PR gas/5269
[deliverable/binutils-gdb.git] / gold / symtab.h
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1// symtab.h -- the gold symbol table -*- C++ -*-
2
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3// Copyright 2006, 2007 Free Software Foundation, Inc.
4// Written by Ian Lance Taylor <iant@google.com>.
5
6// This file is part of gold.
7
8// This program is free software; you can redistribute it and/or modify
9// it under the terms of the GNU General Public License as published by
10// the Free Software Foundation; either version 3 of the License, or
11// (at your option) any later version.
12
13// This program is distributed in the hope that it will be useful,
14// but WITHOUT ANY WARRANTY; without even the implied warranty of
15// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16// GNU General Public License for more details.
17
18// You should have received a copy of the GNU General Public License
19// along with this program; if not, write to the Free Software
20// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21// MA 02110-1301, USA.
22
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23// Symbol_table
24// The symbol table.
25
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26#include <string>
27#include <utility>
ead1e424 28#include <vector>
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29
30#include "elfcpp.h"
7e1edb90 31#include "parameters.h"
14bfc3f5 32#include "stringpool.h"
f6ce93d6 33#include "object.h"
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34
35#ifndef GOLD_SYMTAB_H
36#define GOLD_SYMTAB_H
37
38namespace gold
39{
40
14bfc3f5 41class Object;
f6ce93d6 42class Relobj;
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43template<int size, bool big_endian>
44class Sized_relobj;
f6ce93d6 45class Dynobj;
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46template<int size, bool big_endian>
47class Sized_dynobj;
14b31740 48class Versions;
ead1e424 49class Output_data;
a3ad94ed 50class Output_section;
ead1e424 51class Output_segment;
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52class Output_file;
53class Target;
14bfc3f5 54
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55// The base class of an entry in the symbol table. The symbol table
56// can have a lot of entries, so we don't want this class to big.
57// Size dependent fields can be found in the template class
58// Sized_symbol. Targets may support their own derived classes.
bae7f79e 59
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60class Symbol
61{
62 public:
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63 // Because we want the class to be small, we don't use any virtual
64 // functions. But because symbols can be defined in different
65 // places, we need to classify them. This enum is the different
66 // sources of symbols we support.
67 enum Source
68 {
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69 // Symbol defined in a relocatable or dynamic input file--this is
70 // the most common case.
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71 FROM_OBJECT,
72 // Symbol defined in an Output_data, a special section created by
73 // the target.
74 IN_OUTPUT_DATA,
75 // Symbol defined in an Output_segment, with no associated
76 // section.
77 IN_OUTPUT_SEGMENT,
78 // Symbol value is constant.
79 CONSTANT
80 };
81
82 // When the source is IN_OUTPUT_SEGMENT, we need to describe what
83 // the offset means.
84 enum Segment_offset_base
85 {
86 // From the start of the segment.
87 SEGMENT_START,
88 // From the end of the segment.
89 SEGMENT_END,
90 // From the filesz of the segment--i.e., after the loaded bytes
91 // but before the bytes which are allocated but zeroed.
92 SEGMENT_BSS
93 };
94
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95 // Return the symbol name.
96 const char*
97 name() const
98 { return this->name_; }
99
100 // Return the symbol version. This will return NULL for an
101 // unversioned symbol.
102 const char*
103 version() const
104 { return this->version_; }
105
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106 // Return the symbol source.
107 Source
108 source() const
109 { return this->source_; }
110
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111 // Return the object with which this symbol is associated.
112 Object*
113 object() const
ead1e424 114 {
a3ad94ed 115 gold_assert(this->source_ == FROM_OBJECT);
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116 return this->u_.from_object.object;
117 }
118
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119 // Return the index of the section in the input relocatable or
120 // dynamic object file.
ead1e424 121 unsigned int
16649710 122 shndx() const
ead1e424 123 {
a3ad94ed 124 gold_assert(this->source_ == FROM_OBJECT);
16649710 125 return this->u_.from_object.shndx;
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126 }
127
128 // Return the output data section with which this symbol is
129 // associated, if the symbol was specially defined with respect to
130 // an output data section.
131 Output_data*
132 output_data() const
133 {
a3ad94ed 134 gold_assert(this->source_ == IN_OUTPUT_DATA);
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135 return this->u_.in_output_data.output_data;
136 }
137
138 // If this symbol was defined with respect to an output data
139 // section, return whether the value is an offset from end.
140 bool
141 offset_is_from_end() const
142 {
a3ad94ed 143 gold_assert(this->source_ == IN_OUTPUT_DATA);
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144 return this->u_.in_output_data.offset_is_from_end;
145 }
146
147 // Return the output segment with which this symbol is associated,
148 // if the symbol was specially defined with respect to an output
149 // segment.
150 Output_segment*
151 output_segment() const
152 {
a3ad94ed 153 gold_assert(this->source_ == IN_OUTPUT_SEGMENT);
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154 return this->u_.in_output_segment.output_segment;
155 }
156
157 // If this symbol was defined with respect to an output segment,
158 // return the offset base.
159 Segment_offset_base
160 offset_base() const
161 {
a3ad94ed 162 gold_assert(this->source_ == IN_OUTPUT_SEGMENT);
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163 return this->u_.in_output_segment.offset_base;
164 }
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165
166 // Return the symbol binding.
167 elfcpp::STB
168 binding() const
169 { return this->binding_; }
170
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171 // Return the symbol type.
172 elfcpp::STT
173 type() const
174 { return this->type_; }
175
176 // Return the symbol visibility.
177 elfcpp::STV
178 visibility() const
179 { return this->visibility_; }
180
181 // Return the non-visibility part of the st_other field.
182 unsigned char
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183 nonvis() const
184 { return this->nonvis_; }
14bfc3f5 185
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186 // Return whether this symbol is a forwarder. This will never be
187 // true of a symbol found in the hash table, but may be true of
188 // symbol pointers attached to object files.
189 bool
190 is_forwarder() const
191 { return this->is_forwarder_; }
192
193 // Mark this symbol as a forwarder.
