Files
carbon-lang/toolchain/check/generic.cpp
T
Jon Ross-PerkinsandRichard Smith e7aebbe581 Update basic diagnostic capitalization/punctuation (#4328)
This is a primarily automated change:

- Search & replace for capitalization
-
`(CARBON_DIAGNOSTIC\((?:\n\s+)?\w+,(?:\n\s+)?\s\w+,(?:\n\s+)?\s")([A-Z])`
    - `$1\L$2`
- Search & replace for period
-
`(CARBON_DIAGNOSTIC\((?:\n\s+)?\w+,(?:\n\s+)?\s\w+,(?:\n\s+)?\s"(?:[^)]|\n)+)\.("[,)])`
    - `$1$2`
- Limited search & replace for `ERROR: ` -> `error: ` in streamed things
- Leaving a TODO for command_line because there's more cleanup that can
be done there
- Modify diagnostic_consumer.cpp
    - ERROR -> error
    - WARNING -> warning

---------

Co-authored-by: Richard Smith <richard@metafoo.co.uk>
2024-09-19 21:32:53 +00:00

446 lines
18 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/check/generic.h"
#include "common/map.h"
#include "toolchain/check/eval.h"
#include "toolchain/check/generic_region_stack.h"
#include "toolchain/check/subst.h"
#include "toolchain/sem_ir/ids.h"
namespace Carbon::Check {
auto StartGenericDecl(Context& context) -> void {
context.generic_region_stack().Push();
}
auto StartGenericDefinition(Context& context) -> void {
// Push a generic region even if we don't have a generic_id. We might still
// have locally-introduced generic parameters to track:
//
// fn F() {
// let T:! type = i32;
// var x: T;
// }
context.generic_region_stack().Push();
}
// Adds an instruction `generic_inst_id` to the eval block for a generic region,
// which is the current instruction block. The instruction `generic_inst_id` is
// expected to compute the value of the constant described by `const_inst_id` in
// each specific. Forms and returns a corresponding symbolic constant ID that
// refers to the substituted value of that instruction in each specific.
static auto AddGenericConstantInstToEvalBlock(
Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region, SemIR::InstId const_inst_id,
SemIR::InstId generic_inst_id) -> SemIR::ConstantId {
auto index = SemIR::GenericInstIndex(
region, context.inst_block_stack().PeekCurrentBlockContents().size());
context.inst_block_stack().AddInstId(generic_inst_id);
return context.constant_values().AddSymbolicConstant(
{.inst_id = const_inst_id, .generic_id = generic_id, .index = index});
}
namespace {
// A map from an instruction ID representing a canonical symbolic constant to an
// instruction within an eval block of the generic that computes the specific
// value for that constant.
//
// We arbitrarily use a small size of 256 bytes for the map.
// TODO: Determine a better number based on measurements.
using ConstantsInGenericMap = Map<SemIR::InstId, SemIR::InstId, 256>;
// Substitution callbacks to rebuild a generic constant in the eval block for a
// generic region.
class RebuildGenericConstantInEvalBlockCallbacks final
: public SubstInstCallbacks {
public:
RebuildGenericConstantInEvalBlockCallbacks(
Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region,
ConstantsInGenericMap& constants_in_generic)
: context_(context),
generic_id_(generic_id),
region_(region),
constants_in_generic_(constants_in_generic) {}
// Check for instructions for which we already have a mapping into the eval
// block, and substitute them for the instructions in the eval block.
auto Subst(SemIR::InstId& inst_id) const -> bool override {
auto const_id = context_.constant_values().Get(inst_id);
if (!const_id.is_valid()) {
// An unloaded import ref should never contain anything we need to
// substitute into. Don't trigger loading it here.
CARBON_CHECK(
context_.insts().Is<SemIR::ImportRefUnloaded>(inst_id),
"Substituting into instruction with invalid constant ID: {0}",
context_.insts().Get(inst_id));
return true;
}
if (!const_id.is_symbolic()) {
// This instruction doesn't have a symbolic constant value, so can't
// contain any bindings that need to be substituted.
return true;
}
// If this instruction is in the map, return the known result.
if (auto result = constants_in_generic_.Lookup(
context_.constant_values().GetInstId(const_id))) {
// In order to reuse instructions from the generic as often as possible,
// keep this instruction as-is if it already has the desired symbolic
// constant value.
if (const_id != context_.constant_values().Get(result.value())) {
inst_id = result.value();
}
CARBON_CHECK(inst_id.is_valid());
return true;
}
// If the instruction is a symbolic binding, build a version in the eval
// block.
if (auto binding =
context_.insts().TryGetAs<SemIR::BindSymbolicName>(inst_id)) {
inst_id = Rebuild(inst_id, *binding);
return true;
}
return false;
}
// Build a new instruction in the eval block corresponding to the given
// constant.
auto Rebuild(SemIR::InstId orig_inst_id, SemIR::Inst new_inst) const
-> SemIR::InstId override {
auto const_inst_id =
context_.constant_values().GetConstantInstId(orig_inst_id);
// We might already have an instruction in the eval block if a transitive
// operand of this instruction has the same constant value.
auto result = constants_in_generic_.Insert(const_inst_id, [&] {
// TODO: Add a function on `Context` to add the instruction without
// inserting it into the dependent instructions list or computing a
// constant value for it.
// TODO: Provide a location based on the location of the instruction
// that uses the constant.
auto inst_id = context_.sem_ir().insts().AddInNoBlock(
SemIR::LocIdAndInst::NoLoc(new_inst));
auto const_id = AddGenericConstantInstToEvalBlock(
context_, generic_id_, region_, const_inst_id, inst_id);
context_.constant_values().Set(inst_id, const_id);
return inst_id;
});
return result.value();
}
private:
Context& context_;
SemIR::GenericId generic_id_;
SemIR::GenericInstIndex::Region region_;
ConstantsInGenericMap& constants_in_generic_;
};
} // namespace
// Adds instructions to compute the substituted version of `type_id` in each
// specific into the eval block for the generic, which is the current
// instruction block. Returns a symbolic type ID that refers to the substituted
// type in each specific.
static auto AddGenericTypeToEvalBlock(
Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region,
ConstantsInGenericMap& constants_in_generic, SemIR::TypeId type_id)
-> SemIR::TypeId {
// Substitute into the type's constant instruction and rebuild it in the eval
// block.
auto type_inst_id =
SubstInst(context, context.types().GetInstId(type_id),
RebuildGenericConstantInEvalBlockCallbacks(
context, generic_id, region, constants_in_generic));
return context.GetTypeIdForTypeInst(type_inst_id);
}
// Adds instructions to compute the substituted value of `inst_id` in each
// specific into the eval block for the generic, which is the current
// instruction block. Returns a symbolic constant instruction ID that refers to
// the substituted constant value in each specific.
static auto AddGenericConstantToEvalBlock(
Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region,
ConstantsInGenericMap& constants_in_generic, SemIR::InstId inst_id)
-> SemIR::ConstantId {
// Substitute into the constant value and rebuild it in the eval block if
// we've not encountered it before.
auto const_inst_id = context.constant_values().GetConstantInstId(inst_id);
auto new_inst_id =
SubstInst(context, const_inst_id,
RebuildGenericConstantInEvalBlockCallbacks(
context, generic_id, region, constants_in_generic));
CARBON_CHECK(new_inst_id != const_inst_id,
"Did not apply any substitutions to symbolic constant {0}",
context.insts().Get(const_inst_id));
return context.constant_values().Get(new_inst_id);
}
// Populates a map of constants in a generic from the constants in the
// declaration region, in preparation for building the definition region.
static auto PopulateConstantsFromDeclaration(
Context& context, SemIR::GenericId generic_id,
ConstantsInGenericMap& constants_in_generic) {
// For the definition region, populate constants from the declaration.
auto decl_eval_block = context.inst_blocks().Get(
context.generics().Get(generic_id).decl_block_id);
constants_in_generic.GrowForInsertCount(decl_eval_block.size());
for (auto inst_id : decl_eval_block) {
auto const_inst_id = context.constant_values().GetConstantInstId(inst_id);
auto result = constants_in_generic.Insert(const_inst_id, inst_id);
CARBON_CHECK(result.is_inserted(),
"Duplicate constant in generic decl eval block: {0}",
context.insts().Get(const_inst_id));
}
}
// Builds and returns a block of instructions whose constant values need to be
// evaluated in order to resolve a generic to a specific.
static auto MakeGenericEvalBlock(Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region)
-> SemIR::InstBlockId {
context.inst_block_stack().Push();
ConstantsInGenericMap constants_in_generic;
// For the definition region, populate constants from the declaration.
if (region == SemIR::GenericInstIndex::Region::Definition) {
PopulateConstantsFromDeclaration(context, generic_id, constants_in_generic);
}
// The work done in this loop might invalidate iterators into the generic
// region stack, but shouldn't add new dependent instructions to the current
// region.
auto num_dependent_insts =
context.generic_region_stack().PeekDependentInsts().size();
for (auto i : llvm::seq(num_dependent_insts)) {
auto [inst_id, dep_kind] =
context.generic_region_stack().PeekDependentInsts()[i];
// If the type is symbolic, replace it with a type specific to this generic.
if ((dep_kind & GenericRegionStack::DependencyKind::SymbolicType) !=
GenericRegionStack::DependencyKind::None) {
auto inst = context.insts().Get(inst_id);
auto type_id = AddGenericTypeToEvalBlock(
context, generic_id, region, constants_in_generic, inst.type_id());
// TODO: Eventually, completeness requirements should be modeled as
// constraints on the generic rather than properties of the type. For now,
// require the transformed type to be complete if the original was.
// TODO: We'll also need to do this when evaluating the eval block.
if (context.types().IsComplete(inst.type_id())) {
context.TryToCompleteType(type_id);
}
inst.SetType(type_id);
context.sem_ir().insts().Set(inst_id, inst);
}
// If the instruction has a symbolic constant value, then make a note that
// we'll need to evaluate this instruction when forming the specific. Update
// the constant value of the instruction to refer to the result of that
// eventual evaluation.
if ((dep_kind & GenericRegionStack::DependencyKind::SymbolicConstant) !=
GenericRegionStack::DependencyKind::None) {
// Update the constant value to refer to this generic.
context.constant_values().Set(
inst_id,
AddGenericConstantToEvalBlock(context, generic_id, region,
constants_in_generic, inst_id));
}
}
CARBON_CHECK(
num_dependent_insts ==
context.generic_region_stack().PeekDependentInsts().size(),
"Building eval block added new dependent insts, for example {0}",
context.insts().Get(context.generic_region_stack()
.PeekDependentInsts()[num_dependent_insts]
.inst_id));
return context.inst_block_stack().Pop();
}
// Builds and returns an eval block, given the list of canonical symbolic
// constants that the instructions in the eval block should produce. This is
// used when importing a generic.
auto RebuildGenericEvalBlock(Context& context, SemIR::GenericId generic_id,
SemIR::GenericInstIndex::Region region,
llvm::ArrayRef<SemIR::InstId> const_ids)
-> SemIR::InstBlockId {
context.inst_block_stack().Push();
ConstantsInGenericMap constants_in_generic;
// For the definition region, populate constants from the declaration.
if (region == SemIR::GenericInstIndex::Region::Definition) {
PopulateConstantsFromDeclaration(context, generic_id, constants_in_generic);
}
constants_in_generic.GrowForInsertCount(const_ids.size());
for (auto [i, inst_id] : llvm::enumerate(const_ids)) {
// Build a constant in the inst block.
AddGenericConstantToEvalBlock(context, generic_id, region,
constants_in_generic, inst_id);
CARBON_CHECK(
context.inst_block_stack().PeekCurrentBlockContents().size() == i + 1,
"Produced {0} instructions when importing {1}",
(context.inst_block_stack().PeekCurrentBlockContents().size() - i),
context.insts().Get(inst_id));
}
return context.inst_block_stack().Pop();
}
auto FinishGenericDecl(Context& context, SemIR::InstId decl_id)
-> SemIR::GenericId {
auto all_bindings =
context.scope_stack().compile_time_bindings_stack().PeekAllValues();
if (all_bindings.empty()) {
CARBON_CHECK(context.generic_region_stack().PeekDependentInsts().empty(),
"Have dependent instructions but no compile time bindings are "
"in scope.");
context.generic_region_stack().Pop();
return SemIR::GenericId::Invalid;
}
// Build the new Generic object. Note that we intentionally do not hold a
// persistent reference to it throughout this function, because the `generics`
// collection can have items added to it by import resolution while we are
// building this generic.
auto bindings_id = context.inst_blocks().Add(all_bindings);
auto generic_id = context.generics().Add(
SemIR::Generic{.decl_id = decl_id,
.bindings_id = bindings_id,
.self_specific_id = SemIR::SpecificId::Invalid});
auto decl_block_id = MakeGenericEvalBlock(
context, generic_id, SemIR::GenericInstIndex::Region::Declaration);
context.generic_region_stack().Pop();
context.generics().Get(generic_id).decl_block_id = decl_block_id;
auto self_specific_id = MakeSelfSpecific(context, generic_id);
context.generics().Get(generic_id).self_specific_id = self_specific_id;
return generic_id;
}
auto FinishGenericRedecl(Context& context, SemIR::InstId /*decl_id*/,
SemIR::GenericId /*generic_id*/) -> void {
// TODO: Compare contents of this declaration with the existing one on the
// generic.
