mirror of
https://github.com/carbon-language/carbon-lang.git
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Part of switching to the [abbreviations we've decided to use](https://docs.google.com/document/d/1RRYMm42osyqhI2LyjrjockYCutQ5dOf8Abu50kTrkX0/edit?resourcekey=0-kHyqOESbOHmzZphUbtLrTw#heading=h.pph7i5m5un7q). I will rename files in a follow-up PR.
1094 lines
41 KiB
C++
1094 lines
41 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 "toolchain/check/context.h"
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#include <string>
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#include <utility>
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#include "common/check.h"
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#include "common/vlog.h"
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#include "llvm/ADT/Sequence.h"
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#include "toolchain/check/declaration_name_stack.h"
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#include "toolchain/check/inst_block_stack.h"
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#include "toolchain/lex/tokenized_buffer.h"
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#include "toolchain/parse/node_kind.h"
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#include "toolchain/sem_ir/file.h"
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#include "toolchain/sem_ir/inst.h"
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#include "toolchain/sem_ir/inst_kind.h"
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namespace Carbon::Check {
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Context::Context(const Lex::TokenizedBuffer& tokens, DiagnosticEmitter& emitter,
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const Parse::Tree& parse_tree, SemIR::File& sem_ir,
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llvm::raw_ostream* vlog_stream)
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: tokens_(&tokens),
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emitter_(&emitter),
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parse_tree_(&parse_tree),
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sem_ir_(&sem_ir),
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vlog_stream_(vlog_stream),
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node_stack_(parse_tree, vlog_stream),
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inst_block_stack_("inst_block_stack_", sem_ir, vlog_stream),
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params_or_args_stack_("params_or_args_stack_", sem_ir, vlog_stream),
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args_type_info_stack_("args_type_info_stack_", sem_ir, vlog_stream),
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decl_name_stack_(this) {
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// Inserts the "Error" and "Type" types as "used types" so that
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// canonicalization can skip them. We don't emit either for lowering.
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canonical_types_.insert({SemIR::InstId::BuiltinError, SemIR::TypeId::Error});
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canonical_types_.insert(
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{SemIR::InstId::BuiltinTypeType, SemIR::TypeId::TypeType});
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}
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auto Context::TODO(Parse::Node parse_node, std::string label) -> bool {
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CARBON_DIAGNOSTIC(SemanticsTodo, Error, "Semantics TODO: `{0}`.",
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std::string);
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emitter_->Emit(parse_node, SemanticsTodo, std::move(label));
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return false;
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}
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auto Context::VerifyOnFinish() -> void {
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// Information in all the various context objects should be cleaned up as
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// various pieces of context go out of scope. At this point, nothing should
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// remain.
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// node_stack_ will still contain top-level entities.
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CARBON_CHECK(name_lookup_.empty()) << name_lookup_.size();
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CARBON_CHECK(scope_stack_.empty()) << scope_stack_.size();
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CARBON_CHECK(inst_block_stack_.empty()) << inst_block_stack_.size();
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CARBON_CHECK(params_or_args_stack_.empty()) << params_or_args_stack_.size();
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}
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auto Context::AddInst(SemIR::Inst inst) -> SemIR::InstId {
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auto inst_id = inst_block_stack_.AddInst(inst);
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CARBON_VLOG() << "AddInst: " << inst << "\n";
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return inst_id;
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}
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auto Context::AddConstantInst(SemIR::Inst inst) -> SemIR::InstId {
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auto inst_id = insts().AddInNoBlock(inst);
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constants().Add(inst_id);
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CARBON_VLOG() << "AddConstantInst: " << inst << "\n";
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return inst_id;
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}
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auto Context::AddInstAndPush(Parse::Node parse_node, SemIR::Inst inst) -> void {
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auto inst_id = AddInst(inst);
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node_stack_.Push(parse_node, inst_id);
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}
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auto Context::DiagnoseDuplicateName(Parse::Node parse_node,
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SemIR::InstId prev_def_id) -> void {
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CARBON_DIAGNOSTIC(NameDeclDuplicate, Error,
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"Duplicate name being declared in the same scope.");
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CARBON_DIAGNOSTIC(NameDeclPrevious, Note,
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"Name is previously declared here.");
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auto prev_def = insts().Get(prev_def_id);
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emitter_->Build(parse_node, NameDeclDuplicate)
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.Note(prev_def.parse_node(), NameDeclPrevious)
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.Emit();
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}
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auto Context::DiagnoseNameNotFound(Parse::Node parse_node,
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SemIR::NameId name_id) -> void {
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CARBON_DIAGNOSTIC(NameNotFound, Error, "Name `{0}` not found.",
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llvm::StringRef);
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emitter_->Emit(parse_node, NameNotFound, names().GetFormatted(name_id));
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}
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auto Context::NoteIncompleteClass(SemIR::ClassId class_id,
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DiagnosticBuilder& builder) -> void {
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CARBON_DIAGNOSTIC(ClassForwardDeclaredHere, Note,
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"Class was forward declared here.");
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CARBON_DIAGNOSTIC(ClassIncompleteWithinDefinition, Note,
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"Class is incomplete within its definition.");
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const auto& class_info = classes().Get(class_id);
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CARBON_CHECK(!class_info.is_defined()) << "Class is not incomplete";
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if (class_info.definition_id.is_valid()) {
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builder.Note(insts().Get(class_info.definition_id).parse_node(),
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ClassIncompleteWithinDefinition);
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} else {
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builder.Note(insts().Get(class_info.decl_id).parse_node(),
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ClassForwardDeclaredHere);
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}
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}
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auto Context::AddNameToLookup(Parse::Node name_node, SemIR::NameId name_id,
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SemIR::InstId target_id) -> void {
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if (current_scope().names.insert(name_id).second) {
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// TODO: Reject if we previously performed a failed lookup for this name in
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// this scope or a scope nested within it.
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auto& lexical_results = name_lookup_[name_id];
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CARBON_CHECK(lexical_results.empty() ||
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lexical_results.back().scope_index < current_scope_index())
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<< "Failed to clean up after scope nested within the current scope";
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lexical_results.push_back(
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{.node_id = target_id, .scope_index = current_scope_index()});
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} else {
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DiagnoseDuplicateName(name_node, name_lookup_[name_id].back().node_id);
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}
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}
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auto Context::LookupNameInDecl(Parse::Node parse_node, SemIR::NameId name_id,
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SemIR::NameScopeId scope_id) -> SemIR::InstId {
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if (scope_id == SemIR::NameScopeId::Invalid) {
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// Look for a name in the current scope only. There are two cases where the
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// name would be in an outer scope:
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//
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// - The name is the sole component of the declared name:
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//
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// class A;
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// fn F() {
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// class A;
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// }
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//
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// In this case, the inner A is not the same class as the outer A, so
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// lookup should not find the outer A.
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//
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// - The name is a qualifier of some larger declared name:
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//
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// class A { class B; }
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// fn F() {
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// class A.B {}
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// }
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//
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// In this case, we're not in the correct scope to define a member of
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// class A, so we should reject, and we achieve this by not finding the
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// name A from the outer scope.
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if (auto name_it = name_lookup_.find(name_id);
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name_it != name_lookup_.end()) {
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CARBON_CHECK(!name_it->second.empty())
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<< "Should have been erased: " << names().GetFormatted(name_id);
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auto result = name_it->second.back();
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if (result.scope_index == current_scope_index()) {
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return result.node_id;
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}
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}
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return SemIR::InstId::Invalid;
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} else {
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// TODO: Once we support `extend`, do not look into `extend`ed scopes here,
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// following the same logic as above.
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return LookupQualifiedName(parse_node, name_id, scope_id,
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/*required=*/false);
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}
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}
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auto Context::LookupUnqualifiedName(Parse::Node parse_node,
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SemIR::NameId name_id) -> SemIR::InstId {
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// TODO: Check for shadowed lookup results.
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// Find the results from enclosing lexical scopes. These will be combined with
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// results from non-lexical scopes such as namespaces and classes.
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llvm::ArrayRef<LexicalLookupResult> lexical_results;
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if (auto name_it = name_lookup_.find(name_id);
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name_it != name_lookup_.end()) {
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lexical_results = name_it->second;
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CARBON_CHECK(!lexical_results.empty())
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<< "Should have been erased: " << names().GetFormatted(name_id);
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}
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// Walk the non-lexical scopes and perform lookups into each of them.
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for (auto [index, name_scope_id] : llvm::reverse(non_lexical_scope_stack_)) {
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// If the innermost lexical result is within this non-lexical scope, then
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// it shadows all further non-lexical results and we're done.
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if (!lexical_results.empty() &&
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lexical_results.back().scope_index > index) {
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return lexical_results.back().node_id;
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}
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auto non_lexical_result =
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LookupQualifiedName(parse_node, name_id, name_scope_id,
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/*required=*/false);
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if (non_lexical_result.is_valid()) {
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return non_lexical_result;
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}
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}
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if (!lexical_results.empty()) {
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return lexical_results.back().node_id;
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}
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// We didn't find anything at all.
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DiagnoseNameNotFound(parse_node, name_id);
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return SemIR::InstId::BuiltinError;
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}
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auto Context::LookupQualifiedName(Parse::Node parse_node, SemIR::NameId name_id,
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SemIR::NameScopeId scope_id, bool required)
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-> SemIR::InstId {
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CARBON_CHECK(scope_id.is_valid()) << "No scope to perform lookup into";
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const auto& scope = name_scopes().Get(scope_id);
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auto it = scope.find(name_id);
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if (it == scope.end()) {
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// TODO: Also perform lookups into `extend`ed scopes.
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if (required) {
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DiagnoseNameNotFound(parse_node, name_id);
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return SemIR::InstId::BuiltinError;
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}
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return SemIR::InstId::Invalid;
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}
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return it->second;
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}
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auto Context::PushScope(SemIR::InstId scope_inst_id,
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SemIR::NameScopeId scope_id) -> void {
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scope_stack_.push_back({.index = next_scope_index_,
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.scope_inst_id = scope_inst_id,
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.scope_id = scope_id});
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if (scope_id.is_valid()) {
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non_lexical_scope_stack_.push_back({next_scope_index_, scope_id});
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}
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// TODO: Handle this case more gracefully.
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CARBON_CHECK(next_scope_index_.index != std::numeric_limits<int32_t>::max())
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<< "Ran out of scopes";
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++next_scope_index_.index;
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}
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auto Context::PopScope() -> void {
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auto scope = scope_stack_.pop_back_val();
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for (const auto& str_id : scope.names) {
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auto it = name_lookup_.find(str_id);
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CARBON_CHECK(it->second.back().scope_index == scope.index)
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<< "Inconsistent scope index for name " << names().GetFormatted(str_id);
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if (it->second.size() == 1) {
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// Erase names that no longer resolve.
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name_lookup_.erase(it);
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} else {
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it->second.pop_back();
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}
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}
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if (scope.scope_id.is_valid()) {
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CARBON_CHECK(non_lexical_scope_stack_.back().first == scope.index);
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non_lexical_scope_stack_.pop_back();
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}
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}
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auto Context::PopToScope(ScopeIndex index) -> void {
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while (current_scope_index() > index) {
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PopScope();
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}
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CARBON_CHECK(current_scope_index() == index)
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<< "Scope index " << index << " does not enclose the current scope "
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<< current_scope_index();
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}
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auto Context::FollowNameReferences(SemIR::InstId inst_id) -> SemIR::InstId {
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while (auto name_ref = insts().Get(inst_id).TryAs<SemIR::NameReference>()) {
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inst_id = name_ref->value_id;
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}
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return inst_id;
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}
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auto Context::GetConstantValue(SemIR::InstId inst_id) -> SemIR::InstId {
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// TODO: The constant value of an instruction should be computed as we build
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// the instruction, or at least cached once computed.
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while (true) {
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auto inst = insts().Get(inst_id);
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switch (inst.kind()) {
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case SemIR::NameReference::Kind:
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inst_id = inst.As<SemIR::NameReference>().value_id;
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break;
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case SemIR::BindName::Kind:
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inst_id = inst.As<SemIR::BindName>().value_id;
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break;
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case SemIR::Field::Kind:
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case SemIR::FunctionDecl::Kind:
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return inst_id;
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default:
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// TODO: Handle the remaining cases.
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return SemIR::InstId::Invalid;
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}
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}
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}
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template <typename BranchNode, typename... Args>
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static auto AddDominatedBlockAndBranchImpl(Context& context,
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Parse::Node parse_node, Args... args)
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-> SemIR::InstBlockId {
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if (!context.inst_block_stack().is_current_block_reachable()) {
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return SemIR::InstBlockId::Unreachable;
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}
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auto block_id = context.inst_blocks().AddDefaultValue();
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context.AddInst(BranchNode{parse_node, block_id, args...});
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return block_id;
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}
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auto Context::AddDominatedBlockAndBranch(Parse::Node parse_node)
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-> SemIR::InstBlockId {
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return AddDominatedBlockAndBranchImpl<SemIR::Branch>(*this, parse_node);
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}
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auto Context::AddDominatedBlockAndBranchWithArg(Parse::Node parse_node,
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SemIR::InstId arg_id)
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-> SemIR::InstBlockId {
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return AddDominatedBlockAndBranchImpl<SemIR::BranchWithArg>(*this, parse_node,
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arg_id);
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}
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auto Context::AddDominatedBlockAndBranchIf(Parse::Node parse_node,
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SemIR::InstId cond_id)
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-> SemIR::InstBlockId {
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return AddDominatedBlockAndBranchImpl<SemIR::BranchIf>(*this, parse_node,
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cond_id);
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}
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auto Context::AddConvergenceBlockAndPush(Parse::Node parse_node, int num_blocks)
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-> void {
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CARBON_CHECK(num_blocks >= 2) << "no convergence";
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SemIR::InstBlockId new_block_id = SemIR::InstBlockId::Unreachable;
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for ([[maybe_unused]] auto _ : llvm::seq(num_blocks)) {
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if (inst_block_stack().is_current_block_reachable()) {
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if (new_block_id == SemIR::InstBlockId::Unreachable) {
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new_block_id = inst_blocks().AddDefaultValue();
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}
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AddInst(SemIR::Branch{parse_node, new_block_id});
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}
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inst_block_stack().Pop();
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}
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inst_block_stack().Push(new_block_id);
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}
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auto Context::AddConvergenceBlockWithArgAndPush(
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Parse::Node parse_node, std::initializer_list<SemIR::InstId> block_args)
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-> SemIR::InstId {
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CARBON_CHECK(block_args.size() >= 2) << "no convergence";
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SemIR::InstBlockId new_block_id = SemIR::InstBlockId::Unreachable;
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for (auto arg_id : block_args) {
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if (inst_block_stack().is_current_block_reachable()) {
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if (new_block_id == SemIR::InstBlockId::Unreachable) {
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new_block_id = inst_blocks().AddDefaultValue();
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}
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AddInst(SemIR::BranchWithArg{parse_node, new_block_id, arg_id});
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}
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inst_block_stack().Pop();
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}
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inst_block_stack().Push(new_block_id);
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// Acquire the result value.
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SemIR::TypeId result_type_id = insts().Get(*block_args.begin()).type_id();
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return AddInst(SemIR::BlockArg{parse_node, result_type_id, new_block_id});
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}
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// Add the current code block to the enclosing function.
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auto Context::AddCurrentCodeBlockToFunction(Parse::Node parse_node) -> void {
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CARBON_CHECK(!inst_block_stack().empty()) << "no current code block";
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if (return_scope_stack().empty()) {
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CARBON_CHECK(parse_node.is_valid())
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<< "No current function, but parse_node not provided";
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TODO(parse_node,
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"Control flow expressions are currently only supported inside "
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"functions.");
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return;
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}
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if (!inst_block_stack().is_current_block_reachable()) {
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// Don't include unreachable blocks in the function.
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return;
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}
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auto function_id =
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insts()
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.GetAs<SemIR::FunctionDecl>(return_scope_stack().back())
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.function_id;
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functions()
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.Get(function_id)
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.body_block_ids.push_back(inst_block_stack().PeekOrAdd());
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}
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auto Context::is_current_position_reachable() -> bool {
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if (!inst_block_stack().is_current_block_reachable()) {
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return false;
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}
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// Our current position is at the end of a reachable block. That position is
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// reachable unless the previous instruction is a terminator instruction.
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auto block_contents = inst_block_stack().PeekCurrentBlockContents();
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if (block_contents.empty()) {
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return true;
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}
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const auto& last_inst = insts().Get(block_contents.back());
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return last_inst.kind().terminator_kind() !=
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SemIR::TerminatorKind::Terminator;
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}
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auto Context::ParamOrArgStart() -> void { params_or_args_stack_.Push(); }
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auto Context::ParamOrArgComma() -> void {
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ParamOrArgSave(node_stack_.PopExpr());
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}
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auto Context::ParamOrArgEndNoPop(Parse::NodeKind start_kind) -> void {
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if (parse_tree_->node_kind(node_stack_.PeekParseNode()) != start_kind) {
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ParamOrArgSave(node_stack_.PopExpr());
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}
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}
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auto Context::ParamOrArgPop() -> SemIR::InstBlockId {
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return params_or_args_stack_.Pop();
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}
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auto Context::ParamOrArgEnd(Parse::NodeKind start_kind) -> SemIR::InstBlockId {
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ParamOrArgEndNoPop(start_kind);
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return ParamOrArgPop();
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}
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namespace {
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// Worklist-based type completion mechanism.
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//
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// When attempting to complete a type, we may find other types that also need to
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// be completed: types nested within that type, and the value representation of
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// the type. In order to complete a type without recursing arbitrarily deeply,
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// we use a worklist of tasks:
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//
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// - An `AddNestedIncompleteTypes` step adds a task for all incomplete types
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// nested within a type to the work list.
