Question

A triangle has corners at `(3 , 4 )`, `(6 ,7 )`, and `(5 ,8 )`. What is the radius of the triangle's inscribed circle?

Answer 1

`2sqrt2-sqrt5`.

Explanation:

Let the vertices be `A(3,4), B(6,7) and C(5,8)`.

Then, `AB^2=(3-6)^2+(4-7)^2=9+9=18`, & likewise,

`BC^2=2 and CA^2=20`.

`:. AB^2+BC^2=CA^2`.

Hence, `DeltaABC` is right-angled at `B`.

From Geometry, we know that the inradius `r` is,

`r=(AB+BC-CA)/2`.

`=1/2(3sqrt2+sqrt2-2sqrt5)`.

`:. r=2sqrt2-sqrt5`.