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14bfc3f5 ILT |
1 | // resolve.cc -- symbol resolution for gold |
2 | ||
6f2750fe | 3 | // Copyright (C) 2006-2016 Free Software Foundation, Inc. |
6cb15b7f ILT |
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 | ||
14bfc3f5 ILT |
23 | #include "gold.h" |
24 | ||
25 | #include "elfcpp.h" | |
26 | #include "target.h" | |
27 | #include "object.h" | |
28 | #include "symtab.h" | |
89fc3421 | 29 | #include "plugin.h" |
14bfc3f5 ILT |
30 | |
31 | namespace gold | |
32 | { | |
33 | ||
1564db8d ILT |
34 | // Symbol methods used in this file. |
35 | ||
75517b77 ILT |
36 | // This symbol is being overridden by another symbol whose version is |
37 | // VERSION. Update the VERSION_ field accordingly. | |
38 | ||
39 | inline void | |
2ea97941 | 40 | Symbol::override_version(const char* version) |
75517b77 | 41 | { |
2ea97941 | 42 | if (version == NULL) |
75517b77 ILT |
43 | { |
44 | // This is the case where this symbol is NAME/VERSION, and the | |
45 | // version was not marked as hidden. That makes it the default | |
46 | // version, so we create NAME/NULL. Later we see another symbol | |
47 | // NAME/NULL, and that symbol is overriding this one. In this | |
48 | // case, since NAME/VERSION is the default, we make NAME/NULL | |
49 | // override NAME/VERSION as well. They are already the same | |
50 | // Symbol structure. Setting the VERSION_ field to NULL ensures | |
51 | // that it will be output with the correct, empty, version. | |
2ea97941 | 52 | this->version_ = version; |
75517b77 ILT |
53 | } |
54 | else | |
55 | { | |
56 | // This is the case where this symbol is NAME/VERSION_ONE, and | |
57 | // now we see NAME/VERSION_TWO, and NAME/VERSION_TWO is | |
58 | // overriding NAME. If VERSION_ONE and VERSION_TWO are | |
59 | // different, then this can only happen when VERSION_ONE is NULL | |
60 | // and VERSION_TWO is not hidden. | |
2ea97941 ILT |
61 | gold_assert(this->version_ == version || this->version_ == NULL); |
62 | this->version_ = version; | |
75517b77 ILT |
63 | } |
64 | } | |
65 | ||
0602e05a ILT |
66 | // This symbol is being overidden by another symbol whose visibility |
67 | // is VISIBILITY. Updated the VISIBILITY_ field accordingly. | |
68 | ||
69 | inline void | |
2ea97941 | 70 | Symbol::override_visibility(elfcpp::STV visibility) |
0602e05a ILT |
71 | { |
72 | // The rule for combining visibility is that we always choose the | |
73 | // most constrained visibility. In order of increasing constraint, | |
74 | // visibility goes PROTECTED, HIDDEN, INTERNAL. This is the reverse | |
75 | // of the numeric values, so the effect is that we always want the | |
76 | // smallest non-zero value. | |
2ea97941 | 77 | if (visibility != elfcpp::STV_DEFAULT) |
0602e05a ILT |
78 | { |
79 | if (this->visibility_ == elfcpp::STV_DEFAULT) | |
2ea97941 ILT |
80 | this->visibility_ = visibility; |
81 | else if (this->visibility_ > visibility) | |
82 | this->visibility_ = visibility; | |
0602e05a ILT |
83 | } |
84 | } | |
85 | ||
1564db8d ILT |
86 | // Override the fields in Symbol. |
87 | ||
88 | template<int size, bool big_endian> | |
89 | void | |
90 | Symbol::override_base(const elfcpp::Sym<size, big_endian>& sym, | |
d491d34e | 91 | unsigned int st_shndx, bool is_ordinary, |
2ea97941 | 92 | Object* object, const char* version) |
1564db8d | 93 | { |
a3ad94ed | 94 | gold_assert(this->source_ == FROM_OBJECT); |
2ea97941 ILT |
95 | this->u_.from_object.object = object; |
96 | this->override_version(version); | |
d491d34e ILT |
97 | this->u_.from_object.shndx = st_shndx; |
98 | this->is_ordinary_shndx_ = is_ordinary; | |
32364e50 CC |
99 | // Don't override st_type from plugin placeholder symbols. |
100 | if (object->pluginobj() == NULL) | |
3d4fde69 | 101 | this->type_ = sym.get_st_type(); |
1564db8d | 102 | this->binding_ = sym.get_st_bind(); |
0602e05a | 103 | this->override_visibility(sym.get_st_visibility()); |
ead1e424 | 104 | this->nonvis_ = sym.get_st_nonvis(); |
2ea97941 | 105 | if (object->is_dynamic()) |
0d4f1889 ILT |
106 | this->in_dyn_ = true; |
107 | else | |
108 | this->in_reg_ = true; | |
1564db8d ILT |
109 | } |
110 | ||
111 | // Override the fields in Sized_symbol. | |
112 | ||
113 | template<int size> | |
114 | template<bool big_endian> | |
115 | void | |
116 | Sized_symbol<size>::override(const elfcpp::Sym<size, big_endian>& sym, | |
d491d34e | 117 | unsigned st_shndx, bool is_ordinary, |
2ea97941 | 118 | Object* object, const char* version) |
1564db8d | 119 | { |
2ea97941 | 120 | this->override_base(sym, st_shndx, is_ordinary, object, version); |
1564db8d | 121 | this->value_ = sym.get_st_value(); |
ead1e424 | 122 | this->symsize_ = sym.get_st_size(); |
1564db8d ILT |
123 | } |
124 | ||
aeddab66 ILT |
125 | // Override TOSYM with symbol FROMSYM, defined in OBJECT, with version |
126 | // VERSION. This handles all aliases of TOSYM. | |
127 | ||
128 | template<int size, bool big_endian> | |
129 | void | |
130 | Symbol_table::override(Sized_symbol<size>* tosym, | |
131 | const elfcpp::Sym<size, big_endian>& fromsym, | |
d491d34e | 132 | unsigned int st_shndx, bool is_ordinary, |
2ea97941 | 133 | Object* object, const char* version) |
aeddab66 | 134 | { |
2ea97941 | 135 | tosym->override(fromsym, st_shndx, is_ordinary, object, version); |
aeddab66 ILT |
136 | if (tosym->has_alias()) |
137 | { | |
138 | Symbol* sym = this->weak_aliases_[tosym]; | |
139 | gold_assert(sym != NULL); | |
7d1a9ebb | 140 | Sized_symbol<size>* ssym = this->get_sized_symbol<size>(sym); |
aeddab66 ILT |
141 | do |
142 | { | |
2ea97941 | 143 | ssym->override(fromsym, st_shndx, is_ordinary, object, version); |
aeddab66 ILT |
144 | sym = this->weak_aliases_[ssym]; |
145 | gold_assert(sym != NULL); | |
7d1a9ebb | 146 | ssym = this->get_sized_symbol<size>(sym); |
aeddab66 ILT |
147 | } |
148 | while (ssym != tosym); | |
149 | } | |
150 | } | |
151 | ||
86f2e683 ILT |
152 | // The resolve functions build a little code for each symbol. |
