Title :
Reducing the complexity of the space-time channel estimate at minimum risk
Author :
Nicoli, M. ; Spagnolini, U.
Author_Institution :
Dipt. di Elettronica e Inf., Politecnico di Milano, Italy
fDate :
6/23/1905 12:00:00 AM
Abstract :
In a mobile communication system there is the need to define a channel length that could be useful to describe many different and varying propagation environments, over-parameterization is a simple solution. The channel matrix estimated when using an array of antennas may contain more parameters than those really needed to parsimoniously describe the space-time channel. The problem is even worse when a long channel has to be estimated from short training sequences. Classically the reduction of complexity is carried out by masking some samples of the channel estimate according to a threshold heuristically defined. We propose to adaptively classify (and mask) the estimated channel samples by minimizing the Bayes risk for space-time systems. The parameters of the probability densities are iteratively estimated from the estimated channel samples and contribute to define the optimum threshold. Simulation shows that in Rayleigh fading channels the adaptive threshold is close to the one that minimize the mean square error. The performance can improve by approx. 3-5 dB in signal to noise ratio when the method is applied to reduce the complexity of space-time channels in a CDMA system with realistic propagation environments.
Keywords :
Bayes methods; Rayleigh channels; adaptive antenna arrays; cellular radio; code division multiple access; iterative methods; linear antenna arrays; mean square error methods; minimisation; multiuser channels; parameter estimation; probability; radiowave propagation; space-time adaptive processing; spread spectrum communication; Bayes risk minimization; DS/CDMA system; Rayleigh fading channels; adaptive threshold; antenna arrays; channel length; channel matrix estimation; complexity reduction; estimated channel samples; iterative estimation; linear antenna array; mean square error; minimum risk; mobile communication system; optimum threshold; over-parameterization; probability densities; propagation environments; signal to noise ratio; simulation; space-time channel; space-time channel estimate; space-time systems; third generation cellular systems; Antenna arrays; Antennas and propagation; Channel estimation; Interference; Light rail systems; Linear antenna arrays; Mean square error methods; Mobile communication; Multiaccess communication; Multiuser detection;
Conference_Titel :
Vehicular Technology Conference, 2001. VTC 2001 Fall. IEEE VTS 54th
Print_ISBN :
0-7803-7005-8
DOI :
10.1109/VTC.2001.956545