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toolchain/check/handle_loop_statement.cpp
319 строк
13 KB
Richard Smith
Destroy temporaries at the end of expression statements. (#7513)
16 июл 2026, 18:12
Не верифицирован
16 июл 2026, 18:12
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// Part of the Carbon Language project, under the Apache License v2.0 with LLVM // Exceptions. See /LICENSE for license information. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception #include "toolchain/check/call.h" #include "toolchain/check/context.h" #include "toolchain/check/control_flow.h" #include "toolchain/check/convert.h" #include "toolchain/check/core_identifier.h" #include "toolchain/check/full_pattern_stack.h" #include "toolchain/check/handle.h" #include "toolchain/check/inst.h" #include "toolchain/check/member_access.h" #include "toolchain/check/operator.h" #include "toolchain/check/pattern.h" #include "toolchain/check/pattern_match.h" #include "toolchain/check/type.h" #include "toolchain/sem_ir/absolute_node_ref.h" #include "toolchain/sem_ir/expr_info.h" #include "toolchain/sem_ir/ids.h" namespace Carbon::Check { // Starts emitting the loop header for a `while`-like looping construct. Returns // the loop header block ID. static auto StartLoopHeader(Context& context, Parse::NodeId node_id) -> SemIR::InstBlockId { // Branch to the loop header block. Note that we create a new block here even // if the current block is empty; this ensures that the loop always has a // preheader block. auto loop_header_id = AddDominatedBlockAndBranch(context, node_id); context.inst_block_stack().Pop(); // Start emitting the loop header block. context.inst_block_stack().Push(loop_header_id); context.region_stack().AddToRegion(loop_header_id, node_id); return loop_header_id; } // Starts emitting the loop body for a `while`-like looping construct. Converts // `cond_value_id` to bool and branches to the loop body if it is `true` and to // the loop exit if it is `false`. static auto BranchAndStartLoopBody(Context& context, Parse::NodeId node_id, SemIR::InstBlockId loop_header_id, ScopeStack::CleanupScopeDepth continue_depth, SemIR::InstId cond_value_id) -> void { cond_value_id = ConvertToBoolValue(context, node_id, cond_value_id); // Destroy any temporaries created computing the loop condition. AddAndDiscardTemporaryCleanups(context); // Branch to either the loop body or the loop exit block. auto loop_body_id = AddDominatedBlockAndBranchIf(context, node_id, cond_value_id); auto loop_exit_id = AddDominatedBlockAndBranch(context, node_id); context.inst_block_stack().Pop(); // Start emitting the loop body. context.inst_block_stack().Push(loop_body_id); context.region_stack().AddToRegion(loop_body_id, node_id); // Allow `break` and `continue` in this scope. `continue` will destroy // temporaries in the loop header, `break` will not, as the loop exit block // also destroys those temporaries. context.break_continue_stack().push_back( {.break_target = loop_exit_id, .break_depth = context.scope_stack().cleanup_scope_depth(), .continue_target = loop_header_id, .continue_depth = continue_depth}); } // Finishes emitting the body for a `while`-like loop. Adds a back-edge to the // loop header, and starts emitting in the loop exit block. static auto FinishLoopBody(Context& context, Parse::NodeId node_id) -> void { auto blocks = context.break_continue_stack().pop_back_val(); // Add the loop backedge. AddBranchWithCleanups(context, node_id, blocks.continue_target, blocks.continue_depth); context.inst_block_stack().Pop(); // Start emitting the loop exit block. context.scope_stack().DiscardCleanupsSince(blocks.break_depth); context.inst_block_stack().Push(blocks.break_target); context.region_stack().AddToRegion(blocks.break_target, node_id); // Clean up anything created in the loop header and pop the loop scope. AddAndDiscardScopeCleanups(context); context.scope_stack().Pop(/*check_unused=*/true); } // `while` // ------- auto HandleParseNode(Context& context, Parse::WhileConditionStartId