If the function f ( x )= axe bx 2 have the maximum value f (2)=1, then

Question

If the function f ( x )= axe bx 2 have the maximum value f (2)=1, then (A) a=(√e/2) and b=(-1/8) (B) a=(-√ e /2) and b =(1/8) (C) a =(1/8) and b =(√ e /2) (D) a=(-√e/2) and b=(-1/8)

Tardigrade Admin · Accepted Answer

f ( x )= axe bx 2 ; f (2)=1 and f prime(2)=0 ; 2 ae e 4 b =1....(1) also f prime(x)=a[x eb x2 ⋅ 2 b x+eb x2]=a x eb x2[2 b x2+1] f prime(2)=a e4 b(8 b+1)=0 ; a=0 or b=-1 / 8 but a ≠ 0 ; a=e / 2 hence a=(√ e /2) and b =(-1/8)

Q. If the function $f (x) = a x e^{b x}^{2}$ have the maximum value $f (2) = 1$ , then

$a = \frac{e}{2}$ and $b = \frac{- 1}{8}$

$a = \frac{- e}{2}$ and $b = \frac{1}{8}$

$a = \frac{1}{8}$ and $b = \frac{e}{2}$

$a = \frac{- e}{2}$ and $b = \frac{- 1}{8}$

Q. If the function f(x)=axebx2 have the maximum value f(2)=1, then

a=2e​​ and b=8−1​

a=2−e​​ and b=81​

a=81​ and b=2e​​

a=2−e​​ and b=8−1​

f(x)=axebx2;f(2)=1 and f′(2)=0;2aee4b=1....(1) also f′(x)=a[xebx2⋅2bx+ebx2]=axebx2[2bx2+1] f′(2)=ae4b(8b+1)=0;a=0 or b=−1/8 but a=0;a=e/2 hence a=2e​​ and b=8−1​

Q. If the function $f (x) = a x e^{b x}^{2}$ have the maximum value $f (2) = 1$ , then

$a = \frac{e}{2}$ and $b = \frac{- 1}{8}$

$a = \frac{- e}{2}$ and $b = \frac{1}{8}$

$a = \frac{1}{8}$ and $b = \frac{e}{2}$

$a = \frac{- e}{2}$ and $b = \frac{- 1}{8}$