Files
carbon-lang/toolchain/check/handle_class.cpp
T
David BlaikieandRichard Smith dfed743de2 Add vtable pointers to class layout (#4407)
A small step to virtual functions - adding vtable pointers to the
layout, but not initializing or otherwise using them at this stage.

A few open design questions I'd love feedback on:

* Is this the right/good enough SemIR representation for now? This patch
adds a `is_dynamic` attribute to `SemIR::Class` and populates/flags it
based on the flag of the base class, or if any virtual function is
declared in the class (or, at least that's my intent). Some other
options include:
* Each `Class` could store a `ClassId` (or `TypeId`?) of the (possibly
indirect, possibly self) base class that is the first one that is
dynamic/has a vtable pointer
* Could make the property narrower, like `has vtable pointer` and have
it `true` only on the type that introduces the vtable - then derived
classes would have to walk their base classes to check if they're the
one that needs to define the vtable pointer or not
* Should the vtable be the first element in the type? If there's a
non-dynamic base type, we could have a layout that's `{<non-dynamic base
type>, vtable ptr, <derived members>}`? Derived types would still be
able to uniquely identify where their vtable pointer is just fine... -
and the vtable pointer is, in a sense, a member of that intermediate
type, so it does seem a bit strange to force it to the front - but I
guess it's probably more efficient in some ways?

Open to any other suggestions/advice/thoughts on the direction, etc.

---------

Co-authored-by: Richard Smith <richard@metafoo.co.uk>
2024-10-16 21:26:17 +00:00

708 lines
28 KiB
C++

// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
// Exceptions. See /LICENSE for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
#include "toolchain/base/kind_switch.h"
#include "toolchain/check/context.h"
#include "toolchain/check/convert.h"
#include "toolchain/check/decl_name_stack.h"
#include "toolchain/check/eval.h"
#include "toolchain/check/generic.h"
#include "toolchain/check/handle.h"
#include "toolchain/check/merge.h"
#include "toolchain/check/modifiers.h"
#include "toolchain/check/name_component.h"
#include "toolchain/sem_ir/ids.h"
#include "toolchain/sem_ir/inst.h"
#include "toolchain/sem_ir/typed_insts.h"
namespace Carbon::Check {
// If `type_id` is a class type, get its corresponding `SemIR::Class` object.
// Otherwise returns `nullptr`.
static auto TryGetAsClass(Context& context, SemIR::TypeId type_id)
-> SemIR::Class* {
auto class_type = context.types().TryGetAs<SemIR::ClassType>(type_id);
if (!class_type) {
return nullptr;
}
return &context.classes().Get(class_type->class_id);
}
auto HandleParseNode(Context& context, Parse::ClassIntroducerId node_id)
-> bool {
// Create an instruction block to hold the instructions created as part of the
// class signature, such as generic parameters.
context.inst_block_stack().Push();
// Push the bracketing node.
context.node_stack().Push(node_id);
// Optional modifiers and the name follow.
context.decl_introducer_state_stack().Push<Lex::TokenKind::Class>();
context.decl_name_stack().PushScopeAndStartName();
// This class is potentially generic.
StartGenericDecl(context);
// Push a pattern block for the signature (if any) of the first NameComponent.
// TODO: Instead use a separate parse node kind for an identifier that's
// followed by a pattern, and push a pattern block when handling it.
context.pattern_block_stack().Push();
return true;
}
// Tries to merge new_class into prev_class_id. Since new_class won't have a
// definition even if one is upcoming, set is_definition to indicate the planned
// result.
//
// If merging is successful, returns true and may update the previous class.
// Otherwise, returns false. Prints a diagnostic when appropriate.
static auto MergeClassRedecl(Context& context, SemIRLoc new_loc,
SemIR::Class& new_class, bool new_is_import,
bool new_is_definition,
SemIR::ClassId prev_class_id,
SemIR::ImportIRId prev_import_ir_id) -> bool {
auto& prev_class = context.classes().Get(prev_class_id);
SemIRLoc prev_loc = prev_class.latest_decl_id();
// Check the generic parameters match, if they were specified.
