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A likelihood based approach for joint modeling of longitudinal trajectories and informative censoring process
Authors:Miran A Jaffa  Ayad A Jaffa
Institution:1. Epidemiology and Population Health Department, Faculty of Health Sciences, Charleston, SC USA;2. Department of Biochemistry and Molecular Genetics, Faculty of Medicine, American University of Beirut, Beirut, Lebanon;3. Department of Medicine, Medical University of South Carolina, Charleston, SC, USA
Abstract:We propose a joint modeling likelihood-based approach for studies with repeated measures and informative right censoring. Joint modeling of longitudinal and survival data are common approaches but could result in biased estimates if proportionality of hazards is violated. To overcome this issue, and given that the exact time of dropout is typically unknown, we modeled the censoring time as the number of follow-up visits and extended it to be dependent on selected covariates. Longitudinal trajectories for each subject were modeled to provide insight into disease progression and incorporated with the number follow-up visits in one likelihood function.
Keywords:Biomarkers of kidney disease  informative right censoring  joint modeling  latent random variables  likelihood-based approach  longitudinal data  maximum likelihood estimation  shared random effects
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