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August 10, 20260 citationsOpen Access

Topological Equivalence of the Prime Gravitational Manifold and the Riemann Zeta Landscape

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TGTimothy Gleason

Key Points

  • This research aims to establish the topological equivalence between the prime gravitational manifold and the Riemann zeta landscape using persistent homology.
  • Analyzed N = 500,000 with M = 800 sample points to compare the two manifolds.
  • Used statistical tests to evaluate H1 and H0 lifetime distributions for equivalence.
  • Conducted a multi-scale analysis to observe convergence in distributions from N = 10,000 to N ≥ 200,000.
  • H1 distributions were statistically indistinguishable (KS p = 0.729) at N = 500,000.
  • Mean lifetimes of H0 distributions matched within 1%.
  • Topological phase transition observed, indicating convergence of various independent manifolds at higher N.

Abstract

We demonstrate that the prime gravitational manifold is topologically equivalent to the landscape of the Riemann zeta function |ζ(1/2 + it)| under persistent homology. At N = 500,000 with M = 800 sample points, the two manifolds produce statistically indistinguishable H1 (loop) lifetime distributions (KS p = 0.729) and closely matching H0 (connected component) lifetime distributions (mean lifetimes within 1%). A multi-scale analysis reveals emergent convergence: the H1 match transitions from clearly distinguishable at N = 10,000 to firmly equivalent at N ≥ 200,000, exhibiting a topological phase transition. Three independent manifolds — encoding prime identity, divisor structure, and the zeta function itself — produce converging persistence lifetime distributions, suggesting a universal topological fingerprint of arithmetic. v2.0: Corrected H0 count discussion (799 = M-1 is an algebraic property of Vietoris-Rips, not a property of the landscape); emphasis shifted to lifetime distributions as the meaningful geometric comparison.

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Cite This Study

Timothy Gleason (2026) studied this question.

synapsesocial.com/papers/6a797d1c9c20a9bbd318441fhttps://doi.org/10.5281/zenodo.21854097
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A Persistence Equivalence for the Riemann Hypothesis (Working Draft)2026
  2. 2Prime Gravity: A Riemannian Manifold Construction on the Integers with Emergent Prime Detection and Zeta Zero Recovery2026
  3. 3Persistence Scaling Bounds on the Prime Gravitational Manifold: Consistency with the Riemann Hypothesis to One Billion Integers2026
  4. 4A Persistence Equivalence for the Riemann Hypothesis2026
  5. 5The Prime Questions2026