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How do you find the definite integral of #int (x^2 + x) dx# from #[1,3]#?

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Konstantinos Michailidis

Nov 1, 2015

It is

#int_1^3 (x^2+x)dx=int_1^3 d/dx[x^3/3+x^2/2]dx= [x^3/3+x^2/2]_1^3=9+9/2-(1/3+1/2)=38/3#

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