1 // symtab.cc -- the gold symbol table
3 // Copyright 2006, 2007, 2008, 2009, 2010, 2011 Free Software Foundation, Inc.
4 // Written by Ian Lance Taylor <iant@google.com>.
6 // This file is part of gold.
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.
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.
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.
35 #include "dwarf_reader.h"
39 #include "workqueue.h"
43 #include "incremental.h"
50 // Initialize fields in Symbol. This initializes everything except u_
54 Symbol::init_fields(const char* name
, const char* version
,
55 elfcpp::STT type
, elfcpp::STB binding
,
56 elfcpp::STV visibility
, unsigned char nonvis
)
59 this->version_
= version
;
60 this->symtab_index_
= 0;
61 this->dynsym_index_
= 0;
62 this->got_offsets_
.init();
63 this->plt_offset_
= -1U;
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;
85 // Return the demangled version of the symbol's name, but only
86 // if the --demangle flag was set.
89 demangle(const char* name
)
91 if (!parameters
->options().do_demangle())
94 // cplus_demangle allocates memory for the result it returns,
95 // and returns NULL if the name is already demangled.
96 char* demangled_name
= cplus_demangle(name
, DMGL_ANSI
| DMGL_PARAMS
);
97 if (demangled_name
== NULL
)
100 std::string
retval(demangled_name
);
101 free(demangled_name
);
106 Symbol::demangled_name() const
108 return demangle(this->name());
111 // Initialize the fields in the base class Symbol for SYM in OBJECT.
113 template<int size
, bool big_endian
>
115 Symbol::init_base_object(const char* name
, const char* version
, Object
* object
,
116 const elfcpp::Sym
<size
, big_endian
>& sym
,
117 unsigned int st_shndx
, bool is_ordinary
)
119 this->init_fields(name
, version
, sym
.get_st_type(), sym
.get_st_bind(),
120 sym
.get_st_visibility(), sym
.get_st_nonvis());
121 this->u_
.from_object
.object
= object
;
122 this->u_
.from_object
.shndx
= st_shndx
;
123 this->is_ordinary_shndx_
= is_ordinary
;
124 this->source_
= FROM_OBJECT
;
125 this->in_reg_
= !object
->is_dynamic();
126 this->in_dyn_
= object
->is_dynamic();
127 this->in_real_elf_
= object
->pluginobj() == NULL
;
130 // Initialize the fields in the base class Symbol for a symbol defined
131 // in an Output_data.
134 Symbol::init_base_output_data(const char* name
, const char* version
,
135 Output_data
* od
, elfcpp::STT type
,
136 elfcpp::STB binding
, elfcpp::STV visibility
,
137 unsigned char nonvis
, bool offset_is_from_end
,
140 this->init_fields(name
, version
, type
, binding
, visibility
, nonvis
);
141 this->u_
.in_output_data
.output_data
= od
;
142 this->u_
.in_output_data
.offset_is_from_end
= offset_is_from_end
;
143 this->source_
= IN_OUTPUT_DATA
;
144 this->in_reg_
= true;
145 this->in_real_elf_
= true;
146 this->is_predefined_
= is_predefined
;
149 // Initialize the fields in the base class Symbol for a symbol defined
150 // in an Output_segment.
153 Symbol::init_base_output_segment(const char* name
, const char* version
,
154 Output_segment
* os
, elfcpp::STT type
,
155 elfcpp::STB binding
, elfcpp::STV visibility
,
156 unsigned char nonvis
,
157 Segment_offset_base offset_base
,
160 this->init_fields(name
, version
, type
, binding
, visibility
, nonvis
);
161 this->u_
.in_output_segment
.output_segment
= os
;
162 this->u_
.in_output_segment
.offset_base
= offset_base
;
163 this->source_
= IN_OUTPUT_SEGMENT
;
164 this->in_reg_
= true;
165 this->in_real_elf_
= true;
166 this->is_predefined_
= is_predefined
;
169 // Initialize the fields in the base class Symbol for a symbol defined
173 Symbol::init_base_constant(const char* name
, const char* version
,
174 elfcpp::STT type
, elfcpp::STB binding
,
175 elfcpp::STV visibility
, unsigned char nonvis
,
178 this->init_fields(name
, version
, type
, binding
, visibility
, nonvis
);
179 this->source_
= IS_CONSTANT
;
180 this->in_reg_
= true;
181 this->in_real_elf_
= true;
182 this->is_predefined_
= is_predefined
;
185 // Initialize the fields in the base class Symbol for an undefined
189 Symbol::init_base_undefined(const char* name
, const char* version
,
190 elfcpp::STT type
, elfcpp::STB binding
,
191 elfcpp::STV visibility
, unsigned char nonvis
)
193 this->init_fields(name
, version
, type
, binding
, visibility
, nonvis
);
194 this->dynsym_index_
= -1U;
195 this->source_
= IS_UNDEFINED
;
196 this->in_reg_
= true;
197 this->in_real_elf_
= true;
200 // Allocate a common symbol in the base.
203 Symbol::allocate_base_common(Output_data
* od
)
205 gold_assert(this->is_common());
206 this->source_
= IN_OUTPUT_DATA
;
207 this->u_
.in_output_data
.output_data
= od
;
208 this->u_
.in_output_data
.offset_is_from_end
= false;
211 // Initialize the fields in Sized_symbol for SYM in OBJECT.
214 template<bool big_endian
>
216 Sized_symbol
<size
>::init_object(const char* name
, const char* version
,
218 const elfcpp::Sym
<size
, big_endian
>& sym
,
219 unsigned int st_shndx
, bool is_ordinary
)
221 this->init_base_object(name
, version
, object
, sym
, st_shndx
, is_ordinary
);
222 this->value_
= sym
.get_st_value();
223 this->symsize_
= sym
.get_st_size();
226 // Initialize the fields in Sized_symbol for a symbol defined in an
231 Sized_symbol
<size
>::init_output_data(const char* name
, const char* version
,
232 Output_data
* od
, Value_type value
,
233 Size_type symsize
, elfcpp::STT type
,
235 elfcpp::STV visibility
,
236 unsigned char nonvis
,
237 bool offset_is_from_end
,
240 this->init_base_output_data(name
, version
, od
, type
, binding
, visibility
,
241 nonvis
, offset_is_from_end
, is_predefined
);
242 this->value_
= value
;
243 this->symsize_
= symsize
;
246 // Initialize the fields in Sized_symbol for a symbol defined in an
251 Sized_symbol
<size
>::init_output_segment(const char* name
, const char* version
,
252 Output_segment
* os
, Value_type value
,
253 Size_type symsize
, elfcpp::STT type
,
255 elfcpp::STV visibility
,
256 unsigned char nonvis
,
257 Segment_offset_base offset_base
,
260 this->init_base_output_segment(name
, version
, os
, type
, binding
, visibility
,
261 nonvis
, offset_base
, is_predefined
);
262 this->value_
= value
;
263 this->symsize_
= symsize
;
266 // Initialize the fields in Sized_symbol for a symbol defined as a
271 Sized_symbol
<size
>::init_constant(const char* name
, const char* version
,
272 Value_type value
, Size_type symsize
,
273 elfcpp::STT type
, elfcpp::STB binding
,
274 elfcpp::STV visibility
, unsigned char nonvis
,
277 this->init_base_constant(name
, version
, type
, binding
, visibility
, nonvis
,
279 this->value_
= value
;
280 this->symsize_
= symsize
;
283 // Initialize the fields in Sized_symbol for an undefined symbol.
287 Sized_symbol
<size
>::init_undefined(const char* name
, const char* version
,
288 elfcpp::STT type
, elfcpp::STB binding
,
289 elfcpp::STV visibility
, unsigned char nonvis
)
291 this->init_base_undefined(name
, version
, type
, binding
, visibility
, nonvis
);
296 // Return true if SHNDX represents a common symbol.
299 Symbol::is_common_shndx(unsigned int shndx
)
301 return (shndx
== elfcpp::SHN_COMMON
302 || shndx
== parameters
->target().small_common_shndx()
303 || shndx
== parameters
->target().large_common_shndx());
306 // Allocate a common symbol.
310 Sized_symbol
<size
>::allocate_common(Output_data
* od
, Value_type value
)
312 this->allocate_base_common(od
);
313 this->value_
= value
;
316 // The ""'s around str ensure str is a string literal, so sizeof works.
317 #define strprefix(var, str) (strncmp(var, str, sizeof("" str "") - 1) == 0)
319 // Return true if this symbol should be added to the dynamic symbol
323 Symbol::should_add_dynsym_entry(Symbol_table
* symtab
) const
325 // If the symbol is only present on plugin files, the plugin decided we
327 if (!this->in_real_elf())
330 // If the symbol is used by a dynamic relocation, we need to add it.
331 if (this->needs_dynsym_entry())
334 // If this symbol's section is not added, the symbol need not be added.
335 // The section may have been GCed. Note that export_dynamic is being
336 // overridden here. This should not be done for shared objects.
337 if (parameters
->options().gc_sections()
338 && !parameters
->options().shared()
339 && this->source() == Symbol::FROM_OBJECT
340 && !this->object()->is_dynamic())
342 Relobj
* relobj
= static_cast<Relobj
*>(this->object());
344 unsigned int shndx
= this->shndx(&is_ordinary
);
345 if (is_ordinary
&& shndx
!= elfcpp::SHN_UNDEF
346 && !relobj
->is_section_included(shndx
)
347 && !symtab
->is_section_folded(relobj
, shndx
))
351 // If the symbol was forced local in a version script, do not add it.
352 if (this->is_forced_local())
355 // If the symbol was forced dynamic in a --dynamic-list file, add it.
356 if (parameters
->options().in_dynamic_list(this->name()))
359 // If dynamic-list-data was specified, add any STT_OBJECT.
360 if (parameters
->options().dynamic_list_data()
361 && !this->is_from_dynobj()
362 && this->type() == elfcpp::STT_OBJECT
)
365 // If --dynamic-list-cpp-new was specified, add any new/delete symbol.
366 // If --dynamic-list-cpp-typeinfo was specified, add any typeinfo symbols.
367 if ((parameters
->options().dynamic_list_cpp_new()
368 || parameters
->options().dynamic_list_cpp_typeinfo())
369 && !this->is_from_dynobj())
371 // TODO(csilvers): We could probably figure out if we're an operator
372 // new/delete or typeinfo without the need to demangle.
373 char* demangled_name
= cplus_demangle(this->name(),
374 DMGL_ANSI
| DMGL_PARAMS
);
375 if (demangled_name
== NULL
)
377 // Not a C++ symbol, so it can't satisfy these flags
379 else if (parameters
->options().dynamic_list_cpp_new()
380 && (strprefix(demangled_name
, "operator new")
381 || strprefix(demangled_name
, "operator delete")))
383 free(demangled_name
);
386 else if (parameters
->options().dynamic_list_cpp_typeinfo()
387 && (strprefix(demangled_name
, "typeinfo name for")
388 || strprefix(demangled_name
, "typeinfo for")))
390 free(demangled_name
);
394 free(demangled_name
);
397 // If exporting all symbols or building a shared library,
398 // and the symbol is defined in a regular object and is
399 // externally visible, we need to add it.
400 if ((parameters
->options().export_dynamic() || parameters
->options().shared())
401 && !this->is_from_dynobj()
402 && this->is_externally_visible())
408 // Return true if the final value of this symbol is known at link
412 Symbol::final_value_is_known() const
414 // If we are not generating an executable, then no final values are
415 // known, since they will change at runtime.
416 if (parameters
->options().output_is_position_independent()
417 || parameters
->options().relocatable())
420 // If the symbol is not from an object file, and is not undefined,
421 // then it is defined, and known.
422 if (this->source_
!= FROM_OBJECT
)
424 if (this->source_
!= IS_UNDEFINED
)
429 // If the symbol is from a dynamic object, then the final value
431 if (this->object()->is_dynamic())
434 // If the symbol is not undefined (it is defined or common),
435 // then the final value is known.
436 if (!this->is_undefined())
440 // If the symbol is undefined, then whether the final value is known
441 // depends on whether we are doing a static link. If we are doing a
442 // dynamic link, then the final value could be filled in at runtime.
443 // This could reasonably be the case for a weak undefined symbol.
444 return parameters
->doing_static_link();
447 // Return the output section where this symbol is defined.
450 Symbol::output_section() const
452 switch (this->source_
)
456 unsigned int shndx
= this->u_
.from_object
.shndx
;
457 if (shndx
!= elfcpp::SHN_UNDEF
&& this->is_ordinary_shndx_
)
459 gold_assert(!this->u_
.from_object
.object
->is_dynamic());
460 gold_assert(this->u_
.from_object
.object
->pluginobj() == NULL
);
461 Relobj
* relobj
= static_cast<Relobj
*>(this->u_
.from_object
.object
);
462 return relobj
->output_section(shndx
);
468 return this->u_
.in_output_data
.output_data
->output_section();
470 case IN_OUTPUT_SEGMENT
:
480 // Set the symbol's output section. This is used for symbols defined
481 // in scripts. This should only be called after the symbol table has
485 Symbol::set_output_section(Output_section
* os
)
487 switch (this->source_
)
491 gold_assert(this->output_section() == os
);
494 this->source_
= IN_OUTPUT_DATA
;
495 this->u_
.in_output_data
.output_data
= os
;
496 this->u_
.in_output_data
.offset_is_from_end
= false;
498 case IN_OUTPUT_SEGMENT
:
505 // Class Symbol_table.
