Let x= sin (2 tan -1 α) and y= sin ((1/2) tan -1 (4/3)). If S = α ∈ R: y 2=1- x then displaystyle∑α ∈ S 16 α3 is equal to

Question

Let x= sin (2 tan -1 α) and y= sin ((1/2) tan -1 (4/3)). If S = α ∈ R: y 2=1- x then displaystyle∑α ∈ S 16 α3 is equal to  (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

x = sin (2 tan -1 α)=(2 tan θ/1+ tan 2 θ)=(2 α/1+α2) tan -1 α=θ ⇒ tan θ=α y 2= sin 2((1/2) tan -1 (4/3))=(1/5) y 2+ x =1 ⇒ (1/5)+(2 α/1+α2)=1 (2 α/1+α2)=(4/5) (2 α-1)(α-2)=0 ⇒ 2 α2-5 α+2=0 ∴ α=2 text or (1/2) S = 2, (1/2) displaystyle∑α ∈ S 16 α3=16(8+(1/8))=130

Q. Let x=sin(2tan−1α) and y=sin(21​tan−134​). If S={α∈R:y2=1−x}, then α∈S∑​16α3 is equal to ______

x=sin(2tan−1α)=1+tan2θ2tanθ​=1+α22α​ tan−1α=θ⇒tanθ=α y2=sin2(21​tan−134​)=51​ y2+x=1⇒51​+1+α22α​=1 1+α22α​=54​ (2α−1)(α−2)=0 ⇒2α2−5α+2=0 ∴α=2 or 21​ S={2,21​} α∈S∑​16α3=16(8+81​)=130

Q. Let $x = sin (2 tan^{- 1} α)$ and $y = sin (\frac{1}{2} tan^{- 1} \frac{4}{3})$ . If $S = {α \in R : y^{2} = 1 - x}$ , then $α \in S \sum 16 α^{3}$ is equal to ______