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Kamis, 01 Desember 2016

Statistics for High-Dimensional Data

Statistics for High-Dimensional Data
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By:"Peter Bühlmann","Sara van de Geer"
"Mathematics"
Published on 2011-06-08 by Springer Science & Business Media

This book presents a detailed account of recently developed approaches, including the Lasso and versions of it for various models, boosting methods, undirected graphical modeling, and procedures controlling false positive selections.

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Modern statistics deals with large and complex data sets, and consequently with models containing a large number of parameters. This book presents a detailed account of recently developed approaches, including the Lasso and versions of it for various models, boosting methods, undirected graphical modeling, and procedures controlling false positive selections. A special characteristic of the book is that it contains comprehensive mathematical theory on high-dimensional statistics combined with methodology, algorithms and illustrations with real data examples. This in-depth approach highlights the methods’ great potential and practical applicability in a variety of settings. As such, it is a valuable resource for researchers, graduate students and experts in statistics, applied mathematics and computer science.

This Book was ranked 12 by Google Books for keyword statistics pdf.

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