mirror of
https://github.com/carbon-language/carbon-lang.git
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Add a new instruction called ImplSymbolicWitness which represents a
search for an impl declaration given a self type and an interface to
find implemented for the self type. The self type is stored as a
constant instruction id, rather than as a ConstantId, as instructions
don't currently support holding ConstantId. The interface is stored as a
SpecificInterface but we can't fit all of it directly into the
instruction. So we add a new id to refer to the SpecificInterface as
follows.
Add a new SpecificInterfaceId which indexes into a canonical value store
on SemIR::File. This tracks all `SpecificInterface`s stored in an
instruction - specifically the ImplSymbolicWitness instruction.
The SpecificInterface on Impl is still stored there as a value, not as
an id, and no id is eagerly constructed for it. We wait until an id is
needed to make one. Since they are canonical, a new id is only create
when a new SpecificInterface value is seen.
When doing impl lookup, and the query is not concrete, and the impl is
not effectively final, the query needs to consider future impls that may
specialize either the self type or the constaint to make a more precise
match and replace the found impl declaration. Instead of returning the
ImplWitness instruction from the found impl, we generate a
ImplSymbolicWitness instruction, storing the query so that it can be
replayed later. This instruction is added to the generic eval block and
thus will be re-evaluated later with a SpecificId that may make the
query more concrete. When evaluating the instruction and replaying the
query, the lookup has the same conditions and if it does not decide to
use the found impl concretely, then the same instruction is returned
from eval, leaving it as symbolic.
--- Impl lookup changes ---
Impl lookup gets a little more interesting now. It continues to look in
the facet value for a witness if the self type is a facet value. Then
falls back to looking for an impl declaration. This step is no longer
done directly. Instead, we construct a ImplSymbolicWitness instruction
and evaluate it immediately for each interface that are in the query
facet type.
The ImplSymbolicWitness instruction, when evaluated, calls back to the
impl lookup code, with a query specific interface. There we resume back
into the same code path as from before, finding a witness in an impl
declaration. But we may return "found a non-final impl" instead of a
concrete witness. If eval receives this back, it evaluates to the
current ImplSymbolicWitness instruction as the resulting constant value.
To pass lookup failures back through eval, a result of InstId::None from
the second step of impl lookup will result in a non-constant value,
which is used as a signal back up the stack to the original impl lookup
function that the lookup failed. Using a non-constant value here would
break evaluation of the generic eval block if impl lookup could fail
there, however we know it will not since we only leave behind an
ImplSymbolicWitness instruction in the eval block if we found at least
one matching impl already, and we just want to look for a better match
with a more specific query.
We must take care to not store a reference into any value store across
computation in impl lookup, since impl lookup can recurse into itself
invalidate those stores. That includes the SpecificInterface obtained
from a SpecificInterfaceId, which impl lookup also inserts into the
store.
--- The long tail ---
Adding a new instruction and a new id type requires a myriad of changes
to support them:
We add Dump() support for SpecificInterfaceId. And fix a crash in Dump
for SpecificId::None. We also add MakeSpecificInterfaceId() for dumping
arbitrary ids.
The type of ImplSymbolicWitness is a new singleton builtin type
instruction called WitnessSymbolicType (like WitnessType is the type for
an ImplWitness).
Both ImplSymbolicWitness and WitnessSymbolicType are given `Value` as
their expression category as they are builtin constant values. And
BuildInfo() in TypeCompleter is taught about them both, returning a
`ValueRepr::Copy`.
WitnessSymbolicType is added to the set of SingletonInstKinds, so that
it can have a singleton instrution id as a static member.
Lower's BuildTypeForInst() is taught to make an empty struct for
WitnessSymbolicType, similar to WitnessType.
Instruction formatter (FormatterImpl) grows support for printing a
SpecificInterfaceId so that it can print both arguments of
ImplSymbolicWitness on the RHS when printing the SemIR instruction. To
print a SpecificInterfaceId, it prints both the interface id and the
specific id (if there is one). For example, for a query on a generic
interface `Z` with one parameter, the RHS includes the query, interface,
and specific:
```
%Z.impl_symbolic_witness: <symbolic witness> = impl_symbolic_witness %U, @Z, @Z(%U.as_type) [symbolic]
```
IdKind is extended to include SpecificInterfaceId.
InstFingerprinter is taught to look through SpecificInterfaceId and use
the interface and specific ids in the fingerprint.
