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k a April Highlights and 2025 AoPS Online Class Information
jlacosta   0
Apr 2, 2025
Spring is in full swing and summer is right around the corner, what are your plans? At AoPS Online our schedule has new classes starting now through July, so be sure to keep your skills sharp and be prepared for the Fall school year! Check out the schedule of upcoming classes below.

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0 replies
jlacosta
Apr 2, 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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Squares on height in right triangle
Miquel-point   0
an hour ago
Source: Romanian NMO 2025 7.4
Consider the right-angled triangle $ABC$ with $\angle A$ right and $AD\perp BC$, $D\in BC$. On the ray $[AD$ we take two points $E$ and $H$ so that $AE=AC$ and $AH=AB$. Consider the squares $AEFG$ and $AHJI$ containing inside $C$ and $B$, respectively. If $K=EG\cap AC$ and $L=IH\cap AB$, $N=IL\cap GK$ and $M=IB\cap GC$, prove that $LK\parallel BC$ and that $A$, $N$ and $M$ are collinear.
0 replies
Miquel-point
an hour ago
0 replies
J
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Projections on lateral faces of pyramid are coplanar
Miquel-point   0
an hour ago
Source: Romanian NMO 2025 8.4
From a point $O$ inside a square $ABCD$ we raise a segment $OS$ perpendicular to the plane of the square. Show that the projections of $O$ on the planes $(SAB)$, $(SBC)$, $(SCD)$ and $(SDA)$ are coplanar if and only if $O\in [AC]\cup [BD]$.
0 replies
Miquel-point
an hour ago
0 replies
J
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NT equation
EthanWYX2009   3
N an hour ago by pavel kozlov
Source: 2025 TST T11
Let \( n \geq 4 \). Proof that
\[ (2^x - 1)(5^x - 1) = y^n \]have no positive integer solution \((x, y)\).
3 replies
+1 w
EthanWYX2009
Mar 10, 2025
pavel kozlov
an hour ago
J
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math olympiads
Lirimath   1
N an hour ago by maromex
Let a,b,c be real numbers such that a^2(b+c)+b^2(c+a)+c^2(a+b)=3(a+b+c-1) and a+b+c differnet by 0.Prove that ab+bc+ca=3 if and only if abc=1
1 reply
Lirimath
2 hours ago
maromex
an hour ago
J
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Poland Inequalities
wangzishan   6
N Apr 2, 2025 by AshAuktober
Leta,b,c are postive real numbers,proof that $ \frac{a}{b+2c}+\frac{b}{c+2a}+\frac{c}{a+2b}\geq1$
6 replies
wangzishan
Apr 23, 2009
AshAuktober
Apr 2, 2025
J
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disjoint subsets
nayel   2
N Apr 1, 2025 by alexanderhamilton124
Source: Taiwan 2001
Let $n\ge 3$ be an integer and let $A_{1}, A_{2},\dots, A_{n}$ be $n$ distinct subsets of $S=\{1, 2,\dots, n\}$. Show that there exists $x\in S$ such that the n subsets $A_{i}-\{x\}, i=1,2,\dots n$ are also disjoint.

what i have is this
2 replies
nayel
Apr 18, 2007
alexanderhamilton124
Apr 1, 2025
J
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Can I find source of a geometry problem via Approach0?
xytunghoanh   1
N Apr 1, 2025 by GreekIdiot
Can I find source of a geometry problem via Approach0 or AOPS search feature?
Thanks.
1 reply
xytunghoanh
Apr 1, 2025
GreekIdiot
Apr 1, 2025
J
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Chinese TST 2008 P3
Fang-jh   8
N Mar 20, 2025 by InterLoop
Suppose that every positve integer has been given one of the colors red, blue,arbitrarily. Prove that there exists an infinite sequence of positive integers $ a_{1} < a_{2} < a_{3} < \cdots < a_{n} < \cdots,$ such that inifinite sequence of positive integers $ a_{1},\frac {a_{1} + a_{2}}{2},a_{2},\frac {a_{2} + a_{3}}{2},a_{3},\frac {a_{3} + a_{4}}{2},\cdots$ has the same color.
8 replies
Fang-jh
Apr 3, 2008
InterLoop
Mar 20, 2025
J
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primitive polyominoes
N.T.TUAN   28
N Mar 20, 2025 by quantam13
Source: USAMO 2007
An animal with $n$ cells is a connected figure consisting of $n$ equal-sized cells[1].

