DocumentCode
2574
Title
Achieving Asymmetric Sensing Coverage for Duty Cycled Wireless Sensor Networks
Author
Yu Gu ; Long Cheng ; Jianwei Niu ; Tian He ; Du, David Hung-Chang
Author_Institution
Inf. Syst. Technol. & Design, Singapore Univ. of Technol. & Design, Singapore, Singapore
Volume
25
Issue
12
fYear
2014
fDate
Dec. 2014
Firstpage
3076
Lastpage
3087
Abstract
As a key approach to achieve energy efficiency in sensor networks, sensing coverage has been studied extensively in the literature. Researchers have designed many coverage protocols to provide various kinds of service guarantees on the network lifetime, coverage ratio and detection delay. While these protocols are effective, they are not flexible enough to meet multiple design goals simultaneously. In this paper, we propose a unified sensing coverage architecture for duty cycled wireless sensor networks, called uSense, which features three novel ideas: Asymmetric Architecture, Generic Switching and Global Scheduling. We propose asymmetric architecture based on the conceptual separation of switching from scheduling. Switching is efficiently supported in sensor nodes, while scheduling is done in a separated computational entity, where multiple scheduling algorithms are supported. As an instance, we propose a two-level global coverage algorithm, called uScan. At the first level, coverage is scheduled to activate different portions of an area. We propose an optimal scheduling algorithm to minimize area breach. At the second level, sets of nodes are selected to cover active portions. Importantly, we show the feasibility to obtain optimal set-cover results in linear time if the layout of areas satisfies certain conditions. Through extensive testbed and simulation evaluations, we demonstrate that uSense is a promising architecture to support flexible and efficient coverage in sensor networks.
Keywords
scheduling; wireless sensor networks; asymmetric architecture; asymmetric sensing coverage; duty cycled wireless sensor networks; generic switching; global scheduling; multiple scheduling algorithm; optimal scheduling algorithm; two-level global coverage algorithm; uScan; uSense; Algorithm design and analysis; Computer architecture; Scheduling; Sensors; Wireless sensor networks; Architecture; sensing coverage; sensor networks; two-level scheduling; uScan; uSense;
fLanguage
English
Journal_Title
Parallel and Distributed Systems, IEEE Transactions on
Publisher
ieee
ISSN
1045-9219
Type
jour
DOI
10.1109/TPDS.2014.2307869
Filename
6747354
Link To Document