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777 lines
26 KiB
C++
777 lines
26 KiB
C++
//===--- SILFunction.cpp - Defines the SILFunction data structure ---------===//
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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 - 2017 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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#define DEBUG_TYPE "sil-function"
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#include "swift/SIL/SILArgument.h"
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#include "swift/SIL/SILBasicBlock.h"
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#include "swift/SIL/SILBridging.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/SILProfiler.h"
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#include "swift/SIL/CFG.h"
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#include "swift/SIL/PrettyStackTrace.h"
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#include "swift/AST/Availability.h"
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#include "swift/AST/GenericEnvironment.h"
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#include "swift/AST/Module.h"
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#include "swift/Basic/OptimizationMode.h"
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#include "swift/Basic/Statistic.h"
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#include "llvm/ADT/Optional.h"
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#include "llvm/ADT/Statistic.h"
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#include "llvm/Support/CommandLine.h"
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#include "llvm/Support/GraphWriter.h"
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#include "clang/AST/Decl.h"
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using namespace swift;
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using namespace Lowering;
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STATISTIC(MaxBitfieldID, "Max value of SILFunction::currentBitfieldID");
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SILSpecializeAttr::SILSpecializeAttr(bool exported, SpecializationKind kind,
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GenericSignature specializedSig,
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SILFunction *target, Identifier spiGroup,
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const ModuleDecl *spiModule,
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AvailabilityContext availability)
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: kind(kind), exported(exported), specializedSignature(specializedSig),
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spiGroup(spiGroup), availability(availability), spiModule(spiModule), targetFunction(target) {
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if (targetFunction)
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targetFunction->incrementRefCount();
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}
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SILSpecializeAttr *
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SILSpecializeAttr::create(SILModule &M, GenericSignature specializedSig,
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bool exported, SpecializationKind kind,
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SILFunction *target, Identifier spiGroup,
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const ModuleDecl *spiModule,
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AvailabilityContext availability) {
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void *buf = M.allocate(sizeof(SILSpecializeAttr), alignof(SILSpecializeAttr));
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return ::new (buf) SILSpecializeAttr(exported, kind, specializedSig, target,
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spiGroup, spiModule, availability);
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}
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void SILFunction::addSpecializeAttr(SILSpecializeAttr *Attr) {
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if (getLoweredFunctionType()->getInvocationGenericSignature()) {
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Attr->F = this;
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SpecializeAttrSet.push_back(Attr);
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}
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}
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void SILFunction::removeSpecializeAttr(SILSpecializeAttr *attr) {
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// Drop the reference to the _specialize(target:) function.
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if (auto *targetFun = attr->getTargetFunction()) {
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targetFun->decrementRefCount();
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}
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SpecializeAttrSet.erase(std::remove_if(SpecializeAttrSet.begin(),
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SpecializeAttrSet.end(),
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[attr](SILSpecializeAttr *member) {
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return member == attr;
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}),
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SpecializeAttrSet.end());
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}
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SILFunction *
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SILFunction::create(SILModule &M, SILLinkage linkage, StringRef name,
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CanSILFunctionType loweredType,
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GenericEnvironment *genericEnv, Optional<SILLocation> loc,
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IsBare_t isBareSILFunction, IsTransparent_t isTrans,
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IsSerialized_t isSerialized, ProfileCounter entryCount,
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IsDynamicallyReplaceable_t isDynamic,
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IsExactSelfClass_t isExactSelfClass,
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IsThunk_t isThunk,
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SubclassScope classSubclassScope, Inline_t inlineStrategy,
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EffectsKind E, SILFunction *insertBefore,
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const SILDebugScope *debugScope) {
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// Get a StringMapEntry for the function. As a sop to error cases,
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// allow the name to have an empty string.
