16
collaborators
2026–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
1 Talk
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Entangling logical qubits without physical operations | TQC 2026 | regular | ▸Shayan Majidy, Jin Ming Koh, Anqi Gong, Andrei C. Diaconu, Daniel Bochen Tan, Michael Gullans, Norman Yao, Mikhail Lukin |
Fault-tolerant logical entangling gates are essential for scalable quantum computing, but are limited by the error rates and overheads of physical two-qubit gates and measurements. To address this limitation we introduce phantom codes---quantum error-correcting codes that realize entangling gates between all logical qubits in a codeblock purely through relabelling of physical qubits during compilation, yielding perfect fidelity with no spatial or temporal overhead. We present a systematic study of such codes. First, we identify phantom codes using complementary numerical and analytical approaches. We exhaustively enumerate all 2.71 x 10^{10} inequivalent CSS codes up to n=14 and identify additional instances up to n=21 via SAT-based methods. We then construct higher-distance phantom-code families using quantum Reed--Muller codes and the binarization of qudit codes. Across all identified codes, we characterize other supported fault-tolerant logical Clifford and non-Clifford operations. Second, through end-to-end noisy simulations with state preparation, full QEC cycles, and realistic physical error rates, we demonstrate scalable advantages of phantom codes over the surface code across multiple tasks. We observe one–to–two–order-of-magnitude reduction in logical infidelity at comparable qubit overhead for GHZ-state preparation and Trotterized many-body simulation tasks, given a modest preselection acceptance rate. Our work establishes phantom codes as a viable architectural route to fault-tolerant quantum computation with scalable benefits for workloads with dense local entangling structure, and introduces general tools for systematically exploring the broader landscape of quantum error-correcting codes. |
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1 Poster
| Title | Conference | Co-authors |
|---|---|---|
| Fast correlated decoding of transversal logical algorithms | TQC 2026 | Madelyn Cain, Dolev Bluvstein, Chen Zhao, Shouzhen Gu, Nishad Maskara, Marcin Kalinowski, Aleksander Kubica, Mikhail Lukin, Hengyun Zhou |
Quantum error correction (QEC) is required for large-scale computation, but incurs a significant resource overhead. Recent advances have shown that by jointly decoding logical qubits in algorithms composed of transversal gates, the number of syndrome extraction rounds can be reduced by a factor of the code distance d, at the cost of increased classical decoding complexity. Here, we reformulate the problem of decoding transversal circuits by directly decoding relevant logical operator products as they propagate through the circuit. This procedure transforms the decoding task into one closely resembling that of a single-qubit memory propagating through time. The resulting approach leads to fast decoding and reduced problem size while maintaining high performance. Focusing on the surface code, we prove that this method enables fault-tolerant decoding with minimum-weight perfect matching, and benchmark its performance on example circuits including magic state distillation. We find that the threshold is comparable to that of a single-qubit memory, and that the total decoding run time can be, in fact, less than that of conventional lattice surgery. Our approach enables fast correlated decoding, providing a pathway to directly extend single-qubit QEC techniques to transversal algorithms. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Mikhail Lukin | 2 |
| Aleksander Kubica | 1 |
| Andrei C. Diaconu | 1 |
| Anqi Gong | 1 |
| Chen Zhao | 1 |
| Daniel Bochen Tan | 1 |
| Dolev Bluvstein | 1 |
| Hengyun Zhou | 1 |
| Jin Ming Koh | 1 |
| Madelyn Cain | 1 |
| Marcin Kalinowski | 1 |
| Michael Gullans | 1 |
| Nishad Maskara | 1 |
| Norman Yao | 1 |
| Shayan Majidy | 1 |
| Shouzhen Gu | 1 |