论文标题

可重新配置的本地化智能表面:位置和方向错误界限

Reconfigurable Intelligent Surfaces for Localization: Position and Orientation Error Bounds

论文作者

Elzanaty, Ahmed, Guerra, Anna, Guidi, Francesco, Alouini, Mohamed-Slim

论文摘要

下一代的蜂窝网络将见证智能无线电环境(SRE)的创建,可以用可重构的智能表面(RISS)覆盖墙壁和物体,以通过控制反射的多路径来增强通信和本地化覆盖范围。实际上,最近引入了RIS,这不仅是为了克服障碍,而且还因为在GPS拒绝的环境中的移动用户(例如室内)中的移动用户进行了高精度定位。针对这个愿景,本文介绍了通信方案的本地化性能限制,其中配备了多种距离的单个下一代NodeB基站(GNB),在RIS辅助SRE中呈现了用户设备(UE)的位置和方向。我们认为一个信号模型也适用于近场传播条件,因为通常采用的远场假设并不总是存在,尤其是对于大型RIS。对于考虑的情况,我们得出了CRAMER-RAO下限(CRLB),用于评估同步和异步信号方案的最终定位和方向性能。此外,我们提出了一个封闭形式的RIS相位剖面,非常适合关节通信和本地化。我们执行广泛的数值结果,以评估我们针对各种本地化方案和RIS阶段设计的计划的性能。数值结果表明,即使在异步信号传导中,提出的方案也可以实现出色的性能,并且所提出的相位设计接近最小化CRLB的数值最佳相位设计。

Next-generation cellular networks will witness the creation of smart radio environments (SREs), where walls and objects can be coated with reconfigurable intelligent surfaces (RISs) to strengthen the communication and localization coverage by controlling the reflected multipath. In fact, RISs have been recently introduced not only to overcome communication blockages due to obstacles but also for high-precision localization of mobile users in GPS denied environments, e.g., indoors. Towards this vision, this paper presents the localization performance limits for communication scenarios where a single next-generation NodeB base station (gNB), equipped with multiple-antennas, infers the position and the orientation of the user equipment(UE) in a RIS-assisted SRE. We consider a signal model that is valid also for near-field propagation conditions, as the usually adopted far-field assumption does not always hold, especially for large RISs. For the considered scenario, we derive the Cramer-Rao lower bound (CRLB) for assessing the ultimate localization and orientation performance of synchronous and asynchronous signaling schemes. In addition, we propose a closed-form RIS phase profile that well suits joint communication and localization. We perform extensive numerical results to assess the performance of our scheme for various localization scenarios and RIS phase design. Numerical results show that the proposed scheme can achieve remarkable performance, even in asynchronous signaling and that the proposed phase design approaches the numerical optimal phase design that minimizes the CRLB.

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