Space-efficient population protocols for exact majority on general graphs

Fuente: arXiv
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Main Authors: Rybicki, Joel, Solnerzik, Jakob, Stietel, Olivier, Vacus, Robin
Format: Preprint
Published: 2025
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author Rybicki, Joel
Solnerzik, Jakob
Stietel, Olivier
Vacus, Robin
author_facet Rybicki, Joel
Solnerzik, Jakob
Stietel, Olivier
Vacus, Robin
contents We study exact majority consensus in the population protocol model. In this model, the system is described by a graph $G = (V,E)$ with $n$ nodes, and in each time step, a scheduler samples uniformly at random a pair of adjacent nodes to interact. In the exact majority consensus task, each node is given a binary input, and the goal is to design a protocol that almost surely reaches a stable configuration, where all nodes output the majority input value. We give improved upper and lower bounds for exact majority in general graphs. First, we give asymptotically tight time lower bounds for general (unbounded space) protocols. Second, we obtain new upper bounds parameterized by the relaxation time $τ_{\mathsf{rel}}$ of the random walk on $G$ induced by the scheduler and the degree imbalance $Δ/δ$ of $G$. Specifically, we give a protocol that stabilizes in $O\left( \tfracΔδ τ_{\mathsf{rel}} \log^2 n \right)$ steps in expectation and with high probability and uses $O\left( \log n \cdot \left( \log\left(\tfracΔδ\right) + \log \left(\tfrac{τ_{\mathsf{rel}}}{n}\right) \right) \right)$ states in any graph with minimum degree at least $δ$ and maximum degree at most $Δ$. For regular expander graphs, this matches the optimal space complexity of $Θ(\log n)$ for fast protocols in complete graphs [Alistarh et al., SODA 2016 and Doty et al., FOCS 2022] with a nearly optimal stabilization time of $O(n \log^2 n)$ steps. Finally, we give a new upper bound of $O(τ_{\mathsf{rel}} \cdot n \log n)$ for the stabilization time of a constant-state protocol.
format Preprint
id arxiv_https___arxiv_org_abs_2508_11384
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Space-efficient population protocols for exact majority on general graphs
Rybicki, Joel
Solnerzik, Jakob
Stietel, Olivier
Vacus, Robin
Distributed, Parallel, and Cluster Computing
We study exact majority consensus in the population protocol model. In this model, the system is described by a graph $G = (V,E)$ with $n$ nodes, and in each time step, a scheduler samples uniformly at random a pair of adjacent nodes to interact. In the exact majority consensus task, each node is given a binary input, and the goal is to design a protocol that almost surely reaches a stable configuration, where all nodes output the majority input value. We give improved upper and lower bounds for exact majority in general graphs. First, we give asymptotically tight time lower bounds for general (unbounded space) protocols. Second, we obtain new upper bounds parameterized by the relaxation time $τ_{\mathsf{rel}}$ of the random walk on $G$ induced by the scheduler and the degree imbalance $Δ/δ$ of $G$. Specifically, we give a protocol that stabilizes in $O\left( \tfracΔδ τ_{\mathsf{rel}} \log^2 n \right)$ steps in expectation and with high probability and uses $O\left( \log n \cdot \left( \log\left(\tfracΔδ\right) + \log \left(\tfrac{τ_{\mathsf{rel}}}{n}\right) \right) \right)$ states in any graph with minimum degree at least $δ$ and maximum degree at most $Δ$. For regular expander graphs, this matches the optimal space complexity of $Θ(\log n)$ for fast protocols in complete graphs [Alistarh et al., SODA 2016 and Doty et al., FOCS 2022] with a nearly optimal stabilization time of $O(n \log^2 n)$ steps. Finally, we give a new upper bound of $O(τ_{\mathsf{rel}} \cdot n \log n)$ for the stabilization time of a constant-state protocol.
title Space-efficient population protocols for exact majority on general graphs
topic Distributed, Parallel, and Cluster Computing
url https://arxiv.org/abs/2508.11384