given the equation x^2+y^2+4x-6y+12=0 solve for y

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18-08-2014
Mathematics

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given the equation x^2+y^2+4x-6y+12=0 solve for y

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konrad509 konrad509 · Answer 1 · 2014-08-18T15:50:29-04:00

konrad509 konrad509

18-08-2014

[tex]x^2+y^2+4x-6y+12=0 \\ y^2-6y+9=-x^2-4x-3\\ (y-3)^2=-x^2-4x-3\\ y-3=\sqrt{-x^2-4x-3} \vee y-3=-\sqrt{-x^2-4x-3}\\ y=3+\sqrt{-x^2-4x-3} \vee y=3-\sqrt{-x^2-4x-3}[/tex]

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Аноним Аноним · Answer 2 · 2014-08-18T15:51:08-04:00

Аноним Аноним

18-08-2014

[tex]x^2+y^2+4x-6y+12=0\\\\x^2+2x\cdot2+2^2+y^2-2y\cdot3+3^2-2^2-3^2+12=0\\\\(x+2)^2+(y-3)^2-4-9+12=0\\\\(x+2)^2+(y-3)^2-1=0\\\\(y-3)^2=1-(x+2)^2\\\\(y-3)^2=[1-(x+2)][1+(x+2)]\\\\(y-3)^2=(-x-1)(x+3)\\\\y-3=\sqrt{-(x+1)(x+3)}\\\\y=3+\sqrt{-(x+1)(x+3)}[/tex]

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