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PMID: 16121458 Published · ppublish English Comparative Study Evaluation Study Journal Article Research Support, Non-U.S. Gov't

A stochastic method for Bayesian estimation of hidden Markov random field models with application to a color model.

Destrempes F, Mignotte M, Angers JF

Abstract

We propose a new stochastic algorithm for computing useful Bayesian estimators of hidden Markov random field (HMRF) models that we call exploration/selection/estimation (ESE) procedure. The algorithm is based on an optimization algorithm of O. François, called the exploration/selection (E/S) algorithm. The novelty consists of using the a posteriori distribution of the HMRF, as exploration distribution in the E/S algorithm. The ESE procedure computes the estimation of the likelihood parameters and the optimal number of region classes, according to global constraints, as well as the segmentation of the image. In our formulation, the total number of region classes is fixed, but classes are allowed or disallowed dynamically. This framework replaces the mechanism of the split-and-merge of regions that can be used in the context of image segmentation. The procedure is applied to the estimation of a HMRF color model for images, whose likelihood is based on multivariate distributions, with each component following a Beta distribution. Meanwhile, a method for computing the maximum likelihood estimators of Beta distributions is presented. Experimental results performed on 100 natural images are reported. We also include a proof of convergence of the E/S algorithm in the case of nonsymmetric exploration graphs.

MeSH Terms
Algorithms Artificial Intelligence Bayes Theorem Color Computer Simulation Image Enhancement/methods Image Interpretation, Computer-Assisted/methods Imaging, Three-Dimensional/methods Information Storage and Retrieval/methods Markov Chains Models, Statistical Numerical Analysis, Computer-Assisted Pattern Recognition, Automated/methods Signal Processing, Computer-Assisted Stochastic Processes
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Destrempes François
Département d'Informatique et de Recherche Opérationnelle, Université de Montréal, Montréal, H3C 3J7 QC Canada.
Mignotte Max
Angers Jean-François
Article Info
Journal
IEEE transactions on image processing : a publication of the IEEE Signal Processing Society
Abbr.
IEEE Trans Image Process
ISSN
1057-7149
Published
2005-08-00
Pages
1096-108
Language
English
Region
United States
NLM ID
9886191
Subset
IM
Analysis Services
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