Papers › Mediated Multi-Agent Reinforcement Learning

Mediated Multi-Agent Reinforcement Learning

14 Jun 2023arXiv:2306.08419archive 2025-07-28

Dmitry Ivanov, Ilya Zisman, Kirill Chernyshev

The majority of Multi-Agent Reinforcement Learning (MARL) literature equates the cooperation of self-interested agents in mixed environments to the problem of social welfare maximization, allowing agents to arbitrarily share rewards and private information. This results in agents that forgo their individual goals in favour of social good, which can potentially be exploited by selfish defectors. We argue that cooperation also requires agents' identities and boundaries to be respected by making sure that the emergent behaviour is an equilibrium, i.e., a convention that no agent can deviate from and receive higher individual payoffs. Inspired by advances in mechanism design, we propose to solve the problem of cooperation, defined as finding socially beneficial equilibrium, by using mediators. A mediator is a benevolent entity that may act on behalf of agents, but only for the agents that agree to it. We show how a mediator can be trained alongside agents with policy gradient to maximize social welfare subject to constraints that encourage agents to cooperate through the mediator. Our experiments in matrix and iterative games highlight the potential power of applying mediators in MARL.

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get_one_hot dimonenka/mediatedmarl/pgg-iter/utils/utils.py official repository ran · our draft was wrong MIT (permissive) · b215cd24009a0d36 · report
advantage dimonenka/mediatedmarl/pgg-iter/utils/loss.py official repository unverified MIT (permissive) · 8c7e3cef3fc79db6 · report
entropyLoss dimonenka/mediatedmarl/pgg-iter/utils/loss.py official repository unverified MIT (permissive) · 45199345175f1284 · report
env_creator dimonenka/mediatedmarl/pgg-iter/utils/env_wrapper.py official repository unverified MIT (permissive) · a6a0a871de1b151c · report
gini dimonenka/mediatedmarl/pgg-iter/utils/utils.py official repository unverified MIT (permissive) · a03a48883c66fa38 · report
iter_log dimonenka/mediatedmarl/tabular-games/env/log.py official repository unverified MIT (permissive) · 6e54c0e702e14c93 · report
pd_log dimonenka/mediatedmarl/tabular-games/env/log.py official repository unverified MIT (permissive) · 74edcdc9a82ac74b · report
process_webm dimonenka/mediatedmarl/pgg-iter/utils/utils.py official repository unverified MIT (permissive) · 51ce584eab92598f · report
valueLoss dimonenka/mediatedmarl/pgg-iter/utils/loss.py official repository unverified MIT (permissive) · 8eb17d4e4bf84d61 · report

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Multi-agent Reinforcement LearningReinforcement Learningreinforcement-learning

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