ARI fix: OP eol rule.
[deliverable/binutils-gdb.git] / gold / target-reloc.h
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1// target-reloc.h -- target specific relocation support -*- C++ -*-
2
ebdbb458 3// Copyright 2006, 2007, 2008 Free Software Foundation, Inc.
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4// Written by Ian Lance Taylor <iant@google.com>.
5
6// This file is part of gold.
7
8// This program is free software; you can redistribute it and/or modify
9// it under the terms of the GNU General Public License as published by
10// the Free Software Foundation; either version 3 of the License, or
11// (at your option) any later version.
12
13// This program is distributed in the hope that it will be useful,
14// but WITHOUT ANY WARRANTY; without even the implied warranty of
15// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16// GNU General Public License for more details.
17
18// You should have received a copy of the GNU General Public License
19// along with this program; if not, write to the Free Software
20// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21// MA 02110-1301, USA.
22
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23#ifndef GOLD_TARGET_RELOC_H
24#define GOLD_TARGET_RELOC_H
25
26#include "elfcpp.h"
27#include "symtab.h"
6a74a719 28#include "reloc.h"
c06b7b0b 29#include "reloc-types.h"
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30
31namespace gold
32{
33
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34// This function implements the generic part of reloc scanning. The
35// template parameter Scan must be a class type which provides two
36// functions: local() and global(). Those functions implement the
37// machine specific part of scanning. We do it this way to
38// avoidmaking a function call for each relocation, and to avoid
39// repeating the generic code for each target.
92e059d8 40
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41template<int size, bool big_endian, typename Target_type, int sh_type,
42 typename Scan>
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43inline void
44scan_relocs(
45 const General_options& options,
46 Symbol_table* symtab,
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47 Layout* layout,
48 Target_type* target,
f6ce93d6 49 Sized_relobj<size, big_endian>* object,
a3ad94ed 50 unsigned int data_shndx,
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51 const unsigned char* prelocs,
52 size_t reloc_count,
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53 Output_section* output_section,
54 bool needs_special_offset_handling,
92e059d8 55 size_t local_count,
730cdc88 56 const unsigned char* plocal_syms)
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57{
58 typedef typename Reloc_types<sh_type, size, big_endian>::Reloc Reltype;
59 const int reloc_size = Reloc_types<sh_type, size, big_endian>::reloc_size;
60 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
61 Scan scan;
62
63 for (size_t i = 0; i < reloc_count; ++i, prelocs += reloc_size)
64 {
65 Reltype reloc(prelocs);
66
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67 if (needs_special_offset_handling
68 && !output_section->is_input_address_mapped(object, data_shndx,
69 reloc.get_r_offset()))
70 continue;
71
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72 typename elfcpp::Elf_types<size>::Elf_WXword r_info = reloc.get_r_info();
73 unsigned int r_sym = elfcpp::elf_r_sym<size>(r_info);
74 unsigned int r_type = elfcpp::elf_r_type<size>(r_info);
75
76 if (r_sym < local_count)
77 {
a3ad94ed 78 gold_assert(plocal_syms != NULL);
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79 typename elfcpp::Sym<size, big_endian> lsym(plocal_syms
80 + r_sym * sym_size);
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81 unsigned int shndx = lsym.get_st_shndx();
82 bool is_ordinary;
83 shndx = object->adjust_sym_shndx(r_sym, shndx, &is_ordinary);
84 if (is_ordinary
ead1e424 85 && shndx != elfcpp::SHN_UNDEF
d491d34e 86 && !object->is_section_included(shndx))
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87 {
88 // RELOC is a relocation against a local symbol in a
89 // section we are discarding. We can ignore this
90 // relocation. It will eventually become a reloc
91 // against the value zero.
92 //
93 // FIXME: We should issue a warning if this is an
94 // allocated section; is this the best place to do it?
95 //
96 // FIXME: The old GNU linker would in some cases look
97 // for the linkonce section which caused this section to
98 // be discarded, and, if the other section was the same
99 // size, change the reloc to refer to the other section.
