Robustness-optimized quantum error correction
Abstract
Quantum error correction codes are usually designed to correct errors regardless of their physical origins. In large-scale devices, this is an essential feature. In smaller-scale devices, however, the main error sources are often understood, and this knowledge could be exploited for more efficient error correction. Optimizing the quantum error correction protocol is therefore a promising strategy in smaller devices. Typically, this involves tailoring the protocol to a given decoherence channel by solving an appropriate optimization problem. Here we introduce a new optimization-based approach, which maximizes the robustness to faults in the recovery. Our approach is inspired by recent experiments, where such faults have been a significant source of logical errors. We illustrate this approach with a three-qubit model, and show how near-term experiments could benefit from more robust quantum error correction protocols.
Cite
@article{arxiv.1909.05156,
title = {Robustness-optimized quantum error correction},
author = {David Layden and Louisa Ruixue Huang and Paola Cappellaro},
journal= {arXiv preprint arXiv:1909.05156},
year = {2020}
}
Comments
10 pages, 4 figures, RevTeX 4.1. v2: Updated to match published version