507 Symbol_table::Symbol_table(unsigned int count
,
508 const Version_script_info
& version_script
)
509 : saw_undefined_(0), offset_(0), table_(count
), namepool_(),
510 forwarders_(), commons_(), tls_commons_(), small_commons_(),
511 large_commons_(), forced_locals_(), warnings_(),
512 version_script_(version_script
), gc_(NULL
), icf_(NULL
)
514 namepool_
.reserve(count
);
517 Symbol_table::~Symbol_table()
521 // The symbol table key equality function. This is called with
525 Symbol_table::Symbol_table_eq::operator()(const Symbol_table_key
& k1
,
526 const Symbol_table_key
& k2
) const
528 return k1
.first
== k2
.first
&& k1
.second
== k2
.second
;
532 Symbol_table::is_section_folded(Object
* obj
, unsigned int shndx
) const
534 return (parameters
->options().icf_enabled()
535 && this->icf_
->is_section_folded(obj
, shndx
));
538 // For symbols that have been listed with -u option, add them to the
539 // work list to avoid gc'ing them.
542 Symbol_table::gc_mark_undef_symbols(Layout
* layout
)
544 for (options::String_set::const_iterator p
=
545 parameters
->options().undefined_begin();
546 p
!= parameters
->options().undefined_end();
549 const char* name
= p
->c_str();
550 Symbol
* sym
= this->lookup(name
);
551 gold_assert(sym
!= NULL
);
552 if (sym
->source() == Symbol::FROM_OBJECT
553 && !sym
->object()->is_dynamic())
555 Relobj
* obj
= static_cast<Relobj
*>(sym
->object());
557 unsigned int shndx
= sym
->shndx(&is_ordinary
);
560 gold_assert(this->gc_
!= NULL
);
561 this->gc_
->worklist().push(Section_id(obj
, shndx
));
566 for (Script_options::referenced_const_iterator p
=
567 layout
->script_options()->referenced_begin();
568 p
!= layout
->script_options()->referenced_end();
571 Symbol
* sym
= this->lookup(p
->c_str());
572 gold_assert(sym
!= NULL
);
573 if (sym
->source() == Symbol::FROM_OBJECT
574 && !sym
->object()->is_dynamic())
576 Relobj
* obj
= static_cast<Relobj
*>(sym
->object());
578 unsigned int shndx
= sym
->shndx(&is_ordinary
);
581 gold_assert(this->gc_
!= NULL
);
582 this->gc_
->worklist().push(Section_id(obj
, shndx
));
589 Symbol_table::gc_mark_symbol_for_shlib(Symbol
* sym
)
591 if (!sym
->is_from_dynobj()
592 && sym
->is_externally_visible())
594 //Add the object and section to the work list.
595 Relobj
* obj
= static_cast<Relobj
*>(sym
->object());
597 unsigned int shndx
= sym
->shndx(&is_ordinary
);
598 if (is_ordinary
&& shndx
!= elfcpp::SHN_UNDEF
)
600 gold_assert(this->gc_
!= NULL
);
601 this->gc_
->worklist().push(Section_id(obj
, shndx
));
606 // When doing garbage collection, keep symbols that have been seen in
609 Symbol_table::gc_mark_dyn_syms(Symbol
* sym
)
611 if (sym
->in_dyn() && sym
->source() == Symbol::FROM_OBJECT
612 && !sym
->object()->is_dynamic())
614 Relobj
* obj
= static_cast<Relobj
*>(sym
->object());
616 unsigned int shndx
= sym
->shndx(&is_ordinary
);
617 if (is_ordinary
&& shndx
!= elfcpp::SHN_UNDEF
)
619 gold_assert(this->gc_
!= NULL
);
620 this->gc_
->worklist().push(Section_id(obj
, shndx
));
625 // Make TO a symbol which forwards to FROM.
628 Symbol_table::make_forwarder(Symbol
* from
, Symbol
* to
)
630 gold_assert(from
!= to
);
631 gold_assert(!from
->is_forwarder() && !to
->is_forwarder());
632 this->forwarders_
[from
] = to
;
633 from
->set_forwarder();
636 // Resolve the forwards from FROM, returning the real symbol.
639 Symbol_table::resolve_forwards(const Symbol
* from
) const
641 gold_assert(from
->is_forwarder());
642 Unordered_map
<const Symbol
*, Symbol
*>::const_iterator p
=
643 this->forwarders_
.find(from
);
644 gold_assert(p
!= this->forwarders_
.end());
648 // Look up a symbol by name.
651 Symbol_table::lookup(const char* name
, const char* version
) const
653 Stringpool::Key name_key
;
654 name
= this->namepool_
.find(name
, &name_key
);
658 Stringpool::Key version_key
= 0;
661 version
= this->namepool_
.find(version
, &version_key
);
666 Symbol_table_key
key(name_key
, version_key
);
667 Symbol_table::Symbol_table_type::const_iterator p
= this->table_
.find(key
);
668 if (p
== this->table_
.end())
673 // Resolve a Symbol with another Symbol. This is only used in the
674 // unusual case where there are references to both an unversioned
675 // symbol and a symbol with a version, and we then discover that that
676 // version is the default version. Because this is unusual, we do
677 // this the slow way, by converting back to an ELF symbol.
679 template<int size
, bool big_endian
>
681 Symbol_table::resolve(Sized_symbol
<size
>* to
, const Sized_symbol
<size
>* from
)
683 unsigned char buf
[elfcpp::Elf_sizes
<size
>::sym_size
];
684 elfcpp::Sym_write
<size
, big_endian
> esym(buf
);
685 // We don't bother to set the st_name or the st_shndx field.
686 esym
.put_st_value(from
->value());
687 esym
.put_st_size(from
->symsize());
688 esym
.put_st_info(from
->binding(), from
->type());
689 esym
.put_st_other(from
->visibility(), from
->nonvis());
691 unsigned int shndx
= from
->shndx(&is_ordinary
);
692 this->resolve(to
, esym
.sym(), shndx
, is_ordinary
, shndx
, from
->object(),
698 if (parameters
->options().gc_sections())
699 this->gc_mark_dyn_syms(to
);
702 // Record that a symbol is forced to be local by a version script or
706 Symbol_table::force_local(Symbol
* sym
)
708 if (!sym
->is_defined() && !sym
->is_common())
710 if (sym
->is_forced_local())
712 // We already got this one.
715 sym
->set_is_forced_local();
716 this->forced_locals_
.push_back(sym
);
719 // Adjust NAME for wrapping, and update *NAME_KEY if necessary. This
720 // is only called for undefined symbols, when at least one --wrap
724 Symbol_table::wrap_symbol(const char* name
, Stringpool::Key
* name_key
)
726 // For some targets, we need to ignore a specific character when
727 // wrapping, and add it back later.
729 if (name
[0] == parameters
->target().wrap_char())
735 if (parameters
->options().is_wrap(name
))
737 // Turn NAME into __wrap_NAME.
744 // This will give us both the old and new name in NAMEPOOL_, but
745 // that is OK. Only the versions we need will wind up in the
746 // real string table in the output file.
747 return this->namepool_
.add(s
.c_str(), true, name_key
);
750 const char* const real_prefix
= "__real_";
751 const size_t real_prefix_length
= strlen(real_prefix
);
752 if (strncmp(name
, real_prefix
, real_prefix_length
) == 0
753 && parameters
->options().is_wrap(name
+ real_prefix_length
))
755 // Turn __real_NAME into NAME.
759 s
+= name
+ real_prefix_length
;
760 return this->namepool_
.add(s
.c_str(), true, name_key
);
766 // This is called when we see a symbol NAME/VERSION, and the symbol
767 // already exists in the symbol table, and VERSION is marked as being
768 // the default version. SYM is the NAME/VERSION symbol we just added.
769 // DEFAULT_IS_NEW is true if this is the first time we have seen the
770 // symbol NAME/NULL. PDEF points to the entry for NAME/NULL.
772 template<int size
, bool big_endian
>
774 Symbol_table::define_default_version(Sized_symbol
<size
>* sym
,
776 Symbol_table_type::iterator pdef
)
780 // This is the first time we have seen NAME/NULL. Make
781 // NAME/NULL point to NAME/VERSION, and mark SYM as the default
784 sym
->set_is_default();
786 else if (pdef
->second
== sym
)
788 // NAME/NULL already points to NAME/VERSION. Don't mark the
789 // symbol as the default if it is not already the default.
793 // This is the unfortunate case where we already have entries
794 // for both NAME/VERSION and NAME/NULL. We now see a symbol
795 // NAME/VERSION where VERSION is the default version. We have
796 // already resolved this new symbol with the existing
797 // NAME/VERSION symbol.
799 // It's possible that NAME/NULL and NAME/VERSION are both
800 // defined in regular objects. This can only happen if one
801 // object file defines foo and another defines foo@@ver. This
802 // is somewhat obscure, but we call it a multiple definition
805 // It's possible that NAME/NULL actually has a version, in which
806 // case it won't be the same as VERSION. This happens with
807 // ver_test_7.so in the testsuite for the symbol t2_2. We see
808 // t2_2@@VER2, so we define both t2_2/VER2 and t2_2/NULL. We
809 // then see an unadorned t2_2 in an object file and give it
810 // version VER1 from the version script. This looks like a
811 // default definition for VER1, so it looks like we should merge
812 // t2_2/NULL with t2_2/VER1. That doesn't make sense, but it's
813 // not obvious that this is an error, either. So we just punt.
815 // If one of the symbols has non-default visibility, and the
816 // other is defined in a shared object, then they are different
819 // Otherwise, we just resolve the symbols as though they were
822 if (pdef
->second
->version() != NULL
)
823 gold_assert(pdef
->second
->version() != sym
->version());
824 else if (sym
->visibility() != elfcpp::STV_DEFAULT
825 && pdef
->second
->is_from_dynobj())
827 else if (pdef
->second
->visibility() != elfcpp::STV_DEFAULT
828 && sym
->is_from_dynobj())
832 const Sized_symbol
<size
>* symdef
;
833 symdef
= this->get_sized_symbol
<size
>(pdef
->second
);
834 Symbol_table::resolve
<size
, big_endian
>(sym
, symdef
);
835 this->make_forwarder(pdef
->second
, sym
);
837 sym
->set_is_default();
842 // Add one symbol from OBJECT to the symbol table. NAME is symbol
843 // name and VERSION is the version; both are canonicalized. DEF is
844 // whether this is the default version. ST_SHNDX is the symbol's
845 // section index; IS_ORDINARY is whether this is a normal section
846 // rather than a special code.
848 // If IS_DEFAULT_VERSION is true, then this is the definition of a
849 // default version of a symbol. That means that any lookup of
850 // NAME/NULL and any lookup of NAME/VERSION should always return the
851 // same symbol. This is obvious for references, but in particular we
852 // want to do this for definitions: overriding NAME/NULL should also
853 // override NAME/VERSION. If we don't do that, it would be very hard
854 // to override functions in a shared library which uses versioning.
856 // We implement this by simply making both entries in the hash table
857 // point to the same Symbol structure. That is easy enough if this is
858 // the first time we see NAME/NULL or NAME/VERSION, but it is possible
859 // that we have seen both already, in which case they will both have
860 // independent entries in the symbol table. We can't simply change
861 // the symbol table entry, because we have pointers to the entries
862 // attached to the object files. So we mark the entry attached to the
863 // object file as a forwarder, and record it in the forwarders_ map.
864 // Note that entries in the hash table will never be marked as
867 // ORIG_ST_SHNDX and ST_SHNDX are almost always the same.
868 // ORIG_ST_SHNDX is the section index in the input file, or SHN_UNDEF
869 // for a special section code. ST_SHNDX may be modified if the symbol
870 // is defined in a section being discarded.
872 template<int size
, bool big_endian
>
874 Symbol_table::add_from_object(Object
* object
,
876 Stringpool::Key name_key
,
878 Stringpool::Key version_key
,
879 bool is_default_version
,
880 const elfcpp::Sym
<size
, big_endian
>& sym
,
881 unsigned int st_shndx
,
883 unsigned int orig_st_shndx
)
885 // Print a message if this symbol is being traced.
