论文标题
感应RISS:启用无关维度的CSI获取进行波束成形
Sensing RISs: Enabling Dimension-Independent CSI Acquisition for Beamforming
论文作者
论文摘要
可以将可重构的智能表面(RISS)视为未来无线通信的潜在变革技术。但是,RISS无法处理信号和随之增加的渠道维度为RIS辅助系统带来了新的挑战,包括大大增加了渠道估算所需的飞行员开销。为了解决这些问题,已经提高了RISS或开发算法来利用通道的数学属性的几项先前的贡献,其中所需的飞行员开销与RIS元素的数量成正比。在本文中,我们提出了独立于维度的通道状态信息(CSI)采集方法,其中所需的飞行员开销与RIS元素的数量无关。具体而言,与传统的信号传输方法相反,在CSI释放期间,我们提出了一种新颖的方法,其中基于基站(BS)的信号(BS)和用户是在不同的时间段中传输的,我们提出了一种新颖的方法,其中信号是从BS和CSI释放期间同时传输的。通过这种方法,将在RIS上诱导电磁干扰随机场(IRF),我们提出了传感RI的结构以捕获其特征。此外,我们在该系统中开发了三种用于参数估计的算法,其中提出的一种VM-EM算法之一用固定点扰动方法分析,以获得可实现的渐近性结合。此外,我们还得出了Cramér-Rao下限(CRLB)和渐近表达,以表征所提出算法的最佳性能。仿真结果验证了我们提出的信号传递方法和相应的算法可以实现与维度无关的CSI采集以进行波束形成。
Reconfigurable intelligent surfaces (RISs) are envisioned as a potentially transformative technology for future wireless communications. However, RISs' inability to process signals and the attendant increased channel dimension have brought new challenges to RIS-assisted systems, including significantly increased pilot overhead required for channel estimation. To address these problems, several prior contributions that enhance the hardware architecture of RISs or develop algorithms to exploit the channels' mathematical properties have been made, where the required pilot overhead is reduced to be proportional to the number of RIS elements. In this paper, we propose a dimension-independent channel state information (CSI) acquisition approach in which the required pilot overhead is independent of the number of RIS elements. Specifically, in contrast to traditional signal transmission methods, where signals from the base station (BS) and the users are transmitted in different time slots, we propose a novel method in which signals are transmitted from the BS and the user simultaneously during CSI acquisition. With this method, an electromagnetic interference random field (IRF) will be induced on the RIS, and we propose the structure of sensing RIS to capture its features. Moreover, we develop three algorithms for parameter estimation in this system, in which one of the proposed vM-EM algorithm is analyzed with the fixed-point perturbation method to obtain an asymptotic achievable bound. In addition, we also derive the Cramér-Rao lower bound (CRLB) and an asymptotic expression for characterizing the best possible performance of the proposed algorithms. Simulation results verify that our proposed signal transmission method and the corresponding algorithms can achieve dimension-independent CSI acquisition for beamforming.