PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 18, 20260 citationsOpen Access

Deriving General Relativity from a Bilayer Field on S3 - Angular World Architecture - (Gravitational Sector)

View Full Paper
SSSamir Senouci

Key Points

  • The paper aims to derive Einstein's equations using a bilayer field framework on the 3-sphere to address key gravitational paradoxes.
  • Utilized a bilayer field equation on S³ to derive Einstein's equations.
  • Applied the Deser uniqueness theorem to relate bilayer dynamics to gravitational phenomena.
  • Analyzed black holes as dissipative solitons with encoded information.
  • Predicted local H₀ from cosmological measurements using geometric coupling.
  • Showed all three structural gaps in general relativity can be resolved with the bilayer field approach.
  • Predicted local H₀ = 73.01 km/s/Mpc matches closely with cosmological H₀ = 67.40 km/s/Mpc.
  • Identified 56 general-relativistic results, 52 of which are formally derived.
  • Consistent findings regarding gravitational-wave polarizations from SO(4) symmetry align with LIGO/Virgo data.

Abstract

Deriving General Relativity from a Bilayer Field on S³ — Angular World Architecture (Gravitational Sector) General relativity is the most successful theory of gravity ever constructed: light deflection, Mercury's perihelion precession, gravitational waves, and the M87 black-hole image confirm Einstein's equations to extraordinary precision. Yet GR retains three structural gaps that a century of effort has not closed: the inevitability of singularities (Penrose–Hawking theorems), the destruction of quantum information at black-hole horizons (the information paradox), and the 4. 9σ discrepancy between local and cosmological measurements of H₀ (the Hubble tension). This article shows that all three gaps find natural resolution when gravity is treated not as a fundamental force, but as the long-wavelength limit of a nonlinear bilayer field Φ/Φ̄ living on the 3-sphere S³. Einstein's equations G_μν = (8πG/c⁴) T_μν are derived from the master equation via the Deser uniqueness theorem — they are consequences of the bilayer dynamics, not independent postulates. Black holes are reinterpreted as dissipative solitons: they have finite curvature everywhere, information is encoded in bilayer deformation modes, and the Hawking temperature marks the edge of information recovery, not destruction. The Hubble tension is addressed by a geometric coupling αL = Ωb / (Ω_Λ · π · η), with η = √Ξ (1+Ξ), that predicts the local H₀ = 73. 01 km/s/Mpc from the cosmological H₀ = 67. 40 km/s/Mpc with zero free parameters. Gravitational-wave polarizations follow from the SO (4) symmetry of S³ — exactly two tensor modes, scalar and vector modes forbidden — consistent with 90 LIGO/Virgo events. The matter density parameter Ωₘ = 1/π is derived from the Hopf fibration topology (Planck 2018: 0. 315 ± 0. 007; agreement within 0. 5σ). In total, 56 general-relativistic results are presented with explicit derivation status: 52 formally derived (D) and 4 empirically supported at ≤ 2σ (S). This article constitutes the gravitational sector of a broader unification programme. In the companion paper AWA-QM and the AWA-Unification paper, quantum mechanics emerges as the ξG → 0 limit and general relativity as the ξG → 1 limit of a single bilayer field equation on S³, with ξG = 2 (m/mP) ² as the continuous bridge parameter. Five falsifiable predictions are identified, testable by LISA, XRISM, JWST, and next-generation AGN surveys (2025–2035). Limitations — including the absence of numerical galaxy rotation curves — are stated explicitly. Keywords: general relativity, topological solitons, 3-sphere, bilayer cosmology, black-hole information paradox, Hubble tension, gravitational waves, matter–antimatter, dark energy, Hopf fibration, Angular World Architecture, AWA.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Samir Senouci (2026) studied this question.

synapsesocial.com/papers/69e3215140886becb65408dehttps://doi.org/10.5281/zenodo.19341264
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

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

  1. 1Quantum Mechanics and General Relativity: Two Bounded Limits of a Single Field Equation on S32026
  2. 2The Helical-Space Framework: A Four-Dimensional Geometric Theory Without an External Time Coordinate — Axioms, Derivational Boundaries, and Falsifiable Predictions2026
  3. 3The Only Equations Permitted: General Relativity as a Consequence of the Universal Cascade Law2026
  4. 4Tidal Forces, the Equivalence Principle, and the Emergence of the Einstein Field Equations from Worldline Non-Injectivity in de~Sitter Spacetime2026
  5. 5S_q^3 Noncommutative Geometry: A Complete Grand Unified Theory2026