bfd/
[deliverable/binutils-gdb.git] / gold / object.cc
CommitLineData
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1// object.cc -- support for an object file for linking in gold
2
6cb15b7f
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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
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23#include "gold.h"
24
25#include <cerrno>
26#include <cstring>
645f8123 27#include <cstdarg>
a2b1aa12 28#include "demangle.h"
9a2d6984 29#include "libiberty.h"
bae7f79e 30
14bfc3f5 31#include "target-select.h"
5c2c6c95 32#include "dwarf_reader.h"
a2fb1b05 33#include "layout.h"
61ba1cf9 34#include "output.h"
f6ce93d6 35#include "symtab.h"
4c50553d 36#include "reloc.h"
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37#include "object.h"
38#include "dynobj.h"
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39
40namespace gold
41{
42
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43// Class Object.
44
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45// Set the target based on fields in the ELF file header.
46
47void
48Object::set_target(int machine, int size, bool big_endian, int osabi,
49 int abiversion)
50{
51 Target* target = select_target(machine, size, big_endian, osabi, abiversion);
52 if (target == NULL)
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53 gold_fatal(_("%s: unsupported ELF machine number %d"),
54 this->name().c_str(), machine);
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55 this->target_ = target;
56}
57
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58// Report an error for this object file. This is used by the
59// elfcpp::Elf_file interface, and also called by the Object code
60// itself.
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61
62void
75f2446e 63Object::error(const char* format, ...) const
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64{
65 va_list args;
645f8123 66 va_start(args, format);
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67 char* buf = NULL;
68 if (vasprintf(&buf, format, args) < 0)
69 gold_nomem();
645f8123 70 va_end(args);
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71 gold_error(_("%s: %s"), this->name().c_str(), buf);
72 free(buf);
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73}
74
75// Return a view of the contents of a section.
76
77const unsigned char*
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78Object::section_contents(unsigned int shndx, section_size_type* plen,
79 bool cache)
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80{
81 Location loc(this->do_section_contents(shndx));
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82 *plen = convert_to_section_size_type(loc.data_size);
83 return this->get_view(loc.file_offset, *plen, cache);
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84}
85
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86// Read the section data into SD. This is code common to Sized_relobj
87// and Sized_dynobj, so we put it into Object.
88
89template<int size, bool big_endian>
90void
91Object::read_section_data(elfcpp::Elf_file<size, big_endian, Object>* elf_file,
92 Read_symbols_data* sd)
93{
94 const int shdr_size = elfcpp::Elf_sizes<size>::shdr_size;
95
96 // Read the section headers.
97 const off_t shoff = elf_file->shoff();
98 const unsigned int shnum = this->shnum();
9eb9fa57 99 sd->section_headers = this->get_lasting_view(shoff, shnum * shdr_size, true);
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100
101 // Read the section names.
102 const unsigned char* pshdrs = sd->section_headers->data();
103 const unsigned char* pshdrnames = pshdrs + elf_file->shstrndx() * shdr_size;
104 typename elfcpp::Shdr<size, big_endian> shdrnames(pshdrnames);
105
106 if (shdrnames.get_sh_type() != elfcpp::SHT_STRTAB)
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107 this->error(_("section name section has wrong type: %u"),
108 static_cast<unsigned int>(shdrnames.get_sh_type()));
dbe717ef 109
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110 sd->section_names_size =
111 convert_to_section_size_type(shdrnames.get_sh_size());
dbe717ef 112 sd->section_names = this->get_lasting_view(shdrnames.get_sh_offset(),
9eb9fa57 113 sd->section_names_size, false);
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114}
115
116// If NAME is the name of a special .gnu.warning section, arrange for
117// the warning to be issued. SHNDX is the section index. Return
118// whether it is a warning section.
119
120bool
121Object::handle_gnu_warning_section(const char* name, unsigned int shndx,
122 Symbol_table* symtab)
123{
124 const char warn_prefix[] = ".gnu.warning.";
125 const int warn_prefix_len = sizeof warn_prefix - 1;
126 if (strncmp(name, warn_prefix, warn_prefix_len) == 0)
127 {
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128 // Read the section contents to get the warning text. It would
129 // be nicer if we only did this if we have to actually issue a
130 // warning. Unfortunately, warnings are issued as we relocate
131 // sections. That means that we can not lock the object then,
132 // as we might try to issue the same warning multiple times
133 // simultaneously.
134 section_size_type len;
135 const unsigned char* contents = this->section_contents(shndx, &len,
136 false);
137 std::string warning(reinterpret_cast<const char*>(contents), len);
138 symtab->add_warning(name + warn_prefix_len, this, warning);
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139 return true;
140 }
141 return false;
142}
143
f6ce93d6 144// Class Sized_relobj.
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145
146template<int size, bool big_endian>
f6ce93d6 147Sized_relobj<size, big_endian>::Sized_relobj(
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148 const std::string& name,
149 Input_file* input_file,
150 off_t offset,
151 const elfcpp::Ehdr<size, big_endian>& ehdr)
f6ce93d6 152 : Relobj(name, input_file, offset),
645f8123 153 elf_file_(this, ehdr),
dbe717ef 154 symtab_shndx_(-1U),
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155 local_symbol_count_(0),
156 output_local_symbol_count_(0),
7bf1f802 157 output_local_dynsym_count_(0),
730cdc88 158 symbols_(),
61ba1cf9 159 local_symbol_offset_(0),
7bf1f802 160 local_dynsym_offset_(0),
e727fa71 161 local_values_(),
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162 local_got_offsets_(),
163 has_eh_frame_(false)
bae7f79e 164{
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165}
166
167template<int size, bool big_endian>
f6ce93d6 168Sized_relobj<size, big_endian>::~Sized_relobj()
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169{
170}
171
645f8123 172// Set up an object file based on the file header. This sets up the
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173// target and reads the section information.
174
175template<int size, bool big_endian>
176void
f6ce93d6 177Sized_relobj<size, big_endian>::setup(
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178 const elfcpp::Ehdr<size, big_endian>& ehdr)
179{
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180 this->set_target(ehdr.get_e_machine(), size, big_endian,
181 ehdr.get_e_ident()[elfcpp::EI_OSABI],
182 ehdr.get_e_ident()[elfcpp::EI_ABIVERSION]);
12e14209 183
dbe717ef 184 const unsigned int shnum = this->elf_file_.shnum();
a2fb1b05 185 this->set_shnum(shnum);
dbe717ef 186}
12e14209 187
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188// Find the SHT_SYMTAB section, given the section headers. The ELF
189// standard says that maybe in the future there can be more than one
190// SHT_SYMTAB section. Until somebody figures out how that could
191// work, we assume there is only one.
12e14209 192
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193template<int size, bool big_endian>
194void
195Sized_relobj<size, big_endian>::find_symtab(const unsigned char* pshdrs)
196{
197 const unsigned int shnum = this->shnum();
198 this->symtab_shndx_ = 0;
199 if (shnum > 0)
bae7f79e 200 {
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201 // Look through the sections in reverse order, since gas tends
202 // to put the symbol table at the end.
203 const unsigned char* p = pshdrs + shnum * This::shdr_size;
204 unsigned int i = shnum;
205 while (i > 0)
bae7f79e 206 {
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207 --i;
208 p -= This::shdr_size;
209 typename This::Shdr shdr(p);
210 if (shdr.get_sh_type() == elfcpp::SHT_SYMTAB)
211 {
212 this->symtab_shndx_ = i;
213 break;
214 }
bae7f79e 215 }
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216 }
217}
218
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219// Return whether SHDR has the right type and flags to be a GNU
220// .eh_frame section.
221
222template<int size, bool big_endian>
223bool
224Sized_relobj<size, big_endian>::check_eh_frame_flags(
225 const elfcpp::Shdr<size, big_endian>* shdr) const
226{
227 return (shdr->get_sh_size() > 0
228 && shdr->get_sh_type() == elfcpp::SHT_PROGBITS
229 && shdr->get_sh_flags() == elfcpp::SHF_ALLOC);
230}
231
232// Return whether there is a GNU .eh_frame section, given the section
233// headers and the section names.
