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Assessment of Microarray Data Clustering Results Based on a New Geometrical Index for Cluster Validity

机译:基于新的几何指标的聚类有效性的微阵列数据聚类结果评估

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摘要

A measurement of cluster quality is often needed for DNA microarray data analysis. In this paper, we introduce a new cluster validity index, which measures geometrical features of the data. The essential concept of this index is to evaluate the ratio between the squared total length of the data eigen-axes with respect to the between-cluster separation. We show that this cluster validity index works well for data that contain clusters closely distributed or with different sizes. We verify the method using three simulated data sets, two real world data sets and two microarray data sets. The experiment results show that the proposed index is superior to five other cluster validity indices, including partition coefficients (PC), General silhouette index (GS), Dunn’s index (DI), CH Index and I-Index. Also, we have given a theorem to show for what situations the proposed index works well.
机译:DNA微阵列数据分析通常需要测量簇质量。在本文中,我们介绍了一种新的聚类有效性指标,该指标可测量数据的几何特征。该指标的基本概念是评估数据本征轴的平方总长度相对于集群间间隔的比率。我们表明,该聚类有效性指数适用于包含紧密分布或大小不同的聚类的数据。我们使用三个模拟数据集,两个真实世界数据集和两个微阵列数据集验证了该方法。实验结果表明,所提出的指标优于其他5个聚类有效性指标,包括分区系数(PC),一般轮廓指数(GS),邓恩指数(DI),CH指数和I指数。另外,我们给出了一个定理,以表明所建议的索引在什么情况下效果良好。

著录项

  • 来源
    《Soft Computing》 |2007年第4期|341-348|共8页
  • 作者

    Benson S. Y. Lam; Hong Yan;

  • 作者单位

    Department of Electronic Engineering City University of Hong Kong Tat Chee Avenue Kowloon Hong Kong China;

    School of Electrical and Information Engineering University of Sydney Sydney NSW 2006 Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cluster validity; Clustering; Data classification;

    机译:聚类有效性聚类数据分类;

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