The number of solution's of 2sin2x+sin22x=2,x∈[0,2π] are :
A
4
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B
5
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C
7
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D
6
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Solution
The correct option is D6 (1−cos2x)+(1−cos22x)=2 ⇒cos2x(cos2x+1)=0 ⇒cos2x=0 or cos2x=−1 ⇒2x=(2n+1)π2 or 2x=(2n−1)π,n∈Z ⇒x=(2n+1)π4 or x=(2n−1)π2,n∈Z Hence, the solutions are π4,3π4,5π4,7π4,π2,3π2