An assault detection system based on human Pose Tracking for video surveillance

Pedro G. S. do Couto Soares, Arnaldo Silva, L. F. A. Pereira
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Abstract

The development of new technologies for video surveillance and automatic violence detection can bring more security to our daily lives. Solutions previously published in the state-of-the-art had presented techniques to detect violence at movie scenes, sports matches, or crowds. In this work, we propose a novel system architecture based on human Pose Track for detecting evidence of assaults in real-world videos from closed-circuit television (CCTV) of Brazilian lottery agencies. The results showed that our method can identify individuals with hands up and lying down with accuracy rates up to 85%. We believe that the detection of potentially risky situations in real-time is a crucial tool in the fighting against crime.
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基于人体姿态跟踪的视频监控攻击检测系统
视频监控和暴力自动检测新技术的发展可以为我们的日常生活带来更多的安全。以前发表的最先进的解决方案展示了在电影场景、体育比赛或人群中检测暴力的技术。在这项工作中,我们提出了一种基于人体姿态跟踪的新型系统架构,用于检测来自巴西彩票机构闭路电视(CCTV)的真实视频中的攻击证据。结果表明,我们的方法可以识别双手举起和躺着的人,准确率高达85%。我们相信,即时侦测潜在的危险情况,是打击罪案的重要工具。
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