
"used" (e.g., we will refer to the vtable in the generated code) and when they are defined (i.e., because we've seen the key function definition). Previously, we were effectively tracking "potential definitions" rather than uses, so we were a bit too eager about emitting vtables for classes without key functions. The new scheme: - For every use of a vtable, Sema calls MarkVTableUsed() to indicate the use. For example, this occurs when calling a virtual member function of the class, defining a constructor of that class type, dynamic_cast'ing from that type to a derived class, casting to/through a virtual base class, etc. - For every definition of a vtable, Sema calls MarkVTableUsed() to indicate the definition. This happens at the end of the translation unit for classes whose key function has been defined (so we can delay computation of the key function; see PR6564), and will also occur with explicit template instantiation definitions. - For every vtable defined/used, we mark all of the virtual member functions of that vtable as defined/used, unless we know that the key function is in another translation unit. This instantiates virtual member functions when needed. - At the end of the translation unit, Sema tells CodeGen (via the ASTConsumer) which vtables must be defined (CodeGen will define them) and which may be used (for which CodeGen will define the vtables lazily). From a language perspective, both the old and the new schemes are permissible: we're allowed to instantiate virtual member functions whenever we want per the standard. However, all other C++ compilers were more lazy than we were, and our eagerness was both a performance issue (we instantiated too much) and a portability problem (we broke Boost test cases, which now pass). Notes: (1) There's a ton of churn in the tests, because the order in which vtables get emitted to IR has changed. I've tried to isolate some of the larger tests from these issues. (2) Some diagnostics related to implicitly-instantiated/implicitly-defined virtual member functions have moved to the point of first use/definition. It's better this way. (3) I could use a review of the places where we MarkVTableUsed, to see if I missed any place where the language effectively requires a vtable. Fixes PR7114 and PR6564. llvm-svn: 103718
583 lines
20 KiB
C++
583 lines
20 KiB
C++
//===--- CodeGenAction.cpp - LLVM Code Generation Frontend Action ---------===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Frontend/CodeGenAction.h"
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#include "clang/Basic/SourceManager.h"
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#include "clang/Basic/TargetInfo.h"
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#include "clang/Basic/TargetOptions.h"
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#include "clang/AST/ASTConsumer.h"
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#include "clang/AST/ASTContext.h"
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#include "clang/AST/DeclGroup.h"
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#include "clang/CodeGen/CodeGenOptions.h"
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#include "clang/CodeGen/ModuleBuilder.h"
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#include "clang/Frontend/ASTConsumers.h"
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#include "clang/Frontend/CompilerInstance.h"
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#include "clang/Frontend/FrontendDiagnostic.h"
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#include "llvm/LLVMContext.h"
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#include "llvm/Module.h"
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#include "llvm/PassManager.h"
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#include "llvm/ADT/OwningPtr.h"
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#include "llvm/Assembly/PrintModulePass.h"
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#include "llvm/Analysis/CallGraph.h"
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#include "llvm/Analysis/Verifier.h"
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#include "llvm/Bitcode/ReaderWriter.h"
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#include "llvm/CodeGen/RegAllocRegistry.h"
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#include "llvm/CodeGen/SchedulerRegistry.h"
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#include "llvm/Support/FormattedStream.h"
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#include "llvm/Support/MemoryBuffer.h"
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#include "llvm/Support/SourceMgr.h"
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#include "llvm/Support/StandardPasses.h"
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#include "llvm/Support/Timer.h"
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#include "llvm/Target/SubtargetFeature.h"
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#include "llvm/Target/TargetData.h"
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#include "llvm/Target/TargetMachine.h"
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#include "llvm/Target/TargetOptions.h"
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#include "llvm/Target/TargetRegistry.h"
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using namespace clang;
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using namespace llvm;
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namespace {
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enum BackendAction {
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Backend_EmitAssembly, ///< Emit native assembly files
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Backend_EmitBC, ///< Emit LLVM bitcode files
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Backend_EmitLL, ///< Emit human-readable LLVM assembly
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Backend_EmitNothing, ///< Don't emit anything (benchmarking mode)
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Backend_EmitObj ///< Emit native object files
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};
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class BackendConsumer : public ASTConsumer {
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Diagnostic &Diags;
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BackendAction Action;
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const CodeGenOptions &CodeGenOpts;
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const LangOptions &LangOpts;
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const TargetOptions &TargetOpts;
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llvm::raw_ostream *AsmOutStream;
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llvm::formatted_raw_ostream FormattedOutStream;
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ASTContext *Context;
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Timer LLVMIRGeneration;
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Timer CodeGenerationTime;
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llvm::OwningPtr<CodeGenerator> Gen;
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llvm::OwningPtr<llvm::Module> TheModule;
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llvm::TargetData *TheTargetData;
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mutable FunctionPassManager *CodeGenPasses;
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mutable PassManager *PerModulePasses;
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mutable FunctionPassManager *PerFunctionPasses;
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FunctionPassManager *getCodeGenPasses() const;
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PassManager *getPerModulePasses() const;
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FunctionPassManager *getPerFunctionPasses() const;
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void CreatePasses();
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/// AddEmitPasses - Add passes necessary to emit assembly or LLVM IR.
