]> sourceware.org Git - glibc.git/blob - elf/rtld.c
Sat Jul 27 02:58:49 1996 Roland McGrath <roland@delasyd.gnu.ai.mit.edu>
[glibc.git] / elf / rtld.c
1 /* Run time dynamic linker.
2 Copyright (C) 1995, 1996 Free Software Foundation, Inc.
3 This file is part of the GNU C Library.
4
5 The GNU C Library is free software; you can redistribute it and/or
6 modify it under the terms of the GNU Library General Public License as
7 published by the Free Software Foundation; either version 2 of the
8 License, or (at your option) any later version.
9
10 The GNU C Library is distributed in the hope that it will be useful,
11 but WITHOUT ANY WARRANTY; without even the implied warranty of
12 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
13 Library General Public License for more details.
14
15 You should have received a copy of the GNU Library General Public
16 License along with the GNU C Library; see the file COPYING.LIB. If
17 not, write to the Free Software Foundation, Inc., 675 Mass Ave,
18 Cambridge, MA 02139, USA. */
19
20 #include <link.h>
21 #include <stddef.h>
22 #include <stdlib.h>
23 #include <string.h>
24 #include <unistd.h>
25 #include <sys/mman.h> /* Check if MAP_ANON is defined. */
26 #include "../stdio-common/_itoa.h"
27 #include <assert.h>
28 #include "dynamic-link.h"
29
30
31 /* System-specific function to do initial startup for the dynamic linker.
32 After this, file access calls and getenv must work. This is responsible
33 for setting _dl_secure if we need to be secure (e.g. setuid),
34 and for setting _dl_argc and _dl_argv, and then calling _dl_main. */
35 extern ElfW(Addr) _dl_sysdep_start (void **start_argptr,
36 void (*dl_main) (const ElfW(Phdr) *phdr,
37 ElfW(Half) phent,
38 ElfW(Addr) *user_entry));
39 extern void _dl_sysdep_start_cleanup (void);
40
41 int _dl_secure;
42 int _dl_argc;
43 char **_dl_argv;
44 const char *_dl_rpath;
45
46 static void dl_main (const ElfW(Phdr) *phdr,
47 ElfW(Half) phent,
48 ElfW(Addr) *user_entry);
49
50 struct link_map _dl_rtld_map;
51
52 #ifdef RTLD_START
53 RTLD_START
54 #else
55 #error "sysdeps/MACHINE/dl-machine.h fails to define RTLD_START"
56 #endif
57
58 ElfW(Addr)
59 _dl_start (void *arg)
60 {
61 struct link_map bootstrap_map;
62
63 /* This #define produces dynamic linking inline functions for
64 bootstrap relocation instead of general-purpose relocation. */
65 #define RTLD_BOOTSTRAP
66 #define RESOLVE(sym, reloc_addr, noplt) bootstrap_map.l_addr
67 #include "dynamic-link.h"
68
69 /* Figure out the run-time load address of the dynamic linker itself. */
70 bootstrap_map.l_addr = elf_machine_load_address ();
71
72 /* Read our own dynamic section and fill in the info array.
73 Conveniently, the first element of the GOT contains the
74 offset of _DYNAMIC relative to the run-time load address. */
75 bootstrap_map.l_ld = (void *) bootstrap_map.l_addr + *elf_machine_got ();
76 elf_get_dynamic_info (bootstrap_map.l_ld, bootstrap_map.l_info);
77
78 #ifdef ELF_MACHINE_BEFORE_RTLD_RELOC
79 ELF_MACHINE_BEFORE_RTLD_RELOC (bootstrap_map.l_info);
80 #endif
81
82 /* Relocate ourselves so we can do normal function calls and
83 data access using the global offset table. */
84
85 ELF_DYNAMIC_RELOCATE (&bootstrap_map, 0);
86
87
88 /* Now life is sane; we can call functions and access global data.
