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| """A small, fail-closed executable algebra language for canonical search. | |
| MathIR linear v0 is intentionally narrower than ordinary mathematical text. | |
| The model emits a semicolon-separated sequence of equation transformations, | |
| for example ``sub(b);div(a)``. Every command is applied to both sides of the | |
| current equation and exact rational normalization happens after every step. | |
| The validator and canonicalizer share one execution path: a canonical strategy | |
| key is produced only from the normalized states created by a successful | |
| execution. There is no parser for prose, LaTeX derivations, Python, or a | |
| model-supplied final answer. | |
| """ | |
| from __future__ import annotations | |
| from collections import Counter | |
| from dataclasses import dataclass | |
| from fractions import Fraction | |
| from itertools import permutations | |
| import re | |
| from typing import Any, Iterable, Mapping | |
| import sympy | |
| MATHIR_VERIFIER = "mathir_algebra" | |
| MATHIR_VERSION = "linear-v0" | |
| MATHIR_MENU_VERIFIER = "mathir_action_menu" | |
| MATHIR_MENU_VERSION = "linear-menu-v1" | |
| MATHIR_ROUTE_VERSION = "linear-route-v1" | |
| _MAX_REFERENCE_SYMBOLS = 6 | |
| _MAX_PROGRAM_STEPS = 4 | |
| _MAX_PROGRAM_CHARS = 160 | |
| _MAX_ARGUMENT_NODES = 11 | |
| _MAX_ARGUMENT_DEPTH = 6 | |
| _MAX_MENU_ACTIONS = 8 | |
| _MODEL_OPERATORS = frozenset({"add", "sub", "mul", "div", "neg"}) | |
| _COMMANDS = frozenset({"add", "sub", "mul", "div"}) | |
| _TOKEN_RE = re.compile(r"[A-Za-z][A-Za-z0-9_]*|[(),;]") | |
| _MENU_ACTION_RE = re.compile(r"[A-H]") | |
| class Expr: | |
| """A bounded MathIR expression. | |
| ``const`` nodes are interpreter-internal exact rationals. The model-side | |
| parser never accepts numeric literals. | |
| """ | |
| op: str | |
| args: tuple["Expr", ...] = () | |
| value: str | Fraction | None = None | |
| class Command: | |
| op: str | |
| argument: Expr | |
| class EquationState: | |
| lhs: Expr | |
| rhs: Expr | |
| class MathIRValidation: | |
| canonical_key: str | |
| solution: Fraction | |
| commands: tuple[Command, ...] | |
| states: tuple[EquationState, ...] | |
| action_ids: tuple[str, ...] = () | |
| route_signature: str = "" | |
| class MathIRError(ValueError): | |
| """Raised for a malformed or invalid MathIR program.""" | |
| class _ExpressionParser: | |
| def __init__( | |
| self, | |
| tokens: list[str], | |
| *, | |
| allowed_symbols: frozenset[str], | |
| allow_constants: bool, | |
| ) -> None: | |
| self.tokens = tokens | |
| self.index = 0 | |
| self.allowed_symbols = allowed_symbols | |
| self.allow_constants = bool(allow_constants) | |
| def _take(self, expected: str | None = None) -> str: | |
| if self.index >= len(self.tokens): | |
| raise MathIRError("unexpected end of expression") | |
| token = self.tokens[self.index] | |
| if expected is not None and token != expected: | |
| raise MathIRError(f"expected {expected!r}") | |
| self.index += 1 | |
| return token | |
| def parse(self, *, depth: int = 0) -> Expr: | |
| if depth > _MAX_ARGUMENT_DEPTH: | |
| raise MathIRError("expression nesting is too deep") | |
| token = self._take() | |
| if token in {"(", ")", ",", ";"}: | |
| raise MathIRError("expected a symbol or operator") | |
| if self.index < len(self.tokens) and self.tokens[self.index] == "(": | |
| if token not in _MODEL_OPERATORS: | |
| raise MathIRError(f"unsupported operator {token!r}") | |
| self._take("(") | |
| first = self.parse(depth=depth + 1) | |
| if token == "neg": | |
| self._take(")") | |
| return Expr("neg", (first,)) | |
| self._take(",") | |
| second = self.parse(depth=depth + 1) | |
| self._take(")") | |
| return Expr(token, (first, second)) | |
| if token in self.allowed_symbols: | |
| return Expr("symbol", value=token) | |
| if self.allow_constants and re.fullmatch(r"-?\d+(?:/\d+)?", token): | |
