English

Ratio convergence rates for Euclidean first-passage percolation: Applications to the graph infinity Laplacian

Probability 2024-02-23 v2 Numerical Analysis Analysis of PDEs Numerical Analysis

Abstract

In this paper we prove the first quantitative convergence rates for the graph infinity Laplace equation for length scales at the connectivity threshold. In the graph-based semi-supervised learning community this equation is also known as Lipschitz learning. The graph infinity Laplace equation is characterized by the metric on the underlying space, and convergence rates follow from convergence rates for graph distances. At the connectivity threshold, this problem is related to Euclidean first passage percolation, which is concerned with the Euclidean distance function dh(x,y)d_{h}(x,y) on a homogeneous Poisson point process on Rd\mathbb{R}^d, where admissible paths have step size at most h>0h>0. Using a suitable regularization of the distance function and subadditivity we prove that dhs(0,se1)/sσ{d_{h_s}(0,se_1)}/ s \to \sigma as ss\to\infty almost surely where σ1\sigma \geq 1 is a dimensional constant and hslog(s)1dh_s\gtrsim \log(s)^\frac{1}{d}. A convergence rate is not available due to a lack of approximate superadditivity when hsh_s\to \infty. Instead, we prove convergence rates for the ratio dh(0,se1)dh(0,2se1)12\frac{d_{h}(0,se_1)}{d_{h}(0,2se_1)}\to \frac{1}{2} when hh is frozen and does not depend on ss. Combining this with the techniques that we developed in (Bungert, Calder, Roith, IMA Journal of Numerical Analysis, 2022), we show that this notion of ratio convergence is sufficient to establish uniform convergence rates for solutions of the graph infinity Laplace equation at percolation length scales.

Keywords

Cite

@article{arxiv.2210.09023,
  title  = {Ratio convergence rates for Euclidean first-passage percolation: Applications to the graph infinity Laplacian},
  author = {Leon Bungert and Jeff Calder and Tim Roith},
  journal= {arXiv preprint arXiv:2210.09023},
  year   = {2024}
}