89 Set up to use the operating system facilities, and find out from
90 the operating system's program loader where to find the program
91 header table in core. */
92
93
94 /* Transfer data about ourselves to the permanent link_map structure. */
95 _dl_rtld_map.l_addr = bootstrap_map.l_addr;
96 _dl_rtld_map.l_ld = bootstrap_map.l_ld;
97 memcpy (_dl_rtld_map.l_info, bootstrap_map.l_info,
98 sizeof _dl_rtld_map.l_info);
99 _dl_setup_hash (&_dl_rtld_map);
100
101 /* Cache the DT_RPATH stored in ld.so itself; this will be
102 the default search path. */
103 _dl_rpath = (void *) (_dl_rtld_map.l_addr +
104 _dl_rtld_map.l_info[DT_STRTAB]->d_un.d_ptr +
105 _dl_rtld_map.l_info[DT_RPATH]->d_un.d_val);
106
107 /* Call the OS-dependent function to set up life so we can do things like
108 file access. It will call `dl_main' (below) to do all the real work
109 of the dynamic linker, and then unwind our frame and run the user
110 entry point on the same stack we entered on. */
111 return _dl_sysdep_start (arg, &dl_main);
112 }
113
114
115 /* Now life is peachy; we can do all normal operations.
116 On to the real work. */
117
118 void _start (void);
119
120 unsigned int _dl_skip_args; /* Nonzero if we were run directly. */
121
122 static void
123 dl_main (const ElfW(Phdr) *phdr,
124 ElfW(Half) phent,
125 ElfW(Addr) *user_entry)
126 {
127 const ElfW(Phdr) *ph;
128 struct link_map *l;
129 int lazy;
130 enum { normal, list, verify } mode = normal;
131 struct link_map **preloads;
132 unsigned int npreloads;
133
134 if (*user_entry == (ElfW(Addr)) &_start)
135 {
136 /* Ho ho. We are not the program interpreter! We are the program
137 itself! This means someone ran ld.so as a command. Well, that
138 might be convenient to do sometimes. We support it by
139 interpreting the args like this:
140
141 ld.so PROGRAM ARGS...
142
143 The first argument is the name of a file containing an ELF
144 executable we will load and run with the following arguments.
145 To simplify life here, PROGRAM is searched for using the
146 normal rules for shared objects, rather than $PATH or anything
147 like that. We just load it and use its entry point; we don't
148 pay attention to its PT_INTERP command (we are the interpreter
149 ourselves). This is an easy way to test a new ld.so before
150 installing it. */
151 if (_dl_argc < 2)
152 _dl_sysdep_fatal ("\
153 Usage: ld.so [--list|--verify] EXECUTABLE-FILE [ARGS-FOR-PROGRAM...]\n\
154 You have invoked `ld.so', the helper program for shared library executables.\n\
155 This program usually lives in the file `/lib/ld.so', and special directives\n\
156 in executable files using ELF shared libraries tell the system's program\n\
157 loader to load the helper program from this file. This helper program loads\n\
158 the shared libraries needed by the program executable, prepares the program\n\
159 to run, and runs it. You may invoke this helper program directly from the\n\
160 command line to load and run an ELF executable file; this is like executing\n\
161 that file itself, but always uses this helper program from the file you\n\
162 specified, instead of the helper program file specified in the executable\n\
163 file you run. This is mostly of use for maintainers to test new versions\n\
164 of this helper program; chances are you did not intend to run this program.\n",
165 NULL);
166
167 /* Note the place where the dynamic linker actually came from. */
168 _dl_rtld_map.l_name = _dl_argv[0];
169
170 if (! strcmp (_dl_argv[1], "--list"))
171 {
172 mode = list;
173
174 ++_dl_skip_args;
175 --_dl_argc;
176 ++_dl_argv;
177 }
178 else if (! strcmp (_dl_argv[1], "--verify"))
179 {
180 mode = verify;
181
182 ++_dl_skip_args;
183 --_dl_argc;
184 ++_dl_argv;
185 }
186
187 ++_dl_skip_args;
188 --_dl_argc;
189 ++_dl_argv;
190
191 l = _dl_map_object (NULL, _dl_argv[0], lt_library);
192 phdr = l->l_phdr;
193 phent = l->l_phnum;
194 l->l_name = (char *) "";
195 *user_entry = l->l_entry;
196 }
197 else
198 {
199 /* Create a link_map for the executable itself.
