 11 12 13 12 7 6
(4, 5 4 4 3 17 12
5 12 3 4 6
(1, 2 )
(2, 0)
12
23 12 11 7 6 5 4 19 3 12
7 6)
7 2 12 3 3 4 5 6 11 (2 2 , 5 ) 3 6 12 13 12 7 6
5 12 3 4 6
(2, 0) (1
5 4 4 3 17 12
12
23 1 3 3 , 2 ) 12
11 7 6 5 4 19 3 12
7 2 12 3 3 4 5 6 11 12
(1, 0)
13 12 7 6
5 12 3 4 6
11. a. power function with p 2 25 b. y 2 , x 0 x (2, 6.25)
y (2, 6.25) 6
(5, 1) 5
(5, 1) 2
2
5 x
6
13. a. ellipse y2 x2 b. 1 16 9
y (0, 3)
12
(4, 0)
(⫺3, )
23 12 11 (1.5, 5 3 ) 7 6 5 4 4 5 4 19 3 3 17 12 12
(4, 0)
x (0, 3)
SA59
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Student Answer Appendix
15. a. Lissajous figure 1 x b. y 6 cos c sin1a b d 2 4
33. a. y 6
4
4
x
6
17.
y
b. no x-intercepts; y-intercept is t 0, x 0, y 2; no minimum or maximum x-values; minimum y-value is 2; maximum y-value is 4
10
10
10 x
35. a.
10
1 19. x t, y 3t 2; x t, y t 2; x cos t, y 3 cos t 2 3 21. x t, y 1t 32 2 1; x t 3, y t2 1; x tan t 3, 12k 12 y sec2t, t ,k 2 23. x t, y tan2 1t 22 1, t k 2, k ; x t 2, 2 1 2 1 y sec t, t ak b, k ; x tan t 2, y t2 1 2 25. verified
b. x-intercepts: t 0, x 4, y 0 and t , x 4, y 0; 3 , x 0, y 8; y-intercepts: t , x 0, y 8 and t 2 2 minimum and maximum x-values are approx. 5.657; minimum and maximum y-values are 8 37.
27. a.
b. x-intercepts: t 0, x 10, y 0 and t , x 6, y 0; y-intercepts: t 1.757, x 0, y 6.5 and t 4.527, x 0, y 6.5; minimum x-value is 8.1; maximum x-value is 10; minimum y-value is 9.5; the maximum y-value is 9.5
width 12 and length 16; including the endpoint t 2, the graph crosses itself two times from 0 to 2. 39.
29. a.
width 10 and length 14; including the endpoint t 2, the graph crosses itself nine times from 0 to 2. 41. b. x-intercepts none, y-intercepts none; no minimum or maximum x-values; minimum y-value is 4 and maximum y-value is 4 31. a.
width 20 and length 20; including the endpoint t 4, the graph crosses itself 23 times from 0 to 4. b. x-intercepts: t 0, x 2, y 0 and t 4.493, x 9.2, y 0; infinitely many others; y-intercepts: t 2.798, x 0, y 5.9 and t 6.121, x 0, y 12.4; infinitely many others; no minimum or maximum values for x or y
43. The maximum value (as the graph swells to a peak) is at b 1x, y2 aa, b. The minimum value (as the graph dips to the valley) 2 b b. is at 1x, y2 aa, 2
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Student Answer Appendix 3 3 , but cot a b is 2 2 undefined, and the trig form seems to indicate a hole at 3 t , x 0, y 2. The algebraic form does not have this 2 problem and shows a maximum defined at t 0, x 0, y 2. b. As t S q, y1t2 S 0 c. The maximum value occurs at (0, 2k).
45. a. The curve is approaching y 2 as t approaches
47. a. Yes
c. 0.82 ft
b. Yes
16.
y 1
The parametric equations fit the data very well. 59. Answers will vary. 63.
20.
61. by 25%
654321 2 4 6 8 10
1 2 3 4 x
22.
1. verified (segments are perpendicular and equal length) 2. x2 1y 12 2 34 3. verified 4. verified 5. 6. 7. y y 10 8 6 4 2
10 8 6 4 2
10 8 6 4 2
108642 2 4 6 8 10
108642 2 4 6 8 10
108642 2 4 6 8 10
2 4 6 8 10 x
9.
y
5 4 3 2 1 54321 1 2 3 4 5
11. a.
2
12.
y x 1 169 25
1x 22
2
25 5 4
2
y 3 x
23.
y5 (0, 0)
4
8
x
8
15
9
10 x
(10, 5)
10
(0, 5) (10, 5)
y 2
(4, 0)
5 4 3 2 1
(8, 2)
5432 1 2 3 4 5
15 x
1 2 3 4 5
27. 6 4 2 2 4 6 8
6 4 2 2
2
4
6
4 6
2 4 6 8
29. Y2 2Y 2X 6 0 7 1Y 12 2 2aX b 2
3 3
12
9
20
15
y
30. 5X2 Y2 80 0 X2 Y2 1 16 80 y X
X Y
ᏸ 60
45
1
x
15
3 20 x
10
25.
y
(4, 2)
8 6 42 2 4 6 8
4
4 12
y
(0, 2)
(0, 2)
8 6 42 2 4 6 8
4
9
4
10
8 6 4 2
12
20 12 4 4
(0, 2)
108642 2 2 4 6 8 10 x 4 6 (0, 2) 8 10
16 3
y
y
10 8 6 4 2
(4, 0)
8 6 4 2
y
15.
1 21.
2 4 6 8 101214 x
y y
x2 1 9
10
Y
20
4 3
Y
14.
16
26.
8
1 2 3 4 5 6 7 x
25 x
28.
1 13.
8
2
10
15
2 4 6 8 10 x
(7, 1)
4
y 3x
10 8 6 (6, 0) 4 2
2 4 6 8 10 x
4
(2, 1)
1y 22 2
y2
(8, 2)
2
4
b.
(5, 2)
24.
15
2 4 6 8 10 x
y2 x2 1 225 64
y
5
y2 x2 1 9 16
y
108642 2 2 4 6 8 10 x 4 (6.25, 0.5) 6 8 (0, 3) 10
y
y2 x2 1 25 9
y x 1 400 144
(2 21, 1)
2 1
321 1 2 3 4 5
10.
y
2
2
b.
2 4 6 8 10 x
y
(2 21, 1) 3 (3, 1)
1y 12
10 8 6 4 2 108642 2 4 6 8 10
1 2 3 4 5 x
2
15
642 2 4 6 8 10
Summary and Concept Review, pp. 1006–1010
8.
20
10 8 6 (2, 2) 4 2
(6, 1)
25 15 5 3
20 x
9
9
5
12
12
1x 52 2
y
10 8 6 4 2
4
10 8 6 4 2
19. a.
y
3
20 12 4 4
108642 2 4 6 8 10
5 x
9
4
51. The electron is moving left and downward. 6t 6 13t 21 , b 55. Inconsistent, no solutions 53. at, 17 17 17 17 57. x 1.22475t y 0.25t2 2t
15
12 (0, 1)
18.
49. No, the kick is short.
17.
y
20
3
9
15 x
vertex: 7 , 1 2 foci: (3, 1) y-intercepts: (0, √7) and (0, √7 1)
vertices: (4, 0) foci: (4√6, 0) asymptotes: Y √5X
x
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Student Answer Appendix
31. ellipse, e 23 ;
32. hyperbola, e 32 ;
10 8 6 4 2 108642 2 4 6 8 10
33. parabola, e 1;
4 2
17. parabola
5 4 3 2 1
10 8 6 4 2 2 4 6 8 10
13. hyperbola; center (3, 3); a 5, b 2, c 129 vertices (8, 3), 12, 32 ; foci 13 129, 32, 13 129, 32, 12.39, 32, 18.39, 32 ; asymptotes y 25 x 95 , y 25 x 21 5 15. ellipse; center (2, 3); a 1, b 7, c 4 13 vertices 12, 42, 12, 102 ; endpoints of minor axis 13, 32, 11, 32 ; foci 12, 3 4 132, 12, 3 4 132, 12, 3.932, 12, 9.932
10864 2 4 6 8 10
5432 1 2 3 4 5
2 4 6 8 10
1 2 3 4 5
de with e 0.0935 and d 1501.1; focal cord: 1 e cos 280.82 million miles y2 x2 1 35. y 21x 42 2 3 36. y 11 1x2 2 37. 9 16 34. r
4 2 8
6
4 2
2 4 6 8 10 12 14 16
y
10
y
y
8 2 x
6 4
4
2
2 2
2
2
4
6
8
x
4
10 x
2
4 2
4
129631 3 6 9 12 15 18 x 2
8
Mixed Review, pp. 1010–1011 1. circle, center: (0, 0); r 16
4
2
2 4 6
4
x
(2, 4) y 16 14 12 10 8 6 4 2
2 4 6 8 1012 14 16 x
Practice Test, pp. 1011–1012 (√6, 0) 1 2 3 4 x
4 3 2 1 1 2 3 4
7. parabola; p 0.125 vertex 12.5, 27.52; focus 12.5, 27.3752; directrix y 27.625; y-intercepts: approx. 16.2, 02 , (1.2, 0)
2
10 8 6 4 2
y
4 3 2 1
(√6, 0)
5. hyperbola; center 11, 22; a 6, b 2, c 2 110 vertices 15, 22, 17, 22; foci 11 2110, 22, 11 2110, 22; asymptotes: y 13 x 73 , y 13 x 53
y
(2, 10)
2 2 b. (0, 2), a2 12, b, a2 12, b 3 3 21. x 50 cos t; y 30 sin t 23. a. elliptic; 0.494 million miles b. parabolic; 3.1 million miles 25. 12x2 26xy 12y2 160,000
x
4
3. hyperbola; center (0, 0); a 5, b 3, c 134; vertices (0, 5), 10, 52; foci 10, 1342, 10, 1342; asymptotes y 53 x, y 53 x
(≈8.4, 3)
19. a. (2, 5), 12, 52, 12, 52, 12, 52
8
2
y 2x5 95
4
y
4
y
8 7 6 5 4 (≈2.4, 3) 3 2 1 (3, 3)
42 2
38. Answers will vary. 39. x 34, 44 : y 3 8, 8 4
9. parabola; p 0.25 vertex (2, 1); focus (2.25, 1); directrix x 1.75; y-intercepts: none
4
2
y 2x5 215
1. c 2. d 3. b 4. a 5. circle; center 12, 52; radius 3
y x
(2, 2) 3 (1, 5)
y
y
10 8 6 4 (0, 5) 2
5x 3
y
5x 3
54321 1 2 3 4 5 x 2 4 (0, 5) 6 8 10
x
5
y , , 8 4
(5, 2)
(2, 8)
6. ellipse; center 12, 12; vertices 12, 42, 12, 62; foci 12, 1 1212, 12, 1 1212
y , ,
2
4
8
12 x (7, 2)
2
y 27.625 30
7. ellipse; center 1 40 9 , 02; vertices 80 1 10 9 , 02 , (10, 0); foci (0, 0), 1 9 , 02
y
27 24 21 18 15 (0, 15) 12 9 6 (6.2, 0)3 (1.2, 0) 876543213 1 2 3 4 x 6
8. parabola; vertex 11.2, 02; focus (0, 0); directrix at y 2.4
y x 1.75 (3, 0) 1 2 3 4 5 6 7 8 x
(2.25, 1)
y
5
(0, 2)
(4, 2) (4, 0)
4 2
(2, 5.6) (2, 1)
(4, 1)
(0, 1)
(2, 3.6)
7
8
11. parabola; p 2 vertex (4, 0); focus (4, 2); directrix y 2; x-intercept (4, 0)
y
x x
6
21 1 2 3 4 5 6
(2, 6) Focal chord
y
4
4 (1, 2)
4 3 2 1
(5, 5)
(2, 5)
2 4 6 8 10 12 x
y 2
9. hyperbola; center: 12, 32; vertices: (2, 0), 12, 62; foci: 12, 82, (2, 2); asymptotes: 3 y 34 x 92 , y 3 4 x 2
(2, 4)
10 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10
10 8 6 4 2 108642 2 4 6 8 10
6 4 2
2 4 6 8 10
y
8642 2 4 6 8 1012 x 2 4 6 8 10 12 14
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Student Answer Appendix 10. hyperbola; center 11, 22; vertices 14, 22, 16, 22; foci 11 129, 22, 11 129, 22, 14.39, 22, 16.39, 22; asymptotes: y 25 x 85 , y 25 x 12 5
11. parabola; 36.87°; cos 45 , sin 12. Y
25 2 16 X
3 4X
15.
y 4 3 2 1 12 8 10 642 1 2 4 6 8 1012 x 2 3 4 5 6 7 8
6 4
(7, 3)
2 (3, 1) 2
4
6
8
10 x
2
17. horizontal asymptote: y 0 vertical asymptotes: x 3, x 3, x-intercept: (2, 0); y-intercept: 10, 29 2
3 5
11 20
y 8
y
x 3
y x3
4 2
) ,0 0.4 (
6 4 2
Y
5
6
(2, 0) 2
4
6 x
2 4 6
(0.24, 0.64)
x
(0.88, 0) X
13.
14. 4 2 2
2
4
6
12 8 4
6
16. ellipse;
2
(0, 0)
2 6 4 2 2
4 8 12
4
4
4
4 8 12
2 2
4
6
y 5 4 3 2 1 54321 1
10 9 8 7 6 5 4 3 2 1
10
21. center 11, 22 ; foci 11 2 110, 22 17.32, 22,
y 2
y
1 3x
7 3,
y
13 x
16 8
8
16
x
2
5 3
4
(1, 2)
23.
y
5 4 3 2 1 54321 1 2 3 4 5 2 3 4 5
25. 61.9° 27. 13, 42 , (3, 4), 13, 42, 13, 42 2x 1 3 1 29. 2 2 x x x 1
y
4 2
19. a. 1313 , 513 2, 12, 02
8 x
6
8 6
2 4
6
4
21 1 2 3 4 5 6 7 8 9 10 x 2
18. max: y 8; min: y 0; P 8
4
11 2 110, 22 15.32, 22 ; asymptotes
1 2 3 4 5 x
2 3 4 5
17. parabola; x 1y 52 2 1
2 2
6
4
y2 x2 1 16 25
y
x 1
6
12 8 4
6
6 4 2
19.
15.
24
48
72
x
b. a
12 8 12 8 , b, a , b A 5 A5 A5 A5 165411 0.9672 2 8 12 8 12 a , b, a , b 20. r A 5 A5 A5 A5 1 0.967 cos e is very close to 1. This makes its orbit a very elongated ellipse, where the orbit of most planets is nearly circular. 21. The ball is 0.43 ft above the ground at x 165 ft, and will likely go into the goal. 22. Perihelion: 128.41 million miles Aphelion: 154.89 million miles 23. y 1x 12 2 4; D: x R; R: y 3 4, q 2 ; focus: (1, 3.75)
24. 1x 12 2 1y 12 2 25; D: x 3 4, 6 4 ; R: y 34, 6 4 1x 22 2 1y 12 2 1; D: x 35, 1 4 ; R: y 3 4, 6 4 25. 9 25
Strengthening Core Skills, pp. 1013–1015 Exercise 1: Yes, the calculations are much “cleaner” with the right triangle definitions.
Cumulative Review Chapters 1–10, pp. 1015–1016 1. x 7, x 1 is extraneous 3. x 6 5. x 4 5 9. x 61.98° 360°k; k Z; k, k Z 7. 6 x 118.02° 360°k; k Z 11. about 24.7 pesos/kg 13. The formation is 1152.4 yd wide
CHAPTER 11 Exercise 11.1, pp. 1024–1026 1. pattern; order 3. increasing 5. formula defining the sequence uses the preceding term(s); answers will vary. 7. 1, 3, 5, 7; a8 15; a12 23 9. 0, 9, 24, 45; a8 189; a12 429 1 2 3 4 8 12 11. 1, 2, 3, 4; a8 8; a12 12 13. , , , ; a8 ; a12 2 3 4 5 9 13 1 1 1 1 1 1 1 1 1 1 1 15. , , , ; a8 17. 1, , , ; a8 ; a12 ; a12 2 4 8 16 256 4096 2 3 4 8 12 1 1 1 1 1 1 19. , , , ; a8 ; a12 2 6 12 20 72 156 21. 2, 4, 8, 16; a8 256; a12 4096
23. 79
25.
