Frozen dataclasses + deterministic allocator + invariants for the Semantic-Symbolic Binding Graph proposed in PR #170. Pure data layer: no parser, no solver, no adapter, no runtime wiring. Phases 2-5 deferred to follow-up PRs. - generate/binding_graph/model.py: SourceSpanLink, SymbolBinding, BoundFact, BoundEquation, BoundUnknown, BoundConstraint, and the top-level SemanticSymbolicBindingGraph container. All @dataclass(frozen=True, slots=True). Refusal-first construction via typed BindingGraphError. Cross-collection referential integrity enforced at __post_init__. - generate/binding_graph/allocation.py: pure deterministic allocate_symbols() — same input order yields byte-equal output. - generate/binding_graph/__init__.py: public API surface. - tests/test_binding_graph_model.py: 69 tests covering frozen invariants, slots enforcement, refusal paths, allocation determinism, canonical-string round-trip, cross-collection integrity. - docs/decisions/ADR-0132-binding-graph-data-model.md: ratifies Phase 1 only; explicit Phase 2-5 deferred section citing #170.
454 lines
17 KiB
Python
454 lines
17 KiB
Python
"""ADR-0132 — Frozen data model for the Semantic-Symbolic Binding Graph.
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This module is the typed compiler boundary between natural language and
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symbolic reasoning. It deliberately holds *only data* — no parser, no
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solver, no algebra. Every dataclass is ``frozen=True, slots=True`` and
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every collection field is an immutable ``tuple`` or ``frozenset``.
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Refusal-first: invalid construction raises ``BindingGraphError`` rather
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than silently coercing.
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No coupling to ``Polynomial``: symbolic expressions are referenced by
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their canonical *string* form (the byte-equality discriminator from
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ADR-0131). This keeps the binding graph independent of the symbolic
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substrate.
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"""
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from __future__ import annotations
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from dataclasses import dataclass, field
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from typing import Final
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# ---------------------------------------------------------------------------
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# Public errors
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# ---------------------------------------------------------------------------
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class BindingGraphError(ValueError):
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"""Raised on invalid binding-graph construction.
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Sibling of ``generate.math_symbolic_normalizer.SymbolicError``;
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refusal-first by design, never silently coerces.
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"""
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# ---------------------------------------------------------------------------
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# Closed vocabularies
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# ---------------------------------------------------------------------------
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# Allowed semantic roles. Closed set; extend deliberately in a future ADR.
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SEMANTIC_ROLES: Final[frozenset[str]] = frozenset(
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{
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"entity",
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"quantity",
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"rate",
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"duration",
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"count",
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"total",
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"difference",
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"ratio",
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"unknown",
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}
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)
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# Equation admissibility outcomes. ``"refused"`` requires ``refusal_reason``.
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ADMISSIBILITY_STATUSES: Final[frozenset[str]] = frozenset(
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{"admitted", "pending", "refused"}
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)
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def _require_non_empty_str(value: object, field_name: str) -> None:
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if not isinstance(value, str) or value == "":
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raise BindingGraphError(
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f"{field_name} must be a non-empty str; got {value!r}"
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)
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def _require_optional_str(value: object, field_name: str) -> None:
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if value is not None and (not isinstance(value, str) or value == ""):
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raise BindingGraphError(
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f"{field_name} must be None or a non-empty str; got {value!r}"
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)
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# ---------------------------------------------------------------------------
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# SourceSpanLink
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class SourceSpanLink:
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"""An immutable pointer back to a slice of the original NL input.
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``text`` is retained verbatim so downstream tooling can audit the
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span without re-reading the source document. ``[start, end)`` is a
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Python-style half-open interval over the source string.
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"""
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source_id: str
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start: int
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end: int
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text: str
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def __post_init__(self) -> None:
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_require_non_empty_str(self.source_id, "SourceSpanLink.source_id")
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if not isinstance(self.start, int) or isinstance(self.start, bool):
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raise BindingGraphError(
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f"SourceSpanLink.start must be int; got {self.start!r}"
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)
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if not isinstance(self.end, int) or isinstance(self.end, bool):
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raise BindingGraphError(
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f"SourceSpanLink.end must be int; got {self.end!r}"
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)
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if self.start < 0:
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raise BindingGraphError(
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f"SourceSpanLink.start must be >= 0; got {self.start}"
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)
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if self.end <= self.start:
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raise BindingGraphError(
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f"SourceSpanLink.end must be > start; got start={self.start}, "
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f"end={self.end}"
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)
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if not isinstance(self.text, str) or self.text == "":
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raise BindingGraphError(
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f"SourceSpanLink.text must be a non-empty str; got {self.text!r}"
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)
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def to_canonical_string(self) -> str:
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"""Stable serialization for hashing / replay."""
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return f"{self.source_id}[{self.start}:{self.end}]"
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# ---------------------------------------------------------------------------
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# SymbolBinding
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class SymbolBinding:
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"""A single bound symbol: identifier + semantic context + provenance."""
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symbol_id: str
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name: str
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semantic_role: str
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source_span: SourceSpanLink
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introduced_by: str
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entity: str | None = None
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unit: str | None = None
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def __post_init__(self) -> None:
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_require_non_empty_str(self.symbol_id, "SymbolBinding.symbol_id")
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if not self.symbol_id.isidentifier():
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raise BindingGraphError(
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f"SymbolBinding.symbol_id must be a Python identifier; "
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f"got {self.symbol_id!r}"
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)
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_require_non_empty_str(self.name, "SymbolBinding.name")
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if self.semantic_role not in SEMANTIC_ROLES:
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raise BindingGraphError(
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f"SymbolBinding.semantic_role must be one of "
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f"{sorted(SEMANTIC_ROLES)}; got {self.semantic_role!r}"
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)
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if not isinstance(self.source_span, SourceSpanLink):
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raise BindingGraphError(
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"SymbolBinding.source_span must be a SourceSpanLink; "
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f"got {type(self.source_span).__name__}"
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)
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_require_non_empty_str(self.introduced_by, "SymbolBinding.introduced_by")
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_require_optional_str(self.entity, "SymbolBinding.entity")
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_require_optional_str(self.unit, "SymbolBinding.unit")
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# ---------------------------------------------------------------------------
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# BoundFact
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class BoundFact:
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"""A grounded fact: ``symbol_id = value [unit]`` lifted from language."""
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symbol_id: str
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value: str
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source_span: SourceSpanLink
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unit: str | None = None
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def __post_init__(self) -> None:
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_require_non_empty_str(self.symbol_id, "BoundFact.symbol_id")
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if not self.symbol_id.isidentifier():
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raise BindingGraphError(
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f"BoundFact.symbol_id must be a Python identifier; "
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f"got {self.symbol_id!r}"
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)
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_require_non_empty_str(self.value, "BoundFact.value")
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if not isinstance(self.source_span, SourceSpanLink):
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raise BindingGraphError(
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"BoundFact.source_span must be a SourceSpanLink"
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)
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_require_optional_str(self.unit, "BoundFact.unit")
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# ---------------------------------------------------------------------------
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# BoundEquation
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class BoundEquation:
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"""A derived symbolic relation with provenance.
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``lhs_symbol_id`` is the symbol being defined. ``rhs_canonical`` is
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the right-hand side as a canonical *string* — the binding graph
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deliberately does not import ``Polynomial`` (decoupling layer).
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``dependencies`` is the (immutable) set of symbols the rhs reads.
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"""
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lhs_symbol_id: str
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rhs_canonical: str
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dependencies: frozenset[str]
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operation_kind: str
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unit_proof: str
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admissibility_status: str
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source_span: SourceSpanLink
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refusal_reason: str | None = None
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def __post_init__(self) -> None:
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_require_non_empty_str(self.lhs_symbol_id, "BoundEquation.lhs_symbol_id")
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if not self.lhs_symbol_id.isidentifier():
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raise BindingGraphError(
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f"BoundEquation.lhs_symbol_id must be a Python identifier; "
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f"got {self.lhs_symbol_id!r}"
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)
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_require_non_empty_str(self.rhs_canonical, "BoundEquation.rhs_canonical")
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if not isinstance(self.dependencies, frozenset):
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raise BindingGraphError(
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"BoundEquation.dependencies must be a frozenset; "
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f"got {type(self.dependencies).__name__}"
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)
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for dep in self.dependencies:
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if not isinstance(dep, str) or not dep.isidentifier():
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raise BindingGraphError(
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f"BoundEquation.dependencies entries must be identifier "
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f"strs; got {dep!r}"
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)
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_require_non_empty_str(self.operation_kind, "BoundEquation.operation_kind")
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_require_non_empty_str(self.unit_proof, "BoundEquation.unit_proof")
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if self.admissibility_status not in ADMISSIBILITY_STATUSES:
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raise BindingGraphError(
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f"BoundEquation.admissibility_status must be one of "
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f"{sorted(ADMISSIBILITY_STATUSES)}; "
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f"got {self.admissibility_status!r}"
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)
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if not isinstance(self.source_span, SourceSpanLink):
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raise BindingGraphError(
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"BoundEquation.source_span must be a SourceSpanLink"
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)
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if self.admissibility_status == "refused":
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if not (
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isinstance(self.refusal_reason, str) and self.refusal_reason != ""
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):
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raise BindingGraphError(
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"BoundEquation.refusal_reason is required when "
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"admissibility_status == 'refused'"
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)
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else:
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if self.refusal_reason is not None:
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raise BindingGraphError(
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"BoundEquation.refusal_reason must be None unless "
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"admissibility_status == 'refused'"
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)
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# ---------------------------------------------------------------------------
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# BoundUnknown
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class BoundUnknown:
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"""The target of the question, bound to a known symbol."""
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symbol_id: str
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question_span: SourceSpanLink
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expected_unit: str | None = None
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def __post_init__(self) -> None:
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_require_non_empty_str(self.symbol_id, "BoundUnknown.symbol_id")
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if not self.symbol_id.isidentifier():
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raise BindingGraphError(
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f"BoundUnknown.symbol_id must be a Python identifier; "
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f"got {self.symbol_id!r}"
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)
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if not isinstance(self.question_span, SourceSpanLink):
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raise BindingGraphError(
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"BoundUnknown.question_span must be a SourceSpanLink"
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)
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_require_optional_str(self.expected_unit, "BoundUnknown.expected_unit")
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# ---------------------------------------------------------------------------
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# BoundConstraint
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class BoundConstraint:
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"""A predicate restricting a symbol's admissible values.
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``predicate`` is a canonical *string* (e.g. ``"x >= 0"``). Like
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``BoundEquation.rhs_canonical``, this avoids importing the symbolic
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substrate.
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"""
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symbol_id: str
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predicate: str
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source_span: SourceSpanLink
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def __post_init__(self) -> None:
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_require_non_empty_str(self.symbol_id, "BoundConstraint.symbol_id")
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if not self.symbol_id.isidentifier():
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raise BindingGraphError(
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f"BoundConstraint.symbol_id must be a Python identifier; "
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f"got {self.symbol_id!r}"
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)
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_require_non_empty_str(self.predicate, "BoundConstraint.predicate")
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if not isinstance(self.source_span, SourceSpanLink):
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raise BindingGraphError(
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"BoundConstraint.source_span must be a SourceSpanLink"
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)
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# ---------------------------------------------------------------------------
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# SemanticSymbolicBindingGraph
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# ---------------------------------------------------------------------------
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@dataclass(frozen=True, slots=True)
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class SemanticSymbolicBindingGraph:
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"""Top-level immutable container.
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All five sub-collections are tuples (deterministic order is the
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caller's responsibility — the model only enforces shape).
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Cross-collection invariants enforced at construction:
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- every ``BoundFact.symbol_id`` references a known ``SymbolBinding``;
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- every ``BoundEquation.lhs_symbol_id`` references a known symbol;
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- every ``BoundEquation`` dependency references a known symbol;
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- every ``BoundUnknown.symbol_id`` references a known symbol;
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- every ``BoundConstraint.symbol_id`` references a known symbol;
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- ``symbols`` carries unique ``symbol_id`` values.