153 | // Bit 0: 0 for global, 1 for weak. | |
154 | // Bit 1: 0 for regular object, 1 for shared object | |
155 | // Bits 2-3: 0 for normal, 1 for undefined, 2 for common | |
156 | // This gives us values from 0 to 11. | |
157 | ||
158 | static const int global_or_weak_shift = 0; | |
159 | static const unsigned int global_flag = 0 << global_or_weak_shift; | |
160 | static const unsigned int weak_flag = 1 << global_or_weak_shift; | |
161 | ||
162 | static const int regular_or_dynamic_shift = 1; | |
163 | static const unsigned int regular_flag = 0 << regular_or_dynamic_shift; | |
164 | static const unsigned int dynamic_flag = 1 << regular_or_dynamic_shift; | |
165 | ||
166 | static const int def_undef_or_common_shift = 2; | |
167 | static const unsigned int def_flag = 0 << def_undef_or_common_shift; | |
168 | static const unsigned int undef_flag = 1 << def_undef_or_common_shift; | |
169 | static const unsigned int common_flag = 2 << def_undef_or_common_shift; | |
170 | ||
70e654ba ILT |
171 | // This convenience function combines all the flags based on facts |
172 | // about the symbol. | |
173 | ||
174 | static unsigned int | |
175 | symbol_to_bits(elfcpp::STB binding, bool is_dynamic, | |
b8cf5075 | 176 | unsigned int shndx, bool is_ordinary) |
70e654ba ILT |
177 | { |
178 | unsigned int bits; | |
179 | ||
180 | switch (binding) | |
181 | { | |
182 | case elfcpp::STB_GLOBAL: | |
adcf2816 | 183 | case elfcpp::STB_GNU_UNIQUE: |
70e654ba ILT |
184 | bits = global_flag; |
185 | break; | |
186 | ||
187 | case elfcpp::STB_WEAK: | |
188 | bits = weak_flag; | |
189 | break; | |
190 | ||
191 | case elfcpp::STB_LOCAL: | |
192 | // We should only see externally visible symbols in the symbol | |
193 | // table. | |
194 | gold_error(_("invalid STB_LOCAL symbol in external symbols")); | |
195 | bits = global_flag; | |
d8e90251 | 196 | break; |
70e654ba ILT |
197 | |
198 | default: | |
199 | // Any target which wants to handle STB_LOOS, etc., needs to | |
200 | // define a resolve method. | |
ac897c20 | 201 | gold_error(_("unsupported symbol binding %d"), static_cast<int>(binding)); |
70e654ba ILT |
202 | bits = global_flag; |
203 | } | |
204 | ||
205 | if (is_dynamic) | |
206 | bits |= dynamic_flag; | |
207 | else | |
208 | bits |= regular_flag; | |
209 | ||
210 | switch (shndx) | |
211 | { | |
212 | case elfcpp::SHN_UNDEF: | |
213 | bits |= undef_flag; | |
214 | break; | |
215 | ||
216 | case elfcpp::SHN_COMMON: | |
d491d34e ILT |
217 | if (!is_ordinary) |
218 | bits |= common_flag; | |
70e654ba ILT |
219 | break; |
220 | ||
221 | default: | |
b8cf5075 | 222 | if (!is_ordinary && Symbol::is_common_shndx(shndx)) |
8a5e3e08 | 223 | bits |= common_flag; |
70e654ba ILT |
224 | else |
225 | bits |= def_flag; | |
226 | break; | |
227 | } | |
228 | ||
229 | return bits; | |
230 | } | |
231 | ||
14bfc3f5 | 232 | // Resolve a symbol. This is called the second and subsequent times |
d491d34e ILT |
233 | // we see a symbol. TO is the pre-existing symbol. ST_SHNDX is the |
234 | // section index for SYM, possibly adjusted for many sections. | |
235 | // IS_ORDINARY is whether ST_SHNDX is a normal section index rather | |
236 | // than a special code. ORIG_ST_SHNDX is the original section index, | |
237 | // before any munging because of discarded sections, except that all | |
95d14cd3 | 238 | // non-ordinary section indexes are mapped to SHN_UNDEF. VERSION is |
d491d34e | 239 | // the version of SYM. |
14bfc3f5 ILT |
240 | |
241 | template<int size, bool big_endian> | |
242 | void | |
1564db8d | 243 | Symbol_table::resolve(Sized_symbol<size>* to, |
14bfc3f5 | 244 | const elfcpp::Sym<size, big_endian>& sym, |
d491d34e ILT |
245 | unsigned int st_shndx, bool is_ordinary, |
246 | unsigned int orig_st_shndx, | |
b45e00b3 CC |
247 | Object* object, const char* version, |
248 | bool is_default_version) | |
14bfc3f5 | 249 | { |
534b4e5f ILT |
250 | // It's possible for a symbol to be defined in an object file |
251 | // using .symver to give it a version, and for there to also be | |
252 | // a linker script giving that symbol the same version. We | |
253 | // don't want to give a multiple-definition error for this | |
254 | // harmless redefinition. | |
255 | bool to_is_ordinary; | |
256 | if (to->source() == Symbol::FROM_OBJECT | |
257 | && to->object() == object | |
258 | && is_ordinary | |
259 | && to->is_defined() | |
260 | && to->shndx(&to_is_ordinary) == st_shndx | |
261 | && to_is_ordinary | |
262 | && to->value() == sym.get_st_value()) | |
263 | return; | |
264 | ||
029ba973 | 265 | if (parameters->target().has_resolve()) |
14bfc3f5 | 266 | { |
274e99f9 | 267 | Sized_target<size, big_endian>* sized_target; |
029ba973 | 268 | sized_target = parameters->sized_target<size, big_endian>(); |
14b31740 | 269 | sized_target->resolve(to, sym, object, version); |
14bfc3f5 ILT |
270 | return; |
271 | } | |
272 | ||
86f2e683 ILT |
273 | if (!object->is_dynamic()) |
274 | { | |
b8cf5075 CC |
275 | if (sym.get_st_type() == elfcpp::STT_COMMON |
276 | && (is_ordinary || !Symbol::is_common_shndx(st_shndx))) | |
277 | { | |
278 | gold_warning(_("STT_COMMON symbol '%s' in %s " | |
279 | "is not in a common section"), | |
280 | to->demangled_name().c_str(), | |
281 | to->object()->name().c_str()); | |
282 | return; | |
283 | } | |
86f2e683 ILT |
284 | // Record that we've seen this symbol in a regular object. |
285 | to->set_in_reg(); | |
286 | } | |
2da73f13 CC |
287 | else if (st_shndx == elfcpp::SHN_UNDEF |
288 | && (to->visibility() == elfcpp::STV_HIDDEN | |
289 | || to->visibility() == elfcpp::STV_INTERNAL)) | |
645afe0c | 290 | { |
c20ceeb2 YW |
291 | // The symbol is hidden, so a reference from a shared object |
292 | // cannot bind to it. We tried issuing a warning in this case, | |
293 | // but that produces false positives when the symbol is | |
294 | // actually resolved in a different shared object (PR 15574). | |
645afe0c CC |
295 | return; |
296 | } | |
86f2e683 ILT |
297 | else |
298 | { | |
