]> git.ipfire.org Git - thirdparty/binutils-gdb.git/blob - libctf/ctf-archive.c
6c4595fcc84d8641fcd224e5eb5954a940c3cdd9
[thirdparty/binutils-gdb.git] / libctf / ctf-archive.c
1 /* CTF archive files.
2 Copyright (C) 2019-2025 Free Software Foundation, Inc.
3
4 This file is part of libctf.
5
6 libctf is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
10
11 This program is distributed in the hope that it will be useful, but
12 WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
14 See the GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program; see the file COPYING. If not see
18 <http://www.gnu.org/licenses/>. */
19
20 #include <ctf-impl.h>
21 #include <sys/types.h>
22 #include <sys/stat.h>
23 #include <elf.h>
24 #include "ctf-endian.h"
25 #include <errno.h>
26 #include <fcntl.h>
27 #include <stdio.h>
28 #include <string.h>
29 #include <unistd.h>
30
31 #ifdef HAVE_MMAP
32 #include <sys/mman.h>
33 #endif
34
35 static off_t arc_write_one_ctf (ctf_dict_t * f, int fd, size_t threshold);
36 static ctf_dict_t *ctf_dict_open_by_offset (const struct ctf_archive *arc,
37 const ctf_sect_t *symsect,
38 const ctf_sect_t *strsect,
39 size_t offset, int little_endian,
40 int *errp);
41 static int sort_modent_by_name (const void *one, const void *two, void *n);
42 static void *arc_mmap_header (int fd, size_t headersz);
43 static void *arc_mmap_file (int fd, size_t size);
44 static int arc_mmap_writeout (int fd, void *header, size_t headersz,
45 const char **errmsg);
46 static int arc_mmap_unmap (void *header, size_t headersz, const char **errmsg);
47 static int ctf_arc_import_parent (const ctf_archive_t *arc, ctf_dict_t *fp,
48 int *errp);
49
50 /* Flag to indicate "symbol not present" in ctf_archive_internal.ctfi_symdicts
51 and ctfi_symnamedicts. Never initialized. */
52 static ctf_dict_t enosym;
53
54 /* Write out a CTF archive to the start of the file referenced by the passed-in
55 fd. The entries in CTF_DICTS are referenced by name: the names are passed in
56 the names array, which must have CTF_DICTS entries.
57
58 Returns 0 on success, or an errno, or an ECTF_* value. */
59 int
60 ctf_arc_write_fd (int fd, ctf_dict_t **ctf_dicts, size_t ctf_dict_cnt,
61 const char **names, size_t threshold)
62 {
63 const char *errmsg;
64 struct ctf_archive *archdr;
65 size_t i;
66 char dummy = 0;
67 size_t headersz;
68 ssize_t namesz;
69 size_t ctf_startoffs; /* Start of the section we are working over. */
70 char *nametbl = NULL; /* The name table. */
71 char *np;
72 off_t nameoffs;
73 struct ctf_archive_modent *modent;
74
75 ctf_dprintf ("Writing CTF archive with %lu files\n",
76 (unsigned long) ctf_dict_cnt);
77
78 /* Figure out the size of the mmap()ed header, including the
79 ctf_archive_modent array. We assume that all of this needs no
80 padding: a likely assumption, given that it's all made up of
81 uint64_t's. */
82 headersz = sizeof (struct ctf_archive)
83 + (ctf_dict_cnt * sizeof (uint64_t) * 2);
84 ctf_dprintf ("headersz is %lu\n", (unsigned long) headersz);
85
86 /* From now on we work in two pieces: an mmap()ed region from zero up to the
87 headersz, and a region updated via write() starting after that, containing
88 all the tables. Platforms that do not support mmap() just use write(). */
89 ctf_startoffs = headersz;
90 if (lseek (fd, ctf_startoffs - 1, SEEK_SET) < 0)
91 {
92 errmsg = N_("ctf_arc_write(): cannot extend file while writing");
93 goto err;
94 }
95
96 if (write (fd, &dummy, 1) < 0)
97 {
98 errmsg = N_("ctf_arc_write(): cannot extend file while writing");
99 goto err;
100 }
101
102 if ((archdr = arc_mmap_header (fd, headersz)) == NULL)
103 {
104 errmsg = N_("ctf_arc_write(): cannot mmap");
105 goto err;
106 }
107
108 /* Fill in everything we can, which is everything other than the name
109 table offset. */
110 archdr->ctfa_magic = htole64 (CTFA_MAGIC);
111 archdr->ctfa_ndicts = htole64 (ctf_dict_cnt);
112 archdr->ctfa_ctfs = htole64 (ctf_startoffs);
113
114 /* We could validate that all CTF files have the same data model, but
115 since any reasonable construction process will be building things of
116 only one bitness anyway, this is pretty pointless, so just use the
117 model of the first CTF file for all of them. (It *is* valid to
118 create an empty archive: the value of ctfa_model is irrelevant in
119 this case, but we must be sure not to dereference uninitialized
120 memory.) */
121
122 if (ctf_dict_cnt > 0)
123 archdr->ctfa_model = htole64 (ctf_getmodel (ctf_dicts[0]));
124
125 /* Now write out the CTFs: ctf_archive_modent array via the mapping,
126 ctfs via write(). The names themselves have not been written yet: we
127 track them in a local strtab until the time is right, and sort the
128 modents array after construction.
