rtld.c revision 1.190.2.3 1 /* $NetBSD: rtld.c,v 1.190.2.3 2018/10/20 06:58:22 pgoyette Exp $ */
2
3 /*
4 * Copyright 1996 John D. Polstra.
5 * Copyright 1996 Matt Thomas <matt (at) 3am-software.com>
6 * Copyright 2002 Charles M. Hannum <root (at) ihack.net>
7 * All rights reserved.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. All advertising materials mentioning features or use of this software
18 * must display the following acknowledgement:
19 * This product includes software developed by John Polstra.
20 * 4. The name of the author may not be used to endorse or promote products
21 * derived from this software without specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 */
34
35 /*
36 * Dynamic linker for ELF.
37 *
38 * John Polstra <jdp (at) polstra.com>.
39 */
40
41 #include <sys/cdefs.h>
42 #ifndef lint
43 __RCSID("$NetBSD: rtld.c,v 1.190.2.3 2018/10/20 06:58:22 pgoyette Exp $");
44 #endif /* not lint */
45
46 #include <sys/param.h>
47 #include <sys/atomic.h>
48 #include <sys/mman.h>
49 #include <err.h>
50 #include <errno.h>
51 #include <fcntl.h>
52 #include <lwp.h>
53 #include <stdarg.h>
54 #include <stdio.h>
55 #include <stdlib.h>
56 #include <string.h>
57 #include <unistd.h>
58 #include <dirent.h>
59
60 #include <ctype.h>
61
62 #include <dlfcn.h>
63 #include "debug.h"
64 #include "rtld.h"
65
66 #if !defined(lint)
67 #include "sysident.h"
68 #endif
69
70 /*
71 * Function declarations.
72 */
73 static void _rtld_init(caddr_t, caddr_t, const char *);
74 static void _rtld_exit(void);
75
76 Elf_Addr _rtld(Elf_Addr *, Elf_Addr);
77
78
79 /*
80 * Data declarations.
81 */
82 static char *error_message; /* Message for dlopen(), or NULL */
83
84 struct r_debug _rtld_debug; /* for GDB; */
85 bool _rtld_trust; /* False for setuid and setgid programs */
86 Obj_Entry *_rtld_objlist; /* Head of linked list of shared objects */
87 Obj_Entry **_rtld_objtail; /* Link field of last object in list */
88 Obj_Entry *_rtld_objmain; /* The main program shared object */
89 Obj_Entry _rtld_objself; /* The dynamic linker shared object */
90 u_int _rtld_objcount; /* Number of objects in _rtld_objlist */
91 u_int _rtld_objloads; /* Number of objects loaded in _rtld_objlist */
92 u_int _rtld_objgen; /* Generation count for _rtld_objlist */
93 const char _rtld_path[] = _PATH_RTLD;
94
95 /* Initialize a fake symbol for resolving undefined weak references. */
96 Elf_Sym _rtld_sym_zero = {
97 .st_info = ELF_ST_INFO(STB_GLOBAL, STT_NOTYPE),
98 .st_shndx = SHN_ABS,
99 };
100 size_t _rtld_pagesz; /* Page size, as provided by kernel */
101
102 Search_Path *_rtld_default_paths;
103 Search_Path *_rtld_paths;
104
105 Library_Xform *_rtld_xforms;
106 static void *auxinfo;
107
108 /*
109 * Global declarations normally provided by crt0.
110 */
111 char *__progname;
112 char **environ;
113
114 static volatile bool _rtld_mutex_may_recurse;
115
116 #if defined(RTLD_DEBUG)
117 #ifndef __sh__
118 extern Elf_Addr _GLOBAL_OFFSET_TABLE_[];
119 #else /* 32-bit SuperH */
120 register Elf_Addr *_GLOBAL_OFFSET_TABLE_ asm("r12");
121 #endif
122 #endif /* RTLD_DEBUG */
123 extern Elf_Dyn _DYNAMIC;
124
125 static void _rtld_call_fini_functions(sigset_t *, int);
126 static void _rtld_call_init_functions(sigset_t *);
127 static void _rtld_initlist_visit(Objlist *, Obj_Entry *, int);
128 static void _rtld_initlist_tsort(Objlist *, int);
129 static Obj_Entry *_rtld_dlcheck(void *);
130 static void _rtld_init_dag(Obj_Entry *);
131 static void _rtld_init_dag1(Obj_Entry *, Obj_Entry *);
132 static void _rtld_objlist_remove(Objlist *, Obj_Entry *);
133 static void _rtld_objlist_clear(Objlist *);
134 static void _rtld_unload_object(sigset_t *, Obj_Entry *, bool);
135 static void _rtld_unref_dag(Obj_Entry *);
136 static Obj_Entry *_rtld_obj_from_addr(const void *);
137
138 static inline void
139 _rtld_call_initfini_function(const Obj_Entry *obj, Elf_Addr func, sigset_t *mask)
140 {
141 _rtld_exclusive_exit(mask);
142 _rtld_call_function_void(obj, func);
143 _rtld_exclusive_enter(mask);
144 }
145
146 static void
147 _rtld_call_fini_function(Obj_Entry *obj, sigset_t *mask, u_int cur_objgen)
148 {
149 if (obj->fini_arraysz == 0 && (obj->fini == 0 || obj->fini_called))
150 return;
151
152 if (obj->fini != 0 && !obj->fini_called) {
153 dbg (("calling fini function %s at %p%s", obj->path,
154 (void *)obj->fini,
155 obj->z_initfirst ? " (DF_1_INITFIRST)" : ""));
156 obj->fini_called = 1;
157 _rtld_call_initfini_function(obj, obj->fini, mask);
158 }
159 #ifdef HAVE_INITFINI_ARRAY
160 /*
161 * Now process the fini_array if it exists. Simply go from
162 * start to end. We need to make restartable so just advance
163 * the array pointer and decrement the size each time through
164 * the loop.
165 */
166 while (obj->fini_arraysz > 0 && _rtld_objgen == cur_objgen) {
167 Elf_Addr fini = *obj->fini_array++;
168 obj->fini_arraysz--;
169 dbg (("calling fini array function %s at %p%s", obj->path,
170 (void *)fini,
171 obj->z_initfirst ? " (DF_1_INITFIRST)" : ""));
172 _rtld_call_initfini_function(obj, fini, mask);
173 }
174 #endif /* HAVE_INITFINI_ARRAY */
175 }
176
177 static void
178 _rtld_call_fini_functions(sigset_t *mask, int force)
179 {
180 Objlist_Entry *elm;
181 Objlist finilist;
182 u_int cur_objgen;
183
184 dbg(("_rtld_call_fini_functions(%d)", force));
185
186 restart:
187 cur_objgen = ++_rtld_objgen;
188 SIMPLEQ_INIT(&finilist);
189 _rtld_initlist_tsort(&finilist, 1);
190
191 /* First pass: objects _not_ marked with DF_1_INITFIRST. */
192 SIMPLEQ_FOREACH(elm, &finilist, link) {
193 Obj_Entry * const obj = elm->obj;
194 if (!obj->z_initfirst) {
195 if (obj->refcount > 0 && !force) {
196 continue;
197 }
198 /*
199 * XXX This can race against a concurrent dlclose().
200 * XXX In that case, the object could be unmapped before
201 * XXX the fini() call or the fini_array has completed.