if (!CheckRedeclParamsMatch(context, DeclParams(new_class),
DeclParams(prev_class))) {
return false;
}
CheckIsAllowedRedecl(
context, Lex::TokenKind::Class, prev_class.name_id,
RedeclInfo(new_class, new_loc, new_is_definition),
RedeclInfo(prev_class, prev_loc, prev_class.is_defined()),
prev_import_ir_id);
if (new_is_definition && prev_class.is_defined()) {
// Don't attempt to merge multiple definitions.
return false;
}
if (new_is_definition) {
prev_class.MergeDefinition(new_class);
prev_class.scope_id = new_class.scope_id;
prev_class.body_block_id = new_class.body_block_id;
prev_class.adapt_id = new_class.adapt_id;
prev_class.base_id = new_class.base_id;
prev_class.complete_type_witness_id = new_class.complete_type_witness_id;
}
if ((prev_import_ir_id.is_valid() && !new_is_import) ||
(prev_class.is_extern && !new_class.is_extern)) {
prev_class.first_owning_decl_id = new_class.first_owning_decl_id;
ReplacePrevInstForMerge(
context, new_class.parent_scope_id, prev_class.name_id,
new_is_import ? new_loc.inst_id : new_class.first_owning_decl_id);
}
return true;
}
// Adds the name to name lookup. If there's a conflict, tries to merge. May
// update class_decl and class_info when merging.
static auto MergeOrAddName(Context& context, Parse::AnyClassDeclId node_id,
const DeclNameStack::NameContext& name_context,
SemIR::InstId class_decl_id,
SemIR::ClassDecl& class_decl,
SemIR::Class& class_info, bool is_definition,
SemIR::AccessKind access_kind) -> void {
auto prev_id = context.decl_name_stack().LookupOrAddName(
name_context, class_decl_id, access_kind);
if (!prev_id.is_valid()) {
return;
}
auto prev_class_id = SemIR::ClassId::Invalid;
auto prev_import_ir_id = SemIR::ImportIRId::Invalid;
auto prev = context.insts().Get(prev_id);
CARBON_KIND_SWITCH(prev) {
case CARBON_KIND(SemIR::ClassDecl class_decl): {
prev_class_id = class_decl.class_id;
break;
}
case CARBON_KIND(SemIR::ImportRefLoaded import_ref): {
auto import_ir_inst =
context.import_ir_insts().Get(import_ref.import_ir_inst_id);
// Verify the decl so that things like aliases are name conflicts.
const auto* import_ir =
context.import_irs().Get(import_ir_inst.ir_id).sem_ir;
if (!import_ir->insts().Is<SemIR::ClassDecl>(import_ir_inst.inst_id)) {
break;
}
// Use the constant value to get the ID.
auto decl_value = context.insts().Get(
context.constant_values().GetConstantInstId(prev_id));
if (auto class_type = decl_value.TryAs<SemIR::ClassType>()) {
prev_class_id = class_type->class_id;
prev_import_ir_id = import_ir_inst.ir_id;
} else if (auto generic_class_type =
context.types().TryGetAs<SemIR::GenericClassType>(
decl_value.type_id())) {
prev_class_id = generic_class_type->class_id;
prev_import_ir_id = import_ir_inst.ir_id;
}
break;
}
default:
break;
}
if (!prev_class_id.is_valid()) {
// This is a redeclaration of something other than a class.
context.DiagnoseDuplicateName(class_decl_id, prev_id);
return;
}
// TODO: Fix `extern` logic. It doesn't work correctly, but doesn't seem worth
// ripping out because existing code may incrementally help.
if (MergeClassRedecl(context, node_id, class_info,
/*new_is_import=*/false, is_definition, prev_class_id,
prev_import_ir_id)) {
// When merging, use the existing entity rather than adding a new one.
class_decl.class_id = prev_class_id;
class_decl.type_id = prev.type_id();
// TODO: Validate that the redeclaration doesn't set an access modifier.
