DocumentCode :
693528
Title :
SugarMap: Location-less coverage for micro-aerial sensing swarms
Author :
Purohit, Amruta ; Zheng Sun ; Pei Zhang
Author_Institution :
Carnegie Mellon Univ., Pittsburgh, PA, USA
fYear :
2013
fDate :
8-11 April 2013
Firstpage :
253
Lastpage :
264
Abstract :
Micro-aerial vehicle (MAV) swarms are emerging as a new class of mobile sensor networks with many potential applications such as urban surveillance, disaster response, radiation monitoring, etc., where the swarm is tasked with collaboratively covering a hazardous unknown environment. However, efficient collaborative coverage is challenging due to limited individual sensing, computing and communication resources of MAV sensor nodes, and lack of location infrastructure in the unknown application environment. We present SugarMap, a novel system that enables such resource-constrained MAV nodes to achieve efficient sensing coverage. The self-establishing system uses approximate motion models of mobile nodes in conjunction with radio signatures from self-deployed stationary anchor nodes to create a common coverage map. Consequently, the system coordinates node movements to reduce sensing overlap and increase the speed and efficiency of coverage. The system uses particle filters to account for uncertainty in sensors and actuation of MAV nodes, and incorporates redundancy to guarantee coverage. Through large-scale simulations and a real implementation on the SensorFly MAV sensing platform, we show that SugarMap provides better coverage than the existing coverage approaches for MAV swarms.
Keywords :
Bayes methods; microsensors; mobile radio; particle filtering (numerical methods); wireless sensor networks; SugarMap; locationless coverage; microaerial sensing swarms; mobile sensor networks; particle filters; resource-constrained MAV nodes; sensor uncertainty; Base stations; Dispersion; Estimation; Relays; Robot sensing systems; Uncertainty; Micro-Aerial Vehicle; Mobile Sensor Networks; Swarm;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Processing in Sensor Networks (IPSN), 2013 ACM/IEEE International Conference on
Conference_Location :
Philadelphia, PA
Type :
conf
DOI :
10.1109/IPSN.2013.6917567
Filename :
6917567
Link To Document :
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