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Model selection in random effects models for directed graphs using approximated Bayes factors
Authors:Bonne J. H. Zijlstra   Marijtje A. J. van  Duijn   Tom A. B. Snijders
Affiliation:Department of Sociology/Statistics and Measurement Theory, Heijmans Institute/ICS, University of Groningen, Grote Rozenstraat 31, 9712 TG, Groningen, the Netherlands
Abstract:With the development of an MCMC algorithm, Bayesian model selection for the p 2 model for directed graphs has become possible. This paper presents an empirical exploration in using approximate Bayes factors for model selection. For a social network of Dutch secondary school pupils from different ethnic backgrounds it is investigated whether pupils report that they receive more emotional support from within their own ethnic group. Approximated Bayes factors seem to work, but considerable margins of error have to be reckoned with.
Keywords:p 2 model    social network analysis    random effects    MCMC estimation
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