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Clustering of scene repeats for essential rushes preview

机译:场景重复的聚类,用于紧急抢先预览

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This paper focuses on a specific type of unedited video content, called rushes, which are used for movie editing and usually present a high-level of redundancy. Our goal is to automatically extract a summarized preview, where redundant material is diminished without discarding any important event. To achieve this, rushes content has been first analysed and modeled. Then different clustering techniques on shot key-frames are presented and compared in order to choose the best representative segments to enter the preview. Experiments performed on TRECVID data are evaluated by computing the mutual information between the obtained results and a manually annotated ground-truth.
机译:本文着重于一种特定类型的未经编辑的视频内容,称为加急(rush),这些内容用于电影编辑,通常具有较高的冗余度。我们的目标是自动提取摘要预览,其中多余的材料将被减少而不会丢弃任何重要事件。为了实现这一目标,急件的内容已首先进行分析和建模。然后提出并比较镜头关键帧上的不同聚类技术,以选择最佳的代表性片段来进入预览。通过计算获得的结果与手动注释的地面真相之间的互信息,可以评估对TRECVID数据进行的实验。

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