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 "AsmPrinterHandler.h"
15 #include "CodeViewDebug.h"
16 #include "DwarfDebug.h"
17 #include "DwarfException.h"
18 #include "WinException.h"
19 #include "llvm/ADT/APFloat.h"
20 #include "llvm/ADT/APInt.h"
21 #include "llvm/ADT/DenseMap.h"
22 #include "llvm/ADT/SmallPtrSet.h"
23 #include "llvm/ADT/SmallString.h"
24 #include "llvm/ADT/SmallVector.h"
25 #include "llvm/ADT/Statistic.h"
26 #include "llvm/ADT/STLExtras.h"
27 #include "llvm/ADT/StringRef.h"
28 #include "llvm/ADT/Triple.h"
29 #include "llvm/ADT/Twine.h"
30 #include "llvm/Analysis/ConstantFolding.h"
31 #include "llvm/Analysis/ObjectUtils.h"
32 #include "llvm/CodeGen/Analysis.h"
33 #include "llvm/CodeGen/AsmPrinter.h"
34 #include "llvm/CodeGen/GCMetadata.h"
35 #include "llvm/CodeGen/GCMetadataPrinter.h"
36 #include "llvm/CodeGen/GCStrategy.h"
37 #include "llvm/CodeGen/MachineBasicBlock.h"
38 #include "llvm/CodeGen/MachineConstantPool.h"
39 #include "llvm/CodeGen/MachineFrameInfo.h"
40 #include "llvm/CodeGen/MachineFunction.h"
41 #include "llvm/CodeGen/MachineFunctionPass.h"
42 #include "llvm/CodeGen/MachineInstr.h"
43 #include "llvm/CodeGen/MachineInstrBundle.h"
44 #include "llvm/CodeGen/MachineJumpTableInfo.h"
45 #include "llvm/CodeGen/MachineLoopInfo.h"
46 #include "llvm/CodeGen/MachineMemOperand.h"
47 #include "llvm/CodeGen/MachineModuleInfoImpls.h"
48 #include "llvm/CodeGen/MachineOperand.h"
49 #include "llvm/CodeGen/MachineOptimizationRemarkEmitter.h"
50 #include "llvm/IR/BasicBlock.h"
51 #include "llvm/IR/Constant.h"
52 #include "llvm/IR/Constants.h"
53 #include "llvm/IR/DataLayout.h"
54 #include "llvm/IR/DebugInfoMetadata.h"
55 #include "llvm/IR/DerivedTypes.h"
56 #include "llvm/IR/Function.h"
57 #include "llvm/IR/GlobalAlias.h"
58 #include "llvm/IR/GlobalIFunc.h"
59 #include "llvm/IR/GlobalIndirectSymbol.h"
60 #include "llvm/IR/GlobalObject.h"
61 #include "llvm/IR/GlobalValue.h"
62 #include "llvm/IR/GlobalVariable.h"
63 #include "llvm/IR/Mangler.h"
64 #include "llvm/IR/Metadata.h"
65 #include "llvm/IR/Module.h"
66 #include "llvm/IR/Operator.h"
67 #include "llvm/IR/Value.h"
68 #include "llvm/MC/MCAsmInfo.h"
69 #include "llvm/MC/MCContext.h"
70 #include "llvm/MC/MCDirectives.h"
71 #include "llvm/MC/MCExpr.h"
72 #include "llvm/MC/MCInst.h"
73 #include "llvm/MC/MCSection.h"
74 #include "llvm/MC/MCSectionELF.h"
75 #include "llvm/MC/MCSectionMachO.h"
76 #include "llvm/MC/MCStreamer.h"
77 #include "llvm/MC/MCSubtargetInfo.h"
78 #include "llvm/MC/MCSymbol.h"
79 #include "llvm/MC/MCTargetOptions.h"
80 #include "llvm/MC/MCValue.h"
81 #include "llvm/MC/SectionKind.h"
82 #include "llvm/Pass.h"
83 #include "llvm/Support/Casting.h"
84 #include "llvm/Support/Compiler.h"
85 #include "llvm/Support/Dwarf.h"
86 #include "llvm/Support/ELF.h"
87 #include "llvm/Support/ErrorHandling.h"
88 #include "llvm/Support/Format.h"
89 #include "llvm/Support/MathExtras.h"
90 #include "llvm/Support/raw_ostream.h"
91 #include "llvm/Support/TargetRegistry.h"
92 #include "llvm/Support/Timer.h"
93 #include "llvm/Target/TargetFrameLowering.h"
94 #include "llvm/Target/TargetInstrInfo.h"
95 #include "llvm/Target/TargetLowering.h"
96 #include "llvm/Target/TargetLoweringObjectFile.h"
97 #include "llvm/Target/TargetMachine.h"
98 #include "llvm/Target/TargetRegisterInfo.h"
99 #include "llvm/Target/TargetSubtargetInfo.h"
100 #include <algorithm>
101 #include <cassert>
102 #include <cinttypes>
103 #include <cstdint>
104 #include <limits>
105 #include <memory>
106 #include <string>
107 #include <utility>
108 #include <vector>
109 
110 using namespace llvm;
111 
112 #define DEBUG_TYPE "asm-printer"
113 
114 static const char *const DWARFGroupName = "dwarf";
115 static const char *const DWARFGroupDescription = "DWARF Emission";
116 static const char *const DbgTimerName = "emit";
117 static const char *const DbgTimerDescription = "Debug Info Emission";
118 static const char *const EHTimerName = "write_exception";
119 static const char *const EHTimerDescription = "DWARF Exception Writer";
120 static const char *const CodeViewLineTablesGroupName = "linetables";
121 static const char *const CodeViewLineTablesGroupDescription =
122   "CodeView Line Tables";
123 
124 STATISTIC(EmittedInsts, "Number of machine instrs printed");
125 
126 static cl::opt<bool>
127     PrintSchedule("print-schedule", cl::Hidden, cl::init(false),
128                   cl::desc("Print 'sched: [latency:throughput]' in .s output"));
129 
130 char AsmPrinter::ID = 0;
131 
132 typedef DenseMap<GCStrategy*, std::unique_ptr<GCMetadataPrinter>> gcp_map_type;
133 static gcp_map_type &getGCMap(void *&P) {
134   if (!P)
135     P = new gcp_map_type();
136   return *(gcp_map_type*)P;
137 }
138 
139 /// getGVAlignmentLog2 - Return the alignment to use for the specified global
140 /// value in log2 form.  This rounds up to the preferred alignment if possible
141 /// and legal.
142 static unsigned getGVAlignmentLog2(const GlobalValue *GV, const DataLayout &DL,
143                                    unsigned InBits = 0) {
144   unsigned NumBits = 0;
145   if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV))
146     NumBits = DL.getPreferredAlignmentLog(GVar);
147 
148   // If InBits is specified, round it to it.
149   if (InBits > NumBits)
150     NumBits = InBits;
151 
152   // If the GV has a specified alignment, take it into account.
153   if (GV->getAlignment() == 0)
154     return NumBits;
155 
156   unsigned GVAlign = Log2_32(GV->getAlignment());
157 
158   // If the GVAlign is larger than NumBits, or if we are required to obey
159   // NumBits because the GV has an assigned section, obey it.
160   if (GVAlign > NumBits || GV->hasSection())
161     NumBits = GVAlign;
162   return NumBits;
163 }
164 
165 AsmPrinter::AsmPrinter(TargetMachine &tm, std::unique_ptr<MCStreamer> Streamer)
166     : MachineFunctionPass(ID), TM(tm), MAI(tm.getMCAsmInfo()),
167       OutContext(Streamer->getContext()), OutStreamer(std::move(Streamer)) {
168   VerboseAsm = OutStreamer->isVerboseAsm();
169 }
170 
171 AsmPrinter::~AsmPrinter() {
172   assert(!DD && Handlers.empty() && "Debug/EH info didn't get finalized");
173 
174   if (GCMetadataPrinters) {
175     gcp_map_type &GCMap = getGCMap(GCMetadataPrinters);
176 
177     delete &GCMap;
178     GCMetadataPrinters = nullptr;
179   }
180 }
181 
182 bool AsmPrinter::isPositionIndependent() const {
183   return TM.isPositionIndependent();
184 }
185 
186 /// getFunctionNumber - Return a unique ID for the current function.
187 ///
188 unsigned AsmPrinter::getFunctionNumber() const {
189   return MF->getFunctionNumber();
190 }
191 
192 const TargetLoweringObjectFile &AsmPrinter::getObjFileLowering() const {
193   return *TM.getObjFileLowering();
194 }
195 
196 const DataLayout &AsmPrinter::getDataLayout() const {
197   return MMI->getModule()->getDataLayout();
198 }
199 
200 // Do not use the cached DataLayout because some client use it without a Module
201 // (llvm-dsymutil, llvm-dwarfdump).
202 unsigned AsmPrinter::getPointerSize() const { return TM.getPointerSize(); }
203 
204 const MCSubtargetInfo &AsmPrinter::getSubtargetInfo() const {
205   assert(MF && "getSubtargetInfo requires a valid MachineFunction!");
206   return MF->getSubtarget<MCSubtargetInfo>();
207 }
208 
209 void AsmPrinter::EmitToStreamer(MCStreamer &S, const MCInst &Inst) {
210   S.EmitInstruction(Inst, getSubtargetInfo());
211 }
212 
213 /// getCurrentSection() - Return the current section we are emitting to.
214 const MCSection *AsmPrinter::getCurrentSection() const {
215   return OutStreamer->getCurrentSectionOnly();
216 }
217 
218 void AsmPrinter::getAnalysisUsage(AnalysisUsage &AU) const {
219   AU.setPreservesAll();
220   MachineFunctionPass::getAnalysisUsage(AU);
221   AU.addRequired<MachineModuleInfo>();
222   AU.addRequired<MachineOptimizationRemarkEmitterPass>();
223   AU.addRequired<GCModuleInfo>();
224   if (isVerbose())
225     AU.addRequired<MachineLoopInfo>();
226 }
227 
228 bool AsmPrinter::doInitialization(Module &M) {
229   MMI = getAnalysisIfAvailable<MachineModuleInfo>();
230 
231   // Initialize TargetLoweringObjectFile.
232   const_cast<TargetLoweringObjectFile&>(getObjFileLowering())
233     .Initialize(OutContext, TM);
234 
235   OutStreamer->InitSections(false);
236 
237   // Emit the version-min deplyment target directive if needed.
238   //
239   // FIXME: If we end up with a collection of these sorts of Darwin-specific
240   // or ELF-specific things, it may make sense to have a platform helper class
241   // that will work with the target helper class. For now keep it here, as the
242   // alternative is duplicated code in each of the target asm printers that
243   // use the directive, where it would need the same conditionalization
244   // anyway.
245   const Triple &TT = TM.getTargetTriple();
246   // If there is a version specified, Major will be non-zero.
247   if (TT.isOSDarwin() && TT.getOSMajorVersion() != 0) {
248     unsigned Major, Minor, Update;
249     MCVersionMinType VersionType;
250     if (TT.isWatchOS()) {
251       VersionType = MCVM_WatchOSVersionMin;
252       TT.getWatchOSVersion(Major, Minor, Update);
253     } else if (TT.isTvOS()) {
254       VersionType = MCVM_TvOSVersionMin;
255       TT.getiOSVersion(Major, Minor, Update);
256     } else if (TT.isMacOSX()) {
257       VersionType = MCVM_OSXVersionMin;
258       if (!TT.getMacOSXVersion(Major, Minor, Update))
259         Major = 0;
260     } else {
261       VersionType = MCVM_IOSVersionMin;
262       TT.getiOSVersion(Major, Minor, Update);
263     }
264     if (Major != 0)
265       OutStreamer->EmitVersionMin(VersionType, Major, Minor, Update);
266   }
267 
268   // Allow the target to emit any magic that it wants at the start of the file.
269   EmitStartOfAsmFile(M);
270 
271   // Very minimal debug info. It is ignored if we emit actual debug info. If we
272   // don't, this at least helps the user find where a global came from.
273   if (MAI->hasSingleParameterDotFile()) {
274     // .file "foo.c"
275     OutStreamer->EmitFileDirective(M.getSourceFileName());
276   }
277 
278   GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>();
279   assert(MI && "AsmPrinter didn't require GCModuleInfo?");
280   for (auto &I : *MI)
281     if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(*I))
282       MP->beginAssembly(M, *MI, *this);
283 
284   // Emit module-level inline asm if it exists.
285   if (!M.getModuleInlineAsm().empty()) {
286     // We're at the module level. Construct MCSubtarget from the default CPU
287     // and target triple.
288     std::unique_ptr<MCSubtargetInfo> STI(TM.getTarget().createMCSubtargetInfo(
289         TM.getTargetTriple().str(), TM.getTargetCPU(),
290         TM.getTargetFeatureString()));
291     OutStreamer->AddComment("Start of file scope inline assembly");
292     OutStreamer->AddBlankLine();
293     EmitInlineAsm(M.getModuleInlineAsm()+"\n",
294                   OutContext.getSubtargetCopy(*STI), TM.Options.MCOptions);
295     OutStreamer->AddComment("End of file scope inline assembly");
296     OutStreamer->AddBlankLine();
297   }
298 
299   if (MAI->doesSupportDebugInformation()) {
300     bool EmitCodeView = MMI->getModule()->getCodeViewFlag();
301     if (EmitCodeView && (TM.getTargetTriple().isKnownWindowsMSVCEnvironment() ||
302                          TM.getTargetTriple().isWindowsItaniumEnvironment())) {
303       Handlers.push_back(HandlerInfo(new CodeViewDebug(this),
304                                      DbgTimerName, DbgTimerDescription,
305                                      CodeViewLineTablesGroupName,
306                                      CodeViewLineTablesGroupDescription));
307     }
308     if (!EmitCodeView || MMI->getModule()->getDwarfVersion()) {
309       DD = new DwarfDebug(this, &M);
310       DD->beginModule();
311       Handlers.push_back(HandlerInfo(DD, DbgTimerName, DbgTimerDescription,
312                                      DWARFGroupName, DWARFGroupDescription));
313     }
314   }
315 
316   switch (MAI->getExceptionHandlingType()) {
317   case ExceptionHandling::SjLj:
318   case ExceptionHandling::DwarfCFI:
319   case ExceptionHandling::ARM:
320     isCFIMoveForDebugging = true;
321     if (MAI->getExceptionHandlingType() != ExceptionHandling::DwarfCFI)
322       break;
323     for (auto &F: M.getFunctionList()) {
324       // If the module contains any function with unwind data,
325       // .eh_frame has to be emitted.
326       // Ignore functions that won't get emitted.
327       if (!F.isDeclarationForLinker() && F.needsUnwindTableEntry()) {
328         isCFIMoveForDebugging = false;
329         break;
330       }
331     }
332     break;
333   default:
334     isCFIMoveForDebugging = false;
335     break;
336   }
337 
338   EHStreamer *ES = nullptr;
339   switch (MAI->getExceptionHandlingType()) {
340   case ExceptionHandling::None:
341     break;
342   case ExceptionHandling::SjLj:
343   case ExceptionHandling::DwarfCFI:
344     ES = new DwarfCFIException(this);
345     break;
346   case ExceptionHandling::ARM:
347     ES = new ARMException(this);
348     break;
349   case ExceptionHandling::WinEH:
350     switch (MAI->getWinEHEncodingType()) {
351     default: llvm_unreachable("unsupported unwinding information encoding");
352     case WinEH::EncodingType::Invalid:
353       break;
354     case WinEH::EncodingType::X86:
355     case WinEH::EncodingType::Itanium:
356       ES = new WinException(this);
357       break;
358     }
359     break;
360   }
361   if (ES)
362     Handlers.push_back(HandlerInfo(ES, EHTimerName, EHTimerDescription,
363                                    DWARFGroupName, DWARFGroupDescription));
364   return false;
365 }
366 
367 static bool canBeHidden(const GlobalValue *GV, const MCAsmInfo &MAI) {
368   if (!MAI.hasWeakDefCanBeHiddenDirective())
369     return false;
370 
371   return canBeOmittedFromSymbolTable(GV);
372 }
373 
374 void AsmPrinter::EmitLinkage(const GlobalValue *GV, MCSymbol *GVSym) const {
375   GlobalValue::LinkageTypes Linkage = GV->getLinkage();
376   switch (Linkage) {
377   case GlobalValue::CommonLinkage:
378   case GlobalValue::LinkOnceAnyLinkage:
379   case GlobalValue::LinkOnceODRLinkage:
380   case GlobalValue::WeakAnyLinkage:
381   case GlobalValue::WeakODRLinkage:
382     if (MAI->hasWeakDefDirective()) {
383       // .globl _foo
384       OutStreamer->EmitSymbolAttribute(GVSym, MCSA_Global);
385 
386       if (!canBeHidden(GV, *MAI))
387         // .weak_definition _foo
388         OutStreamer->EmitSymbolAttribute(GVSym, MCSA_WeakDefinition);
389       else
390         OutStreamer->EmitSymbolAttribute(GVSym, MCSA_WeakDefAutoPrivate);
391     } else if (MAI->hasLinkOnceDirective()) {
392       // .globl _foo
393       OutStreamer->EmitSymbolAttribute(GVSym, MCSA_Global);
394       //NOTE: linkonce is handled by the section the symbol was assigned to.
