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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
J
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pairwise coprime sum gcd
InterLoop   4
N 2 minutes ago by quantam13
Source: EGMO 2025/1
For a positive integer $N$, let $c_1 < c_2 < \dots < c_m$ be all the positive integers smaller than $N$ that are coprime to $N$. Find all $N \ge 3$ such that
$$\gcd(N, c_i + c_{i+1}) \neq 1$$for all $1 \le i \le m - 1$.
4 replies
+4 w
InterLoop
2 hours ago
quantam13
2 minutes ago
J
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Problem 3
SlovEcience   3
N 3 minutes ago by SlovEcience
Find all real numbers \( k \) such that the following inequality holds for all \( a, b, c \geq 0 \):

\[ ab + bc + ca \leq \frac{(a + b + c)^2}{3} + k \cdot \max \{ (a - b)^2, (b - c)^2, (c - a)^2 \} \leq a^2 + b^2 + c^2 \]
3 replies
SlovEcience
Apr 9, 2025
SlovEcience
3 minutes ago
J
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Hard number theory
truongngochieu   3
N 20 minutes ago by truongngochieu
Find all integers $a,b$ such that $a^2+a+1=7^b$
3 replies
truongngochieu
2 hours ago
truongngochieu
20 minutes ago
J
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max |sin x|, |sin (x+1)| > 1/3
Miquel-point   1
N 21 minutes ago by Mathzeus1024
Source: Romanian IMO TST 1981, Day 2 P1
Show that for every real number $x$ we have
\[\max(|\sin x|,|\sin (x+1)|)>\frac13.\]
1 reply
Miquel-point
Apr 6, 2025
Mathzeus1024
21 minutes ago
J
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one cyclic formed by two cyclic
CrazyInMath   4
N 33 minutes ago by bin_sherlo
Source: EGMO 2025/3
Let $ABC$ be an acute triangle. Points $B, D, E$, and $C$ lie on a line in this order and satisfy $BD = DE = EC$. Let $M$ and $N$ be the midpoints of $AD$ and $AE$, respectively. Suppose triangle $ADE$ is acute, and let $H$ be its orthocentre. Points $P$ and $Q$ lie on lines $BM$ and $CN$, respectively, such that $D, H, M,$ and $P$ are concyclic and pairwise different, and $E, H, N,$ and $Q$ are concyclic and pairwise different. Prove that $P, Q, N,$ and $M$ are concyclic.
4 replies
+4 w
CrazyInMath
2 hours ago
bin_sherlo
33 minutes ago
J
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Arithmetic means as terms of a sequence
Lukaluce   1
N 41 minutes ago by Tintarn
Source: EGMO 2025 P2
An infinite increasing sequence $a_1 < a_2 < a_3 < ...$ of positive integers is called central if for every positive integer $n$, the arithmetic mean of the first $a_n$ terms of the sequence is equal to $a_n$. Show that there exists an infinite sequence $b_1, b_2, b_3, ...$ of positive integers such that for every central sequence $a_1, a_2, a_3, ...$, there are infinitely many positive integers $n$ with $a_n = b_n$.
1 reply
Lukaluce
2 hours ago
Tintarn
41 minutes ago
J
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maximum profit
Ecrin_eren   0
41 minutes ago
In a meeting attended by 20 businessmen, some of them know each other and do business only with the people they know. The participants are numbered from 1 to 20 according to the order in which they arrived. Let aₖ represent the number of people that person number k knows. (For example, if person 5 knows 9 people, then a₅ = 9.)

