DocumentCode :
1235921
Title :
Computation of posterior marginals on aggregated state models for soft source decoding
Author :
Malinowski, Simon ; Jégou, Hervé ; Guillemot, Christine
Author_Institution :
IRISA, Univ. of Rennes, Rennes
Volume :
57
Issue :
4
fYear :
2009
fDate :
4/1/2009 12:00:00 AM
Firstpage :
888
Lastpage :
892
Abstract :
Optimum soft decoding of sources compressed with variable length codes and quasi-arithmetic codes, transmitted over noisy channels, can be performed on a bit/symbol trellis. However, the number of states of the trellis is a quadratic function of the sequence length leading to a decoding complexity which is not tractable for practical applications. The decoding complexity can be significantly reduced by using an aggregated state model, while still achieving close to optimum performance in terms of bit error rate and frame error rate. However, symbol a posteriori probabilities can not be directly derived on these models and the symbol error rate (SER) may not be minimized. This paper describes a two-step decoding algorithm that achieves close to optimal decoding performance in terms of SER on aggregated state models. A performance and complexity analysis of the proposed algorithm is given.
Keywords :
arithmetic codes; decoding; error statistics; source coding; aggregated state models; bit error rate; frame error rate; posterior marginals; quasi-arithmetic codes; soft source decoding; symbol error rate; variable length codes; Algorithm design and analysis; Automata; Bayesian methods; Bit error rate; Clocks; Error analysis; Iterative decoding; Performance analysis; Source coding; Viterbi algorithm; Data compression, source coding, soft decoding, variable length codes, quasi-arithmetic coding;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2009.04.070061
Filename :
4814350
Link To Document :
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