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Bounds and dynamics for empirical game theoretic analysis

机译:实证游戏理论分析的界限和动态

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This paper provides several theoretical results for empirical game theory. Specifically, we introduce bounds for empirical game theoretical analysis of complex multi-agent interactions. In doing so we provide insights in the empirical meta game showing that a Nash equilibrium of the estimated meta-game is an approximate Nash equilibrium of the true underlying meta-game. We investigate and show how many data samples are required to obtain a close enough approximation of the underlying game. Additionally, we extend the evolutionary dynamics analysis of meta-games using heuristic payoff tables (HPTs) to asymmetric games. The state-of-the-art has only considered evolutionary dynamics of symmetric HPTs in which agents have access to the same strategy sets and the payoff structure is symmetric, implying that agents are interchangeable. Finally, we carry out an empirical illustration of the generalised method in several domains, illustrating the theory and evolutionary dynamics of several versions of the AlphaGo algorithm (symmetric), the dynamics of the Colonel Blotto game played by human players on Facebook (symmetric), the dynamics of several teams of players in the capture the flag game (symmetric), and an example of a meta-game in Leduc Poker (asymmetric), generated by the policy-space response oracle multi-agent learning algorithm.
机译:本文为实验博弈论提供了几种理论结果。具体而言,我们介绍复杂多蛋白交互的实证游戏理论分析的界限。在这样做,我们提供了实证Meta游戏中的见解,表明估计的元游戏的纳什均衡是真正的底层Meta-Game的近似纳什均衡。我们调查并显示需要多少数据样本来获得底层游戏的足够接近近似。此外,我们使用启发式收益表(HPTS)来扩展Meta-Games的进化动态分析到非对称游戏。最先进的仅考虑了对称HPT的进化动态,其中代理可以访问相同的策略集,并且回收结构是对称的,这意味着代理商是可互换的。最后,我们在几个域中进行了广义方法的实证说明,说明了alphano算法(对称)的几个版本的理论和进化动态,人类参与者在Facebook上播放的上校泡菜游戏的动态(对称),捕获标志游戏(对称)的若干球员的动态和LEDUC扑克(非对称)中的META游戏的示例,由策略空间响应Oracle多代理学习算法生成。

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