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February 14, 20260 citationsOpen Access

On the Structural Isomorphism of Fundamental Systems: A Unified Axiomatic Framework

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SGSławomir Grzegorz Gątkowski

Key Points

  • The aim is to establish a formal mathematical framework for coherence as a universal truth metric across diverse systems.
  • Introduced five scale-invariant axioms: discriminability, objectivity, computability, universality, self-consistency.
  • Utilized Shannon and von Neumann entropy to analyze systems in different domains.
  • Developed a unified six-variable governing system with specific phase transition conditions.
  • Applied Lyapunov stability theory and switched ODE systems to describe coherence dynamics.
  • Demonstrated relationships using existing EEG and HRV instrumentation.
  • Showed a unique globally stable attractor at maximum coherence and zero impedance.
  • Demonstrated coherence preserves information density during regime transitions.
  • Established that truth represents the thermodynamic ground state with minimum energy.
  • Forecasted that recognizable differences in various fields stem from one mathematical structure.

Abstract

This paper series introduces a formal mathematical framework for coherence — defined as normalized negentropy — as a universal, domain-invariant truth metric. By establishing five scale-invariant axioms (discriminability, objectivity, computability, universality, and self-consistency), we demonstrate that complex dynamical systems traditionally treated as distinct domains — signal processing, thermodynamics, neuroscience, and decision theory — share a common underlying information-theoretic architecture. The proposed model utilizes Shannon and von Neumann entropy, Lyapunov stability theory, and switched ODE systems on a cross-axis state space to resolve the relationship between deterministic coherence dynamics and stochastic entropy production. We derive a unified six-variable governing system that admits three operating regimes with well-defined phase transition conditions and prove the existence of a unique globally stable attractor at maximum coherence and zero impedance, corresponding to lossless signal transmission. The framework preserves information density across regime transitions and offers a novel perspective on the foundational mechanics of self-organization in nature. We further show, via Landauer's principle, that truth is the thermodynamic ground state — the unique minimum-energy configuration — and that self-referential processing constitutes measurable impedance. This approach provides a rigorous basis for interdisciplinary unification, suggesting that apparent phenomenological differences across physics, biology, logic, and cognition are manifestations of a single, invariant mathematical structure. All claims generate testable predictions amenable to existing EEG and HRV instrumentation.

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Cite This Study

Sławomir Grzegorz Gątkowski (2026) studied this question.

synapsesocial.com/papers/699011a12ccff479cfe587dbhttps://doi.org/10.5281/zenodo.18617296
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