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If the initializing representation is the same as the value representation, don't materialize a temporary and perform a value binding. Instead, directly extract the value, using a new `value_of_initializer` node. This removes a lot of redundant `alloca`s from our generated LLVM IR.
1025 lines
44 KiB
C++
1025 lines
44 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/convert.h"
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#include <string>
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#include <utility>
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#include "common/check.h"
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#include "llvm/ADT/STLExtras.h"
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#include "toolchain/check/context.h"
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#include "toolchain/diagnostics/diagnostic_kind.h"
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#include "toolchain/parse/node_kind.h"
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#include "toolchain/sem_ir/file.h"
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#include "toolchain/sem_ir/node.h"
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#include "toolchain/sem_ir/node_kind.h"
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namespace Carbon::Check {
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// Given an initializing expression, find its return slot. Returns `Invalid` if
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// there is no return slot, because the initialization is not performed in
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// place.
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static auto FindReturnSlotForInitializer(SemIR::File& sem_ir,
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SemIR::NodeId init_id)
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-> SemIR::NodeId {
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SemIR::Node init = sem_ir.nodes().Get(init_id);
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switch (init.kind()) {
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default:
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CARBON_FATAL() << "Initialization from unexpected node " << init;
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case SemIR::StructInit::Kind:
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case SemIR::TupleInit::Kind:
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// TODO: Track a return slot for these initializers.
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CARBON_FATAL() << init
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<< " should be created with its return slot already "
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"filled in properly";
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case SemIR::InitializeFrom::Kind: {
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return init.As<SemIR::InitializeFrom>().dest_id;
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}
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case SemIR::Call::Kind: {
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auto call = init.As<SemIR::Call>();
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if (!SemIR::GetInitializingRepresentation(sem_ir, call.type_id)
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.has_return_slot()) {
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return SemIR::NodeId::Invalid;
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}
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return sem_ir.node_blocks().Get(call.args_id).back();
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}
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case SemIR::ArrayInit::Kind: {
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return sem_ir.node_blocks()
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.Get(init.As<SemIR::ArrayInit>().inits_and_return_slot_id)
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.back();
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}
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}
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}
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// Marks the initializer `init_id` as initializing `target_id`.
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static auto MarkInitializerFor(SemIR::File& sem_ir, SemIR::NodeId init_id,
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SemIR::NodeId target_id,
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PendingBlock& target_block) -> void {
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auto return_slot_id = FindReturnSlotForInitializer(sem_ir, init_id);
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if (return_slot_id.is_valid()) {
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// Replace the temporary in the return slot with a reference to our target.
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CARBON_CHECK(sem_ir.nodes().Get(return_slot_id).kind() ==
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SemIR::TemporaryStorage::Kind)
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<< "Return slot for initializer does not contain a temporary; "
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<< "initialized multiple times? Have "
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<< sem_ir.nodes().Get(return_slot_id);
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target_block.MergeReplacing(return_slot_id, target_id);
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}
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}
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// Commits to using a temporary to store the result of the initializing
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// expression described by `init_id`, and returns the location of the
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// temporary. If `discarded` is `true`, the result is discarded, and no
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// temporary will be created if possible; if no temporary is created, the
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// return value will be `SemIR::NodeId::Invalid`.
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static auto FinalizeTemporary(Context& context, SemIR::NodeId init_id,
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bool discarded) -> SemIR::NodeId {
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auto& sem_ir = context.sem_ir();
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auto return_slot_id = FindReturnSlotForInitializer(sem_ir, init_id);
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if (return_slot_id.is_valid()) {
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// The return slot should already have a materialized temporary in it.
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CARBON_CHECK(sem_ir.nodes().Get(return_slot_id).kind() ==
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SemIR::TemporaryStorage::Kind)
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<< "Return slot for initializer does not contain a temporary; "
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<< "initialized multiple times? Have "
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<< sem_ir.nodes().Get(return_slot_id);
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auto init = sem_ir.nodes().Get(init_id);
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return context.AddNode(SemIR::Temporary{init.parse_node(), init.type_id(),
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return_slot_id, init_id});
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}
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if (discarded) {
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// Don't invent a temporary that we're going to discard.
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return SemIR::NodeId::Invalid;
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}
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// The initializer has no return slot, but we want to produce a temporary
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// object. Materialize one now.
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// TODO: Consider using an invalid ID to mean that we immediately
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// materialize and initialize a temporary, rather than two separate
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// nodes.
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auto init = sem_ir.nodes().Get(init_id);
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auto temporary_id = context.AddNode(
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SemIR::TemporaryStorage{init.parse_node(), init.type_id()});
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return context.AddNode(SemIR::Temporary{init.parse_node(), init.type_id(),
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temporary_id, init_id});
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}
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// Materialize a temporary to hold the result of the given expression if it is
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// an initializing expression.
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static auto MaterializeIfInitializing(Context& context, SemIR::NodeId expr_id)
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-> SemIR::NodeId {
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if (GetExpressionCategory(context.sem_ir(), expr_id) ==
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SemIR::ExpressionCategory::Initializing) {
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return FinalizeTemporary(context, expr_id, /*discarded=*/false);
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}
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return expr_id;
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}
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// Creates and adds a node to perform element access into an aggregate.
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template <typename AccessNodeT, typename NodeBlockT>
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static auto MakeElemAccessNode(Context& context, Parse::Node parse_node,
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SemIR::NodeId aggregate_id,
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SemIR::TypeId elem_type_id, NodeBlockT& block,
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std::size_t i) {
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if constexpr (std::is_same_v<AccessNodeT, SemIR::ArrayIndex>) {
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// TODO: Add a new node kind for indexing an array at a constant index
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// so that we don't need an integer literal node here, and remove this
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// special case.
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auto index_id = block.AddNode(SemIR::IntegerLiteral{
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parse_node, context.GetBuiltinType(SemIR::BuiltinKind::IntegerType),
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context.sem_ir().integers().Add(llvm::APInt(32, i))});
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return block.AddNode(
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AccessNodeT{parse_node, elem_type_id, aggregate_id, index_id});
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} else {
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return block.AddNode(AccessNodeT{parse_node, elem_type_id, aggregate_id,
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SemIR::MemberIndex(i)});
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}
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}
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// Converts an element of one aggregate so that it can be used as an element of
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// another aggregate.
