DocumentCode
1145451
Title
Extrinsic information transfer functions: model and erasure channel properties
Author
Ashikhmin, Alexei ; Kramer, Gerhard ; Ten Brink, Stephan
Author_Institution
Lucent Technol. Bell Labs., Murray Hill, NJ, USA
Volume
50
Issue
11
fYear
2004
Firstpage
2657
Lastpage
2673
Abstract
Extrinsic information transfer (EXIT) charts are a tool for predicting the convergence behavior of iterative processors for a variety of communication problems. A model is introduced that applies to decoding problems, including the iterative decoding of parallel concatenated (turbo) codes, serially concatenated codes, low-density parity-check (LDPC) codes, and repeat-accumulate (RA) codes. EXIT functions are defined using the model, and several properties of such functions are proved for erasure channels. One property expresses the area under an EXIT function in terms of a conditional entropy. A useful consequence of this result is that the design of capacity-approaching codes reduces to a curve-fitting problem for all the aforementioned codes. A second property relates the EXIT function of a code to its Helleseth-Klove-Levenshtein information functions, and thereby to the support weights of its subcodes. The relation is via a refinement of information functions called split information functions, and via a refinement of support weights called split support weights. Split information functions are used to prove a third property that relates the EXIT function of a linear code to the EXIT function of its dual.
Keywords
concatenated codes; curve fitting; entropy codes; iterative decoding; parity check codes; telecommunication channels; transfer functions; turbo codes; Helleseth-Klove-Levenshtein information functions; LDPC codes; conditional entropy; curve-fitting problem; erasure channel properties; extrinsic information transfer functions; iterative decoding; iterative processors; low-density parity-check code; parallel-serial concatenated codes; repeat-accumulate codes; split information functions; split support weights; turbo codes; Concatenated codes; Convergence; Curve fitting; Entropy; Helium; Iterative decoding; Mutual information; Parity check codes; Statistics; Transfer functions; Concatenated codes; duality; error-correction coding; iterative decoding; mutual information;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.2004.836693
Filename
1347354
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