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"""Immutable typed AST for the canonical question programs (``docs/02`` §7).
A question *program* is a tree of :class:`AstNode` values. The serialized form
conforms to ``schemas/compiled_program.schema.json`` ``$defs/astNode``::
{"op": <str>, "args": [<astNode | str | number | bool>, ...], "return_type": <str>?}
Design choices pinned by the spec:
* **Exact numerics.** Numeric literals are ``fractions.Fraction`` internally and
serialize to a *canonical rational string* (``5`` → ``"5"``, ``3/2`` →
``"3/2"``, ``"1.50"`` → ``"3/2"``), never a JSON float — so ``1.5`` and
``3/2`` collapse to one canonical form (``docs/02`` §3.2/§3.3 "exact rational
우선", "decimal string canonicalizer trailing-zero 제거"). A literal that would
lose precision as a float is therefore exact.
* **Uniform nodes.** Every meaningful operand is an :class:`AstNode`: compound
ops (``LOOKUP``, ``MEASURE``, …) and two leaf kinds — ``REF`` (an entity
reference with a stable id) and ``LITERAL`` (an atomic value). Bare atomic
``args`` are reserved for *field/key* strings (e.g. ``"value"``) that are not
themselves typed operands. This keeps the type checker uniform: it dispatches
on ``op`` and reads ``return_type``.
* **Immutability.`` :class:`AstNode` and :class:`Program` are frozen; ``args`` is
a tuple. Canonicalization returns new nodes rather than mutating.
The :class:`Program` envelope is the P2 structural record — it carries the AST,
the referent selector, the *declared* referent cardinality, the resolved
referenced node ids, and the canonical program hash. The full
``compiled_program`` record (``compile_id`` / ``compiler_role`` / ``model`` /
``request_sha256``) is the **P4 C2 model-compiler** record and is not produced
here.
"""
from __future__ import annotations
from collections.abc import Mapping
from dataclasses import dataclass
from fractions import Fraction
from functools import lru_cache
from typing import Any, Literal, Union
from ..ingest.base import IngestError
from ..paths import repo_root
from ..schema_io import load_schema, validate
Dsl = Literal["plotqa_dsl_v1", "geometry_dsl_v1", "table_dsl_v1", "clevr_dsl_v1"]
CompileStatus = Literal["compiled", "unsupported"]
# Leaf op markers. A leaf node carries exactly one atomic arg.
REF = "REF" # entity reference: args=(id_str,), return_type = entity kind
LITERAL = "LITERAL" # atomic value: args=(serialized_value,), return_type = value kind
# One positional operand of a node: a sub-node, or a bare atomic field/key.
Arg = Union["AstNode", str, int, Fraction, bool]
class ProgramError(IngestError):
"""Raised when an AST node or :class:`Program` is malformed or schema-invalid."""
# --- numeric canonicalization (§3.2/§3.3) ----------------------------------
def parse_number(value: str | int | Fraction) -> Fraction:
"""Parse a decimal/rational/integer into an exact reduced :class:`Fraction`.
Accepts ``"1.5"``, ``"3/2"``, ``"5"``, ``"5.0"`` and integers. ``Fraction``
reduces and exact-represents each so numerically-equal inputs compare equal.
"""
if isinstance(value, Fraction):
return value
if isinstance(value, int) and not isinstance(value, bool):
return Fraction(value)
return Fraction(str(value))
def canonical_number_str(value: str | int | Fraction) -> str:
"""Canonical exact-rational string of a numeric value (``docs/02`` §3.2).
Integers render as their decimal string (``5`` → ``"5"``); non-integer
rationals as ``"num/den"`` in lowest terms (``3/2`` → ``"3/2"``). Trailing
zeros are gone because the form is exact, not decimal. Two numerically-equal
inputs always produce the same string.
