1 //===-- AsmPrinter.cpp - Common AsmPrinter code ---------------------------===// 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 // 10 // This file implements the AsmPrinter class. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/CodeGen/AsmPrinter.h" 15 #include "DwarfDebug.h" 16 #include "DwarfException.h" 17 #include "Win64Exception.h" 18 #include "WinCodeViewLineTables.h" 19 #include "llvm/ADT/SmallString.h" 20 #include "llvm/ADT/Statistic.h" 21 #include "llvm/Analysis/ConstantFolding.h" 22 #include "llvm/Analysis/JumpInstrTableInfo.h" 23 #include "llvm/CodeGen/Analysis.h" 24 #include "llvm/CodeGen/GCMetadataPrinter.h" 25 #include "llvm/CodeGen/MachineConstantPool.h" 26 #include "llvm/CodeGen/MachineFrameInfo.h" 27 #include "llvm/CodeGen/MachineFunction.h" 28 #include "llvm/CodeGen/MachineInstrBundle.h" 29 #include "llvm/CodeGen/MachineJumpTableInfo.h" 30 #include "llvm/CodeGen/MachineLoopInfo.h" 31 #include "llvm/CodeGen/MachineModuleInfo.h" 32 #include "llvm/IR/DataLayout.h" 33 #include "llvm/IR/DebugInfo.h" 34 #include "llvm/IR/Mangler.h" 35 #include "llvm/IR/Module.h" 36 #include "llvm/IR/Operator.h" 37 #include "llvm/MC/MCAsmInfo.h" 38 #include "llvm/MC/MCContext.h" 39 #include "llvm/MC/MCExpr.h" 40 #include "llvm/MC/MCInst.h" 41 #include "llvm/MC/MCSection.h" 42 #include "llvm/MC/MCStreamer.h" 43 #include "llvm/MC/MCSymbol.h" 44 #include "llvm/Support/ErrorHandling.h" 45 #include "llvm/Support/Format.h" 46 #include "llvm/Support/MathExtras.h" 47 #include "llvm/Support/Timer.h" 48 #include "llvm/Target/TargetFrameLowering.h" 49 #include "llvm/Target/TargetInstrInfo.h" 50 #include "llvm/Target/TargetLowering.h" 51 #include "llvm/Target/TargetLoweringObjectFile.h" 52 #include "llvm/Target/TargetRegisterInfo.h" 53 #include "llvm/Target/TargetSubtargetInfo.h" 54 using namespace llvm; 55 56 #define DEBUG_TYPE "asm-printer" 57 58 static const char *const DWARFGroupName = "DWARF Emission"; 59 static const char *const DbgTimerName = "Debug Info Emission"; 60 static const char *const EHTimerName = "DWARF Exception Writer"; 61 static const char *const CodeViewLineTablesGroupName = "CodeView Line Tables"; 62 63 STATISTIC(EmittedInsts, "Number of machine instrs printed"); 64 65 char AsmPrinter::ID = 0; 66 67 typedef DenseMap<GCStrategy*, std::unique_ptr<GCMetadataPrinter>> gcp_map_type; 68 static gcp_map_type &getGCMap(void *&P) { 69 if (!P) 70 P = new gcp_map_type(); 71 return *(gcp_map_type*)P; 72 } 73 74 75 /// getGVAlignmentLog2 - Return the alignment to use for the specified global 76 /// value in log2 form. This rounds up to the preferred alignment if possible 77 /// and legal. 78 static unsigned getGVAlignmentLog2(const GlobalValue *GV, const DataLayout &TD, 79 unsigned InBits = 0) { 80 unsigned NumBits = 0; 81 if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV)) 82 NumBits = TD.getPreferredAlignmentLog(GVar); 83 84 // If InBits is specified, round it to it. 85 if (InBits > NumBits) 86 NumBits = InBits; 87 88 // If the GV has a specified alignment, take it into account. 89 if (GV->getAlignment() == 0) 90 return NumBits; 91 92 unsigned GVAlign = Log2_32(GV->getAlignment()); 93 94 // If the GVAlign is larger than NumBits, or if we are required to obey 95 // NumBits because the GV has an assigned section, obey it. 96 if (GVAlign > NumBits || GV->hasSection()) 97 NumBits = GVAlign; 98 return NumBits; 99 } 100 101 AsmPrinter::AsmPrinter(TargetMachine &tm, MCStreamer &Streamer) 102 : MachineFunctionPass(ID), TM(tm), MAI(tm.getMCAsmInfo()), 103 MII(tm.getSubtargetImpl()->getInstrInfo()), 104 OutContext(Streamer.getContext()), OutStreamer(Streamer), LastMI(nullptr), 105 LastFn(0), Counter(~0U), SetCounter(0) { 106 DD = nullptr; MMI = nullptr; LI = nullptr; MF = nullptr; 107 CurrentFnSym = CurrentFnSymForSize = nullptr; 108 GCMetadataPrinters = nullptr; 109 VerboseAsm = Streamer.isVerboseAsm(); 110 } 111 112 AsmPrinter::~AsmPrinter() { 113 assert(!DD && Handlers.empty() && "Debug/EH info didn't get finalized"); 114 115 if (GCMetadataPrinters) { 116 gcp_map_type &GCMap = getGCMap(GCMetadataPrinters); 117 118 delete &GCMap; 119 GCMetadataPrinters = nullptr; 120 } 121 122 delete &OutStreamer; 123 } 124 125 /// getFunctionNumber - Return a unique ID for the current function. 126 /// 127 unsigned AsmPrinter::getFunctionNumber() const { 128 return MF->getFunctionNumber(); 129 } 130 131 const TargetLoweringObjectFile &AsmPrinter::getObjFileLowering() const { 132 return TM.getSubtargetImpl()->getTargetLowering()->getObjFileLowering(); 133 } 134 135 /// getDataLayout - Return information about data layout. 136 const DataLayout &AsmPrinter::getDataLayout() const { 137 return *TM.getSubtargetImpl()->getDataLayout(); 138 } 139 140 const MCSubtargetInfo &AsmPrinter::getSubtargetInfo() const { 141 return TM.getSubtarget<MCSubtargetInfo>(); 142 } 143 144 void AsmPrinter::EmitToStreamer(MCStreamer &S, const MCInst &Inst) { 145 S.EmitInstruction(Inst, getSubtargetInfo()); 146 } 147 148 StringRef AsmPrinter::getTargetTriple() const { 149 return TM.getTargetTriple(); 150 } 151 152 /// getCurrentSection() - Return the current section we are emitting to. 153 const MCSection *AsmPrinter::getCurrentSection() const { 154 return OutStreamer.getCurrentSection().first; 155 } 156 157 158 159 void AsmPrinter::getAnalysisUsage(AnalysisUsage &AU) const { 160 AU.setPreservesAll(); 161 MachineFunctionPass::getAnalysisUsage(AU); 162 AU.addRequired<MachineModuleInfo>(); 163 AU.addRequired<GCModuleInfo>(); 164 if (isVerbose()) 165 AU.addRequired<MachineLoopInfo>(); 166 } 167 168 bool AsmPrinter::doInitialization(Module &M) { 169 MMI = getAnalysisIfAvailable<MachineModuleInfo>(); 170 MMI->AnalyzeModule(M); 171 172 // Initialize TargetLoweringObjectFile. 173 const_cast<TargetLoweringObjectFile&>(getObjFileLowering()) 174 .Initialize(OutContext, TM); 175 176 OutStreamer.InitSections(false); 177 178 Mang = new Mangler(TM.getSubtargetImpl()->getDataLayout()); 179 180 // Emit the version-min deplyment target directive if needed. 181 // 182 // FIXME: If we end up with a collection of these sorts of Darwin-specific 183 // or ELF-specific things, it may make sense to have a platform helper class 184 // that will work with the target helper class. For now keep it here, as the 185 // alternative is duplicated code in each of the target asm printers that 186 // use the directive, where it would need the same conditionalization 187 // anyway. 188 Triple TT(getTargetTriple()); 189 if (TT.isOSDarwin()) { 190 unsigned Major, Minor, Update; 191 TT.getOSVersion(Major, Minor, Update); 192 // If there is a version specified, Major will be non-zero. 193 if (Major) 194 OutStreamer.EmitVersionMin((TT.isMacOSX() ? 195 MCVM_OSXVersionMin : MCVM_IOSVersionMin), 196 Major, Minor, Update); 197 } 198 199 // Allow the target to emit any magic that it wants at the start of the file. 200 EmitStartOfAsmFile(M); 201 202 // Very minimal debug info. It is ignored if we emit actual debug info. If we 203 // don't, this at least helps the user find where a global came from. 204 if (MAI->hasSingleParameterDotFile()) { 205 // .file "foo.c" 206 OutStreamer.EmitFileDirective(M.getModuleIdentifier()); 207 } 208 209 GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>(); 210 assert(MI && "AsmPrinter didn't require GCModuleInfo?"); 211 for (auto &I : *MI) 212 if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(*I)) 213 MP->beginAssembly(*this); 214 215 // Emit module-level inline asm if it exists. 216 if (!M.getModuleInlineAsm().empty()) { 217 OutStreamer.AddComment("Start of file scope inline assembly"); 218 OutStreamer.AddBlankLine(); 219 EmitInlineAsm(M.getModuleInlineAsm()+"\n"); 220 OutStreamer.AddComment("End of file scope inline assembly"); 221 OutStreamer.AddBlankLine(); 222 } 223 224 if (MAI->doesSupportDebugInformation()) { 225 if (Triple(TM.getTargetTriple()).isKnownWindowsMSVCEnvironment()) 226 Handlers.push_back(HandlerInfo(new WinCodeViewLineTables(this), 227 DbgTimerName, 228 CodeViewLineTablesGroupName)); 229 DD = new DwarfDebug(this, &M); 230 Handlers.push_back(HandlerInfo(DD, DbgTimerName, DWARFGroupName)); 231 } 232 233 EHStreamer *ES = nullptr; 234 switch (MAI->getExceptionHandlingType()) { 235 case ExceptionHandling::None: 236 break; 237 case ExceptionHandling::SjLj: 238 case ExceptionHandling::DwarfCFI: 239 ES = new DwarfCFIException(this); 240 break; 241 case ExceptionHandling::ARM: 242 ES = new ARMException(this); 243 break; 244 case ExceptionHandling::WinEH: 245 switch (MAI->getWinEHEncodingType()) { 246 default: llvm_unreachable("unsupported unwinding information encoding"); 247 case WinEH::EncodingType::Itanium: 248 ES = new Win64Exception(this); 249 break; 250 } 251 break; 252 } 253 if (ES) 254 Handlers.push_back(HandlerInfo(ES, EHTimerName, DWARFGroupName)); 255 return false; 256 } 257 258 static bool canBeHidden(const GlobalValue *GV, const MCAsmInfo &MAI) { 259 if (!MAI.hasWeakDefCanBeHiddenDirective()) 260 return false; 261 262 return canBeOmittedFromSymbolTable(GV); 263 } 264 265 void AsmPrinter::EmitLinkage(const GlobalValue *GV, MCSymbol *GVSym) const { 266 GlobalValue::LinkageTypes Linkage = GV->getLinkage(); 267 switch (Linkage) { 268 case GlobalValue::CommonLinkage: 269 case GlobalValue::LinkOnceAnyLinkage: 270 case GlobalValue::LinkOnceODRLinkage: 271 case GlobalValue::WeakAnyLinkage: 272 case GlobalValue::WeakODRLinkage: 273 if (MAI->hasWeakDefDirective()) { 274 // .globl _foo 275 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Global); 276 277 if (!canBeHidden(GV, *MAI)) 278 // .weak_definition _foo 279 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_WeakDefinition); 280 else 281 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_WeakDefAutoPrivate); 282 } else if (MAI->hasLinkOnceDirective()) { 283 // .globl _foo 284 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Global); 285 //NOTE: linkonce is handled by the section the symbol was assigned to. 286 } else { 287 // .weak _foo 288 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Weak); 289 } 290 return; 291 case GlobalValue::AppendingLinkage: 292 // FIXME: appending linkage variables should go into a section of 293 // their name or something. For now, just emit them as external. 294 case GlobalValue::ExternalLinkage: 295 // If external or appending, declare as a global symbol. 