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a My Retirement & New Leadership at AoPS
rrusczyk   1296
N 2 minutes ago by LingtheTerrificMouse
I write today to announce my retirement as CEO from Art of Problem Solving. When I founded AoPS 22 years ago, I never imagined that we would reach so many students and families, or that we would find so many channels through which we discover, inspire, and train the great problem solvers of the next generation. I am very proud of all we have accomplished and I’m thankful for the many supporters who provided inspiration and encouragement along the way. I'm particularly grateful to all of the wonderful members of the AoPS Community!

I’m delighted to introduce our new leaders - Ben Kornell and Andrew Sutherland. Ben has extensive experience in education and edtech prior to joining AoPS as my successor as CEO, including starting like I did as a classroom teacher. He has a deep understanding of the value of our work because he’s an AoPS parent! Meanwhile, Andrew and I have common roots as founders of education companies; he launched Quizlet at age 15! His journey from founder to MIT to technology and product leader as our Chief Product Officer traces a pathway many of our students will follow in the years to come.

Thank you again for your support for Art of Problem Solving and we look forward to working with millions more wonderful problem solvers in the years to come.

And special thanks to all of the amazing AoPS team members who have helped build AoPS. We’ve come a long way from here:IMAGE
1296 replies
+3 w
rrusczyk
Monday at 6:37 PM
LingtheTerrificMouse
2 minutes ago
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k a March Highlights and 2025 AoPS Online Class Information
jlacosta   0
Mar 2, 2025
March is the month for State MATHCOUNTS competitions! Kudos to everyone who participated in their local chapter competitions and best of luck to all going to State! Join us on March 11th for a Math Jam devoted to our favorite Chapter competition problems! Are you interested in training for MATHCOUNTS? Be sure to check out our AMC 8/MATHCOUNTS Basics and Advanced courses.

Are you ready to level up with Olympiad training? Registration is open with early bird pricing available for our WOOT programs: MathWOOT (Levels 1 and 2), CodeWOOT, PhysicsWOOT, and ChemWOOT. What is WOOT? WOOT stands for Worldwide Online Olympiad Training and is a 7-month high school math Olympiad preparation and testing program that brings together many of the best students from around the world to learn Olympiad problem solving skills. Classes begin in September!

Do you have plans this summer? There are so many options to fit your schedule and goals whether attending a summer camp or taking online classes, it can be a great break from the routine of the school year. Check out our summer courses at AoPS Online, or if you want a math or language arts class that doesn’t have homework, but is an enriching summer experience, our AoPS Virtual Campus summer camps may be just the ticket! We are expanding our locations for our AoPS Academies across the country with 15 locations so far and new campuses opening in Saratoga CA, Johns Creek GA, and the Upper West Side NY. Check out this page for summer camp information.

Be sure to mark your calendars for the following events:
[list][*]March 5th (Wednesday), 4:30pm PT/7:30pm ET, HCSSiM Math Jam 2025. Amber Verser, Assistant Director of the Hampshire College Summer Studies in Mathematics, will host an information session about HCSSiM, a summer program for high school students.
[*]March 6th (Thursday), 4:00pm PT/7:00pm ET, Free Webinar on Math Competitions from elementary through high school. Join us for an enlightening session that demystifies the world of math competitions and helps you make informed decisions about your contest journey.
[*]March 11th (Tuesday), 4:30pm PT/7:30pm ET, 2025 MATHCOUNTS Chapter Discussion MATH JAM. AoPS instructors will discuss some of their favorite problems from the MATHCOUNTS Chapter Competition. All are welcome!
[*]March 13th (Thursday), 4:00pm PT/7:00pm ET, Free Webinar about Summer Camps at the Virtual Campus. Transform your summer into an unforgettable learning adventure! From elementary through high school, we offer dynamic summer camps featuring topics in mathematics, language arts, and competition preparation - all designed to fit your schedule and ignite your passion for learning.[/list]
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0 replies
jlacosta
Mar 2, 2025
0 replies
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9 MOP Cutoff Via USAJMO
imagien_bad   14
N 2 minutes ago by Amkan2022
Vote here
14 replies
+1 w
imagien_bad
Monday at 10:43 PM
Amkan2022
2 minutes ago
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USACO US Open
neeyakkid23   20
N 8 minutes ago by aidan0626
Howd you all do?

