xref: /llvm-project/llvm/lib/CodeGen/TargetLoweringObjectFileImpl.cpp (revision 5b51d45f496f10a74dea5a100cf18b33b45493dc)
1 //===- llvm/CodeGen/TargetLoweringObjectFileImpl.cpp - Object File Info ---===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This file implements classes used to handle lowerings specific to common
10 // object file formats.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "llvm/CodeGen/TargetLoweringObjectFileImpl.h"
15 #include "llvm/ADT/SmallString.h"
16 #include "llvm/ADT/SmallVector.h"
17 #include "llvm/ADT/StringExtras.h"
18 #include "llvm/ADT/StringRef.h"
19 #include "llvm/BinaryFormat/COFF.h"
20 #include "llvm/BinaryFormat/Dwarf.h"
21 #include "llvm/BinaryFormat/ELF.h"
22 #include "llvm/BinaryFormat/MachO.h"
23 #include "llvm/BinaryFormat/Wasm.h"
24 #include "llvm/CodeGen/BasicBlockSectionUtils.h"
25 #include "llvm/CodeGen/MachineBasicBlock.h"
26 #include "llvm/CodeGen/MachineFunction.h"
27 #include "llvm/CodeGen/MachineModuleInfo.h"
28 #include "llvm/CodeGen/MachineModuleInfoImpls.h"
29 #include "llvm/IR/Comdat.h"
30 #include "llvm/IR/Constants.h"
31 #include "llvm/IR/DataLayout.h"
32 #include "llvm/IR/DerivedTypes.h"
33 #include "llvm/IR/DiagnosticInfo.h"
34 #include "llvm/IR/DiagnosticPrinter.h"
35 #include "llvm/IR/Function.h"
36 #include "llvm/IR/GlobalAlias.h"
37 #include "llvm/IR/GlobalObject.h"
38 #include "llvm/IR/GlobalValue.h"
39 #include "llvm/IR/GlobalVariable.h"
40 #include "llvm/IR/Mangler.h"
41 #include "llvm/IR/Metadata.h"
42 #include "llvm/IR/Module.h"
43 #include "llvm/IR/PseudoProbe.h"
44 #include "llvm/IR/Type.h"
45 #include "llvm/MC/MCAsmInfo.h"
46 #include "llvm/MC/MCContext.h"
47 #include "llvm/MC/MCExpr.h"
48 #include "llvm/MC/MCSectionCOFF.h"
49 #include "llvm/MC/MCSectionELF.h"
50 #include "llvm/MC/MCSectionGOFF.h"
51 #include "llvm/MC/MCSectionMachO.h"
52 #include "llvm/MC/MCSectionWasm.h"
53 #include "llvm/MC/MCSectionXCOFF.h"
54 #include "llvm/MC/MCStreamer.h"
55 #include "llvm/MC/MCSymbol.h"
56 #include "llvm/MC/MCSymbolELF.h"
57 #include "llvm/MC/MCValue.h"
58 #include "llvm/MC/SectionKind.h"
59 #include "llvm/ProfileData/InstrProf.h"
60 #include "llvm/Support/Base64.h"
61 #include "llvm/Support/Casting.h"
62 #include "llvm/Support/CodeGen.h"
63 #include "llvm/Support/ErrorHandling.h"
64 #include "llvm/Support/Format.h"
65 #include "llvm/Support/raw_ostream.h"
66 #include "llvm/Target/TargetMachine.h"
67 #include "llvm/TargetParser/Triple.h"
68 #include <cassert>
69 #include <string>
70 
71 using namespace llvm;
72 using namespace dwarf;
73 
74 static cl::opt<bool> JumpTableInFunctionSection(
75     "jumptable-in-function-section", cl::Hidden, cl::init(false),
76     cl::desc("Putting Jump Table in function section"));
77 
78 static void GetObjCImageInfo(Module &M, unsigned &Version, unsigned &Flags,
79                              StringRef &Section) {
80   SmallVector<Module::ModuleFlagEntry, 8> ModuleFlags;
81   M.getModuleFlagsMetadata(ModuleFlags);
82 
83   for (const auto &MFE: ModuleFlags) {
84     // Ignore flags with 'Require' behaviour.
85     if (MFE.Behavior == Module::Require)
86       continue;
87 
88     StringRef Key = MFE.Key->getString();
89     if (Key == "Objective-C Image Info Version") {
90       Version = mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue();
91     } else if (Key == "Objective-C Garbage Collection" ||
92                Key == "Objective-C GC Only" ||
93                Key == "Objective-C Is Simulated" ||
94                Key == "Objective-C Class Properties" ||
95                Key == "Objective-C Image Swift Version") {
96       Flags |= mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue();
97     } else if (Key == "Objective-C Image Info Section") {
98       Section = cast<MDString>(MFE.Val)->getString();
99     }
100     // Backend generates L_OBJC_IMAGE_INFO from Swift ABI version + major + minor +
101     // "Objective-C Garbage Collection".
102     else if (Key == "Swift ABI Version") {
103       Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 8;
104     } else if (Key == "Swift Major Version") {
105       Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 24;
106     } else if (Key == "Swift Minor Version") {
107       Flags |= (mdconst::extract<ConstantInt>(MFE.Val)->getZExtValue()) << 16;
108     }
109   }
110 }
111 
112 //===----------------------------------------------------------------------===//
113 //                                  ELF
114 //===----------------------------------------------------------------------===//
115 
116 TargetLoweringObjectFileELF::TargetLoweringObjectFileELF() {
117   SupportDSOLocalEquivalentLowering = true;
118 }
119 
120 void TargetLoweringObjectFileELF::Initialize(MCContext &Ctx,
121                                              const TargetMachine &TgtM) {
122   TargetLoweringObjectFile::Initialize(Ctx, TgtM);
123 
124   CodeModel::Model CM = TgtM.getCodeModel();
125   InitializeELF(TgtM.Options.UseInitArray);
126 
127   switch (TgtM.getTargetTriple().getArch()) {
128   case Triple::arm:
129   case Triple::armeb:
130   case Triple::thumb:
131   case Triple::thumbeb:
132     if (Ctx.getAsmInfo()->getExceptionHandlingType() == ExceptionHandling::ARM)
133       break;
134     // Fallthrough if not using EHABI
135     [[fallthrough]];
136   case Triple::ppc:
137   case Triple::ppcle:
138   case Triple::x86:
139     PersonalityEncoding = isPositionIndependent()
140                               ? dwarf::DW_EH_PE_indirect |
141                                     dwarf::DW_EH_PE_pcrel |
142                                     dwarf::DW_EH_PE_sdata4
143                               : dwarf::DW_EH_PE_absptr;
144     LSDAEncoding = isPositionIndependent()
145                        ? dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4
146                        : dwarf::DW_EH_PE_absptr;
147     TTypeEncoding = isPositionIndependent()
148                         ? dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
149                               dwarf::DW_EH_PE_sdata4
150                         : dwarf::DW_EH_PE_absptr;
151     break;
152   case Triple::x86_64:
153     if (isPositionIndependent()) {
154       PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
155         ((CM == CodeModel::Small || CM == CodeModel::Medium)
156          ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8);
157       LSDAEncoding = dwarf::DW_EH_PE_pcrel |
158         (CM == CodeModel::Small
159          ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8);
160       TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
161         ((CM == CodeModel::Small || CM == CodeModel::Medium)
162          ? dwarf::DW_EH_PE_sdata4 : dwarf::DW_EH_PE_sdata8);
163     } else {
164       PersonalityEncoding =
165         (CM == CodeModel::Small || CM == CodeModel::Medium)
166         ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr;
167       LSDAEncoding = (CM == CodeModel::Small)
168         ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr;
169       TTypeEncoding = (CM == CodeModel::Small)
170         ? dwarf::DW_EH_PE_udata4 : dwarf::DW_EH_PE_absptr;
171     }
172     break;
173   case Triple::hexagon:
174     PersonalityEncoding = dwarf::DW_EH_PE_absptr;
175     LSDAEncoding = dwarf::DW_EH_PE_absptr;
176     TTypeEncoding = dwarf::DW_EH_PE_absptr;
177     if (isPositionIndependent()) {
178       PersonalityEncoding |= dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel;
179       LSDAEncoding |= dwarf::DW_EH_PE_pcrel;
180       TTypeEncoding |= dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel;
181     }
182     break;
183   case Triple::aarch64:
184   case Triple::aarch64_be:
185   case Triple::aarch64_32:
186     // The small model guarantees static code/data size < 4GB, but not where it
187     // will be in memory. Most of these could end up >2GB away so even a signed
188     // pc-relative 32-bit address is insufficient, theoretically.
189     //
190     // Use DW_EH_PE_indirect even for -fno-pic to avoid copy relocations.
191     LSDAEncoding = dwarf::DW_EH_PE_pcrel |
192                    (TgtM.getTargetTriple().getEnvironment() == Triple::GNUILP32
193                         ? dwarf::DW_EH_PE_sdata4
194                         : dwarf::DW_EH_PE_sdata8);
195     PersonalityEncoding = LSDAEncoding | dwarf::DW_EH_PE_indirect;
196     TTypeEncoding = LSDAEncoding | dwarf::DW_EH_PE_indirect;
197     break;
198   case Triple::lanai:
199     LSDAEncoding = dwarf::DW_EH_PE_absptr;
200     PersonalityEncoding = dwarf::DW_EH_PE_absptr;
201     TTypeEncoding = dwarf::DW_EH_PE_absptr;
202     break;
203   case Triple::mips:
204   case Triple::mipsel:
205   case Triple::mips64:
206   case Triple::mips64el:
207     // MIPS uses indirect pointer to refer personality functions and types, so
208     // that the eh_frame section can be read-only. DW.ref.personality will be
209     // generated for relocation.
210     PersonalityEncoding = dwarf::DW_EH_PE_indirect;
211     // FIXME: The N64 ABI probably ought to use DW_EH_PE_sdata8 but we can't
212     //        identify N64 from just a triple.
213     TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
214                     dwarf::DW_EH_PE_sdata4;
215     // We don't support PC-relative LSDA references in GAS so we use the default
216     // DW_EH_PE_absptr for those.
217 
218     // FreeBSD must be explicit about the data size and using pcrel since it's
219     // assembler/linker won't do the automatic conversion that the Linux tools
220     // do.
221     if (TgtM.getTargetTriple().isOSFreeBSD()) {
222       PersonalityEncoding |= dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
223       LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
224     }
225     break;
226   case Triple::ppc64:
227   case Triple::ppc64le:
228     PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
229       dwarf::DW_EH_PE_udata8;
230     LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_udata8;
231     TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
232       dwarf::DW_EH_PE_udata8;
233     break;
234   case Triple::sparcel:
235   case Triple::sparc:
236     if (isPositionIndependent()) {
237       LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
238       PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
239         dwarf::DW_EH_PE_sdata4;
240       TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
241         dwarf::DW_EH_PE_sdata4;
242     } else {
243       LSDAEncoding = dwarf::DW_EH_PE_absptr;
244       PersonalityEncoding = dwarf::DW_EH_PE_absptr;
245       TTypeEncoding = dwarf::DW_EH_PE_absptr;
246     }
247     CallSiteEncoding = dwarf::DW_EH_PE_udata4;
248     break;
249   case Triple::riscv32:
250   case Triple::riscv64:
251     LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
252     PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
253                           dwarf::DW_EH_PE_sdata4;
254     TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
255                     dwarf::DW_EH_PE_sdata4;
256     CallSiteEncoding = dwarf::DW_EH_PE_udata4;
257     break;
258   case Triple::sparcv9:
259     LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
260     if (isPositionIndependent()) {
261       PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
262         dwarf::DW_EH_PE_sdata4;
263       TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
264         dwarf::DW_EH_PE_sdata4;
265     } else {
266       PersonalityEncoding = dwarf::DW_EH_PE_absptr;
267       TTypeEncoding = dwarf::DW_EH_PE_absptr;
268     }
269     break;
270   case Triple::systemz:
271     // All currently-defined code models guarantee that 4-byte PC-relative
272     // values will be in range.
273     if (isPositionIndependent()) {
274       PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
275         dwarf::DW_EH_PE_sdata4;
276       LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
277       TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
278         dwarf::DW_EH_PE_sdata4;
279     } else {
280       PersonalityEncoding = dwarf::DW_EH_PE_absptr;
281       LSDAEncoding = dwarf::DW_EH_PE_absptr;
282       TTypeEncoding = dwarf::DW_EH_PE_absptr;
283     }
284     break;
285   case Triple::loongarch32:
286   case Triple::loongarch64:
287     LSDAEncoding = dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
288     PersonalityEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
289                           dwarf::DW_EH_PE_sdata4;
290     TTypeEncoding = dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel |
291                     dwarf::DW_EH_PE_sdata4;
292     break;
293   default:
294     break;
295   }
296 }
297 
298 void TargetLoweringObjectFileELF::getModuleMetadata(Module &M) {
299   SmallVector<GlobalValue *, 4> Vec;
300   collectUsedGlobalVariables(M, Vec, false);
301   for (GlobalValue *GV : Vec)
302     if (auto *GO = dyn_cast<GlobalObject>(GV))
303       Used.insert(GO);
304 }
305 
306 void TargetLoweringObjectFileELF::emitModuleMetadata(MCStreamer &Streamer,
307                                                      Module &M) const {
308   auto &C = getContext();
309 
310   if (NamedMDNode *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) {
311     auto *S = C.getELFSection(".linker-options", ELF::SHT_LLVM_LINKER_OPTIONS,
312                               ELF::SHF_EXCLUDE);
313 
314     Streamer.switchSection(S);
315 
316     for (const auto *Operand : LinkerOptions->operands()) {
317       if (cast<MDNode>(Operand)->getNumOperands() != 2)
318         report_fatal_error("invalid llvm.linker.options");
319       for (const auto &Option : cast<MDNode>(Operand)->operands()) {
320         Streamer.emitBytes(cast<MDString>(Option)->getString());
321         Streamer.emitInt8(0);
322       }
323     }
324   }
325 
326   if (NamedMDNode *DependentLibraries = M.getNamedMetadata("llvm.dependent-libraries")) {
327     auto *S = C.getELFSection(".deplibs", ELF::SHT_LLVM_DEPENDENT_LIBRARIES,
328                               ELF::SHF_MERGE | ELF::SHF_STRINGS, 1);
329 
330     Streamer.switchSection(S);
331 
332     for (const auto *Operand : DependentLibraries->operands()) {
333       Streamer.emitBytes(
334           cast<MDString>(cast<MDNode>(Operand)->getOperand(0))->getString());
335       Streamer.emitInt8(0);
336     }
337   }
338 
339   if (NamedMDNode *FuncInfo = M.getNamedMetadata(PseudoProbeDescMetadataName)) {
340     // Emit a descriptor for every function including functions that have an
341     // available external linkage. We may not want this for imported functions
342     // that has code in another thinLTO module but we don't have a good way to
343     // tell them apart from inline functions defined in header files. Therefore
344     // we put each descriptor in a separate comdat section and rely on the
345     // linker to deduplicate.
346     for (const auto *Operand : FuncInfo->operands()) {
347       const auto *MD = cast<MDNode>(Operand);
348       auto *GUID = mdconst::dyn_extract<ConstantInt>(MD->getOperand(0));
349       auto *Hash = mdconst::dyn_extract<ConstantInt>(MD->getOperand(1));
350       auto *Name = cast<MDString>(MD->getOperand(2));
351       auto *S = C.getObjectFileInfo()->getPseudoProbeDescSection(
352           TM->getFunctionSections() ? Name->getString() : StringRef());
353 
354       Streamer.switchSection(S);
355       Streamer.emitInt64(GUID->getZExtValue());
356       Streamer.emitInt64(Hash->getZExtValue());
357       Streamer.emitULEB128IntValue(Name->getString().size());
358       Streamer.emitBytes(Name->getString());
359     }
360   }
361 
362   if (NamedMDNode *LLVMStats = M.getNamedMetadata("llvm.stats")) {
363     // Emit the metadata for llvm statistics into .llvm_stats section, which is
364     // formatted as a list of key/value pair, the value is base64 encoded.
