1 //===- SyntheticSections.cpp ---------------------------------------------===//
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 #include "SyntheticSections.h"
10 #include "ConcatOutputSection.h"
11 #include "Config.h"
12 #include "ExportTrie.h"
13 #include "InputFiles.h"
14 #include "MachOStructs.h"
15 #include "OutputSegment.h"
16 #include "SymbolTable.h"
17 #include "Symbols.h"
18 
19 #include "lld/Common/ErrorHandler.h"
20 #include "lld/Common/Memory.h"
21 #include "llvm/ADT/STLExtras.h"
22 #include "llvm/Config/llvm-config.h"
23 #include "llvm/Support/EndianStream.h"
24 #include "llvm/Support/FileSystem.h"
25 #include "llvm/Support/LEB128.h"
26 #include "llvm/Support/Path.h"
27 #include "llvm/Support/SHA256.h"
28 
29 #if defined(__APPLE__)
30 #include <sys/mman.h>
31 #endif
32 
33 #ifdef LLVM_HAVE_LIBXAR
34 #include <fcntl.h>
35 extern "C" {
36 #include <xar/xar.h>
37 }
38 #endif
39 
40 using namespace llvm;
41 using namespace llvm::MachO;
42 using namespace llvm::support;
43 using namespace llvm::support::endian;
44 using namespace lld;
45 using namespace lld::macho;
46 
47 InStruct macho::in;
48 std::vector<SyntheticSection *> macho::syntheticSections;
49 
50 SyntheticSection::SyntheticSection(const char *segname, const char *name)
51     : OutputSection(SyntheticKind, name) {
52   std::tie(this->segname, this->name) = maybeRenameSection({segname, name});
53   isec = make<ConcatInputSection>(segname, name);
54   isec->parent = this;
55   syntheticSections.push_back(this);
56 }
57 
58 // dyld3's MachOLoaded::getSlide() assumes that the __TEXT segment starts
59 // from the beginning of the file (i.e. the header).
60 MachHeaderSection::MachHeaderSection()
61     : SyntheticSection(segment_names::text, section_names::header) {
62   // XXX: This is a hack. (See D97007)
63   // Setting the index to 1 to pretend that this section is the text
64   // section.
65   index = 1;
66   isec->isFinal = true;
67 }
68 
69 void MachHeaderSection::addLoadCommand(LoadCommand *lc) {
70   loadCommands.push_back(lc);
71   sizeOfCmds += lc->getSize();
72 }
73 
74 uint64_t MachHeaderSection::getSize() const {
75   uint64_t size = target->headerSize + sizeOfCmds + config->headerPad;
76   // If we are emitting an encryptable binary, our load commands must have a
77   // separate (non-encrypted) page to themselves.
78   if (config->emitEncryptionInfo)
79     size = alignTo(size, target->getPageSize());
80   return size;
81 }
82 
83 static uint32_t cpuSubtype() {
84   uint32_t subtype = target->cpuSubtype;
85 
86   if (config->outputType == MH_EXECUTE && !config->staticLink &&
87       target->cpuSubtype == CPU_SUBTYPE_X86_64_ALL &&
88       config->platform() == PlatformKind::macOS &&
89       config->platformInfo.minimum >= VersionTuple(10, 5))
90     subtype |= CPU_SUBTYPE_LIB64;
91 
92   return subtype;
93 }
94 
95 void MachHeaderSection::writeTo(uint8_t *buf) const {
96   auto *hdr = reinterpret_cast<mach_header *>(buf);
97   hdr->magic = target->magic;
98   hdr->cputype = target->cpuType;
99   hdr->cpusubtype = cpuSubtype();
100   hdr->filetype = config->outputType;
101   hdr->ncmds = loadCommands.size();
102   hdr->sizeofcmds = sizeOfCmds;
103   hdr->flags = MH_DYLDLINK;
104 
105   if (config->namespaceKind == NamespaceKind::twolevel)
106     hdr->flags |= MH_NOUNDEFS | MH_TWOLEVEL;
107 
108   if (config->outputType == MH_DYLIB && !config->hasReexports)
109     hdr->flags |= MH_NO_REEXPORTED_DYLIBS;
110 
111   if (config->markDeadStrippableDylib)
112     hdr->flags |= MH_DEAD_STRIPPABLE_DYLIB;
113 
114   if (config->outputType == MH_EXECUTE && config->isPic)
115     hdr->flags |= MH_PIE;
116 
117   if (config->outputType == MH_DYLIB && config->applicationExtension)
118     hdr->flags |= MH_APP_EXTENSION_SAFE;
119 
120   if (in.exports->hasWeakSymbol || in.weakBinding->hasNonWeakDefinition())
121     hdr->flags |= MH_WEAK_DEFINES;
122 
123   if (in.exports->hasWeakSymbol || in.weakBinding->hasEntry())
124     hdr->flags |= MH_BINDS_TO_WEAK;
125 
126   for (const OutputSegment *seg : outputSegments) {
127     for (const OutputSection *osec : seg->getSections()) {
128       if (isThreadLocalVariables(osec->flags)) {
129         hdr->flags |= MH_HAS_TLV_DESCRIPTORS;
130         break;
131       }
132     }
133   }
134 
135   uint8_t *p = reinterpret_cast<uint8_t *>(hdr) + target->headerSize;
136   for (const LoadCommand *lc : loadCommands) {
137     lc->writeTo(p);
138     p += lc->getSize();
139   }
140 }
141 
142 PageZeroSection::PageZeroSection()
143     : SyntheticSection(segment_names::pageZero, section_names::pageZero) {}
144 
145 RebaseSection::RebaseSection()
146     : LinkEditSection(segment_names::linkEdit, section_names::rebase) {}
147 
148 namespace {
149 struct Rebase {
150   OutputSegment *segment = nullptr;
151   uint64_t offset = 0;
152   uint64_t consecutiveCount = 0;
153 };
154 } // namespace
155 
156 // Rebase opcodes allow us to describe a contiguous sequence of rebase location
157 // using a single DO_REBASE opcode. To take advantage of it, we delay emitting
158 // `DO_REBASE` until we have reached the end of a contiguous sequence.
