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Evolutionary Multi-Agent Model for Knowledge Acquisition

机译:知识获取的进化多Agent模型

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摘要

In this paper the conception of evolutionary multi-agent model for knowledge acquisition has been introduced. The basic idea of the proposed solution is to use the multi-agent paradigm in order to enable the integration and co-operation of different knowledge acquisition and representation methods. At the single-agent level the reinforcement learning process is realized, while the obtained knowledge is represented as the set of simple decision rules. One of the conditions of effective agent learning is the optimization of the set of it's features (parameters) that are represented by the genotype's vector. The evolutionary optimization runs at the level of population of agents.
机译:本文介绍了知识获取的进化多功能模型的概念。所提出的解决方案的基本思想是使用多项代理范例来实现不同知识获取和表示方法的集成和合作。在单代理水平处,实现了增强学习过程,而获得的知识被表示为简单决策规则集。有效的代理学习的条件之一是优化由基因型的向量表示的其特征(参数)的集合。进化优化在代理人口水平上运行。

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