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Titlebook: Bayesian Statistics and New Generations; BAYSM 2018, Warwick, Raffaele Argiento,Daniele Durante,Sara Wade Conference proceedings 2019 Sprin

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Mireille Hildebrandt,Bernhard Anrign are available. In this paper, we propose as novel approach for modelling count data in an open population where individuals can arrive and depart from the site during the sampling period. A Bayesian nonparametric prior, known as Polya Tree, is used for modelling the bivariate density of arrival an
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Mark N. Gasson,Eleni Kosta,Diana M. Bowmanwhich test data on an observable is realised, subsequent to the learning of the functional relationship between these variables. We present a novel Bayesian method to deal with such a problem, in which we learn the system function of a stationary dynamical system, for which only test data on a vecto
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Robert Yarchoan,Hiroaki Mitsuyam walk Metropolis is widely used to conduct such sampling, but such a method can converge slowly for medium dimension problems, or when the joint structure of the distributions to sample is complex. We propose a Metropolis–Hastings (MH) algorithm based on a multidimensional Gaussian proposal that ta
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Robert Yarchoan,Hiroaki Mitsuya through the factorisation of the joint probability distribution of the underlying variables. When fitting an ABN model, the choice of the prior for the parameters is of crucial importance. If an inadequate prior—like a not sufficiently informative one—is used, data separation and data sparsity may
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