1 //===- InputSection.cpp ---------------------------------------------------===//
2 //
3 //                             The LLVM Linker
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 
10 #include "InputSection.h"
11 #include "Config.h"
12 #include "EhFrame.h"
13 #include "InputFiles.h"
14 #include "LinkerScript.h"
15 #include "OutputSections.h"
16 #include "Relocations.h"
17 #include "Symbols.h"
18 #include "SyntheticSections.h"
19 #include "Target.h"
20 #include "Thunks.h"
21 #include "lld/Common/ErrorHandler.h"
22 #include "lld/Common/Memory.h"
23 #include "llvm/Object/Decompressor.h"
24 #include "llvm/Support/Compiler.h"
25 #include "llvm/Support/Compression.h"
26 #include "llvm/Support/Endian.h"
27 #include "llvm/Support/Threading.h"
28 #include "llvm/Support/xxhash.h"
29 #include <mutex>
30 
31 using namespace llvm;
32 using namespace llvm::ELF;
33 using namespace llvm::object;
34 using namespace llvm::support;
35 using namespace llvm::support::endian;
36 using namespace llvm::sys;
37 
38 using namespace lld;
39 using namespace lld::elf;
40 
41 std::vector<InputSectionBase *> elf::InputSections;
42 
43 // Returns a string to construct an error message.
44 std::string lld::toString(const InputSectionBase *Sec) {
45   return (toString(Sec->File) + ":(" + Sec->Name + ")").str();
46 }
47 
48 template <class ELFT>
49 static ArrayRef<uint8_t> getSectionContents(ObjFile<ELFT> &File,
50                                             const typename ELFT::Shdr &Hdr) {
51   if (Hdr.sh_type == SHT_NOBITS)
52     return makeArrayRef<uint8_t>(nullptr, Hdr.sh_size);
53   return check(File.getObj().getSectionContents(&Hdr));
54 }
55 
56 InputSectionBase::InputSectionBase(InputFile *File, uint64_t Flags,
57                                    uint32_t Type, uint64_t Entsize,
58                                    uint32_t Link, uint32_t Info,
59                                    uint32_t Alignment, ArrayRef<uint8_t> Data,
60                                    StringRef Name, Kind SectionKind)
61     : SectionBase(SectionKind, Name, Flags, Entsize, Alignment, Type, Info,
62                   Link),
63       File(File), Data(Data) {
64   // In order to reduce memory allocation, we assume that mergeable
65   // sections are smaller than 4 GiB, which is not an unreasonable
66   // assumption as of 2017.
67   if (SectionKind == SectionBase::Merge && Data.size() > UINT32_MAX)
68     error(toString(this) + ": section too large");
69 
70   NumRelocations = 0;
71   AreRelocsRela = false;
72 
73   // The ELF spec states that a value of 0 means the section has
74   // no alignment constraits.
75   uint32_t V = std::max<uint64_t>(Alignment, 1);
76   if (!isPowerOf2_64(V))
77     fatal(toString(File) + ": section sh_addralign is not a power of 2");
78   this->Alignment = V;
79 }
80 
81 // Drop SHF_GROUP bit unless we are producing a re-linkable object file.
82 // SHF_GROUP is a marker that a section belongs to some comdat group.
83 // That flag doesn't make sense in an executable.
84 static uint64_t getFlags(uint64_t Flags) {
85   Flags &= ~(uint64_t)SHF_INFO_LINK;
86   if (!Config->Relocatable)
87     Flags &= ~(uint64_t)SHF_GROUP;
88   return Flags;
89 }
90 
91 // GNU assembler 2.24 and LLVM 4.0.0's MC (the newest release as of
92 // March 2017) fail to infer section types for sections starting with
93 // ".init_array." or ".fini_array.". They set SHT_PROGBITS instead of
94 // SHF_INIT_ARRAY. As a result, the following assembler directive
95 // creates ".init_array.100" with SHT_PROGBITS, for example.
96 //
97 //   .section .init_array.100, "aw"
98 //
99 // This function forces SHT_{INIT,FINI}_ARRAY so that we can handle
100 // incorrect inputs as if they were correct from the beginning.
101 static uint64_t getType(uint64_t Type, StringRef Name) {
102   if (Type == SHT_PROGBITS && Name.startswith(".init_array."))
103     return SHT_INIT_ARRAY;
104   if (Type == SHT_PROGBITS && Name.startswith(".fini_array."))
105     return SHT_FINI_ARRAY;
106   return Type;
107 }
108 
109 template <class ELFT>
110 InputSectionBase::InputSectionBase(ObjFile<ELFT> &File,
111                                    const typename ELFT::Shdr &Hdr,
112                                    StringRef Name, Kind SectionKind)
113     : InputSectionBase(&File, getFlags(Hdr.sh_flags),
114                        getType(Hdr.sh_type, Name), Hdr.sh_entsize, Hdr.sh_link,
115                        Hdr.sh_info, Hdr.sh_addralign,
116                        getSectionContents(File, Hdr), Name, SectionKind) {
117   // We reject object files having insanely large alignments even though
118   // they are allowed by the spec. I think 4GB is a reasonable limitation.
119   // We might want to relax this in the future.
120   if (Hdr.sh_addralign > UINT32_MAX)
121     fatal(toString(&File) + ": section sh_addralign is too large");
122 }
123 
124 size_t InputSectionBase::getSize() const {
125   if (auto *S = dyn_cast<SyntheticSection>(this))
126     return S->getSize();
127 
128   return Data.size();
129 }
130 
131 uint64_t InputSectionBase::getOffsetInFile() const {
132   const uint8_t *FileStart = (const uint8_t *)File->MB.getBufferStart();
133   const uint8_t *SecStart = Data.begin();
134   return SecStart - FileStart;
135 }
136 
137 uint64_t SectionBase::getOffset(uint64_t Offset) const {
138   switch (kind()) {
139   case Output: {
140     auto *OS = cast<OutputSection>(this);
141     // For output sections we treat offset -1 as the end of the section.
142     return Offset == uint64_t(-1) ? OS->Size : Offset;
143   }
144   case Regular:
145     return cast<InputSection>(this)->OutSecOff + Offset;
146   case Synthetic: {
147     auto *IS = cast<InputSection>(this);
148     // For synthetic sections we treat offset -1 as the end of the section.
149     return IS->OutSecOff + (Offset == uint64_t(-1) ? IS->getSize() : Offset);
150   }
151   case EHFrame:
152     // The file crtbeginT.o has relocations pointing to the start of an empty
153     // .eh_frame that is known to be the first in the link. It does that to
154     // identify the start of the output .eh_frame.
155     return Offset;
156   case Merge:
157     const MergeInputSection *MS = cast<MergeInputSection>(this);
158     if (InputSection *IS = MS->getParent())
159       return IS->OutSecOff + MS->getOffset(Offset);
160     return MS->getOffset(Offset);
161   }
162   llvm_unreachable("invalid section kind");
163 }
164 
165 OutputSection *SectionBase::getOutputSection() {
166   InputSection *Sec;
167   if (auto *IS = dyn_cast<InputSection>(this))
168     return IS->getParent();
169   else if (auto *MS = dyn_cast<MergeInputSection>(this))
170     Sec = MS->getParent();
171   else if (auto *EH = dyn_cast<EhInputSection>(this))
172     Sec = EH->getParent();
173   else
174     return cast<OutputSection>(this);
175   return Sec ? Sec->getParent() : nullptr;
176 }
177 
178 // Decompress section contents if required. Note that this function
179 // is called from parallelForEach, so it must be thread-safe.
180 void InputSectionBase::maybeDecompress() {
181   if (DecompressBuf)
182     return;
183   if (!(Flags & SHF_COMPRESSED) && !Name.startswith(".zdebug"))
184     return;
185 
186   // Decompress a section.
187   Decompressor Dec = check(Decompressor::create(Name, toStringRef(Data),
188                                                 Config->IsLE, Config->Is64));
189 
190   size_t Size = Dec.getDecompressedSize();
191   DecompressBuf.reset(new char[Size + Name.size()]());
192   if (Error E = Dec.decompress({DecompressBuf.get(), Size}))
193     fatal(toString(this) +
194           ": decompress failed: " + llvm::toString(std::move(E)));
195 
196   Data = makeArrayRef((uint8_t *)DecompressBuf.get(), Size);
197   Flags &= ~(uint64_t)SHF_COMPRESSED;
198 
199   // A section name may have been altered if compressed. If that's
200   // the case, restore the original name. (i.e. ".zdebug_" -> ".debug_")
201   if (Name.startswith(".zdebug")) {
202     DecompressBuf[Size] = '.';
203     memcpy(&DecompressBuf[Size + 1], Name.data() + 2, Name.size() - 2);
204     Name = StringRef(&DecompressBuf[Size], Name.size() - 1);
205   }
206 }
207 
208 InputSection *InputSectionBase::getLinkOrderDep() const {
209   if ((Flags & SHF_LINK_ORDER) && Link != 0) {
210     InputSectionBase *L = File->getSections()[Link];
211     if (auto *IS = dyn_cast<InputSection>(L))
212       return IS;
213     error("a section with SHF_LINK_ORDER should not refer a non-regular "
214           "section: " +
215           toString(L));
216   }
217   return nullptr;
218 }
219 
220 // Returns a source location string. Used to construct an error message.
221 template <class ELFT>
222 std::string InputSectionBase::getLocation(uint64_t Offset) {
223   // We don't have file for synthetic sections.
224   if (getFile<ELFT>() == nullptr)
225     return (Config->OutputFile + ":(" + Name + "+0x" + utohexstr(Offset) + ")")
226         .str();
227 
228   // First check if we can get desired values from debugging information.
229   std::string LineInfo = getFile<ELFT>()->getLineInfo(this, Offset);
230   if (!LineInfo.empty())
231     return LineInfo;
232 
233   // File->SourceFile contains STT_FILE symbol that contains a
234   // source file name. If it's missing, we use an object file name.
235   std::string SrcFile = getFile<ELFT>()->SourceFile;
236   if (SrcFile.empty())
237     SrcFile = toString(File);
238 
239   // Find a function symbol that encloses a given location.
240   for (Symbol *B : File->getSymbols())
241     if (auto *D = dyn_cast<Defined>(B))
242       if (D->Section == this && D->Type == STT_FUNC)
243         if (D->Value <= Offset && Offset < D->Value + D->Size)
244           return SrcFile + ":(function " + toString(*D) + ")";
245 
246   // If there's no symbol, print out the offset in the section.
247   return (SrcFile + ":(" + Name + "+0x" + utohexstr(Offset) + ")").str();
248 }
249 
250 // This function is intended to be used for constructing an error message.
251 // The returned message looks like this:
252 //
253 //   foo.c:42 (/home/alice/possibly/very/long/path/foo.c:42)
254 //
255 //  Returns an empty string if there's no way to get line info.
256 std::string InputSectionBase::getSrcMsg(const Symbol &Sym, uint64_t Offset) {
257   // Synthetic sections don't have input files.
258   if (!File)
259     return "";
260   return File->getSrcMsg(Sym, *this, Offset);
261 }
262 
263 // Returns a filename string along with an optional section name. This
264 // function is intended to be used for constructing an error
265 // message. The returned message looks like this:
266 //
267 //   path/to/foo.o:(function bar)
268 //
269 // or
270 //
271 //   path/to/foo.o:(function bar) in archive path/to/bar.a
272 std::string InputSectionBase::getObjMsg(uint64_t Off) {
273   // Synthetic sections don't have input files.
