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[[File:Mobius frame bundle.png|thumb|The orthonormal frame bundle <math>\mathcal{F_O}(E)</math> of the [[Möbius strip]] <math>E</math> is a non-trivial principal <math>\mathbb{Z}/2\mathbb{Z}</math>-bundle over the circle.]]
[[File:Mobius frame bundle.png|thumb|The orthonormal frame bundle <math>\mathcal{F_O}(E)</math> of the [[Möbius strip]] <math>E</math> is a non-trivial principal <math>\mathbb{Z}/2\mathbb{Z}</math>-bundle over the circle.]]
In [[mathematics]], a '''frame bundle''' is a [[principal fiber bundle]] F(''E'') associated with any [[vector bundle]] ''E''. The fiber of F(''E'') over a point ''x'' is the set of all [[ordered basis|ordered bases]], or ''frames'', for ''E''<sub>''x''</sub>. The [[general linear group]] acts naturally on F(''E'') via a [[change of basis]], giving the frame bundle the structure of a principal GL(''k'', '''R''')-bundle (where ''k'' is the rank of ''E'').
In [[mathematics]], a '''frame bundle''' is a [[principal fiber bundle]] F(E) associated with any [[vector bundle]] ''E''. The fiber of F(E) over a point ''x'' is the set of all [[ordered basis|ordered bases]], or ''frames'', for ''<></>. The [[general linear group]] acts naturally on F(E) via a [[change of basis]], giving the frame bundle the structure of a principal ''k,R''-bundle (where ''k'' is the rank of ''E'').


The frame bundle of a [[smooth manifold]] is the one associated with its [[tangent bundle]]. For this reason it is sometimes called the '''tangent frame bundle'''.
The frame bundle of a [[smooth manifold]] is the one associated with its [[tangent bundle]]. For this reason it is sometimes called the '''tangent frame bundle'''.


==Definition and construction==
==Definition and construction==
Let ''E'' ''X'' be a real [[vector bundle]] of rank ''k'' over a [[topological space]] ''X''. A '''frame''' at a point ''x'' ''X'' is an [[ordered basis]] for the vector space ''E''<sub>''x''</sub>. Equivalently, a frame can be viewed as a [[linear isomorphism]]
Let ''E X'' be a real [[vector bundle]] of rank ''k'' over a [[topological space]] ''X''. A '''frame''' at a point ''x X'' is an [[ordered basis]] for the vector space ''<></>. Equivalently, a frame can be viewed as a [[linear isomorphism]]
:<math>p : \mathbf{R}^k \to E_x.</math>
:<math>p : \mathbf{R}^k \to E_x.</math>
The set of all frames at ''x'', denoted ''F''<sub>''x''</sub>, has a natural [[Group action (mathematics)|right action]] by the [[general linear group]] GL(''k'', '''R''') of invertible ''k'' × ''k'' matrices: a group element ''g'' GL(''k'', '''R''') acts on the frame ''p'' via [[Function composition|composition]] to give a new frame
The set of all frames at ''x'', denoted ''<></>, has a natural [[Group action (mathematics)|right action]] by the [[general linear group]] GL(k,R'' of invertible ''k k'' matrices: a group element ''g GL(k,R'' acts on the frame ''p'' via [[Function composition|composition]] to give a new frame
:<math>p\circ g:\mathbf{R}^k\to E_x.</math>
:<math>p\circ g:\mathbf{R}^k\to E_x.</math>
This action of GL(''k'', '''R''') on ''F''<sub>''x''</sub> is both [[free action|free]] and [[transitive action|transitive]] (this follows from the standard linear algebra result that there is a unique invertible linear transformation sending one basis onto another). As a topological space, ''F''<sub>''x''</sub> is [[homeomorphic]] to GL(''k'', '''R''') although it lacks a group structure, since there is no "preferred frame". The space ''F''<sub>''x''</sub> is said to be a GL(''k'', '''R''')-[[torsor]].
This action of GL(k,R'' on ''<></> is both [[free action|free]] and [[transitive action|transitive]] (this follows from the standard linear algebra result that there is a unique invertible linear transformation sending one basis onto another). As a topological space, ''<></> is [[homeomorphic]] to GL(k,R'' although it lacks a group structure, since there is no "preferred frame". The space ''<></> is said to be a GL(k,R''-[[torsor]].


