How do you integrate $\int x^{2} cos 3 x$ $int x^2cos3x$ by integration by parts method?

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How do you integrate $\int x^{2} cos 3 x$ $int x^2cos3x$ by integration by parts method?

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Answer 1 · 2017-01-24T10:51:17

$\int x^{2} cos 3 x d x = \frac{x^{2} sin 3 x}{3} + \frac{2 x cos 3 x}{9} - \frac{2 sin 3 x}{27} + C$ $int x^2cos3x dx = (x^2sin3x)/3 +(2xcos3x)/9-(2sin3x)/27+C$

Explanation:

When integrating by parts a function in the form $f (x) = x^{k} g (x)$ $f(x) = x^kg(x)$ we normally take $x^{k}$ $x^k$ as finite factor, so that at the next iteration the grade of $x$ $x$ is lower.

So, we can note that $cos 3 x d x = \frac{1}{3} d (sin 3 x)$ $cos3x dx = 1/3d (sin3x)$ and integrate by parts in this way:

$\int x^{2} cos 3 x d x = \frac{1}{3} \int x^{2} d (sin 3 x) = \frac{x^{2} sin 3 x}{3} - \frac{2}{3} \int x sin 3 x (d x)$ $int x^2cos3x dx = 1/3 int x^2 d(sin3x) = (x^2sin3x)/3 - 2/3 int xsin3x(dx)$

The resulting integral can also be resolved by parts:

$\int x sin 3 x (d x) = - \frac{1}{3} \int x d (cos 3 x) = - \frac{x cos 3 x}{3} + \frac{1}{3} \int cos 3 x d x = - \frac{x cos 3 x}{3} + \frac{sin 3 x}{9} + C$ $int xsin3x(dx) = -1/3 int xd(cos3x) = -(xcos3x)/3 + 1/3 int cos3xdx = -(xcos3x)/3 + (sin3x)/9 + C$

Putting it all together:

$\int x^{2} cos 3 x d x = \frac{x^{2} sin 3 x}{3} + \frac{2 x cos 3 x}{9} - \frac{2 sin 3 x}{27} + C$ $int x^2cos3x dx = (x^2sin3x)/3 +(2xcos3x)/9-(2sin3x)/27+C$

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How do you integrate $\int x^{2} cos 3 x$ $int x^2cos3x$ by integration by parts method?

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