Calibration of the Tensor Model of Discrete Dynamics: From Mathematical Constants to Quantitative Predictions of Physical Anomalies

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Main Author: Mazein, Sergey Aleksandrovich
Format: Recurso digital
Language:English
Published: Zenodo 2025
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author Mazein, Sergey Aleksandrovich
author_facet Mazein, Sergey Aleksandrovich
contents <p>A strategy for calibrating the Tensor Model of Discrete Dynamics (TMDD) is presented, which does not rely on external physical constants. Instead, the model's parameters are determined from conditions of stability and optimality, enabling its calibration based on universal mathematical constants (π, e, φ, δF ). It is shown that such self-calibration ensures quantitative agreement with observations. TMDD reproduces the precise predictions of the Standard Model for the anomalous magnetic moment of the electron and the Lamb shift. Moreover, the model successfully explains a number of key anomalies, including the H0 tension, the ((g − 2)µ anomaly, the W-boson mass discrepancy, and the lithium-7 deficit, with a high degree of accuracy. A new observable is predicted—weak oscillations in galactic rotation curves, driven by the dynamics of the θ-network. The results demonstrate that TMDD represents an ontologically closed and empirically interpretable theory, capable of serving as a foundation for fundamental physics.</p>
format Recurso digital
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institution Zenodo
language eng
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Calibration of the Tensor Model of Discrete Dynamics: From Mathematical Constants to Quantitative Predictions of Physical Anomalies
Mazein, Sergey Aleksandrovich
Tensor Model of Discrete Dynamics
TMDD
informational tension
Standard Model anomalie
lithium-7 deficit
anomalous magnetic moment of the muon
W-boson mass
large-scale structure of the universe
anisotropy of the universe
dark matter
dark energy
<p>A strategy for calibrating the Tensor Model of Discrete Dynamics (TMDD) is presented, which does not rely on external physical constants. Instead, the model's parameters are determined from conditions of stability and optimality, enabling its calibration based on universal mathematical constants (π, e, φ, δF ). It is shown that such self-calibration ensures quantitative agreement with observations. TMDD reproduces the precise predictions of the Standard Model for the anomalous magnetic moment of the electron and the Lamb shift. Moreover, the model successfully explains a number of key anomalies, including the H0 tension, the ((g − 2)µ anomaly, the W-boson mass discrepancy, and the lithium-7 deficit, with a high degree of accuracy. A new observable is predicted—weak oscillations in galactic rotation curves, driven by the dynamics of the θ-network. The results demonstrate that TMDD represents an ontologically closed and empirically interpretable theory, capable of serving as a foundation for fundamental physics.</p>
title Calibration of the Tensor Model of Discrete Dynamics: From Mathematical Constants to Quantitative Predictions of Physical Anomalies
topic Tensor Model of Discrete Dynamics
TMDD
informational tension
Standard Model anomalie
lithium-7 deficit
anomalous magnetic moment of the muon
W-boson mass
large-scale structure of the universe
anisotropy of the universe
dark matter
dark energy
url https://doi.org/10.5281/zenodo.17020071