An Integrated Interpretation of Quantum Mechanics and Relativity Based on LSIT
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| Format: | Recurso digital |
| Sprache: | Englisch |
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2026
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| _version_ | 1866901658758283264 |
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| author | LEE, WOOSUNG |
| author_facet | LEE, WOOSUNG |
| contents | <p><span lang="EN-US">This paper, based on the Lee’s Simultaneity Invariance Theorem (LSIT), derives a corollary referred to as the macroscopic indeterminacy theorem, which states that the descriptive requirements imposed on a single physical event are structurally incompatible. From this theorem, a minimal action scale required for the description of an event emerges naturally, and its numerical value is shown to coincide precisely with the Planck constant. This result reinterprets uncertainty not as an intrinsic randomness of nature, but as a universal limitation arising in the process of event description, while the Planck constant serves as the physical scale that quantifies this limitation. From this perspective, the present work provides an interpretative framework that alleviates the conceptual tension between relativity theory and quantum mechanics without introducing additional hypotheses.</span></p> <div></div> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_18113094 |
| institution | Zenodo |
| language | eng |
| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| 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><span lang="EN-US">This paper, based on the Lee’s Simultaneity Invariance Theorem (LSIT), derives a corollary referred to as the macroscopic indeterminacy theorem, which states that the descriptive requirements imposed on a single physical event are structurally incompatible. From this theorem, a minimal action scale required for the description of an event emerges naturally, and its numerical value is shown to coincide precisely with the Planck constant. This result reinterprets uncertainty not as an intrinsic randomness of nature, but as a universal limitation arising in the process of event description, while the Planck constant serves as the physical scale that quantifies this limitation. From this perspective, the present work provides an interpretative framework that alleviates the conceptual tension between relativity theory and quantum mechanics without introducing additional hypotheses.</span></p> <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.18113094 |