xref: /llvm-project/llvm/lib/Object/ArchiveWriter.cpp (revision c7fc95baae8e662506c22511b29e1ad86b910248)
1 //===- ArchiveWriter.cpp - ar File Format implementation --------*- C++ -*-===//
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 defines the writeArchive function.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "llvm/Object/ArchiveWriter.h"
14 #include "llvm/ADT/ArrayRef.h"
15 #include "llvm/ADT/StringMap.h"
16 #include "llvm/ADT/StringRef.h"
17 #include "llvm/BinaryFormat/Magic.h"
18 #include "llvm/IR/LLVMContext.h"
19 #include "llvm/Object/Archive.h"
20 #include "llvm/Object/COFF.h"
21 #include "llvm/Object/COFFImportFile.h"
22 #include "llvm/Object/Error.h"
23 #include "llvm/Object/IRObjectFile.h"
24 #include "llvm/Object/MachO.h"
25 #include "llvm/Object/ObjectFile.h"
26 #include "llvm/Object/SymbolicFile.h"
27 #include "llvm/Object/XCOFFObjectFile.h"
28 #include "llvm/Support/Alignment.h"
29 #include "llvm/Support/EndianStream.h"
30 #include "llvm/Support/Errc.h"
31 #include "llvm/Support/ErrorHandling.h"
32 #include "llvm/Support/Format.h"
33 #include "llvm/Support/MathExtras.h"
34 #include "llvm/Support/Path.h"
35 #include "llvm/Support/SmallVectorMemoryBuffer.h"
36 #include "llvm/Support/raw_ostream.h"
37 
38 #include <cerrno>
39 #include <map>
40 
41 #if !defined(_MSC_VER) && !defined(__MINGW32__)
42 #include <unistd.h>
43 #else
44 #include <io.h>
45 #endif
46 
47 using namespace llvm;
48 using namespace llvm::object;
49 
50 struct SymMap {
51   bool UseECMap;
52   std::map<std::string, uint16_t> Map;
53   std::map<std::string, uint16_t> ECMap;
54 };
55 
56 NewArchiveMember::NewArchiveMember(MemoryBufferRef BufRef)
57     : Buf(MemoryBuffer::getMemBuffer(BufRef, false)),
58       MemberName(BufRef.getBufferIdentifier()) {}
59 
60 object::Archive::Kind NewArchiveMember::detectKindFromObject() const {
61   auto MemBufferRef = this->Buf->getMemBufferRef();
62   Expected<std::unique_ptr<object::ObjectFile>> OptionalObject =
63       object::ObjectFile::createObjectFile(MemBufferRef);
64 
65   if (OptionalObject) {
66     if (isa<object::MachOObjectFile>(**OptionalObject))
67       return object::Archive::K_DARWIN;
68     if (isa<object::XCOFFObjectFile>(**OptionalObject))
69       return object::Archive::K_AIXBIG;
70     if (isa<object::COFFObjectFile>(**OptionalObject) ||
71         isa<object::COFFImportFile>(**OptionalObject))
72       return object::Archive::K_COFF;
73     return object::Archive::K_GNU;
74   }
75 
76   // Squelch the error in case we had a non-object file.
77   consumeError(OptionalObject.takeError());
78 
79   // If we're adding a bitcode file to the archive, detect the Archive kind
80   // based on the target triple.
81   LLVMContext Context;
82   if (identify_magic(MemBufferRef.getBuffer()) == file_magic::bitcode) {
83     if (auto ObjOrErr = object::SymbolicFile::createSymbolicFile(
84             MemBufferRef, file_magic::bitcode, &Context)) {
85       auto &IRObject = cast<object::IRObjectFile>(**ObjOrErr);
86       auto TargetTriple = Triple(IRObject.getTargetTriple());
87       return object::Archive::getDefaultKindForTriple(TargetTriple);
88     } else {
89       // Squelch the error in case this was not a SymbolicFile.
90       consumeError(ObjOrErr.takeError());
91     }
92   }
93 
94   return object::Archive::getDefaultKind();
95 }
96 
97 Expected<NewArchiveMember>
98 NewArchiveMember::getOldMember(const object::Archive::Child &OldMember,
99                                bool Deterministic) {
100   Expected<llvm::MemoryBufferRef> BufOrErr = OldMember.getMemoryBufferRef();
101   if (!BufOrErr)
102     return BufOrErr.takeError();
103 
104   NewArchiveMember M;
105   M.Buf = MemoryBuffer::getMemBuffer(*BufOrErr, false);
106   M.MemberName = M.Buf->getBufferIdentifier();
107   if (!Deterministic) {
108     auto ModTimeOrErr = OldMember.getLastModified();
109     if (!ModTimeOrErr)
110       return ModTimeOrErr.takeError();
111     M.ModTime = ModTimeOrErr.get();
112     Expected<unsigned> UIDOrErr = OldMember.getUID();
113     if (!UIDOrErr)
114       return UIDOrErr.takeError();
115     M.UID = UIDOrErr.get();
116     Expected<unsigned> GIDOrErr = OldMember.getGID();
117     if (!GIDOrErr)
118       return GIDOrErr.takeError();
119     M.GID = GIDOrErr.get();
120     Expected<sys::fs::perms> AccessModeOrErr = OldMember.getAccessMode();
121     if (!AccessModeOrErr)
122       return AccessModeOrErr.takeError();
123     M.Perms = AccessModeOrErr.get();
124   }
125   return std::move(M);
126 }
127 
128 Expected<NewArchiveMember> NewArchiveMember::getFile(StringRef FileName,
129                                                      bool Deterministic) {
130   sys::fs::file_status Status;
131   auto FDOrErr = sys::fs::openNativeFileForRead(FileName);
132   if (!FDOrErr)
133     return FDOrErr.takeError();
134   sys::fs::file_t FD = *FDOrErr;
135   assert(FD != sys::fs::kInvalidFile);
136 
137   if (auto EC = sys::fs::status(FD, Status))
138     return errorCodeToError(EC);
139 
140   // Opening a directory doesn't make sense. Let it fail.
141   // Linux cannot open directories with open(2), although
142   // cygwin and *bsd can.
