Permutations Part 1: 2010 USAJMO #1

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tenniskidperson3

2376 posts

tenniskidperson3

#1 h Apr 29, 2010, 3:36 PM • 10 Y

Y by Smita, dwip_neel, samrocksnature, megarnie, jhu08, son7, Iora, mathmax12, Adventure10, Mango247

A permutation of the set of positive integers $[n] = \{1, 2, . . . , n\}$ is a sequence $(a_1 , a_2 , \ldots, a_n )$ such that each element of $[n]$ appears precisely one time as a term of the sequence. For example, $(3, 5, 1, 2, 4)$ is a permutation of $[5]$ . Let $P (n)$ be the number of permutations of $[n]$ for which $ka_k$ is a perfect square for all $1 \leq k \leq n$ . Find with proof the smallest $n$ such that $P (n)$ is a multiple of $2010$ .

This post has been edited 2 times. Last edited by tenniskidperson3, Dec 22, 2015, 2:55 AM
Reason: Lolol latex was wrong for 5 years and nobody caught it

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yugrey

2326 posts

yugrey

#2 h Apr 29, 2010, 4:43 PM • 6 Y

Y by samrocksnature, jhu08, megarnie, son7, Adventure10, Mango247

Look here: http://www.artofproblemsolving.com/Wiki/index.php/USAJMO_2010_Problem_1 I know that there are a lot of things to improve, but I think I got it.

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hrithikguy

1791 posts

hrithikguy

#3 h Apr 18, 2011, 3:08 AM • 3 Y

Y by samrocksnature, Adventure10, Mango247

Sorry to revive, but I believe this post is warranted because the USAJMO is coming up very soon, and I would like to know any other possible solutions to this problem. Anyone?

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zero.destroyer

813 posts

zero.destroyer

#4 h Apr 18, 2011, 3:18 AM • 3 Y

Y by samrocksnature, Adventure10, Mango247

When I first did this problem, I got the exact same solution as well; I don't believe there is another solution.

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mavropnevma

15142 posts

mavropnevma

#5 h Apr 18, 2011, 6:22 AM • 10 Y

Y by joey8189681, DrMath, FlakeLCR, Tawan, euleraman271828, myh2910, samrocksnature, Adventure10, Mango247, and 1 other user

See my proof at http://www.artofproblemsolving.com/Forum/viewtopic.php?f=41&t=400185&p=2227412&hilit=permutation#p2227412.
For ease of consultation, I also just paste it below Solution

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BOGTRO

5818 posts

BOGTRO

#6 h Apr 18, 2011, 2:42 PM • 3 Y

Y by samrocksnature, Iora, Adventure10

This is how I did it

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theprodigy

581 posts

theprodigy

#7 h Apr 19, 2011, 3:23 AM • 3 Y

Y by samrocksnature, Adventure10, Mango247

@bogtro: that's what i did last year

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supercomputer

491 posts

supercomputer

#8 h Feb 14, 2014, 6:05 AM • 3 Y

Y by samrocksnature, Adventure10, Mango247

If you do it like mavropnevma but don't word it as formally; and definitely no fancy operators. Could you still get a 7 if it is clearly right (exact same argument with different words)

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utkarshgupta

2280 posts

utkarshgupta

#9 h Sep 18, 2014, 7:24 AM • 6 Y

Y by Wizard_32, MathbugAOPS, samrocksnature, son7, Adventure10, tennisfalcon

Solution
Lemma :
${P(n)= \prod_{k=1}^{n}\lfloor\sqrt{\frac{n}{k}}}\rfloor!$
Proof :

Conclusion

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tastymath75025

3223 posts

tastymath75025

#10 h Nov 25, 2014, 3:19 PM • 3 Y

Y by samrocksnature, Adventure10, Mango247

BOGTRO wrote:

Let the numbers 1 to n be divided into sets as follows:

${1, 4, \hdots, a^2}$
${2, 8, \hdots, 2b^2}$
${3, 12, \hdots, 3c^2}$ , etc.

Clearly, there are thus

$\lfloor \sqrt{n} \rfloor! \cdot \lfloor \frac{\sqrt{n}}{2} \rfloor! \hdots$ permutations.

Wait.. but isn't ${4, 16, \hdots 4d^2}$ a subset of ${1, 4, \hdots , a^2}$ ?

