Basic College Mathematics (9th Edition)

by Lial, Margaret L.; Salzman, Stanley A.; Hestwood, Diana L.

Published by Pearson

ISBN 10: 0321825535

ISBN 13: 978-0-32182-553-7

Chapter 6 - Percent - Review Exercises - Page 471: 93

Answer

(a) 96.0% have a smoke alarm (b) 45.9% have a carbon monoxide detector

Work Step by Step

$\frac{part}{whole}=\frac{percent}{100}$ (a) 965 out of 1005 have a smoke alarm $\frac{965}{1005}=\frac{p}{100}$ cross multiply to solve for p $1005p=(965)(100)$ $1005p\div1005=96500\div1005$ $p=96.0199$ (b) 461 out of 1005 have a carbon monoxide detector $\frac{461}{1005}=\frac{p}{100}$ cross multiply to solve for p $1005p=(461)(100)$ $1005p\div1005=46100\div1005$ $p=45.8706$

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