DocumentCode :
2383259
Title :
Traffic accident prediction using vehicle tracking and trajectory analysis
Author :
Hu, Weiming ; Xiao, Xuejuan ; Xie, Dan ; Tan, Tieniu
Author_Institution :
Inst. of Autom., Chinese Acad. of Sci., Beijing, China
Volume :
1
fYear :
2003
fDate :
12-15 Oct. 2003
Firstpage :
220
Abstract :
Intelligent visual surveillance for road vehicles is a key component for developing autonomous intelligent transportation systems. In this paper, a probabilistic model for prediction of traffic accidents using 3D model based vehicle tracking is proposed. Sample data including motion trajectories are first obtained by 3D model based vehicle tracking. A fuzzy self-organizing neural network algorithm is then applied to learn activity patterns from the sample trajectories. Vehicle activities are finally predicted by locating and matching each observed partial trajectory with the learned activity patterns, and the occurrence probability of a traffic accident is determined. Experiments with a model scene show the effectiveness of the proposed algorithm.
Keywords :
automated highways; fuzzy neural nets; image motion analysis; intelligent control; learning (artificial intelligence); road accidents; road traffic; road vehicles; self-organising feature maps; surveillance; target tracking; 3D model based vehicle tracking; activity patterns learning; autonomous intelligent transportation systems; fuzzy self-organizing neural network algorithm; intelligent visual surveillance; motion trajectory data; partial trajectory; probabilistic model; road vehicles; traffic accident prediction; traffic accident probability; trajectory analysis; vehicle activities prediction; Intelligent transportation systems; Intelligent vehicles; Predictive models; Remotely operated vehicles; Road accidents; Road transportation; Road vehicles; Surveillance; Tracking; Trajectory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Transportation Systems, 2003. Proceedings. 2003 IEEE
Print_ISBN :
0-7803-8125-4
Type :
conf
DOI :
10.1109/ITSC.2003.1251952
Filename :
1251952
Link To Document :
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