299 | // Record that we've seen this symbol in a dynamic object. | |
300 | to->set_in_dyn(); | |
301 | } | |
14bfc3f5 | 302 | |
89fc3421 CC |
303 | // Record if we've seen this symbol in a real ELF object (i.e., the |
304 | // symbol is referenced from outside the world known to the plugin). | |
f7c5b166 | 305 | if (object->pluginobj() == NULL && !object->is_dynamic()) |
89fc3421 CC |
306 | to->set_in_real_elf(); |
307 | ||
308 | // If we're processing replacement files, allow new symbols to override | |
309 | // the placeholders from the plugin objects. | |
6168c2a1 RÁE |
310 | // Treat common symbols specially since it is possible that an ELF |
311 | // file increased the size of the alignment. | |
89fc3421 CC |
312 | if (to->source() == Symbol::FROM_OBJECT) |
313 | { | |
314 | Pluginobj* obj = to->object()->pluginobj(); | |
315 | if (obj != NULL | |
1707f183 | 316 | && parameters->options().plugins()->in_replacement_phase()) |
89fc3421 | 317 | { |
1707f183 CC |
318 | bool adjust_common = false; |
319 | typename Sized_symbol<size>::Size_type tosize = 0; | |
320 | typename Sized_symbol<size>::Value_type tovalue = 0; | |
b8cf5075 CC |
321 | if (to->is_common() |
322 | && !is_ordinary && Symbol::is_common_shndx(st_shndx)) | |
1707f183 CC |
323 | { |
324 | adjust_common = true; | |
db4c9594 CC |
325 | tosize = to->symsize(); |
326 | tovalue = to->value(); | |
1707f183 CC |
327 | } |
328 | this->override(to, sym, st_shndx, is_ordinary, object, version); | |
329 | if (adjust_common) | |
330 | { | |
331 | if (tosize > to->symsize()) | |
332 | to->set_symsize(tosize); | |
333 | if (tovalue > to->value()) | |
334 | to->set_value(tovalue); | |
335 | } | |
336 | return; | |
89fc3421 CC |
337 | } |
338 | } | |
339 | ||
ba4d53bf ILT |
340 | // A new weak undefined reference, merging with an old weak |
341 | // reference, could be a One Definition Rule (ODR) violation -- | |
342 | // especially if the types or sizes of the references differ. We'll | |
343 | // store such pairs and look them up later to make sure they | |
344 | // actually refer to the same lines of code. We also check | |
345 | // combinations of weak and strong, which might occur if one case is | |
346 | // inline and the other is not. (Note: not all ODR violations can | |
347 | // be found this way, and not everything this finds is an ODR | |
348 | // violation. But it's helpful to warn about.) | |
ba4d53bf ILT |
349 | if (parameters->options().detect_odr_violations() |
350 | && (sym.get_st_bind() == elfcpp::STB_WEAK | |
351 | || to->binding() == elfcpp::STB_WEAK) | |
352 | && orig_st_shndx != elfcpp::SHN_UNDEF | |
353 | && to->shndx(&to_is_ordinary) != elfcpp::SHN_UNDEF | |
354 | && to_is_ordinary | |
355 | && sym.get_st_size() != 0 // Ignore weird 0-sized symbols. | |
356 | && to->symsize() != 0 | |
357 | && (sym.get_st_type() != to->type() | |
358 | || sym.get_st_size() != to->symsize()) | |
359 | // C does not have a concept of ODR, so we only need to do this | |
360 | // on C++ symbols. These have (mangled) names starting with _Z. | |
361 | && to->name()[0] == '_' && to->name()[1] == 'Z') | |
362 | { | |
363 | Symbol_location fromloc | |
76677ad0 | 364 | = { object, orig_st_shndx, static_cast<off_t>(sym.get_st_value()) }; |
ba4d53bf | 365 | Symbol_location toloc = { to->object(), to->shndx(&to_is_ordinary), |
76677ad0 | 366 | static_cast<off_t>(to->value()) }; |
ba4d53bf ILT |
367 | this->candidate_odr_violations_[to->name()].insert(fromloc); |
368 | this->candidate_odr_violations_[to->name()].insert(toloc); | |
369 | } | |
370 | ||
32364e50 CC |
371 | // Plugins don't provide a symbol type, so adopt the existing type |
372 | // if the FROM symbol is from a plugin. | |
373 | elfcpp::STT fromtype = (object->pluginobj() != NULL | |
374 | ? to->type() | |
375 | : sym.get_st_type()); | |
70e654ba ILT |
376 | unsigned int frombits = symbol_to_bits(sym.get_st_bind(), |
377 | object->is_dynamic(), | |
b8cf5075 | 378 | st_shndx, is_ordinary); |
14bfc3f5 | 379 | |
86f2e683 | 380 | bool adjust_common_sizes; |
ce279a62 | 381 | bool adjust_dyndef; |
1ae4d23b | 382 | typename Sized_symbol<size>::Size_type tosize = to->symsize(); |
32364e50 | 383 | if (Symbol_table::should_override(to, frombits, fromtype, OBJECT, |
62855347 | 384 | object, &adjust_common_sizes, |
b45e00b3 | 385 | &adjust_dyndef, is_default_version)) |
86f2e683 | 386 | { |
ce279a62 | 387 | elfcpp::STB tobinding = to->binding(); |
fd325007 | 388 | typename Sized_symbol<size>::Value_type tovalue = to->value(); |
d491d34e | 389 | this->override(to, sym, st_shndx, is_ordinary, object, version); |
fd325007 ILT |
390 | if (adjust_common_sizes) |
391 | { | |
392 | if (tosize > to->symsize()) | |
393 | to->set_symsize(tosize); | |
394 | if (tovalue > to->value()) | |
395 | to->set_value(tovalue); | |
396 | } | |
ce279a62 CC |
397 | if (adjust_dyndef) |
398 | { | |
399 | // We are overriding an UNDEF or WEAK UNDEF with a DYN DEF. | |
400 | // Remember which kind of UNDEF it was for future reference. | |
401 | to->set_undef_binding(tobinding); | |
402 | } | |
86f2e683 ILT |
403 | } |
404 | else | |
405 | { | |
fd325007 ILT |
406 | if (adjust_common_sizes) |
407 | { | |
408 | if (sym.get_st_size() > tosize) | |
409 | to->set_symsize(sym.get_st_size()); | |
410 | if (sym.get_st_value() > to->value()) | |
411 | to->set_value(sym.get_st_value()); | |
412 | } | |
ce279a62 CC |
413 | if (adjust_dyndef) |
414 | { | |
415 | // We are keeping a DYN DEF after seeing an UNDEF or WEAK UNDEF. | |
416 | // Remember which kind of UNDEF it was. | |
417 | to->set_undef_binding(sym.get_st_bind()); | |
418 | } | |
0602e05a ILT |
419 | // The ELF ABI says that even for a reference to a symbol we |
420 | // merge the visibility. | |
421 | to->override_visibility(sym.get_st_visibility()); | |
86f2e683 | 422 | } |
70e654ba | 423 | |
1ae4d23b ILT |
424 | if (adjust_common_sizes && parameters->options().warn_common()) |
425 | { | |
426 | if (tosize > sym.get_st_size()) | |
427 | Symbol_table::report_resolve_problem(false, | |