context.generic_region_stack().Pop();
}
auto FinishGenericDefinition(Context& context, SemIR::GenericId generic_id)
-> void {
if (!generic_id.is_valid()) {
// TODO: We can have symbolic constants in a context that had a non-generic
// declaration, for example if there's a local generic let binding in a
// function definition. Handle this case somehow -- perhaps by forming
// substituted constant values now.
context.generic_region_stack().Pop();
return;
}
auto definition_block_id = MakeGenericEvalBlock(
context, generic_id, SemIR::GenericInstIndex::Region::Definition);
context.generics().Get(generic_id).definition_block_id = definition_block_id;
context.generic_region_stack().Pop();
}
auto MakeSpecific(Context& context, SemIR::GenericId generic_id,
SemIR::InstBlockId args_id) -> SemIR::SpecificId {
auto specific_id = context.specifics().GetOrAdd(generic_id, args_id);
// If this is the first time we've formed this specific, evaluate its decl
// block to form information about the specific.
if (!context.specifics().Get(specific_id).decl_block_id.is_valid()) {
auto decl_block_id = TryEvalBlockForSpecific(
context, specific_id, SemIR::GenericInstIndex::Region::Declaration);
// Note that TryEvalBlockForSpecific may reallocate the list of specifics,
// so re-lookup the specific here.
context.specifics().Get(specific_id).decl_block_id = decl_block_id;
}
return specific_id;
}
auto MakeSelfSpecific(Context& context, SemIR::GenericId generic_id)
-> SemIR::SpecificId {
if (!generic_id.is_valid()) {
return SemIR::SpecificId::Invalid;
}
auto& generic = context.generics().Get(generic_id);
auto args = context.inst_blocks().Get(generic.bindings_id);
// Form a canonical argument list for the generic.
llvm::SmallVector<SemIR::InstId> arg_ids;
arg_ids.reserve(args.size());
for (auto arg_id : args) {
arg_ids.push_back(context.constant_values().GetConstantInstId(arg_id));
}
auto args_id = context.inst_blocks().AddCanonical(arg_ids);
// Build a corresponding specific.
// TODO: This could be made more efficient. We don't need to perform
// substitution here; we know we want identity mappings for all constants and
// types. We could also consider not storing the mapping at all in this case.
return MakeSpecific(context, generic_id, args_id);
}
auto ResolveSpecificDefinition(Context& context, SemIR::SpecificId specific_id)
-> bool {
auto& specific = context.specifics().Get(specific_id);
auto generic_id = specific.generic_id;
CARBON_CHECK(generic_id.is_valid(), "Specific with no generic ID");
if (!specific.definition_block_id.is_valid()) {
// Evaluate the eval block for the definition of the generic.
auto& generic = context.generics().Get(generic_id);
if (!generic.definition_block_id.is_valid()) {
// The generic is not defined yet.
return false;
}
auto definition_block_id = TryEvalBlockForSpecific(
context, specific_id, SemIR::GenericInstIndex::Region::Definition);
// Note that TryEvalBlockForSpecific may reallocate the list of specifics,
// so re-lookup the specific here.
context.specifics().Get(specific_id).definition_block_id =
definition_block_id;
}
return true;
}
auto RequireGenericParams(Context& context, SemIR::InstBlockId block_id)
-> void {
if (!block_id.is_valid() || block_id == SemIR::InstBlockId::Empty) {
return;
}
for (auto& inst_id : context.inst_blocks().Get(block_id)) {
if (!context.constant_values().Get(inst_id).is_constant()) {
CARBON_DIAGNOSTIC(GenericParamMustBeConstant, Error,
"parameters of generic types must be constant");
context.emitter().Emit(inst_id, GenericParamMustBeConstant);
// Replace the parameter with an invalid instruction so that we don't try
// constructing a generic based on it. Note this is updating the param
// refs block, not the actual params block, so will not be directly
// reflected in SemIR output.
inst_id = context.AddInstInNoBlock<SemIR::Param>(
context.insts().GetLocId(inst_id),
{.type_id = SemIR::TypeId::Error,
.name_id = SemIR::NameId::Base,
.runtime_index = SemIR::RuntimeParamIndex::Invalid});
}
}
}
} // namespace Carbon::Check