The number of solution of sin4θ−2sin2θ−1=0 for θ∈[0,2π] is – InterviewSolution

1.	The number of solution of sin4θ−2sin2θ−1=0 for θ∈[0,2π] is
Answer» The number of solution of ${sin}^{4} θ - 2 {sin}^{2} θ - 1 = 0$ for $θ \in [0, 2 π]$ is

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