100 // That seems risky and weird to me, and I don't know of
101 // any case where it is actually required.
102
103 continue;
104 }
105
a3ad94ed 106 scan.local(options, symtab, layout, target, object, data_shndx,
07f397ab 107 output_section, reloc, r_type, lsym);
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108 }
109 else
110 {
730cdc88 111 Symbol* gsym = object->global_symbol(r_sym);
a3ad94ed 112 gold_assert(gsym != NULL);
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113 if (gsym->is_forwarder())
114 gsym = symtab->resolve_forwards(gsym);
115
a3ad94ed 116 scan.global(options, symtab, layout, target, object, data_shndx,
07f397ab 117 output_section, reloc, r_type, gsym);
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118 }
119 }
120}
121
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122// Behavior for relocations to discarded comdat sections.
123
124enum Comdat_behavior
125{
126 CB_UNDETERMINED, // Not yet determined -- need to look at section name.
127 CB_PRETEND, // Attempt to map to the corresponding kept section.
128 CB_IGNORE, // Ignore the relocation.
129 CB_WARNING // Print a warning.
130};
131
132// Decide what the linker should do for relocations that refer to discarded
133// comdat sections. This decision is based on the name of the section being
134// relocated.
135
136inline Comdat_behavior
137get_comdat_behavior(const char* name)
138{
139 if (Layout::is_debug_info_section(name))
140 return CB_PRETEND;
141 if (strcmp(name, ".eh_frame") == 0
142 || strcmp(name, ".gcc_except_table") == 0)
143 return CB_IGNORE;
144 return CB_WARNING;
145}
146
92e059d8 147// This function implements the generic part of relocation processing.
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148// The template parameter Relocate must be a class type which provides
149// a single function, relocate(), which implements the machine
150// specific part of a relocation.
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151
152// SIZE is the ELF size: 32 or 64. BIG_ENDIAN is the endianness of
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153// the data. SH_TYPE is the section type: SHT_REL or SHT_RELA.
154// RELOCATE implements operator() to do a relocation.
61ba1cf9 155
92e059d8 156// PRELOCS points to the relocation data. RELOC_COUNT is the number
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157// of relocs. OUTPUT_SECTION is the output section.
158// NEEDS_SPECIAL_OFFSET_HANDLING is true if input offsets need to be
159// mapped to output offsets.
160
161// VIEW is the section data, VIEW_ADDRESS is its memory address, and
162// VIEW_SIZE is the size. These refer to the input section, unless
163// NEEDS_SPECIAL_OFFSET_HANDLING is true, in which case they refer to
164// the output section.
61ba1cf9 165
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166template<int size, bool big_endian, typename Target_type, int sh_type,
167 typename Relocate>
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168inline void
169relocate_section(
92e059d8 170 const Relocate_info<size, big_endian>* relinfo,
ead1e424 171 Target_type* target,
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172 const unsigned char* prelocs,
173 size_t reloc_count,
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174 Output_section* output_section,
175 bool needs_special_offset_handling,
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176 unsigned char* view,
177 typename elfcpp::Elf_types<size>::Elf_Addr view_address,
fe8718a4 178 section_size_type view_size)
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179{
180 typedef typename Reloc_types<sh_type, size, big_endian>::Reloc Reltype;
181 const int reloc_size = Reloc_types<sh_type, size, big_endian>::reloc_size;
182 Relocate relocate;
183
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184 Sized_relobj<size, big_endian>* object = relinfo->object;
185 unsigned int local_count = object->local_symbol_count();
92e059d8 186
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187 Comdat_behavior comdat_behavior = CB_UNDETERMINED;
188
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189 for (size_t i = 0; i < reloc_count; ++i, prelocs += reloc_size)
190 {
191 Reltype reloc(prelocs);
192
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193 section_offset_type offset =
194 convert_to_section_size_type(reloc.get_r_offset());
61ba1cf9 195
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196 if (needs_special_offset_handling)
197 {
198 offset = output_section->output_offset(relinfo->object,
199 relinfo->data_shndx,
200 offset);
201 if (offset == -1)
202 continue;
203 }
204
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205 typename elfcpp::Elf_types<size>::Elf_WXword r_info = reloc.get_r_info();
206 unsigned int r_sym = elfcpp::elf_r_sym<size>(r_info);
207 unsigned int r_type = elfcpp::elf_r_type<size>(r_info);
208
c06b7b0b 209 const Sized_symbol<size>* sym;
61ba1cf9 210
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211 Symbol_value<size> symval;
212 const Symbol_value<size> *psymval;
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213 if (r_sym < local_count)
214 {
215 sym = NULL;
730cdc88 216 psymval = object->local_symbol(r_sym);
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217
218 // If the local symbol belongs to a section we are discarding,
219 // and that section is a debug section, try to find the
220 // corresponding kept section and map this symbol to its
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221 // counterpart in the kept section. The symbol must not
222 // correspond to a section we are folding.
