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March 18, 20260 citationsOpen Access

Gravity at the Information Limit: The Relativistic Information-State Manifold

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KKKaloyan Kaloyanov

Key Points

  • This research aims to establish a new theoretical framework, the Relativistic Information-State Manifold, to address issues in general relativity and galactic kinematics.
  • Developed foundational conceptual architecture and mapping for the RISM framework.
  • Utilized mathematical derivations framed as heuristic postulates for initial formulation.
  • Conducted qualitative assessments through the lens of Modified Newtonian Dynamics and effective theories.
  • Examined correlations between thermodynamic principles and causal horizons to derive key equations.
  • Derived a fundamental acceleration threshold, a0, from thermodynamic principles.
  • Showed that the MOND interpolation function emerges naturally as a Wiener filter response under certain conditions.
  • Established a connection between vacuum dynamics and standard cosmological models, preserving key physical properties during various epochs.

Abstract

Author’s Note: This preprint presents the foundational conceptual architecture and phenomeno-logical mapping of the RISM framework. While the scalar-tensor embedding is mathematically covari-ant, specific geometric derivations are currently framed as heuristic postulates. Rigorous bottom-upderivations and numerical integration of the screening hand-offs are under active development forsubsequent versions.The persistent success of Modified Newtonian Dynamics (MOND) in parametrizing galactic kine-matics suggests a fundamental acceleration threshold, a0, below which standard General Relativitybreaks down. However, theoretical formalizations of this threshold have historically relied on phe-nomenological curve-fitting, and classical scalar-field extensions typically violate multi-messengerspeed constraints (cgw = c). In this paper, we present the Relativistic Information-State Manifold(RISM) framework, which postulates that 4D continuous spacetime acts as an emergent EffectiveField Theory resulting from the coarse-graining of discrete quantum microstates along a 5D entropicresolution axis. By equating the local Unruh temperature of an accelerating frame with the globalGibbons-Hawking temperature of the apparent Hubble horizon, we derive a0 = cH0/2π strictly fromthe thermodynamic periodicity of causal horizons. Treating the vacuum as a constrained Gaussianthermal bath, we demonstrate that the MOND interpolation function naturally emerges as the ex-act Wiener filter response (Free Energy minimization) to competing geometric and cosmic entropygradients. By mapping this informational vacuum strictly onto the shift-symmetric L2 K-essenceand L3 Cubic Galileon sectors of Horndeski gravity, we construct a uniquely integrable ArcsinhK-essence action. This framework cleanly recovers the foundational AQUAL field equations. Whilepure conformal coupling serves as a viable matter-sector approximation, extending the frameworkvia DHOST disformal couplings correctly preserves null geodesics for gravitational lensing. Further-more, by invoking thermodynamic trace-decoupling (T = 0) and shift-symmetric Hubble friction,the framework natively protects standard ΛCDM expansion during the radiation-dominated era,dynamically awakening only at matter-radiation equality to assist in generating the CMB acousticpeaks and late-universe galactic halos.

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Cite This Study

Kaloyan Kaloyanov (2026) studied this question.

synapsesocial.com/papers/69ba43b64e9516ffd37a5453https://doi.org/10.5281/zenodo.19057001
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