mirror of
https://github.com/carbon-language/carbon-lang.git
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In particular, this means that a type can implement `ImplicitAs(Type)` and have values of that type behave like types.
This implies that `()` and `{}` are no longer types. They are now values whose type is the result of converting `()` or `{}` to type `Type`, as has been discussed recently and seems to be the supported direction. This fixes various cases where these types were previously mishandled.
328 lines
13 KiB
C++
328 lines
13 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "explorer/interpreter/resolve_unformed.h"
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#include <unordered_map>
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#include "common/check.h"
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#include "explorer/ast/ast.h"
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#include "explorer/ast/expression.h"
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#include "explorer/ast/pattern.h"
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#include "explorer/common/nonnull.h"
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using llvm::cast;
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namespace Carbon {
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auto FlowFacts::TakeAction(Nonnull<const AstNode*> node, ActionType action,
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SourceLocation source_loc, const std::string& name)
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-> ErrorOr<Success> {
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switch (action) {
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case ActionType::AddInit: {
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AddFact(node, FormedState::MustBeFormed);
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break;
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}
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case ActionType::AddUninit: {
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AddFact(node, FormedState::Unformed);
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break;
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}
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case ActionType::Form: {
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// TODO: Use CARBON_CHECK when we are able to handle global variables.
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auto entry = facts_.find(node);
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if (entry != facts_.end() &&
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entry->second.formed_state == FormedState::Unformed) {
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entry->second.formed_state = FormedState::MayBeFormed;
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}
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break;
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}
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case ActionType::Check: {
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// TODO: @slaterlatiao add all available value nodes to flow facts and use
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// CARBON_CHECK on the following line.
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auto entry = facts_.find(node);
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if (entry != facts_.end() &&
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entry->second.formed_state == FormedState::Unformed) {
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return ProgramError(source_loc)
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<< "use of uninitialized variable " << name;
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}
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break;
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}
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case ActionType::None:
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break;
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}
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return Success();
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}
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// Traverses the sub-AST rooted at the given node, resolving the formed/unformed
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// states of local variables within it and updating the flow facts.
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static auto ResolveUnformed(Nonnull<const Expression*> expression,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success>;
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static auto ResolveUnformed(Nonnull<const Pattern*> pattern,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success>;
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static auto ResolveUnformed(Nonnull<const Statement*> statement,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success>;
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static auto ResolveUnformed(Nonnull<const Declaration*> declaration)
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-> ErrorOr<Success>;
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static auto ResolveUnformed(Nonnull<const Expression*> expression,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success> {
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switch (expression->kind()) {
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case ExpressionKind::IdentifierExpression: {
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const auto& identifier = cast<IdentifierExpression>(*expression);
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CARBON_RETURN_IF_ERROR(
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flow_facts.TakeAction(&identifier.value_node().base(), action,
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identifier.source_loc(), identifier.name()));
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break;
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}
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case ExpressionKind::CallExpression: {
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const auto& call = cast<CallExpression>(*expression);
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(&call.argument(), flow_facts, action));
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break;
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}
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case ExpressionKind::TupleLiteral:
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for (Nonnull<const Expression*> field :
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cast<TupleLiteral>(*expression).fields()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(field, flow_facts, action));
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}
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break;
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case ExpressionKind::OperatorExpression: {
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const auto& opt_exp = cast<OperatorExpression>(*expression);
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if (opt_exp.op() == Operator::AddressOf) {
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CARBON_CHECK(opt_exp.arguments().size() == 1)
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<< "OperatorExpression with op & can only have 1 argument";
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CARBON_RETURN_IF_ERROR(
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// When a variable is taken address of, defer the unformed check to
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// runtime. A more sound analysis can be implemented when a
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// points-to analysis is available.
