gdb/
[deliverable/binutils-gdb.git] / gold / incremental.cc
CommitLineData
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1// inremental.cc -- incremental linking support for gold
2
67181c72 3// Copyright 2009, 2010, 2011 Free Software Foundation, Inc.
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4// Written by Mikolaj Zalewski <mikolajz@google.com>.
5
6// This file is part of gold.
7
8// This program is free software; you can redistribute it and/or modify
9// it under the terms of the GNU General Public License as published by
10// the Free Software Foundation; either version 3 of the License, or
11// (at your option) any later version.
12
13// This program is distributed in the hope that it will be useful,
14// but WITHOUT ANY WARRANTY; without even the implied warranty of
15// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16// GNU General Public License for more details.
17
18// You should have received a copy of the GNU General Public License
19// along with this program; if not, write to the Free Software
20// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21// MA 02110-1301, USA.
22
23#include "gold.h"
c549a694 24
26d3c67d 25#include <set>
c549a694 26#include <cstdarg>
a81ee015 27#include "libiberty.h"
c549a694 28
0e879927 29#include "elfcpp.h"
cdc29364 30#include "options.h"
3ce2c28e 31#include "output.h"
09ec0418 32#include "symtab.h"
3ce2c28e 33#include "incremental.h"
98fa85cb 34#include "archive.h"
cdc29364 35#include "object.h"
44453f85 36#include "output.h"
c549a694 37#include "target-select.h"
0e70b911 38#include "target.h"
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39#include "fileread.h"
40#include "script.h"
0e879927 41
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42namespace gold {
43
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44// Version number for the .gnu_incremental_inputs section.
45// Version 1 was the initial checkin.
46// Version 2 adds some padding to ensure 8-byte alignment where necessary.
47const unsigned int INCREMENTAL_LINK_VERSION = 2;
0e879927 48
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49// This class manages the .gnu_incremental_inputs section, which holds
50// the header information, a directory of input files, and separate
51// entries for each input file.
52
53template<int size, bool big_endian>
54class Output_section_incremental_inputs : public Output_section_data
55{
56 public:
57 Output_section_incremental_inputs(const Incremental_inputs* inputs,
58 const Symbol_table* symtab)
59 : Output_section_data(size / 8), inputs_(inputs), symtab_(symtab)
60 { }
61
62 protected:
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63 // This is called to update the section size prior to assigning
64 // the address and file offset.
65 void
66 update_data_size()
67 { this->set_final_data_size(); }
68
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69 // Set the final data size.
70 void
71 set_final_data_size();
72
73 // Write the data to the file.
74 void
75 do_write(Output_file*);
76
77 // Write to a map file.
78 void
79 do_print_to_mapfile(Mapfile* mapfile) const
80 { mapfile->print_output_data(this, _("** incremental_inputs")); }
81
82 private:
83 // Write the section header.
84 unsigned char*
85 write_header(unsigned char* pov, unsigned int input_file_count,
86 section_offset_type command_line_offset);
87
88 // Write the input file entries.
89 unsigned char*
90 write_input_files(unsigned char* oview, unsigned char* pov,
91 Stringpool* strtab);
92
93 // Write the supplemental information blocks.
94 unsigned char*
95 write_info_blocks(unsigned char* oview, unsigned char* pov,
96 Stringpool* strtab, unsigned int* global_syms,
97 unsigned int global_sym_count);
98
99 // Write the contents of the .gnu_incremental_symtab section.
100 void
101 write_symtab(unsigned char* pov, unsigned int* global_syms,
102 unsigned int global_sym_count);
103
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104 // Write the contents of the .gnu_incremental_got_plt section.
105 void
106 write_got_plt(unsigned char* pov, off_t view_size);
107
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108 // Typedefs for writing the data to the output sections.
109 typedef elfcpp::Swap<size, big_endian> Swap;
110 typedef elfcpp::Swap<16, big_endian> Swap16;
111 typedef elfcpp::Swap<32, big_endian> Swap32;
112 typedef elfcpp::Swap<64, big_endian> Swap64;
113
114 // Sizes of various structures.
115 static const int sizeof_addr = size / 8;
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116 static const int header_size =
117 Incremental_inputs_reader<size, big_endian>::header_size;
118 static const int input_entry_size =
119 Incremental_inputs_reader<size, big_endian>::input_entry_size;
120 static const unsigned int object_info_size =
121 Incremental_inputs_reader<size, big_endian>::object_info_size;
122 static const unsigned int input_section_entry_size =
123 Incremental_inputs_reader<size, big_endian>::input_section_entry_size;
124 static const unsigned int global_sym_entry_size =
125 Incremental_inputs_reader<size, big_endian>::global_sym_entry_size;
126 static const unsigned int incr_reloc_size =
127 Incremental_relocs_reader<size, big_endian>::reloc_size;
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128
129 // The Incremental_inputs object.
130 const Incremental_inputs* inputs_;
131
132 // The symbol table.
133 const Symbol_table* symtab_;
134};
135
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136// Inform the user why we don't do an incremental link. Not called in
137// the obvious case of missing output file. TODO: Is this helpful?
138
139void
140vexplain_no_incremental(const char* format, va_list args)
141{
142 char* buf = NULL;
143 if (vasprintf(&buf, format, args) < 0)
144 gold_nomem();
145 gold_info(_("the link might take longer: "
146 "cannot perform incremental link: %s"), buf);
147 free(buf);
148}
149
150void
151explain_no_incremental(const char* format, ...)
152{
153 va_list args;
154 va_start(args, format);
155 vexplain_no_incremental(format, args);
156 va_end(args);
157}
158
159// Report an error.
160
161void
162Incremental_binary::error(const char* format, ...) const
163{
164 va_list args;
165 va_start(args, format);
166 // Current code only checks if the file can be used for incremental linking,
167 // so errors shouldn't fail the build, but only result in a fallback to a
168 // full build.
169 // TODO: when we implement incremental editing of the file, we may need a
170 // flag that will cause errors to be treated seriously.
171 vexplain_no_incremental(format, args);
172 va_end(args);
173}
174
0c9350c8 175// Return TRUE if a section of type SH_TYPE can be updated in place
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176// during an incremental update. We can update sections of type PROGBITS,
177// NOBITS, INIT_ARRAY, FINI_ARRAY, PREINIT_ARRAY, and NOTE. All others
178// will be regenerated.
179
180bool
181can_incremental_update(unsigned int sh_type)
182{
183 return (sh_type == elfcpp::SHT_PROGBITS
184 || sh_type == elfcpp::SHT_NOBITS
185 || sh_type == elfcpp::SHT_INIT_ARRAY
186 || sh_type == elfcpp::SHT_FINI_ARRAY
187 || sh_type == elfcpp::SHT_PREINIT_ARRAY
188 || sh_type == elfcpp::SHT_NOTE);
189}
190
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191// Find the .gnu_incremental_inputs section and related sections.
192
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193template<int size, bool big_endian>
194bool
b961d0d7 195Sized_incremental_binary<size, big_endian>::find_incremental_inputs_sections(
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196 unsigned int* p_inputs_shndx,
197 unsigned int* p_symtab_shndx,
198 unsigned int* p_relocs_shndx,
0e70b911 199 unsigned int* p_got_plt_shndx,
09ec0418 200 unsigned int* p_strtab_shndx)
c549a694 201{
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202 unsigned int inputs_shndx =
203 this->elf_file_.find_section_by_type(elfcpp::SHT_GNU_INCREMENTAL_INPUTS);
204 if (inputs_shndx == elfcpp::SHN_UNDEF) // Not found.
205 return false;
206
207 unsigned int symtab_shndx =
208 this->elf_file_.find_section_by_type(elfcpp::SHT_GNU_INCREMENTAL_SYMTAB);
209 if (symtab_shndx == elfcpp::SHN_UNDEF) // Not found.
210 return false;
211 if (this->elf_file_.section_link(symtab_shndx) != inputs_shndx)
c549a694 212 return false;
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213
214 unsigned int relocs_shndx =
215 this->elf_file_.find_section_by_type(elfcpp::SHT_GNU_INCREMENTAL_RELOCS);
216 if (relocs_shndx == elfcpp::SHN_UNDEF) // Not found.
217 return false;
218 if (this->elf_file_.section_link(relocs_shndx) != inputs_shndx)
219 return false;
220
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221 unsigned int got_plt_shndx =
222 this->elf_file_.find_section_by_type(elfcpp::SHT_GNU_INCREMENTAL_GOT_PLT);
223 if (got_plt_shndx == elfcpp::SHN_UNDEF) // Not found.
224 return false;
225 if (this->elf_file_.section_link(got_plt_shndx) != inputs_shndx)
226 return false;
227
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228 unsigned int strtab_shndx = this->elf_file_.section_link(inputs_shndx);
229 if (strtab_shndx == elfcpp::SHN_UNDEF
230 || strtab_shndx > this->elf_file_.shnum()
231 || this->elf_file_.section_type(strtab_shndx) != elfcpp::SHT_STRTAB)
232 return false;
233
234 if (p_inputs_shndx != NULL)
235 *p_inputs_shndx = inputs_shndx;
236 if (p_symtab_shndx != NULL)
237 *p_symtab_shndx = symtab_shndx;
238 if (p_relocs_shndx != NULL)
239 *p_relocs_shndx = relocs_shndx;
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240 if (p_got_plt_shndx != NULL)
241 *p_got_plt_shndx = got_plt_shndx;
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242 if (p_strtab_shndx != NULL)
243 *p_strtab_shndx = strtab_shndx;
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244 return true;
245}
246
b961d0d7 247// Set up the readers into the incremental info sections.
09ec0418 248
c4aa1e2d 249template<int size, bool big_endian>
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250void
251Sized_incremental_binary<size, big_endian>::setup_readers()
c4aa1e2d 252{
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253 unsigned int inputs_shndx;
254 unsigned int symtab_shndx;
255 unsigned int relocs_shndx;
b961d0d7 256 unsigned int got_plt_shndx;
c4aa1e2d 257 unsigned int strtab_shndx;
c4aa1e2d 258
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259 if (!this->find_incremental_inputs_sections(&inputs_shndx, &symtab_shndx,
260 &relocs_shndx, &got_plt_shndx,
261 &strtab_shndx))
262 return;
c4aa1e2d 263
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264 Location inputs_location(this->elf_file_.section_contents(inputs_shndx));
265 Location symtab_location(this->elf_file_.section_contents(symtab_shndx));
266 Location relocs_location(this->elf_file_.section_contents(relocs_shndx));
b961d0d7 267 Location got_plt_location(this->elf_file_.section_contents(got_plt_shndx));
c4aa1e2d 268 Location strtab_location(this->elf_file_.section_contents(strtab_shndx));
09ec0418 269
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270 View inputs_view = this->view(inputs_location);
271 View symtab_view = this->view(symtab_location);
272 View relocs_view = this->view(relocs_location);
273 View got_plt_view = this->view(got_plt_location);
274 View strtab_view = this->view(strtab_location);
09ec0418 275
c4aa1e2d 276 elfcpp::Elf_strtab strtab(strtab_view.data(), strtab_location.data_size);
c4aa1e2d 277
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278 this->inputs_reader_ =
279 Incremental_inputs_reader<size, big_endian>(inputs_view.data(), strtab);
280 this->symtab_reader_ =
281 Incremental_symtab_reader<big_endian>(symtab_view.data(),
282 symtab_location.data_size);
283 this->relocs_reader_ =
284 Incremental_relocs_reader<size, big_endian>(relocs_view.data(),
285 relocs_location.data_size);
286 this->got_plt_reader_ =
287 Incremental_got_plt_reader<big_endian>(got_plt_view.data());
cdc29364 288
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289 // Find the main symbol table.
290 unsigned int main_symtab_shndx =
291 this->elf_file_.find_section_by_type(elfcpp::SHT_SYMTAB);
292 gold_assert(main_symtab_shndx != elfcpp::SHN_UNDEF);
293 this->main_symtab_loc_ = this->elf_file_.section_contents(main_symtab_shndx);
294
295 // Find the main symbol string table.
296 unsigned int main_strtab_shndx =
297 this->elf_file_.section_link(main_symtab_shndx);
298 gold_assert(main_strtab_shndx != elfcpp::SHN_UNDEF
299 && main_strtab_shndx < this->elf_file_.shnum());
300 this->main_strtab_loc_ = this->elf_file_.section_contents(main_strtab_shndx);
301
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302 // Walk the list of input files (a) to setup an Input_reader for each
303 // input file, and (b) to record maps of files added from archive
304 // libraries and scripts.
305 Incremental_inputs_reader<size, big_endian>& inputs = this->inputs_reader_;
306 unsigned int count = inputs.input_file_count();
6fa2a40b 307 this->input_objects_.resize(count);
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308 this->input_entry_readers_.reserve(count);
309 this->library_map_.resize(count);
310 this->script_map_.resize(count);
311 for (unsigned int i = 0; i < count; i++)
312 {
313 Input_entry_reader input_file = inputs.input_file(i);
314 this->input_entry_readers_.push_back(Sized_input_reader(input_file));
315 switch (input_file.type())
316 {
317 case INCREMENTAL_INPUT_OBJECT:
318 case INCREMENTAL_INPUT_ARCHIVE_MEMBER:
319 case INCREMENTAL_INPUT_SHARED_LIBRARY:
320 // No special treatment necessary.
321 break;
322 case INCREMENTAL_INPUT_ARCHIVE:
323 {
324 Incremental_library* lib =
325 new Incremental_library(input_file.filename(), i,
326 &this->input_entry_readers_[i]);
327 this->library_map_[i] = lib;
328 unsigned int member_count = input_file.get_member_count();
329 for (unsigned int j = 0; j < member_count; j++)
330 {
331 int member_offset = input_file.get_member_offset(j);
332 int member_index = inputs.input_file_index(member_offset);
333 this->library_map_[member_index] = lib;
334 }
335 }
336 break;
337 case INCREMENTAL_INPUT_SCRIPT:
338 {
e24719f6 339 Script_info* script = new Script_info(input_file.filename(), i);
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340 this->script_map_[i] = script;
341 unsigned int object_count = input_file.get_object_count();
342 for (unsigned int j = 0; j < object_count; j++)
343 {
344 int object_offset = input_file.get_object_offset(j);
345 int object_index = inputs.input_file_index(object_offset);
346 this->script_map_[object_index] = script;
347 }
348 }
349 break;
350 default:
351 gold_unreachable();
352 }
353 }
354
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355 // Initialize the map of global symbols.
356 unsigned int nglobals = this->symtab_reader_.symbol_count();
357 this->symbol_map_.resize(nglobals);
358
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359 this->has_incremental_info_ = true;
360}
361
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362// Walk the list of input files given on the command line, and build
363// a direct map of file index to the corresponding input argument.
364
365void
366check_input_args(std::vector<const Input_argument*>& input_args_map,
367 Input_arguments::const_iterator begin,
368 Input_arguments::const_iterator end)
369{
370 for (Input_arguments::const_iterator p = begin;
371 p != end;
372 ++p)
373 {
374 if (p->is_group())
375 {
376 const Input_file_group* group = p->group();
377 check_input_args(input_args_map, group->begin(), group->end());
378 }
379 else if (p->is_lib())
380 {
381 const Input_file_lib* lib = p->lib();
382 check_input_args(input_args_map, lib->begin(), lib->end());
383 }
384 else
385 {
386 gold_assert(p->is_file());
387 unsigned int arg_serial = p->file().arg_serial();
388 if (arg_serial > 0)
389 {
390 gold_assert(arg_serial <= input_args_map.size());
391 gold_assert(input_args_map[arg_serial - 1] == 0);
392 input_args_map[arg_serial - 1] = &*p;
393 }
394 }
395 }
396}
397
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398// Determine whether an incremental link based on the existing output file
399// can be done.
