# Falsification Framework: Test Criteria & Exit Conditions **This work is designed to be falsifiable. That is its entire point.** ## Algorithm Falsification Criteria **TAE is falsified if ANY hold:** 1. ❌ Braid compilation overhead > polynomial(log(1/ε)) 2. ❌ Oracle implementation dominates (EXPECTED TRUE → no advantage) 3. ❌ Fusion space QFT requires exponential braid depth 4. ❌ Topological error rate NOT better than surface codes for N < 10⁴ 5. ❌ Anyon operations take > 1 ms **Status:** Algorithm is EXPECTED to show no advantage (Grover already optimal). This is correct result. ## Architecture Falsification Criteria **Physical realization is falsified if ANY hold:** 1. ❌ ν = 12/5 FQH state NOT realized in 2DEG by 2035 2. ❌ Thermal anyon density > 10⁻⁶ per μm² at 10 mK 3. ❌ Braid adiabatic time > 1 μs 4. ❌ Interferometric visibility < 90% for 4-anyon measurement 5. ❌ Individual anyon addressing requires > 10 voltage gates per anyon **Status:** None falsified, none confirmed. All remain open experimental questions. ## Experimental Validation Phases **Phase 1 (Classical):** SHA-520-r test vectors match the repository reference implementation **Phase 2 (Quantum):** Toy 4-round simulation > 80% success **Phase 3 (Resources):** Estimated vs actual deviation < 20% **Phase 4 (Topological):** Braid compilation polynomial-scale (theory only) ## Exit Strategy **If falsified:** Archive permanently, mark "falsified by [criterion]", cease development. **If validated:** Proceed to next phases; conjectures require physical experiment. ## What This Does NOT Claim - Breaks SHA-512/SHA-3 (no asymptotic advantage) - Topological QC is ready (ν=12/5 not realized) - Topological protection eliminates error correction (still active) - Beats surface codes (unproven, likely loses overhead) - This is a threat (research model only) *Falsification locked. Exit strategy fixed. No rewrites without consensus.*