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In the C++ sources it is slightly more convenient to dump to stderr than to print to stdout, but it is rather more unsightly to print to stderr from the Swift sources. Switch to stdout. Also allows the dump functions to be marked debug only.
535 lines
18 KiB
C++
535 lines
18 KiB
C++
//=====-- ShrinkBorrowScope.cpp - Hoist end_borrows to deinit barriers. -=====//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2022 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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/// Shrink borrow scopes by hoisting end_borrows up to deinit barriers. After
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/// this is done, CanonicalizeOSSALifetime is free to hoist the destroys of the
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/// owned value up to the end_borrow. In this way, the lexical lifetime of
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/// guaranteed values is preserved.
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//===----------------------------------------------------------------------===//
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#include "swift/AST/Builtins.h"
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#include "swift/SIL/MemAccessUtils.h"
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#include "swift/SIL/OwnershipUtils.h"
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#include "swift/SIL/SILBasicBlock.h"
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#include "swift/SIL/SILInstruction.h"
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#include "swift/SIL/Test.h"
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#include "swift/SILOptimizer/Analysis/BasicCalleeAnalysis.h"
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#include "swift/SILOptimizer/Analysis/Reachability.h"
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#include "swift/SILOptimizer/Analysis/VisitBarrierAccessScopes.h"
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#include "swift/SILOptimizer/PassManager/Transforms.h"
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#include "swift/SILOptimizer/Utils/CanonicalizeBorrowScope.h"
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#include "swift/SILOptimizer/Utils/InstOptUtils.h"
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#include "swift/SILOptimizer/Utils/InstructionDeleter.h"
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#include "llvm/ADT/STLExtras.h"
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#define DEBUG_TYPE "copy-propagation"
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using namespace swift;
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//===----------------------------------------------------------------------===//
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// MARK: ShrinkBorrowScope
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//===----------------------------------------------------------------------===//
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namespace ShrinkBorrowScope {
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/// The environment within which to hoist.
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struct Context final {
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/// The instruction that begins the borrow scope.
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BeginBorrowInst const &introducer;
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/// BorrowedValue(introducer)
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BorrowedValue const borrowedValue;
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/// The value whose lifetime is guaranteed by the lexical borrow scope.
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///
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/// introducer->getOperand()
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SILValue const borrowee;
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SILBasicBlock *defBlock;
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SILFunction &function;
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/// The copy_value instructions that the utility creates or changes.
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///
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/// Clients provide this so that they can update worklists in response.
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SmallVectorImpl<CopyValueInst *> &modifiedCopyValueInsts;
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InstructionDeleter &deleter;
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BasicCalleeAnalysis *calleeAnalysis;
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Context(BeginBorrowInst const &introducer,
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SmallVectorImpl<CopyValueInst *> &modifiedCopyValueInsts,
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InstructionDeleter &deleter, BasicCalleeAnalysis *calleeAnalysis)
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: introducer(introducer), borrowedValue(BorrowedValue(&introducer)),
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borrowee(introducer.getOperand()), defBlock(introducer.getParent()),
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function(*introducer.getFunction()),
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modifiedCopyValueInsts(modifiedCopyValueInsts), deleter(deleter),
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calleeAnalysis(calleeAnalysis) {}
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Context(Context const &) = delete;
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Context &operator=(Context const &) = delete;
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};
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/// How %lifetime gets used.
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struct Usage final {
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/// Instructions which are users of the simple (i.e. not reborrowed) extended
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/// i.e. copied lifetime of the introducer.
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SmallPtrSet<SILInstruction *, 16> users;
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// The instructions from which the shrinking starts, the scope ending
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// instructions.
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llvm::SmallSetVector<SILInstruction *, 4> ends;
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Usage(){};
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Usage(Usage const &) = delete;
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Usage &operator=(Usage const &) = delete;
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};
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/// Identify scope ending uses and extended users of %lifetime.
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///
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/// returns true if all uses were found
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/// false otherwise
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bool findUsage(Context const &context, Usage &usage) {
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llvm::SmallVector<SILInstruction *, 16> scopeEndingInsts;
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context.borrowedValue.getLocalScopeEndingInstructions(scopeEndingInsts);
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// Add all the end_borrows to the collection of ends.
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for (auto *instruction : scopeEndingInsts) {
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// If a scope ending instruction is not an end_borrow, bail out.
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if (!isa<EndBorrowInst>(instruction))
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return false;
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usage.ends.insert(instruction);
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}
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SmallVector<Operand *, 16> uses;
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if (!findExtendedUsesOfSimpleBorrowedValue(context.borrowedValue, &uses)) {
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// If the value produced by begin_borrow escapes, don't shrink the borrow
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// scope.
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return false;
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}
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for (auto *use : uses) {
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usage.users.insert(use->getUser());
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}
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return true;
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}
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/// How end_borrow hoisting is obstructed.
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struct DeinitBarriers final {
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/// Copies to be rewritten as copies of %borrowee.
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SmallVector<CopyValueInst *, 4> copies;
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/// Instructions above which end_borrows cannot be hoisted.
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SmallVector<SILInstruction *, 4> instructions;
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/// Blocks one of whose phis is a barrier and consequently out of which
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/// end_borrows cannot be hoisted.
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SmallVector<SILBasicBlock *, 4> phis;
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/// Blocks whose single predecessors has another successor to the top of which
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/// end_borrows cannot be hoisted.
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SmallVector<SILBasicBlock *, 4> blocks;
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DeinitBarriers(Context &context) {}
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DeinitBarriers(DeinitBarriers const &) = delete;
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DeinitBarriers &operator=(DeinitBarriers const &) = delete;
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};
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class BarrierAccessScopeFinder;
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/// Works backwards from the current location of end_borrows to the earliest
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/// place they can be hoisted to.
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///
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/// Implements IterativeBackwardReachability::Effects.
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/// Implements IterativeBackwardReachability::findBarrier::Visitor.
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/// Implements VisitBarrierAccessScopes::Effects
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class Dataflow final {
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public:
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using Reachability = IterativeBackwardReachability<Dataflow>;
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using Effect = Reachability::Effect;
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private:
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Context const &context;
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Usage const &uses;
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DeinitBarriers &barriers;
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Reachability::Result result;
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Reachability reachability;
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SmallPtrSet<BeginAccessInst *, 8> barrierAccessScopes;
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bool recordCopies = false;
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enum class Classification { Barrier, Copy, Other };
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public:
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Dataflow(Context const &context, Usage const &uses, DeinitBarriers &barriers)
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: context(context), uses(uses), barriers(barriers),
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result(&context.function),
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reachability(Reachability::untilInitialBlock(
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&context.function, context.defBlock, *this, result)) {}
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Dataflow(Dataflow const &) = delete;
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Dataflow &operator=(Dataflow const &) = delete;
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void run();
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private:
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friend Reachability;
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friend class BarrierAccessScopeFinder;
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friend class VisitBarrierAccessScopes<Dataflow, BarrierAccessScopeFinder>;
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Classification classifyInstruction(SILInstruction *);
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bool classificationIsBarrier(Classification);
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/// IterativeBackwardReachability::Effects
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/// VisitBarrierAccessScopes::Effects
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auto gens() { return uses.ends; }
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Effect effectForInstruction(SILInstruction *);
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Effect effectForPhi(SILBasicBlock *);
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/// VisitBarrierAccessScopes::Effects
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auto localGens() { return result.localGens; }
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bool isLocalGen(SILInstruction *instruction) {
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return result.localGens.contains(instruction);
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}
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/// IterativeBackwardReachability::findBarrier::Visitor.
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void visitBarrierInstruction(SILInstruction *instruction) {
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barriers.instructions.push_back(instruction);
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}
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void visitBarrierPhi(SILBasicBlock *block) { barriers.phis.push_back(block); }
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void visitBarrierBlock(SILBasicBlock *block) {
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barriers.blocks.push_back(block);
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}
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void visitInitialBlock(SILBasicBlock *block) {
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barriers.blocks.push_back(block);
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}
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};
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/// Whether the specified value is %lifetime or its iterated copy_value.
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///
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/// In other words, it has to be a simple extended def of %lifetime.
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bool isSimpleExtendedIntroducerDef(Context const &context, SILValue value) {
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while (true) {
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auto *instruction = value.getDefiningInstruction();
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if (!instruction)
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return false;
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if (instruction == &context.introducer)
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return true;
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if (auto *cvi = dyn_cast<CopyValueInst>(instruction)) {
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value = cvi->getOperand();
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continue;
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}
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return false;
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}
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}
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Dataflow::Classification
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Dataflow::classifyInstruction(SILInstruction *instruction) {
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if (instruction == &context.introducer) {
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return Classification::Barrier;
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}
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if (auto *cvi = dyn_cast<CopyValueInst>(instruction)) {
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if (isSimpleExtendedIntroducerDef(context, cvi->getOperand())) {
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return Classification::Copy;
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}
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}
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if (uses.users.contains(instruction)) {
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return Classification::Barrier;
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}
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if (auto *eai = dyn_cast<EndAccessInst>(instruction)) {
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return barrierAccessScopes.contains(eai->getBeginAccess())
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? Classification::Barrier
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: Classification::Other;
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}
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if (isDeinitBarrier(instruction, context.calleeAnalysis)) {
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return Classification::Barrier;
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}
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return Classification::Other;
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}
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bool Dataflow::classificationIsBarrier(Classification classification) {
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switch (classification) {
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case Classification::Barrier:
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return true;
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case Classification::Copy:
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case Classification::Other:
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return false;
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}
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llvm_unreachable("exhaustive switch not exhaustive?!");
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}
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Dataflow::Effect Dataflow::effectForInstruction(SILInstruction *instruction) {
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if (uses.ends.contains(instruction))
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return Effect::Gen();
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auto classification = classifyInstruction(instruction);
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if (recordCopies && classification == Classification::Copy)
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barriers.copies.push_back(cast<CopyValueInst>(instruction));
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return classificationIsBarrier(classification) ? Effect::Kill()
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: Effect::NoEffect();
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}
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Dataflow::Effect Dataflow::effectForPhi(SILBasicBlock *block) {
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assert(llvm::all_of(block->getArguments(),
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[&](auto argument) { return PhiValue(argument); }));
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bool isBarrier =
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llvm::any_of(block->getPredecessorBlocks(), [&](auto *predecessor) {
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return classificationIsBarrier(
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classifyInstruction(predecessor->getTerminator()));
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});
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return isBarrier ? Effect::Kill() : Effect::NoEffect();
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}
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/// Finds end_access instructions which are barriers to hoisting because the
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/// access scopes they contain barriers to hoisting. Hoisting end_borrows into
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/// such access scopes could introduce exclusivity violations.
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///
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/// Implements BarrierAccessScopeFinder::Visitor
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class BarrierAccessScopeFinder final {
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using Impl = VisitBarrierAccessScopes<Dataflow, BarrierAccessScopeFinder>;
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Impl impl;
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Dataflow &dataflow;
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public:
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BarrierAccessScopeFinder(Context const &context, Dataflow &dataflow)
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: impl(&context.function, dataflow, *this), dataflow(dataflow) {}
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void find() { impl.visit(); }
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private:
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friend Impl;
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bool isInRegion(SILBasicBlock *block) {
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return dataflow.result.discoveredBlocks.contains(block);
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}
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void visitBarrierAccessScope(BeginAccessInst *bai) {
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dataflow.barrierAccessScopes.insert(bai);
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for (auto *eai : bai->getEndAccesses()) {
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dataflow.reachability.addKill(eai);
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}
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}
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};
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void Dataflow::run() {
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reachability.initialize();
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BarrierAccessScopeFinder finder(context, *this);
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finder.find();
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reachability.solve();
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recordCopies = true;
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reachability.findBarriers(*this);
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}
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/// Hoist the scope ends of %lifetime, rewriting copies and borrows along the
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/// way.
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class Rewriter final {
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Context &context;
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Usage const &uses;
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DeinitBarriers const &barriers;
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// The end _borrow instructions for this borrow scope that existed before
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// ShrinkBorrowScope ran and which were not modified.
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llvm::SmallPtrSet<SILInstruction *, 8> reusedEndBorrowInsts;
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public:
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Rewriter(Context &context, Usage const &uses, DeinitBarriers const &barriers)
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: context(context), uses(uses), barriers(barriers) {}
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Rewriter(Rewriter const &) = delete;
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Rewriter &operator=(Rewriter const &) = delete;
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bool run();
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private:
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EndBorrowInst *findPreexistingEndBorrow(SILInstruction *instruction);
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bool createEndBorrow(SILInstruction *insertionPoint);
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};
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bool Rewriter::run() {
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bool madeChange = false;
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for (auto *cvi : barriers.copies) {
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cvi->setOperand(context.borrowee);
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context.modifiedCopyValueInsts.push_back(cvi);
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madeChange = true;
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}
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// Add end_borrows for phi barrier boundaries.
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//
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// A block is a phi barrier iff any of its predecessors' terminators get
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// classified as barriers. That happens when a copy of %lifetime is passed
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// to a phi.
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for (auto *block : barriers.phis) {
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madeChange |= createEndBorrow(&block->front());
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}
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// Add end_borrows for barrier boundaries.
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//
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// Insert end_borrows after every non-terminator barrier.
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//
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// For terminator barriers, add end_borrows at the beginning of the successor
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// blocks. In order to reach a terminator and classify it as a barrier, all
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// of a block P's successors B had reachable beginnings. If any of them
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// didn't, then BackwardReachability::meetOverSuccessors would never have
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// returned true for P, so none of its instructions would ever have been
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// classified (except for via effectForPhi, which doesn't record terminator
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// barriers).
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for (auto instruction : barriers.instructions) {
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if (auto *terminator = dyn_cast<TermInst>(instruction)) {
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auto successors = terminator->getParentBlock()->getSuccessorBlocks();
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for (auto *successor : successors) {
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// If a terminator is a barrier, it must not branch to a merge point.
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// Doing so would require one of the following:
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// - the terminator was passed a phi--which is handled by barriers.phis
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// - the terminator had a result--which can't happen thanks to the lack
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// of critical edges
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// - the terminator was a BranchInst which was passed no arguments but
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// which was nonetheless identified as a barrier--which is illegal
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assert(successor->getSinglePredecessorBlock() ==
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terminator->getParentBlock());
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madeChange |= createEndBorrow(&successor->front());
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}
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} else {
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auto *next = instruction->getNextInstruction();
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assert(next);
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madeChange |= createEndBorrow(next);
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}
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}
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// Add end_borrows for control-flow boundaries.
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//
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// Insert end_borrows at the beginning of blocks which were preceded by a
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// control flow branch (and which, thanks to the lack of critical edges,
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// don't have multiple predecessors) whose end was not reachable (because
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// reachability was not able to make it to the top of some other successor).
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//
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// In other words, a control flow boundary is the target block of the edge
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// to a block B from its single predecessor P not all of whose successors S
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// in succ(P) had reachable beginnings. We witness that fact about P's
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// successors by way of P not having a reachable end--see
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// IterativeBackwardReachability::meetOverSuccessors.
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//
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// control-flow-boundary(B) := beginning-reachable(B) && !end-reachable(P)
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for (auto *block : barriers.blocks) {
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madeChange |= createEndBorrow(&block->front());
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}
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if (madeChange) {
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// Remove all the original end_borrow instructions.
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for (auto *end : uses.ends) {
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if (reusedEndBorrowInsts.contains(end)) {
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continue;
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}
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context.deleter.forceDelete(end);
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}
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}
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return madeChange;
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}
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EndBorrowInst *
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Rewriter::findPreexistingEndBorrow(SILInstruction *insertionPoint) {
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for (auto *instruction = insertionPoint; instruction;
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instruction = instruction->getNextInstruction()) {
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if (auto *ebi = dyn_cast<EndBorrowInst>(instruction)) {
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if (llvm::find(uses.ends, ebi) != uses.ends.end())
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return ebi;
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}
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if (auto *cvi = dyn_cast<CopyValueInst>(instruction)) {
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if (llvm::is_contained(barriers.copies, cvi)) {
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continue;
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}
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}
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/// Otherwise, this is an "interesting" instruction. We want to record that
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/// we were able to hoist the end of the borrow scope over it, so we stop
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/// looking for the preexisting end_borrow.
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return nullptr;
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}
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return nullptr;
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}
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bool Rewriter::createEndBorrow(SILInstruction *insertionPoint) {
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if (auto *ebi = findPreexistingEndBorrow(insertionPoint)) {
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reusedEndBorrowInsts.insert(ebi);
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return false;
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}
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auto builder = SILBuilderWithScope(insertionPoint);
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builder.createEndBorrow(
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RegularLocation::getAutoGeneratedLocation(insertionPoint->getLoc()),
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&context.introducer);
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return true;
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}
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bool run(Context &context) {
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Usage usage;
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if (!findUsage(context, usage))
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return false;
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DeinitBarriers barriers(context);
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Dataflow flow(context, usage, barriers);
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flow.run();
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Rewriter rewriter(context, usage, barriers);
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return rewriter.run();
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}
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} // end namespace ShrinkBorrowScope
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bool swift::shrinkBorrowScope(
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BeginBorrowInst const &bbi, InstructionDeleter &deleter,
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BasicCalleeAnalysis *calleeAnalysis,
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SmallVectorImpl<CopyValueInst *> &modifiedCopyValueInsts) {
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ShrinkBorrowScope::Context context(bbi, modifiedCopyValueInsts, deleter,
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calleeAnalysis);
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return ShrinkBorrowScope::run(context);
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}
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namespace swift::test {
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// Arguments:
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// - BeginBorrowInst - the introducer for the scope to shrink
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// - bool - the expected return value of shrinkBorrowScope
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// - variadic list of values consisting of the copies expected to be rewritten
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// Dumps:
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// - DELETED: <<instruction deleted>>
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static FunctionTest ShrinkBorrowScopeTest(
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"shrink-borrow-scope", [](auto &function, auto &arguments, auto &test) {
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auto instruction = arguments.takeValue();
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auto expected = arguments.takeBool();
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auto *bbi = cast<BeginBorrowInst>(instruction);
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|
auto *analysis = test.template getAnalysis<BasicCalleeAnalysis>();
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SmallVector<CopyValueInst *, 4> modifiedCopyValueInsts;
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InstructionDeleter deleter(
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InstModCallbacks().onDelete([&](auto *instruction) {
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llvm::outs() << "DELETED:\n";
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instruction->print(llvm::outs());
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|
}));
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|
auto shrunk =
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shrinkBorrowScope(*bbi, deleter, analysis, modifiedCopyValueInsts);
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|
unsigned index = 0;
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for (auto *cvi : modifiedCopyValueInsts) {
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|
auto expectedCopy = arguments.takeValue();
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llvm::outs() << "rewritten copy " << index << ":\n";
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|
llvm::outs() << "expected:\n";
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expectedCopy->print(llvm::outs());
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|
llvm::outs() << "got:\n";
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|
cvi->print(llvm::outs());
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assert(cvi == expectedCopy);
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|
++index;
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|
}
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|
assert(expected == shrunk && "didn't shrink expectedly!?");
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|
});
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} // namespace swift::test
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