Let f(x)=(ex/1+x2) and g(x)=f prime(x) then

Question

Let f(x)=(ex/1+x2) and g(x)=f prime(x) then (A) g ( x ) has two local maximum and two local minimum points (B)  g ( x ) has exactly one local maximum and one local minimum point (C) x =1 is a point of local maximum for g ( x ) (D) There is a point of local maximum for g(x) in interval (-1,0)

Tardigrade Admin · Accepted Answer

Θ g(x)=f prime(x)=((1+x2) ex-2 x ex/(1+x2)2)=((x-1)2 ex/(1+x2)2) g prime(x)=((x-1)(x3-3 x2+5 x+1) ex/(x2+1)3) here x3-3 x2+5 x+1 is strictly increasing and has a root in (-1,0).

Q. Let $f (x) = \frac{e ^{x}}{1 + x ^{2}}$ and $g (x) = f^{'} (x)$ then

$g (x)$ has two local maximum and two local minimum points

$g (x)$ has exactly one local maximum and one local minimum point

$x = 1$ is a point of local maximum for $g (x)$

There is a point of local maximum for $g (x)$ in interval $(- 1, 0)$

Q. Let f(x)=1+x2ex​ and g(x)=f′(x) then

g(x) has two local maximum and two local minimum points

g(x) has exactly one local maximum and one local minimum point

x=1 is a point of local maximum for g(x)

There is a point of local maximum for g(x) in interval (−1,0)

Θg(x)=f′(x)=(1+x2)2(1+x2)ex−2xex​=(1+x2)2(x−1)2ex​ g′(x)=(x2+1)3(x−1)(x3−3x2+5x+1)ex​ here x3−3x2+5x+1 is strictly increasing and has a root in (−1,0).

Q. Let $f (x) = \frac{e ^{x}}{1 + x ^{2}}$ and $g (x) = f^{'} (x)$ then

$g (x)$ has two local maximum and two local minimum points

$g (x)$ has exactly one local maximum and one local minimum point

$x = 1$ is a point of local maximum for $g (x)$

There is a point of local maximum for $g (x)$ in interval $(- 1, 0)$