Applications of Generalized Linear Mixed Models in Actuarial Statistics
نویسندگان
چکیده
Over the last decade the use of generalized linear models (GLMs) in modelling actuarial data received a lot of attention, starting from the actuarial illustrations in the standard text by McCullagh & Nelder (1989). Standard GLMs however model a sample of independent random variables. Since actuaries very often have repeated measurements or longitudinal data (i.e. repeated measurements over time) at their disposal, this article considers statistical techniques to model such data within the framework of GLMs. Use is made of generalized linear mixed models (GLMMs) which model a transformation of the mean as a linear function of both fixed and random effects. The likelihood and Bayesian approaches to GLMMs are explained. The models are illustrated by considering classical credibility models, more general regression models for non-life ratemaking and models for loss reserving based on individual data in the context of GLMMs. Details on computation and implementation (in SAS and WinBugs) are provided.
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