400
401template<int size, bool big_endian>
402bool
403Sized_incremental_binary<size, big_endian>::do_check_inputs(
cdc29364 404 const Command_line& cmdline,
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405 Incremental_inputs* incremental_inputs)
406{
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407 Incremental_inputs_reader<size, big_endian>& inputs = this->inputs_reader_;
408
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409 if (!this->has_incremental_info_)
410 {
411 explain_no_incremental(_("no incremental data from previous build"));
412 return false;
413 }
c4aa1e2d 414
cdc29364 415 if (inputs.version() != INCREMENTAL_LINK_VERSION)
c4aa1e2d 416 {
09ec0418 417 explain_no_incremental(_("different version of incremental build data"));
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418 return false;
419 }
420
cdc29364 421 if (incremental_inputs->command_line() != inputs.command_line())
c4aa1e2d 422 {
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423 gold_debug(DEBUG_INCREMENTAL,
424 "old command line: %s",
425 inputs.command_line());
426 gold_debug(DEBUG_INCREMENTAL,
427 "new command line: %s",
428 incremental_inputs->command_line().c_str());
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429 explain_no_incremental(_("command line changed"));
430 return false;
431 }
432
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433 // Walk the list of input files given on the command line, and build
434 // a direct map of argument serial numbers to the corresponding input
435 // arguments.
436 this->input_args_map_.resize(cmdline.number_of_input_files());
437 check_input_args(this->input_args_map_, cmdline.begin(), cmdline.end());
438
439 // Walk the list of input files to check for conditions that prevent
440 // an incremental update link.
441 unsigned int count = inputs.input_file_count();
442 for (unsigned int i = 0; i < count; i++)
443 {
444 Input_entry_reader input_file = inputs.input_file(i);
445 switch (input_file.type())
446 {
447 case INCREMENTAL_INPUT_OBJECT:
448 case INCREMENTAL_INPUT_ARCHIVE_MEMBER:
449 case INCREMENTAL_INPUT_SHARED_LIBRARY:
450 case INCREMENTAL_INPUT_ARCHIVE:
451 // No special treatment necessary.
452 break;
453 case INCREMENTAL_INPUT_SCRIPT:
454 if (this->do_file_has_changed(i))
455 {
456 explain_no_incremental(_("%s: script file changed"),
457 input_file.filename());
458 return false;
459 }
460 break;
461 default:
462 gold_unreachable();
463 }
464 }
465
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466 return true;
467}
468
cdc29364 469// Return TRUE if input file N has changed since the last incremental link.
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470
471template<int size, bool big_endian>
472bool
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473Sized_incremental_binary<size, big_endian>::do_file_has_changed(
474 unsigned int n) const
b961d0d7 475{
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476 Input_entry_reader input_file = this->inputs_reader_.input_file(n);
477 Incremental_disposition disp = INCREMENTAL_CHECK;
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478
479 // For files named in scripts, find the file that was actually named
480 // on the command line, so that we can get the incremental disposition
481 // flag.
482 Script_info* script = this->get_script_info(n);
483 if (script != NULL)
484 n = script->input_file_index();
485
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486 const Input_argument* input_argument = this->get_input_argument(n);
487 if (input_argument != NULL)
488 disp = input_argument->file().options().incremental_disposition();
b961d0d7 489
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490 // For files at the beginning of the command line (i.e., those added
491 // implicitly by gcc), check whether the --incremental-startup-unchanged
492 // option was used.
493 if (disp == INCREMENTAL_STARTUP)
494 disp = parameters->options().incremental_startup_disposition();
495
b961d0d7 496 if (disp != INCREMENTAL_CHECK)
cdc29364 497 return disp == INCREMENTAL_CHANGED;
b961d0d7 498
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499 const char* filename = input_file.filename();
500 Timespec old_mtime = input_file.get_mtime();
501 Timespec new_mtime;
502 if (!get_mtime(filename, &new_mtime))
503 {
504 // If we can't open get the current modification time, assume it has
505 // changed. If the file doesn't exist, we'll issue an error when we
506 // try to open it later.
507 return true;
508 }
509
510 if (new_mtime.seconds > old_mtime.seconds)
511 return true;
512 if (new_mtime.seconds == old_mtime.seconds
513 && new_mtime.nanoseconds > old_mtime.nanoseconds)
514 return true;
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515 return false;
516}
517
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518// Initialize the layout of the output file based on the existing
519// output file.
520
521template<int size, bool big_endian>
522void
523Sized_incremental_binary<size, big_endian>::do_init_layout(Layout* layout)
524{
525 typedef elfcpp::Shdr<size, big_endian> Shdr;
526 const int shdr_size = elfcpp::Elf_sizes<size>::shdr_size;
527
528 // Get views of the section headers and the section string table.
529 const off_t shoff = this->elf_file_.shoff();
530 const unsigned int shnum = this->elf_file_.shnum();
531 const unsigned int shstrndx = this->elf_file_.shstrndx();
532 Location shdrs_location(shoff, shnum * shdr_size);
533 Location shstrndx_location(this->elf_file_.section_contents(shstrndx));
534 View shdrs_view = this->view(shdrs_location);
535 View shstrndx_view = this->view(shstrndx_location);
536 elfcpp::Elf_strtab shstrtab(shstrndx_view.data(),
537 shstrndx_location.data_size);
538
539 layout->set_incremental_base(this);
540
541 // Initialize the layout.
542 this->section_map_.resize(shnum);
543 const unsigned char* pshdr = shdrs_view.data() + shdr_size;
544 for (unsigned int i = 1; i < shnum; i++)
545 {
546 Shdr shdr(pshdr);
547 const char* name;
548 if (!shstrtab.get_c_string(shdr.get_sh_name(), &name))
549 name = NULL;
550 gold_debug(DEBUG_INCREMENTAL,
551 "Output section: %2d %08lx %08lx %08lx %3d %s",
552 i,
553 static_cast<long>(shdr.get_sh_addr()),
554 static_cast<long>(shdr.get_sh_offset()),
555 static_cast<long>(shdr.get_sh_size()),
556 shdr.get_sh_type(), name ? name : "<null>");
557 this->section_map_[i] = layout->init_fixed_output_section(name, shdr);
558 pshdr += shdr_size;
559 }
560}
561
562// Mark regions of the input file that must be kept unchanged.
563
564template<int size, bool big_endian>
565void
566Sized_incremental_binary<size, big_endian>::do_reserve_layout(
567 unsigned int input_file_index)
568{
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569 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
570
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571 Input_entry_reader input_file =
572 this->inputs_reader_.input_file(input_file_index);
573
574 if (input_file.type() == INCREMENTAL_INPUT_SHARED_LIBRARY)
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575 {
576 // Reserve the BSS space used for COPY relocations.
577 unsigned int nsyms = input_file.get_global_symbol_count();
578 Incremental_binary::View symtab_view(NULL);
579 unsigned int symtab_count;
580 elfcpp::Elf_strtab strtab(NULL, 0);
581 this->get_symtab_view(&symtab_view, &symtab_count, &strtab);
582 for (unsigned int i = 0; i < nsyms; ++i)
583 {
584 bool is_def;
585 bool is_copy;
586 unsigned int output_symndx =
587 input_file.get_output_symbol_index(i, &is_def, &is_copy);
588 if (is_copy)
589 {
590 const unsigned char* sym_p = (symtab_view.data()
591 + output_symndx * sym_size);
592 elfcpp::Sym<size, big_endian> gsym(sym_p);
593 unsigned int shndx = gsym.get_st_shndx();
594 if (shndx < 1 || shndx >= this->section_map_.size())
595 continue;
596 Output_section* os = this->section_map_[shndx];
597 off_t offset = gsym.get_st_value() - os->address();
598 os->reserve(offset, gsym.get_st_size());
599 gold_debug(DEBUG_INCREMENTAL,
600 "Reserve for COPY reloc: %s, off %d, size %d",
601 os->name(),
602 static_cast<int>(offset),
603 static_cast<int>(gsym.get_st_size()));
604 }
605 }
606 return;
607 }
cdc29364
CC
608
609 unsigned int shnum = input_file.get_input_section_count();
610 for (unsigned int i = 0; i < shnum; i++)
611 {
612 typename Input_entry_reader::Input_section_info sect =
613 input_file.get_input_section(i);
614 if (sect.output_shndx == 0 || sect.sh_offset == -1)
615 continue;
616 Output_section* os = this->section_map_[sect.output_shndx];
617 gold_assert(os != NULL);
618 os->reserve(sect.sh_offset, sect.sh_size);
619 }
620}
621
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CC
622// Process the GOT and PLT entries from the existing output file.
623
624template<int size, bool big_endian>
625void
626Sized_incremental_binary<size, big_endian>::do_process_got_plt(
627 Symbol_table* symtab,
628 Layout* layout)
629{
630 Incremental_got_plt_reader<big_endian> got_plt_reader(this->got_plt_reader());
631 Sized_target<size, big_endian>* target =
632 parameters->sized_target<size, big_endian>();
633
634 // Get the number of symbols in the main symbol table and in the
635 // incremental symbol table. The difference between the two counts
636 // is the index of the first forced-local or global symbol in the
637 // main symbol table.
638 unsigned int symtab_count =
639 this->main_symtab_loc_.data_size / elfcpp::Elf_sizes<size>::sym_size;
640 unsigned int isym_count = this->symtab_reader_.symbol_count();
641 unsigned int first_global = symtab_count - isym_count;
642
643 // Tell the target how big the GOT and PLT sections are.
644 unsigned int got_count = got_plt_reader.get_got_entry_count();
645 unsigned int plt_count = got_plt_reader.get_plt_entry_count();
dd74ae06 646 Output_data_got_base* got =
4829d394
CC
647 target->init_got_plt_for_update(symtab, layout, got_count, plt_count);
648
649 // Read the GOT entries from the base file and build the outgoing GOT.
650 for (unsigned int i = 0; i < got_count; ++i)
651 {
652 unsigned int got_type = got_plt_reader.get_got_type(i);
653 if ((got_type & 0x7f) == 0x7f)
654 {
655 // This is the second entry of a pair.
656 got->reserve_slot(i);
657 continue;
658 }
6fa2a40b 659 unsigned int symndx = got_plt_reader.get_got_symndx(i);
4829d394
CC
660 if (got_type & 0x80)
661 {
6fa2a40b
CC
662 // This is an entry for a local symbol. Ignore this entry if
663 // the object file was replaced.
664 unsigned int input_index = got_plt_reader.get_got_input_index(i);
4829d394
CC
665 gold_debug(DEBUG_INCREMENTAL,
666 "GOT entry %d, type %02x: (local symbol)",
667 i, got_type & 0x7f);
6fa2a40b
CC
668 Sized_relobj_incr<size, big_endian>* obj =
669 this->input_object(input_index);
670 if (obj != NULL)
671 target->reserve_local_got_entry(i, obj, symndx, got_type & 0x7f);
4829d394
CC
672 }
673 else
674 {
675 // This is an entry for a global symbol. GOT_DESC is the symbol
676 // table index.
677 // FIXME: This should really be a fatal error (corrupt input).
6fa2a40b
CC
678 gold_assert(symndx >= first_global && symndx < symtab_count);
679 Symbol* sym = this->global_symbol(symndx - first_global);
5146f448
CC
680 // Add the GOT entry only if the symbol is still referenced.
681 if (sym != NULL && sym->in_reg())
682 {
683 gold_debug(DEBUG_INCREMENTAL,
684 "GOT entry %d, type %02x: %s",
685 i, got_type, sym->name());
686 target->reserve_global_got_entry(i, sym, got_type);
687 }
4829d394
CC
688 }
689 }
690
691 // Read the PLT entries from the base file and pass each to the target.
692 for (unsigned int i = 0; i < plt_count; ++i)
693 {
694 unsigned int plt_desc = got_plt_reader.get_plt_desc(i);
695 // FIXME: This should really be a fatal error (corrupt input).
696 gold_assert(plt_desc >= first_global && plt_desc < symtab_count);
697 Symbol* sym = this->global_symbol(plt_desc - first_global);
5146f448 698 // Add the PLT entry only if the symbol is still referenced.
a7dac153 699 if (sym != NULL && sym->in_reg())
5146f448
CC
700 {
701 gold_debug(DEBUG_INCREMENTAL,
702 "PLT entry %d: %s",
703 i, sym->name());
67181c72 704 target->register_global_plt_entry(symtab, layout, i, sym);
5146f448 705 }
4829d394
CC
706 }
707}
708
26d3c67d
CC
709// Emit COPY relocations from the existing output file.
710
711template<int size, bool big_endian>
712void
713Sized_incremental_binary<size, big_endian>::do_emit_copy_relocs(
714 Symbol_table* symtab)
715{
716 Sized_target<size, big_endian>* target =
717 parameters->sized_target<size, big_endian>();
718
719 for (typename Copy_relocs::iterator p = this->copy_relocs_.begin();
720 p != this->copy_relocs_.end();
721 ++p)
722 {
723 if (!(*p).symbol->is_copied_from_dynobj())
724 target->emit_copy_reloc(symtab, (*p).symbol, (*p).output_section,
725 (*p).offset);
726 }
727}
728
94a3fc8b
CC
729// Apply incremental relocations for symbols whose values have changed.
730
731template<int size, bool big_endian>
732void
733Sized_incremental_binary<size, big_endian>::do_apply_incremental_relocs(
734 const Symbol_table* symtab,
735 Layout* layout,
736 Output_file* of)
737{
738 typedef typename elfcpp::Elf_types<size>::Elf_Addr Address;
739 typedef typename elfcpp::Elf_types<size>::Elf_Swxword Addend;
740 Incremental_symtab_reader<big_endian> isymtab(this->symtab_reader());
741 Incremental_relocs_reader<size, big_endian> irelocs(this->relocs_reader());
742 unsigned int nglobals = isymtab.symbol_count();
743 const unsigned int incr_reloc_size = irelocs.reloc_size;
744
745 Relocate_info<size, big_endian> relinfo;
746 relinfo.symtab = symtab;
747 relinfo.layout = layout;
748 relinfo.object = NULL;
749 relinfo.reloc_shndx = 0;
750 relinfo.reloc_shdr = NULL;
751 relinfo.data_shndx = 0;
752 relinfo.data_shdr = NULL;
753
754 Sized_target<size, big_endian>* target =
755 parameters->sized_target<size, big_endian>();
756
757 for (unsigned int i = 0; i < nglobals; i++)
758 {
759 const Symbol* gsym = this->global_symbol(i);
760
761 // If the symbol is not referenced from any unchanged input files,
762 // we do not need to reapply any of its relocations.
763 if (gsym == NULL)
764 continue;
765
766 // If the symbol is defined in an unchanged file, we do not need to
767 // reapply any of its relocations.
768 if (gsym->source() == Symbol::FROM_OBJECT
769 && gsym->object()->is_incremental())
770 continue;
771
772 gold_debug(DEBUG_INCREMENTAL,
773 "Applying incremental relocations for global symbol %s [%d]",
774 gsym->name(), i);
775
776 // Follow the linked list of input symbol table entries for this symbol.
777 // We don't bother to figure out whether the symbol table entry belongs
778 // to a changed or unchanged file because it's easier just to apply all
779 // the relocations -- although we might scribble over an area that has
780 // been reallocated, we do this before copying any new data into the
781 // output file.
782 unsigned int offset = isymtab.get_list_head(i);
783 while (offset > 0)
784 {
785 Incremental_global_symbol_reader<big_endian> sym_info =
786 this->inputs_reader().global_symbol_reader_at_offset(offset);
787 unsigned int r_base = sym_info.reloc_offset();
788 unsigned int r_count = sym_info.reloc_count();
789
790 // Apply each relocation for this symbol table entry.
