DocumentCode :
2930022
Title :
Visual event detection using orientation histograms with feature point trajectory information
Author :
Pong, Hon-Keat ; Xue, Ping ; Tian, Qi
Author_Institution :
Nanyang Technol. Univ., Singapore, Singapore
fYear :
2009
fDate :
June 28 2009-July 3 2009
Firstpage :
342
Lastpage :
345
Abstract :
Visual event detection in video streams allows easier access to, and better organization of large media collections. This paper presents an event detection framework with a novel feature that incorporates flow, appearance and trajectory information jointly. While previous event detection methods have been designed for understanding human behaviours where the camera is either static or with minimal motion, a more general approach is needed as real-life events are always subjected to fast camera motion and involve non-human dynamic objects. Inspired by the success of dense and overlapping orientation histograms in human detection, we build an event descriptor using orientation histograms augmented with feature point trajectory information. We put our system to test on tennis videos which have significant camera motion and multiple dynamic objects, and achieved good classification performance under a comparable setting.
Keywords :
feature extraction; image motion analysis; image representation; video streaming; event descriptor; feature point trajectory information; orientation histograms; overlapping orientation histograms; video streams; visual event detection; Cameras; Design methodology; Event detection; Feature extraction; Histograms; Humans; Lighting; Optical filters; Streaming media; System testing; Event Detection; Feature Extraction and Representation; Video Analysis; Video Understanding;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia and Expo, 2009. ICME 2009. IEEE International Conference on
Conference_Location :
New York, NY
ISSN :
1945-7871
Print_ISBN :
978-1-4244-4290-4
Electronic_ISBN :
1945-7871
Type :
conf
DOI :
10.1109/ICME.2009.5202504
Filename :
5202504
Link To Document :
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