200 This will be what dlopen on "" returns. */
201 l = _dl_new_object ((char *) "", "", lt_library);
202 l->l_phdr = phdr;
203 l->l_phnum = phent;
204 l->l_entry = *user_entry;
205 }
206
207 if (l != _dl_loaded)
208 {
209 /* GDB assumes that the first element on the chain is the
210 link_map for the executable itself, and always skips it.
211 Make sure the first one is indeed that one. */
212 l->l_prev->l_next = l->l_next;
213 if (l->l_next)
214 l->l_next->l_prev = l->l_prev;
215 l->l_prev = NULL;
216 l->l_next = _dl_loaded;
217 _dl_loaded->l_prev = l;
218 _dl_loaded = l;
219 }
220
221 /* Scan the program header table for the dynamic section. */
222 for (ph = phdr; ph < &phdr[phent]; ++ph)
223 switch (ph->p_type)
224 {
225 case PT_DYNAMIC:
226 /* This tells us where to find the dynamic section,
227 which tells us everything we need to do. */
228 l->l_ld = (void *) l->l_addr + ph->p_vaddr;
229 break;
230 case PT_INTERP:
231 /* This "interpreter segment" was used by the program loader to
232 find the program interpreter, which is this program itself, the
233 dynamic linker. We note what name finds us, so that a future
234 dlopen call or DT_NEEDED entry, for something that wants to link
235 against the dynamic linker as a shared library, will know that
236 the shared object is already loaded. */
237 _dl_rtld_map.l_libname = (const char *) l->l_addr + ph->p_vaddr;
238 break;
239 }
240 if (! _dl_rtld_map.l_libname && _dl_rtld_map.l_name)
241 /* We were invoked directly, so the program might not have a PT_INTERP. */
242 _dl_rtld_map.l_libname = _dl_rtld_map.l_name;
243 else
244 assert (_dl_rtld_map.l_libname); /* How else did we get here? */
245
246 if (mode == verify)
247 /* We were called just to verify that this is a dynamic executable
248 using us as the program interpreter. */
249 _exit (strcmp (_dl_rtld_map.l_libname, _dl_rtld_map.l_name)
250 ? EXIT_FAILURE : EXIT_SUCCESS);
251
252 /* Extract the contents of the dynamic section for easy access. */
253 elf_get_dynamic_info (l->l_ld, l->l_info);
254 if (l->l_info[DT_HASH])
255 /* Set up our cache of pointers into the hash table. */
256 _dl_setup_hash (l);
257
258 /* Put the link_map for ourselves on the chain so it can be found by
259 name. */
260 if (! _dl_rtld_map.l_name)
261 /* If not invoked directly, the dynamic linker shared object file was
262 found by the PT_INTERP name. */
263 _dl_rtld_map.l_name = (char *) _dl_rtld_map.l_libname;
264 _dl_rtld_map.l_type = lt_library;
265 while (l->l_next)
266 l = l->l_next;
267 l->l_next = &_dl_rtld_map;
268 _dl_rtld_map.l_prev = l;
269
270 preloads = NULL;
271 npreloads = 0;
272 if (! _dl_secure)
273 {
274 const char *preloadlist = getenv ("LD_PRELOAD");
275 if (preloadlist)
276 {
277 /* The LD_PRELOAD environment variable gives a colon-separated
278 list of libraries that are loaded before the executable's
279 dependencies and prepended to the global scope list. */
280 char *list = strdupa (preloadlist);
281 char *p;
282 while ((p = strsep (&list, ":")) != NULL)
283 {
284 (void) _dl_map_object (NULL, p, lt_library);
285 ++npreloads;
286 }
287
288 if (npreloads != 0)
289 {
290 /* Set up PRELOADS with a vector of the preloaded libraries. */
