Bayesian Missing Data Problems


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Bayesian Missing Data Problems


Bayesian Missing Data Problems

Author: Ming T. Tan

language: en

Publisher: CRC Press

Release Date: 2009-08-26


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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-wor

Missing Data in Longitudinal Studies


Missing Data in Longitudinal Studies

Author: Michael J. Daniels

language: en

Publisher: CRC Press

Release Date: 2008-03-11


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Drawing from the authors' own work and from the most recent developments in the field, Missing Data in Longitudinal Studies: Strategies for Bayesian Modeling and Sensitivity Analysis describes a comprehensive Bayesian approach for drawing inference from incomplete data in longitudinal studies. To illustrate these methods, the authors employ

Multiple Imputation of Missing Data Using SAS


Multiple Imputation of Missing Data Using SAS

Author: Patricia Berglund

language: en

Publisher: SAS Institute

Release Date: 2014-07


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Written for users with an intermediate background in SAS programming and statistics, this book is an excellent resource for anyone seeking guidance on multiple imputation. It provides both theoretical background and practical solutions for those working with incomplete data sets in an engaging example-driven format.