English

Observation of a Fault Tolerance Threshold with Concatenated Codes

Quantum Physics 2025-11-03 v2

Abstract

We introduce a fault-tolerant protocol for code concatenation of a generalized Shor code using a butterfly network architecture with high noise thresholds and low ancilla overhead to allow implementation on current devices. We develop a probability passing decoder using tensor networks that applies Bayesian updates to the marginal error probabilities after each layer of checks, achieving a state preparation threshold of ec0.089e_c \approx 0.089 for erasure errors, and 0.015\approx 0.015 for unheralded noise. We implement our state preparation protocol on ion-trap hardware with added noise to demonstrate the threshold behavior in a real quantum device. We further theoretically test the performance of our scheme as a quantum memory and for universal quantum computation through the preparation of low-noise magic states for state distillation and TT-gate injection.

Keywords

Cite

@article{arxiv.2506.00579,
  title  = {Observation of a Fault Tolerance Threshold with Concatenated Codes},
  author = {Grace M. Sommers and Michael Foss-Feig and David Hayes and David A. Huse and Michael J. Gullans},
  journal= {arXiv preprint arXiv:2506.00579},
  year   = {2025}
}

Comments

v2: 7.5 pages, 6 figures + 26 pages, 17 figures, includes added section on code switching. Close to accepted version