Is Einsteinian no-signalling violated in Bell tests?
Relativistic invariance is a physical law verified in several domains of physics. The impossibility of faster than light influences is not questioned by quantum theory. In quantum electrodynamics, in quantum field theory and in the standard model relativistic invariance is incorporated by constructi...
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doaj-4d62d6866c9c4fdfbd16adc40e8a24cf2021-09-05T13:59:34ZengDe GruyterOpen Physics2391-54712017-11-0115173975310.1515/phys-2017-0087phys-2017-0087Is Einsteinian no-signalling violated in Bell tests?Kupczynski Marian0Département de l’Informatique, Université du Québec en Outaouais (UQO), Case postale 1250, succursale Hull, Gatineau, Quebec, Canada, J8X 3X 7Relativistic invariance is a physical law verified in several domains of physics. The impossibility of faster than light influences is not questioned by quantum theory. In quantum electrodynamics, in quantum field theory and in the standard model relativistic invariance is incorporated by construction. Quantum mechanics predicts strong long range correlations between outcomes of spin projection measurements performed in distant laboratories. In spite of these strong correlations marginal probability distributions should not depend on what was measured in the other laboratory what is called shortly: non-signalling. In several experiments, performed to test various Bell-type inequalities, some unexplained dependence of empirical marginal probability distributions on distant settings was observed. In this paper we demonstrate how a particular identification and selection procedure of paired distant outcomes is the most probable cause for this apparent violation of no-signalling principle. Thus this unexpected setting dependence does not prove the existence of superluminal influences and Einsteinian no-signalling principle has to be tested differently in dedicated experiments. We propose a detailed protocol telling how such experiments should be designed in order to be conclusive. We also explain how magical quantum correlations may be explained in a locally causal way.https://doi.org/10.1515/phys-2017-0087epr paradox and bell inequalitiesparameter independence and non-signallingnew unambiguous tests of einsteinian no-signallingquantum nonlocality demystifiedcausally local explanation of quantum correlations03.65-w03.65.ta42.50.xa03.67.-a |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kupczynski Marian |
spellingShingle |
Kupczynski Marian Is Einsteinian no-signalling violated in Bell tests? Open Physics epr paradox and bell inequalities parameter independence and non-signalling new unambiguous tests of einsteinian no-signalling quantum nonlocality demystified causally local explanation of quantum correlations 03.65-w 03.65.ta 42.50.xa 03.67.-a |
author_facet |
Kupczynski Marian |
author_sort |
Kupczynski Marian |
title |
Is Einsteinian no-signalling violated in Bell tests? |
title_short |
Is Einsteinian no-signalling violated in Bell tests? |
title_full |
Is Einsteinian no-signalling violated in Bell tests? |
title_fullStr |
Is Einsteinian no-signalling violated in Bell tests? |
title_full_unstemmed |
Is Einsteinian no-signalling violated in Bell tests? |
title_sort |
is einsteinian no-signalling violated in bell tests? |
publisher |
De Gruyter |
series |
Open Physics |
issn |
2391-5471 |
publishDate |
2017-11-01 |
description |
Relativistic invariance is a physical law verified in several domains of physics. The impossibility of faster than light influences is not questioned by quantum theory. In quantum electrodynamics, in quantum field theory and in the standard model relativistic invariance is incorporated by construction. Quantum mechanics predicts strong long range correlations between outcomes of spin projection measurements performed in distant laboratories. In spite of these strong correlations marginal probability distributions should not depend on what was measured in the other laboratory what is called shortly: non-signalling. In several experiments, performed to test various Bell-type inequalities, some unexplained dependence of empirical marginal probability distributions on distant settings was observed. In this paper we demonstrate how a particular identification and selection procedure of paired distant outcomes is the most probable cause for this apparent violation of no-signalling principle. Thus this unexpected setting dependence does not prove the existence of superluminal influences and Einsteinian no-signalling principle has to be tested differently in dedicated experiments. We propose a detailed protocol telling how such experiments should be designed in order to be conclusive. We also explain how magical quantum correlations may be explained in a locally causal way. |
topic |
epr paradox and bell inequalities parameter independence and non-signalling new unambiguous tests of einsteinian no-signalling quantum nonlocality demystified causally local explanation of quantum correlations 03.65-w 03.65.ta 42.50.xa 03.67.-a |
url |
https://doi.org/10.1515/phys-2017-0087 |
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AT kupczynskimarian iseinsteiniannosignallingviolatedinbelltests |
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