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1 // symtab.cc -- the gold symbol table
2
3 // Copyright (C) 2006-2018 Free Software Foundation, Inc.
4 // Written by Ian Lance Taylor <iant@google.com>.
5
6 // This file is part of gold.
7
8 // This program is free software; you can redistribute it and/or modify
9 // it under the terms of the GNU General Public License as published by
10 // the Free Software Foundation; either version 3 of the License, or
11 // (at your option) any later version.
12
13 // This program is distributed in the hope that it will be useful,
14 // but WITHOUT ANY WARRANTY; without even the implied warranty of
15 // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 // GNU General Public License for more details.
17
18 // You should have received a copy of the GNU General Public License
19 // along with this program; if not, write to the Free Software
20 // Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21 // MA 02110-1301, USA.
22
23 #include "gold.h"
24
25 #include <cstring>
26 #include <stdint.h>
27 #include <algorithm>
28 #include <set>
29 #include <string>
30 #include <utility>
31 #include "demangle.h"
32
33 #include "gc.h"
34 #include "object.h"
35 #include "dwarf_reader.h"
36 #include "dynobj.h"
37 #include "output.h"
38 #include "target.h"
39 #include "workqueue.h"
40 #include "symtab.h"
41 #include "script.h"
42 #include "plugin.h"
43 #include "incremental.h"
44
45 namespace gold
46 {
47
48 // Class Symbol.
49
50 // Initialize fields in Symbol. This initializes everything except
51 // u1_, u2_ and source_.
52
53 void
54 Symbol::init_fields(const char* name, const char* version,
55 elfcpp::STT type, elfcpp::STB binding,
56 elfcpp::STV visibility, unsigned char nonvis)
57 {
58 this->name_ = name;
59 this->version_ = version;
60 this->symtab_index_ = 0;
61 this->dynsym_index_ = 0;
62 this->got_offsets_.init();
63 this->plt_offset_ = -1U;
64 this->type_ = type;
65 this->binding_ = binding;
66 this->visibility_ = visibility;
67 this->nonvis_ = nonvis;
68 this->is_def_ = false;
69 this->is_forwarder_ = false;
70 this->has_alias_ = false;
71 this->needs_dynsym_entry_ = false;
72 this->in_reg_ = false;
73 this->in_dyn_ = false;
74 this->has_warning_ = false;
75 this->is_copied_from_dynobj_ = false;
76 this->is_forced_local_ = false;
77 this->is_ordinary_shndx_ = false;
78 this->in_real_elf_ = false;
79 this->is_defined_in_discarded_section_ = false;
80 this->undef_binding_set_ = false;
81 this->undef_binding_weak_ = false;
82 this->is_predefined_ = false;
83 this->is_protected_ = false;
84 this->non_zero_localentry_ = false;
85 }
86
87 // Return the demangled version of the symbol's name, but only
88 // if the --demangle flag was set.
89
90 static std::string
91 demangle(const char* name)
92 {
93 if (!parameters->options().do_demangle())
94 return name;
95
96 // cplus_demangle allocates memory for the result it returns,
97 // and returns NULL if the name is already demangled.
98 char* demangled_name = cplus_demangle(name, DMGL_ANSI | DMGL_PARAMS);
99 if (demangled_name == NULL)
100 return name;
101
102 std::string retval(demangled_name);
103 free(demangled_name);
104 return retval;
105 }
106
107 std::string
108 Symbol::demangled_name() const
109 {
110 return demangle(this->name());
111 }
112
113 // Initialize the fields in the base class Symbol for SYM in OBJECT.
114
115 template<int size, bool big_endian>
116 void
117 Symbol::init_base_object(const char* name, const char* version, Object* object,
118 const elfcpp::Sym<size, big_endian>& sym,
119 unsigned int st_shndx, bool is_ordinary)
120 {
121 this->init_fields(name, version, sym.get_st_type(), sym.get_st_bind(),
122 sym.get_st_visibility(), sym.get_st_nonvis());
123 this->u1_.object = object;
124 this->u2_.shndx = st_shndx;
125 this->is_ordinary_shndx_ = is_ordinary;
126 this->source_ = FROM_OBJECT;
127 this->in_reg_ = !object->is_dynamic();
128 this->in_dyn_ = object->is_dynamic();
129 this->in_real_elf_ = object->pluginobj() == NULL;
130 }
131
132 // Initialize the fields in the base class Symbol for a symbol defined
133 // in an Output_data.
134
135 void
136 Symbol::init_base_output_data(const char* name, const char* version,
137 Output_data* od, elfcpp::STT type,
138 elfcpp::STB binding, elfcpp::STV visibility,
139 unsigned char nonvis, bool offset_is_from_end,
140 bool is_predefined)
141 {
142 this->init_fields(name, version, type, binding, visibility, nonvis);
143 this->u1_.output_data = od;
144 this->u2_.offset_is_from_end = offset_is_from_end;
145 this->source_ = IN_OUTPUT_DATA;
146 this->in_reg_ = true;
147 this->in_real_elf_ = true;
148 this->is_predefined_ = is_predefined;
149 }
150
151 // Initialize the fields in the base class Symbol for a symbol defined
152 // in an Output_segment.
153
154 void
155 Symbol::init_base_output_segment(const char* name, const char* version,
156 Output_segment* os, elfcpp::STT type,
157 elfcpp::STB binding, elfcpp::STV visibility,
158 unsigned char nonvis,
159 Segment_offset_base offset_base,
160 bool is_predefined)
161 {
162 this->init_fields(name, version, type, binding, visibility, nonvis);
163 this->u1_.output_segment = os;
164 this->u2_.offset_base = offset_base;
165 this->source_ = IN_OUTPUT_SEGMENT;
166 this->in_reg_ = true;
167 this->in_real_elf_ = true;
168 this->is_predefined_ = is_predefined;
169 }
170
171 // Initialize the fields in the base class Symbol for a symbol defined
172 // as a constant.
173
174 void
175 Symbol::init_base_constant(const char* name, const char* version,
176 elfcpp::STT type, elfcpp::STB binding,
177 elfcpp::STV visibility, unsigned char nonvis,
178 bool is_predefined)
179 {
180 this->init_fields(name, version, type, binding, visibility, nonvis);
181 this->source_ = IS_CONSTANT;
182 this->in_reg_ = true;
183 this->in_real_elf_ = true;
184 this->is_predefined_ = is_predefined;
185 }
186
187 // Initialize the fields in the base class Symbol for an undefined
188 // symbol.
189
190 void
191 Symbol::init_base_undefined(const char* name, const char* version,
192 elfcpp::STT type, elfcpp::STB binding,
193 elfcpp::STV visibility, unsigned char nonvis)
194 {
195 this->init_fields(name, version, type, binding, visibility, nonvis);
196 this->dynsym_index_ = -1U;
197 this->source_ = IS_UNDEFINED;
198 this->in_reg_ = true;
199 this->in_real_elf_ = true;
200 }
201
202 // Allocate a common symbol in the base.
203
204 void
205 Symbol::allocate_base_common(Output_data* od)
206 {
207 gold_assert(this->is_common());
208 this->source_ = IN_OUTPUT_DATA;
209 this->u1_.output_data = od;
210 this->u2_.offset_is_from_end = false;
211 }
212
213 // Initialize the fields in Sized_symbol for SYM in OBJECT.
214
215 template<int size>
216 template<bool big_endian>
217 void
218 Sized_symbol<size>::init_object(const char* name, const char* version,
219 Object* object,
220 const elfcpp::Sym<size, big_endian>& sym,
221 unsigned int st_shndx, bool is_ordinary)
222 {
223 this->init_base_object(name, version, object, sym, st_shndx, is_ordinary);
224 this->value_ = sym.get_st_value();
225 this->symsize_ = sym.get_st_size();
226 }
227
228 // Initialize the fields in Sized_symbol for a symbol defined in an
229 // Output_data.
230
231 template<int size>
232 void
233 Sized_symbol<size>::init_output_data(const char* name, const char* version,
234 Output_data* od, Value_type value,
235 Size_type symsize, elfcpp::STT type,
236 elfcpp::STB binding,
237 elfcpp::STV visibility,
238 unsigned char nonvis,
239 bool offset_is_from_end,
240 bool is_predefined)
241 {
242 this->init_base_output_data(name, version, od, type, binding, visibility,
243 nonvis, offset_is_from_end, is_predefined);
244 this->value_ = value;
245 this->symsize_ = symsize;
246 }
247
248 // Initialize the fields in Sized_symbol for a symbol defined in an
249 // Output_segment.
250
251 template<int size>
252 void
253 Sized_symbol<size>::init_output_segment(const char* name, const char* version,
254 Output_segment* os, Value_type value,
255 Size_type symsize, elfcpp::STT type,
256 elfcpp::STB binding,
257 elfcpp::STV visibility,
258 unsigned char nonvis,
259 Segment_offset_base offset_base,
260 bool is_predefined)
261 {
262 this->init_base_output_segment(name, version, os, type, binding, visibility,
263 nonvis, offset_base, is_predefined);
264 this->value_ = value;
265 this->symsize_ = symsize;
266 }
267
268 // Initialize the fields in Sized_symbol for a symbol defined as a
269 // constant.
270
271 template<int size>
272 void
273 Sized_symbol<size>::init_constant(const char* name, const char* version,
274 Value_type value, Size_type symsize,
275 elfcpp::STT type, elfcpp::STB binding,
276 elfcpp::STV visibility, unsigned char nonvis,
277 bool is_predefined)
278 {
279 this->init_base_constant(name, version, type, binding, visibility, nonvis,
280 is_predefined);
281 this->value_ = value;
282 this->symsize_ = symsize;
283 }
284
285 // Initialize the fields in Sized_symbol for an undefined symbol.
286
287 template<int size>
288 void
289 Sized_symbol<size>::init_undefined(const char* name, const char* version,
290 Value_type value, elfcpp::STT type,
291 elfcpp::STB binding, elfcpp::STV visibility,
292 unsigned char nonvis)
293 {
294 this->init_base_undefined(name, version, type, binding, visibility, nonvis);
295 this->value_ = value;
296 this->symsize_ = 0;
297 }
298
299 // Return an allocated string holding the symbol's name as
300 // name@version. This is used for relocatable links.
301
302 std::string
303 Symbol::versioned_name() const
304 {
305 gold_assert(this->version_ != NULL);
306 std::string ret = this->name_;
307 ret.push_back('@');
308 if (this->is_def_)
309 ret.push_back('@');
310 ret += this->version_;
311 return ret;
312 }
313
314 // Return true if SHNDX represents a common symbol.
315
316 bool
317 Symbol::is_common_shndx(unsigned int shndx)
318 {
319 return (shndx == elfcpp::SHN_COMMON
320 || shndx == parameters->target().small_common_shndx()
321 || shndx == parameters->target().large_common_shndx());
322 }
323
324 // Allocate a common symbol.
325
326 template<int size>
327 void
328 Sized_symbol<size>::allocate_common(Output_data* od, Value_type value)
329 {
330 this->allocate_base_common(od);
331 this->value_ = value;
332 }
333
334 // The ""'s around str ensure str is a string literal, so sizeof works.
335 #define strprefix(var, str) (strncmp(var, str, sizeof("" str "") - 1) == 0)
336
337 // Return true if this symbol should be added to the dynamic symbol
338 // table.
339
340 bool
341 Symbol::should_add_dynsym_entry(Symbol_table* symtab) const
342 {
343 // If the symbol is only present on plugin files, the plugin decided we
344 // don't need it.
345 if (!this->in_real_elf())
346 return false;
347
348 // If the symbol is used by a dynamic relocation, we need to add it.
349 if (this->needs_dynsym_entry())
350 return true;
351
352 // If this symbol's section is not added, the symbol need not be added.
353 // The section may have been GCed. Note that export_dynamic is being
354 // overridden here. This should not be done for shared objects.
355 if (parameters->options().gc_sections()
356 && !parameters->options().shared()
357 && this->source() == Symbol::FROM_OBJECT
358 && !this->object()->is_dynamic())
359 {
360 Relobj* relobj = static_cast<Relobj*>(this->object());
361 bool is_ordinary;
362 unsigned int shndx = this->shndx(&is_ordinary);
363 if (is_ordinary && shndx != elfcpp::SHN_UNDEF
364 && !relobj->is_section_included(shndx)
365 && !symtab->is_section_folded(relobj, shndx))
366 return false;
367 }
368
369 // If the symbol was forced dynamic in a --dynamic-list file
370 // or an --export-dynamic-symbol option, add it.
371 if (!this->is_from_dynobj()
372 && (parameters->options().in_dynamic_list(this->name())
373 || parameters->options().is_export_dynamic_symbol(this->name())))
374 {
375 if (!this->is_forced_local())
376 return true;
377 gold_warning(_("Cannot export local symbol '%s'"),
378 this->demangled_name().c_str());
379 return false;
380 }
381
382 // If the symbol was forced local in a version script, do not add it.
383 if (this->is_forced_local())
384 return false;
385
386 // If dynamic-list-data was specified, add any STT_OBJECT.
387 if (parameters->options().dynamic_list_data()
388 && !this->is_from_dynobj()
389 && this->type() == elfcpp::STT_OBJECT)
390 return true;
391
392 // If --dynamic-list-cpp-new was specified, add any new/delete symbol.
393 // If --dynamic-list-cpp-typeinfo was specified, add any typeinfo symbols.
394 if ((parameters->options().dynamic_list_cpp_new()
395 || parameters->options().dynamic_list_cpp_typeinfo())
396 && !this->is_from_dynobj())
397 {
398 // TODO(csilvers): We could probably figure out if we're an operator
399 // new/delete or typeinfo without the need to demangle.
400 char* demangled_name = cplus_demangle(this->name(),
401 DMGL_ANSI | DMGL_PARAMS);
402 if (demangled_name == NULL)
403 {
404 // Not a C++ symbol, so it can't satisfy these flags
405 }
406 else if (parameters->options().dynamic_list_cpp_new()
407 && (strprefix(demangled_name, "operator new")
408 || strprefix(demangled_name, "operator delete")))
409 {
410 free(demangled_name);
411 return true;
412 }
413 else if (parameters->options().dynamic_list_cpp_typeinfo()
414 && (strprefix(demangled_name, "typeinfo name for")
415 || strprefix(demangled_name, "typeinfo for")))
416 {
417 free(demangled_name);
418 return true;
419 }
420 else
421 free(demangled_name);
422 }
423
424 // If exporting all symbols or building a shared library,
425 // or the symbol should be globally unique (GNU_UNIQUE),
426 // and the symbol is defined in a regular object and is
427 // externally visible, we need to add it.
428 if ((parameters->options().export_dynamic()
429 || parameters->options().shared()
430 || (parameters->options().gnu_unique()
431 && this->binding() == elfcpp::STB_GNU_UNIQUE))
432 && !this->is_from_dynobj()
433 && !this->is_undefined()
434 && this->is_externally_visible())
435 return true;
436
437 return false;
438 }
439
440 // Return true if the final value of this symbol is known at link
441 // time.
442
443 bool
444 Symbol::final_value_is_known() const
445 {
446 // If we are not generating an executable, then no final values are
447 // known, since they will change at runtime, with the exception of
448 // TLS symbols in a position-independent executable.
449 if ((parameters->options().output_is_position_independent()
450 || parameters->options().relocatable())
451 && !(this->type() == elfcpp::STT_TLS
452 && parameters->options().pie()))
453 return false;
454
455 // If the symbol is not from an object file, and is not undefined,
456 // then it is defined, and known.
457 if (this->source_ != FROM_OBJECT)
458 {
459 if (this->source_ != IS_UNDEFINED)
460 return true;
461 }
462 else
463 {
464 // If the symbol is from a dynamic object, then the final value
465 // is not known.
466 if (this->object()->is_dynamic())
467 return false;
468
469 // If the symbol is not undefined (it is defined or common),
470 // then the final value is known.
471 if (!this->is_undefined())
472 return true;
473 }
474
475 // If the symbol is undefined, then whether the final value is known
476 // depends on whether we are doing a static link. If we are doing a
477 // dynamic link, then the final value could be filled in at runtime.
478 // This could reasonably be the case for a weak undefined symbol.
479 return parameters->doing_static_link();
480 }
481
482 // Return the output section where this symbol is defined.
483
484 Output_section*
485 Symbol::output_section() const
486 {
487 switch (this->source_)
488 {
489 case FROM_OBJECT:
490 {
491 unsigned int shndx = this->u2_.shndx;
492 if (shndx != elfcpp::SHN_UNDEF && this->is_ordinary_shndx_)
493 {
494 gold_assert(!this->u1_.object->is_dynamic());
495 gold_assert(this->u1_.object->pluginobj() == NULL);
496 Relobj* relobj = static_cast<Relobj*>(this->u1_.object);
497 return relobj->output_section(shndx);
498 }
499 return NULL;
500 }
501
502 case IN_OUTPUT_DATA:
503 return this->u1_.output_data->output_section();
504
505 case IN_OUTPUT_SEGMENT:
506 case IS_CONSTANT:
507 case IS_UNDEFINED:
508 return NULL;
509
510 default:
511 gold_unreachable();
512 }
513 }
514
515 // Set the symbol's output section. This is used for symbols defined
516 // in scripts. This should only be called after the symbol table has
517 // been finalized.
