Published March 19, 2024 | Version v1
Journal article Open

Clifford-Deformed Surface Codes

  • 1. California Institute of Technology
  • 2. AWS Center for Quantum Computing
  • 3. University of Chicago
  • 4. University of Maryland

Description

Various realizations of Kitaev's surface code perform surprisingly well for biased Pauli noise. Attracted by these potential gains, we study the performance of Clifford-deformed surface codes (CDSCs) obtained from the surface code by the application of single-qubit Clifford operators. We first analyze CDSCs on the 3 × 3 square lattice and find that, depending on the noise bias, their logical error rates can differ by orders of magnitude. To explain the observed behavior, we introduce the effective distance $d′$ , which reduces to the standard distance for unbiased noise. To study CDSC performance in the thermodynamic limit, we focus on random CDSCs. Using the statistical mechanical mapping for quantum codes, we uncover a phase diagram that describes random CDSC families with 50% threshold at infinite bias. In the high-threshold region, we further demonstrate that typical code realizations outperform the thresholds and subthreshold logical error rates, at finite bias, of the best-known translationally invariant codes. We demonstrate the practical relevance of these random CDSC families by constructing a translation-invariant CDSC belonging to a high-performance random CDSC family. We also show that our translation-invariant CDSC outperforms well-known translation-invariant CDSCs, such as the $XZZX$ and $XY$ codes.

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PRXQuantum.5.010347.pdf

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Additional details

Identifiers

DOI
10.1103/PRXQuantum.5.010347
Other
oai:uchicago.tind.io:11472

Funding

National Science Foundation
QLCI Grant
ARO
W911NF-18-1-0212
Packard Foundation
2020-71479
Simons Foundation
651438
National Science Foundation
PHY-1733907

UChicago Information

Division(s)
Pritzker School of Molecular Engineering