The '''frame bundle''' of ''E'', denoted by F(''E'') or F<sub>GL</sub>(''E''), is the [[disjoint union]] of all the ''F''<sub>''x''</sub>:
The '''frame bundle''' of ''E'', denoted by F(E) or <>GL</>, is the [[disjoint union]] of all the ''<></>:
:<math>\mathrm F(E) = \coprod_{x\in X}F_x.</math>
:<math>\mathrm F(E) = \coprod_{x\in X}F_x.</math>
Each point in F(''E'') is a pair (''x'', ''p'') where ''x'' is a point in ''X'' and ''p'' is a frame at ''x''. There is a natural projection π : F(''E'') → ''X'' which sends (''x'', ''p'') to ''x''. The group GL(''k'', '''R''') acts on F(''E'') on the right as above. This action is clearly free and the [[orbit (group theory)|orbit]]s are just the fibers of π.
Each point in F(E) is a pair (''x'', ''p'') where ''x'' is a point in ''X'' and ''p'' is a frame at ''x''. There is a natural projection : F(E) X which sends '''','''' to ''x''. The group ''k,R'' acts on F(E) on the right as above. This action is clearly free and the [[orbit (group theory)|orbit]]s are just the fibers of .


=== Principal bundle structure ===
The frame bundle F(''E'') can be given a natural topology and bundle structure determined by that of ''E''. Let (''U''<sub>''i''</sub>, φ<sub>''i''</sub>) be a [[local trivialization]] of ''E''. Then for each ''x'' ∈ ''U''<sub>''i''</sub> one has a linear isomorphism φ<sub>''i'',''x''</sub> : ''E''<sub>''x''</sub> '''R'''<sup>''k''</sup>. This data determines a bijection
The frame bundle F(E) can be given a natural topology and bundle structure determined by that of ''E''. Let '''''<>,<>'''' be a [[local trivialization]] of ''E''. Then for each ''x'' ∈ ''U''<sub>''i''</sub> one has a linear isomorphism '''''<>: R<>''''. This data determines a bijection
:<math>\psi_i : \pi^{-1}(U_i)\to U_i\times \mathrm{GL}(k, \mathbf R)</math>
:<math>\psi_i : \pi^{-1}(U_i)\to U_i\times \mathrm{GL}(k, \R)</math>
given by
given by
:<math>\psi_i(x,p) = (x,\varphi_{i,x}\circ p).</math>
:<math>\psi_i(x,p) = (x,\varphi_{i,x}\circ p).</math>
With these bijections, each π<sup>−1</sup>(''U''<sub>''i''</sub>) can be given the topology of ''U''<sub>''i''</sub> × GL(''k'', '''R'''). The topology on F(''E'') is the [[final topology]] coinduced by the inclusion maps π<sup>−1</sup>(''U''<sub>''i''</sub>) F(''E'').
With these bijections, each <></>''''' can be given the topology of ''<> GL(k,R''. The topology on F(E) is the [[final topology]] coinduced by the inclusion maps '''''<>) F(''''.


With all of the above data the frame bundle F(''E'') becomes a [[principal fiber bundle]] over ''X'' with [[structure group]] GL(''k'', '''R''') and local trivializations ({''U''<sub>''i''</sub>}, {ψ<sub>''i''</sub>}). One can check that the [[Transition map|transition functions]] of F(''E'') are the same as those of ''E''.
With all of the above data the frame bundle F(E) becomes a [[principal fiber bundle]] over ''X'' with [[structure group]] ''k,R'' and local trivializations '''''<>},{<>''''. One can check that the [[Transition map|transition functions]] of F(E) are the same as those of ''E''.


The above all works in the smooth category as well: if ''E'' is a smooth vector bundle over a [[smooth manifold]] ''M'' then the frame bundle of ''E'' can be given the structure of a smooth principal bundle over ''M''.
The above all works in the smooth category as well: if ''E'' is a smooth vector bundle over a [[smooth manifold]] ''M'' then the frame bundle of ''E'' can be given the structure of a smooth principal bundle over ''M''.


==Associated vector bundles==
==Associated vector bundles==
A vector bundle ''E'' and its frame bundle F(''E'') are [[associated bundle]]s. Each one determines the other. The frame bundle F(''E'') can be constructed from ''E'' as above, or more abstractly using the [[fiber bundle construction theorem]]. With the latter method, F(''E'') is the fiber bundle with same base, structure group, trivializing neighborhoods, and transition functions as ''E'' but with abstract fiber GL(''k'', '''R'''), where the action of structure group GL(''k'', '''R''') on the fiber GL(''k'', '''R''') is that of left multiplication.
A vector bundle ''E'' and its frame bundle F(E) are [[associated bundle]]s. Each one determines the other. The frame bundle F(E) can be constructed from ''E'' as above, or more abstractly using the [[fiber bundle construction theorem]]. With the latter method, F(E) is the fiber bundle with same base, structure group, trivializing neighborhoods, and transition functions as ''E'' but with abstract fiber GL(k,R'', where the action of structure group GL(k,R'' on the fiber GL(k,R'' is that of left multiplication.


Given any [[linear representation]] ρ : GL(''k'', '''R''') GL(''V'','''F''') there is a vector bundle
Given any [[linear representation]] : GL(k,R) GL(V,F'' there is a vector bundle
:<math>\mathrm F(E)\times_{\rho}V</math>
:<math>\mathrm F(E)\times_{\rho}V</math>
associated with F(''E'') which is given by product F(''E'') × ''V'' modulo the [[equivalence relation]] (''pg'', ''v'') ~ (''p'', ρ(''g'')''v'') for all ''g'' in GL(''k'', '''R'''). Denote the equivalence classes by [''p'', ''v''].
associated with F(E) which is given by product F(E) V modulo the [[equivalence relation]] '''',v) (p, (g''''' for all ''g'' in GL(k,R''. Denote the equivalence classes by '''',''''.


The vector bundle ''E'' is [[naturally isomorphic]] to the bundle F(''E'') ×<sub>ρ</sub> '''R'''<sup>''k''</sup> where ρ is the fundamental representation of GL(''k'', '''R''') on '''R'''<sup>''k''</sup>. The isomorphism is given by
The vector bundle ''E'' is [[naturally isomorphic]] to the bundle F(E) </> '''''<>'''' is the fundamental representation of GL(k,R'' on '''''<>k</>. The isomorphism is given by
:<math>[p,v]\mapsto p(v)</math>
:<math>[p,v]\mapsto p(v)</math>
where ''v'' is a vector in '''R'''<sup>''k''</sup> and ''p'' : '''R'''<sup>''k''</sup>''E''<sub>''x''</sub> is a frame at ''x''. One can easily check that this map is [[well-defined]].
where ''v'' is a vector in '''''<>k</>'''' '''''<>k</>''''' is a frame at ''x''. One can easily check that this map is [[well-defined]].


Any vector bundle associated with ''E'' can be given by the above construction. For example, the [[dual bundle]] of ''E'' is given by F(''E'') ×<sub>ρ*</sub> ('''R'''<sup>''k''</sup>)* where ρ* is the [[dual representation|dual]] of the fundamental representation. [[Tensor bundle]]s of ''E'' can be constructed in a similar manner.
Any vector bundle associated with ''E'' can be given by the above construction. For example, the [[dual bundle]] of ''E'' is given by F(E) * (Rk</> where * is the [[dual representation|dual]] of the fundamental representation. [[Tensor bundle]]s of ''E'' can be constructed in a similar manner.


==Tangent frame bundle==
==Tangent frame bundle==
The '''tangent frame bundle''' (or simply the '''frame bundle''') of a [[smooth manifold]] ''M'' is the frame bundle associated with the [[tangent bundle]] of ''M''. The frame bundle of ''M'' is often denoted F''M'' or GL(''M'') rather than F(''TM''). In physics, it is sometimes denoted ''LM''. If ''M'' is ''n''-dimensional then the tangent bundle has rank ''n'', so the frame bundle of ''M'' is a principal GL(''n'', '''R''') bundle over ''M''.
The '''tangent frame bundle''' (or simply the '''frame bundle''') of a [[smooth manifold]] ''M'' is the frame bundle associated with the [[tangent bundle]] of ''M''. The frame bundle of ''M'' is often denoted '''' or GL(M'' rather than F(TM''. In physics, it is sometimes denoted ''LM''. If ''M'' is ''n''-dimensional then the tangent bundle has rank ''n'', so the frame bundle of ''M'' is a principal GL(n,R'' bundle over ''M''.


