Quantum Correlation Generation Capability of Experimental Processes

Author:

Huang Wei‐Hao12,Chen Shih‐Hsuan12,Chang Chun‐Hao12,Hsu Tzu‐Liang12,Wang Kuan‐Jou12,Li Che‐Ming123ORCID

Affiliation:

1. Department of Engineering Science National Cheng Kung University Tainan 70101 Taiwan

2. Center for Quantum Frontiers of Research & Technology National Cheng Kung University Tainan 70101 Taiwan

3. Center for Quantum Science and Technology 30013 Hsinchu Taiwan

Abstract

AbstractEinstein–Podolsky–Rosen (EPR) steering and Bell nonlocality illustrate two different kinds of correlations predicted by quantum mechanics. They not only motivate the exploration of the foundation of quantum mechanics, but also serve as important resources for quantum‐information processing in the presence of untrusted measurement apparatuses. Herein, a method for characterizing the creation of EPR steering and Bell nonlocality is introduced for dynamical processes in experiments. It shows that the capability of an experimental process to create quantum correlations can be quantified and identified simply by preparing separable states as test inputs of the process and then performing local measurements on single qubits of the corresponding outputs. This finding enables the construction of objective benchmarks for the two‐qubit controlled operations used to perform universal quantum computation. It demonstrates this utility by examining the experimental capability of creating quantum correlations with the controlled‐phase operations on the IBM Quantum Experience and Amazon Braket Rigetti superconducting quantum computers. The results show that the method provides a useful diagnostic tool for evaluating the primitive operations of nonclassical correlation creation in noisy intermediate scale quantum devices.

Funder

National Science and Technology Council

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Condensed Matter Physics,Mathematical Physics,Nuclear and High Energy Physics,Electronic, Optical and Magnetic Materials,Statistical and Nonlinear Physics

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