The author constructs a Weyl-Wigner model with a real zero-point field and detector rules that reproduce quantum correlations, then concludes that a weaker form of locality survives Bell experiments.
Towards a realistic interpretation of quantum mechanics providing a model of the physical world
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
It is argued that a realistic interpretation of quantum mechanics is possible and useful. Current interpretations, from Copenhagen to many worlds are critically revisited. The difficulties for intuitive models of quantum physics are pointed out and possible solutions proposed. In particular the existence of discrete states, the quantum jumps, the alleged lack of objective properties, measurement theory, the probabilistic character of quantum physics, the wave-particle du- ality and the Bell inequalities are analyzed. The sketch of a realistic picture of the quantum world is presented. It rests upon the assump- tion that quantum mechanics is a stochastic theory whose randomness derives from the existence of vacuum fields. They correspond to the vacuum fluctuations of quantum field theory, but taken as real rather than virtual.
fields
quant-ph 1years
2019 1verdicts
REJECT 1representative citing papers
citing papers explorer
-
Local realistic interpretation of entangled photon pairs in the Weyl-Wigner formalism
The author constructs a Weyl-Wigner model with a real zero-point field and detector rules that reproduce quantum correlations, then concludes that a weaker form of locality survives Bell experiments.