791 for (unsigned int j = 0; j < r_count;
792 ++j, r_base += incr_reloc_size)
793 {
794 unsigned int r_type = irelocs.get_r_type(r_base);
795 unsigned int r_shndx = irelocs.get_r_shndx(r_base);
796 Address r_offset = irelocs.get_r_offset(r_base);
797 Addend r_addend = irelocs.get_r_addend(r_base);
798 Output_section* os = this->output_section(r_shndx);
799 Address address = os->address();
800 off_t section_offset = os->offset();
801 size_t view_size = os->data_size();
802 unsigned char* const view = of->get_output_view(section_offset,
803 view_size);
804
805 gold_debug(DEBUG_INCREMENTAL,
806 " %08lx: %s + %d: type %d addend %ld",
807 (long)(section_offset + r_offset),
808 os->name(),
809 (int)r_offset,
810 r_type,
811 (long)r_addend);
812
813 target->apply_relocation(&relinfo, r_offset, r_type, r_addend,
814 gsym, view, address, view_size);
815
816 // FIXME: Do something more efficient if write_output_view
817 // ever becomes more than a no-op.
818 of->write_output_view(section_offset, view_size, view);
819 }
820 offset = sym_info.next_offset();
821 }
822 }
823}
824
cdc29364 825// Get a view of the main symbol table and the symbol string table.
b961d0d7
CC
826
827template<int size, bool big_endian>
cdc29364
CC
828void
829Sized_incremental_binary<size, big_endian>::get_symtab_view(
830 View* symtab_view,
831 unsigned int* nsyms,
832 elfcpp::Elf_strtab* strtab)
b961d0d7 833{
4829d394
CC
834 *symtab_view = this->view(this->main_symtab_loc_);
835 *nsyms = this->main_symtab_loc_.data_size / elfcpp::Elf_sizes<size>::sym_size;
cdc29364 836
4829d394
CC
837 View strtab_view(this->view(this->main_strtab_loc_));
838 *strtab = elfcpp::Elf_strtab(strtab_view.data(),
839 this->main_strtab_loc_.data_size);
b961d0d7
CC
840}
841
c549a694
ILT
842namespace
843{
844
845// Create a Sized_incremental_binary object of the specified size and
846// endianness. Fails if the target architecture is not supported.
847
848template<int size, bool big_endian>
849Incremental_binary*
850make_sized_incremental_binary(Output_file* file,
851 const elfcpp::Ehdr<size, big_endian>& ehdr)
852{
853 Target* target = select_target(ehdr.get_e_machine(), size, big_endian,
854 ehdr.get_e_ident()[elfcpp::EI_OSABI],
855 ehdr.get_e_ident()[elfcpp::EI_ABIVERSION]);
856 if (target == NULL)
857 {
858 explain_no_incremental(_("unsupported ELF machine number %d"),
859 ehdr.get_e_machine());
860 return NULL;
861 }
862
3aec4f9c
RÁE
863 if (!parameters->target_valid())
864 set_parameters_target(target);
865 else if (target != &parameters->target())
866 gold_error(_("%s: incompatible target"), file->filename());
867
c549a694
ILT
868 return new Sized_incremental_binary<size, big_endian>(file, ehdr, target);
869}
870
871} // End of anonymous namespace.
872
09ec0418
CC
873// Create an Incremental_binary object for FILE. Returns NULL is this is not
874// possible, e.g. FILE is not an ELF file or has an unsupported target. FILE
c549a694
ILT
875// should be opened.
876
877Incremental_binary*
878open_incremental_binary(Output_file* file)
879{
880 off_t filesize = file->filesize();
881 int want = elfcpp::Elf_recognizer::max_header_size;
882 if (filesize < want)
883 want = filesize;
884
885 const unsigned char* p = file->get_input_view(0, want);
886 if (!elfcpp::Elf_recognizer::is_elf_file(p, want))
887 {
888 explain_no_incremental(_("output is not an ELF file."));
889 return NULL;
890 }
891
ac33a407
DK
892 int size = 0;
893 bool big_endian = false;
c549a694
ILT
894 std::string error;
895 if (!elfcpp::Elf_recognizer::is_valid_header(p, want, &size, &big_endian,
896 &error))
897 {
898 explain_no_incremental(error.c_str());
899 return NULL;
900 }
901
902 Incremental_binary* result = NULL;
903 if (size == 32)
904 {
905 if (big_endian)
906 {
907#ifdef HAVE_TARGET_32_BIG
908 result = make_sized_incremental_binary<32, true>(
909 file, elfcpp::Ehdr<32, true>(p));
910#else
911 explain_no_incremental(_("unsupported file: 32-bit, big-endian"));
912#endif
913 }
914 else
915 {
916#ifdef HAVE_TARGET_32_LITTLE
917 result = make_sized_incremental_binary<32, false>(
918 file, elfcpp::Ehdr<32, false>(p));
919#else
920 explain_no_incremental(_("unsupported file: 32-bit, little-endian"));
921#endif
922 }
923 }
924 else if (size == 64)
925 {
926 if (big_endian)
927 {
928#ifdef HAVE_TARGET_64_BIG
929 result = make_sized_incremental_binary<64, true>(
930 file, elfcpp::Ehdr<64, true>(p));
931#else
932 explain_no_incremental(_("unsupported file: 64-bit, big-endian"));
933#endif
934 }
935 else
936 {
937#ifdef HAVE_TARGET_64_LITTLE
938 result = make_sized_incremental_binary<64, false>(
939 file, elfcpp::Ehdr<64, false>(p));
940#else
941 explain_no_incremental(_("unsupported file: 64-bit, little-endian"));
942#endif
943 }
944 }
945 else
946 gold_unreachable();
947
948 return result;
949}
950
09ec0418
CC
951// Class Incremental_inputs.
952
3ce2c28e
ILT
953// Add the command line to the string table, setting
954// command_line_key_. In incremental builds, the command line is
955// stored in .gnu_incremental_inputs so that the next linker run can
956// check if the command line options didn't change.
957
958void
959Incremental_inputs::report_command_line(int argc, const char* const* argv)
960{
961 // Always store 'gold' as argv[0] to avoid a full relink if the user used a
962 // different path to the linker.
963 std::string args("gold");
964 // Copied from collect_argv in main.cc.
965 for (int i = 1; i < argc; ++i)
966 {
09ec0418 967 // Adding/removing these options should not result in a full relink.
8c21d9d3
CC
968 if (strcmp(argv[i], "--incremental") == 0
969 || strcmp(argv[i], "--incremental-full") == 0
970 || strcmp(argv[i], "--incremental-update") == 0
971 || strcmp(argv[i], "--incremental-changed") == 0
b19b0c6d 972 || strcmp(argv[i], "--incremental-unchanged") == 0
cdc29364 973 || strcmp(argv[i], "--incremental-unknown") == 0
221597a5 974 || strcmp(argv[i], "--incremental-startup-unchanged") == 0
aa92d6ed 975 || is_prefix_of("--incremental-base=", argv[i])
9fbd3822 976 || is_prefix_of("--incremental-patch=", argv[i])
cdc29364 977 || is_prefix_of("--debug=", argv[i]))
b19b0c6d 978 continue;
aa92d6ed 979 if (strcmp(argv[i], "--incremental-base") == 0
9fbd3822 980 || strcmp(argv[i], "--incremental-patch") == 0
aa92d6ed
CC
981 || strcmp(argv[i], "--debug") == 0)
982 {
983 // When these options are used without the '=', skip the
984 // following parameter as well.
985 ++i;
986 continue;
987 }
b19b0c6d 988
3ce2c28e
ILT
989 args.append(" '");
990 // Now append argv[i], but with all single-quotes escaped
991 const char* argpos = argv[i];
992 while (1)
993 {
994 const int len = strcspn(argpos, "'");
995 args.append(argpos, len);
996 if (argpos[len] == '\0')
997 break;
998 args.append("'\"'\"'");
999 argpos += len + 1;
1000 }
1001 args.append("'");
1002 }
c4aa1e2d
ILT
1003
1004 this->command_line_ = args;
1005 this->strtab_->add(this->command_line_.c_str(), false,
1006 &this->command_line_key_);
3ce2c28e
ILT
1007}
1008
09ec0418
CC
1009// Record the input archive file ARCHIVE. This is called by the
1010// Add_archive_symbols task before determining which archive members
1011// to include. We create the Incremental_archive_entry here and
1012// attach it to the Archive, but we do not add it to the list of
1013// input objects until report_archive_end is called.
072fe7ce
ILT
1014
1015void
c7975edd 1016Incremental_inputs::report_archive_begin(Library_base* arch,
cdc29364 1017 unsigned int arg_serial,
c7975edd 1018 Script_info* script_info)
072fe7ce 1019{
09ec0418 1020 Stringpool::Key filename_key;
e0c52780 1021 Timespec mtime = arch->get_mtime();
072fe7ce 1022
cdc29364
CC
1023 // For a file loaded from a script, don't record its argument serial number.
1024 if (script_info != NULL)
1025 arg_serial = 0;
1026
09ec0418
CC
1027 this->strtab_->add(arch->filename().c_str(), false, &filename_key);
1028 Incremental_archive_entry* entry =
cdc29364 1029 new Incremental_archive_entry(filename_key, arg_serial, mtime);
09ec0418 1030 arch->set_incremental_info(entry);
c7975edd
CC
1031
1032 if (script_info != NULL)
1033 {
1034 Incremental_script_entry* script_entry = script_info->incremental_info();
1035 gold_assert(script_entry != NULL);
1036 script_entry->add_object(entry);
1037 }
072fe7ce
ILT
1038}
1039
e0c52780
CC
1040// Visitor class for processing the unused global symbols in a library.
1041// An instance of this class is passed to the library's
1042// for_all_unused_symbols() iterator, which will call the visit()
1043// function for each global symbol defined in each unused library
1044// member. We add those symbol names to the incremental info for the
1045// library.
1046
1047class Unused_symbol_visitor : public Library_base::Symbol_visitor_base
1048{
1049 public:
1050 Unused_symbol_visitor(Incremental_archive_entry* entry, Stringpool* strtab)
1051 : entry_(entry), strtab_(strtab)
1052 { }
1053
1054 void
1055 visit(const char* sym)
1056 {
1057 Stringpool::Key symbol_key;
1058 this->strtab_->add(sym, true, &symbol_key);
1059 this->entry_->add_unused_global_symbol(symbol_key);
1060 }
1061
1062 private:
1063 Incremental_archive_entry* entry_;
1064 Stringpool* strtab_;
1065};
1066
09ec0418
CC
1067// Finish recording the input archive file ARCHIVE. This is called by the
1068// Add_archive_symbols task after determining which archive members
1069// to include.
072fe7ce
ILT
1070
1071void
e0c52780 1072Incremental_inputs::report_archive_end(Library_base* arch)
072fe7ce 1073{
09ec0418
CC
1074 Incremental_archive_entry* entry = arch->incremental_info();
1075
1076 gold_assert(entry != NULL);
cdc29364 1077 this->inputs_.push_back(entry);
09ec0418
CC
1078
1079 // Collect unused global symbols.
e0c52780
CC
1080 Unused_symbol_visitor v(entry, this->strtab_);
1081 arch->for_all_unused_symbols(&v);
072fe7ce
ILT
1082}
1083
09ec0418
CC
1084// Record the input object file OBJ. If ARCH is not NULL, attach
1085// the object file to the archive. This is called by the
1086// Add_symbols task after finding out the type of the file.
072fe7ce
ILT
1087
1088void
cdc29364
CC
1089Incremental_inputs::report_object(Object* obj, unsigned int arg_serial,
1090 Library_base* arch, Script_info* script_info)
072fe7ce 1091{
09ec0418 1092 Stringpool::Key filename_key;
cdc29364
CC
1093 Timespec mtime = obj->get_mtime();
1094
1095 // For a file loaded from a script, don't record its argument serial number.
1096 if (script_info != NULL)
1097 arg_serial = 0;
09ec0418
CC
1098
1099 this->strtab_->add(obj->name().c_str(), false, &filename_key);
072fe7ce 1100
0f1c85a6
CC
1101 Incremental_input_entry* input_entry;
1102
1103 this->current_object_ = obj;
1104
1105 if (!obj->is_dynamic())
09ec0418 1106 {
0f1c85a6
CC
1107 this->current_object_entry_ =
1108 new Incremental_object_entry(filename_key, obj, arg_serial, mtime);
1109 input_entry = this->current_object_entry_;
1110 if (arch != NULL)
1111 {
1112 Incremental_archive_entry* arch_entry = arch->incremental_info();
1113 gold_assert(arch_entry != NULL);
1114 arch_entry->add_object(this->current_object_entry_);
1115 }
09ec0418 1116 }
0f1c85a6
CC
1117 else
1118 {
1119 this->current_object_entry_ = NULL;
1120 Stringpool::Key soname_key;
1121 Dynobj* dynobj = obj->dynobj();
1122 gold_assert(dynobj != NULL);
1123 this->strtab_->add(dynobj->soname(), false, &soname_key);
1124 input_entry = new Incremental_dynobj_entry(filename_key, soname_key, obj,
1125 arg_serial, mtime);
1126 }
1127
1128 if (obj->is_in_system_directory())
1129 input_entry->set_is_in_system_directory();
1130
1131 if (obj->as_needed())
1132 input_entry->set_as_needed();
1133
1134 this->inputs_.push_back(input_entry);
09ec0418 1135
c7975edd
CC
1136 if (script_info != NULL)
1137 {
1138 Incremental_script_entry* script_entry = script_info->incremental_info();
1139 gold_assert(script_entry != NULL);
0f1c85a6 1140 script_entry->add_object(input_entry);
c7975edd 1141 }
072fe7ce
ILT
1142}
1143
89d8a36b 1144// Record an input section SHNDX from object file OBJ.
072fe7ce
ILT
1145
1146void
09ec0418
CC
1147Incremental_inputs::report_input_section(Object* obj, unsigned int shndx,
1148 const char* name, off_t sh_size)
072fe7ce 1149{
09ec0418 1150 Stringpool::Key key = 0;
072fe7ce 1151
09ec0418 1152 if (name != NULL)
89d8a36b 1153 this->strtab_->add(name, true, &key);
09ec0418
CC
1154
1155 gold_assert(obj == this->current_object_);
0f1c85a6 1156 gold_assert(this->current_object_entry_ != NULL);
09ec0418
CC
1157 this->current_object_entry_->add_input_section(shndx, key, sh_size);
1158}
1159
89d8a36b
CC
1160// Record a kept COMDAT group belonging to object file OBJ.
1161
1162void
1163Incremental_inputs::report_comdat_group(Object* obj, const char* name)
1164{
1165 Stringpool::Key key = 0;
1166
1167 if (name != NULL)
1168 this->strtab_->add(name, true, &key);
1169 gold_assert(obj == this->current_object_);
1170 gold_assert(this->current_object_entry_ != NULL);
1171 this->current_object_entry_->add_comdat_group(key);
1172}
1173
09ec0418
CC
1174// Record that the input argument INPUT is a script SCRIPT. This is
1175// called by read_script after parsing the script and reading the list
1176// of inputs added by this script.
1177
1178void
cdc29364
CC
1179Incremental_inputs::report_script(Script_info* script,
1180 unsigned int arg_serial,
1181 Timespec mtime)
09ec0418
CC
1182{
1183 Stringpool::Key filename_key;
1184
cdc29364 1185 this->strtab_->add(script->filename().c_str(), false, &filename_key);
09ec0418 1186 Incremental_script_entry* entry =
cdc29364 1187 new Incremental_script_entry(filename_key, arg_serial, script, mtime);
09ec0418 1188 this->inputs_.push_back(entry);
c7975edd 1189 script->set_incremental_info(entry);
072fe7ce
ILT
1190}
1191
3ce2c28e
ILT
1192// Finalize the incremental link information. Called from
1193// Layout::finalize.
1194
1195void
1196Incremental_inputs::finalize()
1197{
09ec0418 1198 // Finalize the string table.
3ce2c28e
ILT
1199 this->strtab_->set_string_offsets();
1200}
1201
09ec0418 1202// Create the .gnu_incremental_inputs, _symtab, and _relocs input sections.
