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Promotion of Robust Cooperation Among Agents in Complex Networks by Enhanced Expectation-of-Cooperation Strategy

机译:通过增强合作期望策略促进复杂网络中的代理之间的稳健合作

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We present an interaction strategy with reinforcement learning to promote mutual cooperation among agents in complex networks. Networked computerized systems consisting of many agents that are delegates of social entities, such as companies and organizations, are being implemented due to advances in networking and computer technologies. Because the relationships among agents reflect the interaction structures of the corresponding social entities in the real world, social dilemma situations like the prisoner's dilemma are often encountered. Thus, agents have to learn appropriate behaviors from the long term viewpoint to be able to function properly in the virtual society. The proposed interaction strategy is called the enhanced expectation-of-cooperation (EEoC) strategy and is an extension of our previously proposed strategy for improving robustness against defecting agents and for preventing exploitation by them. Experiments demonstrated that agents using the EEoC strategy can effectively distinguish cooperative neighboring agents from all-defecting (A11D) agents and thus can spread cooperation among EEoC agents and avoid being exploited by A11D agents. Examination of robustness against probabilistically defecting (ProbD) agents demonstrated that EEoC agents can spread and maintain mutual cooperation if the number of ProbD agents is not large. The EEoC strategy is thus simple and useful in actual computerized systems.
机译:我们提出了一种强化学习的互动策略,以促进复杂网络中代理商之间的相互合作。由于网络和计算机技术的进步,正在实现由许多代表社会实体(例如公司和组织)的代理组成的联网计算机系统。由于代理人之间的关系反映了现实世界中相应社会实体的互动结构,因此经常会遇到诸如囚徒困境之类的社会困境。因此,代理商必须从长期的角度学习适当的行为,以便能够在虚拟社会中正常运行。所提出的交互策略被称为增强合作期望(EEoC)策略,并且是我们先前提出的策略的扩展,该策略旨在提高针对缺陷剂的鲁棒性并防止其被剥削。实验表明,使用EEoC策略的代理可以有效地将协作邻居代理与所有缺陷(A11D)代理区分开,从而可以在EEoC代理之间传播协作并避免被A11D代理利用。对概率缺陷(ProbD)代理的鲁棒性测试表明,如果ProbD代理的数量不多,则EEoC代理可以传播并保持相互合作。因此,EEoC策略在实际的计算机系统中既简单又有用。

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