234
235template<int size, bool big_endian>
236bool
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237Sized_relobj<size, big_endian>::find_eh_frame(
238 const unsigned char* pshdrs,
239 const char* names,
240 section_size_type names_size) const
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241{
242 const unsigned int shnum = this->shnum();
243 const unsigned char* p = pshdrs + This::shdr_size;
244 for (unsigned int i = 1; i < shnum; ++i, p += This::shdr_size)
245 {
246 typename This::Shdr shdr(p);
247 if (this->check_eh_frame_flags(&shdr))
248 {
249 if (shdr.get_sh_name() >= names_size)
250 {
251 this->error(_("bad section name offset for section %u: %lu"),
252 i, static_cast<unsigned long>(shdr.get_sh_name()));
253 continue;
254 }
255
256 const char* name = names + shdr.get_sh_name();
257 if (strcmp(name, ".eh_frame") == 0)
258 return true;
259 }
260 }
261 return false;
262}
263
12e14209 264// Read the sections and symbols from an object file.
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265
266template<int size, bool big_endian>
12e14209 267void
f6ce93d6 268Sized_relobj<size, big_endian>::do_read_symbols(Read_symbols_data* sd)
bae7f79e 269{
dbe717ef 270 this->read_section_data(&this->elf_file_, sd);
12e14209 271
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272 const unsigned char* const pshdrs = sd->section_headers->data();
273
274 this->find_symtab(pshdrs);
12e14209 275
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276 const unsigned char* namesu = sd->section_names->data();
277 const char* names = reinterpret_cast<const char*>(namesu);
278 if (this->find_eh_frame(pshdrs, names, sd->section_names_size))
279 this->has_eh_frame_ = true;
280
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281 sd->symbols = NULL;
282 sd->symbols_size = 0;
730cdc88 283 sd->external_symbols_offset = 0;
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284 sd->symbol_names = NULL;
285 sd->symbol_names_size = 0;
286
645f8123 287 if (this->symtab_shndx_ == 0)
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288 {
289 // No symbol table. Weird but legal.
12e14209 290 return;
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291 }
292
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293 // Get the symbol table section header.
294 typename This::Shdr symtabshdr(pshdrs
645f8123 295 + this->symtab_shndx_ * This::shdr_size);
a3ad94ed 296 gold_assert(symtabshdr.get_sh_type() == elfcpp::SHT_SYMTAB);
bae7f79e 297
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298 // If this object has a .eh_frame section, we need all the symbols.
299 // Otherwise we only need the external symbols. While it would be
300 // simpler to just always read all the symbols, I've seen object
301 // files with well over 2000 local symbols, which for a 64-bit
302 // object file format is over 5 pages that we don't need to read
303 // now.
304
75f65a3e 305 const int sym_size = This::sym_size;
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306 const unsigned int loccount = symtabshdr.get_sh_info();
307 this->local_symbol_count_ = loccount;
7bf1f802 308 this->local_values_.resize(loccount);
8383303e 309 section_offset_type locsize = loccount * sym_size;
730cdc88 310 off_t dataoff = symtabshdr.get_sh_offset();
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311 section_size_type datasize =
312 convert_to_section_size_type(symtabshdr.get_sh_size());
730cdc88 313 off_t extoff = dataoff + locsize;
8383303e 314 section_size_type extsize = datasize - locsize;
75f65a3e 315
730cdc88 316 off_t readoff = this->has_eh_frame_ ? dataoff : extoff;
8383303e 317 section_size_type readsize = this->has_eh_frame_ ? datasize : extsize;
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318
319 File_view* fvsymtab = this->get_lasting_view(readoff, readsize, false);
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320
321 // Read the section header for the symbol names.
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322 unsigned int strtab_shndx = symtabshdr.get_sh_link();
323 if (strtab_shndx >= this->shnum())
bae7f79e 324 {
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325 this->error(_("invalid symbol table name index: %u"), strtab_shndx);
326 return;
bae7f79e 327 }
dbe717ef 328 typename This::Shdr strtabshdr(pshdrs + strtab_shndx * This::shdr_size);
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329 if (strtabshdr.get_sh_type() != elfcpp::SHT_STRTAB)
330 {
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331 this->error(_("symbol table name section has wrong type: %u"),
332 static_cast<unsigned int>(strtabshdr.get_sh_type()));
333 return;
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334 }
335
336 // Read the symbol names.
337 File_view* fvstrtab = this->get_lasting_view(strtabshdr.get_sh_offset(),
9eb9fa57 338 strtabshdr.get_sh_size(), true);
bae7f79e 339
12e14209 340 sd->symbols = fvsymtab;
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341 sd->symbols_size = readsize;
342 sd->external_symbols_offset = this->has_eh_frame_ ? locsize : 0;
12e14209 343 sd->symbol_names = fvstrtab;
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344 sd->symbol_names_size =
345 convert_to_section_size_type(strtabshdr.get_sh_size());
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346}
347
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348// Return the section index of symbol SYM. Set *VALUE to its value in
349// the object file. Note that for a symbol which is not defined in
350// this object file, this will set *VALUE to 0 and return SHN_UNDEF;
351// it will not return the final value of the symbol in the link.
352
353template<int size, bool big_endian>
354unsigned int
355Sized_relobj<size, big_endian>::symbol_section_and_value(unsigned int sym,
356 Address* value)
357{
8383303e 358 section_size_type symbols_size;
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359 const unsigned char* symbols = this->section_contents(this->symtab_shndx_,
360 &symbols_size,
361 false);
362
363 const size_t count = symbols_size / This::sym_size;
364 gold_assert(sym < count);
365
366 elfcpp::Sym<size, big_endian> elfsym(symbols + sym * This::sym_size);
367 *value = elfsym.get_st_value();
368 // FIXME: Handle SHN_XINDEX.
369 return elfsym.get_st_shndx();
370}
371
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372// Return whether to include a section group in the link. LAYOUT is
373// used to keep track of which section groups we have already seen.
374// INDEX is the index of the section group and SHDR is the section
375// header. If we do not want to include this group, we set bits in
376// OMIT for each section which should be discarded.
377
378template<int size, bool big_endian>
379bool
f6ce93d6 380Sized_relobj<size, big_endian>::include_section_group(
6a74a719 381 Symbol_table* symtab,
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382 Layout* layout,
383 unsigned int index,
6a74a719 384 const char* name,
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385 const elfcpp::Shdr<size, big_endian>& shdr,
386 std::vector<bool>* omit)
387{
388 // Read the section contents.
389 const unsigned char* pcon = this->get_view(shdr.get_sh_offset(),
9eb9fa57 390 shdr.get_sh_size(), false);
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391 const elfcpp::Elf_Word* pword =
392 reinterpret_cast<const elfcpp::Elf_Word*>(pcon);
393
394 // The first word contains flags. We only care about COMDAT section
395 // groups. Other section groups are always included in the link
396 // just like ordinary sections.
f6ce93d6 397 elfcpp::Elf_Word flags = elfcpp::Swap<32, big_endian>::readval(pword);
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398
399 // Look up the group signature, which is the name of a symbol. This
400 // is a lot of effort to go to to read a string. Why didn't they
6a74a719
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401 // just have the group signature point into the string table, rather
402 // than indirect through a symbol?
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403
404 // Get the appropriate symbol table header (this will normally be
405 // the single SHT_SYMTAB section, but in principle it need not be).
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406 const unsigned int link = shdr.get_sh_link();
407 typename This::Shdr symshdr(this, this->elf_file_.section_header(link));
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408
409 // Read the symbol table entry.
410 if (shdr.get_sh_info() >= symshdr.get_sh_size() / This::sym_size)
411 {
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412 this->error(_("section group %u info %u out of range"),
413 index, shdr.get_sh_info());
414 return false;
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415 }
416 off_t symoff = symshdr.get_sh_offset() + shdr.get_sh_info() * This::sym_size;
cb295612 417 const unsigned char* psym = this->get_view(symoff, This::sym_size, false);
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418 elfcpp::Sym<size, big_endian> sym(psym);
419
a2fb1b05 420 // Read the symbol table names.
