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2d2ebf092c
llvm-svn: 259060
217 lines
8.4 KiB
C++
217 lines
8.4 KiB
C++
//===-LTOCodeGenerator.h - LLVM Link Time Optimizer -----------------------===//
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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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//
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// This file declares the LTOCodeGenerator class.
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//
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// LTO compilation consists of three phases: Pre-IPO, IPO and Post-IPO.
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//
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// The Pre-IPO phase compiles source code into bitcode file. The resulting
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// bitcode files, along with object files and libraries, will be fed to the
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// linker to through the IPO and Post-IPO phases. By using obj-file extension,
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// the resulting bitcode file disguises itself as an object file, and therefore
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// obviates the need of writing a special set of the make-rules only for LTO
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// compilation.
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//
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// The IPO phase perform inter-procedural analyses and optimizations, and
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// the Post-IPO consists two sub-phases: intra-procedural scalar optimizations
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// (SOPT), and intra-procedural target-dependent code generator (CG).
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//
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// As of this writing, we don't separate IPO and the Post-IPO SOPT. They
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// are intermingled together, and are driven by a single pass manager (see
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// PassManagerBuilder::populateLTOPassManager()).
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//
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// The "LTOCodeGenerator" is the driver for the IPO and Post-IPO stages.
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// The "CodeGenerator" here is bit confusing. Don't confuse the "CodeGenerator"
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// with the machine specific code generator.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_LTO_LTOCODEGENERATOR_H
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#define LLVM_LTO_LTOCODEGENERATOR_H
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#include "llvm-c/lto.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/ADT/SmallPtrSet.h"
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#include "llvm/ADT/StringMap.h"
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#include "llvm/IR/GlobalValue.h"
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#include "llvm/IR/Module.h"
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#include "llvm/Target/TargetMachine.h"
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#include "llvm/Target/TargetOptions.h"
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#include <string>
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#include <vector>
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namespace llvm {
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class LLVMContext;
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class DiagnosticInfo;
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class Linker;
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class Mangler;
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class MemoryBuffer;
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class TargetLibraryInfo;
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class TargetMachine;
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class raw_ostream;
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class raw_pwrite_stream;
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//===----------------------------------------------------------------------===//
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/// C++ class which implements the opaque lto_code_gen_t type.
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///
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struct LTOCodeGenerator {
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static const char *getVersionString();
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LTOCodeGenerator(LLVMContext &Context);
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~LTOCodeGenerator();
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/// Merge given module. Return true on success.
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bool addModule(struct LTOModule *);
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/// Set the destination module.
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void setModule(std::unique_ptr<LTOModule> M);
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void setTargetOptions(TargetOptions Options);
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void setDebugInfo(lto_debug_model);
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void setCodePICModel(Reloc::Model Model) { RelocModel = Model; }
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/// Set the file type to be emitted (assembly or object code).
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/// The default is TargetMachine::CGFT_ObjectFile.
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void setFileType(TargetMachine::CodeGenFileType FT) { FileType = FT; }
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void setCpu(const char *MCpu) { this->MCpu = MCpu; }
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void setAttr(const char *MAttr) { this->MAttr = MAttr; }
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void setOptLevel(unsigned OptLevel);
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void setShouldInternalize(bool Value) { ShouldInternalize = Value; }
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void setShouldEmbedUselists(bool Value) { ShouldEmbedUselists = Value; }
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/// Restore linkage of globals
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///
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/// When set, the linkage of globals will be restored prior to code
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/// generation. That is, a global symbol that had external linkage prior to
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/// LTO will be emitted with external linkage again; and a local will remain
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/// local. Note that this option only affects the end result - globals may
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/// still be internalized in the process of LTO and may be modified and/or
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/// deleted where legal.
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///
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/// The default behavior will internalize globals (unless on the preserve
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/// list) and, if parallel code generation is enabled, will externalize
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/// all locals.
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void setShouldRestoreGlobalsLinkage(bool Value) {
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ShouldRestoreGlobalsLinkage = Value;
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}
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void addMustPreserveSymbol(StringRef Sym) { MustPreserveSymbols[Sym] = 1; }
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/// Pass options to the driver and optimization passes.
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///
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/// These options are not necessarily for debugging purpose (the function
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/// name is misleading). This function should be called before
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/// LTOCodeGenerator::compilexxx(), and
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/// LTOCodeGenerator::writeMergedModules().