node_id) -> bool { context.scope_stack().PushForSameRegion(ScopeStack::CleanupScopeKind::Owned); context.node_stack().Push(node_id, StartLoopHeader(context, node_id)); return true; } auto HandleParseNode(Context& context, Parse::WhileConditionId node_id) -> bool { auto cond_value_id = context.node_stack().PopExpr(); auto loop_header_id = context.node_stack().Pop<Parse::NodeKind::WhileConditionStart>(); // Branch to either the loop body or the loop exit block, and start emitting // the loop body. BranchAndStartLoopBody(context, node_id, loop_header_id, context.scope_stack().enclosing_cleanup_scope_depth(), cond_value_id); return true; } auto HandleParseNode(Context& context, Parse::WhileStatementId node_id) -> bool { FinishLoopBody(context, node_id); return true; } // `for` // ----- auto HandleParseNode(Context& context, Parse::ForHeaderStartId node_id) -> bool { // Create a scope that will eventually hold the range and cursor of the for // loop. context.scope_stack().PushForSameRegion(ScopeStack::CleanupScopeKind::Owned); // Create a scope for any variables introduced in the pattern. context.scope_stack().PushForSameRegion(ScopeStack::CleanupScopeKind::Owned); // Begin an implicit let declaration context for the pattern. context.decl_introducer_state_stack().Push<Lex::TokenKind::Let>(); context.pattern_block_stack().Push(); context.full_pattern_stack().PushNameBindingDecl(); BeginExprRegionForPattern(context); context.node_stack().Push(node_id); return true; } auto HandleParseNode(Context& context, Parse::ForInId node_id) -> bool { EndExprRegionForPattern(context, context.node_stack()); auto pattern_block_id = context.pattern_block_stack().Pop(); AddInst<SemIR::NameBindingDecl>(context, node_id, {.pattern_block_id = pattern_block_id}); context.decl_introducer_state_stack().Pop<Lex::TokenKind::Let>(); context.full_pattern_stack().StartPatternInitializer(); // Create a temporary scope to hold the range expression and the cursor. This // comes before the pattern in control flow order, but we'll reorder temporary // destruction later. context.scope_stack().PushForSameRegion(ScopeStack::CleanupScopeKind::Owned); return true; } // For a value or reference of type `Optional(T)`, call the given accessor. static auto CallOptionalAccessor(Context& context, Parse::NodeId node_id, SemIR::InstId optional_id, CoreIdentifier accessor_name) -> SemIR::InstId { auto accessor_name_id = context.core_identifiers().AddNameId(accessor_name); auto accessor_id = PerformMemberAccess(context, node_id, optional_id, accessor_name_id); return PerformCall(context, node_id, accessor_id, {}); } auto HandleParseNode(Context& context, Parse::ForHeaderId node_id) -> bool { auto range_id = context.node_stack().PopExpr(); auto pattern_id = context.node_stack().PopPattern(); auto start_node_id = context.node_stack().PopForSoloNodeId<Parse::NodeKind::ForHeaderStart>(); // Convert the range expression to a value or reference so that we can use it // multiple times. // TODO: If this produces a temporary, its lifetime should presumably be // extended to cover the loop body. range_id = ConvertToValueOrRefExpr(context, range_id); // Create the cursor variable. // TODO: Produce a custom diagnostic if the range operand can't be used as a // range. // TODO: We need to allocate the `VarStorage` before building the operator. // The current order risks violating the preconditions on `Initialize` and // risks violating the topological ordering of insts. auto cursor_id = BuildUnaryOperator(context, node_id, {.interface_name = CoreIdentifier::Iterate, .op_name = CoreIdentifier::NewCursor}, range_id); auto cursor_type_id = context.insts().Get(cursor_id).type_id(); PendingBlock cursor_var_block(&context); auto cursor_var_id = cursor_var_block.AddInstWithCleanup<SemIR::VarStorage>( node_id, {.type_id = cursor_type_id, .pattern_id = SemIR::AbsoluteInstId::None}); auto init_result = Initialize( context, node_id, // Disable broken lint that suggests a "fix" that