Difference between revisions of "2019 USAJMO Problems/Problem 6"
m (→Solution) |
m (→Solution) |
||
Line 11: | Line 11: | ||
Assume that <math>m+n\ne 2^k</math>, so then <math>m+n\equiv 0\pmod{p}</math> for some odd prime <math>p</math>. Then <math>m\equiv -n\pmod{p}</math>, so <math>\frac{m}{n}\equiv \frac{n}{m}\equiv -1\pmod{p}</math>. We see that the arithmetic mean is <math>\frac{-1+(-1)}{2}\equiv -1\pmod{p}</math> and the harmonic mean is <math>\frac{2(-1)(-1)}{-1+(-1)}\equiv -1\pmod{p}</math>, so if 1 can be written then <math>1\equiv -1\pmod{p}</math> and <math>2\equiv 0\pmod{p}</math> which is obviously impossible, and we are done. | Assume that <math>m+n\ne 2^k</math>, so then <math>m+n\equiv 0\pmod{p}</math> for some odd prime <math>p</math>. Then <math>m\equiv -n\pmod{p}</math>, so <math>\frac{m}{n}\equiv \frac{n}{m}\equiv -1\pmod{p}</math>. We see that the arithmetic mean is <math>\frac{-1+(-1)}{2}\equiv -1\pmod{p}</math> and the harmonic mean is <math>\frac{2(-1)(-1)}{-1+(-1)}\equiv -1\pmod{p}</math>, so if 1 can be written then <math>1\equiv -1\pmod{p}</math> and <math>2\equiv 0\pmod{p}</math> which is obviously impossible, and we are done. | ||
+ | -Stormersyle | ||
+ | |||
This proof is wrong because <math>\frac{m}{n}</math> and <math>\frac{n}{m}</math> are not integers, so you cannot say that they are <math>-1\pmod{p}</math> and work <math>\pmod{p}</math>. | This proof is wrong because <math>\frac{m}{n}</math> and <math>\frac{n}{m}</math> are not integers, so you cannot say that they are <math>-1\pmod{p}</math> and work <math>\pmod{p}</math>. | ||
− | |||
− | |||
{{MAA Notice}} | {{MAA Notice}} |
Revision as of 21:34, 18 June 2022
Two rational numbers and are written on a blackboard, where and are relatively prime positive integers. At any point, Evan may pick two of the numbers and written on the board and write either their arithmetic mean or their harmonic mean on the board as well. Find all pairs such that Evan can write on the board in finitely many steps.
Proposed by Yannick Yao
Solution
We claim that all odd work if is a positive power of 2.
Proof: We first prove that works. By weighted averages we have that can be written, so the solution set does indeed work. We will now prove these are the only solutions.
Assume that , so then for some odd prime . Then , so . We see that the arithmetic mean is and the harmonic mean is , so if 1 can be written then and which is obviously impossible, and we are done.
-Stormersyle
This proof is wrong because and are not integers, so you cannot say that they are and work .
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.
See also
2019 USAJMO (Problems • Resources) | ||
Preceded by Problem 5 |
Last Problem | |
1 • 2 • 3 • 4 • 5 • 6 | ||
All USAJMO Problems and Solutions |