If f(xy) = f(x)+f(y), and f(e) = 1, then find the value of $f (e^{2})$
___

Open in App

Solution

We are given f(e) = 1, If we put x and y both equal to e then we can proceed.

Let’s put x = y = e

So, f(e.e) = f(e) + f(e)

$f (e^{2})$ = 2

Alternate method:

We saw that if f(xy) = f(x) + f(y), then f(x) = k lnx or f(x) = 0

But f(e) = 1

$\Rightarrow$ f(x) = k lnx

f(e) = k ln(e) = k = 1(given)

$\Rightarrow$ $f (e^{2})$ = $l n (e^{2})$ = 2

Suggest Corrections

Similar questions

If f(xy) = f(x)+f(y), and f(e) = 1, then find the value of $f (e^{2})$

$If f (x) = \sqrt{1 + x^{2}}, then$ ____

f (x)

f (x y) = f (x) + f (y)

f (2) = 1

f (x)

2 f (x) = f (x y) + f (\frac{x}{y})

x

y, f (1) = 0

f^{'} (1) = 1

f (e)

f (\frac{1}{2})

Join BYJU'S Learning Program