A neural network approach to bayesian background modeling for video object segmentation
نویسندگان
چکیده
Object segmentation from a video stream is an essential task in video processing and forms the foundation of scene understanding, object-based video encoding (e.g. MPEG4), and various surveillance and 2D-topseudo-3D conversion applications. The task is difficult and exacerbated by the advances in video capture and storage. Increased resolution of the sequences requires development of new, more efficient algorithms for object detection and segmentation. The paper presents a novel neural network based approach to background modeling for motion based object segmentation in video sequences. The proposed approach is designed to enable efficient, highly-parallelized hardware implementation. Such a system would be able to achieve real time segmentation of high-resolution sequences.
منابع مشابه
Neural Network Approach to Bayesian Background Modeling for Video Object Segmentation
Object segmentation from a video stream is an essential task in video processing and forms the foundation of scene understanding, object-based video encoding (e.g. MPEG4), various surveillance and 2D to pseudo 3D conversion applications. The task is difficult and exacerbated by the advances in video capture and storage (e.g. HDTV, QuadHDTV). Increased resolution of the sequences requires develo...
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