BackendUtil.cpp 15 KB

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  1. //===--- BackendUtil.cpp - LLVM Backend Utilities -------------------------===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is distributed under the University of Illinois Open Source
  6. // License. See LICENSE.TXT for details.
  7. //
  8. //===----------------------------------------------------------------------===//
  9. #include "clang/CodeGen/BackendUtil.h"
  10. #include "clang/Basic/Diagnostic.h"
  11. #include "clang/Basic/TargetOptions.h"
  12. #include "clang/Basic/LangOptions.h"
  13. #include "clang/Frontend/CodeGenOptions.h"
  14. #include "clang/Frontend/FrontendDiagnostic.h"
  15. #include "llvm/Module.h"
  16. #include "llvm/PassManager.h"
  17. #include "llvm/Analysis/Verifier.h"
  18. #include "llvm/Assembly/PrintModulePass.h"
  19. #include "llvm/Bitcode/ReaderWriter.h"
  20. #include "llvm/CodeGen/RegAllocRegistry.h"
  21. #include "llvm/CodeGen/SchedulerRegistry.h"
  22. #include "llvm/MC/SubtargetFeature.h"
  23. #include "llvm/Support/CommandLine.h"
  24. #include "llvm/Support/FormattedStream.h"
  25. #include "llvm/Support/PrettyStackTrace.h"
  26. #include "llvm/Support/TargetRegistry.h"
  27. #include "llvm/Support/Timer.h"
  28. #include "llvm/Support/raw_ostream.h"
  29. #include "llvm/Target/TargetData.h"
  30. #include "llvm/Target/TargetLibraryInfo.h"
  31. #include "llvm/Target/TargetMachine.h"
  32. #include "llvm/Target/TargetOptions.h"
  33. #include "llvm/Transforms/Instrumentation.h"
  34. #include "llvm/Transforms/IPO.h"
  35. #include "llvm/Transforms/IPO/PassManagerBuilder.h"
  36. #include "llvm/Transforms/Scalar.h"
  37. using namespace clang;
  38. using namespace llvm;
  39. namespace {
  40. class EmitAssemblyHelper {
  41. DiagnosticsEngine &Diags;
  42. const CodeGenOptions &CodeGenOpts;
  43. const clang::TargetOptions &TargetOpts;
  44. const LangOptions &LangOpts;
  45. Module *TheModule;
  46. Timer CodeGenerationTime;
  47. mutable PassManager *CodeGenPasses;
  48. mutable PassManager *PerModulePasses;
  49. mutable FunctionPassManager *PerFunctionPasses;
  50. private:
  51. PassManager *getCodeGenPasses() const {
  52. if (!CodeGenPasses) {
  53. CodeGenPasses = new PassManager();
  54. CodeGenPasses->add(new TargetData(TheModule));
  55. }
  56. return CodeGenPasses;
  57. }
  58. PassManager *getPerModulePasses() const {
  59. if (!PerModulePasses) {
  60. PerModulePasses = new PassManager();
  61. PerModulePasses->add(new TargetData(TheModule));
  62. }
  63. return PerModulePasses;
  64. }
  65. FunctionPassManager *getPerFunctionPasses() const {
  66. if (!PerFunctionPasses) {
  67. PerFunctionPasses = new FunctionPassManager(TheModule);
  68. PerFunctionPasses->add(new TargetData(TheModule));
  69. }
  70. return PerFunctionPasses;
  71. }
  72. void CreatePasses();
  73. /// AddEmitPasses - Add passes necessary to emit assembly or LLVM IR.
  74. ///
  75. /// \return True on success.
