English

Overhead analysis of universal concatenated quantum codes

Quantum Physics 2017-06-20 v3

Abstract

We analyze the resource overhead of recently proposed methods for universal fault-tolerant quantum computation using concatenated codes. Namely, we examine the concatenation of the 7-qubit Steane code with the 15-qubit Reed-Muller code, which allows for the construction of the 49 and 105-qubit codes that do not require the need for magic state distillation for universality. We compute a lower bound for the adversarial noise threshold of the 105-qubit code and find it to be 8.33×106.8.33\times 10^{-6}. We obtain a depolarizing noise threshold for the 49-qubit code of 9.69×1049.69\times 10^{-4} which is competitive with the 105-qubit threshold result of 1.28×1031.28\times 10^{-3}. We then provide lower bounds on the resource requirements of the 49 and 105-qubit codes and compare them with the surface code implementation of a logical TT gate using magic state distillation. For the sampled input error rates and noise model, we find that the surface code achieves a smaller overhead compared to our concatenated schemes.

Keywords

Cite

@article{arxiv.1609.07497,
  title  = {Overhead analysis of universal concatenated quantum codes},
  author = {Christopher Chamberland and Tomas Jochym-O'Connor and Raymond Laflamme},
  journal= {arXiv preprint arXiv:1609.07497},
  year   = {2017}
}

Comments

25 pages, 17 figures; in v2, some content has been moved to an appendix, a few tables have been restructured and the the title has been updated to conform to journal specifications. v3 fixes minor typos in Figs. 1 & 6

R2 v1 2026-06-22T15:59:38.915Z