基于快速全视场空间滤波的23-37GHz自主二维MIMO接收机阵列抑制未知干扰

Bill Y. Lin, Tzu-Yuan Huang, Amr Ahmed, Min-Yu Huang, Hua Wang
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引用次数: 2

摘要

由于无线移动设备使用的快速增长(例如,自动驾驶汽车和无人驾驶飞机系统),对高速/多输入多输出(MIMO)无线链路的需求不断增长,以导航日益动态的环境。当前的毫米波链路依赖于大型发射/接收(Tx/Rx)数字阵列来支持所需的毫米波链路预算,其代价是更窄的通信波束宽度,这需要在整个视场(FoV)上进行精细的波束对准,增加了建立可靠链路所需的迭代次数,并恶化了整个阵列的响应时间。为了使宽带毫米波数字阵列能够在实际EM场景中处理未知频率/到达角(AoA)的各种强阻挡信号,需要敏捷和快速的频谱空间前端滤波/波束形成。数字阵列中大多数现有的前端空间滤波方法都使用开环模拟波束形成器[1]-[3],这些方法视场有限,需要事先了解信号/阻塞器(频率/AoA),或者使用不适合移动应用的数字后端进行动态波束空间计算。限制视场的模拟前端波束形成的一种替代方案是利用数字后端识别拦截者/信号的AoA,并在响应中应用最佳的空间滤波和波束形成[4]。多个强信号/阻滞器的存在对接收机前端和ADC提出了高线性度和高动态范围的要求;否则,强信号/阻塞可能使前端饱和,并超出ADC动态范围。[5]报道了一种使用相域负反馈的类似dll的自主波束形成器,它可以快速抑制多个未知强信号或阻塞器,并支持宽带Gbit/s信号/阻塞器[5]。然而,其阵列架构仅演示一维阵列操作,无法处理平面二维阵列的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A 23-37GHz Autonomous Two-Dimensional MIMO Receiver Array with Rapid Full-FoV Spatial Filtering for Unknown Interference Suppression
Due to the rapid growth in wireless mobile devices use (e.g., autonomous vehicles and unmanned aircraft systems), there is a rising demand for high-speed/Multiple-Input-Multiple-Output (MIMO) wireless links to navigate the increasingly dynamic environments. Current mm-Wave links rely on large transmitting/receiving (Tx/Rx) digital arrays to support the required mm-Wave link budget at the cost of narrower communication beamwidth, which demands fine beam alignment over the entire field-of-view (FoV), increases the number of iterations required to establish a reliable link, and worsens the overall array's response time. Agile and rapid spectral-spatial front-end filtering/beamforming is required to facilitate wideband mm-Wave digital arrays to handle varying strong blocker signals with unknown frequency/angle-of-arrival (AoA) in practical EM scenarios. Most existing front-end spatial filtering methods in digital arrays use open-loop analog beamformers [1]–[3], which have limited FoV, require previous knowledge (frequency/AoA) of the signals/blockers or perform on-the-fly beam-space computations using digital backends which is not suitable for mobile applications. An alternative to FoV-limited analog front-end beamforming is utilizing the digital backend to identify the blockers'/signals' AoA and applying the optimum spatial filtering and beamforming in response [4]. The presence of multiple strong signals/blockers imposes high linearity and high dynamic range requirements on the receiver front-end and ADC; otherwise, strong signals/blockers may saturate the front-end, and exceed the ADC dynamic range. A DLL-like autonomous beamformers using phase-domain negative feedback is reported in [5] which rapidly suppresses multiple unknown strong signals or blockers and support wideband Gbit/s signals/blockers [5]. However, its array architecture only demonstrates 1–D array operation and cannot handle practical applications in a planar 2-D array.
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