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223 bool is_ordinary;
224 unsigned int shndx = psymval->input_shndx(&is_ordinary);
225 if (is_ordinary
226 && shndx != elfcpp::SHN_UNDEF
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227 && !object->is_section_included(shndx)
228 && !(relinfo->symtab->is_section_folded(object, shndx)))
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229 {
230 if (comdat_behavior == CB_UNDETERMINED)
231 {
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232 std::string name = object->section_name(relinfo->data_shndx);
233 comdat_behavior = get_comdat_behavior(name.c_str());
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234 }
235 if (comdat_behavior == CB_PRETEND)
236 {
237 bool found;
238 typename elfcpp::Elf_types<size>::Elf_Addr value =
239 object->map_to_kept_section(shndx, &found);
240 if (found)
241 symval.set_output_value(value + psymval->input_value());
242 else
243 symval.set_output_value(0);
244 }
245 else
246 {
247 if (comdat_behavior == CB_WARNING)
248 gold_warning_at_location(relinfo, i, offset,
249 _("Relocation refers to discarded "
250 "comdat section"));
251 symval.set_output_value(0);
252 }
253 symval.set_no_output_symtab_entry();
254 psymval = &symval;
255 }
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256 }
257 else
258 {
730cdc88 259 const Symbol* gsym = object->global_symbol(r_sym);
a3ad94ed 260 gold_assert(gsym != NULL);
61ba1cf9 261 if (gsym->is_forwarder())
92e059d8 262 gsym = relinfo->symtab->resolve_forwards(gsym);
61ba1cf9 263
c06b7b0b 264 sym = static_cast<const Sized_symbol<size>*>(gsym);
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265 if (sym->has_symtab_index())
266 symval.set_output_symtab_index(sym->symtab_index());
267 else
268 symval.set_no_output_symtab_entry();
269 symval.set_output_value(sym->value());
270 psymval = &symval;
ead1e424 271 }
61ba1cf9 272
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273 if (!relocate.relocate(relinfo, target, output_section, i, reloc,
274 r_type, sym, psymval, view + offset,
275 view_address + offset, view_size))
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276 continue;
277
fe8718a4 278 if (offset < 0 || static_cast<section_size_type>(offset) >= view_size)
ead1e424 279 {
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280 gold_error_at_location(relinfo, i, offset,
281 _("reloc has bad offset %zu"),
282 static_cast<size_t>(offset));
283 continue;
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284 }
285
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286 if (sym != NULL
287 && sym->is_undefined()
436ca963 288 && sym->binding() != elfcpp::STB_WEAK
9c2d0ef9 289 && !target->is_defined_by_abi(sym)
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290 && (!parameters->options().shared() // -shared
291 || parameters->options().defs())) // -z defs
f073bbf7 292 gold_undefined_symbol_at_location(sym, relinfo, i, offset);
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293
294 if (sym != NULL && sym->has_warning())
75f2446e 295 relinfo->symtab->issue_warning(sym, relinfo, i, offset);
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296 }
297}
298
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299// This class may be used as a typical class for the
300// Scan_relocatable_reloc parameter to scan_relocatable_relocs. The
301// template parameter Classify_reloc must be a class type which
302// provides a function get_size_for_reloc which returns the number of
303// bytes to which a reloc applies. This class is intended to capture
304// the most typical target behaviour, while still permitting targets
305// to define their own independent class for Scan_relocatable_reloc.
306
307template<int sh_type, typename Classify_reloc>
308class Default_scan_relocatable_relocs
309{
310 public:
311 // Return the strategy to use for a local symbol which is not a
312 // section symbol, given the relocation type.
313 inline Relocatable_relocs::Reloc_strategy
68943102 314 local_non_section_strategy(unsigned int r_type, Relobj*, unsigned int r_sym)
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315 {
316 // We assume that relocation type 0 is NONE. Targets which are
317 // different must override.
68943102 318 if (r_type == 0 && r_sym == 0)
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319 return Relocatable_relocs::RELOC_DISCARD;
320 return Relocatable_relocs::RELOC_COPY;
321 }
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322
323 // Return the strategy to use for a local symbol which is a section
324 // symbol, given the relocation type.
325 inline Relocatable_relocs::Reloc_strategy
326 local_section_strategy(unsigned int r_type, Relobj* object)
327 {
328 if (sh_type == elfcpp::SHT_RELA)
329 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA;
330 else
331 {
332 Classify_reloc classify;
333 switch (classify.get_size_for_reloc(r_type, object))
334 {
335 case 0:
7019cd25 336 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_0;
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337 case 1:
338 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_1;
339 case 2:
340 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_2;
341 case 4:
342 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_4;
343 case 8:
344 return Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_8;
345 default:
346 gold_unreachable();
347 }
348 }
349 }
350
351 // Return the strategy to use for a global symbol, given the
352 // relocation type, the object, and the symbol index.
353 inline Relocatable_relocs::Reloc_strategy
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354 global_strategy(unsigned int, Relobj*, unsigned int)
355 { return Relocatable_relocs::RELOC_COPY; }
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356};
357
358// Scan relocs during a relocatable link. This is a default
359// definition which should work for most targets.
360// Scan_relocatable_reloc must name a class type which provides three
361// functions which return a Relocatable_relocs::Reloc_strategy code:
362// global_strategy, local_non_section_strategy, and
363// local_section_strategy. Most targets should be able to use
364// Default_scan_relocatable_relocs as this class.
365
7019cd25 366template<int size, bool big_endian, int sh_type,
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367 typename Scan_relocatable_reloc>
368void
369scan_relocatable_relocs(
370 const General_options&,
371 Symbol_table*,
372 Layout*,
373 Sized_relobj<size, big_endian>* object,
374 unsigned int data_shndx,
375 const unsigned char* prelocs,
376 size_t reloc_count,
377 Output_section* output_section,
378 bool needs_special_offset_handling,
379 size_t local_symbol_count,
380 const unsigned char* plocal_syms,
381 Relocatable_relocs* rr)
382{
383 typedef typename Reloc_types<sh_type, size, big_endian>::Reloc Reltype;
384 const int reloc_size = Reloc_types<sh_type, size, big_endian>::reloc_size;
385 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
386 Scan_relocatable_reloc scan;
387
388 for (size_t i = 0; i < reloc_count; ++i, prelocs += reloc_size)
389 {
390 Reltype reloc(prelocs);
391
392 Relocatable_relocs::Reloc_strategy strategy;
393
394 if (needs_special_offset_handling
395 && !output_section->is_input_address_mapped(object, data_shndx,
396 reloc.get_r_offset()))
397 strategy = Relocatable_relocs::RELOC_DISCARD;
398 else
399 {
400 typename elfcpp::Elf_types<size>::Elf_WXword r_info =
401 reloc.get_r_info();
402 const unsigned int r_sym = elfcpp::elf_r_sym<size>(r_info);
403 const unsigned int r_type = elfcpp::elf_r_type<size>(r_info);
404
405 if (r_sym >= local_symbol_count)
406 strategy = scan.global_strategy(r_type, object, r_sym);
407 else
408 {
409 gold_assert(plocal_syms != NULL);
410 typename elfcpp::Sym<size, big_endian> lsym(plocal_syms
411 + r_sym * sym_size);
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412 unsigned int shndx = lsym.get_st_shndx();
413 bool is_ordinary;
414 shndx = object->adjust_sym_shndx(r_sym, shndx, &is_ordinary);
415 if (is_ordinary
6a74a719 416 && shndx != elfcpp::SHN_UNDEF
d491d34e 417 && !object->is_section_included(shndx))
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418 {
419 // RELOC is a relocation against a local symbol
420 // defined in a section we are discarding. Discard
421 // the reloc. FIXME: Should we issue a warning?
422 strategy = Relocatable_relocs::RELOC_DISCARD;
423 }
424 else if (lsym.get_st_type() != elfcpp::STT_SECTION)
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425 strategy = scan.local_non_section_strategy(r_type, object,
426 r_sym);
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427 else
428 {
429 strategy = scan.local_section_strategy(r_type, object);
430 if (strategy != Relocatable_relocs::RELOC_DISCARD)
ef9beddf 431 object->output_section(shndx)->set_needs_symtab_index();
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432 }
433 }
434 }
435
436 rr->set_next_reloc_strategy(strategy);
437 }
438}
439
440// Relocate relocs during a relocatable link. This is a default
441// definition which should work for most targets.
442
7019cd25 443template<int size, bool big_endian, int sh_type>
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444void
445relocate_for_relocatable(
446 const Relocate_info<size, big_endian>* relinfo,
447 const unsigned char* prelocs,
448 size_t reloc_count,
449 Output_section* output_section,
ef9beddf 450 typename elfcpp::Elf_types<size>::Elf_Addr offset_in_output_section,
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451 const Relocatable_relocs* rr,
452 unsigned char* view,
6be6f3bd 453 typename elfcpp::Elf_types<size>::Elf_Addr view_address,
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454 section_size_type,
455 unsigned char* reloc_view,
456 section_size_type reloc_view_size)
457{
ef9beddf 458 typedef typename elfcpp::Elf_types<size>::Elf_Addr Address;
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459 typedef typename Reloc_types<sh_type, size, big_endian>::Reloc Reltype;
460 typedef typename Reloc_types<sh_type, size, big_endian>::Reloc_write
461 Reltype_write;
462 const int reloc_size = Reloc_types<sh_type, size, big_endian>::reloc_size;
eff45813 463 const Address invalid_address = static_cast<Address>(0) - 1;
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464
465 Sized_relobj<size, big_endian>* const object = relinfo->object;
466 const unsigned int local_count = object->local_symbol_count();
467
468 unsigned char* pwrite = reloc_view;
469
470 for (size_t i = 0; i < reloc_count; ++i, prelocs += reloc_size)
471 {
472 Relocatable_relocs::Reloc_strategy strategy = rr->strategy(i);
473 if (strategy == Relocatable_relocs::RELOC_DISCARD)
474 continue;
475
476 Reltype reloc(prelocs);
477 Reltype_write reloc_write(pwrite);
478
479 typename elfcpp::Elf_types<size>::Elf_WXword r_info = reloc.get_r_info();
480 const unsigned int r_sym = elfcpp::elf_r_sym<size>(r_info);
481 const unsigned int r_type = elfcpp::elf_r_type<size>(r_info);
482
483 // Get the new symbol index.
484
485 unsigned int new_symndx;
486 if (r_sym < local_count)
487 {
488 switch (strategy)
489 {
490 case Relocatable_relocs::RELOC_COPY:
491 new_symndx = object->symtab_index(r_sym);
492 gold_assert(new_symndx != -1U);
493 break;
494
495 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA:
7019cd25 496 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_0:
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497 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_1:
498 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_2:
499 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_4:
500 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_8:
501 {
502 // We are adjusting a section symbol. We need to find
503 // the symbol table index of the section symbol for
504 // the output section corresponding to input section
505 // in which this symbol is defined.
