DocumentCode
56540
Title
Cognitive Small Cell Networks: Energy Efficiency and Trade-Offs
Author
Wildemeersch, Matthias ; Quek, Tony Q. S. ; Slump, Cornelis H. ; Rabbachin, Alberto
Author_Institution
Signals & Syst. Group, Univ. of Twente, Enschede, Netherlands
Volume
61
Issue
9
fYear
2013
fDate
Sep-13
Firstpage
4016
Lastpage
4029
Abstract
Heterogeneous networks using a mix of macrocells and small cells are foreseen as one of the solutions to meet the ever increasing mobile traffic demand. Nevertheless, a massive deployment of small cell access points (SAPs) leads also to a considerable increase in energy consumption. Spurred by growing environmental awareness and the high price of energy, it is crucial to design energy efficient wireless systems for both macrocells and small cells. In this work, we evaluate a distributed sleep-mode strategy for cognitive SAPs and we analyze the trade-off between traffic offloading from the macrocell and the energy consumption of the small cells. Using tools from stochastic geometry, we define the user discovery performance of the SAP and derive the uplink capacity of the small cells located in the Voronoi cell of a macrocell base station, accounting for the uncertainties associated with random position, density, user activity, propagation channel, network interference generated by uncoordinated activity, and the sensing scheme. In addition, we define a fundamental limit on the interference density that allows robust detection and we elucidate the relation between energy efficiency and sensing time using large deviations theory. Through the formulation of several optimization problems, we propose a framework that yields design guidelines for energy efficient small cell networks.
Keywords
cellular radio; cognitive radio; energy conservation; energy consumption; telecommunication channels; telecommunication traffic; Voronoi cell; cognitive small cell networks; design guidelines; energy consumption; energy efficiency; energy efficient small cell networks; energy efficient wireless systems; energy trade-offs; heterogeneous networks; interference density; macrocells; mobile traffic demand; network interference; optimization problems; propagation channel; random position; robust detection; sensing time; small cell access points; stochastic geometry; traffic offloading; uncoordinated activity; uplink capacity; user activity; Aggregates; Computer architecture; Energy consumption; Interference; Macrocell networks; Sensors; Uplink; Small cell; cognitive radio; energy efficiency; green communications; stochastic geometry;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2013.072213.120588
Filename
6567876
Link To Document