MCQ
$\int_{}^{} {\frac{{{e^{m{{\tan }^{ - 1}}x}}}}{{1 + {x^2}}}dx} $ equals to
- A${e^{{{\tan }^{ - 1}}x}}$
- B$\frac{1}{m}{e^{{{\tan }^{ - 1}}x}}$
- ✓$\frac{1}{m}{e^{m{{\tan }^{ - 1}}x}}$
- DNone of these
Put $m{\tan ^{ - 1}}x = t$
==> $\frac{m}{{1 + {x^2}}}\,dx = dt$ ==> $\frac{{dx}}{{1 + {x^2}}} = \frac{{dt}}{m}$
$I = \frac{1}{m}\int {{e^t}.dt} $ $ = \frac{1}{m}{e^t} + c$ $ = \frac{1}{m}{e^{m\,{{\tan }^{ - 1}}x}} + c$.
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$f(x)=e^{x-1}-e^{-|x-1|} \text { and } g(x)=\frac{1}{2}\left(e^{x-1}+e^{1-x}\right) \text {. }$ Then the area of the region in the first quadrant bounded by the curves $y=f(x), y=g(x)$ and $x=0$ is
$[A]$ $x=-1$ $[B]$ $x=0$ $[C]$ $x=2$ $[D] x=1$