886 if (parameters
->options().is_trace_symbol(name
))
888 if (orig_st_shndx
== elfcpp::SHN_UNDEF
)
889 gold_info(_("%s: reference to %s"), object
->name().c_str(), name
);
891 gold_info(_("%s: definition of %s"), object
->name().c_str(), name
);
894 // For an undefined symbol, we may need to adjust the name using
896 if (orig_st_shndx
== elfcpp::SHN_UNDEF
897 && parameters
->options().any_wrap())
899 const char* wrap_name
= this->wrap_symbol(name
, &name_key
);
900 if (wrap_name
!= name
)
902 // If we see a reference to malloc with version GLIBC_2.0,
903 // and we turn it into a reference to __wrap_malloc, then we
904 // discard the version number. Otherwise the user would be
905 // required to specify the correct version for
913 Symbol
* const snull
= NULL
;
914 std::pair
<typename
Symbol_table_type::iterator
, bool> ins
=
915 this->table_
.insert(std::make_pair(std::make_pair(name_key
, version_key
),
918 std::pair
<typename
Symbol_table_type::iterator
, bool> insdefault
=
919 std::make_pair(this->table_
.end(), false);
920 if (is_default_version
)
922 const Stringpool::Key vnull_key
= 0;
923 insdefault
= this->table_
.insert(std::make_pair(std::make_pair(name_key
,
928 // ins.first: an iterator, which is a pointer to a pair.
929 // ins.first->first: the key (a pair of name and version).
930 // ins.first->second: the value (Symbol*).
931 // ins.second: true if new entry was inserted, false if not.
933 Sized_symbol
<size
>* ret
;
938 // We already have an entry for NAME/VERSION.
939 ret
= this->get_sized_symbol
<size
>(ins
.first
->second
);
940 gold_assert(ret
!= NULL
);
942 was_undefined
= ret
->is_undefined();
943 was_common
= ret
->is_common();
945 this->resolve(ret
, sym
, st_shndx
, is_ordinary
, orig_st_shndx
, object
,
947 if (parameters
->options().gc_sections())
948 this->gc_mark_dyn_syms(ret
);
950 if (is_default_version
)
951 this->define_default_version
<size
, big_endian
>(ret
, insdefault
.second
,
956 // This is the first time we have seen NAME/VERSION.
957 gold_assert(ins
.first
->second
== NULL
);
959 if (is_default_version
&& !insdefault
.second
)
961 // We already have an entry for NAME/NULL. If we override
962 // it, then change it to NAME/VERSION.
963 ret
= this->get_sized_symbol
<size
>(insdefault
.first
->second
);
965 was_undefined
= ret
->is_undefined();
966 was_common
= ret
->is_common();
968 this->resolve(ret
, sym
, st_shndx
, is_ordinary
, orig_st_shndx
, object
,
970 if (parameters
->options().gc_sections())
971 this->gc_mark_dyn_syms(ret
);
972 ins
.first
->second
= ret
;
976 was_undefined
= false;
979 Sized_target
<size
, big_endian
>* target
=
980 parameters
->sized_target
<size
, big_endian
>();
981 if (!target
->has_make_symbol())
982 ret
= new Sized_symbol
<size
>();
985 ret
= target
->make_symbol();
988 // This means that we don't want a symbol table
990 if (!is_default_version
)
991 this->table_
.erase(ins
.first
);
994 this->table_
.erase(insdefault
.first
);
995 // Inserting INSDEFAULT invalidated INS.
996 this->table_
.erase(std::make_pair(name_key
,
1003 ret
->init_object(name
, version
, object
, sym
, st_shndx
, is_ordinary
);
1005 ins
.first
->second
= ret
;
1006 if (is_default_version
)
1008 // This is the first time we have seen NAME/NULL. Point
1009 // it at the new entry for NAME/VERSION.
1010 gold_assert(insdefault
.second
);
1011 insdefault
.first
->second
= ret
;
1015 if (is_default_version
)
1016 ret
->set_is_default();
1019 // Record every time we see a new undefined symbol, to speed up
1021 if (!was_undefined
&& ret
->is_undefined())
1023 ++this->saw_undefined_
;
1024 if (parameters
->options().has_plugins())
1025 parameters
->options().plugins()->new_undefined_symbol(ret
);
1028 // Keep track of common symbols, to speed up common symbol
1030 if (!was_common
&& ret
->is_common())
1032 if (ret
->type() == elfcpp::STT_TLS
)
1033 this->tls_commons_
.push_back(ret
);
1034 else if (!is_ordinary
1035 && st_shndx
== parameters
->target().small_common_shndx())
1036 this->small_commons_
.push_back(ret
);
1037 else if (!is_ordinary
1038 && st_shndx
== parameters
->target().large_common_shndx())
1039 this->large_commons_
.push_back(ret
);
1041 this->commons_
.push_back(ret
);
1044 // If we're not doing a relocatable link, then any symbol with
1045 // hidden or internal visibility is local.
1046 if ((ret
->visibility() == elfcpp::STV_HIDDEN
1047 || ret
->visibility() == elfcpp::STV_INTERNAL
)
1048 && (ret
->binding() == elfcpp::STB_GLOBAL
1049 || ret
->binding() == elfcpp::STB_GNU_UNIQUE
1050 || ret
->binding() == elfcpp::STB_WEAK
)
1051 && !parameters
->options().relocatable())
1052 this->force_local(ret
);
1057 // Add all the symbols in a relocatable object to the hash table.
1059 template<int size
, bool big_endian
>
1061 Symbol_table::add_from_relobj(
1062 Sized_relobj_file
<size
, big_endian
>* relobj
,
1063 const unsigned char* syms
,
1065 size_t symndx_offset
,
1066 const char* sym_names
,
1067 size_t sym_name_size
,
1068 typename Sized_relobj_file
<size
, big_endian
>::Symbols
* sympointers
,
1073 gold_assert(size
== parameters
->target().get_size());
1075 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
1077 const bool just_symbols
= relobj
->just_symbols();
1079 const unsigned char* p
= syms
;
1080 for (size_t i
= 0; i
< count
; ++i
, p
+= sym_size
)
1082 (*sympointers
)[i
] = NULL
;
1084 elfcpp::Sym
<size
, big_endian
> sym(p
);
1086 unsigned int st_name
= sym
.get_st_name();
1087 if (st_name
>= sym_name_size
)
1089 relobj
->error(_("bad global symbol name offset %u at %zu"),
1094 const char* name
= sym_names
+ st_name
;
1097 unsigned int st_shndx
= relobj
->adjust_sym_shndx(i
+ symndx_offset
,
1100 unsigned int orig_st_shndx
= st_shndx
;
1102 orig_st_shndx
= elfcpp::SHN_UNDEF
;
1104 if (st_shndx
!= elfcpp::SHN_UNDEF
)
1107 // A symbol defined in a section which we are not including must
1108 // be treated as an undefined symbol.
1109 bool is_defined_in_discarded_section
= false;
1110 if (st_shndx
!= elfcpp::SHN_UNDEF
1112 && !relobj
->is_section_included(st_shndx
)
1113 && !this->is_section_folded(relobj
, st_shndx
))
1115 st_shndx
= elfcpp::SHN_UNDEF
;
1116 is_defined_in_discarded_section
= true;
1119 // In an object file, an '@' in the name separates the symbol
1120 // name from the version name. If there are two '@' characters,
1121 // this is the default version.
1122 const char* ver
= strchr(name
, '@');
1123 Stringpool::Key ver_key
= 0;
1125 // IS_DEFAULT_VERSION: is the version default?
1126 // IS_FORCED_LOCAL: is the symbol forced local?
1127 bool is_default_version
= false;
1128 bool is_forced_local
= false;
1132 // The symbol name is of the form foo@VERSION or foo@@VERSION
1133 namelen
= ver
- name
;
1137 is_default_version
= true;
1140 ver
= this->namepool_
.add(ver
, true, &ver_key
);
1142 // We don't want to assign a version to an undefined symbol,
1143 // even if it is listed in the version script. FIXME: What
1144 // about a common symbol?
1147 namelen
= strlen(name
);
1148 if (!this->version_script_
.empty()
1149 && st_shndx
!= elfcpp::SHN_UNDEF
)
1151 // The symbol name did not have a version, but the
1152 // version script may assign a version anyway.
1153 std::string version
;
1155 if (this->version_script_
.get_symbol_version(name
, &version
,
1159 is_forced_local
= true;
1160 else if (!version
.empty())
1162 ver
= this->namepool_
.add_with_length(version
.c_str(),
1166 is_default_version
= true;
1172 elfcpp::Sym
<size
, big_endian
>* psym
= &sym
;
1173 unsigned char symbuf
[sym_size
];
1174 elfcpp::Sym
<size
, big_endian
> sym2(symbuf
);
1177 memcpy(symbuf
, p
, sym_size
);
1178 elfcpp::Sym_write
<size
, big_endian
> sw(symbuf
);
1179 if (orig_st_shndx
!= elfcpp::SHN_UNDEF
&& is_ordinary
)
1181 // Symbol values in object files are section relative.
1182 // This is normally what we want, but since here we are
1183 // converting the symbol to absolute we need to add the
1184 // section address. The section address in an object
1185 // file is normally zero, but people can use a linker
1186 // script to change it.
1187 sw
.put_st_value(sym
.get_st_value()
1188 + relobj
->section_address(orig_st_shndx
));
1190 st_shndx
= elfcpp::SHN_ABS
;
1191 is_ordinary
= false;
1195 // Fix up visibility if object has no-export set.
1196 if (relobj
->no_export()
1197 && (orig_st_shndx
!= elfcpp::SHN_UNDEF
|| !is_ordinary
))
1199 // We may have copied symbol already above.
1202 memcpy(symbuf
, p
, sym_size
);
1206 elfcpp::STV visibility
= sym2
.get_st_visibility();
1207 if (visibility
== elfcpp::STV_DEFAULT
1208 || visibility
== elfcpp::STV_PROTECTED
)
1210 elfcpp::Sym_write
<size
, big_endian
> sw(symbuf
);
1211 unsigned char nonvis
= sym2
.get_st_nonvis();
1212 sw
.put_st_other(elfcpp::STV_HIDDEN
, nonvis
);
1216 Stringpool::Key name_key
;
1217 name
= this->namepool_
.add_with_length(name
, namelen
, true,
1220 Sized_symbol
<size
>* res
;
1221 res
= this->add_from_object(relobj
, name
, name_key
, ver
, ver_key
,
1222 is_default_version
, *psym
, st_shndx
,
1223 is_ordinary
, orig_st_shndx
);
1225 // If building a shared library using garbage collection, do not
1226 // treat externally visible symbols as garbage.
1227 if (parameters
->options().gc_sections()
1228 && parameters
->options().shared())
1229 this->gc_mark_symbol_for_shlib(res
);
1231 if (is_forced_local
)
1232 this->force_local(res
);
1234 if (is_defined_in_discarded_section
)
1235 res
->set_is_defined_in_discarded_section();
1237 (*sympointers
)[i
] = res
;
1241 // Add a symbol from a plugin-claimed file.
1243 template<int size
, bool big_endian
>
1245 Symbol_table::add_from_pluginobj(
1246 Sized_pluginobj
<size
, big_endian
>* obj
,
1249 elfcpp::Sym
<size
, big_endian
>* sym
)
1251 unsigned int st_shndx
= sym
->get_st_shndx();
1252 bool is_ordinary
= st_shndx
< elfcpp::SHN_LORESERVE
;
1254 Stringpool::Key ver_key
= 0;
1255 bool is_default_version
= false;
1256 bool is_forced_local
= false;
1260 ver
= this->namepool_
.add(ver
, true, &ver_key
);
1262 // We don't want to assign a version to an undefined symbol,
1263 // even if it is listed in the version script. FIXME: What
1264 // about a common symbol?
1267 if (!this->version_script_
.empty()
1268 && st_shndx
!= elfcpp::SHN_UNDEF
)
1270 // The symbol name did not have a version, but the
1271 // version script may assign a version anyway.
1272 std::string version
;
1274 if (this->version_script_
.get_symbol_version(name
, &version
,
1278 is_forced_local
= true;
1279 else if (!version
.empty())
1281 ver
= this->namepool_
.add_with_length(version
.c_str(),
1285 is_default_version
= true;
1291 Stringpool::Key name_key
;
1292 name
= this->namepool_
.add(name
, true, &name_key
);
1294 Sized_symbol
<size
>* res
;
1295 res
= this->add_from_object(obj
, name
, name_key
, ver
, ver_key
,
1296 is_default_version
, *sym
, st_shndx
,
1297 is_ordinary
, st_shndx
);
1299 if (is_forced_local
)
1300 this->force_local(res
);
1305 // Add all the symbols in a dynamic object to the hash table.
1307 template<int size
, bool big_endian
>
1309 Symbol_table::add_from_dynobj(
1310 Sized_dynobj
<size
, big_endian
>* dynobj
,
1311 const unsigned char* syms
,
1313 const char* sym_names
,
1314 size_t sym_name_size
,
1315 const unsigned char* versym
,
1317 const std::vector
<const char*>* version_map
,
1318 typename Sized_relobj_file
<size
, big_endian
>::Symbols
* sympointers
,
1323 gold_assert(size
== parameters
->target().get_size());
1325 if (dynobj
->just_symbols())
1327 gold_error(_("--just-symbols does not make sense with a shared object"));
1331 if (versym
!= NULL
&& versym_size
/ 2 < count
)
1333 dynobj
->error(_("too few symbol versions"));
1337 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
1339 // We keep a list of all STT_OBJECT symbols, so that we can resolve
1340 // weak aliases. This is necessary because if the dynamic object
1341 // provides the same variable under two names, one of which is a
1342 // weak definition, and the regular object refers to the weak
1343 // definition, we have to put both the weak definition and the
1344 // strong definition into the dynamic symbol table. Given a weak
1345 // definition, the only way that we can find the corresponding
1346 // strong definition, if any, is to search the symbol table.
