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arxiv: 1202.0078 · v1 · pith:FVE6YSALnew · submitted 2012-02-01 · 📊 stat.ME · stat.CO

A Class Coupler for Perfect Sampling from Continuous Distributions With and Without Atoms

classification 📊 stat.ME stat.CO
keywords classcontinuoussimulationalgorithmcouplerdensitiesdiscretedistributions
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We consider the simulation of distributions that are a mixture of discrete and continuous components. We extend a Metropolis-Hastings-based perfect sampling algorithm of Corcoran and Tweedie to allow for a broader class of transition candidate densities. The resulting algorithm, know as a "class coupler", is fast to implement and is applicable to purely discrete or purely continuous densities as well. Our work is motivated by the study of a composite hypothesis test in a Bayesian setting via posterior simulation and we give simulation results for some problems in this area.

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