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March 13, 20260 citationsOpen Access

A Geometric Resolution of the Hubble Tension via G2-Metric Scaling and the 3/14 Coupling Constant

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EPEnrico Pellegrino

Key Points

  • The aim is to address the discrepancy in Hubble constant measurements using geometric scaling methods.
  • Proposes scale-invariant metric theory (G-Theorem)
  • Defines a topological coupling constant (kappa = 3/14)
  • Establishes transformation between global and local metrics
  • Analyzes early-universe and local measurement discrepancies
  • Identifies Hubble tension as a geometric projection effect
  • Predicts local Hubble constant (H0) of approximately 74.21 km/s/Mpc
  • Demonstrates strong agreement with local observations and Planck's value

Abstract

The 5-sigma discrepancy between early-universe (Planck CMB) and local (SH0ES) measurements of the Hubble constant (H0) represents a critical challenge to the Lambda-CDM model. This paper proposes a scale-invariant metric theory, the G-Theorem, which identifies the Hubble tension as a geometric projection effect. By defining a topological coupling constant kappa = 3/14, derived from the dimensional ratio of the Lie algebras su (2) and g2 (the automorphism group of the octonions), we establish a transformation between the global background flow and the local matter-influenced metric. We show that the local Hubble constant follows the relation Hₗocal = Hglobal * sqrt (1 + kappa). Applying the Planck value of Hglobal approx. 67. 4 km/s/Mpc, the model predicts H0 approx. 74. 21 km/s/Mpc, showing exceptional agreement with current local observations.

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Cite This Study

Enrico Pellegrino (2026) studied this question.

synapsesocial.com/papers/69b3ac9002a1e69014cce5dbhttps://doi.org/10.5281/zenodo.18950960
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