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///
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/// \return True on success.
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bool AddEmitPasses();
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void EmitAssembly();
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public:
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BackendConsumer(BackendAction action, Diagnostic &_Diags,
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const LangOptions &langopts, const CodeGenOptions &compopts,
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const TargetOptions &targetopts, bool TimePasses,
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const std::string &infile, llvm::raw_ostream *OS,
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LLVMContext &C) :
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Diags(_Diags),
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Action(action),
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CodeGenOpts(compopts),
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LangOpts(langopts),
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TargetOpts(targetopts),
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AsmOutStream(OS),
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LLVMIRGeneration("LLVM IR Generation Time"),
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CodeGenerationTime("Code Generation Time"),
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Gen(CreateLLVMCodeGen(Diags, infile, compopts, C)),
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TheTargetData(0),
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CodeGenPasses(0), PerModulePasses(0), PerFunctionPasses(0) {
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if (AsmOutStream)
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FormattedOutStream.setStream(*AsmOutStream,
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formatted_raw_ostream::PRESERVE_STREAM);
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llvm::TimePassesIsEnabled = TimePasses;
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}
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~BackendConsumer() {
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delete TheTargetData;
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delete CodeGenPasses;
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delete PerModulePasses;
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delete PerFunctionPasses;
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}
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llvm::Module *takeModule() { return TheModule.take(); }
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virtual void Initialize(ASTContext &Ctx) {
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Context = &Ctx;
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.startTimer();
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Gen->Initialize(Ctx);
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TheModule.reset(Gen->GetModule());
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TheTargetData = new llvm::TargetData(Ctx.Target.getTargetDescription());
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.stopTimer();
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}
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virtual void HandleTopLevelDecl(DeclGroupRef D) {
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PrettyStackTraceDecl CrashInfo(*D.begin(), SourceLocation(),
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Context->getSourceManager(),
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"LLVM IR generation of declaration");
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.startTimer();
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Gen->HandleTopLevelDecl(D);
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.stopTimer();
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}
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virtual void HandleTranslationUnit(ASTContext &C) {
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{
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PrettyStackTraceString CrashInfo("Per-file LLVM IR generation");
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.startTimer();
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Gen->HandleTranslationUnit(C);
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if (llvm::TimePassesIsEnabled)
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LLVMIRGeneration.stopTimer();
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}
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// EmitAssembly times and registers crash info itself.
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EmitAssembly();
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// Force a flush here in case we never get released.
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if (AsmOutStream)
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FormattedOutStream.flush();
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}
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virtual void HandleTagDeclDefinition(TagDecl *D) {
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PrettyStackTraceDecl CrashInfo(D, SourceLocation(),
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Context->getSourceManager(),
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"LLVM IR generation of declaration");
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Gen->HandleTagDeclDefinition(D);
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}
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virtual void CompleteTentativeDefinition(VarDecl *D) {
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Gen->CompleteTentativeDefinition(D);
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}
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virtual void HandleVTable(CXXRecordDecl *RD, bool DefinitionRequired) {
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Gen->HandleVTable(RD, DefinitionRequired);
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}
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static void InlineAsmDiagHandler(const llvm::SMDiagnostic &SM,void *Context,
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unsigned LocCookie) {
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SourceLocation Loc = SourceLocation::getFromRawEncoding(LocCookie);
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((BackendConsumer*)Context)->InlineAsmDiagHandler2(SM, Loc);
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}
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void InlineAsmDiagHandler2(const llvm::SMDiagnostic &,
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SourceLocation LocCookie);
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};
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}
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FunctionPassManager *BackendConsumer::getCodeGenPasses() const {
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if (!CodeGenPasses) {
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CodeGenPasses = new FunctionPassManager(&*TheModule);
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CodeGenPasses->add(new TargetData(*TheTargetData));
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}
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return CodeGenPasses;
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}
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PassManager *BackendConsumer::getPerModulePasses() const {
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if (!PerModulePasses) {
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PerModulePasses = new PassManager();
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PerModulePasses->add(new TargetData(*TheTargetData));
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}
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return PerModulePasses;
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}
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FunctionPassManager *BackendConsumer::getPerFunctionPasses() const {
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if (!PerFunctionPasses) {
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PerFunctionPasses = new FunctionPassManager(&*TheModule);
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PerFunctionPasses->add(new TargetData(*TheTargetData));
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}
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return PerFunctionPasses;
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}
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bool BackendConsumer::AddEmitPasses() {
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if (Action == Backend_EmitNothing)
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return true;
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if (Action == Backend_EmitBC) {
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getPerModulePasses()->add(createBitcodeWriterPass(FormattedOutStream));
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return true;
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}
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if (Action == Backend_EmitLL) {
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getPerModulePasses()->add(createPrintModulePass(&FormattedOutStream));
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return true;
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}
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bool Fast = CodeGenOpts.OptimizationLevel == 0;
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// Create the TargetMachine for generating code.
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std::string Error;
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std::string Triple = TheModule->getTargetTriple();
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const llvm::Target *TheTarget = TargetRegistry::lookupTarget(Triple, Error);
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if (!TheTarget) {
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Diags.Report(diag::err_fe_unable_to_create_target) << Error;
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return false;
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}
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// FIXME: Expose these capabilities via actual APIs!!!! Aside from just
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// being gross, this is also totally broken if we ever care about
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// concurrency.
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llvm::NoFramePointerElim = CodeGenOpts.DisableFPElim;
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if (CodeGenOpts.FloatABI == "soft")
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llvm::FloatABIType = llvm::FloatABI::Soft;
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else if (CodeGenOpts.FloatABI == "hard")
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llvm::FloatABIType = llvm::FloatABI::Hard;
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else {
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assert(CodeGenOpts.FloatABI.empty() && "Invalid float abi!");
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llvm::FloatABIType = llvm::FloatABI::Default;
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}
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NoZerosInBSS = CodeGenOpts.NoZeroInitializedInBSS;
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llvm::UseSoftFloat = CodeGenOpts.SoftFloat;
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UnwindTablesMandatory = CodeGenOpts.UnwindTables;
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TargetMachine::setAsmVerbosityDefault(CodeGenOpts.AsmVerbose);
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TargetMachine::setFunctionSections(CodeGenOpts.FunctionSections);
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TargetMachine::setDataSections (CodeGenOpts.DataSections);
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// FIXME: Parse this earlier.
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if (CodeGenOpts.RelocationModel == "static") {
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TargetMachine::setRelocationModel(llvm::Reloc::Static);
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} else if (CodeGenOpts.RelocationModel == "pic") {
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TargetMachine::setRelocationModel(llvm::Reloc::PIC_);
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} else {
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assert(CodeGenOpts.RelocationModel == "dynamic-no-pic" &&
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"Invalid PIC model!");
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TargetMachine::setRelocationModel(llvm::Reloc::DynamicNoPIC);
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}
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// FIXME: Parse this earlier.
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if (CodeGenOpts.CodeModel == "small") {
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TargetMachine::setCodeModel(llvm::CodeModel::Small);
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} else if (CodeGenOpts.CodeModel == "kernel") {
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TargetMachine::setCodeModel(llvm::CodeModel::Kernel);
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} else if (CodeGenOpts.CodeModel == "medium") {
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TargetMachine::setCodeModel(llvm::CodeModel::Medium);
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} else if (CodeGenOpts.CodeModel == "large") {
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TargetMachine::setCodeModel(llvm::CodeModel::Large);
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} else {
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assert(CodeGenOpts.CodeModel.empty() && "Invalid code model!");
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TargetMachine::setCodeModel(llvm::CodeModel::Default);
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}
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std::vector<const char *> BackendArgs;
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BackendArgs.push_back("clang"); // Fake program name.
