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Bayesian Missing Data Problems: EM, Data Augmentation and Noniterative Computation - Tan, Ming T., and Tian, Guo-Liang, and Ng, Kai Wang
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Bayesian Missing Data Problems: EM, Data Augmentation and Noniterative Computation presents solutions to missing data problems through explicit or noniterative sampling calculation of Bayesian posteriors. The methods are based on the inverse Bayes formulae discovered by one of the author in 1995. Applying the Bayesian approach to important real-world problems, the authors focus on exact numerical solutions, a conditional sampling approach via data augmentation, and a noniterative sampling approach via EM-type algorithms. ...

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Bayesian Missing Data Problems: EM, Data Augmentation and Noniterative Computation 2019, Chapman & Hall/CRC

ISBN-13: 9780367385309

Paperback

Bayesian Missing Data Problems: EM, Data Augmentation and Noniterative Computation 2009, CRC Press, Oxford

ISBN-13: 9781420077490

Hardcover