Calculus: Early Transcendentals 9th Edition

Published by Cengage Learning
ISBN 10: 1337613924
ISBN 13: 978-1-33761-392-7

Chapter 5 - Review - Exercises - Page 430: 30

Answer

$\int sin~x~cos(cos~x)~dx =-sin(cos~x)+C$

Work Step by Step

$\int sin~x~cos(cos~x)~dx$ Let $~u = cos~x$ $\frac{du}{dx} = -sin~x$ $dx = -\frac{du}{sin~x}$ $\int (sin~x)(cos~u)~(-\frac{du}{sin~x})$ $=\int -cos~u~du$ $=-sin~u+C$ $=-sin(cos~x)+C$
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