365     auto *S = C.getObjectFileInfo()->getLLVMStatsSection();
366     Streamer.switchSection(S);
367     for (const auto *Operand : LLVMStats->operands()) {
368       const auto *MD = cast<MDNode>(Operand);
369       assert(MD->getNumOperands() % 2 == 0 &&
370              ("Operand num should be even for a list of key/value pair"));
371       for (size_t I = 0; I < MD->getNumOperands(); I += 2) {
372         // Encode the key string size.
373         auto *Key = cast<MDString>(MD->getOperand(I));
374         Streamer.emitULEB128IntValue(Key->getString().size());
375         Streamer.emitBytes(Key->getString());
376         // Encode the value into a Base64 string.
377         std::string Value = encodeBase64(
378             Twine(mdconst::dyn_extract<ConstantInt>(MD->getOperand(I + 1))
379                       ->getZExtValue())
380                 .str());
381         Streamer.emitULEB128IntValue(Value.size());
382         Streamer.emitBytes(Value);
383       }
384     }
385   }
386 
387   unsigned Version = 0;
388   unsigned Flags = 0;
389   StringRef Section;
390 
391   GetObjCImageInfo(M, Version, Flags, Section);
392   if (!Section.empty()) {
393     auto *S = C.getELFSection(Section, ELF::SHT_PROGBITS, ELF::SHF_ALLOC);
394     Streamer.switchSection(S);
395     Streamer.emitLabel(C.getOrCreateSymbol(StringRef("OBJC_IMAGE_INFO")));
396     Streamer.emitInt32(Version);
397     Streamer.emitInt32(Flags);
398     Streamer.addBlankLine();
399   }
400 
401   emitCGProfileMetadata(Streamer, M);
402 }
403 
404 MCSymbol *TargetLoweringObjectFileELF::getCFIPersonalitySymbol(
405     const GlobalValue *GV, const TargetMachine &TM,
406     MachineModuleInfo *MMI) const {
407   unsigned Encoding = getPersonalityEncoding();
408   if ((Encoding & 0x80) == DW_EH_PE_indirect)
409     return getContext().getOrCreateSymbol(StringRef("DW.ref.") +
410                                           TM.getSymbol(GV)->getName());
411   if ((Encoding & 0x70) == DW_EH_PE_absptr)
412     return TM.getSymbol(GV);
413   report_fatal_error("We do not support this DWARF encoding yet!");
414 }
415 
416 void TargetLoweringObjectFileELF::emitPersonalityValue(
417     MCStreamer &Streamer, const DataLayout &DL, const MCSymbol *Sym) const {
418   SmallString<64> NameData("DW.ref.");
419   NameData += Sym->getName();
420   MCSymbolELF *Label =
421       cast<MCSymbolELF>(getContext().getOrCreateSymbol(NameData));
422   Streamer.emitSymbolAttribute(Label, MCSA_Hidden);
423   Streamer.emitSymbolAttribute(Label, MCSA_Weak);
424   unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_WRITE | ELF::SHF_GROUP;
425   MCSection *Sec = getContext().getELFNamedSection(".data", Label->getName(),
426                                                    ELF::SHT_PROGBITS, Flags, 0);
427   unsigned Size = DL.getPointerSize();
428   Streamer.switchSection(Sec);
429   Streamer.emitValueToAlignment(DL.getPointerABIAlignment(0));
430   Streamer.emitSymbolAttribute(Label, MCSA_ELF_TypeObject);
431   const MCExpr *E = MCConstantExpr::create(Size, getContext());
432   Streamer.emitELFSize(Label, E);
433   Streamer.emitLabel(Label);
434 
435   Streamer.emitSymbolValue(Sym, Size);
436 }
437 
438 const MCExpr *TargetLoweringObjectFileELF::getTTypeGlobalReference(
439     const GlobalValue *GV, unsigned Encoding, const TargetMachine &TM,
440     MachineModuleInfo *MMI, MCStreamer &Streamer) const {
441   if (Encoding & DW_EH_PE_indirect) {
442     MachineModuleInfoELF &ELFMMI = MMI->getObjFileInfo<MachineModuleInfoELF>();
443 
444     MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, ".DW.stub", TM);
445 
446     // Add information about the stub reference to ELFMMI so that the stub
447     // gets emitted by the asmprinter.
448     MachineModuleInfoImpl::StubValueTy &StubSym = ELFMMI.getGVStubEntry(SSym);
449     if (!StubSym.getPointer()) {
450       MCSymbol *Sym = TM.getSymbol(GV);
451       StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage());
452     }
453 
454     return TargetLoweringObjectFile::
455       getTTypeReference(MCSymbolRefExpr::create(SSym, getContext()),
456                         Encoding & ~DW_EH_PE_indirect, Streamer);
457   }
458 
459   return TargetLoweringObjectFile::getTTypeGlobalReference(GV, Encoding, TM,
460                                                            MMI, Streamer);
461 }
462 
463 static SectionKind getELFKindForNamedSection(StringRef Name, SectionKind K) {
464   // N.B.: The defaults used in here are not the same ones used in MC.
465   // We follow gcc, MC follows gas. For example, given ".section .eh_frame",
466   // both gas and MC will produce a section with no flags. Given
467   // section(".eh_frame") gcc will produce:
468   //
469   //   .section   .eh_frame,"a",@progbits
470 
471   if (Name == getInstrProfSectionName(IPSK_covmap, Triple::ELF,
472                                       /*AddSegmentInfo=*/false) ||
473       Name == getInstrProfSectionName(IPSK_covfun, Triple::ELF,
474                                       /*AddSegmentInfo=*/false) ||
475       Name == getInstrProfSectionName(IPSK_covdata, Triple::ELF,
476                                       /*AddSegmentInfo=*/false) ||
477       Name == getInstrProfSectionName(IPSK_covname, Triple::ELF,
478                                       /*AddSegmentInfo=*/false) ||
479       Name == ".llvmbc" || Name == ".llvmcmd")
480     return SectionKind::getMetadata();
481 
482   if (!Name.starts_with(".")) return K;
483 
484   // Default implementation based on some magic section names.
485   if (Name == ".bss" || Name.starts_with(".bss.") ||
486       Name.starts_with(".gnu.linkonce.b.") ||
487       Name.starts_with(".llvm.linkonce.b.") || Name == ".sbss" ||
488       Name.starts_with(".sbss.") || Name.starts_with(".gnu.linkonce.sb.") ||
489       Name.starts_with(".llvm.linkonce.sb."))
490     return SectionKind::getBSS();
491 
492   if (Name == ".tdata" || Name.starts_with(".tdata.") ||
493       Name.starts_with(".gnu.linkonce.td.") ||
494       Name.starts_with(".llvm.linkonce.td."))
495     return SectionKind::getThreadData();
496 
497   if (Name == ".tbss" || Name.starts_with(".tbss.") ||
498       Name.starts_with(".gnu.linkonce.tb.") ||
499       Name.starts_with(".llvm.linkonce.tb."))
500     return SectionKind::getThreadBSS();
501 
502   return K;
503 }
504 
505 static bool hasPrefix(StringRef SectionName, StringRef Prefix) {
506   return SectionName.consume_front(Prefix) &&
507          (SectionName.empty() || SectionName[0] == '.');
508 }
509 
510 static unsigned getELFSectionType(StringRef Name, SectionKind K) {
511   // Use SHT_NOTE for section whose name starts with ".note" to allow
512   // emitting ELF notes from C variable declaration.
513   // See https://gcc.gnu.org/bugzilla/show_bug.cgi?id=77609
514   if (Name.starts_with(".note"))
515     return ELF::SHT_NOTE;
516 
517   if (hasPrefix(Name, ".init_array"))
518     return ELF::SHT_INIT_ARRAY;
519 
520   if (hasPrefix(Name, ".fini_array"))
521     return ELF::SHT_FINI_ARRAY;
522 
523   if (hasPrefix(Name, ".preinit_array"))
524     return ELF::SHT_PREINIT_ARRAY;
525 
526   if (hasPrefix(Name, ".llvm.offloading"))
527     return ELF::SHT_LLVM_OFFLOADING;
528 
529   if (K.isBSS() || K.isThreadBSS())
530     return ELF::SHT_NOBITS;
531 
532   return ELF::SHT_PROGBITS;
533 }
534 
535 static unsigned getELFSectionFlags(SectionKind K) {
536   unsigned Flags = 0;
537 
538   if (!K.isMetadata() && !K.isExclude())
539     Flags |= ELF::SHF_ALLOC;
540 
541   if (K.isExclude())
542     Flags |= ELF::SHF_EXCLUDE;
543 
544   if (K.isText())
545     Flags |= ELF::SHF_EXECINSTR;
546 
547   if (K.isExecuteOnly())
548     Flags |= ELF::SHF_ARM_PURECODE;
549 
550   if (K.isWriteable())
551     Flags |= ELF::SHF_WRITE;
552 
553   if (K.isThreadLocal())
554     Flags |= ELF::SHF_TLS;
555 
556   if (K.isMergeableCString() || K.isMergeableConst())
557     Flags |= ELF::SHF_MERGE;
558 
559   if (K.isMergeableCString())
560     Flags |= ELF::SHF_STRINGS;
561 
562   return Flags;
563 }
564 
565 static const Comdat *getELFComdat(const GlobalValue *GV) {
566   const Comdat *C = GV->getComdat();
567   if (!C)
568     return nullptr;
569 
570   if (C->getSelectionKind() != Comdat::Any &&
571       C->getSelectionKind() != Comdat::NoDeduplicate)
572     report_fatal_error("ELF COMDATs only support SelectionKind::Any and "
573                        "SelectionKind::NoDeduplicate, '" +
574                        C->getName() + "' cannot be lowered.");
575 
576   return C;
577 }
578 
579 static const MCSymbolELF *getLinkedToSymbol(const GlobalObject *GO,
580                                             const TargetMachine &TM) {
581   MDNode *MD = GO->getMetadata(LLVMContext::MD_associated);
582   if (!MD)
583     return nullptr;
584 
585   auto *VM = cast<ValueAsMetadata>(MD->getOperand(0).get());
586   auto *OtherGV = dyn_cast<GlobalValue>(VM->getValue());
587   return OtherGV ? dyn_cast<MCSymbolELF>(TM.getSymbol(OtherGV)) : nullptr;
588 }
589 
590 static unsigned getEntrySizeForKind(SectionKind Kind) {
591   if (Kind.isMergeable1ByteCString())
592     return 1;
593   else if (Kind.isMergeable2ByteCString())
594     return 2;
595   else if (Kind.isMergeable4ByteCString())
596     return 4;
597   else if (Kind.isMergeableConst4())
598     return 4;
599   else if (Kind.isMergeableConst8())
600     return 8;
601   else if (Kind.isMergeableConst16())
602     return 16;
603   else if (Kind.isMergeableConst32())
604     return 32;
605   else {
606     // We shouldn't have mergeable C strings or mergeable constants that we
607     // didn't handle above.
608     assert(!Kind.isMergeableCString() && "unknown string width");
609     assert(!Kind.isMergeableConst() && "unknown data width");
610     return 0;
611   }
612 }
613 
614 /// Return the section prefix name used by options FunctionsSections and
615 /// DataSections.
616 static StringRef getSectionPrefixForGlobal(SectionKind Kind, bool IsLarge) {
617   if (Kind.isText())
618     return IsLarge ? ".ltext" : ".text";
619   if (Kind.isReadOnly())
620     return IsLarge ? ".lrodata" : ".rodata";
621   if (Kind.isBSS())
622     return IsLarge ? ".lbss" : ".bss";
623   if (Kind.isThreadData())
624     return ".tdata";
625   if (Kind.isThreadBSS())
626     return ".tbss";
627   if (Kind.isData())
628     return IsLarge ? ".ldata" : ".data";
629   if (Kind.isReadOnlyWithRel())
630     return IsLarge ? ".ldata.rel.ro" : ".data.rel.ro";
631   llvm_unreachable("Unknown section kind");
632 }
633 
634 static SmallString<128>
635 getELFSectionNameForGlobal(const GlobalObject *GO, SectionKind Kind,
636                            Mangler &Mang, const TargetMachine &TM,
637                            unsigned EntrySize, bool UniqueSectionName) {
638   SmallString<128> Name =
639       getSectionPrefixForGlobal(Kind, TM.isLargeGlobalValue(GO));
640   if (Kind.isMergeableCString()) {
641     // We also need alignment here.
642     // FIXME: this is getting the alignment of the character, not the
643     // alignment of the global!
644     Align Alignment = GO->getParent()->getDataLayout().getPreferredAlign(
645         cast<GlobalVariable>(GO));
646 
647     Name += ".str";
648     Name += utostr(EntrySize);
649     Name += ".";
650     Name += utostr(Alignment.value());
651   } else if (Kind.isMergeableConst()) {
652     Name += ".cst";
653     Name += utostr(EntrySize);
654   }
655 
656   bool HasPrefix = false;
657   if (const auto *F = dyn_cast<Function>(GO)) {
658     if (std::optional<StringRef> Prefix = F->getSectionPrefix()) {
659       raw_svector_ostream(Name) << '.' << *Prefix;
660       HasPrefix = true;
661     }
662   }
663 
664   if (UniqueSectionName) {
665     Name.push_back('.');
666     TM.getNameWithPrefix(Name, GO, Mang, /*MayAlwaysUsePrivate*/true);
667   } else if (HasPrefix)
668     // For distinguishing between .text.${text-section-prefix}. (with trailing
669     // dot) and .text.${function-name}
670     Name.push_back('.');
671   return Name;
672 }
673 
674 namespace {
675 class LoweringDiagnosticInfo : public DiagnosticInfo {
676   const Twine &Msg;
677 
678 public:
679   LoweringDiagnosticInfo(const Twine &DiagMsg,
680                          DiagnosticSeverity Severity = DS_Error)
681       : DiagnosticInfo(DK_Lowering, Severity), Msg(DiagMsg) {}
682   void print(DiagnosticPrinter &DP) const override { DP << Msg; }
683 };
684 }
685 
686 /// Calculate an appropriate unique ID for a section, and update Flags,
687 /// EntrySize and NextUniqueID where appropriate.
688 static unsigned
689 calcUniqueIDUpdateFlagsAndSize(const GlobalObject *GO, StringRef SectionName,
690                                SectionKind Kind, const TargetMachine &TM,
691                                MCContext &Ctx, Mangler &Mang, unsigned &Flags,
692                                unsigned &EntrySize, unsigned &NextUniqueID,
693                                const bool Retain, const bool ForceUnique) {
694   // Increment uniqueID if we are forced to emit a unique section.
695   // This works perfectly fine with section attribute or pragma section as the
696   // sections with the same name are grouped together by the assembler.
697   if (ForceUnique)
698     return NextUniqueID++;
699 
700   // A section can have at most one associated section. Put each global with
701   // MD_associated in a unique section.
