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1// layout.cc -- lay out output file sections for gold
2
3bb951e5 3// Copyright 2006, 2007, 2008, 2009, 2010, 2011 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
8ed814a9 25#include <cerrno>
a2fb1b05 26#include <cstring>
54dc6425 27#include <algorithm>
a2fb1b05 28#include <iostream>
6e9ba2ca 29#include <fstream>
a2fb1b05 30#include <utility>
8ed814a9 31#include <fcntl.h>
6e9ba2ca 32#include <fnmatch.h>
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33#include <unistd.h>
34#include "libiberty.h"
35#include "md5.h"
36#include "sha1.h"
a2fb1b05 37
7e1edb90 38#include "parameters.h"
14144f39 39#include "options.h"
7d9e3d98 40#include "mapfile.h"
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41#include "script.h"
42#include "script-sections.h"
a2fb1b05 43#include "output.h"
f6ce93d6 44#include "symtab.h"
a3ad94ed 45#include "dynobj.h"
3151305a 46#include "ehframe.h"
96803768 47#include "compressed_output.h"
62b01cb5 48#include "reduced_debug_output.h"
6a74a719 49#include "reloc.h"
2a00e4fb 50#include "descriptors.h"
2756a258 51#include "plugin.h"
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52#include "incremental.h"
53#include "layout.h"
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54
55namespace gold
56{
57
cdc29364
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58// Class Free_list.
59
60// The total number of free lists used.
61unsigned int Free_list::num_lists = 0;
62// The total number of free list nodes used.
63unsigned int Free_list::num_nodes = 0;
64// The total number of calls to Free_list::remove.
65unsigned int Free_list::num_removes = 0;
66// The total number of nodes visited during calls to Free_list::remove.
67unsigned int Free_list::num_remove_visits = 0;
68// The total number of calls to Free_list::allocate.
69unsigned int Free_list::num_allocates = 0;
70// The total number of nodes visited during calls to Free_list::allocate.
71unsigned int Free_list::num_allocate_visits = 0;
72
73// Initialize the free list. Creates a single free list node that
74// describes the entire region of length LEN. If EXTEND is true,
75// allocate() is allowed to extend the region beyond its initial
76// length.
77
78void
79Free_list::init(off_t len, bool extend)
80{
81 this->list_.push_front(Free_list_node(0, len));
82 this->last_remove_ = this->list_.begin();
83 this->extend_ = extend;
84 this->length_ = len;
85 ++Free_list::num_lists;
86 ++Free_list::num_nodes;
87}
88
89// Remove a chunk from the free list. Because we start with a single
90// node that covers the entire section, and remove chunks from it one
91// at a time, we do not need to coalesce chunks or handle cases that
92// span more than one free node. We expect to remove chunks from the
93// free list in order, and we expect to have only a few chunks of free
94// space left (corresponding to files that have changed since the last
95// incremental link), so a simple linear list should provide sufficient
96// performance.
97
98void
99Free_list::remove(off_t start, off_t end)
100{
101 if (start == end)
102 return;
103 gold_assert(start < end);
104
105 ++Free_list::num_removes;
106
107 Iterator p = this->last_remove_;
108 if (p->start_ > start)
109 p = this->list_.begin();
110
111 for (; p != this->list_.end(); ++p)
112 {
113 ++Free_list::num_remove_visits;
114 // Find a node that wholly contains the indicated region.
115 if (p->start_ <= start && p->end_ >= end)
116 {
117 // Case 1: the indicated region spans the whole node.
118 // Add some fuzz to avoid creating tiny free chunks.
119 if (p->start_ + 3 >= start && p->end_ <= end + 3)
120 p = this->list_.erase(p);
121 // Case 2: remove a chunk from the start of the node.
122 else if (p->start_ + 3 >= start)
123 p->start_ = end;
124 // Case 3: remove a chunk from the end of the node.
125 else if (p->end_ <= end + 3)
126 p->end_ = start;
127 // Case 4: remove a chunk from the middle, and split
128 // the node into two.
129 else
130 {
131 Free_list_node newnode(p->start_, start);
132 p->start_ = end;
133 this->list_.insert(p, newnode);
134 ++Free_list::num_nodes;
135 }
136 this->last_remove_ = p;
137 return;
138 }
139 }
140
141 // Did not find a node containing the given chunk. This could happen
142 // because a small chunk was already removed due to the fuzz.
143 gold_debug(DEBUG_INCREMENTAL,
144 "Free_list::remove(%d,%d) not found",
145 static_cast<int>(start), static_cast<int>(end));
146}
147
148// Allocate a chunk of size LEN from the free list. Returns -1ULL
149// if a sufficiently large chunk of free space is not found.
150// We use a simple first-fit algorithm.
151
152off_t
153Free_list::allocate(off_t len, uint64_t align, off_t minoff)
154{
155 gold_debug(DEBUG_INCREMENTAL,
156 "Free_list::allocate(%08lx, %d, %08lx)",
157 static_cast<long>(len), static_cast<int>(align),
158 static_cast<long>(minoff));
159 if (len == 0)
160 return align_address(minoff, align);
161
162 ++Free_list::num_allocates;
163
164 for (Iterator p = this->list_.begin(); p != this->list_.end(); ++p)
165 {
166 ++Free_list::num_allocate_visits;
167 off_t start = p->start_ > minoff ? p->start_ : minoff;
168 start = align_address(start, align);
169 off_t end = start + len;
170 if (end <= p->end_)
171 {
172 if (p->start_ + 3 >= start && p->end_ <= end + 3)
173 this->list_.erase(p);
174 else if (p->start_ + 3 >= start)
175 p->start_ = end;
176 else if (p->end_ <= end + 3)
177 p->end_ = start;
178 else
179 {
180 Free_list_node newnode(p->start_, start);
181 p->start_ = end;
182 this->list_.insert(p, newnode);
183 ++Free_list::num_nodes;
184 }
185 return start;
186 }
187 }
188 return -1;
189}
190
191// Dump the free list (for debugging).
192void
193Free_list::dump()
194{
195 gold_info("Free list:\n start end length\n");
196 for (Iterator p = this->list_.begin(); p != this->list_.end(); ++p)
197 gold_info(" %08lx %08lx %08lx", static_cast<long>(p->start_),
198 static_cast<long>(p->end_),
199 static_cast<long>(p->end_ - p->start_));
200}
201
202// Print the statistics for the free lists.
203void
204Free_list::print_stats()
205{
206 fprintf(stderr, _("%s: total free lists: %u\n"),
207 program_name, Free_list::num_lists);
208 fprintf(stderr, _("%s: total free list nodes: %u\n"),
209 program_name, Free_list::num_nodes);
210 fprintf(stderr, _("%s: calls to Free_list::remove: %u\n"),
211 program_name, Free_list::num_removes);
212 fprintf(stderr, _("%s: nodes visited: %u\n"),
213 program_name, Free_list::num_remove_visits);
214 fprintf(stderr, _("%s: calls to Free_list::allocate: %u\n"),
215 program_name, Free_list::num_allocates);
216 fprintf(stderr, _("%s: nodes visited: %u\n"),
217 program_name, Free_list::num_allocate_visits);
218}
219
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220// Layout::Relaxation_debug_check methods.
221
222// Check that sections and special data are in reset states.
223// We do not save states for Output_sections and special Output_data.
224// So we check that they have not assigned any addresses or offsets.
225// clean_up_after_relaxation simply resets their addresses and offsets.
226void
227Layout::Relaxation_debug_check::check_output_data_for_reset_values(
228 const Layout::Section_list& sections,
229 const Layout::Data_list& special_outputs)
230{
231 for(Layout::Section_list::const_iterator p = sections.begin();
232 p != sections.end();
233 ++p)
234 gold_assert((*p)->address_and_file_offset_have_reset_values());
235
236 for(Layout::Data_list::const_iterator p = special_outputs.begin();
237 p != special_outputs.end();
238 ++p)
239 gold_assert((*p)->address_and_file_offset_have_reset_values());
240}
241
242// Save information of SECTIONS for checking later.
243
244void
245Layout::Relaxation_debug_check::read_sections(
246 const Layout::Section_list& sections)
247{
248 for(Layout::Section_list::const_iterator p = sections.begin();
249 p != sections.end();
250 ++p)
251 {
252 Output_section* os = *p;
253 Section_info info;
254 info.output_section = os;
255 info.address = os->is_address_valid() ? os->address() : 0;
256 info.data_size = os->is_data_size_valid() ? os->data_size() : -1;
257 info.offset = os->is_offset_valid()? os->offset() : -1 ;
258 this->section_infos_.push_back(info);
259 }
260}
261
262// Verify SECTIONS using previously recorded information.
263
264void
265Layout::Relaxation_debug_check::verify_sections(
266 const Layout::Section_list& sections)
267{
268 size_t i = 0;
269 for(Layout::Section_list::const_iterator p = sections.begin();
270 p != sections.end();
271 ++p, ++i)
272 {
273 Output_section* os = *p;
274 uint64_t address = os->is_address_valid() ? os->address() : 0;
275 off_t data_size = os->is_data_size_valid() ? os->data_size() : -1;
276 off_t offset = os->is_offset_valid()? os->offset() : -1 ;
277
278 if (i >= this->section_infos_.size())
279 {
280 gold_fatal("Section_info of %s missing.\n", os->name());
281 }
282 const Section_info& info = this->section_infos_[i];
283 if (os != info.output_section)
284 gold_fatal("Section order changed. Expecting %s but see %s\n",
285 info.output_section->name(), os->name());
286 if (address != info.address
287 || data_size != info.data_size
288 || offset != info.offset)
289 gold_fatal("Section %s changed.\n", os->name());
290 }
291}
292
92e059d8 293// Layout_task_runner methods.
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294
295// Lay out the sections. This is called after all the input objects
296// have been read.
297
298void
17a1d0a9 299Layout_task_runner::run(Workqueue* workqueue, const Task* task)
a2fb1b05 300{
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301 Layout* layout = this->layout_;
302 off_t file_size = layout->finalize(this->input_objects_,
303 this->symtab_,
304 this->target_,
305 task);
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306
307 // Now we know the final size of the output file and we know where
308 // each piece of information goes.
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309
310 if (this->mapfile_ != NULL)
311 {
312 this->mapfile_->print_discarded_sections(this->input_objects_);
94a3fc8b 313 layout->print_to_mapfile(this->mapfile_);
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314 }
315
cdc29364 316 Output_file* of;
94a3fc8b 317 if (layout->incremental_base() == NULL)
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318 {
319 of = new Output_file(parameters->options().output_file_name());
320 if (this->options_.oformat_enum() != General_options::OBJECT_FORMAT_ELF)
321 of->set_is_temporary();
322 of->open(file_size);
323 }
324 else
325 {
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326 of = layout->incremental_base()->output_file();
327
328 // Apply the incremental relocations for symbols whose values
329 // have changed. We do this before we resize the file and start
330 // writing anything else to it, so that we can read the old
331 // incremental information from the file before (possibly)
332 // overwriting it.
333 if (parameters->incremental_update())
334 layout->incremental_base()->apply_incremental_relocs(this->symtab_,
335 this->layout_,
336 of);
337
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338 of->resize(file_size);
339 }
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340
341 // Queue up the final set of tasks.
342 gold::queue_final_tasks(this->options_, this->input_objects_,
94a3fc8b 343 this->symtab_, layout, workqueue, of);
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344}
345
346// Layout methods.
347
2ea97941 348Layout::Layout(int number_of_input_files, Script_options* script_options)
e55bde5e 349 : number_of_input_files_(number_of_input_files),
2ea97941 350 script_options_(script_options),
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351 namepool_(),
352 sympool_(),
353 dynpool_(),
354 signatures_(),
355 section_name_map_(),
356 segment_list_(),
357 section_list_(),
358 unattached_section_list_(),
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359 special_output_list_(),
360 section_headers_(NULL),
361 tls_segment_(NULL),
9f1d377b 362 relro_segment_(NULL),
10b4f102 363 interp_segment_(NULL),
1a2dff53 364 increase_relro_(0),
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365 symtab_section_(NULL),
366 symtab_xindex_(NULL),
367 dynsym_section_(NULL),
368 dynsym_xindex_(NULL),
369 dynamic_section_(NULL),
f0ba79e2 370 dynamic_symbol_(NULL),
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371 dynamic_data_(NULL),
372 eh_frame_section_(NULL),
373 eh_frame_data_(NULL),
374 added_eh_frame_data_(false),
375 eh_frame_hdr_section_(NULL),
376 build_id_note_(NULL),
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377 debug_abbrev_(NULL),
378 debug_info_(NULL),
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379 group_signatures_(),
380 output_file_size_(-1),
d7bb5745 381 have_added_input_section_(false),
e55bde5e 382 sections_are_attached_(false),
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383 input_requires_executable_stack_(false),
384 input_with_gnu_stack_note_(false),
535890bb 385 input_without_gnu_stack_note_(false),
17a1d0a9 386 has_static_tls_(false),
e55bde5e 387 any_postprocessing_sections_(false),
3ce2c28e 388 resized_signatures_(false),
1518dc8f 389 have_stabstr_section_(false),
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390 incremental_inputs_(NULL),
391 record_output_section_data_from_script_(false),
392 script_output_section_data_list_(),
393 segment_states_(NULL),
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394 relaxation_debug_check_(NULL),
395 incremental_base_(NULL),
396 free_list_()
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397{
398 // Make space for more than enough segments for a typical file.
399 // This is just for efficiency--it's OK if we wind up needing more.
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400 this->segment_list_.reserve(12);
401
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402 // We expect two unattached Output_data objects: the file header and
403 // the segment headers.
404 this->special_output_list_.reserve(2);
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405
406 // Initialize structure needed for an incremental build.
8c21d9d3 407 if (parameters->incremental())
3ce2c28e 408 this->incremental_inputs_ = new Incremental_inputs;
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409
410 // The section name pool is worth optimizing in all cases, because
411 // it is small, but there are often overlaps due to .rel sections.
412 this->namepool_.set_optimize();
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413}
414
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415// For incremental links, record the base file to be modified.
416
417void
418Layout::set_incremental_base(Incremental_binary* base)
419{
420 this->incremental_base_ = base;
421 this->free_list_.init(base->output_file()->filesize(), true);
422}
423
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424// Hash a key we use to look up an output section mapping.
425
426size_t
427Layout::Hash_key::operator()(const Layout::Key& k) const
428{
f0641a0b 429 return k.first + k.second.first + k.second.second;
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430}
431
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432// Returns whether the given section is in the list of
433// debug-sections-used-by-some-version-of-gdb. Currently,
434// we've checked versions of gdb up to and including 6.7.1.
435
436static const char* gdb_sections[] =
437{ ".debug_abbrev",
438 // ".debug_aranges", // not used by gdb as of 6.7.1
439 ".debug_frame",
440 ".debug_info",
a0506cca 441 ".debug_types",
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442 ".debug_line",
443 ".debug_loc",
444 ".debug_macinfo",
445 // ".debug_pubnames", // not used by gdb as of 6.7.1
446 ".debug_ranges",
447 ".debug_str",
448};
449
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450static const char* lines_only_debug_sections[] =
451{ ".debug_abbrev",
452 // ".debug_aranges", // not used by gdb as of 6.7.1
453 // ".debug_frame",
454 ".debug_info",
a0506cca 455 // ".debug_types",
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456 ".debug_line",
457 // ".debug_loc",
458 // ".debug_macinfo",
459 // ".debug_pubnames", // not used by gdb as of 6.7.1
460 // ".debug_ranges",
461 ".debug_str",
462};
463
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464static inline bool
465is_gdb_debug_section(const char* str)
466{
467 // We can do this faster: binary search or a hashtable. But why bother?
468 for (size_t i = 0; i < sizeof(gdb_sections)/sizeof(*gdb_sections); ++i)
469 if (strcmp(str, gdb_sections[i]) == 0)
470 return true;
471 return false;
472}
473
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474static inline bool
475is_lines_only_debug_section(const char* str)
476{
477 // We can do this faster: binary search or a hashtable. But why bother?
478 for (size_t i = 0;
479 i < sizeof(lines_only_debug_sections)/sizeof(*lines_only_debug_sections);
480 ++i)
481 if (strcmp(str, lines_only_debug_sections[i]) == 0)
482 return true;
483 return false;
484}
485
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486// Sometimes we compress sections. This is typically done for
487// sections that are not part of normal program execution (such as
488// .debug_* sections), and where the readers of these sections know
489// how to deal with compressed sections. This routine doesn't say for
490// certain whether we'll compress -- it depends on commandline options
491// as well -- just whether this section is a candidate for compression.
492// (The Output_compressed_section class decides whether to compress
493// a given section, and picks the name of the compressed section.)
494
495static bool
496is_compressible_debug_section(const char* secname)
497{
498 return (is_prefix_of(".debug", secname));
499}
500
501// We may see compressed debug sections in input files. Return TRUE
502// if this is the name of a compressed debug section.
503
504bool
505is_compressed_debug_section(const char* secname)
506{
507 return (is_prefix_of(".zdebug", secname));
508}
509
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510// Whether to include this section in the link.
511
512template<int size, bool big_endian>
513bool
6fa2a40b 514Layout::include_section(Sized_relobj_file<size, big_endian>*, const char* name,
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515 const elfcpp::Shdr<size, big_endian>& shdr)
516{
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517 if (shdr.get_sh_flags() & elfcpp::SHF_EXCLUDE)
518 return false;
519
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520 switch (shdr.get_sh_type())
521 {
522 case elfcpp::SHT_NULL:
523 case elfcpp::SHT_SYMTAB:
524 case elfcpp::SHT_DYNSYM:
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525 case elfcpp::SHT_HASH:
526 case elfcpp::SHT_DYNAMIC:
527 case elfcpp::SHT_SYMTAB_SHNDX:
528 return false;
529
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530 case elfcpp::SHT_STRTAB:
531 // Discard the sections which have special meanings in the ELF
532 // ABI. Keep others (e.g., .stabstr). We could also do this by
533 // checking the sh_link fields of the appropriate sections.
534 return (strcmp(name, ".dynstr") != 0
535 && strcmp(name, ".strtab") != 0
536 && strcmp(name, ".shstrtab") != 0);
537
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538 case elfcpp::SHT_RELA:
539 case elfcpp::SHT_REL:
540 case elfcpp::SHT_GROUP:
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541 // If we are emitting relocations these should be handled
542 // elsewhere.
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543 gold_assert(!parameters->options().relocatable()
544 && !parameters->options().emit_relocs());
6a74a719 545 return false;
a2fb1b05 546
9e2dcb77 547 case elfcpp::SHT_PROGBITS:
8851ecca 548 if (parameters->options().strip_debug()
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549 && (shdr.get_sh_flags() & elfcpp::SHF_ALLOC) == 0)
550 {
e94cf127 551 if (is_debug_info_section(name))
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552 return false;
553 }
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554 if (parameters->options().strip_debug_non_line()
555 && (shdr.get_sh_flags() & elfcpp::SHF_ALLOC) == 0)
556 {
557 // Debugging sections can only be recognized by name.
558 if (is_prefix_of(".debug", name)
559 && !is_lines_only_debug_section(name))
560 return false;
561 }
8851ecca 562 if (parameters->options().strip_debug_gdb()
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563 && (shdr.get_sh_flags() & elfcpp::SHF_ALLOC) == 0)
564 {
565 // Debugging sections can only be recognized by name.
566 if (is_prefix_of(".debug", name)
567 && !is_gdb_debug_section(name))
568 return false;
569 }
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570 if (parameters->options().strip_lto_sections()
571 && !parameters->options().relocatable()
572 && (shdr.get_sh_flags() & elfcpp::SHF_ALLOC) == 0)
573 {
574 // Ignore LTO sections containing intermediate code.
575 if (is_prefix_of(".gnu.lto_", name))
576 return false;
577 }
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578 // The GNU linker strips .gnu_debuglink sections, so we do too.
579 // This is a feature used to keep debugging information in
580 // separate files.
581 if (strcmp(name, ".gnu_debuglink") == 0)
582 return false;
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583 return true;
584
a2fb1b05 585 default:
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586 return true;
587 }
588}
589
ead1e424 590// Return an output section named NAME, or NULL if there is none.
a2fb1b05 591
a2fb1b05 592Output_section*
ead1e424 593Layout::find_output_section(const char* name) const
a2fb1b05 594{
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595 for (Section_list::const_iterator p = this->section_list_.begin();
596 p != this->section_list_.end();
ead1e424 597 ++p)
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598 if (strcmp((*p)->name(), name) == 0)
599 return *p;
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600 return NULL;
601}
a2fb1b05 602
ead1e424
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603// Return an output segment of type TYPE, with segment flags SET set
604// and segment flags CLEAR clear. Return NULL if there is none.
a2fb1b05 605
ead1e424
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606Output_segment*
607Layout::find_output_segment(elfcpp::PT type, elfcpp::Elf_Word set,
608 elfcpp::Elf_Word clear) const
609{
610 for (Segment_list::const_iterator p = this->segment_list_.begin();
611 p != this->segment_list_.end();
612 ++p)
613 if (static_cast<elfcpp::PT>((*p)->type()) == type
614 && ((*p)->flags() & set) == set
615 && ((*p)->flags() & clear) == 0)
616 return *p;
617 return NULL;
618}
a2fb1b05 619
ead1e424 620// Return the output section to use for section NAME with type TYPE
a445fddf 621// and section flags FLAGS. NAME must be canonicalized in the string
10b4f102
ILT
622// pool, and NAME_KEY is the key. ORDER is where this should appear
623// in the output sections. IS_RELRO is true for a relro section.
a2fb1b05 624
ead1e424 625Output_section*
f0641a0b 626Layout::get_output_section(const char* name, Stringpool::Key name_key,
f5c870d2 627 elfcpp::Elf_Word type, elfcpp::Elf_Xword flags,
22f0da72 628 Output_section_order order, bool is_relro)
ead1e424 629{
154e0e9a
ILT
630 elfcpp::Elf_Xword lookup_flags = flags;
631
632 // Ignoring SHF_WRITE and SHF_EXECINSTR here means that we combine
633 // read-write with read-only sections. Some other ELF linkers do
634 // not do this. FIXME: Perhaps there should be an option
635 // controlling this.
636 lookup_flags &= ~(elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR);
637
638 const Key key(name_key, std::make_pair(type, lookup_flags));
a2fb1b05
ILT
639 const std::pair<Key, Output_section*> v(key, NULL);
640 std::pair<Section_name_map::iterator, bool> ins(
641 this->section_name_map_.insert(v));
642
a2fb1b05 643 if (!ins.second)
ead1e424 644 return ins.first->second;
a2fb1b05
ILT
645 else
646 {
647 // This is the first time we've seen this name/type/flags
4e2b1697
ILT
648 // combination. For compatibility with the GNU linker, we
649 // combine sections with contents and zero flags with sections
650 // with non-zero flags. This is a workaround for cases where
651 // assembler code forgets to set section flags. FIXME: Perhaps
652 // there should be an option to control this.
15cf077e 653 Output_section* os = NULL;
4e2b1697
ILT
654
655 if (type == elfcpp::SHT_PROGBITS)
15cf077e 656 {
4e2b1697
ILT
657 if (flags == 0)
658 {
659 Output_section* same_name = this->find_output_section(name);
660 if (same_name != NULL
661 && same_name->type() == elfcpp::SHT_PROGBITS
662 && (same_name->flags() & elfcpp::SHF_TLS) == 0)
663 os = same_name;
664 }
665 else if ((flags & elfcpp::SHF_TLS) == 0)
666 {
667 elfcpp::Elf_Xword zero_flags = 0;
668 const Key zero_key(name_key, std::make_pair(type, zero_flags));
669 Section_name_map::iterator p =
670 this->section_name_map_.find(zero_key);
671 if (p != this->section_name_map_.end())
154e0e9a 672 os = p->second;
4e2b1697 673 }
15cf077e 674 }
4e2b1697 675
15cf077e 676 if (os == NULL)
22f0da72
ILT
677 os = this->make_output_section(name, type, flags, order, is_relro);
678
a2fb1b05 679 ins.first->second = os;
ead1e424 680 return os;
a2fb1b05 681 }
ead1e424
ILT
682}
683
a445fddf
ILT
684// Pick the output section to use for section NAME, in input file
685// RELOBJ, with type TYPE and flags FLAGS. RELOBJ may be NULL for a
154e0e9a
ILT
686// linker created section. IS_INPUT_SECTION is true if we are
687// choosing an output section for an input section found in a input
10b4f102
ILT
688// file. ORDER is where this section should appear in the output
689// sections. IS_RELRO is true for a relro section. This will return
690// NULL if the input section should be discarded.
a445fddf
ILT
691
692Output_section*
693Layout::choose_output_section(const Relobj* relobj, const char* name,
694 elfcpp::Elf_Word type, elfcpp::Elf_Xword flags,
22f0da72
ILT
695 bool is_input_section, Output_section_order order,
696 bool is_relro)
a445fddf 697{
154e0e9a
ILT
698 // We should not see any input sections after we have attached
699 // sections to segments.
700 gold_assert(!is_input_section || !this->sections_are_attached_);
701
702 // Some flags in the input section should not be automatically
703 // copied to the output section.
a445fddf 704 flags &= ~ (elfcpp::SHF_INFO_LINK
a445fddf
ILT
705 | elfcpp::SHF_GROUP
706 | elfcpp::SHF_MERGE
707 | elfcpp::SHF_STRINGS);
708
c9484ea5
DK
709 // We only clear the SHF_LINK_ORDER flag in for
710 // a non-relocatable link.
711 if (!parameters->options().relocatable())
712 flags &= ~elfcpp::SHF_LINK_ORDER;
713
a445fddf
ILT
714 if (this->script_options_->saw_sections_clause())
715 {
716 // We are using a SECTIONS clause, so the output section is
717 // chosen based only on the name.
718
719 Script_sections* ss = this->script_options_->script_sections();
720 const char* file_name = relobj == NULL ? NULL : relobj->name().c_str();
721 Output_section** output_section_slot;
1e5d2fb1 722 Script_sections::Section_type script_section_type;
7f8cd844 723 const char* orig_name = name;
1e5d2fb1
DK
724 name = ss->output_section_name(file_name, name, &output_section_slot,
725 &script_section_type);
a445fddf
ILT
726 if (name == NULL)
727 {
7f8cd844
NC
728 gold_debug(DEBUG_SCRIPT, _("Unable to create output section '%s' "
729 "because it is not allowed by the "
730 "SECTIONS clause of the linker script"),
731 orig_name);
a445fddf
ILT
732 // The SECTIONS clause says to discard this input section.