1347 std::vector
<Sized_symbol
<size
>*> object_symbols
;
1349 const unsigned char* p
= syms
;
1350 const unsigned char* vs
= versym
;
1351 for (size_t i
= 0; i
< count
; ++i
, p
+= sym_size
, vs
+= 2)
1353 elfcpp::Sym
<size
, big_endian
> sym(p
);
1355 if (sympointers
!= NULL
)
1356 (*sympointers
)[i
] = NULL
;
1358 // Ignore symbols with local binding or that have
1359 // internal or hidden visibility.
1360 if (sym
.get_st_bind() == elfcpp::STB_LOCAL
1361 || sym
.get_st_visibility() == elfcpp::STV_INTERNAL
1362 || sym
.get_st_visibility() == elfcpp::STV_HIDDEN
)
1365 // A protected symbol in a shared library must be treated as a
1366 // normal symbol when viewed from outside the shared library.
1367 // Implement this by overriding the visibility here.
1368 elfcpp::Sym
<size
, big_endian
>* psym
= &sym
;
1369 unsigned char symbuf
[sym_size
];
1370 elfcpp::Sym
<size
, big_endian
> sym2(symbuf
);
1371 if (sym
.get_st_visibility() == elfcpp::STV_PROTECTED
)
1373 memcpy(symbuf
, p
, sym_size
);
1374 elfcpp::Sym_write
<size
, big_endian
> sw(symbuf
);
1375 sw
.put_st_other(elfcpp::STV_DEFAULT
, sym
.get_st_nonvis());
1379 unsigned int st_name
= psym
->get_st_name();
1380 if (st_name
>= sym_name_size
)
1382 dynobj
->error(_("bad symbol name offset %u at %zu"),
1387 const char* name
= sym_names
+ st_name
;
1390 unsigned int st_shndx
= dynobj
->adjust_sym_shndx(i
, psym
->get_st_shndx(),
1393 if (st_shndx
!= elfcpp::SHN_UNDEF
)
1396 Sized_symbol
<size
>* res
;
1400 Stringpool::Key name_key
;
1401 name
= this->namepool_
.add(name
, true, &name_key
);
1402 res
= this->add_from_object(dynobj
, name
, name_key
, NULL
, 0,
1403 false, *psym
, st_shndx
, is_ordinary
,
1408 // Read the version information.
1410 unsigned int v
= elfcpp::Swap
<16, big_endian
>::readval(vs
);
1412 bool hidden
= (v
& elfcpp::VERSYM_HIDDEN
) != 0;
1413 v
&= elfcpp::VERSYM_VERSION
;
1415 // The Sun documentation says that V can be VER_NDX_LOCAL,
1416 // or VER_NDX_GLOBAL, or a version index. The meaning of
1417 // VER_NDX_LOCAL is defined as "Symbol has local scope."
1418 // The old GNU linker will happily generate VER_NDX_LOCAL
1419 // for an undefined symbol. I don't know what the Sun
1420 // linker will generate.
1422 if (v
== static_cast<unsigned int>(elfcpp::VER_NDX_LOCAL
)
1423 && st_shndx
!= elfcpp::SHN_UNDEF
)
1425 // This symbol should not be visible outside the object.
1429 // At this point we are definitely going to add this symbol.
1430 Stringpool::Key name_key
;
1431 name
= this->namepool_
.add(name
, true, &name_key
);
1433 if (v
== static_cast<unsigned int>(elfcpp::VER_NDX_LOCAL
)
1434 || v
== static_cast<unsigned int>(elfcpp::VER_NDX_GLOBAL
))
1436 // This symbol does not have a version.
1437 res
= this->add_from_object(dynobj
, name
, name_key
, NULL
, 0,
1438 false, *psym
, st_shndx
, is_ordinary
,
1443 if (v
>= version_map
->size())
1445 dynobj
->error(_("versym for symbol %zu out of range: %u"),
1450 const char* version
= (*version_map
)[v
];
1451 if (version
== NULL
)
1453 dynobj
->error(_("versym for symbol %zu has no name: %u"),
1458 Stringpool::Key version_key
;
1459 version
= this->namepool_
.add(version
, true, &version_key
);
1461 // If this is an absolute symbol, and the version name
1462 // and symbol name are the same, then this is the
1463 // version definition symbol. These symbols exist to
1464 // support using -u to pull in particular versions. We
1465 // do not want to record a version for them.
1466 if (st_shndx
== elfcpp::SHN_ABS
1468 && name_key
== version_key
)
1469 res
= this->add_from_object(dynobj
, name
, name_key
, NULL
, 0,
1470 false, *psym
, st_shndx
, is_ordinary
,
1474 const bool is_default_version
=
1475 !hidden
&& st_shndx
!= elfcpp::SHN_UNDEF
;
1476 res
= this->add_from_object(dynobj
, name
, name_key
, version
,
1477 version_key
, is_default_version
,
1479 is_ordinary
, st_shndx
);
1484 // Note that it is possible that RES was overridden by an
1485 // earlier object, in which case it can't be aliased here.
1486 if (st_shndx
!= elfcpp::SHN_UNDEF
1488 && psym
->get_st_type() == elfcpp::STT_OBJECT
1489 && res
->source() == Symbol::FROM_OBJECT
1490 && res
->object() == dynobj
)
1491 object_symbols
.push_back(res
);
1493 if (sympointers
!= NULL
)
1494 (*sympointers
)[i
] = res
;
1497 this->record_weak_aliases(&object_symbols
);
1500 // Add a symbol from a incremental object file.
1502 template<int size
, bool big_endian
>
1504 Symbol_table::add_from_incrobj(
1508 elfcpp::Sym
<size
, big_endian
>* sym
)
1510 unsigned int st_shndx
= sym
->get_st_shndx();
1511 bool is_ordinary
= st_shndx
< elfcpp::SHN_LORESERVE
;
1513 Stringpool::Key ver_key
= 0;
1514 bool is_default_version
= false;
1515 bool is_forced_local
= false;
1517 Stringpool::Key name_key
;
1518 name
= this->namepool_
.add(name
, true, &name_key
);
1520 Sized_symbol
<size
>* res
;
1521 res
= this->add_from_object(obj
, name
, name_key
, ver
, ver_key
,
1522 is_default_version
, *sym
, st_shndx
,
1523 is_ordinary
, st_shndx
);
1525 if (is_forced_local
)
1526 this->force_local(res
);
1531 // This is used to sort weak aliases. We sort them first by section
1532 // index, then by offset, then by weak ahead of strong.
1535 class Weak_alias_sorter
1538 bool operator()(const Sized_symbol
<size
>*, const Sized_symbol
<size
>*) const;
1543 Weak_alias_sorter
<size
>::operator()(const Sized_symbol
<size
>* s1
,
1544 const Sized_symbol
<size
>* s2
) const
1547 unsigned int s1_shndx
= s1
->shndx(&is_ordinary
);
1548 gold_assert(is_ordinary
);
1549 unsigned int s2_shndx
= s2
->shndx(&is_ordinary
);
1550 gold_assert(is_ordinary
);
1551 if (s1_shndx
!= s2_shndx
)
1552 return s1_shndx
< s2_shndx
;
1554 if (s1
->value() != s2
->value())
1555 return s1
->value() < s2
->value();
1556 if (s1
->binding() != s2
->binding())
1558 if (s1
->binding() == elfcpp::STB_WEAK
)
1560 if (s2
->binding() == elfcpp::STB_WEAK
)
1563 return std::string(s1
->name()) < std::string(s2
->name());
1566 // SYMBOLS is a list of object symbols from a dynamic object. Look
1567 // for any weak aliases, and record them so that if we add the weak
1568 // alias to the dynamic symbol table, we also add the corresponding
1573 Symbol_table::record_weak_aliases(std::vector
<Sized_symbol
<size
>*>* symbols
)
1575 // Sort the vector by section index, then by offset, then by weak
1577 std::sort(symbols
->begin(), symbols
->end(), Weak_alias_sorter
<size
>());
1579 // Walk through the vector. For each weak definition, record
1581 for (typename
std::vector
<Sized_symbol
<size
>*>::const_iterator p
=
1583 p
!= symbols
->end();
1586 if ((*p
)->binding() != elfcpp::STB_WEAK
)
1589 // Build a circular list of weak aliases. Each symbol points to
1590 // the next one in the circular list.
1592 Sized_symbol
<size
>* from_sym
= *p
;
1593 typename
std::vector
<Sized_symbol
<size
>*>::const_iterator q
;
1594 for (q
= p
+ 1; q
!= symbols
->end(); ++q
)
1597 if ((*q
)->shndx(&dummy
) != from_sym
->shndx(&dummy
)
1598 || (*q
)->value() != from_sym
->value())
1601 this->weak_aliases_
[from_sym
] = *q
;
1602 from_sym
->set_has_alias();
1608 this->weak_aliases_
[from_sym
] = *p
;
1609 from_sym
->set_has_alias();
1616 // Create and return a specially defined symbol. If ONLY_IF_REF is
1617 // true, then only create the symbol if there is a reference to it.
1618 // If this does not return NULL, it sets *POLDSYM to the existing
1619 // symbol if there is one. This sets *RESOLVE_OLDSYM if we should
1620 // resolve the newly created symbol to the old one. This
1621 // canonicalizes *PNAME and *PVERSION.
1623 template<int size
, bool big_endian
>
1625 Symbol_table::define_special_symbol(const char** pname
, const char** pversion
,
1627 Sized_symbol
<size
>** poldsym
,
1628 bool* resolve_oldsym
)
1630 *resolve_oldsym
= false;
1632 // If the caller didn't give us a version, see if we get one from
1633 // the version script.
1635 bool is_default_version
= false;
1636 if (*pversion
== NULL
)
1639 if (this->version_script_
.get_symbol_version(*pname
, &v
, &is_global
))
1641 if (is_global
&& !v
.empty())
1643 *pversion
= v
.c_str();
1644 // If we get the version from a version script, then we
1645 // are also the default version.
1646 is_default_version
= true;
1652 Sized_symbol
<size
>* sym
;
1654 bool add_to_table
= false;
1655 typename
Symbol_table_type::iterator add_loc
= this->table_
.end();
1656 bool add_def_to_table
= false;
1657 typename
Symbol_table_type::iterator add_def_loc
= this->table_
.end();
1661 oldsym
= this->lookup(*pname
, *pversion
);
1662 if (oldsym
== NULL
&& is_default_version
)
1663 oldsym
= this->lookup(*pname
, NULL
);
1664 if (oldsym
== NULL
|| !oldsym
->is_undefined())
1667 *pname
= oldsym
->name();
1668 if (!is_default_version
)
1669 *pversion
= oldsym
->version();
1673 // Canonicalize NAME and VERSION.
1674 Stringpool::Key name_key
;
1675 *pname
= this->namepool_
.add(*pname
, true, &name_key
);
1677 Stringpool::Key version_key
= 0;
1678 if (*pversion
!= NULL
)
1679 *pversion
= this->namepool_
.add(*pversion
, true, &version_key
);
1681 Symbol
* const snull
= NULL
;
1682 std::pair
<typename
Symbol_table_type::iterator
, bool> ins
=
1683 this->table_
.insert(std::make_pair(std::make_pair(name_key
,
1687 std::pair
<typename
Symbol_table_type::iterator
, bool> insdefault
=
1688 std::make_pair(this->table_
.end(), false);
1689 if (is_default_version
)
1691 const Stringpool::Key vnull
= 0;
1693 this->table_
.insert(std::make_pair(std::make_pair(name_key
,
1700 // We already have a symbol table entry for NAME/VERSION.
1701 oldsym
= ins
.first
->second
;
1702 gold_assert(oldsym
!= NULL
);
1704 if (is_default_version
)
1706 Sized_symbol
<size
>* soldsym
=
1707 this->get_sized_symbol
<size
>(oldsym
);
1708 this->define_default_version
<size
, big_endian
>(soldsym
,
1715 // We haven't seen this symbol before.
1716 gold_assert(ins
.first
->second
== NULL
);
1718 add_to_table
= true;
1719 add_loc
= ins
.first
;
1721 if (is_default_version
&& !insdefault
.second
)
1723 // We are adding NAME/VERSION, and it is the default
1724 // version. We already have an entry for NAME/NULL.
