sin−1x+sin−1y+sin−1z=3π2, then the value of x100+y100+z100−9x – InterviewSolution

1.	sin−1x+sin−1y+sin−1z=3π2, then the value of x100+y100+z100−9x101+y101+z101=
Answer» $s i n^{- 1} x + s i n^{- 1} y + s i n^{- 1} z = \frac{3 π}{2},$ then the value of $x^{100} + y^{100} + z^{100} - \frac{9}{x^{101} + y^{101} + z^{101}} =$

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