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Intuitionistic fuzzy hierarchical clustering algorithms

机译:直觉模糊层次聚类算法

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摘要

Intuitionistic fuzzy set (IFS) is a set of 2-tuple arguments, each of which is characterized by a mem-bership degree and a nonmembership degree. The generalized form of IFS is interval-valued intuitionistic fuzzy set (IVIFS), whose components are intervals rather than exact numbers. IFSs and IVIFSs have been found to be very useful to describe vagueness and uncertainty. However, it seems that little attention has been focused on the clus-tering analysis of IFSs and IVIFSs. An intuitionistic fuzzy hierarchical algorithm is introduced for clustering IFSs, which is based on the traditional hierarchical clustering procedure, the intuitionistic fuzzy aggregation operator, and the basic distance measures between IFSs: the Hamming distance, normalized Hamming, weighted Hamming, the Euclidean distance, the normalized Euclidean distance, and the weighted Euclidean distance. Subsequently, the algorithm is extended for clustering IVIFSs. Finally the algorithm and its extended form are applied to the classifications of building materials and enterprises respectively.
机译:直觉模糊集(IFS)是由2个元组组成的参数集,每个参数均以成员资格和非成员资格为特征。 IFS的广义形式是区间值直觉模糊集(IVIFS),其成分是区间而不是精确数字。已经发现,IFS和IVIFS对于描述模糊性和不确定性非常有用。但是,似乎很少有人关注IFS和IVIFS的集群分析。引入了一种基于直觉的模糊层次算法对IFS进行聚类,该算法基于传统的层次聚类过程,直觉的模糊聚合算子以及IFS之间的基本距离度量:汉明距离,归一化汉明,加权汉明,欧几里得距离,标准化的欧几里得距离,以及加权的欧几里得距离。随后,对该算法进行了扩展以对IVIFS进行聚类。最后将该算法及其扩展形式分别应用于建材和企业分类。

著录项

  • 来源
    《系统工程与电子技术(英文版)》 |2009年第1期|90-97|共8页
  • 作者

    Xu Zeshui;

  • 作者单位

    Coll. of Economics and Management, Southeast Univ., Nanjing 210096, P. R. China;

    Inst. of Sciences, PLA Univ. of Science and Technology, Nanjing 210007, P. R. China;

  • 收录信息 中国科学引文数据库(CSCD);
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 真空电子技术;
  • 关键词

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