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On sparse Fisher discriminant method for microarray data analysis

One of the applications of the discriminant analysis on microarray data is to classify patient and normal samples based on gene expression values. The analysis is especially important in medical trials and diagnosis of cancer subtypes. The main contribution of this paper is to propose a simple Fishe...

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Detalles Bibliográficos
Autores principales: Fung, Eric S, Ng, Michael K
Formato: Texto
Lenguaje:English
Publicado: Biomedical Informatics Publishing Group 2007
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2241932/
https://www.ncbi.nlm.nih.gov/pubmed/18305833
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author Fung, Eric S
Ng, Michael K
author_facet Fung, Eric S
Ng, Michael K
author_sort Fung, Eric S
collection PubMed
description One of the applications of the discriminant analysis on microarray data is to classify patient and normal samples based on gene expression values. The analysis is especially important in medical trials and diagnosis of cancer subtypes. The main contribution of this paper is to propose a simple Fisher-type discriminant method on gene selection in microarray data. In the new algorithm, we calculate a weight for each gene and use the weight values as an indicator to identify the subsets of relevant genes that categorize patient and normal samples. A l(2) - l(1) norm minimization method is implemented to the discriminant process to automatically compute the weights of all genes in the samples. The experiments on two microarray data sets have shown that the new algorithm can generate classification results as good as other classification methods, and effectively determine relevant genes for classification purpose. In this study, we demonstrate the gene selection's ability and the computational effectiveness of the proposed algorithm. Experimental results are given to illustrate the usefulness of the proposed model.
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spelling pubmed-22419322008-02-27 On sparse Fisher discriminant method for microarray data analysis Fung, Eric S Ng, Michael K Bioinformation Hypothesis One of the applications of the discriminant analysis on microarray data is to classify patient and normal samples based on gene expression values. The analysis is especially important in medical trials and diagnosis of cancer subtypes. The main contribution of this paper is to propose a simple Fisher-type discriminant method on gene selection in microarray data. In the new algorithm, we calculate a weight for each gene and use the weight values as an indicator to identify the subsets of relevant genes that categorize patient and normal samples. A l(2) - l(1) norm minimization method is implemented to the discriminant process to automatically compute the weights of all genes in the samples. The experiments on two microarray data sets have shown that the new algorithm can generate classification results as good as other classification methods, and effectively determine relevant genes for classification purpose. In this study, we demonstrate the gene selection's ability and the computational effectiveness of the proposed algorithm. Experimental results are given to illustrate the usefulness of the proposed model. Biomedical Informatics Publishing Group 2007-12-30 /pmc/articles/PMC2241932/ /pubmed/18305833 Text en © 2007 Biomedical Informatics Publishing Group This is an open-access article, which permits unrestricted use, distribution, and reproduction in any medium, for non-commercial purposes, provided the original author and source are credited.
spellingShingle Hypothesis
Fung, Eric S
Ng, Michael K
On sparse Fisher discriminant method for microarray data analysis
title On sparse Fisher discriminant method for microarray data analysis
title_full On sparse Fisher discriminant method for microarray data analysis
title_fullStr On sparse Fisher discriminant method for microarray data analysis
title_full_unstemmed On sparse Fisher discriminant method for microarray data analysis
title_short On sparse Fisher discriminant method for microarray data analysis
title_sort on sparse fisher discriminant method for microarray data analysis
topic Hypothesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2241932/
https://www.ncbi.nlm.nih.gov/pubmed/18305833
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