Found problems: 85335
2023 Harvard-MIT Mathematics Tournament, 2
Points $X$, $Y$, and $Z$ lie on a circle with center $O$ such that $XY=12$. Points $A$ and $B$ lie on segment $XY$ such that $OA=AZ=ZB=BO=5$. Compute $AB$.
2013 Stars Of Mathematics, 2
Three points inside a rectangle determine a triangle. A fourth point is taken inside the triangle. Prove that at least one of the three concave quadrilaterals formed by these four points has perimeter lesser than that of the rectangle.
[i](Dan Schwarz)[/i]
1993 Tournament Of Towns, (390) 2
Points $M$ and $N$ are taken on the hypotenuse $AB$ of a right triangle $ABC$ so that $BC = BM$ and $AC = AN$. Prove that the angle $MCN$ is equal to $45$ degrees.
(Folklore)
2018 BMT Spring, 3
Find the minimal $N$ such that any $N$-element subset of $\{1, 2, 3, 4,...,7\}$ has a subset $S$ such that the sum of elements of $S$ is divisible by $7$.
2019 PUMaC Geometry A, 4
Let $BC=6$, $BX=3$, $CX=5$, and let $F$ be the midpoint of $\overline{BC}$. Let $\overline{AX}\perp\overline{BC}$ and $AF=\sqrt{247}$. If $AC$ is of the form $\sqrt{b}$ and $AB$ is of the form $\sqrt{c}$ where $b$ and $c$ are nonnegative integers, find $2c+3b$.
1993 AMC 8, 2
When the fraction $\dfrac{49}{84}$ is expressed in simplest form, then the sum of the numerator and the denominator will be
$\text{(A)}\ 11 \qquad \text{(B)}\ 17 \qquad \text{(C)}\ 19 \qquad \text{(D)}\ 33 \qquad \text{(E)}\ 133$
1997 India National Olympiad, 4
In a unit square one hundred segments are drawn from the centre to the sides dividing the square into one hundred parts (triangles and possibly quadruilaterals). If all parts have equal perimetr $p$, show that $\dfrac{14}{10} < p < \dfrac{15}{10}$.
VMEO III 2006 Shortlist, A8
Let $f(x) = 3(|x|+|x-1|-|x+1|)$ and let $x_{n+1}=f(x_n)$ $\forall n \ge 0$. How many real number $x_0$ are there, that satisfy $x_0=x_{2007}$ and $x_0,x_1,x_2,...,x_{2006}$ are distinct?
2003 ITAMO, 1
Find all three digit numbers $n$ which are equal to the number formed by three last digit of $n^2$.
2012 ELMO Shortlist, 5
Let $ABC$ be an acute triangle with $AB<AC$, and let $D$ and $E$ be points on side $BC$ such that $BD=CE$ and $D$ lies between $B$ and $E$. Suppose there exists a point $P$ inside $ABC$ such that $PD\parallel AE$ and $\angle PAB=\angle EAC$. Prove that $\angle PBA=\angle PCA$.
[i]Calvin Deng.[/i]
2016 PUMaC Team, 10
Chad and Chad2 run competing rare candy stores at Princeton. Chad has a large supply of boxes of candy, each box containing three candies and costing him \$ $3$ to purchase from his supplier. He charges \$ $1.50$ per candy per student. However, any rare candy in an opened box must be discarded at the end of the day at no profit. Chad knows that at each of $8$am, $10$am, noon, $2$pm, $4$pm, and $6$pm, there will be one person who wants to buy one candy, and that they choose between Chad and Chad2 at random. (He knows that those are the only times when he might have a customer.) Chad may refuse sales to any student who asks for candy.
If Chad acts optimally, his expected daily profit can be written in simplest form as $\frac{m}{n}$. Find $m + n$. (Chad’s profit is \$ $1.50$ times the number of candies he sells, minus $3 per box he opens.)
2010 Indonesia TST, 4
Let $ ABC$ be a non-obtuse triangle with $ CH$ and $ CM$ are the altitude and median, respectively. The angle bisector of $ \angle BAC$ intersects $ CH$ and $ CM$ at $ P$ and $ Q$, respectively. Assume that \[ \angle ABP\equal{}\angle PBQ\equal{}\angle QBC,\]
(a) prove that $ ABC$ is a right-angled triangle, and
(b) calculate $ \dfrac{BP}{CH}$.
[i]Soewono, Bandung[/i]
2012 JBMO TST - Turkey, 3
Show that for all real numbers $x, y$ satisfying $x+y \geq 0$
\[ (x^2+y^2)^3 \geq 32(x^3+y^3)(xy-x-y) \]
1973 All Soviet Union Mathematical Olympiad, 188
Given $4$ points in three-dimensional space, not lying in one plane. What is the number of such a parallelepipeds (bricks), that each point is a vertex of each parallelepiped?
2011 AMC 12/AHSME, 11
Circles $A$, $B$, and $C$ each have radius $1$. Circles $A$ and $B$ share one point of tangency. Circle $C$ has a point of tangency with the midpoint of $\overline{AB}$. What is the area inside circle $C$ but outside circle $A$ and circle $B$?