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//
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// For the source: `src_id` is the source aggregate, `src_elem_type` is the
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// element type, `i` is the index, and `SourceAccessNodeT` is the kind of node
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// used to access the source element.
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//
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// For the target: `kind` is the kind of conversion or initialization,
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// `target_elem_type` is the element type. For initialization, `target_id` is
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// the destination, `target_block` is a pending block for target location
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// calculations that will be spliced as the return slot of the initializer if
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// necessary, `i` is the index, and `TargetAccessNodeT` is the kind of node
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// used to access the destination element.
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template <typename SourceAccessNodeT, typename TargetAccessNodeT>
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static auto ConvertAggregateElement(
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Context& context, Parse::Node parse_node, SemIR::NodeId src_id,
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SemIR::TypeId src_elem_type,
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llvm::ArrayRef<SemIR::NodeId> src_literal_elems,
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ConversionTarget::Kind kind, SemIR::NodeId target_id,
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SemIR::TypeId target_elem_type, PendingBlock* target_block, std::size_t i) {
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// Compute the location of the source element. This goes into the current code
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// block, not into the target block.
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// TODO: Ideally we would discard this node if it's unused.
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auto src_elem_id =
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!src_literal_elems.empty()
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? src_literal_elems[i]
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: MakeElemAccessNode<SourceAccessNodeT>(context, parse_node, src_id,
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src_elem_type, context, i);
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// If we're performing a conversion rather than an initialization, we won't
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// have or need a target.
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ConversionTarget target = {.kind = kind, .type_id = target_elem_type};
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if (!target.is_initializer()) {
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return Convert(context, parse_node, src_elem_id, target);
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}
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// Compute the location of the target element and initialize it.
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PendingBlock::DiscardUnusedNodesScope scope(target_block);
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target.init_block = target_block;
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target.init_id = MakeElemAccessNode<TargetAccessNodeT>(
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context, parse_node, target_id, target_elem_type, *target_block, i);
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return Convert(context, parse_node, src_elem_id, target);
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}
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namespace {
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// A handle to a new block that may be modified, with copy-on-write semantics.
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//
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// The constructor is given the ID of an existing block that provides the
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// initial contents of the new block. The new block is lazily allocated; if no
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// modifications have been made, the `id()` function will return the original
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// block ID.
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//
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// This is intended to avoid an unnecessary block allocation in the case where
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// the new block ends up being exactly the same as the original block.
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class CopyOnWriteBlock {
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public:
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// Constructs the block. If `source_id` is valid, it is used as the initial
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// value of the block. Otherwise, uninitialized storage for `size` elements
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// is allocated.
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CopyOnWriteBlock(SemIR::File& file, SemIR::NodeBlockId source_id, size_t size)
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: file_(file), source_id_(source_id) {
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if (!source_id_.is_valid()) {
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id_ = file_.node_blocks().AddUninitialized(size);
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}
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}
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auto id() -> SemIR::NodeBlockId const { return id_; }
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auto Set(int i, SemIR::NodeId value) -> void {
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if (source_id_.is_valid() && file_.node_blocks().Get(id_)[i] == value) {
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return;
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}
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if (id_ == source_id_) {
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id_ = file_.node_blocks().Add(file_.node_blocks().Get(source_id_));
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}
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file_.node_blocks().Get(id_)[i] = value;
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}
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private:
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SemIR::File& file_;
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SemIR::NodeBlockId source_id_;
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SemIR::NodeBlockId id_ = source_id_;
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};
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} // namespace
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// Performs a conversion from a tuple to an array type. Does not perform a
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// final conversion to the requested expression category.
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static auto ConvertTupleToArray(Context& context, SemIR::TupleType tuple_type,
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SemIR::ArrayType array_type,
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SemIR::NodeId value_id, ConversionTarget target)
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-> SemIR::NodeId {
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auto& sem_ir = context.sem_ir();
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auto tuple_elem_types = sem_ir.type_blocks().Get(tuple_type.elements_id);
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auto value = sem_ir.nodes().Get(value_id);
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// If we're initializing from a tuple literal, we will use its elements
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// directly. Otherwise, materialize a temporary if needed and index into the
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// result.
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llvm::ArrayRef<SemIR::NodeId> literal_elems;
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if (auto tuple_literal = value.TryAs<SemIR::TupleLiteral>()) {
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literal_elems = sem_ir.node_blocks().Get(tuple_literal->elements_id);
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} else {
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value_id = MaterializeIfInitializing(context, value_id);
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}
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// Check that the tuple is the right size.
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uint64_t array_bound = sem_ir.GetArrayBoundValue(array_type.bound_id);
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if (tuple_elem_types.size() != array_bound) {
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CARBON_DIAGNOSTIC(
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ArrayInitFromLiteralArgCountMismatch, Error,
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"Cannot initialize array of {0} element(s) from {1} initializer(s).",
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uint64_t, size_t);
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CARBON_DIAGNOSTIC(ArrayInitFromExpressionArgCountMismatch, Error,
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"Cannot initialize array of {0} element(s) from tuple "
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"with {1} element(s).",
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uint64_t, size_t);
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context.emitter().Emit(value.parse_node(),
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literal_elems.empty()
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? ArrayInitFromExpressionArgCountMismatch
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: ArrayInitFromLiteralArgCountMismatch,
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array_bound, tuple_elem_types.size());
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return SemIR::NodeId::BuiltinError;
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}
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PendingBlock target_block_storage(context);
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PendingBlock* target_block =
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target.init_block ? target.init_block : &target_block_storage;
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// Arrays are always initialized in-place. Allocate a temporary as the
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// destination for the array initialization if we weren't given one.
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SemIR::NodeId return_slot_id = target.init_id;
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if (!target.init_id.is_valid()) {
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return_slot_id = target_block->AddNode(
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SemIR::TemporaryStorage{value.parse_node(), target.type_id});
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}
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// Initialize each element of the array from the corresponding element of the
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// tuple.
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// TODO: Annotate diagnostics coming from here with the array element index,
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// if initializing from a tuple literal.
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llvm::SmallVector<SemIR::NodeId> inits;
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inits.reserve(array_bound + 1);
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for (auto [i, src_type_id] : llvm::enumerate(tuple_elem_types)) {
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// TODO: This call recurses back into conversion. Switch to an iterative
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// approach.
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auto init_id =
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ConvertAggregateElement<SemIR::TupleAccess, SemIR::ArrayIndex>(
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context, value.parse_node(), value_id, src_type_id, literal_elems,
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ConversionTarget::FullInitializer, return_slot_id,
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array_type.element_type_id, target_block, i);
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if (init_id == SemIR::NodeId::BuiltinError) {
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return SemIR::NodeId::BuiltinError;
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}
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inits.push_back(init_id);
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}
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// The last element of the refs block contains the return slot for the array
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// initialization. Flush the temporary here if we didn't insert it earlier.
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target_block->InsertHere();
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inits.push_back(return_slot_id);
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return context.AddNode(SemIR::ArrayInit{value.parse_node(), target.type_id,
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value_id,
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sem_ir.node_blocks().Add(inits)});
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}
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// Performs a conversion from a tuple to a tuple type. Does not perform a
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// final conversion to the requested expression category.
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static auto ConvertTupleToTuple(Context& context, SemIR::TupleType src_type,
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SemIR::TupleType dest_type,
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SemIR::NodeId value_id, ConversionTarget target)
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-> SemIR::NodeId {
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auto& sem_ir = context.sem_ir();
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auto src_elem_types = sem_ir.type_blocks().Get(src_type.elements_id);
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auto dest_elem_types = sem_ir.type_blocks().Get(dest_type.elements_id);
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auto value = sem_ir.nodes().Get(value_id);
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// If we're initializing from a tuple literal, we will use its elements
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// directly. Otherwise, materialize a temporary if needed and index into the
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// result.
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llvm::ArrayRef<SemIR::NodeId> literal_elems;
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auto literal_elems_id = SemIR::NodeBlockId::Invalid;
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if (auto tuple_literal = value.TryAs<SemIR::TupleLiteral>()) {
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literal_elems_id = tuple_literal->elements_id;
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literal_elems = sem_ir.node_blocks().Get(literal_elems_id);
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} else {
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value_id = MaterializeIfInitializing(context, value_id);
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}
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// Check that the tuples are the same size.
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if (src_elem_types.size() != dest_elem_types.size()) {
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CARBON_DIAGNOSTIC(TupleInitElementCountMismatch, Error,
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"Cannot initialize tuple of {0} element(s) from tuple "
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"with {1} element(s).",
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size_t, size_t);
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context.emitter().Emit(value.parse_node(), TupleInitElementCountMismatch,
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dest_elem_types.size(), src_elem_types.size());
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return SemIR::NodeId::BuiltinError;
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}
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// If we're forming an initializer, then we want an initializer for each
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// element. Otherwise, we want a value representation for each element.
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// Perform a final destination store if we're performing an in-place
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// initialization.
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bool is_init = target.is_initializer();
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ConversionTarget::Kind inner_kind =
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!is_init ? ConversionTarget::Value
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: SemIR::GetInitializingRepresentation(sem_ir, target.type_id).kind ==
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SemIR::InitializingRepresentation::InPlace
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? ConversionTarget::FullInitializer
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: ConversionTarget::Initializer;
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// Initialize each element of the destination from the corresponding element
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// of the source.
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// TODO: Annotate diagnostics coming from here with the element index.
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CopyOnWriteBlock new_block(sem_ir, literal_elems_id, src_elem_types.size());
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for (auto [i, src_type_id, dest_type_id] :
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llvm::enumerate(src_elem_types, dest_elem_types)) {
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// TODO: This call recurses back into conversion. Switch to an iterative
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// approach.
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auto init_id =
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ConvertAggregateElement<SemIR::TupleAccess, SemIR::TupleAccess>(
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context, value.parse_node(), value_id, src_type_id, literal_elems,
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inner_kind, target.init_id, dest_type_id, target.init_block, i);
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if (init_id == SemIR::NodeId::BuiltinError) {
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return SemIR::NodeId::BuiltinError;
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}
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new_block.Set(i, init_id);
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}
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return is_init ? context.AddNode(SemIR::TupleInit{value.parse_node(),
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target.type_id, value_id,
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new_block.id()})
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: context.AddNode(SemIR::TupleValue{value.parse_node(),
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target.type_id, value_id,
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new_block.id()});
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}
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// Performs a conversion from a struct to a struct type. Does not perform a
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// final conversion to the requested expression category.
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static auto ConvertStructToStruct(Context& context, SemIR::StructType src_type,
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SemIR::StructType dest_type,
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SemIR::NodeId value_id,
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ConversionTarget target) -> SemIR::NodeId {
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auto& sem_ir = context.sem_ir();
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auto src_elem_fields = sem_ir.node_blocks().Get(src_type.fields_id);
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auto dest_elem_fields = sem_ir.node_blocks().Get(dest_type.fields_id);
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auto value = sem_ir.nodes().Get(value_id);
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// If we're initializing from a struct literal, we will use its elements
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// directly. Otherwise, materialize a temporary if needed and index into the
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// result.
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llvm::ArrayRef<SemIR::NodeId> literal_elems;
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auto literal_elems_id = SemIR::NodeBlockId::Invalid;
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if (auto struct_literal = value.TryAs<SemIR::StructLiteral>()) {
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literal_elems_id = struct_literal->elements_id;
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literal_elems = sem_ir.node_blocks().Get(literal_elems_id);
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} else {
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value_id = MaterializeIfInitializing(context, value_id);
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}
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// Check that the structs are the same size.
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// TODO: If not, include the name of the first source field that doesn't
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// exist in the destination or vice versa in the diagnostic.
