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This creates a new check/type.h for most logic, and also moves some functions to TypeStore in sem_ir/type.h. My approach for TypeStore is to focus on moving the read-only functions there.
2193 lines
90 KiB
C++
2193 lines
90 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/eval.h"
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#include "toolchain/base/kind_switch.h"
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#include "toolchain/check/diagnostic_helpers.h"
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#include "toolchain/check/generic.h"
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#include "toolchain/check/import_ref.h"
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#include "toolchain/check/type.h"
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#include "toolchain/check/type_completion.h"
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#include "toolchain/diagnostics/diagnostic_emitter.h"
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#include "toolchain/diagnostics/format_providers.h"
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#include "toolchain/sem_ir/builtin_function_kind.h"
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#include "toolchain/sem_ir/function.h"
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#include "toolchain/sem_ir/generic.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/inst_kind.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::Check {
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namespace {
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// Information about an eval block of a specific that we are currently building.
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struct SpecificEvalInfo {
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// The region within the specific whose eval block we are building.
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SemIR::GenericInstIndex::Region region;
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// The work-in-progress contents of the eval block.
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llvm::ArrayRef<SemIR::InstId> values;
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};
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// Information about the context within which we are performing evaluation.
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class EvalContext {
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public:
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explicit EvalContext(
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Context& context, SemIRLoc fallback_loc,
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SemIR::SpecificId specific_id = SemIR::SpecificId::None,
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std::optional<SpecificEvalInfo> specific_eval_info = std::nullopt)
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: context_(context),
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fallback_loc_(fallback_loc),
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specific_id_(specific_id),
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specific_eval_info_(specific_eval_info) {}
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// Gets the location to use for diagnostics if a better location is
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// unavailable.
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// TODO: This is also sometimes unavailable.
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auto fallback_loc() const -> SemIRLoc { return fallback_loc_; }
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// Returns a location to use to point at an instruction in a diagnostic, given
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// a list of instructions that might have an attached location. This is the
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// location of the first instruction in the list that has a location if there
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// is one, and otherwise the fallback location.
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auto GetDiagnosticLoc(llvm::ArrayRef<SemIR::InstId> inst_ids) -> SemIRLoc {
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for (auto inst_id : inst_ids) {
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if (inst_id.has_value() &&
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context_.insts().GetLocId(inst_id).has_value()) {
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return inst_id;
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}
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}
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return fallback_loc_;
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}
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// Gets the value of the specified compile-time binding in this context.
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// Returns `None` if the value is not fixed in this context.
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auto GetCompileTimeBindValue(SemIR::CompileTimeBindIndex bind_index)
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-> SemIR::ConstantId {
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if (!bind_index.has_value() || !specific_id_.has_value()) {
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return SemIR::ConstantId::None;
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}
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const auto& specific = specifics().Get(specific_id_);
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auto args = inst_blocks().Get(specific.args_id);
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// Bindings past the ones with known arguments can appear as local
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// bindings of entities declared within this generic.
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if (static_cast<size_t>(bind_index.index) >= args.size()) {
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return SemIR::ConstantId::None;
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}
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return constant_values().Get(args[bind_index.index]);
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}
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// Given a constant value from the SemIR we're evaluating, finds the
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// corresponding constant value to use in the context of this evaluation.
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// This can be different if the original SemIR is for a generic and we are
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// evaluating with specific arguments for the generic parameters.
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auto GetInContext(SemIR::ConstantId const_id) -> SemIR::ConstantId {
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if (!const_id.is_symbolic()) {
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return const_id;
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}
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// While resolving a specific, map from previous instructions in the eval
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// block into their evaluated values. These values won't be present on the
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// specific itself yet, so `GetConstantInSpecific` won't be able to find
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// them.
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if (specific_eval_info_) {
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const auto& symbolic_info =
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constant_values().GetSymbolicConstant(const_id);
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if (symbolic_info.index.has_value() &&
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symbolic_info.generic_id ==
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specifics().Get(specific_id_).generic_id &&
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symbolic_info.index.region() == specific_eval_info_->region) {
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auto inst_id = specific_eval_info_->values[symbolic_info.index.index()];
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CARBON_CHECK(inst_id.has_value(),
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"Forward reference in eval block: index {0} referenced "
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"before evaluation",
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symbolic_info.index.index());
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return constant_values().Get(inst_id);
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}
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}
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// Map from a specific constant value to the canonical value.
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return GetConstantInSpecific(sem_ir(), specific_id_, const_id);
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}
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// Gets the constant value of the specified instruction in this context.
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auto GetConstantValue(SemIR::InstId inst_id) -> SemIR::ConstantId {
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return GetInContext(constant_values().Get(inst_id));
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}
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// Gets the constant value of the specified type in this context.
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auto GetConstantValue(SemIR::TypeId type_id) -> SemIR::ConstantId {
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return GetInContext(types().GetConstantId(type_id));
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}
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// Gets the constant value of the specified type in this context.
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auto GetConstantValueAsType(SemIR::TypeId id) -> SemIR::TypeId {
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return context().types().GetTypeIdForTypeConstantId(GetConstantValue(id));
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}
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// Gets the instruction describing the constant value of the specified type in
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// this context.
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auto GetConstantValueAsInst(SemIR::TypeId id) -> SemIR::Inst {
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return insts().Get(
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context().constant_values().GetInstId(GetConstantValue(id)));
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}
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auto ints() -> SharedValueStores::IntStore& { return sem_ir().ints(); }
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auto floats() -> SharedValueStores::FloatStore& { return sem_ir().floats(); }
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auto entity_names() -> SemIR::EntityNameStore& {
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return sem_ir().entity_names();
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}
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auto functions() -> const ValueStore<SemIR::FunctionId>& {
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return sem_ir().functions();
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}
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auto classes() -> const ValueStore<SemIR::ClassId>& {
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return sem_ir().classes();
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}
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auto interfaces() -> const ValueStore<SemIR::InterfaceId>& {
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return sem_ir().interfaces();
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}
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auto facet_types() -> CanonicalValueStore<SemIR::FacetTypeId>& {
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return sem_ir().facet_types();
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}
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auto specifics() -> const SemIR::SpecificStore& {
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return sem_ir().specifics();
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}
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auto type_blocks() -> SemIR::BlockValueStore<SemIR::TypeBlockId>& {
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return sem_ir().type_blocks();
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}
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auto insts() -> const SemIR::InstStore& { return sem_ir().insts(); }
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auto inst_blocks() -> SemIR::InstBlockStore& {
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return sem_ir().inst_blocks();
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}
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// Gets the constant value store. Note that this does not provide the constant
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// values that should be used from this evaluation context, and so should be
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// used with caution.
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auto constant_values() -> const SemIR::ConstantValueStore& {
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return sem_ir().constant_values();
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}
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// Gets the types store. Note that this does not provide the type values that
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// should be used from this evaluation context, and so should be used with
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// caution.
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auto types() -> const SemIR::TypeStore& { return sem_ir().types(); }
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auto context() -> Context& { return context_; }
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auto sem_ir() -> SemIR::File& { return context().sem_ir(); }
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auto emitter() -> Context::DiagnosticEmitter& { return context().emitter(); }
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private:
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// The type-checking context in which we're performing evaluation.
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Context& context_;
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// The location to use for diagnostics when a better location isn't available.
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SemIRLoc fallback_loc_;
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// The specific that we are evaluating within.
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SemIR::SpecificId specific_id_;
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// If we are currently evaluating an eval block for `specific_id_`,
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// information about that evaluation.
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std::optional<SpecificEvalInfo> specific_eval_info_;
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};
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} // namespace
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namespace {
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// The evaluation phase for an expression, computed by evaluation. These are
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// ordered so that the phase of an expression is the numerically highest phase
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// of its constituent evaluations. Note that an expression with any runtime
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// component is known to have Runtime phase even if it involves an evaluation
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// with UnknownDueToError phase.
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enum class Phase : uint8_t {
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// Value could be entirely and concretely computed.
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Concrete,
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// Evaluation phase is symbolic because the expression involves specifically a
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// reference to `.Self`.
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PeriodSelfSymbolic,
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// Evaluation phase is symbolic because the expression involves a reference to
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// a symbolic binding.
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Symbolic,
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// The evaluation phase is unknown because evaluation encountered an
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// already-diagnosed semantic or syntax error. This is treated as being
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// potentially constant, but with an unknown phase.
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UnknownDueToError,
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// The expression has runtime phase because of a non-constant subexpression.
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Runtime,
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};
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} // namespace
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// Gets the phase in which the value of a constant will become available.
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static auto GetPhase(EvalContext& eval_context, SemIR::ConstantId constant_id)
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-> Phase {
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if (!constant_id.is_constant()) {
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return Phase::Runtime;
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} else if (constant_id == SemIR::ErrorInst::SingletonConstantId) {
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return Phase::UnknownDueToError;
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} else if (constant_id.is_concrete()) {
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return Phase::Concrete;
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} else if (eval_context.constant_values().DependsOnGenericParameter(
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constant_id)) {
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return Phase::Symbolic;
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} else {
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CARBON_CHECK(constant_id.is_symbolic());
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return Phase::PeriodSelfSymbolic;
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}
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}
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// Returns the later of two phases.
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static auto LatestPhase(Phase a, Phase b) -> Phase {
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return static_cast<Phase>(
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std::max(static_cast<uint8_t>(a), static_cast<uint8_t>(b)));
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}
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// `where` expressions using `.Self` should not be considered symbolic
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// - `Interface where .Self impls I and .A = bool` -> concrete
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// - `T:! type` ... `Interface where .A = T` -> symbolic, since uses `T` which
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// is symbolic and not due to `.Self`.
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static auto UpdatePhaseIgnorePeriodSelf(EvalContext& eval_context,
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SemIR::ConstantId constant_id,
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Phase* phase) {
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Phase constant_phase = GetPhase(eval_context, constant_id);
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// Since LatestPhase(x, Phase::Concrete) == x, this is equivalent to replacing
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// Phase::PeriodSelfSymbolic with Phase::Concrete.
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if (constant_phase != Phase::PeriodSelfSymbolic) {
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*phase = LatestPhase(*phase, constant_phase);
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}
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}
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// Forms a `constant_id` describing a given evaluation result.
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static auto MakeConstantResult(Context& context, SemIR::Inst inst, Phase phase)
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-> SemIR::ConstantId {
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switch (phase) {
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case Phase::Concrete:
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return context.constants().GetOrAdd(inst,
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SemIR::ConstantStore::IsConcrete);
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case Phase::PeriodSelfSymbolic:
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return context.constants().GetOrAdd(
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inst, SemIR::ConstantStore::IsPeriodSelfSymbolic);
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case Phase::Symbolic:
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return context.constants().GetOrAdd(inst,
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SemIR::ConstantStore::IsSymbolic);
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case Phase::UnknownDueToError:
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return SemIR::ErrorInst::SingletonConstantId;
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case Phase::Runtime:
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return SemIR::ConstantId::NotConstant;
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}
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}
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// Forms a `constant_id` describing why an evaluation was not constant.
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static auto MakeNonConstantResult(Phase phase) -> SemIR::ConstantId {
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return phase == Phase::UnknownDueToError
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? SemIR::ErrorInst::SingletonConstantId
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: SemIR::ConstantId::NotConstant;
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}
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// Converts a bool value into a ConstantId.
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static auto MakeBoolResult(Context& context, SemIR::TypeId bool_type_id,
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bool result) -> SemIR::ConstantId {
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return MakeConstantResult(
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context,
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SemIR::BoolLiteral{.type_id = bool_type_id,
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.value = SemIR::BoolValue::From(result)},
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Phase::Concrete);
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}
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// Converts an APInt value into a ConstantId.
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static auto MakeIntResult(Context& context, SemIR::TypeId type_id,
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bool is_signed, llvm::APInt value)
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-> SemIR::ConstantId {
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CARBON_CHECK(is_signed == context.types().IsSignedInt(type_id));
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auto result = is_signed ? context.ints().AddSigned(std::move(value))
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: context.ints().AddUnsigned(std::move(value));
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return MakeConstantResult(
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context, SemIR::IntValue{.type_id = type_id, .int_id = result},
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Phase::Concrete);
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}
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// Converts an APFloat value into a ConstantId.
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static auto MakeFloatResult(Context& context, SemIR::TypeId type_id,
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llvm::APFloat value) -> SemIR::ConstantId {
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auto result = context.floats().Add(std::move(value));
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return MakeConstantResult(
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context, SemIR::FloatLiteral{.type_id = type_id, .float_id = result},
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Phase::Concrete);
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}
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// `GetConstantValue` checks to see whether the provided ID describes a value
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// with constant phase, and if so, returns the corresponding constant value.
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// Overloads are provided for different kinds of ID.
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// If the given instruction is constant, returns its constant value.
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static auto GetConstantValue(EvalContext& eval_context, SemIR::InstId inst_id,
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Phase* phase) -> SemIR::InstId {
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auto const_id = eval_context.GetConstantValue(inst_id);
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*phase = LatestPhase(*phase, GetPhase(eval_context, const_id));
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return eval_context.constant_values().GetInstId(const_id);
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}
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// Given a type which may refer to a generic parameter, returns the
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// corresponding type in the evaluation context.
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static auto GetConstantValue(EvalContext& eval_context, SemIR::TypeId type_id,
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Phase* phase) -> SemIR::TypeId {
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auto const_id = eval_context.GetConstantValue(type_id);
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*phase = LatestPhase(*phase, GetPhase(eval_context, const_id));
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return eval_context.context().types().GetTypeIdForTypeConstantId(const_id);
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}
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// If the given instruction block contains only constants, returns a
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// corresponding block of those values.
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static auto GetConstantValue(EvalContext& eval_context,
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SemIR::InstBlockId inst_block_id, Phase* phase)
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-> SemIR::InstBlockId {
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if (!inst_block_id.has_value()) {
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return SemIR::InstBlockId::None;
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}
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auto insts = eval_context.inst_blocks().Get(inst_block_id);
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llvm::SmallVector<SemIR::InstId> const_insts;
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for (auto inst_id : insts) {
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auto const_inst_id = GetConstantValue(eval_context, inst_id, phase);
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if (!const_inst_id.has_value()) {
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return SemIR::InstBlockId::None;
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}
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// Once we leave the small buffer, we know the first few elements are all
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// constant, so it's likely that the entire block is constant. Resize to the
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// target size given that we're going to allocate memory now anyway.
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if (const_insts.size() == const_insts.capacity()) {
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const_insts.reserve(insts.size());
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}
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const_insts.push_back(const_inst_id);
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}
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// TODO: If the new block is identical to the original block, and we know the
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// old ID was canonical, return the original ID.
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return eval_context.inst_blocks().AddCanonical(const_insts);
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}
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// Compute the constant value of a type block. This may be different from the
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// input type block if we have known generic arguments.
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static auto GetConstantValue(EvalContext& eval_context,
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SemIR::StructTypeFieldsId fields_id, Phase* phase)
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-> SemIR::StructTypeFieldsId {
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if (!fields_id.has_value()) {
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return SemIR::StructTypeFieldsId::None;
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}
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auto fields = eval_context.context().struct_type_fields().Get(fields_id);
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llvm::SmallVector<SemIR::StructTypeField> new_fields;
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for (auto field : fields) {
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auto new_type_id = GetConstantValue(eval_context, field.type_id, phase);
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if (!new_type_id.has_value()) {
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return SemIR::StructTypeFieldsId::None;
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}
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// Once we leave the small buffer, we know the first few elements are all
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// constant, so it's likely that the entire block is constant. Resize to the
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// target size given that we're going to allocate memory now anyway.
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if (new_fields.size() == new_fields.capacity()) {
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new_fields.reserve(fields.size());
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}
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new_fields.push_back({.name_id = field.name_id, .type_id = new_type_id});
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}
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// TODO: If the new block is identical to the original block, and we know the
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// old ID was canonical, return the original ID.
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return eval_context.context().struct_type_fields().AddCanonical(new_fields);
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}
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// Compute the constant value of a type block. This may be different from the
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// input type block if we have known generic arguments.
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static auto GetConstantValue(EvalContext& eval_context,
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SemIR::TypeBlockId type_block_id, Phase* phase)
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-> SemIR::TypeBlockId {
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if (!type_block_id.has_value()) {
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return SemIR::TypeBlockId::None;
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}
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auto types = eval_context.type_blocks().Get(type_block_id);
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llvm::SmallVector<SemIR::TypeId> new_types;
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for (auto type_id : types) {
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auto new_type_id = GetConstantValue(eval_context, type_id, phase);
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if (!new_type_id.has_value()) {
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return SemIR::TypeBlockId::None;
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}
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// Once we leave the small buffer, we know the first few elements are all
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// constant, so it's likely that the entire block is constant. Resize to the
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// target size given that we're going to allocate memory now anyway.
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if (new_types.size() == new_types.capacity()) {
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new_types.reserve(types.size());
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}
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new_types.push_back(new_type_id);
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}
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// TODO: If the new block is identical to the original block, and we know the
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// old ID was canonical, return the original ID.
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return eval_context.type_blocks().AddCanonical(new_types);
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}
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// The constant value of a specific is the specific with the corresponding
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// constant values for its arguments.
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static auto GetConstantValue(EvalContext& eval_context,
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SemIR::SpecificId specific_id, Phase* phase)
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-> SemIR::SpecificId {
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if (!specific_id.has_value()) {
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return SemIR::SpecificId::None;
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}
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const auto& specific = eval_context.specifics().Get(specific_id);
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auto args_id = GetConstantValue(eval_context, specific.args_id, phase);
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if (!args_id.has_value()) {
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return SemIR::SpecificId::None;
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}
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if (args_id == specific.args_id) {
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return specific_id;
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}
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return MakeSpecific(eval_context.context(), eval_context.fallback_loc(),
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specific.generic_id, args_id);
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}
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// Like `GetConstantValue` but does a `FacetTypeId` -> `FacetTypeInfo`
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// conversion. Does not perform canonicalization.
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static auto GetConstantFacetTypeInfo(EvalContext& eval_context,
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SemIR::FacetTypeId facet_type_id,
|
|
Phase* phase) -> SemIR::FacetTypeInfo {
|
|
SemIR::FacetTypeInfo info = eval_context.facet_types().Get(facet_type_id);
|
|
for (auto& interface : info.impls_constraints) {
|
|
interface.specific_id =
|
|
GetConstantValue(eval_context, interface.specific_id, phase);
|
|
}
|
|
for (auto& rewrite : info.rewrite_constraints) {
|
|
rewrite.lhs_const_id = eval_context.GetInContext(rewrite.lhs_const_id);
|
|
rewrite.rhs_const_id = eval_context.GetInContext(rewrite.rhs_const_id);
|
|
// `where` requirements using `.Self` should not be considered symbolic
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, rewrite.lhs_const_id, phase);
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, rewrite.rhs_const_id, phase);
|
|
}
|
|
// TODO: Process other requirements.
|
|
return info;
|
|
}
|
|
|
|
// Replaces the specified field of the given typed instruction with its constant
|
|
// value, if it has constant phase. Returns true on success, false if the value
|
|
// has runtime phase.
|
|
template <typename InstT, typename FieldIdT>
|
|
static auto ReplaceFieldWithConstantValue(EvalContext& eval_context,
|
|
InstT* inst, FieldIdT InstT::*field,
|
|
Phase* phase) -> bool {
|
|
auto unwrapped = GetConstantValue(eval_context, inst->*field, phase);
|
|
if (!unwrapped.has_value() && (inst->*field).has_value()) {
|
|
return false;
|
|
}
|
|
inst->*field = unwrapped;
|
|
return true;
|
|
}
|
|
|
|
// If the specified fields of the given typed instruction have constant values,
|
|
// replaces the fields with their constant values and builds a corresponding
|
|
// constant value. Otherwise returns `ConstantId::NotConstant`. Returns
|
|
// `ErrorInst::SingletonConstantId` if any subexpression is an error.
|
|
//
|
|
// The constant value is then checked by calling `validate_fn(typed_inst)`,
|
|
// which should return a `bool` indicating whether the new constant is valid. If
|
|
// validation passes, `transform_fn(typed_inst)` is called to produce the final
|
|
// constant instruction, and a corresponding ConstantId for the new constant is
|
|
// returned. If validation fails, it should produce a suitable error message.
|
|
// `ErrorInst::SingletonConstantId` is returned.
|
|
template <typename InstT, typename ValidateFn, typename TransformFn,
|
|
typename... EachFieldIdT>
|
|
static auto RebuildIfFieldsAreConstantImpl(
|
|
EvalContext& eval_context, SemIR::Inst inst, ValidateFn validate_fn,
|
|
TransformFn transform_fn, EachFieldIdT InstT::*... each_field_id)
|
|
-> SemIR::ConstantId {
|
|
// Build a constant instruction by replacing each non-constant operand with
|
|
// its constant value.
|
|
auto typed_inst = inst.As<InstT>();
|
|
Phase phase = Phase::Concrete;
|
|
if ((ReplaceFieldWithConstantValue(eval_context, &typed_inst, each_field_id,
|
|
&phase) &&
|
|
...)) {
|
|
if (phase == Phase::UnknownDueToError || !validate_fn(typed_inst)) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
return MakeConstantResult(eval_context.context(), transform_fn(typed_inst),
|
|
phase);
|
|
}
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
|
|
// Same as above but with an identity transform function.
|
|
template <typename InstT, typename ValidateFn, typename... EachFieldIdT>
|
|
static auto RebuildAndValidateIfFieldsAreConstant(
|
|
EvalContext& eval_context, SemIR::Inst inst, ValidateFn validate_fn,
|
|
EachFieldIdT InstT::*... each_field_id) -> SemIR::ConstantId {
|
|
return RebuildIfFieldsAreConstantImpl(eval_context, inst, validate_fn,
|
|
std::identity{}, each_field_id...);
|
|
}
|
|
|
|
// Same as above but with no validation step.
|
|
template <typename InstT, typename TransformFn, typename... EachFieldIdT>
|
|
static auto TransformIfFieldsAreConstant(EvalContext& eval_context,
|
|
SemIR::Inst inst,
|
|
TransformFn transform_fn,
|
|
EachFieldIdT InstT::*... each_field_id)
|
|
-> SemIR::ConstantId {
|
|
return RebuildIfFieldsAreConstantImpl(
|
|
eval_context, inst, [](...) { return true; }, transform_fn,
|
|
each_field_id...);
|
|
}
|
|
|
|
// Same as above but with no validation or transform step.
|
|
template <typename InstT, typename... EachFieldIdT>
|
|
static auto RebuildIfFieldsAreConstant(EvalContext& eval_context,
|
|
SemIR::Inst inst,
|
|
EachFieldIdT InstT::*... each_field_id)
|
|
-> SemIR::ConstantId {
|
|
return RebuildIfFieldsAreConstantImpl(
|
|
eval_context, inst, [](...) { return true; }, std::identity{},
|
|
each_field_id...);
|
|
}
|
|
|
|
// Rebuilds the given aggregate initialization instruction as a corresponding
|
|
// constant aggregate value, if its elements are all constants.
|
|
static auto RebuildInitAsValue(EvalContext& eval_context, SemIR::Inst inst,
|
|
SemIR::InstKind value_kind)
|
|
-> SemIR::ConstantId {
|
|
return TransformIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
[&](SemIR::AnyAggregateInit result) {
|
|
return SemIR::AnyAggregateValue{.kind = value_kind,
|
|
.type_id = result.type_id,
|
|
.elements_id = result.elements_id};
|
|
},
|
|
&SemIR::AnyAggregateInit::type_id, &SemIR::AnyAggregateInit::elements_id);
|
|
}
|
|
|
|
// Performs an access into an aggregate, retrieving the specified element.
|
|
static auto PerformAggregateAccess(EvalContext& eval_context, SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
auto access_inst = inst.As<SemIR::AnyAggregateAccess>();
|
|
Phase phase = Phase::Concrete;
|
|
if (ReplaceFieldWithConstantValue(eval_context, &access_inst,
|
|
&SemIR::AnyAggregateAccess::aggregate_id,
|
|
&phase)) {
|
|
if (auto aggregate =
|
|
eval_context.insts().TryGetAs<SemIR::AnyAggregateValue>(
|
|
access_inst.aggregate_id)) {
|
|
auto elements = eval_context.inst_blocks().Get(aggregate->elements_id);
|
|
auto index = static_cast<size_t>(access_inst.index.index);
|
|
CARBON_CHECK(index < elements.size(), "Access out of bounds.");
|
|
// `Phase` is not used here. If this element is a concrete constant, then
|
|
// so is the result of indexing, even if the aggregate also contains a
|
|
// symbolic context.
|
|
return eval_context.GetConstantValue(elements[index]);
|
|
} else {
|
|
CARBON_CHECK(phase != Phase::Concrete,
|
|
"Failed to evaluate template constant {0} arg0: {1}", inst,
|
|
eval_context.insts().Get(access_inst.aggregate_id));
|
|
}
|
|
return MakeConstantResult(eval_context.context(), access_inst, phase);
|
|
}
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
|
|
// Performs an index into a homogeneous aggregate, retrieving the specified
|
|
// element.
|
|
static auto PerformArrayIndex(EvalContext& eval_context, SemIR::ArrayIndex inst)
|
|
-> SemIR::ConstantId {
|
|
Phase phase = Phase::Concrete;
|
|
auto index_id = GetConstantValue(eval_context, inst.index_id, &phase);
|
|
|
|
if (!index_id.has_value()) {
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
auto index = eval_context.insts().TryGetAs<SemIR::IntValue>(index_id);
|
|
if (!index) {
|
|
CARBON_CHECK(phase != Phase::Concrete,
|
|
"Concrete constant integer should be a literal");
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
|
|
// Array indexing is invalid if the index is constant and out of range,
|
|
// regardless of whether the array itself is constant.
|
|
const auto& index_val = eval_context.ints().Get(index->int_id);
|
|
auto aggregate_type_id = eval_context.GetConstantValueAsType(
|
|
eval_context.insts().Get(inst.array_id).type_id());
|
|
if (auto array_type =
|
|
eval_context.types().TryGetAs<SemIR::ArrayType>(aggregate_type_id)) {
|
|
if (auto bound = eval_context.insts().TryGetAs<SemIR::IntValue>(
|
|
array_type->bound_id)) {
|
|
// This awkward call to `getZExtValue` is a workaround for APInt not
|
|
// supporting comparisons between integers of different bit widths.
|
|
if (index_val.getActiveBits() > 64 ||
|
|
eval_context.ints()
|
|
.Get(bound->int_id)
|
|
.ule(index_val.getZExtValue())) {
|
|
CARBON_DIAGNOSTIC(ArrayIndexOutOfBounds, Error,
|
|
"array index `{0}` is past the end of type {1}",
|
|
TypedInt, SemIR::TypeId);
|
|
eval_context.emitter().Emit(
|
|
eval_context.GetDiagnosticLoc(inst.index_id), ArrayIndexOutOfBounds,
|
|
{.type = index->type_id, .value = index_val}, aggregate_type_id);
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
}
|
|
}
|
|
|
|
auto aggregate_id = GetConstantValue(eval_context, inst.array_id, &phase);
|
|
if (!aggregate_id.has_value()) {
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
auto aggregate =
|
|
eval_context.insts().TryGetAs<SemIR::AnyAggregateValue>(aggregate_id);
|
|
if (!aggregate) {
|
|
CARBON_CHECK(phase != Phase::Concrete,
|
|
"Unexpected representation for template constant aggregate");
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
|
|
auto elements = eval_context.inst_blocks().Get(aggregate->elements_id);
|
|
return eval_context.GetConstantValue(elements[index_val.getZExtValue()]);
|
|
}
|
|
|
|
// Enforces that an integer type has a valid bit width.
|
|
static auto ValidateIntType(Context& context, SemIRLoc loc,
|
|
SemIR::IntType result) -> bool {
|
|
auto bit_width =
|
|
context.insts().TryGetAs<SemIR::IntValue>(result.bit_width_id);
|
|
if (!bit_width) {
|
|
// Symbolic bit width.
|
|
return true;
|
|
}
|
|
const auto& bit_width_val = context.ints().Get(bit_width->int_id);
|
|
if (bit_width_val.isZero() ||
|
|
(context.types().IsSignedInt(bit_width->type_id) &&
|
|
bit_width_val.isNegative())) {
|
|
CARBON_DIAGNOSTIC(IntWidthNotPositive, Error,
|
|
"integer type width of {0} is not positive", TypedInt);
|
|
context.emitter().Emit(
|
|
loc, IntWidthNotPositive,
|
|
{.type = bit_width->type_id, .value = bit_width_val});
|
|
return false;
|
|
}
|
|
if (bit_width_val.ugt(IntStore::MaxIntWidth)) {
|
|
CARBON_DIAGNOSTIC(IntWidthTooLarge, Error,
|
|
"integer type width of {0} is greater than the "
|
|
"maximum supported width of {1}",
|
|
TypedInt, int);
|
|
context.emitter().Emit(loc, IntWidthTooLarge,
|
|
{.type = bit_width->type_id, .value = bit_width_val},
|
|
IntStore::MaxIntWidth);
|
|
return false;
|
|
}
|
|
return true;
|
|
}
|
|
|
|
// Forms a constant int type as an evaluation result. Requires that width_id is
|
|
// constant.
|
|
static auto MakeIntTypeResult(Context& context, SemIRLoc loc,
|
|
SemIR::IntKind int_kind, SemIR::InstId width_id,
|
|
Phase phase) -> SemIR::ConstantId {
|
|
auto result = SemIR::IntType{
|
|
.type_id = GetSingletonType(context, SemIR::TypeType::SingletonInstId),
|
|
.int_kind = int_kind,
|
|
.bit_width_id = width_id};
|
|
if (!ValidateIntType(context, loc, result)) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
return MakeConstantResult(context, result, phase);
|
|
}
|
|
|
|
// Enforces that the bit width is 64 for a float.
|
|
static auto ValidateFloatBitWidth(Context& context, SemIRLoc loc,
|
|
SemIR::InstId inst_id) -> bool {
|
|
auto inst = context.insts().GetAs<SemIR::IntValue>(inst_id);
|
|
if (context.ints().Get(inst.int_id) == 64) {
|
|
return true;
|
|
}
|
|
|
|
CARBON_DIAGNOSTIC(CompileTimeFloatBitWidth, Error, "bit width must be 64");
|
|
context.emitter().Emit(loc, CompileTimeFloatBitWidth);
|
|
return false;
|
|
}
|
|
|
|
// Enforces that a float type has a valid bit width.
|
|
static auto ValidateFloatType(Context& context, SemIRLoc loc,
|
|
SemIR::FloatType result) -> bool {
|
|
auto bit_width =
|
|
context.insts().TryGetAs<SemIR::IntValue>(result.bit_width_id);
|
|
if (!bit_width) {
|
|
// Symbolic bit width.
|
|
return true;
|
|
}
|
|
return ValidateFloatBitWidth(context, loc, result.bit_width_id);
|
|
}
|
|
|
|
// Performs a conversion between integer types, truncating if the value doesn't
|
|
// fit in the destination type.
|
|
static auto PerformIntConvert(Context& context, SemIR::InstId arg_id,
|
|
SemIR::TypeId dest_type_id) -> SemIR::ConstantId {
|
|
auto arg_val =
|
|
context.ints().Get(context.insts().GetAs<SemIR::IntValue>(arg_id).int_id);
|
|
auto [dest_is_signed, bit_width_id] =
|
|
context.sem_ir().types().GetIntTypeInfo(dest_type_id);
|
|
if (bit_width_id.has_value()) {
|
|
// TODO: If the value fits in the destination type, reuse the existing
|
|
// int_id rather than recomputing it. This is probably the most common case.
|
|
bool src_is_signed = context.sem_ir().types().IsSignedInt(
|
|
context.insts().Get(arg_id).type_id());
|
|
unsigned width = context.ints().Get(bit_width_id).getZExtValue();
|
|
arg_val =
|
|
src_is_signed ? arg_val.sextOrTrunc(width) : arg_val.zextOrTrunc(width);
|
|
}
|
|
return MakeIntResult(context, dest_type_id, dest_is_signed, arg_val);
|
|
}
|
|
|
|
// Performs a conversion between integer types, diagnosing if the value doesn't
|
|
// fit in the destination type.
|
|
static auto PerformCheckedIntConvert(Context& context, SemIRLoc loc,
|
|
SemIR::InstId arg_id,
|
|
SemIR::TypeId dest_type_id)
|
|
-> SemIR::ConstantId {
|
|
auto arg = context.insts().GetAs<SemIR::IntValue>(arg_id);
|
|
auto arg_val = context.ints().Get(arg.int_id);
|
|
|
|
auto [is_signed, bit_width_id] =
|
|
context.sem_ir().types().GetIntTypeInfo(dest_type_id);
|
|
auto width = bit_width_id.has_value()
|
|
? context.ints().Get(bit_width_id).getZExtValue()
|
|
: arg_val.getBitWidth();
|
|
|
|
if (!is_signed && arg_val.isNegative()) {
|
|
CARBON_DIAGNOSTIC(
|
|
NegativeIntInUnsignedType, Error,
|
|
"negative integer value {0} converted to unsigned type {1}", TypedInt,
|
|
SemIR::TypeId);
|
|
context.emitter().Emit(loc, NegativeIntInUnsignedType,
|
|
{.type = arg.type_id, .value = arg_val},
|
|
dest_type_id);
|
|
}
|
|
|
|
unsigned arg_non_sign_bits = arg_val.getSignificantBits() - 1;
|
|
if (arg_non_sign_bits + is_signed > width) {
|
|
CARBON_DIAGNOSTIC(IntTooLargeForType, Error,
|
|
"integer value {0} too large for type {1}", TypedInt,
|
|
SemIR::TypeId);
|
|
context.emitter().Emit(loc, IntTooLargeForType,
|
|
{.type = arg.type_id, .value = arg_val},
|
|
dest_type_id);
|
|
}
|
|
|
|
return MakeConstantResult(
|
|
context, SemIR::IntValue{.type_id = dest_type_id, .int_id = arg.int_id},
|
|
Phase::Concrete);
|
|
}
|
|
|
|
// Issues a diagnostic for a compile-time division by zero.
|
|
static auto DiagnoseDivisionByZero(Context& context, SemIRLoc loc) -> void {
|
|
CARBON_DIAGNOSTIC(CompileTimeDivisionByZero, Error, "division by zero");
|
|
context.emitter().Emit(loc, CompileTimeDivisionByZero);
|
|
}
|
|
|
|
// Get an integer at a suitable bit-width: either `bit_width_id` if it has a
|
|
// value, or the canonical width from the value store if not.
|
|
static auto GetIntAtSuitableWidth(Context& context, IntId int_id,
|
|
IntId bit_width_id) -> llvm::APInt {
|
|
return bit_width_id.has_value()
|
|
? context.ints().GetAtWidth(int_id, bit_width_id)
|
|
: context.ints().Get(int_id);
|
|
}
|
|
|
|
// Performs a builtin unary integer -> integer operation.
|
|
static auto PerformBuiltinUnaryIntOp(Context& context, SemIRLoc loc,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId arg_id)
|
|
-> SemIR::ConstantId {
|
|
auto op = context.insts().GetAs<SemIR::IntValue>(arg_id);
|
|
auto [is_signed, bit_width_id] =
|
|
context.sem_ir().types().GetIntTypeInfo(op.type_id);
|
|
llvm::APInt op_val = GetIntAtSuitableWidth(context, op.int_id, bit_width_id);
|
|
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::IntSNegate:
|
|
if (op_val.isMinSignedValue()) {
|
|
if (bit_width_id.has_value()) {
|
|
CARBON_DIAGNOSTIC(CompileTimeIntegerNegateOverflow, Error,
|
|
"integer overflow in negation of {0}", TypedInt);
|
|
context.emitter().Emit(loc, CompileTimeIntegerNegateOverflow,
|
|
{.type = op.type_id, .value = op_val});
|
|
} else {
|
|
// Widen the integer so we don't overflow into the sign bit.
|
|
op_val = op_val.sext(op_val.getBitWidth() +
|
|
llvm::APInt::APINT_BITS_PER_WORD);
|
|
}
|
|
}
|
|
op_val.negate();
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUNegate:
|
|
CARBON_CHECK(bit_width_id.has_value(), "Unsigned negate on unsized int");
|
|
op_val.negate();
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntComplement:
|
|
// TODO: Should we have separate builtins for signed and unsigned
|
|
// complement? Like with signed/unsigned negate, these operations do
|
|
// different things to the integer value, even though they do the same
|
|
// thing to the bits. We treat IntLiteral complement as signed complement,
|
|
// given that the result of unsigned complement depends on the bit width.
|
|
op_val.flipAllBits();
|
|
break;
|
|
default:
|
|
CARBON_FATAL("Unexpected builtin kind");
|
|
}
|
|
|
|
return MakeIntResult(context, op.type_id, is_signed, std::move(op_val));
|
|
}
|
|
|
|
namespace {
|
|
// A pair of APInts that are the operands of a binary operator. We use an
|
|
// aggregate rather than `std::pair` to allow RVO of the individual ints.
|
|
struct APIntBinaryOperands {
|
|
llvm::APInt lhs;
|
|
llvm::APInt rhs;
|
|
};
|
|
} // namespace
|
|
|
|
// Get a pair of integers at the same suitable bit-width: either their actual
|
|
// width if they have a fixed width, or the smallest canonical width in which
|
|
// they both fit otherwise.
|
|
static auto GetIntsAtSuitableWidth(Context& context, IntId lhs_id, IntId rhs_id,
|
|
IntId bit_width_id) -> APIntBinaryOperands {
|
|
// Unsized operands: take the wider of the bit widths.
|
|
if (!bit_width_id.has_value()) {
|
|
APIntBinaryOperands result = {.lhs = context.ints().Get(lhs_id),
|
|
.rhs = context.ints().Get(rhs_id)};
|
|
if (result.lhs.getBitWidth() != result.rhs.getBitWidth()) {
|
|
if (result.lhs.getBitWidth() > result.rhs.getBitWidth()) {
|
|
result.rhs = result.rhs.sext(result.lhs.getBitWidth());
|
|
} else {
|
|
result.lhs = result.lhs.sext(result.rhs.getBitWidth());
|
|
}
|
|
}
|
|
return result;
|
|
}
|
|
|
|
return {.lhs = context.ints().GetAtWidth(lhs_id, bit_width_id),
|
|
.rhs = context.ints().GetAtWidth(rhs_id, bit_width_id)};
|
|
}
|
|
|
|
namespace {
|
|
// The result of performing a binary int operation.
|
|
struct BinaryIntOpResult {
|
|
llvm::APInt result_val;
|
|
bool overflow;
|
|
Lex::TokenKind op_token;
|
|
};
|
|
} // namespace
|
|
|
|
// Computes the result of a homogeneous binary (int, int) -> int operation.
|
|
static auto ComputeBinaryIntOpResult(SemIR::BuiltinFunctionKind builtin_kind,
|
|
const llvm::APInt& lhs_val,
|
|
const llvm::APInt& rhs_val)
|
|
-> BinaryIntOpResult {
|
|
llvm::APInt result_val;
|
|
bool overflow = false;
|
|
Lex::TokenKind op_token = Lex::TokenKind::Not;
|
|
|
|
switch (builtin_kind) {
|
|
// Arithmetic.
|
|
case SemIR::BuiltinFunctionKind::IntSAdd:
|
|
result_val = lhs_val.sadd_ov(rhs_val, overflow);
|
|
op_token = Lex::TokenKind::Plus;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntSSub:
|
|
result_val = lhs_val.ssub_ov(rhs_val, overflow);
|
|
op_token = Lex::TokenKind::Minus;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntSMul:
|
|
result_val = lhs_val.smul_ov(rhs_val, overflow);
|
|
op_token = Lex::TokenKind::Star;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntSDiv:
|
|
result_val = lhs_val.sdiv_ov(rhs_val, overflow);
|
|
op_token = Lex::TokenKind::Slash;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntSMod:
|
|
result_val = lhs_val.srem(rhs_val);
|
|
// LLVM weirdly lacks `srem_ov`, so we work it out for ourselves:
|
|
// <signed min> % -1 overflows because <signed min> / -1 overflows.
|
|
overflow = lhs_val.isMinSignedValue() && rhs_val.isAllOnes();
|
|
op_token = Lex::TokenKind::Percent;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUAdd:
|
|
result_val = lhs_val + rhs_val;
|
|
op_token = Lex::TokenKind::Plus;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUSub:
|
|
result_val = lhs_val - rhs_val;
|
|
op_token = Lex::TokenKind::Minus;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUMul:
|
|
result_val = lhs_val * rhs_val;
|
|
op_token = Lex::TokenKind::Star;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUDiv:
|
|
result_val = lhs_val.udiv(rhs_val);
|
|
op_token = Lex::TokenKind::Slash;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntUMod:
|
|
result_val = lhs_val.urem(rhs_val);
|
|
op_token = Lex::TokenKind::Percent;
|
|
break;
|
|
|
|
// Bitwise.
|
|
case SemIR::BuiltinFunctionKind::IntAnd:
|
|
result_val = lhs_val & rhs_val;
|
|
op_token = Lex::TokenKind::And;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntOr:
|
|
result_val = lhs_val | rhs_val;
|
|
op_token = Lex::TokenKind::Pipe;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntXor:
|
|
result_val = lhs_val ^ rhs_val;
|
|
op_token = Lex::TokenKind::Caret;
|
|
break;
|
|
|
|
case SemIR::BuiltinFunctionKind::IntLeftShift:
|
|
case SemIR::BuiltinFunctionKind::IntRightShift:
|
|
CARBON_FATAL("Non-homogeneous operation handled separately.");
|
|
|
|
default:
|
|
CARBON_FATAL("Unexpected operation kind.");
|
|
}
|
|
return {.result_val = std::move(result_val),
|
|
.overflow = overflow,
|
|
.op_token = op_token};
|
|
}
|
|
|
|
// Performs a builtin integer bit shift operation.
|
|
static auto PerformBuiltinIntShiftOp(Context& context, SemIRLoc loc,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id, SemIR::InstId rhs_id)
|
|
-> SemIR::ConstantId {
|
|
auto lhs = context.insts().GetAs<SemIR::IntValue>(lhs_id);
|
|
auto rhs = context.insts().GetAs<SemIR::IntValue>(rhs_id);
|
|
|
|
auto [lhs_is_signed, lhs_bit_width_id] =
|
|
context.sem_ir().types().GetIntTypeInfo(lhs.type_id);
|
|
|
|
llvm::APInt lhs_val =
|
|
GetIntAtSuitableWidth(context, lhs.int_id, lhs_bit_width_id);
|
|
const auto& rhs_orig_val = context.ints().Get(rhs.int_id);
|
|
if (lhs_bit_width_id.has_value() && rhs_orig_val.uge(lhs_val.getBitWidth())) {
|
|
CARBON_DIAGNOSTIC(
|
|
CompileTimeShiftOutOfRange, Error,
|
|
"shift distance >= type width of {0} in `{1} {2:<<|>>} {3}`", unsigned,
|
|
TypedInt, BoolAsSelect, TypedInt);
|
|
context.emitter().Emit(
|
|
loc, CompileTimeShiftOutOfRange, lhs_val.getBitWidth(),
|
|
{.type = lhs.type_id, .value = lhs_val},
|
|
builtin_kind == SemIR::BuiltinFunctionKind::IntLeftShift,
|
|
{.type = rhs.type_id, .value = rhs_orig_val});
|
|
// TODO: Is it useful to recover by returning 0 or -1?
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
|
|
if (rhs_orig_val.isNegative() &&
|
|
context.sem_ir().types().IsSignedInt(rhs.type_id)) {
|
|
CARBON_DIAGNOSTIC(CompileTimeShiftNegative, Error,
|
|
"shift distance negative in `{0} {1:<<|>>} {2}`",
|
|
TypedInt, BoolAsSelect, TypedInt);
|
|
context.emitter().Emit(
|
|
loc, CompileTimeShiftNegative, {.type = lhs.type_id, .value = lhs_val},
|
|
builtin_kind == SemIR::BuiltinFunctionKind::IntLeftShift,
|
|
{.type = rhs.type_id, .value = rhs_orig_val});
|
|
// TODO: Is it useful to recover by returning 0 or -1?
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
|
|
llvm::APInt result_val;
|
|
if (builtin_kind == SemIR::BuiltinFunctionKind::IntLeftShift) {
|
|
if (!lhs_bit_width_id.has_value() && !lhs_val.isZero()) {
|
|
// Ensure we don't generate a ridiculously large integer through a bit
|
|
// shift.
|
|
auto width = rhs_orig_val.trySExtValue();
|
|
if (!width ||
|
|
*width > IntStore::MaxIntWidth - lhs_val.getSignificantBits()) {
|
|
CARBON_DIAGNOSTIC(CompileTimeUnsizedShiftOutOfRange, Error,
|
|
"shift distance of {0} would result in an "
|
|
"integer whose width is greater than the "
|
|
"maximum supported width of {1}",
|
|
TypedInt, int);
|
|
context.emitter().Emit(loc, CompileTimeUnsizedShiftOutOfRange,
|
|
{.type = rhs.type_id, .value = rhs_orig_val},
|
|
IntStore::MaxIntWidth);
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
lhs_val = lhs_val.sext(
|
|
IntStore::CanonicalBitWidth(lhs_val.getSignificantBits() + *width));
|
|
}
|
|
|
|
result_val =
|
|
lhs_val.shl(rhs_orig_val.getLimitedValue(lhs_val.getBitWidth()));
|
|
} else if (lhs_is_signed) {
|
|
result_val =
|
|
lhs_val.ashr(rhs_orig_val.getLimitedValue(lhs_val.getBitWidth()));
|
|
} else {
|
|
CARBON_CHECK(lhs_bit_width_id.has_value(), "Logical shift on unsized int");
|
|
result_val =
|
|
lhs_val.lshr(rhs_orig_val.getLimitedValue(lhs_val.getBitWidth()));
|
|
}
|
|
return MakeIntResult(context, lhs.type_id, lhs_is_signed,
|
|
std::move(result_val));
|
|
}
|
|
|
|
// Performs a homogeneous builtin binary integer -> integer operation.
|
|
static auto PerformBuiltinBinaryIntOp(Context& context, SemIRLoc loc,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id,
|
|
SemIR::InstId rhs_id)
|
|
-> SemIR::ConstantId {
|
|
auto lhs = context.insts().GetAs<SemIR::IntValue>(lhs_id);
|
|
auto rhs = context.insts().GetAs<SemIR::IntValue>(rhs_id);
|
|
|
|
CARBON_CHECK(rhs.type_id == lhs.type_id, "Heterogeneous builtin integer op!");
|
|
auto type_id = lhs.type_id;
|
|
auto [is_signed, bit_width_id] =
|
|
context.sem_ir().types().GetIntTypeInfo(type_id);
|
|
auto [lhs_val, rhs_val] =
|
|
GetIntsAtSuitableWidth(context, lhs.int_id, rhs.int_id, bit_width_id);
|
|
|
|
// Check for division by zero.
