∫ (1-sin²3t)cos3t du

asked Apr 19, 2018 184k views

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4 votes

Substitute
$y=\sin3t$ , so that
$\mathrm dy=3\cos3t\,\mathrm dt$ (not
$\mathrm du$ !). Then

$\displaystyle\int(1-\sin^23t)\cos3t\,\mathrm dt=\frac13\int(1-y^2)\,\mathrm dy=\frac y3-\frac{y^3}9+C=\frac{\sin3t}3-\frac{\sin^3t}9+C$

Papr answered Apr 24, 2018

by Papr

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