518
519 void
520 Symbol::set_output_section(Output_section* os)
521 {
522 switch (this->source_)
523 {
524 case FROM_OBJECT:
525 case IN_OUTPUT_DATA:
526 gold_assert(this->output_section() == os);
527 break;
528 case IS_CONSTANT:
529 this->source_ = IN_OUTPUT_DATA;
530 this->u1_.output_data = os;
531 this->u2_.offset_is_from_end = false;
532 break;
533 case IN_OUTPUT_SEGMENT:
534 case IS_UNDEFINED:
535 default:
536 gold_unreachable();
537 }
538 }
539
540 // Set the symbol's output segment. This is used for pre-defined
541 // symbols whose segments aren't known until after layout is done
542 // (e.g., __ehdr_start).
543
544 void
545 Symbol::set_output_segment(Output_segment* os, Segment_offset_base base)
546 {
547 gold_assert(this->is_predefined_);
548 this->source_ = IN_OUTPUT_SEGMENT;
549 this->u1_.output_segment = os;
550 this->u2_.offset_base = base;
551 }
552
553 // Set the symbol to undefined. This is used for pre-defined
554 // symbols whose segments aren't known until after layout is done
555 // (e.g., __ehdr_start).
556
557 void
558 Symbol::set_undefined()
559 {
560 this->source_ = IS_UNDEFINED;
561 this->is_predefined_ = false;
562 }
563
564 // Class Symbol_table.
565
566 Symbol_table::Symbol_table(unsigned int count,
567 const Version_script_info& version_script)
568 : saw_undefined_(0), offset_(0), table_(count), namepool_(),
569 forwarders_(), commons_(), tls_commons_(), small_commons_(),
570 large_commons_(), forced_locals_(), warnings_(),
571 version_script_(version_script), gc_(NULL), icf_(NULL),
572 target_symbols_()
573 {
574 namepool_.reserve(count);
575 }
576
577 Symbol_table::~Symbol_table()
578 {
579 }
580
581 // The symbol table key equality function. This is called with
582 // Stringpool keys.
583
584 inline bool
585 Symbol_table::Symbol_table_eq::operator()(const Symbol_table_key& k1,
586 const Symbol_table_key& k2) const
587 {
588 return k1.first == k2.first && k1.second == k2.second;
589 }
590
591 bool
592 Symbol_table::is_section_folded(Relobj* obj, unsigned int shndx) const
593 {
594 return (parameters->options().icf_enabled()
595 && this->icf_->is_section_folded(obj, shndx));
596 }
597
598 // For symbols that have been listed with a -u or --export-dynamic-symbol
599 // option, add them to the work list to avoid gc'ing them.
600
601 void
602 Symbol_table::gc_mark_undef_symbols(Layout* layout)
603 {
604 for (options::String_set::const_iterator p =
605 parameters->options().undefined_begin();
606 p != parameters->options().undefined_end();
607 ++p)
608 {
609 const char* name = p->c_str();
610 Symbol* sym = this->lookup(name);
611 gold_assert(sym != NULL);
612 if (sym->source() == Symbol::FROM_OBJECT
613 && !sym->object()->is_dynamic())
614 {
615 this->gc_mark_symbol(sym);
616 }
617 }
618
619 for (options::String_set::const_iterator p =
620 parameters->options().export_dynamic_symbol_begin();
621 p != parameters->options().export_dynamic_symbol_end();
622 ++p)
623 {
624 const char* name = p->c_str();
625 Symbol* sym = this->lookup(name);
626 // It's not an error if a symbol named by --export-dynamic-symbol
627 // is undefined.
628 if (sym != NULL
629 && sym->source() == Symbol::FROM_OBJECT
630 && !sym->object()->is_dynamic())
631 {
632 this->gc_mark_symbol(sym);
633 }
634 }
635
636 for (Script_options::referenced_const_iterator p =
637 layout->script_options()->referenced_begin();
638 p != layout->script_options()->referenced_end();
639 ++p)
640 {
641 Symbol* sym = this->lookup(p->c_str());
642 gold_assert(sym != NULL);
643 if (sym->source() == Symbol::FROM_OBJECT
644 && !sym->object()->is_dynamic())
645 {
646 this->gc_mark_symbol(sym);
647 }
648 }
649 }
650
651 void
652 Symbol_table::gc_mark_symbol(Symbol* sym)
653 {
654 // Add the object and section to the work list.
655 bool is_ordinary;
656 unsigned int shndx = sym->shndx(&is_ordinary);
657 if (is_ordinary && shndx != elfcpp::SHN_UNDEF && !sym->object()->is_dynamic())
658 {
659 gold_assert(this->gc_!= NULL);
660 Relobj* relobj = static_cast<Relobj*>(sym->object());
661 this->gc_->worklist().push_back(Section_id(relobj, shndx));
662 }
663 parameters->target().gc_mark_symbol(this, sym);
664 }
665
666 // When doing garbage collection, keep symbols that have been seen in
667 // dynamic objects.
668 inline void
669 Symbol_table::gc_mark_dyn_syms(Symbol* sym)
670 {
671 if (sym->in_dyn() && sym->source() == Symbol::FROM_OBJECT
672 && !sym->object()->is_dynamic())
673 this->gc_mark_symbol(sym);
674 }
675
676 // Make TO a symbol which forwards to FROM.
677
678 void
679 Symbol_table::make_forwarder(Symbol* from, Symbol* to)
680 {
681 gold_assert(from != to);
682 gold_assert(!from->is_forwarder() && !to->is_forwarder());
683 this->forwarders_[from] = to;
684 from->set_forwarder();
685 }
686
687 // Resolve the forwards from FROM, returning the real symbol.
688
689 Symbol*
690 Symbol_table::resolve_forwards(const Symbol* from) const
691 {
692 gold_assert(from->is_forwarder());
693 Unordered_map<const Symbol*, Symbol*>::const_iterator p =
694 this->forwarders_.find(from);
695 gold_assert(p != this->forwarders_.end());
696 return p->second;
697 }
698
699 // Look up a symbol by name.
700
701 Symbol*
702 Symbol_table::lookup(const char* name, const char* version) const
703 {
704 Stringpool::Key name_key;
705 name = this->namepool_.find(name, &name_key);
706 if (name == NULL)
707 return NULL;
708
709 Stringpool::Key version_key = 0;
710 if (version != NULL)
711 {
712 version = this->namepool_.find(version, &version_key);
713 if (version == NULL)
714 return NULL;
715 }
716
717 Symbol_table_key key(name_key, version_key);
718 Symbol_table::Symbol_table_type::const_iterator p = this->table_.find(key);
719 if (p == this->table_.end())
720 return NULL;
721 return p->second;
722 }
723
724 // Resolve a Symbol with another Symbol. This is only used in the
725 // unusual case where there are references to both an unversioned
726 // symbol and a symbol with a version, and we then discover that that
727 // version is the default version. Because this is unusual, we do
728 // this the slow way, by converting back to an ELF symbol.
729
730 template<int size, bool big_endian>
731 void
732 Symbol_table::resolve(Sized_symbol<size>* to, const Sized_symbol<size>* from)
733 {
734 unsigned char buf[elfcpp::Elf_sizes<size>::sym_size];
735 elfcpp::Sym_write<size, big_endian> esym(buf);
736 // We don't bother to set the st_name or the st_shndx field.
737 esym.put_st_value(from->value());
738 esym.put_st_size(from->symsize());
739 esym.put_st_info(from->binding(), from->type());
740 esym.put_st_other(from->visibility(), from->nonvis());
741 bool is_ordinary;
742 unsigned int shndx = from->shndx(&is_ordinary);
743 this->resolve(to, esym.sym(), shndx, is_ordinary, shndx, from->object(),
744 from->version(), true);
745 if (from->in_reg())
746 to->set_in_reg();
747 if (from->in_dyn())
748 to->set_in_dyn();
749 if (parameters->options().gc_sections())
750 this->gc_mark_dyn_syms(to);
751 }
752
753 // Record that a symbol is forced to be local by a version script or
754 // by visibility.
755
756 void
757 Symbol_table::force_local(Symbol* sym)
758 {
759 if (!sym->is_defined() && !sym->is_common())
760 return;
761 if (sym->is_forced_local())
762 {
763 // We already got this one.
764 return;
765 }
766 sym->set_is_forced_local();
767 this->forced_locals_.push_back(sym);
768 }
769
770 // Adjust NAME for wrapping, and update *NAME_KEY if necessary. This
771 // is only called for undefined symbols, when at least one --wrap
772 // option was used.
773
774 const char*
775 Symbol_table::wrap_symbol(const char* name, Stringpool::Key* name_key)
776 {
777 // For some targets, we need to ignore a specific character when
778 // wrapping, and add it back later.
779 char prefix = '\0';
780 if (name[0] == parameters->target().wrap_char())
781 {
782 prefix = name[0];
783 ++name;
784 }
785
786 if (parameters->options().is_wrap(name))
787 {
788 // Turn NAME into __wrap_NAME.
789 std::string s;
790 if (prefix != '\0')
791 s += prefix;
792 s += "__wrap_";
793 s += name;
794
795 // This will give us both the old and new name in NAMEPOOL_, but
796 // that is OK. Only the versions we need will wind up in the
797 // real string table in the output file.
798 return this->namepool_.add(s.c_str(), true, name_key);
799 }
800
801 const char* const real_prefix = "__real_";
802 const size_t real_prefix_length = strlen(real_prefix);
803 if (strncmp(name, real_prefix, real_prefix_length) == 0
804 && parameters->options().is_wrap(name + real_prefix_length))
805 {
806 // Turn __real_NAME into NAME.
807 std::string s;
808 if (prefix != '\0')
809 s += prefix;
810 s += name + real_prefix_length;
811 return this->namepool_.add(s.c_str(), true, name_key);
812 }
813
814 return name;
815 }
816
817 // This is called when we see a symbol NAME/VERSION, and the symbol
818 // already exists in the symbol table, and VERSION is marked as being
819 // the default version. SYM is the NAME/VERSION symbol we just added.
820 // DEFAULT_IS_NEW is true if this is the first time we have seen the
821 // symbol NAME/NULL. PDEF points to the entry for NAME/NULL.
822
823 template<int size, bool big_endian>
824 void
825 Symbol_table::define_default_version(Sized_symbol<size>* sym,
826 bool default_is_new,
827 Symbol_table_type::iterator pdef)
828 {
829 if (default_is_new)
830 {
831 // This is the first time we have seen NAME/NULL. Make
832 // NAME/NULL point to NAME/VERSION, and mark SYM as the default
833 // version.
834 pdef->second = sym;
835 sym->set_is_default();
836 }
837 else if (pdef->second == sym)
838 {
839 // NAME/NULL already points to NAME/VERSION. Don't mark the
840 // symbol as the default if it is not already the default.
841 }
842 else
843 {
844 // This is the unfortunate case where we already have entries
845 // for both NAME/VERSION and NAME/NULL. We now see a symbol
846 // NAME/VERSION where VERSION is the default version. We have
847 // already resolved this new symbol with the existing
848 // NAME/VERSION symbol.
849
850 // It's possible that NAME/NULL and NAME/VERSION are both
851 // defined in regular objects. This can only happen if one
852 // object file defines foo and another defines foo@@ver. This
853 // is somewhat obscure, but we call it a multiple definition
854 // error.
855
856 // It's possible that NAME/NULL actually has a version, in which
857 // case it won't be the same as VERSION. This happens with
858 // ver_test_7.so in the testsuite for the symbol t2_2. We see
859 // t2_2@@VER2, so we define both t2_2/VER2 and t2_2/NULL. We
860 // then see an unadorned t2_2 in an object file and give it
861 // version VER1 from the version script. This looks like a
862 // default definition for VER1, so it looks like we should merge
863 // t2_2/NULL with t2_2/VER1. That doesn't make sense, but it's
864 // not obvious that this is an error, either. So we just punt.
865
866 // If one of the symbols has non-default visibility, and the
867 // other is defined in a shared object, then they are different
868 // symbols.
869
870 // If the two symbols are from different shared objects,
871 // they are different symbols.
872
873 // Otherwise, we just resolve the symbols as though they were
874 // the same.
875
876 if (pdef->second->version() != NULL)
877 gold_assert(pdef->second->version() != sym->version());
878 else if (sym->visibility() != elfcpp::STV_DEFAULT
879 && pdef->second->is_from_dynobj())
880 ;
881 else if (pdef->second->visibility() != elfcpp::STV_DEFAULT
882 && sym->is_from_dynobj())
883 ;
884 else if (pdef->second->is_from_dynobj()
885 && sym->is_from_dynobj()
886 && pdef->second->is_defined()
887 && pdef->second->object() != sym->object())
888 ;
889 else
890 {
891 const Sized_symbol<size>* symdef;
892 symdef = this->get_sized_symbol<size>(pdef->second);
893 Symbol_table::resolve<size, big_endian>(sym, symdef);
894 this->make_forwarder(pdef->second, sym);
895 pdef->second = sym;
896 sym->set_is_default();
897 }
898 }
899 }
900
901 // Add one symbol from OBJECT to the symbol table. NAME is symbol
902 // name and VERSION is the version; both are canonicalized. DEF is
903 // whether this is the default version. ST_SHNDX is the symbol's
904 // section index; IS_ORDINARY is whether this is a normal section
905 // rather than a special code.
906
907 // If IS_DEFAULT_VERSION is true, then this is the definition of a
908 // default version of a symbol. That means that any lookup of
909 // NAME/NULL and any lookup of NAME/VERSION should always return the
910 // same symbol. This is obvious for references, but in particular we
911 // want to do this for definitions: overriding NAME/NULL should also
912 // override NAME/VERSION. If we don't do that, it would be very hard
913 // to override functions in a shared library which uses versioning.
914
915 // We implement this by simply making both entries in the hash table
916 // point to the same Symbol structure. That is easy enough if this is
917 // the first time we see NAME/NULL or NAME/VERSION, but it is possible
918 // that we have seen both already, in which case they will both have
919 // independent entries in the symbol table. We can't simply change
920 // the symbol table entry, because we have pointers to the entries
921 // attached to the object files. So we mark the entry attached to the
922 // object file as a forwarder, and record it in the forwarders_ map.
923 // Note that entries in the hash table will never be marked as
924 // forwarders.
925 //
926 // ORIG_ST_SHNDX and ST_SHNDX are almost always the same.
927 // ORIG_ST_SHNDX is the section index in the input file, or SHN_UNDEF
928 // for a special section code. ST_SHNDX may be modified if the symbol
929 // is defined in a section being discarded.
930
931 template<int size, bool big_endian>
932 Sized_symbol<size>*
933 Symbol_table::add_from_object(Object* object,
934 const char* name,
935 Stringpool::Key name_key,
936 const char* version,
937 Stringpool::Key version_key,
938 bool is_default_version,
939 const elfcpp::Sym<size, big_endian>& sym,
940 unsigned int st_shndx,
941 bool is_ordinary,
942 unsigned int orig_st_shndx)
943 {
944 // Print a message if this symbol is being traced.
945 if (parameters->options().is_trace_symbol(name))
946 {
947 if (orig_st_shndx == elfcpp::SHN_UNDEF)
948 gold_info(_("%s: reference to %s"), object->name().c_str(), name);
949 else
950 gold_info(_("%s: definition of %s"), object->name().c_str(), name);
951 }
952
953 // For an undefined symbol, we may need to adjust the name using
954 // --wrap.
955 if (orig_st_shndx == elfcpp::SHN_UNDEF
956 && parameters->options().any_wrap())
957 {
958 const char* wrap_name = this->wrap_symbol(name, &name_key);
959 if (wrap_name != name)
960 {
961 // If we see a reference to malloc with version GLIBC_2.0,
962 // and we turn it into a reference to __wrap_malloc, then we
963 // discard the version number. Otherwise the user would be
964 // required to specify the correct version for
965 // __wrap_malloc.
966 version = NULL;
967 version_key = 0;
968 name = wrap_name;
969 }
970 }
971
972 Symbol* const snull = NULL;
973 std::pair<typename Symbol_table_type::iterator, bool> ins =
974 this->table_.insert(std::make_pair(std::make_pair(name_key, version_key),
975 snull));
976
977 std::pair<typename Symbol_table_type::iterator, bool> insdefault =
978 std::make_pair(this->table_.end(), false);
979 if (is_default_version)
980 {
981 const Stringpool::Key vnull_key = 0;
982 insdefault = this->table_.insert(std::make_pair(std::make_pair(name_key,
983 vnull_key),
984 snull));
985 }
986
987 // ins.first: an iterator, which is a pointer to a pair.
988 // ins.first->first: the key (a pair of name and version).
989 // ins.first->second: the value (Symbol*).
990 // ins.second: true if new entry was inserted, false if not.
991
992 Sized_symbol<size>* ret = NULL;
993 bool was_undefined_in_reg;
994 bool was_common;
995 if (!ins.second)
996 {
997 // We already have an entry for NAME/VERSION.
998 ret = this->get_sized_symbol<size>(ins.first->second);
999 gold_assert(ret != NULL);
1000
1001 was_undefined_in_reg = ret->is_undefined() && ret->in_reg();
1002 // Commons from plugins are just placeholders.
1003 was_common = ret->is_common() && ret->object()->pluginobj() == NULL;
1004
1005 this->resolve(ret, sym, st_shndx, is_ordinary, orig_st_shndx, object,
1006 version, is_default_version);
1007 if (parameters->options().gc_sections())
1008 this->gc_mark_dyn_syms(ret);
1009
1010 if (is_default_version)
1011 this->define_default_version<size, big_endian>(ret, insdefault.second,
1012 insdefault.first);
1013 else
1014 {
1015 bool dummy;
1016 if (version != NULL
1017 && ret->source() == Symbol::FROM_OBJECT
1018 && ret->object() == object
1019 && is_ordinary
1020 && ret->shndx(&dummy) == st_shndx
1021 && ret->is_default())
1022 {
1023 // We have seen NAME/VERSION already, and marked it as the
1024 // default version, but now we see a definition for
1025 // NAME/VERSION that is not the default version. This can
1026 // happen when the assembler generates two symbols for
1027 // a symbol as a result of a ".symver foo,foo@VER"
1028 // directive. We see the first unversioned symbol and
1029 // we may mark it as the default version (from a
1030 // version script); then we see the second versioned
1031 // symbol and we need to override the first.