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llvm::StringMapEntry<SILFunction*> *entry = nullptr;
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if (!name.empty()) {
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entry = &*M.FunctionTable.insert(std::make_pair(name, nullptr)).first;
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PrettyStackTraceSILFunction trace("creating", entry->getValue());
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assert(!entry->getValue() && "function already exists");
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name = entry->getKey();
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}
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SILFunction *fn = M.removeFromZombieList(name);
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if (fn) {
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// Resurrect a zombie function.
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// This happens for example if a specialized function gets dead and gets
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// deleted. And afterwards the same specialization is created again.
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fn->init(linkage, name, loweredType, genericEnv, loc, isBareSILFunction,
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isTrans, isSerialized, entryCount, isThunk, classSubclassScope,
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inlineStrategy, E, debugScope, isDynamic, isExactSelfClass);
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assert(fn->empty());
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} else {
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fn = new (M) SILFunction(M, linkage, name, loweredType, genericEnv, loc,
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isBareSILFunction, isTrans, isSerialized,
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entryCount, isThunk, classSubclassScope,
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inlineStrategy, E, debugScope,
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isDynamic, isExactSelfClass);
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}
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if (entry) entry->setValue(fn);
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if (insertBefore)
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M.functions.insert(SILModule::iterator(insertBefore), fn);
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else
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M.functions.push_back(fn);
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return fn;
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}
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SwiftMetatype SILFunction::registeredMetatype;
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SILFunction::SILFunction(SILModule &Module, SILLinkage Linkage, StringRef Name,
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CanSILFunctionType LoweredType,
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GenericEnvironment *genericEnv,
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Optional<SILLocation> Loc, IsBare_t isBareSILFunction,
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IsTransparent_t isTrans, IsSerialized_t isSerialized,
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ProfileCounter entryCount, IsThunk_t isThunk,
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SubclassScope classSubclassScope,
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Inline_t inlineStrategy, EffectsKind E,
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const SILDebugScope *DebugScope,
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IsDynamicallyReplaceable_t isDynamic,
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IsExactSelfClass_t isExactSelfClass)
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: SwiftObjectHeader(registeredMetatype),
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Module(Module), Availability(AvailabilityContext::alwaysAvailable()) {
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init(Linkage, Name, LoweredType, genericEnv, Loc, isBareSILFunction, isTrans,
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isSerialized, entryCount, isThunk, classSubclassScope, inlineStrategy,
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E, DebugScope, isDynamic, isExactSelfClass);
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// Set our BB list to have this function as its parent. This enables us to
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// splice efficiently basic blocks in between functions.
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BlockList.Parent = this;
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}
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void SILFunction::init(SILLinkage Linkage, StringRef Name,
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CanSILFunctionType LoweredType,
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GenericEnvironment *genericEnv,
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Optional<SILLocation> Loc, IsBare_t isBareSILFunction,
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IsTransparent_t isTrans, IsSerialized_t isSerialized,
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ProfileCounter entryCount, IsThunk_t isThunk,
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SubclassScope classSubclassScope,
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Inline_t inlineStrategy, EffectsKind E,
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const SILDebugScope *DebugScope,
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IsDynamicallyReplaceable_t isDynamic,
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IsExactSelfClass_t isExactSelfClass) {
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this->Name = Name;
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this->LoweredType = LoweredType;
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this->GenericEnv = genericEnv;
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this->SpecializationInfo = nullptr;
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this->EntryCount = entryCount;
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this->Availability = AvailabilityContext::alwaysAvailable();
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this->Bare = isBareSILFunction;
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this->Transparent = isTrans;
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this->Serialized = isSerialized;
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this->Thunk = isThunk;
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this->ClassSubclassScope = unsigned(classSubclassScope);
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this->GlobalInitFlag = false;
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this->InlineStrategy = inlineStrategy;
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this->Linkage = unsigned(Linkage);
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this->HasCReferences = false;
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this->IsWeakImported = false;
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this->IsDynamicReplaceable = isDynamic;
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this->ExactSelfClass = isExactSelfClass;
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this->Inlined = false;
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this->Zombie = false;
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this->HasOwnership = true,
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this->WasDeserializedCanonical = false;
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this->IsStaticallyLinked = false;
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this->IsWithoutActuallyEscapingThunk = false;
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this->OptMode = unsigned(OptimizationMode::NotSet);
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this->perfConstraints = PerformanceConstraints::None;
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this->EffectsKindAttr = unsigned(E);
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assert(!Transparent || !IsDynamicReplaceable);
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validateSubclassScope(classSubclassScope, isThunk, nullptr);
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setDebugScope(DebugScope);
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}
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SILFunction::~SILFunction() {
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// If the function is recursive, a function_ref inst inside of the function
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// will give the function a non-zero ref count triggering the assertion. Thus
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// we drop all instruction references before we erase.