===Smooth frames===
===Smooth frames===
[[Section (fiber bundle)|Local section]]s of the frame bundle of ''M'' are called [[smooth frame]]s on ''M''. The cross-section theorem for principal bundles states that the frame bundle is trivial over any open set in ''U'' in ''M'' which admits a smooth frame. Given a smooth frame ''s'' : ''U'' F''U'', the trivialization ψ : F''U'' ''U'' × GL(''n'', '''R''') is given by
[[Section (fiber bundle)|Local section]]s of the frame bundle of ''M'' are called [[smooth frame]]s on ''M''. The cross-section theorem for principal bundles states that the frame bundle is trivial over any open set in ''U'' in ''M'' which admits a smooth frame. Given a smooth frame ''s: U '', the trivialization '' U GL(n,R'' is given by
:<math>\psi(p) = (x, s(x)^{-1}\circ p)</math>
:<math>\psi(p) = (x, s(x)^{-1}\circ p)</math>
where ''p'' is a frame at ''x''. It follows that a manifold is [[Parallelizable manifold|parallelizable]] if and only if the frame bundle of ''M'' admits a global section.
where ''p'' is a frame at ''x''. It follows that a manifold is [[Parallelizable manifold|parallelizable]] if and only if the frame bundle of ''M'' admits a global section.


Since the tangent bundle of ''M'' is trivializable over coordinate neighborhoods of ''M'' so is the frame bundle. In fact, given any coordinate neighborhood ''U'' with coordinates (''x''<sup>1</sup>,,''x''<sup>''n''</sup>) the coordinate vector fields
Since the tangent bundle of ''M'' is trivializable over coordinate neighborhoods of ''M'' so is the frame bundle. In fact, given any coordinate neighborhood ''U'' with coordinates ''<>1,,xn</> the coordinate vector fields
:<math>\left(\frac{\partial}{\partial x^1},\ldots,\frac{\partial}{\partial x^n}\right)</math>
:<math>\left(\frac{\partial}{\partial x^1},\ldots,\frac{\partial}{\partial x^n}\right)</math>
define a smooth frame on ''U''. One of the advantages of working with frame bundles is that they allow one to work with frames other than coordinates frames; one can choose a frame adapted to the problem at hand. This is sometimes called the [[method of moving frames]].
define a smooth frame on ''U''. One of the advantages of working with frame bundles is that they allow one to work with frames other than coordinates frames; one can choose a frame adapted to the problem at hand. This is sometimes called the [[method of moving frames]].


===Solder form===
===Solder form===
The frame bundle of a manifold ''M'' is a special type of principal bundle in the sense that its geometry is fundamentally tied to the geometry of ''M''. This relationship can be expressed by means of a [[vector-valued differential form|vector-valued 1-form]] on F''M'' called the '''[[solder form]]''' (also known as the '''fundamental''' or [[tautological one-form|'''tautological''' 1-form]]). Let ''x'' be a point of the manifold ''M'' and ''p'' a frame at ''x'', so that
The frame bundle of a manifold ''M'' is a special type of principal bundle in the sense that its geometry is fundamentally tied to the geometry of ''M''. This relationship can be expressed by means of a [[vector-valued differential form|vector-valued 1-form]] on '''' called the '''[[solder form]]''' (also known as the '''fundamental''' or [[tautological one-form|'''tautological''' 1-form]]). Let ''x'' be a point of the manifold ''M'' and ''p'' a frame at ''x'', so that
:<math>p : \mathbf{R}^n\to T_xM</math>
:<math>p : \mathbf{R}^n\to T_xM</math>
is a linear isomorphism of '''R'''<sup>''n''</sup> with the tangent space of ''M'' at ''x''. The solder form of F''M'' is the '''R'''<sup>''n''</sup>-valued 1-form θ defined by
is a linear isomorphism of '''''<>n</> with the tangent space of ''M'' at ''x''. The solder form of '''' is the '''''<>n</>-valued 1-form defined by
:<math>\theta_p(\xi) = p^{-1}\mathrm d\pi(\xi)</math>
:<math>\theta_p(\xi) = p^{-1}\mathrm d\pi(\xi)</math>
where ξ is a tangent vector to F''M'' at the point (''x'',''p''), and ''p''<sup>−1</sup> : T<sub>''x''</sub>''M''&nbsp;→&nbsp;'''R'''<sup>''n''</sup> is the inverse of the frame map, and is the [[pushforward (differential)|differential]] of the projection map π : F''M'' ''M''. The solder form is horizontal in the sense that it vanishes on vectors tangent to the fibers of π and [[equivariant|right equivariant]] in the sense that
where ξ is a tangent vector to '''' at the point ''x,p'', and ''<> MR<>'' is the inverse of the frame map, and is the [[pushforward (differential)|differential]] of the projection map '' M''. The solder form is horizontal in the sense that it vanishes on vectors tangent to the fibers of and [[equivariant|right equivariant]] in the sense that
:<math>R_g^*\theta = g^{-1}\theta</math>
:<math>R_g^*\theta = g^{-1}\theta</math>
where ''R''<sub>''g''</sub> is right translation by ''g'' GL(''n'', '''R'''). A form with these properties is called a basic or [[tensorial form]] on F''M''. Such forms are in 1-1 correspondence with ''TM''-valued 1-forms on ''M'' which are, in turn, in 1-1 correspondence with smooth [[bundle map]]s ''TM'' ''TM'' over ''M''. Viewed in this light θ is just the [[identity function|identity map]] on ''TM''.
where ''<></> is right translation by ''g GL(n,R''. A form with these properties is called a basic or [[tensorial form]] on ''''. Such forms are in 1-1 correspondence with ''TM''-valued 1-forms on ''M'' which are, in turn, in 1-1 correspondence with smooth [[bundle map]]s ''TM TM'' over ''M''. Viewed in this light is just the [[identity function|identity map]] on ''TM''.


