Chronolattice G: A Unified Framework for Cosmic Inflation and Computability of the Riemann Hypothesis

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Autores principales: zhou, changzheng, ZHOU, ziqing
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Publicado: Zenodo 2025
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author zhou, changzheng
ZHOU, ziqing
author_facet zhou, changzheng
ZHOU, ziqing
contents <p> This paper constructs a dynamical system framework unifying cosmic inflation<br> and Riemann -function zero distribution based on Chronolattice Theory. By in<br>troducing the topological penetration operator ι and quantum lattice measure ˆµt,<br> we achieve quantum penetration of the Big Bang singularity and establish strict<br> duality between the imaginary part of ζ(1/2 + it) on the critical line and the lat<br>tice information entropy gradient ∇tI. Numerical simulations verify zero-point<br> real part shift ∆Re(s) < 10−7 within t ≤ 106. Predictions can be experimentally<br> verified through CMB polarization observations and cold-atom quantum simula<br>tion platforms, providing cross-domain solutions for quantum gravity and number<br> theory problems</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17078191
institution Zenodo
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publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Chronolattice G: A Unified Framework for Cosmic Inflation and Computability of the Riemann Hypothesis
zhou, changzheng
ZHOU, ziqing
Chronolattice theory, Cosmic inflation, Riemann hypothesis, Penetration operator, Lattice measure, Quantum simulation, Information entropy gradient, Duality, Singularity penetration, Dynamical system, CMB polarization
<p> This paper constructs a dynamical system framework unifying cosmic inflation<br> and Riemann -function zero distribution based on Chronolattice Theory. By in<br>troducing the topological penetration operator ι and quantum lattice measure ˆµt,<br> we achieve quantum penetration of the Big Bang singularity and establish strict<br> duality between the imaginary part of ζ(1/2 + it) on the critical line and the lat<br>tice information entropy gradient ∇tI. Numerical simulations verify zero-point<br> real part shift ∆Re(s) < 10−7 within t ≤ 106. Predictions can be experimentally<br> verified through CMB polarization observations and cold-atom quantum simula<br>tion platforms, providing cross-domain solutions for quantum gravity and number<br> theory problems</p>
title Chronolattice G: A Unified Framework for Cosmic Inflation and Computability of the Riemann Hypothesis
topic Chronolattice theory, Cosmic inflation, Riemann hypothesis, Penetration operator, Lattice measure, Quantum simulation, Information entropy gradient, Duality, Singularity penetration, Dynamical system, CMB polarization
url https://doi.org/10.5281/zenodo.17078191