702   const bool Associated = GO->getMetadata(LLVMContext::MD_associated);
703   if (Associated) {
704     Flags |= ELF::SHF_LINK_ORDER;
705     return NextUniqueID++;
706   }
707 
708   if (Retain) {
709     if (TM.getTargetTriple().isOSSolaris())
710       Flags |= ELF::SHF_SUNW_NODISCARD;
711     else if (Ctx.getAsmInfo()->useIntegratedAssembler() ||
712              Ctx.getAsmInfo()->binutilsIsAtLeast(2, 36))
713       Flags |= ELF::SHF_GNU_RETAIN;
714     return NextUniqueID++;
715   }
716 
717   // If two symbols with differing sizes end up in the same mergeable section
718   // that section can be assigned an incorrect entry size. To avoid this we
719   // usually put symbols of the same size into distinct mergeable sections with
720   // the same name. Doing so relies on the ",unique ," assembly feature. This
721   // feature is not avalible until bintuils version 2.35
722   // (https://sourceware.org/bugzilla/show_bug.cgi?id=25380).
723   const bool SupportsUnique = Ctx.getAsmInfo()->useIntegratedAssembler() ||
724                               Ctx.getAsmInfo()->binutilsIsAtLeast(2, 35);
725   if (!SupportsUnique) {
726     Flags &= ~ELF::SHF_MERGE;
727     EntrySize = 0;
728     return MCContext::GenericSectionID;
729   }
730 
731   const bool SymbolMergeable = Flags & ELF::SHF_MERGE;
732   const bool SeenSectionNameBefore =
733       Ctx.isELFGenericMergeableSection(SectionName);
734   // If this is the first ocurrence of this section name, treat it as the
735   // generic section
736   if (!SymbolMergeable && !SeenSectionNameBefore)
737     return MCContext::GenericSectionID;
738 
739   // Symbols must be placed into sections with compatible entry sizes. Generate
740   // unique sections for symbols that have not been assigned to compatible
741   // sections.
742   const auto PreviousID =
743       Ctx.getELFUniqueIDForEntsize(SectionName, Flags, EntrySize);
744   if (PreviousID)
745     return *PreviousID;
746 
747   // If the user has specified the same section name as would be created
748   // implicitly for this symbol e.g. .rodata.str1.1, then we don't need
749   // to unique the section as the entry size for this symbol will be
750   // compatible with implicitly created sections.
751   SmallString<128> ImplicitSectionNameStem =
752       getELFSectionNameForGlobal(GO, Kind, Mang, TM, EntrySize, false);
753   if (SymbolMergeable &&
754       Ctx.isELFImplicitMergeableSectionNamePrefix(SectionName) &&
755       SectionName.starts_with(ImplicitSectionNameStem))
756     return MCContext::GenericSectionID;
757 
758   // We have seen this section name before, but with different flags or entity
759   // size. Create a new unique ID.
760   return NextUniqueID++;
761 }
762 
763 static std::tuple<StringRef, bool, unsigned>
764 getGlobalObjectInfo(const GlobalObject *GO, const TargetMachine &TM) {
765   StringRef Group = "";
766   bool IsComdat = false;
767   unsigned Flags = 0;
768   if (const Comdat *C = getELFComdat(GO)) {
769     Flags |= ELF::SHF_GROUP;
770     Group = C->getName();
771     IsComdat = C->getSelectionKind() == Comdat::Any;
772   }
773   if (TM.isLargeGlobalValue(GO))
774     Flags |= ELF::SHF_X86_64_LARGE;
775   return {Group, IsComdat, Flags};
776 }
777 
778 static MCSection *selectExplicitSectionGlobal(
779     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM,
780     MCContext &Ctx, Mangler &Mang, unsigned &NextUniqueID,
781     bool Retain, bool ForceUnique) {
782   StringRef SectionName = GO->getSection();
783 
784   // Check if '#pragma clang section' name is applicable.
785   // Note that pragma directive overrides -ffunction-section, -fdata-section
786   // and so section name is exactly as user specified and not uniqued.
787   const GlobalVariable *GV = dyn_cast<GlobalVariable>(GO);
788   if (GV && GV->hasImplicitSection()) {
789     auto Attrs = GV->getAttributes();
790     if (Attrs.hasAttribute("bss-section") && Kind.isBSS()) {
791       SectionName = Attrs.getAttribute("bss-section").getValueAsString();
792     } else if (Attrs.hasAttribute("rodata-section") && Kind.isReadOnly()) {
793       SectionName = Attrs.getAttribute("rodata-section").getValueAsString();
794     } else if (Attrs.hasAttribute("relro-section") && Kind.isReadOnlyWithRel()) {
795       SectionName = Attrs.getAttribute("relro-section").getValueAsString();
796     } else if (Attrs.hasAttribute("data-section") && Kind.isData()) {
797       SectionName = Attrs.getAttribute("data-section").getValueAsString();
798     }
799   }
800   const Function *F = dyn_cast<Function>(GO);
801   if (F && F->hasFnAttribute("implicit-section-name")) {
802     SectionName = F->getFnAttribute("implicit-section-name").getValueAsString();
803   }
804 
805   // Infer section flags from the section name if we can.
806   Kind = getELFKindForNamedSection(SectionName, Kind);
807 
808   unsigned Flags = getELFSectionFlags(Kind);
809   auto [Group, IsComdat, ExtraFlags] = getGlobalObjectInfo(GO, TM);
810   Flags |= ExtraFlags;
811 
812   unsigned EntrySize = getEntrySizeForKind(Kind);
813   const unsigned UniqueID = calcUniqueIDUpdateFlagsAndSize(
814       GO, SectionName, Kind, TM, Ctx, Mang, Flags, EntrySize, NextUniqueID,
815       Retain, ForceUnique);
816 
817   const MCSymbolELF *LinkedToSym = getLinkedToSymbol(GO, TM);
818   MCSectionELF *Section = Ctx.getELFSection(
819       SectionName, getELFSectionType(SectionName, Kind), Flags, EntrySize,
820       Group, IsComdat, UniqueID, LinkedToSym);
821   // Make sure that we did not get some other section with incompatible sh_link.
822   // This should not be possible due to UniqueID code above.
823   assert(Section->getLinkedToSymbol() == LinkedToSym &&
824          "Associated symbol mismatch between sections");
825 
826   if (!(Ctx.getAsmInfo()->useIntegratedAssembler() ||
827         Ctx.getAsmInfo()->binutilsIsAtLeast(2, 35))) {
828     // If we are using GNU as before 2.35, then this symbol might have
829     // been placed in an incompatible mergeable section. Emit an error if this
830     // is the case to avoid creating broken output.
831     if ((Section->getFlags() & ELF::SHF_MERGE) &&
832         (Section->getEntrySize() != getEntrySizeForKind(Kind)))
833       GO->getContext().diagnose(LoweringDiagnosticInfo(
834           "Symbol '" + GO->getName() + "' from module '" +
835           (GO->getParent() ? GO->getParent()->getSourceFileName() : "unknown") +
836           "' required a section with entry-size=" +
837           Twine(getEntrySizeForKind(Kind)) + " but was placed in section '" +
838           SectionName + "' with entry-size=" + Twine(Section->getEntrySize()) +
839           ": Explicit assignment by pragma or attribute of an incompatible "
840           "symbol to this section?"));
841   }
842 
843   return Section;
844 }
845 
846 MCSection *TargetLoweringObjectFileELF::getExplicitSectionGlobal(
847     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
848   return selectExplicitSectionGlobal(GO, Kind, TM, getContext(), getMangler(),
849                                      NextUniqueID, Used.count(GO),
850                                      /* ForceUnique = */false);
851 }
852 
853 static MCSectionELF *selectELFSectionForGlobal(
854     MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang,
855     const TargetMachine &TM, bool EmitUniqueSection, unsigned Flags,
856     unsigned *NextUniqueID, const MCSymbolELF *AssociatedSymbol) {
857 
858   auto [Group, IsComdat, ExtraFlags] = getGlobalObjectInfo(GO, TM);
859   Flags |= ExtraFlags;
860 
861   // Get the section entry size based on the kind.
862   unsigned EntrySize = getEntrySizeForKind(Kind);
863 
864   bool UniqueSectionName = false;
865   unsigned UniqueID = MCContext::GenericSectionID;
866   if (EmitUniqueSection) {
867     if (TM.getUniqueSectionNames()) {
868       UniqueSectionName = true;
869     } else {
870       UniqueID = *NextUniqueID;
871       (*NextUniqueID)++;
872     }
873   }
874   SmallString<128> Name = getELFSectionNameForGlobal(
875       GO, Kind, Mang, TM, EntrySize, UniqueSectionName);
876 
877   // Use 0 as the unique ID for execute-only text.
878   if (Kind.isExecuteOnly())
879     UniqueID = 0;
880   return Ctx.getELFSection(Name, getELFSectionType(Name, Kind), Flags,
881                            EntrySize, Group, IsComdat, UniqueID,
882                            AssociatedSymbol);
883 }
884 
885 static MCSection *selectELFSectionForGlobal(
886     MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang,
887     const TargetMachine &TM, bool Retain, bool EmitUniqueSection,
888     unsigned Flags, unsigned *NextUniqueID) {
889   const MCSymbolELF *LinkedToSym = getLinkedToSymbol(GO, TM);
890   if (LinkedToSym) {
891     EmitUniqueSection = true;
892     Flags |= ELF::SHF_LINK_ORDER;
893   }
894   if (Retain) {
895     if (TM.getTargetTriple().isOSSolaris()) {
896       EmitUniqueSection = true;
897       Flags |= ELF::SHF_SUNW_NODISCARD;
898     } else if (Ctx.getAsmInfo()->useIntegratedAssembler() ||
899                Ctx.getAsmInfo()->binutilsIsAtLeast(2, 36)) {
900       EmitUniqueSection = true;
901       Flags |= ELF::SHF_GNU_RETAIN;
902     }
903   }
904 
905   MCSectionELF *Section = selectELFSectionForGlobal(
906       Ctx, GO, Kind, Mang, TM, EmitUniqueSection, Flags,
907       NextUniqueID, LinkedToSym);
908   assert(Section->getLinkedToSymbol() == LinkedToSym);
909   return Section;
910 }
911 
912 MCSection *TargetLoweringObjectFileELF::SelectSectionForGlobal(
913     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
914   unsigned Flags = getELFSectionFlags(Kind);
915 
916   // If we have -ffunction-section or -fdata-section then we should emit the
917   // global value to a uniqued section specifically for it.
918   bool EmitUniqueSection = false;
919   if (!(Flags & ELF::SHF_MERGE) && !Kind.isCommon()) {
920     if (Kind.isText())
921       EmitUniqueSection = TM.getFunctionSections();
922     else
923       EmitUniqueSection = TM.getDataSections();
924   }
925   EmitUniqueSection |= GO->hasComdat();
926   return selectELFSectionForGlobal(getContext(), GO, Kind, getMangler(), TM,
927                                    Used.count(GO), EmitUniqueSection, Flags,
928                                    &NextUniqueID);
929 }
930 
931 MCSection *TargetLoweringObjectFileELF::getUniqueSectionForFunction(
932     const Function &F, const TargetMachine &TM) const {
933   SectionKind Kind = SectionKind::getText();
934   unsigned Flags = getELFSectionFlags(Kind);
935   // If the function's section names is pre-determined via pragma or a
936   // section attribute, call selectExplicitSectionGlobal.
937   if (F.hasSection() || F.hasFnAttribute("implicit-section-name"))
938     return selectExplicitSectionGlobal(
939         &F, Kind, TM, getContext(), getMangler(), NextUniqueID,
940         Used.count(&F), /* ForceUnique = */true);
941   else
942     return selectELFSectionForGlobal(
943         getContext(), &F, Kind, getMangler(), TM, Used.count(&F),
944         /*EmitUniqueSection=*/true, Flags, &NextUniqueID);
945 }
946 
947 MCSection *TargetLoweringObjectFileELF::getSectionForJumpTable(
948     const Function &F, const TargetMachine &TM) const {
949   // If the function can be removed, produce a unique section so that
950   // the table doesn't prevent the removal.
951   const Comdat *C = F.getComdat();
952   bool EmitUniqueSection = TM.getFunctionSections() || C;
953   if (!EmitUniqueSection)
954     return ReadOnlySection;
955 
956   return selectELFSectionForGlobal(getContext(), &F, SectionKind::getReadOnly(),
957                                    getMangler(), TM, EmitUniqueSection,
958                                    ELF::SHF_ALLOC, &NextUniqueID,
959                                    /* AssociatedSymbol */ nullptr);
960 }
961 
962 MCSection *TargetLoweringObjectFileELF::getSectionForLSDA(
963     const Function &F, const MCSymbol &FnSym, const TargetMachine &TM) const {
964   // If neither COMDAT nor function sections, use the monolithic LSDA section.
965   // Re-use this path if LSDASection is null as in the Arm EHABI.
966   if (!LSDASection || (!F.hasComdat() && !TM.getFunctionSections()))
967     return LSDASection;
968 
969   const auto *LSDA = cast<MCSectionELF>(LSDASection);
970   unsigned Flags = LSDA->getFlags();
971   const MCSymbolELF *LinkedToSym = nullptr;
972   StringRef Group;
973   bool IsComdat = false;
974   if (const Comdat *C = getELFComdat(&F)) {
975     Flags |= ELF::SHF_GROUP;
976     Group = C->getName();
977     IsComdat = C->getSelectionKind() == Comdat::Any;
978   }
979   // Use SHF_LINK_ORDER to facilitate --gc-sections if we can use GNU ld>=2.36
980   // or LLD, which support mixed SHF_LINK_ORDER & non-SHF_LINK_ORDER.
981   if (TM.getFunctionSections() &&
982       (getContext().getAsmInfo()->useIntegratedAssembler() &&
983        getContext().getAsmInfo()->binutilsIsAtLeast(2, 36))) {
984     Flags |= ELF::SHF_LINK_ORDER;
985     LinkedToSym = cast<MCSymbolELF>(&FnSym);
986   }
987 
988   // Append the function name as the suffix like GCC, assuming
989   // -funique-section-names applies to .gcc_except_table sections.
990   return getContext().getELFSection(
991       (TM.getUniqueSectionNames() ? LSDA->getName() + "." + F.getName()
992                                   : LSDA->getName()),
993       LSDA->getType(), Flags, 0, Group, IsComdat, MCSection::NonUniqueID,
994       LinkedToSym);
995 }
996 
997 bool TargetLoweringObjectFileELF::shouldPutJumpTableInFunctionSection(
998     bool UsesLabelDifference, const Function &F) const {
999   // We can always create relative relocations, so use another section
1000   // that can be marked non-executable.
1001   return false;
1002 }
1003 
1004 /// Given a mergeable constant with the specified size and relocation
1005 /// information, return a section that it should be placed in.
1006 MCSection *TargetLoweringObjectFileELF::getSectionForConstant(
1007     const DataLayout &DL, SectionKind Kind, const Constant *C,
1008     Align &Alignment) const {
1009   if (Kind.isMergeableConst4() && MergeableConst4Section)
1010     return MergeableConst4Section;
1011   if (Kind.isMergeableConst8() && MergeableConst8Section)
1012     return MergeableConst8Section;
1013   if (Kind.isMergeableConst16() && MergeableConst16Section)
1014     return MergeableConst16Section;
1015   if (Kind.isMergeableConst32() && MergeableConst32Section)
1016     return MergeableConst32Section;
1017   if (Kind.isReadOnly())
1018     return ReadOnlySection;
1019 
1020   assert(Kind.isReadOnlyWithRel() && "Unknown section kind");
1021   return DataRelROSection;
1022 }
1023 
1024 /// Returns a unique section for the given machine basic block.
1025 MCSection *TargetLoweringObjectFileELF::getSectionForMachineBasicBlock(
1026     const Function &F, const MachineBasicBlock &MBB,
1027     const TargetMachine &TM) const {
1028   assert(MBB.isBeginSection() && "Basic block does not start a section!");
1029   unsigned UniqueID = MCContext::GenericSectionID;
1030 
1031   // For cold sections use the .text.split. prefix along with the parent
1032   // function name. All cold blocks for the same function go to the same
1033   // section. Similarly all exception blocks are grouped by symbol name
1034   // under the .text.eh prefix. For regular sections, we either use a unique
1035   // name, or a unique ID for the section.
