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3.02 kB
| """Load the screening-ceiling dataset. | |
| Stdlib by default so the data is usable with nothing installed; pandas and | |
| `datasets` are optional conveniences, imported only if you ask for them. | |
| from loader import load_regions, load_counterexamples, load_theorem | |
| theorem = load_theorem() | |
| print(theorem["statement"]) | |
| for c in load_counterexamples(): | |
| print(c["case_id"], c["k_predicted"]) | |
| """ | |
| from __future__ import annotations | |
| import json | |
| import pathlib | |
| HERE = pathlib.Path(__file__).resolve().parent | |
| DATA = HERE / "data" | |
| __all__ = ["load_regions", "load_counterexamples", "load_theorem", | |
| "to_pandas", "to_hf_dataset", "family_layout"] | |
| def _jsonl(path: pathlib.Path) -> list[dict]: | |
| return [json.loads(line) for line in path.read_text(encoding="utf-8").splitlines() if line.strip()] | |
| def load_regions() -> list[dict]: | |
| """256 certified regions of the branch-and-bound partition.""" | |
| return _jsonl(DATA / "certified_regions.jsonl") | |
| def load_counterexamples() -> list[dict]: | |
| """Concrete layouts where a second-order Born extractor predicts k > 1.""" | |
| return _jsonl(DATA / "counterexamples.jsonl") | |
| def load_theorem() -> dict: | |
| """The universal claim, its scope, and the provenance of the source proof.""" | |
| return json.loads((DATA / "theorem.json").read_text(encoding="utf-8")) | |
| def family_layout(d0_um: float, pt_mult: float, sep_mult: float, jog_mult: float): | |
| """Build the conductor geometry for a point in the family box. | |
| Returns (xy_metres, radius_metres). Kept here as well as in `verify.py` so a | |
| reader who only wants to generate layouts does not have to read the checker. | |
| """ | |
| pt = 1.6 * d0_um * pt_mult * 1e-6 | |
| sep = pt * sep_mult | |
| jog = jog_mult * sep | |
| return ([[0.0, 0.0], [pt, 0.0], [sep, jog], [sep + pt, jog]], | |
| [d0_um * 1e-6 / 2.0] * 4) | |
| def to_pandas(split: str = "regions"): | |
| """`regions` or `counterexamples` as a DataFrame. Requires pandas.""" | |
| import pandas as pd | |
| if split == "regions": | |
| rows = [] | |
| for r in load_regions(): | |
| flat = {k: v for k, v in r.items() if k != "bounds"} | |
| for name, b in r["bounds"].items(): | |
| flat[f"{name}_lo"], flat[f"{name}_hi"] = b["lo"], b["hi"] | |
| rows.append(flat) | |
| return pd.DataFrame(rows) | |
| if split == "counterexamples": | |
| return pd.DataFrame(load_counterexamples()) | |
| raise ValueError(f"unknown split {split!r}: use 'regions' or 'counterexamples'") | |
| def to_hf_dataset(): | |
| """Both splits as a `datasets.DatasetDict`. Requires `datasets`.""" | |
| from datasets import Dataset, DatasetDict | |
| return DatasetDict({ | |
| "regions": Dataset.from_list(load_regions()), | |
| "counterexamples": Dataset.from_list(load_counterexamples()), | |
| }) | |
| if __name__ == "__main__": | |
| t = load_theorem() | |
| print(t["statement"]) | |
| print(f"\nregions {len(load_regions())}") | |
| print(f"counterexamples {len(load_counterexamples())}") | |
| print(f"\nscope: {t['honest_scope']}") | |