1 //===- LinkerScript.cpp ---------------------------------------------------===//
2 //
3 //                             The LLVM Linker
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file contains the parser/evaluator of the linker script.
11 //
12 //===----------------------------------------------------------------------===//
13 
14 #include "LinkerScript.h"
15 #include "Config.h"
16 #include "InputSection.h"
17 #include "Memory.h"
18 #include "OutputSections.h"
19 #include "Strings.h"
20 #include "SymbolTable.h"
21 #include "Symbols.h"
22 #include "SyntheticSections.h"
23 #include "Target.h"
24 #include "Writer.h"
25 #include "lld/Common/Threads.h"
26 #include "llvm/ADT/STLExtras.h"
27 #include "llvm/ADT/StringRef.h"
28 #include "llvm/BinaryFormat/ELF.h"
29 #include "llvm/Support/Casting.h"
30 #include "llvm/Support/Endian.h"
31 #include "llvm/Support/ErrorHandling.h"
32 #include "llvm/Support/FileSystem.h"
33 #include "llvm/Support/Path.h"
34 #include <algorithm>
35 #include <cassert>
36 #include <cstddef>
37 #include <cstdint>
38 #include <iterator>
39 #include <limits>
40 #include <string>
41 #include <vector>
42 
43 using namespace llvm;
44 using namespace llvm::ELF;
45 using namespace llvm::object;
46 using namespace llvm::support::endian;
47 using namespace lld;
48 using namespace lld::elf;
49 
50 LinkerScript *elf::Script;
51 
52 static uint64_t getOutputSectionVA(SectionBase *InputSec, StringRef Loc) {
53   if (OutputSection *OS = InputSec->getOutputSection())
54     return OS->Addr;
55   error(Loc + ": unable to evaluate expression: input section " +
56         InputSec->Name + " has no output section assigned");
57   return 0;
58 }
59 
60 uint64_t ExprValue::getValue() const {
61   if (Sec)
62     return alignTo(Sec->getOffset(Val) + getOutputSectionVA(Sec, Loc),
63                    Alignment);
64   return alignTo(Val, Alignment);
65 }
66 
67 uint64_t ExprValue::getSecAddr() const {
68   if (Sec)
69     return Sec->getOffset(0) + getOutputSectionVA(Sec, Loc);
70   return 0;
71 }
72 
73 uint64_t ExprValue::getSectionOffset() const {
74   // If the alignment is trivial, we don't have to compute the full
75   // value to know the offset. This allows this function to succeed in
76   // cases where the output section is not yet known.
77   if (Alignment == 1)
78     return Val;
79   return getValue() - getSecAddr();
80 }
81 
82 OutputSection *LinkerScript::createOutputSection(StringRef Name,
83                                                  StringRef Location) {
84   OutputSection *&SecRef = NameToOutputSection[Name];
85   OutputSection *Sec;
86   if (SecRef && SecRef->Location.empty()) {
87     // There was a forward reference.
88     Sec = SecRef;
89   } else {
90     Sec = make<OutputSection>(Name, SHT_PROGBITS, 0);
91     if (!SecRef)
92       SecRef = Sec;
93   }
94   Sec->Location = Location;
95   return Sec;
96 }
97 
98 OutputSection *LinkerScript::getOrCreateOutputSection(StringRef Name) {
99   OutputSection *&CmdRef = NameToOutputSection[Name];
100   if (!CmdRef)
101     CmdRef = make<OutputSection>(Name, SHT_PROGBITS, 0);
102   return CmdRef;
103 }
104 
105 void LinkerScript::setDot(Expr E, const Twine &Loc, bool InSec) {
106   uint64_t Val = E().getValue();
107   if (Val < Dot && InSec)
108     error(Loc + ": unable to move location counter backward for: " +
109           Ctx->OutSec->Name);
110   Dot = Val;
111 
112   // Update to location counter means update to section size.
113   if (InSec)
114     Ctx->OutSec->Size = Dot - Ctx->OutSec->Addr;
115 }
116 
117 // This function is called from processSectionCommands,
118 // while we are fixing the output section layout.
119 void LinkerScript::addSymbol(SymbolAssignment *Cmd) {
120   if (Cmd->Name == ".")
121     return;
122 
123   // If a symbol was in PROVIDE(), we need to define it only when
124   // it is a referenced undefined symbol.
125   SymbolBody *B = Symtab->find(Cmd->Name);
126   if (Cmd->Provide && (!B || B->isDefined()))
127     return;
128 
129   // Define a symbol.