159 static void encodeDoRebase(Rebase &rebase, raw_svector_ostream &os) {
160   assert(rebase.consecutiveCount != 0);
161   if (rebase.consecutiveCount <= REBASE_IMMEDIATE_MASK) {
162     os << static_cast<uint8_t>(REBASE_OPCODE_DO_REBASE_IMM_TIMES |
163                                rebase.consecutiveCount);
164   } else {
165     os << static_cast<uint8_t>(REBASE_OPCODE_DO_REBASE_ULEB_TIMES);
166     encodeULEB128(rebase.consecutiveCount, os);
167   }
168   rebase.consecutiveCount = 0;
169 }
170 
171 static void encodeRebase(const OutputSection *osec, uint64_t outSecOff,
172                          Rebase &lastRebase, raw_svector_ostream &os) {
173   OutputSegment *seg = osec->parent;
174   uint64_t offset = osec->getSegmentOffset() + outSecOff;
175   if (lastRebase.segment != seg || lastRebase.offset != offset) {
176     if (lastRebase.consecutiveCount != 0)
177       encodeDoRebase(lastRebase, os);
178 
179     if (lastRebase.segment != seg) {
180       os << static_cast<uint8_t>(REBASE_OPCODE_SET_SEGMENT_AND_OFFSET_ULEB |
181                                  seg->index);
182       encodeULEB128(offset, os);
183       lastRebase.segment = seg;
184       lastRebase.offset = offset;
185     } else {
186       assert(lastRebase.offset != offset);
187       os << static_cast<uint8_t>(REBASE_OPCODE_ADD_ADDR_ULEB);
188       encodeULEB128(offset - lastRebase.offset, os);
189       lastRebase.offset = offset;
190     }
191   }
192   ++lastRebase.consecutiveCount;
193   // DO_REBASE causes dyld to both perform the binding and increment the offset
194   lastRebase.offset += target->wordSize;
195 }
196 
197 void RebaseSection::finalizeContents() {
198   if (locations.empty())
199     return;
200 
201   raw_svector_ostream os{contents};
202   Rebase lastRebase;
203 
204   os << static_cast<uint8_t>(REBASE_OPCODE_SET_TYPE_IMM | REBASE_TYPE_POINTER);
205 
206   llvm::sort(locations, [](const Location &a, const Location &b) {
207     return a.isec->getVA(a.offset) < b.isec->getVA(b.offset);
208   });
209   for (const Location &loc : locations)
210     encodeRebase(loc.isec->parent, loc.isec->getOffset(loc.offset), lastRebase,
211                  os);
212   if (lastRebase.consecutiveCount != 0)
213     encodeDoRebase(lastRebase, os);
214 
215   os << static_cast<uint8_t>(REBASE_OPCODE_DONE);
216 }
217 
218 void RebaseSection::writeTo(uint8_t *buf) const {
219   memcpy(buf, contents.data(), contents.size());
220 }
221 
222 NonLazyPointerSectionBase::NonLazyPointerSectionBase(const char *segname,
223                                                      const char *name)
224     : SyntheticSection(segname, name) {
225   align = target->wordSize;
226 }
227 
228 void macho::addNonLazyBindingEntries(const Symbol *sym,
229                                      const InputSection *isec, uint64_t offset,
230                                      int64_t addend) {
231   if (const auto *dysym = dyn_cast<DylibSymbol>(sym)) {
232     in.binding->addEntry(dysym, isec, offset, addend);
233     if (dysym->isWeakDef())
234       in.weakBinding->addEntry(sym, isec, offset, addend);
235   } else if (const auto *defined = dyn_cast<Defined>(sym)) {
236     in.rebase->addEntry(isec, offset);
237     if (defined->isExternalWeakDef())
238       in.weakBinding->addEntry(sym, isec, offset, addend);
239   } else {
240     // Undefined symbols are filtered out in scanRelocations(); we should never
241     // get here
242     llvm_unreachable("cannot bind to an undefined symbol");
243   }
244 }
245 
246 void NonLazyPointerSectionBase::addEntry(Symbol *sym) {
247   if (entries.insert(sym)) {
248     assert(!sym->isInGot());
249     sym->gotIndex = entries.size() - 1;
250 
251     addNonLazyBindingEntries(sym, isec, sym->gotIndex * target->wordSize);
252   }
253 }
254 
255 void NonLazyPointerSectionBase::writeTo(uint8_t *buf) const {
256   for (size_t i = 0, n = entries.size(); i < n; ++i)
257     if (auto *defined = dyn_cast<Defined>(entries[i]))
258       write64le(&buf[i * target->wordSize], defined->getVA());
259 }
260 
261 GotSection::GotSection()
262     : NonLazyPointerSectionBase(segment_names::data, section_names::got) {
263   flags = S_NON_LAZY_SYMBOL_POINTERS;
264 }
265 
266 TlvPointerSection::TlvPointerSection()
267     : NonLazyPointerSectionBase(segment_names::data,
268                                 section_names::threadPtrs) {
269   flags = S_THREAD_LOCAL_VARIABLE_POINTERS;
270 }
271 
272 BindingSection::BindingSection()
273     : LinkEditSection(segment_names::linkEdit, section_names::binding) {}
274 
275 namespace {
276 struct Binding {
277   OutputSegment *segment = nullptr;
278   uint64_t offset = 0;
279   int64_t addend = 0;
280 };
281 struct BindIR {
282   // Default value of 0xF0 is not valid opcode and should make the program
283   // scream instead of accidentally writing "valid" values.
284   uint8_t opcode = 0xF0;
285   uint64_t data = 0;
286   uint64_t consecutiveCount = 0;
287 };
288 } // namespace
289 
290 // Encode a sequence of opcodes that tell dyld to write the address of symbol +
291 // addend at osec->addr + outSecOff.
292 //
293 // The bind opcode "interpreter" remembers the values of each binding field, so
294 // we only need to encode the differences between bindings. Hence the use of
295 // lastBinding.
296 static void encodeBinding(const OutputSection *osec, uint64_t outSecOff,
297                           int64_t addend, Binding &lastBinding,
298                           std::vector<BindIR> &opcodes) {
299   OutputSegment *seg = osec->parent;
300   uint64_t offset = osec->getSegmentOffset() + outSecOff;
301   if (lastBinding.segment != seg) {
302     opcodes.push_back(
303         {static_cast<uint8_t>(BIND_OPCODE_SET_SEGMENT_AND_OFFSET_ULEB |
304                               seg->index),
305          offset});
306     lastBinding.segment = seg;
307     lastBinding.offset = offset;
308   } else if (lastBinding.offset != offset) {
309     opcodes.push_back({BIND_OPCODE_ADD_ADDR_ULEB, offset - lastBinding.offset});
310     lastBinding.offset = offset;
311   }
312 
313   if (lastBinding.addend != addend) {
314     opcodes.push_back(
315         {BIND_OPCODE_SET_ADDEND_SLEB, static_cast<uint64_t>(addend)});
316     lastBinding.addend = addend;
317   }
318 
319   opcodes.push_back({BIND_OPCODE_DO_BIND, 0});
320   // DO_BIND causes dyld to both perform the binding and increment the offset
321   lastBinding.offset += target->wordSize;
322 }
323 
324 static void optimizeOpcodes(std::vector<BindIR> &opcodes) {
325   // Pass 1: Combine bind/add pairs
326   size_t i;
327   int pWrite = 0;
328   for (i = 1; i < opcodes.size(); ++i, ++pWrite) {
329     if ((opcodes[i].opcode == BIND_OPCODE_ADD_ADDR_ULEB) &&
330         (opcodes[i - 1].opcode == BIND_OPCODE_DO_BIND)) {
331       opcodes[pWrite].opcode = BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB;
332       opcodes[pWrite].data = opcodes[i].data;
333       ++i;
334     } else {
335       opcodes[pWrite] = opcodes[i - 1];
336     }
337   }
338   if (i == opcodes.size())
339     opcodes[pWrite] = opcodes[i - 1];
340   opcodes.resize(pWrite + 1);
341 
342   // Pass 2: Compress two or more bind_add opcodes
343   pWrite = 0;
344   for (i = 1; i < opcodes.size(); ++i, ++pWrite) {
345     if ((opcodes[i].opcode == BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB) &&
346         (opcodes[i - 1].opcode == BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB) &&
347         (opcodes[i].data == opcodes[i - 1].data)) {
348       opcodes[pWrite].opcode = BIND_OPCODE_DO_BIND_ULEB_TIMES_SKIPPING_ULEB;
349       opcodes[pWrite].consecutiveCount = 2;
350       opcodes[pWrite].data = opcodes[i].data;
351       ++i;
352       while (i < opcodes.size() &&
353              (opcodes[i].opcode == BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB) &&
354              (opcodes[i].data == opcodes[i - 1].data)) {
355         opcodes[pWrite].consecutiveCount++;
356         ++i;
357       }
358     } else {
359       opcodes[pWrite] = opcodes[i - 1];
360     }
361   }
362   if (i == opcodes.size())
363     opcodes[pWrite] = opcodes[i - 1];
364   opcodes.resize(pWrite + 1);
365 
366   // Pass 3: Use immediate encodings
367   // Every binding is the size of one pointer. If the next binding is a
368   // multiple of wordSize away that is within BIND_IMMEDIATE_MASK, the
369   // opcode can be scaled by wordSize into a single byte and dyld will
370   // expand it to the correct address.
371   for (auto &p : opcodes) {
372     // It's unclear why the check needs to be less than BIND_IMMEDIATE_MASK,
373     // but ld64 currently does this. This could be a potential bug, but
374     // for now, perform the same behavior to prevent mysterious bugs.
375     if ((p.opcode == BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB) &&
376         ((p.data / target->wordSize) < BIND_IMMEDIATE_MASK) &&
377         ((p.data % target->wordSize) == 0)) {
378       p.opcode = BIND_OPCODE_DO_BIND_ADD_ADDR_IMM_SCALED;
379       p.data /= target->wordSize;
380     }
381   }
382 }
383 
384 static void flushOpcodes(const BindIR &op, raw_svector_ostream &os) {
385   uint8_t opcode = op.opcode & BIND_OPCODE_MASK;
386   switch (opcode) {
387   case BIND_OPCODE_SET_SEGMENT_AND_OFFSET_ULEB:
388   case BIND_OPCODE_ADD_ADDR_ULEB:
389   case BIND_OPCODE_DO_BIND_ADD_ADDR_ULEB:
390     os << op.opcode;
391     encodeULEB128(op.data, os);
392     break;
393   case BIND_OPCODE_SET_ADDEND_SLEB:
394     os << op.opcode;
395     encodeSLEB128(static_cast<int64_t>(op.data), os);
396     break;
397   case BIND_OPCODE_DO_BIND:
398     os << op.opcode;
399     break;
400   case BIND_OPCODE_DO_BIND_ULEB_TIMES_SKIPPING_ULEB:
401     os << op.opcode;
402     encodeULEB128(op.consecutiveCount, os);
403     encodeULEB128(op.data, os);
404     break;
405   case BIND_OPCODE_DO_BIND_ADD_ADDR_IMM_SCALED:
406     os << static_cast<uint8_t>(op.opcode | op.data);
407     break;
408   default:
409     llvm_unreachable("cannot bind to an unrecognized symbol");
410   }
411 }
412 
413 // Non-weak bindings need to have their dylib ordinal encoded as well.
