Causal Memory Gravity XII: Local Loss of Criticality as a Measurement Mechanism and Stable Fermionic Outcomes

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Autor principal: Petrovski, Jovica
Formato: Recurso digital
Lenguaje:inglés
Publicado: Zenodo 2026
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author Petrovski, Jovica
author_facet Petrovski, Jovica
contents <p>This paper develops a <strong>Causal Memory Gravity</strong> (CMG) model in which quantum measurement and the formation of stable fermionic states are treated as two sides of the same local physical transition. Instead of adding wavefunction collapse as an external rule, the paper models it as a dynamical loss of criticality: when local memory load crosses a threshold, a coherent near-critical mode decays into a dissipative attractor.</p> <p>The work also shows that stable three-body fermionic composites are not generically produced by the minimal local model, but can arise once a small cooperative memory term is included. That term is derived from a minimal <span><span>K4K_4</span><span><span><span><span>K</span><span><span><span><span><span><span>4</span></span></span><span></span></span></span></span></span></span></span></span> motif of the underlying <strong>Dynamic Planck Network</strong> and is then tested on a real exported DPN graph, where all proton-like motifs in the sample satisfy the required positivity condition. As a further application, the paper derives a symbolic expression for the neutron-proton mass splitting. The electromagnetic sector is only partially closed at this stage: the current export is defect-free, while the dynamical mechanism for a nonzero magnetic renormalization remains future work.</p>
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publishDate 2026
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spellingShingle Causal Memory Gravity XII: Local Loss of Criticality as a Measurement Mechanism and Stable Fermionic Outcomes
Petrovski, Jovica
Causal Memory Gravity
Dynamic Planck Network
local loss of criticality
nonlocal gravity
wavefunction collapse
<p>This paper develops a <strong>Causal Memory Gravity</strong> (CMG) model in which quantum measurement and the formation of stable fermionic states are treated as two sides of the same local physical transition. Instead of adding wavefunction collapse as an external rule, the paper models it as a dynamical loss of criticality: when local memory load crosses a threshold, a coherent near-critical mode decays into a dissipative attractor.</p> <p>The work also shows that stable three-body fermionic composites are not generically produced by the minimal local model, but can arise once a small cooperative memory term is included. That term is derived from a minimal <span><span>K4K_4</span><span><span><span><span>K</span><span><span><span><span><span><span>4</span></span></span><span></span></span></span></span></span></span></span></span> motif of the underlying <strong>Dynamic Planck Network</strong> and is then tested on a real exported DPN graph, where all proton-like motifs in the sample satisfy the required positivity condition. As a further application, the paper derives a symbolic expression for the neutron-proton mass splitting. The electromagnetic sector is only partially closed at this stage: the current export is defect-free, while the dynamical mechanism for a nonzero magnetic renormalization remains future work.</p>
title Causal Memory Gravity XII: Local Loss of Criticality as a Measurement Mechanism and Stable Fermionic Outcomes
topic Causal Memory Gravity
Dynamic Planck Network
local loss of criticality
nonlocal gravity
wavefunction collapse
url https://doi.org/10.5281/zenodo.19368390