A function f ( x ) is given by f ( x )=(5 x /5 x +5), then the sum of the series f((1/20))+f((2/20))+f((3/20))+ ldots +f((39/20)) is equal to:

Question

A function f ( x ) is given by f ( x )=(5 x /5 x +5), then the sum of the series f((1/20))+f((2/20))+f((3/20))+ ldots +f((39/20)) is equal to: (A) (19/2) (B) (49/2) (C) (29/2) (D) (39/2)

Tardigrade Admin · Accepted Answer

f(x)=(5x/5x+5) f(2-x)=(5/5x+5) f(x)+f(2-x)=1 ⇒ f((1/20))+f((2/20))+ ldots+f((39/20)) =(f((1/20))+f((39/20)))+ ldots+(f((19/20))+f((21/20))+f((20/20))) =19+(1/2)=(39/2)

Q. A function $f (x)$ is given by $f (x) = \frac{5 ^{x}}{5 ^{x} + 5},$
then the sum of the series
$f (\frac{1}{20}) + f (\frac{2}{20}) + f (\frac{3}{20}) + \dots + f (\frac{39}{20})$ is equal to:

$\frac{19}{2}$

$\frac{49}{2}$

$\frac{29}{2}$

$\frac{39}{2}$

Q. A function f(x) is given by f(x)=5x+55x​, then the sum of the series f(201​)+f(202​)+f(203​)+…+f(2039​) is equal to:

219​

249​

229​

239​

f(x)=5x+55x​ f(2−x)=5x+55​ f(x)+f(2−x)=1 ⇒f(201​)+f(202​)+…+f(2039​) =(f(201​)+f(2039​))+…+(f(2019​)+f(2021​)+f(2020​)) =19+21​=239​

Q. A function $f (x)$ is given by $f (x) = \frac{5 ^{x}}{5 ^{x} + 5},$
then the sum of the series
$f (\frac{1}{20}) + f (\frac{2}{20}) + f (\frac{3}{20}) + \dots + f (\frac{39}{20})$ is equal to:

$\frac{19}{2}$

$\frac{49}{2}$

$\frac{29}{2}$

$\frac{39}{2}$