Difference between revisions of "2021 Fall AMC 12A Problems/Problem 18"
MRENTHUSIASM (talk | contribs) (→Solution 1 (Multinomial Coefficients): Thanks Jesshuang for correcting my error. I believe it is much better now! :D Credit given to you as well.) |
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For simplicity purposes, we assume that the balls and the bins are both distinguishable. | For simplicity purposes, we assume that the balls and the bins are both distinguishable. | ||
| − | + | Recall that there are <math>5^{20}</math> ways to distribute <math>20</math> balls into <math>5</math> bins. We have | |
<cmath>p=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{5^{20}} \text{ and } q=\frac{\binom{20}{4,4,4,4,4}}{5^{20}}.</cmath> Therefore, the answer is <cmath>\frac pq=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{\binom{20}{4,4,4,4,4}}=\frac{5\cdot4\cdot\frac{20!}{3!\cdot5!\cdot4!\cdot4!\cdot4!}}{\frac{20!}{4!\cdot4!\cdot4!\cdot4!\cdot4!}}=\frac{5\cdot4\cdot(4!\cdot4!\cdot4!\cdot4!\cdot4!)}{3!\cdot5!\cdot4!\cdot4!\cdot4!}=\frac{5\cdot4\cdot4}{5}=\boxed{\textbf{(E)}\ 16}.</cmath> | <cmath>p=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{5^{20}} \text{ and } q=\frac{\binom{20}{4,4,4,4,4}}{5^{20}}.</cmath> Therefore, the answer is <cmath>\frac pq=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{\binom{20}{4,4,4,4,4}}=\frac{5\cdot4\cdot\frac{20!}{3!\cdot5!\cdot4!\cdot4!\cdot4!}}{\frac{20!}{4!\cdot4!\cdot4!\cdot4!\cdot4!}}=\frac{5\cdot4\cdot(4!\cdot4!\cdot4!\cdot4!\cdot4!)}{3!\cdot5!\cdot4!\cdot4!\cdot4!}=\frac{5\cdot4\cdot4}{5}=\boxed{\textbf{(E)}\ 16}.</cmath> | ||
~MRENTHUSIASM ~Jesshuang | ~MRENTHUSIASM ~Jesshuang | ||
Revision as of 03:23, 29 July 2022
- The following problem is from both the 2021 Fall AMC 10A #21 and 2021 Fall AMC 12A #18, so both problems redirect to this page.
Contents
Problem
Each of the 
balls is tossed independently and at random into one of the 
bins. Let 
be the probability that some bin ends up with 
balls, another with balls, and the other three with 
balls each. Let 
be the probability that every bin ends up with balls. What is 
?
Solution 1 (Multinomial Coefficients)
For simplicity purposes, we assume that the balls and the bins are both distinguishable.
Recall that there are 
ways to distribute balls into bins. We have
![\[p=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{5^{20}} \text{ and } q=\frac{\binom{20}{4,4,4,4,4}}{5^{20}}.\]](http://latex.artofproblemsolving.com/4/9/b/49baa13f5c2a0fa437bbc691e710b34e503ec776.png)
Therefore, the answer is ![\[\frac pq=\frac{5\cdot4\cdot\binom{20}{3,5,4,4,4}}{\binom{20}{4,4,4,4,4}}=\frac{5\cdot4\cdot\frac{20!}{3!\cdot5!\cdot4!\cdot4!\cdot4!}}{\frac{20!}{4!\cdot4!\cdot4!\cdot4!\cdot4!}}=\frac{5\cdot4\cdot(4!\cdot4!\cdot4!\cdot4!\cdot4!)}{3!\cdot5!\cdot4!\cdot4!\cdot4!}=\frac{5\cdot4\cdot4}{5}=\boxed{\textbf{(E)}\ 16}.\]](http://latex.artofproblemsolving.com/6/3/e/63e01288d49ce3120d56cb7ab9bddc3991b1ab88.png)
~MRENTHUSIASM ~Jesshuang
Solution 2 (Binomial Coefficients)
For simplicity purposes, the balls are indistinguishable and the bins are distinguishable.
Let be equal to 
where 
is the total number of combinations and 
is the number of cases where every bin ends up with balls.
Notice that we can take 
ball from one bin and place it in another bin so that some bin ends up with balls, another with balls, and the other three with balls each. We have ![\[x \cdot \frac{\binom{5}{1} \cdot \binom{4}{1} \cdot \binom{4}{1}}{5} = 16x.\]](http://latex.artofproblemsolving.com/1/b/b/1bbc445df7353bdca54dd513621672367c5dbb1c.png)
Therefore, we get 
from which 
~Hoju
Solution 3 (Binomial Coefficients)
Since both of the boxes will have boxes with balls in them, we can leave those out. There are 
ways to choose where to place the and the . After that, there are 
ways to put the and balls being put into the boxes. For the 
case, after we canceled the 
out, we have 
ways to put the balls inside the boxes. Therefore, we have 
which is equal to 
.
~Arcticturn
Solution 4 (Set Theory)
Construct the set 
consisting of all possible 
bin configurations, and construct set 
consisting of all possible 
configurations. If we let 
be the total number of configurations possible, it's clear we want to solve for 
.
Consider drawing an edge between an element in and an element in if it is possible to reach one configuration from the other by moving a single ball (note this process is reversible). Let us consider the total number of edges drawn.
From any element in , we may take one of the balls in the 5-bin and move it to the 3-bin to get a valid element in . This implies the number of edges is 
.
On the other hand for any element in , we may choose one of the balls and move it to one of the other bins to get a valid element in . This implies the number of edges is 
.
Since they must be equal, then 
.
Video Solution by Mathematical Dexterity
https://www.youtube.com/watch?v=Lu6eSvY6RHE
Video Solution by Punxsutawney Phil
https://YouTube.com/watch?v=bvd2VjMxiZ4
Video Solution by TheBeautyofMath
~IceMatrix
See Also
| 2021 Fall AMC 12A (Problems • Answer Key • Resources) | |
| Preceded by Problem 17 |
Followed by Problem 19 |
| 1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 • 16 • 17 • 18 • 19 • 20 • 21 • 22 • 23 • 24 • 25 | |
| All AMC 12 Problems and Solutions | |
| 2021 Fall AMC 10A (Problems • Answer Key • Resources) | ||
| Preceded by Problem 20 |
Followed by Problem 22 | |
| 1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 • 16 • 17 • 18 • 19 • 20 • 21 • 22 • 23 • 24 • 25 | ||
| All AMC 10 Problems and Solutions | ||
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions. 