129
130 The name table is not sorted. */
131
132 for (i = 0, namesz = 0; i < le64toh (archdr->ctfa_ndicts); i++)
133 namesz += strlen (names[i]) + 1;
134
135 nametbl = malloc (namesz);
136 if (nametbl == NULL)
137 {
138 errmsg = N_("ctf_arc_write(): error writing named CTF to archive");
139 goto err_unmap;
140 }
141
142 for (i = 0, namesz = 0,
143 modent = (ctf_archive_modent_t *) ((char *) archdr
144 + sizeof (struct ctf_archive));
145 i < le64toh (archdr->ctfa_ndicts); i++)
146 {
147 off_t off;
148
149 strcpy (&nametbl[namesz], names[i]);
150
151 off = arc_write_one_ctf (ctf_dicts[i], fd, threshold);
152 if ((off < 0) && (off > -ECTF_BASE))
153 {
154 errmsg = N_("ctf_arc_write(): cannot determine file "
155 "position while writing to archive");
156 goto err_free;
157 }
158 if (off < 0)
159 {
160 errmsg = N_("ctf_arc_write(): cannot write CTF file to archive");
161 errno = off * -1;
162 goto err_free;
163 }
164
165 modent->name_offset = htole64 (namesz);
166 modent->ctf_offset = htole64 (off - ctf_startoffs);
167 namesz += strlen (names[i]) + 1;
168 modent++;
169 }
170
171 ctf_qsort_r ((ctf_archive_modent_t *) ((char *) archdr
172 + sizeof (struct ctf_archive)),
173 le64toh (archdr->ctfa_ndicts),
174 sizeof (struct ctf_archive_modent), sort_modent_by_name,
175 nametbl);
176
177 /* Now the name table. */
178
179 if ((nameoffs = lseek (fd, 0, SEEK_CUR)) < 0)
180 {
181 errmsg = N_("ctf_arc_write(): cannot get current file position "
182 "in archive");
183 goto err_free;
184 }
185 archdr->ctfa_names = htole64 (nameoffs);
186 np = nametbl;
187 while (namesz > 0)
188 {
189 ssize_t len;
190 if ((len = write (fd, np, namesz)) < 0)
191 {
192 errmsg = N_("ctf_arc_write(): cannot write name table to archive");
193 goto err_free;
194 }
195 namesz -= len;
196 np += len;
197 }
198 free (nametbl);
199
200 if (arc_mmap_writeout (fd, archdr, headersz, &errmsg) < 0)
201 goto err_unmap;
202 if (arc_mmap_unmap (archdr, headersz, &errmsg) < 0)
203 goto err;
204 return 0;
205
206 err_free:
207 free (nametbl);
208 err_unmap:
209 arc_mmap_unmap (archdr, headersz, NULL);
210 err:
211 /* We report errors into the first file in the archive, if any: if this is a
212 zero-file archive, put it in the open-errors stream for lack of anywhere
213 else for it to go. */
214 ctf_err_warn (ctf_dict_cnt > 0 ? ctf_dicts[0] : NULL, 0, errno, "%s",
215 gettext (errmsg));
216 return errno;
217 }
218
219 /* Write out a CTF archive. The entries in CTF_DICTS are referenced by name:
220 the names are passed in the names array, which must have CTF_DICTS entries.
