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[deliverable/binutils-gdb.git] / gold / x86_64.cc
CommitLineData
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1// x86_64.cc -- x86_64 target support for gold.
2
0e804863 3// Copyright 2006, 2007, 2008, 2009, 2010, 2011, 2012, 2013
9dee3b3c 4// Free Software Foundation, Inc.
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5// Written by Ian Lance Taylor <iant@google.com>.
6
7// This file is part of gold.
8
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9// This program is free software; you can redistribute it and/or modify
10// it under the terms of the GNU General Public License as published by
11// the Free Software Foundation; either version 3 of the License, or
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12// (at your option) any later version.
13
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14// This program is distributed in the hope that it will be useful,
15// but WITHOUT ANY WARRANTY; without even the implied warranty of
16// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17// GNU General Public License for more details.
18
19// You should have received a copy of the GNU General Public License
20// along with this program; if not, write to the Free Software
21// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
22// MA 02110-1301, USA.
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23
24#include "gold.h"
25
26#include <cstring>
27
28#include "elfcpp.h"
07a60597 29#include "dwarf.h"
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30#include "parameters.h"
31#include "reloc.h"
32#include "x86_64.h"
33#include "object.h"
34#include "symtab.h"
35#include "layout.h"
36#include "output.h"
12c0daef 37#include "copy-relocs.h"
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38#include "target.h"
39#include "target-reloc.h"
40#include "target-select.h"
e041f13d 41#include "tls.h"
36959681 42#include "freebsd.h"
2e702c99 43#include "nacl.h"
f345227a 44#include "gc.h"
21bb3914 45#include "icf.h"
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46
47namespace
48{
49
50using namespace gold;
51
7223e9ca 52// A class to handle the PLT data.
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53// This is an abstract base class that handles most of the linker details
54// but does not know the actual contents of PLT entries. The derived
55// classes below fill in those details.
7223e9ca 56
fc51264f 57template<int size>
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58class Output_data_plt_x86_64 : public Output_section_data
59{
60 public:
fc51264f 61 typedef Output_data_reloc<elfcpp::SHT_RELA, true, size, false> Reloc_section;
7223e9ca 62
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63 Output_data_plt_x86_64(Layout* layout, uint64_t addralign,
64 Output_data_got<64, false>* got,
4829d394 65 Output_data_space* got_plt,
67181c72 66 Output_data_space* got_irelative)
2e702c99 67 : Output_section_data(addralign), layout_(layout), tlsdesc_rel_(NULL),
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68 irelative_rel_(NULL), got_(got), got_plt_(got_plt),
69 got_irelative_(got_irelative), count_(0), irelative_count_(0),
70 tlsdesc_got_offset_(-1U), free_list_()
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71 { this->init(layout); }
72
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73 Output_data_plt_x86_64(Layout* layout, uint64_t plt_entry_size,
74 Output_data_got<64, false>* got,
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75 Output_data_space* got_plt,
76 Output_data_space* got_irelative,
4829d394 77 unsigned int plt_count)
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78 : Output_section_data((plt_count + 1) * plt_entry_size,
79 plt_entry_size, false),
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80 layout_(layout), tlsdesc_rel_(NULL), irelative_rel_(NULL), got_(got),
81 got_plt_(got_plt), got_irelative_(got_irelative), count_(plt_count),
82 irelative_count_(0), tlsdesc_got_offset_(-1U), free_list_()
4829d394 83 {
67181c72 84 this->init(layout);
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85
86 // Initialize the free list and reserve the first entry.
87 this->free_list_.init((plt_count + 1) * plt_entry_size, false);
88 this->free_list_.remove(0, plt_entry_size);
89 }
90
91 // Initialize the PLT section.
92 void
67181c72 93 init(Layout* layout);
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94
95 // Add an entry to the PLT.
96 void
67181c72 97 add_entry(Symbol_table*, Layout*, Symbol* gsym);
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98
99 // Add an entry to the PLT for a local STT_GNU_IFUNC symbol.
100 unsigned int
67181c72 101 add_local_ifunc_entry(Symbol_table* symtab, Layout*,
fc51264f 102 Sized_relobj_file<size, false>* relobj,
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103 unsigned int local_sym_index);
104
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105 // Add the relocation for a PLT entry.
106 void
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107 add_relocation(Symbol_table*, Layout*, Symbol* gsym,
108 unsigned int got_offset);
4829d394 109
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110 // Add the reserved TLSDESC_PLT entry to the PLT.
111 void
112 reserve_tlsdesc_entry(unsigned int got_offset)
113 { this->tlsdesc_got_offset_ = got_offset; }
114
115 // Return true if a TLSDESC_PLT entry has been reserved.
116 bool
117 has_tlsdesc_entry() const
118 { return this->tlsdesc_got_offset_ != -1U; }
119
120 // Return the GOT offset for the reserved TLSDESC_PLT entry.
121 unsigned int
122 get_tlsdesc_got_offset() const
123 { return this->tlsdesc_got_offset_; }
124
125 // Return the offset of the reserved TLSDESC_PLT entry.
126 unsigned int
127 get_tlsdesc_plt_offset() const
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128 {
129 return ((this->count_ + this->irelative_count_ + 1)
130 * this->get_plt_entry_size());
131 }
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132
133 // Return the .rela.plt section data.
134 Reloc_section*
135 rela_plt()
136 { return this->rel_; }
137
138 // Return where the TLSDESC relocations should go.
139 Reloc_section*
140 rela_tlsdesc(Layout*);
141
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142 // Return where the IRELATIVE relocations should go in the PLT
143 // relocations.
144 Reloc_section*
145 rela_irelative(Symbol_table*, Layout*);
146
147 // Return whether we created a section for IRELATIVE relocations.
148 bool
149 has_irelative_section() const
150 { return this->irelative_rel_ != NULL; }
151
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152 // Return the number of PLT entries.
153 unsigned int
154 entry_count() const
67181c72 155 { return this->count_ + this->irelative_count_; }
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156
157 // Return the offset of the first non-reserved PLT entry.
2e702c99 158 unsigned int
7223e9ca 159 first_plt_entry_offset()
2e702c99 160 { return this->get_plt_entry_size(); }
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161
162 // Return the size of a PLT entry.
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163 unsigned int
164 get_plt_entry_size() const
165 { return this->do_get_plt_entry_size(); }
7223e9ca 166
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167 // Reserve a slot in the PLT for an existing symbol in an incremental update.
168 void
169 reserve_slot(unsigned int plt_index)
170 {
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171 this->free_list_.remove((plt_index + 1) * this->get_plt_entry_size(),
172 (plt_index + 2) * this->get_plt_entry_size());
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173 }
174
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175 // Return the PLT address to use for a global symbol.
176 uint64_t
177 address_for_global(const Symbol*);
178
179 // Return the PLT address to use for a local symbol.
180 uint64_t
181 address_for_local(const Relobj*, unsigned int symndx);
182
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183 // Add .eh_frame information for the PLT.
184 void
185 add_eh_frame(Layout* layout)
186 { this->do_add_eh_frame(layout); }
187
7223e9ca 188 protected:
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189 // Fill in the first PLT entry.
190 void
191 fill_first_plt_entry(unsigned char* pov,
192 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
193 typename elfcpp::Elf_types<size>::Elf_Addr plt_address)
194 { this->do_fill_first_plt_entry(pov, got_address, plt_address); }
195
196 // Fill in a normal PLT entry. Returns the offset into the entry that
197 // should be the initial GOT slot value.
198 unsigned int
199 fill_plt_entry(unsigned char* pov,
200 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
201 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
202 unsigned int got_offset,
203 unsigned int plt_offset,
204 unsigned int plt_index)
205 {
206 return this->do_fill_plt_entry(pov, got_address, plt_address,
207 got_offset, plt_offset, plt_index);
208 }
209
210 // Fill in the reserved TLSDESC PLT entry.
211 void
212 fill_tlsdesc_entry(unsigned char* pov,
213 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
214 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
215 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
216 unsigned int tlsdesc_got_offset,
217 unsigned int plt_offset)
218 {
219 this->do_fill_tlsdesc_entry(pov, got_address, plt_address, got_base,
220 tlsdesc_got_offset, plt_offset);
221 }
222
223 virtual unsigned int
224 do_get_plt_entry_size() const = 0;
225
226 virtual void
227 do_fill_first_plt_entry(unsigned char* pov,
228 typename elfcpp::Elf_types<size>::Elf_Addr got_addr,
229 typename elfcpp::Elf_types<size>::Elf_Addr plt_addr)
230 = 0;
231
232 virtual unsigned int
233 do_fill_plt_entry(unsigned char* pov,
234 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
235 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
236 unsigned int got_offset,
237 unsigned int plt_offset,
238 unsigned int plt_index) = 0;
239
240 virtual void
241 do_fill_tlsdesc_entry(unsigned char* pov,
242 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
243 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
244 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
245 unsigned int tlsdesc_got_offset,
246 unsigned int plt_offset) = 0;
247
248 virtual void
249 do_add_eh_frame(Layout* layout) = 0;
250
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251 void
252 do_adjust_output_section(Output_section* os);
253
254 // Write to a map file.
255 void
256 do_print_to_mapfile(Mapfile* mapfile) const
257 { mapfile->print_output_data(this, _("** PLT")); }
258
2e702c99 259 // The CIE of the .eh_frame unwind information for the PLT.
07a60597 260 static const int plt_eh_frame_cie_size = 16;
07a60597 261 static const unsigned char plt_eh_frame_cie[plt_eh_frame_cie_size];
7223e9ca 262
2e702c99 263 private:
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264 // Set the final size.
265 void
266 set_final_data_size();
267
268 // Write out the PLT data.
269 void
270 do_write(Output_file*);
271
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272 // A pointer to the Layout class, so that we can find the .dynamic
273 // section when we write out the GOT PLT section.
274 Layout* layout_;
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275 // The reloc section.
276 Reloc_section* rel_;
277 // The TLSDESC relocs, if necessary. These must follow the regular
278 // PLT relocs.
279 Reloc_section* tlsdesc_rel_;
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280 // The IRELATIVE relocs, if necessary. These must follow the
281 // regular PLT relocations and the TLSDESC relocations.
282 Reloc_section* irelative_rel_;
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283 // The .got section.
284 Output_data_got<64, false>* got_;
285 // The .got.plt section.
286 Output_data_space* got_plt_;
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287 // The part of the .got.plt section used for IRELATIVE relocs.
288 Output_data_space* got_irelative_;
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289 // The number of PLT entries.
290 unsigned int count_;
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291 // Number of PLT entries with R_X86_64_IRELATIVE relocs. These
292 // follow the regular PLT entries.
293 unsigned int irelative_count_;
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294 // Offset of the reserved TLSDESC_GOT entry when needed.
295 unsigned int tlsdesc_got_offset_;
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296 // List of available regions within the section, for incremental
297 // update links.
298 Free_list free_list_;
7223e9ca 299};
2e30d253 300
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301template<int size>
302class Output_data_plt_x86_64_standard : public Output_data_plt_x86_64<size>
303{
304 public:
305 Output_data_plt_x86_64_standard(Layout* layout,
306 Output_data_got<64, false>* got,
307 Output_data_space* got_plt,
308 Output_data_space* got_irelative)
309 : Output_data_plt_x86_64<size>(layout, plt_entry_size,
310 got, got_plt, got_irelative)
311 { }
312
313 Output_data_plt_x86_64_standard(Layout* layout,
314 Output_data_got<64, false>* got,
315 Output_data_space* got_plt,
316 Output_data_space* got_irelative,
317 unsigned int plt_count)
318 : Output_data_plt_x86_64<size>(layout, plt_entry_size,
319 got, got_plt, got_irelative,
320 plt_count)
321 { }
322
323 protected:
324 virtual unsigned int
325 do_get_plt_entry_size() const
326 { return plt_entry_size; }
327
328 virtual void
329 do_add_eh_frame(Layout* layout)
330 {
331 layout->add_eh_frame_for_plt(this,
332 this->plt_eh_frame_cie,
333 this->plt_eh_frame_cie_size,
334 plt_eh_frame_fde,
335 plt_eh_frame_fde_size);
336 }
337
338 virtual void
339 do_fill_first_plt_entry(unsigned char* pov,
340 typename elfcpp::Elf_types<size>::Elf_Addr got_addr,
341 typename elfcpp::Elf_types<size>::Elf_Addr plt_addr);
342
343 virtual unsigned int
344 do_fill_plt_entry(unsigned char* pov,
345 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
346 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
347 unsigned int got_offset,
348 unsigned int plt_offset,
349 unsigned int plt_index);
350
351 virtual void
352 do_fill_tlsdesc_entry(unsigned char* pov,
353 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
354 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
355 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
356 unsigned int tlsdesc_got_offset,
357 unsigned int plt_offset);
358
359 private:
360 // The size of an entry in the PLT.
361 static const int plt_entry_size = 16;
362
363 // The first entry in the PLT.
364 // From the AMD64 ABI: "Unlike Intel386 ABI, this ABI uses the same
365 // procedure linkage table for both programs and shared objects."
366 static const unsigned char first_plt_entry[plt_entry_size];
367
368 // Other entries in the PLT for an executable.
369 static const unsigned char plt_entry[plt_entry_size];
370
371 // The reserved TLSDESC entry in the PLT for an executable.
372 static const unsigned char tlsdesc_plt_entry[plt_entry_size];
373
374 // The .eh_frame unwind information for the PLT.
375 static const int plt_eh_frame_fde_size = 32;
376 static const unsigned char plt_eh_frame_fde[plt_eh_frame_fde_size];
377};
378
2e30d253 379// The x86_64 target class.
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380// See the ABI at
381// http://www.x86-64.org/documentation/abi.pdf
382// TLS info comes from
383// http://people.redhat.com/drepper/tls.pdf
0ffd9845 384// http://www.lsd.ic.unicamp.br/~oliva/writeups/TLS/RFC-TLSDESC-x86.txt
2e30d253 385
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386template<int size>
387class Target_x86_64 : public Sized_target<size, false>
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388{
389 public:
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390 // In the x86_64 ABI (p 68), it says "The AMD64 ABI architectures
391 // uses only Elf64_Rela relocation entries with explicit addends."
fc51264f 392 typedef Output_data_reloc<elfcpp::SHT_RELA, true, size, false> Reloc_section;
2e30d253 393
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394 Target_x86_64(const Target::Target_info* info = &x86_64_info)
395 : Sized_target<size, false>(info),
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396 got_(NULL), plt_(NULL), got_plt_(NULL), got_irelative_(NULL),
397 got_tlsdesc_(NULL), global_offset_table_(NULL), rela_dyn_(NULL),
398 rela_irelative_(NULL), copy_relocs_(elfcpp::R_X86_64_COPY),
43819297 399 got_mod_index_offset_(-1U), tlsdesc_reloc_info_(),
e291e7b9 400 tls_base_symbol_defined_(false)
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401 { }
402
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403 // Hook for a new output section.
404 void
405 do_new_output_section(Output_section*) const;
406
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407 // Scan the relocations to look for symbol adjustments.
408 void
ad0f2072 409 gc_process_relocs(Symbol_table* symtab,
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410 Layout* layout,
411 Sized_relobj_file<size, false>* object,
412 unsigned int data_shndx,
413 unsigned int sh_type,
414 const unsigned char* prelocs,
415 size_t reloc_count,
416 Output_section* output_section,
417 bool needs_special_offset_handling,
418 size_t local_symbol_count,
419 const unsigned char* plocal_symbols);
6d03d481 420
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421 // Scan the relocations to look for symbol adjustments.
422 void
ad0f2072 423 scan_relocs(Symbol_table* symtab,
2e30d253 424 Layout* layout,
fc51264f 425 Sized_relobj_file<size, false>* object,
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426 unsigned int data_shndx,
427 unsigned int sh_type,
428 const unsigned char* prelocs,
429 size_t reloc_count,
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430 Output_section* output_section,
431 bool needs_special_offset_handling,
2e30d253 432 size_t local_symbol_count,
730cdc88 433 const unsigned char* plocal_symbols);
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434
435 // Finalize the sections.
436 void
f59f41f3 437 do_finalize_sections(Layout*, const Input_objects*, Symbol_table*);
2e30d253 438
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439 // Return the value to use for a dynamic which requires special
440 // treatment.
441 uint64_t
442 do_dynsym_value(const Symbol*) const;
443
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444 // Relocate a section.
445 void
fc51264f 446 relocate_section(const Relocate_info<size, false>*,
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447 unsigned int sh_type,
448 const unsigned char* prelocs,
449 size_t reloc_count,
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450 Output_section* output_section,
451 bool needs_special_offset_handling,
2e30d253 452 unsigned char* view,
fc51264f 453 typename elfcpp::Elf_types<size>::Elf_Addr view_address,
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454 section_size_type view_size,
455 const Reloc_symbol_changes*);
2e30d253 456
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457 // Scan the relocs during a relocatable link.
458 void
ad0f2072 459 scan_relocatable_relocs(Symbol_table* symtab,
6a74a719 460 Layout* layout,
fc51264f 461 Sized_relobj_file<size, false>* object,
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462 unsigned int data_shndx,
463 unsigned int sh_type,
464 const unsigned char* prelocs,
465 size_t reloc_count,
466 Output_section* output_section,
467 bool needs_special_offset_handling,
468 size_t local_symbol_count,
469 const unsigned char* plocal_symbols,
470 Relocatable_relocs*);
471
7404fe1b 472 // Emit relocations for a section.
6a74a719 473 void
7404fe1b 474 relocate_relocs(
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475 const Relocate_info<size, false>*,
476 unsigned int sh_type,
477 const unsigned char* prelocs,
478 size_t reloc_count,
479 Output_section* output_section,
62fe925a 480 typename elfcpp::Elf_types<size>::Elf_Off offset_in_output_section,
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481 const Relocatable_relocs*,
482 unsigned char* view,
483 typename elfcpp::Elf_types<size>::Elf_Addr view_address,
484 section_size_type view_size,
485 unsigned char* reloc_view,
486 section_size_type reloc_view_size);
6a74a719 487
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488 // Return a string used to fill a code section with nops.
489 std::string
8851ecca 490 do_code_fill(section_size_type length) const;
2e30d253 491
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492 // Return whether SYM is defined by the ABI.
493 bool
9c2d0ef9 494 do_is_defined_by_abi(const Symbol* sym) const
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495 { return strcmp(sym->name(), "__tls_get_addr") == 0; }
496
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497 // Return the symbol index to use for a target specific relocation.
498 // The only target specific relocation is R_X86_64_TLSDESC for a
499 // local symbol, which is an absolute reloc.
500 unsigned int
501 do_reloc_symbol_index(void*, unsigned int r_type) const
502 {
503 gold_assert(r_type == elfcpp::R_X86_64_TLSDESC);
504 return 0;
505 }
506
507 // Return the addend to use for a target specific relocation.
508 uint64_t
509 do_reloc_addend(void* arg, unsigned int r_type, uint64_t addend) const;
510
7223e9ca 511 // Return the PLT section.
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512 uint64_t
513 do_plt_address_for_global(const Symbol* gsym) const
514 { return this->plt_section()->address_for_global(gsym); }
7223e9ca 515
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516 uint64_t
517 do_plt_address_for_local(const Relobj* relobj, unsigned int symndx) const
518 { return this->plt_section()->address_for_local(relobj, symndx); }
7223e9ca 519
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520 // This function should be defined in targets that can use relocation
521 // types to determine (implemented in local_reloc_may_be_function_pointer
522 // and global_reloc_may_be_function_pointer)
523 // if a function's pointer is taken. ICF uses this in safe mode to only
524 // fold those functions whose pointer is defintely not taken. For x86_64
525 // pie binaries, safe ICF cannot be done by looking at relocation types.
526 bool
527 do_can_check_for_function_pointers() const
528 { return !parameters->options().pie(); }
529
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530 // Return the base for a DW_EH_PE_datarel encoding.
531 uint64_t
532 do_ehframe_datarel_base() const;
533
9b547ce6 534 // Adjust -fsplit-stack code which calls non-split-stack code.
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535 void
536 do_calls_non_split(Relobj* object, unsigned int shndx,
537 section_offset_type fnoffset, section_size_type fnsize,
538 unsigned char* view, section_size_type view_size,
539 std::string* from, std::string* to) const;
540
96f2030e 541 // Return the size of the GOT section.
fe8718a4 542 section_size_type
0e70b911 543 got_size() const
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544 {
545 gold_assert(this->got_ != NULL);
546 return this->got_->data_size();
547 }
548
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549 // Return the number of entries in the GOT.
550 unsigned int
551 got_entry_count() const
552 {
553 if (this->got_ == NULL)
554 return 0;
555 return this->got_size() / 8;
556 }
557
558 // Return the number of entries in the PLT.
559 unsigned int
560 plt_entry_count() const;
561
562 // Return the offset of the first non-reserved PLT entry.
563 unsigned int
564 first_plt_entry_offset() const;
565
566 // Return the size of each PLT entry.
567 unsigned int
568 plt_entry_size() const;
569
4829d394 570 // Create the GOT section for an incremental update.
dd74ae06 571 Output_data_got_base*
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572 init_got_plt_for_update(Symbol_table* symtab,
573 Layout* layout,
574 unsigned int got_count,
575 unsigned int plt_count);
576
6fa2a40b
CC
577 // Reserve a GOT entry for a local symbol, and regenerate any
578 // necessary dynamic relocations.
579 void
580 reserve_local_got_entry(unsigned int got_index,
2e702c99 581 Sized_relobj<size, false>* obj,
6fa2a40b
CC
582 unsigned int r_sym,
583 unsigned int got_type);
584
585 // Reserve a GOT entry for a global symbol, and regenerate any
586 // necessary dynamic relocations.
587 void
588 reserve_global_got_entry(unsigned int got_index, Symbol* gsym,
589 unsigned int got_type);
590
4829d394 591 // Register an existing PLT entry for a global symbol.
4829d394 592 void
67181c72
ILT
593 register_global_plt_entry(Symbol_table*, Layout*, unsigned int plt_index,
594 Symbol* gsym);
4829d394 595
26d3c67d
CC
596 // Force a COPY relocation for a given symbol.
597 void
598 emit_copy_reloc(Symbol_table*, Symbol*, Output_section*, off_t);
599
94a3fc8b
CC
600 // Apply an incremental relocation.
601 void
fc51264f
L
602 apply_relocation(const Relocate_info<size, false>* relinfo,
603 typename elfcpp::Elf_types<size>::Elf_Addr r_offset,
94a3fc8b 604 unsigned int r_type,
fc51264f 605 typename elfcpp::Elf_types<size>::Elf_Swxword r_addend,
94a3fc8b
CC
606 const Symbol* gsym,
607 unsigned char* view,
fc51264f 608 typename elfcpp::Elf_types<size>::Elf_Addr address,
94a3fc8b
CC
609 section_size_type view_size);
610
e291e7b9
ILT
611 // Add a new reloc argument, returning the index in the vector.
612 size_t
fc51264f 613 add_tlsdesc_info(Sized_relobj_file<size, false>* object, unsigned int r_sym)
e291e7b9
ILT
614 {
615 this->tlsdesc_reloc_info_.push_back(Tlsdesc_info(object, r_sym));
616 return this->tlsdesc_reloc_info_.size() - 1;
617 }
618
2e702c99
RM
619 Output_data_plt_x86_64<size>*
620 make_data_plt(Layout* layout,
621 Output_data_got<64, false>* got,
622 Output_data_space* got_plt,
623 Output_data_space* got_irelative)
624 {
625 return this->do_make_data_plt(layout, got, got_plt, got_irelative);
626 }
627
628 Output_data_plt_x86_64<size>*
629 make_data_plt(Layout* layout,
630 Output_data_got<64, false>* got,
631 Output_data_space* got_plt,
632 Output_data_space* got_irelative,
633 unsigned int plt_count)
634 {
635 return this->do_make_data_plt(layout, got, got_plt, got_irelative,
636 plt_count);
637 }
638
639 virtual Output_data_plt_x86_64<size>*
640 do_make_data_plt(Layout* layout,
641 Output_data_got<64, false>* got,
642 Output_data_space* got_plt,
643 Output_data_space* got_irelative)
644 {
645 return new Output_data_plt_x86_64_standard<size>(layout, got, got_plt,
646 got_irelative);
647 }
648
649 virtual Output_data_plt_x86_64<size>*
650 do_make_data_plt(Layout* layout,
651 Output_data_got<64, false>* got,
652 Output_data_space* got_plt,
653 Output_data_space* got_irelative,
654 unsigned int plt_count)
655 {
656 return new Output_data_plt_x86_64_standard<size>(layout, got, got_plt,
657 got_irelative,
658 plt_count);
659 }
660
2e30d253
ILT
661 private:
662 // The class which scans relocations.
a036edd8 663 class Scan
2e30d253 664 {
a036edd8
ILT
665 public:
666 Scan()
667 : issued_non_pic_error_(false)
668 { }
669
95a2c8d6
RS
670 static inline int
671 get_reference_flags(unsigned int r_type);
672
2e30d253 673 inline void
ad0f2072 674 local(Symbol_table* symtab, Layout* layout, Target_x86_64* target,
fc51264f 675 Sized_relobj_file<size, false>* object,
2e30d253 676 unsigned int data_shndx,
07f397ab 677 Output_section* output_section,
fc51264f 678 const elfcpp::Rela<size, false>& reloc, unsigned int r_type,
bfdfa4cd
AM
679 const elfcpp::Sym<size, false>& lsym,
680 bool is_discarded);
2e30d253
ILT
681
682 inline void
ad0f2072 683 global(Symbol_table* symtab, Layout* layout, Target_x86_64* target,
fc51264f 684 Sized_relobj_file<size, false>* object,
2e30d253 685 unsigned int data_shndx,
07f397ab 686 Output_section* output_section,
fc51264f 687 const elfcpp::Rela<size, false>& reloc, unsigned int r_type,
2e30d253 688 Symbol* gsym);
e041f13d 689
21bb3914
ST
690 inline bool
691 local_reloc_may_be_function_pointer(Symbol_table* symtab, Layout* layout,
692 Target_x86_64* target,
2e702c99
RM
693 Sized_relobj_file<size, false>* object,
694 unsigned int data_shndx,
695 Output_section* output_section,
696 const elfcpp::Rela<size, false>& reloc,
21bb3914 697 unsigned int r_type,
2e702c99 698 const elfcpp::Sym<size, false>& lsym);
21bb3914
ST
699
700 inline bool
701 global_reloc_may_be_function_pointer(Symbol_table* symtab, Layout* layout,
2e702c99
RM
702 Target_x86_64* target,
703 Sized_relobj_file<size, false>* object,
704 unsigned int data_shndx,
705 Output_section* output_section,
706 const elfcpp::Rela<size, false>& reloc,
21bb3914 707 unsigned int r_type,
2e702c99 708 Symbol* gsym);
21bb3914 709
a036edd8 710 private:
e041f13d 711 static void
fc51264f
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712 unsupported_reloc_local(Sized_relobj_file<size, false>*,
713 unsigned int r_type);
e041f13d
ILT
714
715 static void
fc51264f
L
716 unsupported_reloc_global(Sized_relobj_file<size, false>*,
717 unsigned int r_type, Symbol*);
a036edd8
ILT
718
719 void
a29b0dad 720 check_non_pic(Relobj*, unsigned int r_type, Symbol*);
a036edd8 721
21bb3914
ST
722 inline bool
723 possible_function_pointer_reloc(unsigned int r_type);
724
7223e9ca 725 bool
fc51264f 726 reloc_needs_plt_for_ifunc(Sized_relobj_file<size, false>*,
6fa2a40b 727 unsigned int r_type);
7223e9ca 728
a036edd8
ILT
729 // Whether we have issued an error about a non-PIC compilation.