A dinosaur is an animal with at least $2007$ cells. It is said to be primitive it its cells cannot be partitioned into two or more dinosaurs. Find with proof the maximum number of cells in a primitive dinosaur.

(1) Animals are also called polyominoes. They can be defined inductively. Two cells are adjacent if they share a complete edge. A single cell is an animal, and given an animal with $n$ cells, one with $n+1$ cells is obtained by adjoining a new cell by making it adjacent to one or more existing cells.
28 replies
N.T.TUAN
Apr 26, 2007
quantam13
Mar 20, 2025
J
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Unsolved Diophantine(I think)
Nuran2010   2
N Mar 17, 2025 by ohiorizzler1434
Find all solutions for the equation $2^n=p+3^p$ where $n$ is a positive integer and $p$ is a prime.(Don't get mad at me,I've used the search function and did not see a correct and complete solution anywhere.)
2 replies
Nuran2010
Mar 14, 2025
ohiorizzler1434
Mar 17, 2025
J
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A real sequence
Omid Hatami   14
N Mar 2, 2025 by HamstPan38825
Source: Iran National Olympiad (3rd Round) 2001
Does there exist a sequence $ \{b_{i}\}_{i=1}^\infty$ of positive real numbers such that for each natural $ m$: \[ b_{m}+b_{2m}+b_{3m}+\dots=\frac1m\]
14 replies
Omid Hatami
Jul 13, 2007
HamstPan38825
Mar 2, 2025
J
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FE on R+
AshAuktober   6
N Feb 28, 2025 by jasperE3
Source: 2007 MOP
(Note I couldn't find a post w/ this from AoPS search so I'm posting, please do tell if there exists a post.)

Solve over positive real numbers the functional equation
\[ f\left( f(x) y + \frac xy \right) = xyf(x^2+y^2). \]
6 replies
AshAuktober
Sep 2, 2024
jasperE3
Feb 28, 2025
J
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Perfect square preserving polynomial
Omid Hatami   34
N Feb 20, 2025 by HamstPan38825
Source: Iran TST 2008
Find all polynomials $ p$ of one variable with integer coefficients such that if $ a$ and $ b$ are natural numbers such that $ a + b$ is a perfect square, then $ p\left(a\right) + p\left(b\right)$ is also a perfect square.
34 replies
Omid Hatami
May 25, 2008
HamstPan38825
Feb 20, 2025
J
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1/n can be written as sum of 1/T_{k}
AshAuktober   1
N Jan 25, 2025 by AshAuktober
Source: 2025 BMO2/1 (I tried search fn and it yielded no results)
Prove that if $n$ is a positive integer, then $\frac{1}{n}$ can be written as a finite sum of reciprocals of different triangular numbers.

[A triangular number is one of the form $\frac{k(k+1)}{2}$ for some positive integer $k$.]
1 reply
AshAuktober
Jan 25, 2025
AshAuktober
Jan 25, 2025
J
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J
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Connected graph with k edges
orl   26
N Apr 16, 2025 by Maximilian113
Source: IMO 1991, Day 2, Problem 4, IMO ShortList 1991, Problem 10 (USA 5)
Suppose $ \,G\,$ is a connected graph with $ \,k\,$ edges. Prove that it is possible to label the edges $ 1,2,\ldots ,k\,$ in such a way that at each vertex which belongs to two or more edges, the greatest common divisor of the integers labeling those edges is equal to 1.

