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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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[*]May 21st, 4:00pm PT/7:00pm ET, Mathcamp 2025 Qualifying Quiz Part 2 Math Jam, Problems 5 and 6, Canada/USA Mathcamp staff will discuss solutions to Problems 5 and 6 of the 2025 Mathcamp Qualifying Quiz![/list]
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0 replies
jlacosta
May 1, 2025
0 replies
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Interesting inequality of sequence
GeorgeRP   2
N 2 minutes ago by oty
Source: Bulgaria IMO TST 2025 P2
Let $d\geq 2$ be an integer and $a_0,a_1,\ldots$ is a sequence of real numbers for which $a_0=a_1=\cdots=a_d=1$ and:
$$a_{k+1}\geq a_k-\frac{a_{k-d}}{4d}, \forall_{k\geq d}$$Prove that all elements of the sequence are positive.
2 replies
GeorgeRP
Wednesday at 7:47 AM
oty
2 minutes ago
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Coloring cubes in a large cube with restrictions
emi3.141592   1
N 16 minutes ago by venhancefan777
Source: Problem 3 from Regional Olympiad of Mexico Southeast 2024
A large cube of size \(4 \times 4 \times 4\) is made up of 64 small unit cubes. Exactly 16 of these small cubes must be colored red, subject to the following condition:

In each block of \(1 \times 1 \times 4\), \(1 \times 4 \times 1\), and \(4 \times 1 \times 1\) cubes, there must be exactly one red cube.

Determine how many different ways it is possible to choose the 16 small cubes to be colored red.

Note: Two colorings are considered different even if one can be obtained from the other by rotations or symmetries of the cube.
1 reply
emi3.141592
Sep 29, 2024
venhancefan777
16 minutes ago
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IMO 2009, Problem 5
orl   91
N 25 minutes ago by maromex
Source: IMO 2009, Problem 5
Determine all functions $ f$ from the set of positive integers to the set of positive integers such that, for all positive integers $ a$ and $ b$, there exists a non-degenerate triangle with sides of lengths
\[ a, f(b) \text{ and } f(b + f(a) - 1).\]
(A triangle is non-degenerate if its vertices are not collinear.)

Proposed by Bruno Le Floch, France
91 replies
+1 w
orl
Jul 16, 2009
maromex
25 minutes ago
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What is thiss
EeEeRUT   4
N 27 minutes ago by lksb
Source: Thailand MO 2025 P6
Find all function $f: \mathbb{R}^+ \rightarrow \mathbb{R}$,such that the inequality $$f(x) + f\left(\frac{y}{x}\right) \leqslant \frac{x^3}{y^2} + \frac{y}{x^3}$$holds for all positive reals $x,y$ and for every positive real $x$, there exist positive reals $y$, such that the equality holds.
4 replies
EeEeRUT
Wednesday at 6:45 AM
lksb
27 minutes ago
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No more topics!
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If two circles are tangent, then all three are
Aiscrim   2
N Jul 13, 2014 by IDMasterz
Source: Tuymaada 2014, Day 2, Problem 2, Junior League
Radius of the circle $\omega_A$ with centre at vertex $A$ of a triangle $\triangle{ABC}$ is equal to the radius of the excircle tangent to $BC$. The circles $\omega_B$ and $\omega_C$ are defined similarly. Prove that if two of these circles are tangent then every two of them are tangent to each other.

(L. Emelyanov)
2 replies
Aiscrim
Jul 12, 2014
IDMasterz
Jul 13, 2014
J
If two circles are tangent, then all three are
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Reveal topic tags
trigonometry
geometry unsolved
geometry
Tuymaada
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G H BBookmark kLocked kLocked NReply
Source: Tuymaada 2014, Day 2, Problem 2, Junior League
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Aiscrim
409 posts
Aiscrim
#1 Jul 12, 2014, 9:04 AM • 2 Y
Y by Adventure10, Mango247
Radius of the circle $\omega_A$ with centre at vertex $A$ of a triangle $\triangle{ABC}$ is equal to the radius of the excircle tangent to $BC$. The circles $\omega_B$ and $\omega_C$ are defined similarly. Prove that if two of these circles are tangent then every two of them are tangent to each other.