730 bool issued_non_pic_error_;
2e30d253
ILT
731 };
732
733 // The class which implements relocation.
734 class Relocate
735 {
736 public:
737 Relocate()
36171d64 738 : skip_call_tls_get_addr_(false)
2e30d253
ILT
739 { }
740
741 ~Relocate()
742 {
743 if (this->skip_call_tls_get_addr_)
744 {
745 // FIXME: This needs to specify the location somehow.
a0c4fb0a 746 gold_error(_("missing expected TLS relocation"));
2e30d253
ILT
747 }
748 }
749
750 // Do a relocation. Return false if the caller should not issue
751 // any warnings about this relocation.
752 inline bool
fc51264f
L
753 relocate(const Relocate_info<size, false>*, Target_x86_64*,
754 Output_section*,
755 size_t relnum, const elfcpp::Rela<size, false>&,
756 unsigned int r_type, const Sized_symbol<size>*,
757 const Symbol_value<size>*,
758 unsigned char*, typename elfcpp::Elf_types<size>::Elf_Addr,
fe8718a4 759 section_size_type);
2e30d253
ILT
760
761 private:
762 // Do a TLS relocation.
763 inline void
fc51264f 764 relocate_tls(const Relocate_info<size, false>*, Target_x86_64*,
2e702c99 765 size_t relnum, const elfcpp::Rela<size, false>&,
fc51264f
L
766 unsigned int r_type, const Sized_symbol<size>*,
767 const Symbol_value<size>*,
768 unsigned char*, typename elfcpp::Elf_types<size>::Elf_Addr,
fe8718a4 769 section_size_type);
2e30d253 770
c2b45e22 771 // Do a TLS General-Dynamic to Initial-Exec transition.
7bf1f802 772 inline void
fc51264f 773 tls_gd_to_ie(const Relocate_info<size, false>*, size_t relnum,
7bf1f802 774 Output_segment* tls_segment,
fc51264f
L
775 const elfcpp::Rela<size, false>&, unsigned int r_type,
776 typename elfcpp::Elf_types<size>::Elf_Addr value,
7bf1f802 777 unsigned char* view,
fc51264f 778 typename elfcpp::Elf_types<size>::Elf_Addr,
fe8718a4 779 section_size_type view_size);
7bf1f802 780
56622147
ILT
781 // Do a TLS General-Dynamic to Local-Exec transition.
782 inline void
fc51264f 783 tls_gd_to_le(const Relocate_info<size, false>*, size_t relnum,
2e30d253 784 Output_segment* tls_segment,
fc51264f
L
785 const elfcpp::Rela<size, false>&, unsigned int r_type,
786 typename elfcpp::Elf_types<size>::Elf_Addr value,
2e30d253 787 unsigned char* view,
fe8718a4 788 section_size_type view_size);
2e30d253 789
c2b45e22
CC
790 // Do a TLSDESC-style General-Dynamic to Initial-Exec transition.
791 inline void
fc51264f 792 tls_desc_gd_to_ie(const Relocate_info<size, false>*, size_t relnum,
c2b45e22 793 Output_segment* tls_segment,
fc51264f
L
794 const elfcpp::Rela<size, false>&, unsigned int r_type,
795 typename elfcpp::Elf_types<size>::Elf_Addr value,
c2b45e22 796 unsigned char* view,
fc51264f 797 typename elfcpp::Elf_types<size>::Elf_Addr,
c2b45e22
CC
798 section_size_type view_size);
799
800 // Do a TLSDESC-style General-Dynamic to Local-Exec transition.
801 inline void
fc51264f 802 tls_desc_gd_to_le(const Relocate_info<size, false>*, size_t relnum,
c2b45e22 803 Output_segment* tls_segment,
fc51264f
L
804 const elfcpp::Rela<size, false>&, unsigned int r_type,
805 typename elfcpp::Elf_types<size>::Elf_Addr value,
c2b45e22
CC
806 unsigned char* view,
807 section_size_type view_size);
808
56622147 809 // Do a TLS Local-Dynamic to Local-Exec transition.
2e30d253 810 inline void
fc51264f 811 tls_ld_to_le(const Relocate_info<size, false>*, size_t relnum,
2e30d253 812 Output_segment* tls_segment,
fc51264f
L
813 const elfcpp::Rela<size, false>&, unsigned int r_type,
814 typename elfcpp::Elf_types<size>::Elf_Addr value,
2e30d253 815 unsigned char* view,
fe8718a4 816 section_size_type view_size);
2e30d253 817
56622147
ILT
818 // Do a TLS Initial-Exec to Local-Exec transition.
819 static inline void
fc51264f 820 tls_ie_to_le(const Relocate_info<size, false>*, size_t relnum,
72ec2876 821 Output_segment* tls_segment,
fc51264f
L
822 const elfcpp::Rela<size, false>&, unsigned int r_type,
823 typename elfcpp::Elf_types<size>::Elf_Addr value,
72ec2876 824 unsigned char* view,
fe8718a4 825 section_size_type view_size);
2e30d253
ILT
826
827 // This is set if we should skip the next reloc, which should be a
828 // PLT32 reloc against ___tls_get_addr.
829 bool skip_call_tls_get_addr_;
830 };
831
6a74a719
ILT
832 // A class which returns the size required for a relocation type,
833 // used while scanning relocs during a relocatable link.
834 class Relocatable_size_for_reloc
835 {
836 public:
837 unsigned int
838 get_size_for_reloc(unsigned int, Relobj*);
839 };
840
2e30d253
ILT
841 // Adjust TLS relocation type based on the options and whether this
842 // is a local symbol.
e041f13d 843 static tls::Tls_optimization
2e30d253
ILT
844 optimize_tls_reloc(bool is_final, int r_type);
845
846 // Get the GOT section, creating it if necessary.
847 Output_data_got<64, false>*
848 got_section(Symbol_table*, Layout*);
849
96f2030e
ILT
850 // Get the GOT PLT section.
851 Output_data_space*
852 got_plt_section() const
853 {
854 gold_assert(this->got_plt_ != NULL);
855 return this->got_plt_;
856 }
857
a8df5856
ILT
858 // Get the GOT section for TLSDESC entries.
859 Output_data_got<64, false>*
860 got_tlsdesc_section() const
861 {
862 gold_assert(this->got_tlsdesc_ != NULL);
863 return this->got_tlsdesc_;
864 }
865
c2b45e22
CC
866 // Create the PLT section.
867 void
868 make_plt_section(Symbol_table* symtab, Layout* layout);
869
2e30d253
ILT
870 // Create a PLT entry for a global symbol.
871 void
872 make_plt_entry(Symbol_table*, Layout*, Symbol*);
873
7223e9ca
ILT
874 // Create a PLT entry for a local STT_GNU_IFUNC symbol.
875 void
876 make_local_ifunc_plt_entry(Symbol_table*, Layout*,
fc51264f 877 Sized_relobj_file<size, false>* relobj,
7223e9ca
ILT
878 unsigned int local_sym_index);
879
9fa33bee 880 // Define the _TLS_MODULE_BASE_ symbol in the TLS segment.
edfbb029
CC
881 void
882 define_tls_base_symbol(Symbol_table*, Layout*);
883
c2b45e22
CC
884 // Create the reserved PLT and GOT entries for the TLS descriptor resolver.
885 void
886 reserve_tlsdesc_entries(Symbol_table* symtab, Layout* layout);
887
31d60480
ILT
888 // Create a GOT entry for the TLS module index.
889 unsigned int
890 got_mod_index_entry(Symbol_table* symtab, Layout* layout,
fc51264f 891 Sized_relobj_file<size, false>* object);
31d60480 892
2e30d253 893 // Get the PLT section.
fc51264f 894 Output_data_plt_x86_64<size>*
2e30d253
ILT
895 plt_section() const
896 {
897 gold_assert(this->plt_ != NULL);
898 return this->plt_;
899 }
900
901 // Get the dynamic reloc section, creating it if necessary.
902 Reloc_section*
0ffd9845 903 rela_dyn_section(Layout*);
2e30d253 904
e291e7b9
ILT
905 // Get the section to use for TLSDESC relocations.
906 Reloc_section*
907 rela_tlsdesc_section(Layout*) const;
908
67181c72
ILT
909 // Get the section to use for IRELATIVE relocations.
910 Reloc_section*
911 rela_irelative_section(Layout*);
912
12c0daef 913 // Add a potential copy relocation.
2e30d253 914 void
ef9beddf 915 copy_reloc(Symbol_table* symtab, Layout* layout,
2e702c99 916 Sized_relobj_file<size, false>* object,
12c0daef 917 unsigned int shndx, Output_section* output_section,
fc51264f 918 Symbol* sym, const elfcpp::Rela<size, false>& reloc)
12c0daef
ILT
919 {
920 this->copy_relocs_.copy_reloc(symtab, layout,
fc51264f 921 symtab->get_sized_symbol<size>(sym),
12c0daef
ILT
922 object, shndx, output_section,
923 reloc, this->rela_dyn_section(layout));
924 }
2e30d253
ILT
925
926 // Information about this specific target which we pass to the
927 // general Target structure.
928 static const Target::Target_info x86_64_info;
929
0e70b911
CC
930 // The types of GOT entries needed for this platform.
931 // These values are exposed to the ABI in an incremental link.
932 // Do not renumber existing values without changing the version
933 // number of the .gnu_incremental_inputs section.
0a65a3a7
CC
934 enum Got_type
935 {
936 GOT_TYPE_STANDARD = 0, // GOT entry for a regular symbol
937 GOT_TYPE_TLS_OFFSET = 1, // GOT entry for TLS offset
938 GOT_TYPE_TLS_PAIR = 2, // GOT entry for TLS module/offset pair
939 GOT_TYPE_TLS_DESC = 3 // GOT entry for TLS_DESC pair
940 };
941
e291e7b9
ILT
942 // This type is used as the argument to the target specific
943 // relocation routines. The only target specific reloc is
944 // R_X86_64_TLSDESC against a local symbol.
945 struct Tlsdesc_info
946 {
fc51264f 947 Tlsdesc_info(Sized_relobj_file<size, false>* a_object, unsigned int a_r_sym)
e291e7b9
ILT
948 : object(a_object), r_sym(a_r_sym)
949 { }
950
951 // The object in which the local symbol is defined.
fc51264f 952 Sized_relobj_file<size, false>* object;
e291e7b9
ILT
953 // The local symbol index in the object.
954 unsigned int r_sym;
955 };
956
2e30d253
ILT
957 // The GOT section.
958 Output_data_got<64, false>* got_;
959 // The PLT section.
fc51264f 960 Output_data_plt_x86_64<size>* plt_;
2e30d253
ILT
961 // The GOT PLT section.
962 Output_data_space* got_plt_;
67181c72
ILT
963 // The GOT section for IRELATIVE relocations.
964 Output_data_space* got_irelative_;
a8df5856
ILT
965 // The GOT section for TLSDESC relocations.
966 Output_data_got<64, false>* got_tlsdesc_;
e785ec03
ILT
967 // The _GLOBAL_OFFSET_TABLE_ symbol.
968 Symbol* global_offset_table_;
2e30d253 969 // The dynamic reloc section.
0ffd9845 970 Reloc_section* rela_dyn_;
67181c72
ILT
971 // The section to use for IRELATIVE relocs.
972 Reloc_section* rela_irelative_;
2e30d253 973 // Relocs saved to avoid a COPY reloc.
fc51264f 974 Copy_relocs<elfcpp::SHT_RELA, size, false> copy_relocs_;
c2b45e22 975 // Offset of the GOT entry for the TLS module index.
31d60480 976 unsigned int got_mod_index_offset_;
e291e7b9
ILT
977 // We handle R_X86_64_TLSDESC against a local symbol as a target
978 // specific relocation. Here we store the object and local symbol
979 // index for the relocation.
980 std::vector<Tlsdesc_info> tlsdesc_reloc_info_;
edfbb029
CC
981 // True if the _TLS_MODULE_BASE_ symbol has been defined.
982 bool tls_base_symbol_defined_;
2e30d253
ILT
983};
984
fc51264f
L
985template<>
986const Target::Target_info Target_x86_64<64>::x86_64_info =
2e30d253
ILT
987{
988 64, // size
989 false, // is_big_endian
990 elfcpp::EM_X86_64, // machine_code
991 false, // has_make_symbol
992 false, // has_resolve
993 true, // has_code_fill
35cdfc9a 994 true, // is_default_stack_executable
b3ce541e 995 true, // can_icf_inline_merge_sections
0864d551 996 '\0', // wrap_char
2e30d253 997 "/lib/ld64.so.1", // program interpreter
0c5e9c22 998 0x400000, // default_text_segment_address
cd72c291 999 0x1000, // abi_pagesize (overridable by -z max-page-size)
8a5e3e08 1000 0x1000, // common_pagesize (overridable by -z common-page-size)
2e702c99
RM
1001 false, // isolate_execinstr
1002 0, // rosegment_gap
8a5e3e08
ILT
1003 elfcpp::SHN_UNDEF, // small_common_shndx
1004 elfcpp::SHN_X86_64_LCOMMON, // large_common_shndx
1005 0, // small_common_section_flags
05a352e6
DK
1006 elfcpp::SHF_X86_64_LARGE, // large_common_section_flags
1007 NULL, // attributes_section
a67858e0
CC
1008 NULL, // attributes_vendor
1009 "_start" // entry_symbol_name
2e30d253
ILT
1010};
1011
fc51264f
L
1012template<>
1013const Target::Target_info Target_x86_64<32>::x86_64_info =
1014{
1015 32, // size
1016 false, // is_big_endian
1017 elfcpp::EM_X86_64, // machine_code
1018 false, // has_make_symbol
1019 false, // has_resolve
1020 true, // has_code_fill
1021 true, // is_default_stack_executable
1022 true, // can_icf_inline_merge_sections
1023 '\0', // wrap_char
1024 "/libx32/ldx32.so.1", // program interpreter
1025 0x400000, // default_text_segment_address
1026 0x1000, // abi_pagesize (overridable by -z max-page-size)
1027 0x1000, // common_pagesize (overridable by -z common-page-size)
2e702c99
RM
1028 false, // isolate_execinstr
1029 0, // rosegment_gap
fc51264f
L
1030 elfcpp::SHN_UNDEF, // small_common_shndx
1031 elfcpp::SHN_X86_64_LCOMMON, // large_common_shndx
1032 0, // small_common_section_flags
1033 elfcpp::SHF_X86_64_LARGE, // large_common_section_flags
1034 NULL, // attributes_section
a67858e0
CC
1035 NULL, // attributes_vendor
1036 "_start" // entry_symbol_name
fc51264f
L
1037};
1038
8a5e3e08
ILT
1039// This is called when a new output section is created. This is where
1040// we handle the SHF_X86_64_LARGE.
1041
fc51264f 1042template<int size>
8a5e3e08 1043void
fc51264f 1044Target_x86_64<size>::do_new_output_section(Output_section* os) const
8a5e3e08
ILT
1045{
1046 if ((os->flags() & elfcpp::SHF_X86_64_LARGE) != 0)
1047 os->set_is_large_section();
1048}
1049
2e30d253
ILT
1050// Get the GOT section, creating it if necessary.
1051
fc51264f 1052template<int size>
2e30d253 1053Output_data_got<64, false>*
fc51264f 1054Target_x86_64<size>::got_section(Symbol_table* symtab, Layout* layout)
2e30d253
ILT
1055{
1056 if (this->got_ == NULL)
1057 {
1058 gold_assert(symtab != NULL && layout != NULL);
1059
9446efde
ILT
1060 // When using -z now, we can treat .got.plt as a relro section.
1061 // Without -z now, it is modified after program startup by lazy
1062 // PLT relocations.
1063 bool is_got_plt_relro = parameters->options().now();
1064 Output_section_order got_order = (is_got_plt_relro
1065 ? ORDER_RELRO
1066 : ORDER_RELRO_LAST);
1067 Output_section_order got_plt_order = (is_got_plt_relro
1068 ? ORDER_RELRO
1069 : ORDER_NON_RELRO_FIRST);
1070
2e30d253
ILT
1071 this->got_ = new Output_data_got<64, false>();
1072
82742395
ILT
1073 layout->add_output_section_data(".got", elfcpp::SHT_PROGBITS,
1074 (elfcpp::SHF_ALLOC
1075 | elfcpp::SHF_WRITE),
9446efde 1076 this->got_, got_order, true);
2e30d253 1077
7d9e3d98 1078 this->got_plt_ = new Output_data_space(8, "** GOT PLT");
82742395
ILT
1079 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1080 (elfcpp::SHF_ALLOC
1081 | elfcpp::SHF_WRITE),
9446efde
ILT
1082 this->got_plt_, got_plt_order,
1083 is_got_plt_relro);
2e30d253
ILT
1084
1085 // The first three entries are reserved.
27bc2bce 1086 this->got_plt_->set_current_data_size(3 * 8);
2e30d253 1087
9446efde
ILT
1088 if (!is_got_plt_relro)
1089 {
1090 // Those bytes can go into the relro segment.
1091 layout->increase_relro(3 * 8);
1092 }
1a2dff53 1093
2e30d253 1094 // Define _GLOBAL_OFFSET_TABLE_ at the start of the PLT.
e785ec03
ILT
1095 this->global_offset_table_ =
1096 symtab->define_in_output_data("_GLOBAL_OFFSET_TABLE_", NULL,
1097 Symbol_table::PREDEFINED,
1098 this->got_plt_,
1099 0, 0, elfcpp::STT_OBJECT,
1100 elfcpp::STB_LOCAL,
1101 elfcpp::STV_HIDDEN, 0,
1102 false, false);
a8df5856 1103
67181c72
ILT
1104 // If there are any IRELATIVE relocations, they get GOT entries
1105 // in .got.plt after the jump slot entries.
1106 this->got_irelative_ = new Output_data_space(8, "** GOT IRELATIVE PLT");
1107 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1108 (elfcpp::SHF_ALLOC
1109 | elfcpp::SHF_WRITE),
1110 this->got_irelative_,
9446efde 1111 got_plt_order, is_got_plt_relro);
67181c72 1112
a8df5856 1113 // If there are any TLSDESC relocations, they get GOT entries in
67181c72 1114 // .got.plt after the jump slot and IRELATIVE entries.
a8df5856
ILT
1115 this->got_tlsdesc_ = new Output_data_got<64, false>();
1116 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1117 (elfcpp::SHF_ALLOC
1118 | elfcpp::SHF_WRITE),
22f0da72 1119 this->got_tlsdesc_,
9446efde 1120 got_plt_order, is_got_plt_relro);
2e30d253
ILT
1121 }
1122
1123 return this->got_;
1124}
1125
1126// Get the dynamic reloc section, creating it if necessary.
1127
fc51264f
L
1128template<int size>
1129typename Target_x86_64<size>::Reloc_section*
1130Target_x86_64<size>::rela_dyn_section(Layout* layout)
2e30d253 1131{
0ffd9845 1132 if (this->rela_dyn_ == NULL)
2e30d253
ILT
1133 {
1134 gold_assert(layout != NULL);
d98bc257 1135 this->rela_dyn_ = new Reloc_section(parameters->options().combreloc());
2e30d253 1136 layout->add_output_section_data(".rela.dyn", elfcpp::SHT_RELA,
22f0da72
ILT
1137 elfcpp::SHF_ALLOC, this->rela_dyn_,
1138 ORDER_DYNAMIC_RELOCS, false);
2e30d253 1139 }
0ffd9845 1140 return this->rela_dyn_;
2e30d253
ILT
1141}
1142
67181c72
ILT
1143// Get the section to use for IRELATIVE relocs, creating it if
1144// necessary. These go in .rela.dyn, but only after all other dynamic
1145// relocations. They need to follow the other dynamic relocations so
1146// that they can refer to global variables initialized by those
1147// relocs.
1148
fc51264f
L
1149template<int size>
1150typename Target_x86_64<size>::Reloc_section*
1151Target_x86_64<size>::rela_irelative_section(Layout* layout)
67181c72
ILT
1152{
1153 if (this->rela_irelative_ == NULL)
1154 {
1155 // Make sure we have already created the dynamic reloc section.
1156 this->rela_dyn_section(layout);
1157 this->rela_irelative_ = new Reloc_section(false);
1158 layout->add_output_section_data(".rela.dyn", elfcpp::SHT_RELA,
1159 elfcpp::SHF_ALLOC, this->rela_irelative_,
1160 ORDER_DYNAMIC_RELOCS, false);
1161 gold_assert(this->rela_dyn_->output_section()
1162 == this->rela_irelative_->output_section());
1163 }
1164 return this->rela_irelative_;
1165}
1166
4829d394 1167// Initialize the PLT section.
2e30d253 1168
fc51264f 1169template<int size>
4829d394 1170void
fc51264f 1171Output_data_plt_x86_64<size>::init(Layout* layout)
2e30d253 1172{
d98bc257 1173 this->rel_ = new Reloc_section(false);
2e30d253 1174 layout->add_output_section_data(".rela.plt", elfcpp::SHT_RELA,
22f0da72
ILT
1175 elfcpp::SHF_ALLOC, this->rel_,
1176 ORDER_DYNAMIC_PLT_RELOCS, false);
2e30d253
ILT
1177}
1178
fc51264f 1179template<int size>
2e30d253 1180void
fc51264f 1181Output_data_plt_x86_64<size>::do_adjust_output_section(Output_section* os)
2e30d253 1182{
2e702c99 1183 os->set_entsize(this->get_plt_entry_size());
2e30d253
ILT
1184}
1185
1186// Add an entry to the PLT.
1187
fc51264f 1188template<int size>
2e30d253 1189void
fc51264f
L
1190Output_data_plt_x86_64<size>::add_entry(Symbol_table* symtab, Layout* layout,
1191 Symbol* gsym)
2e30d253
ILT
1192{
1193 gold_assert(!gsym->has_plt_offset());
1194
4829d394
CC
1195 unsigned int plt_index;
1196 off_t plt_offset;
1197 section_offset_type got_offset;
2e30d253 1198
67181c72
ILT
1199 unsigned int* pcount;
1200 unsigned int offset;
1201 unsigned int reserved;
1202 Output_data_space* got;
1203 if (gsym->type() == elfcpp::STT_GNU_IFUNC
1204 && gsym->can_use_relative_reloc(false))
1205 {
1206 pcount = &this->irelative_count_;
1207 offset = 0;
1208 reserved = 0;
1209 got = this->got_irelative_;
1210 }
1211 else
1212 {
1213 pcount = &this->count_;
1214 offset = 1;
1215 reserved = 3;
1216 got = this->got_plt_;
1217 }
1218
4829d394
CC
1219 if (!this->is_data_size_valid())
1220 {
67181c72
ILT
1221 // Note that when setting the PLT offset for a non-IRELATIVE
1222 // entry we skip the initial reserved PLT entry.
1223 plt_index = *pcount + offset;
2e702c99 1224 plt_offset = plt_index * this->get_plt_entry_size();
2e30d253 1225
67181c72 1226 ++*pcount;
2e30d253 1227
67181c72
ILT
1228 got_offset = (plt_index - offset + reserved) * 8;
1229 gold_assert(got_offset == got->current_data_size());
2e30d253 1230
4829d394
CC
1231 // Every PLT entry needs a GOT entry which points back to the PLT
1232 // entry (this will be changed by the dynamic linker, normally
1233 // lazily when the function is called).
67181c72 1234 got->set_current_data_size(got_offset + 8);
4829d394 1235 }
7223e9ca
ILT
1236 else
1237 {
67181c72
ILT
1238 // FIXME: This is probably not correct for IRELATIVE relocs.
1239
4829d394 1240 // For incremental updates, find an available slot.
2e702c99
RM
1241 plt_offset = this->free_list_.allocate(this->get_plt_entry_size(),
1242 this->get_plt_entry_size(), 0);
4829d394 1243 if (plt_offset == -1)
e6455dfb
CC
1244 gold_fallback(_("out of patch space (PLT);"
1245 " relink with --incremental-full"));
4829d394
CC
1246
1247 // The GOT and PLT entries have a 1-1 correspondance, so the GOT offset
1248 // can be calculated from the PLT index, adjusting for the three
1249 // reserved entries at the beginning of the GOT.
2e702c99 1250 plt_index = plt_offset / this->get_plt_entry_size() - 1;
67181c72 1251 got_offset = (plt_index - offset + reserved) * 8;
7223e9ca 1252 }
2e30d253 1253
4829d394
CC
1254 gsym->set_plt_offset(plt_offset);
1255
1256 // Every PLT entry needs a reloc.
67181c72 1257 this->add_relocation(symtab, layout, gsym, got_offset);
4829d394 1258
2e30d253
ILT
1259 // Note that we don't need to save the symbol. The contents of the
1260 // PLT are independent of which symbols are used. The symbols only
1261 // appear in the relocations.
1262}
1263
7223e9ca
ILT
1264// Add an entry to the PLT for a local STT_GNU_IFUNC symbol. Return
1265// the PLT offset.
1266
fc51264f 1267template<int size>
7223e9ca 1268unsigned int
fc51264f 1269Output_data_plt_x86_64<size>::add_local_ifunc_entry(
67181c72
ILT
1270 Symbol_table* symtab,
1271 Layout* layout,
fc51264f 1272 Sized_relobj_file<size, false>* relobj,
6fa2a40b 1273 unsigned int local_sym_index)
7223e9ca 1274{
2e702c99 1275 unsigned int plt_offset = this->irelative_count_ * this->get_plt_entry_size();
67181c72 1276 ++this->irelative_count_;
7223e9ca 1277
67181c72 1278 section_offset_type got_offset = this->got_irelative_->current_data_size();
7223e9ca
ILT
1279
1280 // Every PLT entry needs a GOT entry which points back to the PLT
1281 // entry.
67181c72 1282 this->got_irelative_->set_current_data_size(got_offset + 8);
7223e9ca
ILT
1283
1284 // Every PLT entry needs a reloc.
67181c72
ILT
1285 Reloc_section* rela = this->rela_irelative(symtab, layout);
1286 rela->add_symbolless_local_addend(relobj, local_sym_index,
1287 elfcpp::R_X86_64_IRELATIVE,
1288 this->got_irelative_, got_offset, 0);
7223e9ca
ILT
1289
1290 return plt_offset;
1291}
1292
4829d394
CC
1293// Add the relocation for a PLT entry.
1294
fc51264f 1295template<int size>
4829d394 1296void
fc51264f
L
1297Output_data_plt_x86_64<size>::add_relocation(Symbol_table* symtab,
1298 Layout* layout,
1299 Symbol* gsym,
1300 unsigned int got_offset)
4829d394
CC
1301{
1302 if (gsym->type() == elfcpp::STT_GNU_IFUNC
1303 && gsym->can_use_relative_reloc(false))
67181c72
ILT
1304 {
1305 Reloc_section* rela = this->rela_irelative(symtab, layout);
1306 rela->add_symbolless_global_addend(gsym, elfcpp::R_X86_64_IRELATIVE,
1307 this->got_irelative_, got_offset, 0);
1308 }
4829d394
CC
1309 else
1310 {
1311 gsym->set_needs_dynsym_entry();
1312 this->rel_->add_global(gsym, elfcpp::R_X86_64_JUMP_SLOT, this->got_plt_,
1313 got_offset, 0);
1314 }
1315}
1316
e291e7b9
ILT
1317// Return where the TLSDESC relocations should go, creating it if
1318// necessary. These follow the JUMP_SLOT relocations.
