Question

What is the perimeter of a triangle with vertices located at (1.4) (2,7) and (0,5)

Answer 1

Answer:

The perimeter of triangle is $P=(\sqrt{10}+3\sqrt{2})\ units$

Step-by-step explanation:

Let

$A(1.4),B(2,7),C(0,5)$

we know that

The perimeter of the triangle is equal to

$P=AB+BC+AC$

the formula to calculate the distance between two points is equal to

$d=\sqrt{(y2-y1)^{2}+(x2-x1)^{2}}$

step 1

Find the distance AB

$A(1.4),B(2,7)$

substitute the values

$AB=\sqrt{(7-4)^{2}+(2-1)^{2}}$

$AB=\sqrt{(3)^{2}+(1)^{2}}$

$AB=\sqrt{10}\ units$

step 2

Find the distance BC

$B(2,7),C(0,5)$

substitute the values

$BC=\sqrt{(5-7)^{2}+(0-2)^{2}}$

$BC=\sqrt{(-2)^{2}+(-2)^{2}}$

$BC=\sqrt{8}\ units$

$BC=2\sqrt{2}\ units$

step 3

Find the distance AC

$A(1.4),C(0,5)$

substitute the values

$AC=\sqrt{(5-4)^{2}+(0-1)^{2}}$

$AC=\sqrt{(1)^{2}+(-1)^{2}}$

$AC=\sqrt{2}\ units$

step 4

Find the perimeter

$P=AB+BC+AC$

$P=\sqrt{10}+2\sqrt{2}+\sqrt{2}$

$P=(\sqrt{10}+3\sqrt{2})\ units$