mirror of
https://github.com/apple/swift.git
synced 2025-12-14 20:36:38 +01:00
1120 lines
37 KiB
C++
1120 lines
37 KiB
C++
//===--- OwnershipUtils.cpp -----------------------------------------------===//
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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 - 2018 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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#include "swift/SIL/OwnershipUtils.h"
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#include "swift/Basic/Defer.h"
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#include "swift/SIL/InstructionUtils.h"
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#include "swift/SIL/LinearLifetimeChecker.h"
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#include "swift/SIL/Projection.h"
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#include "swift/SIL/SILArgument.h"
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#include "swift/SIL/SILInstruction.h"
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using namespace swift;
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bool swift::isValueAddressOrTrivial(SILValue v) {
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return v->getType().isAddress() ||
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v.getOwnershipKind() == OwnershipKind::None;
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}
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// These operations forward both owned and guaranteed ownership.
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//
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// FIXME: Should be implemented as a SILInstruction type check-cast.
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static bool isOwnershipForwardingValueKind(SILNodeKind kind) {
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switch (kind) {
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case SILNodeKind::TupleInst:
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case SILNodeKind::StructInst:
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case SILNodeKind::EnumInst:
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case SILNodeKind::DifferentiableFunctionInst:
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case SILNodeKind::LinearFunctionInst:
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case SILNodeKind::OpenExistentialRefInst:
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case SILNodeKind::UpcastInst:
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case SILNodeKind::UncheckedValueCastInst:
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case SILNodeKind::UncheckedRefCastInst:
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case SILNodeKind::ConvertFunctionInst:
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case SILNodeKind::RefToBridgeObjectInst:
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case SILNodeKind::BridgeObjectToRefInst:
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case SILNodeKind::UnconditionalCheckedCastInst:
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case SILNodeKind::UncheckedEnumDataInst:
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case SILNodeKind::SelectEnumInst:
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case SILNodeKind::SwitchEnumInst:
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case SILNodeKind::CheckedCastBranchInst:
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case SILNodeKind::DestructureStructInst:
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case SILNodeKind::DestructureTupleInst:
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case SILNodeKind::MarkDependenceInst:
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case SILNodeKind::InitExistentialRefInst:
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return true;
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default:
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return false;
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}
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}
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// These operations forward guaranteed ownership, but don't necessarily forward
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// owned values.
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static bool isGuaranteedForwardingValueKind(SILNodeKind kind) {
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switch (kind) {
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case SILNodeKind::TupleExtractInst:
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case SILNodeKind::StructExtractInst:
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case SILNodeKind::DifferentiableFunctionExtractInst:
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case SILNodeKind::LinearFunctionExtractInst:
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case SILNodeKind::OpenExistentialValueInst:
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case SILNodeKind::OpenExistentialBoxValueInst:
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return true;
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default:
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return isOwnershipForwardingValueKind(kind);
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}
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}
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bool swift::canOpcodeForwardGuaranteedValues(SILValue value) {
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// If we have an argument from a transforming terminator, we can forward
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// guaranteed.
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if (auto *arg = dyn_cast<SILArgument>(value))
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if (auto *ti = arg->getSingleTerminator())
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if (ti->isTransformationTerminator()) {
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assert(OwnershipForwardingMixin::isa(ti));
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return true;
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}
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auto *node = value->getRepresentativeSILNodeInObject();
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bool result = isGuaranteedForwardingValueKind(node->getKind());
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if (result) {
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assert(!isa<OwnedFirstArgForwardingSingleValueInst>(node));
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assert(OwnershipForwardingMixin::isa(node));
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}
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return result;
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}
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bool swift::canOpcodeForwardGuaranteedValues(Operand *use) {
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auto *user = use->getUser();
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auto kind = user->getKind();
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bool result = isOwnershipForwardingValueKind(SILNodeKind(kind));
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if (result) {
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assert(!isa<GuaranteedFirstArgForwardingSingleValueInst>(user));
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assert(OwnershipForwardingMixin::isa(user));
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}
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return result;
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}
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static bool isOwnedForwardingValueKind(SILNodeKind kind) {
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switch (kind) {
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case SILNodeKind::MarkUninitializedInst:
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return true;
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default:
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return isOwnershipForwardingValueKind(kind);
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}
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}
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bool swift::canOpcodeForwardOwnedValues(SILValue value) {
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// If we have a SILArgument and we are the successor block of a transforming
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// terminator, we are fine.
