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An Efficient Method for Near-Duplicate Video Detection

机译:近重复视频检测的有效方法

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In order to monitor video streams in real-time or search large collections of video documents, several solutions based on near-duplicate video detection have been proposed in the literature. We present in this paper an architecture based on signature-based index structures coupling visual and temporal features and on an N-gram matching and scoring framework. The techniques we cover are robust and insensitive to general video editing and/or degradation, making it ideal for re-broadcasted video search. Through the use of signature-based indexing and N-gram matching and scoring, we identify corresponding query and index contents accurately in order to detect near-duplicate videos, even when these contents constitute only a small section of the videos being compared. Experiments are carried out on large quantities of video data collected from the TRECVID 02, 03 and 04 collections and real-world video broadcasts recorded from two German TV stations. An empirical comparison over two state-of-the-art dynamic programming techniques is encouraging and demonstrates the advantage and feasibility of our method.
机译:为了在实时监视视频流或搜索大量视频文档,在文献中提出了基于近重视频检测的几种解决方案。我们在本文中呈现了一种基于签名的索引结构的架构,耦合视觉和时间特征和N-GRAM匹配和评分框架。我们覆盖的技术对于一般视频编辑和/或劣化是强大而不敏感的,使其成为重新广播视频搜索的理想选择。通过使用基于签名的索引和N-GRAM匹配和评分,我们可以准确地识别相应的查询和索引内容,以便检测近复制视频,即使这些内容只构成正在比较的视频的一小部分。实验是在从两个德国电视台记录的Trecvid 02,03和04收集的大量视频数据上进行的大量视频数据。两种最先进的动态规划技术的经验比较是鼓励和展示我们方法的优势和可行性。

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