733 return NULL;
734 }
735
1e5d2fb1
DK
736 // We can only handle script section types ST_NONE and ST_NOLOAD.
737 switch (script_section_type)
738 {
739 case Script_sections::ST_NONE:
740 break;
741 case Script_sections::ST_NOLOAD:
742 flags &= elfcpp::SHF_ALLOC;
743 break;
744 default:
745 gold_unreachable();
746 }
747
a445fddf
ILT
748 // If this is an orphan section--one not mentioned in the linker
749 // script--then OUTPUT_SECTION_SLOT will be NULL, and we do the
750 // default processing below.
751
752 if (output_section_slot != NULL)
753 {
754 if (*output_section_slot != NULL)
9c547ec3
ILT
755 {
756 (*output_section_slot)->update_flags_for_input_section(flags);
757 return *output_section_slot;
758 }
a445fddf
ILT
759
760 // We don't put sections found in the linker script into
761 // SECTION_NAME_MAP_. That keeps us from getting confused
762 // if an orphan section is mapped to a section with the same
763 // name as one in the linker script.
764
765 name = this->namepool_.add(name, false, NULL);
766
22f0da72
ILT
767 Output_section* os = this->make_output_section(name, type, flags,
768 order, is_relro);
769
a445fddf 770 os->set_found_in_sections_clause();
1e5d2fb1
DK
771
772 // Special handling for NOLOAD sections.
773 if (script_section_type == Script_sections::ST_NOLOAD)
774 {
775 os->set_is_noload();
776
777 // The constructor of Output_section sets addresses of non-ALLOC
778 // sections to 0 by default. We don't want that for NOLOAD
779 // sections even if they have no SHF_ALLOC flag.
780 if ((os->flags() & elfcpp::SHF_ALLOC) == 0
781 && os->is_address_valid())
782 {
783 gold_assert(os->address() == 0
784 && !os->is_offset_valid()
785 && !os->is_data_size_valid());
786 os->reset_address_and_file_offset();
787 }
788 }
789
a445fddf
ILT
790 *output_section_slot = os;
791 return os;
792 }
793 }
794
795 // FIXME: Handle SHF_OS_NONCONFORMING somewhere.
796
6fc6ea19
CC
797 size_t len = strlen(name);
798 char* uncompressed_name = NULL;
799
800 // Compressed debug sections should be mapped to the corresponding
801 // uncompressed section.
802 if (is_compressed_debug_section(name))
803 {
804 uncompressed_name = new char[len];
805 uncompressed_name[0] = '.';
806 gold_assert(name[0] == '.' && name[1] == 'z');
807 strncpy(&uncompressed_name[1], &name[2], len - 2);
808 uncompressed_name[len - 1] = '\0';
809 len -= 1;
810 name = uncompressed_name;
811 }
812
a445fddf
ILT
813 // Turn NAME from the name of the input section into the name of the
814 // output section.
401a9a73
CC
815 if (is_input_section
816 && !this->script_options_->saw_sections_clause()
817 && !parameters->options().relocatable())
a445fddf
ILT
818 name = Layout::output_section_name(name, &len);
819
820 Stringpool::Key name_key;
821 name = this->namepool_.add_with_length(name, len, true, &name_key);
822
6fc6ea19
CC
823 if (uncompressed_name != NULL)
824 delete[] uncompressed_name;
825
a445fddf
ILT
826 // Find or make the output section. The output section is selected
827 // based on the section name, type, and flags.
22f0da72 828 return this->get_output_section(name, name_key, type, flags, order, is_relro);
a445fddf
ILT
829}
830
cdc29364
CC
831// For incremental links, record the initial fixed layout of a section
832// from the base file, and return a pointer to the Output_section.
833
834template<int size, bool big_endian>
835Output_section*
836Layout::init_fixed_output_section(const char* name,
837 elfcpp::Shdr<size, big_endian>& shdr)
838{
839 unsigned int sh_type = shdr.get_sh_type();
840
841 // We preserve the layout of PROGBITS, NOBITS, and NOTE sections.
842 // All others will be created from scratch and reallocated.
843 if (sh_type != elfcpp::SHT_PROGBITS
844 && sh_type != elfcpp::SHT_NOBITS
845 && sh_type != elfcpp::SHT_NOTE)
846 return NULL;
847
848 typename elfcpp::Elf_types<size>::Elf_Addr sh_addr = shdr.get_sh_addr();
849 typename elfcpp::Elf_types<size>::Elf_Off sh_offset = shdr.get_sh_offset();
850 typename elfcpp::Elf_types<size>::Elf_WXword sh_size = shdr.get_sh_size();
851 typename elfcpp::Elf_types<size>::Elf_WXword sh_flags = shdr.get_sh_flags();
852 typename elfcpp::Elf_types<size>::Elf_WXword sh_addralign =
853 shdr.get_sh_addralign();
854
855 // Make the output section.
856 Stringpool::Key name_key;
857 name = this->namepool_.add(name, true, &name_key);
858 Output_section* os = this->get_output_section(name, name_key, sh_type,
859 sh_flags, ORDER_INVALID, false);
860 os->set_fixed_layout(sh_addr, sh_offset, sh_size, sh_addralign);
861 if (sh_type != elfcpp::SHT_NOBITS)
862 this->free_list_.remove(sh_offset, sh_offset + sh_size);
863 return os;
864}
865
ead1e424 866// Return the output section to use for input section SHNDX, with name
730cdc88
ILT
867// NAME, with header HEADER, from object OBJECT. RELOC_SHNDX is the
868// index of a relocation section which applies to this section, or 0
869// if none, or -1U if more than one. RELOC_TYPE is the type of the
870// relocation section if there is one. Set *OFF to the offset of this
871// input section without the output section. Return NULL if the
872// section should be discarded. Set *OFF to -1 if the section
873// contents should not be written directly to the output file, but
874// will instead receive special handling.
ead1e424
ILT
875
876template<int size, bool big_endian>
877Output_section*
6fa2a40b 878Layout::layout(Sized_relobj_file<size, big_endian>* object, unsigned int shndx,
730cdc88
ILT
879 const char* name, const elfcpp::Shdr<size, big_endian>& shdr,
880 unsigned int reloc_shndx, unsigned int, off_t* off)
ead1e424 881{
ef9beddf
ILT
882 *off = 0;
883
ead1e424
ILT
884 if (!this->include_section(object, name, shdr))
885 return NULL;
886
6a74a719
ILT
887 Output_section* os;
888
2a0ff005
DK
889 // Sometimes .init_array*, .preinit_array* and .fini_array* do not have
890 // correct section types. Force them here.
891 elfcpp::Elf_Word sh_type = shdr.get_sh_type();
892 if (sh_type == elfcpp::SHT_PROGBITS)
893 {
894 static const char init_array_prefix[] = ".init_array";
895 static const char preinit_array_prefix[] = ".preinit_array";
896 static const char fini_array_prefix[] = ".fini_array";
897 static size_t init_array_prefix_size = sizeof(init_array_prefix) - 1;
898 static size_t preinit_array_prefix_size =
899 sizeof(preinit_array_prefix) - 1;
900 static size_t fini_array_prefix_size = sizeof(fini_array_prefix) - 1;
901
902 if (strncmp(name, init_array_prefix, init_array_prefix_size) == 0)
903 sh_type = elfcpp::SHT_INIT_ARRAY;
904 else if (strncmp(name, preinit_array_prefix, preinit_array_prefix_size)
905 == 0)
906 sh_type = elfcpp::SHT_PREINIT_ARRAY;
907 else if (strncmp(name, fini_array_prefix, fini_array_prefix_size) == 0)
908 sh_type = elfcpp::SHT_FINI_ARRAY;
909 }
910
6a74a719
ILT
911 // In a relocatable link a grouped section must not be combined with
912 // any other sections.
8851ecca 913 if (parameters->options().relocatable()
6a74a719
ILT
914 && (shdr.get_sh_flags() & elfcpp::SHF_GROUP) != 0)
915 {
916 name = this->namepool_.add(name, true, NULL);
22f0da72
ILT
917 os = this->make_output_section(name, sh_type, shdr.get_sh_flags(),
918 ORDER_INVALID, false);
6a74a719
ILT
919 }
920 else
921 {
2a0ff005 922 os = this->choose_output_section(object, name, sh_type,
22f0da72
ILT
923 shdr.get_sh_flags(), true,
924 ORDER_INVALID, false);
6a74a719
ILT
925 if (os == NULL)
926 return NULL;
927 }
a2fb1b05 928
2fd32231
ILT
929 // By default the GNU linker sorts input sections whose names match
930 // .ctor.*, .dtor.*, .init_array.*, or .fini_array.*. The sections
931 // are sorted by name. This is used to implement constructor
932 // priority ordering. We are compatible.
933 if (!this->script_options_->saw_sections_clause()
934 && (is_prefix_of(".ctors.", name)
935 || is_prefix_of(".dtors.", name)
936 || is_prefix_of(".init_array.", name)
937 || is_prefix_of(".fini_array.", name)))
938 os->set_must_sort_attached_input_sections();
939
a2fb1b05
ILT
940 // FIXME: Handle SHF_LINK_ORDER somewhere.
941
5b7b7d6e
ILT
942 elfcpp::Elf_Xword orig_flags = os->flags();
943
6e9ba2ca 944 *off = os->add_input_section(this, object, shndx, name, shdr, reloc_shndx,
a445fddf 945 this->script_options_->saw_sections_clause());
5b7b7d6e
ILT
946
947 // If the flags changed, we may have to change the order.
948 if ((orig_flags & elfcpp::SHF_ALLOC) != 0)
949 {
950 orig_flags &= (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR);
951 elfcpp::Elf_Xword new_flags =
952 os->flags() & (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR);
953 if (orig_flags != new_flags)
954 os->set_order(this->default_section_order(os, false));
955 }
956
d7bb5745 957 this->have_added_input_section_ = true;
a2fb1b05
ILT
958
959 return os;
960}
961
6a74a719
ILT
962// Handle a relocation section when doing a relocatable link.
963
964template<int size, bool big_endian>
965Output_section*
6fa2a40b 966Layout::layout_reloc(Sized_relobj_file<size, big_endian>* object,
6a74a719
ILT
967 unsigned int,
968 const elfcpp::Shdr<size, big_endian>& shdr,
969 Output_section* data_section,
970 Relocatable_relocs* rr)
971{
8851ecca
ILT
972 gold_assert(parameters->options().relocatable()
973 || parameters->options().emit_relocs());
6a74a719
ILT
974
975 int sh_type = shdr.get_sh_type();
976
977 std::string name;
978 if (sh_type == elfcpp::SHT_REL)
979 name = ".rel";
980 else if (sh_type == elfcpp::SHT_RELA)
981 name = ".rela";
982 else
983 gold_unreachable();
984 name += data_section->name();
985
bd288ea2
ILT
986 // In a relocatable link relocs for a grouped section must not be
987 // combined with other reloc sections.
988 Output_section* os;
989 if (!parameters->options().relocatable()
990 || (data_section->flags() & elfcpp::SHF_GROUP) == 0)
991 os = this->choose_output_section(object, name.c_str(), sh_type,
22f0da72
ILT
992 shdr.get_sh_flags(), false,
993 ORDER_INVALID, false);
bd288ea2
ILT
994 else
995 {
996 const char* n = this->namepool_.add(name.c_str(), true, NULL);
997 os = this->make_output_section(n, sh_type, shdr.get_sh_flags(),
22f0da72 998 ORDER_INVALID, false);
bd288ea2 999 }
6a74a719
ILT
1000
1001 os->set_should_link_to_symtab();
1002 os->set_info_section(data_section);
1003
1004 Output_section_data* posd;
1005 if (sh_type == elfcpp::SHT_REL)
1006 {
1007 os->set_entsize(elfcpp::Elf_sizes<size>::rel_size);
1008 posd = new Output_relocatable_relocs<elfcpp::SHT_REL,
1009 size,
1010 big_endian>(rr);
1011 }
1012 else if (sh_type == elfcpp::SHT_RELA)
1013 {
1014 os->set_entsize(elfcpp::Elf_sizes<size>::rela_size);
1015 posd = new Output_relocatable_relocs<elfcpp::SHT_RELA,
1016 size,
1017 big_endian>(rr);
1018 }
1019 else
1020 gold_unreachable();
1021
1022 os->add_output_section_data(posd);
1023 rr->set_output_data(posd);
1024
1025 return os;
1026}
1027
1028// Handle a group section when doing a relocatable link.
1029
1030template<int size, bool big_endian>
1031void
1032Layout::layout_group(Symbol_table* symtab,
6fa2a40b 1033 Sized_relobj_file<size, big_endian>* object,
6a74a719
ILT
1034 unsigned int,
1035 const char* group_section_name,
1036 const char* signature,
1037 const elfcpp::Shdr<size, big_endian>& shdr,
8825ac63
ILT
1038 elfcpp::Elf_Word flags,
1039 std::vector<unsigned int>* shndxes)
6a74a719 1040{
8851ecca 1041 gold_assert(parameters->options().relocatable());
6a74a719
ILT
1042 gold_assert(shdr.get_sh_type() == elfcpp::SHT_GROUP);
1043 group_section_name = this->namepool_.add(group_section_name, true, NULL);
1044 Output_section* os = this->make_output_section(group_section_name,
1045 elfcpp::SHT_GROUP,
f5c870d2 1046 shdr.get_sh_flags(),
22f0da72 1047 ORDER_INVALID, false);
6a74a719
ILT
1048
1049 // We need to find a symbol with the signature in the symbol table.
755ab8af 1050 // If we don't find one now, we need to look again later.
6a74a719 1051 Symbol* sym = symtab->lookup(signature, NULL);
755ab8af
ILT
1052 if (sym != NULL)
1053 os->set_info_symndx(sym);
1054 else
1055 {
e55bde5e
ILT
1056 // Reserve some space to minimize reallocations.
1057 if (this->group_signatures_.empty())
1058 this->group_signatures_.reserve(this->number_of_input_files_ * 16);
1059
755ab8af
ILT
1060 // We will wind up using a symbol whose name is the signature.
1061 // So just put the signature in the symbol name pool to save it.
1062 signature = symtab->canonicalize_name(signature);
1063 this->group_signatures_.push_back(Group_signature(os, signature));
1064 }
6a74a719
ILT
1065
1066 os->set_should_link_to_symtab();
6a74a719
ILT
1067 os->set_entsize(4);
1068
1069 section_size_type entry_count =
1070 convert_to_section_size_type(shdr.get_sh_size() / 4);
1071 Output_section_data* posd =
8825ac63
ILT
1072 new Output_data_group<size, big_endian>(object, entry_count, flags,
1073 shndxes);
6a74a719
ILT
1074 os->add_output_section_data(posd);
1075}
1076
730cdc88
ILT
1077// Special GNU handling of sections name .eh_frame. They will
1078// normally hold exception frame data as defined by the C++ ABI
1079// (http://codesourcery.com/cxx-abi/).
3151305a
ILT
1080
1081template<int size, bool big_endian>
730cdc88 1082Output_section*
6fa2a40b 1083Layout::layout_eh_frame(Sized_relobj_file<size, big_endian>* object,
730cdc88
ILT
1084 const unsigned char* symbols,
1085 off_t symbols_size,
1086 const unsigned char* symbol_names,
1087 off_t symbol_names_size,
3151305a 1088 unsigned int shndx,
3151305a 1089 const elfcpp::Shdr<size, big_endian>& shdr,
730cdc88
ILT
1090 unsigned int reloc_shndx, unsigned int reloc_type,
1091 off_t* off)
3151305a 1092{
730cdc88 1093 gold_assert(shdr.get_sh_type() == elfcpp::SHT_PROGBITS);
1650c4ff 1094 gold_assert((shdr.get_sh_flags() & elfcpp::SHF_ALLOC) != 0);
730cdc88 1095
a445fddf 1096 const char* const name = ".eh_frame";
22f0da72 1097 Output_section* os = this->choose_output_section(object, name,
a445fddf 1098 elfcpp::SHT_PROGBITS,
22f0da72
ILT
1099 elfcpp::SHF_ALLOC, false,
1100 ORDER_EHFRAME, false);
a445fddf
ILT
1101 if (os == NULL)
1102 return NULL;
730cdc88 1103
3151305a
ILT
1104 if (this->eh_frame_section_ == NULL)
1105 {
1106 this->eh_frame_section_ = os;
730cdc88 1107 this->eh_frame_data_ = new Eh_frame();
3151305a 1108
cdc29364
CC
1109 // For incremental linking, we do not optimize .eh_frame sections
1110 // or create a .eh_frame_hdr section.
1111 if (parameters->options().eh_frame_hdr() && !parameters->incremental())
3151305a 1112 {
3151305a 1113 Output_section* hdr_os =
22f0da72 1114 this->choose_output_section(NULL, ".eh_frame_hdr",
a445fddf 1115 elfcpp::SHT_PROGBITS,
22f0da72
ILT
1116 elfcpp::SHF_ALLOC, false,
1117 ORDER_EHFRAME, false);
3151305a 1118
a445fddf
ILT
1119 if (hdr_os != NULL)
1120 {
1121 Eh_frame_hdr* hdr_posd = new Eh_frame_hdr(os,
1122 this->eh_frame_data_);
1123 hdr_os->add_output_section_data(hdr_posd);
3151305a 1124
a445fddf 1125 hdr_os->set_after_input_sections();
730cdc88 1126
1c4f3631
ILT
1127 if (!this->script_options_->saw_phdrs_clause())
1128 {
1129 Output_segment* hdr_oseg;
1130 hdr_oseg = this->make_output_segment(elfcpp::PT_GNU_EH_FRAME,
1131 elfcpp::PF_R);
22f0da72
ILT
1132 hdr_oseg->add_output_section_to_nonload(hdr_os,
1133 elfcpp::PF_R);
1c4f3631 1134 }
730cdc88 1135
a445fddf
ILT
1136 this->eh_frame_data_->set_eh_frame_hdr(hdr_posd);
1137 }
3151305a
ILT
1138 }
1139 }
1140
1141 gold_assert(this->eh_frame_section_ == os);
1142
911a5072
ILT
1143 elfcpp::Elf_Xword orig_flags = os->flags();
1144
cdc29364
CC
1145 if (!parameters->incremental()
1146 && this->eh_frame_data_->add_ehframe_input_section(object,
1147 symbols,
1148 symbols_size,
1149 symbol_names,
1150 symbol_names_size,
1151 shndx,
1152 reloc_shndx,
1153 reloc_type))
2c38906f 1154 {
154e0e9a
ILT
1155 os->update_flags_for_input_section(shdr.get_sh_flags());
1156
3bb951e5 1157 // A writable .eh_frame section is a RELRO section.
911a5072
ILT
1158 if ((orig_flags & (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR))
1159 != (os->flags() & (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR)))
1160 {
1161 os->set_is_relro();
1162 os->set_order(ORDER_RELRO);
1163 }
3bb951e5 1164
2c38906f
ILT
1165 // We found a .eh_frame section we are going to optimize, so now
1166 // we can add the set of optimized sections to the output
1167 // section. We need to postpone adding this until we've found a
1168 // section we can optimize so that the .eh_frame section in
1169 // crtbegin.o winds up at the start of the output section.
1170 if (!this->added_eh_frame_data_)
1171 {
1172 os->add_output_section_data(this->eh_frame_data_);
1173 this->added_eh_frame_data_ = true;
1174 }
1175 *off = -1;
1176 }
730cdc88
ILT
1177 else
1178 {
1179 // We couldn't handle this .eh_frame section for some reason.
1180 // Add it as a normal section.
a445fddf 1181 bool saw_sections_clause = this->script_options_->saw_sections_clause();
6e9ba2ca 1182 *off = os->add_input_section(this, object, shndx, name, shdr, reloc_shndx,
a445fddf 1183 saw_sections_clause);
d7bb5745 1184 this->have_added_input_section_ = true;
911a5072
ILT
1185
1186 if ((orig_flags & (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR))
1187 != (os->flags() & (elfcpp::SHF_WRITE | elfcpp::SHF_EXECINSTR)))
1188 os->set_order(this->default_section_order(os, false));
730cdc88
ILT
1189 }
1190
1191 return os;
3151305a
ILT
1192}
1193
9f1d377b
ILT
1194// Add POSD to an output section using NAME, TYPE, and FLAGS. Return
1195// the output section.
ead1e424 1196
9f1d377b 1197Output_section*
ead1e424
ILT
1198Layout::add_output_section_data(const char* name, elfcpp::Elf_Word type,
1199 elfcpp::Elf_Xword flags,
f5c870d2 1200 Output_section_data* posd,
22f0da72 1201 Output_section_order order, bool is_relro)
ead1e424 1202{
a445fddf 1203 Output_section* os = this->choose_output_section(NULL, name, type, flags,
22f0da72 1204 false, order, is_relro);
a445fddf
ILT
1205 if (os != NULL)
1206 os->add_output_section_data(posd);
9f1d377b 1207 return os;
ead1e424
ILT
1208}
1209
a2fb1b05
ILT
1210// Map section flags to segment flags.
1211
1212elfcpp::Elf_Word
1213Layout::section_flags_to_segment(elfcpp::Elf_Xword flags)
1214{
1215 elfcpp::Elf_Word ret = elfcpp::PF_R;
1216 if ((flags & elfcpp::SHF_WRITE) != 0)
1217 ret |= elfcpp::PF_W;
1218 if ((flags & elfcpp::SHF_EXECINSTR) != 0)
1219 ret |= elfcpp::PF_X;
1220 return ret;
1221}
1222
1223// Make a new Output_section, and attach it to segments as
22f0da72
ILT
1224// appropriate. ORDER is the order in which this section should
1225// appear in the output segment. IS_RELRO is true if this is a relro
1226// (read-only after relocations) section.
a2fb1b05
ILT
1227
1228Output_section*
1229Layout::make_output_section(const char* name, elfcpp::Elf_Word type,
22f0da72
ILT
1230 elfcpp::Elf_Xword flags,
1231 Output_section_order order, bool is_relro)
a2fb1b05 1232{
96803768
ILT
1233 Output_section* os;
1234 if ((flags & elfcpp::SHF_ALLOC) == 0
e55bde5e 1235 && strcmp(parameters->options().compress_debug_sections(), "none") != 0
96803768 1236 && is_compressible_debug_section(name))
e55bde5e
ILT
1237 os = new Output_compressed_section(&parameters->options(), name, type,
1238 flags);
62b01cb5 1239 else if ((flags & elfcpp::SHF_ALLOC) == 0
e55bde5e 1240 && parameters->options().strip_debug_non_line()
62b01cb5
ILT
1241 && strcmp(".debug_abbrev", name) == 0)
1242 {
1243 os = this->debug_abbrev_ = new Output_reduced_debug_abbrev_section(
1244 name, type, flags);
1245 if (this->debug_info_)
1246 this->debug_info_->set_abbreviations(this->debug_abbrev_);
1247 }
1248 else if ((flags & elfcpp::SHF_ALLOC) == 0
e55bde5e 1249 && parameters->options().strip_debug_non_line()
62b01cb5
ILT
1250 && strcmp(".debug_info", name) == 0)
1251 {
1252 os = this->debug_info_ = new Output_reduced_debug_info_section(
1253 name, type, flags);
1254 if (this->debug_abbrev_)
1255 this->debug_info_->set_abbreviations(this->debug_abbrev_);
1256 }
09ec0418 1257 else
c0a62865
DK
1258 {
1259 // FIXME: const_cast is ugly.
1260 Target* target = const_cast<Target*>(&parameters->target());
1261 os = target->make_output_section(name, type, flags);
1262 }
96803768 1263
22f0da72
ILT
1264 // With -z relro, we have to recognize the special sections by name.
1265 // There is no other way.
1266 bool is_relro_local = false;
1267 if (!this->script_options_->saw_sections_clause()
1268 && parameters->options().relro()
1269 && type == elfcpp::SHT_PROGBITS
1270 && (flags & elfcpp::SHF_ALLOC) != 0
1271 && (flags & elfcpp::SHF_WRITE) != 0)
1272 {
1273 if (strcmp(name, ".data.rel.ro") == 0)
1274 is_relro = true;
1275 else if (strcmp(name, ".data.rel.ro.local") == 0)
1276 {
1277 is_relro = true;
1278 is_relro_local = true;
1279 }
1280 else if (type == elfcpp::SHT_INIT_ARRAY
1281 || type == elfcpp::SHT_FINI_ARRAY
1282 || type == elfcpp::SHT_PREINIT_ARRAY)
1283 is_relro = true;
1284 else if (strcmp(name, ".ctors") == 0
1285 || strcmp(name, ".dtors") == 0
1286 || strcmp(name, ".jcr") == 0)
1287 is_relro = true;
1288 }
1289
1a2dff53
ILT
1290 if (is_relro)
1291 os->set_is_relro();
22f0da72
ILT
1292
1293 if (order == ORDER_INVALID && (flags & elfcpp::SHF_ALLOC) != 0)
1294 order = this->default_section_order(os, is_relro_local);
1295
1296 os->set_order(order);
f5c870d2 1297
8a5e3e08
ILT
1298 parameters->target().new_output_section(os);
1299
a3ad94ed 1300 this->section_list_.push_back(os);
a2fb1b05 1301
2fd32231
ILT
1302 // The GNU linker by default sorts some sections by priority, so we
1303 // do the same. We need to know that this might happen before we
1304 // attach any input sections.
1305 if (!this->script_options_->saw_sections_clause()
1306 && (strcmp(name, ".ctors") == 0
1307 || strcmp(name, ".dtors") == 0
1308 || strcmp(name, ".init_array") == 0
1309 || strcmp(name, ".fini_array") == 0))
1310 os->set_may_sort_attached_input_sections();
1311
1518dc8f
ILT
1312 // Check for .stab*str sections, as .stab* sections need to link to
1313 // them.
1314 if (type == elfcpp::SHT_STRTAB
1315 && !this->have_stabstr_section_
1316 && strncmp(name, ".stab", 5) == 0
1317 && strcmp(name + strlen(name) - 3, "str") == 0)
1318 this->have_stabstr_section_ = true;
1319
154e0e9a
ILT
1320 // If we have already attached the sections to segments, then we
1321 // need to attach this one now. This happens for sections created
1322 // directly by the linker.
