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A systematic comparison and evaluation of biclustering methods for gene expression data

机译:基因表达数据的双聚类方法的系统比较和评估

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摘要

Motivation: In recent years, there have been various efforts to overcome the limitations of standard clustering approaches for the analysis of gene expression data by grouping genes and samples simultaneously. The underlying concept, which is often referred to as biclustering, allows to identify sets of genes sharing compatible expression patterns across subsets of samples, and its usefulness has been demonstrated for different organisms and datasets. Several biclustering methods have been proposed in the literature; however, it is not clear how the different techniques compare with each other with respect to the biological relevance of the clusters as well as with other characteristics such as robustness and sensitivity to noise. Accordingly, no guidelines concerning the choice of the biclustering method are currently available.
机译:动机:近年来,人们进行了各种努力来克服标准聚类方法的局限性,即通过同时对基因和样本进行分组来分析基因表达数据。潜在的概念(通常称为双聚类分析)可以识别在样品子集之间共享兼容表达模式的基因集,其有效性已在不同生物和数据集中得到证明。文献中已经提出了几种双簇方法。然而,目前尚不清楚不同技术在集群的生物学相关性以及其他特性(例如鲁棒性和对噪声的敏感性)方面如何相互比较。因此,目前尚无关于选择双簇法的指南。

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