1032 // In any other case, the two symbols should have generated
1033 // a multiple definition error.
1034 // (See PR gold/18703.)
1035 ret->set_is_not_default();
1036 const Stringpool::Key vnull_key = 0;
1037 this->table_.erase(std::make_pair(name_key, vnull_key));
1038 }
1039 }
1040 }
1041 else
1042 {
1043 // This is the first time we have seen NAME/VERSION.
1044 gold_assert(ins.first->second == NULL);
1045
1046 if (is_default_version && !insdefault.second)
1047 {
1048 // We already have an entry for NAME/NULL. If we override
1049 // it, then change it to NAME/VERSION.
1050 ret = this->get_sized_symbol<size>(insdefault.first->second);
1051
1052 // If the existing symbol already has a version,
1053 // don't override it with the new symbol.
1054 // This should only happen when the new symbol
1055 // is from a shared library.
1056 if (ret->version() != NULL)
1057 {
1058 if (!object->is_dynamic())
1059 {
1060 gold_warning(_("%s: conflicting default version definition"
1061 " for %s@@%s"),
1062 object->name().c_str(), name, version);
1063 if (ret->source() == Symbol::FROM_OBJECT)
1064 gold_info(_("%s: %s: previous definition of %s@@%s here"),
1065 program_name,
1066 ret->object()->name().c_str(),
1067 name, ret->version());
1068 }
1069 ret = NULL;
1070 is_default_version = false;
1071 }
1072 else
1073 {
1074 was_undefined_in_reg = ret->is_undefined() && ret->in_reg();
1075 // Commons from plugins are just placeholders.
1076 was_common = (ret->is_common()
1077 && ret->object()->pluginobj() == NULL);
1078
1079 this->resolve(ret, sym, st_shndx, is_ordinary, orig_st_shndx,
1080 object, version, is_default_version);
1081 if (parameters->options().gc_sections())
1082 this->gc_mark_dyn_syms(ret);
1083 ins.first->second = ret;
1084 }
1085 }
1086
1087 if (ret == NULL)
1088 {
1089 was_undefined_in_reg = false;
1090 was_common = false;
1091
1092 Sized_target<size, big_endian>* target =
1093 parameters->sized_target<size, big_endian>();
1094 if (!target->has_make_symbol())
1095 ret = new Sized_symbol<size>();
1096 else
1097 {
1098 ret = target->make_symbol(name, sym.get_st_type(), object,
1099 st_shndx, sym.get_st_value());
1100 if (ret == NULL)
1101 {
1102 // This means that we don't want a symbol table
1103 // entry after all.
1104 if (!is_default_version)
1105 this->table_.erase(ins.first);
1106 else
1107 {
1108 this->table_.erase(insdefault.first);
1109 // Inserting INSDEFAULT invalidated INS.
1110 this->table_.erase(std::make_pair(name_key,
1111 version_key));
1112 }
1113 return NULL;
1114 }
1115 }
1116
1117 ret->init_object(name, version, object, sym, st_shndx, is_ordinary);
1118
1119 ins.first->second = ret;
1120 if (is_default_version)
1121 {
1122 // This is the first time we have seen NAME/NULL. Point
1123 // it at the new entry for NAME/VERSION.
1124 gold_assert(insdefault.second);
1125 insdefault.first->second = ret;
1126 }
1127 }
1128
1129 if (is_default_version)
1130 ret->set_is_default();
1131 }
1132
1133 // Record every time we see a new undefined symbol, to speed up archive
1134 // groups. We only care about symbols undefined in regular objects here
1135 // because undefined symbols only in dynamic objects should't trigger rescans.
1136 if (!was_undefined_in_reg && ret->is_undefined() && ret->in_reg())
1137 {
1138 ++this->saw_undefined_;
1139 if (parameters->options().has_plugins())
1140 parameters->options().plugins()->new_undefined_symbol(ret);
1141 }
1142
1143 // Keep track of common symbols, to speed up common symbol
1144 // allocation. Don't record commons from plugin objects;
1145 // we need to wait until we see the real symbol in the
1146 // replacement file.
1147 if (!was_common && ret->is_common() && ret->object()->pluginobj() == NULL)
1148 {
1149 if (ret->type() == elfcpp::STT_TLS)
1150 this->tls_commons_.push_back(ret);
1151 else if (!is_ordinary
1152 && st_shndx == parameters->target().small_common_shndx())
1153 this->small_commons_.push_back(ret);
1154 else if (!is_ordinary
1155 && st_shndx == parameters->target().large_common_shndx())
1156 this->large_commons_.push_back(ret);
1157 else
1158 this->commons_.push_back(ret);
1159 }
1160
1161 // If we're not doing a relocatable link, then any symbol with
1162 // hidden or internal visibility is local.
1163 if ((ret->visibility() == elfcpp::STV_HIDDEN
1164 || ret->visibility() == elfcpp::STV_INTERNAL)
1165 && (ret->binding() == elfcpp::STB_GLOBAL
1166 || ret->binding() == elfcpp::STB_GNU_UNIQUE
1167 || ret->binding() == elfcpp::STB_WEAK)
1168 && !parameters->options().relocatable())
1169 this->force_local(ret);
1170
1171 return ret;
1172 }
1173
1174 // Add all the symbols in a relocatable object to the hash table.
1175
1176 template<int size, bool big_endian>
1177 void
1178 Symbol_table::add_from_relobj(
1179 Sized_relobj_file<size, big_endian>* relobj,
1180 const unsigned char* syms,
1181 size_t count,
1182 size_t symndx_offset,
1183 const char* sym_names,
1184 size_t sym_name_size,
1185 typename Sized_relobj_file<size, big_endian>::Symbols* sympointers,
1186 size_t* defined)
1187 {
1188 *defined = 0;
1189
1190 gold_assert(size == parameters->target().get_size());
1191
1192 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
1193
1194 const bool just_symbols = relobj->just_symbols();
1195
1196 const unsigned char* p = syms;
1197 for (size_t i = 0; i < count; ++i, p += sym_size)
1198 {
1199 (*sympointers)[i] = NULL;
1200
1201 elfcpp::Sym<size, big_endian> sym(p);
1202
1203 unsigned int st_name = sym.get_st_name();
1204 if (st_name >= sym_name_size)
1205 {
1206 relobj->error(_("bad global symbol name offset %u at %zu"),
1207 st_name, i);
1208 continue;
1209 }
1210
1211 const char* name = sym_names + st_name;
1212
1213 if (!parameters->options().relocatable()
1214 && name[0] == '_'
1215 && name[1] == '_'
1216 && strcmp (name + (name[2] == '_'), "__gnu_lto_slim") == 0)
1217 gold_info(_("%s: plugin needed to handle lto object"),
1218 relobj->name().c_str());
1219
1220 bool is_ordinary;
1221 unsigned int st_shndx = relobj->adjust_sym_shndx(i + symndx_offset,
1222 sym.get_st_shndx(),
1223 &is_ordinary);
1224 unsigned int orig_st_shndx = st_shndx;
1225 if (!is_ordinary)
1226 orig_st_shndx = elfcpp::SHN_UNDEF;
1227
1228 if (st_shndx != elfcpp::SHN_UNDEF)
1229 ++*defined;
1230
1231 // A symbol defined in a section which we are not including must
1232 // be treated as an undefined symbol.
1233 bool is_defined_in_discarded_section = false;
1234 if (st_shndx != elfcpp::SHN_UNDEF
1235 && is_ordinary
1236 && !relobj->is_section_included(st_shndx)
1237 && !this->is_section_folded(relobj, st_shndx))
1238 {
1239 st_shndx = elfcpp::SHN_UNDEF;
1240 is_defined_in_discarded_section = true;
1241 }
1242
1243 // In an object file, an '@' in the name separates the symbol
1244 // name from the version name. If there are two '@' characters,
1245 // this is the default version.
1246 const char* ver = strchr(name, '@');
1247 Stringpool::Key ver_key = 0;
1248 int namelen = 0;
1249 // IS_DEFAULT_VERSION: is the version default?
1250 // IS_FORCED_LOCAL: is the symbol forced local?
1251 bool is_default_version = false;
1252 bool is_forced_local = false;
1253
1254 // FIXME: For incremental links, we don't store version information,
1255 // so we need to ignore version symbols for now.
1256 if (parameters->incremental_update() && ver != NULL)
1257 {
1258 namelen = ver - name;
1259 ver = NULL;
1260 }
1261
1262 if (ver != NULL)
1263 {
1264 // The symbol name is of the form foo@VERSION or foo@@VERSION
1265 namelen = ver - name;
1266 ++ver;
1267 if (*ver == '@')
1268 {
1269 is_default_version = true;
1270 ++ver;
1271 }
1272 ver = this->namepool_.add(ver, true, &ver_key);
1273 }
1274 // We don't want to assign a version to an undefined symbol,
1275 // even if it is listed in the version script. FIXME: What
1276 // about a common symbol?
1277 else
1278 {
1279 namelen = strlen(name);
1280 if (!this->version_script_.empty()
1281 && st_shndx != elfcpp::SHN_UNDEF)
1282 {
1283 // The symbol name did not have a version, but the
1284 // version script may assign a version anyway.
1285 std::string version;
1286 bool is_global;
1287 if (this->version_script_.get_symbol_version(name, &version,
1288 &is_global))
1289 {
1290 if (!is_global)
1291 is_forced_local = true;
1292 else if (!version.empty())
1293 {
1294 ver = this->namepool_.add_with_length(version.c_str(),
1295 version.length(),
1296 true,
1297 &ver_key);
1298 is_default_version = true;
1299 }
1300 }
1301 }
1302 }
1303
1304 elfcpp::Sym<size, big_endian>* psym = &sym;
1305 unsigned char symbuf[sym_size];
1306 elfcpp::Sym<size, big_endian> sym2(symbuf);
1307 if (just_symbols)
1308 {
1309 memcpy(symbuf, p, sym_size);
1310 elfcpp::Sym_write<size, big_endian> sw(symbuf);
1311 if (orig_st_shndx != elfcpp::SHN_UNDEF
1312 && is_ordinary
1313 && relobj->e_type() == elfcpp::ET_REL)
1314 {
1315 // Symbol values in relocatable object files are section
1316 // relative. This is normally what we want, but since here
1317 // we are converting the symbol to absolute we need to add
1318 // the section address. The section address in an object
1319 // file is normally zero, but people can use a linker
1320 // script to change it.
1321 sw.put_st_value(sym.get_st_value()
1322 + relobj->section_address(orig_st_shndx));
1323 }
1324 st_shndx = elfcpp::SHN_ABS;
1325 is_ordinary = false;
1326 psym = &sym2;
1327 }
1328
1329 // Fix up visibility if object has no-export set.
1330 if (relobj->no_export()
1331 && (orig_st_shndx != elfcpp::SHN_UNDEF || !is_ordinary))
1332 {
1333 // We may have copied symbol already above.
1334 if (psym != &sym2)
1335 {
1336 memcpy(symbuf, p, sym_size);
1337 psym = &sym2;
1338 }
1339
1340 elfcpp::STV visibility = sym2.get_st_visibility();
1341 if (visibility == elfcpp::STV_DEFAULT
1342 || visibility == elfcpp::STV_PROTECTED)
1343 {
1344 elfcpp::Sym_write<size, big_endian> sw(symbuf);
1345 unsigned char nonvis = sym2.get_st_nonvis();
1346 sw.put_st_other(elfcpp::STV_HIDDEN, nonvis);
1347 }
1348 }
1349
1350 Stringpool::Key name_key;
1351 name = this->namepool_.add_with_length(name, namelen, true,
1352 &name_key);
1353
1354 Sized_symbol<size>* res;
1355 res = this->add_from_object(relobj, name, name_key, ver, ver_key,
1356 is_default_version, *psym, st_shndx,
1357 is_ordinary, orig_st_shndx);
1358
1359 if (res == NULL)
1360 continue;
1361
1362 if (is_forced_local)
1363 this->force_local(res);
1364
1365 // Do not treat this symbol as garbage if this symbol will be
1366 // exported to the dynamic symbol table. This is true when
1367 // building a shared library or using --export-dynamic and
1368 // the symbol is externally visible.
1369 if (parameters->options().gc_sections()
1370 && res->is_externally_visible()
1371 && !res->is_from_dynobj()
1372 && (parameters->options().shared()
1373 || parameters->options().export_dynamic()
1374 || parameters->options().in_dynamic_list(res->name())))
1375 this->gc_mark_symbol(res);
1376
1377 if (is_defined_in_discarded_section)
1378 res->set_is_defined_in_discarded_section();
1379
1380 (*sympointers)[i] = res;
1381 }
1382 }
1383
1384 // Add a symbol from a plugin-claimed file.
1385
1386 template<int size, bool big_endian>
1387 Symbol*
1388 Symbol_table::add_from_pluginobj(
1389 Sized_pluginobj<size, big_endian>* obj,
1390 const char* name,
1391 const char* ver,
1392 elfcpp::Sym<size, big_endian>* sym)
1393 {
1394 unsigned int st_shndx = sym->get_st_shndx();
1395 bool is_ordinary = st_shndx < elfcpp::SHN_LORESERVE;
1396
1397 Stringpool::Key ver_key = 0;
1398 bool is_default_version = false;
1399 bool is_forced_local = false;
1400
1401 if (ver != NULL)
1402 {
1403 ver = this->namepool_.add(ver, true, &ver_key);
1404 }
1405 // We don't want to assign a version to an undefined symbol,
1406 // even if it is listed in the version script. FIXME: What
1407 // about a common symbol?
1408 else
1409 {
1410 if (!this->version_script_.empty()
1411 && st_shndx != elfcpp::SHN_UNDEF)
1412 {
1413 // The symbol name did not have a version, but the
1414 // version script may assign a version anyway.
1415 std::string version;
1416 bool is_global;
1417 if (this->version_script_.get_symbol_version(name, &version,
1418 &is_global))
1419 {
1420 if (!is_global)
1421 is_forced_local = true;
1422 else if (!version.empty())
1423 {
1424 ver = this->namepool_.add_with_length(version.c_str(),
1425 version.length(),
1426 true,
1427 &ver_key);
1428 is_default_version = true;
1429 }
1430 }
1431 }
1432 }
1433
1434 Stringpool::Key name_key;
1435 name = this->namepool_.add(name, true, &name_key);
1436
1437 Sized_symbol<size>* res;
1438 res = this->add_from_object(obj, name, name_key, ver, ver_key,
1439 is_default_version, *sym, st_shndx,
1440 is_ordinary, st_shndx);
1441
1442 if (res == NULL)
1443 return NULL;
1444
1445 if (is_forced_local)
1446 this->force_local(res);
1447
1448 return res;
1449 }
1450
1451 // Add all the symbols in a dynamic object to the hash table.
1452
1453 template<int size, bool big_endian>
1454 void
1455 Symbol_table::add_from_dynobj(
1456 Sized_dynobj<size, big_endian>* dynobj,
1457 const unsigned char* syms,
1458 size_t count,
1459 const char* sym_names,
1460 size_t sym_name_size,
1461 const unsigned char* versym,
1462 size_t versym_size,
1463 const std::vector<const char*>* version_map,
1464 typename Sized_relobj_file<size, big_endian>::Symbols* sympointers,
1465 size_t* defined)
1466 {
1467 *defined = 0;
1468
1469 gold_assert(size == parameters->target().get_size());
1470
1471 if (dynobj->just_symbols())
1472 {
1473 gold_error(_("--just-symbols does not make sense with a shared object"));
1474 return;
1475 }
1476
1477 // FIXME: For incremental links, we don't store version information,
1478 // so we need to ignore version symbols for now.
1479 if (parameters->incremental_update())
1480 versym = NULL;
1481
1482 if (versym != NULL && versym_size / 2 < count)
1483 {
1484 dynobj->error(_("too few symbol versions"));
1485 return;
1486 }
1487
1488 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
1489
1490 // We keep a list of all STT_OBJECT symbols, so that we can resolve
1491 // weak aliases. This is necessary because if the dynamic object
1492 // provides the same variable under two names, one of which is a
1493 // weak definition, and the regular object refers to the weak
1494 // definition, we have to put both the weak definition and the
1495 // strong definition into the dynamic symbol table. Given a weak
1496 // definition, the only way that we can find the corresponding
1497 // strong definition, if any, is to search the symbol table.
1498 std::vector<Sized_symbol<size>*> object_symbols;
1499
1500 const unsigned char* p = syms;
1501 const unsigned char* vs = versym;
1502 for (size_t i = 0; i < count; ++i, p += sym_size, vs += 2)
1503 {
1504 elfcpp::Sym<size, big_endian> sym(p);
1505
1506 if (sympointers != NULL)
1507 (*sympointers)[i] = NULL;
1508
1509 // Ignore symbols with local binding or that have
1510 // internal or hidden visibility.
