DocumentCode :
2820466
Title :
Direction-based stochastic matching for pedestrian recognition in non-overlapping cameras
Author :
Chen, Xiaotang ; Huang, Kaiqi ; Tan, Tieniu
Author_Institution :
Nat. Lab. of Pattern Recognition, Inst. of Autom., Beijing, China
fYear :
2011
fDate :
11-14 Sept. 2011
Firstpage :
2065
Lastpage :
2068
Abstract :
Pedestrian recognition is a challenging problem in non-overlapping multi-camera object tracking. In this paper, we present a novel approach for matching pedestrians across non-overlapping multiple cameras without the need of a training phase or spatio-temporal cues across cameras. To deal with viewpoint changes, we introduce the concept of directional angles estimated using the spatio-temporal continuity in the single camera tracking. To deal with pose changes, a stochastic matching strategy is performed, where the similarity of two blobs belonging to different viewpoints is calculated by a novel similarity measurement algorithm. The experiments are performed on different multi-view datasets. Experimental results demonstrate the effectiveness and robustness of the proposed method.
Keywords :
image matching; object detection; object recognition; object tracking; pose estimation; spatiotemporal phenomena; traffic engineering computing; video cameras; video surveillance; directional angle estimation; multi-camera object tracking; multi-view datasets; non-overlapping cameras; object detection; pedestrian recognition; pose estimation; similarity measurement algorithm; spatio-temporal continuity; stochastic matching; Cameras; Conferences; Feature extraction; Indexes; Robustness; Training; Directional cues; Non-overlapping camera views; Pedestrian recognition; Stochastic matching;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing (ICIP), 2011 18th IEEE International Conference on
Conference_Location :
Brussels
ISSN :
1522-4880
Print_ISBN :
978-1-4577-1304-0
Electronic_ISBN :
1522-4880
Type :
conf
DOI :
10.1109/ICIP.2011.6115887
Filename :
6115887
Link To Document :
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