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if (!CodeGenOpts.DebugPass.empty()) {
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BackendArgs.push_back("-debug-pass");
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BackendArgs.push_back(CodeGenOpts.DebugPass.c_str());
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}
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if (!CodeGenOpts.LimitFloatPrecision.empty()) {
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BackendArgs.push_back("-limit-float-precision");
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BackendArgs.push_back(CodeGenOpts.LimitFloatPrecision.c_str());
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}
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if (llvm::TimePassesIsEnabled)
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BackendArgs.push_back("-time-passes");
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BackendArgs.push_back(0);
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llvm::cl::ParseCommandLineOptions(BackendArgs.size() - 1,
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const_cast<char **>(&BackendArgs[0]));
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std::string FeaturesStr;
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if (TargetOpts.CPU.size() || TargetOpts.Features.size()) {
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SubtargetFeatures Features;
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Features.setCPU(TargetOpts.CPU);
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for (std::vector<std::string>::const_iterator
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it = TargetOpts.Features.begin(),
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ie = TargetOpts.Features.end(); it != ie; ++it)
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Features.AddFeature(*it);
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FeaturesStr = Features.getString();
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}
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TargetMachine *TM = TheTarget->createTargetMachine(Triple, FeaturesStr);
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// Set register scheduler & allocation policy.
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RegisterScheduler::setDefault(createDefaultScheduler);
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RegisterRegAlloc::setDefault(Fast ? createLocalRegisterAllocator :
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createLinearScanRegisterAllocator);
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// Create the code generator passes.
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FunctionPassManager *PM = getCodeGenPasses();
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CodeGenOpt::Level OptLevel = CodeGenOpt::Default;
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switch (CodeGenOpts.OptimizationLevel) {
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default: break;
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case 0: OptLevel = CodeGenOpt::None; break;
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case 3: OptLevel = CodeGenOpt::Aggressive; break;
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}
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// Normal mode, emit a .s or .o file by running the code generator. Note,
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// this also adds codegenerator level optimization passes.
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TargetMachine::CodeGenFileType CGFT = TargetMachine::CGFT_AssemblyFile;
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if (Action == Backend_EmitObj)
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CGFT = TargetMachine::CGFT_ObjectFile;
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if (TM->addPassesToEmitFile(*PM, FormattedOutStream, CGFT, OptLevel,
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/*DisableVerify=*/!CodeGenOpts.VerifyModule)) {
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Diags.Report(diag::err_fe_unable_to_interface_with_target);
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return false;
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}
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return true;
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}
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void BackendConsumer::CreatePasses() {
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unsigned OptLevel = CodeGenOpts.OptimizationLevel;
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CodeGenOptions::InliningMethod Inlining = CodeGenOpts.Inlining;
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// Handle disabling of LLVM optimization, where we want to preserve the
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// internal module before any optimization.
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if (CodeGenOpts.DisableLLVMOpts) {
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OptLevel = 0;
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Inlining = CodeGenOpts.NoInlining;
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}
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// In -O0 if checking is disabled, we don't even have per-function passes.
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if (CodeGenOpts.VerifyModule)
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getPerFunctionPasses()->add(createVerifierPass());
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// Assume that standard function passes aren't run for -O0.
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if (OptLevel > 0)
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llvm::createStandardFunctionPasses(getPerFunctionPasses(), OptLevel);
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llvm::Pass *InliningPass = 0;
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switch (Inlining) {
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case CodeGenOptions::NoInlining: break;
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case CodeGenOptions::NormalInlining: {
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// Set the inline threshold following llvm-gcc.
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//
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// FIXME: Derive these constants in a principled fashion.
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unsigned Threshold = 225;
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if (CodeGenOpts.OptimizeSize)
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Threshold = 75;
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else if (OptLevel > 2)
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Threshold = 275;
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InliningPass = createFunctionInliningPass(Threshold);
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break;
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}
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case CodeGenOptions::OnlyAlwaysInlining:
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InliningPass = createAlwaysInlinerPass(); // Respect always_inline
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break;
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}
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|
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// For now we always create per module passes.
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PassManager *PM = getPerModulePasses();
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llvm::createStandardModulePasses(PM, OptLevel, CodeGenOpts.OptimizeSize,
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CodeGenOpts.UnitAtATime,
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CodeGenOpts.UnrollLoops,
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/*SimplifyLibCalls=*/!LangOpts.NoBuiltin,
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/*HaveExceptions=*/true,
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InliningPass);
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}
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|
/// EmitAssembly - Handle interaction with LLVM backend to generate
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/// actual machine code.
