Solution 2^2x+3-7(2^2x+1)+3=0 introduce Log

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Eleonor asked Feb 16, 2022

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Solution 2^2x+3-7(2^2x+1)+3=0 introduce Log

Mathematics
college

Eleonor asked Feb 16, 2022

by Eleonor

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Answer:

x = (log√(-1/6))/(log2)

Explanation:

Given the expression

2^(2x)+3-7(2^(2x)+1)+3=0

Let
P=2^x

Substituting into the expression, we will have:

$P^2+3-7(P^2+1)+3=0\\Expand\\P^2+3-7P^2-7+3=0\\-6P^2-1=0\\6P^2=-1\\p^2=-1/6\\P=√(-1/6)$

Since:

$P=2^x\\2^x=√(-1/6)\\xlog2=log(√(-1/6)) \\x = (log√(-1/6))/(log2)$

Arntg answered Feb 20, 2022

by Arntg

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