1980 USAMO Problems/Problem 2: Difference between revisions

Revision as of 18:04, 9 August 2023

Problem

Find the maximum possible number of three term arithmetic progressions in a monotone sequence of $n$ distinct reals.

Solution

Consider the first few cases for $n$ with the entire $n$ numbers forming an arithmetic sequence $(1, 2, 3, \ldots, n)$ If $n = 3$ , there will be one ascending triplet (123). Let's only consider the ascending order for now. If $n = 4$ , the first 3 numbers give 1 triplet, the addition of the 4 gives one more, for 2 in total. If $n = 5$ , the first 4 numbers give 2 triplets, and the 5th number gives 2 more triplets (135 and 345). Repeating a few more times, we can quickly see that if $n$ is even, the nth number will give $\frac{n}{2} - 1$ more triplets in addition to all the prior triplets from the first $n-1$ numbers. If $n$ is odd, the $n$ th number will give $\frac{n-1}{2}$ more triplets. Let $f(n)$ denote the total number of triplets for $n$ numbers. The above two statements are summarized as follows: If $n$ is even, $f(n) = f(n-1) + \frac{n}2 - 1$ If $n$ is odd, $f(n) = f(n-1) + \frac{n-1}2$

Let's obtain the closed form for when $n$ is even: $\begin{align*} f(n) &= f(n-2) + n-2\\ f(n) &= f(n-4) + (n-2) + (n-4)\\ f(n) &= \sum_{i=1}^{n/2} n - 2i\\ \Aboxed{f(n\ \text{even}) &= \frac{n^2 - 2n}4} \end{align*}$

Now obtain the closed form when $n$ is odd by using the previous result for when $n$ is even: $\begin{align*} f(n) &= f(n-1) + \frac{n-1}2\\ f(n) &= \frac{{(n-1)}^2 - 2(n-1)}4 + \frac{n-1}2\\ \Aboxed{f(n\ \text{odd}) &= \frac{{(n-1)}^2}4} \end{align*}$

Note the ambiguous wording in the question! If the "arithmetic progression" is allowed to be a disordered subsequence, then every progression counts twice, both as an ascending progression and as a descending progression. Double the expression to account for the descending versions of each triple, to obtain: $\begin{align*} f(n\ \text{even}) &= \frac{n^2 - 2n}2\\ f(n\ \text{odd}) &= \frac{{(n-1)}^2}2\\ \Aboxed{f(n) &= \biggl\lfloor\frac{(n-1)^2}2\biggr\rfloor} \end{align*}$

~Lopkiloinm (corrected by integralarefun)

@@ Line 11: / Line 11: @@
 If <math>n</math> is odd, the <math>n</math>th number will give <cmath>\frac{n-1}{2}</cmath> more triplets.
 Let <math>f(n)</math> denote the total number of triplets for <math>n</math> numbers. The above two statements are summarized as follows:
-If <math>n</math> is even, <cmath>f(n) = f(n-1) + \frac{n}{2} - 1</cmath>
+If <math>n</math> is even, <cmath>f(n) = f(n-1) + \frac{n}2 - 1</cmath>
-If <math>n</math> is odd, <cmath>f(n) = f(n-1) + \frac{n-1}{2}</cmath>
+If <math>n</math> is odd, <cmath>f(n) = f(n-1) + \frac{n-1}2</cmath>
 Let's obtain the closed form for when <math>n</math> is even:
@@ Line 19: / Line 19: @@
 f(n) &= f(n-4) + (n-2) + (n-4)\\
 f(n) &= \sum_{i=1}^{n/2} n - 2i\\
-f(n\ \text{even}) &= \frac{n^2 - 2n}{4}
+\Aboxed{f(n\ \text{even}) &= \frac{n^2 - 2n}4}
 \end{align*}</cmath>
 Now obtain the closed form when <math>n</math> is odd by using the previous result for when <math>n</math> is even:
 <cmath>\begin{align*}
-f(n) &= f(n-1) + \frac{n-1}{2}\\
+f(n) &= f(n-1) + \frac{n-1}2\\
-f(n) &= \frac{{(n-1)}^2 - 2(n-1)}{4} + \frac{n-1}{2}\\
+f(n) &= \frac{{(n-1)}^2 - 2(n-1)}4 + \frac{n-1}2\\
-f(n\ \text{odd}) &= \frac{{(n-1)}^2}{4}
+\Aboxed{f(n\ \text{odd}) &= \frac{{(n-1)}^2}4}
 \end{align*}</cmath>
 Note the ambiguous wording in the question! If the "arithmetic progression" is allowed to be a disordered subsequence, then every progression counts twice, both as an ascending progression and as a descending progression.
 Double the expression to account for the descending versions of each triple, to obtain:
-<cmath>\boxed{f(n\ \text{even}) = \frac{n^2 - 2n}{2}}</cmath>
+<cmath>\begin{align*}
-<cmath>\boxed{f(n\ \text{odd}) = \frac{{(n-1)}^2}{2}}</cmath>
+f(n\ \text{even}) &= \frac{n^2 - 2n}2\\
+f(n\ \text{odd}) &= \frac{{(n-1)}^2}2\\
+\Aboxed{f(n) &= \biggl\lfloor\frac{(n-1)^2}2\biggr\rfloor}
+\end{align*}</cmath>
 ~Lopkiloinm (corrected by integralarefun)

1980 USAMO (Problems • Resources)
Preceded by Problem 1	Followed by Problem 3
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1980 USAMO Problems/Problem 2: Difference between revisions

Revision as of 18:04, 9 August 2023

Problem

Solution

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