130   Symbol *Sym;
131   uint8_t Visibility = Cmd->Hidden ? STV_HIDDEN : STV_DEFAULT;
132   std::tie(Sym, std::ignore) = Symtab->insert(Cmd->Name, /*Type*/ 0, Visibility,
133                                               /*CanOmitFromDynSym*/ false,
134                                               /*File*/ nullptr);
135   Sym->Binding = STB_GLOBAL;
136   ExprValue Value = Cmd->Expression();
137   SectionBase *Sec = Value.isAbsolute() ? nullptr : Value.Sec;
138 
139   // When this function is called, section addresses have not been
140   // fixed yet. So, we may or may not know the value of the RHS
141   // expression.
142   //
143   // For example, if an expression is `x = 42`, we know x is always 42.
144   // However, if an expression is `x = .`, there's no way to know its
145   // value at the moment.
146   //
147   // We want to set symbol values early if we can. This allows us to
148   // use symbols as variables in linker scripts. Doing so allows us to
149   // write expressions like this: `alignment = 16; . = ALIGN(., alignment)`.
150   uint64_t SymValue = Value.Sec ? 0 : Value.getValue();
151 
152   replaceBody<DefinedRegular>(Sym, nullptr, Cmd->Name, /*IsLocal=*/false,
153                               Visibility, STT_NOTYPE, SymValue, 0, Sec);
154   Cmd->Sym = cast<DefinedRegular>(Sym->body());
155 }
156 
157 // This function is called from assignAddresses, while we are
158 // fixing the output section addresses. This function is supposed
159 // to set the final value for a given symbol assignment.
160 void LinkerScript::assignSymbol(SymbolAssignment *Cmd, bool InSec) {
161   if (Cmd->Name == ".") {
162     setDot(Cmd->Expression, Cmd->Location, InSec);
163     return;
164   }
165 
166   if (!Cmd->Sym)
167     return;
168 
169   ExprValue V = Cmd->Expression();
170   if (V.isAbsolute()) {
171     Cmd->Sym->Section = nullptr;
172     Cmd->Sym->Value = V.getValue();
173   } else {
174     Cmd->Sym->Section = V.Sec;
175     Cmd->Sym->Value = V.getSectionOffset();
176   }
177 }
178 
179 static std::string getFilename(InputFile *File) {
180   if (!File)
181     return "";
182   if (File->ArchiveName.empty())
183     return File->getName();
184   return (File->ArchiveName + "(" + File->getName() + ")").str();
185 }
186 
187 bool LinkerScript::shouldKeep(InputSectionBase *S) {
188   std::string Filename = getFilename(S->File);
189   for (InputSectionDescription *ID : KeptSections)
190     if (ID->FilePat.match(Filename))
191       for (SectionPattern &P : ID->SectionPatterns)
192         if (P.SectionPat.match(S->Name))
193           return true;
194   return false;
195 }
196 
197 // A helper function for the SORT() command.
198 static std::function<bool(InputSectionBase *, InputSectionBase *)>
199 getComparator(SortSectionPolicy K) {
200   switch (K) {
201   case SortSectionPolicy::Alignment:
202     return [](InputSectionBase *A, InputSectionBase *B) {
203       // ">" is not a mistake. Sections with larger alignments are placed
204       // before sections with smaller alignments in order to reduce the
205       // amount of padding necessary. This is compatible with GNU.
206       return A->Alignment > B->Alignment;
207     };
208   case SortSectionPolicy::Name:
209     return [](InputSectionBase *A, InputSectionBase *B) {
210       return A->Name < B->Name;
211     };
212   case SortSectionPolicy::Priority:
213     return [](InputSectionBase *A, InputSectionBase *B) {
214       return getPriority(A->Name) < getPriority(B->Name);
215     };
216   default:
217     llvm_unreachable("unknown sort policy");
218   }
219 }
220 
221 // A helper function for the SORT() command.
222 static bool matchConstraints(ArrayRef<InputSection *> Sections,
223                              ConstraintKind Kind) {
224   if (Kind == ConstraintKind::NoConstraint)
225     return true;
226 
227   bool IsRW = llvm::any_of(
228       Sections, [](InputSection *Sec) { return Sec->Flags & SHF_WRITE; });
229 
230   return (IsRW && Kind == ConstraintKind::ReadWrite) ||
231          (!IsRW && Kind == ConstraintKind::ReadOnly);
232 }
233 
234 static void sortSections(MutableArrayRef<InputSection *> Vec,
235                          SortSectionPolicy K) {
236   if (K != SortSectionPolicy::Default && K != SortSectionPolicy::None)
237     std::stable_sort(Vec.begin(), Vec.end(), getComparator(K));
238 }
239 
240 // Sort sections as instructed by SORT-family commands and --sort-section
241 // option. Because SORT-family commands can be nested at most two depth
242 // (e.g. SORT_BY_NAME(SORT_BY_ALIGNMENT(.text.*))) and because the command
243 // line option is respected even if a SORT command is given, the exact
244 // behavior we have here is a bit complicated. Here are the rules.
