English

Quantum uncertainty relation using coherence

Quantum Physics 2017-09-13 v2

Abstract

Measurement outcomes of a quantum state can be genuinely random (unpredictable) according to the basic laws of quantum mechanics. The Heisenberg-Robertson uncertainty relation puts constrains on the accuracy of two noncommuting observables. The existing uncertainty relations adopt variance or entropic measures, which are functions of observed outcome distributions, to quantify the uncertainty. According to recent studies of quantum coherence, such uncertainty measures contain both classical (predictable) and quantum (unpredictable) components. In order to extract out the quantum effects, we define quantum uncertainty to be the coherence of the state on the measurement basis. We discover a quantum uncertainty relation of coherence between two measurement non-commuting bases. Furthermore, we analytically derive the quantum uncertainty relation for the qubit case with three widely adopted coherence measures, the relative entropy using coherence, the coherence of formation, and the l1l_1 norm of coherence.

Keywords

Cite

@article{arxiv.1612.02573,
  title  = {Quantum uncertainty relation using coherence},
  author = {Xiao Yuan and Ge Bai and Tianyi Peng and Xiongfeng Ma},
  journal= {arXiv preprint arXiv:1612.02573},
  year   = {2017}
}

Comments

21 pages, 2 figures