1725 oldsym
= insdefault
.first
->second
;
1726 *resolve_oldsym
= true;
1732 if (is_default_version
)
1734 add_def_to_table
= true;
1735 add_def_loc
= insdefault
.first
;
1741 const Target
& target
= parameters
->target();
1742 if (!target
.has_make_symbol())
1743 sym
= new Sized_symbol
<size
>();
1746 Sized_target
<size
, big_endian
>* sized_target
=
1747 parameters
->sized_target
<size
, big_endian
>();
1748 sym
= sized_target
->make_symbol();
1754 add_loc
->second
= sym
;
1756 gold_assert(oldsym
!= NULL
);
1758 if (add_def_to_table
)
1759 add_def_loc
->second
= sym
;
1761 *poldsym
= this->get_sized_symbol
<size
>(oldsym
);
1766 // Define a symbol based on an Output_data.
1769 Symbol_table::define_in_output_data(const char* name
,
1770 const char* version
,
1776 elfcpp::STB binding
,
1777 elfcpp::STV visibility
,
1778 unsigned char nonvis
,
1779 bool offset_is_from_end
,
1782 if (parameters
->target().get_size() == 32)
1784 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
1785 return this->do_define_in_output_data
<32>(name
, version
, defined
, od
,
1786 value
, symsize
, type
, binding
,
1794 else if (parameters
->target().get_size() == 64)
1796 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
1797 return this->do_define_in_output_data
<64>(name
, version
, defined
, od
,
1798 value
, symsize
, type
, binding
,
1810 // Define a symbol in an Output_data, sized version.
1814 Symbol_table::do_define_in_output_data(
1816 const char* version
,
1819 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
,
1820 typename
elfcpp::Elf_types
<size
>::Elf_WXword symsize
,
1822 elfcpp::STB binding
,
1823 elfcpp::STV visibility
,
1824 unsigned char nonvis
,
1825 bool offset_is_from_end
,
1828 Sized_symbol
<size
>* sym
;
1829 Sized_symbol
<size
>* oldsym
;
1830 bool resolve_oldsym
;
1832 if (parameters
->target().is_big_endian())
1834 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
1835 sym
= this->define_special_symbol
<size
, true>(&name
, &version
,
1836 only_if_ref
, &oldsym
,
1844 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
1845 sym
= this->define_special_symbol
<size
, false>(&name
, &version
,
1846 only_if_ref
, &oldsym
,
1856 sym
->init_output_data(name
, version
, od
, value
, symsize
, type
, binding
,
1857 visibility
, nonvis
, offset_is_from_end
,
1858 defined
== PREDEFINED
);
1862 if (binding
== elfcpp::STB_LOCAL
1863 || this->version_script_
.symbol_is_local(name
))
1864 this->force_local(sym
);
1865 else if (version
!= NULL
)
1866 sym
->set_is_default();
1870 if (Symbol_table::should_override_with_special(oldsym
, defined
))
1871 this->override_with_special(oldsym
, sym
);
1882 // Define a symbol based on an Output_segment.
1885 Symbol_table::define_in_output_segment(const char* name
,
1886 const char* version
,
1892 elfcpp::STB binding
,
1893 elfcpp::STV visibility
,
1894 unsigned char nonvis
,
1895 Symbol::Segment_offset_base offset_base
,
1898 if (parameters
->target().get_size() == 32)
1900 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
1901 return this->do_define_in_output_segment
<32>(name
, version
, defined
, os
,
1902 value
, symsize
, type
,
1903 binding
, visibility
, nonvis
,
1904 offset_base
, only_if_ref
);
1909 else if (parameters
->target().get_size() == 64)
1911 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
1912 return this->do_define_in_output_segment
<64>(name
, version
, defined
, os
,
1913 value
, symsize
, type
,
1914 binding
, visibility
, nonvis
,
1915 offset_base
, only_if_ref
);
1924 // Define a symbol in an Output_segment, sized version.
1928 Symbol_table::do_define_in_output_segment(
1930 const char* version
,
1933 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
,
1934 typename
elfcpp::Elf_types
<size
>::Elf_WXword symsize
,
1936 elfcpp::STB binding
,
1937 elfcpp::STV visibility
,
1938 unsigned char nonvis
,
1939 Symbol::Segment_offset_base offset_base
,
1942 Sized_symbol
<size
>* sym
;
1943 Sized_symbol
<size
>* oldsym
;
1944 bool resolve_oldsym
;
1946 if (parameters
->target().is_big_endian())
1948 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
1949 sym
= this->define_special_symbol
<size
, true>(&name
, &version
,
1950 only_if_ref
, &oldsym
,
1958 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
1959 sym
= this->define_special_symbol
<size
, false>(&name
, &version
,
1960 only_if_ref
, &oldsym
,
1970 sym
->init_output_segment(name
, version
, os
, value
, symsize
, type
, binding
,
1971 visibility
, nonvis
, offset_base
,
1972 defined
== PREDEFINED
);
1976 if (binding
== elfcpp::STB_LOCAL
1977 || this->version_script_
.symbol_is_local(name
))
1978 this->force_local(sym
);
1979 else if (version
!= NULL
)
1980 sym
->set_is_default();
1984 if (Symbol_table::should_override_with_special(oldsym
, defined
))
1985 this->override_with_special(oldsym
, sym
);
1996 // Define a special symbol with a constant value. It is a multiple
1997 // definition error if this symbol is already defined.
2000 Symbol_table::define_as_constant(const char* name
,
2001 const char* version
,
2006 elfcpp::STB binding
,
2007 elfcpp::STV visibility
,
2008 unsigned char nonvis
,
2010 bool force_override
)
2012 if (parameters
->target().get_size() == 32)
2014 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
2015 return this->do_define_as_constant
<32>(name
, version
, defined
, value
,
2016 symsize
, type
, binding
,
2017 visibility
, nonvis
, only_if_ref
,
2023 else if (parameters
->target().get_size() == 64)
2025 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
2026 return this->do_define_as_constant
<64>(name
, version
, defined
, value
,
2027 symsize
, type
, binding
,
2028 visibility
, nonvis
, only_if_ref
,
2038 // Define a symbol as a constant, sized version.
2042 Symbol_table::do_define_as_constant(
2044 const char* version
,
2046 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
,
2047 typename
elfcpp::Elf_types
<size
>::Elf_WXword symsize
,
2049 elfcpp::STB binding
,
2050 elfcpp::STV visibility
,
2051 unsigned char nonvis
,
2053 bool force_override
)
2055 Sized_symbol
<size
>* sym
;
2056 Sized_symbol
<size
>* oldsym
;
2057 bool resolve_oldsym
;
2059 if (parameters
->target().is_big_endian())
2061 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2062 sym
= this->define_special_symbol
<size
, true>(&name
, &version
,
2063 only_if_ref
, &oldsym
,
2071 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2072 sym
= this->define_special_symbol
<size
, false>(&name
, &version
,
2073 only_if_ref
, &oldsym
,
2083 sym
->init_constant(name
, version
, value
, symsize
, type
, binding
, visibility
,
2084 nonvis
, defined
== PREDEFINED
);
2088 // Version symbols are absolute symbols with name == version.
2089 // We don't want to force them to be local.
2090 if ((version
== NULL
2093 && (binding
== elfcpp::STB_LOCAL
2094 || this->version_script_
.symbol_is_local(name
)))
2095 this->force_local(sym
);
2096 else if (version
!= NULL
2097 && (name
!= version
|| value
!= 0))
2098 sym
->set_is_default();
2103 || Symbol_table::should_override_with_special(oldsym
, defined
))
2104 this->override_with_special(oldsym
, sym
);
2115 // Define a set of symbols in output sections.
2118 Symbol_table::define_symbols(const Layout
* layout
, int count
,
2119 const Define_symbol_in_section
* p
,
2122 for (int i
= 0; i
< count
; ++i
, ++p
)
2124 Output_section
* os
= layout
->find_output_section(p
->output_section
);
2126 this->define_in_output_data(p
->name
, NULL
, PREDEFINED
, os
, p
->value
,
2127 p
->size
, p
->type
, p
->binding
,
2128 p
->visibility
, p
->nonvis
,
2129 p
->offset_is_from_end
,
2130 only_if_ref
|| p
->only_if_ref
);
2132 this->define_as_constant(p
->name
, NULL
, PREDEFINED
, 0, p
->size
,
2133 p
->type
, p
->binding
, p
->visibility
, p
->nonvis
,
2134 only_if_ref
|| p
->only_if_ref
,
2139 // Define a set of symbols in output segments.
2142 Symbol_table::define_symbols(const Layout
* layout
, int count
,
2143 const Define_symbol_in_segment
* p
,
2146 for (int i
= 0; i
< count
; ++i
, ++p
)
2148 Output_segment
* os
= layout
->find_output_segment(p
->segment_type
,
2149 p
->segment_flags_set
,
2150 p
->segment_flags_clear
);
2152 this->define_in_output_segment(p
->name
, NULL
, PREDEFINED
, os
, p
->value
,
2153 p
->size
, p
->type
, p
->binding
,
2154 p
->visibility
, p
->nonvis
,
2156 only_if_ref
|| p
->only_if_ref
);
2158 this->define_as_constant(p
->name
, NULL
, PREDEFINED
, 0, p
->size
,
2159 p
->type
, p
->binding
, p
->visibility
, p
->nonvis
,
2160 only_if_ref
|| p
->only_if_ref
,
2165 // Define CSYM using a COPY reloc. POSD is the Output_data where the
2166 // symbol should be defined--typically a .dyn.bss section. VALUE is
2167 // the offset within POSD.
2171 Symbol_table::define_with_copy_reloc(
2172 Sized_symbol
<size
>* csym
,
2174 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
)
2176 gold_assert(csym
->is_from_dynobj());
2177 gold_assert(!csym
->is_copied_from_dynobj());
2178 Object
* object
= csym
->object();
2179 gold_assert(object
->is_dynamic());
2180 Dynobj
* dynobj
= static_cast<Dynobj
*>(object
);
2182 // Our copied variable has to override any variable in a shared
2184 elfcpp::STB binding
= csym
->binding();
2185 if (binding
== elfcpp::STB_WEAK
)
2186 binding
= elfcpp::STB_GLOBAL
;
2188 this->define_in_output_data(csym
->name(), csym
->version(), COPY
,
2189 posd
, value
, csym
->symsize(),
2190 csym
->type(), binding
,
2191 csym
->visibility(), csym
->nonvis(),
2194 csym
->set_is_copied_from_dynobj();
2195 csym
->set_needs_dynsym_entry();
2197 this->copied_symbol_dynobjs_
[csym
] = dynobj
;
2199 // We have now defined all aliases, but we have not entered them all
2200 // in the copied_symbol_dynobjs_ map.
2201 if (csym
->has_alias())
2206 sym
= this->weak_aliases_
[sym
];
2209 gold_assert(sym
->output_data() == posd
);
2211 sym
->set_is_copied_from_dynobj();
2212 this->copied_symbol_dynobjs_
[sym
] = dynobj
;
2217 // SYM is defined using a COPY reloc. Return the dynamic object where
2218 // the original definition was found.
2221 Symbol_table::get_copy_source(const Symbol
* sym
) const
2223 gold_assert(sym
->is_copied_from_dynobj());
2224 Copied_symbol_dynobjs::const_iterator p
=
2225 this->copied_symbol_dynobjs_
.find(sym
);
2226 gold_assert(p
!= this->copied_symbol_dynobjs_
.end());
2230 // Add any undefined symbols named on the command line.
2233 Symbol_table::add_undefined_symbols_from_command_line(Layout
* layout
)
2235 if (parameters
->options().any_undefined()
2236 || layout
->script_options()->any_unreferenced())
2238 if (parameters
->target().get_size() == 32)
2240 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
2241 this->do_add_undefined_symbols_from_command_line
<32>(layout
);
2246 else if (parameters
->target().get_size() == 64)
2248 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
2249 this->do_add_undefined_symbols_from_command_line
<64>(layout
);
2261 Symbol_table::do_add_undefined_symbols_from_command_line(Layout
* layout
)
2263 for (options::String_set::const_iterator p
=
2264 parameters
->options().undefined_begin();
2265 p
!= parameters
->options().undefined_end();
2267 this->add_undefined_symbol_from_command_line
<size
>(p
->c_str());
2269 for (Script_options::referenced_const_iterator p
=
2270 layout
->script_options()->referenced_begin();
2271 p
!= layout
->script_options()->referenced_end();
2273 this->add_undefined_symbol_from_command_line
<size
>(p
->c_str());
2278 Symbol_table::add_undefined_symbol_from_command_line(const char* name
)
2280 if (this->lookup(name
) != NULL
)
2283 const char* version
= NULL
;
2285 Sized_symbol
<size
>* sym
;
2286 Sized_symbol
<size
>* oldsym
;
2287 bool resolve_oldsym
;
2288 if (parameters
->target().is_big_endian())
2290 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_64_BIG)
2291 sym
= this->define_special_symbol
<size
, true>(&name
, &version
,
2300 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_64_LITTLE)
2301 sym
= this->define_special_symbol
<size
, false>(&name
, &version
,
2309 gold_assert(oldsym
== NULL
);
2311 sym
->init_undefined(name
, version
, elfcpp::STT_NOTYPE
, elfcpp::STB_GLOBAL
,
2312 elfcpp::STV_DEFAULT
, 0);
2313 ++this->saw_undefined_
;
2316 // Set the dynamic symbol indexes. INDEX is the index of the first
2317 // global dynamic symbol. Pointers to the symbols are stored into the
2318 // vector SYMS. The names are added to DYNPOOL. This returns an
2319 // updated dynamic symbol index.