How do you account for that

(sorry fhr the revive, but I don't understand)

It should be $\lfloor \sqrt{n} \rfloor! \cdot \lfloor \frac{\sqrt{n}}{2} \rfloor! \hdots$ divided by a ton of terms, right?

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MSTang

6012 posts

MSTang

#11 h Nov 25, 2014, 6:56 PM • 4 Y

Y by samrocksnature, son7, Adventure10, Mango247

$4, 16, \ldots, 4d^2$ isn't listed - and in fact it isn't a part of BOGTRO's partition. Each of the parts of the partition is the set of all terms of the form $kx^2,$ where $k$ is square-free.

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tastymath75025

3223 posts

tastymath75025

#12 h Nov 25, 2014, 7:03 PM • 3 Y

Y by samrocksnature, Adventure10, Mango247

utkarshgupta wrote:

Solution
Lemma :
${P(n)= \prod_{k=1}^{n}\lfloor\sqrt{\frac{n}{k}}}\rfloor!$

@MSTang but in that case, this formula is incorrect, right?

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MSTang

6012 posts

MSTang

#13 h Nov 25, 2014, 7:40 PM • 7 Y

Y by biomathematics, myh2910, samrocksnature, son7, Upwgs_2008, Adventure10, Mango247

I think so. Rather than $k = 1, 2, 3, \ldots, n,$ the product should be over all square-free integers $k$ from $1$ to $n.$

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electrobrain

101 posts

electrobrain

#14 h Jun 29, 2015, 9:00 PM • 4 Y

Y by samrocksnature, Adventure10, Mango247, Titibuuu

Sorry for the bump, but I feel this problem was worded really weird, this is just my opinion of course. Are most jmo problems worded like this? Am I the only one that feels this way about this problem? If someone could explain this part a little more, that would be very appreciated. Is this hard for a #1?? Thank you in advance.

tenniskidperson3 wrote:

Let $P (n)$ be the number of permutations of $[n]$ for which $ka_k$ is a perfect square for all $1 \leq k \leq n$ . Find with proof the smallest $n$ such that $P (n)$ is a multiple of 2010.

EDIT: Ok I think I finally understood the problem phew but it took me about 30 minutes to just understand this

I would still like to know if I am the only one that felt it was worded weird..

This post has been edited 2 times. Last edited by electrobrain, Jun 29, 2015, 9:13 PM

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v_Enhance

6872 posts

v_Enhance

#15 h Jun 30, 2015, 1:52 PM • 5 Y

Y by HamstPan38825, samrocksnature, son7, Adventure10, Mango247

What did you find weird about it? It looks unambiguous to me.

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ryanbear

1055 posts

ryanbear

#57 h Aug 17, 2023, 2:51 PM

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to form a permutation first arrange the perfect squares in the perfect square indexes --> this has $\lfloor \sqrt{n} \rfloor!$ ways
then arrange the perfect squares/2 in the perfect square/2 indexes --> this has $\lfloor \sqrt{n/2} \rfloor!$ ways
then arrange the perfect squares/3 in the perfect square/3 indexes --> this has $\lfloor \sqrt{n/3} \rfloor!$ ways
this repeats so $P(n)=(\lfloor \sqrt{n} \rfloor!)(\lfloor \sqrt{n/2} \rfloor!)..(\lfloor \sqrt{n/1434} \rfloor!)...$
To divide $2010$ , it has to divide $67$ , so $\lfloor \sqrt{n} \rfloor! \ge 67$ and $n \ge 67^2 = \boxed{4489}$

This post has been edited 1 time. Last edited by ryanbear, Aug 17, 2023, 2:51 PM

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joshualiu315

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joshualiu315

#58 h Oct 1, 2023, 6:14 AM

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realized i haven't made a post here

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peace09

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peace09

#59 h Oct 8, 2023, 7:23 PM

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From OTIS

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blackbluecar

302 posts

blackbluecar

#60 h Oct 24, 2023, 4:06 PM

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(sketch) Let $S \subseteq\mathbb{N}$ be the set of squarefree numbers. Moreover, for any $s \in S$ let $f_s(n)$ be the number of positive integers $k \leq n$ where $sk$ is a square number. We explicitly give the formula $P(n) = \prod_{s \in S} f_s(n)!$ Note that if $2010$ divides $P(n)$ then $67$ divides $\prod_{s \in S} f_s(n)!$ . Note that $s \in S$ and $s>1$ then $f_s(n)<f_1(n)$ , so if $67$ divides $\prod_{s \in S} f_s(n)!$ then $67$ divides $f_1(n)!$ . So, $f_1(n) \geq 67 \implies n \geq 67^2$ . Note that $2010$ divides $P(67^2)$ so we are done

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EpicBird08

1745 posts

EpicBird08

#61 h Dec 7, 2023, 12:09 AM

Y by

Yay, a combo I can actually solve!

