Climate & Environmentpreprint2026-08-03

CosmosBeating • Cosmic Geometry and Topology — Paper I: The Primordial Tone

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Abstract

Holographic Information Ontological Framework • CosmosBeating • Cosmic Geometry and Topology (HIOF•CGnT) A Ten-Paper Series on Distinction as the Ontological Foundation of Physics This series presents the Holographic Information Ontological Framework (HIOF), developed together with its narrative companion CosmosBeating: Cosmic Geometry and Topology (CGnT). The framework takes “distinction” — the primordial act of differentiation — as the sole ontological primitive of physics. Spacetime, matter, forces and observers are treated not as pre-existing entities, but as geometric consequences of successive distinction operations performed on an undifferentiated informational substrate (the Latent Sea). The ten papers develop the framework as follows: Introduction — Motivates a new ontological starting point by examining five foundational difficulties: dark matter, the quantum–gravity divide, the cosmological-constant problem, black-hole singularities and the information paradox, and the measurement problem. Geometric and Topological Foundations — Introduces the Primordial Distinction Operator D(A), the Pattern-Field Equation, topological winding number W, internal charge q, four-state classification, saturation potential, and the information-injection conservation law. Four-State Classification and Soliton Dynamics — Derives the Manifestation Selection Inequality that decides whether a configuration condenses into a localised soliton or remains an unmanifested informational field. Decoupling of Electromagnetism and Gravity — Proves that the commutator [W, Q] = 0 allows gravitational effects (informational weight) and electromagnetic interactions to coexist independently, explaining why Case A fields carry weight yet remain electromagnetically inert. Informational Weight and Galaxy Rotation Curves — Shows that Case A fields under thin-disc geometry produce a Mestel profile and strictly flat rotation curves. A coupling theorem recovers the observed Baryonic Tully–Fisher relation (v_infinity)^4 proportional to M_baryon. Spacetime Emergence and Cosmic Expansion — Interprets spatial-volume growth as the geometric consequence of continuous information injection, reinterpreting Hubble expansion as newly created space. Reconstruction of the Cosmological Constant — Resolves the 10^120 vacuum catastrophe by expressing Lambda_info as the sum of a dynamical injection floor and a static Case A ground-state weight, both finite and dimensionally consistent. Black Holes, Singularities and Information — Demonstrates that the saturation potential forbids infinite-density singularities; black-hole interiors are finite-density Case A condensates, preserving unitarity during evaporation. Quantum Entanglement, Measurement and Classicality — Interprets non-locality as shared Case A connectivity, and measurement as a two-stage geometric process (Case C displacement + Case D thermalisation). Outlook and Open Problems — Summarises the logical chain, lists remaining quantitative questions (critical-mass calibration, cosmological value of I_0, microscopic statistical field theory, particle-spectrum matching, heterogeneity-induced mode coupling), and identifies testable predictions, including celestial-body structural heterogeneity modulating gravitational-wave responses. The same distinction operation, under different topological and geometric conditions, accounts for particles, electromagnetism, gravity, cosmic expansion, vacuum energy, black-hole interiors and quantum measurement. Open quantitative issues are explicitly marked rather than closed by ad-hoc assumptions. Keywords HIOF, CosmosBeating, CGnT, distinction operator, informational weight, Case A field, four-state classification, manifestation selection inequality, Baryonic Tully-Fisher relation, spacetime emergence, cosmological constant, black-hole singularity, quantum measurement, gravitational-wave response, celestial heterogeneity AuthorWai-Hung Tam (Pan)Independent ResearcherORCID: 0009-0002-7789-8464Email: panxtam@protonmail.com

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-03

Authors: Wai-Hung (Pan) Tam