11
collaborators
2011–2025
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
8 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Data-Efficient Error Mitigation for Physical and Algorithmic Errors in a Hamiltonian Simulation | QIP 2025 | Shigeo Hakkaku, Suguru Endo |
| Unification and Improvement of Quantum Error Mitigation Methods via Generalized Quantum Subspace Expansion | QIP 2024 | Shigeo Hakkaku, Nobuyuki Yoshioka, Suguru Endo |
| Virtual quantum error detection | QIP 2024 | Kento Tsubouchi, Yasunari Suzuki, Nobuyuki Yoshioka, Suguru Endo |
| Resource-efficient Generalized Subspace Expansion | QIP 2023 | Bo Yang, Kaoru Yamamoto, Hiroyuki Harada, Nobuyuki Yoshioka, Suguru Endo |
| A framework for efficient entanglement distribution with cavity QED systems | QCRYPT 2021 | Sachi Tamechika, Yasunari Suzuki, Takao Aoki |
To demonstrate quantum protocols on a global scale, a quantum repeater is a vital technology to improve the efficiency of entanglement distribution. Entanglement distribution consists of two steps; share entanglements between neighboring quantum repeaters, and perform entanglement distillation and swapping. In this paper, we propose a framework for the first step, efficient Bell measurement between adjacent quantum repeaters, using quantum memories based on cavity quantum electrodynamics (QED) systems. Our framework maximizes a distillable entanglement rate of the protocol by optimizing the parameters of a cavity QED system and pulse length of photons according to the number of available memories at repeater nodes. We demonstrate our theory with a nanofiber cavity QED system with trapped atoms, which is one of the most promising quantum devices for the quantum network. We show that with practical parameters, Bell measurements with quantum memories can outperform those without memories, and we show several trade-off relations between accessible parameters in experiments. Our results extend the limits of entanglement distribution with quantum repeaters using available technology, and reveal that the multiplexing of the cavity QED systems is effective for improving the performance of entanglement distribution. |
||
| Quantum error mitigation for fault-tolerant quantum computing | QIP 2021 | Yasunari Suzuki, Suguru Endo, Keisuke Fujii |
| Error Correction Property of the Surface Codes with General Lattices | QIP 2012 | Keisuke Fujii |
| Fault-tolerant topological one-way quantum computation with probabilistic two-qubit gates | QIP 2011 | Keisuke Fujii |
Collaborators
| Co-author | Joint talks |
|---|---|
| Suguru Endo | 5 |
| Keisuke Fujii | 3 |
| Nobuyuki Yoshioka | 3 |
| Yasunari Suzuki | 3 |
| Shigeo Hakkaku | 2 |
| Bo Yang | 1 |
| Hiroyuki Harada | 1 |
| Kaoru Yamamoto | 1 |
| Kento Tsubouchi | 1 |
| Sachi Tamechika | 1 |
| Takao Aoki | 1 |