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(Non-)Contextuality of Physical Theories as an Axiom

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arxiv 1010.2163 v1 pith:INM5UGVX submitted 2010-10-11 quant-ph

(Non-)Contextuality of Physical Theories as an Axiom

classification quant-ph
keywords noncontextualinequalitiesinequalityquantumbellgivengraphklyachko
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We show that the noncontextual inequality proposed by Klyachko et al. [Phys. Rev. Lett. 101, 020403 (2008)] belongs to a broader family of inequalities, one associated to each compatibility structure of a set of events (a graph), and its independence number. These have the surprising property that the maximum quantum violation is given by the Lovasz theta-function of the graph, which was originally proposed as an upper bound on its Shannon capacity. Furthermore, probabilistic theories beyond quantum mechanics may have an even larger violation, which is given by the so-called fractional packing number. We discuss in detail, and compare, the sets of probability distributions attainable by noncontextual, quantum, and generalized models; the latter two are shown to have semidefinite and linear characterizations, respectively. The implications for Bell inequalities, which are examples of noncontextual inequalities, are discussed. In particular, we show that every Bell inequality can be recast as a noncontextual inequality a la Klyachko et al.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Graph theoretic quantum contextuality and unextendible Product Bases

    quant-ph 2025-10 conditional novelty 7.0

    KCBS contextuality vectors are the Pyramid UPB vectors in disguise, and products of Lovász-optimal graph representations generate all minimal UPBs in C3 ⊗ Cn.

  2. A Logical Formalism of Hardy-type Paradox

    quant-ph 2026-01 conditional novelty 6.0

    In finite scenarios, logical contextuality is equivalent to the existence of a logical Hardy-type paradox; strong contextuality corresponds to success probability 1.