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प्रश्न
If `cos^-1[(x^2 - y^2)/(x^2 + y^2)] = 2k "show that y" dy/dx = xtan^2k`
योग
उत्तर
`cos^-1[(x^2 - y^2)/(x^2 + y^2)] = 2k`
∴ `[ x^2 - y^2 ]/[ x^2 + y^2 ] = cos2k`
∴ `x^2 - y^2 = cos 2k ( x^2 + y^2 )`
Differentiate w.r.t. x.
`2x - 2y (dy/dx) = cos 2k (2x) + cos 2k (2y dy/dx)`
∴ 2x - 2x cos 2k = 2y cos 2k `dy/dx + 2y dy/dx`
∴ x - x cos 2k = `dy/dx` ( cos2k. y + y )
∴ `dy/dx = [ x( 1 - cos 2k )] / [ y( 1 + cos 2k )]`
∴ `dy/dx = [ x 2sin^2 k ]/[ y 2 cos^2k ]`
∴ `y (dy/dx) = xtan^2 k`
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Indefinite Integration - Definition of an Integral
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