Title :
Bayesian blind turbo receiver for coded OFDM systems with frequency offset and frequency-selective fading
Author :
Lu, Ben ; Wang, Xiaodong
Author_Institution :
Dept. of Electr. Eng., Texas A&M Univ., College Station, TX, USA
fDate :
12/1/2001 12:00:00 AM
Abstract :
The design of a blind receiver for coded orthogonal frequency-division multiplexing communication systems in the presence of frequency offset and frequency-selective fading is investigated. The proposed blind receiver iterates between a Bayesian demodulation stage and a maximum a posteriori channel decoding stage. The extrinsic a posteriori probabilities of data symbols are iteratively exchanged between these two stages to achieve successively improved performance. The Bayesian demodulator computes the a posteriori data symbol probabilities, based on the received signals (without knowing or explicitly estimating the frequency offset and the fading channel states), by using Markov chain Monte Carlo (MCMC) techniques. In particular, two MCMC methods-the Metropolis-Hastings algorithm and the Gibbs sampler-are studied for this purpose. Computer simulation results show that the proposed Bayesian blind turbo receiver can achieve good performance and is robust against modeling mismatch
Keywords :
Bayes methods; Markov processes; Monte Carlo methods; OFDM modulation; demodulation; fading; iterative decoding; maximum likelihood decoding; modulation coding; radio receivers; Bayesian blind turbo receiver; Bayesian demodulation stage; Bayesian demodulator; Gibbs sampler; MCMQ techniques; Markov chain Monte Carlo techniques; Metropolis-Hastings algorithm; a posteriori data symbol probabilities; coded OFDM systems; coded orthogonal frequency-division multiplexing communication systems; data symbols; extrinsic a posteriori probabilities; frequency offset; frequency- selective fading; maximum a posteriori channel decoding stage; received signals; Bayesian methods; Computer simulation; Demodulation; Fading; Frequency division multiplexing; Frequency estimation; Iterative decoding; Monte Carlo methods; OFDM; State estimation;
Journal_Title :
Selected Areas in Communications, IEEE Journal on