143   if (Status.type() == sys::fs::file_type::directory_file)
144     return errorCodeToError(make_error_code(errc::is_a_directory));
145 
146   ErrorOr<std::unique_ptr<MemoryBuffer>> MemberBufferOrErr =
147       MemoryBuffer::getOpenFile(FD, FileName, Status.getSize(), false);
148   if (!MemberBufferOrErr)
149     return errorCodeToError(MemberBufferOrErr.getError());
150 
151   if (auto EC = sys::fs::closeFile(FD))
152     return errorCodeToError(EC);
153 
154   NewArchiveMember M;
155   M.Buf = std::move(*MemberBufferOrErr);
156   M.MemberName = M.Buf->getBufferIdentifier();
157   if (!Deterministic) {
158     M.ModTime = std::chrono::time_point_cast<std::chrono::seconds>(
159         Status.getLastModificationTime());
160     M.UID = Status.getUser();
161     M.GID = Status.getGroup();
162     M.Perms = Status.permissions();
163   }
164   return std::move(M);
165 }
166 
167 template <typename T>
168 static void printWithSpacePadding(raw_ostream &OS, T Data, unsigned Size) {
169   uint64_t OldPos = OS.tell();
170   OS << Data;
171   unsigned SizeSoFar = OS.tell() - OldPos;
172   assert(SizeSoFar <= Size && "Data doesn't fit in Size");
173   OS.indent(Size - SizeSoFar);
174 }
175 
176 static bool isDarwin(object::Archive::Kind Kind) {
177   return Kind == object::Archive::K_DARWIN ||
178          Kind == object::Archive::K_DARWIN64;
179 }
180 
181 static bool isAIXBigArchive(object::Archive::Kind Kind) {
182   return Kind == object::Archive::K_AIXBIG;
183 }
184 
185 static bool isCOFFArchive(object::Archive::Kind Kind) {
186   return Kind == object::Archive::K_COFF;
187 }
188 
189 static bool isBSDLike(object::Archive::Kind Kind) {
190   switch (Kind) {
191   case object::Archive::K_GNU:
192   case object::Archive::K_GNU64:
193   case object::Archive::K_AIXBIG:
194   case object::Archive::K_COFF:
195     return false;
196   case object::Archive::K_BSD:
197   case object::Archive::K_DARWIN:
198   case object::Archive::K_DARWIN64:
199     return true;
200   }
201   llvm_unreachable("not supported for writting");
202 }
203 
204 template <class T>
205 static void print(raw_ostream &Out, object::Archive::Kind Kind, T Val) {
206   support::endian::write(Out, Val,
207                          isBSDLike(Kind) ? llvm::endianness::little
208                                          : llvm::endianness::big);
209 }
210 
211 template <class T> static void printLE(raw_ostream &Out, T Val) {
212   support::endian::write(Out, Val, llvm::endianness::little);
213 }
214 
215 static void printRestOfMemberHeader(
216     raw_ostream &Out, const sys::TimePoint<std::chrono::seconds> &ModTime,
217     unsigned UID, unsigned GID, unsigned Perms, uint64_t Size) {
218   printWithSpacePadding(Out, sys::toTimeT(ModTime), 12);
219 
220   // The format has only 6 chars for uid and gid. Truncate if the provided
221   // values don't fit.
222   printWithSpacePadding(Out, UID % 1000000, 6);
223   printWithSpacePadding(Out, GID % 1000000, 6);
224 
225   printWithSpacePadding(Out, format("%o", Perms), 8);
226   printWithSpacePadding(Out, Size, 10);
227   Out << "`\n";
228 }
229 
230 static void
231 printGNUSmallMemberHeader(raw_ostream &Out, StringRef Name,
232                           const sys::TimePoint<std::chrono::seconds> &ModTime,
233                           unsigned UID, unsigned GID, unsigned Perms,
234                           uint64_t Size) {
235   printWithSpacePadding(Out, Twine(Name) + "/", 16);
236   printRestOfMemberHeader(Out, ModTime, UID, GID, Perms, Size);
237 }
238 
239 static void
240 printBSDMemberHeader(raw_ostream &Out, uint64_t Pos, StringRef Name,
241                      const sys::TimePoint<std::chrono::seconds> &ModTime,
242                      unsigned UID, unsigned GID, unsigned Perms, uint64_t Size) {
243   uint64_t PosAfterHeader = Pos + 60 + Name.size();
244   // Pad so that even 64 bit object files are aligned.
245   unsigned Pad = offsetToAlignment(PosAfterHeader, Align(8));
246   unsigned NameWithPadding = Name.size() + Pad;
247   printWithSpacePadding(Out, Twine("#1/") + Twine(NameWithPadding), 16);
248   printRestOfMemberHeader(Out, ModTime, UID, GID, Perms,
249                           NameWithPadding + Size);
250   Out << Name;
251   while (Pad--)
252     Out.write(uint8_t(0));
253 }
254 
255 static void
256 printBigArchiveMemberHeader(raw_ostream &Out, StringRef Name,
257                             const sys::TimePoint<std::chrono::seconds> &ModTime,
258                             unsigned UID, unsigned GID, unsigned Perms,
259                             uint64_t Size, uint64_t PrevOffset,
260                             uint64_t NextOffset) {
261   unsigned NameLen = Name.size();
262 
263   printWithSpacePadding(Out, Size, 20);           // File member size
264   printWithSpacePadding(Out, NextOffset, 20);     // Next member header offset
265   printWithSpacePadding(Out, PrevOffset, 20); // Previous member header offset
266   printWithSpacePadding(Out, sys::toTimeT(ModTime), 12); // File member date
267   // The big archive format has 12 chars for uid and gid.
268   printWithSpacePadding(Out, UID % 1000000000000, 12);   // UID
269   printWithSpacePadding(Out, GID % 1000000000000, 12);   // GID
270   printWithSpacePadding(Out, format("%o", Perms), 12);   // Permission
271   printWithSpacePadding(Out, NameLen, 4);                // Name length
272   if (NameLen) {
273     printWithSpacePadding(Out, Name, NameLen); // Name
274     if (NameLen % 2)
275       Out.write(uint8_t(0)); // Null byte padding
276   }
277   Out << "`\n"; // Terminator
278 }
279 
280 static bool useStringTable(bool Thin, StringRef Name) {
281   return Thin || Name.size() >= 16 || Name.contains('/');
282 }
283 
284 static bool is64BitKind(object::Archive::Kind Kind) {
285   switch (Kind) {
286   case object::Archive::K_GNU:
287   case object::Archive::K_BSD:
288   case object::Archive::K_DARWIN:
289   case object::Archive::K_COFF:
290     return false;
291   case object::Archive::K_AIXBIG:
292   case object::Archive::K_DARWIN64:
293   case object::Archive::K_GNU64:
294     return true;
295   }
296   llvm_unreachable("not supported for writting");
297 }
298 
299 static void
300 printMemberHeader(raw_ostream &Out, uint64_t Pos, raw_ostream &StringTable,
301                   StringMap<uint64_t> &MemberNames, object::Archive::Kind Kind,
302                   bool Thin, const NewArchiveMember &M,
303                   sys::TimePoint<std::chrono::seconds> ModTime, uint64_t Size) {
304   if (isBSDLike(Kind))
305     return printBSDMemberHeader(Out, Pos, M.MemberName, ModTime, M.UID, M.GID,
306                                 M.Perms, Size);
307   if (!useStringTable(Thin, M.MemberName))
308     return printGNUSmallMemberHeader(Out, M.MemberName, ModTime, M.UID, M.GID,
309                                      M.Perms, Size);
310   Out << '/';
311   uint64_t NamePos;
312   if (Thin) {
313     NamePos = StringTable.tell();
314     StringTable << M.MemberName << "/\n";
315   } else {
316     auto Insertion = MemberNames.insert({M.MemberName, uint64_t(0)});
317     if (Insertion.second) {
318       Insertion.first->second = StringTable.tell();
319       StringTable << M.MemberName;
320       if (isCOFFArchive(Kind))
321         StringTable << '\0';
322       else
323         StringTable << "/\n";
324     }
325     NamePos = Insertion.first->second;
326   }
327   printWithSpacePadding(Out, NamePos, 15);
328   printRestOfMemberHeader(Out, ModTime, M.UID, M.GID, M.Perms, Size);
329 }
330 
331 namespace {
332 struct MemberData {
333   std::vector<unsigned> Symbols;
334   std::string Header;
335   StringRef Data;
336   StringRef Padding;
337   uint64_t PreHeadPadSize = 0;
338   std::unique_ptr<SymbolicFile> SymFile = nullptr;
339 };
340 } // namespace
341 
342 static MemberData computeStringTable(StringRef Names) {
343   unsigned Size = Names.size();
344   unsigned Pad = offsetToAlignment(Size, Align(2));
345   std::string Header;
346   raw_string_ostream Out(Header);
347   printWithSpacePadding(Out, "//", 48);
348   printWithSpacePadding(Out, Size + Pad, 10);
349   Out << "`\n";
350   Out.flush();
351   return {{}, std::move(Header), Names, Pad ? "\n" : ""};
352 }
353 
354 static sys::TimePoint<std::chrono::seconds> now(bool Deterministic) {
355   using namespace std::chrono;
356 
357   if (!Deterministic)
358     return time_point_cast<seconds>(system_clock::now());
359   return sys::TimePoint<seconds>();
360 }
361 
362 static bool isArchiveSymbol(const object::BasicSymbolRef &S) {
363   Expected<uint32_t> SymFlagsOrErr = S.getFlags();
364   if (!SymFlagsOrErr)
365     // TODO: Actually report errors helpfully.
366     report_fatal_error(SymFlagsOrErr.takeError());
367   if (*SymFlagsOrErr & object::SymbolRef::SF_FormatSpecific)
368     return false;
369   if (!(*SymFlagsOrErr & object::SymbolRef::SF_Global))
370     return false;
371   if (*SymFlagsOrErr & object::SymbolRef::SF_Undefined)
372     return false;
373   return true;
374 }
375 
376 static void printNBits(raw_ostream &Out, object::Archive::Kind Kind,
377                        uint64_t Val) {
378   if (is64BitKind(Kind))
379     print<uint64_t>(Out, Kind, Val);
380   else
381     print<uint32_t>(Out, Kind, Val);
382 }
383 
384 static uint64_t computeSymbolTableSize(object::Archive::Kind Kind,
385                                        uint64_t NumSyms, uint64_t OffsetSize,
386                                        uint64_t StringTableSize,
387                                        uint32_t *Padding = nullptr) {
388   assert((OffsetSize == 4 || OffsetSize == 8) && "Unsupported OffsetSize");
389   uint64_t Size = OffsetSize; // Number of entries
390   if (isBSDLike(Kind))
391     Size += NumSyms * OffsetSize * 2; // Table
392   else
393     Size += NumSyms * OffsetSize; // Table
394   if (isBSDLike(Kind))
395     Size += OffsetSize; // byte count
396   Size += StringTableSize;
397   // ld64 expects the members to be 8-byte aligned for 64-bit content and at
398   // least 4-byte aligned for 32-bit content.  Opt for the larger encoding
399   // uniformly.
400   // We do this for all bsd formats because it simplifies aligning members.
401   // For the big archive format, the symbol table is the last member, so there
402   // is no need to align.
403   uint32_t Pad = isAIXBigArchive(Kind)
404                      ? 0
405                      : offsetToAlignment(Size, Align(isBSDLike(Kind) ? 8 : 2));
406 
407   Size += Pad;
408   if (Padding)
409     *Padding = Pad;
410   return Size;
411 }
412 
413 static uint64_t computeSymbolMapSize(uint64_t NumObj, SymMap &SymMap,
414                                      uint32_t *Padding = nullptr) {
415   uint64_t Size = sizeof(uint32_t) * 2; // Number of symbols and objects entries
416   Size += NumObj * sizeof(uint32_t);    // Offset table
417 
418   for (auto S : SymMap.Map)
419     Size += sizeof(uint16_t) + S.first.length() + 1;
420 
421   uint32_t Pad = offsetToAlignment(Size, Align(2));
422   Size += Pad;
423   if (Padding)
424     *Padding = Pad;
425   return Size;
426 }
427 
428 static uint64_t computeECSymbolsSize(SymMap &SymMap,
429                                      uint32_t *Padding = nullptr) {
430   uint64_t Size = sizeof(uint32_t); // Number of symbols
431 
432   for (auto S : SymMap.ECMap)
433     Size += sizeof(uint16_t) + S.first.length() + 1;
434 
435   uint32_t Pad = offsetToAlignment(Size, Align(2));
436   Size += Pad;
437   if (Padding)
438     *Padding = Pad;
439   return Size;
440 }
441 
442 static void writeSymbolTableHeader(raw_ostream &Out, object::Archive::Kind Kind,
443                                    bool Deterministic, uint64_t Size,
444                                    uint64_t PrevMemberOffset = 0,
445                                    uint64_t NextMemberOffset = 0) {
446   if (isBSDLike(Kind)) {
447     const char *Name = is64BitKind(Kind) ? "__.SYMDEF_64" : "__.SYMDEF";
448     printBSDMemberHeader(Out, Out.tell(), Name, now(Deterministic), 0, 0, 0,
449                          Size);
450   } else if (isAIXBigArchive(Kind)) {
451     printBigArchiveMemberHeader(Out, "", now(Deterministic), 0, 0, 0, Size,
452                                 PrevMemberOffset, NextMemberOffset);
453   } else {
454     const char *Name = is64BitKind(Kind) ? "/SYM64" : "";
455     printGNUSmallMemberHeader(Out, Name, now(Deterministic), 0, 0, 0, Size);
456   }
457 }
458 
459 static uint64_t computeHeadersSize(object::Archive::Kind Kind,
460                                    uint64_t NumMembers,
461                                    uint64_t StringMemberSize, uint64_t NumSyms,
462                                    uint64_t SymNamesSize, SymMap *SymMap) {
463   uint32_t OffsetSize = is64BitKind(Kind) ? 8 : 4;
464   uint64_t SymtabSize =
465       computeSymbolTableSize(Kind, NumSyms, OffsetSize, SymNamesSize);
466   auto computeSymbolTableHeaderSize = [=] {
467     SmallString<0> TmpBuf;
468     raw_svector_ostream Tmp(TmpBuf);
469     writeSymbolTableHeader(Tmp, Kind, true, SymtabSize);
470     return TmpBuf.size();
471   };
472   uint32_t HeaderSize = computeSymbolTableHeaderSize();
473   uint64_t Size = strlen("!<arch>\n") + HeaderSize + SymtabSize;
474 
475   if (SymMap) {
476     Size += HeaderSize + computeSymbolMapSize(NumMembers, *SymMap);
477     if (SymMap->ECMap.size())
478       Size += HeaderSize + computeECSymbolsSize(*SymMap);
479   }
480 
481   return Size + StringMemberSize;
482 }
483 
484 static Expected<std::unique_ptr<SymbolicFile>>
485 getSymbolicFile(MemoryBufferRef Buf, LLVMContext &Context) {
486   const file_magic Type = identify_magic(Buf.getBuffer());
487   // Don't attempt to read non-symbolic file types.
488   if (!object::SymbolicFile::isSymbolicFile(Type, &Context))
489     return nullptr;
490   if (Type == file_magic::bitcode) {
491     auto ObjOrErr = object::SymbolicFile::createSymbolicFile(
492         Buf, file_magic::bitcode, &Context);
493     if (!ObjOrErr)
494       return ObjOrErr.takeError();
495     return std::move(*ObjOrErr);
496   } else {
497     auto ObjOrErr = object::SymbolicFile::createSymbolicFile(Buf);
498     if (!ObjOrErr)
499       return ObjOrErr.takeError();
500     return std::move(*ObjOrErr);
501   }
502 }
503 
504 static bool is64BitSymbolicFile(const SymbolicFile *SymObj) {
505   return SymObj != nullptr ? SymObj->is64Bit() : false;
506 }
507 
508 // Log2 of PAGESIZE(4096) on an AIX system.
