How do you solve $log_2(x+5)-log_2(2x-1)=5$ ?

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How do you solve $log_2(x+5)-log_2(2x-1)=5$ ?

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Answer 1 · 2016-07-13T18:17:16

I found: $x=37/63$

Explanation:

We can change the subtraction into a division of arguments and write:
$log_2((x+5)/(2x-1))=5$
then we use the definition of log to get rid of it and write:
$(x+5)/(2x-1)=2^5$
$(x+5)/(2x-1)=32$
rearrange:
$x+5=64x-32$
and:
$63x=37$
so:
$x=37/63$

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How do you solve $log_2(x+5)-log_2(2x-1)=5$ ?

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How do you solve log_2(x+5)-log_2(2x-1)=5log_2(x+5)-log_2(2x-1)=5?

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How do you solve $log_2(x+5)-log_2(2x-1)=5$ ?