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Implementation and test of an RSSI-based indoor target localization system: Human movement effects on the accuracy

机译:基于RSSI的室内目标定位系统的实施和测试:人类运动对准确性的影响

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The movement of humans in wireless networks is one of major effects leading to significant received signal strength indicator (RSSI) variation. Using fluctuated RSSI on estimating the target position in the RSSI-based indoor localization system can give large error and poor decision of the system. In this paper, how the human movement affects the accuracy of an implemented indoor target localization system is explored by experiments, and a proposed simple RSSI filtering solution as the guideline solution to directly handle such a research problem is also presented. For our purpose, firstly, the RSSI-based indoor target localization system, which consists of design communication operations for measuring the RSSI in the wireless network and selected well-known localization methods (i.e. the min-max and the trilateration methods) for estimating the target position, is implemented and tested. Secondly, selected well-known filtering methods (i.e. the moving average and the exponentially weighted moving average filters) and the span thresholding filter (i.e. the proposed solution) are applied for reducing the RSSI variation and the estimated position error caused by the human movement. Our experiments have been carried out in an indoor environment. An LPC2103F microcontroller interfacing with a 2.4 GHz CC2500 RF module is developed and employed as the wireless node. Experimental results reveal that the estimated position error determined by the min-max and the trilateration methods significantly increases during the human movement, and converts according to human movement patterns and numbers of movement people. Also, the results demonstrate that by applying the moving average filter with a high window size and the exponentially weighted moving average filter with an optimal weighting factor to raw RSSI data, the estimated position error is not much improved. In contrast, the span thresholding filter gives better results and can directly cope with the human movement problem. In average, the localization error and the standard deviation decrease 11.921% and 42.086% in the case of the min-max method, and they decrease 44.535% and 87.154% in the case of the trilateration method. (C) 2018 Elsevier Ltd. All rights reserved.
机译:人类在无线网络中的运动是导致显着的信号强度指示器(RSSI)变化的主要影响之一。使用波动RSSI估计基于RSSI的室内定位系统中的目标位置可以给出大量误差和系统的差。在本文中,通过实验探讨了人体运动如何影响实现的室内目标定位系统的准确性,并且还提出了一种提出的简单RSSI滤波解决方案,作为直接处理这种研究问题的指南解决方案。为我们的目的,首先,基于RSSI的室内目标本地化系统,由设计通信操作组成,用于测量无线网络中的RSSI,以及所选择的众所周知的本地化方法(即MIN-MAX和三边形方法),用于估计目标位置,实现和测试。其次,应用了众所周知的滤波方法(即,移动平均值和指数加权的移动平均滤波器)和跨度阈值滤波器(即所提出的解决方案)来减少由人类运动引起的RSSI变化和估计位置误差。我们的实验已经在室内环境中进行。使用2.4GHz CC2500 RF模块的LPC2103F微控制器接口和使用作为无线节点。实验结果表明,在人类运动期间,MIN-MAX和三边形方法确定的估计位置误差显着增加,并根据人体运动模式和人数的数量转换。而且,结果表明,通过利用具有高窗口大小的移动平均滤波器和具有最优加权因子的指数加权移动平均滤波器到原始RSSI数据,估计的位置误差并不大大提高。相反,跨度阈值滤波器提供更好的结果,可以直接应对人体运动问题。平均而言,定位误差和标准差在MIN-MAX方法的情况下降低11.921%和42.086%,在三边化方法的情况下,它们降低了44.535%和87.154%。 (c)2018年elestvier有限公司保留所有权利。

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