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April 27, 20260 citationsOpen Access

Complete Resolution of the "True Nature of Dark Energy" and the "Hubble Tension" Based on Discrete Topological Geometry: From the Microscopic Information Structure of the Multiplication Table to the Emergence of a "1:4 Hyperelliptical Universe"

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SIShinya Iida

Key Points

  • The research aims to develop a comprehensive cosmological model addressing dark energy and Hubble tension issues.
  • Utilized a novel algorithm based on discrete topological geometry.
  • Built upon arithmetic modulo operations and geometric distortion of geodesics.
  • Extended findings to a macroscopic 4D spacetime metric.
  • Demonstrated that information density reaches a holographic bound, resulting in geometric rigidity.
  • Showed the Hubble constant discrepancies are resolved without additional physical constants.
  • Established the model describes quantum to cosmological dynamics as a geometry of information.

Abstract

This paper proposes a novel cosmological model that completely resolves the greatest outstanding issues in modern cosmology: the "true nature of dark energy" and the "Hubble tension," utilizing a single algorithm based on discrete topological geometry. Building upon the interference of spin phases derived from elementary arithmetic "modulo operations" (the multiplication table) and the "1/2 critical line," we extend the "1:4 packing limit" required by the stability of quantum information to a macroscopic 4D spacetime metric. We demonstrate the mechanism by which, when the information density relative to the volume of the universe reaches the holographic bound (at a redshift of ), spacetime exhibits "geometric rigidity," refusing further information densification. This acts as an effective cosmological constant (repulsive force) and drives accelerated expansion. Furthermore, by calculating the geometric distortion of geodesics in this 1:4 hyperelliptical metric, we show that the observational discrepancy in the Hubble constant between the early universe (CMB) and the local universe (supernovae) is fully integrated without the need for additional physical constants. This study is an attempt to uniformly describe everything from microscopic quantum phases to macroscopic cosmological expansion dynamics as the "geometry of information."

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Cite This Study

Shinya Iida (2026) studied this question.

synapsesocial.com/papers/69eefd64fede9185760d4226https://doi.org/10.5281/zenodo.19756216
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