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Bayesian Nonparametric Data Analysis

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Bayesian Nonparametric Data Analysis Synopsis

This book reviews nonparametric Bayesian methods and models that have proven useful in the context of data analysis. Rather than providing an encyclopedic review of probability models, the book's structure follows a data analysis perspective. As such, the chapters are organized by traditional data analysis problems. In selecting specific nonparametric models, simpler and more traditional models are favored over specialized ones.

The discussed methods are illustrated with a wealth of examples, including applications ranging from stylized examples to case studies from recent literature. The book also includes an extensive discussion of computational methods and details on their implementation. R code for many examples is included in online software pages.

About This Edition

ISBN: 9783319368429
Publication date:
Author: Peter Müller, Fernando Andres Quintana, Alejandro Jara, Tim Hanson
Publisher: Springer an imprint of Springer International Publishing
Format: Paperback
Pagination: 193 pages
Series: Springer Series in Statistics
Genres: Probability and statistics
Mathematical and statistical software