THFR-1.6: THE PRINCIPLE OF ONTOLOGICAL CLOSURE AND NETWORK CONSENSUS IN THE THEORY OF HARMONIC FIELD RESONANCE

This paper formalizes the principle of ontological closure of theoretical models within the framework of the Theory of Harmonic Field Resonance (THFR). We address the systemic limitations regarding the role of the observer in the foundational equations of modern physics. We postulate the non-orthogonality of the processes of measurement and existence, wherein the Observer (the biomorphic reduction operator, QCRS) and the fixed matter emerge as conjugate solutions to the tick-by-tick actualization equation of the Informational Quantum Field (IQF). Based on the introduction of the Generalized Tensor of Inter-Interface Coherence Γglobal µν , we substantiate the emergent nature of macroscopic 3D+1 reality not via anthropic alignment, but as a shared stationary fixed point resulting from the universal minimization of a global mismatch functional across distinct reduction interfaces. ***IMPORTANT OPERATIONAL NOTICE: The formal operational status, notation boundaries, and ontological interpretation of the formalisms deployed in this exploratory work are strictly governed and stabilized by the definitive axiomatic framework established in the unifying meta-document THFR-1.11. For critical peer review, methodological alignment, and strict priority of interpretation, see: Semenov, V. (2026). THFR-1.11: Canonical Notes and Ontological Unification of the First Series. Zenodo. https://doi.org/10.5281/zenodo.21063508***

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-14
DOI
https://doi.org/10.5281/zenodo.22746778
Primary Topic
Quantum Mechanics and Applications
Type
preprint
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preprint

THFR-1.6: THE PRINCIPLE OF ONTOLOGICAL CLOSURE AND NETWORK CONSENSUS IN THE THEORY OF HARMONIC FIELD RESONANCE

Vadym Semenov
Zenodo (CERN European Organization for Nuclear Research)
Quantum Mechanics and Applications
preprint

THFR-1.6: THE PRINCIPLE OF ONTOLOGICAL CLOSURE AND NETWORK CONSENSUS IN THE THEORY OF HARMONIC FIELD RESONANCE

Vadym Semenov
preprint en

Abstract

This paper formalizes the principle of ontological closure of theoretical models within the framework of the Theory of Harmonic Field Resonance (THFR). We address the systemic limitations regarding the role of the observer in the foundational equations of modern physics. We postulate the non-orthogonality of the processes of measurement and existence, wherein the Observer (the biomorphic reduction operator, QCRS) and the fixed matter emerge as conjugate solutions to the tick-by-tick actualization equation of the Informational Quantum Field (IQF). Based on the introduction of the Generalized Tensor of Inter-Interface Coherence Γglobal µν , we substantiate the emergent nature of macroscopic 3D+1 reality not via anthropic alignment, but as a shared stationary fixed point resulting from the universal minimization of a global mismatch functional across distinct reduction interfaces. ***IMPORTANT OPERATIONAL NOTICE: The formal operational status, notation boundaries, and ontological interpretation of the formalisms deployed in this exploratory work are strictly governed and stabilized by the definitive axiomatic framework established in the unifying meta-document THFR-1.11. For critical peer review, methodological alignment, and strict priority of interpretation, see: Semenov, V. (2026). THFR-1.11: Canonical Notes and Ontological Unification of the First Series. Zenodo. https://doi.org/10.5281/zenodo.21063508***

Zenodo (CERN European Organization for Nuclear Research)
Quantum Mechanics and Applications
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