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Empirical Centroid Fictitious Play: An Approach for Distributed Learning in Multi-Agent Games

机译:经验质心虚拟游戏:一种在多智能游戏中进行分布式学习的方法

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The paper is concerned with distributed learning in large-scale games. The well-known fictitious play (FP) algorithm is addressed, which, despite theoretical convergence results, might be impractical to implement in large-scale settings due to intense computation and communication requirements. An adaptation of the FP algorithm, designated as the empirical centroid fictitious play (ECFP), is presented. In ECFP players respond to the centroid of all players’ actions rather than track and respond to the individual actions of every player. Convergence of the ECFP algorithm in terms of average empirical frequency (a notion made precise in the paper) to a subset of the Nash equilibria is proven under the assumption that the game is a potential game with permutation invariant potential function. A more general formulation of ECFP is then given (which subsumes FP as a special case) and convergence results are given for the class of potential games. Furthermore, a distributed formulation of the ECFP algorithm is presented, in which, players endowed with a (possibly sparse) preassigned communication graph, engage in local, non-strategic information exchange to eventually agree on a common equilibrium. Convergence results are proven for the distributed ECFP algorithm.
机译:本文涉及大型游戏中的分布式学习。解决了众所周知的虚拟播放(FP)算法,尽管有理论上的收敛结果,但由于计算量大和通信要求高,在大规模设置中可能不切实际。提出了FP算法的一种改编方案,称为经验质心虚拟游戏(ECFP)。在ECFP中,玩家响应所有玩家行为的质心,而不是跟踪并响应每个玩家的个别行为。在假设该游戏是具有排列不变势函数的潜在游戏的前提下,证明了ECFP算法在平均经验频率(在本文中已精确定义)方面收敛至Nash均衡子集。然后给出了更一般的ECFP公式(将FP视为特例),并给出了潜在博弈类的收敛结果。此外,提出了ECFP算法的分布式公式,其中,具有(可能是稀疏的)预先分配的通信图的玩家参与了局部的非战略性信息交换,以最终达成共同的平衡。分布式ECFP算法的收敛结果得到了证明。

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