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How do you evaluate #log_6 (2)#?

1 Answer

A. S. Adikesavan

May 20, 2016

#log 2/log 6=ln 2/ln 6=0.386853#, nearly.

Explanation:

Use #log_b a=log_c a/log_c b= log a/log b=ln a/ln b#.

Here, a = 2 and b = 6.

So, #log_6 2=log 2/log 6=ln 2/ln 6=0.386853#, nearly.

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