245 //
246 // 1. If two SORT commands are given, --sort-section is ignored.
247 // 2. If one SORT command is given, and if it is not SORT_NONE,
248 //    --sort-section is handled as an inner SORT command.
249 // 3. If one SORT command is given, and if it is SORT_NONE, don't sort.
250 // 4. If no SORT command is given, sort according to --sort-section.
251 // 5. If no SORT commands are given and --sort-section is not specified,
252 //    apply sorting provided by --symbol-ordering-file if any exist.
253 static void sortInputSections(
254     MutableArrayRef<InputSection *> Vec, const SectionPattern &Pat,
255     const DenseMap<SectionBase *, int> &Order) {
256   if (Pat.SortOuter == SortSectionPolicy::None)
257     return;
258 
259   if (Pat.SortOuter == SortSectionPolicy::Default &&
260       Config->SortSection == SortSectionPolicy::Default) {
261     // If -symbol-ordering-file was given, sort accordingly.
262     // Usually, Order is empty.
263     if (!Order.empty())
264       sortByOrder(Vec, [&](InputSectionBase *S) { return Order.lookup(S); });
265     return;
266   }
267 
268   if (Pat.SortInner == SortSectionPolicy::Default)
269     sortSections(Vec, Config->SortSection);
270   else
271     sortSections(Vec, Pat.SortInner);
272   sortSections(Vec, Pat.SortOuter);
273 }
274 
275 // Compute and remember which sections the InputSectionDescription matches.
276 std::vector<InputSection *>
277 LinkerScript::computeInputSections(const InputSectionDescription *Cmd,
278                                    const DenseMap<SectionBase *, int> &Order) {
279   std::vector<InputSection *> Ret;
280 
281   // Collects all sections that satisfy constraints of Cmd.
282   for (const SectionPattern &Pat : Cmd->SectionPatterns) {
283     size_t SizeBefore = Ret.size();
284 
285     for (InputSectionBase *Sec : InputSections) {
286       if (Sec->Assigned)
287         continue;
288 
289       if (!Sec->Live) {
290         reportDiscarded(Sec);
291         continue;
292       }
293 
294       // For -emit-relocs we have to ignore entries like
295       //   .rela.dyn : { *(.rela.data) }
296       // which are common because they are in the default bfd script.
297       if (Sec->Type == SHT_REL || Sec->Type == SHT_RELA)
298         continue;
299 
300       std::string Filename = getFilename(Sec->File);
301       if (!Cmd->FilePat.match(Filename) ||
302           Pat.ExcludedFilePat.match(Filename) ||
303           !Pat.SectionPat.match(Sec->Name))
304         continue;
305 
306       // It is safe to assume that Sec is an InputSection
307       // because mergeable or EH input sections have already been
308       // handled and eliminated.
309       Ret.push_back(cast<InputSection>(Sec));
310       Sec->Assigned = true;
311     }
312 
313     sortInputSections(MutableArrayRef<InputSection *>(Ret).slice(SizeBefore),
314                       Pat, Order);
315   }
316   return Ret;
317 }
318 
319 void LinkerScript::discard(ArrayRef<InputSection *> V) {
320   for (InputSection *S : V) {
321     S->Live = false;
322     if (S == InX::ShStrTab || S == InX::Dynamic || S == InX::DynSymTab ||
323         S == InX::DynStrTab)
324       error("discarding " + S->Name + " section is not allowed");
325     discard(S->DependentSections);
326   }
327 }
328 
329 std::vector<InputSection *> LinkerScript::createInputSectionList(
330     OutputSection &OutCmd, const DenseMap<SectionBase *, int> &Order) {
331   std::vector<InputSection *> Ret;
332 
333   for (BaseCommand *Base : OutCmd.SectionCommands) {
334     if (auto *Cmd = dyn_cast<InputSectionDescription>(Base)) {
335       Cmd->Sections = computeInputSections(Cmd, Order);
336       Ret.insert(Ret.end(), Cmd->Sections.begin(), Cmd->Sections.end());
337     }
338   }
339   return Ret;
340 }
341 
342 void LinkerScript::processSectionCommands() {
343   // A symbol can be assigned before any section is mentioned in the linker
344   // script. In an DSO, the symbol values are addresses, so the only important
345   // section values are:
346   // * SHN_UNDEF
347   // * SHN_ABS
348   // * Any value meaning a regular section.
349   // To handle that, create a dummy aether section that fills the void before
350   // the linker scripts switches to another section. It has an index of one
351   // which will map to whatever the first actual section is.
