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Algebraic formulation and strategy optimization for a class of evolutionary networked games via semi-tensor product method

机译:一类半张量乘积演化网络游戏的代数表述与策略优化

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Using the semi-tensor product method, this paper investigates the algebraic formulation and strategy optimization for a class of evolutionary networked games with "myopic best response adjustment" rule, and presents a number of new results. First, the dynamics of the evolutionary networked game is converted to an algebraic form via the semi-tensor product, and an algorithm is established to construct the algebraic formulation for the game. Second, based on the algebraic form, the dynamical behavior of evolutionary networked games is discussed, and some interesting results are presented. Finally, the strategy optimization problem is considered by adding a pseudo-player to the game, and a free-type control sequence is designed to maximize the average payoff of the pseudo-player. The study of an illustrative example shows that the new results obtained in this paper work very well.
机译:本文使用半张量积方法,研究了一类具有“近视最佳反应调整”规则的演化网络游戏的代数形式和策略优化,并提出了许多新的结果。首先,通过半张量积将演化网络游戏的动力学转换为代数形式,并建立了一种算法来构造游戏的代数公式。其次,基于代数形式,讨论了演化网络游戏的动力学行为,并给出了一些有趣的结果。最后,通过向游戏中添加伪玩家来考虑策略优化问题,并且设计了自由类型的控制序列以最大化伪玩家的平均收益。对一个示例性例子的研究表明,本文获得的新结果非常有效。

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