Title :
Deterministically Weighted Square-Law Combining in Correlated Fading
Author :
Mallik, Ranjan K. ; Winters, J.H.
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Technol. - Delhi, New Delhi, India
Abstract :
We consider a wireless system with a multi-branch diversity receiver employing noncoherent reception. The receiver has information on the channel statistics instead of the instantaneous channel state information, and the average branch signal-to-noise ratios (SNRs) are all distinct. In such a scenario, a deterministically weighted square-law combining scheme can be used to improve the error performance over conventional square-law combining. We focus on such a scheme for a system with orthogonal signaling in uniformly correlated Rayleigh fading. We obtain suboptimal weights, by least squares fit of the matrix elements of the characteristic functions of the decision variables of the weighted square-law combining and the optimum quadratic combining receivers, in closed form that are computed easily using an iterative algorithm. For the case of a dual-diversity system, an implicit expression for the optimal weights, chosen to minimize the symbol error probability, is obtained; for binary signaling, we derive closed form expressions for the weights. It is found that weighted square-law combining offers significant performance improvement over conventional square-law combining at a cost of increased complexity, and the performance gap increases with increasing branch SNR imbalance and number of branches.
Keywords :
Rayleigh channels; correlation methods; diversity reception; error statistics; iterative methods; least squares approximations; radio receivers; telecommunication signalling; binary signaling; branch SNR imbalance; branch signal-to-noise ratio; channel statistics; correlated fading; decision variable; deterministically weighted square-law combining; dual-diversity system; error performance; instantaneous channel state information; iterative algorithm; least squares; matrix element; multibranch diversity receiver; noncoherent reception; optimal weights; optimum quadratic combining receiver; orthogonal signaling; suboptimal weight; symbol error probability; uniformly correlated Rayleigh fading; wireless system; Closed-form solutions; Correlation; Diversity reception; Rayleigh channels; Receivers; Vectors; Correlated Rayleigh fading; deterministic weights; receive diversity; square-law combining; symbol error probability;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2012.092612.110763