Statistical Analysis for High-Dimensional Data by Arnoldo Frigessi

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Statistical Analysis for High-Dimensional Data by Arnoldo Frigessi

This book features research contributions from The Abel Symposium on Statistical Analysis for High Dimensional Data, held in Nyvågar, Lofoten, Norway, in May 2014.

The focus of the symposium was on statistical and machine learning methodologies specifically developed for inference in “big data” situations, with particular reference to genomic applications. The contributors, who are among the most prominent researchers on the theory of statistics for high dimensional inference, present new theories and methods, as well as challenging applications and computational solutions. Specific themes include, among others, variable selection and screening, penalised regression, sparsity, thresholding, low dimensional structures, computational challenges, non-convex situations, learning graphical models, sparse covariance and precision matrices, semi- and non-parametric formulations, multiple testing, classification, factor models, clustering, and preselection.

Highlighting cutting-edge research and casting light on future research directions, the contributions will benefit graduate students and researchers in computational biology, statistics and the machine learning community.

SKU Unavailable
ISBN 13 9783319270975
ISBN 10 3319270974
Title Statistical Analysis for High-Dimensional Data
Author Arnoldo Frigessi
Series Abel Symposia
Condition Unavailable
Binding Type Hardback
Publisher Springer International Publishing AG
Year published 2016-02-17
Number of pages 306
Cover note Book picture is for illustrative purposes only, actual binding, cover or edition may vary.