Certifying quantumness with the classical fidelity threshold
Abstract
For a given ensemble of input and target states, the classical fidelity threshold (CFT) is the maximum valve of the averaged fidelity, and it can be achieved with a measure-and-prepare operation. This quantity can be employed to verify whether the channel is in the quantum domain or not. In a recent work by Chiribella and Xie [Phys. Rev. Lett. {\bf 110}, 213601 (2013)], it was showed that all the information about the input and target states can be equivalently described by an entangled state and an effective entanglement-braking (EB) channel, and the CFTs can be defined with the Choi matrix of the effective EB channel. Following this idea, the protocol proposed by Fuchs and Sasaki [Quantum. Inf. Comput, {\bf 3}, 377 (2003)] are reformulated in terms of the effective EB channel, and ss applications, the deterministic and probabilistic CFTs for qubit states and the coherent states are derived in this paper.
Cite
@article{arxiv.1807.05775,
title = {Certifying quantumness with the classical fidelity threshold},
author = {Long Huang and Xiaohua Wu and Tao Zhou},
journal= {arXiv preprint arXiv:1807.05775},
year = {2018}
}
Comments
11 pages, 5 figure, and comments are welcome!