352   Aether = make<OutputSection>("", 0, SHF_ALLOC);
353   Aether->SectionIndex = 1;
354 
355   // Ctx captures the local AddressState and makes it accessible deliberately.
356   // This is needed as there are some cases where we cannot just
357   // thread the current state through to a lambda function created by the
358   // script parser.
359   auto Deleter = make_unique<AddressState>();
360   Ctx = Deleter.get();
361   Ctx->OutSec = Aether;
362 
363   DenseMap<SectionBase *, int> Order = buildSectionOrder();
364   // Add input sections to output sections.
365   for (size_t I = 0; I < SectionCommands.size(); ++I) {
366     // Handle symbol assignments outside of any output section.
367     if (auto *Cmd = dyn_cast<SymbolAssignment>(SectionCommands[I])) {
368       addSymbol(Cmd);
369       continue;
370     }
371 
372     if (auto *Sec = dyn_cast<OutputSection>(SectionCommands[I])) {
373       std::vector<InputSection *> V = createInputSectionList(*Sec, Order);
374 
375       // The output section name `/DISCARD/' is special.
376       // Any input section assigned to it is discarded.
377       if (Sec->Name == "/DISCARD/") {
378         discard(V);
379         continue;
380       }
381 
382       // This is for ONLY_IF_RO and ONLY_IF_RW. An output section directive
383       // ".foo : ONLY_IF_R[OW] { ... }" is handled only if all member input
384       // sections satisfy a given constraint. If not, a directive is handled
385       // as if it wasn't present from the beginning.
386       //
387       // Because we'll iterate over SectionCommands many more times, the easiest
388       // way to "make it as if it wasn't present" is to just remove it.
389       if (!matchConstraints(V, Sec->Constraint)) {
390         for (InputSectionBase *S : V)
391           S->Assigned = false;
392         SectionCommands.erase(SectionCommands.begin() + I);
393         --I;
394         continue;
395       }
396 
397       // A directive may contain symbol definitions like this:
398       // ".foo : { ...; bar = .; }". Handle them.
399       for (BaseCommand *Base : Sec->SectionCommands)
400         if (auto *OutCmd = dyn_cast<SymbolAssignment>(Base))
401           addSymbol(OutCmd);
402 
403       // Handle subalign (e.g. ".foo : SUBALIGN(32) { ... }"). If subalign
404       // is given, input sections are aligned to that value, whether the
405       // given value is larger or smaller than the original section alignment.
406       if (Sec->SubalignExpr) {
407         uint32_t Subalign = Sec->SubalignExpr().getValue();
408         for (InputSectionBase *S : V)
409           S->Alignment = Subalign;
410       }
411 
412       // Add input sections to an output section.
413       for (InputSection *S : V)
414         Sec->addSection(S);
415     }
416   }
417   Ctx = nullptr;
418 
419   // Output sections are emitted in the exact same order as
420   // appeared in SECTIONS command, so we know their section indices.
421   for (size_t I = 0; I < SectionCommands.size(); ++I) {
422     auto *Sec = dyn_cast<OutputSection>(SectionCommands[I]);
423     if (!Sec)
424       continue;
425     assert(Sec->SectionIndex == INT_MAX);
426     Sec->SectionIndex = I;
427     if (Sec->Noload)
428       Sec->Type = SHT_NOBITS;
429   }
430 }
431 
432 // If no SECTIONS command was given, we create simple SectionCommands
433 // as if a minimum SECTIONS command were given. This function does that.
434 void LinkerScript::fabricateDefaultCommands() {
435   // Define start address
436   uint64_t StartAddr = UINT64_MAX;
437 
438   // The Sections with -T<section> have been sorted in order of ascending
439   // address. We must lower StartAddr if the lowest -T<section address> as
440   // calls to setDot() must be monotonically increasing.
441   for (auto &KV : Config->SectionStartMap)
442     StartAddr = std::min(StartAddr, KV.second);
443 
444   auto Expr = [=] {
445     return std::min(StartAddr, Target->getImageBase() + elf::getHeaderSize());
446   };
447   SectionCommands.insert(SectionCommands.begin(),
448                          make<SymbolAssignment>(".", Expr, ""));
449 }
450 
451 static OutputSection *findByName(ArrayRef<BaseCommand *> Vec,
452                                  StringRef Name) {
453   for (BaseCommand *Base : Vec)
454     if (auto *Sec = dyn_cast<OutputSection>(Base))
455       if (Sec->Name == Name)
456         return Sec;
457   return nullptr;
458 }
459 
460 // Add sections that didn't match any sections command.
461 void LinkerScript::addOrphanSections(OutputSectionFactory &Factory) {
462   unsigned End = SectionCommands.size();
463 
464   for (InputSectionBase *S : InputSections) {
465     if (!S->Live || S->Parent)
466       continue;
467 
468     StringRef Name = getOutputSectionName(S->Name);
469     log(toString(S) + " is being placed in '" + Name + "'");
470 
471     if (OutputSection *Sec =
472             findByName(makeArrayRef(SectionCommands).slice(0, End), Name)) {
473       Sec->addSection(cast<InputSection>(S));
474       continue;
475     }
476 
477     if (OutputSection *OS = Factory.addInputSec(S, Name))
478       SectionCommands.push_back(OS);
479     assert(S->getOutputSection()->SectionIndex == INT_MAX);
480   }
481 }
482 
483 uint64_t LinkerScript::advance(uint64_t Size, unsigned Alignment) {
484   bool IsTbss =
485       (Ctx->OutSec->Flags & SHF_TLS) && Ctx->OutSec->Type == SHT_NOBITS;
486   uint64_t Start = IsTbss ? Dot + Ctx->ThreadBssOffset : Dot;
487   Start = alignTo(Start, Alignment);
488   uint64_t End = Start + Size;
489 
490   if (IsTbss)
491     Ctx->ThreadBssOffset = End - Dot;
492   else
493     Dot = End;
494   return End;
495 }
496 
497 void LinkerScript::output(InputSection *S) {
498   uint64_t Before = advance(0, 1);
499   uint64_t Pos = advance(S->getSize(), S->Alignment);
500   S->OutSecOff = Pos - S->getSize() - Ctx->OutSec->Addr;
501 
502   // Update output section size after adding each section. This is so that
503   // SIZEOF works correctly in the case below:
504   // .foo { *(.aaa) a = SIZEOF(.foo); *(.bbb) }
505   Ctx->OutSec->Size = Pos - Ctx->OutSec->Addr;
506 
507   // If there is a memory region associated with this input section, then
508   // place the section in that region and update the region index.
509   if (Ctx->MemRegion) {
510     uint64_t &CurOffset = Ctx->MemRegionOffset[Ctx->MemRegion];
511     CurOffset += Pos - Before;
512     uint64_t CurSize = CurOffset - Ctx->MemRegion->Origin;
513     if (CurSize > Ctx->MemRegion->Length) {
514       uint64_t OverflowAmt = CurSize - Ctx->MemRegion->Length;
515       error("section '" + Ctx->OutSec->Name + "' will not fit in region '" +
516             Ctx->MemRegion->Name + "': overflowed by " + Twine(OverflowAmt) +
517             " bytes");
518     }
519   }
520 }
521 
522 void LinkerScript::switchTo(OutputSection *Sec) {
523   if (Ctx->OutSec == Sec)
524     return;
525 
526   Ctx->OutSec = Sec;
527   Ctx->OutSec->Addr = advance(0, Ctx->OutSec->Alignment);
528 
529   // If neither AT nor AT> is specified for an allocatable section, the linker
530   // will set the LMA such that the difference between VMA and LMA for the
531   // section is the same as the preceding output section in the same region
532   // https://sourceware.org/binutils/docs-2.20/ld/Output-Section-LMA.html
533   if (Ctx->LMAOffset)
534     Ctx->OutSec->LMAOffset = Ctx->LMAOffset();
535 }
536 
537 // This function searches for a memory region to place the given output
538 // section in. If found, a pointer to the appropriate memory region is
539 // returned. Otherwise, a nullptr is returned.
540 MemoryRegion *LinkerScript::findMemoryRegion(OutputSection *Sec) {
541   // If a memory region name was specified in the output section command,
542   // then try to find that region first.
543   if (!Sec->MemoryRegionName.empty()) {
544     auto It = MemoryRegions.find(Sec->MemoryRegionName);
545     if (It != MemoryRegions.end())
546       return It->second;
547     error("memory region '" + Sec->MemoryRegionName + "' not declared");
548     return nullptr;
549   }
550 
551   // If at least one memory region is defined, all sections must
552   // belong to some memory region. Otherwise, we don't need to do
553   // anything for memory regions.
554   if (MemoryRegions.empty())
555     return nullptr;
556 
557   // See if a region can be found by matching section flags.
558   for (auto &Pair : MemoryRegions) {
559     MemoryRegion *M = Pair.second;
560     if ((M->Flags & Sec->Flags) && (M->NegFlags & Sec->Flags) == 0)
561       return M;
562   }
563 
564   // Otherwise, no suitable region was found.
565   if (Sec->Flags & SHF_ALLOC)
566     error("no memory region specified for section '" + Sec->Name + "'");
567   return nullptr;
568 }
569 
570 // This function assigns offsets to input sections and an output section
571 // for a single sections command (e.g. ".text { *(.text); }").
