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What is the inverse of $y = log_8 (4x)$ ?

1 Answer

Jun 3, 2018

$f^-1(x)=1/4(8^x)$

Explanation:

$"rearrange making x the subject"$

$[log_bx=nhArrx=b^n]$

$4x=8^y$

$x=1/4xx8^y$

$rArrf^-1(x)=1/4(8^x)$

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