194 void
195 set_forwarder()
196 { this->is_forwarder_ = true; }
197
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198 // Return whether this symbol has an alias in the weak aliases table
199 // in Symbol_table.
200 bool
201 has_alias() const
202 { return this->has_alias_; }
203
204 // Mark this symbol as having an alias.
205 void
206 set_has_alias()
207 { this->has_alias_ = true; }
208
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209 // Return whether this symbol needs an entry in the dynamic symbol
210 // table.
211 bool
212 needs_dynsym_entry() const
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213 {
214 return (this->needs_dynsym_entry_
215 || (this->in_reg() && this->in_dyn()));
216 }
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217
218 // Mark this symbol as needing an entry in the dynamic symbol table.
219 void
220 set_needs_dynsym_entry()
221 { this->needs_dynsym_entry_ = true; }
222
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223 // Return whether this symbol should be added to the dynamic symbol
224 // table.
225 bool
226 should_add_dynsym_entry() const;
227
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228 // Return whether this symbol has been seen in a regular object.
229 bool
230 in_reg() const
231 { return this->in_reg_; }
232
233 // Mark this symbol as having been seen in a regular object.
234 void
235 set_in_reg()
236 { this->in_reg_ = true; }
237
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238 // Return whether this symbol has been seen in a dynamic object.
239 bool
240 in_dyn() const
241 { return this->in_dyn_; }
242
f6ce93d6 243 // Mark this symbol as having been seen in a dynamic object.
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244 void
245 set_in_dyn()
246 { this->in_dyn_ = true; }
247
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248 // Return the index of this symbol in the output file symbol table.
249 // A value of -1U means that this symbol is not going into the
250 // output file. This starts out as zero, and is set to a non-zero
251 // value by Symbol_table::finalize. It is an error to ask for the
252 // symbol table index before it has been set.
253 unsigned int
254 symtab_index() const
255 {
a3ad94ed 256 gold_assert(this->symtab_index_ != 0);
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257 return this->symtab_index_;
258 }
259
260 // Set the index of the symbol in the output file symbol table.
261 void
262 set_symtab_index(unsigned int index)
263 {
a3ad94ed 264 gold_assert(index != 0);
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265 this->symtab_index_ = index;
266 }
267
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268 // Return whether this symbol already has an index in the output
269 // file symbol table.
270 bool
271 has_symtab_index() const
272 { return this->symtab_index_ != 0; }
273
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274 // Return the index of this symbol in the dynamic symbol table. A
275 // value of -1U means that this symbol is not going into the dynamic
276 // symbol table. This starts out as zero, and is set to a non-zero
277 // during Layout::finalize. It is an error to ask for the dynamic
278 // symbol table index before it has been set.
279 unsigned int
280 dynsym_index() const
281 {
a3ad94ed 282 gold_assert(this->dynsym_index_ != 0);
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283 return this->dynsym_index_;
284 }
285
286 // Set the index of the symbol in the dynamic symbol table.
287 void
288 set_dynsym_index(unsigned int index)
289 {
a3ad94ed 290 gold_assert(index != 0);
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291 this->dynsym_index_ = index;
292 }
293
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294 // Return whether this symbol already has an index in the dynamic
295 // symbol table.
296 bool
297 has_dynsym_index() const
298 { return this->dynsym_index_ != 0; }
299
ead1e424 300 // Return whether this symbol has an entry in the GOT section.
92e059d8 301 bool
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302 has_got_offset() const
303 { return this->has_got_offset_; }
304
305 // Return the offset into the GOT section of this symbol.
306 unsigned int
307 got_offset() const
308 {
a3ad94ed 309 gold_assert(this->has_got_offset());
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310 return this->got_offset_;
311 }
312
313 // Set the GOT offset of this symbol.
314 void
315 set_got_offset(unsigned int got_offset)
316 {
317 this->has_got_offset_ = true;
318 this->got_offset_ = got_offset;
319 }
320
a3ad94ed 321 // Return whether this symbol has an entry in the PLT section.
ead1e424 322 bool
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323 has_plt_offset() const
324 { return this->has_plt_offset_; }
325
326 // Return the offset into the PLT section of this symbol.
327 unsigned int
328 plt_offset() const
329 {
330 gold_assert(this->has_plt_offset());
331 return this->plt_offset_;
332 }
333
334 // Set the PLT offset of this symbol.
335 void
336 set_plt_offset(unsigned int plt_offset)
337 {
338 this->has_plt_offset_ = true;
339 this->plt_offset_ = plt_offset;
340 }
341
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342 // Return whether this dynamic symbol needs a special value in the
343 // dynamic symbol table.
344 bool
345 needs_dynsym_value() const
346 { return this->needs_dynsym_value_; }
347
348 // Set that this dynamic symbol needs a special value in the dynamic
349 // symbol table.
350 void
351 set_needs_dynsym_value()
352 {
353 gold_assert(this->object()->is_dynamic());
354 this->needs_dynsym_value_ = true;
355 }
356
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357 // Return true if the final value of this symbol is known at link
358 // time.
359 bool
b3b74ddc 360 final_value_is_known() const;
ead1e424 361
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362 // Return whether this is a defined symbol (not undefined or
363 // common).
364 bool
365 is_defined() const
366 {
367 return (this->source_ != FROM_OBJECT
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368 || (this->shndx() != elfcpp::SHN_UNDEF
369 && this->shndx() != elfcpp::SHN_COMMON));
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370 }
371
14b31740 372 // Return true if this symbol is from a dynamic object.
a3ad94ed 373 bool
14b31740 374 is_from_dynobj() const
a3ad94ed 375 {
14b31740 376 return this->source_ == FROM_OBJECT && this->object()->is_dynamic();
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377 }
378
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379 // Return whether this is an undefined symbol.
380 bool
381 is_undefined() const
382 {
16649710 383 return this->source_ == FROM_OBJECT && this->shndx() == elfcpp::SHN_UNDEF;
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384 }
385
386 // Return whether this is a common symbol.
