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Joint Channel Estimation and Signal Recovery in RIS-Assisted Multi-User MISO Communications

机译:RIS辅助多用户MISO通信中的联合通道估计和信号恢复

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Reconfigurable Intelligent Surfaces (RISs) have been recently considered as an energy-efficient solution for future wireless networks. Their dynamic and low-power configuration enables coverage extension, massive connectivity, and low-latency communications. Channel estimation and signal recovery in RIS-based systems are among the most critical technical challenges, due to the large number of unknown variables referring to the RIS unit elements and the transmitted signals. In this paper, we focus on the downlink of a RIS-assisted multi-user Multiple Input Single Output (MISO) communication system and present a joint channel estimation and signal recovery scheme based on the PARAllel FACtor (PARAFAC) decomposition. This decomposition unfolds the cascaded channel model and facilitates signal recovery using the Bilinear Generalized Approximate Message Passing (BiG-AMP) algorithm. The proposed method includes an alternating least squares algorithm to iteratively estimate the equivalent matrix, which consists of the transmitted signals and the channels between the base station and RIS, as well as the channels between the RIS and the multiple users. Our selective simulation results show that the proposed scheme outperforms a benchmark scheme that uses genie-aided information knowledge. We also provide insights on the impact of different RIS parameter settings on the proposed scheme.
机译:可重新配置的智能表面(RISS)已被视为未来无线网络的节能解决方案。它们的动态和低功耗配置可以覆盖扩展,大规模的连接和低延迟通信。基于RIS的系统中的信道估计和信号恢复是最关键的技术挑战之一,由于涉及RIS单元元件和发送信号的大量未知变量。在本文中,我们专注于RIS辅助多用户多输入单输出(MISO)通信系统的下行链路,并呈现基于并行因子(PARAFAC)分解的关节通道估计和信号恢复方案。该分解展开了级联信道模型,并使用双线性通用近似消息通过(Big-AMP)算法来促进信号恢复。所提出的方法包括交流最小二乘算法,以迭代地估计等效矩阵,其由基站和RIS之间的发送信号和信道以及RIS和多个用户之间的信道组成。我们的选择性仿真结果表明,该方案优于使用基因辅助信息知识的基准方案。我们还提供有关不同RIS参数设置对提出方案的影响的见解。

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