274   if (!File)
275     return ("<internal>:(" + Name + "+0x" + utohexstr(Off) + ")").str();
276   std::string Filename = File->getName();
277 
278   std::string Archive;
279   if (!File->ArchiveName.empty())
280     Archive = (" in archive " + File->ArchiveName).str();
281 
282   // Find a symbol that encloses a given location.
283   for (Symbol *B : File->getSymbols())
284     if (auto *D = dyn_cast<Defined>(B))
285       if (D->Section == this && D->Value <= Off && Off < D->Value + D->Size)
286         return Filename + ":(" + toString(*D) + ")" + Archive;
287 
288   // If there's no symbol, print out the offset in the section.
289   return (Filename + ":(" + Name + "+0x" + utohexstr(Off) + ")" + Archive)
290       .str();
291 }
292 
293 InputSection InputSection::Discarded(nullptr, 0, 0, 0, ArrayRef<uint8_t>(), "");
294 
295 InputSection::InputSection(InputFile *F, uint64_t Flags, uint32_t Type,
296                            uint32_t Alignment, ArrayRef<uint8_t> Data,
297                            StringRef Name, Kind K)
298     : InputSectionBase(F, Flags, Type,
299                        /*Entsize*/ 0, /*Link*/ 0, /*Info*/ 0, Alignment, Data,
300                        Name, K) {}
301 
302 template <class ELFT>
303 InputSection::InputSection(ObjFile<ELFT> &F, const typename ELFT::Shdr &Header,
304                            StringRef Name)
305     : InputSectionBase(F, Header, Name, InputSectionBase::Regular) {}
306 
307 bool InputSection::classof(const SectionBase *S) {
308   return S->kind() == SectionBase::Regular ||
309          S->kind() == SectionBase::Synthetic;
310 }
311 
312 OutputSection *InputSection::getParent() const {
313   return cast_or_null<OutputSection>(Parent);
314 }
315 
316 // Copy SHT_GROUP section contents. Used only for the -r option.
317 template <class ELFT> void InputSection::copyShtGroup(uint8_t *Buf) {
318   // ELFT::Word is the 32-bit integral type in the target endianness.
319   typedef typename ELFT::Word u32;
320   ArrayRef<u32> From = getDataAs<u32>();
321   auto *To = reinterpret_cast<u32 *>(Buf);
322 
323   // The first entry is not a section number but a flag.
324   *To++ = From[0];
325 
326   // Adjust section numbers because section numbers in an input object
327   // files are different in the output.
328   ArrayRef<InputSectionBase *> Sections = File->getSections();
329   for (uint32_t Idx : From.slice(1))
330     *To++ = Sections[Idx]->getOutputSection()->SectionIndex;
331 }
332 
333 InputSectionBase *InputSection::getRelocatedSection() {
334   assert(Type == SHT_RELA || Type == SHT_REL);
335   ArrayRef<InputSectionBase *> Sections = File->getSections();
336   return Sections[Info];
337 }
338 
339 // This is used for -r and --emit-relocs. We can't use memcpy to copy
340 // relocations because we need to update symbol table offset and section index
341 // for each relocation. So we copy relocations one by one.
342 template <class ELFT, class RelTy>
343 void InputSection::copyRelocations(uint8_t *Buf, ArrayRef<RelTy> Rels) {
344   InputSectionBase *Sec = getRelocatedSection();
345 
346   for (const RelTy &Rel : Rels) {
347     RelType Type = Rel.getType(Config->IsMips64EL);
348     Symbol &Sym = getFile<ELFT>()->getRelocTargetSym(Rel);
349 
350     auto *P = reinterpret_cast<typename ELFT::Rela *>(Buf);
351     Buf += sizeof(RelTy);
352 
353     if (RelTy::IsRela)
354       P->r_addend = getAddend<ELFT>(Rel);
355 
356     // Output section VA is zero for -r, so r_offset is an offset within the
357     // section, but for --emit-relocs it is an virtual address.
358     P->r_offset = Sec->getOutputSection()->Addr + Sec->getOffset(Rel.r_offset);
359     P->setSymbolAndType(InX::SymTab->getSymbolIndex(&Sym), Type,
360                         Config->IsMips64EL);
361 
362     if (Sym.Type == STT_SECTION) {
363       // We combine multiple section symbols into only one per
364       // section. This means we have to update the addend. That is
365       // trivial for Elf_Rela, but for Elf_Rel we have to write to the
366       // section data. We do that by adding to the Relocation vector.
367 
368       // .eh_frame is horribly special and can reference discarded sections. To
369       // avoid having to parse and recreate .eh_frame, we just replace any
370       // relocation in it pointing to discarded sections with R_*_NONE, which
371       // hopefully creates a frame that is ignored at runtime.
372       auto *D = dyn_cast<Defined>(&Sym);
373       if (!D) {
374         error("STT_SECTION symbol should be defined");
375         continue;
376       }
377       SectionBase *Section = D->Section;
378       if (Section == &InputSection::Discarded) {
379         P->setSymbolAndType(0, 0, false);
380         continue;
381       }
382 
383       if (RelTy::IsRela) {
384         P->r_addend =
385             Sym.getVA(getAddend<ELFT>(Rel)) - Section->getOutputSection()->Addr;
386       } else if (Config->Relocatable) {
387         const uint8_t *BufLoc = Sec->Data.begin() + Rel.r_offset;
388         Sec->Relocations.push_back({R_ABS, Type, Rel.r_offset,
389                                     Target->getImplicitAddend(BufLoc, Type),
390                                     &Sym});
391       }
392     }
393 
394   }
395 }
396 
397 // The ARM and AArch64 ABI handle pc-relative relocations to undefined weak
398 // references specially. The general rule is that the value of the symbol in
399 // this context is the address of the place P. A further special case is that
400 // branch relocations to an undefined weak reference resolve to the next
401 // instruction.