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ResolveUnformed(opt_exp.arguments().front(), flow_facts,
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FlowFacts::ActionType::Form));
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} else {
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for (Nonnull<const Expression*> operand : opt_exp.arguments()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(operand, flow_facts, action));
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}
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}
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break;
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}
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case ExpressionKind::StructLiteral:
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for (const FieldInitializer& init :
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cast<StructLiteral>(*expression).fields()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&init.expression(), flow_facts,
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FlowFacts::ActionType::Check));
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}
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break;
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case ExpressionKind::SimpleMemberAccessExpression:
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CARBON_RETURN_IF_ERROR(ResolveUnformed(
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&cast<SimpleMemberAccessExpression>(*expression).object(), flow_facts,
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FlowFacts::ActionType::Check));
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break;
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case ExpressionKind::BuiltinConvertExpression:
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CARBON_RETURN_IF_ERROR(ResolveUnformed(
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cast<BuiltinConvertExpression>(*expression).source_expression(),
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flow_facts, FlowFacts::ActionType::Check));
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break;
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case ExpressionKind::DotSelfExpression:
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case ExpressionKind::IntLiteral:
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case ExpressionKind::BoolLiteral:
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case ExpressionKind::BoolTypeLiteral:
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case ExpressionKind::IntTypeLiteral:
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case ExpressionKind::StringLiteral:
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case ExpressionKind::StringTypeLiteral:
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case ExpressionKind::TypeTypeLiteral:
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case ExpressionKind::ContinuationTypeLiteral:
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case ExpressionKind::ValueLiteral:
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case ExpressionKind::IndexExpression:
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case ExpressionKind::CompoundMemberAccessExpression:
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case ExpressionKind::IfExpression:
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case ExpressionKind::WhereExpression:
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case ExpressionKind::StructTypeLiteral:
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case ExpressionKind::IntrinsicExpression:
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case ExpressionKind::UnimplementedExpression:
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case ExpressionKind::FunctionTypeLiteral:
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case ExpressionKind::ArrayTypeLiteral:
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break;
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}
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return Success();
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}
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static auto ResolveUnformed(Nonnull<const Pattern*> pattern,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success> {
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switch (pattern->kind()) {
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case PatternKind::BindingPattern: {
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const auto& binding_pattern = cast<BindingPattern>(*pattern);
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CARBON_RETURN_IF_ERROR(flow_facts.TakeAction(&binding_pattern, action,
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binding_pattern.source_loc(),
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binding_pattern.name()));
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} break;
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case PatternKind::TuplePattern:
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for (Nonnull<const Pattern*> field :
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cast<TuplePattern>(*pattern).fields()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(field, flow_facts, action));
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}
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break;
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case PatternKind::GenericBinding:
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case PatternKind::AlternativePattern:
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case PatternKind::ExpressionPattern:
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case PatternKind::AutoPattern:
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case PatternKind::VarPattern:
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case PatternKind::AddrPattern:
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// do nothing
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break;
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}
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return Success();
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}
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static auto ResolveUnformed(Nonnull<const Statement*> statement,
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FlowFacts& flow_facts, FlowFacts::ActionType action)
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-> ErrorOr<Success> {
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switch (statement->kind()) {
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case StatementKind::Block: {
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const auto& block = cast<Block>(*statement);
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for (const auto* block_statement : block.statements()) {
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(block_statement, flow_facts, action));
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}
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break;
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}
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case StatementKind::VariableDefinition: {
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const auto& def = cast<VariableDefinition>(*statement);
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if (def.has_init()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&def.pattern(), flow_facts,
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FlowFacts::ActionType::AddInit));
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&def.init(), flow_facts,
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FlowFacts::ActionType::Check));
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} else {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(
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&def.pattern(), flow_facts, FlowFacts::ActionType::AddUninit));
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}
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break;
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}
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case StatementKind::ReturnVar: {
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const auto& ret_var = cast<ReturnVar>(*statement);
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const auto& binding_pattern =
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cast<BindingPattern>(ret_var.value_node().base());
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CARBON_RETURN_IF_ERROR(
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flow_facts.TakeAction(&binding_pattern, FlowFacts::ActionType::Check,
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ret_var.source_loc(), binding_pattern.name()));
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break;
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}
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case StatementKind::ReturnExpression: {
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const auto& ret_exp_stmt = cast<ReturnExpression>(*statement);
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&ret_exp_stmt.expression(),
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flow_facts,
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FlowFacts::ActionType::Check));
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break;
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}
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case StatementKind::Assign: {
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const auto& assign = cast<Assign>(*statement);
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if (assign.lhs().kind() == ExpressionKind::IdentifierExpression) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&assign.lhs(), flow_facts,
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FlowFacts::ActionType::Form));
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} else {
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// TODO: Support checking non-identifier lhs expression.