8383303e 421 section_size_type symnamelen;
645f8123 422 const unsigned char* psymnamesu;
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423 psymnamesu = this->section_contents(symshdr.get_sh_link(), &symnamelen,
424 true);
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425 const char* psymnames = reinterpret_cast<const char*>(psymnamesu);
426
427 // Get the section group signature.
645f8123 428 if (sym.get_st_name() >= symnamelen)
a2fb1b05 429 {
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430 this->error(_("symbol %u name offset %u out of range"),
431 shdr.get_sh_info(), sym.get_st_name());
432 return false;
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433 }
434
435 const char* signature = psymnames + sym.get_st_name();
436
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437 // It seems that some versions of gas will create a section group
438 // associated with a section symbol, and then fail to give a name to
439 // the section symbol. In such a case, use the name of the section.
440 // FIXME.
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441 std::string secname;
442 if (signature[0] == '\0' && sym.get_st_type() == elfcpp::STT_SECTION)
ead1e424 443 {
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444 secname = this->section_name(sym.get_st_shndx());
445 signature = secname.c_str();
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446 }
447
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448 // Record this section group, and see whether we've already seen one
449 // with the same signature.
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450
451 if ((flags & elfcpp::GRP_COMDAT) == 0
452 || layout->add_comdat(signature, true))
453 {
454 if (parameters->output_is_object())
455 layout->layout_group(symtab, this, index, name, signature, shdr,
456 pword);
457 return true;
458 }
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459
460 // This is a duplicate. We want to discard the sections in this
461 // group.
462 size_t count = shdr.get_sh_size() / sizeof(elfcpp::Elf_Word);
463 for (size_t i = 1; i < count; ++i)
464 {
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465 elfcpp::Elf_Word secnum =
466 elfcpp::Swap<32, big_endian>::readval(pword + i);
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467 if (secnum >= this->shnum())
468 {
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469 this->error(_("section %u in section group %u out of range"),
470 secnum, index);
471 continue;
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472 }
473 (*omit)[secnum] = true;
474 }
475
476 return false;
477}
478
479// Whether to include a linkonce section in the link. NAME is the
480// name of the section and SHDR is the section header.
481
482// Linkonce sections are a GNU extension implemented in the original
483// GNU linker before section groups were defined. The semantics are
484// that we only include one linkonce section with a given name. The
485// name of a linkonce section is normally .gnu.linkonce.T.SYMNAME,
486// where T is the type of section and SYMNAME is the name of a symbol.
487// In an attempt to make linkonce sections interact well with section
488// groups, we try to identify SYMNAME and use it like a section group
489// signature. We want to block section groups with that signature,
490// but not other linkonce sections with that signature. We also use
491// the full name of the linkonce section as a normal section group
492// signature.
493
494template<int size, bool big_endian>
495bool
f6ce93d6 496Sized_relobj<size, big_endian>::include_linkonce_section(
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497 Layout* layout,
498 const char* name,
499 const elfcpp::Shdr<size, big_endian>&)
500{
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501 // In general the symbol name we want will be the string following
502 // the last '.'. However, we have to handle the case of
503 // .gnu.linkonce.t.__i686.get_pc_thunk.bx, which was generated by
504 // some versions of gcc. So we use a heuristic: if the name starts
505 // with ".gnu.linkonce.t.", we use everything after that. Otherwise
506 // we look for the last '.'. We can't always simply skip
507 // ".gnu.linkonce.X", because we have to deal with cases like
508 // ".gnu.linkonce.d.rel.ro.local".
509 const char* const linkonce_t = ".gnu.linkonce.t.";
510 const char* symname;
511 if (strncmp(name, linkonce_t, strlen(linkonce_t)) == 0)
512 symname = name + strlen(linkonce_t);
513 else
514 symname = strrchr(name, '.') + 1;
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515 bool include1 = layout->add_comdat(symname, false);
516 bool include2 = layout->add_comdat(name, true);
517 return include1 && include2;
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518}
519
520// Lay out the input sections. We walk through the sections and check
521// whether they should be included in the link. If they should, we
522// pass them to the Layout object, which will return an output section
523// and an offset.
524
525template<int size, bool big_endian>
526void
7e1edb90 527Sized_relobj<size, big_endian>::do_layout(Symbol_table* symtab,
f6ce93d6 528 Layout* layout,
12e14209 529 Read_symbols_data* sd)
a2fb1b05 530{
dbe717ef 531 const unsigned int shnum = this->shnum();
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532 if (shnum == 0)
533 return;
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534
535 // Get the section headers.
12e14209 536 const unsigned char* pshdrs = sd->section_headers->data();
a2fb1b05
ILT
537
538 // Get the section names.
12e14209 539 const unsigned char* pnamesu = sd->section_names->data();
a2fb1b05
ILT
540 const char* pnames = reinterpret_cast<const char*>(pnamesu);
541
730cdc88
ILT
542 // For each section, record the index of the reloc section if any.
543 // Use 0 to mean that there is no reloc section, -1U to mean that
544 // there is more than one.
545 std::vector<unsigned int> reloc_shndx(shnum, 0);
546 std::vector<unsigned int> reloc_type(shnum, elfcpp::SHT_NULL);
547 // Skip the first, dummy, section.
548 pshdrs += This::shdr_size;
549 for (unsigned int i = 1; i < shnum; ++i, pshdrs += This::shdr_size)
550 {
551 typename This::Shdr shdr(pshdrs);
552
553 unsigned int sh_type = shdr.get_sh_type();
554 if (sh_type == elfcpp::SHT_REL || sh_type == elfcpp::SHT_RELA)
555 {
556 unsigned int target_shndx = shdr.get_sh_info();
557 if (target_shndx == 0 || target_shndx >= shnum)
558 {
559 this->error(_("relocation section %u has bad info %u"),
560 i, target_shndx);
561 continue;
562 }
563
564 if (reloc_shndx[target_shndx] != 0)
565 reloc_shndx[target_shndx] = -1U;
566 else
567 {
568 reloc_shndx[target_shndx] = i;
569 reloc_type[target_shndx] = sh_type;
570 }
571 }
572 }
573
a2fb1b05 574 std::vector<Map_to_output>& map_sections(this->map_to_output());
61ba1cf9 575 map_sections.resize(shnum);
a2fb1b05 576
35cdfc9a
ILT
577 // Whether we've seen a .note.GNU-stack section.
578 bool seen_gnu_stack = false;
579 // The flags of a .note.GNU-stack section.
580 uint64_t gnu_stack_flags = 0;
581
a2fb1b05
ILT
582 // Keep track of which sections to omit.
583 std::vector<bool> omit(shnum, false);
584
6a74a719
ILT
585 // Keep track of reloc sections when doing a relocatable link.
586 const bool output_is_object = parameters->output_is_object();
587 std::vector<unsigned int> reloc_sections;
588
730cdc88
ILT
589 // Keep track of .eh_frame sections.
590 std::vector<unsigned int> eh_frame_sections;
591
f6ce93d6 592 // Skip the first, dummy, section.
730cdc88 593 pshdrs = sd->section_headers->data() + This::shdr_size;
f6ce93d6 594 for (unsigned int i = 1; i < shnum; ++i, pshdrs += This::shdr_size)
a2fb1b05 595 {
75f65a3e 596 typename This::Shdr shdr(pshdrs);
a2fb1b05 597
12e14209 598 if (shdr.get_sh_name() >= sd->section_names_size)
a2fb1b05 599 {
75f2446e
ILT
600 this->error(_("bad section name offset for section %u: %lu"),
601 i, static_cast<unsigned long>(shdr.get_sh_name()));
602 return;
a2fb1b05
ILT
603 }
604
605 const char* name = pnames + shdr.get_sh_name();
606
dbe717ef 607 if (this->handle_gnu_warning_section(name, i, symtab))
f6ce93d6 608 {
6a74a719 609 if (!output_is_object)
f6ce93d6
ILT
610 omit[i] = true;
611 }
612
35cdfc9a
ILT
613 // The .note.GNU-stack section is special. It gives the
614 // protection flags that this object file requires for the stack
615 // in memory.