2322 Symbol_table::set_dynsym_indexes(unsigned int index
,
2323 std::vector
<Symbol
*>* syms
,
2324 Stringpool
* dynpool
,
2327 for (Symbol_table_type::iterator p
= this->table_
.begin();
2328 p
!= this->table_
.end();
2331 Symbol
* sym
= p
->second
;
2333 // Note that SYM may already have a dynamic symbol index, since
2334 // some symbols appear more than once in the symbol table, with
2335 // and without a version.
2337 if (!sym
->should_add_dynsym_entry(this))
2338 sym
->set_dynsym_index(-1U);
2339 else if (!sym
->has_dynsym_index())
2341 sym
->set_dynsym_index(index
);
2343 syms
->push_back(sym
);
2344 dynpool
->add(sym
->name(), false, NULL
);
2346 // Record any version information.
2347 if (sym
->version() != NULL
)
2348 versions
->record_version(this, dynpool
, sym
);
2350 // If the symbol is defined in a dynamic object and is
2351 // referenced in a regular object, then mark the dynamic
2352 // object as needed. This is used to implement --as-needed.
2353 if (sym
->is_from_dynobj() && sym
->in_reg())
2354 sym
->object()->set_is_needed();
2358 // Finish up the versions. In some cases this may add new dynamic
2360 index
= versions
->finalize(this, index
, syms
);
2365 // Set the final values for all the symbols. The index of the first
2366 // global symbol in the output file is *PLOCAL_SYMCOUNT. Record the
2367 // file offset OFF. Add their names to POOL. Return the new file
2368 // offset. Update *PLOCAL_SYMCOUNT if necessary.
2371 Symbol_table::finalize(off_t off
, off_t dynoff
, size_t dyn_global_index
,
2372 size_t dyncount
, Stringpool
* pool
,
2373 unsigned int* plocal_symcount
)
2377 gold_assert(*plocal_symcount
!= 0);
2378 this->first_global_index_
= *plocal_symcount
;
2380 this->dynamic_offset_
= dynoff
;
2381 this->first_dynamic_global_index_
= dyn_global_index
;
2382 this->dynamic_count_
= dyncount
;
2384 if (parameters
->target().get_size() == 32)
2386 #if defined(HAVE_TARGET_32_BIG) || defined(HAVE_TARGET_32_LITTLE)
2387 ret
= this->sized_finalize
<32>(off
, pool
, plocal_symcount
);
2392 else if (parameters
->target().get_size() == 64)
2394 #if defined(HAVE_TARGET_64_BIG) || defined(HAVE_TARGET_64_LITTLE)
2395 ret
= this->sized_finalize
<64>(off
, pool
, plocal_symcount
);
2403 // Now that we have the final symbol table, we can reliably note
2404 // which symbols should get warnings.
2405 this->warnings_
.note_warnings(this);
2410 // SYM is going into the symbol table at *PINDEX. Add the name to
2411 // POOL, update *PINDEX and *POFF.
2415 Symbol_table::add_to_final_symtab(Symbol
* sym
, Stringpool
* pool
,
2416 unsigned int* pindex
, off_t
* poff
)
2418 sym
->set_symtab_index(*pindex
);
2419 pool
->add(sym
->name(), false, NULL
);
2421 *poff
+= elfcpp::Elf_sizes
<size
>::sym_size
;
2424 // Set the final value for all the symbols. This is called after
2425 // Layout::finalize, so all the output sections have their final
2430 Symbol_table::sized_finalize(off_t off
, Stringpool
* pool
,
2431 unsigned int* plocal_symcount
)
2433 off
= align_address(off
, size
>> 3);
2434 this->offset_
= off
;
2436 unsigned int index
= *plocal_symcount
;
2437 const unsigned int orig_index
= index
;
2439 // First do all the symbols which have been forced to be local, as
2440 // they must appear before all global symbols.
2441 for (Forced_locals::iterator p
= this->forced_locals_
.begin();
2442 p
!= this->forced_locals_
.end();
2446 gold_assert(sym
->is_forced_local());
2447 if (this->sized_finalize_symbol
<size
>(sym
))
2449 this->add_to_final_symtab
<size
>(sym
, pool
, &index
, &off
);
2454 // Now do all the remaining symbols.
2455 for (Symbol_table_type::iterator p
= this->table_
.begin();
2456 p
!= this->table_
.end();
2459 Symbol
* sym
= p
->second
;
2460 if (this->sized_finalize_symbol
<size
>(sym
))
2461 this->add_to_final_symtab
<size
>(sym
, pool
, &index
, &off
);
2464 this->output_count_
= index
- orig_index
;
2469 // Compute the final value of SYM and store status in location PSTATUS.
2470 // During relaxation, this may be called multiple times for a symbol to
2471 // compute its would-be final value in each relaxation pass.
2474 typename Sized_symbol
<size
>::Value_type
2475 Symbol_table::compute_final_value(
2476 const Sized_symbol
<size
>* sym
,
2477 Compute_final_value_status
* pstatus
) const
2479 typedef typename Sized_symbol
<size
>::Value_type Value_type
;
2482 switch (sym
->source())
2484 case Symbol::FROM_OBJECT
:
2487 unsigned int shndx
= sym
->shndx(&is_ordinary
);
2490 && shndx
!= elfcpp::SHN_ABS
2491 && !Symbol::is_common_shndx(shndx
))
2493 *pstatus
= CFVS_UNSUPPORTED_SYMBOL_SECTION
;
2497 Object
* symobj
= sym
->object();
2498 if (symobj
->is_dynamic())
2501 shndx
= elfcpp::SHN_UNDEF
;
2503 else if (symobj
->pluginobj() != NULL
)
2506 shndx
= elfcpp::SHN_UNDEF
;
2508 else if (shndx
== elfcpp::SHN_UNDEF
)
2510 else if (!is_ordinary
2511 && (shndx
== elfcpp::SHN_ABS
2512 || Symbol::is_common_shndx(shndx
)))
2513 value
= sym
->value();
2516 Relobj
* relobj
= static_cast<Relobj
*>(symobj
);
2517 Output_section
* os
= relobj
->output_section(shndx
);
2519 if (this->is_section_folded(relobj
, shndx
))
2521 gold_assert(os
== NULL
);
2522 // Get the os of the section it is folded onto.
2523 Section_id folded
= this->icf_
->get_folded_section(relobj
,
2525 gold_assert(folded
.first
!= NULL
);
2526 Relobj
* folded_obj
= reinterpret_cast<Relobj
*>(folded
.first
);
2527 unsigned folded_shndx
= folded
.second
;
2529 os
= folded_obj
->output_section(folded_shndx
);
2530 gold_assert(os
!= NULL
);
2532 // Replace (relobj, shndx) with canonical ICF input section.
2533 shndx
= folded_shndx
;
2534 relobj
= folded_obj
;
2537 uint64_t secoff64
= relobj
->output_section_offset(shndx
);
2540 bool static_or_reloc
= (parameters
->doing_static_link() ||
2541 parameters
->options().relocatable());
2542 gold_assert(static_or_reloc
|| sym
->dynsym_index() == -1U);
2544 *pstatus
= CFVS_NO_OUTPUT_SECTION
;
2548 if (secoff64
== -1ULL)
2550 // The section needs special handling (e.g., a merge section).
2552 value
= os
->output_address(relobj
, shndx
, sym
->value());
2557 convert_types
<Value_type
, uint64_t>(secoff64
);
2558 if (sym
->type() == elfcpp::STT_TLS
)
2559 value
= sym
->value() + os
->tls_offset() + secoff
;
2561 value
= sym
->value() + os
->address() + secoff
;
2567 case Symbol::IN_OUTPUT_DATA
:
2569 Output_data
* od
= sym
->output_data();
2570 value
= sym
->value();
2571 if (sym
->type() != elfcpp::STT_TLS
)
2572 value
+= od
->address();
2575 Output_section
* os
= od
->output_section();
2576 gold_assert(os
!= NULL
);
2577 value
+= os
->tls_offset() + (od
->address() - os
->address());
2579 if (sym
->offset_is_from_end())
2580 value
+= od
->data_size();
2584 case Symbol::IN_OUTPUT_SEGMENT
:
2586 Output_segment
* os
= sym
->output_segment();
2587 value
= sym
->value();
2588 if (sym
->type() != elfcpp::STT_TLS
)
2589 value
+= os
->vaddr();
2590 switch (sym
->offset_base())
2592 case Symbol::SEGMENT_START
:
2594 case Symbol::SEGMENT_END
:
2595 value
+= os
->memsz();
2597 case Symbol::SEGMENT_BSS
:
2598 value
+= os
->filesz();
2606 case Symbol::IS_CONSTANT
:
2607 value
= sym
->value();
2610 case Symbol::IS_UNDEFINED
:
2622 // Finalize the symbol SYM. This returns true if the symbol should be
2623 // added to the symbol table, false otherwise.
2627 Symbol_table::sized_finalize_symbol(Symbol
* unsized_sym
)
2629 typedef typename Sized_symbol
<size
>::Value_type Value_type
;
2631 Sized_symbol
<size
>* sym
= static_cast<Sized_symbol
<size
>*>(unsized_sym
);
2633 // The default version of a symbol may appear twice in the symbol
2634 // table. We only need to finalize it once.
2635 if (sym
->has_symtab_index())
2640 gold_assert(!sym
->has_symtab_index());
2641 sym
->set_symtab_index(-1U);
2642 gold_assert(sym
->dynsym_index() == -1U);
2646 // If the symbol is only present on plugin files, the plugin decided we
2648 if (!sym
->in_real_elf())
2650 gold_assert(!sym
->has_symtab_index());
2651 sym
->set_symtab_index(-1U);
2655 // Compute final symbol value.
2656 Compute_final_value_status status
;
2657 Value_type value
= this->compute_final_value(sym
, &status
);
2663 case CFVS_UNSUPPORTED_SYMBOL_SECTION
:
2666 unsigned int shndx
= sym
->shndx(&is_ordinary
);
2667 gold_error(_("%s: unsupported symbol section 0x%x"),
2668 sym
->demangled_name().c_str(), shndx
);
2671 case CFVS_NO_OUTPUT_SECTION
:
2672 sym
->set_symtab_index(-1U);
2678 sym
->set_value(value
);
2680 if (parameters
->options().strip_all()
2681 || !parameters
->options().should_retain_symbol(sym
->name()))
2683 sym
->set_symtab_index(-1U);
2690 // Write out the global symbols.
2693 Symbol_table::write_globals(const Stringpool
* sympool
,
2694 const Stringpool
* dynpool
,
2695 Output_symtab_xindex
* symtab_xindex
,
2696 Output_symtab_xindex
* dynsym_xindex
,
2697 Output_file
* of
) const
2699 switch (parameters
->size_and_endianness())
2701 #ifdef HAVE_TARGET_32_LITTLE
2702 case Parameters::TARGET_32_LITTLE
:
2703 this->sized_write_globals
<32, false>(sympool
, dynpool
, symtab_xindex
,
2707 #ifdef HAVE_TARGET_32_BIG
2708 case Parameters::TARGET_32_BIG
:
2709 this->sized_write_globals
<32, true>(sympool
, dynpool
, symtab_xindex
,
2713 #ifdef HAVE_TARGET_64_LITTLE
2714 case Parameters::TARGET_64_LITTLE
:
2715 this->sized_write_globals
<64, false>(sympool
, dynpool
, symtab_xindex
,
2719 #ifdef HAVE_TARGET_64_BIG
2720 case Parameters::TARGET_64_BIG
:
2721 this->sized_write_globals
<64, true>(sympool
, dynpool
, symtab_xindex
,
2730 // Write out the global symbols.
2732 template<int size
, bool big_endian
>
2734 Symbol_table::sized_write_globals(const Stringpool
* sympool
,
2735 const Stringpool
* dynpool
,
2736 Output_symtab_xindex
* symtab_xindex
,
2737 Output_symtab_xindex
* dynsym_xindex
,
2738 Output_file
* of
) const
2740 const Target
& target
= parameters
->target();
2742 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
2744 const unsigned int output_count
= this->output_count_
;
2745 const section_size_type oview_size
= output_count
* sym_size
;
2746 const unsigned int first_global_index
= this->first_global_index_
;
2747 unsigned char* psyms
;
2748 if (this->offset_
== 0 || output_count
== 0)
2751 psyms
= of
->get_output_view(this->offset_
, oview_size
);
2753 const unsigned int dynamic_count
= this->dynamic_count_
;
2754 const section_size_type dynamic_size
= dynamic_count
* sym_size
;
2755 const unsigned int first_dynamic_global_index
=
2756 this->first_dynamic_global_index_
;
2757 unsigned char* dynamic_view
;
2758 if (this->dynamic_offset_
== 0 || dynamic_count
== 0)
2759 dynamic_view
= NULL
;
2761 dynamic_view
= of
->get_output_view(this->dynamic_offset_
, dynamic_size
);
2763 for (Symbol_table_type::const_iterator p
= this->table_
.begin();
2764 p
!= this->table_
.end();
2767 Sized_symbol
<size
>* sym
= static_cast<Sized_symbol
<size
>*>(p
->second
);
2769 // Possibly warn about unresolved symbols in shared libraries.
