基于人工推理和全局学习的纳什均衡策略博弈设计

IF 1.1 4区 经济学 Q3 ECONOMICS Jahrbucher Fur Nationalokonomie Und Statistik Pub Date : 2021-03-17 DOI:10.1515/jbnst-2020-0040
Hime A. e Oliveira Jr.
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引用次数: 0

摘要

摘要这项工作提出了将全局优化技术应用于混合策略的有限正态对策设计所获得的新结果。为此,将模糊ASA全局优化方法应用于几个战略博弈的设计实例,证明了其在获得相应博弈呈现先前建立的纳什均衡的回报函数方面的有效性。换言之,游戏设计者能够为一般有限状态战略游戏选择一个方便的纳什均衡,并且所提出的方法计算将实现所需均衡的支付函数,使玩家有可能达到所选均衡所代表的有利条件。考虑到博弈论是一种非常有用的方法来建模竞争主体之间的相互作用,纳什均衡代表了一个强大的解决方案概念,很自然地推断,所提出的方法对战略家来说可能非常有用。总之,这是一个真实的例子,在全局机器学习过程后,人工推断回报函数,并将其应用于其数值分量。
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Designing Strategic Games with Preestablished Nash Equilibrium through Artificial Inference and Global Learning
Abstract This work presents novel results obtained by the application of global optimization techniques to the design of finite, normal form games with mixed strategies. To that end, the Fuzzy ASA global optimization method is applied to several design examples of strategic games, demonstrating its effectiveness in obtaining payoff functions whose corresponding games present a previously established Nash equilibrium. In other words, the game designer becomes able to choose a convenient Nash equilibrium for a generic finite state strategic game and the proposed method computes payoff functions that will realize the desired equilibrium, making it possible for the players to reach the favorable conditions represented by the chosen equilibrium. Considering that game theory is a very useful approach for modeling interactions between competing agents and Nash equilibrium represents a powerful solution concept, it is natural to infer that the proposed method may be very useful for strategists in general. In summary, it is a genuine instance of artificial inference of payoff functions after a process of global machine learning, applied to their numerical components.
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来源期刊
CiteScore
2.70
自引率
23.10%
发文量
31
期刊介绍: Die Jahrbücher für Nationalökonomie und Statistik existieren seit dem Jahr 1863. Die Herausgeber fühlen sich der Tradition verpflichtet, die Zeitschrift für kritische, innovative und entwicklungsträchtige Beiträge offen zu halten. Weder thematisch noch methodisch sollen die Veröffentlichungen auf jeweils herrschende Lehrmeinungen eingeengt werden.
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