Difference between revisions of "2011 AIME I Problems/Problem 5"

m
Line 13: Line 13:
  
 
The first digit is predetermined as <math> 3 </math> because we want to avoid strings that rotate to become indistinguishable, so we have one option as a choice for the first digit.  The other two <math> 0 \pmod{3} </math> numbers can be arranged in <math> 2!=2 </math> ways.  The three <math> 1 \pmod{3}</math> and three <math> 2 \pmod{3} </math> can both be arranged in <math>3!=6</math> ways.  Therefore, the desired result is <math> 2(2 \times 6 \times 6)=\boxed{144} </math>.
 
The first digit is predetermined as <math> 3 </math> because we want to avoid strings that rotate to become indistinguishable, so we have one option as a choice for the first digit.  The other two <math> 0 \pmod{3} </math> numbers can be arranged in <math> 2!=2 </math> ways.  The three <math> 1 \pmod{3}</math> and three <math> 2 \pmod{3} </math> can both be arranged in <math>3!=6</math> ways.  Therefore, the desired result is <math> 2(2 \times 6 \times 6)=\boxed{144} </math>.
 
  
 
== Quick Solution ==
 
== Quick Solution ==

Revision as of 09:51, 18 August 2022

Problem

The vertices of a regular nonagon (9-sided polygon) are to be labeled with the digits 1 through 9 in such a way that the sum of the numbers on every three consecutive vertices is a multiple of 3. Two acceptable arrangements are considered to be indistinguishable if one can be obtained from the other by rotating the nonagon in the plane. Find the number of distinguishable acceptable arrangements.


Solution 1

First, we determine which possible combinations of digits $1$ through $9$ will yield sums that are multiples of $3$. It is simplest to do this by looking at each of the digits $\bmod{3}$.

We see that the numbers $1, 4,$ and $7$ are congruent to $1 \pmod{3}$, that the numbers $2, 5,$ and $8$ are congruent to $2 \pmod{3}$, and that the numbers $3, 6,$ and $9$ are congruent to $0 \pmod{3}$. In order for a sum of three of these numbers to be a multiple of three, the mod $3$ sum must be congruent to $0$. Quick inspection reveals that the only possible combinations are $0+0+0, 1+1+1, 2+2+2,$ and $0+1+2$. However, every set of three consecutive vertices must sum to a multiple of three, so using any of $0+0+0, 1+1+1$, or $2+2+2$ would cause an adjacent sum to include exactly 2 digits with the same mod 3 value, and this is an unacceptable arrangement. Thus the only possible groupings are composed of three digits congruent to three different $\bmod{3}$ values.

We see also that there are two possible arrangements for these trios on the nonagon: a digit congruent to $1 \pmod{3}$ can be located counterclockwise of a digit congruent to $0$ and clockwise of a digit congruent to $2 \pmod{3}$, or the reverse can be true.

The nonagon can be rotated, so if we find all possible strings beginning with one particular digit, we have found all indistinguishable arrangements. For each of the two trio arrangements, we find $72$ possible strings:

The first digit is predetermined as $3$ because we want to avoid strings that rotate to become indistinguishable, so we have one option as a choice for the first digit. The other two $0 \pmod{3}$ numbers can be arranged in $2!=2$ ways. The three $1 \pmod{3}$ and three $2 \pmod{3}$ can both be arranged in $3!=6$ ways. Therefore, the desired result is $2(2 \times 6 \times 6)=\boxed{144}$.

Quick Solution

Notice that there are three pairs of congruent integers mod 3 ($(1,4,7),(2,5,8),(3,6,9)$). There are $3!$ ways to order each pair individually and $3!$ ways to order the pairs as a group. Rotations are indistinguishable, so in total there are $6^4/9=\boxed{144}$ ways.

Video solution

https://www.youtube.com/watch?v=vkniYGN45F4

See also

2011 AIME I (ProblemsAnswer KeyResources)
Preceded by
Problem 4
Followed by
Problem 6
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
All AIME Problems and Solutions

The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions. AMC logo.png