296 // .globl _foo 297 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Global); 298 return; 299 case GlobalValue::PrivateLinkage: 300 case GlobalValue::InternalLinkage: 301 return; 302 case GlobalValue::AvailableExternallyLinkage: 303 llvm_unreachable("Should never emit this"); 304 case GlobalValue::ExternalWeakLinkage: 305 llvm_unreachable("Don't know how to emit these"); 306 } 307 llvm_unreachable("Unknown linkage type!"); 308 } 309 310 void AsmPrinter::getNameWithPrefix(SmallVectorImpl<char> &Name, 311 const GlobalValue *GV) const { 312 TM.getNameWithPrefix(Name, GV, *Mang); 313 } 314 315 MCSymbol *AsmPrinter::getSymbol(const GlobalValue *GV) const { 316 return TM.getSymbol(GV, *Mang); 317 } 318 319 /// EmitGlobalVariable - Emit the specified global variable to the .s file. 320 void AsmPrinter::EmitGlobalVariable(const GlobalVariable *GV) { 321 if (GV->hasInitializer()) { 322 // Check to see if this is a special global used by LLVM, if so, emit it. 323 if (EmitSpecialLLVMGlobal(GV)) 324 return; 325 326 if (isVerbose()) { 327 GV->printAsOperand(OutStreamer.GetCommentOS(), 328 /*PrintType=*/false, GV->getParent()); 329 OutStreamer.GetCommentOS() << '\n'; 330 } 331 } 332 333 MCSymbol *GVSym = getSymbol(GV); 334 EmitVisibility(GVSym, GV->getVisibility(), !GV->isDeclaration()); 335 336 if (!GV->hasInitializer()) // External globals require no extra code. 337 return; 338 339 if (MAI->hasDotTypeDotSizeDirective()) 340 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_ELF_TypeObject); 341 342 SectionKind GVKind = TargetLoweringObjectFile::getKindForGlobal(GV, TM); 343 344 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 345 uint64_t Size = DL->getTypeAllocSize(GV->getType()->getElementType()); 346 347 // If the alignment is specified, we *must* obey it. Overaligning a global 348 // with a specified alignment is a prompt way to break globals emitted to 349 // sections and expected to be contiguous (e.g. ObjC metadata). 350 unsigned AlignLog = getGVAlignmentLog2(GV, *DL); 351 352 for (const HandlerInfo &HI : Handlers) { 353 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, TimePassesIsEnabled); 354 HI.Handler->setSymbolSize(GVSym, Size); 355 } 356 357 // Handle common and BSS local symbols (.lcomm). 358 if (GVKind.isCommon() || GVKind.isBSSLocal()) { 359 if (Size == 0) Size = 1; // .comm Foo, 0 is undefined, avoid it. 360 unsigned Align = 1 << AlignLog; 361 362 // Handle common symbols. 363 if (GVKind.isCommon()) { 364 if (!getObjFileLowering().getCommDirectiveSupportsAlignment()) 365 Align = 0; 366 367 // .comm _foo, 42, 4 368 OutStreamer.EmitCommonSymbol(GVSym, Size, Align); 369 return; 370 } 371 372 // Handle local BSS symbols. 373 if (MAI->hasMachoZeroFillDirective()) { 374 const MCSection *TheSection = 375 getObjFileLowering().SectionForGlobal(GV, GVKind, *Mang, TM); 376 // .zerofill __DATA, __bss, _foo, 400, 5 377 OutStreamer.EmitZerofill(TheSection, GVSym, Size, Align); 378 return; 379 } 380 381 // Use .lcomm only if it supports user-specified alignment. 382 // Otherwise, while it would still be correct to use .lcomm in some 383 // cases (e.g. when Align == 1), the external assembler might enfore 384 // some -unknown- default alignment behavior, which could cause 385 // spurious differences between external and integrated assembler. 386 // Prefer to simply fall back to .local / .comm in this case. 387 if (MAI->getLCOMMDirectiveAlignmentType() != LCOMM::NoAlignment) { 388 // .lcomm _foo, 42 389 OutStreamer.EmitLocalCommonSymbol(GVSym, Size, Align); 390 return; 391 } 392 393 if (!getObjFileLowering().getCommDirectiveSupportsAlignment()) 394 Align = 0; 395 396 // .local _foo 397 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Local); 398 // .comm _foo, 42, 4 399 OutStreamer.EmitCommonSymbol(GVSym, Size, Align); 400 return; 401 } 402 403 const MCSection *TheSection = 404 getObjFileLowering().SectionForGlobal(GV, GVKind, *Mang, TM); 405 406 // Handle the zerofill directive on darwin, which is a special form of BSS 407 // emission. 408 if (GVKind.isBSSExtern() && MAI->hasMachoZeroFillDirective()) { 409 if (Size == 0) Size = 1; // zerofill of 0 bytes is undefined. 410 411 // .globl _foo 412 OutStreamer.EmitSymbolAttribute(GVSym, MCSA_Global); 413 // .zerofill __DATA, __common, _foo, 400, 5 414 OutStreamer.EmitZerofill(TheSection, GVSym, Size, 1 << AlignLog); 415 return; 416 } 417 418 // Handle thread local data for mach-o which requires us to output an 419 // additional structure of data and mangle the original symbol so that we 420 // can reference it later. 421 // 422 // TODO: This should become an "emit thread local global" method on TLOF. 423 // All of this macho specific stuff should be sunk down into TLOFMachO and 424 // stuff like "TLSExtraDataSection" should no longer be part of the parent 425 // TLOF class. This will also make it more obvious that stuff like 426 // MCStreamer::EmitTBSSSymbol is macho specific and only called from macho 427 // specific code. 428 if (GVKind.isThreadLocal() && MAI->hasMachoTBSSDirective()) { 429 // Emit the .tbss symbol 430 MCSymbol *MangSym = 431 OutContext.GetOrCreateSymbol(GVSym->getName() + Twine("$tlv$init")); 432 433 if (GVKind.isThreadBSS()) { 434 TheSection = getObjFileLowering().getTLSBSSSection(); 435 OutStreamer.EmitTBSSSymbol(TheSection, MangSym, Size, 1 << AlignLog); 436 } else if (GVKind.isThreadData()) { 437 OutStreamer.SwitchSection(TheSection); 438 439 EmitAlignment(AlignLog, GV); 440 OutStreamer.EmitLabel(MangSym); 441 442 EmitGlobalConstant(GV->getInitializer()); 443 } 444 445 OutStreamer.AddBlankLine(); 446 447 // Emit the variable struct for the runtime. 448 const MCSection *TLVSect 449 = getObjFileLowering().getTLSExtraDataSection(); 450 451 OutStreamer.SwitchSection(TLVSect); 452 // Emit the linkage here. 453 EmitLinkage(GV, GVSym); 454 OutStreamer.EmitLabel(GVSym); 455 456 // Three pointers in size: 457 // - __tlv_bootstrap - used to make sure support exists 458 // - spare pointer, used when mapped by the runtime 459 // - pointer to mangled symbol above with initializer 460 unsigned PtrSize = DL->getPointerTypeSize(GV->getType()); 461 OutStreamer.EmitSymbolValue(GetExternalSymbolSymbol("_tlv_bootstrap"), 462 PtrSize); 463 OutStreamer.EmitIntValue(0, PtrSize); 464 OutStreamer.EmitSymbolValue(MangSym, PtrSize); 465 466 OutStreamer.AddBlankLine(); 467 return; 468 } 469 470 OutStreamer.SwitchSection(TheSection); 471 472 EmitLinkage(GV, GVSym); 473 EmitAlignment(AlignLog, GV); 474 475 OutStreamer.EmitLabel(GVSym); 476 477 EmitGlobalConstant(GV->getInitializer()); 478 479 if (MAI->hasDotTypeDotSizeDirective()) 480 // .size foo, 42 481 OutStreamer.EmitELFSize(GVSym, MCConstantExpr::Create(Size, OutContext)); 482 483 OutStreamer.AddBlankLine(); 484 } 485 486 /// EmitFunctionHeader - This method emits the header for the current 487 /// function. 488 void AsmPrinter::EmitFunctionHeader() { 489 // Print out constants referenced by the function 490 EmitConstantPool(); 491 492 // Print the 'header' of function. 493 const Function *F = MF->getFunction(); 494 495 OutStreamer.SwitchSection( 496 getObjFileLowering().SectionForGlobal(F, *Mang, TM)); 497 EmitVisibility(CurrentFnSym, F->getVisibility()); 498 499 EmitLinkage(F, CurrentFnSym); 500 EmitAlignment(MF->getAlignment(), F); 501 502 if (MAI->hasDotTypeDotSizeDirective()) 503 OutStreamer.EmitSymbolAttribute(CurrentFnSym, MCSA_ELF_TypeFunction); 504 505 if (isVerbose()) { 506 F->printAsOperand(OutStreamer.GetCommentOS(), 507 /*PrintType=*/false, F->getParent()); 508 OutStreamer.GetCommentOS() << '\n'; 509 } 510 511 // Emit the CurrentFnSym. This is a virtual function to allow targets to 512 // do their wild and crazy things as required. 513 EmitFunctionEntryLabel(); 514 515 // If the function had address-taken blocks that got deleted, then we have 516 // references to the dangling symbols. Emit them at the start of the function 517 // so that we don't get references to undefined symbols. 518 std::vector<MCSymbol*> DeadBlockSyms; 519 MMI->takeDeletedSymbolsForFunction(F, DeadBlockSyms); 520 for (unsigned i = 0, e = DeadBlockSyms.size(); i != e; ++i) { 521 OutStreamer.AddComment("Address taken block that was later removed"); 522 OutStreamer.EmitLabel(DeadBlockSyms[i]); 523 } 524 525 // Emit pre-function debug and/or EH information. 526 for (const HandlerInfo &HI : Handlers) { 527 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, TimePassesIsEnabled); 528 HI.Handler->beginFunction(MF); 529 } 530 531 // Emit the prefix data. 532 if (F->hasPrefixData()) 533 EmitGlobalConstant(F->getPrefixData()); 534 } 535 536 /// EmitFunctionEntryLabel - Emit the label that is the entrypoint for the 537 /// function. This can be overridden by targets as required to do custom stuff. 538 void AsmPrinter::EmitFunctionEntryLabel() { 539 // The function label could have already been emitted if two symbols end up 540 // conflicting due to asm renaming. Detect this and emit an error. 541 if (CurrentFnSym->isUndefined()) 542 return OutStreamer.EmitLabel(CurrentFnSym); 543 544 report_fatal_error("'" + Twine(CurrentFnSym->getName()) + 545 "' label emitted multiple times to assembly file"); 546 } 547 548 /// emitComments - Pretty-print comments for instructions. 549 static void emitComments(const MachineInstr &MI, raw_ostream &CommentOS) { 550 const MachineFunction *MF = MI.getParent()->getParent(); 551 const TargetMachine &TM = MF->getTarget(); 552 553 // Check for spills and reloads 554 int FI; 555 556 const MachineFrameInfo *FrameInfo = MF->getFrameInfo(); 557 558 // We assume a single instruction only has a spill or reload, not 559 // both. 560 const MachineMemOperand *MMO; 561 if (TM.getSubtargetImpl()->getInstrInfo()->isLoadFromStackSlotPostFE(&MI, 562 FI)) { 563 if (FrameInfo->isSpillSlotObjectIndex(FI)) { 564 MMO = *MI.memoperands_begin(); 565 CommentOS << MMO->getSize() << "-byte Reload\n"; 566 } 567 } else if (TM.getSubtargetImpl()->getInstrInfo()->hasLoadFromStackSlot( 568 &MI, MMO, FI)) { 569 if (FrameInfo->isSpillSlotObjectIndex(FI)) 570 CommentOS << MMO->getSize() << "-byte Folded Reload\n"; 571 } else if (TM.getSubtargetImpl()->getInstrInfo()->isStoreToStackSlotPostFE( 572 &MI, FI)) { 573 if (FrameInfo->isSpillSlotObjectIndex(FI)) { 574 MMO = *MI.memoperands_begin(); 575 CommentOS << MMO->getSize() << "-byte Spill\n"; 576 } 577 } else if (TM.getSubtargetImpl()->getInstrInfo()->hasStoreToStackSlot( 578 &MI, MMO, FI)) { 579 if (FrameInfo->isSpillSlotObjectIndex(FI)) 580 CommentOS << MMO->getSize() << "-byte Folded Spill\n"; 581 } 582 583 // Check for spill-induced copies 584 if (MI.getAsmPrinterFlag(MachineInstr::ReloadReuse)) 585 CommentOS << " Reload Reuse\n"; 586 } 587 588 /// emitImplicitDef - This method emits the specified machine instruction 589 /// that is an implicit def. 590 void AsmPrinter::emitImplicitDef(const MachineInstr *MI) const { 591 unsigned RegNo = MI->getOperand(0).getReg(); 592 OutStreamer.AddComment( 593 Twine("implicit-def: ") + 594 TM.getSubtargetImpl()->getRegisterInfo()->getName(RegNo)); 595 OutStreamer.AddBlankLine(); 596 } 597 598 static void emitKill(const MachineInstr *MI, AsmPrinter &AP) { 599 std::string Str = "kill:"; 600 for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) { 601 const MachineOperand &Op = MI->getOperand(i); 602 assert(Op.isReg() && "KILL instruction must have only register operands"); 603 Str += ' '; 604 Str += AP.TM.getSubtargetImpl()->getRegisterInfo()->getName(Op.getReg()); 605 Str += (Op.isDef() ? "<def>" : "<kill>"); 606 } 607 AP.OutStreamer.AddComment(Str); 608 AP.OutStreamer.AddBlankLine(); 609 } 610 611 /// emitDebugValueComment - This method handles the target-independent form 612 /// of DBG_VALUE, returning true if it was able to do so. A false return 613 /// means the target will need to handle MI in EmitInstruction. 