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| """``U_MISSING`` completion-candidate enumeration (``docs/02`` §11.2). | |
| For a hidden node, the state-proof builder (P7) needs a set of *completion* | |
| worlds — the same world with the hidden node set to each of several valid | |
| alternative values — so it can search for a pair that renders identically (same | |
| observed hash) yet yields different unique answers (the ``U_MISSING`` criterion). | |
| This module provides the deterministic enumeration and the | |
| :func:`~explicit_learning.interventions.base.with_value` re-builder; P7 owns the | |
| pair search itself. | |
| Enumeration is seed-determined and yields ``≥8`` distinct admissible values | |
| (mirroring the §7.3 mutation suite's per-leaf count), each producing a fresh | |
| world via :func:`with_value` so the source world stays immutable. | |
| """ | |
| from __future__ import annotations | |
| from collections.abc import Iterator | |
| from dataclasses import dataclass | |
| from fractions import Fraction | |
| from typing import Any | |
| from ..dsl.ast import canonical_number_str, parse_number | |
| from ..sources.base import World | |
| from ..sources.world_ops import ( | |
| find_point, | |
| find_row, | |
| find_stating_constraint, | |
| looks_numeric, | |
| node_kind, | |
| ) | |
| from .base import InterventionError, with_value | |
| from .substitute import _seeded_offsets | |
| _DEFAULT_COUNT = 8 | |
| class Completion: | |
| """One alternative completion of a hidden node.""" | |
| world: World | |
| node_id: str | |
| value: str # canonical string form of the alternative value | |
| index: int | |
| def valid_values( | |
| world: World, | |
| hidden_node: str, | |
| *, | |
| seed: int, | |
| count: int = _DEFAULT_COUNT, | |
| ) -> list[str]: | |
| """Enumerate ``count`` distinct admissible values for ``hidden_node``. | |
| Numeric sites (a point's ``y``, a row cell, a geometry measure) yield seeded | |
| distinct rationals near the source range; category sites (a label) yield | |
| non-colliding labels. The values are deterministic in ``(seed, node, count)``. | |
| """ | |
| kind = node_kind(world, hidden_node) | |
| if kind is None: | |
| raise InterventionError(f"completion: {hidden_node!r} is not a world node") | |
| if kind == "point": | |
| return _point_values(world, hidden_node, seed, count) | |
| if kind == "row": | |
| return _row_values(world, hidden_node, seed, count) | |
| if kind == "constraint": | |
| return _measure_values(world, hidden_node, seed, count) | |
| if kind in ("series", "entity"): | |
| return _label_values(world, hidden_node, kind, seed, count) | |
| raise InterventionError(f"completion: no sampler for kind {kind!r}") | |
| def completion_candidates( | |
| world: World, | |
| hidden_node: str, | |
| *, | |
| seed: int, | |
| count: int = _DEFAULT_COUNT, | |
| ) -> list[Completion]: | |
| """``count`` completion worlds for ``hidden_node`` (source world immutable). | |
| Each completion is :func:`with_value` applied to a distinct enumerated value; | |
| the source world is never mutated. Raises :class:`InterventionError` if the | |
| node has no mutable value site. | |
| """ | |
| out: list[Completion] = [] | |
| for i, value in enumerate(valid_values(world, hidden_node, seed=seed, count=count)): | |
| out.append( | |
| Completion( | |
| world=with_value(world, hidden_node, value), | |
| node_id=hidden_node, | |
| value=value, | |
| index=i, | |
| ) | |
| ) | |
| return out | |
| def iter_completions( | |
| world: World, hidden_node: str, *, seed: int, count: int = _DEFAULT_COUNT | |
| ) -> Iterator[Completion]: | |
| """Lazy stream of completions (memory-bounded for large enumerations).""" | |
| for i, value in enumerate(valid_values(world, hidden_node, seed=seed, count=count)): | |
| yield Completion( | |
| world=with_value(world, hidden_node, value), | |
| node_id=hidden_node, | |
| value=value, | |
| index=i, | |
| ) | |
| # --- value samplers (distinct, seeded) ------------------------------------ | |
| def _point_values(world: World, pid: str, seed: int, count: int) -> list[str]: | |
| point = find_point(world, pid) | |
| if point is None: | |
| raise InterventionError(f"point {pid!r} not found") | |
| sidx, _pidx, p = point | |
| siblings = world["series"][sidx].get("points", []) or [] | |
| used = {_frac(q.get("y", "0")) for q in siblings} | |
| cur = _frac(p.get("y", "0")) | |
| return _distinct_near(seed, pid, "comp_point", cur, used, count) | |
| def _row_values(world: World, rid: str, seed: int, count: int) -> list[str]: | |
| row = find_row(world, rid) | |
| if row is None: | |
| raise InterventionError(f"row {rid!r} not found") | |
| _ridx, r = row | |
| cells = r.get("cells", {}) or {} | |
| if not cells: | |
| raise InterventionError(f"row {rid!r} has no cells") | |
| key = next(iter(cells)) | |
| used = { | |
| _frac(row_.get("cells", {}).get(key)) | |
| for row_ in (world.get("rows", []) or []) | |
| if key in (row_.get("cells", {}) or {}) and looks_numeric(row_.get("cells", {}).get(key)) | |
| } | |
| cur = _frac(cells[key]) | |
| return _distinct_near(seed, f"{rid}:{key}", "comp_cell", cur, used, count) | |
| def _measure_values(world: World, entity: str, seed: int, count: int) -> list[str]: | |
| found = find_stating_constraint(world, entity) | |
| if found is None: | |
| raise InterventionError(f"no stating constraint for {entity!r}") | |
| _cidx, c = found | |
| args = list(c.get("args") or []) | |
| if c.get("predicate") == "MeasureOf" and len(args) >= 2 or looks_numeric(args[1]): | |
| cur = _frac(args[1]) | |
| elif looks_numeric(args[0]): | |
| cur = _frac(args[0]) | |
| else: | |
| raise InterventionError(f"stating constraint for {entity!r} is not numeric") | |
| return _distinct_near(seed, entity, "comp_measure", cur, set(), count) | |
| def _label_values(world: World, nid: str, kind: str, seed: int, count: int) -> list[str]: | |
| if kind == "series": | |
| existing = {str(t.get("label", "")) for t in world.get("series", []) or []} | |
| else: | |
| existing = {str(e.get("label", e.get("id", ""))) for e in world.get("entities", []) or []} | |
| out: list[str] = [] | |
| for n in _seeded_offsets(seed, nid, "comp_label", span=10_000): | |
| cand = f"node_{n}" | |
| if cand not in existing and cand not in out: | |
| out.append(cand) | |
| if len(out) >= count: | |
| break | |
| if len(out) < count: | |
| raise InterventionError(f"could not enumerate {count} labels for {nid!r}") | |
| return out | |
| def _distinct_near( | |
| seed: int, tag: str, kind: str, cur: Fraction, used: set[Fraction], count: int | |
| ) -> list[str]: | |
| """``count`` distinct rationals near ``cur`` not in ``used`` (seeded).""" | |
| out: list[str] = [] | |
| seen: set[Fraction] = {cur, *used} | |
| base = int(cur) | |
| for off in _seeded_offsets(seed, tag, kind, span=2 * count * 20 + 10): | |
| cand = Fraction(base + (off % (4 * count + 20)) - (2 * count + 10)) | |
| if cand in seen: | |
| continue | |
| seen.add(cand) | |
| out.append(canonical_number_str(cand)) | |
| if len(out) >= count: | |
| break | |
| if len(out) < count: | |
| raise InterventionError(f"could not enumerate {count} distinct values for {tag!r}") | |
| return out | |
| def _frac(value: Any) -> Fraction: | |
| return parse_number(value) | |
| __all__ = ["Completion", "completion_candidates", "iter_completions", "valid_values"] | |