Calculus (3rd Edition)

Published by W. H. Freeman
ISBN 10: 1464125260
ISBN 13: 978-1-46412-526-3

Chapter 3 - Differentiation - 3.3 Product and Quotient Rules - Exercises - Page 122: 49

Answer

$1$

Work Step by Step

f(x) = $x^{2}e^{-x}$ f'(x) = $-x^{2}e^{-x}+2xe^{-x}$ f(a) = $a^{2}e^{-a}$ f'(a) = $-a^{2}e^{-a}+2ae^{-a}$ y = f'(a)(x-a)+f(a) y = $(-a^{2}e^{-a}+2ae^{-a})(x-a)+a^{2}e^{-a}$ origin (0, 0) replace x = 0 and y =0 0 = $(-a^{2}e^{-a}+2ae^{-a})(0-a)+a^{2}e^{-a}$ 0 = $(a^{3}-2a^{2}+a^{2})e^{-a}$ 0 = $(a^{3}-a^{2})e^{-a}$ 0 = $(a-1)a^{2}e^{-a}$ a = 0, 1 a > 0 so a = 1
Update this answer!

You can help us out by revising, improving and updating this answer.

Update this answer

After you claim an answer you’ll have 24 hours to send in a draft. An editor will review the submission and either publish your submission or provide feedback.

GradeSaver will pay $15 for your literature essays
GradeSaver will pay $25 for your college application essays
GradeSaver will pay $50 for your graduate school essays – Law, Business, or Medical
GradeSaver will pay $10 for your Community Note contributions
GradeSaver will pay $500 for your Textbook Answer contributions