202 */
203 _rtld_call_fini_function(obj, mask, cur_objgen);
204 if (_rtld_objgen != cur_objgen) {
205 dbg(("restarting fini iteration"));
206 _rtld_objlist_clear(&finilist);
207 goto restart;
208 }
209 }
210 }
211
212 /* Second pass: objects marked with DF_1_INITFIRST. */
213 SIMPLEQ_FOREACH(elm, &finilist, link) {
214 Obj_Entry * const obj = elm->obj;
215 if (obj->refcount > 0 && !force) {
216 continue;
217 }
218 /* XXX See above for the race condition here */
219 _rtld_call_fini_function(obj, mask, cur_objgen);
220 if (_rtld_objgen != cur_objgen) {
221 dbg(("restarting fini iteration"));
222 _rtld_objlist_clear(&finilist);
223 goto restart;
224 }
225 }
226
227 _rtld_objlist_clear(&finilist);
228 }
229
230 static void
231 _rtld_call_init_function(Obj_Entry *obj, sigset_t *mask, u_int cur_objgen)
232 {
233 if (obj->init_arraysz == 0 && (obj->init_called || obj->init == 0))
234 return;
235
236 if (!obj->init_called && obj->init != 0) {
237 dbg (("calling init function %s at %p%s",
238 obj->path, (void *)obj->init,
239 obj->z_initfirst ? " (DF_1_INITFIRST)" : ""));
240 obj->init_called = 1;
241 _rtld_call_initfini_function(obj, obj->init, mask);
242 }
243
244 #ifdef HAVE_INITFINI_ARRAY
245 /*
246 * Now process the init_array if it exists. Simply go from
247 * start to end. We need to make restartable so just advance
248 * the array pointer and decrement the size each time through
249 * the loop.
250 */
251 while (obj->init_arraysz > 0 && _rtld_objgen == cur_objgen) {
252 Elf_Addr init = *obj->init_array++;
253 obj->init_arraysz--;
254 dbg (("calling init_array function %s at %p%s",
255 obj->path, (void *)init,
256 obj->z_initfirst ? " (DF_1_INITFIRST)" : ""));
257 _rtld_call_initfini_function(obj, init, mask);
258 }
259 #endif /* HAVE_INITFINI_ARRAY */
260 }
261
262 static bool
263 _rtld_call_ifunc_functions(sigset_t *mask, Obj_Entry *obj, u_int cur_objgen)
264 {
265 if (obj->ifunc_remaining
266 #if defined(IFUNC_NONPLT)
267 || obj->ifunc_remaining_nonplt
268 #endif
269 ) {
270 _rtld_call_ifunc(obj, mask, cur_objgen);
271 if (_rtld_objgen != cur_objgen) {
272 return true;
273 }
274 }
275 return false;
276 }
277
278 static void
279 _rtld_call_init_functions(sigset_t *mask)
280 {
281 Objlist_Entry *elm;
282 Objlist initlist;
283 u_int cur_objgen;
284
285 dbg(("_rtld_call_init_functions()"));
286
287 restart:
288 cur_objgen = ++_rtld_objgen;
289 SIMPLEQ_INIT(&initlist);
290 _rtld_initlist_tsort(&initlist, 0);
291
292 /* First pass: objects with IRELATIVE relocations. */
293 SIMPLEQ_FOREACH(elm, &initlist, link) {
294 if (_rtld_call_ifunc_functions(mask, elm->obj, cur_objgen)) {
295 dbg(("restarting init iteration"));
296 _rtld_objlist_clear(&initlist);
297 goto restart;
298 }
299 }
300 /*
301 * XXX: For historic reasons, init/fini of the main object are called
302 * from crt0. Don't introduce that mistake for ifunc, so look at
303 * the head of _rtld_objlist that _rtld_initlist_tsort skipped.
304 */
305 if (_rtld_call_ifunc_functions(mask, _rtld_objlist, cur_objgen)) {
306 dbg(("restarting init iteration"));
307 _rtld_objlist_clear(&initlist);
308 goto restart;
309 }
310
311 /* Second pass: objects marked with DF_1_INITFIRST. */
312 SIMPLEQ_FOREACH(elm, &initlist, link) {
313 Obj_Entry * const obj = elm->obj;
314 if (obj->z_initfirst) {
315 _rtld_call_init_function(obj, mask, cur_objgen);
316 if (_rtld_objgen != cur_objgen) {
317 dbg(("restarting init iteration"));
318 _rtld_objlist_clear(&initlist);
319 goto restart;
320 }
321 }
322 }
323
324 /* Third pass: all other objects. */
325 SIMPLEQ_FOREACH(elm, &initlist, link) {
326 _rtld_call_init_function(elm->obj, mask, cur_objgen);
327 if (_rtld_objgen != cur_objgen) {
328 dbg(("restarting init iteration"));
329 _rtld_objlist_clear(&initlist);
330 goto restart;
331 }
332 }
333
334 _rtld_objlist_clear(&initlist);
335 }
336
337 /*
338 * Initialize the dynamic linker. The argument is the address at which
339 * the dynamic linker has been mapped into memory. The primary task of
340 * this function is to create an Obj_Entry for the dynamic linker and
341 * to resolve the PLT relocation for platforms that need it (those that
342 * define __HAVE_FUNCTION_DESCRIPTORS
343 */
344 static void
345 _rtld_init(caddr_t mapbase, caddr_t relocbase, const char *execname)
346 {
347
348 /* Conjure up an Obj_Entry structure for the dynamic linker. */
349 _rtld_objself.path = __UNCONST(_rtld_path);
350 _rtld_objself.pathlen = sizeof(_rtld_path)-1;
351 _rtld_objself.rtld = true;
352 _rtld_objself.mapbase = mapbase;
353 _rtld_objself.relocbase = relocbase;
354 _rtld_objself.dynamic = (Elf_Dyn *) &_DYNAMIC;
355 _rtld_objself.strtab = "_rtld_sym_zero";
356
357 /*
358 * Set value to -relocbase so that
359 *
360 * _rtld_objself.relocbase + _rtld_sym_zero.st_value == 0
361 *
362 * This allows unresolved references to weak symbols to be computed
363 * to a value of 0.
364 */
365 _rtld_sym_zero.st_value = -(uintptr_t)relocbase;
366
367 _rtld_digest_dynamic(_rtld_path, &_rtld_objself);
368 assert(!_rtld_objself.needed);
369 #if !defined(__hppa__)
370 assert(!_rtld_objself.pltrel && !_rtld_objself.pltrela);
371 #else
372 _rtld_relocate_plt_objects(&_rtld_objself);
373 #endif
374 #if !defined(__mips__) && !defined(__hppa__)
375 assert(!_rtld_objself.pltgot);
376 #endif
377 #if !defined(__arm__) && !defined(__mips__) && !defined(__sh__)
378 /* ARM, MIPS and SH{3,5} have a bogus DT_TEXTREL. */
379 assert(!_rtld_objself.textrel);
380 #endif
381
382 _rtld_add_paths(execname, &_rtld_default_paths,
383 RTLD_DEFAULT_LIBRARY_PATH);
384
385 #ifdef RTLD_ARCH_SUBDIR
386 _rtld_add_paths(execname, &_rtld_default_paths,
387 RTLD_DEFAULT_LIBRARY_PATH "/" RTLD_ARCH_SUBDIR);
388 #endif
389
390 /* Make the object list empty. */
391 _rtld_objlist = NULL;
392 _rtld_objtail = &_rtld_objlist;
393 _rtld_objcount = 0;
394
395 _rtld_debug.r_brk = _rtld_debug_state;
396 _rtld_debug.r_state = RT_CONSISTENT;
397 }
398
399 /*
400 * Cleanup procedure. It will be called (by the atexit() mechanism) just
401 * before the process exits.
402 */
403 static void
404 _rtld_exit(void)
405 {
406 sigset_t mask;
407
408 dbg(("rtld_exit()"));
409
410 _rtld_exclusive_enter(&mask);
411
412 _rtld_call_fini_functions(&mask, 1);
413
414 _rtld_exclusive_exit(&mask);
415 }
416
417 __dso_public void *
418 _dlauxinfo(void)
419 {
420 return auxinfo;
421 }
422
423 /*
424 * Main entry point for dynamic linking. The argument is the stack
425 * pointer. The stack is expected to be laid out as described in the
426 * SVR4 ABI specification, Intel 386 Processor Supplement. Specifically,
427 * the stack pointer points to a word containing ARGC. Following that
428 * in the stack is a null-terminated sequence of pointers to argument
429 * strings. Then comes a null-terminated sequence of pointers to
430 * environment strings. Finally, there is a sequence of "auxiliary
431 * vector" entries.
