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In preparation for shifting from `TypeId`s potentially representing attached types to always representing unattached types, using [terminology suggested on Discord](https://discord.com/channels/655572317891461132/963846118964350976/1359286326779973712). This change causes us to track slightly more type spelling information through SemIR. One change that has significant impact on the SemIR output is that we now build a `struct_type` instruction in each class representing the types of the fields, including the spelling used for those types. This is now no longer always identical to the corresponding canonical `struct_type` for the object representation, so it's built separately and owned by the class. Also remove `TypeBlock` support entirely, as its only use was representing `TupleType`s, which now use an `InstBlock`.
515 lines
21 KiB
C++
515 lines
21 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_inst.h"
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#include <variant>
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#include "toolchain/check/action.h"
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#include "toolchain/check/diagnostic_helpers.h"
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#include "toolchain/check/facet_type.h"
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#include "toolchain/check/generic.h"
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#include "toolchain/check/impl_lookup.h"
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#include "toolchain/check/import_ref.h"
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#include "toolchain/check/inst.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.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::Check {
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// Performs an access into an aggregate, retrieving the specified element.
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static auto PerformAggregateAccess(Context& context, SemIR::Inst inst)
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-> ConstantEvalResult {
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auto access_inst = inst.As<SemIR::AnyAggregateAccess>();
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if (auto aggregate = context.insts().TryGetAs<SemIR::AnyAggregateValue>(
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access_inst.aggregate_id)) {
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auto elements = context.inst_blocks().Get(aggregate->elements_id);
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auto index = static_cast<size_t>(access_inst.index.index);
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CARBON_CHECK(index < elements.size(), "Access out of bounds.");
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// `Phase` is not used here. If this element is a concrete constant, then
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// so is the result of indexing, even if the aggregate also contains a
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// symbolic context.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(elements[index]));
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}
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::ArrayInit inst)
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-> ConstantEvalResult {
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// TODO: Add an `ArrayValue` to represent a constant array object
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// representation instead of using a `TupleValue`.
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return ConstantEvalResult::NewSamePhase(
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SemIR::TupleValue{.type_id = inst.type_id, .elements_id = inst.inits_id});
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::ArrayType inst) -> ConstantEvalResult {
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auto bound_inst = context.insts().Get(inst.bound_id);
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auto int_bound = bound_inst.TryAs<SemIR::IntValue>();
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if (!int_bound) {
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CARBON_CHECK(context.constant_values().Get(inst.bound_id).is_symbolic(),
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"Unexpected inst {0} for template constant int", bound_inst);
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return ConstantEvalResult::NewSamePhase(inst);
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}
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// TODO: We should check that the size of the resulting array type
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// fits in 64 bits, not just that the bound does. Should we use a
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// 32-bit limit for 32-bit targets?
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const auto& bound_val = context.ints().Get(int_bound->int_id);
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if (context.types().IsSignedInt(int_bound->type_id) &&
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bound_val.isNegative()) {
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CARBON_DIAGNOSTIC(ArrayBoundNegative, Error,
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"array bound of {0} is negative", TypedInt);
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context.emitter().Emit(
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context.insts().GetAs<SemIR::ArrayType>(inst_id).bound_id,
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ArrayBoundNegative, {.type = int_bound->type_id, .value = bound_val});
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return ConstantEvalResult::Error;
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}
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if (bound_val.getActiveBits() > 64) {
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CARBON_DIAGNOSTIC(ArrayBoundTooLarge, Error,
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"array bound of {0} is too large", TypedInt);
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context.emitter().Emit(
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context.insts().GetAs<SemIR::ArrayType>(inst_id).bound_id,
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ArrayBoundTooLarge, {.type = int_bound->type_id, .value = bound_val});
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return ConstantEvalResult::Error;
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}
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::AsCompatible inst)
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-> ConstantEvalResult {
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// AsCompatible changes the type of the source instruction; its constant
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// value, if there is one, needs to be modified to be of the same type.
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auto value_id = context.constant_values().Get(inst.source_id);
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CARBON_CHECK(value_id.is_constant());
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auto value_inst =
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context.insts().Get(context.constant_values().GetInstId(value_id));
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value_inst.SetType(inst.type_id);
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return ConstantEvalResult::NewAnyPhase(value_inst);
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}
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auto EvalConstantInst(Context& context, SemIR::BindAlias inst)
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-> ConstantEvalResult {
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// An alias evaluates to the value it's bound to.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.value_id));
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::BindValue /*inst*/)
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-> ConstantEvalResult {
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// TODO: Handle this once we've decided how to represent constant values of
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// reference expressions.
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return ConstantEvalResult::TODO;
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}
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auto EvalConstantInst(Context& context, SemIR::ClassElementAccess inst)
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-> ConstantEvalResult {
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return PerformAggregateAccess(context, inst);
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}
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auto EvalConstantInst(Context& context, SemIR::ClassDecl inst)
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-> ConstantEvalResult {
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// If the class has generic parameters, we don't produce a class type, but a
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// callable whose return value is a class type.
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if (context.classes().Get(inst.class_id).has_parameters()) {
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return ConstantEvalResult::NewSamePhase(SemIR::StructValue{
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.type_id = inst.type_id, .elements_id = SemIR::InstBlockId::Empty});
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}
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// A non-generic class declaration evaluates to the class type.
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return ConstantEvalResult::NewSamePhase(
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SemIR::ClassType{.type_id = SemIR::TypeType::SingletonTypeId,
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.class_id = inst.class_id,
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.specific_id = SemIR::SpecificId::None});
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::ClassInit inst)
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-> ConstantEvalResult {
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// TODO: Add a `ClassValue` to represent a constant class object
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// representation instead of using a `StructValue`.
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return ConstantEvalResult::NewSamePhase(SemIR::StructValue{
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.type_id = inst.type_id, .elements_id = inst.elements_id});
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}
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auto EvalConstantInst(Context& context, SemIR::ConstType inst)
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-> ConstantEvalResult {
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// `const (const T)` evaluates to `const T`.
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if (context.insts().Is<SemIR::ConstType>(inst.inner_id)) {
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.inner_id));
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}
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// Otherwise, `const T` evaluates to itself.
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::Converted inst)
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-> ConstantEvalResult {
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// A conversion evaluates to the result of the conversion.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.result_id));
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::Deref /*inst*/)
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-> ConstantEvalResult {
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// TODO: Handle this.
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return ConstantEvalResult::TODO;
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}
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auto EvalConstantInst(Context& context, SemIR::ExportDecl inst)
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-> ConstantEvalResult {
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// An export instruction evaluates to the exported declaration.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.value_id));
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}
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auto EvalConstantInst(Context& context, SemIR::FacetAccessType inst)
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-> ConstantEvalResult {
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if (auto facet_value = context.insts().TryGetAs<SemIR::FacetValue>(
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inst.facet_value_inst_id)) {
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return ConstantEvalResult::Existing(
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context.constant_values().Get(facet_value->type_inst_id));
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}
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::FacetAccessWitness inst)
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-> ConstantEvalResult {
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// TODO: The `index` we are given is an index into the required_interfaces of
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// the original facet type, but we're using it to index into the witnesses of
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// the substituted facet type. There is no reason to expect those witnesses to
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// be in the same order, or even for there to be the same number of witnesses.
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if (auto facet_value = context.insts().TryGetAs<SemIR::FacetValue>(
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inst.facet_value_inst_id)) {
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auto impl_witness_inst_id = context.inst_blocks().Get(
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facet_value->witnesses_block_id)[inst.index.index];
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return ConstantEvalResult::Existing(
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context.constant_values().Get(impl_witness_inst_id));
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}
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::FloatType inst) -> ConstantEvalResult {
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return ValidateFloatType(context, inst_id, inst)
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? ConstantEvalResult::NewSamePhase(inst)
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: ConstantEvalResult::Error;
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::FunctionDecl inst)
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-> ConstantEvalResult {
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// A function declaration evaluates to a function object, which is an empty
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// object of function type.
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// TODO: Eventually we may need to handle captures here.
