基于计算机视觉技术的无人机在智慧城市中的应用

Mohammad Shokrolah Shirazi, A. Patooghy, R. Shisheie, M. M. Haque
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引用次数: 9

摘要

无人机(UAV)系统被广泛用作移动边缘设备,为地面终端提供移动边缘计算服务。本作品展示了搭载摄像头的无人机在智慧城市交叉口监控中的典型应用。利用现成的YOLOv3和判别相关滤波器开发了一种深度视觉跟踪系统,分别用于道路使用者的检测和跟踪。为了处理在UVA系统中自然发生的相机运动,使用光流方法来增强跟踪系统。光学方法收集额外的运动线索,以帮助跟踪系统进行相机运动补偿以及车辆速度测量。实验结果表明,该系统成功地通过无人机跟踪车辆,并为智慧城市提供关键的交通测量,如车辆流量、车头时距、速度分布和基于速度的在线活动分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Unmanned Aerial Vehicles in Smart Cities using Computer Vision Techniques
Unmanned aerial vehicle (UAV) systems are being widely used as mobile edge devices to provide mobile edge computing services to the ground terminals. This work presents a typical application of intersection monitoring in smart cities through UAVs equipped with cameras. A deep visual tracking system is developed by utilizing off-the-shelf YOLOv3 along with the Discriminative correlation filter for road user detection and tracking respectively. To deal with the camera movement, which naturally happens in UVA systems, an optical flow method is used to boost the tracking system. The optical method collects additional motion cues to help the tracking system for camera motion compensation as well as vehicles speed measurements. The experimental results show the success of the system for tracking vehicles through UAVs and providing critical traffic measurements for smart cities such as vehicle flow, headway, speed profile and online speed-based activity analysis.
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