(30 POINTS) What are the y intercepts of the circle whose equation is (x+2)^2+(y-4)^2=13? A. 1 and 7 B. 4 plus or minus Radical 17 C. There are no y intercepts PLEASE HELP!!!

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Nicolas Wu · Answer 1 · 2019-11-10T13:29:59+0000

Hello from MrBillDoesMath!

Answer: Choice C

Discussion:

The y-intercepts are the x values where y = 0. Substituting y = 0 in the equation gives

(x+2)^2 + (0-4)^2 = 13 =>

(x+2)^2 + 16 = 13 =>

Subtract 16 from both sides

(x+2)^2 = 13 - 16 = -3 (*)

The square of a real number is greater than or equal to 0. (Not true for complex numbers). The left side of (*) is therefore >= 0 but as also equals -3. This is not possible so there is no solution to the equation. Choice C.

Thank you,

MrB

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(30 POINTS) What are the y intercepts of the circle whose equation is (x+2)^2+(y-4)^2=13? A. 1 and 7 B. 4 plus or minus Radical 17 C. There are no y intercepts PLEASE HELP!!!

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