论文标题

转向:全双工毫米波通信系统的光束选择

STEER: Beam Selection for Full-Duplex Millimeter Wave Communication Systems

论文作者

Roberts, Ian P., Chopra, Aditya, Novlan, Thomas, Vishwanath, Sriram, Andrews, Jeffrey G.

论文摘要

现代毫米波(MMWave)通信系统依靠光束对齐来提供足够的光束成形增益,以关闭设备之间的链接。我们提出了一种新型的光束选择方法,用于多板全双工MMWave系统,我们称之为Steer,它可以提供屏蔽型增益,同时显着降低了发射光束和接收光束之间的全双工自我干扰。转向不需要更改常规束对准方法或其他无线反馈,使其与现有的蜂窝标准兼容。取而代之的是,转向使用常规光束对齐来识别一般方向梁应进行转向,然后利用最少数量的自我干扰测量值来共同选择传输和接收光束,这些束在这些方向上提供高增益,同时耦合低自我干扰。我们在一个行业级28 GHz分阶段平台上实现转向,并使用进一步的模拟表明,转向选择的光束可以胜过半双链和全双工操作,并通过传统梁选择选择光束。例如,与传统的束相比,转向可以可靠地将自身释放减少20 dB,并将SINR提高10 dB以上。我们的实验结果表明,光束对齐不仅可以用来在全双工MMWave系统中提供屏蔽增益,而且还可以减轻自噪声接近或下方的水平的自身解干,从而使额外的自我干扰不需要引导。

Modern millimeter wave (mmWave) communication systems rely on beam alignment to deliver sufficient beamforming gain to close the link between devices. We present a novel beam selection methodology for multi-panel, full-duplex mmWave systems, which we call STEER, that delivers high beamforming gain while significantly reducing the full-duplex self-interference coupled between the transmit and receive beams. STEER does not necessitate changes to conventional beam alignment methodologies nor additional over-the-air feedback, making it compatible with existing cellular standards. Instead, STEER uses conventional beam alignment to identify the general directions beams should be steered, and then it makes use of a minimal number of self-interference measurements to jointly select transmit and receive beams that deliver high gain in these directions while coupling low self-interference. We implement STEER on an industry-grade 28 GHz phased array platform and use further simulation to show that full-duplex operation with beams selected by STEER can notably outperform both half-duplex and full-duplex operation with beams chosen via conventional beam selection. For instance, STEER can reliably reduce self-interference by more than 20 dB and improve SINR by more than 10 dB, compared to conventional beam selection. Our experimental results highlight that beam alignment can be used not only to deliver high beamforming gain in full-duplex mmWave systems but also to mitigate self-interference to levels near or below the noise floor, rendering additional self-interference cancellation unnecessary with STEER.

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