Quantum transfer functions, weak nonlocality and relativity
arXiv:quant-ph/9803044 · doi:10.1016/S0375-9601(98)00353-3
Abstract
The method of transfer functions is developed as a tool for studying Bell inequalities, alternative quantum theories and the associated physical properties of quantum systems. Non-negative probabilities for transfer functions result in Bell-type inequalities. The method is used to show that all realistic Lorentz-invariant quantum theories, which give unique results and have no preferred frame, can be ruled out on the grounds that they lead to weak backward causality.
Plain TeX, 12 pages, no figures. To be submitted Physics Letters A Derivation of Bell inequality corrected (14c) + minor changes
References in corpus (1)
Cited by in corpus (20)
- Bell inequalities for arbitrarily high dimensional systems
- Quantum Information and Relativity Theory
- Research on Hidden Variable Theories: a review of recent progresses
- Bell-type inequalities to detect true n-body non-separability
- Experimental test of non-local quantum correlation in relativistic configurations
- Relativistic Einstein-Podolsky-Rosen correlation and Bell's inequality
- Towards Quantifying Non-Local Information Transfer: Finite-Bit Non-Locality
- Classical interventions in quantum systems. I. The measuring process
- Classical interventions in quantum systems. II. Relativistic invariance
- Detecting Full N-Particle Entanglement in Arbitrarily High-Dimensional Systems with Bell-Type Inequality
- Locality, detection efficiencies, and probability polytopes
- Cosmic quantum measurement
- Quantum measurement breaks Lorentz symmetry
- Why do Bell experiments?
- Maximal violation of Clauser-Horne-Shimony-Holt inequality for four-level systems
- Entanglement detection via condition of quantum correlation
- A general computer program for the Bell detection loophole
- What does it take to solve the measurement problem?
- An Interpretation of Quantum Logic
- Special Relativity and possible Lorentz violations consistently coexist in Aristotle space-time