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This replaces the use of `VarStorage` in this case. Add an `UnboundFieldType` type as the type of a field, in cases where it's referenced without an accompanying object. Add a `BindName` node to describe the name binding performed for both variables and fields so that we can handle them more uniformly.
580 lines
18 KiB
C++
580 lines
18 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/sem_ir/file.h"
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#include "common/check.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/ADT/SmallVector.h"
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#include "toolchain/base/value_store.h"
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#include "toolchain/sem_ir/builtin_kind.h"
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#include "toolchain/sem_ir/node.h"
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#include "toolchain/sem_ir/node_kind.h"
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namespace Carbon::SemIR {
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auto ValueRepresentation::Print(llvm::raw_ostream& out) const -> void {
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out << "{kind: ";
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switch (kind) {
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case Unknown:
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out << "unknown";
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break;
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case None:
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out << "none";
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break;
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case Copy:
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out << "copy";
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break;
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case Pointer:
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out << "pointer";
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break;
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case Custom:
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out << "custom";
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break;
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}
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out << ", type: " << type_id << "}";
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}
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auto TypeInfo::Print(llvm::raw_ostream& out) const -> void {
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out << "{node: " << node_id << ", value_rep: " << value_representation << "}";
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}
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File::File(SharedValueStores& value_stores)
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: value_stores_(&value_stores),
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filename_("<builtins>"),
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// Builtins are always the first IR, even when self-referential.
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cross_reference_irs_({this}),
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type_blocks_(allocator_),
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node_blocks_(allocator_) {
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// Default entry for NodeBlockId::Empty.
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node_blocks_.AddDefaultValue();
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nodes_.Reserve(BuiltinKind::ValidCount);
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// Error uses a self-referential type so that it's not accidentally treated as
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// a normal type. Every other builtin is a type, including the
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// self-referential TypeType.
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#define CARBON_SEM_IR_BUILTIN_KIND(Name, ...) \
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nodes_.AddInNoBlock(Builtin{BuiltinKind::Name == BuiltinKind::Error \
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? TypeId::Error \
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: TypeId::TypeType, \
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BuiltinKind::Name});
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#include "toolchain/sem_ir/builtin_kind.def"
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CARBON_CHECK(nodes_.size() == BuiltinKind::ValidCount)
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<< "Builtins should produce " << BuiltinKind::ValidCount
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<< " nodes, actual: " << nodes_.size();
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}
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File::File(SharedValueStores& value_stores, std::string filename,
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const File* builtins)
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: value_stores_(&value_stores),
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filename_(std::move(filename)),
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// Builtins are always the first IR.
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cross_reference_irs_({builtins}),
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type_blocks_(allocator_),
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node_blocks_(allocator_) {
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CARBON_CHECK(builtins != nullptr);
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CARBON_CHECK(builtins->cross_reference_irs_[0] == builtins)
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<< "Not called with builtins!";
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// Default entry for NodeBlockId::Empty.
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node_blocks_.AddDefaultValue();
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// Copy builtins over.
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nodes_.Reserve(BuiltinKind::ValidCount);
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static constexpr auto BuiltinIR = CrossReferenceIRId(0);
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for (auto [i, node] : llvm::enumerate(builtins->nodes_.array_ref())) {
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// We can reuse builtin type IDs because they're special-cased values.
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nodes_.AddInNoBlock(
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CrossReference{node.type_id(), BuiltinIR, SemIR::NodeId(i)});
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}
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}
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auto File::Verify() const -> ErrorOr<Success> {
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// Invariants don't necessarily hold for invalid IR.
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if (has_errors_) {
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return Success();
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}
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// Check that every code block has a terminator sequence that appears at the
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// end of the block.
