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Enhancing the Efficiency of a Decision Support System through the Clustering of Complex Rule-Based Knowledge Bases and Modification of the Inference Algorithm

机译:通过基于复杂的规则的知识库的聚类来提高决策支持系统的效率和推理算法的修改

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Decision support systems founded on rule-based knowledge representation should be equipped with rule management mechanisms. Effective exploration of new knowledge in every domain of human life requires new algorithms of knowledge organization and a thorough search of the created data structures. In this work, the author introduces an optimization of both the knowledge base structure and the inference algorithm. Hence, a new, hierarchically organized knowledge base structure is proposed as it draws on the cluster analysis method and a new forward-chaining inference algorithm which searches only the so-called representatives of rule clusters. Making use of the similarity approach, the algorithm tries to discover new facts (new knowledge) from rules and facts already known. The author defines and analyses four various representative generation methods for rule clusters. Experimental results contain the analysis of the impact of the proposed methods on the efficiency of a decision support system with such knowledge representation. In order to do this, four representative generation methods and various types of clustering parameters (similarity measure, clustering methods, etc.) were examined. As can be seen, the proposed modification of both the structure of knowledge base and the inference algorithm has yielded satisfactory results.
机译:决策支持系统基于规则的知识表示应配备规则管理机制。对人类生活领域的新知识有效探索,需要新的知识组织算法,并彻底搜索所创建的数据结构。在这项工作中,作者介绍了知识库结构和推理算法的优化。因此,提出了一种新的分层组织的知识库结构,因为它借鉴了集群分析方法和新的前向推理算法,该算法仅搜索所谓的规则集群代表。利用相似性方法,该算法试图发现来自已知的规则和事实的新事实(新知识)。作者定义并分析了规则集群的四种各种代表生成方法。实验结果包含提出方法对具有此类知识表示的决策支持系统效率的影响分析。为此,检查四种代表性生成方法和各种类型的聚类参数(相似度测量,聚类方法等)。可以看出,所建议的知识库结构和推理算法的修改产生了令人满意的结果。

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