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What is the antiderivative of $sin^2 x$ ?

1 Answer

Apr 9, 2018

$I=1/4(2x-sin2x)+c$

Explanation:

Here,

$I=intsin^2xdx$

$=int(1-cos2x)/2dx$

$=1/2int(1-cos2x)dx$

$=1/2[x-(sin2x)/2]+c$

$=1/4(2x-sin2x)+c$

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