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How do you evaluate #int [x(x^2+1)]dx# for [0, 1]?

1 Answer

Oct 15, 2015

#3/4#

Explanation:

#int_0^1[x(x^2+1)]dx=int_0^1(x^3+x)dx#

#=[x^4/4+x^2/2]_0^1#

#=1/4+1/2=3/4#

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