Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels

Recently, a novel spatial modulation (SM) scheme; termed Mid-symbol Antenna transition (MAT) spatial modulation, was developed to reduce the number of utilized transmitting antennas and improve the average bit error rate (ABER) performance. In this paper, the structure of the original MAT is extende...

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Main Authors: Mohamed Arafa, Mohamed Elwekeil, Taotao Wang, Moawad Dessouky
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9347444/
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spelling doaj-d184054598474082a209540fdc47ca002021-03-30T15:27:18ZengIEEEIEEE Access2169-35362021-01-019254822549410.1109/ACCESS.2021.30559629347444Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading ChannelsMohamed Arafa0https://orcid.org/0000-0002-6157-6578Mohamed Elwekeil1https://orcid.org/0000-0003-2924-4706Taotao Wang2https://orcid.org/0000-0001-9454-4997Moawad Dessouky3https://orcid.org/0000-0002-3369-7524Department of Electronics and Electrical Communications Engineering, Faculty of Electronic Engineering, Menoufia University, Menouf, EgyptDepartment of Electronics and Electrical Communications Engineering, Faculty of Electronic Engineering, Menoufia University, Menouf, EgyptCollege of Electronics and Information Engineering, Shenzhen University, Shenzhen, ChinaDepartment of Electronics and Electrical Communications Engineering, Faculty of Electronic Engineering, Menoufia University, Menouf, EgyptRecently, a novel spatial modulation (SM) scheme; termed Mid-symbol Antenna transition (MAT) spatial modulation, was developed to reduce the number of utilized transmitting antennas and improve the average bit error rate (ABER) performance. In this paper, the structure of the original MAT is extended to adapt Double-antenna transitions (DAT) during the symbol's transmission duration. Compared to the mid-symbol antenna-transition (MAT), the DAT scheme allows more reduction in the number of required transmitter antennas (TAs) and more enhancement of ABER performance, while achieving the same spectral efficiency (SE). DAT scheme reduces receiver complexity in comparison with generic SM, generalized SM (GSM), variable generalized SM (VGSM), and MAT schemes. The detailed DAT system design is presented. Furthermore, the theoretical closed-form of the ABER upper bound of the DAT system is quantified. The validity of the derived ABER upper bound is proved by contrasting it with the simulated ABER. Monte-Carlo simulations are utilized to evaluate the ABER of the DAT scheme over nakagami-m fading channels with respect to competing schemes. Furthermore, we study the impact of the spatial correlation on the considered schemes and the impact of varying nakagami-m factor on the performance of the DAT scheme. Our simulations demonstrate that DAT significantly outperforms the aforementioned rival schemes in terms of the average bit error rate (ABER) performance.https://ieeexplore.ieee.org/document/9347444/MIMO systemsspatial modulationmid-symbol antenna transitionwireless channelsspectral efficiencycomplexity analysis
collection DOAJ
language English
format Article
sources DOAJ
author Mohamed Arafa
Mohamed Elwekeil
Taotao Wang
Moawad Dessouky
spellingShingle Mohamed Arafa
Mohamed Elwekeil
Taotao Wang
Moawad Dessouky
Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
IEEE Access
MIMO systems
spatial modulation
mid-symbol antenna transition
wireless channels
spectral efficiency
complexity analysis
author_facet Mohamed Arafa
Mohamed Elwekeil
Taotao Wang
Moawad Dessouky
author_sort Mohamed Arafa
title Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
title_short Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
title_full Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
title_fullStr Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
title_full_unstemmed Double Antenna-Transitions Spatial Modulation Performance Evaluation Over Nakagami-<italic><bold>m</bold></italic> Wireless Fading Channels
title_sort double antenna-transitions spatial modulation performance evaluation over nakagami-<italic><bold>m</bold></italic> wireless fading channels
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description Recently, a novel spatial modulation (SM) scheme; termed Mid-symbol Antenna transition (MAT) spatial modulation, was developed to reduce the number of utilized transmitting antennas and improve the average bit error rate (ABER) performance. In this paper, the structure of the original MAT is extended to adapt Double-antenna transitions (DAT) during the symbol's transmission duration. Compared to the mid-symbol antenna-transition (MAT), the DAT scheme allows more reduction in the number of required transmitter antennas (TAs) and more enhancement of ABER performance, while achieving the same spectral efficiency (SE). DAT scheme reduces receiver complexity in comparison with generic SM, generalized SM (GSM), variable generalized SM (VGSM), and MAT schemes. The detailed DAT system design is presented. Furthermore, the theoretical closed-form of the ABER upper bound of the DAT system is quantified. The validity of the derived ABER upper bound is proved by contrasting it with the simulated ABER. Monte-Carlo simulations are utilized to evaluate the ABER of the DAT scheme over nakagami-m fading channels with respect to competing schemes. Furthermore, we study the impact of the spatial correlation on the considered schemes and the impact of varying nakagami-m factor on the performance of the DAT scheme. Our simulations demonstrate that DAT significantly outperforms the aforementioned rival schemes in terms of the average bit error rate (ABER) performance.
topic MIMO systems
spatial modulation
mid-symbol antenna transition
wireless channels
spectral efficiency
complexity analysis
url https://ieeexplore.ieee.org/document/9347444/
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AT mohamedelwekeil doubleantennatransitionsspatialmodulationperformanceevaluationovernakagamiitalicboldmbolditalicwirelessfadingchannels
AT taotaowang doubleantennatransitionsspatialmodulationperformanceevaluationovernakagamiitalicboldmbolditalicwirelessfadingchannels
AT moawaddessouky doubleantennatransitionsspatialmodulationperformanceevaluationovernakagamiitalicboldmbolditalicwirelessfadingchannels
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