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Dynamic Bayesian analysis of generalized odds ratios assuming multivariate skew-normal distribution for the error terms in the system equation
Affiliation:1. Economic, Social and Political Sciences, University of Southampton, SO17 1BJ, United Kingdom;2. Center for Research in Economics and Statistics, ENSAI, France
Abstract:
In this paper, we develop a methodology for the dynamic Bayesian analysis of generalized odds ratios in contingency tables. It is a standard practice to assume a normal distribution for the random effects in the dynamic system equations. Nevertheless, the normality assumption may be unrealistic in some applications and hence the validity of inferences can be dubious. Therefore, we assume a multivariate skew-normal distribution for the error terms in the system equation at each step. Moreover, we introduce a moving average approach to elicit the hyperparameters. Both simulated data and real data are analyzed to illustrate the application of this methodology.
Keywords:Association models  Dynamic models  Generalized odds ratio  Risk ratio  Multivariate skew-normal
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