High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond

The ever-increasing proliferation of mobile users and new technologies, and the demands for ubiquitous connectivity, high data capacity, faster data speed, low latency, and reliable services have been driven the quest for the next generation, fifth generation (5G), of the wireless networks. Cloud ra...

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Bibliographic Details
Main Authors: Khan Zeb, Xiupu Zhang, Zhenguo Lu
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
5G
Online Access:https://ieeexplore.ieee.org/document/8753420/
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spelling doaj-f56f66f2ba1a42398bff2cb07d84b30b2021-03-29T23:29:09ZengIEEEIEEE Access2169-35362019-01-017895228953310.1109/ACCESS.2019.29262768753420High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and BeyondKhan Zeb0https://orcid.org/0000-0001-5269-1200Xiupu Zhang1https://orcid.org/0000-0003-2764-5397Zhenguo Lu2Department of Electrical and Computer Engineering, iPhotonics Laboratories, Concordia University, Montreal, QC, CanadaDepartment of Electrical and Computer Engineering, iPhotonics Laboratories, Concordia University, Montreal, QC, CanadaAdvanced Electronics and Photonics Research Centre, National Research Council, Ottawa, ON, CanadaThe ever-increasing proliferation of mobile users and new technologies, and the demands for ubiquitous connectivity, high data capacity, faster data speed, low latency, and reliable services have been driven the quest for the next generation, fifth generation (5G), of the wireless networks. Cloud radio access network (C-RAN) has been identified as a promising architecture for addressing 5G requirements. However, C-RAN enforces stringent requirements on the fronthaul capacity and latency. To this end, several fronthaul solutions have been proposed in the literature, ranging from transporting digitized radio signals over fiber and functional splits to an entirely analog-radio-over fiber (A-RoF) based fronthual. A-RoF is a highly appealing transport solution for fronthual of 5G and beyond owing to its high bandwidth and energy efficiency, low system complexity, small footprint, cost-effectiveness, and low latency. In this paper, a high capacity multiple-input-multiple-output (MIMO) enabled all-optical analog-millimeter-wave-over fiber (A-MMWoF) fronthaul architecture is proposed for 5G and beyond of wireless networks. The proposed architecture employs photonic MMW signals generation and mode division multiplexing (MDM) along with wavelength division multiplexing (WDM) for transporting MMW MIMO signals in the optical domain. In support of the proposed architecture design, a comprehensive state-of-the-art literature review on the recent research works in high capacity A-RoF fronthaul systems and related transport technologies is presented. In addition, the corresponding potential challenges and solutions along with potential future directions are highlighted. The proposed design is flexible and scalable for achieving high capacity, high speed, and low latency fronthaul links.https://ieeexplore.ieee.org/document/8753420/5Gfronthaulanalog-radio-over fiber (A-RoF)millimeter-wave-over fiber (MMWoF)multiple-input-multiple-output (MIMO)space division multiplexing (SDM)
collection DOAJ
language English
format Article
sources DOAJ
author Khan Zeb
Xiupu Zhang
Zhenguo Lu
spellingShingle Khan Zeb
Xiupu Zhang
Zhenguo Lu
High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
IEEE Access
5G
fronthaul
analog-radio-over fiber (A-RoF)
millimeter-wave-over fiber (MMWoF)
multiple-input-multiple-output (MIMO)
space division multiplexing (SDM)
author_facet Khan Zeb
Xiupu Zhang
Zhenguo Lu
author_sort Khan Zeb
title High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
title_short High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
title_full High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
title_fullStr High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
title_full_unstemmed High Capacity Mode Division Multiplexing Based MIMO Enabled All-Optical Analog Millimeter-Wave Over Fiber Fronthaul Architecture for 5G and Beyond
title_sort high capacity mode division multiplexing based mimo enabled all-optical analog millimeter-wave over fiber fronthaul architecture for 5g and beyond
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description The ever-increasing proliferation of mobile users and new technologies, and the demands for ubiquitous connectivity, high data capacity, faster data speed, low latency, and reliable services have been driven the quest for the next generation, fifth generation (5G), of the wireless networks. Cloud radio access network (C-RAN) has been identified as a promising architecture for addressing 5G requirements. However, C-RAN enforces stringent requirements on the fronthaul capacity and latency. To this end, several fronthaul solutions have been proposed in the literature, ranging from transporting digitized radio signals over fiber and functional splits to an entirely analog-radio-over fiber (A-RoF) based fronthual. A-RoF is a highly appealing transport solution for fronthual of 5G and beyond owing to its high bandwidth and energy efficiency, low system complexity, small footprint, cost-effectiveness, and low latency. In this paper, a high capacity multiple-input-multiple-output (MIMO) enabled all-optical analog-millimeter-wave-over fiber (A-MMWoF) fronthaul architecture is proposed for 5G and beyond of wireless networks. The proposed architecture employs photonic MMW signals generation and mode division multiplexing (MDM) along with wavelength division multiplexing (WDM) for transporting MMW MIMO signals in the optical domain. In support of the proposed architecture design, a comprehensive state-of-the-art literature review on the recent research works in high capacity A-RoF fronthaul systems and related transport technologies is presented. In addition, the corresponding potential challenges and solutions along with potential future directions are highlighted. The proposed design is flexible and scalable for achieving high capacity, high speed, and low latency fronthaul links.
topic 5G
fronthaul
analog-radio-over fiber (A-RoF)
millimeter-wave-over fiber (MMWoF)
multiple-input-multiple-output (MIMO)
space division multiplexing (SDM)
url https://ieeexplore.ieee.org/document/8753420/
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AT xiupuzhang highcapacitymodedivisionmultiplexingbasedmimoenabledallopticalanalogmillimeterwaveoverfiberfronthaularchitecturefor5gandbeyond
AT zhenguolu highcapacitymodedivisionmultiplexingbasedmimoenabledallopticalanalogmillimeterwaveoverfiberfronthaularchitecturefor5gandbeyond
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