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An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility

Industrial Underwater Acoustic Sensor Networks (IUASNs) come with intrinsic challenges like long propagation delay, small bandwidth, large energy consumption, three-dimensional deployment, and high deployment and battery replacement cost. Any routing strategy proposed for IUASN must take into accoun...

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Autores principales: Wadud, Zahid, Hussain, Sajjad, Javaid, Nadeem, Bouk, Safdar Hussain, Alrajeh, Nabil, Alabed, Mohamad Souheil, Guizani, Nadra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5677239/
https://www.ncbi.nlm.nih.gov/pubmed/28973983
http://dx.doi.org/10.3390/s17102251
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author Wadud, Zahid
Hussain, Sajjad
Javaid, Nadeem
Bouk, Safdar Hussain
Alrajeh, Nabil
Alabed, Mohamad Souheil
Guizani, Nadra
author_facet Wadud, Zahid
Hussain, Sajjad
Javaid, Nadeem
Bouk, Safdar Hussain
Alrajeh, Nabil
Alabed, Mohamad Souheil
Guizani, Nadra
author_sort Wadud, Zahid
collection PubMed
description Industrial Underwater Acoustic Sensor Networks (IUASNs) come with intrinsic challenges like long propagation delay, small bandwidth, large energy consumption, three-dimensional deployment, and high deployment and battery replacement cost. Any routing strategy proposed for IUASN must take into account these constraints. The vector based forwarding schemes in literature forward data packets to sink using holding time and location information of the sender, forwarder, and sink nodes. Holding time suppresses data broadcasts; however, it fails to keep energy and delay fairness in the network. To achieve this, we propose an Energy Scaled and Expanded Vector-Based Forwarding (ESEVBF) scheme. ESEVBF uses the residual energy of the node to scale and vector pipeline distance ratio to expand the holding time. Resulting scaled and expanded holding time of all forwarding nodes has a significant difference to avoid multiple forwarding, which reduces energy consumption and energy balancing in the network. If a node has a minimum holding time among its neighbors, it shrinks the holding time and quickly forwards the data packets upstream. The performance of ESEVBF is analyzed through in network scenario with and without node mobility to ensure its effectiveness. Simulation results show that ESEVBF has low energy consumption, reduces forwarded data copies, and less end-to-end delay.
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spelling pubmed-56772392017-11-17 An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility Wadud, Zahid Hussain, Sajjad Javaid, Nadeem Bouk, Safdar Hussain Alrajeh, Nabil Alabed, Mohamad Souheil Guizani, Nadra Sensors (Basel) Article Industrial Underwater Acoustic Sensor Networks (IUASNs) come with intrinsic challenges like long propagation delay, small bandwidth, large energy consumption, three-dimensional deployment, and high deployment and battery replacement cost. Any routing strategy proposed for IUASN must take into account these constraints. The vector based forwarding schemes in literature forward data packets to sink using holding time and location information of the sender, forwarder, and sink nodes. Holding time suppresses data broadcasts; however, it fails to keep energy and delay fairness in the network. To achieve this, we propose an Energy Scaled and Expanded Vector-Based Forwarding (ESEVBF) scheme. ESEVBF uses the residual energy of the node to scale and vector pipeline distance ratio to expand the holding time. Resulting scaled and expanded holding time of all forwarding nodes has a significant difference to avoid multiple forwarding, which reduces energy consumption and energy balancing in the network. If a node has a minimum holding time among its neighbors, it shrinks the holding time and quickly forwards the data packets upstream. The performance of ESEVBF is analyzed through in network scenario with and without node mobility to ensure its effectiveness. Simulation results show that ESEVBF has low energy consumption, reduces forwarded data copies, and less end-to-end delay. MDPI 2017-09-30 /pmc/articles/PMC5677239/ /pubmed/28973983 http://dx.doi.org/10.3390/s17102251 Text en © 2017 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
Wadud, Zahid
Hussain, Sajjad
Javaid, Nadeem
Bouk, Safdar Hussain
Alrajeh, Nabil
Alabed, Mohamad Souheil
Guizani, Nadra
An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title_full An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title_fullStr An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title_full_unstemmed An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title_short An Energy Scaled and Expanded Vector-Based Forwarding Scheme for Industrial Underwater Acoustic Sensor Networks with Sink Mobility
title_sort energy scaled and expanded vector-based forwarding scheme for industrial underwater acoustic sensor networks with sink mobility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5677239/
https://www.ncbi.nlm.nih.gov/pubmed/28973983
http://dx.doi.org/10.3390/s17102251
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