1323 if (this->sections_are_attached_)
1324 this->attach_section_to_segment(os);
1325
4e2b1697
ILT
1326 return os;
1327}
a445fddf 1328
22f0da72
ILT
1329// Return the default order in which a section should be placed in an
1330// output segment. This function captures a lot of the ideas in
1331// ld/scripttempl/elf.sc in the GNU linker. Note that the order of a
1332// linker created section is normally set when the section is created;
1333// this function is used for input sections.
1334
1335Output_section_order
1336Layout::default_section_order(Output_section* os, bool is_relro_local)
1337{
1338 gold_assert((os->flags() & elfcpp::SHF_ALLOC) != 0);
1339 bool is_write = (os->flags() & elfcpp::SHF_WRITE) != 0;
1340 bool is_execinstr = (os->flags() & elfcpp::SHF_EXECINSTR) != 0;
1341 bool is_bss = false;
1342
1343 switch (os->type())
1344 {
1345 default:
1346 case elfcpp::SHT_PROGBITS:
1347 break;
1348 case elfcpp::SHT_NOBITS:
1349 is_bss = true;
1350 break;
1351 case elfcpp::SHT_RELA:
1352 case elfcpp::SHT_REL:
1353 if (!is_write)
1354 return ORDER_DYNAMIC_RELOCS;
1355 break;
1356 case elfcpp::SHT_HASH:
1357 case elfcpp::SHT_DYNAMIC:
1358 case elfcpp::SHT_SHLIB:
1359 case elfcpp::SHT_DYNSYM:
1360 case elfcpp::SHT_GNU_HASH:
1361 case elfcpp::SHT_GNU_verdef:
1362 case elfcpp::SHT_GNU_verneed:
1363 case elfcpp::SHT_GNU_versym:
1364 if (!is_write)
1365 return ORDER_DYNAMIC_LINKER;
1366 break;
1367 case elfcpp::SHT_NOTE:
1368 return is_write ? ORDER_RW_NOTE : ORDER_RO_NOTE;
1369 }
1370
1371 if ((os->flags() & elfcpp::SHF_TLS) != 0)
1372 return is_bss ? ORDER_TLS_BSS : ORDER_TLS_DATA;
1373
1374 if (!is_bss && !is_write)
1375 {
1376 if (is_execinstr)
1377 {
1378 if (strcmp(os->name(), ".init") == 0)
1379 return ORDER_INIT;
1380 else if (strcmp(os->name(), ".fini") == 0)
1381 return ORDER_FINI;
1382 }
1383 return is_execinstr ? ORDER_TEXT : ORDER_READONLY;
1384 }
1385
1386 if (os->is_relro())
1387 return is_relro_local ? ORDER_RELRO_LOCAL : ORDER_RELRO;
1388
1389 if (os->is_small_section())
1390 return is_bss ? ORDER_SMALL_BSS : ORDER_SMALL_DATA;
1391 if (os->is_large_section())
1392 return is_bss ? ORDER_LARGE_BSS : ORDER_LARGE_DATA;
1393
1394 return is_bss ? ORDER_BSS : ORDER_DATA;
1395}
1396
154e0e9a
ILT
1397// Attach output sections to segments. This is called after we have
1398// seen all the input sections.
1399
1400void
1401Layout::attach_sections_to_segments()
1402{
1403 for (Section_list::iterator p = this->section_list_.begin();
1404 p != this->section_list_.end();
1405 ++p)
1406 this->attach_section_to_segment(*p);
1407
1408 this->sections_are_attached_ = true;
1409}
1410
1411// Attach an output section to a segment.
1412
1413void
1414Layout::attach_section_to_segment(Output_section* os)
1415{
1416 if ((os->flags() & elfcpp::SHF_ALLOC) == 0)
1417 this->unattached_section_list_.push_back(os);
1418 else
1419 this->attach_allocated_section_to_segment(os);
1420}
1421
4e2b1697 1422// Attach an allocated output section to a segment.
1c4f3631 1423
4e2b1697 1424void
154e0e9a 1425Layout::attach_allocated_section_to_segment(Output_section* os)
4e2b1697 1426{
154e0e9a 1427 elfcpp::Elf_Xword flags = os->flags();
4e2b1697 1428 gold_assert((flags & elfcpp::SHF_ALLOC) != 0);
a2fb1b05 1429
4e2b1697
ILT
1430 if (parameters->options().relocatable())
1431 return;
a2fb1b05 1432
4e2b1697
ILT
1433 // If we have a SECTIONS clause, we can't handle the attachment to
1434 // segments until after we've seen all the sections.
1435 if (this->script_options_->saw_sections_clause())
1436 return;
a2fb1b05 1437
4e2b1697 1438 gold_assert(!this->script_options_->saw_phdrs_clause());
756ac4a8 1439
4e2b1697 1440 // This output section goes into a PT_LOAD segment.
a2fb1b05 1441
4e2b1697 1442 elfcpp::Elf_Word seg_flags = Layout::section_flags_to_segment(flags);
a2fb1b05 1443
a192ba05
ILT
1444 // Check for --section-start.
1445 uint64_t addr;
1446 bool is_address_set = parameters->options().section_start(os->name(), &addr);
f5c870d2 1447
4e2b1697 1448 // In general the only thing we really care about for PT_LOAD
0f72bf6f
RÁE
1449 // segments is whether or not they are writable or executable,
1450 // so that is how we search for them.
1451 // Large data sections also go into their own PT_LOAD segment.
1452 // People who need segments sorted on some other basis will
1453 // have to use a linker script.
a2fb1b05 1454
4e2b1697
ILT
1455 Segment_list::const_iterator p;
1456 for (p = this->segment_list_.begin();
1457 p != this->segment_list_.end();
1458 ++p)
1459 {
8a5e3e08
ILT
1460 if ((*p)->type() != elfcpp::PT_LOAD)
1461 continue;
1462 if (!parameters->options().omagic()
1463 && ((*p)->flags() & elfcpp::PF_W) != (seg_flags & elfcpp::PF_W))
1464 continue;
0f72bf6f
RÁE
1465 if (parameters->options().rosegment()
1466 && ((*p)->flags() & elfcpp::PF_X) != (seg_flags & elfcpp::PF_X))
1467 continue;
8a5e3e08
ILT
1468 // If -Tbss was specified, we need to separate the data and BSS
1469 // segments.
1470 if (parameters->options().user_set_Tbss())
1471 {
1472 if ((os->type() == elfcpp::SHT_NOBITS)
1473 == (*p)->has_any_data_sections())
1474 continue;
1475 }
1476 if (os->is_large_data_section() && !(*p)->is_large_data_segment())
1477 continue;
4e2b1697 1478
a192ba05
ILT
1479 if (is_address_set)
1480 {
1481 if ((*p)->are_addresses_set())
1482 continue;
1483
1484 (*p)->add_initial_output_data(os);
1485 (*p)->update_flags_for_output_section(seg_flags);
1486 (*p)->set_addresses(addr, addr);
1487 break;
1488 }
1489
22f0da72 1490 (*p)->add_output_section_to_load(this, os, seg_flags);
8a5e3e08 1491 break;
4e2b1697 1492 }
54dc6425 1493
4e2b1697
ILT
1494 if (p == this->segment_list_.end())
1495 {
1496 Output_segment* oseg = this->make_output_segment(elfcpp::PT_LOAD,
1497 seg_flags);
8a5e3e08
ILT
1498 if (os->is_large_data_section())
1499 oseg->set_is_large_data_segment();
22f0da72 1500 oseg->add_output_section_to_load(this, os, seg_flags);
a192ba05
ILT
1501 if (is_address_set)
1502 oseg->set_addresses(addr, addr);
a2fb1b05
ILT
1503 }
1504
4e2b1697
ILT
1505 // If we see a loadable SHT_NOTE section, we create a PT_NOTE
1506 // segment.
1507 if (os->type() == elfcpp::SHT_NOTE)
1508 {
1509 // See if we already have an equivalent PT_NOTE segment.
1510 for (p = this->segment_list_.begin();
1511 p != segment_list_.end();
1512 ++p)
1513 {
1514 if ((*p)->type() == elfcpp::PT_NOTE
1515 && (((*p)->flags() & elfcpp::PF_W)
1516 == (seg_flags & elfcpp::PF_W)))
1517 {
22f0da72 1518 (*p)->add_output_section_to_nonload(os, seg_flags);
4e2b1697
ILT
1519 break;
1520 }
1521 }
1522
1523 if (p == this->segment_list_.end())
1524 {
1525 Output_segment* oseg = this->make_output_segment(elfcpp::PT_NOTE,
1526 seg_flags);
22f0da72 1527 oseg->add_output_section_to_nonload(os, seg_flags);
4e2b1697
ILT
1528 }
1529 }
1530
1531 // If we see a loadable SHF_TLS section, we create a PT_TLS
1532 // segment. There can only be one such segment.
1533 if ((flags & elfcpp::SHF_TLS) != 0)
1534 {
1535 if (this->tls_segment_ == NULL)
2d924fd9 1536 this->make_output_segment(elfcpp::PT_TLS, seg_flags);
22f0da72 1537 this->tls_segment_->add_output_section_to_nonload(os, seg_flags);
4e2b1697 1538 }
9f1d377b
ILT
1539
1540 // If -z relro is in effect, and we see a relro section, we create a
1541 // PT_GNU_RELRO segment. There can only be one such segment.
1542 if (os->is_relro() && parameters->options().relro())
1543 {
1544 gold_assert(seg_flags == (elfcpp::PF_R | elfcpp::PF_W));
1545 if (this->relro_segment_ == NULL)
2d924fd9 1546 this->make_output_segment(elfcpp::PT_GNU_RELRO, seg_flags);
22f0da72 1547 this->relro_segment_->add_output_section_to_nonload(os, seg_flags);
9f1d377b 1548 }
10b4f102 1549
e1f74f98
ILT
1550 // If we see a section named .interp, put it into a PT_INTERP
1551 // segment. This seems broken to me, but this is what GNU ld does,
1552 // and glibc expects it.
10b4f102 1553 if (strcmp(os->name(), ".interp") == 0
e1f74f98 1554 && !this->script_options_->saw_phdrs_clause())
10b4f102
ILT
1555 {
1556 if (this->interp_segment_ == NULL)
1557 this->make_output_segment(elfcpp::PT_INTERP, seg_flags);
e1f74f98
ILT
1558 else
1559 gold_warning(_("multiple '.interp' sections in input files "
1560 "may cause confusing PT_INTERP segment"));
10b4f102
ILT
1561 this->interp_segment_->add_output_section_to_nonload(os, seg_flags);
1562 }
a2fb1b05
ILT
1563}
1564
919ed24c
ILT
1565// Make an output section for a script.
1566
1567Output_section*
1e5d2fb1
DK
1568Layout::make_output_section_for_script(
1569 const char* name,
1570 Script_sections::Section_type section_type)
919ed24c
ILT
1571{
1572 name = this->namepool_.add(name, false, NULL);
1e5d2fb1
DK
1573 elfcpp::Elf_Xword sh_flags = elfcpp::SHF_ALLOC;
1574 if (section_type == Script_sections::ST_NOLOAD)
1575 sh_flags = 0;
919ed24c 1576 Output_section* os = this->make_output_section(name, elfcpp::SHT_PROGBITS,
22f0da72
ILT
1577 sh_flags, ORDER_INVALID,
1578 false);
919ed24c 1579 os->set_found_in_sections_clause();
1e5d2fb1
DK
1580 if (section_type == Script_sections::ST_NOLOAD)
1581 os->set_is_noload();
919ed24c
ILT
1582 return os;
1583}
1584
3802b2dd
ILT
1585// Return the number of segments we expect to see.
1586
1587size_t
1588Layout::expected_segment_count() const
1589{
1590 size_t ret = this->segment_list_.size();
1591
1592 // If we didn't see a SECTIONS clause in a linker script, we should
1593 // already have the complete list of segments. Otherwise we ask the
1594 // SECTIONS clause how many segments it expects, and add in the ones
1595 // we already have (PT_GNU_STACK, PT_GNU_EH_FRAME, etc.)
1596
1597 if (!this->script_options_->saw_sections_clause())
1598 return ret;
1599 else
1600 {
1601 const Script_sections* ss = this->script_options_->script_sections();
1602 return ret + ss->expected_segment_count(this);
1603 }
1604}
1605
35cdfc9a
ILT
1606// Handle the .note.GNU-stack section at layout time. SEEN_GNU_STACK
1607// is whether we saw a .note.GNU-stack section in the object file.
1608// GNU_STACK_FLAGS is the section flags. The flags give the
1609// protection required for stack memory. We record this in an
1610// executable as a PT_GNU_STACK segment. If an object file does not
1611// have a .note.GNU-stack segment, we must assume that it is an old
1612// object. On some targets that will force an executable stack.
1613
1614void
83e17bd5
CC
1615Layout::layout_gnu_stack(bool seen_gnu_stack, uint64_t gnu_stack_flags,
1616 const Object* obj)
35cdfc9a
ILT
1617{
1618 if (!seen_gnu_stack)
83e17bd5
CC
1619 {
1620 this->input_without_gnu_stack_note_ = true;
1621 if (parameters->options().warn_execstack()
1622 && parameters->target().is_default_stack_executable())
1623 gold_warning(_("%s: missing .note.GNU-stack section"
1624 " implies executable stack"),
1625 obj->name().c_str());
1626 }
35cdfc9a
ILT
1627 else
1628 {
1629 this->input_with_gnu_stack_note_ = true;
1630 if ((gnu_stack_flags & elfcpp::SHF_EXECINSTR) != 0)
83e17bd5
CC
1631 {
1632 this->input_requires_executable_stack_ = true;
1633 if (parameters->options().warn_execstack()
1634 || parameters->options().is_stack_executable())
1635 gold_warning(_("%s: requires executable stack"),
1636 obj->name().c_str());
1637 }
35cdfc9a
ILT
1638 }
1639}
1640
9c547ec3
ILT
1641// Create automatic note sections.
1642
1643void
1644Layout::create_notes()
1645{
1646 this->create_gold_note();
1647 this->create_executable_stack_info();
1648 this->create_build_id();
1649}
1650
a3ad94ed
ILT
1651// Create the dynamic sections which are needed before we read the
1652// relocs.
1653
1654void
9b07f471 1655Layout::create_initial_dynamic_sections(Symbol_table* symtab)
a3ad94ed 1656{
436ca963 1657 if (parameters->doing_static_link())
a3ad94ed
ILT
1658 return;
1659
3802b2dd
ILT
1660 this->dynamic_section_ = this->choose_output_section(NULL, ".dynamic",
1661 elfcpp::SHT_DYNAMIC,
1662 (elfcpp::SHF_ALLOC
1663 | elfcpp::SHF_WRITE),
22f0da72
ILT
1664 false, ORDER_RELRO,
1665 true);
a3ad94ed 1666
f0ba79e2
ILT
1667 this->dynamic_symbol_ =
1668 symtab->define_in_output_data("_DYNAMIC", NULL, Symbol_table::PREDEFINED,
1669 this->dynamic_section_, 0, 0,
1670 elfcpp::STT_OBJECT, elfcpp::STB_LOCAL,
1671 elfcpp::STV_HIDDEN, 0, false, false);
16649710 1672
9025d29d 1673 this->dynamic_data_ = new Output_data_dynamic(&this->dynpool_);
16649710
ILT
1674
1675 this->dynamic_section_->add_output_section_data(this->dynamic_data_);
a3ad94ed
ILT
1676}
1677
bfd58944
ILT
1678// For each output section whose name can be represented as C symbol,
1679// define __start and __stop symbols for the section. This is a GNU
1680// extension.
1681
1682void
9b07f471 1683Layout::define_section_symbols(Symbol_table* symtab)
bfd58944
ILT
1684{
1685 for (Section_list::const_iterator p = this->section_list_.begin();
1686 p != this->section_list_.end();
1687 ++p)
1688 {
1689 const char* const name = (*p)->name();
f1ec9ded 1690 if (is_cident(name))
bfd58944
ILT
1691 {
1692 const std::string name_string(name);
f1ec9ded
ST
1693 const std::string start_name(cident_section_start_prefix
1694 + name_string);
1695 const std::string stop_name(cident_section_stop_prefix
1696 + name_string);
bfd58944 1697
9b07f471 1698 symtab->define_in_output_data(start_name.c_str(),
bfd58944 1699 NULL, // version
99fff23b 1700 Symbol_table::PREDEFINED,
bfd58944
ILT
1701 *p,
1702 0, // value
1703 0, // symsize
1704 elfcpp::STT_NOTYPE,
1705 elfcpp::STB_GLOBAL,
1706 elfcpp::STV_DEFAULT,
1707 0, // nonvis
1708 false, // offset_is_from_end
a445fddf 1709 true); // only_if_ref
bfd58944 1710
9b07f471 1711 symtab->define_in_output_data(stop_name.c_str(),
bfd58944 1712 NULL, // version
99fff23b 1713 Symbol_table::PREDEFINED,
bfd58944
ILT
1714 *p,
1715 0, // value
1716 0, // symsize
1717 elfcpp::STT_NOTYPE,
1718 elfcpp::STB_GLOBAL,
1719 elfcpp::STV_DEFAULT,
1720 0, // nonvis
1721 true, // offset_is_from_end
a445fddf 1722 true); // only_if_ref
bfd58944
ILT
1723 }
1724 }
1725}
1726
755ab8af
ILT
1727// Define symbols for group signatures.
1728
1729void
1730Layout::define_group_signatures(Symbol_table* symtab)
1731{
1732 for (Group_signatures::iterator p = this->group_signatures_.begin();
1733 p != this->group_signatures_.end();
1734 ++p)
1735 {
1736 Symbol* sym = symtab->lookup(p->signature, NULL);
1737 if (sym != NULL)
1738 p->section->set_info_symndx(sym);
1739 else
1740 {
1741 // Force the name of the group section to the group
1742 // signature, and use the group's section symbol as the
1743 // signature symbol.
1744 if (strcmp(p->section->name(), p->signature) != 0)
1745 {
1746 const char* name = this->namepool_.add(p->signature,
1747 true, NULL);
1748 p->section->set_name(name);
1749 }
1750 p->section->set_needs_symtab_index();
1751 p->section->set_info_section_symndx(p->section);
1752 }
1753 }
1754
1755 this->group_signatures_.clear();
1756}
1757
75f65a3e
ILT
1758// Find the first read-only PT_LOAD segment, creating one if
1759// necessary.
54dc6425 1760
75f65a3e
ILT
1761Output_segment*
1762Layout::find_first_load_seg()
54dc6425 1763{
0f72bf6f 1764 Output_segment* best = NULL;
75f65a3e
ILT
1765 for (Segment_list::const_iterator p = this->segment_list_.begin();
1766 p != this->segment_list_.end();
1767 ++p)
1768 {
1769 if ((*p)->type() == elfcpp::PT_LOAD
1770 && ((*p)->flags() & elfcpp::PF_R) != 0
af6156ef
ILT
1771 && (parameters->options().omagic()
1772 || ((*p)->flags() & elfcpp::PF_W) == 0))
0f72bf6f
RÁE
1773 {
1774 if (best == NULL || this->segment_precedes(*p, best))
1775 best = *p;
1776 }
75f65a3e 1777 }
0f72bf6f
RÁE
1778 if (best != NULL)
1779 return best;
75f65a3e 1780
1c4f3631
ILT
1781 gold_assert(!this->script_options_->saw_phdrs_clause());
1782
3802b2dd
ILT
1783 Output_segment* load_seg = this->make_output_segment(elfcpp::PT_LOAD,
1784 elfcpp::PF_R);
75f65a3e 1785 return load_seg;
54dc6425
ILT
1786}
1787
20e6d0d6
DK
1788// Save states of all current output segments. Store saved states
1789// in SEGMENT_STATES.
1790
1791void
1792Layout::save_segments(Segment_states* segment_states)
1793{
1794 for (Segment_list::const_iterator p = this->segment_list_.begin();
1795 p != this->segment_list_.end();
1796 ++p)
1797 {
1798 Output_segment* segment = *p;
1799 // Shallow copy.
1800 Output_segment* copy = new Output_segment(*segment);
1801 (*segment_states)[segment] = copy;
1802 }
1803}
1804
1805// Restore states of output segments and delete any segment not found in
1806// SEGMENT_STATES.
1807
1808void
1809Layout::restore_segments(const Segment_states* segment_states)
1810{
1811 // Go through the segment list and remove any segment added in the
1812 // relaxation loop.
1813 this->tls_segment_ = NULL;
1814 this->relro_segment_ = NULL;
1815 Segment_list::iterator list_iter = this->segment_list_.begin();
1816 while (list_iter != this->segment_list_.end())
1817 {
1818 Output_segment* segment = *list_iter;
1819 Segment_states::const_iterator states_iter =
1820 segment_states->find(segment);
1821 if (states_iter != segment_states->end())
1822 {
1823 const Output_segment* copy = states_iter->second;
1824 // Shallow copy to restore states.
1825 *segment = *copy;
1826
1827 // Also fix up TLS and RELRO segment pointers as appropriate.
1828 if (segment->type() == elfcpp::PT_TLS)
1829 this->tls_segment_ = segment;
1830 else if (segment->type() == elfcpp::PT_GNU_RELRO)
1831 this->relro_segment_ = segment;
1832
1833 ++list_iter;
1834 }
1835 else
1836 {
1837 list_iter = this->segment_list_.erase(list_iter);
1838 // This is a segment created during section layout. It should be
1839 // safe to remove it since we should have removed all pointers to it.
1840 delete segment;
1841 }
1842 }
1843}
1844
1845// Clean up after relaxation so that sections can be laid out again.
1846
1847void
1848Layout::clean_up_after_relaxation()
1849{
1850 // Restore the segments to point state just prior to the relaxation loop.
1851 Script_sections* script_section = this->script_options_->script_sections();
1852 script_section->release_segments();
1853 this->restore_segments(this->segment_states_);
1854
1855 // Reset section addresses and file offsets
1856 for (Section_list::iterator p = this->section_list_.begin();
1857 p != this->section_list_.end();
1858 ++p)
1859 {
20e6d0d6 1860 (*p)->restore_states();
8923b24c
DK
1861
1862 // If an input section changes size because of relaxation,
1863 // we need to adjust the section offsets of all input sections.
1864 // after such a section.
1865 if ((*p)->section_offsets_need_adjustment())
1866 (*p)->adjust_section_offsets();
1867
1868 (*p)->reset_address_and_file_offset();
20e6d0d6
DK
1869 }
1870
1871 // Reset special output object address and file offsets.
1872 for (Data_list::iterator p = this->special_output_list_.begin();
1873 p != this->special_output_list_.end();
1874 ++p)
1875 (*p)->reset_address_and_file_offset();
1876
1877 // A linker script may have created some output section data objects.
1878 // They are useless now.
1879 for (Output_section_data_list::const_iterator p =
1880 this->script_output_section_data_list_.begin();
1881 p != this->script_output_section_data_list_.end();
1882 ++p)
1883 delete *p;
1884 this->script_output_section_data_list_.clear();
1885}
1886
1887// Prepare for relaxation.
1888
1889void
1890Layout::prepare_for_relaxation()
1891{
1892 // Create an relaxation debug check if in debugging mode.
1893 if (is_debugging_enabled(DEBUG_RELAXATION))
1894 this->relaxation_debug_check_ = new Relaxation_debug_check();
1895
1896 // Save segment states.
1897 this->segment_states_ = new Segment_states();
1898 this->save_segments(this->segment_states_);
1899
1900 for(Section_list::const_iterator p = this->section_list_.begin();
1901 p != this->section_list_.end();
1902 ++p)
1903 (*p)->save_states();
1904
1905 if (is_debugging_enabled(DEBUG_RELAXATION))
1906 this->relaxation_debug_check_->check_output_data_for_reset_values(
1907 this->section_list_, this->special_output_list_);
1908
1909 // Also enable recording of output section data from scripts.
1910 this->record_output_section_data_from_script_ = true;
1911}
1912
1913// Relaxation loop body: If target has no relaxation, this runs only once
1914// Otherwise, the target relaxation hook is called at the end of
1915// each iteration. If the hook returns true, it means re-layout of
1916// section is required.
1917//
1918// The number of segments created by a linking script without a PHDRS
1919// clause may be affected by section sizes and alignments. There is
1920// a remote chance that relaxation causes different number of PT_LOAD
1921// segments are created and sections are attached to different segments.
1922// Therefore, we always throw away all segments created during section
1923// layout. In order to be able to restart the section layout, we keep
1924// a copy of the segment list right before the relaxation loop and use
1925// that to restore the segments.
1926//
1927// PASS is the current relaxation pass number.
1928// SYMTAB is a symbol table.
1929// PLOAD_SEG is the address of a pointer for the load segment.
1930// PHDR_SEG is a pointer to the PHDR segment.
1931// SEGMENT_HEADERS points to the output segment header.
1932// FILE_HEADER points to the output file header.
1933// PSHNDX is the address to store the output section index.
1934
1935off_t inline
1936Layout::relaxation_loop_body(
1937 int pass,
1938 Target* target,
1939 Symbol_table* symtab,
1940 Output_segment** pload_seg,
1941 Output_segment* phdr_seg,
1942 Output_segment_headers* segment_headers,
1943 Output_file_header* file_header,
1944 unsigned int* pshndx)
1945{
1946 // If this is not the first iteration, we need to clean up after
1947 // relaxation so that we can lay out the sections again.
1948 if (pass != 0)
1949 this->clean_up_after_relaxation();
1950
1951 // If there is a SECTIONS clause, put all the input sections into
1952 // the required order.
1953 Output_segment* load_seg;
1954 if (this->script_options_->saw_sections_clause())
1955 load_seg = this->set_section_addresses_from_script(symtab);
1956 else if (parameters->options().relocatable())
1957 load_seg = NULL;
1958 else
1959 load_seg = this->find_first_load_seg();
1960
1961 if (parameters->options().oformat_enum()
1962 != General_options::OBJECT_FORMAT_ELF)
1963 load_seg = NULL;
1964
403a15dd
ILT
1965 // If the user set the address of the text segment, that may not be
1966 // compatible with putting the segment headers and file headers into
1967 // that segment.