  76. bool AddEmitPasses(BackendAction Action, formatted_raw_ostream &OS);
  77. public:
  78. EmitAssemblyHelper(DiagnosticsEngine &_Diags,
  79. const CodeGenOptions &CGOpts,
  80. const clang::TargetOptions &TOpts,
  81. const LangOptions &LOpts,
  82. Module *M)
  83. : Diags(_Diags), CodeGenOpts(CGOpts), TargetOpts(TOpts), LangOpts(LOpts),
  84. TheModule(M), CodeGenerationTime("Code Generation Time"),
  85. CodeGenPasses(0), PerModulePasses(0), PerFunctionPasses(0) {}
  86. ~EmitAssemblyHelper() {
  87. delete CodeGenPasses;
  88. delete PerModulePasses;
  89. delete PerFunctionPasses;
  90. }
  91. void EmitAssembly(BackendAction Action, raw_ostream *OS);
  92. };
  93. }
  94. static void addObjCARCAPElimPass(const PassManagerBuilder &Builder, PassManagerBase &PM) {
  95. if (Builder.OptLevel > 0)
  96. PM.add(createObjCARCAPElimPass());
  97. }
  98. static void addObjCARCExpandPass(const PassManagerBuilder &Builder, PassManagerBase &PM) {
  99. if (Builder.OptLevel > 0)
  100. PM.add(createObjCARCExpandPass());
  101. }
  102. static void addObjCARCOptPass(const PassManagerBuilder &Builder, PassManagerBase &PM) {
  103. if (Builder.OptLevel > 0)
  104. PM.add(createObjCARCOptPass());
  105. }
  106. static void addAddressSanitizerPass(const PassManagerBuilder &Builder,
  107. PassManagerBase &PM) {
  108. PM.add(createAddressSanitizerPass());
  109. }
  110. void EmitAssemblyHelper::CreatePasses() {
  111. unsigned OptLevel = CodeGenOpts.OptimizationLevel;
  112. CodeGenOptions::InliningMethod Inlining = CodeGenOpts.Inlining;
  113. // Handle disabling of LLVM optimization, where we want to preserve the
  114. // internal module before any optimization.
  115. if (CodeGenOpts.DisableLLVMOpts) {
  116. OptLevel = 0;
  117. Inlining = CodeGenOpts.NoInlining;
  118. }
  119. PassManagerBuilder PMBuilder;
  120. PMBuilder.OptLevel = OptLevel;
  121. PMBuilder.SizeLevel = CodeGenOpts.OptimizeSize;
  122. PMBuilder.DisableSimplifyLibCalls = !CodeGenOpts.SimplifyLibCalls;
  123. PMBuilder.DisableUnitAtATime = !CodeGenOpts.UnitAtATime;
  124. PMBuilder.DisableUnrollLoops = !CodeGenOpts.UnrollLoops;
  125. // In ObjC ARC mode, add the main ARC optimization passes.
  126. if (LangOpts.ObjCAutoRefCount) {
  127. PMBuilder.addExtension(PassManagerBuilder::EP_EarlyAsPossible,
  128. addObjCARCExpandPass);
  129. PMBuilder.addExtension(PassManagerBuilder::EP_ModuleOptimizerEarly,
  130. addObjCARCAPElimPass);
  131. PMBuilder.addExtension(PassManagerBuilder::EP_ScalarOptimizerLate,
  132. addObjCARCOptPass);
  133. }
  134. if (LangOpts.AddressSanitizer) {
  135. PMBuilder.addExtension(PassManagerBuilder::EP_ScalarOptimizerLate,
  136. addAddressSanitizerPass);
  137. PMBuilder.addExtension(PassManagerBuilder::EP_EnabledOnOptLevel0,
  138. addAddressSanitizerPass);
  139. }
  140. // Figure out TargetLibraryInfo.
  141. Triple TargetTriple(TheModule->getTargetTriple());
  142. PMBuilder.LibraryInfo = new TargetLibraryInfo(TargetTriple);
  143. if (!CodeGenOpts.SimplifyLibCalls)
  144. PMBuilder.LibraryInfo->disableAllFunctions();
  145. switch (Inlining) {
  146. case CodeGenOptions::NoInlining: break;
  147. case CodeGenOptions::NormalInlining: {
  148. // FIXME: Derive these constants in a principled fashion.
