1. a, b, c, d are each relatively prime to n = ad - bc, and r and s are integers. Show ar + bs is a multiple of n iff cr + ds is a multiple of n.
2. Find the sum of all four digit numbers (written in base 10) which contain only the digits 1 - 5 and contain no digit twice.
3. r is the inradius of the triangle ABC and r' is the exradius for the circle touching AB. Show that 4r r' ≤ c2, where c is the length of the side AB.
Solutions
Problem 1
a, b, c, d are each relatively prime to n = ad - bc, and r and s are integers. Show ar + bs is a multiple of n iff cr + ds is a multiple of n.
Solution
d(ar+bs) - b(cr+ds) = (ad-bc)r = nr, so if (ar+bs) is a multiple of n, then so is b(cr+ds). But b is relatively prime to n, so (cr+ds) is a multiple of n. Similarly, if (cr+ds) is a multiple of n, then so is d(ar+bs) and hence (ar+bs).
Problem 2
Find the sum of all four digit numbers (written in base 10) which contain only the digits 1 - 5 and contain no digit twice.
Solution
Denote the digits as d3d2d1d0. If we fix d0 = k, then there are 4·3·2 ways of choosing the other digits, so there are 24 such numbers. The sum of their d0 digits is 24k. Thus the sum of the d0 digits for all the numbers is 24(1+2+3+4+5) = 24·15 = 360. A similar argument works for the other digits, so the sum of the numbers is 360(1+10+100+1000) = 399960.
Problem 3
r is the inradius of the triangle ABC and r' is the exradius for the circle touching AB. Show that 4r r' ≤ c2, where c is the length of the side AB.
Solution
Let the incenter be I and the relevant excenter be E. Then ∠IAE = ∠IBE = 90o, so AIBE is cyclic. Let the center of the circle through A,I,B,E be C. Then r = IP, r' = EQ. But IP·EQ ≤ XZ·ZY, where XY is the diameter perpendicular to AB. We have XZ·ZY = AZ·ZB = c2/4.
Labels:
Eötvös Competition Problems
Previous Article
