From Craig Silverstein: Have Parameters point to General_options.
[deliverable/binutils-gdb.git] / gold / ehframe.cc
1 // ehframe.cc -- handle exception frame sections for gold
2
3 // Copyright 2006, 2007 Free Software Foundation, Inc.
4 // Written by Ian Lance Taylor <iant@google.com>.
5
6 // This file is part of gold.
7
8 // This program is free software; you can redistribute it and/or modify
9 // it under the terms of the GNU General Public License as published by
10 // the Free Software Foundation; either version 3 of the License, or
11 // (at your option) any later version.
12
13 // This program is distributed in the hope that it will be useful,
14 // but WITHOUT ANY WARRANTY; without even the implied warranty of
15 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 // GNU General Public License for more details.
17
18 // You should have received a copy of the GNU General Public License
19 // along with this program; if not, write to the Free Software
20 // Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21 // MA 02110-1301, USA.
22
23 #include "gold.h"
24
25 #include <cstring>
26 #include <algorithm>
27
28 #include "elfcpp.h"
29 #include "dwarf.h"
30 #include "symtab.h"
31 #include "reloc.h"
32 #include "ehframe.h"
33
34 namespace gold
35 {
36
37 // This file handles generation of the exception frame header that
38 // gcc's runtime support libraries use to find unwind information at
39 // runtime. This file also handles discarding duplicate exception
40 // frame information.
41
42 // The exception frame header starts with four bytes:
43
44 // 0: The version number, currently 1.
45
46 // 1: The encoding of the pointer to the exception frames. This can
47 // be any DWARF unwind encoding (DW_EH_PE_*). It is normally a 4
48 // byte PC relative offset (DW_EH_PE_pcrel | DW_EH_PE_sdata4).
49
50 // 2: The encoding of the count of the number of FDE pointers in the
51 // lookup table. This can be any DWARF unwind encoding, and in
52 // particular can be DW_EH_PE_omit if the count is omitted. It is
53 // normally a 4 byte unsigned count (DW_EH_PE_udata4).
54
55 // 3: The encoding of the lookup table entries. Currently gcc's
56 // libraries will only support DW_EH_PE_datarel | DW_EH_PE_sdata4,
57 // which means that the values are 4 byte offsets from the start of
58 // the table.
59
60 // The exception frame header is followed by a pointer to the contents
61 // of the exception frame section (.eh_frame). This pointer is
62 // encoded as specified in the byte at offset 1 of the header (i.e.,
63 // it is normally a 4 byte PC relative offset).
64
65 // If there is a lookup table, this is followed by the count of the
66 // number of FDE pointers, encoded as specified in the byte at offset
67 // 2 of the header (i.e., normally a 4 byte unsigned integer).
68
69 // This is followed by the table, which should start at an 4-byte
70 // aligned address in memory. Each entry in the table is 8 bytes.
71 // Each entry represents an FDE. The first four bytes of each entry
72 // are an offset to the starting PC for the FDE. The last four bytes
73 // of each entry are an offset to the FDE data. The offsets are from
74 // the start of the exception frame header information. The entries
75 // are in sorted order by starting PC.
76
77 const int eh_frame_hdr_size = 4;
78
79 // Construct the exception frame header.
80
81 Eh_frame_hdr::Eh_frame_hdr(Output_section* eh_frame_section,
82 const Eh_frame* eh_frame_data)
83 : Output_section_data(4),
84 eh_frame_section_(eh_frame_section),
85 eh_frame_data_(eh_frame_data),
86 fde_offsets_(),
87 any_unrecognized_eh_frame_sections_(false)
88 {
89 }
90
91 // Set the size of the exception frame header.
92
93 void
94 Eh_frame_hdr::set_final_data_size()
95 {
96 unsigned int data_size = eh_frame_hdr_size + 4;
97 if (!this->any_unrecognized_eh_frame_sections_)
98 {
99 unsigned int fde_count = this->eh_frame_data_->fde_count();
100 if (fde_count != 0)
101 data_size += 4 + 8 * fde_count;
102 this->fde_offsets_.reserve(fde_count);
103 }
104 this->set_data_size(data_size);
105 }
106
107 // Write the data to the flie.
108
109 void
110 Eh_frame_hdr::do_write(Output_file* of)
111 {
112 switch (parameters->size_and_endianness())
113 {
114 #ifdef HAVE_TARGET_32_LITTLE
115 case Parameters::TARGET_32_LITTLE:
116 this->do_sized_write<32, false>(of);
117 break;
118 #endif
119 #ifdef HAVE_TARGET_32_BIG
120 case Parameters::TARGET_32_BIG:
121 this->do_sized_write<32, true>(of);
122 break;
123 #endif
124 #ifdef HAVE_TARGET_64_LITTLE
125 case Parameters::TARGET_64_LITTLE:
126 this->do_sized_write<64, false>(of);
127 break;
128 #endif
129 #ifdef HAVE_TARGET_64_BIG
130 case Parameters::TARGET_64_BIG:
131 this->do_sized_write<64, true>(of);
132 break;
133 #endif
134 default:
135 gold_unreachable();
136 }
137 }
138
139 // Write the data to the file with the right endianness.