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return ConstantEvalResult::NewSamePhase(SemIR::StructValue{
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.type_id = inst.type_id, .elements_id = SemIR::InstBlockId::Empty});
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::LookupImplWitness inst) -> ConstantEvalResult {
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auto result = EvalLookupSingleImplWitness(
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context, context.insts().GetLocId(inst_id), inst);
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if (!result.has_value()) {
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// We use NotConstant to communicate back to impl lookup that the lookup
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// failed. This can not happen for a deferred symbolic lookup in a generic
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// eval block, since we only add the deferred lookup instruction (being
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// evaluated here) to the SemIR if the lookup succeeds.
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return ConstantEvalResult::NotConstant;
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}
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if (!result.has_concrete_value()) {
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return ConstantEvalResult::NewSamePhase(inst);
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}
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return ConstantEvalResult::Existing(
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context.constant_values().Get(result.concrete_witness()));
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::ImplWitnessAccess inst) -> ConstantEvalResult {
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// This is PerformAggregateAccess followed by GetConstantValueInSpecific.
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if (auto witness =
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context.insts().TryGetAs<SemIR::ImplWitness>(inst.witness_id)) {
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auto elements = context.inst_blocks().Get(witness->elements_id);
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// `elements` can be empty if there is only a forward declaration of the
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// impl.
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if (!elements.empty()) {
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auto index = static_cast<size_t>(inst.index.index);
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CARBON_CHECK(index < elements.size(), "Access out of bounds.");
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auto element = elements[index];
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if (element.has_value()) {
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LoadImportRef(context, element);
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return ConstantEvalResult::Existing(GetConstantValueInSpecific(
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context.sem_ir(), witness->specific_id, element));
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}
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}
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CARBON_DIAGNOSTIC(
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ImplAccessMemberBeforeSet, Error,
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"accessing member from impl before it has a defined value");
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// TODO: Add note pointing to the impl declaration.
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context.emitter().Emit(inst_id, ImplAccessMemberBeforeSet);
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return ConstantEvalResult::Error;
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}
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context,
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SemIR::ImplWitnessAssociatedConstant inst)
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-> ConstantEvalResult {
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.inst_id));
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}
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auto EvalConstantInst(Context& /*context*/, SemIR::ImportRefUnloaded inst)
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-> ConstantEvalResult {
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CARBON_FATAL("ImportRefUnloaded should be loaded before TryEvalInst: {0}",
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inst);
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}
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auto EvalConstantInst(Context& context, SemIR::InitializeFrom inst)
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-> ConstantEvalResult {
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// Initialization is not performed in-place during constant evaluation, so
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// just return the value of the initializer.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.src_id));
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::IntType inst) -> ConstantEvalResult {
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return ValidateIntType(context, inst_id, inst)
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? ConstantEvalResult::NewSamePhase(inst)
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: ConstantEvalResult::Error;
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}
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auto EvalConstantInst(Context& context, SemIR::InterfaceDecl inst)
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-> ConstantEvalResult {
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// If the interface has generic parameters, we don't produce an interface
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// type, but a callable whose return value is an interface type.
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if (context.interfaces().Get(inst.interface_id).has_parameters()) {
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return ConstantEvalResult::NewSamePhase(SemIR::StructValue{
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.type_id = inst.type_id, .elements_id = SemIR::InstBlockId::Empty});
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}
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// A non-generic interface declaration evaluates to a facet type.
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return ConstantEvalResult::NewSamePhase(FacetTypeFromInterface(
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context, inst.interface_id, SemIR::SpecificId::None));
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}
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auto EvalConstantInst(Context& context, SemIR::NameRef inst)
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-> ConstantEvalResult {
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// A name reference evaluates to the value the name resolves to.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.value_id));
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::RequireCompleteType inst) -> ConstantEvalResult {
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auto witness_type_id =
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GetSingletonType(context, SemIR::WitnessType::SingletonInstId);
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// If the type is a concrete constant, require it to be complete now.
