A Combinatorial Approach to Nonlocality and Contextuality

被引:125
|
作者
Acin, Antonio [1 ,2 ]
Fritz, Tobias [3 ]
Leverrier, Anthony [4 ]
Sainz, Belen [1 ]
机构
[1] ICFO Inst Ciencies Foton, Barcelona 08860, Spain
[2] ICREA, Barcelona 08010, Spain
[3] Perimeter Inst Theoret Phys, Waterloo, ON, Canada
[4] INRIA Rocquencourt, F-78153 Le Chesnay, France
基金
欧洲研究理事会; 瑞士国家科学基金会;
关键词
SHANNON CAPACITY; OPERATIONAL STATISTICS; HIDDEN-VARIABLES; RELAXATIONS; INEQUALITIES; DIAGRAMS; THEOREM; LOVASZ; NUMBER;
D O I
10.1007/s00220-014-2260-1
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
So far, most of the literature on (quantum) contextuality and the Kochen-Specker theorem seems either to concern particular examples of contextuality, or be considered as quantum logic. Here, we develop a general formalism for contextuality scenarios based on the combinatorics of hypergraphs, which significantly refines a similar recent approach by Cabello, Severini and Winter (CSW). In contrast to CSW, we explicitly include the normalization of probabilities, which gives us a much finer control over the various sets of probabilistic models like classical, quantum and generalized probabilistic. In particular, our framework specializes to (quantum) nonlocality in the case of Bell scenarios, which arise very naturally from a certain product of contextuality scenarios due to Foulis and Randall. In the spirit of CSW, we find close relationships to several graph invariants. The recently proposed Local Orthogonality principle turns out to be a special case of a general principle for contextuality scenarios related to the Shannon capacity of graphs. Our results imply that it is strictly dominated by a low level of the Navascu,s-Pironio-Acin hierarchy of semidefinite programs, which we also apply to contextuality scenarios. We derive a wealth of results in our framework, many of these relating to quantum and supraquantum contextuality and nonlocality, and state numerous open problems. For example, we show that the set of quantum models on a contextuality scenario can in general not be characterized in terms of a graph invariant. In terms of graph theory, our main result is this: there exist two graphs G(1) and G(2) with the properties alpha(G(1)) = Theta(G(1)), alpha(G(2)) = upsilon(G(2)) Theta(G(1)boxed times G(2)) > Theta(G(1))center dot Theta(G(2)), Theta(G(1)+G(2)) > Theta(G(1))+Theta(G(2)).
引用
收藏
页码:533 / 628
页数:96
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