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Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition (Hardcover, 2011 Ed.): Haruo Yanai, Kei... Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition (Hardcover, 2011 Ed.)
Haruo Yanai, Kei Takeuchi, Yoshio Takane
R2,666 Discovery Miles 26 660 Ships in 18 - 22 working days

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 a subspace that captures the largest variability in the original space. This book is about projections and SVD. A thorough discussion of generalized inverse (g-inverse) matrices is also given because it is closely related to the former. The book provides systematic and in-depth accounts of these concepts from a unified viewpoint of linear transformations finite dimensional vector spaces. More specially, it shows that projection matrices (projectors) and g-inverse matrices can be defined in various ways so that a vector space is decomposed into a direct-sum of (disjoint) subspaces. Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition will be useful for researchers, practitioners, and students in applied mathematics, statistics, engineering, behaviormetrics, and other fields.

Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition (Paperback, 2011 ed.): Haruo Yanai, Kei... Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition (Paperback, 2011 ed.)
Haruo Yanai, Kei Takeuchi, Yoshio Takane
R2,427 Discovery Miles 24 270 Ships in 18 - 22 working days

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 a subspace that captures the largest variability in the original space. This book is about projections and SVD. A thorough discussion of generalized inverse (g-inverse) matrices is also given because it is closely related to the former. The book provides systematic and in-depth accounts of these concepts from a unified viewpoint of linear transformations finite dimensional vector spaces. More specially, it shows that projection matrices (projectors) and g-inverse matrices can be defined in various ways so that a vector space is decomposed into a direct-sum of (disjoint) subspaces. Projection Matrices, Generalized Inverse Matrices, and Singular Value Decomposition will be useful for researchers, practitioners, and students in applied mathematics, statistics, engineering, behaviormetrics, and other fields.

New Developments in Psychometrics - Proceedings of the International Meeting of the Psychometric Society IMPS2001. Osaka,... New Developments in Psychometrics - Proceedings of the International Meeting of the Psychometric Society IMPS2001. Osaka, Japan, July 15-19, 2001 (Paperback, Softcover reprint of the original 1st ed. 2003)
Haruo Yanai, Akinori Okada, Kazuo Shigemasu, Yutaka Kano, Jacqueline J Meulman
R1,522 Discovery Miles 15 220 Ships in 18 - 22 working days

At the International Meeting of the Psychometric Society in Osaka, Japan, more than 300 participants from 19 countries gathered to discuss recent developments in the theory and application of psychometrics. This volume of proceedings includes papers on methods of psychometrics such as the structural equation model and item response theory. The book is in eight major sections: keynote speeches and invited lectures; structural equation modeling and factor analysis; IRT and adaptive testing; multivariate statistical methods; scaling; classification methods; and independent and principal component analysis. The 80 papers collected here provide a valuable source of information for all who are concerned with psychometrics, mathematical and statistical applications, and data analysis in psychological and behavioral sciences.

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