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DroNet: Efficient Convolutional Neural Network Detector for Real-Time UAV Applications

机译:DRONET:用于实时UAV应用的高效卷积神经网络检测器

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Unmanned Aerial Vehicles (drones) are emerging as a promising technology for both environmental and infrastructure monitoring, with broad use in a plethora of applications. Many such applications require the use of computer vision algorithms in order to analyse the information captured from an on-board camera. Such applications include detecting vehicles for emergency response and traffic monitoring. This paper therefore, explores the trade-offs involved in the development of a single-shot object detector based on deep convolutional neural networks (CNNs) that can enable UAVs to perform vehicle detection under a resource constrained environment such as in a UAV. The paper presents a holistic approach for designing such systems; the data collection and training stages, the CNN architecture, and the optimizations necessary to efficiently map such a CNN on a lightweight embedded processing platform suitable for deployment on UAVs. Through the analysis we propose a CNN architecture that is capable of detecting vehicles from aerial UAV images and can operate between 5-18 frames-per-second for a variety of platforms with an overall accuracy of ~ 95%. Overall, the proposed architecture is suitable for UAV applications, utilizing low-power embedded processors that can be deployed on commercial UAVs.
机译:无人驾驶航空公司(无人机)正在成为环境和基础设施监测的有希望的技术,具有广泛的应用。许多这样的应用需要使用计算机视觉算法,以便分析从车载相机捕获的信息。这些应用包括检测用于应急响应和交通监控的车辆。因此,本文探讨了基于深度卷积神经网络(CNNS)的单次对象检测器开发的权衡,其能够使无人机能够在诸如在UAV中的资源受限环境下执行车辆检测。本文介绍了设计这些系统的整体方法;数据收集和培训阶段,CNN架构和有效地映射在适合于UAV的轻量级嵌入式处理平台上映射这种CNN所需的优化。通过分析,我们提出了一种能够检测来自空中UAV图像的车辆的CNN架构,并且可以在每秒5-18帧之间运行,用于各种平台,整体精度为约95%。总的来说,建议的架构适用于UAV应用程序,利用可以部署在商业无人机上的低功耗嵌入式处理器。

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