1036   SmallString<128> Name;
1037   StringRef FunctionSectionName = MBB.getParent()->getSection()->getName();
1038   if (FunctionSectionName.equals(".text") ||
1039       FunctionSectionName.starts_with(".text.")) {
1040     // Function is in a regular .text section.
1041     StringRef FunctionName = MBB.getParent()->getName();
1042     if (MBB.getSectionID() == MBBSectionID::ColdSectionID) {
1043       Name += BBSectionsColdTextPrefix;
1044       Name += FunctionName;
1045     } else if (MBB.getSectionID() == MBBSectionID::ExceptionSectionID) {
1046       Name += ".text.eh.";
1047       Name += FunctionName;
1048     } else {
1049       Name += FunctionSectionName;
1050       if (TM.getUniqueBasicBlockSectionNames()) {
1051         if (!Name.ends_with("."))
1052           Name += ".";
1053         Name += MBB.getSymbol()->getName();
1054       } else {
1055         UniqueID = NextUniqueID++;
1056       }
1057     }
1058   } else {
1059     // If the original function has a custom non-dot-text section, then emit
1060     // all basic block sections into that section too, each with a unique id.
1061     Name = FunctionSectionName;
1062     UniqueID = NextUniqueID++;
1063   }
1064 
1065   unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_EXECINSTR;
1066   std::string GroupName;
1067   if (F.hasComdat()) {
1068     Flags |= ELF::SHF_GROUP;
1069     GroupName = F.getComdat()->getName().str();
1070   }
1071   return getContext().getELFSection(Name, ELF::SHT_PROGBITS, Flags,
1072                                     0 /* Entry Size */, GroupName,
1073                                     F.hasComdat(), UniqueID, nullptr);
1074 }
1075 
1076 static MCSectionELF *getStaticStructorSection(MCContext &Ctx, bool UseInitArray,
1077                                               bool IsCtor, unsigned Priority,
1078                                               const MCSymbol *KeySym) {
1079   std::string Name;
1080   unsigned Type;
1081   unsigned Flags = ELF::SHF_ALLOC | ELF::SHF_WRITE;
1082   StringRef Comdat = KeySym ? KeySym->getName() : "";
1083 
1084   if (KeySym)
1085     Flags |= ELF::SHF_GROUP;
1086 
1087   if (UseInitArray) {
1088     if (IsCtor) {
1089       Type = ELF::SHT_INIT_ARRAY;
1090       Name = ".init_array";
1091     } else {
1092       Type = ELF::SHT_FINI_ARRAY;
1093       Name = ".fini_array";
1094     }
1095     if (Priority != 65535) {
1096       Name += '.';
1097       Name += utostr(Priority);
1098     }
1099   } else {
1100     // The default scheme is .ctor / .dtor, so we have to invert the priority
1101     // numbering.
1102     if (IsCtor)
1103       Name = ".ctors";
1104     else
1105       Name = ".dtors";
1106     if (Priority != 65535)
1107       raw_string_ostream(Name) << format(".%05u", 65535 - Priority);
1108     Type = ELF::SHT_PROGBITS;
1109   }
1110 
1111   return Ctx.getELFSection(Name, Type, Flags, 0, Comdat, /*IsComdat=*/true);
1112 }
1113 
1114 MCSection *TargetLoweringObjectFileELF::getStaticCtorSection(
1115     unsigned Priority, const MCSymbol *KeySym) const {
1116   return getStaticStructorSection(getContext(), UseInitArray, true, Priority,
1117                                   KeySym);
1118 }
1119 
1120 MCSection *TargetLoweringObjectFileELF::getStaticDtorSection(
1121     unsigned Priority, const MCSymbol *KeySym) const {
1122   return getStaticStructorSection(getContext(), UseInitArray, false, Priority,
1123                                   KeySym);
1124 }
1125 
1126 const MCExpr *TargetLoweringObjectFileELF::lowerRelativeReference(
1127     const GlobalValue *LHS, const GlobalValue *RHS,
1128     const TargetMachine &TM) const {
1129   // We may only use a PLT-relative relocation to refer to unnamed_addr
1130   // functions.
1131   if (!LHS->hasGlobalUnnamedAddr() || !LHS->getValueType()->isFunctionTy())
1132     return nullptr;
1133 
1134   // Basic correctness checks.
1135   if (LHS->getType()->getPointerAddressSpace() != 0 ||
1136       RHS->getType()->getPointerAddressSpace() != 0 || LHS->isThreadLocal() ||
1137       RHS->isThreadLocal())
1138     return nullptr;
1139 
1140   return MCBinaryExpr::createSub(
1141       MCSymbolRefExpr::create(TM.getSymbol(LHS), PLTRelativeVariantKind,
1142                               getContext()),
1143       MCSymbolRefExpr::create(TM.getSymbol(RHS), getContext()), getContext());
1144 }
1145 
1146 const MCExpr *TargetLoweringObjectFileELF::lowerDSOLocalEquivalent(
1147     const DSOLocalEquivalent *Equiv, const TargetMachine &TM) const {
1148   assert(supportDSOLocalEquivalentLowering());
1149 
1150   const auto *GV = Equiv->getGlobalValue();
1151 
1152   // A PLT entry is not needed for dso_local globals.
1153   if (GV->isDSOLocal() || GV->isImplicitDSOLocal())
1154     return MCSymbolRefExpr::create(TM.getSymbol(GV), getContext());
1155 
1156   return MCSymbolRefExpr::create(TM.getSymbol(GV), PLTRelativeVariantKind,
1157                                  getContext());
1158 }
1159 
1160 MCSection *TargetLoweringObjectFileELF::getSectionForCommandLines() const {
1161   // Use ".GCC.command.line" since this feature is to support clang's
1162   // -frecord-gcc-switches which in turn attempts to mimic GCC's switch of the
1163   // same name.
1164   return getContext().getELFSection(".GCC.command.line", ELF::SHT_PROGBITS,
1165                                     ELF::SHF_MERGE | ELF::SHF_STRINGS, 1);
1166 }
1167 
1168 void
1169 TargetLoweringObjectFileELF::InitializeELF(bool UseInitArray_) {
1170   UseInitArray = UseInitArray_;
1171   MCContext &Ctx = getContext();
1172   if (!UseInitArray) {
1173     StaticCtorSection = Ctx.getELFSection(".ctors", ELF::SHT_PROGBITS,
1174                                           ELF::SHF_ALLOC | ELF::SHF_WRITE);
1175 
1176     StaticDtorSection = Ctx.getELFSection(".dtors", ELF::SHT_PROGBITS,
1177                                           ELF::SHF_ALLOC | ELF::SHF_WRITE);
1178     return;
1179   }
1180 
1181   StaticCtorSection = Ctx.getELFSection(".init_array", ELF::SHT_INIT_ARRAY,
1182                                         ELF::SHF_WRITE | ELF::SHF_ALLOC);
1183   StaticDtorSection = Ctx.getELFSection(".fini_array", ELF::SHT_FINI_ARRAY,
1184                                         ELF::SHF_WRITE | ELF::SHF_ALLOC);
1185 }
1186 
1187 //===----------------------------------------------------------------------===//
1188 //                                 MachO
1189 //===----------------------------------------------------------------------===//
1190 
1191 TargetLoweringObjectFileMachO::TargetLoweringObjectFileMachO() {
1192   SupportIndirectSymViaGOTPCRel = true;
1193 }
1194 
1195 void TargetLoweringObjectFileMachO::Initialize(MCContext &Ctx,
1196                                                const TargetMachine &TM) {
1197   TargetLoweringObjectFile::Initialize(Ctx, TM);
1198   if (TM.getRelocationModel() == Reloc::Static) {
1199     StaticCtorSection = Ctx.getMachOSection("__TEXT", "__constructor", 0,
1200                                             SectionKind::getData());
1201     StaticDtorSection = Ctx.getMachOSection("__TEXT", "__destructor", 0,
1202                                             SectionKind::getData());
1203   } else {
1204     StaticCtorSection = Ctx.getMachOSection("__DATA", "__mod_init_func",
1205                                             MachO::S_MOD_INIT_FUNC_POINTERS,
1206                                             SectionKind::getData());
1207     StaticDtorSection = Ctx.getMachOSection("__DATA", "__mod_term_func",
1208                                             MachO::S_MOD_TERM_FUNC_POINTERS,
1209                                             SectionKind::getData());
1210   }
1211 
1212   PersonalityEncoding =
1213       dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
1214   LSDAEncoding = dwarf::DW_EH_PE_pcrel;
1215   TTypeEncoding =
1216       dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_pcrel | dwarf::DW_EH_PE_sdata4;
1217 }
1218 
1219 MCSection *TargetLoweringObjectFileMachO::getStaticDtorSection(
1220     unsigned Priority, const MCSymbol *KeySym) const {
1221   return StaticDtorSection;
1222   // In userspace, we lower global destructors via atexit(), but kernel/kext
1223   // environments do not provide this function so we still need to support the
1224   // legacy way here.
1225   // See the -disable-atexit-based-global-dtor-lowering CodeGen flag for more
1226   // context.
1227 }
1228 
1229 void TargetLoweringObjectFileMachO::emitModuleMetadata(MCStreamer &Streamer,
1230                                                        Module &M) const {
1231   // Emit the linker options if present.
1232   if (auto *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) {
1233     for (const auto *Option : LinkerOptions->operands()) {
1234       SmallVector<std::string, 4> StrOptions;
1235       for (const auto &Piece : cast<MDNode>(Option)->operands())
1236         StrOptions.push_back(std::string(cast<MDString>(Piece)->getString()));
1237       Streamer.emitLinkerOptions(StrOptions);
1238     }
1239   }
1240 
1241   unsigned VersionVal = 0;
1242   unsigned ImageInfoFlags = 0;
1243   StringRef SectionVal;
1244 
1245   GetObjCImageInfo(M, VersionVal, ImageInfoFlags, SectionVal);
1246   emitCGProfileMetadata(Streamer, M);
1247 
1248   // The section is mandatory. If we don't have it, then we don't have GC info.
1249   if (SectionVal.empty())
1250     return;
1251 
1252   StringRef Segment, Section;
1253   unsigned TAA = 0, StubSize = 0;
1254   bool TAAParsed;
1255   if (Error E = MCSectionMachO::ParseSectionSpecifier(
1256           SectionVal, Segment, Section, TAA, TAAParsed, StubSize)) {
1257     // If invalid, report the error with report_fatal_error.
1258     report_fatal_error("Invalid section specifier '" + Section +
1259                        "': " + toString(std::move(E)) + ".");
1260   }
1261 
1262   // Get the section.
1263   MCSectionMachO *S = getContext().getMachOSection(
1264       Segment, Section, TAA, StubSize, SectionKind::getData());
1265   Streamer.switchSection(S);
1266   Streamer.emitLabel(getContext().
1267                      getOrCreateSymbol(StringRef("L_OBJC_IMAGE_INFO")));
1268   Streamer.emitInt32(VersionVal);
1269   Streamer.emitInt32(ImageInfoFlags);
1270   Streamer.addBlankLine();
1271 }
1272 
1273 static void checkMachOComdat(const GlobalValue *GV) {
1274   const Comdat *C = GV->getComdat();
1275   if (!C)
1276     return;
1277 
1278   report_fatal_error("MachO doesn't support COMDATs, '" + C->getName() +
1279                      "' cannot be lowered.");
1280 }
1281 
1282 MCSection *TargetLoweringObjectFileMachO::getExplicitSectionGlobal(
1283     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
1284 
1285   StringRef SectionName = GO->getSection();
1286 
1287   const GlobalVariable *GV = dyn_cast<GlobalVariable>(GO);
1288   if (GV && GV->hasImplicitSection()) {
1289     auto Attrs = GV->getAttributes();
1290     if (Attrs.hasAttribute("bss-section") && Kind.isBSS()) {
1291       SectionName = Attrs.getAttribute("bss-section").getValueAsString();
1292     } else if (Attrs.hasAttribute("rodata-section") && Kind.isReadOnly()) {
1293       SectionName = Attrs.getAttribute("rodata-section").getValueAsString();
1294     } else if (Attrs.hasAttribute("relro-section") && Kind.isReadOnlyWithRel()) {
1295       SectionName = Attrs.getAttribute("relro-section").getValueAsString();
1296     } else if (Attrs.hasAttribute("data-section") && Kind.isData()) {
1297       SectionName = Attrs.getAttribute("data-section").getValueAsString();
1298     }
1299   }
1300 
1301   const Function *F = dyn_cast<Function>(GO);
1302   if (F && F->hasFnAttribute("implicit-section-name")) {
1303     SectionName = F->getFnAttribute("implicit-section-name").getValueAsString();
1304   }
1305 
1306   // Parse the section specifier and create it if valid.
1307   StringRef Segment, Section;
1308   unsigned TAA = 0, StubSize = 0;
1309   bool TAAParsed;
1310 
1311   checkMachOComdat(GO);
1312 
1313   if (Error E = MCSectionMachO::ParseSectionSpecifier(
1314           SectionName, Segment, Section, TAA, TAAParsed, StubSize)) {
1315     // If invalid, report the error with report_fatal_error.
1316     report_fatal_error("Global variable '" + GO->getName() +
1317                        "' has an invalid section specifier '" +
1318                        GO->getSection() + "': " + toString(std::move(E)) + ".");
1319   }
1320 
1321   // Get the section.
1322   MCSectionMachO *S =
1323       getContext().getMachOSection(Segment, Section, TAA, StubSize, Kind);
1324 
1325   // If TAA wasn't set by ParseSectionSpecifier() above,
1326   // use the value returned by getMachOSection() as a default.
1327   if (!TAAParsed)
1328     TAA = S->getTypeAndAttributes();
1329 
1330   // Okay, now that we got the section, verify that the TAA & StubSize agree.
1331   // If the user declared multiple globals with different section flags, we need
1332   // to reject it here.
1333   if (S->getTypeAndAttributes() != TAA || S->getStubSize() != StubSize) {
1334     // If invalid, report the error with report_fatal_error.
1335     report_fatal_error("Global variable '" + GO->getName() +
1336                        "' section type or attributes does not match previous"
1337                        " section specifier");
1338   }
1339 
1340   return S;
1341 }
1342 
1343 MCSection *TargetLoweringObjectFileMachO::SelectSectionForGlobal(
1344     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
1345   checkMachOComdat(GO);
1346 
1347   // Handle thread local data.
1348   if (Kind.isThreadBSS()) return TLSBSSSection;
1349   if (Kind.isThreadData()) return TLSDataSection;
1350 
1351   if (Kind.isText())
1352     return GO->isWeakForLinker() ? TextCoalSection : TextSection;
1353 
1354   // If this is weak/linkonce, put this in a coalescable section, either in text
1355   // or data depending on if it is writable.
1356   if (GO->isWeakForLinker()) {
1357     if (Kind.isReadOnly())
1358       return ConstTextCoalSection;
1359     if (Kind.isReadOnlyWithRel())
1360       return ConstDataCoalSection;
1361     return DataCoalSection;
1362   }
1363 
1364   // FIXME: Alignment check should be handled by section classifier.
1365   if (Kind.isMergeable1ByteCString() &&
1366       GO->getParent()->getDataLayout().getPreferredAlign(
1367           cast<GlobalVariable>(GO)) < Align(32))
1368     return CStringSection;
1369 
1370   // Do not put 16-bit arrays in the UString section if they have an
1371   // externally visible label, this runs into issues with certain linker
1372   // versions.
