1961 IMO Problems/Problem 2
Problem
Let , , and be the lengths of a triangle whose area is S. Prove that
In what case does equality hold?
Solution
Substitute , where
This shows that the inequality is equivalent to .
This can be proven because . The equality holds when , or when the triangle is equilateral.
Solution 2 By PEKKA
We firstly use the duality principle. The LHS becomes and the RHS becomes If we use Heron's formula. By AM-GM Making this substitution becomes and once we take the square root of the area then our RHS becomes Multiplying the RHS and the LHS by 3 we get the LHS to be Our RHS becomes Subtracting we have the LHS equal to and the RHS being If LHS RHS then LHS-RHS LHS-RHS= by the trivial inequality so therefore, and we're done.
Video Solution
https://www.youtube.com/watch?v=ZYOB-KSEF3k&list=PLa8j0YHOYQQJGzkvK2Sm00zrh0aIQnof8&index=4 - AMBRIGGS