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A Video Analytics-Based Intelligent Indoor Positioning System Using Edge Computing For IoT

机译:基于视频分析的物联网边缘处理智能室内定位系统

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In the context of Internet of Things (IoT) environments, obtaining the target's location information by analyzing a large number of video data captured by widely distributed camera nodes shows a good development prospect. As far as video analytics is concerned, for the purpose of reducing high processing costs and transmission time of video data, it is an effective solution to offload computing from the cloud to edge devices. In this paper, we design a four-layer video analytics architecture with the concept of edge computing and adopt the lightweight virtualization provided by the container technology to modularize the video analytics process. Based on the proposed architecture, an video analytics-based intelligent indoor positioning system is implemented. The proposed system can provide centimeter-level positioning accuracy and, at the same time, has a lower response delay than traditional cloud computing model. The experimental results show that, high-precision location information could be obtained with the help of billions of camera nodes, while for the large-scale video analytics, the usage of edge computing has great potentials.
机译:在物联网(IoT)环境中,通过分析分布广泛的摄像机节点捕获的大量视频数据来获得目标的位置信息具有良好的发展前景。就视频分析而言,为了降低视频数据的高处理成本和传输时间,这是一种将计算从云转移到边缘设备的有效解决方案。在本文中,我们设计了一个具有边缘计算概念的四层视频分析体系结构,并采用了容器技术提供的轻量级虚拟化来对视频分析过程进行模块化。基于提出的架构,实现了一种基于视频分析的智能室内定位系统。所提出的系统可以提供厘米级的定位精度,同时具有比传统云计算模型更低的响应延迟。实验结果表明,借助数十亿个摄像头节点可以获得高精度的位置信息,而对于大规模视频分析而言,边缘计算的应用潜力巨大。

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