If m sin-1x = logey, then (1 -x2) y" - xy' =

Question

If m sin-1x = logey, then (1 -x2) y" - xy' = (A) m2y (B) -m2y (C) 2y (D) -2y

Tardigrade Admin · Accepted Answer

Given, m sin-1 x = loge y ⇒ y = em sin-1 x On differentiating w.r.t. x, we get y' = em sin-1 x X (m/√1-x2) ⇒ √1-x2⋅ y' = my On squaring both sides, we get (1-x2)y'2 = m2y2 Again differentiating, we get (1-x2) 2y' X y'' + y'2(-2x) = m2 ⋅ 2yy' ∴ (1-x2)y''-xy' = m2y

Q. If $m sin^{- 1} x = lo g_{e} y,$ then $(1 - x^{2}) y " - x y^{'}$ =

$m^{2} y$

$- m^{2} y$

$2 y$

$- 2 y$

Q. If msin−1x=loge​y, then (1−x2)y"−xy′ =

m2y

−m2y

2y

−2y

Given, m sin−1x=loge​y ⇒y=emsin−1x On differentiating w.r.t. x, we get y′=emsin−1xX1−x2​m​ ⇒1−x2​⋅y′=my On squaring both sides, we get (1−x2)y′2=m2y2 Again differentiating, we get (1−x2)2y′Xy′′+y′2(−2x)=m2⋅2yy′ ∴(1−x2)y′′−xy′=m2y

Q. If $m sin^{- 1} x = lo g_{e} y,$ then $(1 - x^{2}) y " - x y^{'}$ =

$m^{2} y$

$- m^{2} y$

$2 y$

$- 2 y$