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Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001//===- lib/MC/MachObjectWriter.cpp - Mach-O File Writer -------------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9
10#include "llvm/MC/MachObjectWriter.h"
11#include "llvm/ADT/StringMap.h"
12#include "llvm/ADT/Twine.h"
13#include "llvm/MC/MCAssembler.h"
Daniel Dunbar207e06e2010-03-24 03:43:40 +000014#include "llvm/MC/MCAsmLayout.h"
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +000015#include "llvm/MC/MCExpr.h"
16#include "llvm/MC/MCObjectWriter.h"
17#include "llvm/MC/MCSectionMachO.h"
18#include "llvm/MC/MCSymbol.h"
19#include "llvm/MC/MCValue.h"
20#include "llvm/Support/ErrorHandling.h"
21#include "llvm/Support/MachO.h"
22#include "llvm/Target/TargetAsmBackend.h"
23
24// FIXME: Gross.
25#include "../Target/X86/X86FixupKinds.h"
26
27#include <vector>
28using namespace llvm;
29
30static unsigned getFixupKindLog2Size(unsigned Kind) {
31 switch (Kind) {
32 default: llvm_unreachable("invalid fixup kind!");
33 case X86::reloc_pcrel_1byte:
34 case FK_Data_1: return 0;
35 case FK_Data_2: return 1;
36 case X86::reloc_pcrel_4byte:
37 case X86::reloc_riprel_4byte:
Daniel Dunbar602b40f2010-03-19 18:07:55 +000038 case X86::reloc_riprel_4byte_movq_load:
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +000039 case FK_Data_4: return 2;
40 case FK_Data_8: return 3;
41 }
42}
43
44static bool isFixupKindPCRel(unsigned Kind) {
45 switch (Kind) {
46 default:
47 return false;
48 case X86::reloc_pcrel_1byte:
49 case X86::reloc_pcrel_4byte:
50 case X86::reloc_riprel_4byte:
Daniel Dunbar602b40f2010-03-19 18:07:55 +000051 case X86::reloc_riprel_4byte_movq_load:
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +000052 return true;
53 }
54}
55
Daniel Dunbar602b40f2010-03-19 18:07:55 +000056static bool isFixupKindRIPRel(unsigned Kind) {
57 return Kind == X86::reloc_riprel_4byte ||
58 Kind == X86::reloc_riprel_4byte_movq_load;
59}
60
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +000061namespace {
62
63class MachObjectWriterImpl {
64 // See <mach-o/loader.h>.
65 enum {
66 Header_Magic32 = 0xFEEDFACE,
67 Header_Magic64 = 0xFEEDFACF
68 };
69
70 enum {
71 Header32Size = 28,
72 Header64Size = 32,
73 SegmentLoadCommand32Size = 56,
74 SegmentLoadCommand64Size = 72,
75 Section32Size = 68,
76 Section64Size = 80,
77 SymtabLoadCommandSize = 24,
78 DysymtabLoadCommandSize = 80,
79 Nlist32Size = 12,
80 Nlist64Size = 16,
81 RelocationInfoSize = 8
82 };
83
84 enum HeaderFileType {
85 HFT_Object = 0x1
86 };
87
88 enum HeaderFlags {
89 HF_SubsectionsViaSymbols = 0x2000
90 };
91
92 enum LoadCommandType {
93 LCT_Segment = 0x1,
94 LCT_Symtab = 0x2,
95 LCT_Dysymtab = 0xb,
96 LCT_Segment64 = 0x19
97 };
98
99 // See <mach-o/nlist.h>.
100 enum SymbolTypeType {
101 STT_Undefined = 0x00,
102 STT_Absolute = 0x02,
103 STT_Section = 0x0e
104 };
105
106 enum SymbolTypeFlags {
107 // If any of these bits are set, then the entry is a stab entry number (see
108 // <mach-o/stab.h>. Otherwise the other masks apply.
109 STF_StabsEntryMask = 0xe0,
110
111 STF_TypeMask = 0x0e,
112 STF_External = 0x01,
113 STF_PrivateExtern = 0x10
114 };
115
116 /// IndirectSymbolFlags - Flags for encoding special values in the indirect
117 /// symbol entry.
118 enum IndirectSymbolFlags {
119 ISF_Local = 0x80000000,
120 ISF_Absolute = 0x40000000
121 };
122
123 /// RelocationFlags - Special flags for addresses.
124 enum RelocationFlags {
125 RF_Scattered = 0x80000000
126 };
127
128 enum RelocationInfoType {
129 RIT_Vanilla = 0,
130 RIT_Pair = 1,
131 RIT_Difference = 2,
132 RIT_PreboundLazyPointer = 3,
133 RIT_LocalDifference = 4
134 };
135
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000136 /// X86_64 uses its own relocation types.
137 enum RelocationInfoTypeX86_64 {
138 RIT_X86_64_Unsigned = 0,
139 RIT_X86_64_Signed = 1,
140 RIT_X86_64_Branch = 2,
141 RIT_X86_64_GOTLoad = 3,
142 RIT_X86_64_GOT = 4,
143 RIT_X86_64_Subtractor = 5,
144 RIT_X86_64_Signed1 = 6,
145 RIT_X86_64_Signed2 = 7,
146 RIT_X86_64_Signed4 = 8
147 };
148
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000149 /// MachSymbolData - Helper struct for containing some precomputed information
150 /// on symbols.
151 struct MachSymbolData {
152 MCSymbolData *SymbolData;
153 uint64_t StringIndex;
154 uint8_t SectionIndex;
155
156 // Support lexicographic sorting.
157 bool operator<(const MachSymbolData &RHS) const {
158 const std::string &Name = SymbolData->getSymbol().getName();
159 return Name < RHS.SymbolData->getSymbol().getName();
160 }
161 };
162
163 /// @name Relocation Data
164 /// @{
165
166 struct MachRelocationEntry {
167 uint32_t Word0;
168 uint32_t Word1;
169 };
170
171 llvm::DenseMap<const MCSectionData*,
172 std::vector<MachRelocationEntry> > Relocations;
173
174 /// @}
175 /// @name Symbol Table Data
176 /// @{
177
178 SmallString<256> StringTable;
179 std::vector<MachSymbolData> LocalSymbolData;
180 std::vector<MachSymbolData> ExternalSymbolData;
181 std::vector<MachSymbolData> UndefinedSymbolData;
182
183 /// @}
184
185 MachObjectWriter *Writer;
186
187 raw_ostream &OS;
188
189 unsigned Is64Bit : 1;
190
191public:
192 MachObjectWriterImpl(MachObjectWriter *_Writer, bool _Is64Bit)
193 : Writer(_Writer), OS(Writer->getStream()), Is64Bit(_Is64Bit) {
194 }
195
196 void Write8(uint8_t Value) { Writer->Write8(Value); }
197 void Write16(uint16_t Value) { Writer->Write16(Value); }
198 void Write32(uint32_t Value) { Writer->Write32(Value); }
199 void Write64(uint64_t Value) { Writer->Write64(Value); }
200 void WriteZeros(unsigned N) { Writer->WriteZeros(N); }
201 void WriteBytes(StringRef Str, unsigned ZeroFillSize = 0) {
202 Writer->WriteBytes(Str, ZeroFillSize);
203 }
204
205 void WriteHeader(unsigned NumLoadCommands, unsigned LoadCommandsSize,
206 bool SubsectionsViaSymbols) {
207 uint32_t Flags = 0;
208
209 if (SubsectionsViaSymbols)
210 Flags |= HF_SubsectionsViaSymbols;
211
212 // struct mach_header (28 bytes) or
213 // struct mach_header_64 (32 bytes)
214
215 uint64_t Start = OS.tell();
216 (void) Start;
217
218 Write32(Is64Bit ? Header_Magic64 : Header_Magic32);
219
220 // FIXME: Support cputype.
221 Write32(Is64Bit ? MachO::CPUTypeX86_64 : MachO::CPUTypeI386);
222 // FIXME: Support cpusubtype.
223 Write32(MachO::CPUSubType_I386_ALL);
224 Write32(HFT_Object);
225 Write32(NumLoadCommands); // Object files have a single load command, the
226 // segment.
227 Write32(LoadCommandsSize);
228 Write32(Flags);
229 if (Is64Bit)
230 Write32(0); // reserved
231
232 assert(OS.tell() - Start == Is64Bit ? Header64Size : Header32Size);
233 }
234
235 /// WriteSegmentLoadCommand - Write a segment load command.
236 ///
237 /// \arg NumSections - The number of sections in this segment.
238 /// \arg SectionDataSize - The total size of the sections.
239 void WriteSegmentLoadCommand(unsigned NumSections,
240 uint64_t VMSize,
241 uint64_t SectionDataStartOffset,
242 uint64_t SectionDataSize) {
243 // struct segment_command (56 bytes) or
244 // struct segment_command_64 (72 bytes)
245
246 uint64_t Start = OS.tell();
247 (void) Start;
248
249 unsigned SegmentLoadCommandSize = Is64Bit ? SegmentLoadCommand64Size :
250 SegmentLoadCommand32Size;
251 Write32(Is64Bit ? LCT_Segment64 : LCT_Segment);
252 Write32(SegmentLoadCommandSize +
253 NumSections * (Is64Bit ? Section64Size : Section32Size));
254
255 WriteBytes("", 16);
256 if (Is64Bit) {
257 Write64(0); // vmaddr
258 Write64(VMSize); // vmsize
259 Write64(SectionDataStartOffset); // file offset
260 Write64(SectionDataSize); // file size
261 } else {
262 Write32(0); // vmaddr
263 Write32(VMSize); // vmsize
264 Write32(SectionDataStartOffset); // file offset
265 Write32(SectionDataSize); // file size
266 }
267 Write32(0x7); // maxprot
268 Write32(0x7); // initprot
269 Write32(NumSections);
270 Write32(0); // flags
271
272 assert(OS.tell() - Start == SegmentLoadCommandSize);
273 }
274
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000275 void WriteSection(const MCAssembler &Asm, const MCAsmLayout &Layout,
276 const MCSectionData &SD, uint64_t FileOffset,
277 uint64_t RelocationsStart, unsigned NumRelocations) {
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000278 // The offset is unused for virtual sections.
279 if (Asm.getBackend().isVirtualSection(SD.getSection())) {
280 assert(SD.getFileSize() == 0 && "Invalid file size!");
281 FileOffset = 0;
282 }
283
284 // struct section (68 bytes) or
285 // struct section_64 (80 bytes)
286
287 uint64_t Start = OS.tell();
288 (void) Start;
289
290 // FIXME: cast<> support!
291 const MCSectionMachO &Section =
292 static_cast<const MCSectionMachO&>(SD.getSection());
293 WriteBytes(Section.getSectionName(), 16);
294 WriteBytes(Section.getSegmentName(), 16);
295 if (Is64Bit) {
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000296 Write64(Layout.getSectionAddress(&SD)); // address
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000297 Write64(SD.getSize()); // size
298 } else {
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000299 Write32(Layout.getSectionAddress(&SD)); // address
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000300 Write32(SD.getSize()); // size
301 }
302 Write32(FileOffset);
303
304 unsigned Flags = Section.getTypeAndAttributes();
305 if (SD.hasInstructions())
306 Flags |= MCSectionMachO::S_ATTR_SOME_INSTRUCTIONS;
307
308 assert(isPowerOf2_32(SD.getAlignment()) && "Invalid alignment!");
309 Write32(Log2_32(SD.getAlignment()));
310 Write32(NumRelocations ? RelocationsStart : 0);
311 Write32(NumRelocations);
312 Write32(Flags);
313 Write32(0); // reserved1
314 Write32(Section.getStubSize()); // reserved2
315 if (Is64Bit)
316 Write32(0); // reserved3
317
318 assert(OS.tell() - Start == Is64Bit ? Section64Size : Section32Size);
319 }
320
321 void WriteSymtabLoadCommand(uint32_t SymbolOffset, uint32_t NumSymbols,
322 uint32_t StringTableOffset,
323 uint32_t StringTableSize) {
324 // struct symtab_command (24 bytes)
325
326 uint64_t Start = OS.tell();
327 (void) Start;
328
329 Write32(LCT_Symtab);
330 Write32(SymtabLoadCommandSize);
331 Write32(SymbolOffset);
332 Write32(NumSymbols);
333 Write32(StringTableOffset);
334 Write32(StringTableSize);
335
336 assert(OS.tell() - Start == SymtabLoadCommandSize);
337 }
338
339 void WriteDysymtabLoadCommand(uint32_t FirstLocalSymbol,
340 uint32_t NumLocalSymbols,
341 uint32_t FirstExternalSymbol,
342 uint32_t NumExternalSymbols,
343 uint32_t FirstUndefinedSymbol,
344 uint32_t NumUndefinedSymbols,
345 uint32_t IndirectSymbolOffset,
346 uint32_t NumIndirectSymbols) {
347 // struct dysymtab_command (80 bytes)
348
349 uint64_t Start = OS.tell();
350 (void) Start;
351
352 Write32(LCT_Dysymtab);
353 Write32(DysymtabLoadCommandSize);
354 Write32(FirstLocalSymbol);
355 Write32(NumLocalSymbols);
356 Write32(FirstExternalSymbol);
357 Write32(NumExternalSymbols);
358 Write32(FirstUndefinedSymbol);
359 Write32(NumUndefinedSymbols);
360 Write32(0); // tocoff
361 Write32(0); // ntoc
362 Write32(0); // modtaboff
363 Write32(0); // nmodtab
364 Write32(0); // extrefsymoff
365 Write32(0); // nextrefsyms
366 Write32(IndirectSymbolOffset);
367 Write32(NumIndirectSymbols);
368 Write32(0); // extreloff
369 Write32(0); // nextrel
370 Write32(0); // locreloff
371 Write32(0); // nlocrel
372
373 assert(OS.tell() - Start == DysymtabLoadCommandSize);
374 }
375
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000376 void WriteNlist(MachSymbolData &MSD, const MCAsmLayout &Layout) {
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000377 MCSymbolData &Data = *MSD.SymbolData;
378 const MCSymbol &Symbol = Data.getSymbol();
379 uint8_t Type = 0;
380 uint16_t Flags = Data.getFlags();
381 uint32_t Address = 0;
382
383 // Set the N_TYPE bits. See <mach-o/nlist.h>.
384 //
385 // FIXME: Are the prebound or indirect fields possible here?
386 if (Symbol.isUndefined())
387 Type = STT_Undefined;
388 else if (Symbol.isAbsolute())
389 Type = STT_Absolute;
390 else
391 Type = STT_Section;
392
393 // FIXME: Set STAB bits.
394
395 if (Data.isPrivateExtern())
396 Type |= STF_PrivateExtern;
397
398 // Set external bit.
399 if (Data.isExternal() || Symbol.isUndefined())
400 Type |= STF_External;
401
402 // Compute the symbol address.
403 if (Symbol.isDefined()) {
404 if (Symbol.isAbsolute()) {
405 llvm_unreachable("FIXME: Not yet implemented!");
406 } else {
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000407 Address = Layout.getSymbolAddress(&Data);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000408 }
409 } else if (Data.isCommon()) {
410 // Common symbols are encoded with the size in the address
411 // field, and their alignment in the flags.
412 Address = Data.getCommonSize();
413
414 // Common alignment is packed into the 'desc' bits.
415 if (unsigned Align = Data.getCommonAlignment()) {
416 unsigned Log2Size = Log2_32(Align);
417 assert((1U << Log2Size) == Align && "Invalid 'common' alignment!");
418 if (Log2Size > 15)
419 llvm_report_error("invalid 'common' alignment '" +
420 Twine(Align) + "'");
421 // FIXME: Keep this mask with the SymbolFlags enumeration.
422 Flags = (Flags & 0xF0FF) | (Log2Size << 8);
423 }
424 }
425
426 // struct nlist (12 bytes)
427
428 Write32(MSD.StringIndex);
429 Write8(Type);
430 Write8(MSD.SectionIndex);
431
432 // The Mach-O streamer uses the lowest 16-bits of the flags for the 'desc'
433 // value.
434 Write16(Flags);
435 if (Is64Bit)
436 Write64(Address);
437 else
438 Write32(Address);
439 }
440
Daniel Dunbar35b06572010-03-22 23:16:43 +0000441 // FIXME: We really need to improve the relocation validation. Basically, we
442 // want to implement a separate computation which evaluates the relocation
443 // entry as the linker would, and verifies that the resultant fixup value is
444 // exactly what the encoder wanted. This will catch several classes of
445 // problems:
446 //
447 // - Relocation entry bugs, the two algorithms are unlikely to have the same
448 // exact bug.
449 //
450 // - Relaxation issues, where we forget to relax something.
451 //
452 // - Input errors, where something cannot be correctly encoded. 'as' allows
453 // these through in many cases.
454
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000455 void RecordX86_64Relocation(const MCAssembler &Asm, const MCAsmLayout &Layout,
Daniel Dunbarb7514182010-03-22 20:35:50 +0000456 const MCFragment *Fragment,
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000457 const MCAsmFixup &Fixup, MCValue Target,
458 uint64_t &FixedValue) {
459 unsigned IsPCRel = isFixupKindPCRel(Fixup.Kind);
460 unsigned IsRIPRel = isFixupKindRIPRel(Fixup.Kind);
461 unsigned Log2Size = getFixupKindLog2Size(Fixup.Kind);
462
463 // See <reloc.h>.
Daniel Dunbarb7514182010-03-22 20:35:50 +0000464 uint32_t Address = Fragment->getOffset() + Fixup.Offset;
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000465 int64_t Value = 0;
466 unsigned Index = 0;
467 unsigned IsExtern = 0;
468 unsigned Type = 0;
469
470 Value = Target.getConstant();
471
472 if (IsPCRel) {
473 // Compensate for the relocation offset, Darwin x86_64 relocations only
474 // have the addend and appear to have attempted to define it to be the
475 // actual expression addend without the PCrel bias. However, instructions
476 // with data following the relocation are not accomodated for (see comment
477 // below regarding SIGNED{1,2,4}), so it isn't exactly that either.
