A triangle has corners at (2 , 9 ), (3 ,9 ), and (4 ,8 ). What is the radius of the triangle's inscribed circle?

1 Answer
Zor Shekhtman
Mar 8, 2016

Radius r of an inscribed into a triangle circle can be calculated using the lengths of its sides a, b and c as
r=sqrt(((p-a)(p-b)(p-c))/p)
where p=(a+b+c)/2

Explanation:

Assuming a triangle has sides a, b and c, its area can be expressed in two ways.

  1. Using Heron's formula for an area of a triangle:
    let p=(a+b+c)/2, then
    S = sqrt(p(p-a)(p-b)(p-c))

  2. Area of a triangle equals to half of a product of its perimeter by a radius of an inscribed circle:
    let p=(a+b+c)/2 and r is a radius of an inscribed circle, then
    S=p*r

The derivation of both formulas for area of a triangle can be found in the course of advanced mathematics at Unizor

These two expressions for an area must be equal, therefore
sqrt(p(p-a)(p-b)(p-c)) = p*r

From this we derive r:
r=sqrt(((p-a)(p-b)(p-c))/p)

For this particular problem we can get the lengths of all sides using the coordinates of the vertices:

if vertices are A(2,9), B(3,9) and C(4,8)

a=BC=sqrt((4-3)^2+(8-9)^2)=sqrt(2)
b=AC=sqrt((4-2)^2+(8-9)^2)=sqrt(5)
c=AB=sqrt((3-2)^2+(9-9)^2)=1
p=(a+b+c)/2=(sqrt(2)+sqrt(5)+1)/2
p-a=(-a+b+c)/2=(-sqrt(2)+sqrt(5)+1)/2
p-b=(a-b+c)/2=(sqrt(2)-sqrt(5)+1)/2
p-c=(a+b-c)/2=(sqrt(2)+sqrt(5)-1)/2

Putting all these values into a formula above for a radius of an inscribed circle, we calculate the radius.
These calculations we leave to a student who submitted a problem.

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