DocumentCode :
3669586
Title :
Uncertainty fusion based object recognition and tracking in maritime scenes using spatiotemporal active contours
Author :
Ikhlef Bechar;Frederic Bouchara;Thibault Lelore;Vincente Guis;Michel Grimaldi
Author_Institution :
LSIS Laboratory, Toulon University, France
Volume :
1
fYear :
2014
Firstpage :
682
Lastpage :
689
Abstract :
This article addresses the problem of near real time video analysis of a maritime scene using a (moving) airborne RGB video camera in the goal of detecting and eventually recognizing a target maritime vessel. This is a very challenging problem mainly due to the high level of uncertainty of a maritime scene including a dynamic and noisy background, camera´s and target´s motions, and broad variability of background´s versus target´s appearances. We propose an approach which attempts to combine several types of spatiotemporal uncertainty in a single probabilistic framework. This allows to achieve a likelihood ratio with respect to any possible spatiotemporal configuration of the 2D+T video volume. Using the MAP estimation criterion, such a problem can be recast as as an energy minimization problem that we solve efficiently using a spatiotemporal active contour approach. We demonstrate the feasibility of the proposed approach using real maritime videos.
Keywords :
"Spatiotemporal phenomena","Image color analysis","Streaming media","Mathematical model","Uncertainty","Cameras","Trajectory"
Publisher :
ieee
Conference_Titel :
Computer Vision Theory and Applications (VISAPP), 2014 International Conference on
Type :
conf
Filename :
7294874
Link To Document :
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