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Versatile Compressive mmWave Hybrid Beamformer Codebook Design Framework

机译:多功能压缩式毫米波混合波束成形器代码本设计框架

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Hybrid beamforming (HB) architectures are attractive for wireless communication systems with large antenna arrays because the analog beamforming stage can significantly reduce the number of RF transceivers and hence power consumption. In HB systems, channel estimation (CE) becomes challenging due to indirect access by the baseband processing to the communication channels and due to low SNR before beam alignment. Compressed sensing (CS) based algorithms have been adopted to address these challenges by leveraging the sparse nature of millimeter wave multi-input multi-output (mmWave MIMO) channels. In many CS algorithms for narrowband CE, the hybrid beamformers are randomly configured which does not always yield the low-coherence sensing matrices desirable for those CS algorithms whose recovery guarantees rely on coherence. In this paper, we propose a versatile deterministic HB codebook design framework for CS algorithms with coherencebased recovery guarantees to enhance CE accuracy. Simulation results show that the proposed design can obtain lower channel estimation error and higher spectral efficiency compared with random codebook for phase-shifter-, switch-, and lens-based HB architectures.
机译:混合波束成形(HB)架构对于具有大天线阵列的无线通信系统具有吸引力,因为模拟波束形成级可以显着减少RF收发器的数量并因此进行功耗。在HB系统中,信道估计(CE)由于基带处理到通信信道的间接访问并且由于光束对准前的低SNR而变得具有挑战性。通过利用毫米波多输入多输出(MMWAVE MIMO)通道的稀疏性质,采用压缩感测(CS)基于算法来解决这些挑战。在窄带CE的许多CS算法中,混合波束形成器被随机配置,其并不总是产生对于那些恢复保证依赖于一致性的CS算法所期望的低相干感测矩阵。在本文中,我们向CS算法提出了一个多功能的确定性HB码本设计框架,具有连贯的恢复保证,以提高CE准确性。仿真结果表明,与基于镜头,交换机和镜头的HB架构的随机码本相比,所提出的设计可以获得较低的信道估计误差和更高的光谱效率。

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