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[deliverable/binutils-gdb.git] / gold / layout.cc
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1// layout.cc -- lay out output file sections for gold
2
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3// Copyright 2006, 2007 Free Software Foundation, Inc.
4// Written by Ian Lance Taylor <iant@google.com>.
5
6// This file is part of gold.
7
8// This program is free software; you can redistribute it and/or modify
9// it under the terms of the GNU General Public License as published by
10// the Free Software Foundation; either version 3 of the License, or
11// (at your option) any later version.
12
13// This program is distributed in the hope that it will be useful,
14// but WITHOUT ANY WARRANTY; without even the implied warranty of
15// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16// GNU General Public License for more details.
17
18// You should have received a copy of the GNU General Public License
19// along with this program; if not, write to the Free Software
20// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21// MA 02110-1301, USA.
22
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23#include "gold.h"
24
a2fb1b05 25#include <cstring>
54dc6425 26#include <algorithm>
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27#include <iostream>
28#include <utility>
29
7e1edb90 30#include "parameters.h"
a2fb1b05 31#include "output.h"
f6ce93d6 32#include "symtab.h"
a3ad94ed 33#include "dynobj.h"
3151305a 34#include "ehframe.h"
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35#include "layout.h"
36
37namespace gold
38{
39
92e059d8 40// Layout_task_runner methods.
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41
42// Lay out the sections. This is called after all the input objects
43// have been read.
44
45void
92e059d8 46Layout_task_runner::run(Workqueue* workqueue)
a2fb1b05 47{
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48 off_t file_size = this->layout_->finalize(this->input_objects_,
49 this->symtab_);
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50
51 // Now we know the final size of the output file and we know where
52 // each piece of information goes.
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53 Output_file* of = new Output_file(this->options_,
54 this->input_objects_->target());
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55 of->open(file_size);
56
57 // Queue up the final set of tasks.
58 gold::queue_final_tasks(this->options_, this->input_objects_,
12e14209 59 this->symtab_, this->layout_, workqueue, of);
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60}
61
62// Layout methods.
63
54dc6425 64Layout::Layout(const General_options& options)
a3ad94ed 65 : options_(options), namepool_(), sympool_(), dynpool_(), signatures_(),
61ba1cf9 66 section_name_map_(), segment_list_(), section_list_(),
a3ad94ed 67 unattached_section_list_(), special_output_list_(),
14b31740 68 tls_segment_(NULL), symtab_section_(NULL),
3151305a 69 dynsym_section_(NULL), dynamic_section_(NULL), dynamic_data_(NULL),
e44fcf3b 70 eh_frame_section_(NULL), output_file_size_(-1)
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71{
72 // Make space for more than enough segments for a typical file.
73 // This is just for efficiency--it's OK if we wind up needing more.
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74 this->segment_list_.reserve(12);
75
76 // We expect three unattached Output_data objects: the file header,
77 // the segment headers, and the section headers.
78 this->special_output_list_.reserve(3);
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79}
80
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81// Hash a key we use to look up an output section mapping.
82
83size_t
84Layout::Hash_key::operator()(const Layout::Key& k) const
85{
f0641a0b 86 return k.first + k.second.first + k.second.second;
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87}
88
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89// Return whether PREFIX is a prefix of STR.
90
91static inline bool
92is_prefix_of(const char* prefix, const char* str)
93{
94 return strncmp(prefix, str, strlen(prefix)) == 0;
95}
96
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97// Whether to include this section in the link.
98
99template<int size, bool big_endian>
100bool
9e2dcb77 101Layout::include_section(Object*, const char* name,
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102 const elfcpp::Shdr<size, big_endian>& shdr)
103{
104 // Some section types are never linked. Some are only linked when
105 // doing a relocateable link.
106 switch (shdr.get_sh_type())
107 {
108 case elfcpp::SHT_NULL:
109 case elfcpp::SHT_SYMTAB:
110 case elfcpp::SHT_DYNSYM:
111 case elfcpp::SHT_STRTAB:
112 case elfcpp::SHT_HASH:
113 case elfcpp::SHT_DYNAMIC:
114 case elfcpp::SHT_SYMTAB_SHNDX:
115 return false;
116
117 case elfcpp::SHT_RELA:
118 case elfcpp::SHT_REL:
119 case elfcpp::SHT_GROUP:
7e1edb90 120 return parameters->output_is_object();
a2fb1b05 121
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122 case elfcpp::SHT_PROGBITS:
123 if (parameters->strip_debug()
124 && (shdr.get_sh_flags() & elfcpp::SHF_ALLOC) == 0)
125 {
126 // Debugging sections can only be recognized by name.
127 if (is_prefix_of(".debug", name)
128 || is_prefix_of(".gnu.linkonce.wi.", name)
129 || is_prefix_of(".line", name)
130 || is_prefix_of(".stab", name))
131 return false;
132 }
133 return true;
134
a2fb1b05 135 default:
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136 return true;
137 }
138}
139
ead1e424 140// Return an output section named NAME, or NULL if there is none.
a2fb1b05 141
a2fb1b05 142Output_section*
ead1e424 143Layout::find_output_section(const char* name) const
a2fb1b05 144{
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145 for (Section_name_map::const_iterator p = this->section_name_map_.begin();
146 p != this->section_name_map_.end();
147 ++p)
f0641a0b 148 if (strcmp(p->second->name(), name) == 0)
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149 return p->second;
150 return NULL;
151}
a2fb1b05 152
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153// Return an output segment of type TYPE, with segment flags SET set
154// and segment flags CLEAR clear. Return NULL if there is none.
a2fb1b05 155
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156Output_segment*
157Layout::find_output_segment(elfcpp::PT type, elfcpp::Elf_Word set,
158 elfcpp::Elf_Word clear) const
159{
160 for (Segment_list::const_iterator p = this->segment_list_.begin();
161 p != this->segment_list_.end();
162 ++p)
163 if (static_cast<elfcpp::PT>((*p)->type()) == type
164 && ((*p)->flags() & set) == set
165 && ((*p)->flags() & clear) == 0)
166 return *p;
167 return NULL;
168}
a2fb1b05 169
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170// Return the output section to use for section NAME with type TYPE
171// and section flags FLAGS.
a2fb1b05 172
ead1e424 173Output_section*
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174Layout::get_output_section(const char* name, Stringpool::Key name_key,
175 elfcpp::Elf_Word type, elfcpp::Elf_Xword flags)
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176{
177 // We should ignore some flags.
178 flags &= ~ (elfcpp::SHF_INFO_LINK
179 | elfcpp::SHF_LINK_ORDER
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180 | elfcpp::SHF_GROUP
181 | elfcpp::SHF_MERGE
182 | elfcpp::SHF_STRINGS);
a2fb1b05 183
f0641a0b 184 const Key key(name_key, std::make_pair(type, flags));
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185 const std::pair<Key, Output_section*> v(key, NULL);
186 std::pair<Section_name_map::iterator, bool> ins(
187 this->section_name_map_.insert(v));
188
a2fb1b05 189 if (!ins.second)
ead1e424 190 return ins.first->second;
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191 else
192 {
193 // This is the first time we've seen this name/type/flags
194 // combination.
ead1e424 195 Output_section* os = this->make_output_section(name, type, flags);
a2fb1b05 196 ins.first->second = os;
ead1e424 197 return os;
a2fb1b05 198 }
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199}
200
201// Return the output section to use for input section SHNDX, with name
202// NAME, with header HEADER, from object OBJECT. Set *OFF to the
203// offset of this input section without the output section.
204
205template<int size, bool big_endian>
206Output_section*
f6ce93d6 207Layout::layout(Relobj* object, unsigned int shndx, const char* name,
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208 const elfcpp::Shdr<size, big_endian>& shdr, off_t* off)
209{
210 if (!this->include_section(object, name, shdr))
211 return NULL;
212
213 // If we are not doing a relocateable link, choose the name to use
214 // for the output section.
215 size_t len = strlen(name);
7e1edb90 216 if (!parameters->output_is_object())
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217 name = Layout::output_section_name(name, &len);
218
219 // FIXME: Handle SHF_OS_NONCONFORMING here.
220
221 // Canonicalize the section name.
f0641a0b 222 Stringpool::Key name_key;
cfd73a4e 223 name = this->namepool_.add_prefix(name, len, &name_key);
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224
225 // Find the output section. The output section is selected based on
226 // the section name, type, and flags.
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227 Output_section* os = this->get_output_section(name, name_key,
228 shdr.get_sh_type(),
ead1e424 229 shdr.get_sh_flags());
a2fb1b05 230
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231 // Special GNU handling of sections named .eh_frame.
232 if (!parameters->output_is_object()
233 && strcmp(name, ".eh_frame") == 0
234 && shdr.get_sh_size() > 0
235 && shdr.get_sh_type() == elfcpp::SHT_PROGBITS
236 && shdr.get_sh_flags() == elfcpp::SHF_ALLOC)
237 {
238 this->layout_eh_frame(object, shndx, name, shdr, os, off);
239 return os;
240 }
241
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242 // FIXME: Handle SHF_LINK_ORDER somewhere.