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// - A `BuildValueRepresentation` step computes the value representation for a
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// type, once all of its nested types are complete, and marks the type as
|
|
// complete.
|
|
class TypeCompleter {
|
|
public:
|
|
TypeCompleter(
|
|
Context& context,
|
|
std::optional<llvm::function_ref<auto()->Context::DiagnosticBuilder>>
|
|
diagnoser)
|
|
: context_(context), diagnoser_(diagnoser) {}
|
|
|
|
// Attempts to complete the given type. Returns true if it is now complete,
|
|
// false if it could not be completed.
|
|
auto Complete(SemIR::TypeId type_id) -> bool {
|
|
Push(type_id);
|
|
while (!work_list_.empty()) {
|
|
if (!ProcessStep()) {
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
private:
|
|
// Adds `type_id` to the work list, if it's not already complete.
|
|
auto Push(SemIR::TypeId type_id) -> void {
|
|
if (!context_.sem_ir().IsTypeComplete(type_id)) {
|
|
work_list_.push_back({type_id, Phase::AddNestedIncompleteTypes});
|
|
}
|
|
}
|
|
|
|
// Runs the next step.
|
|
auto ProcessStep() -> bool {
|
|
auto [type_id, phase] = work_list_.back();
|
|
|
|
// We might have enqueued the same type more than once. Just skip the
|
|
// type if it's already complete.
|
|
if (context_.sem_ir().IsTypeComplete(type_id)) {
|
|
work_list_.pop_back();
|
|
return true;
|
|
}
|
|
|
|
auto inst_id = context_.sem_ir().GetTypeAllowBuiltinTypes(type_id);
|
|
auto inst = context_.insts().Get(inst_id);
|
|
|
|
auto old_work_list_size = work_list_.size();
|
|
|
|
switch (phase) {
|
|
case Phase::AddNestedIncompleteTypes:
|
|
if (!AddNestedIncompleteTypes(inst)) {
|
|
return false;
|
|
}
|
|
CARBON_CHECK(work_list_.size() >= old_work_list_size)
|
|
<< "AddNestedIncompleteTypes should not remove work items";
|
|
work_list_[old_work_list_size - 1].phase =
|
|
Phase::BuildValueRepresentation;
|
|
break;
|
|
|
|
case Phase::BuildValueRepresentation: {
|
|
auto value_rep = BuildValueRepresentation(type_id, inst);
|
|
context_.sem_ir().CompleteType(type_id, value_rep);
|
|
CARBON_CHECK(old_work_list_size == work_list_.size())
|
|
<< "BuildValueRepresentation should not change work items";
|
|
work_list_.pop_back();
|
|
|
|
// Also complete the value representation type, if necessary. This
|
|
// should never fail: the value representation shouldn't require any
|
|
// additional nested types to be complete.
|
|
if (!context_.sem_ir().IsTypeComplete(value_rep.type_id)) {
|
|
work_list_.push_back(
|
|
{value_rep.type_id, Phase::BuildValueRepresentation});
|
|
}
|
|
// For a pointer representation, the pointee also needs to be complete.
|
|
if (value_rep.kind == SemIR::ValueRepresentation::Pointer) {
|
|
auto pointee_type_id =
|
|
context_.sem_ir().GetPointeeType(value_rep.type_id);
|
|
if (!context_.sem_ir().IsTypeComplete(pointee_type_id)) {
|
|
work_list_.push_back(
|
|
{pointee_type_id, Phase::BuildValueRepresentation});
|
|
}
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
// Adds any types nested within `type_inst` that need to be complete for
|
|
// `type_inst` to be complete to our work list.
|
|
auto AddNestedIncompleteTypes(SemIR::Inst type_inst) -> bool {
|
|
switch (type_inst.kind()) {
|
|
case SemIR::ArrayType::Kind:
|
|
Push(type_inst.As<SemIR::ArrayType>().element_type_id);
|
|
break;
|
|
|
|
case SemIR::StructType::Kind:
|
|
for (auto field_id : context_.inst_blocks().Get(
|
|
type_inst.As<SemIR::StructType>().fields_id)) {
|
|
Push(context_.insts()
|
|
.GetAs<SemIR::StructTypeField>(field_id)
|
|
.field_type_id);
|
|
}
|
|
break;
|
|
|
|
case SemIR::TupleType::Kind:
|
|
for (auto element_type_id : context_.type_blocks().Get(
|
|
type_inst.As<SemIR::TupleType>().elements_id)) {
|
|
Push(element_type_id);
|
|
}
|
|
break;
|
|
|
|
case SemIR::ClassType::Kind: {
|
|
auto class_type = type_inst.As<SemIR::ClassType>();
|
|
auto& class_info = context_.classes().Get(class_type.class_id);
|
|
if (!class_info.is_defined()) {
|
|
if (diagnoser_) {
|
|
auto builder = (*diagnoser_)();
|
|
context_.NoteIncompleteClass(class_type.class_id, builder);
|
|
builder.Emit();
|
|
}
|
|
return false;
|
|
}
|
|
Push(class_info.object_representation_id);
|
|
break;
|
|
}
|
|
|
|
case SemIR::ConstType::Kind:
|
|
Push(type_inst.As<SemIR::ConstType>().inner_id);
|
|
break;
|
|
|
|
default:
|
|
break;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
// Makes an empty value representation, which is used for types that have no
|
|
// state, such as empty structs and tuples.
|
|
auto MakeEmptyRepresentation(Parse::Node parse_node) const
|
|
-> SemIR::ValueRepresentation {
|
|
return {.kind = SemIR::ValueRepresentation::None,
|
|
.type_id = context_.CanonicalizeTupleType(parse_node, {})};
|
|
}
|
|
|
|
// Makes a value representation that uses pass-by-copy, copying the given
|
|
// type.
|
|
auto MakeCopyRepresentation(
|
|
SemIR::TypeId rep_id,
|
|
SemIR::ValueRepresentation::AggregateKind aggregate_kind =
|
|
SemIR::ValueRepresentation::NotAggregate) const
|
|
-> SemIR::ValueRepresentation {
|
|
return {.kind = SemIR::ValueRepresentation::Copy,
|
|
.aggregate_kind = aggregate_kind,
|
|
.type_id = rep_id};
|
|
}
|
|
|
|
// Makes a value representation that uses pass-by-address with the given
|
|
// pointee type.