221
222 If the filename is NULL, create a temporary file and return a pointer to it.
223
224 Returns 0 on success, or an errno, or an ECTF_* value. */
225 int
226 ctf_arc_write (const char *file, ctf_dict_t **ctf_dicts, size_t ctf_dict_cnt,
227 const char **names, size_t threshold)
228 {
229 int err;
230 int fd;
231
232 if ((fd = open (file, O_RDWR | O_CREAT | O_TRUNC | O_CLOEXEC, 0666)) < 0)
233 {
234 ctf_err_warn (ctf_dict_cnt > 0 ? ctf_dicts[0] : NULL, 0, errno,
235 _("ctf_arc_write(): cannot create %s"), file);
236 return errno;
237 }
238
239 err = ctf_arc_write_fd (fd, ctf_dicts, ctf_dict_cnt, names, threshold);
240 if (err)
241 goto err_close;
242
243 if ((err = close (fd)) < 0)
244 ctf_err_warn (ctf_dict_cnt > 0 ? ctf_dicts[0] : NULL, 0, errno,
245 _("ctf_arc_write(): cannot close after writing to archive"));
246 goto err;
247
248 err_close:
249 (void) close (fd);
250 err:
251 if (err < 0)
252 unlink (file);
253
254 return err;
255 }
256
257 /* Write one CTF dict out. Return the file position of the written file (or
258 rather, of the file-size uint64_t that precedes it): negative return is a
259 negative errno or ctf_errno value. On error, the file position may no longer
260 be at the end of the file. */
261 static off_t
262 arc_write_one_ctf (ctf_dict_t *f, int fd, size_t threshold)
263 {
264 off_t off, end_off;
265 uint64_t ctfsz = 0;
266 char *ctfszp;
267 size_t ctfsz_len;
268
269 if ((off = lseek (fd, 0, SEEK_CUR)) < 0)
270 return errno * -1;
271
272 /* This zero-write turns into the size in a moment. */
273 ctfsz_len = sizeof (ctfsz);
274 ctfszp = (char *) &ctfsz;
275 while (ctfsz_len > 0)
276 {
277 ssize_t writelen = write (fd, ctfszp, ctfsz_len);
278 if (writelen < 0)
279 return errno * -1;
280 ctfsz_len -= writelen;
281 ctfszp += writelen;
282 }
283
284 if (ctf_write_thresholded (f, fd, threshold) != 0)
285 return f->ctf_errno * -1;
286
287 if ((end_off = lseek (fd, 0, SEEK_CUR)) < 0)
288 return errno * -1;
289 ctfsz = htole64 (end_off - off);
290
291 if ((lseek (fd, off, SEEK_SET)) < 0)
292 return errno * -1;
293
294 /* ... here. */
295 ctfsz_len = sizeof (ctfsz);
296 ctfszp = (char *) &ctfsz;
297 while (ctfsz_len > 0)
298 {
299 ssize_t writelen = write (fd, ctfszp, ctfsz_len);
300 if (writelen < 0)
301 return errno * -1;
302 ctfsz_len -= writelen;
303 ctfszp += writelen;
304 }
305
306 end_off = LCTF_ALIGN_OFFS (end_off, 8);
307 if ((lseek (fd, end_off, SEEK_SET)) < 0)
308 return errno * -1;
309
310 return off;
311 }
312
313 /* qsort() function to sort the array of struct ctf_archive_modents into
314 ascending name order. */
315 static int
316 sort_modent_by_name (const void *one, const void *two, void *n)
317 {
318 const struct ctf_archive_modent *a = one;
319 const struct ctf_archive_modent *b = two;
320 char *nametbl = n;
321
322 return strcmp (&nametbl[le64toh (a->name_offset)],
323 &nametbl[le64toh (b->name_offset)]);
324 }
325
326 /* bsearch_r() function to search for a given name in the sorted array of struct
327 ctf_archive_modents. */
328 static int
329 search_modent_by_name (const void *key, const void *ent, void *arg)
330 {
331 const char *k = key;
332 const struct ctf_archive_modent *v = ent;
333 const char *search_nametbl = arg;
334
335 return strcmp (k, &search_nametbl[le64toh (v->name_offset)]);
336 }
337
338 /* Make a new struct ctf_archive_internal wrapper for a ctf_archive or a
339 ctf_dict. Closes ARC and/or FP on error. Arrange to free the SYMSECT or
340 STRSECT, as needed, on close. Possibly do not unmap on close. */
341
342 struct ctf_archive_internal *
343 ctf_new_archive_internal (int is_archive, int unmap_on_close,
344 struct ctf_archive *arc,
345 ctf_dict_t *fp, const ctf_sect_t *symsect,
346 const ctf_sect_t *strsect,
347 int *errp)
348 {
349 struct ctf_archive_internal *arci;
350
351 if ((arci = calloc (1, sizeof (struct ctf_archive_internal))) == NULL)
352 {
353 if (is_archive)
354 {
355 if (unmap_on_close)
356 ctf_arc_close_internal (arc);
357 }
358 else
359 ctf_dict_close (fp);
360 return (ctf_set_open_errno (errp, errno));
361 }
362 arci->ctfi_is_archive = is_archive;
363 if (is_archive)
364 arci->ctfi_archive = arc;
365 else
366 arci->ctfi_dict = fp;
367 if (symsect)
368 memcpy (&arci->ctfi_symsect, symsect, sizeof (struct ctf_sect));
369 if (strsect)
370 memcpy (&arci->ctfi_strsect, strsect, sizeof (struct ctf_sect));
371 arci->ctfi_free_symsect = 0;
372 arci->ctfi_free_strsect = 0;
373 arci->ctfi_unmap_on_close = unmap_on_close;
374 arci->ctfi_symsect_little_endian = -1;
375
376 return arci;
377 }
378
379 /* Set the symbol-table endianness of an archive (defaulting the symtab
380 endianness of all ctf_file_t's opened from that archive). */
381 void
382 ctf_arc_symsect_endianness (ctf_archive_t *arc, int little_endian)
383 {
384 arc->ctfi_symsect_little_endian = !!little_endian;
385 if (!arc->ctfi_is_archive)
386 ctf_symsect_endianness (arc->ctfi_dict, arc->ctfi_symsect_little_endian);
387 }
388
389 /* Get the CTF preamble from data in a buffer, which may be either an archive or
390 a CTF dict. If multiple dicts are present in an archive, the preamble comes
391 from an arbitrary dict. The preamble is a pointer into the ctfsect passed
392 in. */
393
394 const ctf_preamble_t *
395 ctf_arc_bufpreamble (const ctf_sect_t *ctfsect)
396 {
397 if (ctfsect->cts_data != NULL
398 && ctfsect->cts_size > sizeof (uint64_t)
399 && (le64toh ((*(uint64_t *) ctfsect->cts_data)) == CTFA_MAGIC))
400 {
401 struct ctf_archive *arc = (struct ctf_archive *) ctfsect->cts_data;
402 return (const ctf_preamble_t *) ((char *) arc + le64toh (arc->ctfa_ctfs)
403 + sizeof (uint64_t));
404 }
405 else
406 return (const ctf_preamble_t *) ctfsect->cts_data;
407 }
408
409 /* Open a CTF archive or dictionary from data in a buffer (which the caller must
410 preserve until ctf_arc_close() time). Returns the archive, or NULL and an
411 error in *err (if not NULL). */
412 ctf_archive_t *
413 ctf_arc_bufopen (const ctf_sect_t *ctfsect, const ctf_sect_t *symsect,
414 const ctf_sect_t *strsect, int *errp)
415 {
416 struct ctf_archive *arc = NULL;
417 int is_archive;
418 ctf_dict_t *fp = NULL;
419
420 if (ctfsect->cts_data != NULL
421 && ctfsect->cts_size > sizeof (uint64_t)
422 && (le64toh ((*(uint64_t *) ctfsect->cts_data)) == CTFA_MAGIC))
423 {
424 /* The archive is mmappable, so this operation is trivial.
425
426 This buffer is nonmodifiable, so the trick involving mmapping only part
427 of it and storing the length in the magic number is not applicable: so
428 record this fact in the archive-wrapper header. (We cannot record it
429 in the archive, because the archive may very well be a read-only
430 mapping.) */
431
432 is_archive = 1;
433 arc = (struct ctf_archive *) ctfsect->cts_data;
434 }
435 else
436 {
437 is_archive = 0;
438 if ((fp = ctf_bufopen (ctfsect, symsect, strsect, errp)) == NULL)
439 {
440 ctf_err_warn (NULL, 0, *errp, _("ctf_arc_bufopen(): cannot open CTF"));
441 return NULL;
442 }
443 }
444 return ctf_new_archive_internal (is_archive, 0, arc, fp, symsect, strsect,
445 errp);
446 }
447
448 /* Open a CTF archive. Returns the archive, or NULL and an error in *err (if
449 not NULL). */
450 struct ctf_archive *
451 ctf_arc_open_internal (const char *filename, int *errp)
452 {
453 const char *errmsg;
454 int fd;
455 struct stat s;
456 struct ctf_archive *arc; /* (Actually the whole file.) */
457
458 libctf_init_debug();
459 if ((fd = open (filename, O_RDONLY)) < 0)
460 {
461 errmsg = N_("ctf_arc_open(): cannot open %s");
462 goto err;
463 }
464 if (fstat (fd, &s) < 0)
465 {
466 errmsg = N_("ctf_arc_open(): cannot stat %s");
467 goto err_close;
468 }
469
470 if ((arc = arc_mmap_file (fd, s.st_size)) == NULL)
471 {
472 errmsg = N_("ctf_arc_open(): cannot read in %s");
473 goto err_close;
474 }
475
476 if (le64toh (arc->ctfa_magic) != CTFA_MAGIC)
477 {
478 errmsg = N_("ctf_arc_open(): %s: invalid magic number");
479 errno = ECTF_FMT;
480 goto err_unmap;
