Characterization and Efficient Exhaustive Search Algorithm for Elementary Trapping Sets of Irregular LDPC Codes
Yoones Hashemi, Amir H. Banihashemi

TL;DR
This paper introduces a new hierarchical graphical characterization and an efficient exhaustive search algorithm for elementary trapping sets in irregular LDPC codes, addressing a complex problem with improved speed and accuracy.
Contribution
It generalizes previous work to irregular codes and non-leafless ETSs, providing a novel dpl characterization and a fast exhaustive search method.
Findings
The proposed algorithm finds all ETS instances within specified size and unsatisfied check node ranges.
Significant speed improvements over existing methods are demonstrated.
The characterization enables comprehensive analysis of ETS structures in irregular LDPC codes.
Abstract
In this paper, we propose a characterization of elementary trapping sets (ETSs) for irregular low-density parity-check (LDPC) codes. These sets are known to be the main culprits in the error floor region of such codes. The characterization of ETSs for irregular codes has been known to be a challenging problem due to the large variety of non-isomorphic ETS structures that can exist within the Tanner graph of these codes. This is a direct consequence of the variety of the degrees of the variable nodes that can participate in such structures. The proposed characterization is based on a hierarchical graphical representation of ETSs, starting from simple cycles of the graph, or from single variable nodes, and involves three simple expansion techniques: degree-one tree (), and , thus, the terminology {\em dpl characterization}. A similar dpl characterization was proposed…
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Taxonomy
TopicsError Correcting Code Techniques · Advanced Wireless Communication Techniques · Cooperative Communication and Network Coding
