[ARC] General fixes.
[deliverable/binutils-gdb.git] / gold / output.cc
CommitLineData
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1// output.cc -- manage the output file for gold
2
6f2750fe 3// Copyright (C) 2006-2016 Free Software Foundation, Inc.
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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 <cstdlib>
04bf7072 26#include <cstring>
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27#include <cerrno>
28#include <fcntl.h>
29#include <unistd.h>
4e9d8586 30#include <sys/stat.h>
75f65a3e 31#include <algorithm>
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32
33#ifdef HAVE_SYS_MMAN_H
34#include <sys/mman.h>
35#endif
36
6a89f575 37#include "libiberty.h"
a2fb1b05 38
8ea8cd50 39#include "dwarf.h"
7e1edb90 40#include "parameters.h"
a2fb1b05 41#include "object.h"
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42#include "symtab.h"
43#include "reloc.h"
b8e6aad9 44#include "merge.h"
2a00e4fb 45#include "descriptors.h"
5393d741 46#include "layout.h"
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47#include "output.h"
48
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49// For systems without mmap support.
50#ifndef HAVE_MMAP
51# define mmap gold_mmap
52# define munmap gold_munmap
53# define mremap gold_mremap
54# ifndef MAP_FAILED
55# define MAP_FAILED (reinterpret_cast<void*>(-1))
56# endif
57# ifndef PROT_READ
58# define PROT_READ 0
59# endif
60# ifndef PROT_WRITE
61# define PROT_WRITE 0
62# endif
63# ifndef MAP_PRIVATE
64# define MAP_PRIVATE 0
65# endif
66# ifndef MAP_ANONYMOUS
67# define MAP_ANONYMOUS 0
68# endif
69# ifndef MAP_SHARED
70# define MAP_SHARED 0
71# endif
72
73# ifndef ENOSYS
74# define ENOSYS EINVAL
75# endif
76
77static void *
78gold_mmap(void *, size_t, int, int, int, off_t)
79{
80 errno = ENOSYS;
81 return MAP_FAILED;
82}
83
84static int
85gold_munmap(void *, size_t)
86{
87 errno = ENOSYS;
88 return -1;
89}
90
91static void *
92gold_mremap(void *, size_t, size_t, int)
93{
94 errno = ENOSYS;
95 return MAP_FAILED;
96}
97
98#endif
99
100#if defined(HAVE_MMAP) && !defined(HAVE_MREMAP)
101# define mremap gold_mremap
102extern "C" void *gold_mremap(void *, size_t, size_t, int);
103#endif
104
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105// Some BSD systems still use MAP_ANON instead of MAP_ANONYMOUS
106#ifndef MAP_ANONYMOUS
107# define MAP_ANONYMOUS MAP_ANON
108#endif
109
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110#ifndef MREMAP_MAYMOVE
111# define MREMAP_MAYMOVE 1
112#endif
113
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114// Mingw does not have S_ISLNK.
115#ifndef S_ISLNK
116# define S_ISLNK(mode) 0
117#endif
118
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119namespace gold
120{
121
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122// A wrapper around posix_fallocate. If we don't have posix_fallocate,
123// or the --no-posix-fallocate option is set, we try the fallocate
124// system call directly. If that fails, we use ftruncate to set
125// the file size and hope that there is enough disk space.
126
127static int
128gold_fallocate(int o, off_t offset, off_t len)
129{
130#ifdef HAVE_POSIX_FALLOCATE
131 if (parameters->options().posix_fallocate())
132 return ::posix_fallocate(o, offset, len);
133#endif // defined(HAVE_POSIX_FALLOCATE)
134#ifdef HAVE_FALLOCATE
135 if (::fallocate(o, 0, offset, len) == 0)
136 return 0;
137#endif // defined(HAVE_FALLOCATE)
138 if (::ftruncate(o, offset + len) < 0)
139 return errno;
140 return 0;
141}
142
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143// Output_data variables.
144
27bc2bce 145bool Output_data::allocated_sizes_are_fixed;
a3ad94ed 146
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147// Output_data methods.
148
149Output_data::~Output_data()
150{
151}
152
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153// Return the default alignment for the target size.
154
155uint64_t
156Output_data::default_alignment()
157{
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158 return Output_data::default_alignment_for_size(
159 parameters->target().get_size());
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160}
161
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162// Return the default alignment for a size--32 or 64.
163
164uint64_t
730cdc88 165Output_data::default_alignment_for_size(int size)
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166{
167 if (size == 32)
168 return 4;
169 else if (size == 64)
170 return 8;
171 else
a3ad94ed 172 gold_unreachable();
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173}
174
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175// Output_section_header methods. This currently assumes that the
176// segment and section lists are complete at construction time.
177
178Output_section_headers::Output_section_headers(
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179 const Layout* layout,
180 const Layout::Segment_list* segment_list,
6a74a719 181 const Layout::Section_list* section_list,
16649710 182 const Layout::Section_list* unattached_section_list,
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183 const Stringpool* secnamepool,
184 const Output_section* shstrtab_section)
9025d29d 185 : layout_(layout),
75f65a3e 186 segment_list_(segment_list),
6a74a719 187 section_list_(section_list),
a3ad94ed 188 unattached_section_list_(unattached_section_list),
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189 secnamepool_(secnamepool),
190 shstrtab_section_(shstrtab_section)
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191{
192}
193
194// Compute the current data size.
195
196off_t
197Output_section_headers::do_size() const
75f65a3e 198{
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199 // Count all the sections. Start with 1 for the null section.
200 off_t count = 1;
8851ecca 201 if (!parameters->options().relocatable())
6a74a719 202 {
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203 for (Layout::Segment_list::const_iterator p =
204 this->segment_list_->begin();
205 p != this->segment_list_->end();
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206 ++p)
207 if ((*p)->type() == elfcpp::PT_LOAD)
208 count += (*p)->output_section_count();
209 }
210 else
211 {
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212 for (Layout::Section_list::const_iterator p =
213 this->section_list_->begin();
214 p != this->section_list_->end();
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215 ++p)
216 if (((*p)->flags() & elfcpp::SHF_ALLOC) != 0)
217 ++count;
218 }
20e6d0d6 219 count += this->unattached_section_list_->size();
75f65a3e 220
8851ecca 221 const int size = parameters->target().get_size();
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222 int shdr_size;
223 if (size == 32)
224 shdr_size = elfcpp::Elf_sizes<32>::shdr_size;
225 else if (size == 64)
226 shdr_size = elfcpp::Elf_sizes<64>::shdr_size;
227 else
a3ad94ed 228 gold_unreachable();
75f65a3e 229
20e6d0d6 230 return count * shdr_size;
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231}
232
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233// Write out the section headers.
234
75f65a3e 235void
61ba1cf9 236Output_section_headers::do_write(Output_file* of)
a2fb1b05 237{
8851ecca 238 switch (parameters->size_and_endianness())
61ba1cf9 239 {
9025d29d 240#ifdef HAVE_TARGET_32_LITTLE
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241 case Parameters::TARGET_32_LITTLE:
242 this->do_sized_write<32, false>(of);
243 break;
9025d29d 244#endif
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245#ifdef HAVE_TARGET_32_BIG
246 case Parameters::TARGET_32_BIG:
247 this->do_sized_write<32, true>(of);
248 break;
9025d29d 249#endif
9025d29d 250#ifdef HAVE_TARGET_64_LITTLE
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251 case Parameters::TARGET_64_LITTLE:
252 this->do_sized_write<64, false>(of);
253 break;
9025d29d 254#endif
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255#ifdef HAVE_TARGET_64_BIG
256 case Parameters::TARGET_64_BIG:
257 this->do_sized_write<64, true>(of);
258 break;
259#endif
260 default:
261 gold_unreachable();
61ba1cf9 262 }
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263}
264
265template<int size, bool big_endian>
266void
267Output_section_headers::do_sized_write(Output_file* of)
268{
269 off_t all_shdrs_size = this->data_size();
270 unsigned char* view = of->get_output_view(this->offset(), all_shdrs_size);
271
272 const int shdr_size = elfcpp::Elf_sizes<size>::shdr_size;
273 unsigned char* v = view;
274
275 {
276 typename elfcpp::Shdr_write<size, big_endian> oshdr(v);
277 oshdr.put_sh_name(0);
278 oshdr.put_sh_type(elfcpp::SHT_NULL);
279 oshdr.put_sh_flags(0);
280 oshdr.put_sh_addr(0);
281 oshdr.put_sh_offset(0);
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282
283 size_t section_count = (this->data_size()
284 / elfcpp::Elf_sizes<size>::shdr_size);
285 if (section_count < elfcpp::SHN_LORESERVE)
286 oshdr.put_sh_size(0);
287 else
288 oshdr.put_sh_size(section_count);
289
290 unsigned int shstrndx = this->shstrtab_section_->out_shndx();
291 if (shstrndx < elfcpp::SHN_LORESERVE)
292 oshdr.put_sh_link(0);
293 else
294 oshdr.put_sh_link(shstrndx);
295
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296 size_t segment_count = this->segment_list_->size();
297 oshdr.put_sh_info(segment_count >= elfcpp::PN_XNUM ? segment_count : 0);
298
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299 oshdr.put_sh_addralign(0);
300 oshdr.put_sh_entsize(0);
301 }
302
303 v += shdr_size;
304
6a74a719 305 unsigned int shndx = 1;
8851ecca 306 if (!parameters->options().relocatable())
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307 {
308 for (Layout::Segment_list::const_iterator p =
309 this->segment_list_->begin();
310 p != this->segment_list_->end();
311 ++p)
312 v = (*p)->write_section_headers<size, big_endian>(this->layout_,
313 this->secnamepool_,
314 v,
315 &shndx);
316 }
317 else
318 {
319 for (Layout::Section_list::const_iterator p =
320 this->section_list_->begin();
321 p != this->section_list_->end();
322 ++p)
323 {
324 // We do unallocated sections below, except that group
325 // sections have to come first.
326 if (((*p)->flags() & elfcpp::SHF_ALLOC) == 0
327 && (*p)->type() != elfcpp::SHT_GROUP)
328 continue;
329 gold_assert(shndx == (*p)->out_shndx());
330 elfcpp::Shdr_write<size, big_endian> oshdr(v);
331 (*p)->write_header(this->layout_, this->secnamepool_, &oshdr);
332 v += shdr_size;
333 ++shndx;
334 }
335 }
336
a3ad94ed 337 for (Layout::Section_list::const_iterator p =
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338 this->unattached_section_list_->begin();
339 p != this->unattached_section_list_->end();
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340 ++p)
341 {
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342 // For a relocatable link, we did unallocated group sections
343 // above, since they have to come first.
344 if ((*p)->type() == elfcpp::SHT_GROUP
8851ecca 345 && parameters->options().relocatable())
6a74a719 346 continue;
a3ad94ed 347 gold_assert(shndx == (*p)->out_shndx());
61ba1cf9 348 elfcpp::Shdr_write<size, big_endian> oshdr(v);
16649710 349 (*p)->write_header(this->layout_, this->secnamepool_, &oshdr);
61ba1cf9 350 v += shdr_size;
ead1e424 351 ++shndx;
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352 }
353
354 of->write_output_view(this->offset(), all_shdrs_size, view);
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355}
356
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357// Output_segment_header methods.
358
61ba1cf9 359Output_segment_headers::Output_segment_headers(
61ba1cf9 360 const Layout::Segment_list& segment_list)
9025d29d 361 : segment_list_(segment_list)
61ba1cf9 362{
cdc29364 363 this->set_current_data_size_for_child(this->do_size());
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364}
365
54dc6425 366void
61ba1cf9 367Output_segment_headers::do_write(Output_file* of)
75f65a3e 368{
8851ecca 369 switch (parameters->size_and_endianness())
61ba1cf9 370 {
9025d29d 371#ifdef HAVE_TARGET_32_LITTLE
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372 case Parameters::TARGET_32_LITTLE:
373 this->do_sized_write<32, false>(of);
374 break;
9025d29d 375#endif
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376#ifdef HAVE_TARGET_32_BIG
377 case Parameters::TARGET_32_BIG:
378 this->do_sized_write<32, true>(of);
379 break;
9025d29d 380#endif
9025d29d 381#ifdef HAVE_TARGET_64_LITTLE
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382 case Parameters::TARGET_64_LITTLE:
383 this->do_sized_write<64, false>(of);
384 break;
9025d29d 385#endif
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386#ifdef HAVE_TARGET_64_BIG
387 case Parameters::TARGET_64_BIG:
388 this->do_sized_write<64, true>(of);
389 break;
390#endif
391 default:
392 gold_unreachable();
61ba1cf9 393 }
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394}
395
396template<int size, bool big_endian>
397void
398Output_segment_headers::do_sized_write(Output_file* of)
399{
400 const int phdr_size = elfcpp::Elf_sizes<size>::phdr_size;
401 off_t all_phdrs_size = this->segment_list_.size() * phdr_size;
a445fddf 402 gold_assert(all_phdrs_size == this->data_size());
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403 unsigned char* view = of->get_output_view(this->offset(),
404 all_phdrs_size);
405 unsigned char* v = view;
406 for (Layout::Segment_list::const_iterator p = this->segment_list_.begin();
407 p != this->segment_list_.end();
408 ++p)
409 {
410 elfcpp::Phdr_write<size, big_endian> ophdr(v);
411 (*p)->write_header(&ophdr);
412 v += phdr_size;
413 }
414
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415 gold_assert(v - view == all_phdrs_size);
416
61ba1cf9 417 of->write_output_view(this->offset(), all_phdrs_size, view);
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418}
419
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420off_t
421Output_segment_headers::do_size() const
422{
423 const int size = parameters->target().get_size();
424 int phdr_size;
425 if (size == 32)
426 phdr_size = elfcpp::Elf_sizes<32>::phdr_size;
427 else if (size == 64)
428 phdr_size = elfcpp::Elf_sizes<64>::phdr_size;
429 else
430 gold_unreachable();
431
432 return this->segment_list_.size() * phdr_size;
433}
434
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435// Output_file_header methods.
436
cc84c10b 437Output_file_header::Output_file_header(Target* target,
75f65a3e 438 const Symbol_table* symtab,
a10ae760 439 const Output_segment_headers* osh)
9025d29d 440 : target_(target),
75f65a3e 441 symtab_(symtab),
61ba1cf9 442 segment_header_(osh),
75f65a3e 443 section_header_(NULL),
a10ae760 444 shstrtab_(NULL)
75f65a3e 445{
20e6d0d6 446 this->set_data_size(this->do_size());
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447}
448
449// Set the section table information for a file header.
450
451void
452Output_file_header::set_section_info(const Output_section_headers* shdrs,
453 const Output_section* shstrtab)
454{
455 this->section_header_ = shdrs;
456 this->shstrtab_ = shstrtab;
457}
458
459// Write out the file header.
460
461void
61ba1cf9 462Output_file_header::do_write(Output_file* of)
54dc6425 463{
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ILT
464 gold_assert(this->offset() == 0);
465
8851ecca 466 switch (parameters->size_and_endianness())
61ba1cf9 467 {
9025d29d 468#ifdef HAVE_TARGET_32_LITTLE
8851ecca
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469 case Parameters::TARGET_32_LITTLE:
470 this->do_sized_write<32, false>(of);
471 break;
9025d29d 472#endif
8851ecca
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473#ifdef HAVE_TARGET_32_BIG
474 case Parameters::TARGET_32_BIG:
475 this->do_sized_write<32, true>(of);
476 break;
9025d29d 477#endif
9025d29d 478#ifdef HAVE_TARGET_64_LITTLE
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479 case Parameters::TARGET_64_LITTLE:
480 this->do_sized_write<64, false>(of);
481 break;
9025d29d 482#endif
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483#ifdef HAVE_TARGET_64_BIG
484 case Parameters::TARGET_64_BIG:
485 this->do_sized_write<64, true>(of);
486 break;
487#endif
488 default:
489 gold_unreachable();
61ba1cf9 490 }
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491}
492
cc643b88 493// Write out the file header with appropriate size and endianness.
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494
495template<int size, bool big_endian>
496void
497Output_file_header::do_sized_write(Output_file* of)
498{
a3ad94ed 499 gold_assert(this->offset() == 0);
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500
501 int ehdr_size = elfcpp::Elf_sizes<size>::ehdr_size;
502 unsigned char* view = of->get_output_view(0, ehdr_size);
503 elfcpp::Ehdr_write<size, big_endian> oehdr(view);
504
505 unsigned char e_ident[elfcpp::EI_NIDENT];
506 memset(e_ident, 0, elfcpp::EI_NIDENT);
507 e_ident[elfcpp::EI_MAG0] = elfcpp::ELFMAG0;
508 e_ident[elfcpp::EI_MAG1] = elfcpp::ELFMAG1;
509 e_ident[elfcpp::EI_MAG2] = elfcpp::ELFMAG2;
510 e_ident[elfcpp::EI_MAG3] = elfcpp::ELFMAG3;
511 if (size == 32)
512 e_ident[elfcpp::EI_CLASS] = elfcpp::ELFCLASS32;
513 else if (size == 64)
514 e_ident[elfcpp::EI_CLASS] = elfcpp::ELFCLASS64;
515 else
a3ad94ed 516 gold_unreachable();
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517 e_ident[elfcpp::EI_DATA] = (big_endian
518 ? elfcpp::ELFDATA2MSB
519 : elfcpp::ELFDATA2LSB);
520 e_ident[elfcpp::EI_VERSION] = elfcpp::EV_CURRENT;
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521 oehdr.put_e_ident(e_ident);
522
523 elfcpp::ET e_type;
8851ecca 524 if (parameters->options().relocatable())
61ba1cf9 525 e_type = elfcpp::ET_REL;
374ad285 526 else if (parameters->options().output_is_position_independent())
436ca963 527 e_type = elfcpp::ET_DYN;
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528 else
529 e_type = elfcpp::ET_EXEC;
530 oehdr.put_e_type(e_type);
531
532 oehdr.put_e_machine(this->target_->machine_code());
533 oehdr.put_e_version(elfcpp::EV_CURRENT);
534
d391083d 535 oehdr.put_e_entry(this->entry<size>());
61ba1cf9 536
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ILT
537 if (this->segment_header_ == NULL)
538 oehdr.put_e_phoff(0);
539 else
540 oehdr.put_e_phoff(this->segment_header_->offset());
541
61ba1cf9 542 oehdr.put_e_shoff(this->section_header_->offset());
d5b40221 543 oehdr.put_e_flags(this->target_->processor_specific_flags());
61ba1cf9 544 oehdr.put_e_ehsize(elfcpp::Elf_sizes<size>::ehdr_size);
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ILT
545
546 if (this->segment_header_ == NULL)
547 {
548 oehdr.put_e_phentsize(0);
549 oehdr.put_e_phnum(0);
550 }
551 else
552 {
553 oehdr.put_e_phentsize(elfcpp::Elf_sizes<size>::phdr_size);
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554 size_t phnum = (this->segment_header_->data_size()
555 / elfcpp::Elf_sizes<size>::phdr_size);
556 if (phnum > elfcpp::PN_XNUM)
557 phnum = elfcpp::PN_XNUM;
558 oehdr.put_e_phnum(phnum);
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559 }
560
61ba1cf9 561 oehdr.put_e_shentsize(elfcpp::Elf_sizes<size>::shdr_size);
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562 size_t section_count = (this->section_header_->data_size()
563 / elfcpp::Elf_sizes<size>::shdr_size);
564
565 if (section_count < elfcpp::SHN_LORESERVE)
566 oehdr.put_e_shnum(this->section_header_->data_size()
567 / elfcpp::Elf_sizes<size>::shdr_size);
568 else
569 oehdr.put_e_shnum(0);
570
571 unsigned int shstrndx = this->shstrtab_->out_shndx();
572 if (shstrndx < elfcpp::SHN_LORESERVE)
573 oehdr.put_e_shstrndx(this->shstrtab_->out_shndx());
574 else
575 oehdr.put_e_shstrndx(elfcpp::SHN_XINDEX);
61ba1cf9 576
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577 // Let the target adjust the ELF header, e.g., to set EI_OSABI in
578 // the e_ident field.
cc84c10b 579 this->target_->adjust_elf_header(view, ehdr_size);
36959681 580
61ba1cf9 581 of->write_output_view(0, ehdr_size, view);
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582}
583
a10ae760 584// Return the value to use for the entry address.
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585
586template<int size>
587typename elfcpp::Elf_types<size>::Elf_Addr
588Output_file_header::entry()
589{
a10ae760 590 const bool should_issue_warning = (parameters->options().entry() != NULL
8851ecca 591 && !parameters->options().relocatable()
eb426534 592 && !parameters->options().shared());
a10ae760 593 const char* entry = parameters->entry();
2ea97941 594 Symbol* sym = this->symtab_->lookup(entry);
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595
596 typename Sized_symbol<size>::Value_type v;
597 if (sym != NULL)
598 {
599 Sized_symbol<size>* ssym;
600 ssym = this->symtab_->get_sized_symbol<size>(sym);
601 if (!ssym->is_defined() && should_issue_warning)
2ea97941 602 gold_warning("entry symbol '%s' exists but is not defined", entry);
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603 v = ssym->value();
604 }
605 else
606 {
607 // We couldn't find the entry symbol. See if we can parse it as
608 // a number. This supports, e.g., -e 0x1000.
609 char* endptr;
2ea97941 610 v = strtoull(entry, &endptr, 0);
d391083d
ILT
611 if (*endptr != '\0')
612 {
613 if (should_issue_warning)
2ea97941 614 gold_warning("cannot find entry symbol '%s'", entry);
d391083d
ILT
615 v = 0;
616 }
617 }
618
619 return v;
620}
621
20e6d0d6
DK
622// Compute the current data size.
623
624off_t
625Output_file_header::do_size() const
626{
627 const int size = parameters->target().get_size();
628 if (size == 32)
629 return elfcpp::Elf_sizes<32>::ehdr_size;
630 else if (size == 64)
631 return elfcpp::Elf_sizes<64>::ehdr_size;
632 else
633 gold_unreachable();
634}
635
dbe717ef
ILT
636// Output_data_const methods.
637
638void
a3ad94ed 639Output_data_const::do_write(Output_file* of)
dbe717ef 640{
a3ad94ed
ILT
641 of->write(this->offset(), this->data_.data(), this->data_.size());
642}
643
644// Output_data_const_buffer methods.
645
646void
647Output_data_const_buffer::do_write(Output_file* of)
648{
649 of->write(this->offset(), this->p_, this->data_size());
dbe717ef
ILT
650}
651
652// Output_section_data methods.
653
16649710
ILT
654// Record the output section, and set the entry size and such.
655
656void
657Output_section_data::set_output_section(Output_section* os)
658{
659 gold_assert(this->output_section_ == NULL);
660 this->output_section_ = os;
661 this->do_adjust_output_section(os);
662}
663
664// Return the section index of the output section.
665
dbe717ef
ILT
666unsigned int
667Output_section_data::do_out_shndx() const
668{
a3ad94ed 669 gold_assert(this->output_section_ != NULL);
dbe717ef
ILT
670 return this->output_section_->out_shndx();
671}
672
759b1a24
ILT
673// Set the alignment, which means we may need to update the alignment
674// of the output section.
675
676void
2ea97941 677Output_section_data::set_addralign(uint64_t addralign)
759b1a24 678{
2ea97941 679 this->addralign_ = addralign;
759b1a24 680 if (this->output_section_ != NULL
2ea97941
ILT
681 && this->output_section_->addralign() < addralign)
682 this->output_section_->set_addralign(addralign);
759b1a24
ILT
683}
684
a3ad94ed
ILT
685// Output_data_strtab methods.
686
27bc2bce 687// Set the final data size.
a3ad94ed
ILT
688
689void
27bc2bce 690Output_data_strtab::set_final_data_size()
a3ad94ed
ILT
691{
692 this->strtab_->set_string_offsets();
693 this->set_data_size(this->strtab_->get_strtab_size());
694}
695
696// Write out a string table.
697
698void
699Output_data_strtab::do_write(Output_file* of)
700{
701 this->strtab_->write(of, this->offset());
702}
703
c06b7b0b
ILT
704// Output_reloc methods.
705
7bf1f802
ILT
706// A reloc against a global symbol.
707
708template<bool dynamic, int size, bool big_endian>
709Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
710 Symbol* gsym,
711 unsigned int type,
712 Output_data* od,
e8c846c3 713 Address address,
0da6fa6c 714 bool is_relative,
13cf9988
DM
715 bool is_symbolless,
716 bool use_plt_offset)
7bf1f802 717 : address_(address), local_sym_index_(GSYM_CODE), type_(type),
0da6fa6c 718 is_relative_(is_relative), is_symbolless_(is_symbolless),
13cf9988 719 is_section_symbol_(false), use_plt_offset_(use_plt_offset), shndx_(INVALID_CODE)
7bf1f802 720{
dceae3c1
ILT
721 // this->type_ is a bitfield; make sure TYPE fits.
722 gold_assert(this->type_ == type);
7bf1f802
ILT
723 this->u1_.gsym = gsym;
724 this->u2_.od = od;
dceae3c1
ILT
725 if (dynamic)
726 this->set_needs_dynsym_index();
7bf1f802
ILT
727}
728
729template<bool dynamic, int size, bool big_endian>
730Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
731 Symbol* gsym,
732 unsigned int type,
ef9beddf 733 Sized_relobj<size, big_endian>* relobj,
7bf1f802 734 unsigned int shndx,
e8c846c3 735 Address address,
0da6fa6c 736 bool is_relative,
13cf9988
DM
737 bool is_symbolless,
738 bool use_plt_offset)
7bf1f802 739 : address_(address), local_sym_index_(GSYM_CODE), type_(type),
0da6fa6c 740 is_relative_(is_relative), is_symbolless_(is_symbolless),
13cf9988 741 is_section_symbol_(false), use_plt_offset_(use_plt_offset), shndx_(shndx)
7bf1f802
ILT
742{
743 gold_assert(shndx != INVALID_CODE);
dceae3c1
ILT
744 // this->type_ is a bitfield; make sure TYPE fits.
745 gold_assert(this->type_ == type);
7bf1f802
ILT
746 this->u1_.gsym = gsym;
747 this->u2_.relobj = relobj;
dceae3c1
ILT
748 if (dynamic)
749 this->set_needs_dynsym_index();
7bf1f802
ILT
750}
751
752// A reloc against a local symbol.
753
754template<bool dynamic, int size, bool big_endian>
755Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
756 Sized_relobj<size, big_endian>* relobj,
757 unsigned int local_sym_index,
758 unsigned int type,
759 Output_data* od,
e8c846c3 760 Address address,
2ea97941 761 bool is_relative,
0da6fa6c 762 bool is_symbolless,
397b129b
CC
763 bool is_section_symbol,
764 bool use_plt_offset)
7bf1f802 765 : address_(address), local_sym_index_(local_sym_index), type_(type),
0da6fa6c 766 is_relative_(is_relative), is_symbolless_(is_symbolless),
397b129b
CC
767 is_section_symbol_(is_section_symbol), use_plt_offset_(use_plt_offset),
768 shndx_(INVALID_CODE)
7bf1f802
ILT
769{
770 gold_assert(local_sym_index != GSYM_CODE
eb426534 771 && local_sym_index != INVALID_CODE);
dceae3c1
ILT
772 // this->type_ is a bitfield; make sure TYPE fits.
773 gold_assert(this->type_ == type);
7bf1f802
ILT
774 this->u1_.relobj = relobj;
775 this->u2_.od = od;
dceae3c1
ILT
776 if (dynamic)
777 this->set_needs_dynsym_index();
7bf1f802
ILT
778}
779
780template<bool dynamic, int size, bool big_endian>
781Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
782 Sized_relobj<size, big_endian>* relobj,
783 unsigned int local_sym_index,
784 unsigned int type,
785 unsigned int shndx,
e8c846c3 786 Address address,
2ea97941 787 bool is_relative,
0da6fa6c 788 bool is_symbolless,
397b129b
CC
789 bool is_section_symbol,
790 bool use_plt_offset)
7bf1f802 791 : address_(address), local_sym_index_(local_sym_index), type_(type),
0da6fa6c 792 is_relative_(is_relative), is_symbolless_(is_symbolless),
397b129b
CC
793 is_section_symbol_(is_section_symbol), use_plt_offset_(use_plt_offset),
794 shndx_(shndx)
7bf1f802
ILT
795{
796 gold_assert(local_sym_index != GSYM_CODE
eb426534 797 && local_sym_index != INVALID_CODE);
7bf1f802 798 gold_assert(shndx != INVALID_CODE);
dceae3c1
ILT
799 // this->type_ is a bitfield; make sure TYPE fits.