481 }
482
483 /* This horrible hack lets us know how much to unmap when the file is
484 closed. (We no longer need the magic number, and the mapping
485 is private.) */
486 arc->ctfa_magic = s.st_size;
487 close (fd);
488
489 if (errp)
490 *errp = 0;
491
492 return arc;
493
494 err_unmap:
495 arc_mmap_unmap (arc, s.st_size, NULL);
496 err_close:
497 close (fd);
498 err:
499 if (errp)
500 *errp = errno;
501 ctf_err_warn (NULL, 0, errno, gettext (errmsg), filename);
502 return NULL;
503 }
504
505 /* Close an archive. */
506 void
507 ctf_arc_close_internal (struct ctf_archive *arc)
508 {
509 if (arc == NULL)
510 return;
511
512 /* See the comment in ctf_arc_open(). */
513 arc_mmap_unmap (arc, arc->ctfa_magic, NULL);
514 }
515
516 /* Public entry point: close an archive, or CTF file. */
517 void
518 ctf_arc_close (ctf_archive_t *arc)
519 {
520 if (arc == NULL)
521 return;
522
523 if (arc->ctfi_is_archive)
524 {
525 if (arc->ctfi_unmap_on_close)
526 ctf_arc_close_internal (arc->ctfi_archive);
527 }
528 else
529 ctf_dict_close (arc->ctfi_dict);
530 free (arc->ctfi_symdicts);
531 free (arc->ctfi_symnamedicts);
532 ctf_dynhash_destroy (arc->ctfi_dicts);
533 if (arc->ctfi_free_symsect)
534 free ((void *) arc->ctfi_symsect.cts_data);
535 if (arc->ctfi_free_strsect)
536 free ((void *) arc->ctfi_strsect.cts_data);
537 free (arc->ctfi_data);
538 if (arc->ctfi_bfd_close)
539 arc->ctfi_bfd_close (arc);
540 free (arc);
541 }
542
543 /* Return the ctf_dict_t with the given name, or NULL if none, setting 'err' if
544 non-NULL. A name of NULL means to open the default file. */
545 static ctf_dict_t *
546 ctf_dict_open_internal (const struct ctf_archive *arc,
547 const ctf_sect_t *symsect,
548 const ctf_sect_t *strsect,
549 const char *name, int little_endian,
550 int *errp)
551 {
552 struct ctf_archive_modent *modent;
553 const char *search_nametbl;
554
555 if (name == NULL)
556 name = _CTF_SECTION; /* The default name. */
557
558 ctf_dprintf ("ctf_dict_open_internal(%s): opening\n", name);
559
560 modent = (ctf_archive_modent_t *) ((char *) arc
561 + sizeof (struct ctf_archive));
562
563 search_nametbl = (const char *) arc + le64toh (arc->ctfa_names);
564 modent = bsearch_r (name, modent, le64toh (arc->ctfa_ndicts),
565 sizeof (struct ctf_archive_modent),
566 search_modent_by_name, (void *) search_nametbl);
567
568 /* This is actually a common case and normal operation: no error
569 debug output. */
570 if (modent == NULL)
571 {
572 if (errp)
573 *errp = ECTF_ARNNAME;
574 return NULL;
575 }
576
577 return ctf_dict_open_by_offset (arc, symsect, strsect,
578 le64toh (modent->ctf_offset),
579 little_endian, errp);
580 }
581
582 /* Return the ctf_dict_t with the given name, or NULL if none, setting 'err' if
583 non-NULL. A name of NULL means to open the default file.
584
585 Use the specified string and symbol table sections.
586
587 Public entry point. */
588 ctf_dict_t *
589 ctf_dict_open_sections (const ctf_archive_t *arc,
590 const ctf_sect_t *symsect,
591 const ctf_sect_t *strsect,
592 const char *name,
593 int *errp)
594 {
595 if (errp)
596 *errp = 0;
597
598 if (arc->ctfi_is_archive)
599 {
600 ctf_dict_t *ret;
601 ret = ctf_dict_open_internal (arc->ctfi_archive, symsect, strsect,
602 name, arc->ctfi_symsect_little_endian,
603 errp);
604 if (ret)
605 {
606 ret->ctf_archive = (ctf_archive_t *) arc;
607 if (ctf_arc_import_parent (arc, ret, errp) < 0)
608 {
609 ctf_dict_close (ret);
610 return NULL;
611 }
612 }
613 return ret;
614 }
615
616 if ((name != NULL) && (strcmp (name, _CTF_SECTION) != 0))
617 {
618 if (errp)
619 *errp = ECTF_ARNNAME;
620 return NULL;
621 }
622 arc->ctfi_dict->ctf_archive = (ctf_archive_t *) arc;
623
624 /* Bump the refcount so that the user can ctf_dict_close() it. */
625 arc->ctfi_dict->ctf_refcnt++;
626 return arc->ctfi_dict;
627 }
628
629 /* Return the ctf_dict_t with the given name, or NULL if none, setting 'err' if
630 non-NULL. A name of NULL means to open the default file.
631
632 Public entry point. */
633 ctf_dict_t *
634 ctf_dict_open (const ctf_archive_t *arc, const char *name, int *errp)
635 {
636 const ctf_sect_t *symsect = &arc->ctfi_symsect;
637 const ctf_sect_t *strsect = &arc->ctfi_strsect;
638
639 if (symsect->cts_name == NULL)
640 symsect = NULL;
641 if (strsect->cts_name == NULL)
642 strsect = NULL;
643
644 return ctf_dict_open_sections (arc, symsect, strsect, name, errp);
645 }
646
647 static void
648 ctf_cached_dict_close (void *fp)
649 {
650 ctf_dict_close ((ctf_dict_t *) fp);
651 }
652
653 /* Return the ctf_dict_t with the given name and cache it in the archive's
654 ctfi_dicts. If this is the first cached dict, designate it the
655 crossdict_cache. */
656 static ctf_dict_t *
657 ctf_dict_open_cached (ctf_archive_t *arc, const char *name, int *errp)
658 {
659 ctf_dict_t *fp;
660 char *dupname;
661
662 /* Just return from the cache if possible. */
663 if (arc->ctfi_dicts
664 && ((fp = ctf_dynhash_lookup (arc->ctfi_dicts, name)) != NULL))
665 {
666 fp->ctf_refcnt++;
667 return fp;
668 }
669
670 /* Not yet cached: open it. */
671 fp = ctf_dict_open (arc, name, errp);
672 dupname = strdup (name);
673
674 if (!fp || !dupname)
675 goto oom;
676
677 if (arc->ctfi_dicts == NULL)
678 if ((arc->ctfi_dicts
679 = ctf_dynhash_create (ctf_hash_string, ctf_hash_eq_string,
680 free, ctf_cached_dict_close)) == NULL)
681 goto oom;
682
683 if (ctf_dynhash_insert (arc->ctfi_dicts, dupname, fp) < 0)
684 goto oom;
685 fp->ctf_refcnt++;
686
687 if (arc->ctfi_crossdict_cache == NULL)
688 arc->ctfi_crossdict_cache = fp;
689
690 return fp;
691
692 oom:
693 ctf_dict_close (fp);
694 free (dupname);
695 if (errp)
696 *errp = ENOMEM;
697 return NULL;
698 }
699
700 /* Flush any caches the CTF archive may have open. */
701 void
702 ctf_arc_flush_caches (ctf_archive_t *wrapper)
703 {
704 free (wrapper->ctfi_symdicts);
705 ctf_dynhash_destroy (wrapper->ctfi_symnamedicts);
706 ctf_dynhash_destroy (wrapper->ctfi_dicts);
707 wrapper->ctfi_symdicts = NULL;
708 wrapper->ctfi_symnamedicts = NULL;
709 wrapper->ctfi_dicts = NULL;
710 wrapper->ctfi_crossdict_cache = NULL;
711 }
712
713 /* Return the ctf_dict_t at the given ctfa_ctfs-relative offset, or NULL if
714 none, setting 'err' if non-NULL. */
715 static ctf_dict_t *
716 ctf_dict_open_by_offset (const struct ctf_archive *arc,
717 const ctf_sect_t *symsect,
718 const ctf_sect_t *strsect, size_t offset,
719 int little_endian, int *errp)
720 {
721 ctf_sect_t ctfsect;
722 ctf_dict_t *fp;
723
724 ctf_dprintf ("ctf_dict_open_by_offset(%lu): opening\n", (unsigned long) offset);
725
726 memset (&ctfsect, 0, sizeof (ctf_sect_t));
727
728 offset += le64toh (arc->ctfa_ctfs);
729
730 ctfsect.cts_name = _CTF_SECTION;
731 ctfsect.cts_size = le64toh (*((uint64_t *) ((char *) arc + offset)));
732 ctfsect.cts_entsize = 1;
733 ctfsect.cts_data = (void *) ((char *) arc + offset + sizeof (uint64_t));
734 fp = ctf_bufopen (&ctfsect, symsect, strsect, errp);
735 if (fp)
736 {
737 ctf_setmodel (fp, le64toh (arc->ctfa_model));
738 if (little_endian >= 0)
739 ctf_symsect_endianness (fp, little_endian);
740 }
741 return fp;
742 }
743
744 /* Backward compatibility. */
745 ctf_dict_t *
746 ctf_arc_open_by_name (const ctf_archive_t *arc, const char *name,
747 int *errp)
748 {
749 return ctf_dict_open (arc, name, errp);
750 }
751
752 ctf_dict_t *
753 ctf_arc_open_by_name_sections (const ctf_archive_t *arc,
754 const ctf_sect_t *symsect,
755 const ctf_sect_t *strsect,
756 const char *name,
757 int *errp)
758 {
759 return ctf_dict_open_sections (arc, symsect, strsect, name, errp);
760 }
761
762 /* Import the parent into a ctf archive, if this is a child, the parent is not
763 already set, and a suitable archive member exists. No error is raised if
764 this is not possible: this is just a best-effort helper operation to give
765 people useful dicts to start with. */
766 static int
767 ctf_arc_import_parent (const ctf_archive_t *arc, ctf_dict_t *fp, int *errp)
768 {
769 if ((fp->ctf_flags & LCTF_CHILD) && fp->ctf_parname && !fp->ctf_parent)
770 {
771 int err = 0;
772 ctf_dict_t *parent = ctf_dict_open_cached ((ctf_archive_t *) arc,
773 fp->ctf_parname, &err);
774 if (errp)
775 *errp = err;
776
777 if (parent)
778 {
779 ctf_import (fp, parent);
780 ctf_dict_close (parent);
781 }
782 else if (err != ECTF_ARNNAME)
783 return -1; /* errno is set for us. */
784 }
785 return 0;
786 }
787
788 /* Return the number of members in an archive. */
789 size_t
790 ctf_archive_count (const ctf_archive_t *wrapper)
791 {
792 if (!wrapper->ctfi_is_archive)
793 return 1;
794
795 return le64toh (wrapper->ctfi_archive->ctfa_ndicts);
796 }
797
798 /* Look up a symbol in an archive by name or index (if the name is set, a lookup
799 by name is done). Return the dict in the archive that the symbol is found
800 in, and (optionally) the ctf_id_t of the symbol in that dict (so you don't
801 have to look it up yourself). The dict is cached, so repeated lookups are
802 nearly free.
803
804 As usual, you should ctf_dict_close() the returned dict once you are done
805 with it.
806
807 Returns NULL on error, and an error in errp (if set). */
808
809 static ctf_dict_t *
810 ctf_arc_lookup_sym_or_name (ctf_archive_t *wrapper, unsigned long symidx,
811 const char *symname, ctf_id_t *typep, int *errp)
812 {
813 ctf_dict_t *fp;
814 void *fpkey;
815 ctf_id_t type;
816
817 /* The usual non-archive-transparent-wrapper special case. */
818 if (!wrapper->ctfi_is_archive)
819 {
820 if (!symname)
821 {
822 if ((type = ctf_lookup_by_symbol (wrapper->ctfi_dict, symidx)) == CTF_ERR)
823 {
824 if (errp)
825 *errp = ctf_errno (wrapper->ctfi_dict);
826 return NULL;
827 }
828 }
829 else
830 {
831 if ((type = ctf_lookup_by_symbol_name (wrapper->ctfi_dict,
832 symname)) == CTF_ERR)
833 {
834 if (errp)
835 *errp = ctf_errno (wrapper->ctfi_dict);
836 return NULL;
837 }
838 }
839 if (typep)
840 *typep = type;
841 wrapper->ctfi_dict->ctf_refcnt++;
842 return wrapper->ctfi_dict;
843 }
844
845 if (wrapper->ctfi_symsect.cts_name == NULL
846 || wrapper->ctfi_symsect.cts_data == NULL
847 || wrapper->ctfi_symsect.cts_size == 0
848 || wrapper->ctfi_symsect.cts_entsize == 0)
849 {
850 if (errp)
851 *errp = ECTF_NOSYMTAB;
852 return NULL;
853 }
854
855 /* Make enough space for all possible symbol indexes, if not already done. We
856 cache the originating dictionary of all symbols. The dict links are weak,
857 to the dictionaries cached in ctfi_dicts: their refcnts are *not* bumped.