1 5
27.
1 32
1 10 29. 1 11 31. 36 33. 2, 7, 32, 157, 782 35. 1, 4, 19, 364, 132,499 10 2 37. 64, 32, 16, 8, 4 39. 336 41. 36 43. 28 45. 21 , 13 , 14 , 15 1 1 1 47. 13 , 120 49. 1, 2, 92 , 32 51. 15 53. 64 55. 137 , 15,120 , 3,991,680 3 60
57. 10
59. 95
61. 4
6
71.
112 n
n 2
n1
79. 35
81. 100
5
73.
63. 15
1n 32
n1
65. 50 3
n2 75. n1 3
67.
5
27 112
69. 7
n 77. n 2 n3
14n2
n1
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Student Answer Appendix
83. 35 85. an 600010.82 n1; 6000, 4800, 3840, 3072, 2457.60, 1966.08 87. 5.20, 5.70, 6.20, 6.70, 7.20, $13,824 89. 2690 3 7 91. verified 93. approaches 12 95. , 4 4 97. A 53.1°, B 90°, C 36.9°
Exercise 11.2, pp. 1031–1033 1. common; difference
3.
n1a1 an 2
; nth 5. Answers will vary. 2 7. arithmetic; d 3 9. arithmetic; d 2.5 1 11. not arithmetic; all prime 13. arithmetic; d 24 2 15. not arithmetic; an n 17. arithmetic; d 6 19. 2, 5, 8, 11 21. 7, 5, 3, 1 23. 0.3, 0.33, 0.36, 0.39 25. 32 , 2, 25 , 3 27. 34 , 58 , 12 , 38 29. 2, 5, 8, 11 31. a1 2, d 5, an 5n 3, a6 27, a10 47, a12 57 33. a1 5.10, d 0.15, an 0.15n 4.95, a6 5.85, a10 6.45, a12 6.75 33 39 35. a1 32 , d 34 , an 34 n 34 , a6 21 4 , a10 4 , a12 4 37. 61 39. 1 41. 2.425 43. 9 45. 43 47. 21 49. 26 472 51. d 3, a1 1 53. d 0.375, a1 0.65 55. d 115 126 , a1 63 57. 1275 59. 601.25 61. 534 63. 82.5 65. 74.04 67. 21022 69. S6 21; S75 2850 71. at 11 P.M. 73. 5.5 in.; 54.25 in. 75. 220; 2520; yes 1 77. a. linear function b. quadratic 79. A 7, P 6, HS: unit right, 2 1 13 VS: 10 units up, PI: t 6 . 81. f 1x2 4ax 972, 1364 2 2
Exercises 11.3, pp. 1040–1043 1. multiplying 3. a1r n1 5. Answers will vary. 7. r 2 9. r 2 11. an n2 1 13. r 0.1 15. not geometric; ratio of terms decreases by 1 17. r 25 19. r 12 21. r 4x 240 3 23. not geometric; an 25. 5, 10, 20, 40 27. 6, 3, 3 2 ,4 n! 29. 4, 413, 12, 12 13 31. 0.1, 0.01, 0.001, 0.0001 33. 38 35. 25 4 1 1 37. 16 39. a1 27 , r 3, an 27 132 n1, a6 9, a10 729, a12 6561 1 1 41. a1 729, r 13 , an 7291 13 2 n1, a6 3, a10 27 , a12 243 43. a1 12 , r 12, an 12 1 122 n1, a6 2 12, a10 812, a12 16 12 45. a1 0.2, r 0.4, an 0.210.42 n1, a6 0.002048, a10 0.0000524288, a12 0.000008388608 47. 5 49. 11 51. 9 32 53. 8 55. 13 57. 9 59. r 23 , a1 729 61. r 32 , a1 243 63. r 32 , a1 256 65. 10,920 67. 3872 81 27 143.41 69. 2059 71. 728 73. 85 75. 1.60 8 257.375 8 10.625 31,525 83. 521 85. 3367 77. 1364 79. 2187 14.41 81. 387 512 0.76 25 1296
87. 14 1512 89. no 91. 27 93. 125 95. 12 97. 4 99. 31 7 3 3 18 101. 2 103. 5 105. 1296 107. about 6.3 ft; 120 ft 109. $18,841.60; 10 yr 111. 125.4 gpm; 10 months 113. about 347.7 million 115. 51,200 bacteria; 12 half-hours later (6 hr) 3 117. 0.42 m; 8 m 119. 35.9 in ; 7 strokes 121. 6 yr 111 5 123. Sn log n! 125. x i 127. y 10 2 2 8 6 4 2 108642 2 4 6 8 10
2 4 6 8 10 x
Exercises 11.4, pp. 1049–1051 1. finite; universally 3. induction; hypothesis 5. Answers will vary. 7. an 10n 6 a4 10142 6 40 6 34; a5 10152 6 50 6 44; ak 10k 6; ak1 101k 12 6 10k 10 6 10k 4
9. an n a4 4; a5 5 ; ak k; ak1 k 1 11. an 2n1 a4 241 23 8; a5 251 24 16; ak 2k1; ak1 2k11 2k 13. Sn n15n 12 S4 415142 12 4120 12 41192 76; S5 515152 12 5125 12 51242 120; Sk k15k 12; Sk1 1k 12151k 12 12 1k 1215k 5 12 1k 1215k 42 n1n 12 15. Sn 2 4152 414 12 S4 10; 2 2 515 12 5162 S5 15; 2 2 k1k 12 Sk ; 2 1k 121k 1 12 1k 121k 22 Sk1 2 2 17. Sn 2n 1 S4 24 1 16 1 15; S5 25 1 32 1 31; Sk 2k 1; Sk1 2k1 1 19. an 10n 6; Sn n15n 12 S4 415142 12 4120 12 41192 76; a5 10152 6 50 6 44; S5 515152 12 5125 12 51242 120; S4 a5 S5 76 44 120 120 120 Verified n1n 12 21. an n; Sn 2 414 12 4152 10; S4 2 2 a5 5; 515 12 5162 15; S5 2 2 S4 a5 S5 10 5 15 15 15 Verified 23. an 2n1; Sn 2n 1 S4 24 1 16 1 15; a5 251 24 16; S5 25 1 32 1 31; S4 a5 S5 15 16 31 31 31 Verified 25. an n3; Sn 11 2 3 4 S1 12 13 S5 11 2 3 4 52 2 152 225 1 8 27 64 125 225
# # #
n2 2
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Student Answer Appendix S9 11 2 # # # 92 2 452 2025 1 8 # # # 729 2025 n1n 12 2 n2 1n 12 2 c d 2 4 27. 1. Show Sn is true for n 1. S1 111 12 1122 2 Verified 2. Assume Sk is true: 2 4 6 8 10 # # # 2k k1k 12 and use it to show the truth of Sk1 follows. That is: 2 4 6 # # # 2k 21k 12 1k 121k 22 Sk ak1 Sk1 Working with the left hand side: 2 4 6 # # # 2k 21k 12 k1k 12 21k 12 k2 k 2k 2 k2 3k 2 1k 121k 22 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n. 29. 1. Show Sn is true for n 1. 511211 12 5122 S1 5 2 2 Verified 2. Assume Sk is true: 5k1k 12 5 10 15 # # # 5k 2 and use it to show the truth of Sk1 follows. That is: 51k 121k 1 12 5 10 15 # # # 5k 51k 12 2 Sk ak1 Sk1 Working with the left hand side: 5 10 15 # # # 5k 51k 12 5k1k 12 51k 12 2 5k1k 12 101k 12 2 1k 1215k 102 2 51k 121k 22 2 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n. 31. 1. Show Sn is true for n 1. S1 112112 32 5 Verified 2. Assume Sk is true: 5 9 13 17 # # # 4k 1 k12k 32 and use it to show the truth of Sk1 follows. That is: 5 9 13 17 # # # 4k 1 41k 12 1 1k 12121k 12 32 Sk ak1 Sk1 Working with the left hand side: 5 9 13 17 # # # 4k 1 4k 5 k12k 32 4k 5 2k2 3k 4k 5 2k2 7k 5 1k 1212k 52 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n.
SA65
33. 1. Show Sn is true for n 1. 3131 12 313 12 3122 S1 3 2 2 2 Verified 2. Assume Sk is true: 313k 12 3 9 27 # # # 3k 2 and use it to show the truth of Sk1 follows. That is: 3 9 27 # # # 3k 3k1 313k1 12 2 Sk ak1 Sk1 Working with the left hand side: 3 9 27 # # # 3k 3k1 313k 12 3k1 2 313k 12 213k1 2 2 3k1 3 213k1 2 2 313k1 2 3 2 313k1 12 2 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n. 35. 1. Show Sn is true for n 1. Sn 2n1 2 S1 211 2 22 2 4 2 2 Verified 2. Assume Sk is true: 2 4 8 # # # 2k 2k1 2 and use it to show the truth of Sk1 follows. That is: 2 4 8 # # # 2k 2k1 2k1 2 Sk ak1 Sk1 Working with the left hand side: 2 4 8 # # # 2k 2k1 2k1 2 2k1 212k1 2 2 2k2 2 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n. 37. 1. Show Sn is true for n 1. n Sn 2n 1 1 1 1 S1 2112 1 21 3 Verified 2. Assume Sk is true: 1 1 1 1 k # # # 3 15 35 12k 12 12k 12 2k 1 and use it to show the truth of Sk1 follows. That is: 1 1 1 1 # # # 3 15 35 12k 12 12k 12 1 k1 121k 12 12 121k 12 12 21k 12 1 Sk ak1 Sk1
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39. 1.
2.
41. 1.
2.
43. n2 1.
2.
45. n3 1.
Student Answer Appendix Working with the left hand side: 1 1 1 1 1 # # # 3 15 35 12k 1212k 12 12k 12 12k 32 k 1 2k 1 12k 1212k 32 k12k 32 1 12k 1212k 32 2k2 3k 1 12k 1212k 32 12k 121k 12 12k 1212k 32 k1 2k 3 Sk1 Since the truth of Sk1 follows from Sk, the formula is true for all n. Show Sn is true for n 1. S1 : 31 2112 1 321 33 Verified Assume Sk : 3k 2k 1 is true and use it to show the truth of Sk1 follows. That is: 3k1 2k 3. Working with the left hand side: 3k1 313k 2 312k 12 6k 3 Since k is a positive integer, 6k 3 2k 3 Showing Sk1 : 3k1 2k 3 Verified Show Sn is true for n 1. S1 : 3 # 411 41 1 3 # 40 4 1 3#13 33 Verified Assume Sk : 3 # 4k1 4k 1 is true and use it to show the truth of Sk1 follows. That is: 3 # 4k 4k1 1. Working with the left hand side: 3 # 4k 3 # 414k1 2 4 # 314k1 2 414k 12 4k1 4 Since k is a positive integer, 4k1 4 4k1 1 Showing that 3 # 4k 4k1 1 7n is divisible by 2 Show Sn is true for n 1. Sn : n2 7n 2m S1 : 112 2 7112 2m 1 7 2m 6 2m Verified Assume Sk : k2 7k 2m for m Z and use it to show the truth of Sk1 follows. That is: 1k 12 2 71k 12 2p for p Z . Working with the left hand side: 1k 12 2 71k 12 k2 2k 1 7k 7 k2 7k 2k 6 2m 2k 6 21m k 32 is divisible by 2. 3n2 2n is divisible by 3 Show Sn is true for n 1. Sn : n3 3n2 2n 3m S1 : 112 3 3112 2 2112 3m 1 3 2 3m 6 3m 2m Verified
2. Assume Sk : k3 3k2 2k 3m for m Z and use it to show the truth of Sk1 follows. That is: Sk1 : 1k 12 3 31k 12 2 21k 12 3p for p Z . Working with the left hand side: 1k 12 3 31k 12 2 21k 12 is true. k3 3k2 3k 1 31k2 2k 12 2k 2 k3 3k2 2k 31k2 2k 12 3k 3 k3 3k2 2k 31k2 2k 12 31k 12 3m 31k2 2k 12 31k 12 is divisible by 3. 47. 6n 1 is divisible by 5 1. Show Sn is true for n 1. Sn : 6n 1 5m S1 : 61 1 5m 6 1 5m 5 5m 1 m Verified 2. Assume Sk : 6k 1 5m for m Z and use it to show the truth of Sk1 follows. That is: Sk1 : 6k1 1 5p for p Z . Working with the left hand side: 6k 1 616k 2 1 615m 12 1 30m 6 1 30m 5 516m 12 is divisible by 5, Verified 49. verified 51. verified 53. 1x 42 2 1y 32 2 25 1x 32 2 1x 42 2 25
Mid-Chapter Check, pp. 1051–1052 1. 3, 10, 17, a9 59 6
4. 360
5.
3. 1, 3, 5, a9 17
2. 4, 7, 12, a9 84
13k 22
6. d
7. e
8. a
9. b
10. c
k1
11. a. a1 2, d 3, an 3n 1 b. a1 d an 34 n 34 12. n 25, S25 950 13. n 16, S16 128 29,524 14. S10 5 15. S10 27 16. a. a1 2, r 3, an 2132 n1 b. a1 12 , r 12 , an 1 12 2 n 17. n 8, S8 1640 18. 343 19. 1785 20. 4.5 ft; 127.9 ft 27 6 3 2,
3 4,
Reinforcing Basic Concepts, p. 1052 Exercise 1: $71,500
Exercises 11.5, pp. 1060–1064 1. experiment; well-defined 7. a. 16 possible
3. distinguishable
5. Answers will vary.
Begin
W
W
X
X
Y
Z
W
X
Y
Y
Z
W
X
Z
Y
Z
W
X
Y
b. WW, WX, WY, WZ, XW, XX, XY, XZ, YW, YX, YY, YZ, ZW, ZX, ZY, ZZ 9. 32 11. 15,625 13. 2,704,000 15. a. 59,049 b. 15,120 17. 360 if double veggies are not allowed, 432 if double veggies are allowed. 19. a. 120 b. 625 c. 12 21. 24 23. 4 25. 120 27. 6 29. 720 31. 3024 33. 40,320 35. 6; 3 37. 90 39. 336 41. a. 720 b. 120 c. 24 43. 360 45. 60 47. 60 49. 120 51. 30 53. 60, BANANA 55. 126 57. 56 59. 1 61. verified 63. verified 65. 495 67. 364 69. 252 71. 40,320 73. 336 75. 15,504 77. 70 79. a. 1.2% b. 0.83% 81. 7776 83. 324 85. 800 87. 6,272,000,000 89. 518,400 91. 357,696 93. 6720 95. 8 97. 10,080 99. 5040 101. 2880 103. 5005 105. 720 8! 10! 9! 11! 107. 52,650, no 109. a. b. c. d. 2!3!5! 2!3!4! 4!5!2! 2!3!3!
Z
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Student Answer Appendix 111.
113. cos 152
y
10 8 6 4 2 108642 2 4 6 8 10
Summary and Concept Review, pp. 1085–1089 3 2 5 11 1. 1, 6, 11, 16; a10 46 2. 1, 5 , 5 , 17 ; a10 101 4 a 17 1n 12132; a6 2 3. an n ; a6 1296 4. n 5. 255 6. 112 7. 140 8. 35 9. not defined, 2, 6, 12, 20, 30 256
2 4 6 8 10 x
7
10. 12 , 34 , 54 , 94 , 17 11. 4
1. n1E2 3. 0; 1; 1; 0 5. Answers will vary. 7. S 5HH, HT, TH, TT6, 14 9. S {coach of Patriots, Cougars, Angels, 1 1 Sharks, Eagles, Stars}, 61 11. P1E2 49 13. a. 13 b. 14 c. 21 d. 26 15. P1E1 2 18 , P1E2 2 58 , P1E3 2 34
17. a.
