A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring
Wireless communications for applications of inshore fishery and large area aquatic environmental monitoring are really challenging, due to the characteristics of a long monitoring period, large coverage area, and adverse transmission conditions. Recently, LPWAN (low-power wide-area network) became t...
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doaj-ebb0396cb39f41edabc92d22afdc36652020-11-25T01:23:28ZengMDPI AGElectronics2079-92922019-08-018890910.3390/electronics8080909electronics8080909A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental MonitoringZheng Zhang0Shouqi Cao1Yuntengyao Wang2College of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaCollege of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaCollege of Engineering Science and Technology, Shanghai Ocean University, Shanghai 201306, ChinaWireless communications for applications of inshore fishery and large area aquatic environmental monitoring are really challenging, due to the characteristics of a long monitoring period, large coverage area, and adverse transmission conditions. Recently, LPWAN (low-power wide-area network) became the new solution to address these challenges, due to its long transmission distance and low power consumption of end-nodes. In this paper, we designed a novel network system for aquatic environmental monitoring, based on long-range 2.4G technology, which consisted of a low cost dual-channel gateway and end-nodes. A DMSF (dual-channel multiple spreading factors)−TDMA (time division multiple access) MAC (medium access control) scheme for this system was proposed, which largely reduces the channel collision probability, and improves the real-time for urgent data and the average lifetime of end-nodes. We verified the applicability of the long-range 2.4G technology in an aquatic environment, by point-to-point communication experiments over lake water. The performance evaluation and analysis of DMSF−TDMA is presented through simulations, and comparison with other existing schemes. The results demonstrated the benefit of our proposed scheme, in terms of the packet delivery rate, delay, and energy consumption.https://www.mdpi.com/2079-9292/8/8/909LPWANaquatic environmental monitoringTDMAspreading factorsscheduling scheme |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zheng Zhang Shouqi Cao Yuntengyao Wang |
spellingShingle |
Zheng Zhang Shouqi Cao Yuntengyao Wang A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring Electronics LPWAN aquatic environmental monitoring TDMA spreading factors scheduling scheme |
author_facet |
Zheng Zhang Shouqi Cao Yuntengyao Wang |
author_sort |
Zheng Zhang |
title |
A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring |
title_short |
A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring |
title_full |
A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring |
title_fullStr |
A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring |
title_full_unstemmed |
A Long-Range 2.4G Network System and Scheduling Scheme for Aquatic Environmental Monitoring |
title_sort |
long-range 2.4g network system and scheduling scheme for aquatic environmental monitoring |
publisher |
MDPI AG |
series |
Electronics |
issn |
2079-9292 |
publishDate |
2019-08-01 |
description |
Wireless communications for applications of inshore fishery and large area aquatic environmental monitoring are really challenging, due to the characteristics of a long monitoring period, large coverage area, and adverse transmission conditions. Recently, LPWAN (low-power wide-area network) became the new solution to address these challenges, due to its long transmission distance and low power consumption of end-nodes. In this paper, we designed a novel network system for aquatic environmental monitoring, based on long-range 2.4G technology, which consisted of a low cost dual-channel gateway and end-nodes. A DMSF (dual-channel multiple spreading factors)−TDMA (time division multiple access) MAC (medium access control) scheme for this system was proposed, which largely reduces the channel collision probability, and improves the real-time for urgent data and the average lifetime of end-nodes. We verified the applicability of the long-range 2.4G technology in an aquatic environment, by point-to-point communication experiments over lake water. The performance evaluation and analysis of DMSF−TDMA is presented through simulations, and comparison with other existing schemes. The results demonstrated the benefit of our proposed scheme, in terms of the packet delivery rate, delay, and energy consumption. |
topic |
LPWAN aquatic environmental monitoring TDMA spreading factors scheduling scheme |
url |
https://www.mdpi.com/2079-9292/8/8/909 |
work_keys_str_mv |
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