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k a May Highlights and 2025 AoPS Online Class Information
jlacosta   0
May 1, 2025
May is an exciting month! National MATHCOUNTS is the second week of May in Washington D.C. and our Founder, Richard Rusczyk will be presenting a seminar, Preparing Strong Math Students for College and Careers, on May 11th.

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0 replies
jlacosta
May 1, 2025
0 replies
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k i Adding contests to the Contest Collections
dcouchman   1
N Apr 5, 2023 by v_Enhance
Want to help AoPS remain a valuable Olympiad resource? Help us add contests to AoPS's Contest Collections.

Find instructions and a list of contests to add here: https://artofproblemsolving.com/community/c40244h1064480_contests_to_add
1 reply
dcouchman
Sep 9, 2019
v_Enhance
Apr 5, 2023
J
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k i Zero tolerance
ZetaX   49
N May 4, 2019 by NoDealsHere
Source: Use your common sense! (enough is enough)
Some users don't want to learn, some other simply ignore advises.
But please follow the following guideline:


To make it short: ALWAYS USE YOUR COMMON SENSE IF POSTING!
If you don't have common sense, don't post.


More specifically:

For new threads:


a) Good, meaningful title:
The title has to say what the problem is about in best way possible.
If that title occured already, it's definitely bad. And contest names aren't good either.
That's in fact a requirement for being able to search old problems.

Examples:
Bad titles:
- "Hard"/"Medium"/"Easy" (if you find it so cool how hard/easy it is, tell it in the post and use a title that tells us the problem)
- "Number Theory" (hey guy, guess why this forum's named that way¿ and is it the only such problem on earth¿)
- "Fibonacci" (there are millions of Fibonacci problems out there, all posted and named the same...)
- "Chinese TST 2003" (does this say anything about the problem¿)
Good titles:
- "On divisors of a³+2b³+4c³-6abc"
- "Number of solutions to x²+y²=6z²"
- "Fibonacci numbers are never squares"


b) Use search function:
Before posting a "new" problem spend at least two, better five, minutes to look if this problem was posted before. If it was, don't repost it. If you have anything important to say on topic, post it in one of the older threads.
If the thread is locked cause of this, use search function.

Update (by Amir Hossein). The best way to search for two keywords in AoPS is to input
[code]+"first keyword" +"second keyword"[/code]
so that any post containing both strings "first word" and "second form".


c) Good problem statement:
Some recent really bad post was:
[quote]$lim_{n\to 1}^{+\infty}\frac{1}{n}-lnn$[/quote]
It contains no question and no answer.
If you do this, too, you are on the best way to get your thread deleted. Write everything clearly, define where your variables come from (and define the "natural" numbers if used). Additionally read your post at least twice before submitting. After you sent it, read it again and use the Edit-Button if necessary to correct errors.


For answers to already existing threads:


d) Of any interest and with content:
Don't post things that are more trivial than completely obvious. For example, if the question is to solve $x^{3}+y^{3}=z^{3}$, do not answer with "$x=y=z=0$ is a solution" only. Either you post any kind of proof or at least something unexpected (like "$x=1337, y=481, z=42$ is the smallest solution). Someone that does not see that $x=y=z=0$ is a solution of the above without your post is completely wrong here, this is an IMO-level forum.
Similar, posting "I have solved this problem" but not posting anything else is not welcome; it even looks that you just want to show off what a genius you are.

e) Well written and checked answers:
Like c) for new threads, check your solutions at least twice for mistakes. And after sending, read it again and use the Edit-Button if necessary to correct errors.



To repeat it: ALWAYS USE YOUR COMMON SENSE IF POSTING!


Everything definitely out of range of common sense will be locked or deleted (exept for new users having less than about 42 posts, they are newbies and need/get some time to learn).

