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How do you solve #7 (2^x) = 5^(x-2)#?

1 Answer

A. S. Adikesavan

Mar 30, 2016

x = #log 175/log 2.5#

Explanation:

#5^(x-2) = 5^x5^(-2)= 5^x/5^2=5^x/25#.
So, #5^x/2^x=175#.
#(5/2)^x.= 175#.
#x log 2.5 = log 175#
#x=log 175 /log 2.5#

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