616 if (strcmp(name, ".note.GNU-stack") == 0)
617 {
618 seen_gnu_stack = true;
619 gnu_stack_flags |= shdr.get_sh_flags();
620 omit[i] = true;
621 }
622
a2fb1b05
ILT
623 bool discard = omit[i];
624 if (!discard)
625 {
626 if (shdr.get_sh_type() == elfcpp::SHT_GROUP)
627 {
6a74a719
ILT
628 if (!this->include_section_group(symtab, layout, i, name, shdr,
629 &omit))
a2fb1b05
ILT
630 discard = true;
631 }
cba134d6
ILT
632 else if ((shdr.get_sh_flags() & elfcpp::SHF_GROUP) == 0
633 && Layout::is_linkonce(name))
a2fb1b05
ILT
634 {
635 if (!this->include_linkonce_section(layout, name, shdr))
636 discard = true;
637 }
638 }
639
640 if (discard)
641 {
642 // Do not include this section in the link.
643 map_sections[i].output_section = NULL;
644 continue;
645 }
646
6a74a719
ILT
647 // When doing a relocatable link we are going to copy input
648 // reloc sections into the output. We only want to copy the
649 // ones associated with sections which are not being discarded.
650 // However, we don't know that yet for all sections. So save
651 // reloc sections and process them later.
652 if (output_is_object
653 && (shdr.get_sh_type() == elfcpp::SHT_REL
654 || shdr.get_sh_type() == elfcpp::SHT_RELA))
655 {
656 reloc_sections.push_back(i);
657 continue;
658 }
659
660 if (output_is_object && shdr.get_sh_type() == elfcpp::SHT_GROUP)
661 continue;
662
730cdc88
ILT
663 // The .eh_frame section is special. It holds exception frame
664 // information that we need to read in order to generate the
665 // exception frame header. We process these after all the other
666 // sections so that the exception frame reader can reliably
667 // determine which sections are being discarded, and discard the
668 // corresponding information.
6a74a719 669 if (!output_is_object
730cdc88
ILT
670 && strcmp(name, ".eh_frame") == 0
671 && this->check_eh_frame_flags(&shdr))
672 {
673 eh_frame_sections.push_back(i);
674 continue;
675 }
676
a2fb1b05 677 off_t offset;
730cdc88
ILT
678 Output_section* os = layout->layout(this, i, name, shdr,
679 reloc_shndx[i], reloc_type[i],
680 &offset);
a2fb1b05
ILT
681
682 map_sections[i].output_section = os;
683 map_sections[i].offset = offset;
730cdc88
ILT
684
685 // If this section requires special handling, and if there are
686 // relocs that apply to it, then we must do the special handling
687 // before we apply the relocs.
688 if (offset == -1 && reloc_shndx[i] != 0)
689 this->set_relocs_must_follow_section_writes();
12e14209
ILT
690 }
691
35cdfc9a
ILT
692 layout->layout_gnu_stack(seen_gnu_stack, gnu_stack_flags);
693
6a74a719
ILT
694 // When doing a relocatable link handle the reloc sections at the
695 // end.
696 if (output_is_object)
697 this->size_relocatable_relocs();
698 for (std::vector<unsigned int>::const_iterator p = reloc_sections.begin();
699 p != reloc_sections.end();
700 ++p)
701 {
702 unsigned int i = *p;
703 const unsigned char* pshdr;
704 pshdr = sd->section_headers->data() + i * This::shdr_size;
705 typename This::Shdr shdr(pshdr);
706
707 unsigned int data_shndx = shdr.get_sh_info();
708 if (data_shndx >= shnum)
709 {
710 // We already warned about this above.
711 continue;
712 }
713
714 Output_section* data_section = map_sections[data_shndx].output_section;
715 if (data_section == NULL)
716 {
717 map_sections[i].output_section = NULL;
718 continue;
719 }
720
721 Relocatable_relocs* rr = new Relocatable_relocs();
722 this->set_relocatable_relocs(i, rr);
723
724 Output_section* os = layout->layout_reloc(this, i, shdr, data_section,
725 rr);
726 map_sections[i].output_section = os;
727 map_sections[i].offset = -1;
728 }
729
730cdc88
ILT
730 // Handle the .eh_frame sections at the end.
731 for (std::vector<unsigned int>::const_iterator p = eh_frame_sections.begin();
732 p != eh_frame_sections.end();
733 ++p)
734 {
735 gold_assert(this->has_eh_frame_);
736 gold_assert(sd->external_symbols_offset != 0);
737
738 unsigned int i = *p;
739 const unsigned char *pshdr;
740 pshdr = sd->section_headers->data() + i * This::shdr_size;
741 typename This::Shdr shdr(pshdr);
742
743 off_t offset;
744 Output_section* os = layout->layout_eh_frame(this,
745 sd->symbols->data(),
746 sd->symbols_size,
747 sd->symbol_names->data(),
748 sd->symbol_names_size,
749 i, shdr,
750 reloc_shndx[i],
751 reloc_type[i],
752 &offset);
753 map_sections[i].output_section = os;
754 map_sections[i].offset = offset;
755
756 // If this section requires special handling, and if there are
757 // relocs that apply to it, then we must do the special handling
758 // before we apply the relocs.
759 if (offset == -1 && reloc_shndx[i] != 0)
760 this->set_relocs_must_follow_section_writes();
761 }
762
12e14209
ILT
763 delete sd->section_headers;
764 sd->section_headers = NULL;
765 delete sd->section_names;
766 sd->section_names = NULL;
767}
768
769// Add the symbols to the symbol table.
770
771template<int size, bool big_endian>
772void
f6ce93d6 773Sized_relobj<size, big_endian>::do_add_symbols(Symbol_table* symtab,
12e14209
ILT
774 Read_symbols_data* sd)
775{
776 if (sd->symbols == NULL)
777 {
a3ad94ed 778 gold_assert(sd->symbol_names == NULL);
12e14209
ILT
779 return;
780 }
a2fb1b05 781
12e14209 782 const int sym_size = This::sym_size;
730cdc88
ILT
783 size_t symcount = ((sd->symbols_size - sd->external_symbols_offset)
784 / sym_size);
8383303e 785 if (symcount * sym_size != sd->symbols_size - sd->external_symbols_offset)
12e14209 786 {
75f2446e
ILT
787 this->error(_("size of symbols is not multiple of symbol size"));
788 return;
a2fb1b05 789 }
12e14209 790
730cdc88 791 this->symbols_.resize(symcount);
12e14209 792
12e14209
ILT
793 const char* sym_names =
794 reinterpret_cast<const char*>(sd->symbol_names->data());
730cdc88
ILT
795 symtab->add_from_relobj(this,
796 sd->symbols->data() + sd->external_symbols_offset,
797 symcount, sym_names, sd->symbol_names_size,
798 &this->symbols_);
12e14209
ILT
799
800 delete sd->symbols;
801 sd->symbols = NULL;
802 delete sd->symbol_names;
803 sd->symbol_names = NULL;
bae7f79e
ILT
804}
805
cb295612
ILT
806// First pass over the local symbols. Here we add their names to
807// *POOL and *DYNPOOL, and we store the symbol value in
808// THIS->LOCAL_VALUES_. This function is always called from a
809// singleton thread. This is followed by a call to
810// finalize_local_symbols.
75f65a3e
ILT
811
812template<int size, bool big_endian>
7bf1f802
ILT
813void
814Sized_relobj<size, big_endian>::do_count_local_symbols(Stringpool* pool,
815 Stringpool* dynpool)
75f65a3e 816{
a3ad94ed 817 gold_assert(this->symtab_shndx_ != -1U);
645f8123 818 if (this->symtab_shndx_ == 0)
61ba1cf9
ILT
819 {
820 // This object has no symbols. Weird but legal.
