DocumentCode :
3672649
Title :
On pairwise costs for network flow multi-object tracking
Author :
Visesh Chari;Simon Lacoste-Julien;Ivan Laptev;Josef Sivic
Author_Institution :
INRIA and Ecole Normale Supé
fYear :
2015
fDate :
6/1/2015 12:00:00 AM
Firstpage :
5537
Lastpage :
5545
Abstract :
Multi-object tracking has been recently approached with the min-cost network flow optimization techniques. Such methods simultaneously resolve multiple object tracks in a video and enable modeling of dependencies among tracks. Min-cost network flow methods also fit well within the “tracking-by-detection” paradigm where object trajectories are obtained by connecting per-frame outputs of an object detector. Object detectors, however, often fail due to occlusions and clutter in the video. To cope with such situations, we propose to add pairwise costs to the min-cost network flow framework. While integer solutions to such a problem become NP-hard, we design a convex relaxation solution with an efficient rounding heuristic which empirically gives certificates of small suboptimality. We evaluate two particular types of pairwise costs and demonstrate improvements over recent tracking methods in real-world video sequences.
Keywords :
"Detectors","Cost function","Tracking","Joints","Image edge detection","Robustness"
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition (CVPR), 2015 IEEE Conference on
Electronic_ISBN :
1063-6919
Type :
conf
DOI :
10.1109/CVPR.2015.7299193
Filename :
7299193
Link To Document :
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