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Supervised cluster analysis for microarray data based on multivariate Gaussian mixture

机译:基于多元高斯混合的微阵列数据监督聚类分析

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摘要

Motivation: Grouping genes having similar expression patterns is called gene clustering, which has been proved to be a useful tool for extracting underlying biological information of gene expression data. Many clustering procedures have shown success in microarray gene clustering; most of them belong to the family of heuristic clustering algorithms. Model-based algorithms are alternative clustering algorithms, which are based on the assumption that the whole set of microarray data is a finite mixture of a certain type of distributions with different parameters. Application of the model-based algorithms to unsupervised clustering has been reported. Here, for the first time, we demonstrated the use of the model-based algorithm in supervised clustering of microarray data. Results: We applied the proposed methods to real gene expression data and simulated data. We showed that the supervised model-based algorithm is superior over the unsupervised method and the support vector machines (SVM) method.
机译:动机:将具有相似表达模式的基因分组称为基因聚类,这已被证明是提取基因表达数据的基础生物学信息的有用工具。许多聚类程序已在微阵列基因聚类中显示出成功;它们大多数属于启发式聚类算法家族。基于模型的算法是备选的聚类算法,其基于以下假设:整个微阵列数据集是具有不同参数的某种分布类型的有限混合。据报道,基于模型的算法在无监督聚类中的应用。在这里,我们首次展示了基于模型的算法在微阵列数据监督聚类中的使用。结果:我们将提出的方法应用于真实基因表达数据和模拟数据。我们表明,基于监督模型的算法优于无监督方法和支持向量机(SVM)方法。

著录项

  • 来源
    《Bioinformatics》 |2004年第12期|p. 1905-1913|共9页
  • 作者

    Yi Qu; Shizhong Xu;

  • 作者单位

    Department of Botany and Plant Sciences, University of California, Riverside, CA 92521, USA;

    Department of Botany and Plant Sciences, University of California, Riverside, CA 92521, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物科学;
  • 关键词

  • 入库时间 2022-08-17 23:50:19

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