402 static uint32_t getARMUndefinedRelativeWeakVA(RelType Type, uint32_t A,
403                                               uint32_t P) {
404   switch (Type) {
405   // Unresolved branch relocations to weak references resolve to next
406   // instruction, this will be either 2 or 4 bytes on from P.
407   case R_ARM_THM_JUMP11:
408     return P + 2 + A;
409   case R_ARM_CALL:
410   case R_ARM_JUMP24:
411   case R_ARM_PC24:
412   case R_ARM_PLT32:
413   case R_ARM_PREL31:
414   case R_ARM_THM_JUMP19:
415   case R_ARM_THM_JUMP24:
416     return P + 4 + A;
417   case R_ARM_THM_CALL:
418     // We don't want an interworking BLX to ARM
419     return P + 5 + A;
420   // Unresolved non branch pc-relative relocations
421   // R_ARM_TARGET2 which can be resolved relatively is not present as it never
422   // targets a weak-reference.
423   case R_ARM_MOVW_PREL_NC:
424   case R_ARM_MOVT_PREL:
425   case R_ARM_REL32:
426   case R_ARM_THM_MOVW_PREL_NC:
427   case R_ARM_THM_MOVT_PREL:
428     return P + A;
429   }
430   llvm_unreachable("ARM pc-relative relocation expected\n");
431 }
432 
433 // The comment above getARMUndefinedRelativeWeakVA applies to this function.
434 static uint64_t getAArch64UndefinedRelativeWeakVA(uint64_t Type, uint64_t A,
435                                                   uint64_t P) {
436   switch (Type) {
437   // Unresolved branch relocations to weak references resolve to next
438   // instruction, this is 4 bytes on from P.
439   case R_AARCH64_CALL26:
440   case R_AARCH64_CONDBR19:
441   case R_AARCH64_JUMP26:
442   case R_AARCH64_TSTBR14:
443     return P + 4 + A;
444   // Unresolved non branch pc-relative relocations
445   case R_AARCH64_PREL16:
446   case R_AARCH64_PREL32:
447   case R_AARCH64_PREL64:
448   case R_AARCH64_ADR_PREL_LO21:
449   case R_AARCH64_LD_PREL_LO19:
450     return P + A;
451   }
452   llvm_unreachable("AArch64 pc-relative relocation expected\n");
453 }
454 
455 // ARM SBREL relocations are of the form S + A - B where B is the static base
456 // The ARM ABI defines base to be "addressing origin of the output segment
457 // defining the symbol S". We defined the "addressing origin"/static base to be
458 // the base of the PT_LOAD segment containing the Sym.
459 // The procedure call standard only defines a Read Write Position Independent
460 // RWPI variant so in practice we should expect the static base to be the base
461 // of the RW segment.
462 static uint64_t getARMStaticBase(const Symbol &Sym) {
463   OutputSection *OS = Sym.getOutputSection();
464   if (!OS || !OS->PtLoad || !OS->PtLoad->FirstSec)
465     fatal("SBREL relocation to " + Sym.getName() + " without static base");
466   return OS->PtLoad->FirstSec->Addr;
467 }
468 
469 static uint64_t getRelocTargetVA(RelType Type, int64_t A, uint64_t P,
470                                  const Symbol &Sym, RelExpr Expr) {
471   switch (Expr) {
472   case R_INVALID:
473     return 0;
474   case R_ABS:
475   case R_RELAX_GOT_PC_NOPIC:
476     return Sym.getVA(A);
477   case R_ARM_SBREL:
478     return Sym.getVA(A) - getARMStaticBase(Sym);
479   case R_GOT:
480   case R_RELAX_TLS_GD_TO_IE_ABS:
481     return Sym.getGotVA() + A;
482   case R_GOTONLY_PC:
483     return InX::Got->getVA() + A - P;
484   case R_GOTONLY_PC_FROM_END:
485     return InX::Got->getVA() + A - P + InX::Got->getSize();
486   case R_GOTREL:
487     return Sym.getVA(A) - InX::Got->getVA();
488   case R_GOTREL_FROM_END:
489     return Sym.getVA(A) - InX::Got->getVA() - InX::Got->getSize();
490   case R_GOT_FROM_END:
491   case R_RELAX_TLS_GD_TO_IE_END:
492     return Sym.getGotOffset() + A - InX::Got->getSize();
493   case R_GOT_OFF:
494     return Sym.getGotOffset() + A;
495   case R_GOT_PAGE_PC:
496   case R_RELAX_TLS_GD_TO_IE_PAGE_PC:
497     return getAArch64Page(Sym.getGotVA() + A) - getAArch64Page(P);
498   case R_GOT_PC:
499   case R_RELAX_TLS_GD_TO_IE:
500     return Sym.getGotVA() + A - P;
501   case R_HINT:
502   case R_NONE:
503   case R_TLSDESC_CALL:
504     llvm_unreachable("cannot relocate hint relocs");
505   case R_MIPS_GOTREL:
506     return Sym.getVA(A) - InX::MipsGot->getGp();
507   case R_MIPS_GOT_GP:
508     return InX::MipsGot->getGp() + A;
509   case R_MIPS_GOT_GP_PC: {
510     // R_MIPS_LO16 expression has R_MIPS_GOT_GP_PC type iif the target
511     // is _gp_disp symbol. In that case we should use the following
512     // formula for calculation "AHL + GP - P + 4". For details see p. 4-19 at
513     // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf
514     // microMIPS variants of these relocations use slightly different
515     // expressions: AHL + GP - P + 3 for %lo() and AHL + GP - P - 1 for %hi()
516     // to correctly handle less-sugnificant bit of the microMIPS symbol.