3 4
21.
c.
8 9
d.
23. 0.991
d.
7 24 2 25
11 12
b.
33. a. 0.3651
39. 0.59 e. 1 45.
1 12
25. a.
31. b, about 12% 37.
1 6
41. a. 3 4
47.
11 15
b.
b. 1 5 6
b. 0.3651
7 36
49. a.
c. 1 18
1 9
d.
b.
c.
2 9
43. a. c.
8 9
d.
10 21
27.
c. 0.3969 4 9
1 4
d.
29.
1 2 60 143
19.
35. 0.9
2 25 3 4
b. e.
9 50 1 36
c. 0 f.
5 12
1 51. 14 ; 256 ; answers will vary. 53. a. 0.33 b. 0.67 c. 1 d. 0 9 e. 0.67 f. 0.08 55. a. 1 b. 1 c. 0.2165 57. a. 16 b. 41
2
c.
1 16
61. a. 65. a.
d.
5 16
1 8 5 429
b.
59. a. 1 16
c.
8 2145
b.
20 heads in a row.
3 26 3 16
67.
2
3 26
c.
63. a.
47 100
b.
1 3360
69.
1 13
d.
2 25 1 1,048,576 ;
b.
9 26
c.
e.
2 13
3 100
f. d.
11 26 9 50
e.
11 100
answers will vary;
1 2 12 1 71. sin , cos , tan , 3 3 2 12
3 , cot 2 12 2 12 840 41 840 73. sin 122 , cos 122 , tan 122 841 841 41
Exercises 11.7, pp. 1083–1084 5 3. 1a 12b22
5. Answers will vary.
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an 3 122 1n 12; 65 14. 740 15. 1335 16. 630 11.25 18. 875 19. 3240 20. 3645 21. 32 22. 2401 10.75 24. 6560 25. 819 26. does not exist 27. 50 28. 4 512 9 63,050 30. does not exist 31. 5 32. a9 $36,980; S9 $314,900 6561 7111.1 ft3 34. a9 2105 credit hrs; S9 14,673 credit hours 111 12 1✓ 35. (1) Show Sn is true for n 1: S1 2 (2) Assume Sk is true: k1k 12 1 2 3 p k 2 Use it to show the truth of Sk1: 1k 121k 22 1 2 3 p k 1k 12 2 left-hand side: 1 2 3 p k 1k 12
13. 17. 23. 29. 33.
21k 12 k1k 12 21k 12 2 2 2 1k 121k 22 verified 2 1 32112 1 4 11 12 36. (1) Show Sn is true for n 1: S1 1✓ 6 (2) Assume Sk is true: k12k 12 1k 12 1 4 9 p k2 6 Use it to show the truth of Sk1:
sec
1. one
2
n1
Exercises 11.6, pp. 1071–1077
6 7
1n
k1k 12
1 4 9 p k2 1k 12 2
1k 1212k 321k 22
left-hand side: 1 4 9 p k2 1k 12 2
k1k 12 12k 12
61k 12 2
6
1k 12 3 12k2 k 6k 64
6 6 6 1k 1212k2 7k 62 1k 1212k 321k 22 6 6
verified 37. (1) Show Sn is true for n 1: S1: 41 3112 1✓ (2) Assume Sk is true: 4k 3k 1 Use it to show the truth of Sk1: 4k1 31k 12 1 3k 4 left-hand side: 4k1 414k 2 413k 12 12k 4 Since k is a positive integer, 12k 4 3k 4 showing 4k1 3k 4 verified 38. (1) Show Sn is true for n 1: S1: 6 # 711 71 1✓ (2) Assume Sk is true: 6 # 7k1 7k 1 Use it to show the truth of Sk1: 6 # 7k 7k1 1 left-hand side: 6 # 7k 7 # 6 # 7k1 7 # 7k 1 7k1 1 verified 39. (1) Show Sn is true for n 1: S1: 31 1 2 or 2112 ✓ (2) Assume Sk is true: 3k 1 2p for p Z Use it to show the truth of Sk1: 3k1 1 2q for q Z left-hand side: 3k1 1 3 # 3k 1 3 # 2p 213p2 2q is divisible by 2 verified
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Student Answer Appendix
40. 6 ways
B
A
B
C
C
41. 45. 48. 54. 55. 57.
Cumulative Review Chapters 1–11, pp. 1094–1096
Begin
A
B
C
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1. a. 23 cards are assembled each hour. c. y 23x 155 d. 6:45 A.M. 3.
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A
B
A
b. 78,125a7 218,750a6b 262,500a5b2 175,000a4b3 58. a. 280x4y3 b. 64,064a5b9
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A
b. ABC, ACB, BAC, BCA, CAB, CBA 12. 302,400 13. 64 14. 720, 120, 20 15. 900,900 16. 302,400 17. a. x4 8x3y 24x2y2 32xy3 16y4 b. 4 18. a. x10 1012 x9 90x8 b. a8 16a7b3 112a6b6 5 5 7 19. 0.989 20. a. 41 b. 12 c. 31 d. 12 e. 12 f. 14 g. 12 h. 0 21. a. 0.08 b. 0.92 c. 1 d. 0 e. 0.95 f. 0.03 22. a. 0.1875 b. 0.589 c. 0.4015 d. 0.2945 e. 0.4110 f. 0.2055 59 53 13 47 23. a. 100 b. 100 c. 100 d. 100 24. a. 0.8075 b. 0.0075 c. 0.9925 25. verified
Strengthening Core Skills, pp. 1093–1094 Exercise 1.
4C1
# 13C5 40 52C5
0.001 970
4 # 13C3 # 39C2 0.326 170 52C5 # # 4 13C4 39C1 0.042 917 Exercise 3. 52C5 \ 4 # 10C5 Exercise 4. 0.000 388 52C5 Exercise 2.
3
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12 2
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2
2 3
0
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1
7. d. g. k. 9.
4 2
d. arithmetic e. geometric 1 f. geometric g. arithmetic h. geometric i. an 3. 27,600 2n 5 5. 0.1, 0.5, 2.5, 12.5, 62.5; a15 610,351,562.5 7. 6 9. a. 2 b. 200 c. 210 11. a. a20 20a19b 190a18b2 b. 190a2b18 20ab19 b20 c. 52,360a31b4 d. 4.6 1018 4 2 2 13. verified 15. 0.01659 17. 11 19. 10, 2, 52 , 25 , 125
B
1
4
5 1109 ; x 0.91; x 2.57 6 a. x 0 b. x 11, 02 c. x 1q, 12 ´ 10, q2 x 1q, 12 ´ 11, 12 e. x 11, q 2 f. y 3 at (1, 3) none h. x 2.3, 0.4, 2 i. g142 0.25 j. does not exist q l. 0 m. x 1q, 12 ´ 11, q 2 D: x 3 3, 3 4 y 10 8 R: y 32, 24 ´ 11, 22 ´ 34, 94 6 54321 2 4 6 8 10
c. an n!
A
y
6
5. x
Mixed Review, pp. 1089–1090 b. an 4
0
B
720; 1000 42. 24 43. 220 44. 32 a. 5040 b. 840 c. 35 46. a. 720 b. 120 c. 24 47. 3360 4 3 7 175 a. 220 b. 1320 49. 13 50. 13 51. 65 52. 24 53. 396 a. 0.608 b. 0.392 c. 1 d. 0 e. 0.928 f. 0.178 a. 21 b. 56 56. a. x4 4x3y 6x2y2 4xy3 y4 b. 41 38i a. a8 813a7 84a6 16813a5
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15 12 9 6 3 108642 3 6 9 12 15
b.
1 1x h 221x 22
y
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15. a. x3 125 b. e5 2x 1 17. a. x 3.19 b. x 334 19. (5, 10, 15) 21. (3, 3); (7, 3), (1, 3); (3 213, 3), (3 213, 3) 16 12 23. a. verified b. 25. 1333 27. a. 7.0% b. 91.9% 4 12 c. 98.9% d. a b10.042 12 10.962 0; virtually nil 0 29. cos122 cos2 sin2 1 2 sin2 2 cos2 1; 1 1 2 sin2 2 1 sin2 4 1 sin 2 5 7 13 , , , 6 6 6 6
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Index A Absolute maximum, 212 Absolute value of complex numbers, 113, 327 definition of, 5–6 multiplicative property of, 97 of real numbers, 5–6 Absolute value equations on graphing calculator, 100 procedures to solve, 96–97 Absolute value function, 225, 240, 250 Absolute value inequalities applications involving, 100 explanation of, 99 on graphing calculators, 100 solutions to “greater than,” 98–99 solutions to “less than,” 98 AC (alternating current) circuits, 771 Accumulated value, 468 Acute angles, 519 Addition associative property of, 15–16 commutative property of, 15 of complex numbers, 107 distributive property of multiplication over, 17 of matrices, 860–861 of polynomials, 27–28 of radical expressions, 60–61 of rational expressions, 48–49 Addition method. See Elimination Additive identity, 16, 861 Additive inverse, 16, 17, 861 Additive property of equality, 74–75, 87 of inequality, 87 Algebra fundamental theorem of, 315–318 of matrices, 859–866 used to verify identities, 617–618 of vectors, 742–743 Algebraic expressions evaluation of, 14–15 explanation of, 13, 74, 96 simplification of, 17–18 translating English phrases into, 13–14 Algebraic fractions, 45 Algebraic methods explanation of, 414–415 to solve trigonometric equations, 682–683 Algebraic models, 51 Algebraic terms, 13 Algorithm, division, 305 Allowable values, 90–92 Alpha (), 504 Alternating current, 771–773 Alternating sequences, 1019
Ambiguous case of law of sines, 715–717 occurrence of, 726 Amortization, 471–472 Amplitude on graphing calculators, 567–568 of sine and cosine functions, 563 of trigonometric functions, 563 variable, 611–612 Analytical geometry algebraic tools used in, 920–921 circle and ellipse and, 927 explanation of, 920 introduction to, 920–924, 1006 Analytic parabolas. See Parabolas Angle reduction formulas, 639 Angles acute, 505 central, 508 complementary, 504–505 coterminal, 508, 538, 547 of depression, 524, 525 of elevation, 524, 525 explanation of, 504, 601 functions of acute, 519 between intersecting, 540 measurement of, 504–505, 507–508 negative, 507, 508 nonstandard, 510–511, 631 obtuse, 505 positive, 507, 508 quadrantal, 508 reference, 535–536, 545, 613 right, 504 standard, 508, 613, 983 straight, 504 sum of tangents of, 652 supplementary, 504–505 Angular velocity, 512–513 Annuities, 471–472 Aphelion, 987 Approximation of irrational numbers, 4 of real zeroes, 344–345 Arc length explanation of, 509 formula for, 509, 511 of right parabolic segment, 961–962 Area. See also Surface area of circular sector, 509–510 of ellipse, 937 of Norman window, 898 of rectangle, 868 of regular polygons, 586 of triangles, 372, 629, 784, 857, 895–896 Argument, 767 Arithmetic sequences applications of, 1030–1031
explanation of, 1027 finding common difference in, 1027–1028 finding nth partial sum in, 1029–1030 finding nth term in, 1028–1029 Aryabhata, 518 Associated minor matrices, 877 Associations, 283 Associative properties, 15–16 Asymptotes of central hyperbola, A–6 horizontal, 350–351, 364, 426 oblique, 364–366 vertical, 348–350, 362 Asymptotic behavior, 347, 348, 942 Augmented matrices, A–3 matrix inverses and, 904–905 of system of equations, 848–849 triangularizating, 850–852 Augmented matrix method, 874–875 Average distance, 155 Average rate of change applied to projectile velocity, 213, 214 calculation of, 214 difference quotient and, 215–217 explanation of, 198–200, 213 Average value, of trigonometric functions, 563, 588 Axis of symmetry, 226
B Back-substitution, 75 Base, 7 Base-e exponential functions, 427–429 Beats, 698 Best fit line of, 285–286 parabola of, 286–288 Beta (), 504 Binomial coefficients, 1079–1080 Binomial conjugates, 29–30, 108 Binomial cubes, 113 Binomial expansion, 1081–1082 Binomial experiment, 1082 Binomial powers, 1077–1079 Binomial probability, 1082, 1083 Binomials expansion of, 1078 explanation of, 26 F-O-I-L method for multiplying, 29 product of, 28, 29 square of, 30–31 Binomial theorem binomial coefficients and, 1079–1080 explanation of, 777, 1077, 1080–1081 finding specific term of binomial expansion and, 1081–1082 Pascal’s triangle and, 1077–1079 Bisection, 344 Body mass index formula, 94
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Index
Boundary, 827 Boundary lines horizontal, 194–195 linear inequalities and, 827, 828 vertical, 193–194 Boundary point, 86 Bounded region, 830 Brachistochrone applications, 998 Branches, of hyperbola, 940 Break-even analysis, 800 Brewster’s law, 638
C Calculators. See Graphing calculators Capacitive reactance, 772 Cardano, Girolomo, 113 Cardano’s formula, 329 Cardioids, 974 Carrying capacity, 494 Ceiling functions, 246 Center explanation of, 542 of hyperbola, 941 Centimeters of mercury, 443 Central angles, 508 Central circle, 157, 508, 542 Central hyperbolas, 941, A–6 Centroid, of triangle, 926 Change in x, 167 Change in y, 167 Change-of-base formula, 455–456, 940 Circles central, 157, 508 circumference of, 428, 509 equation of, 157–160, 930, 945, 1007 equation of graph of, 927–928 explanation of, 157, 542, 923 on graphing calculator, 160 graphs of, 158–160, 928 involute of, 540 properties of, 926 unit, 542–547 Circular functions, 546 Circumference, 428, 509 Circumscribe, 921 Clark’s rule, 12 Closed form solutions, 117 Coefficient matrices, 848–849 Coefficients binomial, 1079–1080 explanation of, 13 of friction, 586 leading, 27 solving linear equations with fractional, 75 Cofactors, A–4 Cofunction identities, 633 Cofunctions explanation of, 521 to write equivalent expressions, 523 Coincident dependence, 807, 811, 812 Coincident lines, 798 Collinear points test, 896 Column rotation, determinants by, 878, 879 Combinations explanation of, 1057–1059 on graphing calculator, 1059, 1070–1071 stating probability using, 1068–1069
Common binomial factors, 35–36 Common difference, for sequence, 1027 Common logarithms, 438 Common ratio, 1034 Commutative properties, 15–16 Complement, 504–505, 1067–1068 Complementary angles, 504 Completely factored form, 36 Completing the square explanation of, 114 to graph circle, 928 to graph ellipse, 931, 934 to graph horizontal parabola, 955 to graph hyperbola, 944–947 to solve quadratic equations, 117–118 Complex conjugates explanation of, 108, 110, 121, 317 product of, 108–109 Complex conjugates theorem, A–7 – A–8 Complex numbers absolute value of, 113, 327 addition and subtraction of, 107 applications of, 771–773 computing nth root of, 778–780 converted from trigonometric to rectangular form, 768 cube of, 774 DeMoivre’s theorem to compute power of, 777, 787 division of, 110, 769–770 explanation of, 105, 106 graphs of, 765–766 historical background of, 105 identifying and simplifying, 105–107 multiplication of, 108–110 products of, 769, 770 square root of, 327 standard form of, 106–107 in trigonometric form, 766–768, 776, 786 Complex plane, 766, 774 Complex polynomial functions, 316 Complex roots, 109 Complex zeroes, 407 Composition of functions, 257–263, 1044 transformations via, 281 Compound annual growth, 268 Compounded interest formula, 469 Compound fractions, 48–49 Compound inequalities explanation of, 88–89 method to solve, 89–90 Compound interest explanation of, 467–469 on graphing calculator, 474–475 Conditional equations, 76 Cones, volume of, 837 Conical shells, 44 Conic equations in polar form, 984–987 use of discriminant to identify, 984 Conic rotations, in polar form, 1012–1013 Conic sections. See also Circles; Ellipses; Hyperbolas; Parabolas; specific conic sections characteristics of, 922–924 degenerate cases of, 953
deriving equations of, A–5 – A–6 discriminant and, 983–984 equations of, 981, 982 explanation of, 220, 920, 1009 foci of, 935, 947–948 identification from equations of, 945 nonlinear systems and, 958–959 rotated, 978–980 rotation of axes and, 980–983 Conjugate axis, 941 Conjugates binomial, 29–30, 108 complex, 108–110, 121 simplifying radical expressions using, 63 verifying identities by multiplying, 626 Consecutive integers, 79, 134 Constant of variation, 389 Constant terms, 13 Constraint inequalities, 832 Constraints, 829 Continuous functions explanation of, 240 piecewise and, 242–243 Continuous graphs, 154 Continuously compounded interest, 469–470 Contradiction, 76, 810 Coordinate grid, 153 Coordinate plane, 531–538, 603–604 Coordinates, 3 Cosecant function, 564–566, 605 Cosecants, 523 Cosine family, 632 Cosine function. See also Trigonometric functions applications of, 589–590 characteristics of, 562 graphs of, 561–565, 605 Cosines. See also Law of cosines explanation of, 519, 523 origin of term for, 523 sum and difference identities for, 630–632 Cost-based pricing, 799–800 Cotangent functions. See also Trigonometric functions applications of, 580–581 characteristics of, 577 coefficient A and, 577–578 coefficient B and, 578–580 on graphing calculators, 581–582 graphs of, 574–580, 606 Cotangents, 523 Coterminal angles applications of, 538 explanation of, 508 use of, 537–538 Counting combinations and, 1057–1059 distinguishable permutations and, 1055–1056 fundamental principle of, 1054–1055 by listing and tree diagrams, 1053–1054 nondistinguishable permutations and, 1057 Cramer’s Rule, 887–888, 903–904 Cube root function, 226 Cube roots, 8, 56 Cubes binomial, 113