7bf1f802 821 return;
61ba1cf9
ILT
822 }
823
75f65a3e 824 // Read the symbol table section header.
645f8123
ILT
825 const unsigned int symtab_shndx = this->symtab_shndx_;
826 typename This::Shdr symtabshdr(this,
827 this->elf_file_.section_header(symtab_shndx));
a3ad94ed 828 gold_assert(symtabshdr.get_sh_type() == elfcpp::SHT_SYMTAB);
75f65a3e
ILT
829
830 // Read the local symbols.
75f65a3e 831 const int sym_size = This::sym_size;
92e059d8 832 const unsigned int loccount = this->local_symbol_count_;
a3ad94ed 833 gold_assert(loccount == symtabshdr.get_sh_info());
75f65a3e
ILT
834 off_t locsize = loccount * sym_size;
835 const unsigned char* psyms = this->get_view(symtabshdr.get_sh_offset(),
9eb9fa57 836 locsize, true);
75f65a3e 837
75f65a3e 838 // Read the symbol names.
645f8123 839 const unsigned int strtab_shndx = symtabshdr.get_sh_link();
8383303e 840 section_size_type strtab_size;
645f8123 841 const unsigned char* pnamesu = this->section_contents(strtab_shndx,
9eb9fa57
ILT
842 &strtab_size,
843 true);
75f65a3e
ILT
844 const char* pnames = reinterpret_cast<const char*>(pnamesu);
845
846 // Loop over the local symbols.
847
c06b7b0b 848 const std::vector<Map_to_output>& mo(this->map_to_output());
75f65a3e 849 unsigned int shnum = this->shnum();
61ba1cf9 850 unsigned int count = 0;
7bf1f802 851 unsigned int dyncount = 0;
75f65a3e
ILT
852 // Skip the first, dummy, symbol.
853 psyms += sym_size;
61ba1cf9 854 for (unsigned int i = 1; i < loccount; ++i, psyms += sym_size)
75f65a3e
ILT
855 {
856 elfcpp::Sym<size, big_endian> sym(psyms);
857
b8e6aad9
ILT
858 Symbol_value<size>& lv(this->local_values_[i]);
859
75f65a3e 860 unsigned int shndx = sym.get_st_shndx();
b8e6aad9 861 lv.set_input_shndx(shndx);
75f65a3e 862
063f12a8
ILT
863 if (sym.get_st_type() == elfcpp::STT_SECTION)
864 lv.set_is_section_symbol();
7bf1f802
ILT
865 else if (sym.get_st_type() == elfcpp::STT_TLS)
866 lv.set_is_tls_symbol();
867
868 // Save the input symbol value for use in do_finalize_local_symbols().
869 lv.set_input_value(sym.get_st_value());
870
871 // Decide whether this symbol should go into the output file.
063f12a8 872
7bf1f802
ILT
873 if (shndx < shnum && mo[shndx].output_section == NULL)
874 {
875 lv.set_no_output_symtab_entry();
876 continue;
877 }
878
879 if (sym.get_st_type() == elfcpp::STT_SECTION)
880 {
881 lv.set_no_output_symtab_entry();
882 continue;
883 }
884
885 if (sym.get_st_name() >= strtab_size)
886 {
887 this->error(_("local symbol %u section name out of range: %u >= %u"),
888 i, sym.get_st_name(),
889 static_cast<unsigned int>(strtab_size));
890 lv.set_no_output_symtab_entry();
891 continue;
892 }
893
894 // Add the symbol to the symbol table string pool.
895 const char* name = pnames + sym.get_st_name();
896 pool->add(name, true, NULL);
897 ++count;
898
899 // If needed, add the symbol to the dynamic symbol table string pool.
900 if (lv.needs_output_dynsym_entry())
901 {
902 dynpool->add(name, true, NULL);
903 ++dyncount;
904 }
905 }
906
907 this->output_local_symbol_count_ = count;
908 this->output_local_dynsym_count_ = dyncount;
909}
910
cb295612 911// Finalize the local symbols. Here we set the final value in
7bf1f802 912// THIS->LOCAL_VALUES_ and set their output symbol table indexes.
17a1d0a9 913// This function is always called from a singleton thread. The actual
7bf1f802
ILT
914// output of the local symbols will occur in a separate task.
915
916template<int size, bool big_endian>
917unsigned int
918Sized_relobj<size, big_endian>::do_finalize_local_symbols(unsigned int index,
919 off_t off)
920{
921 gold_assert(off == static_cast<off_t>(align_address(off, size >> 3)));
922
923 const unsigned int loccount = this->local_symbol_count_;
924 this->local_symbol_offset_ = off;
925
926 const std::vector<Map_to_output>& mo(this->map_to_output());
927 unsigned int shnum = this->shnum();
928
929 for (unsigned int i = 1; i < loccount; ++i)
930 {
931 Symbol_value<size>& lv(this->local_values_[i]);
932
933 unsigned int shndx = lv.input_shndx();
934
935 // Set the output symbol value.
936
75f65a3e
ILT
937 if (shndx >= elfcpp::SHN_LORESERVE)
938 {
61ba1cf9 939 if (shndx == elfcpp::SHN_ABS)
7bf1f802 940 lv.set_output_value(lv.input_value());
61ba1cf9 941 else
75f65a3e 942 {
61ba1cf9 943 // FIXME: Handle SHN_XINDEX.
75f2446e
ILT
944 this->error(_("unknown section index %u for local symbol %u"),
945 shndx, i);
946 lv.set_output_value(0);
75f65a3e 947 }
75f65a3e
ILT
948 }
949 else
950 {
951 if (shndx >= shnum)
952 {
75f2446e
ILT
953 this->error(_("local symbol %u section index %u out of range"),
954 i, shndx);
955 shndx = 0;
75f65a3e
ILT
956 }
957
b8e6aad9
ILT
958 Output_section* os = mo[shndx].output_section;
959
960 if (os == NULL)
61ba1cf9 961 {
b8e6aad9 962 lv.set_output_value(0);
61ba1cf9
ILT
963 continue;
964 }
7bf1f802
ILT
965 else if (mo[shndx].offset == -1)
966 {
a9a60db6
ILT
967 // This is a SHF_MERGE section or one which otherwise
968 // requires special handling. We get the output address
969 // of the start of the merged section. If this is not a
970 // section symbol, we can then determine the final
971 // value. If it is a section symbol, we can not, as in
972 // that case we have to consider the addend to determine
973 // the value to use in a relocation.
a9a60db6 974 if (!lv.is_section_symbol())
8d32f935
ILT
975 lv.set_output_value(os->output_address(this, shndx,
976 lv.input_value()));
a9a60db6
ILT
977 else
978 {
8d32f935
ILT
979 section_offset_type start =
980 os->starting_output_address(this, shndx);
a9a60db6
ILT
981 Merged_symbol_value<size>* msv =
982 new Merged_symbol_value<size>(lv.input_value(), start);
983 lv.set_merged_symbol_value(msv);
984 }
7bf1f802
ILT
985 }
986 else if (lv.is_tls_symbol())
a9a60db6 987 lv.set_output_value(os->tls_offset()
7bf1f802
ILT
988 + mo[shndx].offset
989 + lv.input_value());
b8e6aad9 990 else
a9a60db6 991 lv.set_output_value(os->address()
b8e6aad9 992 + mo[shndx].offset
7bf1f802 993 + lv.input_value());
75f65a3e
ILT
994 }
995
7bf1f802
ILT
996 if (lv.needs_output_symtab_entry())
997 {
998 lv.set_output_symtab_index(index);
999 ++index;
1000 }
1001 }
1002 return index;
1003}
645f8123 1004
7bf1f802 1005// Set the output dynamic symbol table indexes for the local variables.
c06b7b0b 1006
7bf1f802
ILT
1007template<int size, bool big_endian>
1008unsigned int
1009Sized_relobj<size, big_endian>::do_set_local_dynsym_indexes(unsigned int index)
1010{
1011 const unsigned int loccount = this->local_symbol_count_;
1012 for (unsigned int i = 1; i < loccount; ++i)
1013 {
1014 Symbol_value<size>& lv(this->local_values_[i]);
1015 if (lv.needs_output_dynsym_entry())
1016 {
1017 lv.set_output_dynsym_index(index);
1018 ++index;
1019 }
75f65a3e 1020 }
7bf1f802
ILT
1021 return index;
1022}
75f65a3e 1023
7bf1f802
ILT
1024// Set the offset where local dynamic symbol information will be stored.
