Quantum fluctuations from a local-causal information dynamics
arXiv:1312.3366 · doi:10.1016/j.physa.2013.12.040
Abstract
We shall show that the abstract and formal rules which govern the quantum kinematic and dynamics can be derived from a law of change of the information content or the degree of uncertainty that the system has a certain configuration in a microscopic time scale, which is singled out uniquely, up to a free parameter, by imposing the condition of Macroscopic Classicality and the principle of Locality. Unlike standard quantum mechanics, however, the system always has a definite configuration all the time as in classical mechanics, following a continuous trajectory fluctuating randomly in time.
A large part of text of the previous version is omitted. A longer version is accepted for publication in Physica A. arXiv admin note: substantial text overlap with arXiv:1301.5345
References in corpus (9)
- Bell inequality violation with two remote atomic qubits
- The uncertainty principle determines the non-locality of quantum mechanics
- Characterizing quantum theory in terms of information-theoretic constraints
- Testing spooky action at a distance
- A derivation of quantum theory from physical requirements
- Local deterministic model of singlet state correlations based on relaxing measurement independence
- Entropic Dynamics, Time and Quantum Theory
- Quantization from an exponential distribution of infinitesimal action
- Objective uncertainty relation with classical background in a statistical model