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प्रश्न
The derivative of `sin^-1 (2"x" sqrt(1 - "x"^2))` w.r.t sin−1 x, `-1/sqrt2 < "x" < 1/sqrt2`, is:
विकल्प
2
`π/2 - 2`
`π/2`
−2
MCQ
उत्तर
2
Explanation:
Let u = `sin^-1 (2"x" sqrt(1 - "x"^2))`
and v = sin−1 x, `-1/sqrt2 < "x" < 1/sqrt2`
sin v = x .........(1)
Using (1), we get:
sin−1 (2 sin v cos v) = sin−1 x (sin 2v)
u = 2v, `-π/2 < 2"v" < π/2`
Differentiating u with respect to v, we get:
`("du")/"dv"` = 2
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