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प्रश्न
If y = `log(sqrtx + 1/sqrtx)^2`, then show that x(x + 1)2 y2 + (x + 1)2 y1 = 2.
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उत्तर
y = `log(sqrtx + 1/sqrtx)^2`
= `2 log((x + 1)/sqrtx)`
= `2[log(x + 1) - 1/2 log x]`
Differentiating on both sides w.r.t., x
`y_1 = 2[1/(x + 1) - 1/(2x)]`
= `2[(2x -x - 1)/(2x(x + 1))]`
`y_1 = (x - 1)/(x(x + 1))` ...(1)
`y_2 = ((x^2 + x) (1)- (x - 1)(2x + 1))/(x^2(x + 1)^2)`
= `(x^2 + x - (2x^2 + x - 2x - 1))/(x^2(x + 1)^2)`
= `(-x^2 + 2x + 1)/(x^2(x + 1)^2)` ...(2)
Multiply equation (2) by x(x + 1)2
`x(x + 1)^2 y_2 = (-x^2 + 2x + 1)/x`
`x(x + 1)^2 y_2 = 2x/x - (x^2 - 1)/x`
`x(x + 1)^2 y_2 = 2 - ((x + 1)(x - 1))/x` ...(3)
Multiply equation (1) by (x + 1)2
`y_1 = (x - 1)/(x(x + 1))`
`x(x + 1)^2 y_1 = ((x + 1)^2 (x - 1))/(x(x + 1))`
= `((x + 1)(x - 1))/x` ...(4)
Substitute equation (4) into equation (3):
x(x + 1)2 y2 = 2 − (x + 1)2 y1
So, x(x + 1)2y2 + (x + 1)2y1 = 2