Note: Graph-Definition. A graph consists of a set of points, called vertices, together with a set of edges joining certain pairs of distinct vertices. Each pair of vertices $ \,u,v\,$ belongs to at most one edge. The graph $ G$ is connected if for each pair of distinct vertices $ \,x,y\,$ there is some sequence of vertices $ \,x = v_{0},v_{1},v_{2},\cdots ,v_{m} = y\,$ such that each pair $ \,v_{i},v_{i + 1}\;(0\leq i < m)\,$ is joined by an edge of $ \,G$.
26 replies
orl
Nov 11, 2005
Maximilian113
Apr 16, 2025
J
Connected graph with k edges
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Reveal topic tags
number theory
greatest common divisor
Euler
graph theory
combinatorics
IMO
imo 1991
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G H BBookmark kLocked kLocked NReply
Source: IMO 1991, Day 2, Problem 4, IMO ShortList 1991, Problem 10 (USA 5)
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orl
3647 posts
orl
#1 Nov 11, 2005, 6:25 PM • 3 Y
Y by Adventure10, megarnie, GeoKing
Suppose $ \,G\,$ is a connected graph with $ \,k\,$ edges. Prove that it is possible to label the edges $ 1,2,\ldots ,k\,$ in such a way that at each vertex which belongs to two or more edges, the greatest common divisor of the integers labeling those edges is equal to 1.

Note: Graph-Definition. A graph consists of a set of points, called vertices, together with a set of edges joining certain pairs of distinct vertices. Each pair of vertices $ \,u,v\,$ belongs to at most one edge. The graph $ G$ is connected if for each pair of distinct vertices $ \,x,y\,$ there is some sequence of vertices $ \,x = v_{0},v_{1},v_{2},\cdots ,v_{m} = y\,$ such that each pair $ \,v_{i},v_{i + 1}\;(0\leq i < m)\,$ is joined by an edge of $ \,G$.
This post has been edited 1 time. Last edited by orl, Aug 15, 2008, 1:51 PM
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Peter
3615 posts
Peter
#2 Nov 14, 2005, 1:45 AM • 4 Y
Y by Wizard_32, Adventure10, Mango247, GeoKing
Click to reveal hidden text

Start at any vertex A and number 1,2,3,... along any path. every vertex you pass will have edges k,k+1 so has gcd=1, until you reach a dead end. (which is either a vertex with degree 1 (no prob) or a vertex on which all edges are labeled yet (no prob). Now if there are unlabeled edges left, start at any vertex of such an edge, and repeat the procedure. Like that you can fill the graph such that all vertices have gcd(edges)=1.

remark
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perfect_radio
2607 posts
perfect_radio
#3 Aug 23, 2006, 10:18 PM • 2 Y
Y by Adventure10, Mango247
Can I make a small remark? It's kind of late now, maybe I'm missing something obvious.

Small (Redundant) Remark
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Peter
3615 posts
Peter
#4 Aug 24, 2006, 9:41 AM • 2 Y
Y by Adventure10, Mango247
I don't see your point... where would I use non-randomness? Note that we are labeling edges, not vertices.

