论文标题
移动MIMO的连续光束对齐
Continuous Beam Alignment for Mobile MIMO
论文作者
论文摘要
毫米波收发器使用大型天线阵列形成狭窄的高方向光束并克服严重的衰减。狭窄的梁需要大于大型信号,如果没有有关光束方向的事先信息,则需要对齐。此外,由于用户的移动性,横梁随着时间的流逝而漂移,可能需要重新调整。光束跟踪通常用于保持光束紧密耦合并消除与重新调整相关的开销。因此,通过定期测量,梁在失去对准之前进行调整。我们提出了一个模型,根据对光束连续变化的经过精心计算的估计,接收器在每个物理层样品上“连续”调节光束方向。在我们的方法中,使用三种不同溶液的梁角度速率变化预测进行了更新方向的变化。我们的方法在飞行员中没有额外的开销,但是,光束跟踪的性能得到了显着提高。数值结果揭示了与减少光束方向的MSE相关的SNR增强。此外,我们的方法将飞行员的开销降低了60%,高达87%,同时达到与最先进的总跟踪持续时间相似。
Millimeter-wave transceivers use large antenna arrays to form narrow high-directional beams and overcome severe attenuation. Narrow beams require large signaling overhead to be aligned if no prior information about beam directions is available. Moreover, beams drift with time due to user mobility and may need to be realigned. Beam tracking is commonly used to keep the beams tightly coupled and eliminate the overhead associated with realignment. Hence, with periodic measurements, beams are adjusted before they lose alignment. We propose a model where the receiver adjusts beam direction "continuously" over each physical-layer sample according to a carefully calculated estimate of the continuous variation of the beams. In our approach, the change of direction is updated using the rate variation prediction of beam angles via three different solutions. Our approach incurs no additional overhead in pilots, yet, the performance of beam tracking is improved significantly. Numerical results reveal an SNR enhancement associated with reducing the MSE of the beam directions. In addition, our approach reduces the pilot overhead by 60% and up to 87% while achieving a similar total tracking duration as the state-of-the-art.