572 void LinkerScript::assignOffsets(OutputSection *Sec) {
573   if (!(Sec->Flags & SHF_ALLOC))
574     Dot = 0;
575   else if (Sec->AddrExpr)
576     setDot(Sec->AddrExpr, Sec->Location, false);
577 
578   Ctx->MemRegion = Sec->MemRegion;
579   if (Ctx->MemRegion)
580     Dot = Ctx->MemRegionOffset[Ctx->MemRegion];
581 
582   if (Sec->LMAExpr) {
583     uint64_t D = Dot;
584     Ctx->LMAOffset = [=] { return Sec->LMAExpr().getValue() - D; };
585   }
586 
587   switchTo(Sec);
588 
589   // We do not support custom layout for compressed debug sectons.
590   // At this point we already know their size and have compressed content.
591   if (Ctx->OutSec->Flags & SHF_COMPRESSED)
592     return;
593 
594   // We visited SectionsCommands from processSectionCommands to
595   // layout sections. Now, we visit SectionsCommands again to fix
596   // section offsets.
597   for (BaseCommand *Base : Sec->SectionCommands) {
598     // This handles the assignments to symbol or to the dot.
599     if (auto *Cmd = dyn_cast<SymbolAssignment>(Base)) {
600       assignSymbol(Cmd, true);
601       continue;
602     }
603 
604     // Handle BYTE(), SHORT(), LONG(), or QUAD().
605     if (auto *Cmd = dyn_cast<ByteCommand>(Base)) {
606       Cmd->Offset = Dot - Ctx->OutSec->Addr;
607       Dot += Cmd->Size;
608       Ctx->OutSec->Size = Dot - Ctx->OutSec->Addr;
609       continue;
610     }
611 
612     // Handle ASSERT().
613     if (auto *Cmd = dyn_cast<AssertCommand>(Base)) {
614       Cmd->Expression();
615       continue;
616     }
617 
618     // Handle a single input section description command.
619     // It calculates and assigns the offsets for each section and also
620     // updates the output section size.
621     auto *Cmd = cast<InputSectionDescription>(Base);
622     for (InputSection *Sec : Cmd->Sections) {
623       // We tentatively added all synthetic sections at the beginning and
624       // removed empty ones afterwards (because there is no way to know
625       // whether they were going be empty or not other than actually running
626       // linker scripts.) We need to ignore remains of empty sections.
627       if (auto *S = dyn_cast<SyntheticSection>(Sec))
628         if (S->empty())
629           continue;
630 
631       if (!Sec->Live)
632         continue;
633       assert(Ctx->OutSec == Sec->getParent());
634       output(Sec);
635     }
636   }
637 }
638 
639 void LinkerScript::removeEmptyCommands() {
640   // It is common practice to use very generic linker scripts. So for any
641   // given run some of the output sections in the script will be empty.
642   // We could create corresponding empty output sections, but that would
643   // clutter the output.
644   // We instead remove trivially empty sections. The bfd linker seems even
645   // more aggressive at removing them.
646   llvm::erase_if(SectionCommands, [&](BaseCommand *Base) {
647     if (auto *Sec = dyn_cast<OutputSection>(Base))
648       return !Sec->Live;
649     return false;
650   });
651 }
652 
653 static bool isAllSectionDescription(const OutputSection &Cmd) {
654   for (BaseCommand *Base : Cmd.SectionCommands)
655     if (!isa<InputSectionDescription>(*Base))
656       return false;
657   return true;
658 }
659 
660 void LinkerScript::adjustSectionsBeforeSorting() {
661   // If the output section contains only symbol assignments, create a
662   // corresponding output section. The issue is what to do with linker script
663   // like ".foo : { symbol = 42; }". One option would be to convert it to
664   // "symbol = 42;". That is, move the symbol out of the empty section
665   // description. That seems to be what bfd does for this simple case. The
666   // problem is that this is not completely general. bfd will give up and
667   // create a dummy section too if there is a ". = . + 1" inside the section
668   // for example.
669   // Given that we want to create the section, we have to worry what impact
670   // it will have on the link. For example, if we just create a section with
671   // 0 for flags, it would change which PT_LOADs are created.
672   // We could remember that that particular section is dummy and ignore it in
673   // other parts of the linker, but unfortunately there are quite a few places
674   // that would need to change:
675   //   * The program header creation.
676   //   * The orphan section placement.
677   //   * The address assignment.
678   // The other option is to pick flags that minimize the impact the section
679   // will have on the rest of the linker. That is why we copy the flags from
680   // the previous sections. Only a few flags are needed to keep the impact low.
