24th International Mathematical Olympiad 1983 Problems & Solutions



A1.  Find all functions f defined on the set of positive reals which take positive real values and satisfy:   f(x(f(y)) = yf(x) for all x, y; and f(x) → 0 as x → ∞.
A2.  Let A be one of the two distinct points of intersection of two unequal coplanar circles C1 and C2 with centers O1 and O2 respectively. One of the common tangents to the circles touches C1 at P1 and C2 at P2, while the other touches C1 at Q1 and C2 at Q2. Let M1 be the midpoint of P1Q1 and M2 the midpoint of P2Q2. Prove that ∠O1AO2 = ∠M1AM2.
A3.  Let a , b and c be positive integers, no two of which have a common divisor greater than 1. Show that 2abc - ab - bc - ca is the largest integer which cannot be expressed in the form xbc + yca + zab, where x, y, z are non-negative integers.
B1.  Let ABC be an equilateral triangle and E the set of all points contained in the three segments AB, BC and CA (including A, B and C). Determine whether, for every partition of E into two disjoint subsets, at least one of the two subsets contains the vertices of a right-angled triangle.
B2.  Is it possible to choose 1983 distinct positive integers, all less than or equal to 105, no three of which are consecutive terms of an arithmetic progression?
B3.  Let a, b and c be the lengths of the sides of a triangle. Prove that     a2b(a - b) + b2c(b - c) + c2a(c - a) ≥ 0.
Determine when equality occurs. 

Solutions

Problem A1
Find all functions f defined on the set of positive reals which take positive real values and satisfy:
  f(x(f(y)) = yf(x) for all x, y; and f(x) → 0 as x → ∞.
 
Solution
If f(k) = 1, then f(x) = f(xf(k)) = kf(x), so k =1. Let y = 1/f(x) and set k = xf(y), then f(k) = f(xf(y)) = yf(x) = 1. Hence f(1) = 1 and f(1/f(x)) = 1/x. Also f(f(y)) = f(1f(y)) = y. Hence f(1/x) = 1/f(x). Finally, let z = f(y), so that f(z) = y. Then f(xy) = f(xf(z)) = zf(x) = f(x)f(y).
Now notice that f(xf(x)) = xf(x). Let k = xf(x). We show that k = 1. f(k2) = f(k)f(k) = k2 and by a simple induction f(kn) = kn, so we cannot have k > 1, or f(x) would not tend to 0 as x tends to infinity. But f(1/k) = 1/k and the same argument shows that we cannot have 1/k > 1. Hence k = 1.
So the only such function f is f(x) = 1/x. 

Problem A2
Let A be one of the two distinct points of intersection of two unequal coplanar circles C1 and C2 with centers O1 and O2 respectively. One of the common tangents to the circles touches C1 at P1 and C2 at P2, while the other touches C1 at Q1 and C2 at Q2. Let M1 be the midpoint of P1Q1 and M2 the midpoint of P2Q2. Prove that ∠O1AO2 = ∠M1AM2.
 
Solution
Let P1P2 and O1O2 meet at O. Let OA meet C2 again at A2. O is the center of similitude for C1 and C2 so ∠M1AO1 = ∠M2A2O2. Hence if we can show that ∠M2AO2 = ∠M2A2O2, then we are home.
Let X be the other point of intersection of the two circles. The key is to show that A2, M2 and X are collinear, for then ∠M2AO2 = ∠M2XO2 (by reflection) and O2A2X is isosceles.
But since O is the center of similitude, M2A2 is parallel to M1A, and by reflection ∠XM2O = ∠AM2O, so we need to show that triangle AM1M2 is isosceles. Extend XA to meet P1P2 at Y. Then YP12 = YA.YX = YP22, so YX is the perpendicular bisector of M1M2, and hence AM1 = AM2 as required. 

Problem A3
Let a , b and c be positive integers, no two of which have a common divisor greater than 1. Show that 2abc - ab - bc - ca is the largest integer which cannot be expressed in the form xbc + yca + zab, where x, y, z are non-negative integers.
 
