help with logs (1 Viewer)

simDS · Jul 25, 2009

hey i cant do this question could someone please solve.

f(x)= loge (2x+1) find f`(1)

thanx

Revacious · Jul 25, 2009

f'x = 2/2x+1

f'1 = 2/3

simDS · Jul 25, 2009

wait i dont het how to differentiate it
how did you do it?

kurt.physics · Jul 25, 2009

simDS said:
hey i cant do this question could someone please solve.

f(x)= loge (2x+1) find f`(1)

thanx

$f(x) = log_{e} \left(2x + 1\right)$

$\frac{d}{dx}\left(log_{e} f(x) \right) = \frac{f'(x)}{f(x)}$

$\therefore f'(x) = \frac{2}{2x+1}$

$f'(1) = \frac{2}{3}$

samthebear · Jul 25, 2009

when you're differenciating a log the rule goes:

dy/dx loge f(x) = f'(x) / f(x)

in words:

the differencial of a log function is the derivative of the function divided by the original function.

Revacious · Jul 25, 2009

i never remembered learning it that way =\

i learned it as chain rule, which i suppose is the same thing

y=ln(2x+1) let u = 2x+1
dy/dx=dy/du times du/dx

dy/du is 1/u and du/dx is 2

therefore dy/dx = 2/u

which is 2/2x+1

kurt.physics · Jul 25, 2009

Revacious said:
i never remembered learning it that way =\

i learned it as chain rule, which i suppose is the same thing

y=ln(2x+1) let u = 2x+1
dy/dx=dy/du times du/dx

dy/du is 1/u and du/dx is 2

therefore dy/dx = 2/u

which is 2/2x+1

The formula we mentioned was derived from generalizing that particular function then differentiating with the chain rule.

help with logs (1 Viewer)

simDS

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Revacious

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