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Index sum of cubes of n natural numbers, 1042 sum or difference of two perfect, 40 Cubic equations, 386, 782 Cubic functions, 578 Cubing function, 226 Cycloids, 998–999 Cylinders, 44, 83, 126, 268, 372 Cylindrical shells, 44 Cylindrical vents, 824
D Decay rate, 472 Decimal degrees, 505 Decimal notation, 26 Decimals, 3–4, 26, 442 Decision variables, 831–832 Decomposition of composite functions, 261–262 for rational expressions, 892–895 of rational terms, 13 Decomposition template, 889–892 Degenerate cases, 159, 164, 931, 953 Degrees of angles, 504–505 converting between radians and, 510–511 decimal, 505 of polynomials, 26 Delta, 167 Demographics, 424 DeMoivre’s theorem to check solutions to polynomial equations, 777–778 explanation of, 777, 787 Denominators, rationalizing, 62–63 Dependent systems explanation of, 798, 810–812 matrices and, 852–853 Dependent variable, 152 Depreciation, 431 Descartes, René, 105 Descartes’ rule of signs, 322 Determinants by column rotation, 878, 879 to find area of triangle, 895–896 of general matrix, A–4 of singular matrices, 876–880 to solve systems, 886–888 Diagonal entries, 848 Dichotomy paradox, 1092 Difference identity, for cosine, 631 Difference quotient, 214–217 Directed line segments, 736–737 Directrix, of parabola, 923, 924, 955–958 Direct variation explanation of, 389–392 method to solve applications of, 390–392 Discontinuities asymptotic, 349 removable, 244, 370 Discontinuous functions, 243–244 Discriminant of cubic equation, 386, 782 explanation of, 120 on graphing calculator, 123–124 identifying conics using, 983–984 of quadratic formula, 120–122 Diseconomies of scale, 822
Disjoint intervals, 90 Distance number line, 6 perpendicular, 921 uniform motion, 80 Distance formula, 156–158, 629, 630, 669, 726, 815, 932 explanation of, 920 in polar coordinates, 976 Distinguishable permutations, 1055–1056 Distributive property of multiplication over addition, 17 Division of complex numbers, 110, 769–770 long, 304–305, A–1 with nonlinear divisor, 308 of polynomials, 304–305 of radical expressions, 61–63 of rational expressions, 47–48 synthetic, 306–308, A–1 – A–2 with zero, 7 Division algorithm, 305 Divisor, 306–308, A–1 Domain explanation of, 90–91 of functions, 193–196, 198, 415 horizontal boundary lines and, 194–195 implied, 195–196 of logarithmic functions, 441 of piecewise-defined functions, 240–241 of relation, 152 of trigonometric functions, 548 vertical asymptotes and, 348–349 vertical boundary lines and, 193–194 Dominant term, of polynomial function, 332 Dot products angle between vectors and, 756–758 explanation of, 756, 786 properties of, 758 Double-angle identities, 640–642, 654 Dynamic trigonometry, 528
E e (the number), 428 Earthquake intensity, 442, 443 Eccentricity, 989 Ecliptic planes, 1012–1013 Economies of scale, 822 Electrical resistance, 20 Elementary row operations, 850 Elements, 2 Elevation, angle of, 524 Elimination explanation of, 796 Gaussian, 850, 852 Gauss-Jordan, 852, 853 to solve linear systems, 796–798, 808–810, 844–845 to solve nonlinear systems, 820–821 Ellipses area of, 937 completing the square to graph, 931, 934 equation of, 928–929, 934–935, 945, 1007 explanation of, 2, 932 finding equation for all points that form, 924 foci of, 931–935 graphs of, 929–931
I-3
method to draw, 932 perimeter of, 937 polar equation of, 988 polar form of, 992 with rational/irrational values of a and b, 964–965 Elliptical orbit, 1001 Empty sets. See Null sets End behavior explanation of, 211–212, 331 of polynomial graphs, 331–334 of rational functions, 346 Endpoints, 5, 86 Entries, of matrix, 848 Equality additive property of, 74, 75, 87 of matrices, 859–860 multiplicative property of, 74, 75, 87 power property of, 131 square root property of, 116–117 Equations. See also Systems of linear equations; Systems of linear equations in three variables; Systems of linear equations in two variables; Systems of nonlinear equations; specific types of equations absolute value, 96–98 of circle, 157–160, 927–928, 945, 1007 conditional, 76 of conic, 981, 982, A–5 – A–6 cubic, 386, 782 of ellipse, 928–931, 934–935, 945, A–5, 1007 equivalent, 74 explanation of, 74 exponential, 429–430, 436–438, 451, 452, 459 families of, 74, 77–78 of functions, 233 of hyperbola, 940–945 linear, 74–82, 178–185 of line in polar form, 992 of line in trigonometric form, 688 literal, 76–78 logarithmic, 451, 453, 456–459 logistic, 460–461, 486–487 matrix, 872–880 method to solve, 75 as non-identities, 619–620 parametric, 386, 995–1002, 1010 of piecewise-defined functions, 245 polar, 969–974, 978 polynomial, 128–129, 777–778 quadratic, 114–124, 149–150 in quadratic form, 133–134 radical, 131–132 rational, 129–131 of rational function, 354 roots of, 74 of semi-hyperbola, 952 solution of, 74 trigonometric, 671–677, 682–688, 699 of trigonometric functions, 592–593 written from graphs, 566–567 Equilateral triangles, 516, 774 Equilibrium static, 791 vectors and, 752–753 Equivalent system of equations, 74, 796 Equivalent vectors, 738
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Index
Euclid, 504 Euler, Leonhard, 105 Even functions, 207, 562 Even multiplicity, 317 Events complement of, 1067 explanation of, 1065 mutually exclusive, 1070 nonexclusive, 1069–1070 Exact form solutions, 117 Existence theorem, 318 Expansion of minors, 878 Experiments, 1053 Exponential decay, 472–474 Exponential equations explanation of, 451 on graphing calculator, 431–432 logarithmic form and, 429–430, 436–438 method to solve, 452, 459 uniqueness property to solve, 429–430 Exponential form, 7–8, 21, 437, 438, 453 Exponential functions applications of, 430–431 base-e, 427–429 evaluation of, 424–425 explanation of, 424 graphs of, 425–427 natural, 428 Exponential growth, 472–273 Exponential notation, 7–8, 21 Exponential properties multiplying terms using, 22 simplifying expressions using, 24–25 summary of, 25 Exponential regression model, 492 Exponential terms, 21 Exponents explanation of, 7, 453 power property of, 21–22 product property of, 21–22 quotient property of, 23–24 rational, 56–58 zero and negative numbers as, 24–25 Extraneous roots, 130, 456 Extrapolation, 494, 495 Extreme values, 297–299
F Factorial formulas, 1062 Factorial notation, 1019–1020 Factorials, 1019, 1020 Factoring by grouping, 35–36 nested, 45 polynomials, 35–41, 128 quadratic polynomials, 36–38 to solve trigonometric equations, 683 special forms, 38–41 Factoring flowchart, 41 Factors, 35–36 Factor theorem, 309–311, A–7 Families of curves, 923 of equations, 74, 77–78 of identities, 616–617, 691 of polynomials, 26 Feasible region, 830
Fibonacci sequence, 1019 Fibonacci spiral, 1019 Finite sequences, 1018se Finite series, 1020 Fish length to weight relationship formula, 66 Five Card Stud, 1093–1094 Floor functions, 246–267 Flowcharts, 41 Fluid motion formula, 238 Focal chord explanation of, 939 of hyperbola, 952 of parabola, 957, 963 Foci of ellipse, 931–935 of hyperbola, 945–947 of parabola, 923, 924, 955–959 Foci formula for ellipse, 934 for hyperbola, 946 Focus-directrix, of equation of parabola, 955–958 F-O-I-L method, 29, 319 Folium of Descartes, 386, 1004 Foot-pounds, 755 Force between charged particles, 397 to maintain equilibrium, 638 normal, 667 Force vectors, 744, 756 Formulas absolute value function, 250 absolute value of complex number, 113, 327 alternative form for law of cosines, 733 angle between two intersecting lines, 540 angle reduction, 639 arc length, 509, 511 arc length of right parabolic segment, 961 area, 163, 372, 837, 857, 868, 898 area of circular sector, 509–510 area of ellipse, 937 area of parallelogram, 540 area of regular polygon, 622 area of right parabolic segment, 961 area of triangle, 629, 728–730 barometric pressure, 443, 461 binomial cubes, 113 binomial probability, 1083 body mass index, 94 Brewster’s law, 638 Celsius to Fahrenheit conversion, 203 change-of-base, 455–456, 940 chemicals in bloodstream, 54 Clark’s rule, 12 coin toss, 102 compound annual growth, 268 conic sections, 220 coordinates for folium of Descartes, 386 cost to seize illegal drugs, 53 cue of complex number, 774 cylindrical shell volume, 44 cylindrical vents, 824 dimensions of rectangular solid, 815 discriminant of cubic equation, 782 discriminant of reduced cubic equation, 386 distance, 156–158, 629, 630, 669, 815, 920, 932, 976 electrical resistance, 20
equation of line in polar form, 992 equation of line in trigonometric form, 688 equilateral triangles in complex plane, 774 to estimate length of orbital path, 992 factorial, 1062 fine-tuning a golf-swing, 680 fluid motion, 238 foci for ellipse, 934 Folium of Descartes, 1004 force between charged particles, 397 force normal to object on inclined plane, 667 force required to maintain equilibrium, 638 forensics-estimating time of death, 464 games, 434, 1074 general linear equation, 188 growth of bacteria population, 434 heat flow on cylindrical pipe, 668 height of equilateral triangle, 516 height of object calculated from a distance, 585 height of projected image, 422 height of projectile, 126 Heron’s, 730–731 human life expectancy, 176 hydrostatics, surface tension, and contact angles, 571 ideal weight for males, 203 illuminance of point on surface by source of light, 622 illumination of surface, 528 intercept/intercept form of linear equation, 188 interest earnings, 176 inverse of matrices, 883 investment return, 446 lateral surface area of cone, 139 length to weight relationship, 66 lift capacity, 94 linear equation, 206 logistic growth, 464 magnitude of vector in three dimensions, 749 Malus’s law, 650 medication in bloodstream, 33 midpoint, 155–156, 920, 976 mortgage payment, 34, 478 number of daylight hours, 598 painted area on canvas, 139 perimeter, 868 perimeter of ellipse, 937 perimeter of trapezoid, 733 period for sine and cosine, 564 perpendicular distance from point to line, 925 pH level, 446 Pick’s theorem, 203 pitch diameter, 12 population density, 358 position of image reflected from spherical lens, 585 powers of imaginary unit, 1050 Pythagorean identity, 571 from Pythagorean triples to points on unit circle, 553 quadratic, 120–123 radius of sphere, 422 range of projectile, 680, 763 relationship between coefficient B, frequency f, and period P, 598 relationships in right triangles, 516 required interest rate, 397
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Index revenue, 136 rewriting, 50 rewriting y acos x b sin x a single function, 688 root tests for quartic polynomials, 342 rotation of axes, 980, 981 sand dune function, 250 sine of angle between two sides of triangle, 528 slope, 167 spending, 63 spring oscillation, 102 Stirling’s formula, 1062 student loan payment, 1042 sum of cubes, 1042 sum of first n cubes, 1050 sum of first n natural numbers, 1032 for sum of infinite geometric series, 1038 sum of n terms of sequence, 1025 sum of squares of first n natural numbers, 1032 supersonic speeds, sound barrier, and Mach numbers, 650 surface area of cylinder, 44, 83, 126, 268, 372 surface area of rectangular box with square ends, 301 temperature measurement, 803 timing falling object, 66 trigonometric graphs, 221 tunnel clearance, 824 uniform motion with current, 803 vertex, 296–297 vertex/intercept, 301 volume, 20, 238, 314, 837 Witch of Agnesi, 1004 45-45-90 triangles, 506, 507, 518 Four-leaf rose, 973 Fractions addition and subtraction of, 49 algebraic, 45 clearing the, 75 compound, 49–50 improper, 364 Friction, coefficient of, 586 Function families, 225, 234 Functions absolute value, 225, 240, 250 algebra of, 254–257, 262–263 ceiling, 246 composition of, 257–263, 1044 continuous, 240 cube root, 226 cubing, 226 domain of, 193–196, 198 even, 207 explanation of, 190–192 exponential, 424–432 evaluating, 196, 540 floor, 246–267 graphs of, 197–198, 206–218, 261–262, 416–418 greatest integer, 246 growth, 427 identity, 225 intervals and increasing or decreasing, 210–212 intervals and positive and negative, 209–210 inverse, 413–419
logarithmic, 437, 439–441 maximum and minimum value of, 212–213 monotonically increasing, 426 notation for, 196–198 odd, 208 one-on-one, 412–413 piecewise-defined, 240–248 polynomial, 315–324 product and quotient of, 255–257 quadratic, 294–299 range of, 194–195, 198 rational, 345–355 as relations, 191 smooth, 240 square root, 225 squaring, 225 step, 246–247 sum and difference of, 254–255 transcendental, 436, 676 two variable, 368, 540 vertical line test for, 192–193 writing equations of, 233 zeroes of, 209 Functions of acute angle, 519 Fundamental identities, 616, 653–654, 691 Fundamental principle of counting (FPC), 1054–1055, 1068–1069 Fundamental property of rational expressions, 45 Fundamental theorem of algebra, 315–318 Future value, 471
G Galileo Galilei, 215 Games, 434, 1074, 1093 Gamma (), 504 Gauss, Carl Friedrich, 105 Gaussian elimination, 850, 852 Gauss-Jordan elimination, 852, 853 General linear equations, 188 General matrix, A–4 General solutions for family of equations, 77–78 Geometric sequences applications of, 1039 explanation of, 471, 1034 finding nth partial sum of, 1036–1037 finding nth term of, 1035–1036 Geometric series explanation of, 1034 sum of infinite, 1037–1038 Geometry analytical, 920–924, 927, 1006 applications involving, 134–135 historical background of, 504 of vector subtraction, 741 verifying theorem from basic, 920–921 Global maximum, 212 Graphing calculator features factorial option on, 1020 split screen viewing, 325 window size, 818 Graphing calculators amplitude and periods on, 567–568 circles on, 160 composite functions on, 264 compound interest on, 474–475 decomposing rational expressions on, 894–895 domain of function on, 441
I-5
