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Question

e(cos2x+cos4x+cos6x+)loge2 satisfies the equation t29t+8=0, then the value of 2sinxsinx+3cosx,(0<x<π2) is :

A
32
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B
23
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C
12
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D
3
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Solution

The correct option is C 12
e(cos2x+cos4+)ln2=2cos2x+cos4x+
=2cos2x1cos2x (sum of infinite G.P.)
=2cot2x

t29t+8=0t=1,8
2cot2x=1,8x=0,3
0<x<π2cotx=3
Hence
2sinxsinx+3cosx=21+3cotx=12

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