Found problems: 85335
1995 AMC 12/AHSME, 3
The total in-store price for an appliance is $\$99.99$. A television commercial advertises the same product for three easy payments of $\$29.98$ and a one-time shipping and handling charge of $\$9.98$. How much is saved by buying the appliance from the television advertiser?
$\textbf{(A)}\ \text{6 cents} \qquad
\textbf{(B)}\ \text{7 cents} \qquad
\textbf{(C)}\ \text{8 cents} \qquad
\textbf{(D)}\ \text{9 cents} \qquad
\textbf{(E)}\ \text{10 cents}$
2004 Moldova Team Selection Test, 9
Let $a,b$ and $c$ be positive real numbers . Prove that\[\left | \frac{4(b^3-c^3)}{b+c}+ \frac{4(c^3-a^3)}{c+a}+ \frac{4(a^3-b^3)}{a+b} \right |\leq (b-c)^2+(c-a)^2+(a-b)^2.\]
2012 IFYM, Sozopol, 6
Determine all functions $f:\Bbb{R}\to\Bbb{R}$ such that \[ f(x^2 + f(y)) = (f(x) + y^2)^ 2 \] , for all $x,y\in \Bbb{R}.$
2021 Saint Petersburg Mathematical Olympiad, 3
Given is cyclic quadrilateral $ABCD$ with∠$A = 3$∠$B$. On the $AB$ side is chosen point $C_1$, and on side $BC$ - point $A_1$ so that $AA_1 = AC = CC_1$. Prove that $3A_1C_1>BD$.
2001 China Second Round Olympiad, 1
Let $O,H$ be the circumcenter and orthocenter of $\triangle ABC,$ respectively. Line $AH$ and $BC$ intersect at $D,$ Line $BH$ and $AC$ intersect at $E,$ Line $CH$ and $AB$ intersect at $F,$ Line $AB$ and $ED$ intersect at $M,$ $AC$ and $FD$ intersect at $N.$ Prove that
$(1)OB\perp DF,OC\perp DE;$
$(2)OH\perp MN.$
2010 Tournament Of Towns, 3
Consider a composition of functions $\sin, \cos, \tan, \cot, \arcsin, \arccos, \arctan, \arccos$, applied to the number $1$. Each function may be applied arbitrarily many times and in any order. (ex: $\sin \cos \arcsin \cos \sin\cdots 1$). Can one obtain the number $2010$ in this way?
2023 SG Originals, Q3
Define a domino to be a $1\times 2$ rectangular block. A $2023\times 2023$ square grid is filled with non-overlapping dominoes, leaving a single $1\times 1$ gap. John then repeatedly slides dominoes into the gap; each domino is moved at most once. What is the maximum number of times that John could have moved a domino? (Example: In the $3\times 3$ grid shown below, John could move 2 dominoes: $D$, followed by $A$.)
[asy]
unitsize(18);
draw((0,0)--(3,0)--(3,3)--(0,3)--(0,0)--cycle);
draw((0,1)--(3,1));
draw((2,0)--(2,3));
draw((1,1)--(1,3));
label("A",(0.5,2));
label("B",(1.5,2));
label("C",(2.5,2));
label("D",(1,0.5));
[/asy]
2005 Postal Coaching, 4
Let $m,n$ be natural numbers and let $d = gcd(m,n)$. Let $x = 2^{m} -1$ and $y= 2^n +1$
(a) If $\frac{m}{d}$ is odd, prove that $gcd(x,y) = 1$
(b) If $\frac{m}{d}$ is even, Find $gcd(x,y)$
LMT Team Rounds 2021+, 5
In regular hexagon $ABCDEF$ with side length $2$, let $P$, $Q$, $R$, and $S$ be the feet of the altitudes from $A$ to $BC$, $EF$, $CF$, and $BE$, respectively. Find the area of quadrilateral $PQRS$.
2021 MOAA, 3
Arnav is placing three rectangles into a $3 \times 3$ grid of unit squares. He has a $1\times 3$ rectangle, a $1\times 2$ rectangle, and a $1\times 1$ rectangle. He must place the rectangles onto the grid such that the edges of the rectangles align with the gridlines of the grid. If he is allowed to rotate the rectangles, how many ways can he place the three rectangles into the grid, without overlap?
[i]Proposed by William Yue[/i]
1961 All-Soviet Union Olympiad, 5
Nickolas and Peter divide $2n+1$ nuts amongst each other. Both of them want to get as many as possible. Three methods are suggested to them for doing so, each consisting of three stages. The first two stages are the same in all three methods:
[i]Stage 1:[/i] Peter divides the nuts into 2 heaps, each containing at least 2 nuts.
[i]Stage 2:[/i] Nickolas divides both heaps into 2 heaps, each containing at least 1 nut.
Finally, stage 3 varies among the three methods as follows:
[i]Method 1:[/i] Nickolas takes the smallest and largest of the heaps.
[i]Method 2:[/i] Nickolas takes the two middle size heaps.
[i]Method 3:[/i] Nickolas chooses between taking the biggest and the smallest heap or the two middle size heaps, but gives one nut to Peter for the right of choice.
Determine the most and the least profitable method for Nickolas.
2018 Iran Team Selection Test, 1
Two circles $\omega_1(O)$ and $\omega_2$ intersect each other at $A,B$ ,and $O$ lies on $\omega_2$. Let $S$ be a point on $AB$ such that $OS\perp AB$. Line $OS$ intersects $\omega_2$ at $P$ (other than $O$). The bisector of $\hat{ASP}$ intersects $\omega_1$ at $L$ ($A$ and $L$ are on the same side of the line $OP$). Let $K$ be a point on $\omega_2$ such that $PS=PK$ ($A$ and $K$ are on the same side of the line $OP$). Prove that $SL=KL$.
