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Multislicing and effective equidistribution for random walks on some homogeneous spaces

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arxiv 2409.03300 v4 pith:7X5V2X6S submitted 2024-09-05 math.DS math.CA

classification math.DSmath.CA
keywords lambdawalkequidistributionfinitehomogeneousmathrmmeasuremultislicing
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abstract

We consider a random walk on a homogeneous space $G/\Lambda$ where $G$ is $\mathrm{SO}(2,1)$ or $\mathrm{SO}(3,1)$ and $\Lambda$ is a lattice. The walk is driven by a probability measure $\mu$ on $G$ whose support generates a Zariski-dense subgroup. We show that for every starting point $x \in G/\Lambda$ which is not trapped in a finite $\mu$-invariant set, the $n$-step distribution $\mu^{*n}*\delta_{x}$ of the walk equidistributes toward the Haar measure. Moreover, under arithmetic assumptions on the pair $(\Lambda, \mu)$, we show the convergence occurs at an exponential rate, tempered by the obstructions that $x$ may be high in a cusp or close to a finite orbit. Our approach is substantially different from that of Benoist-Quint, whose equidistribution statements only hold in Ces\`aro average and are not quantitative, that of Bourgain-Furman-Lindenstrauss-Mozes concerning the torus case, and that of Lindenstrauss-Mohammadi-Wang and Yang about the analogous problem for unipotent flows. A key new feature of our proof is the use of a new phenomenon which we call multislicing. The latter is a generalization of the discretized projection theorems \`a la Bourgain and we believe it presents independent interest.

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Cited by 2 Pith papers

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  1. Effective equidistribution of random walks on simple homogeneous spaces

    math.DS 2025-11 conditional novelty 8.0 of 10

    Zariski-dense random walks on simple homogeneous spaces equidistribute to Haar measure without Cesàro averaging, with exponential rates under arithmetic assumptions.

  2. Applications of Almost Stationarity I: Quantitative Growth of Injectivity Radius and St\"{u}ck-Zimmer Theorem

    math.DS 2026-08 conditional novelty 7.0 of 10

    For non-lattice discrete subgroups of higher-rank simple Lie groups, the maximal injectivity radius on balls of radius r grows at least c log log log log r.

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