1319
fc51264f
L
1320template<int size>
1321typename Output_data_plt_x86_64<size>::Reloc_section*
1322Output_data_plt_x86_64<size>::rela_tlsdesc(Layout* layout)
e291e7b9
ILT
1323{
1324 if (this->tlsdesc_rel_ == NULL)
1325 {
1326 this->tlsdesc_rel_ = new Reloc_section(false);
1327 layout->add_output_section_data(".rela.plt", elfcpp::SHT_RELA,
1328 elfcpp::SHF_ALLOC, this->tlsdesc_rel_,
22f0da72 1329 ORDER_DYNAMIC_PLT_RELOCS, false);
67181c72
ILT
1330 gold_assert(this->tlsdesc_rel_->output_section()
1331 == this->rel_->output_section());
e291e7b9
ILT
1332 }
1333 return this->tlsdesc_rel_;
1334}
1335
67181c72
ILT
1336// Return where the IRELATIVE relocations should go in the PLT. These
1337// follow the JUMP_SLOT and the TLSDESC relocations.
1338
fc51264f
L
1339template<int size>
1340typename Output_data_plt_x86_64<size>::Reloc_section*
1341Output_data_plt_x86_64<size>::rela_irelative(Symbol_table* symtab,
1342 Layout* layout)
67181c72
ILT
1343{
1344 if (this->irelative_rel_ == NULL)
1345 {
1346 // Make sure we have a place for the TLSDESC relocations, in
1347 // case we see any later on.
1348 this->rela_tlsdesc(layout);
1349 this->irelative_rel_ = new Reloc_section(false);
1350 layout->add_output_section_data(".rela.plt", elfcpp::SHT_RELA,
1351 elfcpp::SHF_ALLOC, this->irelative_rel_,
1352 ORDER_DYNAMIC_PLT_RELOCS, false);
1353 gold_assert(this->irelative_rel_->output_section()
1354 == this->rel_->output_section());
1355
1356 if (parameters->doing_static_link())
1357 {
1358 // A statically linked executable will only have a .rela.plt
1359 // section to hold R_X86_64_IRELATIVE relocs for
1360 // STT_GNU_IFUNC symbols. The library will use these
1361 // symbols to locate the IRELATIVE relocs at program startup
1362 // time.
1363 symtab->define_in_output_data("__rela_iplt_start", NULL,
1364 Symbol_table::PREDEFINED,
1365 this->irelative_rel_, 0, 0,
1366 elfcpp::STT_NOTYPE, elfcpp::STB_GLOBAL,
1367 elfcpp::STV_HIDDEN, 0, false, true);
1368 symtab->define_in_output_data("__rela_iplt_end", NULL,
1369 Symbol_table::PREDEFINED,
1370 this->irelative_rel_, 0, 0,
1371 elfcpp::STT_NOTYPE, elfcpp::STB_GLOBAL,
1372 elfcpp::STV_HIDDEN, 0, true, true);
1373 }
1374 }
1375 return this->irelative_rel_;
1376}
1377
1378// Return the PLT address to use for a global symbol.
1379
fc51264f 1380template<int size>
67181c72 1381uint64_t
fc51264f 1382Output_data_plt_x86_64<size>::address_for_global(const Symbol* gsym)
67181c72
ILT
1383{
1384 uint64_t offset = 0;
1385 if (gsym->type() == elfcpp::STT_GNU_IFUNC
1386 && gsym->can_use_relative_reloc(false))
2e702c99 1387 offset = (this->count_ + 1) * this->get_plt_entry_size();
19fec8c1 1388 return this->address() + offset + gsym->plt_offset();
67181c72
ILT
1389}
1390
1391// Return the PLT address to use for a local symbol. These are always
1392// IRELATIVE relocs.
1393
fc51264f 1394template<int size>
67181c72 1395uint64_t
19fec8c1
AM
1396Output_data_plt_x86_64<size>::address_for_local(const Relobj* object,
1397 unsigned int r_sym)
67181c72 1398{
19fec8c1
AM
1399 return (this->address()
1400 + (this->count_ + 1) * this->get_plt_entry_size()
1401 + object->local_plt_offset(r_sym));
67181c72
ILT
1402}
1403
c2b45e22 1404// Set the final size.
fc51264f 1405template<int size>
c2b45e22 1406void
fc51264f 1407Output_data_plt_x86_64<size>::set_final_data_size()
c2b45e22 1408{
67181c72 1409 unsigned int count = this->count_ + this->irelative_count_;
c2b45e22
CC
1410 if (this->has_tlsdesc_entry())
1411 ++count;
2e702c99 1412 this->set_data_size((count + 1) * this->get_plt_entry_size());
c2b45e22
CC
1413}
1414
2e30d253
ILT
1415// The first entry in the PLT for an executable.
1416
fc51264f
L
1417template<int size>
1418const unsigned char
2e702c99 1419Output_data_plt_x86_64_standard<size>::first_plt_entry[plt_entry_size] =
2e30d253
ILT
1420{
1421 // From AMD64 ABI Draft 0.98, page 76
1422 0xff, 0x35, // pushq contents of memory address
2e30d253 1423 0, 0, 0, 0, // replaced with address of .got + 8
78d911fd
ILT
1424 0xff, 0x25, // jmp indirect
1425 0, 0, 0, 0, // replaced with address of .got + 16
2e30d253
ILT
1426 0x90, 0x90, 0x90, 0x90 // noop (x4)
1427};
1428
2e702c99
RM
1429template<int size>
1430void
1431Output_data_plt_x86_64_standard<size>::do_fill_first_plt_entry(
1432 unsigned char* pov,
1433 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
1434 typename elfcpp::Elf_types<size>::Elf_Addr plt_address)
1435{
1436 memcpy(pov, first_plt_entry, plt_entry_size);
1437 // We do a jmp relative to the PC at the end of this instruction.
1438 elfcpp::Swap_unaligned<32, false>::writeval(pov + 2,
1439 (got_address + 8
1440 - (plt_address + 6)));
1441 elfcpp::Swap<32, false>::writeval(pov + 8,
1442 (got_address + 16
1443 - (plt_address + 12)));
1444}
1445
2e30d253
ILT
1446// Subsequent entries in the PLT for an executable.
1447
fc51264f
L
1448template<int size>
1449const unsigned char
2e702c99 1450Output_data_plt_x86_64_standard<size>::plt_entry[plt_entry_size] =
2e30d253
ILT
1451{
1452 // From AMD64 ABI Draft 0.98, page 76
1453 0xff, 0x25, // jmpq indirect
1454 0, 0, 0, 0, // replaced with address of symbol in .got
1455 0x68, // pushq immediate
1456 0, 0, 0, 0, // replaced with offset into relocation table
1457 0xe9, // jmpq relative
1458 0, 0, 0, 0 // replaced with offset to start of .plt
1459};
1460
2e702c99
RM
1461template<int size>
1462unsigned int
1463Output_data_plt_x86_64_standard<size>::do_fill_plt_entry(
1464 unsigned char* pov,
1465 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
1466 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
1467 unsigned int got_offset,
1468 unsigned int plt_offset,
1469 unsigned int plt_index)
1470{
1471 memcpy(pov, plt_entry, plt_entry_size);
1472 elfcpp::Swap_unaligned<32, false>::writeval(pov + 2,
1473 (got_address + got_offset
1474 - (plt_address + plt_offset
1475 + 6)));
1476
1477 elfcpp::Swap_unaligned<32, false>::writeval(pov + 7, plt_index);
1478 elfcpp::Swap<32, false>::writeval(pov + 12,
1479 - (plt_offset + plt_entry_size));
1480
1481 return 6;
1482}
1483
c2b45e22
CC
1484// The reserved TLSDESC entry in the PLT for an executable.
1485
fc51264f
L
1486template<int size>
1487const unsigned char
2e702c99 1488Output_data_plt_x86_64_standard<size>::tlsdesc_plt_entry[plt_entry_size] =
c2b45e22
CC
1489{
1490 // From Alexandre Oliva, "Thread-Local Storage Descriptors for IA32
1491 // and AMD64/EM64T", Version 0.9.4 (2005-10-10).
1492 0xff, 0x35, // pushq x(%rip)
1493 0, 0, 0, 0, // replaced with address of linkmap GOT entry (at PLTGOT + 8)
1494 0xff, 0x25, // jmpq *y(%rip)
1495 0, 0, 0, 0, // replaced with offset of reserved TLSDESC_GOT entry
1496 0x0f, 0x1f, // nop
1497 0x40, 0
1498};
1499
2e702c99
RM
1500template<int size>
1501void
1502Output_data_plt_x86_64_standard<size>::do_fill_tlsdesc_entry(
1503 unsigned char* pov,
1504 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
1505 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
1506 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
1507 unsigned int tlsdesc_got_offset,
1508 unsigned int plt_offset)
1509{
1510 memcpy(pov, tlsdesc_plt_entry, plt_entry_size);
1511 elfcpp::Swap_unaligned<32, false>::writeval(pov + 2,
1512 (got_address + 8
1513 - (plt_address + plt_offset
1514 + 6)));
1515 elfcpp::Swap_unaligned<32, false>::writeval(pov + 8,
1516 (got_base
1517 + tlsdesc_got_offset
1518 - (plt_address + plt_offset
1519 + 12)));
1520}
1521
07a60597
ILT
1522// The .eh_frame unwind information for the PLT.
1523
fc51264f 1524template<int size>
2e702c99 1525const unsigned char
fc51264f 1526Output_data_plt_x86_64<size>::plt_eh_frame_cie[plt_eh_frame_cie_size] =
07a60597
ILT
1527{
1528 1, // CIE version.
1529 'z', // Augmentation: augmentation size included.
1530 'R', // Augmentation: FDE encoding included.
1531 '\0', // End of augmentation string.
1532 1, // Code alignment factor.
1533 0x78, // Data alignment factor.
1534 16, // Return address column.
1535 1, // Augmentation size.
1536 (elfcpp::DW_EH_PE_pcrel // FDE encoding.
1537 | elfcpp::DW_EH_PE_sdata4),
1538 elfcpp::DW_CFA_def_cfa, 7, 8, // DW_CFA_def_cfa: r7 (rsp) ofs 8.
1539 elfcpp::DW_CFA_offset + 16, 1,// DW_CFA_offset: r16 (rip) at cfa-8.
1540 elfcpp::DW_CFA_nop, // Align to 16 bytes.
1541 elfcpp::DW_CFA_nop
1542};
1543
fc51264f 1544template<int size>
07a60597 1545const unsigned char
2e702c99 1546Output_data_plt_x86_64_standard<size>::plt_eh_frame_fde[plt_eh_frame_fde_size] =
07a60597
ILT
1547{
1548 0, 0, 0, 0, // Replaced with offset to .plt.
1549 0, 0, 0, 0, // Replaced with size of .plt.
1550 0, // Augmentation size.
1551 elfcpp::DW_CFA_def_cfa_offset, 16, // DW_CFA_def_cfa_offset: 16.
1552 elfcpp::DW_CFA_advance_loc + 6, // Advance 6 to __PLT__ + 6.
1553 elfcpp::DW_CFA_def_cfa_offset, 24, // DW_CFA_def_cfa_offset: 24.
1554 elfcpp::DW_CFA_advance_loc + 10, // Advance 10 to __PLT__ + 16.
1555 elfcpp::DW_CFA_def_cfa_expression, // DW_CFA_def_cfa_expression.
1556 11, // Block length.
1557 elfcpp::DW_OP_breg7, 8, // Push %rsp + 8.
1558 elfcpp::DW_OP_breg16, 0, // Push %rip.
1559 elfcpp::DW_OP_lit15, // Push 0xf.
1560 elfcpp::DW_OP_and, // & (%rip & 0xf).
1561 elfcpp::DW_OP_lit11, // Push 0xb.
1562 elfcpp::DW_OP_ge, // >= ((%rip & 0xf) >= 0xb)
1563 elfcpp::DW_OP_lit3, // Push 3.
1564 elfcpp::DW_OP_shl, // << (((%rip & 0xf) >= 0xb) << 3)
1565 elfcpp::DW_OP_plus, // + ((((%rip&0xf)>=0xb)<<3)+%rsp+8
1566 elfcpp::DW_CFA_nop, // Align to 32 bytes.
1567 elfcpp::DW_CFA_nop,
1568 elfcpp::DW_CFA_nop,
1569 elfcpp::DW_CFA_nop
1570};
1571
2e30d253
ILT
1572// Write out the PLT. This uses the hand-coded instructions above,
1573// and adjusts them as needed. This is specified by the AMD64 ABI.
1574
fc51264f 1575template<int size>
2e30d253 1576void
fc51264f 1577Output_data_plt_x86_64<size>::do_write(Output_file* of)
2e30d253 1578{
2ea97941 1579 const off_t offset = this->offset();
fe8718a4
ILT
1580 const section_size_type oview_size =
1581 convert_to_section_size_type(this->data_size());
2ea97941 1582 unsigned char* const oview = of->get_output_view(offset, oview_size);
2e30d253
ILT
1583
1584 const off_t got_file_offset = this->got_plt_->offset();
67181c72
ILT
1585 gold_assert(parameters->incremental_update()
1586 || (got_file_offset + this->got_plt_->data_size()
1587 == this->got_irelative_->offset()));
fe8718a4 1588 const section_size_type got_size =
67181c72
ILT
1589 convert_to_section_size_type(this->got_plt_->data_size()
1590 + this->got_irelative_->data_size());
2e30d253
ILT
1591 unsigned char* const got_view = of->get_output_view(got_file_offset,
1592 got_size);
1593
1594 unsigned char* pov = oview;
1595
c2b45e22 1596 // The base address of the .plt section.
fc51264f 1597 typename elfcpp::Elf_types<size>::Elf_Addr plt_address = this->address();
c2b45e22 1598 // The base address of the .got section.
fc51264f 1599 typename elfcpp::Elf_types<size>::Elf_Addr got_base = this->got_->address();
c2b45e22
CC
1600 // The base address of the PLT portion of the .got section,
1601 // which is where the GOT pointer will point, and where the
1602 // three reserved GOT entries are located.
fc51264f
L
1603 typename elfcpp::Elf_types<size>::Elf_Addr got_address
1604 = this->got_plt_->address();
2e30d253 1605
2e702c99
RM
1606 this->fill_first_plt_entry(pov, got_address, plt_address);
1607 pov += this->get_plt_entry_size();
2e30d253
ILT
1608
1609 unsigned char* got_pov = got_view;
1610
7d172687
ILT
1611 // The first entry in the GOT is the address of the .dynamic section
1612 // aka the PT_DYNAMIC segment. The next two entries are reserved.
1613 // We saved space for them when we created the section in
1614 // Target_x86_64::got_section.
1615 Output_section* dynamic = this->layout_->dynamic_section();
1616 uint32_t dynamic_addr = dynamic == NULL ? 0 : dynamic->address();
1617 elfcpp::Swap<64, false>::writeval(got_pov, dynamic_addr);
1618 got_pov += 8;
1619 memset(got_pov, 0, 16);
1620 got_pov += 16;
2e30d253 1621
2e702c99 1622 unsigned int plt_offset = this->get_plt_entry_size();
2e30d253 1623 unsigned int got_offset = 24;
67181c72 1624 const unsigned int count = this->count_ + this->irelative_count_;
2e30d253
ILT
1625 for (unsigned int plt_index = 0;
1626 plt_index < count;
1627 ++plt_index,
2e702c99 1628 pov += this->get_plt_entry_size(),
2e30d253 1629 got_pov += 8,
2e702c99 1630 plt_offset += this->get_plt_entry_size(),
2e30d253
ILT
1631 got_offset += 8)
1632 {
1633 // Set and adjust the PLT entry itself.
2e702c99
RM
1634 unsigned int lazy_offset = this->fill_plt_entry(pov,
1635 got_address, plt_address,
1636 got_offset, plt_offset,
1637 plt_index);
2e30d253
ILT
1638
1639 // Set the entry in the GOT.
2e702c99
RM
1640 elfcpp::Swap<64, false>::writeval(got_pov,
1641 plt_address + plt_offset + lazy_offset);
2e30d253
ILT
1642 }
1643
c2b45e22
CC
1644 if (this->has_tlsdesc_entry())
1645 {
1646 // Set and adjust the reserved TLSDESC PLT entry.
1647 unsigned int tlsdesc_got_offset = this->get_tlsdesc_got_offset();
2e702c99
RM
1648 this->fill_tlsdesc_entry(pov, got_address, plt_address, got_base,
1649 tlsdesc_got_offset, plt_offset);
1650 pov += this->get_plt_entry_size();
c2b45e22
CC
1651 }
1652
fe8718a4
ILT
1653 gold_assert(static_cast<section_size_type>(pov - oview) == oview_size);
1654 gold_assert(static_cast<section_size_type>(got_pov - got_view) == got_size);
2e30d253 1655
2ea97941 1656 of->write_output_view(offset, oview_size, oview);
2e30d253
ILT
1657 of->write_output_view(got_file_offset, got_size, got_view);
1658}
1659
c2b45e22 1660// Create the PLT section.
2e30d253 1661
fc51264f 1662template<int size>
2e30d253 1663void
fc51264f 1664Target_x86_64<size>::make_plt_section(Symbol_table* symtab, Layout* layout)
2e30d253 1665{
2e30d253
ILT
1666 if (this->plt_ == NULL)
1667 {
1668 // Create the GOT sections first.
1669 this->got_section(symtab, layout);
1670
2e702c99
RM
1671 this->plt_ = this->make_data_plt(layout, this->got_, this->got_plt_,
1672 this->got_irelative_);
1673
1674 // Add unwind information if requested.
1675 if (parameters->options().ld_generated_unwind_info())
1676 this->plt_->add_eh_frame(layout);
1677
2e30d253
ILT
1678 layout->add_output_section_data(".plt", elfcpp::SHT_PROGBITS,
1679 (elfcpp::SHF_ALLOC
1680 | elfcpp::SHF_EXECINSTR),
22f0da72 1681 this->plt_, ORDER_PLT, false);
7223e9ca
ILT
1682
1683 // Make the sh_info field of .rela.plt point to .plt.
1684 Output_section* rela_plt_os = this->plt_->rela_plt()->output_section();
1685 rela_plt_os->set_info_section(this->plt_->output_section());
2e30d253 1686 }
c2b45e22
CC
1687}
1688
e291e7b9
ILT
1689// Return the section for TLSDESC relocations.
1690
fc51264f
L
1691template<int size>
1692typename Target_x86_64<size>::Reloc_section*
1693Target_x86_64<size>::rela_tlsdesc_section(Layout* layout) const
e291e7b9
ILT
1694{
1695 return this->plt_section()->rela_tlsdesc(layout);
1696}
1697
c2b45e22
CC
1698// Create a PLT entry for a global symbol.
1699
fc51264f 1700template<int size>
c2b45e22 1701void
fc51264f
L
1702Target_x86_64<size>::make_plt_entry(Symbol_table* symtab, Layout* layout,
1703 Symbol* gsym)
c2b45e22
CC
1704{
1705 if (gsym->has_plt_offset())
1706 return;
1707
1708 if (this->plt_ == NULL)
1709 this->make_plt_section(symtab, layout);
2e30d253 1710
67181c72 1711 this->plt_->add_entry(symtab, layout, gsym);
2e30d253
ILT
1712}
1713
7223e9ca
ILT
1714// Make a PLT entry for a local STT_GNU_IFUNC symbol.
1715
fc51264f 1716template<int size>
7223e9ca 1717void
fc51264f
L
1718Target_x86_64<size>::make_local_ifunc_plt_entry(
1719 Symbol_table* symtab, Layout* layout,
1720 Sized_relobj_file<size, false>* relobj,
1721 unsigned int local_sym_index)
7223e9ca
ILT
1722{
1723 if (relobj->local_has_plt_offset(local_sym_index))
1724 return;
1725 if (this->plt_ == NULL)
1726 this->make_plt_section(symtab, layout);
67181c72
ILT
1727 unsigned int plt_offset = this->plt_->add_local_ifunc_entry(symtab, layout,
1728 relobj,
7223e9ca
ILT
1729 local_sym_index);
1730 relobj->set_local_plt_offset(local_sym_index, plt_offset);
1731}
1732
0e70b911
CC
1733// Return the number of entries in the PLT.
1734
fc51264f 1735template<int size>
0e70b911 1736unsigned int
fc51264f 1737Target_x86_64<size>::plt_entry_count() const
0e70b911
CC
1738{
1739 if (this->plt_ == NULL)
1740 return 0;
1741 return this->plt_->entry_count();
1742}
1743
1744// Return the offset of the first non-reserved PLT entry.
1745
fc51264f 1746template<int size>
0e70b911 1747unsigned int
fc51264f 1748Target_x86_64<size>::first_plt_entry_offset() const
0e70b911 1749{
2e702c99 1750 return this->plt_->first_plt_entry_offset();
0e70b911
CC
1751}
1752
1753// Return the size of each PLT entry.
1754
fc51264f 1755template<int size>
0e70b911 1756unsigned int
fc51264f 1757Target_x86_64<size>::plt_entry_size() const
0e70b911 1758{
2e702c99 1759 return this->plt_->get_plt_entry_size();
0e70b911
CC
1760}
1761
4829d394
CC
1762// Create the GOT and PLT sections for an incremental update.
1763
fc51264f 1764template<int size>
dd74ae06 1765Output_data_got_base*
fc51264f 1766Target_x86_64<size>::init_got_plt_for_update(Symbol_table* symtab,
4829d394
CC
1767 Layout* layout,
1768 unsigned int got_count,
1769 unsigned int plt_count)
1770{
1771 gold_assert(this->got_ == NULL);
1772
1773 this->got_ = new Output_data_got<64, false>(got_count * 8);
1774 layout->add_output_section_data(".got", elfcpp::SHT_PROGBITS,
1775 (elfcpp::SHF_ALLOC
1776 | elfcpp::SHF_WRITE),
1777 this->got_, ORDER_RELRO_LAST,
1778 true);
1779
1780 // Add the three reserved entries.
1781 this->got_plt_ = new Output_data_space((plt_count + 3) * 8, 8, "** GOT PLT");
1782 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1783 (elfcpp::SHF_ALLOC
1784 | elfcpp::SHF_WRITE),
1785 this->got_plt_, ORDER_NON_RELRO_FIRST,
1786 false);
1787
1788 // Define _GLOBAL_OFFSET_TABLE_ at the start of the PLT.
1789 this->global_offset_table_ =
1790 symtab->define_in_output_data("_GLOBAL_OFFSET_TABLE_", NULL,
1791 Symbol_table::PREDEFINED,
1792 this->got_plt_,
1793 0, 0, elfcpp::STT_OBJECT,
1794 elfcpp::STB_LOCAL,
1795 elfcpp::STV_HIDDEN, 0,
1796 false, false);
1797
1798 // If there are any TLSDESC relocations, they get GOT entries in
1799 // .got.plt after the jump slot entries.
1800 // FIXME: Get the count for TLSDESC entries.
1801 this->got_tlsdesc_ = new Output_data_got<64, false>(0);
1802 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1803 elfcpp::SHF_ALLOC | elfcpp::SHF_WRITE,
1804 this->got_tlsdesc_,
1805 ORDER_NON_RELRO_FIRST, false);
1806
67181c72
ILT
1807 // If there are any IRELATIVE relocations, they get GOT entries in
1808 // .got.plt after the jump slot and TLSDESC entries.
1809 this->got_irelative_ = new Output_data_space(0, 8, "** GOT IRELATIVE PLT");
1810 layout->add_output_section_data(".got.plt", elfcpp::SHT_PROGBITS,
1811 elfcpp::SHF_ALLOC | elfcpp::SHF_WRITE,
1812 this->got_irelative_,
1813 ORDER_NON_RELRO_FIRST, false);
1814
4829d394 1815 // Create the PLT section.
2e702c99
RM
1816 this->plt_ = this->make_data_plt(layout, this->got_,
1817 this->got_plt_,
1818 this->got_irelative_,
1819 plt_count);
1820
1821 // Add unwind information if requested.
1822 if (parameters->options().ld_generated_unwind_info())
1823 this->plt_->add_eh_frame(layout);
1824
4829d394
CC
1825 layout->add_output_section_data(".plt", elfcpp::SHT_PROGBITS,
1826 elfcpp::SHF_ALLOC | elfcpp::SHF_EXECINSTR,
1827 this->plt_, ORDER_PLT, false);
1828
1829 // Make the sh_info field of .rela.plt point to .plt.
1830 Output_section* rela_plt_os = this->plt_->rela_plt()->output_section();
1831 rela_plt_os->set_info_section(this->plt_->output_section());
1832
6fa2a40b
CC
1833 // Create the rela_dyn section.
1834 this->rela_dyn_section(layout);
1835
4829d394
CC
1836 return this->got_;
1837}
1838
6fa2a40b
CC
1839// Reserve a GOT entry for a local symbol, and regenerate any
1840// necessary dynamic relocations.
1841
fc51264f 1842template<int size>
6fa2a40b 1843void
fc51264f 1844Target_x86_64<size>::reserve_local_got_entry(
6fa2a40b 1845 unsigned int got_index,
fc51264f 1846 Sized_relobj<size, false>* obj,
6fa2a40b
CC
1847 unsigned int r_sym,
1848 unsigned int got_type)
1849{
1850 unsigned int got_offset = got_index * 8;
1851 Reloc_section* rela_dyn = this->rela_dyn_section(NULL);
1852
1853 this->got_->reserve_local(got_index, obj, r_sym, got_type);
1854 switch (got_type)
1855 {
1856 case GOT_TYPE_STANDARD:
1857 if (parameters->options().output_is_position_independent())
1858 rela_dyn->add_local_relative(obj, r_sym, elfcpp::R_X86_64_RELATIVE,
397b129b 1859 this->got_, got_offset, 0, false);
6fa2a40b
CC
1860 break;
1861 case GOT_TYPE_TLS_OFFSET:
1862 rela_dyn->add_local(obj, r_sym, elfcpp::R_X86_64_TPOFF64,
1863 this->got_, got_offset, 0);
1864 break;
1865 case GOT_TYPE_TLS_PAIR:
1866 this->got_->reserve_slot(got_index + 1);
1867 rela_dyn->add_local(obj, r_sym, elfcpp::R_X86_64_DTPMOD64,
1868 this->got_, got_offset, 0);
1869 break;
1870 case GOT_TYPE_TLS_DESC:
1871 gold_fatal(_("TLS_DESC not yet supported for incremental linking"));
1872 // this->got_->reserve_slot(got_index + 1);
1873 // rela_dyn->add_target_specific(elfcpp::R_X86_64_TLSDESC, arg,
1874 // this->got_, got_offset, 0);
1875 break;
1876 default:
1877 gold_unreachable();
1878 }
1879}
1880
1881// Reserve a GOT entry for a global symbol, and regenerate any
1882// necessary dynamic relocations.