Also will a 766 make bronze -> silver?
20 replies
neeyakkid23
Yesterday at 12:00 PM
aidan0626
8 minutes ago
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[TEST RELEASED] OMMC Year 4
DottedCaculator   162
N 38 minutes ago by Ruegerbyrd
FINAL LEADERBOARD: https://docs.google.com/spreadsheets/u/0/d/12RamVH-gQIPN4wibYZVqkx1F2JQuy5Li_8IJ8TqVEyg/htmlview#gid=409219165

Hello to all creative problem solvers,

Do you want to work on a fun, untimed team math competition with amazing questions by MOPpers and IMO & EGMO medalists? $\phantom{You lost the game.}$
Do you want to have a chance to win thousands in cash and raffle prizes (no matter your skill level)?

Check out the fourth annual iteration of the

Online Monmouth Math Competition!

Online Monmouth Math Competition, or OMMC, is a 501c3 accredited nonprofit organization managed by adults, college students, and high schoolers which aims to give talented high school and middle school students an exciting way to develop their skills in mathematics.

Our website: https://www.ommcofficial.org/
Our Discord (5000+ members): https://tinyurl.com/joinommc
Test portal: https://ommc-test-portal.vercel.app/

This is not a local competition; any student 18 or younger anywhere in the world can attend. We have changed some elements of our contest format, so read carefully and thoroughly. Join our Discord or monitor this thread for updates and test releases.

How hard is it?

We plan to raffle out a TON of prizes over all competitors regardless of performance. So just submit: a few minutes of your time will give you a great chance to win amazing prizes!

How are the problems?

You can check out our past problems and sample problems here:
https://www.ommcofficial.org/sample
https://www.ommcofficial.org/2022-documents
https://www.ommcofficial.org/2023-documents
https://www.ommcofficial.org/ommc-amc

How will the test be held?/How do I sign up?

Solo teams?

Test Policy

Timeline:

Main Round: May 19th - May 26th
Test Portal Released. The Main Round of the contest is held. The Main Round consists of 25 questions that each have a numerical answer. Teams will have the entire time interval to work on the questions. They can submit any time during the interval. Teams are free to edit their submissions before the period ends, even after they submit.

Final Round: May 28th - May 30th
The top placing teams will qualify for this invitational round (7 questions). The final round consists of 7 proof questions. Teams again will have the entire time interval to work on these questions and can submit their proofs any time during this interval. Teams are free to edit their submissions before the period ends, even after they submit.

Conclusion of Competition: Early June
Solutions will be released, winners announced, and prizes sent out to winners.

Scoring:

Prizes:

I have more questions. Whom do I ask?

We hope for your participation, and good luck!

OMMC staff


OMMC’S 2024 EVENTS ARE SPONSORED BY:

[list]
[*]Nontrivial Fellowship
[*]Citadel
[*]SPARC
[*]Jane Street
[*]And counting!
[/list]
162 replies
DottedCaculator
Apr 23, 2024
Ruegerbyrd
38 minutes ago
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USA Canada math camp
Bread10   33
N 40 minutes ago by mathnerd_101
How difficult is it to get into USA Canada math camp? What should be expected from an accepted applicant in terms of the qualifying quiz, essays and other awards or math context?
33 replies
Bread10
Mar 2, 2025
mathnerd_101
40 minutes ago
J
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functions false or true
Math2030   2
N Yesterday at 8:48 PM by SomeonecoolLovesMaths
find all functions f: \mathbb{R} \to \mathbb{R} that satisfy the functional equation:


