Find the average value of f(x) = 7x^2(x^3+1)6 over the interval [0, 2].

asked May 8, 2021 69.3k views

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4 votes

The average value is

$\displaystyle\frac1{2-0}\int_0^27x^2(x^3+1)^6\,\mathrm dx$

Let
u=x^3+1 , so that
$\mathrm du=3x^2\,\mathrm dx$ :

$\displaystyle\frac12\int_1^9\frac73u^6\,\mathrm du=\frac16u^7\bigg|_1^9=\frac{9^7-1}6=\frac{2,391,484}3$

CustomX answered May 14, 2021

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