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Iterative random projections for high-dimensional data clustering

机译:高维数据聚类的迭代随机投影

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摘要

In this text we propose a method which efficiently performs clustering of high-dimensional data. The method builds on random projection and the K-means algorithm. The idea is to apply K-means several times, increasing the dimensionality of the data after each convergence of K-means. We compare the proposed algorithm on four high-dimensional datasets, image, text and two synthetic, with K-means clustering using a single random projection and K-means clustering of the original high-dimensional data. Regarding time we observe that the algorithm reduces drastically the time when compared to K-means on the original high-dimensional data. Regarding mean squared error the proposed method reaches a better solution than clustering using a single random projection. More notably in the experiments performed it also reaches a better solution than clustering on the original high-dimensional data.
机译:在本文中,我们提出了一种有效执行高维数据聚类的方法。该方法基于随机投影和K-means算法。想法是多次应用K-means,以在每次K-means收敛后增加数据的维数。我们将所提出的算法在四个高维数据集(图像,文本和两个合成)上进行了比较,使用单个随机投影的K-means聚类和原始高维数据的K-means聚类。关于时间,我们观察到与原始高维数据上的K-means相比,该算法大大减少了时间。关于均方误差,与使用单个随机投影进行聚类相比,所提出的方法具有更好的解决方案。更值得注意的是,在进行的实验中,与对原始高维数据进行聚类相比,它还提供了更好的解决方案。

著录项

  • 来源
    《Pattern recognition letters》 |2012年第13期|p.1749-1755|共7页
  • 作者单位

    INESC-ID Lisboa and Instituto Superior Tecnico, Technical University of Lisbon, Av. Prof. Dr. Anibal Cavaco Silva, 2744-016 Porto Salvo, Portugal;

    INESC-ID Lisboa and Instituto Superior Tecnico, Technical University of Lisbon, Av. Prof. Dr. Anibal Cavaco Silva, 2744-016 Porto Salvo, Portugal;

  • 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

    clustering; K-means; high-dimensional data; random projections;

    机译:集群K-均值高维数据随机投影;

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