For what integralerval of variation of (x), the identity (ar... | Mathematics | SolveeIt

For what interval of variation of $x$ , the identity $arc \, \cos \frac{1 - x^2}{1 + x^2} = - 2 \, arc \, \tan \, x$ is true ?

$0 \leq x < \infty$

$- \infty < x \le 0$

$1 < x < \infty$

$0 \le x \le 1$

Answer

$- \infty < x \le 0$

Explanation

Given,
arc cos $\frac{1-x^{2}}{1+x^{2}}=-2 \cdot$ arc tan x
We know that,
arc cos $\frac{1-x^{2}}{1+x^{2}}=2$ arc $\tan \,x$ is true for $0 \leq x

Mathematics Question on Trigonometric Identities