517     uint64_t V = InX::MipsGot->getGp() + A - P;
518     if (Type == R_MIPS_LO16 || Type == R_MICROMIPS_LO16)
519       V += 4;
520     if (Type == R_MICROMIPS_LO16 || Type == R_MICROMIPS_HI16)
521       V -= 1;
522     return V;
523   }
524   case R_MIPS_GOT_LOCAL_PAGE:
525     // If relocation against MIPS local symbol requires GOT entry, this entry
526     // should be initialized by 'page address'. This address is high 16-bits
527     // of sum the symbol's value and the addend.
528     return InX::MipsGot->getVA() + InX::MipsGot->getPageEntryOffset(Sym, A) -
529            InX::MipsGot->getGp();
530   case R_MIPS_GOT_OFF:
531   case R_MIPS_GOT_OFF32:
532     // In case of MIPS if a GOT relocation has non-zero addend this addend
533     // should be applied to the GOT entry content not to the GOT entry offset.
534     // That is why we use separate expression type.
535     return InX::MipsGot->getVA() + InX::MipsGot->getSymEntryOffset(Sym, A) -
536            InX::MipsGot->getGp();
537   case R_MIPS_TLSGD:
538     return InX::MipsGot->getVA() + InX::MipsGot->getTlsOffset() +
539            InX::MipsGot->getGlobalDynOffset(Sym) - InX::MipsGot->getGp();
540   case R_MIPS_TLSLD:
541     return InX::MipsGot->getVA() + InX::MipsGot->getTlsOffset() +
542            InX::MipsGot->getTlsIndexOff() - InX::MipsGot->getGp();
543   case R_PAGE_PC:
544   case R_PLT_PAGE_PC: {
545     uint64_t Dest;
546     if (Sym.isUndefWeak())
547       Dest = getAArch64Page(A);
548     else
549       Dest = getAArch64Page(Sym.getVA(A));
550     return Dest - getAArch64Page(P);
551   }
552   case R_PC: {
553     uint64_t Dest;
554     if (Sym.isUndefWeak()) {
555       // On ARM and AArch64 a branch to an undefined weak resolves to the
556       // next instruction, otherwise the place.
557       if (Config->EMachine == EM_ARM)
558         Dest = getARMUndefinedRelativeWeakVA(Type, A, P);
559       else if (Config->EMachine == EM_AARCH64)
560         Dest = getAArch64UndefinedRelativeWeakVA(Type, A, P);
561       else
562         Dest = Sym.getVA(A);
563     } else {
564       Dest = Sym.getVA(A);
565     }
566     return Dest - P;
567   }
568   case R_PLT:
569     return Sym.getPltVA() + A;
570   case R_PLT_PC:
571   case R_PPC_PLT_OPD:
572     return Sym.getPltVA() + A - P;
573   case R_PPC_OPD: {
574     uint64_t SymVA = Sym.getVA(A);
575     // If we have an undefined weak symbol, we might get here with a symbol
576     // address of zero. That could overflow, but the code must be unreachable,
577     // so don't bother doing anything at all.
578     if (!SymVA)
579       return 0;
580     if (Out::Opd) {
581       // If this is a local call, and we currently have the address of a
582       // function-descriptor, get the underlying code address instead.
583       uint64_t OpdStart = Out::Opd->Addr;
584       uint64_t OpdEnd = OpdStart + Out::Opd->Size;
585       bool InOpd = OpdStart <= SymVA && SymVA < OpdEnd;
586       if (InOpd)
587         SymVA = read64be(&Out::OpdBuf[SymVA - OpdStart]);
588     }
589     return SymVA - P;
590   }
591   case R_PPC_TOC:
592     return getPPC64TocBase() + A;
593   case R_RELAX_GOT_PC:
594     return Sym.getVA(A) - P;
595   case R_RELAX_TLS_GD_TO_LE:
596   case R_RELAX_TLS_IE_TO_LE:
597   case R_RELAX_TLS_LD_TO_LE:
598   case R_TLS:
599     // A weak undefined TLS symbol resolves to the base of the TLS
600     // block, i.e. gets a value of zero. If we pass --gc-sections to
601     // lld and .tbss is not referenced, it gets reclaimed and we don't
602     // create a TLS program header. Therefore, we resolve this
603     // statically to zero.
604     if (Sym.isTls() && Sym.isUndefWeak())
605       return 0;
606     if (Target->TcbSize)
607       return Sym.getVA(A) + alignTo(Target->TcbSize, Out::TlsPhdr->p_align);
608     return Sym.getVA(A) - Out::TlsPhdr->p_memsz;
609   case R_RELAX_TLS_GD_TO_LE_NEG:
610   case R_NEG_TLS:
611     return Out::TlsPhdr->p_memsz - Sym.getVA(A);
612   case R_SIZE:
613     return Sym.getSize() + A;
614   case R_TLSDESC:
615     return InX::Got->getGlobalDynAddr(Sym) + A;
616   case R_TLSDESC_PAGE:
617     return getAArch64Page(InX::Got->getGlobalDynAddr(Sym) + A) -
618            getAArch64Page(P);
619   case R_TLSGD:
620     return InX::Got->getGlobalDynOffset(Sym) + A - InX::Got->getSize();
621   case R_TLSGD_PC:
622     return InX::Got->getGlobalDynAddr(Sym) + A - P;
623   case R_TLSLD:
624     return InX::Got->getTlsIndexOff() + A - InX::Got->getSize();
625   case R_TLSLD_PC:
626     return InX::Got->getTlsIndexVA() + A - P;
627   }
628   llvm_unreachable("Invalid expression");
629 }
630 
631 // This function applies relocations to sections without SHF_ALLOC bit.
632 // Such sections are never mapped to memory at runtime. Debug sections are
633 // an example. Relocations in non-alloc sections are much easier to
634 // handle than in allocated sections because it will never need complex
635 // treatement such as GOT or PLT (because at runtime no one refers them).
636 // So, we handle relocations for non-alloc sections directly in this
637 // function as a performance optimization.
638 template <class ELFT, class RelTy>
639 void InputSection::relocateNonAlloc(uint8_t *Buf, ArrayRef<RelTy> Rels) {
640   const unsigned Bits = sizeof(typename ELFT::uint) * 8;
641 
642   for (const RelTy &Rel : Rels) {
643     RelType Type = Rel.getType(Config->IsMips64EL);
644     uint64_t Offset = getOffset(Rel.r_offset);
645     uint8_t *BufLoc = Buf + Offset;
646     int64_t Addend = getAddend<ELFT>(Rel);
647     if (!RelTy::IsRela)
648       Addend += Target->getImplicitAddend(BufLoc, Type);
649 
650     Symbol &Sym = getFile<ELFT>()->getRelocTargetSym(Rel);
651     RelExpr Expr = Target->getRelExpr(Type, Sym, BufLoc);
652     if (Expr == R_NONE)
653       continue;
654     if (Expr != R_ABS) {
655       // GCC 8.0 or earlier have a bug that it emits R_386_GOTPC relocations
656       // against _GLOBAL_OFFSET_TABLE for .debug_info. The bug seems to have
657       // been fixed in 2017: https://gcc.gnu.org/bugzilla/show_bug.cgi?id=82630,
658       // but we need to keep this bug-compatible code for a while.
659       if (Config->EMachine == EM_386 && Type == R_386_GOTPC)
660         continue;
661 
662       error(getLocation<ELFT>(Offset) + ": has non-ABS relocation " +
663             toString(Type) + " against symbol '" + toString(Sym) + "'");
664       return;
665     }
666 
667     if (Sym.isTls() && !Out::TlsPhdr)
668       Target->relocateOne(BufLoc, Type, 0);
669     else
670       Target->relocateOne(BufLoc, Type, SignExtend64<Bits>(Sym.getVA(Addend)));
671   }
672 }
673 
674 template <class ELFT>
675 void InputSectionBase::relocate(uint8_t *Buf, uint8_t *BufEnd) {
676   if (Flags & SHF_ALLOC) {
677     relocateAlloc(Buf, BufEnd);
678     return;
679   }
680 
681   auto *Sec = cast<InputSection>(this);
682   if (Sec->AreRelocsRela)
683     Sec->relocateNonAlloc<ELFT>(Buf, Sec->template relas<ELFT>());
684   else
685     Sec->relocateNonAlloc<ELFT>(Buf, Sec->template rels<ELFT>());
686 }
687 
688 void InputSectionBase::relocateAlloc(uint8_t *Buf, uint8_t *BufEnd) {
689   assert(Flags & SHF_ALLOC);
690   const unsigned Bits = Config->Wordsize * 8;
691 
692   for (const Relocation &Rel : Relocations) {
693     uint64_t Offset = getOffset(Rel.Offset);
694     uint8_t *BufLoc = Buf + Offset;
695     RelType Type = Rel.Type;
696 
697     uint64_t AddrLoc = getOutputSection()->Addr + Offset;
698     RelExpr Expr = Rel.Expr;
699     uint64_t TargetVA = SignExtend64(
700         getRelocTargetVA(Type, Rel.Addend, AddrLoc, *Rel.Sym, Expr), Bits);
701 
702     switch (Expr) {
703     case R_RELAX_GOT_PC:
704     case R_RELAX_GOT_PC_NOPIC:
705       Target->relaxGot(BufLoc, TargetVA);
706       break;
707     case R_RELAX_TLS_IE_TO_LE:
708       Target->relaxTlsIeToLe(BufLoc, Type, TargetVA);
709       break;
710     case R_RELAX_TLS_LD_TO_LE:
711       Target->relaxTlsLdToLe(BufLoc, Type, TargetVA);
712       break;
713     case R_RELAX_TLS_GD_TO_LE:
714     case R_RELAX_TLS_GD_TO_LE_NEG:
715       Target->relaxTlsGdToLe(BufLoc, Type, TargetVA);
716       break;
717     case R_RELAX_TLS_GD_TO_IE:
718     case R_RELAX_TLS_GD_TO_IE_ABS:
719     case R_RELAX_TLS_GD_TO_IE_PAGE_PC:
720     case R_RELAX_TLS_GD_TO_IE_END:
721       Target->relaxTlsGdToIe(BufLoc, Type, TargetVA);
722       break;
723     case R_PPC_PLT_OPD:
724       // Patch a nop (0x60000000) to a ld.
725       if (BufLoc + 8 <= BufEnd && read32be(BufLoc + 4) == 0x60000000)
726         write32be(BufLoc + 4, 0xe8410028); // ld %r2, 40(%r1)
727       LLVM_FALLTHROUGH;
728     default:
729       Target->relocateOne(BufLoc, Type, TargetVA);
730       break;
731     }
732   }
733 }
734 
735 template <class ELFT> void InputSection::writeTo(uint8_t *Buf) {
736   if (Type == SHT_NOBITS)
737     return;
738 
739   if (auto *S = dyn_cast<SyntheticSection>(this)) {
740     S->writeTo(Buf + OutSecOff);
741     return;
742   }
743 
744   // If -r or --emit-relocs is given, then an InputSection
745   // may be a relocation section.