243
ead1e424 244 *off = os->add_input_section(object, shndx, name, shdr);
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245
246 return os;
247}
248
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249// Special GNU handling of sections named .eh_frame. They will
250// normally hold exception frame data.
251
252template<int size, bool big_endian>
253void
254Layout::layout_eh_frame(Relobj* object,
255 unsigned int shndx,
256 const char* name,
257 const elfcpp::Shdr<size, big_endian>& shdr,
258 Output_section* os, off_t* off)
259{
260 if (this->eh_frame_section_ == NULL)
261 {
262 this->eh_frame_section_ = os;
263
264 if (this->options_.create_eh_frame_hdr())
265 {
266 Stringpool::Key hdr_name_key;
267 const char* hdr_name = this->namepool_.add(".eh_frame_hdr",
cfd73a4e 268 false,
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269 &hdr_name_key);
270 Output_section* hdr_os =
271 this->get_output_section(hdr_name, hdr_name_key,
272 elfcpp::SHT_PROGBITS,
273 elfcpp::SHF_ALLOC);
274
9025d29d 275 Eh_frame_hdr* hdr_posd = new Eh_frame_hdr(os);
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276 hdr_os->add_output_section_data(hdr_posd);
277
278 Output_segment* hdr_oseg =
279 new Output_segment(elfcpp::PT_GNU_EH_FRAME, elfcpp::PF_R);
280 this->segment_list_.push_back(hdr_oseg);
281 hdr_oseg->add_output_section(hdr_os, elfcpp::PF_R);
282 }
283 }
284
285 gold_assert(this->eh_frame_section_ == os);
286
287 *off = os->add_input_section(object, shndx, name, shdr);
288}
289
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290// Add POSD to an output section using NAME, TYPE, and FLAGS.
291
292void
293Layout::add_output_section_data(const char* name, elfcpp::Elf_Word type,
294 elfcpp::Elf_Xword flags,
295 Output_section_data* posd)
296{
297 // Canonicalize the name.
f0641a0b 298 Stringpool::Key name_key;
cfd73a4e 299 name = this->namepool_.add(name, true, &name_key);
ead1e424 300
f0641a0b 301 Output_section* os = this->get_output_section(name, name_key, type, flags);
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302 os->add_output_section_data(posd);
303}
304
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305// Map section flags to segment flags.
306
307elfcpp::Elf_Word
308Layout::section_flags_to_segment(elfcpp::Elf_Xword flags)
309{
310 elfcpp::Elf_Word ret = elfcpp::PF_R;
311 if ((flags & elfcpp::SHF_WRITE) != 0)
312 ret |= elfcpp::PF_W;
313 if ((flags & elfcpp::SHF_EXECINSTR) != 0)
314 ret |= elfcpp::PF_X;
315 return ret;
316}
317
318// Make a new Output_section, and attach it to segments as
319// appropriate.
320
321Output_section*
322Layout::make_output_section(const char* name, elfcpp::Elf_Word type,
323 elfcpp::Elf_Xword flags)
324{
b8e6aad9 325 Output_section* os = new Output_section(name, type, flags);
a3ad94ed 326 this->section_list_.push_back(os);
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327
328 if ((flags & elfcpp::SHF_ALLOC) == 0)
a3ad94ed 329 this->unattached_section_list_.push_back(os);
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330 else
331 {
332 // This output section goes into a PT_LOAD segment.
333
334 elfcpp::Elf_Word seg_flags = Layout::section_flags_to_segment(flags);
335
336 // The only thing we really care about for PT_LOAD segments is
337 // whether or not they are writable, so that is how we search
338 // for them. People who need segments sorted on some other
339 // basis will have to wait until we implement a mechanism for
340 // them to describe the segments they want.
341
342 Segment_list::const_iterator p;
343 for (p = this->segment_list_.begin();
344 p != this->segment_list_.end();
345 ++p)
346 {
347 if ((*p)->type() == elfcpp::PT_LOAD
348 && ((*p)->flags() & elfcpp::PF_W) == (seg_flags & elfcpp::PF_W))
349 {
75f65a3e 350 (*p)->add_output_section(os, seg_flags);
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351 break;
352 }
353 }
354
355 if (p == this->segment_list_.end())
356 {
357 Output_segment* oseg = new Output_segment(elfcpp::PT_LOAD,
358 seg_flags);
359 this->segment_list_.push_back(oseg);
75f65a3e 360 oseg->add_output_section(os, seg_flags);
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361 }
362
363 // If we see a loadable SHT_NOTE section, we create a PT_NOTE
364 // segment.
365 if (type == elfcpp::SHT_NOTE)
366 {
367 // See if we already have an equivalent PT_NOTE segment.
368 for (p = this->segment_list_.begin();
369 p != segment_list_.end();
370 ++p)
371 {
372 if ((*p)->type() == elfcpp::PT_NOTE
373 && (((*p)->flags() & elfcpp::PF_W)
374 == (seg_flags & elfcpp::PF_W)))
375 {
75f65a3e 376 (*p)->add_output_section(os, seg_flags);
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377 break;
378 }
379 }
380
381 if (p == this->segment_list_.end())
382 {
383 Output_segment* oseg = new Output_segment(elfcpp::PT_NOTE,
384 seg_flags);
385 this->segment_list_.push_back(oseg);
75f65a3e 386 oseg->add_output_section(os, seg_flags);
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387 }
388 }
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389
390 // If we see a loadable SHF_TLS section, we create a PT_TLS
92e059d8 391 // segment. There can only be one such segment.
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392 if ((flags & elfcpp::SHF_TLS) != 0)
393 {
92e059d8 394 if (this->tls_segment_ == NULL)
54dc6425 395 {
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396 this->tls_segment_ = new Output_segment(elfcpp::PT_TLS,
397 seg_flags);
398 this->segment_list_.push_back(this->tls_segment_);
54dc6425 399 }
92e059d8 400 this->tls_segment_->add_output_section(os, seg_flags);
54dc6425 401 }
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402 }
403
404 return os;
405}
406
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407// Create the dynamic sections which are needed before we read the
408// relocs.
409
410void
411Layout::create_initial_dynamic_sections(const Input_objects* input_objects,
412 Symbol_table* symtab)
413{
436ca963 414 if (parameters->doing_static_link())
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415 return;
416
cfd73a4e 417 const char* dynamic_name = this->namepool_.add(".dynamic", false, NULL);
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418 this->dynamic_section_ = this->make_output_section(dynamic_name,
419 elfcpp::SHT_DYNAMIC,
420 (elfcpp::SHF_ALLOC
421 | elfcpp::SHF_WRITE));
422
14b31740 423 symtab->define_in_output_data(input_objects->target(), "_DYNAMIC", NULL,
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424 this->dynamic_section_, 0, 0,
425 elfcpp::STT_OBJECT, elfcpp::STB_LOCAL,
426 elfcpp::STV_HIDDEN, 0, false, false);
16649710 427
9025d29d 428 this->dynamic_data_ = new Output_data_dynamic(&this->dynpool_);
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429
430 this->dynamic_section_->add_output_section_data(this->dynamic_data_);
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431}
432
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433// For each output section whose name can be represented as C symbol,
434// define __start and __stop symbols for the section. This is a GNU
435// extension.
436
437void
438Layout::define_section_symbols(Symbol_table* symtab, const Target* target)
439{
440 for (Section_list::const_iterator p = this->section_list_.begin();
441 p != this->section_list_.end();
442 ++p)
443 {
444 const char* const name = (*p)->name();
445 if (name[strspn(name,
446 ("0123456789"
447 "ABCDEFGHIJKLMNOPWRSTUVWXYZ"
448 "abcdefghijklmnopqrstuvwxyz"
449 "_"))]
450 == '\0')
451 {
452 const std::string name_string(name);
453 const std::string start_name("__start_" + name_string);
454 const std::string stop_name("__stop_" + name_string);
455
456 symtab->define_in_output_data(target,
457 start_name.c_str(),
458 NULL, // version
459 *p,
460 0, // value
461 0, // symsize
462 elfcpp::STT_NOTYPE,
463 elfcpp::STB_GLOBAL,
464 elfcpp::STV_DEFAULT,
465 0, // nonvis
466 false, // offset_is_from_end
467 false); // only_if_ref
468
469 symtab->define_in_output_data(target,
470 stop_name.c_str(),
471 NULL, // version
472 *p,
473 0, // value
474 0, // symsize
475 elfcpp::STT_NOTYPE,
476 elfcpp::STB_GLOBAL,
477 elfcpp::STV_DEFAULT,
478 0, // nonvis
479 true, // offset_is_from_end
480 false); // only_if_ref
481 }
482 }
483}
484
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485// Find the first read-only PT_LOAD segment, creating one if
486// necessary.
