scholarly journals Statistical Physics of Low Density Parity Check Error Correcting Codes

Author(s):  
David Saad ◽  
Yoshiyuki Kabashima ◽  
Tatsuto Murayama ◽  
Renato Vicente
2000 ◽  
Vol 62 (2) ◽  
pp. 1577-1591 ◽  
Author(s):  
Tatsuto Murayama ◽  
Yoshiyuki Kabashima ◽  
David Saad ◽  
Renato Vicente

2009 ◽  
Vol 18 (10) ◽  
pp. 4154-4160 ◽  
Author(s):  
Li Yuan ◽  
Zeng Gui-Hua ◽  
Moon Ho Lee

2000 ◽  
Vol 33 (37) ◽  
pp. 6527-6542 ◽  
Author(s):  
Renato Vicente ◽  
David Saad ◽  
Yoshyiuki Kabashima

F1000Research ◽  
2022 ◽  
Vol 11 ◽  
pp. 7
Author(s):  
Chinnaiyan Senthilpari ◽  
Rosalind Deena ◽  
Lee Lini

Background: Low-density parity-check (LDPC) codes are more error-resistant than other forward error-correcting codes. Existing circuits give high power dissipation, less speed, and more occupying area. This work aimed to propose a better design and performance circuit, even in the presence of noise in the channel. Methods: In this research, the design of the multiplexer and demultiplexer were achieved using pass transistor logic. The target parameters were low power dissipation, improved throughput, and more negligible delay with a minimum area. One of the essential connecting circuits in a decoShder architecture is a multiplexer (MUX) and a demultiplexer (DEMUX) circuit. The design of the MUX and DEMUX contributes significantly to the performance of the decoder. The aim of this paper was the design of a 4 × 1 MUX to route the data bits received from the bit update blocks to the parallel adder circuits and a 1 × 4 DEMUX to receive the input bits from the parallel adder and distribute the output to the bit update blocks in a layered architecture LDPC decoder. The design uses pass transistor logic and achieves the reduction of the number of transistors used. The proposed circuit was designed using the Mentor Graphics CAD tool for 180 nm technology. Results: The parameters of power dissipation, area, and delay were considered crucial parameters for a low power decoder. The circuits were simulated using computer-aided design (CAD) tools, and the results depicted a significantly low power dissipation of 7.06 nW and 5.16 nW for the multiplexer and demultiplexer, respectively. The delay was found to be 100.5 ns (MUX) and 80 ns (DEMUX). Conclusion: This decoder’s potential use may be in low-power communication circuits such as handheld devices and Internet of Things (IoT) circuits.


2017 ◽  
Vol 56 (9S) ◽  
pp. 09NA03
Author(s):  
Norihiko Ishii ◽  
Yutaro Katano ◽  
Tetsuhiko Muroi ◽  
Nobuhiro Kinoshita

2020 ◽  
Vol 2020 ◽  
pp. 1-15
Author(s):  
Ibrahima Gueye ◽  
Ibra Dioum ◽  
Idy Diop ◽  
K. Wane Keita ◽  
Papis Ndiaye ◽  
...  

Free space optical (FSO) communication systems provide wireless line of sight connectivity in the unlicensed spectrum, and wireless optical communication achieves higher data rates compared to their radio frequency (RF) counterparts. FSO systems are particularly attractive for last mile access problem by bridging fiber optic backbone connectivity to RF access networks. To cope with this practical deployment scenario, there has been increasing attention to the so-called dual-hop (RF/FSO) systems where RF transmission is used at a hop followed by FSO transmission to another. In this article, we study the performance of cooperative transmission systems using a mixed RF-FSO DF (decode and forward) relay using error-correcting codes including QC-LDPC codes at the relay level. The FSO link is modeled by the gamma-gamma distribution, and the RF link is modeled by the Additive White Gaussian Noise (AWGN) model. Another innovation in this article is the use of cooperative systems using a mixed FSO/RF DF relay using quasicyclic low-density parity check (QC-LDPC) codes at the relay level. We also use the space-coupled low-density parity check (SC-LDPC) codes on the same scheme to show its importance in cooperative optical transmission but also in hybrid RF/FSO transmission. The latter will be compared with QC-LDPC codes. The use of mixed RF/FSO cooperative transmission systems can improve the reliability and transmission of information in networks. The results demonstrate an improvement in the performance of the cooperative RF/FSO DF system based on QC-LDPC and SC-LDPC codes compared to RF/FSO systems without the use of codes, but also to the DF systems proposed in the existing literature.


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