eccentricity on, 989 evaluating expressions and looking for patterns, 148–149 exponential equations on, 431–432 function families of, 234 guidelines for using, 81–82 hyperbolas on, 949 identities on, 620 intermediate value theorem and, 325 intersection of graphs method on, 432, 453 inverse functions on, 419 inverse trigonometric functions on, 656, 657, 660, 664 irrational zeroes on, 299–300 linear equations on, 173 linear programming on, 843–844 to locate extreme values of functions, 368 logarithms on, 438–439, 458 logistic equations on, 486–487 matrices on, 854–855, 864–865 maximums and minimums on, 217–218 nonstandard values on, 613 parallel lines on, 182 parameterized solutions on, 813 parametric equations on, 998–1002 piecewise-defined functions on, 247–248 polynomial graphs on, 310 polynomial inequalities on, 378, 383–384 projectile position on, 790 quadratic equations and discriminant on, 123–124 rational functions on, 355 rational inequalities on, 383–384 regression equation on, 286 regression on, 492–494 removable discontinuities on, 370 r-value analysis and, 970 sequences on, 1023 series on, 1023 to solve trigonometric equations, 676–677 summation applications on, 1052 systems of equations on, 801, 813 systems of inequalities on, 834–835 tangent and cotangent functions on, 581–582 transformations on, 280–281 trigonometric equations on, 685, 686 trigonometric values on, 521 vector components on, 746–747 zeroes of function on, 217 zeros, roots, and x-intercepts on, 595–596 Graphs analysis of function, 212 of average rate of change, 199–200 of circle, 158–160, 927–928 of complex numbers, 765–766 of cosecant and secant functions, 565–566, 605 of cycloids, 998–999 of discontinuous functions, 244 of ellipse, 929–931 explanation of, 3 of exponential functions, 425–427 of functions, 197–198, 206–218 of hyperbola, 940–947, 979 intercept method for, 166 of linear equations, 165–173 of lines, 179–183
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Index
Graphs—Cont. one-dimensional, 3, 806 orientation of, 996 parametric, 1001–1002 of piecewise-defined functions, 241–245 polar, 969–974 of polynomial functions, 330–339 of quadratic functions, 294–299 of rational functions, 352–354, 363–366 of reflections, 229, 230 of relations, 153–155 of semicircle, 155 of sine and cosine functions, 557–565, 605 sinusoidal, 589 to solve inequalities, 209–210 to solve system of equations, 794–795 stretches and compressions in, 230–231 symmetry and, 206–209, 337 of tangent and cotangent functions, 574–580, 606 transformations of, 226 translations of, 227–229 trigonometric, 221, 557–566 two-dimensional, 806 of variations, 390–391 vertical line test and, 192–193 vertically stretching/compressing basic, 230–231 writing equations from, 566–567 Gravity, 215 Greater than, 5 Greatest common factors (GCF), 35 Greatest integer functions, 246 Grid lines, 153 Grouping, factoring by, 35–36 Growth functions, 427 Growth rate, 472 Gunter, Edmund, 523
H Half-angle identities, 642–644, 654 Half-life, 473, 474 Half planes, 827 Harmonic models sound waves, 594–595 springs, 593–594 Harmonic motion, 593–595 Heron’s formula, 730–731 Hipparchus, 518 Horizontal asymptotes explanation of, 350 of exponential functions, 426 of rational functions, 350–351, 364 Horizontal boundary lines, 194–195 Horizontal change, 167 Horizontal hyperbolas, 941, 942 Horizontal lines, 169–170, 524 Horizontal line test, 412 Horizontal parabolas, 954–956 Horizontal reflections, 230 Horizontal translations, 227–229, 590–593 Horizontal unit vectors, 742 Human life expectancy, 176 Hyperbolas applications of, 948 branches of, 940 central, A–6
equation of, 940–945, 1007 explanation of, 940, 946 focal chord of, 952 foci of, 945–948 on graphing calculators, 949 graphs of, 940–947, 979 horizontal, 941 with rational/irrational values of a and b, 964–965 vertical, 942 Hyperbolic trigonometric functions, 630 Hypotenuse, 63, 156, 519
I Identities additive, 16 applications of, 646–647 cofunction, 633 connections and relationships of, 653–654 double-angle, 640–642 due to symmetry, 616 explanation of, 76, 616 families of, 616–617, 691 fundamental, 616, 653–654, 691 half-angle, 642–644 method to create, 624–625 method to verify, 624–627, 634–635, 691 multiple-angle, 641 multiplicative, 16 power reduction, 642–644 procedure to show that equations are not, 619–620 product-to-sum, 640, 644–646 Pythagorean, 616–618, 640 ratio, 616 reciprocal, 616 to solve trigonometric equations, 676, 683–684 sum and difference, 630–635, 692 sum-to-product, 645–646 use of algebra to verify, 617–618 Identity function, 225 Identity matrices, 872–873 Illuminance of point on surface by source of light, 622 Imaginary numbers explanation of, 105 historical background of, 105, 113 identifying and simplifying, 105–107 Imaginary units, 105, 1050 Impedance, 772–773 Implied domain, 195–196 Improper fractions, 364 Inclusion, of endpoint, 86 Inconsistent systems of equations, 798, 810–812, 852–853 Independent variable, 152 Indeterminate, 7 Index, 8 Index of refraction, 680–681 Index of summation, 1021 Induction. See Mathematical induction Induction hypothesis, 1046, 1047, 1049 Inductive resistance, 772 Inequalities. See also Linear inequalities; Systems of inequalities absolute value, 98–100 additive property of, 87
applications of, 90–92, 382–383 compound, 88–90 constraint, 832 on graphing calculator, 100 graphs to solve, 209–210 interval tests to solve, 382 joint, 90 linear in one variable, 86–92 linear in two variables, 826–829 mathematical models using, 5 multiplicative property of, 87 polynomial, 377–379, 382 push principle to solve, 407–408 quadratic, 376–377 rational, 380–381 solution sets and, 86 symbols for, 5, 86 trigonometric equations and, 699 Infinite geometric series, 1037–1038 Infinite sequences, 1018 Infinite series, 1092–1093 Infinite sum, 1037–1038 Initial side, of angle, 507, 508 Input values, 14, 196 Integers consecutive, 79, 134 explanation of, 3 Intercept method, 166 Interest compound, 467–469 continuously compounded, 469–470 simple, 467 Interest earnings, 176 Interest rate, required, 397 Interest rate r, 467 Intermediate value theorem (IVT), 318–319, 325 Interpolation, 494 Intersection, 89 Interval notation, 86 Intervals where function is increasing or decreasing, 210–212 where function is positive or negative, 209–210 Interval tests, 382 Invariants, 983, 984 Inverse additive, 16, 17 of functions, 414, 416 graphs of function and its, 416–418 of matrices, 873–875, 904–905 multiplicative, 16, 17 Inverse cosine functions, 657–659 Inverse functions algebraic method to find, 414–416 applications of, 418–419 explanation of, 413–414 principal roots and, 672 verification of, 416 Inverse operation, 55 Inverse sine function, 654–657 Inverse tangent functions, 657–659 Inverse trigonometric functions applications of, 663–664 cosine and tangent, 657–659 to evaluate compositions, 660–661 explanation of, 549, 663, 693–694
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Index on graphing calculators, 656, 657, 660, 664 for secant, cosecant, and cotangent, 661–663 sine, 654–657 Inverse variation, 392–393 Invertible matrices, 874 Irrational numbers, 3–4, 8, 428 Irrational zeroes, 299–300 Irreducible quadratic factors, 317
J Joint variation, 393–394
K Kepler’s third law of planetary motion, 67
L Lateral surface area of cone, 139 Latitude, 511 Latus rectum, 963 Law of cosines alternative form for, 733 applications using, 727–731 SAS triangles and, 724–726 scaled drawings and, 751–752 SSS triangles and, 726–727 verifying, 725–726 Law of sines ambiguous case of, 715–717 applications of, 717–718 explanation of, 713, 783, 784 scaled drawings and, 751–752 unique solutions and, 712–714 Lead coefficients, 27 Least common denominator (LCD), 48, 75, 129 Lemaçon, 974 Lemniscate, 974 Less than, 5 Lift capacity formula, 94 Like terms, 17 Linear association, 284 Linear dependence, 807, 811 Linear depreciation, 184 Linear equations. See also Equations applications of, 172–173, 184–185 explanation of, 165 forms of, 206 general, 188 on graphing calculators, 173 graphs of, 165–173 intercept/intercept form of, 188 in one variable, 74, 75, 165 in point-slope form, 183 properties of equality to solve, 74–75 slope-intercept form and, 178–185 standard form of, 206 in two variables, 165 Linear factorization theorem, 316, A–8 Linear functions. See Functions Linear inequalities. See also Inequalities; Systems of inequalities applications of, 90–92 compound, 88–90 explanation of, 86, 826 method to solve, 87–88 in one variable, 86–92 solutions sets and, 86 in two variables, 826–829
Linear programming explanation of, 830–831 on graphing calculators, 843–844 solutions to problems in, 831–834 Linear regression, 285–286 Linear scales, 450 Linear systems. See Systems of linear equations; Systems of linear equations in three variables; Systems of linear equations in two variables Linear velocity, 512, 513 Line of best fit, 285–286 Lines angle between two intersecting, 540 characteristics of, 206 coincident, 798 equation in polar form of, 992 horizontal, 169–170 parallel, 170–171, 181–182 perpendicular, 171–172, 181–183 perpendicular distance from point to, 925 slope-intercept form and graph of, 179–183 slope of, 166–168 vertical, 169–170 Line segments, directed, 736–737 Lissajous figure, 995 Literal equations, 76–78 Logarithmic equations explanation of, 451 method to solve, 451, 453, 456–459 systems of, 821 Logarithmic form, 437–438, 453 Logarithmic functions domain of, 441 explanation of, 437 graphs of, 439–440 Logarithmic regression model, 493 Logarithmic scales, 450 Logarithms applications for, 442–445, 461 base-e, 455 common, 438 explanation of, 453 on graphing calculator, 438–439 natural, 438 power property of, 54–55, A–9 product property of, 454 properties of, 451, 453–454, 457–458, 488 quotient property of, 454 uniqueness property of, 457, 458 Logistic equations explanation of, 460–461 on graphing calculator, 486–487 regression models and, 493–494 Logistic growth, 460, 494 Logistic growth model, 493 Logistic regression model, 494 Long division, 304–305, A–1 Longitude, 511 Lorentz transformation, 44 Lower bound, 323 Lowest terms, 47
M Mach number, 650 Magnitudes, of earthquakes, 442 Major axis, of ellipse, 929
I-7
Malus’s law, 650 Mapping notation, 152, 259 Mathematical induction applied to sums, 1044–1047 explanation of, 1044 general principle of, 1047–1049 Mathematical models translating information into, 13–14 using inequalities, 5 Matrices addition and subtraction of, 860–861 applications of, 853–854 associated minor, 877 augmented, 848–849, 904–905, A–3 coefficient, 848–849 determinant of general, A–4 equality of, 859–860 explanation of, 848 on graphing calculator, 854–855, 864–865 identity, 872–873 inconsistent and dependent systems and, 852–853 inverse of, 873–875, 885, 904–905 multiplication and, 861–866, 871–873 nonsingular, 876 in reduced row-echelon form, A–3 – A–4 singular, 876–880 solving systems using, 850–852, 879–880 square, 848 Matrix equations explanation of, 872 identities and, 872–873 inverse and, 873–875 solving systems using, 875–876 use of technology to solve, 875–876 Matrix form, 980 Maximum value explanation of, 212, 830 of functions, 212–213, 831 on graphing calculator, 217–218 Measurements, scalar, 736 Medication in bloodstream formula, 33 Members, 2 Mid-interval points, 336, 338 Midpoint, of line segment, 155 Midpoint formula, 155–156, 920 Minimum value explanation of, 212, 830 of functions, 212–213 on graphing calculator, 217–218 Minor axis, of ellipse, 929 Minors, 877–878 Minutes, 505 Mixture problems method to solve, 80–81 systems and, 799 Modeling linear and quadratic equation, 283–284 piecewise-defined functions, 245–246 step function for, 247 systems of linear equations in two variables, 799–800 Modulus, 767 Monomials, 26, 28. See also Polynomials Monotonically increasing functions, 426 Mortgage payment formula, 34 Multiple-angle identities, 641
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Index
Multiplication associative property of, 15–16 commutative property of, 15 of complex numbers, 108–110, 769–770 matrices and, 861–866, 871–873 of polynomials, 28–29 of radical expressions, 61, 62 of rational expressions, 46–48 scalar, 737, 861–862 Multiplicative identity, 16 Multiplicative inverse, 16, 17 Multiplicative property of absolute value, 97 of equality, 74–75, 87 of inequality, 87 Multiplicity even, 317 odd, 317 zeroes of, 317, 334–337 Mutually exclusive events, 1070
N Nappe, 922 Natural exponential functions, 428 Natural logarithms, 438 Natural numbers, 2 Negative angles, 507, 508 Negative association, 283 Negative exponents, 24 Negative numbers, 3, 24–25 Negative reciprocals, 171 Negative slope, 168 Nested factoring, 45 Newton-meters, 755 Newton’s law of cooling, 430–431 Newtons (N), 667 Nondistinguishable permutations, 1057 Nonexclusive events, 1069–1070 Noninvertible matrices, 876. See also Singular matrices Nonlinear association, 284 Nonlinear systems conic sections and, 958–959 of equations (See Systems of nonlinear equations) of inequalities, 822 Nonrepeating decimals, 4 Nonsingular matrices, 876 Nonterminating decimals, 3, 4 Normal force, 667 Notation/symbols for angles, 504 for composition of functions, 258 for degrees, 510 exponential, 7–8, 21 factorial, 1019–1020 function, 196–198 grouping, 255 inequality, 5, 86, 98, 99 intersection, 89 interval, 86 for inverse functions, 414 for inverse sine function, 655 mapping, 152, 259 probability, 1066 scientific, 25–26 set, 2, 86
sigma, 1021 square and cube root, 8 subscript, 1044 summation, 1021–1022 nth root, of complex numbers, 779–780 nth root theorem, 778–780 nth term of arithmetic sequence, 1028–1029 explanation of, 1018 of geometric sequence, 1035–1036 Null sets, 2 Number line, 3, 6, 86 Number puzzles, 134 Numbers. See also Complex numbers; Real numbers imaginary, 105–107, 113 irrational, 3–4, 8, 428 natural, 2 negative, 3, 24–25 positive, 3 rational, 3 sets of, 2–5 whole, 2–3 Numerical coefficients, 13
O Objective variables, 831–832 Oblique asymptotes, 364–366 Oblique triangles ambiguous case of law of sines and, 714–717 applications of law of sines and, 717–718 explanation of, 712, 783 law of sines and unique solutions and, 712–714 method to solve, 712, 713 Obtuse angles, 505 Odd functions, 208 Odd multiplicity, 317 One-dimensional graphs, 3 One-on-one functions explanation of, 412–413 finding inverse of, 414 Order, of matrices, 859, 860 Ordered pair form, 152, 191 Ordered pairs, 152 Ordered triples, 806, 807 Order of operations, 9 Orientation, of graph, 996 Orthocenter, of triangle, 926 Orthogonal, 753 Orthogonal components, of vectors, 759–760 Outputs, 14 Output values, 196