414 static int16_t ordinalForDylibSymbol(const DylibSymbol &dysym) {
415   if (config->namespaceKind == NamespaceKind::flat || dysym.isDynamicLookup())
416     return static_cast<int16_t>(BIND_SPECIAL_DYLIB_FLAT_LOOKUP);
417   assert(dysym.getFile()->isReferenced());
418   return dysym.getFile()->ordinal;
419 }
420 
421 static void encodeDylibOrdinal(int16_t ordinal, raw_svector_ostream &os) {
422   if (ordinal <= 0) {
423     os << static_cast<uint8_t>(BIND_OPCODE_SET_DYLIB_SPECIAL_IMM |
424                                (ordinal & BIND_IMMEDIATE_MASK));
425   } else if (ordinal <= BIND_IMMEDIATE_MASK) {
426     os << static_cast<uint8_t>(BIND_OPCODE_SET_DYLIB_ORDINAL_IMM | ordinal);
427   } else {
428     os << static_cast<uint8_t>(BIND_OPCODE_SET_DYLIB_ORDINAL_ULEB);
429     encodeULEB128(ordinal, os);
430   }
431 }
432 
433 static void encodeWeakOverride(const Defined *defined,
434                                raw_svector_ostream &os) {
435   os << static_cast<uint8_t>(BIND_OPCODE_SET_SYMBOL_TRAILING_FLAGS_IMM |
436                              BIND_SYMBOL_FLAGS_NON_WEAK_DEFINITION)
437      << defined->getName() << '\0';
438 }
439 
440 // Organize the bindings so we can encoded them with fewer opcodes.
441 //
442 // First, all bindings for a given symbol should be grouped together.
443 // BIND_OPCODE_SET_SYMBOL_TRAILING_FLAGS_IMM is the largest opcode (since it
444 // has an associated symbol string), so we only want to emit it once per symbol.
445 //
446 // Within each group, we sort the bindings by address. Since bindings are
447 // delta-encoded, sorting them allows for a more compact result. Note that
448 // sorting by address alone ensures that bindings for the same segment / section
449 // are located together, minimizing the number of times we have to emit
450 // BIND_OPCODE_SET_SEGMENT_AND_OFFSET_ULEB.
451 //
452 // Finally, we sort the symbols by the address of their first binding, again
453 // to facilitate the delta-encoding process.
454 template <class Sym>
455 std::vector<std::pair<const Sym *, std::vector<BindingEntry>>>
456 sortBindings(const BindingsMap<const Sym *> &bindingsMap) {
457   std::vector<std::pair<const Sym *, std::vector<BindingEntry>>> bindingsVec(
458       bindingsMap.begin(), bindingsMap.end());
459   for (auto &p : bindingsVec) {
460     std::vector<BindingEntry> &bindings = p.second;
461     llvm::sort(bindings, [](const BindingEntry &a, const BindingEntry &b) {
462       return a.target.getVA() < b.target.getVA();
463     });
464   }
465   llvm::sort(bindingsVec, [](const auto &a, const auto &b) {
466     return a.second[0].target.getVA() < b.second[0].target.getVA();
467   });
468   return bindingsVec;
469 }
470 
471 // Emit bind opcodes, which are a stream of byte-sized opcodes that dyld
472 // interprets to update a record with the following fields:
473 //  * segment index (of the segment to write the symbol addresses to, typically
474 //    the __DATA_CONST segment which contains the GOT)
475 //  * offset within the segment, indicating the next location to write a binding
476 //  * symbol type
477 //  * symbol library ordinal (the index of its library's LC_LOAD_DYLIB command)
478 //  * symbol name
479 //  * addend
480 // When dyld sees BIND_OPCODE_DO_BIND, it uses the current record state to bind
481 // a symbol in the GOT, and increments the segment offset to point to the next
482 // entry. It does *not* clear the record state after doing the bind, so
483 // subsequent opcodes only need to encode the differences between bindings.
484 void BindingSection::finalizeContents() {
485   raw_svector_ostream os{contents};
486   Binding lastBinding;
487   int16_t lastOrdinal = 0;
488 
489   for (auto &p : sortBindings(bindingsMap)) {
490     const DylibSymbol *sym = p.first;
491     std::vector<BindingEntry> &bindings = p.second;
492     uint8_t flags = BIND_OPCODE_SET_SYMBOL_TRAILING_FLAGS_IMM;
493     if (sym->isWeakRef())
494       flags |= BIND_SYMBOL_FLAGS_WEAK_IMPORT;
495     os << flags << sym->getName() << '\0'
496        << static_cast<uint8_t>(BIND_OPCODE_SET_TYPE_IMM | BIND_TYPE_POINTER);
497     int16_t ordinal = ordinalForDylibSymbol(*sym);
498     if (ordinal != lastOrdinal) {
499       encodeDylibOrdinal(ordinal, os);
500       lastOrdinal = ordinal;
501     }
502     std::vector<BindIR> opcodes;
503     for (const BindingEntry &b : bindings)
504       encodeBinding(b.target.isec->parent,
505                     b.target.isec->getOffset(b.target.offset), b.addend,
506                     lastBinding, opcodes);
507     if (config->optimize > 1)
508       optimizeOpcodes(opcodes);
509     for (const auto &op : opcodes)
510       flushOpcodes(op, os);
511   }
512   if (!bindingsMap.empty())
513     os << static_cast<uint8_t>(BIND_OPCODE_DONE);
514 }
515 
516 void BindingSection::writeTo(uint8_t *buf) const {
517   memcpy(buf, contents.data(), contents.size());
518 }
519 
520 WeakBindingSection::WeakBindingSection()
521     : LinkEditSection(segment_names::linkEdit, section_names::weakBinding) {}
522 
523 void WeakBindingSection::finalizeContents() {
524   raw_svector_ostream os{contents};
525   Binding lastBinding;
526 
527   for (const Defined *defined : definitions)
528     encodeWeakOverride(defined, os);
529 
530   for (auto &p : sortBindings(bindingsMap)) {
531     const Symbol *sym = p.first;
532     std::vector<BindingEntry> &bindings = p.second;
533     os << static_cast<uint8_t>(BIND_OPCODE_SET_SYMBOL_TRAILING_FLAGS_IMM)
534        << sym->getName() << '\0'
535        << static_cast<uint8_t>(BIND_OPCODE_SET_TYPE_IMM | BIND_TYPE_POINTER);
536     std::vector<BindIR> opcodes;
537     for (const BindingEntry &b : bindings)
538       encodeBinding(b.target.isec->parent,
539                     b.target.isec->getOffset(b.target.offset), b.addend,
540                     lastBinding, opcodes);
541     if (config->optimize > 1)
542       optimizeOpcodes(opcodes);
543     for (const auto &op : opcodes)
544       flushOpcodes(op, os);
545   }
546   if (!bindingsMap.empty() || !definitions.empty())
547     os << static_cast<uint8_t>(BIND_OPCODE_DONE);
548 }
549 
550 void WeakBindingSection::writeTo(uint8_t *buf) const {
551   memcpy(buf, contents.data(), contents.size());
552 }
553 
554 StubsSection::StubsSection()
555     : SyntheticSection(segment_names::text, section_names::stubs) {
556   flags = S_SYMBOL_STUBS | S_ATTR_SOME_INSTRUCTIONS | S_ATTR_PURE_INSTRUCTIONS;
557   // The stubs section comprises machine instructions, which are aligned to
558   // 4 bytes on the archs we care about.
