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Efficient implementation of the Metropolis-Hastings algorithm, with application to the Cormack?Jolly?Seber model

January 1, 2008

Judicious choice of candidate generating distributions improves efficiency of the Metropolis-Hastings algorithm. In Bayesian applications, it is sometimes possible to identify an approximation to the target posterior distribution; this approximate posterior distribution is a good choice for candidate generation. These observations are applied to analysis of the Cormack?Jolly?Seber model and its extensions.

Publication Year 2008
Title Efficient implementation of the Metropolis-Hastings algorithm, with application to the Cormack?Jolly?Seber model
Authors W. A. Link, R. J. Barker
Publication Type Article
Publication Subtype Journal Article
Series Title Environmental and Ecological Statistics
Index ID 5224849
Record Source USGS Publications Warehouse
USGS Organization Patuxent Wildlife Research Center