1968 if (parameters->options().user_set_Ttext())
1969 load_seg = NULL;
1970
68b6574b
ILT
1971 gold_assert(phdr_seg == NULL
1972 || load_seg != NULL
1973 || this->script_options_->saw_sections_clause());
20e6d0d6 1974
a192ba05 1975 // If the address of the load segment we found has been set by
1e3811b0
ILT
1976 // --section-start rather than by a script, then adjust the VMA and
1977 // LMA downward if possible to include the file and section headers.
1978 uint64_t header_gap = 0;
a192ba05
ILT
1979 if (load_seg != NULL
1980 && load_seg->are_addresses_set()
1e3811b0
ILT
1981 && !this->script_options_->saw_sections_clause()
1982 && !parameters->options().relocatable())
1983 {
1984 file_header->finalize_data_size();
1985 segment_headers->finalize_data_size();
1986 size_t sizeof_headers = (file_header->data_size()
1987 + segment_headers->data_size());
1988 const uint64_t abi_pagesize = target->abi_pagesize();
1989 uint64_t hdr_paddr = load_seg->paddr() - sizeof_headers;
1990 hdr_paddr &= ~(abi_pagesize - 1);
1991 uint64_t subtract = load_seg->paddr() - hdr_paddr;
1992 if (load_seg->paddr() < subtract || load_seg->vaddr() < subtract)
1993 load_seg = NULL;
1994 else
1995 {
1996 load_seg->set_addresses(load_seg->vaddr() - subtract,
1997 load_seg->paddr() - subtract);
1998 header_gap = subtract - sizeof_headers;
1999 }
2000 }
a192ba05 2001
20e6d0d6
DK
2002 // Lay out the segment headers.
2003 if (!parameters->options().relocatable())
2004 {
2005 gold_assert(segment_headers != NULL);
1e3811b0
ILT
2006 if (header_gap != 0 && load_seg != NULL)
2007 {
2008 Output_data_zero_fill* z = new Output_data_zero_fill(header_gap, 1);
2009 load_seg->add_initial_output_data(z);
2010 }
20e6d0d6
DK
2011 if (load_seg != NULL)
2012 load_seg->add_initial_output_data(segment_headers);
2013 if (phdr_seg != NULL)
2014 phdr_seg->add_initial_output_data(segment_headers);
2015 }
2016
2017 // Lay out the file header.
2018 if (load_seg != NULL)
2019 load_seg->add_initial_output_data(file_header);
2020
2021 if (this->script_options_->saw_phdrs_clause()
2022 && !parameters->options().relocatable())
2023 {
2024 // Support use of FILEHDRS and PHDRS attachments in a PHDRS
2025 // clause in a linker script.
2026 Script_sections* ss = this->script_options_->script_sections();
2027 ss->put_headers_in_phdrs(file_header, segment_headers);
2028 }
2029
2030 // We set the output section indexes in set_segment_offsets and
2031 // set_section_indexes.
2032 *pshndx = 1;
2033
2034 // Set the file offsets of all the segments, and all the sections
2035 // they contain.
2036 off_t off;
2037 if (!parameters->options().relocatable())
2038 off = this->set_segment_offsets(target, load_seg, pshndx);
2039 else
2040 off = this->set_relocatable_section_offsets(file_header, pshndx);
2041
2042 // Verify that the dummy relaxation does not change anything.
2043 if (is_debugging_enabled(DEBUG_RELAXATION))
2044 {
2045 if (pass == 0)
2046 this->relaxation_debug_check_->read_sections(this->section_list_);
2047 else
2048 this->relaxation_debug_check_->verify_sections(this->section_list_);
2049 }
2050
2051 *pload_seg = load_seg;
2052 return off;
2053}
2054
6e9ba2ca
ST
2055// Search the list of patterns and find the postion of the given section
2056// name in the output section. If the section name matches a glob
2057// pattern and a non-glob name, then the non-glob position takes
2058// precedence. Return 0 if no match is found.
2059
2060unsigned int
2061Layout::find_section_order_index(const std::string& section_name)
2062{
2063 Unordered_map<std::string, unsigned int>::iterator map_it;
2064 map_it = this->input_section_position_.find(section_name);
2065 if (map_it != this->input_section_position_.end())
2066 return map_it->second;
2067
2068 // Absolute match failed. Linear search the glob patterns.
2069 std::vector<std::string>::iterator it;
2070 for (it = this->input_section_glob_.begin();
2071 it != this->input_section_glob_.end();
2072 ++it)
2073 {
2074 if (fnmatch((*it).c_str(), section_name.c_str(), FNM_NOESCAPE) == 0)
2075 {
2076 map_it = this->input_section_position_.find(*it);
2077 gold_assert(map_it != this->input_section_position_.end());
2078 return map_it->second;
2079 }
2080 }
2081 return 0;
2082}
2083
2084// Read the sequence of input sections from the file specified with
2085// --section-ordering-file.
2086
2087void
2088Layout::read_layout_from_file()
2089{
2090 const char* filename = parameters->options().section_ordering_file();
2091 std::ifstream in;
2092 std::string line;
2093
2094 in.open(filename);
2095 if (!in)
2096 gold_fatal(_("unable to open --section-ordering-file file %s: %s"),
2097 filename, strerror(errno));
2098
2099 std::getline(in, line); // this chops off the trailing \n, if any
2100 unsigned int position = 1;
2101
2102 while (in)
2103 {
2104 if (!line.empty() && line[line.length() - 1] == '\r') // Windows
2105 line.resize(line.length() - 1);
2106 // Ignore comments, beginning with '#'
2107 if (line[0] == '#')
2108 {
2109 std::getline(in, line);
2110 continue;
2111 }
2112 this->input_section_position_[line] = position;
2113 // Store all glob patterns in a vector.
2114 if (is_wildcard_string(line.c_str()))
2115 this->input_section_glob_.push_back(line);
2116 position++;
2117 std::getline(in, line);
2118 }
2119}
2120
54dc6425
ILT
2121// Finalize the layout. When this is called, we have created all the
2122// output sections and all the output segments which are based on
2123// input sections. We have several things to do, and we have to do
2124// them in the right order, so that we get the right results correctly
2125// and efficiently.
2126
2127// 1) Finalize the list of output segments and create the segment
2128// table header.
2129
2130// 2) Finalize the dynamic symbol table and associated sections.
2131
2132// 3) Determine the final file offset of all the output segments.
2133
2134// 4) Determine the final file offset of all the SHF_ALLOC output
2135// sections.
2136
75f65a3e
ILT
2137// 5) Create the symbol table sections and the section name table
2138// section.
2139
2140// 6) Finalize the symbol table: set symbol values to their final
54dc6425
ILT
2141// value and make a final determination of which symbols are going
2142// into the output symbol table.
2143
54dc6425
ILT
2144// 7) Create the section table header.
2145
2146// 8) Determine the final file offset of all the output sections which
2147// are not SHF_ALLOC, including the section table header.
2148
2149// 9) Finalize the ELF file header.
2150
75f65a3e
ILT
2151// This function returns the size of the output file.
2152
2153off_t
17a1d0a9 2154Layout::finalize(const Input_objects* input_objects, Symbol_table* symtab,
8851ecca 2155 Target* target, const Task* task)
54dc6425 2156{
f59f41f3 2157 target->finalize_sections(this, input_objects, symtab);
5a6f7e2d 2158
17a1d0a9 2159 this->count_local_symbols(task, input_objects);
7bf1f802 2160
1518dc8f 2161 this->link_stabs_sections();
4f211c8b 2162
3802b2dd 2163 Output_segment* phdr_seg = NULL;
8851ecca 2164 if (!parameters->options().relocatable() && !parameters->doing_static_link())
54dc6425 2165 {
dbe717ef
ILT
2166 // There was a dynamic object in the link. We need to create
2167 // some information for the dynamic linker.
2168
3802b2dd
ILT
2169 // Create the PT_PHDR segment which will hold the program
2170 // headers.
1c4f3631
ILT
2171 if (!this->script_options_->saw_phdrs_clause())
2172 phdr_seg = this->make_output_segment(elfcpp::PT_PHDR, elfcpp::PF_R);
3802b2dd 2173
14b31740
ILT
2174 // Create the dynamic symbol table, including the hash table.
2175 Output_section* dynstr;
2176 std::vector<Symbol*> dynamic_symbols;
2177 unsigned int local_dynamic_count;
a5dc0706
ILT
2178 Versions versions(*this->script_options()->version_script_info(),
2179 &this->dynpool_);
9b07f471 2180 this->create_dynamic_symtab(input_objects, symtab, &dynstr,
14b31740
ILT
2181 &local_dynamic_count, &dynamic_symbols,
2182 &versions);
dbe717ef
ILT
2183
2184 // Create the .interp section to hold the name of the
e1f74f98
ILT
2185 // interpreter, and put it in a PT_INTERP segment. Don't do it
2186 // if we saw a .interp section in an input file.
2187 if ((!parameters->options().shared()
2188 || parameters->options().dynamic_linker() != NULL)
2189 && this->interp_segment_ == NULL)
96f2030e 2190 this->create_interp(target);
a3ad94ed
ILT
2191
2192 // Finish the .dynamic section to hold the dynamic data, and put
2193 // it in a PT_DYNAMIC segment.
16649710 2194 this->finish_dynamic_section(input_objects, symtab);
14b31740
ILT
2195
2196 // We should have added everything we need to the dynamic string
2197 // table.
2198 this->dynpool_.set_string_offsets();
2199
2200 // Create the version sections. We can't do this until the
2201 // dynamic string table is complete.
46fe1623 2202 this->create_version_sections(&versions, symtab, local_dynamic_count,
14b31740 2203 dynamic_symbols, dynstr);
f0ba79e2
ILT
2204
2205 // Set the size of the _DYNAMIC symbol. We can't do this until
2206 // after we call create_version_sections.
2207 this->set_dynamic_symbol_size(symtab);
54dc6425 2208 }
3ce2c28e 2209
20e6d0d6
DK
2210 // Create segment headers.
2211 Output_segment_headers* segment_headers =
2212 (parameters->options().relocatable()
2213 ? NULL
2214 : new Output_segment_headers(this->segment_list_));
75f65a3e
ILT
2215
2216 // Lay out the file header.
a10ae760
ILT
2217 Output_file_header* file_header = new Output_file_header(target, symtab,
2218 segment_headers);
a445fddf 2219
61ba1cf9 2220 this->special_output_list_.push_back(file_header);
6a74a719
ILT
2221 if (segment_headers != NULL)
2222 this->special_output_list_.push_back(segment_headers);
75f65a3e 2223
20e6d0d6
DK
2224 // Find approriate places for orphan output sections if we are using
2225 // a linker script.
2226 if (this->script_options_->saw_sections_clause())
2227 this->place_orphan_sections_in_script();
2228
2229 Output_segment* load_seg;
2230 off_t off;
2231 unsigned int shndx;
2232 int pass = 0;
2233
2234 // Take a snapshot of the section layout as needed.
2235 if (target->may_relax())
2236 this->prepare_for_relaxation();
2237
2238 // Run the relaxation loop to lay out sections.
2239 do
1c4f3631 2240 {
20e6d0d6
DK
2241 off = this->relaxation_loop_body(pass, target, symtab, &load_seg,
2242 phdr_seg, segment_headers, file_header,
2243 &shndx);
2244 pass++;
1c4f3631 2245 }
c0a62865 2246 while (target->may_relax()
f625ae50 2247 && target->relax(pass, input_objects, symtab, this, task));
75f65a3e 2248
a9a60db6
ILT
2249 // Set the file offsets of all the non-data sections we've seen so
2250 // far which don't have to wait for the input sections. We need
2251 // this in order to finalize local symbols in non-allocated
2252 // sections.
2253 off = this->set_section_offsets(off, BEFORE_INPUT_SECTIONS_PASS);
2254
d491d34e
ILT
2255 // Set the section indexes of all unallocated sections seen so far,
2256 // in case any of them are somehow referenced by a symbol.
2257 shndx = this->set_section_indexes(shndx);
2258
75f65a3e 2259 // Create the symbol table sections.
d491d34e 2260 this->create_symtab_sections(input_objects, symtab, shndx, &off);
7bf1f802
ILT
2261 if (!parameters->doing_static_link())
2262 this->assign_local_dynsym_offsets(input_objects);
75f65a3e 2263
e5756efb
ILT
2264 // Process any symbol assignments from a linker script. This must
2265 // be called after the symbol table has been finalized.
2266 this->script_options_->finalize_symbols(symtab, this);
2267
09ec0418
CC
2268 // Create the incremental inputs sections.
2269 if (this->incremental_inputs_)
2270 {
2271 this->incremental_inputs_->finalize();
2272 this->create_incremental_info_sections(symtab);
2273 }
2274
75f65a3e
ILT
2275 // Create the .shstrtab section.
2276 Output_section* shstrtab_section = this->create_shstrtab();
2277
a9a60db6
ILT
2278 // Set the file offsets of the rest of the non-data sections which
2279 // don't have to wait for the input sections.
9a0910c3 2280 off = this->set_section_offsets(off, BEFORE_INPUT_SECTIONS_PASS);
86887060 2281
d491d34e
ILT
2282 // Now that all sections have been created, set the section indexes
2283 // for any sections which haven't been done yet.
86887060 2284 shndx = this->set_section_indexes(shndx);
ead1e424 2285
75f65a3e 2286 // Create the section table header.
d491d34e 2287 this->create_shdrs(shstrtab_section, &off);
75f65a3e 2288
17a1d0a9
ILT
2289 // If there are no sections which require postprocessing, we can
2290 // handle the section names now, and avoid a resize later.
2291 if (!this->any_postprocessing_sections_)
09ec0418
CC
2292 {
2293 off = this->set_section_offsets(off,
2294 POSTPROCESSING_SECTIONS_PASS);
2295 off =
2296 this->set_section_offsets(off,
17a1d0a9 2297 STRTAB_AFTER_POSTPROCESSING_SECTIONS_PASS);
09ec0418 2298 }
17a1d0a9 2299
27bc2bce 2300 file_header->set_section_info(this->section_headers_, shstrtab_section);
75f65a3e 2301
27bc2bce
ILT
2302 // Now we know exactly where everything goes in the output file
2303 // (except for non-allocated sections which require postprocessing).
a3ad94ed 2304 Output_data::layout_complete();
75f65a3e 2305
e44fcf3b
ILT
2306 this->output_file_size_ = off;
2307
75f65a3e
ILT
2308 return off;
2309}
2310
8ed814a9 2311// Create a note header following the format defined in the ELF ABI.
ec3f783e
ILT
2312// NAME is the name, NOTE_TYPE is the type, SECTION_NAME is the name
2313// of the section to create, DESCSZ is the size of the descriptor.
2314// ALLOCATE is true if the section should be allocated in memory.
2315// This returns the new note section. It sets *TRAILING_PADDING to
2316// the number of trailing zero bytes required.
4f211c8b 2317
8ed814a9 2318Output_section*
ef4ab7a8
PP
2319Layout::create_note(const char* name, int note_type,
2320 const char* section_name, size_t descsz,
8ed814a9 2321 bool allocate, size_t* trailing_padding)
4f211c8b 2322{
e2305dc0
ILT
2323 // Authorities all agree that the values in a .note field should
2324 // be aligned on 4-byte boundaries for 32-bit binaries. However,
2325 // they differ on what the alignment is for 64-bit binaries.
2326 // The GABI says unambiguously they take 8-byte alignment:
2327 // http://sco.com/developers/gabi/latest/ch5.pheader.html#note_section
2328 // Other documentation says alignment should always be 4 bytes:
2329 // http://www.netbsd.org/docs/kernel/elf-notes.html#note-format
2330 // GNU ld and GNU readelf both support the latter (at least as of
2331 // version 2.16.91), and glibc always generates the latter for
2332 // .note.ABI-tag (as of version 1.6), so that's the one we go with
2333 // here.
35cdfc9a 2334#ifdef GABI_FORMAT_FOR_DOTNOTE_SECTION // This is not defined by default.
8851ecca 2335 const int size = parameters->target().get_size();
e2305dc0
ILT
2336#else
2337 const int size = 32;
2338#endif
4f211c8b
ILT
2339
2340 // The contents of the .note section.
4f211c8b
ILT
2341 size_t namesz = strlen(name) + 1;
2342 size_t aligned_namesz = align_address(namesz, size / 8);
4f211c8b 2343 size_t aligned_descsz = align_address(descsz, size / 8);
4f211c8b 2344
8ed814a9 2345 size_t notehdrsz = 3 * (size / 8) + aligned_namesz;
4f211c8b 2346
8ed814a9
ILT
2347 unsigned char* buffer = new unsigned char[notehdrsz];
2348 memset(buffer, 0, notehdrsz);
4f211c8b 2349
8851ecca 2350 bool is_big_endian = parameters->target().is_big_endian();
4f211c8b
ILT
2351
2352 if (size == 32)
2353 {
2354 if (!is_big_endian)
2355 {
2356 elfcpp::Swap<32, false>::writeval(buffer, namesz);
2357 elfcpp::Swap<32, false>::writeval(buffer + 4, descsz);
2358 elfcpp::Swap<32, false>::writeval(buffer + 8, note_type);
2359 }
2360 else
2361 {
2362 elfcpp::Swap<32, true>::writeval(buffer, namesz);
2363 elfcpp::Swap<32, true>::writeval(buffer + 4, descsz);
2364 elfcpp::Swap<32, true>::writeval(buffer + 8, note_type);
2365 }
2366 }
2367 else if (size == 64)
2368 {
2369 if (!is_big_endian)
2370 {
2371 elfcpp::Swap<64, false>::writeval(buffer, namesz);
2372 elfcpp::Swap<64, false>::writeval(buffer + 8, descsz);
2373 elfcpp::Swap<64, false>::writeval(buffer + 16, note_type);
2374 }
2375 else
2376 {
2377 elfcpp::Swap<64, true>::writeval(buffer, namesz);
2378 elfcpp::Swap<64, true>::writeval(buffer + 8, descsz);
2379 elfcpp::Swap<64, true>::writeval(buffer + 16, note_type);
2380 }
2381 }
2382 else
2383 gold_unreachable();
2384
2385 memcpy(buffer + 3 * (size / 8), name, namesz);
4f211c8b 2386
8ed814a9 2387 elfcpp::Elf_Xword flags = 0;
22f0da72 2388 Output_section_order order = ORDER_INVALID;
8ed814a9 2389 if (allocate)
22f0da72
ILT
2390 {
2391 flags = elfcpp::SHF_ALLOC;
2392 order = ORDER_RO_NOTE;
2393 }
ec3f783e
ILT
2394 Output_section* os = this->choose_output_section(NULL, section_name,
2395 elfcpp::SHT_NOTE,
22f0da72 2396 flags, false, order, false);
9c547ec3
ILT
2397 if (os == NULL)
2398 return NULL;
2399
8ed814a9 2400 Output_section_data* posd = new Output_data_const_buffer(buffer, notehdrsz,
7d9e3d98
ILT
2401 size / 8,
2402 "** note header");
8ed814a9
ILT
2403 os->add_output_section_data(posd);
2404
2405 *trailing_padding = aligned_descsz - descsz;
2406
2407 return os;
2408}
2409
2410// For an executable or shared library, create a note to record the
2411// version of gold used to create the binary.
2412
2413void
2414Layout::create_gold_note()
2415{
cdc29364
CC
2416 if (parameters->options().relocatable()
2417 || parameters->incremental_update())
8ed814a9
ILT
2418 return;
2419
2420 std::string desc = std::string("gold ") + gold::get_version_string();
2421
2422 size_t trailing_padding;
ca09d69a 2423 Output_section* os = this->create_note("GNU", elfcpp::NT_GNU_GOLD_VERSION,
ef4ab7a8
PP
2424 ".note.gnu.gold-version", desc.size(),
2425 false, &trailing_padding);
9c547ec3
ILT
2426 if (os == NULL)
2427 return;
8ed814a9
ILT
2428
2429 Output_section_data* posd = new Output_data_const(desc, 4);
4f211c8b 2430 os->add_output_section_data(posd);
8ed814a9
ILT
2431
2432 if (trailing_padding > 0)
2433 {
7d9e3d98 2434 posd = new Output_data_zero_fill(trailing_padding, 0);
8ed814a9
ILT
2435 os->add_output_section_data(posd);
2436 }
4f211c8b
ILT
2437}
2438
35cdfc9a
ILT
2439// Record whether the stack should be executable. This can be set
2440// from the command line using the -z execstack or -z noexecstack
2441// options. Otherwise, if any input file has a .note.GNU-stack
2442// section with the SHF_EXECINSTR flag set, the stack should be
2443// executable. Otherwise, if at least one input file a
2444// .note.GNU-stack section, and some input file has no .note.GNU-stack
2445// section, we use the target default for whether the stack should be
2446// executable. Otherwise, we don't generate a stack note. When
2447// generating a object file, we create a .note.GNU-stack section with
2448// the appropriate marking. When generating an executable or shared
2449// library, we create a PT_GNU_STACK segment.
2450
2451void
9c547ec3 2452Layout::create_executable_stack_info()
35cdfc9a
ILT
2453{
2454 bool is_stack_executable;
e55bde5e
ILT
2455 if (parameters->options().is_execstack_set())
2456 is_stack_executable = parameters->options().is_stack_executable();
35cdfc9a
ILT
2457 else if (!this->input_with_gnu_stack_note_)
2458 return;
2459 else
2460 {
2461 if (this->input_requires_executable_stack_)
2462 is_stack_executable = true;
2463 else if (this->input_without_gnu_stack_note_)
9c547ec3
ILT
2464 is_stack_executable =
2465 parameters->target().is_default_stack_executable();
35cdfc9a
ILT
2466 else
2467 is_stack_executable = false;
2468 }
2469
8851ecca 2470 if (parameters->options().relocatable())
35cdfc9a
ILT
2471 {
2472 const char* name = this->namepool_.add(".note.GNU-stack", false, NULL);
2473 elfcpp::Elf_Xword flags = 0;
2474 if (is_stack_executable)
2475 flags |= elfcpp::SHF_EXECINSTR;
22f0da72
ILT
2476 this->make_output_section(name, elfcpp::SHT_PROGBITS, flags,
2477 ORDER_INVALID, false);
35cdfc9a
ILT
2478 }
2479 else
2480 {
1c4f3631
ILT
2481 if (this->script_options_->saw_phdrs_clause())
2482 return;
35cdfc9a
ILT
2483 int flags = elfcpp::PF_R | elfcpp::PF_W;
2484 if (is_stack_executable)
2485 flags |= elfcpp::PF_X;
3802b2dd 2486 this->make_output_segment(elfcpp::PT_GNU_STACK, flags);
35cdfc9a
ILT
2487 }
2488}
2489
8ed814a9
ILT
2490// If --build-id was used, set up the build ID note.
2491
2492void
2493Layout::create_build_id()
2494{
2495 if (!parameters->options().user_set_build_id())
2496 return;
2497
2498 const char* style = parameters->options().build_id();
2499 if (strcmp(style, "none") == 0)
2500 return;
2501
2502 // Set DESCSZ to the size of the note descriptor. When possible,
2503 // set DESC to the note descriptor contents.
2504 size_t descsz;
2505 std::string desc;
2506 if (strcmp(style, "md5") == 0)
2507 descsz = 128 / 8;
2508 else if (strcmp(style, "sha1") == 0)
2509 descsz = 160 / 8;
2510 else if (strcmp(style, "uuid") == 0)
2511 {
2512 const size_t uuidsz = 128 / 8;
2513
2514 char buffer[uuidsz];
2515 memset(buffer, 0, uuidsz);
2516
2a00e4fb 2517 int descriptor = open_descriptor(-1, "/dev/urandom", O_RDONLY);
8ed814a9
ILT
2518 if (descriptor < 0)
2519 gold_error(_("--build-id=uuid failed: could not open /dev/urandom: %s"),
2520 strerror(errno));
2521 else
2522 {
2523 ssize_t got = ::read(descriptor, buffer, uuidsz);
2a00e4fb 2524 release_descriptor(descriptor, true);
8ed814a9
ILT
2525 if (got < 0)
2526 gold_error(_("/dev/urandom: read failed: %s"), strerror(errno));
2527 else if (static_cast<size_t>(got) != uuidsz)
2528 gold_error(_("/dev/urandom: expected %zu bytes, got %zd bytes"),
2529 uuidsz, got);
2530 }
2531
2532 desc.assign(buffer, uuidsz);
2533 descsz = uuidsz;
2534 }
2535 else if (strncmp(style, "0x", 2) == 0)
2536 {
2537 hex_init();
2538 const char* p = style + 2;
2539 while (*p != '\0')
2540 {
2541 if (hex_p(p[0]) && hex_p(p[1]))
2542 {
2543 char c = (hex_value(p[0]) << 4) | hex_value(p[1]);
2544 desc += c;
2545 p += 2;
2546 }
2547 else if (*p == '-' || *p == ':')
2548 ++p;
2549 else
2550 gold_fatal(_("--build-id argument '%s' not a valid hex number"),
2551 style);
2552 }
2553 descsz = desc.size();
2554 }
2555 else
2556 gold_fatal(_("unrecognized --build-id argument '%s'"), style);
2557
2558 // Create the note.
2559 size_t trailing_padding;
2560 Output_section* os = this->create_note("GNU", elfcpp::NT_GNU_BUILD_ID,
ef4ab7a8
PP
2561 ".note.gnu.build-id", descsz, true,
2562 &trailing_padding);
9c547ec3
ILT
2563 if (os == NULL)
2564 return;
8ed814a9
ILT
2565
2566 if (!desc.empty())
2567 {
2568 // We know the value already, so we fill it in now.
2569 gold_assert(desc.size() == descsz);
2570
2571 Output_section_data* posd = new Output_data_const(desc, 4);
2572 os->add_output_section_data(posd);
2573
2574 if (trailing_padding != 0)
2575 {
7d9e3d98 2576 posd = new Output_data_zero_fill(trailing_padding, 0);
8ed814a9
ILT
2577 os->add_output_section_data(posd);
2578 }
2579 }
2580 else
2581 {
2582 // We need to compute a checksum after we have completed the
2583 // link.
2584 gold_assert(trailing_padding == 0);
7d9e3d98 2585 this->build_id_note_ = new Output_data_zero_fill(descsz, 4);
8ed814a9 2586 os->add_output_section_data(this->build_id_note_);
8ed814a9
ILT
2587 }
2588}
2589
1518dc8f
ILT
2590// If we have both .stabXX and .stabXXstr sections, then the sh_link
2591// field of the former should point to the latter. I'm not sure who
2592// started this, but the GNU linker does it, and some tools depend
2593// upon it.
