4.5 Article

A Semiparametric Transition Model with Latent Traits for Longitudinal Multistate Data

期刊

BIOMETRICS
卷 64, 期 4, 页码 1032-1042

出版社

WILEY-BLACKWELL PUBLISHING, INC
DOI: 10.1111/j.1541-0420.2008.01011.x

关键词

Aging study; Competing risk; Dependent censoring; Duration state model; Frailty; Joint modeling; Latent variable; Latent trait; Longitudinal data; Multistate transition; Survival analysis

资金

  1. NIMH [1R01MH66187-01A2]
  2. NIA [R01AG022993, R37AG17560, K24AG021507]
  3. Yale Claude D. Pepper Older Americans Independence Center [P30AG21342]

向作者/读者索取更多资源

We propose a general multistate transition model. The model is developed for the analysis of repeated episodes of multiple states representing different health status. Transitions among multiple states are modeled jointly using multivariate latent traits with factor loadings. Different types of state transition are described by flexible transition-specific nonparametric baseline intensities. A state-specific latent trait is used to capture individual tendency of the sojourn in the state that cannot be explained by covariates and to account for correlation among repeated sojourns in the same state within an individual. Correlation among sojourns across different states within an individual is accounted for by the correlation between the different latent traits. The factor loadings for a latent trait accommodate the dependence of the transitions to different competing states from a same state. We obtain the semiparametric maximum likelihood estimates through an expectation-maximization (EM) algorithm. The method is illustrated by studying repeated transitions between independence and disability states of activities of daily living (ADL) with death as an absorbing state in a longitudinal aging study. The performance of the estimation procedure is assessed by simulation studies.

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