140
141 template<int size, bool big_endian>
142 void
143 Eh_frame_hdr::do_sized_write(Output_file* of)
144 {
145 const off_t off = this->offset();
146 const off_t oview_size = this->data_size();
147 unsigned char* const oview = of->get_output_view(off, oview_size);
148
149 // Version number.
150 oview[0] = 1;
151
152 // Write out a 4 byte PC relative offset to the address of the
153 // .eh_frame section.
154 oview[1] = elfcpp::DW_EH_PE_pcrel | elfcpp::DW_EH_PE_sdata4;
155 uint64_t eh_frame_address = this->eh_frame_section_->address();
156 uint64_t eh_frame_hdr_address = this->address();
157 uint64_t eh_frame_offset = (eh_frame_address -
158 (eh_frame_hdr_address + 4));
159 elfcpp::Swap<32, big_endian>::writeval(oview + 4, eh_frame_offset);
160
161 if (this->any_unrecognized_eh_frame_sections_
162 || this->fde_offsets_.empty())
163 {
164 // There are no FDEs, or we didn't recognize the format of the
165 // some of the .eh_frame sections, so we can't write out the
166 // sorted table.
167 oview[2] = elfcpp::DW_EH_PE_omit;
168 oview[3] = elfcpp::DW_EH_PE_omit;
169
170 gold_assert(oview_size == 8);
171 }
172 else
173 {
174 oview[2] = elfcpp::DW_EH_PE_udata4;
175 oview[3] = elfcpp::DW_EH_PE_datarel | elfcpp::DW_EH_PE_sdata4;
176
177 elfcpp::Swap<32, big_endian>::writeval(oview + 8,
178 this->fde_offsets_.size());
179
180 // We have the offsets of the FDEs in the .eh_frame section. We
181 // couldn't easily get the PC values before, as they depend on
182 // relocations which are, of course, target specific. This code
183 // is run after all those relocations have been applied to the
184 // output file. Here we read the output file again to find the
185 // PC values. Then we sort the list and write it out.
186
187 Fde_addresses<size> fde_addresses(this->fde_offsets_.size());
188 this->get_fde_addresses<size, big_endian>(of, &this->fde_offsets_,
189 &fde_addresses);
190
191 std::sort(fde_addresses.begin(), fde_addresses.end(),
192 Fde_address_compare<size>());
193
194 typename elfcpp::Elf_types<size>::Elf_Addr output_address;
195 output_address = this->address();
196
197 unsigned char* pfde = oview + 12;
198 for (typename Fde_addresses<size>::iterator p = fde_addresses.begin();
199 p != fde_addresses.end();
200 ++p)
201 {
202 elfcpp::Swap<32, big_endian>::writeval(pfde,
203 p->first - output_address);
204 elfcpp::Swap<32, big_endian>::writeval(pfde + 4,
205 p->second - output_address);
206 pfde += 8;
207 }
208
209 gold_assert(pfde - oview == oview_size);
210 }
211
212 of->write_output_view(off, oview_size, oview);
213 }
214
215 // Given the offset FDE_OFFSET of an FDE in the .eh_frame section, and
216 // the contents of the .eh_frame section EH_FRAME_CONTENTS, where the
217 // FDE's encoding is FDE_ENCODING, return the output address of the
218 // FDE's PC.
219
220 template<int size, bool big_endian>
221 typename elfcpp::Elf_types<size>::Elf_Addr
222 Eh_frame_hdr::get_fde_pc(
223 typename elfcpp::Elf_types<size>::Elf_Addr eh_frame_address,
224 const unsigned char* eh_frame_contents,
225 section_offset_type fde_offset,
226 unsigned char fde_encoding)
227 {
228 // The FDE starts with a 4 byte length and a 4 byte offset to the
229 // CIE. The PC follows.
230 const unsigned char* p = eh_frame_contents + fde_offset + 8;
231
232 typename elfcpp::Elf_types<size>::Elf_Addr pc;
233 bool is_signed = (fde_encoding & elfcpp::DW_EH_PE_signed) != 0;
234 int pc_size = fde_encoding & 7;
235 if (pc_size == elfcpp::DW_EH_PE_absptr)
236 {
237 if (size == 32)
238 pc_size = elfcpp::DW_EH_PE_udata4;
239 else if (size == 64)
240 pc_size = elfcpp::DW_EH_PE_udata8;
241 else
242 gold_unreachable();
243 }
244
245 switch (pc_size)
246 {
247 case elfcpp::DW_EH_PE_udata2:
248 pc = elfcpp::Swap<16, big_endian>::readval(p);
249 if (is_signed)
250 pc = (pc ^ 0x8000) - 0x8000;
251 break;
252
253 case elfcpp::DW_EH_PE_udata4:
254 pc = elfcpp::Swap<32, big_endian>::readval(p);
255 if (size > 32 && is_signed)
256 pc = (pc ^ 0x80000000) - 0x80000000;
257 break;
258
259 case elfcpp::DW_EH_PE_udata8:
260 gold_assert(size == 64);
261 pc = elfcpp::Swap_unaligned<64, big_endian>::readval(p);
262 break;
263
264 default:
265 // All other cases were rejected in Eh_frame::read_cie.