1883
fc51264f 1884template<int size>
6fa2a40b 1885void
fc51264f
L
1886Target_x86_64<size>::reserve_global_got_entry(unsigned int got_index,
1887 Symbol* gsym,
1888 unsigned int got_type)
6fa2a40b
CC
1889{
1890 unsigned int got_offset = got_index * 8;
1891 Reloc_section* rela_dyn = this->rela_dyn_section(NULL);
1892
1893 this->got_->reserve_global(got_index, gsym, got_type);
1894 switch (got_type)
1895 {
1896 case GOT_TYPE_STANDARD:
1897 if (!gsym->final_value_is_known())
1898 {
1899 if (gsym->is_from_dynobj()
1900 || gsym->is_undefined()
1901 || gsym->is_preemptible()
1902 || gsym->type() == elfcpp::STT_GNU_IFUNC)
1903 rela_dyn->add_global(gsym, elfcpp::R_X86_64_GLOB_DAT,
1904 this->got_, got_offset, 0);
1905 else
1906 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_RELATIVE,
13cf9988 1907 this->got_, got_offset, 0, false);
6fa2a40b
CC
1908 }
1909 break;
1910 case GOT_TYPE_TLS_OFFSET:
1911 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_TPOFF64,
13cf9988 1912 this->got_, got_offset, 0, false);
6fa2a40b
CC
1913 break;
1914 case GOT_TYPE_TLS_PAIR:
1915 this->got_->reserve_slot(got_index + 1);
1916 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_DTPMOD64,
13cf9988 1917 this->got_, got_offset, 0, false);
6fa2a40b 1918 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_DTPOFF64,
13cf9988 1919 this->got_, got_offset + 8, 0, false);
6fa2a40b
CC
1920 break;
1921 case GOT_TYPE_TLS_DESC:
1922 this->got_->reserve_slot(got_index + 1);
1923 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_TLSDESC,
13cf9988 1924 this->got_, got_offset, 0, false);
6fa2a40b
CC
1925 break;
1926 default:
1927 gold_unreachable();
1928 }
1929}
1930
4829d394
CC
1931// Register an existing PLT entry for a global symbol.
1932
fc51264f 1933template<int size>
4829d394 1934void
fc51264f
L
1935Target_x86_64<size>::register_global_plt_entry(Symbol_table* symtab,
1936 Layout* layout,
1937 unsigned int plt_index,
1938 Symbol* gsym)
4829d394
CC
1939{
1940 gold_assert(this->plt_ != NULL);
1941 gold_assert(!gsym->has_plt_offset());
1942
1943 this->plt_->reserve_slot(plt_index);
1944
1945 gsym->set_plt_offset((plt_index + 1) * this->plt_entry_size());
1946
1947 unsigned int got_offset = (plt_index + 3) * 8;
67181c72 1948 this->plt_->add_relocation(symtab, layout, gsym, got_offset);
4829d394
CC
1949}
1950
26d3c67d
CC
1951// Force a COPY relocation for a given symbol.
1952
fc51264f 1953template<int size>
26d3c67d 1954void
fc51264f 1955Target_x86_64<size>::emit_copy_reloc(
26d3c67d
CC
1956 Symbol_table* symtab, Symbol* sym, Output_section* os, off_t offset)
1957{
1958 this->copy_relocs_.emit_copy_reloc(symtab,
fc51264f 1959 symtab->get_sized_symbol<size>(sym),
26d3c67d
CC
1960 os,
1961 offset,
1962 this->rela_dyn_section(NULL));
1963}
1964
9fa33bee 1965// Define the _TLS_MODULE_BASE_ symbol in the TLS segment.
edfbb029 1966
fc51264f 1967template<int size>
edfbb029 1968void
fc51264f
L
1969Target_x86_64<size>::define_tls_base_symbol(Symbol_table* symtab,
1970 Layout* layout)
edfbb029
CC
1971{
1972 if (this->tls_base_symbol_defined_)
1973 return;
1974
1975 Output_segment* tls_segment = layout->tls_segment();
1976 if (tls_segment != NULL)
1977 {
183fd0e3 1978 bool is_exec = parameters->options().output_is_executable();
edfbb029 1979 symtab->define_in_output_segment("_TLS_MODULE_BASE_", NULL,
99fff23b 1980 Symbol_table::PREDEFINED,
edfbb029
CC
1981 tls_segment, 0, 0,
1982 elfcpp::STT_TLS,
1983 elfcpp::STB_LOCAL,
1984 elfcpp::STV_HIDDEN, 0,
183fd0e3
AO
1985 (is_exec
1986 ? Symbol::SEGMENT_END
1987 : Symbol::SEGMENT_START),
1988 true);
edfbb029
CC
1989 }
1990 this->tls_base_symbol_defined_ = true;
1991}
1992
c2b45e22
CC
1993// Create the reserved PLT and GOT entries for the TLS descriptor resolver.
1994
fc51264f 1995template<int size>
c2b45e22 1996void
fc51264f 1997Target_x86_64<size>::reserve_tlsdesc_entries(Symbol_table* symtab,
2e702c99 1998 Layout* layout)
c2b45e22
CC
1999{
2000 if (this->plt_ == NULL)
2001 this->make_plt_section(symtab, layout);
2002
2003 if (!this->plt_->has_tlsdesc_entry())
2004 {
2005 // Allocate the TLSDESC_GOT entry.
2006 Output_data_got<64, false>* got = this->got_section(symtab, layout);
2007 unsigned int got_offset = got->add_constant(0);
2008
2009 // Allocate the TLSDESC_PLT entry.
2010 this->plt_->reserve_tlsdesc_entry(got_offset);
2011 }
2012}
2013
31d60480
ILT
2014// Create a GOT entry for the TLS module index.
2015
fc51264f 2016template<int size>
31d60480 2017unsigned int
fc51264f
L
2018Target_x86_64<size>::got_mod_index_entry(Symbol_table* symtab, Layout* layout,
2019 Sized_relobj_file<size, false>* object)
31d60480
ILT
2020{
2021 if (this->got_mod_index_offset_ == -1U)
2022 {
2023 gold_assert(symtab != NULL && layout != NULL && object != NULL);
2024 Reloc_section* rela_dyn = this->rela_dyn_section(layout);
2025 Output_data_got<64, false>* got = this->got_section(symtab, layout);
2026 unsigned int got_offset = got->add_constant(0);
2027 rela_dyn->add_local(object, 0, elfcpp::R_X86_64_DTPMOD64, got,
2e702c99 2028 got_offset, 0);
009a67a2 2029 got->add_constant(0);
31d60480
ILT
2030 this->got_mod_index_offset_ = got_offset;
2031 }
2032 return this->got_mod_index_offset_;
2033}
2034
2e30d253
ILT
2035// Optimize the TLS relocation type based on what we know about the
2036// symbol. IS_FINAL is true if the final address of this symbol is
2037// known at link time.
2038
fc51264f 2039template<int size>
e041f13d 2040tls::Tls_optimization
fc51264f 2041Target_x86_64<size>::optimize_tls_reloc(bool is_final, int r_type)
2e30d253 2042{
2e30d253
ILT
2043 // If we are generating a shared library, then we can't do anything
2044 // in the linker.
8851ecca 2045 if (parameters->options().shared())
e041f13d 2046 return tls::TLSOPT_NONE;
2e30d253
ILT
2047
2048 switch (r_type)
2049 {
2050 case elfcpp::R_X86_64_TLSGD:
e041f13d
ILT
2051 case elfcpp::R_X86_64_GOTPC32_TLSDESC:
2052 case elfcpp::R_X86_64_TLSDESC_CALL:
2053 // These are General-Dynamic which permits fully general TLS
2e30d253
ILT
2054 // access. Since we know that we are generating an executable,
2055 // we can convert this to Initial-Exec. If we also know that
2056 // this is a local symbol, we can further switch to Local-Exec.
2057 if (is_final)
e041f13d
ILT
2058 return tls::TLSOPT_TO_LE;
2059 return tls::TLSOPT_TO_IE;
2e30d253 2060
d61c17ea 2061 case elfcpp::R_X86_64_TLSLD:
2e30d253
ILT
2062 // This is Local-Dynamic, which refers to a local symbol in the
2063 // dynamic TLS block. Since we know that we generating an
2064 // executable, we can switch to Local-Exec.
e041f13d 2065 return tls::TLSOPT_TO_LE;
2e30d253 2066
0ffd9845 2067 case elfcpp::R_X86_64_DTPOFF32:
0ffd9845
ILT
2068 case elfcpp::R_X86_64_DTPOFF64:
2069 // Another Local-Dynamic reloc.
e041f13d 2070 return tls::TLSOPT_TO_LE;
0ffd9845 2071
d61c17ea 2072 case elfcpp::R_X86_64_GOTTPOFF:
2e30d253
ILT
2073 // These are Initial-Exec relocs which get the thread offset
2074 // from the GOT. If we know that we are linking against the
2075 // local symbol, we can switch to Local-Exec, which links the
2076 // thread offset into the instruction.
2077 if (is_final)
e041f13d
ILT
2078 return tls::TLSOPT_TO_LE;
2079 return tls::TLSOPT_NONE;
2e30d253 2080
d61c17ea 2081 case elfcpp::R_X86_64_TPOFF32:
2e30d253
ILT
2082 // When we already have Local-Exec, there is nothing further we
2083 // can do.
e041f13d 2084 return tls::TLSOPT_NONE;
2e30d253
ILT
2085
2086 default:
2087 gold_unreachable();
2088 }
2e30d253
ILT
2089}
2090
95a2c8d6
RS
2091// Get the Reference_flags for a particular relocation.
2092
fc51264f 2093template<int size>
95a2c8d6 2094int
fc51264f 2095Target_x86_64<size>::Scan::get_reference_flags(unsigned int r_type)
95a2c8d6
RS
2096{
2097 switch (r_type)
2098 {
2099 case elfcpp::R_X86_64_NONE:
2100 case elfcpp::R_X86_64_GNU_VTINHERIT:
2101 case elfcpp::R_X86_64_GNU_VTENTRY:
2102 case elfcpp::R_X86_64_GOTPC32:
2103 case elfcpp::R_X86_64_GOTPC64:
2104 // No symbol reference.
2105 return 0;
2106
2107 case elfcpp::R_X86_64_64:
2108 case elfcpp::R_X86_64_32:
2109 case elfcpp::R_X86_64_32S:
2110 case elfcpp::R_X86_64_16:
2111 case elfcpp::R_X86_64_8:
2112 return Symbol::ABSOLUTE_REF;
2113
2114 case elfcpp::R_X86_64_PC64:
2115 case elfcpp::R_X86_64_PC32:
2116 case elfcpp::R_X86_64_PC16:
2117 case elfcpp::R_X86_64_PC8:
2118 case elfcpp::R_X86_64_GOTOFF64:
2119 return Symbol::RELATIVE_REF;
2120
2121 case elfcpp::R_X86_64_PLT32:
2122 case elfcpp::R_X86_64_PLTOFF64:
2123 return Symbol::FUNCTION_CALL | Symbol::RELATIVE_REF;
2124
2125 case elfcpp::R_X86_64_GOT64:
2126 case elfcpp::R_X86_64_GOT32:
2127 case elfcpp::R_X86_64_GOTPCREL64:
2128 case elfcpp::R_X86_64_GOTPCREL:
2129 case elfcpp::R_X86_64_GOTPLT64:
2130 // Absolute in GOT.
2131 return Symbol::ABSOLUTE_REF;
2132
2133 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
2134 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
2135 case elfcpp::R_X86_64_TLSDESC_CALL:
2136 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
2137 case elfcpp::R_X86_64_DTPOFF32:
2138 case elfcpp::R_X86_64_DTPOFF64:
2139 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
2140 case elfcpp::R_X86_64_TPOFF32: // Local-exec
2141 return Symbol::TLS_REF;
2142
2143 case elfcpp::R_X86_64_COPY:
2144 case elfcpp::R_X86_64_GLOB_DAT:
2145 case elfcpp::R_X86_64_JUMP_SLOT:
2146 case elfcpp::R_X86_64_RELATIVE:
2147 case elfcpp::R_X86_64_IRELATIVE:
2148 case elfcpp::R_X86_64_TPOFF64:
2149 case elfcpp::R_X86_64_DTPMOD64:
2150 case elfcpp::R_X86_64_TLSDESC:
2151 case elfcpp::R_X86_64_SIZE32:
2152 case elfcpp::R_X86_64_SIZE64:
2153 default:
2154 // Not expected. We will give an error later.
2155 return 0;
2156 }
2157}
2158
e041f13d
ILT
2159// Report an unsupported relocation against a local symbol.
2160
fc51264f 2161template<int size>
e041f13d 2162void
fc51264f
L
2163Target_x86_64<size>::Scan::unsupported_reloc_local(
2164 Sized_relobj_file<size, false>* object,
6fa2a40b 2165 unsigned int r_type)
e041f13d 2166{
75f2446e
ILT
2167 gold_error(_("%s: unsupported reloc %u against local symbol"),
2168 object->name().c_str(), r_type);
e041f13d
ILT
2169}
2170
a036edd8
ILT
2171// We are about to emit a dynamic relocation of type R_TYPE. If the
2172// dynamic linker does not support it, issue an error. The GNU linker
2173// only issues a non-PIC error for an allocated read-only section.
2174// Here we know the section is allocated, but we don't know that it is
2175// read-only. But we check for all the relocation types which the
2176// glibc dynamic linker supports, so it seems appropriate to issue an
a29b0dad
ILT
2177// error even if the section is not read-only. If GSYM is not NULL,
2178// it is the symbol the relocation is against; if it is NULL, the
2179// relocation is against a local symbol.
a036edd8 2180
fc51264f 2181template<int size>
a036edd8 2182void
fc51264f
L
2183Target_x86_64<size>::Scan::check_non_pic(Relobj* object, unsigned int r_type,
2184 Symbol* gsym)
a036edd8
ILT
2185{
2186 switch (r_type)
2187 {
2fbb4320
ILT
2188 // These are the relocation types supported by glibc for x86_64
2189 // which should always work.
a036edd8 2190 case elfcpp::R_X86_64_RELATIVE:
7223e9ca 2191 case elfcpp::R_X86_64_IRELATIVE:
a036edd8
ILT
2192 case elfcpp::R_X86_64_GLOB_DAT:
2193 case elfcpp::R_X86_64_JUMP_SLOT:
2194 case elfcpp::R_X86_64_DTPMOD64:
2195 case elfcpp::R_X86_64_DTPOFF64:
2196 case elfcpp::R_X86_64_TPOFF64:
2197 case elfcpp::R_X86_64_64:
2fbb4320
ILT
2198 case elfcpp::R_X86_64_COPY:
2199 return;
2200
2201 // glibc supports these reloc types, but they can overflow.
a036edd8 2202 case elfcpp::R_X86_64_PC32:
a29b0dad
ILT
2203 // A PC relative reference is OK against a local symbol or if
2204 // the symbol is defined locally.
2205 if (gsym == NULL
2206 || (!gsym->is_from_dynobj()
2207 && !gsym->is_undefined()
2208 && !gsym->is_preemptible()))
2209 return;
2210 /* Fall through. */
2211 case elfcpp::R_X86_64_32:
3660ff06
L
2212 // R_X86_64_32 is OK for x32.
2213 if (size == 32 && r_type == elfcpp::R_X86_64_32)
2214 return;
2fbb4320
ILT
2215 if (this->issued_non_pic_error_)
2216 return;
2217 gold_assert(parameters->options().output_is_position_independent());
a29b0dad
ILT
2218 if (gsym == NULL)
2219 object->error(_("requires dynamic R_X86_64_32 reloc which may "
2220 "overflow at runtime; recompile with -fPIC"));
2221 else
2222 object->error(_("requires dynamic %s reloc against '%s' which may "
2223 "overflow at runtime; recompile with -fPIC"),
2224 (r_type == elfcpp::R_X86_64_32
2225 ? "R_X86_64_32"
2226 : "R_X86_64_PC32"),
2227 gsym->name());
2fbb4320 2228 this->issued_non_pic_error_ = true;
a036edd8
ILT
2229 return;
2230
2231 default:
2232 // This prevents us from issuing more than one error per reloc
2233 // section. But we can still wind up issuing more than one
2234 // error per object file.
2235 if (this->issued_non_pic_error_)
2e702c99 2236 return;
33aea2fd 2237 gold_assert(parameters->options().output_is_position_independent());
a29b0dad 2238 object->error(_("requires unsupported dynamic reloc %u; "
2e702c99 2239 "recompile with -fPIC"),
a29b0dad 2240 r_type);
a036edd8
ILT
2241 this->issued_non_pic_error_ = true;
2242 return;
2243
2244 case elfcpp::R_X86_64_NONE:
2245 gold_unreachable();
2246 }
2247}
2248
7223e9ca
ILT
2249// Return whether we need to make a PLT entry for a relocation of the
2250// given type against a STT_GNU_IFUNC symbol.
2251
fc51264f 2252template<int size>
7223e9ca 2253bool
fc51264f
L
2254Target_x86_64<size>::Scan::reloc_needs_plt_for_ifunc(
2255 Sized_relobj_file<size, false>* object,
6fa2a40b 2256 unsigned int r_type)
7223e9ca 2257{
95a2c8d6
RS
2258 int flags = Scan::get_reference_flags(r_type);
2259 if (flags & Symbol::TLS_REF)
2260 gold_error(_("%s: unsupported TLS reloc %u for IFUNC symbol"),
2e702c99 2261 object->name().c_str(), r_type);
95a2c8d6 2262 return flags != 0;
7223e9ca
ILT
2263}
2264
2e30d253
ILT
2265// Scan a relocation for a local symbol.
2266
fc51264f 2267template<int size>
2e30d253 2268inline void
fc51264f
L
2269Target_x86_64<size>::Scan::local(Symbol_table* symtab,
2270 Layout* layout,
2271 Target_x86_64<size>* target,
2272 Sized_relobj_file<size, false>* object,
2273 unsigned int data_shndx,
2274 Output_section* output_section,
2275 const elfcpp::Rela<size, false>& reloc,
2276 unsigned int r_type,
bfdfa4cd
AM
2277 const elfcpp::Sym<size, false>& lsym,
2278 bool is_discarded)
2e30d253 2279{
bfdfa4cd
AM
2280 if (is_discarded)
2281 return;
2282
7223e9ca 2283 // A local STT_GNU_IFUNC symbol may require a PLT entry.
397b129b
CC
2284 bool is_ifunc = lsym.get_st_type() == elfcpp::STT_GNU_IFUNC;
2285 if (is_ifunc && this->reloc_needs_plt_for_ifunc(object, r_type))
7223e9ca 2286 {
fc51264f 2287 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
7223e9ca
ILT
2288 target->make_local_ifunc_plt_entry(symtab, layout, object, r_sym);
2289 }
2290
2e30d253
ILT
2291 switch (r_type)
2292 {
2293 case elfcpp::R_X86_64_NONE:
6e5710ce
ILT
2294 case elfcpp::R_X86_64_GNU_VTINHERIT:
2295 case elfcpp::R_X86_64_GNU_VTENTRY:
2e30d253
ILT
2296 break;
2297
2298 case elfcpp::R_X86_64_64:
d61c6bd4 2299 // If building a shared library (or a position-independent
dceae3c1
ILT
2300 // executable), we need to create a dynamic relocation for this
2301 // location. The relocation applied at link time will apply the
2302 // link-time value, so we flag the location with an
2303 // R_X86_64_RELATIVE relocation so the dynamic loader can
d61c6bd4 2304 // relocate it easily.
8851ecca 2305 if (parameters->options().output_is_position_independent())
2e702c99
RM
2306 {
2307 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
2308 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
7223e9ca 2309 rela_dyn->add_local_relative(object, r_sym,
62fe925a 2310 (size == 32
fd885f3a
L
2311 ? elfcpp::R_X86_64_RELATIVE64
2312 : elfcpp::R_X86_64_RELATIVE),
7223e9ca
ILT
2313 output_section, data_shndx,
2314 reloc.get_r_offset(),
397b129b 2315 reloc.get_r_addend(), is_ifunc);
2e702c99 2316 }
d61c6bd4
ILT
2317 break;
2318
2e30d253
ILT
2319 case elfcpp::R_X86_64_32:
2320 case elfcpp::R_X86_64_32S:
2321 case elfcpp::R_X86_64_16:
2322 case elfcpp::R_X86_64_8:
96f2030e 2323 // If building a shared library (or a position-independent
dceae3c1
ILT
2324 // executable), we need to create a dynamic relocation for this
2325 // location. We can't use an R_X86_64_RELATIVE relocation
2326 // because that is always a 64-bit relocation.
8851ecca 2327 if (parameters->options().output_is_position_independent())
2e702c99 2328 {
3660ff06
L
2329 // Use R_X86_64_RELATIVE relocation for R_X86_64_32 under x32.
2330 if (size == 32 && r_type == elfcpp::R_X86_64_32)
2331 {
2332 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
2333 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
2334 rela_dyn->add_local_relative(object, r_sym,
2335 elfcpp::R_X86_64_RELATIVE,
2336 output_section, data_shndx,
2337 reloc.get_r_offset(),
2338 reloc.get_r_addend(), is_ifunc);
2339 break;
2340 }
2341
2e702c99 2342 this->check_non_pic(object, r_type, NULL);
a036edd8 2343
2e702c99 2344 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
fc51264f 2345 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
2e702c99 2346 if (lsym.get_st_type() != elfcpp::STT_SECTION)
d491d34e
ILT
2347 rela_dyn->add_local(object, r_sym, r_type, output_section,
2348 data_shndx, reloc.get_r_offset(),
2349 reloc.get_r_addend());
2e702c99
RM
2350 else
2351 {
2352 gold_assert(lsym.get_st_value() == 0);
d491d34e
ILT
2353 unsigned int shndx = lsym.get_st_shndx();
2354 bool is_ordinary;
2355 shndx = object->adjust_sym_shndx(r_sym, shndx,
2356 &is_ordinary);
2357 if (!is_ordinary)
2358 object->error(_("section symbol %u has bad shndx %u"),
2359 r_sym, shndx);
2360 else
2361 rela_dyn->add_local_section(object, shndx,
2362 r_type, output_section,
2363 data_shndx, reloc.get_r_offset(),
2364 reloc.get_r_addend());
2e702c99
RM
2365 }
2366 }
2e30d253
ILT
2367 break;
2368
2369 case elfcpp::R_X86_64_PC64:
2370 case elfcpp::R_X86_64_PC32:
2371 case elfcpp::R_X86_64_PC16:
2372 case elfcpp::R_X86_64_PC8:
2373 break;
2374
f389a824
ILT
2375 case elfcpp::R_X86_64_PLT32:
2376 // Since we know this is a local symbol, we can handle this as a
2377 // PC32 reloc.
2378 break;
2379
fdc2f80f 2380 case elfcpp::R_X86_64_GOTPC32:
e822f2b1 2381 case elfcpp::R_X86_64_GOTOFF64:
fdc2f80f
ILT
2382 case elfcpp::R_X86_64_GOTPC64:
2383 case elfcpp::R_X86_64_PLTOFF64:
2e30d253
ILT
2384 // We need a GOT section.
2385 target->got_section(symtab, layout);
ee9e9e86
ILT
2386 // For PLTOFF64, we'd normally want a PLT section, but since we
2387 // know this is a local symbol, no PLT is needed.
2e30d253
ILT
2388 break;
2389
0ffd9845
ILT
2390 case elfcpp::R_X86_64_GOT64:
2391 case elfcpp::R_X86_64_GOT32:
2392 case elfcpp::R_X86_64_GOTPCREL64:
2393 case elfcpp::R_X86_64_GOTPCREL:
ee9e9e86 2394 case elfcpp::R_X86_64_GOTPLT64:
0ffd9845 2395 {
2e702c99
RM
2396 // The symbol requires a GOT entry.
2397 Output_data_got<64, false>* got = target->got_section(symtab, layout);
2398 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
7223e9ca
ILT
2399
2400 // For a STT_GNU_IFUNC symbol we want the PLT offset. That
2401 // lets function pointers compare correctly with shared
2402 // libraries. Otherwise we would need an IRELATIVE reloc.
2403 bool is_new;
397b129b 2404 if (is_ifunc)
7223e9ca
ILT
2405 is_new = got->add_local_plt(object, r_sym, GOT_TYPE_STANDARD);
2406 else
2407 is_new = got->add_local(object, r_sym, GOT_TYPE_STANDARD);
2e702c99
RM
2408 if (is_new)
2409 {
2410 // If we are generating a shared object, we need to add a
2411 // dynamic relocation for this symbol's GOT entry.
2412 if (parameters->options().output_is_position_independent())
2413 {
2414 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
7bf1f802
ILT
2415 // R_X86_64_RELATIVE assumes a 64-bit relocation.
2416 if (r_type != elfcpp::R_X86_64_GOT32)
7223e9ca
ILT
2417 {
2418 unsigned int got_offset =
2419 object->local_got_offset(r_sym, GOT_TYPE_STANDARD);
2420 rela_dyn->add_local_relative(object, r_sym,
2421 elfcpp::R_X86_64_RELATIVE,
397b129b 2422 got, got_offset, 0, is_ifunc);
7223e9ca 2423 }
2e702c99
RM
2424 else
2425 {
2426 this->check_non_pic(object, r_type, NULL);
2427
2428 gold_assert(lsym.get_st_type() != elfcpp::STT_SECTION);
2429 rela_dyn->add_local(
2430 object, r_sym, r_type, got,
2431 object->local_got_offset(r_sym, GOT_TYPE_STANDARD), 0);
2432 }
2433 }
2434 }
2435 // For GOTPLT64, we'd normally want a PLT section, but since
2436 // we know this is a local symbol, no PLT is needed.
0ffd9845
ILT
2437 }
2438 break;
2439
2e30d253
ILT
2440 case elfcpp::R_X86_64_COPY:
2441 case elfcpp::R_X86_64_GLOB_DAT:
2442 case elfcpp::R_X86_64_JUMP_SLOT:
2443 case elfcpp::R_X86_64_RELATIVE:
7223e9ca 2444 case elfcpp::R_X86_64_IRELATIVE:
d61c17ea 2445 // These are outstanding tls relocs, which are unexpected when linking
2e30d253 2446 case elfcpp::R_X86_64_TPOFF64:
2e30d253 2447 case elfcpp::R_X86_64_DTPMOD64:
2e30d253 2448 case elfcpp::R_X86_64_TLSDESC:
75f2446e
ILT
2449 gold_error(_("%s: unexpected reloc %u in object file"),
2450 object->name().c_str(), r_type);
2e30d253
ILT
2451 break;
2452
d61c17ea 2453 // These are initial tls relocs, which are expected when linking
56622147
ILT
2454 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
2455 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
e041f13d 2456 case elfcpp::R_X86_64_TLSDESC_CALL:
56622147 2457 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
0ffd9845
ILT
2458 case elfcpp::R_X86_64_DTPOFF32:
2459 case elfcpp::R_X86_64_DTPOFF64:
56622147
ILT
2460 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
2461 case elfcpp::R_X86_64_TPOFF32: // Local-exec
2e30d253 2462 {
8851ecca 2463 bool output_is_shared = parameters->options().shared();
e041f13d 2464 const tls::Tls_optimization optimized_type
2e702c99 2465 = Target_x86_64<size>::optimize_tls_reloc(!output_is_shared,
fc51264f 2466 r_type);
2e30d253
ILT
2467 switch (r_type)
2468 {
2e702c99
RM
2469 case elfcpp::R_X86_64_TLSGD: // General-dynamic
2470 if (optimized_type == tls::TLSOPT_NONE)
2471 {
2472 // Create a pair of GOT entries for the module index and
2473 // dtv-relative offset.
