DocumentCode :
2575332
Title :
Robust traffic event extraction via content understanding for highway surveillance system
Author :
Yoneyama, Akio ; Yeh, Chia H. ; Kuo, C. C Jay
Author_Institution :
Multimedia Commun. Lab., KDDI R&D Labs. Inc., Saitama, Japan
Volume :
3
fYear :
2004
fDate :
27-30 June 2004
Firstpage :
1679
Abstract :
A method to extract traffic events by integrating the low-level, middle-level, and high-level feature extraction modules is developed in this research. The low-level module extracts features such as motion, size, and location. The middle-level module builds a bridge between the road surface plane in the real world and the captured image plane via geometric analysis. Finally, the high-level module identifies traffic events such as "traffic jam", "lane change", and "traffic rule violation", which require the understanding of video content in a specific knowledge domain. In the high-level module, various traffic events are related to motion characteristics obtained from the middle-level module. It is demonstrated by experimental results that the proposed system can achieve robust traffic event extraction.
Keywords :
computational geometry; feature extraction; motion estimation; road traffic; surveillance; video signal processing; captured image plane; feature extraction modules; geometric analysis; highway surveillance system; intelligent transportation systems; lane change; location extraction; motion extraction; road surface plane; robust traffic event extraction; size extraction; traffic jam identification; traffic rule violation; video content understanding; vision-based traffic monitoring systems; Data mining; Feature extraction; Image analysis; Intelligent transportation systems; Monitoring; Road transportation; Robustness; Surveillance; Traffic control; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia and Expo, 2004. ICME '04. 2004 IEEE International Conference on
Print_ISBN :
0-7803-8603-5
Type :
conf
DOI :
10.1109/ICME.2004.1394575
Filename :
1394575
Link To Document :
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