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Trigonometryhard
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Solve for θ∈[0,2π]\theta \in [0, 2\pi]θ∈[0,2π]: 2sin⁡2θ+3cos⁡θ+1=02\sin^2\theta + \sqrt{3}\cos\theta + 1 = 02sin2θ+3​cosθ+1=0.