f(x^2 f(x) + f(y)) = (f(x))^3 + f(y), \quad \forall x, y \in \mathbb{R}
2 replies
Math2030
Yesterday at 3:05 PM
SomeonecoolLovesMaths
Yesterday at 8:48 PM
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3D Geometry Problem
ReticulatedPython   0
Yesterday at 8:12 PM
Three mutually tangent non-degenerate spheres rest on a plane. Let their centers be $A, B$, and $C$. The spheres with centers $A, B$, and $C$ touch the plane at $P, Q$, and $R$, respectively. Prove that $$\frac{1}{AP}+\frac{1}{BQ}+\frac{1}{CR}+PQ+RQ+PR \ge 6\sqrt{2}$$
0 replies
ReticulatedPython
Yesterday at 8:12 PM
0 replies
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Ask mininum
TangenT-maTh-   3
N Yesterday at 4:10 PM by rchokler
Find the mininum value of function$f(x)=\cos^2 x-4\cos x-2\sqrt{3}\sin x$
3 replies
TangenT-maTh-
Mar 13, 2025
rchokler
Yesterday at 4:10 PM
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Problem of set
toanrathay   0
Yesterday at 3:36 PM
A set \( A \subset \mathbb{R} \) is called a $\textit{nice}$ if it satisfies the following conditions:
$i)$ \( A \) contains at least two elements.
$ii)$ For all \( x, y \in A \) with \( x \neq y \), we have \( xy(x+y) \neq 0 \), and among the two numbers \( x+y \) and \( xy \), exactly one is rational.
$iii)$ For all \( x \in A \), \( x^2 \) is irrational.
What is the maximum number of elements that \( A \) can have?


0 replies
toanrathay
Yesterday at 3:36 PM
0 replies
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combinations, probability
Chanome   5
N Yesterday at 3:09 PM by ReticulatedPython
Given a fair \( n \)-sided die with sides \( 1, 2, \dots, n \), consider the following game:

1. Roll the die. If the roll results in \( n \), you win immediately.
2. Otherwise, roll again. However, if the second roll is not greater than the previous roll, you lose.
3. Continue rolling until either:
- You roll \( n \), in which case you win.
- Or, your current roll is not greater than your previous roll, in which case you lose.

For example, when \( n = 4 \):
- Rolls \( 1, 3, 4 \): Win
- Rolls \( 3, 1 \): Lose
- Rolls \( 1, 2, 2 \): Lose
- Rolls \( 2, 4 \): Win

Find a formula to find the probability of winning for any given \( n \).
5 replies
Chanome
Monday at 2:36 PM
ReticulatedPython
Yesterday at 3:09 PM
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a+b+c=3 inequality
JK1603JK   1
N Yesterday at 2:57 PM by giangtruong13
Let a,b,c\ge 0: a+b+c=3 then prove \frac{a+bc}{b^{2}+c^{2}+2}+\frac{b+ca}{c^{2}+a^{2}+2}+\frac{c+ab}{a^{2}+b^{2}+2}\le \frac{3}{2}
When does equality hold?
1 reply
JK1603JK
Yesterday at 2:04 PM
giangtruong13
Yesterday at 2:57 PM
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Inequalities
sqing   31
N Yesterday at 12:55 PM by sqing
Let $ a,b>0 $ and $ \frac{1}{a}+\frac{1}{b}=1. $ Prove that
$$(a^2-a+1)(b^2-b+1) \geq 9$$$$ (a^2-a+b+1)(b^2-b+a+1) \geq 25$$Let $ a,b>0 $ and $ \frac{1}{a}+\frac{1}{b}=\frac{2}{3}. $ Prove that
$$(a+8)(a^2-a+b+2)(b^2-b+5)\geq1331$$$$(a+10)(a^2-a+b+4)(b^2-b+7)\geq2197$$
31 replies
1 viewing
sqing
Mar 10, 2025
sqing
Yesterday at 12:55 PM
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Inequality
MathsII-enjoy   1
N Yesterday at 12:13 PM by sqing
A good inequality problem :coolspeak:
1 reply
MathsII-enjoy
Yesterday at 11:00 AM
sqing
Yesterday at 12:13 PM
J
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an inequality
JK1603JK   1
N Yesterday at 10:18 AM by lbh_qys
Let a,b,c\ge 0: ab+bc+ca>0 then prove \frac{ab+c^2}{a+b}+\frac{bc+a^2}{b+c}+\frac{ca+b^2}{c+a}\ge\frac{2(a^2+b^2+c^2)+ab+bc+ca}{a+b+c}.
1 reply
JK1603JK
Yesterday at 7:56 AM
lbh_qys
Yesterday at 10:18 AM
J
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Phương Trình Hàm
Doanh   0
Yesterday at 8:34 AM
Find f R-->R :