432 *
433 * This function returns the entry point for the main program, the dynamic
434 * linker's exit procedure in sp[0], and a pointer to the main object in
435 * sp[1].
436 */
437 Elf_Addr
438 _rtld(Elf_Addr *sp, Elf_Addr relocbase)
439 {
440 const AuxInfo *pAUX_base, *pAUX_entry, *pAUX_execfd, *pAUX_phdr,
441 *pAUX_phent, *pAUX_phnum, *pAUX_euid, *pAUX_egid,
442 *pAUX_ruid, *pAUX_rgid;
443 const AuxInfo *pAUX_pagesz;
444 char **env, **oenvp;
445 const AuxInfo *auxp;
446 Obj_Entry *obj;
447 Elf_Addr *const osp = sp;
448 bool bind_now = 0;
449 const char *ld_bind_now, *ld_preload, *ld_library_path;
450 const char **argv;
451 const char *execname;
452 long argc;
453 const char **real___progname;
454 const Obj_Entry **real___mainprog_obj;
455 char ***real_environ;
456 sigset_t mask;
457 #ifdef DEBUG
458 const char *ld_debug;
459 #endif
460 #ifdef RTLD_DEBUG
461 int i = 0;
462 #endif
463
464 /*
465 * On entry, the dynamic linker itself has not been relocated yet.
466 * Be very careful not to reference any global data until after
467 * _rtld_init has returned. It is OK to reference file-scope statics
468 * and string constants, and to call static and global functions.
469 */
470 /* Find the auxiliary vector on the stack. */
471 /* first Elf_Word reserved to address of exit routine */
472 #if defined(RTLD_DEBUG)
473 debug = 1;
474 dbg(("sp = %p, argc = %ld, argv = %p <%s> relocbase %p", sp,
475 (long)sp[2], &sp[3], (char *) sp[3], (void *)relocbase));
476 #ifndef __x86_64__
477 dbg(("got is at %p, dynamic is at %p", _GLOBAL_OFFSET_TABLE_,
478 &_DYNAMIC));
479 #endif
480 #endif
481
482 sp += 2; /* skip over return argument space */
483 argv = (const char **) &sp[1];
484 argc = *(long *)sp;
485 sp += 2 + argc; /* Skip over argc, arguments, and NULL
486 * terminator */
487 env = (char **) sp;
488 while (*sp++ != 0) { /* Skip over environment, and NULL terminator */
489 #if defined(RTLD_DEBUG)
490 dbg(("env[%d] = %p %s", i++, (void *)sp[-1], (char *)sp[-1]));
491 #endif
492 }
493 auxinfo = (AuxInfo *) sp;
494
495 pAUX_base = pAUX_entry = pAUX_execfd = NULL;
496 pAUX_phdr = pAUX_phent = pAUX_phnum = NULL;
497 pAUX_euid = pAUX_ruid = pAUX_egid = pAUX_rgid = NULL;
498 pAUX_pagesz = NULL;
499
500 execname = NULL;
501
502 /* Digest the auxiliary vector. */
503 for (auxp = auxinfo; auxp->a_type != AT_NULL; ++auxp) {
504 switch (auxp->a_type) {
505 case AT_BASE:
506 pAUX_base = auxp;
507 break;
508 case AT_ENTRY:
509 pAUX_entry = auxp;
510 break;
511 case AT_EXECFD:
512 pAUX_execfd = auxp;
513 break;
514 case AT_PHDR:
515 pAUX_phdr = auxp;
516 break;
517 case AT_PHENT:
518 pAUX_phent = auxp;
519 break;
520 case AT_PHNUM:
521 pAUX_phnum = auxp;
522 break;
523 #ifdef AT_EUID
524 case AT_EUID:
525 pAUX_euid = auxp;
526 break;
527 case AT_RUID:
528 pAUX_ruid = auxp;
529 break;
530 case AT_EGID:
531 pAUX_egid = auxp;
532 break;
533 case AT_RGID:
534 pAUX_rgid = auxp;
535 break;
536 #endif
537 #ifdef AT_SUN_EXECNAME
538 case AT_SUN_EXECNAME:
539 execname = (const char *)(const void *)auxp->a_v;
540 break;
541 #endif
542 case AT_PAGESZ:
543 pAUX_pagesz = auxp;
544 break;
545 }
546 }
547
548 /* Initialize and relocate ourselves. */
549 if (pAUX_base == NULL) {
550 _rtld_error("Bad pAUX_base");
551 _rtld_die();
552 }
553 assert(pAUX_pagesz != NULL);
554 _rtld_pagesz = (int)pAUX_pagesz->a_v;
555 _rtld_init((caddr_t)pAUX_base->a_v, (caddr_t)relocbase, execname);
556
557 __progname = _rtld_objself.path;
558 environ = env;
559
560 _rtld_trust = ((pAUX_euid ? (uid_t)pAUX_euid->a_v : geteuid()) ==
561 (pAUX_ruid ? (uid_t)pAUX_ruid->a_v : getuid())) &&
562 ((pAUX_egid ? (gid_t)pAUX_egid->a_v : getegid()) ==
563 (pAUX_rgid ? (gid_t)pAUX_rgid->a_v : getgid()));
564
565 #ifdef DEBUG
566 ld_debug = NULL;
567 #endif
568 ld_bind_now = NULL;
569 ld_library_path = NULL;
570 ld_preload = NULL;
571 /*
572 * Inline avoid using normal getenv/unsetenv here as the libc
573 * code is quite a bit more complicated.
574 */
575 for (oenvp = env; *env != NULL; ++env) {
576 static const char bind_var[] = "LD_BIND_NOW=";
577 static const char debug_var[] = "LD_DEBUG=";
578 static const char path_var[] = "LD_LIBRARY_PATH=";
579 static const char preload_var[] = "LD_PRELOAD=";
580 #define LEN(x) (sizeof(x) - 1)
581
582 if ((*env)[0] != 'L' || (*env)[1] != 'D') {
583 /*
584 * Special case to skip most entries without
585 * the more expensive calls to strncmp.
586 */
587 *oenvp++ = *env;
588 } else if (strncmp(*env, debug_var, LEN(debug_var)) == 0) {
589 if (_rtld_trust) {
590 #ifdef DEBUG
591 ld_debug = *env + LEN(debug_var);
592 #endif
593 *oenvp++ = *env;
594 }
595 } else if (strncmp(*env, bind_var, LEN(bind_var)) == 0) {
596 if (_rtld_trust) {
597 ld_bind_now = *env + LEN(bind_var);
598 *oenvp++ = *env;
599 }
600 } else if (strncmp(*env, path_var, LEN(path_var)) == 0) {
601 if (_rtld_trust) {
602 ld_library_path = *env + LEN(path_var);
603 *oenvp++ = *env;
604 }
605 } else if (strncmp(*env, preload_var, LEN(preload_var)) == 0) {
606 if (_rtld_trust) {
607 ld_preload = *env + LEN(preload_var);
608 *oenvp++ = *env;
609 }
610 } else {
611 *oenvp++ = *env;
612 }
613 #undef LEN
614 }
615 *oenvp++ = NULL;
616
617 if (ld_bind_now != NULL && *ld_bind_now != '\0')
618 bind_now = true;
619 if (_rtld_trust) {
620 #ifdef DEBUG
621 #ifdef RTLD_DEBUG
622 debug = 0;
623 #endif
624 if (ld_debug != NULL && *ld_debug != '\0')
625 debug = 1;
626 #endif
627 _rtld_add_paths(execname, &_rtld_paths, ld_library_path);
628 } else {
629 execname = NULL;
630 }
631 _rtld_process_hints(execname, &_rtld_paths, &_rtld_xforms,
632 _PATH_LD_HINTS);
633 dbg(("dynamic linker is initialized, mapbase=%p, relocbase=%p",
634 _rtld_objself.mapbase, _rtld_objself.relocbase));
635
636 /*
637 * Load the main program, or process its program header if it is
638 * already loaded.
