In mathematics, specifically in homotopy theory, a **classifying space** *BG* of a topological group *G* is the quotient of a weakly contractible space *EG* (i.e. a topological space all of whose homotopy groups are trivial) by a proper free action of *G*. It has the property that any *G* principal bundle over a paracompact manifold is isomorphic to a pullback of the principal bundle *EG* → *BG*.^{[1]} As explained later, this means that classifying spaces represent a set-valued functor on the homotopy category of topological spaces. The term classifying space can also be used for spaces that represent a set-valued functor on the category of topological spaces, such as Sierpiński space. This notion is generalized by the notion of classifying topos. However, the rest of this article discusses the more commonly used notion of classifying space up to homotopy.

For a discrete group *G*, *BG* is, roughly speaking, a path-connected topological space *X* such that the fundamental group of *X* is isomorphic to *G* and the higher homotopy groups of *X* are trivial, that is, *BG* is an Eilenberg–MacLane space, or a *K(G,1)*.

## Motivation

An example of a classifying space for the infinite cyclic group *G* is the circle as *X*. When *G* is a discrete group, another way to specify the condition on *X* is that the universal cover *Y* of *X* is contractible. In that case the projection map

becomes a fiber bundle with structure group *G*, in fact a principal bundle for *G*. The interest in the classifying space concept really arises from the fact that in this case *Y* has a universal property with respect to principal *G*-bundles, in the homotopy category. This is actually more basic than the condition that the higher homotopy groups vanish: the fundamental idea is, given *G*, to find such a contractible space *Y* on which *G* acts *freely*. (The weak equivalence idea of homotopy theory relates the two versions.) In the case of the circle example, what is being said is that we remark that an infinite cyclic group *C* acts freely on the real line *R*, which is contractible. Taking *X* as the quotient space circle, we can regard the projection π from *R* = *Y* to *X* as a helix in geometrical terms, undergoing projection from three dimensions to the plane. What is being claimed is that π has a universal property amongst principal *C*-bundles; that any principal *C*-bundle in a definite way 'comes from' π.

## Formalism

A more formal statement takes into account that *G* may be a topological group (not simply a *discrete group*), and that group actions of *G* are taken to be continuous; in the absence of continuous actions the classifying space concept can be dealt with, in homotopy terms, via the Eilenberg–MacLane space construction. In homotopy theory the definition of a topological space *BG*, the **classifying space** for principal *G*-bundles, is given, together with the space *EG* which is the **total space** of the universal bundle over *BG*. That is, what is provided is in fact a continuous mapping

Assume that the homotopy category of CW complexes is the underlying category, from now on. The *classifying* property required of *BG* in fact relates to π. We must be able to say that given any principal *G*-bundle

over a space *Z*, there is a **classifying map** φ from *Z* to *BG*, such that γ is the pullback of π along φ. In less abstract terms, the construction of γ by 'twisting' should be reducible via φ to the twisting already expressed by the construction of π.

For this to be a useful concept, there evidently must be some reason to believe such spaces *BG* exist. The early work on classifying spaces introduced constructions (for example, the bar construction), that gave concrete descriptions of *BG* as a simplicial complex for an arbitrary discrete group. Such constructions make evident the connection with group cohomology.

Specifically, *EG* be the weak simplicial complex whose *n-* simplices are the ordered (*n*+1)-tuples of elements of *G*. Such an *n-*simplex attaches to the (n−1) simplices in the same way a standard simplex attaches to its faces, where means this vertex is deleted. The complex EG is contractible. The group *G* acts on *EG* by left multiplication: , and only the identity *e* takes any simplex to itself. Thus the action of *G* on *EG* is a covering space action and the quotient map *EG* → *EG*/*G* is the universal cover of the orbit space *BG* = *EG*/*G*, and *BG* is a K(*G*,1).^{[2]}

In abstract terms (which are not those originally used around 1950 when the idea was first introduced) this is a question of whether a certain functor is representable: the contravariant functor from the homotopy category to the category of sets, defined by

*h*(*Z*) = set of isomorphism classes of principal*G*-bundles on*Z.*

The abstract conditions being known for this (Brown's representability theorem) ensure that the result, as an existence theorem, is affirmative and not too difficult.