428 | _("common of '%s' overriding " | |
429 | "smaller common"), | |
99fff23b | 430 | to, OBJECT, object); |
1ae4d23b ILT |
431 | else if (tosize < sym.get_st_size()) |
432 | Symbol_table::report_resolve_problem(false, | |
433 | _("common of '%s' overidden by " | |
434 | "larger common"), | |
99fff23b | 435 | to, OBJECT, object); |
1ae4d23b ILT |
436 | else |
437 | Symbol_table::report_resolve_problem(false, | |
438 | _("multiple common of '%s'"), | |
99fff23b | 439 | to, OBJECT, object); |
1ae4d23b | 440 | } |
86f2e683 ILT |
441 | } |
442 | ||
443 | // Handle the core of symbol resolution. This is called with the | |
444 | // existing symbol, TO, and a bitflag describing the new symbol. This | |
445 | // returns true if we should override the existing symbol with the new | |
446 | // one, and returns false otherwise. It sets *ADJUST_COMMON_SIZES to | |
447 | // true if we should set the symbol size to the maximum of the TO and | |
448 | // FROM sizes. It handles error conditions. | |
449 | ||
450 | bool | |
451 | Symbol_table::should_override(const Symbol* to, unsigned int frombits, | |
62855347 ILT |
452 | elfcpp::STT fromtype, Defined defined, |
453 | Object* object, bool* adjust_common_sizes, | |
b45e00b3 | 454 | bool* adjust_dyndef, bool is_default_version) |
86f2e683 ILT |
455 | { |
456 | *adjust_common_sizes = false; | |
ce279a62 | 457 | *adjust_dyndef = false; |
86f2e683 | 458 | |
e5756efb | 459 | unsigned int tobits; |
f3e9c5c5 | 460 | if (to->source() == Symbol::IS_UNDEFINED) |
b8cf5075 | 461 | tobits = symbol_to_bits(to->binding(), false, elfcpp::SHN_UNDEF, true); |
f3e9c5c5 | 462 | else if (to->source() != Symbol::FROM_OBJECT) |
b8cf5075 | 463 | tobits = symbol_to_bits(to->binding(), false, elfcpp::SHN_ABS, false); |
e5756efb | 464 | else |
d491d34e ILT |
465 | { |
466 | bool is_ordinary; | |
467 | unsigned int shndx = to->shndx(&is_ordinary); | |
468 | tobits = symbol_to_bits(to->binding(), | |
469 | to->object()->is_dynamic(), | |
470 | shndx, | |
b8cf5075 | 471 | is_ordinary); |
d491d34e | 472 | } |
14bfc3f5 | 473 | |
32364e50 CC |
474 | if ((to->type() == elfcpp::STT_TLS) ^ (fromtype == elfcpp::STT_TLS) |
475 | && !to->is_placeholder()) | |
62855347 ILT |
476 | Symbol_table::report_resolve_problem(true, |
477 | _("symbol '%s' used as both __thread " | |
478 | "and non-__thread"), | |
479 | to, defined, object); | |
1564db8d | 480 | |
14bfc3f5 ILT |
481 | // We use a giant switch table for symbol resolution. This code is |
482 | // unwieldy, but: 1) it is efficient; 2) we definitely handle all | |
483 | // cases; 3) it is easy to change the handling of a particular case. | |
484 | // The alternative would be a series of conditionals, but it is easy | |
485 | // to get the ordering wrong. This could also be done as a table, | |
486 | // but that is no easier to understand than this large switch | |
487 | // statement. | |
488 | ||
86f2e683 ILT |
489 | // These are the values generated by the bit codes. |
490 | enum | |
491 | { | |
492 | DEF = global_flag | regular_flag | def_flag, | |
493 | WEAK_DEF = weak_flag | regular_flag | def_flag, | |
494 | DYN_DEF = global_flag | dynamic_flag | def_flag, | |
495 | DYN_WEAK_DEF = weak_flag | dynamic_flag | def_flag, | |
496 | UNDEF = global_flag | regular_flag | undef_flag, | |
497 | WEAK_UNDEF = weak_flag | regular_flag | undef_flag, | |
498 | DYN_UNDEF = global_flag | dynamic_flag | undef_flag, | |
499 | DYN_WEAK_UNDEF = weak_flag | dynamic_flag | undef_flag, | |
500 | COMMON = global_flag | regular_flag | common_flag, | |
501 | WEAK_COMMON = weak_flag | regular_flag | common_flag, | |
502 | DYN_COMMON = global_flag | dynamic_flag | common_flag, | |
503 | DYN_WEAK_COMMON = weak_flag | dynamic_flag | common_flag | |
504 | }; | |
505 | ||
14bfc3f5 ILT |
506 | switch (tobits * 16 + frombits) |
507 | { | |
508 | case DEF * 16 + DEF: | |
12e14209 | 509 | // Two definitions of the same symbol. |
878405a8 ILT |
510 | |
511 | // If either symbol is defined by an object included using | |
512 | // --just-symbols, then don't warn. This is for compatibility | |
513 | // with the GNU linker. FIXME: This is a hack. | |
514 | if ((to->source() == Symbol::FROM_OBJECT && to->object()->just_symbols()) | |
99fff23b | 515 | || (object != NULL && object->just_symbols())) |
878405a8 ILT |
516 | return false; |
517 | ||
9c4ae156 | 518 | if (!parameters->options().muldefs()) |
30bc8c46 ILT |
519 | Symbol_table::report_resolve_problem(true, |
520 | _("multiple definition of '%s'"), | |
521 | to, defined, object); | |
86f2e683 | 522 | return false; |
14bfc3f5 ILT |
523 | |
524 | case WEAK_DEF * 16 + DEF: | |
1564db8d ILT |
525 | // We've seen a weak definition, and now we see a strong |
526 | // definition. In the original SVR4 linker, this was treated as | |
527 | // a multiple definition error. In the Solaris linker and the | |
528 | // GNU linker, a weak definition followed by a regular | |
529 | // definition causes the weak definition to be overridden. We | |
530 | // are currently compatible with the GNU linker. In the future | |
531 | // we should add a target specific option to change this. | |
532 | // FIXME. | |
86f2e683 | 533 | return true; |
14bfc3f5 ILT |
534 | |
535 | case DYN_DEF * 16 + DEF: | |
536 | case DYN_WEAK_DEF * 16 + DEF: | |
1564db8d ILT |
537 | // We've seen a definition in a dynamic object, and now we see a |
538 | // definition in a regular object. The definition in the | |
539 | // regular object overrides the definition in the dynamic | |
540 | // object. | |
86f2e683 | 541 | return true; |
1564db8d | 542 | |
14bfc3f5 ILT |
543 | case UNDEF * 16 + DEF: |
544 | case WEAK_UNDEF * 16 + DEF: | |
545 | case DYN_UNDEF * 16 + DEF: | |
546 | case DYN_WEAK_UNDEF * 16 + DEF: | |
1564db8d ILT |
547 | // We've seen an undefined reference, and now we see a |
548 | // definition. We use the definition. | |
86f2e683 | 549 | return true; |
1564db8d | 550 | |
14bfc3f5 ILT |
551 | case COMMON * 16 + DEF: |