The above rules will be applied from next monday (5. march of 2007).
Feel free to discuss on this here.
49 replies
ZetaX
Feb 27, 2007
NoDealsHere
May 4, 2019
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Inspired by xytunghoanh
sqing   2
N 27 minutes ago by sqing
Source: Own
Let $ a,b,c\ge 0, a^2 +b^2 +c^2 =3. $ Prove that
$$ \sqrt 3 \leq a+b+c+ ab^2 + bc^2+ ca^2\leq 6$$Let $ a,b,c\ge 0, a+b+c+a^2 +b^2 +c^2 =6. $ Prove that
$$ ab+bc+ca+ ab^2 + bc^2+ ca^2 \leq 6$$
2 replies
sqing
2 hours ago
sqing
27 minutes ago
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Based on IMO 2024 P2
Miquel-point   1
N 34 minutes ago by MathLuis
Source: KoMaL B. 5461
Prove that for any positive integers $a$, $b$, $c$ and $d$ there exists infinitely many positive integers $n$ for which $a^n+bc$ and $b^{n+d}-1$ are not relatively primes.

Proposed by Géza Kós
1 reply
Miquel-point
Yesterday at 6:15 PM
MathLuis
34 minutes ago
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egmo 2018 p4
microsoft_office_word   29
N an hour ago by math-olympiad-clown
Source: EGMO 2018 P4
A domino is a $ 1 \times 2 $ or $ 2 \times 1 $ tile.
Let $n \ge 3 $ be an integer. Dominoes are placed on an $n \times n$ board in such a way that each domino covers exactly two cells of the board, and dominoes do not overlap. The value of a row or column is the number of dominoes that cover at least one cell of this row or column. The configuration is called balanced if there exists some $k \ge 1 $ such that each row and each column has a value of $k$. Prove that a balanced configuration exists for every $n \ge 3 $, and find the minimum number of dominoes needed in such a configuration.
29 replies
microsoft_office_word
Apr 12, 2018
math-olympiad-clown
an hour ago
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Tangents to a cyclic quadrilateral
v_Enhance   24
N an hour ago by hectorleo123
Source: ELMO Shortlist 2013: Problem G9, by Allen Liu
Let $ABCD$ be a cyclic quadrilateral inscribed in circle $\omega$ whose diagonals meet at $F$. Lines $AB$ and $CD$ meet at $E$. Segment $EF$ intersects $\omega$ at $X$. Lines $BX$ and $CD$ meet at $M$, and lines $CX$ and $AB$ meet at $N$. Prove that $MN$ and $BC$ concur with the tangent to $\omega$ at $X$.

Proposed by Allen Liu
24 replies
v_Enhance
Jul 23, 2013
hectorleo123
an hour ago
J
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integer functional equation
ABCDE   152
N an hour ago by pco
Source: 2015 IMO Shortlist A2
Determine all functions $f:\mathbb{Z}\rightarrow\mathbb{Z}$ with the property that \[f(x-f(y))=f(f(x))-f(y)-1\]holds for all $x,y\in\mathbb{Z}$.
152 replies
ABCDE
Jul 7, 2016
pco
an hour ago
J
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subsets of {1,2,...,mn}
N.T.TUAN   11
N 2 hours ago by MathLuis
Source: USA TST 2005, Problem 1
Let $n$ be an integer greater than $1$. For a positive integer $m$, let $S_{m}= \{ 1,2,\ldots, mn\}$. Suppose that there exists a $2n$-element set $T$ such that
(a) each element of $T$ is an $m$-element subset of $S_{m}$;
(b) each pair of elements of $T$ shares at most one common element;
and
(c) each element of $S_{m}$ is contained in exactly two elements of $T$.