395     } else {
396       // .weak _foo
397       OutStreamer->EmitSymbolAttribute(GVSym, MCSA_Weak);
398     }
399     return;
400   case GlobalValue::ExternalLinkage:
401     // If external, declare as a global symbol: .globl _foo
402     OutStreamer->EmitSymbolAttribute(GVSym, MCSA_Global);
403     return;
404   case GlobalValue::PrivateLinkage:
405   case GlobalValue::InternalLinkage:
406     return;
407   case GlobalValue::AppendingLinkage:
408   case GlobalValue::AvailableExternallyLinkage:
409   case GlobalValue::ExternalWeakLinkage:
410     llvm_unreachable("Should never emit this");
411   }
412   llvm_unreachable("Unknown linkage type!");
413 }
414 
415 void AsmPrinter::getNameWithPrefix(SmallVectorImpl<char> &Name,
416                                    const GlobalValue *GV) const {
417   TM.getNameWithPrefix(Name, GV, getObjFileLowering().getMangler());
418 }
419 
420 MCSymbol *AsmPrinter::getSymbol(const GlobalValue *GV) const {
421   return TM.getSymbol(GV);
422 }
423 
424 /// EmitGlobalVariable - Emit the specified global variable to the .s file.
425 void AsmPrinter::EmitGlobalVariable(const GlobalVariable *GV) {
426   bool IsEmuTLSVar = TM.Options.EmulatedTLS && GV->isThreadLocal();
427   assert(!(IsEmuTLSVar && GV->hasCommonLinkage()) &&
428          "No emulated TLS variables in the common section");
429 
430   // Never emit TLS variable xyz in emulated TLS model.
431   // The initialization value is in __emutls_t.xyz instead of xyz.
432   if (IsEmuTLSVar)
433     return;
434 
435   if (GV->hasInitializer()) {
436     // Check to see if this is a special global used by LLVM, if so, emit it.
437     if (EmitSpecialLLVMGlobal(GV))
438       return;
439 
440     // Skip the emission of global equivalents. The symbol can be emitted later
441     // on by emitGlobalGOTEquivs in case it turns out to be needed.
442     if (GlobalGOTEquivs.count(getSymbol(GV)))
443       return;
444 
445     if (isVerbose()) {
446       // When printing the control variable __emutls_v.*,
447       // we don't need to print the original TLS variable name.
448       GV->printAsOperand(OutStreamer->GetCommentOS(),
449                      /*PrintType=*/false, GV->getParent());
450       OutStreamer->GetCommentOS() << '\n';
451     }
452   }
453 
454   MCSymbol *GVSym = getSymbol(GV);
455   MCSymbol *EmittedSym = GVSym;
456 
457   // getOrCreateEmuTLSControlSym only creates the symbol with name and default
458   // attributes.
459   // GV's or GVSym's attributes will be used for the EmittedSym.
460   EmitVisibility(EmittedSym, GV->getVisibility(), !GV->isDeclaration());
461 
462   if (!GV->hasInitializer())   // External globals require no extra code.
463     return;
464 
465   GVSym->redefineIfPossible();
466   if (GVSym->isDefined() || GVSym->isVariable())
467     report_fatal_error("symbol '" + Twine(GVSym->getName()) +
468                        "' is already defined");
469 
470   if (MAI->hasDotTypeDotSizeDirective())
471     OutStreamer->EmitSymbolAttribute(EmittedSym, MCSA_ELF_TypeObject);
472 
473   SectionKind GVKind = TargetLoweringObjectFile::getKindForGlobal(GV, TM);
474 
475   const DataLayout &DL = GV->getParent()->getDataLayout();
476   uint64_t Size = DL.getTypeAllocSize(GV->getType()->getElementType());
477 
478   // If the alignment is specified, we *must* obey it.  Overaligning a global
479   // with a specified alignment is a prompt way to break globals emitted to
480   // sections and expected to be contiguous (e.g. ObjC metadata).
481   unsigned AlignLog = getGVAlignmentLog2(GV, DL);
482 
483   for (const HandlerInfo &HI : Handlers) {
484     NamedRegionTimer T(HI.TimerName, HI.TimerDescription,
485                        HI.TimerGroupName, HI.TimerGroupDescription,
486                        TimePassesIsEnabled);
487     HI.Handler->setSymbolSize(GVSym, Size);
488   }
489 
490   // Handle common symbols
491   if (GVKind.isCommon()) {
492     if (Size == 0) Size = 1;   // .comm Foo, 0 is undefined, avoid it.
493     unsigned Align = 1 << AlignLog;
494     if (!getObjFileLowering().getCommDirectiveSupportsAlignment())
495       Align = 0;
496 
497     // .comm _foo, 42, 4
498     OutStreamer->EmitCommonSymbol(GVSym, Size, Align);
499     return;
500   }
501 
502   // Determine to which section this global should be emitted.
503   MCSection *TheSection = getObjFileLowering().SectionForGlobal(GV, GVKind, TM);
504 
505   // If we have a bss global going to a section that supports the
506   // zerofill directive, do so here.
507   if (GVKind.isBSS() && MAI->hasMachoZeroFillDirective() &&
508       TheSection->isVirtualSection()) {
509     if (Size == 0)
510       Size = 1; // zerofill of 0 bytes is undefined.
511     unsigned Align = 1 << AlignLog;
512     EmitLinkage(GV, GVSym);
513     // .zerofill __DATA, __bss, _foo, 400, 5
514     OutStreamer->EmitZerofill(TheSection, GVSym, Size, Align);
515     return;
516   }
517 
518   // If this is a BSS local symbol and we are emitting in the BSS
519   // section use .lcomm/.comm directive.
520   if (GVKind.isBSSLocal() &&
521       getObjFileLowering().getBSSSection() == TheSection) {
522     if (Size == 0)
523       Size = 1; // .comm Foo, 0 is undefined, avoid it.
524     unsigned Align = 1 << AlignLog;
525 
526     // Use .lcomm only if it supports user-specified alignment.
527     // Otherwise, while it would still be correct to use .lcomm in some
528     // cases (e.g. when Align == 1), the external assembler might enfore
529     // some -unknown- default alignment behavior, which could cause
530     // spurious differences between external and integrated assembler.
531     // Prefer to simply fall back to .local / .comm in this case.
532     if (MAI->getLCOMMDirectiveAlignmentType() != LCOMM::NoAlignment) {
533       // .lcomm _foo, 42
534       OutStreamer->EmitLocalCommonSymbol(GVSym, Size, Align);
535       return;
536     }
537 
538     if (!getObjFileLowering().getCommDirectiveSupportsAlignment())
539       Align = 0;
540 
541     // .local _foo
542     OutStreamer->EmitSymbolAttribute(GVSym, MCSA_Local);
543     // .comm _foo, 42, 4
544     OutStreamer->EmitCommonSymbol(GVSym, Size, Align);
545     return;
546   }
547 
548   // Handle thread local data for mach-o which requires us to output an
549   // additional structure of data and mangle the original symbol so that we
550   // can reference it later.
551   //
552   // TODO: This should become an "emit thread local global" method on TLOF.
553   // All of this macho specific stuff should be sunk down into TLOFMachO and
554   // stuff like "TLSExtraDataSection" should no longer be part of the parent
555   // TLOF class.  This will also make it more obvious that stuff like
556   // MCStreamer::EmitTBSSSymbol is macho specific and only called from macho
557   // specific code.
558   if (GVKind.isThreadLocal() && MAI->hasMachoTBSSDirective()) {
559     // Emit the .tbss symbol
560     MCSymbol *MangSym =
561         OutContext.getOrCreateSymbol(GVSym->getName() + Twine("$tlv$init"));
562 
563     if (GVKind.isThreadBSS()) {
564       TheSection = getObjFileLowering().getTLSBSSSection();
565       OutStreamer->EmitTBSSSymbol(TheSection, MangSym, Size, 1 << AlignLog);
566     } else if (GVKind.isThreadData()) {
567       OutStreamer->SwitchSection(TheSection);
568 
569       EmitAlignment(AlignLog, GV);
570       OutStreamer->EmitLabel(MangSym);
571 
572       EmitGlobalConstant(GV->getParent()->getDataLayout(),
573                          GV->getInitializer());
574     }
575 
576     OutStreamer->AddBlankLine();
577 
578     // Emit the variable struct for the runtime.
579     MCSection *TLVSect = getObjFileLowering().getTLSExtraDataSection();
580 
581     OutStreamer->SwitchSection(TLVSect);
582     // Emit the linkage here.
583     EmitLinkage(GV, GVSym);
584     OutStreamer->EmitLabel(GVSym);
585 
586     // Three pointers in size:
587     //   - __tlv_bootstrap - used to make sure support exists
588     //   - spare pointer, used when mapped by the runtime
589     //   - pointer to mangled symbol above with initializer
590     unsigned PtrSize = DL.getPointerTypeSize(GV->getType());
591     OutStreamer->EmitSymbolValue(GetExternalSymbolSymbol("_tlv_bootstrap"),
592                                 PtrSize);
593     OutStreamer->EmitIntValue(0, PtrSize);
594     OutStreamer->EmitSymbolValue(MangSym, PtrSize);
595 
596     OutStreamer->AddBlankLine();
597     return;
598   }
599 
600   MCSymbol *EmittedInitSym = GVSym;
601 
602   OutStreamer->SwitchSection(TheSection);
603 
604   EmitLinkage(GV, EmittedInitSym);
605   EmitAlignment(AlignLog, GV);
606 
607   OutStreamer->EmitLabel(EmittedInitSym);
608 
609   EmitGlobalConstant(GV->getParent()->getDataLayout(), GV->getInitializer());
610 
611   if (MAI->hasDotTypeDotSizeDirective())
612     // .size foo, 42
613     OutStreamer->emitELFSize(EmittedInitSym,
614                              MCConstantExpr::create(Size, OutContext));
615 
616   OutStreamer->AddBlankLine();
617 }
618 
619 /// Emit the directive and value for debug thread local expression
620 ///
621 /// \p Value - The value to emit.
622 /// \p Size - The size of the integer (in bytes) to emit.
623 void AsmPrinter::EmitDebugThreadLocal(const MCExpr *Value,
624                                       unsigned Size) const {
625   OutStreamer->EmitValue(Value, Size);
626 }
627 
628 /// EmitFunctionHeader - This method emits the header for the current
629 /// function.
630 void AsmPrinter::EmitFunctionHeader() {
631   // Print out constants referenced by the function
632   EmitConstantPool();
633 
634   // Print the 'header' of function.
635   const Function *F = MF->getFunction();
636 
637   OutStreamer->SwitchSection(getObjFileLowering().SectionForGlobal(F, TM));
638   EmitVisibility(CurrentFnSym, F->getVisibility());
639 
640   EmitLinkage(F, CurrentFnSym);
641   if (MAI->hasFunctionAlignment())
642     EmitAlignment(MF->getAlignment(), F);
643 
644   if (MAI->hasDotTypeDotSizeDirective())
645     OutStreamer->EmitSymbolAttribute(CurrentFnSym, MCSA_ELF_TypeFunction);
646 
647   if (isVerbose()) {
648     F->printAsOperand(OutStreamer->GetCommentOS(),
649                    /*PrintType=*/false, F->getParent());
650     OutStreamer->GetCommentOS() << '\n';
651   }
652 
653   // Emit the prefix data.
654   if (F->hasPrefixData()) {
655     if (MAI->hasSubsectionsViaSymbols()) {
656       // Preserving prefix data on platforms which use subsections-via-symbols
657       // is a bit tricky. Here we introduce a symbol for the prefix data
658       // and use the .alt_entry attribute to mark the function's real entry point
659       // as an alternative entry point to the prefix-data symbol.
660       MCSymbol *PrefixSym = OutContext.createLinkerPrivateTempSymbol();
661       OutStreamer->EmitLabel(PrefixSym);
662 
663       EmitGlobalConstant(F->getParent()->getDataLayout(), F->getPrefixData());
664 
665       // Emit an .alt_entry directive for the actual function symbol.
666       OutStreamer->EmitSymbolAttribute(CurrentFnSym, MCSA_AltEntry);
667     } else {
668       EmitGlobalConstant(F->getParent()->getDataLayout(), F->getPrefixData());
669     }
670   }
671 
672   // Emit the CurrentFnSym.  This is a virtual function to allow targets to
673   // do their wild and crazy things as required.
674   EmitFunctionEntryLabel();
675 
676   // If the function had address-taken blocks that got deleted, then we have
677   // references to the dangling symbols.  Emit them at the start of the function
678   // so that we don't get references to undefined symbols.
679   std::vector<MCSymbol*> DeadBlockSyms;
680   MMI->takeDeletedSymbolsForFunction(F, DeadBlockSyms);
681   for (unsigned i = 0, e = DeadBlockSyms.size(); i != e; ++i) {
682     OutStreamer->AddComment("Address taken block that was later removed");
683     OutStreamer->EmitLabel(DeadBlockSyms[i]);
684   }
685 
686   if (CurrentFnBegin) {
687     if (MAI->useAssignmentForEHBegin()) {
688       MCSymbol *CurPos = OutContext.createTempSymbol();
689       OutStreamer->EmitLabel(CurPos);
690       OutStreamer->EmitAssignment(CurrentFnBegin,
691                                  MCSymbolRefExpr::create(CurPos, OutContext));
692     } else {
693       OutStreamer->EmitLabel(CurrentFnBegin);
694     }
695   }
696 
697   // Emit pre-function debug and/or EH information.
698   for (const HandlerInfo &HI : Handlers) {
699     NamedRegionTimer T(HI.TimerName, HI.TimerDescription, HI.TimerGroupName,
700                        HI.TimerGroupDescription, TimePassesIsEnabled);
701     HI.Handler->beginFunction(MF);
702   }
703 
704   // Emit the prologue data.
705   if (F->hasPrologueData())
706     EmitGlobalConstant(F->getParent()->getDataLayout(), F->getPrologueData());
707 }
708 
709 /// EmitFunctionEntryLabel - Emit the label that is the entrypoint for the
710 /// function.  This can be overridden by targets as required to do custom stuff.
711 void AsmPrinter::EmitFunctionEntryLabel() {
712   CurrentFnSym->redefineIfPossible();
713 
714   // The function label could have already been emitted if two symbols end up
715   // conflicting due to asm renaming.  Detect this and emit an error.
716   if (CurrentFnSym->isVariable())
717     report_fatal_error("'" + Twine(CurrentFnSym->getName()) +
718                        "' is a protected alias");
719   if (CurrentFnSym->isDefined())
720     report_fatal_error("'" + Twine(CurrentFnSym->getName()) +
721                        "' label emitted multiple times to assembly file");
722 
723   return OutStreamer->EmitLabel(CurrentFnSym);
724 }
725 
726 /// emitComments - Pretty-print comments for instructions.
727 static void emitComments(const MachineInstr &MI, raw_ostream &CommentOS,
728                          AsmPrinter *AP) {
729   const MachineFunction *MF = MI.getParent()->getParent();
730   const TargetInstrInfo *TII = MF->getSubtarget().getInstrInfo();
731 
732   // Check for spills and reloads
733   int FI;
734 
735   const MachineFrameInfo &MFI = MF->getFrameInfo();
736   bool Commented = false;
737 
738   // We assume a single instruction only has a spill or reload, not
739   // both.