552 | case WEAK_COMMON * 16 + DEF: | |
553 | case DYN_COMMON * 16 + DEF: | |
554 | case DYN_WEAK_COMMON * 16 + DEF: | |
1564db8d | 555 | // We've seen a common symbol and now we see a definition. The |
1ae4d23b ILT |
556 | // definition overrides. |
557 | if (parameters->options().warn_common()) | |
558 | Symbol_table::report_resolve_problem(false, | |
559 | _("definition of '%s' overriding " | |
560 | "common"), | |
99fff23b | 561 | to, defined, object); |
86f2e683 | 562 | return true; |
14bfc3f5 ILT |
563 | |
564 | case DEF * 16 + WEAK_DEF: | |
565 | case WEAK_DEF * 16 + WEAK_DEF: | |
1564db8d ILT |
566 | // We've seen a definition and now we see a weak definition. We |
567 | // ignore the new weak definition. | |
86f2e683 | 568 | return false; |
1564db8d | 569 | |
14bfc3f5 ILT |
570 | case DYN_DEF * 16 + WEAK_DEF: |
571 | case DYN_WEAK_DEF * 16 + WEAK_DEF: | |
1564db8d ILT |
572 | // We've seen a dynamic definition and now we see a regular weak |
573 | // definition. The regular weak definition overrides. | |
86f2e683 | 574 | return true; |
1564db8d | 575 | |
14bfc3f5 ILT |
576 | case UNDEF * 16 + WEAK_DEF: |
577 | case WEAK_UNDEF * 16 + WEAK_DEF: | |
578 | case DYN_UNDEF * 16 + WEAK_DEF: | |
579 | case DYN_WEAK_UNDEF * 16 + WEAK_DEF: | |
1564db8d | 580 | // A weak definition of a currently undefined symbol. |
86f2e683 | 581 | return true; |
1564db8d | 582 | |
14bfc3f5 ILT |
583 | case COMMON * 16 + WEAK_DEF: |
584 | case WEAK_COMMON * 16 + WEAK_DEF: | |
1564db8d | 585 | // A weak definition does not override a common definition. |
86f2e683 | 586 | return false; |
1564db8d | 587 | |
14bfc3f5 ILT |
588 | case DYN_COMMON * 16 + WEAK_DEF: |
589 | case DYN_WEAK_COMMON * 16 + WEAK_DEF: | |
1564db8d | 590 | // A weak definition does override a definition in a dynamic |
1ae4d23b ILT |
591 | // object. |
592 | if (parameters->options().warn_common()) | |
593 | Symbol_table::report_resolve_problem(false, | |
594 | _("definition of '%s' overriding " | |
595 | "dynamic common definition"), | |
99fff23b | 596 | to, defined, object); |
86f2e683 | 597 | return true; |
14bfc3f5 ILT |
598 | |
599 | case DEF * 16 + DYN_DEF: | |
600 | case WEAK_DEF * 16 + DYN_DEF: | |
b45e00b3 CC |
601 | // Ignore a dynamic definition if we already have a definition. |
602 | return false; | |
603 | ||
14bfc3f5 ILT |
604 | case DYN_DEF * 16 + DYN_DEF: |
605 | case DYN_WEAK_DEF * 16 + DYN_DEF: | |
b45e00b3 CC |
606 | // Ignore a dynamic definition if we already have a definition, |
607 | // unless the existing definition is an unversioned definition | |
608 | // in the same dynamic object, and the new definition is a | |
609 | // default version. | |
610 | if (to->object() == object | |
611 | && to->version() == NULL | |
612 | && is_default_version) | |
613 | return true; | |
86f2e683 | 614 | return false; |
1564db8d | 615 | |
14bfc3f5 | 616 | case UNDEF * 16 + DYN_DEF: |
14bfc3f5 ILT |
617 | case DYN_UNDEF * 16 + DYN_DEF: |
618 | case DYN_WEAK_UNDEF * 16 + DYN_DEF: | |
1564db8d | 619 | // Use a dynamic definition if we have a reference. |
86f2e683 | 620 | return true; |
1564db8d | 621 | |
ce279a62 CC |
622 | case WEAK_UNDEF * 16 + DYN_DEF: |
623 | // When overriding a weak undef by a dynamic definition, | |
624 | // we need to remember that the original undef was weak. | |
625 | *adjust_dyndef = true; | |
626 | return true; | |
627 | ||
14bfc3f5 ILT |
628 | case COMMON * 16 + DYN_DEF: |
629 | case WEAK_COMMON * 16 + DYN_DEF: | |
630 | case DYN_COMMON * 16 + DYN_DEF: | |
631 | case DYN_WEAK_COMMON * 16 + DYN_DEF: | |
1564db8d ILT |
632 | // Ignore a dynamic definition if we already have a common |
633 | // definition. | |
86f2e683 | 634 | return false; |
14bfc3f5 ILT |
635 | |
636 | case DEF * 16 + DYN_WEAK_DEF: | |
637 | case WEAK_DEF * 16 + DYN_WEAK_DEF: | |
638 | case DYN_DEF * 16 + DYN_WEAK_DEF: | |
639 | case DYN_WEAK_DEF * 16 + DYN_WEAK_DEF: | |
1564db8d ILT |
640 | // Ignore a weak dynamic definition if we already have a |
641 | // definition. | |
86f2e683 | 642 | return false; |
1564db8d | 643 | |
14bfc3f5 | 644 | case UNDEF * 16 + DYN_WEAK_DEF: |
74f67560 DK |
645 | // When overriding an undef by a dynamic weak definition, |
646 | // we need to remember that the original undef was not weak. | |
647 | *adjust_dyndef = true; | |
648 | return true; | |
649 | ||
14bfc3f5 ILT |
650 | case DYN_UNDEF * 16 + DYN_WEAK_DEF: |
651 | case DYN_WEAK_UNDEF * 16 + DYN_WEAK_DEF: | |
1564db8d | 652 | // Use a weak dynamic definition if we have a reference. |
86f2e683 | 653 | return true; |
1564db8d | 654 | |
ce279a62 CC |
655 | case WEAK_UNDEF * 16 + DYN_WEAK_DEF: |
656 | // When overriding a weak undef by a dynamic definition, | |
657 | // we need to remember that the original undef was weak. | |
658 | *adjust_dyndef = true; | |
659 | return true; | |
660 | ||
14bfc3f5 ILT |
661 | case COMMON * 16 + DYN_WEAK_DEF: |
662 | case WEAK_COMMON * 16 + DYN_WEAK_DEF: | |
663 | case DYN_COMMON * 16 + DYN_WEAK_DEF: | |
664 | case DYN_WEAK_COMMON * 16 + DYN_WEAK_DEF: | |
1564db8d ILT |
665 | // Ignore a weak dynamic definition if we already have a common |
666 | // definition. | |
86f2e683 | 667 | return false; |
14bfc3f5 ILT |
668 | |
669 | case DEF * 16 + UNDEF: | |
670 | case WEAK_DEF * 16 + UNDEF: | |
14bfc3f5 | 671 | case UNDEF * 16 + UNDEF: |
ead1e424 | 672 | // A new undefined reference tells us nothing. |
86f2e683 | 673 | return false; |
ead1e424 | 674 | |
ce279a62 CC |
675 | case DYN_DEF * 16 + UNDEF: |
676 | case DYN_WEAK_DEF * 16 + UNDEF: | |
677 | // For a dynamic def, we need to remember which kind of undef we see. | |
678 | *adjust_dyndef = true; | |
679 | return false; | |
680 | ||
14bfc3f5 ILT |
681 | case WEAK_UNDEF * 16 + UNDEF: |
682 | case DYN_UNDEF * 16 + UNDEF: | |
683 | case DYN_WEAK_UNDEF * 16 + UNDEF: | |
ead1e424 | 684 | // A strong undef overrides a dynamic or weak undef. |
86f2e683 | 685 | return true; |
ead1e424 | 686 | |
14bfc3f5 ILT |
687 | case COMMON * 16 + UNDEF: |
688 | case WEAK_COMMON * 16 + UNDEF: | |