If person k knows person n, then the profit that k earns from doing business with n is:

(1 / aₖ) + (1 / aₙ) + (1 / (aₖ × aₙ))

What is the maximum total profit that any participant in this meeting can earn?
0 replies
Ecrin_eren
41 minutes ago
0 replies
J
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GCD of sums of consecutive divisors
Lukaluce   2
N 42 minutes ago by Tintarn
Source: EGMO 2025 P1
For a positive integer $N$, let $c_1 < c_2 < ... < c_m$ be all the positive integers smaller than $N$ that are coprime to $N$. Find all $N \ge 3$ such that
\[gcd(N, c_i + c_{i + 1}) \neq 1\]for all $1 \le i \le m - 1$.
2 replies
Lukaluce
2 hours ago
Tintarn
42 minutes ago
J
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AD=BE implies ABC right
v_Enhance   113
N 44 minutes ago by LeYohan
Source: European Girl's MO 2013, Problem 1
The side $BC$ of the triangle $ABC$ is extended beyond $C$ to $D$ so that $CD = BC$. The side $CA$ is extended beyond $A$ to $E$ so that $AE = 2CA$. Prove that, if $AD=BE$, then the triangle $ABC$ is right-angled.
113 replies
v_Enhance
Apr 10, 2013
LeYohan
44 minutes ago
J
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Classic 3 variable inequality
AndreiVila   4
N 44 minutes ago by Rohit-2006
Source: Mathematical Minds 2024 P4
Let $a$, $b$, $c$ be positive real numbers such that $a+b+c=3$. Prove that $$\sqrt[3]{\frac{a^3+b^3}{2}}+\sqrt[3]{\frac{b^3+c^3}{2}}+\sqrt[3]{\frac{c^3+a^3}{2}}\leqslant a^2+b^2+c^2.$$
Proposed by Andrei Vila
4 replies
1 viewing
AndreiVila
Sep 29, 2024
Rohit-2006
44 minutes ago
J
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Inequalities
hn111009   0
an hour ago
Source: Maybe anywhere?
Let $a,b,c>0;r,s\in\mathbb{R}$ satisfied $a+b+c=1.$ Find minimum and maximum of $$P=a^rb^s+b^rc^s+c^ra^s.$$
0 replies
hn111009
an hour ago
0 replies
J
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sequence infinitely similar to central sequence
InterLoop   1
N an hour ago by stmmniko
Source: EGMO 2025/2
An infinite increasing sequence $a_1 < a_2 < a_3 < \dots$ of positive integers is called central if for every positive integer $n$, the arithmetic mean of the first $a_n$ terms of the sequence is equal to $a_n$.

