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Modelling and computation using NCoRM mixtures for density regression

Published 2 Aug 2016 in stat.ME, stat.AP, stat.CO, and stat.ML | (1608.00874v3)

Abstract: Normalized compound random measures are flexible nonparametric priors for related distributions. We consider building general nonparametric regression models using normalized compound random measure mixture models. Posterior inference is made using a novel pseudo-marginal Metropolis-Hastings sampler for normalized compound random measure mixture models. The algorithm makes use of a new general approach to the unbiased estimation of Laplace functionals of compound random measures (which includes completely random measures as a special case). The approach is illustrated on problems of density regression.

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