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How do you integrate #int x^3/[x(x^2+2x+1)]# using partial fractions?

1 Answer

Ananda Dasgupta

Apr 5, 2018

# x-2ln|x+1|-1/(x+1)+C#

Explanation:

# x^3/[x(x^2+2x+1)] = x^2/(x+1)^2 =(1-1/(x+1))^2#
#qquad = 1-2/(x+1)+1/(x+1)^2#

Thus

#int x^3/[x(x^2+2x+1)]dx = int ( 1-2/(x+1)+1/(x+1)^2)dx#
#qquad = x-2ln|x+1|-1/(x+1)+C#

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