On edge-direction and compact edge-end spaces

Fuente: arXiv
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Main Authors: Boska, Gustavo, Duzi, Matheus, Júnior, Paulo Magalhães
Format: Preprint
Published: 2025
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author Boska, Gustavo
Duzi, Matheus
Júnior, Paulo Magalhães
author_facet Boska, Gustavo
Duzi, Matheus
Júnior, Paulo Magalhães
contents Directions of graphs were originally introduced in the study of a cops-and-robbers kind of game, while the study of end spaces has been used to generalize classical graph-theoretical results to infinite graphs, such as Halin's generalization of Menger's theorem. An edge-analogue of end spaces, where finite sets of edges are used instead of vertices as separator agents to form the so-called edge-end space, has been recently used to obtain an edge-analogue of this later result. Inspired by Diestel's correspondence between directions and ends of a graph, we tackle in this paper an edge-analogue of directions, its relation with line graphs, and an edge-analogue of Diestel's correspondence. The results of this study had some implications over edge-end space compactness, which then became a target of inquiry: we thus show an edge-analogue of Diestel's combinatorial characterization for compact end spaces. Non-edge-dominating vertices play an important role in our characterization, which motivated the study of ends and directions using now finite sets of these vertices as separator agents, as done previously for edges, giving rise to other topological spaces associated with graphs. These new direction and end spaces once again motivate an analogue of Diestel's correspondence result, and further generalizations are obtained. All of these constructions define topological space-classes associated with graphs such as edge-end spaces and edge-direction spaces of graphs. The paper organizes these topological space-classes appearing throughout the text with representation results, as it was done by Pitz and Kurkofka, as well as Aurichi, Real and Magalhães Júnior. Most notably, we show that every compact edge-end space can be represented as the edge-direction space of a connected graph.
format Preprint
id arxiv_https___arxiv_org_abs_2503_19088
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle On edge-direction and compact edge-end spaces
Boska, Gustavo
Duzi, Matheus
Júnior, Paulo Magalhães
Combinatorics
General Topology
05C63 54H99 54A05 54B99 54D30 54F65
Directions of graphs were originally introduced in the study of a cops-and-robbers kind of game, while the study of end spaces has been used to generalize classical graph-theoretical results to infinite graphs, such as Halin's generalization of Menger's theorem. An edge-analogue of end spaces, where finite sets of edges are used instead of vertices as separator agents to form the so-called edge-end space, has been recently used to obtain an edge-analogue of this later result. Inspired by Diestel's correspondence between directions and ends of a graph, we tackle in this paper an edge-analogue of directions, its relation with line graphs, and an edge-analogue of Diestel's correspondence. The results of this study had some implications over edge-end space compactness, which then became a target of inquiry: we thus show an edge-analogue of Diestel's combinatorial characterization for compact end spaces. Non-edge-dominating vertices play an important role in our characterization, which motivated the study of ends and directions using now finite sets of these vertices as separator agents, as done previously for edges, giving rise to other topological spaces associated with graphs. These new direction and end spaces once again motivate an analogue of Diestel's correspondence result, and further generalizations are obtained. All of these constructions define topological space-classes associated with graphs such as edge-end spaces and edge-direction spaces of graphs. The paper organizes these topological space-classes appearing throughout the text with representation results, as it was done by Pitz and Kurkofka, as well as Aurichi, Real and Magalhães Júnior. Most notably, we show that every compact edge-end space can be represented as the edge-direction space of a connected graph.
title On edge-direction and compact edge-end spaces
topic Combinatorics
General Topology
05C63 54H99 54A05 54B99 54D30 54F65
url https://arxiv.org/abs/2503.19088