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A new approach for extracting and summarizing abnormal activities in surveillance videos

机译:提取和总结监视视频中异常活动的新方法

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In this paper, we propose a new approach to detect abnormal activities in surveillance videos and create suitable summary videos accordingly. The proposed approach first introduces a blob sequence optimization process which integrates spatial, temporal, size, and motion correlation among objects to extract suitable abnormal blob sequences. With this process, blob extraction errors due to occlusion or background interferences can be effectively avoided. Then, we also propose an abnormality-type-based method which creates short-period summary videos for long-period input surveillance videos by properly arranging abnormal blob sequences according to their activity types. Experimental results show that our proposed approach can effectively create satisfying summary videos from input surveillance videos.
机译:在本文中,我们提出了一种新的方法来检测监视视频中的异常活动,并相应地创建合适的摘要视频。所提出的方法首先引入了斑点序列优化过程,该过程整合了对象之间的空间,时间,大小和运动相关性,以提取合适的异常斑点序列。通过该过程,可以有效避免由于遮挡或背景干扰引起的斑点提取错误。然后,我们还提出了一种基于异常类型的方法,该方法通过根据异常Blob序列的活动类型适当安排它们来为长时间输入监视视频创建短期摘要视频。实验结果表明,我们提出的方法可以有效地根据输入的监视视频创建令人满意的摘要视频。

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