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Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference

This paper investigates the performance of integrated wireless sensor and multibeam satellite networks (IWSMSNs) under terrestrial interference. The IWSMSNs constitute sensor nodes (SNs), satellite sinks (SSs), multibeam satellite and remote monitoring hosts (RMHs). The multibeam satellite covers mu...

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Detalles Bibliográficos
Autores principales: Li, Hongjun, Yin, Hao, Gong, Xiangwu, Dong, Feihong, Ren, Baoquan, He, Yuanzhi, Wang, Jingchao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5087499/
https://www.ncbi.nlm.nih.gov/pubmed/27754438
http://dx.doi.org/10.3390/s16101711
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author Li, Hongjun
Yin, Hao
Gong, Xiangwu
Dong, Feihong
Ren, Baoquan
He, Yuanzhi
Wang, Jingchao
author_facet Li, Hongjun
Yin, Hao
Gong, Xiangwu
Dong, Feihong
Ren, Baoquan
He, Yuanzhi
Wang, Jingchao
author_sort Li, Hongjun
collection PubMed
description This paper investigates the performance of integrated wireless sensor and multibeam satellite networks (IWSMSNs) under terrestrial interference. The IWSMSNs constitute sensor nodes (SNs), satellite sinks (SSs), multibeam satellite and remote monitoring hosts (RMHs). The multibeam satellite covers multiple beams and multiple SSs in each beam. The SSs can be directly used as SNs to transmit sensing data to RMHs via the satellite, and they can also be used to collect the sensing data from other SNs to transmit to the RMHs. We propose the hybrid one-dimensional (1D) and 2D beam models including the equivalent intra-beam interference factor β from terrestrial communication networks (TCNs) and the equivalent inter-beam interference factor α from adjacent beams. The terrestrial interference is possibly due to the signals from the TCNs or the signals of sinks being transmitted to other satellite networks. The closed-form approximations of capacity per beam are derived for the return link of IWSMSNs under terrestrial interference by using the Haar approximations where the IWSMSNs experience the Rician fading channel. The optimal joint decoding capacity can be considered as the upper bound where all of the SSs’ signals can be jointly decoded by a super-receiver on board the multibeam satellite or a gateway station that knows all of the code books. While the linear minimum mean square error (MMSE) capacity is where all of the signals of SSs are decoded singularly by a multibeam satellite or a gateway station. The simulations show that the optimal capacities are obviously higher than the MMSE capacities under the same conditions, while the capacities are lowered by Rician fading and converge as the Rician factor increases. α and β jointly affect the performance of hybrid 1D and 2D beam models, and the number of SSs also contributes different effects on the optimal capacity and MMSE capacity of the IWSMSNs.
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spelling pubmed-50874992016-11-07 Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference Li, Hongjun Yin, Hao Gong, Xiangwu Dong, Feihong Ren, Baoquan He, Yuanzhi Wang, Jingchao Sensors (Basel) Article This paper investigates the performance of integrated wireless sensor and multibeam satellite networks (IWSMSNs) under terrestrial interference. The IWSMSNs constitute sensor nodes (SNs), satellite sinks (SSs), multibeam satellite and remote monitoring hosts (RMHs). The multibeam satellite covers multiple beams and multiple SSs in each beam. The SSs can be directly used as SNs to transmit sensing data to RMHs via the satellite, and they can also be used to collect the sensing data from other SNs to transmit to the RMHs. We propose the hybrid one-dimensional (1D) and 2D beam models including the equivalent intra-beam interference factor β from terrestrial communication networks (TCNs) and the equivalent inter-beam interference factor α from adjacent beams. The terrestrial interference is possibly due to the signals from the TCNs or the signals of sinks being transmitted to other satellite networks. The closed-form approximations of capacity per beam are derived for the return link of IWSMSNs under terrestrial interference by using the Haar approximations where the IWSMSNs experience the Rician fading channel. The optimal joint decoding capacity can be considered as the upper bound where all of the SSs’ signals can be jointly decoded by a super-receiver on board the multibeam satellite or a gateway station that knows all of the code books. While the linear minimum mean square error (MMSE) capacity is where all of the signals of SSs are decoded singularly by a multibeam satellite or a gateway station. The simulations show that the optimal capacities are obviously higher than the MMSE capacities under the same conditions, while the capacities are lowered by Rician fading and converge as the Rician factor increases. α and β jointly affect the performance of hybrid 1D and 2D beam models, and the number of SSs also contributes different effects on the optimal capacity and MMSE capacity of the IWSMSNs. MDPI 2016-10-14 /pmc/articles/PMC5087499/ /pubmed/27754438 http://dx.doi.org/10.3390/s16101711 Text en © 2016 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
Li, Hongjun
Yin, Hao
Gong, Xiangwu
Dong, Feihong
Ren, Baoquan
He, Yuanzhi
Wang, Jingchao
Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title_full Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title_fullStr Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title_full_unstemmed Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title_short Performance Analysis of Integrated Wireless Sensor and Multibeam Satellite Networks Under Terrestrial Interference
title_sort performance analysis of integrated wireless sensor and multibeam satellite networks under terrestrial interference
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5087499/
https://www.ncbi.nlm.nih.gov/pubmed/27754438
http://dx.doi.org/10.3390/s16101711
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