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// We also need to drop all references if instructions are allocated using
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// an allocator that may recycle freed memory.
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dropAllReferences();
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if (ReplacedFunction) {
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ReplacedFunction->decrementRefCount();
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ReplacedFunction = nullptr;
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}
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auto &M = getModule();
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for (auto &BB : *this) {
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BB.eraseAllInstructions(M);
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}
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assert(RefCount == 0 &&
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"Function cannot be deleted while function_ref's still exist");
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assert(!newestAliveBitfield &&
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"Not all BasicBlockBitfields deleted at function destruction");
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if (currentBitfieldID > MaxBitfieldID)
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MaxBitfieldID = currentBitfieldID;
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}
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void SILFunction::createProfiler(ASTNode Root, SILDeclRef forDecl,
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ForDefinition_t forDefinition) {
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assert(!Profiler && "Function already has a profiler");
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Profiler = SILProfiler::create(Module, forDefinition, Root, forDecl);
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}
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bool SILFunction::hasForeignBody() const {
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if (!hasClangNode()) return false;
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return SILDeclRef::isClangGenerated(getClangNode());
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}
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const SILFunction *SILFunction::getOriginOfSpecialization() const {
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if (!isSpecialization())
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return nullptr;
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const SILFunction *p = getSpecializationInfo()->getParent();
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while (p->isSpecialization()) {
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p = p->getSpecializationInfo()->getParent();
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}
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return p;
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}
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void SILFunction::numberValues(llvm::DenseMap<const SILNode*, unsigned> &
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ValueToNumberMap) const {
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unsigned idx = 0;
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for (auto &BB : *this) {
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for (auto I = BB.args_begin(), E = BB.args_end(); I != E; ++I)
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ValueToNumberMap[*I] = idx++;
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for (auto &I : BB) {
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auto results = I.getResults();
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if (results.empty()) {
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ValueToNumberMap[I.asSILNode()] = idx++;
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} else {
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// Assign the instruction node the first result ID.
