Let f(x) = ( 1 -tan x/4x - π), x ≠ (π/4), x ∈ [0, (π/2)]. If f(x) is continuous in [0, (π/2)], then |f((π/4))| is

Question

Let f(x) = ( 1 -tan x/4x - π), x ≠ (π/4), x ∈ [0, (π/2)]. If f(x) is continuous in [0, (π/2)], then |f((π/4))| is (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

f(x) = ( 1 -tan x/4x - π), is continuous in [0, (π/2)] ∴ f((π/4)) = lim limitsx → (π/4) f(x) = lim limitsx → (π+/4) f(x) = lim limitsh → 0 f((π/4) + h) = lim limitsx → 0 (1 - tan((π/4) + h)/4((π)4 + h) - π), h > 0 = lim limitsx → 0 (1 - (1 + tan h/ 1- tan h)/4h) = lim limitsx → 0 (-2/-tanh) . (tan h/4h) = (-2/4) = -(1/2) ∴ | f((π/4))| = | -(1/2)| = (1/2)

Q. Let f(x)=4x−π1−tanx​,x=4π​,x∈[0,2π​]. If f(x) is continuous in [0,2π​], then ∣f(4π​)∣ is

Q. Let $f (x) = \frac{1 - t an x}{4 x - π}, x \neq = \frac{π}{4}, x \in [0, \frac{π}{2}]$ .
If $f (x)$ is continuous in $[0, \frac{π}{2}]$ , then $∣ f (\frac{π}{4}) ∣$ is