arXiv Analytics

Sign in

arXiv:2105.04478 [quant-ph]AbstractReferencesReviewsResources

A sampling-based quasi-probability simulation for fault-tolerant quantum error correction on the surface codes under coherent noise

Shigeo Hakkaku, Kosuke Mitarai, Keisuke Fujii

Published 2021-05-10Version 1

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 quasi-probability distribution. Then, an unbiased estimator of the logical error probability is constructed by sampling Clifford channels with an appropriate post-processing. 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 quasi-probability simulation for a meaningful task and would be useful to explore experimental quantum error correction on the near-term quantum devices.

Related articles: Most relevant | Search more
arXiv:1909.07628 [quant-ph] (Published 2019-09-17)
Fault-tolerant Quantum Error Correction on Near-term Quantum Processors using Flag and Bridge Qubits
arXiv:1605.03604 [quant-ph] (Published 2016-05-11)
Errors and pseudo-thresholds for incoherent and coherent noise
arXiv:2404.11663 [quant-ph] (Published 2024-04-17)
Optimized measurement-free and fault-tolerant quantum error correction for neutral atoms