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Solve (y-4)^2+63=0 where y is a real number.

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Solve (y-4)^2+63=0 where y is a real number.

asked Nov 2, 2021 222k views

3 votes

Solve (y-4)^2+63=0 where y is a real number.

Mathematics
high-school

by Scord

8.4k points

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1 Answer

5 votes

Answer:

y = 4 + 3 √(7) i

Explanation:

$(y-4)^2+63=0 \\ \\ (y-4)^2 = - 63 \\ \\ (y-4)= √( - 63) \\ \\ y - 4 = 3 √(7) i \\ \\ y = 4 + 3 √(7) i$

Nickyfot answered Nov 6, 2021

7.8k points

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