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Description
  • The availability of a great range of prior biological knowledge about the roles and functions of genes and gene-gene interactions allows us to simplify the analysis of gene expression data to make it more robust, compact and interpretable. Here, we objectively analyze the applicability of functional clustering for the identification of groups of functionally related genes. The analysis is performed in terms of gene expression classification and uses predictive accuracy as an unbiased performance measure. Features of biological samples that originally corresponded to genes are replaced by features that correspond to the centroids of the gene clusters and are then used for classifier learning. Using ten benchmark datasets, we demonstrate that functional clustering significantly outperforms random clustering without biological relevance. We also show that functional clustering performs comparably to gene expression clustering, which groups genes according to the similarity of their expression profiles. Finally, the suitability of functional clustering as a feature extraction technique is evaluated and discussed.
  • The availability of a great range of prior biological knowledge about the roles and functions of genes and gene-gene interactions allows us to simplify the analysis of gene expression data to make it more robust, compact and interpretable. Here, we objectively analyze the applicability of functional clustering for the identification of groups of functionally related genes. The analysis is performed in terms of gene expression classification and uses predictive accuracy as an unbiased performance measure. Features of biological samples that originally corresponded to genes are replaced by features that correspond to the centroids of the gene clusters and are then used for classifier learning. Using ten benchmark datasets, we demonstrate that functional clustering significantly outperforms random clustering without biological relevance. We also show that functional clustering performs comparably to gene expression clustering, which groups genes according to the similarity of their expression profiles. Finally, the suitability of functional clustering as a feature extraction technique is evaluated and discussed. (en)
Title
  • Empirical Evidence of the Applicability of Functional Clustering through Gene Expression Classification
  • Empirical Evidence of the Applicability of Functional Clustering through Gene Expression Classification (en)
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  • Empirical Evidence of the Applicability of Functional Clustering through Gene Expression Classification
  • Empirical Evidence of the Applicability of Functional Clustering through Gene Expression Classification (en)
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  • RIV/68407700:21230/12:00193189!RIV13-MSM-21230___
http://linked.open...avai/riv/aktivita
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  • S, Z(MSM6840770012)
http://linked.open...iv/cisloPeriodika
  • 9
http://linked.open...vai/riv/dodaniDat
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  • 134225
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  • RIV/68407700:21230/12:00193189
http://linked.open...riv/jazykVysledku
http://linked.open.../riv/klicovaSlova
  • Gene Expression; Gene Set Analysis; Clustering; Feature Extraction; Classification (en)
http://linked.open.../riv/klicoveSlovo
http://linked.open...odStatuVydavatele
  • US - Spojené státy americké
http://linked.open...ontrolniKodProRIV
  • [3EC66E642F72]
http://linked.open...i/riv/nazevZdroje
  • IEEE Transactions on Computational Biology and Bioinformatics
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http://linked.open...v/svazekPeriodika
  • 3
http://linked.open...iv/tvurceVysledku
  • Kléma, Jiří
  • Krejník, Miloš
http://linked.open...ain/vavai/riv/wos
  • 000301293900014
http://linked.open...n/vavai/riv/zamer
issn
  • 1545-5963
number of pages
http://bibframe.org/vocab/doi
  • 10.1109/TCBB.2012.23
http://localhost/t...ganizacniJednotka
  • 21230
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