English

Statistical signatures of quantum contextuality

Quantum Physics 2024-08-28 v2 Mathematical Physics math.MP

Abstract

Quantum contextuality describes situations where the statistics observed in different measurement contexts cannot be explained by a measurement independent reality of the system. The most simple case is observed in a three-dimensional Hilbert space, with five different measurement contexts related to each other by shared measurement outcomes. The quantum formalism defines the relations between these contexts in terms of well-defined relations between operators, and these relations can be used to reconstruct an unknown quantum state from a finite set of measurement results. Here, I introduce a reconstruction method based on the relations between the five measurement contexts that can violate the bounds of non-contextual statistics. A complete description of an arbitrary quantum state requires only five of the eight elements of a Kirkwood-Dirac quasi probability, but only an overcomplete set of eleven elements provides an unbiased description of all five contexts. A set of five fundamental relations between the eleven elements reveals a deterministic structure that links the five contexts. As illustrated by a number of examples, these relations provide a consistent description of contextual realities for the measurement outcomes of all five contexts.

Keywords

Cite

@article{arxiv.2405.20569,
  title  = {Statistical signatures of quantum contextuality},
  author = {Holger F. Hofmann},
  journal= {arXiv preprint arXiv:2405.20569},
  year   = {2024}
}

Comments

19 pages, including 2 figures and 3 tables. Version 2 has additional background and references

R2 v1 2026-06-28T16:48:01.231Z