English

Certification of continuous-variable gates using average channel-fidelity witnesses

Quantum Physics 2021-06-29 v3

Abstract

We introduce witnesses for the average channel fidelity between a known target gate and an arbitrary unknown channel, for continuous-variable (CV) systems. These are observables whose expectation value yields a tight lower bound to the average channel fidelity in question, thus constituting a practical tool for certification of experimental CV gates. Our framework applies to a broad class of target gates. Here, we focus on three specific types of targets: multi-mode Gaussian unitary channels, single-mode coherent state amplifiers, and the single-mode (non-Gaussian) cubic phase gate, which is a crucial ingredient for CV universal quantum computation. Our witnesses are experimentally-friendly as they rely exclusively on Gaussian measurements, even for the non-Gaussian-target case. Moreover, in all three cases, they can be measured efficiently in the estimation error ϵ\epsilon and failure probability Δ\Delta, as well as in the number of modes mm for the Gaussian-target case. To end up with, our approach for the Gaussian-target case relies on an improved measurement scheme for Gaussian state-fidelity witnesses, which is polynomially and exponentially more efficient in mm and Δ\Delta, respectively, than previous schemes. The latter constitutes an interesting byproduct result on its own. Our findings are relevant to the experimental validation of many-body quantum technologies.

Cite

@article{arxiv.1812.01968,
  title  = {Certification of continuous-variable gates using average channel-fidelity witnesses},
  author = {Renato M. S. Farias and Leandro Aolita},
  journal= {arXiv preprint arXiv:1812.01968},
  year   = {2021}
}

Comments

15 pages

R2 v1 2026-06-23T06:32:38.358Z