740   const MachineMemOperand *MMO;
741   if (TII->isLoadFromStackSlotPostFE(MI, FI)) {
742     if (MFI.isSpillSlotObjectIndex(FI)) {
743       MMO = *MI.memoperands_begin();
744       CommentOS << MMO->getSize() << "-byte Reload";
745       Commented = true;
746     }
747   } else if (TII->hasLoadFromStackSlot(MI, MMO, FI)) {
748     if (MFI.isSpillSlotObjectIndex(FI)) {
749       CommentOS << MMO->getSize() << "-byte Folded Reload";
750       Commented = true;
751     }
752   } else if (TII->isStoreToStackSlotPostFE(MI, FI)) {
753     if (MFI.isSpillSlotObjectIndex(FI)) {
754       MMO = *MI.memoperands_begin();
755       CommentOS << MMO->getSize() << "-byte Spill";
756       Commented = true;
757     }
758   } else if (TII->hasStoreToStackSlot(MI, MMO, FI)) {
759     if (MFI.isSpillSlotObjectIndex(FI)) {
760       CommentOS << MMO->getSize() << "-byte Folded Spill";
761       Commented = true;
762     }
763   }
764 
765   // Check for spill-induced copies
766   if (MI.getAsmPrinterFlag(MachineInstr::ReloadReuse)) {
767     Commented = true;
768     CommentOS << " Reload Reuse";
769   }
770 
771   if (Commented && AP->EnablePrintSchedInfo)
772     // If any comment was added above and we need sched info comment then
773     // add this new comment just after the above comment w/o "\n" between them.
774     CommentOS << " " << MF->getSubtarget().getSchedInfoStr(MI) << "\n";
775   else if (Commented)
776     CommentOS << "\n";
777 }
778 
779 /// emitImplicitDef - This method emits the specified machine instruction
780 /// that is an implicit def.
781 void AsmPrinter::emitImplicitDef(const MachineInstr *MI) const {
782   unsigned RegNo = MI->getOperand(0).getReg();
783 
784   SmallString<128> Str;
785   raw_svector_ostream OS(Str);
786   OS << "implicit-def: "
787      << PrintReg(RegNo, MF->getSubtarget().getRegisterInfo());
788 
789   OutStreamer->AddComment(OS.str());
790   OutStreamer->AddBlankLine();
791 }
792 
793 static void emitKill(const MachineInstr *MI, AsmPrinter &AP) {
794   std::string Str;
795   raw_string_ostream OS(Str);
796   OS << "kill:";
797   for (unsigned i = 0, e = MI->getNumOperands(); i != e; ++i) {
798     const MachineOperand &Op = MI->getOperand(i);
799     assert(Op.isReg() && "KILL instruction must have only register operands");
800     OS << ' '
801        << PrintReg(Op.getReg(),
802                    AP.MF->getSubtarget().getRegisterInfo())
803        << (Op.isDef() ? "<def>" : "<kill>");
804   }
805   AP.OutStreamer->AddComment(OS.str());
806   AP.OutStreamer->AddBlankLine();
807 }
808 
809 /// emitDebugValueComment - This method handles the target-independent form
810 /// of DBG_VALUE, returning true if it was able to do so.  A false return
811 /// means the target will need to handle MI in EmitInstruction.
812 static bool emitDebugValueComment(const MachineInstr *MI, AsmPrinter &AP) {
813   // This code handles only the 4-operand target-independent form.
814   if (MI->getNumOperands() != 4)
815     return false;
816 
817   SmallString<128> Str;
818   raw_svector_ostream OS(Str);
819   OS << "DEBUG_VALUE: ";
820 
821   const DILocalVariable *V = MI->getDebugVariable();
822   if (auto *SP = dyn_cast<DISubprogram>(V->getScope())) {
823     StringRef Name = SP->getDisplayName();
824     if (!Name.empty())
825       OS << Name << ":";
826   }
827   OS << V->getName();
828 
829   const DIExpression *Expr = MI->getDebugExpression();
830   auto Fragment = Expr->getFragmentInfo();
831   if (Fragment)
832     OS << " [fragment offset=" << Fragment->OffsetInBits
833        << " size=" << Fragment->SizeInBits << "]";
834   OS << " <- ";
835 
836   // The second operand is only an offset if it's an immediate.
837   bool Deref = false;
838   bool MemLoc = MI->getOperand(0).isReg() && MI->getOperand(1).isImm();
839   int64_t Offset = MemLoc ? MI->getOperand(1).getImm() : 0;
840   for (unsigned i = 0; i < Expr->getNumElements(); ++i) {
841     uint64_t Op = Expr->getElement(i);
842     if (Op == dwarf::DW_OP_LLVM_fragment) {
843       // There can't be any operands after this in a valid expression
844       break;
845     } else if (Deref) {
846       // We currently don't support extra Offsets or derefs after the first
847       // one. Bail out early instead of emitting an incorrect comment.
848       OS << " [complex expression]";
849       AP.OutStreamer->emitRawComment(OS.str());
850       return true;
851     } else if (Op == dwarf::DW_OP_deref) {
852       Deref = true;
853       continue;
854     }
855 
856     uint64_t ExtraOffset = Expr->getElement(i++);
857     if (Op == dwarf::DW_OP_plus)
858       Offset += ExtraOffset;
859     else {
860       assert(Op == dwarf::DW_OP_minus);
861       Offset -= ExtraOffset;
862     }
863   }
864 
865   // Register or immediate value. Register 0 means undef.
866   if (MI->getOperand(0).isFPImm()) {
867     APFloat APF = APFloat(MI->getOperand(0).getFPImm()->getValueAPF());
868     if (MI->getOperand(0).getFPImm()->getType()->isFloatTy()) {
869       OS << (double)APF.convertToFloat();
870     } else if (MI->getOperand(0).getFPImm()->getType()->isDoubleTy()) {
871       OS << APF.convertToDouble();
872     } else {
873       // There is no good way to print long double.  Convert a copy to
874       // double.  Ah well, it's only a comment.
875       bool ignored;
876       APF.convert(APFloat::IEEEdouble(), APFloat::rmNearestTiesToEven,
877                   &ignored);
878       OS << "(long double) " << APF.convertToDouble();
879     }
880   } else if (MI->getOperand(0).isImm()) {
881     OS << MI->getOperand(0).getImm();
882   } else if (MI->getOperand(0).isCImm()) {
883     MI->getOperand(0).getCImm()->getValue().print(OS, false /*isSigned*/);
884   } else {
885     unsigned Reg;
886     if (MI->getOperand(0).isReg()) {
887       Reg = MI->getOperand(0).getReg();
888     } else {
889       assert(MI->getOperand(0).isFI() && "Unknown operand type");
890       const TargetFrameLowering *TFI = AP.MF->getSubtarget().getFrameLowering();
891       Offset += TFI->getFrameIndexReference(*AP.MF,
892                                             MI->getOperand(0).getIndex(), Reg);
893       Deref = true;
894     }
895     if (Reg == 0) {
896       // Suppress offset, it is not meaningful here.
897       OS << "undef";
898       // NOTE: Want this comment at start of line, don't emit with AddComment.
899       AP.OutStreamer->emitRawComment(OS.str());
900       return true;
901     }
902     if (MemLoc || Deref)
903       OS << '[';
904     OS << PrintReg(Reg, AP.MF->getSubtarget().getRegisterInfo());
905   }
906 
907   if (MemLoc || Deref)
908     OS << '+' << Offset << ']';
909 
910   // NOTE: Want this comment at start of line, don't emit with AddComment.
911   AP.OutStreamer->emitRawComment(OS.str());
912   return true;
913 }
914 
915 AsmPrinter::CFIMoveType AsmPrinter::needsCFIMoves() {
916   if (MAI->getExceptionHandlingType() == ExceptionHandling::DwarfCFI &&
917       MF->getFunction()->needsUnwindTableEntry())
918     return CFI_M_EH;
919 
920   if (MMI->hasDebugInfo())
921     return CFI_M_Debug;
922 
923   return CFI_M_None;
924 }
925 
926 bool AsmPrinter::needsSEHMoves() {
927   return MAI->usesWindowsCFI() && MF->getFunction()->needsUnwindTableEntry();
928 }
929 
930 void AsmPrinter::emitCFIInstruction(const MachineInstr &MI) {
931   ExceptionHandling ExceptionHandlingType = MAI->getExceptionHandlingType();
932   if (ExceptionHandlingType != ExceptionHandling::DwarfCFI &&
933       ExceptionHandlingType != ExceptionHandling::ARM)
934     return;
935 
936   if (needsCFIMoves() == CFI_M_None)
937     return;
938 
939   const std::vector<MCCFIInstruction> &Instrs = MF->getFrameInstructions();
940   unsigned CFIIndex = MI.getOperand(0).getCFIIndex();
941   const MCCFIInstruction &CFI = Instrs[CFIIndex];
942   emitCFIInstruction(CFI);
943 }
944 
945 void AsmPrinter::emitFrameAlloc(const MachineInstr &MI) {
946   // The operands are the MCSymbol and the frame offset of the allocation.
947   MCSymbol *FrameAllocSym = MI.getOperand(0).getMCSymbol();
948   int FrameOffset = MI.getOperand(1).getImm();
949 
950   // Emit a symbol assignment.
951   OutStreamer->EmitAssignment(FrameAllocSym,
952                              MCConstantExpr::create(FrameOffset, OutContext));
953 }
954 
955 /// EmitFunctionBody - This method emits the body and trailer for a
956 /// function.
957 void AsmPrinter::EmitFunctionBody() {
958   EmitFunctionHeader();
959 
960   // Emit target-specific gunk before the function body.
961   EmitFunctionBodyStart();
962 
963   bool ShouldPrintDebugScopes = MMI->hasDebugInfo();
964 
965   // Print out code for the function.
966   bool HasAnyRealCode = false;
967   int NumInstsInFunction = 0;
968   for (auto &MBB : *MF) {
969     // Print a label for the basic block.
970     EmitBasicBlockStart(MBB);
971     for (auto &MI : MBB) {
972 
973       // Print the assembly for the instruction.
974       if (!MI.isPosition() && !MI.isImplicitDef() && !MI.isKill() &&
975           !MI.isDebugValue()) {
976         HasAnyRealCode = true;
977         ++NumInstsInFunction;
978       }
979 
980       if (ShouldPrintDebugScopes) {
981         for (const HandlerInfo &HI : Handlers) {
982           NamedRegionTimer T(HI.TimerName, HI.TimerDescription,
983                              HI.TimerGroupName, HI.TimerGroupDescription,
984                              TimePassesIsEnabled);
985           HI.Handler->beginInstruction(&MI);
986         }
987       }
988 
989       if (isVerbose())
990         emitComments(MI, OutStreamer->GetCommentOS(), this);
991 
992       switch (MI.getOpcode()) {
993       case TargetOpcode::CFI_INSTRUCTION:
994         emitCFIInstruction(MI);
995         break;
996 
997       case TargetOpcode::LOCAL_ESCAPE:
998         emitFrameAlloc(MI);
999         break;
1000 
1001       case TargetOpcode::EH_LABEL:
1002       case TargetOpcode::GC_LABEL:
1003         OutStreamer->EmitLabel(MI.getOperand(0).getMCSymbol());
1004         break;
1005       case TargetOpcode::INLINEASM:
1006         EmitInlineAsm(&MI);
1007         break;
1008       case TargetOpcode::DBG_VALUE:
1009         if (isVerbose()) {
1010           if (!emitDebugValueComment(&MI, *this))
1011             EmitInstruction(&MI);
1012         }
1013         break;
1014       case TargetOpcode::IMPLICIT_DEF:
1015         if (isVerbose()) emitImplicitDef(&MI);
1016         break;
1017       case TargetOpcode::KILL:
1018         if (isVerbose()) emitKill(&MI, *this);
1019         break;
1020       default:
1021         EmitInstruction(&MI);
1022         break;
1023       }
1024 
1025       if (ShouldPrintDebugScopes) {
1026         for (const HandlerInfo &HI : Handlers) {
1027           NamedRegionTimer T(HI.TimerName, HI.TimerDescription,
1028                              HI.TimerGroupName, HI.TimerGroupDescription,
1029                              TimePassesIsEnabled);
1030           HI.Handler->endInstruction();
1031         }
1032       }
1033     }
1034 
1035     EmitBasicBlockEnd(MBB);
1036   }
1037 
1038   EmittedInsts += NumInstsInFunction;
1039   MachineOptimizationRemarkAnalysis R(DEBUG_TYPE, "InstructionCount",
1040                                       MF->getFunction()->getSubprogram(),
1041                                       &MF->front());
1042   R << ore::NV("NumInstructions", NumInstsInFunction)
1043     << " instructions in function";
1044   ORE->emit(R);
1045 
1046   // If the function is empty and the object file uses .subsections_via_symbols,
1047   // then we need to emit *something* to the function body to prevent the
1048   // labels from collapsing together.  Just emit a noop.
1049   // Similarly, don't emit empty functions on Windows either. It can lead to
1050   // duplicate entries (two functions with the same RVA) in the Guard CF Table
1051   // after linking, causing the kernel not to load the binary:
1052   // https://developercommunity.visualstudio.com/content/problem/45366/vc-linker-creates-invalid-dll-with-clang-cl.html
1053   // FIXME: Hide this behind some API in e.g. MCAsmInfo or MCTargetStreamer.
1054   const Triple &TT = TM.getTargetTriple();
1055   if (!HasAnyRealCode && (MAI->hasSubsectionsViaSymbols() ||
1056                           (TT.isOSWindows() && TT.isOSBinFormatCOFF()))) {
1057     MCInst Noop;
1058     MF->getSubtarget().getInstrInfo()->getNoop(Noop);
1059     OutStreamer->AddComment("avoids zero-length function");
1060     OutStreamer->EmitInstruction(Noop, getSubtargetInfo());
1061   }
1062 
1063   const Function *F = MF->getFunction();
1064   for (const auto &BB : *F) {
1065     if (!BB.hasAddressTaken())
1066       continue;
1067     MCSymbol *Sym = GetBlockAddressSymbol(&BB);
1068     if (Sym->isDefined())
1069       continue;
1070     OutStreamer->AddComment("Address of block that was removed by CodeGen");
1071     OutStreamer->EmitLabel(Sym);
1072   }
1073 
1074   // Emit target-specific gunk after the function body.
1075   EmitFunctionBodyEnd();
1076 
1077   if (!MF->getLandingPads().empty() || MMI->hasDebugInfo() ||
1078       MF->hasEHFunclets() || MAI->hasDotTypeDotSizeDirective()) {
1079     // Create a symbol for the end of function.
1080     CurrentFnEnd = createTempSymbol("func_end");
1081     OutStreamer->EmitLabel(CurrentFnEnd);
1082   }
1083 
1084   // If the target wants a .size directive for the size of the function, emit
1085   // it.
1086   if (MAI->hasDotTypeDotSizeDirective()) {
1087     // We can get the size as difference between the function label and the
1088     // temp label.
1089     const MCExpr *SizeExp = MCBinaryExpr::createSub(
1090         MCSymbolRefExpr::create(CurrentFnEnd, OutContext),
1091         MCSymbolRefExpr::create(CurrentFnSymForSize, OutContext), OutContext);
1092     OutStreamer->emitELFSize(CurrentFnSym, SizeExp);
1093   }
1094 
1095   for (const HandlerInfo &HI : Handlers) {
1096     NamedRegionTimer T(HI.TimerName, HI.TimerDescription, HI.TimerGroupName,
1097                        HI.TimerGroupDescription, TimePassesIsEnabled);
1098     HI.Handler->markFunctionEnd();
1099   }
1100 
1101   // Print out jump tables referenced by the function.
1102   EmitJumpTableInfo();
1103 
1104   // Emit post-function debug and/or EH information.
1105   for (const HandlerInfo &HI : Handlers) {
1106     NamedRegionTimer T(HI.TimerName, HI.TimerDescription, HI.TimerGroupName,
1107                        HI.TimerGroupDescription, TimePassesIsEnabled);
1108     HI.Handler->endFunction(MF);
1109   }
1110 
1111   OutStreamer->AddBlankLine();
1112 }
1113 
1114 /// \brief Compute the number of Global Variables that uses a Constant.
