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Video copy detection based on spatiotemporal fusion model

机译:基于时空融合模型的视频拷贝检测

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Content-based video copy detection is an active research field due to the need for copyright protection and business intellectual property protection. This paper gives a probabilistic spatiotemporal fusion approach for video copy detection. This approach directly estimates the location of the copy segment with a probabilistic graphical model. The spatial and temporal consistency of the video copy is embedded in the local probability function. An effective local descriptor and a two-level descriptor pairing method are used to build a video copy detection system to evaluate the approach. Tests show that it outperforms the popular voting algorithm and the probabilistic fusion framework based on the Hidden Markov Model, improving F-score (F1) by 8%.
机译:基于内容的视频拷贝检测由于需要版权保护和商业知识产权保护而成为活跃的研究领域。本文提出了一种用于视频拷贝检测的概率时空融合方法。该方法使用概率图形模型直接估计副本段的位置。视频副本的空间和时间一致性嵌入在局部概率函数中。有效的本地描述符和两级描述符配对方法用于构建视频复制检测系统以评估该方法。测试表明,该算法优于基于隐马尔可夫模型的流行投票算法和概率融合框架,将F分数(F1)提高了8%。

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