English

Reducing the error rate of a superconducting logical qubit using analog readout information

Quantum Physics 2024-11-28 v2 Superconductivity

Abstract

Quantum error correction enables the preservation of logical qubits with a lower logical error rate than the physical error rate, with performance depending on the decoding method. Traditional error decoding approaches, relying on the binarization (`hardening') of readout data, often ignore valuable information embedded in the analog (`soft') readout signal. We present experimental results showcasing the advantages of incorporating soft information into the decoding process of a distance-three (d=3d=3) bit-flip surface code with transmons. To this end, we use the 3×33\times3 data-qubit array to encode each of the 1616 computational states that make up the logical state 0L\ket{0_{\mathrm{L}}}, and protect them against bit-flip errors by performing repeated ZZ-basis stabilizer measurements. To infer the logical fidelity for the 0L\ket{0_{\mathrm{L}}} state, we average across the 1616 computational states and employ two decoding strategies: minimum weight perfect matching and a recurrent neural network. Our results show a reduction of up to 6.8%6.8\% in the extracted logical error rate with the use of soft information. Decoding with soft information is widely applicable, independent of the physical qubit platform, and could reduce the readout duration, further minimizing logical error rates.

Keywords

Cite

@article{arxiv.2403.00706,
  title  = {Reducing the error rate of a superconducting logical qubit using analog readout information},
  author = {Hany Ali and Jorge Marques and Ophelia Crawford and Joonas Majaniemi and Marc Serra-Peralta and David Byfield and Boris Varbanov and Barbara M. Terhal and Leonardo DiCarlo and Earl T. Campbell},
  journal= {arXiv preprint arXiv:2403.00706},
  year   = {2024}
}

Comments

23 pages, 8 figures, 2 table; typos corrected

R2 v1 2026-06-28T15:06:13.854Z