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if (src_elem_fields.size() != dest_elem_fields.size()) {
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CARBON_DIAGNOSTIC(StructInitElementCountMismatch, Error,
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"Cannot initialize struct of {0} element(s) from struct "
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"with {1} element(s).",
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size_t, size_t);
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context.emitter().Emit(value.parse_node(), StructInitElementCountMismatch,
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dest_elem_fields.size(), src_elem_fields.size());
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return SemIR::NodeId::BuiltinError;
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}
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// Prepare to look up fields in the source by index.
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llvm::SmallDenseMap<StringId, int32_t> src_field_indexes;
|
|
if (src_type.fields_id != dest_type.fields_id) {
|
|
for (auto [i, field_id] : llvm::enumerate(src_elem_fields)) {
|
|
auto [it, added] = src_field_indexes.insert(
|
|
{context.nodes().GetAs<SemIR::StructTypeField>(field_id).name_id, i});
|
|
CARBON_CHECK(added) << "Duplicate field in source structure";
|
|
}
|
|
}
|
|
|
|
// If we're forming an initializer, then we want an initializer for each
|
|
// element. Otherwise, we want a value representation for each element.
|
|
// Perform a final destination store if we're performing an in-place
|
|
// initialization.
|
|
bool is_init = target.is_initializer();
|
|
ConversionTarget::Kind inner_kind =
|
|
!is_init ? ConversionTarget::Value
|
|
: SemIR::GetInitializingRepresentation(sem_ir, target.type_id).kind ==
|
|
SemIR::InitializingRepresentation::InPlace
|
|
? ConversionTarget::FullInitializer
|
|
: ConversionTarget::Initializer;
|
|
|
|
// Initialize each element of the destination from the corresponding element
|
|
// of the source.
|
|
// TODO: Annotate diagnostics coming from here with the element index.
|
|
CopyOnWriteBlock new_block(sem_ir, literal_elems_id, src_elem_fields.size());
|
|
for (auto [i, dest_field_id] : llvm::enumerate(dest_elem_fields)) {
|
|
auto dest_field =
|
|
sem_ir.nodes().GetAs<SemIR::StructTypeField>(dest_field_id);
|
|
|
|
// Find the matching source field.
|
|
auto src_field_index = i;
|
|
if (src_type.fields_id != dest_type.fields_id) {
|
|
auto src_field_it = src_field_indexes.find(dest_field.name_id);
|
|
if (src_field_it == src_field_indexes.end()) {
|
|
if (literal_elems_id.is_valid()) {
|
|
CARBON_DIAGNOSTIC(
|
|
StructInitMissingFieldInLiteral, Error,
|
|
"Missing value for field `{0}` in struct initialization.",
|
|
llvm::StringRef);
|
|
context.emitter().Emit(value.parse_node(),
|
|
StructInitMissingFieldInLiteral,
|
|
sem_ir.strings().Get(dest_field.name_id));
|
|
} else {
|
|
CARBON_DIAGNOSTIC(StructInitMissingFieldInConversion, Error,
|
|
"Cannot convert from struct type `{0}` to `{1}`: "
|
|
"missing field `{2}` in source type.",
|
|
std::string, std::string, llvm::StringRef);
|
|
context.emitter().Emit(value.parse_node(),
|
|
StructInitMissingFieldInConversion,
|
|
sem_ir.StringifyType(value.type_id()),
|
|
sem_ir.StringifyType(target.type_id),
|
|
sem_ir.strings().Get(dest_field.name_id));
|
|
}
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
src_field_index = src_field_it->second;
|
|
}
|
|
auto src_field = sem_ir.nodes().GetAs<SemIR::StructTypeField>(
|
|
src_elem_fields[src_field_index]);
|
|
|
|
// TODO: This call recurses back into conversion. Switch to an iterative
|
|
// approach.
|
|
auto init_id =
|
|
ConvertAggregateElement<SemIR::StructAccess, SemIR::StructAccess>(
|
|
context, value.parse_node(), value_id, src_field.field_type_id,
|
|
literal_elems, inner_kind, target.init_id, dest_field.field_type_id,
|
|
target.init_block, src_field_index);
|
|
if (init_id == SemIR::NodeId::BuiltinError) {
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
new_block.Set(i, init_id);
|
|
}
|
|
|
|
return is_init ? context.AddNode(SemIR::StructInit{value.parse_node(),
|
|
target.type_id, value_id,
|
|
new_block.id()})
|
|
: context.AddNode(SemIR::StructValue{value.parse_node(),
|
|
target.type_id, value_id,
|
|
new_block.id()});
|
|
}
|
|
|
|
// Returns whether `category` is a valid expression category to produce as a
|
|
// result of a conversion with kind `target_kind`, or at most needs a temporary
|
|
// to be materialized.
|
|
static bool IsValidExpressionCategoryForConversionTarget(
|
|
SemIR::ExpressionCategory category, ConversionTarget::Kind target_kind) {
|
|
switch (target_kind) {
|
|
case ConversionTarget::Value:
|
|
return category == SemIR::ExpressionCategory::Value;
|
|
case ConversionTarget::ValueOrReference:
|
|
case ConversionTarget::Discarded:
|
|
return category == SemIR::ExpressionCategory::Value ||
|
|
category == SemIR::ExpressionCategory::DurableReference ||
|
|
category == SemIR::ExpressionCategory::EphemeralReference ||
|
|
category == SemIR::ExpressionCategory::Initializing;
|
|
case ConversionTarget::ExplicitAs:
|
|
return true;
|
|
case ConversionTarget::Initializer:
|
|
case ConversionTarget::FullInitializer:
|
|
return category == SemIR::ExpressionCategory::Initializing;
|
|
}
|
|
}
|
|
|
|
static auto PerformBuiltinConversion(Context& context, Parse::Node parse_node,
|
|
SemIR::NodeId value_id,
|
|
ConversionTarget target) -> SemIR::NodeId {
|
|
auto& sem_ir = context.sem_ir();
|
|
auto value = sem_ir.nodes().Get(value_id);
|
|
auto value_type_id = value.type_id();
|
|
auto target_type_node =
|
|
sem_ir.nodes().Get(sem_ir.GetTypeAllowBuiltinTypes(target.type_id));
|
|
|
|
// Various forms of implicit conversion are supported as builtin conversions,
|
|
// either in addition to or instead of `impl`s of `ImplicitAs` in the Carbon
|
|
// prelude. There are a few reasons we need to perform some of these
|
|
// conversions as builtins:
|
|
//
|
|
// 1) Conversions from struct and tuple *literals* have special rules that
|
|
// cannot be implemented by invoking `ImplicitAs`. Specifically, we must
|
|
// recurse into the elements of the literal before performing
|
|
// initialization in order to avoid unnecessary conversions between
|
|
// expression categories that would be performed by `ImplicitAs.Convert`.
|
|
// 2) (Not implemented yet) Conversion of a facet to a facet type depends on
|
|
// the value of the facet, not only its type, and therefore cannot be
|
|
// modeled by `ImplicitAs`.
|
|
// 3) Some of these conversions are used while checking the library
|
|
// definition of `ImplicitAs` itself or implementations of it.
|
|
//
|
|
// We also expect to see better performance by avoiding an `impl` lookup for
|
|
// common conversions.
|
|
//
|
|
// TODO: We should provide a debugging flag to turn off as many of these
|
|
// builtin conversions as we can so that we can test that they do the same
|
|
// thing as the library implementations.
|
|
//
|
|
// The builtin conversions that correspond to `impl`s in the library all
|
|
// correspond to `final impl`s, so we don't need to worry about `ImplicitAs`
|
|
// being specialized in any of these cases.
|
|
|
|
// If the value is already of the right kind and expression category, there's
|
|
// nothing to do. Performing a conversion would decompose and rebuild tuples
|
|
// and structs, so it's important that we bail out early in this case.
|
|
if (value_type_id == target.type_id) {
|
|
auto value_cat = SemIR::GetExpressionCategory(sem_ir, value_id);
|
|
if (IsValidExpressionCategoryForConversionTarget(value_cat, target.kind)) {
|
|
return value_id;
|
|
}
|
|
|
|
// If the source is an initializing expression, we may be able to pull a
|
|
// value right out of it.
|
|
if (value_cat == SemIR::ExpressionCategory::Initializing &&
|
|
IsValidExpressionCategoryForConversionTarget(
|
|
SemIR::ExpressionCategory::Value, target.kind) &&
|
|
SemIR::GetInitializingRepresentation(sem_ir, value_type_id).kind ==
|
|
SemIR::InitializingRepresentation::ByCopy) {
|
|
auto value_rep = SemIR::GetValueRepresentation(sem_ir, value_type_id);
|
|
if (value_rep.kind == SemIR::ValueRepresentation::Copy &&
|
|
value_rep.type_id == value_type_id) {
|
|
// The initializer produces an object representation by copy, and the
|
|
// value representation is a copy of the object representation, so we
|
|
// already have a value of the right form.
|
|
return context.AddNode(
|
|
SemIR::ValueOfInitializer{parse_node, value_type_id, value_id});
|
|
}
|
|
}
|
|
}
|
|
|
|
// A tuple (T1, T2, ..., Tn) converts to (U1, U2, ..., Un) if each Ti
|
|
// converts to Ui.
|
|
if (auto target_tuple_type = target_type_node.TryAs<SemIR::TupleType>()) {
|
|
auto value_type_node =
|
|
sem_ir.nodes().Get(sem_ir.GetTypeAllowBuiltinTypes(value_type_id));
|
|
if (auto src_tuple_type = value_type_node.TryAs<SemIR::TupleType>()) {
|
|
return ConvertTupleToTuple(context, *src_tuple_type, *target_tuple_type,
|
|
value_id, target);
|
|
}
|
|
}
|
|
|
|
// A struct {.f_1: T_1, .f_2: T_2, ..., .f_n: T_n} converts to
|
|
// {.f_p(1): U_p(1), .f_p(2): U_p(2), ..., .f_p(n): U_p(n)} if
|
|
// (p(1), ..., p(n)) is a permutation of (1, ..., n) and each Ti converts
|
|
// to Ui.
|
|
if (auto target_struct_type = target_type_node.TryAs<SemIR::StructType>()) {
|
|
auto value_type_node =
|
|
sem_ir.nodes().Get(sem_ir.GetTypeAllowBuiltinTypes(value_type_id));
|
|
if (auto src_struct_type = value_type_node.TryAs<SemIR::StructType>()) {
|
|
return ConvertStructToStruct(context, *src_struct_type,
|
|
*target_struct_type, value_id, target);
|
|
}
|
|
}
|
|
|
|
// A tuple (T1, T2, ..., Tn) converts to [T; n] if each Ti converts to T.
|
|
if (auto target_array_type = target_type_node.TryAs<SemIR::ArrayType>()) {
|
|
auto value_type_node =
|
|
sem_ir.nodes().Get(sem_ir.GetTypeAllowBuiltinTypes(value_type_id));
|
|
if (auto src_tuple_type = value_type_node.TryAs<SemIR::TupleType>()) {
|
|
return ConvertTupleToArray(context, *src_tuple_type, *target_array_type,
|
|
value_id, target);
|
|
}
|
|
}
|
|
|
|
if (target.type_id == SemIR::TypeId::TypeType) {
|
|
// A tuple of types converts to type `type`.
|
|
// TODO: This should apply even for non-literal tuples.
|
|
if (auto tuple_literal = value.TryAs<SemIR::TupleLiteral>()) {
|
|
llvm::SmallVector<SemIR::TypeId> type_ids;
|
|
for (auto tuple_node_id :
|
|
sem_ir.node_blocks().Get(tuple_literal->elements_id)) {
|
|
// TODO: This call recurses back into conversion. Switch to an
|
|
// iterative approach.
|
|
type_ids.push_back(
|
|
ExpressionAsType(context, parse_node, tuple_node_id));
|
|
}
|
|
auto tuple_type_id =
|
|
context.CanonicalizeTupleType(parse_node, std::move(type_ids));
|
|
return sem_ir.GetTypeAllowBuiltinTypes(tuple_type_id);
|
|
}
|
|
|
|
// `{}` converts to `{} as type`.
|
|
// TODO: This conversion should also be performed for a non-literal value
|
|
// of type `{}`.
|
|
if (auto struct_literal = value.TryAs<SemIR::StructLiteral>();
|
|
struct_literal &&
|
|
struct_literal->elements_id == SemIR::NodeBlockId::Empty) {
|
|
value_id = sem_ir.GetTypeAllowBuiltinTypes(value_type_id);
|
|
}
|
|
}
|
|
|
|
// No builtin conversion applies.
|
|
return value_id;
|
|
}
|
|
|
|
// Given a value expression, form a corresponding initializer that copies from
|
|
// that value, if it is possible to do so.
|
|
static auto PerformCopy(Context& context, SemIR::NodeId expr_id)
|
|
-> SemIR::NodeId {
|
|
auto expr = context.nodes().Get(expr_id);
|
|
auto type_id = expr.type_id();
|
|
if (type_id == SemIR::TypeId::Error) {
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
// TODO: Directly track on the value representation whether it's a copy of
|
|
// the object representation.
|
|
auto value_rep = SemIR::GetValueRepresentation(context.sem_ir(), type_id);
|
|
if (value_rep.kind == SemIR::ValueRepresentation::Copy &&
|
|
value_rep.aggregate_kind == SemIR::ValueRepresentation::NotAggregate &&
|
|
value_rep.type_id == type_id) {
|
|
// For by-value scalar types, no explicit action is required. Initializing
|
|
// from a value expression is treated as copying the value.
|
|
return expr_id;
|
|
}
|
|
|
|
// TODO: We don't yet have rules for whether and when a class type is
|
|
// copyable, or how to perform the copy.
|
|
CARBON_DIAGNOSTIC(CopyOfUncopyableType, Error,
|
|
"Cannot copy value of type `{0}`.", std::string);
|
|
context.emitter().Emit(expr.parse_node(), CopyOfUncopyableType,
|
|
context.sem_ir().StringifyType(type_id));
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
auto Convert(Context& context, Parse::Node parse_node, SemIR::NodeId expr_id,
|
|
ConversionTarget target) -> SemIR::NodeId {
|
|
auto& sem_ir = context.sem_ir();
|
|
auto orig_expr_id = expr_id;
|
|
|
|
// Start by making sure both sides are valid. If any part is invalid, the
|
|
// result is invalid and we shouldn't error.
|
|
if (sem_ir.nodes().Get(expr_id).type_id() == SemIR::TypeId::Error ||
|
|
target.type_id == SemIR::TypeId::Error) {
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
if (SemIR::GetExpressionCategory(sem_ir, expr_id) ==
|
|
SemIR::ExpressionCategory::NotExpression) {
|
|
// TODO: We currently encounter this for use of namespaces and functions.
|
|
// We should provide a better diagnostic for inappropriate use of
|
|
// namespace names, and allow use of functions as values.
|
|
CARBON_DIAGNOSTIC(UseOfNonExpressionAsValue, Error,
|
|
"Expression cannot be used as a value.");
|
|
context.emitter().Emit(sem_ir.nodes().Get(expr_id).parse_node(),
|
|
UseOfNonExpressionAsValue);
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
// We can only perform initialization for complete types.
|
|
if (!context.TryToCompleteType(target.type_id, [&] {
|
|
CARBON_DIAGNOSTIC(IncompleteTypeInInitialization, Error,
|
|
"Initialization of incomplete type `{0}`.",
|
|
std::string);
|
|
CARBON_DIAGNOSTIC(IncompleteTypeInValueConversion, Error,
|
|
"Forming value of incomplete type `{0}`.",
|
|
std::string);
|
|
CARBON_DIAGNOSTIC(IncompleteTypeInConversion, Error,
|
|
"Invalid use of incomplete type `{0}`.", std::string);
|
|
return context.emitter().Build(
|
|
parse_node,
|
|
target.is_initializer() ? IncompleteTypeInInitialization
|
|
: target.kind == ConversionTarget::Value
|
|
? IncompleteTypeInValueConversion
|
|
: IncompleteTypeInConversion,
|
|
context.sem_ir().StringifyType(target.type_id, true));
|
|
})) {
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
// Check whether any builtin conversion applies.
|
|
expr_id = PerformBuiltinConversion(context, parse_node, expr_id, target);
|
|
if (expr_id == SemIR::NodeId::BuiltinError) {
|
|
return expr_id;
|
|
}
|
|
|
|
// If the types don't match at this point, we can't perform the conversion.
|
|
// TODO: Look for an `ImplicitAs` impl, or an `As` impl in the case where
|
|
// `target.kind == ConversionTarget::ExplicitAs`.
|
|
SemIR::Node expr = sem_ir.nodes().Get(expr_id);
|
|
if (expr.type_id() != target.type_id) {
|
|
CARBON_DIAGNOSTIC(ImplicitAsConversionFailure, Error,
|
|
"Cannot implicitly convert from `{0}` to `{1}`.",
|
|
std::string, std::string);
|
|
CARBON_DIAGNOSTIC(ExplicitAsConversionFailure, Error,
|
|
"Cannot convert from `{0}` to `{1}` with `as`.",
|
|
std::string, std::string);
|
|
context.emitter()
|
|
.Build(parse_node,
|
|
target.kind == ConversionTarget::ExplicitAs
|
|
? ExplicitAsConversionFailure
|
|
: ImplicitAsConversionFailure,
|
|
sem_ir.StringifyType(expr.type_id()),
|
|
sem_ir.StringifyType(target.type_id))
|
|
.Emit();
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
// For `as`, don't perform any value category conversions. In particular, an
|
|
// identity conversion shouldn't change the expression category.
|
|
if (target.kind == ConversionTarget::ExplicitAs) {
|
|
return expr_id;
|
|
}
|
|
|
|
// Now perform any necessary value category conversions.
|
|
switch (SemIR::GetExpressionCategory(sem_ir, expr_id)) {
|
|
case SemIR::ExpressionCategory::NotExpression:
|
|
case SemIR::ExpressionCategory::Mixed:
|
|
CARBON_FATAL() << "Unexpected expression " << expr
|
|
<< " after builtin conversions";
|
|
|
|
case SemIR::ExpressionCategory::Error:
|
|
return SemIR::NodeId::BuiltinError;
|
|
|
|
case SemIR::ExpressionCategory::Initializing:
|
|
if (target.is_initializer()) {
|
|
if (orig_expr_id == expr_id) {
|
|
// Don't fill in the return slot if we created the expression through
|
|
// a conversion. In that case, we will have created it with the
|
|
// target already set.
|
|
// TODO: Find a better way to track whether we need to do this.
|
|
MarkInitializerFor(sem_ir, expr_id, target.init_id,
|
|
*target.init_block);
|
|
}
|
|
break;
|
|
}
|
|
|
|
// Commit to using a temporary for this initializing expression.
|
|
// TODO: Don't create a temporary if the initializing representation
|
|
// is already a value representation.
|
|
expr_id = FinalizeTemporary(context, expr_id,
|
|
target.kind == ConversionTarget::Discarded);
|
|
// We now have an ephemeral reference.
|
|
[[fallthrough]];
|
|
|
|
case SemIR::ExpressionCategory::DurableReference:
|
|
case SemIR::ExpressionCategory::EphemeralReference:
|
|
// If a reference expression is an acceptable result, we're done.
|
|
if (target.kind == ConversionTarget::ValueOrReference ||
|
|
target.kind == ConversionTarget::Discarded) {
|
|
break;
|
|
}
|
|
|
|
// If we have a reference and don't want one, form a value binding.
|
|
// TODO: Support types with custom value representations.
|
|
expr_id = context.AddNode(
|
|
SemIR::BindValue{expr.parse_node(), expr.type_id(), expr_id});
|
|
// We now have a value expression.
|
|
[[fallthrough]];
|
|
|
|
case SemIR::ExpressionCategory::Value:
|
|
// When initializing from a value, perform a copy.
|
|
if (target.is_initializer()) {
|
|
expr_id = PerformCopy(context, expr_id);
|
|
}
|
|
break;
|
|
}
|
|
|
|
// Perform a final destination store, if necessary.
|
|
if (target.kind == ConversionTarget::FullInitializer) {
|
|
if (auto init_rep =
|
|
SemIR::GetInitializingRepresentation(sem_ir, target.type_id);
|
|
init_rep.kind == SemIR::InitializingRepresentation::ByCopy) {
|
|
target.init_block->InsertHere();
|
|
expr_id = context.AddNode(SemIR::InitializeFrom{
|
|
parse_node, target.type_id, expr_id, target.init_id});
|
|
}
|
|
}
|
|
|
|
return expr_id;
|
|
}
|
|
|
|
auto Initialize(Context& context, Parse::Node parse_node,
|
|
SemIR::NodeId target_id, SemIR::NodeId value_id)
|
|
-> SemIR::NodeId {
|
|
PendingBlock target_block(context);
|
|
return Convert(context, parse_node, value_id,
|
|
{.kind = ConversionTarget::Initializer,
|
|
.type_id = context.sem_ir().nodes().Get(target_id).type_id(),
|
|
.init_id = target_id,
|
|
.init_block = &target_block});
|
|
}
|
|
|
|
auto ConvertToValueExpression(Context& context, SemIR::NodeId expr_id)
|
|
-> SemIR::NodeId {
|
|
auto expr = context.sem_ir().nodes().Get(expr_id);
|
|
return Convert(context, expr.parse_node(), expr_id,
|
|
{.kind = ConversionTarget::Value, .type_id = expr.type_id()});
|
|
}
|
|
|
|
auto ConvertToValueOrReferenceExpression(Context& context,
|
|
SemIR::NodeId expr_id)
|
|
-> SemIR::NodeId {
|
|
auto expr = context.sem_ir().nodes().Get(expr_id);
|
|
return Convert(
|
|
context, expr.parse_node(), expr_id,
|
|
{.kind = ConversionTarget::ValueOrReference, .type_id = expr.type_id()});
|
|
}
|
|
|
|
auto ConvertToValueOfType(Context& context, Parse::Node parse_node,
|
|
SemIR::NodeId value_id, SemIR::TypeId type_id)
|
|
-> SemIR::NodeId {
|
|
return Convert(context, parse_node, value_id,
|
|
{.kind = ConversionTarget::Value, .type_id = type_id});
|
|
}
|
|
|
|
auto ConvertToBoolValue(Context& context, Parse::Node parse_node,
|
|
SemIR::NodeId value_id) -> SemIR::NodeId {
|
|
return ConvertToValueOfType(
|
|
context, parse_node, value_id,
|
|
context.GetBuiltinType(SemIR::BuiltinKind::BoolType));
|
|
}
|
|
|
|
auto ConvertForExplicitAs(Context& context, Parse::Node as_node,
|
|
SemIR::NodeId value_id, SemIR::TypeId type_id)
|
|
-> SemIR::NodeId {
|
|
return Convert(context, as_node, value_id,
|
|
{.kind = ConversionTarget::ExplicitAs, .type_id = type_id});
|
|
}
|
|
|
|
CARBON_DIAGNOSTIC(InCallToFunction, Note, "Calling function declared here.");
|
|
|
|
// Convert the object argument in a method call to match the `self` parameter.
|
|
static auto ConvertSelf(Context& context, Parse::Node call_parse_node,
|
|
Parse::Node callee_parse_node,
|
|
SemIR::SelfParameter self_param, SemIR::NodeId self_id)
|
|
-> SemIR::NodeId {
|
|
if (!self_id.is_valid()) {
|
|
CARBON_DIAGNOSTIC(MissingObjectInMethodCall, Error,
|
|
"Missing object argument in method call.");
|
|
context.emitter()
|
|
.Build(call_parse_node, MissingObjectInMethodCall)
|
|
.Note(callee_parse_node, InCallToFunction)
|
|
.Emit();
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
|
|
DiagnosticAnnotationScope annotate_diagnostics(
|
|
&context.emitter(), [&](auto& builder) {
|
|
CARBON_DIAGNOSTIC(
|
|
InCallToFunctionSelf, Note,
|
|
"Initializing `{0}` parameter of method declared here.",
|
|
llvm::StringLiteral);
|
|
builder.Note(self_param.parse_node, InCallToFunctionSelf,
|
|
self_param.is_addr_self.index
|
|
? llvm::StringLiteral("addr self")
|
|
: llvm::StringLiteral("self"));
|
|
});
|
|
|
|
// For `addr self`, take the address of the object argument.