1511 if (sym.get_st_bind() == elfcpp::STB_LOCAL
1512 || sym.get_st_visibility() == elfcpp::STV_INTERNAL
1513 || sym.get_st_visibility() == elfcpp::STV_HIDDEN)
1514 continue;
1515
1516 // A protected symbol in a shared library must be treated as a
1517 // normal symbol when viewed from outside the shared library.
1518 // Implement this by overriding the visibility here.
1519 // Likewise, an IFUNC symbol in a shared library must be treated
1520 // as a normal FUNC symbol.
1521 elfcpp::Sym<size, big_endian>* psym = &sym;
1522 unsigned char symbuf[sym_size];
1523 elfcpp::Sym<size, big_endian> sym2(symbuf);
1524 if (sym.get_st_visibility() == elfcpp::STV_PROTECTED
1525 || sym.get_st_type() == elfcpp::STT_GNU_IFUNC)
1526 {
1527 memcpy(symbuf, p, sym_size);
1528 elfcpp::Sym_write<size, big_endian> sw(symbuf);
1529 if (sym.get_st_visibility() == elfcpp::STV_PROTECTED)
1530 sw.put_st_other(elfcpp::STV_DEFAULT, sym.get_st_nonvis());
1531 if (sym.get_st_type() == elfcpp::STT_GNU_IFUNC)
1532 sw.put_st_info(sym.get_st_bind(), elfcpp::STT_FUNC);
1533 psym = &sym2;
1534 }
1535
1536 unsigned int st_name = psym->get_st_name();
1537 if (st_name >= sym_name_size)
1538 {
1539 dynobj->error(_("bad symbol name offset %u at %zu"),
1540 st_name, i);
1541 continue;
1542 }
1543
1544 const char* name = sym_names + st_name;
1545
1546 bool is_ordinary;
1547 unsigned int st_shndx = dynobj->adjust_sym_shndx(i, psym->get_st_shndx(),
1548 &is_ordinary);
1549
1550 if (st_shndx != elfcpp::SHN_UNDEF)
1551 ++*defined;
1552
1553 Sized_symbol<size>* res;
1554
1555 if (versym == NULL)
1556 {
1557 Stringpool::Key name_key;
1558 name = this->namepool_.add(name, true, &name_key);
1559 res = this->add_from_object(dynobj, name, name_key, NULL, 0,
1560 false, *psym, st_shndx, is_ordinary,
1561 st_shndx);
1562 }
1563 else
1564 {
1565 // Read the version information.
1566
1567 unsigned int v = elfcpp::Swap<16, big_endian>::readval(vs);
1568
1569 bool hidden = (v & elfcpp::VERSYM_HIDDEN) != 0;
1570 v &= elfcpp::VERSYM_VERSION;
1571
1572 // The Sun documentation says that V can be VER_NDX_LOCAL,
1573 // or VER_NDX_GLOBAL, or a version index. The meaning of
1574 // VER_NDX_LOCAL is defined as "Symbol has local scope."
1575 // The old GNU linker will happily generate VER_NDX_LOCAL
1576 // for an undefined symbol. I don't know what the Sun
1577 // linker will generate.
1578
1579 if (v == static_cast<unsigned int>(elfcpp::VER_NDX_LOCAL)
1580 && st_shndx != elfcpp::SHN_UNDEF)
1581 {
1582 // This symbol should not be visible outside the object.
1583 continue;
1584 }
1585
1586 // At this point we are definitely going to add this symbol.
1587 Stringpool::Key name_key;
1588 name = this->namepool_.add(name, true, &name_key);
1589
1590 if (v == static_cast<unsigned int>(elfcpp::VER_NDX_LOCAL)
1591 || v == static_cast<unsigned int>(elfcpp::VER_NDX_GLOBAL))
1592 {
1593 // This symbol does not have a version.
1594 res = this->add_from_object(dynobj, name, name_key, NULL, 0,
1595 false, *psym, st_shndx, is_ordinary,
1596 st_shndx);
1597 }
1598 else
1599 {
1600 if (v >= version_map->size())
1601 {
1602 dynobj->error(_("versym for symbol %zu out of range: %u"),
1603 i, v);
1604 continue;
1605 }
1606
1607 const char* version = (*version_map)[v];
1608 if (version == NULL)
1609 {
1610 dynobj->error(_("versym for symbol %zu has no name: %u"),
1611 i, v);
1612 continue;
1613 }
1614
1615 Stringpool::Key version_key;
1616 version = this->namepool_.add(version, true, &version_key);
1617
1618 // If this is an absolute symbol, and the version name
1619 // and symbol name are the same, then this is the
1620 // version definition symbol. These symbols exist to
1621 // support using -u to pull in particular versions. We
1622 // do not want to record a version for them.
1623 if (st_shndx == elfcpp::SHN_ABS
1624 && !is_ordinary
1625 && name_key == version_key)
1626 res = this->add_from_object(dynobj, name, name_key, NULL, 0,
1627 false, *psym, st_shndx, is_ordinary,
1628 st_shndx);
1629 else
1630 {
1631 const bool is_default_version =
1632 !hidden && st_shndx != elfcpp::SHN_UNDEF;
1633 res = this->add_from_object(dynobj, name, name_key, version,
1634 version_key, is_default_version,
1635 *psym, st_shndx,
1636 is_ordinary, st_shndx);
1637 }
1638 }
1639 }
1640
1641 if (res == NULL)
1642 continue;
1643
1644 // Note that it is possible that RES was overridden by an
1645 // earlier object, in which case it can't be aliased here.
1646 if (st_shndx != elfcpp::SHN_UNDEF
1647 && is_ordinary
1648 && psym->get_st_type() == elfcpp::STT_OBJECT
1649 && res->source() == Symbol::FROM_OBJECT
1650 && res->object() == dynobj)
1651 object_symbols.push_back(res);
1652
1653 // If the symbol has protected visibility in the dynobj,
1654 // mark it as such if it was not overridden.
1655 if (res->source() == Symbol::FROM_OBJECT
1656 && res->object() == dynobj
1657 && sym.get_st_visibility() == elfcpp::STV_PROTECTED)
1658 res->set_is_protected();
1659
1660 if (sympointers != NULL)
1661 (*sympointers)[i] = res;
1662 }
1663
1664 this->record_weak_aliases(&object_symbols);
1665 }
1666
1667 // Add a symbol from a incremental object file.
1668
1669 template<int size, bool big_endian>
1670 Sized_symbol<size>*
1671 Symbol_table::add_from_incrobj(
1672 Object* obj,
1673 const char* name,
1674 const char* ver,
1675 elfcpp::Sym<size, big_endian>* sym)
1676 {
1677 unsigned int st_shndx = sym->get_st_shndx();
1678 bool is_ordinary = st_shndx < elfcpp::SHN_LORESERVE;
1679
1680 Stringpool::Key ver_key = 0;
1681 bool is_default_version = false;
1682
1683 Stringpool::Key name_key;
1684 name = this->namepool_.add(name, true, &name_key);
1685
1686 Sized_symbol<size>* res;
1687 res = this->add_from_object(obj, name, name_key, ver, ver_key,
1688 is_default_version, *sym, st_shndx,
1689 is_ordinary, st_shndx);
1690
1691 return res;
1692 }
1693
1694 // This is used to sort weak aliases. We sort them first by section
1695 // index, then by offset, then by weak ahead of strong.
1696
1697 template<int size>
1698 class Weak_alias_sorter
1699 {
1700 public:
1701 bool operator()(const Sized_symbol<size>*, const Sized_symbol<size>*) const;
1702 };
1703
1704 template<int size>
1705 bool
1706 Weak_alias_sorter<size>::operator()(const Sized_symbol<size>* s1,
1707 const Sized_symbol<size>* s2) const
1708 {
1709 bool is_ordinary;
1710 unsigned int s1_shndx = s1->shndx(&is_ordinary);
1711 gold_assert(is_ordinary);
1712 unsigned int s2_shndx = s2->shndx(&is_ordinary);
1713 gold_assert(is_ordinary);
1714 if (s1_shndx != s2_shndx)
1715 return s1_shndx < s2_shndx;
1716
1717 if (s1->value() != s2->value())
1718 return s1->value() < s2->value();
1719 if (s1->binding() != s2->binding())
1720 {
1721 if (s1->binding() == elfcpp::STB_WEAK)
1722 return true;
1723 if (s2->binding() == elfcpp::STB_WEAK)
1724 return false;
1725 }
1726 return std::string(s1->name()) < std::string(s2->name());
1727 }
1728
1729 // SYMBOLS is a list of object symbols from a dynamic object. Look
1730 // for any weak aliases, and record them so that if we add the weak
1731 // alias to the dynamic symbol table, we also add the corresponding
1732 // strong symbol.
1733
1734 template<int size>
1735 void
1736 Symbol_table::record_weak_aliases(std::vector<Sized_symbol<size>*>* symbols)
1737 {
1738 // Sort the vector by section index, then by offset, then by weak
1739 // ahead of strong.
1740 std::sort(symbols->begin(), symbols->end(), Weak_alias_sorter<size>());
1741
1742 // Walk through the vector. For each weak definition, record
1743 // aliases.
1744 for (typename std::vector<Sized_symbol<size>*>::const_iterator p =
1745 symbols->begin();
1746 p != symbols->end();
1747 ++p)
1748 {
1749 if ((*p)->binding() != elfcpp::STB_WEAK)
1750 continue;
1751
1752 // Build a circular list of weak aliases. Each symbol points to
1753 // the next one in the circular list.
1754
1755 Sized_symbol<size>* from_sym = *p;
1756 typename std::vector<Sized_symbol<size>*>::const_iterator q;
1757 for (q = p + 1; q != symbols->end(); ++q)
1758 {
1759 bool dummy;
1760 if ((*q)->shndx(&dummy) != from_sym->shndx(&dummy)
1761 || (*q)->value() != from_sym->value())
1762 break;
1763
1764 this->weak_aliases_[from_sym] = *q;
1765 from_sym->set_has_alias();
1766 from_sym = *q;
1767 }
1768
1769 if (from_sym != *p)
1770 {
1771 this->weak_aliases_[from_sym] = *p;
1772 from_sym->set_has_alias();
1773 }
1774
1775 p = q - 1;
1776 }
1777 }
1778
1779 // Create and return a specially defined symbol. If ONLY_IF_REF is
1780 // true, then only create the symbol if there is a reference to it.
1781 // If this does not return NULL, it sets *POLDSYM to the existing
1782 // symbol if there is one. This sets *RESOLVE_OLDSYM if we should
1783 // resolve the newly created symbol to the old one. This
1784 // canonicalizes *PNAME and *PVERSION.
1785
1786 template<int size, bool big_endian>
1787 Sized_symbol<size>*
1788 Symbol_table::define_special_symbol(const char** pname, const char** pversion,
1789 bool only_if_ref,
1790 elfcpp::STV visibility,
1791 Sized_symbol<size>** poldsym,
1792 bool* resolve_oldsym, bool is_forced_local)
1793 {
1794 *resolve_oldsym = false;
1795 *poldsym = NULL;
1796
1797 // If the caller didn't give us a version, see if we get one from
1798 // the version script.
1799 std::string v;
1800 bool is_default_version = false;
1801 if (!is_forced_local && *pversion == NULL)
1802 {
1803 bool is_global;
1804 if (this->version_script_.get_symbol_version(*pname, &v, &is_global))
1805 {
1806 if (is_global && !v.empty())
1807 {
1808 *pversion = v.c_str();
1809 // If we get the version from a version script, then we
1810 // are also the default version.
1811 is_default_version = true;
1812 }
1813 }
1814 }
1815
1816 Symbol* oldsym;
1817 Sized_symbol<size>* sym;
1818
1819 bool add_to_table = false;
1820 typename Symbol_table_type::iterator add_loc = this->table_.end();
1821 bool add_def_to_table = false;
1822 typename Symbol_table_type::iterator add_def_loc = this->table_.end();
1823
1824 if (only_if_ref)
1825 {
1826 oldsym = this->lookup(*pname, *pversion);
1827 if (oldsym == NULL && is_default_version)
1828 oldsym = this->lookup(*pname, NULL);
1829 if (oldsym == NULL)
1830 return NULL;
1831 if (!oldsym->is_undefined())
1832 {
1833 // Skip if the old definition is from a regular object.
1834 if (!oldsym->is_from_dynobj())
1835 return NULL;
1836
1837 // If the symbol has hidden or internal visibility, ignore
1838 // definition and reference from a dynamic object.
1839 if ((visibility == elfcpp::STV_HIDDEN
1840 || visibility == elfcpp::STV_INTERNAL)
1841 && !oldsym->in_reg())
1842 return NULL;
1843 }
1844
1845 *pname = oldsym->name();
1846 if (is_default_version)
1847 *pversion = this->namepool_.add(*pversion, true, NULL);
1848 else
1849 *pversion = oldsym->version();
1850 }
1851 else
1852 {
1853 // Canonicalize NAME and VERSION.
1854 Stringpool::Key name_key;
1855 *pname = this->namepool_.add(*pname, true, &name_key);
1856
1857 Stringpool::Key version_key = 0;
1858 if (*pversion != NULL)
1859 *pversion = this->namepool_.add(*pversion, true, &version_key);
1860
1861 Symbol* const snull = NULL;
1862 std::pair<typename Symbol_table_type::iterator, bool> ins =
1863 this->table_.insert(std::make_pair(std::make_pair(name_key,
1864 version_key),
1865 snull));
1866
1867 std::pair<typename Symbol_table_type::iterator, bool> insdefault =
1868 std::make_pair(this->table_.end(), false);
1869 if (is_default_version)
1870 {
1871 const Stringpool::Key vnull = 0;
1872 insdefault =
1873 this->table_.insert(std::make_pair(std::make_pair(name_key,
1874 vnull),
1875 snull));
1876 }
1877
1878 if (!ins.second)
1879 {
1880 // We already have a symbol table entry for NAME/VERSION.
1881 oldsym = ins.first->second;
1882 gold_assert(oldsym != NULL);
1883
1884 if (is_default_version)
1885 {
1886 Sized_symbol<size>* soldsym =
1887 this->get_sized_symbol<size>(oldsym);
1888 this->define_default_version<size, big_endian>(soldsym,
1889 insdefault.second,
1890 insdefault.first);
1891 }
1892 }
1893 else
1894 {
1895 // We haven't seen this symbol before.
1896 gold_assert(ins.first->second == NULL);
1897
1898 add_to_table = true;
1899 add_loc = ins.first;
1900
1901 if (is_default_version && !insdefault.second)
1902 {
1903 // We are adding NAME/VERSION, and it is the default
1904 // version. We already have an entry for NAME/NULL.
1905 oldsym = insdefault.first->second;
1906 *resolve_oldsym = true;
1907 }
1908 else
1909 {
1910 oldsym = NULL;
1911
1912 if (is_default_version)
1913 {
1914 add_def_to_table = true;
1915 add_def_loc = insdefault.first;
1916 }
1917 }
1918 }
1919 }
1920
1921 const Target& target = parameters->target();
1922 if (!target.has_make_symbol())
1923 sym = new Sized_symbol<size>();
1924 else
1925 {
1926 Sized_target<size, big_endian>* sized_target =
1927 parameters->sized_target<size, big_endian>();
1928 sym = sized_target->make_symbol(*pname, elfcpp::STT_NOTYPE,
1929 NULL, elfcpp::SHN_UNDEF, 0);
1930 if (sym == NULL)
1931 return NULL;
1932 }
1933
1934 if (add_to_table)
1935 add_loc->second = sym;
1936 else
1937 gold_assert(oldsym != NULL);
1938
1939 if (add_def_to_table)
1940 add_def_loc->second = sym;
1941
1942 *poldsym = this->get_sized_symbol<size>(oldsym);
1943
1944 return sym;
1945 }
1946
1947 // Define a symbol based on an Output_data.
1948
1949 Symbol*
1950 Symbol_table::define_in_output_data(const char* name,
1951 const char* version,
1952 Defined defined,
1953 Output_data* od,
1954 uint64_t value,
1955 uint64_t symsize,
1956 elfcpp::STT type,
1957 elfcpp::STB binding,
1958 elfcpp::STV visibility,
1959 unsigned char nonvis,
1960 bool offset_is_from_end,
1961 bool only_if_ref)
1962 {
1963 if (parameters->target().get_size() == 32)
1964 {
1965 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
1966 return this->do_define_in_output_data<32>(name, version, defined, od,
1967 value, symsize, type, binding,
1968 visibility, nonvis,
1969 offset_is_from_end,
1970 only_if_ref);
1971 #else
1972 gold_unreachable();
1973 #endif
1974 }
1975 else if (parameters->target().get_size() == 64)
1976 {
1977 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
1978 return this->do_define_in_output_data<64>(name, version, defined, od,
1979 value, symsize, type, binding,
1980 visibility, nonvis,
1981 offset_is_from_end,
1982 only_if_ref);
1983 #else
1984 gold_unreachable();
1985 #endif
1986 }
1987 else
1988 gold_unreachable();
1989 }
1990
1991 // Define a symbol in an Output_data, sized version.
