Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.

Collaborative beamforming (CBF) with a finite number of collaborating nodes (CNs) produces sidelobes that are highly dependent on the collaborating nodes' locations. The sidelobes cause interference and affect the communication rate of unintended receivers located within the transmission range....

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Main Authors: Suhanya Jayaprakasam, Sharul Kamal Abdul Rahim, Chee Yen Leow, Tiew On Ting
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5413046?pdf=render
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spelling doaj-2290126cf81e4e079ec1798642a822942020-11-25T01:24:05ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01125e017551010.1371/journal.pone.0175510Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.Suhanya JayaprakasamSharul Kamal Abdul RahimChee Yen LeowTiew On TingCollaborative beamforming (CBF) with a finite number of collaborating nodes (CNs) produces sidelobes that are highly dependent on the collaborating nodes' locations. The sidelobes cause interference and affect the communication rate of unintended receivers located within the transmission range. Nulling is not possible in an open-loop CBF since the collaborating nodes are unable to receive feedback from the receivers. Hence, the overall sidelobe reduction is required to avoid interference in the directions of the unintended receivers. However, the impact of sidelobe reduction on the capacity improvement at the unintended receiver has never been reported in previous works. In this paper, the effect of peak sidelobe (PSL) reduction in CBF on the capacity of an unintended receiver is analyzed. Three meta-heuristic optimization methods are applied to perform PSL minimization, namely genetic algorithm (GA), particle swarm algorithm (PSO) and a simplified version of the PSO called the weightless swarm algorithm (WSA). An average reduction of 20 dB in PSL alongside 162% capacity improvement is achieved in the worst case scenario with the WSA optimization. It is discovered that the PSL minimization in the CBF provides capacity improvement at an unintended receiver only if the CBF cluster is small and dense.http://europepmc.org/articles/PMC5413046?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Suhanya Jayaprakasam
Sharul Kamal Abdul Rahim
Chee Yen Leow
Tiew On Ting
spellingShingle Suhanya Jayaprakasam
Sharul Kamal Abdul Rahim
Chee Yen Leow
Tiew On Ting
Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
PLoS ONE
author_facet Suhanya Jayaprakasam
Sharul Kamal Abdul Rahim
Chee Yen Leow
Tiew On Ting
author_sort Suhanya Jayaprakasam
title Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
title_short Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
title_full Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
title_fullStr Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
title_full_unstemmed Sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
title_sort sidelobe reduction and capacity improvement of open-loop collaborative beamforming in wireless sensor networks.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Collaborative beamforming (CBF) with a finite number of collaborating nodes (CNs) produces sidelobes that are highly dependent on the collaborating nodes' locations. The sidelobes cause interference and affect the communication rate of unintended receivers located within the transmission range. Nulling is not possible in an open-loop CBF since the collaborating nodes are unable to receive feedback from the receivers. Hence, the overall sidelobe reduction is required to avoid interference in the directions of the unintended receivers. However, the impact of sidelobe reduction on the capacity improvement at the unintended receiver has never been reported in previous works. In this paper, the effect of peak sidelobe (PSL) reduction in CBF on the capacity of an unintended receiver is analyzed. Three meta-heuristic optimization methods are applied to perform PSL minimization, namely genetic algorithm (GA), particle swarm algorithm (PSO) and a simplified version of the PSO called the weightless swarm algorithm (WSA). An average reduction of 20 dB in PSL alongside 162% capacity improvement is achieved in the worst case scenario with the WSA optimization. It is discovered that the PSL minimization in the CBF provides capacity improvement at an unintended receiver only if the CBF cluster is small and dense.
url http://europepmc.org/articles/PMC5413046?pdf=render
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AT sharulkamalabdulrahim sidelobereductionandcapacityimprovementofopenloopcollaborativebeamforminginwirelesssensornetworks
AT cheeyenleow sidelobereductionandcapacityimprovementofopenloopcollaborativebeamforminginwirelesssensornetworks
AT tiewonting sidelobereductionandcapacityimprovementofopenloopcollaborativebeamforminginwirelesssensornetworks
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