基于uwb rtls的天线时延无关同步测距

Shashi Shah, Sushank Chaudhary, Rizwan Ullah, Amir Parnianifard, Muhammad Zain Siddiqi, P. Vanichchanunt, W. Santipach, L. Wuttisittikulkij
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引用次数: 0

摘要

基于超宽带(UWB)的实时定位系统(RTLS)是一种很有前途的技术,可以在特定的室内环境中实时定位和跟踪资产和人员,因为它提供了高测距精度。然而,其性能可能受到UWB节点的底层天线延迟的影响,这是距离估计过程中的误差来源。通常,天线延迟的测量是作为专用的独立程序单独执行的。这种额外的测量过程使得基于uwb的RTLS在人工干预下变得更加繁琐。此外,在UWB节点对之间进行距离估计的信令消息的传输和接收过程中的空时占用也限制了这些网络的可用能力。在这方面,我们提出了一种新的同步测距方案,该方案在UWB节点对之间的距离估计期间需要有限的空中时间占用,并且还补偿了天线延迟带来的误差。本文给出了该方案的详细数学建模、系统设计和实现步骤。通过实验分析验证了该方法在室内环境下定位移动节点的有效性。结果表明,与目前最先进的双向测距(TWR)方法相比,该方案消除了节点专用独立天线延迟测量程序的要求,通过提供同步测距提高了空气效率,距离和位置估计的相对均方根误差(rmse)分别提高了约54.52%和39.96%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antenna Delay-Independent Simultaneous Ranging for UWB-Based RTLSs
The ultra-wideband (UWB)-based real-time localization system (RTLS) is a promising technology for locating and tracking assets and personnel in real-time within a defined indoor environment since it provides high-ranging accuracy. However, its performance can be affected by the underlying antenna delays of UWB nodes, which act as a source of error during range estimations. Usually, measurement of the antenna delays is performed separately as a dedicated standalone procedure. Such an additional measurement procedure makes the UWB-based RTLS more tedious with manual interventions. Moreover, the air-time occupancy during the transmission and reception of signaling messages for range estimations between UWB node pairs also limits the serviceable capability of these networks. In this regard, we present a novel simultaneous ranging scheme that requires limited air-time occupancy during range estimations between UWB node pairs and also compensates for the error from the antenna delays. This paper provides a detailed mathematical modeling, system design, and implementation procedure of the proposed scheme. The effectiveness of the proposed scheme for locating a mobile node in an indoor environment is validated through experimental analysis. The results show that, compared to the state-of-the-art two-way ranging (TWR) method, the proposed scheme eliminates the requirement of dedicated standalone antenna delay measurement procedures of the nodes, increases air efficiency through the provision of simultaneous ranging, and provides relative root-mean-square errors (RMSEs) improvement for range and position estimations of approximately 54.52% and 39.96%, respectively.
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