DocumentCode
71127
Title
Non-Binary Protograph-Based LDPC Codes: Enumerators, Analysis, and Designs
Author
Dolecek, Lara ; Divsalar, Dariush ; Yizeng Sun ; Amiri, Behzad
Author_Institution
Dept. of Electr. Eng., Univ. of California at Los Angeles, Los Angeles, CA, USA
Volume
60
Issue
7
fYear
2014
fDate
Jul-14
Firstpage
3913
Lastpage
3941
Abstract
This paper provides a comprehensive analysis of nonbinary low-density parity check (LDPC) codes built out of protographs. We consider both random and constrained edge-weight labeling, and refer to the former as the unconstrained nonbinary protograph-based LDPC codes (U-NBPB codes) and to the latter as the constrained nonbinary protograph-based LDPC codes (C-NBPB codes). Equipped with combinatorial definitions extended to the nonbinary domain, ensemble enumerators of codewords, trapping sets, stopping sets, and pseudocodewords are calculated. The exact enumerators are presented in the finite-length regime, and the corresponding growth rates are calculated in the asymptotic regime. An EXIT chart tool for computing the iterative decoding thresholds of protograph-based LDPC codes is presented, followed by several examples of finite-length U-NBPB and C-NBPB codes with high performance. Throughout this paper, we provide accompanying examples, which demonstrate the advantage of nonbinary protograph-based LDPC codes over their binary counterparts and over random constructions. The results presented in this paper advance the analytical toolbox of nonbinary graph-based codes.
Keywords
parity check codes; C-NBPB codes; EXIT chart tool; U-NBPB codes; analytical toolbox; asymptotic regime; codewords; constrained edge-weight labeling; enumerators; finite-length U-NBPB; finite-length regime; iterative decoding thresholds; nonbinary domain; nonbinary graph-based codes; nonbinary low-density parity check codes; nonbinary protograph-based LDPC codes; protograph-based LDPC codes; pseudocodewords; random constructions; random labeling; stopping sets; trapping sets; unconstrained nonbinary protograph-based LDPC codes; Iterative decoding; Joining processes; Maximum likelihood decoding; Tin; Vectors; EXIT chart analysis; LDPC codes; asymptotic analysis; finite-length code design; iterative decoding thresholds; nonbinary codes; protographs; pseudo-codewords; stopping sets; trapping sets; weight enumerators;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.2014.2316215
Filename
6785991
Link To Document