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Bayesian Missing Data Problems

EM, Data Augmentation and Noniterative Computation

«In Bayesian Missing Data Problems, the authors provide a new and appealing approach to handle missing data problems (MDPs), based on noniterative methods. ... the examples and real applications following key theorems and concepts are useful for readers to further understand the results and pinpoint major advantages or drawbacks about the proposed methodology. ... I recommend this book as a valuable reference for researchers interested in MDPs, and I believe that the methodology described in the book should be included in the up-to-date literature on missing data. ... the book stimulated my interest, suggesting an alternative way to think about MDPs. ... -Biometrics, June 2011 ... [this book] sits nicely alongside Tanner's Tools for Statistical Inference. ... For those interested in Bayesian computational methods, this book will be of great interest. ... -International Statistical Review (2010), 78, 3»

Presents solutions to missing data problems through explicit or noniterative sampling calculation of Bayesian posteriors, based on the inverse Bayes formulae. This work focuses on exact numerical solutions, a conditional sampling approach via data augmentation, and a noniterative sampling approach via EM-type algorithms. Les mer

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Presents solutions to missing data problems through explicit or noniterative sampling calculation of Bayesian posteriors, based on the inverse Bayes formulae. This work focuses on exact numerical solutions, a conditional sampling approach via data augmentation, and a noniterative sampling approach via EM-type algorithms.

Detaljer

Forlag
Chapman & Hall/CRC
Innbinding
Innbundet
Språk
Engelsk
Sider
346
ISBN
9781420077490
Utgivelsesår
2009
Format
23 x 16 cm

Anmeldelser

«In Bayesian Missing Data Problems, the authors provide a new and appealing approach to handle missing data problems (MDPs), based on noniterative methods. ... the examples and real applications following key theorems and concepts are useful for readers to further understand the results and pinpoint major advantages or drawbacks about the proposed methodology. ... I recommend this book as a valuable reference for researchers interested in MDPs, and I believe that the methodology described in the book should be included in the up-to-date literature on missing data. ... the book stimulated my interest, suggesting an alternative way to think about MDPs. ... -Biometrics, June 2011 ... [this book] sits nicely alongside Tanner's Tools for Statistical Inference. ... For those interested in Bayesian computational methods, this book will be of great interest. ... -International Statistical Review (2010), 78, 3»

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