509 static const uint32_t Log2OfAIXPageSize = 12;
510 
511 // In the AIX big archive format, since the data content follows the member file
512 // name, if the name ends on an odd byte, an extra byte will be added for
513 // padding. This ensures that the data within the member file starts at an even
514 // byte.
515 static const uint32_t MinBigArchiveMemDataAlign = 2;
516 
517 template <typename AuxiliaryHeader>
518 uint16_t getAuxMaxAlignment(uint16_t AuxHeaderSize, AuxiliaryHeader *AuxHeader,
519                             uint16_t Log2OfMaxAlign) {
520   // If the member doesn't have an auxiliary header, it isn't a loadable object
521   // and so it just needs aligning at the minimum value.
522   if (AuxHeader == nullptr)
523     return MinBigArchiveMemDataAlign;
524 
525   // If the auxiliary header does not have both MaxAlignOfData and
526   // MaxAlignOfText field, it is not a loadable shared object file, so align at
527   // the minimum value. The 'ModuleType' member is located right after
528   // 'MaxAlignOfData' in the AuxiliaryHeader.
529   if (AuxHeaderSize < offsetof(AuxiliaryHeader, ModuleType))
530     return MinBigArchiveMemDataAlign;
531 
532   // If the XCOFF object file does not have a loader section, it is not
533   // loadable, so align at the minimum value.
534   if (AuxHeader->SecNumOfLoader == 0)
535     return MinBigArchiveMemDataAlign;
536 
537   // The content of the loadable member file needs to be aligned at MAX(maximum
538   // alignment of .text, maximum alignment of .data) if there are both fields.
539   // If the desired alignment is > PAGESIZE, 32-bit members are aligned on a
540   // word boundary, while 64-bit members are aligned on a PAGESIZE(2^12=4096)
541   // boundary.
542   uint16_t Log2OfAlign =
543       std::max(AuxHeader->MaxAlignOfText, AuxHeader->MaxAlignOfData);
544   return 1 << (Log2OfAlign > Log2OfAIXPageSize ? Log2OfMaxAlign : Log2OfAlign);
545 }
546 
547 // AIX big archives may contain shared object members. The AIX OS requires these
548 // members to be aligned if they are 64-bit and recommends it for 32-bit
549 // members. This ensures that when these members are loaded they are aligned in
550 // memory.
551 static uint32_t getMemberAlignment(SymbolicFile *SymObj) {
552   XCOFFObjectFile *XCOFFObj = dyn_cast_or_null<XCOFFObjectFile>(SymObj);
553   if (!XCOFFObj)
554     return MinBigArchiveMemDataAlign;
555 
556   // If the desired alignment is > PAGESIZE, 32-bit members are aligned on a
557   // word boundary, while 64-bit members are aligned on a PAGESIZE boundary.
558   return XCOFFObj->is64Bit()
559              ? getAuxMaxAlignment(XCOFFObj->fileHeader64()->AuxHeaderSize,
560                                   XCOFFObj->auxiliaryHeader64(),
561                                   Log2OfAIXPageSize)
562              : getAuxMaxAlignment(XCOFFObj->fileHeader32()->AuxHeaderSize,
563                                   XCOFFObj->auxiliaryHeader32(), 2);
564 }
565 
566 static void writeSymbolTable(raw_ostream &Out, object::Archive::Kind Kind,
567                              bool Deterministic, ArrayRef<MemberData> Members,
568                              StringRef StringTable, uint64_t MembersOffset,
569                              unsigned NumSyms, uint64_t PrevMemberOffset = 0,
570                              uint64_t NextMemberOffset = 0,
571                              bool Is64Bit = false) {
572   // We don't write a symbol table on an archive with no members -- except on
573   // Darwin, where the linker will abort unless the archive has a symbol table.
574   if (StringTable.empty() && !isDarwin(Kind) && !isCOFFArchive(Kind))
575     return;
576 
577   uint64_t OffsetSize = is64BitKind(Kind) ? 8 : 4;
578   uint32_t Pad;
579   uint64_t Size = computeSymbolTableSize(Kind, NumSyms, OffsetSize,
580                                          StringTable.size(), &Pad);
581   writeSymbolTableHeader(Out, Kind, Deterministic, Size, PrevMemberOffset,
582                          NextMemberOffset);
583 
584   if (isBSDLike(Kind))
585     printNBits(Out, Kind, NumSyms * 2 * OffsetSize);
586   else
587     printNBits(Out, Kind, NumSyms);
588 
589   uint64_t Pos = MembersOffset;
590   for (const MemberData &M : Members) {
591     if (isAIXBigArchive(Kind)) {
592       Pos += M.PreHeadPadSize;
593       if (is64BitSymbolicFile(M.SymFile.get()) != Is64Bit) {
594         Pos += M.Header.size() + M.Data.size() + M.Padding.size();
595         continue;
596       }
597     }
598 
599     for (unsigned StringOffset : M.Symbols) {
600       if (isBSDLike(Kind))
601         printNBits(Out, Kind, StringOffset);
602       printNBits(Out, Kind, Pos); // member offset
603     }
604     Pos += M.Header.size() + M.Data.size() + M.Padding.size();
605   }
606 
607   if (isBSDLike(Kind))
608     // byte count of the string table
609     printNBits(Out, Kind, StringTable.size());
610   Out << StringTable;
611 
612   while (Pad--)
613     Out.write(uint8_t(0));
614 }
615 
616 static void writeSymbolMap(raw_ostream &Out, object::Archive::Kind Kind,
617                            bool Deterministic, ArrayRef<MemberData> Members,
618                            SymMap &SymMap, uint64_t MembersOffset) {
619   uint32_t Pad;
620   uint64_t Size = computeSymbolMapSize(Members.size(), SymMap, &Pad);
621   writeSymbolTableHeader(Out, Kind, Deterministic, Size, 0);
622 
623   uint32_t Pos = MembersOffset;
624 
625   printLE<uint32_t>(Out, Members.size());
626   for (const MemberData &M : Members) {
627     printLE(Out, Pos); // member offset
628     Pos += M.Header.size() + M.Data.size() + M.Padding.size();
629   }
630 
631   printLE<uint32_t>(Out, SymMap.Map.size());
632 
633   for (auto S : SymMap.Map)
634     printLE(Out, S.second);
635   for (auto S : SymMap.Map)
636     Out << S.first << '\0';
637 
638   while (Pad--)
639     Out.write(uint8_t(0));
640 }
641 
642 static void writeECSymbols(raw_ostream &Out, object::Archive::Kind Kind,
643                            bool Deterministic, ArrayRef<MemberData> Members,
644                            SymMap &SymMap) {
645   uint32_t Pad;
646   uint64_t Size = computeECSymbolsSize(SymMap, &Pad);
647   printGNUSmallMemberHeader(Out, "/<ECSYMBOLS>", now(Deterministic), 0, 0, 0,
648                             Size);
649 
650   printLE<uint32_t>(Out, SymMap.ECMap.size());
651 
652   for (auto S : SymMap.ECMap)
653     printLE(Out, S.second);
654   for (auto S : SymMap.ECMap)
655     Out << S.first << '\0';
656   while (Pad--)
657     Out.write(uint8_t(0));
658 }
659 
660 static bool isECObject(object::SymbolicFile &Obj) {
661   if (Obj.isCOFF())
662     return cast<llvm::object::COFFObjectFile>(&Obj)->getMachine() !=
663            COFF::IMAGE_FILE_MACHINE_ARM64;
664 
665   if (Obj.isCOFFImportFile())
666     return cast<llvm::object::COFFImportFile>(&Obj)->getMachine() !=
667            COFF::IMAGE_FILE_MACHINE_ARM64;
668 
669   if (Obj.isIR()) {
670     Expected<std::string> TripleStr =
