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Statistics for High-Dimensional Data - Methods, Theory and Applications (Hardcover, 2011 Ed.): Peter Buhlmann, Sara Van De Geer Statistics for High-Dimensional Data - Methods, Theory and Applications (Hardcover, 2011 Ed.)
Peter Buhlmann, Sara Van De Geer
R3,339 Discovery Miles 33 390 Ships in 12 - 17 working days

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.

Selected Works of Willem van Zwet (Hardcover, 2012): Sara Van De Geer, Marten Wegkamp Selected Works of Willem van Zwet (Hardcover, 2012)
Sara Van De Geer, Marten Wegkamp
R2,455 R1,587 Discovery Miles 15 870 Save R868 (35%) Ships in 12 - 17 working days

With this collections volume, some of the important works of Willem van Zwet are moved to the front layers of modern statistics. The selection was based on discussions with Willem, and aims at a representative sample. The result is a collection of papers that the new generations of statisticians should not be denied. They are here to stay, to enjoy and to form the basis for further research.

The papers are grouped into six themes: fundamental statistics, asymptotic theory, second-order approximations, resampling, applications, and probability. This volume serves as basic reference for fundamental statistical theory, and at the same time reveals some of its history.

The papers are grouped into six themes: fundamental statistics, asymptotic theory, second-order approximations, resampling, applications, and probability. This volume serves as basic reference for fundamental statistical theory, and at the same time reveals some of its history.

Estimation and Testing Under Sparsity - Ecole d'Ete de Probabilites de Saint-Flour XLV - 2015 (Paperback, 1st ed. 2016):... Estimation and Testing Under Sparsity - Ecole d'Ete de Probabilites de Saint-Flour XLV - 2015 (Paperback, 1st ed. 2016)
Sara Van De Geer
R2,375 Discovery Miles 23 750 Ships in 10 - 15 working days

Taking the Lasso method as its starting point, this book describes the main ingredients needed to study general loss functions and sparsity-inducing regularizers. It also provides a semi-parametric approach to establishing confidence intervals and tests. Sparsity-inducing methods have proven to be very useful in the analysis of high-dimensional data. Examples include the Lasso and group Lasso methods, and the least squares method with other norm-penalties, such as the nuclear norm. The illustrations provided include generalized linear models, density estimation, matrix completion and sparse principal components. Each chapter ends with a problem section. The book can be used as a textbook for a graduate or PhD course.

Statistics for High-Dimensional Data - Methods, Theory and Applications (Paperback, 2011 ed.): Peter Buhlmann, Sara Van De Geer Statistics for High-Dimensional Data - Methods, Theory and Applications (Paperback, 2011 ed.)
Peter Buhlmann, Sara Van De Geer
R2,871 Discovery Miles 28 710 Ships in 10 - 15 working days

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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