General Transfer-of-State Model (GTOSM): A Minimum Structural Reconstruction of Quantum Mechanics, Gravitation, and Cosmology

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Auteur principal: Necsanu, Radu
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Langue:anglais
Publié: Zenodo 2025
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author Necsanu, Radu
author_facet Necsanu, Radu
contents <h2>Description</h2> <p>This work presents the <strong>General Transfer-of-State Model (GTOSM)</strong>, a discrete, lattice-based <strong>Minimum Structural Target Model (MSTM)</strong> designed to reconstruct the characteristic structures of <strong>quantum mechanics, gravitation, thermodynamics, and cosmology</strong> from a fixed and minimal primitive rule set.</p> <p>GTOSM assumes an immutable informational lattice with a universal tick and a bounded propagation speed, on which physical systems are represented as <strong>coherence domains</strong> that attempt transfer-of-state through admissible channels. All dynamical behavior arises from binary admissibility, discrete hit/miss outcomes, enforced boundary constraints (bias), exclusive fermionic site consumption, routing pressure (mass-demand), and discrete dimensional adjustments. No continuous spacetime manifold, fundamental wavefunction postulate, collapse axiom, or independent gravitational field is assumed.</p> <p>Within this framework:</p> <ul> <li> <p><strong>Quantum mechanics</strong> emerges as a coarse-grained boundary dynamics of coherence domains under symmetry and stability conditions.</p> </li> <li> <p><strong>Superposition</strong> is identified as a structural symmetry of admissible routes, not a primitive axiom.</p> </li> <li> <p><strong>Measurement and collapse</strong> arise from forced non-optimal transfers that replace boundary constraints and break symmetry irreversibly.</p> </li> <li> <p><strong>Gravitation</strong> appears as modulation of transfer success statistics driven by routing pressure, without introducing curvature as an independent field.</p> </li> <li> <p><strong>Mass and energy</strong> are derived from discrete connectivity changes, with dimensional adjustment as the sole energy-producing mechanism.</p> </li> <li> <p><strong>Black-hole interiors</strong> are described as horizon-isolated closed v-cycle domains, eliminating classical singularities.</p> </li> <li> <p><strong>Dark matter</strong> is identified with stripped, exported enforced-constraint structure in the lattice, contributing to gravitational footprint without electromagnetic activity.</p> </li> <li> <p><strong>Dark energy</strong> arises as a quantized residual of cross-boundary routing demand in the low-event (“floor”) regime.</p> </li> </ul> <p>The manuscript explicitly defines regime conditions, coarse-graining procedures, closure rules, and a strict primitive/derived separation. All substantive claims are classified as definitions, axioms, derived propositions, or falsification handles. No per-phenomenon tuning is permitted.</p> <p>GTOSM does not claim uniqueness or finality. It is offered as a <strong>minimal, internally coherent structural candidate</strong> that satisfies the MSTM discipline while producing concrete, testable correspondences with established physical domains.</p>
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language eng
publishDate 2025
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spellingShingle General Transfer-of-State Model (GTOSM): A Minimum Structural Reconstruction of Quantum Mechanics, Gravitation, and Cosmology
Necsanu, Radu
quantum foundations
quantum measurement
transfer of state
emergent quantum mechanics
gravity without quantization
dark matter
dark energy
black hole
minimal structural models
predictions
emergent gravity
minimal structural models
informational physics
<h2>Description</h2> <p>This work presents the <strong>General Transfer-of-State Model (GTOSM)</strong>, a discrete, lattice-based <strong>Minimum Structural Target Model (MSTM)</strong> designed to reconstruct the characteristic structures of <strong>quantum mechanics, gravitation, thermodynamics, and cosmology</strong> from a fixed and minimal primitive rule set.</p> <p>GTOSM assumes an immutable informational lattice with a universal tick and a bounded propagation speed, on which physical systems are represented as <strong>coherence domains</strong> that attempt transfer-of-state through admissible channels. All dynamical behavior arises from binary admissibility, discrete hit/miss outcomes, enforced boundary constraints (bias), exclusive fermionic site consumption, routing pressure (mass-demand), and discrete dimensional adjustments. No continuous spacetime manifold, fundamental wavefunction postulate, collapse axiom, or independent gravitational field is assumed.</p> <p>Within this framework:</p> <ul> <li> <p><strong>Quantum mechanics</strong> emerges as a coarse-grained boundary dynamics of coherence domains under symmetry and stability conditions.</p> </li> <li> <p><strong>Superposition</strong> is identified as a structural symmetry of admissible routes, not a primitive axiom.</p> </li> <li> <p><strong>Measurement and collapse</strong> arise from forced non-optimal transfers that replace boundary constraints and break symmetry irreversibly.</p> </li> <li> <p><strong>Gravitation</strong> appears as modulation of transfer success statistics driven by routing pressure, without introducing curvature as an independent field.</p> </li> <li> <p><strong>Mass and energy</strong> are derived from discrete connectivity changes, with dimensional adjustment as the sole energy-producing mechanism.</p> </li> <li> <p><strong>Black-hole interiors</strong> are described as horizon-isolated closed v-cycle domains, eliminating classical singularities.</p> </li> <li> <p><strong>Dark matter</strong> is identified with stripped, exported enforced-constraint structure in the lattice, contributing to gravitational footprint without electromagnetic activity.</p> </li> <li> <p><strong>Dark energy</strong> arises as a quantized residual of cross-boundary routing demand in the low-event (“floor”) regime.</p> </li> </ul> <p>The manuscript explicitly defines regime conditions, coarse-graining procedures, closure rules, and a strict primitive/derived separation. All substantive claims are classified as definitions, axioms, derived propositions, or falsification handles. No per-phenomenon tuning is permitted.</p> <p>GTOSM does not claim uniqueness or finality. It is offered as a <strong>minimal, internally coherent structural candidate</strong> that satisfies the MSTM discipline while producing concrete, testable correspondences with established physical domains.</p>
title General Transfer-of-State Model (GTOSM): A Minimum Structural Reconstruction of Quantum Mechanics, Gravitation, and Cosmology
topic quantum foundations
quantum measurement
transfer of state
emergent quantum mechanics
gravity without quantization
dark matter
dark energy
black hole
minimal structural models
predictions
emergent gravity
minimal structural models
informational physics
url https://doi.org/10.5281/zenodo.17962023