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Local orthogonality as a multipartite principle for quantum correlations

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abstract

In recent years, the use of information principles to understand quantum correlations has been very successful. Unfortunately, all principles considered so far have a bipartite formulation, but intrinsically multipartite principles, yet to be discovered, are necessary for reproducing quantum correlations. Here, we introduce local orthogonality, an intrinsically multipartite principle stating that events involving different outcomes of the same local measurement must be exclusive, or orthogonal. We prove that it is equivalent to no-signaling in the bipartite scenario but more restrictive for more than two parties. By exploiting this non-equivalence, it is then demonstrated that some bipartite supra-quantum correlations do violate local orthogonality when distributed among several parties. Finally, we show how its multipartite character allows revealing the non-quantumness of correlations for which any bipartite principle fails. We believe that local orthogonality is a crucial ingredient for understanding no-signaling and quantum correlations.

fields

quant-ph 1

years

2019 1

verdicts

UNVERDICTED 1

representative citing papers

No Disturbance Without Uncertainty as a Physical Principle

quant-ph · 2019-06-27 · unverdicted · novelty 6.0

The 'no disturbance without uncertainty' principle constrains non-signaling correlations to recover quantum ones in cases including Tsirelson's bound, tight bounds on noisy super-nonlocal boxes, and exclusion of certain almost-quantum correlations.

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  • No Disturbance Without Uncertainty as a Physical Principle quant-ph · 2019-06-27 · unverdicted · none · ref 22 · internal anchor

    The 'no disturbance without uncertainty' principle constrains non-signaling correlations to recover quantum ones in cases including Tsirelson's bound, tight bounds on noisy super-nonlocal boxes, and exclusion of certain almost-quantum correlations.