266 gold_unreachable();
267 }
268
269 switch (fde_encoding & 0xf0)
270 {
271 case 0:
272 break;
273
274 case elfcpp::DW_EH_PE_pcrel:
275 pc += eh_frame_address + fde_offset + 8;
276 break;
277
278 default:
279 // If other cases arise, then we have to handle them, or we have
280 // to reject them by returning false in Eh_frame::read_cie.
281 gold_unreachable();
282 }
283
284 return pc;
285 }
286
287 // Given an array of FDE offsets in the .eh_frame section, return an
288 // array of offsets from the exception frame header to the FDE's
289 // output PC and to the output address of the FDE itself. We get the
290 // FDE's PC by actually looking in the .eh_frame section we just wrote
291 // to the output file.
292
293 template<int size, bool big_endian>
294 void
295 Eh_frame_hdr::get_fde_addresses(Output_file* of,
296 const Fde_offsets* fde_offsets,
297 Fde_addresses<size>* fde_addresses)
298 {
299 typename elfcpp::Elf_types<size>::Elf_Addr eh_frame_address;
300 eh_frame_address = this->eh_frame_section_->address();
301 off_t eh_frame_offset = this->eh_frame_section_->offset();
302 off_t eh_frame_size = this->eh_frame_section_->data_size();
303 const unsigned char* eh_frame_contents = of->get_input_view(eh_frame_offset,
304 eh_frame_size);
305
306 for (Fde_offsets::const_iterator p = fde_offsets->begin();
307 p != fde_offsets->end();
308 ++p)
309 {
310 typename elfcpp::Elf_types<size>::Elf_Addr fde_pc;
311 fde_pc = this->get_fde_pc<size, big_endian>(eh_frame_address,
312 eh_frame_contents,
313 p->first, p->second);
314 fde_addresses->push_back(fde_pc, eh_frame_address + p->first);
315 }
316
317 of->free_input_view(eh_frame_offset, eh_frame_size, eh_frame_contents);
318 }
319
320 // Class Fde.
321
322 // Write the FDE to OVIEW starting at OFFSET. CIE_OFFSET is the
323 // offset of the CIE in OVIEW. FDE_ENCODING is the encoding, from the
324 // CIE. ADDRALIGN is the required alignment. Record the FDE pc for
325 // EH_FRAME_HDR. Return the new offset.
326
327 template<int size, bool big_endian>
328 section_offset_type
329 Fde::write(unsigned char* oview, section_offset_type offset,
330 unsigned int addralign, section_offset_type cie_offset,
331 unsigned char fde_encoding, Eh_frame_hdr* eh_frame_hdr)
332 {
333 gold_assert((offset & (addralign - 1)) == 0);
334
335 size_t length = this->contents_.length();
336
337 // We add 8 when getting the aligned length to account for the
338 // length word and the CIE offset.
339 size_t aligned_full_length = align_address(length + 8, addralign);
340
341 // Write the length of the FDE as a 32-bit word. The length word
342 // does not include the four bytes of the length word itself, but it
343 // does include the offset to the CIE.
344 elfcpp::Swap<32, big_endian>::writeval(oview + offset,
345 aligned_full_length - 4);
346
347 // Write the offset to the CIE as a 32-bit word. This is the
348 // difference between the address of the offset word itself and the
349 // CIE address.
350 elfcpp::Swap<32, big_endian>::writeval(oview + offset + 4,
351 offset + 4 - cie_offset);
352
353 // Copy the rest of the FDE. Note that this is run before
354 // relocation processing is done on this section, so the relocations
355 // will later be applied to the FDE data.
356 memcpy(oview + offset + 8, this->contents_.data(), length);
357
358 if (aligned_full_length > length + 8)
359 memset(oview + offset + length + 8, 0, aligned_full_length - (length + 8));
360
361 // Tell the exception frame header about this FDE.
362 if (eh_frame_hdr != NULL)
363 eh_frame_hdr->record_fde(offset, fde_encoding);
364
365 return offset + aligned_full_length;
366 }
367
368 // Class Cie.
369
370 // Destructor.
371
372 Cie::~Cie()
373 {
374 for (std::vector<Fde*>::iterator p = this->fdes_.begin();
375 p != this->fdes_.end();
376 ++p)
377 delete *p;
378 }
379
380 // Set the output offset of a CIE. Return the new output offset.
381
382 section_offset_type
383 Cie::set_output_offset(section_offset_type output_offset,
384 unsigned int addralign,
385 Merge_map* merge_map)
386 {
387 size_t length = this->contents_.length();
388
389 // Add 4 for length and 4 for zero CIE identifier tag.
