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EspañolEVEN AND ODD PERMUTATIONS
(Redirected from Odd permutation)
In mathematics, the permutations of a finite set (i.e. the bijective mappings from the set to itself) fall into two classes of equal size: the 'even permutations' and the 'odd permutations'. An even permutation is one that can be produced by an even number of exchanges of two elements (these exchanges are called transpositions). An odd permutation is one that can be produced by an odd number of transpositions. It is a remarkable and non-trivial fact that every permutation is either even or odd, but not both.
The 'sign' or 'signature ' of a permutation, with the notation 'sgn(σ)', is defined as +1 if the permutation is even and -1 if it is odd. Another notation for it is the Levi-Civita symbol, which is also defined for non-bijective maps from the finite set to itself, with the value zero.
Consider the permutation σ of the set {1,2,3,4,5} which turns the initial arrangement 12345 into 34521.
It can be obtained by three transpositions: first exchange the places of 1 and 3, then exchange 2 and 4, and finally exchange 1 and 5. This shows that the given permutation σ is odd. Using the notation explained in the permutation article, we can write
There are (infinitely) many other ways of writing σ as a composition of transpositions, for instance
:,
but it is impossible to write it as a product of an even number of transpositions.
The identity permutation is an even permutation since it can be written as (1 2)(1 2).
The following rules follow directly from the corresponding rules about addition of integers:
★ the composition of two even permutations is even
★ the composition of two odd permutations is even
★ the composition of an odd and an even permutation is odd
From these it follows that
★ the inverse of every even permutation is even
★ the inverse of every odd permutation is odd
Considering the symmetric group ''Sn'' of all permutations of the set {1,...,''n''}, we can conclude that the map
:
that assigns to every permutation its signature
is a group homomorphism.
Furthermore, we see that the even permutations form a subgroup of ''Sn''. This is the alternating group on ''n'' letters, denoted by ''An''. It is the kernel of the homomorphism sgn. The odd permutations cannot form a subgroup, since the composite of two odd permutations is even, but they form a coset of ''An'' (in ''Sn'').
If ''n''>1, then there are just as many even permutations in ''Sn'' as there odd ones; consequently, ''An'' contains ''n''!/2 permutations. [The reason: if σ is even, then (12)σ is odd; if σ is odd, then (12)σ is even; the two maps are inverse to each other.]
A cycle is even if and only if its length is odd. This follows from formulas like
:(''a'' ''b'' ''c'' ''d'' ''e'') = (''a'' ''b'') (''b'' ''c'') (''c'' ''d'') (''d'' ''e'')
In practice, in order to determine whether a given permutation is even or odd, one writes the permutation as a product of disjoint cycles. The permutation is odd if and only if this factorization contains an odd number of even-length cycles.
Every permutation of odd order must be even; the converse is not true in general.
Every permutation can be produced by a sequence of transpositions: with the first transposition we put the first element of the permutation in its proper place, the second transposition puts the second element right etc. Given a permutation σ, we can write it as a product of transpositions in many different ways. We want to show that either all of those decompositions have an even number of transpositions, or all have an odd number.
Suppose we have two such decompositions:
:σ = T'1 T'2 ... T'k'
:σ = Q'1 Q'2 .... Q'm'.
We want to show that k' and m' are either both even, or both odd.
Every transposition can be written as a product of an odd number of transpositions of adjacent elements, e.g.
:(2 5) = (2 3)(3 4)(4 5)(4 3)(3 2)
If we decompose in this way each of the transpositions T'1...T'k' and Q'1..Q'm' above
into an odd number of adjacent transpositions, we get the new decompositions:
:σ = T1 T2 ... Tk
:σ = Q1 Q2 .... Qm
where all of the T1...Tk Q1...Qk are adjacent, k-k' is even, and m-m' is even.
We define an ''inversion pair'' for σ to be a pair of indices (''i'',''j'') such that ''i''<''j'' and σ(''i'')>σ(''j''). Let ''N''(σ) be the number of inversion pairs of σ.
Now compose the inverse of T1 with σ. T1 is the transposition (''i'', ''i''+1) of two adjacent numbers, so, compared to σ, the new permutation σ(''i'', ''i''+1) will have exactly one inversion pair less (in case (''i'',''i''+1) was an inversion pair for σ) or more (in case (''i'', ''i''+1) was not an inversion pair). Then apply the inverses of T2, T3, ... Tk in the same way, "unraveling" the permutation σ. At the end we get the identity permutation, whose ''N'' is zero. This means that the original N(σ) less k is even.
We can do the same thing with the other decomposition, Q1... Qm, and it will turn out that the original ''N''(σ) less m is even.
Therefore, m - k is even, as we wanted to show.
We can now define the transposition σ to be even if ''N''(σ) is an even number, and odd if ''N''(σ) is odd. This coincides with the definition given earlier but it is now clear that every permutation is either even or odd.
