Title :
Iterative receiver for Qc-LDPC coded underwater acoustic communication systems
Author_Institution :
Xi´an Res. Inst. of Navig. Technol., Xi´an, China
Abstract :
Quasi Cyclic-Low Density Parity Check (QC-LDPC) codes are easy to construct and provide the considerable coding gain, which is suitable for underwater acoustic communication (UWAC). Single-carrier (SC) transmission with frequency-domain equalization (FDE) is today recognized as an attractive alternative to orthogonal frequency-division multiplexing (OFDM) for communication application with the inter-symbol interference (ISI) caused by multi-path propagation, especially in shallow water channel. In this paper, the turbo theory is applied on the QC-LDPC codes and minimum mean square error (MMSE) decision feedback equalizer (DFE) to design iterative data processing for underwater acoustic communication system. In the proposed iterative structure, the MMSE based FD-DFE and QC-LDPC decoder exchange soft information through an iterative manner so that the performance of underwater acoustic communication system can be improved greatly. Based on sound speed profiles (SSP) measured in the lake and finite-element ray tracking method, the shallow water channel is constructed to verify the validity of the proposed system structure.
Keywords :
OFDM modulation; cyclic codes; decoding; finite element analysis; frequency-domain analysis; intersymbol interference; iterative methods; least mean squares methods; multipath channels; parity check codes; ray tracing; turbo codes; underwater acoustic communication; FDE; ISI; MMSE; OFDM; QC-LDPC coded underwater acoustic communication systems; SC transmission; SSP; UWAC; decoder exchange soft information; finite-element ray tracking method; frequency-domain equalization; intersymbol interference; iterative receiver; lake method; minimum mean square error; multipath propagation; orthogonal frequency-division multiplexing; quasi cyclic-low density parity check codes; shallow water channel; single-carrier transmission; sound speed profiles; turbo theory; Decision feedback equalizers; Decoding; Frequency-domain analysis; Iterative decoding; Receivers; Underwater acoustics;
Conference_Titel :
Information and Communication Technology, Electronics and Microelectronics (MIPRO), 2014 37th International Convention on
Conference_Location :
Opatija
Print_ISBN :
978-953-233-081-6
DOI :
10.1109/MIPRO.2014.6859617