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A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals

The next generation of wireless and mobile networks will have to handle a significant increase in traffic load compared to the current ones. This situation calls for novel ways to increase the spectral efficiency. Therefore, in this paper, we propose a wireless spectrum hypervisor architecture that...

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Autores principales: de Figueiredo, Felipe A. P., Mennes, Ruben, Jabandžić, Irfan, Jiao, Xianjun, Moerman, Ingrid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7070396/
https://www.ncbi.nlm.nih.gov/pubmed/32079365
http://dx.doi.org/10.3390/s20041101
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author de Figueiredo, Felipe A. P.
Mennes, Ruben
Jabandžić, Irfan
Jiao, Xianjun
Moerman, Ingrid
author_facet de Figueiredo, Felipe A. P.
Mennes, Ruben
Jabandžić, Irfan
Jiao, Xianjun
Moerman, Ingrid
author_sort de Figueiredo, Felipe A. P.
collection PubMed
description The next generation of wireless and mobile networks will have to handle a significant increase in traffic load compared to the current ones. This situation calls for novel ways to increase the spectral efficiency. Therefore, in this paper, we propose a wireless spectrum hypervisor architecture that abstracts a radio frequency (RF) front-end into a configurable number of virtual RF front ends. The proposed architecture has the ability to enable flexible spectrum access in existing wireless and mobile networks, which is a challenging task due to the limited spectrum programmability, i.e., the capability a system has to change the spectral properties of a given signal to fit an arbitrary frequency allocation. The proposed architecture is a non-intrusive and highly optimized wireless hypervisor that multiplexes the signals of several different and concurrent multi-carrier-based radio access technologies with numerologies that are multiple integers of one another, which are also referred in our work as radio access technologies with correlated numerology. For example, the proposed architecture can multiplex the signals of several Wi-Fi access points, several LTE base stations, several WiMAX base stations, etc. As it able to multiplex the signals of radio access technologies with correlated numerology, it can, for instance, multiplex the signals of LTE, 5G-NR and NB-IoT base stations. It abstracts a radio frequency front-end into a configurable number of virtual RF front ends, making it possible for such different technologies to share the same RF front-end and consequently reduce the costs and increasing the spectral efficiency by employing densification, once several networks share the same infrastructure or by dynamically accessing free chunks of spectrum. Therefore, the main goal of the proposed approach is to improve spectral efficiency by efficiently using vacant gaps in congested spectrum bandwidths or adopting network densification through infrastructure sharing. We demonstrate mathematically how our proposed approach works and present several simulation results proving its functionality and efficiency. Additionally, we designed and implemented an open-source and free proof of concept prototype of the proposed architecture, which can be used by researchers and developers to run experiments or extend the concept to other applications. We present several experimental results used to validate the proposed prototype. We demonstrate that the prototype can easily handle up to 12 concurrent physical layers.
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spelling pubmed-70703962020-03-19 A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals de Figueiredo, Felipe A. P. Mennes, Ruben Jabandžić, Irfan Jiao, Xianjun Moerman, Ingrid Sensors (Basel) Article The next generation of wireless and mobile networks will have to handle a significant increase in traffic load compared to the current ones. This situation calls for novel ways to increase the spectral efficiency. Therefore, in this paper, we propose a wireless spectrum hypervisor architecture that abstracts a radio frequency (RF) front-end into a configurable number of virtual RF front ends. The proposed architecture has the ability to enable flexible spectrum access in existing wireless and mobile networks, which is a challenging task due to the limited spectrum programmability, i.e., the capability a system has to change the spectral properties of a given signal to fit an arbitrary frequency allocation. The proposed architecture is a non-intrusive and highly optimized wireless hypervisor that multiplexes the signals of several different and concurrent multi-carrier-based radio access technologies with numerologies that are multiple integers of one another, which are also referred in our work as radio access technologies with correlated numerology. For example, the proposed architecture can multiplex the signals of several Wi-Fi access points, several LTE base stations, several WiMAX base stations, etc. As it able to multiplex the signals of radio access technologies with correlated numerology, it can, for instance, multiplex the signals of LTE, 5G-NR and NB-IoT base stations. It abstracts a radio frequency front-end into a configurable number of virtual RF front ends, making it possible for such different technologies to share the same RF front-end and consequently reduce the costs and increasing the spectral efficiency by employing densification, once several networks share the same infrastructure or by dynamically accessing free chunks of spectrum. Therefore, the main goal of the proposed approach is to improve spectral efficiency by efficiently using vacant gaps in congested spectrum bandwidths or adopting network densification through infrastructure sharing. We demonstrate mathematically how our proposed approach works and present several simulation results proving its functionality and efficiency. Additionally, we designed and implemented an open-source and free proof of concept prototype of the proposed architecture, which can be used by researchers and developers to run experiments or extend the concept to other applications. We present several experimental results used to validate the proposed prototype. We demonstrate that the prototype can easily handle up to 12 concurrent physical layers. MDPI 2020-02-17 /pmc/articles/PMC7070396/ /pubmed/32079365 http://dx.doi.org/10.3390/s20041101 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
de Figueiredo, Felipe A. P.
Mennes, Ruben
Jabandžić, Irfan
Jiao, Xianjun
Moerman, Ingrid
A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title_full A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title_fullStr A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title_full_unstemmed A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title_short A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals
title_sort baseband wireless spectrum hypervisor for multiplexing concurrent ofdm signals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7070396/
https://www.ncbi.nlm.nih.gov/pubmed/32079365
http://dx.doi.org/10.3390/s20041101
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