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प्रश्न
Evaluate:
`int_0^1 x * sin^-1x * dx`
मूल्यांकन
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उत्तर
Let, u = sin−1 x, dv = x dx
Then,
`du = 1/(sqrt(1 - x^2)) dx, v = x^2/2`
So,
`int x * sin^-1 x * dx = x^2/2 sin^-1 x - int x^2/(2sqrt(1 - x^2)) dx`
Evaluate the definite integral:
First term:
`[x^2/2 sin^-1 x]_0^1 = 1/2 * π/2 = π/4`
Second integral:
`int_0^1 x^2/(2sqrt(1 - x^2)) dx`
Put x = sin θ, then it becomes:
`1/2 int_0^(π/2) sin^2 θ dθ = 1/2 * π/4 = π/8`
Hence,
`π/4 - π/8`
= `π/8`
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