Don't try to delete the output file if we don't know its name yet.
[deliverable/binutils-gdb.git] / gold / gold.cc
1 // gold.cc -- main linker functions
2
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
23 #include "gold.h"
24
25 #include <cstdlib>
26 #include <cstdio>
27 #include <cstring>
28 #include <unistd.h>
29 #include "libiberty.h"
30
31 #include "options.h"
32 #include "workqueue.h"
33 #include "dirsearch.h"
34 #include "readsyms.h"
35 #include "symtab.h"
36 #include "common.h"
37 #include "object.h"
38 #include "layout.h"
39 #include "reloc.h"
40 #include "defstd.h"
41
42 namespace gold
43 {
44
45 const char* program_name;
46
47 void
48 gold_exit(bool status)
49 {
50 if (!status && parameters != NULL && parameters->options_valid())
51 unlink_if_ordinary(parameters->output_file_name());
52 exit(status ? EXIT_SUCCESS : EXIT_FAILURE);
53 }
54
55 void
56 gold_nomem()
57 {
58 // We are out of memory, so try hard to print a reasonable message.
59 // Note that we don't try to translate this message, since the
60 // translation process itself will require memory.
61 write(2, program_name, strlen(program_name));
62 const char* const s = ": out of memory\n";
63 write(2, s, strlen(s));
64 gold_exit(false);
65 }
66
67 // Handle an unreachable case.
68
69 void
70 do_gold_unreachable(const char* filename, int lineno, const char* function)
71 {
72 fprintf(stderr, _("%s: internal error in %s, at %s:%d\n"),
73 program_name, function, filename, lineno);
74 gold_exit(false);
75 }
76
77 // This class arranges to run the functions done in the middle of the
78 // link. It is just a closure.
79
80 class Middle_runner : public Task_function_runner
81 {
82 public:
83 Middle_runner(const General_options& options,
84 const Input_objects* input_objects,
85 Symbol_table* symtab,
86 Layout* layout)
87 : options_(options), input_objects_(input_objects), symtab_(symtab),
88 layout_(layout)
89 { }
90
91 void
92 run(Workqueue*);
93
94 private:
95 const General_options& options_;
96 const Input_objects* input_objects_;
97 Symbol_table* symtab_;
98 Layout* layout_;
99 };
100
101 void
102 Middle_runner::run(Workqueue* workqueue)
103 {
104 queue_middle_tasks(this->options_, this->input_objects_, this->symtab_,
105 this->layout_, workqueue);
106 }
107
108 // Queue up the initial set of tasks for this link job.
109
110 void
111 queue_initial_tasks(const General_options& options,
112 const Dirsearch& search_path,
113 const Command_line& cmdline,
114 Workqueue* workqueue, Input_objects* input_objects,
115 Symbol_table* symtab, Layout* layout)
116 {
117 if (cmdline.begin() == cmdline.end())
118 gold_fatal(_("no input files"));
119
120 int thread_count = options.thread_count_initial();
121 if (thread_count == 0)
122 thread_count = cmdline.number_of_input_files();
123 workqueue->set_thread_count(thread_count);
124
125 // Read the input files. We have to add the symbols to the symbol
126 // table in order. We do this by creating a separate blocker for
127 // each input file. We associate the blocker with the following
128 // input file, to give us a convenient place to delete it.
129 Task_token* this_blocker = NULL;
130 for (Command_line::const_iterator p = cmdline.begin();
131 p != cmdline.end();
132 ++p)
133 {
134 Task_token* next_blocker = new Task_token();
135 next_blocker->add_blocker();
136 workqueue->queue(new Read_symbols(options, input_objects, symtab, layout,
137 search_path, &*p, NULL, this_blocker,
138 next_blocker));
139 this_blocker = next_blocker;
140 }
141
142 workqueue->queue(new Task_function(new Middle_runner(options,
143 input_objects,
144 symtab,
145 layout),
146 this_blocker,
147 "Task_function Middle_runner"));
148 }
149
150 // Queue up the middle set of tasks. These are the tasks which run
151 // after all the input objects have been found and all the symbols
152 // have been read, but before we lay out the output file.
153
154 void
155 queue_middle_tasks(const General_options& options,
156 const Input_objects* input_objects,
157 Symbol_table* symtab,
158 Layout* layout,
159 Workqueue* workqueue)
160 {
161 if (input_objects->number_of_input_objects() == 0)
162 {
163 // We had some input files, but we weren't able to open any of
164 // them.
165 gold_fatal(_("no input files"));
166 }
167
168 int thread_count = options.thread_count_middle();
169 if (thread_count == 0)
170 thread_count = input_objects->number_of_input_objects();
171 workqueue->set_thread_count(thread_count);
172
173 // Now we have seen all the input files.
174 const bool doing_static_link = (!input_objects->any_dynamic()
175 && !parameters->output_is_shared());
176 set_parameters_doing_static_link(doing_static_link);
177 if (!doing_static_link && options.is_static())
178 {
179 // We print out just the first .so we see; there may be others.