}
}
static auto BuildClassDecl(Context& context, Parse::AnyClassDeclId node_id,
bool is_definition)
-> std::tuple<SemIR::ClassId, SemIR::InstId> {
auto name = PopNameComponent(context);
auto name_context = context.decl_name_stack().FinishName(name);
context.node_stack()
.PopAndDiscardSoloNodeId<Parse::NodeKind::ClassIntroducer>();
// Process modifiers.
auto [_, parent_scope_inst] =
context.name_scopes().GetInstIfValid(name_context.parent_scope_id);
auto introducer =
context.decl_introducer_state_stack().Pop<Lex::TokenKind::Class>();
CheckAccessModifiersOnDecl(context, introducer, parent_scope_inst);
auto always_acceptable_modifiers =
KeywordModifierSet::Access | KeywordModifierSet::Extern;
LimitModifiersOnDecl(context, introducer,
always_acceptable_modifiers | KeywordModifierSet::Class);
if (!is_definition) {
LimitModifiersOnNotDefinition(context, introducer,
always_acceptable_modifiers);
}
RestrictExternModifierOnDecl(context, introducer, parent_scope_inst,
is_definition);
bool is_extern = introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extern);
if (introducer.extern_library.is_valid()) {
context.TODO(node_id, "extern library");
}
auto inheritance_kind =
introducer.modifier_set.ToEnum<SemIR::Class::InheritanceKind>()
.Case(KeywordModifierSet::Abstract, SemIR::Class::Abstract)
.Case(KeywordModifierSet::Base, SemIR::Class::Base)
.Default(SemIR::Class::Final);
auto decl_block_id = context.inst_block_stack().Pop();
// Add the class declaration.
auto class_decl = SemIR::ClassDecl{.type_id = SemIR::TypeId::TypeType,
.class_id = SemIR::ClassId::Invalid,
.decl_block_id = decl_block_id};
auto class_decl_id =
context.AddPlaceholderInst(SemIR::LocIdAndInst(node_id, class_decl));
// TODO: Store state regarding is_extern.
SemIR::Class class_info = {
name_context.MakeEntityWithParamsBase(name, class_decl_id, is_extern,
SemIR::LibraryNameId::Invalid),
{// `.self_type_id` depends on the ClassType, so is set below.
.self_type_id = SemIR::TypeId::Invalid,
.inheritance_kind = inheritance_kind}};
RequireGenericParamsOnType(context, class_info.implicit_param_patterns_id);
RequireGenericParamsOnType(context, class_info.param_patterns_id);
MergeOrAddName(context, node_id, name_context, class_decl_id, class_decl,
class_info, is_definition,
introducer.modifier_set.GetAccessKind());
// Create a new class if this isn't a valid redeclaration.
bool is_new_class = !class_decl.class_id.is_valid();
if (is_new_class) {
// TODO: If this is an invalid redeclaration of a non-class entity or there
// was an error in the qualifier, we will have lost track of the class name
// here. We should keep track of it even if the name is invalid.
class_info.generic_id = FinishGenericDecl(context, class_decl_id);
class_decl.class_id = context.classes().Add(class_info);
if (class_info.has_parameters()) {
class_decl.type_id = context.GetGenericClassType(
class_decl.class_id, context.scope_stack().PeekSpecificId());
}
} else {
FinishGenericRedecl(context, class_decl_id, class_info.generic_id);
}
// Write the class ID into the ClassDecl.
context.ReplaceInstBeforeConstantUse(class_decl_id, class_decl);
if (is_new_class) {
// Build the `Self` type using the resulting type constant.
// TODO: Form this as part of building the definition, not as part of the
// declaration.
auto& class_info = context.classes().Get(class_decl.class_id);
auto specific_id =
context.generics().GetSelfSpecific(class_info.generic_id);
class_info.self_type_id = context.GetTypeIdForTypeConstant(
TryEvalInst(context, SemIR::InstId::Invalid,
SemIR::ClassType{.type_id = SemIR::TypeId::TypeType,
.class_id = class_decl.class_id,
.specific_id = specific_id}));
}
if (!is_definition && context.IsImplFile() && !is_extern) {
context.definitions_required().push_back(class_decl_id);
}
return {class_decl.class_id, class_decl_id};
}
auto HandleParseNode(Context& context, Parse::ClassDeclId node_id) -> bool {
BuildClassDecl(context, node_id, /*is_definition=*/false);
context.decl_name_stack().PopScope();
return true;
}
auto HandleParseNode(Context& context, Parse::ClassDefinitionStartId node_id)
-> bool {
auto [class_id, class_decl_id] =
BuildClassDecl(context, node_id, /*is_definition=*/true);
auto& class_info = context.classes().Get(class_id);
// Track that this declaration is the definition.