Either a vertex has only one edge (in which case there's nothing to prove), or either there are at least 2, and by the algorithm we will ever run through it and make that vertex thus have at least 2 coprime edges.
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tim1234133
523 posts
tim1234133
#5 Aug 25, 2006, 6:02 PM • 1 Y
Y by Adventure10
I don't think this is the point that perfect_radio is making, but anyway... I don't see where your proof uses connectivity. When we have gone through the first set of labelling, you say that if there are unlabelled edges (Sorry about the typo that was here...) 'start at any vertex of such an edge'. How do we know that this vertex (the one we start on the second time we make a path) has gcd(edges)=1?
Can we get round this by saying 'start at a vertex that has some already labelled vertices', and hence use the fact that the graph is connected? Or am I just missing something altogether?
This post has been edited 1 time. Last edited by tim1234133, Aug 25, 2006, 7:22 PM
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JBL
16123 posts
JBL
#6 Aug 25, 2006, 6:07 PM • 2 Y
Y by Adventure10, Mango247
tim1234133 wrote:
I don't think this is the point that perfect_radio is making, but anyway... I don't see where your proof uses connectivity. When we have gone through the first set of labelling, you say that if there are unlabelled vertices 'start at any vertex of such an edge'. How do we know that this vertex (the one we start on the second time we make a path) has gcd(edges)=1?
Can we get round this by saying 'start at a vertex that has some already labelled vertices', and hence use the fact that the graph is connected? Or am I just missing something altogether?

"Start at a vertex that has already labelled edges" is what he meant. Such a vertex exists by connectivity.
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Peter
3615 posts
Peter
#7 Aug 25, 2006, 6:25 PM • 2 Y
Y by Adventure10, Mango247
[here was a wrong idea, thx tim1234133.]

For the rest of your remark, tim1234133, I will say it again: we are labeling edges, NOT vertices. If it was only a typo please reformulate your question in the right way as there are many interpretations possible.
This post has been edited 1 time. Last edited by Peter, Aug 25, 2006, 7:35 PM
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tim1234133
523 posts
tim1234133
#8 Aug 25, 2006, 7:25 PM • 2 Y
Y by Adventure10, Mango247
How do we label the (unconnected) graph formed of two unconnected triangles (If we call the vertices A-F we have A connected to B and C with B and C also connected to each other, and D connected to E and F with E and F connected to each other) in the required manner?
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Peter
3615 posts
Peter
#9 Aug 25, 2006, 7:37 PM • 1 Y
Y by Adventure10
Err... never mind, we really need connectedness indeed. :oops:
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perfect_radio
2607 posts
perfect_radio
#10 Aug 30, 2006, 7:03 PM • 2 Y
Y by Adventure10, Mango247
Yes, that was also my point. It's too bad I couldn't explain it in a more understandable manner :(
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GoldenFrog1618
667 posts
GoldenFrog1618
#11 Jun 11, 2010, 8:12 PM • 1 Y
Y by Adventure10
I will induct on the number of edges and keep the number of verticies fixed.

For a base case, we need to prove that all trees can be labeled. Notice that there is a path between all the verticies of degree >=2. Thus, we should label these edges in order 1,2,3,4 ..., n. (Include the two edges connected to a vertex of degree 1).
Call vertex with no edges labeled "unlabeled" since any permutation of the labels will work.
Note that there are only 2 labeled degree one verticies.

Now we progressively add edges to the graph until we get the desired number of edges.

Case 1: A vertex of degree >=2 connected to a vertex of degree >=2.
There is nothing needed to be done.
Case 2: An unlabeled vertex of degree 1 connected to a vertex of degree >=2.
Label the new edge and the unlabeled edge two consectutive numbers.
Case 3: An unlabeled vertex of degree 1 connected to an unlabeled vertex of degree 1.
Label the two unlabeled edges and the new edge three consecutive numbers.
Case 4: A labeled vertex of degree 1 connected to a vertex of degree >=2.
Label this new edge either n+1 if the label is n or keep it unlabeled if the label is 1.
Case 5: A labled vertex of degree 1 connected to a labeled vertex of degree 1.
Label the connection n+1.
Case 6: A labeled vertex of degree 1 connected to an unlabeled vertex of degree 1.
If the labled edge is n, label the two edges n+1 and n+2 (increase other edges if necessary).
If the labled edge is 1, label the two edges consecutive numbers.