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"""
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symbols: tuple[SymbolBinding, ...] = field(default_factory=tuple)
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facts: tuple[BoundFact, ...] = field(default_factory=tuple)
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equations: tuple[BoundEquation, ...] = field(default_factory=tuple)
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unknowns: tuple[BoundUnknown, ...] = field(default_factory=tuple)
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constraints: tuple[BoundConstraint, ...] = field(default_factory=tuple)
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provenance: tuple[SourceSpanLink, ...] = field(default_factory=tuple)
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def __post_init__(self) -> None:
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for name, value, item_type in (
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("symbols", self.symbols, SymbolBinding),
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("facts", self.facts, BoundFact),
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("equations", self.equations, BoundEquation),
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("unknowns", self.unknowns, BoundUnknown),
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("constraints", self.constraints, BoundConstraint),
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("provenance", self.provenance, SourceSpanLink),
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):
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if not isinstance(value, tuple):
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raise BindingGraphError(
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f"SemanticSymbolicBindingGraph.{name} must be a tuple; "
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f"got {type(value).__name__}"
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)
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for item in value:
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if not isinstance(item, item_type):
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raise BindingGraphError(
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f"SemanticSymbolicBindingGraph.{name} entries must be "
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f"{item_type.__name__}; got {type(item).__name__}"
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)
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known_ids: set[str] = set()
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for sym in self.symbols:
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if sym.symbol_id in known_ids:
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raise BindingGraphError(
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f"Duplicate SymbolBinding.symbol_id: {sym.symbol_id!r}"
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)
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known_ids.add(sym.symbol_id)
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for fact in self.facts:
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if fact.symbol_id not in known_ids:
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raise BindingGraphError(
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f"BoundFact references unknown symbol_id "
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f"{fact.symbol_id!r}"
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)
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for eq in self.equations:
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if eq.lhs_symbol_id not in known_ids:
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raise BindingGraphError(
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f"BoundEquation references unknown lhs_symbol_id "
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f"{eq.lhs_symbol_id!r}"
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)
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for dep in eq.dependencies:
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if dep not in known_ids:
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raise BindingGraphError(
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f"BoundEquation references unknown dependency "
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f"{dep!r} (lhs={eq.lhs_symbol_id!r})"
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)
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for unk in self.unknowns:
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if unk.symbol_id not in known_ids:
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raise BindingGraphError(
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f"BoundUnknown references unknown symbol_id "
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f"{unk.symbol_id!r}"
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)
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for con in self.constraints:
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if con.symbol_id not in known_ids:
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raise BindingGraphError(
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f"BoundConstraint references unknown symbol_id "
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f"{con.symbol_id!r}"
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)
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def to_canonical_string(self) -> str:
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"""Deterministic string serialization for stable hashing.
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Sub-collections are emitted in *given* (caller-supplied) order;
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the binding graph is identity-preserving by design.
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"""
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lines: list[str] = []
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for sym in self.symbols:
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lines.append(
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f"S {sym.symbol_id} {sym.name} {sym.semantic_role} "
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f"entity={sym.entity} unit={sym.unit} "
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f"span={sym.source_span.to_canonical_string()} "
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f"by={sym.introduced_by}"
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)
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for fact in self.facts:
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lines.append(
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f"F {fact.symbol_id} = {fact.value} unit={fact.unit} "
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f"span={fact.source_span.to_canonical_string()}"
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)
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for eq in self.equations:
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deps = ",".join(sorted(eq.dependencies))
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lines.append(
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f"E {eq.lhs_symbol_id} := {eq.rhs_canonical} "
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f"op={eq.operation_kind} deps=[{deps}] "
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f"unit_proof={eq.unit_proof} "
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f"status={eq.admissibility_status} "
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f"refusal={eq.refusal_reason} "
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f"span={eq.source_span.to_canonical_string()}"
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)
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for unk in self.unknowns:
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lines.append(
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f"U {unk.symbol_id} expected_unit={unk.expected_unit} "
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f"qspan={unk.question_span.to_canonical_string()}"
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)
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for con in self.constraints:
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lines.append(
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f"C {con.symbol_id} pred={con.predicate} "
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f"span={con.source_span.to_canonical_string()}"
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)
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for span in self.provenance:
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lines.append(f"P {span.to_canonical_string()} text={span.text}")
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return "\n".join(lines)
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