10
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Strategic Codes: The Universal Spatio-Temporal Framework for Quantum Error-Correction | TQC 2025 | regular | Mile Gu, Kishor Bharti |
6 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Contextuality of Quantum Error-Correcting Codes | QIP 2026 | ▸Derek Khu, Chao Jin, Kishor Bharti |
| Qudit low-density parity-check codes | QIP 2026 | ▸Daniel J. Spencer, Tobias Haug, Derek Khu, Kishor Bharti |
| Hierarchical quantum decoders | TQC 2026 | Nirupam Basak, Ankith Mohan, Tobias Haug, Goutam Paul, Kishor Bharti |
Decoders are a critical component of fault-tolerant quantum computing. They must identify errors based on syndrome measurements to correct quantum states. While finding the optimal correction is NP-hard and thus extremely difficult, approximate decoders with faster runtime often rely on uncontrolled heuristics. In this work, we propose a family of hierarchical quantum decoders with a tunable trade-off between speed and accuracy while retaining guarantees of optimality. We use the Lasserre Sum-of-Squares (SOS) hierarchy from optimization theory to relax the decoding problem. This approach creates a sequence of Semidefinite Programs (SDPs). Lower levels of the hierarchy are faster but approximate, while higher levels are slower but more accurate. We demonstrate that even low levels of this hierarchy significantly outperform standard Linear Programming relaxations. Our results on rotated surface codes and honeycomb color codes show that the SOS decoder approaches the performance of exact decoding. We find that Levels 2 and 3 of our hierarchy perform nearly as well as the exact solver. We analyze the convergence using rank-loop criteria and compare the method against other relaxation schemes. This work bridges the gap between fast heuristics and rigorous optimal decoding. |
||
| Classically Spoofing System Linear Cross Entropy Score Benchmarking | TQC 2025 | — |
| Simple Construction of Qudit Floquet Codes on a Family of Lattices | TQC 2025 | — |
| Contextuality as a Necessary Resource for Quantum Random Access Code | TQC 2024 | Mile Gu, Farid Shahandeh |
Collaborators
| Co-author | Joint talks |
|---|---|
| Kishor Bharti | 4 |
| Derek Khu | 2 |
| Mile Gu | 2 |
| Tobias Haug | 2 |
| Ankith Mohan | 1 |
| Chao Jin | 1 |
| Daniel J. Spencer | 1 |
| Farid Shahandeh | 1 |
| Goutam Paul | 1 |
| Nirupam Basak | 1 |