Notice that there are at most two instances of connecting a labeled vertex to another vertex, so we are done.
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shekast-istadegi
81 posts
shekast-istadegi
#12 Jul 5, 2012, 4:00 PM • 2 Y
Y by Adventure10, Mango247
This is easy probelm_hint_>we are doing the graph Euler Garlic by Connect odd edges of the graph and we use induaction.
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Generic_Username
1088 posts
Generic_Username
#13 Jan 4, 2017, 12:09 AM • 2 Y
Y by Adventure10, Mango247
wrong
This post has been edited 1 time. Last edited by Generic_Username, Jan 4, 2017, 6:11 PM
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dgrozev
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dgrozev
#14 Jan 4, 2017, 12:36 PM • 3 Y
Y by Generic_Username, Adventure10, Mango247
It's not so trivial. Suppose, we have 4 vertices: $a,b,c,d$ s.t. $\{b,c,d\}$ are connected with each other and $a$ is connected only with $b$. Following the above, we label $ab$ as $1$; $bc, bd$ as $2$ and $3$ respectively and $cd$ as 4. Look at the vertex $c$, its edges are labeled as $2,4$ !?
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yayups
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yayups
#15 Sep 1, 2018, 7:31 AM • 1 Y
Y by Adventure10
Not 100\% sure if this works, but here it is.

It suffices to have two adjacent labels at every vertex. Consider the path of maximum length. Label its edges consecutively, and then color all the edges red. Now, consider the maximum length path in non-red edges and repeat. Call path $k$ the maximum length path that we chose on the $k$th iteration. We claim that this works.

Note that all vertices that are not on the ends of any paths are automatically taken care of. The only potential issue is that there could be some vertex $v$ that is always only on the end of paths. If $v$ has degree $1$. then this isn't actually a problem. So suppose $v$ has degree at least $2$. It only appears on the end of paths, so there exist $i,j$ such that $v$ is on an end of path $i$ and path $j$ (WLOG $i<j$). But then, gluing together paths $i$ and $j$ results in a path of longer length at stage $i$ (all of path $j$ is still not red since it was not red at stage $j$). One possible issue is that if paths $i$ and $j$ also share their other respective ends, but this can easily solved by deleting one edge in the cycle that's formed when we glued them (still leads to a longer path on stage $i$). Therefore, we must have $\mathrm{deg}v=1$, so every vertex now has two adjacent labels adjacent to it.

EDIT: This is wrong, consider a cycle. I will try to fix soon...
This post has been edited 1 time. Last edited by yayups, Sep 1, 2018, 4:28 PM
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MathStudent2002
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MathStudent2002
#16 Jun 20, 2019, 1:59 AM • 4 Y
Y by cosmicgenius, AlastorMoody, Adventure10, Mango247
Epic problem. Solution with ewan.

Say all degrees are even. Then, we have an Eulerian circuit, which we just label $1, 2, \ldots, k$ in succession. Then, each vertex is labeled either with 2 consecutive integers or with $1$ and $k$ (or both) so we are done.

Else, consider the graph $G'$ where we add edges to $G$ between pairs of odd-degree vertices. Then, $G'$ has an Eulerian circuit. Removing the added edges from the circuit turns it into a set of walks with union $E(G)$ such that each walk starts and ends at odd-degree vertices and each odd-degree is the endpoint of exactly one walk.

Now, if the walks have lengths $k_1, \ldots, k_m$, then label the first one with $[1, k_1]$ in order, the second one with $[k_1+1, k_1+k_2]$, etc., and the last one with $[k_1+\cdots+k_{m-1}+1, k_1+\cdots+k_m]$. We see that each non-leaf vertex must appear in the interior (i.e. non-endpoint) of some walk and thus have two edges labeled with consecutive numbers, and hence have $\gcd$ of edge labels equal to one. $\blacksquare$
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dgrozev
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dgrozev
#17 Jun 20, 2019, 10:26 AM • 1 Y
Y by Adventure10
MathStudent2002 wrote:
...Now, if the walks have lengths $k_1, \ldots, k_m$, then label the first one with $[1, k_1]$ in order, the second one with $[k_1+1, k_1+k_2]$, etc., and the last one with $[k_1+\cdots+k_{m-1}+1, k_1+\cdots+k_m]$. We see that each non-leaf vertex must appear in the interior (i.e. non-endpoint) of some walk and thus have two edges labeled with consecutive numbers, and hence have $\gcd$ of edge labels equal to one. $\blacksquare$