As a naming convention, the term "tautological one-form" is usually reserved for the case where the form has a canonical definition, as it does here, while "solder form" is more appropriate for those cases where the form is not canonically defined. This convention is not being observed here.
As a naming convention, the term "tautological one-form" is usually reserved for the case where the form has a canonical definition, as it does here, while "solder form" is more appropriate for those cases where the form is not canonically defined. This convention is not being observed here.


==Orthonormal frame bundle==
==Orthonormal frame bundle==
If a vector bundle ''E'' is equipped with a [[Riemannian bundle metric]] then each fiber ''E''<sub>''x''</sub> is not only a vector space but an [[inner product space]]. It is then possible to talk about the set of all [[orthonormal frame]]s for ''E''<sub>''x''</sub>. An orthonormal frame for ''E''<sub>''x''</sub> is an ordered [[orthonormal basis]] for ''E''<sub>''x''</sub>, or, equivalently, a [[linear isometry]]
If a vector bundle ''E'' is equipped with a [[Riemannian bundle metric]] then each fiber ''<></> is not only a vector space but an [[inner product space]]. It is then possible to talk about the set of all [[orthonormal frame]]s for ''<></>. An orthonormal frame for ''<></> is an ordered [[orthonormal basis]] for ''<></>, or, equivalently, a [[linear isometry]]
:<math>p:\mathbf{R}^k \to E_x</math>
:<math>p:\{R}^k \to E_x</math>
where '''R'''<sup>''k''</sup> is equipped with the standard [[Euclidean metric]]. The [[orthogonal group]] O(''k'') acts freely and transitively on the set of all orthonormal frames via right composition. In other words, the set of all orthonormal frames is a right O(''k'')-[[torsor]].
where ''<>k</> is equipped with the standard [[Euclidean metric]]. The [[orthogonal group]] ''k'' acts freely and transitively on the set of all orthonormal frames via right composition. In other words, the set of all orthonormal frames is a right ''k''-[[torsor]].


The '''orthonormal frame bundle''' of ''E'', denoted F<sub>O</sub>(''E''), is the set of all orthonormal frames at each point ''x'' in the base space ''X''. It can be constructed by a method entirely analogous to that of the ordinary frame bundle. The orthonormal frame bundle of a rank ''k'' Riemannian vector bundle ''E'' ''X'' is a principal O(''k'')-bundle over ''X''. Again, the construction works just as well in the smooth category.
The '''orthonormal frame bundle''' of ''E'', denoted <>O</>'', is the set of all orthonormal frames at each point ''x'' in the base space ''X''. It can be constructed by a method entirely analogous to that of the ordinary frame bundle. The orthonormal frame bundle of a rank ''k'' Riemannian vector bundle ''E X'' is a principal ''k''-bundle over ''X''. Again, the construction works just as well in the smooth category.


If the vector bundle ''E'' is [[orientability|orientable]] then one can define the '''oriented orthonormal frame bundle''' of ''E'', denoted F<sub>SO</sub>(''E''), as the principal SO(''k'')-bundle of all positively oriented orthonormal frames.
If the vector bundle ''E'' is [[orientability|orientable]] then one can define the '''oriented orthonormal frame bundle''' of ''E'', denoted <>SO</>'', as the principal ''k''-bundle of all positively oriented orthonormal frames.


If ''M'' is an ''n''-dimensional [[Riemannian manifold]], then the orthonormal frame bundle of ''M'', denoted F<sub>O</sub>''M'' or O(''M''), is the orthonormal frame bundle associated with the tangent bundle of ''M'' (which is equipped with a Riemannian metric by definition). If ''M'' is orientable, then one also has the oriented orthonormal frame bundle F<sub>SO</sub>''M''.
If ''M'' is an ''n''-dimensional [[Riemannian manifold]], then the orthonormal frame bundle of ''M'', denoted <>O</>'' or ''M'', is the orthonormal frame bundle associated with the tangent bundle of ''M'' (which is equipped with a Riemannian metric by definition). If ''M'' is orientable, then one also has the oriented orthonormal frame bundle <>SO</>''.


