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Subtractive Initialization of Nonnegative Matrix Factorizations for Document Clustering

机译:用于文档聚类的非负矩阵分解的减法初始化

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摘要

Nonnegative matrix factorizations (NMF) have recently assumed an important role in several fields, such as pattern recognition, automated image exploitation, data clustering and so on. They represent a peculiar tool adopted to obtain a reduced representation of multivariate data by using additive components only, in order to learn parts-based representations of data. All algorithms for computing the NMF are iterative, therefore particular emphasis must be placed on a proper initialization of NMF because of its local convergence. The problem of selecting appropriate starting initialization matrices becomes more complex when data possess special meaning, and this is the case of document clustering. In this paper, we present a new initialization method which is based on the fuzzy subtractive scheme and used to generate initial matrices for NMF algorithms. A preliminary comparison of the proposed initialization with other commonly adopted initializations is presented by considering the application of NMF algorithms in the context of document clustering.
机译:非负矩阵分解(NMF)最近在多个领域中发挥了重要作用,例如模式识别,自动图像利用,数据聚类等。它们代表一种独特的工具,可用来仅通过使用加法组件来获得多元数据的简化表示,从而学习基于零件的数据表示。用于计算NMF的所有算法都是迭代的,因此,由于NMF的局部收敛性,因此必须特别强调NMF的正确初始化。当数据具有特殊含义时,选择合适的起始初始化矩阵的问题变得更加复杂,这就是文档聚类的情况。在本文中,我们提出了一种新的初始化方法,该方法基于模糊减法方案,可用于为NMF算法生成初始矩阵。通过考虑NMF算法在文档聚类中的应用,对建议的初始化与其他常用的初始化进行了初步比较。

著录项

  • 来源
    《Fuzzy logic and applications》|2011年|p.188-195|共8页
  • 会议地点 Trani(IT);Trani(IT)
  • 作者单位

    Dipartimento di Informatica,Universita degli Studi di Bari Aldo Moro, Via E. Orabona 4, 1-70125 Bari, Italy;

    Dipartimento di Matematica,Universita degli Studi di Bari Aldo Moro, Via E. Orabona 4, 1-70125 Bari, Italy;

    Dipartimento di Informatica,Universita degli Studi di Bari Aldo Moro, Via E. Orabona 4, 1-70125 Bari, Italy;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP273.4;
  • 关键词

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