2770 this->warn_about_undefined_dynobj_symbol(sym
);
2772 unsigned int sym_index
= sym
->symtab_index();
2773 unsigned int dynsym_index
;
2774 if (dynamic_view
== NULL
)
2777 dynsym_index
= sym
->dynsym_index();
2779 if (sym_index
== -1U && dynsym_index
== -1U)
2781 // This symbol is not included in the output file.
2786 typename
elfcpp::Elf_types
<size
>::Elf_Addr sym_value
= sym
->value();
2787 typename
elfcpp::Elf_types
<size
>::Elf_Addr dynsym_value
= sym_value
;
2788 elfcpp::STB binding
= sym
->binding();
2789 switch (sym
->source())
2791 case Symbol::FROM_OBJECT
:
2794 unsigned int in_shndx
= sym
->shndx(&is_ordinary
);
2797 && in_shndx
!= elfcpp::SHN_ABS
2798 && !Symbol::is_common_shndx(in_shndx
))
2800 gold_error(_("%s: unsupported symbol section 0x%x"),
2801 sym
->demangled_name().c_str(), in_shndx
);
2806 Object
* symobj
= sym
->object();
2807 if (symobj
->is_dynamic())
2809 if (sym
->needs_dynsym_value())
2810 dynsym_value
= target
.dynsym_value(sym
);
2811 shndx
= elfcpp::SHN_UNDEF
;
2812 if (sym
->is_undef_binding_weak())
2813 binding
= elfcpp::STB_WEAK
;
2815 binding
= elfcpp::STB_GLOBAL
;
2817 else if (symobj
->pluginobj() != NULL
)
2818 shndx
= elfcpp::SHN_UNDEF
;
2819 else if (in_shndx
== elfcpp::SHN_UNDEF
2821 && (in_shndx
== elfcpp::SHN_ABS
2822 || Symbol::is_common_shndx(in_shndx
))))
2826 Relobj
* relobj
= static_cast<Relobj
*>(symobj
);
2827 Output_section
* os
= relobj
->output_section(in_shndx
);
2828 if (this->is_section_folded(relobj
, in_shndx
))
2830 // This global symbol must be written out even though
2832 // Get the os of the section it is folded onto.
2834 this->icf_
->get_folded_section(relobj
, in_shndx
);
2835 gold_assert(folded
.first
!=NULL
);
2836 Relobj
* folded_obj
=
2837 reinterpret_cast<Relobj
*>(folded
.first
);
2838 os
= folded_obj
->output_section(folded
.second
);
2839 gold_assert(os
!= NULL
);
2841 gold_assert(os
!= NULL
);
2842 shndx
= os
->out_shndx();
2844 if (shndx
>= elfcpp::SHN_LORESERVE
)
2846 if (sym_index
!= -1U)
2847 symtab_xindex
->add(sym_index
, shndx
);
2848 if (dynsym_index
!= -1U)
2849 dynsym_xindex
->add(dynsym_index
, shndx
);
2850 shndx
= elfcpp::SHN_XINDEX
;
2853 // In object files symbol values are section
2855 if (parameters
->options().relocatable())
2856 sym_value
-= os
->address();
2862 case Symbol::IN_OUTPUT_DATA
:
2863 shndx
= sym
->output_data()->out_shndx();
2864 if (shndx
>= elfcpp::SHN_LORESERVE
)
2866 if (sym_index
!= -1U)
2867 symtab_xindex
->add(sym_index
, shndx
);
2868 if (dynsym_index
!= -1U)
2869 dynsym_xindex
->add(dynsym_index
, shndx
);
2870 shndx
= elfcpp::SHN_XINDEX
;
2874 case Symbol::IN_OUTPUT_SEGMENT
:
2875 shndx
= elfcpp::SHN_ABS
;
2878 case Symbol::IS_CONSTANT
:
2879 shndx
= elfcpp::SHN_ABS
;
2882 case Symbol::IS_UNDEFINED
:
2883 shndx
= elfcpp::SHN_UNDEF
;
2890 if (sym_index
!= -1U)
2892 sym_index
-= first_global_index
;
2893 gold_assert(sym_index
< output_count
);
2894 unsigned char* ps
= psyms
+ (sym_index
* sym_size
);
2895 this->sized_write_symbol
<size
, big_endian
>(sym
, sym_value
, shndx
,
2896 binding
, sympool
, ps
);
2899 if (dynsym_index
!= -1U)
2901 dynsym_index
-= first_dynamic_global_index
;
2902 gold_assert(dynsym_index
< dynamic_count
);
2903 unsigned char* pd
= dynamic_view
+ (dynsym_index
* sym_size
);
2904 this->sized_write_symbol
<size
, big_endian
>(sym
, dynsym_value
, shndx
,
2905 binding
, dynpool
, pd
);
2909 of
->write_output_view(this->offset_
, oview_size
, psyms
);
2910 if (dynamic_view
!= NULL
)
2911 of
->write_output_view(this->dynamic_offset_
, dynamic_size
, dynamic_view
);
2914 // Write out the symbol SYM, in section SHNDX, to P. POOL is the
2915 // strtab holding the name.
2917 template<int size
, bool big_endian
>
2919 Symbol_table::sized_write_symbol(
2920 Sized_symbol
<size
>* sym
,
2921 typename
elfcpp::Elf_types
<size
>::Elf_Addr value
,
2923 elfcpp::STB binding
,
2924 const Stringpool
* pool
,
2925 unsigned char* p
) const
2927 elfcpp::Sym_write
<size
, big_endian
> osym(p
);
2928 osym
.put_st_name(pool
->get_offset(sym
->name()));
2929 osym
.put_st_value(value
);
2930 // Use a symbol size of zero for undefined symbols from shared libraries.
2931 if (shndx
== elfcpp::SHN_UNDEF
&& sym
->is_from_dynobj())
2932 osym
.put_st_size(0);
2934 osym
.put_st_size(sym
->symsize());
2935 elfcpp::STT type
= sym
->type();
2936 // Turn IFUNC symbols from shared libraries into normal FUNC symbols.
2937 if (type
== elfcpp::STT_GNU_IFUNC
2938 && sym
->is_from_dynobj())
2939 type
= elfcpp::STT_FUNC
;
2940 // A version script may have overridden the default binding.
2941 if (sym
->is_forced_local())
2942 osym
.put_st_info(elfcpp::elf_st_info(elfcpp::STB_LOCAL
, type
));
2944 osym
.put_st_info(elfcpp::elf_st_info(binding
, type
));
2945 osym
.put_st_other(elfcpp::elf_st_other(sym
->visibility(), sym
->nonvis()));
2946 osym
.put_st_shndx(shndx
);
2949 // Check for unresolved symbols in shared libraries. This is
2950 // controlled by the --allow-shlib-undefined option.
2952 // We only warn about libraries for which we have seen all the
2953 // DT_NEEDED entries. We don't try to track down DT_NEEDED entries
2954 // which were not seen in this link. If we didn't see a DT_NEEDED
2955 // entry, we aren't going to be able to reliably report whether the
2956 // symbol is undefined.
2958 // We also don't warn about libraries found in a system library
2959 // directory (e.g., /lib or /usr/lib); we assume that those libraries
2960 // are OK. This heuristic avoids problems on GNU/Linux, in which -ldl
2961 // can have undefined references satisfied by ld-linux.so.
2964 Symbol_table::warn_about_undefined_dynobj_symbol(Symbol
* sym
) const
2967 if (sym
->source() == Symbol::FROM_OBJECT
2968 && sym
->object()->is_dynamic()
2969 && sym
->shndx(&dummy
) == elfcpp::SHN_UNDEF
2970 && sym
->binding() != elfcpp::STB_WEAK
2971 && !parameters
->options().allow_shlib_undefined()
2972 && !parameters
->target().is_defined_by_abi(sym
)
2973 && !sym
->object()->is_in_system_directory())
2975 // A very ugly cast.
2976 Dynobj
* dynobj
= static_cast<Dynobj
*>(sym
->object());
2977 if (!dynobj
->has_unknown_needed_entries())
2978 gold_undefined_symbol(sym
);
2982 // Write out a section symbol. Return the update offset.
2985 Symbol_table::write_section_symbol(const Output_section
* os
,
2986 Output_symtab_xindex
* symtab_xindex
,
2990 switch (parameters
->size_and_endianness())
2992 #ifdef HAVE_TARGET_32_LITTLE
2993 case Parameters::TARGET_32_LITTLE
:
2994 this->sized_write_section_symbol
<32, false>(os
, symtab_xindex
, of
,
2998 #ifdef HAVE_TARGET_32_BIG
2999 case Parameters::TARGET_32_BIG
:
3000 this->sized_write_section_symbol
<32, true>(os
, symtab_xindex
, of
,
3004 #ifdef HAVE_TARGET_64_LITTLE
3005 case Parameters::TARGET_64_LITTLE
:
3006 this->sized_write_section_symbol
<64, false>(os
, symtab_xindex
, of
,
3010 #ifdef HAVE_TARGET_64_BIG
3011 case Parameters::TARGET_64_BIG
:
3012 this->sized_write_section_symbol
<64, true>(os
, symtab_xindex
, of
,
3021 // Write out a section symbol, specialized for size and endianness.
3023 template<int size
, bool big_endian
>
3025 Symbol_table::sized_write_section_symbol(const Output_section
* os
,
3026 Output_symtab_xindex
* symtab_xindex
,
3030 const int sym_size
= elfcpp::Elf_sizes
<size
>::sym_size
;
3032 unsigned char* pov
= of
->get_output_view(offset
, sym_size
);
3034 elfcpp::Sym_write
<size
, big_endian
> osym(pov
);
3035 osym
.put_st_name(0);
3036 if (parameters
->options().relocatable())
3037 osym
.put_st_value(0);
3039 osym
.put_st_value(os
->address());
3040 osym
.put_st_size(0);
3041 osym
.put_st_info(elfcpp::elf_st_info(elfcpp::STB_LOCAL
,
3042 elfcpp::STT_SECTION
));
3043 osym
.put_st_other(elfcpp::elf_st_other(elfcpp::STV_DEFAULT
, 0));
3045 unsigned int shndx
= os
->out_shndx();
3046 if (shndx
>= elfcpp::SHN_LORESERVE
)
3048 symtab_xindex
->add(os
->symtab_index(), shndx
);
3049 shndx
= elfcpp::SHN_XINDEX
;
3051 osym
.put_st_shndx(shndx
);
3053 of
->write_output_view(offset
, sym_size
, pov
);
3056 // Print statistical information to stderr. This is used for --stats.
3059 Symbol_table::print_stats() const
3061 #if defined(HAVE_TR1_UNORDERED_MAP) || defined(HAVE_EXT_HASH_MAP)
3062 fprintf(stderr
, _("%s: symbol table entries: %zu; buckets: %zu\n"),
3063 program_name
, this->table_
.size(), this->table_
.bucket_count());
3065 fprintf(stderr
, _("%s: symbol table entries: %zu\n"),
3066 program_name
, this->table_
.size());
3068 this->namepool_
.print_stats("symbol table stringpool");
3071 // We check for ODR violations by looking for symbols with the same
3072 // name for which the debugging information reports that they were
3073 // defined in disjoint source locations. When comparing the source
3074 // location, we consider instances with the same base filename to be
3075 // the same. This is because different object files/shared libraries
3076 // can include the same header file using different paths, and
3077 // different optimization settings can make the line number appear to
3078 // be a couple lines off, and we don't want to report an ODR violation
3081 // This struct is used to compare line information, as returned by
3082 // Dwarf_line_info::one_addr2line. It implements a < comparison
3083 // operator used with std::sort.
3085 struct Odr_violation_compare
3088 operator()(const std::string
& s1
, const std::string
& s2
) const
3090 // Inputs should be of the form "dirname/filename:linenum" where
3091 // "dirname/" is optional. We want to compare just the filename:linenum.
3093 // Find the last '/' in each string.
3094 std::string::size_type s1begin
= s1
.rfind('/');
3095 std::string::size_type s2begin
= s2
.rfind('/');
3096 // If there was no '/' in a string, start at the beginning.
3097 if (s1begin
== std::string::npos
)
3099 if (s2begin
== std::string::npos
)
3101 return s1
.compare(s1begin
, std::string::npos
,
3102 s2
, s2begin
, std::string::npos
) < 0;
3106 // Returns all of the lines attached to LOC, not just the one the
3107 // instruction actually came from.