| return Expr("const", value=Fraction(token)) | |
| raise MathIRError(f"unknown symbol {token!r}") | |
| def _tokenize(text: str) -> list[str]: | |
| compact = re.sub(r"\s+", "", str(text)) | |
| if not compact: | |
| raise MathIRError("empty MathIR text") | |
| tokens = _TOKEN_RE.findall(compact) | |
| if "".join(tokens) != compact: | |
| raise MathIRError("unsupported MathIR character or numeric literal") | |
| return tokens | |
| def parse_mathir_expression( | |
| text: str, | |
| *, | |
| allowed_symbols: Iterable[str], | |
| ) -> Expr: | |
| """Parse one model-authored expression without using Python evaluation.""" | |
| tokens = _tokenize(text) | |
| parser = _ExpressionParser( | |
| tokens, | |
| allowed_symbols=frozenset(str(symbol) for symbol in allowed_symbols), | |
| allow_constants=False, | |
| ) | |
| expression = parser.parse() | |
| if parser.index != len(tokens): | |
| raise MathIRError("trailing expression tokens") | |
| if _expr_node_count(expression) > _MAX_ARGUMENT_NODES: | |
| raise MathIRError("expression is too large") | |
| return expression | |
| def _parse_trusted_expression( | |
| text: str, | |
| *, | |
| allowed_symbols: Iterable[str], | |
| ) -> Expr: | |
| """Parse a dataset-owned formal expression. | |
| Dataset expressions currently use no constants, but this separate entry | |
| point makes the trust boundary explicit and permits exact rationals if a | |
| later, versioned reference schema needs them. | |
| """ | |
| tokens = _tokenize(text) | |
| parser = _ExpressionParser( | |
| tokens, | |
| allowed_symbols=frozenset(str(symbol) for symbol in allowed_symbols), | |
| allow_constants=True, | |
| ) | |
| expression = parser.parse() | |
| if parser.index != len(tokens): | |
| raise MathIRError("trailing trusted-expression tokens") | |
| if _expr_node_count(expression) > 31: | |
| raise MathIRError("trusted expression is too large") | |
| return expression | |
| def parse_mathir_program( | |
| text: str, | |
| *, | |
| allowed_symbols: Iterable[str], | |
| max_steps: int, | |
| ) -> tuple[Command, ...]: | |
| """Parse a bounded sequence such as ``sub(b);div(a)``.""" | |
| compact = re.sub(r"\s+", "", str(text)) | |
| if not compact or len(compact) > _MAX_PROGRAM_CHARS: | |
| raise MathIRError("program is empty or too long") | |
| # A final statement terminator is surface formatting, not a new action. | |
| compact = compact[:-1] if compact.endswith(";") else compact | |
| if not compact or compact.startswith(";") or ";;" in compact: | |
| raise MathIRError("empty program command") | |
| command_texts = compact.split(";") | |
| if not 1 <= len(command_texts) <= int(max_steps): | |
| raise MathIRError("program has an invalid number of commands") | |
| commands: list[Command] = [] | |
| for command_text in command_texts: | |
| match = re.fullmatch(r"([A-Za-z][A-Za-z0-9_]*)\((.*)\)", command_text) | |
| if match is None: | |
| raise MathIRError("commands must use op(expression) syntax") | |
| op, argument_text = match.groups() | |
| if op not in _COMMANDS: | |
| raise MathIRError(f"unsupported command {op!r}") | |
| argument = parse_mathir_expression( | |
| argument_text, | |
| allowed_symbols=allowed_symbols, | |
| ) | |
| commands.append(Command(op, argument)) | |
| return tuple(commands) | |
| def _expr_node_count(expression: Expr) -> int: | |
| return 1 + sum(_expr_node_count(argument) for argument in expression.args) | |
| def _expr_symbols(expression: Expr) -> set[str]: | |
| if expression.op == "symbol": | |
| assert isinstance(expression.value, str) | |
| return {expression.value} | |
| return set().union(*(_expr_symbols(argument) for argument in expression.args), set()) | |
| def _fraction_from_reference(value: Any) -> Fraction: | |
| if isinstance(value, bool): | |
| raise MathIRError("boolean binding") | |
| if isinstance(value, int): | |
| return Fraction(value, 1) | |