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&assign.lhs(), flow_facts,
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FlowFacts::ActionType::None));
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}
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&assign.rhs(), flow_facts,
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FlowFacts::ActionType::Check));
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break;
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}
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case StatementKind::ExpressionStatement: {
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const auto& exp_stmt = cast<ExpressionStatement>(*statement);
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(&exp_stmt.expression(), flow_facts, action));
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break;
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}
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case StatementKind::If: {
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const auto& if_stmt = cast<If>(*statement);
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&if_stmt.condition(), flow_facts,
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FlowFacts::ActionType::Check));
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(&if_stmt.then_block(), flow_facts, action));
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if (if_stmt.else_block().has_value()) {
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(*if_stmt.else_block(), flow_facts, action));
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}
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break;
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}
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case StatementKind::While: {
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const auto& while_stmt = cast<While>(*statement);
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CARBON_RETURN_IF_ERROR(ResolveUnformed(
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&while_stmt.condition(), flow_facts, FlowFacts::ActionType::Check));
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(&while_stmt.body(), flow_facts, action));
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break;
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}
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case StatementKind::Match: {
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const auto& match = cast<Match>(*statement);
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&match.expression(), flow_facts,
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FlowFacts::ActionType::Check));
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for (const auto& clause : match.clauses()) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(&clause.pattern(), flow_facts,
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FlowFacts::ActionType::Check));
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CARBON_RETURN_IF_ERROR(
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ResolveUnformed(&clause.statement(), flow_facts, action));
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}
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break;
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}
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case StatementKind::Break:
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case StatementKind::Continue:
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case StatementKind::Continuation:
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case StatementKind::Run:
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case StatementKind::Await:
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case StatementKind::For:
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// do nothing
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break;
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}
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return Success();
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}
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static auto ResolveUnformed(Nonnull<const Declaration*> declaration)
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-> ErrorOr<Success> {
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switch (declaration->kind()) {
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// Checks formed/unformed state intraprocedurally.
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// Can be extended to an interprocedural analysis when a call graph is
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// available.
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case DeclarationKind::FunctionDeclaration:
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case DeclarationKind::DestructorDeclaration: {
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const auto& callable = cast<CallableDeclaration>(*declaration);
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if (callable.body().has_value()) {
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FlowFacts flow_facts;
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CARBON_RETURN_IF_ERROR(ResolveUnformed(*callable.body(), flow_facts,
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FlowFacts::ActionType::None));
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}
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break;
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}
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case DeclarationKind::ClassDeclaration:
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case DeclarationKind::MixDeclaration:
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case DeclarationKind::MixinDeclaration:
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case DeclarationKind::InterfaceDeclaration:
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case DeclarationKind::ImplDeclaration:
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case DeclarationKind::ChoiceDeclaration:
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case DeclarationKind::VariableDeclaration:
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case DeclarationKind::InterfaceExtendsDeclaration:
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case DeclarationKind::InterfaceImplDeclaration:
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case DeclarationKind::AssociatedConstantDeclaration:
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case DeclarationKind::SelfDeclaration:
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case DeclarationKind::AliasDeclaration:
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// do nothing
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break;
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}
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return Success();
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}
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auto ResolveUnformed(const AST& ast) -> ErrorOr<Success> {
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for (auto* declaration : ast.declarations) {
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CARBON_RETURN_IF_ERROR(ResolveUnformed(declaration));
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}
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return Success();
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}
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} // namespace Carbon
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