毫米波通信的高效全数字波束形成架构

Oner Orhan, Hosein Nikopour, Junyoung Nam, Navid Naderializadeh, S. Talwar
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引用次数: 1

摘要

典型的无线收发器包括射频集成电路(RFIC)和基带调制解调器(BBIC),它们通过输入/输出(I/O)接口连接。宽频宽、高速率的毫米波系统给收发器的I/O接口带来了很大的功耗负担。为了降低I/O接口的速率和功耗,本文提出了一种新型的低功耗全数字盲波束跟踪和空间压缩架构(FDA-BTSC)。由于毫米波信道的稀疏性,对接收信号进行空间压缩是可行的。通过基于码本的波束形成和快速盲波束跟踪实现了有效的空间压缩。所提供的分析和评估表明,所提出的架构可能与现有的模拟和混合毫米波架构一样节能。此外,FDA- BTSC在保持全数字波束形成的波束管理低延迟和数字波束形成效率高的优势的同时,将基带处理复杂度和功耗水平显著降低到与混合波束形成相同的量级。
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A Power Efficient Fully Digital Beamforming Architecture for mmWave Communications
A typical wireless transceiver includes a radio frequency integrated circuit (RFIC) and a baseband modem (BBIC) which are connected through an input/output (I/O) interface. The wide-bandwidth and high-rate millimeter wave (mmWave) systems put a heavy burden on the power dissipation of the I/O interface of a transceiver. In this paper, a novel low power fully digital architecture with blind beam tracking and spatial compression (FDA-BTSC) is introduced to reduce the rate and power dissipation of the I/O interface. Spatial compression of the received signal is feasible due to the sparsity of mmWave channels. An efficient spatial compression is realized through codebook-based beamforming and fast blind beam tracking. Provided analysis and evaluations show that the proposed architecture is potentially as power efficient as existing analog and hybrid mmWave architectures. In addition, FDA- BTSC significantly drops the baseband processing complexity and power consumption level to the same order as hybrid beamforming, while it maintains the advantages of the fully digital beamforming in terms of low latency of the beam management and high efficiency of the digital beamforming.
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