28
collaborators
2024–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Batched high-rate logical operations for quantum LDPC codes | QIP 2026 | regular | Qian Xu, Hengyun Zhou, Madelyn Cain, Marcin Kalinowski, John Preskill, Mikhail Lukin, ▸Nishad Maskara |
High-rate quantum LDPC (qLDPC) codes reduce space overhead by densely packing many logical qubits into a single block of physical qubits. Here we extend such savings to computation by constructing batched fault-tolerant operations that apply the same logical gate across many code blocks in parallel. By leveraging shared physical resources to execute many logical operations in parallel, these operations realize high rates in space-time and significantly reduce computational costs. For arbitrary CSS qLDPC codes, we build batched gadgets with constant space-time overhead for (i) single-shot error correction and state preparation, (ii) code switching, and (iii) addressable Clifford gates. Using these batched gadgets we also construct parallel non-Clifford gates with low space-time cost. We outline principles for designing parallel quantum algorithms optimized for a batched architecture, and show in particular how lattice Hamiltonian dynamical simulations can be compiled efficiently. We also propose a near-term–friendly implementation using new self-dual Bivariate-Bicycle codes with high encoding rates (∼ 1/10), transversal Clifford gates, and global T gates, enabling Hamiltonian simulations with a lower space-time cost than analogous surface-code protocols and low-rate qLDPC protocols. These results open new paths toward scalable quantum computation via co-design of parallel quantum algorithms and high-rate fault-tolerant protocols. |
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| Space–Time Efficient Transversal Architectures for Large-Scale Quantum Computation | TQC 2026 | regular | Hengyun Zhou, ▸Casey Duckering, Chen Zhao, Madelyn Cain, Aleksander Kubica, Sheng-Tao Wang, Mikhail Lukin |
We present a low-overhead architecture that supports the layout and resource estimation of large-scale fault-tolerant quantum algorithms. Utilizing recent advances in fault tolerance with transversal gate operations, this architecture achieves a run time speed-up on the order of the code distance d, which we find directly translates to run time improvements of large-scale quantum algorithms. Our architecture consists of functional building blocks of key algorithmic subroutines, including magic state factories, quantum arithmetic units, and quantum look-up tables. These building blocks are implemented using efficient transversal operations, and we design space-time-efficient versions of them that minimize interaction distance, thereby reducing atom move times and minimizing the volume for correlated decoding. We further propose models to estimate their logical error performance. We perform resource estimation for a large-scale implementation of Shor's factoring algorithm, one of the prototypical benchmarks for large-scale quantum algorithms, on dynamically reconfigurable neutral atom arrays, finding that 2048-bit RSA factoring can be executed with 19 million qubits in 5.6 days, for 1 ms QEC cycle times. This represents close to 50x speed-up of the run-time compared to existing estimates with similar assumptions, with no increase in space footprint, achieving a genuine reduction of the space-time volume required for error-corrected quantum computation, and bringing the runtime of large-scale algorithms on emerging platforms into a practical regime. |
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| Fast and Parallelizable Logical Computation with Homological Product Codes | QIP 2025 | regular | ▸Qian Xu, Hengyun Zhou, Guo Zheng, Juan Pablo Bonilla Ataides, Mikhail Lukin, Liang Jiang |
| Logical quantum processor based on reconfigurable atom arrays | QIP 2024 | invited ▸ presenter | — |
| Constant-Overhead Fault-Tolerant Quantum Computation with Reconfigurable Atom Arrays | QIP 2024 | regular | ▸Qian Xu, Pablo Bonilla Ataides, Christopher Pattison, Nithin Raveendran, Jonathan Wurtz, Bane Vasic, Mikhail Lukin, Liang Jiang, Hengyun Zhou |
5 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Resource Analysis of Low-Overhead Transversal Architectures for Reconfigurable Atom Arrays | QIP 2026 | Harry Zhou, ▸Casey Duckering, Chen Zhao, Madelyn Cain, Aleksander Kubica, Sheng-Tao Wang, Mikhail Lukin |
| Fast correlated decoding of transversal logical algorithms | TQC 2026 | Madelyn Cain, Chen Zhao, Shouzhen Gu, Nishad Maskara, Marcin Kalinowski, Alexandra A. Geim, 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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| Transversal Algorithmic Fault Tolerance and Correlated Decoding for Fast Quantum Computing | QIP 2025 | Hengyun Zhou, Chen Zhao, Madelyn Cain, Nishad Maskara, Casey Duckering, Hong-Ye Hu, Nadine Meister, Juan Pablo Bonilla Ataides, Arthur Jaffe, Sheng-Tao Wang, Aleksander Kubica, Mikhail Lukin |
| Efficient Pauli noise learning in fault-tolerant Clifford circuits | QIP 2025 | Xiao Xiao, Dominik Hangleiter, Michael Gullans |
| Correlated decoding of logical algorithms with transversal gates | TQC 2024 | Madelyn Cain, Chen Zhao, Hengyun Zhou, Nadine Meister, Juan Pablo Bonilla Ataides, Arthur Jaffe, Mikhail Lukin |
Collaborators
| Co-author | Joint talks |
|---|---|
| Mikhail Lukin | 8 |
| Hengyun Zhou | 7 |
| Madelyn Cain | 6 |
| Chen Zhao | 5 |
| Aleksander Kubica | 4 |
| Casey Duckering | 3 |
| Juan Pablo Bonilla Ataides | 3 |
| Nishad Maskara | 3 |
| Qian Xu | 3 |
| Sheng-Tao Wang | 3 |
| Arthur Jaffe | 2 |
| Liang Jiang | 2 |
| Marcin Kalinowski | 2 |
| Nadine Meister | 2 |
| Alexandra A. Geim | 1 |
| Bane Vasic | 1 |
| Christopher Pattison | 1 |
| Dominik Hangleiter | 1 |
| Guo Zheng | 1 |
| Harry Zhou | 1 |