The number of solutions of the equation sin5x2−sinx2=2 in the interval [−π,4π] is

sin5x2=2+sinx2 sin5x2 ∈-1,1 , x∈-π, 4π 2+sinx2 ∈1,2 let us check when both are equal to 1. 2+sinx2=1 ⇒sinx2=-1 ⇒x=-π, 3π sin5x2=1⇒5x2=4n+1π2 ⇒x=-3π5 ,π5,π,9π5,13π5,17π5 no solutions.

The number of solutions of the equation sin5x2−sinx2=2 in the interval [−π,4π] is

sin5x2=2+sinx2 sin5x2 ∈-1,1 , x∈-π, 4π 2+sinx2 ∈1,2 let us check when both are equal to 1. 2+sinx2=1 ⇒sinx2=-1 ⇒x=-π, 3π sin5x2=1⇒5x2=4n+1π2 ⇒x=-3π5 ,π5,π,9π5,13π5,17π5 no solutions.

AI Mentor

Check Your IQ

Free Expert Demo

Try Test

Courses

Dropper NEET Course Dropper JEE Course Class - 12 NEET Course Class - 12 JEE Course Class - 11 NEET Course Class - 11 JEE Course Class - 10 Foundation NEET Course Class - 10 Foundation JEE Course Class - 10 CBSE Course Class - 9 Foundation NEET Course Class - 9 Foundation JEE Course Class -9 CBSE Course Class - 8 CBSE Course Class - 7 CBSE Course Class - 6 CBSE Course

Offline Centres

The number of solutions of the equation $\sin \frac{5 x}{2} - \sin \frac{x}{2} = 2$ in the interval $[- π, 4 π]$ is

see full answer

Your Exam Success, Personally Taken Care Of

1:1 expert mentors customize learning to your strength and weaknesses – so you score higher in school , IIT JEE and NEET entrance exams.

An Intiative by Sri Chaitanya

answer is A.

(Unlock A.I Detailed Solution for FREE)

Best Courses for You

JEE

NEET

Foundation JEE

Foundation NEET

CBSE

Detailed Solution

$\sin \frac{5 x}{2} = 2 + \sin \frac{x}{2} \sin \frac{5 x}{2} \in [- 1, 1], x \in [- π, 4 π] 2 + \sin \frac{x}{2} \in [1, 2] l e t u s c h e c k w h e n b o t h a r e e q u a l t o 1 . 2 + \sin \frac{x}{2} = 1 \Rightarrow \sin \frac{x}{2} = - 1 \Rightarrow x = - π, 3 π \sin \frac{5 x}{2} = 1 \Rightarrow \frac{5 x}{2} = (4 n + 1) \frac{π}{2} \Rightarrow x = \frac{- 3 π}{5}, \frac{π}{5}, π, \frac{9 π}{5}, \frac{13 π}{5}, \frac{17 π}{5} no solutions .$