639 */
640 if (pAUX_execfd != NULL) { /* Load the main program. */
641 int fd = pAUX_execfd->a_v;
642 const char *obj_name = argv[0] ? argv[0] : "main program";
643 dbg(("loading main program"));
644 _rtld_objmain = _rtld_map_object(obj_name, fd, NULL);
645 close(fd);
646 if (_rtld_objmain == NULL)
647 _rtld_die();
648 } else { /* Main program already loaded. */
649 const Elf_Phdr *phdr;
650 int phnum;
651 caddr_t entry;
652
653 dbg(("processing main program's program header"));
654 assert(pAUX_phdr != NULL);
655 phdr = (const Elf_Phdr *) pAUX_phdr->a_v;
656 assert(pAUX_phnum != NULL);
657 phnum = pAUX_phnum->a_v;
658 assert(pAUX_phent != NULL);
659 assert(pAUX_phent->a_v == sizeof(Elf_Phdr));
660 assert(pAUX_entry != NULL);
661 entry = (caddr_t) pAUX_entry->a_v;
662 _rtld_objmain = _rtld_digest_phdr(phdr, phnum, entry);
663 _rtld_objmain->path = xstrdup(argv[0] ? argv[0] :
664 "main program");
665 _rtld_objmain->pathlen = strlen(_rtld_objmain->path);
666 }
667
668 _rtld_objmain->mainprog = true;
669
670 /*
671 * Get the actual dynamic linker pathname from the executable if
672 * possible. (It should always be possible.) That ensures that
673 * gdb will find the right dynamic linker even if a non-standard
674 * one is being used.
675 */
676 if (_rtld_objmain->interp != NULL &&
677 strcmp(_rtld_objmain->interp, _rtld_objself.path) != 0) {
678 _rtld_objself.path = xstrdup(_rtld_objmain->interp);
679 _rtld_objself.pathlen = strlen(_rtld_objself.path);
680 }
681 dbg(("actual dynamic linker is %s", _rtld_objself.path));
682
683 _rtld_digest_dynamic(execname, _rtld_objmain);
684
685 /* Link the main program into the list of objects. */
686 *_rtld_objtail = _rtld_objmain;
687 _rtld_objtail = &_rtld_objmain->next;
688 _rtld_objcount++;
689 _rtld_objloads++;
690
691 _rtld_linkmap_add(_rtld_objmain);
692 _rtld_objself.path = xstrdup(_rtld_objself.path);
693 _rtld_linkmap_add(&_rtld_objself);
694
695 ++_rtld_objmain->refcount;
696 _rtld_objmain->mainref = 1;
697 _rtld_objlist_push_tail(&_rtld_list_main, _rtld_objmain);
698
699 if (ld_preload) {
700 /*
701 * Pre-load user-specified objects after the main program
702 * but before any shared object dependencies.
703 */
704 dbg(("preloading objects"));
705 if (_rtld_preload(ld_preload) == -1)
706 _rtld_die();
707 }
708
709 dbg(("loading needed objects"));
710 if (_rtld_load_needed_objects(_rtld_objmain, _RTLD_MAIN) == -1)
711 _rtld_die();
712
713 dbg(("checking for required versions"));
714 for (obj = _rtld_objlist; obj != NULL; obj = obj->next) {
715 if (_rtld_verify_object_versions(obj) == -1)
716 _rtld_die();
717 }
718
719 #if defined(__HAVE_TLS_VARIANT_I) || defined(__HAVE_TLS_VARIANT_II)
720 dbg(("initializing initial Thread Local Storage offsets"));
721 /*
722 * All initial objects get the TLS space from the static block.
723 */
724 for (obj = _rtld_objlist; obj != NULL; obj = obj->next)
725 _rtld_tls_offset_allocate(obj);
726 #endif
727
728 dbg(("relocating objects"));
729 if (_rtld_relocate_objects(_rtld_objmain, bind_now) == -1)
730 _rtld_die();
731
732 dbg(("doing copy relocations"));
733 if (_rtld_do_copy_relocations(_rtld_objmain) == -1)
734 _rtld_die();
735
736 #if defined(__HAVE_TLS_VARIANT_I) || defined(__HAVE_TLS_VARIANT_II)
737 dbg(("initializing Thread Local Storage for main thread"));
738 /*
739 * Set up TLS area for the main thread.
740 * This has to be done after all relocations are processed,
741 * since .tdata may contain relocations.
742 */
743 _rtld_tls_initial_allocation();
744 #endif
745
746 /*
747 * Set the __progname, environ and, __mainprog_obj before
748 * calling anything that might use them.
749 */
750 real___progname = _rtld_objmain_sym("__progname");
751 if (real___progname) {
752 if (argv[0] != NULL) {
753 if ((*real___progname = strrchr(argv[0], '/')) == NULL)
754 (*real___progname) = argv[0];
755 else
756 (*real___progname)++;
757 } else {
758 (*real___progname) = NULL;
759 }
760 }
761 real_environ = _rtld_objmain_sym("environ");
762 if (real_environ)
763 *real_environ = environ;
764 /*
765 * Set __mainprog_obj for old binaries.
766 */
767 real___mainprog_obj = _rtld_objmain_sym("__mainprog_obj");
768 if (real___mainprog_obj)
769 *real___mainprog_obj = _rtld_objmain;
770
771 _rtld_debug_state(); /* say hello to gdb! */
772
773 _rtld_exclusive_enter(&mask);
774
775 dbg(("calling _init functions"));
776 _rtld_call_init_functions(&mask);
777
778 dbg(("control at program entry point = %p, obj = %p, exit = %p",
779 _rtld_objmain->entry, _rtld_objmain, _rtld_exit));
780
781 _rtld_exclusive_exit(&mask);
782
783 /*
784 * Return with the entry point and the exit procedure in at the top
785 * of stack.
786 */
787
788 ((void **) osp)[0] = _rtld_exit;
789 ((void **) osp)[1] = __UNCONST(_rtld_compat_obj);
790 return (Elf_Addr) _rtld_objmain->entry;
791 }
792
793 void
794 _rtld_die(void)
795 {
796 const char *msg = dlerror();
797
798 if (msg == NULL)
799 msg = "Fatal error";
800 xerrx(1, "%s", msg);
801 }
802
803 static Obj_Entry *
804 _rtld_dlcheck(void *handle)
805 {
806 Obj_Entry *obj;
807
808 for (obj = _rtld_objlist; obj != NULL; obj = obj->next)
809 if (obj == (Obj_Entry *) handle)
810 break;
811
812 if (obj == NULL || obj->dl_refcount == 0) {
813 _rtld_error("Invalid shared object handle %p", handle);
814 return NULL;
815 }
816 return obj;
817 }
818
819 static void
820 _rtld_initlist_visit(Objlist* list, Obj_Entry *obj, int rev)
821 {
822 Needed_Entry* elm;
823
824 /* dbg(("_rtld_initlist_visit(%s)", obj->path)); */
825
826 if (obj->init_done)
827 return;
828 obj->init_done = 1;
829
830 for (elm = obj->needed; elm != NULL; elm = elm->next) {
831 if (elm->obj != NULL) {
832 _rtld_initlist_visit(list, elm->obj, rev);
833 }
834 }
835
836 if (rev) {
837 _rtld_objlist_push_head(list, obj);
838 } else {
839 _rtld_objlist_push_tail(list, obj);
840 }
841 }
842
843 static void
844 _rtld_initlist_tsort(Objlist* list, int rev)
845 {
846 dbg(("_rtld_initlist_tsort"));
847
848 Obj_Entry* obj;
849
850 for (obj = _rtld_objlist->next; obj; obj = obj->next) {
851 obj->init_done = 0;
852 }
853
854 for (obj = _rtld_objlist->next; obj; obj = obj->next) {
855 _rtld_initlist_visit(list, obj, rev);
856 }
857 }
858
859 static void
860 _rtld_init_dag(Obj_Entry *root)
861 {
862
863 _rtld_init_dag1(root, root);
864 }
865
866 static void
867 _rtld_init_dag1(Obj_Entry *root, Obj_Entry *obj)
868 {
869 const Needed_Entry *needed;
870
871 if (!obj->mainref) {
872 if (_rtld_objlist_find(&obj->dldags, root))
873 return;
874 dbg(("add %p (%s) to %p (%s) DAG", obj, obj->path, root,
875 root->path));
876 _rtld_objlist_push_tail(&obj->dldags, root);
877 _rtld_objlist_push_tail(&root->dagmembers, obj);
878 }
879 for (needed = obj->needed; needed != NULL; needed = needed->next)
880 if (needed->obj != NULL)
881 _rtld_init_dag1(root, needed->obj);
882 }
883
884 /*
885 * Note, this is called only for objects loaded by dlopen().
