If f(x)=∫1x√4-t2 dt, then real roots of the equation x-f'(x)=0 are

Question

If f(x)=∫1x√4-t2 dt, then real roots of the equation x-f'(x)=0 are (A)  ± 1  (B)  ± √2  (C)  0 and 1  (D)  ± 2

Tardigrade Admin · Accepted Answer

Given, f(x)=∫1x√4-t2 dt On differentiating w. r. t. x, we get f'(x)=√4-x2 (1) ∴ x-f'(x)=x-√4-x2=0 ⇒ x=√4-x2 ⇒ x2=4-x2 ⇒ 2x2=4 ⇒ x2=2 ⇒ x=± 2 Hence, real roots of x-f'(x) and ± √2 .

Q. If $f (x) = \int_{1}^{x} 4 - t^{2} d t,$ then real roots of the equation $x - f^{'} (x) = 0$ are

$\pm 1$

$\pm 2$

$0$ and $1$

$\pm 2$

Q. If f(x)=∫1x​4−t2​dt, then real roots of the equation x−f′(x)=0 are

±1

±2​

0 and 1

±2

Given, f(x)=∫1x​4−t2​dt On differentiating w. r. t. x, we get f′(x)=4−x2​ (1) ∴ x−f′(x)=x−4−x2​=0 ⇒ x=4−x2​ ⇒ x2=4−x2 ⇒ 2x2=4 ⇒ x2=2 ⇒ x=±2 Hence, real roots of {x−f′(x)} and ±2​ .

Q. If $f (x) = \int_{1}^{x} 4 - t^{2} d t,$ then real roots of the equation $x - f^{'} (x) = 0$ are

$\pm 1$

$\pm 2$

$0$ and $1$

$\pm 2$