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How do I solve this? y = 4 Log x + 5
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30 votes
30 votes
How do I solve this? y = 4 Log x + 5

User Eugene Chumak
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2 Answers

11 votes
11 votes


\\ \tt\hookrightarrow 4logx+5=y


\\ \tt\hookrightarrow 4logx=y-5


\\ \tt\hookrightarrow logx=(y-5)/(4)


\\ \tt\hookrightarrow x=10^{(y-5)/(4)}


\\ \tt\hookrightarrow x=\sqrt[4]{10^(y-5)}

User Chilaxathor
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3.2k points
13 votes
13 votes

Answer:


x=10^(\frac14(y-5))

Explanation:


y = 4 log (x) + 5


\implies y - 5 = 4 log(x)


\implies \frac14(y-5)=log(x)

Using log law
log_a(b)=c \implies a^c=b:


x=10^(\frac14(y-5))

User Ryan Michela
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