Title :
Bounds and approximations for optimum combining of signals in the presence of multiple cochannel interferers and thermal noise
Author :
Chiani, Marco ; Win, Moe Z. ; Zanella, Alberto ; Mallik, Ranjan K. ; Winters, Jack H.
Author_Institution :
Dipt. Elettronica Informatica e Sistemistica, Univ. of Bologna, Italy
fDate :
2/1/2003 12:00:00 AM
Abstract :
We derive an upper bound and investigate some approximations on the symbol error probability (SEP) for coherent detection of M-ary phase-shift keying, using an array of antennas with optimum combining in wireless systems in the presence of multiple uncorrelated equal-power cochannel interferers and thermal noise in a Rayleigh fading environment. Our results are general and valid for an arbitrary number of antenna elements as well as an arbitrary number of interferers. In particular, the exact SEP is derived for an arbitrary number of antennas and interferers; the computational complexity of the exact solution depends on the minimum number of antennas and interferers. Moreover, closed-form approximations are provided for the cases of dual optimum combining with an arbitrary number of interferers, and of two interferers with an arbitrary number of antenna elements. We show that our bounds and approximations are close to Monte Carlo simulation results for all cases considered in this paper.
Keywords :
Monte Carlo methods; Rayleigh channels; adaptive antenna arrays; approximation theory; cochannel interference; computational complexity; diversity reception; error statistics; interference suppression; optimisation; phase shift keying; radiofrequency interference; signal detection; thermal noise; M-ary PSK; M-ary phase-shift keying; Monte Carlo simulation results; Rayleigh fading; adaptive arrays; antenna arrays; antenna elements; closed-form approximations; coherent detection; computational complexity; dual optimum combining; exact solution; multiple cochannel interferers; optimum combining; optimum signal combining; symbol error probability; thermal noise; uncorrelated equal-power cochannel interferers; upper bound; wireless systems; Antenna arrays; Computational complexity; Error probability; Phase detection; Phase noise; Phase shift keying; Phased arrays; Rayleigh channels; Upper bound; Working environment noise;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2003.809265