The coordinates of the endpoints of a diameter of a circle are (-5,3) and (3,-4). What is the: i. equation of the circle? ii. length of the diameter? iii. equation of the diameter?

2 Answers
May 29, 2018

i. #(x+1)^2+(y+1/2)^2=113/4#
ii. Diameter: #sqrt(113)#
iii. Equation of diameter: #7x+8y=-11# for #x in [-5,+3]#

Explanation:

The diameter of the circle is the length of the line segment between the given points #(-5,3)# and #(3,-4)#;
and it can be calculated using the Pythagorean Theorem
enter image source here
From the above image we can see that the diameter has a length of
#color(white)("XXX")d=sqrt(8^2+7^2)=sqrt(113)#

The radius is half the length of the diameter:
#color(white)("XXX")r=sqrt(113)/2#

The center of the circle is the midpoint of the line segment between the given points. One way to find this is to take half of the distance up from the point lower right and half of the distance to the right of the point in the upper left.
That is, the center of the circle will be at
#color(white)("XXX")(-5+4,-4+3 1/2)=(-1,-1/2)#

The general equation for a circle with center #(a,b)# and radius #r# is
#color(white)("XXX")(x-a)^2+(y-b)^2=r^2#
Using the values we have determined the equation for this specific circle:
#color(white)("XXX")(x+1)^2+(y+1/2)^2=113/4#
enter image source here
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~

I'm not sure what you meant by "the equation of the diameter".

Perhaps you only wanted the expression for evaluating the length of the diameter (if so, it has already been given above).

Alternatively, you might have meant the equation of the line between the given endpoints. In this case we simply employ equivalent slope values #(Deltay)/(Deltax)# as
#color(white)("XXX")(y-(-4))/(x-3)=(3-(-4))/(-5-3)=-7/8#
which can be converted into standard form:
#color(white)("XXX")8(y+4)=-7(x-3)#

#color(white)("XXX")8y+32=-7x+21#

#color(white)("XXX")7x+8y=-11#

May 29, 2018

See below.

Explanation:

We are given the end points of the diameter, the midpoint of the diameter is the centre of the circle. In order to find the equation of the circle, we need to find the radius and the coordinates of the centre.

First find the diameter. We use the distance formula for this.

#d=sqrt((x_2-x_1)^2+(y_2-y_1)^2)#

Using the end points:

#(-5,3)->(x_1,y_1)# ,#(3,-4)->(x_2,y_2)#

#d=sqrt((3-(-5))^2+(-4-3)^2)=sqrt(113)#

So the radius is #sqrt(113)/2#

We now find the coordinates of the centre.

Using coordinates of the midpoint of a line segment:

#((x_1+x_2)/2+(y_1+y_2)/2)#

Using endpoints of the diameter again:

#"Midpoint"=((-5+3)/2,(3-4)/2)=(-1,-1/2)#

The general equation of a circle is given as:

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

Where #bbh# and #bbk# are the x and y coordinates of the centre respectively.

So we have:

#h=-1# , #k=-1/2# and radius #sqrt(113)/2#

Plugging in these values:

#"Equation of circle"=(x+1)^2+(y+1/2)^2=113/4#

#"Length of diameter"=sqrt(113)#

I'm not absolutely sure what you mean by the equation of the diameter. I am assuming you mean the equation of the line that passes through the end points of the diameter. To find this we first find the gradient of this line using the endpoints again.

#"Gradient"=m=(y_2-y_1)/(x_2-x_1)=(-4-3)/(3-(-5))=-7/8#

Using point slope form of a line:

#(y_2-y_1)=m(x_2-x_1)#

#(y-3)=-7/8(x-(-5))#

#"Equation of diameter"=y=-7/8x-11/8#