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[NT 33762] ISBD
Bayesian model selection and statistical modeling
[NT 42944] Record Type:
[NT 8598] Electronic resources : [NT 40817] monographic
[NT 47261] Author:
AndoTomohiro,
[NT 47351] Place of Publication:
Boca Raton, FL
[NT 47263] Published:
Chapman & Hall/CRC;
[NT 47352] Year of Publication:
c2010
[NT 47264] Description:
1 online resource (xiv, 284 p.)ill :
[NT 47298] Series:
Statistics : textbooks and monographs
[NT 47266] Subject:
Bayes Theorem -
[NT 47266] Subject:
Statistics as Topic -
[NT 47266] Subject:
Models, Theoretical -
[NT 47266] Subject:
Bayesian statistical decision theory -
[NT 47266] Subject:
Mathematical statistics -
[NT 47266] Subject:
Mathematical models -
[NT 51458] Online resource:
http://www.crcnetbase.com/isbn/978-1-4398-3614-9
[NT 47265] Notes:
"A Chapman & Hall Book."
[NT 51398] Summary:
"Along with many practical applications, Bayesian Model Selection and Statistical Modeling presents an array of Bayesian inference and model selection procedures. It thoroughly explains the concepts, illustrates the derivations of various Bayesian model selection criteria through examples, and provides R code for implementation. The author shows how to implement a variety of Bayesian inference using R and sampling methods, such as Markov chain Monte Carlo. He covers the different types of simulation-based Bayesian model selection criteria, including the numerical calculation of Bayes factors, the Bayesian predictive information criterion, and the deviance information criterion. He also provides a theoretical basis for the analysis of these criteria. In addition, the author discusses how Bayesian model averaging can simultaneously treat both model and parameter uncertainties. Selecting and constructing the appropriate statistical model significantly affect the quality of results in decision making, forecasting, stochastic structure explorations, and other problems. Helping you choose the right Bayesian model, this book focuses on the framework for Bayesian model selection and includes practical examples of model selection criteria"--Publisher's description
[NT 50961] ISBN:
9781439836156electronic bk.
[NT 50961] ISBN:
1439836159electronic bk.
[NT 50961] ISBN:
hbk.
[NT 50961] ISBN:
hbk.
[NT 60779] Content Note:
Introduction to Bayesian analysis -- Asymptotic approach for Bayesian inference -- Computational approach for Bayesian inference -- Bayesian approach for model selection -- Simulation approach for computing the marginal likelihood -- Various Bayesian model selection criteria --Theoretical development and comparisons -- Bayesian model averaging
Bayesian model selection and statistical modeling
Ando, Tomohiro
Bayesian model selection and statistical modeling
/ Tomohiro Ando - Boca Raton, FL : Chapman & Hall/CRC, c2010. - 1 online resource (xiv, 284 p.) ; ill. - (Statistics : textbooks and monographs).
Introduction to Bayesian analysis -- Asymptotic approach for Bayesian inference -- Computational approach for Bayesian inference -- Bayesian approach for model selection -- Simulation approach for computing the marginal likelihood -- Various Bayesian model selection criteria --Theoretical development and comparisons -- Bayesian model averaging.
"A Chapman & Hall Book."Description based on print version record.
Includes bibliographical references (p. 265-284).
ISBN 9781439836156ISBN 1439836159
Bayes TheoremStatistics as TopicModels, TheoreticalBayesian statistical decision theoryMathematical statisticsMathematical models
Bayesian model selection and statistical modeling
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"Along with many practical applications, Bayesian Model Selection and Statistical Modeling presents an array of Bayesian inference and model selection procedures. It thoroughly explains the concepts, illustrates the derivations of various Bayesian model selection criteria through examples, and provides R code for implementation. The author shows how to implement a variety of Bayesian inference using R and sampling methods, such as Markov chain Monte Carlo. He covers the different types of simulation-based Bayesian model selection criteria, including the numerical calculation of Bayes factors, the Bayesian predictive information criterion, and the deviance information criterion. He also provides a theoretical basis for the analysis of these criteria. In addition, the author discusses how Bayesian model averaging can simultaneously treat both model and parameter uncertainties. Selecting and constructing the appropriate statistical model significantly affect the quality of results in decision making, forecasting, stochastic structure explorations, and other problems. Helping you choose the right Bayesian model, this book focuses on the framework for Bayesian model selection and includes practical examples of model selection criteria"--Publisher's description
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http://www.crcnetbase.com/isbn/978-1-4398-3614-9
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