Let fn(theta)=(cos theta/2+cos 2theta + ...

Let `f_n(theta)=(cos theta/2+cos 2theta + cos (7theta)/2+...+cos (3n-2) (theta/2))/(sin theta/2+sin 2theta + sin (7theta)/2+....+ sin (3n-2)(theta/2))` then `f_3((3pi)/16)`

`f_(3)((3pi)/(16))=sqrt(2)-1`

`f_(5)((pi)/(28))=sqrt(2)+1`

`f_(7)((pi)/(60))=(2+sqrt(3))`

none of these.

Text Solution

Verified by Experts

The correct Answer is:

A, B, C

We have `f_(n)(theta)=cot((3n-1)(theta)/(4))`
`therefore f_(3)((3pi)/(16))=cot(8xx(1)/(4)xx(3pi)/(16))=cot(3pi)/(6)=sqrt(2)-1`
`f_(5)((pi)/(28))=cot(14xx(1)/(4)xx(pi)/(28))=cot((pi)/(8))=sqrt(2)+1`
`f_(7)((pi)/(60))=cot(20(1)/(4)xx(pi)/(60))=cot((pi)/(12))=(2+sqrt(3))`.

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