[i]Proposed by Ali Zamani [/i]
1957 Moscow Mathematical Olympiad, 364
(a) Prove that the number of all digits in the sequence $1, 2, 3,... , 10^8$ is equal to the number of all zeros in the sequence $1, 2, 3, ... , 10^9$.
(b) Prove that the number of all digits in the sequence $1, 2, 3, ... , 10^k$ is equal to the number of all zeros in the sequence $1, 2, 3, ... , 10^{k+1}$.
2016 HMNT, 1-3
1. If five fair coins are flipped simultaneously, what is the probability that at least three of them show heads?
2. How many perfect squares divide $10^{10}$?
3. Evaluate $\frac{2016!^2}{2015!2017!}$ . Here $n!$ denotes $1 \times 2 \times \ldots \times n$.
1994 Poland - First Round, 6
Inside triangle $ABC$ there is a chosen point $P$. The rays $AP$, $BP$, $CP$ intersect the boundary of the triangle in the points $A'$, $B'$, $C'$ respectively. Set
$u = |AP| : |PA'|, v = |BP| : |PB'|, w = |CP| : |PC'|$.
Express the product $uvw$ in terms of the sum $u + v + w$.
1969 Putnam, A3
Let $P$ be a non-selfintersecting closed polygon with $n$ sides. Let its vertices be $P_1 , P_2 ,\ldots, P_n .$
Let $m$ other points,$Q_1 , Q_2 ,\ldots, Q_m $ , interior to $P$, be given. Let the figure be triangulated.
This means that certain pairs of the $(n+m)$ points $P_1 ,\ldots , Q_m$ are connected by line
segments such that (i) the resulting figure consists exclusively of a set $T$ of triangles, (ii) if two
different triangles in $T$ have more than a vertex in common then they have exactly a side in
common, and (iii) the set of vertices of the triangles in $T$ is precisely the set of the $(n+m)$ points
$P_1 ,\ldots , Q_m.$ How many triangles are in $T$?
2022/2023 Tournament of Towns, P4
Consider an acute non-isosceles triangle. In a single step it is allowed to cut any one of the available triangles into two triangles along its median. Is it possible that after a finite number of cuttings all triangles will be isosceles?
[i]Proposed by E. Bakaev[/i]
2005 Gheorghe Vranceanu, 3
Prove by the method of induction that:
[b]a)[/b] $ a!b! $ divides $ (a+b)! , $ for any natural numbers $ a,b. $
[b]b)[/b] $ p $ divides $ (-1)^{k+1} +\binom{p-1}{k} , $ for any odd primes $ p $ and $ k\in\{ 0,1,\ldots ,p-1\} . $
1994 AMC 12/AHSME, 28
In the $xy$-plane, how many lines whose $x$-intercept is a positive prime number and whose $y$-intercept is a positive integer pass through the point $(4,3)$?
$ \textbf{(A)}\ 0 \qquad\textbf{(B)}\ 1 \qquad\textbf{(C)}\ 2 \qquad\textbf{(D)}\ 3 \qquad\textbf{(E)}\ 4$
2010 Purple Comet Problems, 8
There are exactly two four-digit numbers that are multiples of three where their first digit is double their second digit, their third digit is three more than their fourth digit, and their second digit is $2$ less than their fourth digit. Find the difference of these two numbers.
2023 AMC 12/AHSME, 19
Each of $2023$ balls is placed in on of $3$ bins. Which of the following is closest to the probability that each of the bins will contain an odd number of balls?
$\textbf{(A) } \frac{2}{3} \qquad \textbf{(B) } \frac{3}{10} \qquad \textbf{(C) } \frac{1}{2} \qquad \textbf{(D) } \frac{1}{3} \qquad \textbf{(E) } \frac{1}{4}$
2024 Harvard-MIT Mathematics Tournament, 6
In each cell of a $4 \times 4$ grid, one of the two diagonals is drawn uniformly at random. Compute the probability that the resulting $32$ triangular regions can be colored red and blue so that any two regions sharing an edge have different colors.
2010 Peru Iberoamerican Team Selection Test, P3
Let $C_1$ and $C_2$ be two concentric circles with center $O$, in such a way that the radius of $C_1$ is smaller than the radius of $C_2$. Let $P$ be a point other than $O$ that is in the interior
of $C_1$, and $L$ a line through $P$ and intersects $C_1$ at $A$ and $B$. Ray $\overrightarrow{OB}$ intersects $C_2$ at $C$. Determine the locus that determines the circumcenter of triangle $ABC$ as $L$ varies.
2017 CMIMC Individual Finals, 2
Define
\[f(h,t) =
\begin{cases}
8h & h = t \\
(h-t)^2 & h \neq t.
\end{cases}\]
Cody plays a game with a fair coin, where he begins by flipping it once. At each turn in the game, if he has flipped $h$ heads and $t$ tails and $h + t < 6$, he can choose either to stop and receive $f(h,t)$ dollars or he can flip the coin again; if $h + t = 6$ then the game ends and he receives $f(h,t)$ dollars. If Cody plays to maximize expectancy, how much money, in dollars, can he expect to win from this game?
1991 Tournament Of Towns, (297) 4
Five points are chosen on the sphere, no three of them lying on a great circle (a great circle is the intersection of the sphere with some plane passing through the sphere’s centre). Two great circles not containing any of the chosen points are called equivalent if one of them can be moved to the other without passing through any chosen points.
(a) How many nonequivalent great circles not containing any chosen points can be drawn on the sphere?
(b) Answer the same problem, but with $n$ chosen points.