if (!class_info.is_defined()) {
class_info.definition_id = class_decl_id;
class_info.scope_id = context.name_scopes().Add(
class_decl_id, SemIR::NameId::Invalid, class_info.parent_scope_id);
}
// Enter the class scope.
context.scope_stack().Push(
class_decl_id, class_info.scope_id,
context.generics().GetSelfSpecific(class_info.generic_id));
StartGenericDefinition(context);
// Introduce `Self`.
context.name_scopes().AddRequiredName(
class_info.scope_id, SemIR::NameId::SelfType,
context.types().GetInstId(class_info.self_type_id));
context.inst_block_stack().Push();
context.node_stack().Push(node_id, class_id);
context.args_type_info_stack().Push();
// TODO: Handle the case where there's control flow in the class body. For
// example:
//
// class C {
// var v: if true then i32 else f64;
// }
//
// We may need to track a list of instruction blocks here, as we do for a
// function.
class_info.body_block_id = context.inst_block_stack().PeekOrAdd();
return true;
}
// Diagnoses a class-specific declaration appearing outside a class.
static auto DiagnoseClassSpecificDeclOutsideClass(Context& context,
SemIRLoc loc,
Lex::TokenKind tok) -> void {
CARBON_DIAGNOSTIC(ClassSpecificDeclOutsideClass, Error,
"`{0}` declaration outside class", Lex::TokenKind);
context.emitter().Emit(loc, ClassSpecificDeclOutsideClass, tok);
}
// Returns the current scope's class declaration, or diagnoses if it isn't a
// class.
static auto GetCurrentScopeAsClassOrDiagnose(Context& context, SemIRLoc loc,
Lex::TokenKind tok)
-> std::optional<SemIR::ClassDecl> {
auto class_scope = context.GetCurrentScopeAs<SemIR::ClassDecl>();
if (!class_scope) {
DiagnoseClassSpecificDeclOutsideClass(context, loc, tok);
}
return class_scope;
}
// Diagnoses a class-specific declaration that is repeated within a class, but
// is not permitted to be repeated.
static auto DiagnoseClassSpecificDeclRepeated(Context& context,
SemIRLoc new_loc,
SemIRLoc prev_loc,
Lex::TokenKind tok) -> void {
CARBON_DIAGNOSTIC(AdaptDeclRepeated, Error,
"multiple `adapt` declarations in class");
CARBON_DIAGNOSTIC(BaseDeclRepeated, Error,
"multiple `base` declarations in class; multiple "
"inheritance is not permitted");
CARBON_DIAGNOSTIC(ClassSpecificDeclPrevious, Note,
"previous `{0}` declaration is here", Lex::TokenKind);
CARBON_CHECK(tok == Lex::TokenKind::Adapt || tok == Lex::TokenKind::Base);
context.emitter()
.Build(new_loc, tok == Lex::TokenKind::Adapt ? AdaptDeclRepeated
: BaseDeclRepeated)
.Note(prev_loc, ClassSpecificDeclPrevious, tok)
.Emit();
}
auto HandleParseNode(Context& context, Parse::AdaptIntroducerId /*node_id*/)
-> bool {
context.decl_introducer_state_stack().Push<Lex::TokenKind::Adapt>();
return true;
}
auto HandleParseNode(Context& context, Parse::AdaptDeclId node_id) -> bool {
auto [adapted_type_node, adapted_type_expr_id] =
context.node_stack().PopExprWithNodeId();
// Process modifiers. `extend` is permitted, no others are allowed.
