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How do you evaluate #log_32 2#?

1 Answer

Aug 8, 2016

#1/5#

Explanation:

By the logarithm definition,

#y = log_32 2 equiv 32^y = 2# but

#32^y = (2^5)^y = 2^{5y} = 2 = 2^1#

concluding #5y=1# then #y = 1/5#

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