689 | case DYN_COMMON * 16 + UNDEF: | |
690 | case DYN_WEAK_COMMON * 16 + UNDEF: | |
1564db8d | 691 | // A new undefined reference tells us nothing. |
86f2e683 | 692 | return false; |
14bfc3f5 ILT |
693 | |
694 | case DEF * 16 + WEAK_UNDEF: | |
695 | case WEAK_DEF * 16 + WEAK_UNDEF: | |
14bfc3f5 ILT |
696 | case UNDEF * 16 + WEAK_UNDEF: |
697 | case WEAK_UNDEF * 16 + WEAK_UNDEF: | |
698 | case DYN_UNDEF * 16 + WEAK_UNDEF: | |
14bfc3f5 ILT |
699 | case COMMON * 16 + WEAK_UNDEF: |
700 | case WEAK_COMMON * 16 + WEAK_UNDEF: | |
701 | case DYN_COMMON * 16 + WEAK_UNDEF: | |
702 | case DYN_WEAK_COMMON * 16 + WEAK_UNDEF: | |
a4649286 DK |
703 | // A new weak undefined reference tells us nothing unless the |
704 | // exisiting symbol is a dynamic weak reference. | |
86f2e683 | 705 | return false; |
14bfc3f5 | 706 | |
a4649286 DK |
707 | case DYN_WEAK_UNDEF * 16 + WEAK_UNDEF: |
708 | // A new weak reference overrides an existing dynamic weak reference. | |
709 | // This is necessary because a dynamic weak reference remembers | |
710 | // the old binding, which may not be weak. If we keeps the existing | |
711 | // dynamic weak reference, the weakness may be dropped in the output. | |
712 | return true; | |
713 | ||
ce279a62 CC |
714 | case DYN_DEF * 16 + WEAK_UNDEF: |
715 | case DYN_WEAK_DEF * 16 + WEAK_UNDEF: | |
716 | // For a dynamic def, we need to remember which kind of undef we see. | |
717 | *adjust_dyndef = true; | |
718 | return false; | |
719 | ||
14bfc3f5 ILT |
720 | case DEF * 16 + DYN_UNDEF: |
721 | case WEAK_DEF * 16 + DYN_UNDEF: | |
722 | case DYN_DEF * 16 + DYN_UNDEF: | |
723 | case DYN_WEAK_DEF * 16 + DYN_UNDEF: | |
724 | case UNDEF * 16 + DYN_UNDEF: | |
725 | case WEAK_UNDEF * 16 + DYN_UNDEF: | |
726 | case DYN_UNDEF * 16 + DYN_UNDEF: | |
727 | case DYN_WEAK_UNDEF * 16 + DYN_UNDEF: | |
728 | case COMMON * 16 + DYN_UNDEF: | |
729 | case WEAK_COMMON * 16 + DYN_UNDEF: | |
730 | case DYN_COMMON * 16 + DYN_UNDEF: | |
731 | case DYN_WEAK_COMMON * 16 + DYN_UNDEF: | |
1564db8d | 732 | // A new dynamic undefined reference tells us nothing. |
86f2e683 | 733 | return false; |
14bfc3f5 ILT |
734 | |
735 | case DEF * 16 + DYN_WEAK_UNDEF: | |
736 | case WEAK_DEF * 16 + DYN_WEAK_UNDEF: | |
737 | case DYN_DEF * 16 + DYN_WEAK_UNDEF: | |
738 | case DYN_WEAK_DEF * 16 + DYN_WEAK_UNDEF: | |
739 | case UNDEF * 16 + DYN_WEAK_UNDEF: | |
740 | case WEAK_UNDEF * 16 + DYN_WEAK_UNDEF: | |
741 | case DYN_UNDEF * 16 + DYN_WEAK_UNDEF: | |
742 | case DYN_WEAK_UNDEF * 16 + DYN_WEAK_UNDEF: | |
743 | case COMMON * 16 + DYN_WEAK_UNDEF: | |
744 | case WEAK_COMMON * 16 + DYN_WEAK_UNDEF: | |
745 | case DYN_COMMON * 16 + DYN_WEAK_UNDEF: | |
746 | case DYN_WEAK_COMMON * 16 + DYN_WEAK_UNDEF: | |
1564db8d | 747 | // A new weak dynamic undefined reference tells us nothing. |
86f2e683 | 748 | return false; |
14bfc3f5 ILT |
749 | |
750 | case DEF * 16 + COMMON: | |
1564db8d | 751 | // A common symbol does not override a definition. |
1ae4d23b ILT |
752 | if (parameters->options().warn_common()) |
753 | Symbol_table::report_resolve_problem(false, | |
754 | _("common '%s' overridden by " | |
755 | "previous definition"), | |
99fff23b | 756 | to, defined, object); |
86f2e683 | 757 | return false; |
1564db8d | 758 | |
14bfc3f5 ILT |
759 | case WEAK_DEF * 16 + COMMON: |
760 | case DYN_DEF * 16 + COMMON: | |
761 | case DYN_WEAK_DEF * 16 + COMMON: | |
1564db8d ILT |
762 | // A common symbol does override a weak definition or a dynamic |
763 | // definition. | |
86f2e683 | 764 | return true; |
1564db8d | 765 | |
14bfc3f5 ILT |
766 | case UNDEF * 16 + COMMON: |
767 | case WEAK_UNDEF * 16 + COMMON: | |
768 | case DYN_UNDEF * 16 + COMMON: | |
769 | case DYN_WEAK_UNDEF * 16 + COMMON: | |
1564db8d | 770 | // A common symbol is a definition for a reference. |
86f2e683 | 771 | return true; |
1564db8d | 772 | |
14bfc3f5 | 773 | case COMMON * 16 + COMMON: |
ead1e424 | 774 | // Set the size to the maximum. |
86f2e683 ILT |
775 | *adjust_common_sizes = true; |
776 | return false; | |
ead1e424 | 777 | |
14bfc3f5 | 778 | case WEAK_COMMON * 16 + COMMON: |
ead1e424 ILT |
779 | // I'm not sure just what a weak common symbol means, but |
780 | // presumably it can be overridden by a regular common symbol. | |
86f2e683 | 781 | return true; |
ead1e424 | 782 | |
14bfc3f5 ILT |
783 | case DYN_COMMON * 16 + COMMON: |
784 | case DYN_WEAK_COMMON * 16 + COMMON: | |
86f2e683 ILT |
785 | // Use the real common symbol, but adjust the size if necessary. |
786 | *adjust_common_sizes = true; | |
787 | return true; | |
14bfc3f5 ILT |
788 | |
789 | case DEF * 16 + WEAK_COMMON: | |
790 | case WEAK_DEF * 16 + WEAK_COMMON: | |
791 | case DYN_DEF * 16 + WEAK_COMMON: | |
792 | case DYN_WEAK_DEF * 16 + WEAK_COMMON: | |
ead1e424 ILT |
793 | // Whatever a weak common symbol is, it won't override a |
794 | // definition. | |
86f2e683 | 795 | return false; |
ead1e424 | 796 | |
14bfc3f5 ILT |
797 | case UNDEF * 16 + WEAK_COMMON: |
798 | case WEAK_UNDEF * 16 + WEAK_COMMON: | |
799 | case DYN_UNDEF * 16 + WEAK_COMMON: | |
800 | case DYN_WEAK_UNDEF * 16 + WEAK_COMMON: | |
ead1e424 | 801 | // A weak common symbol is better than an undefined symbol. |
86f2e683 | 802 | return true; |
ead1e424 | 803 | |
14bfc3f5 ILT |
804 | case COMMON * 16 + WEAK_COMMON: |
805 | case WEAK_COMMON * 16 + WEAK_COMMON: | |
806 | case DYN_COMMON * 16 + WEAK_COMMON: | |
807 | case DYN_WEAK_COMMON * 16 + WEAK_COMMON: | |
ead1e424 ILT |
808 | // Ignore a weak common symbol in the presence of a real common |
809 | // symbol. | |
86f2e683 | 810 | return false; |
14bfc3f5 ILT |
811 | |
812 | case DEF * 16 + DYN_COMMON: | |
813 | case WEAK_DEF * 16 + DYN_COMMON: | |
814 | case DYN_DEF * 16 + DYN_COMMON: | |
815 | case DYN_WEAK_DEF * 16 + DYN_COMMON: | |
ead1e424 ILT |
816 | // Ignore a dynamic common symbol in the presence of a |
817 | // definition. | |
86f2e683 | 818 | return false; |
ead1e424 | 819 | |
14bfc3f5 ILT |
820 | case UNDEF * 16 + DYN_COMMON: |
821 | case WEAK_UNDEF * 16 + DYN_COMMON: | |
