Difference between revisions of "2022 AMC 12B Problems/Problem 17"
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<li>There are <math>\binom41=4</math> ways to choose the row with three <math>0</math>s. After that, there are <math>\binom43=4</math> ways to choose the positions of the three <math>0</math>s.</li><p> | <li>There are <math>\binom41=4</math> ways to choose the row with three <math>0</math>s. After that, there are <math>\binom43=4</math> ways to choose the positions of the three <math>0</math>s.</li><p> | ||
<li>There are <math>\binom31=3</math> ways to choose the column with three <math>0</math>s. After that, there are <math>\binom32=3</math> ways to choose the positions of the two additional <math>0</math>s.</li><p> | <li>There are <math>\binom31=3</math> ways to choose the column with three <math>0</math>s. After that, there are <math>\binom32=3</math> ways to choose the positions of the two additional <math>0</math>s.</li><p> | ||
− | <li>There are <math>\binom41=4</math> ways to choose the position of the last <math>0:</math> It is the intersection of one <math>0</math> in Step 1 and one <math>0</math> in Step 2.</li><p> | + | <li>There are <math>\binom41=4</math> ways to choose the position of the last <math>0:</math> It is the intersection of the column of one <math>0</math> in Step 1 and the row of one <math>0</math> in Step 2.</li><p> |
</ol> | </ol> | ||
Together, the answer is <math>4\cdot4\cdot3\cdot3\cdot4=\boxed{\textbf{(D) }576}.</math> | Together, the answer is <math>4\cdot4\cdot3\cdot3\cdot4=\boxed{\textbf{(D) }576}.</math> |
Revision as of 11:55, 10 January 2023
Contents
Problem
How many arrays whose entries are s and s are there such that the row sums (the sum of the entries in each row) are and in some order, and the column sums (the sum of the entries in each column) are also and in some order? For example, the array satisfies the condition.
Solution 1 (Independence and One-to-One Correspondence)
Note that the configurations of row sums and column sums are independent of each other. In addition, the arrays and the sum configuration have one-to-one correspondence. Therefore, the answer is simply
~bad_at_mathcounts
Solution 2 (Linear Transformation and Permutation)
In this problem, we call a matrix that satisfies all constraints given in the problem a feasible matrix.
First, we observe that if a matrix is feasible, and we swap two rows or two columns to get a new matrix, then this new matrix is still feasible.
Therefore, any feasible matrix can be obtained through a sequence of such swapping operations from a feasible matrix where for all , the sum of entries in row is and the sum of entries in column is , hereafter called as a benchmark matrix.
Second, we observe that there is a unique benchmark matrix, as shown below: With above observations, we now count the number of feasible matrixes. We construct a feasible matrix in the following steps.
Step 1: We make a permutation of rows of the benchmark matrix.
The number of ways is .
Step 2: We make a permutation of columns of the matrix obtained after Step 1.
The number of ways is .
Following from the rule of product, the total number of feasible matrixes is .
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
Solution 3 (Multiplication Principle)
Of the sixteen entries in one such array, there are six s and ten s. The rows and the columns each have zero, one, two, and three s, in some order. Once we decide the positions of the s, we form one such array.
We perform the following steps:
- There are ways to choose the row with three s. After that, there are ways to choose the positions of the three s.
- There are ways to choose the column with three s. After that, there are ways to choose the positions of the two additional s.
- There are ways to choose the position of the last It is the intersection of the column of one in Step 1 and the row of one in Step 2.
Together, the answer is
~MRENTHUSIASM
Solution 4 (Multiplication Principle)
Since exactly row sum is and exactly column sum is , there is a unique entry in the array such that it, and every other entry in the same row or column, is a Since there are total entries in the array, there are ways to choose the entry with only s in its row and column.
WLOG, let that entry be in the top-left corner of the square. Note that there is already entry numbered in each unfilled row, and entry numbered in each unfilled column. Since exactly row sum is and exactly column sum is , there is a unique entry in the array of the empty squares such that it, and every other entry in the same row or column in the array is a Using a process similar to what we used in the first paragraph, we can see that there are ways to choose the entry with only in its row and column (in the array).
WLOG, let that entry be in the bottom right corner of the square. Then, the remaining empty squares are the center squares. Of these, one of the columns of the empty array will have s and the other column will have That happens if and only if exactly of the remaining squares is filled with a , and there are ways to choose that square. Filling that square with a and the other squares with s completes the grid.
All in all, there are ways to complete the grid.
~pianoboy
~mathboy100 (minor fix)
Video Solution
~Steven Chen (Professor Chen Education Palace, www.professorchenedu.com)
See Also
2022 AMC 12B (Problems • Answer Key • Resources) | |
Preceded by Problem 16 |
Followed by Problem 18 |
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 |
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.