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ValueToNumberMap[I.asSILNode()] = idx;
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for (auto result : results) {
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ValueToNumberMap[result] = idx++;
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}
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}
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}
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}
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}
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ASTContext &SILFunction::getASTContext() const {
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return getModule().getASTContext();
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}
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OptimizationMode SILFunction::getEffectiveOptimizationMode() const {
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if (OptimizationMode(OptMode) != OptimizationMode::NotSet)
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return OptimizationMode(OptMode);
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return getModule().getOptions().OptMode;
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}
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bool SILFunction::shouldOptimize() const {
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return getEffectiveOptimizationMode() != OptimizationMode::NoOptimization;
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}
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Type SILFunction::mapTypeIntoContext(Type type) const {
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return GenericEnvironment::mapTypeIntoContext(
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getGenericEnvironment(), type);
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}
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SILType SILFunction::mapTypeIntoContext(SILType type) const {
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if (auto *genericEnv = getGenericEnvironment())
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return genericEnv->mapTypeIntoContext(getModule(), type);
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return type;
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}
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SILType GenericEnvironment::mapTypeIntoContext(SILModule &M,
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SILType type) const {
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assert(!type.hasArchetype());
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auto genericSig = getGenericSignature().getCanonicalSignature();
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return type.subst(M,
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QueryInterfaceTypeSubstitutions(this),
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LookUpConformanceInSignature(genericSig.getPointer()),
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genericSig);
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}
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bool SILFunction::isNoReturnFunction(TypeExpansionContext context) const {
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return SILType::getPrimitiveObjectType(getLoweredFunctionType())
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.isNoReturnFunction(getModule(), context);
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}
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const TypeLowering &
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SILFunction::getTypeLowering(AbstractionPattern orig, Type subst) {
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return getModule().Types.getTypeLowering(orig, subst,
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TypeExpansionContext(*this));
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}
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const TypeLowering &SILFunction::getTypeLowering(Type t) const {
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return getModule().Types.getTypeLowering(t, TypeExpansionContext(*this));
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}
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SILType
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SILFunction::getLoweredType(AbstractionPattern orig, Type subst) const {
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return getModule().Types.getLoweredType(orig, subst,
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TypeExpansionContext(*this));
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}
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SILType SILFunction::getLoweredType(Type t) const {
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return getModule().Types.getLoweredType(t, TypeExpansionContext(*this));
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}
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SILType SILFunction::getLoweredLoadableType(Type t) const {
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auto &M = getModule();
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return M.Types.getLoweredLoadableType(t, TypeExpansionContext(*this), M);
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}
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const TypeLowering &SILFunction::getTypeLowering(SILType type) const {
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return getModule().Types.getTypeLowering(type, *this);
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}
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SILType SILFunction::getLoweredType(SILType t) const {
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return getTypeLowering(t).getLoweredType().getCategoryType(t.getCategory());
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}
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bool SILFunction::isTypeABIAccessible(SILType type) const {
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return getModule().isTypeABIAccessible(type, TypeExpansionContext(*this));
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}
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bool SILFunction::isWeakImported() const {
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// For imported functions check the Clang declaration.
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if (ClangNodeOwner)
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return ClangNodeOwner->getClangDecl()->isWeakImported();
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// For native functions check a flag on the SILFunction
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// itself.
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if (!isAvailableExternally())
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return false;
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if (isAlwaysWeakImported())
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return true;
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if (Availability.isAlwaysAvailable())
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return false;
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auto fromContext = AvailabilityContext::forDeploymentTarget(
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getASTContext());
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return !fromContext.isContainedIn(Availability);
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}
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SILBasicBlock *SILFunction::createBasicBlock() {
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SILBasicBlock *newBlock = new (getModule()) SILBasicBlock(this);
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BlockList.push_back(newBlock);
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return newBlock;
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}
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SILBasicBlock *SILFunction::createBasicBlockAfter(SILBasicBlock *afterBB) {
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SILBasicBlock *newBlock = new (getModule()) SILBasicBlock(this);
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BlockList.insertAfter(afterBB->getIterator(), newBlock);
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return newBlock;
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}
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SILBasicBlock *SILFunction::createBasicBlockBefore(SILBasicBlock *beforeBB) {
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SILBasicBlock *newBlock = new (getModule()) SILBasicBlock(this);
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BlockList.insert(beforeBB->getIterator(), newBlock);
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return newBlock;
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}
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void SILFunction::moveAllBlocksFromOtherFunction(SILFunction *F) {
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BlockList.splice(begin(), F->BlockList);
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SILModule &mod = getModule();
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for (SILBasicBlock &block : *this) {
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for (SILInstruction &inst : block) {
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mod.notifyMovedInstruction(&inst, F);
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}
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}
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}
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void SILFunction::moveBlockFromOtherFunction(SILBasicBlock *blockInOtherFunction,
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iterator insertPointInThisFunction) {
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SILFunction *otherFunc = blockInOtherFunction->getParent();
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assert(otherFunc != this);
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BlockList.splice(insertPointInThisFunction, otherFunc->BlockList,
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blockInOtherFunction);
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SILModule &mod = getModule();
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for (SILInstruction &inst : *blockInOtherFunction) {
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mod.notifyMovedInstruction(&inst, otherFunc);
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}
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}
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void SILFunction::moveBlockBefore(SILBasicBlock *BB, SILFunction::iterator IP) {
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assert(BB->getParent() == this);
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if (SILFunction::iterator(BB) == IP)
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return;
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BlockList.remove(BB);
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BlockList.insert(IP, BB);
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}
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//===----------------------------------------------------------------------===//
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// View CFG Implementation
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//===----------------------------------------------------------------------===//
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#ifndef NDEBUG
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static llvm::cl::opt<unsigned>
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MaxColumns("view-cfg-max-columns", llvm::cl::init(80),
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llvm::cl::desc("Maximum width of a printed node"));
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namespace {
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enum class LongLineBehavior { None, Truncate, Wrap };
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} // end anonymous namespace
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static llvm::cl::opt<LongLineBehavior>
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LLBehavior("view-cfg-long-line-behavior",
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llvm::cl::init(LongLineBehavior::Truncate),
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llvm::cl::desc("Behavior when line width is greater than the "
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"value provided my -view-cfg-max-columns "
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"option"),
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llvm::cl::values(
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clEnumValN(LongLineBehavior::None, "none", "Print everything"),
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clEnumValN(LongLineBehavior::Truncate, "truncate",
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"Truncate long lines"),
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clEnumValN(LongLineBehavior::Wrap, "wrap", "Wrap long lines")));
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static llvm::cl::opt<bool>
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RemoveUseListComments("view-cfg-remove-use-list-comments",
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llvm::cl::init(false),
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llvm::cl::desc("Should use list comments be removed"));
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template <typename InstTy, typename CaseValueTy>
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inline CaseValueTy getCaseValueForBB(const InstTy *Inst,
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const SILBasicBlock *BB) {
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for (unsigned i = 0, e = Inst->getNumCases(); i != e; ++i) {
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auto P = Inst->getCase(i);
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if (P.second != BB)
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continue;
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return P.first;
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}
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llvm_unreachable("Error! should never pass in BB that is not a successor");
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}
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namespace llvm {
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template <>
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struct DOTGraphTraits<SILFunction *> : public DefaultDOTGraphTraits {
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DOTGraphTraits(bool isSimple = false) : DefaultDOTGraphTraits(isSimple) {}
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static std::string getGraphName(SILFunction *F) {
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return "CFG for '" + F->getName().str() + "' function";
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}
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static std::string getSimpleNodeLabel(SILBasicBlock *Node, SILFunction *F) {
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std::string OutStr;
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raw_string_ostream OSS(OutStr);
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const_cast<SILBasicBlock *>(Node)->printAsOperand(OSS, false);
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return OSS.str();
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}
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static std::string getCompleteNodeLabel(SILBasicBlock *Node, SILFunction *F) {
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std::string Str;
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raw_string_ostream OS(Str);
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OS << *Node;
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std::string OutStr = OS.str();
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if (OutStr[0] == '\n')
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OutStr.erase(OutStr.begin());
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// Process string output to make it nicer...
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unsigned ColNum = 0;
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unsigned LastSpace = 0;
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for (unsigned i = 0; i != OutStr.length(); ++i) {
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|
if (OutStr[i] == '\n') { // Left justify
|
|
OutStr[i] = '\\';
|
|
OutStr.insert(OutStr.begin() + i + 1, 'l');
|
|
ColNum = 0;
|
|
LastSpace = 0;
|
|
} else if (RemoveUseListComments && OutStr[i] == '/' &&
|
|
i != (OutStr.size() - 1) && OutStr[i + 1] == '/') {
|
|
unsigned Idx = OutStr.find('\n', i + 1); // Find end of line
|
|
OutStr.erase(OutStr.begin() + i, OutStr.begin() + Idx);
|
|
--i;
|
|
|
|
} else if (ColNum == MaxColumns) { // Handle long lines.
|
|
|
|
if (LLBehavior == LongLineBehavior::Wrap) {
|
|
if (!LastSpace)
|
|
LastSpace = i;
|
|
OutStr.insert(LastSpace, "\\l...");
|
|
ColNum = i - LastSpace;
|
|
LastSpace = 0;
|
|
i += 3; // The loop will advance 'i' again.
|
|
} else if (LLBehavior == LongLineBehavior::Truncate) {
|
|
unsigned Idx = OutStr.find('\n', i + 1); // Find end of line
|
|
OutStr.erase(OutStr.begin() + i, OutStr.begin() + Idx);
|
|
--i;
|
|
}
|
|
|
|
// Else keep trying to find a space.
|
|
} else
|
|
++ColNum;
|
|
if (OutStr[i] == ' ')
|
|
LastSpace = i;
|
|
}
|
|
return OutStr;
|
|
}
|
|
|
|
std::string getNodeLabel(SILBasicBlock *Node, SILFunction *Graph) {
|
|
if (isSimple())
|
|
return getSimpleNodeLabel(Node, Graph);
|
|
else
|
|
return getCompleteNodeLabel(Node, Graph);
|
|
}
|
|
|
|
static std::string getEdgeSourceLabel(SILBasicBlock *Node,
|
|
SILBasicBlock::succblock_iterator I) {
|
|
const SILBasicBlock *Succ = *I;
|
|
const TermInst *Term = Node->getTerminator();
|
|
|
|
// Label source of conditional branches with "T" or "F"
|
|
if (auto *CBI = dyn_cast<CondBranchInst>(Term))
|
|
return (Succ == CBI->getTrueBB()) ? "T" : "F";
|
|
|
|
// Label source of switch edges with the associated value.
|
|
if (auto *SI = dyn_cast<SwitchValueInst>(Term)) {
|
|
if (SI->hasDefault() && SI->getDefaultBB() == Succ)
|
|
return "def";
|
|
|
|
std::string Str;
|
|
raw_string_ostream OS(Str);
|
|
|
|
SILValue I = getCaseValueForBB<SwitchValueInst, SILValue>(SI, Succ);
|
|
OS << I; // TODO: or should we output the literal value of I?
|
|
return OS.str();
|
|
}
|
|
|
|
if (auto *SEIB = dyn_cast<SwitchEnumInst>(Term)) {
|
|
std::string Str;
|
|
raw_string_ostream OS(Str);
|
|
|
|
EnumElementDecl *E =
|
|
getCaseValueForBB<SwitchEnumInst, EnumElementDecl *>(SEIB, Succ);
|
|
OS << E->getName();
|
|
return OS.str();
|
|
}
|
|
|
|
if (auto *SEIB = dyn_cast<SwitchEnumAddrInst>(Term)) {
|
|
std::string Str;
|
|
raw_string_ostream OS(Str);
|
|
|
|
EnumElementDecl *E =
|
|
getCaseValueForBB<SwitchEnumAddrInst, EnumElementDecl *>(SEIB, Succ);
|
|
OS << E->getName();
|
|
return OS.str();
|
|
}
|
|
|
|
if (auto *DMBI = dyn_cast<DynamicMethodBranchInst>(Term))
|
|
return (Succ == DMBI->getHasMethodBB()) ? "T" : "F";
|
|
|
|
if (auto *CCBI = dyn_cast<CheckedCastBranchInst>(Term))
|
|
return (Succ == CCBI->getSuccessBB()) ? "T" : "F";
|
|
|
|
if (auto *CCBI = dyn_cast<CheckedCastValueBranchInst>(Term))
|
|
return (Succ == CCBI->getSuccessBB()) ? "T" : "F";
|
|
|
|
if (auto *CCBI = dyn_cast<CheckedCastAddrBranchInst>(Term))
|
|
return (Succ == CCBI->getSuccessBB()) ? "T" : "F";
|
|
|
|
return "";
|
|
}
|
|
};
|
|
} // namespace llvm
|
|
#endif
|
|
|
|
#ifndef NDEBUG
|
|
static llvm::cl::opt<std::string>
|
|
TargetFunction("view-cfg-only-for-function", llvm::cl::init(""),
|
|
llvm::cl::desc("Only print out the cfg for this function"));
|
|
#endif
|
|
|
|
static void viewCFGHelper(const SILFunction* f, bool skipBBContents) {
|
|
/// When asserts are disabled, this should be a NoOp.