2594
2595void
2596Layout::link_stabs_sections()
2597{
2598 if (!this->have_stabstr_section_)
2599 return;
2600
2601 for (Section_list::iterator p = this->section_list_.begin();
2602 p != this->section_list_.end();
2603 ++p)
2604 {
2605 if ((*p)->type() != elfcpp::SHT_STRTAB)
2606 continue;
2607
2608 const char* name = (*p)->name();
2609 if (strncmp(name, ".stab", 5) != 0)
2610 continue;
2611
2612 size_t len = strlen(name);
2613 if (strcmp(name + len - 3, "str") != 0)
2614 continue;
2615
2616 std::string stab_name(name, len - 3);
2617 Output_section* stab_sec;
2618 stab_sec = this->find_output_section(stab_name.c_str());
2619 if (stab_sec != NULL)
2620 stab_sec->set_link_section(*p);
2621 }
2622}
2623
09ec0418 2624// Create .gnu_incremental_inputs and related sections needed
3ce2c28e
ILT
2625// for the next run of incremental linking to check what has changed.
2626
2627void
09ec0418 2628Layout::create_incremental_info_sections(Symbol_table* symtab)
3ce2c28e 2629{
09ec0418
CC
2630 Incremental_inputs* incr = this->incremental_inputs_;
2631
2632 gold_assert(incr != NULL);
2633
2634 // Create the .gnu_incremental_inputs, _symtab, and _relocs input sections.
2635 incr->create_data_sections(symtab);
3ce2c28e
ILT
2636
2637 // Add the .gnu_incremental_inputs section.
ca09d69a 2638 const char* incremental_inputs_name =
3ce2c28e 2639 this->namepool_.add(".gnu_incremental_inputs", false, NULL);
09ec0418 2640 Output_section* incremental_inputs_os =
3ce2c28e 2641 this->make_output_section(incremental_inputs_name,
f5c870d2 2642 elfcpp::SHT_GNU_INCREMENTAL_INPUTS, 0,
22f0da72 2643 ORDER_INVALID, false);
09ec0418
CC
2644 incremental_inputs_os->add_output_section_data(incr->inputs_section());
2645
2646 // Add the .gnu_incremental_symtab section.
ca09d69a 2647 const char* incremental_symtab_name =
09ec0418
CC
2648 this->namepool_.add(".gnu_incremental_symtab", false, NULL);
2649 Output_section* incremental_symtab_os =
2650 this->make_output_section(incremental_symtab_name,
2651 elfcpp::SHT_GNU_INCREMENTAL_SYMTAB, 0,
2652 ORDER_INVALID, false);
2653 incremental_symtab_os->add_output_section_data(incr->symtab_section());
2654 incremental_symtab_os->set_entsize(4);
2655
2656 // Add the .gnu_incremental_relocs section.
ca09d69a 2657 const char* incremental_relocs_name =
09ec0418
CC
2658 this->namepool_.add(".gnu_incremental_relocs", false, NULL);
2659 Output_section* incremental_relocs_os =
2660 this->make_output_section(incremental_relocs_name,
2661 elfcpp::SHT_GNU_INCREMENTAL_RELOCS, 0,
2662 ORDER_INVALID, false);
2663 incremental_relocs_os->add_output_section_data(incr->relocs_section());
2664 incremental_relocs_os->set_entsize(incr->relocs_entsize());
2665
0e70b911 2666 // Add the .gnu_incremental_got_plt section.
ca09d69a 2667 const char* incremental_got_plt_name =
0e70b911
CC
2668 this->namepool_.add(".gnu_incremental_got_plt", false, NULL);
2669 Output_section* incremental_got_plt_os =
2670 this->make_output_section(incremental_got_plt_name,
2671 elfcpp::SHT_GNU_INCREMENTAL_GOT_PLT, 0,
2672 ORDER_INVALID, false);
2673 incremental_got_plt_os->add_output_section_data(incr->got_plt_section());
2674
3ce2c28e 2675 // Add the .gnu_incremental_strtab section.
ca09d69a 2676 const char* incremental_strtab_name =
3ce2c28e 2677 this->namepool_.add(".gnu_incremental_strtab", false, NULL);
09ec0418
CC
2678 Output_section* incremental_strtab_os = this->make_output_section(incremental_strtab_name,
2679 elfcpp::SHT_STRTAB, 0,
2680 ORDER_INVALID, false);
3ce2c28e 2681 Output_data_strtab* strtab_data =
09ec0418
CC
2682 new Output_data_strtab(incr->get_stringpool());
2683 incremental_strtab_os->add_output_section_data(strtab_data);
2684
2685 incremental_inputs_os->set_after_input_sections();
2686 incremental_symtab_os->set_after_input_sections();
2687 incremental_relocs_os->set_after_input_sections();
0e70b911 2688 incremental_got_plt_os->set_after_input_sections();
09ec0418
CC
2689
2690 incremental_inputs_os->set_link_section(incremental_strtab_os);
2691 incremental_symtab_os->set_link_section(incremental_inputs_os);
2692 incremental_relocs_os->set_link_section(incremental_inputs_os);
0e70b911 2693 incremental_got_plt_os->set_link_section(incremental_inputs_os);
3ce2c28e
ILT
2694}
2695
75f65a3e
ILT
2696// Return whether SEG1 should be before SEG2 in the output file. This
2697// is based entirely on the segment type and flags. When this is
2698// called the segment addresses has normally not yet been set.
2699
2700bool
2701Layout::segment_precedes(const Output_segment* seg1,
2702 const Output_segment* seg2)
2703{
2704 elfcpp::Elf_Word type1 = seg1->type();
2705 elfcpp::Elf_Word type2 = seg2->type();
2706
2707 // The single PT_PHDR segment is required to precede any loadable
2708 // segment. We simply make it always first.
2709 if (type1 == elfcpp::PT_PHDR)
2710 {
a3ad94ed 2711 gold_assert(type2 != elfcpp::PT_PHDR);
75f65a3e
ILT
2712 return true;
2713 }
2714 if (type2 == elfcpp::PT_PHDR)
2715 return false;
2716
2717 // The single PT_INTERP segment is required to precede any loadable
2718 // segment. We simply make it always second.
2719 if (type1 == elfcpp::PT_INTERP)
2720 {
a3ad94ed 2721 gold_assert(type2 != elfcpp::PT_INTERP);
75f65a3e
ILT
2722 return true;
2723 }
2724 if (type2 == elfcpp::PT_INTERP)
2725 return false;
2726
2727 // We then put PT_LOAD segments before any other segments.
2728 if (type1 == elfcpp::PT_LOAD && type2 != elfcpp::PT_LOAD)
2729 return true;
2730 if (type2 == elfcpp::PT_LOAD && type1 != elfcpp::PT_LOAD)
2731 return false;
2732
9f1d377b
ILT
2733 // We put the PT_TLS segment last except for the PT_GNU_RELRO
2734 // segment, because that is where the dynamic linker expects to find
2735 // it (this is just for efficiency; other positions would also work
2736 // correctly).
2737 if (type1 == elfcpp::PT_TLS
2738 && type2 != elfcpp::PT_TLS
2739 && type2 != elfcpp::PT_GNU_RELRO)
2740 return false;
2741 if (type2 == elfcpp::PT_TLS
2742 && type1 != elfcpp::PT_TLS
2743 && type1 != elfcpp::PT_GNU_RELRO)
2744 return true;
2745
2746 // We put the PT_GNU_RELRO segment last, because that is where the
2747 // dynamic linker expects to find it (as with PT_TLS, this is just
2748 // for efficiency).
2749 if (type1 == elfcpp::PT_GNU_RELRO && type2 != elfcpp::PT_GNU_RELRO)
92e059d8 2750 return false;
9f1d377b 2751 if (type2 == elfcpp::PT_GNU_RELRO && type1 != elfcpp::PT_GNU_RELRO)
92e059d8
ILT
2752 return true;
2753
75f65a3e
ILT
2754 const elfcpp::Elf_Word flags1 = seg1->flags();
2755 const elfcpp::Elf_Word flags2 = seg2->flags();
2756
2757 // The order of non-PT_LOAD segments is unimportant. We simply sort
2758 // by the numeric segment type and flags values. There should not
2759 // be more than one segment with the same type and flags.
2760 if (type1 != elfcpp::PT_LOAD)
2761 {
2762 if (type1 != type2)
2763 return type1 < type2;
a3ad94ed 2764 gold_assert(flags1 != flags2);
75f65a3e
ILT
2765 return flags1 < flags2;
2766 }
2767
a445fddf
ILT
2768 // If the addresses are set already, sort by load address.
2769 if (seg1->are_addresses_set())
2770 {
2771 if (!seg2->are_addresses_set())
2772 return true;
2773
2774 unsigned int section_count1 = seg1->output_section_count();
2775 unsigned int section_count2 = seg2->output_section_count();
2776 if (section_count1 == 0 && section_count2 > 0)
2777 return true;
2778 if (section_count1 > 0 && section_count2 == 0)
2779 return false;
2780
b8fa8750
NC
2781 uint64_t paddr1 = (seg1->are_addresses_set()
2782 ? seg1->paddr()
2783 : seg1->first_section_load_address());
2784 uint64_t paddr2 = (seg2->are_addresses_set()
2785 ? seg2->paddr()
2786 : seg2->first_section_load_address());
2787
a445fddf
ILT
2788 if (paddr1 != paddr2)
2789 return paddr1 < paddr2;
2790 }
2791 else if (seg2->are_addresses_set())
2792 return false;
2793
8a5e3e08
ILT
2794 // A segment which holds large data comes after a segment which does
2795 // not hold large data.
2796 if (seg1->is_large_data_segment())
2797 {
2798 if (!seg2->is_large_data_segment())
2799 return false;
2800 }
2801 else if (seg2->is_large_data_segment())
2802 return true;
2803
2804 // Otherwise, we sort PT_LOAD segments based on the flags. Readonly
2805 // segments come before writable segments. Then writable segments
2806 // with data come before writable segments without data. Then
2807 // executable segments come before non-executable segments. Then
2808 // the unlikely case of a non-readable segment comes before the
2809 // normal case of a readable segment. If there are multiple
2810 // segments with the same type and flags, we require that the
2811 // address be set, and we sort by virtual address and then physical
2812 // address.
75f65a3e
ILT
2813 if ((flags1 & elfcpp::PF_W) != (flags2 & elfcpp::PF_W))
2814 return (flags1 & elfcpp::PF_W) == 0;
756ac4a8
ILT
2815 if ((flags1 & elfcpp::PF_W) != 0
2816 && seg1->has_any_data_sections() != seg2->has_any_data_sections())
2817 return seg1->has_any_data_sections();
75f65a3e
ILT
2818 if ((flags1 & elfcpp::PF_X) != (flags2 & elfcpp::PF_X))
2819 return (flags1 & elfcpp::PF_X) != 0;
2820 if ((flags1 & elfcpp::PF_R) != (flags2 & elfcpp::PF_R))
2821 return (flags1 & elfcpp::PF_R) == 0;
2822
a445fddf
ILT
2823 // We shouldn't get here--we shouldn't create segments which we
2824 // can't distinguish.
2825 gold_unreachable();
75f65a3e
ILT
2826}
2827
8a5e3e08
ILT
2828// Increase OFF so that it is congruent to ADDR modulo ABI_PAGESIZE.
2829
2830static off_t
2831align_file_offset(off_t off, uint64_t addr, uint64_t abi_pagesize)
2832{
2833 uint64_t unsigned_off = off;
2834 uint64_t aligned_off = ((unsigned_off & ~(abi_pagesize - 1))
2835 | (addr & (abi_pagesize - 1)));
2836 if (aligned_off < unsigned_off)
2837 aligned_off += abi_pagesize;
2838 return aligned_off;
2839}
2840
ead1e424
ILT
2841// Set the file offsets of all the segments, and all the sections they
2842// contain. They have all been created. LOAD_SEG must be be laid out
2843// first. Return the offset of the data to follow.
75f65a3e
ILT
2844
2845off_t
ead1e424 2846Layout::set_segment_offsets(const Target* target, Output_segment* load_seg,
ca09d69a 2847 unsigned int* pshndx)
75f65a3e
ILT
2848{
2849 // Sort them into the final order.
54dc6425
ILT
2850 std::sort(this->segment_list_.begin(), this->segment_list_.end(),
2851 Layout::Compare_segments());
2852
75f65a3e
ILT
2853 // Find the PT_LOAD segments, and set their addresses and offsets
2854 // and their section's addresses and offsets.
0c5e9c22 2855 uint64_t addr;
e55bde5e
ILT
2856 if (parameters->options().user_set_Ttext())
2857 addr = parameters->options().Ttext();
374ad285 2858 else if (parameters->options().output_is_position_independent())
a445fddf 2859 addr = 0;
0c5e9c22
ILT
2860 else
2861 addr = target->default_text_segment_address();
75f65a3e 2862 off_t off = 0;
a445fddf
ILT
2863
2864 // If LOAD_SEG is NULL, then the file header and segment headers
2865 // will not be loadable. But they still need to be at offset 0 in
2866 // the file. Set their offsets now.
2867 if (load_seg == NULL)
2868 {
2869 for (Data_list::iterator p = this->special_output_list_.begin();
2870 p != this->special_output_list_.end();
2871 ++p)
2872 {
2873 off = align_address(off, (*p)->addralign());
2874 (*p)->set_address_and_file_offset(0, off);
2875 off += (*p)->data_size();
2876 }
2877 }
2878
1a2dff53
ILT
2879 unsigned int increase_relro = this->increase_relro_;
2880 if (this->script_options_->saw_sections_clause())
2881 increase_relro = 0;
2882
34810851
ILT
2883 const bool check_sections = parameters->options().check_sections();
2884 Output_segment* last_load_segment = NULL;
2885
75f65a3e
ILT
2886 for (Segment_list::iterator p = this->segment_list_.begin();
2887 p != this->segment_list_.end();
2888 ++p)
2889 {
2890 if ((*p)->type() == elfcpp::PT_LOAD)
2891 {
2892 if (load_seg != NULL && load_seg != *p)
a3ad94ed 2893 gold_unreachable();
75f65a3e
ILT
2894 load_seg = NULL;
2895
756ac4a8
ILT
2896 bool are_addresses_set = (*p)->are_addresses_set();
2897 if (are_addresses_set)
2898 {
2899 // When it comes to setting file offsets, we care about
2900 // the physical address.
2901 addr = (*p)->paddr();
2902 }
e55bde5e 2903 else if (parameters->options().user_set_Tdata()
756ac4a8 2904 && ((*p)->flags() & elfcpp::PF_W) != 0
e55bde5e 2905 && (!parameters->options().user_set_Tbss()
756ac4a8
ILT
2906 || (*p)->has_any_data_sections()))
2907 {
e55bde5e 2908 addr = parameters->options().Tdata();
756ac4a8
ILT
2909 are_addresses_set = true;
2910 }
e55bde5e 2911 else if (parameters->options().user_set_Tbss()
756ac4a8
ILT
2912 && ((*p)->flags() & elfcpp::PF_W) != 0
2913 && !(*p)->has_any_data_sections())
2914 {
e55bde5e 2915 addr = parameters->options().Tbss();
756ac4a8
ILT
2916 are_addresses_set = true;
2917 }
2918
75f65a3e
ILT
2919 uint64_t orig_addr = addr;
2920 uint64_t orig_off = off;
2921
a445fddf 2922 uint64_t aligned_addr = 0;
75f65a3e 2923 uint64_t abi_pagesize = target->abi_pagesize();
af6156ef 2924 uint64_t common_pagesize = target->common_pagesize();
0496d5e5 2925
af6156ef
ILT
2926 if (!parameters->options().nmagic()
2927 && !parameters->options().omagic())
2928 (*p)->set_minimum_p_align(common_pagesize);
0496d5e5 2929
8a5e3e08 2930 if (!are_addresses_set)
a445fddf 2931 {
a6577478
RÁE
2932 // Skip the address forward one page, maintaining the same
2933 // position within the page. This lets us store both segments
2934 // overlapping on a single page in the file, but the loader will
2935 // put them on different pages in memory. We will revisit this
2936 // decision once we know the size of the segment.
a445fddf
ILT
2937
2938 addr = align_address(addr, (*p)->maximum_alignment());
75f65a3e 2939 aligned_addr = addr;
a445fddf 2940
a6577478
RÁE
2941 if ((addr & (abi_pagesize - 1)) != 0)
2942 addr = addr + abi_pagesize;
a445fddf
ILT
2943
2944 off = orig_off + ((addr - orig_addr) & (abi_pagesize - 1));
75f65a3e
ILT
2945 }
2946
8a5e3e08
ILT
2947 if (!parameters->options().nmagic()
2948 && !parameters->options().omagic())
2949 off = align_file_offset(off, addr, abi_pagesize);
661be1e2
ILT
2950 else if (load_seg == NULL)
2951 {
2952 // This is -N or -n with a section script which prevents
2953 // us from using a load segment. We need to ensure that
2954 // the file offset is aligned to the alignment of the
2955 // segment. This is because the linker script
2956 // implicitly assumed a zero offset. If we don't align
2957 // here, then the alignment of the sections in the
2958 // linker script may not match the alignment of the
2959 // sections in the set_section_addresses call below,
2960 // causing an error about dot moving backward.
2961 off = align_address(off, (*p)->maximum_alignment());
2962 }
8a5e3e08 2963
ead1e424 2964 unsigned int shndx_hold = *pshndx;
fc497986 2965 bool has_relro = false;
96a2b4e4 2966 uint64_t new_addr = (*p)->set_section_addresses(this, false, addr,
fd064a5b 2967 &increase_relro,
fc497986 2968 &has_relro,
96a2b4e4 2969 &off, pshndx);
75f65a3e
ILT
2970
2971 // Now that we know the size of this segment, we may be able
2972 // to save a page in memory, at the cost of wasting some
2973 // file space, by instead aligning to the start of a new
2974 // page. Here we use the real machine page size rather than
fc497986
CC
2975 // the ABI mandated page size. If the segment has been
2976 // aligned so that the relro data ends at a page boundary,
2977 // we do not try to realign it.
75f65a3e 2978
cdc29364
CC
2979 if (!are_addresses_set
2980 && !has_relro
2981 && aligned_addr != addr
fb0e076f 2982 && !parameters->incremental())
75f65a3e 2983 {
75f65a3e
ILT
2984 uint64_t first_off = (common_pagesize
2985 - (aligned_addr
2986 & (common_pagesize - 1)));
2987 uint64_t last_off = new_addr & (common_pagesize - 1);
2988 if (first_off > 0
2989 && last_off > 0
2990 && ((aligned_addr & ~ (common_pagesize - 1))
2991 != (new_addr & ~ (common_pagesize - 1)))
2992 && first_off + last_off <= common_pagesize)
2993 {
ead1e424
ILT
2994 *pshndx = shndx_hold;
2995 addr = align_address(aligned_addr, common_pagesize);
a445fddf 2996 addr = align_address(addr, (*p)->maximum_alignment());
75f65a3e 2997 off = orig_off + ((addr - orig_addr) & (abi_pagesize - 1));
8a5e3e08 2998 off = align_file_offset(off, addr, abi_pagesize);
3bb951e5
ILT
2999
3000 increase_relro = this->increase_relro_;
3001 if (this->script_options_->saw_sections_clause())
3002 increase_relro = 0;
3003 has_relro = false;
3004
96a2b4e4 3005 new_addr = (*p)->set_section_addresses(this, true, addr,
fd064a5b 3006 &increase_relro,
fc497986 3007 &has_relro,
96a2b4e4 3008 &off, pshndx);
75f65a3e
ILT
3009 }
3010 }
3011
3012 addr = new_addr;
3013
34810851
ILT
3014 // Implement --check-sections. We know that the segments
3015 // are sorted by LMA.
3016 if (check_sections && last_load_segment != NULL)
3017 {
3018 gold_assert(last_load_segment->paddr() <= (*p)->paddr());
3019 if (last_load_segment->paddr() + last_load_segment->memsz()
3020 > (*p)->paddr())
3021 {
3022 unsigned long long lb1 = last_load_segment->paddr();
3023 unsigned long long le1 = lb1 + last_load_segment->memsz();
3024 unsigned long long lb2 = (*p)->paddr();
3025 unsigned long long le2 = lb2 + (*p)->memsz();
3026 gold_error(_("load segment overlap [0x%llx -> 0x%llx] and "
3027 "[0x%llx -> 0x%llx]"),
3028 lb1, le1, lb2, le2);
3029 }
3030 }
3031 last_load_segment = *p;
75f65a3e
ILT
3032 }
3033 }
3034
3035 // Handle the non-PT_LOAD segments, setting their offsets from their
3036 // section's offsets.
3037 for (Segment_list::iterator p = this->segment_list_.begin();
3038 p != this->segment_list_.end();
3039 ++p)
3040 {
3041 if ((*p)->type() != elfcpp::PT_LOAD)
1a2dff53
ILT
3042 (*p)->set_offset((*p)->type() == elfcpp::PT_GNU_RELRO
3043 ? increase_relro
3044 : 0);
75f65a3e
ILT
3045 }
3046
7bf1f802
ILT
3047 // Set the TLS offsets for each section in the PT_TLS segment.
3048 if (this->tls_segment_ != NULL)
3049 this->tls_segment_->set_tls_offsets();
3050
75f65a3e
ILT
3051 return off;
3052}
3053
6a74a719
ILT
3054// Set the offsets of all the allocated sections when doing a
3055// relocatable link. This does the same jobs as set_segment_offsets,
3056// only for a relocatable link.
3057
3058off_t
3059Layout::set_relocatable_section_offsets(Output_data* file_header,
ca09d69a 3060 unsigned int* pshndx)
6a74a719
ILT
3061{
3062 off_t off = 0;
3063
3064 file_header->set_address_and_file_offset(0, 0);
3065 off += file_header->data_size();
3066
3067 for (Section_list::iterator p = this->section_list_.begin();
3068 p != this->section_list_.end();
3069 ++p)
3070 {
3071 // We skip unallocated sections here, except that group sections
3072 // have to come first.
3073 if (((*p)->flags() & elfcpp::SHF_ALLOC) == 0
3074 && (*p)->type() != elfcpp::SHT_GROUP)
3075 continue;
3076
3077 off = align_address(off, (*p)->addralign());
3078
3079 // The linker script might have set the address.
3080 if (!(*p)->is_address_valid())
3081 (*p)->set_address(0);
3082 (*p)->set_file_offset(off);
3083 (*p)->finalize_data_size();
3084 off += (*p)->data_size();
3085
3086 (*p)->set_out_shndx(*pshndx);
3087 ++*pshndx;
3088 }
3089
3090 return off;
3091}
3092
75f65a3e
ILT
3093// Set the file offset of all the sections not associated with a
3094// segment.
3095
3096off_t
9a0910c3 3097Layout::set_section_offsets(off_t off, Layout::Section_offset_pass pass)
75f65a3e 3098{
cdc29364
CC
3099 off_t startoff = off;
3100 off_t maxoff = off;
3101
a3ad94ed
ILT
3102 for (Section_list::iterator p = this->unattached_section_list_.begin();
3103 p != this->unattached_section_list_.end();
75f65a3e
ILT
3104 ++p)
3105 {
27bc2bce
ILT
3106 // The symtab section is handled in create_symtab_sections.
3107 if (*p == this->symtab_section_)
61ba1cf9 3108 continue;
27bc2bce 3109
a9a60db6
ILT
3110 // If we've already set the data size, don't set it again.
3111 if ((*p)->is_offset_valid() && (*p)->is_data_size_valid())
3112 continue;
3113
96803768
ILT
3114 if (pass == BEFORE_INPUT_SECTIONS_PASS
3115 && (*p)->requires_postprocessing())
17a1d0a9
ILT
3116 {
3117 (*p)->create_postprocessing_buffer();
3118 this->any_postprocessing_sections_ = true;
3119 }
96803768 3120
9a0910c3
ILT
3121 if (pass == BEFORE_INPUT_SECTIONS_PASS
3122 && (*p)->after_input_sections())
3123 continue;
17a1d0a9 3124 else if (pass == POSTPROCESSING_SECTIONS_PASS
9a0910c3
ILT
3125 && (!(*p)->after_input_sections()
3126 || (*p)->type() == elfcpp::SHT_STRTAB))
3127 continue;
17a1d0a9 3128 else if (pass == STRTAB_AFTER_POSTPROCESSING_SECTIONS_PASS
9a0910c3
ILT
3129 && (!(*p)->after_input_sections()
3130 || (*p)->type() != elfcpp::SHT_STRTAB))
3131 continue;
27bc2bce 3132
cdc29364
CC
3133 if (!parameters->incremental_update())
3134 {
3135 off = align_address(off, (*p)->addralign());
3136 (*p)->set_file_offset(off);
3137 (*p)->finalize_data_size();
3138 }
3139 else
3140 {
3141 // Incremental update: allocate file space from free list.
3142 (*p)->pre_finalize_data_size();
3143 off_t current_size = (*p)->current_data_size();
3144 off = this->allocate(current_size, (*p)->addralign(), startoff);
3145 if (off == -1)
3146 {
3147 if (is_debugging_enabled(DEBUG_INCREMENTAL))
3148 this->free_list_.dump();
3149 gold_assert((*p)->output_section() != NULL);
e6455dfb
CC
3150 gold_fallback(_("out of patch space for section %s; "
3151 "relink with --incremental-full"),
3152 (*p)->output_section()->name());
cdc29364
CC
3153 }
3154 (*p)->set_file_offset(off);
3155 (*p)->finalize_data_size();
3156 if ((*p)->data_size() > current_size)
3157 {
3158 gold_assert((*p)->output_section() != NULL);
e6455dfb
CC
3159 gold_fallback(_("%s: section changed size; "
3160 "relink with --incremental-full"),
3161 (*p)->output_section()->name());
cdc29364
CC
3162 }
3163 gold_debug(DEBUG_INCREMENTAL,
3164 "set_section_offsets: %08lx %08lx %s",
3165 static_cast<long>(off),
3166 static_cast<long>((*p)->data_size()),
3167 ((*p)->output_section() != NULL
3168 ? (*p)->output_section()->name() : "(special)"));
3169 }
3170
75f65a3e 3171 off += (*p)->data_size();
cdc29364
CC
3172 if (off > maxoff)
3173 maxoff = off;
96803768
ILT
3174
3175 // At this point the name must be set.
