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How do you solve #log_2x=log_4 25#?

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Konstantinos Michailidis

Mar 15, 2016

It is

#log_2 x=log_(2^2) 25=>(logx/log2) = (log25/log2^2)=> logx/log2=(2log5)/(2log2)=>logx=log5=>x=5#

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