2021 AMC 10 A Fall

Complete problem set with solutions and individual problem pages

Problem 24 Hard

Each of the 12 edges of a cube is labeled 0 or 1 . Two labelings are considered different even if one can be obtained from the other by a sequence of one or more rotations and/or reflections. For how many such labelings is the sum of the labels on the edges of each of the 6 faces of the cube equal to 2 ?(2021 AMC Fall 10A, Question #24)

  • A.

    8

  • B.

    10

  • C.

    12

  • D.

    16

  • E.

    20

Answer:E

Solution 1:

Note that for each face of this cube, two edges are labeled 0 and two edges are labeled 1 . For all twelve edges of this cube, we conclude that six edges are labeled 0 , and six edges are labeled 1 .

We apply casework to face A B C D. Recall that there are \left(\begin{array}{l}4 \\ 2\end{array}\right)=6 ways to label its edges:

1. Opposite edges have the same label. There are 2 ways to label the edges of A B C D. We will consider one of the ways, then multiply the count by 2 . Without the loss of generality, we assume that \overline{A B}, \overline{B C}, \overline{C D}, \overline{D A} are labeled 1,0,1,0, respectively: We apply casework to the label of \overline{A E}, as shown below.

We have 2 \cdot 2=4 such labelings for this case.

2. Opposite edges have different labels. There are 4 ways to label the edges of A B C D. We will consider one of the ways, then multiply the count by 4 . Without the loss of generality, we assume that \overline{A B}, \overline{B C}, \overline{C D}, \overline{D A} are labeled 1,1,0,0, respectively: We apply casework to the labels of \overline{A E} and \overline{B F}, as shown below.

We have 4 \cdot 4=16 such labelings for this case. Therefore, we have 4+16= (E) 20 such labelings in total.

Solution 2:

Since we want the sum of the edges of each face to be 2 , we need there to be two 1 s and two 0s on each face. Through experimentation, we find that either 2,4 , or all of them have 1 \text{~s} adjacent to 1 s and 0 s adjacent to 0 on each face. WLOG, let the first face (counterclockwise) be 0,0,1,1. In this case we are trying to have all of them be adjacent to each other. First face: 0,0,1,1. Second face: 2 choices: 1,0,0,1 or 0,0,1,1. After that, it is basically forced and everything will fall in to place. Since we assumed WLOG, we need to multiply 2 by 4 to get a total of 8 different arrangements.

Secondly, 4 of the faces have all of them adjacent and 2 of the faces do not: WLOG counting counterclockwise, we have 0,0,1,1. Then, we choose the other face next to it. There are two cases, which are 0,1,0,1 and 1,0,1,0. Therefore, this subcase has 4 different arrangements. Then, we can choose the face at front to be 1,0,1,0. This has 4 cases. The sides can either be 0,1,1,0 or 1,1,0,0. Therefore, we have another 8 cases. Summing these up, we have 8+4+8=20. Therefore, our answer is (\mathbf{E}) 20. Remark It is very easy to get disorganized when counting, so when doing this problem, make sure to draw a diagram of the cube. Labeling is a bit harder, since we often confuse one side with another. Try doing the problem by labeling sides on the lines (literally letting the lines pass through your 0 \text{~s} and 1 \text{~s}.) I found that to be very helpful when solving this problem.

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