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A New Clustering Validity Index for Cluster Analysis Based on a Two-Level SOM

机译:基于两级SOM的聚类分析新聚类有效性指标

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摘要

Self-Organizing Map (SOM) is a powerful tool for the exploratory of clustering methods. Clustering is the most important task in unsupervised learning and clustering validity is a major issue in cluster analysis. In this paper, a new clustering validity index is proposed to generate the clustering result of a two-level SOM. This is performed by using the separation rate of inter-cluster, the relative density of inter-cluster, and the cohesion rate of intra-cluster. The clustering validity index is proposed to find the optimal numbers of clusters and determine which two neighboring clusters can be merged in a hierarchical clustering of a two-level SOM. Experiments show that, the proposed algorithm is able to cluster data more accurately than the classical clustering algorithms which is based on a two-level SOM and is better able to find an optimal number of clusters by maximizing the clustering validity index.
机译:自组织图(SOM)是用于探索聚类方法的强大工具。聚类是无监督学习中最重要的任务,聚类有效性是聚类分析中的主要问题。本文提出了一种新的聚类有效性指标来生成两级SOM的聚类结果。这是通过使用群集间的分离率,群集间的相对密度以及群集内的凝聚率来执行的。提出了聚类有效性指标,以找到最佳的聚类数量并确定在两个级别的SOM的分层聚类中可以合并哪些两个相邻的聚类。实验表明,与基于两级SOM的经典聚类算法相比,所提算法能够对数据进行更精确的聚类,并且能够通过最大化聚类有效性指标更好地找到最优数量的聚类。

著录项

  • 来源
    《IEICE Transactions on Information and Systems 》 |2009年第9期| 1668-1674| 共7页
  • 作者

    Shu-Ling SHIEH; I-En LIAO;

  • 作者单位

    Department of Computer Science and Engineering, National Chung-Hsing University, 250, Kuo-Kuang Road, Taichung, Taiwan Department of Information Management, Ling-Tung University, Taichung, Taiwan;

    Department of Computer Science and Engineering, National Chung-Hsing University, 250, Kuo-Kuang Road, Taichung, Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    self-organizing map; clustering; clustering validity index;

    机译:自组织图;集群聚类有效性指数;

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