180 gold_error(_("cannot mix -static with dynamic object %s"),
181 (*input_objects->dynobj_begin())->name().c_str());
182 }
183
184 // For each dynamic object, record whether we've seen all the
185 // dynamic objects that it depends upon.
186 input_objects->check_dynamic_dependencies();
187
188 // See if any of the input definitions violate the One Definition Rule.
189 // TODO: if this is too slow, do this as a task, rather than inline.
190 symtab->detect_odr_violations(options.output_file_name());
191
192 // Define some sections and symbols needed for a dynamic link. This
193 // handles some cases we want to see before we read the relocs.
194 layout->create_initial_dynamic_sections(input_objects, symtab);
195
196 // Predefine standard symbols. This should be fast, so we don't
197 // bother to create a task for it.
198 define_standard_symbols(symtab, layout, input_objects->target());
199
200 // Define __start and __stop symbols for output sections where
201 // appropriate.
202 layout->define_section_symbols(symtab, input_objects->target());
203
204 // Read the relocations of the input files. We do this to find
205 // which symbols are used by relocations which require a GOT and/or
206 // a PLT entry, or a COPY reloc. When we implement garbage
207 // collection we will do it here by reading the relocations in a
208 // breadth first search by references.
209 //
210 // We could also read the relocations during the first pass, and
211 // mark symbols at that time. That is how the old GNU linker works.
212 // Doing that is more complex, since we may later decide to discard
213 // some of the sections, and thus change our minds about the types
214 // of references made to the symbols.
215 Task_token* blocker = new Task_token();
216 Task_token* symtab_lock = new Task_token();
217 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
218 p != input_objects->relobj_end();
219 ++p)
220 {
221 // We can read and process the relocations in any order. But we
222 // only want one task to write to the symbol table at a time.
223 // So we queue up a task for each object to read the
224 // relocations. That task will in turn queue a task to wait
225 // until it can write to the symbol table.
226 blocker->add_blocker();
227 workqueue->queue(new Read_relocs(options, symtab, layout, *p,
228 symtab_lock, blocker));
229 }
230
231 // Allocate common symbols. This requires write access to the
232 // symbol table, but is independent of the relocation processing.
233 blocker->add_blocker();
234 workqueue->queue(new Allocate_commons_task(options, symtab, layout,
235 symtab_lock, blocker));
236
237 // When all those tasks are complete, we can start laying out the
238 // output file.
239 workqueue->queue(new Task_function(new Layout_task_runner(options,
240 input_objects,
241 symtab,
242 layout),
243 blocker,
244 "Task_function Layout_task_runner"));
245 }
246
247 // Queue up the final set of tasks. This is called at the end of
248 // Layout_task.
249
250 void
251 queue_final_tasks(const General_options& options,
252 const Input_objects* input_objects,
253 const Symbol_table* symtab,
254 const Layout* layout,
255 Workqueue* workqueue,
256 Output_file* of)
257 {
258 int thread_count = options.thread_count_final();
259 if (thread_count == 0)
260 thread_count = input_objects->number_of_input_objects();
261 workqueue->set_thread_count(thread_count);
262
263 // Use a blocker to wait until all the input sections have been
264 // written out.
265 Task_token* input_sections_blocker = new Task_token();
266
267 // Use a blocker to block any objects which have to wait for the
268 // output sections to complete before they can apply relocations.
269 Task_token* output_sections_blocker = new Task_token();
270
271 // Use a blocker to block the final cleanup task.
272 Task_token* final_blocker = new Task_token();
273
274 // Queue a task for each input object to relocate the sections and
275 // write out the local symbols.
276 for (Input_objects::Relobj_iterator p = input_objects->relobj_begin();
277 p != input_objects->relobj_end();
278 ++p)
279 {
280 input_sections_blocker->add_blocker();
281 final_blocker->add_blocker();
282 workqueue->queue(new Relocate_task(options, symtab, layout, *p, of,
283 input_sections_blocker,
284 output_sections_blocker,
285 final_blocker));
286 }
287
288 // Queue a task to write out the symbol table.
289 final_blocker->add_blocker();
290 workqueue->queue(new Write_symbols_task(symtab,
291 input_objects,
292 layout->sympool(),
293 layout->dynpool(),
294 of,
295 final_blocker));
296
297 // Queue a task to write out the output sections.
298 output_sections_blocker->add_blocker();
299 final_blocker->add_blocker();
300 workqueue->queue(new Write_sections_task(layout, of, output_sections_blocker,
301 final_blocker));
302
303 // Queue a task to write out everything else.
304 final_blocker->add_blocker();
305 workqueue->queue(new Write_data_task(layout, symtab, of, final_blocker));
306
307 // Queue a task to write out the output sections which depend on
308 // input sections.
309 final_blocker->add_blocker();
310 workqueue->queue(new Write_after_input_sections_task(layout, of,
311 input_sections_blocker,
312 final_blocker));
313
314 // Queue a task to close the output file. This will be blocked by
315 // FINAL_BLOCKER.
316 workqueue->queue(new Task_function(new Close_task_runner(of),
317 final_blocker,
318 "Task_function Close_task_runner"));
319 }
320
321 } // End namespace gold.
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