1025// Returns the count of local symbols contributed to the symbol table by
1026// this object.
61ba1cf9 1027
7bf1f802
ILT
1028template<int size, bool big_endian>
1029unsigned int
1030Sized_relobj<size, big_endian>::do_set_local_dynsym_offset(off_t off)
1031{
1032 gold_assert(off == static_cast<off_t>(align_address(off, size >> 3)));
1033 this->local_dynsym_offset_ = off;
1034 return this->output_local_dynsym_count_;
75f65a3e
ILT
1035}
1036
e727fa71
ILT
1037// Return the value of the local symbol symndx.
1038template<int size, bool big_endian>
1039typename elfcpp::Elf_types<size>::Elf_Addr
1040Sized_relobj<size, big_endian>::local_symbol_value(unsigned int symndx) const
1041{
1042 gold_assert(symndx < this->local_symbol_count_);
1043 gold_assert(symndx < this->local_values_.size());
1044 const Symbol_value<size>& lv(this->local_values_[symndx]);
1045 return lv.value(this, 0);
1046}
1047
61ba1cf9
ILT
1048// Write out the local symbols.
1049
1050template<int size, bool big_endian>
1051void
17a1d0a9
ILT
1052Sized_relobj<size, big_endian>::write_local_symbols(
1053 Output_file* of,
1054 const Stringpool* sympool,
1055 const Stringpool* dynpool)
61ba1cf9 1056{
7bf1f802 1057 if (parameters->strip_all() && this->output_local_dynsym_count_ == 0)
9e2dcb77
ILT
1058 return;
1059
a3ad94ed 1060 gold_assert(this->symtab_shndx_ != -1U);
645f8123 1061 if (this->symtab_shndx_ == 0)
61ba1cf9
ILT
1062 {
1063 // This object has no symbols. Weird but legal.
1064 return;
1065 }
1066
1067 // Read the symbol table section header.
645f8123
ILT
1068 const unsigned int symtab_shndx = this->symtab_shndx_;
1069 typename This::Shdr symtabshdr(this,
1070 this->elf_file_.section_header(symtab_shndx));
a3ad94ed 1071 gold_assert(symtabshdr.get_sh_type() == elfcpp::SHT_SYMTAB);
92e059d8 1072 const unsigned int loccount = this->local_symbol_count_;
a3ad94ed 1073 gold_assert(loccount == symtabshdr.get_sh_info());
61ba1cf9
ILT
1074
1075 // Read the local symbols.
1076 const int sym_size = This::sym_size;
92e059d8 1077 off_t locsize = loccount * sym_size;
61ba1cf9 1078 const unsigned char* psyms = this->get_view(symtabshdr.get_sh_offset(),
9eb9fa57 1079 locsize, false);
61ba1cf9 1080
61ba1cf9 1081 // Read the symbol names.
645f8123 1082 const unsigned int strtab_shndx = symtabshdr.get_sh_link();
8383303e 1083 section_size_type strtab_size;
645f8123 1084 const unsigned char* pnamesu = this->section_contents(strtab_shndx,
9eb9fa57 1085 &strtab_size,
cb295612 1086 false);
61ba1cf9
ILT
1087 const char* pnames = reinterpret_cast<const char*>(pnamesu);
1088
7bf1f802
ILT
1089 // Get views into the output file for the portions of the symbol table
1090 // and the dynamic symbol table that we will be writing.
61ba1cf9 1091 off_t output_size = this->output_local_symbol_count_ * sym_size;
f2619d6c 1092 unsigned char* oview = NULL;
7bf1f802
ILT
1093 if (output_size > 0)
1094 oview = of->get_output_view(this->local_symbol_offset_, output_size);
1095
1096 off_t dyn_output_size = this->output_local_dynsym_count_ * sym_size;
1097 unsigned char* dyn_oview = NULL;
1098 if (dyn_output_size > 0)
1099 dyn_oview = of->get_output_view(this->local_dynsym_offset_,
1100 dyn_output_size);
61ba1cf9 1101
c06b7b0b
ILT
1102 const std::vector<Map_to_output>& mo(this->map_to_output());
1103
a3ad94ed 1104 gold_assert(this->local_values_.size() == loccount);
61ba1cf9 1105
61ba1cf9 1106 unsigned char* ov = oview;
7bf1f802 1107 unsigned char* dyn_ov = dyn_oview;
c06b7b0b 1108 psyms += sym_size;
92e059d8 1109 for (unsigned int i = 1; i < loccount; ++i, psyms += sym_size)
61ba1cf9
ILT
1110 {
1111 elfcpp::Sym<size, big_endian> isym(psyms);
f6ce93d6 1112
61ba1cf9
ILT
1113 unsigned int st_shndx = isym.get_st_shndx();
1114 if (st_shndx < elfcpp::SHN_LORESERVE)
1115 {
a3ad94ed 1116 gold_assert(st_shndx < mo.size());
61ba1cf9
ILT
1117 if (mo[st_shndx].output_section == NULL)
1118 continue;
ead1e424 1119 st_shndx = mo[st_shndx].output_section->out_shndx();
61ba1cf9
ILT
1120 }
1121
7bf1f802
ILT
1122 // Write the symbol to the output symbol table.
1123 if (!parameters->strip_all()
1124 && this->local_values_[i].needs_output_symtab_entry())
1125 {
1126 elfcpp::Sym_write<size, big_endian> osym(ov);
1127
1128 gold_assert(isym.get_st_name() < strtab_size);
1129 const char* name = pnames + isym.get_st_name();
1130 osym.put_st_name(sympool->get_offset(name));
1131 osym.put_st_value(this->local_values_[i].value(this, 0));
1132 osym.put_st_size(isym.get_st_size());
1133 osym.put_st_info(isym.get_st_info());
1134 osym.put_st_other(isym.get_st_other());
1135 osym.put_st_shndx(st_shndx);
1136
1137 ov += sym_size;
1138 }
1139
1140 // Write the symbol to the output dynamic symbol table.
1141 if (this->local_values_[i].needs_output_dynsym_entry())
1142 {
1143 gold_assert(dyn_ov < dyn_oview + dyn_output_size);
1144 elfcpp::Sym_write<size, big_endian> osym(dyn_ov);
1145
1146 gold_assert(isym.get_st_name() < strtab_size);
1147 const char* name = pnames + isym.get_st_name();
1148 osym.put_st_name(dynpool->get_offset(name));
1149 osym.put_st_value(this->local_values_[i].value(this, 0));
1150 osym.put_st_size(isym.get_st_size());
1151 osym.put_st_info(isym.get_st_info());
1152 osym.put_st_other(isym.get_st_other());
1153 osym.put_st_shndx(st_shndx);
1154
1155 dyn_ov += sym_size;
1156 }
1157 }
f6ce93d6 1158
61ba1cf9 1159
7bf1f802
ILT
1160 if (output_size > 0)
1161 {
1162 gold_assert(ov - oview == output_size);
1163 of->write_output_view(this->local_symbol_offset_, output_size, oview);
61ba1cf9
ILT
1164 }
1165
7bf1f802
ILT
1166 if (dyn_output_size > 0)
1167 {
1168 gold_assert(dyn_ov - dyn_oview == dyn_output_size);
1169 of->write_output_view(this->local_dynsym_offset_, dyn_output_size,
1170 dyn_oview);
1171 }
61ba1cf9
ILT
1172}
1173
f7e2ee48
ILT
1174// Set *INFO to symbolic information about the offset OFFSET in the
1175// section SHNDX. Return true if we found something, false if we
1176// found nothing.
