Show that the points A(-1,2), B (5,2) and C (2,5) are the vertices of an isosceles triangle. Find the area of ∆ABC

Question

asked Oct 24, 2023 206k views

1 Answer

Eblume · Answer 1 · 2023-10-28T22:11:32+0000

Answer:

the area of ∆ABC = 9

Explanation:

$CA=\sqrt{\left( -1-2\right)^(2) +\left( 2-5\right)^(2) } = √(18) =3√(2)$

$CB=\sqrt{\left( 5-2\right)^(2) +\left( 2-5\right)^(2) } = √(18) =3√(2)$

Since CA = CB then A(-1,2), B (5,2) and C (2,5) are the vertices of an isosceles triangle.

Area calculation:

Let The point H be the midpoint of side AB

$x_(H)=(-1+5)/(2) =2\\y_(H)=(2+2)/(2) =2$

Then

H(2 , 2)

therefore,

$CH=\sqrt{\left( 2-2{}\right)^(2) +\left( 2-5\right)^(2) } =3$

Finally,

$\text{the area of triangle ABC} =\frac{\text{CH} * \text{AB} }{2} =(3* 6)/(2) =9$