论文标题

智能反射表面辅助MIMO系统的渠道估计:张量建模方法

Channel Estimation for Intelligent Reflecting Surface Assisted MIMO Systems: A Tensor Modeling Approach

论文作者

de Araújo, Gilderlan T., de Almeida, André L. F., Boyer, Rémy

论文摘要

智能反射表面(IRS)是一种新兴技术,用于未来的无线通信,包括5G,尤其是6G。它由(半)被动散射元件组成,该元件控制射频波的电磁特性,以便反射的信号在预期的接收器或毁灭性地添加以减少共渠道干扰。 IRS辅助通信的承诺收益取决于渠道状态信息的准确性。在本文中,我们通过使用张量建模方法来解决IRS辅助的多输入多输出(MIMO)通信系统的接收器设计,该方法旨在使用监督(PILOT辅助)方法来针对渠道估计问题。考虑到飞行员和IRS相移的结构化时间域模式,我们提出了两种依赖于接收信号的平行因子(PARAFAC)张量建模的通道估计方法。第一个通过解决级别-1矩阵近似问题的级联MIMO通道的Khatri-Rao分解基于封闭形式的解决方案,而第二个是迭代性交替估计方案。两种方法的共同特征是对所涉及的MIMO通道矩阵(基站IRS和IRS-用户终端)的估计值的脱耦,该估计值与基于基于级联通道的非结构化LS估计值的竞争方法相比提供了性能增强。讨论了指导系统参数选择的两种方法的设计建议。数值结果表明,与基于LS的解决方案相比,相比,提出的接收器的有效性,突出了所涉及的权衡,并证实了其优越的性能。

Intelligent reflecting surface (IRS) is an emerging technology for future wireless communications including 5G and especially 6G. It consists of a large 2D array of (semi-)passive scattering elements that control the electromagnetic properties of radio-frequency waves so that the reflected signals add coherently at the intended receiver or destructively to reduce co-channel interference. The promised gains of IRS-assisted communications depend on the accuracy of the channel state information. In this paper, we address the receiver design for an IRS-assisted multiple-input multiple-output (MIMO) communication system via a tensor modeling approach aiming at the channel estimation problem using supervised (pilot-assisted) methods. Considering a structured time-domain pattern of pilots and IRS phase shifts, we present two channel estimation methods that rely on a parallel factor (PARAFAC) tensor modeling of the received signals. The first one has a closed-form solution based on a Khatri-Rao factorization of the cascaded MIMO channel, by solving rank-1 matrix approximation problems, while the second one is an iterative alternating estimation scheme. The common feature of both methods is the decoupling of the estimates of the involved MIMO channel matrices (base station-IRS and IRS-user terminal), which provides performance enhancements in comparison to competing methods that are based on unstructured LS estimates of the cascaded channel. Design recommendations for both methods that guide the choice of the system parameters are discussed. Numerical results show the effectiveness of the proposed receivers, highlight the involved trade-offs, and corroborate their superior performance compared to competing LS-based solutions.

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