Determine the maximum possible value of $m$ in terms of $n$.
11 replies
1 viewing
N.T.TUAN
May 14, 2007
MathLuis
2 hours ago
J
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Nice one
imnotgoodatmathsorry   4
N 2 hours ago by lbh_qys
Source: Own
With $x,y,z >0$.Prove that: $\frac{xy}{4y+4z+x} + \frac{yz}{4z+4x+y} +\frac{zx}{4x+4y+z} \le \frac{x+y+z}{9}$
4 replies
1 viewing
imnotgoodatmathsorry
May 2, 2025
lbh_qys
2 hours ago
J
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Continued fraction
tapir1729   11
N 3 hours ago by Mathandski
Source: TSTST 2024, problem 2
Let $p$ be an odd prime number. Suppose $P$ and $Q$ are polynomials with integer coefficients such that $P(0)=Q(0)=1$, there is no nonconstant polynomial dividing both $P$ and $Q$, and
\[ 1 + \cfrac{x}{1 + \cfrac{2x}{1 + \cfrac{\ddots}{1 + (p-1)x}}}=\frac{P(x)}{Q(x)}. \]Show that all coefficients of $P$ except for the constant coefficient are divisible by $p$, and all coefficients of $Q$ are not divisible by $p$.

Andrew Gu
11 replies
tapir1729
Jun 24, 2024
Mathandski
3 hours ago
J
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Cycle in a graph with a minimal number of chords
GeorgeRP   1
N 3 hours ago by Photaesthesia
Source: Bulgaria IMO TST 2025 P3
In King Arthur's court every knight is friends with at least $d>2$ other knights where friendship is mutual. Prove that King Arthur can place some of his knights around a round table in such a way that every knight is friends with the $2$ people adjacent to him and between them there are at least $\frac{d^2}{10}$ friendships of knights that are not adjacent to each other.
1 reply
GeorgeRP
Yesterday at 7:51 AM
Photaesthesia
3 hours ago
J
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Japan MO Finals 2021 P4
maple116   2
N 3 hours ago by Gauler
Source: Japan MO Finals 2021 P4
Let $a_1,a_2,\dots,a_{2021}$ be $2021$ integers which satisfy
\[ a_{n+5}+a_n>a_{n+2}+a_{n+3}\]for all integers $n=1,2,\dots,2016$. Find the minimum possible value of the difference between the maximum value and the minimum value among $a_1,a_2,\dots,a_{2021}$.
2 replies
maple116
Feb 14, 2021
Gauler
3 hours ago
J
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Strange angle condition and concyclic points
lminsl   128
N 3 hours ago by Giant_PT
Source: IMO 2019 Problem 2
In triangle $ABC$, point $A_1$ lies on side $BC$ and point $B_1$ lies on side $AC$. Let $P$ and $Q$ be points on segments $AA_1$ and $BB_1$, respectively, such that $PQ$ is parallel to $AB$. Let $P_1$ be a point on line $PB_1$, such that $B_1$ lies strictly between $P$ and $P_1$, and $\angle PP_1C=\angle BAC$. Similarly, let $Q_1$ be the point on line $QA_1$, such that $A_1$ lies strictly between $Q$ and $Q_1$, and $\angle CQ_1Q=\angle CBA$.

Prove that points $P,Q,P_1$, and $Q_1$ are concyclic.