17a1d0a9 3176 if (pass != STRTAB_AFTER_POSTPROCESSING_SECTIONS_PASS)
96803768 3177 this->namepool_.add((*p)->name(), false, NULL);
75f65a3e 3178 }
cdc29364 3179 return maxoff;
75f65a3e
ILT
3180}
3181
86887060
ILT
3182// Set the section indexes of all the sections not associated with a
3183// segment.
3184
3185unsigned int
3186Layout::set_section_indexes(unsigned int shndx)
3187{
3188 for (Section_list::iterator p = this->unattached_section_list_.begin();
3189 p != this->unattached_section_list_.end();
3190 ++p)
3191 {
d491d34e
ILT
3192 if (!(*p)->has_out_shndx())
3193 {
3194 (*p)->set_out_shndx(shndx);
3195 ++shndx;
3196 }
86887060
ILT
3197 }
3198 return shndx;
3199}
3200
a445fddf
ILT
3201// Set the section addresses according to the linker script. This is
3202// only called when we see a SECTIONS clause. This returns the
3203// program segment which should hold the file header and segment
3204// headers, if any. It will return NULL if they should not be in a
3205// segment.
3206
3207Output_segment*
3208Layout::set_section_addresses_from_script(Symbol_table* symtab)
20e6d0d6
DK
3209{
3210 Script_sections* ss = this->script_options_->script_sections();
3211 gold_assert(ss->saw_sections_clause());
3212 return this->script_options_->set_section_addresses(symtab, this);
3213}
3214
3215// Place the orphan sections in the linker script.
3216
3217void
3218Layout::place_orphan_sections_in_script()
a445fddf
ILT
3219{
3220 Script_sections* ss = this->script_options_->script_sections();
3221 gold_assert(ss->saw_sections_clause());
3222
3223 // Place each orphaned output section in the script.
3224 for (Section_list::iterator p = this->section_list_.begin();
3225 p != this->section_list_.end();
3226 ++p)
3227 {
3228 if (!(*p)->found_in_sections_clause())
3229 ss->place_orphan(*p);
3230 }
a445fddf
ILT
3231}
3232
7bf1f802
ILT
3233// Count the local symbols in the regular symbol table and the dynamic
3234// symbol table, and build the respective string pools.
3235
3236void
17a1d0a9
ILT
3237Layout::count_local_symbols(const Task* task,
3238 const Input_objects* input_objects)
7bf1f802 3239{
6d013333
ILT
3240 // First, figure out an upper bound on the number of symbols we'll
3241 // be inserting into each pool. This helps us create the pools with
3242 // the right size, to avoid unnecessary hashtable resizing.
3243 unsigned int symbol_count = 0;
3244 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
3245 p != input_objects->relobj_end();
3246 ++p)
3247 symbol_count += (*p)->local_symbol_count();
3248
3249 // Go from "upper bound" to "estimate." We overcount for two
3250 // reasons: we double-count symbols that occur in more than one
3251 // object file, and we count symbols that are dropped from the
3252 // output. Add it all together and assume we overcount by 100%.
3253 symbol_count /= 2;
3254
3255 // We assume all symbols will go into both the sympool and dynpool.
3256 this->sympool_.reserve(symbol_count);
3257 this->dynpool_.reserve(symbol_count);
3258
7bf1f802
ILT
3259 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
3260 p != input_objects->relobj_end();
3261 ++p)
3262 {
17a1d0a9 3263 Task_lock_obj<Object> tlo(task, *p);
7bf1f802
ILT
3264 (*p)->count_local_symbols(&this->sympool_, &this->dynpool_);
3265 }
3266}
3267
b8e6aad9
ILT
3268// Create the symbol table sections. Here we also set the final
3269// values of the symbols. At this point all the loadable sections are
d491d34e 3270// fully laid out. SHNUM is the number of sections so far.
75f65a3e
ILT
3271
3272void
9025d29d 3273Layout::create_symtab_sections(const Input_objects* input_objects,
75f65a3e 3274 Symbol_table* symtab,
d491d34e 3275 unsigned int shnum,
16649710 3276 off_t* poff)
75f65a3e 3277{
61ba1cf9
ILT
3278 int symsize;
3279 unsigned int align;
8851ecca 3280 if (parameters->target().get_size() == 32)
61ba1cf9
ILT
3281 {
3282 symsize = elfcpp::Elf_sizes<32>::sym_size;
3283 align = 4;
3284 }
8851ecca 3285 else if (parameters->target().get_size() == 64)
61ba1cf9
ILT
3286 {
3287 symsize = elfcpp::Elf_sizes<64>::sym_size;
3288 align = 8;
3289 }
3290 else
a3ad94ed 3291 gold_unreachable();
61ba1cf9 3292
cdc29364
CC
3293 // Compute file offsets relative to the start of the symtab section.
3294 off_t off = 0;
61ba1cf9
ILT
3295
3296 // Save space for the dummy symbol at the start of the section. We
3297 // never bother to write this out--it will just be left as zero.
3298 off += symsize;
c06b7b0b 3299 unsigned int local_symbol_index = 1;
61ba1cf9 3300
a3ad94ed
ILT
3301 // Add STT_SECTION symbols for each Output section which needs one.
3302 for (Section_list::iterator p = this->section_list_.begin();
3303 p != this->section_list_.end();
3304 ++p)
3305 {
3306 if (!(*p)->needs_symtab_index())
3307 (*p)->set_symtab_index(-1U);
3308 else
3309 {
3310 (*p)->set_symtab_index(local_symbol_index);
3311 ++local_symbol_index;
3312 off += symsize;
3313 }
3314 }
3315
f6ce93d6
ILT
3316 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
3317 p != input_objects->relobj_end();
75f65a3e
ILT
3318 ++p)
3319 {
c06b7b0b 3320 unsigned int index = (*p)->finalize_local_symbols(local_symbol_index,
ef15dade 3321 off, symtab);
c06b7b0b
ILT
3322 off += (index - local_symbol_index) * symsize;
3323 local_symbol_index = index;
75f65a3e
ILT
3324 }
3325
c06b7b0b 3326 unsigned int local_symcount = local_symbol_index;
cdc29364 3327 gold_assert(static_cast<off_t>(local_symcount * symsize) == off);
61ba1cf9 3328
16649710
ILT
3329 off_t dynoff;
3330 size_t dyn_global_index;
3331 size_t dyncount;
3332 if (this->dynsym_section_ == NULL)
3333 {
3334 dynoff = 0;
3335 dyn_global_index = 0;
3336 dyncount = 0;
3337 }
3338 else
3339 {
3340 dyn_global_index = this->dynsym_section_->info();
3341 off_t locsize = dyn_global_index * this->dynsym_section_->entsize();
3342 dynoff = this->dynsym_section_->offset() + locsize;
3343 dyncount = (this->dynsym_section_->data_size() - locsize) / symsize;
f5c3f225 3344 gold_assert(static_cast<off_t>(dyncount * symsize)
16649710
ILT
3345 == this->dynsym_section_->data_size() - locsize);
3346 }
3347
cdc29364 3348 off_t global_off = off;
55a93433
ILT
3349 off = symtab->finalize(off, dynoff, dyn_global_index, dyncount,
3350 &this->sympool_, &local_symcount);
75f65a3e 3351
8851ecca 3352 if (!parameters->options().strip_all())
9e2dcb77
ILT
3353 {
3354 this->sympool_.set_string_offsets();
61ba1cf9 3355
cfd73a4e 3356 const char* symtab_name = this->namepool_.add(".symtab", false, NULL);
9e2dcb77
ILT
3357 Output_section* osymtab = this->make_output_section(symtab_name,
3358 elfcpp::SHT_SYMTAB,
22f0da72
ILT
3359 0, ORDER_INVALID,
3360 false);
9e2dcb77 3361 this->symtab_section_ = osymtab;
a3ad94ed 3362
cdc29364 3363 Output_section_data* pos = new Output_data_fixed_space(off, align,
7d9e3d98 3364 "** symtab");
9e2dcb77 3365 osymtab->add_output_section_data(pos);
61ba1cf9 3366
d491d34e
ILT
3367 // We generate a .symtab_shndx section if we have more than
3368 // SHN_LORESERVE sections. Technically it is possible that we
3369 // don't need one, because it is possible that there are no
3370 // symbols in any of sections with indexes larger than
3371 // SHN_LORESERVE. That is probably unusual, though, and it is
3372 // easier to always create one than to compute section indexes
3373 // twice (once here, once when writing out the symbols).
3374 if (shnum >= elfcpp::SHN_LORESERVE)
3375 {
3376 const char* symtab_xindex_name = this->namepool_.add(".symtab_shndx",
3377 false, NULL);
3378 Output_section* osymtab_xindex =
3379 this->make_output_section(symtab_xindex_name,
22f0da72
ILT
3380 elfcpp::SHT_SYMTAB_SHNDX, 0,
3381 ORDER_INVALID, false);
d491d34e 3382
cdc29364 3383 size_t symcount = off / symsize;
d491d34e
ILT
3384 this->symtab_xindex_ = new Output_symtab_xindex(symcount);
3385
3386 osymtab_xindex->add_output_section_data(this->symtab_xindex_);
3387
3388 osymtab_xindex->set_link_section(osymtab);
3389 osymtab_xindex->set_addralign(4);
3390 osymtab_xindex->set_entsize(4);
3391
3392 osymtab_xindex->set_after_input_sections();
3393
3394 // This tells the driver code to wait until the symbol table
3395 // has written out before writing out the postprocessing
3396 // sections, including the .symtab_shndx section.
3397 this->any_postprocessing_sections_ = true;
3398 }
3399
cfd73a4e 3400 const char* strtab_name = this->namepool_.add(".strtab", false, NULL);
9e2dcb77
ILT
3401 Output_section* ostrtab = this->make_output_section(strtab_name,
3402 elfcpp::SHT_STRTAB,
22f0da72
ILT
3403 0, ORDER_INVALID,
3404 false);
a3ad94ed 3405
9e2dcb77
ILT
3406 Output_section_data* pstr = new Output_data_strtab(&this->sympool_);
3407 ostrtab->add_output_section_data(pstr);
61ba1cf9 3408
cdc29364
CC
3409 off_t symtab_off;
3410 if (!parameters->incremental_update())
3411 symtab_off = align_address(*poff, align);
3412 else
3413 {
3414 symtab_off = this->allocate(off, align, *poff);
3415 if (off == -1)
e6455dfb
CC
3416 gold_fallback(_("out of patch space for symbol table; "
3417 "relink with --incremental-full"));
cdc29364
CC
3418 gold_debug(DEBUG_INCREMENTAL,
3419 "create_symtab_sections: %08lx %08lx .symtab",
3420 static_cast<long>(symtab_off),
3421 static_cast<long>(off));
3422 }
3423
3424 symtab->set_file_offset(symtab_off + global_off);
3425 osymtab->set_file_offset(symtab_off);
27bc2bce 3426 osymtab->finalize_data_size();
9e2dcb77
ILT
3427 osymtab->set_link_section(ostrtab);
3428 osymtab->set_info(local_symcount);
3429 osymtab->set_entsize(symsize);
61ba1cf9 3430
cdc29364
CC
3431 if (symtab_off + off > *poff)
3432 *poff = symtab_off + off;
9e2dcb77 3433 }
75f65a3e
ILT
3434}
3435
3436// Create the .shstrtab section, which holds the names of the
3437// sections. At the time this is called, we have created all the
3438// output sections except .shstrtab itself.
3439
3440Output_section*
3441Layout::create_shstrtab()
3442{
3443 // FIXME: We don't need to create a .shstrtab section if we are
3444 // stripping everything.
3445
cfd73a4e 3446 const char* name = this->namepool_.add(".shstrtab", false, NULL);
75f65a3e 3447
f5c870d2 3448 Output_section* os = this->make_output_section(name, elfcpp::SHT_STRTAB, 0,
22f0da72 3449 ORDER_INVALID, false);
75f65a3e 3450
0e0d5469
ILT
3451 if (strcmp(parameters->options().compress_debug_sections(), "none") != 0)
3452 {
3453 // We can't write out this section until we've set all the
3454 // section names, and we don't set the names of compressed
3455 // output sections until relocations are complete. FIXME: With
3456 // the current names we use, this is unnecessary.
3457 os->set_after_input_sections();
3458 }
27bc2bce 3459
a3ad94ed
ILT
3460 Output_section_data* posd = new Output_data_strtab(&this->namepool_);
3461 os->add_output_section_data(posd);
75f65a3e
ILT
3462
3463 return os;
3464}
3465
3466// Create the section headers. SIZE is 32 or 64. OFF is the file
3467// offset.
3468
27bc2bce 3469void
d491d34e 3470Layout::create_shdrs(const Output_section* shstrtab_section, off_t* poff)
75f65a3e
ILT
3471{
3472 Output_section_headers* oshdrs;
9025d29d 3473 oshdrs = new Output_section_headers(this,
16649710 3474 &this->segment_list_,
6a74a719 3475 &this->section_list_,
16649710 3476 &this->unattached_section_list_,
d491d34e
ILT
3477 &this->namepool_,
3478 shstrtab_section);
cdc29364
CC
3479 off_t off;
3480 if (!parameters->incremental_update())
3481 off = align_address(*poff, oshdrs->addralign());
3482 else
3483 {
3484 oshdrs->pre_finalize_data_size();
3485 off = this->allocate(oshdrs->data_size(), oshdrs->addralign(), *poff);
3486 if (off == -1)
e6455dfb
CC
3487 gold_fallback(_("out of patch space for section header table; "
3488 "relink with --incremental-full"));
cdc29364
CC
3489 gold_debug(DEBUG_INCREMENTAL,
3490 "create_shdrs: %08lx %08lx (section header table)",
3491 static_cast<long>(off),
3492 static_cast<long>(off + oshdrs->data_size()));
3493 }
27bc2bce 3494 oshdrs->set_address_and_file_offset(0, off);
61ba1cf9 3495 off += oshdrs->data_size();
cdc29364
CC
3496 if (off > *poff)
3497 *poff = off;
27bc2bce 3498 this->section_headers_ = oshdrs;
54dc6425
ILT
3499}
3500
d491d34e
ILT
3501// Count the allocated sections.
3502
3503size_t
3504Layout::allocated_output_section_count() const
3505{
3506 size_t section_count = 0;
3507 for (Segment_list::const_iterator p = this->segment_list_.begin();
3508 p != this->segment_list_.end();
3509 ++p)
3510 section_count += (*p)->output_section_count();
3511 return section_count;
3512}
3513
dbe717ef
ILT
3514// Create the dynamic symbol table.
3515
3516void
7bf1f802 3517Layout::create_dynamic_symtab(const Input_objects* input_objects,
9b07f471 3518 Symbol_table* symtab,
ca09d69a 3519 Output_section** pdynstr,
14b31740
ILT
3520 unsigned int* plocal_dynamic_count,
3521 std::vector<Symbol*>* pdynamic_symbols,
3522 Versions* pversions)
dbe717ef 3523{
a3ad94ed
ILT
3524 // Count all the symbols in the dynamic symbol table, and set the
3525 // dynamic symbol indexes.
dbe717ef 3526
a3ad94ed
ILT
3527 // Skip symbol 0, which is always all zeroes.
3528 unsigned int index = 1;
dbe717ef 3529
a3ad94ed
ILT
3530 // Add STT_SECTION symbols for each Output section which needs one.
3531 for (Section_list::iterator p = this->section_list_.begin();
3532 p != this->section_list_.end();
3533 ++p)
3534 {
3535 if (!(*p)->needs_dynsym_index())
3536 (*p)->set_dynsym_index(-1U);
3537 else
3538 {
3539 (*p)->set_dynsym_index(index);
3540 ++index;
3541 }
3542 }
3543
7bf1f802
ILT
3544 // Count the local symbols that need to go in the dynamic symbol table,
3545 // and set the dynamic symbol indexes.
3546 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
3547 p != input_objects->relobj_end();
3548 ++p)
3549 {
3550 unsigned int new_index = (*p)->set_local_dynsym_indexes(index);
3551 index = new_index;
3552 }
a3ad94ed
ILT
3553
3554 unsigned int local_symcount = index;
14b31740 3555 *plocal_dynamic_count = local_symcount;
a3ad94ed 3556
9b07f471 3557 index = symtab->set_dynsym_indexes(index, pdynamic_symbols,
35cdfc9a 3558 &this->dynpool_, pversions);
a3ad94ed
ILT
3559
3560 int symsize;
3561 unsigned int align;
8851ecca 3562 const int size = parameters->target().get_size();
a3ad94ed
ILT
3563 if (size == 32)
3564 {
3565 symsize = elfcpp::Elf_sizes<32>::sym_size;
3566 align = 4;
3567 }
3568 else if (size == 64)
3569 {
3570 symsize = elfcpp::Elf_sizes<64>::sym_size;
3571 align = 8;
3572 }
3573 else
3574 gold_unreachable();
3575
14b31740
ILT
3576 // Create the dynamic symbol table section.
3577
3802b2dd
ILT
3578 Output_section* dynsym = this->choose_output_section(NULL, ".dynsym",
3579 elfcpp::SHT_DYNSYM,
3580 elfcpp::SHF_ALLOC,
22f0da72
ILT
3581 false,
3582 ORDER_DYNAMIC_LINKER,
3583 false);
a3ad94ed 3584
27bc2bce 3585 Output_section_data* odata = new Output_data_fixed_space(index * symsize,
7d9e3d98
ILT
3586 align,
3587 "** dynsym");
a3ad94ed
ILT
3588 dynsym->add_output_section_data(odata);
3589
3590 dynsym->set_info(local_symcount);
3591 dynsym->set_entsize(symsize);
3592 dynsym->set_addralign(align);
3593
3594 this->dynsym_section_ = dynsym;
3595
16649710 3596 Output_data_dynamic* const odyn = this->dynamic_data_;
a3ad94ed
ILT
3597 odyn->add_section_address(elfcpp::DT_SYMTAB, dynsym);
3598 odyn->add_constant(elfcpp::DT_SYMENT, symsize);
3599
d491d34e
ILT
3600 // If there are more than SHN_LORESERVE allocated sections, we
3601 // create a .dynsym_shndx section. It is possible that we don't
3602 // need one, because it is possible that there are no dynamic
3603 // symbols in any of the sections with indexes larger than
3604 // SHN_LORESERVE. This is probably unusual, though, and at this
3605 // time we don't know the actual section indexes so it is
3606 // inconvenient to check.
3607 if (this->allocated_output_section_count() >= elfcpp::SHN_LORESERVE)
3608 {
2ea97941 3609 Output_section* dynsym_xindex =
d491d34e
ILT
3610 this->choose_output_section(NULL, ".dynsym_shndx",
3611 elfcpp::SHT_SYMTAB_SHNDX,
3612 elfcpp::SHF_ALLOC,
22f0da72 3613 false, ORDER_DYNAMIC_LINKER, false);
d491d34e
ILT
3614
3615 this->dynsym_xindex_ = new Output_symtab_xindex(index);
3616
2ea97941 3617 dynsym_xindex->add_output_section_data(this->dynsym_xindex_);
d491d34e 3618
2ea97941
ILT
3619 dynsym_xindex->set_link_section(dynsym);
3620 dynsym_xindex->set_addralign(4);
3621 dynsym_xindex->set_entsize(4);
d491d34e 3622
2ea97941 3623 dynsym_xindex->set_after_input_sections();
d491d34e
ILT
3624
3625 // This tells the driver code to wait until the symbol table has
3626 // written out before writing out the postprocessing sections,
3627 // including the .dynsym_shndx section.
3628 this->any_postprocessing_sections_ = true;
3629 }
3630
14b31740
ILT
3631 // Create the dynamic string table section.
3632
3802b2dd
ILT
3633 Output_section* dynstr = this->choose_output_section(NULL, ".dynstr",
3634 elfcpp::SHT_STRTAB,
3635 elfcpp::SHF_ALLOC,
22f0da72
ILT
3636 false,
3637 ORDER_DYNAMIC_LINKER,
3638 false);
a3ad94ed
ILT
3639
3640 Output_section_data* strdata = new Output_data_strtab(&this->dynpool_);
3641 dynstr->add_output_section_data(strdata);
3642
16649710
ILT
3643 dynsym->set_link_section(dynstr);
3644 this->dynamic_section_->set_link_section(dynstr);
3645
a3ad94ed
ILT
3646 odyn->add_section_address(elfcpp::DT_STRTAB, dynstr);
3647 odyn->add_section_size(elfcpp::DT_STRSZ, dynstr);
3648
14b31740
ILT
3649 *pdynstr = dynstr;
3650
3651 // Create the hash tables.
3652
13670ee6
ILT
3653 if (strcmp(parameters->options().hash_style(), "sysv") == 0
3654 || strcmp(parameters->options().hash_style(), "both") == 0)
3655 {
3656 unsigned char* phash;
3657 unsigned int hashlen;
3658 Dynobj::create_elf_hash_table(*pdynamic_symbols, local_symcount,
3659 &phash, &hashlen);
3660
22f0da72
ILT
3661 Output_section* hashsec =
3662 this->choose_output_section(NULL, ".hash", elfcpp::SHT_HASH,
3663 elfcpp::SHF_ALLOC, false,
3664 ORDER_DYNAMIC_LINKER, false);
13670ee6
ILT
3665
3666 Output_section_data* hashdata = new Output_data_const_buffer(phash,
3667 hashlen,
7d9e3d98
ILT
3668 align,
3669 "** hash");
13670ee6
ILT
3670 hashsec->add_output_section_data(hashdata);
3671
3672 hashsec->set_link_section(dynsym);
3673 hashsec->set_entsize(4);
a3ad94ed 3674
13670ee6
ILT
3675 odyn->add_section_address(elfcpp::DT_HASH, hashsec);
3676 }
3677
3678 if (strcmp(parameters->options().hash_style(), "gnu") == 0
3679 || strcmp(parameters->options().hash_style(), "both") == 0)
3680 {
3681 unsigned char* phash;
3682 unsigned int hashlen;
3683 Dynobj::create_gnu_hash_table(*pdynamic_symbols, local_symcount,
3684 &phash, &hashlen);
a3ad94ed 3685
22f0da72
ILT
3686 Output_section* hashsec =
3687 this->choose_output_section(NULL, ".gnu.hash", elfcpp::SHT_GNU_HASH,
3688 elfcpp::SHF_ALLOC, false,
3689 ORDER_DYNAMIC_LINKER, false);
a3ad94ed 3690
13670ee6
ILT
3691 Output_section_data* hashdata = new Output_data_const_buffer(phash,
3692 hashlen,
7d9e3d98
ILT
3693 align,
3694 "** hash");
13670ee6 3695 hashsec->add_output_section_data(hashdata);
a3ad94ed 3696
13670ee6 3697 hashsec->set_link_section(dynsym);
1b81fb71
ILT
3698
3699 // For a 64-bit target, the entries in .gnu.hash do not have a
3700 // uniform size, so we only set the entry size for a 32-bit
3701 // target.
3702 if (parameters->target().get_size() == 32)
3703 hashsec->set_entsize(4);
a3ad94ed 3704
13670ee6
ILT
3705 odyn->add_section_address(elfcpp::DT_GNU_HASH, hashsec);
3706 }
dbe717ef
ILT
3707}
3708
7bf1f802
ILT
3709// Assign offsets to each local portion of the dynamic symbol table.
3710
3711void
3712Layout::assign_local_dynsym_offsets(const Input_objects* input_objects)
3713{
3714 Output_section* dynsym = this->dynsym_section_;
3715 gold_assert(dynsym != NULL);
3716
3717 off_t off = dynsym->offset();
3718
3719 // Skip the dummy symbol at the start of the section.
3720 off += dynsym->entsize();
3721
3722 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
3723 p != input_objects->relobj_end();
3724 ++p)
3725 {
3726 unsigned int count = (*p)->set_local_dynsym_offset(off);
3727 off += count * dynsym->entsize();
3728 }
3729}
3730
14b31740
ILT
3731// Create the version sections.
3732
3733void
9025d29d 3734Layout::create_version_sections(const Versions* versions,
46fe1623 3735 const Symbol_table* symtab,
14b31740
ILT
3736 unsigned int local_symcount,
3737 const std::vector<Symbol*>& dynamic_symbols,
3738 const Output_section* dynstr)
3739{
3740 if (!versions->any_defs() && !versions->any_needs())
3741 return;
3742
8851ecca 3743 switch (parameters->size_and_endianness())
14b31740 3744 {
193a53d9 3745#ifdef HAVE_TARGET_32_LITTLE
8851ecca 3746 case Parameters::TARGET_32_LITTLE:
7d1a9ebb
ILT
3747 this->sized_create_version_sections<32, false>(versions, symtab,
3748 local_symcount,
3749 dynamic_symbols, dynstr);
8851ecca 3750 break;
193a53d9 3751#endif
8851ecca
ILT
3752#ifdef HAVE_TARGET_32_BIG
3753 case Parameters::TARGET_32_BIG:
7d1a9ebb
ILT
3754 this->sized_create_version_sections<32, true>(versions, symtab,
3755 local_symcount,
3756 dynamic_symbols, dynstr);
8851ecca 3757 break;
193a53d9 3758#endif
193a53d9 3759#ifdef HAVE_TARGET_64_LITTLE
8851ecca 3760 case Parameters::TARGET_64_LITTLE:
7d1a9ebb
ILT
3761 this->sized_create_version_sections<64, false>(versions, symtab,
3762 local_symcount,
3763 dynamic_symbols, dynstr);
8851ecca 3764 break;
193a53d9 3765#endif
8851ecca
ILT
3766#ifdef HAVE_TARGET_64_BIG
3767 case Parameters::TARGET_64_BIG:
7d1a9ebb
ILT
3768 this->sized_create_version_sections<64, true>(versions, symtab,
3769 local_symcount,
3770 dynamic_symbols, dynstr);
8851ecca
ILT
3771 break;
3772#endif
3773 default:
3774 gold_unreachable();
14b31740 3775 }
14b31740
ILT
3776}
3777
3778// Create the version sections, sized version.