|
|
#ifndef NDEBUG
|
|
// If we have a target function, only print that function out.
|
|
if (!TargetFunction.empty() && !(f->getName().str() == TargetFunction))
|
|
return;
|
|
|
|
ViewGraph(const_cast<SILFunction *>(f), "cfg" + f->getName().str(),
|
|
/*shortNames=*/skipBBContents);
|
|
#endif
|
|
}
|
|
|
|
void SILFunction::viewCFG() const {
|
|
viewCFGHelper(this, /*skipBBContents=*/false);
|
|
}
|
|
|
|
void SILFunction::viewCFGOnly() const {
|
|
viewCFGHelper(this, /*skipBBContents=*/true);
|
|
}
|
|
|
|
|
|
bool SILFunction::hasDynamicSelfMetadata() const {
|
|
auto paramTypes =
|
|
getConventions().getParameterSILTypes(TypeExpansionContext::minimal());
|
|
if (paramTypes.empty())
|
|
return false;
|
|
|
|
auto silTy = *std::prev(paramTypes.end());
|
|
if (!silTy.isObject())
|
|
return false;
|
|
|
|
auto selfTy = silTy.getASTType();
|
|
|
|
if (auto metaTy = dyn_cast<MetatypeType>(selfTy)) {
|
|
selfTy = metaTy.getInstanceType();
|
|
if (auto dynamicSelfTy = dyn_cast<DynamicSelfType>(selfTy))
|
|
selfTy = dynamicSelfTy.getSelfType();
|
|
}
|
|
|
|
return !!selfTy.getClassOrBoundGenericClass();
|
|
}
|
|
|
|
bool SILFunction::hasName(const char *Name) const {
|
|
return getName() == Name;
|
|
}
|
|
|
|
/// Returns true if this function can be referenced from a fragile function
|
|
/// body.
|
|
bool SILFunction::hasValidLinkageForFragileRef() const {
|
|
// Fragile functions can reference 'static inline' functions imported
|
|
// from C.
|
|
if (hasForeignBody())
|
|
return true;
|
|
|
|
// If we can inline it, we can reference it.
|
|
if (hasValidLinkageForFragileInline())
|
|
return true;
|
|
|
|
// If the containing module has been serialized already, we no longer
|
|
// enforce any invariants.
|
|
if (getModule().isSerialized())
|
|
return true;
|
|
|
|
// If the function has a subclass scope that limits its visibility outside
|
|
// the module despite its linkage, we cannot reference it.
|
|
if (getClassSubclassScope() == SubclassScope::Resilient &&
|
|
isAvailableExternally())
|
|
return false;
|
|
|
|
// Otherwise, only public functions can be referenced.
|
|
return hasPublicVisibility(getLinkage());
|
|
}
|
|
|
|
bool
|
|
SILFunction::isPossiblyUsedExternally() const {
|
|
auto linkage = getLinkage();
|
|
|
|
// Hidden functions may be referenced by other C code in the linkage unit.