3108 std::vector
<std::string
>
3109 Symbol_table::linenos_from_loc(const Task
* task
,
3110 const Symbol_location
& loc
)
3112 // We need to lock the object in order to read it. This
3113 // means that we have to run in a singleton Task. If we
3114 // want to run this in a general Task for better
3115 // performance, we will need one Task for object, plus
3116 // appropriate locking to ensure that we don't conflict with
3117 // other uses of the object. Also note, one_addr2line is not
3118 // currently thread-safe.
3119 Task_lock_obj
<Object
> tl(task
, loc
.object
);
3121 std::vector
<std::string
> result
;
3122 // 16 is the size of the object-cache that one_addr2line should use.
3123 std::string canonical_result
= Dwarf_line_info::one_addr2line(
3124 loc
.object
, loc
.shndx
, loc
.offset
, 16, &result
);
3125 if (!canonical_result
.empty())
3126 result
.push_back(canonical_result
);
3130 // OutputIterator that records if it was ever assigned to. This
3131 // allows it to be used with std::set_intersection() to check for
3132 // intersection rather than computing the intersection.
3133 struct Check_intersection
3135 Check_intersection()
3139 bool had_intersection() const
3140 { return this->value_
; }
3142 Check_intersection
& operator++()
3145 Check_intersection
& operator*()
3148 template<typename T
>
3149 Check_intersection
& operator=(const T
&)
3151 this->value_
= true;
3159 // Check candidate_odr_violations_ to find symbols with the same name
3160 // but apparently different definitions (different source-file/line-no
3161 // for each line assigned to the first instruction).
3164 Symbol_table::detect_odr_violations(const Task
* task
,
3165 const char* output_file_name
) const
3167 for (Odr_map::const_iterator it
= candidate_odr_violations_
.begin();
3168 it
!= candidate_odr_violations_
.end();
3171 const char* const symbol_name
= it
->first
;
3173 std::string first_object_name
;
3174 std::vector
<std::string
> first_object_linenos
;
3176 Unordered_set
<Symbol_location
, Symbol_location_hash
>::const_iterator
3177 locs
= it
->second
.begin();
3178 const Unordered_set
<Symbol_location
, Symbol_location_hash
>::const_iterator
3179 locs_end
= it
->second
.end();
3180 for (; locs
!= locs_end
&& first_object_linenos
.empty(); ++locs
)
3182 // Save the line numbers from the first definition to
3183 // compare to the other definitions. Ideally, we'd compare
3184 // every definition to every other, but we don't want to
3185 // take O(N^2) time to do this. This shortcut may cause
3186 // false negatives that appear or disappear depending on the
3187 // link order, but it won't cause false positives.
3188 first_object_name
= locs
->object
->name();
3189 first_object_linenos
= this->linenos_from_loc(task
, *locs
);
3192 // Sort by Odr_violation_compare to make std::set_intersection work.
3193 std::sort(first_object_linenos
.begin(), first_object_linenos
.end(),
3194 Odr_violation_compare());
3196 for (; locs
!= locs_end
; ++locs
)
3198 std::vector
<std::string
> linenos
=
3199 this->linenos_from_loc(task
, *locs
);
3200 // linenos will be empty if we couldn't parse the debug info.
3201 if (linenos
.empty())
3203 // Sort by Odr_violation_compare to make std::set_intersection work.
3204 std::sort(linenos
.begin(), linenos
.end(), Odr_violation_compare());
3206 Check_intersection intersection_result
=
3207 std::set_intersection(first_object_linenos
.begin(),
3208 first_object_linenos
.end(),
3211 Check_intersection(),
3212 Odr_violation_compare());
3213 if (!intersection_result
.had_intersection())
3215 gold_warning(_("while linking %s: symbol '%s' defined in "
3216 "multiple places (possible ODR violation):"),
3217 output_file_name
, demangle(symbol_name
).c_str());
3218 // This only prints one location from each definition,
3219 // which may not be the location we expect to intersect
3220 // with another definition. We could print the whole
3221 // set of locations, but that seems too verbose.
3222 gold_assert(!first_object_linenos
.empty());
3223 gold_assert(!linenos
.empty());
3224 fprintf(stderr
, _(" %s from %s\n"),
3225 first_object_linenos
[0].c_str(),
3226 first_object_name
.c_str());
3227 fprintf(stderr
, _(" %s from %s\n"),
3229 locs
->object
->name().c_str());
3230 // Only print one broken pair, to avoid needing to
3231 // compare against a list of the disjoint definition
3232 // locations we've found so far. (If we kept comparing
3233 // against just the first one, we'd get a lot of
3234 // redundant complaints about the second definition
3240 // We only call one_addr2line() in this function, so we can clear its cache.
3241 Dwarf_line_info::clear_addr2line_cache();
3244 // Warnings functions.
3246 // Add a new warning.
3249 Warnings::add_warning(Symbol_table
* symtab
, const char* name
, Object
* obj
,
3250 const std::string
& warning
)
3252 name
= symtab
->canonicalize_name(name
);
3253 this->warnings_
[name
].set(obj
, warning
);
3256 // Look through the warnings and mark the symbols for which we should
3257 // warn. This is called during Layout::finalize when we know the
3258 // sources for all the symbols.
3261 Warnings::note_warnings(Symbol_table
* symtab
)
3263 for (Warning_table::iterator p
= this->warnings_
.begin();
3264 p
!= this->warnings_
.end();
3267 Symbol
* sym
= symtab
->lookup(p
->first
, NULL
);
3269 && sym
->source() == Symbol::FROM_OBJECT
3270 && sym
->object() == p
->second
.object
)
3271 sym
->set_has_warning();
3275 // Issue a warning. This is called when we see a relocation against a
3276 // symbol for which has a warning.
3278 template<int size
, bool big_endian
>
3280 Warnings::issue_warning(const Symbol
* sym
,
3281 const Relocate_info
<size
, big_endian
>* relinfo
,
3282 size_t relnum
, off_t reloffset
) const
3284 gold_assert(sym
->has_warning());
3286 // We don't want to issue a warning for a relocation against the
3287 // symbol in the same object file in which the symbol is defined.
3288 if (sym
->object() == relinfo
->object
)
3291 Warning_table::const_iterator p
= this->warnings_
.find(sym
->name());
3292 gold_assert(p
!= this->warnings_
.end());
3293 gold_warning_at_location(relinfo
, relnum
, reloffset
,
3294 "%s", p
->second
.text
.c_str());
3297 // Instantiate the templates we need. We could use the configure
3298 // script to restrict this to only the ones needed for implemented
3301 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
3304 Sized_symbol
<32>::allocate_common(Output_data
*, Value_type
);
3307 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
3310 Sized_symbol
<64>::allocate_common(Output_data
*, Value_type
);
3313 #ifdef HAVE_TARGET_32_LITTLE
3316 Symbol_table::add_from_relobj
<32, false>(
3317 Sized_relobj_file
<32, false>* relobj
,
3318 const unsigned char* syms
,
3320 size_t symndx_offset
,
3321 const char* sym_names
,
3322 size_t sym_name_size
,
3323 Sized_relobj_file
<32, false>::Symbols
* sympointers
,
3327 #ifdef HAVE_TARGET_32_BIG
3330 Symbol_table::add_from_relobj
<32, true>(
3331 Sized_relobj_file
<32, true>* relobj
,
3332 const unsigned char* syms
,
3334 size_t symndx_offset
,
3335 const char* sym_names
,
3336 size_t sym_name_size
,
3337 Sized_relobj_file
<32, true>::Symbols
* sympointers
,
3341 #ifdef HAVE_TARGET_64_LITTLE
3344 Symbol_table::add_from_relobj
<64, false>(
3345 Sized_relobj_file
<64, false>* relobj
,
3346 const unsigned char* syms
,
3348 size_t symndx_offset
,
3349 const char* sym_names
,
3350 size_t sym_name_size
,
3351 Sized_relobj_file
<64, false>::Symbols
* sympointers
,
3355 #ifdef HAVE_TARGET_64_BIG
3358 Symbol_table::add_from_relobj
<64, true>(
3359 Sized_relobj_file
<64, true>* relobj
,
3360 const unsigned char* syms
,
3362 size_t symndx_offset
,
3363 const char* sym_names
,
3364 size_t sym_name_size
,
3365 Sized_relobj_file
<64, true>::Symbols
* sympointers
,
3369 #ifdef HAVE_TARGET_32_LITTLE
3372 Symbol_table::add_from_pluginobj
<32, false>(
3373 Sized_pluginobj
<32, false>* obj
,
3376 elfcpp::Sym
<32, false>* sym
);
3379 #ifdef HAVE_TARGET_32_BIG
3382 Symbol_table::add_from_pluginobj
<32, true>(
3383 Sized_pluginobj
<32, true>* obj
,
3386 elfcpp::Sym
<32, true>* sym
);
3389 #ifdef HAVE_TARGET_64_LITTLE
3392 Symbol_table::add_from_pluginobj
<64, false>(
3393 Sized_pluginobj
<64, false>* obj
,
3396 elfcpp::Sym
<64, false>* sym
);
3399 #ifdef HAVE_TARGET_64_BIG
3402 Symbol_table::add_from_pluginobj
<64, true>(
3403 Sized_pluginobj
<64, true>* obj
,
3406 elfcpp::Sym
<64, true>* sym
);
3409 #ifdef HAVE_TARGET_32_LITTLE
3412 Symbol_table::add_from_dynobj
<32, false>(
3413 Sized_dynobj
<32, false>* dynobj
,
3414 const unsigned char* syms
,
3416 const char* sym_names
,
3417 size_t sym_name_size
,
3418 const unsigned char* versym
,
3420 const std::vector
<const char*>* version_map
,
3421 Sized_relobj_file
<32, false>::Symbols
* sympointers
,
3425 #ifdef HAVE_TARGET_32_BIG
3428 Symbol_table::add_from_dynobj
<32, true>(
3429 Sized_dynobj
<32, true>* dynobj
,
3430 const unsigned char* syms
,
3432 const char* sym_names
,
3433 size_t sym_name_size
,
3434 const unsigned char* versym
,
3436 const std::vector
<const char*>* version_map
,
3437 Sized_relobj_file
<32, true>::Symbols
* sympointers
,
3441 #ifdef HAVE_TARGET_64_LITTLE
3444 Symbol_table::add_from_dynobj
<64, false>(
3445 Sized_dynobj
<64, false>* dynobj
,
3446 const unsigned char* syms
,
3448 const char* sym_names
,
3449 size_t sym_name_size
,
3450 const unsigned char* versym
,
3452 const std::vector
<const char*>* version_map
,
3453 Sized_relobj_file
<64, false>::Symbols
* sympointers
,
3457 #ifdef HAVE_TARGET_64_BIG
3460 Symbol_table::add_from_dynobj
<64, true>(
3461 Sized_dynobj
<64, true>* dynobj
,
3462 const unsigned char* syms
,
3464 const char* sym_names
,
3465 size_t sym_name_size
,
3466 const unsigned char* versym
,
3468 const std::vector
<const char*>* version_map
,
3469 Sized_relobj_file
<64, true>::Symbols
* sympointers
,
3473 #ifdef HAVE_TARGET_32_LITTLE
3476 Symbol_table::add_from_incrobj(
3480 elfcpp::Sym
<32, false>* sym
);
3483 #ifdef HAVE_TARGET_32_BIG
3486 Symbol_table::add_from_incrobj(
3490 elfcpp::Sym
<32, true>* sym
);
3493 #ifdef HAVE_TARGET_64_LITTLE
3496 Symbol_table::add_from_incrobj(
3500 elfcpp::Sym
<64, false>* sym
);
3503 #ifdef HAVE_TARGET_64_BIG
3506 Symbol_table::add_from_incrobj(
3510 elfcpp::Sym
<64, true>* sym
);
3513 #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
3516 Symbol_table::define_with_copy_reloc
<32>(
3517 Sized_symbol
<32>* sym
,
3519 elfcpp::Elf_types
<32>::Elf_Addr value
);
3522 #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
3525 Symbol_table::define_with_copy_reloc
<64>(
3526 Sized_symbol
<64>* sym
,
3528 elfcpp::Elf_types
<64>::Elf_Addr value
);
3531 #ifdef HAVE_TARGET_32_LITTLE
3534 Warnings::issue_warning
<32, false>(const Symbol
* sym
,
3535 const Relocate_info
<32, false>* relinfo
,
3536 size_t relnum
, off_t reloffset
) const;
3539 #ifdef HAVE_TARGET_32_BIG
3542 Warnings::issue_warning
<32, true>(const Symbol
* sym
,
3543 const Relocate_info
<32, true>* relinfo
,
3544 size_t relnum
, off_t reloffset
) const;
3547 #ifdef HAVE_TARGET_64_LITTLE
3550 Warnings::issue_warning
<64, false>(const Symbol
* sym
,
3551 const Relocate_info
<64, false>* relinfo
,
3552 size_t relnum
, off_t reloffset
) const;
3555 #ifdef HAVE_TARGET_64_BIG
3558 Warnings::issue_warning
<64, true>(const Symbol
* sym
,
3559 const Relocate_info
<64, true>* relinfo
,
3560 size_t relnum
, off_t reloffset
) const;
3563 } // End namespace gold.