Determine the solution set of (x-4)^2=12.A: {4+2 square root of 3, 4-2 square root of 3}B: {4-2 square root of 3, 4-2 square root of 3}C: {2 square root of 3 + 4, 2 square root of 3 -4}

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asked Dec 11, 2023 20.7k views

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Determine the solution set of (x-4)^2=12.A: {4+2 square root of 3, 4-2 square root of 3}B: {4-2 square root of 3, 4-2 square root of 3}C: {2 square root of 3 + 4, 2 square root of 3 -4}

Mathematics
college

Rahul L asked

by Rahul L

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$\begin{gathered} (x-4)^2=12 \\ x^2-8x+16=12 \\ x^2-8x+16-12=0 \\ x^2-8x+4=0 \\ x=(-b\pm√(b^2-4ac))/(2a) \\ a=1 \end{gathered}$

Evgeny Melnikov answered Dec 15, 2023

by Evgeny Melnikov

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