Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels

Hybrid beamforming for frequency-selective channels is a challenging problem, as the phase shifters provide the same phase shift to all the subcarriers. The existing approaches solely rely on the channel's frequency response, and the hybrid beamformers maximize the average spectral efficiency o...

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Main Authors: Sohail Payami, Mathini Sellathurai, Konstantinos Nikitopoulos
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8667820/
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spelling doaj-553226874f494c0798d5b3dc09dbee192021-03-29T22:22:00ZengIEEEIEEE Access2169-35362019-01-017361953620610.1109/ACCESS.2019.29054308667820Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective ChannelsSohail Payami0https://orcid.org/0000-0002-5577-4957Mathini Sellathurai1Konstantinos Nikitopoulos2Wireless Systems Lab, 5G Innovation Centre, Institute for Communication Systems, University of Surrey, Guildford, U.K.Institute Sensors, Signals, and Systems, Heriot-Watt University, Edinburgh, U.K.Wireless Systems Lab, 5G Innovation Centre, Institute for Communication Systems, University of Surrey, Guildford, U.K.Hybrid beamforming for frequency-selective channels is a challenging problem, as the phase shifters provide the same phase shift to all the subcarriers. The existing approaches solely rely on the channel's frequency response, and the hybrid beamformers maximize the average spectral efficiency over the whole frequency band. Compared to state-of-the-art, we show that substantial sum-rate gains can be achieved, both for rich and sparse scattering channels, by jointly exploiting the frequency- and time-domain characteristics of the massive multiple-input multiple-output (MIMO) channels. In our proposed approach, the radio frequency (RF) beamformer coherently combines the received symbols in the time domain and, thus, it concentrates the signal's power on a specific time sample. As a result, the RF beamformer flattens the frequency response of the “effective” transmission channel and reduces its root-mean-square delay spread. Then, a baseband combiner mitigates the residual interference in the frequency domain. We present the closed-form expressions of the proposed beamformer and its performance by leveraging the favorable propagation condition of massive MIMO channels, and we prove that our proposed scheme can achieve the performance of fully digital zero-forcing when the number of employed phases shifter networks is twice the resolvable multipath components in the time domain.https://ieeexplore.ieee.org/document/8667820/Frequency-selective channelshybrid analog-and-digital beamformingmassive MIMO
collection DOAJ
language English
format Article
sources DOAJ
author Sohail Payami
Mathini Sellathurai
Konstantinos Nikitopoulos
spellingShingle Sohail Payami
Mathini Sellathurai
Konstantinos Nikitopoulos
Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
IEEE Access
Frequency-selective channels
hybrid analog-and-digital beamforming
massive MIMO
author_facet Sohail Payami
Mathini Sellathurai
Konstantinos Nikitopoulos
author_sort Sohail Payami
title Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
title_short Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
title_full Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
title_fullStr Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
title_full_unstemmed Low-Complexity Hybrid Beamforming for Massive MIMO Systems in Frequency-Selective Channels
title_sort low-complexity hybrid beamforming for massive mimo systems in frequency-selective channels
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description Hybrid beamforming for frequency-selective channels is a challenging problem, as the phase shifters provide the same phase shift to all the subcarriers. The existing approaches solely rely on the channel's frequency response, and the hybrid beamformers maximize the average spectral efficiency over the whole frequency band. Compared to state-of-the-art, we show that substantial sum-rate gains can be achieved, both for rich and sparse scattering channels, by jointly exploiting the frequency- and time-domain characteristics of the massive multiple-input multiple-output (MIMO) channels. In our proposed approach, the radio frequency (RF) beamformer coherently combines the received symbols in the time domain and, thus, it concentrates the signal's power on a specific time sample. As a result, the RF beamformer flattens the frequency response of the “effective” transmission channel and reduces its root-mean-square delay spread. Then, a baseband combiner mitigates the residual interference in the frequency domain. We present the closed-form expressions of the proposed beamformer and its performance by leveraging the favorable propagation condition of massive MIMO channels, and we prove that our proposed scheme can achieve the performance of fully digital zero-forcing when the number of employed phases shifter networks is twice the resolvable multipath components in the time domain.
topic Frequency-selective channels
hybrid analog-and-digital beamforming
massive MIMO
url https://ieeexplore.ieee.org/document/8667820/
work_keys_str_mv AT sohailpayami lowcomplexityhybridbeamformingformassivemimosystemsinfrequencyselectivechannels
AT mathinisellathurai lowcomplexityhybridbeamformingformassivemimosystemsinfrequencyselectivechannels
AT konstantinosnikitopoulos lowcomplexityhybridbeamformingformassivemimosystemsinfrequencyselectivechannels
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