Zero-Sum Ontological Model (Module II): The Rendering — Fractal Symmetry, Interface Mechanics, and Multiscale Scaling

This work formalizes the empirical rendering mechanics of the Zero-Sum Ontological Model, demonstrating that the projection of phenomenal multiplicity does not constitute an independent ontological entity, but rather the fractal expression of computational latency ($\\Delta t_{\\text{latency}}$) and residue contrast over the fundamental identity $0=\\Sigma\\infty$. Interface metrics are formalized via algorithmic friction $\\mathcal{F}(x)$ and the gravitational gradient $\\mathbf{G}_{V}(x)\\equiv-\\nabla\\mathcal{F}(x)$, establishing the scale invariance of the buffer operator ($\\hat{B}$) across micro, meso, and macro domains. Natural kingdoms are demystified by recategorizing them under discrete causal graph theory $\\mathcal{G}=(\\mathcal{V},\\mathcal{E})$ and subjective experience (qualia) is derived as a monitoring subroutine or graphical user interface (GUI). Finally, through Algorithmic Information Theory and the Minimum Description Length (MDL) Principle, it is proved that the zero-net-charge architecture ($Q_{\\text{net}}=0$) is the sole minimal algorithmic complexity hypothesis $K(\\text{Universe}_{Q=0})=K(\\text{Laws})$, offering a quantifiable and non-tautological Popperian falsification criterion.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-15
DOI
https://doi.org/10.5281/zenodo.22759307
Primary Topic
Statistical Mechanics and Entropy
Type
preprint
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preprint

Zero-Sum Ontological Model (Module II): The Rendering — Fractal Symmetry, Interface Mechanics, and Multiscale Scaling

Serapio Sereno
Zenodo (CERN European Organization for Nuclear Research)
Statistical Mechanics and Entropy
preprint

Zero-Sum Ontological Model (Module II): The Rendering — Fractal Symmetry, Interface Mechanics, and Multiscale Scaling

Serapio Sereno
preprint en

Abstract

This work formalizes the empirical rendering mechanics of the Zero-Sum Ontological Model, demonstrating that the projection of phenomenal multiplicity does not constitute an independent ontological entity, but rather the fractal expression of computational latency ($\Delta t_{\text{latency}}$) and residue contrast over the fundamental identity $0=\Sigma\infty$. Interface metrics are formalized via algorithmic friction $\mathcal{F}(x)$ and the gravitational gradient $\mathbf{G}_{V}(x)\equiv-\nabla\mathcal{F}(x)$, establishing the scale invariance of the buffer operator ($\hat{B}$) across micro, meso, and macro domains. Natural kingdoms are demystified by recategorizing them under discrete causal graph theory $\mathcal{G}=(\mathcal{V},\mathcal{E})$ and subjective experience (qualia) is derived as a monitoring subroutine or graphical user interface (GUI). Finally, through Algorithmic Information Theory and the Minimum Description Length (MDL) Principle, it is proved that the zero-net-charge architecture ($Q_{\text{net}}=0$) is the sole minimal algorithmic complexity hypothesis $K(\text{Universe}_{Q=0})=K(\text{Laws})$, offering a quantifiable and non-tautological Popperian falsification criterion.

Zenodo (CERN European Organization for Nuclear Research)
Peace, Justice and strong institutions
Statistical Mechanics and Entropy
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Zero-Sum Ontological Model (Module II): The Rendering — Fractal Symmetry, Interface Mechanics, and Multiscale Scaling — Serapio Sereno · Zenodo (CERN European Organization for Nuclear Research) (2026) | TGRS Research Map | TGRS