Universe Internal Indistinguishability Theory (NGV-Prime-zeta)

Fuente: Zenodo
Guardado en:
Detalles Bibliográficos
Autores principales: Ma, Haobo, Zhang, Wenlin
Formato: Recurso digital
Publicado: Zenodo 2025
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866902093554515968
author Ma, Haobo
Zhang, Wenlin
author_facet Ma, Haobo
Zhang, Wenlin
contents <div> <div>\textbf{Axiomatizing Randomness as No-God-View Indistinguishability, with Prime-Driven Constructions and $\zeta$-Triadic Geometry}</div> <br> <div>This paper establishes a complete mathematical framework that redefines "randomness" as indistinguishability internal to observers, and implements this principle through prime-driven constructions. We employ full-period linear congruential permutation functions that strictly satisfy Hull-Dobell conditions, achieving completely deterministic block rearrangement, strictly following the No-God-View (NGV) principle: randomness is not an ontological property, but an emergent property relative to finite observational capabilities. Through introducing Riemann $\zeta$ function's triadic information conservation theory, we establish a geometric coordinate system for visible information, where the wave component $i_0$ precisely characterizes the visibility of quantum phase coupling. Core contributions include: (1) Proved that prime-driven deterministic block-permutation construction is $(m,\epsilon)$-indistinguishable from ideal Bernoulli sources at arbitrary fixed observation scale $m$; (2) Provided explicit exponential decay rate of error under Riemann Hypothesis (RH); (3) Established measure-preserving transformation theorem from Bernoulli to quantum statistics; (4) Revealed deep connections between statistical formulas on critical line $s=1/2+it$ and GUE conjecture. This theory unifies fundamental concepts in number theory, information theory, and quantum physics, providing an operational mathematical definition for understanding the essence of "randomness".</div> <div> </div> </div>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17360356
institution Zenodo
language
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Universe Internal Indistinguishability Theory (NGV-Prime-zeta)
Ma, Haobo
Zhang, Wenlin
Riemann Hypothesis
Mathematics
Mathematics/trends
Pure mathematics
Applied mathematics
Mathematics/methods
Mathematics/statistics & numerical data
Mathematical physics
Mathematical model
Mathematical Computing
<div> <div>\textbf{Axiomatizing Randomness as No-God-View Indistinguishability, with Prime-Driven Constructions and $\zeta$-Triadic Geometry}</div> <br> <div>This paper establishes a complete mathematical framework that redefines "randomness" as indistinguishability internal to observers, and implements this principle through prime-driven constructions. We employ full-period linear congruential permutation functions that strictly satisfy Hull-Dobell conditions, achieving completely deterministic block rearrangement, strictly following the No-God-View (NGV) principle: randomness is not an ontological property, but an emergent property relative to finite observational capabilities. Through introducing Riemann $\zeta$ function's triadic information conservation theory, we establish a geometric coordinate system for visible information, where the wave component $i_0$ precisely characterizes the visibility of quantum phase coupling. Core contributions include: (1) Proved that prime-driven deterministic block-permutation construction is $(m,\epsilon)$-indistinguishable from ideal Bernoulli sources at arbitrary fixed observation scale $m$; (2) Provided explicit exponential decay rate of error under Riemann Hypothesis (RH); (3) Established measure-preserving transformation theorem from Bernoulli to quantum statistics; (4) Revealed deep connections between statistical formulas on critical line $s=1/2+it$ and GUE conjecture. This theory unifies fundamental concepts in number theory, information theory, and quantum physics, providing an operational mathematical definition for understanding the essence of "randomness".</div> <div> </div> </div>
title Universe Internal Indistinguishability Theory (NGV-Prime-zeta)
topic Riemann Hypothesis
Mathematics
Mathematics/trends
Pure mathematics
Applied mathematics
Mathematics/methods
Mathematics/statistics & numerical data
Mathematical physics
Mathematical model
Mathematical Computing
url https://doi.org/10.5281/zenodo.17360356