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A latent transition model with logistic regression

Authors
Chung, HwanWalls, Theodore A.Park, Yousung
Issue Date
Sep-2007
Publisher
SPRINGER
Keywords
latent transition; logistic regression; MCMC; academic achievement
Citation
PSYCHOMETRIKA, v.72, no.3, pp.413 - 435
Indexed
SCIE
SCOPUS
Journal Title
PSYCHOMETRIKA
Volume
72
Number
3
Start Page
413
End Page
435
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/125726
DOI
10.1007/s11336-005-1382-y
ISSN
0033-3123
Abstract
Latent transition models increasingly include covariates that predict prevalence of latent classes at a given time or transition rates among classes over time. In many situations, the covariate of interest may be latent. This paper describes an approach for handling both manifest and latent covariates in a latent transition model. A Bayesian approach via Markov chain Monte Carlo (MCMC) is employed in order to achieve more robust estimates. A case example illustrating the model is provided using data on academic beliefs and achievement in a low-income sample of adolescents in the United States.
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