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tep

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Temporal Equivalence Principle: Suppressed Density Scaling in Globular Cluster Pulsars — Globular cluster pulsar spin-down anomaly: 197 cluster vs 346 field pulsars show 0.40 dex residual (8.3σ). Suppressed density scaling (Γ=0.39±0.08 vs Newtonian Γ=0.72, 4.1σ) tests the TEP observable response coefficient κ_MSP.

  • Updated Aug 8, 2026
  • Python

Temporal Equivalence Principle: Native hi_class Conformal Implementation, Linear Perturbation Closure, and CMB Acoustic Peak Preservation — hi_class cosmological constraints on TEP: CMB, supernova, and Jordan-frame consistency tests with native conformal Boltzmann solver implementation.

  • Updated Aug 10, 2026
  • Python

The Cepheid Bias: Resolving the Hubble Tension — Environment-dependent Cepheid clock bias under TEP. Generative clock-aware model across 37 SH0ES hosts yields H0 = 66.65 ± 1.58 km/s/Mpc, consistent with Planck at 0.45σ. M31 and OGLE-IV differential tests confirm the predicted sign.

  • Updated Aug 21, 2026
  • Python

Global Time Echoes: Empirical Synthesis — Empirical synthesis of 25.3 years GNSS timing data (165.2M pairs) revealing distance-structured correlations (λT=4,201±1,967 km) with TEP signatures: EW/NS anisotropy, orbital coupling, CMB alignment, and nutation couplings.

  • Updated Aug 6, 2026
  • HTML
technical-evidence-package

Temporal Equivalence Principle: Temporal Shear Recovery in Gaia DR3 Wide Binaries — Gaia DR3 wide binaries (341,315 systems) show Temporal Shear recovery at R_s=2,646±182 AU (Δχ²=14,845 vs Newtonian), with environmental ordering confirmed (p<10⁻⁴).

  • Updated Aug 18, 2026
  • Python

Cosmological Voids vs Temporal Shear: KBC/MOND void profiles rejected at Δχ² > 100 against Pantheon+ (1,701 SNe, full STAT+SYS covariance). R_H = 1.009 ± 0.006 excludes predicted 5% decline at 8.4σ. Cepheid–TRGB divergence (2.39σ), M31/LMC PL gradients (3.65σ, 3.30σ), and SALT3 attenuation (~70%) trace the TEP temporal-shear signature.

  • Updated Aug 30, 2026
  • Python

Temporal Equivalence Principle: Black Holes and the Temporal Horizon — Develops the strong-field consequence of TEP: a black hole is a temporal well—a regular spatial region where proper time differs radically from the exterior, without central singularity or absolute event horizon. Features 50-step reproducible pipeline and direct EHT constraints.

  • Updated Aug 15, 2026
  • Python

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