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::IntSDiv:
|
|
case SemIR::BuiltinFunctionKind::IntSMod:
|
|
case SemIR::BuiltinFunctionKind::IntUDiv:
|
|
case SemIR::BuiltinFunctionKind::IntUMod:
|
|
if (rhs_val.isZero()) {
|
|
DiagnoseDivisionByZero(context, loc);
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
break;
|
|
default:
|
|
break;
|
|
}
|
|
|
|
BinaryIntOpResult result =
|
|
ComputeBinaryIntOpResult(builtin_kind, lhs_val, rhs_val);
|
|
|
|
if (result.overflow && !bit_width_id.has_value()) {
|
|
// Retry with a larger bit width. Most operations can only overflow by one
|
|
// bit, but signed n-bit multiplication can overflow to 2n-1 bits. We don't
|
|
// need to handle unsigned multiplication here because it's not permitted
|
|
// for unsized integers.
|
|
//
|
|
// Note that we speculatively first perform the calculation in the width of
|
|
// the wider operand: smaller operations are faster and overflow to a wider
|
|
// integer is unlikely to be needed, especially given that the width will
|
|
// have been rounded up to a multiple of 64 bits by the int store.
|
|
CARBON_CHECK(builtin_kind != SemIR::BuiltinFunctionKind::IntUMul,
|
|
"Unsigned arithmetic requires a fixed bitwidth");
|
|
int new_width =
|
|
builtin_kind == SemIR::BuiltinFunctionKind::IntSMul
|
|
? lhs_val.getBitWidth() * 2
|
|
: IntStore::CanonicalBitWidth(lhs_val.getBitWidth() + 1);
|
|
new_width = std::min(new_width, IntStore::MaxIntWidth);
|
|
lhs_val = context.ints().GetAtWidth(lhs.int_id, new_width);
|
|
rhs_val = context.ints().GetAtWidth(rhs.int_id, new_width);
|
|
|
|
// Note that this can in theory still overflow if we limited `new_width` to
|
|
// `MaxIntWidth`. In that case we fall through to the signed overflow
|
|
// diagnostic below.
|
|
result = ComputeBinaryIntOpResult(builtin_kind, lhs_val, rhs_val);
|
|
CARBON_CHECK(!result.overflow || new_width == IntStore::MaxIntWidth);
|
|
}
|
|
|
|
if (result.overflow) {
|
|
CARBON_DIAGNOSTIC(CompileTimeIntegerOverflow, Error,
|
|
"integer overflow in calculation `{0} {1} {2}`", TypedInt,
|
|
Lex::TokenKind, TypedInt);
|
|
context.emitter().Emit(loc, CompileTimeIntegerOverflow,
|
|
{.type = type_id, .value = lhs_val}, result.op_token,
|
|
{.type = type_id, .value = rhs_val});
|
|
}
|
|
|
|
return MakeIntResult(context, type_id, is_signed,
|
|
std::move(result.result_val));
|
|
}
|
|
|
|
// Performs a builtin integer comparison.
|
|
static auto PerformBuiltinIntComparison(Context& context,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id,
|
|
SemIR::InstId rhs_id,
|
|
SemIR::TypeId bool_type_id)
|
|
-> SemIR::ConstantId {
|
|
auto lhs = context.insts().GetAs<SemIR::IntValue>(lhs_id);
|
|
auto rhs = context.insts().GetAs<SemIR::IntValue>(rhs_id);
|
|
llvm::APInt lhs_val = context.ints().Get(lhs.int_id);
|
|
llvm::APInt rhs_val = context.ints().Get(rhs.int_id);
|
|
|
|
bool result;
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::IntEq:
|
|
result = (lhs_val == rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntNeq:
|
|
result = (lhs_val != rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntLess:
|
|
result = lhs_val.slt(rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntLessEq:
|
|
result = lhs_val.sle(rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntGreater:
|
|
result = lhs_val.sgt(rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::IntGreaterEq:
|
|
result = lhs_val.sge(rhs_val);
|
|
break;
|
|
default:
|
|
CARBON_FATAL("Unexpected operation kind.");
|
|
}
|
|
|
|
return MakeBoolResult(context, bool_type_id, result);
|
|
}
|
|
|
|
// Performs a builtin unary float -> float operation.
|
|
static auto PerformBuiltinUnaryFloatOp(Context& context,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId arg_id)
|
|
-> SemIR::ConstantId {
|
|
auto op = context.insts().GetAs<SemIR::FloatLiteral>(arg_id);
|
|
auto op_val = context.floats().Get(op.float_id);
|
|
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::FloatNegate:
|
|
op_val.changeSign();
|
|
break;
|
|
default:
|
|
CARBON_FATAL("Unexpected builtin kind");
|
|
}
|
|
|
|
return MakeFloatResult(context, op.type_id, std::move(op_val));
|
|
}
|
|
|
|
// Performs a builtin binary float -> float operation.
|
|
static auto PerformBuiltinBinaryFloatOp(Context& context,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id,
|
|
SemIR::InstId rhs_id)
|
|
-> SemIR::ConstantId {
|
|
auto lhs = context.insts().GetAs<SemIR::FloatLiteral>(lhs_id);
|
|
auto rhs = context.insts().GetAs<SemIR::FloatLiteral>(rhs_id);
|
|
auto lhs_val = context.floats().Get(lhs.float_id);
|
|
auto rhs_val = context.floats().Get(rhs.float_id);
|
|
|
|
llvm::APFloat result_val(lhs_val.getSemantics());
|
|
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::FloatAdd:
|
|
result_val = lhs_val + rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatSub:
|
|
result_val = lhs_val - rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatMul:
|
|
result_val = lhs_val * rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatDiv:
|
|
result_val = lhs_val / rhs_val;
|
|
break;
|
|
default:
|
|
CARBON_FATAL("Unexpected operation kind.");
|
|
}
|
|
|
|
return MakeFloatResult(context, lhs.type_id, std::move(result_val));
|
|
}
|
|
|
|
// Performs a builtin float comparison.
|
|
static auto PerformBuiltinFloatComparison(
|
|
Context& context, SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id, SemIR::InstId rhs_id, SemIR::TypeId bool_type_id)
|
|
-> SemIR::ConstantId {
|
|
auto lhs = context.insts().GetAs<SemIR::FloatLiteral>(lhs_id);
|
|
auto rhs = context.insts().GetAs<SemIR::FloatLiteral>(rhs_id);
|
|
const auto& lhs_val = context.floats().Get(lhs.float_id);
|
|
const auto& rhs_val = context.floats().Get(rhs.float_id);
|
|
|
|
bool result;
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::FloatEq:
|
|
result = (lhs_val == rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatNeq:
|
|
result = (lhs_val != rhs_val);
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatLess:
|
|
result = lhs_val < rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatLessEq:
|
|
result = lhs_val <= rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatGreater:
|
|
result = lhs_val > rhs_val;
|
|
break;
|
|
case SemIR::BuiltinFunctionKind::FloatGreaterEq:
|
|
result = lhs_val >= rhs_val;
|
|
break;
|
|
default:
|
|
CARBON_FATAL("Unexpected operation kind.");
|
|
}
|
|
|
|
return MakeBoolResult(context, bool_type_id, result);
|
|
}
|
|
|
|
// Performs a builtin boolean comparison.
|
|
static auto PerformBuiltinBoolComparison(
|
|
Context& context, SemIR::BuiltinFunctionKind builtin_kind,
|
|
SemIR::InstId lhs_id, SemIR::InstId rhs_id, SemIR::TypeId bool_type_id) {
|
|
bool lhs = context.insts().GetAs<SemIR::BoolLiteral>(lhs_id).value.ToBool();
|
|
bool rhs = context.insts().GetAs<SemIR::BoolLiteral>(rhs_id).value.ToBool();
|
|
return MakeBoolResult(context, bool_type_id,
|
|
builtin_kind == SemIR::BuiltinFunctionKind::BoolEq
|
|
? lhs == rhs
|
|
: lhs != rhs);
|
|
}
|
|
|
|
// Returns a constant for a call to a builtin function.
|
|
static auto MakeConstantForBuiltinCall(Context& context, SemIRLoc loc,
|
|
SemIR::Call call,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
llvm::ArrayRef<SemIR::InstId> arg_ids,
|
|
Phase phase) -> SemIR::ConstantId {
|
|
switch (builtin_kind) {
|
|
case SemIR::BuiltinFunctionKind::None:
|
|
CARBON_FATAL("Not a builtin function.");
|
|
|
|
case SemIR::BuiltinFunctionKind::PrintChar:
|
|
case SemIR::BuiltinFunctionKind::PrintInt:
|
|
case SemIR::BuiltinFunctionKind::ReadChar: {
|
|
// These are runtime-only builtins.
|
|
// TODO: Consider tracking this on the `BuiltinFunctionKind`.
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
case SemIR::BuiltinFunctionKind::IntLiteralMakeType: {
|
|
return context.constant_values().Get(
|
|
SemIR::IntLiteralType::SingletonInstId);
|
|
}
|
|
|
|
case SemIR::BuiltinFunctionKind::IntMakeTypeSigned: {
|
|
return MakeIntTypeResult(context, loc, SemIR::IntKind::Signed, arg_ids[0],
|
|
phase);
|
|
}
|
|
|
|
case SemIR::BuiltinFunctionKind::IntMakeTypeUnsigned: {
|
|
return MakeIntTypeResult(context, loc, SemIR::IntKind::Unsigned,
|
|
arg_ids[0], phase);
|
|
}
|
|
|
|
case SemIR::BuiltinFunctionKind::FloatMakeType: {
|
|
// TODO: Support a symbolic constant width.
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
if (!ValidateFloatBitWidth(context, loc, arg_ids[0])) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
return context.constant_values().Get(
|
|
SemIR::LegacyFloatType::SingletonInstId);
|
|
}
|
|
|
|
case SemIR::BuiltinFunctionKind::BoolMakeType: {
|
|
return context.constant_values().Get(SemIR::BoolType::SingletonInstId);
|
|
}
|
|
|
|
// Integer conversions.
|
|
case SemIR::BuiltinFunctionKind::IntConvert: {
|
|
if (phase == Phase::Symbolic) {
|
|
return MakeConstantResult(context, call, phase);
|
|
}
|
|
return PerformIntConvert(context, arg_ids[0], call.type_id);
|
|
}
|
|
case SemIR::BuiltinFunctionKind::IntConvertChecked: {
|
|
if (phase == Phase::Symbolic) {
|
|
return MakeConstantResult(context, call, phase);
|
|
}
|
|
return PerformCheckedIntConvert(context, loc, arg_ids[0], call.type_id);
|
|
}
|
|
|
|
// Unary integer -> integer operations.
|
|
case SemIR::BuiltinFunctionKind::IntSNegate:
|
|
case SemIR::BuiltinFunctionKind::IntUNegate:
|
|
case SemIR::BuiltinFunctionKind::IntComplement: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinUnaryIntOp(context, loc, builtin_kind, arg_ids[0]);
|
|
}
|
|
|
|
// Homogeneous binary integer -> integer operations.
|
|
case SemIR::BuiltinFunctionKind::IntSAdd:
|
|
case SemIR::BuiltinFunctionKind::IntSSub:
|
|
case SemIR::BuiltinFunctionKind::IntSMul:
|
|
case SemIR::BuiltinFunctionKind::IntSDiv:
|
|
case SemIR::BuiltinFunctionKind::IntSMod:
|
|
case SemIR::BuiltinFunctionKind::IntUAdd:
|
|
case SemIR::BuiltinFunctionKind::IntUSub:
|
|
case SemIR::BuiltinFunctionKind::IntUMul:
|
|
case SemIR::BuiltinFunctionKind::IntUDiv:
|
|
case SemIR::BuiltinFunctionKind::IntUMod:
|
|
case SemIR::BuiltinFunctionKind::IntAnd:
|
|
case SemIR::BuiltinFunctionKind::IntOr:
|
|
case SemIR::BuiltinFunctionKind::IntXor: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinBinaryIntOp(context, loc, builtin_kind, arg_ids[0],
|
|
arg_ids[1]);
|
|
}
|
|
|
|
// Bit shift operations.
|
|
case SemIR::BuiltinFunctionKind::IntLeftShift:
|
|
case SemIR::BuiltinFunctionKind::IntRightShift: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinIntShiftOp(context, loc, builtin_kind, arg_ids[0],
|
|
arg_ids[1]);
|
|
}
|
|
|
|
// Integer comparisons.
|
|
case SemIR::BuiltinFunctionKind::IntEq:
|
|
case SemIR::BuiltinFunctionKind::IntNeq:
|
|
case SemIR::BuiltinFunctionKind::IntLess:
|
|
case SemIR::BuiltinFunctionKind::IntLessEq:
|
|
case SemIR::BuiltinFunctionKind::IntGreater:
|
|
case SemIR::BuiltinFunctionKind::IntGreaterEq: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinIntComparison(context, builtin_kind, arg_ids[0],
|
|
arg_ids[1], call.type_id);
|
|
}
|
|
|
|
// Unary float -> float operations.