2474 Output_data_got<64, false>* got
2475 = target->got_section(symtab, layout);
2476 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
d491d34e
ILT
2477 unsigned int shndx = lsym.get_st_shndx();
2478 bool is_ordinary;
2479 shndx = object->adjust_sym_shndx(r_sym, shndx, &is_ordinary);
2480 if (!is_ordinary)
2481 object->error(_("local symbol %u has bad shndx %u"),
2482 r_sym, shndx);
2e702c99 2483 else
83896202
ILT
2484 got->add_local_pair_with_rel(object, r_sym,
2485 shndx,
2486 GOT_TYPE_TLS_PAIR,
2487 target->rela_dyn_section(layout),
bd73a62d 2488 elfcpp::R_X86_64_DTPMOD64);
2e702c99
RM
2489 }
2490 else if (optimized_type != tls::TLSOPT_TO_LE)
7bf1f802 2491 unsupported_reloc_local(object, r_type);
2e702c99 2492 break;
7bf1f802 2493
2e702c99
RM
2494 case elfcpp::R_X86_64_GOTPC32_TLSDESC:
2495 target->define_tls_base_symbol(symtab, layout);
c2b45e22
CC
2496 if (optimized_type == tls::TLSOPT_NONE)
2497 {
2e702c99
RM
2498 // Create reserved PLT and GOT entries for the resolver.
2499 target->reserve_tlsdesc_entries(symtab, layout);
2500
2501 // Generate a double GOT entry with an
2502 // R_X86_64_TLSDESC reloc. The R_X86_64_TLSDESC reloc
2503 // is resolved lazily, so the GOT entry needs to be in
2504 // an area in .got.plt, not .got. Call got_section to
2505 // make sure the section has been created.
a8df5856 2506 target->got_section(symtab, layout);
2e702c99
RM
2507 Output_data_got<64, false>* got = target->got_tlsdesc_section();
2508 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
e291e7b9
ILT
2509 if (!object->local_has_got_offset(r_sym, GOT_TYPE_TLS_DESC))
2510 {
2511 unsigned int got_offset = got->add_constant(0);
2512 got->add_constant(0);
2513 object->set_local_got_offset(r_sym, GOT_TYPE_TLS_DESC,
2514 got_offset);
2515 Reloc_section* rt = target->rela_tlsdesc_section(layout);
2516 // We store the arguments we need in a vector, and
2517 // use the index into the vector as the parameter
2518 // to pass to the target specific routines.
2519 uintptr_t intarg = target->add_tlsdesc_info(object, r_sym);
2520 void* arg = reinterpret_cast<void*>(intarg);
2521 rt->add_target_specific(elfcpp::R_X86_64_TLSDESC, arg,
2522 got, got_offset, 0);
2523 }
c2b45e22
CC
2524 }
2525 else if (optimized_type != tls::TLSOPT_TO_LE)
56622147 2526 unsupported_reloc_local(object, r_type);
2e30d253
ILT
2527 break;
2528
2e702c99 2529 case elfcpp::R_X86_64_TLSDESC_CALL:
c2b45e22
CC
2530 break;
2531
2e702c99 2532 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
7bf1f802
ILT
2533 if (optimized_type == tls::TLSOPT_NONE)
2534 {
2e702c99
RM
2535 // Create a GOT entry for the module index.
2536 target->got_mod_index_entry(symtab, layout, object);
7bf1f802
ILT
2537 }
2538 else if (optimized_type != tls::TLSOPT_TO_LE)
2539 unsupported_reloc_local(object, r_type);
2540 break;
2541
2e702c99
RM
2542 case elfcpp::R_X86_64_DTPOFF32:
2543 case elfcpp::R_X86_64_DTPOFF64:
e041f13d
ILT
2544 break;
2545
2e702c99 2546 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
535890bb 2547 layout->set_has_static_tls();
2e702c99
RM
2548 if (optimized_type == tls::TLSOPT_NONE)
2549 {
2550 // Create a GOT entry for the tp-relative offset.
2551 Output_data_got<64, false>* got
2552 = target->got_section(symtab, layout);
2553 unsigned int r_sym = elfcpp::elf_r_sym<size>(reloc.get_r_info());
2554 got->add_local_with_rel(object, r_sym, GOT_TYPE_TLS_OFFSET,
83896202
ILT
2555 target->rela_dyn_section(layout),
2556 elfcpp::R_X86_64_TPOFF64);
2e702c99
RM
2557 }
2558 else if (optimized_type != tls::TLSOPT_TO_LE)
2559 unsupported_reloc_local(object, r_type);
2560 break;
0ffd9845 2561
2e702c99 2562 case elfcpp::R_X86_64_TPOFF32: // Local-exec
535890bb 2563 layout->set_has_static_tls();
2e702c99
RM
2564 if (output_is_shared)
2565 unsupported_reloc_local(object, r_type);
2e30d253 2566 break;
e041f13d 2567
2e702c99
RM
2568 default:
2569 gold_unreachable();
2e30d253
ILT
2570 }
2571 }
2572 break;
2e30d253 2573
fdc2f80f
ILT
2574 case elfcpp::R_X86_64_SIZE32:
2575 case elfcpp::R_X86_64_SIZE64:
2e30d253 2576 default:
75f2446e
ILT
2577 gold_error(_("%s: unsupported reloc %u against local symbol"),
2578 object->name().c_str(), r_type);
2e30d253
ILT
2579 break;
2580 }
2581}
2582
2583
e041f13d
ILT
2584// Report an unsupported relocation against a global symbol.
2585
fc51264f 2586template<int size>
e041f13d 2587void
fc51264f
L
2588Target_x86_64<size>::Scan::unsupported_reloc_global(
2589 Sized_relobj_file<size, false>* object,
6fa2a40b
CC
2590 unsigned int r_type,
2591 Symbol* gsym)
e041f13d 2592{
75f2446e 2593 gold_error(_("%s: unsupported reloc %u against global symbol %s"),
a2b1aa12 2594 object->name().c_str(), r_type, gsym->demangled_name().c_str());
e041f13d
ILT
2595}
2596
ce97fa81 2597// Returns true if this relocation type could be that of a function pointer.
fc51264f 2598template<int size>
21bb3914 2599inline bool
fc51264f 2600Target_x86_64<size>::Scan::possible_function_pointer_reloc(unsigned int r_type)
21bb3914 2601{
21bb3914
ST
2602 switch (r_type)
2603 {
2604 case elfcpp::R_X86_64_64:
2605 case elfcpp::R_X86_64_32:
2606 case elfcpp::R_X86_64_32S:
2607 case elfcpp::R_X86_64_16:
2608 case elfcpp::R_X86_64_8:
ce97fa81
ST
2609 case elfcpp::R_X86_64_GOT64:
2610 case elfcpp::R_X86_64_GOT32:
2611 case elfcpp::R_X86_64_GOTPCREL64:
2612 case elfcpp::R_X86_64_GOTPCREL:
2613 case elfcpp::R_X86_64_GOTPLT64:
21bb3914 2614 {
2e702c99 2615 return true;
21bb3914
ST
2616 }
2617 }
2618 return false;
2619}
2620
2621// For safe ICF, scan a relocation for a local symbol to check if it
2622// corresponds to a function pointer being taken. In that case mark
2623// the function whose pointer was taken as not foldable.
2624
fc51264f 2625template<int size>
21bb3914 2626inline bool
fc51264f 2627Target_x86_64<size>::Scan::local_reloc_may_be_function_pointer(
21bb3914
ST
2628 Symbol_table* ,
2629 Layout* ,
fc51264f
L
2630 Target_x86_64<size>* ,
2631 Sized_relobj_file<size, false>* ,
21bb3914
ST
2632 unsigned int ,
2633 Output_section* ,
fc51264f 2634 const elfcpp::Rela<size, false>& ,
21bb3914 2635 unsigned int r_type,
fc51264f 2636 const elfcpp::Sym<size, false>&)
21bb3914
ST
2637{
2638 // When building a shared library, do not fold any local symbols as it is
2639 // not possible to distinguish pointer taken versus a call by looking at
2640 // the relocation types.
2641 return (parameters->options().shared()
2e702c99 2642 || possible_function_pointer_reloc(r_type));
21bb3914
ST
2643}
2644
2645// For safe ICF, scan a relocation for a global symbol to check if it
2646// corresponds to a function pointer being taken. In that case mark
2647// the function whose pointer was taken as not foldable.
2648
fc51264f 2649template<int size>
21bb3914 2650inline bool
fc51264f 2651Target_x86_64<size>::Scan::global_reloc_may_be_function_pointer(
21bb3914
ST
2652 Symbol_table*,
2653 Layout* ,
fc51264f
L
2654 Target_x86_64<size>* ,
2655 Sized_relobj_file<size, false>* ,
21bb3914
ST
2656 unsigned int ,
2657 Output_section* ,
fc51264f 2658 const elfcpp::Rela<size, false>& ,
21bb3914
ST
2659 unsigned int r_type,
2660 Symbol* gsym)
2661{
2662 // When building a shared library, do not fold symbols whose visibility
2663 // is hidden, internal or protected.
2664 return ((parameters->options().shared()
2e702c99 2665 && (gsym->visibility() == elfcpp::STV_INTERNAL
21bb3914
ST
2666 || gsym->visibility() == elfcpp::STV_PROTECTED
2667 || gsym->visibility() == elfcpp::STV_HIDDEN))
2e702c99 2668 || possible_function_pointer_reloc(r_type));
21bb3914
ST
2669}
2670
2e30d253
ILT
2671// Scan a relocation for a global symbol.
2672
fc51264f 2673template<int size>
2e30d253 2674inline void
fc51264f 2675Target_x86_64<size>::Scan::global(Symbol_table* symtab,
2e702c99
RM
2676 Layout* layout,
2677 Target_x86_64<size>* target,
2678 Sized_relobj_file<size, false>* object,
2679 unsigned int data_shndx,
2680 Output_section* output_section,
2681 const elfcpp::Rela<size, false>& reloc,
2682 unsigned int r_type,
2683 Symbol* gsym)
2e30d253 2684{
7223e9ca
ILT
2685 // A STT_GNU_IFUNC symbol may require a PLT entry.
2686 if (gsym->type() == elfcpp::STT_GNU_IFUNC
2687 && this->reloc_needs_plt_for_ifunc(object, r_type))
2688 target->make_plt_entry(symtab, layout, gsym);
2689
2e30d253
ILT
2690 switch (r_type)
2691 {
2692 case elfcpp::R_X86_64_NONE:
6e5710ce
ILT
2693 case elfcpp::R_X86_64_GNU_VTINHERIT:
2694 case elfcpp::R_X86_64_GNU_VTENTRY:
2e30d253
ILT
2695 break;
2696
2697 case elfcpp::R_X86_64_64:
2e30d253
ILT
2698 case elfcpp::R_X86_64_32:
2699 case elfcpp::R_X86_64_32S:
2e30d253 2700 case elfcpp::R_X86_64_16:
2e30d253 2701 case elfcpp::R_X86_64_8:
96f2030e 2702 {
2e702c99
RM
2703 // Make a PLT entry if necessary.
2704 if (gsym->needs_plt_entry())
2705 {
2706 target->make_plt_entry(symtab, layout, gsym);
2707 // Since this is not a PC-relative relocation, we may be
2708 // taking the address of a function. In that case we need to
2709 // set the entry in the dynamic symbol table to the address of
2710 // the PLT entry.
2711 if (gsym->is_from_dynobj() && !parameters->options().shared())
2712 gsym->set_needs_dynsym_value();
2713 }
2714 // Make a dynamic relocation if necessary.
2715 if (gsym->needs_dynamic_reloc(Scan::get_reference_flags(r_type)))
2716 {
2717 if (gsym->may_need_copy_reloc())
2718 {
2719 target->copy_reloc(symtab, layout, object,
2720 data_shndx, output_section, gsym, reloc);
2721 }
1bae613c
L
2722 else if (((size == 64 && r_type == elfcpp::R_X86_64_64)
2723 || (size == 32 && r_type == elfcpp::R_X86_64_32))
7223e9ca
ILT
2724 && gsym->type() == elfcpp::STT_GNU_IFUNC
2725 && gsym->can_use_relative_reloc(false)
2726 && !gsym->is_from_dynobj()
2727 && !gsym->is_undefined()
2728 && !gsym->is_preemptible())
2729 {
2730 // Use an IRELATIVE reloc for a locally defined
2731 // STT_GNU_IFUNC symbol. This makes a function
2732 // address in a PIE executable match the address in a
2733 // shared library that it links against.
67181c72
ILT
2734 Reloc_section* rela_dyn =
2735 target->rela_irelative_section(layout);
7223e9ca
ILT
2736 unsigned int r_type = elfcpp::R_X86_64_IRELATIVE;
2737 rela_dyn->add_symbolless_global_addend(gsym, r_type,
2738 output_section, object,
2739 data_shndx,
2740 reloc.get_r_offset(),
2741 reloc.get_r_addend());
2742 }
b14016f0
L
2743 else if (((size == 64 && r_type == elfcpp::R_X86_64_64)
2744 || (size == 32 && r_type == elfcpp::R_X86_64_32))
2e702c99
RM
2745 && gsym->can_use_relative_reloc(false))
2746 {
2747 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
7223e9ca
ILT
2748 rela_dyn->add_global_relative(gsym, elfcpp::R_X86_64_RELATIVE,
2749 output_section, object,
2750 data_shndx,
2751 reloc.get_r_offset(),
13cf9988 2752 reloc.get_r_addend(), false);
2e702c99
RM
2753 }
2754 else
2755 {
2756 this->check_non_pic(object, r_type, gsym);
2757 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
2758 rela_dyn->add_global(gsym, r_type, output_section, object,
2759 data_shndx, reloc.get_r_offset(),
2760 reloc.get_r_addend());
2761 }
2762 }
d61c6bd4
ILT
2763 }
2764 break;
2765
2766 case elfcpp::R_X86_64_PC64:
2767 case elfcpp::R_X86_64_PC32:
2768 case elfcpp::R_X86_64_PC16:
2769 case elfcpp::R_X86_64_PC8:
2770 {
2e702c99
RM
2771 // Make a PLT entry if necessary.
2772 if (gsym->needs_plt_entry())
2773 target->make_plt_entry(symtab, layout, gsym);
2774 // Make a dynamic relocation if necessary.
2775 if (gsym->needs_dynamic_reloc(Scan::get_reference_flags(r_type)))
2776 {
2777 if (gsym->may_need_copy_reloc())
2778 {
2779 target->copy_reloc(symtab, layout, object,
2780 data_shndx, output_section, gsym, reloc);
2781 }
2782 else
2783 {
2784 this->check_non_pic(object, r_type, gsym);
2785 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
2786 rela_dyn->add_global(gsym, r_type, output_section, object,
2787 data_shndx, reloc.get_r_offset(),
2788 reloc.get_r_addend());
2789 }
2790 }
d61c6bd4 2791 }
2e30d253
ILT
2792 break;
2793
ff006520 2794 case elfcpp::R_X86_64_GOT64:
2e30d253 2795 case elfcpp::R_X86_64_GOT32:
ff006520
ILT
2796 case elfcpp::R_X86_64_GOTPCREL64:
2797 case elfcpp::R_X86_64_GOTPCREL:
2798 case elfcpp::R_X86_64_GOTPLT64:
2e30d253 2799 {
2e702c99
RM
2800 // The symbol requires a GOT entry.
2801 Output_data_got<64, false>* got = target->got_section(symtab, layout);
2802 if (gsym->final_value_is_known())
7223e9ca
ILT
2803 {
2804 // For a STT_GNU_IFUNC symbol we want the PLT address.
2805 if (gsym->type() == elfcpp::STT_GNU_IFUNC)
2806 got->add_global_plt(gsym, GOT_TYPE_STANDARD);
2807 else
2808 got->add_global(gsym, GOT_TYPE_STANDARD);
2809 }
2e702c99
RM
2810 else
2811 {
2812 // If this symbol is not fully resolved, we need to add a
2813 // dynamic relocation for it.
2814 Reloc_section* rela_dyn = target->rela_dyn_section(layout);
07aa62f2
ILT
2815
2816 // Use a GLOB_DAT rather than a RELATIVE reloc if:
2817 //
2818 // 1) The symbol may be defined in some other module.
2819 //
2820 // 2) We are building a shared library and this is a
2821 // protected symbol; using GLOB_DAT means that the dynamic
2822 // linker can use the address of the PLT in the main
2823 // executable when appropriate so that function address
2824 // comparisons work.
2825 //
2826 // 3) This is a STT_GNU_IFUNC symbol in position dependent
2827 // code, again so that function address comparisons work.
7223e9ca
ILT
2828 if (gsym->is_from_dynobj()
2829 || gsym->is_undefined()
2830 || gsym->is_preemptible()
07aa62f2
ILT
2831 || (gsym->visibility() == elfcpp::STV_PROTECTED
2832 && parameters->options().shared())
7223e9ca
ILT
2833 || (gsym->type() == elfcpp::STT_GNU_IFUNC
2834 && parameters->options().output_is_position_independent()))
2e702c99 2835 got->add_global_with_rel(gsym, GOT_TYPE_STANDARD, rela_dyn,
83896202 2836 elfcpp::R_X86_64_GLOB_DAT);
2e702c99
RM
2837 else
2838 {
7223e9ca
ILT
2839 // For a STT_GNU_IFUNC symbol we want to write the PLT
2840 // offset into the GOT, so that function pointer
2841 // comparisons work correctly.
2842 bool is_new;
2843 if (gsym->type() != elfcpp::STT_GNU_IFUNC)
2844 is_new = got->add_global(gsym, GOT_TYPE_STANDARD);
2845 else
2846 {
2847 is_new = got->add_global_plt(gsym, GOT_TYPE_STANDARD);
2848 // Tell the dynamic linker to use the PLT address
2849 // when resolving relocations.
2850 if (gsym->is_from_dynobj()
2851 && !parameters->options().shared())
2852 gsym->set_needs_dynsym_value();
2853 }
2e702c99 2854 if (is_new)
7223e9ca
ILT
2855 {
2856 unsigned int got_off = gsym->got_offset(GOT_TYPE_STANDARD);
2857 rela_dyn->add_global_relative(gsym,
2858 elfcpp::R_X86_64_RELATIVE,
13cf9988 2859 got, got_off, 0, false);
7223e9ca 2860 }
2e702c99
RM
2861 }
2862 }
2863 // For GOTPLT64, we also need a PLT entry (but only if the
2864 // symbol is not fully resolved).
2865 if (r_type == elfcpp::R_X86_64_GOTPLT64
2866 && !gsym->final_value_is_known())
2867 target->make_plt_entry(symtab, layout, gsym);
2e30d253
ILT
2868 }
2869 break;
2870
2871 case elfcpp::R_X86_64_PLT32:
2872 // If the symbol is fully resolved, this is just a PC32 reloc.
2873 // Otherwise we need a PLT entry.
2874 if (gsym->final_value_is_known())
2875 break;
96f2030e
ILT
2876 // If building a shared library, we can also skip the PLT entry
2877 // if the symbol is defined in the output file and is protected
2878 // or hidden.
2879 if (gsym->is_defined()
2e702c99
RM
2880 && !gsym->is_from_dynobj()
2881 && !gsym->is_preemptible())
96f2030e 2882 break;
2e30d253
ILT
2883 target->make_plt_entry(symtab, layout, gsym);
2884 break;
2885
fdc2f80f 2886 case elfcpp::R_X86_64_GOTPC32:
e822f2b1 2887 case elfcpp::R_X86_64_GOTOFF64:
fdc2f80f
ILT
2888 case elfcpp::R_X86_64_GOTPC64:
2889 case elfcpp::R_X86_64_PLTOFF64:
2e30d253
ILT
2890 // We need a GOT section.
2891 target->got_section(symtab, layout);
ee9e9e86
ILT
2892 // For PLTOFF64, we also need a PLT entry (but only if the
2893 // symbol is not fully resolved).
2894 if (r_type == elfcpp::R_X86_64_PLTOFF64
2895 && !gsym->final_value_is_known())
2896 target->make_plt_entry(symtab, layout, gsym);
2e30d253
ILT
2897 break;
2898
2e30d253
ILT
2899 case elfcpp::R_X86_64_COPY:
2900 case elfcpp::R_X86_64_GLOB_DAT:
2901 case elfcpp::R_X86_64_JUMP_SLOT:
2902 case elfcpp::R_X86_64_RELATIVE:
7223e9ca 2903 case elfcpp::R_X86_64_IRELATIVE:
d61c17ea 2904 // These are outstanding tls relocs, which are unexpected when linking
e822f2b1 2905 case elfcpp::R_X86_64_TPOFF64:
2e30d253 2906 case elfcpp::R_X86_64_DTPMOD64:
e822f2b1 2907 case elfcpp::R_X86_64_TLSDESC:
75f2446e
ILT
2908 gold_error(_("%s: unexpected reloc %u in object file"),
2909 object->name().c_str(), r_type);
2e30d253 2910 break;
2e30d253 2911
d61c17ea 2912 // These are initial tls relocs, which are expected for global()
56622147
ILT
2913 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
2914 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
e041f13d 2915 case elfcpp::R_X86_64_TLSDESC_CALL:
56622147 2916 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
0ffd9845
ILT
2917 case elfcpp::R_X86_64_DTPOFF32:
2918 case elfcpp::R_X86_64_DTPOFF64:
56622147
ILT
2919 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
2920 case elfcpp::R_X86_64_TPOFF32: // Local-exec
2e30d253
ILT
2921 {
2922 const bool is_final = gsym->final_value_is_known();
e041f13d 2923 const tls::Tls_optimization optimized_type
2e702c99 2924 = Target_x86_64<size>::optimize_tls_reloc(is_final, r_type);
2e30d253
ILT
2925 switch (r_type)
2926 {
2e702c99 2927 case elfcpp::R_X86_64_TLSGD: // General-dynamic
7bf1f802
ILT
2928 if (optimized_type == tls::TLSOPT_NONE)
2929 {
2e702c99
RM
2930 // Create a pair of GOT entries for the module index and
2931 // dtv-relative offset.
2932 Output_data_got<64, false>* got
2933 = target->got_section(symtab, layout);
2934 got->add_global_pair_with_rel(gsym, GOT_TYPE_TLS_PAIR,
83896202
ILT
2935 target->rela_dyn_section(layout),
2936 elfcpp::R_X86_64_DTPMOD64,
2937 elfcpp::R_X86_64_DTPOFF64);
7bf1f802
ILT
2938 }
2939 else if (optimized_type == tls::TLSOPT_TO_IE)
2940 {
2e702c99
RM
2941 // Create a GOT entry for the tp-relative offset.
2942 Output_data_got<64, false>* got
2943 = target->got_section(symtab, layout);
2944 got->add_global_with_rel(gsym, GOT_TYPE_TLS_OFFSET,
83896202
ILT
2945 target->rela_dyn_section(layout),
2946 elfcpp::R_X86_64_TPOFF64);
7bf1f802
ILT
2947 }
2948 else if (optimized_type != tls::TLSOPT_TO_LE)
2949 unsupported_reloc_global(object, r_type, gsym);
2950 break;
2951
2e702c99
RM
2952 case elfcpp::R_X86_64_GOTPC32_TLSDESC:
2953 target->define_tls_base_symbol(symtab, layout);
c2b45e22
CC
2954 if (optimized_type == tls::TLSOPT_NONE)
2955 {
2e702c99
RM
2956 // Create reserved PLT and GOT entries for the resolver.
2957 target->reserve_tlsdesc_entries(symtab, layout);
2958
2959 // Create a double GOT entry with an R_X86_64_TLSDESC
2960 // reloc. The R_X86_64_TLSDESC reloc is resolved
2961 // lazily, so the GOT entry needs to be in an area in
2962 // .got.plt, not .got. Call got_section to make sure
2963 // the section has been created.
a8df5856 2964 target->got_section(symtab, layout);
2e702c99 2965 Output_data_got<64, false>* got = target->got_tlsdesc_section();
ca09d69a 2966 Reloc_section* rt = target->rela_tlsdesc_section(layout);
2e702c99 2967 got->add_global_pair_with_rel(gsym, GOT_TYPE_TLS_DESC, rt,
83896202 2968 elfcpp::R_X86_64_TLSDESC, 0);
c2b45e22
CC
2969 }
2970 else if (optimized_type == tls::TLSOPT_TO_IE)
2971 {
2e702c99
RM
2972 // Create a GOT entry for the tp-relative offset.
2973 Output_data_got<64, false>* got
2974 = target->got_section(symtab, layout);
2975 got->add_global_with_rel(gsym, GOT_TYPE_TLS_OFFSET,
83896202
ILT
2976 target->rela_dyn_section(layout),
2977 elfcpp::R_X86_64_TPOFF64);
c2b45e22
CC
2978 }
2979 else if (optimized_type != tls::TLSOPT_TO_LE)
56622147 2980 unsupported_reloc_global(object, r_type, gsym);
2e30d253
ILT
2981 break;
2982
2e702c99 2983 case elfcpp::R_X86_64_TLSDESC_CALL:
c2b45e22
CC
2984 break;
2985
2e702c99 2986 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
7bf1f802
ILT
2987 if (optimized_type == tls::TLSOPT_NONE)
2988 {
2e702c99
RM
2989 // Create a GOT entry for the module index.
2990 target->got_mod_index_entry(symtab, layout, object);
7bf1f802
ILT
2991 }
2992 else if (optimized_type != tls::TLSOPT_TO_LE)
2993 unsupported_reloc_global(object, r_type, gsym);
2994 break;
2995
2e702c99
RM
2996 case elfcpp::R_X86_64_DTPOFF32:
2997 case elfcpp::R_X86_64_DTPOFF64:
e041f13d
ILT
2998 break;
2999
2e702c99 3000 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
535890bb 3001 layout->set_has_static_tls();
2e702c99
RM
3002 if (optimized_type == tls::TLSOPT_NONE)
3003 {
3004 // Create a GOT entry for the tp-relative offset.
