Title :
Reduced-complexity SISO equalization for Rayleigh fading channels with known statistics
Author :
Chen, Xiao-Ming ; Hoeher, Peter A.
Author_Institution :
Inf. & Coding Theor. Lab., Kiel Univ., Germany
Abstract :
For Rayleigh fading channels with known covariance matrix, reduced-complexity receivers can be derived which approximate the maximum likelihood (ML) receiver by defining additional constraints. The reduced-complexity receiver, which assumes that the current channel output depends on finite previous channel outputs, is termed forced-folding sequence estimator (FSE). We propose another approach, where a long burst is divided into overlapped subbursts and the computations are performed over these short subbursts. This receiver is referred to as overlapped subburst sequence estimator (OSE). We compare the FSE and the OSE and derive their soft-input soft-output counterparts, which are termed as SISO-FSE and SISO-OSE. From the viewpoint of linear estimation, the minimum mean-square error (MMSE) filtering/smoothing approaches are verified to be unsuitable for slowly fading channels in the context of trellis-based equalization. For symmetrical signal constellations, differential encoding is necessary to resolve the phase ambiguity. We show how to exploit the symmetry during the evaluation of branch/path metrics to obtain a reduced-complexity structure without loss of performance.
Keywords :
Rayleigh channels; channel estimation; covariance matrices; encoding; equalisers; least mean squares methods; maximum likelihood detection; radio receivers; smoothing methods; ML receiver; MMSE smoothing; Rayleigh fading channels; channel statistics; covariance matrix; differential encoding; forced-folding sequence estimator; linear estimation; maximum likelihood receiver; minimum mean-square error filtering; overlapped subburst sequence estimator; reduced-complexity SISO equalization; reduced-complexity receivers; soft-input soft-output equalization; trellis-based equalization; Constellation diagram; Covariance matrix; Fading; Filtering; Maximum likelihood estimation; Nonlinear filters; Performance loss; Signal resolution; Smoothing methods; Statistics;
Conference_Titel :
Vehicular Technology Conference, 2004. VTC 2004-Spring. 2004 IEEE 59th
Print_ISBN :
0-7803-8255-2
DOI :
10.1109/VETECS.2004.1388010