2^(xy)*f(xy-1)+2^(x+y+1)*f(x)*f(y)=4xy-2
0 replies
Doanh
Yesterday at 8:34 AM
0 replies
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J
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Triangle in a square
fortenforge   22
N Mar 23, 2025 by JetFire008
Source: AMC 12A 2013 Problem 1
Square $ ABCD $ has side length $ 10 $. Point $ E $ is on $ \overline{BC} $, and the area of $ \bigtriangleup ABE $ is $ 40 $. What is $ BE $?

$\textbf{(A)} \ 4 \qquad \textbf{(B)} \ 5 \qquad \textbf{(C)} \ 6 \qquad \textbf{(D)} \ 7 \qquad \textbf{(E)} \ 8 \qquad $

IMAGE
22 replies
fortenforge
Feb 6, 2013
JetFire008
Mar 23, 2025
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Triangle in a square
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Reveal topic tags
geometry
AMC
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AMC 10 A
tringel
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Source: AMC 12A 2013 Problem 1
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fortenforge
200 posts
fortenforge
#1 Feb 6, 2013, 5:41 PM • 7 Y
Y by samrocksnature, IdkHowToAddNumbers, icematrix2, megarnie, Adventure10, Mango247, Rounak_iitr
Square $ ABCD $ has side length $ 10 $. Point $ E $ is on $ \overline{BC} $, and the area of $ \bigtriangleup ABE $ is $ 40 $. What is $ BE $?

$\textbf{(A)} \ 4 \qquad \textbf{(B)} \ 5 \qquad \textbf{(C)} \ 6 \qquad \textbf{(D)} \ 7 \qquad \textbf{(E)} \ 8 \qquad $

[asy] pair A,B,C,D,E; A=(0,0); B=(0,50); C=(50,50); D=(50,0); E = (30,50); draw(A--B); draw(B--E); draw(E--C); draw(C--D); draw(D--A); draw(A--E); dot(A); dot(B); dot(C); dot(D); dot(E); label("A",A,SW); label("B",B,NW); label("C",C,NE); label("D",D,SE); label("E",E,N); [/asy]
Z K Y
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DiscipulusBonus
241 posts
DiscipulusBonus
#2 Feb 6, 2013, 5:46 PM • 6 Y
Y by icematrix2, samrocksnature, IdkHowToAddNumbers, Adventure10, Mango247, and 1 other user
This one's pretty easy: we know the area will be 1/2*BE*BA = 40, which is the same as 5BE = 40, which makes BE = 8 (E).
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mcdonalds106_7
1138 posts
mcdonalds106_7
#3 Feb 6, 2013, 5:58 PM • 4 Y
Y by samrocksnature, IdkHowToAddNumbers, icematrix2, Adventure10
Also AMC10A #3.
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Eagle_Student7
27 posts
Eagle_Student7
#5 Nov 3, 2020, 4:41 PM • 6 Y
Y by samrocksnature, IdkHowToAddNumbers, tenebrine, judgefan99, icematrix2, Pengu14
should have been AMC10 #1
Solution
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permute_xy16
90 posts
permute_xy16
#6 Nov 3, 2020, 7:50 PM • 3 Y
Y by samrocksnature, IdkHowToAddNumbers, icematrix2
Eagle_Student7 wrote:
should have been AMC10 #1
Solution