## Examples

- The circle
*S*^{1}is a classifying space for the infinite cyclic group The total space is - The
*n*-torus is a classifying space for , the free abelian group of rank*n*. The total space is - The wedge of
*n*circles is a classifying space for the free group of rank*n*. - A closed (that is compact and without boundary) connected surface
*S*of genus at least 1 is a classifying space for its fundamental group - A closed (that is compact and without boundary) connected hyperbolic manifold
*M*is a classifying space for its fundamental group . - A finite locally connected CAT(0) cubical complex is a classifying space of its fundamental group.
- The infinite-dimensional projective space is a classifying space for the cyclic group The total space is (this is the direct limit of spheres equivalently, Hilbert space with the origin removed; it is contractible).
- The space is the classifying space for the cyclic group Here, is understood to be a certain subset of the infinite dimensional Hilbert space with the origin removed; the cyclic group is considered to act on it by multiplication with roots of unity.
- The unordered configuration space is the classifying space of the Artin braid group ,
^{[3]}and the ordered configuration space is the classifying space for the pure Artin braid group - The (unordered) configuration space is a classifying space for the symmetric group
^{[4]} - The infinite dimensional complex projective space is the classifying space
*BS*^{1}for the circle*S*^{1}thought of as a compact topological group. - The Grassmannian of
*n*-planes in is the classifying space of the orthogonal group O(*n*). The total space is , the Stiefel manifold of*n*-dimensional orthonormal frames in

## Applications

This still leaves the question of doing effective calculations with *BG*; for example, the theory of characteristic classes is essentially the same as computing the cohomology groups of *BG*, at least within the restrictive terms of homotopy theory, for interesting groups *G* such as Lie groups (H. Cartan's theorem).^{[clarification needed]} As was shown by the Bott periodicity theorem, the homotopy groups of *BG* are also of fundamental interest.

An example of a classifying space is that when *G* is cyclic of order two; then *BG* is real projective space of infinite dimension, corresponding to the observation that *EG* can be taken as the contractible space resulting from removing the origin in an infinite-dimensional Hilbert space, with *G* acting via *v* going to −*v*, and allowing for homotopy equivalence in choosing *BG*. This example shows that classifying spaces may be complicated.

In relation with differential geometry (Chern–Weil theory) and the theory of Grassmannians, a much more hands-on approach to the theory is possible for cases such as the unitary groups that are of greatest interest. The construction of the Thom complex *MG* showed that the spaces *BG* were also implicated in cobordism theory, so that they assumed a central place in geometric considerations coming out of algebraic topology. Since group cohomology can (in many cases) be defined by the use of classifying spaces, they can also be seen as foundational in much homological algebra.

Generalizations include those for classifying foliations, and the classifying toposes for logical theories of the predicate calculus in intuitionistic logic that take the place of a 'space of models'.

## See also

- Classifying space for O(n),
*B*O(*n*) - Classifying space for U(n),
*B*U(*n*) - Classifying stack
- Borel's theorem
- Equivariant cohomology

## Notes

**^**Stasheff, James D. (1971), "*H*-spaces and classifying spaces: foundations and recent developments",*Algebraic topology (Proc. Sympos. Pure Math., Vol. XXII, Univ. Wisconsin, Madison, Wis., 1970)*, American Mathematical Society, pp. 247–272 Theorem 2, doi:10.1090/pspum/022/0321079, ISBN 978-0-8218-9308-1, MR 0321079**^**Hatcher, Allen (2002).*Algebraic topology*. Cambridge University Press. p. 89. ISBN 0-521-79160-X. OCLC 45420394.**^**Arnold, Vladimir I. (1969). "The cohomology ring of the colored braid group".*Vladimir I. Arnold — Collected Works*. Springer. pp. 183–6. doi:10.1007/978-3-642-31031-7_18. ISBN 978-3-642-31030-0.**^**"classifying space in nLab".*ncatlab.org*. Retrieved 2017-08-22.

## References

- May, J.P. (1999).
*A Concise Course in Algebraic Topology*. University of Chicago Press. ISBN 978-0-226-51183-2. - Classifying space at the
*n*Lab - "Classifying space",
*Encyclopedia of Mathematics*, EMS Press, 2001 [1994]