auto introducer =
context.decl_introducer_state_stack().Pop<Lex::TokenKind::Adapt>();
LimitModifiersOnDecl(context, introducer, KeywordModifierSet::Extend);
auto parent_class_decl =
GetCurrentScopeAsClassOrDiagnose(context, node_id, Lex::TokenKind::Adapt);
if (!parent_class_decl) {
return true;
}
auto& class_info = context.classes().Get(parent_class_decl->class_id);
if (class_info.adapt_id.is_valid()) {
DiagnoseClassSpecificDeclRepeated(context, node_id, class_info.adapt_id,
Lex::TokenKind::Adapt);
return true;
}
auto adapted_type_id =
ExprAsType(context, node_id, adapted_type_expr_id).type_id;
adapted_type_id = context.AsCompleteType(
adapted_type_id,
[&] {
CARBON_DIAGNOSTIC(IncompleteTypeInAdaptDecl, Error,
"adapted type {0} is an incomplete type",
SemIR::TypeId);
return context.emitter().Build(node_id, IncompleteTypeInAdaptDecl,
adapted_type_id);
},
[&] {
CARBON_DIAGNOSTIC(AbstractTypeInAdaptDecl, Error,
"adapted type {0} is an abstract type",
SemIR::TypeId);
return context.emitter().Build(node_id, AbstractTypeInAdaptDecl,
adapted_type_id);
});
// Build a SemIR representation for the declaration.
class_info.adapt_id = context.AddInst<SemIR::AdaptDecl>(
node_id, {.adapted_type_id = adapted_type_id});
// Extend the class scope with the adapted type's scope if requested.
if (introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend)) {
auto extended_scope_id = SemIR::NameScopeId::Invalid;
if (adapted_type_id == SemIR::TypeId::Error) {
// Recover by not extending any scope. We instead set has_error to true
// below.
} else if (auto* adapted_class_info =
TryGetAsClass(context, adapted_type_id)) {
extended_scope_id = adapted_class_info->scope_id;
CARBON_CHECK(adapted_class_info->scope_id.is_valid(),
"Complete class should have a scope");
} else {
// TODO: Accept any type that has a scope.
context.TODO(node_id, "extending non-class type");
}
auto& class_scope = context.name_scopes().Get(class_info.scope_id);
if (extended_scope_id.is_valid()) {
class_scope.extended_scopes.push_back(extended_scope_id);
} else {
class_scope.has_error = true;
}
}
return true;
}
auto HandleParseNode(Context& context, Parse::BaseIntroducerId /*node_id*/)
-> bool {
context.decl_introducer_state_stack().Push<Lex::TokenKind::Base>();
return true;
}
auto HandleParseNode(Context& /*context*/, Parse::BaseColonId /*node_id*/)
-> bool {
return true;
}
namespace {
// Information gathered about a base type specified in a `base` declaration.
struct BaseInfo {
// A `BaseInfo` representing an erroneous base.
static const BaseInfo Error;
SemIR::TypeId type_id;
SemIR::NameScopeId scope_id;
};
constexpr BaseInfo BaseInfo::Error = {.type_id = SemIR::TypeId::Error,
.scope_id = SemIR::NameScopeId::Invalid};
} // namespace
// Diagnoses an attempt to derive from a final type.
static auto DiagnoseBaseIsFinal(Context& context, Parse::NodeId node_id,
SemIR::InstId base_type_inst_id) -> void {
CARBON_DIAGNOSTIC(BaseIsFinal, Error,
"deriving from final type {0}; base type must be an "
"`abstract` or `base` class",
InstIdAsType);
context.emitter().Emit(node_id, BaseIsFinal, base_type_inst_id);
}
// Checks that the specified base type is valid.
static auto CheckBaseType(Context& context, Parse::NodeId node_id,
SemIR::InstId base_expr_id) -> BaseInfo {
auto [base_type_inst_id, base_type_id] =
ExprAsType(context, node_id, base_expr_id);
base_type_id = context.AsCompleteType(base_type_id, [&] {
CARBON_DIAGNOSTIC(IncompleteTypeInBaseDecl, Error,
"base {0} is an incomplete type", InstIdAsType);
return context.emitter().Build(node_id, IncompleteTypeInBaseDecl,
base_type_inst_id);
});
if (base_type_id == SemIR::TypeId::Error) {
return BaseInfo::Error;
}
auto* base_class_info = TryGetAsClass(context, base_type_id);
// The base must not be a final class.
if (!base_class_info) {
// For now, we treat all types that aren't introduced by a `class`
// declaration as being final classes.
// TODO: Once we have a better idea of which types are considered to be
// classes, produce a better diagnostic for deriving from a non-class type.
