基于细粒度功率三边测量的无源WiFi源定位系统

Zan Li, T. Braun, D. Dimitrova
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引用次数: 56

摘要

由于室内定位系统在各个应用领域的商业案例的吸引力,研究人员对其越来越感兴趣。基于wifi的被动定位系统可以向第三方定位服务提供商提供用户位置信息。然而,室内定位技术容易受到多路径和非视距(NLOS)传播的影响,导致性能显著下降。为了克服这些问题,我们提出了一种WiFi目标被动定位系统,并采用了几种改进的定位算法。通过软件定义无线电(SDR)技术,在物理层提取信道脉冲响应(CIR)信息。随后采用CIR来缓解多径衰落问题。我们提出使用非线性回归(NLR)方法将滤波后的功率信息与传播距离联系起来,与常用的对数距离路径损失模型相比,该方法显著提高了测距精度。为了减轻测距误差的影响,将加权质心和约束加权最小二乘(WC-CWLS)算法相结合,设计了一种新的三边测量算法。实验结果表明,该算法对测距误差具有较强的鲁棒性,优于线性最小二乘算法和加权质心算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A passive WiFi source localization system based on fine-grained power-based trilateration
Indoor localization systems become more interesting for researchers because of the attractiveness of business cases in various application fields. A WiFi-based passive localization system can provide user location information to third-party providers of positioning services. However, indoor localization techniques are prone to multipath and Non-Line Of Sight (NLOS) propagation, which lead to significant performance degradation. To overcome these problems, we provide a passive localization system for WiFi targets with several improved algorithms for localization. Through Software Defined Radio (SDR) techniques, we extract Channel Impulse Response (CIR) information at the physical layer. CIR is later adopted to mitigate the multipath fading problem. We propose to use a Nonlinear Regression (NLR) method to relate the filtered power information to propagation distances, which significantly improves the ranging accuracy compared to the commonly used log-distance path loss model. To mitigate the influence of ranging errors, a new trilateration algorithm is designed as well by combining Weighted Centroid and Constrained Weighted Least Square (WC-CWLS) algorithms. Experiment results show that our algorithm is robust against ranging errors and outperforms the linear least square algorithm and weighted centroid algorithm.
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