800 gold_assert(this->type_ == type);
7bf1f802
ILT
801 this->u1_.relobj = relobj;
802 this->u2_.relobj = relobj;
dceae3c1
ILT
803 if (dynamic)
804 this->set_needs_dynsym_index();
7bf1f802
ILT
805}
806
807// A reloc against the STT_SECTION symbol of an output section.
808
809template<bool dynamic, int size, bool big_endian>
810Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
811 Output_section* os,
812 unsigned int type,
813 Output_data* od,
703d02da
AM
814 Address address,
815 bool is_relative)
7bf1f802 816 : address_(address), local_sym_index_(SECTION_CODE), type_(type),
703d02da 817 is_relative_(is_relative), is_symbolless_(is_relative),
397b129b 818 is_section_symbol_(true), use_plt_offset_(false), shndx_(INVALID_CODE)
7bf1f802 819{
dceae3c1
ILT
820 // this->type_ is a bitfield; make sure TYPE fits.
821 gold_assert(this->type_ == type);
7bf1f802
ILT
822 this->u1_.os = os;
823 this->u2_.od = od;
824 if (dynamic)
dceae3c1
ILT
825 this->set_needs_dynsym_index();
826 else
827 os->set_needs_symtab_index();
7bf1f802
ILT
828}
829
830template<bool dynamic, int size, bool big_endian>
831Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
832 Output_section* os,
833 unsigned int type,
ef9beddf 834 Sized_relobj<size, big_endian>* relobj,
7bf1f802 835 unsigned int shndx,
703d02da
AM
836 Address address,
837 bool is_relative)
7bf1f802 838 : address_(address), local_sym_index_(SECTION_CODE), type_(type),
703d02da 839 is_relative_(is_relative), is_symbolless_(is_relative),
397b129b 840 is_section_symbol_(true), use_plt_offset_(false), shndx_(shndx)
7bf1f802
ILT
841{
842 gold_assert(shndx != INVALID_CODE);
dceae3c1
ILT
843 // this->type_ is a bitfield; make sure TYPE fits.
844 gold_assert(this->type_ == type);
7bf1f802
ILT
845 this->u1_.os = os;
846 this->u2_.relobj = relobj;
847 if (dynamic)
dceae3c1
ILT
848 this->set_needs_dynsym_index();
849 else
850 os->set_needs_symtab_index();
851}
852
ec661b9d 853// An absolute or relative relocation.
e291e7b9
ILT
854
855template<bool dynamic, int size, bool big_endian>
856Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
857 unsigned int type,
858 Output_data* od,
ec661b9d
AM
859 Address address,
860 bool is_relative)
e291e7b9 861 : address_(address), local_sym_index_(0), type_(type),
ec661b9d 862 is_relative_(is_relative), is_symbolless_(false),
397b129b 863 is_section_symbol_(false), use_plt_offset_(false), shndx_(INVALID_CODE)
e291e7b9
ILT
864{
865 // this->type_ is a bitfield; make sure TYPE fits.
866 gold_assert(this->type_ == type);
867 this->u1_.relobj = NULL;
868 this->u2_.od = od;
869}
870
871template<bool dynamic, int size, bool big_endian>
872Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
873 unsigned int type,
874 Sized_relobj<size, big_endian>* relobj,
875 unsigned int shndx,
ec661b9d
AM
876 Address address,
877 bool is_relative)
e291e7b9 878 : address_(address), local_sym_index_(0), type_(type),
ec661b9d 879 is_relative_(is_relative), is_symbolless_(false),
397b129b 880 is_section_symbol_(false), use_plt_offset_(false), shndx_(shndx)
e291e7b9
ILT
881{
882 gold_assert(shndx != INVALID_CODE);
883 // this->type_ is a bitfield; make sure TYPE fits.
884 gold_assert(this->type_ == type);
885 this->u1_.relobj = NULL;
886 this->u2_.relobj = relobj;
887}
888
889// A target specific relocation.
890
891template<bool dynamic, int size, bool big_endian>
892Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
893 unsigned int type,
894 void* arg,
895 Output_data* od,
896 Address address)
897 : address_(address), local_sym_index_(TARGET_CODE), type_(type),
0da6fa6c 898 is_relative_(false), is_symbolless_(false),
397b129b 899 is_section_symbol_(false), use_plt_offset_(false), shndx_(INVALID_CODE)
e291e7b9
ILT
900{
901 // this->type_ is a bitfield; make sure TYPE fits.
902 gold_assert(this->type_ == type);
903 this->u1_.arg = arg;
904 this->u2_.od = od;
905}
906
907template<bool dynamic, int size, bool big_endian>
908Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::Output_reloc(
909 unsigned int type,
910 void* arg,
911 Sized_relobj<size, big_endian>* relobj,
912 unsigned int shndx,
913 Address address)
914 : address_(address), local_sym_index_(TARGET_CODE), type_(type),
0da6fa6c 915 is_relative_(false), is_symbolless_(false),
397b129b 916 is_section_symbol_(false), use_plt_offset_(false), shndx_(shndx)
e291e7b9
ILT
917{
918 gold_assert(shndx != INVALID_CODE);
919 // this->type_ is a bitfield; make sure TYPE fits.
920 gold_assert(this->type_ == type);
921 this->u1_.arg = arg;
922 this->u2_.relobj = relobj;
923}
924
dceae3c1
ILT
925// Record that we need a dynamic symbol index for this relocation.
926
927template<bool dynamic, int size, bool big_endian>
928void
929Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::
930set_needs_dynsym_index()
931{
0da6fa6c 932 if (this->is_symbolless_)
dceae3c1
ILT
933 return;
934 switch (this->local_sym_index_)
935 {
936 case INVALID_CODE:
937 gold_unreachable();
938
939 case GSYM_CODE:
940 this->u1_.gsym->set_needs_dynsym_entry();
941 break;
942
943 case SECTION_CODE:
944 this->u1_.os->set_needs_dynsym_index();
945 break;
946
e291e7b9
ILT
947 case TARGET_CODE:
948 // The target must take care of this if necessary.
949 break;
950
dceae3c1
ILT
951 case 0:
952 break;
953
954 default:
955 {
eb426534 956 const unsigned int lsi = this->local_sym_index_;
6fa2a40b
CC
957 Sized_relobj_file<size, big_endian>* relobj =
958 this->u1_.relobj->sized_relobj();
959 gold_assert(relobj != NULL);
eb426534
RM
960 if (!this->is_section_symbol_)
961 relobj->set_needs_output_dynsym_entry(lsi);
962 else
963 relobj->output_section(lsi)->set_needs_dynsym_index();
dceae3c1
ILT
964 }
965 break;
966 }
7bf1f802
ILT
967}
968
c06b7b0b
ILT
969// Get the symbol index of a relocation.
970
971template<bool dynamic, int size, bool big_endian>
972unsigned int
973Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::get_symbol_index()
974 const
975{
976 unsigned int index;
0da6fa6c
DM
977 if (this->is_symbolless_)
978 return 0;
c06b7b0b
ILT
979 switch (this->local_sym_index_)
980 {
981 case INVALID_CODE:
a3ad94ed 982 gold_unreachable();
c06b7b0b
ILT
983
984 case GSYM_CODE:
5a6f7e2d 985 if (this->u1_.gsym == NULL)
c06b7b0b
ILT
986 index = 0;
987 else if (dynamic)
5a6f7e2d 988 index = this->u1_.gsym->dynsym_index();
c06b7b0b 989 else
5a6f7e2d 990 index = this->u1_.gsym->symtab_index();
c06b7b0b
ILT
991 break;
992
993 case SECTION_CODE:
994 if (dynamic)
5a6f7e2d 995 index = this->u1_.os->dynsym_index();
c06b7b0b 996 else
5a6f7e2d 997 index = this->u1_.os->symtab_index();
c06b7b0b
ILT
998 break;
999
e291e7b9
ILT
1000 case TARGET_CODE:
1001 index = parameters->target().reloc_symbol_index(this->u1_.arg,
1002 this->type_);
1003 break;
1004
436ca963
ILT
1005 case 0:
1006 // Relocations without symbols use a symbol index of 0.
1007 index = 0;
1008 break;
1009
c06b7b0b 1010 default:
dceae3c1 1011 {
eb426534 1012 const unsigned int lsi = this->local_sym_index_;
6fa2a40b
CC
1013 Sized_relobj_file<size, big_endian>* relobj =
1014 this->u1_.relobj->sized_relobj();
1015 gold_assert(relobj != NULL);
eb426534
RM
1016 if (!this->is_section_symbol_)
1017 {
1018 if (dynamic)
1019 index = relobj->dynsym_index(lsi);
1020 else
1021 index = relobj->symtab_index(lsi);
1022 }
1023 else
1024 {
1025 Output_section* os = relobj->output_section(lsi);
1026 gold_assert(os != NULL);
1027 if (dynamic)
1028 index = os->dynsym_index();
1029 else
1030 index = os->symtab_index();
1031 }
dceae3c1 1032 }
c06b7b0b
ILT
1033 break;
1034 }
a3ad94ed 1035 gold_assert(index != -1U);
c06b7b0b
ILT
1036 return index;
1037}
1038
624f8810
ILT
1039// For a local section symbol, get the address of the offset ADDEND
1040// within the input section.
dceae3c1
ILT
1041
1042template<bool dynamic, int size, bool big_endian>
ef9beddf 1043typename elfcpp::Elf_types<size>::Elf_Addr
dceae3c1 1044Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::
624f8810 1045 local_section_offset(Addend addend) const
dceae3c1 1046{
624f8810 1047 gold_assert(this->local_sym_index_ != GSYM_CODE
eb426534 1048 && this->local_sym_index_ != SECTION_CODE
e291e7b9 1049 && this->local_sym_index_ != TARGET_CODE
eb426534 1050 && this->local_sym_index_ != INVALID_CODE
e291e7b9 1051 && this->local_sym_index_ != 0
eb426534 1052 && this->is_section_symbol_);
dceae3c1 1053 const unsigned int lsi = this->local_sym_index_;
ef9beddf 1054 Output_section* os = this->u1_.relobj->output_section(lsi);
624f8810 1055 gold_assert(os != NULL);
ef9beddf 1056 Address offset = this->u1_.relobj->get_output_section_offset(lsi);
eff45813 1057 if (offset != invalid_address)
624f8810
ILT
1058 return offset + addend;
1059 // This is a merge section.
6fa2a40b
CC
1060 Sized_relobj_file<size, big_endian>* relobj =
1061 this->u1_.relobj->sized_relobj();
1062 gold_assert(relobj != NULL);
1063 offset = os->output_address(relobj, lsi, addend);
eff45813 1064 gold_assert(offset != invalid_address);
dceae3c1
ILT
1065 return offset;
1066}
1067
d98bc257 1068// Get the output address of a relocation.
c06b7b0b
ILT
1069
1070template<bool dynamic, int size, bool big_endian>
a984ee1d 1071typename elfcpp::Elf_types<size>::Elf_Addr
d98bc257 1072Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::get_address() const
c06b7b0b 1073{
a3ad94ed 1074 Address address = this->address_;
5a6f7e2d
ILT
1075 if (this->shndx_ != INVALID_CODE)
1076 {
ef9beddf 1077 Output_section* os = this->u2_.relobj->output_section(this->shndx_);
5a6f7e2d 1078 gold_assert(os != NULL);
ef9beddf 1079 Address off = this->u2_.relobj->get_output_section_offset(this->shndx_);
eff45813 1080 if (off != invalid_address)
730cdc88
ILT
1081 address += os->address() + off;
1082 else
1083 {
6fa2a40b
CC
1084 Sized_relobj_file<size, big_endian>* relobj =
1085 this->u2_.relobj->sized_relobj();
1086 gold_assert(relobj != NULL);
1087 address = os->output_address(relobj, this->shndx_, address);
eff45813 1088 gold_assert(address != invalid_address);
730cdc88 1089 }
5a6f7e2d
ILT
1090 }
1091 else if (this->u2_.od != NULL)
1092 address += this->u2_.od->address();
d98bc257
ILT
1093 return address;
1094}
1095
1096// Write out the offset and info fields of a Rel or Rela relocation
1097// entry.
1098
1099template<bool dynamic, int size, bool big_endian>
1100template<typename Write_rel>
1101void
1102Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::write_rel(
1103 Write_rel* wr) const
1104{
1105 wr->put_r_offset(this->get_address());
0da6fa6c 1106 unsigned int sym_index = this->get_symbol_index();
e8c846c3 1107 wr->put_r_info(elfcpp::elf_r_info<size>(sym_index, this->type_));
c06b7b0b
ILT
1108}
1109
1110// Write out a Rel relocation.
1111
1112template<bool dynamic, int size, bool big_endian>
1113void
1114Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::write(
1115 unsigned char* pov) const
1116{
1117 elfcpp::Rel_write<size, big_endian> orel(pov);
1118 this->write_rel(&orel);
1119}
1120
e8c846c3
ILT
1121// Get the value of the symbol referred to by a Rel relocation.
1122
1123template<bool dynamic, int size, bool big_endian>
1124typename elfcpp::Elf_types<size>::Elf_Addr
d1f003c6 1125Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::symbol_value(
624f8810 1126 Addend addend) const
e8c846c3
ILT
1127{
1128 if (this->local_sym_index_ == GSYM_CODE)
1129 {
1130 const Sized_symbol<size>* sym;
1131 sym = static_cast<const Sized_symbol<size>*>(this->u1_.gsym);
13cf9988 1132 if (this->use_plt_offset_ && sym->has_plt_offset())
19fec8c1 1133 return parameters->target().plt_address_for_global(sym);
13cf9988
DM
1134 else
1135 return sym->value() + addend;
e8c846c3 1136 }
703d02da
AM
1137 if (this->local_sym_index_ == SECTION_CODE)
1138 {
1139 gold_assert(!this->use_plt_offset_);
1140 return this->u1_.os->address() + addend;
1141 }
1142 gold_assert(this->local_sym_index_ != TARGET_CODE
eb426534 1143 && this->local_sym_index_ != INVALID_CODE
e291e7b9 1144 && this->local_sym_index_ != 0
eb426534 1145 && !this->is_section_symbol_);
d1f003c6 1146 const unsigned int lsi = this->local_sym_index_;
6fa2a40b
CC
1147 Sized_relobj_file<size, big_endian>* relobj =
1148 this->u1_.relobj->sized_relobj();
1149 gold_assert(relobj != NULL);
397b129b 1150 if (this->use_plt_offset_)
19fec8c1 1151 return parameters->target().plt_address_for_local(relobj, lsi);
6fa2a40b
CC
1152 const Symbol_value<size>* symval = relobj->local_symbol(lsi);
1153 return symval->value(relobj, addend);
e8c846c3
ILT
1154}
1155
d98bc257
ILT
1156// Reloc comparison. This function sorts the dynamic relocs for the
1157// benefit of the dynamic linker. First we sort all relative relocs
1158// to the front. Among relative relocs, we sort by output address.
1159// Among non-relative relocs, we sort by symbol index, then by output
1160// address.
1161
1162template<bool dynamic, int size, bool big_endian>
1163int
1164Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>::
1165 compare(const Output_reloc<elfcpp::SHT_REL, dynamic, size, big_endian>& r2)
1166 const
1167{
1168 if (this->is_relative_)
1169 {
1170 if (!r2.is_relative_)
1171 return -1;
1172 // Otherwise sort by reloc address below.
1173 }
1174 else if (r2.is_relative_)
1175 return 1;
1176 else
1177 {
1178 unsigned int sym1 = this->get_symbol_index();
1179 unsigned int sym2 = r2.get_symbol_index();
1180 if (sym1 < sym2)
1181 return -1;
1182 else if (sym1 > sym2)
1183 return 1;
1184 // Otherwise sort by reloc address.
1185 }
1186
1187 section_offset_type addr1 = this->get_address();
1188 section_offset_type addr2 = r2.get_address();
1189 if (addr1 < addr2)
1190 return -1;
1191 else if (addr1 > addr2)
1192 return 1;
1193
1194 // Final tie breaker, in order to generate the same output on any
1195 // host: reloc type.
1196 unsigned int type1 = this->type_;
1197 unsigned int type2 = r2.type_;
1198 if (type1 < type2)
1199 return -1;
1200 else if (type1 > type2)
1201 return 1;
1202
1203 // These relocs appear to be exactly the same.
1204 return 0;
1205}
1206
c06b7b0b
ILT
1207// Write out a Rela relocation.
1208
1209template<bool dynamic, int size, bool big_endian>
1210void
1211Output_reloc<elfcpp::SHT_RELA, dynamic, size, big_endian>::write(
1212 unsigned char* pov) const
1213{
1214 elfcpp::Rela_write<size, big_endian> orel(pov);
1215 this->rel_.write_rel(&orel);
e8c846c3 1216 Addend addend = this->addend_;
e291e7b9
ILT
1217 if (this->rel_.is_target_specific())
1218 addend = parameters->target().reloc_addend(this->rel_.target_arg(),
1219 this->rel_.type(), addend);
0da6fa6c 1220 else if (this->rel_.is_symbolless())
d1f003c6
ILT
1221 addend = this->rel_.symbol_value(addend);
1222 else if (this->rel_.is_local_section_symbol())
624f8810 1223 addend = this->rel_.local_section_offset(addend);
e8c846c3 1224 orel.put_r_addend(addend);
c06b7b0b
ILT
1225}
1226
1227// Output_data_reloc_base methods.
1228
16649710
ILT
1229// Adjust the output section.
1230
1231template<int sh_type, bool dynamic, int size, bool big_endian>
1232void
1233Output_data_reloc_base<sh_type, dynamic, size, big_endian>
1234 ::do_adjust_output_section(Output_section* os)
1235{
1236 if (sh_type == elfcpp::SHT_REL)
1237 os->set_entsize(elfcpp::Elf_sizes<size>::rel_size);
1238 else if (sh_type == elfcpp::SHT_RELA)
1239 os->set_entsize(elfcpp::Elf_sizes<size>::rela_size);
1240 else
1241 gold_unreachable();
7223e9ca
ILT
1242
1243 // A STT_GNU_IFUNC symbol may require a IRELATIVE reloc when doing a
1244 // static link. The backends will generate a dynamic reloc section
1245 // to hold this. In that case we don't want to link to the dynsym
1246 // section, because there isn't one.
1247 if (!dynamic)
16649710 1248 os->set_should_link_to_symtab();
7223e9ca
ILT
1249 else if (parameters->doing_static_link())
1250 ;
1251 else
1252 os->set_should_link_to_dynsym();
16649710
ILT
1253}
1254
c06b7b0b
ILT
1255// Write out relocation data.
1256
1257template<int sh_type, bool dynamic, int size, bool big_endian>
1258void
1259Output_data_reloc_base<sh_type, dynamic, size, big_endian>::do_write(
1260 Output_file* of)
1261{
1262 const off_t off = this->offset();
1263 const off_t oview_size = this->data_size();
1264 unsigned char* const oview = of->get_output_view(off, oview_size);
1265
3a44184e 1266 if (this->sort_relocs())
d98bc257
ILT
1267 {
1268 gold_assert(dynamic);
1269 std::sort(this->relocs_.begin(), this->relocs_.end(),
1270 Sort_relocs_comparison());
1271 }
1272
c06b7b0b
ILT
1273 unsigned char* pov = oview;
1274 for (typename Relocs::const_iterator p = this->relocs_.begin();
1275 p != this->relocs_.end();
1276 ++p)
1277 {
1278 p->write(pov);
1279 pov += reloc_size;
1280 }
1281
a3ad94ed 1282 gold_assert(pov - oview == oview_size);
c06b7b0b
ILT
1283
1284 of->write_output_view(off, oview_size, oview);
1285
1286 // We no longer need the relocation entries.
1287 this->relocs_.clear();
1288}
1289
6a74a719
ILT
1290// Class Output_relocatable_relocs.
1291
1292template<int sh_type, int size, bool big_endian>
1293void
1294Output_relocatable_relocs<sh_type, size, big_endian>::set_final_data_size()
1295{
1296 this->set_data_size(this->rr_->output_reloc_count()
1297 * Reloc_types<sh_type, size, big_endian>::reloc_size);
1298}
1299
1300// class Output_data_group.
1301
1302template<int size, bool big_endian>
1303Output_data_group<size, big_endian>::Output_data_group(
6fa2a40b 1304 Sized_relobj_file<size, big_endian>* relobj,
6a74a719 1305 section_size_type entry_count,
8825ac63
ILT
1306 elfcpp::Elf_Word flags,
1307 std::vector<unsigned int>* input_shndxes)
20e6d0d6 1308 : Output_section_data(entry_count * 4, 4, false),
8825ac63
ILT
1309 relobj_(relobj),
1310 flags_(flags)
6a74a719 1311{
8825ac63 1312 this->input_shndxes_.swap(*input_shndxes);
6a74a719
ILT
1313}
1314
1315// Write out the section group, which means translating the section
1316// indexes to apply to the output file.
1317
1318template<int size, bool big_endian>
1319void
1320Output_data_group<size, big_endian>::do_write(Output_file* of)
1321{
1322 const off_t off = this->offset();
1323 const section_size_type oview_size =
1324 convert_to_section_size_type(this->data_size());
1325 unsigned char* const oview = of->get_output_view(off, oview_size);
1326
1327 elfcpp::Elf_Word* contents = reinterpret_cast<elfcpp::Elf_Word*>(oview);
1328 elfcpp::Swap<32, big_endian>::writeval(contents, this->flags_);
1329 ++contents;
1330
1331 for (std::vector<unsigned int>::const_iterator p =
8825ac63
ILT
1332 this->input_shndxes_.begin();
1333 p != this->input_shndxes_.end();
6a74a719
ILT
1334 ++p, ++contents)
1335 {
ef9beddf 1336 Output_section* os = this->relobj_->output_section(*p);
6a74a719
ILT
1337
1338 unsigned int output_shndx;
1339 if (os != NULL)
1340 output_shndx = os->out_shndx();
1341 else
1342 {
1343 this->relobj_->error(_("section group retained but "
1344 "group element discarded"));
1345 output_shndx = 0;
1346 }
1347
1348 elfcpp::Swap<32, big_endian>::writeval(contents, output_shndx);
1349 }
1350
1351 size_t wrote = reinterpret_cast<unsigned char*>(contents) - oview;
1352 gold_assert(wrote == oview_size);
1353
1354 of->write_output_view(off, oview_size, oview);
1355
1356 // We no longer need this information.
8825ac63 1357 this->input_shndxes_.clear();
6a74a719
ILT
1358}
1359
dbe717ef 1360// Output_data_got::Got_entry methods.
ead1e424
ILT
1361
1362// Write out the entry.
1363
d77a0555 1364template<int got_size, bool big_endian>
ead1e424 1365void
d77a0555 1366Output_data_got<got_size, big_endian>::Got_entry::write(
bd73a62d
AM
1367 unsigned int got_indx,
1368 unsigned char* pov) const
ead1e424
ILT
1369{
1370 Valtype val = 0;
1371
1372 switch (this->local_sym_index_)
1373 {
1374 case GSYM_CODE:
1375 {
e8c846c3
ILT
1376 // If the symbol is resolved locally, we need to write out the
1377 // link-time value, which will be relocated dynamically by a
1378 // RELATIVE relocation.
ead1e424 1379 Symbol* gsym = this->u_.gsym;
bd73a62d 1380 if (this->use_plt_or_tls_offset_ && gsym->has_plt_offset())
19fec8c1 1381 val = parameters->target().plt_address_for_global(gsym);
7223e9ca
ILT
1382 else
1383 {
d77a0555
ILT
1384 switch (parameters->size_and_endianness())
1385 {
1386#if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
1387 case Parameters::TARGET_32_LITTLE:
1388 case Parameters::TARGET_32_BIG:
1389 {
1390 // This cast is ugly. We don't want to put a
1391 // virtual method in Symbol, because we want Symbol
1392 // to be as small as possible.
1393 Sized_symbol<32>::Value_type v;
1394 v = static_cast<Sized_symbol<32>*>(gsym)->value();
1395 val = convert_types<Valtype, Sized_symbol<32>::Value_type>(v);
1396 }
1397 break;
1398#endif
1399#if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
1400 case Parameters::TARGET_64_LITTLE:
1401 case Parameters::TARGET_64_BIG:
1402 {
1403 Sized_symbol<64>::Value_type v;
1404 v = static_cast<Sized_symbol<64>*>(gsym)->value();
1405 val = convert_types<Valtype, Sized_symbol<64>::Value_type>(v);
1406 }
1407 break;
1408#endif
1409 default:
1410 gold_unreachable();
1411 }
1412 if (this->use_plt_or_tls_offset_
1413 && gsym->type() == elfcpp::STT_TLS)
bd73a62d
AM
1414 val += parameters->target().tls_offset_for_global(gsym,
1415 got_indx);
7223e9ca 1416 }
ead1e424
ILT
1417 }
1418 break;
1419
1420 case CONSTANT_CODE:
1421 val = this->u_.constant;
1422 break;
1423
4829d394
CC
1424 case RESERVED_CODE:
1425 // If we're doing an incremental update, don't touch this GOT entry.
1426 if (parameters->incremental_update())
eb426534 1427 return;
4829d394
CC
1428 val = this->u_.constant;
1429 break;
1430
ead1e424 1431 default:
d1f003c6 1432 {
d77a0555 1433 const Relobj* object = this->u_.object;
eb426534 1434 const unsigned int lsi = this->local_sym_index_;
d77a0555 1435 bool is_tls = object->local_is_tls(lsi);
bd73a62d 1436 if (this->use_plt_or_tls_offset_ && !is_tls)
19fec8c1 1437 val = parameters->target().plt_address_for_local(object, lsi);
bd73a62d
AM
1438 else
1439 {
7ef8ae7c 1440 uint64_t lval = object->local_symbol_value(lsi, this->addend_);
bd73a62d
AM
1441 val = convert_types<Valtype, uint64_t>(lval);
1442 if (this->use_plt_or_tls_offset_ && is_tls)
1443 val += parameters->target().tls_offset_for_local(object, lsi,
1444 got_indx);
1445 }
d1f003c6 1446 }
e727fa71 1447 break;
ead1e424
ILT
1448 }
1449
d77a0555 1450 elfcpp::Swap<got_size, big_endian>::writeval(pov, val);
ead1e424
ILT
1451}
1452
dbe717ef 1453// Output_data_got methods.
ead1e424 1454
dbe717ef
ILT
1455// Add an entry for a global symbol to the GOT. This returns true if
1456// this is a new GOT entry, false if the symbol already had a GOT
1457// entry.
1458
d77a0555 1459template<int got_size, bool big_endian>
dbe717ef 1460bool
d77a0555 1461Output_data_got<got_size, big_endian>::add_global(
0a65a3a7
CC
1462 Symbol* gsym,
1463 unsigned int got_type)
ead1e424 1464{
0a65a3a7 1465 if (gsym->has_got_offset(got_type))
dbe717ef 1466 return false;
ead1e424 1467
4829d394
CC
1468 unsigned int got_offset = this->add_got_entry(Got_entry(gsym, false));
1469 gsym->set_got_offset(got_type, got_offset);
7223e9ca
ILT
1470 return true;
1471}
1472
1473// Like add_global, but use the PLT offset.
1474
d77a0555 1475template<int got_size, bool big_endian>
7223e9ca 1476bool
d77a0555
ILT
1477Output_data_got<got_size, big_endian>::add_global_plt(Symbol* gsym,
1478 unsigned int got_type)
7223e9ca
ILT
1479{
1480 if (gsym->has_got_offset(got_type))
1481 return false;
1482
4829d394
CC
1483 unsigned int got_offset = this->add_got_entry(Got_entry(gsym, true));
1484 gsym->set_got_offset(got_type, got_offset);
dbe717ef
ILT
1485 return true;
1486}
ead1e424 1487
7bf1f802
ILT
1488// Add an entry for a global symbol to the GOT, and add a dynamic
1489// relocation of type R_TYPE for the GOT entry.