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void setCodeGenDebugOptions(const char *Opts);
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/// Parse the options set in setCodeGenDebugOptions.
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///
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/// Like \a setCodeGenDebugOptions(), this must be called before
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/// LTOCodeGenerator::compilexxx() and
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/// LTOCodeGenerator::writeMergedModules().
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void parseCodeGenDebugOptions();
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/// Write the merged module to the file specified by the given path. Return
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/// true on success.
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bool writeMergedModules(const char *Path);
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/// Compile the merged module into a *single* output file; the path to output
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/// file is returned to the caller via argument "name". Return true on
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/// success.
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///
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/// \note It is up to the linker to remove the intermediate output file. Do
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/// not try to remove the object file in LTOCodeGenerator's destructor as we
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/// don't who (LTOCodeGenerator or the output file) will last longer.
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bool compile_to_file(const char **Name, bool DisableVerify,
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bool DisableInline, bool DisableGVNLoadPRE,
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bool DisableVectorization);
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/// As with compile_to_file(), this function compiles the merged module into
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/// single output file. Instead of returning the output file path to the
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/// caller (linker), it brings the output to a buffer, and returns the buffer
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/// to the caller. This function should delete the intermediate file once
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/// its content is brought to memory. Return NULL if the compilation was not
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/// successful.
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std::unique_ptr<MemoryBuffer> compile(bool DisableVerify, bool DisableInline,
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bool DisableGVNLoadPRE,
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bool DisableVectorization);
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/// Optimizes the merged module. Returns true on success.
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bool optimize(bool DisableVerify, bool DisableInline, bool DisableGVNLoadPRE,
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bool DisableVectorization);
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/// Compiles the merged optimized module into a single output file. It brings
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/// the output to a buffer, and returns the buffer to the caller. Return NULL
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/// if the compilation was not successful.
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std::unique_ptr<MemoryBuffer> compileOptimized();
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/// Compile the merged optimized module into out.size() output files each
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/// representing a linkable partition of the module. If out contains more
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/// than one element, code generation is done in parallel with out.size()
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/// threads. Output files will be written to members of out. Returns true on
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/// success.
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bool compileOptimized(ArrayRef<raw_pwrite_stream *> Out);
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void setDiagnosticHandler(lto_diagnostic_handler_t, void *);
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LLVMContext &getContext() { return Context; }
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void resetMergedModule() { MergedModule.reset(); }
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private:
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void initializeLTOPasses();
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bool compileOptimizedToFile(const char **Name);
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void restoreLinkageForExternals();
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void applyScopeRestrictions();
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void applyRestriction(GlobalValue &GV, ArrayRef<StringRef> Libcalls,
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std::vector<const char *> &MustPreserveList,
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SmallPtrSetImpl<GlobalValue *> &AsmUsed,
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Mangler &Mangler);
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bool determineTarget();
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static void DiagnosticHandler(const DiagnosticInfo &DI, void *Context);
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void DiagnosticHandler2(const DiagnosticInfo &DI);
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void emitError(const std::string &ErrMsg);
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typedef StringMap<uint8_t> StringSet;
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LLVMContext &Context;
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std::unique_ptr<Module> MergedModule;
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std::unique_ptr<Linker> TheLinker;
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std::unique_ptr<TargetMachine> TargetMach;
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bool EmitDwarfDebugInfo = false;
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bool ScopeRestrictionsDone = false;
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Reloc::Model RelocModel = Reloc::Default;
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StringSet MustPreserveSymbols;
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StringSet AsmUndefinedRefs;
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StringMap<GlobalValue::LinkageTypes> ExternalSymbols;
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std::vector<std::string> CodegenOptions;
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std::string FeatureStr;
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std::string MCpu;
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std::string MAttr;
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std::string NativeObjectPath;
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TargetOptions Options;
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CodeGenOpt::Level CGOptLevel = CodeGenOpt::Default;
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unsigned OptLevel = 2;
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lto_diagnostic_handler_t DiagHandler = nullptr;
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void *DiagContext = nullptr;
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bool ShouldInternalize = true;
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bool ShouldEmbedUselists = false;
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bool ShouldRestoreGlobalsLinkage = false;
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TargetMachine::CodeGenFileType FileType = TargetMachine::CGFT_ObjectFile;
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};
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}
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#endif
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