1373   if (Kind.isMergeable2ByteCString() && !GO->hasExternalLinkage() &&
1374       GO->getParent()->getDataLayout().getPreferredAlign(
1375           cast<GlobalVariable>(GO)) < Align(32))
1376     return UStringSection;
1377 
1378   // With MachO only variables whose corresponding symbol starts with 'l' or
1379   // 'L' can be merged, so we only try merging GVs with private linkage.
1380   if (GO->hasPrivateLinkage() && Kind.isMergeableConst()) {
1381     if (Kind.isMergeableConst4())
1382       return FourByteConstantSection;
1383     if (Kind.isMergeableConst8())
1384       return EightByteConstantSection;
1385     if (Kind.isMergeableConst16())
1386       return SixteenByteConstantSection;
1387   }
1388 
1389   // Otherwise, if it is readonly, but not something we can specially optimize,
1390   // just drop it in .const.
1391   if (Kind.isReadOnly())
1392     return ReadOnlySection;
1393 
1394   // If this is marked const, put it into a const section.  But if the dynamic
1395   // linker needs to write to it, put it in the data segment.
1396   if (Kind.isReadOnlyWithRel())
1397     return ConstDataSection;
1398 
1399   // Put zero initialized globals with strong external linkage in the
1400   // DATA, __common section with the .zerofill directive.
1401   if (Kind.isBSSExtern())
1402     return DataCommonSection;
1403 
1404   // Put zero initialized globals with local linkage in __DATA,__bss directive
1405   // with the .zerofill directive (aka .lcomm).
1406   if (Kind.isBSSLocal())
1407     return DataBSSSection;
1408 
1409   // Otherwise, just drop the variable in the normal data section.
1410   return DataSection;
1411 }
1412 
1413 MCSection *TargetLoweringObjectFileMachO::getSectionForConstant(
1414     const DataLayout &DL, SectionKind Kind, const Constant *C,
1415     Align &Alignment) const {
1416   // If this constant requires a relocation, we have to put it in the data
1417   // segment, not in the text segment.
1418   if (Kind.isData() || Kind.isReadOnlyWithRel())
1419     return ConstDataSection;
1420 
1421   if (Kind.isMergeableConst4())
1422     return FourByteConstantSection;
1423   if (Kind.isMergeableConst8())
1424     return EightByteConstantSection;
1425   if (Kind.isMergeableConst16())
1426     return SixteenByteConstantSection;
1427   return ReadOnlySection;  // .const
1428 }
1429 
1430 MCSection *TargetLoweringObjectFileMachO::getSectionForCommandLines() const {
1431   return getContext().getMachOSection("__TEXT", "__command_line", 0,
1432                                       SectionKind::getReadOnly());
1433 }
1434 
1435 const MCExpr *TargetLoweringObjectFileMachO::getTTypeGlobalReference(
1436     const GlobalValue *GV, unsigned Encoding, const TargetMachine &TM,
1437     MachineModuleInfo *MMI, MCStreamer &Streamer) const {
1438   // The mach-o version of this method defaults to returning a stub reference.
1439 
1440   if (Encoding & DW_EH_PE_indirect) {
1441     MachineModuleInfoMachO &MachOMMI =
1442       MMI->getObjFileInfo<MachineModuleInfoMachO>();
1443 
1444     MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, "$non_lazy_ptr", TM);
1445 
1446     // Add information about the stub reference to MachOMMI so that the stub
1447     // gets emitted by the asmprinter.
1448     MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(SSym);
1449     if (!StubSym.getPointer()) {
1450       MCSymbol *Sym = TM.getSymbol(GV);
1451       StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage());
1452     }
1453 
1454     return TargetLoweringObjectFile::
1455       getTTypeReference(MCSymbolRefExpr::create(SSym, getContext()),
1456                         Encoding & ~DW_EH_PE_indirect, Streamer);
1457   }
1458 
1459   return TargetLoweringObjectFile::getTTypeGlobalReference(GV, Encoding, TM,
1460                                                            MMI, Streamer);
1461 }
1462 
1463 MCSymbol *TargetLoweringObjectFileMachO::getCFIPersonalitySymbol(
1464     const GlobalValue *GV, const TargetMachine &TM,
1465     MachineModuleInfo *MMI) const {
1466   // The mach-o version of this method defaults to returning a stub reference.
1467   MachineModuleInfoMachO &MachOMMI =
1468     MMI->getObjFileInfo<MachineModuleInfoMachO>();
1469 
1470   MCSymbol *SSym = getSymbolWithGlobalValueBase(GV, "$non_lazy_ptr", TM);
1471 
1472   // Add information about the stub reference to MachOMMI so that the stub
1473   // gets emitted by the asmprinter.
1474   MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(SSym);
1475   if (!StubSym.getPointer()) {
1476     MCSymbol *Sym = TM.getSymbol(GV);
1477     StubSym = MachineModuleInfoImpl::StubValueTy(Sym, !GV->hasLocalLinkage());
1478   }
1479 
1480   return SSym;
1481 }
1482 
1483 const MCExpr *TargetLoweringObjectFileMachO::getIndirectSymViaGOTPCRel(
1484     const GlobalValue *GV, const MCSymbol *Sym, const MCValue &MV,
1485     int64_t Offset, MachineModuleInfo *MMI, MCStreamer &Streamer) const {
1486   // Although MachO 32-bit targets do not explicitly have a GOTPCREL relocation
1487   // as 64-bit do, we replace the GOT equivalent by accessing the final symbol
1488   // through a non_lazy_ptr stub instead. One advantage is that it allows the
1489   // computation of deltas to final external symbols. Example:
1490   //
1491   //    _extgotequiv:
1492   //       .long   _extfoo
1493   //
1494   //    _delta:
1495   //       .long   _extgotequiv-_delta
1496   //
1497   // is transformed to:
1498   //
1499   //    _delta:
1500   //       .long   L_extfoo$non_lazy_ptr-(_delta+0)
1501   //
1502   //       .section        __IMPORT,__pointers,non_lazy_symbol_pointers
1503   //    L_extfoo$non_lazy_ptr:
1504   //       .indirect_symbol        _extfoo
1505   //       .long   0
1506   //
1507   // The indirect symbol table (and sections of non_lazy_symbol_pointers type)
1508   // may point to both local (same translation unit) and global (other
1509   // translation units) symbols. Example:
1510   //
1511   // .section __DATA,__pointers,non_lazy_symbol_pointers
1512   // L1:
1513   //    .indirect_symbol _myGlobal
1514   //    .long 0
1515   // L2:
1516   //    .indirect_symbol _myLocal
1517   //    .long _myLocal
1518   //
1519   // If the symbol is local, instead of the symbol's index, the assembler
1520   // places the constant INDIRECT_SYMBOL_LOCAL into the indirect symbol table.
1521   // Then the linker will notice the constant in the table and will look at the
1522   // content of the symbol.
1523   MachineModuleInfoMachO &MachOMMI =
1524     MMI->getObjFileInfo<MachineModuleInfoMachO>();
1525   MCContext &Ctx = getContext();
1526 
1527   // The offset must consider the original displacement from the base symbol
1528   // since 32-bit targets don't have a GOTPCREL to fold the PC displacement.
1529   Offset = -MV.getConstant();
1530   const MCSymbol *BaseSym = &MV.getSymB()->getSymbol();
1531 
1532   // Access the final symbol via sym$non_lazy_ptr and generate the appropriated
1533   // non_lazy_ptr stubs.
1534   SmallString<128> Name;
1535   StringRef Suffix = "$non_lazy_ptr";
1536   Name += MMI->getModule()->getDataLayout().getPrivateGlobalPrefix();
1537   Name += Sym->getName();
1538   Name += Suffix;
1539   MCSymbol *Stub = Ctx.getOrCreateSymbol(Name);
1540 
1541   MachineModuleInfoImpl::StubValueTy &StubSym = MachOMMI.getGVStubEntry(Stub);
1542 
1543   if (!StubSym.getPointer())
1544     StubSym = MachineModuleInfoImpl::StubValueTy(const_cast<MCSymbol *>(Sym),
1545                                                  !GV->hasLocalLinkage());
1546 
1547   const MCExpr *BSymExpr =
1548     MCSymbolRefExpr::create(BaseSym, MCSymbolRefExpr::VK_None, Ctx);
1549   const MCExpr *LHS =
1550     MCSymbolRefExpr::create(Stub, MCSymbolRefExpr::VK_None, Ctx);
1551 
1552   if (!Offset)
1553     return MCBinaryExpr::createSub(LHS, BSymExpr, Ctx);
1554 
1555   const MCExpr *RHS =
1556     MCBinaryExpr::createAdd(BSymExpr, MCConstantExpr::create(Offset, Ctx), Ctx);
1557   return MCBinaryExpr::createSub(LHS, RHS, Ctx);
1558 }
1559 
1560 static bool canUsePrivateLabel(const MCAsmInfo &AsmInfo,
1561                                const MCSection &Section) {
1562   if (!AsmInfo.isSectionAtomizableBySymbols(Section))
1563     return true;
1564 
1565   // FIXME: we should be able to use private labels for sections that can't be
1566   // dead-stripped (there's no issue with blocking atomization there), but `ld
1567   // -r` sometimes drops the no_dead_strip attribute from sections so for safety
1568   // we don't allow it.
1569   return false;
1570 }
1571 
1572 void TargetLoweringObjectFileMachO::getNameWithPrefix(
1573     SmallVectorImpl<char> &OutName, const GlobalValue *GV,
1574     const TargetMachine &TM) const {
1575   bool CannotUsePrivateLabel = true;
1576   if (auto *GO = GV->getAliaseeObject()) {
1577     SectionKind GOKind = TargetLoweringObjectFile::getKindForGlobal(GO, TM);
1578     const MCSection *TheSection = SectionForGlobal(GO, GOKind, TM);
1579     CannotUsePrivateLabel =
1580         !canUsePrivateLabel(*TM.getMCAsmInfo(), *TheSection);
1581   }
1582   getMangler().getNameWithPrefix(OutName, GV, CannotUsePrivateLabel);
1583 }
1584 
1585 //===----------------------------------------------------------------------===//
1586 //                                  COFF
1587 //===----------------------------------------------------------------------===//
1588 
1589 static unsigned
1590 getCOFFSectionFlags(SectionKind K, const TargetMachine &TM) {
1591   unsigned Flags = 0;
1592   bool isThumb = TM.getTargetTriple().getArch() == Triple::thumb;
1593 
1594   if (K.isMetadata())
1595     Flags |=
1596       COFF::IMAGE_SCN_MEM_DISCARDABLE;
1597   else if (K.isExclude())
1598     Flags |=
1599       COFF::IMAGE_SCN_LNK_REMOVE | COFF::IMAGE_SCN_MEM_DISCARDABLE;
1600   else if (K.isText())
1601     Flags |=
1602       COFF::IMAGE_SCN_MEM_EXECUTE |
1603       COFF::IMAGE_SCN_MEM_READ |
1604       COFF::IMAGE_SCN_CNT_CODE |
1605       (isThumb ? COFF::IMAGE_SCN_MEM_16BIT : (COFF::SectionCharacteristics)0);
1606   else if (K.isBSS())
1607     Flags |=
1608       COFF::IMAGE_SCN_CNT_UNINITIALIZED_DATA |
1609       COFF::IMAGE_SCN_MEM_READ |
1610       COFF::IMAGE_SCN_MEM_WRITE;
1611   else if (K.isThreadLocal())
1612     Flags |=
1613       COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1614       COFF::IMAGE_SCN_MEM_READ |
1615       COFF::IMAGE_SCN_MEM_WRITE;
1616   else if (K.isReadOnly() || K.isReadOnlyWithRel())
1617     Flags |=
1618       COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1619       COFF::IMAGE_SCN_MEM_READ;
1620   else if (K.isWriteable())
1621     Flags |=
1622       COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1623       COFF::IMAGE_SCN_MEM_READ |
1624       COFF::IMAGE_SCN_MEM_WRITE;
1625 
1626   return Flags;
1627 }
1628 
1629 static const GlobalValue *getComdatGVForCOFF(const GlobalValue *GV) {
1630   const Comdat *C = GV->getComdat();
1631   assert(C && "expected GV to have a Comdat!");
1632 
1633   StringRef ComdatGVName = C->getName();
1634   const GlobalValue *ComdatGV = GV->getParent()->getNamedValue(ComdatGVName);
1635   if (!ComdatGV)
1636     report_fatal_error("Associative COMDAT symbol '" + ComdatGVName +
1637                        "' does not exist.");
1638 
1639   if (ComdatGV->getComdat() != C)
1640     report_fatal_error("Associative COMDAT symbol '" + ComdatGVName +
1641                        "' is not a key for its COMDAT.");
1642 
1643   return ComdatGV;
1644 }
1645 
1646 static int getSelectionForCOFF(const GlobalValue *GV) {
1647   if (const Comdat *C = GV->getComdat()) {
1648     const GlobalValue *ComdatKey = getComdatGVForCOFF(GV);
1649     if (const auto *GA = dyn_cast<GlobalAlias>(ComdatKey))
1650       ComdatKey = GA->getAliaseeObject();
1651     if (ComdatKey == GV) {
1652       switch (C->getSelectionKind()) {
1653       case Comdat::Any:
1654         return COFF::IMAGE_COMDAT_SELECT_ANY;
1655       case Comdat::ExactMatch:
1656         return COFF::IMAGE_COMDAT_SELECT_EXACT_MATCH;
1657       case Comdat::Largest:
1658         return COFF::IMAGE_COMDAT_SELECT_LARGEST;
1659       case Comdat::NoDeduplicate:
1660         return COFF::IMAGE_COMDAT_SELECT_NODUPLICATES;
1661       case Comdat::SameSize:
1662         return COFF::IMAGE_COMDAT_SELECT_SAME_SIZE;
1663       }
1664     } else {
1665       return COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE;
1666     }
1667   }
1668   return 0;
1669 }
1670 
1671 MCSection *TargetLoweringObjectFileCOFF::getExplicitSectionGlobal(
1672     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
1673   StringRef Name = GO->getSection();
1674   if (Name == getInstrProfSectionName(IPSK_covmap, Triple::COFF,
1675                                       /*AddSegmentInfo=*/false) ||
1676       Name == getInstrProfSectionName(IPSK_covfun, Triple::COFF,
1677                                       /*AddSegmentInfo=*/false) ||
1678       Name == getInstrProfSectionName(IPSK_covdata, Triple::COFF,
1679                                       /*AddSegmentInfo=*/false) ||
1680       Name == getInstrProfSectionName(IPSK_covname, Triple::COFF,
1681                                       /*AddSegmentInfo=*/false))
1682     Kind = SectionKind::getMetadata();
1683   int Selection = 0;
1684   unsigned Characteristics = getCOFFSectionFlags(Kind, TM);
1685   StringRef COMDATSymName = "";
1686   if (GO->hasComdat()) {
1687     Selection = getSelectionForCOFF(GO);
1688     const GlobalValue *ComdatGV;
1689     if (Selection == COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE)
1690       ComdatGV = getComdatGVForCOFF(GO);
1691     else
1692       ComdatGV = GO;
1693 
1694     if (!ComdatGV->hasPrivateLinkage()) {
1695       MCSymbol *Sym = TM.getSymbol(ComdatGV);
1696       COMDATSymName = Sym->getName();
1697       Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT;
1698     } else {
1699       Selection = 0;
1700     }
1701   }
1702 
1703   return getContext().getCOFFSection(Name, Characteristics, Kind, COMDATSymName,
1704                                      Selection);
1705 }
1706 
1707 static StringRef getCOFFSectionNameForUniqueGlobal(SectionKind Kind) {
1708   if (Kind.isText())
1709     return ".text";
1710   if (Kind.isBSS())
1711     return ".bss";
1712   if (Kind.isThreadLocal())
1713     return ".tls$";
1714   if (Kind.isReadOnly() || Kind.isReadOnlyWithRel())
1715     return ".rdata";
1716   return ".data";
1717 }
1718 
1719 MCSection *TargetLoweringObjectFileCOFF::SelectSectionForGlobal(
1720     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
1721   // If we have -ffunction-sections then we should emit the global value to a
1722   // uniqued section specifically for it.
