/* Type analysis. Copyright (C) 2025 Free Software Foundation, Inc. GCC is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 3, or (at your option) any later version. GCC is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with GCC; see the file COPYING3. If not see . */ #include "elna/boot/type_check.h" #include #include namespace elna::boot { non_constant_initializer_error::non_constant_initializer_error(const source_position position) : error(position) { } std::string non_constant_initializer_error::what() const { return "Variable initializers must be constant expressions"; } type_mismatch_error::type_mismatch_error(const source_position position, type expected, type actual) : error(position), expected(std::move(expected)), actual(std::move(actual)) { } std::string type_mismatch_error::what() const { return "Expected type '" + expected.to_string() + "', but got '" + actual.to_string() + "'"; } constant_assignment_error::constant_assignment_error(const source_position position, type assignee) : error(position), assignee(std::move(assignee)) { } std::string constant_assignment_error::what() const { return "Cannot assign to a value of type '" + assignee.to_string() + "', because it is constant or contains constant members"; } field_not_found_error::field_not_found_error(const identifier& field_name, type composite_type) : error(field_name.position()), field_name(field_name.name()), composite_type(std::move(composite_type)) { } std::string field_not_found_error::what() const { type const resolved = resolve_underlying_type(composite_type); bool const is_enum = resolved.get() != nullptr; bool const is_record = resolved.get() != nullptr; if (is_enum || is_record) { std::string message = is_enum ? "Enumeration" : "Record"; if (auto alias = composite_type.get()) { message += " '" + alias->name + "'"; } message += " does not have a "; message += is_enum ? "member" : "field"; message += " named '" + field_name + "'"; return message; } return "Type '" + composite_type.to_string() + "' does not have a field named '" + field_name + "'"; } duplicate_member_error::duplicate_member_error(const boot::identifier& member_name, type aggregate, std::optional original, std::optional base_name) : error(member_name.position()), member_name(member_name.name()), aggregate(std::move(aggregate)), original(original), base_name(std::move(base_name)) { } std::string duplicate_member_error::what() const { type const resolved = resolve_underlying_type(aggregate); bool const is_enum = resolved.get() != nullptr; std::string const kind = is_enum ? "member" : "field"; std::string message = is_enum ? "Enumeration" : "Record"; if (auto alias = aggregate.get()) { message += " '" + alias->name + "'"; } message += " already has a " + kind + " named '" + member_name + "'"; if (base_name.has_value()) { message += " (defined in base type '" + *base_name + "')"; } return message; } std::optional> duplicate_member_error::note() const { if (original.has_value() && original->start().available()) { return std::make_pair("previously declared here", *original); } return std::nullopt; } cyclic_declaration_error::cyclic_declaration_error(const std::vector& cycle, const source_position position) : error(position), cycle(cycle) { } std::string cyclic_declaration_error::what() const { auto segment = std::cbegin(this->cycle); std::string message = "Type declaration forms a cycle: " + *segment; ++segment; for (; segment != std::cend(this->cycle); ++segment) { message += " -> " + *segment; } return message; } return_error::return_error(const std::string& identifier, const source_position position, type return_type) : error(position), identifier(identifier), return_type(std::move(return_type)) { } std::string return_error::what() const { if (!return_type.empty()) { return "Procedure '" + this->identifier + "' does not return a value, but return expression has type '" + return_type.to_string() + "'"; } return "Procedure '" + this->identifier + "' is expected to return, but does not have a return statement"; } base_type_error::base_type_error(type actual, const source_position position) : error(position), actual(std::move(actual)) { } std::string base_type_error::what() const { return "'" + actual.to_string() + "' is not a record type"; } argument_count_error::argument_count_error(std::size_t expected, std::size_t actual, const source_position position) : error(position), expected(expected), actual(actual) { } std::string argument_count_error::what() const { if (actual > expected) { return "Too many arguments, expected " + std::to_string(expected) + ", got " + std::to_string(actual); } else { return "Too few arguments, expected " + std::to_string(expected) + ", got " + std::to_string(actual); } } unsupported_trait_type_error::unsupported_trait_type_error(const identifier& trait, type actual) : error(trait.position()), actual(std::move(actual)), trait_name(trait.name()) { } std::string unsupported_trait_type_error::what() const { return "Type '" + actual.to_string() + "' does not support trait '#" + trait_name + "'"; } unary_operation_error::unary_operation_error(const source_position position, type actual, unary_operator operation) : error(position), actual(std::move(actual)), op(operation) { } char unary_operation_error::unary_operator_symbol(unary_operator operation) { switch (operation) { using enum unary_operator; case reference: return '@'; case negation: return '~'; case minus: return '-'; case plus: return '+'; } __builtin_unreachable(); } std::string unary_operation_error::what() const { return "Type '" + actual.to_string() + "' cannot be used with unary '" + unary_operator_symbol(op) + "'"; } /* * Whether the type itself is constant or has a constant member at any * nesting level, so that values of this type cannot be reassigned as a * whole. Pointers to constants do not make the type itself constant. */ static bool contains_constant_member(const type& checked) { auto referent = resolve_aliases(checked); if (referent.get() != nullptr) { return true; } else if (auto record = referent.get()) { for (const type_field& field : record->fields) { if (contains_constant_member(field.second)) { return true; } } return !record->base.empty() && contains_constant_member(resolve_underlying_type(record->base)); } else if (auto array = referent.get()) { return contains_constant_member(array->base); } return false; } bool type_analysis_visitor::check_unresolved_symbol(const std::shared_ptr& alias, std::vector& alias_path) { if (std::ranges::find(alias_path, alias->name) != std::cend(alias_path)) { return false; } alias_path.push_back(alias->name); if (auto another_alias = alias->referent.get()) { return check_unresolved_symbol(another_alias, alias_path); } return true; } /* * Checks whether derived has base in its record parent chain. * * Base record type must not be null. Derived record type may be null. */ static bool is_base_of(const std::shared_ptr& base, const std::shared_ptr& derived) { if (derived != nullptr) { if (auto current_record = resolve_underlying_type(derived->base).get()) { return current_record == base || is_base_of(base, current_record); } } return false; } assign_check::verdict assign_check::guard_const_laundering() const { if (!is_primitive_type(ctx.aliased_assignee, "Pointer")) { return verdict::pass; } if (auto ptr = ctx.aliased_assignment.get(); ptr != nullptr && resolve_aliases(ptr->base).get() != nullptr) { return verdict::reject; } if (auto const_assign = ctx.aliased_assignment.get(); const_assign != nullptr && is_primitive_type(const_assign->unqualified, "Pointer")) { return verdict::reject; } return verdict::pass; } assign_check::verdict assign_check::check_exact_match() const { return ctx.resolved_assignee == ctx.resolved_assignment ? verdict::accept : verdict::pass; } assign_check::verdict assign_check::check_pointer_hatch() const { if (is_primitive_type(ctx.resolved_assignee, "Pointer") && is_any_pointer_type(ctx.resolved_assignment)) { return verdict::accept; } if (is_primitive_type(ctx.resolved_assignment, "Pointer") && is_any_pointer_type(ctx.resolved_assignee)) { return verdict::accept; } return verdict::pass; } assign_check::verdict assign_check::check_pointer_conversion() const { auto assignee_ptr = ctx.resolved_assignee.get(); auto assignment_ptr = ctx.resolved_assignment.get(); if (assignee_ptr == nullptr || assignment_ptr == nullptr) { return verdict::reject; } auto assignee_pointee_const = resolve_aliases(assignee_ptr->base).get(); auto assignment_pointee_const = resolve_aliases(assignment_ptr->base).get(); // Constness can be added at the first indirection level, but not removed. if (assignee_pointee_const != nullptr && assignee_pointee_const->unqualified == assignment_ptr->base) { return verdict::accept; } if (assignment_pointee_const != nullptr && assignee_pointee_const == nullptr) { return verdict::reject; } // A pointer to a record can be assigned to a pointer to its base type. if (auto assignee_record = resolve_underlying_type(assignee_ptr->base).get()) { return is_base_of(assignee_record, resolve_underlying_type(assignment_ptr->base).get()) ? verdict::accept : verdict::pass; } return verdict::pass; } bool assign_check::run() { for (auto handler : {&assign_check::guard_const_laundering, &assign_check::check_exact_match, &assign_check::check_pointer_hatch, &assign_check::check_pointer_conversion}) { switch ((this->*handler)()) { case verdict::accept: return true; case verdict::reject: return false; case verdict::pass:; } } return false; } bool type_analysis_visitor::is_assignable_from(const type& assignee, const type& assignment) { return assign_check{ resolve_aliases(assignee), resolve_aliases(assignment), resolve_underlying_type(assignee), resolve_underlying_type(assignment) }.run(); } type_analysis_visitor::type_analysis_visitor(symbol_bag bag, const target_info& target) : bag(std::move(bag)), target(target) { } void type_analysis_visitor::visit(procedure_declaration *declaration) { this->current_procedure = this->bag.lookup(declaration->identifier.name())->is_procedure(); if (declaration->body.has_value()) { this->bag.enter(this->current_procedure->scope); } walking_visitor::visit(declaration); if (declaration->body.has_value()) { if (declaration->body.value().return_expression != nullptr) { const expression *return_expr = declaration->body.value().return_expression; type const return_type = this->current_procedure->symbol.return_type.proper_type; if (!return_type.empty()) { if (!is_assignable_from(return_type, return_expr->type_decoration)) { add_error( return_expr->position(), return_type, return_expr->type_decoration); } } else { add_error(declaration->identifier.name(), return_expr->position(), return_expr->type_decoration); } } else if (declaration->heading().return_type.proper_type != nullptr) { add_error(declaration->identifier.name(), declaration->position()); } this->bag.leave(); } this->current_procedure.reset(); } void type_analysis_visitor::visit(unit *unit) { walking_visitor::visit(unit); } void type_analysis_visitor::visit(assign_statement *statement) { walking_visitor::visit(statement); if (contains_constant_member(statement->lvalue().type_decoration)) { add_error(statement->position(), statement->lvalue().type_decoration); } else if (!is_assignable_from(statement->lvalue().type_decoration, statement->rvalue().type_decoration)) { add_error(statement->position(), statement->lvalue().type_decoration, statement->rvalue().type_decoration); } } void type_analysis_visitor::visit(variable_declaration *declaration) { walking_visitor::visit(declaration); if (declaration->initializer == nullptr || has_errors()) { return; } evaluator constant_evaluator(this->bag, this->target, this->evaluated_initializers); if (!constant_evaluator.evaluate(*declaration->initializer)) { add_error(declaration->initializer->position()); return; } // Record const variable initializers so later declarations // can chain through them. for (const auto& identifier : declaration->identifiers) { if (auto var = this->bag.lookup(identifier.name())->is_variable(); resolve_aliases(var->symbol).get() != nullptr) { this->evaluated_initializers[identifier.name()] = declaration->initializer; } } for (const identifier_definition& variable_identifier : declaration->identifiers) { auto variable_symbol = this->bag.lookup(variable_identifier.name())->is_variable(); if (!is_assignable_from(variable_symbol->symbol, declaration->initializer->type_decoration)) { add_error( declaration->initializer->position(), variable_symbol->symbol, declaration->initializer->type_decoration); } } } void type_analysis_visitor::visit(case_statement *statement) { walking_visitor::visit(statement); type const condition_type = resolve_underlying_type(statement->condition().type_decoration); for (const switch_case& case_block : statement->cases) { for (const expression *case_label : case_block.labels) { if (!is_assignable_from(condition_type, case_label->type_decoration)) { add_error( case_label->position(), condition_type, case_label->type_decoration); } } } } void type_analysis_visitor::visit(type_declaration *declaration) { std::vector alias_path; auto unresolved_type = this->bag.lookup(declaration->identifier.name())->is_type()->symbol.get(); if (!check_unresolved_symbol(unresolved_type, alias_path)) { add_error(alias_path, declaration->position()); } else { walking_visitor::visit(declaration); } } void type_analysis_visitor::visit(record_type_expression *expression) { if (expression->base.has_value()) { type const base_type = resolve_underlying_type(this->bag.lookup(expression->base.value().name())->is_type()->symbol); if (base_type.get() == nullptr) { add_error(base_type, expression->position()); } } walking_visitor::visit(expression); } void type_analysis_visitor::visit(procedure_call *call) { call->callable().accept(this); if (auto procedure = call->callable().type_decoration.get()) { std::vector::const_iterator argument_iterator = std::cbegin(call->arguments); std::vector::const_iterator type_iterator = std::cbegin(procedure->parameters); while (argument_iterator != std::cend(call->arguments) && type_iterator != std::cend(procedure->parameters)) { (*argument_iterator)->accept(this); if (!is_assignable_from(*type_iterator, (*argument_iterator)->type_decoration)) { add_error( (*argument_iterator)->position(), *type_iterator, (*argument_iterator)->type_decoration); } ++argument_iterator; ++type_iterator; } if (call->arguments.size() != procedure->parameters.size()) { add_error(procedure->parameters.size(), call->arguments.size(), call->position()); } } } void type_analysis_visitor::visit(record_constructor_expression *expression) { auto record = resolve_underlying_type(expression->type_decoration).get(); if (record == nullptr) { add_error( expression->position(), type(std::make_shared()), expression->type_decoration); return; } for (const field_initializer& initializer : expression->field_initializers) { for (const type_field& field : record->fields) { if (field.first == initializer.name()) { if (!is_assignable_from(field.second, initializer.value().type_decoration)) { add_error( initializer.value().position(), field.second, initializer.value().type_decoration); } break; } } } } void type_analysis_visitor::visit(array_constructor_expression *expression) { auto array = resolve_underlying_type(expression->type_decoration).get(); if (array == nullptr) { add_error( expression->position(), type(std::make_shared(type(), 0)), expression->type_decoration); return; } if (expression->elements.size() > array->size) { add_error(array->size, expression->elements.size(), expression->position()); return; } for (auto *element : expression->elements) { if (!is_assignable_from(array->base, element->type_decoration)) { add_error( element->position(), array->base, element->type_decoration); } } } void type_analysis_visitor::visit(unary_expression *expression) { walking_visitor::visit(expression); auto operation = expression->operation(); type const resolved = resolve_underlying_type(expression->operand().type_decoration); if (operation == unary_operator::plus) { if (!is_numeric_type(resolved)) { add_error(expression->position(), expression->operand().type_decoration, operation); } } else if (operation == unary_operator::minus) { if (!is_primitive_type(resolved, "Int") && !is_primitive_type(resolved, "Float")) { add_error(expression->position(), expression->operand().type_decoration, operation); } } else if (operation == unary_operator::negation) { if (!is_primitive_type(resolved, "Bool") && !is_integral_type(resolved)) { add_error(expression->position(), expression->operand().type_decoration, operation); } } } }