DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks
Underwater Wireless Sensor Networks (UWSNs) are an enabling technology for many applications in commercial, military, and scientific domains. In some emergency response applications of UWSN, data dissemination is more important, therefore these applications are handled differently as compared to ene...
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doaj-9e6d4489a4b84e92bd9f3a5a8cb40f882020-11-25T03:23:27ZengMDPI AGSensors1424-82202020-06-01203467346710.3390/s20123467DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor NetworksKamran Latif0Nadeem Javaid1Imdad Ullah2Zeeshan Kaleem3Zafar Abbas 4Long D. Nguyen5National Institute of Electronics, Islamabad 44000, PakistanDepartment of Computer Science, COMSATS University Islamabad, Islamabad Campus, Islamabad 44000, PakistanDepartment of Information System, College of Computer Engineering and Sciences, Prince Sattam bin Abdulaziz University, Al-Kharj 11942, Saudia ArabiaElectrical and Computer Engineering Department, COMSATS University Islamabad, Wah Campus, Wah Cantt 47040, PakistanNational Institute of Electronics, Islamabad 44000, PakistanInstitute of Research and Development, Duy Tan University, Da Nang 550000, VietnamUnderwater Wireless Sensor Networks (UWSNs) are an enabling technology for many applications in commercial, military, and scientific domains. In some emergency response applications of UWSN, data dissemination is more important, therefore these applications are handled differently as compared to energy-focused approaches, which is only possible when propagation delay is minimized and packet delivery at surface sinks is assured. Packet delivery underwater is a serious concern because of harsh underwater environments and the dense deployment of nodes, which causes collisions and packet loss. Resultantly, re-transmission causes energy loss and increases end-to-end delay (<inline-formula> <math display="inline"> <semantics> <msub> <mi>D</mi> <mrow> <mi>E</mi> <mn>2</mn> <mi>E</mi> </mrow> </msub> </semantics> </math> </inline-formula>). In this work, we devise a framework for the joint optimization of <i>sink mobility</i>, <i>hold and forward mechanisms</i>, <i>adoptive depth threshold</i> (<inline-formula> <math display="inline"> <semantics> <msub> <mi>d</mi> <mrow> <mi>t</mi> <mi>h</mi> </mrow> </msub> </semantics> </math> </inline-formula>) and <i>data aggregation with pattern matching</i> for reducing nodal propagation delay, maximizing throughput, improving network lifetime, and minimizing energy consumption. To evaluate our technique, we simulate the three-dimensional (3-D) underwater network environment with mobile sink and dense deployments of sensor nodes with varying communication radii. We carry out scalability analysis of the proposed framework in terms of network lifetime, throughput, and packet drop. We also compare our framework to existing techniques, i.e., Mobicast and iAMCTD protocols. We note that adapting varying <inline-formula> <math display="inline"> <semantics> <msub> <mi>d</mi> <mrow> <mi>t</mi> <mi>h</mi> </mrow> </msub> </semantics> </math> </inline-formula> based on node density in a range of network deployment scenarios results in a reduced number of re-transmissions, good energy conservation, and enhanced throughput. Furthermore, results from extensive simulations show that our proposed framework achieves better performance over existing approaches for real-time delay-intolerant applications.https://www.mdpi.com/1424-8220/20/12/3467delay sensitiveunder water WSN routingenergy-efficient routingwireless sensor networkssink mobility |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kamran Latif Nadeem Javaid Imdad Ullah Zeeshan Kaleem Zafar Abbas Long D. Nguyen |
spellingShingle |
Kamran Latif Nadeem Javaid Imdad Ullah Zeeshan Kaleem Zafar Abbas Long D. Nguyen DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks Sensors delay sensitive under water WSN routing energy-efficient routing wireless sensor networks sink mobility |
author_facet |
Kamran Latif Nadeem Javaid Imdad Ullah Zeeshan Kaleem Zafar Abbas Long D. Nguyen |
author_sort |
Kamran Latif |
title |
DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks |
title_short |
DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks |
title_full |
DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks |
title_fullStr |
DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks |
title_full_unstemmed |
DIEER: Delay-Intolerant Energy-Efficient Routing with Sink Mobility in Underwater Wireless Sensor Networks |
title_sort |
dieer: delay-intolerant energy-efficient routing with sink mobility in underwater wireless sensor networks |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2020-06-01 |
description |
Underwater Wireless Sensor Networks (UWSNs) are an enabling technology for many applications in commercial, military, and scientific domains. In some emergency response applications of UWSN, data dissemination is more important, therefore these applications are handled differently as compared to energy-focused approaches, which is only possible when propagation delay is minimized and packet delivery at surface sinks is assured. Packet delivery underwater is a serious concern because of harsh underwater environments and the dense deployment of nodes, which causes collisions and packet loss. Resultantly, re-transmission causes energy loss and increases end-to-end delay (<inline-formula> <math display="inline"> <semantics> <msub> <mi>D</mi> <mrow> <mi>E</mi> <mn>2</mn> <mi>E</mi> </mrow> </msub> </semantics> </math> </inline-formula>). In this work, we devise a framework for the joint optimization of <i>sink mobility</i>, <i>hold and forward mechanisms</i>, <i>adoptive depth threshold</i> (<inline-formula> <math display="inline"> <semantics> <msub> <mi>d</mi> <mrow> <mi>t</mi> <mi>h</mi> </mrow> </msub> </semantics> </math> </inline-formula>) and <i>data aggregation with pattern matching</i> for reducing nodal propagation delay, maximizing throughput, improving network lifetime, and minimizing energy consumption. To evaluate our technique, we simulate the three-dimensional (3-D) underwater network environment with mobile sink and dense deployments of sensor nodes with varying communication radii. We carry out scalability analysis of the proposed framework in terms of network lifetime, throughput, and packet drop. We also compare our framework to existing techniques, i.e., Mobicast and iAMCTD protocols. We note that adapting varying <inline-formula> <math display="inline"> <semantics> <msub> <mi>d</mi> <mrow> <mi>t</mi> <mi>h</mi> </mrow> </msub> </semantics> </math> </inline-formula> based on node density in a range of network deployment scenarios results in a reduced number of re-transmissions, good energy conservation, and enhanced throughput. Furthermore, results from extensive simulations show that our proposed framework achieves better performance over existing approaches for real-time delay-intolerant applications. |
topic |
delay sensitive under water WSN routing energy-efficient routing wireless sensor networks sink mobility |
url |
https://www.mdpi.com/1424-8220/20/12/3467 |
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