Time-Biased Random Walks and Robustness of Expanders

Fuente: arXiv
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Main Authors: Olesker-Taylor, Sam, Sauerwald, Thomas, Sylvester, John
Format: Preprint
Published: 2024
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author Olesker-Taylor, Sam
Sauerwald, Thomas
Sylvester, John
author_facet Olesker-Taylor, Sam
Sauerwald, Thomas
Sylvester, John
contents Random walks on expanders play a crucial role in Markov Chain Monte Carlo algorithms, derandomization, graph theory, and distributed computing. A desirable property is that they are rapidly mixing, which is equivalent to having a spectral gap $γ$ (asymptotically) bounded away from $0$. Our work has two main strands. First, we establish a dichotomy for the robustness of mixing times on edge-weighted $d$-regular graphs (i.e., reversible Markov chains) subject to a Lipschitz condition, which bounds the ratio of adjacent weights by $β\geq 1$. If $β\ge 1$ is sufficiently small, then $γ\asymp 1$ and the mixing time is logarithmic in $n$. On the other hand, if $β\geq 2d$, there is an edge-weighting such that $γ$ is polynomially small in $1/n$. Second, we apply our robustness result to a time-dependent version of the so-called $\varepsilon$-biased random walk, as introduced in Azar et al. [Combinatorica 1996]. We show that, for any constant $\varepsilon>0$, a bias strategy can be chosen adaptively so that the $\varepsilon$-biased random walk covers any bounded-degree regular expander in $Θ(n)$ expected time, improving the previous-best bound of $O(n \log \log n)$. We prove the first non-trivial lower bound on the cover time of the $\varepsilon$-biased random walk, showing that, on bounded-degree regular expanders, it is $ω(n)$ whenever $\varepsilon = o(1)$. We establish this by controlling how much the probability of arbitrary events can be ``boosted'' by using a time-dependent bias strategy.
format Preprint
id arxiv_https___arxiv_org_abs_2412_13109
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Time-Biased Random Walks and Robustness of Expanders
Olesker-Taylor, Sam
Sauerwald, Thomas
Sylvester, John
Probability
Discrete Mathematics
Combinatorics
05C81, 60J10, 68R10, 60J20
Random walks on expanders play a crucial role in Markov Chain Monte Carlo algorithms, derandomization, graph theory, and distributed computing. A desirable property is that they are rapidly mixing, which is equivalent to having a spectral gap $γ$ (asymptotically) bounded away from $0$. Our work has two main strands. First, we establish a dichotomy for the robustness of mixing times on edge-weighted $d$-regular graphs (i.e., reversible Markov chains) subject to a Lipschitz condition, which bounds the ratio of adjacent weights by $β\geq 1$. If $β\ge 1$ is sufficiently small, then $γ\asymp 1$ and the mixing time is logarithmic in $n$. On the other hand, if $β\geq 2d$, there is an edge-weighting such that $γ$ is polynomially small in $1/n$. Second, we apply our robustness result to a time-dependent version of the so-called $\varepsilon$-biased random walk, as introduced in Azar et al. [Combinatorica 1996]. We show that, for any constant $\varepsilon>0$, a bias strategy can be chosen adaptively so that the $\varepsilon$-biased random walk covers any bounded-degree regular expander in $Θ(n)$ expected time, improving the previous-best bound of $O(n \log \log n)$. We prove the first non-trivial lower bound on the cover time of the $\varepsilon$-biased random walk, showing that, on bounded-degree regular expanders, it is $ω(n)$ whenever $\varepsilon = o(1)$. We establish this by controlling how much the probability of arbitrary events can be ``boosted'' by using a time-dependent bias strategy.
title Time-Biased Random Walks and Robustness of Expanders
topic Probability
Discrete Mathematics
Combinatorics
05C81, 60J10, 68R10, 60J20
url https://arxiv.org/abs/2412.13109