(L. Emelyanov)
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bonciocatciprian
41 posts
bonciocatciprian
#2 Jul 13, 2014, 8:49 AM • 3 Y
Y by primesarespecial, Mr.ARS, Adventure10
Let's say that $\omega_b$ is tangent to $\omega_c$. We distinguish two cases:

1) $r_b + r_c = a$. In this case, we apply the formulae of $r_b$ and $r_c$: $(p-c) \cot{\frac{\alpha}{2}} + (p-b) \cot{\frac{\alpha}{2}} = a$ $\Leftrightarrow$ $(2p-b-c) \cot{\frac{\alpha}{2}} = a$ $\Leftrightarrow$ $a \cot{\frac{\alpha}{2}} = a$ $\Leftrightarrow$ $\boxed{\alpha = \frac{\pi}{2}}$. Now, to show that: $r_a - r_b = c$ $\Leftrightarrow$ $(p-b) \cot{\frac{\gamma}{2}} - (p-a) \cot{\frac{\gamma}{2}} = c$ $\Leftrightarrow$ $(a-b) \cot{\frac{\gamma}{2}} = c$. Now, we use the identity $\cot{\frac{x}{2}} = \frac{\sin{x}}{1-\cos{x}}$: $(a-b) \cot{\frac{\gamma}{2}} = c$ $\Leftrightarrow$ $(a-b)\frac{\frac{c}{a}}{1-\frac{b}{a}}=c$, which is obviously true. Hence, $r_a - r_b = c$, i.e. $\omega_a$ and $\omega_b$ are tangent. In a similar manner, it can also be shown that $\omega_a$ and $\omega_c$ are tangent.

2) $r_b - r_c = a$. This case is done similarily to the first, except that we reverse the steps of the proof: $r_b - r_c = a$ $\Leftrightarrow$ $p \tan{\frac{\beta}{2}} - (p-a) \cot{\frac{\beta}{2}} = a$ $\Leftrightarrow$ $p \tan^2{\frac{\beta}{2}}-(p-a)=a \tan{\frac{\beta}{2}}$ $\Leftrightarrow$ $\left( \tan{\frac{\beta}{2}} - 1 \right) $ $\left( p \tan{\frac{\beta}{2}} + p - a \right) = 0$. If the left part is zero, it means that $\tan{\frac{\beta}{2}} = 1$ $\Leftrightarrow$ $\boxed{\beta = \frac{\pi}{2}}$. If the right part canceles, we obtain a contradiction, since $\tan{\frac{\beta}{2}} \geq 0$, and $\frac{a-p}{p} < 0$. From now, the solution is straight-forward: $\beta = \frac{\pi}{2}$ $\Leftrightarrow$ $b \cot{\frac{\beta}{2}} = b$ $\Leftrightarrow$ $(2p-a-c)\cot{\frac{\beta}{2}} = b$ $\Leftrightarrow$ $(p-a)\cot{\frac{\beta}{2}} + (p-c)\cot{\frac{\beta}{2}} = b$ $\Leftrightarrow$ $r_c + r_a = b$, namely that $\omega_c$ and $\omega_a$ are tangent. I the same way, it can be shown that $\omega_a$ and $\omega_b$ are also tangent. $\square$
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IDMasterz
1412 posts
IDMasterz
#3 Jul 13, 2014, 10:38 AM • 2 Y
Y by Adventure10, Mango247
We find insimilicentres and exsimilicentres of $w_A, w_B, w_C$. $I_AI_BI_C$ be the excentral triangle, $A_1$ be tangency of $B$ excircle with $BC$. Note, parallel through $A$ to $CI_C$ intersects $CI_B$ at the insimilicentre of $(I_B), w_C$. This point be $P$, and again by Monge d'alembert the exsimilicentre of $w_B, w_C$ is lies on the line through $P$ and the midpoint of $I_BB$ and $BC$. Let it be $A_2$. We have $\dfrac{CP}{I_CP} = \dfrac{I_BA}{I_CA} = \dfrac{s-b}{s-c}$ so we can show, either by considering the midline of $I_BC, I_BB$ and taking perspectivity with respect to the midpoint of $I_BB$ or menelaus that $\dfrac{CA_2}{BA_2}= \dfrac{s-b}{s-c}$. If $A_3B_3C_3$ is the nagel triangle, then $(B, C; A_3, A_2) = -1 \implies B_3C_3 \cap BC = A_2$.

So, the insimilicentres and exsimilicentres is the nagel triangle and its perspectrix, which we will call $A_2B_2C_2$. If $w_B \cap w_C \in BC = A_3$ then it becomes simple. Let the midpoint of $I_BI_C$ be $X$. Note, $XA_3=XC_3$ and $A_3C_3 \parallel CI_C$, so easy angle chasing means $X$ is centre of it, which by last years IMO P3 implies $ABC$ is right angled at $A$. The problem follows easily, and there must always by two internally as then the problem makes no sense :)
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