Let f:(-(π/4), (π/4)) arrow R be defined as f(x)= begincases (1+| sin x|)(3 a/ sin x mid) , -(π/4)

Question

Let f:(-(π/4), (π/4)) arrow R be defined as f(x)= begincases (1+| sin x|)(3 a/ sin x mid) , -(π/4) < x < 0 b , x=0 e cot 4 x / cot 2 x , 0 < x < (π/4) endcases If f is continuous at x=0, then the value of 6 a +b2 is equal to: (A) 1 -e (B) e -1 (C) 1 +e (D) e

Tardigrade Admin · Accepted Answer

displaystyle lim x arrow 0 f(x)=b displaystyle lim x arrow 0- x e( cot 4 x/ cot 2 x)=e(1/2)=b displaystyle lim x arrow 0-(1+| sin x|)(3 a/| sin x mid)=e3 a=e(1/2) displaystyle lim x arrow 0-(1+| sin x|)(3 a/| sin x mid)=e3 a=e(1/2) a=(1/6) ⇒ 6 a=1 (6 a+b2)=(1+e)

Q. Let f:(−4π​,4π​)→R be defined as f(x)=⎩⎨⎧​(1+∣sinx∣)sinx∣3a​becot4x/cot2x​,,,​−4π​<x<0x=00<x<4π​​ If f is continuous at x=0, then the value of 6a+b2 is equal to:

1 -e

e -1

1 +e

e

x→0lim​f(x)=b x→0−lim​xecot2xcot4x​=e21​=b x→0−lim​(1+∣sinx∣)∣sinx∣3a​=e3a=e21​ x→0−lim​(1+∣sinx∣)∣sinx∣3a​=e3a=e21​ a=61​⇒6a=1 (6a+b2)=(1+e)

Q. Let $f : (- \frac{π}{4}, \frac{π}{4}) \to R$ be defined as
$f (x) = ⎩ ⎨ ⎧ (1 + ∣ sin x ∣)^{\frac{3 a}{s i n x ∣}} b e^{c o t 4 x / c o t 2 x},,, - \frac{π}{4} < x < 0 x = 0 0 < x < \frac{π}{4}$
If $f$ is continuous at $x = 0$ , then the value of $6 a + b^{2}$ is equal to: