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#!/usr/bin/env python3
"""Export the screening-ceiling dataset from committed source artifacts.

Two very different kinds of row come out of this, and keeping them straight is
the whole point of the dataset:

  certified_regions.jsonl  -- a UNIVERSAL claim. 256 sub-boxes of a 4-parameter
      family, each certified by outward-rounded interval branch-and-bound to
      contain NO layout whose screening factor exceeds k_bar. Exported from a
      committed proof witness; provenance recorded by digest.

  counterexamples.jsonl    -- an EXISTENTIAL refutation. Concrete layouts where
      a second-order Born extractor predicts k > 1, which no passive
      arrangement of conductors can do. Generated here by running the
      open-source `maxwell-lint` reference models, so every row is reproducible
      from published code alone.

Run:
    python3 export.py                       # writes data/
    python3 export.py --check               # verify existing data, write nothing
"""
from __future__ import annotations

import argparse
import hashlib
import json
import pathlib
import sys

HERE = pathlib.Path(__file__).resolve().parent
DATA = HERE / "data"
REPO = HERE.parents[2]
WITNESS = REPO / "benchmarks" / "impossibility" / \
    "family_two_tight_pairs_k10pct_parallel_2026_07.json"

DIM_NAMES = ["d0_um", "pt_mult", "sep_mult", "jog_mult"]

# Reproduced verbatim from the source witness so the published scope statement
# cannot drift from the one the proof was run under.
HONEST_SCOPE = (
    "A complete interval theorem about the frozen MONOPOLE-CLOSURE model only. "
    "The closure-vs-BEM/PDE model gap remains additive and unresolved. This "
    "witness does not establish Maxwell, BEM, driven-S, fabrication, or "
    "measured-silicon truth."
)


def sha256(path: pathlib.Path) -> str:
    return hashlib.sha256(path.read_bytes()).hexdigest()


# --------------------------------------------------------------- certified regions

def export_certified_regions(w: dict) -> list[dict]:
    """One row per certified root region of the branch-and-bound partition.

    The witness stores the 256-region partition with per-region certification
    rather than all 237,490 leaves. That is what gets published, and the
    distinction is stated rather than glossed: each row is a region the prover
    certified, together with how many leaves it took and the largest screening
    factor the interval enclosure admitted anywhere inside it.
    """
    rows = []
    for r in w["root_results"]:
        rows.append({
            "region_id": r["root_id"],
            "bounds": {n: {"lo": lo, "hi": hi}
                       for n, (lo, hi) in zip(DIM_NAMES, r["box"])},
            "status": r["status"],
            "certified_leaves": r["certified_boxes"],
            "processed_leaves": r["processed_boxes"],
            "sup_certified_k_hi": r["sup_certified_k_hi"],
            "volume_fraction_of_region": r["certified_volume_frac_of_root"],
            "unresolved_leaves": r["unresolved_count"],
        })
    return rows


# ----------------------------------------------------------------- counterexamples

def export_counterexamples() -> list[dict]:
    """Concrete layouts where a plausible cheap extractor predicts k > 1.

    Generated by running the published `maxwell-lint` reference models, so a
    reader can regenerate every row without this repository. Full coordinates
    are emitted -- a counterexample you cannot rebuild is an anecdote.
    """
    try:
        import numpy as np
        from maxwell_lint.models import (
            born_second_order,
            isolated_pair_matrix,
            random_layout,
        )
    except ImportError as exc:  # pragma: no cover - exercised by the CLI path
        raise SystemExit(
            f"counterexample export needs maxwell-lint installed: {exc}\n"
            "  pip install ../../maxwell-lint") from exc

    rows = []
    for n in (6, 8, 12):
        for pitch in (60.0, 80.0, 100.0):
            for seed in range(4):
                lay = random_layout(n, seed=seed, pitch_um=pitch)
                full = born_second_order(lay)
                iso = isolated_pair_matrix(lay)
                with np.errstate(divide="ignore", invalid="ignore"):
                    k = np.where(iso > 0, full / iso, 0.0)
                np.fill_diagonal(k, 0.0)
                i, j = np.unravel_index(int(np.argmax(k)), k.shape)
                kmax = float(k[i, j])
                if kmax <= 1.0:
                    continue
                rows.append({
                    "case_id": f"born2_n{n}_p{int(pitch)}_s{seed}",
                    "model": "born_second_order",
                    "n_conductors": int(n),
                    "nominal_pitch_um": pitch,
                    "seed": int(seed),
                    "worst_pair": [int(i), int(j)],
                    "k_predicted": kmax,
                    "violates_ceiling": True,
                    "n_pairs_violating": int((k > 1.0).sum()),
                    "n_pairs_total": int(n * (n - 1)),
                    "xy_um": [[float(x * 1e6), float(y * 1e6)] for x, y in lay.xy],
                    "radius_um": [float(r * 1e6) for r in lay.radius],
                    "eps_r": float(lay.eps_r),
                })
    return rows