7223e9ca 1490
d77a0555 1491template<int got_size, bool big_endian>
7bf1f802 1492void
d77a0555 1493Output_data_got<got_size, big_endian>::add_global_with_rel(
7bf1f802 1494 Symbol* gsym,
0a65a3a7 1495 unsigned int got_type,
83896202 1496 Output_data_reloc_generic* rel_dyn,
7bf1f802
ILT
1497 unsigned int r_type)
1498{
0a65a3a7 1499 if (gsym->has_got_offset(got_type))
7bf1f802
ILT
1500 return;
1501
4829d394 1502 unsigned int got_offset = this->add_got_entry(Got_entry());
2ea97941 1503 gsym->set_got_offset(got_type, got_offset);
83896202 1504 rel_dyn->add_global_generic(gsym, r_type, this, got_offset, 0);
7bf1f802
ILT
1505}
1506
0a65a3a7
CC
1507// Add a pair of entries for a global symbol to the GOT, and add
1508// dynamic relocations of type R_TYPE_1 and R_TYPE_2, respectively.
1509// If R_TYPE_2 == 0, add the second entry with no relocation.
d77a0555 1510template<int got_size, bool big_endian>
7bf1f802 1511void
d77a0555 1512Output_data_got<got_size, big_endian>::add_global_pair_with_rel(
0a65a3a7
CC
1513 Symbol* gsym,
1514 unsigned int got_type,
83896202 1515 Output_data_reloc_generic* rel_dyn,
0a65a3a7
CC
1516 unsigned int r_type_1,
1517 unsigned int r_type_2)
7bf1f802 1518{
0a65a3a7 1519 if (gsym->has_got_offset(got_type))
7bf1f802
ILT
1520 return;
1521
4829d394 1522 unsigned int got_offset = this->add_got_entry_pair(Got_entry(), Got_entry());
2ea97941 1523 gsym->set_got_offset(got_type, got_offset);
83896202 1524 rel_dyn->add_global_generic(gsym, r_type_1, this, got_offset, 0);
0a65a3a7 1525
0a65a3a7 1526 if (r_type_2 != 0)
83896202 1527 rel_dyn->add_global_generic(gsym, r_type_2, this,
d77a0555 1528 got_offset + got_size / 8, 0);
7bf1f802
ILT
1529}
1530
0a65a3a7
CC
1531// Add an entry for a local symbol to the GOT. This returns true if
1532// this is a new GOT entry, false if the symbol already has a GOT
1533// entry.
07f397ab 1534
d77a0555 1535template<int got_size, bool big_endian>
07f397ab 1536bool
d77a0555 1537Output_data_got<got_size, big_endian>::add_local(
83896202 1538 Relobj* object,
0a65a3a7
CC
1539 unsigned int symndx,
1540 unsigned int got_type)
07f397ab 1541{
0a65a3a7 1542 if (object->local_has_got_offset(symndx, got_type))
07f397ab
ILT
1543 return false;
1544
4829d394
CC
1545 unsigned int got_offset = this->add_got_entry(Got_entry(object, symndx,
1546 false));
1547 object->set_local_got_offset(symndx, got_type, got_offset);
7223e9ca
ILT
1548 return true;
1549}
1550
7ef8ae7c
VR
1551// Add an entry for a local symbol plus ADDEND to the GOT. This returns
1552// true if this is a new GOT entry, false if the symbol already has a GOT
1553// entry.
1554
1555template<int got_size, bool big_endian>
1556bool
1557Output_data_got<got_size, big_endian>::add_local(
1558 Relobj* object,
1559 unsigned int symndx,
1560 unsigned int got_type,
1561 uint64_t addend)
1562{
1563 if (object->local_has_got_offset(symndx, got_type, addend))
1564 return false;
1565
1566 unsigned int got_offset = this->add_got_entry(Got_entry(object, symndx,
1567 false, addend));
1568 object->set_local_got_offset(symndx, got_type, got_offset, addend);
1569 return true;
1570}
1571
7223e9ca
ILT
1572// Like add_local, but use the PLT offset.
1573
d77a0555 1574template<int got_size, bool big_endian>
7223e9ca 1575bool
d77a0555 1576Output_data_got<got_size, big_endian>::add_local_plt(
83896202 1577 Relobj* object,
7223e9ca
ILT
1578 unsigned int symndx,
1579 unsigned int got_type)
1580{
1581 if (object->local_has_got_offset(symndx, got_type))
1582 return false;
1583
4829d394
CC
1584 unsigned int got_offset = this->add_got_entry(Got_entry(object, symndx,
1585 true));
1586 object->set_local_got_offset(symndx, got_type, got_offset);
07f397ab
ILT
1587 return true;
1588}
1589
0a65a3a7
CC
1590// Add an entry for a local symbol to the GOT, and add a dynamic
1591// relocation of type R_TYPE for the GOT entry.
7223e9ca 1592
d77a0555 1593template<int got_size, bool big_endian>
7bf1f802 1594void
d77a0555 1595Output_data_got<got_size, big_endian>::add_local_with_rel(
83896202 1596 Relobj* object,
0a65a3a7
CC
1597 unsigned int symndx,
1598 unsigned int got_type,
83896202 1599 Output_data_reloc_generic* rel_dyn,
7bf1f802
ILT
1600 unsigned int r_type)
1601{
0a65a3a7 1602 if (object->local_has_got_offset(symndx, got_type))
7bf1f802
ILT
1603 return;
1604
4829d394 1605 unsigned int got_offset = this->add_got_entry(Got_entry());
2ea97941 1606 object->set_local_got_offset(symndx, got_type, got_offset);
83896202 1607 rel_dyn->add_local_generic(object, symndx, r_type, this, got_offset, 0);
07f397ab
ILT
1608}
1609
7ef8ae7c
VR
1610// Add an entry for a local symbol plus ADDEND to the GOT, and add a dynamic
1611// relocation of type R_TYPE for the GOT entry.
1612
1613template<int got_size, bool big_endian>
1614void
1615Output_data_got<got_size, big_endian>::add_local_with_rel(
1616 Relobj* object,
1617 unsigned int symndx,
1618 unsigned int got_type,
1619 Output_data_reloc_generic* rel_dyn,
1620 unsigned int r_type, uint64_t addend)
1621{
1622 if (object->local_has_got_offset(symndx, got_type, addend))
1623 return;
1624
1625 unsigned int got_offset = this->add_got_entry(Got_entry());
1626 object->set_local_got_offset(symndx, got_type, got_offset, addend);
1627 rel_dyn->add_local_generic(object, symndx, r_type, this, got_offset,
1628 addend);
1629}
1630
0a65a3a7 1631// Add a pair of entries for a local symbol to the GOT, and add
bd73a62d
AM
1632// a dynamic relocation of type R_TYPE using the section symbol of
1633// the output section to which input section SHNDX maps, on the first.
1634// The first got entry will have a value of zero, the second the
1635// value of the local symbol.
d77a0555 1636template<int got_size, bool big_endian>
7bf1f802 1637void
d77a0555 1638Output_data_got<got_size, big_endian>::add_local_pair_with_rel(
83896202 1639 Relobj* object,
7bf1f802
ILT
1640 unsigned int symndx,
1641 unsigned int shndx,
0a65a3a7 1642 unsigned int got_type,
83896202 1643 Output_data_reloc_generic* rel_dyn,
bd73a62d 1644 unsigned int r_type)
7bf1f802 1645{
0a65a3a7 1646 if (object->local_has_got_offset(symndx, got_type))
7bf1f802
ILT
1647 return;
1648
4829d394
CC
1649 unsigned int got_offset =
1650 this->add_got_entry_pair(Got_entry(),
1651 Got_entry(object, symndx, false));
2ea97941 1652 object->set_local_got_offset(symndx, got_type, got_offset);
ef9beddf 1653 Output_section* os = object->output_section(shndx);
bd73a62d
AM
1654 rel_dyn->add_output_section_generic(os, r_type, this, got_offset, 0);
1655}
7bf1f802 1656
7ef8ae7c
VR
1657// Add a pair of entries for a local symbol plus ADDEND to the GOT, and add
1658// a dynamic relocation of type R_TYPE using the section symbol of
1659// the output section to which input section SHNDX maps, on the first.
1660// The first got entry will have a value of zero, the second the
1661// value of the local symbol.
1662template<int got_size, bool big_endian>
1663void
1664Output_data_got<got_size, big_endian>::add_local_pair_with_rel(
1665 Relobj* object,
1666 unsigned int symndx,
1667 unsigned int shndx,
1668 unsigned int got_type,
1669 Output_data_reloc_generic* rel_dyn,
1670 unsigned int r_type, uint64_t addend)
1671{
1672 if (object->local_has_got_offset(symndx, got_type, addend))
1673 return;
1674
1675 unsigned int got_offset =
1676 this->add_got_entry_pair(Got_entry(),
1677 Got_entry(object, symndx, false, addend));
1678 object->set_local_got_offset(symndx, got_type, got_offset, addend);
1679 Output_section* os = object->output_section(shndx);
1680 rel_dyn->add_output_section_generic(os, r_type, this, got_offset, addend);
1681}
1682
bd73a62d
AM
1683// Add a pair of entries for a local symbol to the GOT, and add
1684// a dynamic relocation of type R_TYPE using STN_UNDEF on the first.
1685// The first got entry will have a value of zero, the second the
1686// value of the local symbol offset by Target::tls_offset_for_local.
d77a0555 1687template<int got_size, bool big_endian>
bd73a62d 1688void
d77a0555 1689Output_data_got<got_size, big_endian>::add_local_tls_pair(
bd73a62d
AM
1690 Relobj* object,
1691 unsigned int symndx,
1692 unsigned int got_type,
1693 Output_data_reloc_generic* rel_dyn,
1694 unsigned int r_type)
1695{
1696 if (object->local_has_got_offset(symndx, got_type))
1697 return;
1698
1699 unsigned int got_offset
1700 = this->add_got_entry_pair(Got_entry(),
1701 Got_entry(object, symndx, true));
1702 object->set_local_got_offset(symndx, got_type, got_offset);
1703 rel_dyn->add_local_generic(object, 0, r_type, this, got_offset, 0);
4829d394
CC
1704}
1705
1706// Reserve a slot in the GOT for a local symbol or the second slot of a pair.
1707
d77a0555 1708template<int got_size, bool big_endian>
4829d394 1709void
d77a0555 1710Output_data_got<got_size, big_endian>::reserve_local(
6fa2a40b 1711 unsigned int i,
83896202 1712 Relobj* object,
6fa2a40b
CC
1713 unsigned int sym_index,
1714 unsigned int got_type)
4829d394 1715{
dd74ae06 1716 this->do_reserve_slot(i);
6fa2a40b 1717 object->set_local_got_offset(sym_index, got_type, this->got_offset(i));
4829d394 1718}
7bf1f802 1719
4829d394
CC
1720// Reserve a slot in the GOT for a global symbol.
1721
d77a0555 1722template<int got_size, bool big_endian>
4829d394 1723void
d77a0555 1724Output_data_got<got_size, big_endian>::reserve_global(
4829d394
CC
1725 unsigned int i,
1726 Symbol* gsym,
1727 unsigned int got_type)
1728{
dd74ae06 1729 this->do_reserve_slot(i);
4829d394 1730 gsym->set_got_offset(got_type, this->got_offset(i));
7bf1f802
ILT
1731}
1732
ead1e424
ILT
1733// Write out the GOT.
1734
d77a0555 1735template<int got_size, bool big_endian>
ead1e424 1736void
d77a0555 1737Output_data_got<got_size, big_endian>::do_write(Output_file* of)
ead1e424 1738{
d77a0555 1739 const int add = got_size / 8;
ead1e424
ILT
1740
1741 const off_t off = this->offset();
c06b7b0b 1742 const off_t oview_size = this->data_size();
ead1e424
ILT
1743 unsigned char* const oview = of->get_output_view(off, oview_size);
1744
1745 unsigned char* pov = oview;
bd73a62d 1746 for (unsigned int i = 0; i < this->entries_.size(); ++i)
ead1e424 1747 {
bd73a62d 1748 this->entries_[i].write(i, pov);
ead1e424
ILT
1749 pov += add;
1750 }
1751
a3ad94ed 1752 gold_assert(pov - oview == oview_size);
c06b7b0b 1753
ead1e424
ILT
1754 of->write_output_view(off, oview_size, oview);
1755
1756 // We no longer need the GOT entries.
1757 this->entries_.clear();
1758}
1759
4829d394
CC
1760// Create a new GOT entry and return its offset.
1761
d77a0555 1762template<int got_size, bool big_endian>
4829d394 1763unsigned int
d77a0555 1764Output_data_got<got_size, big_endian>::add_got_entry(Got_entry got_entry)
4829d394
CC
1765{
1766 if (!this->is_data_size_valid())
1767 {
1768 this->entries_.push_back(got_entry);
1769 this->set_got_size();
1770 return this->last_got_offset();
1771 }
1772 else
1773 {
1774 // For an incremental update, find an available slot.
d77a0555
ILT
1775 off_t got_offset = this->free_list_.allocate(got_size / 8,
1776 got_size / 8, 0);
4829d394 1777 if (got_offset == -1)
e6455dfb
CC
1778 gold_fallback(_("out of patch space (GOT);"
1779 " relink with --incremental-full"));
d77a0555 1780 unsigned int got_index = got_offset / (got_size / 8);
4829d394
CC
1781 gold_assert(got_index < this->entries_.size());
1782 this->entries_[got_index] = got_entry;
1783 return static_cast<unsigned int>(got_offset);
1784 }
1785}
1786
1787// Create a pair of new GOT entries and return the offset of the first.
1788
d77a0555 1789template<int got_size, bool big_endian>
4829d394 1790unsigned int
d77a0555
ILT
1791Output_data_got<got_size, big_endian>::add_got_entry_pair(
1792 Got_entry got_entry_1,
1793 Got_entry got_entry_2)
4829d394
CC
1794{
1795 if (!this->is_data_size_valid())
1796 {
1797 unsigned int got_offset;
1798 this->entries_.push_back(got_entry_1);
1799 got_offset = this->last_got_offset();
1800 this->entries_.push_back(got_entry_2);
1801 this->set_got_size();
1802 return got_offset;
1803 }
1804 else
1805 {
1806 // For an incremental update, find an available pair of slots.
d77a0555
ILT
1807 off_t got_offset = this->free_list_.allocate(2 * got_size / 8,
1808 got_size / 8, 0);
4829d394 1809 if (got_offset == -1)
e6455dfb
CC
1810 gold_fallback(_("out of patch space (GOT);"
1811 " relink with --incremental-full"));
d77a0555 1812 unsigned int got_index = got_offset / (got_size / 8);
4829d394
CC
1813 gold_assert(got_index < this->entries_.size());
1814 this->entries_[got_index] = got_entry_1;
1815 this->entries_[got_index + 1] = got_entry_2;
1816 return static_cast<unsigned int>(got_offset);
1817 }
1818}
1819
cf43a2fe
AM
1820// Replace GOT entry I with a new value.
1821
d77a0555 1822template<int got_size, bool big_endian>
cf43a2fe 1823void
d77a0555 1824Output_data_got<got_size, big_endian>::replace_got_entry(
cf43a2fe
AM
1825 unsigned int i,
1826 Got_entry got_entry)
1827{
1828 gold_assert(i < this->entries_.size());
1829 this->entries_[i] = got_entry;
1830}
1831
a3ad94ed
ILT
1832// Output_data_dynamic::Dynamic_entry methods.
1833
1834// Write out the entry.
1835
1836template<int size, bool big_endian>
1837void
1838Output_data_dynamic::Dynamic_entry::write(
1839 unsigned char* pov,
7d1a9ebb 1840 const Stringpool* pool) const
a3ad94ed
ILT
1841{
1842 typename elfcpp::Elf_types<size>::Elf_WXword val;
c2b45e22 1843 switch (this->offset_)
a3ad94ed
ILT
1844 {
1845 case DYNAMIC_NUMBER:
1846 val = this->u_.val;
1847 break;
1848
a3ad94ed 1849 case DYNAMIC_SECTION_SIZE:
16649710 1850 val = this->u_.od->data_size();
612a8d3d
DM
1851 if (this->od2 != NULL)
1852 val += this->od2->data_size();
a3ad94ed
ILT
1853 break;
1854
1855 case DYNAMIC_SYMBOL:
1856 {
16649710
ILT
1857 const Sized_symbol<size>* s =
1858 static_cast<const Sized_symbol<size>*>(this->u_.sym);
a3ad94ed
ILT
1859 val = s->value();
1860 }
1861 break;
1862
1863 case DYNAMIC_STRING:
1864 val = pool->get_offset(this->u_.str);
1865 break;
1866
918fc1f8
CC
1867 case DYNAMIC_CUSTOM:
1868 val = parameters->target().dynamic_tag_custom_value(this->tag_);
1869 break;
1870
a3ad94ed 1871 default:
c2b45e22
CC
1872 val = this->u_.od->address() + this->offset_;
1873 break;
a3ad94ed
ILT
1874 }
1875
1876 elfcpp::Dyn_write<size, big_endian> dw(pov);
1877 dw.put_d_tag(this->tag_);
1878 dw.put_d_val(val);
1879}
1880
1881// Output_data_dynamic methods.
1882
16649710
ILT
1883// Adjust the output section to set the entry size.
1884
1885void
1886Output_data_dynamic::do_adjust_output_section(Output_section* os)
1887{
8851ecca 1888 if (parameters->target().get_size() == 32)
16649710 1889 os->set_entsize(elfcpp::Elf_sizes<32>::dyn_size);
8851ecca 1890 else if (parameters->target().get_size() == 64)
16649710
ILT
1891 os->set_entsize(elfcpp::Elf_sizes<64>::dyn_size);
1892 else
1893 gold_unreachable();
1894}
1895
a3ad94ed
ILT
1896// Set the final data size.
1897
1898void
27bc2bce 1899Output_data_dynamic::set_final_data_size()
a3ad94ed 1900{
20e6d0d6
DK
1901 // Add the terminating entry if it hasn't been added.
1902 // Because of relaxation, we can run this multiple times.
9e9e071b
ILT
1903 if (this->entries_.empty() || this->entries_.back().tag() != elfcpp::DT_NULL)
1904 {
1905 int extra = parameters->options().spare_dynamic_tags();
1906 for (int i = 0; i < extra; ++i)
1907 this->add_constant(elfcpp::DT_NULL, 0);
1908 this->add_constant(elfcpp::DT_NULL, 0);
1909 }
a3ad94ed
ILT
1910
1911 int dyn_size;
8851ecca 1912 if (parameters->target().get_size() == 32)
a3ad94ed 1913 dyn_size = elfcpp::Elf_sizes<32>::dyn_size;
8851ecca 1914 else if (parameters->target().get_size() == 64)
a3ad94ed
ILT
1915 dyn_size = elfcpp::Elf_sizes<64>::dyn_size;
1916 else
1917 gold_unreachable();
1918 this->set_data_size(this->entries_.size() * dyn_size);
1919}
1920
1921// Write out the dynamic entries.
1922
1923void
1924Output_data_dynamic::do_write(Output_file* of)
1925{
8851ecca 1926 switch (parameters->size_and_endianness())
a3ad94ed 1927 {
9025d29d 1928#ifdef HAVE_TARGET_32_LITTLE
8851ecca
ILT
1929 case Parameters::TARGET_32_LITTLE:
1930 this->sized_write<32, false>(of);
1931 break;
9025d29d 1932#endif
8851ecca
ILT
1933#ifdef HAVE_TARGET_32_BIG
1934 case Parameters::TARGET_32_BIG:
1935 this->sized_write<32, true>(of);
1936 break;
9025d29d 1937#endif
9025d29d 1938#ifdef HAVE_TARGET_64_LITTLE
8851ecca
ILT
1939 case Parameters::TARGET_64_LITTLE:
1940 this->sized_write<64, false>(of);
1941 break;
9025d29d 1942#endif
8851ecca
ILT
1943#ifdef HAVE_TARGET_64_BIG
1944 case Parameters::TARGET_64_BIG:
1945 this->sized_write<64, true>(of);
1946 break;
1947#endif
1948 default:
1949 gold_unreachable();
a3ad94ed 1950 }
a3ad94ed
ILT
1951}
1952
1953template<int size, bool big_endian>
1954void
1955Output_data_dynamic::sized_write(Output_file* of)
1956{
1957 const int dyn_size = elfcpp::Elf_sizes<size>::dyn_size;
1958
2ea97941 1959 const off_t offset = this->offset();
a3ad94ed 1960 const off_t oview_size = this->data_size();
2ea97941 1961 unsigned char* const oview = of->get_output_view(offset, oview_size);
a3ad94ed
ILT
1962
1963 unsigned char* pov = oview;
1964 for (typename Dynamic_entries::const_iterator p = this->entries_.begin();
1965 p != this->entries_.end();
1966 ++p)
1967 {
7d1a9ebb 1968 p->write<size, big_endian>(pov, this->pool_);
a3ad94ed
ILT
1969 pov += dyn_size;
1970 }
1971
1972 gold_assert(pov - oview == oview_size);
1973
2ea97941 1974 of->write_output_view(offset, oview_size, oview);
a3ad94ed
ILT
1975
1976 // We no longer need the dynamic entries.
1977 this->entries_.clear();
1978}
1979
d491d34e
ILT
1980// Class Output_symtab_xindex.
1981
1982void
1983Output_symtab_xindex::do_write(Output_file* of)
1984{
2ea97941 1985 const off_t offset = this->offset();
d491d34e 1986 const off_t oview_size = this->data_size();
2ea97941 1987 unsigned char* const oview = of->get_output_view(offset, oview_size);
d491d34e
ILT
1988
1989 memset(oview, 0, oview_size);
1990
1991 if (parameters->target().is_big_endian())
1992 this->endian_do_write<true>(oview);
1993 else
1994 this->endian_do_write<false>(oview);
1995
2ea97941 1996 of->write_output_view(offset, oview_size, oview);
d491d34e
ILT
1997
1998 // We no longer need the data.
1999 this->entries_.clear();
2000}
2001
2002template<bool big_endian>
2003void
2004Output_symtab_xindex::endian_do_write(unsigned char* const oview)
2005{
2006 for (Xindex_entries::const_iterator p = this->entries_.begin();
2007 p != this->entries_.end();
2008 ++p)
20e6d0d6
DK
2009 {
2010 unsigned int symndx = p->first;
50ed5eb1 2011 gold_assert(static_cast<off_t>(symndx) * 4 < this->data_size());
20e6d0d6
DK
2012 elfcpp::Swap<32, big_endian>::writeval(oview + symndx * 4, p->second);
2013 }
d491d34e
ILT
2014}
2015
8ea8cd50
CC
2016// Output_fill_debug_info methods.
2017
2018// Return the minimum size needed for a dummy compilation unit header.
2019
2020size_t
2021Output_fill_debug_info::do_minimum_hole_size() const
2022{
2023 // Compile unit header fields: unit_length, version, debug_abbrev_offset,
2024 // address_size.
2025 const size_t len = 4 + 2 + 4 + 1;
2026 // For type units, add type_signature, type_offset.
2027 if (this->is_debug_types_)
2028 return len + 8 + 4;
2029 return len;
2030}
2031
2032// Write a dummy compilation unit header to fill a hole in the
2033// .debug_info or .debug_types section.
2034
2035void
2036Output_fill_debug_info::do_write(Output_file* of, off_t off, size_t len) const
2037{
66570254
CC
2038 gold_debug(DEBUG_INCREMENTAL, "fill_debug_info(%08lx, %08lx)",
2039 static_cast<long>(off), static_cast<long>(len));
8ea8cd50
CC
2040
2041 gold_assert(len >= this->do_minimum_hole_size());
2042
2043 unsigned char* const oview = of->get_output_view(off, len);
2044 unsigned char* pov = oview;
2045
2046 // Write header fields: unit_length, version, debug_abbrev_offset,
2047 // address_size.
2048 if (this->is_big_endian())
2049 {
24c6c55a
DM
2050 elfcpp::Swap_unaligned<32, true>::writeval(pov, len - 4);
2051 elfcpp::Swap_unaligned<16, true>::writeval(pov + 4, this->version);
2052 elfcpp::Swap_unaligned<32, true>::writeval(pov + 6, 0);
8ea8cd50
CC
2053 }
2054 else
2055 {
24c6c55a
DM
2056 elfcpp::Swap_unaligned<32, false>::writeval(pov, len - 4);
2057 elfcpp::Swap_unaligned<16, false>::writeval(pov + 4, this->version);
2058 elfcpp::Swap_unaligned<32, false>::writeval(pov + 6, 0);
8ea8cd50
CC
2059 }
2060 pov += 4 + 2 + 4;
2061 *pov++ = 4;
2062
2063 // For type units, the additional header fields -- type_signature,
2064 // type_offset -- can be filled with zeroes.
2065
2066 // Fill the remainder of the free space with zeroes. The first
2067 // zero should tell the consumer there are no DIEs to read in this
2068 // compilation unit.
2069 if (pov < oview + len)
2070 memset(pov, 0, oview + len - pov);
2071
2072 of->write_output_view(off, len, oview);
2073}
2074
2075// Output_fill_debug_line methods.
2076
2077// Return the minimum size needed for a dummy line number program header.
2078
2079size_t
2080Output_fill_debug_line::do_minimum_hole_size() const
2081{
2082 // Line number program header fields: unit_length, version, header_length,
2083 // minimum_instruction_length, default_is_stmt, line_base, line_range,
2084 // opcode_base, standard_opcode_lengths[], include_directories, filenames.
2085 const size_t len = 4 + 2 + 4 + this->header_length;
2086 return len;
2087}
2088
2089// Write a dummy line number program header to fill a hole in the
2090// .debug_line section.
2091
2092void
2093Output_fill_debug_line::do_write(Output_file* of, off_t off, size_t len) const
2094{
66570254
CC
2095 gold_debug(DEBUG_INCREMENTAL, "fill_debug_line(%08lx, %08lx)",
2096 static_cast<long>(off), static_cast<long>(len));
8ea8cd50
CC
2097
2098 gold_assert(len >= this->do_minimum_hole_size());
2099
2100 unsigned char* const oview = of->get_output_view(off, len);
2101 unsigned char* pov = oview;
2102
2103 // Write header fields: unit_length, version, header_length,
2104 // minimum_instruction_length, default_is_stmt, line_base, line_range,
2105 // opcode_base, standard_opcode_lengths[], include_directories, filenames.
2106 // We set the header_length field to cover the entire hole, so the
2107 // line number program is empty.
2108 if (this->is_big_endian())
2109 {
24c6c55a
DM
2110 elfcpp::Swap_unaligned<32, true>::writeval(pov, len - 4);
2111 elfcpp::Swap_unaligned<16, true>::writeval(pov + 4, this->version);
2112 elfcpp::Swap_unaligned<32, true>::writeval(pov + 6, len - (4 + 2 + 4));
8ea8cd50
CC
2113 }
2114 else
2115 {
24c6c55a
DM
2116 elfcpp::Swap_unaligned<32, false>::writeval(pov, len - 4);
2117 elfcpp::Swap_unaligned<16, false>::writeval(pov + 4, this->version);
2118 elfcpp::Swap_unaligned<32, false>::writeval(pov + 6, len - (4 + 2 + 4));
8ea8cd50
CC
2119 }
2120 pov += 4 + 2 + 4;
2121 *pov++ = 1; // minimum_instruction_length
2122 *pov++ = 0; // default_is_stmt
2123 *pov++ = 0; // line_base
2124 *pov++ = 5; // line_range
2125 *pov++ = 13; // opcode_base
2126 *pov++ = 0; // standard_opcode_lengths[1]
2127 *pov++ = 1; // standard_opcode_lengths[2]
2128 *pov++ = 1; // standard_opcode_lengths[3]
2129 *pov++ = 1; // standard_opcode_lengths[4]
2130 *pov++ = 1; // standard_opcode_lengths[5]
2131 *pov++ = 0; // standard_opcode_lengths[6]
2132 *pov++ = 0; // standard_opcode_lengths[7]
2133 *pov++ = 0; // standard_opcode_lengths[8]
2134 *pov++ = 1; // standard_opcode_lengths[9]
2135 *pov++ = 0; // standard_opcode_lengths[10]
2136 *pov++ = 0; // standard_opcode_lengths[11]
2137 *pov++ = 1; // standard_opcode_lengths[12]
2138 *pov++ = 0; // include_directories (empty)
2139 *pov++ = 0; // filenames (empty)
2140
2141 // Some consumers don't check the header_length field, and simply
2142 // start reading the line number program immediately following the
2143 // header. For those consumers, we fill the remainder of the free
2144 // space with DW_LNS_set_basic_block opcodes. These are effectively
2145 // no-ops: the resulting line table program will not create any rows.