Show that there exists an infinite sequence $b_1$, $b_2$, $b_3$, $\dots$ of positive integers such that for every central sequence $a_1$, $a_2$, $a_3$, $\dots$, there are infinitely many positive integers $n$ with $a_n = b_n$.
1 reply
+3 w
InterLoop
2 hours ago
stmmniko
an hour ago
J
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Three concyclic quadrilaterals
Lukaluce   1
N an hour ago by InterLoop
Source: EGMO 2025 P3
Let $ABC$ be an acute triangle. Points $B, D, E,$ and $C$ lie on a line in this order and satisfy $BD = DE = EC$. Let $M$ and $N$ be midpoints of $AD$ and $AE$, respectively. Suppose triangle $ADE$ is acute, and let $H$ be its orthocentre. Points $P$ and $Q$ lie on lines $BM$ and $CN$, respectively, such that $D, H, M,$ and $P$ are concyclic and pairwise different, and $E, H, N,$ and $Q$ are concyclic and pairwise different. Prove that $P, Q, N,$ and $M$ are concyclic. $\newline$
The orthocentre of a triangle is the point of intersection of its altitudes.
1 reply
Lukaluce
2 hours ago
InterLoop
an hour ago
J
H
inqualities
pennypc123456789   0
an hour ago
Given positive real numbers \( x \) and \( y \). Prove that:
\[ \frac{1}{x} + \frac{1}{y} + 2 \sqrt{\frac{2}{x^2 + y^2}} + 4 \geq 4 \left( \sqrt{\frac{2}{x^2 + 1}} + \sqrt{\frac{2}{y^2 + 1}} \right). \]
0 replies
pennypc123456789
an hour ago
0 replies
J
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J
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Geo Final but hard to solve with Conics...
Seungjun_Lee   5
N Apr 2, 2025 by L13832
Source: 2025 Korea Winter Program Practice Test P4
Let $\omega$ be the circumcircle of triangle $ABC$ with center $O$, and the $A$ inmixtilinear circle is tangent to $AB, AC, \omega$ at $D,E,T$ respectively. $P$ is the intersection of $TO$ and $DE$ and $X$ is the intersection of $AP$ and $\omega$. Prove that the isogonal conjugate of $P$ lies on the line passing through the midpoint of $BC$ and $X$.
5 replies
Seungjun_Lee
Jan 18, 2025
L13832
Apr 2, 2025
J
Geo Final but hard to solve with Conics...
G H J
Reveal topic tags
geometry
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G H BBookmark kLocked kLocked NReply
Source: 2025 Korea Winter Program Practice Test P4
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Seungjun_Lee
524 posts
Seungjun_Lee
#1 Jan 18, 2025, 7:13 AM • 3 Y
Y by Rounak_iitr, sashamusta, ehuseyinyigit
Let $\omega$ be the circumcircle of triangle $ABC$ with center $O$, and the $A$ inmixtilinear circle is tangent to $AB, AC, \omega$ at $D,E,T$ respectively. $P$ is the intersection of $TO$ and $DE$ and $X$ is the intersection of $AP$ and $\omega$. Prove that the isogonal conjugate of $P$ lies on the line passing through the midpoint of $BC$ and $X$.
This post has been edited 1 time. Last edited by Seungjun_Lee, Jan 18, 2025, 12:44 PM
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TestX01
332 posts
TestX01
#2 Jan 18, 2025, 7:23 AM
Y by
What is $O$?
Z K Y
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Acorn-SJ
59 posts
Acorn-SJ
#3 Jan 18, 2025, 8:59 AM
Y by
@above
$O$ is the center of circle $\omega$. I’ll tell him to fix the statement
Z K Y
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Seungjun_Lee
524 posts
Seungjun_Lee
#4 Jan 18, 2025, 1:07 PM • 4 Y
Y by Nari_Tom, Stuffybear, ehuseyinyigit, L13832
Let $Y$ be the point on $\omega$ that $AX$ and $AY$ are isogonal, and $S, L$ be the intersection of $XM, YM$ and $\omega$, respectively. We can see that $SL \parallel BC$. All polars taken in the solution is a polar wrt the $A$ mixtilinear incircle.

Using Well Known Fact, it suffices to prove that $PM$ and $AQ$ are parallel. Now, as $-1 = (B,C;M, \infty_{BC}) = (YB,YC;YM,Y\infty_{BC}) = (B,C;L,X)$, we know that $LX$ passes through the intersection of tangents from $B,C$ to $\omega$. This implies that $O,M,X,L$ are concyclic. Since $\angle YAX = \angle YLX = \angle MLX$, it suffices to prove that $P,M,X,L$ are concyclic. We will prove that $P,O,M,X$ are concyclic by proving that $\angle XPO = \angle XMO$.

Since $P$ lies on the $A$ polar, $A$ lies on the polar of $P$. Since $-1 = (B,C;L,X) = (AD, AE; AL, AP)$, we can easily see that $AL$ is $P$ polar. This implies that $AL \perp PO$. Hence, $\angle XPO = \angle (XP, OP) = \angle (XA, LA) + \angle (LA, OP)$. From $\angle (LA, OP) = \angle (CM, MO)$ and $\angle (XA, LA) = -\angle LAX = -\angle LSX = -\angle CMX = \angle XMC$, we obtain that $\angle XPO = \angle (XA, LA) + \angle (LA, OP) = \angle XMC + \angle CMO = \angle XMO$, as desired.
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TestX01
332 posts
TestX01
#5 Jan 19, 2025, 11:31 AM • 2 Y
Y by ehuseyinyigit, L13832
i swear the motivation is so hard to find so i rate 40 mohs but @above is so orz :love: :blush:

or maybe i didn't do enough taiwan-style config geo

https://i.imgur.com/CrDGUBa.png

Let $N$ be the midpoint of major arc $BC$, and $F$ midpoint of minor arc $BC$. Let $O'$ be the centre of the mixtilinear incircle. Let $I$ be the incentre of $\triangle ABC$, and $M$ the midpoint of $BC$.