Given a Riemannian vector bundle ''E'', the orthonormal frame bundle is a principal O(''k'')-[[subbundle]] of the general linear frame bundle. In other words, the inclusion map
Given a Riemannian vector bundle ''E'', the orthonormal frame bundle is a principal ''k''-[[subbundle]] of the general linear frame bundle. In other words, the inclusion map
:<math>i:{\mathrm F}_{\mathrm O}(E) \to {\mathrm F}_{\mathrm{GL}}(E)</math>
:<math>i:{\mathrm F}_{\mathrm O}(E) \to {\mathrm F}_{\mathrm{GL}}(E)</math>
is principal [[bundle map]]. One says that F<sub>O</sub>(''E'') is a [[reduction of the structure group]] of F<sub>GL</sub>(''E'') from GL(''k'', '''R''') to O(''k'').
is principal [[bundle map]]. One says that <>O</>'' is a [[reduction of the structure group]] of <>GL</>'' from GL(,R'' to ''k''.


==''G''-structures==
==''G''-structures==
{{see also|G-structure}}
{{see also|G-structure}}


If a smooth manifold ''M'' comes with additional structure it is often natural to consider a subbundle of the full frame bundle of ''M'' which is adapted to the given structure. For example, if ''M'' is a Riemannian manifold we saw above that it is natural to consider the orthonormal frame bundle of ''M''. The orthonormal frame bundle is just a reduction of the structure group of F<sub>GL</sub>(''M'') to the orthogonal group O(''n'').
If a smooth manifold ''M'' comes with additional structure it is often natural to consider a subbundle of the full frame bundle of ''M'' which is adapted to the given structure. For example, if ''M'' is a Riemannian manifold we saw above that it is natural to consider the orthonormal frame bundle of ''M''. The orthonormal frame bundle is just a reduction of the structure group of <>GL</>'' to the orthogonal group ''n''.


In general, if ''M'' is a smooth ''n''-manifold and ''G'' is a [[Lie subgroup]] of GL(''n'', '''R''') we define a '''[[G-structure|''G''-structure]]''' on ''M'' to be a [[reduction of the structure group]] of F<sub>GL</sub>(''M'') to ''G''. Explicitly, this is a principal ''G''-bundle F<sub>''G''</sub>(''M'') over ''M'' together with a ''G''-equivariant [[bundle map]]
In general, if ''M'' is a smooth ''n''-manifold and ''G'' is a [[Lie subgroup]] of GL(n,R'' we define a '''[[G-structure|''G''-structure]]''' on ''M'' to be a [[reduction of the structure group]] of <>GL</>'' to ''G''. Explicitly, this is a principal ''G''-bundle ''G</>'' over ''M'' together with a ''G''-equivariant [[bundle map]]
:<math>{\mathrm F}_{G}(M) \to {\mathrm F}_{\mathrm{GL}}(M)</math>
:<math>{\mathrm F}_{G}(M) \to {\mathrm F}_{\mathrm{GL}}(M)</math>
over ''M''.
over ''M''.


In this language, a Riemannian metric on ''M'' gives rise to an O(''n'')-structure on ''M''. The following are some other examples.
In this language, a Riemannian metric on ''M'' gives rise to an ''n''-structure on ''M''. The following are some other examples.


