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Svrat: A Skeleton-Based Intelligent Monitoring System for Violence Recognition and Abuser Tracking

机译:SVRAT:暴力识别和施虐者跟踪的基于骨骼的智能监控系统

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摘要

Recently, intelligent monitoring technologies have been developing rapidly, among them, human action recognition and target tracking have made breakthroughs in their respective fields. However, the huge computational cost makes the integration of the two technologies difficult. In this paper, we design a skeleton-based monitoring system that realizes violent action recognition and abuser tracking with a relatively low overall complexity. For violence recognition, we put forward a novel Skeletal Context Attention Network (SCAN), which is lightweight yet effective to exploit spatial and temporal representations of skeleton data. For abuser tracking, we present a Skeleton-Guided Correlation Filter (SGCF) that can track a perpetrator continuously even in some extreme cases, such as drastic changes in speed or color. Experiments on two benchmark datasets show that the proposed system not only outperforms the existing state-of-the-art methods for violent action recognition and abuser tracking, but also implements the both tasks with less computation.
机译:最近,智能监测技术已经迅速发展,其中,人类行动认可和目标跟踪在各自的领域取得了突破。然而,巨额的计算成本使两种技术的整合难以实现。在本文中,我们设计了一种基于骨架的监控系统,实现了剧烈的行动识别和滥用行动跟踪,具有相对较低的整体复杂性。对于暴力识别,我们提出了一种新颖的骨架语境注意网络(扫描),这款重量轻又有效利用骨架数据的空间和时间表示。对于滥用追踪,我们呈现了一种骨架导向的相关滤波器(SGCF),即使在某些极端情况下也可以连续跟踪肇事者,例如速度或颜色的剧烈变化。在两个基准数据集上的实验表明,该系统不仅优于现有的最先进方法,以便对暴力行动识别和滥用行动跟踪,但也实现了较少计算的两个任务。

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