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Particle filters with independent resampling

  • Université Paris-Saclay
  • Institut Mines-Télécom

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1 Citation (Scopus)

Résumé

In many signal processing applications we aim to track a state of interest given available observations. Among existing techniques, sequential Monte Carlo filters are importance sampling-based algorithms meant to propagate in time a set of weighted particles which represent the a posteriori density of interest. As is well known weights tend to degenerate over time, and resampling is a commonly used rescue for discarding particles with low weight. Unfortunately conditionally independent resampling produces a set of dependent samples and the technique suffers from sample impoverishment. In this paper we modify the resampling step of particle filtering techniques in order to produce independent samples per iteration. We validate our technique via simulations.

langue originaleAnglais
titre2016 IEEE International Conference on Acoustics, Speech and Signal Processing, ICASSP 2016 - Proceedings
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages3994-3998
Nombre de pages5
ISBN (Electronique)9781479999880
Les DOIs
étatPublié - 18 mai 2016
Modification externeOui
Evénement41st IEEE International Conference on Acoustics, Speech and Signal Processing, ICASSP 2016 - Shanghai, Chine
Durée: 20 mars 201625 mars 2016

Série de publications

NomICASSP, IEEE International Conference on Acoustics, Speech and Signal Processing - Proceedings
Volume2016-May
ISSN (imprimé)1520-6149

Une conférence

Une conférence41st IEEE International Conference on Acoustics, Speech and Signal Processing, ICASSP 2016
Pays/TerritoireChine
La villeShanghai
période20/03/1625/03/16

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