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Titlebook: Principal Manifolds for Data Visualization and Dimension Reduction; Alexander N. Gorban,Balázs Kégl,Andrei Y. Zinovyev Conference proceedi

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书目名称Principal Manifolds for Data Visualization and Dimension Reduction
编辑Alexander N. Gorban,Balázs Kégl,Andrei Y. Zinovyev
视频video
丛书名称Lecture Notes in Computational Science and Engineering
图书封面Titlebook: Principal Manifolds for Data Visualization and Dimension Reduction;  Alexander N. Gorban,Balázs Kégl,Andrei Y. Zinovyev Conference proceedi
描述.In 1901, Karl Pearson invented Principal Component Analysis (PCA). Since then, PCA serves as a prototype for many other tools of data analysis, visualization and dimension reduction: Independent Component Analysis (ICA), Multidimensional Scaling (MDS), Nonlinear PCA (NLPCA), Self Organizing Maps (SOM), etc. The book starts with the quote of the classical Pearson definition of PCA and includes reviews of various methods: NLPCA, ICA, MDS, embedding and clustering algorithms, principal manifolds and SOM. New approaches to NLPCA, principal manifolds, branching principal components and topology preserving mappings are described as well. Presentation of algorithms is supplemented by case studies, from engineering to astronomy, but mostly of biological data: analysis of microarray and metabolite data. The volume ends with a tutorial "PCA and K-means decipher genome". The book is meant to be useful for practitioners in applied data analysis in life sciences, engineering, physics and chemistry; it will also be valuable to PhD students and researchers in computer sciences, applied mathematics and statistics..
出版日期Conference proceedings 2008
关键词Analysis; Clustering; algorithm; algorithms; computer; computer science; data analysis; linear optimization
版次1
doihttps://doi.org/10.1007/978-3-540-73750-6
isbn_softcover978-3-540-73749-0
isbn_ebook978-3-540-73750-6Series ISSN 1439-7358 Series E-ISSN 2197-7100
issn_series 1439-7358
copyrightSpringer-Verlag Berlin Heidelberg 2008
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