The formula is bh/2 not bh.
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sugar_rush
1341 posts
sugar_rush
#7 May 14, 2021, 9:10 PM • 2 Y
Y by samrocksnature, IdkHowToAddNumbers
solution
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samrocksnature
8791 posts
samrocksnature
#8 May 14, 2021, 9:21 PM • 2 Y
Y by IdkHowToAddNumbers, icematrix2
Unique solution
This post has been edited 1 time. Last edited by samrocksnature, May 14, 2021, 9:22 PM
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mathMagicOPS
836 posts
mathMagicOPS
#9 May 14, 2021, 9:34 PM • 4 Y
Y by samrocksnature, IdkHowToAddNumbers, tigerzhang, icematrix2
samrocksnature wrote:
Unique solution

what did you do to problem 1
aaaaaaaa
why in the world did you bother to use shoelace theorem? DO PICK'S THEOREM!
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AOPqghj
546 posts
AOPqghj
#10 May 14, 2021, 9:37 PM • 4 Y
Y by samrocksnature, IdkHowToAddNumbers, icematrix2, AbhayAttarde01
Troll Solution
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mathMagicOPS
836 posts
mathMagicOPS
#11 May 14, 2021, 10:22 PM • 3 Y
Y by IdkHowToAddNumbers, samrocksnature, icematrix2
AOPqghj wrote:
Troll Solution

did you.....seriously...do....an...uncomplicated answer....

Jokes aside, did you use complementary area or did you just do a random function that worked by coincidence
This post has been edited 1 time. Last edited by mathMagicOPS, May 14, 2021, 10:23 PM
Reason: edit
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AOPqghj
546 posts
AOPqghj
#12 May 14, 2021, 10:35 PM • 3 Y
Y by IdkHowToAddNumbers, samrocksnature, icematrix2
I used the trapezoid formula (10-BE) as one of the bases, and 10 was the other. Then the height was obviously 10
This post has been edited 1 time. Last edited by AOPqghj, May 14, 2021, 10:35 PM
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mathMagicOPS
836 posts
mathMagicOPS
#13 May 14, 2021, 11:05 PM • 3 Y
Y by IdkHowToAddNumbers, samrocksnature, icematrix2
AOPqghj wrote:
I used the trapezoid formula (10-BE) as one of the bases, and 10 was the other. Then the height was obviously 10

cool
also this is too easy for amc12
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judgefan99
2905 posts
judgefan99
#14 May 14, 2021, 11:10 PM • 3 Y
Y by samrocksnature, icematrix2, Mango247
mathMagicOPS wrote:
AOPqghj wrote:
I used the trapezoid formula (10-BE) as one of the bases, and 10 was the other. Then the height was obviously 10

cool
also this is too easy for amc12

It is problem #1 so I see how they put it in.
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aaja3427
1918 posts
aaja3427
#15 May 15, 2021, 12:27 AM • 3 Y
Y by samrocksnature, icematrix2, Mango247
permute_xy16 wrote:
Eagle_Student7 wrote:
should have been AMC10 #1
Solution

The formula is bh/2 not bh.

