Stable laws for random dynamical systems

Abstract

In this paper we consider random dynamical systems formed by concatenating maps acting on the unit interval [0,1] in an iid fashion. Considered as a stationary Markov process, the random dynamical system possesses a unique stationary measure . We consider a class of non square-integrable observables φ, mostly of form φ(x)=d(x,x0)-1α where x0 is non-periodic point satisfying some other genericity conditions, and more generally regularly varying observables with index α ∈ (0,2). The two types of maps we concatenate are a class of piecewise C2 expanding maps, and a class of intermittent maps possessing an indifferent fixed point at the origin. Under conditions on the dynamics and α we establish Poisson limit laws, convergence of scaled Birkhoff sums to a stable limit law and functional stable limit laws, in both the annealed and quenched case. The scaling constants for the limit laws for almost every quenched realization are the same as those of the annealed case and determined by . This is in contrast to the scalings in quenched central limit theorems where the centering constants depend in a critical way upon the realization and are not the same for almost every realization.

0

Turn this paper into a full lesson

ArcXiv compiles a staged curriculum from this paper: 8-12 lessons across beginner → advanced, synthesised section guides, visuals, flashcards, a quiz, exercises, and on-demand deep dives per section. Grounded in the abstract, never invented.

Discussion (0)

Sign in to join the discussion.

Loading comments…