  149. unsigned Threshold = 225;
  150. if (CodeGenOpts.OptimizeSize == 1) // -Os
  151. Threshold = 75;
  152. else if (CodeGenOpts.OptimizeSize == 2) // -Oz
  153. Threshold = 25;
  154. else if (OptLevel > 2)
  155. Threshold = 275;
  156. PMBuilder.Inliner = createFunctionInliningPass(Threshold);
  157. break;
  158. }
  159. case CodeGenOptions::OnlyAlwaysInlining:
  160. // Respect always_inline.
  161. PMBuilder.Inliner = createAlwaysInlinerPass();
  162. break;
  163. }
  164. // Set up the per-function pass manager.
  165. FunctionPassManager *FPM = getPerFunctionPasses();
  166. if (CodeGenOpts.VerifyModule)
  167. FPM->add(createVerifierPass());
  168. PMBuilder.populateFunctionPassManager(*FPM);
  169. // Set up the per-module pass manager.
  170. PassManager *MPM = getPerModulePasses();
  171. if (CodeGenOpts.EmitGcovArcs || CodeGenOpts.EmitGcovNotes) {
  172. MPM->add(createGCOVProfilerPass(CodeGenOpts.EmitGcovNotes,
  173. CodeGenOpts.EmitGcovArcs,
  174. TargetTriple.isMacOSX()));
  175. if (!CodeGenOpts.DebugInfo)
  176. MPM->add(createStripSymbolsPass(true));
  177. }
  178. PMBuilder.populateModulePassManager(*MPM);
  179. }
  180. bool EmitAssemblyHelper::AddEmitPasses(BackendAction Action,
  181. formatted_raw_ostream &OS) {
  182. // Create the TargetMachine for generating code.
  183. std::string Error;
  184. std::string Triple = TheModule->getTargetTriple();
  185. const llvm::Target *TheTarget = TargetRegistry::lookupTarget(Triple, Error);
  186. if (!TheTarget) {
  187. Diags.Report(diag::err_fe_unable_to_create_target) << Error;
  188. return false;
  189. }
  190. // FIXME: Expose these capabilities via actual APIs!!!! Aside from just
  191. // being gross, this is also totally broken if we ever care about
  192. // concurrency.
  193. TargetMachine::setAsmVerbosityDefault(CodeGenOpts.AsmVerbose);
  194. TargetMachine::setFunctionSections(CodeGenOpts.FunctionSections);
  195. TargetMachine::setDataSections (CodeGenOpts.DataSections);
  196. // FIXME: Parse this earlier.
  197. llvm::CodeModel::Model CM;
  198. if (CodeGenOpts.CodeModel == "small") {
  199. CM = llvm::CodeModel::Small;
  200. } else if (CodeGenOpts.CodeModel == "kernel") {
  201. CM = llvm::CodeModel::Kernel;
  202. } else if (CodeGenOpts.CodeModel == "medium") {
  203. CM = llvm::CodeModel::Medium;
  204. } else if (CodeGenOpts.CodeModel == "large") {
  205. CM = llvm::CodeModel::Large;
  206. } else {
  207. assert(CodeGenOpts.CodeModel.empty() && "Invalid code model!");
