DocumentCode :
26004
Title :
Spatial Throughput of Mobile Ad Hoc Networks Powered by Energy Harvesting
Author :
Kaibin Huang
Author_Institution :
Hong Kong Polytech. Univ., Hong Kong, China
Volume :
59
Issue :
11
fYear :
2013
fDate :
Nov. 2013
Firstpage :
7597
Lastpage :
7612
Abstract :
Designing mobiles to harvest ambient energy such as kinetic activities or electromagnetic radiation will enable wireless networks to be self-sustaining. In this paper, the spatial throughput of a mobile ad hoc network powered by energy harvesting is analyzed using a stochastic-geometry model. In this model, transmitters are distributed as a Poisson point process and energy arrives at each transmitter randomly with a uniform average rate called the energy arrival rate. Upon harvesting sufficient energy, each transmitter transmits with fixed power to an intended receiver under an outage-probability constraint for a target signal-to-interference-and-noise ratio. It is assumed that transmitters store energy in batteries with infinite capacity. By applying the random-walk theory, the probability that a transmitter transmits, called the transmission probability, is proved to be equal to the smaller of one and the ratio between the energy-arrival rate and transmission power. This result and tools from stochastic geometry are applied to maximize the network throughput for a given energy-arrival rate by optimizing transmission power. The maximum network throughput is shown to be proportional to the optimal transmission probability, which is equal to one if the transmitter density is below a derived function of the energy-arrival rate or otherwise is smaller than one and solves a given polynomial equation. Last, the limits of the maximum network throughput are obtained for the extreme cases of high energy-arrival rates and sparse/dense networks.
Keywords :
energy harvesting; mobile ad hoc networks; probability; stochastic processes; telecommunication power supplies; Poisson point process; electromagnetic radiation; energy arrival rate; energy harvesting; maximum network throughput; mobile ad hoc networks; outage-probability constraint; random-walk theory; spatial throughput; stochastic-geometry model; target signal-to-interference-and-noise ratio; transmission probability; wireless networks; Batteries; Energy harvesting; Interference; Mobile ad hoc networks; Signal to noise ratio; Throughput; Transmitters; Energy harvesting; mobile ad hoc networks; mobile communication; power control; stochastic processes; throughput;
fLanguage :
English
Journal_Title :
Information Theory, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9448
Type :
jour
DOI :
10.1109/TIT.2013.2276811
Filename :
6609136
Link To Document :
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