3ce2c28e 1203
09ec0418
CC
1204void
1205Incremental_inputs::create_data_sections(Symbol_table* symtab)
3ce2c28e 1206{
f038d496
CC
1207 int reloc_align = 4;
1208
3ce2c28e
ILT
1209 switch (parameters->size_and_endianness())
1210 {
1211#ifdef HAVE_TARGET_32_LITTLE
1212 case Parameters::TARGET_32_LITTLE:
09ec0418
CC
1213 this->inputs_section_ =
1214 new Output_section_incremental_inputs<32, false>(this, symtab);
f038d496 1215 reloc_align = 4;
09ec0418 1216 break;
3ce2c28e
ILT
1217#endif
1218#ifdef HAVE_TARGET_32_BIG
1219 case Parameters::TARGET_32_BIG:
09ec0418
CC
1220 this->inputs_section_ =
1221 new Output_section_incremental_inputs<32, true>(this, symtab);
f038d496 1222 reloc_align = 4;
09ec0418 1223 break;
3ce2c28e
ILT
1224#endif
1225#ifdef HAVE_TARGET_64_LITTLE
1226 case Parameters::TARGET_64_LITTLE:
09ec0418
CC
1227 this->inputs_section_ =
1228 new Output_section_incremental_inputs<64, false>(this, symtab);
f038d496 1229 reloc_align = 8;
09ec0418 1230 break;
3ce2c28e
ILT
1231#endif
1232#ifdef HAVE_TARGET_64_BIG
1233 case Parameters::TARGET_64_BIG:
09ec0418
CC
1234 this->inputs_section_ =
1235 new Output_section_incremental_inputs<64, true>(this, symtab);
f038d496 1236 reloc_align = 8;
09ec0418 1237 break;
3ce2c28e
ILT
1238#endif
1239 default:
1240 gold_unreachable();
072fe7ce 1241 }
09ec0418 1242 this->symtab_section_ = new Output_data_space(4, "** incremental_symtab");
f038d496
CC
1243 this->relocs_section_ = new Output_data_space(reloc_align,
1244 "** incremental_relocs");
0e70b911 1245 this->got_plt_section_ = new Output_data_space(4, "** incremental_got_plt");
3ce2c28e
ILT
1246}
1247
09ec0418
CC
1248// Return the sh_entsize value for the .gnu_incremental_relocs section.
1249unsigned int
1250Incremental_inputs::relocs_entsize() const
1251{
1252 return 8 + 2 * parameters->target().get_size() / 8;
1253}
1254
1255// Class Output_section_incremental_inputs.
1256
1257// Finalize the offsets for each input section and supplemental info block,
1258// and set the final data size of the incremental output sections.
3ce2c28e
ILT
1259
1260template<int size, bool big_endian>
09ec0418
CC
1261void
1262Output_section_incremental_inputs<size, big_endian>::set_final_data_size()
072fe7ce 1263{
09ec0418 1264 const Incremental_inputs* inputs = this->inputs_;
09ec0418
CC
1265
1266 // Offset of each input entry.
1267 unsigned int input_offset = this->header_size;
1268
1269 // Offset of each supplemental info block.
4829d394 1270 unsigned int file_index = 0;
09ec0418
CC
1271 unsigned int info_offset = this->header_size;
1272 info_offset += this->input_entry_size * inputs->input_file_count();
1273
1274 // Count each input file and its supplemental information block.
1275 for (Incremental_inputs::Input_list::const_iterator p =
1276 inputs->input_files().begin();
1277 p != inputs->input_files().end();
1278 ++p)
072fe7ce 1279 {
4829d394
CC
1280 // Set the index and offset of the input file entry.
1281 (*p)->set_offset(file_index, input_offset);
1282 ++file_index;
09ec0418
CC
1283 input_offset += this->input_entry_size;
1284
1285 // Set the offset of the supplemental info block.
1286 switch ((*p)->type())
1287 {
1288 case INCREMENTAL_INPUT_SCRIPT:
c7975edd
CC
1289 {
1290 Incremental_script_entry *entry = (*p)->script_entry();
1291 gold_assert(entry != NULL);
1292 (*p)->set_info_offset(info_offset);
1293 // Object count.
1294 info_offset += 4;
1295 // Each member.
1296 info_offset += (entry->get_object_count() * 4);
1297 }
09ec0418
CC
1298 break;
1299 case INCREMENTAL_INPUT_OBJECT:
1300 case INCREMENTAL_INPUT_ARCHIVE_MEMBER:
1301 {
ca09d69a 1302 Incremental_object_entry* entry = (*p)->object_entry();
09ec0418
CC
1303 gold_assert(entry != NULL);
1304 (*p)->set_info_offset(info_offset);
f0f9babf 1305 // Input section count, global symbol count, local symbol offset,
89d8a36b
CC
1306 // local symbol count, first dynamic reloc, dynamic reloc count,
1307 // comdat group count.
f038d496 1308 info_offset += this->object_info_size;
09ec0418
CC
1309 // Each input section.
1310 info_offset += (entry->get_input_section_count()
f038d496 1311 * this->input_section_entry_size);
09ec0418
CC
1312 // Each global symbol.
1313 const Object::Symbols* syms = entry->object()->get_global_symbols();
f038d496 1314 info_offset += syms->size() * this->global_sym_entry_size;
89d8a36b
CC
1315 // Each comdat group.
1316 info_offset += entry->get_comdat_group_count() * 4;
09ec0418
CC
1317 }
1318 break;
1319 case INCREMENTAL_INPUT_SHARED_LIBRARY:
1320 {
0f1c85a6 1321 Incremental_dynobj_entry* entry = (*p)->dynobj_entry();
09ec0418
CC
1322 gold_assert(entry != NULL);
1323 (*p)->set_info_offset(info_offset);
0f1c85a6
CC
1324 // Global symbol count, soname index.
1325 info_offset += 8;
09ec0418
CC
1326 // Each global symbol.
1327 const Object::Symbols* syms = entry->object()->get_global_symbols();
cdc29364
CC
1328 gold_assert(syms != NULL);
1329 unsigned int nsyms = syms->size();
1330 unsigned int nsyms_out = 0;
1331 for (unsigned int i = 0; i < nsyms; ++i)
1332 {
1333 const Symbol* sym = (*syms)[i];
1334 if (sym == NULL)
1335 continue;
1336 if (sym->is_forwarder())
1337 sym = this->symtab_->resolve_forwards(sym);
1338 if (sym->symtab_index() != -1U)
1339 ++nsyms_out;
1340 }
1341 info_offset += nsyms_out * 4;
09ec0418
CC
1342 }
1343 break;
1344 case INCREMENTAL_INPUT_ARCHIVE:
1345 {
ca09d69a 1346 Incremental_archive_entry* entry = (*p)->archive_entry();
09ec0418
CC
1347 gold_assert(entry != NULL);
1348 (*p)->set_info_offset(info_offset);
1349 // Member count + unused global symbol count.
1350 info_offset += 8;
1351 // Each member.
1352 info_offset += (entry->get_member_count() * 4);
1353 // Each global symbol.
1354 info_offset += (entry->get_unused_global_symbol_count() * 4);
1355 }
1356 break;
1357 default:
1358 gold_unreachable();
1359 }
f038d496
CC
1360
1361 // Pad so each supplemental info block begins at an 8-byte boundary.
1362 if (info_offset & 4)
1363 info_offset += 4;
1364 }
072fe7ce 1365
09ec0418
CC
1366 this->set_data_size(info_offset);
1367
1368 // Set the size of the .gnu_incremental_symtab section.
1369 inputs->symtab_section()->set_current_data_size(this->symtab_->output_count()
1370 * sizeof(unsigned int));
1371
1372 // Set the size of the .gnu_incremental_relocs section.
1373 inputs->relocs_section()->set_current_data_size(inputs->get_reloc_count()
f038d496 1374 * this->incr_reloc_size);
0e70b911
CC
1375
1376 // Set the size of the .gnu_incremental_got_plt section.
1377 Sized_target<size, big_endian>* target =
1378 parameters->sized_target<size, big_endian>();
1379 unsigned int got_count = target->got_entry_count();
1380 unsigned int plt_count = target->plt_entry_count();
1381 unsigned int got_plt_size = 8; // GOT entry count, PLT entry count.
1382 got_plt_size = (got_plt_size + got_count + 3) & ~3; // GOT type array.
6fa2a40b 1383 got_plt_size += got_count * 8 + plt_count * 4; // GOT array, PLT array.
0e70b911 1384 inputs->got_plt_section()->set_current_data_size(got_plt_size);
09ec0418
CC
1385}
1386
1387// Write the contents of the .gnu_incremental_inputs and
1388// .gnu_incremental_symtab sections.
1389
1390template<int size, bool big_endian>
1391void
1392Output_section_incremental_inputs<size, big_endian>::do_write(Output_file* of)
1393{
1394 const Incremental_inputs* inputs = this->inputs_;
1395 Stringpool* strtab = inputs->get_stringpool();
1396
1397 // Get a view into the .gnu_incremental_inputs section.
1398 const off_t off = this->offset();
1399 const off_t oview_size = this->data_size();
1400 unsigned char* const oview = of->get_output_view(off, oview_size);
1401 unsigned char* pov = oview;
1402
1403 // Get a view into the .gnu_incremental_symtab section.
1404 const off_t symtab_off = inputs->symtab_section()->offset();
1405 const off_t symtab_size = inputs->symtab_section()->data_size();
1406 unsigned char* const symtab_view = of->get_output_view(symtab_off,
1407 symtab_size);
1408
1409 // Allocate an array of linked list heads for the .gnu_incremental_symtab
1410 // section. Each element corresponds to a global symbol in the output
1411 // symbol table, and points to the head of the linked list that threads
1412 // through the object file input entries. The value of each element
1413 // is the section-relative offset to a global symbol entry in a
1414 // supplemental information block.
1415 unsigned int global_sym_count = this->symtab_->output_count();
1416 unsigned int* global_syms = new unsigned int[global_sym_count];
1417 memset(global_syms, 0, global_sym_count * sizeof(unsigned int));
1418
1419 // Write the section header.
1420 Stringpool::Key command_line_key = inputs->command_line_key();
1421 pov = this->write_header(pov, inputs->input_file_count(),
1422 strtab->get_offset_from_key(command_line_key));
1423
1424 // Write the list of input files.
1425 pov = this->write_input_files(oview, pov, strtab);
1426
1427 // Write the supplemental information blocks for each input file.
1428 pov = this->write_info_blocks(oview, pov, strtab, global_syms,
1429 global_sym_count);
1430
1431 gold_assert(pov - oview == oview_size);
1432
1433 // Write the .gnu_incremental_symtab section.
1434 gold_assert(global_sym_count * 4 == symtab_size);
1435 this->write_symtab(symtab_view, global_syms, global_sym_count);
1436
1437 delete[] global_syms;
1438
0e70b911
CC
1439 // Write the .gnu_incremental_got_plt section.
1440 const off_t got_plt_off = inputs->got_plt_section()->offset();
1441 const off_t got_plt_size = inputs->got_plt_section()->data_size();
1442 unsigned char* const got_plt_view = of->get_output_view(got_plt_off,
1443 got_plt_size);
1444 this->write_got_plt(got_plt_view, got_plt_size);
1445
09ec0418
CC
1446 of->write_output_view(off, oview_size, oview);
1447 of->write_output_view(symtab_off, symtab_size, symtab_view);
0e70b911 1448 of->write_output_view(got_plt_off, got_plt_size, got_plt_view);
09ec0418
CC
1449}
1450
1451// Write the section header: version, input file count, offset of command line
1452// in the string table, and 4 bytes of padding.
1453
1454template<int size, bool big_endian>
1455unsigned char*
1456Output_section_incremental_inputs<size, big_endian>::write_header(
1457 unsigned char* pov,
1458 unsigned int input_file_count,
1459 section_offset_type command_line_offset)
1460{
1461 Swap32::writeval(pov, INCREMENTAL_LINK_VERSION);
1462 Swap32::writeval(pov + 4, input_file_count);
1463 Swap32::writeval(pov + 8, command_line_offset);
1464 Swap32::writeval(pov + 12, 0);
f038d496 1465 gold_assert(this->header_size == 16);
09ec0418
CC
1466 return pov + this->header_size;
1467}
1468
1469// Write the input file entries.
1470
1471template<int size, bool big_endian>
1472unsigned char*
1473Output_section_incremental_inputs<size, big_endian>::write_input_files(
1474 unsigned char* oview,
1475 unsigned char* pov,
1476 Stringpool* strtab)
1477{
1478 const Incremental_inputs* inputs = this->inputs_;
1479
1480 for (Incremental_inputs::Input_list::const_iterator p =
1481 inputs->input_files().begin();
1482 p != inputs->input_files().end();
1483 ++p)
1484 {
56f75c03 1485 gold_assert(static_cast<unsigned int>(pov - oview) == (*p)->get_offset());
09ec0418
CC
1486 section_offset_type filename_offset =
1487 strtab->get_offset_from_key((*p)->get_filename_key());
1488 const Timespec& mtime = (*p)->get_mtime();
cdc29364
CC
1489 unsigned int flags = (*p)->type();
1490 if ((*p)->is_in_system_directory())
1491 flags |= INCREMENTAL_INPUT_IN_SYSTEM_DIR;
0f1c85a6
CC
1492 if ((*p)->as_needed())
1493 flags |= INCREMENTAL_INPUT_AS_NEEDED;
09ec0418
CC
1494 Swap32::writeval(pov, filename_offset);
1495 Swap32::writeval(pov + 4, (*p)->get_info_offset());
1496 Swap64::writeval(pov + 8, mtime.seconds);
1497 Swap32::writeval(pov + 16, mtime.nanoseconds);
cdc29364
CC
1498 Swap16::writeval(pov + 20, flags);
1499 Swap16::writeval(pov + 22, (*p)->arg_serial());
f038d496 1500 gold_assert(this->input_entry_size == 24);
09ec0418
CC
1501 pov += this->input_entry_size;
1502 }
1503 return pov;
1504}
1505
1506// Write the supplemental information blocks.
1507
1508template<int size, bool big_endian>
1509unsigned char*
1510Output_section_incremental_inputs<size, big_endian>::write_info_blocks(
1511 unsigned char* oview,
1512 unsigned char* pov,
1513 Stringpool* strtab,
1514 unsigned int* global_syms,
1515 unsigned int global_sym_count)
1516{
1517 const Incremental_inputs* inputs = this->inputs_;
1518 unsigned int first_global_index = this->symtab_->first_global_index();
1519
1520 for (Incremental_inputs::Input_list::const_iterator p =
1521 inputs->input_files().begin();
1522 p != inputs->input_files().end();
1523 ++p)
1524 {
1525 switch ((*p)->type())
1526 {
1527 case INCREMENTAL_INPUT_SCRIPT:
c7975edd
CC
1528 {
1529 gold_assert(static_cast<unsigned int>(pov - oview)
1530 == (*p)->get_info_offset());
1531 Incremental_script_entry* entry = (*p)->script_entry();
1532 gold_assert(entry != NULL);
1533
1534 // Write the object count.
1535 unsigned int nobjects = entry->get_object_count();
1536 Swap32::writeval(pov, nobjects);
1537 pov += 4;
1538
1539 // For each object, write the offset to its input file entry.
1540 for (unsigned int i = 0; i < nobjects; ++i)
1541 {
1542 Incremental_input_entry* obj = entry->get_object(i);
1543 Swap32::writeval(pov, obj->get_offset());
1544 pov += 4;
1545 }
1546 }
09ec0418
CC
1547 break;
1548
1549 case INCREMENTAL_INPUT_OBJECT:
1550 case INCREMENTAL_INPUT_ARCHIVE_MEMBER:
1551 {
56f75c03
ILT
1552 gold_assert(static_cast<unsigned int>(pov - oview)
1553 == (*p)->get_info_offset());
09ec0418
CC
1554 Incremental_object_entry* entry = (*p)->object_entry();
1555 gold_assert(entry != NULL);
1556 const Object* obj = entry->object();
f0f9babf 1557 const Relobj* relobj = static_cast<const Relobj*>(obj);
09ec0418
CC
1558 const Object::Symbols* syms = obj->get_global_symbols();
1559 // Write the input section count and global symbol count.
1560 unsigned int nsections = entry->get_input_section_count();
1561 unsigned int nsyms = syms->size();
f0f9babf
CC
1562 off_t locals_offset = relobj->local_symbol_offset();
1563 unsigned int nlocals = relobj->output_local_symbol_count();
6fa2a40b
CC
1564 unsigned int first_dynrel = relobj->first_dyn_reloc();
1565 unsigned int ndynrel = relobj->dyn_reloc_count();
89d8a36b 1566 unsigned int ncomdat = entry->get_comdat_group_count();
09ec0418
CC
1567 Swap32::writeval(pov, nsections);
1568 Swap32::writeval(pov + 4, nsyms);
f0f9babf
CC
1569 Swap32::writeval(pov + 8, static_cast<unsigned int>(locals_offset));
1570 Swap32::writeval(pov + 12, nlocals);
6fa2a40b
CC
1571 Swap32::writeval(pov + 16, first_dynrel);
1572 Swap32::writeval(pov + 20, ndynrel);
89d8a36b 1573 Swap32::writeval(pov + 24, ncomdat);
f038d496
CC
1574 Swap32::writeval(pov + 28, 0);
1575 gold_assert(this->object_info_size == 32);
1576 pov += this->object_info_size;
09ec0418 1577
cdc29364
CC
1578 // Build a temporary array to map input section indexes
1579 // from the original object file index to the index in the
1580 // incremental info table.
1581 unsigned int* index_map = new unsigned int[obj->shnum()];
1582 memset(index_map, 0, obj->shnum() * sizeof(unsigned int));
1583
09ec0418
CC
1584 // For each input section, write the name, output section index,
1585 // offset within output section, and input section size.
1586 for (unsigned int i = 0; i < nsections; i++)
1587 {
cdc29364
CC
1588 unsigned int shndx = entry->get_input_section_index(i);
1589 index_map[shndx] = i + 1;
09ec0418
CC
1590 Stringpool::Key key = entry->get_input_section_name_key(i);
1591 off_t name_offset = 0;
1592 if (key != 0)
1593 name_offset = strtab->get_offset_from_key(key);
1594 int out_shndx = 0;
1595 off_t out_offset = 0;
1596 off_t sh_size = 0;
cdc29364 1597 Output_section* os = obj->output_section(shndx);
09ec0418
CC
1598 if (os != NULL)
1599 {
1600 out_shndx = os->out_shndx();
cdc29364 1601 out_offset = obj->output_section_offset(shndx);
09ec0418
CC
1602 sh_size = entry->get_input_section_size(i);
1603 }
1604 Swap32::writeval(pov, name_offset);
1605 Swap32::writeval(pov + 4, out_shndx);
1606 Swap::writeval(pov + 8, out_offset);
1607 Swap::writeval(pov + 8 + sizeof_addr, sh_size);
f038d496
CC
1608 gold_assert(this->input_section_entry_size
1609 == 8 + 2 * sizeof_addr);
1610 pov += this->input_section_entry_size;
09ec0418
CC
1611 }
1612
1613 // For each global symbol, write its associated relocations,
1614 // add it to the linked list of globals, then write the
1615 // supplemental information: global symbol table index,
cdc29364
CC
1616 // input section index, linked list chain pointer, relocation
1617 // count, and offset to the relocations.
09ec0418
CC
1618 for (unsigned int i = 0; i < nsyms; i++)
1619 {
1620 const Symbol* sym = (*syms)[i];
793990de
CC
1621 if (sym->is_forwarder())
1622 sym = this->symtab_->resolve_forwards(sym);
cdc29364 1623 unsigned int shndx = 0;
5146f448
CC
1624 if (sym->source() != Symbol::FROM_OBJECT)
1625 {
1626 // The symbol was defined by the linker (e.g., common).
1627 // We mark these symbols with a special SHNDX of -1,
1628 // but exclude linker-predefined symbols and symbols
1629 // copied from shared objects.
1630 if (!sym->is_predefined()
1631 && !sym->is_copied_from_dynobj())
1632 shndx = -1U;
1633 }
1634 else if (sym->object() == obj && sym->is_defined())
cdc29364
CC
1635 {
1636 bool is_ordinary;
1637 unsigned int orig_shndx = sym->shndx(&is_ordinary);
1638 if (is_ordinary)
1639 shndx = index_map[orig_shndx];
5146f448
CC
1640 else
1641 shndx = 1;
cdc29364 1642 }
09ec0418
CC
1643 unsigned int symtab_index = sym->symtab_index();
1644 unsigned int chain = 0;
1645 unsigned int first_reloc = 0;
1646 unsigned int nrelocs = obj->get_incremental_reloc_count(i);
1647 if (nrelocs > 0)
1648 {
1649 gold_assert(symtab_index != -1U
1650 && (symtab_index - first_global_index
1651 < global_sym_count));
1652 first_reloc = obj->get_incremental_reloc_base(i);
1653 chain = global_syms[symtab_index - first_global_index];
1654 global_syms[symtab_index - first_global_index] =
1655 pov - oview;
1656 }
1657 Swap32::writeval(pov, symtab_index);
cdc29364
CC
1658 Swap32::writeval(pov + 4, shndx);
1659 Swap32::writeval(pov + 8, chain);
1660 Swap32::writeval(pov + 12, nrelocs);
c335b55d
L
1661 Swap32::writeval(pov + 16,
1662 first_reloc * (8 + 2 * sizeof_addr));
f038d496
CC
1663 gold_assert(this->global_sym_entry_size == 20);
1664 pov += this->global_sym_entry_size;
09ec0418 1665 }
cdc29364 1666
89d8a36b
CC
1667 // For each kept COMDAT group, write the group signature.
1668 for (unsigned int i = 0; i < ncomdat; i++)
1669 {
1670 Stringpool::Key key = entry->get_comdat_signature_key(i);
1671 off_t name_offset = 0;
1672 if (key != 0)
1673 name_offset = strtab->get_offset_from_key(key);
1674 Swap32::writeval(pov, name_offset);
1675 pov += 4;
1676 }
1677
cdc29364 1678 delete[] index_map;
09ec0418
CC
1679 }
1680 break;
1681
1682 case INCREMENTAL_INPUT_SHARED_LIBRARY:
1683 {
56f75c03
ILT
1684 gold_assert(static_cast<unsigned int>(pov - oview)
1685 == (*p)->get_info_offset());
0f1c85a6 1686 Incremental_dynobj_entry* entry = (*p)->dynobj_entry();
09ec0418 1687 gold_assert(entry != NULL);
26d3c67d
CC
1688 Object* obj = entry->object();
1689 Dynobj* dynobj = obj->dynobj();
1690 gold_assert(dynobj != NULL);
09ec0418
CC
1691 const Object::Symbols* syms = obj->get_global_symbols();
1692
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CC
1693 // Write the soname string table index.
1694 section_offset_type soname_offset =
1695 strtab->get_offset_from_key(entry->get_soname_key());
1696 Swap32::writeval(pov, soname_offset);
1697 pov += 4;
1698
cdc29364
CC
1699 // Skip the global symbol count for now.
1700 unsigned char* orig_pov = pov;
09ec0418
CC
1701 pov += 4;
1702
1703 // For each global symbol, write the global symbol table index.
cdc29364
CC
1704 unsigned int nsyms = syms->size();
1705 unsigned int nsyms_out = 0;
09ec0418
CC
1706 for (unsigned int i = 0; i < nsyms; i++)
1707 {
1708 const Symbol* sym = (*syms)[i];
cdc29364
CC
1709 if (sym == NULL)
1710 continue;
1711 if (sym->is_forwarder())
1712 sym = this->symtab_->resolve_forwards(sym);
1713 if (sym->symtab_index() == -1U)
1714 continue;
26d3c67d 1715 unsigned int flags = 0;
f48b5fb7
CC
1716 // If the symbol has hidden or internal visibility, we
1717 // mark it as defined in the shared object so we don't
1718 // try to resolve it during an incremental update.
1719 if (sym->visibility() == elfcpp::STV_HIDDEN
1720 || sym->visibility() == elfcpp::STV_INTERNAL)
1721 flags = INCREMENTAL_SHLIB_SYM_DEF;
1722 else if (sym->source() == Symbol::FROM_OBJECT
1723 && sym->object() == obj
1724 && sym->is_defined())
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CC
1725 flags = INCREMENTAL_SHLIB_SYM_DEF;
1726 else if (sym->is_copied_from_dynobj()
1727 && this->symtab_->get_copy_source(sym) == dynobj)
1728 flags = INCREMENTAL_SHLIB_SYM_COPY;
1729 flags <<= INCREMENTAL_SHLIB_SYM_FLAGS_SHIFT;
1730 Swap32::writeval(pov, sym->symtab_index() | flags);
09ec0418 1731 pov += 4;
cdc29364 1732 ++nsyms_out;
09ec0418 1733 }
cdc29364
CC
1734
1735 // Now write the global symbol count.
1736 Swap32::writeval(orig_pov, nsyms_out);
09ec0418
CC
1737 }
1738 break;
1739
1740 case INCREMENTAL_INPUT_ARCHIVE:
1741 {
56f75c03
ILT
1742 gold_assert(static_cast<unsigned int>(pov - oview)
1743 == (*p)->get_info_offset());
09ec0418
CC
1744 Incremental_archive_entry* entry = (*p)->archive_entry();
1745 gold_assert(entry != NULL);
1746
1747 // Write the member count and unused global symbol count.
1748 unsigned int nmembers = entry->get_member_count();
1749 unsigned int nsyms = entry->get_unused_global_symbol_count();
1750 Swap32::writeval(pov, nmembers);
1751 Swap32::writeval(pov + 4, nsyms);
1752 pov += 8;
1753
1754 // For each member, write the offset to its input file entry.
1755 for (unsigned int i = 0; i < nmembers; ++i)
1756 {
1757 Incremental_object_entry* member = entry->get_member(i);
1758 Swap32::writeval(pov, member->get_offset());
1759 pov += 4;
1760 }
1761
1762 // For each global symbol, write the name offset.
1763 for (unsigned int i = 0; i < nsyms; ++i)
1764 {
1765 Stringpool::Key key = entry->get_unused_global_symbol(i);
1766 Swap32::writeval(pov, strtab->get_offset_from_key(key));
1767 pov += 4;
1768 }
1769 }
1770 break;
1771
1772 default:
1773 gold_unreachable();
1774 }
f038d496
CC
1775
1776 // Pad the info block to a multiple of 8 bytes.
1777 if (static_cast<unsigned int>(pov - oview) & 4)
1778 {
1779 Swap32::writeval(pov, 0);
1780 pov += 4;
1781 }
09ec0418
CC
1782 }
1783 return pov;
1784}
1785
1786// Write the contents of the .gnu_incremental_symtab section.
1787
1788template<int size, bool big_endian>
1789void
1790Output_section_incremental_inputs<size, big_endian>::write_symtab(
1791 unsigned char* pov,
1792 unsigned int* global_syms,
1793 unsigned int global_sym_count)
1794{
1795 for (unsigned int i = 0; i < global_sym_count; ++i)
1796 {
1797 Swap32::writeval(pov, global_syms[i]);
1798 pov += 4;
1799 }
3ce2c28e
ILT
1800}
1801
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CC
1802// This struct holds the view information needed to write the
1803// .gnu_incremental_got_plt section.
1804
1805struct Got_plt_view_info
1806{
1807 // Start of the GOT type array in the output view.
1808 unsigned char* got_type_p;
1809 // Start of the GOT descriptor array in the output view.
1810 unsigned char* got_desc_p;
1811 // Start of the PLT descriptor array in the output view.
1812 unsigned char* plt_desc_p;
1813 // Number of GOT entries.
1814 unsigned int got_count;
1815 // Number of PLT entries.
1816 unsigned int plt_count;
1817 // Offset of the first non-reserved PLT entry (this is a target-dependent value).
1818 unsigned int first_plt_entry_offset;
1819 // Size of a PLT entry (this is a target-dependent value).
1820 unsigned int plt_entry_size;
6fa2a40b
CC
1821 // Symbol index to write in the GOT descriptor array. For global symbols,
1822 // this is the global symbol table index; for local symbols, it is the
1823 // local symbol table index.
1824 unsigned int sym_index;
1825 // Input file index to write in the GOT descriptor array. For global
1826 // symbols, this is 0; for local symbols, it is the index of the input
1827 // file entry in the .gnu_incremental_inputs section.
1828 unsigned int input_index;
0e70b911
CC
1829};
1830
1831// Functor class for processing a GOT offset list for local symbols.
1832// Writes the GOT type and symbol index into the GOT type and descriptor
1833// arrays in the output section.
1834
1835template<int size, bool big_endian>
cdc29364 1836class Local_got_offset_visitor : public Got_offset_list::Visitor
0e70b911
CC
1837{
1838 public:
1839 Local_got_offset_visitor(struct Got_plt_view_info& info)
1840 : info_(info)
1841 { }
1842
1843 void
cdc29364 1844 visit(unsigned int got_type, unsigned int got_offset)
0e70b911
CC
1845 {
1846 unsigned int got_index = got_offset / this->got_entry_size_;
1847 gold_assert(got_index < this->info_.got_count);
1848 // We can only handle GOT entry types in the range 0..0x7e
1849 // because we use a byte array to store them, and we use the
1850 // high bit to flag a local symbol.
1851 gold_assert(got_type < 0x7f);
1852 this->info_.got_type_p[got_index] = got_type | 0x80;
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CC
1853 unsigned char* pov = this->info_.got_desc_p + got_index * 8;
1854 elfcpp::Swap<32, big_endian>::writeval(pov, this->info_.sym_index);
1855 elfcpp::Swap<32, big_endian>::writeval(pov + 4, this->info_.input_index);
0e70b911
CC
1856 }
1857
1858 private:
1859 static const unsigned int got_entry_size_ = size / 8;
1860 struct Got_plt_view_info& info_;
1861};
1862
1863// Functor class for processing a GOT offset list. Writes the GOT type
1864// and symbol index into the GOT type and descriptor arrays in the output
1865// section.
1866
1867template<int size, bool big_endian>
cdc29364 1868class Global_got_offset_visitor : public Got_offset_list::Visitor
0e70b911
CC
1869{
1870 public:
1871 Global_got_offset_visitor(struct Got_plt_view_info& info)
1872 : info_(info)
1873 { }
1874
1875 void
cdc29364 1876 visit(unsigned int got_type, unsigned int got_offset)
0e70b911
CC
1877 {
1878 unsigned int got_index = got_offset / this->got_entry_size_;
1879 gold_assert(got_index < this->info_.got_count);
1880 // We can only handle GOT entry types in the range 0..0x7e
1881 // because we use a byte array to store them, and we use the
1882 // high bit to flag a local symbol.
1883 gold_assert(got_type < 0x7f);
1884 this->info_.got_type_p[got_index] = got_type;
6fa2a40b
CC
1885 unsigned char* pov = this->info_.got_desc_p + got_index * 8;
1886 elfcpp::Swap<32, big_endian>::writeval(pov, this->info_.sym_index);
1887 elfcpp::Swap<32, big_endian>::writeval(pov + 4, 0);
0e70b911
CC
1888 }
1889
1890 private:
1891 static const unsigned int got_entry_size_ = size / 8;
1892 struct Got_plt_view_info& info_;
1893};
1894
1895// Functor class for processing the global symbol table. Processes the
1896// GOT offset list for the symbol, and writes the symbol table index
1897// into the PLT descriptor array in the output section.