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for (const Function& function : functions_.array_ref()) {
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for (NodeBlockId block_id : function.body_block_ids) {
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TerminatorKind prior_kind = TerminatorKind::NotTerminator;
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for (NodeId node_id : node_blocks().Get(block_id)) {
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TerminatorKind node_kind =
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nodes().Get(node_id).kind().terminator_kind();
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if (prior_kind == TerminatorKind::Terminator) {
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return Error(llvm::formatv("Node {0} in block {1} follows terminator",
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node_id, block_id));
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}
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if (prior_kind > node_kind) {
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return Error(
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llvm::formatv("Non-terminator node {0} in block {1} follows "
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"terminator sequence",
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node_id, block_id));
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}
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prior_kind = node_kind;
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}
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if (prior_kind != TerminatorKind::Terminator) {
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return Error(llvm::formatv("No terminator in block {0}", block_id));
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}
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}
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}
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// TODO: Check that a node only references other nodes that are either global
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// or that dominate it.
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return Success();
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}
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auto File::Print(llvm::raw_ostream& out, bool include_builtins) const -> void {
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out << "- filename: " << filename_ << "\n"
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<< " sem_ir:\n"
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<< " - cross_reference_irs_size: " << cross_reference_irs_.size()
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<< "\n";
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static constexpr int FirstLineIndent = 4;
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static constexpr int LaterIndent = 6;
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functions_.Print(out, "functions", FirstLineIndent, LaterIndent);
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classes_.Print(out, "classes", FirstLineIndent, LaterIndent);
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types_.Print(out, "types", FirstLineIndent, LaterIndent);
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type_blocks_.Print(out, "type_blocks", FirstLineIndent, LaterIndent);
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auto nodes = nodes_.array_ref();
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if (!include_builtins) {
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nodes = nodes.drop_front(BuiltinKind::ValidCount);
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}
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PrintValueRange(out, llvm::iterator_range(nodes), "nodes", FirstLineIndent,
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LaterIndent, /*trailing_newline=*/true);
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node_blocks_.Print(out, "node_blocks", FirstLineIndent, LaterIndent);
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}
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// Map a node kind representing a type into an integer describing the
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// precedence of that type's syntax. Higher numbers correspond to higher
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// precedence.
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static auto GetTypePrecedence(NodeKind kind) -> int {
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// clang warns on unhandled enum values; clang-tidy is incorrect here.
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// NOLINTNEXTLINE(bugprone-switch-missing-default-case)
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switch (kind) {
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case ArrayType::Kind:
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case Builtin::Kind:
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case ClassType::Kind:
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case NameReference::Kind:
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case StructType::Kind:
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case TupleType::Kind:
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case UnboundFieldType::Kind:
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return 0;
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case ConstType::Kind:
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return -1;
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case PointerType::Kind:
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return -2;
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case CrossReference::Kind:
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// TODO: Once we support stringification of cross-references, we'll need
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// to determine the precedence of the target of the cross-reference. For
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// now, all cross-references refer to builtin types from the prelude.
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return 0;
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case AddressOf::Kind:
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case ArrayIndex::Kind:
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case ArrayInit::Kind:
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case Assign::Kind:
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case BinaryOperatorAdd::Kind:
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case BindName::Kind:
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case BindValue::Kind:
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case BlockArg::Kind:
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case BoolLiteral::Kind:
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case Branch::Kind:
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case BranchIf::Kind:
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case BranchWithArg::Kind:
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case Call::Kind:
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case ClassDeclaration::Kind:
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case Dereference::Kind:
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case Field::Kind:
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case FunctionDeclaration::Kind:
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case InitializeFrom::Kind:
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case IntegerLiteral::Kind:
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case Namespace::Kind:
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case NoOp::Kind:
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case Parameter::Kind:
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case RealLiteral::Kind:
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case Return::Kind:
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case ReturnExpression::Kind:
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case SpliceBlock::Kind:
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case StringLiteral::Kind:
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case StructAccess::Kind:
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case StructTypeField::Kind:
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case StructLiteral::Kind:
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case StructInit::Kind:
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case StructValue::Kind:
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case Temporary::Kind:
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case TemporaryStorage::Kind:
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case TupleAccess::Kind:
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case TupleIndex::Kind:
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case TupleLiteral::Kind:
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case TupleInit::Kind:
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case TupleValue::Kind:
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case UnaryOperatorNot::Kind:
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case ValueAsReference::Kind:
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case VarStorage::Kind:
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CARBON_FATAL() << "GetTypePrecedence for non-type node kind " << kind;
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}
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}
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auto File::StringifyType(TypeId type_id, bool in_type_context) const
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-> std::string {
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return StringifyTypeExpression(GetTypeAllowBuiltinTypes(type_id),
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in_type_context);
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}
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auto File::StringifyTypeExpression(NodeId outer_node_id,
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bool in_type_context) const -> std::string {
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std::string str;
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llvm::raw_string_ostream out(str);
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struct Step {
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// The node to print.
