activity
20242026
collaborators

8 papers

quant-ph2026

Zero-level Distillation

Tomohiro Itogawa, Yutaka Hirano, Yutaro Akahoshi +1

Magic state distillation is a key component of fault-tolerant quantum computation, as it enables the implementation of non-Clifford gates such as the gate and the gate vi…

quant-ph2026

Entanglement boosting: Low-volume logical Bell pair preparation for distributed fault-tolerant quantum computation

Shinichi Sunami, Yutaka Hirano, Toshihide Hinokuma +1

Distributed architecture is a promising route to scaling fault-tolerant quantum computing (FTQC) beyond the inherent limitations of single processors. For practical implementation…

quant-ph2025

Measurement-Based Fault-Tolerant Quantum Computation on High-Connectivity Devices: A Resource-Efficient Approach toward Early FTQC

Yohei Ibe, Yutaka Hirano, Yasuo Ozu +2

We propose a measurement-based FTQC (MB-FTQC) architecture for high-connectivity platforms such as trapped ions and neutral atoms. The key idea is to use verified logical ancillas…

quant-ph2025

Efficient magic state cultivation with lattice surgery

Yutaka Hirano, Riki Toshio, Tomohiro Itogawa +1

Magic state distillation plays a crucial role in fault-tolerant quantum computation and represents a major bottleneck. In contrast to traditional logical-level distillation, physic…

quant-ph2025

Locality-aware Pauli-based computation for local magic state preparation

Yutaka Hirano, Keisuke Fujii

Magic state distillation, a process for preparing magic states needed to implement non-Clifford gates fault-tolerantly, plays a crucial role in fault-tolerant quantum computation.…

quant-ph2025

Efficient Magic State Distillation by Zero-Level Distillation

Tomohiro Itogawa, Yugo Takada, Yutaka Hirano +1

Magic state distillation (MSD) is an essential element for universal fault-tolerant quantum computing, which distills a high-fidelity magic state from noisy magic states using idea…