478 Value += 1 << Log2Size;
479 }
480
481 if (Target.isAbsolute()) { // constant
482 // SymbolNum of 0 indicates the absolute section.
483 Type = RIT_X86_64_Unsigned;
484 Index = 0;
485
486 // FIXME: I believe this is broken, I don't think the linker can
487 // understand it. I think it would require a local relocation, but I'm not
488 // sure if that would work either. The official way to get an absolute
489 // PCrel relocation is to use an absolute symbol (which we don't support
490 // yet).
491 if (IsPCRel) {
492 IsExtern = 1;
493 Type = RIT_X86_64_Branch;
494 }
495 } else if (Target.getSymB()) { // A - B + constant
496 const MCSymbol *A = &Target.getSymA()->getSymbol();
497 MCSymbolData &A_SD = Asm.getSymbolData(*A);
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000498 const MCSymbolData *A_Base = Asm.getAtom(Layout, &A_SD);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000499
500 const MCSymbol *B = &Target.getSymB()->getSymbol();
501 MCSymbolData &B_SD = Asm.getSymbolData(*B);
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000502 const MCSymbolData *B_Base = Asm.getAtom(Layout, &B_SD);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000503
504 // Neither symbol can be modified.
505 if (Target.getSymA()->getKind() != MCSymbolRefExpr::VK_None ||
506 Target.getSymB()->getKind() != MCSymbolRefExpr::VK_None)
507 llvm_report_error("unsupported relocation of modified symbol");
508
509 // We don't support PCrel relocations of differences. Darwin 'as' doesn't
510 // implement most of these correctly.
511 if (IsPCRel)
512 llvm_report_error("unsupported pc-relative relocation of difference");
513
514 // We don't currently support any situation where one or both of the
515 // symbols would require a local relocation. This is almost certainly
516 // unused and may not be possible to encode correctly.
517 if (!A_Base || !B_Base)
518 llvm_report_error("unsupported local relocations in difference");
519
520 // Darwin 'as' doesn't emit correct relocations for this (it ends up with
521 // a single SIGNED relocation); reject it for now.
522 if (A_Base == B_Base)
523 llvm_report_error("unsupported relocation with identical base");
524
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000525 Value += Layout.getSymbolAddress(&A_SD) - Layout.getSymbolAddress(A_Base);
526 Value -= Layout.getSymbolAddress(&B_SD) - Layout.getSymbolAddress(B_Base);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000527
528 Index = A_Base->getIndex();
529 IsExtern = 1;
530 Type = RIT_X86_64_Unsigned;
531
532 MachRelocationEntry MRE;
533 MRE.Word0 = Address;
534 MRE.Word1 = ((Index << 0) |
535 (IsPCRel << 24) |
536 (Log2Size << 25) |
537 (IsExtern << 27) |
538 (Type << 28));
Daniel Dunbarb7514182010-03-22 20:35:50 +0000539 Relocations[Fragment->getParent()].push_back(MRE);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000540
541 Index = B_Base->getIndex();
542 IsExtern = 1;
543 Type = RIT_X86_64_Subtractor;
544 } else {
545 const MCSymbol *Symbol = &Target.getSymA()->getSymbol();
546 MCSymbolData &SD = Asm.getSymbolData(*Symbol);
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000547 const MCSymbolData *Base = Asm.getAtom(Layout, &SD);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000548
549 // x86_64 almost always uses external relocations, except when there is no
550 // symbol to use as a base address (a local symbol with no preceeding
551 // non-local symbol).
552 if (Base) {
553 Index = Base->getIndex();
554 IsExtern = 1;
555
556 // Add the local offset, if needed.
557 if (Base != &SD)
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000558 Value += Layout.getSymbolAddress(&SD) - Layout.getSymbolAddress(Base);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000559 } else {
560 // The index is the section ordinal.
561 //
562 // FIXME: O(N)
563 Index = 1;
564 MCAssembler::const_iterator it = Asm.begin(), ie = Asm.end();
565 for (; it != ie; ++it, ++Index)
566 if (&*it == SD.getFragment()->getParent())
567 break;
568 assert(it != ie && "Unable to find section index!");
569 IsExtern = 0;
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000570 Value += Layout.getSymbolAddress(&SD);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000571
572 if (IsPCRel)
573 Value -= Address + (1 << Log2Size);
574 }
575
576 MCSymbolRefExpr::VariantKind Modifier = Target.getSymA()->getKind();
577 if (IsPCRel) {
578 if (IsRIPRel) {
579 if (Modifier == MCSymbolRefExpr::VK_GOTPCREL) {
580 // x86_64 distinguishes movq foo@GOTPCREL so that the linker can
581 // rewrite the movq to an leaq at link time if the symbol ends up in
582 // the same linkage unit.
583 if (unsigned(Fixup.Kind) == X86::reloc_riprel_4byte_movq_load)
584 Type = RIT_X86_64_GOTLoad;
585 else
586 Type = RIT_X86_64_GOT;
587 } else if (Modifier != MCSymbolRefExpr::VK_None)
588 llvm_report_error("unsupported symbol modifier in relocation");
589 else
590 Type = RIT_X86_64_Signed;
591 } else {
592 if (Modifier != MCSymbolRefExpr::VK_None)
593 llvm_report_error("unsupported symbol modifier in branch "
594 "relocation");
595
596 Type = RIT_X86_64_Branch;
597 }
598
599 // The Darwin x86_64 relocation format has a problem where it cannot
600 // encode an address (L<foo> + <constant>) which is outside the atom
601 // containing L<foo>. Generally, this shouldn't occur but it does happen
602 // when we have a RIPrel instruction with data following the relocation
603 // entry (e.g., movb $012, L0(%rip)). Even with the PCrel adjustment
604 // Darwin x86_64 uses, the offset is still negative and the linker has
605 // no way to recognize this.