559   align = 4;
560   reserved2 = target->stubSize;
561 }
562 
563 uint64_t StubsSection::getSize() const {
564   return entries.size() * target->stubSize;
565 }
566 
567 void StubsSection::writeTo(uint8_t *buf) const {
568   size_t off = 0;
569   for (const Symbol *sym : entries) {
570     target->writeStub(buf + off, *sym);
571     off += target->stubSize;
572   }
573 }
574 
575 void StubsSection::finalize() { isFinal = true; }
576 
577 bool StubsSection::addEntry(Symbol *sym) {
578   bool inserted = entries.insert(sym);
579   if (inserted)
580     sym->stubsIndex = entries.size() - 1;
581   return inserted;
582 }
583 
584 StubHelperSection::StubHelperSection()
585     : SyntheticSection(segment_names::text, section_names::stubHelper) {
586   flags = S_ATTR_SOME_INSTRUCTIONS | S_ATTR_PURE_INSTRUCTIONS;
587   align = 4; // This section comprises machine instructions
588 }
589 
590 uint64_t StubHelperSection::getSize() const {
591   return target->stubHelperHeaderSize +
592          in.lazyBinding->getEntries().size() * target->stubHelperEntrySize;
593 }
594 
595 bool StubHelperSection::isNeeded() const { return in.lazyBinding->isNeeded(); }
596 
597 void StubHelperSection::writeTo(uint8_t *buf) const {
598   target->writeStubHelperHeader(buf);
599   size_t off = target->stubHelperHeaderSize;
600   for (const DylibSymbol *sym : in.lazyBinding->getEntries()) {
601     target->writeStubHelperEntry(buf + off, *sym, addr + off);
602     off += target->stubHelperEntrySize;
603   }
604 }
605 
606 void StubHelperSection::setup() {
607   Symbol *binder = symtab->addUndefined("dyld_stub_binder", /*file=*/nullptr,
608                                         /*isWeakRef=*/false);
609   if (auto *undefined = dyn_cast<Undefined>(binder))
610     treatUndefinedSymbol(*undefined,
611                          "lazy binding (normally in libSystem.dylib)");
612 
613   // treatUndefinedSymbol() can replace binder with a DylibSymbol; re-check.
614   stubBinder = dyn_cast_or_null<DylibSymbol>(binder);
615   if (stubBinder == nullptr)
616     return;
617 
618   in.got->addEntry(stubBinder);
619 
620   in.imageLoaderCache->parent =
621       ConcatOutputSection::getOrCreateForInput(in.imageLoaderCache);
622   inputSections.push_back(in.imageLoaderCache);
623   // Since this isn't in the symbol table or in any input file, the noDeadStrip
624   // argument doesn't matter.
625   dyldPrivate =
626       make<Defined>("__dyld_private", nullptr, in.imageLoaderCache, 0, 0,
627                     /*isWeakDef=*/false,
628                     /*isExternal=*/false, /*isPrivateExtern=*/false,
629                     /*isThumb=*/false, /*isReferencedDynamically=*/false,
630                     /*noDeadStrip=*/false);
631   dyldPrivate->used = true;
632 }
633 
634 LazyPointerSection::LazyPointerSection()
635     : SyntheticSection(segment_names::data, section_names::lazySymbolPtr) {
636   align = target->wordSize;
637   flags = S_LAZY_SYMBOL_POINTERS;
638 }
639 
640 uint64_t LazyPointerSection::getSize() const {
641   return in.stubs->getEntries().size() * target->wordSize;
642 }
643 
644 bool LazyPointerSection::isNeeded() const {
645   return !in.stubs->getEntries().empty();
646 }
647 
648 void LazyPointerSection::writeTo(uint8_t *buf) const {
649   size_t off = 0;
650   for (const Symbol *sym : in.stubs->getEntries()) {
651     if (const auto *dysym = dyn_cast<DylibSymbol>(sym)) {
652       if (dysym->hasStubsHelper()) {
653         uint64_t stubHelperOffset =
654             target->stubHelperHeaderSize +
655             dysym->stubsHelperIndex * target->stubHelperEntrySize;
656         write64le(buf + off, in.stubHelper->addr + stubHelperOffset);
657       }
658     } else {
659       write64le(buf + off, sym->getVA());
660     }
661     off += target->wordSize;
662   }
663 }
664 
665 LazyBindingSection::LazyBindingSection()
666     : LinkEditSection(segment_names::linkEdit, section_names::lazyBinding) {}
667 
668 void LazyBindingSection::finalizeContents() {
669   // TODO: Just precompute output size here instead of writing to a temporary
670   // buffer
671   for (DylibSymbol *sym : entries)
672     sym->lazyBindOffset = encode(*sym);
673 }
674 
675 void LazyBindingSection::writeTo(uint8_t *buf) const {
676   memcpy(buf, contents.data(), contents.size());
677 }
678 
679 void LazyBindingSection::addEntry(DylibSymbol *dysym) {
680   if (entries.insert(dysym)) {
681     dysym->stubsHelperIndex = entries.size() - 1;
682     in.rebase->addEntry(in.lazyPointers->isec,
683                         dysym->stubsIndex * target->wordSize);
684   }
685 }
686 
687 // Unlike the non-lazy binding section, the bind opcodes in this section aren't
688 // interpreted all at once. Rather, dyld will start interpreting opcodes at a
689 // given offset, typically only binding a single symbol before it finds a
690 // BIND_OPCODE_DONE terminator. As such, unlike in the non-lazy-binding case,
691 // we cannot encode just the differences between symbols; we have to emit the
692 // complete bind information for each symbol.
693 uint32_t LazyBindingSection::encode(const DylibSymbol &sym) {
694   uint32_t opstreamOffset = contents.size();
695   OutputSegment *dataSeg = in.lazyPointers->parent;
696   os << static_cast<uint8_t>(BIND_OPCODE_SET_SEGMENT_AND_OFFSET_ULEB |
697                              dataSeg->index);
698   uint64_t offset = in.lazyPointers->addr - dataSeg->addr +
699                     sym.stubsIndex * target->wordSize;
700   encodeULEB128(offset, os);
701   encodeDylibOrdinal(ordinalForDylibSymbol(sym), os);
702 
703   uint8_t flags = BIND_OPCODE_SET_SYMBOL_TRAILING_FLAGS_IMM;
704   if (sym.isWeakRef())
705     flags |= BIND_SYMBOL_FLAGS_WEAK_IMPORT;
706 
707   os << flags << sym.getName() << '\0'
708      << static_cast<uint8_t>(BIND_OPCODE_DO_BIND)
709      << static_cast<uint8_t>(BIND_OPCODE_DONE);
710   return opstreamOffset;
711 }
712 
713 ExportSection::ExportSection()
714     : LinkEditSection(segment_names::linkEdit, section_names::export_) {}
715 
716 void ExportSection::finalizeContents() {
717   trieBuilder.setImageBase(in.header->addr);
718   for (const Symbol *sym : symtab->getSymbols()) {
719     if (const auto *defined = dyn_cast<Defined>(sym)) {
720       if (defined->privateExtern || !defined->isLive())
721         continue;
722       trieBuilder.addSymbol(*defined);
723       hasWeakSymbol = hasWeakSymbol || sym->isWeakDef();
724     }
725   }
726   size = trieBuilder.build();
727 }
728 
729 void ExportSection::writeTo(uint8_t *buf) const { trieBuilder.writeTo(buf); }
730 
731 DataInCodeSection::DataInCodeSection()
732     : LinkEditSection(segment_names::linkEdit, section_names::dataInCode) {}
733 
734 template <class LP>
735 static std::vector<MachO::data_in_code_entry> collectDataInCodeEntries() {
736   using SegmentCommand = typename LP::segment_command;
737   using Section = typename LP::section;
738 
739   std::vector<MachO::data_in_code_entry> dataInCodeEntries;
740   for (const InputFile *inputFile : inputFiles) {
741     if (!isa<ObjFile>(inputFile))
742       continue;
743     const ObjFile *objFile = cast<ObjFile>(inputFile);
744     const auto *c = reinterpret_cast<const SegmentCommand *>(
745         findCommand(objFile->mb.getBufferStart(), LP::segmentLCType));
746     if (!c)
747       continue;
748     ArrayRef<Section> sections{reinterpret_cast<const Section *>(c + 1),
749                                c->nsects};
750 
751     ArrayRef<MachO::data_in_code_entry> entries = objFile->dataInCodeEntries;
752     if (entries.empty())
753       continue;
754     // For each code subsection find 'data in code' entries residing in it.
755     // Compute the new offset values as
756     // <offset within subsection> + <subsection address> - <__TEXT address>.
