DocumentCode :
601197
Title :
Obstacles Extraction from a Video Taken by a Moving Camera
Author :
Shaohua Qian ; Joo Kooi Tan ; Hyoungseop Kim ; Ishikawa, Seiichiro ; Morie, Takashi
Author_Institution :
Dept. of Mech. & Control Eng., Kyushu Inst. of Technol., Kitakyushu, Japan
fYear :
2012
fDate :
12-16 Dec. 2012
Firstpage :
268
Lastpage :
273
Abstract :
In automatic collision avoidance systems, the ability to detect obstacles is important. This paper proposes a method of automatic obstacles detection employing a camera mounted on a vehicle. Although various methods of obstacles detection have already been reported, they normally detect moving objects such as pedestrians and bicycles. In this paper, a method is proposed for detecting obstacles on a road, even if they are moving or static, by the use of background modeling and road region classification. Background modeling is often used to detect moving objects when a camera is static. In this paper, we apply it to a moving camera case in order to obtain foreground images. Then we calculate the camera motion parameters using the correspondence of feature points between two consecutive images and detect the road region using motion compensation. In this road region, we carry out regional classification. We can delete all objects which are not obstacles in the foreground images based on the result of the regional classification. In the performed experiments, it is shown that the proposed method is able to extract the shape of both static and moving obstacles in a frontal view from a car.
Keywords :
collision avoidance; feature extraction; image classification; image sensors; road safety; traffic engineering computing; video signal processing; automatic collision avoidance systems; background modeling; camera motion; foreground images; moving camera; obstacles detection; obstacles extraction; road region classification; video signal processing; GMM; monocular vision; motion compensation; obstacles detection; road region detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Connected Vehicles and Expo (ICCVE), 2012 International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4673-4705-1
Type :
conf
DOI :
10.1109/ICCVE.2012.59
Filename :
6519584
Link To Document :
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