390 length += 8;
391
392 merge_map->add_mapping(this->object_, this->shndx_, this->input_offset_,
393 length, output_offset);
394
395 length = align_address(length, addralign);
396
397 for (std::vector<Fde*>::const_iterator p = this->fdes_.begin();
398 p != this->fdes_.end();
399 ++p)
400 {
401 (*p)->add_mapping(output_offset + length, merge_map);
402
403 size_t fde_length = (*p)->length();
404 fde_length = align_address(fde_length, addralign);
405 length += fde_length;
406 }
407
408 return output_offset + length;
409 }
410
411 // Write the CIE to OVIEW starting at OFFSET. EH_FRAME_HDR is for FDE
412 // recording. Round up the bytes to ADDRALIGN. Return the new
413 // offset.
414
415 template<int size, bool big_endian>
416 section_offset_type
417 Cie::write(unsigned char* oview, section_offset_type offset,
418 unsigned int addralign, Eh_frame_hdr* eh_frame_hdr)
419 {
420 gold_assert((offset & (addralign - 1)) == 0);
421
422 section_offset_type cie_offset = offset;
423
424 size_t length = this->contents_.length();
425
426 // We add 8 when getting the aligned length to account for the
427 // length word and the CIE tag.
428 size_t aligned_full_length = align_address(length + 8, addralign);
429
430 // Write the length of the CIE as a 32-bit word. The length word
431 // does not include the four bytes of the length word itself.
432 elfcpp::Swap<32, big_endian>::writeval(oview + offset,
433 aligned_full_length - 4);
434
435 // Write the tag which marks this as a CIE: a 32-bit zero.
436 elfcpp::Swap<32, big_endian>::writeval(oview + offset + 4, 0);
437
438 // Write out the CIE data.
439 memcpy(oview + offset + 8, this->contents_.data(), length);
440
441 if (aligned_full_length > length + 8)
442 memset(oview + offset + length + 8, 0, aligned_full_length - (length + 8));
443
444 offset += aligned_full_length;
445
446 // Write out the associated FDEs.
447 unsigned char fde_encoding = this->fde_encoding_;
448 for (std::vector<Fde*>::const_iterator p = this->fdes_.begin();
449 p != this->fdes_.end();
450 ++p)
451 offset = (*p)->write<size, big_endian>(oview, offset, addralign,
452 cie_offset, fde_encoding,
453 eh_frame_hdr);
454
455 return offset;
456 }
457
458 // We track all the CIEs we see, and merge them when possible. This
459 // works because each FDE holds an offset to the relevant CIE: we
460 // rewrite the FDEs to point to the merged CIE. This is worthwhile
461 // because in a typical C++ program many FDEs in many different object
462 // files will use the same CIE.
463
464 // An equality operator for Cie.
465
466 bool
467 operator==(const Cie& cie1, const Cie& cie2)
468 {
469 return (cie1.personality_name_ == cie2.personality_name_
470 && cie1.contents_ == cie2.contents_);
471 }
472
473 // A less-than operator for Cie.
474
475 bool
476 operator<(const Cie& cie1, const Cie& cie2)
477 {
478 if (cie1.personality_name_ != cie2.personality_name_)
479 return cie1.personality_name_ < cie2.personality_name_;
480 return cie1.contents_ < cie2.contents_;
481 }
482
483 // Class Eh_frame.
484
485 Eh_frame::Eh_frame()
486 : Output_section_data(Output_data::default_alignment()),
487 eh_frame_hdr_(NULL),
488 cie_offsets_(),
489 unmergeable_cie_offsets_(),
490 merge_map_()
491 {
492 }
493
494 // Skip an LEB128, updating *PP to point to the next character.
495 // Return false if we ran off the end of the string.
496
497 bool
498 Eh_frame::skip_leb128(const unsigned char** pp, const unsigned char* pend)
499 {
500 const unsigned char* p;
501 for (p = *pp; p < pend; ++p)
502 {
503 if ((*p & 0x80) == 0)
504 {
505 *pp = p + 1;
506 return true;
507 }
508 }
509 return false;
510 }
511
512 // Add input section SHNDX in OBJECT to an exception frame section.
513 // SYMBOLS is the contents of the symbol table section (size
514 // SYMBOLS_SIZE), SYMBOL_NAMES is the symbol names section (size
515 // SYMBOL_NAMES_SIZE). RELOC_SHNDX is the index of a relocation
516 // section applying to SHNDX, or 0 if none, or -1U if more than one.
517 // RELOC_TYPE is the type of the reloc section if there is one, either
518 // SHT_REL or SHT_RELA. We try to parse the input exception frame
519 // data into our data structures. If we can't do it, we return false
520 // to mean that the section should be handled as a normal input
521 // section.
522
523 template<int size, bool big_endian>
524 bool
525 Eh_frame::add_ehframe_input_section(
526 Sized_relobj<size, big_endian>* object,
527 const unsigned char* symbols,
528 section_size_type symbols_size,
529 const unsigned char* symbol_names,
530 section_size_type symbol_names_size,
531 unsigned int shndx,
532 unsigned int reloc_shndx,
533 unsigned int reloc_type)
534 {
535 // Get the section contents.