2146 if (pov < oview + len)
2147 memset(pov, elfcpp::DW_LNS_set_basic_block, oview + len - pov);
2148
2149 of->write_output_view(off, len, oview);
2150}
2151
ead1e424
ILT
2152// Output_section::Input_section methods.
2153
cdc29364
CC
2154// Return the current data size. For an input section we store the size here.
2155// For an Output_section_data, we have to ask it for the size.
2156
2157off_t
2158Output_section::Input_section::current_data_size() const
2159{
2160 if (this->is_input_section())
2161 return this->u1_.data_size;
2162 else
2163 {
2164 this->u2_.posd->pre_finalize_data_size();
2165 return this->u2_.posd->current_data_size();
2166 }
2167}
2168
ead1e424
ILT
2169// Return the data size. For an input section we store the size here.
2170// For an Output_section_data, we have to ask it for the size.
2171
2172off_t
2173Output_section::Input_section::data_size() const
2174{
2175 if (this->is_input_section())
b8e6aad9 2176 return this->u1_.data_size;
ead1e424 2177 else
b8e6aad9 2178 return this->u2_.posd->data_size();
ead1e424
ILT
2179}
2180
0439c796
DK
2181// Return the object for an input section.
2182
2183Relobj*
2184Output_section::Input_section::relobj() const
2185{
2186 if (this->is_input_section())
2187 return this->u2_.object;
2188 else if (this->is_merge_section())
2189 {
2190 gold_assert(this->u2_.pomb->first_relobj() != NULL);
2191 return this->u2_.pomb->first_relobj();
2192 }
2193 else if (this->is_relaxed_input_section())
2194 return this->u2_.poris->relobj();
2195 else
2196 gold_unreachable();
2197}
2198
2199// Return the input section index for an input section.
2200
2201unsigned int
2202Output_section::Input_section::shndx() const
2203{
2204 if (this->is_input_section())
2205 return this->shndx_;
2206 else if (this->is_merge_section())
2207 {
2208 gold_assert(this->u2_.pomb->first_relobj() != NULL);
2209 return this->u2_.pomb->first_shndx();
2210 }
2211 else if (this->is_relaxed_input_section())
2212 return this->u2_.poris->shndx();
2213 else
2214 gold_unreachable();
2215}
2216
ead1e424
ILT
2217// Set the address and file offset.
2218
2219void
96803768
ILT
2220Output_section::Input_section::set_address_and_file_offset(
2221 uint64_t address,
2222 off_t file_offset,
2223 off_t section_file_offset)
ead1e424
ILT
2224{
2225 if (this->is_input_section())
96803768
ILT
2226 this->u2_.object->set_section_offset(this->shndx_,
2227 file_offset - section_file_offset);
ead1e424 2228 else
96803768
ILT
2229 this->u2_.posd->set_address_and_file_offset(address, file_offset);
2230}
2231
a445fddf
ILT
2232// Reset the address and file offset.
2233
2234void
2235Output_section::Input_section::reset_address_and_file_offset()
2236{
2237 if (!this->is_input_section())
2238 this->u2_.posd->reset_address_and_file_offset();
2239}
2240
96803768
ILT
2241// Finalize the data size.
2242
2243void
2244Output_section::Input_section::finalize_data_size()
2245{
2246 if (!this->is_input_section())
2247 this->u2_.posd->finalize_data_size();
b8e6aad9
ILT
2248}
2249
1e983657
ILT
2250// Try to turn an input offset into an output offset. We want to
2251// return the output offset relative to the start of this
2252// Input_section in the output section.
b8e6aad9 2253
8f00aeb8 2254inline bool
8383303e
ILT
2255Output_section::Input_section::output_offset(
2256 const Relobj* object,
2ea97941
ILT
2257 unsigned int shndx,
2258 section_offset_type offset,
ca09d69a 2259 section_offset_type* poutput) const
b8e6aad9
ILT
2260{
2261 if (!this->is_input_section())
2ea97941 2262 return this->u2_.posd->output_offset(object, shndx, offset, poutput);
b8e6aad9
ILT
2263 else
2264 {
2ea97941 2265 if (this->shndx_ != shndx || this->u2_.object != object)
b8e6aad9 2266 return false;
2ea97941 2267 *poutput = offset;
b8e6aad9
ILT
2268 return true;
2269 }
ead1e424
ILT
2270}
2271
2272// Write out the data. We don't have to do anything for an input
2273// section--they are handled via Object::relocate--but this is where
2274// we write out the data for an Output_section_data.
2275
2276void
2277Output_section::Input_section::write(Output_file* of)
2278{
2279 if (!this->is_input_section())
b8e6aad9 2280 this->u2_.posd->write(of);
ead1e424
ILT
2281}
2282
96803768
ILT
2283// Write the data to a buffer. As for write(), we don't have to do
2284// anything for an input section.
2285
2286void
2287Output_section::Input_section::write_to_buffer(unsigned char* buffer)
2288{
2289 if (!this->is_input_section())
2290 this->u2_.posd->write_to_buffer(buffer);
2291}
2292
7d9e3d98
ILT
2293// Print to a map file.
2294
2295void
2296Output_section::Input_section::print_to_mapfile(Mapfile* mapfile) const
2297{
2298 switch (this->shndx_)
2299 {
2300 case OUTPUT_SECTION_CODE:
2301 case MERGE_DATA_SECTION_CODE:
2302 case MERGE_STRING_SECTION_CODE:
2303 this->u2_.posd->print_to_mapfile(mapfile);
2304 break;
2305
20e6d0d6
DK
2306 case RELAXED_INPUT_SECTION_CODE:
2307 {
eb426534 2308 Output_relaxed_input_section* relaxed_section =
20e6d0d6 2309 this->relaxed_input_section();
eb426534 2310 mapfile->print_input_section(relaxed_section->relobj(),
20e6d0d6
DK
2311 relaxed_section->shndx());
2312 }
2313 break;
7d9e3d98
ILT
2314 default:
2315 mapfile->print_input_section(this->u2_.object, this->shndx_);
2316 break;
2317 }
2318}
2319
a2fb1b05
ILT
2320// Output_section methods.
2321
2322// Construct an Output_section. NAME will point into a Stringpool.
2323
2ea97941
ILT
2324Output_section::Output_section(const char* name, elfcpp::Elf_Word type,
2325 elfcpp::Elf_Xword flags)
2326 : name_(name),
a2fb1b05
ILT
2327 addralign_(0),
2328 entsize_(0),
a445fddf 2329 load_address_(0),
16649710 2330 link_section_(NULL),
a2fb1b05 2331 link_(0),
16649710 2332 info_section_(NULL),
6a74a719 2333 info_symndx_(NULL),
a2fb1b05 2334 info_(0),
2ea97941
ILT
2335 type_(type),
2336 flags_(flags),
22f0da72 2337 order_(ORDER_INVALID),
91ea499d 2338 out_shndx_(-1U),
c06b7b0b
ILT
2339 symtab_index_(0),
2340 dynsym_index_(0),
ead1e424
ILT
2341 input_sections_(),
2342 first_input_offset_(0),
c51e6221 2343 fills_(),
96803768 2344 postprocessing_buffer_(NULL),
a3ad94ed 2345 needs_symtab_index_(false),
16649710
ILT
2346 needs_dynsym_index_(false),
2347 should_link_to_symtab_(false),
730cdc88 2348 should_link_to_dynsym_(false),
27bc2bce 2349 after_input_sections_(false),
7bf1f802 2350 requires_postprocessing_(false),
a445fddf
ILT
2351 found_in_sections_clause_(false),
2352 has_load_address_(false),
755ab8af 2353 info_uses_section_index_(false),
6e9ba2ca 2354 input_section_order_specified_(false),
2fd32231
ILT
2355 may_sort_attached_input_sections_(false),
2356 must_sort_attached_input_sections_(false),
2357 attached_input_sections_are_sorted_(false),
9f1d377b 2358 is_relro_(false),
8a5e3e08
ILT
2359 is_small_section_(false),
2360 is_large_section_(false),
f5c870d2 2361 generate_code_fills_at_write_(false),
e8cd95c7 2362 is_entsize_zero_(false),
8923b24c 2363 section_offsets_need_adjustment_(false),
1e5d2fb1 2364 is_noload_(false),
131687b4 2365 always_keeps_input_sections_(false),
cdc29364 2366 has_fixed_layout_(false),
9fbd3822 2367 is_patch_space_allowed_(false),
16164a6b 2368 is_unique_segment_(false),
20e6d0d6 2369 tls_offset_(0),
16164a6b
ST
2370 extra_segment_flags_(0),
2371 segment_alignment_(0),
c0a62865 2372 checkpoint_(NULL),
cdc29364 2373 lookup_maps_(new Output_section_lookup_maps),
9fbd3822 2374 free_list_(),
8ea8cd50 2375 free_space_fill_(NULL),
9fbd3822 2376 patch_space_(0)
a2fb1b05 2377{
27bc2bce
ILT
2378 // An unallocated section has no address. Forcing this means that
2379 // we don't need special treatment for symbols defined in debug
2380 // sections.
2ea97941 2381 if ((flags & elfcpp::SHF_ALLOC) == 0)
27bc2bce 2382 this->set_address(0);
a2fb1b05
ILT
2383}
2384
54dc6425
ILT
2385Output_section::~Output_section()
2386{
20e6d0d6 2387 delete this->checkpoint_;
54dc6425
ILT
2388}
2389
16649710
ILT
2390// Set the entry size.
2391
2392void
2393Output_section::set_entsize(uint64_t v)
2394{
e8cd95c7
ILT
2395 if (this->is_entsize_zero_)
2396 ;
2397 else if (this->entsize_ == 0)
16649710 2398 this->entsize_ = v;
e8cd95c7
ILT
2399 else if (this->entsize_ != v)
2400 {
2401 this->entsize_ = 0;
2402 this->is_entsize_zero_ = 1;
2403 }
16649710
ILT
2404}
2405
ead1e424 2406// Add the input section SHNDX, with header SHDR, named SECNAME, in
730cdc88
ILT
2407// OBJECT, to the Output_section. RELOC_SHNDX is the index of a
2408// relocation section which applies to this section, or 0 if none, or
2409// -1U if more than one. Return the offset of the input section
2410// within the output section. Return -1 if the input section will
2411// receive special handling. In the normal case we don't always keep
2412// track of input sections for an Output_section. Instead, each
2413// Object keeps track of the Output_section for each of its input
a445fddf
ILT
2414// sections. However, if HAVE_SECTIONS_SCRIPT is true, we do keep
2415// track of input sections here; this is used when SECTIONS appears in
2416// a linker script.
a2fb1b05
ILT
2417
2418template<int size, bool big_endian>
2419off_t
6e9ba2ca 2420Output_section::add_input_section(Layout* layout,
6fa2a40b 2421 Sized_relobj_file<size, big_endian>* object,
2ea97941 2422 unsigned int shndx,
ead1e424 2423 const char* secname,
730cdc88 2424 const elfcpp::Shdr<size, big_endian>& shdr,
a445fddf
ILT
2425 unsigned int reloc_shndx,
2426 bool have_sections_script)
a2fb1b05 2427{
2ea97941
ILT
2428 elfcpp::Elf_Xword addralign = shdr.get_sh_addralign();
2429 if ((addralign & (addralign - 1)) != 0)
a2fb1b05 2430 {
75f2446e 2431 object->error(_("invalid alignment %lu for section \"%s\""),
2ea97941
ILT
2432 static_cast<unsigned long>(addralign), secname);
2433 addralign = 1;
a2fb1b05 2434 }
a2fb1b05 2435
2ea97941
ILT
2436 if (addralign > this->addralign_)
2437 this->addralign_ = addralign;
a2fb1b05 2438
44a43cf9 2439 typename elfcpp::Elf_types<size>::Elf_WXword sh_flags = shdr.get_sh_flags();
2ea97941 2440 uint64_t entsize = shdr.get_sh_entsize();
44a43cf9
ILT
2441
2442 // .debug_str is a mergeable string section, but is not always so
2443 // marked by compilers. Mark manually here so we can optimize.
2444 if (strcmp(secname, ".debug_str") == 0)
4f833eee
ILT
2445 {
2446 sh_flags |= (elfcpp::SHF_MERGE | elfcpp::SHF_STRINGS);
2ea97941 2447 entsize = 1;
4f833eee 2448 }
44a43cf9 2449
e8cd95c7
ILT
2450 this->update_flags_for_input_section(sh_flags);
2451 this->set_entsize(entsize);
2452
b8e6aad9 2453 // If this is a SHF_MERGE section, we pass all the input sections to
730cdc88 2454 // a Output_data_merge. We don't try to handle relocations for such
e0b64032
ILT
2455 // a section. We don't try to handle empty merge sections--they
2456 // mess up the mappings, and are useless anyhow.
cdc29364 2457 // FIXME: Need to handle merge sections during incremental update.
44a43cf9 2458 if ((sh_flags & elfcpp::SHF_MERGE) != 0
e0b64032 2459 && reloc_shndx == 0
cdc29364
CC
2460 && shdr.get_sh_size() > 0
2461 && !parameters->incremental())
b8e6aad9 2462 {
0439c796
DK
2463 // Keep information about merged input sections for rebuilding fast
2464 // lookup maps if we have sections-script or we do relaxation.
131687b4
DK
2465 bool keeps_input_sections = (this->always_keeps_input_sections_
2466 || have_sections_script
2467 || parameters->target().may_relax());
2468
0439c796
DK
2469 if (this->add_merge_input_section(object, shndx, sh_flags, entsize,
2470 addralign, keeps_input_sections))
b8e6aad9
ILT
2471 {
2472 // Tell the relocation routines that they need to call the
730cdc88 2473 // output_offset method to determine the final address.
b8e6aad9
ILT
2474 return -1;
2475 }
2476 }
2477
cdc29364
CC
2478 section_size_type input_section_size = shdr.get_sh_size();
2479 section_size_type uncompressed_size;
2480 if (object->section_is_compressed(shndx, &uncompressed_size))
2481 input_section_size = uncompressed_size;
2482
2483 off_t offset_in_section;
3136a00e 2484
cdc29364
CC
2485 if (this->has_fixed_layout())
2486 {
2487 // For incremental updates, find a chunk of unused space in the section.
2488 offset_in_section = this->free_list_.allocate(input_section_size,
2489 addralign, 0);
2490 if (offset_in_section == -1)
eb426534 2491 gold_fallback(_("out of patch space in section %s; "
9fbd3822
CC
2492 "relink with --incremental-full"),
2493 this->name());
3136a00e 2494 return offset_in_section;
cdc29364 2495 }
c51e6221 2496
3136a00e
CC
2497 offset_in_section = this->current_data_size_for_child();
2498 off_t aligned_offset_in_section = align_address(offset_in_section,
2499 addralign);
2500 this->set_current_data_size_for_child(aligned_offset_in_section
2501 + input_section_size);
2502
c0a62865
DK
2503 // Determine if we want to delay code-fill generation until the output
2504 // section is written. When the target is relaxing, we want to delay fill
4cf7a849
ST
2505 // generating to avoid adjusting them during relaxation. Also, if we are
2506 // sorting input sections we must delay fill generation.
c0a62865
DK
2507 if (!this->generate_code_fills_at_write_
2508 && !have_sections_script
2509 && (sh_flags & elfcpp::SHF_EXECINSTR) != 0
2510 && parameters->target().has_code_fill()
4cf7a849 2511 && (parameters->target().may_relax()
eb426534 2512 || layout->is_section_ordering_specified()))
c0a62865
DK
2513 {
2514 gold_assert(this->fills_.empty());
2515 this->generate_code_fills_at_write_ = true;
2516 }
2517
c51e6221 2518 if (aligned_offset_in_section > offset_in_section
c0a62865 2519 && !this->generate_code_fills_at_write_
a445fddf 2520 && !have_sections_script
44a43cf9 2521 && (sh_flags & elfcpp::SHF_EXECINSTR) != 0
029ba973 2522 && parameters->target().has_code_fill())
c51e6221
ILT
2523 {
2524 // We need to add some fill data. Using fill_list_ when
2525 // possible is an optimization, since we will often have fill
2526 // sections without input sections.
2527 off_t fill_len = aligned_offset_in_section - offset_in_section;
2528 if (this->input_sections_.empty())
eb426534 2529 this->fills_.push_back(Fill(offset_in_section, fill_len));
c51e6221 2530 else
eb426534
RM
2531 {
2532 std::string fill_data(parameters->target().code_fill(fill_len));
2533 Output_data_const* odc = new Output_data_const(fill_data, 1);
2534 this->input_sections_.push_back(Input_section(odc));
2535 }
c51e6221
ILT
2536 }
2537
ead1e424 2538 // We need to keep track of this section if we are already keeping
2fd32231
ILT
2539 // track of sections, or if we are relaxing. Also, if this is a
2540 // section which requires sorting, or which may require sorting in
6e9ba2ca
ST
2541 // the future, we keep track of the sections. If the
2542 // --section-ordering-file option is used to specify the order of
2543 // sections, we need to keep track of sections.
131687b4
DK
2544 if (this->always_keeps_input_sections_
2545 || have_sections_script
2fd32231
ILT
2546 || !this->input_sections_.empty()
2547 || this->may_sort_attached_input_sections()
7d9e3d98 2548 || this->must_sort_attached_input_sections()
20e6d0d6 2549 || parameters->options().user_set_Map()
6e9ba2ca 2550 || parameters->target().may_relax()
edcac0c1 2551 || layout->is_section_ordering_specified())
6e9ba2ca 2552 {
6fc6ea19 2553 Input_section isecn(object, shndx, input_section_size, addralign);
f0558624
ST
2554 /* If section ordering is requested by specifying a ordering file,
2555 using --section-ordering-file, match the section name with
2556 a pattern. */
2557 if (parameters->options().section_ordering_file())
eb426534
RM
2558 {
2559 unsigned int section_order_index =
2560 layout->find_section_order_index(std::string(secname));
6e9ba2ca 2561 if (section_order_index != 0)
eb426534
RM
2562 {
2563 isecn.set_section_order_index(section_order_index);
2564 this->set_input_section_order_specified();
2565 }
2566 }
6e9ba2ca
ST
2567 this->input_sections_.push_back(isecn);
2568 }
54dc6425 2569
c51e6221 2570 return aligned_offset_in_section;
61ba1cf9
ILT
2571}
2572
ead1e424
ILT
2573// Add arbitrary data to an output section.
2574
2575void
2576Output_section::add_output_section_data(Output_section_data* posd)
2577{
b8e6aad9
ILT
2578 Input_section inp(posd);
2579 this->add_output_section_data(&inp);
a445fddf
ILT
2580
2581 if (posd->is_data_size_valid())
2582 {
cdc29364
CC
2583 off_t offset_in_section;
2584 if (this->has_fixed_layout())
2585 {
2586 // For incremental updates, find a chunk of unused space.
2587 offset_in_section = this->free_list_.allocate(posd->data_size(),
2588 posd->addralign(), 0);
2589 if (offset_in_section == -1)
9fbd3822
CC
2590 gold_fallback(_("out of patch space in section %s; "
2591 "relink with --incremental-full"),
2592 this->name());
cdc29364
CC
2593 // Finalize the address and offset now.
2594 uint64_t addr = this->address();
2595 off_t offset = this->offset();
2596 posd->set_address_and_file_offset(addr + offset_in_section,
2597 offset + offset_in_section);
2598 }
2599 else
2600 {
2601 offset_in_section = this->current_data_size_for_child();
2602 off_t aligned_offset_in_section = align_address(offset_in_section,
2603 posd->addralign());
2604 this->set_current_data_size_for_child(aligned_offset_in_section
2605 + posd->data_size());
2606 }
2607 }
2608 else if (this->has_fixed_layout())
2609 {
2610 // For incremental updates, arrange for the data to have a fixed layout.
2611 // This will mean that additions to the data must be allocated from
2612 // free space within the containing output section.
2613 uint64_t addr = this->address();
2614 posd->set_address(addr);
2615 posd->set_file_offset(0);
4829d394
CC
2616 // FIXME: This should eventually be unreachable.
2617 // gold_unreachable();
a445fddf 2618 }
b8e6aad9
ILT
2619}
2620
c0a62865
DK
2621// Add a relaxed input section.
2622
2623void
d06fb4d1
DK
2624Output_section::add_relaxed_input_section(Layout* layout,
2625 Output_relaxed_input_section* poris,
2626 const std::string& name)
c0a62865
DK
2627{
2628 Input_section inp(poris);
d06fb4d1
DK
2629
2630 // If the --section-ordering-file option is used to specify the order of
2631 // sections, we need to keep track of sections.
e9552f7e 2632 if (layout->is_section_ordering_specified())
d06fb4d1
DK
2633 {
2634 unsigned int section_order_index =
eb426534 2635 layout->find_section_order_index(name);
d06fb4d1 2636 if (section_order_index != 0)
eb426534
RM
2637 {
2638 inp.set_section_order_index(section_order_index);
2639 this->set_input_section_order_specified();
2640 }
d06fb4d1
DK
2641 }
2642
c0a62865 2643 this->add_output_section_data(&inp);
0439c796
DK
2644 if (this->lookup_maps_->is_valid())
2645 this->lookup_maps_->add_relaxed_input_section(poris->relobj(),
2646 poris->shndx(), poris);
c0a62865
DK
2647
2648 // For a relaxed section, we use the current data size. Linker scripts
2649 // get all the input sections, including relaxed one from an output
19fec8c1 2650 // section and add them back to the same output section to compute the
c0a62865 2651 // output section size. If we do not account for sizes of relaxed input
19fec8c1 2652 // sections, an output section would be incorrectly sized.
c0a62865
DK
2653 off_t offset_in_section = this->current_data_size_for_child();
2654 off_t aligned_offset_in_section = align_address(offset_in_section,
2655 poris->addralign());
2656 this->set_current_data_size_for_child(aligned_offset_in_section
2657 + poris->current_data_size());
2658}
2659
b8e6aad9 2660// Add arbitrary data to an output section by Input_section.
c06b7b0b 2661
b8e6aad9
ILT
2662void
2663Output_section::add_output_section_data(Input_section* inp)
2664{
ead1e424 2665 if (this->input_sections_.empty())
27bc2bce 2666 this->first_input_offset_ = this->current_data_size_for_child();
c06b7b0b 2667
b8e6aad9 2668 this->input_sections_.push_back(*inp);
c06b7b0b 2669
2ea97941
ILT
2670 uint64_t addralign = inp->addralign();
2671 if (addralign > this->addralign_)
2672 this->addralign_ = addralign;
c06b7b0b 2673
b8e6aad9
ILT
2674 inp->set_output_section(this);
2675}
2676
2677// Add a merge section to an output section.
2678
2679void
2680Output_section::add_output_merge_section(Output_section_data* posd,
2ea97941 2681 bool is_string, uint64_t entsize)
b8e6aad9 2682{
2ea97941 2683 Input_section inp(posd, is_string, entsize);
b8e6aad9
ILT
2684 this->add_output_section_data(&inp);
2685}
2686
2687// Add an input section to a SHF_MERGE section.
2688
2689bool
2ea97941
ILT
2690Output_section::add_merge_input_section(Relobj* object, unsigned int shndx,
2691 uint64_t flags, uint64_t entsize,
0439c796
DK
2692 uint64_t addralign,
2693 bool keeps_input_sections)
b8e6aad9 2694{
2c7b626c
CC
2695 // We cannot merge sections with entsize == 0.
2696 if (entsize == 0)
2697 return false;
2698
2ea97941 2699 bool is_string = (flags & elfcpp::SHF_STRINGS) != 0;
87f95776 2700
20e6d0d6
DK
2701 // We cannot restore merged input section states.
2702 gold_assert(this->checkpoint_ == NULL);
2703
c0a62865 2704 // Look up merge sections by required properties.
0439c796
DK
2705 // Currently, we only invalidate the lookup maps in script processing
2706 // and relaxation. We should not have done either when we reach here.
2707 // So we assume that the lookup maps are valid to simply code.
2708 gold_assert(this->lookup_maps_->is_valid());
2ea97941 2709 Merge_section_properties msp(is_string, entsize, addralign);
0439c796
DK
2710 Output_merge_base* pomb = this->lookup_maps_->find_merge_section(msp);
2711 bool is_new = false;
2712 if (pomb != NULL)
c0a62865 2713 {
6bf924b0
DK
2714 gold_assert(pomb->is_string() == is_string
2715 && pomb->entsize() == entsize
2716 && pomb->addralign() == addralign);
c0a62865 2717 }
b8e6aad9
ILT
2718 else
2719 {
6bf924b0
DK
2720 // Create a new Output_merge_data or Output_merge_string_data.
2721 if (!is_string)
2722 pomb = new Output_merge_data(entsize, addralign);
2723 else
9a0910c3 2724 {
6bf924b0
DK
2725 switch (entsize)
2726 {
2727 case 1:
2728 pomb = new Output_merge_string<char>(addralign);
2729 break;
2730 case 2:
2731 pomb = new Output_merge_string<uint16_t>(addralign);
2732 break;
2733 case 4:
2734 pomb = new Output_merge_string<uint32_t>(addralign);
2735 break;
2736 default:
2737 return false;
2738 }
9a0910c3 2739 }
0439c796
DK
2740 // If we need to do script processing or relaxation, we need to keep
2741 // the original input sections to rebuild the fast lookup maps.
2742 if (keeps_input_sections)
2743 pomb->set_keeps_input_sections();
2744 is_new = true;
b8e6aad9
ILT
2745 }
2746
6bf924b0
DK
2747 if (pomb->add_input_section(object, shndx))
2748 {
0439c796
DK
2749 // Add new merge section to this output section and link merge
2750 // section properties to new merge section in map.
2751 if (is_new)
2752 {
2753 this->add_output_merge_section(pomb, is_string, entsize);
2754 this->lookup_maps_->add_merge_section(msp, pomb);
2755 }
2756
6bf924b0
DK
2757 return true;
2758 }
2759 else
0439c796
DK
2760 {
2761 // If add_input_section failed, delete new merge section to avoid
2762 // exporting empty merge sections in Output_section::get_input_section.
2763 if (is_new)
2764 delete pomb;
2765 return false;
2766 }
b8e6aad9
ILT
2767}
2768
c0a62865 2769// Build a relaxation map to speed up relaxation of existing input sections.
2ea97941 2770// Look up to the first LIMIT elements in INPUT_SECTIONS.
c0a62865 2771
20e6d0d6 2772void
c0a62865 2773Output_section::build_relaxation_map(
2ea97941 2774 const Input_section_list& input_sections,
c0a62865
DK
2775 size_t limit,
2776 Relaxation_map* relaxation_map) const
20e6d0d6 2777{
c0a62865
DK
2778 for (size_t i = 0; i < limit; ++i)
2779 {
2ea97941 2780 const Input_section& is(input_sections[i]);
c0a62865
DK
2781 if (is.is_input_section() || is.is_relaxed_input_section())
2782 {
5ac169d4
DK
2783 Section_id sid(is.relobj(), is.shndx());
2784 (*relaxation_map)[sid] = i;
c0a62865
DK
2785 }
2786 }
2787}
2788
2789// Convert regular input sections in INPUT_SECTIONS into relaxed input
5ac169d4
DK
2790// sections in RELAXED_SECTIONS. MAP is a prebuilt map from section id
2791// indices of INPUT_SECTIONS.