"""
frac = parse_number(value)
if frac.denominator == 1:
return str(frac.numerator)
return f"{frac.numerator}/{frac.denominator}"
# --- AST node ---------------------------------------------------------------
@dataclass(frozen=True)
class AstNode:
"""One immutable node of a question program (``compiled_program.schema.json`` astNode).
``op`` is the operator/predicate name (``LOOKUP``, ``MeasureOf``, ``REF``,
``LITERAL``, …). ``args`` is an order-significant tuple of sub-nodes and bare
atomic field keys. ``return_type`` is the typed result kind
(``value``/``series``/``point``/``angle``/``number``/…); it is the type the
checker and canonicalizer propagate.
"""
op: str
args: tuple[Arg, ...] = ()
return_type: str = ""
def to_ast_node_dict(self) -> dict[str, Any]:
"""Serialize to a dict conforming to ``$defs/astNode``."""
out: dict[str, Any] = {"op": self.op, "args": [_arg_to_dict(a) for a in self.args]}
if self.return_type:
out["return_type"] = self.return_type
return out
def is_ref(self) -> bool:
return self.op == REF
def is_literal(self) -> bool:
return self.op == LITERAL
def ref_id(self) -> str:
"""The stable entity id of a ``REF`` leaf (raises otherwise)."""
if not self.is_ref():
raise ProgramError(f"{self.op!r} node is not an entity reference")
if len(self.args) != 1 or not isinstance(self.args[0], str):
raise ProgramError(f"REF node must carry one string id, got {self.args!r}")
return self.args[0]
def _arg_to_dict(arg: Arg) -> Any:
if isinstance(arg, AstNode):
return arg.to_ast_node_dict()
if isinstance(arg, bool): # before int: bool is an int subclass
return arg
if isinstance(arg, int):
return arg
if isinstance(arg, Fraction):
# A bare numeric arg is serialized as its canonical exact string so it
# never degrades to a lossy float; builders normally wrap numerics in a
# LITERAL node, but this keeps a bare Fraction exact if it appears.
return canonical_number_str(arg)
if isinstance(arg, str):
return arg
raise ProgramError(f"unsupported AST arg type {type(arg)!r}")
def _arg_from_dict(arg: Any) -> Arg:
"""Inverse of :func:`_arg_to_dict`: rebuild one AST arg from model JSON."""
if isinstance(arg, Mapping): # nested astNode
return ast_node_from_dict(arg)
if isinstance(arg, bool): # before int: bool is an int subclass
return arg
if isinstance(arg, int):
return arg
if isinstance(arg, float):
return parse_number(str(arg)) # exact rational, never a lossy float
if isinstance(arg, str):
return arg
raise ProgramError(f"unsupported astNode arg {arg!r}")
def ast_node_from_dict(data: Mapping[str, Any]) -> AstNode:
"""Rebuild an :class:`AstNode` from a ``$defs/astNode``-shaped dict.
The inverse of :meth:`AstNode.to_ast_node_dict`, used by the C2 compiler
(P4) to parse a model's JSON program response into the typed AST. Numeric
args are kept exact (a JSON float becomes a :class:`~fractions.Fraction`).
Raises :class:`ProgramError` on a malformed node; call
:func:`validate_ast_node` first for schema-level errors.
"""
if not isinstance(data, Mapping):
raise ProgramError(f"astNode must be an object, got {type(data).__name__}")
op = data.get("op")
if not isinstance(op, str) or not op:
raise ProgramError("astNode requires a non-empty string 'op'")
raw_args = data.get("args", [])
if not isinstance(raw_args, list):
raise ProgramError("astNode 'args' must be an array")
args = tuple(_arg_from_dict(a) for a in raw_args)
return_type = str(data.get("return_type", "") or "")
return AstNode(op=op, args=args, return_type=return_type)
# --- leaf constructors ------------------------------------------------------
def ref(entity_id: str, *, return_type: str = "entity") -> AstNode:
"""Build an entity-reference leaf (``op=REF``, one string id arg)."""
if not entity_id:
raise ProgramError("entity reference id must be non-empty")
return AstNode(op=REF, args=(entity_id,), return_type=return_type)
def lit(value: str | int | Fraction | bool, *, return_type: str) -> AstNode:
"""Build an atomic-literal leaf.
