∫ (x3 sin ( tan -1(x4))/1+x8) d x is equal to

Question

∫ (x3 sin ( tan -1(x4))/1+x8) d x is equal to (A) (- cos ( tan -1(x4))/4)+C (B) ( cos ( tan -1(x4))/4)+C (C) (- cos ( tan -1(x3))/3)+C (D) ( sin ( tan -1(x4))/4)+C

Tardigrade Admin · Accepted Answer

textTan-1 x4=t ; (4 x3/1+x8) d x=d t I=(1/4) ∫ sin t d t=(-1/4) cos t+c =(-1/4) cos ( textTan-1 x4)+c

Q. $\int \frac{x ^{3} s i n ( t a n ^{- 1} ( x ^{4} ) )}{1 + x ^{8}} d x$ is equal to

$\frac{- c o s ( t a n ^{- 1} ( x ^{4} ) )}{4} + C$

$\frac{c o s ( t a n ^{- 1} ( x ^{4} ) )}{4} + C$

$\frac{- c o s ( t a n ^{- 1} ( x ^{3} ) )}{3} + C$

$\frac{s i n ( t a n ^{- 1} ( x ^{4} ) )}{4} + C$

$Tan^{- 1} x^{4} = t; \frac{4 x ^{3}}{1 + x ^{8}} d x = d t$
$I = \frac{1}{4} \int sin t d t = \frac{- 1}{4} cos t + c$
$= \frac{- 1}{4} cos (Tan^{- 1} x^{4}) + c$

Q. ∫1+x8x3sin(tan−1(x4))​dx is equal to

4−cos(tan−1(x4))​+C

4cos(tan−1(x4))​+C

3−cos(tan−1(x3))​+C

4sin(tan−1(x4))​+C