A Suppression-Based Resolution to Black Hole Singularities Using the Actualization Function Framework

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Autor principal: Mc Kellar, Emil Arthur
Formato: Recurso digital
Publicado: Zenodo 2025
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author Mc Kellar, Emil Arthur
author_facet Mc Kellar, Emil Arthur
contents <p>This paper introduces a novel reinterpretation of black hole collapse, derived from the Actualization Function (AF) framework. By replacing the classical singularity with a bounded Recursive Compression Domain (RCD), the model resolves infinite curvature, preserves information, and redefines event horizons as suppression gradients rather than discrete boundaries. The theory is quantitatively contrasted with GR and Hawking radiation predictions and provides testable observational differences, including neutrino-structured decay and the absence of thermal tails. Three embedded figures visualize the curvature cap, energy loss behavior, and actualization threshold. This work presents a rigorously structured, falsifiable alternative to the standard black hole model.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_15182241
institution Zenodo
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publishDate 2025
publisher Zenodo
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spellingShingle A Suppression-Based Resolution to Black Hole Singularities Using the Actualization Function Framework
Mc Kellar, Emil Arthur
<p>This paper introduces a novel reinterpretation of black hole collapse, derived from the Actualization Function (AF) framework. By replacing the classical singularity with a bounded Recursive Compression Domain (RCD), the model resolves infinite curvature, preserves information, and redefines event horizons as suppression gradients rather than discrete boundaries. The theory is quantitatively contrasted with GR and Hawking radiation predictions and provides testable observational differences, including neutrino-structured decay and the absence of thermal tails. Three embedded figures visualize the curvature cap, energy loss behavior, and actualization threshold. This work presents a rigorously structured, falsifiable alternative to the standard black hole model.</p>
title A Suppression-Based Resolution to Black Hole Singularities Using the Actualization Function Framework
url https://doi.org/10.5281/zenodo.15182241