671         getBitcodeTargetTriple(Obj.getMemoryBufferRef());
672     if (!TripleStr)
673       return false;
674     Triple T(*TripleStr);
675     return T.isWindowsArm64EC() || T.getArch() == Triple::x86_64;
676   }
677 
678   return false;
679 }
680 
681 bool isImportDescriptor(StringRef Name) {
682   return Name.starts_with(ImportDescriptorPrefix) ||
683          Name == StringRef{NullImportDescriptorSymbolName} ||
684          (Name.starts_with(NullThunkDataPrefix) &&
685           Name.ends_with(NullThunkDataSuffix));
686 }
687 
688 static Expected<std::vector<unsigned>> getSymbols(SymbolicFile *Obj,
689                                                   uint16_t Index,
690                                                   raw_ostream &SymNames,
691                                                   SymMap *SymMap) {
692   std::vector<unsigned> Ret;
693 
694   if (Obj == nullptr)
695     return Ret;
696 
697   std::map<std::string, uint16_t> *Map = nullptr;
698   if (SymMap)
699     Map = SymMap->UseECMap && isECObject(*Obj) ? &SymMap->ECMap : &SymMap->Map;
700 
701   for (const object::BasicSymbolRef &S : Obj->symbols()) {
702     if (!isArchiveSymbol(S))
703       continue;
704     if (Map) {
705       std::string Name;
706       raw_string_ostream NameStream(Name);
707       if (Error E = S.printName(NameStream))
708         return std::move(E);
709       if (Map->find(Name) != Map->end())
710         continue; // ignore duplicated symbol
711       (*Map)[Name] = Index;
712       if (Map == &SymMap->Map) {
713         Ret.push_back(SymNames.tell());
714         SymNames << Name << '\0';
715         // If EC is enabled, then the import descriptors are NOT put into EC
716         // objects so we need to copy them to the EC map manually.
717         if (SymMap->UseECMap && isImportDescriptor(Name))
718           SymMap->ECMap[Name] = Index;
719       }
720     } else {
721       Ret.push_back(SymNames.tell());
722       if (Error E = S.printName(SymNames))
723         return std::move(E);
724       SymNames << '\0';
725     }
726   }
727   return Ret;
728 }
729 
730 static Expected<std::vector<MemberData>>
731 computeMemberData(raw_ostream &StringTable, raw_ostream &SymNames,
732                   object::Archive::Kind Kind, bool Thin, bool Deterministic,
733                   SymtabWritingMode NeedSymbols, SymMap *SymMap,
734                   LLVMContext &Context, ArrayRef<NewArchiveMember> NewMembers) {
735   static char PaddingData[8] = {'\n', '\n', '\n', '\n', '\n', '\n', '\n', '\n'};
736   uint64_t MemHeadPadSize = 0;
737   uint64_t Pos =
738       isAIXBigArchive(Kind) ? sizeof(object::BigArchive::FixLenHdr) : 0;
739 
740   std::vector<MemberData> Ret;
741   bool HasObject = false;
742 
743   // Deduplicate long member names in the string table and reuse earlier name
744   // offsets. This especially saves space for COFF Import libraries where all
745   // members have the same name.
746   StringMap<uint64_t> MemberNames;
747 
748   // UniqueTimestamps is a special case to improve debugging on Darwin:
749   //
750   // The Darwin linker does not link debug info into the final
751   // binary. Instead, it emits entries of type N_OSO in the output
752   // binary's symbol table, containing references to the linked-in
753   // object files. Using that reference, the debugger can read the
754   // debug data directly from the object files. Alternatively, an
755   // invocation of 'dsymutil' will link the debug data from the object
756   // files into a dSYM bundle, which can be loaded by the debugger,
757   // instead of the object files.
758   //
759   // For an object file, the N_OSO entries contain the absolute path
760   // path to the file, and the file's timestamp. For an object
761   // included in an archive, the path is formatted like
762   // "/absolute/path/to/archive.a(member.o)", and the timestamp is the
763   // archive member's timestamp, rather than the archive's timestamp.
764   //
765   // However, this doesn't always uniquely identify an object within
766   // an archive -- an archive file can have multiple entries with the
767   // same filename. (This will happen commonly if the original object
768   // files started in different directories.) The only way they get
769   // distinguished, then, is via the timestamp. But this process is
770   // unable to find the correct object file in the archive when there
771   // are two files of the same name and timestamp.
772   //
773   // Additionally, timestamp==0 is treated specially, and causes the
774   // timestamp to be ignored as a match criteria.
775   //
776   // That will "usually" work out okay when creating an archive not in
777   // deterministic timestamp mode, because the objects will probably
778   // have been created at different timestamps.
779   //
780   // To ameliorate this problem, in deterministic archive mode (which
781   // is the default), on Darwin we will emit a unique non-zero
782   // timestamp for each entry with a duplicated name. This is still
783   // deterministic: the only thing affecting that timestamp is the
784   // order of the files in the resultant archive.
785   //
786   // See also the functions that handle the lookup:
787   // in lldb: ObjectContainerBSDArchive::Archive::FindObject()
788   // in llvm/tools/dsymutil: BinaryHolder::GetArchiveMemberBuffers().
789   bool UniqueTimestamps = Deterministic && isDarwin(Kind);
790   std::map<StringRef, unsigned> FilenameCount;
791   if (UniqueTimestamps) {
792     for (const NewArchiveMember &M : NewMembers)
793       FilenameCount[M.MemberName]++;
794     for (auto &Entry : FilenameCount)
795       Entry.second = Entry.second > 1 ? 1 : 0;
796   }
797 
798   std::vector<std::unique_ptr<SymbolicFile>> SymFiles;
799 
800   if (NeedSymbols != SymtabWritingMode::NoSymtab || isAIXBigArchive(Kind)) {
801     for (const NewArchiveMember &M : NewMembers) {
802       Expected<std::unique_ptr<SymbolicFile>> SymFileOrErr =
803           getSymbolicFile(M.Buf->getMemBufferRef(), Context);
804       if (!SymFileOrErr)
805         return createFileError(M.MemberName, SymFileOrErr.takeError());
806       SymFiles.push_back(std::move(*SymFileOrErr));
807     }
808   }
809 
810   // The big archive format needs to know the offset of the previous member
811   // header.
812   uint64_t PrevOffset = 0;
813   uint64_t NextMemHeadPadSize = 0;
814 
815   for (uint32_t Index = 0; Index < NewMembers.size(); ++Index) {
816     const NewArchiveMember *M = &NewMembers[Index];
817     std::string Header;
818     raw_string_ostream Out(Header);
819 
820     MemoryBufferRef Buf = M->Buf->getMemBufferRef();
821     StringRef Data = Thin ? "" : Buf.getBuffer();
822 
823     // ld64 expects the members to be 8-byte aligned for 64-bit content and at
824     // least 4-byte aligned for 32-bit content.  Opt for the larger encoding
825     // uniformly.  This matches the behaviour with cctools and ensures that ld64
826     // is happy with archives that we generate.
