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Re: The average length of the sides of ∆ABC is 12. What is the p [#permalink]
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rzsanchez23 wrote:
Why did you multiply by 3? I dont understand.


Our equation was in the form \(\frac{a + b + c}{3}=D\)

By multiplying the fraction by 3, we're able to get rid of our fraction (which makes our calculations easier)

After we multiply both sides by 3, we get: \(a + b + c = 3D\)

Cheers,
Brent
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Re: The average length of the sides of ∆ABC is 12. What is the p [#permalink]
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It seems to me, in this case, we could ignore that it's a special triangle and write out that the average of the 3 sides is 12

\(\frac{AB + BC + CA}{3}= 12\)

and then multiply both sides by 3, which gives us:

AB + BC + CA = 36

which is the perimeter, because the perimeter of any triangle is just the sum of it's sides.
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Re: The average length of the sides of ABC is 12. What is the p [#permalink]
arc601 wrote:
It seems to me, in this case, we could ignore that it's a special triangle and write out that the average of the 3 sides is 12

\(\frac{AB + BC + CA}{3}= 12\)

and then multiply both sides by 3, which gives us:

AB + BC + CA = 36

which is the perimeter, because the perimeter of any triangle is just the sum of it's sides.


I did the same. That seems like a faster approach too and nifty!
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Re: The average length of the sides of ABC is 12. What is the p [#permalink]
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