| if isinstance(value, str) and re.fullmatch(r"-?\d+(?:/[1-9]\d*)?", value.strip()): | |
| return Fraction(value.strip()) | |
| raise MathIRError("bindings must be exact integers or rational strings") | |
| def _expr_to_sympy(expression: Expr) -> sympy.Expr: | |
| if expression.op == "symbol": | |
| assert isinstance(expression.value, str) | |
| return sympy.Symbol(expression.value) | |
| if expression.op == "const": | |
| assert isinstance(expression.value, Fraction) | |
| return sympy.Rational(expression.value.numerator, expression.value.denominator) | |
| converted = tuple(_expr_to_sympy(argument) for argument in expression.args) | |
| if expression.op == "add": | |
| return converted[0] + converted[1] | |
| if expression.op == "sub": | |
| return converted[0] - converted[1] | |
| if expression.op == "mul": | |
| return converted[0] * converted[1] | |
| if expression.op == "div": | |
| return converted[0] / converted[1] | |
| if expression.op == "neg": | |
| return -converted[0] | |
| if expression.op == "inv": | |
| return sympy.Integer(1) / converted[0] | |
| raise MathIRError(f"unsupported internal expression {expression.op!r}") | |
| def _fold(op: str, arguments: tuple[Expr, ...]) -> Expr: | |
| if not arguments: | |
| return Expr("const", value=Fraction(0 if op == "add" else 1, 1)) | |
| result = arguments[0] | |
| for argument in arguments[1:]: | |
| result = Expr(op, (result, argument)) | |
| return result | |
| def _expr_from_sympy(expression: sympy.Expr) -> Expr: | |
| if expression.is_Symbol: | |
| return Expr("symbol", value=str(expression)) | |
| if expression.is_Rational: | |
| return Expr( | |
| "const", | |
| value=Fraction(int(expression.p), int(expression.q)), | |
| ) | |
| if expression.is_Add: | |
| return _fold( | |
| "add", | |
| tuple(_expr_from_sympy(argument) for argument in expression.args), | |
| ) | |
| if expression.is_Mul: | |
| return _fold( | |
| "mul", | |
| tuple(_expr_from_sympy(argument) for argument in expression.args), | |
| ) | |
| if expression.is_Pow and expression.exp == -1: | |
| return Expr("inv", (_expr_from_sympy(expression.base),)) | |
| raise MathIRError(f"normalizer produced unsupported expression {expression!r}") | |
| def _normalize_expr(expression: Expr) -> Expr: | |
| symbolic = _expr_to_sympy(expression) | |
| normalized = sympy.cancel(symbolic) | |
| return _expr_from_sympy(normalized) | |
| def _canonical_parts(expression: Expr) -> tuple[str, ...]: | |
| if expression.op not in {"add", "mul"}: | |
| return (_canonical_expr(expression),) | |
| parts: list[str] = [] | |
| for argument in expression.args: | |
| converted = _canonicalized_expr(argument) | |
| if converted.op == expression.op: | |
| parts.extend(_canonical_parts(converted)) | |
| else: | |
| parts.append(_canonical_expr(converted)) | |
| return tuple(sorted(parts)) | |
| def _canonicalized_expr(expression: Expr) -> Expr: | |
| if expression.op == "sub": | |
| return Expr( | |
| "add", | |
| ( | |
| _canonicalized_expr(expression.args[0]), | |
| Expr("neg", (_canonicalized_expr(expression.args[1]),)), | |
| ), | |
| ) | |
| if expression.op == "div": | |
| return Expr( | |
| "mul", | |
| ( | |
| _canonicalized_expr(expression.args[0]), | |
| Expr("inv", (_canonicalized_expr(expression.args[1]),)), | |
| ), | |
| ) | |
| return Expr( | |
| expression.op, | |
| tuple(_canonicalized_expr(argument) for argument in expression.args), | |
| expression.value, | |
| ) | |
| def _canonical_expr(expression: Expr) -> str: | |
| expression = _canonicalized_expr(expression) | |
| if expression.op == "symbol": | |
| assert isinstance(expression.value, str) | |
| return expression.value | |
| if expression.op == "const": | |
| assert isinstance(expression.value, Fraction) | |
| if expression.value.denominator == 1: | |
| return str(expression.value.numerator) | |
| return f"rat({expression.value.numerator},{expression.value.denominator})" | |
| if expression.op in {"add", "mul"}: | |
| return f"{expression.op}({','.join(_canonical_parts(expression))})" | |
| if expression.op in {"neg", "inv"}: | |
| return f"{expression.op}({_canonical_expr(expression.args[0])})" | |
| raise MathIRError(f"cannot canonicalize {expression.op!r}") | |
| def _canonical_state(state: EquationState) -> str: | |
| return f"eq({_canonical_expr(state.lhs)},{_canonical_expr(state.rhs)})" | |
| def _rename_expr_symbols( | |
| expression: Expr, | |
| symbol_map: Mapping[str, str], | |
| ) -> Expr: | |
| if expression.op == "symbol": | |
| assert isinstance(expression.value, str) | |
| return Expr( | |
| "symbol", | |
| value=symbol_map.get(expression.value, expression.value), | |
| ) | |
| return Expr( | |
| expression.op, | |
| tuple( | |
| _rename_expr_symbols(argument, symbol_map) | |
| for argument in expression.args | |
| ), | |
| expression.value, | |
| ) | |
| def _alpha_canonical_route( | |
| initial_state: EquationState, | |
| commands: tuple[Command, ...], | |
| ) -> str: | |
| """Canonicalize a verified route independently of coefficient names. | |
| At most six coefficient symbols are allowed by the reference schema, so a | |
| small exhaustive alpha-renaming is simpler and safer than relying on | |
| symbol-name or traversal-order heuristics. Numeric binding values never | |
| enter this representation. | |
| """ | |
| symbols = sorted( | |
| ( | |
| _expr_symbols(initial_state.lhs) | |
| | _expr_symbols(initial_state.rhs) | |
| | set().union( | |
| *(_expr_symbols(command.argument) for command in commands), | |
| set(), | |
| ) | |
| ) | |
| - {"x"} | |
| ) | |
| roles = tuple(f"c{index}" for index in range(len(symbols))) | |
| candidates: list[str] = [] | |
| for assigned_symbols in permutations(symbols): | |
| symbol_map = { | |
| symbol: role for symbol, role in zip(assigned_symbols, roles) | |
| } | |
| renamed_initial = EquationState( | |
| _rename_expr_symbols(initial_state.lhs, symbol_map), | |
| _rename_expr_symbols(initial_state.rhs, symbol_map), | |
| ) | |
| command_parts = [] | |
| for command in commands: | |
| renamed_argument = _rename_expr_symbols( | |
| command.argument, | |
| symbol_map, | |
| ) | |
| command_parts.append( | |
| f"{command.op}({_canonical_expr(renamed_argument)})" | |
| ) | |
| candidates.append( | |
| f"init={_canonical_state(renamed_initial)}" | |
| f"|commands={'>'.join(command_parts)}" | |
| ) | |
| if not candidates: | |
| candidates.append( | |
| f"init={_canonical_state(initial_state)}" | |
| f"|commands={'>'.join(command.op for command in commands)}" | |
| ) | |
| return f"mathir-route:{MATHIR_ROUTE_VERSION}:{min(candidates)}" | |
| def _validate_denominators( | |
| expression: Expr, | |
| *, | |
| bindings: Mapping[str, Fraction], | |
| ) -> None: | |
| if expression.op == "div": | |
| denominator = expression.args[1] | |
| if "x" in _expr_symbols(denominator): | |
| raise MathIRError("x-dependent denominators are not supported") | |
| if _eval_fraction(denominator, bindings) == 0: | |
| raise MathIRError("division by zero in command expression") | |
| for argument in expression.args: | |
| _validate_denominators(argument, bindings=bindings) | |
| def _eval_fraction( | |
| expression: Expr, | |
| bindings: Mapping[str, Fraction], | |
| ) -> Fraction: | |
| if expression.op == "symbol": | |
| assert isinstance(expression.value, str) | |
| if expression.value not in bindings: | |
| raise MathIRError("cannot evaluate an expression containing x") | |
| return bindings[expression.value] | |
| if expression.op == "const": | |
| assert isinstance(expression.value, Fraction) | |
| return expression.value | |
| values = tuple(_eval_fraction(argument, bindings) for argument in expression.args) | |
| if expression.op == "add": | |
| return values[0] + values[1] | |
| if expression.op == "sub": | |
| return values[0] - values[1] | |