387 bool
388 is_common() const
389 {
f6ce93d6 390 return (this->source_ == FROM_OBJECT
16649710 391 && (this->shndx() == elfcpp::SHN_COMMON
f6ce93d6 392 || this->type_ == elfcpp::STT_COMMON));
ead1e424 393 }
92e059d8 394
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395 // Return whether this symbol can be seen outside this object.
396 bool
397 is_externally_visible() const
398 {
399 return (this->visibility_ == elfcpp::STV_DEFAULT
400 || this->visibility_ == elfcpp::STV_PROTECTED);
401 }
402
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403 // Return true if this symbol can be preempted by a definition in
404 // another link unit.
405 bool
406 is_preemptible() const
407 {
408 return (this->visibility_ != elfcpp::STV_INTERNAL
409 && this->visibility_ != elfcpp::STV_HIDDEN
51b08ebe 410 && this->visibility_ != elfcpp::STV_PROTECTED
d61c6bd4 411 && parameters->output_is_shared()
51b08ebe 412 && !parameters->symbolic());
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413 }
414
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415 // Return true if this symbol is a function that needs a PLT entry.
416 // If the symbol is defined in a dynamic object or if it is subject
417 // to pre-emption, we need to make a PLT entry.
418 bool
419 needs_plt_entry() const
420 {
421 return (this->type() == elfcpp::STT_FUNC
422 && (this->is_from_dynobj() || this->is_preemptible()));
423 }
424
425 // Given a direct absolute or pc-relative static relocation against
426 // the global symbol, this function returns whether a dynamic relocation
427 // is needed.
428
429 bool
430 needs_dynamic_reloc(bool is_absolute_ref, bool is_function_call) const
431 {
432 // An absolute reference within a position-independent output file
433 // will need a dynamic relocaion.
434 if (is_absolute_ref && parameters->output_is_position_independent())
435 return true;
436
437 // A function call that can branch to a local PLT entry does not need
438 // a dynamic relocation.
439 if (is_function_call && this->has_plt_offset())
440 return false;
441
442 // A reference to any PLT entry in a non-position-independent executable
443 // does not need a dynamic relocation.
444 if (!parameters->output_is_position_independent()
445 && this->has_plt_offset())
446 return false;
447
448 // A reference to a symbol defined in a dynamic object or to a
449 // symbol that is preemptible will need a dynamic relocation.
450 if (this->is_from_dynobj() || this->is_preemptible())
451 return true;
452
453 // For all other cases, return FALSE.
454 return false;
455 }
456
457 // Given a direct absolute static relocation against
458 // the global symbol, where a dynamic relocation is needed, this
459 // function returns whether a relative dynamic relocation can be used.
460 // The caller must determine separately whether the static relocation
461 // is compatible with a relative relocation.
462
463 bool
464 can_use_relative_reloc(bool is_function_call) const
465 {
466 // A function call that can branch to a local PLT entry can
467 // use a RELATIVE relocation.
468 if (is_function_call && this->has_plt_offset())
469 return true;
470
471 // A reference to a symbol defined in a dynamic object or to a
472 // symbol that is preemptible can not use a RELATIVE relocaiton.
473 if (this->is_from_dynobj() || this->is_preemptible())
474 return false;
475
476 // For all other cases, return TRUE.
477 return true;
478 }
479
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480 // Return whether there should be a warning for references to this
481 // symbol.
482 bool
483 has_warning() const
484 { return this->has_warning_; }
485
486 // Mark this symbol as having a warning.
487 void
488 set_has_warning()
489 { this->has_warning_ = true; }
490
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491 // Return whether this symbol is defined by a COPY reloc from a
492 // dynamic object.
493 bool
494 is_copied_from_dynobj() const
495 { return this->is_copied_from_dynobj_; }
496
497 // Mark this symbol as defined by a COPY reloc.
498 void
499 set_is_copied_from_dynobj()
500 { this->is_copied_from_dynobj_ = true; }
501
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502 // Mark this symbol as needing its value written to the GOT even when
503 // the value is subject to dynamic relocation (e.g., when the target
504 // uses a RELATIVE relocation for the GOT entry).
505 void
506 set_needs_value_in_got()
507 { this->needs_value_in_got_ = true; }
508
509 // Return whether this symbol needs its value written to the GOT even
510 // when the value is subject to dynamic relocation.
511 bool
512 needs_value_in_got() const
513 { return this->needs_value_in_got_; }
514
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515 protected:
516 // Instances of this class should always be created at a specific
517 // size.
518 Symbol()
f6ce93d6 519 { memset(this, 0, sizeof *this); }
14bfc3f5 520
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521 // Initialize the general fields.
522 void
523 init_fields(const char* name, const char* version,
524 elfcpp::STT type, elfcpp::STB binding,
525 elfcpp::STV visibility, unsigned char nonvis);
526
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527 // Initialize fields from an ELF symbol in OBJECT.
528 template<int size, bool big_endian>
529 void
530 init_base(const char *name, const char* version, Object* object,
531 const elfcpp::Sym<size, big_endian>&);
bae7f79e 532
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533 // Initialize fields for an Output_data.
534 void
535 init_base(const char* name, Output_data*, elfcpp::STT, elfcpp::STB,
536 elfcpp::STV, unsigned char nonvis, bool offset_is_from_end);
537
538 // Initialize fields for an Output_segment.
539 void
540 init_base(const char* name, Output_segment* os, elfcpp::STT type,
541 elfcpp::STB binding, elfcpp::STV visibility,
542 unsigned char nonvis, Segment_offset_base offset_base);
543
544 // Initialize fields for a constant.
545 void
546 init_base(const char* name, elfcpp::STT type, elfcpp::STB binding,
547 elfcpp::STV visibility, unsigned char nonvis);
548
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549 // Override existing symbol.
550 template<int size, bool big_endian>
551 void
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552 override_base(const elfcpp::Sym<size, big_endian>&, Object* object,
553 const char* version);
1564db8d 554
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555 // Override existing symbol with a special symbol.
