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प्रश्न
The equation of curve through the point (1, 0), if the slope of the tangent to t e curve at any point (x, y) is `(y - 1)/(x^2 + x)`, is
विकल्प
(y + 1)(x – 1) + 2x = 0
(y + 1)(x – 1) – 2x = 0
(y – 1)(x – 1) + 2x = 0
(y – 1)(x + 1) + 2x = 0
MCQ
उत्तर
(y – 1)(x + 1) + 2x = 0
Explanation:
Here, the slope of the tangent to the curve at any point (x, y) is `(y - 1)/(x^2 + x)`.
∴ `(dy)/(dx) = (y - 1)/(x^2 + x) ⇒ (dy)/(y - 1) = (dx)/(x^2 + x)`
On integrating both sides, we get
`int (dy)/(y - 1) = int (dx)/(x(x - 1))`
⇒ `log (yy - 1) = log x - log (x + 1) + log C`
`log (y - 1) = log ((xC)/(x + 1))`
⇒ `(y - 1)(x + 1)` = xC
Since, the above curve passes through (1, 0)
⇒ `(-1)(2) = 1.C`
⇒ C = – 2
∴ Required equation of the curve is (y – 1)(x + 1) + 2x = 0
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