1115 static unsigned getNumGlobalVariableUses(const Constant *C) {
1116   if (!C)
1117     return 0;
1118 
1119   if (isa<GlobalVariable>(C))
1120     return 1;
1121 
1122   unsigned NumUses = 0;
1123   for (auto *CU : C->users())
1124     NumUses += getNumGlobalVariableUses(dyn_cast<Constant>(CU));
1125 
1126   return NumUses;
1127 }
1128 
1129 /// \brief Only consider global GOT equivalents if at least one user is a
1130 /// cstexpr inside an initializer of another global variables. Also, don't
1131 /// handle cstexpr inside instructions. During global variable emission,
1132 /// candidates are skipped and are emitted later in case at least one cstexpr
1133 /// isn't replaced by a PC relative GOT entry access.
1134 static bool isGOTEquivalentCandidate(const GlobalVariable *GV,
1135                                      unsigned &NumGOTEquivUsers) {
1136   // Global GOT equivalents are unnamed private globals with a constant
1137   // pointer initializer to another global symbol. They must point to a
1138   // GlobalVariable or Function, i.e., as GlobalValue.
1139   if (!GV->hasGlobalUnnamedAddr() || !GV->hasInitializer() ||
1140       !GV->isConstant() || !GV->isDiscardableIfUnused() ||
1141       !dyn_cast<GlobalValue>(GV->getOperand(0)))
1142     return false;
1143 
1144   // To be a got equivalent, at least one of its users need to be a constant
1145   // expression used by another global variable.
1146   for (auto *U : GV->users())
1147     NumGOTEquivUsers += getNumGlobalVariableUses(dyn_cast<Constant>(U));
1148 
1149   return NumGOTEquivUsers > 0;
1150 }
1151 
1152 /// \brief Unnamed constant global variables solely contaning a pointer to
1153 /// another globals variable is equivalent to a GOT table entry; it contains the
1154 /// the address of another symbol. Optimize it and replace accesses to these
1155 /// "GOT equivalents" by using the GOT entry for the final global instead.
1156 /// Compute GOT equivalent candidates among all global variables to avoid
1157 /// emitting them if possible later on, after it use is replaced by a GOT entry
1158 /// access.
1159 void AsmPrinter::computeGlobalGOTEquivs(Module &M) {
1160   if (!getObjFileLowering().supportIndirectSymViaGOTPCRel())
1161     return;
1162 
1163   for (const auto &G : M.globals()) {
1164     unsigned NumGOTEquivUsers = 0;
1165     if (!isGOTEquivalentCandidate(&G, NumGOTEquivUsers))
1166       continue;
1167 
1168     const MCSymbol *GOTEquivSym = getSymbol(&G);
1169     GlobalGOTEquivs[GOTEquivSym] = std::make_pair(&G, NumGOTEquivUsers);
1170   }
1171 }
1172 
1173 /// \brief Constant expressions using GOT equivalent globals may not be eligible
1174 /// for PC relative GOT entry conversion, in such cases we need to emit such
1175 /// globals we previously omitted in EmitGlobalVariable.
1176 void AsmPrinter::emitGlobalGOTEquivs() {
1177   if (!getObjFileLowering().supportIndirectSymViaGOTPCRel())
1178     return;
1179 
1180   SmallVector<const GlobalVariable *, 8> FailedCandidates;
1181   for (auto &I : GlobalGOTEquivs) {
1182     const GlobalVariable *GV = I.second.first;
1183     unsigned Cnt = I.second.second;
1184     if (Cnt)
1185       FailedCandidates.push_back(GV);
1186   }
1187   GlobalGOTEquivs.clear();
1188 
1189   for (auto *GV : FailedCandidates)
1190     EmitGlobalVariable(GV);
1191 }
1192 
1193 void AsmPrinter::emitGlobalIndirectSymbol(Module &M,
1194                                           const GlobalIndirectSymbol& GIS) {
1195   MCSymbol *Name = getSymbol(&GIS);
1196 
1197   if (GIS.hasExternalLinkage() || !MAI->getWeakRefDirective())
1198     OutStreamer->EmitSymbolAttribute(Name, MCSA_Global);
1199   else if (GIS.hasWeakLinkage() || GIS.hasLinkOnceLinkage())
1200     OutStreamer->EmitSymbolAttribute(Name, MCSA_WeakReference);
1201   else
1202     assert(GIS.hasLocalLinkage() && "Invalid alias or ifunc linkage");
1203 
1204   // Set the symbol type to function if the alias has a function type.
1205   // This affects codegen when the aliasee is not a function.
1206   if (GIS.getType()->getPointerElementType()->isFunctionTy()) {
1207     OutStreamer->EmitSymbolAttribute(Name, MCSA_ELF_TypeFunction);
1208     if (isa<GlobalIFunc>(GIS))
1209       OutStreamer->EmitSymbolAttribute(Name, MCSA_ELF_TypeIndFunction);
1210   }
1211 
1212   EmitVisibility(Name, GIS.getVisibility());
1213 
1214   const MCExpr *Expr = lowerConstant(GIS.getIndirectSymbol());
1215 
1216   if (isa<GlobalAlias>(&GIS) && MAI->hasAltEntry() && isa<MCBinaryExpr>(Expr))
1217     OutStreamer->EmitSymbolAttribute(Name, MCSA_AltEntry);
1218 
1219   // Emit the directives as assignments aka .set:
1220   OutStreamer->EmitAssignment(Name, Expr);
1221 
1222   if (auto *GA = dyn_cast<GlobalAlias>(&GIS)) {
1223     // If the aliasee does not correspond to a symbol in the output, i.e. the
1224     // alias is not of an object or the aliased object is private, then set the
1225     // size of the alias symbol from the type of the alias. We don't do this in
1226     // other situations as the alias and aliasee having differing types but same
1227     // size may be intentional.
1228     const GlobalObject *BaseObject = GA->getBaseObject();
1229     if (MAI->hasDotTypeDotSizeDirective() && GA->getValueType()->isSized() &&
1230         (!BaseObject || BaseObject->hasPrivateLinkage())) {
1231       const DataLayout &DL = M.getDataLayout();
1232       uint64_t Size = DL.getTypeAllocSize(GA->getValueType());
1233       OutStreamer->emitELFSize(Name, MCConstantExpr::create(Size, OutContext));
1234     }
1235   }
1236 }
1237 
1238 bool AsmPrinter::doFinalization(Module &M) {
1239   // Set the MachineFunction to nullptr so that we can catch attempted
1240   // accesses to MF specific features at the module level and so that
1241   // we can conditionalize accesses based on whether or not it is nullptr.
1242   MF = nullptr;
1243 
1244   // Gather all GOT equivalent globals in the module. We really need two
1245   // passes over the globals: one to compute and another to avoid its emission
1246   // in EmitGlobalVariable, otherwise we would not be able to handle cases
1247   // where the got equivalent shows up before its use.
1248   computeGlobalGOTEquivs(M);
1249 
1250   // Emit global variables.
1251   for (const auto &G : M.globals())
1252     EmitGlobalVariable(&G);
1253 
1254   // Emit remaining GOT equivalent globals.
1255   emitGlobalGOTEquivs();
1256 
1257   // Emit visibility info for declarations
1258   for (const Function &F : M) {
1259     if (!F.isDeclarationForLinker())
1260       continue;
1261     GlobalValue::VisibilityTypes V = F.getVisibility();
1262     if (V == GlobalValue::DefaultVisibility)
1263       continue;
1264 
1265     MCSymbol *Name = getSymbol(&F);
1266     EmitVisibility(Name, V, false);
1267   }
1268 
1269   const TargetLoweringObjectFile &TLOF = getObjFileLowering();
1270 
1271   // Emit module flags.
1272   SmallVector<Module::ModuleFlagEntry, 8> ModuleFlags;
1273   M.getModuleFlagsMetadata(ModuleFlags);
1274   if (!ModuleFlags.empty())
1275     TLOF.emitModuleFlags(*OutStreamer, ModuleFlags, TM);
1276 
1277   if (TM.getTargetTriple().isOSBinFormatELF()) {
1278     MachineModuleInfoELF &MMIELF = MMI->getObjFileInfo<MachineModuleInfoELF>();
1279 
1280     // Output stubs for external and common global variables.
1281     MachineModuleInfoELF::SymbolListTy Stubs = MMIELF.GetGVStubList();
1282     if (!Stubs.empty()) {
1283       OutStreamer->SwitchSection(TLOF.getDataSection());
1284       const DataLayout &DL = M.getDataLayout();
1285 
1286       for (const auto &Stub : Stubs) {
1287         OutStreamer->EmitLabel(Stub.first);
1288         OutStreamer->EmitSymbolValue(Stub.second.getPointer(),
1289                                      DL.getPointerSize());
1290       }
1291     }
1292   }
1293 
1294   // Finalize debug and EH information.
1295   for (const HandlerInfo &HI : Handlers) {
1296     NamedRegionTimer T(HI.TimerName, HI.TimerDescription, HI.TimerGroupName,
1297                        HI.TimerGroupDescription, TimePassesIsEnabled);
1298     HI.Handler->endModule();
1299     delete HI.Handler;
1300   }
1301   Handlers.clear();
1302   DD = nullptr;
1303 
1304   // If the target wants to know about weak references, print them all.
1305   if (MAI->getWeakRefDirective()) {
1306     // FIXME: This is not lazy, it would be nice to only print weak references
1307     // to stuff that is actually used.  Note that doing so would require targets
1308     // to notice uses in operands (due to constant exprs etc).  This should
1309     // happen with the MC stuff eventually.
1310 
1311     // Print out module-level global objects here.
1312     for (const auto &GO : M.global_objects()) {
1313       if (!GO.hasExternalWeakLinkage())
1314         continue;
1315       OutStreamer->EmitSymbolAttribute(getSymbol(&GO), MCSA_WeakReference);
1316     }
1317   }
1318 
1319   OutStreamer->AddBlankLine();
1320 
1321   // Print aliases in topological order, that is, for each alias a = b,
1322   // b must be printed before a.
1323   // This is because on some targets (e.g. PowerPC) linker expects aliases in
1324   // such an order to generate correct TOC information.
1325   SmallVector<const GlobalAlias *, 16> AliasStack;
1326   SmallPtrSet<const GlobalAlias *, 16> AliasVisited;
1327   for (const auto &Alias : M.aliases()) {
1328     for (const GlobalAlias *Cur = &Alias; Cur;
1329          Cur = dyn_cast<GlobalAlias>(Cur->getAliasee())) {
1330       if (!AliasVisited.insert(Cur).second)
1331         break;
1332       AliasStack.push_back(Cur);
1333     }
1334     for (const GlobalAlias *AncestorAlias : llvm::reverse(AliasStack))
1335       emitGlobalIndirectSymbol(M, *AncestorAlias);
1336     AliasStack.clear();
1337   }
1338   for (const auto &IFunc : M.ifuncs())
1339     emitGlobalIndirectSymbol(M, IFunc);
1340 
1341   GCModuleInfo *MI = getAnalysisIfAvailable<GCModuleInfo>();
1342   assert(MI && "AsmPrinter didn't require GCModuleInfo?");
1343   for (GCModuleInfo::iterator I = MI->end(), E = MI->begin(); I != E; )
1344     if (GCMetadataPrinter *MP = GetOrCreateGCPrinter(**--I))
1345       MP->finishAssembly(M, *MI, *this);
1346 
1347   // Emit llvm.ident metadata in an '.ident' directive.
1348   EmitModuleIdents(M);
1349 
1350   // Emit __morestack address if needed for indirect calls.
1351   if (MMI->usesMorestackAddr()) {
1352     unsigned Align = 1;
1353     MCSection *ReadOnlySection = getObjFileLowering().getSectionForConstant(
1354         getDataLayout(), SectionKind::getReadOnly(),
1355         /*C=*/nullptr, Align);
1356     OutStreamer->SwitchSection(ReadOnlySection);
1357 
1358     MCSymbol *AddrSymbol =
1359         OutContext.getOrCreateSymbol(StringRef("__morestack_addr"));
1360     OutStreamer->EmitLabel(AddrSymbol);
1361 
1362     unsigned PtrSize = MAI->getCodePointerSize();
1363     OutStreamer->EmitSymbolValue(GetExternalSymbolSymbol("__morestack"),
1364                                  PtrSize);
1365   }
1366 
1367   // If we don't have any trampolines, then we don't require stack memory
1368   // to be executable. Some targets have a directive to declare this.
1369   Function *InitTrampolineIntrinsic = M.getFunction("llvm.init.trampoline");
1370   if (!InitTrampolineIntrinsic || InitTrampolineIntrinsic->use_empty())
1371     if (MCSection *S = MAI->getNonexecutableStackSection(OutContext))
1372       OutStreamer->SwitchSection(S);
1373 
1374   // Allow the target to emit any magic that it wants at the end of the file,
1375   // after everything else has gone out.
1376   EmitEndOfAsmFile(M);
1377 
1378   MMI = nullptr;
1379 
1380   OutStreamer->Finish();
1381   OutStreamer->reset();
1382 
1383   return false;
1384 }
1385 
1386 MCSymbol *AsmPrinter::getCurExceptionSym() {
1387   if (!CurExceptionSym)
1388     CurExceptionSym = createTempSymbol("exception");
1389   return CurExceptionSym;
1390 }
1391 
1392 void AsmPrinter::SetupMachineFunction(MachineFunction &MF) {
1393   this->MF = &MF;
1394   // Get the function symbol.
1395   CurrentFnSym = getSymbol(MF.getFunction());
1396   CurrentFnSymForSize = CurrentFnSym;
1397   CurrentFnBegin = nullptr;
1398   CurExceptionSym = nullptr;
1399   bool NeedsLocalForSize = MAI->needsLocalForSize();
1400   if (!MF.getLandingPads().empty() || MMI->hasDebugInfo() ||
1401       MF.hasEHFunclets() || NeedsLocalForSize) {
1402     CurrentFnBegin = createTempSymbol("func_begin");
1403     if (NeedsLocalForSize)
1404       CurrentFnSymForSize = CurrentFnBegin;
1405   }
1406 
1407   ORE = &getAnalysis<MachineOptimizationRemarkEmitterPass>().getORE();
1408   if (isVerbose())
1409     LI = &getAnalysis<MachineLoopInfo>();
1410 
1411   const TargetSubtargetInfo &STI = MF.getSubtarget();
1412   EnablePrintSchedInfo = PrintSchedule.getNumOccurrences()
1413                              ? PrintSchedule
1414                              : STI.supportPrintSchedInfo();
1415 }
1416 
1417 namespace {
1418 
1419 // Keep track the alignment, constpool entries per Section.
1420   struct SectionCPs {
1421     MCSection *S;
1422     unsigned Alignment;
1423     SmallVector<unsigned, 4> CPEs;
1424 
1425     SectionCPs(MCSection *s, unsigned a) : S(s), Alignment(a) {}
1426   };
1427 
1428 } // end anonymous namespace
1429 
1430 /// EmitConstantPool - Print to the current output stream assembly
1431 /// representations of the constants in the constant pool MCP. This is
1432 /// used to print out constants which have been "spilled to memory" by
1433 /// the code generator.
1434 ///
1435 void AsmPrinter::EmitConstantPool() {
1436   const MachineConstantPool *MCP = MF->getConstantPool();
1437   const std::vector<MachineConstantPoolEntry> &CP = MCP->getConstants();
1438   if (CP.empty()) return;
1439 
1440   // Calculate sections for constant pool entries. We collect entries to go into
1441   // the same section together to reduce amount of section switch statements.
1442   SmallVector<SectionCPs, 4> CPSections;
1443   for (unsigned i = 0, e = CP.size(); i != e; ++i) {
1444     const MachineConstantPoolEntry &CPE = CP[i];
1445     unsigned Align = CPE.getAlignment();
1446 
1447     SectionKind Kind = CPE.getSectionKind(&getDataLayout());
1448 
1449     const Constant *C = nullptr;
1450     if (!CPE.isMachineConstantPoolEntry())
1451       C = CPE.Val.ConstVal;
1452 
1453     MCSection *S = getObjFileLowering().getSectionForConstant(getDataLayout(),
1454                                                               Kind, C, Align);
1455 
1456     // The number of sections are small, just do a linear search from the
1457     // last section to the first.
1458     bool Found = false;
1459     unsigned SecIdx = CPSections.size();
1460     while (SecIdx != 0) {
1461       if (CPSections[--SecIdx].S == S) {
1462         Found = true;
1463         break;
1464       }
1465     }
1466     if (!Found) {
1467       SecIdx = CPSections.size();
1468       CPSections.push_back(SectionCPs(S, Align));
1469     }
1470 
1471     if (Align > CPSections[SecIdx].Alignment)
1472       CPSections[SecIdx].Alignment = Align;
1473     CPSections[SecIdx].CPEs.push_back(i);
1474   }
1475 
1476   // Now print stuff into the calculated sections.
1477   const MCSection *CurSection = nullptr;
1478   unsigned Offset = 0;
1479   for (unsigned i = 0, e = CPSections.size(); i != e; ++i) {
1480     for (unsigned j = 0, ee = CPSections[i].CPEs.size(); j != ee; ++j) {
1481       unsigned CPI = CPSections[i].CPEs[j];
1482       MCSymbol *Sym = GetCPISymbol(CPI);
1483       if (!Sym->isUndefined())
1484         continue;
1485 
1486       if (CurSection != CPSections[i].S) {
1487         OutStreamer->SwitchSection(CPSections[i].S);
1488         EmitAlignment(Log2_32(CPSections[i].Alignment));
1489         CurSection = CPSections[i].S;
1490         Offset = 0;
1491       }
1492 
1493       MachineConstantPoolEntry CPE = CP[CPI];
1494 
1495       // Emit inter-object padding for alignment.
1496       unsigned AlignMask = CPE.getAlignment() - 1;
1497       unsigned NewOffset = (Offset + AlignMask) & ~AlignMask;
1498       OutStreamer->EmitZeros(NewOffset - Offset);
1499 
1500       Type *Ty = CPE.getType();
1501       Offset = NewOffset + getDataLayout().getTypeAllocSize(Ty);
1502 
1503       OutStreamer->EmitLabel(Sym);
1504       if (CPE.isMachineConstantPoolEntry())
1505         EmitMachineConstantPoolValue(CPE.Val.MachineCPVal);
1506       else
1507         EmitGlobalConstant(getDataLayout(), CPE.Val.ConstVal);
1508     }
1509   }
1510 }
1511 
1512 /// EmitJumpTableInfo - Print assembly representations of the jump tables used
1513 /// by the current function to the current output stream.
1514 ///
1515 void AsmPrinter::EmitJumpTableInfo() {
1516   const DataLayout &DL = MF->getDataLayout();
1517   const MachineJumpTableInfo *MJTI = MF->getJumpTableInfo();
1518   if (!MJTI) return;
1519   if (MJTI->getEntryKind() == MachineJumpTableInfo::EK_Inline) return;
1520   const std::vector<MachineJumpTableEntry> &JT = MJTI->getJumpTables();
1521   if (JT.empty()) return;
1522 
1523   // Pick the directive to use to print the jump table entries, and switch to
1524   // the appropriate section.
1525   const Function *F = MF->getFunction();
1526   const TargetLoweringObjectFile &TLOF = getObjFileLowering();
1527   bool JTInDiffSection = !TLOF.shouldPutJumpTableInFunctionSection(
1528       MJTI->getEntryKind() == MachineJumpTableInfo::EK_LabelDifference32,
1529       *F);
1530   if (JTInDiffSection) {
1531     // Drop it in the readonly section.
1532     MCSection *ReadOnlySection = TLOF.getSectionForJumpTable(*F, TM);
1533     OutStreamer->SwitchSection(ReadOnlySection);
1534   }
1535 
1536   EmitAlignment(Log2_32(MJTI->getEntryAlignment(DL)));
1537 
1538   // Jump tables in code sections are marked with a data_region directive
1539   // where that's supported.
1540   if (!JTInDiffSection)
1541     OutStreamer->EmitDataRegion(MCDR_DataRegionJT32);
1542 
1543   for (unsigned JTI = 0, e = JT.size(); JTI != e; ++JTI) {
1544     const std::vector<MachineBasicBlock*> &JTBBs = JT[JTI].MBBs;
1545 
1546     // If this jump table was deleted, ignore it.
1547     if (JTBBs.empty()) continue;
1548 
1549     // For the EK_LabelDifference32 entry, if using .set avoids a relocation,
1550     /// emit a .set directive for each unique entry.
1551     if (MJTI->getEntryKind() == MachineJumpTableInfo::EK_LabelDifference32 &&
1552         MAI->doesSetDirectiveSuppressReloc()) {
1553       SmallPtrSet<const MachineBasicBlock*, 16> EmittedSets;
1554       const TargetLowering *TLI = MF->getSubtarget().getTargetLowering();
1555       const MCExpr *Base = TLI->getPICJumpTableRelocBaseExpr(MF,JTI,OutContext);
1556       for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii) {
1557         const MachineBasicBlock *MBB = JTBBs[ii];
1558         if (!EmittedSets.insert(MBB).second)
1559           continue;
1560 
1561         // .set LJTSet, LBB32-base
1562         const MCExpr *LHS =
1563           MCSymbolRefExpr::create(MBB->getSymbol(), OutContext);
1564         OutStreamer->EmitAssignment(GetJTSetSymbol(JTI, MBB->getNumber()),
1565                                     MCBinaryExpr::createSub(LHS, Base,
1566                                                             OutContext));
1567       }
1568     }
1569 
1570     // On some targets (e.g. Darwin) we want to emit two consecutive labels
1571     // before each jump table.  The first label is never referenced, but tells
1572     // the assembler and linker the extents of the jump table object.  The
1573     // second label is actually referenced by the code.
1574     if (JTInDiffSection && DL.hasLinkerPrivateGlobalPrefix())
1575       // FIXME: This doesn't have to have any specific name, just any randomly
1576       // named and numbered 'l' label would work.  Simplify GetJTISymbol.
1577       OutStreamer->EmitLabel(GetJTISymbol(JTI, true));
1578 
1579     OutStreamer->EmitLabel(GetJTISymbol(JTI));
1580 
1581     for (unsigned ii = 0, ee = JTBBs.size(); ii != ee; ++ii)
1582       EmitJumpTableEntry(MJTI, JTBBs[ii], JTI);
1583   }
1584   if (!JTInDiffSection)
1585     OutStreamer->EmitDataRegion(MCDR_DataRegionEnd);
1586 }
1587 
1588 /// EmitJumpTableEntry - Emit a jump table entry for the specified MBB to the
1589 /// current stream.
1590 void AsmPrinter::EmitJumpTableEntry(const MachineJumpTableInfo *MJTI,
1591                                     const MachineBasicBlock *MBB,
1592                                     unsigned UID) const {
1593   assert(MBB && MBB->getNumber() >= 0 && "Invalid basic block");
1594   const MCExpr *Value = nullptr;
1595   switch (MJTI->getEntryKind()) {
1596   case MachineJumpTableInfo::EK_Inline:
1597     llvm_unreachable("Cannot emit EK_Inline jump table entry");
1598   case MachineJumpTableInfo::EK_Custom32:
1599     Value = MF->getSubtarget().getTargetLowering()->LowerCustomJumpTableEntry(
1600         MJTI, MBB, UID, OutContext);
1601     break;
1602   case MachineJumpTableInfo::EK_BlockAddress:
1603     // EK_BlockAddress - Each entry is a plain address of block, e.g.:
1604     //     .word LBB123
1605     Value = MCSymbolRefExpr::create(MBB->getSymbol(), OutContext);
1606     break;
1607   case MachineJumpTableInfo::EK_GPRel32BlockAddress: {
1608     // EK_GPRel32BlockAddress - Each entry is an address of block, encoded
1609     // with a relocation as gp-relative, e.g.:
1610     //     .gprel32 LBB123
1611     MCSymbol *MBBSym = MBB->getSymbol();
1612     OutStreamer->EmitGPRel32Value(MCSymbolRefExpr::create(MBBSym, OutContext));
1613     return;
1614   }
1615 
1616   case MachineJumpTableInfo::EK_GPRel64BlockAddress: {
1617     // EK_GPRel64BlockAddress - Each entry is an address of block, encoded
1618     // with a relocation as gp-relative, e.g.:
1619     //     .gpdword LBB123
1620     MCSymbol *MBBSym = MBB->getSymbol();
1621     OutStreamer->EmitGPRel64Value(MCSymbolRefExpr::create(MBBSym, OutContext));
1622     return;
1623   }
1624 
1625   case MachineJumpTableInfo::EK_LabelDifference32: {
1626     // Each entry is the address of the block minus the address of the jump
1627     // table. This is used for PIC jump tables where gprel32 is not supported.
1628     // e.g.:
1629     //      .word LBB123 - LJTI1_2
1630     // If the .set directive avoids relocations, this is emitted as:
1631     //      .set L4_5_set_123, LBB123 - LJTI1_2
1632     //      .word L4_5_set_123
1633     if (MAI->doesSetDirectiveSuppressReloc()) {
1634       Value = MCSymbolRefExpr::create(GetJTSetSymbol(UID, MBB->getNumber()),
1635                                       OutContext);
1636       break;
1637     }
1638     Value = MCSymbolRefExpr::create(MBB->getSymbol(), OutContext);
1639     const TargetLowering *TLI = MF->getSubtarget().getTargetLowering();
1640     const MCExpr *Base = TLI->getPICJumpTableRelocBaseExpr(MF, UID, OutContext);
1641     Value = MCBinaryExpr::createSub(Value, Base, OutContext);
1642     break;
1643   }
1644   }
1645 
1646   assert(Value && "Unknown entry kind!");
1647 
1648   unsigned EntrySize = MJTI->getEntrySize(getDataLayout());
1649   OutStreamer->EmitValue(Value, EntrySize);
1650 }
1651 
1652 /// EmitSpecialLLVMGlobal - Check to see if the specified global is a
1653 /// special global used by LLVM.  If so, emit it and return true, otherwise
1654 /// do nothing and return false.
1655 bool AsmPrinter::EmitSpecialLLVMGlobal(const GlobalVariable *GV) {
1656   if (GV->getName() == "llvm.used") {
1657     if (MAI->hasNoDeadStrip())    // No need to emit this at all.
1658       EmitLLVMUsedList(cast<ConstantArray>(GV->getInitializer()));
1659     return true;
1660   }
1661 
1662   // Ignore debug and non-emitted data.  This handles llvm.compiler.used.
1663   if (GV->getSection() == "llvm.metadata" ||
1664       GV->hasAvailableExternallyLinkage())
1665     return true;
1666 
1667   if (!GV->hasAppendingLinkage()) return false;
1668 
1669   assert(GV->hasInitializer() && "Not a special LLVM global!");
1670 
1671   if (GV->getName() == "llvm.global_ctors") {
1672     EmitXXStructorList(GV->getParent()->getDataLayout(), GV->getInitializer(),
1673                        /* isCtor */ true);
1674 
1675     return true;
1676   }
1677 
1678   if (GV->getName() == "llvm.global_dtors") {
1679     EmitXXStructorList(GV->getParent()->getDataLayout(), GV->getInitializer(),
1680                        /* isCtor */ false);
1681 
1682     return true;
1683   }
1684 
1685   report_fatal_error("unknown special variable");
1686 }
1687 
1688 /// EmitLLVMUsedList - For targets that define a MAI::UsedDirective, mark each
1689 /// global in the specified llvm.used list for which emitUsedDirectiveFor
1690 /// is true, as being used with this directive.
1691 void AsmPrinter::EmitLLVMUsedList(const ConstantArray *InitList) {
1692   // Should be an array of 'i8*'.
1693   for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i) {
1694     const GlobalValue *GV =
1695       dyn_cast<GlobalValue>(InitList->getOperand(i)->stripPointerCasts());
1696     if (GV)
1697       OutStreamer->EmitSymbolAttribute(getSymbol(GV), MCSA_NoDeadStrip);
1698   }
1699 }
1700 
1701 namespace {
1702 
1703 struct Structor {
1704   int Priority = 0;
1705   Constant *Func = nullptr;
1706   GlobalValue *ComdatKey = nullptr;
1707 
1708   Structor() = default;
1709 };
1710 
1711 }  // end anonymous namespace
1712 
1713 /// EmitXXStructorList - Emit the ctor or dtor list taking into account the init
1714 /// priority.
1715 void AsmPrinter::EmitXXStructorList(const DataLayout &DL, const Constant *List,
1716                                     bool isCtor) {
1717   // Should be an array of '{ int, void ()* }' structs.  The first value is the
1718   // init priority.
1719   if (!isa<ConstantArray>(List)) return;
1720 
1721   // Sanity check the structors list.
1722   const ConstantArray *InitList = dyn_cast<ConstantArray>(List);
1723   if (!InitList) return; // Not an array!
1724   StructType *ETy = dyn_cast<StructType>(InitList->getType()->getElementType());
1725   // FIXME: Only allow the 3-field form in LLVM 4.0.
1726   if (!ETy || ETy->getNumElements() < 2 || ETy->getNumElements() > 3)
1727     return; // Not an array of two or three elements!
1728   if (!isa<IntegerType>(ETy->getTypeAtIndex(0U)) ||
1729       !isa<PointerType>(ETy->getTypeAtIndex(1U))) return; // Not (int, ptr).
1730   if (ETy->getNumElements() == 3 && !isa<PointerType>(ETy->getTypeAtIndex(2U)))
1731     return; // Not (int, ptr, ptr).
1732 
1733   // Gather the structors in a form that's convenient for sorting by priority.
1734   SmallVector<Structor, 8> Structors;
1735   for (Value *O : InitList->operands()) {
1736     ConstantStruct *CS = dyn_cast<ConstantStruct>(O);
1737     if (!CS) continue; // Malformed.
1738     if (CS->getOperand(1)->isNullValue())
1739       break;  // Found a null terminator, skip the rest.
1740     ConstantInt *Priority = dyn_cast<ConstantInt>(CS->getOperand(0));
1741     if (!Priority) continue; // Malformed.
1742     Structors.push_back(Structor());
1743     Structor &S = Structors.back();
1744     S.Priority = Priority->getLimitedValue(65535);
1745     S.Func = CS->getOperand(1);
1746     if (ETy->getNumElements() == 3 && !CS->getOperand(2)->isNullValue())
1747       S.ComdatKey =
1748           dyn_cast<GlobalValue>(CS->getOperand(2)->stripPointerCasts());
1749   }
1750 
1751   // Emit the function pointers in the target-specific order
1752   unsigned Align = Log2_32(DL.getPointerPrefAlignment());
1753   std::stable_sort(Structors.begin(), Structors.end(),
1754                    [](const Structor &L,
1755                       const Structor &R) { return L.Priority < R.Priority; });
1756   for (Structor &S : Structors) {
1757     const TargetLoweringObjectFile &Obj = getObjFileLowering();
1758     const MCSymbol *KeySym = nullptr;
1759     if (GlobalValue *GV = S.ComdatKey) {
1760       if (GV->isDeclarationForLinker())
1761         // If the associated variable is not defined in this module
1762         // (it might be available_externally, or have been an
1763         // available_externally definition that was dropped by the
1764         // EliminateAvailableExternally pass), some other TU
1765         // will provide its dynamic initializer.
1766         continue;
1767 
1768       KeySym = getSymbol(GV);
1769     }
1770     MCSection *OutputSection =
1771         (isCtor ? Obj.getStaticCtorSection(S.Priority, KeySym)
1772                 : Obj.getStaticDtorSection(S.Priority, KeySym));
1773     OutStreamer->SwitchSection(OutputSection);
1774     if (OutStreamer->getCurrentSection() != OutStreamer->getPreviousSection())
1775       EmitAlignment(Align);
1776     EmitXXStructor(DL, S.Func);
1777   }
1778 }
1779 
1780 void AsmPrinter::EmitModuleIdents(Module &M) {
1781   if (!MAI->hasIdentDirective())
1782     return;
1783 
1784   if (const NamedMDNode *NMD = M.getNamedMetadata("llvm.ident")) {
1785     for (unsigned i = 0, e = NMD->getNumOperands(); i != e; ++i) {
1786       const MDNode *N = NMD->getOperand(i);
1787       assert(N->getNumOperands() == 1 &&
1788              "llvm.ident metadata entry can have only one operand");
1789       const MDString *S = cast<MDString>(N->getOperand(0));
1790       OutStreamer->EmitIdent(S->getString());
1791     }
1792   }
1793 }
1794 
1795 //===--------------------------------------------------------------------===//
1796 // Emission and print routines
1797 //
1798 
1799 /// EmitInt8 - Emit a byte directive and value.
1800 ///
1801 void AsmPrinter::EmitInt8(int Value) const {
1802   OutStreamer->EmitIntValue(Value, 1);
1803 }
1804 
1805 /// EmitInt16 - Emit a short directive and value.
