If a sin -1 x-b cos -1 x=c, then the value of a sin -1 x+b cos -1 x (whener exists) is equal to

Question

If a sin -1 x-b cos -1 x=c, then the value of a sin -1 x+b cos -1 x (whener exists) is equal to (A) 0 (B) (π a b+c(b-a)/a+b) (C) (π/2) (D) (π a b+c(a-b)/a+b)

Tardigrade Admin · Accepted Answer

We have b sin -1 x+b cos -1 x=(b π/2) .....(1) and sin -1 x - b cos -1 x = c....(2) (given) ∴ On adding (1) and (2), we get (a+b) sin -1 x=(b π/2)+c ⇒ sin -1 x=((b π/2)+c/a+b). Similarly cos -1 x=((a π/2)-c/a+b) Hence (a sin -1 x+b cos -1 x)=(π a b+c(a-b)/a+b)

Q. If $a sin^{- 1} x - b cos^{- 1} x = c$ , then the value of $a sin^{- 1} x + b cos^{- 1} x$ (whener exists) is equal to

0

$\frac{πab + c ( b - a )}{a + b}$

$\frac{π}{2}$

$\frac{πab + c ( a - b )}{a + b}$

Q. If asin−1x−bcos−1x=c, then the value of asin−1x+bcos−1x (whener exists) is equal to

0

a+bπab+c(b−a)​

2π​

a+bπab+c(a−b)​

We have bsin−1x+bcos−1x=2bπ​ .....(1) and sin−1x−bcos−1x=c....(2) (given) ∴ On adding (1) and (2), we get (a+b)sin−1x=2bπ​+c ⇒sin−1x=a+b2bπ​+c​. Similarly cos−1x=a+b2aπ​−c​ Hence (asin−1x+bcos−1x)=a+bπab+c(a−b)​

Q. If $a sin^{- 1} x - b cos^{- 1} x = c$ , then the value of $a sin^{- 1} x + b cos^{- 1} x$ (whener exists) is equal to

$\frac{πab + c ( b - a )}{a + b}$

$\frac{π}{2}$

$\frac{πab + c ( a - b )}{a + b}$