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Status已发表Published
TitleLongitudinal Data Analysis Based on Bayesian Semiparametric Method
Creator
Date Issued2023-05-01
Source PublicationAxioms
ISSN2075-1680
Volume12Issue:5
Abstract

A Bayesian semiparametric model framework is proposed to analyze multivariate longitudinal data. The new framework leads to simple explicit posterior distributions of model parameters. It results in easy implementation of the MCMC algorithm for estimation of model parameters and demonstrates fast convergence. The proposed model framework associated with the MCMC algorithm is validated by four covariance structures and a real-life dataset. A simple Monte Carlo study of the model under four covariance structures and an analysis of the real dataset show that the new model framework and its associated Bayesian posterior inferential method through the MCMC algorithm perform fairly well in the sense of easy implementation, fast convergence, and smaller root mean square errors compared with the same model without the specified autoregression structure.

KeywordBayesian semiparametric method covariance structure Dirichlet process linear mixed model longitudinal data MCMC algorithm
DOI10.3390/axioms12050431
URLView source
Indexed BySCIE
Language英语English
WOS Research AreaMathematics
WOS SubjectMathematics, Applied
WOS IDWOS:001011256000001
Scopus ID2-s2.0-85160217759
Citation statistics
Cited Times:2[WOS]   [WOS Record]     [Related Records in WOS]
Document TypeJournal article
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/10593
CollectionFaculty of Science and Technology
Corresponding AuthorJiao, Guimei
Affiliation
1.School of Mathematics and Statistics,Lanzhou University,Lanzhou,730000,China
2.Department of Statistics and Data Science,BNU-HKBU United International College,Zhuhai,519087,China
3.Guangdong Provincial Key Laboratory of Interdisciplinary Research and Application for Data Science,BNU-HKBU United International College,Zhuhai,519087,China
Recommended Citation
GB/T 7714
Jiao, Guimei,Liang, Jiajuan,Wang, Fanjuanet al. Longitudinal Data Analysis Based on Bayesian Semiparametric Method[J]. Axioms, 2023, 12(5).
APA Jiao, Guimei., Liang, Jiajuan., Wang, Fanjuan., Chen, Xiaoli., Chen, Shaokang., .. & Zhang, Fangjie. (2023). Longitudinal Data Analysis Based on Bayesian Semiparametric Method. Axioms, 12(5).
MLA Jiao, Guimei,et al."Longitudinal Data Analysis Based on Bayesian Semiparametric Method". Axioms 12.5(2023).
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