536 section_size_type contents_len;
537 const unsigned char* pcontents = object->section_contents(shndx,
538 &contents_len,
539 false);
540 if (contents_len == 0)
541 return false;
542
543 // If this is the marker section for the end of the data, then
544 // return false to force it to be handled as an ordinary input
545 // section. If we don't do this, we won't correctly handle the case
546 // of unrecognized .eh_frame sections.
547 if (contents_len == 4
548 && elfcpp::Swap<32, big_endian>::readval(pcontents) == 0)
549 return false;
550
551 New_cies new_cies;
552 if (!this->do_add_ehframe_input_section(object, symbols, symbols_size,
553 symbol_names, symbol_names_size,
554 shndx, reloc_shndx,
555 reloc_type, pcontents,
556 contents_len, &new_cies))
557 {
558 this->eh_frame_hdr_->found_unrecognized_eh_frame_section();
559
560 for (New_cies::iterator p = new_cies.begin();
561 p != new_cies.end();
562 ++p)
563 delete p->first;
564
565 return false;
566 }
567
568 // Now that we know we are using this section, record any new CIEs
569 // that we found.
570 for (New_cies::const_iterator p = new_cies.begin();
571 p != new_cies.end();
572 ++p)
573 {
574 if (p->second)
575 this->cie_offsets_.insert(p->first);
576 else
577 this->unmergeable_cie_offsets_.push_back(p->first);
578 }
579
580 return true;
581 }
582
583 // The bulk of the implementation of add_ehframe_input_section.
584
585 template<int size, bool big_endian>
586 bool
587 Eh_frame::do_add_ehframe_input_section(
588 Sized_relobj<size, big_endian>* object,
589 const unsigned char* symbols,
590 section_size_type symbols_size,
591 const unsigned char* symbol_names,
592 section_size_type symbol_names_size,
593 unsigned int shndx,
594 unsigned int reloc_shndx,
595 unsigned int reloc_type,
596 const unsigned char* pcontents,
597 section_size_type contents_len,
598 New_cies* new_cies)
599 {
600 typedef typename elfcpp::Elf_types<size>::Elf_Addr Address;
601 Track_relocs<size, big_endian> relocs;
602
603 const unsigned char* p = pcontents;
604 const unsigned char* pend = p + contents_len;
605
606 // Get the contents of the reloc section if any.
607 if (!relocs.initialize(object, reloc_shndx, reloc_type))
608 return false;
609
610 // Keep track of which CIEs are at which offsets.
611 Offsets_to_cie cies;
612
613 while (p < pend)
614 {
615 if (pend - p < 4)
616 return false;
617
618 // There shouldn't be any relocations here.
619 if (relocs.advance(p + 4 - pcontents) > 0)
620 return false;
621
622 unsigned int len = elfcpp::Swap<32, big_endian>::readval(p);
623 p += 4;
624 if (len == 0)
625 {
626 // We should only find a zero-length entry at the end of the
627 // section.
628 if (p < pend)
629 return false;
630 break;
631 }
632 // We don't support a 64-bit .eh_frame.
633 if (len == 0xffffffff)
634 return false;
635 if (static_cast<unsigned int>(pend - p) < len)
636 return false;
637
638 const unsigned char* const pentend = p + len;
639
640 if (pend - p < 4)
641 return false;
642 if (relocs.advance(p + 4 - pcontents) > 0)
643 return false;
644
645 unsigned int id = elfcpp::Swap<32, big_endian>::readval(p);
646 p += 4;
647
648 if (id == 0)
649 {
650 // CIE.
651 if (!this->read_cie(object, shndx, symbols, symbols_size,
652 symbol_names, symbol_names_size,
653 pcontents, p, pentend, &relocs, &cies,
654 new_cies))
655 return false;
656 }
657 else
658 {
659 // FDE.
660 if (!this->read_fde(object, shndx, symbols, symbols_size,
661 pcontents, id, p, pentend, &relocs, &cies))
662 return false;
663 }
664
665 p = pentend;
666 }
667
668 return true;
669 }
670
671 // Read a CIE. Return false if we can't parse the information.
672
673 template<int size, bool big_endian>
674 bool
675 Eh_frame::read_cie(Sized_relobj<size, big_endian>* object,
676 unsigned int shndx,
677 const unsigned char* symbols,
678 section_size_type symbols_size,
679 const unsigned char* symbol_names,
680 section_size_type symbol_names_size,
681 const unsigned char* pcontents,
682 const unsigned char* pcie,
683 const unsigned char *pcieend,
684 Track_relocs<size, big_endian>* relocs,
685 Offsets_to_cie* cies,
686 New_cies* new_cies)
687 {
688 bool mergeable = true;
689
690 // We need to find the personality routine if there is one, since we
691 // can only merge CIEs which use the same routine. We also need to
692 // find the FDE encoding if there is one, so that we can read the PC
693 // from the FDE.
