利用5G新型无线电同步信号进行高铁定位

J. Talvitie, Toni Levanen, Mike Koivisto, K. Pajukoski, M. Renfors, M. Valkama
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引用次数: 33

摘要

利用特定的NR同步信号,研究了5G新空口网络中高速列车的定位。这些研究是基于3gpp指定的无线电信道模型的模拟,包括路径损失、阴影和快速衰落效应。所考虑的定位方法利用了从波束形成的NR同步信号估计的到达时间(TOA)和出发角(AOD)的测量。基于给定的测量值和假定的列车运动模型,利用扩展卡尔曼滤波器(EKF)跟踪列车位置,该滤波器能够处理TOA和AOD测量值与估计的列车位置参数之间的非线性关系。结果表明,在考虑的场景中,与AOD测量相比,TOA测量能够达到更好的精度。然而,正如结果所示,当考虑这两种度量时,可以获得最佳的跟踪性能。在这种情况下,在大多数(>75%)的跟踪时间内,可以实现非常高的亚米级跟踪精度,从而实现5G NR的定位精度要求。追求高精度和高可用性的定位技术被认为在几个设想的HST用例中发挥关键作用,例如关键任务的自主列车系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Positioning of high-speed trains using 5G new radio synchronization signals
We study positioning of high-speed trains in 5G new radio (NR) networks by utilizing specific NR synchronization signals. The studies are based on simulations with 3GPP-specified radio channel models including path loss, shadowing and fast fading effects. The considered positioning approach exploits measurement of Time-Of-Arrival (TOA) and Angle-Of-Departure (AOD), which are estimated from beamformed NR synchronization signals. Based on the given measurements and the assumed train movement model, the train position is tracked by using an Extended Kalman Filter (EKF), which is able to handle the non-linear relationship between the TOA and AOD measurements, and the estimated train position parameters. It is shown that in the considered scenario the TOA measurements are able to achieve better accuracy compared to the AOD measurements. However, as shown by the results, the best tracking performance is achieved, when both of the measurements are considered. In this case, a very high, sub-meter, tracking accuracy can be achieved for most (>75%) of the tracking time, thus achieving the positioning accuracy requirements envisioned for the 5G NR. The pursued high-accuracy and high-availability positioning technology is considered to be in a key role in several envisioned HST use cases, such as mission-critical autonomous train systems.
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