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Knowledge-Supported Segmentation and SemanticContents Extraction from MPEG Videos for Highlight-Based Annotation, Indexing and Retrieval

机译:知识支持的分段和语义文本从MPEG视频提取,以实现基于突出显示的注释,索引和检索

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Automatic recognition of highlights from videos is a fundamental and challenging problem for content-based indexing and retrieval applications. In this paper, we propose techniques to solve this problem by using knowledge supported extraction of semantic contents, and compressed-domain processing is employed for efficiency. Firstly, video shots are detected by using knowledge-supported rules. Then, human objects are detected via statistical skin detection. Meanwhile, camera motion like zoom in is identified. Finally, highlights of zooming in human objects are extracted and used for annotation, indexing and retrieval of the whole videos. Results from large data of test videos have demonstrated the accuracy and robustness of the proposed techniques.
机译:自动识别视频的亮点是基于内容的索引和检索应用程序的基本和挑战性问题。在本文中,我们提出了通过使用支持的语义内容的提取来解决该问题的技术,并且采用压缩域处理​​进行效率。首先,通过使用知识支持的规则来检测视频拍摄。然后,通过统计皮肤检测检测人对象。同时,识别像放大的相机运动。最后,提取了在人类对象中放大的亮点,并用于整个视频的注释,索引和检索。大型测试视频的结果证明了所提出的技术的准确性和稳健性。

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