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Autore principale: Stieve, Jonathan
Natura: Recurso digital
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Pubblicazione: Zenodo 2025
Accesso online:https://doi.org/10.5281/zenodo.17485425
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author Stieve, Jonathan
author_facet Stieve, Jonathan
contents <p>This paper introduces a unified harmonic framework for synchronizing quantum and classical states within coupled oscillator systems, enabling stable cross-domain signal coherence without decoherence breakdown or energy loss drift. By modeling both regimes as harmonic phase states on a shared topological manifold, we demonstrate that quantum behaviors such as tunneling and entanglement can be reliably interfaced with classical mechanical or electronic oscillators. This approach enables real-world industrial applications including precision timing systems, ultra-efficient power regulation, quantum-augmented sensors, and scalable quantum network nodes. The framework eliminates the traditional divide between quantum and classical control systems and provides a reproducible, engineering-ready model for deployment in manufacturing, aerospace, communication, and energy sectors.</p> <p> </p>
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spellingShingle Quantum-Classical Synchronization in Coupled Oscillator Systems: A Unified Harmonic Framework for Industrial Applications
Stieve, Jonathan
<p>This paper introduces a unified harmonic framework for synchronizing quantum and classical states within coupled oscillator systems, enabling stable cross-domain signal coherence without decoherence breakdown or energy loss drift. By modeling both regimes as harmonic phase states on a shared topological manifold, we demonstrate that quantum behaviors such as tunneling and entanglement can be reliably interfaced with classical mechanical or electronic oscillators. This approach enables real-world industrial applications including precision timing systems, ultra-efficient power regulation, quantum-augmented sensors, and scalable quantum network nodes. The framework eliminates the traditional divide between quantum and classical control systems and provides a reproducible, engineering-ready model for deployment in manufacturing, aerospace, communication, and energy sectors.</p> <p> </p>
title Quantum-Classical Synchronization in Coupled Oscillator Systems: A Unified Harmonic Framework for Industrial Applications
url https://doi.org/10.5281/zenodo.17485425