746   if (Type == SHT_RELA) {
747     copyRelocations<ELFT>(Buf + OutSecOff, getDataAs<typename ELFT::Rela>());
748     return;
749   }
750   if (Type == SHT_REL) {
751     copyRelocations<ELFT>(Buf + OutSecOff, getDataAs<typename ELFT::Rel>());
752     return;
753   }
754 
755   // If -r is given, we may have a SHT_GROUP section.
756   if (Type == SHT_GROUP) {
757     copyShtGroup<ELFT>(Buf + OutSecOff);
758     return;
759   }
760 
761   // Copy section contents from source object file to output file
762   // and then apply relocations.
763   memcpy(Buf + OutSecOff, Data.data(), Data.size());
764   uint8_t *BufEnd = Buf + OutSecOff + Data.size();
765   relocate<ELFT>(Buf, BufEnd);
766 }
767 
768 void InputSection::replace(InputSection *Other) {
769   Alignment = std::max(Alignment, Other->Alignment);
770   Other->Repl = Repl;
771   Other->Live = false;
772 }
773 
774 template <class ELFT>
775 EhInputSection::EhInputSection(ObjFile<ELFT> &F,
776                                const typename ELFT::Shdr &Header,
777                                StringRef Name)
778     : InputSectionBase(F, Header, Name, InputSectionBase::EHFrame) {}
779 
780 SyntheticSection *EhInputSection::getParent() const {
781   return cast_or_null<SyntheticSection>(Parent);
782 }
783 
784 // Returns the index of the first relocation that points to a region between
785 // Begin and Begin+Size.
786 template <class IntTy, class RelTy>
787 static unsigned getReloc(IntTy Begin, IntTy Size, const ArrayRef<RelTy> &Rels,
788                          unsigned &RelocI) {
789   // Start search from RelocI for fast access. That works because the
790   // relocations are sorted in .eh_frame.
791   for (unsigned N = Rels.size(); RelocI < N; ++RelocI) {
792     const RelTy &Rel = Rels[RelocI];
793     if (Rel.r_offset < Begin)
794       continue;
795 
796     if (Rel.r_offset < Begin + Size)
797       return RelocI;
798     return -1;
799   }
800   return -1;
801 }
802 
803 // .eh_frame is a sequence of CIE or FDE records.
804 // This function splits an input section into records and returns them.
805 template <class ELFT> void EhInputSection::split() {
806   // Early exit if already split.
807   if (!Pieces.empty())
808     return;
809 
810   if (AreRelocsRela)
811     split<ELFT>(relas<ELFT>());
812   else
813     split<ELFT>(rels<ELFT>());
814 }
815 
816 template <class ELFT, class RelTy>
817 void EhInputSection::split(ArrayRef<RelTy> Rels) {
818   unsigned RelI = 0;
819   for (size_t Off = 0, End = Data.size(); Off != End;) {
820     size_t Size = readEhRecordSize(this, Off);
821     Pieces.emplace_back(Off, this, Size, getReloc(Off, Size, Rels, RelI));
822     // The empty record is the end marker.
823     if (Size == 4)
824       break;
825     Off += Size;
826   }
827 }
828 
829 static size_t findNull(StringRef S, size_t EntSize) {
830   // Optimize the common case.
831   if (EntSize == 1)
832     return S.find(0);
833 
834   for (unsigned I = 0, N = S.size(); I != N; I += EntSize) {
835     const char *B = S.begin() + I;
836     if (std::all_of(B, B + EntSize, [](char C) { return C == 0; }))
837       return I;
838   }
839   return StringRef::npos;
840 }
841 
842 SyntheticSection *MergeInputSection::getParent() const {
843   return cast_or_null<SyntheticSection>(Parent);
844 }
845 
846 // Split SHF_STRINGS section. Such section is a sequence of
847 // null-terminated strings.
848 void MergeInputSection::splitStrings(ArrayRef<uint8_t> Data, size_t EntSize) {
849   size_t Off = 0;
850   bool IsAlloc = Flags & SHF_ALLOC;
851   StringRef S = toStringRef(Data);
852 
853   while (!S.empty()) {
854     size_t End = findNull(S, EntSize);
855     if (End == StringRef::npos)
856       fatal(toString(this) + ": string is not null terminated");
857     size_t Size = End + EntSize;
858 
859     Pieces.emplace_back(Off, xxHash64(S.substr(0, Size)), !IsAlloc);
860     S = S.substr(Size);
861     Off += Size;
862   }
863 }
864 
865 // Split non-SHF_STRINGS section. Such section is a sequence of
866 // fixed size records.
867 void MergeInputSection::splitNonStrings(ArrayRef<uint8_t> Data,
868                                         size_t EntSize) {
869   size_t Size = Data.size();
870   assert((Size % EntSize) == 0);
871   bool IsAlloc = Flags & SHF_ALLOC;
872 
873   for (size_t I = 0; I != Size; I += EntSize)
874     Pieces.emplace_back(I, xxHash64(toStringRef(Data.slice(I, EntSize))),
875                         !IsAlloc);
876 }
877 
878 template <class ELFT>
879 MergeInputSection::MergeInputSection(ObjFile<ELFT> &F,
880                                      const typename ELFT::Shdr &Header,
881                                      StringRef Name)
882     : InputSectionBase(F, Header, Name, InputSectionBase::Merge) {}
883 
884 MergeInputSection::MergeInputSection(uint64_t Flags, uint32_t Type,
885                                      uint64_t Entsize, ArrayRef<uint8_t> Data,
886                                      StringRef Name)
887     : InputSectionBase(nullptr, Flags, Type, Entsize, /*Link*/ 0, /*Info*/ 0,
888                        /*Alignment*/ Entsize, Data, Name, SectionBase::Merge) {}
889 
890 // This function is called after we obtain a complete list of input sections
891 // that need to be linked. This is responsible to split section contents
892 // into small chunks for further processing.
