Information Protection as a Fundamental Principle VII: Rigorous Emergence of Spacetime, Causality, Quantum Non-Commutativity, Decoherence, Spin-Statistics, and the Nature of Probability

Fuente: Zenodo
Saved in:
Bibliographic Details
Main Author: cao, xin
Format: Recurso digital
Language:English
Published: Zenodo 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866901257701031936
author cao, xin
author_facet cao, xin
contents <p>We derive the deepest foundations of quantum mechanics and spacetime from the information-protection framework. The Lorentzian signature and constant speed of light emerge from the directed graph structure. The canonical commutation relation follows from the consensus delay, while an independent information-bandwidth bound constrains phase-space resolution. The wavefunction is identified as an information description held by an observer subnetwork, the measurement problem is resolved via the modified Schrodinger equation with a non-unitary relaxation term, and macroscopic commutativity emerges in the large-N limit. Bell nonlocality is resolved through the active-edge mechanism: entangled qubits are connected by dedicated graph edges whose consensus completes within a Planck time, providing an explicit realization of ER = EPR. Spin-1/2 emerges as a topological defect, and the spin-statistics theorem follows from braid group representations. The underlying network is deterministic; quantum probability is emergent for finite observers.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19972443
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Information Protection as a Fundamental Principle VII: Rigorous Emergence of Spacetime, Causality, Quantum Non-Commutativity, Decoherence, Spin-Statistics, and the Nature of Probability
cao, xin
emergent spacetime, quantum foundations, Bell nonlocality, uncertainty principle, decoherence, spin-statistics, information protection, ER = EPR
<p>We derive the deepest foundations of quantum mechanics and spacetime from the information-protection framework. The Lorentzian signature and constant speed of light emerge from the directed graph structure. The canonical commutation relation follows from the consensus delay, while an independent information-bandwidth bound constrains phase-space resolution. The wavefunction is identified as an information description held by an observer subnetwork, the measurement problem is resolved via the modified Schrodinger equation with a non-unitary relaxation term, and macroscopic commutativity emerges in the large-N limit. Bell nonlocality is resolved through the active-edge mechanism: entangled qubits are connected by dedicated graph edges whose consensus completes within a Planck time, providing an explicit realization of ER = EPR. Spin-1/2 emerges as a topological defect, and the spin-statistics theorem follows from braid group representations. The underlying network is deterministic; quantum probability is emergent for finite observers.</p>
title Information Protection as a Fundamental Principle VII: Rigorous Emergence of Spacetime, Causality, Quantum Non-Commutativity, Decoherence, Spin-Statistics, and the Nature of Probability
topic emergent spacetime, quantum foundations, Bell nonlocality, uncertainty principle, decoherence, spin-statistics, information protection, ER = EPR
url https://doi.org/10.5281/zenodo.19972443