In group theory, a branch of mathematics, the Murnaghan–Nakayama rule, named after Francis Murnaghan and Tadashi Nakayama, is a combinatorial method to compute irreducible character values of a symmetric group.[1] There are several generalizations of this rule beyond the representation theory of symmetric groups, but they are not covered here.
The irreducible characters of a group are of interest to mathematicians because they concisely summarize important information about the group, such as the dimensions of the vector spaces in which the elements of the group can be represented by linear transformations that “mix” all the dimensions. For many groups, calculating irreducible character values is very difficult; the existence of simple formulas is the exception rather than the rule.
The Murnaghan–Nakayama rule is a combinatorial rule for computing symmetric group character values χ using a particular kind of Young tableaux.Here λ and ρ are both integer partitions of some integer n, the order of the symmetric group under consideration. The partition λ specifies the irreducible character, while the partition ρ specifies the conjugacy class on whose group elements the character is evaluated to produce the character value. The partitions are represented as weakly decreasing tuples; for example, two of the partitions of 8 are (5,2,1) and (3,3,1,1).
There are two versions of the Murnaghan-Nakayama rule, one non-recursive and one recursive.
Theorem:
λ | |
\chi | |
\rho |
=\sumT(-1)ht(T)
The height, ht(T), is the sum of the heights of the border strips in T. The height of a border strip is one less than the number of rows it touches.
It follows from this theorem that the character values of a symmetric group are integers.
For some combinations of λ and ρ, there are no border-strip tableaux. In this case, there are no terms in the sum and therefore the character value is zero.
Consider the calculation of one of the character values for the symmetric group of order 8, when λ is the partition (5,2,1) and ρ is the partition (3,3,1,1). The shape partition λ specifies that the tableau must have three rows, the first having 5 boxes, the second having 2 boxes, and the third having 1 box. The type partition ρ specifies that the tableau must be filled with three 1's, three 2's, one 3, and one 4. There are six such border-strip tableaux:
If we call these
T1
T2
T3
T4
T5
T6
\begin{align} ht(T1)=0+1+0+0=1\\ ht(T2)=1+0+0+0=1\\ ht(T3)=1+0+0+0=1\\ ht(T4)=2+0+0+0=2\\ ht(T5)=2+0+0+0=2\\ ht(T6)=2+1+0+0=3 \end{align}
and the character value is therefore
(5,2,1) | |
\chi | |
(3,3,1,1) |
=(-1)1+(-1)1+(-1)1+(-1)2+(-1)2+(-1)3=-1-1-1+1+1-1=-2
Theorem:
λ | |
\chi | |
\rho |
=
\sum | |
\xi\inBS(λ,\rho1) |
(-1)ht(\xi)
λ\backslash\xi | |
\chi | |
\rho\backslash\rho1 |
λ\backslash\xi
\rho\backslash\rho1
Note that the right-hand side is a sum of characters for symmetric groups that have smaller order than that of the symmetric group we started with on the left-hand side. In other words, this version of the Murnaghan-Nakayama rule expresses a character of the symmetric group Sn in terms of the characters of smaller symmetric groups Sk with k<n.
Applying this rule recursively will result in a tree of character value evaluations for smaller and smaller partitions. Each branch stops for one of two reasons: Either there are no border strips of the required length within the reduced shape, so the sum on the right is zero, or a border strip occupying the entire reduced shape is removed, leaving a Young diagram with no boxes. At this point we are evaluating χ when both λ and ρ are the empty partition, and the rule requires that this terminal case be defined as having character
\chi | |
=1
This recursive version of the Murnaghan-Nakayama rule is especially efficient for computer calculation when one computes character tables for Sk for increasing values of k and stores all of the previously computed character tables.
We will again compute the character value with λ=(5,2,1) and ρ=(3,3,1,1).
To begin, consider the Young diagram with shape λ. Since the first part of ρ is 3, look for border strips that consist of 3 boxes. There are two possibilities:
In the first diagram, the border strip has height 0, and removing it produces the reduced shape (2,2,1). In the second diagram, the border strip has height 1, and removing it produces the reduced shape (5). Therefore, one has
(5,2,1) | |
\chi | |
(3,3,1,1) |
(2,2,1) | |
=\chi | |
(3,1,1) |
(5) | |
-\chi | |
(3,1,1) |
expressing a character value of S8 in terms of two character values of S5.
Applying the rule again to both terms, one finds
(2,2,1) | |
\chi | |
(3,1,1) |
(2) | |
=-\chi | |
(1,1) |
and
(5) | |
\chi | |
(3,1,1) |
(2) | |
=\chi | |
(1,1) |
reducing to a character value of S2.
Applying again, one finds
(2) | |
\chi | |
(1,1) |
(1) | |
=\chi | |
(1) |
reducing to the only character value of S1.
A final application produces the terminal character
\chi | |
=1
(1) | |
\chi | |
(1) |
=\chi | |
=1
Working backwards from this known character, the result is
(5,2,1) | |
\chi | |
(3,3,1,1) |
=-2