This article gives specific information, namely, group cohomology, about a particular group, namely: Klein four-group.
View group cohomology of particular groups | View other specific information about Klein four-group
Classifying space and corresponding chain complex
The classifying space of the Klein four-group is the product space , where is infinite-dimensional real projective space.
A chain complex that can be used to compute the homology of this space is given as follows:
- The chain group is a sum of copies of , indexed by ordered pairs where . In other words, the chain group is:
- The boundary map is (up to some sign issues that need to be fixed!) given by adding up the following maps:
- The map is multiplication by zero if is odd and is multiplication by two if is even.
- The map is multiplication by zero if is odd and multiplication by two if is even.
Homology groups
Over the integers
The homology groups with coefficients in the ring of integers are given as follows:
The first few homomology groups are given below:
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These homology groups can be obtained from the knowledge of the homology groups of cyclic group:Z2 (see group cohomology of cyclic group:Z2) using the Kunneth formula for group homology. They can also be computed explicitly using the chain complex description above.
Here is the computation using the Kunneth formula for group homology: [SHOW MORE]
We set and in the formula.
| Case on |
Value of where |
Value of where |
Value of |
Value of |
Value of (sum of preceding two columns
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in case |
No such cases |
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0 |
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| odd positive |
for the case and the case . 0 in all other cases, because for to be odd, at least one of and must be even, forcing the corresponding homology group to be 0. |
when are both odd positive, 0 otherwise |
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because that's the number of ordered pairs of positive odd numbers that add up to . |
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| even positive |
for the cases both odd positive, 0 otherwise. |
zero in all cases |
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0 |
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Over an abelian group
The homology groups with coefficients in an abelian group (which may be equipped with additional structure as a module over a ring ) are given as follows:
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Cohomology groups and cohomology ring
Groups over the integers
The cohomology groups with coefficients in the integers are given as below:
Second cohomology groups and extensions
Schur multiplier
The Schur multiplier, defined as the second cohomology group for trivial group action and also as the second homology group , is isomorphic to cyclic group:Z2.
See also the projective representation theory of Klein four-group.
Second cohomology groups for trivial group action
| Group acted upon |
Order |
Second part of GAP ID |
Second cohomology group for trivial group action |
Extensions |
Cohomology information
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| cyclic group:Z2 |
2 |
1 |
elementary abelian group:E8 |
elementary abelian group:E8, direct product of Z4 and Z2, quaternion group and dihedral group:D8 |
second cohomology group for trivial group action of V4 on Z2
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| cyclic group:Z4 |
4 |
1 |
elementary abelian group:E8 |
direct product of Z4 and V4, direct product of Z8 and Z2, central product of D8 and Z4, M16 |
second cohomology group for trivial group action of V4 on Z4
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| Klein four-group |
4 |
2 |
elementary abelian group:E64 |
elementary abelian group:E16, direct product of Z4 and Z4, direct product of Z4 and V4, direct product of D8 and Z2, direct product of Q8 and Z2, SmallGroup(16,3), nontrivial semidirect product of Z4 and Z4 |
second cohomology group for trivial group action of V4 on V4
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| cyclic group:Z8 |
8 |
1 |
elementary abelian group:E8 |
direct product of Z8 and V4, direct product of Z16 and Z2, central product of D8 and Z8, M32 |
second cohomology group for trivial group action of V4 on Z8
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| direct product of Z4 and Z2 |
8 |
2 |
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| elementary abelian group:E8 |
8 |
5 |
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