InstNamer is taught about SpecificInterfaceId, counting the interfaces
when building an index. It is also tought about ImplSymbolicWitness,
using the name of the interface within and the `.impl_symbolic_witness`
suffix. For example, here the LHS is named after the interface in the
query:
```
%Z.impl_symbolic_witness: <symbolic witness> = impl_symbolic_witness %U, @Z, @Z(%U.as_type) [symbolic]
```
StringifyTypeExpr is taught about WitnessSymbolicType, which uses its IR
name since it's a singleton. And about ImplSymbolicWitness which uses
its constant value. The handling of ImplWitnessAccess also needed to be
adjusted, since it assumed that ImplWitnessAccess::witness_id would
always be a FacetAccessWitness, but it can now also be an
ImplSymbolicWitness. (It seems that the witness_id is also assigned
ImplWitness instructions, but those ImplWitnessAccess instructions don't
ever seem to get stringified in a diagnostic at this time.) At the
moment the ImplWitnessAccess with a symbolic witness is just stringified
as "<symbolic>", such as in:
```
x.carbon:1:2: error: cannot implicitly convert value of type `()` to `<symbolic>` [ConversionFailure]
let a: C(D).(Z.X) = ();
^~
```
There is a TODO left behind to include more information there.
The TypeStructure builder is made to handle WitnessSymbolicType and
WitnessType. These come up now in deduce where a generic impl will have
a ImplSymbolicWitness in a FacetValue for a generic self type. The query
may have a concrete ImplWitness in the same position. Since deduce tries
to deduce through the FacetValue, it tries to convert ImplWitness to
ImplSymbolicWitness, tries to do an impl lookup for `impl ImplWitness as
ImplicitAs(ImplSymbolicWitness)` and causes us to build type structures
with each of these.
Subst is updated to handle pushing and popping SpecificInterfaceId.
Without this, when finishing a generic's eval block, we would walk into
the ImplSymbolicWitness instruction, and its arguments, and fail to
recurse down into the SpecificInterfaceId. Then any specifics inside
would be left as "orphaned" without any generic id attached to them, and
we would never update the instructions in the SpecificInterface's
instructions (inside its own SpecificId) with new constant values when
evaluating the generic eval block against a specific. To do this we push
the specific_id inside the SpecificInterface, and when popping we pop
the specific_id then construct a new canonical SpecificInterface with it
and return that id.
We add support for importing ImplSymbolicWitness by importing its self
constant instruction and specific interface id. However we also had to
add import support for SpecificImplFunction, which can now appear in the
generic eval block for a generic impl declaration, and thus must be
imported with the declaration. This is done very similarly to
SpecificFunction, except the `type_id` is a singleton value.
---------
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
1910 lines
77 KiB
C++
1910 lines
77 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/action.h"
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#include "toolchain/check/diagnostic_helpers.h"
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#include "toolchain/check/eval_inst.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/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/id_kind.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 specific_interfaces()
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-> CanonicalValueStore<SemIR::SpecificInterfaceId>& {
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return sem_ir().specific_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() -> DiagnosticEmitter<SemIRLoc>& { 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 non-template symbolic binding other than `.Self`.
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CheckedSymbolic,
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// Evaluation phase is symbolic because the expression involves a reference to
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// a template parameter, or otherwise depends on something template dependent.
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// The expression might also reference non-template symbolic bindings.
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TemplateSymbolic,
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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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// Returns whether the specified phase is a constant phase.
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static auto IsConstant(Phase phase) -> bool {
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return phase < Phase::UnknownDueToError;
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}
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// Gets the phase in which the value of a constant will become available.
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static auto GetPhase(const SemIR::ConstantValueStore& constant_values,
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SemIR::ConstantId constant_id) -> 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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}
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switch (constant_values.GetDependence(constant_id)) {
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case SemIR::ConstantDependence::None:
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return Phase::Concrete;
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case SemIR::ConstantDependence::PeriodSelf:
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return Phase::PeriodSelfSymbolic;
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case SemIR::ConstantDependence::Checked:
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return Phase::CheckedSymbolic;
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case SemIR::ConstantDependence::Template:
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return Phase::TemplateSymbolic;
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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_values(), 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::ConstantDependence::None);
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case Phase::PeriodSelfSymbolic:
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return context.constants().GetOrAdd(
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inst, SemIR::ConstantDependence::PeriodSelf);
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case Phase::CheckedSymbolic:
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return context.constants().GetOrAdd(inst,
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SemIR::ConstantDependence::Checked);
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case Phase::TemplateSymbolic:
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return context.constants().GetOrAdd(inst,
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SemIR::ConstantDependence::Template);
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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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// Creates a FacetType constant.
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static auto MakeFacetTypeResult(Context& context,
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const SemIR::FacetTypeInfo& info, Phase phase)
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-> SemIR::ConstantId {
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SemIR::FacetTypeId facet_type_id = context.facet_types().Add(info);
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return MakeConstantResult(
|
|
context,
|
|
SemIR::FacetType{.type_id = SemIR::TypeType::SingletonTypeId,
|
|
.facet_type_id = facet_type_id},
|
|
phase);
|
|
}
|
|
|
|
// `GetConstantValue` checks to see whether the provided ID describes a value
|
|
// with constant phase, and if so, returns the corresponding constant value.
|
|
// Overloads are provided for different kinds of ID.
|
|
|
|
// AbsoluteInstId can not have its values substituted, so this overload is
|
|
// deleted. This prevents conversion to InstId.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::AbsoluteInstId inst_id, Phase* phase)
|
|
-> SemIR::InstId = delete;
|
|
|
|
// If the given instruction is constant, returns its constant value.
|
|
static auto GetConstantValue(EvalContext& eval_context, SemIR::InstId inst_id,
|
|
Phase* phase) -> SemIR::InstId {
|
|
auto const_id = eval_context.GetConstantValue(inst_id);
|
|
*phase =
|
|
LatestPhase(*phase, GetPhase(eval_context.constant_values(), const_id));
|
|
return eval_context.constant_values().GetInstId(const_id);
|
|
}
|
|
|
|
// Find the instruction that the given instruction instantiates to, and return
|
|
// that.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::MetaInstId inst_id, Phase* phase)
|
|
-> SemIR::MetaInstId {
|
|
Phase inner_phase = Phase::Concrete;
|
|
if (auto const_inst_id =
|
|
GetConstantValue(eval_context, SemIR::InstId(inst_id), &inner_phase);
|
|
const_inst_id.has_value()) {
|
|
// The instruction has a constant value. Use that as the operand of the
|
|
// action.
|
|
*phase = LatestPhase(*phase, inner_phase);
|
|
return const_inst_id;
|
|
}
|
|
|
|
// If this instruction is splicing in an action result, that action result is
|
|
// our operand.
|
|
if (auto splice = eval_context.insts().TryGetAs<SemIR::SpliceInst>(inst_id)) {
|
|
if (auto spliced_inst_id =
|
|
GetConstantValue(eval_context, splice->inst_id, phase);
|
|
spliced_inst_id.has_value()) {
|
|
if (auto inst_value_id = eval_context.insts().TryGetAs<SemIR::InstValue>(
|
|
spliced_inst_id)) {
|
|
return inst_value_id->inst_id;
|
|
}
|
|
}
|
|
}
|
|
|
|
// Otherwise, this is a normal instruction.
|
|
if (OperandIsDependent(eval_context.context(), inst_id)) {
|
|
*phase = LatestPhase(*phase, Phase::TemplateSymbolic);
|
|
}
|
|
return inst_id;
|
|
}
|
|
|
|
// Explicitly discard a `DestInstId`, because we should not be using the
|
|
// destination as part of evaluation.
|
|
static auto GetConstantValue(EvalContext& /*eval_context*/,
|
|
SemIR::DestInstId /*inst_id*/, Phase* /*phase*/)
|
|
-> SemIR::DestInstId {
|
|
return SemIR::InstId::None;
|
|
}
|
|
|
|
// Given a type which may refer to a generic parameter, returns the
|
|
// corresponding type in the evaluation context.
|
|
static auto GetConstantValue(EvalContext& eval_context, SemIR::TypeId type_id,
|
|
Phase* phase) -> SemIR::TypeId {
|
|
auto const_id = eval_context.GetConstantValue(type_id);
|
|
*phase =
|
|
LatestPhase(*phase, GetPhase(eval_context.constant_values(), const_id));
|
|
return eval_context.context().types().GetTypeIdForTypeConstantId(const_id);
|
|
}
|
|
|
|
// AbsoluteInstBlockId can not have its values substituted, so this overload is
|
|
// deleted. This prevents conversion to InstBlockId.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::AbsoluteInstBlockId inst_block_id,
|
|
Phase* phase) -> SemIR::InstBlockId = delete;
|
|
|
|
// If the given instruction block contains only constants, returns a
|
|
// corresponding block of those values.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::InstBlockId inst_block_id, Phase* phase)
|
|
-> SemIR::InstBlockId {
|
|
if (!inst_block_id.has_value()) {
|
|
return SemIR::InstBlockId::None;
|
|
}
|
|
auto insts = eval_context.inst_blocks().Get(inst_block_id);
|
|
llvm::SmallVector<SemIR::InstId> const_insts;
|
|
for (auto inst_id : insts) {
|
|
auto const_inst_id = GetConstantValue(eval_context, inst_id, phase);
|
|
if (!const_inst_id.has_value()) {
|
|
return SemIR::InstBlockId::None;
|
|
}
|
|
|
|
// Once we leave the small buffer, we know the first few elements are all
|
|
// constant, so it's likely that the entire block is constant. Resize to the
|
|
// target size given that we're going to allocate memory now anyway.
|
|
if (const_insts.size() == const_insts.capacity()) {
|
|
const_insts.reserve(insts.size());
|
|
}
|
|
|
|
const_insts.push_back(const_inst_id);
|
|
}
|
|
// TODO: If the new block is identical to the original block, and we know the
|
|
// old ID was canonical, return the original ID.
