2007 IEEE International Conference on Image Processing - San Antonio, Texas, U.S.A. - September 16-19, 2007

Technical Program

Paper Detail

Paper:MA-P7.6
Session:Motion Detection and Estimation I
Time:Monday, September 17, 09:50 - 12:30
Presentation: Poster
Title: ENERGETIC PARTICLE FILTER FOR ONLINE MULTIPLE TARGET TRACKING
Authors: Abir El Abed; Laboratoire d'Informatique de Paris 6 (LIP6) 
 Severine Dubuisson; Laboratoire d'Informatique de Paris 6 (LIP6) 
 Dominique Bereziat; Laboratoire d'Informatique de Paris 6 (LIP6) 
Abstract: Online target tracking requires to solve two problems: data association and online dynamic estimation. Usually, association effectiveness is based on prior information and observation category. However, problems can occur for tracking quite similar targets under the constraints of missing data and complex motions. The lack in prior information limits the association performance. To remedy, we propose a novel method for data association inspired from the evolution of target's dynamic model and given by a global minimization of an energy. The concept amounts to measure the absolute geometric accuracy between features. The main advantage of our approach is that it is parameterless. We also integrate our method into the classical particle filter, that leads to what we call the Energetic Particle Filter (EPF).



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