1992
1993 template<int size>
1994 Sized_symbol<size>*
1995 Symbol_table::do_define_in_output_data(
1996 const char* name,
1997 const char* version,
1998 Defined defined,
1999 Output_data* od,
2000 typename elfcpp::Elf_types<size>::Elf_Addr value,
2001 typename elfcpp::Elf_types<size>::Elf_WXword symsize,
2002 elfcpp::STT type,
2003 elfcpp::STB binding,
2004 elfcpp::STV visibility,
2005 unsigned char nonvis,
2006 bool offset_is_from_end,
2007 bool only_if_ref)
2008 {
2009 Sized_symbol<size>* sym;
2010 Sized_symbol<size>* oldsym;
2011 bool resolve_oldsym;
2012 const bool is_forced_local = binding == elfcpp::STB_LOCAL;
2013
2014 if (parameters->target().is_big_endian())
2015 {
2016 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2017 sym = this->define_special_symbol<size, true>(&name, &version,
2018 only_if_ref,
2019 visibility,
2020 &oldsym,
2021 &resolve_oldsym,
2022 is_forced_local);
2023 #else
2024 gold_unreachable();
2025 #endif
2026 }
2027 else
2028 {
2029 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2030 sym = this->define_special_symbol<size, false>(&name, &version,
2031 only_if_ref,
2032 visibility,
2033 &oldsym,
2034 &resolve_oldsym,
2035 is_forced_local);
2036 #else
2037 gold_unreachable();
2038 #endif
2039 }
2040
2041 if (sym == NULL)
2042 return NULL;
2043
2044 sym->init_output_data(name, version, od, value, symsize, type, binding,
2045 visibility, nonvis, offset_is_from_end,
2046 defined == PREDEFINED);
2047
2048 if (oldsym == NULL)
2049 {
2050 if (is_forced_local || this->version_script_.symbol_is_local(name))
2051 this->force_local(sym);
2052 else if (version != NULL)
2053 sym->set_is_default();
2054 return sym;
2055 }
2056
2057 if (Symbol_table::should_override_with_special(oldsym, type, defined))
2058 this->override_with_special(oldsym, sym);
2059
2060 if (resolve_oldsym)
2061 return sym;
2062 else
2063 {
2064 if (defined == PREDEFINED
2065 && (is_forced_local || this->version_script_.symbol_is_local(name)))
2066 this->force_local(oldsym);
2067 delete sym;
2068 return oldsym;
2069 }
2070 }
2071
2072 // Define a symbol based on an Output_segment.
2073
2074 Symbol*
2075 Symbol_table::define_in_output_segment(const char* name,
2076 const char* version,
2077 Defined defined,
2078 Output_segment* os,
2079 uint64_t value,
2080 uint64_t symsize,
2081 elfcpp::STT type,
2082 elfcpp::STB binding,
2083 elfcpp::STV visibility,
2084 unsigned char nonvis,
2085 Symbol::Segment_offset_base offset_base,
2086 bool only_if_ref)
2087 {
2088 if (parameters->target().get_size() == 32)
2089 {
2090 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
2091 return this->do_define_in_output_segment<32>(name, version, defined, os,
2092 value, symsize, type,
2093 binding, visibility, nonvis,
2094 offset_base, only_if_ref);
2095 #else
2096 gold_unreachable();
2097 #endif
2098 }
2099 else if (parameters->target().get_size() == 64)
2100 {
2101 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
2102 return this->do_define_in_output_segment<64>(name, version, defined, os,
2103 value, symsize, type,
2104 binding, visibility, nonvis,
2105 offset_base, only_if_ref);
2106 #else
2107 gold_unreachable();
2108 #endif
2109 }
2110 else
2111 gold_unreachable();
2112 }
2113
2114 // Define a symbol in an Output_segment, sized version.
2115
2116 template<int size>
2117 Sized_symbol<size>*
2118 Symbol_table::do_define_in_output_segment(
2119 const char* name,
2120 const char* version,
2121 Defined defined,
2122 Output_segment* os,
2123 typename elfcpp::Elf_types<size>::Elf_Addr value,
2124 typename elfcpp::Elf_types<size>::Elf_WXword symsize,
2125 elfcpp::STT type,
2126 elfcpp::STB binding,
2127 elfcpp::STV visibility,
2128 unsigned char nonvis,
2129 Symbol::Segment_offset_base offset_base,
2130 bool only_if_ref)
2131 {
2132 Sized_symbol<size>* sym;
2133 Sized_symbol<size>* oldsym;
2134 bool resolve_oldsym;
2135 const bool is_forced_local = binding == elfcpp::STB_LOCAL;
2136
2137 if (parameters->target().is_big_endian())
2138 {
2139 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2140 sym = this->define_special_symbol<size, true>(&name, &version,
2141 only_if_ref,
2142 visibility,
2143 &oldsym,
2144 &resolve_oldsym,
2145 is_forced_local);
2146 #else
2147 gold_unreachable();
2148 #endif
2149 }
2150 else
2151 {
2152 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2153 sym = this->define_special_symbol<size, false>(&name, &version,
2154 only_if_ref,
2155 visibility,
2156 &oldsym,
2157 &resolve_oldsym,
2158 is_forced_local);
2159 #else
2160 gold_unreachable();
2161 #endif
2162 }
2163
2164 if (sym == NULL)
2165 return NULL;
2166
2167 sym->init_output_segment(name, version, os, value, symsize, type, binding,
2168 visibility, nonvis, offset_base,
2169 defined == PREDEFINED);
2170
2171 if (oldsym == NULL)
2172 {
2173 if (is_forced_local || this->version_script_.symbol_is_local(name))
2174 this->force_local(sym);
2175 else if (version != NULL)
2176 sym->set_is_default();
2177 return sym;
2178 }
2179
2180 if (Symbol_table::should_override_with_special(oldsym, type, defined))
2181 this->override_with_special(oldsym, sym);
2182
2183 if (resolve_oldsym)
2184 return sym;
2185 else
2186 {
2187 if (is_forced_local || this->version_script_.symbol_is_local(name))
2188 this->force_local(oldsym);
2189 delete sym;
2190 return oldsym;
2191 }
2192 }
2193
2194 // Define a special symbol with a constant value. It is a multiple
2195 // definition error if this symbol is already defined.
2196
2197 Symbol*
2198 Symbol_table::define_as_constant(const char* name,
2199 const char* version,
2200 Defined defined,
2201 uint64_t value,
2202 uint64_t symsize,
2203 elfcpp::STT type,
2204 elfcpp::STB binding,
2205 elfcpp::STV visibility,
2206 unsigned char nonvis,
2207 bool only_if_ref,
2208 bool force_override)
2209 {
2210 if (parameters->target().get_size() == 32)
2211 {
2212 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
2213 return this->do_define_as_constant<32>(name, version, defined, value,
2214 symsize, type, binding,
2215 visibility, nonvis, only_if_ref,
2216 force_override);
2217 #else
2218 gold_unreachable();
2219 #endif
2220 }
2221 else if (parameters->target().get_size() == 64)
2222 {
2223 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
2224 return this->do_define_as_constant<64>(name, version, defined, value,
2225 symsize, type, binding,
2226 visibility, nonvis, only_if_ref,
2227 force_override);
2228 #else
2229 gold_unreachable();
2230 #endif
2231 }
2232 else
2233 gold_unreachable();
2234 }
2235
2236 // Define a symbol as a constant, sized version.
2237
2238 template<int size>
2239 Sized_symbol<size>*
2240 Symbol_table::do_define_as_constant(
2241 const char* name,
2242 const char* version,
2243 Defined defined,
2244 typename elfcpp::Elf_types<size>::Elf_Addr value,
2245 typename elfcpp::Elf_types<size>::Elf_WXword symsize,
2246 elfcpp::STT type,
2247 elfcpp::STB binding,
2248 elfcpp::STV visibility,
2249 unsigned char nonvis,
2250 bool only_if_ref,
2251 bool force_override)
2252 {
2253 Sized_symbol<size>* sym;
2254 Sized_symbol<size>* oldsym;
2255 bool resolve_oldsym;
2256 const bool is_forced_local = binding == elfcpp::STB_LOCAL;
2257
2258 if (parameters->target().is_big_endian())
2259 {
2260 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2261 sym = this->define_special_symbol<size, true>(&name, &version,
2262 only_if_ref,
2263 visibility,
2264 &oldsym,
2265 &resolve_oldsym,
2266 is_forced_local);
2267 #else
2268 gold_unreachable();
2269 #endif
2270 }
2271 else
2272 {
2273 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2274 sym = this->define_special_symbol<size, false>(&name, &version,
2275 only_if_ref,
2276 visibility,
2277 &oldsym,
2278 &resolve_oldsym,
2279 is_forced_local);
2280 #else
2281 gold_unreachable();
2282 #endif
2283 }
2284
2285 if (sym == NULL)
2286 return NULL;
2287
2288 sym->init_constant(name, version, value, symsize, type, binding, visibility,
2289 nonvis, defined == PREDEFINED);
2290
2291 if (oldsym == NULL)
2292 {
2293 // Version symbols are absolute symbols with name == version.
2294 // We don't want to force them to be local.
2295 if ((version == NULL
2296 || name != version
2297 || value != 0)
2298 && (is_forced_local || this->version_script_.symbol_is_local(name)))
2299 this->force_local(sym);
2300 else if (version != NULL
2301 && (name != version || value != 0))
2302 sym->set_is_default();
2303 return sym;
2304 }
2305
2306 if (force_override
2307 || Symbol_table::should_override_with_special(oldsym, type, defined))
2308 this->override_with_special(oldsym, sym);
2309
2310 if (resolve_oldsym)
2311 return sym;
2312 else
2313 {
2314 if (is_forced_local || this->version_script_.symbol_is_local(name))
2315 this->force_local(oldsym);
2316 delete sym;
2317 return oldsym;
2318 }
2319 }
2320
2321 // Define a set of symbols in output sections.
2322
2323 void
2324 Symbol_table::define_symbols(const Layout* layout, int count,
2325 const Define_symbol_in_section* p,
2326 bool only_if_ref)
2327 {
2328 for (int i = 0; i < count; ++i, ++p)
2329 {
2330 Output_section* os = layout->find_output_section(p->output_section);
2331 if (os != NULL)
2332 this->define_in_output_data(p->name, NULL, PREDEFINED, os, p->value,
2333 p->size, p->type, p->binding,
2334 p->visibility, p->nonvis,
2335 p->offset_is_from_end,
2336 only_if_ref || p->only_if_ref);
2337 else
2338 this->define_as_constant(p->name, NULL, PREDEFINED, 0, p->size,
2339 p->type, p->binding, p->visibility, p->nonvis,
2340 only_if_ref || p->only_if_ref,
2341 false);
2342 }
2343 }
2344
2345 // Define a set of symbols in output segments.
2346
2347 void
2348 Symbol_table::define_symbols(const Layout* layout, int count,
2349 const Define_symbol_in_segment* p,
2350 bool only_if_ref)
2351 {
2352 for (int i = 0; i < count; ++i, ++p)
2353 {
2354 Output_segment* os = layout->find_output_segment(p->segment_type,
2355 p->segment_flags_set,
2356 p->segment_flags_clear);
2357 if (os != NULL)
2358 this->define_in_output_segment(p->name, NULL, PREDEFINED, os, p->value,
2359 p->size, p->type, p->binding,
2360 p->visibility, p->nonvis,
2361 p->offset_base,
2362 only_if_ref || p->only_if_ref);
2363 else
2364 this->define_as_constant(p->name, NULL, PREDEFINED, 0, p->size,
2365 p->type, p->binding, p->visibility, p->nonvis,
2366 only_if_ref || p->only_if_ref,
2367 false);
2368 }
2369 }
2370
2371 // Define CSYM using a COPY reloc. POSD is the Output_data where the
2372 // symbol should be defined--typically a .dyn.bss section. VALUE is
2373 // the offset within POSD.
2374
2375 template<int size>
2376 void
2377 Symbol_table::define_with_copy_reloc(
2378 Sized_symbol<size>* csym,
2379 Output_data* posd,
2380 typename elfcpp::Elf_types<size>::Elf_Addr value)
2381 {
2382 gold_assert(csym->is_from_dynobj());
2383 gold_assert(!csym->is_copied_from_dynobj());
2384 Object* object = csym->object();
2385 gold_assert(object->is_dynamic());
2386 Dynobj* dynobj = static_cast<Dynobj*>(object);
2387
2388 // Our copied variable has to override any variable in a shared
2389 // library.
2390 elfcpp::STB binding = csym->binding();
2391 if (binding == elfcpp::STB_WEAK)
2392 binding = elfcpp::STB_GLOBAL;
2393
2394 this->define_in_output_data(csym->name(), csym->version(), COPY,
2395 posd, value, csym->symsize(),
2396 csym->type(), binding,
2397 csym->visibility(), csym->nonvis(),
2398 false, false);
2399
2400 csym->set_is_copied_from_dynobj();
2401 csym->set_needs_dynsym_entry();
2402
2403 this->copied_symbol_dynobjs_[csym] = dynobj;
2404
2405 // We have now defined all aliases, but we have not entered them all
2406 // in the copied_symbol_dynobjs_ map.
2407 if (csym->has_alias())
2408 {
2409 Symbol* sym = csym;
2410 while (true)
2411 {
2412 sym = this->weak_aliases_[sym];
2413 if (sym == csym)
2414 break;
2415 gold_assert(sym->output_data() == posd);
2416
2417 sym->set_is_copied_from_dynobj();
2418 this->copied_symbol_dynobjs_[sym] = dynobj;
2419 }
2420 }
2421 }
2422
2423 // SYM is defined using a COPY reloc. Return the dynamic object where
2424 // the original definition was found.
2425
2426 Dynobj*
2427 Symbol_table::get_copy_source(const Symbol* sym) const
2428 {
2429 gold_assert(sym->is_copied_from_dynobj());
2430 Copied_symbol_dynobjs::const_iterator p =
2431 this->copied_symbol_dynobjs_.find(sym);
2432 gold_assert(p != this->copied_symbol_dynobjs_.end());
2433 return p->second;
2434 }
2435
2436 // Add any undefined symbols named on the command line.
2437
2438 void
2439 Symbol_table::add_undefined_symbols_from_command_line(Layout* layout)
2440 {
2441 if (parameters->options().any_undefined()
2442 || layout->script_options()->any_unreferenced())
2443 {
2444 if (parameters->target().get_size() == 32)
2445 {
2446 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
2447 this->do_add_undefined_symbols_from_command_line<32>(layout);
2448 #else
2449 gold_unreachable();
2450 #endif
2451 }
2452 else if (parameters->target().get_size() == 64)
2453 {
2454 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
2455 this->do_add_undefined_symbols_from_command_line<64>(layout);
2456 #else
2457 gold_unreachable();
2458 #endif
2459 }
2460 else
2461 gold_unreachable();
2462 }
2463 }
2464
2465 template<int size>
2466 void
2467 Symbol_table::do_add_undefined_symbols_from_command_line(Layout* layout)
2468 {
2469 for (options::String_set::const_iterator p =
2470 parameters->options().undefined_begin();
2471 p != parameters->options().undefined_end();
2472 ++p)
2473 this->add_undefined_symbol_from_command_line<size>(p->c_str());
2474
2475 for (options::String_set::const_iterator p =
2476 parameters->options().export_dynamic_symbol_begin();
2477 p != parameters->options().export_dynamic_symbol_end();
2478 ++p)
2479 this->add_undefined_symbol_from_command_line<size>(p->c_str());
2480
2481 for (Script_options::referenced_const_iterator p =
2482 layout->script_options()->referenced_begin();
2483 p != layout->script_options()->referenced_end();
2484 ++p)
2485 this->add_undefined_symbol_from_command_line<size>(p->c_str());
2486 }
2487
2488 template<int size>
2489 void
2490 Symbol_table::add_undefined_symbol_from_command_line(const char* name)
2491 {
2492 if (this->lookup(name) != NULL)
2493 return;
2494
2495 const char* version = NULL;
2496
2497 Sized_symbol<size>* sym;
2498 Sized_symbol<size>* oldsym;
2499 bool resolve_oldsym;
2500 if (parameters->target().is_big_endian())
2501 {
2502 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2503 sym = this->define_special_symbol<size, true>(&name, &version,
2504 false,
2505 elfcpp::STV_DEFAULT,
2506 &oldsym,
2507 &resolve_oldsym,
2508 false);
2509 #else
2510 gold_unreachable();
2511 #endif
2512 }
2513 else
2514 {
2515 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2516 sym = this->define_special_symbol<size, false>(&name, &version,
2517 false,
2518 elfcpp::STV_DEFAULT,
2519 &oldsym,
2520 &resolve_oldsym,
2521 false);
2522 #else
2523 gold_unreachable();
2524 #endif
2525 }
2526
2527 gold_assert(oldsym == NULL);
2528
2529 sym->init_undefined(name, version, 0, elfcpp::STT_NOTYPE, elfcpp::STB_GLOBAL,
2530 elfcpp::STV_DEFAULT, 0);
2531 ++this->saw_undefined_;
2532 }
2533
2534 // Set the dynamic symbol indexes. INDEX is the index of the first
2535 // global dynamic symbol. Pointers to the global symbols are stored
2536 // into the vector SYMS. The names are added to DYNPOOL.
2537 // This returns an updated dynamic symbol index.
2538
2539 unsigned int
2540 Symbol_table::set_dynsym_indexes(unsigned int index,
2541 unsigned int* pforced_local_count,
2542 std::vector<Symbol*>* syms,
2543 Stringpool* dynpool,
2544 Versions* versions)
2545 {
2546 std::vector<Symbol*> as_needed_sym;
2547
2548 // First process all the symbols which have been forced to be local,
2549 // as they must appear before all global symbols.
