Title :
A novel approach for construction of rate-compatible low-density parity-check codes
Author :
Chen, Liang ; Wu, Ziyu
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Maryland, College Park, MD, USA
Abstract :
In this paper, we construct rate compatible low density parity-check (RC-LDPC) codes from a new perspective. In traditional methods, the columns of parity-check matrix, each of which corresponds to a bit of a codeword, are deleted or added to obtain codes at various rates. Different from them, only the rows of parity-check matrix are operated in our method. Since the number of columns remains unchanged, the block lengths of RC-LDPC codes across a range of rates are always invariable. In our novel construction method, new rows are appended to form the new matrices corresponding to lower-rate codes while some selected rows are eliminated to obtain higher-rate codes. We employ a modified progressive edge growth (PEG) construction with zigzag pattern to actualize linear-time encoding. Before implementing this modified PEG algorithm, a constrained density evolution algorithm is applied to optimize the degree distributions of the mother code. To those columns in the left portion of a mother parity-check matrix which correspond to information bits of a codeword, specified weights are allocated as the condition of the posterior PEG algorithm. We also demonstrate that a single decoder can be used over the entire range of rates. Moreover, the decoder always operates at a high code rate so that energy consumption and circuit size can be reduced. In addition, based on our construction of RC-LDPC codes, a novel effective scheme for hybrid ARQ protocols has been proposed as well.
Keywords :
automatic repeat request; energy consumption; linear codes; parity check codes; circuit size; codeword; energy consumption; hybrid ARQ protocols; linear-time encoding; low-density parity-check codes; lower-rate codes; parity-check matrix; progressive edge growth; rate-compatible codes; zigzag pattern; Circuits; Convolutional codes; Educational institutions; Encoding; Energy consumption; Equations; Hardware; Iterative decoding; Parity check codes; Sparse matrices;
Conference_Titel :
Military Communications Conference, 2009. MILCOM 2009. IEEE
Conference_Location :
Boston, MA
Print_ISBN :
978-1-4244-5238-5
Electronic_ISBN :
978-1-4244-5239-2
DOI :
10.1109/MILCOM.2009.5379985