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Question

If 1sinθ1sinθ1sinθ1sinθ1 ; then for all

θ(3π4,5π4),det(A) lies in the interval :

A
(0,32]
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B
(1,52]
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C
(32,3]
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D
[52,4)
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Solution

The correct option is D [52,4)
|A|=∣ ∣1sinθ1sinθ1sinθ1sinθ1∣ ∣

R1R1+R3
|A|=∣ ∣002sinθ1sinθ1sinθ1∣ ∣

|A|=2(sin2θ+1)

θ(3π4,5π4)sinθ(12,12)
0sin2θ<12
22(1+sin2θ)<3
|A|[2,3)

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