Eye in the Sky: Real-Time Drone Surveillance System (DSS) for Violent Individuals Identification Using ScatterNet Hybrid Deep Learning Network

Amarjot Singh, D. Patil, SN Omkar
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引用次数: 97

Abstract

Drone systems have been deployed by various law enforcement agencies to monitor hostiles, spy on foreign drug cartels, conduct border control operations, etc. This paper introduces a real-time drone surveillance system to identify violent individuals in public areas. The system first uses the Feature Pyramid Network to detect humans from aerial images. The image region with the human is used by the proposed ScatterNet Hybrid Deep Learning (SHDL) network for human pose estimation. The orientations between the limbs of the estimated pose are next used to identify the violent individuals. The proposed deep network can learn meaningful representations quickly using ScatterNet and structural priors with relatively fewer labeled examples. The system detects the violent individuals in real-time by processing the drone images in the cloud. This research also introduces the aerial violent individual dataset used for training the deep network which hopefully may encourage researchers interested in using deep learning for aerial surveillance. The pose estimation and violent individuals identification performance is compared with the state-of-the-art techniques.
天空之眼:使用散射网混合深度学习网络进行暴力个体识别的实时无人机监视系统(DSS)
无人机系统已被各种执法机构部署,用于监视敌人、监视外国贩毒集团、进行边境控制行动等。本文介绍了一种实时无人机监控系统,用于识别公共场所的暴力个人。该系统首先使用特征金字塔网络从航空图像中检测人类。提出的散点网络混合深度学习(SHDL)网络利用带有人体的图像区域进行人体姿态估计。估计姿势的四肢之间的方向接下来用于识别暴力个体。所提出的深度网络可以使用相对较少的标记示例使用ScatterNet和结构先验快速学习有意义的表示。该系统通过处理云中的无人机图像来实时检测暴力分子。本研究还介绍了用于训练深度网络的空中暴力个体数据集,希望可以鼓励对使用深度学习进行空中监视感兴趣的研究人员。将姿态估计和暴力个体识别性能与现有技术进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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