Well that's funny that the person who said it should be #1 got it wrong
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Alex-131
5306 posts
Alex-131
#16 May 15, 2021, 1:36 AM • 2 Y
Y by samrocksnature, icematrix2
This is too easy
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DaBobWhoLikeMath1234
397 posts
DaBobWhoLikeMath1234
#17 May 15, 2021, 2:17 AM • 2 Y
Y by samrocksnature, icematrix2
Am I missing out on something with people bumping old threads for AMC problems?
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Ladka13
2467 posts
Ladka13
#18 May 15, 2021, 3:06 AM • 6 Y
Y by smartguy888, samrocksnature, icematrix2, Mango247, Mango247, Mango247
DaBobWhoLikeMath1234 wrote:
Am I missing out on something with people bumping old threads for AMC problems?

no it's mainly sugar rush and rft trolling no one knows what's really going now
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Spakian
304 posts
Spakian
#19 May 15, 2021, 2:15 PM • 5 Y
Y by samrocksnature, icematrix2, Mango247, Mango247, Mango247
fortenforge wrote:
Square $ ABCD $ has side length $ 10 $. Point $ E $ is on $ \overline{BC} $, and the area of $ \bigtriangleup ABE $ is $ 40 $. What is $ BE $?

$\textbf{(A)} \ 4 \qquad \textbf{(B)} \ 5 \qquad \textbf{(C)} \ 6 \qquad \textbf{(D)} \ 7 \qquad \textbf{(E)} \ 8 \qquad $

[asy] pair A,B,C,D,E; A=(0,0); B=(0,50); C=(50,50); D=(50,0); E = (30,50); draw(A--B); draw(B--E); draw(E--C); draw(C--D); draw(D--A); draw(A--E); dot(A); dot(B); dot(C); dot(D); dot(E); label("A",A,SW); label("B",B,NW); label("C",C,NE); label("D",D,SE); label("E",E,N); [/asy]
Well this one is pretty simple

Solution
This post has been edited 1 time. Last edited by Spakian, May 15, 2021, 2:16 PM
Reason: adding some stuff
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fidgetboss_4000
3472 posts
fidgetboss_4000
#20 May 15, 2021, 5:11 PM • 5 Y
Y by AOPqghj, samrocksnature, icematrix2, centslordm, megarnie
sugar_rush wrote:
solution

nice necroposting
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Pyramix
419 posts
Pyramix
#21 Jul 18, 2022, 11:46 AM • 2 Y
Y by Mango247, Mango247
Solution
This post has been edited 1 time. Last edited by Pyramix, Jul 18, 2022, 11:47 AM
Reason: Small typo
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ihatemath123
3440 posts
ihatemath123
#22 Jul 18, 2022, 12:31 PM
Y by
Imagine if this year's AMCs all start with geometry instead of computation
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MathophileSAR1
14 posts
MathophileSAR1
#23 Aug 15, 2023, 9:16 AM
Y by
MathophileSAR1 wrote:
Square $ ABCD $ has side length $ 10 $. Point $ E $ is on $ \overline{BC} $, and the area of $ \bigtriangleup ABE $ is $ 40 $. What is $ BE $?

$\textbf{(A)} \ 4 \qquad \textbf{(B)} \ 5 \qquad \textbf{(C)} \ 6 \qquad \textbf{(D)} \ 7 \qquad \textbf{(E)} \ 8 \qquad $

[asy] pair A,B,C,D,E; A=(0,0); B=(0,50); C=(50,50); D=(50,0); E = (30,50); draw(A--B); draw(B--E); draw(E--C); draw(C--D); draw(D--A); draw(A--E); dot(A); dot(B); dot(C); dot(D); dot(E); label("A",A,SW); label("B",B,NW); label("C",C,NE); label("D",D,SE); label("E",E,N); [/asy]


Area of square is 1/2 * base * height
1*x*10=80
x=8
BE = 8
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JetFire008
115 posts
JetFire008
#24 Mar 23, 2025, 1:52 PM
Y by
Area of a triangle is $\frac{1}{2} \cdot bh$ where $b$ is the base of the triangle and $h$ is the height.
In $\triangle ABE$,
$$40=\frac{1}{2}*BE*10$$$$\implies \frac{1}{2}BE=\frac{40}{10}$$$$\implies BE=4 \cdot 2=8$$Hence the answer is $\boxed{(E)8}$.
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