
We propose a novel, highly self-consistent phenomenological framework based on a single di-mensionless parameter, the Observer Index i(O) = 1.0911. We demonstrate that i(O) acts as aholographic refractive scaling factor that bridges the idealized geometrical eigenvalues of primordialspacetime—characterized by integer and rational multiples of π—and the values actually measured inexperimental high-energy physics and cosmology. Applying i(O) and its algebraic variants (including1/i(O), pi(O), and i(O) − 1), we provide elegant unified solutions to three major contemporaryphysical crises: the Hubble Tension (resolving the discrepancy with an error of ∼ 0.7%), theProton Radius Puzzle (∼ 0.1% accuracy), and the Neutron Lifetime Puzzle (∼ 0% discrep-ancy). Furthermore, the model naturally derives the cosmic dark matter density ΩDM ≈ 27% andpredicts new supersymmetric co-resonance states for the Higgs boson and top quark. The frameworkis rigorously validated against CERN LHC ATLAS open-access datasets via high-precision 1 GeVselection windows and 0.01 GeV (10 MeV) pixel-level matrix scans, as detailed in our companion PhaseI and Phase II reports.Ω^∞: A Universal Scaling Framework from Biological Metabolism to Particle PhysicsΩ^∞ Phase II: Dimensionless Grid Discretization and the 30𝝿 Universal Metric Singularity
Scale-Invariant Spacetime, Dimensionless Constants, Quantum Lattice Phase Transition, Observer Index 1.0911, Resonant Multiplet, Forward-Backward Asymmetry (A_FB), CERN ATLAS Open Data, Acoustic Harmonic Spectroscopy
Scale-Invariant Spacetime, Dimensionless Constants, Quantum Lattice Phase Transition, Observer Index 1.0911, Resonant Multiplet, Forward-Backward Asymmetry (A_FB), CERN ATLAS Open Data, Acoustic Harmonic Spectroscopy
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