We reconstruct $Q$ as the intersection of the reflection of $AP$ over $AI$ with $MX$. It suffices to show that $QC$ and $CP$ are isogonal in $\angle BCA$ to prove $P$ and $Q$ are isogonal conjugates.

The following results are well-known or trivial to see:
  • $DE\perp AI$, and $D,I,E$ collinear.
  • $O,O', T$ collinear.
  • $T,I,N$ collinear.
  • $DBTI$ and $ECTI$ cyclic.
  • $N,O,M,F$ collinear.
  • $A,I,O',F$ collinear.
Our solution depends on the following claim:
Claim: $XMOP$ is cyclic.
Proof:
We will show that $\triangle TIX\sim\triangle FMX$. Clearly, $\angle XFN=\angle XTN$ by Bowtie, hence we just need
\[\frac{IT}{MF}=\frac{TX}{FX}\]To conclude by $SAS$ similarity.

Let us proceed by trigonometric bash. First evaluate the right hand side,
\[\frac{TX}{FX}=\frac{\sin\angle XFT}{\sin\angle FTX}=\frac{\sin\angle TAX}{\sin\angle FAX}\]However, by Ratio Lemma in triangle $\triangle ATO'$, we have
\[\frac{\sin\angle TAX}{\sin\angle FAX}=\frac{TP}{PO'}\times \frac{AO'}{TA}\]Now, by Ratio Lemma in triangle $\triangle TIO'$ now, we have
\[\frac{TP}{PO'}=\frac{IT}{IO'}\times\frac{\sin\angle DIT}{\sin 90^\circ}\]Hence we have
\[\frac{TX}{FX}=\frac{AO'}{TA}\times \frac{ IT\sin\angle DIT}{IO'}\]Now, let's move to the left hand side of our initial equation. First of all, we prove an important similarity: $\triangle IMF\sim\triangle AIT$.

Indeed, by Shooting Lemma and Fact 5 we have $FB^2=FI^2=FM\times FN$ hence $(NIM)$ is tangent to $FI$. Thus, $\measuredangle FIM=\measuredangle INF=\measuredangle TAF$, and by Bowtie we have $\angle MFI=\angle ITA$. This is sufficient due to $AA$ similarity.

Now, this implies that $\frac{IT}{MF}=\frac{AT}{IF}$. Thus, it simply suffices to show that
\[\frac{AT}{IF}=\frac{AO'}{TA}\times\frac{IT\sin\angle DIT}{IO'}\]Now, by Ratio Lemma in $\triangle ATI$, we have
\[\frac{AO'}{IO'}=\frac{AT}{TI}\times\frac{\sin\angle ATO'}{\sin\angle ITO'}\]Hence it simply suffices to show that
\[\frac{AT}{IF}=\frac{\sin \angle DIT\sin\angle ATO'}{\sin\angle ITO'}\]Now, $BDIT$ is cyclic as mentioned before, hence
\[\sin{\angle DIT}=\sin\angle TBA=\sin\angle ANT=\frac{AI}{NI}\]Because $\triangle ANI$ is right. However, we also have $\triangle AIT\sim\triangle NIF$ because of Bowties and $AA$ similarity. Hence, $\frac{AI}{NI}=\frac{AT}{NF}$. Hence it suffices to prove
\[\frac{NF}{IF}=\frac{\sin\angle ATO'}{\sin\angle ITO'}\]However, from $TO=ON$ by circumcentre definition, $\angle ITO'=\angle ONI$. Further, we have
\[\measuredangle ATO'=\frac{180^\circ-\measuredangle TOA}{2}=90^\circ-\measuredangle TCA=90^\circ-\measuredangle TNA=\measuredangle AIN\]due to angle at centre theorem.

