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A latent variable model for discrete multivariate psychometric waiting times
Authors:Jeffrey A Douglas  Michael R Kosorok  Betty A Chewning
Institution:(1) Department of Biostatistics, K6-446 Clinical Science Center, University of Wisconsin, 600 Highland Avenue, 53792 Madison, WI;(2) Departments of Statistics and Biostatistics, University of Wisconsin, Madison;(3) School of Pharmacy, University of Wisconsin, Madison
Abstract:A version of the discrete proportional hazards model is developed for psychometrical applications. In such applications, a primary covariate that influences failure times is a latent variable representing a psychological construct. The Metropolis-Hastings algorithm is studied as a method for performing marginal likelihood inference on the item parameters. The model is illustrated with a real data example that relates the age at which teenagers first experience various substances to the latent ability to avoid the onset of such behaviors.We thank Michael Newton and Daode Huang for their helpful comments and suggestions.
Keywords:latent variable  frailty  Metropolis-Hastings algorithm  survival analysis
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