Trigonometry (10th Edition)

by Lial, Margaret L.; Hornsby, John; Schneider, David I.; Daniels, Callie

Published by Pearson

ISBN 10: 0321671775

ISBN 13: 978-0-32167-177-6

Chapter 1 - Trigonometric Functions - Section 1.2 Angle Relationships and Similar Triangles - 1.2 Exercises - Page 20: 72d

Answer

$CG~feet = EG~paces$

Work Step by Step

$\frac{CG~feet}{1~foot} = \frac{AG}{AD} = \frac{EG}{BD} = \frac{EG~paces}{1~pace}$ $\frac{CG~feet}{1} = \frac{EG~paces}{1}$ $CG~feet = EG~paces$

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