DocumentCode
110031
Title
Adaptive Synchronization in IEEE802.15.4e Networks
Author
Stanislowski, David ; Vilajosana, Xavier ; Qin Wang ; Watteyne, Thomas ; Pister, K.S.J.
Author_Institution
Berkeley Sensor & Actuator Center, Univ. of California, Berkeley, Berkeley, CA, USA
Volume
10
Issue
1
fYear
2014
fDate
Feb. 2014
Firstpage
795
Lastpage
802
Abstract
Industrial low-power wireless mesh networks are shifting towards time-synchronized medium access control (MAC) protocols which are able to yield over 99.9% end-to-end reliability and radio duty cycles well below 1%. In these networks, motes use time slots to communicate, and neighbor motes maintain their clocks´ alignment, typically within 1 ms. Temperature, supply voltage, and fabrication differences cause the motes´ clocks to drift with respect to one another. Neighbor motes need to re-synchronize periodically through pairwise communication. This period is typically determined a priori, based on the worst case drift. In this paper, we propose a novel technique which measures and models the relative clock drift between neighbor motes, thereby reducing the effective drift rate. Instead of resynchronizing at a preset rate, neighbor motes resynchronize only when needed. This reduces the minimum achievable duty cycle of an idle network by a factor of 10, which in turn lowers the mote power consumption and extends the network lifetime. This Adaptive Synchronization is implemented as part of IEEE802.15.4e in the OpenWSN protocol stack and is validated through extensive experimentation.
Keywords
Zigbee; access protocols; computer network reliability; synchronisation; wireless mesh networks; wireless sensor networks; IEEE802.15.4e network; MAC protocol; OpenWSN protocol stack; adaptive synchronization; end-to-end reliability; industrial low-power wireless mesh network; neighbor mote; power consumption; radio duty cycle; relative clock drift; time 1 ms; time-synchronized medium access control protocol; Duty cycle; IEEE802.15.4e; energy consumption; synchronization; time-synchronized channel hopping (TSCH); wireless sensor networks (WSNs);
fLanguage
English
Journal_Title
Industrial Informatics, IEEE Transactions on
Publisher
ieee
ISSN
1551-3203
Type
jour
DOI
10.1109/TII.2013.2255062
Filename
6488838
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