P Painted area on canvas formula, 139 Parabolas analytic, 954–959, 1008 applications of, 959 of best fit, 286–288 explanation of, 923, 954, 956, 1008 finding equation for points that form, 923 focus-directrix form of equation of, 955–958 with horizontal axis, 954–955 vertical, 954, 956 Parabolic segments, 961–963
Parallel lines equations for, 182 explanation of, 170–171 slope of, 181–182 Parallelogram method, 746 Parallelograms, 540 Parameterized solutions, 813 Parameters explanation of, 798, 995 writing equations in terms of various, 997 Parametric curves, 995–996 Parametric equations applications of, 999–1001 cycloids and, 998–999 explanation of, 386, 995, 1010 in rectangular form, 997 Parent function, 225, 232 Partial fractions explanation of, 889 rational expressions and, 889–895 Partial sums of arithmetic sequence, 1029–1030 explanation of, 1020 of geometric sequence, 1036–1037 of series, 1020 Pascal, Blaise, 1077 Pascal’s triangle, 1077–1078 Perfect cubes, 7, 40 Perfect squares, 7, 38–39 Perfect square trinomials, 30, 39, 117 Perihelion, 987 Perimeter of ellipse, 937 explanation of, 868 of regular polygons, 586 Period formula, for sine and cosine, 564 Periodic functions, 558–559 Periods explanation of, 558, 563–564 on graphing calculators, 567–568 of tangent and cotangent functions, 578–579 Permutations distinguishable, 1055–1056 on graphing calculator, 1059 nondistinguishable, 1057 Perpendicular distance, 921, 925 Perpendicular lines equations for, 182–183 explanation of, 171–172 slope of, 181 Phase angle, 772–773 (pi), 3–4 Pick’s theorem, 203 Piecewise-defined functions applications of, 245–247 domain of, 240–241 equation of, 245 explanation of, 240 on graphing calculator, 247–248 graphs of, 241–245 Pitch diameter, 12 Placeholder substitution, 40 Plane, in space, 806 Points distance between line and, 921–922 of inflection, 194 perpendicular distance from line to, 925
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Index Point-slope form explanation of, 206 to find equation model, 184–185 linear equations in, 183 Poiseuille’s law, 44 Polar axis, 965 Polar-axis symmetry, 972 Polar coordinates converted to rectangular coordinates, 968 converting from rectangular coordinates to, 967 distance formula in, 976 explanation of, 965, 1008–1009 midpoint formula in, 976 plotting points using, 965–967 Polar equations applications of, 987–988 converted to rectangular equations, 978 explanation of, 969 graphs of, 969–974 identifying conic from, 985–986 symmetry for graphs of, 971–974 Polar form applications of conics in, 987–988 conic equations in, 984–987 conic rotations in, 1012–1013 of ellipse with center at pole, 992 equation of line in, 992 explanation of, 965 standard equation of conic in, 986 Polar symmetry, 972 Pole, 965 Polygons, 586, 622 Polynomial equations checking solutions to, 777–778 explanation of, 128–129 Polynomial expressions, 26–27 Polynomial form of equation of ellipse, 930, 931 of equation of hyperbola, 944–945 Polynomial functions applications of, 324 complex, 316 graphs of, 330–339 zeroes of, 315–324 Polynomial graphs end behavior of, 331–334 guidelines for, 337–339 identification of, 330–331 turning points and, 331 with zeroes of multiplicity, 334–337 Polynomial inequalities explanation of, 377–379 on graphing calculator, 378, 379 steps to solve, 379, 382 Polynomials. See also Monomials; Trinomials addition and subtraction of, 27–28 degree of, 26 division of, 304–305 explanation of, 26–27 factoring, 35–41, 128 factoring quadratic, 36–38 families of, 26 prime, 37 products of, 28–30 quartic, 342 real, 318–319 use of remainder theorem to evaluate, 309
Population density, 358 Position vectors, 738–739 Positive angles, 507, 508 Positive association, 283 Positive numbers, 3 Positive slope, 168 Power property of equality, 131 of exponents, 21–22 of logarithms, 54–55, A–9 product to, 22 quotient to, 22 Power reduction identities, 654, 642–644 Present value equation, 468 Pressure, 20 Pressure wave, 594 Primary interval, for sinusoidal graphs, 592 Prime polynomials, 37 Principal p, 467 Principal roots, 671, 672 Principal square roots, 8, 105 Probability binomial, 1082, 1083 elementary, 1065–1066 explanation of, 1065 on graphing calculator, 1070–1071 of mutually exclusive events, 1070 of nonexclusive events, 1069–1070 properties of, 1066–1068 quick-counting and, 1068–1069 Problem solving methods, 78–81 Product property of exponents, 21–22 of logarithms, 454 of radicals, 58–59, 105 zero, 115–116 Product to power property, 22 Product-to-sum identities application of, 640, 654 explanation of, 644–646 Projectiles explanation of, 999–1000 height of, 140, 292, 298–299 motion of, 646–647, 760–761, 790 position of, 670 range of, 680, 763, 790 Proofs of complex conjugates theorem, A–7 – A–8 of factor theorem, A–7 by induction, 777, 1045–1049 of linear factorization theorem, A–8 of power property of logarithms, A–9 of product property of logarithms, A–9 of quotient property of logarithms, A–9 of remainder theorem, A–7 Proper subset, 2 Property of absolute value equations, 96 Property of negative exponents, 24 Protractors, 504 Ptolemy, 518 Push principle, 407–408 Pythagorean identities explanation of, 616, 653 formula for, 571 use of, 617, 618, 640, 729, 739
I-9
Pythagorean theorem, 63–64, 156 explanation of, 506 use of, 724, 725 Pythagorean triples, 553
Q Quadrantal angles, 508 Quadrantal points, 542 Quadrant and sign analysis, 536 Quadrants, 153 Quadratic, 115 Quadratic equations alternative method to solve, 149–150 applications of, 122 completing the square to solve, 117–118 explanation of, 114 on graphing calculator, 123–124 quadratic formula to solve, 119–122 square root property of equality and, 116–117 standard form of, 114 zero product property and, 115–116 Quadratic expressions, 61 Quadratic form explanation of, 38, 40 u-substitution to factor expressions in, 40–41, 133–134 Quadratic formula applications of, 122–123 discriminant of, 120–122 explanation of, 119 solving quadratic equations with, 119–122 Quadratic functions explanation of, 294, 316 extreme values and, 297–299 graphs of, 294–299 method to find equation of, 297 Quadratic inequalities, 376–377 Quadratic polynomials, factoring, 36–38 Quadratic regression, 286–288 Quartic polynomials, 342 Quick-counting techniques explanation of, 1068–1069 on graphing calculator, 1070–1071 Quotient property of exponents, 23–24 of logarithms, 454 of radicals, 59–60 Quotient property of logarithms, A–9 Quotients difference, 214–217 of functions, 255–257 to power property, 22
R Radians converting between degrees and, 510–511 explanation of, 508, 509 Radical expressions addition and subtraction of, 60–61 explanation of, 55 multiplication and division of, 61–63 rational exponents and, 56–58, 60 simplification of, 55–56, 59, 62, 63 Radicals explanation of, 8 product property of, 58–59, 105 quotient property of, 59–60
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I-10
Index
Radicand, 8 Radioactive elements, 473 Radius of circle, 157–159 explanation of, 542 of sphere, 422 Range, of functions, 194–195, 198 Rate of change difference quotient and, 213–217 explanation of, 167 slope as, 167–168 Ratio identities, 616, 653 Rational equations applications of, 137 explanation of, 129 method to solve, 129–130 Rational exponents explanation of, 57, 132 power property of equality and, 133 radical expressions and, 57–58, 60 solving equations with, 133 use of, 56–57 Rational expressions addition and subtraction of, 48–49 decomposition for, 892–895 explanation of, 45 fundamental property of, 45 multiplication and division of, 46–48 partial fractions and, 889–896 rewriting formulas and algebraic models and, 50–51 in simplest form, 45–46 simplifying compound fractions and, 49–50 Rational functions applications of, 354–355, 367–370 end behavior of, 346, 347 explanation of, 345–346 on graphing calculator, 380 graphs of, 352–354, 363–366 horizontal asymptotes of, 350–351, 364 with oblique and nonlinear asymptotes, 363–366 with removable discontinuities, 362–363, 370 vertical asymptotes of, 348–350, 362 writing equation of, 348 Rational inequalities, 380–381 Rationalizing the denominator, 62–63 Rational numbers, 3 Rational zeroes theorem, 320 Ratios, trigonometric, 518–520, 531–535 Raw data, 283 Rays, 504 Real number line, 556 Real numbers absolute value of, 5–6 explanation of, 4–5 order property of, 5 properties of, 15–17 trigonometry of, 542, 547–550, 556, 604 whose function value is known, 549–550 Real polynomials, 318–319 Real roots explanation of, 671 solving trigonometric functions for, 674–675 Reciprocal function, 346–347, 978 Reciprocal identities, 616, 653
Reciprocals, 16 Reciprocal square function, 346–347 Rectangles area of, 868 explanation of, 868 reference, 560–562 Rectangular coordinates converted to polar coordinates, 967 converting from polar coordinates to, 968 explanation of, 153 vectors and, 738–740 Rectangular equations, 978 Rectangular form complex numbers in, 766–768 parametric equations in, 997 Recursive sequences, 1019 Reduced row-echelon form, A–3 – A–4 Reference angles explanation of, 535, 545, 613 method to find, 535 Reference arc, 547 Reference intensity, 442 Reference rectangles, 560–562 Reflections across x-axis, 229 across y-axis, 426 horizontal, 230 vertical, 229 Refraction index, 680–681 Regression applications of, 494–495 forms of, 491 on graphing calculator, 285–286, 492 linear, 285–286 quadratic, 286–288 Regression equations, 286, 495 Regression line, 285 Regression models exponential, 492 logarithmic, 493 logistic, 494 logistics equations and, 493–494 nonlinear, 287–288 to predict trends, 288 Relations explanation of, 152 functions as, 191 graphs of, 153–155 Remainder theorem explanation of, 308–309 proof of, A–7 use of, 311, 324 Removable discontinuities explanation of, 244, 362 on graphing calculator, 370 rational functions and, 362–363 Repeated roots, 116 Repeated zeros, 407 Repeating decimals, 3 Required interest rate, 397 Residuals, 491 Resistance inductive reactance, 772 Resultant forces, 744–745 Resultant vectors, 740 Revenue formula, 136 Revenue models, 136 Richter values, 442
Right angles, 504 Right parabolic segments, 961–962 Right triangles applications of, 524–525 explanation of, 63–64, 506 finding function values using, 520 relationships in, 516 solutions to, 520–522 trigonometry of, 518–525, 602–603 Roots complex, 109 cube, 8, 56 of equation, 74 extraneous, 130, 456 on graphing calculators, 595–596 of multiplicity, 209 in [0,2], 671, 672–674 principal, 671, 672 real, 671, 674–675 repeated, 116 square (See Square roots) Root tests, 342 Rotated conics discriminant and, 983–984 explanation of, 978 rotation of axes and, 978–983 Rotation of axes computations for, 1013–1015 formulas for, 980, 981 Row-echelon form, A–3 Row operations, elementary, 850 Rule of fourths, 560, 588 r-value analysis, 969–973
S Sample outcome, 1053–1054, 1067 Sample space, 1053, 1054, 1065 Sand dune function, 250 SAS triangles, 724–726 Scalar measurements, 736 Scalar multiplication, 737, 861–862 Scalar quantities, 736 Scalars, 736 Scaled drawings, 751–752 Scale of data, 286 Scatter-plots explanation of, 283 linear/nonlinear association and, 284–285 positive/negative association and, 283–284 Scientific notation, 25–26 Secant, 523 Secant function, 565–566, 605. See also Trigonometric functions Secant lines, 182 Seconds, 505 Semicircles, 155 Semi-hyperbolas, 952 Sequences. See also Series; specific types of sequences alternating, 1019 applications of, 1022–1023 arithmetic, 1027–1031 explanation of, 1018 finding terms of, 1018–1019 finite, 1018
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Index geometric, 1034–1039 infinite, 1018 recursive, 1019–1020 Series. See also Sequences explanation of, 1018 finite, 1020 geometric, 1034 infinite, 1092–1093 infinite geometric, 1037–1038 Set notation, 2 Sets intersection of, 89 null, 2 of numbers, 2–5 Shifted form, 591 Shifts horizontal, 227–229, 590–591 vertical, 227 Sigma notation, 1021 Similar triangles, 506 Simple interest, 467 Simplest form, 45–46, 62 Sine function. See also Trigonometric functions applications of, 588–589 graphs of, 557–561, 563, 605 period formula for, 564 Sines. See also Law of sines of angle between two sides of triangle, 528 explanation of, 519, 523 sum and difference identities for, 632–634 Sine wave, 771 Singular matrices determinants and, 876–880 explanation of, 876, 877 Sinking fund, 472 Sinusoidal models, 591 Sinusoidal patterns, 588 Slope of horizontal and vertical lines, 169 of line, 166–168 as negative reciprocal, 171 positive and negative, 168 Slope formula explanation of, 167, 206 as rate of change, 167–168 Slope-intercept form explanation of, 179, 206 graph of line and, 179–183 linear equations and, 178–179 Smooth functions, 240 Solution region, 827 Solution sets, 86 Sound energy, 594 Sound waves graphing calculators and, 698–699 identities to solve application involving, 647 periodic motion of, 594–595 Spherical shells, 44 Spiral of Archimedes, 540, 977 Spring oscillation, 102 Springs, periodic motion of, 593–594 Square matrices, 848 Square root function, 225 Square root property of equality, 116–117 Square roots of complex numbers, 327 explanation of, 8, 438
notation for, 8 principal, 8, 105 simplification of, 55–56 Squares binomial, 30–31 completing the, 114, 117–118, 294–295, 928, 931, 934, 944–947, 955 difference of two, 30, 39–40 factoring difference of two, 38–39 perfect, 38–39 Square systems, 811 Squaring function, 225 SSA triangles, 714–717 SSS triangles law of cosines and, 726–727 method to solve, 724, 726 Standard angles, 508, 613, 983 Standard form of circle, 157, 928 of complex numbers, 106–107 equation of ellipse in, 929, 935 explanation of, 591 of hyperbola, 942–944 of linear equations, 206 of polynomial expressions, 27 of quadratic equations, 114 of quadratic functions, 294 of systems of equations, 796 Standard position, of angles, 508 Static equilibrium, 791 Static trigonometry, 528 Statistics, 1065 Steinmetz, Charles Proteus, 771 Step functions, 246–247 Stirling’s formula, 1062 Straight angles, 504 Stretches, vertical, 230–231 Subscript notation, 1044 Substitution checking complex root by, 109 checking solutions by, 75 explanation of, 795 placeholder, 40 to solve nonlinear systems, 820 to solve system of equations, 795–796, 844–845 Subtends, 508 Subtraction of complex numbers, 107 of matrices, 860–861 of polynomials, 27–28 of radical expressions, 60–61 of rational expressions, 48–49 of vectors, 741 Sum and difference identities for cosine, 630–632 key concepts on, 692 for sine and tangent, 632–634 Sum identity, for cosine, 631 Summation applications of, 1052 explanation of, 1021 index of, 1021 properties of, 1022 Summation notation, 1021–1022 Sum-to-product identities, 645–646 Supplement, method to find angle, 504–505
