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How do you evaluate #int x^2 + x + 4dx# for [0, 2]?

1 Answer

Sep 21, 2015

#38/3#

Explanation:

#int_0^2x^2+x+4dx=int_0^2x^2dx+int_0^2xdx+int_0^24dx =[x^3/3]_0^2+[x^2/2]_0^2+4[x]_0^2=8/3+4/2+8-0=38/3#

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