Title :
High-Rate Nonbinary Regular Quasi-Cyclic LDPC Codes for Optical Communications
Author :
Arabaci, Murat ; Djordjevic, Ivan B. ; Saunders, Ross ; Marcoccia, Roberto M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Arizona, Tucson, AZ, USA
Abstract :
The parity-check matrix of a nonbinary (NB) low-density parity-check (LDPC) code over Galois field GF(q) is constructed by assigning nonzero elements from GF(q) to the 1s in corresponding binary LDPC code. In this paper, we state and prove a theorem that establishes a necessary and sufficient condition that an NB matrix over GF(q), constructed by assigning nonzero elements from GF(q) to the 1s in the parity-check matrix of a binary quasi-cyclic (QC) LDPC code, must satisfy in order for its null-space to define a nonbinary QC-LDPC (NB-QC-LDPC) code. We also provide a general scheme for constructing NB-QC-LDPC codes along with some other code construction schemes targeting different goals, e.g., a scheme that can be used to construct codes for which the fast-Fourier-transform-based decoding algorithm does not contain any intermediary permutation blocks between bit node processing and check node processing steps. Via Monte Carlo simulations, we demonstrate that NB-QC-LDPC codes can achieve a net effective coding gain of 10.8 dB at an output bit error rate of 10-12. Due to their structural properties that can be exploited during encoding/decoding and impressive error rate performance, NB-QC-LDPC codes are strong candidates for application in optical communications.
Keywords :
Galois fields; Monte Carlo methods; fast Fourier transforms; optical communication; parity check codes; Galois field; LDPC codes; Monte Carlo simulations; bit node processing; check node processing; code construction; fast Fourier transform; intermediary permutation blocks; low density parity check code; nonbinary codes; optical communications; parity check matrix; quasicyclic codes; Low-density parity-check (LDPC) codes; optical communications; quasi-cyclic (QC) codes;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2009.2029062