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May 31, 20260 citationsOpen Access

A SRE-Dynamics Inspired Topological Paradigm for Composite Elementary Particles and Relational Space Emergence

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YLYue Lu

Key Points

  • The study aims to understand the emergent geometry of composite elementary particles using a topological framework based on Status-Relational Entropy Dynamics.
  • Framework centered on Status-Relational Entropy Dynamics for particle topology and geometry.
  • Evaluation of a localized cross-spectral Hermitian operator mapping coupled internal loops.
  • Analysis of the transition of spectral ensembles from Wigner Surmise to Poisson process.
  • As cross-coherence approaches unity, spectral ensembles transition significantly, indicating emergent phenomena.
  • Emergent manifestation occurs at the macro-layer, collapsing relational distance to zero.
  • Logical pressure gradient correlates with strong interaction force, dictated by a cumulative loop depth jump.

Abstract

This paper presents a rigorous qualitative probabilistic formulation for the topological logic configuration and emergent geometry of composite elementary particles within the framework of Status-Relational Entropy (SRE) Dynamics. Stripping away all absolute spatiotemporal and energy priors, this non-background independent paradigm defines elementary particles as discrete, irreducible Internal Causal Loops driven by the Minimum Observational Step (lₘin). By evaluating a 2x2 localized cross-spectral Hermitian operator mapping two coupled internal loops, we demonstrate that as the cross-coherence coefficient rho approaches unity, the generalized spectral ensemble spontaneously transitions from the Wigner Surmise to a continuous Poisson process. Under full-rank expansion, this spectral collapse triggers a three-in-one emergent manifestation at the macro-layer: the collapse of relational distance to zero via mutual information maximization, the generation of a logical pressure gradient (rendered as the strong interaction force) at the numerical truncation boundary epsilon = 10^-7, and a combinatorial explosion of Secondary Causal Feedback Paths. This step-wise jump in cumulative loop depth non-fittingly dictates the structural delta of particle rest masses, achieving a mathematically honest unification of composite particle physics and relational metric space.

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Cite This Study

Yue Lu (2026) studied this question.

synapsesocial.com/papers/6a1bd0df5783ba022b6fc92fhttps://doi.org/10.5281/zenodo.20438293
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