I-11
Supplementary angles, 504 Surface, illumination of, 528 Surface area. See also Area of cylinder, 44, 83, 126, 268, 372 of frustum, 67 of rectangular box, 301 Symbols. See Notation/symbols Symmetry axis of, 226 to find function values, 557–558 graphs and, 206–209, 337 of graphs of polar equations, 971–974, 978 identities due to, 616 to locate points on unit circle, 543, 544 to origin, 208–209 Synthetic division, 306–308, A–1 – A–2 Systems of inequalities. See also Linear inequalities explanation of, 828 on graphing calculator, 834–835 linear programming and, 830–834 solution to, 828–829 Systems of linear equations augmented matrix of, 848–849, 851–852 determinants and Cramer’s Rule to solve, 886–888 explanation of, 794 inconsistent and dependent, 798, 852–853 matrices and, 848–855 Systems of linear equations in three variables applications of, 812–813 elimination to solve, 808–810 explanation of, 806 inconsistent and dependent, 810–812 solutions to, 806–807 visualizing solutions to, 806 Systems of linear equations in two variables elimination to solve, 796–798 explanation of, 794 on graphing calculator, 801 graphs to solve, 794–795, 801 inconsistent and dependent, 798 modeling and, 799–800 substitution to solve, 794–795 Systems of logarithmic equations, 821 Systems of nonlinear equations applications of, 822–823 conic sections and, 958–959 elimination to solve, 820–821 explanation of, 819 possible solutions for, 819 substitution to solve, 820 Systems of nonlinear inequalities applications of, 829–830 explanation of, 822
T Tangent functions. See also Trigonometric functions applications of, 580–581 characteristics of, 577 coefficient A and, 577–578 coefficient B and, 578–580 on graphing calculators, 581–582 graphs of, 574–580, 606 Tangent lines, 586
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I-12
Index
Tangents explanation of, 519, 523, 623 origin of term, 586 sum and difference identities for, 632–634 Temperature measurement, 203, 803 Terminal side, of angle, 507, 508 Terminating decimals, 3 Theta (), 504 30-60-90 triangles, 506, 507, 518–519, 531 Threshold of audibility, 442 Tidal motion, 611–612 Timing falling object formula, 66 Toolbox functions direct variation and, 389–392 explanation of, 225–226 Transcendental functions, 436, 676 Transformations of general function, 231–233 graphs of exponential functions using, 427, 429 graphs of logarithmic functions using, 440 horizontal reflections and, 230 nonrigid, 232 of parent graphs, 226 rigid, 232 solving equations that involve, 684–685 of trigonometric functions, 592 of trigonometric graphs, 557, 560, 607–608 use of program to explore, 280–281 vertical reflection and, 229 via composition, 281 Translations explanation of, 227–228 horizontal, 590–593 vertical, 588–590 Transverse axis, 941 Trapezoid, perimeter of, 733 Tree diagrams, 1053–1054 Trial-and-error process, 37, 38 Trials, 1053 Triangles area of, 372, 629, 784, 857, 895–896 equilateral, 516 explanation of, 505 45-45-90, 506, 507, 518 law of sines to solve, 713–718 oblique, 712–718, 783 properties of, 505–507 relationships in right, 516 right, 63–64, 506 SAS, 724–726 similar, 506 SSA, 714–717 SSS, 724, 726–727 sum of tangents of angles of, 652 30-60-90, 506, 507, 518–519, 531 trigonometry of right, 518–525 unit circle and special, 543–546 Triangular form, matrices in, 850 Triangularizating, of augmented matrix, 850–852 Trichotomy axiom, 827 Trigonometric equations algebraic methods to solve, 682–683 applications using, 685–687, 695 explanation of, 671, 694, 699 finding multiple solutions to, 672–674
of form A sin (Bx C) D k, 684–685 graphing technology to solve, 676–677 identities to solve, 676, 683–684 inequalities and, 699 inverse functions and principal roots and, 672 principal roots, roots in [0,2], and real roots and, 671 solved for all real roots, 674–675 Trigonometric form complex numbers in, 766–768, 776, 786 equation of line in, 688 products and quotients in, 769–770 Trigonometric functions of any angle, 533 applications of, 537–538 domains of, 548 evaluation of, 532–534, 536, 537 explanation of, 531, 613 fundamental identities to write, 618–619 on graphing calculators, 590, 592 hyperbolic, 630 inverse, 549, 654–664, 693–694 maximum and minimum values of, 563 points on unit circle and, 546–547 signs of, 535–536 transformation of, 592 value at t, 549, 550 values of, 548–550 Trigonometric graphs of cosecant and secant functions, 565–566, 605 explanation of, 221, 557 of sine and cosine functions, 557–565, 605 of tangent and cotangent functions, 574–580, 606 transformations and, 557, 560, 607–608 Trigonometric ratios, 518–520, 531–535 Trigonometric values, 521 Trigonometry coordinate plane and, 531–538, 603–604 dynamic, 528 origins of, 504 of real numbers, 542, 547–550, 556, 604 of right triangles, 518–525, 602–603 static, 528 Trinomials. See also Polynomials explanation of, 26 factoring, 36–37 perfect square, 30, 39, 117 Tunnel clearance, 824 Turning points, 331
U Unbounded region, 830 Uniform motion, 80, 800 Union, 89 Uniqueness property, 429–430, 457 Unique solutions, 807, 808 Unit circles explanation of, 542, 604 finding points on, 542–543, 545–546 special triangles and, 543–546 trigonometric functions and points on, 546–547 Unit vectors, 743, 757
Upper and lower bounds property, 322–323 Upper bound, 323 u-substitution to factor quadratic forms, 40–41, 133–134 to solve trigonometric equations, 675
V Variable amplitudes, 611–612 Variables, 5, 152 Variable terms, 13 Variation constant of, 389 direct, 389–392 inverse, 392–393 joint, 393–394 Vector diagrams, 711 Vectors algebraic, 743 applications of, 744–746, 755–756, 785–786 components of, 738–740, 746–747, 753–755, 759 dot products and angle between, 756–758 equilibrium and, 752–753, 791 equivalent, 738 explanation of, 736, 784–785 force, 756 on graphing calculators, 746–747 height of projectile and, 760–761 horizontal unit, 742 initial and terminal points of, 737 magnitude of, 739, 749 notation and geometry of, 736–737 operations on, 740–741 position, 738–739 projections of, 753, 758–760 properties of, 742, 765 rectangular coordinate system and, 738–740 resultant, 740 unit, 743, 757 Velocity angular, 512–513 explanation of, 213–215, 512 linear, 512, 513 Verbal information, translated into mathematical model, 13–14 Vertex of ellipse, 929 explanation of, 504, 829, 922 of hyperbola, 941 Vertex formula, 296–297 Vertex/intercept formula, 301 Vertical asymptotes domain and, 348–349 explanation of, 348 multiplicities and, 349–350 of rational functions, 348–350, 362 Vertical axis, 806 Vertical-axis symmetry, 972 Vertical boundary lines, 193–194 Vertical change, 166–167 Vertical format, 14, 28 Vertical hyperbolas, 942 Vertical lines, 169–170 Vertical line test for functions, 192–193 Vertical parabolas, 954, 956 Vertical reflections, 229
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Index Vertical shifts, 588. See also Vertical translations Vertical stretches, 231 Vertical translations, 227, 588–590 Vertical unit vectors, 742 Voltage, 772 Volume of box, 44 of cone, 688–689, 837 of conical shell, 44 of cylinder, 688 of cylindrical shell, 44 formula for pressure and, 20 of open box, 314 of sphere, 238 of spherical shell, 44 surface area of cylinder with fixed, 372
W Whole numbers, 2–3 Witch of Agnesi, 1004 Work, vector applications involving, 755–756 Wrapping function, 556
X x-axis, 229 x-intercepts, 166, 298, 595–596 xy-plane, 153
Y y-axis, 207, 426 y-intercepts, 166
Z Zeno of Elea, 1092 Zeroes approximation of real, 344–345 complex, 407 division with, 7, 306, 307 as exponents, 24–25 of function, 209, 217 on graphing calculators, 595–596 of multiplicity, 317, 334–337 of polynomial functions, 315–324 repeated, 407 use of factor theorem to find, 310–311 Zero exponent property, 24 Zero placeholder, 307 Zero product property, 115–116
I-13
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▼
Special Constants
e 2.7183
▼
▼
1.0472 3
3.1416 2
3.1416
▼
/Users/user-s178/Desktop/22:12:08
12 1.4142
13 1.7321
0.2618 12 13 0.5774 3
1x a21x b2 x2 1a b2x ab
1a b21a b2 a2 b2
1a b2 2 a2 2ab b2
1a b2 2 a2 2ab b2
1a b2 3 a3 3a2b 3ab2 b3
1a b2 3 a3 3a2b 3ab2 b3
a2 b2 1a b21a b2
a2 2ab b2 1a b2 2
a2 2ab b2 1a b2 2
a b 1a b2 1a ab b 2 3
2
a b 1a b21a ab b 2
2
3
3
2
2
▼
Formulas from Plane Geometry: P S perimeter, C S circumference, A S area Rectangle
Square
w
P 2l 2w
Regular Polygon s
P 4s
l
A s2
A lw
Parallelogram
Trapezoid
h
A bh
A
b
Triangle Sum of angles
C
A
a2 b2 c2
Ellipse
b
c
b
Circle
a
a
C 221a b 2
b
2
4 A ab 3
a
▼
Formulas from Solid Geometry: S S surface area, V S volume Rectangular Solid
Cube
Right Circular Cylinder
V lwh
V s3
V r2h
S lw lh wh
S 6s2
S 2r 1r h2
Right Circular Cone
Right Square Pyramid
Sphere
1 V r2h 3
1 V b2h 3
4 V r3 3
S r 1r s2
S b2 b2b2 4h2
S 4r2
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
Front endsheets Color: 5 Pages: 2, 3
Slope-Intercept Form (slope m, y-intercept b)
y y1 m1x x1 2
y mx b, where b y1 mx1
Parallel Lines
Perpendicular Lines
Slopes Are Equal: m1 m2
Slopes Have a Product of 1: m1m2 1
Intersecting Lines
Dependent (Coincident) Lines
Slopes Are Unequal: m1 m2
Slopes and y-Intercepts Are Equal: m1 m2, b1 b2
Logarithms and Logarithmic Properties y logb x 3 b y x
logb b 1
logb bx x
blogb x x logb
logb 1 0 logc x
M logb M logb N N
logb x logb c
logb MP P # logb M
Applications of Exponentials and Logarithms A S amount accumulated
P S initial deposit, p S periodic payment
n S compounding periods/year
r S interest rate per year
r R S interest rate per time period a b n
t S time in years
Interest Compounded Continuously
r A P a1 b n
A Pert
Accumulated Value of an Annuity
Payments Required to Accumulate Amount A p
AR 11 R2 nt 1
Sequences and Series: a1 S 1st term, an S nth term, Sn S sum of n terms, d S common difference, r S common ratio
b ▼
Point-Slope Form
p A 11 R2 nt 1 R
Right Parabolic Segment
A ab
Equation of Line Containing P1 and P2
nt
C 2r d
y2 y1 ¢y x2 x1 ¢x
Equation of Line Containing P1 and P2
Interest Compounded n Times per Year
r
A r2 b
m
logb MN logb M logb N
h
1 A bh 2
Pythagorean Theorem
A B C 180°
2
h
Right Triangle
B
a
▼
Triangle
a
h 1a b2 2
s
P ns a A P 2
Slope of Line Containing P1 and P2
d 21x2 x1 2 2 1y2 y1 2 2
Special Factorizations x2 1a b2x ab 1x a21x b2
Formulas from Analytical Geometry: P1 S (x1, y1), P2 S (x2, y2) Distance between P1 and P2
Special Products
3
▼
0.5236 6 13 0.8660 2
0.7854 4 12 0.7071 2
Arithmetic Sequences
Geometric Sequences
a1, a2 a1 d, a3 a1 2d, . . . , an a1 1n 12d
a1, a2 a1r, a3 a1r2, . . . , an a1rn1
Sn Sn ▼
a1 a1rn 1r a1 Sq ; r 6 1 1r
n 1a1 an 2 2
Sn
n 2a1 1n 12d 2
Binomial Theorem n n n 1a b2 n a b anb0 a b an1b1 a b an2b2 0 1 2 n! n1n 121n 22
# # # 132122112
# # #
a
n n ba 1bn1 a ba0bn n1 n
n n! a b ; k k!1n k2!
0! 1
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▼
Special Constants
e 2.7183
▼
▼
1.0472 3
3.1416 2
3.1416
▼
/Users/user-s178/Desktop/22:12:08
12 1.4142
13 1.7321
0.2618 12 13 0.5774 3
1x a21x b2 x2 1a b2x ab
1a b21a b2 a2 b2
1a b2 2 a2 2ab b2
1a b2 2 a2 2ab b2
1a b2 3 a3 3a2b 3ab2 b3
1a b2 3 a3 3a2b 3ab2 b3
a2 b2 1a b21a b2
a2 2ab b2 1a b2 2
a2 2ab b2 1a b2 2
a b 1a b2 1a ab b 2 3
2
a b 1a b21a ab b 2
2
3
3
2
2
▼
Formulas from Plane Geometry: P S perimeter, C S circumference, A S area Rectangle
Square
w
P 2l 2w
Regular Polygon s
P 4s
l
A s2
A lw
Parallelogram
Trapezoid
h
A bh
A
b
Triangle Sum of angles
C
A
a2 b2 c2
Ellipse
b
c
b
Circle
a
a
C 221a b 2
b
2
4 A ab 3
a
▼
Formulas from Solid Geometry: S S surface area, V S volume Rectangular Solid
Cube
Right Circular Cylinder
V lwh
V s3
V r2h
S lw lh wh
S 6s2
S 2r 1r h2
Right Circular Cone
Right Square Pyramid
Sphere
1 V r2h 3
1 V b2h 3
4 V r3 3
S r 1r s2
S b2 b2b2 4h2
S 4r2
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
Front endsheets Color: 5 Pages: 2, 3
Slope-Intercept Form (slope m, y-intercept b)
y y1 m1x x1 2
y mx b, where b y1 mx1
Parallel Lines
Perpendicular Lines
Slopes Are Equal: m1 m2
Slopes Have a Product of 1: m1m2 1
Intersecting Lines
Dependent (Coincident) Lines
Slopes Are Unequal: m1 m2
Slopes and y-Intercepts Are Equal: m1 m2, b1 b2
Logarithms and Logarithmic Properties y logb x 3 b y x
logb b 1
logb bx x
blogb x x logb
logb 1 0 logc x
M logb M logb N N
logb x logb c
logb MP P # logb M
Applications of Exponentials and Logarithms A S amount accumulated
P S initial deposit, p S periodic payment
n S compounding periods/year
r S interest rate per year
r R S interest rate per time period a b n
t S time in years
Interest Compounded Continuously
r A P a1 b n
A Pert
Accumulated Value of an Annuity
Payments Required to Accumulate Amount A p
AR 11 R2 nt 1
Sequences and Series: a1 S 1st term, an S nth term, Sn S sum of n terms, d S common difference, r S common ratio
b ▼
Point-Slope Form
p A 11 R2 nt 1 R
Right Parabolic Segment
A ab
Equation of Line Containing P1 and P2
nt
C 2r d
y2 y1 ¢y x2 x1 ¢x
Equation of Line Containing P1 and P2
Interest Compounded n Times per Year
r
A r2 b
m
logb MN logb M logb N
h
1 A bh 2
Pythagorean Theorem
A B C 180°
2
h
Right Triangle
B
a
▼
Triangle
a
h 1a b2 2
s
P ns a A P 2
Slope of Line Containing P1 and P2
d 21x2 x1 2 2 1y2 y1 2 2
Special Factorizations x2 1a b2x ab 1x a21x b2
Formulas from Analytical Geometry: P1 S (x1, y1), P2 S (x2, y2) Distance between P1 and P2
Special Products
3
▼
0.5236 6 13 0.8660 2
0.7854 4 12 0.7071 2
Arithmetic Sequences
Geometric Sequences
a1, a2 a1 d, a3 a1 2d, . . . , an a1 1n 12d
a1, a2 a1r, a3 a1r2, . . . , an a1rn1
Sn Sn ▼
a1 a1rn 1r a1 Sq ; r 6 1 1r
n 1a1 an 2 2
Sn
n 2a1 1n 12d 2
Binomial Theorem n n n 1a b2 n a b anb0 a b an1b1 a b an2b2 0 1 2 n! n1n 121n 22
# # # 132122112
# # #
a
n n ba 1bn1 a ba0bn n1 n
n n! a b ; k k!1n k2!
