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How do you use #log_2 3 = 1.5850# to approximate the value of #log_2 96#?

1 Answer

Shwetank Mauria

Apr 6, 2017

#log_2 96=6.5850#

Explanation:

#log_2 96#

= #log_2 (2xx2xx2xx2xx2xx3)#

= #log_2 (2^5xx3)#

= #5log_2 2+log_2 3#

= #5xx1+1.5850#

= #6.5850#

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