291 struct link_map *l;
292 unsigned int i;
293 preloads = __alloca (npreloads * sizeof preloads[0]);
294 l = _dl_rtld_map.l_next; /* End of the chain before preloads. */
295 i = 0;
296 do
297 {
298 preloads[i++] = l;
299 l = l->l_next;
300 } while (l);
301 assert (i == npreloads);
302 }
303 }
304 }
305
306 /* Load all the libraries specified by DT_NEEDED entries. If LD_PRELOAD
307 specified some libraries to load, these are inserted before the actual
308 dependencies in the executable's searchlist for symbol resolution. */
309 _dl_map_object_deps (l, preloads, npreloads);
310
311 #ifndef MAP_ANON
312 /* We are done mapping things, so close the zero-fill descriptor. */
313 __close (_dl_zerofd);
314 _dl_zerofd = -1;
315 #endif
316
317 /* Remove _dl_rtld_map from the chain. */
318 _dl_rtld_map.l_prev->l_next = _dl_rtld_map.l_next;
319 if (_dl_rtld_map.l_next)
320 _dl_rtld_map.l_next->l_prev = _dl_rtld_map.l_prev;
321
322 if (_dl_rtld_map.l_opencount)
323 {
324 /* Some DT_NEEDED entry referred to the interpreter object itself, so
325 put it back in the list of visible objects. We insert it into the
326 chain in symbol search order because gdb uses the chain's order as
327 its symbol search order. */
328 unsigned int i = 1;
329 while (l->l_searchlist[i] != &_dl_rtld_map)
330 ++i;
331 _dl_rtld_map.l_prev = l->l_searchlist[i - 1];
332 _dl_rtld_map.l_next = (i + 1 < l->l_nsearchlist ?
333 l->l_searchlist[i + 1] : NULL);
334 assert (_dl_rtld_map.l_prev->l_next == _dl_rtld_map.l_next);
335 _dl_rtld_map.l_prev->l_next = &_dl_rtld_map;
336 if (_dl_rtld_map.l_next)
337 {
338 assert (_dl_rtld_map.l_next->l_prev == _dl_rtld_map.l_prev);
339 _dl_rtld_map.l_next->l_prev = &_dl_rtld_map;
340 }
341 }
342
343 if (mode == normal && getenv ("LD_TRACE_LOADED_OBJECTS") != NULL)
344 mode = list;
345
346 if (mode != normal)
347 {
348 /* We were run just to list the shared libraries. It is
349 important that we do this before real relocation, because the
350 functions we call below for output may no longer work properly
351 after relocation. */
352
353 int i;
354
355 if (! _dl_loaded->l_info[DT_NEEDED])
356 _dl_sysdep_message ("\t", "statically linked\n", NULL);
357 else
358 for (l = _dl_loaded->l_next; l; l = l->l_next)
359 {
360 char buf[20], *bp;
361 buf[sizeof buf - 1] = '\0';
362 bp = _itoa (l->l_addr, &buf[sizeof buf - 1], 16, 0);
363 while (&buf[sizeof buf - 1] - bp < sizeof l->l_addr * 2)
364 *--bp = '0';
365 _dl_sysdep_message ("\t", l->l_libname, " => ", l->l_name,
366 " (0x", bp, ")\n", NULL);
367 }
368
369 for (i = 1; i < _dl_argc; ++i)
370 {
371 const ElfW(Sym) *ref = NULL;
372 ElfW(Addr) loadbase = _dl_lookup_symbol (_dl_argv[i], &ref,
373 &_dl_default_scope[2],
374 "argument", 0, 0);
375 char buf[20], *bp;
376 buf[sizeof buf - 1] = '\0';
377 bp = _itoa (ref->st_value, &buf[sizeof buf - 1], 16, 0);
378 while (&buf[sizeof buf - 1] - bp < sizeof loadbase * 2)
379 *--bp = '0';
380 _dl_sysdep_message (_dl_argv[i], " found at 0x", bp, NULL);
381 buf[sizeof buf - 1] = '\0';
382 bp = _itoa (loadbase, &buf[sizeof buf - 1], 16, 0);
383 while (&buf[sizeof buf - 1] - bp < sizeof loadbase * 2)
