Resolution of the Quantum Measurement Problem via Gravitational Self-Energy Collapse
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| Format: | Recurso digital |
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2026
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| _version_ | 1866901662197612544 |
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| author | W., Jason |
| author_facet | W., Jason |
| contents | We present a resolution of the quantum measurement problem in which wavefunction collapse is a physical process driven by gravitational self-energy. When a quantum system exists in a superposition of states with distinct mass distributions, the gravitational self-energy $E_G$ of the superposition determines a definite collapse timescale $ au = \hbar/E_G$. Using crystallographically determined atomic coordinates of tubulin proteins (PDB: 6EVW, 6EVZ), we compute $E_G$ for a biologically realized |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_18904192 |
| institution | Zenodo |
| language | |
| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Resolution of the Quantum Measurement Problem via Gravitational Self-Energy Collapse W., Jason MRF Modal Resonance Framework theoretical physics We present a resolution of the quantum measurement problem in which wavefunction collapse is a physical process driven by gravitational self-energy. When a quantum system exists in a superposition of states with distinct mass distributions, the gravitational self-energy $E_G$ of the superposition determines a definite collapse timescale $ au = \hbar/E_G$. Using crystallographically determined atomic coordinates of tubulin proteins (PDB: 6EVW, 6EVZ), we compute $E_G$ for a biologically realized |
| title | Resolution of the Quantum Measurement Problem via Gravitational Self-Energy Collapse |
| topic | MRF Modal Resonance Framework theoretical physics |
| url | https://doi.org/10.5281/zenodo.18904192 |