基于几何先验的近场XL-MIMO通信信道估计

IF 3.7 3区 计算机科学 Q2 TELECOMMUNICATIONS
Yuqing Guo;Xufeng Guo;Ying Wang
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引用次数: 0

摘要

本文研究了近场视距(LoS)超大多输入多输出(xml - mimo)通信的信道估计,其中两个收发器都配备了均匀线性阵列(ula)。对于毫米波和亚太赫兹频段内的近场LoS通道,电磁波的传播通常很少发生衍射或散射,这意味着在傅立叶平面波级数展开下,每个平面波分量的传播方向几乎保持不变。这种不变性表明发射和接收平面波分量的传播方向之间有很强的相关性,在这封信中称为几何先验。首先,我们利用波数域稀疏化基将信道分解为几个平面波分量。然后,我们推导出在ula之间的任何相对取向角下,波数域信道矩阵中非零条目的潜在位置。随后,进一步提出了一种两阶段信道估计框架。具体而言,第一阶段的目标是推导方向角,第二阶段在缩小的搜索空间内进行压缩感知。仿真结果验证了所提出的角度和信道估计的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Channel Estimation for Near-Field Line-of-Sight XL-MIMO Communications Using Geometric Prior
This letter investigates the channel estimation for near-field line-of-sight (LoS) extremely-large multiple-input-multiple-output (XL-MIMO) communications, where both the transceivers are equipped with uniform linear arrays (ULAs). For near-field LoS channels within millimeter wave and sub-teraherz frequency bands, electromagnetic waves typically propagate with little diffraction or scattering, implying the propagation direction of each plane-wave component remains almost invariant under the Fourier plane-wave series expansion. This invariance indicates a strong correlation between the propagation directions of transmitted and received plane-wave components, called geometric prior in this letter. Initially, we utilize the wavenumber-domain sparsifying basis to decompose the channel into several plane-wave components. Then, we deduce the potential locations of non-zero entries in the wavenumber-domain channel matrix for any relative orientation angle between the ULAs. Subsequently, a two-stage channel estimation framework is further proposed. Specifically, the first stage aims to derive the orientation angle, and the second stage performs compressed sensing within a reduced search space. Simulation results are provided to validate the robustness of our proposed angle and channel estimation.
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来源期刊
IEEE Communications Letters
IEEE Communications Letters 工程技术-电信学
CiteScore
8.10
自引率
7.30%
发文量
590
审稿时长
2.8 months
期刊介绍: The IEEE Communications Letters publishes short papers in a rapid publication cycle on advances in the state-of-the-art of communication over different media and channels including wire, underground, waveguide, optical fiber, and storage channels. Both theoretical contributions (including new techniques, concepts, and analyses) and practical contributions (including system experiments and prototypes, and new applications) are encouraged. This journal focuses on the physical layer and the link layer of communication systems.
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