Diffraction-Aided Wireless Positioning

IF 10.7 1区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Wireless Communications Pub Date : 2025-02-10 DOI:10.1109/TWC.2025.3537959
Gaurav Duggal;R. Michael Buehrer;Harpreet S. Dhillon;Jeffrey H. Reed
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Abstract

Wireless positioning in Non-Line-of-Sight (NLoS) scenarios presents significant challenges due to multipath effects that lead to biased measurements and reduced positioning accuracy. This paper revisits electromagnetic field theory related to diffraction and in the context of wireless positioning and proposes a novel positioning technique that greatly improves accuracy in NLoS environments dominated by diffraction. The method is applied to a critical public safety use case: precisely locating at-risk individuals within buildings, with a particular focus on improving 3D positioning and z-axis accuracy. By leveraging the Geometrical Theory of Diffraction (GTD), the approach introduces an innovative NLoS path length model and a new NLOS positioning technique. Using Fisher information analysis, we establish the conditions required for 3D positioning and derive lower bounds on positioning performance for both 3D and z-axis estimates for the proposed NLOS positioning technique. Additionally, we propose an algorithmic implementation of the proposed NLoS positioning method using non-linear least squares estimation, which we term D-NLS. The positioning performance of our proposed NLOs positioning technique is validated using an extensive ray-tracing simulation. The numerical results highlight the superiority of our approach in outdoor-to-indoor environments, which directly estimates NLoS path lengths and delivers significant performance enhancements over existing methods for both 3D and z-axis positioning scenarios.
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衍射辅助无线定位
由于多径效应导致测量偏差和定位精度降低,在非视距(NLoS)场景下的无线定位面临重大挑战。本文回顾了与衍射相关的电磁场理论,并在无线定位的背景下提出了一种新的定位技术,该技术大大提高了在以衍射为主的NLoS环境下的定位精度。该方法应用于一个关键的公共安全用例:精确定位建筑物内的危险人员,特别注重提高3D定位和z轴精度。该方法利用几何衍射理论(GTD),引入了一种创新的近视点路径长度模型和一种新的近视点定位技术。利用Fisher信息分析,我们建立了三维定位所需的条件,并推导了所提出的NLOS定位技术的三维和z轴估计定位性能的下界。此外,我们提出了一种使用非线性最小二乘估计的NLoS定位方法的算法实现,我们称之为D-NLS。我们提出的NLOs定位技术的定位性能通过广泛的光线跟踪模拟进行了验证。数值结果突出了我们的方法在室外到室内环境中的优势,它可以直接估计NLoS路径长度,并在3D和z轴定位场景中提供比现有方法显著增强的性能。
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来源期刊
CiteScore
18.60
自引率
10.60%
发文量
708
审稿时长
5.6 months
期刊介绍: The IEEE Transactions on Wireless Communications is a prestigious publication that showcases cutting-edge advancements in wireless communications. It welcomes both theoretical and practical contributions in various areas. The scope of the Transactions encompasses a wide range of topics, including modulation and coding, detection and estimation, propagation and channel characterization, and diversity techniques. The journal also emphasizes the physical and link layer communication aspects of network architectures and protocols. The journal is open to papers on specific topics or non-traditional topics related to specific application areas. This includes simulation tools and methodologies, orthogonal frequency division multiplexing, MIMO systems, and wireless over optical technologies. Overall, the IEEE Transactions on Wireless Communications serves as a platform for high-quality manuscripts that push the boundaries of wireless communications and contribute to advancements in the field.
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