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Solving N-Player Dynamic Routing Games with Congestion: a Mean-Field Approach

  • Theophile Cabannes
  • , Mathieu Laurière
  • , Julien Perolat
  • , Raphael Marinier
  • , Sertan Girgin
  • , Sarah Perrin
  • , Olivier Pietquin
  • , Alexandre M. Bayen
  • , Eric Goubault
  • , Romuald Elie
  • University of California, Berkeley
  • Brain team
  • DeepMind
  • Université de Lille

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionContribution à une conférenceRevue par des pairs

8 Citations (Scopus)

Résumé

The recent emergence of navigational tools has changed traffic patterns and has now enabled new types of congestion-aware routing control like dynamic road pricing. Using the fundamental diagram of traffic flows - applied in macroscopic and mesoscopic traffic modeling - the article introduces a new N-player dynamic routing game with explicit congestion dynamics. The model is well-posed and can reproduce heterogeneous departure times and congestion spill back phenomena. However, as Nash equilibrium computations are PPAD-complete, solving the game becomes intractable for large but realistic numbers of vehicles N. Therefore, the corresponding mean field game is also introduced. Experiments were performed on several classical benchmark networks of the traffic community: the Pigou, Braess, and Sioux Falls networks with heterogeneous origin, destination and departure time tuples. The Pigou and the Braess examples reveal that the mean field approximation is generally very accurate and computationally efficient as soon as the number of vehicles exceeds a few dozen. On the Sioux Falls network (76 links, 100 time steps), this approach enables learning traffic dynamics with more than 14,000 vehicles.

langue originaleAnglais
titreInternational Conference on Autonomous Agents and Multiagent Systems, AAMAS 2022
EditeurInternational Foundation for Autonomous Agents and Multiagent Systems (IFAAMAS)
Pages1557-1559
Nombre de pages3
ISBN (Electronique)9781713854333
étatPublié - 1 janv. 2022
Evénement21st International Conference on Autonomous Agents and Multiagent Systems, AAMAS 2022 - Auckland, Virtual, Nouvelle-Zélande
Durée: 9 mai 202213 mai 2022

Série de publications

NomProceedings of the International Joint Conference on Autonomous Agents and Multiagent Systems, AAMAS
Volume3
ISSN (imprimé)1548-8403
ISSN (Electronique)1558-2914

Une conférence

Une conférence21st International Conference on Autonomous Agents and Multiagent Systems, AAMAS 2022
Pays/TerritoireNouvelle-Zélande
La villeAuckland, Virtual
période9/05/2213/05/22

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