Interpreting quantum coherence through a quantum measurement process

Yao Yao, G. H. Dong, Xing Xiao, Mo Li, and C. P. Sun
Phys. Rev. A 96, 052322 – Published 16 November 2017

Abstract

Recently, there has been a renewed interest in the quantification of coherence or other coherencelike concepts within the framework of quantum resource theory. However, rigorously defined or not, the notion of coherence or decoherence has already been used by the community for decades since the advent of quantum theory. Intuitively, the definitions of coherence and decoherence should be two sides of the same coin. Therefore, a natural question is raised: How can the conventional decoherence processes, such as the von Neumann–Lüders (projective) measurement postulation or partially dephasing channels, fit into the bigger picture of the recently established theoretical framework? Here we show that the state collapse rules of the von Neumann or Lüders-type measurements, as special cases of genuinely incoherent operations (GIOs), are consistent with the resource theories of quantum coherence. New hierarchical measures of coherence are proposed for the Lüders-type measurement and their relationship with measurement-dependent discord is addressed. Moreover, utilizing the fixed-point theory for C* algebra, we prove that GIOs indeed represent a particular type of partially dephasing (phase-damping) channels which have a matrix representation based on the Schur product. By virtue of the Stinespring dilation theorem, the physical realizations of incoherent operations are investigated in detail and we find that GIOs in fact constitute the core of strictly incoherent operations and generally incoherent operations and the unspeakable notion of coherence induced by GIOs can be transferred to the theories of speakable coherence by the corresponding permutation or relabeling operators.

  • Received 19 July 2017

DOI:https://doi.org/10.1103/PhysRevA.96.052322

©2017 American Physical Society

Physics Subject Headings (PhySH)

General PhysicsQuantum Information, Science & Technology

Authors & Affiliations

Yao Yao1,2,*, G. H. Dong3, Xing Xiao4, Mo Li1,2,†, and C. P. Sun3,5

  • 1Microsystems and Terahertz Research Center, China Academy of Engineering Physics, Chengdu Sichuan 610200, China
  • 2Institute of Electronic Engineering, China Academy of Engineering Physics, Mianyang Sichuan 621999, China
  • 3Beijing Computational Science Research Center, Beijing 100094, China
  • 4College of Physics and Electronic Information, Gannan Normal University, Ganzhou Jiangxi 341000, China
  • 5Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China

  • *yaoyao@mtrc.ac.cn
  • limo@mtrc.ac.cn

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Issue

Vol. 96, Iss. 5 — November 2017

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