# ------------------------------------------------------------------------ theorem

def export_theorem(w: dict) -> dict:
    return {
        "family": w["family"],
        "parameters": DIM_NAMES,
        # the top-level box is keyed by name; the per-region boxes are positional
        "family_box": {n: {"lo": w["box"][n][0], "hi": w["box"][n][1]}
                       for n in DIM_NAMES},
        "k_bar": w["k_bar"],
        "statement": (
            "For every layout in the family box, the monopole-closure many-body "
            f"screening factor satisfies k <= {w['k_bar']:.12f}. A pairwise-"
            "superposition extractor assumes k == 1, so it over-predicts the worst "
            f"coupling by at least {100.0 / w['k_bar'] - 100.0:.4f}% on every "
            "member of the family."
        ),
        # Derived from the supremum the proof actually certified, not from the
        # target bound -- so it is very slightly STRONGER than 100/k_bar - 100
        # (10.000002% vs 10.000000%). Recorded explicitly because a reader who
        # divides by k_bar and gets a different last digit deserves an answer.
        "forced_pairwise_overprediction_pct": w["forced_pairwise_overprediction_pct"],
        "forced_pairwise_overprediction_basis": "sup_certified_k_hi",
        "certified_leaves_total": w["certified_boxes"],
        "processed_leaves_total": w["processed_boxes"],
        "certified_volume_fraction": w["certified_volume_frac"],
        "failure_regions": w["n_failure_regions"],
        "open_boxes": w["open_boxes"],
        "sup_certified_k_hi": w["sup_certified_k_hi"],
        "enclosure_mode": w["enclosure_mode"],
        "status": w["status"],
        "honest_scope": HONEST_SCOPE,
        "geometry": {
            "description": (
                "Four parallel circular conductors forming two tight pairs. "
                "pitch = 1.6 * d0 * pt_mult; separation = pitch * sep_mult; "
                "jog = jog_mult * separation. Conductor centres at (0,0), "
                "(pitch,0), (separation,jog), (separation+pitch,jog); every "
                "conductor has diameter d0."
            ),
            "units": "d0_um in micrometres; the multipliers are dimensionless",
            "self_term_radius_scale": 1.0,
        },
        "provenance": {
            "source_witness": WITNESS.name,
            "source_sha256": sha256(WITNESS),
            "witness_content_sha256": w["content_sha256"],
            "schema": w["schema"],
            "prover_wall_seconds": w["wall_s"],
            "partition_regions": w["root_count"],
        },
    }


def write_jsonl(path: pathlib.Path, rows: list[dict]) -> None:
    with path.open("w", encoding="utf-8", newline="\n") as fh:
        for r in rows:
            fh.write(json.dumps(r, sort_keys=True) + "\n")


def main() -> int:
    ap = argparse.ArgumentParser(description=__doc__)
    ap.add_argument("--check", action="store_true",
                    help="verify the committed data instead of rewriting it")
    args = ap.parse_args()

    if not WITNESS.exists():
        print(f"source witness not found: {WITNESS}", file=sys.stderr)
        print("(export requires the source repository; the published data files "
              "stand alone)", file=sys.stderr)
        return 2

    w = json.loads(WITNESS.read_text(encoding="utf-8"))
    regions = export_certified_regions(w)
    theorem = export_theorem(w)
    counters = export_counterexamples()

    if args.check:
        old_r = [json.loads(x) for x in
                 (DATA / "certified_regions.jsonl").read_text(encoding="utf-8").splitlines()]
        old_c = [json.loads(x) for x in
                 (DATA / "counterexamples.jsonl").read_text(encoding="utf-8").splitlines()]
        old_t = json.loads((DATA / "theorem.json").read_text(encoding="utf-8"))
        ok = (old_r == regions and old_c == counters and old_t == theorem)
        print("data matches a fresh export" if ok else "DATA DRIFT")
        return 0 if ok else 1

    DATA.mkdir(parents=True, exist_ok=True)
    write_jsonl(DATA / "certified_regions.jsonl", regions)
    write_jsonl(DATA / "counterexamples.jsonl", counters)
    (DATA / "theorem.json").write_text(
        json.dumps(theorem, indent=2, sort_keys=True) + "\n",
        encoding="utf-8", newline="\n")

    n_viol = sum(r["n_pairs_violating"] for r in counters)
    print(f"certified_regions.jsonl  {len(regions)} regions "
          f"({theorem['certified_leaves_total']} leaves)")
    print(f"counterexamples.jsonl    {len(counters)} layouts "
          f"({n_viol} violating pairs)")
    print(f"theorem.json             k_bar = {theorem['k_bar']:.12f}")
    return 0


if __name__ == "__main__":
    raise SystemExit(main())