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Analysis of longitudinal data using a finite mixture model
Authors:E. Dietz  D. Böhning
Affiliation:1. Department of Epidemiology, Free University Berlin, Augustastr. 37, D-12203, Berlin, Germany
Abstract:This paper considers a finite mixture model for longitudinal data, which can be used to study the dependency of the shape of the respective follow-up curves on treatments or other influential factors and to classify these curves. An EM-algorithm to achieve the ml-estimate of the model is given. The potencies of the model are demonstrated using data of a clinical trial.
Keywords:Longitudinal data  mixture model  EM-algorithm  subject-specific model  clinical trail
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