681   uint64_t Flags = SHF_ALLOC;
682 
683   for (BaseCommand *Cmd : SectionCommands) {
684     auto *Sec = dyn_cast<OutputSection>(Cmd);
685     if (!Sec)
686       continue;
687     if (Sec->Live) {
688       Flags = Sec->Flags & (SHF_ALLOC | SHF_WRITE | SHF_EXECINSTR);
689       continue;
690     }
691 
692     if (isAllSectionDescription(*Sec))
693       continue;
694 
695     Sec->Live = true;
696     Sec->Flags = Flags;
697   }
698 }
699 
700 void LinkerScript::adjustSectionsAfterSorting() {
701   // Try and find an appropriate memory region to assign offsets in.
702   for (BaseCommand *Base : SectionCommands) {
703     if (auto *Sec = dyn_cast<OutputSection>(Base)) {
704       if (!Sec->Live)
705         continue;
706       Sec->MemRegion = findMemoryRegion(Sec);
707       // Handle align (e.g. ".foo : ALIGN(16) { ... }").
708       if (Sec->AlignExpr)
709         Sec->Alignment =
710             std::max<uint32_t>(Sec->Alignment, Sec->AlignExpr().getValue());
711     }
712   }
713 
714   // If output section command doesn't specify any segments,
715   // and we haven't previously assigned any section to segment,
716   // then we simply assign section to the very first load segment.
717   // Below is an example of such linker script:
718   // PHDRS { seg PT_LOAD; }
719   // SECTIONS { .aaa : { *(.aaa) } }
720   std::vector<StringRef> DefPhdrs;
721   auto FirstPtLoad =
722       std::find_if(PhdrsCommands.begin(), PhdrsCommands.end(),
723                    [](const PhdrsCommand &Cmd) { return Cmd.Type == PT_LOAD; });
724   if (FirstPtLoad != PhdrsCommands.end())
725     DefPhdrs.push_back(FirstPtLoad->Name);
726 
727   // Walk the commands and propagate the program headers to commands that don't
728   // explicitly specify them.
729   for (BaseCommand *Base : SectionCommands) {
730     auto *Sec = dyn_cast<OutputSection>(Base);
731     if (!Sec)
732       continue;
733 
734     if (Sec->Phdrs.empty()) {
735       // To match the bfd linker script behaviour, only propagate program
736       // headers to sections that are allocated.
737       if (Sec->Flags & SHF_ALLOC)
738         Sec->Phdrs = DefPhdrs;
739     } else {
740       DefPhdrs = Sec->Phdrs;
741     }
742   }
743 }
744 
745 static OutputSection *findFirstSection(PhdrEntry *Load) {
746   for (OutputSection *Sec : OutputSections)
747     if (Sec->PtLoad == Load)
748       return Sec;
749   return nullptr;
750 }
751 
752 // Try to find an address for the file and program headers output sections,
753 // which were unconditionally added to the first PT_LOAD segment earlier.
754 //
755 // When using the default layout, we check if the headers fit below the first
756 // allocated section. When using a linker script, we also check if the headers
757 // are covered by the output section. This allows omitting the headers by not
758 // leaving enough space for them in the linker script; this pattern is common
759 // in embedded systems.
760 //
761 // If there isn't enough space for these sections, we'll remove them from the
762 // PT_LOAD segment, and we'll also remove the PT_PHDR segment.
763 void LinkerScript::allocateHeaders(std::vector<PhdrEntry *> &Phdrs) {
764   uint64_t Min = std::numeric_limits<uint64_t>::max();
765   for (OutputSection *Sec : OutputSections)
766     if (Sec->Flags & SHF_ALLOC)
767       Min = std::min<uint64_t>(Min, Sec->Addr);
768 
769   auto It = llvm::find_if(
770       Phdrs, [](const PhdrEntry *E) { return E->p_type == PT_LOAD; });
771   if (It == Phdrs.end())
772     return;
773   PhdrEntry *FirstPTLoad = *It;
774 
775   uint64_t HeaderSize = getHeaderSize();
776   // When linker script with SECTIONS is being used, don't output headers
777   // unless there's a space for them.
778   uint64_t Base = HasSectionsCommand ? alignDown(Min, Config->MaxPageSize) : 0;
779   if (HeaderSize <= Min - Base || Script->hasPhdrsCommands()) {
780     Min = alignDown(Min - HeaderSize, Config->MaxPageSize);
781     Out::ElfHeader->Addr = Min;
782     Out::ProgramHeaders->Addr = Min + Out::ElfHeader->Size;
783     return;
784   }
785 
786   Out::ElfHeader->PtLoad = nullptr;
787   Out::ProgramHeaders->PtLoad = nullptr;
788   FirstPTLoad->FirstSec = findFirstSection(FirstPTLoad);
789 
790   llvm::erase_if(Phdrs,
791                  [](const PhdrEntry *E) { return E->p_type == PT_PHDR; });
792 }
793 
794 LinkerScript::AddressState::AddressState() {
795   for (auto &MRI : Script->MemoryRegions) {
796     const MemoryRegion *MR = MRI.second;
797     MemRegionOffset[MR] = MR->Origin;
798   }
799 }
800 
801 // Assign addresses as instructed by linker script SECTIONS sub-commands.