We claim that the answer is $67^2 = 4489.$ We will find an explicit formula for $P(n)$ to show this.

Suppose we have an integer $1 \le k \le n.$ Write $k = xk_0^2,$ where $x$ is as small as possible (note that $x$ is squarefree). Thus we can actually categorize the different $1 \le k \le n$ : those that are of the form $x^2,$ those of the form $2x^2,$ those of the form $3x^2,$ and so on, for every squarefree integer. If $m_k$ is the $k$ th squarefree integer, then call each category $d_i$ the set of integers of the form $m_i x^2.$ Clearly each number in each category must be paired with itself in our final result. In particular, there are $\left\lfloor \sqrt{\frac{n}{m_k}} \right\rfloor$ numbers in the $d_k.$ Therefore,
$P(n) = \prod_{i=1}^{\infty} \left\lfloor \sqrt{\frac{n}{m_i}} \right\rfloor !.$ Note that $2010$ is divisble by the prime number $67,$ so one of the terms has to be $67!$ if $n$ is minimized. It clearly must be $\lfloor \sqrt{n} \rfloor !$ since any other term would result in a larger value of $n$ (and $\lfloor \sqrt{n} \rfloor !$ would also contain the factor of $67$ already). The smallest value of $n$ that satisfies this is $n = 67^2.$ This works since $2010 \mid 67!.$

This post has been edited 3 times. Last edited by EpicBird08, Dec 17, 2023, 9:34 PM

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shendrew7

793 posts

shendrew7

#63 h Dec 20, 2023, 5:24 AM

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Let $S$ denote the set of squarefree integers. Then $P(n)$ can be expressed in the form
$\prod_{k \in S} \left \lfloor \sqrt{\frac nk} \right \rfloor !.$
We have $2010 = 2 \cdot 3 \cdot 5 \cdot 67$ , so we need a factor of 67 in this product. The first time this occurs is when $n = \boxed{67^2}$ and $k=1$ , so nothing less works. Clearly, we also have $2 \cdot 3 \cdot 5 \mid 67!$ , so this value of $n$ is indeed valid. $\blacksquare$

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gracemoon124

872 posts

gracemoon124

#64 h Feb 20, 2024, 3:16 AM

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Note that any perfect square may be paired up with any other perfect square— so that gives a “sub-permutation” of $\lfloor\sqrt n\rfloor !$ ways so far (as there are $\lfloor \sqrt n\rfloor$ perfect squares in our allowed range).

If it’s $2$ times a perfect square, or $2k^2$ for some $k$ , it may only be paired up with others of the same form. This adds another factor of $\lfloor\sqrt{\tfrac n2}\rfloor!$ , using similar logic as above.

We can continue this to get that $P(n)$ is
$\prod_{1\le \ell\le n}\left\lfloor\sqrt{\frac{n}{\ell}}\right\rfloor!\qquad \text{for all squarefree $\ell$.}$ Since $2010=2\cdot 3\cdot 5\cdot 67$ , $67$ must be a factor of one of the $\lfloor\sqrt{\tfrac{n}{\ell}}\rfloor!$ ’s. If we want to minimize $n$ , we can take $67$ to be a factor of $\lfloor \sqrt{n}\rfloor!$ , and then $n=67^2$ . It’s easy to check that $n=67^2$ works, so that is our answer. $\square$

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peppapig_

280 posts

peppapig_

#65 h Feb 24, 2024, 3:25 AM

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I claim that the answer is $67^2$ , or $4489$ .

Definitions.
Define $S_{(n,b)}$ for some positive integer $n$ and positive integer $b$ not divisible by the square of any prime to be the set of all integers $0<k\leq n$ that can be expressed as $a^b$ for some positive integer $a$ . In other words, $k\in S_{(n,b)}$ if and only if $\sqrt k=a\sqrt b$ for some $a$ in the set of natural numbers. Additionally, define a "good" permutation $P(n)$ to be a permutation such that $ka_k$ is a perfect square for all integers $k$ such that $1\leq k\leq n$ .

