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Principal Component Analysis-Based Broadband Hybrid Precoding for Millimeter-Wave Massive MIMO Systems

机译:基于主成分分析的毫米波大型MIMO系统宽带混合型预编码

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Hybrid analog-digital precoding is challenging for broadband millimeter-wave (mmWave) massive MIMO systems, since the analog precoder is frequency-flat but the mmWave channels are frequency-selective. In this paper, we propose a principal component analysis (PCA)-based broadband hybrid precoder/combiner design, where both the fully-connected array and partially-connected subarray (including the fixed and adaptive subarrays) are investigated. Specifically, we first design the hybrid precoder/combiner for fully-connected array and fixed subarray based on PCA, whereby a low-dimensional frequency-flat precoder/combiner is acquired based on the optimal high-dimensional frequency-selective precoder/combiner. Meanwhile, the near-optimality of our proposed PCA approach is theoretically proven. Moreover, for the adaptive subarray, a low-complexity shared agglomerative hierarchical clustering algorithm is proposed to group the antennas for the further improvement of spectral efficiency (SE) performance. Besides, we theoretically prove that the proposed antenna grouping algorithm is only determined by the slow time-varying channel parameters in the large antenna limit. Simulation results demonstrate the superiority of the proposed solution over state-of-the-art schemes in SE, energy efficiency (EE), bit-error-rate performance, and the robustness to time-varying channels. Our work reveals that the EE advantage of adaptive subarray over fully-connected array is obvious for both active and passive antennas, but the EE advantage of fixed subarray only holds for passive antennas.
机译:混合模数预编码对宽带毫米波(MMWAVE)大规模MIMO系统具有具有挑战性,因为模拟预编码器是频率平,但MMWAVE通道是频率选择性的。在本文中,我们提出了基于主成分分析(PCA)的宽带混合预制件/组合器设计,其中已经研究了完全连接的阵列和部分连接的子阵列(包括固定和自适应子阵列)。具体地,我们首先基于PCA设计用于全连接的阵列和固定子阵列的混合预编码器/组合器,由此基于最佳高维频率选择性预编码器/组合器获取低维频率平预编码器/组合器。同时,我们提出的PCA方法的接近最优性在理论上证明了。此外,对于自适应子阵列,提出了一种低复杂性共享聚集分层聚类算法,用于对天线进行分组,以进一步提高频谱效率(SE)性能。此外,我们理论上证明了所提出的天线分组算法仅由大天线限制中的慢时变信道参数确定。仿真结果证明了所提出的解决方案在SE,能源效率(EE),误码率性能和鲁棒性方案中提出的解决方案的优越性。我们的工作揭示了自适应子阵列通过完全连接阵列的EE优势对于主动和被动天线来说是显而易见的,但是固定子阵列的EE优势仅适用于被动天线。

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