694
695 const unsigned char* p = pcie;
696
697 if (pcieend - p < 1)
698 return false;
699 unsigned char version = *p++;
700 if (version != 1 && version != 3)
701 return false;
702
703 const unsigned char* paug = p;
704 const void* paugendv = memchr(p, '\0', pcieend - p);
705 const unsigned char* paugend = static_cast<const unsigned char*>(paugendv);
706 if (paugend == NULL)
707 return false;
708 p = paugend + 1;
709
710 if (paug[0] == 'e' && paug[1] == 'h')
711 {
712 // This is a CIE from gcc before version 3.0. We can't merge
713 // these. We can still read the FDEs.
714 mergeable = false;
715 paug += 2;
716 if (*paug != '\0')
717 return false;
718 if (pcieend - p < size / 8)
719 return false;
720 p += size / 8;
721 }
722
723 // Skip the code alignment.
724 if (!skip_leb128(&p, pcieend))
725 return false;
726
727 // Skip the data alignment.
728 if (!skip_leb128(&p, pcieend))
729 return false;
730
731 // Skip the return column.
732 if (version == 1)
733 {
734 if (pcieend - p < 1)
735 return false;
736 ++p;
737 }
738 else
739 {
740 if (!skip_leb128(&p, pcieend))
741 return false;
742 }
743
744 if (*paug == 'z')
745 {
746 ++paug;
747 // Skip the augmentation size.
748 if (!skip_leb128(&p, pcieend))
749 return false;
750 }
751
752 unsigned char fde_encoding = elfcpp::DW_EH_PE_absptr;
753 int per_offset = -1;
754 while (*paug != '\0')
755 {
756 switch (*paug)
757 {
758 case 'L': // LSDA encoding.
759 if (pcieend - p < 1)
760 return false;
761 ++p;
762 break;
763
764 case 'R': // FDE encoding.
765 if (pcieend - p < 1)
766 return false;
767 fde_encoding = *p;
768 switch (fde_encoding & 7)
769 {
770 case elfcpp::DW_EH_PE_absptr:
771 case elfcpp::DW_EH_PE_udata2:
772 case elfcpp::DW_EH_PE_udata4:
773 case elfcpp::DW_EH_PE_udata8:
774 break;
775 default:
776 // We don't expect to see any other cases here, and
777 // we're not prepared to handle them.
778 return false;
779 }
780 ++p;
781 break;
782
783 case 'S':
784 break;
785
786 case 'P':
787 // Personality encoding.
788 {
789 if (pcieend - p < 1)
790 return false;
791 unsigned char per_encoding = *p;
792 ++p;
793
794 if ((per_encoding & 0x60) == 0x60)
795 return false;
796 unsigned int per_width;
797 switch (per_encoding & 7)
798 {
799 case elfcpp::DW_EH_PE_udata2:
800 per_width = 2;
801 break;
802 case elfcpp::DW_EH_PE_udata4:
803 per_width = 4;
804 break;
805 case elfcpp::DW_EH_PE_udata8:
806 per_width = 8;
807 break;
808 case elfcpp::DW_EH_PE_absptr:
809 per_width = size / 8;
810 break;
811 default:
812 return false;
813 }
814
815 if ((per_encoding & 0xf0) == elfcpp::DW_EH_PE_aligned)
816 {
817 unsigned int len = p - pcie;
818 len += per_width - 1;
819 len &= ~ (per_width - 1);
820 if (static_cast<unsigned int>(pcieend - p) < len)
821 return false;
822 p += len;
823 }
824
825 per_offset = p - pcontents;
826
827 if (static_cast<unsigned int>(pcieend - p) < per_width)
828 return false;
829 p += per_width;
830 }
831 break;
832
833 default:
834 return false;
835 }
836
837 ++paug;
838 }
839
840 const char* personality_name = "";
841 if (per_offset != -1)
842 {
843 if (relocs->advance(per_offset) > 0)
844 return false;
845 if (relocs->next_offset() != per_offset)
846 return false;
847
848 unsigned int personality_symndx = relocs->next_symndx();
849 if (personality_symndx == -1U)
850 return false;
851
852 if (personality_symndx < object->local_symbol_count())
853 {
854 // We can only merge this CIE if the personality routine is
855 // a global symbol. We can still read the FDEs.
856 mergeable = false;
857 }
858 else
859 {
860 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
861 if (personality_symndx >= symbols_size / sym_size)
862 return false;
863 elfcpp::Sym<size, big_endian> sym(symbols
864 + (personality_symndx * sym_size));
865 unsigned int name_offset = sym.get_st_name();
866 if (name_offset >= symbol_names_size)
867 return false;
868 personality_name = (reinterpret_cast<const char*>(symbol_names)
869 + name_offset);
870 }
871
872 int r = relocs->advance(per_offset + 1);
873 gold_assert(r == 1);
874 }
875
876 if (relocs->advance(pcieend - pcontents) > 0)
877 return false;
878
879 Cie cie(object, shndx, (pcie - 8) - pcontents, fde_encoding,
880 personality_name, pcie, pcieend - pcie);
881 Cie* cie_pointer = NULL;
882 if (mergeable)
883 {
884 Cie_offsets::iterator find_cie = this->cie_offsets_.find(&cie);
885 if (find_cie != this->cie_offsets_.end())
886 cie_pointer = *find_cie;
887 else
888 {
889 // See if we already saw this CIE in this object file.