827     unsigned MemberPadding =
828         isDarwin(Kind) ? offsetToAlignment(Data.size(), Align(8)) : 0;
829     unsigned TailPadding =
830         offsetToAlignment(Data.size() + MemberPadding, Align(2));
831     StringRef Padding = StringRef(PaddingData, MemberPadding + TailPadding);
832 
833     sys::TimePoint<std::chrono::seconds> ModTime;
834     if (UniqueTimestamps)
835       // Increment timestamp for each file of a given name.
836       ModTime = sys::toTimePoint(FilenameCount[M->MemberName]++);
837     else
838       ModTime = M->ModTime;
839 
840     uint64_t Size = Buf.getBufferSize() + MemberPadding;
841     if (Size > object::Archive::MaxMemberSize) {
842       std::string StringMsg =
843           "File " + M->MemberName.str() + " exceeds size limit";
844       return make_error<object::GenericBinaryError>(
845           std::move(StringMsg), object::object_error::parse_failed);
846     }
847 
848     std::unique_ptr<SymbolicFile> CurSymFile;
849     if (!SymFiles.empty())
850       CurSymFile = std::move(SymFiles[Index]);
851 
852     // In the big archive file format, we need to calculate and include the next
853     // member offset and previous member offset in the file member header.
854     if (isAIXBigArchive(Kind)) {
855       uint64_t OffsetToMemData = Pos + sizeof(object::BigArMemHdrType) +
856                                  alignTo(M->MemberName.size(), 2);
857 
858       if (M == NewMembers.begin())
859         NextMemHeadPadSize =
860             alignToPowerOf2(OffsetToMemData,
861                             getMemberAlignment(CurSymFile.get())) -
862             OffsetToMemData;
863 
864       MemHeadPadSize = NextMemHeadPadSize;
865       Pos += MemHeadPadSize;
866       uint64_t NextOffset = Pos + sizeof(object::BigArMemHdrType) +
867                             alignTo(M->MemberName.size(), 2) + alignTo(Size, 2);
868 
869       // If there is another member file after this, we need to calculate the
870       // padding before the header.
871       if (Index + 1 != SymFiles.size()) {
872         uint64_t OffsetToNextMemData =
873             NextOffset + sizeof(object::BigArMemHdrType) +
874             alignTo(NewMembers[Index + 1].MemberName.size(), 2);
875         NextMemHeadPadSize =
876             alignToPowerOf2(OffsetToNextMemData,
877                             getMemberAlignment(SymFiles[Index + 1].get())) -
878             OffsetToNextMemData;
879         NextOffset += NextMemHeadPadSize;
880       }
881       printBigArchiveMemberHeader(Out, M->MemberName, ModTime, M->UID, M->GID,
882                                   M->Perms, Size, PrevOffset, NextOffset);
883       PrevOffset = Pos;
884     } else {
885       printMemberHeader(Out, Pos, StringTable, MemberNames, Kind, Thin, *M,
886                         ModTime, Size);
887     }
888     Out.flush();
889 
890     std::vector<unsigned> Symbols;
891     if (NeedSymbols != SymtabWritingMode::NoSymtab) {
892       Expected<std::vector<unsigned>> SymbolsOrErr =
893           getSymbols(CurSymFile.get(), Index + 1, SymNames, SymMap);
894       if (!SymbolsOrErr)
895         return createFileError(M->MemberName, SymbolsOrErr.takeError());
896       Symbols = std::move(*SymbolsOrErr);
897       if (CurSymFile)
898         HasObject = true;
899     }
900 
901     Pos += Header.size() + Data.size() + Padding.size();
902     Ret.push_back({std::move(Symbols), std::move(Header), Data, Padding,
903                    MemHeadPadSize, std::move(CurSymFile)});
904   }
905   // If there are no symbols, emit an empty symbol table, to satisfy Solaris
906   // tools, older versions of which expect a symbol table in a non-empty
907   // archive, regardless of whether there are any symbols in it.
908   if (HasObject && SymNames.tell() == 0 && !isCOFFArchive(Kind))
909     SymNames << '\0' << '\0' << '\0';
910   return std::move(Ret);
911 }
912 
913 namespace llvm {
914 
915 static ErrorOr<SmallString<128>> canonicalizePath(StringRef P) {
916   SmallString<128> Ret = P;
917   std::error_code Err = sys::fs::make_absolute(Ret);
918   if (Err)
919     return Err;
920   sys::path::remove_dots(Ret, /*removedotdot*/ true);
921   return Ret;
922 }
923 
924 // Compute the relative path from From to To.
925 Expected<std::string> computeArchiveRelativePath(StringRef From, StringRef To) {
926   ErrorOr<SmallString<128>> PathToOrErr = canonicalizePath(To);
927   ErrorOr<SmallString<128>> DirFromOrErr = canonicalizePath(From);
928   if (!PathToOrErr || !DirFromOrErr)
929     return errorCodeToError(errnoAsErrorCode());
930 
931   const SmallString<128> &PathTo = *PathToOrErr;
932   const SmallString<128> &DirFrom = sys::path::parent_path(*DirFromOrErr);
933 
934   // Can't construct a relative path between different roots
935   if (sys::path::root_name(PathTo) != sys::path::root_name(DirFrom))
936     return sys::path::convert_to_slash(PathTo);
937 
938   // Skip common prefixes
939   auto FromTo =
940       std::mismatch(sys::path::begin(DirFrom), sys::path::end(DirFrom),
941                     sys::path::begin(PathTo));
942   auto FromI = FromTo.first;
943   auto ToI = FromTo.second;
944 
945   // Construct relative path
946   SmallString<128> Relative;
947   for (auto FromE = sys::path::end(DirFrom); FromI != FromE; ++FromI)
948     sys::path::append(Relative, sys::path::Style::posix, "..");
949 
950   for (auto ToE = sys::path::end(PathTo); ToI != ToE; ++ToI)
951     sys::path::append(Relative, sys::path::Style::posix, *ToI);
952 
953   return std::string(Relative);
954 }
955 
956 static Error writeArchiveToStream(raw_ostream &Out,
957                                   ArrayRef<NewArchiveMember> NewMembers,
958                                   SymtabWritingMode WriteSymtab,
959                                   object::Archive::Kind Kind,
960                                   bool Deterministic, bool Thin, bool IsEC) {
961   assert((!Thin || !isBSDLike(Kind)) && "Only the gnu format has a thin mode");
962 
963   SmallString<0> SymNamesBuf;
964   raw_svector_ostream SymNames(SymNamesBuf);
965   SmallString<0> StringTableBuf;
966   raw_svector_ostream StringTable(StringTableBuf);
967   SymMap SymMap;
968   bool ShouldWriteSymtab = WriteSymtab != SymtabWritingMode::NoSymtab;
969 
970   // COFF symbol map uses 16-bit indexes, so we can't use it if there are too
971   // many members. COFF format also requires symbol table presence, so use
972   // GNU format when NoSymtab is requested.
973   if (isCOFFArchive(Kind) && (NewMembers.size() > 0xfffe || !ShouldWriteSymtab))
974     Kind = object::Archive::K_GNU;
975 
976   // In the scenario when LLVMContext is populated SymbolicFile will contain a
977   // reference to it, thus SymbolicFile should be destroyed first.
