- Generalized flag variety
In
mathematics , a generalized flag variety (or simply flag variety) is ahomogeneous space whose points are flags in a finite-dimensionalvector space "V" over a field F. When F is the real or complex numbers, a generalized flag variety is a smooth orcomplex manifold , called a real or complex flag manifold. Flag varieties are naturally projective varieties.Flag varieties can be defined in various degrees of generality. A prototype is the variety of complete flags in a vector space "V" over a field F, which is a flag variety for the
special linear group over F. Other flag varieties arise by considering partial flags, or by restriction from the special linear group to subgroups such as thesymplectic group . For partial flags, one needs to specify the sequence of dimensions of the flags under consideration. For subgroups of the linear group, additional conditions must be imposed on the flags.The most general concept of a generalized flag variety is a
conjugacy class ofparabolic subgroup s of a semisimple algebraic orLie group "G": "G" acts transitively on such a conjugacy class by conjugation, and the stabilizer of a parabolic "P" is "P" itself, so that the generalized flag variety is isomorphic to "G"/"P". It may also be realised as the orbit of a highestweight space in a projectivized representation of "G". In the algebraic setting, generalized flag varieties are precisely the homogeneous spaces for "G" which are complete as algebraic varieties. In the smooth setting, generalized flag manifolds are compact, and are homogeneousRiemannian manifold s under any maximal compact subgroup of "G".Flag manifolds can be
symmetric space s. Over the complex numbers, the corresponding flag manifolds are theHermitian symmetric space s. Over the real numbers, an "R"-space is a synonym for a real flag manifold and the corresponding symmetric spaces are called symmetric "R"-spaces.Flags in a vector space
A flag in a finite dimensional vector space "V" over a field F is an increasing sequence of
subspace s, where "increasing" means each is a proper subspace of the next (see filtration)::If we write the dim "V""i" = "d""i" then we have:where "n" is the dimension of "V". Hence, we must have "k" ≤ "n". A flag is called a "complete flag" if "d""i" = "i", otherwise it is called a "partial flag". The "signature" of the flag is the sequence ("d"1, … "d""k").A partial flag can be obtained from a complete flag by deleting some of the subspaces. Conversely, any partial flag can be completed (in many different ways) by inserting suitable subspaces.
Prototype: the complete flag variety
According to basic results of
linear algebra , any two complete flags in an "n"-dimensional vector space "V" over a field F are no different from each other from a geometric point of view. That is to say, thegeneral linear group acts transitively on the set of all complete flags.Fix an ordered basis for "V", identifying it with F"n", whose special linear group is the group GL("n",F) of "n" × "n" matrices. The standard flag associated with this basis is the one where the "i" th subspace is spanned by the first "i" vectors of the basis. Relative to this basis, the stabilizer of the standard flag is the group of nonsingular upper triangular matrices, which we denote by "B""n". The complete flag variety can therefore be written as a
homogeneous space GL("n",F) / "B""n", which shows in particular that it has dimension "n"("n"−1)/2 over F.Note that the multiples of the identity act trivially on all flags, and so one can restrict attention to the
special linear group SL("n",F) of matrices with determinant one, which is a semisimple algebraic group; the set of upper triangular matrices of determinant one is aBorel subgroup .If the field F is the real or complex numbers we can introduce an
inner product on "V" such that the chosen basis isorthonormal . Any complete flag then splits into a direct sum of one dimensional subspaces by taking orthogonal complements. It follows that the complete flag manifold over the complex numbers is thehomogeneous space :where U("n") is theunitary group and T"n" is the "n"-torus of diagonal unitary matrices. There is a similar description over the real numbers with U("n") replaced by the orthogonal group O("n"), and T"n" by the diagonal orthogonal matrices (which have diagonal entries ±1).Partial flag varieties
The partial flag variety:is the space of all flags of signature ("d"1, "d"2, … "d""k") in a vector space "V" of dimension "n" = "d""k" over F. The complete flag variety is the special case that "d""i" = "i" for all "i". When "k"=2, this is a
Grassmannian of "d"1-dimensional subspaces of "V".This is a homogeneous space for the general linear group "G" of "V" over F. To be explicit, take "V" = F"n" so that "G" = GL("n",F). The stabilizer of a flag of nested subspaces "V""i" of dimension "d""i" can be taken to be the group of nonsingular block upper triangular matrices, where the dimensions of the blocks are "n""i" := "d""i" − "d""i"−1 (with "d"0 = 0).
