An edition of Bayesian nonparametrics (2010)

Bayesian nonparametrics

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Last edited by MARC Bot
June 28, 2019 | History
An edition of Bayesian nonparametrics (2010)

Bayesian nonparametrics

  • 1 Want to read

"Bayesian nonparametrics works - theoretically, computationally. The theory provides highly flexible models whose complexity grows appropriately with the amount of data. Computational issues, though challenging, are no longer intractable. All that is needed is an entry point: this intelligent book is the perfect guide to what can seem a forbidding landscape. Tutorial chapters by Ghosal, Lijoi and Prünster, Teh and Jordan, and Dunson advance from theory, to basic models and hierarchical modeling, to applications and implementation, particularly in computer science and biostatistics. These are complemented by companion chapters by the editors and Griffin and Quintana, providing additional models, examining computational issues, identifying future growth areas, and giving links to related topics. This coherent text gives ready access both to underlying principles and to state-of-the-art practice. Specific examples are drawn from information retrieval, NLP, machine vision, computational biology, biostatistics, and bioinformatics"--Provided by publisher.

Publish Date
Language
English
Pages
299

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Previews available in: English

Edition Availability
Cover of: Bayesian Nonparametrics
Bayesian Nonparametrics
2011, Cambridge University Press
in English
Cover of: Bayesian Nonparametrics
Bayesian Nonparametrics
2011, Cambridge University Press
in English
Cover of: Bayesian Nonparametrics
Bayesian Nonparametrics
2011, Cambridge University Press
in English
Cover of: Bayesian Nonparametrics
Bayesian Nonparametrics
2010, Cambridge University Press
in English
Cover of: Bayesian nonparametrics
Bayesian nonparametrics
2010, Cambridge University Press
in English
Cover of: Bayesian Nonparametrics
Bayesian Nonparametrics
2010, Cambridge University Press
in English

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Book Details


Table of Contents

An invitation to Bayesian nonparametrics / Nils Lid Hjort, Chris Holmes, Peter Müller and Stephen G. Walker
1. Bayesian nonparametric methods: motivation and ideas / Stephen G. Walker
2. The Dirichlet process, related priors, and posterior asymptotics / Subhashis Ghosal
3. Models beyond the Dirichlet process / Antonio Lijoi and Igor Prünster
4. Further models and applications / Nils Lid Hjort
5. Hierarchical Bayesian nonparametric models with applications / Yee Whye Teh and Michael I. Jordan
6. Computational issues arising in Bayesian nonparametric hierarchical models / Jim Griffin and Chris Holmes
7. Nonparametric Bayes applications to biostatistics / David B. Dunson
8. More nonparametric Bayesian models for biostatistics / Peter Müller and Fernando Quintana
Author index
Subject index.

Edition Notes

Includes bibliographical references and indexes.

Published in
Cambridge, UK, New York
Series
Cambridge series in statistical and probabilistic mathematics -- 28, Cambridge series in statistical and probabilistic mathematics -- 28.

Classifications

Dewey Decimal Class
519.5/42
Library of Congress
QA278.8 .B39 2010

The Physical Object

Pagination
viii, 299 p. :
Number of pages
299

ID Numbers

Open Library
OL24534168M
Internet Archive
bayesiannonparam00nlhj
ISBN 10
0521513464
ISBN 13
9780521513463
LCCN
2009037744
OCLC/WorldCat
441945339

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June 28, 2019 Edited by MARC Bot import existing book
December 15, 2010 Created by ImportBot initial import