The range of t such that 2sint=1−2x+5x23x2−2x−1 has a solution, – InterviewSolution

1.	The range of t such that 2sint=1−2x+5x23x2−2x−1 has a solution, where t∈[−π2,π2]is
Answer» The range of $t$ such that $2 sin t = \frac{1 - 2 x + 5 x^{2}}{3 x^{2} - 2 x - 1}$ has a solution, where $t \in [- \frac{π}{2}, \frac{π}{2}]$ is

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