DocumentCode :
1489827
Title :
Linear Precoding Bounds for Wyner-Type Cellular Networks With Limited Base-Station Cooperation and Dynamic Clustering
Author :
Bergel, Itsik ; Yellin, Daniel ; Shamai, Shlomo
Author_Institution :
Fac. of Eng., Bar-Ilan Univ., Ramat-Gan, Israel
Volume :
60
Issue :
7
fYear :
2012
fDate :
7/1/2012 12:00:00 AM
Firstpage :
3714
Lastpage :
3725
Abstract :
This work studies the achievable average data rate in the downlink of a Wyner-type linear cellular network with limited cooperation and linear precoders. We derive upper and lower bounds on the achievable average data rate subject to an average power constraint. The bounds show that even a small number of cooperating base stations applying suboptimal (linear) precoding can approach optimal performance, and significantly increase the average user data rates as compared to those achievable with noncooperating cellular systems. We highlight the importance of dynamic clustering and of base station (BS) silencing. Dynamic clustering allows the system to build clusters that benefit some users at the expense of others, and then shifts the priority between the users. Such a scheme results in higher average rates for all users, while meeting some level of fairness. BS silencing is shown to be important for limited cooperation networks in the high SNR regime. Silencing is a simple and efficient way to reduce the interference (and hence increase the user rates) without increasing the number of cooperating BSs. The theoretical analysis is accompanied by several numerical examples in selected scenarios.
Keywords :
cellular radio; linear codes; numerical analysis; pattern clustering; precoding; BS silencing dynamic clustering; SNR regime; Wyner-type linear cellular network; achievable average data rate; base station silencing dynamic clustering; limited base-station cooperation network; linear precoding bounds; power constraint; suboptimal precoding; Base stations; Channel models; Downlink; Interference; Land mobile radio cellular systems; Limiting; Signal to noise ratio; Cellular networks; channel models; cooperative systems;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2012.2194287
Filename :
6180014
Link To Document :
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