|
|
auto MakePointerRepresentation(
|
|
Parse::Node parse_node, SemIR::TypeId pointee_id,
|
|
SemIR::ValueRepresentation::AggregateKind aggregate_kind =
|
|
SemIR::ValueRepresentation::NotAggregate) const
|
|
-> SemIR::ValueRepresentation {
|
|
// TODO: Should we add `const` qualification to `pointee_id`?
|
|
return {.kind = SemIR::ValueRepresentation::Pointer,
|
|
.aggregate_kind = aggregate_kind,
|
|
.type_id = context_.GetPointerType(parse_node, pointee_id)};
|
|
}
|
|
|
|
// Gets the value representation of a nested type, which should already be
|
|
// complete.
|
|
auto GetNestedValueRepresentation(SemIR::TypeId nested_type_id) const {
|
|
CARBON_CHECK(context_.sem_ir().IsTypeComplete(nested_type_id))
|
|
<< "Nested type should already be complete";
|
|
auto value_rep = context_.sem_ir().GetValueRepresentation(nested_type_id);
|
|
CARBON_CHECK(value_rep.kind != SemIR::ValueRepresentation::Unknown)
|
|
<< "Complete type should have a value representation";
|
|
return value_rep;
|
|
};
|
|
|
|
auto BuildCrossReferenceValueRepresentation(SemIR::TypeId type_id,
|
|
SemIR::CrossReference xref) const
|
|
-> SemIR::ValueRepresentation {
|
|
auto xref_inst = context_.sem_ir()
|
|
.GetCrossReferenceIR(xref.ir_id)
|
|
.insts()
|
|
.Get(xref.inst_id);
|
|
|
|
// The canonical description of a type should only have cross-references
|
|
// for entities owned by another File, such as builtins, which are owned
|
|
// by the prelude, and named entities like classes and interfaces, which
|
|
// we don't support yet.
|
|
CARBON_CHECK(xref_inst.kind() == SemIR::Builtin::Kind)
|
|
<< "TODO: Handle other kinds of inst cross-references";
|
|
|
|
// clang warns on unhandled enum values; clang-tidy is incorrect here.
|
|
// NOLINTNEXTLINE(bugprone-switch-missing-default-case)
|
|
switch (xref_inst.As<SemIR::Builtin>().builtin_kind) {
|
|
case SemIR::BuiltinKind::TypeType:
|
|
case SemIR::BuiltinKind::Error:
|
|
case SemIR::BuiltinKind::Invalid:
|
|
case SemIR::BuiltinKind::BoolType:
|
|
case SemIR::BuiltinKind::IntegerType:
|
|
case SemIR::BuiltinKind::FloatingPointType:
|
|
case SemIR::BuiltinKind::NamespaceType:
|
|
case SemIR::BuiltinKind::FunctionType:
|
|
case SemIR::BuiltinKind::BoundMethodType:
|
|
return MakeCopyRepresentation(type_id);
|
|
|
|
case SemIR::BuiltinKind::StringType:
|
|
// TODO: Decide on string value semantics. This should probably be a
|
|
// custom value representation carrying a pointer and size or
|
|
// similar.
|
|
return MakePointerRepresentation(Parse::Node::Invalid, type_id);
|
|
}
|
|
llvm_unreachable("All builtin kinds were handled above");
|
|
}
|
|
|
|
auto BuildStructOrTupleValueRepresentation(Parse::Node parse_node,
|
|
std::size_t num_elements,
|
|
SemIR::TypeId elementwise_rep,
|
|
bool same_as_object_rep) const
|
|
-> SemIR::ValueRepresentation {
|
|
SemIR::ValueRepresentation::AggregateKind aggregate_kind =
|
|
same_as_object_rep ? SemIR::ValueRepresentation::ValueAndObjectAggregate
|
|
: SemIR::ValueRepresentation::ValueAggregate;
|
|
|
|
if (num_elements == 1) {
|
|
// The value representation for a struct or tuple with a single element
|
|
// is a struct or tuple containing the value representation of the
|
|
// element.
|
|
// TODO: Consider doing the same whenever `elementwise_rep` is
|
|
// sufficiently small.
|
|
return MakeCopyRepresentation(elementwise_rep, aggregate_kind);
|
|
}
|
|
// For a struct or tuple with multiple fields, we use a pointer
|
|
// to the elementwise value representation.
|
|
return MakePointerRepresentation(parse_node, elementwise_rep,
|
|
aggregate_kind);
|
|
}
|
|
|
|
auto BuildStructTypeValueRepresentation(SemIR::TypeId type_id,
|
|
SemIR::StructType struct_type) const
|
|
-> SemIR::ValueRepresentation {
|
|
// TODO: Share more code with tuples.
|
|
auto fields = context_.inst_blocks().Get(struct_type.fields_id);
|
|
if (fields.empty()) {
|
|
return MakeEmptyRepresentation(struct_type.parse_node);
|
|
}
|
|
|
|
// Find the value representation for each field, and construct a struct
|
|
// of value representations.
|
|
llvm::SmallVector<SemIR::InstId> value_rep_fields;
|
|
value_rep_fields.reserve(fields.size());
|
|
bool same_as_object_rep = true;
|
|
for (auto field_id : fields) {
|
|
auto field = context_.insts().GetAs<SemIR::StructTypeField>(field_id);
|
|
auto field_value_rep = GetNestedValueRepresentation(field.field_type_id);
|
|
if (field_value_rep.type_id != field.field_type_id) {
|
|
same_as_object_rep = false;
|
|
field.field_type_id = field_value_rep.type_id;
|
|
field_id = context_.AddConstantInst(field);
|
|
}
|
|
value_rep_fields.push_back(field_id);
|
|
}
|
|
|
|
auto value_rep = same_as_object_rep
|
|
? type_id
|
|
: context_.CanonicalizeStructType(
|
|
struct_type.parse_node,
|
|
context_.inst_blocks().Add(value_rep_fields));
|
|
return BuildStructOrTupleValueRepresentation(
|
|
struct_type.parse_node, fields.size(), value_rep, same_as_object_rep);
|
|
}
|
|
|
|
auto BuildTupleTypeValueRepresentation(SemIR::TypeId type_id,
|
|
SemIR::TupleType tuple_type) const
|
|
-> SemIR::ValueRepresentation {
|
|
// TODO: Share more code with structs.