Proposed by Anton Trygub, Ukraine
128 replies
lminsl
Jul 16, 2019
Giant_PT
3 hours ago
J
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Two lines meet at circle
mathpk   51
N 3 hours ago by Ilikeminecraft
Source: APMO 2008 problem 3
Let $ \Gamma$ be the circumcircle of a triangle $ ABC$. A circle passing through points $ A$ and $ C$ meets the sides $ BC$ and $ BA$ at $ D$ and $ E$, respectively. The lines $ AD$ and $ CE$ meet $ \Gamma$ again at $ G$ and $ H$, respectively. The tangent lines of $ \Gamma$ at $ A$ and $ C$ meet the line $ DE$ at $ L$ and $ M$, respectively. Prove that the lines $ LH$ and $ MG$ meet at $ \Gamma$.
51 replies
mathpk
Mar 22, 2008
Ilikeminecraft
3 hours ago
J
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Hard geometry
Lukariman   5
N 3 hours ago by Lukariman
Given circle (O) and chord AB with different diameters. The tangents of circle (O) at A and B intersect at point P. On the small arc AB, take point C so that triangle CAB is not isosceles. The lines CA and BP intersect at D, BC and AP intersect at E. Prove that the centers of the circles circumscribing triangles ACE, BCD and OPC are collinear.
5 replies
Lukariman
Yesterday at 4:28 AM
Lukariman
3 hours ago
J
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P,Q,B are collinear
MNJ2357   29
N 4 hours ago by cj13609517288
Source: 2020 Korea National Olympiad P2
$H$ is the orthocenter of an acute triangle $ABC$, and let $M$ be the midpoint of $BC$. Suppose $(AH)$ meets $AB$ and $AC$ at $D,E$ respectively. $AH$ meets $DE$ at $P$, and the line through $H$ perpendicular to $AH$ meets $DM$ at $Q$. Prove that $P,Q,B$ are collinear.
29 replies
MNJ2357
Nov 21, 2020
cj13609517288
4 hours ago
J
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J
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Easy IMO 2023 NT
799786   133
N Apr 24, 2025 by Maximilian113
Source: IMO 2023 P1
Determine all composite integers $n>1$ that satisfy the following property: if $d_1$, $d_2$, $\ldots$, $d_k$ are all the positive divisors of $n$ with $1 = d_1 < d_2 < \cdots < d_k = n$, then $d_i$ divides $d_{i+1} + d_{i+2}$ for every $1 \leq i \leq k - 2$.
133 replies
799786
Jul 8, 2023
Maximilian113
Apr 24, 2025
J
Easy IMO 2023 NT
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Reveal topic tags
IMO
IMO 2023
number theory
Divisors
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G H BBookmark kLocked kLocked NReply
Source: IMO 2023 P1
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Ywgh1
139 posts
Ywgh1
#135 Aug 18, 2024, 7:18 AM • 1 Y
Y by radian_51
IMO 2023 p1

We claim that the answer is $n=p^k$, where $p$ is a prime.

Let $p_1$ and $p_2$ be the first two primes of $n$. Now let $s$ be the largest number, such that $p_1^s < p_2$

So we have that
\[\frac{n}{p_2},\frac{n}{p_1^s},\frac{n}{p_1^{s-1}}\]are consecutive divisors of $n$.
Hence we must have that.
$$\frac{n}{p_2}|(\frac{n}{p_1^s}+\frac{n}{p_1^{s-1}}) \implies p_1^s|p_2(p_1+1)$$Which is a contradiction, hence $n$ has less than 2 primes.
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ezpotd
1272 posts
ezpotd
#137 Sep 30, 2024, 1:00 AM • 1 Y
Y by radian_51
I claim the answer is only prime powers. It is easy to see that these work. To see nothing else works, assume for the sake of contradiction some $n$ with more than $1$ prime power worked. Then take the second smallest prime divisor, let it be $q$, and the largest divisor less than it, $p^{k}$, where $k$ can be $1$. We would then have $\frac nq \mid \frac{n}{p^{k - 1}} + \frac{n}{p^k}$, which is obviously not true by taking $\nu_p$ on both sides, the left side has $\nu_p(\frac nq) = \nu_p(n)$, right hand side has $\nu_p({\frac{n}{p^{k - 1}} + \frac{n}{p^k}}) = \nu_p({\frac{n}{p^k}})$, so the left side cannot divide the right.
This post has been edited 1 time. Last edited by ezpotd, Sep 30, 2024, 1:00 AM
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lelouchvigeo
183 posts
lelouchvigeo
#139 Dec 5, 2024, 4:27 PM • 1 Y
Y by S_14159
Nothing new
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cursed_tangent1434
634 posts
cursed_tangent1434
#140 Dec 6, 2024, 12:22 AM
Y by
Trivial NT on the IMO. Finally found some time to actually post my solution from the contest.

