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| Format: | Recurso digital |
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Zenodo
2025
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| Online Access: | https://doi.org/10.5281/zenodo.17929855 |
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Table of Contents:
- <p>The quantum measurement problem is commonly framed as a tension between universal unitary evolution and the empirical appearance of single outcomes. Classic thought experiments such as Schrödinger’s Cat and Wigner’s Friend sharpen this tension by invoking macroscopic superpositions and nested observers.</p> <p>In this work, we present a single-world, no-collapse resolution within the Helix–Light–Vortex (HLV) framework by treating measurement as a geometric-resonance transition in structured open quantum dynamics, rather than as a fundamental modification of quantum mechanics. Measurement is embedded explicitly in standard Lindblad open-system theory, augmented by a controlled triadic spiral-time modulation</p> <p>�,</p> <p>which admits a strict recovery limit to conventional decoherence when the additional structure is removed.</p> <p>Within this setting, macroscopic “cat” superpositions are shown to correspond to transient, dynamically unstable resonance configurations in reduced states. These coherences decay locally under environment coupling, yielding stable pointer records without invoking physical collapse or many-worlds branching. The Wigner’s Friend scenario is resolved by a clear separation between internal and external reduced dynamics: local outcome fixation occurs inside the laboratory, while the global state remains unitary and consistent until interaction.</p> <p>We identify recovery limits required for compatibility with established measurement theory and outline falsifiable signatures, including controlled modulation of coherence decay and small spectral shifts in effective Liouvillian generators under engineered driving. The framework is conservative, operational, and experimentally anchored: collapse is not postulated but replaced by explicit, testable open-system dynamics with geometric structure.</p>