How do you differentiate #log_xe#?

1 Answer
Eddie
Sep 11, 2016

#= - 1/ (x ln^2 x) #

Explanation:

you can use a base switch (see below for how it works), switching everything into base #e#
we have

#y = log_x e#

# = (ln e)/(ln x) = 1/(ln x)#

so #y' = - 1/ (ln^2 x) * 1/x#

#= - 1/ (x ln^2 x) #

Base Switching

let #y = log_a b#

#implies a^y = b#

We'll switch to base #Q#

So #log_Q a^y = log_Q b#

#y log_Q a = log_Q b#

#y = (log_Q b)/(log_Q a )#

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