757     for (size_t i = 0, n = sections.size(); i < n; ++i) {
758       const SubsectionMap &subsecMap = objFile->subsections[i];
759       for (const SubsectionEntry &subsecEntry : subsecMap) {
760         const InputSection *isec = subsecEntry.isec;
761         if (!isCodeSection(isec))
762           continue;
763         if (cast<ConcatInputSection>(isec)->shouldOmitFromOutput())
764           continue;
765         const uint64_t beginAddr = sections[i].addr + subsecEntry.offset;
766         auto it = llvm::lower_bound(
767             entries, beginAddr,
768             [](const MachO::data_in_code_entry &entry, uint64_t addr) {
769               return entry.offset < addr;
770             });
771         const uint64_t endAddr = beginAddr + isec->getFileSize();
772         for (const auto end = entries.end();
773              it != end && it->offset + it->length <= endAddr; ++it)
774           dataInCodeEntries.push_back(
775               {static_cast<uint32_t>(isec->getVA(it->offset - beginAddr) -
776                                      in.header->addr),
777                it->length, it->kind});
778       }
779     }
780   }
781   return dataInCodeEntries;
782 }
783 
784 void DataInCodeSection::finalizeContents() {
785   entries = target->wordSize == 8 ? collectDataInCodeEntries<LP64>()
786                                   : collectDataInCodeEntries<ILP32>();
787 }
788 
789 void DataInCodeSection::writeTo(uint8_t *buf) const {
790   if (!entries.empty())
791     memcpy(buf, entries.data(), getRawSize());
792 }
793 
794 FunctionStartsSection::FunctionStartsSection()
795     : LinkEditSection(segment_names::linkEdit, section_names::functionStarts) {}
796 
797 void FunctionStartsSection::finalizeContents() {
798   raw_svector_ostream os{contents};
799   std::vector<uint64_t> addrs;
800   for (const Symbol *sym : symtab->getSymbols()) {
801     if (const auto *defined = dyn_cast<Defined>(sym)) {
802       if (!defined->isec || !isCodeSection(defined->isec) || !defined->isLive())
803         continue;
804       if (const auto *concatIsec = dyn_cast<ConcatInputSection>(defined->isec))
805         if (concatIsec->shouldOmitFromOutput())
806           continue;
807       // TODO: Add support for thumbs, in that case
808       // the lowest bit of nextAddr needs to be set to 1.
809       addrs.push_back(defined->getVA());
810     }
811   }
812   llvm::sort(addrs);
813   uint64_t addr = in.header->addr;
814   for (uint64_t nextAddr : addrs) {
815     uint64_t delta = nextAddr - addr;
816     if (delta == 0)
817       continue;
818     encodeULEB128(delta, os);
819     addr = nextAddr;
820   }
821   os << '\0';
822 }
823 
824 void FunctionStartsSection::writeTo(uint8_t *buf) const {
825   memcpy(buf, contents.data(), contents.size());
826 }
827 
828 SymtabSection::SymtabSection(StringTableSection &stringTableSection)
829     : LinkEditSection(segment_names::linkEdit, section_names::symbolTable),
830       stringTableSection(stringTableSection) {}
831 
832 void SymtabSection::emitBeginSourceStab(DWARFUnit *compileUnit) {
833   StabsEntry stab(N_SO);
834   SmallString<261> dir(compileUnit->getCompilationDir());
835   StringRef sep = sys::path::get_separator();
836   // We don't use `path::append` here because we want an empty `dir` to result
837   // in an absolute path. `append` would give us a relative path for that case.
838   if (!dir.endswith(sep))
839     dir += sep;
840   stab.strx = stringTableSection.addString(
841       saver.save(dir + compileUnit->getUnitDIE().getShortName()));
842   stabs.emplace_back(std::move(stab));
843 }
844 
845 void SymtabSection::emitEndSourceStab() {
846   StabsEntry stab(N_SO);
847   stab.sect = 1;
848   stabs.emplace_back(std::move(stab));
849 }
850 
851 void SymtabSection::emitObjectFileStab(ObjFile *file) {
852   StabsEntry stab(N_OSO);
853   stab.sect = target->cpuSubtype;
854   SmallString<261> path(!file->archiveName.empty() ? file->archiveName
855                                                    : file->getName());
856   std::error_code ec = sys::fs::make_absolute(path);
857   if (ec)
858     fatal("failed to get absolute path for " + path);
859 
860   if (!file->archiveName.empty())
861     path.append({"(", file->getName(), ")"});
862 
863   StringRef adjustedPath = saver.save(path.str());
864   adjustedPath.consume_front(config->osoPrefix);
865 
866   stab.strx = stringTableSection.addString(adjustedPath);
867   stab.desc = 1;
868   stab.value = file->modTime;
869   stabs.emplace_back(std::move(stab));
870 }
871 
872 void SymtabSection::emitEndFunStab(Defined *defined) {
873   StabsEntry stab(N_FUN);
874   stab.value = defined->size;
875   stabs.emplace_back(std::move(stab));
876 }
877 
878 void SymtabSection::emitStabs() {
879   if (config->omitDebugInfo)
880     return;
881 
882   for (const std::string &s : config->astPaths) {
883     StabsEntry astStab(N_AST);
884     astStab.strx = stringTableSection.addString(s);
885     stabs.emplace_back(std::move(astStab));
886   }
887 
888   std::vector<Defined *> symbolsNeedingStabs;
889   for (const SymtabEntry &entry :
890        concat<SymtabEntry>(localSymbols, externalSymbols)) {
891     Symbol *sym = entry.sym;
892     assert(sym->isLive() &&
893            "dead symbols should not be in localSymbols, externalSymbols");
894     if (auto *defined = dyn_cast<Defined>(sym)) {
895       if (defined->isAbsolute())
896         continue;
897       InputSection *isec = defined->isec;
898       ObjFile *file = dyn_cast_or_null<ObjFile>(isec->getFile());
899       if (!file || !file->compileUnit)
900         continue;
901       symbolsNeedingStabs.push_back(defined);
902     }
903   }
904 
905   llvm::stable_sort(symbolsNeedingStabs, [&](Defined *a, Defined *b) {
906     return a->isec->getFile()->id < b->isec->getFile()->id;
907   });
908 
909   // Emit STABS symbols so that dsymutil and/or the debugger can map address
910   // regions in the final binary to the source and object files from which they
911   // originated.
912   InputFile *lastFile = nullptr;
913   for (Defined *defined : symbolsNeedingStabs) {
914     InputSection *isec = defined->isec;
915     ObjFile *file = cast<ObjFile>(isec->getFile());
916 
917     if (lastFile == nullptr || lastFile != file) {
918       if (lastFile != nullptr)
919         emitEndSourceStab();
920       lastFile = file;
921 
922       emitBeginSourceStab(file->compileUnit);
923       emitObjectFileStab(file);
924     }
925 
926     StabsEntry symStab;
927     symStab.sect = defined->isec->parent->index;
928     symStab.strx = stringTableSection.addString(defined->getName());
929     symStab.value = defined->getVA();
930 
931     if (isCodeSection(isec)) {
932       symStab.type = N_FUN;
933       stabs.emplace_back(std::move(symStab));
934       emitEndFunStab(defined);
935     } else {
936       symStab.type = defined->isExternal() ? N_GSYM : N_STSYM;
937       stabs.emplace_back(std::move(symStab));
938     }
939   }
940 
941   if (!stabs.empty())
942     emitEndSourceStab();
943 }
944 
945 void SymtabSection::finalizeContents() {
946   auto addSymbol = [&](std::vector<SymtabEntry> &symbols, Symbol *sym) {
947     uint32_t strx = stringTableSection.addString(sym->getName());
948     symbols.push_back({sym, strx});
949   };
950 
951   // Local symbols aren't in the SymbolTable, so we walk the list of object
952   // files to gather them.
953   for (const InputFile *file : inputFiles) {
954     if (auto *objFile = dyn_cast<ObjFile>(file)) {
955       for (Symbol *sym : objFile->symbols) {
956         if (auto *defined = dyn_cast_or_null<Defined>(sym)) {
957           if (!defined->isExternal() && defined->isLive()) {
958             StringRef name = defined->getName();
959             if (!name.startswith("l") && !name.startswith("L"))
960               addSymbol(localSymbols, sym);
961           }
962         }
963       }
964     }
965   }
966 
967   // __dyld_private is a local symbol too. It's linker-created and doesn't
968   // exist in any object file.
969   if (Defined *dyldPrivate = in.stubHelper->dyldPrivate)
970     addSymbol(localSymbols, dyldPrivate);
971 
972   for (Symbol *sym : symtab->getSymbols()) {
973     if (!sym->isLive())
974       continue;
975     if (auto *defined = dyn_cast<Defined>(sym)) {
976       if (!defined->includeInSymtab)
977         continue;
978       assert(defined->isExternal());
979       if (defined->privateExtern)
980         addSymbol(localSymbols, defined);
981       else
982         addSymbol(externalSymbols, defined);
983     } else if (auto *dysym = dyn_cast<DylibSymbol>(sym)) {
984       if (dysym->isReferenced())
985         addSymbol(undefinedSymbols, sym);
986     }
987   }
988 
989   emitStabs();
990   uint32_t symtabIndex = stabs.size();
991   for (const SymtabEntry &entry :
992        concat<SymtabEntry>(localSymbols, externalSymbols, undefinedSymbols)) {
993     entry.sym->symtabIndex = symtabIndex++;
994   }
995 }
996 
997 uint32_t SymtabSection::getNumSymbols() const {
998   return stabs.size() + localSymbols.size() + externalSymbols.size() +
999          undefinedSymbols.size();
1000 }
1001 
1002 // This serves to hide (type-erase) the template parameter from SymtabSection.