Solution
We start with the lemma that bc - b - c is the largest number which cannot be written as mb + nc with m and n non-negative. [Proof: 0, c, 2c, ... , (b-1)c is a complete set of residues mod b. If r > (b-1)c - b, then r = nc (mod b) for some 0 ≤ n ≤ b-1. But r > nc - b, so r = nc + mb for some m ≥ 0. That proves that every number larger than bc - b - c can be written as mb + nc with m and n non-negative. Now consider bc - b - c. It is (b-1)c (mod b), and not congruent to any nc with 0 ≤ n < b-1. So if bc - b - c = mb + nc, then n ≥ b-1. Hence mb + nc ≥ nc ≥ (b-1)c > bc - b - c. Contradiction.]
0, bc, 2bc, ... , (a-1)bc is a complete set of residues mod a. So given N > 2abc - ab - bc - ca we may take xbc = N (mod a) with 0 <= x < a. But N - xbc > 2abc - ab - bc - ca - (a-1)bc = abc - ab - ca = a(bc - b - c). So N - xbc = ka, with k > bc - b - c. Hence we can find non-negative y, z so that k = zb + yc. Hence N = xbc + yca + zab.
Finally, we show that for N = 2abc - ab - bc - ca we cannot find non-negative x, y, z so that N = xbc + yca + zab. N = -bc (mod a), so we must have x = -1 (mod a) and hence x ≥ a-1. Similarly, y ≥ b-1, and z ≥ c-1. Hence xbc + yca + zab ≥ 3abc - ab - bc - ca > N. Contradiction. 

Problem B1
Let ABC be an equilateral triangle and E the set of all points contained in the three segments AB, BC and CA (including A, B and C). Determine whether, for every partition of E into two disjoint subsets, at least one of the two subsets contains the vertices of a right-angled triangle.
 
Solution
It does.
Suppose otherwise, that E is the disjoint union of e and e' with no right-angled triangles in either set. Take points X, Y, Z two-thirds of the way along BC, CA, AB respectively (so that BX/BC = 2/3 etc). Then two of X, Y, Z must be in the same set. Suppose X and Y are in e. Now YX is perpendicular to BC, so all points of BC apart from X must be in e'. Take W to be the foot of the perpendicular from Z to BC. Then B and W are in e', so Z must be in e. ZY is perpendicular to AC, so all points of AC apart from Y must be in e'. e' is now far too big. For example let M be the midpoint of BC, then AMC is in e' and right-angled. 

Problem B2
Is it possible to choose 1983 distinct positive integers, all less than or equal to 105, no three of which are consecutive terms of an arithmetic progression?
 
Solution
We may notice that an efficient way to build up a set with no APs length 3 is as follows. Having found 2n numbers in {1, 2, ... , un} we add the same pattern starting at 2un, thus giving 2n+1 numbers in {1, 2, ... , 3un-1}. If x is in the first part and y, z in the second part, then 2y is at least 4un, whereas x + z is less than 4un, so x, y, z cannot be an AP length 3. If x and y are in the first part, and z in the second part, then 2y is at most 2un, but x + z is more than 2un, so x, y, z cannot be an AP length 3. To start the process off, we have the 4 numbers 1, 2, 4, 5 in {1, 2, 3, 4, 5}. So u2 = 5. This gives u11 = 88574, in other words we can find 2048 numbers in the first 88574 with no AP length 3.
If we are lucky, we may notice that if we reduce each number in the set we have constructed by 1 we get the numbers which have no 2 when written base 3. This provides a neater approach. Take x, y, z with no 2 when written in base 3. Then 2y has only 0s and 2s when written base 3. But x + z only has no 1s if x = z. So x, y, z cannot form an AP length 3. Also there are 211 = 2048 numbers of this type with 11 digits or less and hence ≤ 111111111113 = 88573. 

Problem B3
Let a, b and c be the lengths of the sides of a triangle. Prove that
    a2b(a - b) + b2c(b - c) + c2a(c - a) ≥ 0.
Determine when equality occurs.
 
Solution
Put a = y + z, b = z + x, c = x + y. Then the triangle condition becomes simply x, y, z > 0. The inequality becomes (after some manipulation):
    xy3 + yz3 + zx3 ≥ xyz(x + y + z).
Applying Cauchy's inequality we get (xy3 + yz3 + zx3)(z + x + y) ≥ xyz(y + z + x)2 with equality iff xy3/z = yz3/x = zx3/y. So the inequality holds with equality iff x = y = z. Thus the original inequality holds with equality iff the triangle is equilateral.
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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.


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