DocumentCode
1518745
Title
Optimal Energy Allocation for Wireless Communications With Energy Harvesting Constraints
Author
Ho, Chin Keong ; Zhang, Rui
Author_Institution
Inst. for Infocomm Res., A*STAR, Singapore, Singapore
Volume
60
Issue
9
fYear
2012
Firstpage
4808
Lastpage
4818
Abstract
We consider the use of energy harvesters, in place of conventional batteries with fixed energy storage, for point-to-point wireless communications. In addition to the challenge of transmitting in a channel with time selective fading, energy harvesters provide a perpetual but unreliable energy source. In this paper, we consider the problem of energy allocation over a finite horizon, taking into account channel conditions and energy sources that are time varying, so as to maximize the throughput. Two types of side information (SI) on the channel conditions and harvested energy are assumed to be available: causal SI (of the past and present slots) or full SI (of the past, present and future slots). We obtain structural results for the optimal energy allocation, via the use of dynamic programming and convex optimization techniques. In particular, if unlimited energy can be stored in the battery with harvested energy and the full SI is available, we prove the optimality of a water-filling energy allocation solution where the so-called water levels follow a staircase function.
Keywords
convex programming; dynamic programming; energy harvesting; energy storage; radiocommunication; battery; convex optimization; dynamic programming; energy harvesting constraint; energy storage; optimal energy allocation; point-to-point wireless communication; side information; staircase function; time selective fading; water level; water-filling energy allocation solution; Batteries; Energy harvesting; Resource management; Silicon; Throughput; Transmitters; Convex optimization; dynamic programming; energy harvesting; optimal policy; wireless communications;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/TSP.2012.2199984
Filename
6202352
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