614 static bool emitDebugValueComment(const MachineInstr *MI, AsmPrinter &AP) { 615 // This code handles only the 4-operand target-independent form. 616 if (MI->getNumOperands() != 4) 617 return false; 618 619 SmallString<128> Str; 620 raw_svector_ostream OS(Str); 621 OS << "DEBUG_VALUE: "; 622 623 DIVariable V = MI->getDebugVariable(); 624 if (V.getContext().isSubprogram()) { 625 StringRef Name = DISubprogram(V.getContext()).getDisplayName(); 626 if (!Name.empty()) 627 OS << Name << ":"; 628 } 629 OS << V.getName(); 630 631 DIExpression Expr = MI->getDebugExpression(); 632 if (Expr.isVariablePiece()) 633 OS << " [piece offset=" << Expr.getPieceOffset() 634 << " size=" << Expr.getPieceSize() << "]"; 635 OS << " <- "; 636 637 // The second operand is only an offset if it's an immediate. 638 bool Deref = MI->getOperand(0).isReg() && MI->getOperand(1).isImm(); 639 int64_t Offset = Deref ? MI->getOperand(1).getImm() : 0; 640 641 // Register or immediate value. Register 0 means undef. 642 if (MI->getOperand(0).isFPImm()) { 643 APFloat APF = APFloat(MI->getOperand(0).getFPImm()->getValueAPF()); 644 if (MI->getOperand(0).getFPImm()->getType()->isFloatTy()) { 645 OS << (double)APF.convertToFloat(); 646 } else if (MI->getOperand(0).getFPImm()->getType()->isDoubleTy()) { 647 OS << APF.convertToDouble(); 648 } else { 649 // There is no good way to print long double. Convert a copy to 650 // double. Ah well, it's only a comment. 651 bool ignored; 652 APF.convert(APFloat::IEEEdouble, APFloat::rmNearestTiesToEven, 653 &ignored); 654 OS << "(long double) " << APF.convertToDouble(); 655 } 656 } else if (MI->getOperand(0).isImm()) { 657 OS << MI->getOperand(0).getImm(); 658 } else if (MI->getOperand(0).isCImm()) { 659 MI->getOperand(0).getCImm()->getValue().print(OS, false /*isSigned*/); 660 } else { 661 unsigned Reg; 662 if (MI->getOperand(0).isReg()) { 663 Reg = MI->getOperand(0).getReg(); 664 } else { 665 assert(MI->getOperand(0).isFI() && "Unknown operand type"); 666 const TargetFrameLowering *TFI = 667 AP.TM.getSubtargetImpl()->getFrameLowering(); 668 Offset += TFI->getFrameIndexReference(*AP.MF, 669 MI->getOperand(0).getIndex(), Reg); 670 Deref = true; 671 } 672 if (Reg == 0) { 673 // Suppress offset, it is not meaningful here. 674 OS << "undef"; 675 // NOTE: Want this comment at start of line, don't emit with AddComment. 676 AP.OutStreamer.emitRawComment(OS.str()); 677 return true; 678 } 679 if (Deref) 680 OS << '['; 681 OS << AP.TM.getSubtargetImpl()->getRegisterInfo()->getName(Reg); 682 } 683 684 if (Deref) 685 OS << '+' << Offset << ']'; 686 687 // NOTE: Want this comment at start of line, don't emit with AddComment. 688 AP.OutStreamer.emitRawComment(OS.str()); 689 return true; 690 } 691 692 AsmPrinter::CFIMoveType AsmPrinter::needsCFIMoves() { 693 if (MAI->getExceptionHandlingType() == ExceptionHandling::DwarfCFI && 694 MF->getFunction()->needsUnwindTableEntry()) 695 return CFI_M_EH; 696 697 if (MMI->hasDebugInfo()) 698 return CFI_M_Debug; 699 700 return CFI_M_None; 701 } 702 703 bool AsmPrinter::needsSEHMoves() { 704 return MAI->getExceptionHandlingType() == ExceptionHandling::WinEH && 705 MF->getFunction()->needsUnwindTableEntry(); 706 } 707 708 void AsmPrinter::emitCFIInstruction(const MachineInstr &MI) { 709 ExceptionHandling ExceptionHandlingType = MAI->getExceptionHandlingType(); 710 if (ExceptionHandlingType != ExceptionHandling::DwarfCFI && 711 ExceptionHandlingType != ExceptionHandling::ARM) 712 return; 713 714 if (needsCFIMoves() == CFI_M_None) 715 return; 716 717 const MachineModuleInfo &MMI = MF->getMMI(); 718 const std::vector<MCCFIInstruction> &Instrs = MMI.getFrameInstructions(); 719 unsigned CFIIndex = MI.getOperand(0).getCFIIndex(); 720 const MCCFIInstruction &CFI = Instrs[CFIIndex]; 721 emitCFIInstruction(CFI); 722 } 723 724 /// EmitFunctionBody - This method emits the body and trailer for a 725 /// function. 726 void AsmPrinter::EmitFunctionBody() { 727 // Emit target-specific gunk before the function body. 728 EmitFunctionBodyStart(); 729 730 bool ShouldPrintDebugScopes = MMI->hasDebugInfo(); 731 732 // Print out code for the function. 733 bool HasAnyRealCode = false; 734 for (auto &MBB : *MF) { 735 // Print a label for the basic block. 736 EmitBasicBlockStart(MBB); 737 for (auto &MI : MBB) { 738 739 // Print the assembly for the instruction. 740 if (!MI.isPosition() && !MI.isImplicitDef() && !MI.isKill() && 741 !MI.isDebugValue()) { 742 HasAnyRealCode = true; 743 ++EmittedInsts; 744 } 745 746 if (ShouldPrintDebugScopes) { 747 for (const HandlerInfo &HI : Handlers) { 748 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, 749 TimePassesIsEnabled); 750 HI.Handler->beginInstruction(&MI); 751 } 752 } 753 754 if (isVerbose()) 755 emitComments(MI, OutStreamer.GetCommentOS()); 756 757 switch (MI.getOpcode()) { 758 case TargetOpcode::CFI_INSTRUCTION: 759 emitCFIInstruction(MI); 760 break; 761 762 case TargetOpcode::EH_LABEL: 763 case TargetOpcode::GC_LABEL: 764 OutStreamer.EmitLabel(MI.getOperand(0).getMCSymbol()); 765 break; 766 case TargetOpcode::INLINEASM: 767 EmitInlineAsm(&MI); 768 break; 769 case TargetOpcode::DBG_VALUE: 770 if (isVerbose()) { 771 if (!emitDebugValueComment(&MI, *this)) 772 EmitInstruction(&MI); 773 } 774 break; 775 case TargetOpcode::IMPLICIT_DEF: 776 if (isVerbose()) emitImplicitDef(&MI); 777 break; 778 case TargetOpcode::KILL: 779 if (isVerbose()) emitKill(&MI, *this); 780 break; 781 default: 782 EmitInstruction(&MI); 783 break; 784 } 785 786 if (ShouldPrintDebugScopes) { 787 for (const HandlerInfo &HI : Handlers) { 788 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, 789 TimePassesIsEnabled); 790 HI.Handler->endInstruction(); 791 } 792 } 793 } 794 795 EmitBasicBlockEnd(MBB); 796 } 797 798 // If the function is empty and the object file uses .subsections_via_symbols, 799 // then we need to emit *something* to the function body to prevent the 800 // labels from collapsing together. Just emit a noop. 801 if ((MAI->hasSubsectionsViaSymbols() && !HasAnyRealCode)) { 802 MCInst Noop; 803 TM.getSubtargetImpl()->getInstrInfo()->getNoopForMachoTarget(Noop); 804 OutStreamer.AddComment("avoids zero-length function"); 805 806 // Targets can opt-out of emitting the noop here by leaving the opcode 807 // unspecified. 808 if (Noop.getOpcode()) 809 OutStreamer.EmitInstruction(Noop, getSubtargetInfo()); 810 } 811 812 const Function *F = MF->getFunction(); 813 for (const auto &BB : *F) { 814 if (!BB.hasAddressTaken()) 815 continue; 816 MCSymbol *Sym = GetBlockAddressSymbol(&BB); 817 if (Sym->isDefined()) 818 continue; 819 OutStreamer.AddComment("Address of block that was removed by CodeGen"); 820 OutStreamer.EmitLabel(Sym); 821 } 822 823 // Emit target-specific gunk after the function body. 824 EmitFunctionBodyEnd(); 825 826 // If the target wants a .size directive for the size of the function, emit 827 // it. 828 if (MAI->hasDotTypeDotSizeDirective()) { 829 // Create a symbol for the end of function, so we can get the size as 830 // difference between the function label and the temp label. 831 MCSymbol *FnEndLabel = OutContext.CreateTempSymbol(); 832 OutStreamer.EmitLabel(FnEndLabel); 833 834 const MCExpr *SizeExp = 835 MCBinaryExpr::CreateSub(MCSymbolRefExpr::Create(FnEndLabel, OutContext), 836 MCSymbolRefExpr::Create(CurrentFnSymForSize, 837 OutContext), 838 OutContext); 839 OutStreamer.EmitELFSize(CurrentFnSym, SizeExp); 840 } 841 842 // Emit post-function debug and/or EH information. 843 for (const HandlerInfo &HI : Handlers) { 844 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, TimePassesIsEnabled); 845 HI.Handler->endFunction(MF); 846 } 847 MMI->EndFunction(); 848 849 // Print out jump tables referenced by the function. 850 EmitJumpTableInfo(); 851 852 OutStreamer.AddBlankLine(); 853 } 854 855 static const MCExpr *lowerConstant(const Constant *CV, AsmPrinter &AP); 856 857 bool AsmPrinter::doFinalization(Module &M) { 858 // Emit global variables. 859 for (const auto &G : M.globals()) 860 EmitGlobalVariable(&G); 861 862 // Emit visibility info for declarations 863 for (const Function &F : M) { 864 if (!F.isDeclaration()) 865 continue; 866 GlobalValue::VisibilityTypes V = F.getVisibility(); 867 if (V == GlobalValue::DefaultVisibility) 868 continue; 869 870 MCSymbol *Name = getSymbol(&F); 871 EmitVisibility(Name, V, false); 872 } 873 874 // Get information about jump-instruction tables to print. 875 JumpInstrTableInfo *JITI = getAnalysisIfAvailable<JumpInstrTableInfo>(); 876 877 if (JITI && !JITI->getTables().empty()) { 878 unsigned Arch = Triple(getTargetTriple()).getArch(); 879 bool IsThumb = (Arch == Triple::thumb || Arch == Triple::thumbeb); 880 MCInst TrapInst; 881 TM.getSubtargetImpl()->getInstrInfo()->getTrap(TrapInst); 882 for (const auto &KV : JITI->getTables()) { 883 uint64_t Count = 0; 884 for (const auto &FunPair : KV.second) { 885 // Emit the function labels to make this be a function entry point. 886 MCSymbol *FunSym = 887 OutContext.GetOrCreateSymbol(FunPair.second->getName()); 888 OutStreamer.EmitSymbolAttribute(FunSym, MCSA_Global); 889 // FIXME: JumpTableInstrInfo should store information about the required 890 // alignment of table entries and the size of the padding instruction. 891 EmitAlignment(3); 892 if (IsThumb) 893 OutStreamer.EmitThumbFunc(FunSym); 894 if (MAI->hasDotTypeDotSizeDirective()) 895 OutStreamer.EmitSymbolAttribute(FunSym, MCSA_ELF_TypeFunction); 896 OutStreamer.EmitLabel(FunSym); 897 898 // Emit the jump instruction to transfer control to the original 899 // function. 