--

Now I claim that $4489$ works. Let the number of "good" permutations be $m$ . Note that for any $k\in S_{(n,b)}$ for any $(n,b)$ , the mapping of $k$ after the permutation, or $k$ , must also be in $S_{(n,b)}$ in order for $ka_k$ to be a perfect square. Additionally, if $a_k\in S_{(n,b)}$ , then $ka_k$ is indeed a perfect square. Therefore;
$m=\Pi_{b\leq n} |S_{(n,b)}|!,$ for all $b$ not divisible by the square of any prime. Note that since $S_{(4489,1)}=67$ , we have that $67!\mid m$ . Since $2010\mid 67!$ , we must have that $2010\mid m$ , as desired.

Finally, note that since $67\mid 2010$ , we must have that $67\mid|S_{(n,b)}|!$ for some $(n,b)$ . Since $67$ is prime, this implies that
$|S_{(n,b)}|\geq 67 \iff n\geq 67^2b \iff n\geq 4489,$ since $b\geq1$ . This is what we wished to prove, finishing the problem.

This post has been edited 1 time. Last edited by peppapig_, Feb 24, 2024, 3:26 AM
Reason: Organization

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Markas

105 posts

Markas

#66 h May 6, 2024, 8:45 AM

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Let the numbers from 1 to n be divided into sets: ${1, 4, \cdots, a^2}$ ; ${2, 8, \cdots, 2a_1^2}$ ; ${3, 12, \cdots, 3a_2^2}$ , and we continue in the same manner.

If we order these sets, we get a permutation.
Clearly, there are $\lfloor \sqrt{n} \rfloor! \cdot \lfloor \frac{\sqrt{n}}{2} \rfloor! \cdots$ permutations $\Rightarrow$ ${P(n)= \prod_{k=1}^{n}\lfloor\sqrt{\frac{n}{k}}}\rfloor!$

We have 2010 = 2.3.5.67 $\Rightarrow$ since we search the minimum of n it occurs when $67 \mid \lfloor \sqrt{n} \rfloor!$ $\Rightarrow$ $\lfloor \sqrt{n} \rfloor \geq 67$ $\Rightarrow$ $\sqrt{n} \geq 67$ $\Rightarrow$ $n \geq 67^2 = 4489$ $\Rightarrow$ n = 4489.

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blueprimes

326 posts

blueprimes

#67 h Jul 31, 2024, 1:54 PM

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For a squarefree positive integer $s$ , define $G_s$ as the set of positive integers at most $n$ of the form $sk^2$ where $k$ is an integer.

$\textbf{Lemma 1.}$ Every integer in $\{1, 2, \dots, n \}$ belongs to some $G_s$ .
Proof. Simply divide any positive integer by its largest square factor, and let the result be $s$ . Then that integer belongs to $G_s$ by definition.

$\textbf{Lemma 2.}$ All $G_s$ are disjoint.
Proof. For the sake of contradiction assume that some positive integer belongs in both $G_{s_A}$ and $G_{s_B}$ where $s_A$ and $s_B$ are distinct squarefree integers. Then for some integers $u$ , $v$ we have $s_A u^2 = s_B v^2$ implying $s_A s_B$ is a square. By a simple $\nu_p$ argument it is easy to see that the latter can only occur when $s_A = s_B$ , a contradiction.

These two lemmas readily imply that the disjoint union of all $G_s$ is $\{1, 2, \dots, n \}$ . Now the problem falls apart due to the following claim:

$\textbf{Claim 1.}$ If $a$ , $b$ are positive integers, then $ab$ is a square if and only if some $s$ exists where $a, b \in G_s$ .
Proof. The "if" part is obvious. For the "only if" part, for the sake of contradiction let $a = s_A u^2$ and $b = s_B v^2$ where $s_A$ and $s_B$ are distinct squarefree integers. Then $ab = s_A s_B u^2v^2$ is a square, which implies $s_A s_B$ is a square. Again, this can only happen when $s_A = s_B$ , a contradiction.

Now it is obvious that $P(n) = \prod_{s \text{ squarefree}} |G_s|!$ . The largest of the $G_s$ is $G_1$ , and since the largest prime factor of $2010$ is $67$ we must have $|G_1| \ge 67 \implies n \ge 67^2$ . Now $n = 67^2$ works since $2010 \mid 67!$ . The final answer is $67^2 = 4489$ .

