Title :
Optimal 3D cell planning: A random matrix approach
Author :
Muller, A. ; Hoydis, Jakob ; Couillet, Romain ; cDebbah, M.
Author_Institution :
Intel Mobile Commun., Sophia Antipolis, France
Abstract :
This article proposes a large system approximation of the ergodic sum-rate (SR) for cellular multi-user multiple-input multiple-output uplink systems. The considered system has various degrees of freedom, such as clusters of base stations (BSs) performing cooperative multi-point processing, randomly distributed user terminals (UTs), and supports arbitrarily configurable antenna gain patterns at the BSs. The approximation is provably tight in the limiting case of a large number of single antenna UTs and antennas at the BSs. Simulation results suggest that the asymptotic analysis is accurate for small system dimensions. Our deterministic SR approximation result is applied to numerically study and optimize the effects of antenna tilting in an exemplary sectorized 3D small cell network topology. Significant SR gains are observed with optimal tilt angles and we provide new insights on the optimal parameterization of cellular networks, along with a discussion of several non-trivial effects.
Keywords :
MIMO communication; antenna arrays; approximation theory; cellular radio; matrix algebra; optimisation; telecommunication network planning; telecommunication network topology; SR gains; antenna tilting effects; cellular multiuser multiple-input multiple-output uplink systems; cellular network optimal parameterization; cooperative multipoint processing; ergodic sum-rate; large system approximation; nontrivial effects; optimal 3D cell planning; optimal tilt angles; random matrix approach; randomly distributed user terminals; sectorized 3D small cell network topology; single antenna UT;
Conference_Titel :
Global Communications Conference (GLOBECOM), 2012 IEEE
Conference_Location :
Anaheim, CA
Print_ISBN :
978-1-4673-0920-2
Electronic_ISBN :
1930-529X
DOI :
10.1109/GLOCOM.2012.6503829