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Instead of hardcoding which types are copyable, add a `Core.Copy` interface to perform copying. Move almost all the current copy support to that interface. Some remaining pieces are still using builtin logic after this PR: * For tuples and structs, builtin logic is used to perform elementwise copies. This also supports copying *adapters of* tuples and structs, which seems like it may not be desirable, especially for non-extending adapters. A `Copy` impl is provided for tuples of at most 2 elements, so that `Core.Copy` constraints are satisfied, but we can't implement this generally until we have variadics support, and don't yet have a mechanism to generalize this to structs. * For `enum` types imported from C++, builtin logic is used to perform a copy. This is temporary until we have a mechanism to identify these types from an impl in the prelude. One lowering test in `toolchain/lower/testdata/class/generic.carbon` is disabled for now, as it causes a crash in the lowering code due to an ABI mismatch between the call signature in the lowered declaration of a specific function and the call that is generated in the specific callee. Fixing this is a little involved, and will be done in a separate PR. --------- Co-authored-by: Geoff Romer <gromer@google.com>
724 lines
26 KiB
C++
724 lines
26 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/sem_ir/builtin_function_kind.h"
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#include <utility>
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#include "toolchain/sem_ir/file.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/type_info.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::SemIR {
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// A function that validates that a builtin was declared properly.
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using ValidateFn = auto(const File& sem_ir, llvm::ArrayRef<TypeId> arg_types,
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TypeId return_type) -> bool;
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namespace {
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// Information about a builtin function.
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struct BuiltinInfo {
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llvm::StringLiteral name;
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ValidateFn* validate;
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};
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// The maximum number of type parameters any builtin needs.
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constexpr int MaxTypeParams = 2;
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// State used when validating a builtin signature that persists between
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// individual checks.
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struct ValidateState {
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// The type values of type parameters in the builtin signature. Invalid if
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// either no value has been deduced yet or the parameter is not used.
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TypeId type_params[MaxTypeParams] = {TypeId::None, TypeId::None};
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};
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template <typename TypeConstraint>
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auto Check(const File& sem_ir, ValidateState& state, TypeId type_id) -> bool;
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// Constraint that a type is generic type parameter `I` of the builtin,
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// satisfying `TypeConstraint`. See ValidateSignature for details.
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template <int I, typename TypeConstraint>
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struct TypeParam {
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static_assert(I >= 0 && I < MaxTypeParams);
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static auto Check(const File& sem_ir, ValidateState& state, TypeId type_id)
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-> bool {
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if (state.type_params[I].has_value() && type_id != state.type_params[I]) {
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return false;
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}
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if (!TypeConstraint::Check(sem_ir, state, type_id)) {
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return false;
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}
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state.type_params[I] = type_id;
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return true;
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}
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};
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// Constraint that a type is a specific builtin. See ValidateSignature for
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// details.
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template <const TypeInstId& BuiltinId>
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struct BuiltinType {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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return sem_ir.types().GetInstId(type_id) == BuiltinId;
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}
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};
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// Constraint that a type is a pointer to another type. See ValidateSignature
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// for details.
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template <typename PointeeT>
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struct PointerTo {
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static auto Check(const File& sem_ir, ValidateState& state, TypeId type_id)
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-> bool {
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if (!sem_ir.types().Is<PointerType>(type_id)) {
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return false;
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}
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return Check<PointeeT>(sem_ir, state, sem_ir.GetPointeeType(type_id));
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}
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};
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// Constraint that a type is `()`, used as the return type of builtin functions
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// with no return value.
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struct NoReturn {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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auto tuple = sem_ir.types().TryGetAs<TupleType>(type_id);
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if (!tuple) {
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return false;
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}
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return sem_ir.inst_blocks().Get(tuple->type_elements_id).empty();
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}
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};
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// Constraint that a type is `bool`.
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using Bool = BuiltinType<BoolType::TypeInstId>;
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// Constraint that a type is `Core.CharLiteral`.
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using CharLiteral = BuiltinType<CharLiteralType::TypeInstId>;
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// Constraint that a type is `u8` or an adapted type, including `Core.Char`.
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struct CharCompatible {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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auto int_info = sem_ir.types().TryGetIntTypeInfo(type_id);
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if (!int_info) {
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// Not an integer.
