DocumentCode :
3859
Title :
BUCKET: Scheduling of Solar-Powered Sensor Networks via Cross-Layer Optimization
Author :
Sungjin Lee ; Beom Kwon ; Sanghoon Lee ; Bovik, Alan C.
Author_Institution :
Dept. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
Volume :
15
Issue :
3
fYear :
2015
fDate :
Mar-15
Firstpage :
1489
Lastpage :
1503
Abstract :
Renewable solar energy harvesting systems have received considerable attention as a possible substitute for conventional chemical batteries in sensor networks. However, it is difficult to optimize the use of solar energy based only on empirical power acquisition patterns in sensor networks. We apply acquisition patterns from actual solar energy harvesting systems and build a framework to maximize the utilization of solar energy in general sensor networks. To achieve this goal, we develop a cross-layer optimization-based scheduling scheme called binding optimization of duty cycling and networking through energy tracking (BUCKET), which is formulated in four-stages: 1) prediction of energy harvesting and arriving traffic; 2) internode optimization at the transport and network layers; 3) intranode optimization at the medium access control layer; and 4) flow control of generated communication task sets using a token-bucket algorithm. Monitoring of the structural health of bridges is shown to be a potential application of an energy-harvesting sensor network. The example network deploys five sensor types: 1) temperature; 2) strain gauge; 3) accelerometer; 4) pressure; and 5) humidity. In the simulations, the BUCKET algorithm displays performance enhancements of ~12-15% over those of conventional methods in terms of the average service rate.
Keywords :
access protocols; bridges (structures); condition monitoring; energy harvesting; optimisation; scheduling; solar power; structural engineering; wireless sensor networks; acquisition pattern; binding optimization of duty cycling and networking through energy tracking; bridges; chemical batteries; cross-layer optimization-based scheduling scheme; energy arriving traffic prediction; energy harvesting sensor network; energy harvesting traffic prediction; flow control; internode optimization; intranode optimization; medium access control layer; network layer; renewable solar energy harvesting system; solar powered sensor network scheduling; structural health monitoring; token-bucket algorithm; transport layer; Energy consumption; Event detection; Optimization; Relays; Routing; Sensors; Solar energy; Binding optimization of duty cycling and networking through energy tracking (BUCKET); cross-layer optimization; energy-harvesting sensor network; equal duty cycle allocation (EDCA); inter- and intra-node optimization; maximization of the sum of the duty cycle (MSDC);
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2014.2363900
Filename :
6930731
Link To Document :
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