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Extraction of query term-related visual phrases for news video retrieval using mutual information

机译:使用互信息提取与新闻查询相关的查询词相关视觉短语

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This paper presents an approach to query term-related visual phrases extraction using mutual information for object-based news video retrieval. As visual words are useful for object representation, unstable visual words generally appear in the frame sequence of a shot. Using the appearance frequency of the visual words in a sliding window over the query term-related stories, the appearance pattern of a visual word is adopted to characterize the visual word. Based on the appearance pattern of a visual word, the mutual information between two visual words can be estimated over all of the extracted stories. The mutual information is then used to construct a visual word relation graph. Visual phrases are then extracted by discovering the complete sub-graphs from the visual word relation graph for news video retrieval. Experiments were conducted on the MATBN news video database and the experimental results show that a good precision rate for video news retrieval can be achieved.
机译:本文提出了一种使用互信息进行基于对象的新闻视频检索的查询词相关的视觉短语的方法。由于视觉单词可用于对象表示,因此不稳定的视觉单词通常会出现在镜头的帧序列中。利用视觉词在查询词相关故事上的滑动窗口中的出现频率,采用视觉词的出现模式来表征视觉词。基于视觉单词的出现模式,可以在所有提取的故事中估算两个视觉单词之间的相互信息。然后,将相互信息用于构造可视单词关系图。然后通过从可视单词关系图中发现完整的子图来提取可视短语,以进行新闻视频检索。在MATBN新闻视频数据库上进行了实验,实验结果表明可以取得较好的视频新闻检索准确率。

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