1898
1899template<int size, bool big_endian>
1900class Global_symbol_visitor_got_plt
1901{
1902 public:
1903 Global_symbol_visitor_got_plt(struct Got_plt_view_info& info)
1904 : info_(info)
1905 { }
1906
1907 void
1908 operator()(const Sized_symbol<size>* sym)
1909 {
1910 typedef Global_got_offset_visitor<size, big_endian> Got_visitor;
1911 const Got_offset_list* got_offsets = sym->got_offset_list();
1912 if (got_offsets != NULL)
1913 {
6fa2a40b
CC
1914 this->info_.sym_index = sym->symtab_index();
1915 this->info_.input_index = 0;
cdc29364
CC
1916 Got_visitor v(this->info_);
1917 got_offsets->for_all_got_offsets(&v);
0e70b911
CC
1918 }
1919 if (sym->has_plt_offset())
1920 {
1921 unsigned int plt_index =
1922 ((sym->plt_offset() - this->info_.first_plt_entry_offset)
1923 / this->info_.plt_entry_size);
1924 gold_assert(plt_index < this->info_.plt_count);
1925 unsigned char* pov = this->info_.plt_desc_p + plt_index * 4;
1926 elfcpp::Swap<32, big_endian>::writeval(pov, sym->symtab_index());
1927 }
1928 }
1929
1930 private:
1931 struct Got_plt_view_info& info_;
1932};
1933
1934// Write the contents of the .gnu_incremental_got_plt section.
1935
1936template<int size, bool big_endian>
1937void
1938Output_section_incremental_inputs<size, big_endian>::write_got_plt(
1939 unsigned char* pov,
1940 off_t view_size)
1941{
1942 Sized_target<size, big_endian>* target =
1943 parameters->sized_target<size, big_endian>();
1944
1945 // Set up the view information for the functors.
1946 struct Got_plt_view_info view_info;
1947 view_info.got_count = target->got_entry_count();
1948 view_info.plt_count = target->plt_entry_count();
1949 view_info.first_plt_entry_offset = target->first_plt_entry_offset();
1950 view_info.plt_entry_size = target->plt_entry_size();
1951 view_info.got_type_p = pov + 8;
1952 view_info.got_desc_p = (view_info.got_type_p
1953 + ((view_info.got_count + 3) & ~3));
6fa2a40b 1954 view_info.plt_desc_p = view_info.got_desc_p + view_info.got_count * 8;
0e70b911
CC
1955
1956 gold_assert(pov + view_size ==
1957 view_info.plt_desc_p + view_info.plt_count * 4);
1958
1959 // Write the section header.
1960 Swap32::writeval(pov, view_info.got_count);
1961 Swap32::writeval(pov + 4, view_info.plt_count);
1962
1963 // Initialize the GOT type array to 0xff (reserved).
1964 memset(view_info.got_type_p, 0xff, view_info.got_count);
1965
1966 // Write the incremental GOT descriptors for local symbols.
cdc29364 1967 typedef Local_got_offset_visitor<size, big_endian> Got_visitor;
0e70b911
CC
1968 for (Incremental_inputs::Input_list::const_iterator p =
1969 this->inputs_->input_files().begin();
1970 p != this->inputs_->input_files().end();
1971 ++p)
1972 {
1973 if ((*p)->type() != INCREMENTAL_INPUT_OBJECT
1974 && (*p)->type() != INCREMENTAL_INPUT_ARCHIVE_MEMBER)
1975 continue;
1976 Incremental_object_entry* entry = (*p)->object_entry();
1977 gold_assert(entry != NULL);
cdc29364 1978 const Object* obj = entry->object();
0e70b911 1979 gold_assert(obj != NULL);
6fa2a40b 1980 view_info.input_index = (*p)->get_file_index();
cdc29364
CC
1981 Got_visitor v(view_info);
1982 obj->for_all_local_got_entries(&v);
0e70b911
CC
1983 }
1984
1985 // Write the incremental GOT and PLT descriptors for global symbols.
1986 typedef Global_symbol_visitor_got_plt<size, big_endian> Symbol_visitor;
1987 symtab_->for_all_symbols<size, Symbol_visitor>(Symbol_visitor(view_info));
1988}
1989
6fa2a40b 1990// Class Sized_relobj_incr. Most of these methods are not used for
cdc29364
CC
1991// Incremental objects, but are required to be implemented by the
1992// base class Object.
1993
1994template<int size, bool big_endian>
6fa2a40b 1995Sized_relobj_incr<size, big_endian>::Sized_relobj_incr(
cdc29364
CC
1996 const std::string& name,
1997 Sized_incremental_binary<size, big_endian>* ibase,
1998 unsigned int input_file_index)
6fa2a40b 1999 : Sized_relobj<size, big_endian>(name, NULL), ibase_(ibase),
cdc29364
CC
2000 input_file_index_(input_file_index),
2001 input_reader_(ibase->inputs_reader().input_file(input_file_index)),
f0f9babf
CC
2002 local_symbol_count_(0), output_local_dynsym_count_(0),
2003 local_symbol_index_(0), local_symbol_offset_(0), local_dynsym_offset_(0),
53bbcc1b
CC
2004 symbols_(), defined_count_(0), incr_reloc_offset_(-1U),
2005 incr_reloc_count_(0), incr_reloc_output_index_(0), incr_relocs_(NULL),
2006 local_symbols_()
cdc29364
CC
2007{
2008 if (this->input_reader_.is_in_system_directory())
2009 this->set_is_in_system_directory();
2010 const unsigned int shnum = this->input_reader_.get_input_section_count() + 1;
2011 this->set_shnum(shnum);
6fa2a40b 2012 ibase->set_input_object(input_file_index, this);
cdc29364
CC
2013}
2014
2015// Read the symbols.
2016
2017template<int size, bool big_endian>
2018void
6fa2a40b 2019Sized_relobj_incr<size, big_endian>::do_read_symbols(Read_symbols_data*)
cdc29364
CC
2020{
2021 gold_unreachable();
2022}
2023
2024// Lay out the input sections.
2025
2026template<int size, bool big_endian>
2027void
6fa2a40b 2028Sized_relobj_incr<size, big_endian>::do_layout(
cdc29364
CC
2029 Symbol_table*,
2030 Layout* layout,
2031 Read_symbols_data*)
2032{
2033 const unsigned int shnum = this->shnum();
2034 Incremental_inputs* incremental_inputs = layout->incremental_inputs();
2035 gold_assert(incremental_inputs != NULL);
2036 Output_sections& out_sections(this->output_sections());
2037 out_sections.resize(shnum);
6fa2a40b 2038 this->section_offsets().resize(shnum);
c1027032
CC
2039
2040 // Keep track of .debug_info and .debug_types sections.
2041 std::vector<unsigned int> debug_info_sections;
2042 std::vector<unsigned int> debug_types_sections;
2043
cdc29364
CC
2044 for (unsigned int i = 1; i < shnum; i++)
2045 {
2046 typename Input_entry_reader::Input_section_info sect =
2047 this->input_reader_.get_input_section(i - 1);
2048 // Add the section to the incremental inputs layout.
2049 incremental_inputs->report_input_section(this, i, sect.name,
2050 sect.sh_size);
2051 if (sect.output_shndx == 0 || sect.sh_offset == -1)
2052 continue;
2053 Output_section* os = this->ibase_->output_section(sect.output_shndx);
2054 gold_assert(os != NULL);
2055 out_sections[i] = os;
6fa2a40b 2056 this->section_offsets()[i] = static_cast<Address>(sect.sh_offset);
c1027032
CC
2057
2058 // When generating a .gdb_index section, we do additional
2059 // processing of .debug_info and .debug_types sections after all
2060 // the other sections.
2061 if (parameters->options().gdb_index())
2062 {
2063 const char* name = os->name();
2064 if (strcmp(name, ".debug_info") == 0)
2065 debug_info_sections.push_back(i);
2066 else if (strcmp(name, ".debug_types") == 0)
2067 debug_types_sections.push_back(i);
2068 }
cdc29364 2069 }
89d8a36b
CC
2070
2071 // Process the COMDAT groups.
2072 unsigned int ncomdat = this->input_reader_.get_comdat_group_count();
2073 for (unsigned int i = 0; i < ncomdat; i++)
2074 {
2075 const char* signature = this->input_reader_.get_comdat_group_signature(i);
2076 if (signature == NULL || signature[0] == '\0')
2077 this->error(_("COMDAT group has no signature"));
2078 bool keep = layout->find_or_add_kept_section(signature, this, i, true,
2079 true, NULL);
1206d0d5
CC
2080 if (keep)
2081 incremental_inputs->report_comdat_group(this, signature);
2082 else
89d8a36b
CC
2083 this->error(_("COMDAT group %s included twice in incremental link"),
2084 signature);
2085 }
c1027032
CC
2086
2087 // When building a .gdb_index section, scan the .debug_info and
2088 // .debug_types sections.
2089 for (std::vector<unsigned int>::const_iterator p
2090 = debug_info_sections.begin();
2091 p != debug_info_sections.end();
2092 ++p)
2093 {
2094 unsigned int i = *p;
2095 layout->add_to_gdb_index(false, this, NULL, 0, i, 0, 0);
2096 }
2097 for (std::vector<unsigned int>::const_iterator p
2098 = debug_types_sections.begin();
2099 p != debug_types_sections.end();
2100 ++p)
2101 {
2102 unsigned int i = *p;
2103 layout->add_to_gdb_index(true, this, 0, 0, i, 0, 0);
2104 }
cdc29364
CC
2105}
2106
2107// Layout sections whose layout was deferred while waiting for
2108// input files from a plugin.
2109template<int size, bool big_endian>
2110void
6fa2a40b 2111Sized_relobj_incr<size, big_endian>::do_layout_deferred_sections(Layout*)
cdc29364
CC
2112{
2113}
2114
2115// Add the symbols to the symbol table.
2116
2117template<int size, bool big_endian>
2118void
6fa2a40b 2119Sized_relobj_incr<size, big_endian>::do_add_symbols(
cdc29364
CC
2120 Symbol_table* symtab,
2121 Read_symbols_data*,
2122 Layout*)
2123{
2124 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
2125 unsigned char symbuf[sym_size];
2126 elfcpp::Sym<size, big_endian> sym(symbuf);
2127 elfcpp::Sym_write<size, big_endian> osym(symbuf);
2128
2129 typedef typename elfcpp::Elf_types<size>::Elf_WXword Elf_size_type;
2130
2131 unsigned int nsyms = this->input_reader_.get_global_symbol_count();
2132 this->symbols_.resize(nsyms);
2133
2134 Incremental_binary::View symtab_view(NULL);
2135 unsigned int symtab_count;
2136 elfcpp::Elf_strtab strtab(NULL, 0);
2137 this->ibase_->get_symtab_view(&symtab_view, &symtab_count, &strtab);
2138
94a3fc8b
CC
2139 Incremental_symtab_reader<big_endian> isymtab(this->ibase_->symtab_reader());
2140 unsigned int isym_count = isymtab.symbol_count();
2141 unsigned int first_global = symtab_count - isym_count;
cdc29364 2142
f0f9babf 2143 const unsigned char* sym_p;
cdc29364
CC
2144 for (unsigned int i = 0; i < nsyms; ++i)
2145 {
2146 Incremental_global_symbol_reader<big_endian> info =
2147 this->input_reader_.get_global_symbol_reader(i);
94a3fc8b
CC
2148 unsigned int output_symndx = info.output_symndx();
2149 sym_p = symtab_view.data() + output_symndx * sym_size;
cdc29364
CC
2150 elfcpp::Sym<size, big_endian> gsym(sym_p);
2151 const char* name;
2152 if (!strtab.get_c_string(gsym.get_st_name(), &name))
2153 name = "";
2154
11e361bc 2155 typename elfcpp::Elf_types<size>::Elf_Addr v = gsym.get_st_value();
cdc29364
CC
2156 unsigned int shndx = gsym.get_st_shndx();
2157 elfcpp::STB st_bind = gsym.get_st_bind();
2158 elfcpp::STT st_type = gsym.get_st_type();
2159
2160 // Local hidden symbols start out as globals, but get converted to
2161 // to local during output.
2162 if (st_bind == elfcpp::STB_LOCAL)
2163 st_bind = elfcpp::STB_GLOBAL;
2164
2165 unsigned int input_shndx = info.shndx();
5146f448 2166 if (input_shndx == 0 || input_shndx == -1U)
cdc29364
CC
2167 {
2168 shndx = elfcpp::SHN_UNDEF;
2169 v = 0;
2170 }
2171 else if (shndx != elfcpp::SHN_ABS)
2172 {
2173 // Find the input section and calculate the section-relative value.
2174 gold_assert(shndx != elfcpp::SHN_UNDEF);
cdc29364
CC
2175 Output_section* os = this->ibase_->output_section(shndx);
2176 gold_assert(os != NULL && os->has_fixed_layout());
2177 typename Input_entry_reader::Input_section_info sect =
2178 this->input_reader_.get_input_section(input_shndx - 1);
2179 gold_assert(sect.output_shndx == shndx);
2180 if (st_type != elfcpp::STT_TLS)
2181 v -= os->address();
2182 v -= sect.sh_offset;
2183 shndx = input_shndx;
2184 }
2185
2186 osym.put_st_name(0);
2187 osym.put_st_value(v);
2188 osym.put_st_size(gsym.get_st_size());
2189 osym.put_st_info(st_bind, st_type);
2190 osym.put_st_other(gsym.get_st_other());
2191 osym.put_st_shndx(shndx);
2192
5146f448
CC
2193 Symbol* res = symtab->add_from_incrobj(this, name, NULL, &sym);
2194
53bbcc1b
CC
2195 if (shndx != elfcpp::SHN_UNDEF)
2196 ++this->defined_count_;
2197
5146f448
CC
2198 // If this is a linker-defined symbol that hasn't yet been defined,
2199 // define it now.
2200 if (input_shndx == -1U && !res->is_defined())
2201 {
2202 shndx = gsym.get_st_shndx();
2203 v = gsym.get_st_value();
2204 Elf_size_type symsize = gsym.get_st_size();
2205 if (shndx == elfcpp::SHN_ABS)
2206 {
2207 symtab->define_as_constant(name, NULL,
2208 Symbol_table::INCREMENTAL_BASE,
2209 v, symsize, st_type, st_bind,
2210 gsym.get_st_visibility(), 0,
2211 false, false);
2212 }
2213 else
2214 {
2215 Output_section* os = this->ibase_->output_section(shndx);
2216 gold_assert(os != NULL && os->has_fixed_layout());
2217 v -= os->address();
2218 if (symsize > 0)
2219 os->reserve(v, symsize);
2220 symtab->define_in_output_data(name, NULL,
2221 Symbol_table::INCREMENTAL_BASE,
2222 os, v, symsize, st_type, st_bind,
2223 gsym.get_st_visibility(), 0,
2224 false, false);
2225 }
2226 }
2227
2228 this->symbols_[i] = res;
2229 this->ibase_->add_global_symbol(output_symndx - first_global, res);
cdc29364
CC
2230 }
2231}
2232
2233// Return TRUE if we should include this object from an archive library.
2234
2235template<int size, bool big_endian>
2236Archive::Should_include
6fa2a40b 2237Sized_relobj_incr<size, big_endian>::do_should_include_member(
cdc29364
CC
2238 Symbol_table*,
2239 Layout*,
2240 Read_symbols_data*,
2241 std::string*)
2242{
2243 gold_unreachable();
2244}
2245
2246// Iterate over global symbols, calling a visitor class V for each.
2247
2248template<int size, bool big_endian>
2249void
6fa2a40b 2250Sized_relobj_incr<size, big_endian>::do_for_all_global_symbols(
cdc29364
CC
2251 Read_symbols_data*,
2252 Library_base::Symbol_visitor_base*)
2253{
2254 // This routine is not used for incremental objects.
2255}
2256
cdc29364
CC
2257// Get the size of a section.
2258
2259template<int size, bool big_endian>
2260uint64_t
6fa2a40b 2261Sized_relobj_incr<size, big_endian>::do_section_size(unsigned int)
cdc29364
CC
2262{
2263 gold_unreachable();
2264}
2265
c1027032
CC
2266// Get the name of a section. This returns the name of the output
2267// section, because we don't usually track the names of the input
2268// sections.
cdc29364
CC
2269
2270template<int size, bool big_endian>
2271std::string
c1027032 2272Sized_relobj_incr<size, big_endian>::do_section_name(unsigned int shndx)
cdc29364 2273{
c1027032
CC
2274 Output_sections& out_sections(this->output_sections());
2275 Output_section* os = out_sections[shndx];
2276 if (os == NULL)
2277 return NULL;
2278 return os->name();
cdc29364
CC
2279}
2280
2281// Return a view of the contents of a section.