606 //
607 // To work around this, Darwin uses several special relocation types to
608 // indicate the offsets. However, the specification or implementation of
609 // these seems to also be incomplete; they should adjust the addend as
610 // well based on the actual encoded instruction (the additional bias),
611 // but instead appear to just look at the final offset.
612 if (IsRIPRel) {
613 switch (-(Target.getConstant() + (1 << Log2Size))) {
614 case 1: Type = RIT_X86_64_Signed1; break;
615 case 2: Type = RIT_X86_64_Signed2; break;
616 case 4: Type = RIT_X86_64_Signed4; break;
617 }
618 }
619 } else {
620 if (Modifier == MCSymbolRefExpr::VK_GOT)
621 Type = RIT_X86_64_GOT;
622 else if (Modifier != MCSymbolRefExpr::VK_None)
623 llvm_report_error("unsupported symbol modifier in relocation");
624 else
625 Type = RIT_X86_64_Unsigned;
626 }
627 }
628
629 // x86_64 always writes custom values into the fixups.
630 FixedValue = Value;
631
632 // struct relocation_info (8 bytes)
633 MachRelocationEntry MRE;
634 MRE.Word0 = Address;
635 MRE.Word1 = ((Index << 0) |
636 (IsPCRel << 24) |
637 (Log2Size << 25) |
638 (IsExtern << 27) |
639 (Type << 28));
Daniel Dunbarb7514182010-03-22 20:35:50 +0000640 Relocations[Fragment->getParent()].push_back(MRE);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000641 }
642
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000643 void RecordScatteredRelocation(const MCAssembler &Asm,
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000644 const MCAsmLayout &Layout,
Daniel Dunbarb7514182010-03-22 20:35:50 +0000645 const MCFragment *Fragment,
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000646 const MCAsmFixup &Fixup, MCValue Target,
647 uint64_t &FixedValue) {
Daniel Dunbarb7514182010-03-22 20:35:50 +0000648 uint32_t Address = Fragment->getOffset() + Fixup.Offset;
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000649 unsigned IsPCRel = isFixupKindPCRel(Fixup.Kind);
650 unsigned Log2Size = getFixupKindLog2Size(Fixup.Kind);
651 unsigned Type = RIT_Vanilla;
652
653 // See <reloc.h>.
654 const MCSymbol *A = &Target.getSymA()->getSymbol();
655 MCSymbolData *A_SD = &Asm.getSymbolData(*A);
656
657 if (!A_SD->getFragment())
658 llvm_report_error("symbol '" + A->getName() +
659 "' can not be undefined in a subtraction expression");
660
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000661 uint32_t Value = Layout.getSymbolAddress(A_SD);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000662 uint32_t Value2 = 0;
663
664 if (const MCSymbolRefExpr *B = Target.getSymB()) {
665 MCSymbolData *B_SD = &Asm.getSymbolData(B->getSymbol());
666
667 if (!B_SD->getFragment())
668 llvm_report_error("symbol '" + B->getSymbol().getName() +
669 "' can not be undefined in a subtraction expression");
670
671 // Select the appropriate difference relocation type.
672 //
673 // Note that there is no longer any semantic difference between these two
674 // relocation types from the linkers point of view, this is done solely
675 // for pedantic compatibility with 'as'.
676 Type = A_SD->isExternal() ? RIT_Difference : RIT_LocalDifference;
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000677 Value2 = Layout.getSymbolAddress(B_SD);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000678 }
679
680 // Relocations are written out in reverse order, so the PAIR comes first.
681 if (Type == RIT_Difference || Type == RIT_LocalDifference) {
682 MachRelocationEntry MRE;
683 MRE.Word0 = ((0 << 0) |
684 (RIT_Pair << 24) |
685 (Log2Size << 28) |
686 (IsPCRel << 30) |
687 RF_Scattered);
688 MRE.Word1 = Value2;
Daniel Dunbarb7514182010-03-22 20:35:50 +0000689 Relocations[Fragment->getParent()].push_back(MRE);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000690 }
691
692 MachRelocationEntry MRE;
693 MRE.Word0 = ((Address << 0) |
694 (Type << 24) |
695 (Log2Size << 28) |
696 (IsPCRel << 30) |
697 RF_Scattered);
698 MRE.Word1 = Value;
Daniel Dunbarb7514182010-03-22 20:35:50 +0000699 Relocations[Fragment->getParent()].push_back(MRE);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000700 }
701
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000702 void RecordRelocation(const MCAssembler &Asm, const MCAsmLayout &Layout,
703 const MCFragment *Fragment, const MCAsmFixup &Fixup,
704 MCValue Target, uint64_t &FixedValue) {
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000705 if (Is64Bit) {
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000706 RecordX86_64Relocation(Asm, Layout, Fragment, Fixup, Target, FixedValue);
Daniel Dunbar602b40f2010-03-19 18:07:55 +0000707 return;
708 }
709
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000710 unsigned IsPCRel = isFixupKindPCRel(Fixup.Kind);
711 unsigned Log2Size = getFixupKindLog2Size(Fixup.Kind);
712
713 // If this is a difference or a defined symbol plus an offset, then we need
714 // a scattered relocation entry.
715 uint32_t Offset = Target.getConstant();
716 if (IsPCRel)
717 Offset += 1 << Log2Size;
718 if (Target.getSymB() ||
719 (Target.getSymA() && !Target.getSymA()->getSymbol().isUndefined() &&
720 Offset)) {
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000721 RecordScatteredRelocation(Asm, Layout, Fragment, Fixup,Target,FixedValue);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000722 return;
723 }
724
725 // See <reloc.h>.
Daniel Dunbarb7514182010-03-22 20:35:50 +0000726 uint32_t Address = Fragment->getOffset() + Fixup.Offset;
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000727 uint32_t Value = 0;
728 unsigned Index = 0;
729 unsigned IsExtern = 0;
730 unsigned Type = 0;
731
732 if (Target.isAbsolute()) { // constant
733 // SymbolNum of 0 indicates the absolute section.