1723   bool EmitUniquedSection;
1724   if (Kind.isText())
1725     EmitUniquedSection = TM.getFunctionSections();
1726   else
1727     EmitUniquedSection = TM.getDataSections();
1728 
1729   if ((EmitUniquedSection && !Kind.isCommon()) || GO->hasComdat()) {
1730     SmallString<256> Name = getCOFFSectionNameForUniqueGlobal(Kind);
1731 
1732     unsigned Characteristics = getCOFFSectionFlags(Kind, TM);
1733 
1734     Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT;
1735     int Selection = getSelectionForCOFF(GO);
1736     if (!Selection)
1737       Selection = COFF::IMAGE_COMDAT_SELECT_NODUPLICATES;
1738     const GlobalValue *ComdatGV;
1739     if (GO->hasComdat())
1740       ComdatGV = getComdatGVForCOFF(GO);
1741     else
1742       ComdatGV = GO;
1743 
1744     unsigned UniqueID = MCContext::GenericSectionID;
1745     if (EmitUniquedSection)
1746       UniqueID = NextUniqueID++;
1747 
1748     if (!ComdatGV->hasPrivateLinkage()) {
1749       MCSymbol *Sym = TM.getSymbol(ComdatGV);
1750       StringRef COMDATSymName = Sym->getName();
1751 
1752       if (const auto *F = dyn_cast<Function>(GO))
1753         if (std::optional<StringRef> Prefix = F->getSectionPrefix())
1754           raw_svector_ostream(Name) << '$' << *Prefix;
1755 
1756       // Append "$symbol" to the section name *before* IR-level mangling is
1757       // applied when targetting mingw. This is what GCC does, and the ld.bfd
1758       // COFF linker will not properly handle comdats otherwise.
1759       if (getContext().getTargetTriple().isWindowsGNUEnvironment())
1760         raw_svector_ostream(Name) << '$' << ComdatGV->getName();
1761 
1762       return getContext().getCOFFSection(Name, Characteristics, Kind,
1763                                          COMDATSymName, Selection, UniqueID);
1764     } else {
1765       SmallString<256> TmpData;
1766       getMangler().getNameWithPrefix(TmpData, GO, /*CannotUsePrivateLabel=*/true);
1767       return getContext().getCOFFSection(Name, Characteristics, Kind, TmpData,
1768                                          Selection, UniqueID);
1769     }
1770   }
1771 
1772   if (Kind.isText())
1773     return TextSection;
1774 
1775   if (Kind.isThreadLocal())
1776     return TLSDataSection;
1777 
1778   if (Kind.isReadOnly() || Kind.isReadOnlyWithRel())
1779     return ReadOnlySection;
1780 
1781   // Note: we claim that common symbols are put in BSSSection, but they are
1782   // really emitted with the magic .comm directive, which creates a symbol table
1783   // entry but not a section.
1784   if (Kind.isBSS() || Kind.isCommon())
1785     return BSSSection;
1786 
1787   return DataSection;
1788 }
1789 
1790 void TargetLoweringObjectFileCOFF::getNameWithPrefix(
1791     SmallVectorImpl<char> &OutName, const GlobalValue *GV,
1792     const TargetMachine &TM) const {
1793   bool CannotUsePrivateLabel = false;
1794   if (GV->hasPrivateLinkage() &&
1795       ((isa<Function>(GV) && TM.getFunctionSections()) ||
1796        (isa<GlobalVariable>(GV) && TM.getDataSections())))
1797     CannotUsePrivateLabel = true;
1798 
1799   getMangler().getNameWithPrefix(OutName, GV, CannotUsePrivateLabel);
1800 }
1801 
1802 MCSection *TargetLoweringObjectFileCOFF::getSectionForJumpTable(
1803     const Function &F, const TargetMachine &TM) const {
1804   // If the function can be removed, produce a unique section so that
1805   // the table doesn't prevent the removal.
1806   const Comdat *C = F.getComdat();
1807   bool EmitUniqueSection = TM.getFunctionSections() || C;
1808   if (!EmitUniqueSection)
1809     return ReadOnlySection;
1810 
1811   // FIXME: we should produce a symbol for F instead.
1812   if (F.hasPrivateLinkage())
1813     return ReadOnlySection;
1814 
1815   MCSymbol *Sym = TM.getSymbol(&F);
1816   StringRef COMDATSymName = Sym->getName();
1817 
1818   SectionKind Kind = SectionKind::getReadOnly();
1819   StringRef SecName = getCOFFSectionNameForUniqueGlobal(Kind);
1820   unsigned Characteristics = getCOFFSectionFlags(Kind, TM);
1821   Characteristics |= COFF::IMAGE_SCN_LNK_COMDAT;
1822   unsigned UniqueID = NextUniqueID++;
1823 
1824   return getContext().getCOFFSection(
1825       SecName, Characteristics, Kind, COMDATSymName,
1826       COFF::IMAGE_COMDAT_SELECT_ASSOCIATIVE, UniqueID);
1827 }
1828 
1829 bool TargetLoweringObjectFileCOFF::shouldPutJumpTableInFunctionSection(
1830     bool UsesLabelDifference, const Function &F) const {
1831   if (TM->getTargetTriple().getArch() == Triple::x86_64) {
1832     if (!JumpTableInFunctionSection) {
1833       // We can always create relative relocations, so use another section
1834       // that can be marked non-executable.
1835       return false;
1836     }
1837   }
1838   return TargetLoweringObjectFile::shouldPutJumpTableInFunctionSection(
1839     UsesLabelDifference, F);
1840 }
1841 
1842 void TargetLoweringObjectFileCOFF::emitModuleMetadata(MCStreamer &Streamer,
1843                                                       Module &M) const {
1844   emitLinkerDirectives(Streamer, M);
1845 
1846   unsigned Version = 0;
1847   unsigned Flags = 0;
1848   StringRef Section;
1849 
1850   GetObjCImageInfo(M, Version, Flags, Section);
1851   if (!Section.empty()) {
1852     auto &C = getContext();
1853     auto *S = C.getCOFFSection(Section,
1854                                COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1855                                    COFF::IMAGE_SCN_MEM_READ,
1856                                SectionKind::getReadOnly());
1857     Streamer.switchSection(S);
1858     Streamer.emitLabel(C.getOrCreateSymbol(StringRef("OBJC_IMAGE_INFO")));
1859     Streamer.emitInt32(Version);
1860     Streamer.emitInt32(Flags);
1861     Streamer.addBlankLine();
1862   }
1863 
1864   emitCGProfileMetadata(Streamer, M);
1865 }
1866 
1867 void TargetLoweringObjectFileCOFF::emitLinkerDirectives(
1868     MCStreamer &Streamer, Module &M) const {
1869   if (NamedMDNode *LinkerOptions = M.getNamedMetadata("llvm.linker.options")) {
1870     // Emit the linker options to the linker .drectve section.  According to the
1871     // spec, this section is a space-separated string containing flags for
1872     // linker.
1873     MCSection *Sec = getDrectveSection();
1874     Streamer.switchSection(Sec);
1875     for (const auto *Option : LinkerOptions->operands()) {
1876       for (const auto &Piece : cast<MDNode>(Option)->operands()) {
1877         // Lead with a space for consistency with our dllexport implementation.
1878         std::string Directive(" ");
1879         Directive.append(std::string(cast<MDString>(Piece)->getString()));
1880         Streamer.emitBytes(Directive);
1881       }
1882     }
1883   }
1884 
1885   // Emit /EXPORT: flags for each exported global as necessary.
1886   std::string Flags;
1887   for (const GlobalValue &GV : M.global_values()) {
1888     raw_string_ostream OS(Flags);
1889     emitLinkerFlagsForGlobalCOFF(OS, &GV, getContext().getTargetTriple(),
1890                                  getMangler());
1891     OS.flush();
1892     if (!Flags.empty()) {
1893       Streamer.switchSection(getDrectveSection());
1894       Streamer.emitBytes(Flags);
1895     }
1896     Flags.clear();
1897   }
1898 
1899   // Emit /INCLUDE: flags for each used global as necessary.
1900   if (const auto *LU = M.getNamedGlobal("llvm.used")) {
1901     assert(LU->hasInitializer() && "expected llvm.used to have an initializer");
1902     assert(isa<ArrayType>(LU->getValueType()) &&
1903            "expected llvm.used to be an array type");
1904     if (const auto *A = cast<ConstantArray>(LU->getInitializer())) {
1905       for (const Value *Op : A->operands()) {
1906         const auto *GV = cast<GlobalValue>(Op->stripPointerCasts());
1907         // Global symbols with internal or private linkage are not visible to
1908         // the linker, and thus would cause an error when the linker tried to
1909         // preserve the symbol due to the `/include:` directive.
1910         if (GV->hasLocalLinkage())
1911           continue;
1912 
1913         raw_string_ostream OS(Flags);
1914         emitLinkerFlagsForUsedCOFF(OS, GV, getContext().getTargetTriple(),
1915                                    getMangler());
1916         OS.flush();
1917 
1918         if (!Flags.empty()) {
1919           Streamer.switchSection(getDrectveSection());
1920           Streamer.emitBytes(Flags);
1921         }
1922         Flags.clear();
1923       }
1924     }
1925   }
1926 }
1927 
1928 void TargetLoweringObjectFileCOFF::Initialize(MCContext &Ctx,
1929                                               const TargetMachine &TM) {
1930   TargetLoweringObjectFile::Initialize(Ctx, TM);
1931   this->TM = &TM;
1932   const Triple &T = TM.getTargetTriple();
1933   if (T.isWindowsMSVCEnvironment() || T.isWindowsItaniumEnvironment()) {
1934     StaticCtorSection =
1935         Ctx.getCOFFSection(".CRT$XCU", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1936                                            COFF::IMAGE_SCN_MEM_READ,
1937                            SectionKind::getReadOnly());
1938     StaticDtorSection =
1939         Ctx.getCOFFSection(".CRT$XTX", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1940                                            COFF::IMAGE_SCN_MEM_READ,
1941                            SectionKind::getReadOnly());
1942   } else {
1943     StaticCtorSection = Ctx.getCOFFSection(
1944         ".ctors", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1945                       COFF::IMAGE_SCN_MEM_READ | COFF::IMAGE_SCN_MEM_WRITE,
1946         SectionKind::getData());
1947     StaticDtorSection = Ctx.getCOFFSection(
1948         ".dtors", COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1949                       COFF::IMAGE_SCN_MEM_READ | COFF::IMAGE_SCN_MEM_WRITE,
1950         SectionKind::getData());
1951   }
1952 }
1953 
1954 static MCSectionCOFF *getCOFFStaticStructorSection(MCContext &Ctx,
1955                                                    const Triple &T, bool IsCtor,
1956                                                    unsigned Priority,
1957                                                    const MCSymbol *KeySym,
1958                                                    MCSectionCOFF *Default) {
1959   if (T.isWindowsMSVCEnvironment() || T.isWindowsItaniumEnvironment()) {
1960     // If the priority is the default, use .CRT$XCU, possibly associative.
1961     if (Priority == 65535)
1962       return Ctx.getAssociativeCOFFSection(Default, KeySym, 0);
1963 
1964     // Otherwise, we need to compute a new section name. Low priorities should
1965     // run earlier. The linker will sort sections ASCII-betically, and we need a
1966     // string that sorts between .CRT$XCA and .CRT$XCU. In the general case, we
1967     // make a name like ".CRT$XCT12345", since that runs before .CRT$XCU. Really
1968     // low priorities need to sort before 'L', since the CRT uses that
1969     // internally, so we use ".CRT$XCA00001" for them. We have a contract with
1970     // the frontend that "init_seg(compiler)" corresponds to priority 200 and
1971     // "init_seg(lib)" corresponds to priority 400, and those respectively use
1972     // 'C' and 'L' without the priority suffix. Priorities between 200 and 400
1973     // use 'C' with the priority as a suffix.
1974     SmallString<24> Name;
1975     char LastLetter = 'T';
1976     bool AddPrioritySuffix = Priority != 200 && Priority != 400;
1977     if (Priority < 200)
1978       LastLetter = 'A';
1979     else if (Priority < 400)
1980       LastLetter = 'C';
1981     else if (Priority == 400)
1982       LastLetter = 'L';
1983     raw_svector_ostream OS(Name);
1984     OS << ".CRT$X" << (IsCtor ? "C" : "T") << LastLetter;
1985     if (AddPrioritySuffix)
1986       OS << format("%05u", Priority);
1987     MCSectionCOFF *Sec = Ctx.getCOFFSection(
1988         Name, COFF::IMAGE_SCN_CNT_INITIALIZED_DATA | COFF::IMAGE_SCN_MEM_READ,
1989         SectionKind::getReadOnly());
1990     return Ctx.getAssociativeCOFFSection(Sec, KeySym, 0);
1991   }
1992 
1993   std::string Name = IsCtor ? ".ctors" : ".dtors";
1994   if (Priority != 65535)
1995     raw_string_ostream(Name) << format(".%05u", 65535 - Priority);
1996 
1997   return Ctx.getAssociativeCOFFSection(
1998       Ctx.getCOFFSection(Name, COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
1999                                    COFF::IMAGE_SCN_MEM_READ |
2000                                    COFF::IMAGE_SCN_MEM_WRITE,
2001                          SectionKind::getData()),
2002       KeySym, 0);
2003 }
2004 
2005 MCSection *TargetLoweringObjectFileCOFF::getStaticCtorSection(
2006     unsigned Priority, const MCSymbol *KeySym) const {
2007   return getCOFFStaticStructorSection(
2008       getContext(), getContext().getTargetTriple(), true, Priority, KeySym,
2009       cast<MCSectionCOFF>(StaticCtorSection));
2010 }
2011 
2012 MCSection *TargetLoweringObjectFileCOFF::getStaticDtorSection(
2013     unsigned Priority, const MCSymbol *KeySym) const {
2014   return getCOFFStaticStructorSection(
2015       getContext(), getContext().getTargetTriple(), false, Priority, KeySym,
2016       cast<MCSectionCOFF>(StaticDtorSection));
2017 }
2018 
2019 const MCExpr *TargetLoweringObjectFileCOFF::lowerRelativeReference(
2020     const GlobalValue *LHS, const GlobalValue *RHS,
2021     const TargetMachine &TM) const {
2022   const Triple &T = TM.getTargetTriple();
2023   if (T.isOSCygMing())
2024     return nullptr;
2025 
2026   // Our symbols should exist in address space zero, cowardly no-op if
2027   // otherwise.
2028   if (LHS->getType()->getPointerAddressSpace() != 0 ||
2029       RHS->getType()->getPointerAddressSpace() != 0)
2030     return nullptr;
2031 
2032   // Both ptrtoint instructions must wrap global objects:
2033   // - Only global variables are eligible for image relative relocations.
2034   // - The subtrahend refers to the special symbol __ImageBase, a GlobalVariable.
2035   // We expect __ImageBase to be a global variable without a section, externally
2036   // defined.
