首页> 外文会议>International Conference on Modeling Decisions for Artificial Intelligence(MDAI 2004); 20040802-20040804; Barcelona; ES >Fuzzy Multiset Model and Methods of Nonlinear Document Clustering for Information Retrieval
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Fuzzy Multiset Model and Methods of Nonlinear Document Clustering for Information Retrieval

机译:信息检索的非线性文档聚类的模糊多集模型和方法

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摘要

As a model of information retrieval on the WWW, a fuzzy multiset model is overviewed and a family of fuzzy document clustering algorithms is developed. The fuzzy multiset model is enhanced in order to adapt clustering applications. The standard proximity measure of the cosine coefficient is generalized in the multiset model, and two basic objective functions of fuzzy c-means are considered. Moreover two methods of handling nonlinear classification is proposed: introduction of a cluster volume variable and a kernel trick used in support vector machines. A crisp c-means algorithm and clustering by competitive learning are also studied. A numerical example based on real documents is shown.
机译:作为WWW上的信息检索模型,概述了模糊多集模型,并开发了一系列模糊文档聚类算法。模糊多集模型得到增强,以适应聚类应用。在多集模型中概括了余弦系数的标准接近度度量,并考虑了模糊c均值的两个基本目标函数。此外,提出了两种处理非线性分类的方法:引入簇体积变量和支持向量机中使用的核技巧。还研究了一种清晰的c均值算法和竞争学习聚类。显示了一个基于实际文档的数字示例。

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