If sin-1 ((2p/1+p2)) - cos-1 ((1-q2/1+q2)) = tan-1((2x/1-x2)) then the value of x is equal to

Question

If sin-1 ((2p/1+p2)) - cos-1 ((1-q2/1+q2)) = tan-1((2x/1-x2)) then the value of x is equal to (A)  (p + q/1 + pq)  (B)  (p - q/1 - pq)  (C)  (p - q/pq -1 )  (D)  (p - q/1 + pq)

Tardigrade Admin · Accepted Answer

Putting p = tan θ, q = tan φ, x = tan Ψ, we get sin-1 ((2 tan θ /1 + tan2 θ ))- cos-1 ((1- tan2 φ /1+ tan2 φ )) = tan-1((2 tanΨ/1- tan2 Ψ )) ⇒ sin-1( sin 2θ ) - cos-1 ( cos2φ) ⇒ θ-φ = Ψ ⇒ tan-1 p - tan-1 q = tan-1 x ⇒ tan-1 ((p -q/1+pq))= tan-1 x ⇒ x = (p-q/1+pq)

Q. If $sin^{- 1} (\frac{2 p}{1 + p ^{2}}) - cos^{- 1} (\frac{1 - q ^{2}}{1 + q ^{2}}) = tan^{- 1} (\frac{2 x}{1 - x ^{2}})$ then the value of $x$ is equal to

$\frac{p + q}{1 + pq}$

$\frac{p - q}{1 - pq}$

$\frac{p - q}{pq - 1}$

$\frac{p - q}{1 + pq}$

Q. If sin−1(1+p22p​)−cos−1(1+q21−q2​)=tan−1(1−x22x​) then the value of x is equal to

1+pqp+q​

1−pqp−q​

pq−1p−q​

1+pqp−q​

Putting p=tanθ,q=tanϕ,x=tanΨ, we get sin−1(1+tan2θ2tanθ​)−cos−1(1+tan2ϕ1−tan2ϕ​)=tan−1(1−tan2Ψ2tanΨ​) ⇒sin−1(sin2θ)−cos−1(cos2ϕ) ⇒θ−ϕ=Ψ⇒tan−1p−tan−1q=tan−1x ⇒tan−1(1+pqp−q​)=tan−1x⇒x=1+pqp−q​

Q. If $sin^{- 1} (\frac{2 p}{1 + p ^{2}}) - cos^{- 1} (\frac{1 - q ^{2}}{1 + q ^{2}}) = tan^{- 1} (\frac{2 x}{1 - x ^{2}})$ then the value of $x$ is equal to

$\frac{p + q}{1 + pq}$

$\frac{p - q}{1 - pq}$

$\frac{p - q}{pq - 1}$

$\frac{p - q}{1 + pq}$