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Measurement Analysis and Channel Modeling for TOA-Based Ranging in Tunnels

机译:基于TOA的隧道测距的测量分析和通道建模

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摘要

A robust and accurate positioning solution is required to increase the safety in GPS-denied environments. Although there is a lot of available research in this area, little has been done for confined environments such as tunnels. Therefore, we organized a measurement campaign in a basement tunnel of Linköping university, in which we obtained ultra-wideband (UWB) complex impulse responses for line-of-sight (LOS), and three non-LOS (NLOS) scenarios. This paper is focused on time-of-arrival (TOA) ranging since this technique can provide the most accurate range estimates, which are required for range-based positioning. We describe the measurement setup and procedure, select the threshold for TOA estimation, analyze the channel propagation parameters obtained from the power delay profile (PDP), and provide statistical model for ranging. According to our results, the rise-time should be used for NLOS identification, and the maximum excess delay should be used for NLOS error mitigation. However, the NLOS condition cannot be perfectly determined, so the distance likelihood has to be represented in a Gaussian mixture form. We also compared these results with measurements from a mine tunnel, and found a similar behavior.
机译:需要可靠且准确的定位解决方案来提高GPS拒绝环境下的安全性。尽管在这一领域有很多可用的研究,但是对于诸如隧道之类的局限环境几乎没有做任何事情。因此,我们在Linköping大学的地下室隧道中组织了一次测量活动,在该活动中,我们获得了针对视线(LOS)和三种非LOS(NLOS)场景的超宽带(UWB)复杂脉冲响应。本文将重点放在到达时间(TOA)测距上,因为该技术可以提供最精确的测距估计,这是基于测距的定位所必需的。我们描述了测量设置和过程,选择了TOA估计的阈值,分析了从功率延迟曲线(PDP)获得的信道传播参数,并提供了用于测距的统计模型。根据我们的结果,应使用上升时间来识别NLOS,并使用最大的额外延迟来减轻NLOS错误。但是,不能完全确定NLOS条件,因此距离可能性必须以高斯混合形式表示。我们还将这些结果与矿山隧道的测量结果进行了比较,发现了类似的行为。

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