Canonical Mathematical Framework of Biocompatible Realism Version 1.1

Biocompatible Realism is presented as a multiscale systems framework for studying whether differentiated components can remain dynamically connected without being forced into uniformity. It separates viability from sameness, coherence from conformity, and mathematical structure from physical interpretation. Version 1.1 defines a state space, viable set, compatibility functional, divergence from viability, reciprocity discrepancy, shared-event transformations, bridge-adjusted graph distance, higher-order triadic coupling, signed-triangle balance, loop frustration, noncollapse area, complex phase invariant, environmental forcing terms, phase-synchrony measures, and a constrained objective intended to preserve diversity and biological sovereignty. The framework contains established mathematics, definitions built from established mathematics, model-specific derivations, testable hypotheses, and explicitly labelled analogies. It includes exactly 41 numbered equations and introduces the Biocompatible Triadic Principle as a higher-order extension of the pairwise network model. This is a theoretical research specification and research program—not a completed theory of physics. It does not claim a validated biological coupling mechanism, an etheric mechanism, or a universal source frequency. Quantum open-system equations apply only to genuinely quantum carriers; psychological or social applications remain analogical unless a physical carrier and measurement protocol are supplied. Copyright © 2026 Sharla Wilson.

Authors

Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-17
DOI
https://doi.org/10.5281/zenodo.22818246
Primary Topic
Quantum Mechanics and Applications
Type
article
Field-Weighted Citation Impact
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Canonical Mathematical Framework of Biocompatible Realism Version 1.1

Sharla Marie Wilson
Zenodo (CERN European Organization for Nuclear Research)
Quantum Mechanics and Applications
article

Canonical Mathematical Framework of Biocompatible Realism Version 1.1

Sharla Marie Wilson
article en

Abstract

Biocompatible Realism is presented as a multiscale systems framework for studying whether differentiated components can remain dynamically connected without being forced into uniformity. It separates viability from sameness, coherence from conformity, and mathematical structure from physical interpretation. Version 1.1 defines a state space, viable set, compatibility functional, divergence from viability, reciprocity discrepancy, shared-event transformations, bridge-adjusted graph distance, higher-order triadic coupling, signed-triangle balance, loop frustration, noncollapse area, complex phase invariant, environmental forcing terms, phase-synchrony measures, and a constrained objective intended to preserve diversity and biological sovereignty. The framework contains established mathematics, definitions built from established mathematics, model-specific derivations, testable hypotheses, and explicitly labelled analogies. It includes exactly 41 numbered equations and introduces the Biocompatible Triadic Principle as a higher-order extension of the pairwise network model. This is a theoretical research specification and research program—not a completed theory of physics. It does not claim a validated biological coupling mechanism, an etheric mechanism, or a universal source frequency. Quantum open-system equations apply only to genuinely quantum carriers; psychological or social applications remain analogical unless a physical carrier and measurement protocol are supplied. Copyright © 2026 Sharla Wilson.

Zenodo (CERN European Organization for Nuclear Research)
Openalex Percentile: Top 13%
Quantum Mechanics and Applications
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Canonical Mathematical Framework of Biocompatible Realism Version 1.1 — Sharla Marie Wilson · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS