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386 lines
14 KiB
C++
386 lines
14 KiB
C++
//===-- DeadObjectElimination.h - Remove unused objects ------------------===//
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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 - 2015 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 http://swift.org/LICENSE.txt for license information
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// See http://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// This pass eliminates store only alloc_ref objects that have destructors
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// without side effects.
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//
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// The high level overview of the algorithm is that first it visits the
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// destructor and attempts to prove that the destructor is well behaved, i.e. it
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// does not have any side effects outside of the destructor itself. If the
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// destructor can be proven to be well behaved, it then goes through the use
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// list of the alloc_ref and attempts to prove that the alloc_ref does not
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// escape or is used in a way that could cause side effects. If both of those
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// conditions apply, the alloc_ref and its entire use graph is eliminated.
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//
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//===----------------------------------------------------------------------===//
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#define DEBUG_TYPE "allocref-elim"
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#include "swift/SILPasses/Passes.h"
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#include "swift/AST/ResilienceExpansion.h"
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#include "swift/SIL/SILArgument.h"
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#include "swift/SIL/SILDeclRef.h"
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#include "swift/SIL/SILFunction.h"
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#include "swift/SIL/SILInstruction.h"
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#include "swift/SIL/SILModule.h"
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#include "swift/SIL/SILUndef.h"
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#include "swift/SILPasses/Utils/Local.h"
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#include "swift/SILPasses/Transforms.h"
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#include "llvm/ADT/Statistic.h"
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#include "llvm/Support/Debug.h"
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using namespace swift;
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STATISTIC(DeadAllocRefEliminated,
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"number of AllocRef instructions removed");
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STATISTIC(DeadAllocStackEliminated,
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"number of AllocStack instructions removed");
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static SILFunction *getDestructor(AllocationInst* AI) {
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if (auto *ARI = dyn_cast<AllocRefInst>(AI)) {
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// We only support classes.
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ClassDecl *ClsDecl = ARI->getType().getClassOrBoundGenericClass();
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if (!ClsDecl)
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return nullptr;
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// Look up the destructor of ClsDecl.
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DestructorDecl *Destructor = ClsDecl->getDestructor();
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assert(Destructor && "getDestructor() should never return a nullptr.");
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// Find the destructor name via SILDeclRef.
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// FIXME: When destructors get moved into vtables, update this to use the
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// vtable for the class.
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SmallVector<char, 128> buffer;
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StringRef Name = SILDeclRef(Destructor).mangle(buffer);
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DEBUG(llvm::dbgs() << " Looking up destructor: " << Name << "\n");
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// Then try to lookup the destructor from the module.
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SILFunction *Fn = ARI->getModule().lookUpFunction(Name);
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if (!Fn || Fn->empty()) {
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DEBUG(llvm::dbgs() << " Could not find destructor.\n");
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return nullptr;
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}
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DEBUG(llvm::dbgs() << " Found destructor!\n");
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// If the destructor has an objc_method calling convention, we can not
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// analyze it since it could be swapped out from under us at runtime.
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if (Fn->getRepresentation() == SILFunctionTypeRepresentation::ObjCMethod) {
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DEBUG(llvm::dbgs() << " Found objective-c destructor. Can't "
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"analyze!\n");
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return nullptr;
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}
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return Fn;
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}
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return nullptr;
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}
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/// Analyze the destructor for the class of ARI to see if any instructions in it
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/// could have side effects on the program outside the destructor. If it does
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/// not, then we can eliminate the destructor.
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static bool doesDestructorHaveSideEffects(AllocRefInst *ARI) {
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SILFunction *Fn = getDestructor(ARI);
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// If we can't find a constructor then assume it has side effects.
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if (!Fn)
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return true;
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// A destructor only has one argument, self.
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assert(Fn->begin()->getNumBBArg() == 1 &&
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"Destructor should have only one argument, self.");
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SILArgument *Self = Fn->begin()->getBBArg(0);
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DEBUG(llvm::dbgs() << " Analyzing destructor.\n");
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// For each BB in the destructor...
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for (auto &BB : *Fn)
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// For each instruction I in BB...
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for (auto &I : BB) {
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DEBUG(llvm::dbgs() << " Visiting: " << I);
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// If I has no side effects, we can ignore it.
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if (!I.mayHaveSideEffects()) {
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DEBUG(llvm::dbgs() << " SAFE! Instruction has no side "
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"effects.\n");
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continue;
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}
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// RefCounting operations on Self are ok since we are already in the
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// destructor. RefCountingOperations on other instructions could have side
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// effects though.
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if (auto *RefInst = dyn_cast<RefCountingInst>(&I)) {
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if (RefInst->getOperand(0).stripCasts().getDef() == Self) {
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// For now all ref counting insts have 1 operand. Put in an assert
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// just in case.
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assert(RefInst->getNumOperands() == 1 &&
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"Make sure RefInst only has one argument.");
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DEBUG(llvm::dbgs() << " SAFE! Ref count operation on "
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"Self.\n");
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continue;
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} else {
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DEBUG(llvm::dbgs() << " UNSAFE! Ref count operation not on"
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" self.\n");
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return true;
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}
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}
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// dealloc_stack can be ignored.
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if (isa<DeallocStackInst>(I)) {
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DEBUG(llvm::dbgs() << " SAFE! dealloc_stack can be "
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"ignored.\n");
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continue;
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}
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// dealloc_ref on self can be ignored, but dealloc_ref on anything else
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// can not be eliminated.
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if (auto *DeallocRef = dyn_cast<DeallocRefInst>(&I)) {
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if (DeallocRef->getOperand().stripCasts().getDef() == Self) {
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DEBUG(llvm::dbgs() << " SAFE! dealloc_ref on self.\n");
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continue;
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} else {
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DEBUG(llvm::dbgs() << " UNSAFE! dealloc_ref on value "
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"besides self.\n");
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return true;
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}
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}
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// Storing into the object can be ignored.
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if (auto *SI = dyn_cast<StoreInst>(&I))
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if (SI->getDest().stripAddressProjections().getDef() == Self) {
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DEBUG(llvm::dbgs() << " SAFE! Instruction is a store into "
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"self.\n");
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continue;
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}
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DEBUG(llvm::dbgs() << " UNSAFE! Unknown instruction.\n");
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// Otherwise, we can't remove the deallocation completely.
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return true;
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}
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// We didn't find any side effects.
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return false;
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}
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//===----------------------------------------------------------------------===//
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// Use Graph Analysis
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//===----------------------------------------------------------------------===//
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/// Returns false if Inst is an instruction that would require us to keep the
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/// alloc_ref alive.
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static bool canZapInstruction(SILInstruction *Inst) {
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// It is ok to eliminate various retains/releases. We are either removing
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// everything or nothing.
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if (isa<RefCountingInst>(Inst))
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return true;
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// If we see a store here, we have already checked that we are storing into
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// the pointer before we added it to the worklist, so we can skip it.
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if (isa<StoreInst>(Inst))
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return true;
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// If Inst does not read or write to memory, have side effects, and is not a
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// terminator, we can zap it.
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if (!Inst->mayHaveSideEffects() && !Inst->mayReadFromMemory() &&
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!isa<TermInst>(Inst))
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return true;
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// We know that the destructor has no side effects so we can remove the
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// deallocation instruction too.
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if (isa<DeallocationInst>(Inst))
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return true;
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// Much like deallocation, destroy addr is safe.
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if (isa<DestroyAddrInst>(Inst))
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return true;
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// Otherwise we do not know how to handle this instruction. Be conservative
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// and don't zap it.
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return false;
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}
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/// Analyze the use graph of AllocRef for any uses that would prevent us from
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/// zapping it completely.
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static bool
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hasUnremoveableUsers(SILInstruction *AllocRef,
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llvm::SmallSetVector<SILInstruction *, 16> &Users) {
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SmallVector<SILInstruction *, 16> Worklist;
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Worklist.push_back(AllocRef);
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DEBUG(llvm::dbgs() << " Analyzing Use Graph.");
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while (!Worklist.empty()) {
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SILInstruction *I = Worklist.pop_back_val();
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DEBUG(llvm::dbgs() << " Visiting: " << *I);
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// Insert the instruction into our InvolvedInstructions set. If we have
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// already seen it, then don't reprocess all of the uses.
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if (!Users.insert(I)) {
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DEBUG(llvm::dbgs() << " Already seen skipping...\n");
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continue;
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}
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// If we can't zap this instruction... bail...
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if (!canZapInstruction(I)) {
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DEBUG(llvm::dbgs() << " Found instruction we can't zap...\n");
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return true;
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}
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// At this point, we can remove the instruction as long as all of its users
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// can be removed as well. Scan its users and add them to the worklist for
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// recursive processing.
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for (auto *Op : I->getUses()) {
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auto *User = Op->getUser();
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// Make sure that we are only storing into our users, not storing our
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// users which would be an escape.
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if (auto *SI = dyn_cast<StoreInst>(User))
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if (Op->get() == SI->getSrc()) {
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DEBUG(llvm::dbgs() << " Found store of pointer. Failure: " <<
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*SI);
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return true;
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}
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// Otherwise, add normal instructions to the worklist for processing.
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Worklist.push_back(User);
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}
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}
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return false;
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}
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namespace {
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class DeadObjectElimination : public SILFunctionTransform {
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llvm::DenseMap<SILType, bool> DestructorAnalysisCache;
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llvm::SmallVector<AllocationInst*, 16> Allocations;
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void collectAllocations(SILFunction &Fn) {
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for (auto &BB : Fn)
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for (auto &II : BB)
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if (auto *AI = dyn_cast<AllocationInst>(&II))
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Allocations.push_back(AI);
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}
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bool processAllocRef(AllocRefInst *ARI);
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bool processAllocStack(AllocStackInst *ASI);
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bool processAllocBox(AllocBoxInst *ABI){ return false;}
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bool processFunction(SILFunction &Fn) {
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Allocations.clear();
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DestructorAnalysisCache.clear();
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bool Changed = false;
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collectAllocations(Fn);
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for (auto *II : Allocations) {
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if (auto *A = dyn_cast<AllocRefInst>(II))
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Changed |= processAllocRef(A);
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else if (auto *A = dyn_cast<AllocStackInst>(II))
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Changed |= processAllocStack(A);
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else if (auto *A = dyn_cast<AllocBoxInst>(II))
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Changed |= processAllocBox(A);
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}
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return Changed;
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}
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void run() override {
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if (processFunction(*getFunction()))
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invalidateAnalysis(SILAnalysis::PreserveKind::ProgramFlow);
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}
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StringRef getName() override { return "Dead Object Elimination"; }
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};
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} // end anonymous namespace
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//===----------------------------------------------------------------------===//
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// Function Processing
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//===----------------------------------------------------------------------===//
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void static
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removeInstructions(llvm::SmallSetVector<SILInstruction *, 16> &UsersToRemove) {
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for (auto *I : UsersToRemove) {
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if (!I->use_empty())
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for (unsigned i = 0, e = I->getNumTypes(); i != e; ++i)
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SILValue(I, i).replaceAllUsesWith(SILUndef::get(I->getType(i),
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I->getModule()));
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// Now we know that I should not have any uses... erase it from its parent.
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I->eraseFromParent();
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}
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}
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bool DeadObjectElimination::processAllocRef(AllocRefInst *ARI) {
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// Ok, we have an alloc_ref. Check the cache to see if we have already
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// computed the destructor behavior for its SILType.
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bool HasSideEffects;
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SILType Type = ARI->getType();
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auto CacheSearchResult = DestructorAnalysisCache.find(Type);
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if (CacheSearchResult != DestructorAnalysisCache.end()) {
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// Ok we found a value in the cache.
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HasSideEffects = CacheSearchResult->second;
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} else {
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// We did not find a value in the cache for our destructor. Analyze the
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// destructor to make sure it has no side effects. For now this only
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// supports alloc_ref of classes so any alloc_ref with a reference type
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// that is not a class this will return false for. Once we have analyzed
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// it, set Behavior to that value and insert the value into the Cache.
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HasSideEffects = doesDestructorHaveSideEffects(ARI);
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DestructorAnalysisCache[Type] = HasSideEffects;
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}
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if (HasSideEffects) {
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DEBUG(llvm::dbgs() << " Destructor had side effects. \n");
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return false;
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}
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// Our destructor has no side effects, so if we can prove that no loads
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// escape, then we can completely remove the use graph of this alloc_ref.
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llvm::SmallSetVector<SILInstruction *, 16> UsersToRemove;
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if (hasUnremoveableUsers(ARI, UsersToRemove)) {
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DEBUG(llvm::dbgs() << " Found a use that can not be zapped...\n");
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return false;
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}
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// Remove the AllocRef and all of its users.
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removeInstructions(UsersToRemove);
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DEBUG(llvm::dbgs() << " Success! Eliminating alloc_ref.\n");
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++DeadAllocRefEliminated;
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return true;
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}
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bool DeadObjectElimination::processAllocStack(AllocStackInst *ASI) {
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// Trivial types don't have destructors. Let's try to zap this AllocStackInst.
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if (!ASI->getElementType().isTrivial(ASI->getModule()))
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return false;
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llvm::SmallSetVector<SILInstruction *, 16> UsersToRemove;
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if (hasUnremoveableUsers(ASI, UsersToRemove)) {
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DEBUG(llvm::dbgs() << " Found a use that can not be zapped...\n");
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return false;
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}
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// Remove the AllocRef and all of its users.
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removeInstructions(UsersToRemove);
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DEBUG(llvm::dbgs() << " Success! Eliminating alloc_stack.\n");
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++DeadAllocStackEliminated;
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return true;
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}
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//===----------------------------------------------------------------------===//
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// Top Level Driver
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//===----------------------------------------------------------------------===//
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SILTransform *swift::createDeadObjectElimination() {
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return new DeadObjectElimination();
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}
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