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What are the solutions to log (x2+8)= 1 +log (x)?

asked Nov 17, 2021 158k views

4 votes

What are the solutions to log (x2+8)= 1 +log (x)?

Mathematics
college

by Koja

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1 Answer

4 votes

Answer:

Explanation:

log(x²+8)=1+log(x)

log(x²+8)-log(x)=1

$log(x^2+8)/(x) =1\\(x^2+8)/(x) =10^1\\x^2+8=10x\\x^2-10x+8=0\\x=(10 \pm √((-10)^2-4*1*8) )/(2) \\=(10 \pm √(100-32) )/(2) \\=(10 \pm √(68) )/(2) \\=(10 \pm 2√(17) )/(2) \\=5 \pm √(17)$

Zhong Huiwen answered Nov 23, 2021

by Zhong Huiwen

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