893 //
894 // Note that this function is called from parallelForEach. This must be
895 // thread-safe (i.e. no memory allocation from the pools).
896 void MergeInputSection::splitIntoPieces() {
897   assert(Pieces.empty());
898 
899   if (Flags & SHF_STRINGS)
900     splitStrings(Data, Entsize);
901   else
902     splitNonStrings(Data, Entsize);
903 
904   if (Config->GcSections && (Flags & SHF_ALLOC))
905     for (uint64_t Off : LiveOffsets)
906       getSectionPiece(Off)->Live = true;
907 }
908 
909 // Do binary search to get a section piece at a given input offset.
910 SectionPiece *MergeInputSection::getSectionPiece(uint64_t Offset) {
911   auto *This = static_cast<const MergeInputSection *>(this);
912   return const_cast<SectionPiece *>(This->getSectionPiece(Offset));
913 }
914 
915 template <class It, class T, class Compare>
916 static It fastUpperBound(It First, It Last, const T &Value, Compare Comp) {
917   size_t Size = std::distance(First, Last);
918   assert(Size != 0);
919   while (Size != 1) {
920     size_t H = Size / 2;
921     const It MI = First + H;
922     Size -= H;
923     First = Comp(Value, *MI) ? First : First + H;
924   }
925   return Comp(Value, *First) ? First : First + 1;
926 }
927 
928 const SectionPiece *MergeInputSection::getSectionPiece(uint64_t Offset) const {
929   if (Data.size() <= Offset)
930     fatal(toString(this) + ": entry is past the end of the section");
931 
932   // Find the element this offset points to.
933   auto I = fastUpperBound(
934       Pieces.begin(), Pieces.end(), Offset,
935       [](const uint64_t &A, const SectionPiece &B) { return A < B.InputOff; });
936   --I;
937   return &*I;
938 }
939 
940 // Returns the offset in an output section for a given input offset.
941 // Because contents of a mergeable section is not contiguous in output,
942 // it is not just an addition to a base output offset.
943 uint64_t MergeInputSection::getOffset(uint64_t Offset) const {
944   if (!Live)
945     return 0;
946 
947   // Initialize OffsetMap lazily.
948   llvm::call_once(InitOffsetMap, [&] {
949     OffsetMap.reserve(Pieces.size());
950     for (size_t I = 0; I < Pieces.size(); ++I)
951       OffsetMap[Pieces[I].InputOff] = I;
952   });
953 
954   // Find a string starting at a given offset.
955   auto It = OffsetMap.find(Offset);
956   if (It != OffsetMap.end())
957     return Pieces[It->second].OutputOff;
958 
959   // If Offset is not at beginning of a section piece, it is not in the map.
960   // In that case we need to search from the original section piece vector.
961   const SectionPiece &Piece = *getSectionPiece(Offset);
962   if (!Piece.Live)
963     return 0;
964 
965   uint64_t Addend = Offset - Piece.InputOff;
966   return Piece.OutputOff + Addend;
967 }
968 
969 template InputSection::InputSection(ObjFile<ELF32LE> &, const ELF32LE::Shdr &,
970                                     StringRef);
971 template InputSection::InputSection(ObjFile<ELF32BE> &, const ELF32BE::Shdr &,
972                                     StringRef);
973 template InputSection::InputSection(ObjFile<ELF64LE> &, const ELF64LE::Shdr &,
974                                     StringRef);
975 template InputSection::InputSection(ObjFile<ELF64BE> &, const ELF64BE::Shdr &,
976                                     StringRef);
977 
978 template std::string InputSectionBase::getLocation<ELF32LE>(uint64_t);
979 template std::string InputSectionBase::getLocation<ELF32BE>(uint64_t);
980 template std::string InputSectionBase::getLocation<ELF64LE>(uint64_t);
981 template std::string InputSectionBase::getLocation<ELF64BE>(uint64_t);
982 
983 template void InputSection::writeTo<ELF32LE>(uint8_t *);
984 template void InputSection::writeTo<ELF32BE>(uint8_t *);
985 template void InputSection::writeTo<ELF64LE>(uint8_t *);
986 template void InputSection::writeTo<ELF64BE>(uint8_t *);
987 
988 template MergeInputSection::MergeInputSection(ObjFile<ELF32LE> &,
989                                               const ELF32LE::Shdr &, StringRef);
990 template MergeInputSection::MergeInputSection(ObjFile<ELF32BE> &,
991                                               const ELF32BE::Shdr &, StringRef);
992 template MergeInputSection::MergeInputSection(ObjFile<ELF64LE> &,
993                                               const ELF64LE::Shdr &, StringRef);
994 template MergeInputSection::MergeInputSection(ObjFile<ELF64BE> &,
995                                               const ELF64BE::Shdr &, StringRef);
996 
997 template EhInputSection::EhInputSection(ObjFile<ELF32LE> &,
998                                         const ELF32LE::Shdr &, StringRef);
999 template EhInputSection::EhInputSection(ObjFile<ELF32BE> &,
1000                                         const ELF32BE::Shdr &, StringRef);
1001 template EhInputSection::EhInputSection(ObjFile<ELF64LE> &,
1002                                         const ELF64LE::Shdr &, StringRef);
1003 template EhInputSection::EhInputSection(ObjFile<ELF64BE> &,
1004                                         const ELF64BE::Shdr &, StringRef);
1005 
1006 template void EhInputSection::split<ELF32LE>();
1007 template void EhInputSection::split<ELF32BE>();
1008 template void EhInputSection::split<ELF64LE>();
1009 template void EhInputSection::split<ELF64BE>();
1010