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Parallel Factor Decomposition Channel Estimation in RIS-Assisted Multi-User MISO Communication

机译:RIS辅助的多用户MISO通信中的并行因子分解信道估计

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Reconfigurable Intelligent Surfaces (RISs) have been recently considered as an energy-efficient solution for future wireless networks due to their fast and low power configuration enabling massive connectivity and low latency communications. Channel estimation in RIS-based systems is one of the most critical challenges due to the large number of reflecting unit elements and their distinctive hardware constraints. In this paper, we focus on the downlink of a RIS-assisted multi-user Multiple Input Single Output (MISO) communication system and present a method based on the PARAllel FACtor (PARAFAC) decomposition to unfold the resulting cascaded channel model. The proposed method includes an alternating least squares algorithm to iteratively estimate the channel between the base station and RIS, as well as the channels between RIS and users. Our selective simulation results show that the proposed iterative channel estimation method outperforms a benchmark scheme using genie-aided information. We also provide insights on the impact of different RIS settings on the proposed algorithm.
机译:可重构智能表面(RIS)最近被认为是未来无线网络的节能解决方案,因为它们的快速和低功耗配置可实现大规模连接和低延迟通信。由于大量的反射单元元素及其独特的硬件限制,基于RIS的系统中的信道估计是最关键的挑战之一。在本文中,我们关注于RIS辅助的多用户多输入单输出(MISO)通信系统的下行链路,并提出了一种基于PARAllel FACtor(PARAFAC)分解的方法来展开所得级联信道模型。所提出的方法包括交替最小二乘算法,以迭代地估计基站与RIS之间的信道以及RIS与用户之间的信道。我们的选择性仿真结果表明,所提出的迭代信道估计方法优于使用精灵辅助信息的基准方案。我们还提供了有关不同RIS设置对所提出算法的影响的见解。

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