2282
2283template<int size, bool big_endian>
c1027032
CC
2284const unsigned char*
2285Sized_relobj_incr<size, big_endian>::do_section_contents(
2286 unsigned int shndx,
2287 section_size_type* plen,
2288 bool)
cdc29364 2289{
c1027032
CC
2290 Output_sections& out_sections(this->output_sections());
2291 Output_section* os = out_sections[shndx];
2292 gold_assert(os != NULL);
2293 off_t section_offset = os->offset();
2294 typename Input_entry_reader::Input_section_info sect =
2295 this->input_reader_.get_input_section(shndx - 1);
2296 section_offset += sect.sh_offset;
2297 *plen = sect.sh_size;
2298 return this->ibase_->view(section_offset, sect.sh_size).data();
cdc29364
CC
2299}
2300
2301// Return section flags.
2302
2303template<int size, bool big_endian>
2304uint64_t
6fa2a40b 2305Sized_relobj_incr<size, big_endian>::do_section_flags(unsigned int)
cdc29364
CC
2306{
2307 gold_unreachable();
2308}
2309
2310// Return section entsize.
2311
2312template<int size, bool big_endian>
2313uint64_t
6fa2a40b 2314Sized_relobj_incr<size, big_endian>::do_section_entsize(unsigned int)
cdc29364
CC
2315{
2316 gold_unreachable();
2317}
2318
2319// Return section address.
2320
2321template<int size, bool big_endian>
2322uint64_t
6fa2a40b 2323Sized_relobj_incr<size, big_endian>::do_section_address(unsigned int)
cdc29364
CC
2324{
2325 gold_unreachable();
2326}
2327
2328// Return section type.
2329
2330template<int size, bool big_endian>
2331unsigned int
6fa2a40b 2332Sized_relobj_incr<size, big_endian>::do_section_type(unsigned int)
cdc29364
CC
2333{
2334 gold_unreachable();
2335}
2336
2337// Return the section link field.
2338
2339template<int size, bool big_endian>
2340unsigned int
6fa2a40b 2341Sized_relobj_incr<size, big_endian>::do_section_link(unsigned int)
cdc29364
CC
2342{
2343 gold_unreachable();
2344}
2345
2346// Return the section link field.
2347
2348template<int size, bool big_endian>
2349unsigned int
6fa2a40b 2350Sized_relobj_incr<size, big_endian>::do_section_info(unsigned int)
cdc29364
CC
2351{
2352 gold_unreachable();
2353}
2354
2355// Return the section alignment.
2356
2357template<int size, bool big_endian>
2358uint64_t
6fa2a40b 2359Sized_relobj_incr<size, big_endian>::do_section_addralign(unsigned int)
cdc29364
CC
2360{
2361 gold_unreachable();
2362}
2363
2364// Return the Xindex structure to use.
2365
2366template<int size, bool big_endian>
2367Xindex*
6fa2a40b 2368Sized_relobj_incr<size, big_endian>::do_initialize_xindex()
cdc29364
CC
2369{
2370 gold_unreachable();
2371}
2372
2373// Get symbol counts.
2374
2375template<int size, bool big_endian>
2376void
6fa2a40b 2377Sized_relobj_incr<size, big_endian>::do_get_global_symbol_counts(
53bbcc1b
CC
2378 const Symbol_table*,
2379 size_t* defined,
2380 size_t* used) const
2381{
2382 *defined = this->defined_count_;
2383 size_t count = 0;
2384 for (typename Symbols::const_iterator p = this->symbols_.begin();
2385 p != this->symbols_.end();
2386 ++p)
2387 if (*p != NULL
2388 && (*p)->source() == Symbol::FROM_OBJECT
2389 && (*p)->object() == this
2390 && (*p)->is_defined())
2391 ++count;
2392 *used = count;
cdc29364
CC
2393}
2394
2395// Read the relocs.
2396
2397template<int size, bool big_endian>
2398void
6fa2a40b 2399Sized_relobj_incr<size, big_endian>::do_read_relocs(Read_relocs_data*)
cdc29364
CC
2400{
2401}
2402
2403// Process the relocs to find list of referenced sections. Used only
2404// during garbage collection.
2405
2406template<int size, bool big_endian>
2407void
6fa2a40b 2408Sized_relobj_incr<size, big_endian>::do_gc_process_relocs(Symbol_table*,
cdc29364
CC
2409 Layout*,
2410 Read_relocs_data*)
2411{
2412 gold_unreachable();
2413}
2414
2415// Scan the relocs and adjust the symbol table.
2416
2417template<int size, bool big_endian>
2418void
6fa2a40b 2419Sized_relobj_incr<size, big_endian>::do_scan_relocs(Symbol_table*,
cdc29364
CC
2420 Layout* layout,
2421 Read_relocs_data*)
2422{
2423 // Count the incremental relocations for this object.
2424 unsigned int nsyms = this->input_reader_.get_global_symbol_count();
2425 this->allocate_incremental_reloc_counts();
2426 for (unsigned int i = 0; i < nsyms; i++)
2427 {
2428 Incremental_global_symbol_reader<big_endian> sym =
2429 this->input_reader_.get_global_symbol_reader(i);
2430 unsigned int reloc_count = sym.reloc_count();
2431 if (reloc_count > 0 && this->incr_reloc_offset_ == -1U)
2432 this->incr_reloc_offset_ = sym.reloc_offset();
2433 this->incr_reloc_count_ += reloc_count;
2434 for (unsigned int j = 0; j < reloc_count; j++)
2435 this->count_incremental_reloc(i);
2436 }
2437 this->incr_reloc_output_index_ =
2438 layout->incremental_inputs()->get_reloc_count();
2439 this->finalize_incremental_relocs(layout, false);
2440
2441 // The incoming incremental relocations may not end up in the same
2442 // location after the incremental update, because the incremental info
2443 // is regenerated in each link. Because the new location may overlap
2444 // with other data in the updated output file, we need to copy the
2445 // relocations into a buffer so that we can still read them safely
2446 // after we start writing updates to the output file.
2447 if (this->incr_reloc_count_ > 0)
2448 {
2449 const Incremental_relocs_reader<size, big_endian>& relocs_reader =
2450 this->ibase_->relocs_reader();
2451 const unsigned int incr_reloc_size = relocs_reader.reloc_size;
2452 unsigned int len = this->incr_reloc_count_ * incr_reloc_size;
2453 this->incr_relocs_ = new unsigned char[len];
2454 memcpy(this->incr_relocs_,
2455 relocs_reader.data(this->incr_reloc_offset_),
2456 len);
2457 }
2458}
2459
2460// Count the local symbols.
2461
2462template<int size, bool big_endian>
2463void
6fa2a40b 2464Sized_relobj_incr<size, big_endian>::do_count_local_symbols(
f0f9babf 2465 Stringpool_template<char>* pool,
cdc29364
CC
2466 Stringpool_template<char>*)
2467{
f0f9babf
CC
2468 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
2469
2470 // Set the count of local symbols based on the incremental info.
2471 unsigned int nlocals = this->input_reader_.get_local_symbol_count();
2472 this->local_symbol_count_ = nlocals;
2473 this->local_symbols_.reserve(nlocals);
2474
2475 // Get views of the base file's symbol table and string table.
2476 Incremental_binary::View symtab_view(NULL);
2477 unsigned int symtab_count;
2478 elfcpp::Elf_strtab strtab(NULL, 0);
2479 this->ibase_->get_symtab_view(&symtab_view, &symtab_count, &strtab);
2480
2481 // Read the local symbols from the base file's symbol table.
2482 off_t off = this->input_reader_.get_local_symbol_offset();
2483 const unsigned char* symp = symtab_view.data() + off;
2484 for (unsigned int i = 0; i < nlocals; ++i, symp += sym_size)
2485 {
2486 elfcpp::Sym<size, big_endian> sym(symp);
2487 const char* name;
2488 if (!strtab.get_c_string(sym.get_st_name(), &name))
2489 name = "";
2490 gold_debug(DEBUG_INCREMENTAL, "Local symbol %d: %s", i, name);
2491 name = pool->add(name, true, NULL);
2492 this->local_symbols_.push_back(Local_symbol(name,
2493 sym.get_st_value(),
2494 sym.get_st_size(),
2495 sym.get_st_shndx(),
2496 sym.get_st_type(),
2497 false));
2498 }
cdc29364
CC
2499}
2500
2501// Finalize the local symbols.
2502
2503template<int size, bool big_endian>
2504unsigned int
6fa2a40b 2505Sized_relobj_incr<size, big_endian>::do_finalize_local_symbols(
cdc29364 2506 unsigned int index,
f0f9babf 2507 off_t off,
cdc29364
CC
2508 Symbol_table*)
2509{
f0f9babf
CC
2510 this->local_symbol_index_ = index;
2511 this->local_symbol_offset_ = off;
2512 return index + this->local_symbol_count_;
cdc29364
CC
2513}
2514
2515// Set the offset where local dynamic symbol information will be stored.
2516
2517template<int size, bool big_endian>
2518unsigned int
6fa2a40b 2519Sized_relobj_incr<size, big_endian>::do_set_local_dynsym_indexes(
cdc29364
CC
2520 unsigned int index)
2521{
2522 // FIXME: set local dynsym indexes.
2523 return index;
2524}
2525
2526// Set the offset where local dynamic symbol information will be stored.
2527
2528template<int size, bool big_endian>
2529unsigned int
6fa2a40b 2530Sized_relobj_incr<size, big_endian>::do_set_local_dynsym_offset(off_t)
cdc29364
CC
2531{
2532 return 0;
2533}
2534
2535// Relocate the input sections and write out the local symbols.
2536// We don't actually do any relocation here. For unchanged input files,
2537// we reapply relocations only for symbols that have changed; that happens
2538// in queue_final_tasks. We do need to rewrite the incremental relocations
2539// for this object.
2540
2541template<int size, bool big_endian>
2542void
6fa2a40b 2543Sized_relobj_incr<size, big_endian>::do_relocate(const Symbol_table*,
cdc29364
CC
2544 const Layout* layout,
2545 Output_file* of)
2546{
2547 if (this->incr_reloc_count_ == 0)
2548 return;
2549
2550 const unsigned int incr_reloc_size =
2551 Incremental_relocs_reader<size, big_endian>::reloc_size;
2552
2553 // Get a view for the .gnu_incremental_relocs section.
2554 Incremental_inputs* inputs = layout->incremental_inputs();
2555 gold_assert(inputs != NULL);
2556 const off_t relocs_off = inputs->relocs_section()->offset();
2557 const off_t relocs_size = inputs->relocs_section()->data_size();
2558 unsigned char* const view = of->get_output_view(relocs_off, relocs_size);
2559
2560 // Copy the relocations from the buffer.
2561 off_t off = this->incr_reloc_output_index_ * incr_reloc_size;
2562 unsigned int len = this->incr_reloc_count_ * incr_reloc_size;
2563 memcpy(view + off, this->incr_relocs_, len);
94a3fc8b
CC
2564
2565 // The output section table may have changed, so we need to map
2566 // the old section index to the new section index for each relocation.
2567 for (unsigned int i = 0; i < this->incr_reloc_count_; ++i)
2568 {
2569 unsigned char* pov = view + off + i * incr_reloc_size;
2570 unsigned int shndx = elfcpp::Swap<32, big_endian>::readval(pov + 4);
2571 Output_section* os = this->ibase_->output_section(shndx);
2572 gold_assert(os != NULL);
2573 shndx = os->out_shndx();
2574 elfcpp::Swap<32, big_endian>::writeval(pov + 4, shndx);
2575 }
2576
cdc29364 2577 of->write_output_view(off, len, view);
f0f9babf
CC
2578
2579 // Get views into the output file for the portions of the symbol table
2580 // and the dynamic symbol table that we will be writing.
2581 off_t symtab_off = layout->symtab_section()->offset();
2582 off_t output_size = this->local_symbol_count_ * This::sym_size;
2583 unsigned char* oview = NULL;
2584 if (output_size > 0)
2585 oview = of->get_output_view(symtab_off + this->local_symbol_offset_,
2586 output_size);
2587
2588 off_t dyn_output_size = this->output_local_dynsym_count_ * sym_size;
2589 unsigned char* dyn_oview = NULL;
2590 if (dyn_output_size > 0)
2591 dyn_oview = of->get_output_view(this->local_dynsym_offset_,
2592 dyn_output_size);
2593
2594 // Write the local symbols.
2595 unsigned char* ov = oview;
2596 unsigned char* dyn_ov = dyn_oview;
2597 const Stringpool* sympool = layout->sympool();
2598 const Stringpool* dynpool = layout->dynpool();
2599 Output_symtab_xindex* symtab_xindex = layout->symtab_xindex();
2600 Output_symtab_xindex* dynsym_xindex = layout->dynsym_xindex();
2601 for (unsigned int i = 0; i < this->local_symbol_count_; ++i)
2602 {
2603 Local_symbol& lsym(this->local_symbols_[i]);
2604
2605 bool is_ordinary;
2606 unsigned int st_shndx = this->adjust_sym_shndx(i, lsym.st_shndx,
2607 &is_ordinary);
2608 if (is_ordinary)
2609 {
2610 Output_section* os = this->ibase_->output_section(st_shndx);
2611 st_shndx = os->out_shndx();
2612 if (st_shndx >= elfcpp::SHN_LORESERVE)
2613 {
2614 symtab_xindex->add(this->local_symbol_index_ + i, st_shndx);
2615 if (lsym.needs_dynsym_entry)
2616 dynsym_xindex->add(lsym.output_dynsym_index, st_shndx);
2617 st_shndx = elfcpp::SHN_XINDEX;
2618 }
2619 }
2620
2621 // Write the symbol to the output symbol table.
2622 {
2623 elfcpp::Sym_write<size, big_endian> osym(ov);
2624 osym.put_st_name(sympool->get_offset(lsym.name));
2625 osym.put_st_value(lsym.st_value);
2626 osym.put_st_size(lsym.st_size);
2627 osym.put_st_info(elfcpp::STB_LOCAL,
2628 static_cast<elfcpp::STT>(lsym.st_type));
2629 osym.put_st_other(0);
2630 osym.put_st_shndx(st_shndx);
2631 ov += sym_size;
2632 }
2633
2634 // Write the symbol to the output dynamic symbol table.
2635 if (lsym.needs_dynsym_entry)
2636 {
2637 gold_assert(dyn_ov < dyn_oview + dyn_output_size);
2638 elfcpp::Sym_write<size, big_endian> osym(dyn_ov);
2639 osym.put_st_name(dynpool->get_offset(lsym.name));
2640 osym.put_st_value(lsym.st_value);
2641 osym.put_st_size(lsym.st_size);
2642 osym.put_st_info(elfcpp::STB_LOCAL,
2643 static_cast<elfcpp::STT>(lsym.st_type));
2644 osym.put_st_other(0);
2645 osym.put_st_shndx(st_shndx);
2646 dyn_ov += sym_size;
2647 }
2648 }
2649
2650 if (output_size > 0)
2651 {
2652 gold_assert(ov - oview == output_size);
2653 of->write_output_view(symtab_off + this->local_symbol_offset_,
2654 output_size, oview);
2655 }
2656
2657 if (dyn_output_size > 0)
2658 {
2659 gold_assert(dyn_ov - dyn_oview == dyn_output_size);
2660 of->write_output_view(this->local_dynsym_offset_, dyn_output_size,
2661 dyn_oview);
2662 }
cdc29364
CC
2663}
2664
2665// Set the offset of a section.
2666
2667template<int size, bool big_endian>
2668void
6fa2a40b 2669Sized_relobj_incr<size, big_endian>::do_set_section_offset(unsigned int,
cdc29364
CC
2670 uint64_t)
2671{
2672}
2673
2674// Class Sized_incr_dynobj. Most of these methods are not used for
2675// Incremental objects, but are required to be implemented by the
2676// base class Object.
