The Archetype: Holographic Information Processing and the Emergence of Dark Matter

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Autore principale: Lee, Charles Mark
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Pubblicazione: Zenodo 2026
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author Lee, Charles Mark
author_facet Lee, Charles Mark
contents <p>We present a first-principles theoretical framework demonstrating that the phenomenology of dark matter emerges from the fundamental information-processing limits of the Vacuum Matrix Substrate (VMS)—a discrete, holographic quantum computational medium underlying spacetime.</p> <p>Rather than invoking particulate dark matter (WIMPs) or phenomenological modifications to inertia (MOND), this framework derives galactic dynamics directly from the geometric overhead required to project 2D holographic boundary information into 3D bulk space. By quantifying structural complexity via the Fisher Information Metric and anchoring the substrate's processing limit to the asymptotic de Sitter horizon (H_\infty), "The Archetype" framework successfully yields:</p> <p>The Dark Matter Ratio: A geometric derivation of the cosmic dark-to-baryonic matter ratio (\Omega_c / \Omega_b \approx 5.3) derived from a 2\pi - 1 projection factor.</p> <p>The Tully-Fisher Relation: A zero-free-parameter derivation of the Baryonic Tully-Fisher Relation (M_b \propto v_{\text{max}}^4).</p> <p>Freeman's Law: A fundamental derivation of Freeman's surface brightness limit (\Sigma \approx 100 \, M_\odot/\text{pc}^2).</p> <p>Furthermore, the framework generates strict falsifiability tests, most notably predicting an L/c "algorithmic lag" that manifests as asymmetric dark matter wakes trailing high-velocity cluster mergers (e.g., the Bullet Cluster), as well as environmental algorithmic compression variance in Low Surface Brightness (LSB) galaxies.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18818689
institution Zenodo
language
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle The Archetype: Holographic Information Processing and the Emergence of Dark Matter
Lee, Charles Mark
Quantum Gravity, Dark Matter, Holographic Principle, Emergent Gravity, Tully-Fisher Relation, Fisher Information, Cosmology, Astrophysics, Addponent Operator
Quantum Gravity
Dark Matter
Holographic principle
Emergent gravity
Tully-Fisher relation
Fisher information
Cosmology
Astrophysics
Addponent Operator
<p>We present a first-principles theoretical framework demonstrating that the phenomenology of dark matter emerges from the fundamental information-processing limits of the Vacuum Matrix Substrate (VMS)—a discrete, holographic quantum computational medium underlying spacetime.</p> <p>Rather than invoking particulate dark matter (WIMPs) or phenomenological modifications to inertia (MOND), this framework derives galactic dynamics directly from the geometric overhead required to project 2D holographic boundary information into 3D bulk space. By quantifying structural complexity via the Fisher Information Metric and anchoring the substrate's processing limit to the asymptotic de Sitter horizon (H_\infty), "The Archetype" framework successfully yields:</p> <p>The Dark Matter Ratio: A geometric derivation of the cosmic dark-to-baryonic matter ratio (\Omega_c / \Omega_b \approx 5.3) derived from a 2\pi - 1 projection factor.</p> <p>The Tully-Fisher Relation: A zero-free-parameter derivation of the Baryonic Tully-Fisher Relation (M_b \propto v_{\text{max}}^4).</p> <p>Freeman's Law: A fundamental derivation of Freeman's surface brightness limit (\Sigma \approx 100 \, M_\odot/\text{pc}^2).</p> <p>Furthermore, the framework generates strict falsifiability tests, most notably predicting an L/c "algorithmic lag" that manifests as asymmetric dark matter wakes trailing high-velocity cluster mergers (e.g., the Bullet Cluster), as well as environmental algorithmic compression variance in Low Surface Brightness (LSB) galaxies.</p>
title The Archetype: Holographic Information Processing and the Emergence of Dark Matter
topic Quantum Gravity, Dark Matter, Holographic Principle, Emergent Gravity, Tully-Fisher Relation, Fisher Information, Cosmology, Astrophysics, Addponent Operator
Quantum Gravity
Dark Matter
Holographic principle
Emergent gravity
Tully-Fisher relation
Fisher information
Cosmology
Astrophysics
Addponent Operator
url https://doi.org/10.5281/zenodo.18818689