If the function f defined on ((π/6), (π/3)) by f(x) = begincases (√2 cos x - 1/cot x -1), &x ≠ (π/4) [2ex] k, &x = (π/4) endcases is continuous, then k is equal to

Question

If the function f defined on ((π/6), (π/3)) by f(x) = begincases (√2 cos x - 1/cot x -1), &x ≠ (π/4) [2ex] k, &x = (π/4) endcases is continuous, then k is equal to (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Since, f(x) is continuous, then lim limitsx → (π/4) f(x) = f ((π/4)) lim limitsx → (π/4) (√2 cos x - 1/cot x - 1) = k Now by L- Hospitalâs rule lim limitsx → (π/4) (√2 sin x/cosec2 x) = k ⇒ (√2((1/√2))/(√2)2) = k ⇒ k = (1/2)

Q. If the function f defined on (6π​,3π​) by f(x)=⎩⎨⎧​cotx−12​cosx−1​,k,​x=4π​x=4π​​ is continuous, then k is equal to

Since,f(x) is continuous, then x→4π​lim​f(x)=f(4π​) x→4π​lim​cotx−12​cosx−1​=k Now by L- Hospital’s rule x→4π​lim​cosec2x2​sinx​=k ⇒(2​)22​(2​1​)​=k ⇒k=21​

Q. If the function $f$ defined on $(\frac{π}{6}, \frac{π}{3})$ by
$f (x) = ⎩ ⎨ ⎧ \frac{2 cos x - 1}{co t x - 1}, k, x \neq = \frac{π}{4} x = \frac{π}{4}$ is continuous, then $k$ is equal to