900 MCInst JumpToFun; 901 MCSymbol *TargetSymbol = 902 OutContext.GetOrCreateSymbol(FunPair.first->getName()); 903 const MCSymbolRefExpr *TargetSymRef = 904 MCSymbolRefExpr::Create(TargetSymbol, MCSymbolRefExpr::VK_PLT, 905 OutContext); 906 TM.getSubtargetImpl()->getInstrInfo()->getUnconditionalBranch( 907 JumpToFun, TargetSymRef); 908 OutStreamer.EmitInstruction(JumpToFun, getSubtargetInfo()); 909 ++Count; 910 } 911 912 // Emit enough padding instructions to fill up to the next power of two. 913 // This assumes that the trap instruction takes 8 bytes or fewer. 914 uint64_t Remaining = NextPowerOf2(Count) - Count; 915 for (uint64_t C = 0; C < Remaining; ++C) { 916 EmitAlignment(3); 917 OutStreamer.EmitInstruction(TrapInst, getSubtargetInfo()); 918 } 919 920 } 921 } 922 923 // Emit module flags. 924 SmallVector<Module::ModuleFlagEntry, 8> ModuleFlags; 925 M.getModuleFlagsMetadata(ModuleFlags); 926 if (!ModuleFlags.empty()) 927 getObjFileLowering().emitModuleFlags(OutStreamer, ModuleFlags, *Mang, TM); 928 929 // Make sure we wrote out everything we need. 930 OutStreamer.Flush(); 931 932 // Finalize debug and EH information. 933 for (const HandlerInfo &HI : Handlers) { 934 NamedRegionTimer T(HI.TimerName, HI.TimerGroupName, 935 TimePassesIsEnabled); 936 HI.Handler->endModule(); 937 delete HI.Handler; 938 } 939 Handlers.clear(); 940 DD = nullptr; 941 942 // If the target wants to know about weak references, print them all. 943 if (MAI->getWeakRefDirective()) { 944 // FIXME: This is not lazy, it would be nice to only print weak references 945 // to stuff that is actually used. Note that doing so would require targets 946 // to notice uses in operands (due to constant exprs etc). This should 947 // happen with the MC stuff eventually. 948 949 // Print out module-level global variables here. 950 for (const auto &G : M.globals()) { 951 if (!G.hasExternalWeakLinkage()) 952 continue; 953 OutStreamer.EmitSymbolAttribute(getSymbol(&G), MCSA_WeakReference); 954 } 955 956 for (const auto &F : M) { 957 if (!F.hasExternalWeakLinkage()) 958 continue; 959 OutStreamer.EmitSymbolAttribute(getSymbol(&F), MCSA_WeakReference); 960 } 961 } 962 963 OutStreamer.AddBlankLine(); 964 for (const auto &Alias : M.aliases()) { 965 MCSymbol *Name = getSymbol(&Alias); 966 967 if (Alias.hasExternalLinkage() || !MAI->getWeakRefDirective()) 968 OutStreamer.EmitSymbolAttribute(Name, MCSA_Global); 969 else if (Alias.hasWeakLinkage() || Alias.hasLinkOnceLinkage()) 970 OutStreamer.EmitSymbolAttribute(Name, MCSA_WeakReference); 971 else 972 assert(Alias.hasLocalLinkage() && "Invalid alias linkage"); 973 974 EmitVisibility(Name, Alias.getVisibility()); 975 976 // Emit the directives as assignments aka .set: 977 OutStreamer.EmitAssignment(Name, lowerConstant(Alias.getAliasee(), *this)); 978 } 979 980 GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>(); 981 assert(MI && "AsmPrinter didn't require GCModuleInfo?"); 982 for (GCModuleInfo::iterator I = MI->end(), E = MI->begin(); I != E; ) 983 if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(**--I)) 984 MP->finishAssembly(*this); 985 986 // Emit llvm.ident metadata in an '.ident' directive. 987 EmitModuleIdents(M); 988 989 // If we don't have any trampolines, then we don't require stack memory 990 // to be executable. Some targets have a directive to declare this. 991 Function *InitTrampolineIntrinsic = M.getFunction("llvm.init.trampoline"); 992 if (!InitTrampolineIntrinsic || InitTrampolineIntrinsic->use_empty()) 993 if (const MCSection *S = MAI->getNonexecutableStackSection(OutContext)) 994 OutStreamer.SwitchSection(S); 995 996 // Allow the target to emit any magic that it wants at the end of the file, 997 // after everything else has gone out. 998 EmitEndOfAsmFile(M); 999 1000 delete Mang; Mang = nullptr; 1001 MMI = nullptr; 1002 1003 OutStreamer.Finish(); 1004 OutStreamer.reset(); 1005 1006 return false; 1007 } 1008 1009 void AsmPrinter::SetupMachineFunction(MachineFunction &MF) { 1010 this->MF = &MF; 1011 // Get the function symbol. 1012 CurrentFnSym = getSymbol(MF.getFunction()); 1013 CurrentFnSymForSize = CurrentFnSym; 1014 1015 if (isVerbose()) 1016 LI = &getAnalysis<MachineLoopInfo>(); 1017 } 1018 1019 namespace { 1020 // SectionCPs - Keep track the alignment, constpool entries per Section. 1021 struct SectionCPs { 1022 const MCSection *S; 1023 unsigned Alignment; 1024 SmallVector<unsigned, 4> CPEs; 1025 SectionCPs(const MCSection *s, unsigned a) : S(s), Alignment(a) {} 1026 }; 1027 } 1028 1029 /// EmitConstantPool - Print to the current output stream assembly 1030 /// representations of the constants in the constant pool MCP. This is 1031 /// used to print out constants which have been "spilled to memory" by 1032 /// the code generator. 1033 /// 1034 void AsmPrinter::EmitConstantPool() { 1035 const MachineConstantPool *MCP = MF->getConstantPool(); 1036 const std::vector<MachineConstantPoolEntry> &CP = MCP->getConstants(); 1037 if (CP.empty()) return; 1038 1039 // Calculate sections for constant pool entries. We collect entries to go into 1040 // the same section together to reduce amount of section switch statements. 1041 SmallVector<SectionCPs, 4> CPSections; 1042 for (unsigned i = 0, e = CP.size(); i != e; ++i) { 1043 const MachineConstantPoolEntry &CPE = CP[i]; 1044 unsigned Align = CPE.getAlignment(); 1045 1046 SectionKind Kind = 1047 CPE.getSectionKind(TM.getSubtargetImpl()->getDataLayout()); 1048 1049 const Constant *C = nullptr; 1050 if (!CPE.isMachineConstantPoolEntry()) 1051 C = CPE.Val.ConstVal; 1052 1053 const MCSection *S = getObjFileLowering().getSectionForConstant(Kind, C); 1054 1055 // The number of sections are small, just do a linear search from the 1056 // last section to the first. 1057 bool Found = false; 1058 unsigned SecIdx = CPSections.size(); 1059 while (SecIdx != 0) { 1060 if (CPSections[--SecIdx].S == S) { 1061 Found = true; 1062 break; 1063 } 1064 } 1065 if (!Found) { 1066 SecIdx = CPSections.size(); 1067 CPSections.push_back(SectionCPs(S, Align)); 1068 } 1069 1070 if (Align > CPSections[SecIdx].Alignment) 1071 CPSections[SecIdx].Alignment = Align; 1072 CPSections[SecIdx].CPEs.push_back(i); 1073 } 1074 1075 // Now print stuff into the calculated sections. 1076 const MCSection *CurSection = nullptr; 1077 unsigned Offset = 0; 1078 for (unsigned i = 0, e = CPSections.size(); i != e; ++i) { 1079 for (unsigned j = 0, ee = CPSections[i].CPEs.size(); j != ee; ++j) { 1080 unsigned CPI = CPSections[i].CPEs[j]; 1081 MCSymbol *Sym = GetCPISymbol(CPI); 1082 if (!Sym->isUndefined()) 1083 continue; 1084 1085 if (CurSection != CPSections[i].S) { 1086 OutStreamer.SwitchSection(CPSections[i].S); 1087 EmitAlignment(Log2_32(CPSections[i].Alignment)); 1088 CurSection = CPSections[i].S; 1089 Offset = 0; 1090 } 1091 1092 MachineConstantPoolEntry CPE = CP[CPI]; 1093 1094 // Emit inter-object padding for alignment. 1095 unsigned AlignMask = CPE.getAlignment() - 1; 1096 unsigned NewOffset = (Offset + AlignMask) & ~AlignMask; 1097 OutStreamer.EmitZeros(NewOffset - Offset); 1098 1099 Type *Ty = CPE.getType(); 1100 Offset = NewOffset + 1101 TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize(Ty); 1102 1103 OutStreamer.EmitLabel(Sym); 1104 if (CPE.isMachineConstantPoolEntry()) 1105 EmitMachineConstantPoolValue(CPE.Val.MachineCPVal); 1106 else 1107 EmitGlobalConstant(CPE.Val.ConstVal); 1108 } 1109 } 1110 } 1111 1112 /// EmitJumpTableInfo - Print assembly representations of the jump tables used 1113 /// by the current function to the current output stream. 1114 /// 1115 void AsmPrinter::EmitJumpTableInfo() { 1116 const DataLayout *DL = MF->getSubtarget().getDataLayout(); 1117 const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo(); 1118 if (!MJTI) return; 1119 if (MJTI->getEntryKind() == MachineJumpTableInfo::EK_Inline) return; 1120 const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables(); 1121 if (JT.empty()) return; 1122 1123 // Pick the directive to use to print the jump table entries, and switch to 1124 // the appropriate section. 1125 const Function *F = MF->getFunction(); 1126 bool JTInDiffSection = false; 1127 if (// In PIC mode, we need to emit the jump table to the same section as the 1128 // function body itself, otherwise the label differences won't make sense. 1129 // FIXME: Need a better predicate for this: what about custom entries? 1130 MJTI->getEntryKind() == MachineJumpTableInfo::EK_LabelDifference32 || 1131 // We should also do if the section name is NULL or function is declared 1132 // in discardable section 1133 // FIXME: this isn't the right predicate, should be based on the MCSection 1134 // for the function. 1135 F->isWeakForLinker()) { 1136 OutStreamer.SwitchSection( 1137 getObjFileLowering().SectionForGlobal(F, *Mang, TM)); 1138 } else { 1139 // Otherwise, drop it in the readonly section. 1140 const MCSection *ReadOnlySection = 1141 getObjFileLowering().getSectionForConstant(SectionKind::getReadOnly(), 1142 /*C=*/nullptr); 1143 OutStreamer.SwitchSection(ReadOnlySection); 1144 JTInDiffSection = true; 1145 } 1146 1147 EmitAlignment(Log2_32( 1148 MJTI->getEntryAlignment(*TM.getSubtargetImpl()->getDataLayout()))); 1149 1150 // Jump tables in code sections are marked with a data_region directive 1151 // where that's supported. 1152 if (!JTInDiffSection) 1153 OutStreamer.EmitDataRegion(MCDR_DataRegionJT32); 1154 1155 for (unsigned JTI = 0, e = JT.size(); JTI != e; ++JTI) { 1156 const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs; 1157 1158 // If this jump table was deleted, ignore it. 1159 if (JTBBs.empty()) continue; 1160 1161 // For the EK_LabelDifference32 entry, if using .set avoids a relocation, 1162 /// emit a .set directive for each unique entry. 1163 if (MJTI->getEntryKind() == MachineJumpTableInfo::EK_LabelDifference32 && 1164 MAI->doesSetDirectiveSuppressesReloc()) { 1165 SmallPtrSet<const MachineBasicBlock*, 16> EmittedSets; 1166 const TargetLowering *TLI = TM.getSubtargetImpl()->getTargetLowering(); 1167 const MCExpr *Base = TLI->getPICJumpTableRelocBaseExpr(MF,JTI,OutContext); 1168 for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii) { 1169 const MachineBasicBlock *MBB = JTBBs[ii]; 1170 if (!EmittedSets.insert(MBB)) continue; 1171 1172 // .set LJTSet, LBB32-base 1173 const MCExpr *LHS = 1174 MCSymbolRefExpr::Create(MBB->getSymbol(), OutContext); 1175 OutStreamer.EmitAssignment(GetJTSetSymbol(JTI, MBB->getNumber()), 1176 MCBinaryExpr::CreateSub(LHS, Base, OutContext)); 1177 } 1178 } 1179 1180 // On some targets (e.g. Darwin) we want to emit two consecutive labels 1181 // before each jump table. The first label is never referenced, but tells 1182 // the assembler and linker the extents of the jump table object. The 1183 // second label is actually referenced by the code. 1184 if (JTInDiffSection && DL->hasLinkerPrivateGlobalPrefix()) 1185 // FIXME: This doesn't have to have any specific name, just any randomly 1186 // named and numbered 'l' label would work. Simplify GetJTISymbol. 1187 OutStreamer.EmitLabel(GetJTISymbol(JTI, true)); 1188 1189 OutStreamer.EmitLabel(GetJTISymbol(JTI)); 1190 1191 for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii) 1192 EmitJumpTableEntry(MJTI, JTBBs[ii], JTI); 1193 } 1194 if (!JTInDiffSection) 1195 OutStreamer.EmitDataRegion(MCDR_DataRegionEnd); 1196 } 1197 1198 /// EmitJumpTableEntry - Emit a jump table entry for the specified MBB to the 1199 /// current stream. 1200 void AsmPrinter::EmitJumpTableEntry(const MachineJumpTableInfo *MJTI, 1201 const MachineBasicBlock *MBB, 1202 unsigned UID) const { 1203 assert(MBB && MBB->getNumber() >= 0 && "Invalid basic block"); 1204 const MCExpr *Value = nullptr; 1205 switch (MJTI->getEntryKind()) { 1206 case MachineJumpTableInfo::EK_Inline: 1207 llvm_unreachable("Cannot emit EK_Inline jump table entry"); 1208 case MachineJumpTableInfo::EK_Custom32: 1209 Value = 1210 TM.getSubtargetImpl()->getTargetLowering()->LowerCustomJumpTableEntry( 1211 MJTI, MBB, UID, OutContext); 1212 break; 1213 case MachineJumpTableInfo::EK_BlockAddress: 1214 // EK_BlockAddress - Each entry is a plain address of block, e.g.: 1215 // .word LBB123 1216 Value = MCSymbolRefExpr::Create(MBB->getSymbol(), OutContext); 1217 break; 1218 case MachineJumpTableInfo::EK_GPRel32BlockAddress: { 1219 // EK_GPRel32BlockAddress - Each entry is an address of block, encoded 1220 // with a relocation as gp-relative, e.g.: 1221 // .gprel32 LBB123 1222 MCSymbol *MBBSym = MBB->getSymbol(); 1223 OutStreamer.EmitGPRel32Value(MCSymbolRefExpr::Create(MBBSym, OutContext)); 1224 return; 1225 } 1226 1227 case MachineJumpTableInfo::EK_GPRel64BlockAddress: { 1228 // EK_GPRel64BlockAddress - Each entry is an address of block, encoded 1229 // with a relocation as gp-relative, e.g.: 1230 // .gpdword LBB123 1231 MCSymbol *MBBSym = MBB->getSymbol(); 1232 OutStreamer.EmitGPRel64Value(MCSymbolRefExpr::Create(MBBSym, OutContext)); 1233 return; 1234 } 1235 1236 case MachineJumpTableInfo::EK_LabelDifference32: { 1237 // Each entry is the address of the block minus the address of the jump 1238 // table. This is used for PIC jump tables where gprel32 is not supported. 1239 // e.g.: 1240 // .word LBB123 - LJTI1_2 1241 // If the .set directive avoids relocations, this is emitted as: 1242 // .set L4_5_set_123, LBB123 - LJTI1_2 1243 // .word L4_5_set_123 1244 if (MAI->doesSetDirectiveSuppressesReloc()) { 1245 Value = MCSymbolRefExpr::Create(GetJTSetSymbol(UID, MBB->getNumber()), 1246 OutContext); 1247 break; 1248 } 1249 Value = MCSymbolRefExpr::Create(MBB->getSymbol(), OutContext); 1250 const MCExpr *JTI = MCSymbolRefExpr::Create(GetJTISymbol(UID), OutContext); 1251 Value = MCBinaryExpr::CreateSub(Value, JTI, OutContext); 1252 break; 1253 } 1254 } 1255 1256 assert(Value && "Unknown entry kind!"); 1257 1258 unsigned EntrySize = 1259 MJTI->getEntrySize(*TM.getSubtargetImpl()->getDataLayout()); 1260 OutStreamer.EmitValue(Value, EntrySize); 1261 } 1262 1263 1264 /// EmitSpecialLLVMGlobal - Check to see if the specified global is a 1265 /// special global used by LLVM. If so, emit it and return true, otherwise 1266 /// do nothing and return false. 1267 bool AsmPrinter::EmitSpecialLLVMGlobal(const GlobalVariable *GV) { 1268 if (GV->getName() == "llvm.used") { 1269 if (MAI->hasNoDeadStrip()) // No need to emit this at all. 1270 EmitLLVMUsedList(cast<ConstantArray>(GV->getInitializer())); 1271 return true; 1272 } 1273 1274 // Ignore debug and non-emitted data. This handles llvm.compiler.used. 1275 if (StringRef(GV->getSection()) == "llvm.metadata" || 1276 GV->hasAvailableExternallyLinkage()) 1277 return true; 1278 1279 if (!GV->hasAppendingLinkage()) return false; 1280 1281 assert(GV->hasInitializer() && "Not a special LLVM global!"); 1282 1283 if (GV->getName() == "llvm.global_ctors") { 1284 EmitXXStructorList(GV->getInitializer(), /* isCtor */ true); 1285 1286 if (TM.getRelocationModel() == Reloc::Static && 1287 MAI->hasStaticCtorDtorReferenceInStaticMode()) { 1288 StringRef Sym(".constructors_used"); 1289 OutStreamer.EmitSymbolAttribute(OutContext.GetOrCreateSymbol(Sym), 1290 MCSA_Reference); 1291 } 1292 return true; 1293 } 1294 1295 if (GV->getName() == "llvm.global_dtors") { 1296 EmitXXStructorList(GV->getInitializer(), /* isCtor */ false); 1297 1298 if (TM.getRelocationModel() == Reloc::Static && 1299 MAI->hasStaticCtorDtorReferenceInStaticMode()) { 1300 StringRef Sym(".destructors_used"); 1301 OutStreamer.EmitSymbolAttribute(OutContext.GetOrCreateSymbol(Sym), 1302 MCSA_Reference); 1303 } 1304 return true; 1305 } 1306 1307 return false; 1308 } 1309 1310 /// EmitLLVMUsedList - For targets that define a MAI::UsedDirective, mark each 1311 /// global in the specified llvm.used list for which emitUsedDirectiveFor 1312 /// is true, as being used with this directive. 1313 void AsmPrinter::EmitLLVMUsedList(const ConstantArray *InitList) { 1314 // Should be an array of 'i8*'. 1315 for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i) { 1316 const GlobalValue *GV = 1317 dyn_cast<GlobalValue>(InitList->getOperand(i)->stripPointerCasts()); 1318 if (GV) 1319 OutStreamer.EmitSymbolAttribute(getSymbol(GV), MCSA_NoDeadStrip); 1320 } 1321 } 1322 1323 namespace { 1324 struct Structor { 1325 Structor() : Priority(0), Func(nullptr), ComdatKey(nullptr) {} 1326 int Priority; 1327 llvm::Constant *Func; 1328 llvm::GlobalValue *ComdatKey; 1329 }; 1330 } // end namespace 1331 1332 /// EmitXXStructorList - Emit the ctor or dtor list taking into account the init 1333 /// priority. 1334 void AsmPrinter::EmitXXStructorList(const Constant *List, bool isCtor) { 1335 // Should be an array of '{ int, void ()* }' structs. The first value is the 1336 // init priority. 1337 if (!isa<ConstantArray>(List)) return; 1338 1339 // Sanity check the structors list. 1340 const ConstantArray *InitList = dyn_cast<ConstantArray>(List); 1341 if (!InitList) return; // Not an array! 1342 StructType *ETy = dyn_cast<StructType>(InitList->getType()->getElementType()); 1343 // FIXME: Only allow the 3-field form in LLVM 4.0. 1344 if (!ETy || ETy->getNumElements() < 2 || ETy->getNumElements() > 3) 1345 return; // Not an array of two or three elements! 1346 if (!isa<IntegerType>(ETy->getTypeAtIndex(0U)) || 1347 !isa<PointerType>(ETy->getTypeAtIndex(1U))) return; // Not (int, ptr). 1348 if (ETy->getNumElements() == 3 && !isa<PointerType>(ETy->getTypeAtIndex(2U))) 1349 return; // Not (int, ptr, ptr). 1350 1351 // Gather the structors in a form that's convenient for sorting by priority. 1352 SmallVector<Structor, 8> Structors; 1353 for (Value *O : InitList->operands()) { 1354 ConstantStruct *CS = dyn_cast<ConstantStruct>(O); 1355 if (!CS) continue; // Malformed. 1356 if (CS->getOperand(1)->isNullValue()) 1357 break; // Found a null terminator, skip the rest. 1358 ConstantInt *Priority = dyn_cast<ConstantInt>(CS->getOperand(0)); 1359 if (!Priority) continue; // Malformed. 1360 Structors.push_back(Structor()); 1361 Structor &S = Structors.back(); 1362 S.Priority = Priority->getLimitedValue(65535); 1363 S.Func = CS->getOperand(1); 1364 if (ETy->getNumElements() == 3 && !CS->getOperand(2)->isNullValue()) 1365 S.ComdatKey = dyn_cast<GlobalValue>(CS->getOperand(2)->stripPointerCasts()); 1366 } 1367 1368 // Emit the function pointers in the target-specific order 1369 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 1370 unsigned Align = Log2_32(DL->getPointerPrefAlignment()); 1371 std::stable_sort(Structors.begin(), Structors.end(), 1372 [](const Structor &L, 1373 const Structor &R) { return L.Priority < R.Priority; }); 1374 for (Structor &S : Structors) { 1375 const TargetLoweringObjectFile &Obj = getObjFileLowering(); 1376 const MCSymbol *KeySym = nullptr; 1377 if (GlobalValue *GV = S.ComdatKey) { 1378 if (GV->hasAvailableExternallyLinkage()) 1379 // If the associated variable is available_externally, some other TU 1380 // will provide its dynamic initializer. 1381 continue; 1382 1383 KeySym = getSymbol(GV); 1384 } 1385 const MCSection *OutputSection = 1386 (isCtor ? Obj.getStaticCtorSection(S.Priority, KeySym) 1387 : Obj.getStaticDtorSection(S.Priority, KeySym)); 1388 OutStreamer.SwitchSection(OutputSection); 1389 if (OutStreamer.getCurrentSection() != OutStreamer.getPreviousSection()) 1390 EmitAlignment(Align); 1391 EmitXXStructor(S.Func); 1392 } 1393 } 1394 1395 void AsmPrinter::EmitModuleIdents(Module &M) { 1396 if (!MAI->hasIdentDirective()) 1397 return; 1398 1399 if (const NamedMDNode *NMD = M.getNamedMetadata("llvm.ident")) { 1400 for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) { 1401 const MDNode *N = NMD->getOperand(i); 1402 assert(N->getNumOperands() == 1 && 1403 "llvm.ident metadata entry can have only one operand"); 1404 const MDString *S = cast<MDString>(N->getOperand(0)); 1405 OutStreamer.EmitIdent(S->getString()); 1406 } 1407 } 1408 } 1409 1410 //===--------------------------------------------------------------------===// 1411 // Emission and print routines 1412 // 1413 1414 /// EmitInt8 - Emit a byte directive and value. 1415 /// 1416 void AsmPrinter::EmitInt8(int Value) const { 1417 OutStreamer.EmitIntValue(Value, 1); 1418 } 1419 1420 /// EmitInt16 - Emit a short directive and value. 1421 /// 1422 void AsmPrinter::EmitInt16(int Value) const { 1423 OutStreamer.EmitIntValue(Value, 2); 1424 } 1425 1426 /// EmitInt32 - Emit a long directive and value. 1427 /// 1428 void AsmPrinter::EmitInt32(int Value) const { 1429 OutStreamer.EmitIntValue(Value, 4); 1430 } 1431 1432 /// Emit something like ".long Hi-Lo" where the size in bytes of the directive 1433 /// is specified by Size and Hi/Lo specify the labels. This implicitly uses 1434 /// .set if it avoids relocations. 1435 void AsmPrinter::EmitLabelDifference(const MCSymbol *Hi, const MCSymbol *Lo, 1436 unsigned Size) const { 1437 // Get the Hi-Lo expression. 1438 const MCExpr *Diff = 1439 MCBinaryExpr::CreateSub(MCSymbolRefExpr::Create(Hi, OutContext), 1440 MCSymbolRefExpr::Create(Lo, OutContext), 1441 OutContext); 1442 1443 if (!MAI->doesSetDirectiveSuppressesReloc()) { 1444 OutStreamer.EmitValue(Diff, Size); 1445 return; 1446 } 1447 1448 // Otherwise, emit with .set (aka assignment). 1449 MCSymbol *SetLabel = GetTempSymbol("set", SetCounter++); 1450 OutStreamer.EmitAssignment(SetLabel, Diff); 1451 OutStreamer.EmitSymbolValue(SetLabel, Size); 1452 } 1453 1454 /// EmitLabelPlusOffset - Emit something like ".long Label+Offset" 1455 /// where the size in bytes of the directive is specified by Size and Label 1456 /// specifies the label. This implicitly uses .set if it is available. 