DocumentCode :
3058558
Title :
A Video-Based Traffic Congestion Monitoring System Using Adaptive Background Subtraction
Author :
Zhu, Fei
Author_Institution :
Sch. of Comput. Sci. & Technol., Soochow Univ., Suzhou, China
Volume :
2
fYear :
2009
fDate :
22-24 May 2009
Firstpage :
73
Lastpage :
77
Abstract :
The importance of effective and efficient traffic congestion monitoring grows with the enlarging of urban scale and increasing number of vehicles. We develop a traffic congestion monitoring system which is based on adaptive background subtraction. The system reads real time monitoring video from communications department and converts it into images. After that, we change them into corresponding gray images and carry out image binarization with dynamic multiple thresholds method which selects thresholds depending on pixel, grayscale and pixel position. Afterwards we perform noise reduction with an adaptive median filtering which, taking environmental and other factors into account, dynamically changes median filtering window scale in accordance with the noise density. To fit actual environmental changing, the system updates the background periodically by dynamic background refreshing method. We also put forward an adaptive background subtraction method, which can remove burst noise, to identify the moving objects and get total movement in a given time. Finally, the system determines whether the congestion occurs by comparison result of the total movement and predefined threshold. With the system, traffic management department can facilitate rapid access to the road traffic conditions and real-time traffic congestion monitoring.
Keywords :
adaptive filters; image segmentation; median filters; monitoring; road traffic; traffic engineering computing; video signal processing; adaptive background subtraction; adaptive median filtering window scale; dynamic multiple threshold method; gray image; image binarization; real time monitoring video; traffic management department; video-based traffic congestion monitoring system; Adaptive filters; Adaptive systems; Filtering; Monitoring; Noise reduction; Pixel; Real time systems; Vehicle dynamics; Vehicles; Working environment noise; adaptive background subtraction; adaptive median filtering; dymanic thresholds; traffic congestion detection; traffic monitoring;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronic Commerce and Security, 2009. ISECS '09. Second International Symposium on
Conference_Location :
Nanchang
Print_ISBN :
978-0-7695-3643-9
Type :
conf
DOI :
10.1109/ISECS.2009.64
Filename :
5209861
Link To Document :
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