20e6d0d6 2792
c0a62865
DK
2793void
2794Output_section::convert_input_sections_in_list_to_relaxed_sections(
2795 const std::vector<Output_relaxed_input_section*>& relaxed_sections,
2796 const Relaxation_map& map,
2ea97941 2797 Input_section_list* input_sections)
c0a62865
DK
2798{
2799 for (size_t i = 0; i < relaxed_sections.size(); ++i)
2800 {
2801 Output_relaxed_input_section* poris = relaxed_sections[i];
5ac169d4
DK
2802 Section_id sid(poris->relobj(), poris->shndx());
2803 Relaxation_map::const_iterator p = map.find(sid);
c0a62865 2804 gold_assert(p != map.end());
2ea97941 2805 gold_assert((*input_sections)[p->second].is_input_section());
d06fb4d1
DK
2806
2807 // Remember section order index of original input section
2808 // if it is set. Copy it to the relaxed input section.
2809 unsigned int soi =
2810 (*input_sections)[p->second].section_order_index();
2ea97941 2811 (*input_sections)[p->second] = Input_section(poris);
d06fb4d1 2812 (*input_sections)[p->second].set_section_order_index(soi);
c0a62865
DK
2813 }
2814}
50ed5eb1 2815
c0a62865
DK
2816// Convert regular input sections into relaxed input sections. RELAXED_SECTIONS
2817// is a vector of pointers to Output_relaxed_input_section or its derived
2818// classes. The relaxed sections must correspond to existing input sections.
2819
2820void
2821Output_section::convert_input_sections_to_relaxed_sections(
2822 const std::vector<Output_relaxed_input_section*>& relaxed_sections)
2823{
029ba973 2824 gold_assert(parameters->target().may_relax());
20e6d0d6 2825
c0a62865
DK
2826 // We want to make sure that restore_states does not undo the effect of
2827 // this. If there is no checkpoint active, just search the current
2828 // input section list and replace the sections there. If there is
2829 // a checkpoint, also replace the sections there.
50ed5eb1 2830
c0a62865
DK
2831 // By default, we look at the whole list.
2832 size_t limit = this->input_sections_.size();
2833
2834 if (this->checkpoint_ != NULL)
20e6d0d6 2835 {
c0a62865
DK
2836 // Replace input sections with relaxed input section in the saved
2837 // copy of the input section list.
2838 if (this->checkpoint_->input_sections_saved())
20e6d0d6 2839 {
c0a62865
DK
2840 Relaxation_map map;
2841 this->build_relaxation_map(
2842 *(this->checkpoint_->input_sections()),
2843 this->checkpoint_->input_sections()->size(),
2844 &map);
2845 this->convert_input_sections_in_list_to_relaxed_sections(
2846 relaxed_sections,
2847 map,
2848 this->checkpoint_->input_sections());
2849 }
2850 else
2851 {
2852 // We have not copied the input section list yet. Instead, just
2853 // look at the portion that would be saved.
2854 limit = this->checkpoint_->input_sections_size();
20e6d0d6 2855 }
20e6d0d6 2856 }
c0a62865
DK
2857
2858 // Convert input sections in input_section_list.
2859 Relaxation_map map;
2860 this->build_relaxation_map(this->input_sections_, limit, &map);
2861 this->convert_input_sections_in_list_to_relaxed_sections(
2862 relaxed_sections,
2863 map,
2864 &this->input_sections_);
41263c05
DK
2865
2866 // Update fast look-up map.
0439c796 2867 if (this->lookup_maps_->is_valid())
41263c05
DK
2868 for (size_t i = 0; i < relaxed_sections.size(); ++i)
2869 {
2870 Output_relaxed_input_section* poris = relaxed_sections[i];
0439c796
DK
2871 this->lookup_maps_->add_relaxed_input_section(poris->relobj(),
2872 poris->shndx(), poris);
41263c05 2873 }
20e6d0d6
DK
2874}
2875
9c547ec3
ILT
2876// Update the output section flags based on input section flags.
2877
2878void
2ea97941 2879Output_section::update_flags_for_input_section(elfcpp::Elf_Xword flags)
9c547ec3
ILT
2880{
2881 // If we created the section with SHF_ALLOC clear, we set the
2882 // address. If we are now setting the SHF_ALLOC flag, we need to
2883 // undo that.
2884 if ((this->flags_ & elfcpp::SHF_ALLOC) == 0
2ea97941 2885 && (flags & elfcpp::SHF_ALLOC) != 0)
9c547ec3
ILT
2886 this->mark_address_invalid();
2887
2ea97941 2888 this->flags_ |= (flags
9c547ec3
ILT
2889 & (elfcpp::SHF_WRITE
2890 | elfcpp::SHF_ALLOC
2891 | elfcpp::SHF_EXECINSTR));
e8cd95c7
ILT
2892
2893 if ((flags & elfcpp::SHF_MERGE) == 0)
2894 this->flags_ &=~ elfcpp::SHF_MERGE;
2895 else
2896 {
2897 if (this->current_data_size_for_child() == 0)
2898 this->flags_ |= elfcpp::SHF_MERGE;
2899 }
2900
2901 if ((flags & elfcpp::SHF_STRINGS) == 0)
2902 this->flags_ &=~ elfcpp::SHF_STRINGS;
2903 else
2904 {
2905 if (this->current_data_size_for_child() == 0)
2906 this->flags_ |= elfcpp::SHF_STRINGS;
2907 }
9c547ec3
ILT
2908}
2909
2ea97941 2910// Find the merge section into which an input section with index SHNDX in
c0a62865
DK
2911// OBJECT has been added. Return NULL if none found.
2912
67f95b96 2913const Output_section_data*
c0a62865 2914Output_section::find_merge_section(const Relobj* object,
2ea97941 2915 unsigned int shndx) const
c0a62865 2916{
67f95b96 2917 return object->find_merge_section(shndx);
0439c796
DK
2918}
2919
67f95b96
RÁE
2920// Build the lookup maps for relaxed sections. This needs
2921// to be declared as a const method so that it is callable with a const
0439c796
DK
2922// Output_section pointer. The method only updates states of the maps.
2923
2924void
2925Output_section::build_lookup_maps() const
2926{
2927 this->lookup_maps_->clear();
2928 for (Input_section_list::const_iterator p = this->input_sections_.begin();
2929 p != this->input_sections_.end();
2930 ++p)
c0a62865 2931 {
67f95b96 2932 if (p->is_relaxed_input_section())
0439c796
DK
2933 {
2934 Output_relaxed_input_section* poris = p->relaxed_input_section();
2935 this->lookup_maps_->add_relaxed_input_section(poris->relobj(),
2936 poris->shndx(), poris);
2937 }
c0a62865 2938 }
c0a62865
DK
2939}
2940
2941// Find an relaxed input section corresponding to an input section
2ea97941 2942// in OBJECT with index SHNDX.
c0a62865 2943
d6344fb5 2944const Output_relaxed_input_section*
c0a62865 2945Output_section::find_relaxed_input_section(const Relobj* object,
2ea97941 2946 unsigned int shndx) const
c0a62865 2947{
0439c796
DK
2948 if (!this->lookup_maps_->is_valid())
2949 this->build_lookup_maps();
2950 return this->lookup_maps_->find_relaxed_input_section(object, shndx);
c0a62865
DK
2951}
2952
2ea97941
ILT
2953// Given an address OFFSET relative to the start of input section
2954// SHNDX in OBJECT, return whether this address is being included in
2955// the final link. This should only be called if SHNDX in OBJECT has
730cdc88
ILT
2956// a special mapping.
2957
2958bool
2959Output_section::is_input_address_mapped(const Relobj* object,
2ea97941
ILT
2960 unsigned int shndx,
2961 off_t offset) const
730cdc88 2962{
c0a62865 2963 // Look at the Output_section_data_maps first.
2ea97941 2964 const Output_section_data* posd = this->find_merge_section(object, shndx);
c0a62865 2965 if (posd == NULL)
2ea97941 2966 posd = this->find_relaxed_input_section(object, shndx);
c0a62865
DK
2967
2968 if (posd != NULL)
2969 {
2ea97941
ILT
2970 section_offset_type output_offset;
2971 bool found = posd->output_offset(object, shndx, offset, &output_offset);
cfbf0e3c
RÁE
2972 // By default we assume that the address is mapped. See comment at the
2973 // end.
67f95b96 2974 if (!found)
cfbf0e3c 2975 return true;
2ea97941 2976 return output_offset != -1;
c0a62865
DK
2977 }
2978
2979 // Fall back to the slow look-up.
730cdc88
ILT
2980 for (Input_section_list::const_iterator p = this->input_sections_.begin();
2981 p != this->input_sections_.end();
2982 ++p)
2983 {
2ea97941
ILT
2984 section_offset_type output_offset;
2985 if (p->output_offset(object, shndx, offset, &output_offset))
2986 return output_offset != -1;
730cdc88
ILT
2987 }
2988
2989 // By default we assume that the address is mapped. This should
2990 // only be called after we have passed all sections to Layout. At
2991 // that point we should know what we are discarding.
2992 return true;
2993}
2994
2ea97941
ILT
2995// Given an address OFFSET relative to the start of input section
2996// SHNDX in object OBJECT, return the output offset relative to the
1e983657 2997// start of the input section in the output section. This should only
2ea97941 2998// be called if SHNDX in OBJECT has a special mapping.
730cdc88 2999
8383303e 3000section_offset_type
2ea97941
ILT
3001Output_section::output_offset(const Relobj* object, unsigned int shndx,
3002 section_offset_type offset) const
730cdc88 3003{
c0a62865
DK
3004 // This can only be called meaningfully when we know the data size
3005 // of this.
3006 gold_assert(this->is_data_size_valid());
730cdc88 3007
c0a62865 3008 // Look at the Output_section_data_maps first.
2ea97941 3009 const Output_section_data* posd = this->find_merge_section(object, shndx);
50ed5eb1 3010 if (posd == NULL)
2ea97941 3011 posd = this->find_relaxed_input_section(object, shndx);
c0a62865
DK
3012 if (posd != NULL)
3013 {
2ea97941
ILT
3014 section_offset_type output_offset;
3015 bool found = posd->output_offset(object, shndx, offset, &output_offset);
50ed5eb1 3016 gold_assert(found);
2ea97941 3017 return output_offset;
c0a62865
DK
3018 }
3019
3020 // Fall back to the slow look-up.
730cdc88
ILT
3021 for (Input_section_list::const_iterator p = this->input_sections_.begin();
3022 p != this->input_sections_.end();
3023 ++p)
3024 {
2ea97941
ILT
3025 section_offset_type output_offset;
3026 if (p->output_offset(object, shndx, offset, &output_offset))
3027 return output_offset;
730cdc88
ILT
3028 }
3029 gold_unreachable();
3030}
3031
2ea97941
ILT
3032// Return the output virtual address of OFFSET relative to the start
3033// of input section SHNDX in object OBJECT.
b8e6aad9
ILT
3034
3035uint64_t
2ea97941
ILT
3036Output_section::output_address(const Relobj* object, unsigned int shndx,
3037 off_t offset) const
b8e6aad9
ILT
3038{
3039 uint64_t addr = this->address() + this->first_input_offset_;
c0a62865
DK
3040
3041 // Look at the Output_section_data_maps first.
2ea97941 3042 const Output_section_data* posd = this->find_merge_section(object, shndx);
50ed5eb1 3043 if (posd == NULL)
2ea97941 3044 posd = this->find_relaxed_input_section(object, shndx);
c0a62865
DK
3045 if (posd != NULL && posd->is_address_valid())
3046 {
2ea97941
ILT
3047 section_offset_type output_offset;
3048 bool found = posd->output_offset(object, shndx, offset, &output_offset);
c0a62865 3049 gold_assert(found);
2ea97941 3050 return posd->address() + output_offset;
c0a62865
DK
3051 }
3052
3053 // Fall back to the slow look-up.
b8e6aad9
ILT
3054 for (Input_section_list::const_iterator p = this->input_sections_.begin();
3055 p != this->input_sections_.end();
3056 ++p)
3057 {
3058 addr = align_address(addr, p->addralign());
2ea97941
ILT
3059 section_offset_type output_offset;
3060 if (p->output_offset(object, shndx, offset, &output_offset))
730cdc88 3061 {
2ea97941 3062 if (output_offset == -1)
eff45813 3063 return -1ULL;
2ea97941 3064 return addr + output_offset;
730cdc88 3065 }
b8e6aad9
ILT
3066 addr += p->data_size();
3067 }
3068
3069 // If we get here, it means that we don't know the mapping for this
3070 // input section. This might happen in principle if
3071 // add_input_section were called before add_output_section_data.
3072 // But it should never actually happen.
3073
3074 gold_unreachable();
ead1e424
ILT
3075}
3076
e29e076a 3077// Find the output address of the start of the merged section for
2ea97941 3078// input section SHNDX in object OBJECT.
a9a60db6 3079
e29e076a
ILT
3080bool
3081Output_section::find_starting_output_address(const Relobj* object,
2ea97941 3082 unsigned int shndx,
e29e076a 3083 uint64_t* paddr) const
a9a60db6 3084{
67f95b96
RÁE
3085 const Output_section_data* data = this->find_merge_section(object, shndx);
3086 if (data == NULL)
3087 return false;
3088
c0a62865
DK
3089 // FIXME: This becomes a bottle-neck if we have many relaxed sections.
3090 // Looking up the merge section map does not always work as we sometimes
3091 // find a merge section without its address set.
a9a60db6
ILT
3092 uint64_t addr = this->address() + this->first_input_offset_;
3093 for (Input_section_list::const_iterator p = this->input_sections_.begin();
3094 p != this->input_sections_.end();
3095 ++p)
3096 {
3097 addr = align_address(addr, p->addralign());
3098
3099 // It would be nice if we could use the existing output_offset
3100 // method to get the output offset of input offset 0.
3101 // Unfortunately we don't know for sure that input offset 0 is
3102 // mapped at all.
67f95b96 3103 if (!p->is_input_section() && p->output_section_data() == data)
e29e076a
ILT
3104 {
3105 *paddr = addr;
3106 return true;
3107 }
a9a60db6
ILT
3108
3109 addr += p->data_size();
3110 }
e29e076a
ILT
3111
3112 // We couldn't find a merge output section for this input section.
3113 return false;
a9a60db6
ILT
3114}
3115
cdc29364
CC
3116// Update the data size of an Output_section.
3117
3118void
3119Output_section::update_data_size()
3120{
3121 if (this->input_sections_.empty())
3122 return;
3123
3124 if (this->must_sort_attached_input_sections()
3125 || this->input_section_order_specified())
3126 this->sort_attached_input_sections();
3127
3128 off_t off = this->first_input_offset_;
3129 for (Input_section_list::iterator p = this->input_sections_.begin();
3130 p != this->input_sections_.end();
3131 ++p)
3132 {
3133 off = align_address(off, p->addralign());
3134 off += p->current_data_size();
3135 }
3136
3137 this->set_current_data_size_for_child(off);
3138}
3139
27bc2bce 3140// Set the data size of an Output_section. This is where we handle
ead1e424
ILT
3141// setting the addresses of any Output_section_data objects.
3142
3143void
27bc2bce 3144Output_section::set_final_data_size()
ead1e424 3145{
9fbd3822
CC
3146 off_t data_size;
3147
ead1e424 3148 if (this->input_sections_.empty())
9fbd3822
CC
3149 data_size = this->current_data_size_for_child();
3150 else
27bc2bce 3151 {
9fbd3822
CC
3152 if (this->must_sort_attached_input_sections()
3153 || this->input_section_order_specified())
3154 this->sort_attached_input_sections();
ead1e424 3155
9fbd3822
CC
3156 uint64_t address = this->address();
3157 off_t startoff = this->offset();
3158 off_t off = startoff + this->first_input_offset_;
3159 for (Input_section_list::iterator p = this->input_sections_.begin();
3160 p != this->input_sections_.end();
3161 ++p)
3162 {
3163 off = align_address(off, p->addralign());
3164 p->set_address_and_file_offset(address + (off - startoff), off,
3165 startoff);
3166 off += p->data_size();
3167 }
3168 data_size = off - startoff;
3169 }
2fd32231 3170
9fbd3822
CC
3171 // For full incremental links, we want to allocate some patch space
3172 // in most sections for subsequent incremental updates.
3173 if (this->is_patch_space_allowed_ && parameters->incremental_full())
ead1e424 3174 {
9fbd3822 3175 double pct = parameters->options().incremental_patch();
8ea8cd50
CC
3176 size_t extra = static_cast<size_t>(data_size * pct);
3177 if (this->free_space_fill_ != NULL
eb426534 3178 && this->free_space_fill_->minimum_hole_size() > extra)
8ea8cd50 3179 extra = this->free_space_fill_->minimum_hole_size();
9fbd3822
CC
3180 off_t new_size = align_address(data_size + extra, this->addralign());
3181 this->patch_space_ = new_size - data_size;
3182 gold_debug(DEBUG_INCREMENTAL,
3183 "set_final_data_size: %08lx + %08lx: section %s",
3184 static_cast<long>(data_size),
3185 static_cast<long>(this->patch_space_),
3186 this->name());
3187 data_size = new_size;
ead1e424
ILT
3188 }
3189
9fbd3822 3190 this->set_data_size(data_size);
ead1e424 3191}
9a0910c3 3192
a445fddf
ILT
3193// Reset the address and file offset.
3194
3195void
3196Output_section::do_reset_address_and_file_offset()
3197{
20e6d0d6
DK
3198 // An unallocated section has no address. Forcing this means that
3199 // we don't need special treatment for symbols defined in debug
1e5d2fb1
DK
3200 // sections. We do the same in the constructor. This does not
3201 // apply to NOLOAD sections though.
3202 if (((this->flags_ & elfcpp::SHF_ALLOC) == 0) && !this->is_noload_)
20e6d0d6
DK
3203 this->set_address(0);
3204
a445fddf
ILT
3205 for (Input_section_list::iterator p = this->input_sections_.begin();
3206 p != this->input_sections_.end();
3207 ++p)
3208 p->reset_address_and_file_offset();
9fbd3822
CC
3209
3210 // Remove any patch space that was added in set_final_data_size.
3211 if (this->patch_space_ > 0)
3212 {
3213 this->set_current_data_size_for_child(this->current_data_size_for_child()
3214 - this->patch_space_);
3215 this->patch_space_ = 0;
3216 }
a445fddf 3217}
9fbd3822 3218
20e6d0d6
DK
3219// Return true if address and file offset have the values after reset.
3220
3221bool
3222Output_section::do_address_and_file_offset_have_reset_values() const
3223{
3224 if (this->is_offset_valid())
3225 return false;
3226
3227 // An unallocated section has address 0 after its construction or a reset.
3228 if ((this->flags_ & elfcpp::SHF_ALLOC) == 0)
3229 return this->is_address_valid() && this->address() == 0;
3230 else
3231 return !this->is_address_valid();
3232}
a445fddf 3233
7bf1f802
ILT
3234// Set the TLS offset. Called only for SHT_TLS sections.
3235
3236void
3237Output_section::do_set_tls_offset(uint64_t tls_base)
3238{
3239 this->tls_offset_ = this->address() - tls_base;
3240}
3241
2fd32231
ILT
3242// In a few cases we need to sort the input sections attached to an
3243// output section. This is used to implement the type of constructor
3244// priority ordering implemented by the GNU linker, in which the
3245// priority becomes part of the section name and the sections are
3246// sorted by name. We only do this for an output section if we see an
5393d741 3247// attached input section matching ".ctors.*", ".dtors.*",
2fd32231
ILT
3248// ".init_array.*" or ".fini_array.*".
3249
3250class Output_section::Input_section_sort_entry
3251{
3252 public:
3253 Input_section_sort_entry()
9860cbcf 3254 : input_section_(), index_(-1U), section_name_()
2fd32231
ILT
3255 { }
3256
2ea97941 3257 Input_section_sort_entry(const Input_section& input_section,
6e9ba2ca 3258 unsigned int index,
9860cbcf
CC
3259 bool must_sort_attached_input_sections,
3260 const char* output_section_name)
3261 : input_section_(input_section), index_(index), section_name_()
2fd32231 3262 {
9860cbcf
CC
3263 if ((input_section.is_input_section()
3264 || input_section.is_relaxed_input_section())
eb426534 3265 && must_sort_attached_input_sections)
2fd32231
ILT
3266 {
3267 // This is only called single-threaded from Layout::finalize,
3268 // so it is OK to lock. Unfortunately we have no way to pass
3269 // in a Task token.
3270 const Task* dummy_task = reinterpret_cast<const Task*>(-1);
2ea97941
ILT
3271 Object* obj = (input_section.is_input_section()
3272 ? input_section.relobj()
3273 : input_section.relaxed_input_section()->relobj());
2fd32231
ILT
3274 Task_lock_obj<Object> tl(dummy_task, obj);
3275
3276 // This is a slow operation, which should be cached in
3277 // Layout::layout if this becomes a speed problem.
2ea97941 3278 this->section_name_ = obj->section_name(input_section.shndx());
2fd32231 3279 }
9860cbcf
CC
3280 else if (input_section.is_output_section_data()
3281 && must_sort_attached_input_sections)
3282 {
3283 // For linker-generated sections, use the output section name.
3284 this->section_name_.assign(output_section_name);
3285 }
2fd32231
ILT
3286 }
3287
3288 // Return the Input_section.
3289 const Input_section&
3290 input_section() const
3291 {
3292 gold_assert(this->index_ != -1U);
3293 return this->input_section_;
3294 }
3295
3296 // The index of this entry in the original list. This is used to
3297 // make the sort stable.
3298 unsigned int
3299 index() const
3300 {
3301 gold_assert(this->index_ != -1U);
3302 return this->index_;
3303 }
3304
2fd32231
ILT
3305 // The section name.
3306 const std::string&
3307 section_name() const
3308 {
2fd32231
ILT
3309 return this->section_name_;
3310 }
3311
ab794b6b
ILT
3312 // Return true if the section name has a priority. This is assumed
3313 // to be true if it has a dot after the initial dot.
2fd32231 3314 bool
ab794b6b 3315 has_priority() const
2fd32231 3316 {
2a0ff005 3317 return this->section_name_.find('.', 1) != std::string::npos;
2fd32231
ILT
3318 }
3319
5393d741
ILT
3320 // Return the priority. Believe it or not, gcc encodes the priority
3321 // differently for .ctors/.dtors and .init_array/.fini_array
3322 // sections.
3323 unsigned int
3324 get_priority() const
3325 {
5393d741
ILT
3326 bool is_ctors;
3327 if (is_prefix_of(".ctors.", this->section_name_.c_str())
3328 || is_prefix_of(".dtors.", this->section_name_.c_str()))
3329 is_ctors = true;
3330 else if (is_prefix_of(".init_array.", this->section_name_.c_str())
3331 || is_prefix_of(".fini_array.", this->section_name_.c_str()))
3332 is_ctors = false;
3333 else
3334 return 0;
3335 char* end;
3336 unsigned long prio = strtoul((this->section_name_.c_str()
3337 + (is_ctors ? 7 : 12)),
3338 &end, 10);
3339 if (*end != '\0')
3340 return 0;
3341 else if (is_ctors)
3342 return 65535 - prio;
3343 else
3344 return prio;
3345 }
3346
ab794b6b
ILT
3347 // Return true if this an input file whose base name matches
3348 // FILE_NAME. The base name must have an extension of ".o", and
3349 // must be exactly FILE_NAME.o or FILE_NAME, one character, ".o".
3350 // This is to match crtbegin.o as well as crtbeginS.o without
3351 // getting confused by other possibilities. Overall matching the
3352 // file name this way is a dreadful hack, but the GNU linker does it
3353 // in order to better support gcc, and we need to be compatible.
2fd32231 3354 bool
5393d741 3355 match_file_name(const char* file_name) const
edcac0c1
ILT
3356 {
3357 if (this->input_section_.is_output_section_data())
3358 return false;
3359 return Layout::match_file_name(this->input_section_.relobj(), file_name);
3360 }
2fd32231 3361
8fe2a369
ST
3362 // Returns 1 if THIS should appear before S in section order, -1 if S
3363 // appears before THIS and 0 if they are not comparable.
6e9ba2ca
ST
3364 int
3365 compare_section_ordering(const Input_section_sort_entry& s) const
3366 {
8fe2a369
ST
3367 unsigned int this_secn_index = this->input_section_.section_order_index();
3368 unsigned int s_secn_index = s.input_section().section_order_index();
3369 if (this_secn_index > 0 && s_secn_index > 0)
3370 {
eb426534
RM
3371 if (this_secn_index < s_secn_index)
3372 return 1;
3373 else if (this_secn_index > s_secn_index)
3374 return -1;
8fe2a369
ST
3375 }
3376 return 0;
6e9ba2ca
ST
3377 }
3378
2fd32231
ILT
3379 private:
3380 // The Input_section we are sorting.
3381 Input_section input_section_;
3382 // The index of this Input_section in the original list.
3383 unsigned int index_;
2fd32231
ILT
3384 // The section name if there is one.
3385 std::string section_name_;
3386};
3387
3388// Return true if S1 should come before S2 in the output section.
3389
3390bool
3391Output_section::Input_section_sort_compare::operator()(
3392 const Output_section::Input_section_sort_entry& s1,
3393 const Output_section::Input_section_sort_entry& s2) const
3394{
ab794b6b
ILT
3395 // crtbegin.o must come first.
3396 bool s1_begin = s1.match_file_name("crtbegin");
3397 bool s2_begin = s2.match_file_name("crtbegin");
2fd32231
ILT
3398 if (s1_begin || s2_begin)
3399 {
3400 if (!s1_begin)
3401 return false;
3402 if (!s2_begin)
3403 return true;
3404 return s1.index() < s2.index();
3405 }
3406
ab794b6b
ILT
3407 // crtend.o must come last.
3408 bool s1_end = s1.match_file_name("crtend");
3409 bool s2_end = s2.match_file_name("crtend");
2fd32231
ILT
3410 if (s1_end || s2_end)
3411 {
3412 if (!s1_end)
3413 return true;
3414 if (!s2_end)
3415 return false;
3416 return s1.index() < s2.index();
3417 }
3418
ab794b6b 3419 // A section with a priority follows a section without a priority.
ab794b6b
ILT
3420 bool s1_has_priority = s1.has_priority();
3421 bool s2_has_priority = s2.has_priority();
3422 if (s1_has_priority && !s2_has_priority)
2fd32231 3423 return false;
ab794b6b 3424 if (!s1_has_priority && s2_has_priority)
2fd32231
ILT
3425 return true;
3426
6e9ba2ca
ST
3427 // Check if a section order exists for these sections through a section
3428 // ordering file. If sequence_num is 0, an order does not exist.
3429 int sequence_num = s1.compare_section_ordering(s2);
3430 if (sequence_num != 0)
3431 return sequence_num == 1;
3432
2fd32231
ILT
3433 // Otherwise we sort by name.
3434 int compare = s1.section_name().compare(s2.section_name());
3435 if (compare != 0)
3436 return compare < 0;
3437
3438 // Otherwise we keep the input order.
3439 return s1.index() < s2.index();
3440}
3441
2a0ff005
DK
3442// Return true if S1 should come before S2 in an .init_array or .fini_array
3443// output section.
3444
3445bool
3446Output_section::Input_section_sort_init_fini_compare::operator()(
3447 const Output_section::Input_section_sort_entry& s1,
3448 const Output_section::Input_section_sort_entry& s2) const
3449{
2a0ff005
DK
3450 // A section without a priority follows a section with a priority.
3451 // This is the reverse of .ctors and .dtors sections.
3452 bool s1_has_priority = s1.has_priority();
3453 bool s2_has_priority = s2.has_priority();
3454 if (s1_has_priority && !s2_has_priority)
3455 return true;
3456 if (!s1_has_priority && s2_has_priority)
3457 return false;
3458
5393d741
ILT
3459 // .ctors and .dtors sections without priority come after
3460 // .init_array and .fini_array sections without priority.
