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Semantic audiovisual analysis for video summarization

机译:用于视频摘要的语义视听分析

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This paper proposes a semantic audiovisual analysis approach for video summarization. The sequence to be analyzed is first segmented into scenes according to audio similarity. Some global clues such as loudness, the ratio of unrelated shots, and the affective relationship between the scenes and the whole sequence are employed to compute the semantic scene importance. The shots in each scene are grouped based on the luminance histograms, and the semantic shot importance is then calculated using selected audio and video features. Subsequently, key frames are extracted according to the semantic frame importance computed based on certain visual features, such as attention region and motion information. This approach is effective to generate a representative video summary whilst avoiding some disadvantages of the traditional video summarization methods. Experimental results demonstrate promising performance of the proposed approach.
机译:本文提出了一种用于视频摘要的语义视听分析方法。首先根据音频相似度将要分析的序列分割为场景。一些全局性线索(例如响度,无关镜头的比率以及场景与整个序列之间的情感关系)被用于计算语义场景重要性。根据亮度直方图对每个场景中的镜头进行分组,然后使用选定的音频和视频功能来计算语义镜头的重要性。随后,根据基于某些视觉特征(例如关注区域和运动信息)计算出的语义框架重要性,提取关键帧。这种方法有效地生成了具有代表性的视频摘要,同时避免了传统视频摘要方法的某些缺点。实验结果证明了该方法的良好前景。

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