- String Theory: Compactified fractal geometries mirror Calabi-Yau manifolds, with spiral harmonics analogous to winding modes. Â
3. Black Hole Thermodynamics: Eigenmode coherence may resolve the information paradox by embedding entropy in geometric boundary terms. Â
Resolving TensionsÂ
- Multiverse Avoidance: Geometric constraints yield a unique universe, unlike inflation's eternal expansion into a probabilistic multiverse. Â
- Empirical Tests: Predictions like 35 Hz gravitational wave bands and CMB spiral-phase correlations provide falsifiable benchmarks absent in CDM. Â
Critiques and ResponsesÂ
- Geometric Fine-Tuning?: While topology choices (e.g., dodecahedral vs. toroidal) affect predictions, these are testable via CMB anomalies (e.g., missing large-scale correlations). Â
- Quantum Foundations: Future work must derive RSH's boundary conditions from first principles (e.g., quantum graphity or tensor networks). Â
Synthesis Â
RSH reframes cosmology as a geometric-harmonic system, where spacetime's eigenmodes replace inflationary randomness. By anchoring structure formation in boundary topology and fractal symmetry, it resolves fine-tuning while bridging quantum gravity and observational cosmology. JWST's high-z galaxies and DESI's fractal voids already favor this paradigm, urging further tests via next-generation CMB and gravitational wave surveys. Â
Key References: Â