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What is the antiderivative of #(x+1)^2#?

1 Answer

Jun 22, 2016

#int (x+1)^2 d x=1/3 (x+1)^3+C#

Explanation:

#int (x+1)^2 d x=?#

#x+1=u" ; "d x=d u#

#int (x+1)^2=int u^2 *d u#

#"so " int u^2 d u=1/3 u^3 +C #

#int (x+1)^2 d x=1/3 u^3+C#

#int (x+1)^2 d x=1/3 (x+1)^3+C#

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