Restricting to matrices of determinant one, this is a parabolic subgroup "P" of SL("n",F), and thus the partial flag variety is isomorphic to the homogeneous space SL("n",F)/"P".
If F is the real or complex numbers, then an inner product can be used to split any flag into a direct sum, and so the partial flag variety is also isomorphic to the homogeneous space:in the complex case, or:in the real case.
Generalization to semisimple groups
The upper triangular matrices of determinant one are a Borel subgroup of SL("n",F), and hence the stabilizers of partial flags are parabolic subgroups. Furthermore, a partial flag is determined by the parabolic subgroup which stabilizes it, and partial flags belong to the same flag variety precisely when the corresponding parabolic subgroups are conjugate.
Hence, more generally, if "G" is a semisimple algebraic or
Lie group , then a (generalized) flag variety for "G" is aconjugacy class ofparabolic subgroup s of "G". It is therefore isomorphic, as a homogeneous space, to "G"/"P" where "P" is a parabolic subgroup of "G". The correspondence between parabolic subgroups and generalized flag varieties allows each to be understood in terms of the other.The extension of the terminology "flag variety" is reasonable, because points of "G"/"P" can still be described using flags. When "G" is a classical group, such as a
symplectic group ororthogonal group , this is particularly transparent. If ("V", "ω") is asymplectic vector space then a partial flag in "V" is "isotropic " if the symplectic form vanishes on proper subspaces of "V" in the flag. The stabilizer of an isotropic flag is a parabolic subgroup of the symplectic group Sp("V","ω"). For orthogonal groups there is a similar picture, with a couple of complications. First, if F is not algebraically closed, then isotropic subspaces may not exist: for a general theory, one needs to use thesplit orthogonal group s. Second, for vector spaces of even dimension 2"m", isotropic subspaces of dimension "m" come in two flavours ("self-dual" and "anti-self-dual") and one needs to distinguish these to obtain a homogeneous space.Highest weight orbits and homogeneous projective varieties
If "G" is a semisimple algebraic group (or Lie group) and "V" is a (finite dimensional) highest weight representation of "G", then the highest weight space is a point in the
projective space P("V") and its orbit under the action of "G" is aprojective algebraic variety . This variety is a (generalized) flag variety, and furthermore, every (generalized) flag variety for "G" arises in this way.Armand Borel showed that this characterizes the flag varieties of a general semisimple algebraic group "G": they are precisely the complete homogeneous spaces of "G", or equivalently (in this context), the projective "G"-varieties.ymmetric spaces
Let "G" be a semisimple Lie group with maximal compact subgroup "K". Then "K" acts transitively on any conjugacy class of parabolic subgroups, and hence the generalized flag variety "G"/"P" is a compact homogeneous
Riemannian manifold "K"/("K"∩"P") with isometry group "K". Furthermore, if "G" is a complex Lie group, "G"/"P" is a homogeneousKähler manifold .Turning this around, the Riemannian homogeneous spaces
:"M" = "K"/("K"∩"P")
admit a strictly larger Lie group of transformations, namely "G". Specializing to the case that "M" is a
symmetric space , this observation yields all symmetric spaces admitting such a larger symmetry group, and these spaces have been classified by Kobayashi and Nagano.If "G" is a complex Lie group, the symmetric spaces "M" arising in this way are the compact
Hermitian symmetric space s: "K" is the isometry group, and "G" is the biholomorphism group of "M".Over the real numbers, a real flag manifold is also called an R-space, and the R-spaces which are Riemannian symmetric spaces under "K" are known as symmetric R-spaces. The symmetric R-spaces which are not Hermitian symmetric are obtained by taking "G" to be a
real form of the biholomorphism group "G"c of a Hermitian symmetric space "G"c/"P"c such that "P" := "P"c∩"G" is a parabolic subgroup of "G". Examples includeprojective space s (with "G" the group ofprojective transformation s) andsphere s (with "G" the group ofconformal transformation s).ee also
*
Parabolic Lie algebra References
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* Michel Brion, " [http://www-fourier.ujf-grenoble.fr/~mbrion/notes.html Lectures on the geometry of flag varieties] ", Lecture notes, Varsovie, 2003.
* James E. Humphreys, " [http://books.google.co.uk/books?id=hNgRLxlwL8oC Linear Algebraic Groups] ", Graduate Texts in Mathematics, 21, Springer-Verlag, 1972.
* S. Kobayashi and T. Nagano, "On filtered Lie algebras and geometric structures" I, II, J. Math. Mech. 13 (1964), 875–907, 14 (1965) 513–521.
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