doesn't compile. // NOLINTNEXTLINE(performance-move-const-arg) std::move(cursor_var_id), std::move(cursor_var_block), cursor_id); AddInst<SemIR::Assign>( context, node_id, {.lhs_id = init_result.storage_id, .rhs_id = init_result.init_id}); cursor_var_id = init_result.storage_id; // Now we're finished with the loop initialization, merge the scope containing // the range expression into its grandparent scope. The parent scope currently // contains the loop variables, whereas the current scope contains the range, // and that's backwards from a control flow and destruction order perspective. // We created the grandparent scope for this purpose when handling the // ForHeaderStart node. context.scope_stack().MergeTopScopeIntoGrandparentAndPop(); // Start emitting the loop header block. auto loop_header_id = StartLoopHeader(context, start_node_id); auto continue_depth = context.scope_stack().ambient_cleanup_scope_depth(); // Call `<range>.(Iterate.Next)(&cursor)`. auto cursor_type_inst_id = context.types().GetTypeInstId(cursor_type_id); auto cursor_addr_id = AddInst<SemIR::AddrOf>( context, node_id, {.type_id = GetPointerType(context, cursor_type_inst_id), .lvalue_id = cursor_var_id}); auto element_id = BuildBinaryOperator(context, node_id, {.interface_name = CoreIdentifier::Iterate, .op_name = CoreIdentifier::Next}, range_id, cursor_addr_id); // We need to convert away from an initializing expression in order to call // `HasValue` and then separately pattern-match against the element. // TODO: Instead, form a `.Some(pattern_id)` pattern and pattern-match against // that. element_id = ConvertToValueOrRefExpr(context, element_id); // Temporaries in the optional and loop variables live for the duration of the // loop body. context.scope_stack().DeferCleanups(); // Branch to the loop body if the optional element has a value. auto cond_value_id = CallOptionalAccessor(context, node_id, element_id, CoreIdentifier::HasValue); BranchAndStartLoopBody(context, node_id, loop_header_id, continue_depth, cond_value_id); // The loop pattern's initializer is now complete, and any bindings in it // should be in scope. context.full_pattern_stack().EndPatternInitializer(); // Initialize the pattern from `<element>.Get()`. auto element_value_id = CallOptionalAccessor(context, node_id, element_id, CoreIdentifier::Get); LocalPatternMatch(context, pattern_id, element_value_id); context.full_pattern_stack().PopFullPattern(); return true; } auto HandleParseNode(Context& context, Parse::ForStatementId node_id) -> bool { FinishLoopBody(context, node_id); // Pop the scope that the range and cursor live in. AddAndDiscardScopeCleanups(context); context.scope_stack().Pop(/*check_unused=*/true); return true; } // `break` // ------- auto HandleParseNode(Context& context, Parse::BreakStatementStartId node_id) -> bool { auto& stack = context.break_continue_stack(); if (stack.empty()) { CARBON_DIAGNOSTIC(BreakOutsideLoop, Error, "`break` can only be used in a loop"); context.emitter().Emit(node_id, BreakOutsideLoop); } else { AddBranchWithCleanups(context, node_id, stack.back().break_target, stack.back().break_depth); } context.inst_block_stack().Pop(); context.inst_block_stack().PushUnreachable(); return true; } auto HandleParseNode(Context& /*context*/, Parse::BreakStatementId /*node_id*/) -> bool { return true; } // `continue` // ---------- auto HandleParseNode(Context& context, Parse::ContinueStatementStartId node_id) -> bool { auto& stack = context.break_continue_stack(); if (stack.empty()) { CARBON_DIAGNOSTIC(ContinueOutsideLoop, Error, "`continue` can only be used in a loop"); context.emitter().Emit(node_id, ContinueOutsideLoop); } else { AddBranchWithCleanups(context, node_id, stack.back().continue_target, stack.back().continue_depth); } context.inst_block_stack().Pop(); context.inst_block_stack().PushUnreachable(); return true; } auto HandleParseNode(Context& /*context*/, Parse::ContinueStatementId /*node_id*/) -> bool { return true; } } // namespace Carbon::Check