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How do you solve #log_2(x+2) - log_2x = 3#?

1 Answer

A. S. Adikesavan

Mar 31, 2016

#x = 2/7#

Explanation:

Using log a - log b = #log(a/b)#,
#log_2((x+2)/x) = 3#
Inversely, #((x+2)/x)=2^3=8#
7x = 2.

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