3779
3780template<int size, bool big_endian>
3781void
3782Layout::sized_create_version_sections(
3783 const Versions* versions,
46fe1623 3784 const Symbol_table* symtab,
14b31740
ILT
3785 unsigned int local_symcount,
3786 const std::vector<Symbol*>& dynamic_symbols,
7d1a9ebb 3787 const Output_section* dynstr)
14b31740 3788{
3802b2dd
ILT
3789 Output_section* vsec = this->choose_output_section(NULL, ".gnu.version",
3790 elfcpp::SHT_GNU_versym,
3791 elfcpp::SHF_ALLOC,
22f0da72
ILT
3792 false,
3793 ORDER_DYNAMIC_LINKER,
3794 false);
14b31740
ILT
3795
3796 unsigned char* vbuf;
3797 unsigned int vsize;
7d1a9ebb
ILT
3798 versions->symbol_section_contents<size, big_endian>(symtab, &this->dynpool_,
3799 local_symcount,
3800 dynamic_symbols,
3801 &vbuf, &vsize);
14b31740 3802
7d9e3d98
ILT
3803 Output_section_data* vdata = new Output_data_const_buffer(vbuf, vsize, 2,
3804 "** versions");
14b31740
ILT
3805
3806 vsec->add_output_section_data(vdata);
3807 vsec->set_entsize(2);
3808 vsec->set_link_section(this->dynsym_section_);
3809
3810 Output_data_dynamic* const odyn = this->dynamic_data_;
3811 odyn->add_section_address(elfcpp::DT_VERSYM, vsec);
3812
3813 if (versions->any_defs())
3814 {
3802b2dd
ILT
3815 Output_section* vdsec;
3816 vdsec= this->choose_output_section(NULL, ".gnu.version_d",
3817 elfcpp::SHT_GNU_verdef,
3818 elfcpp::SHF_ALLOC,
22f0da72 3819 false, ORDER_DYNAMIC_LINKER, false);
14b31740
ILT
3820
3821 unsigned char* vdbuf;
3822 unsigned int vdsize;
3823 unsigned int vdentries;
7d1a9ebb
ILT
3824 versions->def_section_contents<size, big_endian>(&this->dynpool_, &vdbuf,
3825 &vdsize, &vdentries);
14b31740 3826
7d9e3d98
ILT
3827 Output_section_data* vddata =
3828 new Output_data_const_buffer(vdbuf, vdsize, 4, "** version defs");
14b31740
ILT
3829
3830 vdsec->add_output_section_data(vddata);
3831 vdsec->set_link_section(dynstr);
3832 vdsec->set_info(vdentries);
3833
3834 odyn->add_section_address(elfcpp::DT_VERDEF, vdsec);
3835 odyn->add_constant(elfcpp::DT_VERDEFNUM, vdentries);
3836 }
3837
3838 if (versions->any_needs())
3839 {
14b31740 3840 Output_section* vnsec;
3802b2dd
ILT
3841 vnsec = this->choose_output_section(NULL, ".gnu.version_r",
3842 elfcpp::SHT_GNU_verneed,
3843 elfcpp::SHF_ALLOC,
22f0da72 3844 false, ORDER_DYNAMIC_LINKER, false);
14b31740
ILT
3845
3846 unsigned char* vnbuf;
3847 unsigned int vnsize;
3848 unsigned int vnentries;
7d1a9ebb
ILT
3849 versions->need_section_contents<size, big_endian>(&this->dynpool_,
3850 &vnbuf, &vnsize,
3851 &vnentries);
14b31740 3852
7d9e3d98
ILT
3853 Output_section_data* vndata =
3854 new Output_data_const_buffer(vnbuf, vnsize, 4, "** version refs");
14b31740
ILT
3855
3856 vnsec->add_output_section_data(vndata);
3857 vnsec->set_link_section(dynstr);
3858 vnsec->set_info(vnentries);
3859
3860 odyn->add_section_address(elfcpp::DT_VERNEED, vnsec);
3861 odyn->add_constant(elfcpp::DT_VERNEEDNUM, vnentries);
3862 }
3863}
3864
dbe717ef
ILT
3865// Create the .interp section and PT_INTERP segment.
3866
3867void
3868Layout::create_interp(const Target* target)
3869{
10b4f102
ILT
3870 gold_assert(this->interp_segment_ == NULL);
3871
e55bde5e 3872 const char* interp = parameters->options().dynamic_linker();
dbe717ef
ILT
3873 if (interp == NULL)
3874 {
3875 interp = target->dynamic_linker();
a3ad94ed 3876 gold_assert(interp != NULL);
dbe717ef
ILT
3877 }
3878
3879 size_t len = strlen(interp) + 1;
3880
3881 Output_section_data* odata = new Output_data_const(interp, len, 1);
3882
e1f74f98
ILT
3883 Output_section* osec = this->choose_output_section(NULL, ".interp",
3884 elfcpp::SHT_PROGBITS,
3885 elfcpp::SHF_ALLOC,
3886 false, ORDER_INTERP,
3887 false);
dbe717ef 3888 osec->add_output_section_data(odata);
dbe717ef
ILT
3889}
3890
ea715a34
ILT
3891// Add dynamic tags for the PLT and the dynamic relocs. This is
3892// called by the target-specific code. This does nothing if not doing
3893// a dynamic link.
3894
3895// USE_REL is true for REL relocs rather than RELA relocs.
3896
3897// If PLT_GOT is not NULL, then DT_PLTGOT points to it.
3898
3899// If PLT_REL is not NULL, it is used for DT_PLTRELSZ, and DT_JMPREL,
e291e7b9
ILT
3900// and we also set DT_PLTREL. We use PLT_REL's output section, since
3901// some targets have multiple reloc sections in PLT_REL.
ea715a34
ILT
3902
3903// If DYN_REL is not NULL, it is used for DT_REL/DT_RELA,
3904// DT_RELSZ/DT_RELASZ, DT_RELENT/DT_RELAENT.
3905
3906// If ADD_DEBUG is true, we add a DT_DEBUG entry when generating an
3907// executable.
3908
3909void
3910Layout::add_target_dynamic_tags(bool use_rel, const Output_data* plt_got,
3911 const Output_data* plt_rel,
3a44184e 3912 const Output_data_reloc_generic* dyn_rel,
612a8d3d 3913 bool add_debug, bool dynrel_includes_plt)
ea715a34
ILT
3914{
3915 Output_data_dynamic* odyn = this->dynamic_data_;
3916 if (odyn == NULL)
3917 return;
3918
3919 if (plt_got != NULL && plt_got->output_section() != NULL)
3920 odyn->add_section_address(elfcpp::DT_PLTGOT, plt_got);
3921
3922 if (plt_rel != NULL && plt_rel->output_section() != NULL)
3923 {
e291e7b9
ILT
3924 odyn->add_section_size(elfcpp::DT_PLTRELSZ, plt_rel->output_section());
3925 odyn->add_section_address(elfcpp::DT_JMPREL, plt_rel->output_section());
ea715a34
ILT
3926 odyn->add_constant(elfcpp::DT_PLTREL,
3927 use_rel ? elfcpp::DT_REL : elfcpp::DT_RELA);
3928 }
3929
3930 if (dyn_rel != NULL && dyn_rel->output_section() != NULL)
3931 {
3932 odyn->add_section_address(use_rel ? elfcpp::DT_REL : elfcpp::DT_RELA,
3933 dyn_rel);
612a8d3d
DM
3934 if (plt_rel != NULL && dynrel_includes_plt)
3935 odyn->add_section_size(use_rel ? elfcpp::DT_RELSZ : elfcpp::DT_RELASZ,
3936 dyn_rel, plt_rel);
3937 else
3938 odyn->add_section_size(use_rel ? elfcpp::DT_RELSZ : elfcpp::DT_RELASZ,
3939 dyn_rel);
ea715a34
ILT
3940 const int size = parameters->target().get_size();
3941 elfcpp::DT rel_tag;
3942 int rel_size;
3943 if (use_rel)
3944 {
3945 rel_tag = elfcpp::DT_RELENT;
3946 if (size == 32)
3947 rel_size = Reloc_types<elfcpp::SHT_REL, 32, false>::reloc_size;
3948 else if (size == 64)
3949 rel_size = Reloc_types<elfcpp::SHT_REL, 64, false>::reloc_size;
3950 else
3951 gold_unreachable();
3952 }
3953 else
3954 {
3955 rel_tag = elfcpp::DT_RELAENT;
3956 if (size == 32)
3957 rel_size = Reloc_types<elfcpp::SHT_RELA, 32, false>::reloc_size;
3958 else if (size == 64)
3959 rel_size = Reloc_types<elfcpp::SHT_RELA, 64, false>::reloc_size;
3960 else
3961 gold_unreachable();
3962 }
3963 odyn->add_constant(rel_tag, rel_size);
3a44184e
ILT
3964
3965 if (parameters->options().combreloc())
3966 {
3967 size_t c = dyn_rel->relative_reloc_count();
3968 if (c > 0)
3969 odyn->add_constant((use_rel
3970 ? elfcpp::DT_RELCOUNT
3971 : elfcpp::DT_RELACOUNT),
3972 c);
3973 }
ea715a34
ILT
3974 }
3975
3976 if (add_debug && !parameters->options().shared())
3977 {
3978 // The value of the DT_DEBUG tag is filled in by the dynamic
3979 // linker at run time, and used by the debugger.
3980 odyn->add_constant(elfcpp::DT_DEBUG, 0);
3981 }
3982}
3983
a3ad94ed
ILT
3984// Finish the .dynamic section and PT_DYNAMIC segment.
3985
3986void
3987Layout::finish_dynamic_section(const Input_objects* input_objects,
16649710 3988 const Symbol_table* symtab)
a3ad94ed 3989{
1c4f3631
ILT
3990 if (!this->script_options_->saw_phdrs_clause())
3991 {
3992 Output_segment* oseg = this->make_output_segment(elfcpp::PT_DYNAMIC,
3993 (elfcpp::PF_R
3994 | elfcpp::PF_W));
22f0da72
ILT
3995 oseg->add_output_section_to_nonload(this->dynamic_section_,
3996 elfcpp::PF_R | elfcpp::PF_W);
1c4f3631 3997 }
a3ad94ed 3998
16649710
ILT
3999 Output_data_dynamic* const odyn = this->dynamic_data_;
4000
a3ad94ed
ILT
4001 for (Input_objects::Dynobj_iterator p = input_objects->dynobj_begin();
4002 p != input_objects->dynobj_end();
4003 ++p)
4004 {
0f1c85a6 4005 if (!(*p)->is_needed() && (*p)->as_needed())
594c8e5e
ILT
4006 {
4007 // This dynamic object was linked with --as-needed, but it
4008 // is not needed.
4009 continue;
4010 }
4011
a3ad94ed
ILT
4012 odyn->add_string(elfcpp::DT_NEEDED, (*p)->soname());
4013 }
4014
8851ecca 4015 if (parameters->options().shared())
fced7afd 4016 {
e55bde5e 4017 const char* soname = parameters->options().soname();
fced7afd
ILT
4018 if (soname != NULL)
4019 odyn->add_string(elfcpp::DT_SONAME, soname);
4020 }
4021
c6585162 4022 Symbol* sym = symtab->lookup(parameters->options().init());
14b31740 4023 if (sym != NULL && sym->is_defined() && !sym->is_from_dynobj())
a3ad94ed
ILT
4024 odyn->add_symbol(elfcpp::DT_INIT, sym);
4025
c6585162 4026 sym = symtab->lookup(parameters->options().fini());
14b31740 4027 if (sym != NULL && sym->is_defined() && !sym->is_from_dynobj())
a3ad94ed
ILT
4028 odyn->add_symbol(elfcpp::DT_FINI, sym);
4029
f15f61a7
DK
4030 // Look for .init_array, .preinit_array and .fini_array by checking
4031 // section types.
4032 for(Layout::Section_list::const_iterator p = this->section_list_.begin();
4033 p != this->section_list_.end();
4034 ++p)
4035 switch((*p)->type())
4036 {
4037 case elfcpp::SHT_FINI_ARRAY:
4038 odyn->add_section_address(elfcpp::DT_FINI_ARRAY, *p);
4039 odyn->add_section_size(elfcpp::DT_FINI_ARRAYSZ, *p);
4040 break;
4041 case elfcpp::SHT_INIT_ARRAY:
4042 odyn->add_section_address(elfcpp::DT_INIT_ARRAY, *p);
4043 odyn->add_section_size(elfcpp::DT_INIT_ARRAYSZ, *p);
4044 break;
4045 case elfcpp::SHT_PREINIT_ARRAY:
4046 odyn->add_section_address(elfcpp::DT_PREINIT_ARRAY, *p);
4047 odyn->add_section_size(elfcpp::DT_PREINIT_ARRAYSZ, *p);
4048 break;
4049 default:
4050 break;
4051 }
4052
41f542e7 4053 // Add a DT_RPATH entry if needed.
e55bde5e 4054 const General_options::Dir_list& rpath(parameters->options().rpath());
41f542e7
ILT
4055 if (!rpath.empty())
4056 {
4057 std::string rpath_val;
4058 for (General_options::Dir_list::const_iterator p = rpath.begin();
4059 p != rpath.end();
4060 ++p)
4061 {
4062 if (rpath_val.empty())
ad2d6943 4063 rpath_val = p->name();
41f542e7
ILT
4064 else
4065 {
4066 // Eliminate duplicates.
4067 General_options::Dir_list::const_iterator q;
4068 for (q = rpath.begin(); q != p; ++q)
ad2d6943 4069 if (q->name() == p->name())
41f542e7
ILT
4070 break;
4071 if (q == p)
4072 {
4073 rpath_val += ':';
ad2d6943 4074 rpath_val += p->name();
41f542e7
ILT
4075 }
4076 }
4077 }
4078
4079 odyn->add_string(elfcpp::DT_RPATH, rpath_val);
7c414435
DM
4080 if (parameters->options().enable_new_dtags())
4081 odyn->add_string(elfcpp::DT_RUNPATH, rpath_val);
41f542e7 4082 }
4f4c5f80
ILT
4083
4084 // Look for text segments that have dynamic relocations.
4085 bool have_textrel = false;
4e8fe71f 4086 if (!this->script_options_->saw_sections_clause())
4f4c5f80 4087 {
4e8fe71f
ILT
4088 for (Segment_list::const_iterator p = this->segment_list_.begin();
4089 p != this->segment_list_.end();
4090 ++p)
4091 {
766f91bb
ILT
4092 if ((*p)->type() == elfcpp::PT_LOAD
4093 && ((*p)->flags() & elfcpp::PF_W) == 0
22f0da72 4094 && (*p)->has_dynamic_reloc())
4e8fe71f
ILT
4095 {
4096 have_textrel = true;
4097 break;
4098 }
4099 }
4100 }
4101 else
4102 {
4103 // We don't know the section -> segment mapping, so we are
4104 // conservative and just look for readonly sections with
4105 // relocations. If those sections wind up in writable segments,
4106 // then we have created an unnecessary DT_TEXTREL entry.
4107 for (Section_list::const_iterator p = this->section_list_.begin();
4108 p != this->section_list_.end();
4109 ++p)
4110 {
4111 if (((*p)->flags() & elfcpp::SHF_ALLOC) != 0
4112 && ((*p)->flags() & elfcpp::SHF_WRITE) == 0
766f91bb 4113 && (*p)->has_dynamic_reloc())
4e8fe71f
ILT
4114 {
4115 have_textrel = true;
4116 break;
4117 }
4118 }
4f4c5f80
ILT
4119 }
4120
4121 // Add a DT_FLAGS entry. We add it even if no flags are set so that
4122 // post-link tools can easily modify these flags if desired.
4123 unsigned int flags = 0;
4124 if (have_textrel)
6a41d30b
ILT
4125 {
4126 // Add a DT_TEXTREL for compatibility with older loaders.
4127 odyn->add_constant(elfcpp::DT_TEXTREL, 0);
4128 flags |= elfcpp::DF_TEXTREL;
b9674e17 4129
ffeef7df
ILT
4130 if (parameters->options().text())
4131 gold_error(_("read-only segment has dynamic relocations"));
4132 else if (parameters->options().warn_shared_textrel()
4133 && parameters->options().shared())
b9674e17 4134 gold_warning(_("shared library text segment is not shareable"));
6a41d30b 4135 }
8851ecca 4136 if (parameters->options().shared() && this->has_static_tls())
535890bb 4137 flags |= elfcpp::DF_STATIC_TLS;
7be8330a
CD
4138 if (parameters->options().origin())
4139 flags |= elfcpp::DF_ORIGIN;
f15f61a7
DK
4140 if (parameters->options().Bsymbolic())
4141 {
4142 flags |= elfcpp::DF_SYMBOLIC;
4143 // Add DT_SYMBOLIC for compatibility with older loaders.
4144 odyn->add_constant(elfcpp::DT_SYMBOLIC, 0);
4145 }
e1c74d60
ILT
4146 if (parameters->options().now())
4147 flags |= elfcpp::DF_BIND_NOW;
0d212c3a
ILT
4148 if (flags != 0)
4149 odyn->add_constant(elfcpp::DT_FLAGS, flags);
7c414435
DM
4150
4151 flags = 0;
4152 if (parameters->options().initfirst())
4153 flags |= elfcpp::DF_1_INITFIRST;
4154 if (parameters->options().interpose())
4155 flags |= elfcpp::DF_1_INTERPOSE;
4156 if (parameters->options().loadfltr())
4157 flags |= elfcpp::DF_1_LOADFLTR;
4158 if (parameters->options().nodefaultlib())
4159 flags |= elfcpp::DF_1_NODEFLIB;
4160 if (parameters->options().nodelete())
4161 flags |= elfcpp::DF_1_NODELETE;
4162 if (parameters->options().nodlopen())
4163 flags |= elfcpp::DF_1_NOOPEN;
4164 if (parameters->options().nodump())
4165 flags |= elfcpp::DF_1_NODUMP;
4166 if (!parameters->options().shared())
4167 flags &= ~(elfcpp::DF_1_INITFIRST
4168 | elfcpp::DF_1_NODELETE
4169 | elfcpp::DF_1_NOOPEN);
7be8330a
CD
4170 if (parameters->options().origin())
4171 flags |= elfcpp::DF_1_ORIGIN;
e1c74d60
ILT
4172 if (parameters->options().now())
4173 flags |= elfcpp::DF_1_NOW;
0d212c3a 4174 if (flags != 0)
7c414435 4175 odyn->add_constant(elfcpp::DT_FLAGS_1, flags);
a3ad94ed
ILT
4176}
4177
f0ba79e2
ILT
4178// Set the size of the _DYNAMIC symbol table to be the size of the
4179// dynamic data.
4180
4181void
4182Layout::set_dynamic_symbol_size(const Symbol_table* symtab)
4183{
4184 Output_data_dynamic* const odyn = this->dynamic_data_;
4185 odyn->finalize_data_size();
4186 off_t data_size = odyn->data_size();
4187 const int size = parameters->target().get_size();
4188 if (size == 32)
4189 symtab->get_sized_symbol<32>(this->dynamic_symbol_)->set_symsize(data_size);
4190 else if (size == 64)
4191 symtab->get_sized_symbol<64>(this->dynamic_symbol_)->set_symsize(data_size);
4192 else
4193 gold_unreachable();
4194}
4195
dff16297
ILT
4196// The mapping of input section name prefixes to output section names.
4197// In some cases one prefix is itself a prefix of another prefix; in
4198// such a case the longer prefix must come first. These prefixes are
4199// based on the GNU linker default ELF linker script.
a2fb1b05 4200
ead1e424 4201#define MAPPING_INIT(f, t) { f, sizeof(f) - 1, t, sizeof(t) - 1 }
dff16297 4202const Layout::Section_name_mapping Layout::section_name_mapping[] =
a2fb1b05 4203{
dff16297
ILT
4204 MAPPING_INIT(".text.", ".text"),
4205 MAPPING_INIT(".ctors.", ".ctors"),
4206 MAPPING_INIT(".dtors.", ".dtors"),
4207 MAPPING_INIT(".rodata.", ".rodata"),
4208 MAPPING_INIT(".data.rel.ro.local", ".data.rel.ro.local"),
4209 MAPPING_INIT(".data.rel.ro", ".data.rel.ro"),
4210 MAPPING_INIT(".data.", ".data"),
4211 MAPPING_INIT(".bss.", ".bss"),
4212 MAPPING_INIT(".tdata.", ".tdata"),
4213 MAPPING_INIT(".tbss.", ".tbss"),
4214 MAPPING_INIT(".init_array.", ".init_array"),
4215 MAPPING_INIT(".fini_array.", ".fini_array"),
4216 MAPPING_INIT(".sdata.", ".sdata"),
4217 MAPPING_INIT(".sbss.", ".sbss"),
4218 // FIXME: In the GNU linker, .sbss2 and .sdata2 are handled
4219 // differently depending on whether it is creating a shared library.
4220 MAPPING_INIT(".sdata2.", ".sdata"),
4221 MAPPING_INIT(".sbss2.", ".sbss"),
4222 MAPPING_INIT(".lrodata.", ".lrodata"),
4223 MAPPING_INIT(".ldata.", ".ldata"),
4224 MAPPING_INIT(".lbss.", ".lbss"),
4225 MAPPING_INIT(".gcc_except_table.", ".gcc_except_table"),
4226 MAPPING_INIT(".gnu.linkonce.d.rel.ro.local.", ".data.rel.ro.local"),
4227 MAPPING_INIT(".gnu.linkonce.d.rel.ro.", ".data.rel.ro"),
4228 MAPPING_INIT(".gnu.linkonce.t.", ".text"),
4229 MAPPING_INIT(".gnu.linkonce.r.", ".rodata"),
4230 MAPPING_INIT(".gnu.linkonce.d.", ".data"),
4231 MAPPING_INIT(".gnu.linkonce.b.", ".bss"),
4232 MAPPING_INIT(".gnu.linkonce.s.", ".sdata"),
4233 MAPPING_INIT(".gnu.linkonce.sb.", ".sbss"),
4234 MAPPING_INIT(".gnu.linkonce.s2.", ".sdata"),
4235 MAPPING_INIT(".gnu.linkonce.sb2.", ".sbss"),
4236 MAPPING_INIT(".gnu.linkonce.wi.", ".debug_info"),
4237 MAPPING_INIT(".gnu.linkonce.td.", ".tdata"),
4238 MAPPING_INIT(".gnu.linkonce.tb.", ".tbss"),
4239 MAPPING_INIT(".gnu.linkonce.lr.", ".lrodata"),
4240 MAPPING_INIT(".gnu.linkonce.l.", ".ldata"),
4241 MAPPING_INIT(".gnu.linkonce.lb.", ".lbss"),
4a54abbb 4242 MAPPING_INIT(".ARM.extab", ".ARM.extab"),
1dcd334d 4243 MAPPING_INIT(".gnu.linkonce.armextab.", ".ARM.extab"),
4a54abbb 4244 MAPPING_INIT(".ARM.exidx", ".ARM.exidx"),
1dcd334d 4245 MAPPING_INIT(".gnu.linkonce.armexidx.", ".ARM.exidx"),
a2fb1b05
ILT
4246};
4247#undef MAPPING_INIT
4248
dff16297
ILT
4249const int Layout::section_name_mapping_count =
4250 (sizeof(Layout::section_name_mapping)
4251 / sizeof(Layout::section_name_mapping[0]));
a2fb1b05 4252
ead1e424
ILT
4253// Choose the output section name to use given an input section name.
4254// Set *PLEN to the length of the name. *PLEN is initialized to the
4255// length of NAME.
4256
4257const char*
4258Layout::output_section_name(const char* name, size_t* plen)
4259{
af4a8a83
ILT
4260 // gcc 4.3 generates the following sorts of section names when it
4261 // needs a section name specific to a function:
4262 // .text.FN
4263 // .rodata.FN
4264 // .sdata2.FN
4265 // .data.FN
4266 // .data.rel.FN
4267 // .data.rel.local.FN
4268 // .data.rel.ro.FN
4269 // .data.rel.ro.local.FN
4270 // .sdata.FN
4271 // .bss.FN
4272 // .sbss.FN
4273 // .tdata.FN
4274 // .tbss.FN
4275
4276 // The GNU linker maps all of those to the part before the .FN,
4277 // except that .data.rel.local.FN is mapped to .data, and
4278 // .data.rel.ro.local.FN is mapped to .data.rel.ro. The sections
4279 // beginning with .data.rel.ro.local are grouped together.
4280
4281 // For an anonymous namespace, the string FN can contain a '.'.
4282
4283 // Also of interest: .rodata.strN.N, .rodata.cstN, both of which the
4284 // GNU linker maps to .rodata.
4285
dff16297
ILT
4286 // The .data.rel.ro sections are used with -z relro. The sections
4287 // are recognized by name. We use the same names that the GNU
4288 // linker does for these sections.
af4a8a83 4289
dff16297
ILT
4290 // It is hard to handle this in a principled way, so we don't even
4291 // try. We use a table of mappings. If the input section name is
4292 // not found in the table, we simply use it as the output section
4293 // name.
af4a8a83 4294
dff16297
ILT
4295 const Section_name_mapping* psnm = section_name_mapping;
4296 for (int i = 0; i < section_name_mapping_count; ++i, ++psnm)
ead1e424 4297 {
dff16297
ILT
4298 if (strncmp(name, psnm->from, psnm->fromlen) == 0)
4299 {
4300 *plen = psnm->tolen;
4301 return psnm->to;
4302 }
ead1e424
ILT
4303 }
4304
ead1e424
ILT
4305 return name;
4306}
4307
8a4c0b0d
ILT
4308// Check if a comdat group or .gnu.linkonce section with the given
4309// NAME is selected for the link. If there is already a section,
1ef4d87f
ILT
4310// *KEPT_SECTION is set to point to the existing section and the
4311// function returns false. Otherwise, OBJECT, SHNDX, IS_COMDAT, and
4312// IS_GROUP_NAME are recorded for this NAME in the layout object,
4313// *KEPT_SECTION is set to the internal copy and the function returns
4314// true.
a2fb1b05
ILT
4315
4316bool
e55bde5e 4317Layout::find_or_add_kept_section(const std::string& name,
1ef4d87f
ILT
4318 Relobj* object,
4319 unsigned int shndx,
4320 bool is_comdat,
4321 bool is_group_name,
8a4c0b0d 4322 Kept_section** kept_section)
a2fb1b05 4323{
e55bde5e
ILT
4324 // It's normal to see a couple of entries here, for the x86 thunk
4325 // sections. If we see more than a few, we're linking a C++
4326 // program, and we resize to get more space to minimize rehashing.