978   LLVMContext Context;
979 
980   SymMap.UseECMap = IsEC;
981   Expected<std::vector<MemberData>> DataOrErr = computeMemberData(
982       StringTable, SymNames, Kind, Thin, Deterministic, WriteSymtab,
983       isCOFFArchive(Kind) ? &SymMap : nullptr, Context, NewMembers);
984   if (Error E = DataOrErr.takeError())
985     return E;
986   std::vector<MemberData> &Data = *DataOrErr;
987 
988   uint64_t StringTableSize = 0;
989   MemberData StringTableMember;
990   if (!StringTableBuf.empty() && !isAIXBigArchive(Kind)) {
991     StringTableMember = computeStringTable(StringTableBuf);
992     StringTableSize = StringTableMember.Header.size() +
993                       StringTableMember.Data.size() +
994                       StringTableMember.Padding.size();
995   }
996 
997   // We would like to detect if we need to switch to a 64-bit symbol table.
998   uint64_t LastMemberEndOffset = 0;
999   uint64_t LastMemberHeaderOffset = 0;
1000   uint64_t NumSyms = 0;
1001   uint64_t NumSyms32 = 0; // Store symbol number of 32-bit member files.
1002 
1003   for (const auto &M : Data) {
1004     // Record the start of the member's offset
1005     LastMemberEndOffset += M.PreHeadPadSize;
1006     LastMemberHeaderOffset = LastMemberEndOffset;
1007     // Account for the size of each part associated with the member.
1008     LastMemberEndOffset += M.Header.size() + M.Data.size() + M.Padding.size();
1009     NumSyms += M.Symbols.size();
1010 
1011     // AIX big archive files may contain two global symbol tables. The
1012     // first global symbol table locates 32-bit file members that define global
1013     // symbols; the second global symbol table does the same for 64-bit file
1014     // members. As a big archive can have both 32-bit and 64-bit file members,
1015     // we need to know the number of symbols in each symbol table individually.
1016     if (isAIXBigArchive(Kind) && ShouldWriteSymtab) {
1017         if (!is64BitSymbolicFile(M.SymFile.get()))
1018           NumSyms32 += M.Symbols.size();
1019       }
1020   }
1021 
1022   std::optional<uint64_t> HeadersSize;
1023 
1024   // The symbol table is put at the end of the big archive file. The symbol
1025   // table is at the start of the archive file for other archive formats.
1026   if (ShouldWriteSymtab && !is64BitKind(Kind)) {
1027     // We assume 32-bit offsets to see if 32-bit symbols are possible or not.
1028     HeadersSize = computeHeadersSize(Kind, Data.size(), StringTableSize,
1029                                      NumSyms, SymNamesBuf.size(),
1030                                      isCOFFArchive(Kind) ? &SymMap : nullptr);
1031 
1032     // The SYM64 format is used when an archive's member offsets are larger than
1033     // 32-bits can hold. The need for this shift in format is detected by
1034     // writeArchive. To test this we need to generate a file with a member that
1035     // has an offset larger than 32-bits but this demands a very slow test. To
1036     // speed the test up we use this environment variable to pretend like the
1037     // cutoff happens before 32-bits and instead happens at some much smaller
1038     // value.
1039     uint64_t Sym64Threshold = 1ULL << 32;
1040     const char *Sym64Env = std::getenv("SYM64_THRESHOLD");
1041     if (Sym64Env)
1042       StringRef(Sym64Env).getAsInteger(10, Sym64Threshold);
1043 
1044     // If LastMemberHeaderOffset isn't going to fit in a 32-bit varible we need
1045     // to switch to 64-bit. Note that the file can be larger than 4GB as long as
1046     // the last member starts before the 4GB offset.
1047     if (*HeadersSize + LastMemberHeaderOffset >= Sym64Threshold) {
1048       if (Kind == object::Archive::K_DARWIN)
1049         Kind = object::Archive::K_DARWIN64;
1050       else
1051         Kind = object::Archive::K_GNU64;
1052       HeadersSize.reset();
1053     }
1054   }
1055 
1056   if (Thin)
1057     Out << "!<thin>\n";
1058   else if (isAIXBigArchive(Kind))
1059     Out << "<bigaf>\n";
1060   else
1061     Out << "!<arch>\n";
1062 
1063   if (!isAIXBigArchive(Kind)) {
1064     if (ShouldWriteSymtab) {
1065       if (!HeadersSize)
1066         HeadersSize = computeHeadersSize(
1067             Kind, Data.size(), StringTableSize, NumSyms, SymNamesBuf.size(),
1068             isCOFFArchive(Kind) ? &SymMap : nullptr);
1069       writeSymbolTable(Out, Kind, Deterministic, Data, SymNamesBuf,
1070                        *HeadersSize, NumSyms);
1071 
1072       if (isCOFFArchive(Kind))
1073         writeSymbolMap(Out, Kind, Deterministic, Data, SymMap, *HeadersSize);
1074     }
1075 
1076     if (StringTableSize)
1077       Out << StringTableMember.Header << StringTableMember.Data
1078           << StringTableMember.Padding;
1079 
1080     if (ShouldWriteSymtab && SymMap.ECMap.size())
1081       writeECSymbols(Out, Kind, Deterministic, Data, SymMap);
1082 
1083     for (const MemberData &M : Data)
1084       Out << M.Header << M.Data << M.Padding;
1085   } else {
1086     HeadersSize = sizeof(object::BigArchive::FixLenHdr);
1087     LastMemberEndOffset += *HeadersSize;
1088     LastMemberHeaderOffset += *HeadersSize;
1089 
1090     // For the big archive (AIX) format, compute a table of member names and
1091     // offsets, used in the member table.
1092     uint64_t MemberTableNameStrTblSize = 0;
1093     std::vector<size_t> MemberOffsets;
1094     std::vector<StringRef> MemberNames;
1095     // Loop across object to find offset and names.
1096     uint64_t MemberEndOffset = sizeof(object::BigArchive::FixLenHdr);
1097     for (size_t I = 0, Size = NewMembers.size(); I != Size; ++I) {
1098       const NewArchiveMember &Member = NewMembers[I];
1099       MemberTableNameStrTblSize += Member.MemberName.size() + 1;
1100       MemberEndOffset += Data[I].PreHeadPadSize;
1101       MemberOffsets.push_back(MemberEndOffset);
1102       MemberNames.push_back(Member.MemberName);
1103       // File member name ended with "`\n". The length is included in
1104       // BigArMemHdrType.
1105       MemberEndOffset += sizeof(object::BigArMemHdrType) +
1106                          alignTo(Data[I].Data.size(), 2) +
1107                          alignTo(Member.MemberName.size(), 2);
1108     }
1109 
1110     // AIX member table size.
1111     uint64_t MemberTableSize = 20 + // Number of members field
1112                                20 * MemberOffsets.size() +
1113                                MemberTableNameStrTblSize;
1114 
1115     SmallString<0> SymNamesBuf32;
1116     SmallString<0> SymNamesBuf64;
1117     raw_svector_ostream SymNames32(SymNamesBuf32);
1118     raw_svector_ostream SymNames64(SymNamesBuf64);
1119 
1120     if (ShouldWriteSymtab && NumSyms)
1121       // Generate the symbol names for the members.
