Real Time Indoor Positioning System for Smart Grid based on UWB and Artificial Intelligence Techniques

Long Cheng, Hao Chang, Kexin Wang, Zhaoqi Wu
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引用次数: 15

Abstract

Indoor positioning system plays an important role in smart grid. Although GPS is the predominant outdoor positioning technology, it is unsuitable to be used in many fields of smart grid for three main reasons: first, signals sent from GPS could easily get blocked by solid materials such as metal or brick; second, the complex electromagnetic interference induced by electrical circuits greatly affects GPS signals; third, GPS can only achieve meter-level real time positioning accuracy, which is far from sufficient for many requirements of smart grid applications. Some other indoor positioning technologies, such as Bluetooth, Wi-Fi, ultrasound, infrared and RFID, fail in either the positioning accuracy, the positioning range, or the positioning speed required in many smart grid applications. Therefore, this paper proposes a real time indoor positioning system for smart gird based on a more promising technology, ultra-wideband (UWB). UWB is suitable for real-time localization in smart grid because UWB has short radio frequency pulse duration and wide bandwidth, which can minimize the effects of multipath interference and allow for high-resolution ranging and easier material penetration. In addition, since high-accuracy position information is required in many smart grid fields, a comprehensive framework integrating several artificial intelligence techniques, including outlier detection, line-of-sight/non-line-of-sight classification, filter design, range measurement correction and maximum likelihood localization estimation, is also proposed to further improve the positioning accuracy. At last, the performance of this system is verified through a series of experiments.
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基于超宽带和人工智能技术的智能电网实时室内定位系统
室内定位系统在智能电网中占有重要地位。虽然GPS是主要的户外定位技术,但在智能电网的许多领域并不适用,主要有三个原因:首先,GPS发出的信号容易被金属或砖等固体材料阻挡;二是电路产生的复杂电磁干扰对GPS信号影响较大;第三,GPS只能达到米级的实时定位精度,远远不能满足智能电网应用的许多要求。其他一些室内定位技术,如蓝牙、Wi-Fi、超声波、红外和RFID,在许多智能电网应用中,无论是定位精度、定位范围还是定位速度都不尽如人意。因此,本文提出了一种基于超宽带(UWB)技术的智能电网实时室内定位系统。UWB适合智能电网中的实时定位,因为UWB具有短的射频脉冲持续时间和宽的带宽,可以最大限度地减少多径干扰的影响,并允许高分辨率测距和更容易的材料穿透。此外,针对智能电网许多领域对高精度位置信息的要求,本文还提出了一个综合了离群点检测、视距/非视距分类、滤波器设计、距离测量校正和最大似然定位估计等多种人工智能技术的综合框架,以进一步提高定位精度。最后,通过一系列的实验验证了该系统的性能。
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