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Question

The number of solution(s) of 1+sinxsin2x2=0, where x[0,4π], is

A
0
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B
1
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C
2
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D
infinite
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Solution

The correct option is A 0
1+sinxsin2x2=01+sinx(1cosx)2=01+sinx2sin2x4=0sin2x=2sinx+4
As sinx[1,1]
2sinx+4[2,6]
But sin2x[1,1]

Hence, there is no solution.

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