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Location and tracking applications for high data rate UWB systems

机译:高数据速率UWB系统的位置和跟踪应用

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This paper discusses a maximum likelihood (ML) estimator for the localization of mobile nodes in communication networks. The derived estimator is optimized for ranging measurements exploiting the received signal strength (RSS). For this purpose, the bias and uncertainties of the RSS based ranging procedure are analyzed, considering a path loss model of an indoor ultra-wideband (UWB) network under line of sight (LOS) conditions. The nonlinearity of the path loss model is first taken into account before the statistics of the observed RSS are approximated by a Taylor sequence of first order. The so found metrics describe a weighted least squares (WLS) method. The metrics of the estimator are analytically derived in closed-form. The performance of the derived estimator is investigated in Monte-Carlo simulations and compared with a simple least squares (LS) method and another method exploiting RSS fingerprints.
机译:本文讨论了通信网络中移动节点本地化的最大可能性(ML)估计器。派生估计器被优化以进行利用接收信号强度(RSS)的测量测量。为此目的,分析了基于RSS的测距过程的偏差和不确定性,考虑到视线(LOS)条件下的室内超宽带(UWB)网络的路径损耗模型。首先在观察到的RSS的统计数据被泰勒序列的第一阶的统计数据之前考虑到路径损耗模型的非线性。所以所发现的指标描述了加权最小二乘法(WLS)方法。估计器的指标在封闭形式中衍生。在Monte-Carlo仿真中研究了导出估计器的性能,并与简单最小二乘(LS)方法进行比较,另一种方法利用RSS指纹。

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