4.5 Article

Consensus clustering and functional interpretation of gene-expression data

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GENOME BIOLOGY
卷 5, 期 11, 页码 -

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BIOMED CENTRAL LTD
DOI: 10.1186/gb-2004-5-11-r94

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Microarray analysis using clustering algorithms can suffer from lack of inter-method consistency in assigning related gene-expression profiles to clusters. Obtaining a consensus set of clusters from a number of clustering methods should improve confidence in gene-expression analysis. Here we introduce consensus clustering, which provides such an advantage. When coupled with a statistically based gene functional analysis, our method allowed the identification of novel genes regulated by NFkappaB and the unfolded protein response in certain B-cell lymphomas.

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