886 */
887 static void
888 _rtld_unload_object(sigset_t *mask, Obj_Entry *root, bool do_fini_funcs)
889 {
890
891 _rtld_unref_dag(root);
892 if (root->refcount == 0) { /* We are finished with some objects. */
893 Obj_Entry *obj;
894 Obj_Entry **linkp;
895 Objlist_Entry *elm;
896
897 /* Finalize objects that are about to be unmapped. */
898 if (do_fini_funcs)
899 _rtld_call_fini_functions(mask, 0);
900
901 /* Remove the DAG from all objects' DAG lists. */
902 SIMPLEQ_FOREACH(elm, &root->dagmembers, link)
903 _rtld_objlist_remove(&elm->obj->dldags, root);
904
905 /* Remove the DAG from the RTLD_GLOBAL list. */
906 if (root->globalref) {
907 root->globalref = 0;
908 _rtld_objlist_remove(&_rtld_list_global, root);
909 }
910
911 /* Unmap all objects that are no longer referenced. */
912 linkp = &_rtld_objlist->next;
913 while ((obj = *linkp) != NULL) {
914 if (obj->refcount == 0) {
915 dbg(("unloading \"%s\"", obj->path));
916 if (obj->ehdr != MAP_FAILED)
917 munmap(obj->ehdr, _rtld_pagesz);
918 munmap(obj->mapbase, obj->mapsize);
919 _rtld_objlist_remove(&_rtld_list_global, obj);
920 _rtld_linkmap_delete(obj);
921 *linkp = obj->next;
922 _rtld_objcount--;
923 _rtld_obj_free(obj);
924 } else
925 linkp = &obj->next;
926 }
927 _rtld_objtail = linkp;
928 }
929 }
930
931 void
932 _rtld_ref_dag(Obj_Entry *root)
933 {
934 const Needed_Entry *needed;
935
936 assert(root);
937
938 ++root->refcount;
939
940 dbg(("incremented reference on \"%s\" (%d)", root->path,
941 root->refcount));
942 for (needed = root->needed; needed != NULL;
943 needed = needed->next) {
944 if (needed->obj != NULL)
945 _rtld_ref_dag(needed->obj);
946 }
947 }
948
949 static void
950 _rtld_unref_dag(Obj_Entry *root)
951 {
952
953 assert(root);
954 assert(root->refcount != 0);
955
956 --root->refcount;
957 dbg(("decremented reference on \"%s\" (%d)", root->path,
958 root->refcount));
959
960 if (root->refcount == 0) {
961 const Needed_Entry *needed;
962
963 for (needed = root->needed; needed != NULL;
964 needed = needed->next) {
965 if (needed->obj != NULL)
966 _rtld_unref_dag(needed->obj);
967 }
968 }
969 }
970
971 __strong_alias(__dlclose,dlclose)
972 int
973 dlclose(void *handle)
974 {
975 Obj_Entry *root;
976 sigset_t mask;
977
978 dbg(("dlclose of %p", handle));
979
980 _rtld_exclusive_enter(&mask);
981
982 root = _rtld_dlcheck(handle);
983
984 if (root == NULL) {
985 _rtld_exclusive_exit(&mask);
986 return -1;
987 }
988
989 _rtld_debug.r_state = RT_DELETE;
990 _rtld_debug_state();
991
992 --root->dl_refcount;
993 _rtld_unload_object(&mask, root, true);
994
995 _rtld_debug.r_state = RT_CONSISTENT;
996 _rtld_debug_state();
997
998 _rtld_exclusive_exit(&mask);
999
1000 return 0;
1001 }
1002
1003 __strong_alias(__dlerror,dlerror)
1004 char *
1005 dlerror(void)
1006 {
1007 char *msg = error_message;
1008
1009 error_message = NULL;
1010 return msg;
1011 }
1012
1013 __strong_alias(__dlopen,dlopen)
1014 void *
1015 dlopen(const char *name, int mode)
1016 {
1017 Obj_Entry **old_obj_tail = _rtld_objtail;
1018 Obj_Entry *obj = NULL;
1019 int flags = _RTLD_DLOPEN;
1020 bool nodelete;
1021 bool now;
1022 sigset_t mask;
1023 int result;
1024
1025 dbg(("dlopen of %s %d", name, mode));
1026
1027 _rtld_exclusive_enter(&mask);
1028
1029 flags |= (mode & RTLD_GLOBAL) ? _RTLD_GLOBAL : 0;
1030 flags |= (mode & RTLD_NOLOAD) ? _RTLD_NOLOAD : 0;
1031
1032 nodelete = (mode & RTLD_NODELETE) ? true : false;
1033 now = ((mode & RTLD_MODEMASK) == RTLD_NOW) ? true : false;
1034
1035 _rtld_debug.r_state = RT_ADD;
1036 _rtld_debug_state();
1037
1038 if (name == NULL) {
1039 obj = _rtld_objmain;
1040 obj->refcount++;
1041 } else
1042 obj = _rtld_load_library(name, _rtld_objmain, flags);
1043
1044
1045 if (obj != NULL) {
1046 ++obj->dl_refcount;
1047 if (*old_obj_tail != NULL) { /* We loaded something new. */
1048 assert(*old_obj_tail == obj);
1049
1050 result = _rtld_load_needed_objects(obj, flags);
1051 if (result != -1) {
1052 Objlist_Entry *entry;
1053 _rtld_init_dag(obj);
1054 SIMPLEQ_FOREACH(entry, &obj->dagmembers, link) {
1055 result = _rtld_verify_object_versions(entry->obj);
1056 if (result == -1)
1057 break;
1058 }
1059 }
1060 if (result == -1 || _rtld_relocate_objects(obj,
1061 (now || obj->z_now)) == -1) {
1062 _rtld_unload_object(&mask, obj, false);
1063 obj->dl_refcount--;
1064 obj = NULL;
1065 } else {
1066 _rtld_call_init_functions(&mask);
1067 }
1068 }
1069 if (obj != NULL) {
1070 if ((nodelete || obj->z_nodelete) && !obj->ref_nodel) {
1071 dbg(("dlopen obj %s nodelete", obj->path));
1072 _rtld_ref_dag(obj);
1073 obj->z_nodelete = obj->ref_nodel = true;
1074 }
1075 }
1076 }
1077 _rtld_debug.r_state = RT_CONSISTENT;
1078 _rtld_debug_state();
1079
1080 _rtld_exclusive_exit(&mask);
1081
1082 return obj;
1083 }
1084
1085 /*
1086 * Find a symbol in the main program.
1087 */
1088 void *
1089 _rtld_objmain_sym(const char *name)
1090 {
1091 unsigned long hash;
1092 const Elf_Sym *def;
1093 const Obj_Entry *obj;
1094 DoneList donelist;
1095
1096 hash = _rtld_elf_hash(name);
1097 obj = _rtld_objmain;
1098 _rtld_donelist_init(&donelist);
1099
1100 def = _rtld_symlook_list(name, hash, &_rtld_list_main, &obj, 0,
1101 NULL, &donelist);
1102
1103 if (def != NULL)
1104 return obj->relocbase + def->st_value;
1105 return NULL;
1106 }
1107
1108 #ifdef __powerpc__
1109 static __noinline void *
1110 hackish_return_address(void)
1111 {
1112 #if __GNUC_PREREQ__(6,0)
1113 #pragma GCC diagnostic push
1114 #pragma GCC diagnostic ignored "-Wframe-address"
1115 #endif
1116 return __builtin_return_address(1);
1117 #if __GNUC_PREREQ__(6,0)
1118 #pragma GCC diagnostic pop
1119 #endif
1120 }
1121 #endif
1122
1123 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1124 #define lookup_mutex_enter() _rtld_exclusive_enter(&mask)
1125 #define lookup_mutex_exit() _rtld_exclusive_exit(&mask)
1126 #else
1127 #define lookup_mutex_enter() _rtld_shared_enter()
1128 #define lookup_mutex_exit() _rtld_shared_exit()
1129 #endif
1130
1131 static void *
1132 do_dlsym(void *handle, const char *name, const Ver_Entry *ventry, void *retaddr)
1133 {
1134 const Obj_Entry *obj;
1135 unsigned long hash;
1136 const Elf_Sym *def;
1137 const Obj_Entry *defobj;
1138 DoneList donelist;
1139 const u_int flags = SYMLOOK_DLSYM | SYMLOOK_IN_PLT;
1140 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1141 sigset_t mask;
1142 #endif
1143
1144 lookup_mutex_enter();
1145
1146 hash = _rtld_elf_hash(name);
1147 def = NULL;
1148 defobj = NULL;
1149
1150 switch ((intptr_t)handle) {
1151 case (intptr_t)NULL:
1152 case (intptr_t)RTLD_NEXT:
1153 case (intptr_t)RTLD_DEFAULT:
1154 case (intptr_t)RTLD_SELF:
1155 if ((obj = _rtld_obj_from_addr(retaddr)) == NULL) {
1156 _rtld_error("Cannot determine caller's shared object");
1157 lookup_mutex_exit();
1158 return NULL;
1159 }
1160
1161 switch ((intptr_t)handle) {
1162 case (intptr_t)NULL: /* Just the caller's shared object. */
1163 def = _rtld_symlook_obj(name, hash, obj, flags, ventry);
1164 defobj = obj;
1165 break;
1166
1167 case (intptr_t)RTLD_NEXT: /* Objects after callers */
1168 obj = obj->next;
1169 /*FALLTHROUGH*/
1170
1171 case (intptr_t)RTLD_SELF: /* Caller included */
1172 for (; obj; obj = obj->next) {
1173 if ((def = _rtld_symlook_obj(name, hash, obj,
1174 flags, ventry)) != NULL) {
1175 defobj = obj;
1176 break;
1177 }
1178 }
1179 /*
1180 * Search the dynamic linker itself, and possibly
1181 * resolve the symbol from there if it is not defined
1182 * already or weak. This is how the application links
1183 * to dynamic linker services such as dlopen.
1184 */
1185 if (!def || ELF_ST_BIND(def->st_info) == STB_WEAK) {
1186 const Elf_Sym *symp = _rtld_symlook_obj(name,
1187 hash, &_rtld_objself, flags, ventry);
1188 if (symp != NULL) {
1189 def = symp;
1190 defobj = &_rtld_objself;
1191 }
1192 }
1193 break;
1194
1195 case (intptr_t)RTLD_DEFAULT:
1196 def = _rtld_symlook_default(name, hash, obj, &defobj,
1197 flags, ventry);
1198 break;
1199
1200 default:
1201 abort();
1202 }
1203 break;
1204
1205 default:
1206 if ((obj = _rtld_dlcheck(handle)) == NULL) {
1207 lookup_mutex_exit();
1208 return NULL;
1209 }
1210
1211 _rtld_donelist_init(&donelist);
1212
1213 if (obj->mainprog) {
1214 /* Search main program and all libraries loaded by it */
1215 def = _rtld_symlook_list(name, hash, &_rtld_list_main,
1216 &defobj, flags, ventry, &donelist);
1217 } else {
1218 Needed_Entry fake;
1219 DoneList depth;
1220
1221 /* Search the object and all the libraries loaded by it. */
1222 fake.next = NULL;
1223 fake.obj = __UNCONST(obj);
1224 fake.name = 0;
1225
1226 _rtld_donelist_init(&depth);
1227 def = _rtld_symlook_needed(name, hash, &fake, &defobj,
1228 flags, ventry, &donelist, &depth);
1229 }
1230
1231 break;
1232 }
1233
1234 if (def != NULL) {
1235 void *p;
1236
1237 if (ELF_ST_TYPE(def->st_info) == STT_GNU_IFUNC) {
1238 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1239 lookup_mutex_exit();
1240 _rtld_shared_enter();
1241 #endif
1242 p = (void *)_rtld_resolve_ifunc(defobj, def);
1243 _rtld_shared_exit();
1244 return p;
1245 }
1246
1247 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1248 if (ELF_ST_TYPE(def->st_info) == STT_FUNC) {
1249 p = (void *)_rtld_function_descriptor_alloc(defobj,
1250 def, 0);
1251 lookup_mutex_exit();
1252 return p;
1253 }
1254 #endif /* __HAVE_FUNCTION_DESCRIPTORS */
1255 p = defobj->relocbase + def->st_value;
1256 lookup_mutex_exit();
1257 return p;
1258 }
1259
1260 _rtld_error("Undefined symbol \"%s\"", name);
1261 lookup_mutex_exit();
1262 return NULL;
1263 }
1264
1265 __strong_alias(__dlsym,dlsym)
1266 void *
1267 dlsym(void *handle, const char *name)
1268 {
1269 void *retaddr;
1270
1271 dbg(("dlsym of %s in %p", name, handle));
1272
1273 #ifdef __powerpc__
1274 retaddr = hackish_return_address();
1275 #else
1276 retaddr = __builtin_return_address(0);
1277 #endif
1278 return do_dlsym(handle, name, NULL, retaddr);
1279 }
1280
1281 __strong_alias(__dlvsym,dlvsym)
1282 void *
1283 dlvsym(void *handle, const char *name, const char *version)
1284 {
1285 Ver_Entry *ventry = NULL;
1286 Ver_Entry ver_entry;
1287 void *retaddr;
1288
1289 dbg(("dlvsym of %s@%s in %p", name, version ? version : NULL, handle));
1290
1291 if (version != NULL) {
1292 ver_entry.name = version;
1293 ver_entry.file = NULL;
1294 ver_entry.hash = _rtld_elf_hash(version);
1295 ver_entry.flags = 0;
1296 ventry = &ver_entry;
1297 }
1298 #ifdef __powerpc__
1299 retaddr = hackish_return_address();
1300 #else
1301 retaddr = __builtin_return_address(0);
1302 #endif
1303 return do_dlsym(handle, name, ventry, retaddr);
1304 }
1305
1306 __strong_alias(__dladdr,dladdr)
1307 int
1308 dladdr(const void *addr, Dl_info *info)
1309 {
1310 const Obj_Entry *obj;
1311 const Elf_Sym *def, *best_def;
1312 void *symbol_addr;
1313 unsigned long symoffset;
1314 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1315 sigset_t mask;
1316 #endif
1317
1318 dbg(("dladdr of %p", addr));
1319
1320 lookup_mutex_enter();
1321
1322 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1323 addr = _rtld_function_descriptor_function(addr);
1324 #endif /* __HAVE_FUNCTION_DESCRIPTORS */
1325
1326 obj = _rtld_obj_from_addr(addr);
1327 if (obj == NULL) {
1328 _rtld_error("No shared object contains address");
1329 lookup_mutex_exit();
1330 return 0;
1331 }
1332 info->dli_fname = obj->path;
1333 info->dli_fbase = obj->mapbase;
1334 info->dli_saddr = (void *)0;
1335 info->dli_sname = NULL;
1336
1337 /*
1338 * Walk the symbol list looking for the symbol whose address is
1339 * closest to the address sent in.
1340 */
1341 best_def = NULL;
1342 for (symoffset = 0; symoffset < obj->nchains; symoffset++) {
1343 def = obj->symtab + symoffset;
1344
1345 /*
1346 * For skip the symbol if st_shndx is either SHN_UNDEF or
1347 * SHN_COMMON.
1348 */
1349 if (def->st_shndx == SHN_UNDEF || def->st_shndx == SHN_COMMON)
1350 continue;
1351
1352 /*
1353 * If the symbol is greater than the specified address, or if it
1354 * is further away from addr than the current nearest symbol,
1355 * then reject it.
1356 */
1357 symbol_addr = obj->relocbase + def->st_value;
1358 if (symbol_addr > addr || symbol_addr < info->dli_saddr)
1359 continue;
1360
1361 /* Update our idea of the nearest symbol. */
1362 info->dli_sname = obj->strtab + def->st_name;
1363 info->dli_saddr = symbol_addr;
1364 best_def = def;
1365
1366
1367 /* Exact match? */
1368 if (info->dli_saddr == addr)
1369 break;
1370 }
1371
1372 #ifdef __HAVE_FUNCTION_DESCRIPTORS
1373 if (best_def != NULL && ELF_ST_TYPE(best_def->st_info) == STT_FUNC)
1374 info->dli_saddr = (void *)_rtld_function_descriptor_alloc(obj,
1375 best_def, 0);
1376 #else
1377 __USE(best_def);
1378 #endif /* __HAVE_FUNCTION_DESCRIPTORS */
1379
1380 lookup_mutex_exit();
1381 return 1;
1382 }
1383
1384 __strong_alias(__dlinfo,dlinfo)
1385 int
1386 dlinfo(void *handle, int req, void *v)
1387 {
1388 const Obj_Entry *obj;
1389 void *retaddr;
1390
1391 dbg(("dlinfo for %p %d", handle, req));
1392
1393 _rtld_shared_enter();
1394
1395 if (handle == RTLD_SELF) {
1396 #ifdef __powerpc__
1397 retaddr = hackish_return_address();
1398 #else
1399 retaddr = __builtin_return_address(0);
1400 #endif
1401 if ((obj = _rtld_obj_from_addr(retaddr)) == NULL) {
1402 _rtld_error("Cannot determine caller's shared object");
1403 _rtld_shared_exit();
1404 return -1;
1405 }
1406 } else {
1407 if ((obj = _rtld_dlcheck(handle)) == NULL) {
1408 _rtld_shared_exit();
1409 return -1;
1410 }
1411 }
1412
1413 switch (req) {
1414 case RTLD_DI_LINKMAP:
1415 {
1416 const struct link_map **map = v;
1417
1418 *map = &obj->linkmap;
1419 break;
1420 }
1421
1422 default:
1423 _rtld_error("Invalid request");
1424 _rtld_shared_exit();
1425 return -1;
1426 }
1427
1428 _rtld_shared_exit();
1429 return 0;
1430 }
1431
1432 __strong_alias(__dl_iterate_phdr,dl_iterate_phdr);
1433 int
1434 dl_iterate_phdr(int (*callback)(struct dl_phdr_info *, size_t, void *), void *param)
1435 {
1436 struct dl_phdr_info phdr_info;
1437 const Obj_Entry *obj;
1438 int error = 0;
1439
1440 dbg(("dl_iterate_phdr"));
1441
1442 _rtld_shared_enter();
1443
1444 for (obj = _rtld_objlist; obj != NULL; obj = obj->next) {
1445 phdr_info.dlpi_addr = (Elf_Addr)obj->relocbase;
1446 /* XXX: wrong but not fixing it yet */
1447 phdr_info.dlpi_name = obj->path;
1448 phdr_info.dlpi_phdr = obj->phdr;
1449 phdr_info.dlpi_phnum = obj->phsize / sizeof(obj->phdr[0]);
1450 #if defined(__HAVE_TLS_VARIANT_I) || defined(__HAVE_TLS_VARIANT_II)
1451 phdr_info.dlpi_tls_modid = obj->tlsindex;
1452 phdr_info.dlpi_tls_data = obj->tlsinit;
1453 #else
1454 phdr_info.dlpi_tls_modid = 0;
1455 phdr_info.dlpi_tls_data = 0;
1456 #endif
1457 phdr_info.dlpi_adds = _rtld_objloads;
1458 phdr_info.dlpi_subs = _rtld_objloads - _rtld_objcount;
1459
1460 /* XXXlocking: exit point */
1461 error = callback(&phdr_info, sizeof(phdr_info), param);
1462 if (error)
1463 break;
1464 }
1465
1466 _rtld_shared_exit();
1467 return error;
1468 }
1469
1470 void
1471 __dl_cxa_refcount(void *addr, ssize_t delta)
1472 {
1473 sigset_t mask;
1474 Obj_Entry *obj;
1475
1476 if (delta == 0)
1477 return;
1478
1479 dbg(("__dl_cxa_refcount of %p with %zd", addr, delta));
1480
1481 _rtld_exclusive_enter(&mask);
1482 obj = _rtld_obj_from_addr(addr);
1483
1484 if (obj == NULL) {
1485 dbg(("__dl_cxa_refcont: address not found"));
1486 _rtld_error("No shared object contains address");
1487 _rtld_exclusive_exit(&mask);
1488 return;
1489 }
1490 if (delta > 0 && obj->cxa_refcount > SIZE_MAX - delta)
1491 _rtld_error("Reference count overflow");
1492 else if (delta < 0 && obj->cxa_refcount < -1 + (size_t)-(delta + 1))
1493 _rtld_error("Reference count underflow");
1494 else {
1495 if (obj->cxa_refcount == 0)
1496 ++obj->refcount;
1497 obj->cxa_refcount += delta;
1498 dbg(("new reference count: %zu", obj->cxa_refcount));
1499 if (obj->cxa_refcount == 0) {
1500 --obj->refcount;
1501 if (obj->refcount == 0)
1502 _rtld_unload_object(&mask, obj, true);
1503 }
1504 }
1505
1506 _rtld_exclusive_exit(&mask);
1507 }
1508
1509 /*
1510 * Error reporting function. Use it like printf. If formats the message
1511 * into a buffer, and sets things up so that the next call to dlerror()
1512 * will return the message.
1513 */
1514 void
1515 _rtld_error(const char *fmt,...)
1516 {
1517 static char buf[512];
1518 va_list ap;
1519
1520 va_start(ap, fmt);
1521 xvsnprintf(buf, sizeof buf, fmt, ap);
1522 error_message = buf;
1523 va_end(ap);
1524 }
1525
1526 void
1527 _rtld_debug_state(void)
1528 {
1529 #if defined(__hppa__)
1530 __asm volatile("nop" ::: "memory");
1531 #endif
1532
1533 /* Prevent optimizer from removing calls to this function */
1534 __insn_barrier();
1535 }
1536
1537 void
1538 _rtld_linkmap_add(Obj_Entry *obj)
1539 {
1540 struct link_map *l = &obj->linkmap;
1541 struct link_map *prev;
1542
1543 obj->linkmap.l_name = obj->path;
1544 obj->linkmap.l_addr = obj->relocbase;
1545 obj->linkmap.l_ld = obj->dynamic;
1546 #ifdef __mips__
1547 /* XXX This field is not standard and will be removed eventually. */
1548 obj->linkmap.l_offs = obj->relocbase;
1549 #endif
1550
1551 if (_rtld_debug.r_map == NULL) {
1552 _rtld_debug.r_map = l;
1553 return;
1554 }
1555
1556 /*
1557 * Scan to the end of the list, but not past the entry for the
1558 * dynamic linker, which we want to keep at the very end.
1559 */
1560 for (prev = _rtld_debug.r_map;
1561 prev->l_next != NULL && prev->l_next != &_rtld_objself.linkmap;
1562 prev = prev->l_next);
1563
1564 l->l_prev = prev;
1565 l->l_next = prev->l_next;
1566 if (l->l_next != NULL)
1567 l->l_next->l_prev = l;
1568 prev->l_next = l;
1569 }
1570
1571 void
1572 _rtld_linkmap_delete(Obj_Entry *obj)
1573 {
1574 struct link_map *l = &obj->linkmap;
1575
1576 if (l->l_prev == NULL) {
1577 if ((_rtld_debug.r_map = l->l_next) != NULL)
1578 l->l_next->l_prev = NULL;
1579 return;
1580 }
1581 if ((l->l_prev->l_next = l->l_next) != NULL)
1582 l->l_next->l_prev = l->l_prev;
1583 }
1584
1585 static Obj_Entry *
1586 _rtld_obj_from_addr(const void *addr)
1587 {
1588 Obj_Entry *obj;
1589
1590 for (obj = _rtld_objlist; obj != NULL; obj = obj->next) {
1591 if (addr < (void *) obj->mapbase)
1592 continue;
1593 if (addr < (void *) (obj->mapbase + obj->mapsize))
1594 return obj;
1595 }
1596 return NULL;
1597 }
1598
1599 static void
1600 _rtld_objlist_clear(Objlist *list)
1601 {
1602 while (!SIMPLEQ_EMPTY(list)) {
1603 Objlist_Entry* elm = SIMPLEQ_FIRST(list);
1604 SIMPLEQ_REMOVE_HEAD(list, link);
1605 xfree(elm);
1606 }
1607 }
1608
1609 static void
1610 _rtld_objlist_remove(Objlist *list, Obj_Entry *obj)
1611 {
1612 Objlist_Entry *elm;
1613
1614 if ((elm = _rtld_objlist_find(list, obj)) != NULL) {
1615 SIMPLEQ_REMOVE(list, elm, Struct_Objlist_Entry, link);
1616 xfree(elm);
1617 }
1618 }
1619
1620 #define RTLD_EXCLUSIVE_MASK 0x80000000U
1621 static volatile unsigned int _rtld_mutex;
1622 static volatile unsigned int _rtld_waiter_exclusive;
1623 static volatile unsigned int _rtld_waiter_shared;
1624
1625 void
1626 _rtld_shared_enter(void)
1627 {
1628 unsigned int cur;
1629 lwpid_t waiter, self = 0;
1630
1631 membar_enter();
1632
1633 for (;;) {
1634 cur = _rtld_mutex;
1635 /*
1636 * First check if we are currently not exclusively locked.
1637 */
1638 if ((cur & RTLD_EXCLUSIVE_MASK) == 0) {
1639 /* Yes, so increment use counter */
1640 if (atomic_cas_uint(&_rtld_mutex, cur, cur + 1) != cur)
1641 continue;
1642 membar_enter();
1643 return;
1644 }
1645 /*
1646 * Someone has an exclusive lock. Puts us on the waiter list.
1647 */
1648 if (!self)
1649 self = _lwp_self();
1650 if (cur == (self | RTLD_EXCLUSIVE_MASK)) {
1651 if (_rtld_mutex_may_recurse)
1652 return;
1653 _rtld_error("dead lock detected");
1654 _rtld_die();
1655 }
1656 waiter = atomic_swap_uint(&_rtld_waiter_shared, self);
1657 /*
1658 * Check for race against _rtld_exclusive_exit before sleeping.
1659 */
1660 membar_sync();
1661 if ((_rtld_mutex & RTLD_EXCLUSIVE_MASK) ||
1662 _rtld_waiter_exclusive)
1663 _lwp_park(CLOCK_REALTIME, 0, NULL, 0,
1664 __UNVOLATILE(&_rtld_mutex), NULL);
1665 /* Try to remove us from the waiter list. */
1666 atomic_cas_uint(&_rtld_waiter_shared, self, 0);
1667 if (waiter)
1668 _lwp_unpark(waiter, __UNVOLATILE(&_rtld_mutex));
1669 }
1670 }
1671
1672 void
1673 _rtld_shared_exit(void)
1674 {
1675 lwpid_t waiter;
1676
1677 /*
1678 * Shared lock taken after an exclusive lock.
1679 * Just assume this is a partial recursion.
1680 */
1681 if (_rtld_mutex & RTLD_EXCLUSIVE_MASK)
1682 return;
1683
1684 /*
1685 * Wakeup LWPs waiting for an exclusive lock if this is the last
1686 * LWP on the shared lock.
1687 */
1688 membar_exit();
1689 if (atomic_dec_uint_nv(&_rtld_mutex))
1690 return;
1691 membar_sync();
1692 if ((waiter = _rtld_waiter_exclusive) != 0)
1693 _lwp_unpark(waiter, __UNVOLATILE(&_rtld_mutex));
1694 }
1695
1696 void
1697 _rtld_exclusive_enter(sigset_t *mask)
1698 {
1699 lwpid_t waiter, self = _lwp_self();
1700 unsigned int locked_value = (unsigned int)self | RTLD_EXCLUSIVE_MASK;
1701 unsigned int cur;
1702 sigset_t blockmask;
1703
1704 sigfillset(&blockmask);
1705 sigdelset(&blockmask, SIGTRAP); /* Allow the debugger */
1706 sigprocmask(SIG_BLOCK, &blockmask, mask);
1707
1708 for (;;) {
1709 if (atomic_cas_uint(&_rtld_mutex, 0, locked_value) == 0) {
1710 membar_enter();
1711 break;
1712 }
1713 waiter = atomic_swap_uint(&_rtld_waiter_exclusive, self);
1714 membar_sync();
1715 cur = _rtld_mutex;
1716 if (cur == locked_value) {
1717 _rtld_error("dead lock detected");
1718 _rtld_die();
1719 }
1720 if (cur)
1721 _lwp_park(CLOCK_REALTIME, 0, NULL, 0,
1722 __UNVOLATILE(&_rtld_mutex), NULL);
1723 atomic_cas_uint(&_rtld_waiter_exclusive, self, 0);
1724 if (waiter)
1725 _lwp_unpark(waiter, __UNVOLATILE(&_rtld_mutex));
1726 }
1727 }
1728
1729 void
1730 _rtld_exclusive_exit(sigset_t *mask)
1731 {
1732 lwpid_t waiter;
1733
1734 membar_exit();
1735 _rtld_mutex = 0;
1736 membar_sync();
1737 if ((waiter = _rtld_waiter_exclusive) != 0)
1738 _lwp_unpark(waiter, __UNVOLATILE(&_rtld_mutex));
1739
1740 if ((waiter = _rtld_waiter_shared) != 0)
1741 _lwp_unpark(waiter, __UNVOLATILE(&_rtld_mutex));
1742
1743 sigprocmask(SIG_SETMASK, mask, NULL);
1744 }
1745