If f(x)=√3|x|-x-2 and g(x)= sin x, then domain of definition of fog(x) is

Question

If f(x)=√3|x|-x-2 and g(x)= sin x, then domain of definition of fog(x) is (A)  2 n π+(π/2) n ∈ I (B)  bigcupn ∈ I(2 n π+(7 π/6), 2 n π+(11 π/6)) (C)  2 n π+(7 π/6) n ∈ I (D)  (4 m+1) (π/2): m ∈ I bigcupn ∈ I[2 n π+(7 π/6), 2 n π+(11 π/6)]

Tardigrade Admin · Accepted Answer

f(x)=√3|x|-x-2 and g(x)= sin x for fog(x)=√3| sin x|- sin x-2 which is defined if 3| sin x|- sin x-2 ≥ 0 If sin x > 0 then 2 sin x-2 ≥ 0 ⇒ sin x ≥ 1 ⇒ sin x=1 ⇒ x=2 n π+(π/2) If sin x < 0 then -4 sin x-2 ≥ 0 ⇒ -1 ≤ sin x ≤-(1/2) ⇒ x ∈[2 n π+(7 π/6), 2 n π+(11 π/6)] x ∈[2 n π+(7 π/6), 2 n π+(11 π/6)] ∪ 2 m π+(π/2) n, m ∈ I

Q. If $f (x) = 3∣ x ∣ - x - 2$ and $g (x) = sin x$ , then domain of definition of $f o g (x)$ is

${2 nπ + \frac{π}{2}}_{n \in I}$

$⋃_{n \in I} (2 nπ + \frac{7 π}{6}, 2 nπ + \frac{11 π}{6})$

${2 nπ + \frac{7 π}{6}}_{n \in I}$

${(4 m + 1) \frac{π}{2} : m \in I} ⋃_{n \in I} [2 nπ + \frac{7 π}{6}, 2 nπ + \frac{11 π}{6}]$

Q. If f(x)=3∣x∣−x−2​ and g(x)=sinx, then domain of definition of fog(x) is

{2nπ+2π​}n∈I​

⋃n∈I​(2nπ+67π​,2nπ+611π​)

{2nπ+67π​}n∈I​

{(4m+1)2π​:m∈I}⋃n∈I​[2nπ+67π​,2nπ+611π​]

Q. If $f (x) = 3∣ x ∣ - x - 2$ and $g (x) = sin x$ , then domain of definition of $f o g (x)$ is

${2 nπ + \frac{π}{2}}_{n \in I}$

$⋃_{n \in I} (2 nπ + \frac{7 π}{6}, 2 nπ + \frac{11 π}{6})$

${2 nπ + \frac{7 π}{6}}_{n \in I}$

${(4 m + 1) \frac{π}{2} : m \in I} ⋃_{n \in I} [2 nπ + \frac{7 π}{6}, 2 nπ + \frac{11 π}{6}]$