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return false;
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}
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if (!int_info->bit_width.has_value() || int_info->is_signed) {
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// Must be unsigned.
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return false;
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}
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return sem_ir.ints().Get(int_info->bit_width) == 8;
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}
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};
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// Constraint that requires the type to be a sized integer type.
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struct AnySizedInt {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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return sem_ir.types().Is<IntType>(type_id);
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}
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};
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// Constraint that requires the type to be an integer type: either a sized
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// integer type or a literal.
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struct AnyInt {
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static auto Check(const File& sem_ir, ValidateState& state, TypeId type_id)
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-> bool {
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return AnySizedInt::Check(sem_ir, state, type_id) ||
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BuiltinType<IntLiteralType::TypeInstId>::Check(sem_ir, state,
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type_id);
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}
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};
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// Constraint that requires the type to be a sized floating-point type.
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struct AnySizedFloat {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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return sem_ir.types().Is<FloatType>(type_id);
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}
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};
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// Constraint that requires the type to be a float type: either a sized float
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// type or a literal.
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struct AnyFloat {
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static auto Check(const File& sem_ir, ValidateState& state, TypeId type_id)
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-> bool {
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return AnySizedFloat::Check(sem_ir, state, type_id) ||
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BuiltinType<FloatLiteralType::TypeInstId>::Check(sem_ir, state,
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type_id);
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}
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};
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// Constraint that requires the type to be the type type.
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using Type = BuiltinType<TypeType::TypeInstId>;
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// Constraint that a type supports a primitive copy. This happens if its
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// initializing representation is a copy of its value representation.
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struct PrimitiveCopyable {
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static auto Check(const File& sem_ir, ValidateState& /*state*/,
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TypeId type_id) -> bool {
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return InitRepr::ForType(sem_ir, type_id).IsCopyOfObjectRepr() &&
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ValueRepr::ForType(sem_ir, type_id)
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.IsCopyOfObjectRepr(sem_ir, type_id);
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}
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};
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// Checks that the specified type matches the given type constraint.
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template <typename TypeConstraint>
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auto Check(const File& sem_ir, ValidateState& state, TypeId type_id) -> bool {
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while (type_id.has_value()) {
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// Allow a type that satisfies the constraint.
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if (TypeConstraint::Check(sem_ir, state, type_id)) {
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return true;
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}
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// Also allow a class type that adapts a matching type.
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type_id = sem_ir.types().GetAdaptedType(type_id);
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}
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return false;
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}
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} // namespace
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// Validates that this builtin has a signature matching the specified signature.
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//
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// `SignatureFnType` is a C++ function type that describes the signature that is
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// expected for this builtin. For example, `auto (AnyInt, AnyInt) -> AnyInt`
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// specifies that the builtin takes values of two integer types and returns a
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// value of a third integer type. Types used within the signature should provide
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// a `Check` function that validates that the Carbon type is expected:
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//
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// auto Check(const File&, ValidateState&, TypeId) -> bool;
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//
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// To constrain that the same type is used in multiple places in the signature,
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// `TypeParam<I, T>` can be used. For example:
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//
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// auto (TypeParam<0, AnyInt>, AnyInt) -> TypeParam<0, AnyInt>
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//
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// describes a builtin that takes two integers, and whose return type matches
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// its first parameter type. For convenience, typedefs for `TypeParam<I, T>`
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// are used in the descriptions of the builtins.
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template <typename SignatureFnType>
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static auto ValidateSignature(const File& sem_ir,
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llvm::ArrayRef<TypeId> arg_types,
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TypeId return_type) -> bool {
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using SignatureTraits = llvm::function_traits<SignatureFnType*>;
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ValidateState state;
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// Must have expected number of arguments.
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if (arg_types.size() != SignatureTraits::num_args) {
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return false;
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}
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// Argument types must match.
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if (![&]<size_t... Indexes>(std::index_sequence<Indexes...>) {
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return ((Check<typename SignatureTraits::template arg_t<Indexes>>(
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sem_ir, state, arg_types[Indexes])) &&
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...);
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}(std::make_index_sequence<SignatureTraits::num_args>())) {
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return false;
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}
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// Result type must match.
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if (!Check<typename SignatureTraits::result_t>(sem_ir, state, return_type)) {
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return false;
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}
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return true;
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}
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// Validates the signature for NoOp. This ignores all arguments, only validating
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// that the return type is compatible.
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static auto ValidateNoOpSignature(const File& sem_ir,
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llvm::ArrayRef<TypeId> /*arg_types*/,
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TypeId return_type) -> bool {
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ValidateState state;
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return Check<NoReturn>(sem_ir, state, return_type);
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}
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// Descriptions of builtin functions follow. For each builtin, a corresponding
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// `BuiltinInfo` constant is declared describing properties of that builtin.
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namespace BuiltinFunctionInfo {
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// Convenience name used in the builtin type signatures below for a first
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// generic type parameter that is constrained to be an integer type.
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using IntT = TypeParam<0, AnyInt>;
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// Convenience name used in the builtin type signatures below for a second
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// generic type parameter that is constrained to be an integer type.
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using IntU = TypeParam<1, AnyInt>;
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// Convenience name used in the builtin type signatures below for a first
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// generic type parameter that is constrained to be a sized integer type.
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using SizedIntT = TypeParam<0, AnySizedInt>;
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// Convenience name used in the builtin type signatures below for a second
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// generic type parameter that is constrained to be a sized integer type.
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using SizedIntU = TypeParam<1, AnySizedInt>;
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// Convenience name used in the builtin type signatures below for a first
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// generic type parameter that is constrained to be an float type.
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using FloatT = TypeParam<0, AnyFloat>;
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// Convenience name used in the builtin type signatures below for a second
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// generic type parameter that is constrained to be an float type.
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using FloatU = TypeParam<1, AnyFloat>;
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// Convenience name used in the builtin type signatures below for a first
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// generic type parameter that is constrained to be a sized float type.
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using SizedFloatT = TypeParam<0, AnySizedFloat>;
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// Convenience name used in the builtin type signatures below for a first
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// generic type parameter that supports primitive copy.
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using PrimitiveCopyParamT = TypeParam<0, PrimitiveCopyable>;
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// Not a builtin function.
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constexpr BuiltinInfo None = {"", nullptr};
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constexpr BuiltinInfo NoOp = {"no_op", ValidateNoOpSignature};
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constexpr BuiltinInfo PrimitiveCopy = {
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"primitive_copy",
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ValidateSignature<auto(PrimitiveCopyParamT)->PrimitiveCopyParamT>};
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// Prints a single character.
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constexpr BuiltinInfo PrintChar = {
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"print.char", ValidateSignature<auto(AnySizedInt)->AnySizedInt>};
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// Prints an integer.
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constexpr BuiltinInfo PrintInt = {
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"print.int", ValidateSignature<auto(AnySizedInt)->NoReturn>};
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// Reads a single character from stdin.
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constexpr BuiltinInfo ReadChar = {"read.char",
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ValidateSignature<auto()->AnySizedInt>};
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// Returns the `Core.CharLiteral` type.
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constexpr BuiltinInfo CharLiteralMakeType = {"char_literal.make_type",
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ValidateSignature<auto()->Type>};
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// Returns the `Core.IntLiteral` type.
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constexpr BuiltinInfo IntLiteralMakeType = {"int_literal.make_type",
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ValidateSignature<auto()->Type>};
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// Returns the `Core.FloatLiteral` type.
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constexpr BuiltinInfo FloatLiteralMakeType = {"float_literal.make_type",
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ValidateSignature<auto()->Type>};
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// Returns the `iN` type.
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// TODO: Should we use a more specific type as the type of the bit width?
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constexpr BuiltinInfo IntMakeTypeSigned = {
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"int.make_type_signed", ValidateSignature<auto(AnyInt)->Type>};
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// Returns the `uN` type.
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constexpr BuiltinInfo IntMakeTypeUnsigned = {
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"int.make_type_unsigned", ValidateSignature<auto(AnyInt)->Type>};
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// Returns float types, such as `f64`. Currently only supports `f64`.
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constexpr BuiltinInfo FloatMakeType = {"float.make_type",
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ValidateSignature<auto(AnyInt)->Type>};
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// Returns the `bool` type.
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constexpr BuiltinInfo BoolMakeType = {"bool.make_type",
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ValidateSignature<auto()->Type>};
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// Returns the `MaybeUnformed(T)` type.
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constexpr BuiltinInfo MaybeUnformedMakeType = {
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"maybe_unformed.make_type", ValidateSignature<auto(Type)->Type>};
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// Converts between char types, with a diagnostic if the value doesn't fit.
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constexpr BuiltinInfo CharConvertChecked = {
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"char.convert_checked",
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ValidateSignature<auto(CharLiteral)->CharCompatible>};
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// Converts between integer types, truncating if necessary.
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constexpr BuiltinInfo IntConvert = {"int.convert",
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ValidateSignature<auto(AnyInt)->AnyInt>};
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// Converts between integer types, with a diagnostic if the value doesn't fit.
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constexpr BuiltinInfo IntConvertChecked = {
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"int.convert_checked", ValidateSignature<auto(AnyInt)->AnyInt>};
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// "int.snegate": integer negation.
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constexpr BuiltinInfo IntSNegate = {"int.snegate",
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ValidateSignature<auto(IntT)->IntT>};
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// "int.sadd": integer addition.
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constexpr BuiltinInfo IntSAdd = {"int.sadd",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.ssub": integer subtraction.
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constexpr BuiltinInfo IntSSub = {"int.ssub",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.smul": integer multiplication.
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constexpr BuiltinInfo IntSMul = {"int.smul",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.sdiv": integer division.
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constexpr BuiltinInfo IntSDiv = {"int.sdiv",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.smod": integer modulo.
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constexpr BuiltinInfo IntSMod = {"int.smod",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.unegate": unsigned integer negation.
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constexpr BuiltinInfo IntUNegate = {
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"int.unegate", ValidateSignature<auto(SizedIntT)->SizedIntT>};
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// "int.uadd": unsigned integer addition.
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constexpr BuiltinInfo IntUAdd = {
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"int.uadd", ValidateSignature<auto(SizedIntT, SizedIntT)->SizedIntT>};
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// "int.usub": unsigned integer subtraction.
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constexpr BuiltinInfo IntUSub = {
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"int.usub", ValidateSignature<auto(SizedIntT, SizedIntT)->SizedIntT>};
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// "int.umul": unsigned integer multiplication.
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constexpr BuiltinInfo IntUMul = {
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"int.umul", ValidateSignature<auto(SizedIntT, SizedIntT)->SizedIntT>};
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// "int.udiv": unsigned integer division.
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constexpr BuiltinInfo IntUDiv = {
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"int.udiv", ValidateSignature<auto(SizedIntT, SizedIntT)->SizedIntT>};
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// "int.mod": integer modulo.
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constexpr BuiltinInfo IntUMod = {
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"int.umod", ValidateSignature<auto(SizedIntT, SizedIntT)->SizedIntT>};
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// "int.complement": integer bitwise complement.
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constexpr BuiltinInfo IntComplement = {"int.complement",
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ValidateSignature<auto(IntT)->IntT>};
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// "int.and": integer bitwise and.
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constexpr BuiltinInfo IntAnd = {"int.and",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.or": integer bitwise or.
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constexpr BuiltinInfo IntOr = {"int.or",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.xor": integer bitwise xor.
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constexpr BuiltinInfo IntXor = {"int.xor",
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ValidateSignature<auto(IntT, IntT)->IntT>};
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// "int.left_shift": integer left shift.
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constexpr BuiltinInfo IntLeftShift = {
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"int.left_shift", ValidateSignature<auto(IntT, IntU)->IntT>};
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// "int.right_shift": integer right shift.
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constexpr BuiltinInfo IntRightShift = {
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"int.right_shift", ValidateSignature<auto(IntT, IntU)->IntT>};
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// "int.sadd_assign": integer in-place addition.
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constexpr BuiltinInfo IntSAddAssign = {
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"int.sadd_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.ssub_assign": integer in-place subtraction.
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constexpr BuiltinInfo IntSSubAssign = {
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"int.ssub_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.smul_assign": integer in-place multiplication.
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constexpr BuiltinInfo IntSMulAssign = {
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"int.smul_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.sdiv_assign": integer in-place division.
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constexpr BuiltinInfo IntSDivAssign = {
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"int.sdiv_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.smod_assign": integer in-place modulo.
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constexpr BuiltinInfo IntSModAssign = {
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"int.smod_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.uadd_assign": unsigned integer in-place addition.
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constexpr BuiltinInfo IntUAddAssign = {
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"int.uadd_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.usub_assign": unsigned integer in-place subtraction.
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constexpr BuiltinInfo IntUSubAssign = {
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"int.usub_assign",
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ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
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// "int.umul_assign": unsigned integer in-place multiplication.
|
|
constexpr BuiltinInfo IntUMulAssign = {
|
|
"int.umul_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.udiv_assign": unsigned integer in-place division.
|
|
constexpr BuiltinInfo IntUDivAssign = {
|
|
"int.udiv_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.mod_assign": integer in-place modulo.
|
|
constexpr BuiltinInfo IntUModAssign = {
|
|
"int.umod_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.and_assign": integer in-place bitwise and.
|
|
constexpr BuiltinInfo IntAndAssign = {
|
|
"int.and_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.or_assign": integer in-place bitwise or.
|
|
constexpr BuiltinInfo IntOrAssign = {
|
|
"int.or_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.xor_assign": integer in-place bitwise xor.
|
|
constexpr BuiltinInfo IntXorAssign = {
|
|
"int.xor_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntT)->NoReturn>};
|
|
|
|
// "int.left_shift_assign": integer in-place left shift.
|
|
constexpr BuiltinInfo IntLeftShiftAssign = {
|
|
"int.left_shift_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntU)->NoReturn>};
|
|
|
|
// "int.right_shift_assign": integer in-place right shift.
|
|
constexpr BuiltinInfo IntRightShiftAssign = {
|
|
"int.right_shift_assign",
|
|
ValidateSignature<auto(PointerTo<SizedIntT>, SizedIntU)->NoReturn>};
|
|
|
|
// "int.eq": integer equality comparison.
|
|
constexpr BuiltinInfo IntEq = {"int.eq",
|
|
ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "int.neq": integer non-equality comparison.
|
|
constexpr BuiltinInfo IntNeq = {"int.neq",
|
|
ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "int.less": integer less than comparison.
|
|
constexpr BuiltinInfo IntLess = {"int.less",
|
|
ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "int.less_eq": integer less than or equal comparison.
|
|
constexpr BuiltinInfo IntLessEq = {"int.less_eq",
|
|
ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "int.greater": integer greater than comparison.
|
|
constexpr BuiltinInfo IntGreater = {"int.greater",
|
|
ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "int.greater_eq": integer greater than or equal comparison.
|
|
constexpr BuiltinInfo IntGreaterEq = {
|
|
"int.greater_eq", ValidateSignature<auto(IntT, IntU)->Bool>};
|
|
|
|
// "float.negate": float negation.
|
|
constexpr BuiltinInfo FloatNegate = {
|
|
"float.negate", ValidateSignature<auto(SizedFloatT)->SizedFloatT>};
|
|
|
|
// "float.add": float addition.
|
|
constexpr BuiltinInfo FloatAdd = {
|
|
"float.add",
|
|
ValidateSignature<auto(SizedFloatT, SizedFloatT)->SizedFloatT>};
|
|
|
|
// "float.sub": float subtraction.
|
|
constexpr BuiltinInfo FloatSub = {
|
|
"float.sub",
|
|
ValidateSignature<auto(SizedFloatT, SizedFloatT)->SizedFloatT>};
|
|
|
|
// "float.mul": float multiplication.
|
|
constexpr BuiltinInfo FloatMul = {
|
|
"float.mul",
|
|
ValidateSignature<auto(SizedFloatT, SizedFloatT)->SizedFloatT>};
|
|
|
|
// "float.div": float division.
|
|
constexpr BuiltinInfo FloatDiv = {
|
|
"float.div",
|
|
ValidateSignature<auto(SizedFloatT, SizedFloatT)->SizedFloatT>};
|
|
|
|
// "float.add_assign": float in-place addition.
|
|
constexpr BuiltinInfo FloatAddAssign = {
|
|
"float.add_assign",
|
|
ValidateSignature<auto(PointerTo<SizedFloatT>, SizedFloatT)->NoReturn>};
|
|
|
|
// "float.sub_assign": float in-place subtraction.
|
|
constexpr BuiltinInfo FloatSubAssign = {
|
|
"float.sub_assign",
|
|
ValidateSignature<auto(PointerTo<SizedFloatT>, SizedFloatT)->NoReturn>};
|
|
|
|
// "float.mul_assign": float in-place multiplication.
|
|
constexpr BuiltinInfo FloatMulAssign = {
|
|
"float.mul_assign",
|
|
ValidateSignature<auto(PointerTo<SizedFloatT>, SizedFloatT)->NoReturn>};
|
|
|
|
// "float.div_assign": float in-place division.
|
|
constexpr BuiltinInfo FloatDivAssign = {
|
|
"float.div_assign",
|
|
ValidateSignature<auto(PointerTo<SizedFloatT>, SizedFloatT)->NoReturn>};
|
|
|
|
// Converts between floating-point types, with a diagnostic if the value doesn't
|
|
// fit.
|
|
constexpr BuiltinInfo FloatConvertChecked = {
|
|
"float.convert_checked", ValidateSignature<auto(FloatT)->FloatU>};
|
|
|
|
// "float.eq": float equality comparison.
|
|
constexpr BuiltinInfo FloatEq = {
|
|
"float.eq", ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "float.neq": float non-equality comparison.
|
|
constexpr BuiltinInfo FloatNeq = {
|
|
"float.neq", ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "float.less": float less than comparison.
|
|
constexpr BuiltinInfo FloatLess = {
|
|
"float.less", ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "float.less_eq": float less than or equal comparison.
|
|
constexpr BuiltinInfo FloatLessEq = {
|
|
"float.less_eq", ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "float.greater": float greater than comparison.
|
|
constexpr BuiltinInfo FloatGreater = {
|
|
"float.greater", ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "float.greater_eq": float greater than or equal comparison.
|
|
constexpr BuiltinInfo FloatGreaterEq = {
|
|
"float.greater_eq",
|
|
ValidateSignature<auto(SizedFloatT, SizedFloatT)->Bool>};
|
|
|
|
// "bool.eq": bool equality comparison.
|
|
constexpr BuiltinInfo BoolEq = {"bool.eq",
|
|
ValidateSignature<auto(Bool, Bool)->Bool>};
|
|
|
|
// "bool.neq": bool non-equality comparison.
|
|
constexpr BuiltinInfo BoolNeq = {"bool.neq",
|
|
ValidateSignature<auto(Bool, Bool)->Bool>};
|
|
|
|
// "type.and": facet type combination.
|
|
constexpr BuiltinInfo TypeAnd = {"type.and",
|
|
ValidateSignature<auto(Type, Type)->Type>};
|
|
|
|
} // namespace BuiltinFunctionInfo
|
|
|
|
CARBON_DEFINE_ENUM_CLASS_NAMES(BuiltinFunctionKind) = {
|
|
#define CARBON_SEM_IR_BUILTIN_FUNCTION_KIND(Name) \
|
|
BuiltinFunctionInfo::Name.name,
|
|
#include "toolchain/sem_ir/builtin_function_kind.def"
|
|
};
|
|
|
|
// Returns the builtin function kind with the given name, or None if the name
|
|
// is unknown.
|
|
auto BuiltinFunctionKind::ForBuiltinName(llvm::StringRef name)
|
|
-> BuiltinFunctionKind {
|
|
#define CARBON_SEM_IR_BUILTIN_FUNCTION_KIND(Name) \
|
|
if (name == BuiltinFunctionInfo::Name.name) { \
|
|
return BuiltinFunctionKind::Name; \
|
|
}
|
|
#include "toolchain/sem_ir/builtin_function_kind.def"
|
|
return BuiltinFunctionKind::None;
|
|
}
|
|
|
|
auto BuiltinFunctionKind::IsValidType(const File& sem_ir,
|
|
llvm::ArrayRef<TypeId> arg_types,
|
|
TypeId return_type) const -> bool {
|
|
static constexpr ValidateFn* ValidateFns[] = {
|
|
#define CARBON_SEM_IR_BUILTIN_FUNCTION_KIND(Name) \
|
|
BuiltinFunctionInfo::Name.validate,
|
|
#include "toolchain/sem_ir/builtin_function_kind.def"
|
|
};
|
|
return ValidateFns[AsInt()](sem_ir, arg_types, return_type);
|
|
}
|
|
|
|
static auto IsLiteralType(const File& sem_ir, TypeId type_id) -> bool {
|
|
// Unwrap adapters.
|
|
type_id = sem_ir.types().GetTransitiveAdaptedType(type_id);
|
|
auto type_inst_id = sem_ir.types().GetAsInst(type_id);
|
|
return type_inst_id.Is<IntLiteralType>() ||
|
|
type_inst_id.Is<FloatLiteralType>();
|
|
}
|
|
|
|
// Determines whether a builtin call involves an integer or floating-point
|
|
// literal in its arguments or return type. If so, for many builtins we want to
|
|
// treat the call as being compile-time-only. This is because `Core.IntLiteral`
|
|
// and `Core.FloatLiteral` have an empty runtime representation, and a value of
|
|
// such a type isn't necessarily a compile-time constant, so an arbitrary
|
|
// runtime value of such a type may not have a value available for the builtin
|
|
// to use. For example, given:
|
|
//
|
|
// var n: Core.IntLiteral() = 123;
|
|
//
|
|
// we would be unable to lower a runtime operation such as `(1 as i32) << n`
|
|
// because the runtime representation of `n` doesn't track its value at all.
|
|
//
|
|
// For now, we treat all operations involving `Core.IntLiteral` or
|
|
// `Core.FloatLiteral` as being compile-time-only.
|
|
//
|
|
// TODO: We will need to accept things like `some_i32 << 5` eventually. We could
|
|
// allow builtin calls at runtime if all the IntLiteral arguments have constant
|
|
// values, or add logic to the prelude to promote the `IntLiteral` operand to a
|
|
// different type in such cases.
|
|
//
|
|
// TODO: For now, we also treat builtins *returning* `Core.IntLiteral` or
|
|
// `Core.FloatLiteral` as being compile-time-only. This is mostly done for
|
|
// simplicity, but should probably be revisited.
|
|
static auto AnyLiteralTypes(const File& sem_ir, llvm::ArrayRef<InstId> arg_ids,
|
|
TypeId return_type_id) -> bool {
|
|
if (IsLiteralType(sem_ir, return_type_id)) {
|
|
return true;
|
|
}
|
|
for (auto arg_id : arg_ids) {
|
|
if (IsLiteralType(sem_ir, sem_ir.insts().Get(arg_id).type_id())) {
|
|
return true;
|
|
}
|
|
}
|
|
return false;
|
|
}
|
|
|
|
auto BuiltinFunctionKind::IsCompTimeOnly(const File& sem_ir,
|
|
llvm::ArrayRef<InstId> arg_ids,
|
|
TypeId return_type_id) const -> bool {
|
|
switch (*this) {
|
|
case CharConvertChecked:
|
|
case FloatConvertChecked:
|
|
case IntConvertChecked:
|
|
// Checked conversions are compile-time only.
|
|
return true;
|
|
|
|
case IntConvert:
|
|
case IntSNegate:
|
|
case IntComplement:
|
|
case IntSAdd:
|
|
case IntSSub:
|
|
case IntSMul:
|
|
case IntSDiv:
|
|
case IntSMod:
|
|
case IntAnd:
|
|
case IntOr:
|
|
case IntXor:
|
|
case IntLeftShift:
|
|
case IntRightShift:
|
|
case IntEq:
|
|
case IntNeq:
|
|
case IntLess:
|
|
case IntLessEq:
|
|
case IntGreater:
|
|
case IntGreaterEq:
|
|
// Integer operations are compile-time-only if they involve literal types.
|
|
// See AnyLiteralTypes comment for explanation.
|
|
return AnyLiteralTypes(sem_ir, arg_ids, return_type_id);
|
|
|
|
case TypeAnd:
|
|
return true;
|
|
|
|
default:
|
|
// TODO: Should the sized MakeType functions be compile-time only? We
|
|
// can't produce diagnostics for bad sizes at runtime.
|
|
return false;
|
|
}
|
|
}
|
|
|
|
} // namespace Carbon::SemIR
|