If y = f (x2+2) and f '(3)=5, then (dy/dx) at x=1 is

Question

If y = f (x2+2) and f '(3)=5, then (dy/dx) at x=1 is (A) 5 (B) 25 (C) 15 (D) 20

Tardigrade Admin · Accepted Answer

Given, y=f(x2+2) On differentiating both sides w.r.t. x, we get (d y/d x)=f'(x2+2) × 2 x Put x=1, we get (d y/d x) =f'(12+2) × 2=f prime(3) × 2 =5 × 2 [∵ f'(3)=5, text given ] =10

Q. If $y = f (x^{2} + 2)$ and $f^{^{'}} (3) = 5,$ then $\frac{d y}{d x}$ at $x = 1$ is

5

25

15

20

10

Given, $y = f (x^{2} + 2)$
On differentiating both sides w.r.t. $x$ , we get
$\frac{d y}{d x} = f^{^{'}} (x^{2} + 2) \times 2 x$
Put $x = 1$ , we get
$\frac{d y}{d x} = f^{^{'}} (1^{2} + 2) \times 2 = f^{'} (3) \times 2$
$= 5 \times 2 [∵ f^{^{'}} (3) = 5, given]$
$= 10$

Q. If y=f(x2+2) and f′(3)=5, then dxdy​ at x=1 is

5

25

15

20

10

Given, y=f(x2+2) On differentiating both sides w.r.t. x, we get dxdy​=f′(x2+2)×2x Put x=1, we get dxdy​=f′(12+2)×2=f′(3)×2 =5×2[∵f′(3)=5, given ] =10

Q. If $y = f (x^{2} + 2)$ and $f^{^{'}} (3) = 5,$ then $\frac{d y}{d x}$ at $x = 1$ is

Given, $y = f (x^{2} + 2)$
On differentiating both sides w.r.t. $x$ , we get
$\frac{d y}{d x} = f^{^{'}} (x^{2} + 2) \times 2 x$
Put $x = 1$ , we get
$\frac{d y}{d x} = f^{^{'}} (1^{2} + 2) \times 2 = f^{'} (3) \times 2$
$= 5 \times 2 [∵ f^{^{'}} (3) = 5, given]$
$= 10$