3461 if (!s1_has_priority
3462 && (s1.section_name() == ".ctors" || s1.section_name() == ".dtors")
3463 && s1.section_name() != s2.section_name())
3464 return false;
3465 if (!s2_has_priority
3466 && (s2.section_name() == ".ctors" || s2.section_name() == ".dtors")
3467 && s2.section_name() != s1.section_name())
3468 return true;
3469
3470 // Sort by priority if we can.
3471 if (s1_has_priority)
3472 {
3473 unsigned int s1_prio = s1.get_priority();
3474 unsigned int s2_prio = s2.get_priority();
3475 if (s1_prio < s2_prio)
3476 return true;
3477 else if (s1_prio > s2_prio)
3478 return false;
3479 }
3480
6e9ba2ca
ST
3481 // Check if a section order exists for these sections through a section
3482 // ordering file. If sequence_num is 0, an order does not exist.
3483 int sequence_num = s1.compare_section_ordering(s2);
3484 if (sequence_num != 0)
3485 return sequence_num == 1;
3486
2a0ff005
DK
3487 // Otherwise we sort by name.
3488 int compare = s1.section_name().compare(s2.section_name());
3489 if (compare != 0)
3490 return compare < 0;
3491
3492 // Otherwise we keep the input order.
3493 return s1.index() < s2.index();
3494}
3495
8fe2a369
ST
3496// Return true if S1 should come before S2. Sections that do not match
3497// any pattern in the section ordering file are placed ahead of the sections
edcac0c1 3498// that match some pattern.
8fe2a369 3499
6e9ba2ca
ST
3500bool
3501Output_section::Input_section_sort_section_order_index_compare::operator()(
3502 const Output_section::Input_section_sort_entry& s1,
3503 const Output_section::Input_section_sort_entry& s2) const
3504{
8fe2a369
ST
3505 unsigned int s1_secn_index = s1.input_section().section_order_index();
3506 unsigned int s2_secn_index = s2.input_section().section_order_index();
6e9ba2ca 3507
edcac0c1
ILT
3508 // Keep input order if section ordering cannot determine order.
3509 if (s1_secn_index == s2_secn_index)
28f2a4ac 3510 return s1.index() < s2.index();
edcac0c1
ILT
3511
3512 return s1_secn_index < s2_secn_index;
6e9ba2ca
ST
3513}
3514
c6ac678d
ST
3515// Return true if S1 should come before S2. This is the sort comparison
3516// function for .text to sort sections with prefixes
3517// .text.{unlikely,exit,startup,hot} before other sections.
6934001a 3518
c6ac678d 3519bool
6934001a 3520Output_section::Input_section_sort_section_prefix_special_ordering_compare
c6ac678d
ST
3521 ::operator()(
3522 const Output_section::Input_section_sort_entry& s1,
3523 const Output_section::Input_section_sort_entry& s2) const
3524{
c6ac678d
ST
3525 // Some input section names have special ordering requirements.
3526 int o1 = Layout::special_ordering_of_input_section(s1.section_name().c_str());
3527 int o2 = Layout::special_ordering_of_input_section(s2.section_name().c_str());
3528 if (o1 != o2)
3529 {
3530 if (o1 < 0)
3531 return false;
3532 else if (o2 < 0)
3533 return true;
3534 else
3535 return o1 < o2;
3536 }
3537
3538 // Keep input order otherwise.
6934001a
CC
3539 return s1.index() < s2.index();
3540}
3541
3542// Return true if S1 should come before S2. This is the sort comparison
3543// function for sections to sort them by name.
3544
3545bool
3546Output_section::Input_section_sort_section_name_compare
3547 ::operator()(
3548 const Output_section::Input_section_sort_entry& s1,
3549 const Output_section::Input_section_sort_entry& s2) const
3550{
6934001a
CC
3551 // We sort by name.
3552 int compare = s1.section_name().compare(s2.section_name());
3553 if (compare != 0)
3554 return compare < 0;
3555
3556 // Keep input order otherwise.
3557 return s1.index() < s2.index();
c6ac678d
ST
3558}
3559
e9552f7e
ST
3560// This updates the section order index of input sections according to the
3561// the order specified in the mapping from Section id to order index.
3562
3563void
3564Output_section::update_section_layout(
f0558624 3565 const Section_layout_order* order_map)
e9552f7e
ST
3566{
3567 for (Input_section_list::iterator p = this->input_sections_.begin();
3568 p != this->input_sections_.end();
3569 ++p)
3570 {
3571 if (p->is_input_section()
3572 || p->is_relaxed_input_section())
eb426534 3573 {
efc6fa12 3574 Relobj* obj = (p->is_input_section()
e9552f7e 3575 ? p->relobj()
eb426534 3576 : p->relaxed_input_section()->relobj());
e9552f7e
ST
3577 unsigned int shndx = p->shndx();
3578 Section_layout_order::const_iterator it
f0558624
ST
3579 = order_map->find(Section_id(obj, shndx));
3580 if (it == order_map->end())
e9552f7e
ST
3581 continue;
3582 unsigned int section_order_index = it->second;
3583 if (section_order_index != 0)
eb426534
RM
3584 {
3585 p->set_section_order_index(section_order_index);
3586 this->set_input_section_order_specified();
e9552f7e 3587 }
eb426534 3588 }
e9552f7e
ST
3589 }
3590}
3591
2fd32231
ILT
3592// Sort the input sections attached to an output section.
3593
3594void
3595Output_section::sort_attached_input_sections()
3596{
3597 if (this->attached_input_sections_are_sorted_)
3598 return;
3599
20e6d0d6
DK
3600 if (this->checkpoint_ != NULL
3601 && !this->checkpoint_->input_sections_saved())
3602 this->checkpoint_->save_input_sections();
3603
2fd32231
ILT
3604 // The only thing we know about an input section is the object and
3605 // the section index. We need the section name. Recomputing this
3606 // is slow but this is an unusual case. If this becomes a speed
3607 // problem we can cache the names as required in Layout::layout.
3608
3609 // We start by building a larger vector holding a copy of each
3610 // Input_section, plus its current index in the list and its name.
3611 std::vector<Input_section_sort_entry> sort_list;
3612
3613 unsigned int i = 0;
3614 for (Input_section_list::iterator p = this->input_sections_.begin();
3615 p != this->input_sections_.end();
3616 ++p, ++i)
6e9ba2ca 3617 sort_list.push_back(Input_section_sort_entry(*p, i,
9860cbcf
CC
3618 this->must_sort_attached_input_sections(),
3619 this->name()));
2fd32231
ILT
3620
3621 // Sort the input sections.
6e9ba2ca
ST
3622 if (this->must_sort_attached_input_sections())
3623 {
3624 if (this->type() == elfcpp::SHT_PREINIT_ARRAY
eb426534
RM
3625 || this->type() == elfcpp::SHT_INIT_ARRAY
3626 || this->type() == elfcpp::SHT_FINI_ARRAY)
3627 std::sort(sort_list.begin(), sort_list.end(),
3628 Input_section_sort_init_fini_compare());
6934001a
CC
3629 else if (strcmp(parameters->options().sort_section(), "name") == 0)
3630 std::sort(sort_list.begin(), sort_list.end(),
3631 Input_section_sort_section_name_compare());
c6ac678d 3632 else if (strcmp(this->name(), ".text") == 0)
6934001a
CC
3633 std::sort(sort_list.begin(), sort_list.end(),
3634 Input_section_sort_section_prefix_special_ordering_compare());
6e9ba2ca 3635 else
eb426534
RM
3636 std::sort(sort_list.begin(), sort_list.end(),
3637 Input_section_sort_compare());
6e9ba2ca 3638 }
2a0ff005 3639 else
6e9ba2ca 3640 {
e9552f7e 3641 gold_assert(this->input_section_order_specified());
6e9ba2ca 3642 std::sort(sort_list.begin(), sort_list.end(),
eb426534 3643 Input_section_sort_section_order_index_compare());
6e9ba2ca 3644 }
2fd32231
ILT
3645
3646 // Copy the sorted input sections back to our list.
3647 this->input_sections_.clear();
3648 for (std::vector<Input_section_sort_entry>::iterator p = sort_list.begin();
3649 p != sort_list.end();
3650 ++p)
3651 this->input_sections_.push_back(p->input_section());
6e9ba2ca 3652 sort_list.clear();
2fd32231
ILT
3653
3654 // Remember that we sorted the input sections, since we might get
3655 // called again.
3656 this->attached_input_sections_are_sorted_ = true;
3657}
3658
61ba1cf9
ILT
3659// Write the section header to *OSHDR.
3660
3661template<int size, bool big_endian>
3662void
16649710
ILT
3663Output_section::write_header(const Layout* layout,
3664 const Stringpool* secnamepool,
61ba1cf9
ILT
3665 elfcpp::Shdr_write<size, big_endian>* oshdr) const
3666{
3667 oshdr->put_sh_name(secnamepool->get_offset(this->name_));
3668 oshdr->put_sh_type(this->type_);
6a74a719 3669
2ea97941 3670 elfcpp::Elf_Xword flags = this->flags_;
755ab8af 3671 if (this->info_section_ != NULL && this->info_uses_section_index_)
2ea97941
ILT
3672 flags |= elfcpp::SHF_INFO_LINK;
3673 oshdr->put_sh_flags(flags);
6a74a719 3674
61ba1cf9
ILT
3675 oshdr->put_sh_addr(this->address());
3676 oshdr->put_sh_offset(this->offset());
3677 oshdr->put_sh_size(this->data_size());
16649710
ILT
3678 if (this->link_section_ != NULL)
3679 oshdr->put_sh_link(this->link_section_->out_shndx());
3680 else if (this->should_link_to_symtab_)
886f533a 3681 oshdr->put_sh_link(layout->symtab_section_shndx());
16649710
ILT
3682 else if (this->should_link_to_dynsym_)
3683 oshdr->put_sh_link(layout->dynsym_section()->out_shndx());
3684 else
3685 oshdr->put_sh_link(this->link_);
755ab8af 3686
2ea97941 3687 elfcpp::Elf_Word info;
16649710 3688 if (this->info_section_ != NULL)
755ab8af
ILT
3689 {
3690 if (this->info_uses_section_index_)
2ea97941 3691 info = this->info_section_->out_shndx();
755ab8af 3692 else
2ea97941 3693 info = this->info_section_->symtab_index();
755ab8af 3694 }
6a74a719 3695 else if (this->info_symndx_ != NULL)
2ea97941 3696 info = this->info_symndx_->symtab_index();
16649710 3697 else
2ea97941
ILT
3698 info = this->info_;
3699 oshdr->put_sh_info(info);
755ab8af 3700
61ba1cf9
ILT
3701 oshdr->put_sh_addralign(this->addralign_);
3702 oshdr->put_sh_entsize(this->entsize_);
a2fb1b05
ILT
3703}
3704
ead1e424
ILT
3705// Write out the data. For input sections the data is written out by
3706// Object::relocate, but we have to handle Output_section_data objects
3707// here.
3708
3709void
3710Output_section::do_write(Output_file* of)
3711{
96803768
ILT
3712 gold_assert(!this->requires_postprocessing());
3713
c0a62865
DK
3714 // If the target performs relaxation, we delay filler generation until now.
3715 gold_assert(!this->generate_code_fills_at_write_ || this->fills_.empty());
3716
c51e6221
ILT
3717 off_t output_section_file_offset = this->offset();
3718 for (Fill_list::iterator p = this->fills_.begin();
3719 p != this->fills_.end();
3720 ++p)
3721 {
8851ecca 3722 std::string fill_data(parameters->target().code_fill(p->length()));
c51e6221 3723 of->write(output_section_file_offset + p->section_offset(),
a445fddf 3724 fill_data.data(), fill_data.size());
c51e6221
ILT
3725 }
3726
c0a62865 3727 off_t off = this->offset() + this->first_input_offset_;
ead1e424
ILT
3728 for (Input_section_list::iterator p = this->input_sections_.begin();
3729 p != this->input_sections_.end();
3730 ++p)
c0a62865
DK
3731 {
3732 off_t aligned_off = align_address(off, p->addralign());
3733 if (this->generate_code_fills_at_write_ && (off != aligned_off))
3734 {
3735 size_t fill_len = aligned_off - off;
3736 std::string fill_data(parameters->target().code_fill(fill_len));
3737 of->write(off, fill_data.data(), fill_data.size());
3738 }
3739
3740 p->write(of);
3741 off = aligned_off + p->data_size();
3742 }
8ea8cd50
CC
3743
3744 // For incremental links, fill in unused chunks in debug sections
3745 // with dummy compilation unit headers.
3746 if (this->free_space_fill_ != NULL)
3747 {
3748 for (Free_list::Const_iterator p = this->free_list_.begin();
3749 p != this->free_list_.end();
3750 ++p)
3751 {
3752 off_t off = p->start_;
3753 size_t len = p->end_ - off;
3754 this->free_space_fill_->write(of, this->offset() + off, len);
3755 }
3756 if (this->patch_space_ > 0)
3757 {
3758 off_t off = this->current_data_size_for_child() - this->patch_space_;
3759 this->free_space_fill_->write(of, this->offset() + off,
3760 this->patch_space_);
3761 }
3762 }
ead1e424
ILT
3763}
3764
96803768
ILT
3765// If a section requires postprocessing, create the buffer to use.
3766
3767void
3768Output_section::create_postprocessing_buffer()
3769{
3770 gold_assert(this->requires_postprocessing());
1bedcac5
ILT
3771
3772 if (this->postprocessing_buffer_ != NULL)
3773 return;
96803768
ILT
3774
3775 if (!this->input_sections_.empty())
3776 {
3777 off_t off = this->first_input_offset_;
3778 for (Input_section_list::iterator p = this->input_sections_.begin();
3779 p != this->input_sections_.end();
3780 ++p)
3781 {
3782 off = align_address(off, p->addralign());
3783 p->finalize_data_size();
3784 off += p->data_size();
3785 }
3786 this->set_current_data_size_for_child(off);
3787 }
3788
3789 off_t buffer_size = this->current_data_size_for_child();
3790 this->postprocessing_buffer_ = new unsigned char[buffer_size];
3791}
3792
3793// Write all the data of an Output_section into the postprocessing
3794// buffer. This is used for sections which require postprocessing,
3795// such as compression. Input sections are handled by
3796// Object::Relocate.
3797
3798void
3799Output_section::write_to_postprocessing_buffer()
3800{
3801 gold_assert(this->requires_postprocessing());
3802
c0a62865
DK
3803 // If the target performs relaxation, we delay filler generation until now.
3804 gold_assert(!this->generate_code_fills_at_write_ || this->fills_.empty());
3805
96803768
ILT
3806 unsigned char* buffer = this->postprocessing_buffer();
3807 for (Fill_list::iterator p = this->fills_.begin();
3808 p != this->fills_.end();
3809 ++p)
3810 {
8851ecca 3811 std::string fill_data(parameters->target().code_fill(p->length()));
a445fddf
ILT
3812 memcpy(buffer + p->section_offset(), fill_data.data(),
3813 fill_data.size());
96803768
ILT
3814 }
3815
3816 off_t off = this->first_input_offset_;
3817 for (Input_section_list::iterator p = this->input_sections_.begin();
3818 p != this->input_sections_.end();
3819 ++p)
3820 {
c0a62865
DK
3821 off_t aligned_off = align_address(off, p->addralign());
3822 if (this->generate_code_fills_at_write_ && (off != aligned_off))
3823 {
3824 size_t fill_len = aligned_off - off;
3825 std::string fill_data(parameters->target().code_fill(fill_len));
3826 memcpy(buffer + off, fill_data.data(), fill_data.size());
3827 }
3828
3829 p->write_to_buffer(buffer + aligned_off);
3830 off = aligned_off + p->data_size();
96803768
ILT
3831 }
3832}
3833
a445fddf
ILT
3834// Get the input sections for linker script processing. We leave
3835// behind the Output_section_data entries. Note that this may be
3836// slightly incorrect for merge sections. We will leave them behind,
3837// but it is possible that the script says that they should follow
3838// some other input sections, as in:
3839// .rodata { *(.rodata) *(.rodata.cst*) }
3840// For that matter, we don't handle this correctly:
3841// .rodata { foo.o(.rodata.cst*) *(.rodata.cst*) }
3842// With luck this will never matter.
3843
3844uint64_t
3845Output_section::get_input_sections(
2ea97941 3846 uint64_t address,
a445fddf 3847 const std::string& fill,
6625d24e 3848 std::list<Input_section>* input_sections)
a445fddf 3849{
20e6d0d6
DK
3850 if (this->checkpoint_ != NULL
3851 && !this->checkpoint_->input_sections_saved())
3852 this->checkpoint_->save_input_sections();
3853
0439c796
DK
3854 // Invalidate fast look-up maps.
3855 this->lookup_maps_->invalidate();
c0a62865 3856
2ea97941 3857 uint64_t orig_address = address;
a445fddf 3858
2ea97941 3859 address = align_address(address, this->addralign());
a445fddf
ILT
3860
3861 Input_section_list remaining;
3862 for (Input_section_list::iterator p = this->input_sections_.begin();
3863 p != this->input_sections_.end();
3864 ++p)
3865 {
0439c796
DK
3866 if (p->is_input_section()
3867 || p->is_relaxed_input_section()
3868 || p->is_merge_section())
6625d24e 3869 input_sections->push_back(*p);
a445fddf
ILT
3870 else
3871 {
2ea97941
ILT
3872 uint64_t aligned_address = align_address(address, p->addralign());
3873 if (aligned_address != address && !fill.empty())
a445fddf
ILT
3874 {
3875 section_size_type length =
2ea97941 3876 convert_to_section_size_type(aligned_address - address);
a445fddf
ILT
3877 std::string this_fill;
3878 this_fill.reserve(length);
3879 while (this_fill.length() + fill.length() <= length)
3880 this_fill += fill;
3881 if (this_fill.length() < length)
3882 this_fill.append(fill, 0, length - this_fill.length());
3883
3884 Output_section_data* posd = new Output_data_const(this_fill, 0);
3885 remaining.push_back(Input_section(posd));
3886 }
2ea97941 3887 address = aligned_address;
a445fddf
ILT
3888
3889 remaining.push_back(*p);
3890
3891 p->finalize_data_size();
2ea97941 3892 address += p->data_size();
a445fddf
ILT
3893 }
3894 }
3895
3896 this->input_sections_.swap(remaining);
3897 this->first_input_offset_ = 0;
3898
2ea97941
ILT
3899 uint64_t data_size = address - orig_address;
3900 this->set_current_data_size_for_child(data_size);
3901 return data_size;
a445fddf
ILT
3902}
3903
6625d24e
DK
3904// Add a script input section. SIS is an Output_section::Input_section,
3905// which can be either a plain input section or a special input section like
3906// a relaxed input section. For a special input section, its size must be
3907// finalized.
a445fddf
ILT
3908
3909void
6625d24e 3910Output_section::add_script_input_section(const Input_section& sis)
a445fddf 3911{
6625d24e
DK
3912 uint64_t data_size = sis.data_size();
3913 uint64_t addralign = sis.addralign();
2ea97941
ILT
3914 if (addralign > this->addralign_)
3915 this->addralign_ = addralign;
a445fddf
ILT
3916
3917 off_t offset_in_section = this->current_data_size_for_child();
3918 off_t aligned_offset_in_section = align_address(offset_in_section,
2ea97941 3919 addralign);
a445fddf
ILT
3920
3921 this->set_current_data_size_for_child(aligned_offset_in_section
2ea97941 3922 + data_size);
a445fddf 3923
6625d24e 3924 this->input_sections_.push_back(sis);
0439c796 3925
50ed5eb1 3926 // Update fast lookup maps if necessary.
0439c796
DK
3927 if (this->lookup_maps_->is_valid())
3928 {
67f95b96 3929 if (sis.is_relaxed_input_section())
0439c796
DK
3930 {
3931 Output_relaxed_input_section* poris = sis.relaxed_input_section();
3932 this->lookup_maps_->add_relaxed_input_section(poris->relobj(),
3933 poris->shndx(), poris);
3934 }
3935 }
20e6d0d6
DK
3936}
3937
8923b24c 3938// Save states for relaxation.
20e6d0d6
DK
3939
3940void
3941Output_section::save_states()
3942{
3943 gold_assert(this->checkpoint_ == NULL);
3944 Checkpoint_output_section* checkpoint =
3945 new Checkpoint_output_section(this->addralign_, this->flags_,
3946 this->input_sections_,
3947 this->first_input_offset_,
3948 this->attached_input_sections_are_sorted_);
3949 this->checkpoint_ = checkpoint;
3950 gold_assert(this->fills_.empty());
3951}
3952
8923b24c
DK
3953void
3954Output_section::discard_states()
3955{
3956 gold_assert(this->checkpoint_ != NULL);
3957 delete this->checkpoint_;
3958 this->checkpoint_ = NULL;
3959 gold_assert(this->fills_.empty());
3960
0439c796
DK
3961 // Simply invalidate the fast lookup maps since we do not keep
3962 // track of them.
3963 this->lookup_maps_->invalidate();
8923b24c
DK
3964}
3965
20e6d0d6
DK
3966void
3967Output_section::restore_states()
3968{
3969 gold_assert(this->checkpoint_ != NULL);
3970 Checkpoint_output_section* checkpoint = this->checkpoint_;
3971
3972 this->addralign_ = checkpoint->addralign();
3973 this->flags_ = checkpoint->flags();
3974 this->first_input_offset_ = checkpoint->first_input_offset();
3975
3976 if (!checkpoint->input_sections_saved())
3977 {
3978 // If we have not copied the input sections, just resize it.
3979 size_t old_size = checkpoint->input_sections_size();
3980 gold_assert(this->input_sections_.size() >= old_size);
3981 this->input_sections_.resize(old_size);
3982 }
3983 else
3984 {
3985 // We need to copy the whole list. This is not efficient for
3986 // extremely large output with hundreads of thousands of input
3987 // objects. We may need to re-think how we should pass sections
3988 // to scripts.
c0a62865 3989 this->input_sections_ = *checkpoint->input_sections();
20e6d0d6
DK
3990 }
3991
3992 this->attached_input_sections_are_sorted_ =
3993 checkpoint->attached_input_sections_are_sorted();
c0a62865 3994
0439c796
DK
3995 // Simply invalidate the fast lookup maps since we do not keep
3996 // track of them.
3997 this->lookup_maps_->invalidate();
a445fddf
ILT
3998}
3999
8923b24c
DK
4000// Update the section offsets of input sections in this. This is required if
4001// relaxation causes some input sections to change sizes.
4002
4003void
4004Output_section::adjust_section_offsets()
4005{
4006 if (!this->section_offsets_need_adjustment_)
4007 return;
4008
4009 off_t off = 0;
4010 for (Input_section_list::iterator p = this->input_sections_.begin();
4011 p != this->input_sections_.end();
4012 ++p)
4013 {
4014 off = align_address(off, p->addralign());
4015 if (p->is_input_section())
4016 p->relobj()->set_section_offset(p->shndx(), off);
4017 off += p->data_size();
4018 }
4019
4020 this->section_offsets_need_adjustment_ = false;
4021}
4022
7d9e3d98
ILT
4023// Print to the map file.
4024
4025void
4026Output_section::do_print_to_mapfile(Mapfile* mapfile) const
4027{
4028 mapfile->print_output_section(this);
4029
4030 for (Input_section_list::const_iterator p = this->input_sections_.begin();
4031 p != this->input_sections_.end();
4032 ++p)
4033 p->print_to_mapfile(mapfile);
4034}
4035
38c5e8b4
ILT
4036// Print stats for merge sections to stderr.
4037
4038void
4039Output_section::print_merge_stats()
4040{
4041 Input_section_list::iterator p;
4042 for (p = this->input_sections_.begin();
4043 p != this->input_sections_.end();
4044 ++p)
4045 p->print_merge_stats(this->name_);
4046}
4047
cdc29364
CC
4048// Set a fixed layout for the section. Used for incremental update links.
4049
4050void
4051Output_section::set_fixed_layout(uint64_t sh_addr, off_t sh_offset,
4052 off_t sh_size, uint64_t sh_addralign)
4053{
4054 this->addralign_ = sh_addralign;
4055 this->set_current_data_size(sh_size);
4056 if ((this->flags_ & elfcpp::SHF_ALLOC) != 0)
4057 this->set_address(sh_addr);
4058 this->set_file_offset(sh_offset);
4059 this->finalize_data_size();
4060 this->free_list_.init(sh_size, false);
4061 this->has_fixed_layout_ = true;
4062}
4063
4064// Reserve space within the fixed layout for the section. Used for
4065// incremental update links.
5146f448 4066
cdc29364
CC
4067void
4068Output_section::reserve(uint64_t sh_offset, uint64_t sh_size)
4069{
4070 this->free_list_.remove(sh_offset, sh_offset + sh_size);
4071}
4072
5146f448
CC
4073// Allocate space from the free list for the section. Used for
4074// incremental update links.
4075
4076off_t
4077Output_section::allocate(off_t len, uint64_t addralign)
4078{
4079 return this->free_list_.allocate(len, addralign, 0);
4080}
4081
a2fb1b05
ILT
4082// Output segment methods.
4083
2ea97941 4084Output_segment::Output_segment(elfcpp::Elf_Word type, elfcpp::Elf_Word flags)
22f0da72 4085 : vaddr_(0),
a2fb1b05
ILT
4086 paddr_(0),
4087 memsz_(0),
a445fddf
ILT
4088 max_align_(0),
4089 min_p_align_(0),
a2fb1b05
ILT
4090 offset_(0),
4091 filesz_(0),
2ea97941
ILT
4092 type_(type),
4093 flags_(flags),
a445fddf 4094 is_max_align_known_(false),
8a5e3e08 4095 are_addresses_set_(false),
16164a6b
ST
4096 is_large_data_segment_(false),
4097 is_unique_segment_(false)
a2fb1b05 4098{
bb321bb1
ILT
4099 // The ELF ABI specifies that a PT_TLS segment always has PF_R as
4100 // the flags.
4101 if (type == elfcpp::PT_TLS)
4102 this->flags_ = elfcpp::PF_R;
a2fb1b05
ILT
4103}
4104
22f0da72 4105// Add an Output_section to a PT_LOAD Output_segment.
a2fb1b05
ILT
4106
4107void
22f0da72
ILT
4108Output_segment::add_output_section_to_load(Layout* layout,
4109 Output_section* os,
4110 elfcpp::Elf_Word seg_flags)
a2fb1b05 4111{
22f0da72 4112 gold_assert(this->type() == elfcpp::PT_LOAD);
a3ad94ed 4113 gold_assert((os->flags() & elfcpp::SHF_ALLOC) != 0);
a445fddf 4114 gold_assert(!this->is_max_align_known_);
8a5e3e08 4115 gold_assert(os->is_large_data_section() == this->is_large_data_segment());
75f65a3e 4116
a192ba05 4117 this->update_flags_for_output_section(seg_flags);
75f65a3e 4118
22f0da72
ILT
4119 // We don't want to change the ordering if we have a linker script
4120 // with a SECTIONS clause.
4121 Output_section_order order = os->order();
4122 if (layout->script_options()->saw_sections_clause())
4123 order = static_cast<Output_section_order>(0);
75f65a3e 4124 else
22f0da72 4125 gold_assert(order != ORDER_INVALID);
54dc6425 4126
22f0da72
ILT
4127 this->output_lists_[order].push_back(os);
4128}
9f1d377b 4129
22f0da72 4130// Add an Output_section to a non-PT_LOAD Output_segment.
1a2dff53 4131
22f0da72
ILT
4132void
4133Output_segment::add_output_section_to_nonload(Output_section* os,
4134 elfcpp::Elf_Word seg_flags)
4135{
4136 gold_assert(this->type() != elfcpp::PT_LOAD);
4137 gold_assert((os->flags() & elfcpp::SHF_ALLOC) != 0);
4138 gold_assert(!this->is_max_align_known_);
1a2dff53 4139
22f0da72 4140 this->update_flags_for_output_section(seg_flags);
9f1d377b 4141
22f0da72
ILT
4142 this->output_lists_[0].push_back(os);
4143}
8a5e3e08 4144
22f0da72
ILT
4145// Remove an Output_section from this segment. It is an error if it
4146// is not present.