1003 template <class LP> class SymtabSectionImpl final : public SymtabSection {
1004 public:
1005   SymtabSectionImpl(StringTableSection &stringTableSection)
1006       : SymtabSection(stringTableSection) {}
1007   uint64_t getRawSize() const override;
1008   void writeTo(uint8_t *buf) const override;
1009 };
1010 
1011 template <class LP> uint64_t SymtabSectionImpl<LP>::getRawSize() const {
1012   return getNumSymbols() * sizeof(typename LP::nlist);
1013 }
1014 
1015 template <class LP> void SymtabSectionImpl<LP>::writeTo(uint8_t *buf) const {
1016   auto *nList = reinterpret_cast<typename LP::nlist *>(buf);
1017   // Emit the stabs entries before the "real" symbols. We cannot emit them
1018   // after as that would render Symbol::symtabIndex inaccurate.
1019   for (const StabsEntry &entry : stabs) {
1020     nList->n_strx = entry.strx;
1021     nList->n_type = entry.type;
1022     nList->n_sect = entry.sect;
1023     nList->n_desc = entry.desc;
1024     nList->n_value = entry.value;
1025     ++nList;
1026   }
1027 
1028   for (const SymtabEntry &entry : concat<const SymtabEntry>(
1029            localSymbols, externalSymbols, undefinedSymbols)) {
1030     nList->n_strx = entry.strx;
1031     // TODO populate n_desc with more flags
1032     if (auto *defined = dyn_cast<Defined>(entry.sym)) {
1033       uint8_t scope = 0;
1034       if (defined->privateExtern) {
1035         // Private external -- dylib scoped symbol.
1036         // Promote to non-external at link time.
1037         scope = N_PEXT;
1038       } else if (defined->isExternal()) {
1039         // Normal global symbol.
1040         scope = N_EXT;
1041       } else {
1042         // TU-local symbol from localSymbols.
1043         scope = 0;
1044       }
1045 
1046       if (defined->isAbsolute()) {
1047         nList->n_type = scope | N_ABS;
1048         nList->n_sect = NO_SECT;
1049         nList->n_value = defined->value;
1050       } else {
1051         nList->n_type = scope | N_SECT;
1052         nList->n_sect = defined->isec->parent->index;
1053         // For the N_SECT symbol type, n_value is the address of the symbol
1054         nList->n_value = defined->getVA();
1055       }
1056       nList->n_desc |= defined->thumb ? N_ARM_THUMB_DEF : 0;
1057       nList->n_desc |= defined->isExternalWeakDef() ? N_WEAK_DEF : 0;
1058       nList->n_desc |=
1059           defined->referencedDynamically ? REFERENCED_DYNAMICALLY : 0;
1060     } else if (auto *dysym = dyn_cast<DylibSymbol>(entry.sym)) {
1061       uint16_t n_desc = nList->n_desc;
1062       int16_t ordinal = ordinalForDylibSymbol(*dysym);
1063       if (ordinal == BIND_SPECIAL_DYLIB_FLAT_LOOKUP)
1064         SET_LIBRARY_ORDINAL(n_desc, DYNAMIC_LOOKUP_ORDINAL);
1065       else if (ordinal == BIND_SPECIAL_DYLIB_MAIN_EXECUTABLE)
1066         SET_LIBRARY_ORDINAL(n_desc, EXECUTABLE_ORDINAL);
1067       else {
1068         assert(ordinal > 0);
1069         SET_LIBRARY_ORDINAL(n_desc, static_cast<uint8_t>(ordinal));
1070       }
1071 
1072       nList->n_type = N_EXT;
1073       n_desc |= dysym->isWeakDef() ? N_WEAK_DEF : 0;
1074       n_desc |= dysym->isWeakRef() ? N_WEAK_REF : 0;
1075       nList->n_desc = n_desc;
1076     }
1077     ++nList;
1078   }
1079 }
1080 
1081 template <class LP>
1082 SymtabSection *
1083 macho::makeSymtabSection(StringTableSection &stringTableSection) {
1084   return make<SymtabSectionImpl<LP>>(stringTableSection);
1085 }
1086 
1087 IndirectSymtabSection::IndirectSymtabSection()
1088     : LinkEditSection(segment_names::linkEdit,
1089                       section_names::indirectSymbolTable) {}
1090 
1091 uint32_t IndirectSymtabSection::getNumSymbols() const {
1092   return in.got->getEntries().size() + in.tlvPointers->getEntries().size() +
1093          2 * in.stubs->getEntries().size();
1094 }
1095 
1096 bool IndirectSymtabSection::isNeeded() const {
1097   return in.got->isNeeded() || in.tlvPointers->isNeeded() ||
1098          in.stubs->isNeeded();
1099 }
1100 
1101 void IndirectSymtabSection::finalizeContents() {
1102   uint32_t off = 0;
1103   in.got->reserved1 = off;
1104   off += in.got->getEntries().size();
1105   in.tlvPointers->reserved1 = off;
1106   off += in.tlvPointers->getEntries().size();
1107   in.stubs->reserved1 = off;
1108   off += in.stubs->getEntries().size();
1109   in.lazyPointers->reserved1 = off;
1110 }
1111 
1112 static uint32_t indirectValue(const Symbol *sym) {
1113   if (sym->symtabIndex == UINT32_MAX)
1114     return INDIRECT_SYMBOL_LOCAL;
1115   if (auto *defined = dyn_cast<Defined>(sym))
1116     if (defined->privateExtern)
1117       return INDIRECT_SYMBOL_LOCAL;
1118   return sym->symtabIndex;
1119 }
1120 
1121 void IndirectSymtabSection::writeTo(uint8_t *buf) const {
1122   uint32_t off = 0;
1123   for (const Symbol *sym : in.got->getEntries()) {
1124     write32le(buf + off * sizeof(uint32_t), indirectValue(sym));
1125     ++off;
1126   }
1127   for (const Symbol *sym : in.tlvPointers->getEntries()) {
1128     write32le(buf + off * sizeof(uint32_t), indirectValue(sym));
1129     ++off;
1130   }
1131   for (const Symbol *sym : in.stubs->getEntries()) {
1132     write32le(buf + off * sizeof(uint32_t), indirectValue(sym));
1133     ++off;
1134   }
1135   // There is a 1:1 correspondence between stubs and LazyPointerSection
1136   // entries. But giving __stubs and __la_symbol_ptr the same reserved1
1137   // (the offset into the indirect symbol table) so that they both refer
1138   // to the same range of offsets confuses `strip`, so write the stubs
1139   // symbol table offsets a second time.
1140   for (const Symbol *sym : in.stubs->getEntries()) {
1141     write32le(buf + off * sizeof(uint32_t), indirectValue(sym));
1142     ++off;
1143   }
1144 }
1145 
1146 StringTableSection::StringTableSection()
1147     : LinkEditSection(segment_names::linkEdit, section_names::stringTable) {}
1148 
1149 uint32_t StringTableSection::addString(StringRef str) {
1150   uint32_t strx = size;
1151   strings.push_back(str); // TODO: consider deduplicating strings
1152   size += str.size() + 1; // account for null terminator
1153   return strx;
1154 }
1155 
1156 void StringTableSection::writeTo(uint8_t *buf) const {
1157   uint32_t off = 0;
1158   for (StringRef str : strings) {
1159     memcpy(buf + off, str.data(), str.size());
1160     off += str.size() + 1; // account for null terminator
1161   }
1162 }
1163 
1164 static_assert((CodeSignatureSection::blobHeadersSize % 8) == 0, "");
1165 static_assert((CodeSignatureSection::fixedHeadersSize % 8) == 0, "");
1166 
1167 CodeSignatureSection::CodeSignatureSection()
1168     : LinkEditSection(segment_names::linkEdit, section_names::codeSignature) {
1169   align = 16; // required by libstuff
1170   // FIXME: Consider using finalOutput instead of outputFile.
1171   fileName = config->outputFile;
1172   size_t slashIndex = fileName.rfind("/");
1173   if (slashIndex != std::string::npos)
1174     fileName = fileName.drop_front(slashIndex + 1);
1175 
1176   // NOTE: Any changes to these calculations should be repeated
1177   // in llvm-objcopy's MachOLayoutBuilder::layoutTail.
