Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition

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Aside from distribution theory, projections and the singular value decomposition (SVD) are the two most important concepts for understanding the basic mechanism of multivariate analysis. The former underlies the least squares estimation in regression analysis, which is essentially a projection of one subspace onto another, and the latter underlies principal component analysis, which seeks to find ...

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Aside from distribution theory, projections and the singular value decomposition (SVD) are the two most important concepts for understanding the basic mechanism of multivariate analysis. The former underlies the least squares estimation in regression analysis, which is essentially a projection of one subspace onto another, and the latter underlies principal component analysis, which seeks to find ...

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  • Formats: pdf
  • ISBN: 9781441998873
  • Publication Date: 6 Apr 2011
  • Publisher: Springer New York
  • Product language: English
  • Drm Setting: DRM