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一种进化语言博弈的纳什均衡

Nash equilibria for an evolutionary language game.

作者信息

Trapa P E, Nowak M A

机构信息

School of Mathematics, Institute for Advanced Study, Princeton, NJ 08540, USA.

出版信息

J Math Biol. 2000 Aug;41(2):172-88. doi: 10.1007/s002850070004.

Abstract

We study an evolutionary language game that describes how signals become associated with meaning. In our context, a language, L, is described by two matrices: the P matrix contains the probabilities that for a speaker certain objects are associated with certain signals, while the Q matrix contains the probabilities that for a listener certain signals are associated with certain objects. We define the payoff in our evolutionary language game as the total amount of information exchanged between two individuals. We give a formal classification of all languages, L(P, Q), describing the conditions for Nash equilibria and evolutionarily stable strategies (ESS). We describe an algorithm for generating all languages that are Nash equilibria. Finally, we show that starting from any random language, there exists an evolutionary trajectory using selection and neutral drift that ends up with a strategy that is a strict Nash equilibrium (or very close to a strict Nash equilibrium).

摘要

我们研究一种进化语言博弈,它描述了信号是如何与意义产生关联的。在我们的情境中,一种语言(L)由两个矩阵来描述:(P)矩阵包含了对于说话者而言某些对象与某些信号相关联的概率,而(Q)矩阵包含了对于倾听者而言某些信号与某些对象相关联的概率。我们将进化语言博弈中的收益定义为两个个体之间交换的信息总量。我们对所有语言(L(P, Q))进行了形式化分类,描述了纳什均衡和进化稳定策略(ESS)的条件。我们描述了一种生成所有纳什均衡语言的算法。最后,我们表明从任何随机语言开始,存在一条使用选择和中性漂移的进化轨迹,最终会得到一个严格纳什均衡策略(或非常接近严格纳什均衡的策略)。

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