0! 1
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/Users/user-s178/Desktop/22:12:08
The Toolbox and Other Functions
▼
linear
linear
y
y
identity
constant
y
y mx b
y
Fundamental Counting Principle: Given an experiment with two tasks completed in sequence, if the first can be completed in m ways and the second in n ways, the experiment can be completed in m ⴛ n ways.
yb
yx
Permutations—Order Is a Consideration: (Al, Bo, Ray) and (Ray, Bo, Al) finish the race in a different order. n! . The permutations of r objects selected from a set of n (unique) objects is given by nPr ⴝ (n ⴚ r)! Combinations—Order Is Not a Consideration: (Al, Bo, Ray) and (Ray, Bo, Al) form the same committee. n! . The combinations of r objects selected from a set of n (unique) objects is given by nCr ⴝ r!(n ⴚ r)! Basic Probability: Given S is a sample space of equally likely events and E is an event defined relative to S. n(E) , where n1E2 and n1S2 represent the number of elements in each. The probability of E is P(E) ⴝ n(S) For any event E1: 0 P1E1 2 1 and P1E1 2 P1~E1 2 1.
(0, b)
(0, b)
x
x
x y mx b
squaring
y
m 0, b 0
cubing
y
square root
y
y
y x2
y x x
y x3
y x
x
cube root
x
floor function
reciprocal quadratic
y
▼
Probability of E1 or E2
P1E1 傽 E2 2 P1E1 2P1E2 2
P1E1 ´ E2 2 P1E1 2 P1E2 2 P1E1 傽 E2 2
Conic Sections y
y y
Probability of E1 and E2 x
reciprocal
y y x
y
x
m 1, b 0
m 0, b 0
m 0, b 0
absolute value
Quick Counting and Probability
1 x
3
y x
r x
1 2
x
x
x
k
exponential
exponential
y
logarithmic
y y bx
y bx
(a, 0)
x
x
1
x
(0,
)
vertical reflections vertical stretches/compressions
S
S
y af 1x h2 k S
y f 1x2
horizontal shift h units, opposite direction of sign
vertical shift k units, same direction as sign
⌬y f(x2) ⴚ f(x1) ⴝ ⌬x x2 ⴚ x1
Back endsheets Color: 5 Pages: 4, 5
(h, k) central hyperbola
(y k)2 b2
1
(a, 0)
x2 a2
y2 b2
1
x
If a b, the ellipse is oriented vertically.
(y k)2 b2
(0, b)
x2 a2
c2
y2 b2
1
p0
(0, p) x
x
If term containing y leads, the hyperbola is oriented vertically.
a2 b2
y
1 y p
(c, 0) (0, b)
x2 4py vertical parabola focus (0, p) directrix y p y
( p, 0) (x h)2 a2
h
For linear function models, the average rate of change on the interval 3x1, x2 4 is constant, and given by the slope formula: ¢y y2 y1 . The average rate of change for other function models is non-constant. By writing the slope formula in function form x2 x1 ¢x using y1 f 1x1 2 and y2 f 1x2 2, we can compute the average rate of change of other functions on this interval:
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
hyperbola with center at (h, k)
k
(c, 0)
Average Rate of Change of f(x)
c2 |a2 b2|
Transformations of Basic Graphs Transformation of Given Function
(c, 0)
x
y
Given Function
(c, 0)
(0, b) c 1a
(h a, k) (x h)2 a2
h
c 1 ae⬔bx
1
1
▼
y
x
h
ellipse with center at (h, k), a b
(0, b)
x2 y2 r2
yc
y logb x
(h, k) (h, k b)
central ellipse
(x, y)
(0, 0)
y
y
(h a, k)
(x h)2 (y k)2 r2 r
logistic
k
(h, k b)
(h, k)
central circle
▼
y
circle with center at (h, k)
1
y x2
p0
x p y2 4px horizontal parabola focus ( p, 0) directrix x p
x
cob19529_es.indd Page Sec1:3 12/22/08 9:46:51 PM user-s178
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The Toolbox and Other Functions
▼
linear
linear
y
y
identity
constant
y
y mx b
y
Fundamental Counting Principle: Given an experiment with two tasks completed in sequence, if the first can be completed in m ways and the second in n ways, the experiment can be completed in m ⴛ n ways.
yb
yx
Permutations—Order Is a Consideration: (Al, Bo, Ray) and (Ray, Bo, Al) finish the race in a different order. n! . The permutations of r objects selected from a set of n (unique) objects is given by nPr ⴝ (n ⴚ r)! Combinations—Order Is Not a Consideration: (Al, Bo, Ray) and (Ray, Bo, Al) form the same committee. n! . The combinations of r objects selected from a set of n (unique) objects is given by nCr ⴝ r!(n ⴚ r)! Basic Probability: Given S is a sample space of equally likely events and E is an event defined relative to S. n(E) , where n1E2 and n1S2 represent the number of elements in each. The probability of E is P(E) ⴝ n(S) For any event E1: 0 P1E1 2 1 and P1E1 2 P1~E1 2 1.
(0, b)
(0, b)
x
x
x y mx b
squaring
y
m 0, b 0
cubing
y
square root
y
y
y x2
y x x
y x3
y x
x
cube root
x
floor function
reciprocal quadratic
y
▼
Probability of E1 or E2
P1E1 傽 E2 2 P1E1 2P1E2 2
P1E1 ´ E2 2 P1E1 2 P1E2 2 P1E1 傽 E2 2
Conic Sections y
y y
Probability of E1 and E2 x
reciprocal
y y x
y
x
m 1, b 0
m 0, b 0
m 0, b 0
absolute value
Quick Counting and Probability
1 x
3
y x
r x
1 2
x
x
x
k
exponential
exponential
y
logarithmic
y y bx
y bx
(a, 0)
x
x
1
x
(0,
)
vertical reflections vertical stretches/compressions
S
S
y af 1x h2 k S
y f 1x2
horizontal shift h units, opposite direction of sign
vertical shift k units, same direction as sign
⌬y f(x2) ⴚ f(x1) ⴝ ⌬x x2 ⴚ x1
Back endsheets Color: 5 Pages: 4, 5
(h, k) central hyperbola
(y k)2 b2
1
(a, 0)
x2 a2
y2 b2
1
x
If a b, the ellipse is oriented vertically.
(y k)2 b2
(0, b)
x2 a2
c2
y2 b2
1
p0
(0, p) x
x
If term containing y leads, the hyperbola is oriented vertically.
a2 b2
y
1 y p
(c, 0) (0, b)
x2 4py vertical parabola focus (0, p) directrix y p y
( p, 0) (x h)2 a2
h
For linear function models, the average rate of change on the interval 3x1, x2 4 is constant, and given by the slope formula: ¢y y2 y1 . The average rate of change for other function models is non-constant. By writing the slope formula in function form x2 x1 ¢x using y1 f 1x1 2 and y2 f 1x2 2, we can compute the average rate of change of other functions on this interval:
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
hyperbola with center at (h, k)
k
(c, 0)
Average Rate of Change of f(x)
c2 |a2 b2|
Transformations of Basic Graphs Transformation of Given Function
(c, 0)
x
y
Given Function
(c, 0)
(0, b) c 1a
(h a, k) (x h)2 a2
h
c 1 ae⬔bx
1
1
▼
y
x
h
ellipse with center at (h, k), a b
(0, b)
x2 y2 r2
yc
y logb x
(h, k) (h, k b)
central ellipse
(x, y)
(0, 0)
y
y
(h a, k)
(x h)2 (y k)2 r2 r
logistic
k
(h, k b)
(h, k)
central circle
▼
y
circle with center at (h, k)
1
y x2
p0
x p y2 4px horizontal parabola focus ( p, 0) directrix x p
x
cob19529_es.indd Page Sec1:4 12/22/08 9:46:52 PM user-s178
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Commonly used, small case Greek letters
▼
␣
alpha

beta
␥
gamma
␦
delta
⑀
epsilon
zeta
theta
lamda
mu
pi
rho
sigma
phi
psi
omega
Trigonometric Functions of a Real Number sin t y
1 sec t ; x 0 x
1 csc t ; y 0 y
Reciprocal Identities
t
y tan t ; x 0 x x cot t ; y 0 y
r1 1
▼
Trigonometry and the Coordinate Plane cos
x r
r sec , x 0 x
sec a
y r
y tan , x 0 x
r csc , y 0 y
x cot , y 0 y
sin
tan
sin cos
sin2 cos2 1
sin12 sin
csc
1 sin
cot
cos sin
1 tan2 sec2
cos12 cos
cot
1 tan
1 cot2 csc2
tan12 tan
xb cos x 2
5
(x, y)
For P1x, y2 a point on the terminal side of an angle in standard position:
r
y
r 5
▼ 5
x
x
Double-Angle Identities
sec ▼
csc
hyp opp
cot
hyp
opp
▼
tan
csc
sec
cot
0°
0
1
0
—
1
—
30°
1 2
13 2
1 13
2
2 13
13
45°
12 2
12 2
1
12
12
1
60°
13 2
1 2
13
2 13
2
1 13
90°
1
0
—
1
—
0
B
√2x
2x 1x 30
A
A 45
√3x
C
1x
y csc t
y 1
1
2
1
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
3 2
y
y sec t
2
2
t 1
Front endsheets Color: 5 Pages: 6, 7
2
t
1 cos tan 2 sin
2
2
1
1 cos 122 1 cos 122
sin 1 cos
Product-to-Sum Identities
▼
Sum-to-Product Identities
sin ␣ sin  2cosa
␣ ␣ b sin a b 2 2
C
1 cos ␣ cos  cos1␣ 2 cos1␣ 2 2
cos ␣ cos  2cosa
1 sin ␣ sin  cos1␣ 2 cos1␣ 2 2
cos ␣ cos  2sin a
1
y cot t
2
1 cos ␣ sin  sin1␣ 2 sin1␣ 2 2
▼
tan2
1 cos 122
1x
y tan t 4 ,
3 2
cos2
2
␣ ␣ bcos a b 2 2
1
y cos t
y sin t
1 cos 2 A 2
1 cos 122
sin ␣ sin  2sin a
Graphs of the Trigonometric Functions y
Power Reduction Identities
1 sin ␣ cos  sin1␣ 2 sin1␣ 2 2
60
45
▼
sin2
adj
B cos
tan␣ tan  1 tan ␣tan 
1 cos sin 2 A 2
adj opp
▼
sin
Half-Angle Identities
cos
2 tan ␣ tan12␣2 1 tan2 ␣
Special Triangles and Special Angles
2
1 2sin2␣
opp tan adj
opp sin hyp
hyp adj
▼
2cos2␣ 1
For right ¢ABC with indicated sides adjacent and opposite to acute angle :
tan1␣ 2
xb sec x 2
sin12␣2 2sin ␣ cos ␣
5
sin1␣ 2 sin ␣ cos  cos ␣ sin 
cot a xb tan x 2 csc a
Sum and Difference Identities cos1␣ 2 cos ␣ cos  sin ␣ sin 
xb sin x 2
cos12␣2 cos ␣ sin ␣
Right Triangle Trigonometry adj cos hyp
▼
cos a
xb csc x 2
2
▼
Identities due to Symmetry
1 cos
tan a xb cot x 2
y
Pythagorean Identities
Cofunction Identities sin a
▼
Ratio Identities
sec
(x, y)
For any real number t and point P1x, y2 on the unit circle associated with t: cos t x
Fundamental Identities
Law of Sines
C
sin B sin A sin C a c b 3 2
t ▼
Area of a Triangle 1 A bc sin A 2
a c B
␣ ␣ b sin a b 2 2
Law of Cosines a2 b2 c2 2bc cos A
b A
▼
␣ ␣ b cosa b 2 2
b2 a2 c2 2ac cos B c2 a2 b2 2ab cos C
cob19529_es.indd Page Sec1:4 12/22/08 9:46:52 PM user-s178
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/Users/user-s178/Desktop/22:12:08
Commonly used, small case Greek letters
▼
␣
alpha

beta
␥
gamma
␦
delta
⑀
epsilon
zeta
theta
lamda
mu
pi
rho
sigma
phi
psi
omega
Trigonometric Functions of a Real Number sin t y
1 sec t ; x 0 x
1 csc t ; y 0 y
Reciprocal Identities
t
y tan t ; x 0 x x cot t ; y 0 y
r1 1
▼
Trigonometry and the Coordinate Plane cos
x r
r sec , x 0 x
sec a
y r
y tan , x 0 x
r csc , y 0 y
x cot , y 0 y
sin
tan
sin cos
sin2 cos2 1
sin12 sin
csc
1 sin
cot
cos sin
1 tan2 sec2
cos12 cos
cot
1 tan
1 cot2 csc2
tan12 tan
xb cos x 2
5
(x, y)
For P1x, y2 a point on the terminal side of an angle in standard position:
r
y
r 5
▼ 5
x
x
Double-Angle Identities
sec ▼
csc
hyp opp
cot
hyp
opp
▼
tan
csc
sec
cot
0°
0
1
0
—
1
—
30°
1 2
13 2
1 13
2
2 13
13
45°
12 2
12 2
1
12
12
1
60°
13 2
1 2
13
2 13
2
1 13
90°
1
0
—
1
—
0
B
√2x
2x 1x 30
A
A 45
√3x
C
1x
y csc t
y 1
1
2
1
ISBN: 0-07-351952-9 Author: John W. Coburn Title: Algebra and Trigonometry, 2e
3 2
y
y sec t
2
2
t 1
Front endsheets Color: 5 Pages: 6, 7
2
t
1 cos tan 2 sin
2
2
1
1 cos 122 1 cos 122
sin 1 cos
Product-to-Sum Identities
▼
Sum-to-Product Identities
sin ␣ sin  2cosa
␣ ␣ b sin a b 2 2
C
1 cos ␣ cos  cos1␣ 2 cos1␣ 2 2
cos ␣ cos  2cosa
1 sin ␣ sin  cos1␣ 2 cos1␣ 2 2
cos ␣ cos  2sin a
1
y cot t
2
1 cos ␣ sin  sin1␣ 2 sin1␣ 2 2
▼
tan2
1 cos 122
1x
y tan t 4 ,
3 2
cos2
2
␣ ␣ bcos a b 2 2
1
y cos t
y sin t
1 cos 2 A 2
1 cos 122
sin ␣ sin  2sin a
Graphs of the Trigonometric Functions y
Power Reduction Identities
1 sin ␣ cos  sin1␣ 2 sin1␣ 2 2
60
45
▼
sin2
adj
B cos
tan␣ tan  1 tan ␣tan 
1 cos sin 2 A 2
adj opp
▼
sin
Half-Angle Identities
cos
2 tan ␣ tan12␣2 1 tan2 ␣
Special Triangles and Special Angles
2
1 2sin2␣
opp tan adj
opp sin hyp
hyp adj
▼
2cos2␣ 1
For right ¢ABC with indicated sides adjacent and opposite to acute angle :
tan1␣ 2
xb sec x 2
sin12␣2 2sin ␣ cos ␣
5
sin1␣ 2 sin ␣ cos  cos ␣ sin 
cot a xb tan x 2 csc a
Sum and Difference Identities cos1␣ 2 cos ␣ cos  sin ␣ sin 
xb sin x 2
cos12␣2 cos ␣ sin ␣
Right Triangle Trigonometry adj cos hyp
▼
cos a
xb csc x 2
2
▼
Identities due to Symmetry
1 cos
tan a xb cot x 2
y
Pythagorean Identities
Cofunction Identities sin a
▼
Ratio Identities
sec
(x, y)
For any real number t and point P1x, y2 on the unit circle associated with t: cos t x
Fundamental Identities
Law of Sines
C
sin B sin A sin C a c b 3 2
t ▼
Area of a Triangle 1 A bc sin A 2
a c B
␣ ␣ b sin a b 2 2
Law of Cosines a2 b2 c2 2bc cos A
b A
▼
␣ ␣ b cosa b 2 2
b2 a2 c2 2ac cos B c2 a2 b2 2ab cos C