We claim that the answer is all positive integers of the form $p^m$ for some prime $p$ and $m\ge 2$. These clearly all work since for all $1\le i \le m+1$ , $d_i=p^{i-1}$. Thus,
\[d_i=p_{i-1}\mid p_i + p_{i+1}=d_{i+1}+d_{i+2}\]quite clearly.

Now, we show that no other composite $n$ work. Say $n$ has atleast two distinct primes divisors, of which the smallest two are $p<q$. Note that we have $d_i = p^{i-1}$ for all $1\le i \le r$ for some $r \ge 2$ and $d_{r+1}=q$ as the divisors are arranged in increasing order. Now, if $n$ satisfies the desired condition we must have,
\begin{align*} d_{m-r} &\mid d_{m-r+1} + d_{m-r+2}\\ \frac{n}{d_{r+1}} & \mid \frac{n}{d_r} + \frac{n}{d_{r-1}}\\ \frac{n}{q} & \mid \frac{n}{p^{r-1}} + \frac{n}{p^{r-2}}\\ p^{r-1} & \mid q + pq\\ p &\mid q+pq\\ p& \mid q \end{align*}which is a very clear contradiction since $q>p$ are both primes. Thus, there are no such $n$ of this form, which finishes the proof.
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EVKV
71 posts
EVKV
#141 Jan 2, 2025, 5:13 PM
Y by
Clear answer is n =p^c where p is a prime
Assume that n can have more than 1 prime factor and assume some prime q also divides n
Well you get that p|q contradiction.
Too easy for P1 tho
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maths_enthusiast_0001
133 posts
maths_enthusiast_0001
#142 Jan 17, 2025, 9:53 AM • 1 Y
Y by radian_51
My first NT after decades..... :D
IMO 2023 P1 wrote:
Determine all composite integers $n>1$ that satisfy the following property: if $d_1$, $d_2$, $\ldots$, $d_k$ are all the positive divisors of $n$ with $1 = d_1 < d_2 < \cdots < d_k = n$, then $d_i$ divides $d_{i+1} + d_{i+2}$ for every $1 \leq i \leq k - 2$.
All numbers of the form $p^l$ where $p$ is a prime and $l>1$ work evidently. We now show these are the only ones.
Let $m$ denote the number of divisors of $n$. Then we have $d_{i}d_{m+1-i}=n$. Thus,
$$d_{i} \mid d_{i+1}+d_{i+2}$$$$\implies \frac{n}{d_{m-i+1}} \mid \frac{n}{d_{m-i}}+\frac{n}{d_{m-i-1}}$$$$\implies d_{m-i}d_{m-i-1} \mid d_{m-i+1}(d_{m-i}+d_{m-i-1})$$$$\implies \boxed{d_{i}d_{i+1} \mid d_{i+2}(d_{i}+d_{i+1})} [\because i \mapsto m-i-1]$$Now $i=1$ gives, $d_{1}d_{2} \mid d_{3}(d_{1}+d_{2}) \implies d_{2} \mid d_{3}$ since $d_{1}=1$. Also, $d_{2}$ is a prime number (say $p$). If $d_{3}$ has any prime factor $q$(say) other than $p$ then $d_{1}<q<d_{3};q \neq d_{2}$ which is a blatant contradiction. Thus $\boxed{d_{3}=p^{2}}$ as it can not be $p^e$ where $e \geq 3$ otherwise $d_{2} < p^{2} < d_{3}$ again, a contradiction. Now by an easy strong induction and similar argument we can conclude that $d_{i+1}=p^{i}$. Thus $n=p^{l}$ where $l>1$ and $p$ is a prime number. $\blacksquare$ ($\mathcal{QED}$)
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Rohit-2006
243 posts
Rohit-2006
#143 Jan 17, 2025, 10:33 AM • 1 Y
Y by radian_51
Suppose $n$ has a prime divisors $\geq 2$.