|
|
auto elements = context_.type_blocks().Get(tuple_type.elements_id);
|
|
if (elements.empty()) {
|
|
return MakeEmptyRepresentation(tuple_type.parse_node);
|
|
}
|
|
|
|
// Find the value representation for each element, and construct a tuple
|
|
// of value representations.
|
|
llvm::SmallVector<SemIR::TypeId> value_rep_elements;
|
|
value_rep_elements.reserve(elements.size());
|
|
bool same_as_object_rep = true;
|
|
for (auto element_type_id : elements) {
|
|
auto element_value_rep = GetNestedValueRepresentation(element_type_id);
|
|
if (element_value_rep.type_id != element_type_id) {
|
|
same_as_object_rep = false;
|
|
}
|
|
value_rep_elements.push_back(element_value_rep.type_id);
|
|
}
|
|
|
|
auto value_rep = same_as_object_rep
|
|
? type_id
|
|
: context_.CanonicalizeTupleType(tuple_type.parse_node,
|
|
value_rep_elements);
|
|
return BuildStructOrTupleValueRepresentation(
|
|
tuple_type.parse_node, elements.size(), value_rep, same_as_object_rep);
|
|
}
|
|
|
|
// Builds and returns the value representation for the given type. All nested
|
|
// types, as found by AddNestedIncompleteTypes, are known to be complete.
|
|
auto BuildValueRepresentation(SemIR::TypeId type_id, SemIR::Inst inst) const
|
|
-> SemIR::ValueRepresentation {
|
|
// TODO: This can emit new SemIR instructions. Consider emitting them into a
|
|
// dedicated file-scope instruction block where possible, or somewhere else
|
|
// that better reflects the definition of the type, rather than wherever the
|
|
// type happens to first be required to be complete.
|
|
|
|
// clang warns on unhandled enum values; clang-tidy is incorrect here.
|
|
// NOLINTNEXTLINE(bugprone-switch-missing-default-case)
|
|
switch (inst.kind()) {
|
|
case SemIR::AddressOf::Kind:
|
|
case SemIR::ArrayIndex::Kind:
|
|
case SemIR::ArrayInit::Kind:
|
|
case SemIR::Assign::Kind:
|
|
case SemIR::BinaryOperatorAdd::Kind:
|
|
case SemIR::BindName::Kind:
|
|
case SemIR::BindValue::Kind:
|
|
case SemIR::BlockArg::Kind:
|
|
case SemIR::BoolLiteral::Kind:
|
|
case SemIR::BoundMethod::Kind:
|
|
case SemIR::Branch::Kind:
|
|
case SemIR::BranchIf::Kind:
|
|
case SemIR::BranchWithArg::Kind:
|
|
case SemIR::Call::Kind:
|
|
case SemIR::ClassDecl::Kind:
|
|
case SemIR::ClassFieldAccess::Kind:
|
|
case SemIR::ClassInit::Kind:
|
|
case SemIR::Converted::Kind:
|
|
case SemIR::Dereference::Kind:
|
|
case SemIR::Field::Kind:
|
|
case SemIR::FunctionDecl::Kind:
|
|
case SemIR::InitializeFrom::Kind:
|
|
case SemIR::IntegerLiteral::Kind:
|
|
case SemIR::NameReference::Kind:
|
|
case SemIR::Namespace::Kind:
|
|
case SemIR::NoOp::Kind:
|
|
case SemIR::Parameter::Kind:
|
|
case SemIR::RealLiteral::Kind:
|
|
case SemIR::Return::Kind:
|
|
case SemIR::ReturnExpr::Kind:
|
|
case SemIR::SelfParameter::Kind:
|
|
case SemIR::SpliceBlock::Kind:
|
|
case SemIR::StringLiteral::Kind:
|
|
case SemIR::StructAccess::Kind:
|
|
case SemIR::StructTypeField::Kind:
|
|
case SemIR::StructLiteral::Kind:
|
|
case SemIR::StructInit::Kind:
|
|
case SemIR::StructValue::Kind:
|
|
case SemIR::Temporary::Kind:
|
|
case SemIR::TemporaryStorage::Kind:
|
|
case SemIR::TupleAccess::Kind:
|
|
case SemIR::TupleIndex::Kind:
|
|
case SemIR::TupleLiteral::Kind:
|
|
case SemIR::TupleInit::Kind:
|
|
case SemIR::TupleValue::Kind:
|
|
case SemIR::UnaryOperatorNot::Kind:
|
|
case SemIR::ValueAsReference::Kind:
|
|
case SemIR::ValueOfInitializer::Kind:
|
|
case SemIR::VarStorage::Kind:
|
|
CARBON_FATAL() << "Type refers to non-type inst " << inst;
|
|
|
|
case SemIR::CrossReference::Kind:
|
|
return BuildCrossReferenceValueRepresentation(
|
|
type_id, inst.As<SemIR::CrossReference>());
|
|
|
|
case SemIR::ArrayType::Kind: {
|
|
// For arrays, it's convenient to always use a pointer representation,
|
|
// even when the array has zero or one element, in order to support
|
|
// indexing.
|
|
return MakePointerRepresentation(
|
|
inst.parse_node(), type_id,
|
|
SemIR::ValueRepresentation::ObjectAggregate);
|
|
}
|
|
|
|
case SemIR::StructType::Kind:
|
|
return BuildStructTypeValueRepresentation(type_id,
|
|
inst.As<SemIR::StructType>());
|
|
|
|
case SemIR::TupleType::Kind:
|
|
return BuildTupleTypeValueRepresentation(type_id,
|
|
inst.As<SemIR::TupleType>());
|
|
|
|
case SemIR::ClassType::Kind:
|
|
// The value representation for a class is a pointer to the object
|
|
// representation.
