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Pareto coevolution: Using performance against coevolved opponents in a game as dimensions for Pareto selection

机译:Pareto Coevolution:使用对游戏中的束缚对手的性能作为帕累托选择的尺寸

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When using an automatic discovery method to find a good strategy in a game, we hope to find one that performs well against a wide variety of opponents. An appealing notion in the use of evolutionary algorithms to coevolve strategies is that the population represents a set of different strategies against which a player must do well. Implicit here is the idea that different players represent different "dimensions" of the domain, and being a robust player means being good in many (preferably all) dimensions of the game. Pareto coevolution makes this idea of "players as dimensions" explicit. By explicitly treating each player as a dimension, or objective, we may then use established multi-objective optimization techniques to find robust strategies. In this paper, we apply Pareto coevolution to Texas Hold'em poker, a complex real-world game of imperfect information. The performance of our Pareto coevolution algorithm is compared with that of a conventional genetic algorithm and shown to be promising.
机译:当使用自动发现方法在游戏中找到一个良好的策略时,我们希望找到一个对各种对手进行良好的人。在使用进化算法中的一种吸引人的概念以共存策略,是人口代表了一套不同的战略,球员必须做得好。这里隐含的是不同的玩家代表域的不同“尺寸”的想法,并且是鲁棒播放器意味着在游戏的许多(优选地)的尺寸中是良好的。 Pareto Coevolution使“作为尺寸的球员”的理念显式。通过明确地将每个玩家视为维度,或客观,我们可以使用已建立的多目标优化技术来寻找强大的策略。在本文中,我们将Pareto Creevolution应用于Texas Hold'em Poker,这是一个复杂的无瑕信息的复杂真实游戏。与传统遗传算法的帕累托共同算法的性能与传统遗传算法的表现进行了比较,并显示出很有希望。

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