多智能体分布式决策支持系统的知识组件

G. Stegmayer, M. L. Caliusco, O. Chiotti, M. Galli
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引用次数: 1

摘要

我们已经开发了一个能够以动态方式工作的分布式决策支持系统。也就是说,当组织的某个领域需要一种新的信息时,系统会查找这种信息。该系统基于移动代理的使用,它接收用户的查询并访问相应的DSS域来收集所需的信息。系统本身必须分析在哪里可以生成这些信息。为了做出这个决定,有一个智能代理(路由器),它具有知识库(KB),其中表示每个域所管理的信息。在这项工作中,我们提出了一种获取知识库中存储的初始数据的策略,一种知识库中的知识检索机制,以及一种学习机制,从而使知识库和决策支持系统的操作能够不断得到改进。提出的学习过程是一种基于解释性案例的推理,它使用一组规则来分析信息检索过程的结果并修改路由器知识库的内容。给出了一些例子来说明学习机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge Component of a Multiagent Distributed Decision Support System
We have developed a distributed DSS capable to working in a dynamic way. That is, when a domain of an organization needs a new kind of information, the system looks for this information. This system is based on the usage of mobile agents, which receive the user's queries and visit the appropriate DSS domains to gather the required information. The system itself must analyze where this information can be generated. To make this decision there is an intelligent agent (the Router) with a knowledge base (KB) where the information managed by each domain is represented. In this work, we present a strategy to obtain the initial data to be stored in the KB, a knowledge retrieval mechanism from the KB, and a learning mechanism so that the KB and the DSS operation can be continually improved. The proposed learning process is an interpretative case-based reasoning, which uses a set of rules to analyze the results of the information retrieval process and modifies the content of the router KB. Some examples are presented to illustrate the learning mechanism.
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