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A Topologically Fault-Tolerant Quantum Computer with Four Dimensional Geometric Codes

Quantum Physics 2025-06-19 v1

Abstract

Topological quantum codes are intrinsically fault-tolerant to local noise, and underlie the theory of topological phases of matter. We explore geometry to enhance the performance of topological quantum codes by rotating the four dimensional self-correcting quantum memory, and present codes targeted to both near-term and utility-scale quantum computers. We identify a full set of logical Clifford operations and with it design a universal fault-tolerant quantum architecture. Our design achieves single-shot error correction, significant reductions in required qubits, and low-depth logical operations. In turn, our proposed architecture relaxes the requirements for achieving fault tolerance and offers an efficient path for realization in several near-term quantum hardware implementations. Our [[96,6,8]] 4D Hadamard lattice code has low weight-6 stabilizers and depth-8 syndrome extraction circuits, a high pseudo-threshold of 0.01\sim 0.01, and a logical error rate of 106\sim 10^{-6} per logical qubit per round of error correction at 10310^{-3} physical error rate under a standard circuit-level noise model. A Clifford-complete logical gate set is presented, including a constructive and efficient method for Clifford gate synthesis.

Keywords

Cite

@article{arxiv.2506.15130,
  title  = {A Topologically Fault-Tolerant Quantum Computer with Four Dimensional Geometric Codes},
  author = {David Aasen and Matthew B. Hastings and Vadym Kliuchnikov and Juan M. Bello-Rivas and Adam Paetznick and Rui Chao and Ben W. Reichardt and Matt Zanner and Marcus P. da Silva and Zhenghan Wang and Krysta M. Svore},
  journal= {arXiv preprint arXiv:2506.15130},
  year   = {2025}
}

Comments

29 pages, 11 figures, 5 tables

R2 v1 2026-07-01T03:23:02.888Z