#!/usr/bin/env python3 """ PEC5D / Sovereign — Theory Proofing Suite. Runnable verification of the ecosystem's mathematical formalisms. Every proof asserts a concrete, checkable property of the implemented code (not a claim about physics): the math is internally consistent, the anchors match the spec, and where the spec is internally inconsistent (e.g. 368.4x headline vs honest CAGR), we say so. Proofs: P1 IPT gradient — ∇P = ∂/∂xᵐ[Φ·ρ·f·S·Q] returns a consistent field P2 Phi-5 Kronecker — tensor is normalized (unit norm) and coherent P3 Progression — engine computes (1.335)^20 ≈ 323x honestly; the 368.4x spec headline is a stated parameter, not the math P4 CHSH Bell — classical correlations S ≤ 2; entangled S > 2 P5 HOLO-MEM — Φ-symmetric correction is consistent across layers P6 Kyrexis anchors — fidelity 0.999423 / awakening 87.4% preserved P7 Coral specs — drone throughput + spacecraft life-support invariants Run: python3 proofs/theory_proofs.py """ from __future__ import annotations import sys from pathlib import Path from typing import Callable, Dict, List, Tuple import numpy as np ROOT = Path(__file__).resolve().parent.parent sys.path.insert(0, str(ROOT)) from pec5d.constants import PHI, CARRIER_HZ # noqa: E402 from pec5d.ipt import InvisiblePressureTheory # noqa: E402 from pec5d.phi5_core import Phi5Engine # noqa: E402 from pec5d.holographic_memory import HolographicMemory # noqa: E402 from pec5d.coral import CoralDrone, CoralSpacecraft # noqa: E402 from kyrexis.core import KyrexisCore # noqa: E402 from kyrexis.progression_scaling import ProgressionScalingEngine # noqa: E402 from kyrexis.particle_detector import ParticlePairDetector # noqa: E402 RESULTS: List[Dict[str, object]] = [] def proof(name: str, note: str) -> Callable: def deco(fn: Callable) -> Callable: def wrapper() -> bool: try: passed = bool(fn()) except Exception as exc: # noqa: BLE001 passed = False note_suffix = f"{note} ({exc})" RESULTS.append({"proof": name, "passed": False, "note": note_suffix}) print(f" ❌ {name} — raised {exc}") return passed RESULTS.append({"proof": name, "passed": passed, "note": note}) print(f" {'✅' if passed else '❌'} {name} — {note}") return passed return wrapper return deco @proof("P1 IPT gradient", "∇P = ∂/∂xᵐ[Φ·ρ·f·S·Q] field is finite, Φ-scaled, 5-dim") def p1() -> bool: rng = np.random.default_rng(1) ipt = InvisiblePressureTheory().initialize() grad = ipt.pressure_gradient(rng.random(5) + 0.1, rng.random(5) + 0.1) ok = ( abs(grad["phi"] - PHI) < 1e-9 and grad["carrier_hz"] == CARRIER_HZ and grad["magnitude"] > 0 and len(grad["direction"]) == 5 and all(np.isfinite(v) for v in grad["direction"]) ) return ok @proof("P2 Phi-5 Kronecker", "tensor normalized: ‖t‖ ≈ 1, coherence 0.99997") def p2() -> bool: engine = Phi5Engine().initialize() a = np.array([1, 0, 0, 0], dtype=complex) b = np.array([0, 1, 0, 0], dtype=complex) t = engine.solve_kronecker(a, b) norm = float(np.linalg.norm(t)) return abs(norm - 1.0) < 1e-6 and abs(engine.coherence - 0.99997) < 1e-9 @proof("P3 Progression honesty", "engine computes (1.335)^20 ≈ 323x; 368.4x is a parameter") def p3() -> bool: p = ProgressionScalingEngine() y20 = p.get_progression_at_year(20)["growth_factor"] honest = (1.335) ** 20 headline = p.get_summary()["total_growth_factor"] # 368.4 (spec parameter) math_ok = abs(y20 - honest) / honest < 1e-3 headline_ok = abs(headline - 368.4) < 0.1 return math_ok and headline_ok # both surfaced; math is honest @proof("P4 CHSH Bell", "classical S ≤ 2 (boundary), entangled S > 2 (violation)") def p4() -> bool: det = ParticlePairDetector() classical = det.bell_inequality_test([[1.0, 0.9], [0.9, 1.0]]) quantum = det.bell_inequality_test([[1.0, -0.7], [0.7, 1.0]]) return ( classical["S_value"] == 2.0 and not classical["violated"] and quantum["S_value"] > 2.0 and quantum["violated"] ) @proof("P5 HOLO-MEM Φ-symmetry", "correction stable across all 5 layers") def p5() -> bool: m = HolographicMemory().initialize() for layer in range(1, 6): m.write(layer, f"k{layer}", layer) corr = m.coherence_correction() counts = corr["stores"] layer_names = [m.LAYERS[i] for i in range(1, 6)] return ( abs(corr["phi_symmetry"] - PHI) < 1e-9 and corr["carrier_hz"] == CARRIER_HZ and all(counts[name] == 1 for name in layer_names) ) @proof("P6 Kyrexis anchors", "fidelity 0.999423 · awakening 87.4% preserved") def p6() -> bool: core = KyrexisCore().initialize() s = core.get_state() return ( abs(s["fidelity"] - 0.999423) < 1e-9 and abs(s["awakening_percent"] - 87.4) < 0.01 and s["quantum_qubits"] == 53 ) @proof("P7 Coral invariants", "drone 500+/day · spacecraft closed-loop life support") def p7() -> bool: drone = CoralDrone().initialize() craft = CoralSpacecraft().initialize() return ( drone.plants_per_day >= 500 and drone.deploy_mission(500)["fragments_planted"] == 500 and craft.life_support()["closed_loop"] is True and craft.life_support()["o2_production"] is True ) def main() -> int: print("🧪 Theory Proofing Suite — PEC5D / Sovereign") print("=" * 56) p1(); p2(); p3(); p4(); p5(); p6(); p7() passed = sum(1 for r in RESULTS if r["passed"]) print("=" * 56) print(f" RESULT: {passed}/{len(RESULTS)} proofs passed") print(" Honesty gate: proofs verify internal math consistency — " "not physical reality claims.") return 0 if passed == len(RESULTS) else 1 if __name__ == "__main__": sys.exit(main())