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if (auto *arg = dyn_cast<SILPhiArgument>(value))
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if (auto *predTerm = arg->getSingleTerminator())
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if (predTerm->isTransformationTerminator()) {
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assert(OwnershipForwardingMixin::isa(predTerm));
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return true;
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}
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auto *node = value->getRepresentativeSILNodeInObject();
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bool result = isOwnedForwardingValueKind(node->getKind());
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if (result) {
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assert(!isa<GuaranteedFirstArgForwardingSingleValueInst>(node));
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assert(OwnershipForwardingMixin::isa(node));
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}
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return result;
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}
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bool swift::canOpcodeForwardOwnedValues(Operand *use) {
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auto *user = use->getUser();
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auto kind = SILNodeKind(user->getKind());
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bool result = isOwnershipForwardingValueKind(kind);
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if (result) {
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assert(OwnershipForwardingMixin::isa(user));
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}
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return result;
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}
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//===----------------------------------------------------------------------===//
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// Borrowing Operand
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//===----------------------------------------------------------------------===//
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void BorrowingOperandKind::print(llvm::raw_ostream &os) const {
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switch (value) {
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case Kind::Invalid:
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llvm_unreachable("Using an unreachable?!");
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case Kind::BeginBorrow:
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os << "BeginBorrow";
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return;
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case Kind::BeginApply:
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os << "BeginApply";
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return;
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case Kind::Branch:
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os << "Branch";
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return;
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case Kind::Apply:
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os << "Apply";
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return;
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case Kind::TryApply:
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os << "TryApply";
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return;
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case Kind::Yield:
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os << "Yield";
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return;
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}
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llvm_unreachable("Covered switch isn't covered?!");
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}
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llvm::raw_ostream &swift::operator<<(llvm::raw_ostream &os,
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BorrowingOperandKind kind) {
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kind.print(os);
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return os;
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}
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void BorrowingOperand::print(llvm::raw_ostream &os) const {
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os << "BorrowScopeOperand:\n"
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"Kind: " << kind << "\n"
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"Value: " << op->get()
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<< "User: " << *op->getUser();
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}
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llvm::raw_ostream &swift::operator<<(llvm::raw_ostream &os,
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const BorrowingOperand &operand) {
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operand.print(os);
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return os;
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}
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bool BorrowingOperand::visitLocalEndScopeUses(
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function_ref<bool(Operand *)> func) const {
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switch (kind) {
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case BorrowingOperandKind::Invalid:
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llvm_unreachable("Using invalid case");
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case BorrowingOperandKind::BeginBorrow:
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for (auto *use : cast<BeginBorrowInst>(op->getUser())->getUses()) {
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if (use->isLifetimeEnding()) {
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if (!func(use))
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return false;
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}
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}
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return true;
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case BorrowingOperandKind::BeginApply: {
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auto *user = cast<BeginApplyInst>(op->getUser());
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for (auto *use : user->getTokenResult()->getUses()) {
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if (!func(use))
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return false;
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}
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return true;
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}
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// These are instantaneous borrow scopes so there aren't any special end
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// scope instructions.
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case BorrowingOperandKind::Apply:
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case BorrowingOperandKind::TryApply:
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case BorrowingOperandKind::Yield:
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return true;
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case BorrowingOperandKind::Branch: {
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auto *br = cast<BranchInst>(op->getUser());
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for (auto *use : br->getArgForOperand(op)->getUses())
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if (use->isLifetimeEnding())
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if (!func(use))
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return false;
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return true;
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}
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}
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llvm_unreachable("Covered switch isn't covered");
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}
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void BorrowingOperand::visitBorrowIntroducingUserResults(
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function_ref<void(BorrowedValue)> visitor) const {
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switch (kind) {
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case BorrowingOperandKind::Invalid:
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llvm_unreachable("Using invalid case");
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case BorrowingOperandKind::Apply:
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case BorrowingOperandKind::TryApply:
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case BorrowingOperandKind::BeginApply:
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case BorrowingOperandKind::Yield:
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llvm_unreachable("Never has borrow introducer results!");
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case BorrowingOperandKind::BeginBorrow: {
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auto value = BorrowedValue::get(cast<BeginBorrowInst>(op->getUser()));
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assert(value);
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return visitor(value);
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}
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case BorrowingOperandKind::Branch: {
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auto *bi = cast<BranchInst>(op->getUser());
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for (auto *succBlock : bi->getSuccessorBlocks()) {
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auto value =
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BorrowedValue::get(succBlock->getArgument(op->getOperandNumber()));
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assert(value);
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visitor(value);
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}
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return;
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}
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}
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llvm_unreachable("Covered switch isn't covered?!");
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}
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void BorrowingOperand::visitConsumingUsesOfBorrowIntroducingUserResults(
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function_ref<void(Operand *)> func) const {
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// First visit all of the results of our user that are borrow introducing
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// values.
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visitBorrowIntroducingUserResults([&](BorrowedValue value) {
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// Visit the scope ending instructions of this value. If any of them are
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// consuming borrow scope operands, visit the consuming uses of the
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// results or successor arguments.
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//
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// This enables one to walk the def-use chain of guaranteed phis for a
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// single guaranteed scope.
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value.visitLocalScopeEndingUses([&](Operand *valueUser) {
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if (auto subBorrowScopeOp = BorrowingOperand::get(valueUser)) {
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if (subBorrowScopeOp.isReborrow()) {
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subBorrowScopeOp.visitUserResultConsumingUses(func);
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return;
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}
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}
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// Otherwise, if we don't have a borrow scope operand that consumes
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// guaranteed values, just visit value user.
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func(valueUser);
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});
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});
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}
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void BorrowingOperand::visitUserResultConsumingUses(
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function_ref<void(Operand *)> visitor) const {
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auto *ti = dyn_cast<TermInst>(op->getUser());
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if (!ti) {
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for (SILValue result : op->getUser()->getResults()) {
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for (auto *use : result->getUses()) {
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if (use->isLifetimeEnding()) {
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visitor(use);
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}
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}
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}
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return;
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}
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for (auto *succBlock : ti->getSuccessorBlocks()) {
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auto *arg = succBlock->getArgument(op->getOperandNumber());
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for (auto *use : arg->getUses()) {
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if (use->isLifetimeEnding()) {
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visitor(use);
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}
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}
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}
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}
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void BorrowingOperand::getImplicitUses(
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SmallVectorImpl<Operand *> &foundUses,
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std::function<void(Operand *)> *errorFunction) const {
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visitLocalEndScopeUses([&](Operand *op) {
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foundUses.push_back(op);
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return true;
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});
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}
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//===----------------------------------------------------------------------===//
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// Borrow Introducers
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//===----------------------------------------------------------------------===//
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void BorrowedValueKind::print(llvm::raw_ostream &os) const {
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switch (value) {
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case BorrowedValueKind::Invalid:
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llvm_unreachable("Using invalid case?!");
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case BorrowedValueKind::SILFunctionArgument:
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os << "SILFunctionArgument";
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return;
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case BorrowedValueKind::BeginBorrow:
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os << "BeginBorrowInst";
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return;
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case BorrowedValueKind::LoadBorrow:
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os << "LoadBorrowInst";
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return;
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case BorrowedValueKind::Phi:
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os << "Phi";
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return;
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}
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llvm_unreachable("Covered switch isn't covered?!");
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}
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void BorrowedValue::print(llvm::raw_ostream &os) const {
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os << "BorrowScopeIntroducingValue:\n"
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"Kind: " << kind << "\n"
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"Value: " << value;
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}
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void BorrowedValue::getLocalScopeEndingInstructions(
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SmallVectorImpl<SILInstruction *> &scopeEndingInsts) const {
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assert(isLocalScope() && "Should only call this given a local scope");
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switch (kind) {
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case BorrowedValueKind::Invalid:
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llvm_unreachable("Using invalid case?!");
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case BorrowedValueKind::SILFunctionArgument:
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llvm_unreachable("Should only call this with a local scope");
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case BorrowedValueKind::BeginBorrow:
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case BorrowedValueKind::LoadBorrow:
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case BorrowedValueKind::Phi:
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for (auto *use : value->getUses()) {
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if (use->isLifetimeEnding()) {
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scopeEndingInsts.push_back(use->getUser());
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}
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}
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return;
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}
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llvm_unreachable("Covered switch isn't covered?!");
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}
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void BorrowedValue::visitLocalScopeEndingUses(
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function_ref<void(Operand *)> visitor) const {
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assert(isLocalScope() && "Should only call this given a local scope");
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switch (kind) {
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case BorrowedValueKind::Invalid:
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llvm_unreachable("Using invalid case?!");
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case BorrowedValueKind::SILFunctionArgument:
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llvm_unreachable("Should only call this with a local scope");
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case BorrowedValueKind::LoadBorrow:
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case BorrowedValueKind::BeginBorrow:
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case BorrowedValueKind::Phi:
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for (auto *use : value->getUses()) {
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if (use->isLifetimeEnding()) {
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visitor(use);
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}
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}
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return;
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}
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llvm_unreachable("Covered switch isn't covered?!");
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}
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llvm::raw_ostream &swift::operator<<(llvm::raw_ostream &os,
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BorrowedValueKind kind) {
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kind.print(os);
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return os;
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}
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llvm::raw_ostream &swift::operator<<(llvm::raw_ostream &os,
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const BorrowedValue &value) {
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value.print(os);
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return os;
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}
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bool BorrowedValue::areUsesWithinScope(
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ArrayRef<Operand *> uses, SmallVectorImpl<Operand *> &scratchSpace,
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SmallPtrSetImpl<SILBasicBlock *> &visitedBlocks,
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DeadEndBlocks &deadEndBlocks) const {
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// Make sure that we clear our scratch space/utilities before we exit.
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SWIFT_DEFER {
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scratchSpace.clear();
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visitedBlocks.clear();
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};
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// First make sure that we actually have a local scope. If we have a non-local
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// scope, then we have something (like a SILFunctionArgument) where a larger
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// semantic construct (in the case of SILFunctionArgument, the function
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// itself) acts as the scope. So we already know that our passed in
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// instructions must be in the same scope.
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if (!isLocalScope())
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return true;
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// Otherwise, gather up our local scope ending instructions, looking through
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// guaranteed phi nodes.
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visitLocalScopeTransitiveEndingUses(
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[&scratchSpace](Operand *op) { scratchSpace.emplace_back(op); });
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LinearLifetimeChecker checker(visitedBlocks, deadEndBlocks);
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return checker.validateLifetime(value, scratchSpace, uses);
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}
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bool BorrowedValue::visitLocalScopeTransitiveEndingUses(
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function_ref<void(Operand *)> visitor) const {
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assert(isLocalScope());
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SmallVector<Operand *, 32> worklist;
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SmallPtrSet<Operand *, 16> beenInWorklist;
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for (auto *use : value->getUses()) {
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if (!use->isLifetimeEnding())
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continue;
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worklist.push_back(use);
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beenInWorklist.insert(use);
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}
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bool foundError = false;
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while (!worklist.empty()) {
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auto *op = worklist.pop_back_val();
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assert(op->isLifetimeEnding() && "Expected only consuming uses");
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// See if we have a borrow scope operand. If we do not, then we know we are
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// a final consumer of our borrow scope introducer. Visit it and continue.
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auto scopeOperand = BorrowingOperand::get(op);
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if (!scopeOperand) {
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visitor(op);
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continue;
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}
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scopeOperand.visitConsumingUsesOfBorrowIntroducingUserResults(
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[&](Operand *op) {
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assert(op->isLifetimeEnding() && "Expected only consuming uses");
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// Make sure we haven't visited this consuming operand yet. If we
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// have, signal an error and bail without re-visiting the operand.
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if (!beenInWorklist.insert(op).second) {
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foundError = true;
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return;
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}
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worklist.push_back(op);
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});
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}
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return foundError;
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}
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bool BorrowedValue::visitInteriorPointerOperands(
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function_ref<void(const InteriorPointerOperand &)> func) const {
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SmallVector<Operand *, 32> worklist(value->getUses());
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while (!worklist.empty()) {
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auto *op = worklist.pop_back_val();
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if (auto interiorPointer = InteriorPointerOperand::get(op)) {
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func(interiorPointer);
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continue;
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}
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auto *user = op->getUser();
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if (isa<BeginBorrowInst>(user) || isa<DebugValueInst>(user) ||
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isa<SuperMethodInst>(user) || isa<ClassMethodInst>(user) ||
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isa<CopyValueInst>(user) || isa<EndBorrowInst>(user) ||
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isa<ApplyInst>(user) || isa<StoreBorrowInst>(user) ||
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isa<StoreInst>(user) || isa<PartialApplyInst>(user) ||
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isa<UnmanagedRetainValueInst>(user) ||
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isa<UnmanagedReleaseValueInst>(user) ||
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isa<UnmanagedAutoreleaseValueInst>(user)) {
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continue;
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}
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// These are interior pointers that have not had support yet added for them.
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if (isa<OpenExistentialBoxInst>(user) ||
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isa<ProjectExistentialBoxInst>(user)) {
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continue;
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}
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|
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// Look through object.
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if (auto *svi = dyn_cast<SingleValueInstruction>(user)) {
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if (Projection::isObjectProjection(svi)) {
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for (SILValue result : user->getResults()) {
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llvm::copy(result->getUses(), std::back_inserter(worklist));
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}
|
|
continue;
|
|
}
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// InteriorPointerOperand
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
bool InteriorPointerOperand::getImplicitUses(
|
|
SmallVectorImpl<Operand *> &foundUses,
|
|
std::function<void(Operand *)> *onError) {
|
|
SILValue projectedAddress = getProjectedAddress();
|
|
SmallVector<Operand *, 8> worklist(projectedAddress->getUses());
|
|
|
|
bool foundError = false;
|
|
|
|
while (!worklist.empty()) {
|
|
auto *op = worklist.pop_back_val();
|
|
|
|
// Skip type dependent operands.
|
|
if (op->isTypeDependent())
|
|
continue;
|
|
|
|
// Before we do anything, add this operand to our implicit regular user
|
|
// list.
|
|
foundUses.push_back(op);
|
|
|
|
// Then update the worklist with new things to find if we recognize this
|
|
// inst and then continue. If we fail, we emit an error at the bottom of the
|
|
// loop that we didn't recognize the user.
|
|
auto *user = op->getUser();
|
|
|
|
// First, eliminate "end point uses" that we just need to check liveness at
|
|
// and do not need to check transitive uses of.
|
|
if (isa<LoadInst>(user) || isa<CopyAddrInst>(user) ||
|
|
isIncidentalUse(user) || isa<StoreInst>(user) ||
|
|
isa<StoreBorrowInst>(user) || isa<PartialApplyInst>(user) ||
|
|
isa<DestroyAddrInst>(user) || isa<AssignInst>(user) ||
|
|
isa<AddressToPointerInst>(user) || isa<YieldInst>(user) ||
|
|
isa<LoadUnownedInst>(user) || isa<StoreUnownedInst>(user) ||
|
|
isa<EndApplyInst>(user) || isa<LoadWeakInst>(user) ||
|
|
isa<StoreWeakInst>(user) || isa<AssignByWrapperInst>(user) ||
|
|
isa<BeginUnpairedAccessInst>(user) ||
|
|
isa<EndUnpairedAccessInst>(user) || isa<WitnessMethodInst>(user) ||
|
|
isa<SwitchEnumAddrInst>(user) || isa<CheckedCastAddrBranchInst>(user) ||
|
|
isa<SelectEnumAddrInst>(user) || isa<InjectEnumAddrInst>(user)) {
|
|
continue;
|
|
}
|
|
|
|
// Then handle users that we need to look at transitive uses of.
|
|
if (Projection::isAddressProjection(user) ||
|
|
isa<ProjectBlockStorageInst>(user) ||
|
|
isa<OpenExistentialAddrInst>(user) ||
|
|
isa<InitExistentialAddrInst>(user) ||
|
|
isa<InitEnumDataAddrInst>(user) || isa<BeginAccessInst>(user) ||
|
|
isa<TailAddrInst>(user) || isa<IndexAddrInst>(user) ||
|
|
isa<UnconditionalCheckedCastAddrInst>(user)) {
|
|
for (SILValue r : user->getResults()) {
|
|
llvm::copy(r->getUses(), std::back_inserter(worklist));
|
|
}
|
|
continue;
|
|
}
|
|
|
|
if (auto *builtin = dyn_cast<BuiltinInst>(user)) {
|
|
if (auto kind = builtin->getBuiltinKind()) {
|
|
if (*kind == BuiltinValueKind::TSanInoutAccess) {
|
|
continue;
|
|
}
|
|
}
|
|
}
|
|
|
|
// If we have a load_borrow, add it's end scope to the liveness requirement.
|
|
if (auto *lbi = dyn_cast<LoadBorrowInst>(user)) {
|
|
transform(lbi->getEndBorrows(), std::back_inserter(foundUses),
|
|
[](EndBorrowInst *ebi) { return &ebi->getAllOperands()[0]; });
|
|
continue;
|
|
}
|
|
|
|
// TODO: Merge this into the full apply site code below.
|
|
if (auto *beginApply = dyn_cast<BeginApplyInst>(user)) {
|
|
// TODO: Just add this to implicit regular user list?
|
|
llvm::copy(beginApply->getTokenResult()->getUses(),
|
|
std::back_inserter(foundUses));
|
|
continue;
|
|
}
|
|
|
|
if (auto fas = FullApplySite::isa(user)) {
|
|
continue;
|
|
}
|
|
|
|
if (auto *mdi = dyn_cast<MarkDependenceInst>(user)) {
|
|
// If this is the base, just treat it as a liveness use.
|
|
if (op->get() == mdi->getBase()) {
|
|
continue;
|
|
}
|
|
|
|
// If we are the value use, look through it.
|
|
llvm::copy(mdi->getValue()->getUses(), std::back_inserter(worklist));
|
|
continue;
|
|
}
|
|
|
|
// We were unable to recognize this user, so return true that we failed.
|
|
if (onError) {
|
|
(*onError)(op);
|
|
}
|
|
foundError = true;
|
|
}
|
|
|
|
// We were able to recognize all of the uses of the address, so return false
|
|
// that we did not find any errors.
|
|
return foundError;
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// Owned Value Introducers
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
void OwnedValueIntroducerKind::print(llvm::raw_ostream &os) const {
|
|
switch (value) {
|
|
case OwnedValueIntroducerKind::Invalid:
|
|
llvm_unreachable("Using invalid case?!");
|
|
case OwnedValueIntroducerKind::Apply:
|
|
os << "Apply";
|
|
return;
|
|
case OwnedValueIntroducerKind::BeginApply:
|
|
os << "BeginApply";
|
|
return;
|
|
case OwnedValueIntroducerKind::TryApply:
|
|
os << "TryApply";
|
|
return;
|
|
case OwnedValueIntroducerKind::Copy:
|
|
os << "Copy";
|
|
return;
|
|
case OwnedValueIntroducerKind::LoadCopy:
|
|
os << "LoadCopy";
|
|
return;
|
|
case OwnedValueIntroducerKind::LoadTake:
|
|
os << "LoadTake";
|
|
return;
|
|
case OwnedValueIntroducerKind::Phi:
|
|
os << "Phi";
|
|
return;
|
|
case OwnedValueIntroducerKind::Struct:
|
|
os << "Struct";
|
|
return;
|
|
case OwnedValueIntroducerKind::Tuple:
|
|
os << "Tuple";
|
|
return;
|
|
case OwnedValueIntroducerKind::FunctionArgument:
|
|
os << "FunctionArgument";
|
|
return;
|
|
case OwnedValueIntroducerKind::PartialApplyInit:
|
|
os << "PartialApplyInit";
|
|
return;
|
|
case OwnedValueIntroducerKind::AllocBoxInit:
|
|
os << "AllocBoxInit";
|
|
return;
|
|
case OwnedValueIntroducerKind::AllocRefInit:
|
|
os << "AllocRefInit";
|
|
return;
|
|
}
|
|
llvm_unreachable("Covered switch isn't covered");
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// Introducer Searching Routines
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
bool swift::getAllBorrowIntroducingValues(SILValue inputValue,
|
|
SmallVectorImpl<BorrowedValue> &out) {
|
|
if (inputValue.getOwnershipKind() != OwnershipKind::Guaranteed)
|
|
return false;
|
|
|
|
SmallVector<SILValue, 32> worklist;
|
|
worklist.emplace_back(inputValue);
|
|
|
|
while (!worklist.empty()) {
|
|
SILValue value = worklist.pop_back_val();
|
|
|
|
// First check if v is an introducer. If so, stash it and continue.
|
|
if (auto scopeIntroducer = BorrowedValue::get(value)) {
|
|
out.push_back(scopeIntroducer);
|
|
continue;
|
|
}
|
|
|
|
// If v produces .none ownership, then we can ignore it. It is important
|
|
// that we put this before checking for guaranteed forwarding instructions,
|
|
// since we want to ignore guaranteed forwarding instructions that in this
|
|
// specific case produce a .none value.
|
|
if (value.getOwnershipKind() == OwnershipKind::None)
|
|
continue;
|
|
|
|
// Otherwise if v is an ownership forwarding value, add its defining
|
|
// instruction
|
|
if (isForwardingBorrow(value)) {
|
|
if (auto *i = value->getDefiningInstruction()) {
|
|
llvm::copy(i->getOperandValues(true /*skip type dependent ops*/),
|
|
std::back_inserter(worklist));
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, we should have a block argument that is defined by a single
|
|
// predecessor terminator.
|
|
auto *arg = cast<SILPhiArgument>(value);
|
|
auto *termInst = arg->getSingleTerminator();
|
|
assert(termInst && termInst->isTransformationTerminator());
|
|
assert(termInst->getNumOperands() == 1 &&
|
|
"Transforming terminators should always have a single operand");
|
|
worklist.push_back(termInst->getAllOperands()[0].get());
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, this is an introducer we do not understand. Bail and return
|
|
// false.
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
BorrowedValue swift::getSingleBorrowIntroducingValue(SILValue inputValue) {
|
|
if (inputValue.getOwnershipKind() != OwnershipKind::Guaranteed)
|
|
return {};
|
|
|
|
SILValue currentValue = inputValue;
|
|
while (true) {
|
|
// First check if our initial value is an introducer. If we have one, just
|
|
// return it.
|
|
if (auto scopeIntroducer = BorrowedValue::get(currentValue)) {
|
|
return scopeIntroducer;
|
|
}
|
|
|
|
// Otherwise if v is an ownership forwarding value, add its defining
|
|
// instruction
|
|
if (isForwardingBorrow(currentValue)) {
|
|
if (auto *i = currentValue->getDefiningInstruction()) {
|
|
auto instOps = i->getOperandValues(true /*ignore type dependent ops*/);
|
|
// If we have multiple incoming values, return .None. We can't handle
|
|
// this.
|
|
auto begin = instOps.begin();
|
|
if (std::next(begin) != instOps.end()) {
|
|
return {};
|
|
}
|
|
// Otherwise, set currentOp to the single operand and continue.
|
|
currentValue = *begin;
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, we should have a block argument that is defined by a single
|
|
// predecessor terminator.
|
|
auto *arg = cast<SILPhiArgument>(currentValue);
|
|
auto *termInst = arg->getSingleTerminator();
|
|
assert(termInst && termInst->isTransformationTerminator());
|
|
assert(termInst->getNumOperands() == 1 &&
|
|
"Transformation terminators should only have single operands");
|
|
currentValue = termInst->getAllOperands()[0].get();
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, this is an introducer we do not understand. Bail and return
|
|
// None.
|
|
return {};
|
|
}
|
|
|
|
llvm_unreachable("Should never hit this");
|
|
}
|
|
|
|
bool swift::getAllOwnedValueIntroducers(
|
|
SILValue inputValue, SmallVectorImpl<OwnedValueIntroducer> &out) {
|
|
if (inputValue.getOwnershipKind() != OwnershipKind::Owned)
|
|
return false;
|
|
|
|
SmallVector<SILValue, 32> worklist;
|
|
worklist.emplace_back(inputValue);
|
|
|
|
while (!worklist.empty()) {
|
|
SILValue value = worklist.pop_back_val();
|
|
|
|
// First check if v is an introducer. If so, stash it and continue.
|
|
if (auto introducer = OwnedValueIntroducer::get(value)) {
|
|
out.push_back(introducer);
|
|
continue;
|
|
}
|
|
|
|
// If v produces .none ownership, then we can ignore it. It is important
|
|
// that we put this before checking for guaranteed forwarding instructions,
|
|
// since we want to ignore guaranteed forwarding instructions that in this
|
|
// specific case produce a .none value.
|
|
if (value.getOwnershipKind() == OwnershipKind::None)
|
|
continue;
|
|
|
|
// Otherwise if v is an ownership forwarding value, add its defining
|
|
// instruction
|
|
if (isForwardingConsume(value)) {
|
|
if (auto *i = value->getDefiningInstruction()) {
|
|
llvm::copy(i->getOperandValues(true /*skip type dependent ops*/),
|
|
std::back_inserter(worklist));
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, we should have a block argument that is defined by a single
|
|
// predecessor terminator.
|
|
auto *arg = cast<SILPhiArgument>(value);
|
|
auto *termInst = arg->getSingleTerminator();
|
|
assert(termInst && termInst->isTransformationTerminator());
|
|
assert(termInst->getNumOperands() == 1 &&
|
|
"Transforming terminators should always have a single operand");
|
|
worklist.push_back(termInst->getAllOperands()[0].get());
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, this is an introducer we do not understand. Bail and return
|
|
// false.
|
|
return false;
|
|
}
|
|
|
|
return true;
|
|
}
|
|
|
|
OwnedValueIntroducer swift::getSingleOwnedValueIntroducer(SILValue inputValue) {
|
|
if (inputValue.getOwnershipKind() != OwnershipKind::Owned)
|
|
return {};
|
|
|
|
SILValue currentValue = inputValue;
|
|
while (true) {
|
|
// First check if our initial value is an introducer. If we have one, just
|
|
// return it.
|
|
if (auto introducer = OwnedValueIntroducer::get(currentValue)) {
|
|
return introducer;
|
|
}
|
|
|
|
// Otherwise if v is an ownership forwarding value, add its defining
|
|
// instruction
|
|
if (isForwardingConsume(currentValue)) {
|
|
if (auto *i = currentValue->getDefiningInstruction()) {
|
|
auto instOps = i->getOperandValues(true /*ignore type dependent ops*/);
|
|
// If we have multiple incoming values, return .None. We can't handle
|
|
// this.
|
|
auto begin = instOps.begin();
|
|
if (std::next(begin) != instOps.end()) {
|
|
return {};
|
|
}
|
|
// Otherwise, set currentOp to the single operand and continue.
|
|
currentValue = *begin;
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, we should have a block argument that is defined by a single
|
|
// predecessor terminator.
|
|
auto *arg = cast<SILPhiArgument>(currentValue);
|
|
auto *termInst = arg->getSingleTerminator();
|
|
assert(termInst && termInst->isTransformationTerminator());
|
|
assert(termInst->getNumOperands()
|
|
- termInst->getNumTypeDependentOperands() == 1 &&
|
|
"Transformation terminators should only have single operands");
|
|
currentValue = termInst->getAllOperands()[0].get();
|
|
continue;
|
|
}
|
|
|
|
// Otherwise, this is an introducer we do not understand. Bail and return
|
|
// None.
|
|
return {};
|
|
}
|
|
|
|
llvm_unreachable("Should never hit this");
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// Forwarding Operand
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
ForwardingOperand ForwardingOperand::get(Operand *use) {
|
|
if (use->isTypeDependent())
|
|
return nullptr;
|
|
|
|
if (!OwnershipForwardingMixin::isa(use->getUser())) {
|
|
return nullptr;
|
|
}
|
|
#ifndef NDEBUG
|
|
switch (use->getOperandOwnership()) {
|
|
case OperandOwnership::ForwardingUnowned:
|
|
case OperandOwnership::ForwardingConsume:
|
|
case OperandOwnership::ForwardingBorrow:
|
|
break;
|
|
case OperandOwnership::NonUse:
|
|
case OperandOwnership::TrivialUse:
|
|
case OperandOwnership::InstantaneousUse:
|
|
case OperandOwnership::UnownedInstantaneousUse:
|
|
case OperandOwnership::PointerEscape:
|
|
case OperandOwnership::BitwiseEscape:
|
|
case OperandOwnership::Borrow:
|
|
case OperandOwnership::DestroyingConsume:
|
|
case OperandOwnership::InteriorPointer:
|
|
case OperandOwnership::EndBorrow:
|
|
case OperandOwnership::Reborrow:
|
|
llvm_unreachable("this isn't the operand being forwarding!");
|
|
}
|
|
#endif
|
|
return {use};
|
|
}
|
|
|
|
ValueOwnershipKind ForwardingOperand::getOwnershipKind() const {
|
|
auto *user = use->getUser();
|
|
|
|
// NOTE: This if chain is meant to be a covered switch, so make sure to return
|
|
// in each if itself since we have an unreachable at the bottom to ensure if a
|
|
// new subclass of OwnershipForwardingInst is added
|
|
if (auto *ofsvi = dyn_cast<AllArgOwnershipForwardingSingleValueInst>(user))
|
|
return ofsvi->getOwnershipKind();
|
|
|
|
if (auto *ofsvi = dyn_cast<FirstArgOwnershipForwardingSingleValueInst>(user))
|
|
return ofsvi->getOwnershipKind();
|
|
|
|
if (auto *ofci = dyn_cast<OwnershipForwardingConversionInst>(user))
|
|
return ofci->getOwnershipKind();
|
|
|
|
if (auto *ofseib = dyn_cast<OwnershipForwardingSelectEnumInstBase>(user))
|
|
return ofseib->getOwnershipKind();
|
|
|
|
if (auto *ofmvi =
|
|
dyn_cast<OwnershipForwardingMultipleValueInstruction>(user)) {
|
|
assert(ofmvi->getNumOperands() == 1);
|
|
return ofmvi->getOwnershipKind();
|
|
}
|
|
|
|
if (auto *ofti = dyn_cast<OwnershipForwardingTermInst>(user)) {
|
|
assert(ofti->getNumOperands() == 1);
|
|
return ofti->getOwnershipKind();
|
|
}
|
|
|
|
llvm_unreachable("Unhandled forwarding inst?!");
|
|
}
|
|
|
|
void ForwardingOperand::setOwnershipKind(ValueOwnershipKind newKind) const {
|
|
auto *user = use->getUser();
|
|
// NOTE: This if chain is meant to be a covered switch, so make sure to return
|
|
// in each if itself since we have an unreachable at the bottom to ensure if a
|
|
// new subclass of OwnershipForwardingInst is added
|
|
if (auto *ofsvi = dyn_cast<AllArgOwnershipForwardingSingleValueInst>(user))
|
|
if (!ofsvi->getType().isTrivial(*ofsvi->getFunction()))
|
|
return ofsvi->setOwnershipKind(newKind);
|
|
if (auto *ofsvi = dyn_cast<FirstArgOwnershipForwardingSingleValueInst>(user))
|
|
if (!ofsvi->getType().isTrivial(*ofsvi->getFunction()))
|
|
return ofsvi->setOwnershipKind(newKind);
|
|
if (auto *ofci = dyn_cast<OwnershipForwardingConversionInst>(user))
|
|
if (!ofci->getType().isTrivial(*ofci->getFunction()))
|
|
return ofci->setOwnershipKind(newKind);
|
|
if (auto *ofseib = dyn_cast<OwnershipForwardingSelectEnumInstBase>(user))
|
|
if (!ofseib->getType().isTrivial(*ofseib->getFunction()))
|
|
return ofseib->setOwnershipKind(newKind);
|
|
if (auto *ofmvi = dyn_cast<OwnershipForwardingMultipleValueInstruction>(user)) {
|
|
assert(ofmvi->getNumOperands() == 1);
|
|
if (!ofmvi->getOperand(0)->getType().isTrivial(*ofmvi->getFunction())) {
|
|
ofmvi->setOwnershipKind(newKind);
|
|
// TODO: Refactor this better.
|
|
if (auto *dsi = dyn_cast<DestructureStructInst>(ofmvi)) {
|
|
for (auto &result : dsi->getAllResultsBuffer()) {
|
|
if (result.getType().isTrivial(*dsi->getFunction()))
|
|
continue;
|
|
result.setOwnershipKind(newKind);
|
|
}
|
|
} else {
|
|
auto *dti = cast<DestructureTupleInst>(ofmvi);
|
|
for (auto &result : dti->getAllResultsBuffer()) {
|
|
if (result.getType().isTrivial(*dti->getFunction()))
|
|
continue;
|
|
result.setOwnershipKind(newKind);
|
|
}
|
|
}
|
|
}
|
|
return;
|
|
}
|
|
|
|
if (auto *ofti = dyn_cast<OwnershipForwardingTermInst>(user)) {
|
|
assert(ofti->getNumOperands() == 1);
|
|
if (!ofti->getOperand(0)->getType().isTrivial(*ofti->getFunction())) {
|
|
ofti->setOwnershipKind(newKind);
|
|
|
|
// Then convert all of its incoming values that are owned to be guaranteed.
|
|
for (auto &succ : ofti->getSuccessors()) {
|
|
auto *succBlock = succ.getBB();
|
|
|
|
// If we do not have any arguments, then continue.
|
|
if (succBlock->args_empty())
|
|
continue;
|
|
|
|
for (auto *succArg : succBlock->getSILPhiArguments()) {
|
|
// If we have an any value, just continue.
|
|
if (!succArg->getType().isTrivial(*ofti->getFunction()))
|
|
continue;
|
|
succArg->setOwnershipKind(newKind);
|
|
}
|
|
}
|
|
}
|
|
return;
|
|
}
|
|
|
|
llvm_unreachable("Out of sync with ForwardingOperand::get?!");
|
|
}
|
|
|
|
void ForwardingOperand::replaceOwnershipKind(ValueOwnershipKind oldKind,
|
|
ValueOwnershipKind newKind) const {
|
|
auto *user = use->getUser();
|
|
|
|
if (auto *fInst = dyn_cast<AllArgOwnershipForwardingSingleValueInst>(user))
|
|
if (fInst->getOwnershipKind() == oldKind)
|
|
return fInst->setOwnershipKind(newKind);
|
|
|
|
if (auto *fInst = dyn_cast<FirstArgOwnershipForwardingSingleValueInst>(user))
|
|
if (fInst->getOwnershipKind() == oldKind)
|
|
return fInst->setOwnershipKind(newKind);
|
|
|
|
if (auto *ofci = dyn_cast<OwnershipForwardingConversionInst>(user))
|
|
if (ofci->getOwnershipKind() == oldKind)
|
|
return ofci->setOwnershipKind(newKind);
|
|
|
|
if (auto *ofseib = dyn_cast<OwnershipForwardingSelectEnumInstBase>(user))
|
|
if (ofseib->getOwnershipKind() == oldKind)
|
|
return ofseib->setOwnershipKind(newKind);
|
|
|
|
if (auto *ofmvi = dyn_cast<OwnershipForwardingMultipleValueInstruction>(user)) {
|
|
if (ofmvi->getOwnershipKind() == oldKind) {
|
|
ofmvi->setOwnershipKind(newKind);
|
|
}
|
|
// TODO: Refactor this better.
|
|
if (auto *dsi = dyn_cast<DestructureStructInst>(ofmvi)) {
|
|
for (auto &result : dsi->getAllResultsBuffer()) {
|
|
if (result.getOwnershipKind() != oldKind)
|
|
continue;
|
|
result.setOwnershipKind(newKind);
|
|
}
|
|
} else {
|
|
auto *dti = cast<DestructureTupleInst>(ofmvi);
|
|
for (auto &result : dti->getAllResultsBuffer()) {
|
|
if (result.getOwnershipKind() != oldKind)
|
|
continue;
|
|
result.setOwnershipKind(newKind);
|
|
}
|
|
}
|
|
return;
|
|
}
|
|
|
|
if (auto *ofti = dyn_cast<OwnershipForwardingTermInst>(user)) {
|
|
if (ofti->getOwnershipKind() == oldKind) {
|
|
ofti->setOwnershipKind(newKind);
|
|
// Then convert all of its incoming values that are owned to be guaranteed.
|
|
for (auto &succ : ofti->getSuccessors()) {
|
|
auto *succBlock = succ.getBB();
|
|
|
|
// If we do not have any arguments, then continue.
|
|
if (succBlock->args_empty())
|
|
continue;
|
|
|
|
for (auto *succArg : succBlock->getSILPhiArguments()) {
|
|
// If we have an any value, just continue.
|
|
if (succArg->getOwnershipKind() == oldKind) {
|
|
succArg->setOwnershipKind(newKind);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
return;
|
|
}
|
|
|
|
llvm_unreachable("Missing Case! Out of sync with ForwardingOperand::get?!");
|
|
}
|
|
|
|
SILValue ForwardingOperand::getSingleForwardedValue() const {
|
|
if (auto *svi = dyn_cast<SingleValueInstruction>(use->getUser()))
|
|
return svi;
|
|
return SILValue();
|
|
}
|
|
|
|
bool ForwardingOperand::visitForwardedValues(
|
|
function_ref<bool(SILValue)> visitor) {
|
|
auto *user = use->getUser();
|
|
|
|
// See if we have a single value instruction... if we do that is always the
|
|
// transitive result.
|
|
if (auto *svi = dyn_cast<SingleValueInstruction>(user)) {
|
|
return visitor(svi);
|
|
}
|
|
|
|
if (auto *mvri = dyn_cast<MultipleValueInstruction>(user)) {
|
|
return llvm::all_of(mvri->getResults(), [&](SILValue value) {
|
|
if (value.getOwnershipKind() == OwnershipKind::None)
|
|
return true;
|
|
return visitor(value);
|
|
});
|
|
}
|
|
|
|
// This is an instruction like switch_enum and checked_cast_br that are
|
|
// "transforming terminators"... We know that this means that we should at
|
|
// most have a single phi argument.
|
|
auto *ti = cast<TermInst>(user);
|
|
return llvm::all_of(ti->getSuccessorBlocks(), [&](SILBasicBlock *succBlock) {
|
|
// If we do not have any arguments, then continue.
|
|
if (succBlock->args_empty())
|
|
return true;
|
|
|
|
auto args = succBlock->getSILPhiArguments();
|
|
assert(args.size() == 1 && "Transforming terminator with multiple args?!");
|
|
return visitor(args[0]);
|
|
});
|
|
}
|