54dc6425 487
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488Output_segment*
489Layout::find_first_load_seg()
54dc6425 490{
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491 for (Segment_list::const_iterator p = this->segment_list_.begin();
492 p != this->segment_list_.end();
493 ++p)
494 {
495 if ((*p)->type() == elfcpp::PT_LOAD
496 && ((*p)->flags() & elfcpp::PF_R) != 0
497 && ((*p)->flags() & elfcpp::PF_W) == 0)
498 return *p;
499 }
500
501 Output_segment* load_seg = new Output_segment(elfcpp::PT_LOAD, elfcpp::PF_R);
502 this->segment_list_.push_back(load_seg);
503 return load_seg;
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504}
505
506// Finalize the layout. When this is called, we have created all the
507// output sections and all the output segments which are based on
508// input sections. We have several things to do, and we have to do
509// them in the right order, so that we get the right results correctly
510// and efficiently.
511
512// 1) Finalize the list of output segments and create the segment
513// table header.
514
515// 2) Finalize the dynamic symbol table and associated sections.
516
517// 3) Determine the final file offset of all the output segments.
518
519// 4) Determine the final file offset of all the SHF_ALLOC output
520// sections.
521
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522// 5) Create the symbol table sections and the section name table
523// section.
524
525// 6) Finalize the symbol table: set symbol values to their final
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526// value and make a final determination of which symbols are going
527// into the output symbol table.
528
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529// 7) Create the section table header.
530
531// 8) Determine the final file offset of all the output sections which
532// are not SHF_ALLOC, including the section table header.
533
534// 9) Finalize the ELF file header.
535
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536// This function returns the size of the output file.
537
538off_t
539Layout::finalize(const Input_objects* input_objects, Symbol_table* symtab)
54dc6425 540{
5a6f7e2d 541 Target* const target = input_objects->target();
dbe717ef 542
7e1edb90 543 target->finalize_sections(this);
5a6f7e2d 544
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545 this->create_note_section();
546
dbe717ef 547 Output_segment* phdr_seg = NULL;
436ca963 548 if (!parameters->doing_static_link())
54dc6425 549 {
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550 // There was a dynamic object in the link. We need to create
551 // some information for the dynamic linker.
552
553 // Create the PT_PHDR segment which will hold the program
554 // headers.
555 phdr_seg = new Output_segment(elfcpp::PT_PHDR, elfcpp::PF_R);
556 this->segment_list_.push_back(phdr_seg);
557
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558 // Create the dynamic symbol table, including the hash table.
559 Output_section* dynstr;
560 std::vector<Symbol*> dynamic_symbols;
561 unsigned int local_dynamic_count;
562 Versions versions;
563 this->create_dynamic_symtab(target, symtab, &dynstr,
564 &local_dynamic_count, &dynamic_symbols,
565 &versions);
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566
567 // Create the .interp section to hold the name of the
568 // interpreter, and put it in a PT_INTERP segment.
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569 this->create_interp(target);
570
571 // Finish the .dynamic section to hold the dynamic data, and put
572 // it in a PT_DYNAMIC segment.
16649710 573 this->finish_dynamic_section(input_objects, symtab);
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574
575 // We should have added everything we need to the dynamic string
576 // table.
577 this->dynpool_.set_string_offsets();
578
579 // Create the version sections. We can't do this until the
580 // dynamic string table is complete.
46fe1623 581 this->create_version_sections(&versions, symtab, local_dynamic_count,
14b31740 582 dynamic_symbols, dynstr);
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583 }
584
585 // FIXME: Handle PT_GNU_STACK.
586
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587 Output_segment* load_seg = this->find_first_load_seg();
588
589 // Lay out the segment headers.
75f65a3e 590 Output_segment_headers* segment_headers;
9025d29d 591 segment_headers = new Output_segment_headers(this->segment_list_);
75f65a3e 592 load_seg->add_initial_output_data(segment_headers);
61ba1cf9 593 this->special_output_list_.push_back(segment_headers);
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594 if (phdr_seg != NULL)
595 phdr_seg->add_initial_output_data(segment_headers);
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596
597 // Lay out the file header.
598 Output_file_header* file_header;
9025d29d 599 file_header = new Output_file_header(target, symtab, segment_headers);
75f65a3e 600 load_seg->add_initial_output_data(file_header);
61ba1cf9 601 this->special_output_list_.push_back(file_header);
75f65a3e 602
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603 // We set the output section indexes in set_segment_offsets and
604 // set_section_offsets.
605 unsigned int shndx = 1;
606
607 // Set the file offsets of all the segments, and all the sections
608 // they contain.
a3ad94ed 609 off_t off = this->set_segment_offsets(target, load_seg, &shndx);
75f65a3e
ILT
610
611 // Create the symbol table sections.
9025d29d 612 this->create_symtab_sections(input_objects, symtab, &off);
75f65a3e
ILT
613
614 // Create the .shstrtab section.
615 Output_section* shstrtab_section = this->create_shstrtab();
616
617 // Set the file offsets of all the sections not associated with
618 // segments.
ead1e424
ILT
619 off = this->set_section_offsets(off, &shndx);
620
75f65a3e 621 // Create the section table header.
9025d29d 622 Output_section_headers* oshdrs = this->create_shdrs(&off);
75f65a3e
ILT
623
624 file_header->set_section_info(oshdrs, shstrtab_section);
625
626 // Now we know exactly where everything goes in the output file.
a3ad94ed 627 Output_data::layout_complete();
75f65a3e 628
e44fcf3b
ILT
629 this->output_file_size_ = off;
630
75f65a3e
ILT
631 return off;
632}
633
4f211c8b
ILT
634// Create a .note section for an executable or shared library. This
635// records the version of gold used to create the binary.
636
637void
638Layout::create_note_section()
639{
640 if (parameters->output_is_object())
641 return;
642
e2305dc0
ILT
643 // Authorities all agree that the values in a .note field should
644 // be aligned on 4-byte boundaries for 32-bit binaries. However,
645 // they differ on what the alignment is for 64-bit binaries.
646 // The GABI says unambiguously they take 8-byte alignment:
647 // http://sco.com/developers/gabi/latest/ch5.pheader.html#note_section
648 // Other documentation says alignment should always be 4 bytes:
649 // http://www.netbsd.org/docs/kernel/elf-notes.html#note-format
650 // GNU ld and GNU readelf both support the latter (at least as of
651 // version 2.16.91), and glibc always generates the latter for
652 // .note.ABI-tag (as of version 1.6), so that's the one we go with
653 // here.
654#ifdef GABI_FORMAT_FOR_DOTNOTE_SECTION // this is not defined by default
4f211c8b 655 const int size = parameters->get_size();
e2305dc0
ILT
656#else
657 const int size = 32;
658#endif
4f211c8b
ILT
659
660 // The contents of the .note section.
661 const char* name = "GNU";
662 std::string desc(std::string("gold ") + gold::get_version_string());
663 size_t namesz = strlen(name) + 1;
664 size_t aligned_namesz = align_address(namesz, size / 8);
665 size_t descsz = desc.length() + 1;
666 size_t aligned_descsz = align_address(descsz, size / 8);
667 const int note_type = 4;
668
669 size_t notesz = 3 * (size / 8) + aligned_namesz + aligned_descsz;
670
671 unsigned char buffer[128];
672 gold_assert(sizeof buffer >= notesz);
673 memset(buffer, 0, notesz);
674
675 bool is_big_endian = parameters->is_big_endian();
676
677 if (size == 32)
678 {
679 if (!is_big_endian)
680 {
681 elfcpp::Swap<32, false>::writeval(buffer, namesz);
682 elfcpp::Swap<32, false>::writeval(buffer + 4, descsz);
683 elfcpp::Swap<32, false>::writeval(buffer + 8, note_type);
684 }
685 else
686 {
687 elfcpp::Swap<32, true>::writeval(buffer, namesz);
688 elfcpp::Swap<32, true>::writeval(buffer + 4, descsz);
689 elfcpp::Swap<32, true>::writeval(buffer + 8, note_type);
690 }
691 }
692 else if (size == 64)
693 {
694 if (!is_big_endian)
695 {
696 elfcpp::Swap<64, false>::writeval(buffer, namesz);
697 elfcpp::Swap<64, false>::writeval(buffer + 8, descsz);
698 elfcpp::Swap<64, false>::writeval(buffer + 16, note_type);
699 }
700 else
701 {
702 elfcpp::Swap<64, true>::writeval(buffer, namesz);
703 elfcpp::Swap<64, true>::writeval(buffer + 8, descsz);
704 elfcpp::Swap<64, true>::writeval(buffer + 16, note_type);
705 }
706 }
707 else
708 gold_unreachable();
709
710 memcpy(buffer + 3 * (size / 8), name, namesz);
711 memcpy(buffer + 3 * (size / 8) + aligned_namesz, desc.data(), descsz);
712
cfd73a4e 713 const char* note_name = this->namepool_.add(".note", false, NULL);
4f211c8b
ILT
714 Output_section* os = this->make_output_section(note_name,
715 elfcpp::SHT_NOTE,
716 0);
717 Output_section_data* posd = new Output_data_const(buffer, notesz,
718 size / 8);
719 os->add_output_section_data(posd);
720}
721
75f65a3e
ILT
722// Return whether SEG1 should be before SEG2 in the output file. This
723// is based entirely on the segment type and flags. When this is
724// called the segment addresses has normally not yet been set.