1806 ///
1807 void AsmPrinter::EmitInt16(int Value) const {
1808   OutStreamer->EmitIntValue(Value, 2);
1809 }
1810 
1811 /// EmitInt32 - Emit a long directive and value.
1812 ///
1813 void AsmPrinter::EmitInt32(int Value) const {
1814   OutStreamer->EmitIntValue(Value, 4);
1815 }
1816 
1817 /// Emit something like ".long Hi-Lo" where the size in bytes of the directive
1818 /// is specified by Size and Hi/Lo specify the labels. This implicitly uses
1819 /// .set if it avoids relocations.
1820 void AsmPrinter::EmitLabelDifference(const MCSymbol *Hi, const MCSymbol *Lo,
1821                                      unsigned Size) const {
1822   OutStreamer->emitAbsoluteSymbolDiff(Hi, Lo, Size);
1823 }
1824 
1825 /// EmitLabelPlusOffset - Emit something like ".long Label+Offset"
1826 /// where the size in bytes of the directive is specified by Size and Label
1827 /// specifies the label.  This implicitly uses .set if it is available.
1828 void AsmPrinter::EmitLabelPlusOffset(const MCSymbol *Label, uint64_t Offset,
1829                                      unsigned Size,
1830                                      bool IsSectionRelative) const {
1831   if (MAI->needsDwarfSectionOffsetDirective() && IsSectionRelative) {
1832     OutStreamer->EmitCOFFSecRel32(Label, Offset);
1833     if (Size > 4)
1834       OutStreamer->EmitZeros(Size - 4);
1835     return;
1836   }
1837 
1838   // Emit Label+Offset (or just Label if Offset is zero)
1839   const MCExpr *Expr = MCSymbolRefExpr::create(Label, OutContext);
1840   if (Offset)
1841     Expr = MCBinaryExpr::createAdd(
1842         Expr, MCConstantExpr::create(Offset, OutContext), OutContext);
1843 
1844   OutStreamer->EmitValue(Expr, Size);
1845 }
1846 
1847 //===----------------------------------------------------------------------===//
1848 
1849 // EmitAlignment - Emit an alignment directive to the specified power of
1850 // two boundary.  For example, if you pass in 3 here, you will get an 8
1851 // byte alignment.  If a global value is specified, and if that global has
1852 // an explicit alignment requested, it will override the alignment request
1853 // if required for correctness.
1854 //
1855 void AsmPrinter::EmitAlignment(unsigned NumBits, const GlobalObject *GV) const {
1856   if (GV)
1857     NumBits = getGVAlignmentLog2(GV, GV->getParent()->getDataLayout(), NumBits);
1858 
1859   if (NumBits == 0) return;   // 1-byte aligned: no need to emit alignment.
1860 
1861   assert(NumBits <
1862              static_cast<unsigned>(std::numeric_limits<unsigned>::digits) &&
1863          "undefined behavior");
1864   if (getCurrentSection()->getKind().isText())
1865     OutStreamer->EmitCodeAlignment(1u << NumBits);
1866   else
1867     OutStreamer->EmitValueToAlignment(1u << NumBits);
1868 }
1869 
1870 //===----------------------------------------------------------------------===//
1871 // Constant emission.
1872 //===----------------------------------------------------------------------===//
1873 
1874 const MCExpr *AsmPrinter::lowerConstant(const Constant *CV) {
1875   MCContext &Ctx = OutContext;
1876 
1877   if (CV->isNullValue() || isa<UndefValue>(CV))
1878     return MCConstantExpr::create(0, Ctx);
1879 
1880   if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV))
1881     return MCConstantExpr::create(CI->getZExtValue(), Ctx);
1882 
1883   if (const GlobalValue *GV = dyn_cast<GlobalValue>(CV))
1884     return MCSymbolRefExpr::create(getSymbol(GV), Ctx);
1885 
1886   if (const BlockAddress *BA = dyn_cast<BlockAddress>(CV))
1887     return MCSymbolRefExpr::create(GetBlockAddressSymbol(BA), Ctx);
1888 
1889   const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV);
1890   if (!CE) {
1891     llvm_unreachable("Unknown constant value to lower!");
1892   }
1893 
1894   switch (CE->getOpcode()) {
1895   default:
1896     // If the code isn't optimized, there may be outstanding folding
1897     // opportunities. Attempt to fold the expression using DataLayout as a
1898     // last resort before giving up.
1899     if (Constant *C = ConstantFoldConstant(CE, getDataLayout()))
1900       if (C != CE)
1901         return lowerConstant(C);
1902 
1903     // Otherwise report the problem to the user.
1904     {
1905       std::string S;
1906       raw_string_ostream OS(S);
1907       OS << "Unsupported expression in static initializer: ";
1908       CE->printAsOperand(OS, /*PrintType=*/false,
1909                      !MF ? nullptr : MF->getFunction()->getParent());
1910       report_fatal_error(OS.str());
1911     }
1912   case Instruction::GetElementPtr: {
1913     // Generate a symbolic expression for the byte address
1914     APInt OffsetAI(getDataLayout().getPointerTypeSizeInBits(CE->getType()), 0);
1915     cast<GEPOperator>(CE)->accumulateConstantOffset(getDataLayout(), OffsetAI);
1916 
1917     const MCExpr *Base = lowerConstant(CE->getOperand(0));
1918     if (!OffsetAI)
1919       return Base;
1920 
1921     int64_t Offset = OffsetAI.getSExtValue();
1922     return MCBinaryExpr::createAdd(Base, MCConstantExpr::create(Offset, Ctx),
1923                                    Ctx);
1924   }
1925 
1926   case Instruction::Trunc:
1927     // We emit the value and depend on the assembler to truncate the generated
1928     // expression properly.  This is important for differences between
1929     // blockaddress labels.  Since the two labels are in the same function, it
1930     // is reasonable to treat their delta as a 32-bit value.
1931     LLVM_FALLTHROUGH;
1932   case Instruction::BitCast:
1933     return lowerConstant(CE->getOperand(0));
1934 
1935   case Instruction::IntToPtr: {
1936     const DataLayout &DL = getDataLayout();
1937 
1938     // Handle casts to pointers by changing them into casts to the appropriate
1939     // integer type.  This promotes constant folding and simplifies this code.
1940     Constant *Op = CE->getOperand(0);
1941     Op = ConstantExpr::getIntegerCast(Op, DL.getIntPtrType(CV->getType()),
1942                                       false/*ZExt*/);
1943     return lowerConstant(Op);
1944   }
1945 
1946   case Instruction::PtrToInt: {
1947     const DataLayout &DL = getDataLayout();
1948 
1949     // Support only foldable casts to/from pointers that can be eliminated by
1950     // changing the pointer to the appropriately sized integer type.
1951     Constant *Op = CE->getOperand(0);
1952     Type *Ty = CE->getType();
1953 
1954     const MCExpr *OpExpr = lowerConstant(Op);
1955 
1956     // We can emit the pointer value into this slot if the slot is an
1957     // integer slot equal to the size of the pointer.
1958     if (DL.getTypeAllocSize(Ty) == DL.getTypeAllocSize(Op->getType()))
1959       return OpExpr;
1960 
1961     // Otherwise the pointer is smaller than the resultant integer, mask off
1962     // the high bits so we are sure to get a proper truncation if the input is
1963     // a constant expr.
1964     unsigned InBits = DL.getTypeAllocSizeInBits(Op->getType());
1965     const MCExpr *MaskExpr = MCConstantExpr::create(~0ULL >> (64-InBits), Ctx);
1966     return MCBinaryExpr::createAnd(OpExpr, MaskExpr, Ctx);
1967   }
1968 
1969   case Instruction::Sub: {
1970     GlobalValue *LHSGV;
1971     APInt LHSOffset;
1972     if (IsConstantOffsetFromGlobal(CE->getOperand(0), LHSGV, LHSOffset,
1973                                    getDataLayout())) {
1974       GlobalValue *RHSGV;
1975       APInt RHSOffset;
1976       if (IsConstantOffsetFromGlobal(CE->getOperand(1), RHSGV, RHSOffset,
1977                                      getDataLayout())) {
1978         const MCExpr *RelocExpr =
1979             getObjFileLowering().lowerRelativeReference(LHSGV, RHSGV, TM);
1980         if (!RelocExpr)
1981           RelocExpr = MCBinaryExpr::createSub(
1982               MCSymbolRefExpr::create(getSymbol(LHSGV), Ctx),
1983               MCSymbolRefExpr::create(getSymbol(RHSGV), Ctx), Ctx);
1984         int64_t Addend = (LHSOffset - RHSOffset).getSExtValue();
1985         if (Addend != 0)
1986           RelocExpr = MCBinaryExpr::createAdd(
1987               RelocExpr, MCConstantExpr::create(Addend, Ctx), Ctx);
1988         return RelocExpr;
1989       }
1990     }
1991   }
1992   // else fallthrough
1993 
1994   // The MC library also has a right-shift operator, but it isn't consistently
1995   // signed or unsigned between different targets.
1996   case Instruction::Add:
1997   case Instruction::Mul:
1998   case Instruction::SDiv:
1999   case Instruction::SRem:
2000   case Instruction::Shl:
2001   case Instruction::And:
2002   case Instruction::Or:
2003   case Instruction::Xor: {
2004     const MCExpr *LHS = lowerConstant(CE->getOperand(0));
2005     const MCExpr *RHS = lowerConstant(CE->getOperand(1));
2006     switch (CE->getOpcode()) {
2007     default: llvm_unreachable("Unknown binary operator constant cast expr");
2008     case Instruction::Add: return MCBinaryExpr::createAdd(LHS, RHS, Ctx);
2009     case Instruction::Sub: return MCBinaryExpr::createSub(LHS, RHS, Ctx);
2010     case Instruction::Mul: return MCBinaryExpr::createMul(LHS, RHS, Ctx);
2011     case Instruction::SDiv: return MCBinaryExpr::createDiv(LHS, RHS, Ctx);
2012     case Instruction::SRem: return MCBinaryExpr::createMod(LHS, RHS, Ctx);
2013     case Instruction::Shl: return MCBinaryExpr::createShl(LHS, RHS, Ctx);
2014     case Instruction::And: return MCBinaryExpr::createAnd(LHS, RHS, Ctx);
2015     case Instruction::Or:  return MCBinaryExpr::createOr (LHS, RHS, Ctx);
2016     case Instruction::Xor: return MCBinaryExpr::createXor(LHS, RHS, Ctx);
2017     }
2018   }
2019   }
2020 }
2021 
2022 static void emitGlobalConstantImpl(const DataLayout &DL, const Constant *C,
2023                                    AsmPrinter &AP,
2024                                    const Constant *BaseCV = nullptr,
2025                                    uint64_t Offset = 0);
2026 
2027 static void emitGlobalConstantFP(const ConstantFP *CFP, AsmPrinter &AP);
2028 
2029 /// isRepeatedByteSequence - Determine whether the given value is
2030 /// composed of a repeated sequence of identical bytes and return the
2031 /// byte value.  If it is not a repeated sequence, return -1.
2032 static int isRepeatedByteSequence(const ConstantDataSequential *V) {
2033   StringRef Data = V->getRawDataValues();
2034   assert(!Data.empty() && "Empty aggregates should be CAZ node");
2035   char C = Data[0];
2036   for (unsigned i = 1, e = Data.size(); i != e; ++i)
2037     if (Data[i] != C) return -1;
2038   return static_cast<uint8_t>(C); // Ensure 255 is not returned as -1.
2039 }
2040 
2041 /// isRepeatedByteSequence - Determine whether the given value is
2042 /// composed of a repeated sequence of identical bytes and return the
2043 /// byte value.  If it is not a repeated sequence, return -1.
2044 static int isRepeatedByteSequence(const Value *V, const DataLayout &DL) {
2045   if (const ConstantInt *CI = dyn_cast<ConstantInt>(V)) {
2046     uint64_t Size = DL.getTypeAllocSizeInBits(V->getType());
2047     assert(Size % 8 == 0);
2048 
2049     // Extend the element to take zero padding into account.
2050     APInt Value = CI->getValue().zextOrSelf(Size);
2051     if (!Value.isSplat(8))
2052       return -1;
2053 
2054     return Value.zextOrTrunc(8).getZExtValue();
2055   }
2056   if (const ConstantArray *CA = dyn_cast<ConstantArray>(V)) {
2057     // Make sure all array elements are sequences of the same repeated
2058     // byte.
2059     assert(CA->getNumOperands() != 0 && "Should be a CAZ");
2060     Constant *Op0 = CA->getOperand(0);
2061     int Byte = isRepeatedByteSequence(Op0, DL);
2062     if (Byte == -1)
2063       return -1;
2064 
2065     // All array elements must be equal.
2066     for (unsigned i = 1, e = CA->getNumOperands(); i != e; ++i)
2067       if (CA->getOperand(i) != Op0)
2068         return -1;
2069     return Byte;
2070   }
2071 
2072   if (const ConstantDataSequential *CDS = dyn_cast<ConstantDataSequential>(V))
2073     return isRepeatedByteSequence(CDS);
2074 
2075   return -1;
2076 }
2077 
2078 static void emitGlobalConstantDataSequential(const DataLayout &DL,
2079                                              const ConstantDataSequential *CDS,
2080                                              AsmPrinter &AP) {
2081   // See if we can aggregate this into a .fill, if so, emit it as such.
2082   int Value = isRepeatedByteSequence(CDS, DL);
2083   if (Value != -1) {
2084     uint64_t Bytes = DL.getTypeAllocSize(CDS->getType());
2085     // Don't emit a 1-byte object as a .fill.
2086     if (Bytes > 1)
2087       return AP.OutStreamer->emitFill(Bytes, Value);
2088   }
2089 
2090   // If this can be emitted with .ascii/.asciz, emit it as such.
2091   if (CDS->isString())
2092     return AP.OutStreamer->EmitBytes(CDS->getAsString());
2093 
2094   // Otherwise, emit the values in successive locations.
2095   unsigned ElementByteSize = CDS->getElementByteSize();
2096   if (isa<IntegerType>(CDS->getElementType())) {
2097     for (unsigned i = 0, e = CDS->getNumElements(); i != e; ++i) {
2098       if (AP.isVerbose())
2099         AP.OutStreamer->GetCommentOS() << format("0x%" PRIx64 "\n",
2100                                                  CDS->getElementAsInteger(i));
2101       AP.OutStreamer->EmitIntValue(CDS->getElementAsInteger(i),
2102                                    ElementByteSize);
2103     }
2104   } else {
2105     for (unsigned I = 0, E = CDS->getNumElements(); I != E; ++I)
2106       emitGlobalConstantFP(cast<ConstantFP>(CDS->getElementAsConstant(I)), AP);
2107   }
2108 
2109   unsigned Size = DL.getTypeAllocSize(CDS->getType());
2110   unsigned EmittedSize = DL.getTypeAllocSize(CDS->getType()->getElementType()) *
2111                         CDS->getNumElements();
2112   if (unsigned Padding = Size - EmittedSize)
2113     AP.OutStreamer->EmitZeros(Padding);
2114 }
2115 
2116 static void emitGlobalConstantArray(const DataLayout &DL,
2117                                     const ConstantArray *CA, AsmPrinter &AP,
2118                                     const Constant *BaseCV, uint64_t Offset) {
2119   // See if we can aggregate some values.  Make sure it can be
2120   // represented as a series of bytes of the constant value.
2121   int Value = isRepeatedByteSequence(CA, DL);
2122 
2123   if (Value != -1) {
2124     uint64_t Bytes = DL.getTypeAllocSize(CA->getType());
2125     AP.OutStreamer->emitFill(Bytes, Value);
2126   }
2127   else {
2128     for (unsigned i = 0, e = CA->getNumOperands(); i != e; ++i) {
2129       emitGlobalConstantImpl(DL, CA->getOperand(i), AP, BaseCV, Offset);
2130       Offset += DL.getTypeAllocSize(CA->getOperand(i)->getType());
2131     }
2132   }
2133 }
2134 
2135 static void emitGlobalConstantVector(const DataLayout &DL,
2136                                      const ConstantVector *CV, AsmPrinter &AP) {
2137   for (unsigned i = 0, e = CV->getType()->getNumElements(); i != e; ++i)
2138     emitGlobalConstantImpl(DL, CV->getOperand(i), AP);
2139 
2140   unsigned Size = DL.getTypeAllocSize(CV->getType());
2141   unsigned EmittedSize = DL.getTypeAllocSize(CV->getType()->getElementType()) *
2142                          CV->getType()->getNumElements();
2143   if (unsigned Padding = Size - EmittedSize)
2144     AP.OutStreamer->EmitZeros(Padding);
2145 }
2146 
2147 static void emitGlobalConstantStruct(const DataLayout &DL,
2148                                      const ConstantStruct *CS, AsmPrinter &AP,
2149                                      const Constant *BaseCV, uint64_t Offset) {
2150   // Print the fields in successive locations. Pad to align if needed!