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NodeId node_id;
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// The index into node_id to print. Not used by all types.
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int index = 0;
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auto Next() const -> Step {
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return {.node_id = node_id, .index = index + 1};
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}
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};
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llvm::SmallVector<Step> steps = {{.node_id = outer_node_id}};
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while (!steps.empty()) {
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auto step = steps.pop_back_val();
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if (!step.node_id.is_valid()) {
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out << "<invalid type>";
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continue;
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}
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// Builtins have designated labels.
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if (step.node_id.index < BuiltinKind::ValidCount) {
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out << BuiltinKind::FromInt(step.node_id.index).label();
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continue;
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}
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auto node = nodes().Get(step.node_id);
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// clang warns on unhandled enum values; clang-tidy is incorrect here.
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// NOLINTNEXTLINE(bugprone-switch-missing-default-case)
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switch (node.kind()) {
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case ArrayType::Kind: {
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auto array = node.As<ArrayType>();
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if (step.index == 0) {
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out << "[";
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steps.push_back(step.Next());
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steps.push_back(
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{.node_id = GetTypeAllowBuiltinTypes(array.element_type_id)});
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} else if (step.index == 1) {
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out << "; " << GetArrayBoundValue(array.bound_id) << "]";
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}
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break;
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}
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case ClassType::Kind: {
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auto class_name_id =
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classes().Get(node.As<ClassType>().class_id).name_id;
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out << strings().Get(class_name_id);
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break;
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}
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case ConstType::Kind: {
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if (step.index == 0) {
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out << "const ";
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// Add parentheses if required.
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auto inner_type_node_id =
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GetTypeAllowBuiltinTypes(node.As<ConstType>().inner_id);
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if (GetTypePrecedence(nodes().Get(inner_type_node_id).kind()) <
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GetTypePrecedence(node.kind())) {
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out << "(";
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steps.push_back(step.Next());
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}
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steps.push_back({.node_id = inner_type_node_id});
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} else if (step.index == 1) {
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out << ")";
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}
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break;
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}
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case NameReference::Kind: {
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out << strings().Get(node.As<NameReference>().name_id);
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break;
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}
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case PointerType::Kind: {
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if (step.index == 0) {
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steps.push_back(step.Next());
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steps.push_back({.node_id = GetTypeAllowBuiltinTypes(
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node.As<PointerType>().pointee_id)});
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} else if (step.index == 1) {
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out << "*";
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}
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break;
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}
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case StructType::Kind: {
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auto refs = node_blocks().Get(node.As<StructType>().fields_id);
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if (refs.empty()) {
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out << "{}";
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break;
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} else if (step.index == 0) {
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out << "{";
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} else if (step.index < static_cast<int>(refs.size())) {
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out << ", ";
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} else {
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out << "}";
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break;
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}
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steps.push_back(step.Next());
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steps.push_back({.node_id = refs[step.index]});
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break;
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}
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case StructTypeField::Kind: {
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auto field = node.As<StructTypeField>();
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out << "." << strings().Get(field.name_id) << ": ";
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steps.push_back(
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{.node_id = GetTypeAllowBuiltinTypes(field.field_type_id)});
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break;
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}
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case TupleType::Kind: {
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auto refs = type_blocks().Get(node.As<TupleType>().elements_id);
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if (refs.empty()) {
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out << "()";
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break;
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} else if (step.index == 0) {
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out << "(";
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} else if (step.index < static_cast<int>(refs.size())) {
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out << ", ";
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} else {
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// A tuple of one element has a comma to disambiguate from an
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// expression.
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if (step.index == 1) {
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out << ",";
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}
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out << ")";
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break;
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}
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steps.push_back(step.Next());
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steps.push_back(
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{.node_id = GetTypeAllowBuiltinTypes(refs[step.index])});
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break;
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}
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case UnboundFieldType::Kind: {
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if (step.index == 0) {
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out << "<unbound field of class ";
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steps.push_back(step.Next());
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steps.push_back({.node_id = GetTypeAllowBuiltinTypes(
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node.As<UnboundFieldType>().class_type_id)});
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} else {
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out << ">";
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}
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break;
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}
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case AddressOf::Kind:
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case ArrayIndex::Kind:
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case ArrayInit::Kind:
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case Assign::Kind:
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case BinaryOperatorAdd::Kind:
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case BindName::Kind:
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case BindValue::Kind:
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case BlockArg::Kind:
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case BoolLiteral::Kind:
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case Branch::Kind:
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case BranchIf::Kind:
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case BranchWithArg::Kind:
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case Builtin::Kind:
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case Call::Kind:
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case ClassDeclaration::Kind:
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case CrossReference::Kind:
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case Dereference::Kind:
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case Field::Kind:
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case FunctionDeclaration::Kind:
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case InitializeFrom::Kind:
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case IntegerLiteral::Kind:
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case Namespace::Kind:
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case NoOp::Kind:
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case Parameter::Kind:
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case RealLiteral::Kind:
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case Return::Kind:
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case ReturnExpression::Kind:
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case SpliceBlock::Kind:
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case StringLiteral::Kind:
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case StructAccess::Kind:
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case StructLiteral::Kind:
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case StructInit::Kind:
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case StructValue::Kind:
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case Temporary::Kind:
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case TemporaryStorage::Kind:
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case TupleAccess::Kind:
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case TupleIndex::Kind:
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case TupleLiteral::Kind:
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case TupleInit::Kind:
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case TupleValue::Kind:
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case UnaryOperatorNot::Kind:
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case ValueAsReference::Kind:
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case VarStorage::Kind:
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// We don't need to handle stringification for nodes that don't show up
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// in errors, but make it clear what's going on so that it's clearer
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// when stringification is needed.
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out << "<cannot stringify " << step.node_id << ">";
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break;
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}
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}
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// For `{}` or any tuple type, we've printed a non-type expression, so add a
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// conversion to type `type` if it's not implied by the context.
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if (!in_type_context) {
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auto outer_node = nodes().Get(outer_node_id);
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if (outer_node.Is<TupleType>() ||
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(outer_node.Is<StructType>() &&
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node_blocks().Get(outer_node.As<StructType>().fields_id).empty())) {
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out << " as type";
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}
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}
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return str;
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}
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auto GetExpressionCategory(const File& file, NodeId node_id)
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-> ExpressionCategory {
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const File* ir = &file;
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while (true) {
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auto node = ir->nodes().Get(node_id);
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// clang warns on unhandled enum values; clang-tidy is incorrect here.
