DocumentCode
46095
Title
Distributed Base Station Association and Power Control for Heterogeneous Cellular Networks
Author
Vu Nguyen Ha ; Long Bao Le
Author_Institution
Inst. Nat. de la Rech. Sci.-Energie, Mater. et Telecommun., Univ. du Quebec, Montreal, QC, Canada
Volume
63
Issue
1
fYear
2014
fDate
Jan. 2014
Firstpage
282
Lastpage
296
Abstract
In this paper, we propose a universal joint base station (BS) association (BSA) and power control (PC) algorithm for heterogeneous cellular networks. Specifically, the proposed algorithm iteratively updates the BSA solution and the transmit power of each user. Here, the new transmit power level is expressed as a function of the power in the previous iteration, and this function is called the power update function (puf). We prove the convergence of this algorithm when the puf of the PC strategy satisfies the so-called “two-sided scalable (2.s.s.) function” property. Then, we develop a novel hybrid PC (HPC) scheme by using noncooperative game theory and prove that its corresponding puf is 2.s.s. Therefore, this HPC scheme can be employed in the proposed joint BSA and PC algorithm. We then devise an adaptation mechanism for the HPC algorithm so that it can support the signal-tointerference-plus-noise ratio (SINR) requirements of all users whenever possible while exploiting multiuser diversity to improve the system throughput. We show that the proposed HPC adaptation algorithm outperforms the well-known Foschini-Miljianic PC algorithm in both feasible and infeasible systems. In addition, we present the application of the developed framework to design a hybrid access scheme for two-tier macrocell-femtocell networks. Numerical results are then presented to illustrate the convergence of the proposed algorithms and their superior performance, compared with existing algorithms in the literature.
Keywords
cellular radio; diversity reception; game theory; power control; telecommunication control; Foschini-Miljianic PC algorithm; SINR; distributed base station association; heterogeneous cellular networks; macrocell-femtocell networks; multiuser diversity; noncooperative game theory; power control; power update function; signal-tointerference-plus-noise ratio; Algorithm design and analysis; Convergence; Interference; Joints; Power control; Signal to noise ratio; Throughput; Femtocell networks; hybrid access; interference management; power control (PC); user association;
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/TVT.2013.2273503
Filename
6560450
Link To Document