Answer:
The answer is "[tex]\sqrt{12.5}[/tex]"
Step-by-step explanation:
[tex]\to (3,2), \ (6,1)[/tex]
Distance[tex]=\sqrt{9+1}=\sqrt{10}[/tex]
midpoint height [tex]=\sqrt{10+2.5}=\sqrt{12.5}[/tex]
let
Gradient [tex]= \frac{1}{-3}[/tex]
Perpendicular Gradient[tex]= 3[/tex]
midpoints [tex]= (4.5, 1.5)[/tex]
Similar to perpendicular
Now I'll obtain the perpendicular bisector solution
An equation of the center circle[tex](4.5,1.5)[/tex] radius will be[tex]\sqrt{12.5}[/tex].