1122       for (const auto &M : Data) {
1123         Expected<std::vector<unsigned>> SymbolsOrErr = getSymbols(
1124             M.SymFile.get(), 0,
1125             is64BitSymbolicFile(M.SymFile.get()) ? SymNames64 : SymNames32,
1126             nullptr);
1127         if (!SymbolsOrErr)
1128           return SymbolsOrErr.takeError();
1129       }
1130 
1131     uint64_t MemberTableEndOffset =
1132         LastMemberEndOffset +
1133         alignTo(sizeof(object::BigArMemHdrType) + MemberTableSize, 2);
1134 
1135     // In AIX OS, The 'GlobSymOffset' field in the fixed-length header contains
1136     // the offset to the 32-bit global symbol table, and the 'GlobSym64Offset'
1137     // contains the offset to the 64-bit global symbol table.
1138     uint64_t GlobalSymbolOffset =
1139         (ShouldWriteSymtab &&
1140          (WriteSymtab != SymtabWritingMode::BigArchive64) && NumSyms32 > 0)
1141             ? MemberTableEndOffset
1142             : 0;
1143 
1144     uint64_t GlobalSymbolOffset64 = 0;
1145     uint64_t NumSyms64 = NumSyms - NumSyms32;
1146     if (ShouldWriteSymtab && (WriteSymtab != SymtabWritingMode::BigArchive32) &&
1147         NumSyms64 > 0) {
1148       if (GlobalSymbolOffset == 0)
1149         GlobalSymbolOffset64 = MemberTableEndOffset;
1150       else
1151         // If there is a global symbol table for 32-bit members,
1152         // the 64-bit global symbol table is after the 32-bit one.
1153         GlobalSymbolOffset64 =
1154             GlobalSymbolOffset + sizeof(object::BigArMemHdrType) +
1155             (NumSyms32 + 1) * 8 + alignTo(SymNamesBuf32.size(), 2);
1156     }
1157 
1158     // Fixed Sized Header.
1159     printWithSpacePadding(Out, NewMembers.size() ? LastMemberEndOffset : 0,
1160                           20); // Offset to member table
1161     // If there are no file members in the archive, there will be no global
1162     // symbol table.
1163     printWithSpacePadding(Out, GlobalSymbolOffset, 20);
1164     printWithSpacePadding(Out, GlobalSymbolOffset64, 20);
1165     printWithSpacePadding(Out,
1166                           NewMembers.size()
1167                               ? sizeof(object::BigArchive::FixLenHdr) +
1168                                     Data[0].PreHeadPadSize
1169                               : 0,
1170                           20); // Offset to first archive member
1171     printWithSpacePadding(Out, NewMembers.size() ? LastMemberHeaderOffset : 0,
1172                           20); // Offset to last archive member
1173     printWithSpacePadding(
1174         Out, 0,
1175         20); // Offset to first member of free list - Not supported yet
1176 
1177     for (const MemberData &M : Data) {
1178       Out << std::string(M.PreHeadPadSize, '\0');
1179       Out << M.Header << M.Data;
1180       if (M.Data.size() % 2)
1181         Out << '\0';
1182     }
1183 
1184     if (NewMembers.size()) {
1185       // Member table.
1186       printBigArchiveMemberHeader(Out, "", sys::toTimePoint(0), 0, 0, 0,
1187                                   MemberTableSize, LastMemberHeaderOffset,
1188                                   GlobalSymbolOffset ? GlobalSymbolOffset
1189                                                      : GlobalSymbolOffset64);
1190       printWithSpacePadding(Out, MemberOffsets.size(), 20); // Number of members
1191       for (uint64_t MemberOffset : MemberOffsets)
1192         printWithSpacePadding(Out, MemberOffset,
1193                               20); // Offset to member file header.
1194       for (StringRef MemberName : MemberNames)
1195         Out << MemberName << '\0'; // Member file name, null byte padding.
1196 
1197       if (MemberTableNameStrTblSize % 2)
1198         Out << '\0'; // Name table must be tail padded to an even number of
1199                      // bytes.
1200 
1201       if (ShouldWriteSymtab) {
1202         // Write global symbol table for 32-bit file members.
1203         if (GlobalSymbolOffset) {
1204           writeSymbolTable(Out, Kind, Deterministic, Data, SymNamesBuf32,
1205                            *HeadersSize, NumSyms32, LastMemberEndOffset,
1206                            GlobalSymbolOffset64);
1207           // Add padding between the symbol tables, if needed.
1208           if (GlobalSymbolOffset64 && (SymNamesBuf32.size() % 2))
1209             Out << '\0';
1210         }
1211 
1212         // Write global symbol table for 64-bit file members.
1213         if (GlobalSymbolOffset64)
1214           writeSymbolTable(Out, Kind, Deterministic, Data, SymNamesBuf64,
1215                            *HeadersSize, NumSyms64,
1216                            GlobalSymbolOffset ? GlobalSymbolOffset
1217                                               : LastMemberEndOffset,
1218                            0, true);
1219       }
1220     }
1221   }
1222   Out.flush();
1223   return Error::success();
1224 }
1225 
1226 Error writeArchive(StringRef ArcName, ArrayRef<NewArchiveMember> NewMembers,
1227                    SymtabWritingMode WriteSymtab, object::Archive::Kind Kind,
1228                    bool Deterministic, bool Thin,
1229                    std::unique_ptr<MemoryBuffer> OldArchiveBuf, bool IsEC) {
1230   Expected<sys::fs::TempFile> Temp =
1231       sys::fs::TempFile::create(ArcName + ".temp-archive-%%%%%%%.a");
1232   if (!Temp)
1233     return Temp.takeError();
1234   raw_fd_ostream Out(Temp->FD, false);
1235 
1236   if (Error E = writeArchiveToStream(Out, NewMembers, WriteSymtab, Kind,
1237                                      Deterministic, Thin, IsEC)) {
1238     if (Error DiscardError = Temp->discard())
1239       return joinErrors(std::move(E), std::move(DiscardError));
1240     return E;
1241   }
1242 
1243   // At this point, we no longer need whatever backing memory
1244   // was used to generate the NewMembers. On Windows, this buffer
1245   // could be a mapped view of the file we want to replace (if
1246   // we're updating an existing archive, say). In that case, the
1247   // rename would still succeed, but it would leave behind a
1248   // temporary file (actually the original file renamed) because
1249   // a file cannot be deleted while there's a handle open on it,
1250   // only renamed. So by freeing this buffer, this ensures that
1251   // the last open handle on the destination file, if any, is
1252   // closed before we attempt to rename.
1253   OldArchiveBuf.reset();
1254 
1255   return Temp->keep(ArcName);
1256 }
1257 
1258 Expected<std::unique_ptr<MemoryBuffer>>
1259 writeArchiveToBuffer(ArrayRef<NewArchiveMember> NewMembers,
1260                      SymtabWritingMode WriteSymtab, object::Archive::Kind Kind,
1261                      bool Deterministic, bool Thin) {
1262   SmallVector<char, 0> ArchiveBufferVector;
1263   raw_svector_ostream ArchiveStream(ArchiveBufferVector);
1264 
1265   if (Error E = writeArchiveToStream(ArchiveStream, NewMembers, WriteSymtab,
1266                                      Kind, Deterministic, Thin, false))
1267     return std::move(E);
1268 
1269   return std::make_unique<SmallVectorMemoryBuffer>(
1270       std::move(ArchiveBufferVector), /*RequiresNullTerminator=*/false);
1271 }
1272 
1273 } // namespace llvm
1274