DocumentCode :
1138104
Title :
Uplink capacity of a variable density cellular system with multicell processing
Author :
Katranaras, Efstathios ; Imran, Muhammad A. ; Tzaras, Costas
Author_Institution :
Centre for Commun. Syst. Res., Univ. of Surrey, Guildford, UK
Volume :
57
Issue :
7
fYear :
2009
fDate :
7/1/2009 12:00:00 AM
Firstpage :
2098
Lastpage :
2108
Abstract :
In this work we investigate the information theoretic capacity of the uplink of a cellular system. Assuming centralised processing for all base stations, we consider a power-law path loss model along with variable cell size (variable density of Base Stations) and we formulate an average path-loss approximation. Considering a realistic Rician flat fading environment, the analytical result for the per-cell capacity is derived for a large number of users distributed over each cell. We extend this general approach to model the uplink of sectorized cellular system. To this end, we assume that the user terminals are served by perfectly directional receiver antennas, dividing the cell coverage area into perfectly non-interfering sectors. We show how the capacity is increased (due to degrees of freedom gain) in comparison to the single receiving antenna system and we investigate the asymptotic behaviour when the number of sectors grows large. We further extend the analysis to find the capacity when the multiple antennas used for each Base Station are omnidirectional and uncorrelated (power gain on top of degrees of freedom gain). We validate the numerical solutions with Monte Carlo simulations for random fading realizations and we interpret the results for the real-world systems.
Keywords :
Monte Carlo methods; Rician channels; antenna arrays; cellular radio; directive antennas; numerical analysis; receiving antennas; Monte Carlo simulations; Rician flat fading environment; base stations; directional receiver antennas; information theoretic capacity; multicell processing; multiple antennas; omnidirectional antennas; power-law path loss model; single receiving antenna system; uncorrelated antennas; uplink capacity; variable density cellular system; Base stations; Communication systems; Decoding; Directive antennas; Fading; Multiaccess communication; Power system modeling; Receiving antennas; Rician channels; Wireless networks; Information theory, land mobile radio cellular systems, multiaccess communication, Gaussian channels, multipath channels, propagation;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2009.07.070626
Filename :
5165405
Link To Document :
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