8a5e3e08 4147
22f0da72
ILT
4148void
4149Output_segment::remove_output_section(Output_section* os)
4150{
4151 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
8a5e3e08 4152 {
22f0da72
ILT
4153 Output_data_list* pdl = &this->output_lists_[i];
4154 for (Output_data_list::iterator p = pdl->begin(); p != pdl->end(); ++p)
8a5e3e08 4155 {
22f0da72 4156 if (*p == os)
8a5e3e08 4157 {
22f0da72 4158 pdl->erase(p);
8a5e3e08
ILT
4159 return;
4160 }
4161 }
f5c870d2 4162 }
1650c4ff
ILT
4163 gold_unreachable();
4164}
4165
a192ba05
ILT
4166// Add an Output_data (which need not be an Output_section) to the
4167// start of a segment.
75f65a3e
ILT
4168
4169void
4170Output_segment::add_initial_output_data(Output_data* od)
4171{
a445fddf 4172 gold_assert(!this->is_max_align_known_);
22f0da72
ILT
4173 Output_data_list::iterator p = this->output_lists_[0].begin();
4174 this->output_lists_[0].insert(p, od);
4175}
4176
4177// Return true if this segment has any sections which hold actual
4178// data, rather than being a BSS section.
4179
4180bool
4181Output_segment::has_any_data_sections() const
4182{
4183 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4184 {
4185 const Output_data_list* pdl = &this->output_lists_[i];
4186 for (Output_data_list::const_iterator p = pdl->begin();
4187 p != pdl->end();
4188 ++p)
4189 {
4190 if (!(*p)->is_section())
4191 return true;
4192 if ((*p)->output_section()->type() != elfcpp::SHT_NOBITS)
4193 return true;
4194 }
4195 }
4196 return false;
75f65a3e
ILT
4197}
4198
5bc2f5be
CC
4199// Return whether the first data section (not counting TLS sections)
4200// is a relro section.
9f1d377b
ILT
4201
4202bool
4203Output_segment::is_first_section_relro() const
4204{
22f0da72
ILT
4205 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4206 {
bccffdfd 4207 if (i == static_cast<int>(ORDER_TLS_BSS))
5bc2f5be 4208 continue;
22f0da72
ILT
4209 const Output_data_list* pdl = &this->output_lists_[i];
4210 if (!pdl->empty())
4211 {
4212 Output_data* p = pdl->front();
4213 return p->is_section() && p->output_section()->is_relro();
4214 }
4215 }
4216 return false;
9f1d377b
ILT
4217}
4218
75f65a3e 4219// Return the maximum alignment of the Output_data in Output_segment.
75f65a3e
ILT
4220
4221uint64_t
a445fddf 4222Output_segment::maximum_alignment()
75f65a3e 4223{
a445fddf 4224 if (!this->is_max_align_known_)
ead1e424 4225 {
22f0da72 4226 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
50ed5eb1 4227 {
22f0da72
ILT
4228 const Output_data_list* pdl = &this->output_lists_[i];
4229 uint64_t addralign = Output_segment::maximum_alignment_list(pdl);
4230 if (addralign > this->max_align_)
4231 this->max_align_ = addralign;
4232 }
a445fddf 4233 this->is_max_align_known_ = true;
ead1e424
ILT
4234 }
4235
a445fddf 4236 return this->max_align_;
75f65a3e
ILT
4237}
4238
ead1e424
ILT
4239// Return the maximum alignment of a list of Output_data.
4240
4241uint64_t
a445fddf 4242Output_segment::maximum_alignment_list(const Output_data_list* pdl)
ead1e424
ILT
4243{
4244 uint64_t ret = 0;
4245 for (Output_data_list::const_iterator p = pdl->begin();
4246 p != pdl->end();
4247 ++p)
4248 {
2ea97941
ILT
4249 uint64_t addralign = (*p)->addralign();
4250 if (addralign > ret)
4251 ret = addralign;
ead1e424
ILT
4252 }
4253 return ret;
4254}
4255
22f0da72 4256// Return whether this segment has any dynamic relocs.
4f4c5f80 4257
22f0da72
ILT
4258bool
4259Output_segment::has_dynamic_reloc() const
4f4c5f80 4260{
22f0da72
ILT
4261 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4262 if (this->has_dynamic_reloc_list(&this->output_lists_[i]))
4263 return true;
4264 return false;
4f4c5f80
ILT
4265}
4266
22f0da72 4267// Return whether this Output_data_list has any dynamic relocs.
4f4c5f80 4268
22f0da72
ILT
4269bool
4270Output_segment::has_dynamic_reloc_list(const Output_data_list* pdl) const
4f4c5f80 4271{
4f4c5f80
ILT
4272 for (Output_data_list::const_iterator p = pdl->begin();
4273 p != pdl->end();
4274 ++p)
22f0da72
ILT
4275 if ((*p)->has_dynamic_reloc())
4276 return true;
4277 return false;
4f4c5f80
ILT
4278}
4279
a445fddf
ILT
4280// Set the section addresses for an Output_segment. If RESET is true,
4281// reset the addresses first. ADDR is the address and *POFF is the
4282// file offset. Set the section indexes starting with *PSHNDX.
5bc2f5be
CC
4283// INCREASE_RELRO is the size of the portion of the first non-relro
4284// section that should be included in the PT_GNU_RELRO segment.
4285// If this segment has relro sections, and has been aligned for
4286// that purpose, set *HAS_RELRO to TRUE. Return the address of
4287// the immediately following segment. Update *HAS_RELRO, *POFF,
4288// and *PSHNDX.
75f65a3e
ILT
4289
4290uint64_t
eb426534
RM
4291Output_segment::set_section_addresses(const Target* target,
4292 Layout* layout, bool reset,
4293 uint64_t addr,
fd064a5b 4294 unsigned int* increase_relro,
fc497986 4295 bool* has_relro,
1a2dff53 4296 off_t* poff,
ead1e424 4297 unsigned int* pshndx)
75f65a3e 4298{
a3ad94ed 4299 gold_assert(this->type_ == elfcpp::PT_LOAD);
75f65a3e 4300
fc497986 4301 uint64_t last_relro_pad = 0;
1a2dff53
ILT
4302 off_t orig_off = *poff;
4303
5bc2f5be
CC
4304 bool in_tls = false;
4305
1a2dff53 4306 // If we have relro sections, we need to pad forward now so that the
815a1205 4307 // relro sections plus INCREASE_RELRO end on an abi page boundary.
1a2dff53
ILT
4308 if (parameters->options().relro()
4309 && this->is_first_section_relro()
4310 && (!this->are_addresses_set_ || reset))
4311 {
4312 uint64_t relro_size = 0;
4313 off_t off = *poff;
fc497986 4314 uint64_t max_align = 0;
5bc2f5be 4315 for (int i = 0; i <= static_cast<int>(ORDER_RELRO_LAST); ++i)
1a2dff53 4316 {
22f0da72
ILT
4317 Output_data_list* pdl = &this->output_lists_[i];
4318 Output_data_list::iterator p;
4319 for (p = pdl->begin(); p != pdl->end(); ++p)
1a2dff53 4320 {
22f0da72
ILT
4321 if (!(*p)->is_section())
4322 break;
fc497986
CC
4323 uint64_t align = (*p)->addralign();
4324 if (align > max_align)
4325 max_align = align;
5bc2f5be
CC
4326 if ((*p)->is_section_flag_set(elfcpp::SHF_TLS))
4327 in_tls = true;
4328 else if (in_tls)
4329 {
4330 // Align the first non-TLS section to the alignment
4331 // of the TLS segment.
4332 align = max_align;
4333 in_tls = false;
4334 }
5bc2f5be
CC
4335 // Ignore the size of the .tbss section.
4336 if ((*p)->is_section_flag_set(elfcpp::SHF_TLS)
4337 && (*p)->is_section_type(elfcpp::SHT_NOBITS))
4338 continue;
bccffdfd 4339 relro_size = align_address(relro_size, align);
22f0da72
ILT
4340 if ((*p)->is_address_valid())
4341 relro_size += (*p)->data_size();
4342 else
4343 {
4344 // FIXME: This could be faster.
5485698a
CC
4345 (*p)->set_address_and_file_offset(relro_size,
4346 relro_size);
22f0da72
ILT
4347 relro_size += (*p)->data_size();
4348 (*p)->reset_address_and_file_offset();
4349 }
1a2dff53 4350 }
22f0da72
ILT
4351 if (p != pdl->end())
4352 break;
1a2dff53 4353 }
fd064a5b 4354 relro_size += *increase_relro;
fc497986
CC
4355 // Pad the total relro size to a multiple of the maximum
4356 // section alignment seen.
4357 uint64_t aligned_size = align_address(relro_size, max_align);
4358 // Note the amount of padding added after the last relro section.
4359 last_relro_pad = aligned_size - relro_size;
fc497986 4360 *has_relro = true;
1a2dff53 4361
815a1205 4362 uint64_t page_align = parameters->target().abi_pagesize();
1a2dff53
ILT
4363
4364 // Align to offset N such that (N + RELRO_SIZE) % PAGE_ALIGN == 0.
fc497986 4365 uint64_t desired_align = page_align - (aligned_size % page_align);
5485698a
CC
4366 if (desired_align < off % page_align)
4367 off += page_align;
4368 off += desired_align - off % page_align;
4369 addr += off - orig_off;
4370 orig_off = off;
4371 *poff = off;
1a2dff53
ILT
4372 }
4373
a445fddf
ILT
4374 if (!reset && this->are_addresses_set_)
4375 {
4376 gold_assert(this->paddr_ == addr);
4377 addr = this->vaddr_;
4378 }
4379 else
4380 {
4381 this->vaddr_ = addr;
4382 this->paddr_ = addr;
4383 this->are_addresses_set_ = true;
4384 }
75f65a3e 4385
5bc2f5be 4386 in_tls = false;
96a2b4e4 4387
75f65a3e
ILT
4388 this->offset_ = orig_off;
4389
22f0da72
ILT
4390 off_t off = 0;
4391 uint64_t ret;
4392 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4393 {
fc497986
CC
4394 if (i == static_cast<int>(ORDER_RELRO_LAST))
4395 {
4396 *poff += last_relro_pad;
4397 addr += last_relro_pad;
fd064a5b
CC
4398 if (this->output_lists_[i].empty())
4399 {
4400 // If there is nothing in the ORDER_RELRO_LAST list,
4401 // the padding will occur at the end of the relro
4402 // segment, and we need to add it to *INCREASE_RELRO.
4403 *increase_relro += last_relro_pad;
4404 }
fc497986 4405 }
5bc2f5be
CC
4406 addr = this->set_section_list_addresses(layout, reset,
4407 &this->output_lists_[i],
4408 addr, poff, pshndx, &in_tls);
22f0da72
ILT
4409 if (i < static_cast<int>(ORDER_SMALL_BSS))
4410 {
4411 this->filesz_ = *poff - orig_off;
4412 off = *poff;
4413 }
75f65a3e 4414
22f0da72
ILT
4415 ret = addr;
4416 }
96a2b4e4
ILT
4417
4418 // If the last section was a TLS section, align upward to the
4419 // alignment of the TLS segment, so that the overall size of the TLS
4420 // segment is aligned.
4421 if (in_tls)
4422 {
4423 uint64_t segment_align = layout->tls_segment()->maximum_alignment();
4424 *poff = align_address(*poff, segment_align);
4425 }
4426
75f65a3e
ILT
4427 this->memsz_ = *poff - orig_off;
4428
4429 // Ignore the file offset adjustments made by the BSS Output_data
4430 // objects.
4431 *poff = off;
61ba1cf9 4432
eb426534
RM
4433 // If code segments must contain only code, and this code segment is
4434 // page-aligned in the file, then fill it out to a whole page with
4435 // code fill (the tail of the segment will not be within any section).
4436 // Thus the entire code segment can be mapped from the file as whole
4437 // pages and that mapping will contain only valid instructions.
4438 if (target->isolate_execinstr() && (this->flags() & elfcpp::PF_X) != 0)
4439 {
4440 uint64_t abi_pagesize = target->abi_pagesize();
4441 if (orig_off % abi_pagesize == 0 && off % abi_pagesize != 0)
4442 {
4443 size_t fill_size = abi_pagesize - (off % abi_pagesize);
4444
4445 std::string fill_data;
4446 if (target->has_code_fill())
4447 fill_data = target->code_fill(fill_size);
4448 else
4449 fill_data.resize(fill_size); // Zero fill.
4450
4451 Output_data_const* fill = new Output_data_const(fill_data, 0);
4452 fill->set_address(this->vaddr_ + this->memsz_);
4453 fill->set_file_offset(off);
4454 layout->add_relax_output(fill);
4455
4456 off += fill_size;
4457 gold_assert(off % abi_pagesize == 0);
4458 ret += fill_size;
4459 gold_assert(ret % abi_pagesize == 0);
4460
4461 gold_assert((uint64_t) this->filesz_ == this->memsz_);
4462 this->memsz_ = this->filesz_ += fill_size;
4463
4464 *poff = off;
4465 }
4466 }
4467
61ba1cf9 4468 return ret;
75f65a3e
ILT
4469}
4470
b8e6aad9
ILT
4471// Set the addresses and file offsets in a list of Output_data
4472// structures.
75f65a3e
ILT
4473
4474uint64_t
cdc29364 4475Output_segment::set_section_list_addresses(Layout* layout, bool reset,
eb426534 4476 Output_data_list* pdl,
ead1e424 4477 uint64_t addr, off_t* poff,
96a2b4e4 4478 unsigned int* pshndx,
eb426534 4479 bool* in_tls)
75f65a3e 4480{
ead1e424 4481 off_t startoff = *poff;
cdc29364
CC
4482 // For incremental updates, we may allocate non-fixed sections from
4483 // free space in the file. This keeps track of the high-water mark.
4484 off_t maxoff = startoff;
75f65a3e 4485
ead1e424 4486 off_t off = startoff;
75f65a3e
ILT
4487 for (Output_data_list::iterator p = pdl->begin();
4488 p != pdl->end();
4489 ++p)
4490 {
a445fddf
ILT
4491 if (reset)
4492 (*p)->reset_address_and_file_offset();
4493
cdc29364
CC
4494 // When doing an incremental update or when using a linker script,
4495 // the section will most likely already have an address.
a445fddf 4496 if (!(*p)->is_address_valid())
3802b2dd 4497 {
eb426534
RM
4498 uint64_t align = (*p)->addralign();
4499
4500 if ((*p)->is_section_flag_set(elfcpp::SHF_TLS))
4501 {
4502 // Give the first TLS section the alignment of the
4503 // entire TLS segment. Otherwise the TLS segment as a
4504 // whole may be misaligned.
4505 if (!*in_tls)
4506 {
4507 Output_segment* tls_segment = layout->tls_segment();
4508 gold_assert(tls_segment != NULL);
4509 uint64_t segment_align = tls_segment->maximum_alignment();
4510 gold_assert(segment_align >= align);
4511 align = segment_align;
4512
4513 *in_tls = true;
4514 }
4515 }
4516 else
4517 {
4518 // If this is the first section after the TLS segment,
4519 // align it to at least the alignment of the TLS
4520 // segment, so that the size of the overall TLS segment
4521 // is aligned.
4522 if (*in_tls)
4523 {
4524 uint64_t segment_align =
4525 layout->tls_segment()->maximum_alignment();
4526 if (segment_align > align)
4527 align = segment_align;
4528
4529 *in_tls = false;
4530 }
4531 }
96a2b4e4 4532
fb0e076f 4533 if (!parameters->incremental_update())
cdc29364
CC
4534 {
4535 off = align_address(off, align);
4536 (*p)->set_address_and_file_offset(addr + (off - startoff), off);
4537 }
4538 else
4539 {
4540 // Incremental update: allocate file space from free list.
4541 (*p)->pre_finalize_data_size();
4542 off_t current_size = (*p)->current_data_size();
4543 off = layout->allocate(current_size, align, startoff);
4544 if (off == -1)
eb426534 4545 {
cdc29364 4546 gold_assert((*p)->output_section() != NULL);
e6455dfb
CC
4547 gold_fallback(_("out of patch space for section %s; "
4548 "relink with --incremental-full"),
4549 (*p)->output_section()->name());
eb426534 4550 }
cdc29364
CC
4551 (*p)->set_address_and_file_offset(addr + (off - startoff), off);
4552 if ((*p)->data_size() > current_size)
4553 {
4554 gold_assert((*p)->output_section() != NULL);
e6455dfb
CC
4555 gold_fallback(_("%s: section changed size; "
4556 "relink with --incremental-full"),
4557 (*p)->output_section()->name());
cdc29364
CC
4558 }
4559 }
3802b2dd 4560 }
cdc29364 4561 else if (parameters->incremental_update())
eb426534
RM
4562 {
4563 // For incremental updates, use the fixed offset for the
4564 // high-water mark computation.
4565 off = (*p)->offset();
4566 }
a445fddf
ILT
4567 else
4568 {
4569 // The script may have inserted a skip forward, but it
4570 // better not have moved backward.
661be1e2
ILT
4571 if ((*p)->address() >= addr + (off - startoff))
4572 off += (*p)->address() - (addr + (off - startoff));
4573 else
4574 {
4575 if (!layout->script_options()->saw_sections_clause())
4576 gold_unreachable();
4577 else
4578 {
4579 Output_section* os = (*p)->output_section();
64b1ae37
DK
4580
4581 // Cast to unsigned long long to avoid format warnings.
4582 unsigned long long previous_dot =
4583 static_cast<unsigned long long>(addr + (off - startoff));
4584 unsigned long long dot =
4585 static_cast<unsigned long long>((*p)->address());
4586
661be1e2
ILT
4587 if (os == NULL)
4588 gold_error(_("dot moves backward in linker script "
64b1ae37 4589 "from 0x%llx to 0x%llx"), previous_dot, dot);
661be1e2
ILT
4590 else
4591 gold_error(_("address of section '%s' moves backward "
4592 "from 0x%llx to 0x%llx"),
64b1ae37 4593 os->name(), previous_dot, dot);
661be1e2
ILT
4594 }
4595 }
a445fddf
ILT
4596 (*p)->set_file_offset(off);
4597 (*p)->finalize_data_size();
4598 }
ead1e424 4599
9fbd3822
CC
4600 if (parameters->incremental_update())
4601 gold_debug(DEBUG_INCREMENTAL,
4602 "set_section_list_addresses: %08lx %08lx %s",
4603 static_cast<long>(off),
4604 static_cast<long>((*p)->data_size()),
4605 ((*p)->output_section() != NULL
4606 ? (*p)->output_section()->name() : "(special)"));
4607
4608 // We want to ignore the size of a SHF_TLS SHT_NOBITS
96a2b4e4
ILT
4609 // section. Such a section does not affect the size of a
4610 // PT_LOAD segment.
4611 if (!(*p)->is_section_flag_set(elfcpp::SHF_TLS)
ead1e424
ILT
4612 || !(*p)->is_section_type(elfcpp::SHT_NOBITS))
4613 off += (*p)->data_size();
75f65a3e 4614
cdc29364 4615 if (off > maxoff)
eb426534 4616 maxoff = off;
cdc29364 4617
ead1e424
ILT
4618 if ((*p)->is_section())
4619 {
4620 (*p)->set_out_shndx(*pshndx);
4621 ++*pshndx;
4622 }
75f65a3e
ILT
4623 }
4624
cdc29364
CC
4625 *poff = maxoff;
4626 return addr + (maxoff - startoff);
75f65a3e
ILT
4627}
4628
4629// For a non-PT_LOAD segment, set the offset from the sections, if
1a2dff53 4630// any. Add INCREASE to the file size and the memory size.
75f65a3e
ILT
4631
4632void
1a2dff53 4633Output_segment::set_offset(unsigned int increase)
75f65a3e 4634{
a3ad94ed 4635 gold_assert(this->type_ != elfcpp::PT_LOAD);
75f65a3e 4636
a445fddf
ILT
4637 gold_assert(!this->are_addresses_set_);
4638
22f0da72
ILT
4639 // A non-load section only uses output_lists_[0].
4640
4641 Output_data_list* pdl = &this->output_lists_[0];
4642
4643 if (pdl->empty())
75f65a3e 4644 {
1a2dff53 4645 gold_assert(increase == 0);
75f65a3e
ILT
4646 this->vaddr_ = 0;
4647 this->paddr_ = 0;
a445fddf 4648 this->are_addresses_set_ = true;
75f65a3e 4649 this->memsz_ = 0;
a445fddf 4650 this->min_p_align_ = 0;
75f65a3e
ILT
4651 this->offset_ = 0;
4652 this->filesz_ = 0;
4653 return;
4654 }
4655
22f0da72 4656 // Find the first and last section by address.
5f1ab67a
ILT
4657 const Output_data* first = NULL;
4658 const Output_data* last_data = NULL;
4659 const Output_data* last_bss = NULL;
22f0da72
ILT
4660 for (Output_data_list::const_iterator p = pdl->begin();
4661 p != pdl->end();
4662 ++p)
4663 {
4664 if (first == NULL
4665 || (*p)->address() < first->address()
4666 || ((*p)->address() == first->address()
4667 && (*p)->data_size() < first->data_size()))
4668 first = *p;
4669 const Output_data** plast;
4670 if ((*p)->is_section()
4671 && (*p)->output_section()->type() == elfcpp::SHT_NOBITS)
4672 plast = &last_bss;
4673 else
4674 plast = &last_data;
4675 if (*plast == NULL
4676 || (*p)->address() > (*plast)->address()
4677 || ((*p)->address() == (*plast)->address()
4678 && (*p)->data_size() > (*plast)->data_size()))
4679 *plast = *p;
4680 }
5f1ab67a 4681
75f65a3e 4682 this->vaddr_ = first->address();
a445fddf
ILT
4683 this->paddr_ = (first->has_load_address()
4684 ? first->load_address()
4685 : this->vaddr_);
4686 this->are_addresses_set_ = true;
75f65a3e
ILT
4687 this->offset_ = first->offset();
4688
22f0da72 4689 if (last_data == NULL)
75f65a3e
ILT
4690 this->filesz_ = 0;
4691 else
5f1ab67a
ILT
4692 this->filesz_ = (last_data->address()
4693 + last_data->data_size()
4694 - this->vaddr_);
75f65a3e 4695
5f1ab67a 4696 const Output_data* last = last_bss != NULL ? last_bss : last_data;
75f65a3e
ILT
4697 this->memsz_ = (last->address()
4698 + last->data_size()
4699 - this->vaddr_);
96a2b4e4 4700
1a2dff53
ILT
4701 this->filesz_ += increase;
4702 this->memsz_ += increase;
4703
fd064a5b
CC
4704 // If this is a RELRO segment, verify that the segment ends at a
4705 // page boundary.
4706 if (this->type_ == elfcpp::PT_GNU_RELRO)
4707 {
815a1205 4708 uint64_t page_align = parameters->target().abi_pagesize();
fd064a5b 4709 uint64_t segment_end = this->vaddr_ + this->memsz_;
cdc29364
CC
4710 if (parameters->incremental_update())
4711 {
4712 // The INCREASE_RELRO calculation is bypassed for an incremental
4713 // update, so we need to adjust the segment size manually here.
4714 segment_end = align_address(segment_end, page_align);
4715 this->memsz_ = segment_end - this->vaddr_;
4716 }
4717 else
4718 gold_assert(segment_end == align_address(segment_end, page_align));
fd064a5b
CC
4719 }
4720
96a2b4e4
ILT
4721 // If this is a TLS segment, align the memory size. The code in
4722 // set_section_list ensures that the section after the TLS segment
4723 // is aligned to give us room.
4724 if (this->type_ == elfcpp::PT_TLS)
4725 {
4726 uint64_t segment_align = this->maximum_alignment();
4727 gold_assert(this->vaddr_ == align_address(this->vaddr_, segment_align));
4728 this->memsz_ = align_address(this->memsz_, segment_align);
4729 }
75f65a3e
ILT
4730}
4731
7bf1f802
ILT
4732// Set the TLS offsets of the sections in the PT_TLS segment.
4733
4734void
4735Output_segment::set_tls_offsets()
4736{
4737 gold_assert(this->type_ == elfcpp::PT_TLS);
4738
22f0da72
ILT
4739 for (Output_data_list::iterator p = this->output_lists_[0].begin();
4740 p != this->output_lists_[0].end();
7bf1f802
ILT
4741 ++p)
4742 (*p)->set_tls_offset(this->vaddr_);
4743}
4744
7404fe1b 4745// Return the first section.
a445fddf 4746
7404fe1b
AM
4747Output_section*
4748Output_segment::first_section() const
a445fddf 4749{
22f0da72
ILT
4750 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4751 {
4752 const Output_data_list* pdl = &this->output_lists_[i];
4753 for (Output_data_list::const_iterator p = pdl->begin();
4754 p != pdl->end();
4755 ++p)
4756 {
4757 if ((*p)->is_section())
7404fe1b 4758 return (*p)->output_section();
22f0da72
ILT
4759 }
4760 }
a445fddf
ILT
4761 gold_unreachable();
4762}
4763
75f65a3e
ILT
4764// Return the number of Output_sections in an Output_segment.
4765
4766unsigned int
4767Output_segment::output_section_count() const
4768{
22f0da72
ILT
4769 unsigned int ret = 0;
4770 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4771 ret += this->output_section_count_list(&this->output_lists_[i]);
4772 return ret;
75f65a3e
ILT
4773}
4774
4775// Return the number of Output_sections in an Output_data_list.
4776
4777unsigned int
4778Output_segment::output_section_count_list(const Output_data_list* pdl) const
4779{
4780 unsigned int count = 0;
4781 for (Output_data_list::const_iterator p = pdl->begin();
4782 p != pdl->end();
4783 ++p)
4784 {
4785 if ((*p)->is_section())
4786 ++count;
4787 }
4788 return count;
a2fb1b05
ILT
4789}
4790
1c4f3631
ILT
4791// Return the section attached to the list segment with the lowest
4792// load address. This is used when handling a PHDRS clause in a
4793// linker script.
4794
4795Output_section*
4796Output_segment::section_with_lowest_load_address() const
4797{
4798 Output_section* found = NULL;
4799 uint64_t found_lma = 0;
22f0da72
ILT
4800 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4801 this->lowest_load_address_in_list(&this->output_lists_[i], &found,
4802 &found_lma);
1c4f3631
ILT
4803 return found;
4804}
4805
4806// Look through a list for a section with a lower load address.
4807
4808void
4809Output_segment::lowest_load_address_in_list(const Output_data_list* pdl,
4810 Output_section** found,
4811 uint64_t* found_lma) const
4812{
4813 for (Output_data_list::const_iterator p = pdl->begin();
4814 p != pdl->end();
4815 ++p)
4816 {
4817 if (!(*p)->is_section())
4818 continue;
4819 Output_section* os = static_cast<Output_section*>(*p);
4820 uint64_t lma = (os->has_load_address()
4821 ? os->load_address()
4822 : os->address());
4823 if (*found == NULL || lma < *found_lma)
4824 {
4825 *found = os;
4826 *found_lma = lma;
4827 }
4828 }
4829}
4830
61ba1cf9
ILT
4831// Write the segment data into *OPHDR.
4832
4833template<int size, bool big_endian>
4834void
ead1e424 4835Output_segment::write_header(elfcpp::Phdr_write<size, big_endian>* ophdr)
61ba1cf9
ILT
4836{
4837 ophdr->put_p_type(this->type_);
4838 ophdr->put_p_offset(this->offset_);
4839 ophdr->put_p_vaddr(this->vaddr_);
4840 ophdr->put_p_paddr(this->paddr_);
4841 ophdr->put_p_filesz(this->filesz_);
4842 ophdr->put_p_memsz(this->memsz_);
4843 ophdr->put_p_flags(this->flags_);
a445fddf 4844 ophdr->put_p_align(std::max(this->min_p_align_, this->maximum_alignment()));
61ba1cf9
ILT
4845}
4846
4847// Write the section headers into V.
4848
4849template<int size, bool big_endian>
4850unsigned char*
16649710
ILT
4851Output_segment::write_section_headers(const Layout* layout,
4852 const Stringpool* secnamepool,
ead1e424 4853 unsigned char* v,
ca09d69a 4854 unsigned int* pshndx) const
5482377d 4855{
ead1e424
ILT
4856 // Every section that is attached to a segment must be attached to a
4857 // PT_LOAD segment, so we only write out section headers for PT_LOAD
4858 // segments.
