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प्रश्न
If y = `(x + sqrt(1 + x^2))^m`, then show that (1 + x2) y2 + xy1 – m2y = 0
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उत्तर
y = `(x + sqrt(1 + x^2))^"m"`
`y_1 = "m"(x + sqrt(1 + x^2))^("m"-1) {1 + (2x)/(2sqrt(1 + x^2))}`
`= "m" (x + sqrt(1 + x^2))^("m" - 1){(sqrt (1+ x^2) + x)/(sqrt(1 + x^2))} = ("m"(x + sqrt(1 + x^2))^"m")/(sqrt(1 + x^2))`
`y_1 = "my"/sqrt(1 + x^2)`
Squaring both sides we get,
`y_1^2 = ("m"^2y"^2)/(1 + x^2)`
(1 + x2) `(y_1^2) = m2y2`
Differentiating with respect to x, we get
(1 + x2) . 2(y1) (y2) + (y1)2 (2x) = 2m2yy1
Dividing both sides by 2y1 we get,
(1 + x2) y2 + xy1 = m2y
⇒ (1 + x2) y2 + xy1 – m2y = 0
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