Files
swift-mirror/lib/SILPasses/DeadFunctionElimination.cpp
Erik Eckstein 4e6efcb617 Fix a DEBUG log message in ExternalFunctionDefinitionsElimination.
Now the function name is printed before the function is deleted.



Swift SVN r27207
2015-04-10 11:27:48 +00:00

485 lines
17 KiB
C++

//===--- DeadFunctionElimination.cpp - Eliminate dead functions -----------===//
//
// This source file is part of the Swift.org open source project
//
// Copyright (c) 2014 - 2015 Apple Inc. and the Swift project authors
// Licensed under Apache License v2.0 with Runtime Library Exception
//
// See http://swift.org/LICENSE.txt for license information
// See http://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
//
//===----------------------------------------------------------------------===//
#define DEBUG_TYPE "sil-dead-function-elimination"
#include "swift/SILAnalysis/CallGraphAnalysis.h"
#include "swift/SILPasses/Passes.h"
#include "swift/SILPasses/Transforms.h"
#include "swift/SIL/PatternMatch.h"
#include "swift/SIL/Projection.h"
#include "swift/SIL/SILBuilder.h"
#include "swift/SIL/SILVisitor.h"
#include "swift/SILPasses/Utils/Local.h"
#include "llvm/ADT/SmallPtrSet.h"
#include "llvm/ADT/SmallVector.h"
#include "llvm/ADT/Statistic.h"
#include "llvm/Support/Debug.h"
using namespace swift;
STATISTIC(NumDeadFunc, "Number of dead functions eliminated");
STATISTIC(NumEliminatedExternalDefs, "Number of external function definitions eliminated");
/// This is a base class for passes that are based on function liveness
/// computations like e.g. dead function elimination.
/// It provides a common logic for computing live (i.e. reachable) functions.
class FunctionLivenessComputation {
protected:
/// Stores which functions implement a vtable or witness table method.
struct MethodInfo {
MethodInfo() : isAlive(false) {}
SmallVector<SILFunction *, 8> implementingFunctions;
/// True, if the whole method is alive, which implies that all implementing
/// functions are alive.
bool isAlive;
};
SILModule *Module;
llvm::DenseMap<AbstractFunctionDecl *, MethodInfo *> MethodInfos;
llvm::SpecificBumpPtrAllocator<MethodInfo> MethodInfoAllocator;
llvm::SmallSetVector<SILFunction *, 16> Worklist;
llvm::SmallPtrSet<SILFunction *, 100> AliveFunctions;
/// Checks is a function is alive, e.g. because it is visible externally.
bool isAnchorFunction(SILFunction *F) {
// Remove internal functions that are not referenced by anything.
if (isPossiblyUsedExternally(F->getLinkage(), Module->isWholeModule()))
return true;
// TODO: main is currently marked as internal so we explicitly check
// for functions with this name and keep them around.
if (F->getName() == SWIFT_ENTRY_POINT_FUNCTION)
return true;
// ObjC functions are called through the runtime and are therefore alive
// even if not referenced inside SIL.
if (F->getRepresentation() == SILFunctionTypeRepresentation::ObjCMethod)
return true;
return false;
}
/// Gets or creates the MethodInfo for a vtable or witness table method.
/// \p decl The method declaration. In case of a vtable method this is always
/// the most overriden method.
MethodInfo *getMethodInfo(AbstractFunctionDecl *decl) {
MethodInfo *&entry = MethodInfos[decl];
if (entry == nullptr) {
entry = new (MethodInfoAllocator.Allocate()) MethodInfo();
}
return entry;
}
/// Adds a function which implements a vtable or witness method.
void addImplementingFunction(MethodInfo *mi, SILFunction *F) {
if (mi->isAlive)
ensureAlive(F);
mi->implementingFunctions.push_back(F);
}
/// Returns true if a function is marked as alive.
bool isAlive(SILFunction *F) { return AliveFunctions.count(F) != 0; }
/// Marks a function as alive.
void ensureAlive(SILFunction *F) {
if (!isAlive(F)) {
AliveFunctions.insert(F);
assert(F && "function does not exist");
Worklist.insert(F);
}
}
/// Marks all implementing functions of a method as alive.
void ensureAlive(MethodInfo *mi) {
if (!mi->isAlive) {
mi->isAlive = true;
for (SILFunction *F : mi->implementingFunctions) {
ensureAlive(F);
}
}
}
/// Gets the base implementation of a method.
/// We always use the most overridden function to describe a method.
AbstractFunctionDecl *getBase(AbstractFunctionDecl *FD) {
while (FD->getOverriddenDecl()) {
FD = FD->getOverriddenDecl();
}
return FD;
}
/// Scans all references inside a function.
void scanFunction(SILFunction *F) {
for (SILBasicBlock &BB : *F) {
for (SILInstruction &I : BB) {
if (auto *MI = dyn_cast<MethodInst>(&I)) {
auto *funcDecl =
dyn_cast<AbstractFunctionDecl>(MI->getMember().getDecl());
MethodInfo *mi = getMethodInfo(getBase(funcDecl));
ensureAlive(mi);
} else if (auto *FRI = dyn_cast<FunctionRefInst>(&I)) {
ensureAlive(FRI->getReferencedFunction());
}
}
}
}
/// Retrieve the visiblity information from the AST.
bool isVisibleExternally(ValueDecl *decl) {
Accessibility accessibility = decl->getEffectiveAccess();
SILLinkage linkage;
switch (accessibility) {
case Accessibility::Private:
linkage = SILLinkage::Private;
break;
case Accessibility::Internal:
linkage = SILLinkage::Hidden;
break;
case Accessibility::Public:
linkage = SILLinkage::Public;
break;
}
if (isPossiblyUsedExternally(linkage, Module->isWholeModule()))
return true;
// If a vtable or witness table (method) is only visible in another module
// it can be accessed inside that module and we don't see this access.
// We hit this case e.g. if a table is imported from the stdlib.
if (decl->getDeclContext()->getParentModule() !=
Module->getAssociatedContext()->getParentModule())
return true;
return false;
}
/// Find anchors in vtables and witness tables, if required.
virtual void findAnchorsInTables() = 0;
/// Find all functions which are alive from the beginning.
/// For example, functions which may be referenced externally.
void findAnchors() {
findAnchorsInTables();
for (SILFunction &F : *Module) {
if (isAnchorFunction(&F)) {
DEBUG(llvm::dbgs() << " anchor function: " << F.getName() << "\n");
ensureAlive(&F);
}
}
for (SILGlobalVariable &G : Module->getSILGlobalList()) {
if (SILFunction *initFunc = G.getInitializer()) {
ensureAlive(initFunc);
}
}
}
public:
FunctionLivenessComputation(SILModule *module) : Module(module) {}
/// The main entry point of the optimization.
bool findAliveFunctions() {
DEBUG(llvm::dbgs() << "running function elimination\n");
// Find everything which may not be eliminated, e.g. because it is accessed
// externally.
findAnchors();
// The core of the algorithm: Mark functions as alive which can be reached
// from the anchors.
while (!Worklist.empty()) {
SILFunction *F = Worklist.back();
Worklist.pop_back();
scanFunction(F);
}
return false;
}
virtual ~FunctionLivenessComputation() {}
};
//===----------------------------------------------------------------------===//
// DeadFunctionElimination
//===----------------------------------------------------------------------===//
class DeadFunctionElimination : FunctionLivenessComputation {
/// DeadFunctionElimination pass takes functions
/// reachable via vtables and witness_tables into account
/// when computing a function liveness information.
void findAnchorsInTables() {
// Check vtable methods.
for (SILVTable &vTable : Module->getVTableList()) {
for (auto &entry : vTable.getEntries()) {
SILFunction *F = entry.second;
auto *fd = dyn_cast<AbstractFunctionDecl>(entry.first.getDecl());
fd = getBase(fd);
MethodInfo *mi = getMethodInfo(fd);
addImplementingFunction(mi, F);
if (// Destructors are alive because they are called from swift_release
entry.first.isDestructor()
// A conservative approach: if any of the overridden functions is
// visible externally, we mark the whole method as alive.
|| isPossiblyUsedExternally(F->getLinkage(), Module->isWholeModule())
// We also have to check the method declaration's accessibility.
// Needed if it's a public base method declared in another
// compilation unit (for this we have no SILFunction).
|| isVisibleExternally(fd)
// Declarations are always accessible externally, so they are alive.
|| !F->isDefinition()) {
ensureAlive(mi);
}
}
}
// Check witness methods.
for (SILWitnessTable &WT : Module->getWitnessTableList()) {
bool tableIsAlive = isVisibleExternally(WT.getConformance()->getProtocol());
for (const SILWitnessTable::Entry &entry : WT.getEntries()) {
if (entry.getKind() == SILWitnessTable::Method) {
auto methodWitness = entry.getMethodWitness();
auto *fd = dyn_cast<AbstractFunctionDecl>(methodWitness.Requirement.
getDecl());
assert(fd == getBase(fd) && "key in witness table is overridden");
SILFunction *F = methodWitness.Witness;
if (F) {
MethodInfo *mi = getMethodInfo(fd);
addImplementingFunction(mi, F);
if (tableIsAlive || !F->isDefinition())
ensureAlive(mi);
}
}
}
}
}
/// Removes all dead methods from vtables and witness tables.
void removeDeadEntriesFromTables() {
for (SILVTable &vTable : Module->getVTableList()) {
vTable.removeEntries_if([this](SILVTable::Pair &entry) -> bool {
if (!isAlive(entry.second)) {
DEBUG(llvm::dbgs() << " erase dead vtable method " <<
entry.second->getName() << "\n");
return true;
}
return false;
});
}
auto &WitnessTables = Module->getWitnessTableList();
for (auto WI = WitnessTables.begin(), EI = WitnessTables.end(); WI != EI;) {
SILWitnessTable *WT = WI++;
WT->clearMethods_if([this](const SILWitnessTable::MethodWitness &MW) -> bool {
if (!isAlive(MW.Witness)) {
DEBUG(llvm::dbgs() << " erase dead witness method " <<
MW.Witness->getName() << "\n");
return true;
}
return false;
});
}
}
public:
DeadFunctionElimination(SILModule *module)
: FunctionLivenessComputation(module) {}
/// The main entry point of the optimization.
void eliminateFunctions(SILModuleTransform *DFEPass) {
DEBUG(llvm::dbgs() << "running dead function elimination\n");
findAliveFunctions();
bool CallGraphChanged = false;
removeDeadEntriesFromTables();
// First drop all references so that we don't get problems with non-null
// reference counts of dead functions.
for (SILFunction &F : *Module) {
if (!isAlive(&F)) {
F.dropAllReferences();
}
}
// Next step: delete all dead functions.
for (auto FI = Module->begin(), EI = Module->end(); FI != EI;) {
SILFunction *F = FI++;
if (!isAlive(F)) {
DEBUG(llvm::dbgs() << " erase dead function " << F->getName() << "\n");
NumDeadFunc++;
Module->eraseFunction(F);
CallGraphChanged = true;
DFEPass->invalidateAnalysis(F, SILAnalysis::PreserveKind::Nothing);
}
}
}
};
//===----------------------------------------------------------------------===//
// ExternalFunctionDefinitionsElimination
//===----------------------------------------------------------------------===//
/// This pass performs removal of external function definitions for a sake of
/// reducing the amount of code to run through IRGen. It is supposed to run very
/// late in the pipeline, after devirtualization, inlining and specialization
/// passes.
///
/// NOTE:
/// Overall, this pass does not try to remove any information which can be
/// useful for LLVM code generation, e.g. for analysis of function's
/// side-effects. Therefore it does not remove bodies of any external functions
/// that are alive, because LLVM may analyze their bodies to determine their
/// side-effects and use it to achieve a better optimization.
///
/// Current implementation does not consider functions which are reachable only
/// via vtables or witness_tables as alive and removes their bodies, because
/// even if they would be kept around, LLVM does not know how to look at
/// function definitions through Swift's vtables and witness_tables.
///
/// TODO:
/// Once there is a proper support for IPO in Swift compiler and/or there is
/// a way to communicate function's side-effects without providing its body
/// (e.g. by means of SILFunction flags, attributes, etc), it should be
/// safe to remove bodies of all external definitions.
class ExternalFunctionDefinitionsElimination : FunctionLivenessComputation {
/// ExternalFunctionDefinitionsElimination pass does not take functions
/// reachable via vtables and witness_tables into account when computing
/// a function liveness information.
void findAnchorsInTables() {
}
bool findAliveFunctions() {
/// TODO: Once there is a proper support for IPO,
/// bodies of all external functions can be removed.
/// Therefore there is no need for a livesness computation.
/// The next line can be just replaced by:
/// return false;
return FunctionLivenessComputation::findAliveFunctions();
}
/// Try to convert definition into declaration.
/// Returns true if function was erased from the module.
bool tryToConvertExtenralDefinitionIntoDeclaration(SILFunction *F) {
bool FunctionWasErased = false;
// Bail if it is a declaration already
if (!F->isDefinition())
return false;
// Bail if there is no external implementation of this function.
if (!F->isAvailableExternally())
return false;
// Bail if has a shared visibility, as there are no guarantees
// that an implementation is available elsewhere.
if (hasSharedVisibility(F->getLinkage()))
return false;
// Make this definition a declaration by removing the body of a function.
DEBUG(llvm::dbgs() << " removed external function " << F->getName()
<< "\n");
F->dropAllReferences();
auto &Blocks = F->getBlocks();
Blocks.clear();
assert(F->isExternalDeclaration() &&
"Function should be an external declaration");
if (F->getRefCount() == 0) {
Module->eraseFunction(F);
FunctionWasErased = true;
}
NumEliminatedExternalDefs++;
return FunctionWasErased;
}
public:
ExternalFunctionDefinitionsElimination(SILModule *module)
: FunctionLivenessComputation(module) {}
/// Eliminate bodies of external functions which are not alive.
///
/// Bodies of alive functions should not be removed, as LLVM may
/// still need them for analyzing their side-effects.
void eliminateFunctions(SILModuleTransform *DFEPass) {
findAliveFunctions();
// Get rid of definitions for all global functions that are not marked as
// alive.
for (auto FI = Module->begin(), EI = Module->end(); FI != EI;) {
SILFunction *F = FI++;
// Do not remove bodies of any functions that are alive.
if (!isAlive(F)) {
if (tryToConvertExtenralDefinitionIntoDeclaration(F)) {
DFEPass->invalidateAnalysis(F, SILAnalysis::PreserveKind::Nothing);
}
}
}
}
};
//===----------------------------------------------------------------------===//
// Pass Definition and Entry Points
//===----------------------------------------------------------------------===//
namespace {
class SILDeadFuncElimination : public SILModuleTransform {
void run() override {
DEBUG(llvm::dbgs() << "Running DeadFuncElimination\n");
// Avoid that Deserializers keep references to functions in their caches.
getModule()->invalidateSILLoaderCaches();
DeadFunctionElimination deadFunctionElimination(getModule());
deadFunctionElimination.eliminateFunctions(this);
}
StringRef getName() override { return "Dead Function Elimination"; }
};
class SILExternalFuncDefinitionsElimination : public SILModuleTransform {
void run() override {
DEBUG(llvm::dbgs() << "Running ExternalFunctionDefinitionsElimination\n");
// Avoid that Deserializers keep references to functions in their caches.
getModule()->invalidateSILLoaderCaches();
ExternalFunctionDefinitionsElimination EFDFE(getModule());
EFDFE.eliminateFunctions(this);
}
StringRef getName() override {
return "External Function Definitions Elimination";
}
};
} // end anonymous namespace
SILTransform *swift::createDeadFunctionElimination() {
return new SILDeadFuncElimination();
}
SILTransform *swift::createExternalFunctionDefinitionsElimination() {
return new SILExternalFuncDefinitionsElimination();
}