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Compatible prior distributions for directed acyclic graph models
Authors:Alberto Roverato  Guido Consonni
Institution:University of Modena and Reggio Emilia, Italy; University of Pavia, Italy
Abstract:Summary.  The application of certain Bayesian techniques, such as the Bayes factor and model averaging, requires the specification of prior distributions on the parameters of alternative models. We propose a new method for constructing compatible priors on the parameters of models nested in a given directed acyclic graph model, using a conditioning approach. We define a class of parameterizations that is consistent with the modular structure of the directed acyclic graph and derive a procedure, that is invariant within this class, which we name reference conditioning.
Keywords:Bayes factor  Directed acyclic graph  Fisher information matrix  Graphical model  Group reference prior  Invariance  Jeffreys conditioning  Reference conditioning  Reparameterization
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