822 | case DYN_UNDEF * 16 + DYN_COMMON: | |
823 | case DYN_WEAK_UNDEF * 16 + DYN_COMMON: | |
ead1e424 | 824 | // A dynamic common symbol is a definition of sorts. |
86f2e683 | 825 | return true; |
ead1e424 | 826 | |
14bfc3f5 ILT |
827 | case COMMON * 16 + DYN_COMMON: |
828 | case WEAK_COMMON * 16 + DYN_COMMON: | |
829 | case DYN_COMMON * 16 + DYN_COMMON: | |
830 | case DYN_WEAK_COMMON * 16 + DYN_COMMON: | |
ead1e424 | 831 | // Set the size to the maximum. |
86f2e683 ILT |
832 | *adjust_common_sizes = true; |
833 | return false; | |
14bfc3f5 ILT |
834 | |
835 | case DEF * 16 + DYN_WEAK_COMMON: | |
836 | case WEAK_DEF * 16 + DYN_WEAK_COMMON: | |
837 | case DYN_DEF * 16 + DYN_WEAK_COMMON: | |
838 | case DYN_WEAK_DEF * 16 + DYN_WEAK_COMMON: | |
ead1e424 | 839 | // A common symbol is ignored in the face of a definition. |
86f2e683 | 840 | return false; |
ead1e424 | 841 | |
14bfc3f5 ILT |
842 | case UNDEF * 16 + DYN_WEAK_COMMON: |
843 | case WEAK_UNDEF * 16 + DYN_WEAK_COMMON: | |
844 | case DYN_UNDEF * 16 + DYN_WEAK_COMMON: | |
845 | case DYN_WEAK_UNDEF * 16 + DYN_WEAK_COMMON: | |
ead1e424 | 846 | // I guess a weak common symbol is better than a definition. |
86f2e683 | 847 | return true; |
ead1e424 | 848 | |
14bfc3f5 ILT |
849 | case COMMON * 16 + DYN_WEAK_COMMON: |
850 | case WEAK_COMMON * 16 + DYN_WEAK_COMMON: | |
851 | case DYN_COMMON * 16 + DYN_WEAK_COMMON: | |
852 | case DYN_WEAK_COMMON * 16 + DYN_WEAK_COMMON: | |
ead1e424 | 853 | // Set the size to the maximum. |
86f2e683 ILT |
854 | *adjust_common_sizes = true; |
855 | return false; | |
1564db8d ILT |
856 | |
857 | default: | |
a3ad94ed | 858 | gold_unreachable(); |
14bfc3f5 ILT |
859 | } |
860 | } | |
861 | ||
1ae4d23b ILT |
862 | // Issue an error or warning due to symbol resolution. IS_ERROR |
863 | // indicates an error rather than a warning. MSG is the error | |
864 | // message; it is expected to have a %s for the symbol name. TO is | |
99fff23b ILT |
865 | // the existing symbol. DEFINED/OBJECT is where the new symbol was |
866 | // found. | |
1ae4d23b ILT |
867 | |
868 | // FIXME: We should have better location information here. When the | |
869 | // symbol is defined, we should be able to pull the location from the | |
870 | // debug info if there is any. | |
871 | ||
872 | void | |
873 | Symbol_table::report_resolve_problem(bool is_error, const char* msg, | |
99fff23b ILT |
874 | const Symbol* to, Defined defined, |
875 | Object* object) | |
1ae4d23b ILT |
876 | { |
877 | std::string demangled(to->demangled_name()); | |
878 | size_t len = strlen(msg) + demangled.length() + 10; | |
879 | char* buf = new char[len]; | |
880 | snprintf(buf, len, msg, demangled.c_str()); | |
881 | ||
882 | const char* objname; | |
99fff23b ILT |
883 | switch (defined) |
884 | { | |
885 | case OBJECT: | |
886 | objname = object->name().c_str(); | |
887 | break; | |
888 | case COPY: | |
889 | objname = _("COPY reloc"); | |
890 | break; | |
891 | case DEFSYM: | |
892 | case UNDEFINED: | |
893 | objname = _("command line"); | |
894 | break; | |
895 | case SCRIPT: | |
896 | objname = _("linker script"); | |
897 | break; | |
898 | case PREDEFINED: | |
5146f448 | 899 | case INCREMENTAL_BASE: |
99fff23b ILT |
900 | objname = _("linker defined"); |
901 | break; | |
902 | default: | |
903 | gold_unreachable(); | |
904 | } | |
1ae4d23b ILT |
905 | |
906 | if (is_error) | |
907 | gold_error("%s: %s", objname, buf); | |
908 | else | |
909 | gold_warning("%s: %s", objname, buf); | |
910 | ||
911 | delete[] buf; | |
912 | ||
913 | if (to->source() == Symbol::FROM_OBJECT) | |
914 | objname = to->object()->name().c_str(); | |
915 | else | |
916 | objname = _("command line"); | |
917 | gold_info("%s: %s: previous definition here", program_name, objname); | |
918 | } | |
919 | ||
86f2e683 ILT |
920 | // A special case of should_override which is only called for a strong |
921 | // defined symbol from a regular object file. This is used when | |
922 | // defining special symbols. | |
923 | ||
924 | bool | |
62855347 ILT |
925 | Symbol_table::should_override_with_special(const Symbol* to, |
926 | elfcpp::STT fromtype, | |
927 | Defined defined) | |
86f2e683 ILT |
928 | { |
929 | bool adjust_common_sizes; | |
ce279a62 | 930 | bool adjust_dyn_def; |
86f2e683 | 931 | unsigned int frombits = global_flag | regular_flag | def_flag; |
62855347 ILT |
932 | bool ret = Symbol_table::should_override(to, frombits, fromtype, defined, |
933 | NULL, &adjust_common_sizes, | |
b45e00b3 | 934 | &adjust_dyn_def, false); |
ce279a62 | 935 | gold_assert(!adjust_common_sizes && !adjust_dyn_def); |
86f2e683 ILT |
936 | return ret; |
937 | } | |
938 | ||
939 | // Override symbol base with a special symbol. | |
940 | ||
941 | void | |
942 | Symbol::override_base_with_special(const Symbol* from) | |
943 | { | |
21131061 ILT |
944 | bool same_name = this->name_ == from->name_; |
945 | gold_assert(same_name || this->has_alias()); | |
46fe1623 | 946 | |
d1bddd3c CC |
947 | // If we are overriding an undef, remember the original binding. |
948 | if (this->is_undefined()) | |
949 | this->set_undef_binding(this->binding_); | |
950 | ||
86f2e683 ILT |
951 | this->source_ = from->source_; |
952 | switch (from->source_) | |
953 | { | |
954 | case FROM_OBJECT: | |
955 | this->u_.from_object = from->u_.from_object; | |
956 | break; | |
957 | case IN_OUTPUT_DATA: | |
958 | this->u_.in_output_data = from->u_.in_output_data; | |
959 | break; | |
960 | case IN_OUTPUT_SEGMENT: | |
961 | this->u_.in_output_segment = from->u_.in_output_segment; | |
962 | break; | |
f3e9c5c5 ILT |
963 | case IS_CONSTANT: |
964 | case IS_UNDEFINED: | |
86f2e683 ILT |
965 | break; |
966 | default: | |
967 | gold_unreachable(); | |
968 | break; | |
969 | } | |
970 | ||
21131061 | 971 | if (same_name) |
24d47b34 ILT |
972 | { |
973 | // When overriding a versioned symbol with a special symbol, we | |
974 | // may be changing the version. This will happen if we see a | |
975 | // special symbol such as "_end" defined in a shared object with | |