| if expression.op == "mul": | |
| return values[0] * values[1] | |
| if expression.op == "div": | |
| if values[1] == 0: | |
| raise MathIRError("division by zero") | |
| return values[0] / values[1] | |
| if expression.op == "neg": | |
| return -values[0] | |
| if expression.op == "inv": | |
| if values[0] == 0: | |
| raise MathIRError("division by zero") | |
| return Fraction(1, 1) / values[0] | |
| raise MathIRError(f"cannot evaluate {expression.op!r}") | |
| def _initial_solution( | |
| state: EquationState, | |
| *, | |
| bindings: Mapping[str, Fraction], | |
| ) -> Fraction: | |
| x = sympy.Symbol("x") | |
| substitutions = { | |
| sympy.Symbol(name): sympy.Rational(value.numerator, value.denominator) | |
| for name, value in bindings.items() | |
| } | |
| equation = sympy.cancel( | |
| (_expr_to_sympy(state.lhs) - _expr_to_sympy(state.rhs)).subs(substitutions) | |
| ) | |
| numerator, denominator = sympy.together(equation).as_numer_denom() | |
| if x in denominator.free_symbols: | |
| raise MathIRError("initial equation has an x-dependent denominator") | |
| polynomial = sympy.Poly(sympy.expand(numerator), x) | |
| if polynomial.degree() != 1: | |
| raise MathIRError("initial equation is not uniquely linear") | |
| coefficient = polynomial.coeff_monomial(x) | |
| constant = polynomial.coeff_monomial(1) | |
| if coefficient == 0: | |
| raise MathIRError("initial equation has no unique solution") | |
| solution = sympy.cancel(-constant / coefficient) | |
| if not solution.is_Rational: | |
| raise MathIRError("initial solution is not rational") | |
| return Fraction(int(solution.p), int(solution.q)) | |
| def _apply_command( | |
| state: EquationState, | |
| command: Command, | |
| *, | |
| bindings: Mapping[str, Fraction], | |
| ) -> EquationState: | |
| _validate_denominators(command.argument, bindings=bindings) | |
| argument_symbols = _expr_symbols(command.argument) | |
| if command.op in {"mul", "div"}: | |
| if "x" in argument_symbols: | |
| raise MathIRError("multiplication and division by x are not reversible") | |
| if _eval_fraction(command.argument, bindings) == 0: | |
| raise MathIRError("multiplication and division require a nonzero argument") | |
| if command.op == "add": | |
| lhs = Expr("add", (state.lhs, command.argument)) | |
| rhs = Expr("add", (state.rhs, command.argument)) | |
| elif command.op == "sub": | |
| lhs = Expr("sub", (state.lhs, command.argument)) | |
| rhs = Expr("sub", (state.rhs, command.argument)) | |
| elif command.op == "mul": | |
| lhs = Expr("mul", (state.lhs, command.argument)) | |
| rhs = Expr("mul", (state.rhs, command.argument)) | |
| elif command.op == "div": | |
| lhs = Expr("div", (state.lhs, command.argument)) | |
| rhs = Expr("div", (state.rhs, command.argument)) | |
| else: | |
| raise MathIRError(f"unsupported command {command.op!r}") | |
| # This exact normalizer is part of the interpreter semantics, rather than | |
| # model-authored text which could claim a simplification without doing it. | |
| return EquationState(_normalize_expr(lhs), _normalize_expr(rhs)) | |
| def _validated_reference( | |
| spec: Mapping[str, Any], | |
| ) -> tuple[EquationState, dict[str, Fraction], int]: | |
| if spec.get("verifier") != MATHIR_VERIFIER: | |
| raise MathIRError("wrong verifier") | |
| if spec.get("mathir_version") != MATHIR_VERSION: | |
| raise MathIRError("unsupported MathIR version") | |
| raw_bindings = spec.get("bindings") | |
| if not isinstance(raw_bindings, dict): | |
| raise MathIRError("missing bindings") | |
| if not 1 <= len(raw_bindings) <= _MAX_REFERENCE_SYMBOLS: | |
| raise MathIRError("invalid number of bindings") | |
| bindings: dict[str, Fraction] = {} | |
| for raw_name, raw_value in raw_bindings.items(): | |
| name = str(raw_name) | |
| if not re.fullmatch(r"[a-wyz]", name) or name == "x": | |
| raise MathIRError("binding names must be single lowercase coefficient symbols") | |