2151   unsigned Size = DL.getTypeAllocSize(CS->getType());
2152   const StructLayout *Layout = DL.getStructLayout(CS->getType());
2153   uint64_t SizeSoFar = 0;
2154   for (unsigned i = 0, e = CS->getNumOperands(); i != e; ++i) {
2155     const Constant *Field = CS->getOperand(i);
2156 
2157     // Print the actual field value.
2158     emitGlobalConstantImpl(DL, Field, AP, BaseCV, Offset + SizeSoFar);
2159 
2160     // Check if padding is needed and insert one or more 0s.
2161     uint64_t FieldSize = DL.getTypeAllocSize(Field->getType());
2162     uint64_t PadSize = ((i == e-1 ? Size : Layout->getElementOffset(i+1))
2163                         - Layout->getElementOffset(i)) - FieldSize;
2164     SizeSoFar += FieldSize + PadSize;
2165 
2166     // Insert padding - this may include padding to increase the size of the
2167     // current field up to the ABI size (if the struct is not packed) as well
2168     // as padding to ensure that the next field starts at the right offset.
2169     AP.OutStreamer->EmitZeros(PadSize);
2170   }
2171   assert(SizeSoFar == Layout->getSizeInBytes() &&
2172          "Layout of constant struct may be incorrect!");
2173 }
2174 
2175 static void emitGlobalConstantFP(const ConstantFP *CFP, AsmPrinter &AP) {
2176   APInt API = CFP->getValueAPF().bitcastToAPInt();
2177 
2178   // First print a comment with what we think the original floating-point value
2179   // should have been.
2180   if (AP.isVerbose()) {
2181     SmallString<8> StrVal;
2182     CFP->getValueAPF().toString(StrVal);
2183 
2184     if (CFP->getType())
2185       CFP->getType()->print(AP.OutStreamer->GetCommentOS());
2186     else
2187       AP.OutStreamer->GetCommentOS() << "Printing <null> Type";
2188     AP.OutStreamer->GetCommentOS() << ' ' << StrVal << '\n';
2189   }
2190 
2191   // Now iterate through the APInt chunks, emitting them in endian-correct
2192   // order, possibly with a smaller chunk at beginning/end (e.g. for x87 80-bit
2193   // floats).
2194   unsigned NumBytes = API.getBitWidth() / 8;
2195   unsigned TrailingBytes = NumBytes % sizeof(uint64_t);
2196   const uint64_t *p = API.getRawData();
2197 
2198   // PPC's long double has odd notions of endianness compared to how LLVM
2199   // handles it: p[0] goes first for *big* endian on PPC.
2200   if (AP.getDataLayout().isBigEndian() && !CFP->getType()->isPPC_FP128Ty()) {
2201     int Chunk = API.getNumWords() - 1;
2202 
2203     if (TrailingBytes)
2204       AP.OutStreamer->EmitIntValue(p[Chunk--], TrailingBytes);
2205 
2206     for (; Chunk >= 0; --Chunk)
2207       AP.OutStreamer->EmitIntValue(p[Chunk], sizeof(uint64_t));
2208   } else {
2209     unsigned Chunk;
2210     for (Chunk = 0; Chunk < NumBytes / sizeof(uint64_t); ++Chunk)
2211       AP.OutStreamer->EmitIntValue(p[Chunk], sizeof(uint64_t));
2212 
2213     if (TrailingBytes)
2214       AP.OutStreamer->EmitIntValue(p[Chunk], TrailingBytes);
2215   }
2216 
2217   // Emit the tail padding for the long double.
2218   const DataLayout &DL = AP.getDataLayout();
2219   AP.OutStreamer->EmitZeros(DL.getTypeAllocSize(CFP->getType()) -
2220                             DL.getTypeStoreSize(CFP->getType()));
2221 }
2222 
2223 static void emitGlobalConstantLargeInt(const ConstantInt *CI, AsmPrinter &AP) {
2224   const DataLayout &DL = AP.getDataLayout();
2225   unsigned BitWidth = CI->getBitWidth();
2226 
2227   // Copy the value as we may massage the layout for constants whose bit width
2228   // is not a multiple of 64-bits.
2229   APInt Realigned(CI->getValue());
2230   uint64_t ExtraBits = 0;
2231   unsigned ExtraBitsSize = BitWidth & 63;
2232 
2233   if (ExtraBitsSize) {
2234     // The bit width of the data is not a multiple of 64-bits.
2235     // The extra bits are expected to be at the end of the chunk of the memory.
2236     // Little endian:
2237     // * Nothing to be done, just record the extra bits to emit.
2238     // Big endian:
2239     // * Record the extra bits to emit.
2240     // * Realign the raw data to emit the chunks of 64-bits.
2241     if (DL.isBigEndian()) {
2242       // Basically the structure of the raw data is a chunk of 64-bits cells:
2243       //    0        1         BitWidth / 64
2244       // [chunk1][chunk2] ... [chunkN].
2245       // The most significant chunk is chunkN and it should be emitted first.
2246       // However, due to the alignment issue chunkN contains useless bits.
2247       // Realign the chunks so that they contain only useless information:
2248       // ExtraBits     0       1       (BitWidth / 64) - 1
2249       //       chu[nk1 chu][nk2 chu] ... [nkN-1 chunkN]
2250       ExtraBits = Realigned.getRawData()[0] &
2251         (((uint64_t)-1) >> (64 - ExtraBitsSize));
2252       Realigned.lshrInPlace(ExtraBitsSize);
2253     } else
2254       ExtraBits = Realigned.getRawData()[BitWidth / 64];
2255   }
2256 
2257   // We don't expect assemblers to support integer data directives
2258   // for more than 64 bits, so we emit the data in at most 64-bit
2259   // quantities at a time.
2260   const uint64_t *RawData = Realigned.getRawData();
2261   for (unsigned i = 0, e = BitWidth / 64; i != e; ++i) {
2262     uint64_t Val = DL.isBigEndian() ? RawData[e - i - 1] : RawData[i];
2263     AP.OutStreamer->EmitIntValue(Val, 8);
2264   }
2265 
2266   if (ExtraBitsSize) {
2267     // Emit the extra bits after the 64-bits chunks.
2268 
2269     // Emit a directive that fills the expected size.
2270     uint64_t Size = AP.getDataLayout().getTypeAllocSize(CI->getType());
2271     Size -= (BitWidth / 64) * 8;
2272     assert(Size && Size * 8 >= ExtraBitsSize &&
2273            (ExtraBits & (((uint64_t)-1) >> (64 - ExtraBitsSize)))
2274            == ExtraBits && "Directive too small for extra bits.");
2275     AP.OutStreamer->EmitIntValue(ExtraBits, Size);
2276   }
2277 }
2278 
2279 /// \brief Transform a not absolute MCExpr containing a reference to a GOT
2280 /// equivalent global, by a target specific GOT pc relative access to the
2281 /// final symbol.
2282 static void handleIndirectSymViaGOTPCRel(AsmPrinter &AP, const MCExpr **ME,
2283                                          const Constant *BaseCst,
2284                                          uint64_t Offset) {
2285   // The global @foo below illustrates a global that uses a got equivalent.
2286   //
2287   //  @bar = global i32 42
2288   //  @gotequiv = private unnamed_addr constant i32* @bar
2289   //  @foo = i32 trunc (i64 sub (i64 ptrtoint (i32** @gotequiv to i64),
2290   //                             i64 ptrtoint (i32* @foo to i64))
2291   //                        to i32)
2292   //
2293   // The cstexpr in @foo is converted into the MCExpr `ME`, where we actually
2294   // check whether @foo is suitable to use a GOTPCREL. `ME` is usually in the
2295   // form:
2296   //
2297   //  foo = cstexpr, where
2298   //    cstexpr := <gotequiv> - "." + <cst>
2299   //    cstexpr := <gotequiv> - (<foo> - <offset from @foo base>) + <cst>
2300   //
2301   // After canonicalization by evaluateAsRelocatable `ME` turns into:
2302   //
2303   //  cstexpr := <gotequiv> - <foo> + gotpcrelcst, where
2304   //    gotpcrelcst := <offset from @foo base> + <cst>
2305   //
2306   MCValue MV;
2307   if (!(*ME)->evaluateAsRelocatable(MV, nullptr, nullptr) || MV.isAbsolute())
2308     return;
2309   const MCSymbolRefExpr *SymA = MV.getSymA();
2310   if (!SymA)
2311     return;
2312 
2313   // Check that GOT equivalent symbol is cached.
2314   const MCSymbol *GOTEquivSym = &SymA->getSymbol();
2315   if (!AP.GlobalGOTEquivs.count(GOTEquivSym))
2316     return;
2317 
2318   const GlobalValue *BaseGV = dyn_cast_or_null<GlobalValue>(BaseCst);
2319   if (!BaseGV)
2320     return;
2321 
2322   // Check for a valid base symbol
2323   const MCSymbol *BaseSym = AP.getSymbol(BaseGV);
2324   const MCSymbolRefExpr *SymB = MV.getSymB();
2325 
2326   if (!SymB || BaseSym != &SymB->getSymbol())
2327     return;
2328 
2329   // Make sure to match:
2330   //
2331   //    gotpcrelcst := <offset from @foo base> + <cst>
2332   //
2333   // If gotpcrelcst is positive it means that we can safely fold the pc rel
2334   // displacement into the GOTPCREL. We can also can have an extra offset <cst>
2335   // if the target knows how to encode it.
2336   //
2337   int64_t GOTPCRelCst = Offset + MV.getConstant();
2338   if (GOTPCRelCst < 0)
2339     return;
2340   if (!AP.getObjFileLowering().supportGOTPCRelWithOffset() && GOTPCRelCst != 0)
2341     return;
2342 
2343   // Emit the GOT PC relative to replace the got equivalent global, i.e.:
2344   //
2345   //  bar:
2346   //    .long 42
2347   //  gotequiv:
2348   //    .quad bar
2349   //  foo:
2350   //    .long gotequiv - "." + <cst>
2351   //
2352   // is replaced by the target specific equivalent to:
2353   //
2354   //  bar:
2355   //    .long 42
2356   //  foo:
2357   //    .long bar@GOTPCREL+<gotpcrelcst>
2358   //
2359   AsmPrinter::GOTEquivUsePair Result = AP.GlobalGOTEquivs[GOTEquivSym];
2360   const GlobalVariable *GV = Result.first;
2361   int NumUses = (int)Result.second;
2362   const GlobalValue *FinalGV = dyn_cast<GlobalValue>(GV->getOperand(0));
2363   const MCSymbol *FinalSym = AP.getSymbol(FinalGV);
2364   *ME = AP.getObjFileLowering().getIndirectSymViaGOTPCRel(
2365       FinalSym, MV, Offset, AP.MMI, *AP.OutStreamer);
2366 
2367   // Update GOT equivalent usage information
2368   --NumUses;
2369   if (NumUses >= 0)
2370     AP.GlobalGOTEquivs[GOTEquivSym] = std::make_pair(GV, NumUses);
2371 }
2372 
2373 static void emitGlobalConstantImpl(const DataLayout &DL, const Constant *CV,
2374                                    AsmPrinter &AP, const Constant *BaseCV,
2375                                    uint64_t Offset) {
2376   uint64_t Size = DL.getTypeAllocSize(CV->getType());
2377 
2378   // Globals with sub-elements such as combinations of arrays and structs
2379   // are handled recursively by emitGlobalConstantImpl. Keep track of the
2380   // constant symbol base and the current position with BaseCV and Offset.
2381   if (!BaseCV && CV->hasOneUse())
2382     BaseCV = dyn_cast<Constant>(CV->user_back());
2383 
2384   if (isa<ConstantAggregateZero>(CV) || isa<UndefValue>(CV))
2385     return AP.OutStreamer->EmitZeros(Size);
2386 
2387   if (const ConstantInt *CI = dyn_cast<ConstantInt>(CV)) {
2388     switch (Size) {
2389     case 1:
2390     case 2:
2391     case 4:
2392     case 8:
2393       if (AP.isVerbose())
2394         AP.OutStreamer->GetCommentOS() << format("0x%" PRIx64 "\n",
2395                                                  CI->getZExtValue());
2396       AP.OutStreamer->EmitIntValue(CI->getZExtValue(), Size);
2397       return;
2398     default:
2399       emitGlobalConstantLargeInt(CI, AP);
2400       return;
2401     }
2402   }
2403 
2404   if (const ConstantFP *CFP = dyn_cast<ConstantFP>(CV))
2405     return emitGlobalConstantFP(CFP, AP);
2406 
2407   if (isa<ConstantPointerNull>(CV)) {
2408     AP.OutStreamer->EmitIntValue(0, Size);
2409     return;
2410   }
2411 
2412   if (const ConstantDataSequential *CDS = dyn_cast<ConstantDataSequential>(CV))
2413     return emitGlobalConstantDataSequential(DL, CDS, AP);
2414 
2415   if (const ConstantArray *CVA = dyn_cast<ConstantArray>(CV))
2416     return emitGlobalConstantArray(DL, CVA, AP, BaseCV, Offset);
2417 
2418   if (const ConstantStruct *CVS = dyn_cast<ConstantStruct>(CV))
2419     return emitGlobalConstantStruct(DL, CVS, AP, BaseCV, Offset);
2420 
2421   if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CV)) {
2422     // Look through bitcasts, which might not be able to be MCExpr'ized (e.g. of
2423     // vectors).
2424     if (CE->getOpcode() == Instruction::BitCast)
2425       return emitGlobalConstantImpl(DL, CE->getOperand(0), AP);
2426 
2427     if (Size > 8) {
2428       // If the constant expression's size is greater than 64-bits, then we have
2429       // to emit the value in chunks. Try to constant fold the value and emit it
2430       // that way.
2431       Constant *New = ConstantFoldConstant(CE, DL);
2432       if (New && New != CE)
2433         return emitGlobalConstantImpl(DL, New, AP);
2434     }
2435   }
2436 
2437   if (const ConstantVector *V = dyn_cast<ConstantVector>(CV))
2438     return emitGlobalConstantVector(DL, V, AP);
2439 
2440   // Otherwise, it must be a ConstantExpr.  Lower it to an MCExpr, then emit it
2441   // thread the streamer with EmitValue.
2442   const MCExpr *ME = AP.lowerConstant(CV);
2443 
2444   // Since lowerConstant already folded and got rid of all IR pointer and
2445   // integer casts, detect GOT equivalent accesses by looking into the MCExpr
2446   // directly.
2447   if (AP.getObjFileLowering().supportIndirectSymViaGOTPCRel())
2448     handleIndirectSymViaGOTPCRel(AP, &ME, BaseCV, Offset);
2449 
2450   AP.OutStreamer->EmitValue(ME, Size);
2451 }
2452 
2453 /// EmitGlobalConstant - Print a general LLVM constant to the .s file.
2454 void AsmPrinter::EmitGlobalConstant(const DataLayout &DL, const Constant *CV) {
2455   uint64_t Size = DL.getTypeAllocSize(CV->getType());
2456   if (Size)
2457     emitGlobalConstantImpl(DL, CV, *this);
2458   else if (MAI->hasSubsectionsViaSymbols()) {
2459     // If the global has zero size, emit a single byte so that two labels don't
2460     // look like they are at the same location.
2461     OutStreamer->EmitIntValue(0, 1);
2462   }
2463 }
2464 
2465 void AsmPrinter::EmitMachineConstantPoolValue(MachineConstantPoolValue *MCPV) {
2466   // Target doesn't support this yet!
2467   llvm_unreachable("Target does not support EmitMachineConstantPoolValue");
2468 }
2469 
2470 void AsmPrinter::printOffset(int64_t Offset, raw_ostream &OS) const {
2471   if (Offset > 0)
2472     OS << '+' << Offset;
2473   else if (Offset < 0)
2474     OS << Offset;
2475 }
2476 
2477 //===----------------------------------------------------------------------===//
2478 // Symbol Lowering Routines.