734 //
735 // FIXME: Currently, these are never generated (see code below). I cannot
736 // find a case where they are actually emitted.
737 Type = RIT_Vanilla;
738 Value = 0;
739 } else {
740 const MCSymbol *Symbol = &Target.getSymA()->getSymbol();
741 MCSymbolData *SD = &Asm.getSymbolData(*Symbol);
742
743 if (Symbol->isUndefined()) {
744 IsExtern = 1;
745 Index = SD->getIndex();
746 Value = 0;
747 } else {
748 // The index is the section ordinal.
749 //
750 // FIXME: O(N)
751 Index = 1;
752 MCAssembler::const_iterator it = Asm.begin(), ie = Asm.end();
753 for (; it != ie; ++it, ++Index)
754 if (&*it == SD->getFragment()->getParent())
755 break;
756 assert(it != ie && "Unable to find section index!");
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000757 Value = Layout.getSymbolAddress(SD);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000758 }
759
760 Type = RIT_Vanilla;
761 }
762
763 // struct relocation_info (8 bytes)
764 MachRelocationEntry MRE;
765 MRE.Word0 = Address;
766 MRE.Word1 = ((Index << 0) |
767 (IsPCRel << 24) |
768 (Log2Size << 25) |
769 (IsExtern << 27) |
770 (Type << 28));
Daniel Dunbarb7514182010-03-22 20:35:50 +0000771 Relocations[Fragment->getParent()].push_back(MRE);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000772 }
773
774 void BindIndirectSymbols(MCAssembler &Asm) {
775 // This is the point where 'as' creates actual symbols for indirect symbols
776 // (in the following two passes). It would be easier for us to do this
777 // sooner when we see the attribute, but that makes getting the order in the
778 // symbol table much more complicated than it is worth.
779 //
780 // FIXME: Revisit this when the dust settles.
781
782 // Bind non lazy symbol pointers first.
783 for (MCAssembler::indirect_symbol_iterator it = Asm.indirect_symbol_begin(),
784 ie = Asm.indirect_symbol_end(); it != ie; ++it) {
785 // FIXME: cast<> support!
786 const MCSectionMachO &Section =
787 static_cast<const MCSectionMachO&>(it->SectionData->getSection());
788
789 if (Section.getType() != MCSectionMachO::S_NON_LAZY_SYMBOL_POINTERS)
790 continue;
791
792 Asm.getOrCreateSymbolData(*it->Symbol);
793 }
794
795 // Then lazy symbol pointers and symbol stubs.
796 for (MCAssembler::indirect_symbol_iterator it = Asm.indirect_symbol_begin(),
797 ie = Asm.indirect_symbol_end(); it != ie; ++it) {
798 // FIXME: cast<> support!
799 const MCSectionMachO &Section =
800 static_cast<const MCSectionMachO&>(it->SectionData->getSection());
801
802 if (Section.getType() != MCSectionMachO::S_LAZY_SYMBOL_POINTERS &&
803 Section.getType() != MCSectionMachO::S_SYMBOL_STUBS)
804 continue;
805
806 // Set the symbol type to undefined lazy, but only on construction.
807 //
808 // FIXME: Do not hardcode.
809 bool Created;
810 MCSymbolData &Entry = Asm.getOrCreateSymbolData(*it->Symbol, &Created);
811 if (Created)
812 Entry.setFlags(Entry.getFlags() | 0x0001);
813 }
814 }
815
816 /// ComputeSymbolTable - Compute the symbol table data
817 ///
818 /// \param StringTable [out] - The string table data.
819 /// \param StringIndexMap [out] - Map from symbol names to offsets in the
820 /// string table.
821 void ComputeSymbolTable(MCAssembler &Asm, SmallString<256> &StringTable,
822 std::vector<MachSymbolData> &LocalSymbolData,
823 std::vector<MachSymbolData> &ExternalSymbolData,
824 std::vector<MachSymbolData> &UndefinedSymbolData) {
825 // Build section lookup table.
826 DenseMap<const MCSection*, uint8_t> SectionIndexMap;
827 unsigned Index = 1;
828 for (MCAssembler::iterator it = Asm.begin(),
829 ie = Asm.end(); it != ie; ++it, ++Index)
830 SectionIndexMap[&it->getSection()] = Index;
831 assert(Index <= 256 && "Too many sections!");
832
833 // Index 0 is always the empty string.
834 StringMap<uint64_t> StringIndexMap;
835 StringTable += '\x00';
836
837 // Build the symbol arrays and the string table, but only for non-local
838 // symbols.
839 //
840 // The particular order that we collect the symbols and create the string
841 // table, then sort the symbols is chosen to match 'as'. Even though it
842 // doesn't matter for correctness, this is important for letting us diff .o
843 // files.
844 for (MCAssembler::symbol_iterator it = Asm.symbol_begin(),
845 ie = Asm.symbol_end(); it != ie; ++it) {
846 const MCSymbol &Symbol = it->getSymbol();
847
848 // Ignore non-linker visible symbols.
849 if (!Asm.isSymbolLinkerVisible(it))
850 continue;
851
852 if (!it->isExternal() && !Symbol.isUndefined())
853 continue;
854
855 uint64_t &Entry = StringIndexMap[Symbol.getName()];
856 if (!Entry) {
857 Entry = StringTable.size();
858 StringTable += Symbol.getName();
859 StringTable += '\x00';
860 }
861
862 MachSymbolData MSD;
863 MSD.SymbolData = it;
864 MSD.StringIndex = Entry;
865
866 if (Symbol.isUndefined()) {
867 MSD.SectionIndex = 0;
868 UndefinedSymbolData.push_back(MSD);
869 } else if (Symbol.isAbsolute()) {
870 MSD.SectionIndex = 0;
871 ExternalSymbolData.push_back(MSD);
872 } else {
873 MSD.SectionIndex = SectionIndexMap.lookup(&Symbol.getSection());
874 assert(MSD.SectionIndex && "Invalid section index!");
875 ExternalSymbolData.push_back(MSD);
876 }
877 }
878
879 // Now add the data for local symbols.
