Copenhagen Quantum Mechanics Emerges from a Deterministic Schroedinger Theory in 11 Dimensional Spacetime Including Weak Field Gravitation
Gerold Doyen, Deiana Drakova

TL;DR
This paper develops a deterministic 11-dimensional spacetime model that reproduces Copenhagen quantum mechanics phenomena, including localization and telegraph-like jumps, without collapse or probabilistic interpretation, by solving the Schrödinger equation.
Contribution
It introduces a novel deterministic framework in 11D spacetime that explains quantum phenomena without collapse or probability, using gravonons and localization mechanisms.
Findings
Localization of matter fields in 4D spacetime explained by gravonons
Telegraph-signal like jumps are statistically derived from the model
Quantum phenomena are explained deterministically without collapse
Abstract
We construct a world model consisting of a matter field living in 4 dimensional spacetime and a gravitational field living in 11 dimensional spacetime. The seven hidden dimensions are compactified within a radius estimated by reproducing the particle - wave characteristic of diffraction experiments. In the presence of matter fields the gravitational field develops localized modes with elementary excitations called gravonons which are induced by the sources (massive particles). The final world model treated here contains only gravonons and a scalar matter field. The solution of the Schroedinger equation for the world model yields matter fields which are localized in the 4 dimensional subspace. The localization has the following properties: (i) There is a chooser mechanism for the selection of the localization site. (ii) The chooser selects one site on the basis of minor energy…
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Taxonomy
TopicsQuantum Mechanics and Applications · Biofield Effects and Biophysics · Relativity and Gravitational Theory
