provides a central repository for the All-Russian Mathematical Olympiad, including printable PDF collections for recent years, such as the 2019 All-Russian Olympiad . John Scholes (Kalva) Archive
Let $n! + 1 = m^2$ for some positive integer $m$. Then $n! = m^2 - 1 = (m-1)(m+1)$. Since $n!$ is a product of consecutive integers, we must have $m-1 = 1$ and $m+1 = n!$. This implies $m = 2$ and $n! = 3$, which has no solution. Therefore, $n$ must be greater than $2$. For $n \geq 2$, we have $n! \equiv 0 \pmod4$, so $m^2 \equiv 1 \pmod4$. This implies $m \equiv \pm 1 \pmod4$. For $m \equiv 1 \pmod4$, we have $m-1 \equiv 0 \pmod4$ and $m+1 \equiv 2 \pmod4$, which implies $(m-1)(m+1) \not\equiv 0 \pmod4$. For $m \equiv -1 \pmod4$, we have $m-1 \equiv -2 \pmod4$ and $m+1 \equiv 0 \pmod4$, which implies $(m-1)(m+1) \equiv 0 \pmod4$. Therefore, $n! + 1$ is a perfect square if and only if $n = 1$ or $n = 2$. For $n=1$, we have $1! + 1 = 2$, which is not a perfect square. For $n=2$, we have $2! + 1 = 3$, which is not a perfect square. Therefore, there are no positive integers $n$ such that $n! + 1$ is a perfect square. russian math olympiad problems and solutions pdf verified
Find all polynomials ( P(x) ) with real coefficients such that for all real ( x ), [ P(x^2 + x + 1) = P(x)^2 + P(x). ] Then $n
tailored to a specific topic like Number Theory or Polynomials This implies $m = 2$ and $n
👉 (Scroll to “Russian MO Problems and Solutions” — PDFs are original scans from the Russian Ministry of Education.)