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Information-theoretic temporal segmentation of videos and applications : multiscale keyframe selection and transition detection

机译:视频及其应用的信息理论时间分段:多尺度关键帧选择和过渡检测

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摘要

The first step in the analysis of video content is the partitioning of a long video sequence into short homogeneous temporal segments. The homogeneity property ensures that the segments are taken by a single camera and represent a continuous action in time and space. These segments can then be used as atomic temporal components for higher level analysis like browsing, classification, indexing and retrieval. The novelty of our approach is to use color information to partition the video into segments dynamically homogeneous using a criterion inspired by compact coding theory. We perform an information-based segmentation using a Minimum Message Length (MML) criterion and minimization by a Dynamic Programming Algorithm (DPA). We show that our method is efficient and robust to detect all types of transitions in a generic manner. A specific detector for each type of transition of interest therefore becomes unnecessary. We illustrate our technique by two applications: a multiscale keyframe selection and a generic shot boundaries detection.
机译:视频内容分析的第一步是将长视频序列划分为短的同质时间段。同质性确保片段由单个摄像机拍摄并代表时间和空间上的连续动作。然后可以将这些片段用作原子时间成分,以进行更高级别的分析,例如浏览,分类,索引和检索。我们的方法的新颖之处在于,使用色彩信息将视频压缩为紧凑的编码理论所启发的标准,将视频动态均匀地划分为多个片段。我们使用最小消息长度(MML)准则执行基于信息的分段,并通过动态编程算法(DPA)进行最小化。我们证明了我们的方法以通用的方式有效地检测所有类型的过渡。因此,无需针对每种感兴趣的跃迁类型使用特定的检测器。我们通过两个应用来说明我们的技术:多尺度关键帧选择和通用镜头边界检测。

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