Dimensional Asymmetry as a Structural Driver of Emergent Non-Classical Correlations

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Auteur principal: Slawson, Drew
Format: Recurso digital
Langue:anglais
Publié: Zenodo 2025
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author Slawson, Drew
author_facet Slawson, Drew
contents <p>We present a numerical investigation of correlation persistence in an emergent lattice-driven system operating across heterogeneous dimensional embeddings. Unlike conventional approaches to non-classical correlation analysis, this study imposes no entanglement operators, synchronization mechanisms, classical communication channels, or prescriptive measurement inequalities. All observed correlations arise solely from emergent structural dynamics within a unified computational substrate.</p> <p>We examine freely evolving atomic-scale subsystems embedded in dimensionally asymmetric environments and compare their correlation dynamics against symmetric and unentangled control configurations executed under identical runtime and structural conditions. The asymmetric configurations exhibit sustained, elevated correlation signatures that remain stable over extended evolution and consistently exceed all control baselines.</p> <p>These results demonstrate that dimensional embedding itself can act as a latent structural parameter capable of sustaining non-classical correlation persistence, independent of explicit entanglement enforcement or measurement postulates. The findings motivate a broader reconsideration of dimensional structure as an active contributor to correlation dynamics in emergent computational and physical systems.</p>
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spellingShingle Dimensional Asymmetry as a Structural Driver of Emergent Non-Classical Correlations
Slawson, Drew
Emergent correlation Dimensional asymmetry Lattice-driven dynamics Non-classical correlations Quantum-inspired computation Structural correlation persistence Emergent systems Computational foundations Complex system dynamics Correlation without entanglement Dimensional embedding Quantum foundations (theoretical)
<p>We present a numerical investigation of correlation persistence in an emergent lattice-driven system operating across heterogeneous dimensional embeddings. Unlike conventional approaches to non-classical correlation analysis, this study imposes no entanglement operators, synchronization mechanisms, classical communication channels, or prescriptive measurement inequalities. All observed correlations arise solely from emergent structural dynamics within a unified computational substrate.</p> <p>We examine freely evolving atomic-scale subsystems embedded in dimensionally asymmetric environments and compare their correlation dynamics against symmetric and unentangled control configurations executed under identical runtime and structural conditions. The asymmetric configurations exhibit sustained, elevated correlation signatures that remain stable over extended evolution and consistently exceed all control baselines.</p> <p>These results demonstrate that dimensional embedding itself can act as a latent structural parameter capable of sustaining non-classical correlation persistence, independent of explicit entanglement enforcement or measurement postulates. The findings motivate a broader reconsideration of dimensional structure as an active contributor to correlation dynamics in emergent computational and physical systems.</p>
title Dimensional Asymmetry as a Structural Driver of Emergent Non-Classical Correlations
topic Emergent correlation Dimensional asymmetry Lattice-driven dynamics Non-classical correlations Quantum-inspired computation Structural correlation persistence Emergent systems Computational foundations Complex system dynamics Correlation without entanglement Dimensional embedding Quantum foundations (theoretical)
url https://doi.org/10.5281/zenodo.18072348