What if the second walk, for example, begins and ends to one and the same vertex? So you assign $k_1+1$ and $k_1+k_2$ to those first and last edges and of course the may not be coprime.
I know it can be patched somehow, but then that idea of Euler cycles will lost its originality and it would be dissolved into something like in post #2.
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Pathological
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Pathological
#18 Jun 20, 2019, 12:35 PM • 1 Y
Y by Adventure10
I think what he/she is doing in the third paragraph is the following.

Let $v_1, v_2, \cdots, v_{2t}$ be the vertices of odd degree of $G$ (there's an even number of them by the Handshake Lemma, say). If $t = 0$, then simply take an Eulerian cycle and label the edges $1, 2, \cdots, k$ in order. Otherwise, we will add the edges $v_1v_2, v_3v_4, \cdots, v_{2t-1} v_{2t}.$ Let this modified graph be $G'.$ Note that this may result in the graph not being simple anymore, but that's fine since the problem still holds. Now, observe that $G'$ has all degree evens, and hence contains an Eulerian cycle. Then, it's clear that the removal of $v_1v_2, v_3v_4, \cdots, v_{2t-1} v_{2t}$ from the cycle would partition the cycle into walks from $v_2$ to $v_3$, from $v_4$ to $v_5$, $\cdots$, from $v_{2t}$ to $v_1.$ This makes it such that none of the walks can be cycles since the $v_i$'s are distinct, and so we finish as above.

Edit: Also, as far as I can tell, the idea in post #2 does not work, since it does not account for cycles (what if the walk ends at the same vertex it began with, and we label the edges $2, 3, 4$?). The solution in post #16, on the other hand, obviates the possibility of cycles using the odd degree trick.
This post has been edited 1 time. Last edited by Pathological, Jun 20, 2019, 11:12 PM
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SnowPanda
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SnowPanda
#19 Jan 13, 2022, 6:51 PM • 2 Y
Y by hakN, jelena_ivanchic
Solution
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vsamc
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vsamc
#20 Jun 29, 2023, 2:14 AM
Y by
Solution
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HamstPan38825
8857 posts
HamstPan38825
#21 Aug 2, 2023, 3:02 PM • 1 Y
Y by chenghaohu
The idea here is that fixing two edges around a vertex essentially makes it work, so we can work greedily.

Call a vertex valid if we have labeled two edges through it with relatively prime indices. It suffices to make all vertices valid.

Consider the longest walk in $G$, and label the edges along this walk in the order $1, 2, \dots, k$ consecutively. By maximality of the walk, every vertex in the walk (including the endpoints) is now valid; now, consider the subgraph $G'$ formed by removing all edges and any leaves in the walk, and continue the process until all edges are exhausted.
This post has been edited 2 times. Last edited by HamstPan38825, Aug 2, 2023, 3:05 PM
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thdnder
194 posts
thdnder
#22 Sep 6, 2023, 1:18 PM • 2 Y
Y by Upwgs_2008, taki09
An inductive solution.
Let $G = (V,E)$. We induct on $|V|$, assuming $|V| \geq 3$. Assume the problem statement is true on all connected graph with the number of vertices less than $|V|$. Since $G$ is connected, let $T$ be the spanning tree of $G$. Let $v$ be a leaf of $T$. Then $G-v$ is still connected, so by the induction hypothesis, we can label the edges of $G-v$ satisfying the problem condition. Let $\deg v = s$. Then if $s \geq 2$, $\gcd(k, k-1, \dots, k-s+1) = 1$ so labeling the remaining edges in arbitrary order will be satisfying the condition. Thus we're done.
This post has been edited 1 time. Last edited by thdnder, Dec 29, 2023, 11:48 AM
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kamatadu
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kamatadu
#23 Jan 1, 2024, 6:32 PM • 3 Y
Y by GeoKing, channing421, taki09
We induct with the base case being clearly true.

