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Reversible jump Markov chain Monte Carlo computation and Bayesian model determination

Peter J. Green · Biometrika · 1995

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Markov chain Monte Carlo methods for Bayesian computation have until recently been restricted to problems where the joint distribution of all variables has a density with respect to some fixed standard underlying measure. They have therefore not been available for application to Bayesian model determination, where the dimensionality of the parameter vector is typically not fixed. This paper proposes a new framework for the construction of reversible Markov chain samplers that jump between parameter subspaces of differing dimensionality, which is flexible and entirely constructive. It should therefore have wide applicability in model determination problems. The methodology is illustrated with applications to multiple change-point analysis in one and two dimensions, and to a Bayesian comparison of binomial experiments.

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APA 7

Green, P. J. (1995). Reversible jump Markov chain Monte Carlo computation and Bayesian model determination. https://doi.org/10.1093/biomet/82.4.711

MLA

Green, Peter J. "Reversible jump Markov chain Monte Carlo computation and Bayesian model determination." 1995. https://doi.org/10.1093/biomet/82.4.711.

Chicago

Green, Peter J. 1995. "Reversible jump Markov chain Monte Carlo computation and Bayesian model determination.". https://doi.org/10.1093/biomet/82.4.711.

Harvard

Green, P. J. 1995, Reversible jump Markov chain Monte Carlo computation and Bayesian model determination, Biometrika, available at: https://doi.org/10.1093/biomet/82.4.711 [Accessed 8 Aug. 2026].

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Title
Reversible jump Markov chain Monte Carlo computation and Bayesian model determination
Author / contributors
Peter J. Green
Publisher
Biometrika
Publication year
1995
Language
English

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