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प्रश्न
Find `dy/dx` if `y = tan^-1 (sqrt((3 - x)/(3 + x)))`.
बेरीज
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उत्तर
`y = tan^-1 (sqrt((3 - x)/(3 + x)))`
Put x = 3 cos2θ
∴ θ = `1/2 cos^-1(x/3)` ...(1)
`y = tan^-1(sqrt((3 - 3cos2θ)/(3 + 3cos2θ)))`
= `tan^-1(sqrt((3(1 - cos2θ))/(3(1 + cos2θ))))`
= `tan^-1(sqrt((2sin^2θ)/(2cos^2θ)))` ...[∵ 1 − cos2θ = 2sin2θ and 1 + cos2θ = 2cos2θ]
∴ = `tan^-1(sqrt(tan^2θ))`
∴ = tan−1(tan2θ)
∴ y = θ ...[∵ tan−1 (tanθ) = θ]
∴ `y = 1/2 cos^-1 (x/3)` ...[From (1)]
Differentiate w.r.t. x
`dy/dx = 1/2 d/dx [cos^-1(x/3)]`
= `1/2 xx -1/(sqrt (1 - (x/3)^2)) xx d/dx(x/3)`
= `1/2 xx (-1)/(sqrt(1 - x^2/9)) xx 1/3 xx 1`
= `-1/6 xx 3/sqrt(9 - x^2)`
= `-1/(2sqrt(9 - x^2))`
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