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Semi‐parametric proportional hazards models with crossed random effects for psychometric response times
Authors:Tom Loeys  Catherine Legrand  Antonio Schettino  Gilles Pourtois
Affiliation:1. Ghent University, , Belgium;2. University of Louvain‐la‐Neuve, , Belgium;3. Institute of Psychology, University of Leipzig, , Germany
Abstract:The semi‐parametric proportional hazards model with crossed random effects has two important characteristics: it avoids explicit specification of the response time distribution by using semi‐parametric models, and it captures heterogeneity that is due to subjects and items. The proposed model has a proportionality parameter for the speed of each test taker, for the time intensity of each item, and for subject or item characteristics of interest. It is shown how all these parameters can be estimated by Markov chain Monte Carlo methods (Gibbs sampling). The performance of the estimation procedure is assessed with simulations and the model is further illustrated with the analysis of response times from a visual recognition task.
Keywords:Bayesian estimation  crossed random effects  frailty model  response time  semi‐parametric proportional hazards model
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