9
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Locality vs Quantum Codes | QIP 2025 | regular ▸ presenter | Samuel Dai |
| Optimal Locality and Parameter Tradeoffs for Subsystem Codes | TQC 2025 | regular | Samuel Dai, Eugene Tang |
| Locality and Parameter Tradeoffs for Subsystem Codes | TQC 2025 | regular | Samuel Dai, Eugene Tang |
| Improved rate-distance trade-offs for quantum codes with restricted connectivity | QIP 2024 | regular | ▸Nouédyn Baspin, Venkatesan Guruswami, Anirudh Krishna |
1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| Check-weight-constrained quantum codes: Bounds and examples | TQC 2026 | Lily Wang, Andy Zeyi Liu, Aleksander Kubica, Shouzhen Gu |
Quantum low-density parity-check (qLDPC) codes can be implemented by measuring only low-weight checks, making them compatible with noisy quantum hardware and central to the quest to build noise-resilient quantum computers. A fundamental open question is how constraints on check weight limit the achievable parameters of qLDPC codes. Here, we study stabilizer and subsystem codes with constrained check weight, combining analytical arguments with numerical optimization to establish strong upper bounds on their parameters. We show that stabilizer codes with checks of weight at most three cannot have nontrivial distance. We also prove tight tradeoffs between rate and distance for broad families of CSS stabilizer and subsystem codes with checks of weight at most four and two, respectively. Notably, our bounds are applicable to general qLDPC codes, as they rely only on check-weight constraints without assuming geometric locality or special graph connectivity. In the finite-size regime, we derive numerical upper bounds using linear programming techniques and identify explicit code constructions that approach these limits, delineating the landscape of practically relevant qLDPC codes with tens or hundreds of physical qubits. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Samuel Dai | 3 |
| Eugene Tang | 2 |
| Aleksander Kubica | 1 |
| Andy Zeyi Liu | 1 |
| Anirudh Krishna | 1 |
| Lily Wang | 1 |
| Nouédyn Baspin | 1 |
| Shouzhen Gu | 1 |
| Venkatesan Guruswami | 1 |