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To the nearest tenth, find the perimeter of ∆ABC with vertices A(-1,4), B(-2,1) and C(2,1). *Please show all the work!
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To the nearest tenth, find the perimeter of ∆ABC with vertices A(-1,4), B(-2,1) and C(2,1).

*Please show all the work!

User Dushyant Tankariya
by
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1 Answer

6 votes

First we need to find the length of each side of the triangle , and for that we need to use the distance formula, that is

d =\sqrt{(x_(2) -x_(1))^2 +(y_(2) -y_(1))^2}

AB = √((1-4)^2 +(-2+1)^2)= √(10)

√(BC) = √((1-1)^2 + (2+2)^2)=4
Perimeter is the sum of all sides.

Perimeter = AB + BC + AC = √(10)+4 +√(18)

Perimeter= 11.4

User Nathan Liang
by
6.2k points
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