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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Terahertz Multi-User Massive MIMO With Intelligent Reflecting Surface: Beam Training and Hybrid Beamforming
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Terahertz Multi-User Massive MIMO With Intelligent Reflecting Surface: Beam Training and Hybrid Beamforming

机译:Terahertz多用户大量MIMO与智能反射表面:光束训练和混合波束形成

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Terahertz (THz) communications open a new frontier for the wireless network thanks to their dramatically wider available bandwidth compared to the current micro-wave and forthcoming millimeter-wave communications. However, due to the short length of THz waves, they also suffer from severe path attenuation and poor diffraction. To compensate for the THz-induced propagation loss, this paper proposes to combine two promising techniques, viz., massive multiple input multiple output (MIMO) and intelligent reflecting surface (IRS), in THz multi-user communications, considering their significant beamforming and aperture gains. Nonetheless, channel estimation and low-cost beamforming turn out to be two main obstacles to realizing this combination, due to the passivity of IRS for sending/receiving pilot signals and the large-scale use of expensive RF chains in massive MIMO. In view of these limitations, this paper first develops a cooperative beam training scheme to facilitate the channel estimation with IRS. In particular, we design two different hierarchical codebooks for the proposed training procedure, which are able to balance between the robustness against noise and searching complexity. Based on the training results, we further propose two cost-efficient hybrid beamforming (HB) designs for both single-user and multi-user scenarios, respectively. Simulation results demonstrate that the proposed joint beam training and HB scheme is able to achieve close performance to the optimal fully digital beamforming which is implemented even under perfect channel state information (CSI).
机译:Terahertz(Thz)通信与当前的微波相比,他们对无线网络开辟了新的前沿,因为与当前的微波和即将举行的毫米波通信相比,他们的显着更宽的带宽。然而,由于THz波的短长度,它们也遭受严重的路径衰减和差的衍射。为了弥补THz诱导的传播损失,本文提出了两个有希望的技术,即大量多输入多输出(MIMO)和智能反射表面(IRS),考虑到它们的显着波束形成和孔径收益。尽管如此,信道估计和低成本波束成形转向实现这种组合的两个主要障碍,因为IRS用于发送/接收导频信号和大规模的MIMO中的昂贵的RF链的大规模使用昂贵的RF链。鉴于这些限制,本文首先开发了合作梁训练方案,以便于与IRS进行信道估计。特别是,我们为建议的培训程序设计了两本不同的分层码本,这能够在噪声和搜索复杂性的鲁棒性之间进行平衡。基于培训结果,我们还提出了两个具有两个成本效益的混合波束形成(HB)设计,分别用于单用户和多用户场景。仿真结果表明,所提出的联合光束训练和HB方案能够实现对最佳全数字波束成形的密切性能,这是在完美的信道状态信息(CSI)下实现的。

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