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Evolutionary Rule Based Clustering for Making Fuzzy Object Oriented Database Models

机译:基于进化规则的基于群集制作模糊对象的数据库模型

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This paper proposes a database clustering algorithm using genetic network programming (GNP) with the advantages of fuzzy object oriented database modeling. GNP creates clusters based on pattern classification, where a cluster label is assigned to each object represented by a set of fuzzy features. GNP is one of the evolutionary algorithms and the main object of its evolution in this paper is to discover fuzzy rules from a fuzzy object oriented database. The optimization of the clusters is executed so that the objects with high similarity are put into the same cluster. The results of clustering simulations show that the proposed method can create better clusters comparing to the conventional clustering methods.
机译:本文提出了一种使用基因网络编程(GNP)的数据库聚类算法,具有模糊面向对象的数据库建模的优点。 GNP基于模式分类创建群集,其中将群集标签分配给由一组模糊功能表示的每个对象。 GNP是其中一个进化算法和其演进的主要目的之一,本文是从模糊面向对象的数据库中发现模糊规则。执行群集的优化,以便将具有高相似性的对象放入同一群集中。聚类模拟结果表明,该方法可以创建与传统​​聚类方法相比的更好的集群。

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