2479 //===----------------------------------------------------------------------===//
2480 
2481 MCSymbol *AsmPrinter::createTempSymbol(const Twine &Name) const {
2482   return OutContext.createTempSymbol(Name, true);
2483 }
2484 
2485 MCSymbol *AsmPrinter::GetBlockAddressSymbol(const BlockAddress *BA) const {
2486   return MMI->getAddrLabelSymbol(BA->getBasicBlock());
2487 }
2488 
2489 MCSymbol *AsmPrinter::GetBlockAddressSymbol(const BasicBlock *BB) const {
2490   return MMI->getAddrLabelSymbol(BB);
2491 }
2492 
2493 /// GetCPISymbol - Return the symbol for the specified constant pool entry.
2494 MCSymbol *AsmPrinter::GetCPISymbol(unsigned CPID) const {
2495   const DataLayout &DL = getDataLayout();
2496   return OutContext.getOrCreateSymbol(Twine(DL.getPrivateGlobalPrefix()) +
2497                                       "CPI" + Twine(getFunctionNumber()) + "_" +
2498                                       Twine(CPID));
2499 }
2500 
2501 /// GetJTISymbol - Return the symbol for the specified jump table entry.
2502 MCSymbol *AsmPrinter::GetJTISymbol(unsigned JTID, bool isLinkerPrivate) const {
2503   return MF->getJTISymbol(JTID, OutContext, isLinkerPrivate);
2504 }
2505 
2506 /// GetJTSetSymbol - Return the symbol for the specified jump table .set
2507 /// FIXME: privatize to AsmPrinter.
2508 MCSymbol *AsmPrinter::GetJTSetSymbol(unsigned UID, unsigned MBBID) const {
2509   const DataLayout &DL = getDataLayout();
2510   return OutContext.getOrCreateSymbol(Twine(DL.getPrivateGlobalPrefix()) +
2511                                       Twine(getFunctionNumber()) + "_" +
2512                                       Twine(UID) + "_set_" + Twine(MBBID));
2513 }
2514 
2515 MCSymbol *AsmPrinter::getSymbolWithGlobalValueBase(const GlobalValue *GV,
2516                                                    StringRef Suffix) const {
2517   return getObjFileLowering().getSymbolWithGlobalValueBase(GV, Suffix, TM);
2518 }
2519 
2520 /// Return the MCSymbol for the specified ExternalSymbol.
2521 MCSymbol *AsmPrinter::GetExternalSymbolSymbol(StringRef Sym) const {
2522   SmallString<60> NameStr;
2523   Mangler::getNameWithPrefix(NameStr, Sym, getDataLayout());
2524   return OutContext.getOrCreateSymbol(NameStr);
2525 }
2526 
2527 /// PrintParentLoopComment - Print comments about parent loops of this one.
2528 static void PrintParentLoopComment(raw_ostream &OS, const MachineLoop *Loop,
2529                                    unsigned FunctionNumber) {
2530   if (!Loop) return;
2531   PrintParentLoopComment(OS, Loop->getParentLoop(), FunctionNumber);
2532   OS.indent(Loop->getLoopDepth()*2)
2533     << "Parent Loop BB" << FunctionNumber << "_"
2534     << Loop->getHeader()->getNumber()
2535     << " Depth=" << Loop->getLoopDepth() << '\n';
2536 }
2537 
2538 
2539 /// PrintChildLoopComment - Print comments about child loops within
2540 /// the loop for this basic block, with nesting.
2541 static void PrintChildLoopComment(raw_ostream &OS, const MachineLoop *Loop,
2542                                   unsigned FunctionNumber) {
2543   // Add child loop information
2544   for (const MachineLoop *CL : *Loop) {
2545     OS.indent(CL->getLoopDepth()*2)
2546       << "Child Loop BB" << FunctionNumber << "_"
2547       << CL->getHeader()->getNumber() << " Depth " << CL->getLoopDepth()
2548       << '\n';
2549     PrintChildLoopComment(OS, CL, FunctionNumber);
2550   }
2551 }
2552 
2553 /// emitBasicBlockLoopComments - Pretty-print comments for basic blocks.
2554 static void emitBasicBlockLoopComments(const MachineBasicBlock &MBB,
2555                                        const MachineLoopInfo *LI,
2556                                        const AsmPrinter &AP) {
2557   // Add loop depth information
2558   const MachineLoop *Loop = LI->getLoopFor(&MBB);
2559   if (!Loop) return;
2560 
2561   MachineBasicBlock *Header = Loop->getHeader();
2562   assert(Header && "No header for loop");
2563 
2564   // If this block is not a loop header, just print out what is the loop header
2565   // and return.
2566   if (Header != &MBB) {
2567     AP.OutStreamer->AddComment("  in Loop: Header=BB" +
2568                                Twine(AP.getFunctionNumber())+"_" +
2569                                Twine(Loop->getHeader()->getNumber())+
2570                                " Depth="+Twine(Loop->getLoopDepth()));
2571     return;
2572   }
2573 
2574   // Otherwise, it is a loop header.  Print out information about child and
2575   // parent loops.
2576   raw_ostream &OS = AP.OutStreamer->GetCommentOS();
2577 
2578   PrintParentLoopComment(OS, Loop->getParentLoop(), AP.getFunctionNumber());
2579 
2580   OS << "=>";
2581   OS.indent(Loop->getLoopDepth()*2-2);
2582 
2583   OS << "This ";
2584   if (Loop->empty())
2585     OS << "Inner ";
2586   OS << "Loop Header: Depth=" + Twine(Loop->getLoopDepth()) << '\n';
2587 
2588   PrintChildLoopComment(OS, Loop, AP.getFunctionNumber());
2589 }
2590 
2591 /// EmitBasicBlockStart - This method prints the label for the specified
2592 /// MachineBasicBlock, an alignment (if present) and a comment describing
2593 /// it if appropriate.
2594 void AsmPrinter::EmitBasicBlockStart(const MachineBasicBlock &MBB) const {
2595   // End the previous funclet and start a new one.
2596   if (MBB.isEHFuncletEntry()) {
2597     for (const HandlerInfo &HI : Handlers) {
2598       HI.Handler->endFunclet();
2599       HI.Handler->beginFunclet(MBB);
2600     }
2601   }
2602 
2603   // Emit an alignment directive for this block, if needed.
2604   if (unsigned Align = MBB.getAlignment())
2605     EmitAlignment(Align);
2606 
2607   // If the block has its address taken, emit any labels that were used to
2608   // reference the block.  It is possible that there is more than one label
2609   // here, because multiple LLVM BB's may have been RAUW'd to this block after
2610   // the references were generated.
2611   if (MBB.hasAddressTaken()) {
2612     const BasicBlock *BB = MBB.getBasicBlock();
2613     if (isVerbose())
2614       OutStreamer->AddComment("Block address taken");
2615 
2616     // MBBs can have their address taken as part of CodeGen without having
2617     // their corresponding BB's address taken in IR
2618     if (BB->hasAddressTaken())
2619       for (MCSymbol *Sym : MMI->getAddrLabelSymbolToEmit(BB))
2620         OutStreamer->EmitLabel(Sym);
2621   }
2622 
2623   // Print some verbose block comments.
2624   if (isVerbose()) {
2625     if (const BasicBlock *BB = MBB.getBasicBlock()) {
2626       if (BB->hasName()) {
2627         BB->printAsOperand(OutStreamer->GetCommentOS(),
2628                            /*PrintType=*/false, BB->getModule());
2629         OutStreamer->GetCommentOS() << '\n';
2630       }
2631     }
2632     emitBasicBlockLoopComments(MBB, LI, *this);
2633   }
2634 
2635   // Print the main label for the block.
2636   if (MBB.pred_empty() ||
2637       (isBlockOnlyReachableByFallthrough(&MBB) && !MBB.isEHFuncletEntry())) {
2638     if (isVerbose()) {
2639       // NOTE: Want this comment at start of line, don't emit with AddComment.
2640       OutStreamer->emitRawComment(" BB#" + Twine(MBB.getNumber()) + ":", false);
2641     }
2642   } else {
2643     OutStreamer->EmitLabel(MBB.getSymbol());
2644   }
2645 }
2646 
2647 void AsmPrinter::EmitVisibility(MCSymbol *Sym, unsigned Visibility,
2648                                 bool IsDefinition) const {
2649   MCSymbolAttr Attr = MCSA_Invalid;
2650 
2651   switch (Visibility) {
2652   default: break;
2653   case GlobalValue::HiddenVisibility:
2654     if (IsDefinition)
2655       Attr = MAI->getHiddenVisibilityAttr();
2656     else
2657       Attr = MAI->getHiddenDeclarationVisibilityAttr();
2658     break;
2659   case GlobalValue::ProtectedVisibility:
2660     Attr = MAI->getProtectedVisibilityAttr();
2661     break;
2662   }
2663 
2664   if (Attr != MCSA_Invalid)
2665     OutStreamer->EmitSymbolAttribute(Sym, Attr);
2666 }
2667 
2668 /// isBlockOnlyReachableByFallthough - Return true if the basic block has
2669 /// exactly one predecessor and the control transfer mechanism between
2670 /// the predecessor and this block is a fall-through.
2671 bool AsmPrinter::
2672 isBlockOnlyReachableByFallthrough(const MachineBasicBlock *MBB) const {
2673   // If this is a landing pad, it isn't a fall through.  If it has no preds,
2674   // then nothing falls through to it.
2675   if (MBB->isEHPad() || MBB->pred_empty())
2676     return false;
2677 
2678   // If there isn't exactly one predecessor, it can't be a fall through.
2679   if (MBB->pred_size() > 1)
2680     return false;
2681 
2682   // The predecessor has to be immediately before this block.
2683   MachineBasicBlock *Pred = *MBB->pred_begin();
2684   if (!Pred->isLayoutSuccessor(MBB))
2685     return false;
2686 
2687   // If the block is completely empty, then it definitely does fall through.
2688   if (Pred->empty())
2689     return true;
2690 
2691   // Check the terminators in the previous blocks
2692   for (const auto &MI : Pred->terminators()) {
2693     // If it is not a simple branch, we are in a table somewhere.
2694     if (!MI.isBranch() || MI.isIndirectBranch())
2695       return false;
2696 
2697     // If we are the operands of one of the branches, this is not a fall
2698     // through. Note that targets with delay slots will usually bundle
2699     // terminators with the delay slot instruction.
2700     for (ConstMIBundleOperands OP(MI); OP.isValid(); ++OP) {
2701       if (OP->isJTI())
2702         return false;
2703       if (OP->isMBB() && OP->getMBB() == MBB)
2704         return false;
2705     }
2706   }
2707 
2708   return true;
2709 }
2710 
2711 GCMetadataPrinter *AsmPrinter::GetOrCreateGCPrinter(GCStrategy &S) {
2712   if (!S.usesMetadata())
2713     return nullptr;
2714 
2715   assert(!S.useStatepoints() && "statepoints do not currently support custom"
2716          " stackmap formats, please see the documentation for a description of"
2717          " the default format.  If you really need a custom serialized format,"
2718          " please file a bug");
2719 
2720   gcp_map_type &GCMap = getGCMap(GCMetadataPrinters);
2721   gcp_map_type::iterator GCPI = GCMap.find(&S);
2722   if (GCPI != GCMap.end())
2723     return GCPI->second.get();
2724 
2725   auto Name = S.getName();
2726 
2727   for (GCMetadataPrinterRegistry::iterator
2728          I = GCMetadataPrinterRegistry::begin(),
2729          E = GCMetadataPrinterRegistry::end(); I != E; ++I)
2730     if (Name == I->getName()) {
2731       std::unique_ptr<GCMetadataPrinter> GMP = I->instantiate();
2732       GMP->S = &S;
2733       auto IterBool = GCMap.insert(std::make_pair(&S, std::move(GMP)));
2734       return IterBool.first->second.get();
2735     }
2736 
2737   report_fatal_error("no GCMetadataPrinter registered for GC: " + Twine(Name));
2738 }
2739 
2740 /// Pin vtable to this file.
2741 AsmPrinterHandler::~AsmPrinterHandler() = default;
2742 
2743 void AsmPrinterHandler::markFunctionEnd() {}
2744 
2745 // In the binary's "xray_instr_map" section, an array of these function entries
2746 // describes each instrumentation point.  When XRay patches your code, the index
2747 // into this table will be given to your handler as a patch point identifier.
2748 void AsmPrinter::XRayFunctionEntry::emit(int Bytes, MCStreamer *Out,
2749                                          const MCSymbol *CurrentFnSym) const {
2750   Out->EmitSymbolValue(Sled, Bytes);
2751   Out->EmitSymbolValue(CurrentFnSym, Bytes);
2752   auto Kind8 = static_cast<uint8_t>(Kind);
2753   Out->EmitBytes(StringRef(reinterpret_cast<const char *>(&Kind8), 1));
2754   Out->EmitBytes(
2755       StringRef(reinterpret_cast<const char *>(&AlwaysInstrument), 1));
2756   Out->EmitZeros(2 * Bytes - 2);  // Pad the previous two entries
2757 }
2758 
2759 void AsmPrinter::emitXRayTable() {
2760   if (Sleds.empty())
2761     return;
2762 
2763   auto PrevSection = OutStreamer->getCurrentSectionOnly();
2764   auto Fn = MF->getFunction();
2765   MCSection *Section = nullptr;
2766   if (MF->getSubtarget().getTargetTriple().isOSBinFormatELF()) {
2767     if (Fn->hasComdat()) {
2768       Section = OutContext.getELFSection("xray_instr_map", ELF::SHT_PROGBITS,
2769                                          ELF::SHF_ALLOC | ELF::SHF_GROUP, 0,
2770                                          Fn->getComdat()->getName());
2771     } else {
2772       Section = OutContext.getELFSection("xray_instr_map", ELF::SHT_PROGBITS,
2773                                          ELF::SHF_ALLOC);
2774     }
2775   } else if (MF->getSubtarget().getTargetTriple().isOSBinFormatMachO()) {
2776     Section = OutContext.getMachOSection("__DATA", "xray_instr_map", 0,
2777                                          SectionKind::getReadOnlyWithRel());
2778   } else {
2779     llvm_unreachable("Unsupported target");
2780   }
2781 
2782   // Before we switch over, we force a reference to a label inside the
2783   // xray_instr_map section. Since this function is always called just
2784   // before the function's end, we assume that this is happening after
2785   // the last return instruction.
2786 
2787   auto WordSizeBytes = MAI->getCodePointerSize();
2788   MCSymbol *Tmp = OutContext.createTempSymbol("xray_synthetic_", true);
2789   OutStreamer->EmitCodeAlignment(16);
2790   OutStreamer->EmitSymbolValue(Tmp, WordSizeBytes, false);
2791   OutStreamer->SwitchSection(Section);
2792   OutStreamer->EmitLabel(Tmp);
2793   for (const auto &Sled : Sleds)
2794     Sled.emit(WordSizeBytes, OutStreamer.get(), CurrentFnSym);
2795 
2796   OutStreamer->SwitchSection(PrevSection);
2797   Sleds.clear();
2798 }
2799 
2800 void AsmPrinter::recordSled(MCSymbol *Sled, const MachineInstr &MI,
2801   SledKind Kind) {
2802   auto Fn = MI.getParent()->getParent()->getFunction();
2803   auto Attr = Fn->getFnAttribute("function-instrument");
2804   bool LogArgs = Fn->hasFnAttribute("xray-log-args");
2805   bool AlwaysInstrument =
2806     Attr.isStringAttribute() && Attr.getValueAsString() == "xray-always";
2807   if (Kind == SledKind::FUNCTION_ENTER && LogArgs)
2808     Kind = SledKind::LOG_ARGS_ENTER;
2809   Sleds.emplace_back(
2810     XRayFunctionEntry{ Sled, CurrentFnSym, Kind, AlwaysInstrument, Fn });
2811 }
2812 
2813 uint16_t AsmPrinter::getDwarfVersion() const {
2814   return OutStreamer->getContext().getDwarfVersion();
2815 }
2816 
2817 void AsmPrinter::setDwarfVersion(uint16_t Version) {
2818   OutStreamer->getContext().setDwarfVersion(Version);
2819 }
2820