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Question

If f(x)=2xcosx2+xcosx and g(x)=logex,(x>0) then the value of the integral π/4π/4g(f(x))dx is:

A
loge2
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B
loge3
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C
loge1
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D
logee
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Solution

The correct option is C loge1
Given,
f(x)=2xcosx2+xcosx & g(x)=logex
I=π/4π/4g(f(x))dx
I=π/4π/4loge(2xcosx2+xcosx)dx ...(1)

Applying abf(x)dx=abf(a+bx)dx
I=π/4π/4loge(2+xcosx2xcosx)dx ...(2)

Adding equation (1) & (2)
2I=π/4π/4loge(1) dx
2I=0
I=0

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