Title :
Partial sensing coverage and deployment efficiency in wireless directional sensor networks
Author :
Yun Wang ; Zhifeng Xiao ; Yanwei Wu ; Stephan, Anthony G. ; Siegers, Jacob M.
Author_Institution :
Dept. of Comput. Sci. & Inf. Syst., Bradley Univ., Peoria, IL, USA
Abstract :
Unlike most existing works that focus on a conventional omni-directional sensor network, we investigate the sensing coverage problem in a directional sensor network through mathematically modeling, analysis, and computer-based simulation evaluation. Research results show: 1) A factor of (2π/θ) more sensors will be required to provide the same sensing coverage in a θ(θ <; 2π)-directional sensor network with respect to its counterpart omni-directional sensor network; 2) Employing application-tolerable partial sensing coverage is of significant importance for directional sensor network implementation in practice, as a noticeable fraction of sensors can be saved; For example, 50% and 66.67% sensors can be saved for 90% sensing coverage as compared to 99% and 99.9% sensing coverage respectively under the same network settings; 3) The node saving rate of employing partial sensing coverage α(α <; 1) with respect to full sensing coverage f(f ≈1), derived as ηα = ln(1-α)-ln(1-f)/ln(1-f), is solely determined by the sensing coverage requirement in an application and is independent of sensor features. Simulation results validate the modeling, derivation, and analysis.
Keywords :
wireless sensor networks; application-tolerable partial sensing coverage; deployment efficiency; omnidirectional sensor network; wireless directional sensor networks; Analytical models; Computer science; Equations; Mathematical model; Numerical models; Sensors; Wireless sensor networks; Coverage; Deployment Efficiency; Directional Sensors; Node Saving Rate; Wireless Sensor Networks;
Conference_Titel :
Wireless Telecommunications Symposium (WTS), 2014
Conference_Location :
Washington, DC
DOI :
10.1109/WTS.2014.6835029