English

Low-valency scalable quantum error correction with a dynamic compass code

Quantum Physics 2026-04-17 v1

Abstract

The ongoing development of hardware that is capable of reliably executing general quantum algorithms requires quantum error-correcting codes that are both practical for realisation and rapidly reduce logical error rates as they are scaled up. Here we introduce the dynamic compass code, a code that can be implemented with a modest footprint on the heavy-hex lattice while also demonstrating a threshold. The dynamic code is obtained by choosing a novel measurement schedule for the syndrome extraction circuit of the heavy-hex subsystem code. We numerically evaluate its performance and observe that different choices of schedule can provide a trade-off in protection against logical errors in the XX vs ZZ basis. We also demonstrate that this new measurement schedule provides the code with a threshold for stability experiments. We finally show how the dynamic compass code could be used for fault-tolerant logic by illustrating lattice surgery between code patches.

Keywords

Cite

@article{arxiv.2604.14299,
  title  = {Low-valency scalable quantum error correction with a dynamic compass code},
  author = {Jun Zen and Xanda C. Kolesnikow and Campbell K. McLauchlan and Georgia M. Nixon and Thomas R. Scruby and Seok-Hyung Lee and Stephen D. Bartlett and Benjamin J. Brown and Robin Harper},
  journal= {arXiv preprint arXiv:2604.14299},
  year   = {2026}
}

Comments

15 pages; 18 figures; comments welcome