Mobile beacon-based adaptive time synchronization for wireless sensor networks

Abstract Time synchronization of clocks in the sensor nodes for wireless sensor networks (WSNs) is a fundamental technology for most mission-critical applications. Most of past research in time synchronization for WSNs, however, has only focused on achieving some of the goals at a time, such as accu...

Full description

Bibliographic Details
Main Authors: Jingsha He, Xinggang Xuan, Nafei Zhu, Na Huang, Peng He
Format: Article
Language:English
Published: SpringerOpen 2018-09-01
Series:EURASIP Journal on Wireless Communications and Networking
Subjects:
Online Access:http://link.springer.com/article/10.1186/s13638-018-1232-0
id doaj-988fb9cc7c9a4482bbd3a5875899ca9a
record_format Article
spelling doaj-988fb9cc7c9a4482bbd3a5875899ca9a2020-11-25T02:01:51ZengSpringerOpenEURASIP Journal on Wireless Communications and Networking1687-14992018-09-012018111110.1186/s13638-018-1232-0Mobile beacon-based adaptive time synchronization for wireless sensor networksJingsha He0Xinggang Xuan1Nafei Zhu2Na Huang3Peng He4Faculty of Information Technology, Beijing University of TechnologyFaculty of Information Technology, Beijing University of TechnologyFaculty of Information Technology, Beijing University of TechnologyFaculty of Information Technology, Beijing University of TechnologyCollege of Computer and Information Science, China Three Gorges UniversityAbstract Time synchronization of clocks in the sensor nodes for wireless sensor networks (WSNs) is a fundamental technology for most mission-critical applications. Most of past research in time synchronization for WSNs, however, has only focused on achieving some of the goals at a time, such as accuracy, energy consumption, completion time, etc., making these solutions less capable of adapting to different application requirements. In this paper, we propose a new time synchronization algorithm named MBATS (mobile beacon-based adaptive time synchronization) in which a mobile beacon is employed to move or fly over the sensor deployment area to complete time synchronization. Moreover, MBATS is designed so that the number of sensor nodes that are synchronized by one instance of time synchronization from the mobile beacon could vary dynamically to meet application requirements on accuracy, completion time and energy consumption, making the proposed MBATS algorithm highly adaptable to different application requirements. In addition to showing the advantage of the proposed MBATS algorithm on the adaptability of time synchronization as well as on some of the main metrics of synchronization over comparable schemes for WSNs, we also present the results of our study on comparing the performance of letting the mobile beacon traverse along a designing path versus follow a random path. Such a study is important since it would allow us to learn the performance gains that we can expect to achieve with extra control effort spent on designing the path over the effortless random path strategy. Such study could provide us with some clues on how to choose a suitable time synchronization strategy to better meet application requirements, which may not necessarily be the designed path strategy due to the tradeoff between cost and performance gains.http://link.springer.com/article/10.1186/s13638-018-1232-0Wireless sensor networksTime synchronizationAdaptivenessEnergy efficiency
collection DOAJ
language English
format Article
sources DOAJ
author Jingsha He
Xinggang Xuan
Nafei Zhu
Na Huang
Peng He
spellingShingle Jingsha He
Xinggang Xuan
Nafei Zhu
Na Huang
Peng He
Mobile beacon-based adaptive time synchronization for wireless sensor networks
EURASIP Journal on Wireless Communications and Networking
Wireless sensor networks
Time synchronization
Adaptiveness
Energy efficiency
author_facet Jingsha He
Xinggang Xuan
Nafei Zhu
Na Huang
Peng He
author_sort Jingsha He
title Mobile beacon-based adaptive time synchronization for wireless sensor networks
title_short Mobile beacon-based adaptive time synchronization for wireless sensor networks
title_full Mobile beacon-based adaptive time synchronization for wireless sensor networks
title_fullStr Mobile beacon-based adaptive time synchronization for wireless sensor networks
title_full_unstemmed Mobile beacon-based adaptive time synchronization for wireless sensor networks
title_sort mobile beacon-based adaptive time synchronization for wireless sensor networks
publisher SpringerOpen
series EURASIP Journal on Wireless Communications and Networking
issn 1687-1499
publishDate 2018-09-01
description Abstract Time synchronization of clocks in the sensor nodes for wireless sensor networks (WSNs) is a fundamental technology for most mission-critical applications. Most of past research in time synchronization for WSNs, however, has only focused on achieving some of the goals at a time, such as accuracy, energy consumption, completion time, etc., making these solutions less capable of adapting to different application requirements. In this paper, we propose a new time synchronization algorithm named MBATS (mobile beacon-based adaptive time synchronization) in which a mobile beacon is employed to move or fly over the sensor deployment area to complete time synchronization. Moreover, MBATS is designed so that the number of sensor nodes that are synchronized by one instance of time synchronization from the mobile beacon could vary dynamically to meet application requirements on accuracy, completion time and energy consumption, making the proposed MBATS algorithm highly adaptable to different application requirements. In addition to showing the advantage of the proposed MBATS algorithm on the adaptability of time synchronization as well as on some of the main metrics of synchronization over comparable schemes for WSNs, we also present the results of our study on comparing the performance of letting the mobile beacon traverse along a designing path versus follow a random path. Such a study is important since it would allow us to learn the performance gains that we can expect to achieve with extra control effort spent on designing the path over the effortless random path strategy. Such study could provide us with some clues on how to choose a suitable time synchronization strategy to better meet application requirements, which may not necessarily be the designed path strategy due to the tradeoff between cost and performance gains.
topic Wireless sensor networks
Time synchronization
Adaptiveness
Energy efficiency
url http://link.springer.com/article/10.1186/s13638-018-1232-0
work_keys_str_mv AT jingshahe mobilebeaconbasedadaptivetimesynchronizationforwirelesssensornetworks
AT xinggangxuan mobilebeaconbasedadaptivetimesynchronizationforwirelesssensornetworks
AT nafeizhu mobilebeaconbasedadaptivetimesynchronizationforwirelesssensornetworks
AT nahuang mobilebeaconbasedadaptivetimesynchronizationforwirelesssensornetworks
AT penghe mobilebeaconbasedadaptivetimesynchronizationforwirelesssensornetworks
_version_ 1724955441512841216