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// NOLINTNEXTLINE(bugprone-switch-missing-default-case)
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switch (node.kind()) {
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case Assign::Kind:
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case Branch::Kind:
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case BranchIf::Kind:
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case BranchWithArg::Kind:
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case ClassDeclaration::Kind:
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case Field::Kind:
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case FunctionDeclaration::Kind:
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case Namespace::Kind:
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case NoOp::Kind:
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case Return::Kind:
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case ReturnExpression::Kind:
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case StructTypeField::Kind:
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return ExpressionCategory::NotExpression;
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case CrossReference::Kind: {
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auto xref = node.As<CrossReference>();
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ir = &ir->GetCrossReferenceIR(xref.ir_id);
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node_id = xref.node_id;
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continue;
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}
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case NameReference::Kind: {
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node_id = node.As<NameReference>().value_id;
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continue;
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}
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case AddressOf::Kind:
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case ArrayType::Kind:
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case BinaryOperatorAdd::Kind:
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case BindValue::Kind:
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case BlockArg::Kind:
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case BoolLiteral::Kind:
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case ClassType::Kind:
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case ConstType::Kind:
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case IntegerLiteral::Kind:
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case Parameter::Kind:
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case PointerType::Kind:
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case RealLiteral::Kind:
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case StringLiteral::Kind:
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case StructValue::Kind:
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case StructType::Kind:
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case TupleValue::Kind:
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case TupleType::Kind:
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case UnaryOperatorNot::Kind:
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case UnboundFieldType::Kind:
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return ExpressionCategory::Value;
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case Builtin::Kind: {
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if (node.As<Builtin>().builtin_kind == BuiltinKind::Error) {
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return ExpressionCategory::Error;
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}
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return ExpressionCategory::Value;
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}
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case BindName::Kind: {
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node_id = node.As<BindName>().value_id;
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continue;
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}
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case ArrayIndex::Kind: {
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node_id = node.As<ArrayIndex>().array_id;
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continue;
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}
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case StructAccess::Kind: {
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node_id = node.As<StructAccess>().struct_id;
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continue;
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}
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case TupleAccess::Kind: {
|
|
node_id = node.As<TupleAccess>().tuple_id;
|
|
continue;
|
|
}
|
|
|
|
case TupleIndex::Kind: {
|
|
node_id = node.As<TupleIndex>().tuple_id;
|
|
continue;
|
|
}
|
|
|
|
case SpliceBlock::Kind: {
|
|
node_id = node.As<SpliceBlock>().result_id;
|
|
continue;
|
|
}
|
|
|
|
case StructLiteral::Kind:
|
|
case TupleLiteral::Kind:
|
|
return ExpressionCategory::Mixed;
|
|
|
|
case ArrayInit::Kind:
|
|
case Call::Kind:
|
|
case InitializeFrom::Kind:
|
|
case StructInit::Kind:
|
|
case TupleInit::Kind:
|
|
return ExpressionCategory::Initializing;
|
|
|
|
case Dereference::Kind:
|
|
case VarStorage::Kind:
|
|
return ExpressionCategory::DurableReference;
|
|
|
|
case Temporary::Kind:
|
|
case TemporaryStorage::Kind:
|
|
case ValueAsReference::Kind:
|
|
return ExpressionCategory::EphemeralReference;
|
|
}
|
|
}
|
|
}
|
|
|
|
auto GetInitializingRepresentation(const File& file, TypeId type_id)
|
|
-> InitializingRepresentation {
|
|
auto value_rep = GetValueRepresentation(file, type_id);
|
|
switch (value_rep.kind) {
|
|
case ValueRepresentation::None:
|
|
return {.kind = InitializingRepresentation::None};
|
|
|
|
case ValueRepresentation::Copy:
|
|
// TODO: Use in-place initialization for types that have non-trivial
|
|
// destructive move.
|
|
return {.kind = InitializingRepresentation::ByCopy};
|
|
|
|
case ValueRepresentation::Pointer:
|
|
case ValueRepresentation::Custom:
|
|
return {.kind = InitializingRepresentation::InPlace};
|
|
|
|
case ValueRepresentation::Unknown:
|
|
CARBON_FATAL()
|
|
<< "Attempting to perform initialization of incomplete type";
|
|
}
|
|
}
|
|
|
|
} // namespace Carbon::SemIR
|