1 Answer

Sletheren · Answer 1 · 2020-03-27T14:42:00+0000

Answer:
r=3

Explanation:

The equation of the circle in center-radius form is:

(x-h)^2+(y-k)^2=r^2

Where the point
(h,k) is the center of the circle and "r" is the radius.

Subtract 56 from both sides of the equation:

$x^2+y^2+8x-14y+56-56=0-56\\x^2+y^2+8x-14y=-56$

Make two groups for variable "x" and variable "y":

(x^2+8x)+(y^2-14y)=-56

Complete the square:

Add
((8)/(2))^2=4^2 inside the parentheses of "x".

Add
((14)/(2))^2=7^2 inside the parentheses of "y".

Add
4^2 and
7^2 to the right side of the equation.

Then:

$(x^2+8x+4^2)+(y^2-14y+7^2)=-56+4^2+7^2\\\\(x^2+8x+4^2)+(y^2-14y+7^2)=9$

Rewriting, you get that the equation of the circle in center-radius form is:

(x+4)^2+(y-7)^2=3^2

You can observe that the radius of the circle is:

r=3

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