EDBT 2026 Demo / reviewers in the wild / expert
Yoones Hashemi
dblp:158/9281
· DBLP profile ↗
8ranked-venue papers
8as first author
0since 2021 · last 2019
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Theory of computation · 4 · 4 first-authorApplied, interdisciplinary, general and emerging computing · 3 · 3 first-authorComputer networks · 1 · 1 first-author
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Theoretical computer science
3 papers |
Coding theory · 79% Algorithms and data structures · 21% |
Topics — the 8 heaviest of 8, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Algorithms and data structures › exact algorithms
exhaustive search |
1.0 | 3 | 2019 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes With Applications to Stopping Sets · IEEE Trans. Inf. Theory 2019 Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 New Characterization and Efficient Exhaustive Search Algorithm for Leafless Elementary Trapping Sets of Variable-Regular LDPC Codes · IEEE Trans. Inf. Theory 2016 |
Coding theory › error-correcting codes
LDPC codes |
1.0 | 3 | 2019 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes With Applications to Stopping Sets · IEEE Trans. Inf. Theory 2019 Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 New Characterization and Efficient Exhaustive Search Algorithm for Leafless Elementary Trapping Sets of Variable-Regular LDPC Codes · IEEE Trans. Inf. Theory 2016 |
Coding theory › error-correcting codes › LDPC codes
trapping sets |
1.0 | 3 | 2019 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes With Applications to Stopping Sets · IEEE Trans. Inf. Theory 2019 Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 New Characterization and Efficient Exhaustive Search Algorithm for Leafless Elementary Trapping Sets of Variable-Regular LDPC Codes · IEEE Trans. Inf. Theory 2016 |
Coding theory › error-correcting codes › decoding › iterative decoding
stopping sets |
0.4 | 1 | 2019 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes With Applications to Stopping Sets · IEEE Trans. Inf. Theory 2019 |
Coding theory › error-correcting codes › LDPC codes › trapping sets
elementary trapping sets |
0.3 | 1 | 2018 | Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 |
Coding theory › error-correcting codes › error probability analysis
error floor |
0.3 | 1 | 2018 | Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 |
Coding theory › error-correcting codes › LDPC codes
irregular LDPC codes |
0.3 | 1 | 2018 | Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search Algorithms · IEEE Trans. Inf. Theory 2018 |
Coding theory › error-correcting codes › LDPC codes
tanner graph |
0.2 | 1 | 2016 | New Characterization and Efficient Exhaustive Search Algorithm for Leafless Elementary Trapping Sets of Variable-Regular LDPC Codes · IEEE Trans. Inf. Theory 2016 |
Methods — techniques the papers use, named apart from their topics
dpl characterization · 0.3cycle expansion · 0.3branch-and-bound · 0.3layered superset characterization · 0.2expansion technique · 0.2cycle enumeration · 0.2
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2019 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes With Applications to Stopping Sets
Yoones Hashemi, Amir H. Banihashemi |
IEEE Trans. Inf. Theory | 1 |
| 2018 | Characterization and Efficient Search of Non-Elementary Trapping Sets of LDPC Codes with Applications to Stopping SetsabstractIn this paper, we propose a characterization for nonelementary trapping sets (NETSs) of low-density parity-check (LDPC) codes. The characterization is based on viewing a NETS as a hierarchy of embedded graphs starting from an ETS. The characterization corresponds to an efficient search algorithm that under certain conditions is exhaustive. As an application of the proposed characterization/search, we obtain lower and upper bounds on the stopping distance smin of LDPC codes. We examine a large number of regular and irregular LDPC codes, and demonstrate the efficiency and versatility of our technique in finding lower and upper bounds on, and in many cases the exact value of, smin. Finding smin, or establishing search-based lower or upper bounds, for many of the examined codes are out of the reach of any existing algorithm. Yoones Hashemi, Amir H. Banihashemi |
ISIT | 1 |
| 2018 | Characterization of Elementary Trapping Sets in Irregular LDPC Codes and the Corresponding Efficient Exhaustive Search AlgorithmsabstractIn this paper, we propose a characterization of elementary trapping sets (ETSs) for irregular low-density paritycheck (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 nonisomorphic 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 (dot), path, and lollipop, thus, the terminology dpl characterization. A similar dpl characterization was proposed in an earlier work by the authors for the leafless ETSs of variable-regular LDPC codes. The present paper generalizes the prior work to codes with a variety of variable node degrees and to ETSs that are not leafless. The proposed dpl characterization corresponds to an efficient search algorithm that, for a given irregular LDPC code, can find all the instances of (a, b) ETSs with size a and with the number of unsatisfied check nodes b within any range of interest a amax and b bmax, exhaustively. Although branch-&-bound exhaustive search algorithms for finding ETSs of irregular LDPC codes exist, to the best of our knowledge, the proposed search algorithm is the first of its kind, in that, it is devised based on a characterization of ETSs that makes the search process efficient. For a constant degree distribution and range of search, the worst-case complexity of the proposed dpl algorithm increases linearly with the block length n. The average complexity, excluding the search for the input simple cycles, is constant in n. Extensive simulation results are presented to show the versatility of the search algorithm, and to demonstrate that, compared to the literature, significant improvement in search speed can be obtained. Yoones Hashemi, Amir H. Banihashemi |
IEEE Trans. Inf. Theory | 1 |
