Statistics for High-Dimensional Data
Produktnummer:
189cf7588966274df88a245522dcfe847c
Autor: | Bühlmann, Peter van de Geer, Sara |
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Themengebiete: | L1-regularization algorithms oracle inequalities sparsity variable and feature selection |
Veröffentlichungsdatum: | 08.06.2011 |
EAN: | 9783642201912 |
Sprache: | Englisch |
Seitenzahl: | 558 |
Produktart: | Gebunden |
Verlag: | Springer Berlin |
Untertitel: | Methods, Theory and Applications |
Produktinformationen "Statistics for High-Dimensional Data"
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.

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