English

Tailoring Dynamical Codes for Biased Noise: The X$^3$Z$^3$ Floquet Code

Quantum Physics 2025-09-23 v3

Abstract

We propose the X3^3Z3^3 Floquet code, a dynamical code with improved performance under biased noise compared to other Floquet codes. The enhanced performance is attributed to a simplified decoding problem resulting from a persistent stabiliser-product symmetry, which surprisingly exists in a code without constant stabilisers. Even if such a symmetry is allowed, we prove that general dynamical codes with two-qubit parity measurements cannot admit one-dimensional decoding graphs, a key feature responsible for the high performance of bias-tailored stabiliser codes. Despite this, our comprehensive simulations show that the symmetry of the X3^3Z3^3 Floquet code renders its performance under biased noise far better than several leading Floquet codes. To maintain high-performance implementation in hardware without native two-qubit parity measurements, we introduce ancilla-assisted bias-preserving parity measurement circuits. Our work establishes the X3^3Z3^3 code as a prime quantum error-correcting code, particularly for devices with reduced connectivity, such as the honeycomb and heavy-hexagonal architectures.

Keywords

Cite

@article{arxiv.2411.04974,
  title  = {Tailoring Dynamical Codes for Biased Noise: The X$^3$Z$^3$ Floquet Code},
  author = {F. Setiawan and Campbell McLauchlan},
  journal= {arXiv preprint arXiv:2411.04974},
  year   = {2025}
}

Comments

21 pages + 11 pages of Supplementary Information, 24 figures

R2 v1 2026-06-28T19:52:04.921Z