Question

How do you use the half angle formula to find the value of `sin^2(112.5)`?

Answer 1

`sin^2(112.5)^circ=(2-sqrt2)/4`

Explanation:

Take,

`T=sin^2(112.5)^circ`

We know that,

`sin^2theta=(1-cos2theta)/2,where,theta=112.5`

`:.T=(1-cos2(112.5)^circ)/2`

`=1/2(1-cos225^circ)`

`=1/2[1-cos(180^circ+45^circ)]`

`=1/2[1-cos(pi+45^circ)]`

`=1/2[1+cos45^circ]...to[as, cos(pi+theta)=-costheta]`

`=1/2[1-1/sqrt2]`

`=1/2[1-sqrt2/2]`

`=1/2[(2-sqrt2)/2]`

`:.X=(2-sqrt2)/4`