Hello Aspirant,
I think there domain will be -1<x<1
Since value in sin-1 can only be between -1 and 1, we get the conditions
Taking case 2, square it. We get x2(1-x2) <1/4
Replace x2 with t. We get t2-t+1/4>0.
The lhs is a square , thus is greater than zero for all t . Therefore for all x .
The intersection of the two ranges gives -1<x<1
I hope this will help you.
Question : Simplify the following: $\sin2x+2\sin4x+\sin6x$
Option 1: $4\cos^2x\sin4x$
Option 2: $4\cos^2x\sin x$
Option 3: $2\cos^2x\sin4 x$
Option 4: $4\sin^2 x\sin4 x$
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