  208. CM = llvm::CodeModel::Default;
  209. }
  210. SmallVector<const char *, 16> BackendArgs;
  211. BackendArgs.push_back("clang"); // Fake program name.
  212. if (!CodeGenOpts.DebugPass.empty()) {
  213. BackendArgs.push_back("-debug-pass");
  214. BackendArgs.push_back(CodeGenOpts.DebugPass.c_str());
  215. }
  216. if (!CodeGenOpts.LimitFloatPrecision.empty()) {
  217. BackendArgs.push_back("-limit-float-precision");
  218. BackendArgs.push_back(CodeGenOpts.LimitFloatPrecision.c_str());
  219. }
  220. if (llvm::TimePassesIsEnabled)
  221. BackendArgs.push_back("-time-passes");
  222. for (unsigned i = 0, e = CodeGenOpts.BackendOptions.size(); i != e; ++i)
  223. BackendArgs.push_back(CodeGenOpts.BackendOptions[i].c_str());
  224. if (CodeGenOpts.NoGlobalMerge)
  225. BackendArgs.push_back("-global-merge=false");
  226. BackendArgs.push_back(0);
  227. llvm::cl::ParseCommandLineOptions(BackendArgs.size() - 1,
  228. BackendArgs.data());
  229. std::string FeaturesStr;
  230. if (TargetOpts.Features.size()) {
  231. SubtargetFeatures Features;
  232. for (std::vector<std::string>::const_iterator
  233. it = TargetOpts.Features.begin(),
  234. ie = TargetOpts.Features.end(); it != ie; ++it)
  235. Features.AddFeature(*it);
  236. FeaturesStr = Features.getString();
  237. }
  238. llvm::Reloc::Model RM = llvm::Reloc::Default;
  239. if (CodeGenOpts.RelocationModel == "static") {
  240. RM = llvm::Reloc::Static;
  241. } else if (CodeGenOpts.RelocationModel == "pic") {
  242. RM = llvm::Reloc::PIC_;
  243. } else {
  244. assert(CodeGenOpts.RelocationModel == "dynamic-no-pic" &&
  245. "Invalid PIC model!");
  246. RM = llvm::Reloc::DynamicNoPIC;
  247. }
  248. CodeGenOpt::Level OptLevel = CodeGenOpt::Default;
  249. switch (CodeGenOpts.OptimizationLevel) {
  250. default: break;
  251. case 0: OptLevel = CodeGenOpt::None; break;
  252. case 3: OptLevel = CodeGenOpt::Aggressive; break;
  253. }
  254. llvm::TargetOptions Options;
  255. // Set frame pointer elimination mode.
  256. if (!CodeGenOpts.DisableFPElim) {
  257. Options.NoFramePointerElim = false;
  258. Options.NoFramePointerElimNonLeaf = false;
  259. } else if (CodeGenOpts.OmitLeafFramePointer) {
  260. Options.NoFramePointerElim = false;
  261. Options.NoFramePointerElimNonLeaf = true;
  262. } else {
  263. Options.NoFramePointerElim = true;
  264. Options.NoFramePointerElimNonLeaf = true;
  265. }
  266. // Set float ABI type.
  267. if (CodeGenOpts.FloatABI == "soft" || CodeGenOpts.FloatABI == "softfp")
  268. Options.FloatABIType = llvm::FloatABI::Soft;
  269. else if (CodeGenOpts.FloatABI == "hard")
  270. Options.FloatABIType = llvm::FloatABI::Hard;
  271. else {
  272. assert(CodeGenOpts.FloatABI.empty() && "Invalid float abi!");
  273. Options.FloatABIType = llvm::FloatABI::Default;
  274. }
  275. Options.LessPreciseFPMADOption = CodeGenOpts.LessPreciseFPMAD;
  276. Options.NoInfsFPMath = CodeGenOpts.NoInfsFPMath;
  277. Options.NoNaNsFPMath = CodeGenOpts.NoNaNsFPMath;
  278. Options.NoZerosInBSS = CodeGenOpts.NoZeroInitializedInBSS;
  279. Options.UnsafeFPMath = CodeGenOpts.UnsafeFPMath;
  280. Options.UseSoftFloat = CodeGenOpts.SoftFloat;
  281. Options.StackAlignmentOverride = CodeGenOpts.StackAlignment;
  282. Options.RealignStack = CodeGenOpts.StackRealignment;
  283. Options.DisableTailCalls = CodeGenOpts.DisableTailCalls;
  284. Options.TrapFuncName = CodeGenOpts.TrapFuncName;
  285. TargetMachine *TM = TheTarget->createTargetMachine(Triple, TargetOpts.CPU,
  286. FeaturesStr, Options,
  287. RM, CM, OptLevel);
  288. if (CodeGenOpts.RelaxAll)
  289. TM->setMCRelaxAll(true);
  290. if (CodeGenOpts.SaveTempLabels)
  291. TM->setMCSaveTempLabels(true);
  292. if (CodeGenOpts.NoDwarf2CFIAsm)
  293. TM->setMCUseCFI(false);
  294. if (!CodeGenOpts.NoDwarfDirectoryAsm)
  295. TM->setMCUseDwarfDirectory(true);
  296. if (CodeGenOpts.NoExecStack)
  297. TM->setMCNoExecStack(true);
  298. // Create the code generator passes.