2550 unsigned int forced_local_count = 0;
2551 for (Forced_locals::iterator p = this->forced_locals_.begin();
2552 p != this->forced_locals_.end();
2553 ++p)
2554 {
2555 Symbol* sym = *p;
2556 gold_assert(sym->is_forced_local());
2557 if (sym->has_dynsym_index())
2558 continue;
2559 if (!sym->should_add_dynsym_entry(this))
2560 sym->set_dynsym_index(-1U);
2561 else
2562 {
2563 sym->set_dynsym_index(index);
2564 ++index;
2565 ++forced_local_count;
2566 dynpool->add(sym->name(), false, NULL);
2567 }
2568 }
2569 *pforced_local_count = forced_local_count;
2570
2571 // Allow a target to set dynsym indexes.
2572 if (parameters->target().has_custom_set_dynsym_indexes())
2573 {
2574 std::vector<Symbol*> dyn_symbols;
2575 for (Symbol_table_type::iterator p = this->table_.begin();
2576 p != this->table_.end();
2577 ++p)
2578 {
2579 Symbol* sym = p->second;
2580 if (sym->is_forced_local())
2581 continue;
2582 if (!sym->should_add_dynsym_entry(this))
2583 sym->set_dynsym_index(-1U);
2584 else
2585 dyn_symbols.push_back(sym);
2586 }
2587
2588 return parameters->target().set_dynsym_indexes(&dyn_symbols, index, syms,
2589 dynpool, versions, this);
2590 }
2591
2592 for (Symbol_table_type::iterator p = this->table_.begin();
2593 p != this->table_.end();
2594 ++p)
2595 {
2596 Symbol* sym = p->second;
2597
2598 if (sym->is_forced_local())
2599 continue;
2600
2601 // Note that SYM may already have a dynamic symbol index, since
2602 // some symbols appear more than once in the symbol table, with
2603 // and without a version.
2604
2605 if (!sym->should_add_dynsym_entry(this))
2606 sym->set_dynsym_index(-1U);
2607 else if (!sym->has_dynsym_index())
2608 {
2609 sym->set_dynsym_index(index);
2610 ++index;
2611 syms->push_back(sym);
2612 dynpool->add(sym->name(), false, NULL);
2613
2614 // If the symbol is defined in a dynamic object and is
2615 // referenced strongly in a regular object, then mark the
2616 // dynamic object as needed. This is used to implement
2617 // --as-needed.
2618 if (sym->is_from_dynobj()
2619 && sym->in_reg()
2620 && !sym->is_undef_binding_weak())
2621 sym->object()->set_is_needed();
2622
2623 // Record any version information, except those from
2624 // as-needed libraries not seen to be needed. Note that the
2625 // is_needed state for such libraries can change in this loop.
2626 if (sym->version() != NULL)
2627 {
2628 if (!sym->is_from_dynobj()
2629 || !sym->object()->as_needed()
2630 || sym->object()->is_needed())
2631 versions->record_version(this, dynpool, sym);
2632 else
2633 as_needed_sym.push_back(sym);
2634 }
2635 }
2636 }
2637
2638 // Process version information for symbols from as-needed libraries.
2639 for (std::vector<Symbol*>::iterator p = as_needed_sym.begin();
2640 p != as_needed_sym.end();
2641 ++p)
2642 {
2643 Symbol* sym = *p;
2644
2645 if (sym->object()->is_needed())
2646 versions->record_version(this, dynpool, sym);
2647 else
2648 sym->clear_version();
2649 }
2650
2651 // Finish up the versions. In some cases this may add new dynamic
2652 // symbols.
2653 index = versions->finalize(this, index, syms);
2654
2655 // Process target-specific symbols.
2656 for (std::vector<Symbol*>::iterator p = this->target_symbols_.begin();
2657 p != this->target_symbols_.end();
2658 ++p)
2659 {
2660 (*p)->set_dynsym_index(index);
2661 ++index;
2662 syms->push_back(*p);
2663 dynpool->add((*p)->name(), false, NULL);
2664 }
2665
2666 return index;
2667 }
2668
2669 // Set the final values for all the symbols. The index of the first
2670 // global symbol in the output file is *PLOCAL_SYMCOUNT. Record the
2671 // file offset OFF. Add their names to POOL. Return the new file
2672 // offset. Update *PLOCAL_SYMCOUNT if necessary. DYNOFF and
2673 // DYN_GLOBAL_INDEX refer to the start of the symbols that will be
2674 // written from the global symbol table in Symtab::write_globals(),
2675 // which will include forced-local symbols. DYN_GLOBAL_INDEX is
2676 // not necessarily the same as the sh_info field for the .dynsym
2677 // section, which will point to the first real global symbol.
2678
2679 off_t
2680 Symbol_table::finalize(off_t off, off_t dynoff, size_t dyn_global_index,
2681 size_t dyncount, Stringpool* pool,
2682 unsigned int* plocal_symcount)
2683 {
2684 off_t ret;
2685
2686 gold_assert(*plocal_symcount != 0);
2687 this->first_global_index_ = *plocal_symcount;
2688
2689 this->dynamic_offset_ = dynoff;
2690 this->first_dynamic_global_index_ = dyn_global_index;
2691 this->dynamic_count_ = dyncount;
2692
2693 if (parameters->target().get_size() == 32)
2694 {
2695 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_32_LITTLE)
2696 ret = this->sized_finalize<32>(off, pool, plocal_symcount);
2697 #else
2698 gold_unreachable();
2699 #endif
2700 }
2701 else if (parameters->target().get_size() == 64)
2702 {
2703 #if defined(HAVE_TARGET_64_BIG) || defined(HAVE_TARGET_64_LITTLE)
2704 ret = this->sized_finalize<64>(off, pool, plocal_symcount);
2705 #else
2706 gold_unreachable();
2707 #endif
2708 }
2709 else
2710 gold_unreachable();
2711
2712 // Now that we have the final symbol table, we can reliably note
2713 // which symbols should get warnings.
2714 this->warnings_.note_warnings(this);
2715
2716 return ret;
2717 }
2718
2719 // SYM is going into the symbol table at *PINDEX. Add the name to
2720 // POOL, update *PINDEX and *POFF.
2721
2722 template<int size>
2723 void
2724 Symbol_table::add_to_final_symtab(Symbol* sym, Stringpool* pool,
2725 unsigned int* pindex, off_t* poff)
2726 {
2727 sym->set_symtab_index(*pindex);
2728 if (sym->version() == NULL || !parameters->options().relocatable())
2729 pool->add(sym->name(), false, NULL);
2730 else
2731 pool->add(sym->versioned_name(), true, NULL);
2732 ++*pindex;
2733 *poff += elfcpp::Elf_sizes<size>::sym_size;
2734 }
2735
2736 // Set the final value for all the symbols. This is called after
2737 // Layout::finalize, so all the output sections have their final
2738 // address.
2739
2740 template<int size>
2741 off_t
2742 Symbol_table::sized_finalize(off_t off, Stringpool* pool,
2743 unsigned int* plocal_symcount)
2744 {
2745 off = align_address(off, size >> 3);
2746 this->offset_ = off;
2747
2748 unsigned int index = *plocal_symcount;
2749 const unsigned int orig_index = index;
2750
2751 // First do all the symbols which have been forced to be local, as
2752 // they must appear before all global symbols.
2753 for (Forced_locals::iterator p = this->forced_locals_.begin();
2754 p != this->forced_locals_.end();
2755 ++p)
2756 {
2757 Symbol* sym = *p;
2758 gold_assert(sym->is_forced_local());
2759 if (this->sized_finalize_symbol<size>(sym))
2760 {
2761 this->add_to_final_symtab<size>(sym, pool, &index, &off);
2762 ++*plocal_symcount;
2763 }
2764 }
2765
2766 // Now do all the remaining symbols.
2767 for (Symbol_table_type::iterator p = this->table_.begin();
2768 p != this->table_.end();
2769 ++p)
2770 {
2771 Symbol* sym = p->second;
2772 if (this->sized_finalize_symbol<size>(sym))
2773 this->add_to_final_symtab<size>(sym, pool, &index, &off);
2774 }
2775
2776 // Now do target-specific symbols.
2777 for (std::vector<Symbol*>::iterator p = this->target_symbols_.begin();
2778 p != this->target_symbols_.end();
2779 ++p)
2780 {
2781 this->add_to_final_symtab<size>(*p, pool, &index, &off);
2782 }
2783
2784 this->output_count_ = index - orig_index;
2785
2786 return off;
2787 }
2788
2789 // Compute the final value of SYM and store status in location PSTATUS.
2790 // During relaxation, this may be called multiple times for a symbol to
2791 // compute its would-be final value in each relaxation pass.
2792
2793 template<int size>
2794 typename Sized_symbol<size>::Value_type
2795 Symbol_table::compute_final_value(
2796 const Sized_symbol<size>* sym,
2797 Compute_final_value_status* pstatus) const
2798 {
2799 typedef typename Sized_symbol<size>::Value_type Value_type;
2800 Value_type value;
2801
2802 switch (sym->source())
2803 {
2804 case Symbol::FROM_OBJECT:
2805 {
2806 bool is_ordinary;
2807 unsigned int shndx = sym->shndx(&is_ordinary);
2808
2809 if (!is_ordinary
2810 && shndx != elfcpp::SHN_ABS
2811 && !Symbol::is_common_shndx(shndx))
2812 {
2813 *pstatus = CFVS_UNSUPPORTED_SYMBOL_SECTION;
2814 return 0;
2815 }
2816
2817 Object* symobj = sym->object();
2818 if (symobj->is_dynamic())
2819 {
2820 value = 0;
2821 shndx = elfcpp::SHN_UNDEF;
2822 }
2823 else if (symobj->pluginobj() != NULL)
2824 {
2825 value = 0;
2826 shndx = elfcpp::SHN_UNDEF;
2827 }
2828 else if (shndx == elfcpp::SHN_UNDEF)
2829 value = 0;
2830 else if (!is_ordinary
2831 && (shndx == elfcpp::SHN_ABS
2832 || Symbol::is_common_shndx(shndx)))
2833 value = sym->value();
2834 else
2835 {
2836 Relobj* relobj = static_cast<Relobj*>(symobj);
2837 Output_section* os = relobj->output_section(shndx);
2838
2839 if (this->is_section_folded(relobj, shndx))
2840 {
2841 gold_assert(os == NULL);
2842 // Get the os of the section it is folded onto.
2843 Section_id folded = this->icf_->get_folded_section(relobj,
2844 shndx);
2845 gold_assert(folded.first != NULL);
2846 Relobj* folded_obj = reinterpret_cast<Relobj*>(folded.first);
2847 unsigned folded_shndx = folded.second;
2848
2849 os = folded_obj->output_section(folded_shndx);
2850 gold_assert(os != NULL);
2851
2852 // Replace (relobj, shndx) with canonical ICF input section.
2853 shndx = folded_shndx;
2854 relobj = folded_obj;
2855 }
2856
2857 uint64_t secoff64 = relobj->output_section_offset(shndx);
2858 if (os == NULL)
2859 {
2860 bool static_or_reloc = (parameters->doing_static_link() ||
2861 parameters->options().relocatable());
2862 gold_assert(static_or_reloc || sym->dynsym_index() == -1U);
2863
2864 *pstatus = CFVS_NO_OUTPUT_SECTION;
2865 return 0;
2866 }
2867
2868 if (secoff64 == -1ULL)
2869 {
2870 // The section needs special handling (e.g., a merge section).
2871
2872 value = os->output_address(relobj, shndx, sym->value());
2873 }
2874 else
2875 {
2876 Value_type secoff =
2877 convert_types<Value_type, uint64_t>(secoff64);
2878 if (sym->type() == elfcpp::STT_TLS)
2879 value = sym->value() + os->tls_offset() + secoff;
2880 else
2881 value = sym->value() + os->address() + secoff;
2882 }
2883 }
2884 }
2885 break;
2886
2887 case Symbol::IN_OUTPUT_DATA:
2888 {
2889 Output_data* od = sym->output_data();
2890 value = sym->value();
2891 if (sym->type() != elfcpp::STT_TLS)
2892 value += od->address();
2893 else
2894 {
2895 Output_section* os = od->output_section();
2896 gold_assert(os != NULL);
2897 value += os->tls_offset() + (od->address() - os->address());
2898 }
2899 if (sym->offset_is_from_end())
2900 value += od->data_size();
2901 }
2902 break;
2903
2904 case Symbol::IN_OUTPUT_SEGMENT:
2905 {
2906 Output_segment* os = sym->output_segment();
2907 value = sym->value();
2908 if (sym->type() != elfcpp::STT_TLS)
2909 value += os->vaddr();
2910 switch (sym->offset_base())
2911 {
2912 case Symbol::SEGMENT_START:
2913 break;
2914 case Symbol::SEGMENT_END:
2915 value += os->memsz();
2916 break;
2917 case Symbol::SEGMENT_BSS:
2918 value += os->filesz();
2919 break;
2920 default:
2921 gold_unreachable();
2922 }
2923 }
2924 break;
2925
2926 case Symbol::IS_CONSTANT:
2927 value = sym->value();
2928 break;
2929
2930 case Symbol::IS_UNDEFINED:
2931 value = 0;
2932 break;
2933
2934 default:
2935 gold_unreachable();
2936 }
2937
2938 *pstatus = CFVS_OK;
2939 return value;
2940 }
2941
2942 // Finalize the symbol SYM. This returns true if the symbol should be
2943 // added to the symbol table, false otherwise.
2944
2945 template<int size>
2946 bool
2947 Symbol_table::sized_finalize_symbol(Symbol* unsized_sym)
2948 {
2949 typedef typename Sized_symbol<size>::Value_type Value_type;
2950
2951 Sized_symbol<size>* sym = static_cast<Sized_symbol<size>*>(unsized_sym);
2952
2953 // The default version of a symbol may appear twice in the symbol
2954 // table. We only need to finalize it once.
2955 if (sym->has_symtab_index())
2956 return false;
2957
2958 if (!sym->in_reg())
2959 {
2960 gold_assert(!sym->has_symtab_index());
2961 sym->set_symtab_index(-1U);
2962 gold_assert(sym->dynsym_index() == -1U);
2963 return false;
2964 }
2965
2966 // If the symbol is only present on plugin files, the plugin decided we
2967 // don't need it.
2968 if (!sym->in_real_elf())
2969 {
2970 gold_assert(!sym->has_symtab_index());
2971 sym->set_symtab_index(-1U);
2972 return false;
2973 }
2974
2975 // Compute final symbol value.
2976 Compute_final_value_status status;
2977 Value_type value = this->compute_final_value(sym, &status);
2978
2979 switch (status)
2980 {
2981 case CFVS_OK:
2982 break;
2983 case CFVS_UNSUPPORTED_SYMBOL_SECTION:
2984 {
2985 bool is_ordinary;
2986 unsigned int shndx = sym->shndx(&is_ordinary);
2987 gold_error(_("%s: unsupported symbol section 0x%x"),
2988 sym->demangled_name().c_str(), shndx);
2989 }
2990 break;
2991 case CFVS_NO_OUTPUT_SECTION:
2992 sym->set_symtab_index(-1U);
2993 return false;
2994 default:
2995 gold_unreachable();
2996 }
2997
2998 sym->set_value(value);
2999
3000 if (parameters->options().strip_all()
3001 || !parameters->options().should_retain_symbol(sym->name()))
3002 {
3003 sym->set_symtab_index(-1U);
3004 return false;
3005 }
3006
3007 return true;
3008 }
3009
3010 // Write out the global symbols.
3011
3012 void
3013 Symbol_table::write_globals(const Stringpool* sympool,
3014 const Stringpool* dynpool,
3015 Output_symtab_xindex* symtab_xindex,
3016 Output_symtab_xindex* dynsym_xindex,
3017 Output_file* of) const
3018 {
3019 switch (parameters->size_and_endianness())
3020 {
3021 #ifdef HAVE_TARGET_32_LITTLE
3022 case Parameters::TARGET_32_LITTLE:
3023 this->sized_write_globals<32, false>(sympool, dynpool, symtab_xindex,
3024 dynsym_xindex, of);
3025 break;
3026 #endif
3027 #ifdef HAVE_TARGET_32_BIG
3028 case Parameters::TARGET_32_BIG:
3029 this->sized_write_globals<32, true>(sympool, dynpool, symtab_xindex,
3030 dynsym_xindex, of);
3031 break;
3032 #endif
3033 #ifdef HAVE_TARGET_64_LITTLE
3034 case Parameters::TARGET_64_LITTLE:
3035 this->sized_write_globals<64, false>(sympool, dynpool, symtab_xindex,
3036 dynsym_xindex, of);
3037 break;
3038 #endif
3039 #ifdef HAVE_TARGET_64_BIG
3040 case Parameters::TARGET_64_BIG:
3041 this->sized_write_globals<64, true>(sympool, dynpool, symtab_xindex,
3042 dynsym_xindex, of);
3043 break;
3044 #endif
3045 default:
3046 gold_unreachable();
3047 }
3048 }
3049
3050 // Write out the global symbols.
3051
3052 template<int size, bool big_endian>
3053 void
3054 Symbol_table::sized_write_globals(const Stringpool* sympool,
3055 const Stringpool* dynpool,
3056 Output_symtab_xindex* symtab_xindex,
3057 Output_symtab_xindex* dynsym_xindex,
3058 Output_file* of) const
3059 {
3060 const Target& target = parameters->target();
3061
3062 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
3063
3064 const unsigned int output_count = this->output_count_;
3065 const section_size_type oview_size = output_count * sym_size;
3066 const unsigned int first_global_index = this->first_global_index_;
3067 unsigned char* psyms;
3068 if (this->offset_ == 0 || output_count == 0)
3069 psyms = NULL;
3070 else
3071 psyms = of->get_output_view(this->offset_, oview_size);
3072
3073 const unsigned int dynamic_count = this->dynamic_count_;
3074 const section_size_type dynamic_size = dynamic_count * sym_size;
3075 const unsigned int first_dynamic_global_index =
3076 this->first_dynamic_global_index_;
3077 unsigned char* dynamic_view;
3078 if (this->dynamic_offset_ == 0 || dynamic_count == 0)
3079 dynamic_view = NULL;
3080 else
3081 dynamic_view = of->get_output_view(this->dynamic_offset_, dynamic_size);
3082
3083 for (Symbol_table_type::const_iterator p = this->table_.begin();
3084 p != this->table_.end();
3085 ++p)
3086 {
3087 Sized_symbol<size>* sym = static_cast<Sized_symbol<size>*>(p->second);
3088
3089 // Possibly warn about unresolved symbols in shared libraries.
