Proving there is a leader without naming it

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Hauptverfasser: Feuilloley, Laurent, Sedláček, Josef Erik, Slávik, Martin
Format: Preprint
Veröffentlicht: 2025
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author Feuilloley, Laurent
Sedláček, Josef Erik
Slávik, Martin
author_facet Feuilloley, Laurent
Sedláček, Josef Erik
Slávik, Martin
contents Local certification is a mechanism for certifying to the nodes of a network that a certain property holds. In this framework, nodes are assigned labels, called certificates, which are supposed to prove that the property holds. The nodes then communicate with their neighbors to verify the correctness of these certificates. Certifying that there is a unique leader in a network is one of the most classical problems in this setting. It is well-known that this can be done using certificates that encode node identifiers and distances in the graph. These require $O(\log n)$ and $O(\log D)$ bits respectively, where $n$ is the number of nodes and $D$ is the diameter. A matching lower bound is known in cycle graphs (where $n$ and $D$ are equal up to multiplicative constants). A recent line of work has shown that network structure greatly influences local certification. For example, certifying that a network does not contain triangles takes $Θ(n)$ bits in general graphs, but only $O(\log n)$ bits in graphs of bounded treewidth. This observation raises the question: Is it possible to achieve sublogarithmic leader certification in graph classes that do not contain cycle graphs? And since in that case we cannot write identifiers in a certificate, do we actually need identifiers at all in such topologies? [We answer these questions with results on small diameter graphs, chordal graphs, grids, and dense graphs. See full abstract in the paper.]
format Preprint
id arxiv_https___arxiv_org_abs_2511_15491
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Proving there is a leader without naming it
Feuilloley, Laurent
Sedláček, Josef Erik
Slávik, Martin
Distributed, Parallel, and Cluster Computing
Local certification is a mechanism for certifying to the nodes of a network that a certain property holds. In this framework, nodes are assigned labels, called certificates, which are supposed to prove that the property holds. The nodes then communicate with their neighbors to verify the correctness of these certificates. Certifying that there is a unique leader in a network is one of the most classical problems in this setting. It is well-known that this can be done using certificates that encode node identifiers and distances in the graph. These require $O(\log n)$ and $O(\log D)$ bits respectively, where $n$ is the number of nodes and $D$ is the diameter. A matching lower bound is known in cycle graphs (where $n$ and $D$ are equal up to multiplicative constants). A recent line of work has shown that network structure greatly influences local certification. For example, certifying that a network does not contain triangles takes $Θ(n)$ bits in general graphs, but only $O(\log n)$ bits in graphs of bounded treewidth. This observation raises the question: Is it possible to achieve sublogarithmic leader certification in graph classes that do not contain cycle graphs? And since in that case we cannot write identifiers in a certificate, do we actually need identifiers at all in such topologies? [We answer these questions with results on small diameter graphs, chordal graphs, grids, and dense graphs. See full abstract in the paper.]
title Proving there is a leader without naming it
topic Distributed, Parallel, and Cluster Computing
url https://arxiv.org/abs/2511.15491