384 *--bp = '0';
385 _dl_sysdep_message (" in object at 0x", bp, "\n", NULL);
386 }
387
388 _exit (0);
389 }
390
391 lazy = !_dl_secure && *(getenv ("LD_BIND_NOW") ?: "") == '\0';
392
393 {
394 /* Now we have all the objects loaded. Relocate them all except for
395 the dynamic linker itself. We do this in reverse order so that copy
396 relocs of earlier objects overwrite the data written by later
397 objects. We do not re-relocate the dynamic linker itself in this
398 loop because that could result in the GOT entries for functions we
399 call being changed, and that would break us. It is safe to relocate
400 the dynamic linker out of order because it has no copy relocs (we
401 know that because it is self-contained). */
402
403 l = _dl_loaded;
404 while (l->l_next)
405 l = l->l_next;
406 do
407 {
408 if (l != &_dl_rtld_map)
409 {
410 _dl_relocate_object (l, _dl_object_relocation_scope (l), lazy);
411 *_dl_global_scope_end = NULL;
412 }
413 l = l->l_prev;
414 } while (l);
415
416 /* Do any necessary cleanups for the startup OS interface code.
417 We do these now so that no calls are made after rtld re-relocation
418 which might be resolved to different functions than we expect.
419 We cannot do this before relocating the other objects because
420 _dl_relocate_object might need to call `mprotect' for DT_TEXTREL. */
421 _dl_sysdep_start_cleanup ();
422
423 if (_dl_rtld_map.l_opencount > 0)
424 /* There was an explicit ref to the dynamic linker as a shared lib.
425 Re-relocate ourselves with user-controlled symbol definitions. */
426 _dl_relocate_object (&_dl_rtld_map, &_dl_default_scope[2], 0);
427 }
428
429 {
430 /* Initialize _r_debug. */
431 struct r_debug *r = _dl_debug_initialize (_dl_rtld_map.l_addr);
432
433 l = _dl_loaded;
434
435 #ifdef ELF_MACHINE_DEBUG_SETUP
436
437 /* Some machines (e.g. MIPS) don't use DT_DEBUG in this way. */
438
439 ELF_MACHINE_DEBUG_SETUP (l, r);
440 ELF_MACHINE_DEBUG_SETUP (&_dl_rtld_map, r);
441
442 #else
443
444 if (l->l_info[DT_DEBUG])
445 /* There is a DT_DEBUG entry in the dynamic section. Fill it in
446 with the run-time address of the r_debug structure */
447 l->l_info[DT_DEBUG]->d_un.d_ptr = (ElfW(Addr)) r;
448
449 /* Fill in the pointer in the dynamic linker's own dynamic section, in
450 case you run gdb on the dynamic linker directly. */
451 if (_dl_rtld_map.l_info[DT_DEBUG])
452 _dl_rtld_map.l_info[DT_DEBUG]->d_un.d_ptr = (ElfW(Addr)) r;
453
454 #endif
455
456 /* Notify the debugger that all objects are now mapped in. */
457 r->r_state = RT_ADD;
458 _dl_debug_state ();
459 }
460
461 if (_dl_rtld_map.l_info[DT_INIT])
462 {
463 /* Call the initializer for the compatibility version of the
464 dynamic linker. There is no additional initialization
465 required for the ABI-compliant dynamic linker. */
466
467 (*(void (*) (void)) (_dl_rtld_map.l_addr +
468 _dl_rtld_map.l_info[DT_INIT]->d_un.d_ptr)) ();
469
470 /* Clear the field so a future dlopen won't run it again. */
471 _dl_rtld_map.l_info[DT_INIT] = NULL;
472 }
473
474 /* Once we return, _dl_sysdep_start will invoke
475 the DT_INIT functions and then *USER_ENTRY. */
476 }
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