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A non-supervised approach for repeated sequence detection in TV broadcast streams

机译:电视广播流中重复序列检测的一种非监督方法

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摘要

In this paper, a novel method for repeated sequence detection in an audio-visual TV broadcast is proposed. This method is required for TV broadcast macro-segmentation which is at the root of many novel services related to TV broadcast and in particular to the TV-on-Demand service. Repeated sequence detection allows inter-program detection (commercials, jingles, credits, ...), which allows the segmentation of the TV broadcast and the extraction of useful programs. Our method is completely non-supervised, that is, it does not require a manually created reference database. It relies on a micro-clustering technique that groups similar audio/visual feature vectors. Clusters are then analyzed and repeated sequences are detected. This method is able to continuously analyze the TV broadcast and to periodically return analysis results. The efficiency and effectiveness of the method have been shown on two real broadcasts of 12 h and 7 days.
机译:本文提出了一种在视听电视广播中重复序列检测的新方法。电视广播宏分段需要此方法,这是许多与电视广播有关的新颖服务的基础,尤其是与点播电视服务有关。重复的序列检测可以进行节目间检测(商业,铃声,片尾等),从而可以分割电视广播并提取有用的节目。我们的方法是完全不受监督的,也就是说,它不需要手动创建的参考数据库。它依赖于将相似的音频/视频特征向量进行分组的微簇技术。然后分析聚类并检测重复的序列。此方法能够连续分析电视广播并定期返回分析结果。该方法的效率和有效性已在12小时和7天的两次真实广播中显示。

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