802 void LinkerScript::assignAddresses() {
803   // By default linker scripts use an initial value of 0 for '.', but prefer
804   // -image-base if set.
805   Dot = Config->ImageBase ? *Config->ImageBase : 0;
806 
807   auto Deleter = make_unique<AddressState>();
808   Ctx = Deleter.get();
809   ErrorOnMissingSection = true;
810   switchTo(Aether);
811 
812   for (BaseCommand *Base : SectionCommands) {
813     if (auto *Cmd = dyn_cast<SymbolAssignment>(Base)) {
814       assignSymbol(Cmd, false);
815       continue;
816     }
817 
818     if (auto *Cmd = dyn_cast<AssertCommand>(Base)) {
819       Cmd->Expression();
820       continue;
821     }
822 
823     assignOffsets(cast<OutputSection>(Base));
824   }
825   Ctx = nullptr;
826 }
827 
828 // Creates program headers as instructed by PHDRS linker script command.
829 std::vector<PhdrEntry *> LinkerScript::createPhdrs() {
830   std::vector<PhdrEntry *> Ret;
831 
832   // Process PHDRS and FILEHDR keywords because they are not
833   // real output sections and cannot be added in the following loop.
834   for (const PhdrsCommand &Cmd : PhdrsCommands) {
835     PhdrEntry *Phdr = make<PhdrEntry>(Cmd.Type, Cmd.Flags ? *Cmd.Flags : PF_R);
836 
837     if (Cmd.HasFilehdr)
838       Phdr->add(Out::ElfHeader);
839     if (Cmd.HasPhdrs)
840       Phdr->add(Out::ProgramHeaders);
841 
842     if (Cmd.LMAExpr) {
843       Phdr->p_paddr = Cmd.LMAExpr().getValue();
844       Phdr->HasLMA = true;
845     }
846     Ret.push_back(Phdr);
847   }
848 
849   // Add output sections to program headers.
850   for (OutputSection *Sec : OutputSections) {
851     // Assign headers specified by linker script
852     for (size_t Id : getPhdrIndices(Sec)) {
853       Ret[Id]->add(Sec);
854       if (!PhdrsCommands[Id].Flags.hasValue())
855         Ret[Id]->p_flags |= Sec->getPhdrFlags();
856     }
857   }
858   return Ret;
859 }
860 
861 // Returns true if we should emit an .interp section.
862 //
863 // We usually do. But if PHDRS commands are given, and
864 // no PT_INTERP is there, there's no place to emit an
865 // .interp, so we don't do that in that case.
866 bool LinkerScript::needsInterpSection() {
867   if (PhdrsCommands.empty())
868     return true;
869   for (PhdrsCommand &Cmd : PhdrsCommands)
870     if (Cmd.Type == PT_INTERP)
871       return true;
872   return false;
873 }
874 
875 ExprValue LinkerScript::getSymbolValue(StringRef Name, const Twine &Loc) {
876   if (Name == ".") {
877     if (Ctx)
878       return {Ctx->OutSec, false, Dot - Ctx->OutSec->Addr, Loc};
879     error(Loc + ": unable to get location counter value");
880     return 0;
881   }
882 
883   if (auto *Sym = dyn_cast_or_null<DefinedRegular>(Symtab->find(Name)))
884     return {Sym->Section, false, Sym->Value, Loc};
885 
886   error(Loc + ": symbol not found: " + Name);
887   return 0;
888 }
889 
890 // Returns the index of the segment named Name.
891 static Optional<size_t> getPhdrIndex(ArrayRef<PhdrsCommand> Vec,
892                                      StringRef Name) {
893   for (size_t I = 0; I < Vec.size(); ++I)
894     if (Vec[I].Name == Name)
895       return I;
896   return None;
897 }
898 
899 // Returns indices of ELF headers containing specific section. Each index is a
900 // zero based number of ELF header listed within PHDRS {} script block.
901 std::vector<size_t> LinkerScript::getPhdrIndices(OutputSection *Cmd) {
902   std::vector<size_t> Ret;
903 
904   for (StringRef S : Cmd->Phdrs) {
905     if (Optional<size_t> Idx = getPhdrIndex(PhdrsCommands, S))
906       Ret.push_back(*Idx);
907     else if (S != "NONE")
908       error(Cmd->Location + ": section header '" + S +
909             "' is not listed in PHDRS");
910   }
911   return Ret;
912 }
913