An alternative proof uses the polynomial
:
In mathematics, the permutations of a finite set (i.e. the bijective mappings from the set to itself) fall into two classes of equal size: the 'even permutations' and the 'odd permutations'. An even permutation is one that can be produced by an even number of exchanges of two elements (these exchanges are called transpositions). An odd permutation is one that can be produced by an odd number of transpositions. It is a remarkable and non-trivial fact that every permutation is either even or odd, but not both.
The 'sign' or 'signature ' of a permutation, with the notation 'sgn(σ)', is defined as +1 if the permutation is even and -1 if it is odd. Another notation for it is the Levi-Civita symbol, which is also defined for non-bijective maps from the finite set to itself, with the value zero.
| Contents |
| Example |
| Properties |
| Proofs that every permutation is either even or odd |
| See also |
Example
Consider the permutation σ of the set {1,2,3,4,5} which turns the initial arrangement 12345 into 34521.
It can be obtained by three transpositions: first exchange the places of 1 and 3, then exchange 2 and 4, and finally exchange 1 and 5. This shows that the given permutation σ is odd. Using the notation explained in the permutation article, we can write
There are (infinitely) many other ways of writing σ as a composition of transpositions, for instance
:,
but it is impossible to write it as a product of an even number of transpositions.
Properties
The identity permutation is an even permutation since it can be written as (1 2)(1 2).
The following rules follow directly from the corresponding rules about addition of integers:
★ the composition of two even permutations is even
★ the composition of two odd permutations is even
★ the composition of an odd and an even permutation is odd
From these it follows that
★ the inverse of every even permutation is even
★ the inverse of every odd permutation is odd
Considering the symmetric group ''Sn'' of all permutations of the set {1,...,''n''}, we can conclude that the map
:
that assigns to every permutation its signature
is a group homomorphism.
Furthermore, we see that the even permutations form a subgroup of ''Sn''. This is the alternating group on ''n'' letters, denoted by ''An''. It is the kernel of the homomorphism sgn. The odd permutations cannot form a subgroup, since the composite of two odd permutations is even, but they form a coset of ''An'' (in ''Sn'').
If ''n''>1, then there are just as many even permutations in ''Sn'' as there odd ones; consequently, ''An'' contains ''n''!/2 permutations. [The reason: if σ is even, then (12)σ is odd; if σ is odd, then (12)σ is even; the two maps are inverse to each other.]
A cycle is even if and only if its length is odd. This follows from formulas like
:(''a'' ''b'' ''c'' ''d'' ''e'') = (''a'' ''b'') (''b'' ''c'') (''c'' ''d'') (''d'' ''e'')
In practice, in order to determine whether a given permutation is even or odd, one writes the permutation as a product of disjoint cycles. The permutation is odd if and only if this factorization contains an odd number of even-length cycles.
Every permutation of odd order must be even; the converse is not true in general.
Proofs that every permutation is either even or odd
Every permutation can be produced by a sequence of transpositions: with the first transposition we put the first element of the permutation in its proper place, the second transposition puts the second element right etc. Given a permutation σ, we can write it as a product of transpositions in many different ways. We want to show that either all of those decompositions have an even number of transpositions, or all have an odd number.
Suppose we have two such decompositions:
:σ = T'1 T'2 ... T'k'
:σ = Q'1 Q'2 .... Q'm'.
We want to show that k' and m' are either both even, or both odd.
Every transposition can be written as a product of an odd number of transpositions of adjacent elements, e.g.
:(2 5) = (2 3)(3 4)(4 5)(4 3)(3 2)
If we decompose in this way each of the transpositions T'1...T'k' and Q'1..Q'm' above
into an odd number of adjacent transpositions, we get the new decompositions:
:σ = T1 T2 ... Tk
:σ = Q1 Q2 .... Qm
where all of the T1...Tk Q1...Qk are adjacent, k-k' is even, and m-m' is even.
We define an ''inversion pair'' for σ to be a pair of indices (''i'',''j'') such that ''i''<''j'' and σ(''i'')>σ(''j''). Let ''N''(σ) be the number of inversion pairs of σ.
Now compose the inverse of T1 with σ. T1 is the transposition (''i'', ''i''+1) of two adjacent numbers, so, compared to σ, the new permutation σ(''i'', ''i''+1) will have exactly one inversion pair less (in case (''i'',''i''+1) was an inversion pair for σ) or more (in case (''i'', ''i''+1) was not an inversion pair). Then apply the inverses of T2, T3, ... Tk in the same way, "unraveling" the permutation σ. At the end we get the identity permutation, whose ''N'' is zero. This means that the original N(σ) less k is even.
We can do the same thing with the other decomposition, Q1... Qm, and it will turn out that the original ''N''(σ) less m is even.
Therefore, m - k is even, as we wanted to show.
We can now define the transposition σ to be even if ''N''(σ) is an even number, and odd if ''N''(σ) is odd. This coincides with the definition given earlier but it is now clear that every permutation is either even or odd.
An alternative proof uses the polynomial
:
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