1177
1178template<int size, bool big_endian>
1179bool
1180Sized_relobj<size, big_endian>::get_symbol_location_info(
1181 unsigned int shndx,
1182 off_t offset,
1183 Symbol_location_info* info)
1184{
1185 if (this->symtab_shndx_ == 0)
1186 return false;
1187
8383303e 1188 section_size_type symbols_size;
f7e2ee48
ILT
1189 const unsigned char* symbols = this->section_contents(this->symtab_shndx_,
1190 &symbols_size,
1191 false);
1192
1193 unsigned int symbol_names_shndx = this->section_link(this->symtab_shndx_);
8383303e 1194 section_size_type names_size;
f7e2ee48
ILT
1195 const unsigned char* symbol_names_u =
1196 this->section_contents(symbol_names_shndx, &names_size, false);
1197 const char* symbol_names = reinterpret_cast<const char*>(symbol_names_u);
1198
1199 const int sym_size = This::sym_size;
1200 const size_t count = symbols_size / sym_size;
1201
1202 const unsigned char* p = symbols;
1203 for (size_t i = 0; i < count; ++i, p += sym_size)
1204 {
1205 elfcpp::Sym<size, big_endian> sym(p);
1206
1207 if (sym.get_st_type() == elfcpp::STT_FILE)
1208 {
1209 if (sym.get_st_name() >= names_size)
1210 info->source_file = "(invalid)";
1211 else
1212 info->source_file = symbol_names + sym.get_st_name();
1213 }
1214 else if (sym.get_st_shndx() == shndx
1215 && static_cast<off_t>(sym.get_st_value()) <= offset
1216 && (static_cast<off_t>(sym.get_st_value() + sym.get_st_size())
5c2c6c95 1217 > offset))
f7e2ee48
ILT
1218 {
1219 if (sym.get_st_name() > names_size)
1220 info->enclosing_symbol_name = "(invalid)";
1221 else
a2b1aa12
ILT
1222 {
1223 info->enclosing_symbol_name = symbol_names + sym.get_st_name();
1224 if (parameters->demangle())
1225 {
1226 char* demangled_name = cplus_demangle(
1227 info->enclosing_symbol_name.c_str(),
1228 DMGL_ANSI | DMGL_PARAMS);
1229 if (demangled_name != NULL)
1230 {
1231 info->enclosing_symbol_name.assign(demangled_name);
1232 free(demangled_name);
1233 }
1234 }
1235 }
f7e2ee48
ILT
1236 return true;
1237 }
1238 }
1239
1240 return false;
1241}
1242
54dc6425
ILT
1243// Input_objects methods.
1244
008db82e
ILT
1245// Add a regular relocatable object to the list. Return false if this
1246// object should be ignored.
f6ce93d6 1247
008db82e 1248bool
54dc6425
ILT
1249Input_objects::add_object(Object* obj)
1250{
fbfba508 1251 // Set the global target from the first object file we recognize.
019cdb1a 1252 Target* target = obj->target();
fbfba508
ILT
1253 if (!parameters->is_target_valid())
1254 set_parameters_target(target);
1255 else if (target != parameters->target())
019cdb1a 1256 {
fbfba508 1257 obj->error(_("incompatible target"));
019cdb1a
ILT
1258 return false;
1259 }
1260
008db82e 1261 if (!obj->is_dynamic())
f6ce93d6 1262 this->relobj_list_.push_back(static_cast<Relobj*>(obj));
008db82e
ILT
1263 else
1264 {
1265 // See if this is a duplicate SONAME.
1266 Dynobj* dynobj = static_cast<Dynobj*>(obj);
9a2d6984 1267 const char* soname = dynobj->soname();
008db82e
ILT
1268
1269 std::pair<Unordered_set<std::string>::iterator, bool> ins =
9a2d6984 1270 this->sonames_.insert(soname);
008db82e
ILT
1271 if (!ins.second)
1272 {
1273 // We have already seen a dynamic object with this soname.
1274 return false;
1275 }
1276
1277 this->dynobj_list_.push_back(dynobj);
9a2d6984
ILT
1278
1279 // If this is -lc, remember the directory in which we found it.
1280 // We use this when issuing warnings about undefined symbols: as
1281 // a heuristic, we don't warn about system libraries found in
1282 // the same directory as -lc.
1283 if (strncmp(soname, "libc.so", 7) == 0)
1284 {
1285 const char* object_name = dynobj->name().c_str();
1286 const char* base = lbasename(object_name);
1287 if (base != object_name)
1288 this->system_library_directory_.assign(object_name,
1289 base - 1 - object_name);
1290 }
008db82e 1291 }
75f65a3e 1292
008db82e 1293 return true;
54dc6425
ILT
1294}
1295
9a2d6984
ILT
1296// Return whether an object was found in the system library directory.
1297
1298bool
1299Input_objects::found_in_system_library_directory(const Object* object) const
1300{
1301 return (!this->system_library_directory_.empty()
1302 && object->name().compare(0,
1303 this->system_library_directory_.size(),
1304 this->system_library_directory_) == 0);
1305}
1306
e2827e5f
ILT
1307// For each dynamic object, record whether we've seen all of its
1308// explicit dependencies.
1309
1310void
1311Input_objects::check_dynamic_dependencies() const
1312{
1313 for (Dynobj_list::const_iterator p = this->dynobj_list_.begin();
1314 p != this->dynobj_list_.end();
1315 ++p)
1316 {
1317 const Dynobj::Needed& needed((*p)->needed());
1318 bool found_all = true;
1319 for (Dynobj::Needed::const_iterator pneeded = needed.begin();
1320 pneeded != needed.end();
1321 ++pneeded)
1322 {
1323 if (this->sonames_.find(*pneeded) == this->sonames_.end())
1324 {
1325 found_all = false;
1326 break;
1327 }
1328 }
1329 (*p)->set_has_unknown_needed_entries(!found_all);
1330 }
1331}
1332
92e059d8
ILT
1333// Relocate_info methods.
1334
1335// Return a string describing the location of a relocation. This is
1336// only used in error messages.
1337
1338template<int size, bool big_endian>
1339std::string
f7e2ee48 1340Relocate_info<size, big_endian>::location(size_t, off_t offset) const
92e059d8 1341{
5c2c6c95
ILT
1342 // See if we can get line-number information from debugging sections.
1343 std::string filename;
1344 std::string file_and_lineno; // Better than filename-only, if available.
4c50553d 1345
a55ce7fe 1346 Sized_dwarf_line_info<size, big_endian> line_info(this->object);
24badc65
ILT
1347 // This will be "" if we failed to parse the debug info for any reason.
1348 file_and_lineno = line_info.addr2line(this->data_shndx, offset);
4c50553d 1349
92e059d8 1350 std::string ret(this->object->name());
f7e2ee48
ILT
1351 ret += ':';
1352 Symbol_location_info info;
1353 if (this->object->get_symbol_location_info(this->data_shndx, offset, &info))
1354 {
1355 ret += " in function ";
1356 ret += info.enclosing_symbol_name;
1357 ret += ":";
5c2c6c95
ILT
1358 filename = info.source_file;
1359 }
1360
1361 if (!file_and_lineno.empty())
1362 ret += file_and_lineno;
1363 else
1364 {
1365 if (!filename.empty())
1366 ret += filename;
1367 ret += "(";
1368 ret += this->object->section_name(this->data_shndx);
1369 char buf[100];
1370 // Offsets into sections have to be positive.
1371 snprintf(buf, sizeof(buf), "+0x%lx", static_cast<long>(offset));
1372 ret += buf;
1373 ret += ")";
f7e2ee48 1374 }
92e059d8
ILT
1375 return ret;
1376}
1377
bae7f79e
ILT
1378} // End namespace gold.
1379
1380namespace
1381{
1382
1383using namespace gold;
1384
1385// Read an ELF file with the header and return the appropriate
1386// instance of Object.
