How do you solve #ln (x-3) - ln (x+4)=ln(x-1) - ln(x+2)#?

1 Answer
GiĆ³
Nov 20, 2015

I found: NO REAL #x#.

Explanation:

You can start by using the property of logs that tells us:
#loga-logb=log(a/b)#
and write:
#ln((x-3)/(x+4))=ln((x-1)/(x+2))#
if the two logs must be equal their arguments must be as well; so:
#(x-3)/(x+4)=(x-1)/(x+2)# rearranging and getting rid of the denominators:
#(x-3)(x+2)=(x-1)(x+4)#
#cancel(x^2)+2x-3x-6=cancel(x^2)+4x-x-4#
isolate #x#:
#-x-3x=6-4#
#-4x=2#
#x=-2/4=-1/2#
If you plug this solution back into the original equation, you get some negative arguments of logs which prompt us to exclude #x=-1/2#.

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