Cultural Algorithms-based learning model for multi-agent systems

Juan Terán, J. Aguilar, Mariela Cerrada-Lozada
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引用次数: 1

Abstract

This paper aims to evaluate the learning model for coordination schemes in multiagent systems (MAS) based on Cultural Algorithms. The model is applied to a case of study in industrial automation, related to the Agents-based System for Fault Management System. The instantiation occurs on the conversations that are defining in the MAS's coordination model, which are characterized by type of conversation that have been previously defined. A conversation can have sub-conversations, and in this case the sub-conversations are characterized by a particular type of conversation. Additionally in these conversations can occur some type of conflict, that can be solved by using different coordination mechanisms existing in the literature. For this, it is developed a model based on cultural algorithms, which is used by the MAS as a learning way in the process to determine which coordination mechanism is more suitable for a given conversation and a given scenario. The results show that the obtained model through this learning guides the MAS to determine which mechanism is better suited for a given conversation.
基于文化算法的多智能体系统学习模型
本文旨在评估基于文化算法的多智能体系统(MAS)协调方案的学习模型。将该模型应用于工业自动化中基于agent的故障管理系统的研究实例。实例化发生在MAS协调模型中定义的对话上,这些对话以先前定义的对话类型为特征。一个会话可以有子会话,在这种情况下,子会话以特定类型的会话为特征。此外,在这些对话中可能会发生某种类型的冲突,可以通过使用文献中存在的不同协调机制来解决。为此,MAS开发了一个基于文化算法的模型,作为过程中的一种学习方式,以确定哪种协调机制更适合给定的会话和给定的场景。结果表明,通过这种学习获得的模型可以指导MAS确定哪种机制更适合给定的会话。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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