English

Amenability and paradoxical decompositions for pseudogroups and for discrete metric spaces

Group Theory 2016-03-15 v1 Dynamical Systems Functional Analysis Metric Geometry

Abstract

This is an expostion of various aspects of amenability and paradoxical decompositions for groups, group actions and metric spaces. First, we review the formalism of pseudogroups, which is well adapted to stating the alternative of Tarski, according to which a pseudogroup without invariant mean gives rise to paradoxical decompositions, and to defining a F{\o}lner condition. Using a Hall-Rado Theorem on matchings in graphs, we show then for pseudogroups that existence of an invariant mean is equivalent to the F{\o}lner condition; in the case of the pseudogroup of bounded perturbations of the identity on a locally finite metric space, these conditions are moreover equivalent to the negation of the Gromov's so-called doubling condition, to isoperimetric conditions, to Kesten's spectral condition for related simple random walks, and to various other conditions. We define also the minimal Tarski number of paradoxical decompositions associated to a non-amenable group action (an integer 4\ge 4), and we indicate numerical estimates (Sections II.4 and IV.2). The final chapter explores for metric spaces the notion of supramenability, due for groups to Rosenblatt.

Keywords

Cite

@article{arxiv.1603.04212,
  title  = {Amenability and paradoxical decompositions for pseudogroups and for discrete metric spaces},
  author = {Tullio Ceccherini-Silberstein and Rostislav I. Grigorchuk and Pierre de la Harpe},
  journal= {arXiv preprint arXiv:1603.04212},
  year   = {2016}
}

Comments

This post on arXiv is the published version with the following changes: (i) the caution following Definition 28, (ii) the addition of a missing hypothesis in Proposition 38, (iii) the updating of some references, and (iv) the correction of a few minor typos. Moreover, we have collected comments on several items in a new Chapter VI, after the first list of references