Say the least ones are $p$ and $q$ and $p$ be the minimum.

Let the multiplicity of $p$ be $m$.

At the $(k+1)$-th step, $k \leq m$:

$p^{k-1} < q$, so $q$ can write

$p^{k-1} \mid p^k + q \quad ( \rightarrow \leftarrow)$.

Hence, $n = p^t$, $t \in \mathbb{N}$ and $p$ is prime.
This post has been edited 2 times. Last edited by Rohit-2006, Jan 17, 2025, 10:34 AM
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iStud
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iStud
#144 Jan 29, 2025, 1:35 AM • 1 Y
Y by radian_51
Note that since $d_{k-2}\mid d_{k-1}+d_k$ and $d_{k-2}\mid n=d_k$, then $d_{k-2}\mid d_{k-1}$. Recall that $d_{k-2}=\frac{n}{d_3}$ and $d_{k-1}=\frac{n}{d_2}$, so $\frac{\frac{n}{d_2}}{\frac{n}{d_3}}\in\mathbb{N}\Longleftrightarrow\frac{d_3}{d_2}\in\mathbb{N}\Longleftrightarrow d_2\mid d_3$. But we also have $d_2\mid d_3+d_4$, so we must have $d_2\mid d_4\Longleftrightarrow\frac{\frac{n}{d_2}}{\frac{n}{d_4}}\in\mathbb{N}\Longleftrightarrow\frac{d_{k-1}}{d_{k-3}}\in\mathbb{N}\Longleftrightarrow d_{k-3}\mid d_{k-1}$. Again, we know that $d_{k-3}\mid d_{k-2}+d_{k-1}$ so we must have $d_{k-3}\mid d_{k-2}$. Repeating the process, eventually we'll end with $1=d_1\mid d_2\mid d_3\mid\dots\mid d_{k-1}\mid d_k=n$. Notice that for any natural number $n$, the three largest divisors of $n$ are $n,\frac{n}{p},\frac{n}{q}$ for prime $2\le p<q$ or $n,\frac{n}{p},\frac{n}{p^2}$ for prime $p\ge 2$. If the three largest divisors of $n$ are $n,\frac{n}{p},\frac{n}{q}$, then $\frac{\frac{n}{p}}{\frac{n}{q}}\in\mathbb{N}\Longleftrightarrow\frac{q}{p}\in\mathbb{Z}\Longleftrightarrow p\mid q$, contradiction. So the three largest divisors of $n$ are $n,\frac{n}{p},\frac{n}{p^2}$ for prime $p\ge 2$. In the similar spirit, we end up showing that $n=p_{k-1}$, which indeed works for any prime $p\ge 2$. Done. $\blacksquare$
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cubres
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cubres
#145 Feb 3, 2025, 9:41 PM
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Storage - grinding IMO problems
This post has been edited 1 time. Last edited by cubres, Feb 3, 2025, 9:44 PM
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megahertz13
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megahertz13
#146 Feb 11, 2025, 10:46 PM
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The answer is $n=p^k$ for a prime number $p$ and a positive integer $k$. These clearly work, and we prove that all other $n$ fail. Assume the contrary, and let the smallest prime factors of $n$ be $a$ and $b$.

Case 1: $a < b < a^2$. Then we have the smallest three divisors are $1, a, b$, so the largest three are $\frac{n}{b}, \frac{n}{a}, n$. However, we need $$\frac{n+\frac{n}{a}}{\frac{n}{b}}=\frac{1+\frac{1}{a}}{\frac{1}{b}}=b+\frac{b}{a}$$to be an integer, but $b/a$ is clearly not an integer. There are no cases here.

Case 2: $a<a^2<\dots<a^k<b$ for $k>1$. We know that $$\frac{b+a^k}{a^{k-1}}=a+\frac{b}{a^{k-1}}$$must be an integer, but this is clearly impossible.