1387
1388template<int size, bool big_endian>
1389Object*
1390make_elf_sized_object(const std::string& name, Input_file* input_file,
1391 off_t offset, const elfcpp::Ehdr<size, big_endian>& ehdr)
1392{
1393 int et = ehdr.get_e_type();
bae7f79e
ILT
1394 if (et == elfcpp::ET_REL)
1395 {
f6ce93d6
ILT
1396 Sized_relobj<size, big_endian>* obj =
1397 new Sized_relobj<size, big_endian>(name, input_file, offset, ehdr);
bae7f79e
ILT
1398 obj->setup(ehdr);
1399 return obj;
1400 }
dbe717ef
ILT
1401 else if (et == elfcpp::ET_DYN)
1402 {
1403 Sized_dynobj<size, big_endian>* obj =
1404 new Sized_dynobj<size, big_endian>(name, input_file, offset, ehdr);
1405 obj->setup(ehdr);
1406 return obj;
1407 }
bae7f79e
ILT
1408 else
1409 {
75f2446e
ILT
1410 gold_error(_("%s: unsupported ELF file type %d"),
1411 name.c_str(), et);
1412 return NULL;
bae7f79e
ILT
1413 }
1414}
1415
1416} // End anonymous namespace.
1417
1418namespace gold
1419{
1420
1421// Read an ELF file and return the appropriate instance of Object.
1422
1423Object*
1424make_elf_object(const std::string& name, Input_file* input_file, off_t offset,
8383303e 1425 const unsigned char* p, section_offset_type bytes)
bae7f79e
ILT
1426{
1427 if (bytes < elfcpp::EI_NIDENT)
1428 {
75f2446e
ILT
1429 gold_error(_("%s: ELF file too short"), name.c_str());
1430 return NULL;
bae7f79e
ILT
1431 }
1432
1433 int v = p[elfcpp::EI_VERSION];
1434 if (v != elfcpp::EV_CURRENT)
1435 {
1436 if (v == elfcpp::EV_NONE)
75f2446e 1437 gold_error(_("%s: invalid ELF version 0"), name.c_str());
bae7f79e 1438 else
75f2446e
ILT
1439 gold_error(_("%s: unsupported ELF version %d"), name.c_str(), v);
1440 return NULL;
bae7f79e
ILT
1441 }
1442
1443 int c = p[elfcpp::EI_CLASS];
1444 if (c == elfcpp::ELFCLASSNONE)
1445 {
75f2446e
ILT
1446 gold_error(_("%s: invalid ELF class 0"), name.c_str());
1447 return NULL;
bae7f79e
ILT
1448 }
1449 else if (c != elfcpp::ELFCLASS32
1450 && c != elfcpp::ELFCLASS64)
1451 {
75f2446e
ILT
1452 gold_error(_("%s: unsupported ELF class %d"), name.c_str(), c);
1453 return NULL;
bae7f79e
ILT
1454 }
1455
1456 int d = p[elfcpp::EI_DATA];
1457 if (d == elfcpp::ELFDATANONE)
1458 {
75f2446e
ILT
1459 gold_error(_("%s: invalid ELF data encoding"), name.c_str());
1460 return NULL;
bae7f79e
ILT
1461 }
1462 else if (d != elfcpp::ELFDATA2LSB
1463 && d != elfcpp::ELFDATA2MSB)
1464 {
75f2446e
ILT
1465 gold_error(_("%s: unsupported ELF data encoding %d"), name.c_str(), d);
1466 return NULL;
bae7f79e
ILT
1467 }
1468
1469 bool big_endian = d == elfcpp::ELFDATA2MSB;
1470
1471 if (c == elfcpp::ELFCLASS32)
1472 {
1473 if (bytes < elfcpp::Elf_sizes<32>::ehdr_size)
1474 {
75f2446e
ILT
1475 gold_error(_("%s: ELF file too short"), name.c_str());
1476 return NULL;
bae7f79e
ILT
1477 }
1478 if (big_endian)
1479 {
193a53d9 1480#ifdef HAVE_TARGET_32_BIG
bae7f79e
ILT
1481 elfcpp::Ehdr<32, true> ehdr(p);
1482 return make_elf_sized_object<32, true>(name, input_file,
1483 offset, ehdr);
193a53d9 1484#else
75f2446e
ILT
1485 gold_error(_("%s: not configured to support "
1486 "32-bit big-endian object"),
1487 name.c_str());
1488 return NULL;
193a53d9 1489#endif
bae7f79e
ILT
1490 }
1491 else
1492 {
193a53d9 1493#ifdef HAVE_TARGET_32_LITTLE
bae7f79e
ILT
1494 elfcpp::Ehdr<32, false> ehdr(p);
1495 return make_elf_sized_object<32, false>(name, input_file,
1496 offset, ehdr);
193a53d9 1497#else
75f2446e
ILT
1498 gold_error(_("%s: not configured to support "
1499 "32-bit little-endian object"),
1500 name.c_str());
1501 return NULL;
193a53d9 1502#endif
bae7f79e
ILT
1503 }
1504 }
1505 else
1506 {
1507 if (bytes < elfcpp::Elf_sizes<32>::ehdr_size)
1508 {
75f2446e
ILT
1509 gold_error(_("%s: ELF file too short"), name.c_str());
1510 return NULL;
bae7f79e
ILT
1511 }
1512 if (big_endian)
1513 {
193a53d9 1514#ifdef HAVE_TARGET_64_BIG
bae7f79e
ILT
1515 elfcpp::Ehdr<64, true> ehdr(p);
1516 return make_elf_sized_object<64, true>(name, input_file,
1517 offset, ehdr);
193a53d9 1518#else
75f2446e
ILT
1519 gold_error(_("%s: not configured to support "
1520 "64-bit big-endian object"),
1521 name.c_str());
1522 return NULL;
193a53d9 1523#endif
bae7f79e
ILT
1524 }
1525 else
1526 {
193a53d9 1527#ifdef HAVE_TARGET_64_LITTLE
bae7f79e
ILT
1528 elfcpp::Ehdr<64, false> ehdr(p);
1529 return make_elf_sized_object<64, false>(name, input_file,
1530 offset, ehdr);
193a53d9 1531#else
75f2446e
ILT
1532 gold_error(_("%s: not configured to support "
1533 "64-bit little-endian object"),
1534 name.c_str());
1535 return NULL;
193a53d9 1536#endif
bae7f79e
ILT
1537 }
1538 }
1539}
1540
1541// Instantiate the templates we need. We could use the configure
1542// script to restrict this to only the ones for implemented targets.
1543
193a53d9 1544#ifdef HAVE_TARGET_32_LITTLE
bae7f79e 1545template
f6ce93d6 1546class Sized_relobj<32, false>;
193a53d9 1547#endif
bae7f79e 1548
193a53d9 1549#ifdef HAVE_TARGET_32_BIG
bae7f79e 1550template
f6ce93d6 1551class Sized_relobj<32, true>;
193a53d9 1552#endif
bae7f79e 1553
193a53d9 1554#ifdef HAVE_TARGET_64_LITTLE
bae7f79e 1555template
f6ce93d6 1556class Sized_relobj<64, false>;
193a53d9 1557#endif
bae7f79e 1558
193a53d9 1559#ifdef HAVE_TARGET_64_BIG
bae7f79e 1560template
f6ce93d6 1561class Sized_relobj<64, true>;
193a53d9 1562#endif
bae7f79e 1563
193a53d9 1564#ifdef HAVE_TARGET_32_LITTLE
92e059d8
ILT
1565template
1566struct Relocate_info<32, false>;
193a53d9 1567#endif
92e059d8 1568
193a53d9 1569#ifdef HAVE_TARGET_32_BIG
92e059d8
ILT
1570template
1571struct Relocate_info<32, true>;
193a53d9 1572#endif
92e059d8 1573
193a53d9 1574#ifdef HAVE_TARGET_64_LITTLE
92e059d8
ILT
1575template
1576struct Relocate_info<64, false>;
193a53d9 1577#endif
92e059d8 1578
193a53d9 1579#ifdef HAVE_TARGET_64_BIG
92e059d8
ILT
1580template
1581struct Relocate_info<64, true>;
193a53d9 1582#endif
92e059d8 1583
bae7f79e 1584} // End namespace gold.
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