2006 USAMO Problems/Problem 4
Problem
Find all positive integers such that there are positive rational numbers satisfying .
Solution
Let polynomial be a monic polynomial such that it's roots are only all of through . Therefore, the sum and product of the roots is n, and the constant term of is . From the Rational Root Theorem, all are divisors of n, and integral. We split this into cases:
Case 1: n is prime
If n is prime, the only divisors of n are 1 and n. We must have an n in so that , but then , since . We have a contradiction, therefore n may not be prime.
Case 2: n is composite
Let two divisors of n(not necessarily distinct) be and , such that and . We will prove that :
We subtract from : . Now we add 1: . Since and are positive, and are nonnegative. Therefore, , and .
WLOG, we let and . If , we can let the rest of the numbers be ones. Therefore, there are such k when n is composite.
Case 3: n=1
Therefore, k=1, but , so that is impossible.
Therefore, there are such such that only when n is composite.