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void BackendConsumer::EmitAssembly() {
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// Silently ignore if we weren't initialized for some reason.
|
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if (!TheModule || !TheTargetData)
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return;
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|
TimeRegion Region(llvm::TimePassesIsEnabled ? &CodeGenerationTime : 0);
|
|
|
|
// Make sure IR generation is happy with the module. This is
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// released by the module provider.
|
|
Module *M = Gen->ReleaseModule();
|
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if (!M) {
|
|
// The module has been released by IR gen on failures, do not
|
|
// double free.
|
|
TheModule.take();
|
|
return;
|
|
}
|
|
|
|
assert(TheModule.get() == M &&
|
|
"Unexpected module change during IR generation");
|
|
|
|
CreatePasses();
|
|
if (!AddEmitPasses())
|
|
return;
|
|
|
|
// Run passes. For now we do all passes at once, but eventually we
|
|
// would like to have the option of streaming code generation.
|
|
|
|
if (PerFunctionPasses) {
|
|
PrettyStackTraceString CrashInfo("Per-function optimization");
|
|
|
|
PerFunctionPasses->doInitialization();
|
|
for (Module::iterator I = M->begin(), E = M->end(); I != E; ++I)
|
|
if (!I->isDeclaration())
|
|
PerFunctionPasses->run(*I);
|
|
PerFunctionPasses->doFinalization();
|
|
}
|
|
|
|
if (PerModulePasses) {
|
|
PrettyStackTraceString CrashInfo("Per-module optimization passes");
|
|
PerModulePasses->run(*M);
|
|
}
|
|
|
|
if (CodeGenPasses) {
|
|
PrettyStackTraceString CrashInfo("Code generation");
|
|
|
|
// Install an inline asm handler so that diagnostics get printed through our
|
|
// diagnostics hooks.
|
|
LLVMContext &Ctx = TheModule->getContext();
|
|
void *OldHandler = Ctx.getInlineAsmDiagnosticHandler();
|
|
void *OldContext = Ctx.getInlineAsmDiagnosticContext();
|
|
Ctx.setInlineAsmDiagnosticHandler((void*)(intptr_t)InlineAsmDiagHandler,
|
|
this);
|
|
|
|
CodeGenPasses->doInitialization();
|
|
for (Module::iterator I = M->begin(), E = M->end(); I != E; ++I)
|
|
if (!I->isDeclaration())
|
|
CodeGenPasses->run(*I);
|
|
CodeGenPasses->doFinalization();
|
|
|
|
Ctx.setInlineAsmDiagnosticHandler(OldHandler, OldContext);
|
|
}
|
|
}
|
|
|
|
/// ConvertBackendLocation - Convert a location in a temporary llvm::SourceMgr
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|
/// buffer to be a valid FullSourceLoc.
|
|
static FullSourceLoc ConvertBackendLocation(const llvm::SMDiagnostic &D,
|
|
SourceManager &CSM) {
|
|
// Get both the clang and llvm source managers. The location is relative to
|
|
// a memory buffer that the LLVM Source Manager is handling, we need to add
|
|
// a copy to the Clang source manager.
|
|
const llvm::SourceMgr &LSM = *D.getSourceMgr();
|
|
|
|
// We need to copy the underlying LLVM memory buffer because llvm::SourceMgr
|
|
// already owns its one and clang::SourceManager wants to own its one.
|
|
const MemoryBuffer *LBuf =
|
|
LSM.getMemoryBuffer(LSM.FindBufferContainingLoc(D.getLoc()));
|
|
|
|
// Create the copy and transfer ownership to clang::SourceManager.
|
|
llvm::MemoryBuffer *CBuf =
|
|
llvm::MemoryBuffer::getMemBufferCopy(LBuf->getBuffer(),
|
|
LBuf->getBufferIdentifier());
|
|
FileID FID = CSM.createFileIDForMemBuffer(CBuf);
|
|
|
|
// Translate the offset into the file.
|
|
unsigned Offset = D.getLoc().getPointer() - LBuf->getBufferStart();
|
|
SourceLocation NewLoc =
|
|
CSM.getLocForStartOfFile(FID).getFileLocWithOffset(Offset);
|
|
return FullSourceLoc(NewLoc, CSM);
|
|
}
|
|
|
|
|
|
/// InlineAsmDiagHandler2 - This function is invoked when the backend hits an
|
|
/// error parsing inline asm. The SMDiagnostic indicates the error relative to
|
|
/// the temporary memory buffer that the inline asm parser has set up.