556 void
557 override_base_with_special(const Symbol* from);
558
bae7f79e 559 private:
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560 Symbol(const Symbol&);
561 Symbol& operator=(const Symbol&);
562
563 // Symbol name (expected to point into a Stringpool).
564 const char* name_;
565 // Symbol version (expected to point into a Stringpool). This may
566 // be NULL.
bae7f79e 567 const char* version_;
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568
569 union
570 {
571 // This struct is used if SOURCE_ == FROM_OBJECT.
572 struct
573 {
574 // Object in which symbol is defined, or in which it was first
575 // seen.
576 Object* object;
577 // Section number in object_ in which symbol is defined.
16649710 578 unsigned int shndx;
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579 } from_object;
580
581 // This struct is used if SOURCE_ == IN_OUTPUT_DATA.
582 struct
583 {
584 // Output_data in which symbol is defined. Before
585 // Layout::finalize the symbol's value is an offset within the
586 // Output_data.
587 Output_data* output_data;
588 // True if the offset is from the end, false if the offset is
589 // from the beginning.
590 bool offset_is_from_end;
591 } in_output_data;
592
593 // This struct is used if SOURCE_ == IN_OUTPUT_SEGMENT.
594 struct
595 {
596 // Output_segment in which the symbol is defined. Before
597 // Layout::finalize the symbol's value is an offset.
598 Output_segment* output_segment;
599 // The base to use for the offset before Layout::finalize.
600 Segment_offset_base offset_base;
601 } in_output_segment;
602 } u_;
603
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604 // The index of this symbol in the output file. If the symbol is
605 // not going into the output file, this value is -1U. This field
606 // starts as always holding zero. It is set to a non-zero value by
607 // Symbol_table::finalize.
608 unsigned int symtab_index_;
609
610 // The index of this symbol in the dynamic symbol table. If the
611 // symbol is not going into the dynamic symbol table, this value is
612 // -1U. This field starts as always holding zero. It is set to a
613 // non-zero value during Layout::finalize.
614 unsigned int dynsym_index_;
615
ead1e424 616 // If this symbol has an entry in the GOT section (has_got_offset_
c06b7b0b 617 // is true), this is the offset from the start of the GOT section.
ead1e424 618 unsigned int got_offset_;
c06b7b0b 619
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620 // If this symbol has an entry in the PLT section (has_plt_offset_
621 // is true), then this is the offset from the start of the PLT
622 // section.
623 unsigned int plt_offset_;
624
14bfc3f5 625 // Symbol type.
bae7f79e 626 elfcpp::STT type_ : 4;
14bfc3f5 627 // Symbol binding.
bae7f79e 628 elfcpp::STB binding_ : 4;
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629 // Symbol visibility.
630 elfcpp::STV visibility_ : 2;
631 // Rest of symbol st_other field.
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632 unsigned int nonvis_ : 6;
633 // The type of symbol.
f6ce93d6 634 Source source_ : 3;
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635 // True if this symbol always requires special target-specific
636 // handling.
ead1e424 637 bool is_target_special_ : 1;
14bfc3f5 638 // True if this is the default version of the symbol.
1564db8d 639 bool is_def_ : 1;
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640 // True if this symbol really forwards to another symbol. This is
641 // used when we discover after the fact that two different entries
642 // in the hash table really refer to the same symbol. This will
643 // never be set for a symbol found in the hash table, but may be set
644 // for a symbol found in the list of symbols attached to an Object.
645 // It forwards to the symbol found in the forwarders_ map of
646 // Symbol_table.
1564db8d 647 bool is_forwarder_ : 1;
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648 // True if the symbol has an alias in the weak_aliases table in
649 // Symbol_table.
650 bool has_alias_ : 1;
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651 // True if this symbol needs to be in the dynamic symbol table.
652 bool needs_dynsym_entry_ : 1;
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653 // True if we've seen this symbol in a regular object.
654 bool in_reg_ : 1;
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655 // True if we've seen this symbol in a dynamic object.
656 bool in_dyn_ : 1;
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657 // True if the symbol has an entry in the GOT section.
658 bool has_got_offset_ : 1;
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659 // True if the symbol has an entry in the PLT section.
660 bool has_plt_offset_ : 1;
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661 // True if this is a dynamic symbol which needs a special value in
662 // the dynamic symbol table.
663 bool needs_dynsym_value_ : 1;
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664 // True if there is a warning for this symbol.
665 bool has_warning_ : 1;
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666 // True if we are using a COPY reloc for this symbol, so that the
667 // real definition lives in a dynamic object.
668 bool is_copied_from_dynobj_ : 1;
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669 // True if the static value should be written to the GOT even
670 // when the final value is subject to dynamic relocation.
671 bool needs_value_in_got_ : 1;
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672};
673
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674// The parts of a symbol which are size specific. Using a template
675// derived class like this helps us use less space on a 32-bit system.
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676
677template<int size>
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678class Sized_symbol : public Symbol
679{
680 public:
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681 typedef typename elfcpp::Elf_types<size>::Elf_Addr Value_type;
682 typedef typename elfcpp::Elf_types<size>::Elf_WXword Size_type;
683
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684 Sized_symbol()
685 { }
686
687 // Initialize fields from an ELF symbol in OBJECT.
688 template<bool big_endian>
689 void
690 init(const char *name, const char* version, Object* object,
691 const elfcpp::Sym<size, big_endian>&);
692
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693 // Initialize fields for an Output_data.
694 void
695 init(const char* name, Output_data*, Value_type value, Size_type symsize,
696 elfcpp::STT, elfcpp::STB, elfcpp::STV, unsigned char nonvis,
697 bool offset_is_from_end);
698
699 // Initialize fields for an Output_segment.
700 void
701 init(const char* name, Output_segment*, Value_type value, Size_type symsize,
702 elfcpp::STT, elfcpp::STB, elfcpp::STV, unsigned char nonvis,
703 Segment_offset_base offset_base);
704
705 // Initialize fields for a constant.
