Quantum Mechanics as Maximal Informational Compression

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Main Author: Hansen, Paw
Format: Recurso digital
Published: Zenodo 2026
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_version_ 1866901231155281920
author Hansen, Paw
author_facet Hansen, Paw
contents <p>This work presents an interpretational framework for quantum mechanics in which quantum states are understood as maximally compressed informational descriptions constrained by interaction.</p> <p>Without modifying the mathematical formalism or empirical predictions of quantum mechanics, the framework introduces the concepts of compression, viability fields, and boundary (borderland) descriptions to clarify the emergence of classical outcomes, the role of measurement, and the structure of entanglement.</p> <p>The aim of this work is conceptual rather than dynamical: to provide a coherent structural vocabulary for phenomena already implicit in standard quantum mechanics. The paper is intended as a stable reference for future discussion and exploration rather than as a proposal of new physical dynamics.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18377315
institution Zenodo
language
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Quantum Mechanics as Maximal Informational Compression
Hansen, Paw
quantum mechanics
quantum foundations
interpretation of quantum mechanics
information theory
decoherence
measurement problem
<p>This work presents an interpretational framework for quantum mechanics in which quantum states are understood as maximally compressed informational descriptions constrained by interaction.</p> <p>Without modifying the mathematical formalism or empirical predictions of quantum mechanics, the framework introduces the concepts of compression, viability fields, and boundary (borderland) descriptions to clarify the emergence of classical outcomes, the role of measurement, and the structure of entanglement.</p> <p>The aim of this work is conceptual rather than dynamical: to provide a coherent structural vocabulary for phenomena already implicit in standard quantum mechanics. The paper is intended as a stable reference for future discussion and exploration rather than as a proposal of new physical dynamics.</p>
title Quantum Mechanics as Maximal Informational Compression
topic quantum mechanics
quantum foundations
interpretation of quantum mechanics
information theory
decoherence
measurement problem
url https://doi.org/10.5281/zenodo.18377315