33rd IMO 1992 shortlist

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Problem 2

a and b are positive reals. Let X be the set of non-negative reals. Show that there is a unique function f:X → X such that f( f(x) ) = b(a + b)x - af(x) for all x.

 

Answer

f(x) = bx

 

Solution

Put u0 = k, un+1 = f(un). Then un+2 - b(a+b)un+1 + aun = 0. That is a standard linear recurrence relation, so we can immediately solve it. The associated quadratic factorises as (x - b)(x + a + b) = 0, so the general solution is un = Abn + B(-a-b)n. Hence un/(a+b)n = A(b/(a+b))n + (-1)nB. But (b/(a+b))n → 0 and lhs is always non-negative. Hence B = 0. So A = k. Hence f(k) = u1 = bk. It is easy to check that this does indeed satisfy the relation given.

 


 

33rd IMO shortlist 1992

© John Scholes
jscholes@kalva.demon.co.uk
25 Nov 2003
Last updated/corrected 25 Nov 2003