|
|
if (linkage == SILLinkage::Hidden && hasCReferences())
|
|
return true;
|
|
|
|
if (ReplacedFunction)
|
|
return true;
|
|
|
|
return swift::isPossiblyUsedExternally(linkage, getModule().isWholeModule());
|
|
}
|
|
|
|
bool SILFunction::isExternallyUsedSymbol() const {
|
|
return swift::isPossiblyUsedExternally(getEffectiveSymbolLinkage(),
|
|
getModule().isWholeModule());
|
|
}
|
|
|
|
void SILFunction::clear() {
|
|
dropAllReferences();
|
|
eraseAllBlocks();
|
|
}
|
|
|
|
void SILFunction::eraseAllBlocks() {
|
|
BlockList.clear();
|
|
}
|
|
|
|
SubstitutionMap SILFunction::getForwardingSubstitutionMap() {
|
|
if (ForwardingSubMap)
|
|
return ForwardingSubMap;
|
|
|
|
if (auto *env = getGenericEnvironment())
|
|
ForwardingSubMap = env->getForwardingSubstitutionMap();
|
|
|
|
return ForwardingSubMap;
|
|
}
|
|
|
|
bool SILFunction::shouldVerifyOwnership() const {
|
|
return !hasSemanticsAttr("verify.ownership.sil.never");
|
|
}
|
|
|
|
static Identifier getIdentifierForObjCSelector(ObjCSelector selector, ASTContext &Ctxt) {
|
|
SmallVector<char, 64> buffer;
|
|
auto str = selector.getString(buffer);
|
|
return Ctxt.getIdentifier(str);
|
|
}
|
|
|
|
void SILFunction::setObjCReplacement(AbstractFunctionDecl *replacedFunc) {
|
|
assert(ReplacedFunction == nullptr && ObjCReplacementFor.empty());
|
|
assert(replacedFunc != nullptr);
|
|
ObjCReplacementFor = getIdentifierForObjCSelector(
|
|
replacedFunc->getObjCSelector(), getASTContext());
|
|
}
|
|
|
|
void SILFunction::setObjCReplacement(Identifier replacedFunc) {
|
|
assert(ReplacedFunction == nullptr && ObjCReplacementFor.empty());
|
|
ObjCReplacementFor = replacedFunc;
|
|
}
|
|
|
|
// See swift/Basic/Statistic.h for declaration: this enables tracing
|
|
// SILFunctions, is defined here to avoid too much layering violation / circular
|
|
// linkage dependency.
|
|
|
|
struct SILFunctionTraceFormatter : public UnifiedStatsReporter::TraceFormatter {
|
|
void traceName(const void *Entity, raw_ostream &OS) const override {
|
|
if (!Entity)
|
|
return;
|
|
const SILFunction *F = static_cast<const SILFunction *>(Entity);
|
|
F->printName(OS);
|
|
}
|
|
|
|
void traceLoc(const void *Entity, SourceManager *SM,
|
|
clang::SourceManager *CSM, raw_ostream &OS) const override {
|
|
if (!Entity)
|
|
return;
|
|
const SILFunction *F = static_cast<const SILFunction *>(Entity);
|
|
if (!F->hasLocation())
|
|
return;
|
|
F->getLocation().getSourceRange().print(OS, *SM, false);
|
|
}
|
|
};
|
|
|
|
static SILFunctionTraceFormatter TF;
|
|
|
|
template<>
|
|
const UnifiedStatsReporter::TraceFormatter*
|
|
FrontendStatsTracer::getTraceFormatter<const SILFunction *>() {
|
|
return &TF;
|
|
}
|
|
|
|
bool SILFunction::hasPrespecialization() const {
|
|
for (auto *attr : getSpecializeAttrs()) {
|
|
if (attr->isExported())
|
|
return true;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
void SILFunction::forEachSpecializeAttrTargetFunction(
|
|
llvm::function_ref<void(SILFunction *)> action) {
|
|
for (auto *attr : getSpecializeAttrs()) {
|
|
if (auto *f = attr->getTargetFunction()) {
|
|
action(f);
|
|
}
|
|
}
|
|
}
|