|
|
// TODO: Support customized value representations for classes.
|
|
// TODO: Pick a better value representation when possible.
|
|
return MakePointerRepresentation(
|
|
inst.parse_node(),
|
|
context_.classes()
|
|
.Get(inst.As<SemIR::ClassType>().class_id)
|
|
.object_representation_id,
|
|
SemIR::ValueRepresentation::ObjectAggregate);
|
|
|
|
case SemIR::Builtin::Kind:
|
|
CARBON_FATAL() << "Builtins should be named as cross-references";
|
|
|
|
case SemIR::PointerType::Kind:
|
|
case SemIR::UnboundFieldType::Kind:
|
|
return MakeCopyRepresentation(type_id);
|
|
|
|
case SemIR::ConstType::Kind:
|
|
// The value representation of `const T` is the same as that of `T`.
|
|
// Objects are not modifiable through their value representations.
|
|
return GetNestedValueRepresentation(
|
|
inst.As<SemIR::ConstType>().inner_id);
|
|
}
|
|
}
|
|
|
|
enum class Phase : int8_t {
|
|
// The next step is to add nested types to the list of types to complete.
|
|
AddNestedIncompleteTypes,
|
|
// The next step is to build the value representation for the type.
|
|
BuildValueRepresentation,
|
|
};
|
|
|
|
struct WorkItem {
|
|
SemIR::TypeId type_id;
|
|
Phase phase;
|
|
};
|
|
|
|
Context& context_;
|
|
llvm::SmallVector<WorkItem> work_list_;
|
|
std::optional<llvm::function_ref<auto()->Context::DiagnosticBuilder>>
|
|
diagnoser_;
|
|
};
|
|
} // namespace
|
|
|
|
auto Context::TryToCompleteType(
|
|
SemIR::TypeId type_id,
|
|
std::optional<llvm::function_ref<auto()->DiagnosticBuilder>> diagnoser)
|
|
-> bool {
|
|
return TypeCompleter(*this, diagnoser).Complete(type_id);
|
|
}
|
|
|
|
auto Context::CanonicalizeTypeImpl(
|
|
SemIR::InstKind kind,
|
|
llvm::function_ref<bool(llvm::FoldingSetNodeID& canonical_id)> profile_type,
|
|
llvm::function_ref<SemIR::InstId()> make_inst) -> SemIR::TypeId {
|
|
llvm::FoldingSetNodeID canonical_id;
|
|
kind.Profile(canonical_id);
|
|
if (!profile_type(canonical_id)) {
|
|
return SemIR::TypeId::Error;
|
|
}
|
|
|
|
void* insert_pos;
|
|
auto* node =
|
|
canonical_type_nodes_.FindNodeOrInsertPos(canonical_id, insert_pos);
|
|
if (node != nullptr) {
|
|
return node->type_id();
|
|
}
|
|
|
|
auto inst_id = make_inst();
|
|
auto type_id = types().Add({.inst_id = inst_id});
|
|
CARBON_CHECK(canonical_types_.insert({inst_id, type_id}).second);
|
|
type_node_storage_.push_back(
|
|
std::make_unique<TypeNode>(canonical_id, type_id));
|
|
|
|
// In a debug build, check that our insertion position is still valid. It
|
|
// could have been invalidated by a misbehaving `make_inst`.
|
|
CARBON_DCHECK([&] {
|
|
void* check_insert_pos;
|
|
auto* check_node = canonical_type_nodes_.FindNodeOrInsertPos(
|
|
canonical_id, check_insert_pos);
|
|
return !check_node && insert_pos == check_insert_pos;
|
|
}()) << "Type was created recursively during canonicalization";
|
|
|
|
canonical_type_nodes_.InsertNode(type_node_storage_.back().get(), insert_pos);
|
|
return type_id;
|
|
}
|
|
|
|
// Compute a fingerprint for a tuple type, for use as a key in a folding set.
|
|
static auto ProfileTupleType(llvm::ArrayRef<SemIR::TypeId> type_ids,
|
|
llvm::FoldingSetNodeID& canonical_id) -> void {
|
|
for (auto type_id : type_ids) {
|
|
canonical_id.AddInteger(type_id.index);
|
|
}
|
|
}
|
|
|
|
// Compute a fingerprint for a type, for use as a key in a folding set. Returns
|
|
// false if not supported, which is presently the case for compile-time
|
|
// expressions.
|
|
// TODO: Once support is more complete, in particular ensuring that various
|
|
// valid compile-time expressions are supported, it may be desirable to switch
|
|
// the default to a CARBON_FATAL error.
|
|
static auto ProfileType(Context& semantics_context, SemIR::Inst inst,
|
|
llvm::FoldingSetNodeID& canonical_id) -> bool {
|
|
switch (inst.kind()) {
|
|
case SemIR::ArrayType::Kind: {
|
|
auto array_type = inst.As<SemIR::ArrayType>();
|
|
canonical_id.AddInteger(
|
|
semantics_context.sem_ir().GetArrayBoundValue(array_type.bound_id));
|
|
canonical_id.AddInteger(array_type.element_type_id.index);
|
|
break;
|
|
}
|
|
case SemIR::Builtin::Kind:
|
|
canonical_id.AddInteger(inst.As<SemIR::Builtin>().builtin_kind.AsInt());
|
|
break;
|
|
case SemIR::ClassType::Kind:
|
|
canonical_id.AddInteger(inst.As<SemIR::ClassType>().class_id.index);
|
|
break;
|
|
case SemIR::CrossReference::Kind: {
|
|
// TODO: Cross-references should be canonicalized by looking at their
|
|
// target rather than treating them as new unique types.