*Every [[orientability|oriented manifold]] has an oriented frame bundle which is just a GL<sup>+</sup>(''n'', '''R''')-structure on ''M''.
*Every [[orientability|oriented manifold]] has an oriented frame bundle which is just a <>+(n,R''-structure on ''M''.
*A [[volume form]] on ''M'' determines a SL(''n'', '''R''')-structure on ''M''.
*A [[volume form]] on ''M'' determines a SL(n,R''-structure on ''M''.
*A 2''n''-dimensional [[symplectic manifold]] has a natural Sp(2''n'', '''R''')-structure.
*A ''''-dimensional [[symplectic manifold]] has a natural Sp(,R''-structure.
*A 2''n''-dimensional [[complex manifold|complex]] or [[almost complex manifold]] has a natural GL(''n'', '''C''')-structure.
*A ''''-dimensional [[complex manifold|complex]] or [[almost complex manifold]] has a natural ''n,C''-structure.
In many of these instances, a ''G''-structure on ''M'' uniquely determines the corresponding structure on ''M''. For example, a SL(''n'', '''R''')-structure on ''M'' determines a volume form on ''M''. However, in some cases, such as for symplectic and complex manifolds, an added [[integrability condition]] is needed. A Sp(2''n'', '''R''')-structure on ''M'' uniquely determines a [[nondegenerate form|nondegenerate]] [[2-form]] on ''M'', but for ''M'' to be symplectic, this 2-form must also be [[closed differential form|closed]].
In many of these instances, a ''G''-structure on ''M'' uniquely determines the corresponding structure on ''M''. For example, a SL(n,R''-structure on ''M'' determines a volume form on ''M''. However, in some cases, such as for symplectic and complex manifolds, an added [[integrability condition]] is needed. A Sp(,R''-structure on ''M'' uniquely determines a [[nondegenerate form|nondegenerate]] [[2-form]] on ''M'', but for ''M'' to be symplectic, this 2-form must also be [[closed differential form|closed]].


==References==
==References==

Latest revision as of 21:35, 9 September 2024

The orthonormal frame bundle of the Möbius strip is a non-trivial principal -bundle over the circle.

In mathematics, a frame bundle is a principal fiber bundle associated with any vector bundle . The fiber of over a point is the set of all ordered bases, or frames, for . The general linear group acts naturally on via a change of basis, giving the frame bundle the structure of a principal -bundle (where k is the rank of ).

The frame bundle of a smooth manifold is the one associated with its tangent bundle. For this reason it is sometimes called the tangent frame bundle.

Definition and construction

[edit]

Let be a real vector bundle of rank over a topological space . A frame at a point is an ordered basis for the vector space . Equivalently, a frame can be viewed as a linear isomorphism

The set of all frames at , denoted , has a natural right action by the general linear group of invertible matrices: a group element acts on the frame via composition to give a new frame

This action of on is both free and transitive (this follows from the standard linear algebra result that there is a unique invertible linear transformation sending one basis onto another). As a topological space, is homeomorphic to although it lacks a group structure, since there is no "preferred frame". The space is said to be a -torsor.

The frame bundle of , denoted by or , is the disjoint union of all the :

Each point in is a pair (x, p) where is a point in and is a frame at . There is a natural projection which sends to . The group acts on on the right as above. This action is clearly free and the orbits are just the fibers of .

Principal bundle structure

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The frame bundle can be given a natural topology and bundle structure determined by that of . Let be a local trivialization of . Then for each xUi one has a linear isomorphism . This data determines a bijection

given by

With these bijections, each can be given the topology of . The topology on is the final topology coinduced by the inclusion maps .

With all of the above data the frame bundle becomes a principal fiber bundle over with structure group and local trivializations . One can check that the transition functions of are the same as those of .

The above all works in the smooth category as well: if is a smooth vector bundle over a smooth manifold then the frame bundle of can be given the structure of a smooth principal bundle over .

Associated vector bundles

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A vector bundle and its frame bundle are associated bundles. Each one determines the other. The frame bundle can be constructed from as above, or more abstractly using the fiber bundle construction theorem. With the latter method, is the fiber bundle with same base, structure group, trivializing neighborhoods, and transition functions as but with abstract fiber , where the action of structure group on the fiber is that of left multiplication.

Given any linear representation there is a vector bundle

associated with which is given by product modulo the equivalence relation for all in . Denote the equivalence classes by .

The vector bundle is naturally isomorphic to the bundle where is the fundamental representation of on . The isomorphism is given by

where is a vector in and is a frame at . One can easily check that this map is well-defined.

Any vector bundle associated with can be given by the above construction. For example, the dual bundle of is given by where is the dual of the fundamental representation. Tensor bundles of can be constructed in a similar manner.

Tangent frame bundle

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The tangent frame bundle (or simply the frame bundle) of a smooth manifold is the frame bundle associated with the tangent bundle of . The frame bundle of is often denoted or rather than . In physics, it is sometimes denoted . If is -dimensional then the tangent bundle has rank , so the frame bundle of is a principal bundle over .

Smooth frames

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Local sections of the frame bundle of are called smooth frames on . The cross-section theorem for principal bundles states that the frame bundle is trivial over any open set in in which admits a smooth frame. Given a smooth frame , the trivialization is given by

where is a frame at . It follows that a manifold is parallelizable if and only if the frame bundle of admits a global section.