1178   allHeadersSize = alignTo<16>(fixedHeadersSize + fileName.size() + 1);
1179   fileNamePad = allHeadersSize - fixedHeadersSize - fileName.size();
1180 }
1181 
1182 uint32_t CodeSignatureSection::getBlockCount() const {
1183   return (fileOff + blockSize - 1) / blockSize;
1184 }
1185 
1186 uint64_t CodeSignatureSection::getRawSize() const {
1187   return allHeadersSize + getBlockCount() * hashSize;
1188 }
1189 
1190 void CodeSignatureSection::writeHashes(uint8_t *buf) const {
1191   // NOTE: Changes to this functionality should be repeated in llvm-objcopy's
1192   // MachOWriter::writeSignatureData.
1193   uint8_t *code = buf;
1194   uint8_t *codeEnd = buf + fileOff;
1195   uint8_t *hashes = codeEnd + allHeadersSize;
1196   while (code < codeEnd) {
1197     StringRef block(reinterpret_cast<char *>(code),
1198                     std::min(codeEnd - code, static_cast<ssize_t>(blockSize)));
1199     SHA256 hasher;
1200     hasher.update(block);
1201     StringRef hash = hasher.final();
1202     assert(hash.size() == hashSize);
1203     memcpy(hashes, hash.data(), hashSize);
1204     code += blockSize;
1205     hashes += hashSize;
1206   }
1207 #if defined(__APPLE__)
1208   // This is macOS-specific work-around and makes no sense for any
1209   // other host OS. See https://openradar.appspot.com/FB8914231
1210   //
1211   // The macOS kernel maintains a signature-verification cache to
1212   // quickly validate applications at time of execve(2).  The trouble
1213   // is that for the kernel creates the cache entry at the time of the
1214   // mmap(2) call, before we have a chance to write either the code to
1215   // sign or the signature header+hashes.  The fix is to invalidate
1216   // all cached data associated with the output file, thus discarding
1217   // the bogus prematurely-cached signature.
1218   msync(buf, fileOff + getSize(), MS_INVALIDATE);
1219 #endif
1220 }
1221 
1222 void CodeSignatureSection::writeTo(uint8_t *buf) const {
1223   // NOTE: Changes to this functionality should be repeated in llvm-objcopy's
1224   // MachOWriter::writeSignatureData.
1225   uint32_t signatureSize = static_cast<uint32_t>(getSize());
1226   auto *superBlob = reinterpret_cast<CS_SuperBlob *>(buf);
1227   write32be(&superBlob->magic, CSMAGIC_EMBEDDED_SIGNATURE);
1228   write32be(&superBlob->length, signatureSize);
1229   write32be(&superBlob->count, 1);
1230   auto *blobIndex = reinterpret_cast<CS_BlobIndex *>(&superBlob[1]);
1231   write32be(&blobIndex->type, CSSLOT_CODEDIRECTORY);
1232   write32be(&blobIndex->offset, blobHeadersSize);
1233   auto *codeDirectory =
1234       reinterpret_cast<CS_CodeDirectory *>(buf + blobHeadersSize);
1235   write32be(&codeDirectory->magic, CSMAGIC_CODEDIRECTORY);
1236   write32be(&codeDirectory->length, signatureSize - blobHeadersSize);
1237   write32be(&codeDirectory->version, CS_SUPPORTSEXECSEG);
1238   write32be(&codeDirectory->flags, CS_ADHOC | CS_LINKER_SIGNED);
1239   write32be(&codeDirectory->hashOffset,
1240             sizeof(CS_CodeDirectory) + fileName.size() + fileNamePad);
1241   write32be(&codeDirectory->identOffset, sizeof(CS_CodeDirectory));
1242   codeDirectory->nSpecialSlots = 0;
1243   write32be(&codeDirectory->nCodeSlots, getBlockCount());
1244   write32be(&codeDirectory->codeLimit, fileOff);
1245   codeDirectory->hashSize = static_cast<uint8_t>(hashSize);
1246   codeDirectory->hashType = kSecCodeSignatureHashSHA256;
1247   codeDirectory->platform = 0;
1248   codeDirectory->pageSize = blockSizeShift;
1249   codeDirectory->spare2 = 0;
1250   codeDirectory->scatterOffset = 0;
1251   codeDirectory->teamOffset = 0;
1252   codeDirectory->spare3 = 0;
1253   codeDirectory->codeLimit64 = 0;
1254   OutputSegment *textSeg = getOrCreateOutputSegment(segment_names::text);
1255   write64be(&codeDirectory->execSegBase, textSeg->fileOff);
1256   write64be(&codeDirectory->execSegLimit, textSeg->fileSize);
1257   write64be(&codeDirectory->execSegFlags,
1258             config->outputType == MH_EXECUTE ? CS_EXECSEG_MAIN_BINARY : 0);
1259   auto *id = reinterpret_cast<char *>(&codeDirectory[1]);
1260   memcpy(id, fileName.begin(), fileName.size());
1261   memset(id + fileName.size(), 0, fileNamePad);
1262 }
1263 
1264 BitcodeBundleSection::BitcodeBundleSection()
1265     : SyntheticSection(segment_names::llvm, section_names::bitcodeBundle) {}
1266 
1267 class ErrorCodeWrapper {
1268 public:
1269   explicit ErrorCodeWrapper(std::error_code ec) : errorCode(ec.value()) {}
1270   explicit ErrorCodeWrapper(int ec) : errorCode(ec) {}
1271   operator int() const { return errorCode; }
1272 
1273 private:
1274   int errorCode;
1275 };
1276 
1277 #define CHECK_EC(exp)                                                          \
1278   do {                                                                         \
1279     ErrorCodeWrapper ec(exp);                                                  \
1280     if (ec)                                                                    \
1281       fatal(Twine("operation failed with error code ") + Twine(ec) + ": " +    \
1282             #exp);                                                             \
1283   } while (0);
1284 
1285 void BitcodeBundleSection::finalize() {
1286 #ifdef LLVM_HAVE_LIBXAR
1287   using namespace llvm::sys::fs;
1288   CHECK_EC(createTemporaryFile("bitcode-bundle", "xar", xarPath));
1289 
1290   xar_t xar(xar_open(xarPath.data(), O_RDWR));
1291   if (!xar)
1292     fatal("failed to open XAR temporary file at " + xarPath);
1293   CHECK_EC(xar_opt_set(xar, XAR_OPT_COMPRESSION, XAR_OPT_VAL_NONE));
1294   // FIXME: add more data to XAR
1295   CHECK_EC(xar_close(xar));
1296 
1297   file_size(xarPath, xarSize);
1298 #endif // defined(LLVM_HAVE_LIBXAR)
1299 }
1300 
1301 void BitcodeBundleSection::writeTo(uint8_t *buf) const {
1302   using namespace llvm::sys::fs;
1303   file_t handle =
1304       CHECK(openNativeFile(xarPath, CD_OpenExisting, FA_Read, OF_None),
1305             "failed to open XAR file");
1306   std::error_code ec;
1307   mapped_file_region xarMap(handle, mapped_file_region::mapmode::readonly,
1308                             xarSize, 0, ec);
1309   if (ec)
1310     fatal("failed to map XAR file");
1311   memcpy(buf, xarMap.const_data(), xarSize);
1312 
1313   closeFile(handle);
1314   remove(xarPath);
1315 }
1316 
1317 CStringSection::CStringSection()
1318     : SyntheticSection(segment_names::text, section_names::cString) {
1319   flags = S_CSTRING_LITERALS;
1320 }
1321 
1322 void CStringSection::addInput(CStringInputSection *isec) {
1323   isec->parent = this;
1324   inputs.push_back(isec);
1325   if (isec->align > align)
1326     align = isec->align;
1327 }
1328 
1329 void CStringSection::writeTo(uint8_t *buf) const {
1330   for (const CStringInputSection *isec : inputs) {
1331     for (size_t i = 0, e = isec->pieces.size(); i != e; ++i) {
1332       if (!isec->pieces[i].live)
1333         continue;
1334       StringRef string = isec->getStringRef(i);
1335       memcpy(buf + isec->pieces[i].outSecOff, string.data(), string.size());
1336     }
1337   }
1338 }
1339 
1340 void CStringSection::finalizeContents() {
1341   uint64_t offset = 0;
1342   for (CStringInputSection *isec : inputs) {
1343     for (size_t i = 0, e = isec->pieces.size(); i != e; ++i) {
1344       if (!isec->pieces[i].live)
1345         continue;
1346       uint32_t pieceAlign = MinAlign(isec->pieces[i].inSecOff, align);
1347       offset = alignTo(offset, pieceAlign);
1348       isec->pieces[i].outSecOff = offset;
1349       isec->isFinal = true;
1350       StringRef string = isec->getStringRef(i);
1351       offset += string.size();
1352     }
1353   }
1354   size = offset;
1355 }
1356 // Mergeable cstring literals are found under the __TEXT,__cstring section. In
1357 // contrast to ELF, which puts strings that need different alignments into
1358 // different sections, clang's Mach-O backend puts them all in one section.
