IMO 1982

Consider infinite sequences {x_n} of positive reals such that x₀ = 1 and x₀ ≥= x₁ ≥ x₂ ≥ ... .

(a)  Prove that for every such sequence there is an n ≥ 1 such that:

      x₀²/x₁ + x₁²/x₂ + ... + x_n-1²/x_n ≥ 3.999.

(b)  Find such a sequence for which:

      x₀²/x₁ + x₁²/x₂ + ... + x_n-1²/x_n < 4   for all n.

Solution

(a)  It is sufficient to show that the sum of the (infinite) sequence is at least 4. Let k be the greatest lower bound of the limits of all such sequences. Clearly k ≥ 1. Given any ε > 0, we can find a sequence {x_n} with sum less than k + ε. But we may write the sum as:

x₀²/x₁ + x₁( (x₁/x₁)²/(x₂/x₁) + (x₂/x₁)²/(x₃/x₁) + ... + (x_n/x₁)²/(x_n+1/x₁) + ... ).

The term in brackets is another sum of the same type, so it is at least k. Hence k + ε > 1/x₁ + x₁k. This holds for all ε > 0, and so k ≥ 1/x₁ + x₁k. But 1/x₁ + x₁k ≥ 2√k, so k ≥ 4.

(b)  Let x_n = 1/2ⁿ. Then x₀²/x₁ + x₁²/x₂ + ... + x_n-1²/x_n = 2 + 1 + 1/2 + ... + 1/2^n-2 = 4 - 1/2^n-2 < 4.

Solutions are also available in     Murray S Klamkin, International Mathematical Olympiads 1978-1985, MAA 1986, and in   István Reiman, International Mathematical Olympiad 1959-1999, ISBN 189-8855-48-X.

23rd IMO 1982

© John Scholes
jscholes@kalva.demon.co.uk
14 Oct 1998