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Question

If 3+2cosx(2+3cosx)2dx=f(x)2+3cosx+C, where C is a constant of integration, then f(x) is

A
cosx
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B
2+3cosx
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C
sinx
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D
3+2sinx
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Solution

The correct option is C sinx
I=3+2cosx(2+3cosx)2dx
Divide both the numerator and the denominator by sin2x
I=(3 cosec2x+2cotx cosec x)(2 cosec x+3cotx)2dx

Put 2 cosec x+3cotx=t
(3 cosec2x+2cotx cosec x) dx=dt
I=1t2dt=1t+C =12 cosec x+3cotx+C =sinx2+3cosx+C

Hence, f(x)=sinx

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