This implies that
\[\frac{\sin\angle ATO'}{\sin\angle ITO'}=\frac{\sin \angle AIN}{\sin\angle FNI}\]And the right hand side is $\frac{NF}{IF}$ due to sine law in $\triangle INF$.

This concludes our trigonometric bash.

Hence, $\triangle TIX\sim\triangle FMX$.

Note that Reim's Theorem on $(ABC)$ and parallel lines $AN$ and $DE$ (Both are perpendicular to $AI$) implies that $IPXT$ is cyclic.

Using our similarity,
\[\measuredangle FMX=\measuredangle TIX=\measuredangle TPX=\measuredangle OPX\]Which finally gives $OPMX$ cyclic.

This concludes our claim. $\square$

Lemma: $PM\parallel AQ$
Proof:
We will angle chase:
\[\measuredangle MPX=\measuredangle FOX=2\measuredangle FNX=2\measuredangle FAX=\measuredangle QAX\]Where we use $XMOP$ cyclic, angle at centre theorem, and the fact that $AI$ bisects $\angle QAP$. This suffices by corresponding angles in parallel lines.$\square$.

Now, in order to show that $CP$ and $CQ$ are isogonal, we will employ DDIT at $C$ on quadrilateral $AQMP$. Note that $CA$ and $CM$ are clearly isogonal. If we show that $AP\cap QM=X$ and $PM\cap AQ=P_\infty$ are isogonal, this would characterize our involution, then imply $CP$ and $CQ$ also being isogonal.

Indeed, it suffices to show that $\measuredangle(AC,CX)=\measuredangle(NM,BC)$ to prove isogonality. By Pitot Theorem on $\triangle NOT$, $NIMX$ is cyclic. In particular, it is tangent to $AI$ from our earlier result.

Now we claim that $I$ is the incentre of $\triangle AQX$ as well. Indeed, $AI$ bisects $\angle QAP$. Further,
\[\measuredangle AQX=\measuredangle PMX=\measuredangle POX=180^\circ-2\measuredangle INX=180^\circ-2\measuredangle FIX=2\measuredangle AIX-180^\circ\]Which suffices by well-known incentre angle formula, where we used angle at center theorem and $XMOP$ cyclic.

Now, let us angle chase:
\begin{align*}\measuredangle ACX&=\measuredangle ANX\\ &=\measuredangle INX+\measuredangle ANI\\ &=\measuredangle FIX+\measuredangle AXT\\ &=\measuredangle FIX+\measuredangle IXF\\ &=180^\circ-\measuredangle XFA\\ &=180^\circ-\frac{1}{2}\measuredangle XOA\\ &=90^\circ+\measuredangle PXO\\ &=90^\circ+\measuredangle PMO\\ &=\measuredangle PMB \end{align*}As desired, where we used $(NIMX)$ tangent to $AI$, $MOPX$ cyclic, and multiple Bowties, as well as because from $XI$ bisecting $\measuredangle AXM$,
\[\measuredangle AXI=\measuredangle IXM=\measuredangle TXF,\]implying $\measuredangle AXT=\measuredangle IXF$. (Similar switch gives $\triangle IMX\sim\triangle TFX$, and our angle equality.)

This concludes the problem, as $PC$ and $QC$ are now isogonal, and hence $Q,P$ are isogonal conjugates, but $Q$ lies on $MX$, so we are done.
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L13832
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L13832
#6 Apr 2, 2025, 8:30 PM
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Nice problem man! Cool solutions above :orz:
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