( √2 - sin α - cos α / sinα - cosα ) is equal to

Question

( √2 - sin α - cos α / sinα - cosα ) is equal to (A)  sec ((α /2) - (π/8))  (B)  cos ( (π/8) - (α /2) )  (C)  tan ((α /2) - (π/8))  (D)  cot ((α /2) - (π/2))

Tardigrade Admin · Accepted Answer

(√2 - sinα - cos α / sinα - cos α ) = (√2 - √2 (1/√2) sin α + (1/√2) cos α /√2 (1)√2 sinα - (1)√2 cos α = (√2 - √2 cos(α - (π/4))/ √2 sin (α - (π)4)) = (√2 1- cosθ /√2 sinθ) , where θ = α - (π/4) = (2 sin2 (θ/2)/2 sin (θ /2) cos (θ/2)) = tan (θ/2) = tan((α/2) - (π/8))

Q. $\frac{2 - s i n α - c o s α}{s i n α - c o s α}$ is equal to

$sec (\frac{α}{2} - \frac{π}{8})$

$cos (\frac{π}{8} - \frac{α}{2})$

$tan (\frac{α}{2} - \frac{π}{8})$

$cot (\frac{α}{2} - \frac{π}{2})$

Q. sinα−cosα2​−sinα−cosα​ is equal to

sec(2α​−8π​)

cos(8π​−2α​)

tan(2α​−8π​)

cot(2α​−2π​)

sinα−cosα2​−sinα−cosα​ =2​{2​1​sinα−2​1​cosα}2​−2​{2​1​sinα+2​1​cosα}​ =2​sin(α−4π​)2​−2​cos(α−4π​)​ =2​sinθ2​{1−cosθ}​ , where θ=α−4π​ =2sin(θ/2)cos(θ/2)2sin2(θ/2)​=tan(θ/2) =tan(2α​−8π​)

Q. $\frac{2 - s i n α - c o s α}{s i n α - c o s α}$ is equal to

$sec (\frac{α}{2} - \frac{π}{8})$

$cos (\frac{π}{8} - \frac{α}{2})$

$tan (\frac{α}{2} - \frac{π}{8})$

$cot (\frac{α}{2} - \frac{π}{2})$