|
|
return eval_context.inst_blocks().AddCanonical(const_insts);
|
|
}
|
|
|
|
// Compute the constant value of a type block. This may be different from the
|
|
// input type block if we have known generic arguments.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::StructTypeFieldsId fields_id, Phase* phase)
|
|
-> SemIR::StructTypeFieldsId {
|
|
if (!fields_id.has_value()) {
|
|
return SemIR::StructTypeFieldsId::None;
|
|
}
|
|
auto fields = eval_context.context().struct_type_fields().Get(fields_id);
|
|
llvm::SmallVector<SemIR::StructTypeField> new_fields;
|
|
for (auto field : fields) {
|
|
auto new_type_id = GetConstantValue(eval_context, field.type_id, phase);
|
|
if (!new_type_id.has_value()) {
|
|
return SemIR::StructTypeFieldsId::None;
|
|
}
|
|
|
|
// Once we leave the small buffer, we know the first few elements are all
|
|
// constant, so it's likely that the entire block is constant. Resize to the
|
|
// target size given that we're going to allocate memory now anyway.
|
|
if (new_fields.size() == new_fields.capacity()) {
|
|
new_fields.reserve(fields.size());
|
|
}
|
|
|
|
new_fields.push_back({.name_id = field.name_id, .type_id = new_type_id});
|
|
}
|
|
// TODO: If the new block is identical to the original block, and we know the
|
|
// old ID was canonical, return the original ID.
|
|
return eval_context.context().struct_type_fields().AddCanonical(new_fields);
|
|
}
|
|
|
|
// Compute the constant value of a type block. This may be different from the
|
|
// input type block if we have known generic arguments.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::TypeBlockId type_block_id, Phase* phase)
|
|
-> SemIR::TypeBlockId {
|
|
if (!type_block_id.has_value()) {
|
|
return SemIR::TypeBlockId::None;
|
|
}
|
|
auto types = eval_context.type_blocks().Get(type_block_id);
|
|
llvm::SmallVector<SemIR::TypeId> new_types;
|
|
for (auto type_id : types) {
|
|
auto new_type_id = GetConstantValue(eval_context, type_id, phase);
|
|
if (!new_type_id.has_value()) {
|
|
return SemIR::TypeBlockId::None;
|
|
}
|
|
|
|
// Once we leave the small buffer, we know the first few elements are all
|
|
// constant, so it's likely that the entire block is constant. Resize to the
|
|
// target size given that we're going to allocate memory now anyway.
|
|
if (new_types.size() == new_types.capacity()) {
|
|
new_types.reserve(types.size());
|
|
}
|
|
|
|
new_types.push_back(new_type_id);
|
|
}
|
|
// TODO: If the new block is identical to the original block, and we know the
|
|
// old ID was canonical, return the original ID.
|
|
return eval_context.type_blocks().AddCanonical(new_types);
|
|
}
|
|
|
|
// The constant value of a specific is the specific with the corresponding
|
|
// constant values for its arguments.
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::SpecificId specific_id, Phase* phase)
|
|
-> SemIR::SpecificId {
|
|
if (!specific_id.has_value()) {
|
|
return SemIR::SpecificId::None;
|
|
}
|
|
|
|
const auto& specific = eval_context.specifics().Get(specific_id);
|
|
auto args_id = GetConstantValue(eval_context, specific.args_id, phase);
|
|
if (!args_id.has_value()) {
|
|
return SemIR::SpecificId::None;
|
|
}
|
|
|
|
if (args_id == specific.args_id) {
|
|
const auto& specific = eval_context.specifics().Get(specific_id);
|
|
// A constant specific_id should always have a resolved declaration. The
|
|
// specific_id from the instruction may coincidentally be canonical, and so
|
|
// constant evaluation gives the same value. In that case, we still need to
|
|
// ensure its declaration is resolved.
|
|
//
|
|
// However, don't resolve the declaration if the generic's eval block hasn't
|
|
// been set yet. This happens when building the eval block during import.
|
|
//
|
|
// TODO: Change importing of generic eval blocks to be less fragile and
|
|
// remove this `if` so we unconditionally call `ResolveSpecificDeclaration`.
|
|
if (!specific.decl_block_id.has_value() && eval_context.context()
|
|
.generics()
|
|
.Get(specific.generic_id)
|
|
.decl_block_id.has_value()) {
|
|
ResolveSpecificDeclaration(eval_context.context(),
|
|
eval_context.fallback_loc(), specific_id);
|
|
}
|
|
return specific_id;
|
|
}
|
|
return MakeSpecific(eval_context.context(), eval_context.fallback_loc(),
|
|
specific.generic_id, args_id);
|
|
}
|
|
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::SpecificInterfaceId specific_interface_id,
|
|
Phase* phase) -> SemIR::SpecificInterfaceId {
|
|
const auto& interface =
|
|
eval_context.specific_interfaces().Get(specific_interface_id);
|
|
if (!interface.specific_id.has_value()) {
|
|
return specific_interface_id;
|
|
}
|
|
return eval_context.specific_interfaces().Add(
|
|
{.interface_id = interface.interface_id,
|
|
.specific_id =
|
|
GetConstantValue(eval_context, interface.specific_id, phase)});
|
|
}
|
|
|
|
// Like `GetConstantValue` but does a `FacetTypeId` -> `FacetTypeInfo`
|
|
// conversion. Does not perform canonicalization.
|
|
static auto GetConstantFacetTypeInfo(EvalContext& eval_context,
|
|
SemIR::FacetTypeId facet_type_id,
|
|
Phase* phase) -> SemIR::FacetTypeInfo {
|
|
const auto& orig = eval_context.facet_types().Get(facet_type_id);
|
|
SemIR::FacetTypeInfo info;
|
|
info.impls_constraints.reserve(orig.impls_constraints.size());
|
|
for (const auto& interface : orig.impls_constraints) {
|
|
info.impls_constraints.push_back(
|
|
{.interface_id = interface.interface_id,
|
|
.specific_id =
|
|
GetConstantValue(eval_context, interface.specific_id, phase)});
|
|
}
|
|
info.rewrite_constraints.reserve(orig.rewrite_constraints.size());
|
|
for (const auto& rewrite : orig.rewrite_constraints) {
|
|
auto lhs_const_id = eval_context.GetInContext(rewrite.lhs_const_id);
|
|
auto rhs_const_id = eval_context.GetInContext(rewrite.rhs_const_id);
|
|
// `where` requirements using `.Self` should not be considered symbolic
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, lhs_const_id, phase);
|
|
UpdatePhaseIgnorePeriodSelf(eval_context, rhs_const_id, phase);
|
|
info.rewrite_constraints.push_back(
|
|
{.lhs_const_id = lhs_const_id, .rhs_const_id = rhs_const_id});
|
|
}
|
|
// TODO: Process other requirements.
|
|
info.other_requirements = orig.other_requirements;
|
|
return info;
|
|
}
|
|
|
|
static auto GetConstantValue(EvalContext& eval_context,
|
|
SemIR::FacetTypeId facet_type_id, Phase* phase)
|
|
-> SemIR::FacetTypeId {
|
|
SemIR::FacetTypeInfo info =
|
|
GetConstantFacetTypeInfo(eval_context, facet_type_id, phase);
|
|
info.Canonicalize();
|
|
// TODO: Return `facet_type_id` if we can detect nothing has changed.
|
|
return eval_context.facet_types().Add(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;
|
|
}
|
|
|
|
// Function template that can be called with an argument of type `T`. Used below
|
|
// to detect which overloads of `GetConstantValue` exist.
|
|
template <typename T>
|
|
static void Accept(T /*arg*/) {}
|
|
|
|
// Determines whether a `GetConstantValue` overload exists for a given ID type.
|
|
// Note that we do not check whether `GetConstantValue` is *callable* with a
|
|
// given ID type, because that would use the `InstId` overload for
|
|
// `AbsoluteInstId` and similar wrapper types, which should be left alone.
|
|
template <typename IdT>
|
|
static constexpr bool HasGetConstantValueOverload = requires {
|
|
Accept<auto (*)(EvalContext&, IdT, Phase*)->IdT>(GetConstantValue);
|
|
};
|
|
|
|
// Given the stored value `arg` of an instruction field and its corresponding
|
|
// kind `kind`, returns the constant value to use for that field, if it has a
|
|
// constant phase. `*phase` is updated to include the new constant value. If
|
|
// the resulting phase is not constant, the returned value is not useful and
|
|
// will typically be `NoneIndex`.
|
|
template <typename... Type>
|
|
static auto GetConstantValueForArg(EvalContext& eval_context,
|
|
SemIR::TypeEnum<Type...> kind, int32_t arg,
|
|
Phase* phase) -> int32_t {
|
|
using Handler = auto(EvalContext&, int32_t arg, Phase * phase)->int32_t;
|
|
static constexpr Handler* Handlers[] = {
|
|
[](EvalContext& eval_context, int32_t arg, Phase* phase) -> int32_t {
|
|
auto id = SemIR::Inst::FromRaw<Type>(arg);
|
|
if constexpr (HasGetConstantValueOverload<Type>) {
|
|
// If we have a custom `GetConstantValue` overload, call it.
|
|
return SemIR::Inst::ToRaw(GetConstantValue(eval_context, id, phase));
|
|
} else {
|
|
// Otherwise, we assume the value is already constant.
|
|
return arg;
|
|
}
|
|
}...,
|
|
[](EvalContext&, int32_t, Phase*) -> int32_t {
|
|
// Handler for IdKind::Invalid is next.
|
|
CARBON_FATAL("Instruction has argument with invalid IdKind");
|
|
},
|
|
[](EvalContext&, int32_t arg, Phase*) -> int32_t {
|
|
// Handler for IdKind::None is last.
|
|
return arg;
|
|
}};
|
|
return Handlers[kind.ToIndex()](eval_context, arg, phase);
|
|
}
|
|
|
|
// Given an instruction, replaces its type and operands with their constant
|
|
// values from the specified evaluation context. `*phase` is updated to describe
|
|
// the constant phase of the result. Returns whether `*phase` is a constant
|
|
// phase; if not, `inst` may not be fully updated and should not be used.
|
|
static auto ReplaceAllFieldsWithConstantValues(EvalContext& eval_context,
|
|
SemIR::Inst* inst, Phase* phase)
|
|
-> bool {
|
|
auto type_id = SemIR::TypeId(
|
|
GetConstantValueForArg(eval_context, SemIR::IdKind::For<SemIR::TypeId>,
|
|
inst->type_id().index, phase));
|
|
inst->SetType(type_id);
|
|
if (!IsConstant(*phase)) {
|
|
return false;
|
|
}
|
|
|
|
auto kinds = inst->ArgKinds();
|
|
auto arg0 =
|
|
GetConstantValueForArg(eval_context, kinds.first, inst->arg0(), phase);
|
|
if (!IsConstant(*phase)) {
|
|
return false;
|
|
}
|
|
|
|
auto arg1 =
|
|
GetConstantValueForArg(eval_context, kinds.second, inst->arg1(), phase);
|
|
if (!IsConstant(*phase)) {
|
|
return false;
|
|
}
|
|
inst->SetArgs(arg0, arg1);
|
|
return true;
|
|
}
|
|
|
|
// 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()]);
|
|
}
|
|
|
|
// 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);
|
|
}
|
|
|
|
// 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(EvalContext& eval_context, SemIRLoc loc,
|
|
SemIR::Call call,
|
|
SemIR::BuiltinFunctionKind builtin_kind,
|
|
llvm::ArrayRef<SemIR::InstId> arg_ids,
|
|
Phase phase) -> SemIR::ConstantId {
|
|
auto& context = eval_context.context();
|
|
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::TypeAnd: {
|
|
CARBON_CHECK(arg_ids.size() == 2);
|
|
auto lhs_facet_type_id = SemIR::FacetTypeId::None;
|
|
auto rhs_facet_type_id = SemIR::FacetTypeId::None;
|
|
for (auto [facet_type_id, arg_id] :
|
|
llvm::zip(std::to_array({&lhs_facet_type_id, &rhs_facet_type_id}),
|
|
arg_ids)) {
|
|
if (auto facet_type =
|
|
context.insts().TryGetAs<SemIR::FacetType>(arg_id)) {
|
|
*facet_type_id = facet_type->facet_type_id;
|
|
} else {
|
|
CARBON_DIAGNOSTIC(FacetTypeRequiredForTypeAndOperator, Error,
|
|
"non-facet type {0} combined with `&` operator",
|
|
SemIR::TypeId);
|
|
// TODO: Find a location for the lhs or rhs specifically, instead of
|
|
// the whole thing. If that's not possible we can change the text to
|
|
// say if it's referring to the left or the right side for the error.
|
|
// The `arg_id` instruction has no location in it for some reason.
|
|
context.emitter().Emit(
|
|
loc, FacetTypeRequiredForTypeAndOperator,
|
|
context.types().GetTypeIdForTypeInstId(arg_id));
|
|
}
|
|
}
|
|
// Allow errors to be diagnosed for both sides of the operator before
|
|
// returning here if any error occurred on either side.
|
|
if (!lhs_facet_type_id.has_value() || !rhs_facet_type_id.has_value()) {
|
|
return SemIR::ErrorInst::SingletonConstantId;
|
|
}
|
|
// Reuse one of the argument instructions if nothing has changed.
|
|
if (lhs_facet_type_id == rhs_facet_type_id) {
|
|
return context.types().GetConstantId(
|
|
context.types().GetTypeIdForTypeInstId(arg_ids[0]));
|
|
}
|
|
auto info = SemIR::FacetTypeInfo::Combine(
|
|
context.facet_types().Get(lhs_facet_type_id),
|
|
context.facet_types().Get(rhs_facet_type_id));
|
|
info.Canonicalize();
|
|
return MakeFacetTypeResult(eval_context.context(), info, phase);
|
|
}
|
|
|
|
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::Concrete) {
|
|
return MakeConstantResult(context, call, phase);
|
|
}
|
|
return PerformIntConvert(context, arg_ids[0], call.type_id);
|
|
}
|
|
case SemIR::BuiltinFunctionKind::IntConvertChecked: {
|
|
if (phase != Phase::Concrete) {
|
|
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, loc, call, builtin_kind,
|
|
eval_context.inst_blocks().Get(call.args_id), phase);
|
|
}
|
|
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
// Given an instruction, compute its phase based on its operands.
