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A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments

A computational model for radio wave propagation through tree orchards is presented. Trees are modeled as collections of branches, geometrically approximated by cylinders, whose dimensions are determined on the basis of measurements in a cherry orchard. Tree canopies are modeled as dielectric sphere...

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Autores principales: Anastassiu, Hristos T., Vougioukas, Stavros, Fronimos, Theodoros, Regen, Christian, Petrou, Loukas, Zude, Manuela, Käthner, Jana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4003983/
https://www.ncbi.nlm.nih.gov/pubmed/24625738
http://dx.doi.org/10.3390/s140305118
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author Anastassiu, Hristos T.
Vougioukas, Stavros
Fronimos, Theodoros
Regen, Christian
Petrou, Loukas
Zude, Manuela
Käthner, Jana
author_facet Anastassiu, Hristos T.
Vougioukas, Stavros
Fronimos, Theodoros
Regen, Christian
Petrou, Loukas
Zude, Manuela
Käthner, Jana
author_sort Anastassiu, Hristos T.
collection PubMed
description A computational model for radio wave propagation through tree orchards is presented. Trees are modeled as collections of branches, geometrically approximated by cylinders, whose dimensions are determined on the basis of measurements in a cherry orchard. Tree canopies are modeled as dielectric spheres of appropriate size. A single row of trees was modeled by creating copies of a representative tree model positioned on top of a rectangular, lossy dielectric slab that simulated the ground. The complete scattering model, including soil and trees, enhanced by periodicity conditions corresponding to the array, was characterized via a commercial computational software tool for simulating the wave propagation by means of the Finite Element Method. The attenuation of the simulated signal was compared to measurements taken in the cherry orchard, using two ZigBee receiver-transmitter modules. Near the top of the tree canopies (at 3 m), the predicted attenuation was close to the measured one—just slightly underestimated. However, at 1.5 m the solver underestimated the measured attenuation significantly, especially when leaves were present and, as distances grew longer. This suggests that the effects of scattering from neighboring tree rows need to be incorporated into the model. However, complex geometries result in ill conditioned linear systems that affect the solver's convergence.
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spelling pubmed-40039832014-04-29 A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments Anastassiu, Hristos T. Vougioukas, Stavros Fronimos, Theodoros Regen, Christian Petrou, Loukas Zude, Manuela Käthner, Jana Sensors (Basel) Article A computational model for radio wave propagation through tree orchards is presented. Trees are modeled as collections of branches, geometrically approximated by cylinders, whose dimensions are determined on the basis of measurements in a cherry orchard. Tree canopies are modeled as dielectric spheres of appropriate size. A single row of trees was modeled by creating copies of a representative tree model positioned on top of a rectangular, lossy dielectric slab that simulated the ground. The complete scattering model, including soil and trees, enhanced by periodicity conditions corresponding to the array, was characterized via a commercial computational software tool for simulating the wave propagation by means of the Finite Element Method. The attenuation of the simulated signal was compared to measurements taken in the cherry orchard, using two ZigBee receiver-transmitter modules. Near the top of the tree canopies (at 3 m), the predicted attenuation was close to the measured one—just slightly underestimated. However, at 1.5 m the solver underestimated the measured attenuation significantly, especially when leaves were present and, as distances grew longer. This suggests that the effects of scattering from neighboring tree rows need to be incorporated into the model. However, complex geometries result in ill conditioned linear systems that affect the solver's convergence. MDPI 2014-03-12 /pmc/articles/PMC4003983/ /pubmed/24625738 http://dx.doi.org/10.3390/s140305118 Text en © 2014 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 license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Anastassiu, Hristos T.
Vougioukas, Stavros
Fronimos, Theodoros
Regen, Christian
Petrou, Loukas
Zude, Manuela
Käthner, Jana
A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title_full A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title_fullStr A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title_full_unstemmed A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title_short A Computational Model for Path Loss in Wireless Sensor Networks in Orchard Environments
title_sort computational model for path loss in wireless sensor networks in orchard environments
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4003983/
https://www.ncbi.nlm.nih.gov/pubmed/24625738
http://dx.doi.org/10.3390/s140305118
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