Logistic regression for disease classification using microarray data: model selection in a large p and small n case

Motivation: Logistic regression is a standard method for building prediction models for a binary outcome and has been extended for disease classification with microarray data by many authors. A feature (gene) selection step, however, must be added to penalized logistic modeling due to a large number...

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Veröffentlicht in:Bioinformatics Jg. 23; H. 15; S. 1945 - 1951
Hauptverfasser: Liao, J.G., Chin, Khew-Voon
Format: Journal Article
Sprache:Englisch
Veröffentlicht: Oxford Oxford University Press 01.08.2007
Oxford Publishing Limited (England)
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ISSN:1367-4803, 1367-4811, 1460-2059, 1367-4811
Online-Zugang:Volltext
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