Use taylor series to evaluate #f^11 (0)# for #f(x) = x^3 cos(x^2)# ?

1 Answer
Noah G
Aug 7, 2018

The answer is #990#.

Explanation:

We can rewrite as follows:

#f(x) = x^3(1 - x^2/2 + x^4/(4!)- x^6/(6!) + x^8/(8!) - x^10/(10!) + ...)#

#f(x) = x^3 - x^5/2 + x^7/(4!) - x^9/(6!) + x^11/(8!) - x^13/(10!)#

Now note that we don't need any further terms because when we compute the 11th derivative all the terms except that of original degree #11# will cancel to #0#.

#f^11(0) = 11!/(8!) x^0 = (11!)/(8!) = 990#

Hopefully this helps!

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