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Estimation of generalized mixture in the case of correlated sensors

  • CNRS SAMOVAR UMR 5157

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Résumé

This paper deals with unsupervised Bayesian classification of multidimensional data. We propose an extension of a recent method of generalized mixture estimation to correlated sensors case. The method proposed is valid in the independent data case, as well as in the hidden Markov chain or field model case, with known applications in signal processing, particularly speech or image processing. The efficiency of the method proposed is shown via some simulations concerning hidden Markov fields, with application to unsupervised image segmentation.

langue originaleAnglais
Pages (de - à)308-312
Nombre de pages5
journalIEEE Transactions on Image Processing
Volume9
Numéro de publication2
Les DOIs
étatPublié - 1 janv. 2000
Modification externeOui

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