Learning in Nonzero-Sum Stochastic Games with Potentials

被引:0
|
作者
Mguni, David [1 ]
Wu, Yutong [2 ]
Du, Yali [3 ]
Yang, Yaodong [1 ,3 ]
Wang, Ziyi [2 ]
Li, Minne [3 ]
Wen, Ying [4 ]
Jennings, Joel [1 ]
Wang, Jun [3 ]
机构
[1] Huawei R&D UK, Cambridge, England
[2] Chinese Acad Sci, Inst Automat, Beijing, Peoples R China
[3] UCL, London, England
[4] Shanghai Jiao Tong Univ, Shanghai, Peoples R China
关键词
GRADIENT METHODS; MULTIAGENT;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Multi-agent reinforcement learning (MARL) has become effective in tackling discrete cooperative game scenarios. However, MARL has yet to penetrate settings beyond those modelled by team and zero-sum games, confining it to a small subset of multi-agent systems. In this paper, we introduce a new generation of MARL learners that can handle nonzero-sum payoff structures and continuous settings. In particular, we study the MARL problem in a class of games known as stochastic potential games (SPGs) with continuous state-action spaces. Unlike cooperative games, in which all agents share a common reward, SPGs are capable of modelling real-world scenarios where agents seek to fulfil their individual goals. We prove theoretically our learning method, SPot-AC, enables independent agents to learn Nash equilibrium strategies in polynomial time. We demonstrate our framework tackles previously unsolvable tasks such as Coordination Navigation and large selfish routing games and that it outperforms the state of the art MARL baselines such as MAD-DPG and COMIX in such scenarios.
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页数:12
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