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How do you evaluate #18^(x-2) = 13^(-2x)#?

1 Answer

May 15, 2016

#x = (2 log(18))/(2 log(13) + log(18))#

Explanation:

Applying #log# to each equation side
#(x-2)log(18)=-2x log(13)#
solving for #x# gives
#x = (2 log(18))/(2 log(13) + log(18))#

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