1457 void AsmPrinter::EmitLabelPlusOffset(const MCSymbol *Label, uint64_t Offset, 1458 unsigned Size, 1459 bool IsSectionRelative) const { 1460 if (MAI->needsDwarfSectionOffsetDirective() && IsSectionRelative) { 1461 OutStreamer.EmitCOFFSecRel32(Label); 1462 return; 1463 } 1464 1465 // Emit Label+Offset (or just Label if Offset is zero) 1466 const MCExpr *Expr = MCSymbolRefExpr::Create(Label, OutContext); 1467 if (Offset) 1468 Expr = MCBinaryExpr::CreateAdd( 1469 Expr, MCConstantExpr::Create(Offset, OutContext), OutContext); 1470 1471 OutStreamer.EmitValue(Expr, Size); 1472 } 1473 1474 //===----------------------------------------------------------------------===// 1475 1476 // EmitAlignment - Emit an alignment directive to the specified power of 1477 // two boundary. For example, if you pass in 3 here, you will get an 8 1478 // byte alignment. If a global value is specified, and if that global has 1479 // an explicit alignment requested, it will override the alignment request 1480 // if required for correctness. 1481 // 1482 void AsmPrinter::EmitAlignment(unsigned NumBits, const GlobalObject *GV) const { 1483 if (GV) 1484 NumBits = getGVAlignmentLog2(GV, *TM.getSubtargetImpl()->getDataLayout(), 1485 NumBits); 1486 1487 if (NumBits == 0) return; // 1-byte aligned: no need to emit alignment. 1488 1489 if (getCurrentSection()->getKind().isText()) 1490 OutStreamer.EmitCodeAlignment(1 << NumBits); 1491 else 1492 OutStreamer.EmitValueToAlignment(1 << NumBits); 1493 } 1494 1495 //===----------------------------------------------------------------------===// 1496 // Constant emission. 1497 //===----------------------------------------------------------------------===// 1498 1499 /// lowerConstant - Lower the specified LLVM Constant to an MCExpr. 1500 /// 1501 static const MCExpr *lowerConstant(const Constant *CV, AsmPrinter &AP) { 1502 MCContext &Ctx = AP.OutContext; 1503 1504 if (CV->isNullValue() || isa<UndefValue>(CV)) 1505 return MCConstantExpr::Create(0, Ctx); 1506 1507 if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) 1508 return MCConstantExpr::Create(CI->getZExtValue(), Ctx); 1509 1510 if (const GlobalValue *GV = dyn_cast<GlobalValue>(CV)) 1511 return MCSymbolRefExpr::Create(AP.getSymbol(GV), Ctx); 1512 1513 if (const BlockAddress *BA = dyn_cast<BlockAddress>(CV)) 1514 return MCSymbolRefExpr::Create(AP.GetBlockAddressSymbol(BA), Ctx); 1515 1516 const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV); 1517 if (!CE) { 1518 llvm_unreachable("Unknown constant value to lower!"); 1519 } 1520 1521 if (const MCExpr *RelocExpr = 1522 AP.getObjFileLowering().getExecutableRelativeSymbol(CE, *AP.Mang, 1523 AP.TM)) 1524 return RelocExpr; 1525 1526 switch (CE->getOpcode()) { 1527 default: 1528 // If the code isn't optimized, there may be outstanding folding 1529 // opportunities. Attempt to fold the expression using DataLayout as a 1530 // last resort before giving up. 1531 if (Constant *C = ConstantFoldConstantExpression( 1532 CE, AP.TM.getSubtargetImpl()->getDataLayout())) 1533 if (C != CE) 1534 return lowerConstant(C, AP); 1535 1536 // Otherwise report the problem to the user. 1537 { 1538 std::string S; 1539 raw_string_ostream OS(S); 1540 OS << "Unsupported expression in static initializer: "; 1541 CE->printAsOperand(OS, /*PrintType=*/false, 1542 !AP.MF ? nullptr : AP.MF->getFunction()->getParent()); 1543 report_fatal_error(OS.str()); 1544 } 1545 case Instruction::GetElementPtr: { 1546 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1547 // Generate a symbolic expression for the byte address 1548 APInt OffsetAI(DL.getPointerTypeSizeInBits(CE->getType()), 0); 1549 cast<GEPOperator>(CE)->accumulateConstantOffset(DL, OffsetAI); 1550 1551 const MCExpr *Base = lowerConstant(CE->getOperand(0), AP); 1552 if (!OffsetAI) 1553 return Base; 1554 1555 int64_t Offset = OffsetAI.getSExtValue(); 1556 return MCBinaryExpr::CreateAdd(Base, MCConstantExpr::Create(Offset, Ctx), 1557 Ctx); 1558 } 1559 1560 case Instruction::Trunc: 1561 // We emit the value and depend on the assembler to truncate the generated 1562 // expression properly. This is important for differences between 1563 // blockaddress labels. Since the two labels are in the same function, it 1564 // is reasonable to treat their delta as a 32-bit value. 1565 // FALL THROUGH. 1566 case Instruction::BitCast: 1567 return lowerConstant(CE->getOperand(0), AP); 1568 1569 case Instruction::IntToPtr: { 1570 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1571 // Handle casts to pointers by changing them into casts to the appropriate 1572 // integer type. This promotes constant folding and simplifies this code. 1573 Constant *Op = CE->getOperand(0); 1574 Op = ConstantExpr::getIntegerCast(Op, DL.getIntPtrType(CV->getType()), 1575 false/*ZExt*/); 1576 return lowerConstant(Op, AP); 1577 } 1578 1579 case Instruction::PtrToInt: { 1580 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1581 // Support only foldable casts to/from pointers that can be eliminated by 1582 // changing the pointer to the appropriately sized integer type. 1583 Constant *Op = CE->getOperand(0); 1584 Type *Ty = CE->getType(); 1585 1586 const MCExpr *OpExpr = lowerConstant(Op, AP); 1587 1588 // We can emit the pointer value into this slot if the slot is an 1589 // integer slot equal to the size of the pointer. 1590 if (DL.getTypeAllocSize(Ty) == DL.getTypeAllocSize(Op->getType())) 1591 return OpExpr; 1592 1593 // Otherwise the pointer is smaller than the resultant integer, mask off 1594 // the high bits so we are sure to get a proper truncation if the input is 1595 // a constant expr. 1596 unsigned InBits = DL.getTypeAllocSizeInBits(Op->getType()); 1597 const MCExpr *MaskExpr = MCConstantExpr::Create(~0ULL >> (64-InBits), Ctx); 1598 return MCBinaryExpr::CreateAnd(OpExpr, MaskExpr, Ctx); 1599 } 1600 1601 // The MC library also has a right-shift operator, but it isn't consistently 1602 // signed or unsigned between different targets. 1603 case Instruction::Add: 1604 case Instruction::Sub: 1605 case Instruction::Mul: 1606 case Instruction::SDiv: 1607 case Instruction::SRem: 1608 case Instruction::Shl: 1609 case Instruction::And: 1610 case Instruction::Or: 1611 case Instruction::Xor: { 1612 const MCExpr *LHS = lowerConstant(CE->getOperand(0), AP); 1613 const MCExpr *RHS = lowerConstant(CE->getOperand(1), AP); 1614 switch (CE->getOpcode()) { 1615 default: llvm_unreachable("Unknown binary operator constant cast expr"); 1616 case Instruction::Add: return MCBinaryExpr::CreateAdd(LHS, RHS, Ctx); 1617 case Instruction::Sub: return MCBinaryExpr::CreateSub(LHS, RHS, Ctx); 1618 case Instruction::Mul: return MCBinaryExpr::CreateMul(LHS, RHS, Ctx); 1619 case Instruction::SDiv: return MCBinaryExpr::CreateDiv(LHS, RHS, Ctx); 1620 case Instruction::SRem: return MCBinaryExpr::CreateMod(LHS, RHS, Ctx); 1621 case Instruction::Shl: return MCBinaryExpr::CreateShl(LHS, RHS, Ctx); 1622 case Instruction::And: return MCBinaryExpr::CreateAnd(LHS, RHS, Ctx); 1623 case Instruction::Or: return MCBinaryExpr::CreateOr (LHS, RHS, Ctx); 1624 case Instruction::Xor: return MCBinaryExpr::CreateXor(LHS, RHS, Ctx); 1625 } 1626 } 1627 } 1628 } 1629 1630 static void emitGlobalConstantImpl(const Constant *C, AsmPrinter &AP); 1631 1632 /// isRepeatedByteSequence - Determine whether the given value is 1633 /// composed of a repeated sequence of identical bytes and return the 1634 /// byte value. If it is not a repeated sequence, return -1. 1635 static int isRepeatedByteSequence(const ConstantDataSequential *V) { 1636 StringRef Data = V->getRawDataValues(); 1637 assert(!Data.empty() && "Empty aggregates should be CAZ node"); 1638 char C = Data[0]; 1639 for (unsigned i = 1, e = Data.size(); i != e; ++i) 1640 if (Data[i] != C) return -1; 1641 return static_cast<uint8_t>(C); // Ensure 255 is not returned as -1. 1642 } 1643 1644 1645 /// isRepeatedByteSequence - Determine whether the given value is 1646 /// composed of a repeated sequence of identical bytes and return the 1647 /// byte value. If it is not a repeated sequence, return -1. 1648 static int isRepeatedByteSequence(const Value *V, TargetMachine &TM) { 1649 1650 if (const ConstantInt *CI = dyn_cast<ConstantInt>(V)) { 1651 if (CI->getBitWidth() > 64) return -1; 1652 1653 uint64_t Size = 1654 TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize(V->getType()); 1655 uint64_t Value = CI->getZExtValue(); 1656 1657 // Make sure the constant is at least 8 bits long and has a power 1658 // of 2 bit width. This guarantees the constant bit width is 1659 // always a multiple of 8 bits, avoiding issues with padding out 1660 // to Size and other such corner cases. 1661 if (CI->getBitWidth() < 8 || !isPowerOf2_64(CI->getBitWidth())) return -1; 1662 1663 uint8_t Byte = static_cast<uint8_t>(Value); 1664 1665 for (unsigned i = 1; i < Size; ++i) { 1666 Value >>= 8; 1667 if (static_cast<uint8_t>(Value) != Byte) return -1; 1668 } 1669 return Byte; 1670 } 1671 if (const ConstantArray *CA = dyn_cast<ConstantArray>(V)) { 1672 // Make sure all array elements are sequences of the same repeated 1673 // byte. 1674 assert(CA->getNumOperands() != 0 && "Should be a CAZ"); 1675 int Byte = isRepeatedByteSequence(CA->getOperand(0), TM); 1676 if (Byte == -1) return -1; 1677 1678 for (unsigned i = 1, e = CA->getNumOperands(); i != e; ++i) { 1679 int ThisByte = isRepeatedByteSequence(CA->getOperand(i), TM); 1680 if (ThisByte == -1) return -1; 1681 if (Byte != ThisByte) return -1; 1682 } 1683 return Byte; 1684 } 1685 1686 if (const ConstantDataSequential *CDS = dyn_cast<ConstantDataSequential>(V)) 1687 return isRepeatedByteSequence(CDS); 1688 1689 return -1; 1690 } 1691 1692 static void emitGlobalConstantDataSequential(const ConstantDataSequential *CDS, 1693 AsmPrinter &AP){ 1694 1695 // See if we can aggregate this into a .fill, if so, emit it as such. 1696 int Value = isRepeatedByteSequence(CDS, AP.TM); 1697 if (Value != -1) { 1698 uint64_t Bytes = 1699 AP.TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize( 1700 CDS->getType()); 1701 // Don't emit a 1-byte object as a .fill. 1702 if (Bytes > 1) 1703 return AP.OutStreamer.EmitFill(Bytes, Value); 1704 } 1705 1706 // If this can be emitted with .ascii/.asciz, emit it as such. 1707 if (CDS->isString()) 1708 return AP.OutStreamer.EmitBytes(CDS->getAsString()); 1709 1710 // Otherwise, emit the values in successive locations. 