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April 4, 20260 citationsOpen Access

Toward a Covariant Extension of Relational Information Dynamics: The Einstein-Langevin Route to Q_μν

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RFRicardo Fernández

Key Points

  • The aim is to derive and understand the acceleration threshold in de Sitter space and its implications for gravity models.
  • Derived 1/n² spectral scaling from the de Sitter noise kernel.
  • Introduced the Planck cancellation mechanism for fluctuations across horizon cells.
  • Compared findings with Verlinde's emergent gravity model.
  • Confirmed that g† ~ cH₀,dS is a structurally unique acceleration deriving from de Sitter geometry.
  • Established that fluctuations from quantum correlations sum incoherently to produce a macroscopic acceleration.
  • Demonstrated convergence among three gravity frameworks supporting the derived acceleration scale.

Abstract

Paper 1 derived the galactic acceleration floor g† = 2cH₀, dS/π² from the synchronisation cost of quantum correlations across the de Sitter cosmological horizon. The central claim is that the de Sitter horizon is not merely a boundary condition but an active participant in local physics through the entanglement structure of the vacuum. The scale g† ~ cH₀, dS is structurally inevitable from de Sitter geometry — it is the only acceleration constructible from c and H₀, dS alone. What Paper 1 contributes beyond dimensional analysis is the exact coefficient 2/π², derived from the mode structure of the horizon. The present paper provides three things. First, a derivation of the 1/n² spectral scaling from the published de Sitter noise kernel, replacing the heuristic with a result grounded in stochastic semiclassical gravity. Second, a physical mechanism — the Planck cancellation — showing that Planck-suppressed per-cell fluctuations sum incoherently over the Nbits = (lH/lP) ² horizon cells to produce a macroscopic acceleration threshold g† = cH₀, dS × (2/π²), with ℏ and G cancelling exactly. Third, a comparison with Verlinde emergent gravity showing that three independent frameworks all converge on g† ~ cH₀, dS, confirming that this scale is structurally forced by de Sitter geometry. The remaining open problem — deriving the exact coefficient from the Pérez-Nadal noise kernel bitensor — is resolved in Paper 3 via the KMS condition and canonical normalisation of de Sitter mode functions.

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Cite This Study

Ricardo Fernández (2026) studied this question.

synapsesocial.com/papers/69d0afc7659487ece0fa5d6ahttps://doi.org/10.5281/zenodo.19388905
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Also Consider

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

  1. 1Relational Information Dynamics: A Parameter-Free Derivation of the Galactic Acceleration Floor from de Sitter Modular Theory2026
  2. 2Relational Information Dynamics: A Parameter-Free Derivation of the Galactic Acceleration Floor from de Sitter Modular Theory2026
  3. 3The KMS Foundation of Relational Information Dynamics: Why the Bunch-Davies Vacuum Implies g† = 2cH0,dS/π22026
  4. 4The MOND Acceleration Scale from Rindler-de Sitter Thermodynamics2026
  5. 5Quantum Horizon Gravity I: Deriving the MOND Acceleration Scale from De Sitter Geometry2026