English

Stabilized Cat in Driven Nonlinear Cavity: A Fault-Tolerant Error Syndrome Detector

Quantum Physics 2019-10-16 v1

Abstract

In quantum error correction, information is encoded in a high-dimensional system to protect it from the environment. A crucial step is to use natural, low-weight operations with an ancilla to extract information about errors without causing backaction on the encoded system. Essentially, ancilla errors must not propagate to the encoded system and induce errors beyond those which can be corrected. The current schemes for achieving this fault-tolerance to ancilla errors come at the cost of increased overhead requirements. An efficient way to extract error syndromes in a fault-tolerant manner is by using a single ancilla with strongly biased noise channel. Typically, however, required elementary operations can become challenging when the noise is extremely biased. We propose to overcome this shortcoming by using a bosonic-cat ancilla in a parametrically driven nonlinear cavity. Such a cat-qubit experiences only bit-flip noise and is stabilized against phase-flips. To highlight the flexibility of this approach, we illustrate the syndrome extraction process in a variety of codes such as qubit-based toric codes, bosonic cat- and Gottesman-Kitaev-Preskill (GKP) codes. Our results open a path for realizing hardware-efficient, fault-tolerant error syndrome extraction.

Keywords

Cite

@article{arxiv.1807.09334,
  title  = {Stabilized Cat in Driven Nonlinear Cavity: A Fault-Tolerant Error Syndrome Detector},
  author = {Shruti Puri and Alexander Grimm and Philippe Campagne-Ibarcq and Alec Eickbusch and Kyungjoo Noh and Gabrielle Roberts and Liang Jiang and Mazyar Mirrahimi and Michel H. Devoret and Steven M. Girvin},
  journal= {arXiv preprint arXiv:1807.09334},
  year   = {2019}
}
R2 v1 2026-06-23T03:13:12.638Z