毫米波系统的边信息辅助非相干波束对准设计

Yi Zhang, Kartik Patel, S. Shakkottai, R. Heath
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引用次数: 8

摘要

为毫米波系统设计高效、鲁棒的波束对准策略对于克服训练开销和实际硬件缺陷非常重要。在这项工作中,我们利用传播通道角支撑的先验知识形式的侧信息(方向信息)来设计基于压缩感知(CS)的波束对准算法。现有的基于CS的信道估计方法假设测量的相位信息是完美的,而低成本的现成毫米波相控阵则不是这样。相反,我们开发了一种两阶段算法,其中我们使用测量的幅度(又名非相干测量);使用相位恢复(PR)和稀疏恢复,我们估计了不同(量化)空间角度的信道增益。为了验证所提出的算法,我们开发了一个具有定制2位相控阵的完全可重构的毫米波测试平台。我们对相控阵进行了仔细的校准,从而能够生成精确的所需光束模式。通过实验结果与理论分析的一致性,验证了所提出的算法和校准过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Side-information-aided Noncoherent Beam Alignment Design for Millimeter Wave Systems
Designing efficient and robust beam alignment strategies for millimeter wave (mmWave) systems is important for overcoming training overheads and practical hardware impairments. In this work, we leverage side information in the form of prior knowledge of the angular support of the propagation channel (direction information) to design a compressive sensing (CS) based beam alignment algorithm. Existing CS based channel estimation approaches assume perfect phase information of the measurements, which is not the case with the low-cost off-the-shelf mmWave phased arrays. Instead, we develop a two-stage algorithm where we use the magnitude of measurements (aka non-coherent measurements); using phase retrieval (PR) followed by sparse recovery, we estimate the channel gain across various (quantized) spatial angles. To validate the proposed algorithm, we develop a fully reconfigurable mmWave testbed with custom-made 2-bit phased arrays. We perform a careful calibration to the phased arrays, thus enabling generations of precise desired beam patterns. Our implementation and real experiments validate both the proposed algorithm and calibration process by demonstrating consistency between the experimental results and the theoretical analysis.
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