880 for (MCAssembler::symbol_iterator it = Asm.symbol_begin(),
881 ie = Asm.symbol_end(); it != ie; ++it) {
882 const MCSymbol &Symbol = it->getSymbol();
883
884 // Ignore non-linker visible symbols.
885 if (!Asm.isSymbolLinkerVisible(it))
886 continue;
887
888 if (it->isExternal() || Symbol.isUndefined())
889 continue;
890
891 uint64_t &Entry = StringIndexMap[Symbol.getName()];
892 if (!Entry) {
893 Entry = StringTable.size();
894 StringTable += Symbol.getName();
895 StringTable += '\x00';
896 }
897
898 MachSymbolData MSD;
899 MSD.SymbolData = it;
900 MSD.StringIndex = Entry;
901
902 if (Symbol.isAbsolute()) {
903 MSD.SectionIndex = 0;
904 LocalSymbolData.push_back(MSD);
905 } else {
906 MSD.SectionIndex = SectionIndexMap.lookup(&Symbol.getSection());
907 assert(MSD.SectionIndex && "Invalid section index!");
908 LocalSymbolData.push_back(MSD);
909 }
910 }
911
912 // External and undefined symbols are required to be in lexicographic order.
913 std::sort(ExternalSymbolData.begin(), ExternalSymbolData.end());
914 std::sort(UndefinedSymbolData.begin(), UndefinedSymbolData.end());
915
916 // Set the symbol indices.
917 Index = 0;
918 for (unsigned i = 0, e = LocalSymbolData.size(); i != e; ++i)
919 LocalSymbolData[i].SymbolData->setIndex(Index++);
920 for (unsigned i = 0, e = ExternalSymbolData.size(); i != e; ++i)
921 ExternalSymbolData[i].SymbolData->setIndex(Index++);
922 for (unsigned i = 0, e = UndefinedSymbolData.size(); i != e; ++i)
923 UndefinedSymbolData[i].SymbolData->setIndex(Index++);
924
925 // The string table is padded to a multiple of 4.
926 while (StringTable.size() % 4)
927 StringTable += '\x00';
928 }
929
Daniel Dunbar873decb2010-03-20 01:58:40 +0000930 void ExecutePostLayoutBinding(MCAssembler &Asm) {
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000931 // Create symbol data for any indirect symbols.
932 BindIndirectSymbols(Asm);
933
934 // Compute symbol table information and bind symbol indices.
935 ComputeSymbolTable(Asm, StringTable, LocalSymbolData, ExternalSymbolData,
936 UndefinedSymbolData);
937 }
938
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000939 void WriteObject(const MCAssembler &Asm, const MCAsmLayout &Layout) {
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000940 unsigned NumSections = Asm.size();
941
942 // The section data starts after the header, the segment load command (and
943 // section headers) and the symbol table.
944 unsigned NumLoadCommands = 1;
945 uint64_t LoadCommandsSize = Is64Bit ?
946 SegmentLoadCommand64Size + NumSections * Section64Size :
947 SegmentLoadCommand32Size + NumSections * Section32Size;
948
949 // Add the symbol table load command sizes, if used.
950 unsigned NumSymbols = LocalSymbolData.size() + ExternalSymbolData.size() +
951 UndefinedSymbolData.size();
952 if (NumSymbols) {
953 NumLoadCommands += 2;
954 LoadCommandsSize += SymtabLoadCommandSize + DysymtabLoadCommandSize;
955 }
956
957 // Compute the total size of the section data, as well as its file size and
958 // vm size.
959 uint64_t SectionDataStart = (Is64Bit ? Header64Size : Header32Size)
960 + LoadCommandsSize;
961 uint64_t SectionDataSize = 0;
962 uint64_t SectionDataFileSize = 0;
963 uint64_t VMSize = 0;
964 for (MCAssembler::const_iterator it = Asm.begin(),
965 ie = Asm.end(); it != ie; ++it) {
966 const MCSectionData &SD = *it;
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000967 uint64_t Address = Layout.getSectionAddress(&SD);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000968
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000969 VMSize = std::max(VMSize, Address + SD.getSize());
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000970
971 if (Asm.getBackend().isVirtualSection(SD.getSection()))
972 continue;
973
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000974 SectionDataSize = std::max(SectionDataSize, Address + SD.getSize());
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000975 SectionDataFileSize = std::max(SectionDataFileSize,
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000976 Address + SD.getFileSize());
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000977 }
978
979 // The section data is padded to 4 bytes.
980 //
981 // FIXME: Is this machine dependent?
982 unsigned SectionDataPadding = OffsetToAlignment(SectionDataFileSize, 4);
983 SectionDataFileSize += SectionDataPadding;
984
985 // Write the prolog, starting with the header and load command...
986 WriteHeader(NumLoadCommands, LoadCommandsSize,
987 Asm.getSubsectionsViaSymbols());
988 WriteSegmentLoadCommand(NumSections, VMSize,
989 SectionDataStart, SectionDataSize);
990
991 // ... and then the section headers.
992 uint64_t RelocTableEnd = SectionDataStart + SectionDataFileSize;
993 for (MCAssembler::const_iterator it = Asm.begin(),
994 ie = Asm.end(); it != ie; ++it) {
995 std::vector<MachRelocationEntry> &Relocs = Relocations[it];
996 unsigned NumRelocs = Relocs.size();
Daniel Dunbar207e06e2010-03-24 03:43:40 +0000997 uint64_t SectionStart = SectionDataStart + Layout.getSectionAddress(it);
998 WriteSection(Asm, Layout, *it, SectionStart, RelocTableEnd, NumRelocs);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +0000999 RelocTableEnd += NumRelocs * RelocationInfoSize;
1000 }
1001
1002 // Write the symbol table load command, if used.