If $G$ has a cycle and the cycle is connected to some other component, then there is a vertex with $\ge 3$ degree.

Now remove an edge from this vertex thus breaking the cycle but the graph still remaining connected. Then by our induction hypothesis, we can get a number of the edges using $1,\ldots, k-1$.

Now, after removing the edge, we note taht the gcd of the vertex $=1$. So adding back the removed edge, the $\gcd$ would still be $=1$.

Now if the graph has only a cycle (i.e. $G$ has $k$ edges and $k$ vertices as shown below).
https://i.imgur.com/bslnMTq.png

Then we can just number the edges in an increasing order by $1$.

Otherwise, if $G$ is a tree, then also we can pick a path between the leaves of the tree and label the edges in a increasing order and also the subtrees in a similar increasing by $1$ order. It is easy to see that this works.
https://i.imgur.com/QCzuiz8.png
:yoda:
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lelouchvigeo
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lelouchvigeo
#24 Jan 2, 2024, 7:50 AM • 1 Y
Y by taki09
Sketch of the solution
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renrenthehamster
40 posts
renrenthehamster
#25 Aug 9, 2024, 3:49 AM • 1 Y
Y by taki09
If you are familiar with depth first search (DFS) algorithm, simply perform depth-first search starting at any chosen root $v$ and label the edges in the order of discovery. Other than the root $v$, all other vertices with at least degree 2 must have a pair of consecutive integer labelled edges (when you first enter the vertex by an edge, you still have at least an undiscovered edge and DFS forces you to immediately discover one of your undiscovered edge).

The exception to this argument is the root, but the root has an edge with label 1. By the way this is why you need the graph to be connected - so that you only have 1 root to deal with.
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IMD2
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IMD2
#26 Aug 10, 2024, 3:53 AM • 1 Y
Y by taki09
thdnder wrote:
An inductive solution.
Let $G = (V,E)$. We induct on $|V|$, assuming $|V| \geq 3$. Assume the problem statement is true on all connected graph with the number of vertices less than $|V|$. Since $G$ is connected, let $T$ be the spanning tree of $G$. Let $v$ be a leaf of $T$. Then $G-v$ is still connected, so by the induction hypothesis, we can label the edges of $G-v$ satisfying the problem condition. Let $\deg v = s$. Then if $s \geq 2$, $\gcd(k, k-1, \dots, k-s+1) = 1$ so labeling the remaining edges in arbitrary order will be satisfying the condition. Thus we're done.

What if the vertex $s$ is connected to goes from degree 1 to degree 2 when you include $s$?
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Maximilian113
549 posts
Maximilian113
#27 Apr 16, 2025, 3:28 AM
Y by
Call a vertex with degree at least $2$ "satisfied" if the labels of its adjacent edges have greatest common divisor $1.$

Consider the following algorithm:
For some $k$-cycle, assign the edges the $k$ largest available labels, in increasing order through one direction of the cycle. This ensures that we can remove the second-largest edge and both of its vertices will already have been satisfied. (as consecutive numbers are coprime)
Keep doing this until there are no cycles and the graph is a tree. Then each vertex with degree $1$ in this tree but with degree more than $1$ in the original graph is satisfied.
At this point if there are $r$ edges in this tree, we have the first $r$ numbers left as labels. For each vertice adjacent to a leaf, if it is adjacent to $\ell$ leaves assign their connections the $\ell$ largest available labels, and we can proceed inductively as this vertice will have been satisfied, and we are left with a smaller tree of the same scenario. QED
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