3005 Output_data_got<64, false>* got
3006 = target->got_section(symtab, layout);
3007 got->add_global_with_rel(gsym, GOT_TYPE_TLS_OFFSET,
83896202
ILT
3008 target->rela_dyn_section(layout),
3009 elfcpp::R_X86_64_TPOFF64);
2e702c99
RM
3010 }
3011 else if (optimized_type != tls::TLSOPT_TO_LE)
3012 unsupported_reloc_global(object, r_type, gsym);
3013 break;
0ffd9845 3014
2e702c99 3015 case elfcpp::R_X86_64_TPOFF32: // Local-exec
535890bb 3016 layout->set_has_static_tls();
2e702c99 3017 if (parameters->options().shared())
b1759dce 3018 unsupported_reloc_global(object, r_type, gsym);
2e30d253 3019 break;
e041f13d 3020
2e702c99
RM
3021 default:
3022 gold_unreachable();
2e30d253
ILT
3023 }
3024 }
3025 break;
fdc2f80f
ILT
3026
3027 case elfcpp::R_X86_64_SIZE32:
3028 case elfcpp::R_X86_64_SIZE64:
2e30d253 3029 default:
75f2446e 3030 gold_error(_("%s: unsupported reloc %u against global symbol %s"),
a2b1aa12 3031 object->name().c_str(), r_type,
2e702c99 3032 gsym->demangled_name().c_str());
2e30d253
ILT
3033 break;
3034 }
3035}
3036
fc51264f 3037template<int size>
6d03d481 3038void
fc51264f
L
3039Target_x86_64<size>::gc_process_relocs(Symbol_table* symtab,
3040 Layout* layout,
3041 Sized_relobj_file<size, false>* object,
3042 unsigned int data_shndx,
3043 unsigned int sh_type,
3044 const unsigned char* prelocs,
3045 size_t reloc_count,
3046 Output_section* output_section,
3047 bool needs_special_offset_handling,
3048 size_t local_symbol_count,
3049 const unsigned char* plocal_symbols)
6d03d481
ST
3050{
3051
3052 if (sh_type == elfcpp::SHT_REL)
3053 {
3054 return;
3055 }
3056
fc51264f 3057 gold::gc_process_relocs<size, false, Target_x86_64<size>, elfcpp::SHT_RELA,
2e702c99 3058 typename Target_x86_64<size>::Scan,
618d6666 3059 typename Target_x86_64<size>::Relocatable_size_for_reloc>(
6d03d481
ST
3060 symtab,
3061 layout,
3062 this,
3063 object,
3064 data_shndx,
3065 prelocs,
3066 reloc_count,
3067 output_section,
3068 needs_special_offset_handling,
3069 local_symbol_count,
3070 plocal_symbols);
2e702c99 3071
6d03d481 3072}
2e30d253
ILT
3073// Scan relocations for a section.
3074
fc51264f 3075template<int size>
2e30d253 3076void
fc51264f
L
3077Target_x86_64<size>::scan_relocs(Symbol_table* symtab,
3078 Layout* layout,
3079 Sized_relobj_file<size, false>* object,
3080 unsigned int data_shndx,
3081 unsigned int sh_type,
3082 const unsigned char* prelocs,
3083 size_t reloc_count,
3084 Output_section* output_section,
3085 bool needs_special_offset_handling,
3086 size_t local_symbol_count,
3087 const unsigned char* plocal_symbols)
2e30d253
ILT
3088{
3089 if (sh_type == elfcpp::SHT_REL)
3090 {
75f2446e
ILT
3091 gold_error(_("%s: unsupported REL reloc section"),
3092 object->name().c_str());
3093 return;
2e30d253
ILT
3094 }
3095
fc51264f 3096 gold::scan_relocs<size, false, Target_x86_64<size>, elfcpp::SHT_RELA,
618d6666 3097 typename Target_x86_64<size>::Scan>(
2e30d253
ILT
3098 symtab,
3099 layout,
3100 this,
3101 object,
3102 data_shndx,
3103 prelocs,
3104 reloc_count,
730cdc88
ILT
3105 output_section,
3106 needs_special_offset_handling,
2e30d253 3107 local_symbol_count,
730cdc88 3108 plocal_symbols);
2e30d253
ILT
3109}
3110
3111// Finalize the sections.
3112
fc51264f 3113template<int size>
2e30d253 3114void
fc51264f 3115Target_x86_64<size>::do_finalize_sections(
f59f41f3
DK
3116 Layout* layout,
3117 const Input_objects*,
e785ec03 3118 Symbol_table* symtab)
2e30d253 3119{
ea715a34
ILT
3120 const Reloc_section* rel_plt = (this->plt_ == NULL
3121 ? NULL
e291e7b9 3122 : this->plt_->rela_plt());
ea715a34 3123 layout->add_target_dynamic_tags(false, this->got_plt_, rel_plt,
612a8d3d 3124 this->rela_dyn_, true, false);
2e702c99 3125
2e30d253
ILT
3126 // Fill in some more dynamic tags.
3127 Output_data_dynamic* const odyn = layout->dynamic_data();
3128 if (odyn != NULL)
3129 {
22b127cc 3130 if (this->plt_ != NULL
ea715a34
ILT
3131 && this->plt_->output_section() != NULL
3132 && this->plt_->has_tlsdesc_entry())
2e30d253 3133 {
ea715a34
ILT
3134 unsigned int plt_offset = this->plt_->get_tlsdesc_plt_offset();
3135 unsigned int got_offset = this->plt_->get_tlsdesc_got_offset();
3136 this->got_->finalize_data_size();
3137 odyn->add_section_plus_offset(elfcpp::DT_TLSDESC_PLT,
3138 this->plt_, plt_offset);
3139 odyn->add_section_plus_offset(elfcpp::DT_TLSDESC_GOT,
3140 this->got_, got_offset);
2e30d253
ILT
3141 }
3142 }
3143
3144 // Emit any relocs we saved in an attempt to avoid generating COPY
3145 // relocs.
12c0daef
ILT
3146 if (this->copy_relocs_.any_saved_relocs())
3147 this->copy_relocs_.emit(this->rela_dyn_section(layout));
e785ec03
ILT
3148
3149 // Set the size of the _GLOBAL_OFFSET_TABLE_ symbol to the size of
3150 // the .got.plt section.
3151 Symbol* sym = this->global_offset_table_;
3152 if (sym != NULL)
3153 {
3154 uint64_t data_size = this->got_plt_->current_data_size();
fc51264f 3155 symtab->get_sized_symbol<size>(sym)->set_symsize(data_size);
e785ec03 3156 }
28a13fec 3157
67181c72
ILT
3158 if (parameters->doing_static_link()
3159 && (this->plt_ == NULL || !this->plt_->has_irelative_section()))
28a13fec
ILT
3160 {
3161 // If linking statically, make sure that the __rela_iplt symbols
3162 // were defined if necessary, even if we didn't create a PLT.
3163 static const Define_symbol_in_segment syms[] =
3164 {
3165 {
3166 "__rela_iplt_start", // name
3167 elfcpp::PT_LOAD, // segment_type
3168 elfcpp::PF_W, // segment_flags_set
3169 elfcpp::PF(0), // segment_flags_clear
3170 0, // value
3171 0, // size
3172 elfcpp::STT_NOTYPE, // type
3173 elfcpp::STB_GLOBAL, // binding
3174 elfcpp::STV_HIDDEN, // visibility
3175 0, // nonvis
3176 Symbol::SEGMENT_START, // offset_from_base
3177 true // only_if_ref
3178 },
3179 {
3180 "__rela_iplt_end", // name
3181 elfcpp::PT_LOAD, // segment_type
3182 elfcpp::PF_W, // segment_flags_set
3183 elfcpp::PF(0), // segment_flags_clear
3184 0, // value
3185 0, // size
3186 elfcpp::STT_NOTYPE, // type
3187 elfcpp::STB_GLOBAL, // binding
3188 elfcpp::STV_HIDDEN, // visibility
3189 0, // nonvis
3190 Symbol::SEGMENT_START, // offset_from_base
3191 true // only_if_ref
3192 }
3193 };
3194
3195 symtab->define_symbols(layout, 2, syms,
3196 layout->script_options()->saw_sections_clause());
3197 }
2e30d253
ILT
3198}
3199
3200// Perform a relocation.
3201
fc51264f 3202template<int size>
2e30d253 3203inline bool
fc51264f
L
3204Target_x86_64<size>::Relocate::relocate(
3205 const Relocate_info<size, false>* relinfo,
3206 Target_x86_64<size>* target,
3207 Output_section*,
3208 size_t relnum,
3209 const elfcpp::Rela<size, false>& rela,
3210 unsigned int r_type,
3211 const Sized_symbol<size>* gsym,
3212 const Symbol_value<size>* psymval,
3213 unsigned char* view,
3214 typename elfcpp::Elf_types<size>::Elf_Addr address,
3215 section_size_type view_size)
2e30d253
ILT
3216{
3217 if (this->skip_call_tls_get_addr_)
3218 {
5efc7cd2 3219 if ((r_type != elfcpp::R_X86_64_PLT32
2e702c99 3220 && r_type != elfcpp::R_X86_64_PC32)
2e30d253 3221 || gsym == NULL
0ffd9845 3222 || strcmp(gsym->name(), "__tls_get_addr") != 0)
2e30d253 3223 {
75f2446e
ILT
3224 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
3225 _("missing expected TLS relocation"));
3226 }
3227 else
3228 {
3229 this->skip_call_tls_get_addr_ = false;
3230 return false;
2e30d253 3231 }
2e30d253
ILT
3232 }
3233
0e804863
ILT
3234 if (view == NULL)
3235 return true;
3236
fc51264f 3237 const Sized_relobj_file<size, false>* object = relinfo->object;
7223e9ca
ILT
3238
3239 // Pick the value to use for symbols defined in the PLT.
fc51264f 3240 Symbol_value<size> symval;
96f2030e 3241 if (gsym != NULL
95a2c8d6 3242 && gsym->use_plt_offset(Scan::get_reference_flags(r_type)))
2e30d253 3243 {
19fec8c1 3244 symval.set_output_value(target->plt_address_for_global(gsym));
2e30d253
ILT
3245 psymval = &symval;
3246 }
7223e9ca
ILT
3247 else if (gsym == NULL && psymval->is_ifunc_symbol())
3248 {
fc51264f 3249 unsigned int r_sym = elfcpp::elf_r_sym<size>(rela.get_r_info());
7223e9ca
ILT
3250 if (object->local_has_plt_offset(r_sym))
3251 {
19fec8c1 3252 symval.set_output_value(target->plt_address_for_local(object, r_sym));
7223e9ca
ILT
3253 psymval = &symval;
3254 }
3255 }
2e30d253 3256
0ffd9845
ILT
3257 const elfcpp::Elf_Xword addend = rela.get_r_addend();
3258
3259 // Get the GOT offset if needed.
96f2030e
ILT
3260 // The GOT pointer points to the end of the GOT section.
3261 // We need to subtract the size of the GOT section to get
3262 // the actual offset to use in the relocation.
0ffd9845
ILT
3263 bool have_got_offset = false;
3264 unsigned int got_offset = 0;
3265 switch (r_type)
3266 {
3267 case elfcpp::R_X86_64_GOT32:
3268 case elfcpp::R_X86_64_GOT64:
3269 case elfcpp::R_X86_64_GOTPLT64:
3270 case elfcpp::R_X86_64_GOTPCREL:
3271 case elfcpp::R_X86_64_GOTPCREL64:
3272 if (gsym != NULL)
2e702c99
RM
3273 {
3274 gold_assert(gsym->has_got_offset(GOT_TYPE_STANDARD));
3275 got_offset = gsym->got_offset(GOT_TYPE_STANDARD) - target->got_size();
3276 }
0ffd9845 3277 else
2e702c99
RM
3278 {
3279 unsigned int r_sym = elfcpp::elf_r_sym<size>(rela.get_r_info());
3280 gold_assert(object->local_has_got_offset(r_sym, GOT_TYPE_STANDARD));
3281 got_offset = (object->local_got_offset(r_sym, GOT_TYPE_STANDARD)
3282 - target->got_size());
3283 }
0ffd9845
ILT
3284 have_got_offset = true;
3285 break;
3286
3287 default:
3288 break;
3289 }
2e30d253
ILT
3290
3291 switch (r_type)
3292 {
3293 case elfcpp::R_X86_64_NONE:
6e5710ce
ILT
3294 case elfcpp::R_X86_64_GNU_VTINHERIT:
3295 case elfcpp::R_X86_64_GNU_VTENTRY:
2e30d253
ILT
3296 break;
3297
3298 case elfcpp::R_X86_64_64:
fc51264f 3299 Relocate_functions<size, false>::rela64(view, object, psymval, addend);
2e30d253
ILT
3300 break;
3301
3302 case elfcpp::R_X86_64_PC64:
fc51264f 3303 Relocate_functions<size, false>::pcrela64(view, object, psymval, addend,
2e702c99 3304 address);
2e30d253
ILT
3305 break;
3306
3307 case elfcpp::R_X86_64_32:
7bb3655e
ILT
3308 // FIXME: we need to verify that value + addend fits into 32 bits:
3309 // uint64_t x = value + addend;
3310 // x == static_cast<uint64_t>(static_cast<uint32_t>(x))
3311 // Likewise for other <=32-bit relocations (but see R_X86_64_32S).
fc51264f 3312 Relocate_functions<size, false>::rela32(view, object, psymval, addend);
2e30d253
ILT
3313 break;
3314
3315 case elfcpp::R_X86_64_32S:
7bb3655e
ILT
3316 // FIXME: we need to verify that value + addend fits into 32 bits:
3317 // int64_t x = value + addend; // note this quantity is signed!
3318 // x == static_cast<int64_t>(static_cast<int32_t>(x))
fc51264f 3319 Relocate_functions<size, false>::rela32(view, object, psymval, addend);
2e30d253
ILT
3320 break;
3321
3322 case elfcpp::R_X86_64_PC32:
fc51264f
L
3323 Relocate_functions<size, false>::pcrela32(view, object, psymval, addend,
3324 address);
2e30d253
ILT
3325 break;
3326
3327 case elfcpp::R_X86_64_16:
fc51264f 3328 Relocate_functions<size, false>::rela16(view, object, psymval, addend);
2e30d253
ILT
3329 break;
3330
3331 case elfcpp::R_X86_64_PC16:
fc51264f
L
3332 Relocate_functions<size, false>::pcrela16(view, object, psymval, addend,
3333 address);
2e30d253
ILT
3334 break;
3335
3336 case elfcpp::R_X86_64_8:
fc51264f 3337 Relocate_functions<size, false>::rela8(view, object, psymval, addend);
2e30d253
ILT
3338 break;
3339
3340 case elfcpp::R_X86_64_PC8:
fc51264f
L
3341 Relocate_functions<size, false>::pcrela8(view, object, psymval, addend,
3342 address);
2e30d253
ILT
3343 break;
3344
3345 case elfcpp::R_X86_64_PLT32:
f389a824 3346 gold_assert(gsym == NULL
2e702c99 3347 || gsym->has_plt_offset()
99f8faca
ILT
3348 || gsym->final_value_is_known()
3349 || (gsym->is_defined()
3350 && !gsym->is_from_dynobj()
3351 && !gsym->is_preemptible()));
ee9e9e86
ILT
3352 // Note: while this code looks the same as for R_X86_64_PC32, it
3353 // behaves differently because psymval was set to point to
3354 // the PLT entry, rather than the symbol, in Scan::global().
fc51264f
L
3355 Relocate_functions<size, false>::pcrela32(view, object, psymval, addend,
3356 address);
2e30d253
ILT
3357 break;
3358
ee9e9e86
ILT
3359 case elfcpp::R_X86_64_PLTOFF64:
3360 {
2e702c99
RM
3361 gold_assert(gsym);
3362 gold_assert(gsym->has_plt_offset()
3363 || gsym->final_value_is_known());
fc51264f 3364 typename elfcpp::Elf_types<size>::Elf_Addr got_address;
ee9e9e86 3365 got_address = target->got_section(NULL, NULL)->address();
fc51264f
L
3366 Relocate_functions<size, false>::rela64(view, object, psymval,
3367 addend - got_address);
ee9e9e86
ILT
3368 }
3369
2e30d253 3370 case elfcpp::R_X86_64_GOT32:
0ffd9845 3371 gold_assert(have_got_offset);
fc51264f 3372 Relocate_functions<size, false>::rela32(view, got_offset, addend);
2e30d253
ILT
3373 break;
3374
e822f2b1
ILT
3375 case elfcpp::R_X86_64_GOTPC32:
3376 {
2e702c99 3377 gold_assert(gsym);
fc51264f 3378 typename elfcpp::Elf_types<size>::Elf_Addr value;
96f2030e 3379 value = target->got_plt_section()->address();
fc51264f 3380 Relocate_functions<size, false>::pcrela32(view, value, addend, address);
e822f2b1
ILT
3381 }
3382 break;
3383
3384 case elfcpp::R_X86_64_GOT64:
3385 // The ABI doc says "Like GOT64, but indicates a PLT entry is needed."
3386 // Since we always add a PLT entry, this is equivalent.
fdc2f80f 3387 case elfcpp::R_X86_64_GOTPLT64:
0ffd9845 3388 gold_assert(have_got_offset);
fc51264f 3389 Relocate_functions<size, false>::rela64(view, got_offset, addend);
e822f2b1
ILT
3390 break;
3391
3392 case elfcpp::R_X86_64_GOTPC64:
3393 {
2e702c99 3394 gold_assert(gsym);
fc51264f 3395 typename elfcpp::Elf_types<size>::Elf_Addr value;
96f2030e 3396 value = target->got_plt_section()->address();
fc51264f 3397 Relocate_functions<size, false>::pcrela64(view, value, addend, address);
e822f2b1
ILT
3398 }
3399 break;
3400
2e30d253
ILT
3401 case elfcpp::R_X86_64_GOTOFF64:
3402 {
fc51264f 3403 typename elfcpp::Elf_types<size>::Elf_Addr value;
2e30d253 3404 value = (psymval->value(object, 0)
96f2030e 3405 - target->got_plt_section()->address());
fc51264f 3406 Relocate_functions<size, false>::rela64(view, value, addend);
2e30d253
ILT
3407 }
3408 break;
3409
3410 case elfcpp::R_X86_64_GOTPCREL:
3411 {
2e702c99
RM
3412 gold_assert(have_got_offset);
3413 typename elfcpp::Elf_types<size>::Elf_Addr value;
3414 value = target->got_plt_section()->address() + got_offset;
3415 Relocate_functions<size, false>::pcrela32(view, value, addend, address);
2e30d253
ILT
3416 }
3417 break;
3418
e822f2b1
ILT
3419 case elfcpp::R_X86_64_GOTPCREL64:
3420 {
2e702c99
RM
3421 gold_assert(have_got_offset);
3422 typename elfcpp::Elf_types<size>::Elf_Addr value;
3423 value = target->got_plt_section()->address() + got_offset;
3424 Relocate_functions<size, false>::pcrela64(view, value, addend, address);
e822f2b1
ILT
3425 }
3426 break;
3427
2e30d253
ILT
3428 case elfcpp::R_X86_64_COPY:
3429 case elfcpp::R_X86_64_GLOB_DAT:
3430 case elfcpp::R_X86_64_JUMP_SLOT:
3431 case elfcpp::R_X86_64_RELATIVE:
7223e9ca 3432 case elfcpp::R_X86_64_IRELATIVE:
d61c17ea 3433 // These are outstanding tls relocs, which are unexpected when linking
2e30d253 3434 case elfcpp::R_X86_64_TPOFF64:
2e30d253 3435 case elfcpp::R_X86_64_DTPMOD64:
2e30d253 3436 case elfcpp::R_X86_64_TLSDESC:
75f2446e
ILT
3437 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
3438 _("unexpected reloc %u in object file"),
3439 r_type);
2e30d253
ILT
3440 break;
3441
d61c17ea 3442 // These are initial tls relocs, which are expected when linking
56622147
ILT
3443 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
3444 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
e041f13d 3445 case elfcpp::R_X86_64_TLSDESC_CALL:
56622147 3446 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
0ffd9845
ILT
3447 case elfcpp::R_X86_64_DTPOFF32:
3448 case elfcpp::R_X86_64_DTPOFF64:
56622147
ILT
3449 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
3450 case elfcpp::R_X86_64_TPOFF32: // Local-exec
7bf1f802 3451 this->relocate_tls(relinfo, target, relnum, rela, r_type, gsym, psymval,
2e702c99 3452 view, address, view_size);
2e30d253 3453 break;
2e30d253 3454
fdc2f80f
ILT
3455 case elfcpp::R_X86_64_SIZE32:
3456 case elfcpp::R_X86_64_SIZE64:
2e30d253 3457 default:
75f2446e
ILT
3458 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
3459 _("unsupported reloc %u"),
3460 r_type);
2e30d253
ILT
3461 break;
3462 }
3463
3464 return true;
3465}
3466
3467// Perform a TLS relocation.
3468
fc51264f 3469template<int size>
2e30d253 3470inline void
fc51264f
L
3471Target_x86_64<size>::Relocate::relocate_tls(
3472 const Relocate_info<size, false>* relinfo,
3473 Target_x86_64<size>* target,
3474 size_t relnum,
3475 const elfcpp::Rela<size, false>& rela,
3476 unsigned int r_type,
3477 const Sized_symbol<size>* gsym,
3478 const Symbol_value<size>* psymval,
3479 unsigned char* view,
3480 typename elfcpp::Elf_types<size>::Elf_Addr address,
3481 section_size_type view_size)
2e30d253 3482{
2e30d253 3483 Output_segment* tls_segment = relinfo->layout->tls_segment();
7bf1f802 3484
fc51264f 3485 const Sized_relobj_file<size, false>* object = relinfo->object;
6a41d30b 3486 const elfcpp::Elf_Xword addend = rela.get_r_addend();
fc51264f 3487 elfcpp::Shdr<size, false> data_shdr(relinfo->data_shdr);
36171d64 3488 bool is_executable = (data_shdr.get_sh_flags() & elfcpp::SHF_EXECINSTR) != 0;
2e30d253 3489
fc51264f 3490 typename elfcpp::Elf_types<size>::Elf_Addr value = psymval->value(relinfo->object, 0);
2e30d253
ILT
3491
3492 const bool is_final = (gsym == NULL
b3705d2a 3493 ? !parameters->options().shared()
2e30d253 3494 : gsym->final_value_is_known());
36171d64 3495 tls::Tls_optimization optimized_type
fc51264f 3496 = Target_x86_64<size>::optimize_tls_reloc(is_final, r_type);
2e30d253
ILT
3497 switch (r_type)
3498 {
56622147 3499 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
36171d64
CC
3500 if (!is_executable && optimized_type == tls::TLSOPT_TO_LE)
3501 {
3502 // If this code sequence is used in a non-executable section,
3503 // we will not optimize the R_X86_64_DTPOFF32/64 relocation,
3504 // on the assumption that it's being used by itself in a debug
3505 // section. Therefore, in the unlikely event that the code
3506 // sequence appears in a non-executable section, we simply
3507 // leave it unoptimized.
3508 optimized_type = tls::TLSOPT_NONE;
3509 }
e041f13d 3510 if (optimized_type == tls::TLSOPT_TO_LE)
2e30d253 3511 {
62855347
ILT
3512 if (tls_segment == NULL)
3513 {
191f1a2d
ILT
3514 gold_assert(parameters->errors()->error_count() > 0
3515 || issue_undefined_symbol_error(gsym));
62855347
ILT
3516 return;
3517 }
2e30d253 3518 this->tls_gd_to_le(relinfo, relnum, tls_segment,
72ec2876 3519 rela, r_type, value, view,
2e30d253
ILT
3520 view_size);
3521 break;
3522 }
7bf1f802 3523 else
2e702c99
RM
3524 {
3525 unsigned int got_type = (optimized_type == tls::TLSOPT_TO_IE
3526 ? GOT_TYPE_TLS_OFFSET
3527 : GOT_TYPE_TLS_PAIR);
3528 unsigned int got_offset;
3529 if (gsym != NULL)
3530 {
3531 gold_assert(gsym->has_got_offset(got_type));
3532 got_offset = gsym->got_offset(got_type) - target->got_size();
3533 }
3534 else
3535 {
3536 unsigned int r_sym = elfcpp::elf_r_sym<size>(rela.get_r_info());
3537 gold_assert(object->local_has_got_offset(r_sym, got_type));
3538 got_offset = (object->local_got_offset(r_sym, got_type)
3539 - target->got_size());
3540 }
3541 if (optimized_type == tls::TLSOPT_TO_IE)
3542 {
3543 value = target->got_plt_section()->address() + got_offset;
3544 this->tls_gd_to_ie(relinfo, relnum, tls_segment, rela, r_type,
3545 value, view, address, view_size);
3546 break;
3547 }
3548 else if (optimized_type == tls::TLSOPT_NONE)
3549 {
3550 // Relocate the field with the offset of the pair of GOT
3551 // entries.
6a41d30b 3552 value = target->got_plt_section()->address() + got_offset;
2e702c99 3553 Relocate_functions<size, false>::pcrela32(view, value, addend,
fc51264f 3554 address);
2e702c99
RM
3555 break;
3556 }
3557 }
72ec2876 3558 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
75f2446e 3559 _("unsupported reloc %u"), r_type);
2e30d253
ILT
3560 break;
3561
c2b45e22
CC
3562 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
3563 case elfcpp::R_X86_64_TLSDESC_CALL:
36171d64
CC
3564 if (!is_executable && optimized_type == tls::TLSOPT_TO_LE)
3565 {
3566 // See above comment for R_X86_64_TLSGD.
3567 optimized_type = tls::TLSOPT_NONE;
3568 }
c2b45e22
CC
3569 if (optimized_type == tls::TLSOPT_TO_LE)
3570 {
62855347
ILT
3571 if (tls_segment == NULL)
3572 {
191f1a2d
ILT
3573 gold_assert(parameters->errors()->error_count() > 0
3574 || issue_undefined_symbol_error(gsym));
62855347
ILT
3575 return;
3576 }
c2b45e22 3577 this->tls_desc_gd_to_le(relinfo, relnum, tls_segment,
2e702c99
RM
3578 rela, r_type, value, view,
3579 view_size);
c2b45e22
CC
3580 break;
3581 }
3582 else
2e702c99
RM
3583 {
3584 unsigned int got_type = (optimized_type == tls::TLSOPT_TO_IE
3585 ? GOT_TYPE_TLS_OFFSET
3586 : GOT_TYPE_TLS_DESC);
3587 unsigned int got_offset = 0;
a8df5856
ILT
3588 if (r_type == elfcpp::R_X86_64_GOTPC32_TLSDESC
3589 && optimized_type == tls::TLSOPT_NONE)
3590 {
3591 // We created GOT entries in the .got.tlsdesc portion of
3592 // the .got.plt section, but the offset stored in the
3593 // symbol is the offset within .got.tlsdesc.
3594 got_offset = (target->got_size()
3595 + target->got_plt_section()->data_size());
3596 }
2e702c99
RM
3597 if (gsym != NULL)
3598 {
3599 gold_assert(gsym->has_got_offset(got_type));
3600 got_offset += gsym->got_offset(got_type) - target->got_size();
3601 }
3602 else
3603 {
3604 unsigned int r_sym = elfcpp::elf_r_sym<size>(rela.get_r_info());
3605 gold_assert(object->local_has_got_offset(r_sym, got_type));
3606 got_offset += (object->local_got_offset(r_sym, got_type)
a8df5856 3607 - target->got_size());
2e702c99
RM
3608 }
3609 if (optimized_type == tls::TLSOPT_TO_IE)
3610 {
62855347
ILT
3611 if (tls_segment == NULL)
3612 {
191f1a2d
ILT
3613 gold_assert(parameters->errors()->error_count() > 0
3614 || issue_undefined_symbol_error(gsym));
62855347
ILT
3615 return;
3616 }
2e702c99
RM
3617 value = target->got_plt_section()->address() + got_offset;
3618 this->tls_desc_gd_to_ie(relinfo, relnum, tls_segment,
3619 rela, r_type, value, view, address,
3620 view_size);
3621 break;
3622 }
3623 else if (optimized_type == tls::TLSOPT_NONE)
3624 {
3625 if (r_type == elfcpp::R_X86_64_GOTPC32_TLSDESC)
3626 {
3627 // Relocate the field with the offset of the pair of GOT
3628 // entries.
