English

Efficient quantum error correction of dephasing induced by a common fluctuator

Quantum Physics 2020-01-20 v2

Abstract

Quantum error correction is expected to be essential in large-scale quantum technologies. However, the substantial overhead of qubits it requires is thought to greatly limit its utility in smaller, near-term devices. Here we introduce a new family of special-purpose quantum error-correcting codes that offer an exponential reduction in overhead compared to the usual repetition code. They are tailored for a common and important source of decoherence in current experiments, whereby a register of qubits is subject to phase noise through coupling to a common fluctuator, such as a resonator or a spin defect. The smallest instance encodes one logical qubit into two physical qubits, and corrects decoherence to leading-order using a constant number of one- and two-qubit operations. More generally, while the repetition code on nn qubits corrects errors to order tO(n)t^{O(n)}, with tt the time between recoveries, our codes correct to order tO(2n)t^{O(2^n)}. Moreover, they are robust to model imperfections in small- and intermediate-scale devices, where they already provide substantial gains in error suppression. As a result, these hardware-efficient codes open a potential avenue for useful quantum error correction in near-term, pre-fault tolerant devices.

Keywords

Cite

@article{arxiv.1903.01046,
  title  = {Efficient quantum error correction of dephasing induced by a common fluctuator},
  author = {David Layden and Mo Chen and Paola Cappellaro},
  journal= {arXiv preprint arXiv:1903.01046},
  year   = {2020}
}

Comments

6 pages, 2 figures, RevTeX 4.1

R2 v1 2026-06-23T07:57:02.174Z