4327 if (this->signatures_.size() > 4
4328 && !this->resized_signatures_)
4329 {
4330 reserve_unordered_map(&this->signatures_,
4331 this->number_of_input_files_ * 64);
4332 this->resized_signatures_ = true;
4333 }
4334
1ef4d87f
ILT
4335 Kept_section candidate;
4336 std::pair<Signatures::iterator, bool> ins =
4337 this->signatures_.insert(std::make_pair(name, candidate));
a2fb1b05 4338
1ef4d87f 4339 if (kept_section != NULL)
8a4c0b0d 4340 *kept_section = &ins.first->second;
a2fb1b05
ILT
4341 if (ins.second)
4342 {
4343 // This is the first time we've seen this signature.
1ef4d87f
ILT
4344 ins.first->second.set_object(object);
4345 ins.first->second.set_shndx(shndx);
4346 if (is_comdat)
4347 ins.first->second.set_is_comdat();
4348 if (is_group_name)
4349 ins.first->second.set_is_group_name();
a2fb1b05
ILT
4350 return true;
4351 }
4352
1ef4d87f
ILT
4353 // We have already seen this signature.
4354
4355 if (ins.first->second.is_group_name())
a2fb1b05
ILT
4356 {
4357 // We've already seen a real section group with this signature.
1ef4d87f
ILT
4358 // If the kept group is from a plugin object, and we're in the
4359 // replacement phase, accept the new one as a replacement.
4360 if (ins.first->second.object() == NULL
2756a258
CC
4361 && parameters->options().plugins()->in_replacement_phase())
4362 {
1ef4d87f
ILT
4363 ins.first->second.set_object(object);
4364 ins.first->second.set_shndx(shndx);
2756a258
CC
4365 return true;
4366 }
a2fb1b05
ILT
4367 return false;
4368 }
1ef4d87f 4369 else if (is_group_name)
a2fb1b05
ILT
4370 {
4371 // This is a real section group, and we've already seen a
a0fa0c07 4372 // linkonce section with this signature. Record that we've seen
a2fb1b05 4373 // a section group, and don't include this section group.
1ef4d87f 4374 ins.first->second.set_is_group_name();
a2fb1b05
ILT
4375 return false;
4376 }
4377 else
4378 {
4379 // We've already seen a linkonce section and this is a linkonce
4380 // section. These don't block each other--this may be the same
4381 // symbol name with different section types.
4382 return true;
4383 }
4384}
4385
a445fddf
ILT
4386// Store the allocated sections into the section list.
4387
4388void
2ea97941 4389Layout::get_allocated_sections(Section_list* section_list) const
a445fddf
ILT
4390{
4391 for (Section_list::const_iterator p = this->section_list_.begin();
4392 p != this->section_list_.end();
4393 ++p)
4394 if (((*p)->flags() & elfcpp::SHF_ALLOC) != 0)
2ea97941 4395 section_list->push_back(*p);
a445fddf
ILT
4396}
4397
4398// Create an output segment.
4399
4400Output_segment*
4401Layout::make_output_segment(elfcpp::Elf_Word type, elfcpp::Elf_Word flags)
4402{
8851ecca 4403 gold_assert(!parameters->options().relocatable());
a445fddf
ILT
4404 Output_segment* oseg = new Output_segment(type, flags);
4405 this->segment_list_.push_back(oseg);
2d924fd9
ILT
4406
4407 if (type == elfcpp::PT_TLS)
4408 this->tls_segment_ = oseg;
4409 else if (type == elfcpp::PT_GNU_RELRO)
4410 this->relro_segment_ = oseg;
10b4f102
ILT
4411 else if (type == elfcpp::PT_INTERP)
4412 this->interp_segment_ = oseg;
2d924fd9 4413
a445fddf
ILT
4414 return oseg;
4415}
4416
bec5b579
CC
4417// Return the file offset of the normal symbol table.
4418
4419off_t
4420Layout::symtab_section_offset() const
4421{
4422 if (this->symtab_section_ != NULL)
4423 return this->symtab_section_->offset();
4424 return 0;
4425}
4426
730cdc88
ILT
4427// Write out the Output_sections. Most won't have anything to write,
4428// since most of the data will come from input sections which are
4429// handled elsewhere. But some Output_sections do have Output_data.
4430
4431void
4432Layout::write_output_sections(Output_file* of) const
4433{
4434 for (Section_list::const_iterator p = this->section_list_.begin();
4435 p != this->section_list_.end();
4436 ++p)
4437 {
4438 if (!(*p)->after_input_sections())
4439 (*p)->write(of);
4440 }
4441}
4442
61ba1cf9
ILT
4443// Write out data not associated with a section or the symbol table.
4444
4445void
9025d29d 4446Layout::write_data(const Symbol_table* symtab, Output_file* of) const
61ba1cf9 4447{
8851ecca 4448 if (!parameters->options().strip_all())
a3ad94ed 4449 {
2ea97941 4450 const Output_section* symtab_section = this->symtab_section_;
9e2dcb77
ILT
4451 for (Section_list::const_iterator p = this->section_list_.begin();
4452 p != this->section_list_.end();
4453 ++p)
a3ad94ed 4454 {
9e2dcb77
ILT
4455 if ((*p)->needs_symtab_index())
4456 {
2ea97941 4457 gold_assert(symtab_section != NULL);
9e2dcb77
ILT
4458 unsigned int index = (*p)->symtab_index();
4459 gold_assert(index > 0 && index != -1U);
2ea97941
ILT
4460 off_t off = (symtab_section->offset()
4461 + index * symtab_section->entsize());
d491d34e 4462 symtab->write_section_symbol(*p, this->symtab_xindex_, of, off);
9e2dcb77 4463 }
a3ad94ed
ILT
4464 }
4465 }
4466
2ea97941 4467 const Output_section* dynsym_section = this->dynsym_section_;
a3ad94ed
ILT
4468 for (Section_list::const_iterator p = this->section_list_.begin();
4469 p != this->section_list_.end();
4470 ++p)
4471 {
4472 if ((*p)->needs_dynsym_index())
4473 {
2ea97941 4474 gold_assert(dynsym_section != NULL);
a3ad94ed
ILT
4475 unsigned int index = (*p)->dynsym_index();
4476 gold_assert(index > 0 && index != -1U);
2ea97941
ILT
4477 off_t off = (dynsym_section->offset()
4478 + index * dynsym_section->entsize());
d491d34e 4479 symtab->write_section_symbol(*p, this->dynsym_xindex_, of, off);
a3ad94ed
ILT
4480 }
4481 }
4482
a3ad94ed 4483 // Write out the Output_data which are not in an Output_section.
61ba1cf9
ILT
4484 for (Data_list::const_iterator p = this->special_output_list_.begin();
4485 p != this->special_output_list_.end();
4486 ++p)
4487 (*p)->write(of);
4488}
4489
730cdc88
ILT
4490// Write out the Output_sections which can only be written after the
4491// input sections are complete.
4492
4493void
27bc2bce 4494Layout::write_sections_after_input_sections(Output_file* of)
730cdc88 4495{
27bc2bce 4496 // Determine the final section offsets, and thus the final output
9a0910c3
ILT
4497 // file size. Note we finalize the .shstrab last, to allow the
4498 // after_input_section sections to modify their section-names before
4499 // writing.
17a1d0a9 4500 if (this->any_postprocessing_sections_)
27bc2bce 4501 {
17a1d0a9
ILT
4502 off_t off = this->output_file_size_;
4503 off = this->set_section_offsets(off, POSTPROCESSING_SECTIONS_PASS);
8a4c0b0d 4504
17a1d0a9
ILT
4505 // Now that we've finalized the names, we can finalize the shstrab.
4506 off =
4507 this->set_section_offsets(off,
4508 STRTAB_AFTER_POSTPROCESSING_SECTIONS_PASS);
4509
4510 if (off > this->output_file_size_)
4511 {
4512 of->resize(off);
4513 this->output_file_size_ = off;
4514 }
27bc2bce
ILT
4515 }
4516
730cdc88
ILT
4517 for (Section_list::const_iterator p = this->section_list_.begin();
4518 p != this->section_list_.end();
4519 ++p)
4520 {
4521 if ((*p)->after_input_sections())
4522 (*p)->write(of);
4523 }
27bc2bce 4524
27bc2bce 4525 this->section_headers_->write(of);
730cdc88
ILT
4526}
4527
8ed814a9
ILT
4528// If the build ID requires computing a checksum, do so here, and
4529// write it out. We compute a checksum over the entire file because
4530// that is simplest.
4531
4532void
4533Layout::write_build_id(Output_file* of) const
4534{
4535 if (this->build_id_note_ == NULL)
4536 return;
4537
4538 const unsigned char* iv = of->get_input_view(0, this->output_file_size_);
4539
4540 unsigned char* ov = of->get_output_view(this->build_id_note_->offset(),
4541 this->build_id_note_->data_size());
4542
4543 const char* style = parameters->options().build_id();
4544 if (strcmp(style, "sha1") == 0)
4545 {
4546 sha1_ctx ctx;
4547 sha1_init_ctx(&ctx);
4548 sha1_process_bytes(iv, this->output_file_size_, &ctx);
4549 sha1_finish_ctx(&ctx, ov);
4550 }
4551 else if (strcmp(style, "md5") == 0)
4552 {
4553 md5_ctx ctx;
4554 md5_init_ctx(&ctx);
4555 md5_process_bytes(iv, this->output_file_size_, &ctx);
4556 md5_finish_ctx(&ctx, ov);
4557 }
4558 else
4559 gold_unreachable();
4560
4561 of->write_output_view(this->build_id_note_->offset(),
4562 this->build_id_note_->data_size(),
4563 ov);
4564
4565 of->free_input_view(0, this->output_file_size_, iv);
4566}
4567
516cb3d0
ILT
4568// Write out a binary file. This is called after the link is
4569// complete. IN is the temporary output file we used to generate the
4570// ELF code. We simply walk through the segments, read them from
4571// their file offset in IN, and write them to their load address in
4572// the output file. FIXME: with a bit more work, we could support
4573// S-records and/or Intel hex format here.
4574
4575void
4576Layout::write_binary(Output_file* in) const
4577{
e55bde5e 4578 gold_assert(parameters->options().oformat_enum()
bc644c6c 4579 == General_options::OBJECT_FORMAT_BINARY);
516cb3d0
ILT
4580
4581 // Get the size of the binary file.
4582 uint64_t max_load_address = 0;
4583 for (Segment_list::const_iterator p = this->segment_list_.begin();
4584 p != this->segment_list_.end();
4585 ++p)
4586 {
4587 if ((*p)->type() == elfcpp::PT_LOAD && (*p)->filesz() > 0)
4588 {
4589 uint64_t max_paddr = (*p)->paddr() + (*p)->filesz();
4590 if (max_paddr > max_load_address)
4591 max_load_address = max_paddr;
4592 }
4593 }
4594
8851ecca 4595 Output_file out(parameters->options().output_file_name());
516cb3d0
ILT
4596 out.open(max_load_address);
4597
4598 for (Segment_list::const_iterator p = this->segment_list_.begin();
4599 p != this->segment_list_.end();
4600 ++p)
4601 {
4602 if ((*p)->type() == elfcpp::PT_LOAD && (*p)->filesz() > 0)
4603 {
4604 const unsigned char* vin = in->get_input_view((*p)->offset(),
4605 (*p)->filesz());
4606 unsigned char* vout = out.get_output_view((*p)->paddr(),
4607 (*p)->filesz());
4608 memcpy(vout, vin, (*p)->filesz());
4609 out.write_output_view((*p)->paddr(), (*p)->filesz(), vout);
4610 in->free_input_view((*p)->offset(), (*p)->filesz(), vin);
4611 }
4612 }
4613
4614 out.close();
4615}
4616
7d9e3d98
ILT
4617// Print the output sections to the map file.
4618
4619void
4620Layout::print_to_mapfile(Mapfile* mapfile) const
4621{
4622 for (Segment_list::const_iterator p = this->segment_list_.begin();
4623 p != this->segment_list_.end();
4624 ++p)
4625 (*p)->print_sections_to_mapfile(mapfile);
4626}
4627
ad8f37d1
ILT
4628// Print statistical information to stderr. This is used for --stats.
4629
4630void
4631Layout::print_stats() const
4632{
4633 this->namepool_.print_stats("section name pool");
4634 this->sympool_.print_stats("output symbol name pool");
4635 this->dynpool_.print_stats("dynamic name pool");
38c5e8b4
ILT
4636
4637 for (Section_list::const_iterator p = this->section_list_.begin();
4638 p != this->section_list_.end();
4639 ++p)
4640 (*p)->print_merge_stats();
ad8f37d1
ILT
4641}
4642
730cdc88
ILT
4643// Write_sections_task methods.
4644
4645// We can always run this task.
4646
17a1d0a9
ILT
4647Task_token*
4648Write_sections_task::is_runnable()
730cdc88 4649{
17a1d0a9 4650 return NULL;
730cdc88
ILT
4651}
4652
4653// We need to unlock both OUTPUT_SECTIONS_BLOCKER and FINAL_BLOCKER
4654// when finished.
4655
17a1d0a9
ILT
4656void
4657Write_sections_task::locks(Task_locker* tl)
730cdc88 4658{
17a1d0a9
ILT
4659 tl->add(this, this->output_sections_blocker_);
4660 tl->add(this, this->final_blocker_);
730cdc88
ILT
4661}
4662
4663// Run the task--write out the data.
4664
4665void
4666Write_sections_task::run(Workqueue*)
4667{
4668 this->layout_->write_output_sections(this->of_);
4669}
4670
61ba1cf9
ILT
4671// Write_data_task methods.
4672
4673// We can always run this task.
4674
17a1d0a9
ILT
4675Task_token*
4676Write_data_task::is_runnable()
61ba1cf9 4677{
17a1d0a9 4678 return NULL;
61ba1cf9
ILT
4679}
4680
4681// We need to unlock FINAL_BLOCKER when finished.
4682
17a1d0a9
ILT
4683void
4684Write_data_task::locks(Task_locker* tl)
61ba1cf9 4685{
17a1d0a9 4686 tl->add(this, this->final_blocker_);
61ba1cf9
ILT
4687}
4688
4689// Run the task--write out the data.
4690
4691void
4692Write_data_task::run(Workqueue*)
4693{
9025d29d 4694 this->layout_->write_data(this->symtab_, this->of_);
61ba1cf9
ILT
4695}
4696
4697// Write_symbols_task methods.
4698
4699// We can always run this task.
4700
17a1d0a9
ILT
4701Task_token*
4702Write_symbols_task::is_runnable()
61ba1cf9 4703{
17a1d0a9 4704 return NULL;
61ba1cf9
ILT
4705}
4706
4707// We need to unlock FINAL_BLOCKER when finished.
4708
17a1d0a9
ILT
4709void
4710Write_symbols_task::locks(Task_locker* tl)
61ba1cf9 4711{
17a1d0a9 4712 tl->add(this, this->final_blocker_);
61ba1cf9
ILT
4713}
4714
4715// Run the task--write out the symbols.
4716
4717void
4718Write_symbols_task::run(Workqueue*)
4719{
fd9d194f
ILT
4720 this->symtab_->write_globals(this->sympool_, this->dynpool_,
4721 this->layout_->symtab_xindex(),
d491d34e 4722 this->layout_->dynsym_xindex(), this->of_);
61ba1cf9
ILT
4723}
4724
730cdc88
ILT
4725// Write_after_input_sections_task methods.
4726
4727// We can only run this task after the input sections have completed.
4728
17a1d0a9
ILT
4729Task_token*
4730Write_after_input_sections_task::is_runnable()
730cdc88
ILT
4731{
4732 if (this->input_sections_blocker_->is_blocked())
17a1d0a9
ILT
4733 return this->input_sections_blocker_;
4734 return NULL;
730cdc88
ILT
4735}
4736
4737// We need to unlock FINAL_BLOCKER when finished.
4738
17a1d0a9
ILT
4739void
4740Write_after_input_sections_task::locks(Task_locker* tl)
730cdc88 4741{
17a1d0a9 4742 tl->add(this, this->final_blocker_);
730cdc88
ILT
4743}
4744
4745// Run the task.
4746
4747void
4748Write_after_input_sections_task::run(Workqueue*)
4749{
4750 this->layout_->write_sections_after_input_sections(this->of_);
4751}
4752
92e059d8 4753// Close_task_runner methods.
61ba1cf9
ILT
4754
4755// Run the task--close the file.
4756
4757void
17a1d0a9 4758Close_task_runner::run(Workqueue*, const Task*)
61ba1cf9 4759{
8ed814a9
ILT
4760 // If we need to compute a checksum for the BUILD if, we do so here.
4761 this->layout_->write_build_id(this->of_);
4762
516cb3d0 4763 // If we've been asked to create a binary file, we do so here.
7cc619c3 4764 if (this->options_->oformat_enum() != General_options::OBJECT_FORMAT_ELF)
516cb3d0
ILT
4765 this->layout_->write_binary(this->of_);
4766
61ba1cf9
ILT
4767 this->of_->close();
4768}
4769
a2fb1b05
ILT
4770// Instantiate the templates we need. We could use the configure
4771// script to restrict this to only the ones for implemented targets.
4772
193a53d9 4773#ifdef HAVE_TARGET_32_LITTLE
a2fb1b05 4774template
cdc29364
CC
4775Output_section*
4776Layout::init_fixed_output_section<32, false>(
4777 const char* name,
4778 elfcpp::Shdr<32, false>& shdr);
4779#endif
4780
4781#ifdef HAVE_TARGET_32_BIG
4782template
4783Output_section*
4784Layout::init_fixed_output_section<32, true>(
4785 const char* name,
4786 elfcpp::Shdr<32, true>& shdr);
4787#endif
4788
4789#ifdef HAVE_TARGET_64_LITTLE
4790template
4791Output_section*
4792Layout::init_fixed_output_section<64, false>(
4793 const char* name,
4794 elfcpp::Shdr<64, false>& shdr);
4795#endif
4796
4797#ifdef HAVE_TARGET_64_BIG
4798template
4799Output_section*
4800Layout::init_fixed_output_section<64, true>(
4801 const char* name,
4802 elfcpp::Shdr<64, true>& shdr);
4803#endif
4804
4805#ifdef HAVE_TARGET_32_LITTLE
4806template
a2fb1b05 4807Output_section*
6fa2a40b
CC
4808Layout::layout<32, false>(Sized_relobj_file<32, false>* object,
4809 unsigned int shndx,
730cdc88
ILT
4810 const char* name,
4811 const elfcpp::Shdr<32, false>& shdr,
4812 unsigned int, unsigned int, off_t*);
193a53d9 4813#endif
a2fb1b05 4814
193a53d9 4815#ifdef HAVE_TARGET_32_BIG
a2fb1b05
ILT
4816template
4817Output_section*
6fa2a40b
CC
4818Layout::layout<32, true>(Sized_relobj_file<32, true>* object,
4819 unsigned int shndx,
730cdc88
ILT
4820 const char* name,
4821 const elfcpp::Shdr<32, true>& shdr,
4822 unsigned int, unsigned int, off_t*);
193a53d9 4823#endif
a2fb1b05 4824
193a53d9 4825#ifdef HAVE_TARGET_64_LITTLE
a2fb1b05
ILT
4826template
4827Output_section*
6fa2a40b
CC
4828Layout::layout<64, false>(Sized_relobj_file<64, false>* object,
4829 unsigned int shndx,
730cdc88
ILT
4830 const char* name,
4831 const elfcpp::Shdr<64, false>& shdr,
4832 unsigned int, unsigned int, off_t*);
193a53d9 4833#endif
a2fb1b05 4834
193a53d9 4835#ifdef HAVE_TARGET_64_BIG
a2fb1b05
ILT
4836template
4837Output_section*
6fa2a40b
CC
4838Layout::layout<64, true>(Sized_relobj_file<64, true>* object,
4839 unsigned int shndx,
730cdc88
ILT
4840 const char* name,
4841 const elfcpp::Shdr<64, true>& shdr,
4842 unsigned int, unsigned int, off_t*);
193a53d9 4843#endif
a2fb1b05 4844
6a74a719
ILT
4845#ifdef HAVE_TARGET_32_LITTLE
4846template
4847Output_section*
6fa2a40b 4848Layout::layout_reloc<32, false>(Sized_relobj_file<32, false>* object,
6a74a719
ILT
4849 unsigned int reloc_shndx,
4850 const elfcpp::Shdr<32, false>& shdr,
4851 Output_section* data_section,
4852 Relocatable_relocs* rr);
4853#endif
4854
4855#ifdef HAVE_TARGET_32_BIG
4856template
4857Output_section*
6fa2a40b 4858Layout::layout_reloc<32, true>(Sized_relobj_file<32, true>* object,
6a74a719
ILT
4859 unsigned int reloc_shndx,
4860 const elfcpp::Shdr<32, true>& shdr,
4861 Output_section* data_section,
4862 Relocatable_relocs* rr);
4863#endif
4864
4865#ifdef HAVE_TARGET_64_LITTLE
4866template
4867Output_section*
6fa2a40b 4868Layout::layout_reloc<64, false>(Sized_relobj_file<64, false>* object,
6a74a719
ILT
4869 unsigned int reloc_shndx,
4870 const elfcpp::Shdr<64, false>& shdr,
4871 Output_section* data_section,
4872 Relocatable_relocs* rr);
4873#endif
4874
4875#ifdef HAVE_TARGET_64_BIG
4876template
4877Output_section*
6fa2a40b 4878Layout::layout_reloc<64, true>(Sized_relobj_file<64, true>* object,
6a74a719
ILT
4879 unsigned int reloc_shndx,
4880 const elfcpp::Shdr<64, true>& shdr,
4881 Output_section* data_section,
4882 Relocatable_relocs* rr);
4883#endif
4884
4885#ifdef HAVE_TARGET_32_LITTLE
4886template
4887void
4888Layout::layout_group<32, false>(Symbol_table* symtab,
6fa2a40b 4889 Sized_relobj_file<32, false>* object,
6a74a719
ILT
4890 unsigned int,
4891 const char* group_section_name,
4892 const char* signature,
4893 const elfcpp::Shdr<32, false>& shdr,
8825ac63
ILT
4894 elfcpp::Elf_Word flags,
4895 std::vector<unsigned int>* shndxes);
6a74a719
ILT
4896#endif
4897
4898#ifdef HAVE_TARGET_32_BIG
4899template
4900void
4901Layout::layout_group<32, true>(Symbol_table* symtab,
6fa2a40b 4902 Sized_relobj_file<32, true>* object,
6a74a719
ILT
4903 unsigned int,
4904 const char* group_section_name,
4905 const char* signature,
4906 const elfcpp::Shdr<32, true>& shdr,
8825ac63
ILT
4907 elfcpp::Elf_Word flags,
4908 std::vector<unsigned int>* shndxes);
6a74a719
ILT
4909#endif
4910
4911#ifdef HAVE_TARGET_64_LITTLE
4912template
4913void
4914Layout::layout_group<64, false>(Symbol_table* symtab,
6fa2a40b 4915 Sized_relobj_file<64, false>* object,
6a74a719
ILT
4916 unsigned int,
4917 const char* group_section_name,
4918 const char* signature,
4919 const elfcpp::Shdr<64, false>& shdr,
8825ac63
ILT
4920 elfcpp::Elf_Word flags,
4921 std::vector<unsigned int>* shndxes);
6a74a719
ILT
4922#endif
4923
4924#ifdef HAVE_TARGET_64_BIG
4925template
4926void
4927Layout::layout_group<64, true>(Symbol_table* symtab,
6fa2a40b 4928 Sized_relobj_file<64, true>* object,
6a74a719
ILT
4929 unsigned int,
4930 const char* group_section_name,
4931 const char* signature,
4932 const elfcpp::Shdr<64, true>& shdr,
8825ac63
ILT
4933 elfcpp::Elf_Word flags,
4934 std::vector<unsigned int>* shndxes);
6a74a719
ILT
4935#endif
4936
730cdc88
ILT
4937#ifdef HAVE_TARGET_32_LITTLE
4938template
4939Output_section*
6fa2a40b 4940Layout::layout_eh_frame<32, false>(Sized_relobj_file<32, false>* object,
730cdc88
ILT
4941 const unsigned char* symbols,
4942 off_t symbols_size,
4943 const unsigned char* symbol_names,
4944 off_t symbol_names_size,
4945 unsigned int shndx,
4946 const elfcpp::Shdr<32, false>& shdr,
4947 unsigned int reloc_shndx,
4948 unsigned int reloc_type,
4949 off_t* off);
4950#endif
4951
4952#ifdef HAVE_TARGET_32_BIG
4953template
4954Output_section*
6fa2a40b
CC
4955Layout::layout_eh_frame<32, true>(Sized_relobj_file<32, true>* object,
4956 const unsigned char* symbols,
4957 off_t symbols_size,
730cdc88
ILT
4958 const unsigned char* symbol_names,
4959 off_t symbol_names_size,
4960 unsigned int shndx,
4961 const elfcpp::Shdr<32, true>& shdr,
4962 unsigned int reloc_shndx,
4963 unsigned int reloc_type,
4964 off_t* off);
4965#endif
4966
4967#ifdef HAVE_TARGET_64_LITTLE
4968template
4969Output_section*
6fa2a40b 4970Layout::layout_eh_frame<64, false>(Sized_relobj_file<64, false>* object,
730cdc88
ILT
4971 const unsigned char* symbols,
4972 off_t symbols_size,
4973 const unsigned char* symbol_names,
4974 off_t symbol_names_size,
4975 unsigned int shndx,
4976 const elfcpp::Shdr<64, false>& shdr,
4977 unsigned int reloc_shndx,
4978 unsigned int reloc_type,
4979 off_t* off);
4980#endif
4981
4982#ifdef HAVE_TARGET_64_BIG
4983template
4984Output_section*
6fa2a40b
CC
4985Layout::layout_eh_frame<64, true>(Sized_relobj_file<64, true>* object,
4986 const unsigned char* symbols,
4987 off_t symbols_size,
730cdc88
ILT
4988 const unsigned char* symbol_names,
4989 off_t symbol_names_size,
4990 unsigned int shndx,
4991 const elfcpp::Shdr<64, true>& shdr,
4992 unsigned int reloc_shndx,
4993 unsigned int reloc_type,
4994 off_t* off);
4995#endif
a2fb1b05
ILT
4996
4997} // End namespace gold.