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Violence Detection in Videos by Combining 3D Convolutional Neural Networks and Support Vector Machines

机译:结合3D卷积神经网络和支持向量机的视频中暴力检测

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摘要

Video-surveillance has always been a vital tool to enforce safety in both public and private environments. Even though (smart) cameras are nowadays relatively widespread and cheap, such monitoring systems lack effectiveness in most scenarios. In addition, there is no guarantee about a human operator who monitors rare events in live video footages, forcing the use of such systems after unwanted events already took their undisturbed course, as a mere tool for investigations. Having an intelligent software to perform the task would allow to unlock the full potential of video-surveillance systems. To this end, in this paper we propose a solution based on a 3D Convolutional Neural Network that can effectively detect fights, aggressive motions and violence scenes in live video streams. Compared to state-of-the-art techniques, our method showed very promising performance on three challenging benchmark datasets: Hockey Fight, Crowd Violence and Movie Violence.
机译:视频监视一直是在公共和私人环境中加强安全性的重要工具。尽管(智能)摄像机如今相对广泛且便宜,但这种监视系统在大多数情况下仍缺乏有效性。另外,不能保证有人操作员监视实况录像中的罕见事件,从而在不需要的事件已经不受干扰的过程中强迫其使用这种系统,将其作为调查的唯一工具。拥有智能软件来执行任务将可以释放视频监控系统的全部潜力。为此,在本文中,我们提出了一种基于3D卷积神经网络的解决方案,该解决方案可以有效地检测实时视频流中的战斗,攻击性动作和暴力场景。与最新技术相比,我们的方法在三个具有挑战性的基准数据集上显示出非常有希望的性能:曲棍球搏击,人群暴力和电影暴力。

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  • 来源
    《Applied Artificial Intelligence》 |2020年第4期|329-344|共16页
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    Univ Politecn Marche Dept Informat Engn Ancona Italy;

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