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JSSC 2023第6期RF & WirelessPhased Array

A mm-Wave Frequency Modulated Transmitter Array for Superior Resolution in Angular Localization Supporting Low-Latency Joint Communication and Sensing Naga Sasikanth Mannem , Student Member , IEEE,E l h a mE r f a n i ,Member , IEEE, Tzu-Y

提出一种毫米波调频发射阵列,实现超高分辨率角度检测和通信一体化。
28-GHz四元件多模式FMA发射阵列
毫米波调频阵列角度分辨率通信感知一体化多目标检测
采用调频阵列(FMA)将位置信息转换为时间信息
支持双模式:快速全视场接收器定位和雷达目标角度检测
在单次操作中同时定位多个接收节点或检测多个目标
Abstract
Joint sensing-and-communication is envisioned to play a major role in emerging mm-Wave wireless systems to perform rapid tracking of wireless nodes for reliable wire- less communication and ubiquitous distributed sensing. Phased arrays are essential to realize high array gains and enhance the communication distance. However, their pencil sharp beams require precise localization and tracking of wireless nodes to maintain beam alignment and reliable communication, especially in mobile wireless links. In parallel, array-based mm-Wave radars require large arrays for precise angular resolution that is fundamentally limited by the form factor and power consump- tion of the radar systems. We propose a frequency modulated array (FMA) transmitter (Tx) to convert locations/positions to timing information, which supports dual-modes for joint sensing- and-communication: rapid and precise full field-of-view (FoV) receiver (Rx) localization in the Tx/Rx localization mode for wireless communication and target angular detection in its radar mode. Exploiting its unique joint space-time-frequency dependent signals, the FMA distinguishes spatial signatures far below its array 3-dB beamwidth, i.e., achieving super-resolution and can simultaneously localize multiple Rx nodes or detect multiple targets in “one-shot.” Moreover, FMA only adds minimal circuit/computation overhead on traditional multi-in multi-out (MIMO) arrays. A proof-of-concept 28-GHz four-element multi- mode FMA Tx array is impleme