Quantifying quantum coherence via Kirkwood-Dirac quasiprobability

Agung Budiyono and Hermawan K. Dipojono
Phys. Rev. A 107, 022408 – Published 8 February 2023

Abstract

Kirkwood-Dirac (KD) quasiprobability is a quantum analog of phase space probability of classical statistical mechanics, allowing negative or/and nonreal values. It gives an informationally complete representation of a quantum state. Recent works have revealed the important roles played by the KD quasiprobability in the broad fields of quantum science and quantum technology. In the present work, we use the KD quasiprobability to access the quantum coherence in a quantum state. We show that the l1 norm of the imaginary part of the KD quasiprobability over an incoherent reference basis and a second basis, maximized over all possible choices of the latter, can be used to quantify quantum coherence, satisfying certain desirable properties. It is upper bounded by the quantum uncertainty, i.e., the quantum standard deviation, of the incoherent basis in the state. It gives a lower bound to the l1 norm quantum coherence, and for a single qubit, they are identical. We discuss the measurement of the KD coherence based on the measurement of the KD quasiprobability and an optimization procedure in hybrid quantum-classical schemes, and suggest statistical interpretations. We also discuss its relevance in the physics of linear response regime.

  • Received 30 March 2022
  • Accepted 24 January 2023

DOI:https://doi.org/10.1103/PhysRevA.107.022408

©2023 American Physical Society

Physics Subject Headings (PhySH)

Quantum Information, Science & TechnologyGeneral Physics

Authors & Affiliations

Agung Budiyono* and Hermawan K. Dipojono

  • Department of Engineering Physics, Bandung Institute of Technology, Bandung, 40132, Indonesia and Research Center for Nanoscience and Nanotechnology, Bandung Institute of Technology, Bandung, 40132, Indonesia

  • *agungbymlati@gmail.com

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Issue

Vol. 107, Iss. 2 — February 2023

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