4859 if (this->type_ != elfcpp::PT_LOAD)
4860 return v;
4861
22f0da72
ILT
4862 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4863 {
4864 const Output_data_list* pdl = &this->output_lists_[i];
4865 v = this->write_section_headers_list<size, big_endian>(layout,
4866 secnamepool,
4867 pdl,
4868 v, pshndx);
4869 }
4870
61ba1cf9
ILT
4871 return v;
4872}
4873
4874template<int size, bool big_endian>
4875unsigned char*
16649710
ILT
4876Output_segment::write_section_headers_list(const Layout* layout,
4877 const Stringpool* secnamepool,
61ba1cf9 4878 const Output_data_list* pdl,
ead1e424 4879 unsigned char* v,
7d1a9ebb 4880 unsigned int* pshndx) const
61ba1cf9
ILT
4881{
4882 const int shdr_size = elfcpp::Elf_sizes<size>::shdr_size;
4883 for (Output_data_list::const_iterator p = pdl->begin();
4884 p != pdl->end();
4885 ++p)
4886 {
4887 if ((*p)->is_section())
4888 {
5482377d 4889 const Output_section* ps = static_cast<const Output_section*>(*p);
a3ad94ed 4890 gold_assert(*pshndx == ps->out_shndx());
61ba1cf9 4891 elfcpp::Shdr_write<size, big_endian> oshdr(v);
16649710 4892 ps->write_header(layout, secnamepool, &oshdr);
61ba1cf9 4893 v += shdr_size;
ead1e424 4894 ++*pshndx;
61ba1cf9
ILT
4895 }
4896 }
4897 return v;
4898}
4899
7d9e3d98
ILT
4900// Print the output sections to the map file.
4901
4902void
4903Output_segment::print_sections_to_mapfile(Mapfile* mapfile) const
4904{
4905 if (this->type() != elfcpp::PT_LOAD)
4906 return;
22f0da72
ILT
4907 for (int i = 0; i < static_cast<int>(ORDER_MAX); ++i)
4908 this->print_section_list_to_mapfile(mapfile, &this->output_lists_[i]);
7d9e3d98
ILT
4909}
4910
4911// Print an output section list to the map file.
4912
4913void
4914Output_segment::print_section_list_to_mapfile(Mapfile* mapfile,
4915 const Output_data_list* pdl) const
4916{
4917 for (Output_data_list::const_iterator p = pdl->begin();
4918 p != pdl->end();
4919 ++p)
4920 (*p)->print_to_mapfile(mapfile);
4921}
4922
a2fb1b05
ILT
4923// Output_file methods.
4924
14144f39
ILT
4925Output_file::Output_file(const char* name)
4926 : name_(name),
61ba1cf9
ILT
4927 o_(-1),
4928 file_size_(0),
c420411f 4929 base_(NULL),
516cb3d0 4930 map_is_anonymous_(false),
88597d34 4931 map_is_allocated_(false),
516cb3d0 4932 is_temporary_(false)
61ba1cf9
ILT
4933{
4934}
4935
404c2abb 4936// Try to open an existing file. Returns false if the file doesn't
aa92d6ed
CC
4937// exist, has a size of 0 or can't be mmapped. If BASE_NAME is not
4938// NULL, open that file as the base for incremental linking, and
4939// copy its contents to the new output file. This routine can
4940// be called for incremental updates, in which case WRITABLE should
4941// be true, or by the incremental-dump utility, in which case
4942// WRITABLE should be false.
404c2abb
ILT
4943
4944bool
aa92d6ed 4945Output_file::open_base_file(const char* base_name, bool writable)
404c2abb
ILT
4946{
4947 // The name "-" means "stdout".
4948 if (strcmp(this->name_, "-") == 0)
4949 return false;
4950
aa92d6ed
CC
4951 bool use_base_file = base_name != NULL;
4952 if (!use_base_file)
4953 base_name = this->name_;
4954 else if (strcmp(base_name, this->name_) == 0)
4955 gold_fatal(_("%s: incremental base and output file name are the same"),
4956 base_name);
4957
404c2abb
ILT
4958 // Don't bother opening files with a size of zero.
4959 struct stat s;
aa92d6ed
CC
4960 if (::stat(base_name, &s) != 0)
4961 {
4962 gold_info(_("%s: stat: %s"), base_name, strerror(errno));
4963 return false;
4964 }
4965 if (s.st_size == 0)
4966 {
4967 gold_info(_("%s: incremental base file is empty"), base_name);
4968 return false;
4969 }
4970
4971 // If we're using a base file, we want to open it read-only.
4972 if (use_base_file)
4973 writable = false;
404c2abb 4974
aa92d6ed
CC
4975 int oflags = writable ? O_RDWR : O_RDONLY;
4976 int o = open_descriptor(-1, base_name, oflags, 0);
404c2abb 4977 if (o < 0)
aa92d6ed
CC
4978 {
4979 gold_info(_("%s: open: %s"), base_name, strerror(errno));
4980 return false;
4981 }
4982
4983 // If the base file and the output file are different, open a
4984 // new output file and read the contents from the base file into
4985 // the newly-mapped region.
4986 if (use_base_file)
4987 {
4988 this->open(s.st_size);
dfb45471
CC
4989 ssize_t bytes_to_read = s.st_size;
4990 unsigned char* p = this->base_;
4991 while (bytes_to_read > 0)
4992 {
4993 ssize_t len = ::read(o, p, bytes_to_read);
4994 if (len < 0)
4995 {
4996 gold_info(_("%s: read failed: %s"), base_name, strerror(errno));
4997 return false;
4998 }
4999 if (len == 0)
5000 {
5001 gold_info(_("%s: file too short: read only %lld of %lld bytes"),
5002 base_name,
5003 static_cast<long long>(s.st_size - bytes_to_read),
5004 static_cast<long long>(s.st_size));
5005 return false;
5006 }
5007 p += len;
5008 bytes_to_read -= len;
5009 }
aa92d6ed
CC
5010 ::close(o);
5011 return true;
5012 }
5013
404c2abb
ILT
5014 this->o_ = o;
5015 this->file_size_ = s.st_size;
5016
aa92d6ed 5017 if (!this->map_no_anonymous(writable))
404c2abb
ILT
5018 {
5019 release_descriptor(o, true);
5020 this->o_ = -1;
5021 this->file_size_ = 0;
5022 return false;
5023 }
5024
5025 return true;
5026}
5027
61ba1cf9
ILT
5028// Open the output file.
5029
a2fb1b05 5030void
61ba1cf9 5031Output_file::open(off_t file_size)
a2fb1b05 5032{
61ba1cf9
ILT
5033 this->file_size_ = file_size;
5034
4e9d8586
ILT
5035 // Unlink the file first; otherwise the open() may fail if the file
5036 // is busy (e.g. it's an executable that's currently being executed).
5037 //
5038 // However, the linker may be part of a system where a zero-length
5039 // file is created for it to write to, with tight permissions (gcc
5040 // 2.95 did something like this). Unlinking the file would work
5041 // around those permission controls, so we only unlink if the file
5042 // has a non-zero size. We also unlink only regular files to avoid
5043 // trouble with directories/etc.
5044 //
5045 // If we fail, continue; this command is merely a best-effort attempt
5046 // to improve the odds for open().
5047
42a1b686 5048 // We let the name "-" mean "stdout"
516cb3d0 5049 if (!this->is_temporary_)
42a1b686 5050 {
516cb3d0
ILT
5051 if (strcmp(this->name_, "-") == 0)
5052 this->o_ = STDOUT_FILENO;
5053 else
5054 {
5055 struct stat s;
6a89f575
CC
5056 if (::stat(this->name_, &s) == 0
5057 && (S_ISREG (s.st_mode) || S_ISLNK (s.st_mode)))
5058 {
5059 if (s.st_size != 0)
5060 ::unlink(this->name_);
5061 else if (!parameters->options().relocatable())
5062 {
5063 // If we don't unlink the existing file, add execute
5064 // permission where read permissions already exist
5065 // and where the umask permits.
5066 int mask = ::umask(0);
5067 ::umask(mask);
5068 s.st_mode |= (s.st_mode & 0444) >> 2;
5069 ::chmod(this->name_, s.st_mode & ~mask);
5070 }
5071 }
516cb3d0 5072
8851ecca 5073 int mode = parameters->options().relocatable() ? 0666 : 0777;
2a00e4fb
ILT
5074 int o = open_descriptor(-1, this->name_, O_RDWR | O_CREAT | O_TRUNC,
5075 mode);
516cb3d0
ILT
5076 if (o < 0)
5077 gold_fatal(_("%s: open: %s"), this->name_, strerror(errno));
5078 this->o_ = o;
5079 }
42a1b686 5080 }
61ba1cf9 5081
27bc2bce
ILT
5082 this->map();
5083}
5084
5085// Resize the output file.
5086
5087void
5088Output_file::resize(off_t file_size)
5089{
c420411f
ILT
5090 // If the mmap is mapping an anonymous memory buffer, this is easy:
5091 // just mremap to the new size. If it's mapping to a file, we want
5092 // to unmap to flush to the file, then remap after growing the file.
5093 if (this->map_is_anonymous_)
5094 {
88597d34
ILT
5095 void* base;
5096 if (!this->map_is_allocated_)
5097 {
5098 base = ::mremap(this->base_, this->file_size_, file_size,
5099 MREMAP_MAYMOVE);
5100 if (base == MAP_FAILED)
5101 gold_fatal(_("%s: mremap: %s"), this->name_, strerror(errno));
5102 }
5103 else
5104 {
5105 base = realloc(this->base_, file_size);
5106 if (base == NULL)
5107 gold_nomem();
5108 if (file_size > this->file_size_)
5109 memset(static_cast<char*>(base) + this->file_size_, 0,
5110 file_size - this->file_size_);
5111 }
c420411f
ILT
5112 this->base_ = static_cast<unsigned char*>(base);
5113 this->file_size_ = file_size;
5114 }
5115 else
5116 {
5117 this->unmap();
5118 this->file_size_ = file_size;
aa92d6ed 5119 if (!this->map_no_anonymous(true))
fdcac5af 5120 gold_fatal(_("%s: mmap: %s"), this->name_, strerror(errno));
c420411f 5121 }
27bc2bce
ILT
5122}
5123
404c2abb
ILT
5124// Map an anonymous block of memory which will later be written to the
5125// file. Return whether the map succeeded.
26736d8e 5126
404c2abb 5127bool
26736d8e
ILT
5128Output_file::map_anonymous()
5129{
404c2abb
ILT
5130 void* base = ::mmap(NULL, this->file_size_, PROT_READ | PROT_WRITE,
5131 MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
88597d34 5132 if (base == MAP_FAILED)
404c2abb 5133 {
88597d34
ILT
5134 base = malloc(this->file_size_);
5135 if (base == NULL)
5136 return false;
5137 memset(base, 0, this->file_size_);
5138 this->map_is_allocated_ = true;
404c2abb 5139 }
88597d34
ILT
5140 this->base_ = static_cast<unsigned char*>(base);
5141 this->map_is_anonymous_ = true;
5142 return true;
26736d8e
ILT
5143}
5144
404c2abb 5145// Map the file into memory. Return whether the mapping succeeded.
aa92d6ed 5146// If WRITABLE is true, map with write access.
27bc2bce 5147
404c2abb 5148bool
aa92d6ed 5149Output_file::map_no_anonymous(bool writable)
27bc2bce 5150{
c420411f 5151 const int o = this->o_;
61ba1cf9 5152
c420411f
ILT
5153 // If the output file is not a regular file, don't try to mmap it;
5154 // instead, we'll mmap a block of memory (an anonymous buffer), and
5155 // then later write the buffer to the file.
5156 void* base;
5157 struct stat statbuf;
42a1b686
ILT
5158 if (o == STDOUT_FILENO || o == STDERR_FILENO
5159 || ::fstat(o, &statbuf) != 0
516cb3d0
ILT
5160 || !S_ISREG(statbuf.st_mode)
5161 || this->is_temporary_)
404c2abb
ILT
5162 return false;
5163
5164 // Ensure that we have disk space available for the file. If we
5165 // don't do this, it is possible that we will call munmap, close,
5166 // and exit with dirty buffers still in the cache with no assigned
5167 // disk blocks. If the disk is out of space at that point, the
5168 // output file will wind up incomplete, but we will have already
5169 // exited. The alternative to fallocate would be to use fdatasync,
5170 // but that would be a more significant performance hit.
bab9090f
CC
5171 if (writable)
5172 {
7c0640fa 5173 int err = gold_fallocate(o, 0, this->file_size_);
bab9090f
CC
5174 if (err != 0)
5175 gold_fatal(_("%s: %s"), this->name_, strerror(err));
5176 }
404c2abb
ILT
5177
5178 // Map the file into memory.
aa92d6ed
CC
5179 int prot = PROT_READ;
5180 if (writable)
5181 prot |= PROT_WRITE;
5182 base = ::mmap(NULL, this->file_size_, prot, MAP_SHARED, o, 0);
404c2abb
ILT
5183
5184 // The mmap call might fail because of file system issues: the file
5185 // system might not support mmap at all, or it might not support
5186 // mmap with PROT_WRITE.
61ba1cf9 5187 if (base == MAP_FAILED)
404c2abb
ILT
5188 return false;
5189
5190 this->map_is_anonymous_ = false;
61ba1cf9 5191 this->base_ = static_cast<unsigned char*>(base);
404c2abb
ILT
5192 return true;
5193}
5194
5195// Map the file into memory.
5196
5197void
5198Output_file::map()
5199{
7c0640fa
CC
5200 if (parameters->options().mmap_output_file()
5201 && this->map_no_anonymous(true))
404c2abb
ILT
5202 return;
5203
5204 // The mmap call might fail because of file system issues: the file
5205 // system might not support mmap at all, or it might not support
5206 // mmap with PROT_WRITE. I'm not sure which errno values we will
5207 // see in all cases, so if the mmap fails for any reason and we
5208 // don't care about file contents, try for an anonymous map.
5209 if (this->map_anonymous())
5210 return;
5211
5212 gold_fatal(_("%s: mmap: failed to allocate %lu bytes for output file: %s"),
eb426534
RM
5213 this->name_, static_cast<unsigned long>(this->file_size_),
5214 strerror(errno));
61ba1cf9
ILT
5215}
5216
c420411f 5217// Unmap the file from memory.
61ba1cf9
ILT
5218
5219void
c420411f 5220Output_file::unmap()
61ba1cf9 5221{
88597d34
ILT
5222 if (this->map_is_anonymous_)
5223 {
5224 // We've already written out the data, so there is no reason to
5225 // waste time unmapping or freeing the memory.
5226 }
5227 else
5228 {
5229 if (::munmap(this->base_, this->file_size_) < 0)
5230 gold_error(_("%s: munmap: %s"), this->name_, strerror(errno));
5231 }
61ba1cf9 5232 this->base_ = NULL;
c420411f
ILT
5233}
5234
5235// Close the output file.
5236
5237void
5238Output_file::close()
5239{
5240 // If the map isn't file-backed, we need to write it now.
516cb3d0 5241 if (this->map_is_anonymous_ && !this->is_temporary_)
c420411f
ILT
5242 {
5243 size_t bytes_to_write = this->file_size_;
6d1e3092 5244 size_t offset = 0;
c420411f 5245 while (bytes_to_write > 0)
eb426534
RM
5246 {
5247 ssize_t bytes_written = ::write(this->o_, this->base_ + offset,
5248 bytes_to_write);
5249 if (bytes_written == 0)
5250 gold_error(_("%s: write: unexpected 0 return-value"), this->name_);
5251 else if (bytes_written < 0)
5252 gold_error(_("%s: write: %s"), this->name_, strerror(errno));
5253 else
5254 {
5255 bytes_to_write -= bytes_written;
5256 offset += bytes_written;
5257 }
5258 }
c420411f
ILT
5259 }
5260 this->unmap();
61ba1cf9 5261
42a1b686 5262 // We don't close stdout or stderr
516cb3d0
ILT
5263 if (this->o_ != STDOUT_FILENO
5264 && this->o_ != STDERR_FILENO
5265 && !this->is_temporary_)
42a1b686
ILT
5266 if (::close(this->o_) < 0)
5267 gold_error(_("%s: close: %s"), this->name_, strerror(errno));
61ba1cf9 5268 this->o_ = -1;
a2fb1b05
ILT
5269}
5270
5271// Instantiate the templates we need. We could use the configure
5272// script to restrict this to only the ones for implemented targets.
5273
193a53d9 5274#ifdef HAVE_TARGET_32_LITTLE
a2fb1b05
ILT
5275template
5276off_t
5277Output_section::add_input_section<32, false>(
6e9ba2ca 5278 Layout* layout,
6fa2a40b 5279 Sized_relobj_file<32, false>* object,
2ea97941 5280 unsigned int shndx,
a2fb1b05 5281 const char* secname,
730cdc88 5282 const elfcpp::Shdr<32, false>& shdr,
a445fddf
ILT
5283 unsigned int reloc_shndx,
5284 bool have_sections_script);
193a53d9 5285#endif
a2fb1b05 5286
193a53d9 5287#ifdef HAVE_TARGET_32_BIG
a2fb1b05
ILT
5288template
5289off_t
5290Output_section::add_input_section<32, true>(
6e9ba2ca 5291 Layout* layout,
6fa2a40b 5292 Sized_relobj_file<32, true>* object,
2ea97941 5293 unsigned int shndx,
a2fb1b05 5294 const char* secname,
730cdc88 5295 const elfcpp::Shdr<32, true>& shdr,
a445fddf
ILT
5296 unsigned int reloc_shndx,
5297 bool have_sections_script);
193a53d9 5298#endif
a2fb1b05 5299
193a53d9 5300#ifdef HAVE_TARGET_64_LITTLE
a2fb1b05
ILT
5301template
5302off_t
5303Output_section::add_input_section<64, false>(
6e9ba2ca 5304 Layout* layout,
6fa2a40b 5305 Sized_relobj_file<64, false>* object,
2ea97941 5306 unsigned int shndx,
a2fb1b05 5307 const char* secname,
730cdc88 5308 const elfcpp::Shdr<64, false>& shdr,
a445fddf
ILT
5309 unsigned int reloc_shndx,
5310 bool have_sections_script);
193a53d9 5311#endif
a2fb1b05 5312
193a53d9 5313#ifdef HAVE_TARGET_64_BIG
a2fb1b05
ILT
5314template
5315off_t
5316Output_section::add_input_section<64, true>(
6e9ba2ca 5317 Layout* layout,
6fa2a40b 5318 Sized_relobj_file<64, true>* object,
2ea97941 5319 unsigned int shndx,
a2fb1b05 5320 const char* secname,
730cdc88 5321 const elfcpp::Shdr<64, true>& shdr,
a445fddf
ILT
5322 unsigned int reloc_shndx,
5323 bool have_sections_script);
193a53d9 5324#endif
a2fb1b05 5325
bbbfea06
CC
5326#ifdef HAVE_TARGET_32_LITTLE
5327template
5328class Output_reloc<elfcpp::SHT_REL, false, 32, false>;
5329#endif
5330
5331#ifdef HAVE_TARGET_32_BIG
5332template
5333class Output_reloc<elfcpp::SHT_REL, false, 32, true>;
5334#endif
5335
5336#ifdef HAVE_TARGET_64_LITTLE
5337template
5338class Output_reloc<elfcpp::SHT_REL, false, 64, false>;
5339#endif
5340
5341#ifdef HAVE_TARGET_64_BIG
5342template
5343class Output_reloc<elfcpp::SHT_REL, false, 64, true>;
5344#endif
5345
5346#ifdef HAVE_TARGET_32_LITTLE
5347template
5348class Output_reloc<elfcpp::SHT_REL, true, 32, false>;
5349#endif
5350
5351#ifdef HAVE_TARGET_32_BIG
5352template
5353class Output_reloc<elfcpp::SHT_REL, true, 32, true>;
5354#endif
5355
5356#ifdef HAVE_TARGET_64_LITTLE
5357template
5358class Output_reloc<elfcpp::SHT_REL, true, 64, false>;
5359#endif
5360
5361#ifdef HAVE_TARGET_64_BIG
5362template
5363class Output_reloc<elfcpp::SHT_REL, true, 64, true>;
5364#endif
5365
5366#ifdef HAVE_TARGET_32_LITTLE
5367template
5368class Output_reloc<elfcpp::SHT_RELA, false, 32, false>;
5369#endif
5370
5371#ifdef HAVE_TARGET_32_BIG
5372template
5373class Output_reloc<elfcpp::SHT_RELA, false, 32, true>;
5374#endif
5375
5376#ifdef HAVE_TARGET_64_LITTLE
5377template
5378class Output_reloc<elfcpp::SHT_RELA, false, 64, false>;
5379#endif
5380
5381#ifdef HAVE_TARGET_64_BIG
5382template
5383class Output_reloc<elfcpp::SHT_RELA, false, 64, true>;
5384#endif
5385
5386#ifdef HAVE_TARGET_32_LITTLE
5387template
5388class Output_reloc<elfcpp::SHT_RELA, true, 32, false>;
5389#endif
5390
5391#ifdef HAVE_TARGET_32_BIG
5392template
5393class Output_reloc<elfcpp::SHT_RELA, true, 32, true>;
5394#endif
5395
5396#ifdef HAVE_TARGET_64_LITTLE
5397template
5398class Output_reloc<elfcpp::SHT_RELA, true, 64, false>;
5399#endif
5400
5401#ifdef HAVE_TARGET_64_BIG
5402template
5403class Output_reloc<elfcpp::SHT_RELA, true, 64, true>;
5404#endif
5405
193a53d9 5406#ifdef HAVE_TARGET_32_LITTLE
c06b7b0b
ILT
5407template
5408class Output_data_reloc<elfcpp::SHT_REL, false, 32, false>;
193a53d9 5409#endif
c06b7b0b 5410
193a53d9 5411#ifdef HAVE_TARGET_32_BIG
c06b7b0b
ILT
5412template
5413class Output_data_reloc<elfcpp::SHT_REL, false, 32, true>;
193a53d9 5414#endif
c06b7b0b 5415
193a53d9 5416#ifdef HAVE_TARGET_64_LITTLE
c06b7b0b
ILT
5417template
5418class Output_data_reloc<elfcpp::SHT_REL, false, 64, false>;
193a53d9 5419#endif
c06b7b0b 5420
193a53d9 5421#ifdef HAVE_TARGET_64_BIG
c06b7b0b
ILT
5422template
5423class Output_data_reloc<elfcpp::SHT_REL, false, 64, true>;
193a53d9 5424#endif
c06b7b0b 5425
193a53d9 5426#ifdef HAVE_TARGET_32_LITTLE
c06b7b0b
ILT
5427template
5428class Output_data_reloc<elfcpp::SHT_REL, true, 32, false>;
193a53d9 5429#endif
c06b7b0b 5430
193a53d9 5431#ifdef HAVE_TARGET_32_BIG
c06b7b0b
ILT
5432template
5433class Output_data_reloc<elfcpp::SHT_REL, true, 32, true>;
193a53d9 5434#endif
c06b7b0b 5435
193a53d9 5436#ifdef HAVE_TARGET_64_LITTLE
c06b7b0b
ILT
5437template
5438class Output_data_reloc<elfcpp::SHT_REL, true, 64, false>;
193a53d9 5439#endif
c06b7b0b 5440
193a53d9 5441#ifdef HAVE_TARGET_64_BIG
c06b7b0b
ILT
5442template
5443class Output_data_reloc<elfcpp::SHT_REL, true, 64, true>;
193a53d9 5444#endif
c06b7b0b 5445
193a53d9 5446#ifdef HAVE_TARGET_32_LITTLE
c06b7b0b
ILT
5447template
5448class Output_data_reloc<elfcpp::SHT_RELA, false, 32, false>;
193a53d9 5449#endif
c06b7b0b 5450
193a53d9 5451#ifdef HAVE_TARGET_32_BIG
c06b7b0b
ILT
5452template
5453class Output_data_reloc<elfcpp::SHT_RELA, false, 32, true>;
193a53d9 5454#endif
c06b7b0b 5455
193a53d9 5456#ifdef HAVE_TARGET_64_LITTLE
c06b7b0b
ILT
5457template
5458class Output_data_reloc<elfcpp::SHT_RELA, false, 64, false>;
193a53d9 5459#endif
c06b7b0b 5460
193a53d9 5461#ifdef HAVE_TARGET_64_BIG
c06b7b0b
ILT
5462template
5463class Output_data_reloc<elfcpp::SHT_RELA, false, 64, true>;
193a53d9 5464#endif
c06b7b0b 5465
193a53d9 5466#ifdef HAVE_TARGET_32_LITTLE
c06b7b0b
ILT
5467template
5468class Output_data_reloc<elfcpp::SHT_RELA, true, 32, false>;
193a53d9 5469#endif
c06b7b0b 5470
193a53d9 5471#ifdef HAVE_TARGET_32_BIG
c06b7b0b
ILT
5472template
5473class Output_data_reloc<elfcpp::SHT_RELA, true, 32, true>;
193a53d9 5474#endif
c06b7b0b 5475
193a53d9 5476#ifdef HAVE_TARGET_64_LITTLE
c06b7b0b
ILT
5477template
5478class Output_data_reloc<elfcpp::SHT_RELA, true, 64, false>;
193a53d9 5479#endif
c06b7b0b 5480
193a53d9 5481#ifdef HAVE_TARGET_64_BIG
c06b7b0b
ILT
5482template
5483class Output_data_reloc<elfcpp::SHT_RELA, true, 64, true>;
193a53d9 5484#endif
c06b7b0b 5485
6a74a719
ILT
5486#ifdef HAVE_TARGET_32_LITTLE
5487template
5488class Output_relocatable_relocs<elfcpp::SHT_REL, 32, false>;
5489#endif
5490
5491#ifdef HAVE_TARGET_32_BIG
5492template
5493class Output_relocatable_relocs<elfcpp::SHT_REL, 32, true>;
5494#endif
5495
5496#ifdef HAVE_TARGET_64_LITTLE
5497template
5498class Output_relocatable_relocs<elfcpp::SHT_REL, 64, false>;
5499#endif
5500
5501#ifdef HAVE_TARGET_64_BIG
5502template
5503class Output_relocatable_relocs<elfcpp::SHT_REL, 64, true>;
5504#endif
5505
5506#ifdef HAVE_TARGET_32_LITTLE
5507template
5508class Output_relocatable_relocs<elfcpp::SHT_RELA, 32, false>;
5509#endif
5510
5511#ifdef HAVE_TARGET_32_BIG
5512template
5513class Output_relocatable_relocs<elfcpp::SHT_RELA, 32, true>;
5514#endif
5515
5516#ifdef HAVE_TARGET_64_LITTLE
5517template
5518class Output_relocatable_relocs<elfcpp::SHT_RELA, 64, false>;
5519#endif
5520
5521#ifdef HAVE_TARGET_64_BIG
5522template
5523class Output_relocatable_relocs<elfcpp::SHT_RELA, 64, true>;
5524#endif
5525
5526#ifdef HAVE_TARGET_32_LITTLE
5527template
5528class Output_data_group<32, false>;
5529#endif
5530
5531#ifdef HAVE_TARGET_32_BIG
5532template
5533class Output_data_group<32, true>;
5534#endif
5535
5536#ifdef HAVE_TARGET_64_LITTLE
5537template
5538class Output_data_group<64, false>;
5539#endif
5540
5541#ifdef HAVE_TARGET_64_BIG
5542template
5543class Output_data_group<64, true>;
5544#endif
5545
ead1e424 5546template
dbe717ef 5547class Output_data_got<32, false>;
ead1e424
ILT
5548
5549template
dbe717ef 5550class Output_data_got<32, true>;
ead1e424
ILT
5551
5552template
dbe717ef 5553class Output_data_got<64, false>;
ead1e424
ILT
5554
5555template
dbe717ef 5556class Output_data_got<64, true>;
ead1e424 5557
a2fb1b05 5558} // End namespace gold.
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