Conditional Max-Sum for Asynchronous Multiagent Decision Making

Fuente: arXiv
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Auteurs principaux: Troullinos, Dimitrios, Chalkiadakis, Georgios, Papamichail, Ioannis, Papageorgiou, Markos
Format: Preprint
Publié: 2025
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author Troullinos, Dimitrios
Chalkiadakis, Georgios
Papamichail, Ioannis
Papageorgiou, Markos
author_facet Troullinos, Dimitrios
Chalkiadakis, Georgios
Papamichail, Ioannis
Papageorgiou, Markos
contents In this paper we present a novel approach for multiagent decision making in dynamic environments based on Factor Graphs and the Max-Sum algorithm, considering asynchronous variable reassignments and distributed message-passing among agents. Motivated by the challenging domain of lane-free traffic where automated vehicles can communicate and coordinate as agents, we propose a more realistic communication framework for Factor Graph formulations that satisfies the above-mentioned restrictions, along with Conditional Max-Sum: an extension of Max-Sum with a revised message-passing process that is better suited for asynchronous settings. The overall application in lane-free traffic can be viewed as a hybrid system where the Factor Graph formulation undertakes the strategic decision making of vehicles, that of desired lateral alignment in a coordinated manner; and acts on top of a rule-based method we devise that provides a structured representation of the lane-free environment for the factors, while also handling the underlying control of vehicles regarding core operations and safety. Our experimental evaluation showcases the capabilities of the proposed framework in problems with intense coordination needs when compared to a domain-specific baseline without communication, and an increased adeptness of Conditional Max-Sum with respect to the standard algorithm.
format Preprint
id arxiv_https___arxiv_org_abs_2502_13194
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Conditional Max-Sum for Asynchronous Multiagent Decision Making
Troullinos, Dimitrios
Chalkiadakis, Georgios
Papamichail, Ioannis
Papageorgiou, Markos
Multiagent Systems
Artificial Intelligence
In this paper we present a novel approach for multiagent decision making in dynamic environments based on Factor Graphs and the Max-Sum algorithm, considering asynchronous variable reassignments and distributed message-passing among agents. Motivated by the challenging domain of lane-free traffic where automated vehicles can communicate and coordinate as agents, we propose a more realistic communication framework for Factor Graph formulations that satisfies the above-mentioned restrictions, along with Conditional Max-Sum: an extension of Max-Sum with a revised message-passing process that is better suited for asynchronous settings. The overall application in lane-free traffic can be viewed as a hybrid system where the Factor Graph formulation undertakes the strategic decision making of vehicles, that of desired lateral alignment in a coordinated manner; and acts on top of a rule-based method we devise that provides a structured representation of the lane-free environment for the factors, while also handling the underlying control of vehicles regarding core operations and safety. Our experimental evaluation showcases the capabilities of the proposed framework in problems with intense coordination needs when compared to a domain-specific baseline without communication, and an increased adeptness of Conditional Max-Sum with respect to the standard algorithm.
title Conditional Max-Sum for Asynchronous Multiagent Decision Making
topic Multiagent Systems
Artificial Intelligence
url https://arxiv.org/abs/2502.13194