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How do you solve #log_4x=2.5#?

1 Answer

Jan 5, 2016

Use #x=log_ax^a#

The answer is:

#x=39.0625#

Explanation:

#log_4x=2.5#

#log_4x=log_4(2.5)^4#

#x=2.5^4#

#x=39.0625#

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