|
|
static auto ComputeInstPhase(Context& context, SemIR::Inst inst) -> Phase {
|
|
EvalContext eval_context(context, SemIR::InstId::None);
|
|
|
|
auto phase = GetPhase(context.constant_values(),
|
|
context.types().GetConstantId(inst.type_id()));
|
|
auto kinds = inst.ArgKinds();
|
|
GetConstantValueForArg(eval_context, kinds.first, inst.arg0(), &phase);
|
|
GetConstantValueForArg(eval_context, kinds.second, inst.arg1(), &phase);
|
|
CARBON_CHECK(IsConstant(phase));
|
|
return phase;
|
|
}
|
|
|
|
// Convert a ConstantEvalResult to a ConstantId. Factored out of
|
|
// TryEvalTypedInst to avoid repeated instantiation of common code.
|
|
static auto ConvertEvalResultToConstantId(Context& context,
|
|
ConstantEvalResult result,
|
|
Phase orig_phase)
|
|
-> SemIR::ConstantId {
|
|
if (result.is_new()) {
|
|
return MakeConstantResult(
|
|
context, result.new_inst(),
|
|
result.same_phase_as_inst()
|
|
? orig_phase
|
|
: ComputeInstPhase(context, result.new_inst()));
|
|
}
|
|
return result.existing();
|
|
}
|
|
|
|
// Evaluates an instruction of a known type in an evaluation context. The
|
|
// default behavior of this function depends on the constant kind of the
|
|
// instruction:
|
|
//
|
|
// - InstConstantKind::Never: returns ConstantId::NotConstant.
|
|
// - InstConstantKind::Indirect, SymbolicOnly, Conditional: evaluates all the
|
|
// operands of the instruction, and calls `EvalConstantInst` to evaluate the
|
|
// resulting constant instruction.
|
|
// - InstConstantKind::WheneverPossible, Always: evaluates all the operands of
|
|
// the instruction, and produces the resulting constant instruction as the
|
|
// result.
|
|
// - InstConstantKind::Unique: returns the `inst_id` as the resulting
|
|
// constant.
|
|
//
|
|
// Returns an error constant ID if any of the nested evaluations fail, and
|
|
// returns NotConstant if any of the nested evaluations is non-constant.
|
|
//
|
|
// This template is explicitly specialized for instructions that need special
|
|
// handling.
|
|
template <typename InstT>
|
|
static auto TryEvalTypedInst(EvalContext& eval_context, SemIR::InstId inst_id,
|
|
SemIR::Inst inst) -> SemIR::ConstantId {
|
|
constexpr auto ConstantKind = InstT::Kind.constant_kind();
|
|
if constexpr (ConstantKind == SemIR::InstConstantKind::Never) {
|
|
return SemIR::ConstantId::NotConstant;
|
|
} else if constexpr (ConstantKind == SemIR::InstConstantKind::Unique) {
|
|
CARBON_CHECK(inst_id.has_value());
|
|
return SemIR::ConstantId::ForConcreteConstant(inst_id);
|
|
} else {
|
|
// Build a constant instruction by replacing each non-constant operand with
|
|
// its constant value.
|
|
Phase phase = Phase::Concrete;
|
|
if (!ReplaceAllFieldsWithConstantValues(eval_context, &inst, &phase)) {
|
|
if constexpr (ConstantKind == SemIR::InstConstantKind::Always) {
|
|
CARBON_CHECK(phase == Phase::UnknownDueToError,
|
|
"{0} should always be constant", InstT::Kind);
|
|
}
|
|
return MakeNonConstantResult(phase);
|
|
}
|
|
if constexpr (ConstantKind == SemIR::InstConstantKind::Always ||
|
|
ConstantKind == SemIR::InstConstantKind::WheneverPossible) {
|
|
return MakeConstantResult(eval_context.context(), inst, phase);
|
|
} else if constexpr (ConstantKind == SemIR::InstConstantKind::InstAction) {
|
|
auto result_inst_id = PerformDelayedAction(
|
|
eval_context.context(), eval_context.insts().GetLocId(inst_id),
|
|
inst.As<InstT>());
|
|
if (result_inst_id.has_value()) {
|
|
// The result is an instruction.
|
|
return MakeConstantResult(
|
|
eval_context.context(),
|
|
SemIR::InstValue{.type_id = SemIR::InstType::SingletonTypeId,
|
|
.inst_id = result_inst_id},
|
|
Phase::Concrete);
|
|
}
|
|
// Couldn't perform the action because it's still dependent.
