Constrained principal component analysis and related techniques / Yoshio Takane.
2014
QA278.5 .T35 2014
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Title
Constrained principal component analysis and related techniques / Yoshio Takane.
Author
ISBN
9781466556669 (hardback)
9781466556683 (e-book)
9781466556683 (e-book)
Published
Boca Raton : Chapman and Hall/CRC, [2014]
Copyright
©2014
Language
English
Description
1 online resource (244 pages) : illustrations.
Call Number
QA278.5 .T35 2014
Dewey Decimal Classification
519.5/35
Summary
"In multivariate data analysis, regression techniques predict one set of variables from another while principal component analysis (PCA) finds a subspace of minimal dimensionality that captures the largest variability in the data. How can regression analysis and PCA be combined in a beneficial way? Why and when is it a good idea to combine them? What kind of benefits are we getting from them? Addressing these questions, Constrained Principal Component Analysis and Related Techniques shows how constrained PCA (CPCA) offers a unified framework for these approaches.The book begins with four concrete examples of CPCA that provide readers with a basic understanding of the technique and its applications. It gives a detailed account of two key mathematical ideas in CPCA: projection and singular value decomposition. The author then describes the basic data requirements, models, and analytical tools for CPCA and their immediate extensions. He also introduces techniques that are special cases of or closely related to CPCA and discusses several topics relevant to practical uses of CPCA. The book concludes with a technique that imposes different constraints on different dimensions (DCDD), along with its analytical extensions. MATLAB® programs for CPCA and DCDD as well as data to create the book's examples are available on the author's website"-- Provided by publisher.
Bibliography, etc. Note
Includes bibliographical references.
Access Note
Access limited to authorized users.
Source of Description
Description based on print version record.
Series
Monographs on statistics and applied probability (Series) ; 129.
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