706 void
707 init(const char* name, Value_type value, Size_type symsize,
708 elfcpp::STT, elfcpp::STB, elfcpp::STV, unsigned char nonvis);
709
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710 // Override existing symbol.
711 template<bool big_endian>
712 void
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713 override(const elfcpp::Sym<size, big_endian>&, Object* object,
714 const char* version);
1564db8d 715
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716 // Override existing symbol with a special symbol.
717 void
718 override_with_special(const Sized_symbol<size>*);
719
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720 // Return the symbol's value.
721 Value_type
722 value() const
723 { return this->value_; }
724
725 // Return the symbol's size (we can't call this 'size' because that
726 // is a template parameter).
727 Size_type
728 symsize() const
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729 { return this->symsize_; }
730
731 // Set the symbol size. This is used when resolving common symbols.
732 void
733 set_symsize(Size_type symsize)
734 { this->symsize_ = symsize; }
1564db8d 735
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736 // Set the symbol value. This is called when we store the final
737 // values of the symbols into the symbol table.
738 void
739 set_value(Value_type value)
740 { this->value_ = value; }
741
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742 private:
743 Sized_symbol(const Sized_symbol&);
744 Sized_symbol& operator=(const Sized_symbol&);
745
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746 // Symbol value. Before Layout::finalize this is the offset in the
747 // input section. This is set to the final value during
748 // Layout::finalize.
1564db8d 749 Value_type value_;
14bfc3f5 750 // Symbol size.
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751 Size_type symsize_;
752};
753
754// A struct describing a symbol defined by the linker, where the value
755// of the symbol is defined based on an output section. This is used
756// for symbols defined by the linker, like "_init_array_start".
757
758struct Define_symbol_in_section
759{
760 // The symbol name.
761 const char* name;
762 // The name of the output section with which this symbol should be
763 // associated. If there is no output section with that name, the
764 // symbol will be defined as zero.
765 const char* output_section;
766 // The offset of the symbol within the output section. This is an
767 // offset from the start of the output section, unless start_at_end
768 // is true, in which case this is an offset from the end of the
769 // output section.
770 uint64_t value;
771 // The size of the symbol.
772 uint64_t size;
773 // The symbol type.
774 elfcpp::STT type;
775 // The symbol binding.
776 elfcpp::STB binding;
777 // The symbol visibility.
778 elfcpp::STV visibility;
779 // The rest of the st_other field.
780 unsigned char nonvis;
781 // If true, the value field is an offset from the end of the output
782 // section.
783 bool offset_is_from_end;
784 // If true, this symbol is defined only if we see a reference to it.
785 bool only_if_ref;
786};
787
788// A struct describing a symbol defined by the linker, where the value
789// of the symbol is defined based on a segment. This is used for
790// symbols defined by the linker, like "_end". We describe the
791// segment with which the symbol should be associated by its
792// characteristics. If no segment meets these characteristics, the
793// symbol will be defined as zero. If there is more than one segment
794// which meets these characteristics, we will use the first one.
795
796struct Define_symbol_in_segment
797{
798 // The symbol name.
799 const char* name;
800 // The segment type where the symbol should be defined, typically
801 // PT_LOAD.
802 elfcpp::PT segment_type;
803 // Bitmask of segment flags which must be set.
804 elfcpp::PF segment_flags_set;
805 // Bitmask of segment flags which must be clear.
806 elfcpp::PF segment_flags_clear;
807 // The offset of the symbol within the segment. The offset is
808 // calculated from the position set by offset_base.
809 uint64_t value;
810 // The size of the symbol.
811 uint64_t size;
812 // The symbol type.
813 elfcpp::STT type;
814 // The symbol binding.
815 elfcpp::STB binding;
816 // The symbol visibility.
817 elfcpp::STV visibility;
818 // The rest of the st_other field.
819 unsigned char nonvis;
820 // The base from which we compute the offset.
821 Symbol::Segment_offset_base offset_base;
822 // If true, this symbol is defined only if we see a reference to it.
823 bool only_if_ref;
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824};
825
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826// This class manages warnings. Warnings are a GNU extension. When
827// we see a section named .gnu.warning.SYM in an object file, and if
828// we wind using the definition of SYM from that object file, then we
829// will issue a warning for any relocation against SYM from a
830// different object file. The text of the warning is the contents of
831// the section. This is not precisely the definition used by the old
832// GNU linker; the old GNU linker treated an occurrence of
833// .gnu.warning.SYM as defining a warning symbol. A warning symbol
834// would trigger a warning on any reference. However, it was
835// inconsistent in that a warning in a dynamic object only triggered
836// if there was no definition in a regular object. This linker is
837// different in that we only issue a warning if we use the symbol
838// definition from the same object file as the warning section.
839
840class Warnings
841{
842 public:
843 Warnings()
844 : warnings_()
845 { }
846
847 // Add a warning for symbol NAME in section SHNDX in object OBJ.
848 void
849 add_warning(Symbol_table* symtab, const char* name, Object* obj,
850 unsigned int shndx);
851
852 // For each symbol for which we should give a warning, make a note
853 // on the symbol.
854 void
855 note_warnings(Symbol_table* symtab);
856
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857 // Issue a warning for a reference to SYM at RELINFO's location.
858 template<int size, bool big_endian>
f6ce93d6 859 void
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ILT
860 issue_warning(const Symbol* sym, const Relocate_info<size, big_endian>*,
861 size_t relnum, off_t reloffset) const;
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862
863 private:
864 Warnings(const Warnings&);
865 Warnings& operator=(const Warnings&);
866
867 // What we need to know to get the warning text.
868 struct Warning_location
869 {
870 // The object the warning is in.
871 Object* object;
872 // The index of the warning section.
873 unsigned int shndx;
874 // The warning text if we have already loaded it.
875 std::string text;
876
877 Warning_location()
878 : object(NULL), shndx(0), text()
879 { }
880
881 void
882 set(Object* o, unsigned int s)
883 {
884 this->object = o;
885 this->shndx = s;
886 }
887
888 void
889 set_text(const char* t, off_t l)
890 { this->text.assign(t, l); }
891 };
892
893 // A mapping from warning symbol names (canonicalized in
894 // Symbol_table's namepool_ field) to
895 typedef Unordered_map<const char*, Warning_location> Warning_table;
896
897 Warning_table warnings_;
898};
899
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900// The main linker symbol table.
901
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902class Symbol_table
903{
904 public:
905 Symbol_table();
906
1564db8d 907 ~Symbol_table();
bae7f79e 908
dbe717ef 909 // Add COUNT external symbols from the relocatable object RELOBJ to
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910 // the symbol table. SYMS is the symbols, SYM_NAMES is their names,
911 // SYM_NAME_SIZE is the size of SYM_NAMES. This sets SYMPOINTERS to
912 // point to the symbols in the symbol table.
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913 template<int size, bool big_endian>
914 void
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915 add_from_relobj(Sized_relobj<size, big_endian>* relobj,
916 const unsigned char* syms, size_t count,
917 const char* sym_names, size_t sym_name_size,
730cdc88 918 typename Sized_relobj<size, big_endian>::Symbols*);
14bfc3f5 919
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ILT
920 // Add COUNT dynamic symbols from the dynamic object DYNOBJ to the
921 // symbol table. SYMS is the symbols. SYM_NAMES is their names.
922 // SYM_NAME_SIZE is the size of SYM_NAMES. The other parameters are
923 // symbol version data.
924 template<int size, bool big_endian>
925 void
926 add_from_dynobj(Sized_dynobj<size, big_endian>* dynobj,
927 const unsigned char* syms, size_t count,
928 const char* sym_names, size_t sym_name_size,
929 const unsigned char* versym, size_t versym_size,
930 const std::vector<const char*>*);
931
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932 // Define a special symbol based on an Output_data. It is a
933 // multiple definition error if this symbol is already defined.
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ILT
934 Symbol*
935 define_in_output_data(const Target*, const char* name, const char* version,
936 Output_data*, uint64_t value, uint64_t symsize,
ead1e424
ILT
937 elfcpp::STT type, elfcpp::STB binding,
938 elfcpp::STV visibility, unsigned char nonvis,
939 bool offset_is_from_end, bool only_if_ref);
940
941 // Define a special symbol based on an Output_segment. It is a
942 // multiple definition error if this symbol is already defined.
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ILT
943 Symbol*
944 define_in_output_segment(const Target*, const char* name,
945 const char* version, Output_segment*,
ead1e424
ILT
946 uint64_t value, uint64_t symsize,
947 elfcpp::STT type, elfcpp::STB binding,
948 elfcpp::STV visibility, unsigned char nonvis,
949 Symbol::Segment_offset_base, bool only_if_ref);
950
951 // Define a special symbol with a constant value. It is a multiple
952 // definition error if this symbol is already defined.
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ILT
953 Symbol*
954 define_as_constant(const Target*, const char* name, const char* version,
955 uint64_t value, uint64_t symsize, elfcpp::STT type,
956 elfcpp::STB binding, elfcpp::STV visibility,
957 unsigned char nonvis, bool only_if_ref);
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ILT
958
959 // Define a set of symbols in output sections.
960 void
14b31740 961 define_symbols(const Layout*, const Target*, int count,
ead1e424
ILT
962 const Define_symbol_in_section*);
963
964 // Define a set of symbols in output segments.
965 void
14b31740 966 define_symbols(const Layout*, const Target*, int count,
ead1e424
ILT
967 const Define_symbol_in_segment*);
968
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969 // Define SYM using a COPY reloc. POSD is the Output_data where the
970 // symbol should be defined--typically a .dyn.bss section. VALUE is
971 // the offset within POSD.
972 template<int size>
973 void
974 define_with_copy_reloc(const Target*, Sized_symbol<size>* sym,
975 Output_data* posd, uint64_t value);
976
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977 // Look up a symbol.
978 Symbol*
979 lookup(const char*, const char* version = NULL) const;
980
14bfc3f5 981 // Return the real symbol associated with the forwarder symbol FROM.
bae7f79e 982 Symbol*
c06b7b0b 983 resolve_forwards(const Symbol* from) const;
bae7f79e 984
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ILT
985 // Return the sized version of a symbol in this table.
986 template<int size>
987 Sized_symbol<size>*
5482377d 988 get_sized_symbol(Symbol* ACCEPT_SIZE) const;
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ILT
989
990 template<int size>
991 const Sized_symbol<size>*
5482377d 992 get_sized_symbol(const Symbol* ACCEPT_SIZE) const;
54dc6425 993
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994 // Return the count of undefined symbols seen.
995 int
996 saw_undefined() const
997 { return this->saw_undefined_; }
998
999 // Allocate the common symbols
1000 void
1001 allocate_commons(const General_options&, Layout*);
1002
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1003 // Add a warning for symbol NAME in section SHNDX in object OBJ.
1004 void
1005 add_warning(const char* name, Object* obj, unsigned int shndx)
1006 { this->warnings_.add_warning(this, name, obj, shndx); }
1007
1008 // Canonicalize a symbol name for use in the hash table.
1009 const char*
1010 canonicalize_name(const char* name)
cfd73a4e 1011 { return this->namepool_.add(name, true, NULL); }
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ILT
1012
1013 // Possibly issue a warning for a reference to SYM at LOCATION which
1014 // is in OBJ.
75f2446e 1015 template<int size, bool big_endian>
f6ce93d6 1016 void
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ILT
1017 issue_warning(const Symbol* sym,
1018 const Relocate_info<size, big_endian>* relinfo,
1019 size_t relnum, off_t reloffset) const
1020 { this->warnings_.issue_warning(sym, relinfo, relnum, reloffset); }
f6ce93d6 1021
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ILT
1022 // SYM is defined using a COPY reloc. Return the dynamic object
1023 // where the original definition was found.
1024 Dynobj*
1025 get_copy_source(const Symbol* sym) const;
1026
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ILT
1027 // Set the dynamic symbol indexes. INDEX is the index of the first
1028 // global dynamic symbol. Pointers to the symbols are stored into
1029 // the vector. The names are stored into the Stringpool. This
1030 // returns an updated dynamic symbol index.
1031 unsigned int
35cdfc9a 1032 set_dynsym_indexes(const Target*, unsigned int index,
14b31740 1033 std::vector<Symbol*>*, Stringpool*, Versions*);
a3ad94ed 1034
75f65a3e 1035 // Finalize the symbol table after we have set the final addresses
c06b7b0b
ILT
1036 // of all the input sections. This sets the final symbol indexes,
1037 // values and adds the names to *POOL. INDEX is the index of the
16649710
ILT
1038 // first global symbol. OFF is the file offset of the global symbol
1039 // table, DYNOFF is the offset of the globals in the dynamic symbol
1040 // table, DYN_GLOBAL_INDEX is the index of the first global dynamic
1041 // symbol, and DYNCOUNT is the number of global dynamic symbols.
1042 // This records the parameters, and returns the new file offset.
75f65a3e 1043 off_t
16649710
ILT
1044 finalize(unsigned int index, off_t off, off_t dynoff,
1045 size_t dyn_global_index, size_t dyncount, Stringpool* pool);
1564db8d 1046
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ILT
1047 // Write out the global symbols.
1048 void
16649710
ILT
1049 write_globals(const Target*, const Stringpool*, const Stringpool*,
1050 Output_file*) const;
61ba1cf9 1051
a3ad94ed
ILT
1052 // Write out a section symbol. Return the updated offset.
1053 void
9025d29d 1054 write_section_symbol(const Output_section*, Output_file*, off_t) const;
a3ad94ed 1055
bae7f79e
ILT
1056 private:
1057 Symbol_table(const Symbol_table&);
1058 Symbol_table& operator=(const Symbol_table&);
1059
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ILT
1060 // Make FROM a forwarder symbol to TO.
1061 void
1062 make_forwarder(Symbol* from, Symbol* to);
1063
1064 // Add a symbol.
1065 template<int size, bool big_endian>
aeddab66 1066 Sized_symbol<size>*
f0641a0b
ILT
1067 add_from_object(Object*, const char *name, Stringpool::Key name_key,
1068 const char *version, Stringpool::Key version_key,
1069 bool def, const elfcpp::Sym<size, big_endian>& sym);
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ILT
1070
1071 // Resolve symbols.
1072 template<int size, bool big_endian>
aeddab66 1073 void
1564db8d
ILT
1074 resolve(Sized_symbol<size>* to,
1075 const elfcpp::Sym<size, big_endian>& sym,
14b31740 1076 Object*, const char* version);
14bfc3f5 1077
1564db8d 1078 template<int size, bool big_endian>
aeddab66 1079 void
14b31740
ILT
1080 resolve(Sized_symbol<size>* to, const Sized_symbol<size>* from,
1081 const char* version ACCEPT_SIZE_ENDIAN);
1082
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ILT
1083 // Whether we should override a symbol, based on flags in
1084 // resolve.cc.
1085 static bool
d20222a1 1086 should_override(const Symbol*, unsigned int, Object*, bool*);
86f2e683 1087
aeddab66
ILT
1088 // Override a symbol.
1089 template<int size, bool big_endian>
1090 void
1091 override(Sized_symbol<size>* tosym,
1092 const elfcpp::Sym<size, big_endian>& fromsym,
1093 Object* object, const char* version);
1094
86f2e683
ILT
1095 // Whether we should override a symbol with a special symbol which
1096 // is automatically defined by the linker.
1097 static bool
1098 should_override_with_special(const Symbol*);
1099
aeddab66
ILT
1100 // Override a symbol with a special symbol.
1101 template<int size>
1102 void
1103 override_with_special(Sized_symbol<size>* tosym,
1104 const Sized_symbol<size>* fromsym);
1105
1106 // Record all weak alias sets for a dynamic object.
1107 template<int size>
1108 void
1109 record_weak_aliases(std::vector<Sized_symbol<size>*>*);
1110
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ILT
1111 // Define a special symbol.
1112 template<int size, bool big_endian>
1113 Sized_symbol<size>*
306d9ef0
ILT
1114 define_special_symbol(const Target* target, const char** pname,
1115 const char** pversion, bool only_if_ref,
86f2e683 1116 Sized_symbol<size>** poldsym ACCEPT_SIZE_ENDIAN);
14bfc3f5 1117
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ILT
1118 // Define a symbol in an Output_data, sized version.
1119 template<int size>
14b31740
ILT
1120 Sized_symbol<size>*
1121 do_define_in_output_data(const Target*, const char* name,
1122 const char* version, Output_data*,
ead1e424
ILT
1123 typename elfcpp::Elf_types<size>::Elf_Addr value,
1124 typename elfcpp::Elf_types<size>::Elf_WXword ssize,
1125 elfcpp::STT type, elfcpp::STB binding,
1126 elfcpp::STV visibility, unsigned char nonvis,
1127 bool offset_is_from_end, bool only_if_ref);
1128
1129 // Define a symbol in an Output_segment, sized version.
1130 template<int size>
14b31740 1131 Sized_symbol<size>*
ead1e424 1132 do_define_in_output_segment(
14b31740 1133 const Target*, const char* name, const char* version, Output_segment* os,
ead1e424
ILT
1134 typename elfcpp::Elf_types<size>::Elf_Addr value,
1135 typename elfcpp::Elf_types<size>::Elf_WXword ssize,
1136 elfcpp::STT type, elfcpp::STB binding,
1137 elfcpp::STV visibility, unsigned char nonvis,
1138 Symbol::Segment_offset_base offset_base, bool only_if_ref);
1139
1140 // Define a symbol as a constant, sized version.