725
726bool
727Layout::segment_precedes(const Output_segment* seg1,
728 const Output_segment* seg2)
729{
730 elfcpp::Elf_Word type1 = seg1->type();
731 elfcpp::Elf_Word type2 = seg2->type();
732
733 // The single PT_PHDR segment is required to precede any loadable
734 // segment. We simply make it always first.
735 if (type1 == elfcpp::PT_PHDR)
736 {
a3ad94ed 737 gold_assert(type2 != elfcpp::PT_PHDR);
75f65a3e
ILT
738 return true;
739 }
740 if (type2 == elfcpp::PT_PHDR)
741 return false;
742
743 // The single PT_INTERP segment is required to precede any loadable
744 // segment. We simply make it always second.
745 if (type1 == elfcpp::PT_INTERP)
746 {
a3ad94ed 747 gold_assert(type2 != elfcpp::PT_INTERP);
75f65a3e
ILT
748 return true;
749 }
750 if (type2 == elfcpp::PT_INTERP)
751 return false;
752
753 // We then put PT_LOAD segments before any other segments.
754 if (type1 == elfcpp::PT_LOAD && type2 != elfcpp::PT_LOAD)
755 return true;
756 if (type2 == elfcpp::PT_LOAD && type1 != elfcpp::PT_LOAD)
757 return false;
758
92e059d8
ILT
759 // We put the PT_TLS segment last, because that is where the dynamic
760 // linker expects to find it (this is just for efficiency; other
761 // positions would also work correctly).
762 if (type1 == elfcpp::PT_TLS && type2 != elfcpp::PT_TLS)
763 return false;
764 if (type2 == elfcpp::PT_TLS && type1 != elfcpp::PT_TLS)
765 return true;
766
75f65a3e
ILT
767 const elfcpp::Elf_Word flags1 = seg1->flags();
768 const elfcpp::Elf_Word flags2 = seg2->flags();
769
770 // The order of non-PT_LOAD segments is unimportant. We simply sort
771 // by the numeric segment type and flags values. There should not
772 // be more than one segment with the same type and flags.
773 if (type1 != elfcpp::PT_LOAD)
774 {
775 if (type1 != type2)
776 return type1 < type2;
a3ad94ed 777 gold_assert(flags1 != flags2);
75f65a3e
ILT
778 return flags1 < flags2;
779 }
780
781 // We sort PT_LOAD segments based on the flags. Readonly segments
782 // come before writable segments. Then executable segments come
783 // before non-executable segments. Then the unlikely case of a
784 // non-readable segment comes before the normal case of a readable
785 // segment. If there are multiple segments with the same type and
786 // flags, we require that the address be set, and we sort by
787 // virtual address and then physical address.
788 if ((flags1 & elfcpp::PF_W) != (flags2 & elfcpp::PF_W))
789 return (flags1 & elfcpp::PF_W) == 0;
790 if ((flags1 & elfcpp::PF_X) != (flags2 & elfcpp::PF_X))
791 return (flags1 & elfcpp::PF_X) != 0;
792 if ((flags1 & elfcpp::PF_R) != (flags2 & elfcpp::PF_R))
793 return (flags1 & elfcpp::PF_R) == 0;
794
795 uint64_t vaddr1 = seg1->vaddr();
796 uint64_t vaddr2 = seg2->vaddr();
797 if (vaddr1 != vaddr2)
798 return vaddr1 < vaddr2;
799
800 uint64_t paddr1 = seg1->paddr();
801 uint64_t paddr2 = seg2->paddr();
a3ad94ed 802 gold_assert(paddr1 != paddr2);
75f65a3e
ILT
803 return paddr1 < paddr2;
804}
805
ead1e424
ILT
806// Set the file offsets of all the segments, and all the sections they
807// contain. They have all been created. LOAD_SEG must be be laid out
808// first. Return the offset of the data to follow.
75f65a3e
ILT
809
810off_t
ead1e424
ILT
811Layout::set_segment_offsets(const Target* target, Output_segment* load_seg,
812 unsigned int *pshndx)
75f65a3e
ILT
813{
814 // Sort them into the final order.
54dc6425
ILT
815 std::sort(this->segment_list_.begin(), this->segment_list_.end(),
816 Layout::Compare_segments());
817
75f65a3e
ILT
818 // Find the PT_LOAD segments, and set their addresses and offsets
819 // and their section's addresses and offsets.
0c5e9c22
ILT
820 uint64_t addr;
821 if (options_.user_set_text_segment_address())
822 addr = options_.text_segment_address();
823 else
824 addr = target->default_text_segment_address();
75f65a3e
ILT
825 off_t off = 0;
826 bool was_readonly = false;
827 for (Segment_list::iterator p = this->segment_list_.begin();
828 p != this->segment_list_.end();
829 ++p)
830 {
831 if ((*p)->type() == elfcpp::PT_LOAD)
832 {
833 if (load_seg != NULL && load_seg != *p)
a3ad94ed 834 gold_unreachable();
75f65a3e
ILT
835 load_seg = NULL;
836
837 // If the last segment was readonly, and this one is not,
838 // then skip the address forward one page, maintaining the
839 // same position within the page. This lets us store both
840 // segments overlapping on a single page in the file, but
841 // the loader will put them on different pages in memory.
842
843 uint64_t orig_addr = addr;
844 uint64_t orig_off = off;
845
846 uint64_t aligned_addr = addr;
847 uint64_t abi_pagesize = target->abi_pagesize();
0496d5e5
ILT
848
849 // FIXME: This should depend on the -n and -N options.
850 (*p)->set_minimum_addralign(target->common_pagesize());
851
75f65a3e
ILT
852 if (was_readonly && ((*p)->flags() & elfcpp::PF_W) != 0)
853 {
ead1e424 854 uint64_t align = (*p)->addralign();
75f65a3e 855
ead1e424 856 addr = align_address(addr, align);
75f65a3e
ILT
857 aligned_addr = addr;
858 if ((addr & (abi_pagesize - 1)) != 0)
859 addr = addr + abi_pagesize;
860 }
861
ead1e424 862 unsigned int shndx_hold = *pshndx;
75f65a3e 863 off = orig_off + ((addr - orig_addr) & (abi_pagesize - 1));
ead1e424 864 uint64_t new_addr = (*p)->set_section_addresses(addr, &off, pshndx);
75f65a3e
ILT
865
866 // Now that we know the size of this segment, we may be able
867 // to save a page in memory, at the cost of wasting some
868 // file space, by instead aligning to the start of a new
869 // page. Here we use the real machine page size rather than
870 // the ABI mandated page size.
871
872 if (aligned_addr != addr)
873 {
874 uint64_t common_pagesize = target->common_pagesize();
875 uint64_t first_off = (common_pagesize
876 - (aligned_addr
877 & (common_pagesize - 1)));
878 uint64_t last_off = new_addr & (common_pagesize - 1);
879 if (first_off > 0
880 && last_off > 0
881 && ((aligned_addr & ~ (common_pagesize - 1))
882 != (new_addr & ~ (common_pagesize - 1)))
883 && first_off + last_off <= common_pagesize)
884 {
ead1e424
ILT
885 *pshndx = shndx_hold;
886 addr = align_address(aligned_addr, common_pagesize);
75f65a3e 887 off = orig_off + ((addr - orig_addr) & (abi_pagesize - 1));
ead1e424 888 new_addr = (*p)->set_section_addresses(addr, &off, pshndx);
75f65a3e
ILT
889 }
890 }
891
892 addr = new_addr;
893
894 if (((*p)->flags() & elfcpp::PF_W) == 0)
895 was_readonly = true;
896 }
897 }
898
899 // Handle the non-PT_LOAD segments, setting their offsets from their
900 // section's offsets.
901 for (Segment_list::iterator p = this->segment_list_.begin();
902 p != this->segment_list_.end();
903 ++p)
904 {
905 if ((*p)->type() != elfcpp::PT_LOAD)
906 (*p)->set_offset();
907 }
908
909 return off;
910}
911
912// Set the file offset of all the sections not associated with a
913// segment.
914
915off_t
ead1e424 916Layout::set_section_offsets(off_t off, unsigned int* pshndx)
75f65a3e 917{
a3ad94ed
ILT
918 for (Section_list::iterator p = this->unattached_section_list_.begin();
919 p != this->unattached_section_list_.end();
75f65a3e
ILT
920 ++p)
921 {
ead1e424
ILT
922 (*p)->set_out_shndx(*pshndx);
923 ++*pshndx;
61ba1cf9
ILT
924 if ((*p)->offset() != -1)
925 continue;
ead1e424 926 off = align_address(off, (*p)->addralign());
75f65a3e
ILT
927 (*p)->set_address(0, off);
928 off += (*p)->data_size();
929 }
930 return off;
931}
932
b8e6aad9
ILT
933// Create the symbol table sections. Here we also set the final
934// values of the symbols. At this point all the loadable sections are
935// fully laid out.