1003 if (NumSymbols) {
1004 unsigned FirstLocalSymbol = 0;
1005 unsigned NumLocalSymbols = LocalSymbolData.size();
1006 unsigned FirstExternalSymbol = FirstLocalSymbol + NumLocalSymbols;
1007 unsigned NumExternalSymbols = ExternalSymbolData.size();
1008 unsigned FirstUndefinedSymbol = FirstExternalSymbol + NumExternalSymbols;
1009 unsigned NumUndefinedSymbols = UndefinedSymbolData.size();
1010 unsigned NumIndirectSymbols = Asm.indirect_symbol_size();
1011 unsigned NumSymTabSymbols =
1012 NumLocalSymbols + NumExternalSymbols + NumUndefinedSymbols;
1013 uint64_t IndirectSymbolSize = NumIndirectSymbols * 4;
1014 uint64_t IndirectSymbolOffset = 0;
1015
1016 // If used, the indirect symbols are written after the section data.
1017 if (NumIndirectSymbols)
1018 IndirectSymbolOffset = RelocTableEnd;
1019
1020 // The symbol table is written after the indirect symbol data.
1021 uint64_t SymbolTableOffset = RelocTableEnd + IndirectSymbolSize;
1022
1023 // The string table is written after symbol table.
1024 uint64_t StringTableOffset =
1025 SymbolTableOffset + NumSymTabSymbols * (Is64Bit ? Nlist64Size :
1026 Nlist32Size);
1027 WriteSymtabLoadCommand(SymbolTableOffset, NumSymTabSymbols,
1028 StringTableOffset, StringTable.size());
1029
1030 WriteDysymtabLoadCommand(FirstLocalSymbol, NumLocalSymbols,
1031 FirstExternalSymbol, NumExternalSymbols,
1032 FirstUndefinedSymbol, NumUndefinedSymbols,
1033 IndirectSymbolOffset, NumIndirectSymbols);
1034 }
1035
1036 // Write the actual section data.
1037 for (MCAssembler::const_iterator it = Asm.begin(),
1038 ie = Asm.end(); it != ie; ++it)
1039 Asm.WriteSectionData(it, Writer);
1040
1041 // Write the extra padding.
1042 WriteZeros(SectionDataPadding);
1043
1044 // Write the relocation entries.
1045 for (MCAssembler::const_iterator it = Asm.begin(),
1046 ie = Asm.end(); it != ie; ++it) {
1047 // Write the section relocation entries, in reverse order to match 'as'
1048 // (approximately, the exact algorithm is more complicated than this).
1049 std::vector<MachRelocationEntry> &Relocs = Relocations[it];
1050 for (unsigned i = 0, e = Relocs.size(); i != e; ++i) {
1051 Write32(Relocs[e - i - 1].Word0);
1052 Write32(Relocs[e - i - 1].Word1);
1053 }
1054 }
1055
1056 // Write the symbol table data, if used.
1057 if (NumSymbols) {
1058 // Write the indirect symbol entries.
1059 for (MCAssembler::const_indirect_symbol_iterator
1060 it = Asm.indirect_symbol_begin(),
1061 ie = Asm.indirect_symbol_end(); it != ie; ++it) {
1062 // Indirect symbols in the non lazy symbol pointer section have some
1063 // special handling.
1064 const MCSectionMachO &Section =
1065 static_cast<const MCSectionMachO&>(it->SectionData->getSection());
1066 if (Section.getType() == MCSectionMachO::S_NON_LAZY_SYMBOL_POINTERS) {
1067 // If this symbol is defined and internal, mark it as such.
1068 if (it->Symbol->isDefined() &&
1069 !Asm.getSymbolData(*it->Symbol).isExternal()) {
1070 uint32_t Flags = ISF_Local;
1071 if (it->Symbol->isAbsolute())
1072 Flags |= ISF_Absolute;
1073 Write32(Flags);
1074 continue;
1075 }
1076 }
1077
1078 Write32(Asm.getSymbolData(*it->Symbol).getIndex());
1079 }
1080
1081 // FIXME: Check that offsets match computed ones.
1082
1083 // Write the symbol table entries.
1084 for (unsigned i = 0, e = LocalSymbolData.size(); i != e; ++i)
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001085 WriteNlist(LocalSymbolData[i], Layout);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001086 for (unsigned i = 0, e = ExternalSymbolData.size(); i != e; ++i)
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001087 WriteNlist(ExternalSymbolData[i], Layout);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001088 for (unsigned i = 0, e = UndefinedSymbolData.size(); i != e; ++i)
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001089 WriteNlist(UndefinedSymbolData[i], Layout);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001090
1091 // Write the string table.
1092 OS << StringTable.str();
1093 }
1094 }
1095};
1096
1097}
1098
1099MachObjectWriter::MachObjectWriter(raw_ostream &OS,
1100 bool Is64Bit,
1101 bool IsLittleEndian)
1102 : MCObjectWriter(OS, IsLittleEndian)
1103{
1104 Impl = new MachObjectWriterImpl(this, Is64Bit);
1105}
1106
1107MachObjectWriter::~MachObjectWriter() {
1108 delete (MachObjectWriterImpl*) Impl;
1109}
1110
1111void MachObjectWriter::ExecutePostLayoutBinding(MCAssembler &Asm) {
1112 ((MachObjectWriterImpl*) Impl)->ExecutePostLayoutBinding(Asm);
1113}
1114
1115void MachObjectWriter::RecordRelocation(const MCAssembler &Asm,
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001116 const MCAsmLayout &Layout,
Daniel Dunbarb7514182010-03-22 20:35:50 +00001117 const MCFragment *Fragment,
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001118 const MCAsmFixup &Fixup, MCValue Target,
1119 uint64_t &FixedValue) {
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001120 ((MachObjectWriterImpl*) Impl)->RecordRelocation(Asm, Layout, Fragment, Fixup,
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001121 Target, FixedValue);
1122}
1123
Daniel Dunbar207e06e2010-03-24 03:43:40 +00001124void MachObjectWriter::WriteObject(const MCAssembler &Asm,
1125 const MCAsmLayout &Layout) {
1126 ((MachObjectWriterImpl*) Impl)->WriteObject(Asm, Layout);
Daniel Dunbar2df4ceb2010-03-19 10:43:15 +00001127}