2037   //
2038   // It should look something like this: @__ImageBase = external constant i8
2039   if (!isa<GlobalObject>(LHS) || !isa<GlobalVariable>(RHS) ||
2040       LHS->isThreadLocal() || RHS->isThreadLocal() ||
2041       RHS->getName() != "__ImageBase" || !RHS->hasExternalLinkage() ||
2042       cast<GlobalVariable>(RHS)->hasInitializer() || RHS->hasSection())
2043     return nullptr;
2044 
2045   return MCSymbolRefExpr::create(TM.getSymbol(LHS),
2046                                  MCSymbolRefExpr::VK_COFF_IMGREL32,
2047                                  getContext());
2048 }
2049 
2050 static std::string APIntToHexString(const APInt &AI) {
2051   unsigned Width = (AI.getBitWidth() / 8) * 2;
2052   std::string HexString = toString(AI, 16, /*Signed=*/false);
2053   llvm::transform(HexString, HexString.begin(), tolower);
2054   unsigned Size = HexString.size();
2055   assert(Width >= Size && "hex string is too large!");
2056   HexString.insert(HexString.begin(), Width - Size, '0');
2057 
2058   return HexString;
2059 }
2060 
2061 static std::string scalarConstantToHexString(const Constant *C) {
2062   Type *Ty = C->getType();
2063   if (isa<UndefValue>(C)) {
2064     return APIntToHexString(APInt::getZero(Ty->getPrimitiveSizeInBits()));
2065   } else if (const auto *CFP = dyn_cast<ConstantFP>(C)) {
2066     return APIntToHexString(CFP->getValueAPF().bitcastToAPInt());
2067   } else if (const auto *CI = dyn_cast<ConstantInt>(C)) {
2068     return APIntToHexString(CI->getValue());
2069   } else {
2070     unsigned NumElements;
2071     if (auto *VTy = dyn_cast<VectorType>(Ty))
2072       NumElements = cast<FixedVectorType>(VTy)->getNumElements();
2073     else
2074       NumElements = Ty->getArrayNumElements();
2075     std::string HexString;
2076     for (int I = NumElements - 1, E = -1; I != E; --I)
2077       HexString += scalarConstantToHexString(C->getAggregateElement(I));
2078     return HexString;
2079   }
2080 }
2081 
2082 MCSection *TargetLoweringObjectFileCOFF::getSectionForConstant(
2083     const DataLayout &DL, SectionKind Kind, const Constant *C,
2084     Align &Alignment) const {
2085   if (Kind.isMergeableConst() && C &&
2086       getContext().getAsmInfo()->hasCOFFComdatConstants()) {
2087     // This creates comdat sections with the given symbol name, but unless
2088     // AsmPrinter::GetCPISymbol actually makes the symbol global, the symbol
2089     // will be created with a null storage class, which makes GNU binutils
2090     // error out.
2091     const unsigned Characteristics = COFF::IMAGE_SCN_CNT_INITIALIZED_DATA |
2092                                      COFF::IMAGE_SCN_MEM_READ |
2093                                      COFF::IMAGE_SCN_LNK_COMDAT;
2094     std::string COMDATSymName;
2095     if (Kind.isMergeableConst4()) {
2096       if (Alignment <= 4) {
2097         COMDATSymName = "__real@" + scalarConstantToHexString(C);
2098         Alignment = Align(4);
2099       }
2100     } else if (Kind.isMergeableConst8()) {
2101       if (Alignment <= 8) {
2102         COMDATSymName = "__real@" + scalarConstantToHexString(C);
2103         Alignment = Align(8);
2104       }
2105     } else if (Kind.isMergeableConst16()) {
2106       // FIXME: These may not be appropriate for non-x86 architectures.
2107       if (Alignment <= 16) {
2108         COMDATSymName = "__xmm@" + scalarConstantToHexString(C);
2109         Alignment = Align(16);
2110       }
2111     } else if (Kind.isMergeableConst32()) {
2112       if (Alignment <= 32) {
2113         COMDATSymName = "__ymm@" + scalarConstantToHexString(C);
2114         Alignment = Align(32);
2115       }
2116     }
2117 
2118     if (!COMDATSymName.empty())
2119       return getContext().getCOFFSection(".rdata", Characteristics, Kind,
2120                                          COMDATSymName,
2121                                          COFF::IMAGE_COMDAT_SELECT_ANY);
2122   }
2123 
2124   return TargetLoweringObjectFile::getSectionForConstant(DL, Kind, C,
2125                                                          Alignment);
2126 }
2127 
2128 //===----------------------------------------------------------------------===//
2129 //                                  Wasm
2130 //===----------------------------------------------------------------------===//
2131 
2132 static const Comdat *getWasmComdat(const GlobalValue *GV) {
2133   const Comdat *C = GV->getComdat();
2134   if (!C)
2135     return nullptr;
2136 
2137   if (C->getSelectionKind() != Comdat::Any)
2138     report_fatal_error("WebAssembly COMDATs only support "
2139                        "SelectionKind::Any, '" + C->getName() + "' cannot be "
2140                        "lowered.");
2141 
2142   return C;
2143 }
2144 
2145 static unsigned getWasmSectionFlags(SectionKind K) {
2146   unsigned Flags = 0;
2147 
2148   if (K.isThreadLocal())
2149     Flags |= wasm::WASM_SEG_FLAG_TLS;
2150 
2151   if (K.isMergeableCString())
2152     Flags |= wasm::WASM_SEG_FLAG_STRINGS;
2153 
2154   // TODO(sbc): Add suport for K.isMergeableConst()
2155 
2156   return Flags;
2157 }
2158 
2159 MCSection *TargetLoweringObjectFileWasm::getExplicitSectionGlobal(
2160     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2161   // We don't support explict section names for functions in the wasm object
2162   // format.  Each function has to be in its own unique section.
2163   if (isa<Function>(GO)) {
2164     return SelectSectionForGlobal(GO, Kind, TM);
2165   }
2166 
2167   StringRef Name = GO->getSection();
2168 
2169   // Certain data sections we treat as named custom sections rather than
2170   // segments within the data section.
2171   // This could be avoided if all data segements (the wasm sense) were
2172   // represented as their own sections (in the llvm sense).
2173   // TODO(sbc): https://github.com/WebAssembly/tool-conventions/issues/138
2174   if (Name == ".llvmcmd" || Name == ".llvmbc")
2175     Kind = SectionKind::getMetadata();
2176 
2177   StringRef Group = "";
2178   if (const Comdat *C = getWasmComdat(GO)) {
2179     Group = C->getName();
2180   }
2181 
2182   unsigned Flags = getWasmSectionFlags(Kind);
2183   MCSectionWasm *Section = getContext().getWasmSection(
2184       Name, Kind, Flags, Group, MCContext::GenericSectionID);
2185 
2186   return Section;
2187 }
2188 
2189 static MCSectionWasm *selectWasmSectionForGlobal(
2190     MCContext &Ctx, const GlobalObject *GO, SectionKind Kind, Mangler &Mang,
2191     const TargetMachine &TM, bool EmitUniqueSection, unsigned *NextUniqueID) {
2192   StringRef Group = "";
2193   if (const Comdat *C = getWasmComdat(GO)) {
2194     Group = C->getName();
2195   }
2196 
2197   bool UniqueSectionNames = TM.getUniqueSectionNames();
2198   SmallString<128> Name = getSectionPrefixForGlobal(Kind, /*IsLarge=*/false);
2199 
2200   if (const auto *F = dyn_cast<Function>(GO)) {
2201     const auto &OptionalPrefix = F->getSectionPrefix();
2202     if (OptionalPrefix)
2203       raw_svector_ostream(Name) << '.' << *OptionalPrefix;
2204   }
2205 
2206   if (EmitUniqueSection && UniqueSectionNames) {
2207     Name.push_back('.');
2208     TM.getNameWithPrefix(Name, GO, Mang, true);
2209   }
2210   unsigned UniqueID = MCContext::GenericSectionID;
2211   if (EmitUniqueSection && !UniqueSectionNames) {
2212     UniqueID = *NextUniqueID;
2213     (*NextUniqueID)++;
2214   }
2215 
2216   unsigned Flags = getWasmSectionFlags(Kind);
2217   return Ctx.getWasmSection(Name, Kind, Flags, Group, UniqueID);
2218 }
2219 
2220 MCSection *TargetLoweringObjectFileWasm::SelectSectionForGlobal(
2221     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2222 
2223   if (Kind.isCommon())
2224     report_fatal_error("mergable sections not supported yet on wasm");
2225 
2226   // If we have -ffunction-section or -fdata-section then we should emit the
2227   // global value to a uniqued section specifically for it.
2228   bool EmitUniqueSection = false;
2229   if (Kind.isText())
2230     EmitUniqueSection = TM.getFunctionSections();
2231   else
2232     EmitUniqueSection = TM.getDataSections();
2233   EmitUniqueSection |= GO->hasComdat();
2234 
2235   return selectWasmSectionForGlobal(getContext(), GO, Kind, getMangler(), TM,
2236                                     EmitUniqueSection, &NextUniqueID);
2237 }
2238 
2239 bool TargetLoweringObjectFileWasm::shouldPutJumpTableInFunctionSection(
2240     bool UsesLabelDifference, const Function &F) const {
2241   // We can always create relative relocations, so use another section
2242   // that can be marked non-executable.
2243   return false;
2244 }
2245 
2246 const MCExpr *TargetLoweringObjectFileWasm::lowerRelativeReference(
2247     const GlobalValue *LHS, const GlobalValue *RHS,
2248     const TargetMachine &TM) const {
2249   // We may only use a PLT-relative relocation to refer to unnamed_addr
2250   // functions.
2251   if (!LHS->hasGlobalUnnamedAddr() || !LHS->getValueType()->isFunctionTy())
2252     return nullptr;
2253 
2254   // Basic correctness checks.
2255   if (LHS->getType()->getPointerAddressSpace() != 0 ||
2256       RHS->getType()->getPointerAddressSpace() != 0 || LHS->isThreadLocal() ||
2257       RHS->isThreadLocal())
2258     return nullptr;
2259 
2260   return MCBinaryExpr::createSub(
2261       MCSymbolRefExpr::create(TM.getSymbol(LHS), MCSymbolRefExpr::VK_None,
2262                               getContext()),
2263       MCSymbolRefExpr::create(TM.getSymbol(RHS), getContext()), getContext());
2264 }
2265 
2266 void TargetLoweringObjectFileWasm::InitializeWasm() {
2267   StaticCtorSection =
2268       getContext().getWasmSection(".init_array", SectionKind::getData());
2269 
2270   // We don't use PersonalityEncoding and LSDAEncoding because we don't emit
2271   // .cfi directives. We use TTypeEncoding to encode typeinfo global variables.
2272   TTypeEncoding = dwarf::DW_EH_PE_absptr;
2273 }
2274 
2275 MCSection *TargetLoweringObjectFileWasm::getStaticCtorSection(
2276     unsigned Priority, const MCSymbol *KeySym) const {
2277   return Priority == UINT16_MAX ?
2278          StaticCtorSection :
2279          getContext().getWasmSection(".init_array." + utostr(Priority),
2280                                      SectionKind::getData());
2281 }
2282 
2283 MCSection *TargetLoweringObjectFileWasm::getStaticDtorSection(
2284     unsigned Priority, const MCSymbol *KeySym) const {
2285   report_fatal_error("@llvm.global_dtors should have been lowered already");
2286 }
2287 
2288 //===----------------------------------------------------------------------===//
2289 //                                  XCOFF
2290 //===----------------------------------------------------------------------===//
2291 bool TargetLoweringObjectFileXCOFF::ShouldEmitEHBlock(
2292     const MachineFunction *MF) {
2293   if (!MF->getLandingPads().empty())
2294     return true;
2295 
2296   const Function &F = MF->getFunction();
2297   if (!F.hasPersonalityFn() || !F.needsUnwindTableEntry())
2298     return false;
2299 
2300   const GlobalValue *Per =
2301       dyn_cast<GlobalValue>(F.getPersonalityFn()->stripPointerCasts());
2302   assert(Per && "Personality routine is not a GlobalValue type.");
2303   if (isNoOpWithoutInvoke(classifyEHPersonality(Per)))
2304     return false;
2305 
2306   return true;
2307 }
2308 
2309 bool TargetLoweringObjectFileXCOFF::ShouldSetSSPCanaryBitInTB(
2310     const MachineFunction *MF) {
2311   const Function &F = MF->getFunction();
2312   if (!F.hasStackProtectorFnAttr())
2313     return false;
2314   // FIXME: check presence of canary word
2315   // There are cases that the stack protectors are not really inserted even if
2316   // the attributes are on.
2317   return true;
2318 }
2319 
2320 MCSymbol *
2321 TargetLoweringObjectFileXCOFF::getEHInfoTableSymbol(const MachineFunction *MF) {
2322   MCSymbol *EHInfoSym = MF->getMMI().getContext().getOrCreateSymbol(
2323       "__ehinfo." + Twine(MF->getFunctionNumber()));
2324   cast<MCSymbolXCOFF>(EHInfoSym)->setEHInfo();
2325   return EHInfoSym;
2326 }
2327 
2328 MCSymbol *
2329 TargetLoweringObjectFileXCOFF::getTargetSymbol(const GlobalValue *GV,
2330                                                const TargetMachine &TM) const {
2331   // We always use a qualname symbol for a GV that represents
2332   // a declaration, a function descriptor, or a common symbol.
2333   // If a GV represents a GlobalVariable and -fdata-sections is enabled, we
2334   // also return a qualname so that a label symbol could be avoided.
2335   // It is inherently ambiguous when the GO represents the address of a
2336   // function, as the GO could either represent a function descriptor or a
2337   // function entry point. We choose to always return a function descriptor
2338   // here.
2339   if (const GlobalObject *GO = dyn_cast<GlobalObject>(GV)) {
2340     if (GO->isDeclarationForLinker())
2341       return cast<MCSectionXCOFF>(getSectionForExternalReference(GO, TM))
2342           ->getQualNameSymbol();
2343 
2344     if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GV))
2345       if (GVar->hasAttribute("toc-data"))
2346         return cast<MCSectionXCOFF>(
2347                    SectionForGlobal(GVar, SectionKind::getData(), TM))
2348             ->getQualNameSymbol();
2349 
2350     SectionKind GOKind = getKindForGlobal(GO, TM);
2351     if (GOKind.isText())
2352       return cast<MCSectionXCOFF>(
2353                  getSectionForFunctionDescriptor(cast<Function>(GO), TM))
2354           ->getQualNameSymbol();
2355     if ((TM.getDataSections() && !GO->hasSection()) || GO->hasCommonLinkage() ||
2356         GOKind.isBSSLocal() || GOKind.isThreadBSSLocal())
2357       return cast<MCSectionXCOFF>(SectionForGlobal(GO, GOKind, TM))
2358           ->getQualNameSymbol();
2359   }
2360 
2361   // For all other cases, fall back to getSymbol to return the unqualified name.
2362   return nullptr;
2363 }
2364 
2365 MCSection *TargetLoweringObjectFileXCOFF::getExplicitSectionGlobal(
2366     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2367   if (!GO->hasSection())
2368     report_fatal_error("#pragma clang section is not yet supported");
2369 
2370   StringRef SectionName = GO->getSection();
2371 
2372   // Handle the XCOFF::TD case first, then deal with the rest.