| bindings[name] = _fraction_from_reference(raw_value) | |
| if len(bindings) != len(raw_bindings): | |
| raise MathIRError("duplicate binding names") | |
| max_steps = int(spec.get("max_steps", _MAX_PROGRAM_STEPS)) | |
| if not 1 <= max_steps <= _MAX_PROGRAM_STEPS: | |
| raise MathIRError("invalid max_steps") | |
| allowed_symbols = frozenset(bindings) | {"x"} | |
| lhs = _parse_trusted_expression( | |
| str(spec["initial_lhs"]), | |
| allowed_symbols=allowed_symbols, | |
| ) | |
| rhs = _parse_trusted_expression( | |
| str(spec["initial_rhs"]), | |
| allowed_symbols=allowed_symbols, | |
| ) | |
| referenced_coefficients = (_expr_symbols(lhs) | _expr_symbols(rhs)) - {"x"} | |
| if referenced_coefficients != set(bindings): | |
| raise MathIRError("bindings and initial equation symbols disagree") | |
| state = EquationState(_normalize_expr(lhs), _normalize_expr(rhs)) | |
| _initial_solution(state, bindings=bindings) | |
| return state, bindings, max_steps | |
| def _execute_mathir_commands( | |
| *, | |
| initial_state: EquationState, | |
| bindings: Mapping[str, Fraction], | |
| commands: tuple[Command, ...], | |
| key_version: str, | |
| action_ids: tuple[str, ...] = (), | |
| ) -> MathIRValidation: | |
| target_solution = _initial_solution(initial_state, bindings=bindings) | |
| seen = {_canonical_state(initial_state)} | |
| states: list[EquationState] = [] | |
| state = initial_state | |
| for command in commands: | |
| state = _apply_command(state, command, bindings=bindings) | |
| state_key = _canonical_state(state) | |
| if state_key in seen: | |
| raise MathIRError("program revisits a previous equation state") | |
| seen.add(state_key) | |
| states.append(state) | |
| if state.lhs == Expr("symbol", value="x"): | |
| final_expression = state.rhs | |
| elif state.rhs == Expr("symbol", value="x"): | |
| final_expression = state.lhs | |
| else: | |
| raise MathIRError("program does not finish with x isolated") | |
| if "x" in _expr_symbols(final_expression): | |
| raise MathIRError("final expression still contains x") | |
| solution = _eval_fraction(final_expression, bindings) | |
| if solution != target_solution: | |
| raise MathIRError("executed program has the wrong solution") | |
| canonical_key = ( | |
| f"mathir:{key_version}:" | |
| + ">".join(_canonical_state(executed_state) for executed_state in states) | |
| ) | |
| route_signature = _alpha_canonical_route(initial_state, commands) | |
| return MathIRValidation( | |
| canonical_key=canonical_key, | |
| solution=solution, | |
| commands=commands, | |
| states=tuple(states), | |
| action_ids=action_ids, | |
| route_signature=route_signature, | |
| ) | |
| def validate_mathir_algebra( | |
| program_text: str, | |
| spec: Mapping[str, Any], | |
| ) -> MathIRValidation | None: | |
| """Execute and validate a MathIR program, returning its canonical path. | |
| All failures return ``None``. This function is the single admission | |
| boundary used by both task reward and the online canonical bank. | |
| """ | |
| try: | |
| initial_state, bindings, max_steps = _validated_reference(spec) | |
| allowed_symbols = frozenset(bindings) | {"x"} | |
| commands = parse_mathir_program( | |
| program_text, | |
| allowed_symbols=allowed_symbols, | |
| max_steps=max_steps, | |
| ) | |
| return _execute_mathir_commands( | |
| initial_state=initial_state, | |
| bindings=bindings, | |
| commands=commands, | |
| key_version=MATHIR_VERSION, | |
| ) | |
| except Exception: | |
| return None | |
| def _validated_menu_reference( | |
| spec: Mapping[str, Any], | |
| ) -> tuple[ | |
| EquationState, | |
| dict[str, Fraction], | |
| int, | |
| dict[str, Command], | |
| ]: | |
| if spec.get("verifier") != MATHIR_MENU_VERIFIER: | |
| raise MathIRError("wrong menu verifier") | |
| if spec.get("mathir_version") != MATHIR_MENU_VERSION: | |
| raise MathIRError("unsupported menu MathIR version") | |
