Question

How do you write the equation in standard form of the circle for; endpoints of the diameter A(14, -7) and B(-10,9)?

Answer 1

`(x-2)^2+(y-1)^2=208`

Explanation:

The general form of a circle centred at `(a,b)` and with radius `r` is `(x-a)^2+(y-b)^2=r^2`.

So we first need to find the radius and the centre before we can find the equation.

Length of diameter will be distance between its endpoints.

`therefore d=sqrt((14-(-10))^2+(-7-9)^2)=sqrt832`.

Therefore the radius `r=1/2d=1/2sqrt832`.

This implies that `r^2=832/4=208`.

The centre of the circle will be the midpoint of the diameter, ie

`(a,b)=((14-10)/2;(9-7)/2)=(2,1)`.

Therefore the standard equation of this circle will be

`(x-2)^2+(y-1)^2=208`.