3090 this->warn_about_undefined_dynobj_symbol(sym);
3091
3092 unsigned int sym_index = sym->symtab_index();
3093 unsigned int dynsym_index;
3094 if (dynamic_view == NULL)
3095 dynsym_index = -1U;
3096 else
3097 dynsym_index = sym->dynsym_index();
3098
3099 if (sym_index == -1U && dynsym_index == -1U)
3100 {
3101 // This symbol is not included in the output file.
3102 continue;
3103 }
3104
3105 unsigned int shndx;
3106 typename elfcpp::Elf_types<size>::Elf_Addr sym_value = sym->value();
3107 typename elfcpp::Elf_types<size>::Elf_Addr dynsym_value = sym_value;
3108 elfcpp::STB binding = sym->binding();
3109
3110 // If --weak-unresolved-symbols is set, change binding of unresolved
3111 // global symbols to STB_WEAK.
3112 if (parameters->options().weak_unresolved_symbols()
3113 && binding == elfcpp::STB_GLOBAL
3114 && sym->is_undefined())
3115 binding = elfcpp::STB_WEAK;
3116
3117 // If --no-gnu-unique is set, change STB_GNU_UNIQUE to STB_GLOBAL.
3118 if (binding == elfcpp::STB_GNU_UNIQUE
3119 && !parameters->options().gnu_unique())
3120 binding = elfcpp::STB_GLOBAL;
3121
3122 switch (sym->source())
3123 {
3124 case Symbol::FROM_OBJECT:
3125 {
3126 bool is_ordinary;
3127 unsigned int in_shndx = sym->shndx(&is_ordinary);
3128
3129 if (!is_ordinary
3130 && in_shndx != elfcpp::SHN_ABS
3131 && !Symbol::is_common_shndx(in_shndx))
3132 {
3133 gold_error(_("%s: unsupported symbol section 0x%x"),
3134 sym->demangled_name().c_str(), in_shndx);
3135 shndx = in_shndx;
3136 }
3137 else
3138 {
3139 Object* symobj = sym->object();
3140 if (symobj->is_dynamic())
3141 {
3142 if (sym->needs_dynsym_value())
3143 dynsym_value = target.dynsym_value(sym);
3144 shndx = elfcpp::SHN_UNDEF;
3145 if (sym->is_undef_binding_weak())
3146 binding = elfcpp::STB_WEAK;
3147 else
3148 binding = elfcpp::STB_GLOBAL;
3149 }
3150 else if (symobj->pluginobj() != NULL)
3151 shndx = elfcpp::SHN_UNDEF;
3152 else if (in_shndx == elfcpp::SHN_UNDEF
3153 || (!is_ordinary
3154 && (in_shndx == elfcpp::SHN_ABS
3155 || Symbol::is_common_shndx(in_shndx))))
3156 shndx = in_shndx;
3157 else
3158 {
3159 Relobj* relobj = static_cast<Relobj*>(symobj);
3160 Output_section* os = relobj->output_section(in_shndx);
3161 if (this->is_section_folded(relobj, in_shndx))
3162 {
3163 // This global symbol must be written out even though
3164 // it is folded.
3165 // Get the os of the section it is folded onto.
3166 Section_id folded =
3167 this->icf_->get_folded_section(relobj, in_shndx);
3168 gold_assert(folded.first !=NULL);
3169 Relobj* folded_obj =
3170 reinterpret_cast<Relobj*>(folded.first);
3171 os = folded_obj->output_section(folded.second);
3172 gold_assert(os != NULL);
3173 }
3174 gold_assert(os != NULL);
3175 shndx = os->out_shndx();
3176
3177 if (shndx >= elfcpp::SHN_LORESERVE)
3178 {
3179 if (sym_index != -1U)
3180 symtab_xindex->add(sym_index, shndx);
3181 if (dynsym_index != -1U)
3182 dynsym_xindex->add(dynsym_index, shndx);
3183 shndx = elfcpp::SHN_XINDEX;
3184 }
3185
3186 // In object files symbol values are section
3187 // relative.
3188 if (parameters->options().relocatable())
3189 sym_value -= os->address();
3190 }
3191 }
3192 }
3193 break;
3194
3195 case Symbol::IN_OUTPUT_DATA:
3196 {
3197 Output_data* od = sym->output_data();
3198
3199 shndx = od->out_shndx();
3200 if (shndx >= elfcpp::SHN_LORESERVE)
3201 {
3202 if (sym_index != -1U)
3203 symtab_xindex->add(sym_index, shndx);
3204 if (dynsym_index != -1U)
3205 dynsym_xindex->add(dynsym_index, shndx);
3206 shndx = elfcpp::SHN_XINDEX;
3207 }
3208
3209 // In object files symbol values are section
3210 // relative.
3211 if (parameters->options().relocatable())
3212 {
3213 Output_section* os = od->output_section();
3214 gold_assert(os != NULL);
3215 sym_value -= os->address();
3216 }
3217 }
3218 break;
3219
3220 case Symbol::IN_OUTPUT_SEGMENT:
3221 {
3222 Output_segment* oseg = sym->output_segment();
3223 Output_section* osect = oseg->first_section();
3224 if (osect == NULL)
3225 shndx = elfcpp::SHN_ABS;
3226 else
3227 shndx = osect->out_shndx();
3228 }
3229 break;
3230
3231 case Symbol::IS_CONSTANT:
3232 shndx = elfcpp::SHN_ABS;
3233 break;
3234
3235 case Symbol::IS_UNDEFINED:
3236 shndx = elfcpp::SHN_UNDEF;
3237 break;
3238
3239 default:
3240 gold_unreachable();
3241 }
3242
3243 if (sym_index != -1U)
3244 {
3245 sym_index -= first_global_index;
3246 gold_assert(sym_index < output_count);
3247 unsigned char* ps = psyms + (sym_index * sym_size);
3248 this->sized_write_symbol<size, big_endian>(sym, sym_value, shndx,
3249 binding, sympool, ps);
3250 }
3251
3252 if (dynsym_index != -1U)
3253 {
3254 dynsym_index -= first_dynamic_global_index;
3255 gold_assert(dynsym_index < dynamic_count);
3256 unsigned char* pd = dynamic_view + (dynsym_index * sym_size);
3257 this->sized_write_symbol<size, big_endian>(sym, dynsym_value, shndx,
3258 binding, dynpool, pd);
3259 // Allow a target to adjust dynamic symbol value.
3260 parameters->target().adjust_dyn_symbol(sym, pd);
3261 }
3262 }
3263
3264 // Write the target-specific symbols.
3265 for (std::vector<Symbol*>::const_iterator p = this->target_symbols_.begin();
3266 p != this->target_symbols_.end();
3267 ++p)
3268 {
3269 Sized_symbol<size>* sym = static_cast<Sized_symbol<size>*>(*p);
3270
3271 unsigned int sym_index = sym->symtab_index();
3272 unsigned int dynsym_index;
3273 if (dynamic_view == NULL)
3274 dynsym_index = -1U;
3275 else
3276 dynsym_index = sym->dynsym_index();
3277
3278 unsigned int shndx;
3279 switch (sym->source())
3280 {
3281 case Symbol::IS_CONSTANT:
3282 shndx = elfcpp::SHN_ABS;
3283 break;
3284 case Symbol::IS_UNDEFINED:
3285 shndx = elfcpp::SHN_UNDEF;
3286 break;
3287 default:
3288 gold_unreachable();
3289 }
3290
3291 if (sym_index != -1U)
3292 {
3293 sym_index -= first_global_index;
3294 gold_assert(sym_index < output_count);
3295 unsigned char* ps = psyms + (sym_index * sym_size);
3296 this->sized_write_symbol<size, big_endian>(sym, sym->value(), shndx,
3297 sym->binding(), sympool,
3298 ps);
3299 }
3300
3301 if (dynsym_index != -1U)
3302 {
3303 dynsym_index -= first_dynamic_global_index;
3304 gold_assert(dynsym_index < dynamic_count);
3305 unsigned char* pd = dynamic_view + (dynsym_index * sym_size);
3306 this->sized_write_symbol<size, big_endian>(sym, sym->value(), shndx,
3307 sym->binding(), dynpool,
3308 pd);
3309 }
3310 }
3311
3312 of->write_output_view(this->offset_, oview_size, psyms);
3313 if (dynamic_view != NULL)
3314 of->write_output_view(this->dynamic_offset_, dynamic_size, dynamic_view);
3315 }
3316
3317 // Write out the symbol SYM, in section SHNDX, to P. POOL is the
3318 // strtab holding the name.
3319
3320 template<int size, bool big_endian>
3321 void
3322 Symbol_table::sized_write_symbol(
3323 Sized_symbol<size>* sym,
3324 typename elfcpp::Elf_types<size>::Elf_Addr value,
3325 unsigned int shndx,
3326 elfcpp::STB binding,
3327 const Stringpool* pool,
3328 unsigned char* p) const
3329 {
3330 elfcpp::Sym_write<size, big_endian> osym(p);
3331 if (sym->version() == NULL || !parameters->options().relocatable())
3332 osym.put_st_name(pool->get_offset(sym->name()));
3333 else
3334 osym.put_st_name(pool->get_offset(sym->versioned_name()));
3335 osym.put_st_value(value);
3336 // Use a symbol size of zero for undefined symbols from shared libraries.
3337 if (shndx == elfcpp::SHN_UNDEF && sym->is_from_dynobj())
3338 osym.put_st_size(0);
3339 else
3340 osym.put_st_size(sym->symsize());
3341 elfcpp::STT type = sym->type();
3342 gold_assert(type != elfcpp::STT_GNU_IFUNC || !sym->is_from_dynobj());
3343 // A version script may have overridden the default binding.
3344 if (sym->is_forced_local())
3345 osym.put_st_info(elfcpp::elf_st_info(elfcpp::STB_LOCAL, type));
3346 else
3347 osym.put_st_info(elfcpp::elf_st_info(binding, type));
3348 osym.put_st_other(elfcpp::elf_st_other(sym->visibility(), sym->nonvis()));
3349 osym.put_st_shndx(shndx);
3350 }
3351
3352 // Check for unresolved symbols in shared libraries. This is
3353 // controlled by the --allow-shlib-undefined option.
3354
3355 // We only warn about libraries for which we have seen all the
3356 // DT_NEEDED entries. We don't try to track down DT_NEEDED entries
3357 // which were not seen in this link. If we didn't see a DT_NEEDED
3358 // entry, we aren't going to be able to reliably report whether the
3359 // symbol is undefined.
3360
3361 // We also don't warn about libraries found in a system library
3362 // directory (e.g., /lib or /usr/lib); we assume that those libraries
3363 // are OK. This heuristic avoids problems on GNU/Linux, in which -ldl
3364 // can have undefined references satisfied by ld-linux.so.
3365
3366 inline void
3367 Symbol_table::warn_about_undefined_dynobj_symbol(Symbol* sym) const
3368 {
3369 bool dummy;
3370 if (sym->source() == Symbol::FROM_OBJECT
3371 && sym->object()->is_dynamic()
3372 && sym->shndx(&dummy) == elfcpp::SHN_UNDEF
3373 && sym->binding() != elfcpp::STB_WEAK
3374 && !parameters->options().allow_shlib_undefined()
3375 && !parameters->target().is_defined_by_abi(sym)
3376 && !sym->object()->is_in_system_directory())
3377 {
3378 // A very ugly cast.
3379 Dynobj* dynobj = static_cast<Dynobj*>(sym->object());
3380 if (!dynobj->has_unknown_needed_entries())
3381 gold_undefined_symbol(sym);
3382 }
3383 }
3384
3385 // Write out a section symbol. Return the update offset.
3386
3387 void
3388 Symbol_table::write_section_symbol(const Output_section* os,
3389 Output_symtab_xindex* symtab_xindex,
3390 Output_file* of,
3391 off_t offset) const
3392 {
3393 switch (parameters->size_and_endianness())
3394 {
3395 #ifdef HAVE_TARGET_32_LITTLE
3396 case Parameters::TARGET_32_LITTLE:
3397 this->sized_write_section_symbol<32, false>(os, symtab_xindex, of,
3398 offset);
3399 break;
3400 #endif
3401 #ifdef HAVE_TARGET_32_BIG
3402 case Parameters::TARGET_32_BIG:
3403 this->sized_write_section_symbol<32, true>(os, symtab_xindex, of,
3404 offset);
3405 break;
3406 #endif
3407 #ifdef HAVE_TARGET_64_LITTLE
3408 case Parameters::TARGET_64_LITTLE:
3409 this->sized_write_section_symbol<64, false>(os, symtab_xindex, of,
3410 offset);
3411 break;
3412 #endif
3413 #ifdef HAVE_TARGET_64_BIG
3414 case Parameters::TARGET_64_BIG:
3415 this->sized_write_section_symbol<64, true>(os, symtab_xindex, of,
3416 offset);
3417 break;
3418 #endif
3419 default:
3420 gold_unreachable();
3421 }
3422 }
3423
3424 // Write out a section symbol, specialized for size and endianness.
3425
3426 template<int size, bool big_endian>
3427 void
3428 Symbol_table::sized_write_section_symbol(const Output_section* os,
3429 Output_symtab_xindex* symtab_xindex,
3430 Output_file* of,
3431 off_t offset) const
3432 {
3433 const int sym_size = elfcpp::Elf_sizes<size>::sym_size;
3434
3435 unsigned char* pov = of->get_output_view(offset, sym_size);
3436
3437 elfcpp::Sym_write<size, big_endian> osym(pov);
3438 osym.put_st_name(0);
3439 if (parameters->options().relocatable())
3440 osym.put_st_value(0);
3441 else
3442 osym.put_st_value(os->address());
3443 osym.put_st_size(0);
3444 osym.put_st_info(elfcpp::elf_st_info(elfcpp::STB_LOCAL,
3445 elfcpp::STT_SECTION));
3446 osym.put_st_other(elfcpp::elf_st_other(elfcpp::STV_DEFAULT, 0));
3447
3448 unsigned int shndx = os->out_shndx();
3449 if (shndx >= elfcpp::SHN_LORESERVE)
3450 {
3451 symtab_xindex->add(os->symtab_index(), shndx);
3452 shndx = elfcpp::SHN_XINDEX;
3453 }
3454 osym.put_st_shndx(shndx);
3455
3456 of->write_output_view(offset, sym_size, pov);
3457 }
3458
3459 // Print statistical information to stderr. This is used for --stats.
3460
3461 void
3462 Symbol_table::print_stats() const
3463 {
3464 #if defined(HAVE_TR1_UNORDERED_MAP) || defined(HAVE_EXT_HASH_MAP)
3465 fprintf(stderr, _("%s: symbol table entries: %zu; buckets: %zu\n"),
3466 program_name, this->table_.size(), this->table_.bucket_count());
3467 #else
3468 fprintf(stderr, _("%s: symbol table entries: %zu\n"),
3469 program_name, this->table_.size());
3470 #endif
3471 this->namepool_.print_stats("symbol table stringpool");
3472 }
3473
3474 // We check for ODR violations by looking for symbols with the same
3475 // name for which the debugging information reports that they were
3476 // defined in disjoint source locations. When comparing the source
3477 // location, we consider instances with the same base filename to be
3478 // the same. This is because different object files/shared libraries
3479 // can include the same header file using different paths, and
3480 // different optimization settings can make the line number appear to
3481 // be a couple lines off, and we don't want to report an ODR violation
3482 // in those cases.
3483
3484 // This struct is used to compare line information, as returned by
3485 // Dwarf_line_info::one_addr2line. It implements a < comparison
3486 // operator used with std::sort.
3487
3488 struct Odr_violation_compare
3489 {
3490 bool
3491 operator()(const std::string& s1, const std::string& s2) const
3492 {
3493 // Inputs should be of the form "dirname/filename:linenum" where
3494 // "dirname/" is optional. We want to compare just the filename:linenum.
3495
3496 // Find the last '/' in each string.
3497 std::string::size_type s1begin = s1.rfind('/');
3498 std::string::size_type s2begin = s2.rfind('/');
3499 // If there was no '/' in a string, start at the beginning.
3500 if (s1begin == std::string::npos)
3501 s1begin = 0;
3502 if (s2begin == std::string::npos)
3503 s2begin = 0;
3504 return s1.compare(s1begin, std::string::npos,
3505 s2, s2begin, std::string::npos) < 0;
3506 }
3507 };
3508
3509 // Returns all of the lines attached to LOC, not just the one the
3510 // instruction actually came from.
3511 std::vector<std::string>
3512 Symbol_table::linenos_from_loc(const Task* task,
3513 const Symbol_location& loc)
3514 {
3515 // We need to lock the object in order to read it. This
3516 // means that we have to run in a singleton Task. If we
3517 // want to run this in a general Task for better
3518 // performance, we will need one Task for object, plus
3519 // appropriate locking to ensure that we don't conflict with
3520 // other uses of the object. Also note, one_addr2line is not
3521 // currently thread-safe.