|
|
auto self_or_addr_id = self_id;
|
|
if (self_param.is_addr_self.index) {
|
|
self_or_addr_id =
|
|
ConvertToValueOrReferenceExpression(context, self_or_addr_id);
|
|
auto self = context.nodes().Get(self_or_addr_id);
|
|
switch (SemIR::GetExpressionCategory(context.sem_ir(), self_id)) {
|
|
case SemIR::ExpressionCategory::Error:
|
|
case SemIR::ExpressionCategory::DurableReference:
|
|
case SemIR::ExpressionCategory::EphemeralReference:
|
|
break;
|
|
default:
|
|
CARBON_DIAGNOSTIC(AddrSelfIsNonReference, Error,
|
|
"`addr self` method cannot be invoked on a value.");
|
|
context.emitter().Emit(call_parse_node, AddrSelfIsNonReference);
|
|
return SemIR::NodeId::BuiltinError;
|
|
}
|
|
self_or_addr_id = context.AddNode(SemIR::AddressOf{
|
|
self.parse_node(),
|
|
context.GetPointerType(self.parse_node(), self.type_id()),
|
|
self_or_addr_id});
|
|
}
|
|
|
|
return ConvertToValueOfType(context, call_parse_node, self_or_addr_id,
|
|
self_param.type_id);
|
|
}
|
|
|
|
auto ConvertCallArgs(Context& context, Parse::Node call_parse_node,
|
|
SemIR::NodeId self_id,
|
|
llvm::ArrayRef<SemIR::NodeId> arg_refs,
|
|
SemIR::NodeId return_storage_id,
|
|
Parse::Node callee_parse_node,
|
|
SemIR::NodeBlockId implicit_param_refs_id,
|
|
SemIR::NodeBlockId param_refs_id) -> SemIR::NodeBlockId {
|
|
auto implicit_param_refs =
|
|
context.sem_ir().node_blocks().Get(implicit_param_refs_id);
|
|
auto param_refs = context.sem_ir().node_blocks().Get(param_refs_id);
|
|
|
|
// If sizes mismatch, fail early.
|
|
if (arg_refs.size() != param_refs.size()) {
|
|
CARBON_DIAGNOSTIC(CallArgCountMismatch, Error,
|
|
"{0} argument(s) passed to function expecting "
|
|
"{1} argument(s).",
|
|
int, int);
|
|
context.emitter()
|
|
.Build(call_parse_node, CallArgCountMismatch, arg_refs.size(),
|
|
param_refs.size())
|
|
.Note(callee_parse_node, InCallToFunction)
|
|
.Emit();
|
|
return SemIR::NodeBlockId::Invalid;
|
|
}
|
|
|
|
// Start building a block to hold the converted arguments.
|
|
llvm::SmallVector<SemIR::NodeId> args;
|
|
args.reserve(implicit_param_refs.size() + param_refs.size() +
|
|
return_storage_id.is_valid());
|
|
|
|
// Check implicit parameters.
|
|
for (auto implicit_param_id : implicit_param_refs) {
|
|
auto param = context.nodes().Get(implicit_param_id);
|
|
if (auto self_param = param.TryAs<SemIR::SelfParameter>()) {
|
|
auto converted_self_id = ConvertSelf(
|
|
context, call_parse_node, callee_parse_node, *self_param, self_id);
|
|
if (converted_self_id == SemIR::NodeId::BuiltinError) {
|
|
return SemIR::NodeBlockId::Invalid;
|
|
}
|
|
args.push_back(converted_self_id);
|
|
} else {
|
|
// TODO: Form argument values for implicit parameters.
|
|
context.TODO(call_parse_node, "Call with implicit parameters");
|
|
return SemIR::NodeBlockId::Invalid;
|
|
}
|
|
}
|
|
|
|
int diag_param_index;
|
|
DiagnosticAnnotationScope annotate_diagnostics(
|
|
&context.emitter(), [&](auto& builder) {
|
|
CARBON_DIAGNOSTIC(
|
|
InCallToFunctionParam, Note,
|
|
"Initializing parameter {0} of function declared here.", int);
|
|
builder.Note(callee_parse_node, InCallToFunctionParam,
|
|
diag_param_index + 1);
|
|
});
|
|
|
|
// Check type conversions per-element.
|
|
for (auto [i, arg_id, param_id] : llvm::enumerate(arg_refs, param_refs)) {
|
|
diag_param_index = i;
|
|
|
|
auto param_type_id = context.sem_ir().nodes().Get(param_id).type_id();
|
|
// TODO: Convert to the proper expression category. For now, we assume
|
|
// parameters are all `let` bindings.
|
|
auto converted_arg_id =
|
|
ConvertToValueOfType(context, call_parse_node, arg_id, param_type_id);
|
|
if (converted_arg_id == SemIR::NodeId::BuiltinError) {
|
|
return SemIR::NodeBlockId::Invalid;
|
|
}
|
|
|
|
args.push_back(converted_arg_id);
|
|
}
|
|
|
|
// Track the return storage, if present.
|
|
if (return_storage_id.is_valid()) {
|
|
args.push_back(return_storage_id);
|
|
}
|
|
|
|
return context.node_blocks().Add(args);
|
|
}
|
|
|
|
auto ExpressionAsType(Context& context, Parse::Node parse_node,
|
|
SemIR::NodeId value_id) -> SemIR::TypeId {
|
|
return context.CanonicalizeType(ConvertToValueOfType(
|
|
context, parse_node, value_id, SemIR::TypeId::TypeType));
|
|
}
|
|
|
|
} // namespace Carbon::Check
|