| base_spec = dict(spec) | |
| base_spec["verifier"] = MATHIR_VERIFIER | |
| base_spec["mathir_version"] = MATHIR_VERSION | |
| initial_state, bindings, max_steps = _validated_reference(base_spec) | |
| raw_actions = spec.get("actions") | |
| if not isinstance(raw_actions, dict): | |
| raise MathIRError("missing action menu") | |
| if not 2 <= len(raw_actions) <= _MAX_MENU_ACTIONS: | |
| raise MathIRError("invalid action menu size") | |
| expected_ids = [chr(ord("A") + index) for index in range(len(raw_actions))] | |
| if list(raw_actions) != expected_ids: | |
| raise MathIRError("action IDs must be contiguous and ordered") | |
| allowed_symbols = frozenset(bindings) | {"x"} | |
| actions: dict[str, Command] = {} | |
| normalized_programs: set[str] = set() | |
| for action_id, raw_program in raw_actions.items(): | |
| if _MENU_ACTION_RE.fullmatch(str(action_id)) is None: | |
| raise MathIRError("invalid action ID") | |
| program = re.sub(r"\s+", "", str(raw_program)) | |
| if program in normalized_programs: | |
| raise MathIRError("duplicate action semantics") | |
| parsed = parse_mathir_program( | |
| program, | |
| allowed_symbols=allowed_symbols, | |
| max_steps=1, | |
| ) | |
| if len(parsed) != 1: | |
| raise MathIRError("each action must contain exactly one command") | |
| normalized_programs.add(program) | |
| actions[str(action_id)] = parsed[0] | |
| return initial_state, bindings, max_steps, actions | |
| def parse_mathir_action_program( | |
| text: str, | |
| *, | |
| action_ids: Iterable[str], | |
| max_steps: int, | |
| ) -> tuple[str, ...]: | |
| """Parse a bounded sequence of prompt-local action IDs.""" | |
| compact = re.sub(r"\s+", "", str(text)) | |
| if not compact or len(compact) > _MAX_PROGRAM_CHARS: | |
| raise MathIRError("action program is empty or too long") | |
| compact = compact[:-1] if compact.endswith(";") else compact | |
| if not compact or compact.startswith(";") or ";;" in compact: | |
| raise MathIRError("empty action") | |
| selected = tuple(compact.split(";")) | |
| if not 1 <= len(selected) <= int(max_steps): | |
| raise MathIRError("action program has an invalid number of steps") | |
| allowed = frozenset(str(action_id) for action_id in action_ids) | |
| if any( | |
| _MENU_ACTION_RE.fullmatch(action_id) is None or action_id not in allowed | |
| for action_id in selected | |
| ): | |
| raise MathIRError("unknown action ID") | |
| return selected | |
| def validate_mathir_action_menu( | |
| program_text: str, | |
| spec: Mapping[str, Any], | |
| ) -> MathIRValidation | None: | |
| """Execute the exact prompt-local action sequence and key its state path.""" | |
| try: | |
| initial_state, bindings, max_steps, actions = _validated_menu_reference(spec) | |
| action_ids = parse_mathir_action_program( | |
| program_text, | |
| action_ids=actions, | |
| max_steps=max_steps, | |
| ) | |
| commands = tuple(actions[action_id] for action_id in action_ids) | |
| return _execute_mathir_commands( | |
| initial_state=initial_state, | |
| bindings=bindings, | |
| commands=commands, | |
| key_version=MATHIR_MENU_VERSION, | |
| action_ids=action_ids, | |
| ) | |
| except Exception: | |
| return None | |
| def enumerate_mathir_action_menu_keys( | |
| spec: Mapping[str, Any], | |
| ) -> set[str]: | |
| """Exhaustively enumerate the bounded menu's distinct verified state paths.""" | |
| return { | |
| validation.canonical_key | |
| for validation in enumerate_mathir_action_menu_validations(spec) | |
| } | |
| def _terminal_solution( | |
| state: EquationState, | |
| *, | |
| bindings: Mapping[str, Fraction], | |
| target_solution: Fraction, | |
| ) -> Fraction | None: | |
| if state.lhs == Expr("symbol", value="x"): | |
| final_expression = state.rhs | |
| elif state.rhs == Expr("symbol", value="x"): | |
| final_expression = state.lhs | |
| else: | |
| return None | |
| if "x" in _expr_symbols(final_expression): | |
| return None | |