75f65a3e
ILT
936
937void
9025d29d 938Layout::create_symtab_sections(const Input_objects* input_objects,
75f65a3e 939 Symbol_table* symtab,
16649710 940 off_t* poff)
75f65a3e 941{
61ba1cf9
ILT
942 int symsize;
943 unsigned int align;
9025d29d 944 if (parameters->get_size() == 32)
61ba1cf9
ILT
945 {
946 symsize = elfcpp::Elf_sizes<32>::sym_size;
947 align = 4;
948 }
9025d29d 949 else if (parameters->get_size() == 64)
61ba1cf9
ILT
950 {
951 symsize = elfcpp::Elf_sizes<64>::sym_size;
952 align = 8;
953 }
954 else
a3ad94ed 955 gold_unreachable();
61ba1cf9
ILT
956
957 off_t off = *poff;
ead1e424 958 off = align_address(off, align);
61ba1cf9
ILT
959 off_t startoff = off;
960
961 // Save space for the dummy symbol at the start of the section. We
962 // never bother to write this out--it will just be left as zero.
963 off += symsize;
c06b7b0b 964 unsigned int local_symbol_index = 1;
61ba1cf9 965
a3ad94ed
ILT
966 // Add STT_SECTION symbols for each Output section which needs one.
967 for (Section_list::iterator p = this->section_list_.begin();
968 p != this->section_list_.end();
969 ++p)
970 {
971 if (!(*p)->needs_symtab_index())
972 (*p)->set_symtab_index(-1U);
973 else
974 {
975 (*p)->set_symtab_index(local_symbol_index);
976 ++local_symbol_index;
977 off += symsize;
978 }
979 }
980
f6ce93d6
ILT
981 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
982 p != input_objects->relobj_end();
75f65a3e
ILT
983 ++p)
984 {
985 Task_lock_obj<Object> tlo(**p);
c06b7b0b
ILT
986 unsigned int index = (*p)->finalize_local_symbols(local_symbol_index,
987 off,
988 &this->sympool_);
989 off += (index - local_symbol_index) * symsize;
990 local_symbol_index = index;
75f65a3e
ILT
991 }
992
c06b7b0b 993 unsigned int local_symcount = local_symbol_index;
a3ad94ed 994 gold_assert(local_symcount * symsize == off - startoff);
61ba1cf9 995
16649710
ILT
996 off_t dynoff;
997 size_t dyn_global_index;
998 size_t dyncount;
999 if (this->dynsym_section_ == NULL)
1000 {
1001 dynoff = 0;
1002 dyn_global_index = 0;
1003 dyncount = 0;
1004 }
1005 else
1006 {
1007 dyn_global_index = this->dynsym_section_->info();
1008 off_t locsize = dyn_global_index * this->dynsym_section_->entsize();
1009 dynoff = this->dynsym_section_->offset() + locsize;
1010 dyncount = (this->dynsym_section_->data_size() - locsize) / symsize;
f5c3f225 1011 gold_assert(static_cast<off_t>(dyncount * symsize)
16649710
ILT
1012 == this->dynsym_section_->data_size() - locsize);
1013 }
1014
1015 off = symtab->finalize(local_symcount, off, dynoff, dyn_global_index,
1016 dyncount, &this->sympool_);
75f65a3e 1017
9e2dcb77
ILT
1018 if (!parameters->strip_all())
1019 {
1020 this->sympool_.set_string_offsets();
61ba1cf9 1021
cfd73a4e 1022 const char* symtab_name = this->namepool_.add(".symtab", false, NULL);
9e2dcb77
ILT
1023 Output_section* osymtab = this->make_output_section(symtab_name,
1024 elfcpp::SHT_SYMTAB,
1025 0);
1026 this->symtab_section_ = osymtab;
a3ad94ed 1027
9e2dcb77
ILT
1028 Output_section_data* pos = new Output_data_space(off - startoff,
1029 align);
1030 osymtab->add_output_section_data(pos);
61ba1cf9 1031
cfd73a4e 1032 const char* strtab_name = this->namepool_.add(".strtab", false, NULL);
9e2dcb77
ILT
1033 Output_section* ostrtab = this->make_output_section(strtab_name,
1034 elfcpp::SHT_STRTAB,
1035 0);
a3ad94ed 1036
9e2dcb77
ILT
1037 Output_section_data* pstr = new Output_data_strtab(&this->sympool_);
1038 ostrtab->add_output_section_data(pstr);
61ba1cf9 1039
9e2dcb77
ILT
1040 osymtab->set_address(0, startoff);
1041 osymtab->set_link_section(ostrtab);
1042 osymtab->set_info(local_symcount);
1043 osymtab->set_entsize(symsize);
61ba1cf9 1044
9e2dcb77
ILT
1045 *poff = off;
1046 }
75f65a3e
ILT
1047}
1048
1049// Create the .shstrtab section, which holds the names of the
1050// sections. At the time this is called, we have created all the
1051// output sections except .shstrtab itself.
1052
1053Output_section*
1054Layout::create_shstrtab()
1055{
1056 // FIXME: We don't need to create a .shstrtab section if we are
1057 // stripping everything.
1058
cfd73a4e 1059 const char* name = this->namepool_.add(".shstrtab", false, NULL);
75f65a3e 1060
61ba1cf9
ILT
1061 this->namepool_.set_string_offsets();
1062
a3ad94ed 1063 Output_section* os = this->make_output_section(name, elfcpp::SHT_STRTAB, 0);
75f65a3e 1064
a3ad94ed
ILT
1065 Output_section_data* posd = new Output_data_strtab(&this->namepool_);
1066 os->add_output_section_data(posd);
75f65a3e
ILT
1067
1068 return os;
1069}
1070
1071// Create the section headers. SIZE is 32 or 64. OFF is the file
1072// offset.
1073
1074Output_section_headers*
9025d29d 1075Layout::create_shdrs(off_t* poff)
75f65a3e
ILT
1076{
1077 Output_section_headers* oshdrs;
9025d29d 1078 oshdrs = new Output_section_headers(this,
16649710
ILT
1079 &this->segment_list_,
1080 &this->unattached_section_list_,
61ba1cf9 1081 &this->namepool_);
ead1e424 1082 off_t off = align_address(*poff, oshdrs->addralign());
75f65a3e 1083 oshdrs->set_address(0, off);
61ba1cf9
ILT
1084 off += oshdrs->data_size();
1085 *poff = off;
1086 this->special_output_list_.push_back(oshdrs);
75f65a3e 1087 return oshdrs;
54dc6425
ILT
1088}
1089
dbe717ef
ILT
1090// Create the dynamic symbol table.
1091
1092void
14b31740
ILT
1093Layout::create_dynamic_symtab(const Target* target, Symbol_table* symtab,
1094 Output_section **pdynstr,
1095 unsigned int* plocal_dynamic_count,
1096 std::vector<Symbol*>* pdynamic_symbols,
1097 Versions* pversions)
dbe717ef 1098{
a3ad94ed
ILT
1099 // Count all the symbols in the dynamic symbol table, and set the
1100 // dynamic symbol indexes.
dbe717ef 1101
a3ad94ed
ILT
1102 // Skip symbol 0, which is always all zeroes.
1103 unsigned int index = 1;
dbe717ef 1104
a3ad94ed
ILT
1105 // Add STT_SECTION symbols for each Output section which needs one.
1106 for (Section_list::iterator p = this->section_list_.begin();
1107 p != this->section_list_.end();
1108 ++p)
1109 {
1110 if (!(*p)->needs_dynsym_index())
1111 (*p)->set_dynsym_index(-1U);
1112 else
1113 {
1114 (*p)->set_dynsym_index(index);
1115 ++index;
1116 }
1117 }
1118
1119 // FIXME: Some targets apparently require local symbols in the
1120 // dynamic symbol table. Here is where we will have to count them,
1121 // and set the dynamic symbol indexes, and add the names to
1122 // this->dynpool_.
1123
1124 unsigned int local_symcount = index;
14b31740 1125 *plocal_dynamic_count = local_symcount;
a3ad94ed
ILT
1126
1127 // FIXME: We have to tell set_dynsym_indexes whether the
1128 // -E/--export-dynamic option was used.
14b31740
ILT
1129 index = symtab->set_dynsym_indexes(&this->options_, target, index,
1130 pdynamic_symbols, &this->dynpool_,
1131 pversions);
a3ad94ed
ILT
1132
1133 int symsize;
1134 unsigned int align;
9025d29d 1135 const int size = parameters->get_size();
a3ad94ed
ILT
1136 if (size == 32)
1137 {
1138 symsize = elfcpp::Elf_sizes<32>::sym_size;
1139 align = 4;
1140 }
1141 else if (size == 64)
1142 {
1143 symsize = elfcpp::Elf_sizes<64>::sym_size;
1144 align = 8;
1145 }
1146 else
1147 gold_unreachable();
1148
14b31740
ILT
1149 // Create the dynamic symbol table section.