976 | // one version (from a version script), but we want to define it | |
977 | // here with a different version (from a different version | |
978 | // script). | |
979 | this->version_ = from->version_; | |
980 | } | |
86f2e683 ILT |
981 | this->type_ = from->type_; |
982 | this->binding_ = from->binding_; | |
0602e05a | 983 | this->override_visibility(from->visibility_); |
86f2e683 ILT |
984 | this->nonvis_ = from->nonvis_; |
985 | ||
986 | // Special symbols are always considered to be regular symbols. | |
987 | this->in_reg_ = true; | |
46fe1623 ILT |
988 | |
989 | if (from->needs_dynsym_entry_) | |
990 | this->needs_dynsym_entry_ = true; | |
991 | if (from->needs_dynsym_value_) | |
992 | this->needs_dynsym_value_ = true; | |
993 | ||
5146f448 CC |
994 | this->is_predefined_ = from->is_predefined_; |
995 | ||
46fe1623 ILT |
996 | // We shouldn't see these flags. If we do, we need to handle them |
997 | // somehow. | |
46fe1623 | 998 | gold_assert(!from->is_forwarder_); |
880cd20d | 999 | gold_assert(!from->has_plt_offset()); |
46fe1623 ILT |
1000 | gold_assert(!from->has_warning_); |
1001 | gold_assert(!from->is_copied_from_dynobj_); | |
55a93433 | 1002 | gold_assert(!from->is_forced_local_); |
86f2e683 ILT |
1003 | } |
1004 | ||
1005 | // Override a symbol with a special symbol. | |
1006 | ||
1007 | template<int size> | |
1008 | void | |
1009 | Sized_symbol<size>::override_with_special(const Sized_symbol<size>* from) | |
1010 | { | |
1011 | this->override_base_with_special(from); | |
1012 | this->value_ = from->value_; | |
1013 | this->symsize_ = from->symsize_; | |
1014 | } | |
1015 | ||
aeddab66 ILT |
1016 | // Override TOSYM with the special symbol FROMSYM. This handles all |
1017 | // aliases of TOSYM. | |
1018 | ||
1019 | template<int size> | |
1020 | void | |
1021 | Symbol_table::override_with_special(Sized_symbol<size>* tosym, | |
1022 | const Sized_symbol<size>* fromsym) | |
1023 | { | |
1024 | tosym->override_with_special(fromsym); | |
1025 | if (tosym->has_alias()) | |
1026 | { | |
1027 | Symbol* sym = this->weak_aliases_[tosym]; | |
1028 | gold_assert(sym != NULL); | |
7d1a9ebb | 1029 | Sized_symbol<size>* ssym = this->get_sized_symbol<size>(sym); |
aeddab66 ILT |
1030 | do |
1031 | { | |
1032 | ssym->override_with_special(fromsym); | |
1033 | sym = this->weak_aliases_[ssym]; | |
1034 | gold_assert(sym != NULL); | |
7d1a9ebb | 1035 | ssym = this->get_sized_symbol<size>(sym); |
aeddab66 ILT |
1036 | } |
1037 | while (ssym != tosym); | |
1038 | } | |
0602e05a ILT |
1039 | if (tosym->binding() == elfcpp::STB_LOCAL |
1040 | || ((tosym->visibility() == elfcpp::STV_HIDDEN | |
1041 | || tosym->visibility() == elfcpp::STV_INTERNAL) | |
1042 | && (tosym->binding() == elfcpp::STB_GLOBAL | |
adcf2816 | 1043 | || tosym->binding() == elfcpp::STB_GNU_UNIQUE |
0602e05a ILT |
1044 | || tosym->binding() == elfcpp::STB_WEAK) |
1045 | && !parameters->options().relocatable())) | |
55a93433 | 1046 | this->force_local(tosym); |
aeddab66 ILT |
1047 | } |
1048 | ||
14bfc3f5 ILT |
1049 | // Instantiate the templates we need. We could use the configure |
1050 | // script to restrict this to only the ones needed for implemented | |
1051 | // targets. | |
1052 | ||
6cfaf60b DK |
1053 | // We have to instantiate both big and little endian versions because |
1054 | // these are used by other templates that depends on size only. | |
1055 | ||
1056 | #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG) | |
14bfc3f5 ILT |
1057 | template |
1058 | void | |
193a53d9 | 1059 | Symbol_table::resolve<32, false>( |
1564db8d | 1060 | Sized_symbol<32>* to, |
193a53d9 | 1061 | const elfcpp::Sym<32, false>& sym, |
d491d34e ILT |
1062 | unsigned int st_shndx, |
1063 | bool is_ordinary, | |
1064 | unsigned int orig_st_shndx, | |
14b31740 | 1065 | Object* object, |
b45e00b3 CC |
1066 | const char* version, |
1067 | bool is_default_version); | |
14bfc3f5 ILT |
1068 | |
1069 | template | |
1070 | void | |
193a53d9 | 1071 | Symbol_table::resolve<32, true>( |
1564db8d | 1072 | Sized_symbol<32>* to, |
193a53d9 | 1073 | const elfcpp::Sym<32, true>& sym, |
d491d34e ILT |
1074 | unsigned int st_shndx, |
1075 | bool is_ordinary, | |
1076 | unsigned int orig_st_shndx, | |
14b31740 | 1077 | Object* object, |
b45e00b3 CC |
1078 | const char* version, |
1079 | bool is_default_version); | |
193a53d9 | 1080 | #endif |
14bfc3f5 | 1081 | |
6cfaf60b | 1082 | #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG) |
14bfc3f5 ILT |
1083 | template |
1084 | void | |
193a53d9 | 1085 | Symbol_table::resolve<64, false>( |
1564db8d | 1086 | Sized_symbol<64>* to, |
193a53d9 | 1087 | const elfcpp::Sym<64, false>& sym, |
d491d34e ILT |
1088 | unsigned int st_shndx, |
1089 | bool is_ordinary, | |
1090 | unsigned int orig_st_shndx, | |
14b31740 | 1091 | Object* object, |
b45e00b3 CC |
1092 | const char* version, |
1093 | bool is_default_version); | |
14bfc3f5 ILT |
1094 | |
1095 | template | |
1096 | void | |
193a53d9 | 1097 | Symbol_table::resolve<64, true>( |
1564db8d | 1098 | Sized_symbol<64>* to, |
193a53d9 | 1099 | const elfcpp::Sym<64, true>& sym, |
d491d34e ILT |
1100 | unsigned int st_shndx, |
1101 | bool is_ordinary, | |
1102 | unsigned int orig_st_shndx, | |
14b31740 | 1103 | Object* object, |
b45e00b3 CC |
1104 | const char* version, |
1105 | bool is_default_version); | |
193a53d9 | 1106 | #endif |
14bfc3f5 | 1107 | |
86f2e683 ILT |
1108 | #if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG) |
1109 | template | |
1110 | void | |
aeddab66 ILT |
1111 | Symbol_table::override_with_special<32>(Sized_symbol<32>*, |
1112 | const Sized_symbol<32>*); | |
86f2e683 ILT |
1113 | #endif |
1114 | ||
1115 | #if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG) | |
1116 | template | |
1117 | void | |
aeddab66 ILT |
1118 | Symbol_table::override_with_special<64>(Sized_symbol<64>*, |
1119 | const Sized_symbol<64>*); | |
86f2e683 ILT |
1120 | #endif |
1121 | ||
14bfc3f5 | 1122 | } // End namespace gold. |