Disparity Map Refinement for Video Based Scene Change Detection Using a Mobile Stereo Camera Platform

Pattern Recognition(2010)

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摘要
This paper presents a novel disparity map refinement method and vision based surveillance framework for the task of detecting objects of interest in dynamic outdoor environments from two stereo video sequences taken at different times and from different viewing angles by a mobile camera platform. The proposed framework includes several steps, the first of which computes disparity maps of the same scene in two video sequences. Preliminary disparity images are refined based on estimated disparities in neighboring frames. Segmentation is performed to estimate ground planes, which in turn are used for establishing spatial registration between the two video sequences. Finally, the regions of change are detected using the combination of texture and intensity gradient features. We present experiments on detection of objects of different sizes and textures in real videos.
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关键词
preliminary disparity image,video signal processing,estimated disparity,vision based surveillance framework,video sequences,disparity map refinement,intensity gradient feature,image segmentation,different time,real video,feature detection,video cameras,scene change detection,different viewing angle,mobile stereo camera platform,novel disparity map refinement,different size,feature extraction,change detection,image sequences,texture feature,object detection,disparity map,video based scene change detection,image registration,stereo video,stereo image processing,image texture,stereo vision,video sequence,video surveillance,lighting,estimation,pixel,mobile communication
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