|
|
case SemIR::BuiltinFunctionKind::FloatNegate: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
|
|
return PerformBuiltinUnaryFloatOp(context, builtin_kind, arg_ids[0]);
|
|
}
|
|
|
|
// Binary float -> float operations.
|
|
case SemIR::BuiltinFunctionKind::FloatAdd:
|
|
case SemIR::BuiltinFunctionKind::FloatSub:
|
|
case SemIR::BuiltinFunctionKind::FloatMul:
|
|
case SemIR::BuiltinFunctionKind::FloatDiv: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinBinaryFloatOp(context, builtin_kind, arg_ids[0],
|
|
arg_ids[1]);
|
|
}
|
|
|
|
// Float comparisons.
|
|
case SemIR::BuiltinFunctionKind::FloatEq:
|
|
case SemIR::BuiltinFunctionKind::FloatNeq:
|
|
case SemIR::BuiltinFunctionKind::FloatLess:
|
|
case SemIR::BuiltinFunctionKind::FloatLessEq:
|
|
case SemIR::BuiltinFunctionKind::FloatGreater:
|
|
case SemIR::BuiltinFunctionKind::FloatGreaterEq: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinFloatComparison(context, builtin_kind, arg_ids[0],
|
|
arg_ids[1], call.type_id);
|
|
}
|
|
|
|
// Bool comparisons.
|
|
case SemIR::BuiltinFunctionKind::BoolEq:
|
|
case SemIR::BuiltinFunctionKind::BoolNeq: {
|
|
if (phase != Phase::Concrete) {
|
|
break;
|
|
}
|
|
return PerformBuiltinBoolComparison(context, builtin_kind, arg_ids[0],
|
|
arg_ids[1], call.type_id);
|
|
}
|
|
}
|
|
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
// Makes a constant for a call instruction.
|
|
static auto MakeConstantForCall(EvalContext& eval_context, SemIRLoc loc,
|
|
SemIR::Call call) -> SemIR::ConstantId {
|
|
Phase phase = Phase::Concrete;
|
|
|
|
// A call with an invalid argument list is used to represent an erroneous
|
|
// call.
|
|
//
|
|
// TODO: Use a better representation for this.
|
|
if (call.args_id == SemIR::InstBlockId::None) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
|
|
// Find the constant value of the callee.
|
|
bool has_constant_callee = ReplaceFieldWithConstantValue(
|
|
eval_context, &call, &SemIR::Call::callee_id, &phase);
|
|
|
|
auto callee_function =
|
|
SemIR::GetCalleeFunction(eval_context.sem_ir(), call.callee_id);
|
|
auto builtin_kind = SemIR::BuiltinFunctionKind::None;
|
|
if (callee_function.function_id.has_value()) {
|
|
// Calls to builtins might be constant.
|
|
builtin_kind = eval_context.functions()
|
|
.Get(callee_function.function_id)
|
|
.builtin_function_kind;
|
|
if (builtin_kind == SemIR::BuiltinFunctionKind::None) {
|
|
// TODO: Eventually we'll want to treat some kinds of non-builtin
|
|
// functions as producing constants.
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
} else {
|
|
// Calls to non-functions, such as calls to generic entity names, might be
|
|
// constant.
|
|
}
|
|
|
|
// Find the argument values and the return type.
|
|
bool has_constant_operands =
|
|
has_constant_callee &&
|
|
ReplaceFieldWithConstantValue(eval_context, &call, &SemIR::Call::type_id,
|
|
&phase) &&
|
|
ReplaceFieldWithConstantValue(eval_context, &call, &SemIR::Call::args_id,
|
|
&phase);
|
|
if (phase == Phase::UnknownDueToError) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
|
|
// If any operand of the call is non-constant, the call is non-constant.
|
|
// TODO: Some builtin calls might allow some operands to be non-constant.
|
|
if (!has_constant_operands) {
|
|
if (builtin_kind.IsCompTimeOnly(
|
|
eval_context.sem_ir(), eval_context.inst_blocks().Get(call.args_id),
|
|
call.type_id)) {
|
|
CARBON_DIAGNOSTIC(NonConstantCallToCompTimeOnlyFunction, Error,
|
|
"non-constant call to compile-time-only function");
|
|
CARBON_DIAGNOSTIC(CompTimeOnlyFunctionHere, Note,
|
|
"compile-time-only function declared here");
|
|
eval_context.emitter()
|
|
.Build(loc, NonConstantCallToCompTimeOnlyFunction)
|
|
.Note(eval_context.functions()
|
|
.Get(callee_function.function_id)
|
|
.latest_decl_id(),
|
|
CompTimeOnlyFunctionHere)
|
|
.Emit();
|
|
}
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
// Handle calls to builtins.
|
|
if (builtin_kind != SemIR::BuiltinFunctionKind::None) {
|
|
return MakeConstantForBuiltinCall(
|
|
eval_context.context(), loc, call, builtin_kind,
|
|
eval_context.inst_blocks().Get(call.args_id), phase);
|
|
}
|
|
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
// Creates a FacetType constant.
|
|
static auto MakeFacetTypeResult(Context& context,
|
|
const SemIR::FacetTypeInfo& info, Phase phase)
|
|
-> SemIR::ConstantId {
|
|
SemIR::FacetTypeId facet_type_id = context.facet_types().Add(info);
|
|
return MakeConstantResult(
|
|
context,
|
|
SemIR::FacetType{.type_id = SemIR::TypeType::SingletonTypeId,
|
|
.facet_type_id = facet_type_id},
|
|
phase);
|
|
}
|
|
|
|
// Implementation for `TryEvalInst`, wrapping `Context` with `EvalContext`.
|
|
//
|
|
// Tail call should not be diagnosed as recursion.
|
|
// https://github.com/llvm/llvm-project/issues/125724
|
|
// NOLINTNEXTLINE(misc-no-recursion): Tail call.
|
|
static auto TryEvalInstInContext(EvalContext& eval_context,
|
|
SemIR::InstId inst_id, SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
// TODO: Ensure we have test coverage for each of these cases that can result
|
|
// in a constant, once those situations are all reachable.
|
|
CARBON_KIND_SWITCH(inst) {
|
|
// These cases are constants if their operands are.
|
|
case SemIR::AddrOf::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::AddrOf::type_id,
|
|
&SemIR::AddrOf::lvalue_id);
|
|
case CARBON_KIND(SemIR::ArrayType array_type): {
|
|
return RebuildAndValidateIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
[&](SemIR::ArrayType result) {
|
|
auto bound_id = array_type.bound_id;
|
|
auto bound_inst = eval_context.insts().Get(result.bound_id);
|
|
auto int_bound = bound_inst.TryAs<SemIR::IntValue>();
|
|
if (!int_bound) {
|
|
CARBON_CHECK(eval_context.constant_values()
|
|
.Get(result.bound_id)
|
|
.is_symbolic(),
|
|
"Unexpected inst {0} for template constant int",
|
|
bound_inst);
|
|
return true;
|
|
}
|
|
// TODO: We should check that the size of the resulting array type
|
|
// fits in 64 bits, not just that the bound does. Should we use a
|
|
// 32-bit limit for 32-bit targets?
|
|
const auto& bound_val = eval_context.ints().Get(int_bound->int_id);
|
|
if (eval_context.types().IsSignedInt(int_bound->type_id) &&
|
|
bound_val.isNegative()) {
|
|
CARBON_DIAGNOSTIC(ArrayBoundNegative, Error,
|
|
"array bound of {0} is negative", TypedInt);
|
|
eval_context.emitter().Emit(
|
|
eval_context.GetDiagnosticLoc(bound_id), ArrayBoundNegative,
|
|
{.type = int_bound->type_id, .value = bound_val});
|
|
return false;
|
|
}
|
|
if (bound_val.getActiveBits() > 64) {
|
|
CARBON_DIAGNOSTIC(ArrayBoundTooLarge, Error,
|
|
"array bound of {0} is too large", TypedInt);
|
|
eval_context.emitter().Emit(
|
|
eval_context.GetDiagnosticLoc(bound_id), ArrayBoundTooLarge,
|
|
{.type = int_bound->type_id, .value = bound_val});
|
|
return false;
|
|
}
|
|
return true;
|
|
},
|
|
&SemIR::ArrayType::bound_id, &SemIR::ArrayType::element_type_id);
|
|
}
|
|
case SemIR::AssociatedEntity::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::AssociatedEntity::type_id);
|
|
case SemIR::AssociatedEntityType::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst, &SemIR::AssociatedEntityType::interface_type_id);
|
|
case SemIR::BoundMethod::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::BoundMethod::type_id,
|
|
&SemIR::BoundMethod::object_id,
|
|
&SemIR::BoundMethod::function_decl_id);
|
|
case SemIR::ClassType::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::ClassType::specific_id);
|
|
case SemIR::CompleteTypeWitness::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst, &SemIR::CompleteTypeWitness::object_repr_id);
|
|
case SemIR::FacetValue::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::FacetValue::type_id,
|
|
&SemIR::FacetValue::type_inst_id,
|
|
&SemIR::FacetValue::witness_inst_id);
|
|
case SemIR::FunctionType::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::FunctionType::specific_id);
|
|
case SemIR::FunctionTypeWithSelfType::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
&SemIR::FunctionTypeWithSelfType::interface_function_type_id,
|
|
&SemIR::FunctionTypeWithSelfType::self_id);
|
|
case SemIR::GenericClassType::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst, &SemIR::GenericClassType::enclosing_specific_id);
|
|
case SemIR::GenericInterfaceType::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
&SemIR::GenericInterfaceType::enclosing_specific_id);
|
|
case SemIR::ImplWitness::Kind:
|
|
// We intentionally don't replace the `elements_id` field here. We want to
|
|
// track that specific InstBlock in particular, not coalesce blocks with
|
|
// the same members. That block may get updated, and we want to pick up
|
|
// those changes.
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::ImplWitness::specific_id);
|
|
case CARBON_KIND(SemIR::IntType int_type): {
|
|
return RebuildAndValidateIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
[&](SemIR::IntType result) {
|
|
return ValidateIntType(
|
|
eval_context.context(),
|
|
eval_context.GetDiagnosticLoc({inst_id, int_type.bit_width_id}),
|
|
result);
|
|
},
|
|
&SemIR::IntType::bit_width_id);
|
|
}
|
|
case SemIR::PointerType::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::PointerType::pointee_id);
|
|
case CARBON_KIND(SemIR::FloatType float_type): {
|
|
return RebuildAndValidateIfFieldsAreConstant(
|
|
eval_context, inst,
|
|
[&](SemIR::FloatType result) {
|
|
return ValidateFloatType(eval_context.context(),
|
|
eval_context.GetDiagnosticLoc(
|
|
{inst_id, float_type.bit_width_id}),
|
|
result);
|
|
},
|
|
&SemIR::FloatType::bit_width_id);
|
|
}
|
|
case SemIR::SpecificFunction::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::SpecificFunction::callee_id,
|
|
&SemIR::SpecificFunction::specific_id);
|
|
case SemIR::StructType::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::StructType::fields_id);
|
|
case SemIR::StructValue::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::StructValue::type_id,
|
|
&SemIR::StructValue::elements_id);
|
|
case SemIR::TupleType::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::TupleType::elements_id);
|
|
case SemIR::TupleValue::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::TupleValue::type_id,
|
|
&SemIR::TupleValue::elements_id);
|
|
case SemIR::UnboundElementType::Kind:
|
|
return RebuildIfFieldsAreConstant(
|
|
eval_context, inst, &SemIR::UnboundElementType::class_type_id,
|
|
&SemIR::UnboundElementType::element_type_id);
|
|
|
|
// Initializers evaluate to a value of the object representation.
|
|
case SemIR::ArrayInit::Kind:
|
|
// TODO: Add an `ArrayValue` to represent a constant array object
|
|
// representation instead of using a `TupleValue`.
|
|
return RebuildInitAsValue(eval_context, inst, SemIR::TupleValue::Kind);
|
|
case SemIR::ClassInit::Kind:
|
|
// TODO: Add a `ClassValue` to represent a constant class object
|
|
// representation instead of using a `StructValue`.