1359 // Strings that need to be aligned have the .p2align directive emitted before
1360 // them, which simply translates into zero padding in the object file.
1361 //
1362 // I *think* ld64 extracts the desired per-string alignment from this data by
1363 // preserving each string's offset from the last section-aligned address. I'm
1364 // not entirely certain since it doesn't seem consistent about doing this, and
1365 // in fact doesn't seem to be correct in general: we can in fact can induce ld64
1366 // to produce a crashing binary just by linking in an additional object file
1367 // that only contains a duplicate cstring at a different alignment. See PR50563
1368 // for details.
1369 //
1370 // On x86_64, the cstrings we've seen so far that require special alignment are
1371 // all accessed by SIMD operations -- x86_64 requires SIMD accesses to be
1372 // 16-byte-aligned. arm64 also seems to require 16-byte-alignment in some cases
1373 // (PR50791), but I haven't tracked down the root cause. So for now, I'm just
1374 // aligning all strings to 16 bytes.  This is indeed wasteful, but
1375 // implementation-wise it's simpler than preserving per-string
1376 // alignment+offsets. It also avoids the aforementioned crash after
1377 // deduplication of differently-aligned strings.  Finally, the overhead is not
1378 // huge: using 16-byte alignment (vs no alignment) is only a 0.5% size overhead
1379 // when linking chromium_framework on x86_64.
1380 DeduplicatedCStringSection::DeduplicatedCStringSection()
1381     : builder(StringTableBuilder::RAW, /*Alignment=*/16) {}
1382 
1383 void DeduplicatedCStringSection::finalizeContents() {
1384   // Add all string pieces to the string table builder to create section
1385   // contents.
1386   for (const CStringInputSection *isec : inputs)
1387     for (size_t i = 0, e = isec->pieces.size(); i != e; ++i)
1388       if (isec->pieces[i].live)
1389         builder.add(isec->getCachedHashStringRef(i));
1390 
1391   // Fix the string table content. After this, the contents will never change.
1392   builder.finalizeInOrder();
1393 
1394   // finalize() fixed tail-optimized strings, so we can now get
1395   // offsets of strings. Get an offset for each string and save it
1396   // to a corresponding SectionPiece for easy access.
1397   for (CStringInputSection *isec : inputs) {
1398     for (size_t i = 0, e = isec->pieces.size(); i != e; ++i) {
1399       if (!isec->pieces[i].live)
1400         continue;
1401       isec->pieces[i].outSecOff =
1402           builder.getOffset(isec->getCachedHashStringRef(i));
1403       isec->isFinal = true;
1404     }
1405   }
1406 }
1407 
1408 // This section is actually emitted as __TEXT,__const by ld64, but clang may
1409 // emit input sections of that name, and LLD doesn't currently support mixing
1410 // synthetic and concat-type OutputSections. To work around this, I've given
1411 // our merged-literals section a different name.
1412 WordLiteralSection::WordLiteralSection()
1413     : SyntheticSection(segment_names::text, section_names::literals) {
1414   align = 16;
1415 }
1416 
1417 void WordLiteralSection::addInput(WordLiteralInputSection *isec) {
1418   isec->parent = this;
1419   inputs.push_back(isec);
1420 }
1421 
1422 void WordLiteralSection::finalizeContents() {
1423   for (WordLiteralInputSection *isec : inputs) {
1424     // We do all processing of the InputSection here, so it will be effectively
1425     // finalized.
1426     isec->isFinal = true;
1427     const uint8_t *buf = isec->data.data();
1428     switch (sectionType(isec->getFlags())) {
1429     case S_4BYTE_LITERALS: {
1430       for (size_t off = 0, e = isec->data.size(); off < e; off += 4) {
1431         if (!isec->isLive(off))
1432           continue;
1433         uint32_t value = *reinterpret_cast<const uint32_t *>(buf + off);
1434         literal4Map.emplace(value, literal4Map.size());
1435       }
1436       break;
1437     }
1438     case S_8BYTE_LITERALS: {
1439       for (size_t off = 0, e = isec->data.size(); off < e; off += 8) {
1440         if (!isec->isLive(off))
1441           continue;
1442         uint64_t value = *reinterpret_cast<const uint64_t *>(buf + off);
1443         literal8Map.emplace(value, literal8Map.size());
1444       }
1445       break;
1446     }
1447     case S_16BYTE_LITERALS: {
1448       for (size_t off = 0, e = isec->data.size(); off < e; off += 16) {
1449         if (!isec->isLive(off))
1450           continue;
1451         UInt128 value = *reinterpret_cast<const UInt128 *>(buf + off);
1452         literal16Map.emplace(value, literal16Map.size());
1453       }
1454       break;
1455     }
1456     default:
1457       llvm_unreachable("invalid literal section type");
1458     }
1459   }
1460 }
1461 
1462 void WordLiteralSection::writeTo(uint8_t *buf) const {
1463   // Note that we don't attempt to do any endianness conversion in addInput(),
1464   // so we don't do it here either -- just write out the original value,
1465   // byte-for-byte.
1466   for (const auto &p : literal16Map)
1467     memcpy(buf + p.second * 16, &p.first, 16);
1468   buf += literal16Map.size() * 16;
1469 
1470   for (const auto &p : literal8Map)
1471     memcpy(buf + p.second * 8, &p.first, 8);
1472   buf += literal8Map.size() * 8;
1473 
1474   for (const auto &p : literal4Map)
1475     memcpy(buf + p.second * 4, &p.first, 4);
1476 }
1477 
1478 void macho::createSyntheticSymbols() {
1479   auto addHeaderSymbol = [](const char *name) {
1480     symtab->addSynthetic(name, in.header->isec, /*value=*/0,
1481                          /*privateExtern=*/true, /*includeInSymtab=*/false,
1482                          /*referencedDynamically=*/false);
1483   };
1484 
1485   switch (config->outputType) {
1486     // FIXME: Assign the right address value for these symbols
1487     // (rather than 0). But we need to do that after assignAddresses().
1488   case MH_EXECUTE:
1489     // If linking PIE, __mh_execute_header is a defined symbol in
1490     //  __TEXT, __text)
1491     // Otherwise, it's an absolute symbol.
1492     if (config->isPic)
1493       symtab->addSynthetic("__mh_execute_header", in.header->isec, /*value=*/0,
1494                            /*privateExtern=*/false, /*includeInSymtab=*/true,
1495                            /*referencedDynamically=*/true);
1496     else
1497       symtab->addSynthetic("__mh_execute_header", /*isec=*/nullptr, /*value=*/0,
1498                            /*privateExtern=*/false, /*includeInSymtab=*/true,
1499                            /*referencedDynamically=*/true);
1500     break;
1501 
1502     // The following symbols are N_SECT symbols, even though the header is not
1503     // part of any section and that they are private to the bundle/dylib/object
1504     // they are part of.
1505   case MH_BUNDLE:
1506     addHeaderSymbol("__mh_bundle_header");
1507     break;
1508   case MH_DYLIB:
1509     addHeaderSymbol("__mh_dylib_header");
1510     break;
1511   case MH_DYLINKER:
1512     addHeaderSymbol("__mh_dylinker_header");
1513     break;
1514   case MH_OBJECT:
1515     addHeaderSymbol("__mh_object_header");
1516     break;
1517   default:
1518     llvm_unreachable("unexpected outputType");
1519     break;
1520   }
1521 
1522   // The Itanium C++ ABI requires dylibs to pass a pointer to __cxa_atexit
1523   // which does e.g. cleanup of static global variables. The ABI document
1524   // says that the pointer can point to any address in one of the dylib's
1525   // segments, but in practice ld64 seems to set it to point to the header,
1526   // so that's what's implemented here.
1527   addHeaderSymbol("___dso_handle");
1528 }
1529 
1530 template SymtabSection *macho::makeSymtabSection<LP64>(StringTableSection &);
1531 template SymtabSection *macho::makeSymtabSection<ILP32>(StringTableSection &);
1532