If ∫ x5e-x2dx =g(x)e-x2 +c where c is a constant of integration, then g(-1) is equal to :

Question

If ∫ x5e-x2dx =g(x)e-x2 +c where c is a constant of integration, then g(-1) is equal to : (A)  - (5/2) (B) 1 (C)  - (1/2) (D) -1

Tardigrade Admin · Accepted Answer

Let x2 =t 2xdx =dt ⇒ (1/2) ∫ t2 .e-tdt = (1/2) [-t2 .e-t + ∫2t.e-t.dt] = (1/2)(-t2 .e-t) + (-t.e-t +∫1.e-t.dt) = - (t2e-t/2) - te-t -e-t = (- (t2/2) -t-1)e-t = (- (x4/2) - x21)e-x2+C g(x) = -1 -x2 - (x4/2) +kex2 for k = 0 g(-1) =- 1 -1 -(1/2) = - (5/2)

Q. If $\int x^{5} e^{- x^{2}} d x = g (x) e^{- x^{2}} + c$ where $c$ is a constant of integration, then $g (- 1)$ is equal to :

$- \frac{5}{2}$

$1$

$- \frac{1}{2}$

$- 1$

Q. If ∫x5e−x2dx=g(x)e−x2+c where c is a constant of integration, then g(−1) is equal to :

−25​

1

−21​

−1

Let x2=t2xdx=dt ⇒21​∫t2.e−tdt =21​[−t2.e−t+∫2t.e−t.dt] =21​(−t2.e−t)+(−t.e−t+∫1.e−t.dt)=−2t2e−t​−te−t−e−t =(−2t2​−t−1)e−t=(−2x4​−x21)e−x2+C g(x)=−1−x2−2x4​+kex2 for k=0 g(−1)=−1−1−21​=−25​

Q. If $\int x^{5} e^{- x^{2}} d x = g (x) e^{- x^{2}} + c$ where $c$ is a constant of integration, then $g (- 1)$ is equal to :

$- \frac{5}{2}$

$1$

$- \frac{1}{2}$

$- 1$