890 for (New_cies::const_iterator pc = new_cies->begin();
891 pc != new_cies->end();
892 ++pc)
893 {
894 if (*(pc->first) == cie)
895 {
896 cie_pointer = pc->first;
897 break;
898 }
899 }
900 }
901 }
902
903 if (cie_pointer == NULL)
904 {
905 cie_pointer = new Cie(cie);
906 new_cies->push_back(std::make_pair(cie_pointer, mergeable));
907 }
908 else
909 {
910 // We are deleting this CIE. Record that in our mapping from
911 // input sections to the output section. At this point we don't
912 // know for sure that we are doing a special mapping for this
913 // input section, but that's OK--if we don't do a special
914 // mapping, nobody will ever ask for the mapping we add here.
915 this->merge_map_.add_mapping(object, shndx, (pcie - 8) - pcontents,
916 pcieend - (pcie - 8), -1);
917 }
918
919 // Record this CIE plus the offset in the input section.
920 cies->insert(std::make_pair(pcie - pcontents, cie_pointer));
921
922 return true;
923 }
924
925 // Read an FDE. Return false if we can't parse the information.
926
927 template<int size, bool big_endian>
928 bool
929 Eh_frame::read_fde(Sized_relobj<size, big_endian>* object,
930 unsigned int shndx,
931 const unsigned char* symbols,
932 section_size_type symbols_size,
933 const unsigned char* pcontents,
934 unsigned int offset,
935 const unsigned char* pfde,
936 const unsigned char *pfdeend,
937 Track_relocs<size, big_endian>* relocs,
938 Offsets_to_cie* cies)
939 {
940 // OFFSET is the distance between the 4 bytes before PFDE to the
941 // start of the CIE. The offset we recorded for the CIE is 8 bytes
942 // after the start of the CIE--after the length and the zero tag.
943 unsigned int cie_offset = (pfde - 4 - pcontents) - offset + 8;
944 Offsets_to_cie::const_iterator pcie = cies->find(cie_offset);
945 if (pcie == cies->end())
946 return false;
947 Cie* cie = pcie->second;
948
949 // The FDE should start with a reloc to the start of the code which
950 // it describes.
951 if (relocs->advance(pfde - pcontents) > 0)
952 return false;
953
954 if (relocs->next_offset() != pfde - pcontents)
955 return false;
956
957 unsigned int symndx = relocs->next_symndx();
958 if (symndx == -1U)
959 return false;
960
961 // There can be another reloc in the FDE, if the CIE specifies an
962 // LSDA (language specific data area). We currently don't care. We
963 // will care later if we want to optimize the LSDA from an absolute
964 // pointer to a PC relative offset when generating a shared library.
965 relocs->advance(pfdeend - pcontents);
966
967 unsigned int fde_shndx;
968 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
969 if (symndx >= symbols_size / sym_size)
970 return false;
971 elfcpp::Sym<size, big_endian> sym(symbols + symndx * sym_size);
972 fde_shndx = sym.get_st_shndx();
973
974 if (fde_shndx != elfcpp::SHN_UNDEF
975 && fde_shndx < object->shnum()
976 && !object->is_section_included(fde_shndx))
977 {
978 // This FDE applies to a section which we are discarding. We
979 // can discard this FDE.
980 this->merge_map_.add_mapping(object, shndx, (pfde - 8) - pcontents,
981 pfdeend - (pfde - 8), -1);
982 return true;
983 }
984
985 cie->add_fde(new Fde(object, shndx, (pfde - 8) - pcontents,
986 pfde, pfdeend - pfde));
987
988 return true;
989 }
990
991 // Return the number of FDEs.
992
993 unsigned int
994 Eh_frame::fde_count() const
995 {
996 unsigned int ret = 0;
997 for (Unmergeable_cie_offsets::const_iterator p =
998 this->unmergeable_cie_offsets_.begin();
999 p != this->unmergeable_cie_offsets_.end();
1000 ++p)
1001 ret += (*p)->fde_count();
1002 for (Cie_offsets::const_iterator p = this->cie_offsets_.begin();
1003 p != this->cie_offsets_.end();
1004 ++p)
1005 ret += (*p)->fde_count();
1006 return ret;
1007 }
1008
1009 // Set the final data size.
1010
1011 void
1012 Eh_frame::set_final_data_size()
1013 {
1014 section_offset_type output_offset = 0;
1015
1016 for (Unmergeable_cie_offsets::iterator p =
1017 this->unmergeable_cie_offsets_.begin();
1018 p != this->unmergeable_cie_offsets_.end();
1019 ++p)
1020 output_offset = (*p)->set_output_offset(output_offset,
1021 this->addralign(),
1022 &this->merge_map_);
1023
1024 for (Cie_offsets::iterator p = this->cie_offsets_.begin();
1025 p != this->cie_offsets_.end();
1026 ++p)
1027 output_offset = (*p)->set_output_offset(output_offset,
1028 this->addralign(),
1029 &this->merge_map_);
1030
1031 gold_assert((output_offset & (this->addralign() - 1)) == 0);
1032 this->set_data_size(output_offset);
1033 }
1034
1035 // Return an output offset for an input offset.