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WheatNeat

224 posts

WheatNeat

#68 h Nov 24, 2024, 12:01 AM

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Just wondering, did you have to find the general formula for the solution, or could you write the solution without it?

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eg4334

629 posts

eg4334

#69 h Jan 13, 2025, 3:28 AM

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The answer is $\boxed{67^2}$ , a number far too large to compute in the timespan of the USAJMO. The key is that all squares must be permuted among each other giving us $\lfloor \sqrt{\frac{n}{k}} \rfloor !$ and generalizing this obvious statement. We then split the numbers into groups based on their largest squarefree factor $k$ . In the previous case, $k=1$ . Its not hard to see that all groups must be permuted within each other, giving us the answer of $P(n) = \prod_{k \in \text{squarefree integers}} \lfloor \sqrt{\frac{n}{k}} \rfloor !$ We need a factor of $67$ in this and the conclusion immediately follows. No number smaller than $67^2$ will produce a factor of $67$ because the number being factorialied is smaller than that.

@below yes

This post has been edited 1 time. Last edited by eg4334, Jan 13, 2025, 4:51 AM

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Maximilian113

538 posts

Maximilian113

#70 h Jan 13, 2025, 4:48 AM

Y by

@above ru doing entry combo from otis lol

I wrote this solution before but never had a chance to post it:

Notice that for $k$ being a perfect square, since there are $\lfloor \sqrt{n} \rfloor$ perfect squares less than or equal to $n,$ and each of these squares match with such a $k,$ there are $\lfloor \sqrt{n} \rfloor!$ ways to order the perfect squares. Similarly, in general we apply this same logic to squarefree integers $k,$ (since if it wasn't squarefree it would have been counted when considering some squarefree number), we get that $P(n) = \prod_{k \text{ squarefree}} \left(\left\lfloor \sqrt{\frac{n}{k}} \right\rfloor! \right).$ Clearly for $P(n)$ to be a multiple of $2010,$ it must be a multiple of $67,$ so one of the terms in the product is a multiple of $67.$ Thus to minimize $n,$ it must be $\lfloor \sqrt{n} \rfloor!$ so $n \geq 67^2.$ We can then see that clearly $n=67^2 = \boxed{4489}$ works, so this is our answer.

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NAMO29

2 posts

NAMO29

#74 h Jan 23, 2025, 8:01 AM

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Claim 1. The squares can be permuted amongst themselves.
If $a^2$ goes to the position of $b^2$ , $a^2b^2=(ab)^2$

Claim 2. Numbers of the form $ab^2$ can be permuted amongst themselves.(where a doesn't change for making permutations possible and a is a non-square number)
$ab^2*ac^2=(abc)^2$

Let the numbers proposed in Claim 2 be termed as $A_a$ (where $A_2$ are the numbers with a=2)

Claim 3. Number of squares in [n] $\geq$ Number of $A_a$ s in [n] for a particular a.

Sequence of squares
$t_1=1$
$t_2=4$
$t_3=9$
.
.
.

Sequence of $A_a$ s
$t_1=a$
$t_2=4a$
$t_3=9a$
.
.
.

Clearly, density of squares $\geq$ density of A_a s.

Claim 4. Due to permutation,
P(n)=(Number of squares)!(Number of $A_2$ )!(Number of $A_3$ )!...

Since, 2010=2*3*5*67,
67|P(n)

If 67|k!, 2,3, and 5 also divide k!

As density of squares is more, we take #squares as 67.
Hence, smallest possible value of $n=67^2=\boxed{4489}$

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akliu

1782 posts

akliu

#75 h Apr 2, 2025, 7:28 PM

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Note that for all squarefree numbers $s$ , any permutation of the numbers $(s, 4s, 9s, \dots)$ will still result in a valid sequence, and this applies for all squarefree numbers. We arrive at this conclusion from noting that all squares are permutable with each other, and then all values $ab^2$ , and so on. Therefore, our answer is $(\lfloor \sqrt{\frac{n}{s_1}} \rfloor)! (\lfloor \sqrt{\frac{n}{s_2}} \rfloor)! \dots$ where $s_i$ is the $i$ -th squarefree integer and $s_1 = 1$ . This value will first be divisible by $67$ when $n = 67^2$ , and we can check that it is indeed also a multiple of $2010$ .

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