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auto complete_type_id =
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context.types().GetTypeIdForTypeInstId(inst.complete_type_inst_id);
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if (complete_type_id.is_concrete()) {
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if (!TryToCompleteType(context, complete_type_id, inst_id, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInMonomorphization, Error,
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"{0} evaluates to incomplete type {1}",
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InstIdAsType, InstIdAsType);
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return context.emitter().Build(
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inst_id, IncompleteTypeInMonomorphization,
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context.insts()
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.GetAs<SemIR::RequireCompleteType>(inst_id)
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.complete_type_inst_id,
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inst.complete_type_inst_id);
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})) {
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return ConstantEvalResult::Error;
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}
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return ConstantEvalResult::NewSamePhase(SemIR::CompleteTypeWitness{
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.type_id = witness_type_id,
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.object_repr_type_inst_id = context.types().GetInstId(
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context.types().GetObjectRepr(complete_type_id))});
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}
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// If it's not a concrete constant, require it to be complete once it
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// becomes one.
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::SpecificConstant inst)
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-> ConstantEvalResult {
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// Pull the constant value out of the specific.
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return ConstantEvalResult::Existing(SemIR::GetConstantValueInSpecific(
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context.sem_ir(), inst.specific_id, inst.inst_id));
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::SpecificImplFunction inst) -> ConstantEvalResult {
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auto callee_inst = context.insts().Get(inst.callee_id);
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// If the callee is not a function value, we're not ready to evaluate this
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// yet. Build a symbolic `SpecificImplFunction` constant.
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if (!callee_inst.Is<SemIR::StructValue>()) {
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto callee_type_id = callee_inst.type_id();
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auto callee_fn_type =
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context.types().TryGetAs<SemIR::FunctionType>(callee_type_id);
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if (!callee_fn_type) {
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return ConstantEvalResult::NewSamePhase(inst);
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}
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// If the callee function found in the impl witness is not generic, the result
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// is simply that function.
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// TODO: We could do this even before the callee is concrete.
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auto generic_id =
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context.functions().Get(callee_fn_type->function_id).generic_id;
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if (!generic_id.has_value()) {
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.callee_id));
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}
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// Find the arguments to use.
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auto enclosing_specific_id = callee_fn_type->specific_id;
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auto enclosing_args = context.inst_blocks().Get(
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context.specifics().GetArgsOrEmpty(enclosing_specific_id));
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auto interface_fn_args = context.inst_blocks().Get(
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context.specifics().GetArgsOrEmpty(inst.specific_id));
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// Form new specific for the generic callee function. The arguments for this
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// specific are the enclosing arguments of the callee followed by the
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// remaining arguments from the interface function. Impl checking has ensured
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// that these arguments can also be used for the function in the impl witness.
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auto num_params = context.inst_blocks()
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.Get(context.generics().Get(generic_id).bindings_id)
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.size();
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llvm::SmallVector<SemIR::InstId> args;
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args.reserve(num_params);
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args.append(enclosing_args.begin(), enclosing_args.end());
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int remaining_params = num_params - args.size();
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CARBON_CHECK(static_cast<int>(interface_fn_args.size()) >= remaining_params);
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args.append(interface_fn_args.end() - remaining_params,
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interface_fn_args.end());
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auto specific_id = MakeSpecific(context, inst_id, generic_id, args);
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context.definitions_required_by_use().push_back({inst_id, specific_id});
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return ConstantEvalResult::NewSamePhase(
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SemIR::SpecificFunction{.type_id = inst.type_id,
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.callee_id = inst.callee_id,
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.specific_id = specific_id});
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}
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auto EvalConstantInst(Context& context, SemIR::InstId inst_id,
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SemIR::SpecificFunction inst) -> ConstantEvalResult {
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if (!SemIR::GetCalleeFunction(context.sem_ir(), inst.callee_id)
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.self_type_id.has_value()) {
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// This is not an associated function. Those will be required to be defined
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// as part of checking that the impl is complete.
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context.definitions_required_by_use().push_back(
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{inst_id, inst.specific_id});
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}
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// Create new constant for a specific function.
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return ConstantEvalResult::NewSamePhase(inst);
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}
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auto EvalConstantInst(Context& context, SemIR::SpliceBlock inst)
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-> ConstantEvalResult {
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// SpliceBlock evaluates to the result value that is (typically) within the
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// block. This can be constant even if the block contains other non-constant
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// instructions.
