-etn 1-1x-1-x2- -1-1-x22-cos -11-x2-1-x2- d xx-0

The correct option is C e^tan^ 1x.(sec^ 1(√(1+x^2)) )^2+C note that sec^ 1√(1+x^2)=tan^ 1x; cos^ 1(1 x^2/1+x^2 )=2 tan^ 1x for x gt; 0 I=∫e^tan^ 1x/1+x^2 ...

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Byju's Answer

Standard XII

Mathematics

Standard Formulae - 3

∫etn 1-1x/1+x...

Question

$\int \frac{e^{t a n^{- 1} x}}{(1 + x^{2})} [{(s e c^{- 1} \sqrt{1 + x^{2}})}^{2} + c o s^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x (x > 0)$

e^{t a n^{- 1} x} . t a n^{- 1} x + C

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\frac{e^{t a n^{- 1} x} . (t a n^{- 1} x)^{2}}{2} + C

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e^{t a n^{- 1} x} . {(s e c^{- 1} (\sqrt{1 + x^{2}}))}^{2} + C

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e^{t a n^{- 1} x} . {(c o s^{- 1} (\sqrt{1 + x^{2}}))}^{2} + C

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Solution

The correct option is C $e^{t a n^{- 1} x} . {(s e c^{- 1} (\sqrt{1 + x^{2}}))}^{2} + C$

note that $s e c^{- 1} \sqrt{1 + x^{2}} = t a n^{- 1} x; c o s^{- 1} (\frac{1 - x^{2}}{1 + x^{2}}) = 2 t a n^{- 1} x$ for x > 0
$I = \int \frac{e^{t a n^{- 1 x}}}{1 + x^{2}} ((t a n^{- 1} x)^{2} + 2 t a n^{- 1} x) d x$
Put $t a n^{- 1} x = t$
$= \int e^{t} (t^{2} + 2 t) d t = e^{t} . t^{2} = e^{t a n^{- 1} x} ((t a n^{- 1} x)^{2}) + C$

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Similar questions

\int \frac{e^{t a n^{- 1} x}}{(1 + x^{2})} [{(s e c^{- 1} \sqrt{1 + x^{2}})}^{2} + c o s^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x (x > 0)

\int \frac{e^{{tan}^{- 1} x}}{(1 + x^{2})} [{({sec}^{- 1} \sqrt{1 + x^{2}})}^{2} + {cos}^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x (x > 0)

equals to
(where

c

is the constant of integration)

Q. Solve

\int \frac{e^{{tan}^{- 1} x}}{(1 + x^{2})} [{({sec}^{- 1} \sqrt{1 + x^{2}})}^{2} + {cos}^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x (x > 0)

\int \frac{e^{{tan}^{- 1} x}}{(1 + x^{2})} [{({sec}^{- 1} \sqrt{1 + x^{2}})}^{2} + {cos}^{- 1} (\frac{1 - x^{2}}{1 + x^{2}}) d x]

(x > 0)

Q. The value of integral

\int \frac{e^{{tan}^{- 1} x}}{1 + x^{2}} [{({sec}^{- 1} \sqrt{1 + x^{2}})}^{2} + {cos}^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x

(x > 0),

is
(where

^{'} C^{'}

is the constant of integration)

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∫etan−1x(1+x2)[(sec−1√1+x2)2+cos−1(1−x21+x2)]dx(x>0)

The correct option is C etan−1x.(sec−1(√1+x2))2+C note that sec−1√1+x2=tan−1x;cos−1(1−x21+x2)=2tan−1x for x > 0 I=∫etan−1x1+x2((tan−1x)2+2tan−1x)dx Put tan−1x=t =∫et(t2+2t)dt=et.t2=etan−1x((tan−1x)2)+C

$\int \frac{e^{t a n^{- 1} x}}{(1 + x^{2})} [{(s e c^{- 1} \sqrt{1 + x^{2}})}^{2} + c o s^{- 1} (\frac{1 - x^{2}}{1 + x^{2}})] d x (x > 0)$