[asy]
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filldraw(arc((1,0),1,90,180)--arc((-1,0),1,0,90)--arc((0,1), 1, 180, 0)--cycle,gray);
draw(circle((0,1),1)); draw(circle((1,0),1)); draw(circle((-1,0),1));
dot((-1,0)); dot((1,0)); dot((0,1));
label("$A$",(-1,0),SW); label("$B$",(1,0),SE); label("$C$",(0,1),N);[/asy]
$ \textbf{(A)}\ 3-\frac{\pi}{2} \qquad
\textbf{(B)}\ \frac{\pi}{2} \qquad
\textbf{(C)}\ 2 \qquad
\textbf{(D)}\ \frac{3\pi}{4} \qquad
\textbf{(E)}\ 1+\frac{\pi}{2}$
2021 Caucasus Mathematical Olympiad, 4
In an acute triangle $ABC$ let $AH_a$ and $BH_b$ be altitudes. Let $H_aH_b$ intersect the circumcircle of $ABC$ at $P$ and $Q$. Let $A'$ be the reflection of $A$ in $BC$, and let $B'$ be the reflection of $B$ in $CA$. Prove that $A', B'$, $P$, $Q$ are concyclic.
2023 Thailand TSTST, 1
Let $ABC$ be an acute triangle with orthocenter $H$ and circumcircle $\Omega$. The tangent line of the circumcircle of triangle $BHC$ at $H$ meets $AB$ and $AC$ at $E$ and $F$ respectively. If $O$ is the circumcenter of triangle $AEF$, prove that the circumcircle of triangle $EOF$ is tangent to $\Omega$.
2013 National Olympiad First Round, 21
Let $D$ and $E$ be points on side $[AB]$ of a right triangle with $m(\widehat{C})=90^\circ$ such that $|AD|=|AC|$ and $|BE|=|BC|$. Let $F$ be the second intersection point of the circumcircles of triangles $AEC$ and $BDC$. If $|CF|=2$, what is $|ED|$?
$
\textbf{(A)}\ \sqrt 2
\qquad\textbf{(B)}\ 1+\sqrt 2
\qquad\textbf{(C)}\ 2
\qquad\textbf{(D)}\ 2\sqrt 2
\qquad\textbf{(E)}\ \text{None of above}
$
2021 Balkan MO Shortlist, A5
Find all functions $f: \mathbb{R}^{+} \rightarrow \mathbb{R}^{+}$ such that
$$f(xf(x + y)) = yf(x) + 1$$
holds for all $x, y \in \mathbb{R}^{+}$.
[i]Proposed by Nikola Velov, North Macedonia[/i]
2009 AMC 10, 18
At Jefferson Summer Camp, $ 60\%$ of the children play soccer, $ 30\%$ of the children swim, and $ 40\%$ of the soccer players swim. To the nearest whole percent, what percent of the non-swimmers play soccer?
$ \textbf{(A)}\ 30\% \qquad
\textbf{(B)}\ 40\% \qquad
\textbf{(C)}\ 49\% \qquad
\textbf{(D)}\ 51\% \qquad
\textbf{(E)}\ 70\%$
2011 Uzbekistan National Olympiad, 4
$A$ graph $G$ arises from $G_{1}$ and $G_{2}$ by pasting them along $S$ if $G$ has induced subgraphs $G_{1}$, $G_{2}$ with $G=G_{1}\cup G_{2}$ and $S$ is such that $S=G_{1}\cap G_{2}.$ A is graph is called [i]chordal[/i] if it can be constructed recursively by pasting along complete subgraphs, starting from complete subgraphs. For a graph $G(V,E)$ define its Hilbert polynomial $H_{G}(x)$ to be
$H_{G}(x)=1+Vx+Ex^2+c(K_{3})x^3+c(K_{4})x^4+\ldots+c(K_{w(G)})x^{w(G)},$
where $c(K_{i})$ is the number of $i$-cliques in $G$ and $w(G)$ is the clique number of $G$. Prove that $H_{G}(-1)=0$ if and only if $G$ is chordal or a tree.
2014 JBMO Shortlist, 1
Solve in positive real numbers: $n+ \lfloor \sqrt{n} \rfloor+\lfloor \sqrt[3]{n} \rfloor=2014$
2020 Princeton University Math Competition, A7
Let $\phi (x, u)$ be the smallest positive integer $n$ so that $2^u$ divides $x^n + 95$ if it exists, or $0$ if no such positive integer exists. Determine$ \sum_{i=0}^{255} \phi(i, 8)$.
2022 Peru MO (ONEM), 4
For each positive integer n, the number $R(n) = 11 ... 1$ is defined, which is made up of exactly $n$ digits equal to $1$. For example, $R(5) = 11111$. Let $n > 4$ be an integer for which, by writing all the positive divisors of $R(n)$, it is true that each written digit belongs to the set $\{0, 1\}$. Show that $n$ is a power of an odd prime number.
Clarification: A power of an odd prime number is a number of the form $p^a$, where $p$ is an odd prime number and $a$ is a positive integer.
2007 China Team Selection Test, 1
Find all functions $ f: \mathbb{Q}^{\plus{}} \mapsto \mathbb{Q}^{\plus{}}$ such that:
\[ f(x) \plus{} f(y) \plus{} 2xy f(xy) \equal{} \frac {f(xy)}{f(x\plus{}y)}.\]