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NLOS Identification and Weighted Least-Squares Localization for UWB Systems Using Multipath Channel Statistics

机译:使用多径信道统计信息的UWB系统NLOS识别和加权最小二乘定位

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摘要

Non-line-of-sight (NLOS) identification and mitigation carry significant importance in wireless localization systems. In this paper, we propose a novel NLOS identification technique based on the multipath channel statistics such as the kurtosis, the mean excess delay spread, and the root-mean-square delay spread. In particular, the IEEE 802.15.4a ultrawideband channel models are used as examples and the above statistics are found to be well modeled by log-normal random variables. Subsequently, a joint likelihood ratio test is developed for line-of-sight (LOS) or NLOS identification. Three different weighted least-squares (WLSs) localization techniques that exploit the statistics of multipath components (MPCs) are analyzed. The basic idea behind the proposed WLS approaches is that smaller weights are given to the measurements which are likely to be biased (based on the MPC information), as opposed to variance-based WLS techniques in the literature. Accuracy gains with respect to the conventional least-squares algorithm are demonstrated via Monte-Carlo simulations and verified by theoretical derivations.
机译:非视距(NLOS)识别和缓解在无线定位系统中具有重要意义。在本文中,我们提出了一种基于多径信道统计信息的新的NLOS识别技术,例如峰度,平均超额延迟扩展和均方根延迟扩展。特别是,以IEEE 802.15.4a超宽带信道模型为例,发现上述统计数据已通过对数正态随机变量很好地建模。随后,针对视线(LOS)或NLOS识别开发了联合似然比测试。分析了三种利用多径分量(MPC)统计信息的加权最小二乘(WLS)本地化技术。与文献中基于方差的WLS技术相反,提出的WLS方法背后的基本思想是将较小的权重赋给可能有偏差的测量(基于MPC信息)。相对于常规最小二乘算法的准确度增益已通过蒙特卡洛模拟进行了演示,并通过理论推导得到了验证。

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