Let En = (a1 - a2)(a1 - a3) ... (a1 - an) + (a2 - a1)(a2 - a3) ... (a2 - an) + ... + (an - a1)(an - a2) ... (an - an-1). Let Sn be the proposition that En ≥ 0 for all real ai.
Prove that Sn is true for n = 3 and 5, but for no other n > 2.
Solution
Take a1 < 0, and the remaining ai = 0. Then En = a1n-1 < 0 for n even, so the proposition is false for even n.
Suppose n ≥ 7 and odd. Take any c > a > b, and let a1 = a, a2 = a3 = a4= b, and a5 = a6 = ... = an = c. Then En = (a - b)3(a - c)n-4 < 0. So the proposition is false for odd n ≥ 7.
Assume a1 ≥ a2 ≥ a3. Then in E3 the sum of the first two terms is non-negative, because (a1 - a3) ≥ (a2 - a3). The last term is also non-negative. Hence E3 ≥ 0, and the proposition is true for n = 3.
It remains to prove S5. Suppose a1 ≥ a2 ≥ a3 ≥ a4 ≥ a5. Then the sum of the first two terms in E5 is (a1 - a2){(a1 - a3)(a1 - a4)(a1 - a5) - (a2 - a3)(a2 - a4)(a2 - a5)} ≥ 0. The third term is non-negative (the first two factors are non-positive and the last two non-negative). The sum of the last two terms is: (a4 - a5){(a1 - a5)(a2 - a5)(a3 - a5) - (a1 - a4)(a2 - a4)(a3 - a4)} ≥ 0. Hence E5 ≥ 0.
Solutions are also available in: Samuel L Greitzer, International Mathematical Olympiads 1959-1977, MAA 1978, and in István Reiman, International Mathematical Olympiad 1959-1999, ISBN 189-8855-48-X.
© John Scholes
jscholes@kalva.demon.co.uk
8 Oct 1998
Last updated/corrected 14 Mar 03