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Real-Time RFID Indoor Positioning System Based on Kalman-Filter Drift Removal and Heron-Bilateration Location Estimation

机译:基于卡尔曼滤波漂移和苍鹭双侧定位的实时RFID室内定位系统

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摘要

This paper proposes Kalman-filter drift removal (DR) and Heron-bilateration location estimation (LE) to significantly reduce the received signal strength index (RSSI) drift, localization error, computational complexity, and deployment cost of conventional radio frequency identification (RFID) indoor positioning systems without any sacrifice of localization granularity and accuracy. By means of only one portable RFID reader as the targeted device and only one pair of active RFID tags as the border-deployed landmarks, this paper develops a real-time portable RFID indoor positioning device and cost-effective scalable RFID indoor positioning infrastructure, based on Kalman-filter DR, Heron-bilateration LE, and four novel preprocessing/postprocessing techniques. Experimental results reveal that the proposed Kalman-filter DR method is faster and better to converge the distance measurement (DM) error than conventional probability/statistics in terms of various relative distances under certain RSSI drift effect condition, and the proposed Heron-bilateration LE method is also faster and better to converge the LE error than conventional proximity pattern matching and trilateration in terms of three or more landmarks under certain DM error condition. On the other hand, a portable RFID indoor positioning device is smoothly implemented on an Android smartphone platform attached with a portable Bluetooth-based RFID reader.
机译:本文提出了卡尔曼滤波器漂移消除(DR)和苍鹭胆汁位置估计(LE),以显着降低常规射频识别(RFID)的接收信号强度指数(RSSI)漂移,定位误差,计算复杂度和部署成本室内定位系统而不会牺牲定位粒度和准确性。通过仅使用一个便携式RFID阅读器作为目标设备,并且仅使用一对有源RFID标签作为边界部署的地标,本文开发了一种实时便携式RFID室内定位设备和具有成本效益的可扩展RFID室内定位基础架构,在Kalman滤波器DR,Heron-bilateration LE和四种新颖的预处理/后处理技术上进行了研究。实验结果表明,在一定的RSSI漂移效应条件下,相对于传统的概率/统计量,所提出的Kalman滤波DR方法比传统的概率/统计方法收敛更快,并且能更好地收敛距离测量误差,并且提出了Heron-bilateration LE方法。在某些DM错误条件下,相对于传统的接近模式匹配和三边测量,在三个或多个界标方面,LE误差收敛速度更快,更好。另一方面,便携式RFID室内定位设备可以在装有便携式蓝牙RFID读取器的Android智能手机平台上顺利实现。

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