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Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System

A blind discrete-cosine-transform-based phase noise compensation (BD-PNC) is proposed to compensate the inter-carrier-interference (ICI) in the coherent optical offset-quadrature amplitude modulation (OQAM)-based filter-bank multicarrier (CO-FBMC/OQAM) transmission system. Since the phase noise samp...

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Detalles Bibliográficos
Autores principales: Wu, Binqi, Lu, Jin, Gao, Mingyi, Ren, Hongliang, Le, Zichun, Qin, Yali, Guo, Shuqin, Hu, Weisheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7665157/
https://www.ncbi.nlm.nih.gov/pubmed/33182465
http://dx.doi.org/10.3390/s20216397
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author Wu, Binqi
Lu, Jin
Gao, Mingyi
Ren, Hongliang
Le, Zichun
Qin, Yali
Guo, Shuqin
Hu, Weisheng
author_facet Wu, Binqi
Lu, Jin
Gao, Mingyi
Ren, Hongliang
Le, Zichun
Qin, Yali
Guo, Shuqin
Hu, Weisheng
author_sort Wu, Binqi
collection PubMed
description A blind discrete-cosine-transform-based phase noise compensation (BD-PNC) is proposed to compensate the inter-carrier-interference (ICI) in the coherent optical offset-quadrature amplitude modulation (OQAM)-based filter-bank multicarrier (CO-FBMC/OQAM) transmission system. Since the phase noise sample can be approximated by an expansion of the discrete cosine transform (DCT) in the time-domain, a time-domain compensation model is built for the transmission system. According to the model, phase noise compensation (PNC) depends only on its DCT coefficients. The common phase error (CPE) compensation is firstly performed for the received signal. After that, a pre-decision is made on a part of compensated signals with low decision error probability, and the pre-decision results are used as the estimated values of transmitted signals to calculate the DCT coefficients. Such a partial pre-decision process reduces not only decision error but also the complexity of the BD-PNC method while keeping almost the same performance as in the case of the pre-decision of all compensated signals. Numerical simulations are performed to evaluate the performance of the proposed scheme for a 30 GBaud CO-FBMC/OQAM system. The simulation results show that its bit error rate (BER) performance is improved by more than one order of magnitude through the mitigation of the ICI in comparison with the traditional blind PNC scheme only aiming for CPE compensation.
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spelling pubmed-76651572020-11-14 Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System Wu, Binqi Lu, Jin Gao, Mingyi Ren, Hongliang Le, Zichun Qin, Yali Guo, Shuqin Hu, Weisheng Sensors (Basel) Article A blind discrete-cosine-transform-based phase noise compensation (BD-PNC) is proposed to compensate the inter-carrier-interference (ICI) in the coherent optical offset-quadrature amplitude modulation (OQAM)-based filter-bank multicarrier (CO-FBMC/OQAM) transmission system. Since the phase noise sample can be approximated by an expansion of the discrete cosine transform (DCT) in the time-domain, a time-domain compensation model is built for the transmission system. According to the model, phase noise compensation (PNC) depends only on its DCT coefficients. The common phase error (CPE) compensation is firstly performed for the received signal. After that, a pre-decision is made on a part of compensated signals with low decision error probability, and the pre-decision results are used as the estimated values of transmitted signals to calculate the DCT coefficients. Such a partial pre-decision process reduces not only decision error but also the complexity of the BD-PNC method while keeping almost the same performance as in the case of the pre-decision of all compensated signals. Numerical simulations are performed to evaluate the performance of the proposed scheme for a 30 GBaud CO-FBMC/OQAM system. The simulation results show that its bit error rate (BER) performance is improved by more than one order of magnitude through the mitigation of the ICI in comparison with the traditional blind PNC scheme only aiming for CPE compensation. MDPI 2020-11-09 /pmc/articles/PMC7665157/ /pubmed/33182465 http://dx.doi.org/10.3390/s20216397 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
Wu, Binqi
Lu, Jin
Gao, Mingyi
Ren, Hongliang
Le, Zichun
Qin, Yali
Guo, Shuqin
Hu, Weisheng
Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title_full Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title_fullStr Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title_full_unstemmed Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title_short Time-Domain Blind ICI Compensation in Coherent Optical FBMC/OQAM System
title_sort time-domain blind ici compensation in coherent optical fbmc/oqam system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7665157/
https://www.ncbi.nlm.nih.gov/pubmed/33182465
http://dx.doi.org/10.3390/s20216397
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