1150
cfd73a4e 1151 const char* dynsym_name = this->namepool_.add(".dynsym", false, NULL);
a3ad94ed
ILT
1152 Output_section* dynsym = this->make_output_section(dynsym_name,
1153 elfcpp::SHT_DYNSYM,
1154 elfcpp::SHF_ALLOC);
1155
1156 Output_section_data* odata = new Output_data_space(index * symsize,
1157 align);
1158 dynsym->add_output_section_data(odata);
1159
1160 dynsym->set_info(local_symcount);
1161 dynsym->set_entsize(symsize);
1162 dynsym->set_addralign(align);
1163
1164 this->dynsym_section_ = dynsym;
1165
16649710 1166 Output_data_dynamic* const odyn = this->dynamic_data_;
a3ad94ed
ILT
1167 odyn->add_section_address(elfcpp::DT_SYMTAB, dynsym);
1168 odyn->add_constant(elfcpp::DT_SYMENT, symsize);
1169
14b31740
ILT
1170 // Create the dynamic string table section.
1171
cfd73a4e 1172 const char* dynstr_name = this->namepool_.add(".dynstr", false, NULL);
a3ad94ed
ILT
1173 Output_section* dynstr = this->make_output_section(dynstr_name,
1174 elfcpp::SHT_STRTAB,
1175 elfcpp::SHF_ALLOC);
1176
1177 Output_section_data* strdata = new Output_data_strtab(&this->dynpool_);
1178 dynstr->add_output_section_data(strdata);
1179
16649710
ILT
1180 dynsym->set_link_section(dynstr);
1181 this->dynamic_section_->set_link_section(dynstr);
1182
a3ad94ed
ILT
1183 odyn->add_section_address(elfcpp::DT_STRTAB, dynstr);
1184 odyn->add_section_size(elfcpp::DT_STRSZ, dynstr);
1185
14b31740
ILT
1186 *pdynstr = dynstr;
1187
1188 // Create the hash tables.
1189
a3ad94ed
ILT
1190 // FIXME: We need an option to create a GNU hash table.
1191
1192 unsigned char* phash;
1193 unsigned int hashlen;
9025d29d 1194 Dynobj::create_elf_hash_table(*pdynamic_symbols, local_symcount,
a3ad94ed
ILT
1195 &phash, &hashlen);
1196
cfd73a4e 1197 const char* hash_name = this->namepool_.add(".hash", false, NULL);
a3ad94ed
ILT
1198 Output_section* hashsec = this->make_output_section(hash_name,
1199 elfcpp::SHT_HASH,
1200 elfcpp::SHF_ALLOC);
1201
1202 Output_section_data* hashdata = new Output_data_const_buffer(phash,
1203 hashlen,
1204 align);
1205 hashsec->add_output_section_data(hashdata);
1206
16649710 1207 hashsec->set_link_section(dynsym);
a3ad94ed 1208 hashsec->set_entsize(4);
a3ad94ed
ILT
1209
1210 odyn->add_section_address(elfcpp::DT_HASH, hashsec);
dbe717ef
ILT
1211}
1212
14b31740
ILT
1213// Create the version sections.
1214
1215void
9025d29d 1216Layout::create_version_sections(const Versions* versions,
46fe1623 1217 const Symbol_table* symtab,
14b31740
ILT
1218 unsigned int local_symcount,
1219 const std::vector<Symbol*>& dynamic_symbols,
1220 const Output_section* dynstr)
1221{
1222 if (!versions->any_defs() && !versions->any_needs())
1223 return;
1224
9025d29d 1225 if (parameters->get_size() == 32)
14b31740 1226 {
9025d29d 1227 if (parameters->is_big_endian())
193a53d9
ILT
1228 {
1229#ifdef HAVE_TARGET_32_BIG
1230 this->sized_create_version_sections
1231 SELECT_SIZE_ENDIAN_NAME(32, true)(
46fe1623 1232 versions, symtab, local_symcount, dynamic_symbols, dynstr
193a53d9
ILT
1233 SELECT_SIZE_ENDIAN(32, true));
1234#else
1235 gold_unreachable();
1236#endif
1237 }
14b31740 1238 else
193a53d9
ILT
1239 {
1240#ifdef HAVE_TARGET_32_LITTLE
1241 this->sized_create_version_sections
1242 SELECT_SIZE_ENDIAN_NAME(32, false)(
46fe1623 1243 versions, symtab, local_symcount, dynamic_symbols, dynstr
193a53d9
ILT
1244 SELECT_SIZE_ENDIAN(32, false));
1245#else
1246 gold_unreachable();
1247#endif
1248 }
14b31740 1249 }
9025d29d 1250 else if (parameters->get_size() == 64)
14b31740 1251 {
9025d29d 1252 if (parameters->is_big_endian())
193a53d9
ILT
1253 {
1254#ifdef HAVE_TARGET_64_BIG
1255 this->sized_create_version_sections
1256 SELECT_SIZE_ENDIAN_NAME(64, true)(
46fe1623 1257 versions, symtab, local_symcount, dynamic_symbols, dynstr
193a53d9
ILT
1258 SELECT_SIZE_ENDIAN(64, true));
1259#else
1260 gold_unreachable();
1261#endif
1262 }
14b31740 1263 else
193a53d9
ILT
1264 {
1265#ifdef HAVE_TARGET_64_LITTLE
1266 this->sized_create_version_sections
1267 SELECT_SIZE_ENDIAN_NAME(64, false)(
46fe1623 1268 versions, symtab, local_symcount, dynamic_symbols, dynstr
193a53d9
ILT
1269 SELECT_SIZE_ENDIAN(64, false));
1270#else
1271 gold_unreachable();
1272#endif
1273 }
14b31740
ILT
1274 }
1275 else
1276 gold_unreachable();
1277}
1278
1279// Create the version sections, sized version.
1280
1281template<int size, bool big_endian>
1282void
1283Layout::sized_create_version_sections(
1284 const Versions* versions,
46fe1623 1285 const Symbol_table* symtab,
14b31740
ILT
1286 unsigned int local_symcount,
1287 const std::vector<Symbol*>& dynamic_symbols,
91da9340
ILT
1288 const Output_section* dynstr
1289 ACCEPT_SIZE_ENDIAN)
14b31740 1290{
cfd73a4e 1291 const char* vname = this->namepool_.add(".gnu.version", false, NULL);
14b31740
ILT
1292 Output_section* vsec = this->make_output_section(vname,
1293 elfcpp::SHT_GNU_versym,
1294 elfcpp::SHF_ALLOC);
1295
1296 unsigned char* vbuf;
1297 unsigned int vsize;
91da9340 1298 versions->symbol_section_contents SELECT_SIZE_ENDIAN_NAME(size, big_endian)(
46fe1623 1299 symtab, &this->dynpool_, local_symcount, dynamic_symbols, &vbuf, &vsize
7e1edb90 1300 SELECT_SIZE_ENDIAN(size, big_endian));
14b31740
ILT
1301
1302 Output_section_data* vdata = new Output_data_const_buffer(vbuf, vsize, 2);
1303
1304 vsec->add_output_section_data(vdata);
1305 vsec->set_entsize(2);
1306 vsec->set_link_section(this->dynsym_section_);
1307
1308 Output_data_dynamic* const odyn = this->dynamic_data_;
1309 odyn->add_section_address(elfcpp::DT_VERSYM, vsec);
1310
1311 if (versions->any_defs())
1312 {
cfd73a4e 1313 const char* vdname = this->namepool_.add(".gnu.version_d", false, NULL);
14b31740
ILT
1314 Output_section *vdsec;
1315 vdsec = this->make_output_section(vdname, elfcpp::SHT_GNU_verdef,
1316 elfcpp::SHF_ALLOC);
1317
1318 unsigned char* vdbuf;
1319 unsigned int vdsize;
1320 unsigned int vdentries;
91da9340
ILT
1321 versions->def_section_contents SELECT_SIZE_ENDIAN_NAME(size, big_endian)(
1322 &this->dynpool_, &vdbuf, &vdsize, &vdentries
1323 SELECT_SIZE_ENDIAN(size, big_endian));
14b31740
ILT
1324
1325 Output_section_data* vddata = new Output_data_const_buffer(vdbuf,
1326 vdsize,
1327 4);
1328
1329 vdsec->add_output_section_data(vddata);
1330 vdsec->set_link_section(dynstr);
1331 vdsec->set_info(vdentries);
1332
1333 odyn->add_section_address(elfcpp::DT_VERDEF, vdsec);
1334 odyn->add_constant(elfcpp::DT_VERDEFNUM, vdentries);
1335 }
1336
1337 if (versions->any_needs())
1338 {
cfd73a4e 1339 const char* vnname = this->namepool_.add(".gnu.version_r", false, NULL);
14b31740
ILT
1340 Output_section* vnsec;
1341 vnsec = this->make_output_section(vnname, elfcpp::SHT_GNU_verneed,
1342 elfcpp::SHF_ALLOC);
1343
1344 unsigned char* vnbuf;
1345 unsigned int vnsize;
1346 unsigned int vnentries;
91da9340
ILT
1347 versions->need_section_contents SELECT_SIZE_ENDIAN_NAME(size, big_endian)
1348 (&this->dynpool_, &vnbuf, &vnsize, &vnentries
1349 SELECT_SIZE_ENDIAN(size, big_endian));
14b31740
ILT
1350
1351 Output_section_data* vndata = new Output_data_const_buffer(vnbuf,
1352 vnsize,
1353 4);
1354
1355 vnsec->add_output_section_data(vndata);
1356 vnsec->set_link_section(dynstr);
1357 vnsec->set_info(vnentries);
1358
1359 odyn->add_section_address(elfcpp::DT_VERNEED, vnsec);
1360 odyn->add_constant(elfcpp::DT_VERNEEDNUM, vnentries);
1361 }
1362}
1363
dbe717ef
ILT
1364// Create the .interp section and PT_INTERP segment.
1365
1366void
1367Layout::create_interp(const Target* target)
1368{
1369 const char* interp = this->options_.dynamic_linker();
1370 if (interp == NULL)
1371 {
1372 interp = target->dynamic_linker();
a3ad94ed 1373 gold_assert(interp != NULL);
dbe717ef
ILT
1374 }
1375
1376 size_t len = strlen(interp) + 1;
1377
1378 Output_section_data* odata = new Output_data_const(interp, len, 1);
1379
cfd73a4e 1380 const char* interp_name = this->namepool_.add(".interp", false, NULL);
dbe717ef
ILT
1381 Output_section* osec = this->make_output_section(interp_name,
1382 elfcpp::SHT_PROGBITS,
1383 elfcpp::SHF_ALLOC);
1384 osec->add_output_section_data(odata);
1385
1386 Output_segment* oseg = new Output_segment(elfcpp::PT_INTERP, elfcpp::PF_R);
1387 this->segment_list_.push_back(oseg);
1388 oseg->add_initial_output_section(osec, elfcpp::PF_R);
1389}
1390
a3ad94ed
ILT
1391// Finish the .dynamic section and PT_DYNAMIC segment.
1392
1393void
1394Layout::finish_dynamic_section(const Input_objects* input_objects,
16649710 1395 const Symbol_table* symtab)
a3ad94ed 1396{
a3ad94ed
ILT
1397 Output_segment* oseg = new Output_segment(elfcpp::PT_DYNAMIC,
1398 elfcpp::PF_R | elfcpp::PF_W);
1399 this->segment_list_.push_back(oseg);
1400 oseg->add_initial_output_section(this->dynamic_section_,
1401 elfcpp::PF_R | elfcpp::PF_W);
1402
16649710
ILT
1403 Output_data_dynamic* const odyn = this->dynamic_data_;
1404
a3ad94ed
ILT
1405 for (Input_objects::Dynobj_iterator p = input_objects->dynobj_begin();
1406 p != input_objects->dynobj_end();
1407 ++p)
1408 {
1409 // FIXME: Handle --as-needed.
1410 odyn->add_string(elfcpp::DT_NEEDED, (*p)->soname());
1411 }
1412
1413 // FIXME: Support --init and --fini.
1414 Symbol* sym = symtab->lookup("_init");
14b31740 1415 if (sym != NULL && sym->is_defined() && !sym->is_from_dynobj())
a3ad94ed
ILT
1416 odyn->add_symbol(elfcpp::DT_INIT, sym);
1417
1418 sym = symtab->lookup("_fini");
14b31740 1419 if (sym != NULL && sym->is_defined() && !sym->is_from_dynobj())
a3ad94ed
ILT
1420 odyn->add_symbol(elfcpp::DT_FINI, sym);
1421
1422 // FIXME: Support DT_INIT_ARRAY and DT_FINI_ARRAY.
41f542e7
ILT
1423
1424 // Add a DT_RPATH entry if needed.
1425 const General_options::Dir_list& rpath(this->options_.rpath());
1426 if (!rpath.empty())
1427 {
1428 std::string rpath_val;
1429 for (General_options::Dir_list::const_iterator p = rpath.begin();
1430 p != rpath.end();
1431 ++p)
1432 {
1433 if (rpath_val.empty())
ad2d6943 1434 rpath_val = p->name();
41f542e7
ILT
1435 else
1436 {
1437 // Eliminate duplicates.
1438 General_options::Dir_list::const_iterator q;
1439 for (q = rpath.begin(); q != p; ++q)
ad2d6943 1440 if (q->name() == p->name())
41f542e7
ILT
1441 break;
1442 if (q == p)
1443 {
1444 rpath_val += ':';
ad2d6943 1445 rpath_val += p->name();
41f542e7
ILT
1446 }
1447 }
1448 }
1449
1450 odyn->add_string(elfcpp::DT_RPATH, rpath_val);
1451 }
a3ad94ed
ILT
1452}
1453
a2fb1b05
ILT
1454// The mapping of .gnu.linkonce section names to real section names.
1455
ead1e424 1456#define MAPPING_INIT(f, t) { f, sizeof(f) - 1, t, sizeof(t) - 1 }
a2fb1b05
ILT
1457const Layout::Linkonce_mapping Layout::linkonce_mapping[] =
1458{
1459 MAPPING_INIT("d.rel.ro", ".data.rel.ro"), // Must be before "d".
1460 MAPPING_INIT("t", ".text"),
1461 MAPPING_INIT("r", ".rodata"),
1462 MAPPING_INIT("d", ".data"),
1463 MAPPING_INIT("b", ".bss"),
1464 MAPPING_INIT("s", ".sdata"),
1465 MAPPING_INIT("sb", ".sbss"),
1466 MAPPING_INIT("s2", ".sdata2"),
1467 MAPPING_INIT("sb2", ".sbss2"),
1468 MAPPING_INIT("wi", ".debug_info"),
1469 MAPPING_INIT("td", ".tdata"),
1470 MAPPING_INIT("tb", ".tbss"),
1471 MAPPING_INIT("lr", ".lrodata"),
1472 MAPPING_INIT("l", ".ldata"),
1473 MAPPING_INIT("lb", ".lbss"),
1474};
1475#undef MAPPING_INIT
1476
1477const int Layout::linkonce_mapping_count =
1478 sizeof(Layout::linkonce_mapping) / sizeof(Layout::linkonce_mapping[0]);
1479
1480// Return the name of the output section to use for a .gnu.linkonce
1481// section. This is based on the default ELF linker script of the old
1482// GNU linker. For example, we map a name like ".gnu.linkonce.t.foo"
ead1e424
ILT
1483// to ".text". Set *PLEN to the length of the name. *PLEN is
1484// initialized to the length of NAME.
a2fb1b05
ILT
1485
1486const char*
ead1e424 1487Layout::linkonce_output_name(const char* name, size_t *plen)
a2fb1b05
ILT
1488{
1489 const char* s = name + sizeof(".gnu.linkonce") - 1;
1490 if (*s != '.')
1491 return name;
1492 ++s;
1493 const Linkonce_mapping* plm = linkonce_mapping;
1494 for (int i = 0; i < linkonce_mapping_count; ++i, ++plm)
1495 {
1496 if (strncmp(s, plm->from, plm->fromlen) == 0 && s[plm->fromlen] == '.')
ead1e424
ILT
1497 {
1498 *plen = plm->tolen;
1499 return plm->to;
1500 }
a2fb1b05
ILT
1501 }
1502 return name;
1503}
1504
ead1e424
ILT
1505// Choose the output section name to use given an input section name.
1506// Set *PLEN to the length of the name. *PLEN is initialized to the
1507// length of NAME.
1508
1509const char*
1510Layout::output_section_name(const char* name, size_t* plen)
1511{
1512 if (Layout::is_linkonce(name))
1513 {
1514 // .gnu.linkonce sections are laid out as though they were named
1515 // for the sections are placed into.
1516 return Layout::linkonce_output_name(name, plen);
1517 }
1518
af4a8a83
ILT
1519 // gcc 4.3 generates the following sorts of section names when it
1520 // needs a section name specific to a function:
1521 // .text.FN
1522 // .rodata.FN
1523 // .sdata2.FN
1524 // .data.FN
1525 // .data.rel.FN
1526 // .data.rel.local.FN
1527 // .data.rel.ro.FN
1528 // .data.rel.ro.local.FN
1529 // .sdata.FN
1530 // .bss.FN
1531 // .sbss.FN
1532 // .tdata.FN
1533 // .tbss.FN
1534
1535 // The GNU linker maps all of those to the part before the .FN,
1536 // except that .data.rel.local.FN is mapped to .data, and
1537 // .data.rel.ro.local.FN is mapped to .data.rel.ro. The sections
1538 // beginning with .data.rel.ro.local are grouped together.
1539
1540 // For an anonymous namespace, the string FN can contain a '.'.
1541
1542 // Also of interest: .rodata.strN.N, .rodata.cstN, both of which the
1543 // GNU linker maps to .rodata.
