Sampling-based quasiprobability simulation for fault-tolerant quantum error correction on the surface codes under coherent noise

ORAL

Abstract

We propose a sampling-based simulation for fault-tolerant quantum error correction under coherent noise. A mixture of incoherent and coherent noise, possibly due to over-rotation, is decomposed into Clifford channels with a quasiprobability distribution. Then, an unbiased estimator of the logical error probability is constructed by sampling Clifford channels with an appropriate postprocessing. We characterize the sampling cost via the channel robustness and find that the proposed sampling-based method is feasible even for planar surface codes with relatively large code distances intractable for full state-vector simulations. As a demonstration, we simulate repetitive faulty syndrome measurements on the planar surface code of distance 5 with 81 qubits. We find that the coherent error increases the logical error rate. This is a practical application of the quasiprobability simulation for a meaningful task and would be useful to explore experimental quantum error correction on the near-term quantum devices.

*K.M. is supported by JST PRESTO Grant No. JPMJPR2019 and JSPS KAKENHI Grant No. 20K22330. K.F. is supported by JST ERATO Grant No. JPMJER1601, and JST CREST Grant No. JPMJCR1673. This work is supported by MEXT Quantum Leap Flagship Program (MEXTQLEAP) Grants No. JPMXS0118067394 and No. JPMXS0120319794. This work was supported by JST Moonshot R&D Grant No. JPMJMS2061. We also acknowledge support from the JST COI-NEXT program.

Publication: arXiv:2105.04478
Phys. Rev. Research 3, 043130

Presenters

  • Shigeo Hakkaku

    • NTT corporation, Osaka University

Authors

  • Shigeo Hakkaku

    • NTT corporation, Osaka University
  • Kosuke Mitarai

    • QIQB, Osaka University; Osaka University; JST PRESTO
    • Osaka University, QIQB, JST PRESTO
    • Osaka University
    • osaka university graduate school of engineering science
  • Keisuke Fujii

    • QIQB, Osaka University; Osaka University; RIKEN Center for Quantum Computing
    • Osaka University/ RIKEN RQC
    • Osaka University, QIQB, RIKEN
    • Osaka University
    • osaka university graduate school of engineering science