| 2017 | Characterization and efficient exhaustive search algorithm for elementary trapping sets of irregular LDPC codesabstractIn 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 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: depth-one tree (dot), path and lollipop, thus, the terminology dpl characterization. The proposed dpl characterization corresponds to an efficient search algorithm, that, for a given irregular LDPC code, can find all the instances of (a, b) ETSs with size a and with the number of unsatisfied check nodes b, within any range of interest a ≤ amaxand b ≤ bmax, exhaustively. Simulation results are presented to show the versatility of the search algorithm, and to demonstrate that, compared to the literature, significant improvement in search speed can be obtained. Yoones Hashemi, Amir H. Banihashemi |
ISIT | 1 |
| 2016 | An efficient exhaustive search algorithm for elementary trapping sets of variable-regular LDPC codesabstractIn this paper, we propose an efficient exhaustive search algorithm for elementary trapping sets (ETS) of variable-regular low-density parity-check (LDPC) codes. Recently, Karimi and Banihashemi proposed a characterization of ETSs, which was based on viewing an ETS as a layered superset (LSS) of a short cycle in the code's Tanner graph. A notable advantage of LSS characterization is that it corresponds to a simple LSS-based search algorithm (expansion technique) that starts from short cycles of the graph and finds the ETSs with LSS structure efficiently. Compared to the LSS-based search, which is based on a single LSS expansion technique, the new search algorithm involves two additional expansion techniques. The introduction of the new techniques results in significant improvements in search efficiency compared to the LSS-based search. We prove that using the three expansion techniques, each and every ETS structure can be obtained starting from a simple cycle. We also provide extensive simulation results that show, compared to the LSS-based search, up to three orders of magnitude improvement in search speed and memory requirements can be achieved. Yoones Hashemi, Amir H. Banihashemi |
ICC | 1 |
| 2016 | Minimal characterization and provably efficient exhaustive search algorithm for elementary trapping sets of variable-regular LDPC codesabstractIn this paper, we propose a new characterization and an efficient exhaustive search algorithm for elementary trapping sets (ETS) of variable-regular low-density parity-check (LDPC) codes. Recently, Karimi and Banihashemi proposed a characterization of ETSs, which was based on viewing an ETS as a layered superset (LSS) of a short cycle in the code's Tanner graph. Compared to the LSS-based characterization, which is based on a single LSS expansion technique, the new characterization involves two additional expansion techniques. The introduction of the new techniques mitigates two problems that LSS-based characterization/search suffers from: (1) exhaustiveness: not every ETS structure is an LSS of a cycle, (2) search efficiency: LSS-based search algorithm often requires the enumeration of cycles with length much larger than the girth of the graph, where the multiplicity of such cycles increases rapidly with their length. We prove that using the three expansion techniques, any ETS structure can be obtained starting from a simple cycle, no matter how large the size of the structure a or the number of its unsatisfied check nodes b are, i.e., the characterization is exhaustive. We also demonstrate that for the proposed characterization to exhaustively cover all the ETS structures within the (a, b) classes with a ≤ amax, b ≤ bmax, for any value of amaxand bmax, the maximum length of the required cycles is minimal. The proposed characterization corresponds to a provably efficient search algorithm, significantly more efficient than the LSS-based search. Yoones Hashemi, Amir H. Banihashemi |
ISIT | 1 |
| 2016 | New Characterization and Efficient Exhaustive Search Algorithm for Leafless Elementary Trapping Sets of Variable-Regular LDPC CodesabstractIn this paper, we propose a new characterization for leafless elementary trapping sets (LETSs) of variable-regular lowdensity parity-check codes. Recently, Karimi and Banihashemi proposed a characterization of LETSs, which was based on viewing an LETS as a layered superset (LSS) of a short cycle in the code's Tanner graph. A notable advantage of LSS characterization is that it corresponds to a simple LSS-based search algorithm (expansion technique) that starts from short cycles of the graph and finds the LETSs with LSS structure efficiently. Compared with the LSS-based characterization of Karimi and Banihashemi, which is based on a single LSS expansion technique, the new characterization involves two additional expansion techniques. The introduction of the new techniques mitigates two problems that LSS-based characterization/search suffers from: 1) exhaustiveness: not every LETS structure is an LSS of a cycle and 2) search efficiency: LSS-based search algorithm often requires the enumeration of cycles with length much larger than the girth of the graph, where the multiplicity of such cycles increases rapidly with their length. We prove that using the three expansion techniques, any LETS structure can be obtained starting from a simple cycle, no matter how large the size of the structure a or the number of its unsatisfied check nodes b are, i.e., the characterization is exhaustive. We also demonstrate that for the proposed characterization/search to exhaustively cover all the LETS structures within the (a, b) classes with a amax and b bmax, for any value of amax and bmax, the length of the short cycles required to be enumerated is less than that of the LSS-based characterization/search. We, in fact, show that such a length for the proposed search algorithm is minimal. We also prove that the three expansion techniques, proposed here, are the only expansions needed for characterization of LETS structures starting from simple cycles in the graph, if one requires each and every intermediate sub-structure to be a LETS as well. Extensive simulation results are provided to show that, compared with LSS-based search, significant improvement in search speed and memory requirements can be achieved. Yoones Hashemi, Amir H. Banihashemi |
IEEE Trans. Inf. Theory | 1 |
| 2015 | Corrections to "On Characterization of Elementary Trapping Sets of Variable-Regular LDPC Codes"abstractIn the above paper, there are some erroneous entries in Tables I, III, IV, VII, and X, which are corrected here. Moreover, for the proper application of the definition of layered superset (LSS) property to all the results of Tables I –VII in the above-mentioned paper, the LSS definition needs to be extended as described here. Yoones Hashemi, Amir H. Banihashemi |
IEEE Trans. Inf. Theory | 1 |