1141 template<int size>
14b31740 1142 Sized_symbol<size>*
ead1e424 1143 do_define_as_constant(
14b31740 1144 const Target*, const char* name, const char* version,
ead1e424
ILT
1145 typename elfcpp::Elf_types<size>::Elf_Addr value,
1146 typename elfcpp::Elf_types<size>::Elf_WXword ssize,
1147 elfcpp::STT type, elfcpp::STB binding,
1148 elfcpp::STV visibility, unsigned char nonvis,
1149 bool only_if_ref);
1150
1151 // Allocate the common symbols, sized version.
1152 template<int size>
1153 void
1154 do_allocate_commons(const General_options&, Layout*);
1155
75f65a3e
ILT
1156 // Finalize symbols specialized for size.
1157 template<int size>
1158 off_t
c06b7b0b 1159 sized_finalize(unsigned int, off_t, Stringpool*);
75f65a3e 1160
61ba1cf9
ILT
1161 // Write globals specialized for size and endianness.
1162 template<int size, bool big_endian>
1163 void
16649710
ILT
1164 sized_write_globals(const Target*, const Stringpool*, const Stringpool*,
1165 Output_file*) const;
1166
1167 // Write out a symbol to P.
1168 template<int size, bool big_endian>
1169 void
ab5c9e90
ILT
1170 sized_write_symbol(Sized_symbol<size>*,
1171 typename elfcpp::Elf_types<size>::Elf_Addr value,
1172 unsigned int shndx,
6a469986
ILT
1173 const Stringpool*, unsigned char* p
1174 ACCEPT_SIZE_ENDIAN) const;
61ba1cf9 1175
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ILT
1176 // Write out a section symbol, specialized for size and endianness.
1177 template<int size, bool big_endian>
1178 void
1179 sized_write_section_symbol(const Output_section*, Output_file*, off_t) const;
1180
54dc6425
ILT
1181 // The type of the symbol hash table.
1182
f0641a0b 1183 typedef std::pair<Stringpool::Key, Stringpool::Key> Symbol_table_key;
14bfc3f5
ILT
1184
1185 struct Symbol_table_hash
1186 {
1187 size_t
1188 operator()(const Symbol_table_key&) const;
1189 };
1190
1191 struct Symbol_table_eq
1192 {
1193 bool
1194 operator()(const Symbol_table_key&, const Symbol_table_key&) const;
1195 };
1196
1197 typedef Unordered_map<Symbol_table_key, Symbol*, Symbol_table_hash,
1198 Symbol_table_eq> Symbol_table_type;
1199
ead1e424 1200 // The type of the list of common symbols.
ead1e424
ILT
1201 typedef std::vector<Symbol*> Commons_type;
1202
46fe1623
ILT
1203 // A map from symbols with COPY relocs to the dynamic objects where
1204 // they are defined.
1205 typedef Unordered_map<const Symbol*, Dynobj*> Copied_symbol_dynobjs;
1206
ead1e424
ILT
1207 // We increment this every time we see a new undefined symbol, for
1208 // use in archive groups.
1209 int saw_undefined_;
c06b7b0b
ILT
1210 // The index of the first global symbol in the output file.
1211 unsigned int first_global_index_;
75f65a3e
ILT
1212 // The file offset within the output symtab section where we should
1213 // write the table.
1214 off_t offset_;
61ba1cf9
ILT
1215 // The number of global symbols we want to write out.
1216 size_t output_count_;
16649710
ILT
1217 // The file offset of the global dynamic symbols, or 0 if none.
1218 off_t dynamic_offset_;
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ILT
1219 // The index of the first global dynamic symbol.
1220 unsigned int first_dynamic_global_index_;
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ILT
1221 // The number of global dynamic symbols, or 0 if none.
1222 off_t dynamic_count_;
54dc6425 1223 // The symbol hash table.
14bfc3f5 1224 Symbol_table_type table_;
54dc6425
ILT
1225 // A pool of symbol names. This is used for all global symbols.
1226 // Entries in the hash table point into this pool.
14bfc3f5 1227 Stringpool namepool_;
14bfc3f5 1228 // Forwarding symbols.
c06b7b0b 1229 Unordered_map<const Symbol*, Symbol*> forwarders_;
aeddab66
ILT
1230 // Weak aliases. A symbol in this list points to the next alias.
1231 // The aliases point to each other in a circular list.
1232 Unordered_map<Symbol*, Symbol*> weak_aliases_;
ead1e424
ILT
1233 // We don't expect there to be very many common symbols, so we keep
1234 // a list of them. When we find a common symbol we add it to this
1235 // list. It is possible that by the time we process the list the
1236 // symbol is no longer a common symbol. It may also have become a
1237 // forwarder.
1238 Commons_type commons_;
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ILT
1239 // Manage symbol warnings.
1240 Warnings warnings_;
46fe1623
ILT
1241 // When we emit a COPY reloc for a symbol, we define it in an
1242 // Output_data. When it's time to emit version information for it,
1243 // we need to know the dynamic object in which we found the original
1244 // definition. This maps symbols with COPY relocs to the dynamic
1245 // object where they were defined.
1246 Copied_symbol_dynobjs copied_symbol_dynobjs_;
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ILT
1247};
1248
1564db8d
ILT
1249// We inline get_sized_symbol for efficiency.
1250
1251template<int size>
1252Sized_symbol<size>*
5482377d 1253Symbol_table::get_sized_symbol(Symbol* sym ACCEPT_SIZE) const
1564db8d 1254{
9025d29d 1255 gold_assert(size == parameters->get_size());
1564db8d
ILT
1256 return static_cast<Sized_symbol<size>*>(sym);
1257}
1258
1259template<int size>
1260const Sized_symbol<size>*
5482377d 1261Symbol_table::get_sized_symbol(const Symbol* sym ACCEPT_SIZE) const
1564db8d 1262{
9025d29d 1263 gold_assert(size == parameters->get_size());
1564db8d
ILT
1264 return static_cast<const Sized_symbol<size>*>(sym);
1265}
1266
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ILT
1267} // End namespace gold.
1268
1269#endif // !defined(GOLD_SYMTAB_H)
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