基于原子范数最小化的近场RIS模型单快照定位

Omar Rinchi, A. Elzanaty, Ahmad Alsharoa
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引用次数: 3

摘要

可重构智能表面(RISs)有望在下一代无线蜂窝技术中发挥重要作用。本文针对RIS近场的用户设备(UE),提出了一种基于单快照的上行定位方案。我们提出利用原子范数最小化方法来实现超分辨定位精度。我们制定了一个优化问题,通过最小化原子范数来估计UE定位参数(即角度和距离)。然后,我们提出利用对偶问题和半定规划(SDP),利用强对偶性来解决原子范数问题。RIS采用预估参数进行控制和设计,以增强波束形成能力。最后,我们从定位误差的角度比较了原子范数最小化和压缩感知(CS)的定位性能。数值结果表明,所提出的原子范数方法在某些系统配置条件下可以达到亚厘米级的精度,其性能优于CS。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single-Snapshot Localization for Near-Field RIS Model Using Atomic Norm Minimization
Reconfigurable intelligent surfaces (RISs) are expected to play a significant role in the next generation of wireless cellular technology. This paper proposes an uplink localization scheme using a single-snapshot solution for user equipment (UE) that is located in the near-field of the RIS. We propose utilizing the atomic norm minimization method to achieve super-resolution localization accuracy. We formulate an optimization problem to estimate the UE location parameters (i.e., angles and distances) by minimizing the atomic norm. Then, we propose to exploit strong duality to solve the atomic norm problem using the dual problem and semidefinite programming (SDP). The RIS is controlled and designed using estimated parameters to enhance the beamforming capabilities. Finally, we compare the localization performance of the proposed atomic norm minimization with compressed sensing (CS) in terms of the localization error. The numerical results show a superior performance of the proposed atomic norm method over the CS where a sub-cm level of accuracy can be achieved under some of the system configuration conditions using the proposed atomic norm method.
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