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Real-Time Violence Detection in Videos Using Dynamic Images

机译:使用动态图像的视频中实时暴力检测

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The problem of violence detection consists of identifying scenes that characterize violence in a video stream. The violent actions in question can be of the most diverse, from fights, pushes, and robberies to shots and explosions. Detecting the presence of violence is useful for classifying videos and films, blocking inappropriate content for specific audiences, and improving security personnel's performance responsible for areas under surveillance. This work proposes an approach based on the Dynamic Images method, using handcrafted and CNN features the Bag of Visual Words paradigm and a SVM classifier to detect violent actions that involve corporal struggle in the video streams of databases of literature. The proposed methods can achieve an average accuracy of 97.50% for the Hockey dataset, 99.80% for the Movies dataset, and 93.40% for the Crowd dataset. Besides, the identification of violence in each video was performed in of hundredths of a second. Also, the techniques proposed in this work have the advantage that they can be applied even in environments where computational resources are limited, and technologies such as GPU or parallel processing are not available.
机译:暴力检测问题包括识别在视频流中表征暴力的场景。有问题的暴力行为可能是最多样化的,从战斗,推动和抢劫拍摄和爆炸。检测暴力的存在对于分类视频和电影是有用的,阻止特定受众的不适当的内容,并提高安全人员对监视区域负责的表现。这项工作提出了一种基于动态图像方法的方法,使用手工制作和CNN具有视觉单词范例的袋子和SVM分类器,以检测涉及在文献数据库的视频流中涉及人物斗争的暴力动作。所提出的方法可以为曲棍球数据集实现97.50%的平均精度,电影数据集99.80%,人群数据集的93.40%。此外,百分之一秒的百分之一进行了每个视频中的暴力的识别。此外,在该工作中提出的技术具有以下优点:即使在计算资源有限的环境中也可以应用它们,并且不可用技术诸如GPU或并行处理的技术。

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