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Furstenberg boundary

In potential theory, a discipline within applied mathematics, the Furstenberg boundary is a notion of boundary associated with a group. It is named for Harry Furstenberg, who introduced it in a series of papers beginning in 1963 (in the case of semisimple Lie groups). The Furstenberg boundary, roughly speaking, is a universal moduli space for the Poisson integral, expressing a harmonic function on a group in terms of its boundary values.

Motivation edit

A model for the Furstenberg boundary is the hyperbolic disc  . The classical Poisson formula for a bounded harmonic function on the disc has the form

 

where P is the Poisson kernel. Any function f on the disc determines a function on the group of Möbius transformations of the disc by setting F(g) = f(g(0)). Then the Poisson formula has the form

 

where m is the Haar measure on the boundary. This function is then harmonic in the sense that it satisfies the mean-value property with respect to a measure on the Möbius group induced from the usual Lebesgue measure of the disc, suitably normalized. The association of a bounded harmonic function to an (essentially) bounded function on the boundary is one-to-one.

Construction for semi-simple groups edit

In general, let G be a semi-simple Lie group and μ a probability measure on G that is absolutely continuous. A function f on G is μ-harmonic if it satisfies the mean value property with respect to the measure μ:

 

There is then a compact space Π, with a G action and measure ν, such that any bounded harmonic function on G is given by

 

for some bounded function   on Π.

The space Π and measure ν depend on the measure μ (and so, what precisely constitutes a harmonic function). However, it turns out that although there are many possibilities for the measure ν (which always depends genuinely on μ), there are only a finite number of spaces Π (up to isomorphism): these are homogeneous spaces of G that are quotients of G by some parabolic subgroup, which can be described completely in terms of root data and a given Iwasawa decomposition. Moreover, there is a maximal such space, with quotient maps going down to all of the other spaces, that is called the Furstenberg boundary.

References edit

  • Borel, Armand; Ji, Lizhen, Compactifications of symmetric and locally symmetric spaces (PDF)
  • Furstenberg, Harry (1963), "A Poisson Formula for Semi-Simple Lie Groups", Annals of Mathematics, 77 (2): 335–386, doi:10.2307/1970220, JSTOR 1970220
  • Furstenberg, Harry (1973), Calvin Moore (ed.), "Boundary theory and stochastic processes on homogeneous spaces", Proceedings of Symposia in Pure Mathematics, AMS, 26: 193–232, doi:10.1090/pspum/026/0352328, ISBN 9780821814260

furstenberg, boundary, potential, theory, discipline, within, applied, mathematics, notion, boundary, associated, with, group, named, harry, furstenberg, introduced, series, papers, beginning, 1963, case, semisimple, groups, roughly, speaking, universal, modul. In potential theory a discipline within applied mathematics the Furstenberg boundary is a notion of boundary associated with a group It is named for Harry Furstenberg who introduced it in a series of papers beginning in 1963 in the case of semisimple Lie groups The Furstenberg boundary roughly speaking is a universal moduli space for the Poisson integral expressing a harmonic function on a group in terms of its boundary values Motivation editA model for the Furstenberg boundary is the hyperbolic disc D z z lt 1 displaystyle D z z lt 1 nbsp The classical Poisson formula for a bounded harmonic function on the disc has the form f z 1 2 p 0 2 p f e i 8 P z e i 8 d 8 displaystyle f z frac 1 2 pi int 0 2 pi hat f e i theta P z e i theta d theta nbsp where P is the Poisson kernel Any function f on the disc determines a function on the group of Mobius transformations of the disc by setting F g f g 0 Then the Poisson formula has the form F g z 1 f g z d m z displaystyle F g int z 1 hat f gz dm z nbsp where m is the Haar measure on the boundary This function is then harmonic in the sense that it satisfies the mean value property with respect to a measure on the Mobius group induced from the usual Lebesgue measure of the disc suitably normalized The association of a bounded harmonic function to an essentially bounded function on the boundary is one to one Construction for semi simple groups editIn general let G be a semi simple Lie group and m a probability measure on G that is absolutely continuous A function f on G is m harmonic if it satisfies the mean value property with respect to the measure m f g G f g g d m g displaystyle f g int G f gg d mu g nbsp There is then a compact space P with a G action and measure n such that any bounded harmonic function on G is given by f g P f g p d n p displaystyle f g int Pi hat f gp d nu p nbsp for some bounded function f displaystyle hat f nbsp on P The space P and measure n depend on the measure m and so what precisely constitutes a harmonic function However it turns out that although there are many possibilities for the measure n which always depends genuinely on m there are only a finite number of spaces P up to isomorphism these are homogeneous spaces of G that are quotients of G by some parabolic subgroup which can be described completely in terms of root data and a given Iwasawa decomposition Moreover there is a maximal such space with quotient maps going down to all of the other spaces that is called the Furstenberg boundary References editBorel Armand Ji Lizhen Compactifications of symmetric and locally symmetric spaces PDF Furstenberg Harry 1963 A Poisson Formula for Semi Simple Lie Groups Annals of Mathematics 77 2 335 386 doi 10 2307 1970220 JSTOR 1970220 Furstenberg Harry 1973 Calvin Moore ed Boundary theory and stochastic processes on homogeneous spaces Proceedings of Symposia in Pure Mathematics AMS 26 193 232 doi 10 1090 pspum 026 0352328 ISBN 9780821814260 Retrieved from https en wikipedia org w index php title Furstenberg boundary amp oldid 1075618418, wikipedia, wiki, book, books, library,

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