论文标题

支持IRS的多用户ISAC系统的位置传感和波束形成设计

Location Sensing and Beamforming Design for IRS-Enabled Multi-User ISAC Systems

论文作者

Yu, Zhouyuan, Hu, Xiaoling, Liu, Chenxi, Peng, Mugen, Zhong, Caijun

论文摘要

本文使用相同的时频资源探讨了智能反射表面(IRS)在实现多用户并发的本地化方面的潜力。具体而言,我们提出了一个启用IRS的多用户集成感应和通信(ISAC)框架,其中分布式的半准入IRS有助于从多个用户到基本站(BS)的上行链路数据传输,并同时进行多用户定位。我们首先设计了ISAC传输协议,其中整个传输周期由两个时期组成,即同时上行链路通信和多用户定位的ISAC周期,以及仅用于上行链路数据传输的纯通信(PC)周期。在ISAC期间,我们提出了一种多用户位置传感算法,该算法利用IRS未知的上行链路通信信号,从而消除了在常规位置传感方法中使用专用定位参考信号的要求。根据感知的用户的位置,我们建议在ISAC周期和PC期间分别提出两种新型的波束成形算法,它们可以与离散的相移一起工作,并且不需要通道状态信息(CSI)获取。数值结果表明,所提出的多用户位置传感算法可以达到高达毫米级的定位精度,这表明启用IRS的ISAC框架的优势。此外,考虑到完美的CSI采集和连续的相移,提出的带有感知位置信息和离散相距的拟议的波束形成算法可以实现与基准相当的性能,从而证明了位置信息如何确保通信性能。

This paper explores the potential of the intelligent reflecting surface (IRS) in realizing multi-user concurrent communication and localization, using the same time-frequency resources. Specifically, we propose an IRS-enabled multi-user integrated sensing and communication (ISAC) framework, where a distributed semi-passive IRS assists the uplink data transmission from multiple users to the base station (BS) and conducts multi-user localization, simultaneously. We first design an ISAC transmission protocol, where the whole transmission period consists of two periods, i.e., the ISAC period for simultaneous uplink communication and multi-user localization, and the pure communication (PC) period for only uplink data transmission. For the ISAC period, we propose a multi-user location sensing algorithm, which utilizes the uplink communication signals unknown to the IRS, thus removing the requirement of dedicated positioning reference signals in conventional location sensing methods. Based on the sensed users' locations, we propose two novel beamforming algorithms for the ISAC period and PC period, respectively, which can work with discrete phase shifts and require no channel state information (CSI) acquisition. Numerical results show that the proposed multi-user location sensing algorithm can achieve up to millimeter-level positioning accuracy, indicating the advantage of the IRS-enabled ISAC framework. Moreover, the proposed beamforming algorithms with sensed location information and discrete phase shifts can achieve comparable performance to the benchmark considering perfect CSI acquisition and continuous phase shifts, demonstrating how the location information can ensure the communication performance.

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