BOOK-CHAPTER

Singular Value Decomposition and Principal Component Analysis

Michael E. WallAndreas RechtsteinerLuís M. Rocha

Year: 2005 Kluwer Academic Publishers eBooks Pages: 91-109   Publisher: Springer Science+Business Media

Abstract

This chapter describes gene expression analysis by Singular Value Decomposition (SVD), emphasizing initial characterization of the data. We describe SVD methods for visualization of gene expression data, representation of the data using a smaller number of variables, and detection of patterns in noisy gene expression data. In addition, we describe the precise relation between SVD analysis and Principal Component Analysis (PCA) when PCA is calculated using the covariance matrix, enabling our descriptions to apply equally well to either method. Our aim is to provide definitions, interpretations, examples, and references that will serve as resources for understanding and extending the application of SVD and PCA to gene expression analysis.

Keywords:
Principal component analysis Singular value decomposition Decomposition Value (mathematics) Mathematics Component (thermodynamics) Singular spectrum analysis Statistics Physics Chemistry Algorithm Thermodynamics

Metrics

1180
Cited By
112.24
FWCI (Field Weighted Citation Impact)
49
Refs
1.00
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Gene expression and cancer classification
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Bioinformatics and Genomic Networks
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Gene Regulatory Network Analysis
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology

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