|
|
return MakeConstantResult(eval_context.context(), inst,
|
|
Phase::TemplateSymbolic);
|
|
} else {
|
|
return ConvertEvalResultToConstantId(
|
|
eval_context.context(),
|
|
EvalConstantInst(eval_context.context(),
|
|
eval_context.GetDiagnosticLoc({inst_id}),
|
|
inst.As<InstT>()),
|
|
phase);
|
|
}
|
|
}
|
|
}
|
|
|
|
// Specialize evaluation for array indexing because we want to check the index
|
|
// expression even if the array expression is non-constant.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::ArrayIndex>(EvalContext& eval_context,
|
|
SemIR::InstId /*inst_id*/,
|
|
SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
return PerformArrayIndex(eval_context, inst.As<SemIR::ArrayIndex>());
|
|
}
|
|
|
|
// Specialize evaluation for function calls because we want to check the callee
|
|
// expression even if an argument expression is non-constant, and because we
|
|
// will eventually want to perform control flow handling here.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::Call>(EvalContext& eval_context,
|
|
SemIR::InstId inst_id, SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
return MakeConstantForCall(eval_context,
|
|
eval_context.GetDiagnosticLoc(inst_id),
|
|
inst.As<SemIR::Call>());
|
|
}
|
|
|
|
// ImportRefLoaded can have a constant value, but it's owned and maintained by
|
|
// `import_ref.cpp`, not by us.
|
|
// TODO: Rearrange how `ImportRefLoaded` instructions are created so we never
|
|
// call this.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::ImportRefLoaded>(EvalContext& /*eval_context*/,
|
|
SemIR::InstId /*inst_id*/,
|
|
SemIR::Inst /*inst*/)
|
|
-> SemIR::ConstantId {
|
|
return SemIR::ConstantId::NotConstant;
|
|
}
|
|
|
|
// TODO: Disable constant evaluation of SymbolicBindingPattern once
|
|
// DeduceGenericCallArguments no longer needs implicit params to have constant
|
|
// values.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::SymbolicBindingPattern>(EvalContext& eval_context,
|
|
SemIR::InstId /*inst_id*/,
|
|
SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
auto bind = inst.As<SemIR::SymbolicBindingPattern>();
|
|
|
|
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()) {
|
|
// TODO: This seems incorrect: patterns don't typically evaluate to the
|
|
// value matched by the pattern.
|
|
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);
|
|
return MakeConstantResult(
|
|
eval_context.context(), bind,
|
|
bind_name.is_template ? Phase::TemplateSymbolic : Phase::CheckedSymbolic);
|
|
}
|
|
|
|
// Symbolic bindings are a special case because they can reach into the eval
|
|
// context and produce a context-specific value.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::BindSymbolicName>(EvalContext& eval_context,
|
|
SemIR::InstId /*inst_id*/,
|
|
SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
auto bind = inst.As<SemIR::BindSymbolicName>();
|
|
|
|
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;
|
|
}
|
|
phase = bind_name.is_template ? Phase::TemplateSymbolic
|
|
: Phase::CheckedSymbolic;
|
|
}
|
|
// 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);
|
|
}
|
|
|
|
// TODO: Convert this to an EvalConstantInst instruction. This will require
|
|
// providing a `GetConstantValue` overload for a requirement block.
|
|
template <>
|
|
auto TryEvalTypedInst<SemIR::WhereExpr>(EvalContext& eval_context,
|
|
SemIR::InstId /*inst_id*/,
|
|
SemIR::Inst inst) -> SemIR::ConstantId {
|
|
auto typed_inst = inst.As<SemIR::WhereExpr>();
|
|
|
|
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);
|
|
}
|
|
|
|
// Implementation for `TryEvalInst`, wrapping `Context` with `EvalContext`.
|
|
static auto TryEvalInstInContext(EvalContext& eval_context,
|
|
SemIR::InstId inst_id, SemIR::Inst inst)
|
|
-> SemIR::ConstantId {
|
|
using EvalInstFn =
|
|
auto(EvalContext & eval_context, SemIR::InstId inst_id, SemIR::Inst inst)
|
|
->SemIR::ConstantId;
|
|
static constexpr EvalInstFn* EvalInstFns[] = {
|
|
#define CARBON_SEM_IR_INST_KIND(Kind) &TryEvalTypedInst<SemIR::Kind>,
|
|
#include "toolchain/sem_ir/inst_kind.def"
|
|
};
|
|
[[clang::musttail]] return EvalInstFns[inst.kind().AsInt()](eval_context,
|
|
inst_id, inst);
|
|
}
|
|
|
|
auto TryEvalInst(Context& context, SemIR::LocId loc_id, SemIR::InstId inst_id,
|
|
SemIR::Inst inst) -> SemIR::ConstantId {
|
|
EvalContext eval_context(context, loc_id);
|
|
return TryEvalInstInContext(eval_context, inst_id, inst);
|
|
}
|
|
|
|
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
|