Short Non-Binary Low-Density Parity-Check Codes for Phase Noise Channels

08/07/2019
by   Tudor Ninacs, et al.
0

This work considers the design of short non-binary low-density parity-check (LDPC) codes over finite fields of order m, for channels with phase noise. In particular, m-ary differential phase-shift keying (DPSK) modulated code symbols are transmitted over an additive white Gaussian noise (AWGN) channel with Wiener phase noise. At the receiver side, non-coherent detection takes place, with the help of a multi-symbol detection algorithm, followed by a non-binary decoding step. Both the detector and decoder operate on a joint factor graph. As a benchmark, finite length bounds and information rate expressions are computed and compared with the codeword error rate (CER) performance, as well as the iterative threshold of the obtained codes. As a result, performance within 1:2 dB from finite-length bounds is obtained, down to a CER of 1e-3.

READ FULL TEXT

page 1

page 2

page 3

page 4

research
05/22/2023

Probabilistic Shaping for Asymmetric Channels and Low-Density Parity-Check Codes

An algorithm is proposed to encode low-density parity-check (LDPC) codes...
research
12/20/2022

Concatenated Forward Error Correction with KP4 and Single Parity Check Codes

Concatenated forward error correction is studied based on an outer KP4 R...
research
03/17/2023

Rate-Adaptive Protograph MacKay-Neal Codes

A class of rate-adaptive protograph MacKay-Neal (MN) codes is introduced...
research
03/07/2019

Decoder-in-the-Loop: Genetic Optimization-based LDPC Code Design

Low-Density Parity-Check (LDPC) code design tools typically rely on the ...
research
12/20/2018

Efficient Error-Correcting Codes in the Short Blocklength Regime

The design of block codes for short information blocks (e.g., a thousand...
research
01/05/2020

Design of Capacity-Approaching Low-Density Parity-Check Codes using Recurrent Neural Networks

In this paper, we model Density Evolution (DE) using Recurrent Neural Ne...
research
10/12/2019

McLeish Distribution: Performance of Digital Communications over Additive White McLeish Noise (AWMN) Channels

The objective of this article is to statistically characterize and descr...

Please sign up or login with your details

Forgot password? Click here to reset