Difference between revisions of "2021 IMO Problems/Problem 1"

(Solution 2)
(Solution 2)
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  6n ≤ x^2 + y^2 + z^2 ≤ 12n
 
  6n ≤ x^2 + y^2 + z^2 ≤ 12n
 +
if we assume that x, y, and z is a close numbers,
 
  6n ≤ 3x^2 ≤ 12n
 
  6n ≤ 3x^2 ≤ 12n
 
  2n ≤ x^2 ≤ 4n
 
  2n ≤ x^2 ≤ 4n

Revision as of 10:34, 29 January 2023

Problem

Let $n \geqslant 100$ be an integer. Ivan writes the numbers $n, n+1, \ldots, 2 n$ each on different cards. He then shuffles these $n+1$ cards, and divides them into two piles. Prove that at least one of the piles contains two cards such that the sum of their numbers is a perfect square.

Video Solutions

https://youtu.be/cI9p-Z4-Sc8 [Video contains solutions to all day 1 problems]

https://youtu.be/0Vd4ZBEr3o4

https://www.youtube.com/watch?v=a3L9O7b1WYg [disclaimer: only a sketch of the solution]

Solution 1

If we can guarantee that there exist $3$ cards such that every pair of them sum to a perfect square, then we can guarantee that one of the piles contains $2$ cards that sum to a perfect square. Assume the perfect squares $p^2$, $q^2$, and $r^2$ satisfy the following system of equations: \usepackage{amsmath} \begin{align*} a+b &= p^2 \\ b+c &= q^2 \\ a+c &= r^2 \end{align*} where $a$, $b$, and $c$ are numbers on three of the cards. Solving for $a$, $b$, and $c$ in terms of $p$, $q$, and $r$ tells us that $a = \frac{p^2 + r^2 - q^2}{2}$, $b=\frac{p^2 + q^2 - r^2}{2}$, and $c=\frac{q^2 + r^2 - p^2}{2}$. We can then substitute $p^2 = (2e-1)^2$, $q^2 = (2e)^2$, and $r^2 = (2e+1)^2$ to cancel out the $2$s in the denominatior, and simplifying gives $a = 2e^2 + 1$, $b = 2e(e-2)$, and $c = 2e(e+2)$. Now, we have to prove that there exists three numbers in these forms between $n$ and $2n$ when $n \ge 100$. Notice that $b$ will always be the least of the three and $c$ will always be the greatest of the three. So it is sufficient to prove that there exists numbers in the form $2e(e-2)$ and $2e(e+2)$ between $n$ and $2n$.


For two numbers in the form of $2e(e-2)$ and $2e(e+2)$ to be between $n$ and $2n$, the inequalities \usepackage{amsmath} \begin{align*} 2e(e-2) &\ge n \\ 2e(e+2) &\le 2n \\ \end{align*} must be satisfied. We can then expand and simplify to get that \usepackage{amsmath} \begin{align*} e^2 - 2e - \frac{n}{2} &\ge 0 \\ e^2 + 2e - n &\le 0. \\ \end{align*} Then, we can complete the square on the left sides of both inequalities and isolate $e$ to get that \usepackage{amsmath} \begin{align*} e &\ge \sqrt{1 + \frac{n}{2}} + 1 \\ e &\le \sqrt{1 + n} - 1 \\ \end{align*} Notice that $e$ must be an integer, so there must be an integer between $\sqrt{1 + n} - 1$ and $\sqrt{1 + \frac{n}{2}} + 1$. If $\sqrt{1 + n} - 1$ and $\sqrt{1 + \frac{n}{2}} + 1$ differ by at least $1$, then we can guarantee that there is an integer between them (and those integers are the possible values of $e$). Setting up the inequality $\sqrt{1 + n} - \sqrt{1 + \frac{n}{2}} - 2 \ge 1$ and solving for $n$ tells us that $n \in [107, \infty)$ always works. Testing the remaining $7$ numbers ($100$ to $106$) manually tells us that there is an integer between $\sqrt{1 + n} - 1$ and $\sqrt{1 + \frac{n}{2}} + 1$ when $n \ge 100$. Therefore, there exists a triplet of integers $(a,b,c)$ with $a, b, c \in \{n, n+1, ..., 2n\}$ when $n \ge 100$ such that every pair of the numbers sum to a perfect square. By the pigeonhole principle, we know that $2$ of the numbers must be on cards in the same pile, and hence, when $n \ge 100$, there will always be a pile with $2$ numbers that sum to a perfect square. $\square$

~Mathdreams

Solution 2

(easy one)

For the statement to be true, there must be at least three pairs whose sum is each a perfect square. There must be p,q,r such that p+q = x^2 and q+r = y^2, p+r = z^2.

WLOG n≤ p ≤ q ≤ r ≤ 2n ... Equation 1
p = (x^2 + z^2 – y^2) / 2
q = (x^2 + y^2 – z^2) / 2
r = (y^2 + z^2 – x^2) / 2

by equation 1

2n ≤ x^2 + z^2 – y^2 ≤ 4n   ...(eq 1)
2n ≤ x^2 + y^2 – z^2 ≤ 4n   ...(eq 2)
2n ≤ y^2 + z^2 – z^2 ≤ 4n   ...(eq 3)

if we add (eq 2) and (eq 3) to (eq 1),

(eq 1) + (eq 2) + (eq 3) =>

6n ≤ x^2 + y^2 + z^2 ≤ 12n
if we assume that x, y, and z is a close numbers,
6n ≤ 3x^2 ≤ 12n
2n ≤ x^2 ≤ 4n
√(2n) ≤ x ≤ 2√n

At this time 100 ≤ n, so let's put n = 100 to this

10√2 ≤ x,y,z ≤ 20
15 ≤ x,y,z ≤ 20

where

2|x^2 + y^2 – z^2 
2|x^2 + z^2 – y^2 
2|y^2 + z^2 – z^2

x = 16, y = 18, z = 20 fits perfectly

therefore the minimum of n fits the proposition so the proposition is true

~Mathhyhyhy