This concludes the problem.

Note: I almost messed up and disregarded Case 1.
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Ilikeminecraft
650 posts
Ilikeminecraft
#147 Mar 11, 2025, 1:07 PM
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I claim $n$ is a perfect power. Assume not. Let $p < q$ be the smallest two prime divisors of $n.$ Let $\frac nq,\frac n{p^c}$ be the two consecutive divisors. Hence, we get $\frac nq \mid \frac n{p^c} + \frac n{p^{c - 1}},$ so $p\mid p + q,$ or $p \mid q.$ All perfect powers work.
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ray66
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ray66
#148 Mar 11, 2025, 5:06 PM
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Let $p$ and $q$ be the smallest two prime factors of $n$. Then $\frac{n}{q} | n\frac{1+p}{p}$ so $\frac{q(p+1)}{p} \in \mathbb{Z}$. But that means $p | q$, impossible. So $n=p^k$ and only has 1 distinct prime factor. All $n$ of this form work for $k \ge 2$.
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Jupiterballs
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Jupiterballs
#149 Mar 20, 2025, 12:54 PM
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Let the smallest prime dividing $n$ be $p$
Then $d_{k-1} = \frac{n}{p}$
Which gives that $d_{k-2} \mid d_{k-1} + d_{k} = \frac{n}{p} + n = \frac{n}{p}(p+1)$

Now, we form cases:-
Case-1) $d_{k-2} \mid \frac{n}{p}$
implying that $d_{k-2} = \frac{n}{p^2}$ (easy to see why)

Case-2) $v_p (d_{k-2}) = v_p (n)$, or $d_{k-2}$ does not divide $n$
Which means that we need another prime $p$
Then this implies that $gcd(p, p+1) = p$

Which is absurd, therefore $d_{k-2} = \frac{n}{p^2}$
Reiterating this gives us that $d_1 = \frac{n}{p^{k-1}}$
or $n = p^{k-1}$, which works clearly
q.e.d
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anudeep
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anudeep
#150 Apr 20, 2025, 6:14 AM
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We claim $n$ of the form $p^{\alpha}$ with $p$ being a prime and $\alpha\in\mathbb{Z}_{\ge 2}$ are the only solutions (easy to check why these work).
Now we shall show that these are the the only solutions. Suppose this is not true. Let $p,q$ be the smallest two distinct prime divisors of $n$ with $p<q$. Let $j$ be the largest integer such that $p^j\lvert n$ and $p^j<q$ (assume $j>1$ as the case $n=pq$ is trivial). One may notice that $d_j=p^{j-1}$, $d_{j+1}=p^j$ and $d_{j+2}=q$. By the given condition it must be that,
$$p^{j-1}\lvert (p^j+q).$$From the above we say $p^{j-1}\lvert q$, which is ridiculous and hence the claim. $\square$
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Maximilian113
575 posts
Maximilian113
#151 Apr 24, 2025, 3:15 AM
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\begin{align*} d_{k-2} | d_{k-1}+d_k, d_{k-2} | d_k \implies d_{k-2} | d_{k-1} \implies d_2 | d_3. \\ d_2 | d_3, d_2 | d_3+d_4 \implies d_2 | d_4 \implies d_{k-3} | d_{k-1}. \\ d_{k-3} | d_{k-2}+d_{k-1} \implies d_{k-3} | d_{k-2}. \end{align*}Hence applying this argument in general yields $d_{x} | d_{x+1} \implies d_{x-1} | d_x.$ So $d_1 | d_2 | d_3 | \cdots | d_{k-1} | d_k.$ So if some prime $p | n$ where $p$ is minimal we have $d_1=1, d_2=p \implies p | d_i \, \forall i \geq 2.$ So there is no other prime $q \neq p$ dividing $n.$

Hence $n=p^k$ for some prime $p$ and positive integer $k > 1.$ It is easy to see that this works.
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