Numerics (``return_type`` ``number``/``integer``) serialize via
:func:`canonical_number_str`; booleans as JSON booleans; expressions/strings
as their (pre-canonicalization) string form.
"""
if return_type in ("number", "integer"):
return AstNode(op=LITERAL, args=(canonical_number_str(value),), return_type=return_type)
if return_type == "boolean":
return AstNode(op=LITERAL, args=(bool(value),), return_type=return_type)
if return_type in ("expression", "string", "field"):
return AstNode(op=LITERAL, args=(str(value),), return_type=return_type)
raise ProgramError(f"unsupported literal return_type {return_type!r}")
# --- program envelope -------------------------------------------------------
@dataclass(frozen=True)
class Program:
"""The P2 structural program record for one normalized item.
``canonical_program_sha256`` is filled by
:func:`~explicit_learning.dsl.canonicalize.canonical_program_sha256`.
``constraint_channels`` carries geometry channel provenance (constraint
node key → ``text``/``visual``/``redundant``) for the P3 intervention layer;
it is **not** part of the schema-conforming envelope.
"""
dsl: Dsl
program: AstNode
base_id: str
question_sha256: str
choices_sha256: str
compile_status: CompileStatus
referent_selector: AstNode | None = None
required_referent_cardinality: int | None = None
referenced_node_ids: tuple[str, ...] = ()
canonical_program_sha256: str = ""
reason_code: str | None = None
constraint_channels: tuple[tuple[str, str], ...] = ()
def to_dict(self) -> dict[str, Any]:
"""The P2 program envelope (a subset of ``compiled_program``).
The ``program`` sub-dict conforms to ``$defs/astNode``; the envelope is
not itself a full ``compiled_program`` record (that needs P4's
``compile_id``/``compiler_role``/``model``).
"""
envelope: dict[str, Any] = {
"dsl": self.dsl,
"program": self.program.to_ast_node_dict(),
"base_id": self.base_id,
"question_sha256": self.question_sha256,
"choices_sha256": self.choices_sha256,
"compile_status": self.compile_status,
"referent_selector": (
self.referent_selector.to_ast_node_dict() if self.referent_selector else None
),
"required_referent_cardinality": self.required_referent_cardinality,
"referenced_node_ids": list(self.referenced_node_ids),
"canonical_program_sha256": self.canonical_program_sha256 or None,
}
if self.reason_code is not None:
envelope["reason_code"] = self.reason_code
return envelope
# --- schema validation ------------------------------------------------------
@lru_cache(maxsize=1)
def _compiled_program_schema() -> dict[str, Any]:
return load_schema(repo_root() / "schemas" / "compiled_program.schema.json")
@lru_cache(maxsize=1)
def _ast_node_schema() -> dict[str, Any]:
"""A standalone schema validating one ``astNode`` (with ``$defs`` in scope)."""
full = _compiled_program_schema()
return {"$schema": full.get("$schema", ""), "$defs": full["$defs"], "$ref": "#/$defs/astNode"}
def validate_ast_node(node: Mapping[str, Any] | AstNode) -> None:
"""Raise :class:`ProgramError` if ``node`` violates ``$defs/astNode``."""
instance = node.to_ast_node_dict() if isinstance(node, AstNode) else dict(node)
errors = validate(instance, _ast_node_schema())
if errors:
raise ProgramError("astNode failed schema validation: " + "; ".join(errors))
__all__ = [
"Arg",
"AstNode",
"CompileStatus",
"Dsl",
"LITERAL",
"Program",
"ProgramError",
"REF",
"ast_node_from_dict",
"canonical_number_str",
"lit",
"parse_number",
"ref",
"validate_ast_node",
]