|
|
auto xref = inst.As<SemIR::CrossReference>();
|
|
canonical_id.AddInteger(xref.ir_id.index);
|
|
canonical_id.AddInteger(xref.inst_id.index);
|
|
break;
|
|
}
|
|
case SemIR::ConstType::Kind:
|
|
canonical_id.AddInteger(
|
|
semantics_context
|
|
.GetUnqualifiedType(inst.As<SemIR::ConstType>().inner_id)
|
|
.index);
|
|
break;
|
|
case SemIR::PointerType::Kind:
|
|
canonical_id.AddInteger(inst.As<SemIR::PointerType>().pointee_id.index);
|
|
break;
|
|
case SemIR::StructType::Kind: {
|
|
auto fields = semantics_context.inst_blocks().Get(
|
|
inst.As<SemIR::StructType>().fields_id);
|
|
for (const auto& field_id : fields) {
|
|
auto field =
|
|
semantics_context.insts().GetAs<SemIR::StructTypeField>(field_id);
|
|
canonical_id.AddInteger(field.name_id.index);
|
|
canonical_id.AddInteger(field.field_type_id.index);
|
|
}
|
|
break;
|
|
}
|
|
case SemIR::TupleType::Kind:
|
|
ProfileTupleType(semantics_context.type_blocks().Get(
|
|
inst.As<SemIR::TupleType>().elements_id),
|
|
canonical_id);
|
|
break;
|
|
case SemIR::UnboundFieldType::Kind: {
|
|
auto unbound_field_type = inst.As<SemIR::UnboundFieldType>();
|
|
canonical_id.AddInteger(unbound_field_type.class_type_id.index);
|
|
canonical_id.AddInteger(unbound_field_type.field_type_id.index);
|
|
break;
|
|
}
|
|
default: {
|
|
// Right now, this is only expected to occur in calls from
|
|
// ExprAsType. Diagnostics are issued there.
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
auto Context::CanonicalizeTypeAndAddInstIfNew(SemIR::Inst inst)
|
|
-> SemIR::TypeId {
|
|
auto profile_node = [&](llvm::FoldingSetNodeID& canonical_id) {
|
|
return ProfileType(*this, inst, canonical_id);
|
|
};
|
|
auto make_inst = [&] { return AddConstantInst(inst); };
|
|
return CanonicalizeTypeImpl(inst.kind(), profile_node, make_inst);
|
|
}
|
|
|
|
auto Context::CanonicalizeType(SemIR::InstId inst_id) -> SemIR::TypeId {
|
|
while (auto converted = insts().Get(inst_id).TryAs<SemIR::Converted>()) {
|
|
inst_id = converted->result_id;
|
|
}
|
|
inst_id = FollowNameReferences(inst_id);
|
|
|
|
auto it = canonical_types_.find(inst_id);
|
|
if (it != canonical_types_.end()) {
|
|
return it->second;
|
|
}
|
|
|
|
auto inst = insts().Get(inst_id);
|
|
auto profile_node = [&](llvm::FoldingSetNodeID& canonical_id) {
|
|
return ProfileType(*this, inst, canonical_id);
|
|
};
|
|
auto make_inst = [&] { return inst_id; };
|
|
return CanonicalizeTypeImpl(inst.kind(), profile_node, make_inst);
|
|
}
|
|
|
|
auto Context::CanonicalizeStructType(Parse::Node parse_node,
|
|
SemIR::InstBlockId refs_id)
|
|
-> SemIR::TypeId {
|
|
return CanonicalizeTypeAndAddInstIfNew(
|
|
SemIR::StructType{parse_node, SemIR::TypeId::TypeType, refs_id});
|
|
}
|
|
|
|
auto Context::CanonicalizeTupleType(Parse::Node parse_node,
|
|
llvm::ArrayRef<SemIR::TypeId> type_ids)
|
|
-> SemIR::TypeId {
|
|
// Defer allocating a SemIR::TypeBlockId until we know this is a new type.
|
|
auto profile_tuple = [&](llvm::FoldingSetNodeID& canonical_id) {
|
|
ProfileTupleType(type_ids, canonical_id);
|
|
return true;
|
|
};
|
|
auto make_tuple_inst = [&] {
|
|
return AddConstantInst(SemIR::TupleType{parse_node, SemIR::TypeId::TypeType,
|
|
type_blocks().Add(type_ids)});
|
|
};
|
|
return CanonicalizeTypeImpl(SemIR::TupleType::Kind, profile_tuple,
|
|
make_tuple_inst);
|
|
}
|
|
|
|
auto Context::GetBuiltinType(SemIR::BuiltinKind kind) -> SemIR::TypeId {
|
|
CARBON_CHECK(kind != SemIR::BuiltinKind::Invalid);
|
|
auto type_id = CanonicalizeType(SemIR::InstId::ForBuiltin(kind));
|
|
// To keep client code simpler, complete builtin types before returning them.
|
|
bool complete = TryToCompleteType(type_id);
|
|
CARBON_CHECK(complete) << "Failed to complete builtin type";
|
|
return type_id;
|
|
}
|
|
|
|
auto Context::GetPointerType(Parse::Node parse_node,
|
|
SemIR::TypeId pointee_type_id) -> SemIR::TypeId {
|
|
return CanonicalizeTypeAndAddInstIfNew(
|
|
SemIR::PointerType{parse_node, SemIR::TypeId::TypeType, pointee_type_id});
|
|
}
|
|
|
|
auto Context::GetUnqualifiedType(SemIR::TypeId type_id) -> SemIR::TypeId {
|
|
SemIR::Inst type_inst =
|
|
insts().Get(sem_ir_->GetTypeAllowBuiltinTypes(type_id));
|
|
if (auto const_type = type_inst.TryAs<SemIR::ConstType>()) {
|
|
return const_type->inner_id;
|
|
}
|
|
return type_id;
|
|
}
|
|
|
|
auto Context::PrintForStackDump(llvm::raw_ostream& output) const -> void {
|
|
node_stack_.PrintForStackDump(output);
|
|
inst_block_stack_.PrintForStackDump(output);
|
|
params_or_args_stack_.PrintForStackDump(output);
|
|
args_type_info_stack_.PrintForStackDump(output);
|
|
}
|
|
|
|
} // namespace Carbon::Check
|