|
|
return RebuildInitAsValue(eval_context, inst, SemIR::StructValue::Kind);
|
|
case SemIR::StructInit::Kind:
|
|
return RebuildInitAsValue(eval_context, inst, SemIR::StructValue::Kind);
|
|
case SemIR::TupleInit::Kind:
|
|
return RebuildInitAsValue(eval_context, inst, SemIR::TupleValue::Kind);
|
|
|
|
case SemIR::Vtable::Kind:
|
|
return RebuildIfFieldsAreConstant(eval_context, inst,
|
|
&SemIR::Vtable::virtual_functions_id);
|
|
case SemIR::AutoType::Kind:
|
|
case SemIR::BoolType::Kind:
|
|
case SemIR::BoundMethodType::Kind:
|
|
case SemIR::ErrorInst::Kind:
|
|
case SemIR::IntLiteralType::Kind:
|
|
case SemIR::LegacyFloatType::Kind:
|
|
case SemIR::NamespaceType::Kind:
|
|
case SemIR::SpecificFunctionType::Kind:
|
|
case SemIR::StringType::Kind:
|
|
case SemIR::TypeType::Kind:
|
|
case SemIR::VtableType::Kind:
|
|
case SemIR::WitnessType::Kind:
|
|
// Builtins are always concrete constants.
|
|
return MakeConstantResult(eval_context.context(), inst, Phase::Concrete);
|
|
|
|
case CARBON_KIND(SemIR::FunctionDecl fn_decl): {
|
|
return TransformIfFieldsAreConstant(
|
|
eval_context, fn_decl,
|
|
[&](SemIR::FunctionDecl result) {
|
|
return SemIR::StructValue{.type_id = result.type_id,
|
|
.elements_id = SemIR::InstBlockId::Empty};
|
|
},
|
|
&SemIR::FunctionDecl::type_id);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::ClassDecl class_decl): {
|
|
// If the class has generic parameters, we don't produce a class type, but
|
|
// a callable whose return value is a class type.
|
|
if (eval_context.classes().Get(class_decl.class_id).has_parameters()) {
|
|
return TransformIfFieldsAreConstant(
|
|
eval_context, class_decl,
|
|
[&](SemIR::ClassDecl result) {
|
|
return SemIR::StructValue{
|
|
.type_id = result.type_id,
|
|
.elements_id = SemIR::InstBlockId::Empty};
|
|
},
|
|
&SemIR::ClassDecl::type_id);
|
|
}
|
|
// A non-generic class declaration evaluates to the class type.
|
|
return MakeConstantResult(
|
|
eval_context.context(),
|
|
SemIR::ClassType{.type_id = SemIR::TypeType::SingletonTypeId,
|
|
.class_id = class_decl.class_id,
|
|
.specific_id = SemIR::SpecificId::None},
|
|
Phase::Concrete);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::FacetType facet_type): {
|
|
Phase phase = Phase::Concrete;
|
|
SemIR::FacetTypeInfo info = GetConstantFacetTypeInfo(
|
|
eval_context, facet_type.facet_type_id, &phase);
|
|
info.Canonicalize();
|
|
// TODO: Reuse `inst` if we can detect that nothing has changed.
|
|
return MakeFacetTypeResult(eval_context.context(), info, phase);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::InterfaceDecl interface_decl): {
|
|
// If the interface has generic parameters, we don't produce an interface
|
|
// type, but a callable whose return value is an interface type.
|
|
if (eval_context.interfaces()
|
|
.Get(interface_decl.interface_id)
|
|
.has_parameters()) {
|
|
return TransformIfFieldsAreConstant(
|
|
eval_context, interface_decl,
|
|
[&](SemIR::InterfaceDecl result) {
|
|
return SemIR::StructValue{
|
|
.type_id = result.type_id,
|
|
.elements_id = SemIR::InstBlockId::Empty};
|
|
},
|
|
&SemIR::InterfaceDecl::type_id);
|
|
}
|
|
// A non-generic interface declaration evaluates to a facet type.
|
|
return MakeConstantResult(
|
|
eval_context.context(),
|
|
FacetTypeFromInterface(eval_context.context(),
|
|
interface_decl.interface_id,
|
|
SemIR::SpecificId::None),
|
|
Phase::Concrete);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::SpecificConstant specific): {
|
|
// Pull the constant value out of the specific.
|
|
return SemIR::GetConstantValueInSpecific(
|
|
eval_context.sem_ir(), specific.specific_id, specific.inst_id);
|
|
}
|
|
|
|
// These cases are treated as being the unique canonical definition of the
|
|
// corresponding constant value.
|
|
// TODO: This doesn't properly handle redeclarations. Consider adding a
|
|
// corresponding `Value` inst for each of these cases, or returning the
|
|
// first declaration.
|
|
case SemIR::AdaptDecl::Kind:
|
|
case SemIR::AssociatedConstantDecl::Kind:
|
|
case SemIR::BaseDecl::Kind:
|
|
case SemIR::FieldDecl::Kind:
|
|
case SemIR::ImplDecl::Kind:
|
|
case SemIR::Namespace::Kind:
|
|
return SemIR::ConstantId::ForConcreteConstant(inst_id);
|
|
|
|
case SemIR::BoolLiteral::Kind:
|
|
case SemIR::FloatLiteral::Kind:
|
|
case SemIR::IntValue::Kind:
|
|
case SemIR::StringLiteral::Kind:
|
|
// Promote literals to the constant block.
|
|
// TODO: Convert literals into a canonical form. Currently we can form two
|
|
// different `i32` constants with the same value if they are represented
|
|
// by `APInt`s with different bit widths.
|
|
// TODO: Can the type of an IntValue or FloatLiteral be symbolic? If so,
|
|
// we may need to rebuild.
|
|
return MakeConstantResult(eval_context.context(), inst, Phase::Concrete);
|
|
|
|
// The elements of a constant aggregate can be accessed.
|
|
case SemIR::ClassElementAccess::Kind:
|
|
case SemIR::StructAccess::Kind:
|
|
case SemIR::TupleAccess::Kind:
|
|
return PerformAggregateAccess(eval_context, inst);
|
|
|
|
case CARBON_KIND(SemIR::ImplWitnessAccess access_inst): {
|
|
// This is PerformAggregateAccess followed by GetConstantInSpecific.
|
|
Phase phase = Phase::Concrete;
|
|
if (ReplaceFieldWithConstantValue(eval_context, &access_inst,
|
|
&SemIR::ImplWitnessAccess::witness_id,
|
|
&phase)) {
|
|
if (auto witness = eval_context.insts().TryGetAs<SemIR::ImplWitness>(
|
|
access_inst.witness_id)) {
|
|
auto elements = eval_context.inst_blocks().Get(witness->elements_id);
|
|
auto index = static_cast<size_t>(access_inst.index.index);
|
|
CARBON_CHECK(index < elements.size(), "Access out of bounds.");
|
|
// `Phase` is not used here. If this element is a concrete constant,
|
|
// then so is the result of indexing, even if the aggregate also
|
|
// contains a symbolic context.
|
|
|
|
auto element = elements[index];
|
|
if (!element.has_value()) {
|
|
// TODO: Perhaps this should be a `{}` value with incomplete type?
|
|
CARBON_DIAGNOSTIC(ImplAccessMemberBeforeComplete, Error,
|
|
"accessing member from impl before the end of "
|
|
"its definition");
|
|
// TODO: Add note pointing to the impl declaration.
|
|
eval_context.emitter().Emit(eval_context.GetDiagnosticLoc(inst_id),
|
|
ImplAccessMemberBeforeComplete);
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
LoadImportRef(eval_context.context(), element);
|
|
return GetConstantValueInSpecific(eval_context.sem_ir(),
|
|
witness->specific_id, element);
|
|
} else {
|
|
CARBON_CHECK(phase != Phase::Concrete,
|
|
"Failed to evaluate template constant {0} arg0: {1}",
|
|
inst, eval_context.insts().Get(access_inst.witness_id));
|
|
}
|
|
return MakeConstantResult(eval_context.context(), access_inst, phase);
|
|
}
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
case CARBON_KIND(SemIR::ArrayIndex index): {
|
|
return PerformArrayIndex(eval_context, index);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::Call call): {
|
|
return MakeConstantForCall(eval_context,
|
|
eval_context.GetDiagnosticLoc(inst_id), call);
|
|
}
|
|
|
|
// TODO: These need special handling.
|
|
case SemIR::BindValue::Kind:
|
|
case SemIR::Deref::Kind:
|
|
case SemIR::ImportRefLoaded::Kind:
|
|
case SemIR::ReturnSlot::Kind:
|
|
case SemIR::Temporary::Kind:
|
|
case SemIR::TemporaryStorage::Kind:
|
|
case SemIR::ValueAsRef::Kind:
|
|
case SemIR::VtablePtr::Kind:
|
|
break;
|
|
|
|
case CARBON_KIND(SemIR::SymbolicBindingPattern bind): {
|
|
// TODO: Disable constant evaluation of SymbolicBindingPattern once
|
|
// DeduceGenericCallArguments no longer needs implicit params to have
|
|
// constant values.
|
|
const auto& bind_name =
|
|
eval_context.entity_names().Get(bind.entity_name_id);
|
|
|
|
// If we know which specific we're evaluating within and this is an
|
|
// argument of that specific, its constant value is the corresponding
|
|
// argument value.
|
|
if (auto value =
|
|
eval_context.GetCompileTimeBindValue(bind_name.bind_index());
|
|
value.has_value()) {
|
|
return value;
|
|
}
|
|
|
|
// The constant form of a symbolic binding is an idealized form of the
|
|
// original, with no equivalent value.
|
|
bind.entity_name_id =
|
|
eval_context.entity_names().MakeCanonical(bind.entity_name_id);
|
|
// TODO: Propagate the `is_template` flag into the phase.
|
|
return MakeConstantResult(eval_context.context(), bind, Phase::Symbolic);
|
|
}
|
|
case CARBON_KIND(SemIR::BindSymbolicName bind): {
|
|
const auto& bind_name =
|
|
eval_context.entity_names().Get(bind.entity_name_id);
|
|
|
|
Phase phase;
|
|
if (bind_name.name_id == SemIR::NameId::PeriodSelf) {
|
|
phase = Phase::PeriodSelfSymbolic;
|
|
} else {
|
|
// If we know which specific we're evaluating within and this is an
|
|
// argument of that specific, its constant value is the corresponding
|
|
// argument value.
|
|
if (auto value =
|
|
eval_context.GetCompileTimeBindValue(bind_name.bind_index());
|
|
value.has_value()) {
|
|
return value;
|
|
}
|
|
// TODO: Propagate the `is_template` flag into the phase.
|
|
phase = Phase::Symbolic;
|
|
}
|
|
// The constant form of a symbolic binding is an idealized form of the
|
|
// original, with no equivalent value.
|
|
bind.entity_name_id =
|
|
eval_context.entity_names().MakeCanonical(bind.entity_name_id);
|
|
bind.value_id = SemIR::InstId::None;
|
|
if (!ReplaceFieldWithConstantValue(
|
|
eval_context, &bind, &SemIR::BindSymbolicName::type_id, &phase)) {
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
return MakeConstantResult(eval_context.context(), bind, phase);
|
|
}
|
|
|
|
// AsCompatible changes the type of the source instruction; its constant
|
|
// value, if there is one, needs to be modified to be of the same type.
|
|
case CARBON_KIND(SemIR::AsCompatible inst): {
|
|
auto value = eval_context.GetConstantValue(inst.source_id);
|
|
if (!value.is_constant()) {
|
|
return value;
|
|
}
|
|
|
|
auto from_phase = Phase::Concrete;
|
|
auto value_inst_id =
|
|
GetConstantValue(eval_context, inst.source_id, &from_phase);
|
|
|
|
auto to_phase = Phase::Concrete;
|
|
auto type_id = GetConstantValue(eval_context, inst.type_id, &to_phase);
|
|
|
|
auto value_inst = eval_context.insts().Get(value_inst_id);
|
|
value_inst.SetType(type_id);
|
|
|
|
if (to_phase >= from_phase) {
|
|
// If moving from a concrete constant value to a symbolic type, the new
|
|
// constant value takes on the phase of the new type. We're adding the
|
|
// symbolic bit to the new constant value due to the presence of a
|
|
// symbolic type.