3629 value = target->got_plt_section()->address() + got_offset;
3630 Relocate_functions<size, false>::pcrela32(view, value, addend,
fc51264f 3631 address);
2e702c99
RM
3632 }
3633 break;
3634 }
3635 }
c2b45e22
CC
3636 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
3637 _("unsupported reloc %u"), r_type);
3638 break;
3639
56622147 3640 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
36171d64
CC
3641 if (!is_executable && optimized_type == tls::TLSOPT_TO_LE)
3642 {
3643 // See above comment for R_X86_64_TLSGD.
3644 optimized_type = tls::TLSOPT_NONE;
3645 }
e041f13d 3646 if (optimized_type == tls::TLSOPT_TO_LE)
2e702c99 3647 {
62855347
ILT
3648 if (tls_segment == NULL)
3649 {
191f1a2d
ILT
3650 gold_assert(parameters->errors()->error_count() > 0
3651 || issue_undefined_symbol_error(gsym));
62855347
ILT
3652 return;
3653 }
72ec2876
ILT
3654 this->tls_ld_to_le(relinfo, relnum, tls_segment, rela, r_type,
3655 value, view, view_size);
3656 break;
2e702c99 3657 }
7bf1f802 3658 else if (optimized_type == tls::TLSOPT_NONE)
2e702c99
RM
3659 {
3660 // Relocate the field with the offset of the GOT entry for
3661 // the module index.
3662 unsigned int got_offset;
3663 got_offset = (target->got_mod_index_entry(NULL, NULL, NULL)
31d60480 3664 - target->got_size());
6a41d30b 3665 value = target->got_plt_section()->address() + got_offset;
2e702c99 3666 Relocate_functions<size, false>::pcrela32(view, value, addend,
fc51264f 3667 address);
2e702c99
RM
3668 break;
3669 }
72ec2876 3670 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
75f2446e 3671 _("unsupported reloc %u"), r_type);
2e30d253 3672 break;
0ffd9845
ILT
3673
3674 case elfcpp::R_X86_64_DTPOFF32:
36171d64
CC
3675 // This relocation type is used in debugging information.
3676 // In that case we need to not optimize the value. If the
3677 // section is not executable, then we assume we should not
3678 // optimize this reloc. See comments above for R_X86_64_TLSGD,
3679 // R_X86_64_GOTPC32_TLSDESC, R_X86_64_TLSDESC_CALL, and
3680 // R_X86_64_TLSLD.
3681 if (optimized_type == tls::TLSOPT_TO_LE && is_executable)
3682 {
62855347
ILT
3683 if (tls_segment == NULL)
3684 {
191f1a2d
ILT
3685 gold_assert(parameters->errors()->error_count() > 0
3686 || issue_undefined_symbol_error(gsym));
62855347
ILT
3687 return;
3688 }
36171d64
CC
3689 value -= tls_segment->memsz();
3690 }
fc51264f 3691 Relocate_functions<size, false>::rela32(view, value, addend);
0ffd9845
ILT
3692 break;
3693
3694 case elfcpp::R_X86_64_DTPOFF64:
36171d64
CC
3695 // See R_X86_64_DTPOFF32, just above, for why we check for is_executable.
3696 if (optimized_type == tls::TLSOPT_TO_LE && is_executable)
3697 {
62855347
ILT
3698 if (tls_segment == NULL)
3699 {
191f1a2d
ILT
3700 gold_assert(parameters->errors()->error_count() > 0
3701 || issue_undefined_symbol_error(gsym));
62855347
ILT
3702 return;
3703 }
36171d64
CC
3704 value -= tls_segment->memsz();
3705 }
fc51264f 3706 Relocate_functions<size, false>::rela64(view, value, addend);
0ffd9845 3707 break;
2e30d253 3708
56622147
ILT
3709 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
3710 if (optimized_type == tls::TLSOPT_TO_LE)
3711 {
62855347
ILT
3712 if (tls_segment == NULL)
3713 {
191f1a2d
ILT
3714 gold_assert(parameters->errors()->error_count() > 0
3715 || issue_undefined_symbol_error(gsym));
62855347
ILT
3716 return;
3717 }
fc51264f
L
3718 Target_x86_64<size>::Relocate::tls_ie_to_le(relinfo, relnum,
3719 tls_segment, rela,
3720 r_type, value, view,
3721 view_size);
56622147
ILT
3722 break;
3723 }
7bf1f802 3724 else if (optimized_type == tls::TLSOPT_NONE)
2e702c99
RM
3725 {
3726 // Relocate the field with the offset of the GOT entry for
3727 // the tp-relative offset of the symbol.
3728 unsigned int got_offset;
3729 if (gsym != NULL)
3730 {
3731 gold_assert(gsym->has_got_offset(GOT_TYPE_TLS_OFFSET));
3732 got_offset = (gsym->got_offset(GOT_TYPE_TLS_OFFSET)
3733 - target->got_size());
3734 }
3735 else
3736 {
3737 unsigned int r_sym = elfcpp::elf_r_sym<size>(rela.get_r_info());
3738 gold_assert(object->local_has_got_offset(r_sym,
3739 GOT_TYPE_TLS_OFFSET));
3740 got_offset = (object->local_got_offset(r_sym, GOT_TYPE_TLS_OFFSET)
3741 - target->got_size());
3742 }
6a41d30b 3743 value = target->got_plt_section()->address() + got_offset;
2e702c99 3744 Relocate_functions<size, false>::pcrela32(view, value, addend,
fc51264f 3745 address);
2e702c99
RM
3746 break;
3747 }
56622147
ILT
3748 gold_error_at_location(relinfo, relnum, rela.get_r_offset(),
3749 _("unsupported reloc type %u"),
3750 r_type);
3751 break;
0ffd9845 3752
56622147 3753 case elfcpp::R_X86_64_TPOFF32: // Local-exec
62855347
ILT
3754 if (tls_segment == NULL)
3755 {
191f1a2d
ILT
3756 gold_assert(parameters->errors()->error_count() > 0
3757 || issue_undefined_symbol_error(gsym));
62855347
ILT
3758 return;
3759 }
6a41d30b 3760 value -= tls_segment->memsz();
fc51264f 3761 Relocate_functions<size, false>::rela32(view, value, addend);
56622147 3762 break;
2e30d253 3763 }
2e30d253
ILT
3764}
3765
7bf1f802
ILT
3766// Do a relocation in which we convert a TLS General-Dynamic to an
3767// Initial-Exec.
3768
fc51264f 3769template<int size>
7bf1f802 3770inline void
fc51264f
L
3771Target_x86_64<size>::Relocate::tls_gd_to_ie(
3772 const Relocate_info<size, false>* relinfo,
3773 size_t relnum,
3774 Output_segment*,
3775 const elfcpp::Rela<size, false>& rela,
3776 unsigned int,
3777 typename elfcpp::Elf_types<size>::Elf_Addr value,
3778 unsigned char* view,
3779 typename elfcpp::Elf_types<size>::Elf_Addr address,
3780 section_size_type view_size)
7bf1f802 3781{
41194d9f
L
3782 // For SIZE == 64:
3783 // .byte 0x66; leaq foo@tlsgd(%rip),%rdi;
3784 // .word 0x6666; rex64; call __tls_get_addr
3785 // ==> movq %fs:0,%rax; addq x@gottpoff(%rip),%rax
3786 // For SIZE == 32:
3787 // leaq foo@tlsgd(%rip),%rdi;
3788 // .word 0x6666; rex64; call __tls_get_addr
3789 // ==> movl %fs:0,%eax; addq x@gottpoff(%rip),%rax
7bf1f802 3790
7bf1f802 3791 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 12);
7bf1f802 3792 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3793 (memcmp(view + 4, "\x66\x66\x48\xe8", 4) == 0));
7bf1f802 3794
41194d9f
L
3795 if (size == 64)
3796 {
3797 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size,
3798 -4);
3799 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
3800 (memcmp(view - 4, "\x66\x48\x8d\x3d", 4) == 0));
3801 memcpy(view - 4, "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x03\x05\0\0\0\0",
3802 16);
3803 }
3804 else
3805 {
3806 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size,
3807 -3);
3808 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
3809 (memcmp(view - 3, "\x48\x8d\x3d", 3) == 0));
3810 memcpy(view - 3, "\x64\x8b\x04\x25\0\0\0\0\x48\x03\x05\0\0\0\0",
3811 15);
3812 }
7bf1f802 3813
c2b45e22 3814 const elfcpp::Elf_Xword addend = rela.get_r_addend();
fc51264f
L
3815 Relocate_functions<size, false>::pcrela32(view + 8, value, addend - 8,
3816 address);
7bf1f802
ILT
3817
3818 // The next reloc should be a PLT32 reloc against __tls_get_addr.
3819 // We can skip it.
3820 this->skip_call_tls_get_addr_ = true;
3821}
3822
e041f13d 3823// Do a relocation in which we convert a TLS General-Dynamic to a
2e30d253
ILT
3824// Local-Exec.
3825
fc51264f 3826template<int size>
2e30d253 3827inline void
fc51264f
L
3828Target_x86_64<size>::Relocate::tls_gd_to_le(
3829 const Relocate_info<size, false>* relinfo,
3830 size_t relnum,
3831 Output_segment* tls_segment,
3832 const elfcpp::Rela<size, false>& rela,
3833 unsigned int,
3834 typename elfcpp::Elf_types<size>::Elf_Addr value,
3835 unsigned char* view,
3836 section_size_type view_size)
2e30d253 3837{
41194d9f
L
3838 // For SIZE == 64:
3839 // .byte 0x66; leaq foo@tlsgd(%rip),%rdi;
3840 // .word 0x6666; rex64; call __tls_get_addr
3841 // ==> movq %fs:0,%rax; leaq x@tpoff(%rax),%rax
3842 // For SIZE == 32:
3843 // leaq foo@tlsgd(%rip),%rdi;
3844 // .word 0x6666; rex64; call __tls_get_addr
3845 // ==> movl %fs:0,%eax; leaq x@tpoff(%rax),%rax
2e30d253 3846
72ec2876 3847 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 12);
72ec2876 3848 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
41194d9f
L
3849 (memcmp(view + 4, "\x66\x66\x48\xe8", 4) == 0));
3850
3851 if (size == 64)
3852 {
3853 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size,
3854 -4);
3855 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
3856 (memcmp(view - 4, "\x66\x48\x8d\x3d", 4) == 0));
3857 memcpy(view - 4, "\x64\x48\x8b\x04\x25\0\0\0\0\x48\x8d\x80\0\0\0\0",
3858 16);
3859 }
3860 else
3861 {
3862 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size,
3863 -3);
3864 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
3865 (memcmp(view - 3, "\x48\x8d\x3d", 3) == 0));
2e30d253 3866
41194d9f
L
3867 memcpy(view - 3, "\x64\x8b\x04\x25\0\0\0\0\x48\x8d\x80\0\0\0\0",
3868 15);
3869 }
2e30d253 3870
6a41d30b 3871 value -= tls_segment->memsz();
fc51264f 3872 Relocate_functions<size, false>::rela32(view + 8, value, 0);
2e30d253
ILT
3873
3874 // The next reloc should be a PLT32 reloc against __tls_get_addr.
3875 // We can skip it.
3876 this->skip_call_tls_get_addr_ = true;
2e30d253
ILT
3877}
3878
c2b45e22
CC
3879// Do a TLSDESC-style General-Dynamic to Initial-Exec transition.
3880
fc51264f 3881template<int size>
c2b45e22 3882inline void
fc51264f
L
3883Target_x86_64<size>::Relocate::tls_desc_gd_to_ie(
3884 const Relocate_info<size, false>* relinfo,
c2b45e22
CC
3885 size_t relnum,
3886 Output_segment*,
fc51264f 3887 const elfcpp::Rela<size, false>& rela,
c2b45e22 3888 unsigned int r_type,
fc51264f 3889 typename elfcpp::Elf_types<size>::Elf_Addr value,
c2b45e22 3890 unsigned char* view,
fc51264f 3891 typename elfcpp::Elf_types<size>::Elf_Addr address,
c2b45e22
CC
3892 section_size_type view_size)
3893{
3894 if (r_type == elfcpp::R_X86_64_GOTPC32_TLSDESC)
3895 {
3896 // leaq foo@tlsdesc(%rip), %rax
3897 // ==> movq foo@gottpoff(%rip), %rax
3898 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, -3);
3899 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 4);
3900 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3901 view[-3] == 0x48 && view[-2] == 0x8d && view[-1] == 0x05);
c2b45e22
CC
3902 view[-2] = 0x8b;
3903 const elfcpp::Elf_Xword addend = rela.get_r_addend();
fc51264f 3904 Relocate_functions<size, false>::pcrela32(view, value, addend, address);
c2b45e22
CC
3905 }
3906 else
3907 {
3908 // call *foo@tlscall(%rax)
3909 // ==> nop; nop
3910 gold_assert(r_type == elfcpp::R_X86_64_TLSDESC_CALL);
3911 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 2);
3912 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3913 view[0] == 0xff && view[1] == 0x10);
c2b45e22
CC
3914 view[0] = 0x66;
3915 view[1] = 0x90;
3916 }
3917}
3918
3919// Do a TLSDESC-style General-Dynamic to Local-Exec transition.
3920
fc51264f 3921template<int size>
c2b45e22 3922inline void
fc51264f
L
3923Target_x86_64<size>::Relocate::tls_desc_gd_to_le(
3924 const Relocate_info<size, false>* relinfo,
c2b45e22
CC
3925 size_t relnum,
3926 Output_segment* tls_segment,
fc51264f 3927 const elfcpp::Rela<size, false>& rela,
c2b45e22 3928 unsigned int r_type,
fc51264f 3929 typename elfcpp::Elf_types<size>::Elf_Addr value,
c2b45e22
CC
3930 unsigned char* view,
3931 section_size_type view_size)
3932{
3933 if (r_type == elfcpp::R_X86_64_GOTPC32_TLSDESC)
3934 {
3935 // leaq foo@tlsdesc(%rip), %rax
3936 // ==> movq foo@tpoff, %rax
3937 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, -3);
3938 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 4);
3939 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3940 view[-3] == 0x48 && view[-2] == 0x8d && view[-1] == 0x05);
c2b45e22
CC
3941 view[-2] = 0xc7;
3942 view[-1] = 0xc0;
3943 value -= tls_segment->memsz();
fc51264f 3944 Relocate_functions<size, false>::rela32(view, value, 0);
c2b45e22
CC
3945 }
3946 else
3947 {
3948 // call *foo@tlscall(%rax)
3949 // ==> nop; nop
3950 gold_assert(r_type == elfcpp::R_X86_64_TLSDESC_CALL);
3951 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 2);
3952 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3953 view[0] == 0xff && view[1] == 0x10);
c2b45e22
CC
3954 view[0] = 0x66;
3955 view[1] = 0x90;
3956 }
3957}
3958
fc51264f 3959template<int size>
2e30d253 3960inline void
fc51264f
L
3961Target_x86_64<size>::Relocate::tls_ld_to_le(
3962 const Relocate_info<size, false>* relinfo,
3963 size_t relnum,
3964 Output_segment*,
3965 const elfcpp::Rela<size, false>& rela,
3966 unsigned int,
3967 typename elfcpp::Elf_types<size>::Elf_Addr,
3968 unsigned char* view,
3969 section_size_type view_size)
2e30d253 3970{
72ec2876 3971 // leaq foo@tlsld(%rip),%rdi; call __tls_get_addr@plt;
d2cf1c6c 3972 // For SIZE == 64:
72ec2876
ILT
3973 // ... leq foo@dtpoff(%rax),%reg
3974 // ==> .word 0x6666; .byte 0x66; movq %fs:0,%rax ... leaq x@tpoff(%rax),%rdx
d2cf1c6c
L
3975 // For SIZE == 32:
3976 // ... leq foo@dtpoff(%rax),%reg
3977 // ==> nopl 0x0(%rax); movl %fs:0,%eax ... leaq x@tpoff(%rax),%rdx
2e30d253 3978
72ec2876
ILT
3979 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, -3);
3980 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 9);
2e30d253 3981
72ec2876 3982 tls::check_tls(relinfo, relnum, rela.get_r_offset(),
2e702c99 3983 view[-3] == 0x48 && view[-2] == 0x8d && view[-1] == 0x3d);
72ec2876
ILT
3984
3985 tls::check_tls(relinfo, relnum, rela.get_r_offset(), view[4] == 0xe8);
3986
d2cf1c6c
L
3987 if (size == 64)
3988 memcpy(view - 3, "\x66\x66\x66\x64\x48\x8b\x04\x25\0\0\0\0", 12);
3989 else
3990 memcpy(view - 3, "\x0f\x1f\x40\x00\x64\x8b\x04\x25\0\0\0\0", 12);
72ec2876
ILT
3991
3992 // The next reloc should be a PLT32 reloc against __tls_get_addr.
3993 // We can skip it.
3994 this->skip_call_tls_get_addr_ = true;
2e30d253
ILT
3995}
3996
56622147
ILT
3997// Do a relocation in which we convert a TLS Initial-Exec to a
3998// Local-Exec.
3999
fc51264f 4000template<int size>
56622147 4001inline void
fc51264f
L
4002Target_x86_64<size>::Relocate::tls_ie_to_le(
4003 const Relocate_info<size, false>* relinfo,
4004 size_t relnum,
4005 Output_segment* tls_segment,
4006 const elfcpp::Rela<size, false>& rela,
4007 unsigned int,
4008 typename elfcpp::Elf_types<size>::Elf_Addr value,
4009 unsigned char* view,
4010 section_size_type view_size)
56622147
ILT
4011{
4012 // We need to examine the opcodes to figure out which instruction we
4013 // are looking at.
4014
4015 // movq foo@gottpoff(%rip),%reg ==> movq $YY,%reg
4016 // addq foo@gottpoff(%rip),%reg ==> addq $YY,%reg
4017
4018 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, -3);
4019 tls::check_range(relinfo, relnum, rela.get_r_offset(), view_size, 4);
4020
4021 unsigned char op1 = view[-3];
4022 unsigned char op2 = view[-2];
4023 unsigned char op3 = view[-1];
4024 unsigned char reg = op3 >> 3;
4025
4026 if (op2 == 0x8b)
4027 {
4028 // movq
4029 if (op1 == 0x4c)
2e702c99 4030 view[-3] = 0x49;
56622147
ILT
4031 view[-2] = 0xc7;
4032 view[-1] = 0xc0 | reg;
4033 }
4034 else if (reg == 4)
4035 {
4036 // Special handling for %rsp.
4037 if (op1 == 0x4c)
2e702c99 4038 view[-3] = 0x49;
56622147
ILT
4039 view[-2] = 0x81;
4040 view[-1] = 0xc0 | reg;
4041 }
4042 else
4043 {
4044 // addq
4045 if (op1 == 0x4c)
2e702c99 4046 view[-3] = 0x4d;
56622147
ILT
4047 view[-2] = 0x8d;
4048 view[-1] = 0x80 | reg | (reg << 3);
4049 }
4050
6a41d30b 4051 value -= tls_segment->memsz();
fc51264f 4052 Relocate_functions<size, false>::rela32(view, value, 0);
56622147
ILT
4053}
4054
2e30d253
ILT
4055// Relocate section data.
4056
fc51264f 4057template<int size>
2e30d253 4058void
fc51264f
L
4059Target_x86_64<size>::relocate_section(
4060 const Relocate_info<size, false>* relinfo,
364c7fa5
ILT
4061 unsigned int sh_type,
4062 const unsigned char* prelocs,
4063 size_t reloc_count,
4064 Output_section* output_section,
4065 bool needs_special_offset_handling,
4066 unsigned char* view,
fc51264f 4067 typename elfcpp::Elf_types<size>::Elf_Addr address,
364c7fa5
ILT
4068 section_size_type view_size,
4069 const Reloc_symbol_changes* reloc_symbol_changes)
2e30d253
ILT
4070{
4071 gold_assert(sh_type == elfcpp::SHT_RELA);
4072
fc51264f 4073 gold::relocate_section<size, false, Target_x86_64<size>, elfcpp::SHT_RELA,
168a4726
AM
4074 typename Target_x86_64<size>::Relocate,
4075 gold::Default_comdat_behavior>(
2e30d253
ILT
4076 relinfo,
4077 this,
4078 prelocs,
4079 reloc_count,
730cdc88
ILT
4080 output_section,
4081 needs_special_offset_handling,
2e30d253
ILT
4082 view,
4083 address,
364c7fa5
ILT
4084 view_size,
4085 reloc_symbol_changes);
2e30d253
ILT
4086}
4087
94a3fc8b
CC
4088// Apply an incremental relocation. Incremental relocations always refer
4089// to global symbols.
4090
fc51264f 4091template<int size>
94a3fc8b 4092void
fc51264f
L
4093Target_x86_64<size>::apply_relocation(
4094 const Relocate_info<size, false>* relinfo,
4095 typename elfcpp::Elf_types<size>::Elf_Addr r_offset,
94a3fc8b 4096 unsigned int r_type,
fc51264f 4097 typename elfcpp::Elf_types<size>::Elf_Swxword r_addend,
94a3fc8b
CC
4098 const Symbol* gsym,
4099 unsigned char* view,
fc51264f 4100 typename elfcpp::Elf_types<size>::Elf_Addr address,
94a3fc8b
CC
4101 section_size_type view_size)
4102{
fc51264f 4103 gold::apply_relocation<size, false, Target_x86_64<size>,
618d6666 4104 typename Target_x86_64<size>::Relocate>(
94a3fc8b
CC
4105 relinfo,
4106 this,
4107 r_offset,
4108 r_type,
4109 r_addend,
4110 gsym,
4111 view,
4112 address,
4113 view_size);
4114}
4115
6a74a719
ILT
4116// Return the size of a relocation while scanning during a relocatable
4117// link.
4118
fc51264f 4119template<int size>
6a74a719 4120unsigned int
fc51264f 4121Target_x86_64<size>::Relocatable_size_for_reloc::get_size_for_reloc(
6a74a719
ILT
4122 unsigned int r_type,
4123 Relobj* object)
4124{
4125 switch (r_type)
4126 {
4127 case elfcpp::R_X86_64_NONE:
6e5710ce
ILT
4128 case elfcpp::R_X86_64_GNU_VTINHERIT:
4129 case elfcpp::R_X86_64_GNU_VTENTRY:
6a74a719
ILT
4130 case elfcpp::R_X86_64_TLSGD: // Global-dynamic
4131 case elfcpp::R_X86_64_GOTPC32_TLSDESC: // Global-dynamic (from ~oliva url)
4132 case elfcpp::R_X86_64_TLSDESC_CALL:
4133 case elfcpp::R_X86_64_TLSLD: // Local-dynamic
4134 case elfcpp::R_X86_64_DTPOFF32:
4135 case elfcpp::R_X86_64_DTPOFF64:
4136 case elfcpp::R_X86_64_GOTTPOFF: // Initial-exec
4137 case elfcpp::R_X86_64_TPOFF32: // Local-exec
4138 return 0;
4139
4140 case elfcpp::R_X86_64_64:
4141 case elfcpp::R_X86_64_PC64:
4142 case elfcpp::R_X86_64_GOTOFF64:
4143 case elfcpp::R_X86_64_GOTPC64:
4144 case elfcpp::R_X86_64_PLTOFF64:
4145 case elfcpp::R_X86_64_GOT64:
4146 case elfcpp::R_X86_64_GOTPCREL64:
4147 case elfcpp::R_X86_64_GOTPCREL:
4148 case elfcpp::R_X86_64_GOTPLT64:
4149 return 8;
4150
4151 case elfcpp::R_X86_64_32:
4152 case elfcpp::R_X86_64_32S:
4153 case elfcpp::R_X86_64_PC32:
4154 case elfcpp::R_X86_64_PLT32:
4155 case elfcpp::R_X86_64_GOTPC32:
4156 case elfcpp::R_X86_64_GOT32:
4157 return 4;
4158
4159 case elfcpp::R_X86_64_16:
4160 case elfcpp::R_X86_64_PC16:
4161 return 2;
4162
4163 case elfcpp::R_X86_64_8:
4164 case elfcpp::R_X86_64_PC8:
4165 return 1;
4166
4167 case elfcpp::R_X86_64_COPY:
4168 case elfcpp::R_X86_64_GLOB_DAT:
4169 case elfcpp::R_X86_64_JUMP_SLOT:
4170 case elfcpp::R_X86_64_RELATIVE:
7223e9ca 4171 case elfcpp::R_X86_64_IRELATIVE:
6a74a719
ILT
4172 // These are outstanding tls relocs, which are unexpected when linking
4173 case elfcpp::R_X86_64_TPOFF64:
4174 case elfcpp::R_X86_64_DTPMOD64:
4175 case elfcpp::R_X86_64_TLSDESC:
4176 object->error(_("unexpected reloc %u in object file"), r_type);
4177 return 0;
4178
4179 case elfcpp::R_X86_64_SIZE32:
4180 case elfcpp::R_X86_64_SIZE64:
4181 default:
4182 object->error(_("unsupported reloc %u against local symbol"), r_type);
4183 return 0;
4184 }
4185}
4186
4187// Scan the relocs during a relocatable link.
4188
fc51264f 4189template<int size>
6a74a719 4190void
fc51264f
L
4191Target_x86_64<size>::scan_relocatable_relocs(
4192 Symbol_table* symtab,
4193 Layout* layout,
4194 Sized_relobj_file<size, false>* object,
4195 unsigned int data_shndx,
4196 unsigned int sh_type,
4197 const unsigned char* prelocs,
4198 size_t reloc_count,
4199 Output_section* output_section,
4200 bool needs_special_offset_handling,
4201 size_t local_symbol_count,
4202 const unsigned char* plocal_symbols,
4203 Relocatable_relocs* rr)
6a74a719
ILT
4204{
4205 gold_assert(sh_type == elfcpp::SHT_RELA);
4206
4207 typedef gold::Default_scan_relocatable_relocs<elfcpp::SHT_RELA,
4208 Relocatable_size_for_reloc> Scan_relocatable_relocs;
4209
fc51264f 4210 gold::scan_relocatable_relocs<size, false, elfcpp::SHT_RELA,
6a74a719 4211 Scan_relocatable_relocs>(
6a74a719
ILT
4212 symtab,
4213 layout,
4214 object,
4215 data_shndx,
4216 prelocs,
4217 reloc_count,
4218 output_section,
4219 needs_special_offset_handling,
4220 local_symbol_count,
4221 plocal_symbols,
4222 rr);
4223}
4224
4225// Relocate a section during a relocatable link.