2677
2678template<int size, bool big_endian>
2679Sized_incr_dynobj<size, big_endian>::Sized_incr_dynobj(
2680 const std::string& name,
2681 Sized_incremental_binary<size, big_endian>* ibase,
2682 unsigned int input_file_index)
2683 : Dynobj(name, NULL), ibase_(ibase),
2684 input_file_index_(input_file_index),
2685 input_reader_(ibase->inputs_reader().input_file(input_file_index)),
53bbcc1b 2686 symbols_(), defined_count_(0)
cdc29364
CC
2687{
2688 if (this->input_reader_.is_in_system_directory())
2689 this->set_is_in_system_directory();
0f1c85a6
CC
2690 if (this->input_reader_.as_needed())
2691 this->set_as_needed();
2692 this->set_soname_string(this->input_reader_.get_soname());
cdc29364
CC
2693 this->set_shnum(0);
2694}
2695
2696// Read the symbols.
2697
2698template<int size, bool big_endian>
2699void
2700Sized_incr_dynobj<size, big_endian>::do_read_symbols(Read_symbols_data*)
2701{
2702 gold_unreachable();
2703}
2704
2705// Lay out the input sections.
2706
2707template<int size, bool big_endian>
2708void
2709Sized_incr_dynobj<size, big_endian>::do_layout(
2710 Symbol_table*,
2711 Layout*,
2712 Read_symbols_data*)
2713{
2714}
2715
2716// Add the symbols to the symbol table.
2717
2718template<int size, bool big_endian>
2719void
2720Sized_incr_dynobj<size, big_endian>::do_add_symbols(
2721 Symbol_table* symtab,
2722 Read_symbols_data*,
2723 Layout*)
2724{
2725 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
2726 unsigned char symbuf[sym_size];
2727 elfcpp::Sym<size, big_endian> sym(symbuf);
2728 elfcpp::Sym_write<size, big_endian> osym(symbuf);
2729
2730 typedef typename elfcpp::Elf_types<size>::Elf_WXword Elf_size_type;
2731
2732 unsigned int nsyms = this->input_reader_.get_global_symbol_count();
2733 this->symbols_.resize(nsyms);
2734
2735 Incremental_binary::View symtab_view(NULL);
2736 unsigned int symtab_count;
2737 elfcpp::Elf_strtab strtab(NULL, 0);
2738 this->ibase_->get_symtab_view(&symtab_view, &symtab_count, &strtab);
2739
94a3fc8b
CC
2740 Incremental_symtab_reader<big_endian> isymtab(this->ibase_->symtab_reader());
2741 unsigned int isym_count = isymtab.symbol_count();
2742 unsigned int first_global = symtab_count - isym_count;
cdc29364 2743
26d3c67d
CC
2744 // We keep a set of symbols that we have generated COPY relocations
2745 // for, indexed by the symbol value. We do not need more than one
2746 // COPY relocation per address.
2747 typedef typename std::set<Address> Copied_symbols;
2748 Copied_symbols copied_symbols;
2749
f0f9babf 2750 const unsigned char* sym_p;
cdc29364
CC
2751 for (unsigned int i = 0; i < nsyms; ++i)
2752 {
2753 bool is_def;
26d3c67d 2754 bool is_copy;
cdc29364 2755 unsigned int output_symndx =
26d3c67d 2756 this->input_reader_.get_output_symbol_index(i, &is_def, &is_copy);
cdc29364
CC
2757 sym_p = symtab_view.data() + output_symndx * sym_size;
2758 elfcpp::Sym<size, big_endian> gsym(sym_p);
2759 const char* name;
2760 if (!strtab.get_c_string(gsym.get_st_name(), &name))
2761 name = "";
2762
26d3c67d 2763 Address v;
cdc29364
CC
2764 unsigned int shndx;
2765 elfcpp::STB st_bind = gsym.get_st_bind();
2766 elfcpp::STT st_type = gsym.get_st_type();
2767
2768 // Local hidden symbols start out as globals, but get converted to
2769 // to local during output.
2770 if (st_bind == elfcpp::STB_LOCAL)
2771 st_bind = elfcpp::STB_GLOBAL;
2772
2773 if (!is_def)
2774 {
2775 shndx = elfcpp::SHN_UNDEF;
2776 v = 0;
2777 }
2778 else
2779 {
2780 // For a symbol defined in a shared object, the section index
2781 // is meaningless, as long as it's not SHN_UNDEF.
2782 shndx = 1;
2783 v = gsym.get_st_value();
53bbcc1b 2784 ++this->defined_count_;
cdc29364
CC
2785 }
2786
2787 osym.put_st_name(0);
2788 osym.put_st_value(v);
2789 osym.put_st_size(gsym.get_st_size());
2790 osym.put_st_info(st_bind, st_type);
2791 osym.put_st_other(gsym.get_st_other());
2792 osym.put_st_shndx(shndx);
2793
26d3c67d
CC
2794 Sized_symbol<size>* res =
2795 symtab->add_from_incrobj<size, big_endian>(this, name, NULL, &sym);
2796 this->symbols_[i] = res;
94a3fc8b
CC
2797 this->ibase_->add_global_symbol(output_symndx - first_global,
2798 this->symbols_[i]);
26d3c67d
CC
2799
2800 if (is_copy)
2801 {
2802 std::pair<typename Copied_symbols::iterator, bool> ins =
2803 copied_symbols.insert(v);
2804 if (ins.second)
2805 {
2806 unsigned int shndx = gsym.get_st_shndx();
2807 Output_section* os = this->ibase_->output_section(shndx);
2808 off_t offset = v - os->address();
2809 this->ibase_->add_copy_reloc(this->symbols_[i], os, offset);
2810 }
2811 }
cdc29364
CC
2812 }
2813}
2814
2815// Return TRUE if we should include this object from an archive library.
2816
2817template<int size, bool big_endian>
2818Archive::Should_include
2819Sized_incr_dynobj<size, big_endian>::do_should_include_member(
2820 Symbol_table*,
2821 Layout*,
2822 Read_symbols_data*,
2823 std::string*)
2824{
2825 gold_unreachable();
2826}
2827
2828// Iterate over global symbols, calling a visitor class V for each.
2829
2830template<int size, bool big_endian>
2831void
2832Sized_incr_dynobj<size, big_endian>::do_for_all_global_symbols(
2833 Read_symbols_data*,
2834 Library_base::Symbol_visitor_base*)
2835{
2836 // This routine is not used for dynamic libraries.
2837}
2838
2839// Iterate over local symbols, calling a visitor class V for each GOT offset
2840// associated with a local symbol.
2841
2842template<int size, bool big_endian>
2843void
2844Sized_incr_dynobj<size, big_endian>::do_for_all_local_got_entries(
2845 Got_offset_list::Visitor*) const
2846{
cdc29364
CC
2847}
2848
2849// Get the size of a section.
2850
2851template<int size, bool big_endian>
2852uint64_t
2853Sized_incr_dynobj<size, big_endian>::do_section_size(unsigned int)
2854{
2855 gold_unreachable();
2856}
2857
2858// Get the name of a section.
2859
2860template<int size, bool big_endian>
2861std::string
2862Sized_incr_dynobj<size, big_endian>::do_section_name(unsigned int)
2863{
2864 gold_unreachable();
2865}
2866
2867// Return a view of the contents of a section.
2868
2869template<int size, bool big_endian>
c1027032
CC
2870const unsigned char*
2871Sized_incr_dynobj<size, big_endian>::do_section_contents(
2872 unsigned int,
2873 section_size_type*,
2874 bool)
cdc29364
CC
2875{
2876 gold_unreachable();
2877}
2878
2879// Return section flags.
2880
2881template<int size, bool big_endian>
2882uint64_t
2883Sized_incr_dynobj<size, big_endian>::do_section_flags(unsigned int)
2884{
2885 gold_unreachable();
2886}
2887
2888// Return section entsize.
2889
2890template<int size, bool big_endian>
2891uint64_t
2892Sized_incr_dynobj<size, big_endian>::do_section_entsize(unsigned int)
2893{
2894 gold_unreachable();
2895}
2896
2897// Return section address.
2898
2899template<int size, bool big_endian>
2900uint64_t
2901Sized_incr_dynobj<size, big_endian>::do_section_address(unsigned int)
2902{
2903 gold_unreachable();
2904}
2905
2906// Return section type.
2907
2908template<int size, bool big_endian>
2909unsigned int
2910Sized_incr_dynobj<size, big_endian>::do_section_type(unsigned int)
2911{
2912 gold_unreachable();
2913}
2914
2915// Return the section link field.
2916
2917template<int size, bool big_endian>
2918unsigned int
2919Sized_incr_dynobj<size, big_endian>::do_section_link(unsigned int)
2920{
2921 gold_unreachable();
2922}
2923
2924// Return the section link field.
2925
2926template<int size, bool big_endian>
2927unsigned int
2928Sized_incr_dynobj<size, big_endian>::do_section_info(unsigned int)
2929{
2930 gold_unreachable();
2931}
2932
2933// Return the section alignment.
2934
2935template<int size, bool big_endian>
2936uint64_t
2937Sized_incr_dynobj<size, big_endian>::do_section_addralign(unsigned int)
2938{
2939 gold_unreachable();
2940}
2941
2942// Return the Xindex structure to use.
2943
2944template<int size, bool big_endian>
2945Xindex*
2946Sized_incr_dynobj<size, big_endian>::do_initialize_xindex()
2947{
2948 gold_unreachable();
2949}
2950
2951// Get symbol counts.
2952
2953template<int size, bool big_endian>
2954void
2955Sized_incr_dynobj<size, big_endian>::do_get_global_symbol_counts(
53bbcc1b
CC
2956 const Symbol_table*,
2957 size_t* defined,
2958 size_t* used) const
2959{
2960 *defined = this->defined_count_;
2961 size_t count = 0;
2962 for (typename Symbols::const_iterator p = this->symbols_.begin();
2963 p != this->symbols_.end();
2964 ++p)
2965 if (*p != NULL
2966 && (*p)->source() == Symbol::FROM_OBJECT
2967 && (*p)->object() == this
2968 && (*p)->is_defined()
2969 && (*p)->dynsym_index() != -1U)
2970 ++count;
2971 *used = count;
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CC
2972}
2973
2974// Allocate an incremental object of the appropriate size and endianness.
2975
2976Object*
2977make_sized_incremental_object(
2978 Incremental_binary* ibase,
2979 unsigned int input_file_index,
2980 Incremental_input_type input_type,
2981 const Incremental_binary::Input_reader* input_reader)
2982{
2983 Object* obj = NULL;
2984 std::string name(input_reader->filename());
2985
2986 switch (parameters->size_and_endianness())
2987 {
2988#ifdef HAVE_TARGET_32_LITTLE
2989 case Parameters::TARGET_32_LITTLE:
2990 {
2991 Sized_incremental_binary<32, false>* sized_ibase =
2992 static_cast<Sized_incremental_binary<32, false>*>(ibase);
2993 if (input_type == INCREMENTAL_INPUT_SHARED_LIBRARY)
2994 obj = new Sized_incr_dynobj<32, false>(name, sized_ibase,
2995 input_file_index);
2996 else
6fa2a40b 2997 obj = new Sized_relobj_incr<32, false>(name, sized_ibase,
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CC
2998 input_file_index);
2999 }
3000 break;
3001#endif
3002#ifdef HAVE_TARGET_32_BIG
3003 case Parameters::TARGET_32_BIG:
3004 {
3005 Sized_incremental_binary<32, true>* sized_ibase =
3006 static_cast<Sized_incremental_binary<32, true>*>(ibase);
3007 if (input_type == INCREMENTAL_INPUT_SHARED_LIBRARY)
3008 obj = new Sized_incr_dynobj<32, true>(name, sized_ibase,
3009 input_file_index);
3010 else
6fa2a40b 3011 obj = new Sized_relobj_incr<32, true>(name, sized_ibase,
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CC
3012 input_file_index);
3013 }
3014 break;
3015#endif
3016#ifdef HAVE_TARGET_64_LITTLE
3017 case Parameters::TARGET_64_LITTLE:
3018 {
3019 Sized_incremental_binary<64, false>* sized_ibase =
3020 static_cast<Sized_incremental_binary<64, false>*>(ibase);
3021 if (input_type == INCREMENTAL_INPUT_SHARED_LIBRARY)
3022 obj = new Sized_incr_dynobj<64, false>(name, sized_ibase,
3023 input_file_index);
3024 else
6fa2a40b 3025 obj = new Sized_relobj_incr<64, false>(name, sized_ibase,
cdc29364
CC
3026 input_file_index);
3027 }
3028 break;
3029#endif
3030#ifdef HAVE_TARGET_64_BIG
3031 case Parameters::TARGET_64_BIG:
3032 {
3033 Sized_incremental_binary<64, true>* sized_ibase =
3034 static_cast<Sized_incremental_binary<64, true>*>(ibase);
3035 if (input_type == INCREMENTAL_INPUT_SHARED_LIBRARY)
3036 obj = new Sized_incr_dynobj<64, true>(name, sized_ibase,
3037 input_file_index);
3038 else
6fa2a40b 3039 obj = new Sized_relobj_incr<64, true>(name, sized_ibase,
cdc29364
CC
3040 input_file_index);
3041 }
3042 break;
3043#endif
3044 default:
3045 gold_unreachable();
3046 }
3047
3048 gold_assert(obj != NULL);
3049 return obj;
3050}
3051
3052// Copy the unused symbols from the incremental input info.
3053// We need to do this because we may be overwriting the incremental
3054// input info in the base file before we write the new incremental
3055// info.
3056void
3057Incremental_library::copy_unused_symbols()
3058{
3059 unsigned int symcount = this->input_reader_->get_unused_symbol_count();
3060 this->unused_symbols_.reserve(symcount);
3061 for (unsigned int i = 0; i < symcount; ++i)
3062 {
3063 std::string name(this->input_reader_->get_unused_symbol(i));
3064 this->unused_symbols_.push_back(name);
3065 }
3066}
3067
3068// Iterator for unused global symbols in the library.
3069void
3070Incremental_library::do_for_all_unused_symbols(Symbol_visitor_base* v) const
3071{
3072 for (Symbol_list::const_iterator p = this->unused_symbols_.begin();
3073 p != this->unused_symbols_.end();
3074 ++p)
3075 v->visit(p->c_str());
3076}
3077
c549a694
ILT
3078// Instantiate the templates we need.
3079
3080#ifdef HAVE_TARGET_32_LITTLE
3081template
3082class Sized_incremental_binary<32, false>;
cdc29364
CC
3083
3084template
6fa2a40b 3085class Sized_relobj_incr<32, false>;
cdc29364
CC
3086
3087template
3088class Sized_incr_dynobj<32, false>;
c549a694
ILT
3089#endif
3090
3091#ifdef HAVE_TARGET_32_BIG
3092template
3093class Sized_incremental_binary<32, true>;
cdc29364
CC
3094
3095template
6fa2a40b 3096class Sized_relobj_incr<32, true>;
cdc29364
CC
3097
3098template
3099class Sized_incr_dynobj<32, true>;
c549a694
ILT
3100#endif
3101
3102#ifdef HAVE_TARGET_64_LITTLE
3103template
3104class Sized_incremental_binary<64, false>;
cdc29364
CC
3105
3106template
6fa2a40b 3107class Sized_relobj_incr<64, false>;
cdc29364
CC
3108
3109template
3110class Sized_incr_dynobj<64, false>;
c549a694
ILT
3111#endif
3112
3113#ifdef HAVE_TARGET_64_BIG
3114template
3115class Sized_incremental_binary<64, true>;
cdc29364
CC
3116
3117template
6fa2a40b 3118class Sized_relobj_incr<64, true>;
cdc29364
CC
3119
3120template
3121class Sized_incr_dynobj<64, true>;
c549a694
ILT
3122#endif
3123
0e879927 3124} // End namespace gold.
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