An Integrated Interpretation of Quantum Mechanics and Relativity Based on LSIT

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Autore principale: LEE, WOOSUNG
Natura: Recurso digital
Lingua:coreano
Pubblicazione: Zenodo 2026
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author LEE, WOOSUNG
author_facet LEE, WOOSUNG
contents <p> </p> <p><span lang="EN-US">This paper reexamines the problem of simultaneity on the basis of the principle of relativity and the principle of the invariance of the speed of light, by distinguishing between coordinate transformation and frame transition. From the standpoint that the identity of the same spacetime event should be maintained consistently even under frame transition, it discusses the invariance of simultaneity and applies this to a reinterpretation of the Michelson</span>–<span lang="EN-US">Morley experiment. As a result, in a moving frame, the attribution of the center point is not fixed to a single point, and this is interpreted as macroscopic indeterminacy. This non-uniqueness of event attribution exhibits a formal homology with the uncertainty of quantum mechanics, and the Planck constant can be reinterpreted not as a constant given externally, but as an expression of the minimum action scale required by the geometric description of events. Through this, the paper aims to propose an interpretive framework for newly understanding the difficulties of quantum mechanics from an event-centered perspective.</span></p> <p> </p> <p> </p> <div></div> <div></div> <div> </div> <div> </div>
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publishDate 2026
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spellingShingle An Integrated Interpretation of Quantum Mechanics and Relativity Based on LSIT
LEE, WOOSUNG
Invariance of simultaneity
LSIT
Event-based ontology
Macroscopic indeterminacy
Planck constant
Minimum action scale
Event attribution
Foundations of quantum mechanics
Relativity–quantum mechanics unification
Spacetime geometry
Uncertainty principle (interpretation)
Measurement problem
Michelson–Morley experiment (reinterpretation)
Descriptive incompatibility
Event versus value realism
Geometric origin of uncertainty
Spacetime quantization
Event-centered physics
<p> </p> <p><span lang="EN-US">This paper reexamines the problem of simultaneity on the basis of the principle of relativity and the principle of the invariance of the speed of light, by distinguishing between coordinate transformation and frame transition. From the standpoint that the identity of the same spacetime event should be maintained consistently even under frame transition, it discusses the invariance of simultaneity and applies this to a reinterpretation of the Michelson</span>–<span lang="EN-US">Morley experiment. As a result, in a moving frame, the attribution of the center point is not fixed to a single point, and this is interpreted as macroscopic indeterminacy. This non-uniqueness of event attribution exhibits a formal homology with the uncertainty of quantum mechanics, and the Planck constant can be reinterpreted not as a constant given externally, but as an expression of the minimum action scale required by the geometric description of events. Through this, the paper aims to propose an interpretive framework for newly understanding the difficulties of quantum mechanics from an event-centered perspective.</span></p> <p> </p> <p> </p> <div></div> <div></div> <div> </div> <div> </div>
title An Integrated Interpretation of Quantum Mechanics and Relativity Based on LSIT
topic Invariance of simultaneity
LSIT
Event-based ontology
Macroscopic indeterminacy
Planck constant
Minimum action scale
Event attribution
Foundations of quantum mechanics
Relativity–quantum mechanics unification
Spacetime geometry
Uncertainty principle (interpretation)
Measurement problem
Michelson–Morley experiment (reinterpretation)
Descriptive incompatibility
Event versus value realism
Geometric origin of uncertainty
Spacetime quantization
Event-centered physics
url https://doi.org/10.5281/zenodo.19157768