DocumentCode :
656174
Title :
Use of a Mobile Sink for Maximizing Data Collection in Energy Harvesting Sensor Networks
Author :
Xiaojiang Ren ; Weifa Liang ; Wenzheng Xu
Author_Institution :
Res. Sch. of Comput. Sci., Australian Nat. Univ., Canberra, ACT, Australia
fYear :
2013
fDate :
1-4 Oct. 2013
Firstpage :
439
Lastpage :
448
Abstract :
In this paper we study data collection in an energy harvesting sensor network for traffic monitoring and surveillance purpose on busy highways, where sensors are densely deployed along a pre-defined path and a mobile sink travels along the path to collect data from one-hop sensors periodically. As the sensors are powered by renewable energy sources, the time-varying characteristics of energy harvesting poses great challenges on the design of efficient routing protocols for data collection in such energy harvesting sensor networks. In this paper we first formulate a novel data collection maximization problem that deals with multi-rate transmission mechanism and transmission time slot scheduling among the sensors. We then show the NPhardness of the problem and devise an offline algorithm with a provable approximation ratio for the problem by exploiting the combinatorial property of the problem, assuming that the global knowledge of the network topology and the profile of each sensor are given. We also develop a fast, scalable online distributed solution for the problem without the global knowledge assumption, which is more suitable for real distributive sensor networks. In addition, we consider a special case of the problem for which a optimal polynomial solution is given. We finally conduct extensive experiments by simulations to evaluate the performance of the proposed algorithms. Experimental results demonstrate that the proposed algorithms are very efficient, and the solutions are fractional of the optimum.
Keywords :
energy harvesting; optimisation; renewable energy sources; road traffic; routing protocols; telecommunication network topology; wireless sensor networks; NP-hardness; combinatorial property; data collection maximization; energy harvesting sensor network; mobile sink; multirate transmission mechanism; network topology; optimal polynomial solution; renewable energy source; routing protocol; time-varying characteristics; traffic monitoring; transmission time slot scheduling; Approximation algorithms; Approximation methods; Data collection; Energy harvesting; Knowledge engineering; Mobile communication; Mobile computing; approximation algorithms; energy harvesting sensor networks; mobile sink; online distributed algorithms; time-slot scheduling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel Processing (ICPP), 2013 42nd International Conference on
Conference_Location :
Lyon
ISSN :
0190-3918
Type :
conf
DOI :
10.1109/ICPP.2013.53
Filename :
6687377
Link To Document :
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