506 gold_assert(r_sym < local_count);
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507 bool is_ordinary;
508 unsigned int shndx =
509 object->local_symbol_input_shndx(r_sym, &is_ordinary);
510 gold_assert(is_ordinary);
ef9beddf 511 Output_section* os = object->output_section(shndx);
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512 gold_assert(os != NULL);
513 gold_assert(os->needs_symtab_index());
514 new_symndx = os->symtab_index();
515 }
516 break;
517
518 default:
519 gold_unreachable();
520 }
521 }
522 else
523 {
524 const Symbol* gsym = object->global_symbol(r_sym);
525 gold_assert(gsym != NULL);
526 if (gsym->is_forwarder())
527 gsym = relinfo->symtab->resolve_forwards(gsym);
528
529 gold_assert(gsym->has_symtab_index());
530 new_symndx = gsym->symtab_index();
531 }
532
533 // Get the new offset--the location in the output section where
534 // this relocation should be applied.
535
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536 Address offset = reloc.get_r_offset();
537 Address new_offset;
eff45813 538 if (offset_in_output_section != invalid_address)
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539 new_offset = offset + offset_in_output_section;
540 else
541 {
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542 section_offset_type sot_offset =
543 convert_types<section_offset_type, Address>(offset);
544 section_offset_type new_sot_offset =
545 output_section->output_offset(object, relinfo->data_shndx,
546 sot_offset);
547 gold_assert(new_sot_offset != -1);
548 new_offset = new_sot_offset;
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549 }
550
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551 // In an object file, r_offset is an offset within the section.
552 // In an executable or dynamic object, generated by
553 // --emit-relocs, r_offset is an absolute address.
554 if (!parameters->options().relocatable())
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555 {
556 new_offset += view_address;
eff45813 557 if (offset_in_output_section != invalid_address)
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558 new_offset -= offset_in_output_section;
559 }
6be6f3bd 560
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561 reloc_write.put_r_offset(new_offset);
562 reloc_write.put_r_info(elfcpp::elf_r_info<size>(new_symndx, r_type));
563
564 // Handle the reloc addend based on the strategy.
565
566 if (strategy == Relocatable_relocs::RELOC_COPY)
567 {
568 if (sh_type == elfcpp::SHT_RELA)
569 Reloc_types<sh_type, size, big_endian>::
570 copy_reloc_addend(&reloc_write,
571 &reloc);
572 }
573 else
574 {
575 // The relocation uses a section symbol in the input file.
576 // We are adjusting it to use a section symbol in the output
577 // file. The input section symbol refers to some address in
578 // the input section. We need the relocation in the output
579 // file to refer to that same address. This adjustment to
580 // the addend is the same calculation we use for a simple
581 // absolute relocation for the input section symbol.
582
583 const Symbol_value<size>* psymval = object->local_symbol(r_sym);
584
585 unsigned char* padd = view + offset;
586 switch (strategy)
587 {
588 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_RELA:
589 {
590 typename elfcpp::Elf_types<size>::Elf_Swxword addend;
591 addend = Reloc_types<sh_type, size, big_endian>::
592 get_reloc_addend(&reloc);
593 addend = psymval->value(object, addend);
594 Reloc_types<sh_type, size, big_endian>::
595 set_reloc_addend(&reloc_write, addend);
596 }
597 break;
598
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599 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_0:
600 break;
601
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602 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_1:
603 Relocate_functions<size, big_endian>::rel8(padd, object,
604 psymval);
605 break;
606
607 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_2:
608 Relocate_functions<size, big_endian>::rel16(padd, object,
609 psymval);
610 break;
611
612 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_4:
613 Relocate_functions<size, big_endian>::rel32(padd, object,
614 psymval);
615 break;
616
617 case Relocatable_relocs::RELOC_ADJUST_FOR_SECTION_8:
618 Relocate_functions<size, big_endian>::rel64(padd, object,
619 psymval);
620 break;
621
622 default:
623 gold_unreachable();
624 }
625 }
626
627 pwrite += reloc_size;
628 }
629
630 gold_assert(static_cast<section_size_type>(pwrite - reloc_view)
631 == reloc_view_size);
632}
633
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634} // End namespace gold.
635
636#endif // !defined(GOLD_TARGET_RELOC_H)
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