Estimation and Testing Under Sparsity: École d'Été de Probabilités de Saint-Flour XLV – 2015

Estimation and Testing Under Sparsity: École d'Été de Probabilités de Saint-Flour XLV – 2015

Author
Sara van de Geer (auth.)
Publisher
Springer International Publishing
Language
English
Edition
1
Year
2016
Page
XIII, 274
ISBN
978-3-319-32773-0, 978-3-319-32774-7
File Type
pdf
File Size
2.6 MiB

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.

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