This randomized trial demonstrates a mechanical solution to wave-particle duality via thermodynamic principles, suggesting practical implications for quantum measurement techniques.
This paper proposes a deterministic, mechanical solution to the wave-particle duality paradox by establishing a direct link between mass-energy-information equivalence and the quantum-classical transition. We argue that wave-function collapse is not triggered by an abstract, non-physical “conscious observer,” nor does it require multi-dimensional geometric scaffolding. Instead, the transition from a non-local probabilistic wave state to a localized classical coordinate is a quantitative mass-aggregation problem. Utilizing Landauer’s Principle and the Mass-Energy-Information Equivalence Principle, we demonstrate that macroscopic measurement apparatuses inevitably flood a near-massless quantum system with megabyte-to-gigabyte payloads of physical informational mass. This data influx acts as a mechanical anvil, tipping the scale past a specific decoherence threshold and forcing a localized physical state. Finally, we assert that wave collapse is merely a limitation of current technology rather than an immutable law of nature—a conclusion already being validated by contemporary Quantum Nondemolition (QND) and Weak Measurement techniques.
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Vladimir Goldin (2026) studied this question.
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