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The Concept of the Hierarchical Clustering Algorithms for Rules Based Systems

机译:基于规则系统的分层聚类算法的概念

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This paper presents a conception of fast and useful inference process in knowledge based systems. The main known weakness is long and not smart process of looking for rules during the inference process. Basic inference algorithm, which is used by the rule interpreter, tries to fit the facts to rules in knowledge base. So it takes each rule and tries to execute it. As a result we receive the set of new facts, but it often contains redundant information unexpected for user. The main goal of our works is to discover the methods of inference process controlling, which allow us to obtain only necessary decision information. The main idea of them is to create rules partitions, which can drive inference process. That is why we try to use the hierarchical clustering to agglomerate the rules.
机译:本文介绍了知识系统中快速和有用的推理过程的概念。主要已知的弱点是在推理过程中寻找规则的长而不是智能过程。规则解释器使用的基本推理算法试图将事实符合知识库中的规则。所以它需要每个规则并尝试执行它。结果,我们收到了一组新事实,但它通常包含用户意外的冗余信息。我们作品的主要目标是发现推理过程控制方法,允许我们仅获得必要的决策信息。它们的主要思想是创建可以驱动推理过程的规则分区。这就是为什么我们尝试使用分层群集来缩聚规则。

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