1544
1545 // The .data.rel.ro sections enable a security feature triggered by
1546 // the -z relro option. Section which need to be relocated at
1547 // program startup time but which may be readonly after startup are
1548 // grouped into .data.rel.ro. They are then put into a PT_GNU_RELRO
1549 // segment. The dynamic linker will make that segment writable,
1550 // perform relocations, and then make it read-only. FIXME: We do
1551 // not yet implement this optimization.
1552
1553 // It is hard to handle this in a principled way.
1554
1555 // These are the rules we follow:
1556
1557 // If the section name has no initial '.', or no dot other than an
1558 // initial '.', we use the name unchanged (i.e., "mysection" and
1559 // ".text" are unchanged).
1560
1561 // If the name starts with ".data.rel.ro" we use ".data.rel.ro".
1562
1563 // Otherwise, we drop the second '.' and everything that comes after
1564 // it (i.e., ".text.XXX" becomes ".text").
ead1e424
ILT
1565
1566 const char* s = name;
af4a8a83
ILT
1567 if (*s != '.')
1568 return name;
1569 ++s;
ead1e424
ILT
1570 const char* sdot = strchr(s, '.');
1571 if (sdot == NULL)
1572 return name;
1573
af4a8a83
ILT
1574 const char* const data_rel_ro = ".data.rel.ro";
1575 if (strncmp(name, data_rel_ro, strlen(data_rel_ro)) == 0)
ead1e424 1576 {
af4a8a83
ILT
1577 *plen = strlen(data_rel_ro);
1578 return data_rel_ro;
ead1e424
ILT
1579 }
1580
ead1e424
ILT
1581 *plen = sdot - name;
1582 return name;
1583}
1584
a2fb1b05
ILT
1585// Record the signature of a comdat section, and return whether to
1586// include it in the link. If GROUP is true, this is a regular
1587// section group. If GROUP is false, this is a group signature
1588// derived from the name of a linkonce section. We want linkonce
1589// signatures and group signatures to block each other, but we don't
1590// want a linkonce signature to block another linkonce signature.
1591
1592bool
1593Layout::add_comdat(const char* signature, bool group)
1594{
1595 std::string sig(signature);
1596 std::pair<Signatures::iterator, bool> ins(
ead1e424 1597 this->signatures_.insert(std::make_pair(sig, group)));
a2fb1b05
ILT
1598
1599 if (ins.second)
1600 {
1601 // This is the first time we've seen this signature.
1602 return true;
1603 }
1604
1605 if (ins.first->second)
1606 {
1607 // We've already seen a real section group with this signature.
1608 return false;
1609 }
1610 else if (group)
1611 {
1612 // This is a real section group, and we've already seen a
a0fa0c07 1613 // linkonce section with this signature. Record that we've seen
a2fb1b05
ILT
1614 // a section group, and don't include this section group.
1615 ins.first->second = true;
1616 return false;
1617 }
1618 else
1619 {
1620 // We've already seen a linkonce section and this is a linkonce
1621 // section. These don't block each other--this may be the same
1622 // symbol name with different section types.
1623 return true;
1624 }
1625}
1626
61ba1cf9
ILT
1627// Write out data not associated with a section or the symbol table.
1628
1629void
9025d29d 1630Layout::write_data(const Symbol_table* symtab, Output_file* of) const
61ba1cf9 1631{
9e2dcb77 1632 if (!parameters->strip_all())
a3ad94ed 1633 {
9e2dcb77
ILT
1634 const Output_section* symtab_section = this->symtab_section_;
1635 for (Section_list::const_iterator p = this->section_list_.begin();
1636 p != this->section_list_.end();
1637 ++p)
a3ad94ed 1638 {
9e2dcb77
ILT
1639 if ((*p)->needs_symtab_index())
1640 {
1641 gold_assert(symtab_section != NULL);
1642 unsigned int index = (*p)->symtab_index();
1643 gold_assert(index > 0 && index != -1U);
1644 off_t off = (symtab_section->offset()
1645 + index * symtab_section->entsize());
1646 symtab->write_section_symbol(*p, of, off);
1647 }
a3ad94ed
ILT
1648 }
1649 }
1650
1651 const Output_section* dynsym_section = this->dynsym_section_;
1652 for (Section_list::const_iterator p = this->section_list_.begin();
1653 p != this->section_list_.end();
1654 ++p)
1655 {
1656 if ((*p)->needs_dynsym_index())
1657 {
1658 gold_assert(dynsym_section != NULL);
1659 unsigned int index = (*p)->dynsym_index();
1660 gold_assert(index > 0 && index != -1U);
1661 off_t off = (dynsym_section->offset()
1662 + index * dynsym_section->entsize());
9025d29d 1663 symtab->write_section_symbol(*p, of, off);
a3ad94ed
ILT
1664 }
1665 }
1666
1667 // Write out the Output_sections. Most won't have anything to
1668 // write, since most of the data will come from input sections which
1669 // are handled elsewhere. But some Output_sections do have
1670 // Output_data.
1671 for (Section_list::const_iterator p = this->section_list_.begin();
1672 p != this->section_list_.end();
1673 ++p)
1674 (*p)->write(of);
1675
1676 // Write out the Output_data which are not in an Output_section.
61ba1cf9
ILT
1677 for (Data_list::const_iterator p = this->special_output_list_.begin();
1678 p != this->special_output_list_.end();
1679 ++p)
1680 (*p)->write(of);
1681}
1682
1683// Write_data_task methods.
1684
1685// We can always run this task.
1686
1687Task::Is_runnable_type
1688Write_data_task::is_runnable(Workqueue*)
1689{
1690 return IS_RUNNABLE;
1691}
1692
1693// We need to unlock FINAL_BLOCKER when finished.
1694
1695Task_locker*
1696Write_data_task::locks(Workqueue* workqueue)
1697{
1698 return new Task_locker_block(*this->final_blocker_, workqueue);
1699}
1700
1701// Run the task--write out the data.
1702
1703void
1704Write_data_task::run(Workqueue*)
1705{
9025d29d 1706 this->layout_->write_data(this->symtab_, this->of_);
61ba1cf9
ILT
1707}
1708
1709// Write_symbols_task methods.
1710
1711// We can always run this task.
1712
1713Task::Is_runnable_type
1714Write_symbols_task::is_runnable(Workqueue*)
1715{
1716 return IS_RUNNABLE;
1717}
1718
1719// We need to unlock FINAL_BLOCKER when finished.
1720
1721Task_locker*
1722Write_symbols_task::locks(Workqueue* workqueue)
1723{
1724 return new Task_locker_block(*this->final_blocker_, workqueue);
1725}
1726
1727// Run the task--write out the symbols.
1728
1729void
1730Write_symbols_task::run(Workqueue*)
1731{
16649710
ILT
1732 this->symtab_->write_globals(this->target_, this->sympool_, this->dynpool_,
1733 this->of_);
61ba1cf9
ILT
1734}
1735
92e059d8 1736// Close_task_runner methods.
61ba1cf9
ILT
1737
1738// Run the task--close the file.
1739
1740void
92e059d8 1741Close_task_runner::run(Workqueue*)
61ba1cf9
ILT
1742{
1743 this->of_->close();
1744}
1745
a2fb1b05
ILT
1746// Instantiate the templates we need. We could use the configure
1747// script to restrict this to only the ones for implemented targets.
1748
193a53d9 1749#ifdef HAVE_TARGET_32_LITTLE
a2fb1b05
ILT
1750template
1751Output_section*
f6ce93d6 1752Layout::layout<32, false>(Relobj* object, unsigned int shndx, const char* name,
a2fb1b05 1753 const elfcpp::Shdr<32, false>& shdr, off_t*);
193a53d9 1754#endif
a2fb1b05 1755
193a53d9 1756#ifdef HAVE_TARGET_32_BIG
a2fb1b05
ILT
1757template
1758Output_section*
f6ce93d6 1759Layout::layout<32, true>(Relobj* object, unsigned int shndx, const char* name,
a2fb1b05 1760 const elfcpp::Shdr<32, true>& shdr, off_t*);
193a53d9 1761#endif
a2fb1b05 1762
193a53d9 1763#ifdef HAVE_TARGET_64_LITTLE
a2fb1b05
ILT
1764template
1765Output_section*
f6ce93d6 1766Layout::layout<64, false>(Relobj* object, unsigned int shndx, const char* name,
a2fb1b05 1767 const elfcpp::Shdr<64, false>& shdr, off_t*);
193a53d9 1768#endif
a2fb1b05 1769
193a53d9 1770#ifdef HAVE_TARGET_64_BIG
a2fb1b05
ILT
1771template
1772Output_section*
f6ce93d6 1773Layout::layout<64, true>(Relobj* object, unsigned int shndx, const char* name,
a2fb1b05 1774 const elfcpp::Shdr<64, true>& shdr, off_t*);
193a53d9 1775#endif
a2fb1b05
ILT
1776
1777
1778} // End namespace gold.
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