1711 unsigned ElementByteSize = CDS->getElementByteSize(); 1712 if (isa<IntegerType>(CDS->getElementType())) { 1713 for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) { 1714 if (AP.isVerbose()) 1715 AP.OutStreamer.GetCommentOS() << format("0x%" PRIx64 "\n", 1716 CDS->getElementAsInteger(i)); 1717 AP.OutStreamer.EmitIntValue(CDS->getElementAsInteger(i), 1718 ElementByteSize); 1719 } 1720 } else if (ElementByteSize == 4) { 1721 // FP Constants are printed as integer constants to avoid losing 1722 // precision. 1723 assert(CDS->getElementType()->isFloatTy()); 1724 for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) { 1725 union { 1726 float F; 1727 uint32_t I; 1728 }; 1729 1730 F = CDS->getElementAsFloat(i); 1731 if (AP.isVerbose()) 1732 AP.OutStreamer.GetCommentOS() << "float " << F << '\n'; 1733 AP.OutStreamer.EmitIntValue(I, 4); 1734 } 1735 } else { 1736 assert(CDS->getElementType()->isDoubleTy()); 1737 for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) { 1738 union { 1739 double F; 1740 uint64_t I; 1741 }; 1742 1743 F = CDS->getElementAsDouble(i); 1744 if (AP.isVerbose()) 1745 AP.OutStreamer.GetCommentOS() << "double " << F << '\n'; 1746 AP.OutStreamer.EmitIntValue(I, 8); 1747 } 1748 } 1749 1750 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1751 unsigned Size = DL.getTypeAllocSize(CDS->getType()); 1752 unsigned EmittedSize = DL.getTypeAllocSize(CDS->getType()->getElementType()) * 1753 CDS->getNumElements(); 1754 if (unsigned Padding = Size - EmittedSize) 1755 AP.OutStreamer.EmitZeros(Padding); 1756 1757 } 1758 1759 static void emitGlobalConstantArray(const ConstantArray *CA, AsmPrinter &AP) { 1760 // See if we can aggregate some values. Make sure it can be 1761 // represented as a series of bytes of the constant value. 1762 int Value = isRepeatedByteSequence(CA, AP.TM); 1763 1764 if (Value != -1) { 1765 uint64_t Bytes = 1766 AP.TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize( 1767 CA->getType()); 1768 AP.OutStreamer.EmitFill(Bytes, Value); 1769 } 1770 else { 1771 for (unsigned i = 0, e = CA->getNumOperands(); i != e; ++i) 1772 emitGlobalConstantImpl(CA->getOperand(i), AP); 1773 } 1774 } 1775 1776 static void emitGlobalConstantVector(const ConstantVector *CV, AsmPrinter &AP) { 1777 for (unsigned i = 0, e = CV->getType()->getNumElements(); i != e; ++i) 1778 emitGlobalConstantImpl(CV->getOperand(i), AP); 1779 1780 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1781 unsigned Size = DL.getTypeAllocSize(CV->getType()); 1782 unsigned EmittedSize = DL.getTypeAllocSize(CV->getType()->getElementType()) * 1783 CV->getType()->getNumElements(); 1784 if (unsigned Padding = Size - EmittedSize) 1785 AP.OutStreamer.EmitZeros(Padding); 1786 } 1787 1788 static void emitGlobalConstantStruct(const ConstantStruct *CS, AsmPrinter &AP) { 1789 // Print the fields in successive locations. Pad to align if needed! 1790 const DataLayout *DL = AP.TM.getSubtargetImpl()->getDataLayout(); 1791 unsigned Size = DL->getTypeAllocSize(CS->getType()); 1792 const StructLayout *Layout = DL->getStructLayout(CS->getType()); 1793 uint64_t SizeSoFar = 0; 1794 for (unsigned i = 0, e = CS->getNumOperands(); i != e; ++i) { 1795 const Constant *Field = CS->getOperand(i); 1796 1797 // Check if padding is needed and insert one or more 0s. 1798 uint64_t FieldSize = DL->getTypeAllocSize(Field->getType()); 1799 uint64_t PadSize = ((i == e-1 ? Size : Layout->getElementOffset(i+1)) 1800 - Layout->getElementOffset(i)) - FieldSize; 1801 SizeSoFar += FieldSize + PadSize; 1802 1803 // Now print the actual field value. 1804 emitGlobalConstantImpl(Field, AP); 1805 1806 // Insert padding - this may include padding to increase the size of the 1807 // current field up to the ABI size (if the struct is not packed) as well 1808 // as padding to ensure that the next field starts at the right offset. 1809 AP.OutStreamer.EmitZeros(PadSize); 1810 } 1811 assert(SizeSoFar == Layout->getSizeInBytes() && 1812 "Layout of constant struct may be incorrect!"); 1813 } 1814 1815 static void emitGlobalConstantFP(const ConstantFP *CFP, AsmPrinter &AP) { 1816 APInt API = CFP->getValueAPF().bitcastToAPInt(); 1817 1818 // First print a comment with what we think the original floating-point value 1819 // should have been. 1820 if (AP.isVerbose()) { 1821 SmallString<8> StrVal; 1822 CFP->getValueAPF().toString(StrVal); 1823 1824 if (CFP->getType()) 1825 CFP->getType()->print(AP.OutStreamer.GetCommentOS()); 1826 else 1827 AP.OutStreamer.GetCommentOS() << "Printing <null> Type"; 1828 AP.OutStreamer.GetCommentOS() << ' ' << StrVal << '\n'; 1829 } 1830 1831 // Now iterate through the APInt chunks, emitting them in endian-correct 1832 // order, possibly with a smaller chunk at beginning/end (e.g. for x87 80-bit 1833 // floats). 1834 unsigned NumBytes = API.getBitWidth() / 8; 1835 unsigned TrailingBytes = NumBytes % sizeof(uint64_t); 1836 const uint64_t *p = API.getRawData(); 1837 1838 // PPC's long double has odd notions of endianness compared to how LLVM 1839 // handles it: p[0] goes first for *big* endian on PPC. 1840 if (AP.TM.getSubtargetImpl()->getDataLayout()->isBigEndian() && 1841 !CFP->getType()->isPPC_FP128Ty()) { 1842 int Chunk = API.getNumWords() - 1; 1843 1844 if (TrailingBytes) 1845 AP.OutStreamer.EmitIntValue(p[Chunk--], TrailingBytes); 1846 1847 for (; Chunk >= 0; --Chunk) 1848 AP.OutStreamer.EmitIntValue(p[Chunk], sizeof(uint64_t)); 1849 } else { 1850 unsigned Chunk; 1851 for (Chunk = 0; Chunk < NumBytes / sizeof(uint64_t); ++Chunk) 1852 AP.OutStreamer.EmitIntValue(p[Chunk], sizeof(uint64_t)); 1853 1854 if (TrailingBytes) 1855 AP.OutStreamer.EmitIntValue(p[Chunk], TrailingBytes); 1856 } 1857 1858 // Emit the tail padding for the long double. 1859 const DataLayout &DL = *AP.TM.getSubtargetImpl()->getDataLayout(); 1860 AP.OutStreamer.EmitZeros(DL.getTypeAllocSize(CFP->getType()) - 1861 DL.getTypeStoreSize(CFP->getType())); 1862 } 1863 1864 static void emitGlobalConstantLargeInt(const ConstantInt *CI, AsmPrinter &AP) { 1865 const DataLayout *DL = AP.TM.getSubtargetImpl()->getDataLayout(); 1866 unsigned BitWidth = CI->getBitWidth(); 1867 1868 // Copy the value as we may massage the layout for constants whose bit width 1869 // is not a multiple of 64-bits. 1870 APInt Realigned(CI->getValue()); 1871 uint64_t ExtraBits = 0; 1872 unsigned ExtraBitsSize = BitWidth & 63; 1873 1874 if (ExtraBitsSize) { 1875 // The bit width of the data is not a multiple of 64-bits. 1876 // The extra bits are expected to be at the end of the chunk of the memory. 1877 // Little endian: 1878 // * Nothing to be done, just record the extra bits to emit. 1879 // Big endian: 1880 // * Record the extra bits to emit. 1881 // * Realign the raw data to emit the chunks of 64-bits. 1882 if (DL->isBigEndian()) { 1883 // Basically the structure of the raw data is a chunk of 64-bits cells: 1884 // 0 1 BitWidth / 64 1885 // [chunk1][chunk2] ... [chunkN]. 1886 // The most significant chunk is chunkN and it should be emitted first. 1887 // However, due to the alignment issue chunkN contains useless bits. 1888 // Realign the chunks so that they contain only useless information: 1889 // ExtraBits 0 1 (BitWidth / 64) - 1 1890 // chu[nk1 chu][nk2 chu] ... [nkN-1 chunkN] 1891 ExtraBits = Realigned.getRawData()[0] & 1892 (((uint64_t)-1) >> (64 - ExtraBitsSize)); 1893 Realigned = Realigned.lshr(ExtraBitsSize); 1894 } else 1895 ExtraBits = Realigned.getRawData()[BitWidth / 64]; 1896 } 1897 1898 // We don't expect assemblers to support integer data directives 1899 // for more than 64 bits, so we emit the data in at most 64-bit 1900 // quantities at a time. 1901 const uint64_t *RawData = Realigned.getRawData(); 1902 for (unsigned i = 0, e = BitWidth / 64; i != e; ++i) { 1903 uint64_t Val = DL->isBigEndian() ? RawData[e - i - 1] : RawData[i]; 1904 AP.OutStreamer.EmitIntValue(Val, 8); 1905 } 1906 1907 if (ExtraBitsSize) { 1908 // Emit the extra bits after the 64-bits chunks. 1909 1910 // Emit a directive that fills the expected size. 1911 uint64_t Size = AP.TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize( 1912 CI->getType()); 1913 Size -= (BitWidth / 64) * 8; 1914 assert(Size && Size * 8 >= ExtraBitsSize && 1915 (ExtraBits & (((uint64_t)-1) >> (64 - ExtraBitsSize))) 1916 == ExtraBits && "Directive too small for extra bits."); 1917 AP.OutStreamer.EmitIntValue(ExtraBits, Size); 1918 } 1919 } 1920 1921 static void emitGlobalConstantImpl(const Constant *CV, AsmPrinter &AP) { 1922 const DataLayout *DL = AP.TM.getSubtargetImpl()->getDataLayout(); 1923 uint64_t Size = DL->getTypeAllocSize(CV->getType()); 1924 if (isa<ConstantAggregateZero>(CV) || isa<UndefValue>(CV)) 1925 return AP.OutStreamer.EmitZeros(Size); 1926 1927 if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) { 1928 switch (Size) { 1929 case 1: 1930 case 2: 1931 case 4: 1932 case 8: 1933 if (AP.isVerbose()) 1934 AP.OutStreamer.GetCommentOS() << format("0x%" PRIx64 "\n", 1935 CI->getZExtValue()); 1936 AP.OutStreamer.EmitIntValue(CI->getZExtValue(), Size); 1937 return; 1938 default: 1939 emitGlobalConstantLargeInt(CI, AP); 1940 return; 1941 } 1942 } 1943 1944 if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CV)) 1945 return emitGlobalConstantFP(CFP, AP); 1946 1947 if (isa<ConstantPointerNull>(CV)) { 1948 AP.OutStreamer.EmitIntValue(0, Size); 1949 return; 1950 } 1951 1952 if (const ConstantDataSequential *CDS = dyn_cast<ConstantDataSequential>(CV)) 1953 return emitGlobalConstantDataSequential(CDS, AP); 1954 1955 if (const ConstantArray *CVA = dyn_cast<ConstantArray>(CV)) 1956 return emitGlobalConstantArray(CVA, AP); 1957 1958 if (const ConstantStruct *CVS = dyn_cast<ConstantStruct>(CV)) 1959 return emitGlobalConstantStruct(CVS, AP); 1960 1961 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) { 1962 // Look through bitcasts, which might not be able to be MCExpr'ized (e.g. of 1963 // vectors). 1964 if (CE->getOpcode() == Instruction::BitCast) 1965 return emitGlobalConstantImpl(CE->getOperand(0), AP); 1966 1967 if (Size > 8) { 1968 // If the constant expression's size is greater than 64-bits, then we have 1969 // to emit the value in chunks. Try to constant fold the value and emit it 1970 // that way. 1971 Constant *New = ConstantFoldConstantExpression(CE, DL); 1972 if (New && New != CE) 1973 return emitGlobalConstantImpl(New, AP); 1974 } 1975 } 1976 1977 if (const ConstantVector *V = dyn_cast<ConstantVector>(CV)) 1978 return emitGlobalConstantVector(V, AP); 1979 1980 // Otherwise, it must be a ConstantExpr. Lower it to an MCExpr, then emit it 1981 // thread the streamer with EmitValue. 1982 AP.OutStreamer.EmitValue(lowerConstant(CV, AP), Size); 1983 } 1984 1985 /// EmitGlobalConstant - Print a general LLVM constant to the .s file. 1986 void AsmPrinter::EmitGlobalConstant(const Constant *CV) { 1987 uint64_t Size = 1988 TM.getSubtargetImpl()->getDataLayout()->getTypeAllocSize(CV->getType()); 1989 if (Size) 1990 emitGlobalConstantImpl(CV, *this); 1991 else if (MAI->hasSubsectionsViaSymbols()) { 1992 // If the global has zero size, emit a single byte so that two labels don't 1993 // look like they are at the same location. 