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Author: Liang, Zhibin
Resulting in 1 citation.
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Cai, Jingheng Liang, Zhibin Sun, Rongqian Liang, Chenyi Pan, Junhao |
Bayesian Analysis of Latent Markov Models with Non-ignorable Missing Data Journal of Applied Statistics 46,13 (2019): 2299-2313. Also: https://www.tandfonline.com/doi/full/10.1080/02664763.2019.1584162 Cohort(s): NLSY97 Publisher: Taylor & Francis Group Keyword(s): Bayesian; Household Income; Modeling; Poverty Permission to reprint the abstract has not been received from the publisher. Latent Markov models (LMMs) are widely used in the analysis of heterogeneous longitudinal data. However, most existing LMMs are developed in fully observed data without missing entries. The main objective of this study is to develop a Bayesian approach for analyzing the LMMs with non-ignorable missing data. Bayesian methods for estimation and model comparison are discussed. The empirical performance of the proposed methodology is evaluated through simulation studies. An application to a data set derived from National Longitudinal Survey of Youth 1997 is presented. |
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Bibliography Citation
Cai, Jingheng, Zhibin Liang, Rongqian Sun, Chenyi Liang and Junhao Pan. "Bayesian Analysis of Latent Markov Models with Non-ignorable Missing Data." Journal of Applied Statistics 46,13 (2019): 2299-2313.
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