3522 Task_lock_obj<Object> tl(task, loc.object);
3523
3524 std::vector<std::string> result;
3525 Symbol_location code_loc = loc;
3526 parameters->target().function_location(&code_loc);
3527 // 16 is the size of the object-cache that one_addr2line should use.
3528 std::string canonical_result = Dwarf_line_info::one_addr2line(
3529 code_loc.object, code_loc.shndx, code_loc.offset, 16, &result);
3530 if (!canonical_result.empty())
3531 result.push_back(canonical_result);
3532 return result;
3533 }
3534
3535 // OutputIterator that records if it was ever assigned to. This
3536 // allows it to be used with std::set_intersection() to check for
3537 // intersection rather than computing the intersection.
3538 struct Check_intersection
3539 {
3540 Check_intersection()
3541 : value_(false)
3542 {}
3543
3544 bool had_intersection() const
3545 { return this->value_; }
3546
3547 Check_intersection& operator++()
3548 { return *this; }
3549
3550 Check_intersection& operator*()
3551 { return *this; }
3552
3553 template<typename T>
3554 Check_intersection& operator=(const T&)
3555 {
3556 this->value_ = true;
3557 return *this;
3558 }
3559
3560 private:
3561 bool value_;
3562 };
3563
3564 // Check candidate_odr_violations_ to find symbols with the same name
3565 // but apparently different definitions (different source-file/line-no
3566 // for each line assigned to the first instruction).
3567
3568 void
3569 Symbol_table::detect_odr_violations(const Task* task,
3570 const char* output_file_name) const
3571 {
3572 for (Odr_map::const_iterator it = candidate_odr_violations_.begin();
3573 it != candidate_odr_violations_.end();
3574 ++it)
3575 {
3576 const char* const symbol_name = it->first;
3577
3578 std::string first_object_name;
3579 std::vector<std::string> first_object_linenos;
3580
3581 Unordered_set<Symbol_location, Symbol_location_hash>::const_iterator
3582 locs = it->second.begin();
3583 const Unordered_set<Symbol_location, Symbol_location_hash>::const_iterator
3584 locs_end = it->second.end();
3585 for (; locs != locs_end && first_object_linenos.empty(); ++locs)
3586 {
3587 // Save the line numbers from the first definition to
3588 // compare to the other definitions. Ideally, we'd compare
3589 // every definition to every other, but we don't want to
3590 // take O(N^2) time to do this. This shortcut may cause
3591 // false negatives that appear or disappear depending on the
3592 // link order, but it won't cause false positives.
3593 first_object_name = locs->object->name();
3594 first_object_linenos = this->linenos_from_loc(task, *locs);
3595 }
3596 if (first_object_linenos.empty())
3597 continue;
3598
3599 // Sort by Odr_violation_compare to make std::set_intersection work.
3600 std::string first_object_canonical_result = first_object_linenos.back();
3601 std::sort(first_object_linenos.begin(), first_object_linenos.end(),
3602 Odr_violation_compare());
3603
3604 for (; locs != locs_end; ++locs)
3605 {
3606 std::vector<std::string> linenos =
3607 this->linenos_from_loc(task, *locs);
3608 // linenos will be empty if we couldn't parse the debug info.
3609 if (linenos.empty())
3610 continue;
3611 // Sort by Odr_violation_compare to make std::set_intersection work.
3612 gold_assert(!linenos.empty());
3613 std::string second_object_canonical_result = linenos.back();
3614 std::sort(linenos.begin(), linenos.end(), Odr_violation_compare());
3615
3616 Check_intersection intersection_result =
3617 std::set_intersection(first_object_linenos.begin(),
3618 first_object_linenos.end(),
3619 linenos.begin(),
3620 linenos.end(),
3621 Check_intersection(),
3622 Odr_violation_compare());
3623 if (!intersection_result.had_intersection())
3624 {
3625 gold_warning(_("while linking %s: symbol '%s' defined in "
3626 "multiple places (possible ODR violation):"),
3627 output_file_name, demangle(symbol_name).c_str());
3628 // This only prints one location from each definition,
3629 // which may not be the location we expect to intersect
3630 // with another definition. We could print the whole
3631 // set of locations, but that seems too verbose.
3632 fprintf(stderr, _(" %s from %s\n"),
3633 first_object_canonical_result.c_str(),
3634 first_object_name.c_str());
3635 fprintf(stderr, _(" %s from %s\n"),
3636 second_object_canonical_result.c_str(),
3637 locs->object->name().c_str());
3638 // Only print one broken pair, to avoid needing to
3639 // compare against a list of the disjoint definition
3640 // locations we've found so far. (If we kept comparing
3641 // against just the first one, we'd get a lot of
3642 // redundant complaints about the second definition
3643 // location.)
3644 break;
3645 }
3646 }
3647 }
3648 // We only call one_addr2line() in this function, so we can clear its cache.
3649 Dwarf_line_info::clear_addr2line_cache();
3650 }
3651
3652 // Warnings functions.
3653
3654 // Add a new warning.
3655
3656 void
3657 Warnings::add_warning(Symbol_table* symtab, const char* name, Object* obj,
3658 const std::string& warning)
3659 {
3660 name = symtab->canonicalize_name(name);
3661 this->warnings_[name].set(obj, warning);
3662 }
3663
3664 // Look through the warnings and mark the symbols for which we should
3665 // warn. This is called during Layout::finalize when we know the
3666 // sources for all the symbols.
3667
3668 void
3669 Warnings::note_warnings(Symbol_table* symtab)
3670 {
3671 for (Warning_table::iterator p = this->warnings_.begin();
3672 p != this->warnings_.end();
3673 ++p)
3674 {
3675 Symbol* sym = symtab->lookup(p->first, NULL);
3676 if (sym != NULL
3677 && sym->source() == Symbol::FROM_OBJECT
3678 && sym->object() == p->second.object)
3679 sym->set_has_warning();
3680 }
3681 }
3682
3683 // Issue a warning. This is called when we see a relocation against a
3684 // symbol for which has a warning.
3685
3686 template<int size, bool big_endian>
3687 void
3688 Warnings::issue_warning(const Symbol* sym,
3689 const Relocate_info<size, big_endian>* relinfo,
3690 size_t relnum, off_t reloffset) const
3691 {
3692 gold_assert(sym->has_warning());
3693
3694 // We don't want to issue a warning for a relocation against the
3695 // symbol in the same object file in which the symbol is defined.
3696 if (sym->object() == relinfo->object)
3697 return;
3698
3699 Warning_table::const_iterator p = this->warnings_.find(sym->name());
3700 gold_assert(p != this->warnings_.end());
3701 gold_warning_at_location(relinfo, relnum, reloffset,
3702 "%s", p->second.text.c_str());
3703 }
3704
3705 // Instantiate the templates we need. We could use the configure
3706 // script to restrict this to only the ones needed for implemented
3707 // targets.
3708
3709 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
3710 template
3711 void
3712 Sized_symbol<32>::allocate_common(Output_data*, Value_type);
3713 #endif
3714
3715 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
3716 template
3717 void
3718 Sized_symbol<64>::allocate_common(Output_data*, Value_type);
3719 #endif
3720
3721 #ifdef HAVE_TARGET_32_LITTLE
3722 template
3723 void
3724 Symbol_table::add_from_relobj<32, false>(
3725 Sized_relobj_file<32, false>* relobj,
3726 const unsigned char* syms,
3727 size_t count,
3728 size_t symndx_offset,
3729 const char* sym_names,
3730 size_t sym_name_size,
3731 Sized_relobj_file<32, false>::Symbols* sympointers,
3732 size_t* defined);
3733 #endif
3734
3735 #ifdef HAVE_TARGET_32_BIG
3736 template
3737 void
3738 Symbol_table::add_from_relobj<32, true>(
3739 Sized_relobj_file<32, true>* relobj,
3740 const unsigned char* syms,
3741 size_t count,
3742 size_t symndx_offset,
3743 const char* sym_names,
3744 size_t sym_name_size,
3745 Sized_relobj_file<32, true>::Symbols* sympointers,
3746 size_t* defined);
3747 #endif
3748
3749 #ifdef HAVE_TARGET_64_LITTLE
3750 template
3751 void
3752 Symbol_table::add_from_relobj<64, false>(
3753 Sized_relobj_file<64, false>* relobj,
3754 const unsigned char* syms,
3755 size_t count,
3756 size_t symndx_offset,
3757 const char* sym_names,
3758 size_t sym_name_size,
3759 Sized_relobj_file<64, false>::Symbols* sympointers,
3760 size_t* defined);
3761 #endif
3762
3763 #ifdef HAVE_TARGET_64_BIG
3764 template
3765 void
3766 Symbol_table::add_from_relobj<64, true>(
3767 Sized_relobj_file<64, true>* relobj,
3768 const unsigned char* syms,
3769 size_t count,
3770 size_t symndx_offset,
3771 const char* sym_names,
3772 size_t sym_name_size,
3773 Sized_relobj_file<64, true>::Symbols* sympointers,
3774 size_t* defined);
3775 #endif
3776
3777 #ifdef HAVE_TARGET_32_LITTLE
3778 template
3779 Symbol*
3780 Symbol_table::add_from_pluginobj<32, false>(
3781 Sized_pluginobj<32, false>* obj,
3782 const char* name,
3783 const char* ver,
3784 elfcpp::Sym<32, false>* sym);
3785 #endif
3786
3787 #ifdef HAVE_TARGET_32_BIG
3788 template
3789 Symbol*
3790 Symbol_table::add_from_pluginobj<32, true>(
3791 Sized_pluginobj<32, true>* obj,
3792 const char* name,
3793 const char* ver,
3794 elfcpp::Sym<32, true>* sym);
3795 #endif
3796
3797 #ifdef HAVE_TARGET_64_LITTLE
3798 template
3799 Symbol*
3800 Symbol_table::add_from_pluginobj<64, false>(
3801 Sized_pluginobj<64, false>* obj,
3802 const char* name,
3803 const char* ver,
3804 elfcpp::Sym<64, false>* sym);
3805 #endif
3806
3807 #ifdef HAVE_TARGET_64_BIG
3808 template
3809 Symbol*
3810 Symbol_table::add_from_pluginobj<64, true>(
3811 Sized_pluginobj<64, true>* obj,
3812 const char* name,
3813 const char* ver,
3814 elfcpp::Sym<64, true>* sym);
3815 #endif
3816
3817 #ifdef HAVE_TARGET_32_LITTLE
3818 template
3819 void
3820 Symbol_table::add_from_dynobj<32, false>(
3821 Sized_dynobj<32, false>* dynobj,
3822 const unsigned char* syms,
3823 size_t count,
3824 const char* sym_names,
3825 size_t sym_name_size,
3826 const unsigned char* versym,
3827 size_t versym_size,
3828 const std::vector<const char*>* version_map,
3829 Sized_relobj_file<32, false>::Symbols* sympointers,
3830 size_t* defined);
3831 #endif
3832
3833 #ifdef HAVE_TARGET_32_BIG
3834 template
3835 void
3836 Symbol_table::add_from_dynobj<32, true>(
3837 Sized_dynobj<32, true>* dynobj,
3838 const unsigned char* syms,
3839 size_t count,
3840 const char* sym_names,
3841 size_t sym_name_size,
3842 const unsigned char* versym,
3843 size_t versym_size,
3844 const std::vector<const char*>* version_map,
3845 Sized_relobj_file<32, true>::Symbols* sympointers,
3846 size_t* defined);
3847 #endif
3848
3849 #ifdef HAVE_TARGET_64_LITTLE
3850 template
3851 void
3852 Symbol_table::add_from_dynobj<64, false>(
3853 Sized_dynobj<64, false>* dynobj,
3854 const unsigned char* syms,
3855 size_t count,
3856 const char* sym_names,
3857 size_t sym_name_size,
3858 const unsigned char* versym,
3859 size_t versym_size,
3860 const std::vector<const char*>* version_map,
3861 Sized_relobj_file<64, false>::Symbols* sympointers,
3862 size_t* defined);
3863 #endif
3864
3865 #ifdef HAVE_TARGET_64_BIG
3866 template
3867 void
3868 Symbol_table::add_from_dynobj<64, true>(
3869 Sized_dynobj<64, true>* dynobj,
3870 const unsigned char* syms,
3871 size_t count,
3872 const char* sym_names,
3873 size_t sym_name_size,
3874 const unsigned char* versym,
3875 size_t versym_size,
3876 const std::vector<const char*>* version_map,
3877 Sized_relobj_file<64, true>::Symbols* sympointers,
3878 size_t* defined);
3879 #endif
3880
3881 #ifdef HAVE_TARGET_32_LITTLE
3882 template
3883 Sized_symbol<32>*
3884 Symbol_table::add_from_incrobj(
3885 Object* obj,
3886 const char* name,
3887 const char* ver,
3888 elfcpp::Sym<32, false>* sym);
3889 #endif
3890
3891 #ifdef HAVE_TARGET_32_BIG
3892 template
3893 Sized_symbol<32>*
3894 Symbol_table::add_from_incrobj(
3895 Object* obj,
3896 const char* name,
3897 const char* ver,
3898 elfcpp::Sym<32, true>* sym);
3899 #endif
3900
3901 #ifdef HAVE_TARGET_64_LITTLE
3902 template
3903 Sized_symbol<64>*
3904 Symbol_table::add_from_incrobj(
3905 Object* obj,
3906 const char* name,
3907 const char* ver,
3908 elfcpp::Sym<64, false>* sym);
3909 #endif
3910
3911 #ifdef HAVE_TARGET_64_BIG
3912 template
3913 Sized_symbol<64>*
3914 Symbol_table::add_from_incrobj(
3915 Object* obj,
3916 const char* name,
3917 const char* ver,
3918 elfcpp::Sym<64, true>* sym);
3919 #endif
3920
3921 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
3922 template
3923 void
3924 Symbol_table::define_with_copy_reloc<32>(
3925 Sized_symbol<32>* sym,
3926 Output_data* posd,
3927 elfcpp::Elf_types<32>::Elf_Addr value);
3928 #endif
3929
3930 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
3931 template
3932 void
3933 Symbol_table::define_with_copy_reloc<64>(
3934 Sized_symbol<64>* sym,
3935 Output_data* posd,
3936 elfcpp::Elf_types<64>::Elf_Addr value);
3937 #endif
3938
3939 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
3940 template
3941 void
3942 Sized_symbol<32>::init_output_data(const char* name, const char* version,
3943 Output_data* od, Value_type value,
3944 Size_type symsize, elfcpp::STT type,
3945 elfcpp::STB binding,
3946 elfcpp::STV visibility,
3947 unsigned char nonvis,
3948 bool offset_is_from_end,
3949 bool is_predefined);
3950
3951 template
3952 void
3953 Sized_symbol<32>::init_constant(const char* name, const char* version,
3954 Value_type value, Size_type symsize,
3955 elfcpp::STT type, elfcpp::STB binding,
3956 elfcpp::STV visibility, unsigned char nonvis,
3957 bool is_predefined);
3958
3959 template
3960 void
3961 Sized_symbol<32>::init_undefined(const char* name, const char* version,
3962 Value_type value, elfcpp::STT type,
3963 elfcpp::STB binding, elfcpp::STV visibility,
3964 unsigned char nonvis);
3965 #endif
3966
3967 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
3968 template
3969 void
3970 Sized_symbol<64>::init_output_data(const char* name, const char* version,
3971 Output_data* od, Value_type value,
3972 Size_type symsize, elfcpp::STT type,
3973 elfcpp::STB binding,
3974 elfcpp::STV visibility,
3975 unsigned char nonvis,
3976 bool offset_is_from_end,
3977 bool is_predefined);
3978
3979 template
3980 void
3981 Sized_symbol<64>::init_constant(const char* name, const char* version,
3982 Value_type value, Size_type symsize,
3983 elfcpp::STT type, elfcpp::STB binding,
3984 elfcpp::STV visibility, unsigned char nonvis,
3985 bool is_predefined);
3986
3987 template
3988 void
3989 Sized_symbol<64>::init_undefined(const char* name, const char* version,
3990 Value_type value, elfcpp::STT type,
3991 elfcpp::STB binding, elfcpp::STV visibility,
3992 unsigned char nonvis);
3993 #endif
3994
3995 #ifdef HAVE_TARGET_32_LITTLE
3996 template
3997 void
3998 Warnings::issue_warning<32, false>(const Symbol* sym,
3999 const Relocate_info<32, false>* relinfo,
4000 size_t relnum, off_t reloffset) const;
4001 #endif
4002
4003 #ifdef HAVE_TARGET_32_BIG
4004 template
4005 void
4006 Warnings::issue_warning<32, true>(const Symbol* sym,
4007 const Relocate_info<32, true>* relinfo,
4008 size_t relnum, off_t reloffset) const;
4009 #endif
4010
4011 #ifdef HAVE_TARGET_64_LITTLE
4012 template
4013 void
4014 Warnings::issue_warning<64, false>(const Symbol* sym,
4015 const Relocate_info<64, false>* relinfo,
4016 size_t relnum, off_t reloffset) const;
4017 #endif
4018
4019 #ifdef HAVE_TARGET_64_BIG
4020 template
4021 void
4022 Warnings::issue_warning<64, true>(const Symbol* sym,
4023 const Relocate_info<64, true>* relinfo,
4024 size_t relnum, off_t reloffset) const;
4025 #endif
4026
4027 } // End namespace gold.