Since the tangent bundle of is trivializable over coordinate neighborhoods of so is the frame bundle. In fact, given any coordinate neighborhood with coordinates the coordinate vector fields

define a smooth frame on . One of the advantages of working with frame bundles is that they allow one to work with frames other than coordinates frames; one can choose a frame adapted to the problem at hand. This is sometimes called the method of moving frames.

Solder form

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The frame bundle of a manifold is a special type of principal bundle in the sense that its geometry is fundamentally tied to the geometry of . This relationship can be expressed by means of a vector-valued 1-form on called the solder form (also known as the fundamental or tautological 1-form). Let be a point of the manifold and a frame at , so that

is a linear isomorphism of with the tangent space of at . The solder form of is the -valued 1-form defined by

where ξ is a tangent vector to at the point , and is the inverse of the frame map, and is the differential of the projection map . The solder form is horizontal in the sense that it vanishes on vectors tangent to the fibers of and right equivariant in the sense that

where is right translation by . A form with these properties is called a basic or tensorial form on . Such forms are in 1-1 correspondence with -valued 1-forms on which are, in turn, in 1-1 correspondence with smooth bundle maps over . Viewed in this light is just the identity map on .

As a naming convention, the term "tautological one-form" is usually reserved for the case where the form has a canonical definition, as it does here, while "solder form" is more appropriate for those cases where the form is not canonically defined. This convention is not being observed here.

Orthonormal frame bundle

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If a vector bundle is equipped with a Riemannian bundle metric then each fiber is not only a vector space but an inner product space. It is then possible to talk about the set of all orthonormal frames for . An orthonormal frame for is an ordered orthonormal basis for , or, equivalently, a linear isometry

where is equipped with the standard Euclidean metric. The orthogonal group acts freely and transitively on the set of all orthonormal frames via right composition. In other words, the set of all orthonormal frames is a right -torsor.

The orthonormal frame bundle of , denoted , is the set of all orthonormal frames at each point in the base space . It can be constructed by a method entirely analogous to that of the ordinary frame bundle. The orthonormal frame bundle of a rank Riemannian vector bundle is a principal -bundle over . Again, the construction works just as well in the smooth category.

If the vector bundle is orientable then one can define the oriented orthonormal frame bundle of , denoted , as the principal -bundle of all positively oriented orthonormal frames.

If is an -dimensional Riemannian manifold, then the orthonormal frame bundle of , denoted or , is the orthonormal frame bundle associated with the tangent bundle of (which is equipped with a Riemannian metric by definition). If is orientable, then one also has the oriented orthonormal frame bundle .

Given a Riemannian vector bundle , the orthonormal frame bundle is a principal -subbundle of the general linear frame bundle. In other words, the inclusion map

is principal bundle map. One says that is a reduction of the structure group of from to .

G-structures

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If a smooth manifold comes with additional structure it is often natural to consider a subbundle of the full frame bundle of which is adapted to the given structure. For example, if is a Riemannian manifold we saw above that it is natural to consider the orthonormal frame bundle of . The orthonormal frame bundle is just a reduction of the structure group of to the orthogonal group .

In general, if is a smooth -manifold and is a Lie subgroup of we define a G-structure on to be a reduction of the structure group of to . Explicitly, this is a principal -bundle over together with a -equivariant bundle map

over .

In this language, a Riemannian metric on gives rise to an -structure on . The following are some other examples.

  • Every oriented manifold has an oriented frame bundle which is just a -structure on .
  • A volume form on determines a -structure on .
  • A -dimensional symplectic manifold has a natural -structure.
  • A -dimensional complex or almost complex manifold has a natural -structure.

In many of these instances, a -structure on uniquely determines the corresponding structure on . For example, a -structure on determines a volume form on . However, in some cases, such as for symplectic and complex manifolds, an added integrability condition is needed. A -structure on uniquely determines a nondegenerate 2-form on , but for to be symplectic, this 2-form must also be closed.

References

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  • Kobayashi, Shoshichi; Nomizu, Katsumi (1996), Foundations of Differential Geometry, vol. 1 (New ed.), Wiley Interscience, ISBN 0-471-15733-3
  • Kolář, Ivan; Michor, Peter; Slovák, Jan (1993), Natural operators in differential geometry (PDF), Springer-Verlag, archived from the original (PDF) on 2017-03-30, retrieved 2008-08-02
  • Sternberg, S. (1983), Lectures on Differential Geometry ((2nd ed.) ed.), New York: Chelsea Publishing Co., ISBN 0-8218-1385-4