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst.result_id));
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}
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auto EvalConstantInst(Context& context, SemIR::SpliceInst inst)
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-> ConstantEvalResult {
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// The constant value of a SpliceInst is the constant value of the instruction
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// being spliced. Note that `inst.inst_id` is the instruction being spliced,
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// so we need to go through another round of obtaining the constant value in
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// addition to the one performed by the eval infrastructure.
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if (auto inst_value =
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context.insts().TryGetAs<SemIR::InstValue>(inst.inst_id)) {
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return ConstantEvalResult::Existing(
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context.constant_values().Get(inst_value->inst_id));
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|
}
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|
// TODO: Consider creating a new `ValueOfInst` instruction analogous to
|
|
// `TypeOfInst` to defer determining the constant value until we know the
|
|
// instruction. Alternatively, produce a symbolic `SpliceInst` constant.
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|
return ConstantEvalResult::NotConstant;
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::StructAccess inst)
|
|
-> ConstantEvalResult {
|
|
return PerformAggregateAccess(context, inst);
|
|
}
|
|
|
|
auto EvalConstantInst(Context& /*context*/, SemIR::StructInit inst)
|
|
-> ConstantEvalResult {
|
|
return ConstantEvalResult::NewSamePhase(SemIR::StructValue{
|
|
.type_id = inst.type_id, .elements_id = inst.elements_id});
|
|
}
|
|
|
|
auto EvalConstantInst(Context& /*context*/, SemIR::Temporary /*inst*/)
|
|
-> ConstantEvalResult {
|
|
// TODO: Handle this. Can we just return the value of `init_id`?
|
|
return ConstantEvalResult::TODO;
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::TupleAccess inst)
|
|
-> ConstantEvalResult {
|
|
return PerformAggregateAccess(context, inst);
|
|
}
|
|
|
|
auto EvalConstantInst(Context& /*context*/, SemIR::TupleInit inst)
|
|
-> ConstantEvalResult {
|
|
return ConstantEvalResult::NewSamePhase(SemIR::TupleValue{
|
|
.type_id = inst.type_id, .elements_id = inst.elements_id});
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::TypeOfInst inst)
|
|
-> ConstantEvalResult {
|
|
// Grab the type from the instruction produced as our operand.
|
|
if (auto inst_value =
|
|
context.insts().TryGetAs<SemIR::InstValue>(inst.inst_id)) {
|
|
return ConstantEvalResult::Existing(context.types().GetConstantId(
|
|
context.insts().Get(inst_value->inst_id).type_id()));
|
|
}
|
|
return ConstantEvalResult::NewSamePhase(inst);
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::UnaryOperatorNot inst)
|
|
-> ConstantEvalResult {
|
|
// `not true` -> `false`, `not false` -> `true`.
|
|
// All other uses of unary `not` are non-constant.
|
|
auto const_id = context.constant_values().Get(inst.operand_id);
|
|
if (const_id.is_concrete()) {
|
|
auto value = context.insts().GetAs<SemIR::BoolLiteral>(
|
|
context.constant_values().GetInstId(const_id));
|
|
value.value = SemIR::BoolValue::From(!value.value.ToBool());
|
|
return ConstantEvalResult::NewSamePhase(value);
|
|
}
|
|
return ConstantEvalResult::NotConstant;
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::ValueOfInitializer inst)
|
|
-> ConstantEvalResult {
|
|
// Values of value expressions and initializing expressions are represented in
|
|
// the same way during constant evaluation, so just return the value of the
|
|
// operand.
|
|
return ConstantEvalResult::Existing(
|
|
context.constant_values().Get(inst.init_id));
|
|
}
|
|
|
|
auto EvalConstantInst(Context& context, SemIR::ValueParamPattern inst)
|
|
-> ConstantEvalResult {
|
|
// TODO: Treat this as a non-expression (here and in GetExprCategory)
|
|
// once generic deduction doesn't need patterns to have constant values.
|
|
return ConstantEvalResult::Existing(
|
|
context.constant_values().Get(inst.subpattern_id));
|
|
}
|
|
|
|
} // namespace Carbon::Check
|