|
|
void BackendConsumer::InlineAsmDiagHandler2(const llvm::SMDiagnostic &D,
|
|
SourceLocation LocCookie) {
|
|
// There are a couple of different kinds of errors we could get here. First,
|
|
// we re-format the SMDiagnostic in terms of a clang diagnostic.
|
|
|
|
// Strip "error: " off the start of the message string.
|
|
llvm::StringRef Message = D.getMessage();
|
|
if (Message.startswith("error: "))
|
|
Message = Message.substr(7);
|
|
|
|
// There are two cases: the SMDiagnostic could have a inline asm source
|
|
// location or it might not. If it does, translate the location.
|
|
FullSourceLoc Loc;
|
|
if (D.getLoc() != SMLoc())
|
|
Loc = ConvertBackendLocation(D, Context->getSourceManager());
|
|
Diags.Report(Loc, diag::err_fe_inline_asm).AddString(Message);
|
|
|
|
// This could be a problem with no clang-level source location information.
|
|
// In this case, LocCookie is invalid. If there is source level information,
|
|
// print an "generated from" note.
|
|
if (LocCookie.isValid())
|
|
Diags.Report(FullSourceLoc(LocCookie, Context->getSourceManager()),
|
|
diag::note_fe_inline_asm_here);
|
|
}
|
|
|
|
//
|
|
|
|
CodeGenAction::CodeGenAction(unsigned _Act) : Act(_Act) {}
|
|
|
|
CodeGenAction::~CodeGenAction() {}
|
|
|
|
void CodeGenAction::EndSourceFileAction() {
|
|
// If the consumer creation failed, do nothing.
|
|
if (!getCompilerInstance().hasASTConsumer())
|
|
return;
|
|
|
|
// Steal the module from the consumer.
|
|
BackendConsumer *Consumer = static_cast<BackendConsumer*>(
|
|
&getCompilerInstance().getASTConsumer());
|
|
|
|
TheModule.reset(Consumer->takeModule());
|
|
}
|
|
|
|
llvm::Module *CodeGenAction::takeModule() {
|
|
return TheModule.take();
|
|
}
|
|
|
|
ASTConsumer *CodeGenAction::CreateASTConsumer(CompilerInstance &CI,
|
|
llvm::StringRef InFile) {
|
|
BackendAction BA = static_cast<BackendAction>(Act);
|
|
llvm::OwningPtr<llvm::raw_ostream> OS;
|
|
switch (BA) {
|
|
case Backend_EmitAssembly:
|
|
OS.reset(CI.createDefaultOutputFile(false, InFile, "s"));
|
|
break;
|
|
case Backend_EmitLL:
|
|
OS.reset(CI.createDefaultOutputFile(false, InFile, "ll"));
|
|
break;
|
|
case Backend_EmitBC:
|
|
OS.reset(CI.createDefaultOutputFile(true, InFile, "bc"));
|
|
break;
|
|
case Backend_EmitNothing:
|
|
break;
|
|
case Backend_EmitObj:
|
|
OS.reset(CI.createDefaultOutputFile(true, InFile, "o"));
|
|
break;
|
|
}
|
|
if (BA != Backend_EmitNothing && !OS)
|
|
return 0;
|
|
|
|
return new BackendConsumer(BA, CI.getDiagnostics(), CI.getLangOpts(),
|
|
CI.getCodeGenOpts(), CI.getTargetOpts(),
|
|
CI.getFrontendOpts().ShowTimers, InFile, OS.take(),
|
|
CI.getLLVMContext());
|
|
}
|
|
|
|
EmitAssemblyAction::EmitAssemblyAction()
|
|
: CodeGenAction(Backend_EmitAssembly) {}
|
|
|
|
EmitBCAction::EmitBCAction() : CodeGenAction(Backend_EmitBC) {}
|
|
|
|
EmitLLVMAction::EmitLLVMAction() : CodeGenAction(Backend_EmitLL) {}
|
|
|
|
EmitLLVMOnlyAction::EmitLLVMOnlyAction() : CodeGenAction(Backend_EmitNothing) {}
|
|
|
|
EmitObjAction::EmitObjAction() : CodeGenAction(Backend_EmitObj) {}
|