4226
fc51264f 4227template<int size>
6a74a719 4228void
7404fe1b 4229Target_x86_64<size>::relocate_relocs(
fc51264f 4230 const Relocate_info<size, false>* relinfo,
6a74a719
ILT
4231 unsigned int sh_type,
4232 const unsigned char* prelocs,
4233 size_t reloc_count,
4234 Output_section* output_section,
62fe925a 4235 typename elfcpp::Elf_types<size>::Elf_Off offset_in_output_section,
6a74a719
ILT
4236 const Relocatable_relocs* rr,
4237 unsigned char* view,
fc51264f 4238 typename elfcpp::Elf_types<size>::Elf_Addr view_address,
6a74a719
ILT
4239 section_size_type view_size,
4240 unsigned char* reloc_view,
4241 section_size_type reloc_view_size)
4242{
4243 gold_assert(sh_type == elfcpp::SHT_RELA);
4244
7404fe1b 4245 gold::relocate_relocs<size, false, elfcpp::SHT_RELA>(
6a74a719
ILT
4246 relinfo,
4247 prelocs,
4248 reloc_count,
4249 output_section,
4250 offset_in_output_section,
4251 rr,
4252 view,
4253 view_address,
4254 view_size,
4255 reloc_view,
4256 reloc_view_size);
4257}
4258
4fb6c25d
ILT
4259// Return the value to use for a dynamic which requires special
4260// treatment. This is how we support equality comparisons of function
4261// pointers across shared library boundaries, as described in the
4262// processor specific ABI supplement.
4263
fc51264f 4264template<int size>
4fb6c25d 4265uint64_t
fc51264f 4266Target_x86_64<size>::do_dynsym_value(const Symbol* gsym) const
4fb6c25d
ILT
4267{
4268 gold_assert(gsym->is_from_dynobj() && gsym->has_plt_offset());
19fec8c1 4269 return this->plt_address_for_global(gsym);
4fb6c25d
ILT
4270}
4271
2e30d253
ILT
4272// Return a string used to fill a code section with nops to take up
4273// the specified length.
4274
fc51264f 4275template<int size>
2e30d253 4276std::string
fc51264f 4277Target_x86_64<size>::do_code_fill(section_size_type length) const
2e30d253
ILT
4278{
4279 if (length >= 16)
4280 {
4281 // Build a jmpq instruction to skip over the bytes.
4282 unsigned char jmp[5];
4283 jmp[0] = 0xe9;
04bf7072 4284 elfcpp::Swap_unaligned<32, false>::writeval(jmp + 1, length - 5);
2e30d253 4285 return (std::string(reinterpret_cast<char*>(&jmp[0]), 5)
2e702c99 4286 + std::string(length - 5, static_cast<char>(0x90)));
2e30d253
ILT
4287 }
4288
4289 // Nop sequences of various lengths.
76677ad0
CC
4290 const char nop1[1] = { '\x90' }; // nop
4291 const char nop2[2] = { '\x66', '\x90' }; // xchg %ax %ax
4292 const char nop3[3] = { '\x0f', '\x1f', '\x00' }; // nop (%rax)
4293 const char nop4[4] = { '\x0f', '\x1f', '\x40', // nop 0(%rax)
2e702c99 4294 '\x00'};
76677ad0
CC
4295 const char nop5[5] = { '\x0f', '\x1f', '\x44', // nop 0(%rax,%rax,1)
4296 '\x00', '\x00' };
4297 const char nop6[6] = { '\x66', '\x0f', '\x1f', // nopw 0(%rax,%rax,1)
2e702c99 4298 '\x44', '\x00', '\x00' };
76677ad0 4299 const char nop7[7] = { '\x0f', '\x1f', '\x80', // nopl 0L(%rax)
2e702c99 4300 '\x00', '\x00', '\x00',
76677ad0
CC
4301 '\x00' };
4302 const char nop8[8] = { '\x0f', '\x1f', '\x84', // nopl 0L(%rax,%rax,1)
2e702c99 4303 '\x00', '\x00', '\x00',
76677ad0
CC
4304 '\x00', '\x00' };
4305 const char nop9[9] = { '\x66', '\x0f', '\x1f', // nopw 0L(%rax,%rax,1)
2e702c99 4306 '\x84', '\x00', '\x00',
76677ad0
CC
4307 '\x00', '\x00', '\x00' };
4308 const char nop10[10] = { '\x66', '\x2e', '\x0f', // nopw %cs:0L(%rax,%rax,1)
2e702c99 4309 '\x1f', '\x84', '\x00',
76677ad0
CC
4310 '\x00', '\x00', '\x00',
4311 '\x00' };
4312 const char nop11[11] = { '\x66', '\x66', '\x2e', // data16
2e702c99 4313 '\x0f', '\x1f', '\x84', // nopw %cs:0L(%rax,%rax,1)
76677ad0
CC
4314 '\x00', '\x00', '\x00',
4315 '\x00', '\x00' };
4316 const char nop12[12] = { '\x66', '\x66', '\x66', // data16; data16
2e702c99 4317 '\x2e', '\x0f', '\x1f', // nopw %cs:0L(%rax,%rax,1)
76677ad0
CC
4318 '\x84', '\x00', '\x00',
4319 '\x00', '\x00', '\x00' };
4320 const char nop13[13] = { '\x66', '\x66', '\x66', // data16; data16; data16
2e702c99 4321 '\x66', '\x2e', '\x0f', // nopw %cs:0L(%rax,%rax,1)
76677ad0
CC
4322 '\x1f', '\x84', '\x00',
4323 '\x00', '\x00', '\x00',
2e702c99 4324 '\x00' };
76677ad0 4325 const char nop14[14] = { '\x66', '\x66', '\x66', // data16; data16; data16
2e702c99 4326 '\x66', '\x66', '\x2e', // data16
76677ad0
CC
4327 '\x0f', '\x1f', '\x84', // nopw %cs:0L(%rax,%rax,1)
4328 '\x00', '\x00', '\x00',
2e702c99 4329 '\x00', '\x00' };
76677ad0 4330 const char nop15[15] = { '\x66', '\x66', '\x66', // data16; data16; data16
2e702c99 4331 '\x66', '\x66', '\x66', // data16; data16
76677ad0
CC
4332 '\x2e', '\x0f', '\x1f', // nopw %cs:0L(%rax,%rax,1)
4333 '\x84', '\x00', '\x00',
2e702c99 4334 '\x00', '\x00', '\x00' };
2e30d253
ILT
4335
4336 const char* nops[16] = {
4337 NULL,
4338 nop1, nop2, nop3, nop4, nop5, nop6, nop7,
4339 nop8, nop9, nop10, nop11, nop12, nop13, nop14, nop15
4340 };
4341
4342 return std::string(nops[length], length);
4343}
4344
e291e7b9
ILT
4345// Return the addend to use for a target specific relocation. The
4346// only target specific relocation is R_X86_64_TLSDESC for a local
4347// symbol. We want to set the addend is the offset of the local
4348// symbol in the TLS segment.
4349
fc51264f 4350template<int size>
e291e7b9 4351uint64_t
fc51264f
L
4352Target_x86_64<size>::do_reloc_addend(void* arg, unsigned int r_type,
4353 uint64_t) const
e291e7b9
ILT
4354{
4355 gold_assert(r_type == elfcpp::R_X86_64_TLSDESC);
4356 uintptr_t intarg = reinterpret_cast<uintptr_t>(arg);
4357 gold_assert(intarg < this->tlsdesc_reloc_info_.size());
4358 const Tlsdesc_info& ti(this->tlsdesc_reloc_info_[intarg]);
fc51264f 4359 const Symbol_value<size>* psymval = ti.object->local_symbol(ti.r_sym);
e291e7b9
ILT
4360 gold_assert(psymval->is_tls_symbol());
4361 // The value of a TLS symbol is the offset in the TLS segment.
4362 return psymval->value(ti.object, 0);
4363}
4364
02d7cd44
ILT
4365// Return the value to use for the base of a DW_EH_PE_datarel offset
4366// in an FDE. Solaris and SVR4 use DW_EH_PE_datarel because their
4367// assembler can not write out the difference between two labels in
4368// different sections, so instead of using a pc-relative value they
4369// use an offset from the GOT.
4370
fc51264f 4371template<int size>
02d7cd44 4372uint64_t
fc51264f 4373Target_x86_64<size>::do_ehframe_datarel_base() const
02d7cd44
ILT
4374{
4375 gold_assert(this->global_offset_table_ != NULL);
4376 Symbol* sym = this->global_offset_table_;
fc51264f 4377 Sized_symbol<size>* ssym = static_cast<Sized_symbol<size>*>(sym);
02d7cd44
ILT
4378 return ssym->value();
4379}
4380
364c7fa5 4381// FNOFFSET in section SHNDX in OBJECT is the start of a function
9b547ce6 4382// compiled with -fsplit-stack. The function calls non-split-stack
364c7fa5
ILT
4383// code. We have to change the function so that it always ensures
4384// that it has enough stack space to run some random function.
4385
fc51264f 4386template<int size>
364c7fa5 4387void
fc51264f
L
4388Target_x86_64<size>::do_calls_non_split(Relobj* object, unsigned int shndx,
4389 section_offset_type fnoffset,
4390 section_size_type fnsize,
4391 unsigned char* view,
4392 section_size_type view_size,
4393 std::string* from,
4394 std::string* to) const
364c7fa5
ILT
4395{
4396 // The function starts with a comparison of the stack pointer and a
4397 // field in the TCB. This is followed by a jump.
4398
4399 // cmp %fs:NN,%rsp
4400 if (this->match_view(view, view_size, fnoffset, "\x64\x48\x3b\x24\x25", 5)
4401 && fnsize > 9)
4402 {
4403 // We will call __morestack if the carry flag is set after this
4404 // comparison. We turn the comparison into an stc instruction
4405 // and some nops.
4406 view[fnoffset] = '\xf9';
4407 this->set_view_to_nop(view, view_size, fnoffset + 1, 8);
4408 }
4409 // lea NN(%rsp),%r10
cbc999b9
ILT
4410 // lea NN(%rsp),%r11
4411 else if ((this->match_view(view, view_size, fnoffset,
4412 "\x4c\x8d\x94\x24", 4)
4413 || this->match_view(view, view_size, fnoffset,
4414 "\x4c\x8d\x9c\x24", 4))
364c7fa5
ILT
4415 && fnsize > 8)
4416 {
4417 // This is loading an offset from the stack pointer for a
4418 // comparison. The offset is negative, so we decrease the
4419 // offset by the amount of space we need for the stack. This
4420 // means we will avoid calling __morestack if there happens to
4421 // be plenty of space on the stack already.
4422 unsigned char* pval = view + fnoffset + 4;
4423 uint32_t val = elfcpp::Swap_unaligned<32, false>::readval(pval);
4424 val -= parameters->options().split_stack_adjust_size();
4425 elfcpp::Swap_unaligned<32, false>::writeval(pval, val);
4426 }
4427 else
4428 {
4429 if (!object->has_no_split_stack())
4430 object->error(_("failed to match split-stack sequence at "
4431 "section %u offset %0zx"),
ac33a407 4432 shndx, static_cast<size_t>(fnoffset));
364c7fa5
ILT
4433 return;
4434 }
4435
4436 // We have to change the function so that it calls
4437 // __morestack_non_split instead of __morestack. The former will
4438 // allocate additional stack space.
4439 *from = "__morestack";
4440 *to = "__morestack_non_split";
4441}
4442
2e702c99
RM
4443// The selector for x86_64 object files. Note this is never instantiated
4444// directly. It's only used in Target_selector_x86_64_nacl, below.
2e30d253 4445
fc51264f 4446template<int size>
36959681 4447class Target_selector_x86_64 : public Target_selector_freebsd
2e30d253
ILT
4448{
4449public:
4450 Target_selector_x86_64()
fc51264f 4451 : Target_selector_freebsd(elfcpp::EM_X86_64, size, false,
2e702c99 4452 (size == 64
fc51264f 4453 ? "elf64-x86-64" : "elf32-x86-64"),
2e702c99 4454 (size == 64
fc51264f
L
4455 ? "elf64-x86-64-freebsd"
4456 : "elf32-x86-64-freebsd"),
4457 (size == 64 ? "elf_x86_64" : "elf32_x86_64"))
2e30d253
ILT
4458 { }
4459
4460 Target*
e96caa79 4461 do_instantiate_target()
fc51264f 4462 { return new Target_x86_64<size>(); }
36959681 4463
2e30d253
ILT
4464};
4465
2e702c99
RM
4466// NaCl variant. It uses different PLT contents.
4467
4468template<int size>
4469class Output_data_plt_x86_64_nacl : public Output_data_plt_x86_64<size>
4470{
4471 public:
4472 Output_data_plt_x86_64_nacl(Layout* layout,
4473 Output_data_got<64, false>* got,
4474 Output_data_space* got_plt,
4475 Output_data_space* got_irelative)
4476 : Output_data_plt_x86_64<size>(layout, plt_entry_size,
4477 got, got_plt, got_irelative)
4478 { }
4479
4480 Output_data_plt_x86_64_nacl(Layout* layout,
4481 Output_data_got<64, false>* got,
4482 Output_data_space* got_plt,
4483 Output_data_space* got_irelative,
4484 unsigned int plt_count)
4485 : Output_data_plt_x86_64<size>(layout, plt_entry_size,
4486 got, got_plt, got_irelative,
4487 plt_count)
4488 { }
4489
4490 protected:
4491 virtual unsigned int
4492 do_get_plt_entry_size() const
4493 { return plt_entry_size; }
4494
4495 virtual void
4496 do_add_eh_frame(Layout* layout)
4497 {
4498 layout->add_eh_frame_for_plt(this,
4499 this->plt_eh_frame_cie,
4500 this->plt_eh_frame_cie_size,
4501 plt_eh_frame_fde,
4502 plt_eh_frame_fde_size);
4503 }
4504
4505 virtual void
4506 do_fill_first_plt_entry(unsigned char* pov,
4507 typename elfcpp::Elf_types<size>::Elf_Addr got_addr,
4508 typename elfcpp::Elf_types<size>::Elf_Addr plt_addr);
4509
4510 virtual unsigned int
4511 do_fill_plt_entry(unsigned char* pov,
4512 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
4513 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
4514 unsigned int got_offset,
4515 unsigned int plt_offset,
4516 unsigned int plt_index);
4517
4518 virtual void
4519 do_fill_tlsdesc_entry(unsigned char* pov,
4520 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
4521 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
4522 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
4523 unsigned int tlsdesc_got_offset,
4524 unsigned int plt_offset);
4525
4526 private:
4527 // The size of an entry in the PLT.
4528 static const int plt_entry_size = 64;
4529
4530 // The first entry in the PLT.
4531 static const unsigned char first_plt_entry[plt_entry_size];
4532
4533 // Other entries in the PLT for an executable.
4534 static const unsigned char plt_entry[plt_entry_size];
4535
4536 // The reserved TLSDESC entry in the PLT for an executable.
4537 static const unsigned char tlsdesc_plt_entry[plt_entry_size];
4538
4539 // The .eh_frame unwind information for the PLT.
4540 static const int plt_eh_frame_fde_size = 32;
4541 static const unsigned char plt_eh_frame_fde[plt_eh_frame_fde_size];
4542};
4543
4544template<int size>
4545class Target_x86_64_nacl : public Target_x86_64<size>
4546{
4547 public:
4548 Target_x86_64_nacl()
4549 : Target_x86_64<size>(&x86_64_nacl_info)
4550 { }
4551
4552 virtual Output_data_plt_x86_64<size>*
4553 do_make_data_plt(Layout* layout,
4554 Output_data_got<64, false>* got,
4555 Output_data_space* got_plt,
4556 Output_data_space* got_irelative)
4557 {
4558 return new Output_data_plt_x86_64_nacl<size>(layout, got, got_plt,
4559 got_irelative);
4560 }
4561
4562 virtual Output_data_plt_x86_64<size>*
4563 do_make_data_plt(Layout* layout,
4564 Output_data_got<64, false>* got,
4565 Output_data_space* got_plt,
4566 Output_data_space* got_irelative,
4567 unsigned int plt_count)
4568 {
4569 return new Output_data_plt_x86_64_nacl<size>(layout, got, got_plt,
4570 got_irelative,
4571 plt_count);
4572 }
4573
93f8221c
RM
4574 virtual std::string
4575 do_code_fill(section_size_type length) const;
4576
2e702c99
RM
4577 private:
4578 static const Target::Target_info x86_64_nacl_info;
4579};
4580
4581template<>
4582const Target::Target_info Target_x86_64_nacl<64>::x86_64_nacl_info =
4583{
4584 64, // size
4585 false, // is_big_endian
4586 elfcpp::EM_X86_64, // machine_code
4587 false, // has_make_symbol
4588 false, // has_resolve
4589 true, // has_code_fill
4590 true, // is_default_stack_executable
4591 true, // can_icf_inline_merge_sections
4592 '\0', // wrap_char
4593 "/lib64/ld-nacl-x86-64.so.1", // dynamic_linker
4594 0x20000, // default_text_segment_address
4595 0x10000, // abi_pagesize (overridable by -z max-page-size)
4596 0x10000, // common_pagesize (overridable by -z common-page-size)
4597 true, // isolate_execinstr
4598 0x10000000, // rosegment_gap
4599 elfcpp::SHN_UNDEF, // small_common_shndx
4600 elfcpp::SHN_X86_64_LCOMMON, // large_common_shndx
4601 0, // small_common_section_flags
4602 elfcpp::SHF_X86_64_LARGE, // large_common_section_flags
4603 NULL, // attributes_section
a67858e0
CC
4604 NULL, // attributes_vendor
4605 "_start" // entry_symbol_name
2e702c99
RM
4606};
4607
4608template<>
4609const Target::Target_info Target_x86_64_nacl<32>::x86_64_nacl_info =
4610{
4611 32, // size
4612 false, // is_big_endian
4613 elfcpp::EM_X86_64, // machine_code
4614 false, // has_make_symbol
4615 false, // has_resolve
4616 true, // has_code_fill
4617 true, // is_default_stack_executable
4618 true, // can_icf_inline_merge_sections
4619 '\0', // wrap_char
4620 "/lib/ld-nacl-x86-64.so.1", // dynamic_linker
4621 0x20000, // default_text_segment_address
4622 0x10000, // abi_pagesize (overridable by -z max-page-size)
4623 0x10000, // common_pagesize (overridable by -z common-page-size)
4624 true, // isolate_execinstr
4625 0x10000000, // rosegment_gap
4626 elfcpp::SHN_UNDEF, // small_common_shndx
4627 elfcpp::SHN_X86_64_LCOMMON, // large_common_shndx
4628 0, // small_common_section_flags
4629 elfcpp::SHF_X86_64_LARGE, // large_common_section_flags
4630 NULL, // attributes_section
a67858e0
CC
4631 NULL, // attributes_vendor
4632 "_start" // entry_symbol_name
2e702c99
RM
4633};
4634
4635#define NACLMASK 0xe0 // 32-byte alignment mask.
4636
4637// The first entry in the PLT.
4638
4639template<int size>
4640const unsigned char
4641Output_data_plt_x86_64_nacl<size>::first_plt_entry[plt_entry_size] =
4642{
4643 0xff, 0x35, // pushq contents of memory address
4644 0, 0, 0, 0, // replaced with address of .got + 8
4645 0x4c, 0x8b, 0x1d, // mov GOT+16(%rip), %r11
4646 0, 0, 0, 0, // replaced with address of .got + 16
4647 0x41, 0x83, 0xe3, NACLMASK, // and $-32, %r11d
4648 0x4d, 0x01, 0xfb, // add %r15, %r11
4649 0x41, 0xff, 0xe3, // jmpq *%r11
4650
4651 // 9-byte nop sequence to pad out to the next 32-byte boundary.
4652 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopl %cs:0x0(%rax,%rax,1)
4653
4654 // 32 bytes of nop to pad out to the standard size
4655 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4656 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4657 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4658 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4659 0x66, // excess data32 prefix
4660 0x90 // nop
4661};
4662
4663template<int size>
4664void
4665Output_data_plt_x86_64_nacl<size>::do_fill_first_plt_entry(
4666 unsigned char* pov,
4667 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
4668 typename elfcpp::Elf_types<size>::Elf_Addr plt_address)
4669{
4670 memcpy(pov, first_plt_entry, plt_entry_size);
4671 elfcpp::Swap_unaligned<32, false>::writeval(pov + 2,
4672 (got_address + 8
4673 - (plt_address + 2 + 4)));
4674 elfcpp::Swap_unaligned<32, false>::writeval(pov + 9,
4675 (got_address + 16
4676 - (plt_address + 9 + 4)));
4677}
4678
4679// Subsequent entries in the PLT.
4680
4681template<int size>
4682const unsigned char
4683Output_data_plt_x86_64_nacl<size>::plt_entry[plt_entry_size] =
4684{
4685 0x4c, 0x8b, 0x1d, // mov name@GOTPCREL(%rip),%r11
4686 0, 0, 0, 0, // replaced with address of symbol in .got
4687 0x41, 0x83, 0xe3, NACLMASK, // and $-32, %r11d
4688 0x4d, 0x01, 0xfb, // add %r15, %r11
4689 0x41, 0xff, 0xe3, // jmpq *%r11
4690
4691 // 15-byte nop sequence to pad out to the next 32-byte boundary.
4692 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4693 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4694
4695 // Lazy GOT entries point here (32-byte aligned).
4696 0x68, // pushq immediate
4697 0, 0, 0, 0, // replaced with index into relocation table
4698 0xe9, // jmp relative
4699 0, 0, 0, 0, // replaced with offset to start of .plt0
4700
4701 // 22 bytes of nop to pad out to the standard size.
4702 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4703 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4704 0x0f, 0x1f, 0x80, 0, 0, 0, 0, // nopl 0x0(%rax)
4705};
4706
4707template<int size>
4708unsigned int
4709Output_data_plt_x86_64_nacl<size>::do_fill_plt_entry(
4710 unsigned char* pov,
4711 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
4712 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
4713 unsigned int got_offset,
4714 unsigned int plt_offset,
4715 unsigned int plt_index)
4716{
4717 memcpy(pov, plt_entry, plt_entry_size);
4718 elfcpp::Swap_unaligned<32, false>::writeval(pov + 3,
4719 (got_address + got_offset
4720 - (plt_address + plt_offset
4721 + 3 + 4)));
4722
4723 elfcpp::Swap_unaligned<32, false>::writeval(pov + 33, plt_index);
4724 elfcpp::Swap_unaligned<32, false>::writeval(pov + 38,
4725 - (plt_offset + 38 + 4));
4726
4727 return 32;
4728}
4729
4730// The reserved TLSDESC entry in the PLT.
4731
4732template<int size>
4733const unsigned char
4734Output_data_plt_x86_64_nacl<size>::tlsdesc_plt_entry[plt_entry_size] =
4735{
4736 0xff, 0x35, // pushq x(%rip)
4737 0, 0, 0, 0, // replaced with address of linkmap GOT entry (at PLTGOT + 8)
4738 0x4c, 0x8b, 0x1d, // mov y(%rip),%r11
4739 0, 0, 0, 0, // replaced with offset of reserved TLSDESC_GOT entry
4740 0x41, 0x83, 0xe3, NACLMASK, // and $-32, %r11d
4741 0x4d, 0x01, 0xfb, // add %r15, %r11
4742 0x41, 0xff, 0xe3, // jmpq *%r11
4743
4744 // 41 bytes of nop to pad out to the standard size.
4745 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4746 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4747 0x66, 0x66, 0x66, 0x66, 0x66, 0x66, // excess data32 prefixes
4748 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4749 0x66, 0x66, // excess data32 prefixes
4750 0x2e, 0x0f, 0x1f, 0x84, 0, 0, 0, 0, 0, // nopw %cs:0x0(%rax,%rax,1)
4751};
4752
4753template<int size>
4754void
4755Output_data_plt_x86_64_nacl<size>::do_fill_tlsdesc_entry(
4756 unsigned char* pov,
4757 typename elfcpp::Elf_types<size>::Elf_Addr got_address,
4758 typename elfcpp::Elf_types<size>::Elf_Addr plt_address,
4759 typename elfcpp::Elf_types<size>::Elf_Addr got_base,
4760 unsigned int tlsdesc_got_offset,
4761 unsigned int plt_offset)
4762{
4763 memcpy(pov, tlsdesc_plt_entry, plt_entry_size);
4764 elfcpp::Swap_unaligned<32, false>::writeval(pov + 2,
4765 (got_address + 8
4766 - (plt_address + plt_offset
4767 + 2 + 4)));
4768 elfcpp::Swap_unaligned<32, false>::writeval(pov + 9,
4769 (got_base
4770 + tlsdesc_got_offset
4771 - (plt_address + plt_offset
4772 + 9 + 4)));
4773}
4774
4775// The .eh_frame unwind information for the PLT.
4776
4777template<int size>
4778const unsigned char
4779Output_data_plt_x86_64_nacl<size>::plt_eh_frame_fde[plt_eh_frame_fde_size] =
4780{
4781 0, 0, 0, 0, // Replaced with offset to .plt.
4782 0, 0, 0, 0, // Replaced with size of .plt.
4783 0, // Augmentation size.
4784 elfcpp::DW_CFA_def_cfa_offset, 16, // DW_CFA_def_cfa_offset: 16.
4785 elfcpp::DW_CFA_advance_loc + 6, // Advance 6 to __PLT__ + 6.
4786 elfcpp::DW_CFA_def_cfa_offset, 24, // DW_CFA_def_cfa_offset: 24.
4787 elfcpp::DW_CFA_advance_loc + 58, // Advance 58 to __PLT__ + 64.
4788 elfcpp::DW_CFA_def_cfa_expression, // DW_CFA_def_cfa_expression.
4789 13, // Block length.
4790 elfcpp::DW_OP_breg7, 8, // Push %rsp + 8.
4791 elfcpp::DW_OP_breg16, 0, // Push %rip.
4792 elfcpp::DW_OP_const1u, 63, // Push 0x3f.
4793 elfcpp::DW_OP_and, // & (%rip & 0x3f).
4794 elfcpp::DW_OP_const1u, 37, // Push 0x25.
4795 elfcpp::DW_OP_ge, // >= ((%rip & 0x3f) >= 0x25)
4796 elfcpp::DW_OP_lit3, // Push 3.
4797 elfcpp::DW_OP_shl, // << (((%rip & 0x3f) >= 0x25) << 3)
4798 elfcpp::DW_OP_plus, // + ((((%rip&0x3f)>=0x25)<<3)+%rsp+8
4799 elfcpp::DW_CFA_nop, // Align to 32 bytes.
4800 elfcpp::DW_CFA_nop
4801};
4802
93f8221c
RM
4803// Return a string used to fill a code section with nops.
4804// For NaCl, long NOPs are only valid if they do not cross
4805// bundle alignment boundaries, so keep it simple with one-byte NOPs.
4806template<int size>
4807std::string
4808Target_x86_64_nacl<size>::do_code_fill(section_size_type length) const
4809{
4810 return std::string(length, static_cast<char>(0x90));
4811}
4812
2e702c99
RM
4813// The selector for x86_64-nacl object files.
4814
4815template<int size>
4816class Target_selector_x86_64_nacl
4817 : public Target_selector_nacl<Target_selector_x86_64<size>,
4818 Target_x86_64_nacl<size> >
4819{
4820 public:
4821 Target_selector_x86_64_nacl()
4822 : Target_selector_nacl<Target_selector_x86_64<size>,
4823 Target_x86_64_nacl<size> >("x86-64",
4824 size == 64
4825 ? "elf64-x86-64-nacl"
4826 : "elf32-x86-64-nacl",
4827 size == 64
4828 ? "elf_x86_64_nacl"
4829 : "elf32_x86_64_nacl")
4830 { }
4831};
4832
4833Target_selector_x86_64_nacl<64> target_selector_x86_64;
4834Target_selector_x86_64_nacl<32> target_selector_x32;
2e30d253
ILT
4835
4836} // End anonymous namespace.
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