| solution = _eval_fraction(final_expression, bindings) | |
| return solution if solution == target_solution else None | |
| def enumerate_mathir_action_menu_validations( | |
| spec: Mapping[str, Any], | |
| ) -> tuple[MathIRValidation, ...]: | |
| """Enumerate exact support while caching deterministic state transitions.""" | |
| initial_state, bindings, max_steps, actions = _validated_menu_reference(spec) | |
| target_solution = _initial_solution(initial_state, bindings=bindings) | |
| transition_cache: dict[ | |
| tuple[str, str], tuple[EquationState, str] | None | |
| ] = {} | |
| admitted: dict[str, MathIRValidation] = {} | |
| def transition( | |
| state: EquationState, | |
| action_id: str, | |
| ) -> tuple[EquationState, str] | None: | |
| state_key = _canonical_state(state) | |
| cache_key = (state_key, action_id) | |
| if cache_key not in transition_cache: | |
| try: | |
| next_state = _apply_command( | |
| state, | |
| actions[action_id], | |
| bindings=bindings, | |
| ) | |
| transition_cache[cache_key] = ( | |
| next_state, | |
| _canonical_state(next_state), | |
| ) | |
| except Exception: | |
| transition_cache[cache_key] = None | |
| return transition_cache[cache_key] | |
| def visit( | |
| state: EquationState, | |
| *, | |
| seen: frozenset[str], | |
| commands: tuple[Command, ...], | |
| action_ids: tuple[str, ...], | |
| states: tuple[EquationState, ...], | |
| ) -> None: | |
| if len(commands) >= max_steps: | |
| return | |
| for action_id in actions: | |
| result = transition(state, action_id) | |
| if result is None: | |
| continue | |
| next_state, next_state_key = result | |
| if next_state_key in seen: | |
| continue | |
| next_commands = commands + (actions[action_id],) | |
| next_action_ids = action_ids + (action_id,) | |
| next_states = states + (next_state,) | |
| solution = _terminal_solution( | |
| next_state, | |
| bindings=bindings, | |
| target_solution=target_solution, | |
| ) | |
| if solution is not None: | |
| canonical_key = ( | |
| f"mathir:{MATHIR_MENU_VERSION}:" | |
| + ">".join( | |
| _canonical_state(executed_state) | |
| for executed_state in next_states | |
| ) | |
| ) | |
| admitted[canonical_key] = MathIRValidation( | |
| canonical_key=canonical_key, | |
| solution=solution, | |
| commands=next_commands, | |
| states=next_states, | |
| action_ids=next_action_ids, | |
| route_signature=_alpha_canonical_route( | |
| initial_state, | |
| next_commands, | |
| ), | |
| ) | |
| visit( | |
| next_state, | |
| seen=seen | {next_state_key}, | |
| commands=next_commands, | |
| action_ids=next_action_ids, | |
| states=next_states, | |
| ) | |
| initial_key = _canonical_state(initial_state) | |
| visit( | |
| initial_state, | |
| seen=frozenset({initial_key}), | |
| commands=(), | |
| action_ids=(), | |
| states=(), | |
| ) | |
| return tuple(admitted[key] for key in sorted(admitted)) | |
| def enumerate_mathir_action_menu_route_signatures( | |
| spec: Mapping[str, Any], | |
| ) -> set[str]: | |
| """Exhaustively enumerate the menu's verified cross-prompt route support.""" | |
| return { | |
| validation.route_signature | |
| for validation in enumerate_mathir_action_menu_validations(spec) | |
| } | |
| def certified_mathir_strategy_keys( | |
| spec: Mapping[str, Any], | |
| programs: Iterable[str], | |
| ) -> set[str]: | |
| """Validate a finite audit list without treating it as exhaustive support.""" | |
| keys: set[str] = set() | |
| for program in programs: | |
| validation = validate_mathir_algebra(program, spec) | |
| if validation is None: | |
| raise MathIRError(f"certified program failed validation: {program}") | |
| keys.add(validation.canonical_key) | |
| return keys | |
| def mathir_command_histogram(validation: MathIRValidation) -> Counter[str]: | |
| """Small diagnostic helper used by audits and tests.""" | |
| return Counter(command.op for command in validation.commands) | |