Title :
Prefiltered space-time M-BCJR equalizer for frequency-selective channels
Author :
Fragouli, Christina ; Al-Dhahir, Naofal ; Diggavi, Suhas N. ; Turin, William
Author_Institution :
Nat. Capodistrian Univ. of Athens, Greece
fDate :
5/1/2002 12:00:00 AM
Abstract :
This paper addresses the problem of soft equalization for space-time-coded transmissions over frequency-selective fading channels. The structure of the space-time code is embedded in the channel impulse response for efficient joint equalization and decoding. The proposed equalization/decoding approach uses a prefilter to concentrate the effective channel power in a small number of taps followed by a reduced-complexity maximum a posteriori probability (MAP) equalizer/decoder to produce soft decisions. The prefilter introduces residual intersymbol interference which degrades the performance of MAP when applied to the trellis of the shortened channel. However, the shape of the overall shortened channel impulse response allows the M-algorithm to approximate the prefiltered MAP performance with a small number of states. Based on this general framework, we investigate several enhancements such as using different prefilters for the forward and backward recursions, concatenating two trellis steps during decoding, and temporal oversampling. The performance is evaluated through simulations over the EDGE typical urban channel
Keywords :
computational complexity; decoding; equalisers; fading channels; filtering theory; intersymbol interference; probability; signal sampling; transient response; EDGE typical urban channel; M-algorithm; backward recursion; channel impulse response; channel power; decoding; forward recursion; frequency-selective fading channels; intersymbol interference; joint equalization; maximum a posteriori probability performance; prefilter; prefiltered space-time M-BCJR equalizer; reduced-complexity MAP equalizer/decoder; shortened channel trellis; simulations; soft equalization; space-time-coded transmissions; temporal oversampling; Decision feedback equalizers; Decoding; Degradation; Delay estimation; Finite impulse response filter; Frequency; Frequency-selective fading channels; Intersymbol interference; Maximum likelihood estimation; Shape;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2002.1006556