|
|
return MakeConstantResult(eval_context.context(), value_inst, to_phase);
|
|
} else {
|
|
// If moving from a symbolic constant value to a concrete type, the new
|
|
// constant value has a phase that depends on what is in the value. If
|
|
// there is anything symbolic within the value, then it's symbolic. We
|
|
// can't easily determine that here without evaluating a new constant
|
|
// value. See
|
|
// https://github.com/carbon-language/carbon-lang/pull/4881#discussion_r1939961372
|
|
[[clang::musttail]] return TryEvalInstInContext(
|
|
eval_context, SemIR::InstId::None, value_inst);
|
|
}
|
|
}
|
|
|
|
// These semantic wrappers don't change the constant value.
|
|
case CARBON_KIND(SemIR::BindAlias typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.value_id);
|
|
}
|
|
case CARBON_KIND(SemIR::ExportDecl typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.value_id);
|
|
}
|
|
case CARBON_KIND(SemIR::NameRef typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.value_id);
|
|
}
|
|
case CARBON_KIND(SemIR::ValueParamPattern param_pattern): {
|
|
// TODO: Treat this as a non-expression (here and in GetExprCategory)
|
|
// once generic deduction doesn't need patterns to have constant values.
|
|
return eval_context.GetConstantValue(param_pattern.subpattern_id);
|
|
}
|
|
case CARBON_KIND(SemIR::Converted typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.result_id);
|
|
}
|
|
case CARBON_KIND(SemIR::InitializeFrom typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.src_id);
|
|
}
|
|
case CARBON_KIND(SemIR::SpliceBlock typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.result_id);
|
|
}
|
|
case CARBON_KIND(SemIR::ValueOfInitializer typed_inst): {
|
|
return eval_context.GetConstantValue(typed_inst.init_id);
|
|
}
|
|
case CARBON_KIND(SemIR::FacetAccessType typed_inst): {
|
|
Phase phase = Phase::Concrete;
|
|
if (ReplaceFieldWithConstantValue(
|
|
eval_context, &typed_inst,
|
|
&SemIR::FacetAccessType::facet_value_inst_id, &phase)) {
|
|
if (auto facet_value = eval_context.insts().TryGetAs<SemIR::FacetValue>(
|
|
typed_inst.facet_value_inst_id)) {
|
|
return eval_context.constant_values().Get(facet_value->type_inst_id);
|
|
}
|
|
return MakeConstantResult(eval_context.context(), typed_inst, phase);
|
|
} else {
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
}
|
|
case CARBON_KIND(SemIR::FacetAccessWitness typed_inst): {
|
|
Phase phase = Phase::Concrete;
|
|
if (ReplaceFieldWithConstantValue(
|
|
eval_context, &typed_inst,
|
|
&SemIR::FacetAccessWitness::facet_value_inst_id, &phase)) {
|
|
if (auto facet_value = eval_context.insts().TryGetAs<SemIR::FacetValue>(
|
|
typed_inst.facet_value_inst_id)) {
|
|
return eval_context.constant_values().Get(
|
|
facet_value->witness_inst_id);
|
|
}
|
|
return MakeConstantResult(eval_context.context(), typed_inst, phase);
|
|
} else {
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
}
|
|
case CARBON_KIND(SemIR::WhereExpr typed_inst): {
|
|
Phase phase = Phase::Concrete;
|
|
SemIR::TypeId base_facet_type_id =
|
|
eval_context.insts().Get(typed_inst.period_self_id).type_id();
|
|
SemIR::Inst base_facet_inst =
|
|
eval_context.GetConstantValueAsInst(base_facet_type_id);
|
|
SemIR::FacetTypeInfo info = {.other_requirements = false};
|
|
// `where` provides that the base facet is an error, `type`, or a facet
|
|
// type.
|
|
if (auto facet_type = base_facet_inst.TryAs<SemIR::FacetType>()) {
|
|
info = GetConstantFacetTypeInfo(eval_context, facet_type->facet_type_id,
|
|
&phase);
|
|
} else if (base_facet_type_id == SemIR::ErrorInst::SingletonTypeId) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
} else {
|
|
CARBON_CHECK(base_facet_type_id == SemIR::TypeType::SingletonTypeId,
|
|
"Unexpected type_id: {0}, inst: {1}", base_facet_type_id,
|
|
base_facet_inst);
|
|
}
|
|
if (typed_inst.requirements_id.has_value()) {
|
|
auto insts = eval_context.inst_blocks().Get(typed_inst.requirements_id);
|
|
for (auto inst_id : insts) {
|
|
if (auto rewrite =
|
|
eval_context.insts().TryGetAs<SemIR::RequirementRewrite>(
|
|
inst_id)) {
|
|
SemIR::ConstantId lhs =
|
|
eval_context.GetConstantValue(rewrite->lhs_id);
|
|
SemIR::ConstantId rhs =
|
|
eval_context.GetConstantValue(rewrite->rhs_id);
|
|
// `where` requirements using `.Self` should not be considered
|
|
// symbolic
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, lhs, &phase);
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, rhs, &phase);
|
|
info.rewrite_constraints.push_back(
|
|
{.lhs_const_id = lhs, .rhs_const_id = rhs});
|
|
} else {
|
|
// TODO: Handle other requirements
|
|
info.other_requirements = true;
|
|
}
|
|
}
|
|
}
|
|
info.Canonicalize();
|
|
return MakeFacetTypeResult(eval_context.context(), info, phase);
|
|
}
|
|
|
|
// `not true` -> `false`, `not false` -> `true`.
|
|
// All other uses of unary `not` are non-constant.
|
|
case CARBON_KIND(SemIR::UnaryOperatorNot typed_inst): {
|
|
auto const_id = eval_context.GetConstantValue(typed_inst.operand_id);
|
|
auto phase = GetPhase(eval_context, const_id);
|
|
if (phase == Phase::Concrete) {
|
|
auto value = eval_context.insts().GetAs<SemIR::BoolLiteral>(
|
|
eval_context.constant_values().GetInstId(const_id));
|
|
return MakeBoolResult(eval_context.context(), value.type_id,
|
|
!value.value.ToBool());
|
|
}
|
|
if (phase == Phase::UnknownDueToError) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
break;
|
|
}
|
|
|
|
// `const (const T)` evaluates to `const T`. Otherwise, `const T` evaluates
|
|
// to itself.
|
|
case CARBON_KIND(SemIR::ConstType typed_inst): {
|
|
auto phase = Phase::Concrete;
|
|
auto inner_id =
|
|
GetConstantValue(eval_context, typed_inst.inner_id, &phase);
|
|
if (eval_context.context().types().Is<SemIR::ConstType>(inner_id)) {
|
|
return eval_context.context().types().GetConstantId(inner_id);
|
|
}
|
|
typed_inst.inner_id = inner_id;
|
|
return MakeConstantResult(eval_context.context(), typed_inst, phase);
|
|
}
|
|
|
|
case CARBON_KIND(SemIR::RequireCompleteType require_complete): {
|
|
auto phase = Phase::Concrete;
|
|
auto witness_type_id = GetSingletonType(
|
|
eval_context.context(), SemIR::WitnessType::SingletonInstId);
|
|
auto complete_type_id = GetConstantValue(
|
|
eval_context, require_complete.complete_type_id, &phase);
|
|
|
|
// If the type is a concrete constant, require it to be complete now.
|
|
if (phase == Phase::Concrete) {
|
|
if (!TryToCompleteType(
|
|
eval_context.context(), complete_type_id,
|
|
eval_context.GetDiagnosticLoc(inst_id), [&] {
|
|
CARBON_DIAGNOSTIC(IncompleteTypeInMonomorphization, Error,
|
|
"{0} evaluates to incomplete type {1}",
|
|
SemIR::TypeId, SemIR::TypeId);
|
|
return eval_context.emitter().Build(
|
|
eval_context.GetDiagnosticLoc(inst_id),
|
|
IncompleteTypeInMonomorphization,
|
|
require_complete.complete_type_id, complete_type_id);
|
|
})) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
return MakeConstantResult(
|
|
eval_context.context(),
|
|
SemIR::CompleteTypeWitness{
|
|
.type_id = witness_type_id,
|
|
.object_repr_id =
|
|
eval_context.types().GetObjectRepr(complete_type_id)},
|
|
phase);
|
|
}
|
|
|
|
// If it's not a concrete constant, require it to be complete once it
|
|
// becomes one.
|
|
return MakeConstantResult(
|
|
eval_context.context(),
|
|
SemIR::RequireCompleteType{.type_id = witness_type_id,
|
|
.complete_type_id = complete_type_id},
|
|
phase);
|
|
}
|
|
|
|
// These cases are either not expressions or not constant.
|
|
case SemIR::AddrPattern::Kind:
|
|
case SemIR::Assign::Kind:
|
|
case SemIR::BindName::Kind:
|
|
case SemIR::BindingPattern::Kind:
|
|
case SemIR::BlockArg::Kind:
|
|
case SemIR::Branch::Kind:
|
|
case SemIR::BranchIf::Kind:
|
|
case SemIR::BranchWithArg::Kind:
|
|
case SemIR::ImportCppDecl::Kind:
|
|
case SemIR::ImportDecl::Kind:
|
|
case SemIR::NameBindingDecl::Kind:
|
|
case SemIR::OutParam::Kind:
|
|
case SemIR::OutParamPattern::Kind:
|
|
case SemIR::RequirementEquivalent::Kind:
|
|
case SemIR::RequirementImpls::Kind:
|
|
case SemIR::RequirementRewrite::Kind:
|
|
case SemIR::Return::Kind:
|
|
case SemIR::ReturnExpr::Kind:
|
|
case SemIR::ReturnSlotPattern::Kind:
|
|
case SemIR::StructLiteral::Kind:
|
|
case SemIR::TupleLiteral::Kind:
|
|
case SemIR::ValueParam::Kind:
|
|
case SemIR::VarPattern::Kind:
|
|
case SemIR::VarStorage::Kind:
|
|
break;
|
|
|
|
case SemIR::ImportRefUnloaded::Kind:
|
|
CARBON_FATAL("ImportRefUnloaded should be loaded before TryEvalInst: {0}",
|
|
inst);
|
|
}
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
auto TryEvalInst(Context& context, SemIR::InstId inst_id, SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
EvalContext eval_context(context, inst_id);
|
|
return TryEvalInstInContext(eval_context, inst_id, inst);
|
|
}
|
|
|
|
auto TryEvalBlockForSpecific(Context& context, SemIRLoc loc,
|
|
SemIR::SpecificId specific_id,
|
|
SemIR::GenericInstIndex::Region region)
|
|
-> SemIR::InstBlockId {
|
|
auto generic_id = context.specifics().Get(specific_id).generic_id;
|
|
auto eval_block_id = context.generics().Get(generic_id).GetEvalBlock(region);
|
|
auto eval_block = context.inst_blocks().Get(eval_block_id);
|
|
|
|
llvm::SmallVector<SemIR::InstId> result;
|
|
result.resize(eval_block.size(), SemIR::InstId::None);
|
|
|
|
EvalContext eval_context(context, loc, specific_id,
|
|
SpecificEvalInfo{
|
|
.region = region,
|
|
.values = result,
|
|
});
|
|
|
|
DiagnosticAnnotationScope annotate_diagnostics(
|
|
&context.emitter(), [&](auto& builder) {
|
|
CARBON_DIAGNOSTIC(ResolvingSpecificHere, Note, "in {0} used here",
|
|
InstIdAsType);
|
|
builder.Note(loc, ResolvingSpecificHere,
|
|
GetInstForSpecific(context, specific_id));
|
|
});
|
|
|
|
for (auto [i, inst_id] : llvm::enumerate(eval_block)) {
|
|
auto const_id = TryEvalInstInContext(eval_context, inst_id,
|
|
context.insts().Get(inst_id));
|
|
result[i] = context.constant_values().GetInstId(const_id);
|
|
CARBON_CHECK(result[i].has_value());
|
|
}
|
|
|
|
return context.inst_blocks().Add(result);
|
|
}
|
|
|
|
} // namespace Carbon::Check
|