TY - JOUR
T1 - Principal Component Analysis-Based Broadband Hybrid Precoding for Millimeter-Wave Massive MIMO Systems
AU - Sun, Yiwei
AU - Gao, Zhen
AU - Wang, Hua
AU - Shim, Byonghyo
AU - Gui, Guan
AU - Mao, Guoqiang
AU - Adachi, Fumiyuki
N1 - Funding Information:
Manuscript received June 20, 2019; revised December 1, 2019, April 13, 2020, and June 8, 2020; accepted June 9, 2020. Date of publication June 23, 2020; date of current version October 9, 2020. This work was supported in part by the National Natural Science Foundation of China under Grant 61701027, in part by the Beijing Natural Science Foundation under Grant 4182055 and Grant L182024, in part by the Young Elite Scientists Sponsorship Program by China Association for Science and Technology (CAST), in part by the Talent Innovation Project of Beijing Institute of Technology (BIT), and the open research fund of the Key Laboratory of Dynamic Cognitive System of Electromagnetic Spectrum Space, Ministry of Industry and Information Technology, Nanjing University of Aeronautics and Astronautics (NUAA), under the Grant KF20202103. This article was presented in part at the IEEE Global Communications Conference, Abu Dhabi, UAE, December 2018. The associate editor coordinating the review of this article and approving it for publication was G. C. Alexandropoulos. (Corresponding author: Zhen Gao) Yiwei Sun and Hua Wang are with the School of Information and Electronics, Beijing Institute of Technology, Beijing 100811, China (e-mail: wanghua@bit.edu.cn).
Publisher Copyright:
© 2002-2012 IEEE.
PY - 2020/10
Y1 - 2020/10
N2 - 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.
AB - 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.
KW - Hybrid precoding
KW - OFDM
KW - adaptive subarray
KW - energy efficiency
KW - massive MIMO
KW - millimeter-wave
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U2 - 10.1109/TWC.2020.3002719
DO - 10.1109/TWC.2020.3002719
M3 - Article
AN - SCOPUS:85090929502
SN - 1536-1276
VL - 19
SP - 6331
EP - 6346
JO - IEEE Transactions on Wireless Communications
JF - IEEE Transactions on Wireless Communications
IS - 10
M1 - 9123541
ER -