  299. PassManager *PM = getCodeGenPasses();
  300. // Normal mode, emit a .s or .o file by running the code generator. Note,
  301. // this also adds codegenerator level optimization passes.
  302. TargetMachine::CodeGenFileType CGFT = TargetMachine::CGFT_AssemblyFile;
  303. if (Action == Backend_EmitObj)
  304. CGFT = TargetMachine::CGFT_ObjectFile;
  305. else if (Action == Backend_EmitMCNull)
  306. CGFT = TargetMachine::CGFT_Null;
  307. else
  308. assert(Action == Backend_EmitAssembly && "Invalid action!");
  309. // Add ObjC ARC final-cleanup optimizations. This is done as part of the
  310. // "codegen" passes so that it isn't run multiple times when there is
  311. // inlining happening.
  312. if (LangOpts.ObjCAutoRefCount)
  313. PM->add(createObjCARCContractPass());
  314. if (TM->addPassesToEmitFile(*PM, OS, CGFT,
  315. /*DisableVerify=*/!CodeGenOpts.VerifyModule)) {
  316. Diags.Report(diag::err_fe_unable_to_interface_with_target);
  317. return false;
  318. }
  319. return true;
  320. }
  321. void EmitAssemblyHelper::EmitAssembly(BackendAction Action, raw_ostream *OS) {
  322. TimeRegion Region(llvm::TimePassesIsEnabled ? &CodeGenerationTime : 0);
  323. llvm::formatted_raw_ostream FormattedOS;
  324. CreatePasses();
  325. switch (Action) {
  326. case Backend_EmitNothing:
  327. break;
  328. case Backend_EmitBC:
  329. getPerModulePasses()->add(createBitcodeWriterPass(*OS));
  330. break;
  331. case Backend_EmitLL:
  332. FormattedOS.setStream(*OS, formatted_raw_ostream::PRESERVE_STREAM);
  333. getPerModulePasses()->add(createPrintModulePass(&FormattedOS));
  334. break;
  335. default:
  336. FormattedOS.setStream(*OS, formatted_raw_ostream::PRESERVE_STREAM);
  337. if (!AddEmitPasses(Action, FormattedOS))
  338. return;
  339. }
  340. // Before executing passes, print the final values of the LLVM options.
  341. cl::PrintOptionValues();
  342. // Run passes. For now we do all passes at once, but eventually we
  343. // would like to have the option of streaming code generation.
  344. if (PerFunctionPasses) {
  345. PrettyStackTraceString CrashInfo("Per-function optimization");
  346. PerFunctionPasses->doInitialization();
  347. for (Module::iterator I = TheModule->begin(),
  348. E = TheModule->end(); I != E; ++I)
  349. if (!I->isDeclaration())
  350. PerFunctionPasses->run(*I);
  351. PerFunctionPasses->doFinalization();
  352. }
  353. if (PerModulePasses) {
  354. PrettyStackTraceString CrashInfo("Per-module optimization passes");
  355. PerModulePasses->run(*TheModule);
  356. }
  357. if (CodeGenPasses) {
  358. PrettyStackTraceString CrashInfo("Code generation");
  359. CodeGenPasses->run(*TheModule);
  360. }
  361. }
  362. void clang::EmitBackendOutput(DiagnosticsEngine &Diags,
  363. const CodeGenOptions &CGOpts,
  364. const clang::TargetOptions &TOpts,
  365. const LangOptions &LOpts,
  366. Module *M,
  367. BackendAction Action, raw_ostream *OS) {
  368. EmitAssemblyHelper AsmHelper(Diags, CGOpts, TOpts, LOpts, M);
  369. AsmHelper.EmitAssembly(Action, OS);
  370. }