DiagnoseBaseIsFinal(context, node_id, base_type_inst_id);
return BaseInfo::Error;
}
if (base_class_info->inheritance_kind == SemIR::Class::Final) {
DiagnoseBaseIsFinal(context, node_id, base_type_inst_id);
}
CARBON_CHECK(base_class_info->scope_id.is_valid(),
"Complete class should have a scope");
return {.type_id = base_type_id, .scope_id = base_class_info->scope_id};
}
auto HandleParseNode(Context& context, Parse::BaseDeclId node_id) -> bool {
auto [base_type_node_id, base_type_expr_id] =
context.node_stack().PopExprWithNodeId();
// Process modifiers. `extend` is required, no others are allowed.
auto introducer =
context.decl_introducer_state_stack().Pop<Lex::TokenKind::Base>();
LimitModifiersOnDecl(context, introducer, KeywordModifierSet::Extend);
if (!introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend)) {
CARBON_DIAGNOSTIC(BaseMissingExtend, Error,
"missing `extend` before `base` declaration");
context.emitter().Emit(node_id, BaseMissingExtend);
}
auto parent_class_decl =
GetCurrentScopeAsClassOrDiagnose(context, node_id, Lex::TokenKind::Base);
if (!parent_class_decl) {
return true;
}
auto& class_info = context.classes().Get(parent_class_decl->class_id);
if (class_info.base_id.is_valid()) {
DiagnoseClassSpecificDeclRepeated(context, node_id, class_info.base_id,
Lex::TokenKind::Base);
return true;
}
auto base_info = CheckBaseType(context, base_type_node_id, base_type_expr_id);
// The `base` value in the class scope has an unbound element type. Instance
// binding will be performed when it's found by name lookup into an instance.
auto field_type_id =
context.GetUnboundElementType(class_info.self_type_id, base_info.type_id);
class_info.base_id = context.AddInst<SemIR::BaseDecl>(
node_id,
{.type_id = field_type_id,
.base_type_id = base_info.type_id,
.index = SemIR::ElementIndex(
context.args_type_info_stack().PeekCurrentBlockContents().size())});
if (base_info.type_id != SemIR::TypeId::Error) {
auto base_class_info = context.classes().Get(
context.types().GetAs<SemIR::ClassType>(base_info.type_id).class_id);
class_info.is_dynamic |= base_class_info.is_dynamic;
}
// Add a corresponding field to the object representation of the class.
// TODO: Consider whether we want to use `partial T` here.
// TODO: Should we diagnose if there are already any fields?
context.args_type_info_stack().AddInstId(
context.AddInstInNoBlock<SemIR::StructTypeField>(
node_id, {.name_id = SemIR::NameId::Base,
.field_type_id = base_info.type_id}));
// Bind the name `base` in the class to the base field.
context.decl_name_stack().AddNameOrDiagnoseDuplicate(
context.decl_name_stack().MakeUnqualifiedName(node_id,
SemIR::NameId::Base),
class_info.base_id, introducer.modifier_set.GetAccessKind());
// Extend the class scope with the base class.
if (introducer.modifier_set.HasAnyOf(KeywordModifierSet::Extend)) {
auto& class_scope = context.name_scopes().Get(class_info.scope_id);
if (base_info.scope_id.is_valid()) {
class_scope.extended_scopes.push_back(base_info.scope_id);
} else {
class_scope.has_error = true;
}
}
return true;
}
// Checks that the specified finished adapter definition is valid and builds and
// returns a corresponding complete type witness instruction.
