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Implicit Cooperative Learning on Distribution of Received Reward in Multi-Agent System

  • Fumito Uwano

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

Multi-agent reinforcement learning (MARL) makes agents cooperate with each other by reinforcement learning to achieve collective action. Generally, MARL enables agents to predict the unknown factor of other agents in reward function to achieve obtaining maximize reward cooperatively, then it is important to diminish the complexity of communication or observation between agents to achieve the cooperation, which enable it to real-world problems. By contrast, this paper proposes an implicit cooperative learning (ICL) that have an agent separate three factors of self-agent can increase, another agent can increase, and interactions influence in a reward function approximately, and estimate a reward function for self from only acquired rewards to learn cooperative policy without any communication and observation. The experiments investigate the performance of ICL and the results show that ICL outperforms the state-of-the-art method in two agents cooperation problem.

Original languageEnglish
Title of host publicationICAART 2023 - Proceedings of the 15th International Conference on Agents and Artificial Intelligence - (Volume 1)
EditorsAna Paula Rocha, Luc Steels, Jaap van den Herik
PublisherScience and Technology Publications, Lda
Pages147-153
Number of pages7
ISBN (Print)9789897586231
DOIs
Publication statusPublished - 2023
Event15th International Conference on Agents and Artificial Intelligence, ICAART 2023 - Lisbon, Portugal
Duration: Feb 22 2023Feb 24 2023

Publication series

NameInternational Conference on Agents and Artificial Intelligence
Volume1
ISSN (Print)2184-3589
ISSN (Electronic)2184-433X

Conference

Conference15th International Conference on Agents and Artificial Intelligence, ICAART 2023
Country/TerritoryPortugal
CityLisbon
Period2/22/232/24/23

Keywords

  • Implicit Learning
  • Multiagent System
  • Neural Network
  • Normal Distribution
  • Reinforcement Learning

ASJC Scopus subject areas

  • Artificial Intelligence

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