Quantum theory as the most robust description of reproducible experiments
arXiv:1303.4574 · doi:10.1016/j.aop.2014.04.021
Abstract
It is shown that the basic equations of quantum theory can be obtained from a straightforward application of logical inference to experiments for which there is uncertainty about individual events and for which the frequencies of the observed events are robust with respect to small changes in the conditions under which the experiments are carried out.
A link to a video presentation can be found at http://rugth30.phys.rug.nl/compphys0/publications/2014.html
References in corpus (8)
- Quantum-Bayesian Coherence: The No-Nonsense Version
- A derivation of quantum theory from physical requirements
- Towards Quantum Gravity: A Framework for Probabilistic Theories with Non-Fixed Causal Structure
- The mathematical basis for deterministic quantum mechanics
- Emergent Weyl spinors in multi-fermion systems
- Event-by-event simulation of quantum phenomena
- Contribution from stochastic electrodynamics to the understanding of quantum mechanics
- Solving the Quantum Nonlocality Enigma by Weyl's Conformal Geometrodynamics
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