1036
1037 bool
1038 Eh_frame::do_output_offset(const Relobj* object, unsigned int shndx,
1039 section_offset_type offset,
1040 section_offset_type* poutput) const
1041 {
1042 return this->merge_map_.get_output_offset(object, shndx, offset, poutput);
1043 }
1044
1045 // Return whether this is the merge section for an input section.
1046
1047 bool
1048 Eh_frame::do_is_merge_section_for(const Relobj* object,
1049 unsigned int shndx) const
1050 {
1051 return this->merge_map_.is_merge_section_for(object, shndx);
1052 }
1053
1054 // Write the data to the output file.
1055
1056 void
1057 Eh_frame::do_write(Output_file* of)
1058 {
1059 const off_t offset = this->offset();
1060 const off_t oview_size = this->data_size();
1061 unsigned char* const oview = of->get_output_view(offset, oview_size);
1062
1063 switch (parameters->size_and_endianness())
1064 {
1065 #ifdef HAVE_TARGET_32_LITTLE
1066 case Parameters::TARGET_32_LITTLE:
1067 this->do_sized_write<32, false>(oview);
1068 break;
1069 #endif
1070 #ifdef HAVE_TARGET_32_BIG
1071 case Parameters::TARGET_32_BIG:
1072 this->do_sized_write<32, true>(oview);
1073 break;
1074 #endif
1075 #ifdef HAVE_TARGET_64_LITTLE
1076 case Parameters::TARGET_64_LITTLE:
1077 this->do_sized_write<64, false>(oview);
1078 break;
1079 #endif
1080 #ifdef HAVE_TARGET_64_BIG
1081 case Parameters::TARGET_64_BIG:
1082 this->do_sized_write<64, true>(oview);
1083 break;
1084 #endif
1085 default:
1086 gold_unreachable();
1087 }
1088
1089 of->write_output_view(offset, oview_size, oview);
1090 }
1091
1092 // Write the data to the output file--template version.
1093
1094 template<int size, bool big_endian>
1095 void
1096 Eh_frame::do_sized_write(unsigned char* oview)
1097 {
1098 unsigned int addralign = this->addralign();
1099 section_offset_type o = 0;
1100 for (Unmergeable_cie_offsets::iterator p =
1101 this->unmergeable_cie_offsets_.begin();
1102 p != this->unmergeable_cie_offsets_.end();
1103 ++p)
1104 o = (*p)->write<size, big_endian>(oview, o, addralign,
1105 this->eh_frame_hdr_);
1106 for (Cie_offsets::iterator p = this->cie_offsets_.begin();
1107 p != this->cie_offsets_.end();
1108 ++p)
1109 o = (*p)->write<size, big_endian>(oview, o, addralign,
1110 this->eh_frame_hdr_);
1111 }
1112
1113 #ifdef HAVE_TARGET_32_LITTLE
1114 template
1115 bool
1116 Eh_frame::add_ehframe_input_section<32, false>(
1117 Sized_relobj<32, false>* object,
1118 const unsigned char* symbols,
1119 section_size_type symbols_size,
1120 const unsigned char* symbol_names,
1121 section_size_type symbol_names_size,
1122 unsigned int shndx,
1123 unsigned int reloc_shndx,
1124 unsigned int reloc_type);
1125 #endif
1126
1127 #ifdef HAVE_TARGET_32_BIG
1128 template
1129 bool
1130 Eh_frame::add_ehframe_input_section<32, true>(
1131 Sized_relobj<32, true>* object,
1132 const unsigned char* symbols,
1133 section_size_type symbols_size,
1134 const unsigned char* symbol_names,
1135 section_size_type symbol_names_size,
1136 unsigned int shndx,
1137 unsigned int reloc_shndx,
1138 unsigned int reloc_type);
1139 #endif
1140
1141 #ifdef HAVE_TARGET_64_LITTLE
1142 template
1143 bool
1144 Eh_frame::add_ehframe_input_section<64, false>(
1145 Sized_relobj<64, false>* object,
1146 const unsigned char* symbols,
1147 section_size_type symbols_size,
1148 const unsigned char* symbol_names,
1149 section_size_type symbol_names_size,
1150 unsigned int shndx,
1151 unsigned int reloc_shndx,
1152 unsigned int reloc_type);
1153 #endif
1154
1155 #ifdef HAVE_TARGET_64_BIG
1156 template
1157 bool
1158 Eh_frame::add_ehframe_input_section<64, true>(
1159 Sized_relobj<64, true>* object,
1160 const unsigned char* symbols,
1161 section_size_type symbols_size,
1162 const unsigned char* symbol_names,
1163 section_size_type symbol_names_size,
1164 unsigned int shndx,
1165 unsigned int reloc_shndx,
1166 unsigned int reloc_type);
1167 #endif
1168
1169 } // End namespace gold.
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