2373   if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO))
2374     if (GVar->hasAttribute("toc-data"))
2375       return getContext().getXCOFFSection(
2376           SectionName, Kind,
2377           XCOFF::CsectProperties(/*MappingClass*/ XCOFF::XMC_TD, XCOFF::XTY_SD),
2378           /* MultiSymbolsAllowed*/ true);
2379 
2380   XCOFF::StorageMappingClass MappingClass;
2381   if (Kind.isText())
2382     MappingClass = XCOFF::XMC_PR;
2383   else if (Kind.isData() || Kind.isBSS())
2384     MappingClass = XCOFF::XMC_RW;
2385   else if (Kind.isReadOnlyWithRel())
2386     MappingClass =
2387         TM.Options.XCOFFReadOnlyPointers ? XCOFF::XMC_RO : XCOFF::XMC_RW;
2388   else if (Kind.isReadOnly())
2389     MappingClass = XCOFF::XMC_RO;
2390   else
2391     report_fatal_error("XCOFF other section types not yet implemented.");
2392 
2393   return getContext().getXCOFFSection(
2394       SectionName, Kind, XCOFF::CsectProperties(MappingClass, XCOFF::XTY_SD),
2395       /* MultiSymbolsAllowed*/ true);
2396 }
2397 
2398 MCSection *TargetLoweringObjectFileXCOFF::getSectionForExternalReference(
2399     const GlobalObject *GO, const TargetMachine &TM) const {
2400   assert(GO->isDeclarationForLinker() &&
2401          "Tried to get ER section for a defined global.");
2402 
2403   SmallString<128> Name;
2404   getNameWithPrefix(Name, GO, TM);
2405 
2406   XCOFF::StorageMappingClass SMC =
2407       isa<Function>(GO) ? XCOFF::XMC_DS : XCOFF::XMC_UA;
2408   if (GO->isThreadLocal())
2409     SMC = XCOFF::XMC_UL;
2410 
2411   if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO))
2412     if (GVar->hasAttribute("toc-data"))
2413       SMC = XCOFF::XMC_TD;
2414 
2415   // Externals go into a csect of type ER.
2416   return getContext().getXCOFFSection(
2417       Name, SectionKind::getMetadata(),
2418       XCOFF::CsectProperties(SMC, XCOFF::XTY_ER));
2419 }
2420 
2421 MCSection *TargetLoweringObjectFileXCOFF::SelectSectionForGlobal(
2422     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2423   // Handle the XCOFF::TD case first, then deal with the rest.
2424   if (const GlobalVariable *GVar = dyn_cast<GlobalVariable>(GO))
2425     if (GVar->hasAttribute("toc-data")) {
2426       SmallString<128> Name;
2427       getNameWithPrefix(Name, GO, TM);
2428       XCOFF::SymbolType symType =
2429           GO->hasCommonLinkage() ? XCOFF::XTY_CM : XCOFF::XTY_SD;
2430       return getContext().getXCOFFSection(
2431           Name, Kind, XCOFF::CsectProperties(XCOFF::XMC_TD, symType),
2432           /* MultiSymbolsAllowed*/ true);
2433     }
2434 
2435   // Common symbols go into a csect with matching name which will get mapped
2436   // into the .bss section.
2437   // Zero-initialized local TLS symbols go into a csect with matching name which
2438   // will get mapped into the .tbss section.
2439   if (Kind.isBSSLocal() || GO->hasCommonLinkage() || Kind.isThreadBSSLocal()) {
2440     SmallString<128> Name;
2441     getNameWithPrefix(Name, GO, TM);
2442     XCOFF::StorageMappingClass SMC = Kind.isBSSLocal() ? XCOFF::XMC_BS
2443                                      : Kind.isCommon() ? XCOFF::XMC_RW
2444                                                        : XCOFF::XMC_UL;
2445     return getContext().getXCOFFSection(
2446         Name, Kind, XCOFF::CsectProperties(SMC, XCOFF::XTY_CM));
2447   }
2448 
2449   if (Kind.isText()) {
2450     if (TM.getFunctionSections()) {
2451       return cast<MCSymbolXCOFF>(getFunctionEntryPointSymbol(GO, TM))
2452           ->getRepresentedCsect();
2453     }
2454     return TextSection;
2455   }
2456 
2457   if (TM.Options.XCOFFReadOnlyPointers && Kind.isReadOnlyWithRel()) {
2458     if (!TM.getDataSections())
2459       report_fatal_error(
2460           "ReadOnlyPointers is supported only if data sections is turned on");
2461 
2462     SmallString<128> Name;
2463     getNameWithPrefix(Name, GO, TM);
2464     return getContext().getXCOFFSection(
2465         Name, SectionKind::getReadOnly(),
2466         XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD));
2467   }
2468 
2469   // For BSS kind, zero initialized data must be emitted to the .data section
2470   // because external linkage control sections that get mapped to the .bss
2471   // section will be linked as tentative defintions, which is only appropriate
2472   // for SectionKind::Common.
2473   if (Kind.isData() || Kind.isReadOnlyWithRel() || Kind.isBSS()) {
2474     if (TM.getDataSections()) {
2475       SmallString<128> Name;
2476       getNameWithPrefix(Name, GO, TM);
2477       return getContext().getXCOFFSection(
2478           Name, SectionKind::getData(),
2479           XCOFF::CsectProperties(XCOFF::XMC_RW, XCOFF::XTY_SD));
2480     }
2481     return DataSection;
2482   }
2483 
2484   if (Kind.isReadOnly()) {
2485     if (TM.getDataSections()) {
2486       SmallString<128> Name;
2487       getNameWithPrefix(Name, GO, TM);
2488       return getContext().getXCOFFSection(
2489           Name, SectionKind::getReadOnly(),
2490           XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD));
2491     }
2492     return ReadOnlySection;
2493   }
2494 
2495   // External/weak TLS data and initialized local TLS data are not eligible
2496   // to be put into common csect. If data sections are enabled, thread
2497   // data are emitted into separate sections. Otherwise, thread data
2498   // are emitted into the .tdata section.
2499   if (Kind.isThreadLocal()) {
2500     if (TM.getDataSections()) {
2501       SmallString<128> Name;
2502       getNameWithPrefix(Name, GO, TM);
2503       return getContext().getXCOFFSection(
2504           Name, Kind, XCOFF::CsectProperties(XCOFF::XMC_TL, XCOFF::XTY_SD));
2505     }
2506     return TLSDataSection;
2507   }
2508 
2509   report_fatal_error("XCOFF other section types not yet implemented.");
2510 }
2511 
2512 MCSection *TargetLoweringObjectFileXCOFF::getSectionForJumpTable(
2513     const Function &F, const TargetMachine &TM) const {
2514   assert (!F.getComdat() && "Comdat not supported on XCOFF.");
2515 
2516   if (!TM.getFunctionSections())
2517     return ReadOnlySection;
2518 
2519   // If the function can be removed, produce a unique section so that
2520   // the table doesn't prevent the removal.
2521   SmallString<128> NameStr(".rodata.jmp..");
2522   getNameWithPrefix(NameStr, &F, TM);
2523   return getContext().getXCOFFSection(
2524       NameStr, SectionKind::getReadOnly(),
2525       XCOFF::CsectProperties(XCOFF::XMC_RO, XCOFF::XTY_SD));
2526 }
2527 
2528 bool TargetLoweringObjectFileXCOFF::shouldPutJumpTableInFunctionSection(
2529     bool UsesLabelDifference, const Function &F) const {
2530   return false;
2531 }
2532 
2533 /// Given a mergeable constant with the specified size and relocation
2534 /// information, return a section that it should be placed in.
2535 MCSection *TargetLoweringObjectFileXCOFF::getSectionForConstant(
2536     const DataLayout &DL, SectionKind Kind, const Constant *C,
2537     Align &Alignment) const {
2538   // TODO: Enable emiting constant pool to unique sections when we support it.
2539   if (Alignment > Align(16))
2540     report_fatal_error("Alignments greater than 16 not yet supported.");
2541 
2542   if (Alignment == Align(8)) {
2543     assert(ReadOnly8Section && "Section should always be initialized.");
2544     return ReadOnly8Section;
2545   }
2546 
2547   if (Alignment == Align(16)) {
2548     assert(ReadOnly16Section && "Section should always be initialized.");
2549     return ReadOnly16Section;
2550   }
2551 
2552   return ReadOnlySection;
2553 }
2554 
2555 void TargetLoweringObjectFileXCOFF::Initialize(MCContext &Ctx,
2556                                                const TargetMachine &TgtM) {
2557   TargetLoweringObjectFile::Initialize(Ctx, TgtM);
2558   TTypeEncoding =
2559       dwarf::DW_EH_PE_indirect | dwarf::DW_EH_PE_datarel |
2560       (TgtM.getTargetTriple().isArch32Bit() ? dwarf::DW_EH_PE_sdata4
2561                                             : dwarf::DW_EH_PE_sdata8);
2562   PersonalityEncoding = 0;
2563   LSDAEncoding = 0;
2564   CallSiteEncoding = dwarf::DW_EH_PE_udata4;
2565 
2566   // AIX debug for thread local location is not ready. And for integrated as
2567   // mode, the relocatable address for the thread local variable will cause
2568   // linker error. So disable the location attribute generation for thread local
2569   // variables for now.
2570   // FIXME: when TLS debug on AIX is ready, remove this setting.
2571   SupportDebugThreadLocalLocation = false;
2572 }
2573 
2574 MCSection *TargetLoweringObjectFileXCOFF::getStaticCtorSection(
2575 	unsigned Priority, const MCSymbol *KeySym) const {
2576   report_fatal_error("no static constructor section on AIX");
2577 }
2578 
2579 MCSection *TargetLoweringObjectFileXCOFF::getStaticDtorSection(
2580 	unsigned Priority, const MCSymbol *KeySym) const {
2581   report_fatal_error("no static destructor section on AIX");
2582 }
2583 
2584 const MCExpr *TargetLoweringObjectFileXCOFF::lowerRelativeReference(
2585     const GlobalValue *LHS, const GlobalValue *RHS,
2586     const TargetMachine &TM) const {
2587   /* Not implemented yet, but don't crash, return nullptr. */
2588   return nullptr;
2589 }
2590 
2591 XCOFF::StorageClass
2592 TargetLoweringObjectFileXCOFF::getStorageClassForGlobal(const GlobalValue *GV) {
2593   assert(!isa<GlobalIFunc>(GV) && "GlobalIFunc is not supported on AIX.");
2594 
2595   switch (GV->getLinkage()) {
2596   case GlobalValue::InternalLinkage:
2597   case GlobalValue::PrivateLinkage:
2598     return XCOFF::C_HIDEXT;
2599   case GlobalValue::ExternalLinkage:
2600   case GlobalValue::CommonLinkage:
2601   case GlobalValue::AvailableExternallyLinkage:
2602     return XCOFF::C_EXT;
2603   case GlobalValue::ExternalWeakLinkage:
2604   case GlobalValue::LinkOnceAnyLinkage:
2605   case GlobalValue::LinkOnceODRLinkage:
2606   case GlobalValue::WeakAnyLinkage:
2607   case GlobalValue::WeakODRLinkage:
2608     return XCOFF::C_WEAKEXT;
2609   case GlobalValue::AppendingLinkage:
2610     report_fatal_error(
2611         "There is no mapping that implements AppendingLinkage for XCOFF.");
2612   }
2613   llvm_unreachable("Unknown linkage type!");
2614 }
2615 
2616 MCSymbol *TargetLoweringObjectFileXCOFF::getFunctionEntryPointSymbol(
2617     const GlobalValue *Func, const TargetMachine &TM) const {
2618   assert((isa<Function>(Func) ||
2619           (isa<GlobalAlias>(Func) &&
2620            isa_and_nonnull<Function>(
2621                cast<GlobalAlias>(Func)->getAliaseeObject()))) &&
2622          "Func must be a function or an alias which has a function as base "
2623          "object.");
2624 
2625   SmallString<128> NameStr;
2626   NameStr.push_back('.');
2627   getNameWithPrefix(NameStr, Func, TM);
2628 
2629   // When -function-sections is enabled and explicit section is not specified,
2630   // it's not necessary to emit function entry point label any more. We will use
2631   // function entry point csect instead. And for function delcarations, the
2632   // undefined symbols gets treated as csect with XTY_ER property.
2633   if (((TM.getFunctionSections() && !Func->hasSection()) ||
2634        Func->isDeclarationForLinker()) &&
2635       isa<Function>(Func)) {
2636     return getContext()
2637         .getXCOFFSection(
2638             NameStr, SectionKind::getText(),
2639             XCOFF::CsectProperties(XCOFF::XMC_PR, Func->isDeclarationForLinker()
2640                                                       ? XCOFF::XTY_ER
2641                                                       : XCOFF::XTY_SD))
2642         ->getQualNameSymbol();
2643   }
2644 
2645   return getContext().getOrCreateSymbol(NameStr);
2646 }
2647 
2648 MCSection *TargetLoweringObjectFileXCOFF::getSectionForFunctionDescriptor(
2649     const Function *F, const TargetMachine &TM) const {
2650   SmallString<128> NameStr;
2651   getNameWithPrefix(NameStr, F, TM);
2652   return getContext().getXCOFFSection(
2653       NameStr, SectionKind::getData(),
2654       XCOFF::CsectProperties(XCOFF::XMC_DS, XCOFF::XTY_SD));
2655 }
2656 
2657 MCSection *TargetLoweringObjectFileXCOFF::getSectionForTOCEntry(
2658     const MCSymbol *Sym, const TargetMachine &TM) const {
2659   // Use TE storage-mapping class when large code model is enabled so that
2660   // the chance of needing -bbigtoc is decreased. Also, the toc-entry for
2661   // EH info is never referenced directly using instructions so it can be
2662   // allocated with TE storage-mapping class.
2663   return getContext().getXCOFFSection(
2664       cast<MCSymbolXCOFF>(Sym)->getSymbolTableName(), SectionKind::getData(),
2665       XCOFF::CsectProperties((TM.getCodeModel() == CodeModel::Large ||
2666                               cast<MCSymbolXCOFF>(Sym)->isEHInfo())
2667                                  ? XCOFF::XMC_TE
2668                                  : XCOFF::XMC_TC,
2669                              XCOFF::XTY_SD));
2670 }
2671 
2672 MCSection *TargetLoweringObjectFileXCOFF::getSectionForLSDA(
2673     const Function &F, const MCSymbol &FnSym, const TargetMachine &TM) const {
2674   auto *LSDA = cast<MCSectionXCOFF>(LSDASection);
2675   if (TM.getFunctionSections()) {
2676     // If option -ffunction-sections is on, append the function name to the
2677     // name of the LSDA csect so that each function has its own LSDA csect.
2678     // This helps the linker to garbage-collect EH info of unused functions.
2679     SmallString<128> NameStr = LSDA->getName();
2680     raw_svector_ostream(NameStr) << '.' << F.getName();
2681     LSDA = getContext().getXCOFFSection(NameStr, LSDA->getKind(),
2682                                         LSDA->getCsectProp());
2683   }
2684   return LSDA;
2685 }
2686 //===----------------------------------------------------------------------===//
2687 //                                  GOFF
2688 //===----------------------------------------------------------------------===//
2689 TargetLoweringObjectFileGOFF::TargetLoweringObjectFileGOFF() = default;
2690 
2691 MCSection *TargetLoweringObjectFileGOFF::getExplicitSectionGlobal(
2692     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2693   return SelectSectionForGlobal(GO, Kind, TM);
2694 }
2695 
2696 MCSection *TargetLoweringObjectFileGOFF::getSectionForLSDA(
2697     const Function &F, const MCSymbol &FnSym, const TargetMachine &TM) const {
2698   std::string Name = ".gcc_exception_table." + F.getName().str();
2699   return getContext().getGOFFSection(Name, SectionKind::getData(), nullptr,
2700                                      nullptr);
2701 }
2702 
2703 MCSection *TargetLoweringObjectFileGOFF::SelectSectionForGlobal(
2704     const GlobalObject *GO, SectionKind Kind, const TargetMachine &TM) const {
2705   auto *Symbol = TM.getSymbol(GO);
2706   if (Kind.isBSS())
2707     return getContext().getGOFFSection(Symbol->getName(), SectionKind::getBSS(),
2708                                        nullptr, nullptr);
2709 
2710   return getContext().getObjectFileInfo()->getTextSection();
2711 }
2712