1994 OutStreamer.EmitIntValue(0, 1); 1995 } 1996 } 1997 1998 void AsmPrinter::EmitMachineConstantPoolValue(MachineConstantPoolValue *MCPV) { 1999 // Target doesn't support this yet! 2000 llvm_unreachable("Target does not support EmitMachineConstantPoolValue"); 2001 } 2002 2003 void AsmPrinter::printOffset(int64_t Offset, raw_ostream &OS) const { 2004 if (Offset > 0) 2005 OS << '+' << Offset; 2006 else if (Offset < 0) 2007 OS << Offset; 2008 } 2009 2010 //===----------------------------------------------------------------------===// 2011 // Symbol Lowering Routines. 2012 //===----------------------------------------------------------------------===// 2013 2014 /// GetTempSymbol - Return the MCSymbol corresponding to the assembler 2015 /// temporary label with the specified stem and unique ID. 2016 MCSymbol *AsmPrinter::GetTempSymbol(Twine Name, unsigned ID) const { 2017 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 2018 return OutContext.GetOrCreateSymbol(Twine(DL->getPrivateGlobalPrefix()) + 2019 Name + Twine(ID)); 2020 } 2021 2022 /// GetTempSymbol - Return an assembler temporary label with the specified 2023 /// stem. 2024 MCSymbol *AsmPrinter::GetTempSymbol(Twine Name) const { 2025 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 2026 return OutContext.GetOrCreateSymbol(Twine(DL->getPrivateGlobalPrefix())+ 2027 Name); 2028 } 2029 2030 2031 MCSymbol *AsmPrinter::GetBlockAddressSymbol(const BlockAddress *BA) const { 2032 return MMI->getAddrLabelSymbol(BA->getBasicBlock()); 2033 } 2034 2035 MCSymbol *AsmPrinter::GetBlockAddressSymbol(const BasicBlock *BB) const { 2036 return MMI->getAddrLabelSymbol(BB); 2037 } 2038 2039 /// GetCPISymbol - Return the symbol for the specified constant pool entry. 2040 MCSymbol *AsmPrinter::GetCPISymbol(unsigned CPID) const { 2041 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 2042 return OutContext.GetOrCreateSymbol 2043 (Twine(DL->getPrivateGlobalPrefix()) + "CPI" + Twine(getFunctionNumber()) 2044 + "_" + Twine(CPID)); 2045 } 2046 2047 /// GetJTISymbol - Return the symbol for the specified jump table entry. 2048 MCSymbol *AsmPrinter::GetJTISymbol(unsigned JTID, bool isLinkerPrivate) const { 2049 return MF->getJTISymbol(JTID, OutContext, isLinkerPrivate); 2050 } 2051 2052 /// GetJTSetSymbol - Return the symbol for the specified jump table .set 2053 /// FIXME: privatize to AsmPrinter. 2054 MCSymbol *AsmPrinter::GetJTSetSymbol(unsigned UID, unsigned MBBID) const { 2055 const DataLayout *DL = TM.getSubtargetImpl()->getDataLayout(); 2056 return OutContext.GetOrCreateSymbol 2057 (Twine(DL->getPrivateGlobalPrefix()) + Twine(getFunctionNumber()) + "_" + 2058 Twine(UID) + "_set_" + Twine(MBBID)); 2059 } 2060 2061 MCSymbol *AsmPrinter::getSymbolWithGlobalValueBase(const GlobalValue *GV, 2062 StringRef Suffix) const { 2063 return getObjFileLowering().getSymbolWithGlobalValueBase(GV, Suffix, *Mang, 2064 TM); 2065 } 2066 2067 /// GetExternalSymbolSymbol - Return the MCSymbol for the specified 2068 /// ExternalSymbol. 2069 MCSymbol *AsmPrinter::GetExternalSymbolSymbol(StringRef Sym) const { 2070 SmallString<60> NameStr; 2071 Mang->getNameWithPrefix(NameStr, Sym); 2072 return OutContext.GetOrCreateSymbol(NameStr.str()); 2073 } 2074 2075 2076 2077 /// PrintParentLoopComment - Print comments about parent loops of this one. 2078 static void PrintParentLoopComment(raw_ostream &OS, const MachineLoop *Loop, 2079 unsigned FunctionNumber) { 2080 if (!Loop) return; 2081 PrintParentLoopComment(OS, Loop->getParentLoop(), FunctionNumber); 2082 OS.indent(Loop->getLoopDepth()*2) 2083 << "Parent Loop BB" << FunctionNumber << "_" 2084 << Loop->getHeader()->getNumber() 2085 << " Depth=" << Loop->getLoopDepth() << '\n'; 2086 } 2087 2088 2089 /// PrintChildLoopComment - Print comments about child loops within 2090 /// the loop for this basic block, with nesting. 2091 static void PrintChildLoopComment(raw_ostream &OS, const MachineLoop *Loop, 2092 unsigned FunctionNumber) { 2093 // Add child loop information 2094 for (const MachineLoop *CL : *Loop) { 2095 OS.indent(CL->getLoopDepth()*2) 2096 << "Child Loop BB" << FunctionNumber << "_" 2097 << CL->getHeader()->getNumber() << " Depth " << CL->getLoopDepth() 2098 << '\n'; 2099 PrintChildLoopComment(OS, CL, FunctionNumber); 2100 } 2101 } 2102 2103 /// emitBasicBlockLoopComments - Pretty-print comments for basic blocks. 2104 static void emitBasicBlockLoopComments(const MachineBasicBlock &MBB, 2105 const MachineLoopInfo *LI, 2106 const AsmPrinter &AP) { 2107 // Add loop depth information 2108 const MachineLoop *Loop = LI->getLoopFor(&MBB); 2109 if (!Loop) return; 2110 2111 MachineBasicBlock *Header = Loop->getHeader(); 2112 assert(Header && "No header for loop"); 2113 2114 // If this block is not a loop header, just print out what is the loop header 2115 // and return. 2116 if (Header != &MBB) { 2117 AP.OutStreamer.AddComment(" in Loop: Header=BB" + 2118 Twine(AP.getFunctionNumber())+"_" + 2119 Twine(Loop->getHeader()->getNumber())+ 2120 " Depth="+Twine(Loop->getLoopDepth())); 2121 return; 2122 } 2123 2124 // Otherwise, it is a loop header. Print out information about child and 2125 // parent loops. 2126 raw_ostream &OS = AP.OutStreamer.GetCommentOS(); 2127 2128 PrintParentLoopComment(OS, Loop->getParentLoop(), AP.getFunctionNumber()); 2129 2130 OS << "=>"; 2131 OS.indent(Loop->getLoopDepth()*2-2); 2132 2133 OS << "This "; 2134 if (Loop->empty()) 2135 OS << "Inner "; 2136 OS << "Loop Header: Depth=" + Twine(Loop->getLoopDepth()) << '\n'; 2137 2138 PrintChildLoopComment(OS, Loop, AP.getFunctionNumber()); 2139 } 2140 2141 2142 /// EmitBasicBlockStart - This method prints the label for the specified 2143 /// MachineBasicBlock, an alignment (if present) and a comment describing 2144 /// it if appropriate. 2145 void AsmPrinter::EmitBasicBlockStart(const MachineBasicBlock &MBB) const { 2146 // Emit an alignment directive for this block, if needed. 2147 if (unsigned Align = MBB.getAlignment()) 2148 EmitAlignment(Align); 2149 2150 // If the block has its address taken, emit any labels that were used to 2151 // reference the block. It is possible that there is more than one label 2152 // here, because multiple LLVM BB's may have been RAUW'd to this block after 2153 // the references were generated. 2154 if (MBB.hasAddressTaken()) { 2155 const BasicBlock *BB = MBB.getBasicBlock(); 2156 if (isVerbose()) 2157 OutStreamer.AddComment("Block address taken"); 2158 2159 std::vector<MCSymbol*> Symbols = MMI->getAddrLabelSymbolToEmit(BB); 2160 for (auto *Sym : Symbols) 2161 OutStreamer.EmitLabel(Sym); 2162 } 2163 2164 // Print some verbose block comments. 2165 if (isVerbose()) { 2166 if (const BasicBlock *BB = MBB.getBasicBlock()) 2167 if (BB->hasName()) 2168 OutStreamer.AddComment("%" + BB->getName()); 2169 emitBasicBlockLoopComments(MBB, LI, *this); 2170 } 2171 2172 // Print the main label for the block. 2173 if (MBB.pred_empty() || isBlockOnlyReachableByFallthrough(&MBB)) { 2174 if (isVerbose()) { 2175 // NOTE: Want this comment at start of line, don't emit with AddComment. 2176 OutStreamer.emitRawComment(" BB#" + Twine(MBB.getNumber()) + ":", false); 2177 } 2178 } else { 2179 OutStreamer.EmitLabel(MBB.getSymbol()); 2180 } 2181 } 2182 2183 void AsmPrinter::EmitVisibility(MCSymbol *Sym, unsigned Visibility, 2184 bool IsDefinition) const { 2185 MCSymbolAttr Attr = MCSA_Invalid; 2186 2187 switch (Visibility) { 2188 default: break; 2189 case GlobalValue::HiddenVisibility: 2190 if (IsDefinition) 2191 Attr = MAI->getHiddenVisibilityAttr(); 2192 else 2193 Attr = MAI->getHiddenDeclarationVisibilityAttr(); 2194 break; 2195 case GlobalValue::ProtectedVisibility: 2196 Attr = MAI->getProtectedVisibilityAttr(); 2197 break; 2198 } 2199 2200 if (Attr != MCSA_Invalid) 2201 OutStreamer.EmitSymbolAttribute(Sym, Attr); 2202 } 2203 2204 /// isBlockOnlyReachableByFallthough - Return true if the basic block has 2205 /// exactly one predecessor and the control transfer mechanism between 2206 /// the predecessor and this block is a fall-through. 2207 bool AsmPrinter:: 2208 isBlockOnlyReachableByFallthrough(const MachineBasicBlock *MBB) const { 2209 // If this is a landing pad, it isn't a fall through. If it has no preds, 2210 // then nothing falls through to it. 2211 if (MBB->isLandingPad() || MBB->pred_empty()) 2212 return false; 2213 2214 // If there isn't exactly one predecessor, it can't be a fall through. 2215 if (MBB->pred_size() > 1) 2216 return false; 2217 2218 // The predecessor has to be immediately before this block. 2219 MachineBasicBlock *Pred = *MBB->pred_begin(); 2220 if (!Pred->isLayoutSuccessor(MBB)) 2221 return false; 2222 2223 // If the block is completely empty, then it definitely does fall through. 2224 if (Pred->empty()) 2225 return true; 2226 2227 // Check the terminators in the previous blocks 2228 for (const auto &MI : Pred->terminators()) { 2229 // If it is not a simple branch, we are in a table somewhere. 2230 if (!MI.isBranch() || MI.isIndirectBranch()) 2231 return false; 2232 2233 // If we are the operands of one of the branches, this is not a fall 2234 // through. Note that targets with delay slots will usually bundle 2235 // terminators with the delay slot instruction. 2236 for (ConstMIBundleOperands OP(&MI); OP.isValid(); ++OP) { 2237 if (OP->isJTI()) 2238 return false; 2239 if (OP->isMBB() && OP->getMBB() == MBB) 2240 return false; 2241 } 2242 } 2243 2244 return true; 2245 } 2246 2247 2248 2249 GCMetadataPrinter *AsmPrinter::GetOrCreateGCPrinter(GCStrategy &S) { 2250 if (!S.usesMetadata()) 2251 return nullptr; 2252 2253 gcp_map_type &GCMap = getGCMap(GCMetadataPrinters); 2254 gcp_map_type::iterator GCPI = GCMap.find(&S); 2255 if (GCPI != GCMap.end()) 2256 return GCPI->second.get(); 2257 2258 const char *Name = S.getName().c_str(); 2259 2260 for (GCMetadataPrinterRegistry::iterator 2261 I = GCMetadataPrinterRegistry::begin(), 2262 E = GCMetadataPrinterRegistry::end(); I != E; ++I) 2263 if (strcmp(Name, I->getName()) == 0) { 2264 std::unique_ptr<GCMetadataPrinter> GMP = I->instantiate(); 2265 GMP->S = &S; 2266 auto IterBool = GCMap.insert(std::make_pair(&S, std::move(GMP))); 2267 return IterBool.first->second.get(); 2268 } 2269 2270 report_fatal_error("no GCMetadataPrinter registered for GC: " + Twine(Name)); 2271 } 2272 2273 /// Pin vtable to this file. 2274 AsmPrinterHandler::~AsmPrinterHandler() {} 2275