static auto CheckCompleteAdapterClassType(Context& context,
Parse::NodeId node_id,
SemIR::ClassId class_id,
SemIR::InstBlockId fields_id)
-> SemIR::InstId {
const auto& class_info = context.classes().Get(class_id);
if (class_info.base_id.is_valid()) {
CARBON_DIAGNOSTIC(AdaptWithBase, Error, "adapter with base class");
CARBON_DIAGNOSTIC(AdaptWithBaseHere, Note, "`base` declaration is here");
context.emitter()
.Build(class_info.adapt_id, AdaptWithBase)
.Note(class_info.base_id, AdaptWithBaseHere)
.Emit();
return SemIR::InstId::BuiltinError;
}
if (!context.inst_blocks().Get(fields_id).empty()) {
auto first_field_id = context.inst_blocks().Get(fields_id).front();
CARBON_DIAGNOSTIC(AdaptWithFields, Error, "adapter with fields");
CARBON_DIAGNOSTIC(AdaptWithFieldHere, Note,
"first field declaration is here");
context.emitter()
.Build(class_info.adapt_id, AdaptWithFields)
.Note(first_field_id, AdaptWithFieldHere)
.Emit();
return SemIR::InstId::BuiltinError;
}
for (auto inst_id : context.inst_block_stack().PeekCurrentBlockContents()) {
if (auto function_decl =
context.insts().TryGetAs<SemIR::FunctionDecl>(inst_id)) {
auto& function = context.functions().Get(function_decl->function_id);
if (function.virtual_modifier ==
SemIR::Function::VirtualModifier::Virtual) {
CARBON_DIAGNOSTIC(AdaptWithVirtual, Error,
"adapter with virtual function");
CARBON_DIAGNOSTIC(AdaptWithVirtualHere, Note,
"first virtual function declaration is here");
context.emitter()
.Build(class_info.adapt_id, AdaptWithVirtual)
.Note(inst_id, AdaptWithVirtualHere)
.Emit();
return SemIR::InstId::BuiltinError;
}
}
}
// The object representation of the adapter is the object representation
// of the adapted type. This is the adapted type itself unless it's a class
// type.
//
// TODO: The object representation of `const T` should also be the object
// representation of `T`.
auto adapted_type_id = context.insts()
.GetAs<SemIR::AdaptDecl>(class_info.adapt_id)
.adapted_type_id;
if (auto adapted_class =
context.types().TryGetAs<SemIR::ClassType>(adapted_type_id)) {
auto& adapted_class_info = context.classes().Get(adapted_class->class_id);
if (adapted_class_info.adapt_id.is_valid()) {
return adapted_class_info.complete_type_witness_id;
}
}
return context.AddInst<SemIR::CompleteTypeWitness>(
node_id,
{.type_id = context.GetBuiltinType(SemIR::BuiltinInstKind::WitnessType),
.object_repr_id = adapted_type_id});
}
// Checks that the specified finished class definition is valid and builds and
// returns a corresponding complete type witness instruction.
static auto CheckCompleteClassType(Context& context, Parse::NodeId node_id,
SemIR::ClassId class_id) -> SemIR::InstId {
auto& class_info = context.classes().Get(class_id);
if (class_info.adapt_id.is_valid()) {
auto fields_id = context.args_type_info_stack().Pop();
return CheckCompleteAdapterClassType(context, node_id, class_id, fields_id);
}
bool defining_vtable_ptr = class_info.is_dynamic;
if (class_info.base_id.is_valid()) {
auto base_info = context.insts().GetAs<SemIR::BaseDecl>(class_info.base_id);
// TODO: If the base class is template dependent, we will need to decide
// whether to add a vptr as part of instantiation.
if (auto* base_class_info = TryGetAsClass(context, base_info.base_type_id);
base_class_info && base_class_info->is_dynamic) {
defining_vtable_ptr = false;
}
}
if (defining_vtable_ptr) {
context.args_type_info_stack().AddFrontInstId(
context.AddInstInNoBlock<SemIR::StructTypeField>(
Parse::NodeId::Invalid,
{.name_id = SemIR::NameId::Vptr,
.field_type_id = context.GetPointerType(
context.GetBuiltinType(SemIR::BuiltinInstKind::VtableType))}));
}
auto fields_id = context.args_type_info_stack().Pop();
return context.AddInst<SemIR::CompleteTypeWitness>(
node_id,
{.type_id = context.GetBuiltinType(SemIR::BuiltinInstKind::WitnessType),
.object_repr_id = context.GetStructType(fields_id)});
}
auto HandleParseNode(Context& context, Parse::ClassDefinitionId node_id)
-> bool {
auto class_id =
context.node_stack().Pop<Parse::NodeKind::ClassDefinitionStart>();
// The class type is now fully defined. Compute its object representation.
auto complete_type_witness_id =
CheckCompleteClassType(context, node_id, class_id);
auto& class_info = context.classes().Get(class_id);
class_info.complete_type_witness_id = complete_type_witness_id;
context.inst_block_stack().Pop();
FinishGenericDefinition(context, class_info.generic_id);
// The decl_name_stack and scopes are popped by `ProcessNodeIds`.
return true;
}
} // namespace Carbon::Check