858 We also cache similar mappings for symbol names: these are ordinary
859 dynhashes, with weak links to dicts. */
860
861 if (!wrapper->ctfi_symdicts)
862 {
863 if ((wrapper->ctfi_symdicts = calloc (wrapper->ctfi_symsect.cts_size
864 / wrapper->ctfi_symsect.cts_entsize,
865 sizeof (ctf_dict_t *))) == NULL)
866 {
867 if (errp)
868 *errp = ENOMEM;
869 return NULL;
870 }
871 }
872 if (!wrapper->ctfi_symnamedicts)
873 {
874 if ((wrapper->ctfi_symnamedicts = ctf_dynhash_create (ctf_hash_string,
875 ctf_hash_eq_string,
876 free, NULL)) == NULL)
877 {
878 if (errp)
879 *errp = ENOMEM;
880 return NULL;
881 }
882 }
883
884 /* Perhaps the dict in which we found a previous lookup is cached. If it's
885 supposed to be cached but we don't find it, pretend it was always not
886 found: this should never happen, but shouldn't be allowed to cause trouble
887 if it does. */
888
889 if ((symname && ctf_dynhash_lookup_kv (wrapper->ctfi_symnamedicts,
890 symname, NULL, &fpkey))
891 || (!symname && wrapper->ctfi_symdicts[symidx] != NULL))
892 {
893 if (symname)
894 fp = (ctf_dict_t *) fpkey;
895 else
896 fp = wrapper->ctfi_symdicts[symidx];
897
898 if (fp == &enosym)
899 goto no_sym;
900
901 if (symname)
902 {
903 if ((type = ctf_lookup_by_symbol_name (fp, symname)) == CTF_ERR)
904 goto cache_no_sym;
905 }
906 else
907 {
908 if ((type = ctf_lookup_by_symbol (fp, symidx)) == CTF_ERR)
909 goto cache_no_sym;
910 }
911
912 if (typep)
913 *typep = type;
914 fp->ctf_refcnt++;
915 return fp;
916 }
917
918 /* Not cached: find it and cache it. We must track open errors ourselves even
919 if our caller doesn't, to be able to distinguish no-error end-of-iteration
920 from open errors. */
921
922 int local_err;
923 int *local_errp;
924 ctf_next_t *i = NULL;
925 const char *name;
926
927 if (errp)
928 local_errp = errp;
929 else
930 local_errp = &local_err;
931
932 while ((fp = ctf_archive_next (wrapper, &i, &name, 0, local_errp)) != NULL)
933 {
934 if (!symname)
935 {
936 if ((type = ctf_lookup_by_symbol (fp, symidx)) != CTF_ERR)
937 wrapper->ctfi_symdicts[symidx] = fp;
938 }
939 else
940 {
941 if ((type = ctf_lookup_by_symbol_name (fp, symname)) != CTF_ERR)
942 {
943 char *tmp;
944 /* No error checking, as above. */
945 if ((tmp = strdup (symname)) != NULL)
946 ctf_dynhash_insert (wrapper->ctfi_symnamedicts, tmp, fp);
947 }
948 }
949
950 if (type != CTF_ERR)
951 {
952 if (typep)
953 *typep = type;
954 ctf_next_destroy (i);
955 return fp;
956 }
957 if (ctf_errno (fp) != ECTF_NOTYPEDAT)
958 {
959 if (errp)
960 *errp = ctf_errno (fp);
961 ctf_dict_close (fp);
962 ctf_next_destroy (i);
963 return NULL; /* errno is set for us. */
964 }
965 ctf_dict_close (fp);
966 }
967 if (*local_errp != ECTF_NEXT_END)
968 {
969 ctf_next_destroy (i);
970 return NULL;
971 }
972
973 /* Don't leak end-of-iteration to the caller. */
974 *local_errp = 0;
975
976 cache_no_sym:
977 if (!symname)
978 wrapper->ctfi_symdicts[symidx] = &enosym;
979 else
980 {
981 char *tmp;
982
983 /* No error checking: if caching fails, there is only a slight performance
984 impact. */
985 if ((tmp = strdup (symname)) != NULL)
986 if (ctf_dynhash_insert (wrapper->ctfi_symnamedicts, tmp, &enosym) < 0)
987 free (tmp);
988 }
989
990 no_sym:
991 if (errp)
992 *errp = ECTF_NOTYPEDAT;
993 if (typep)
994 *typep = CTF_ERR;
995 return NULL;
996 }
997
998 /* The public API for looking up a symbol by index. */
999 ctf_dict_t *
1000 ctf_arc_lookup_symbol (ctf_archive_t *wrapper, unsigned long symidx,
1001 ctf_id_t *typep, int *errp)
1002 {
1003 return ctf_arc_lookup_sym_or_name (wrapper, symidx, NULL, typep, errp);
1004 }
1005
1006 /* The public API for looking up a symbol by name. */
1007
1008 ctf_dict_t *
1009 ctf_arc_lookup_symbol_name (ctf_archive_t *wrapper, const char *symname,
1010 ctf_id_t *typep, int *errp)
1011 {
1012 return ctf_arc_lookup_sym_or_name (wrapper, 0, symname, typep, errp);
1013 }
1014
1015 /* Return all enumeration constants with a given NAME across all dicts in an
1016 archive, similar to ctf_lookup_enumerator_next. The DICT is cached, so
1017 opening costs are paid only once, but (unlike ctf_arc_lookup_symbol*
1018 above) the results of the iterations are not cached. dict and errp are
1019 not optional. */
1020
1021 ctf_id_t
1022 ctf_arc_lookup_enumerator_next (ctf_archive_t *arc, const char *name,
1023 ctf_next_t **it, int64_t *enum_value,
1024 ctf_dict_t **dict, int *errp)
1025 {
1026 ctf_next_t *i = *it;
1027 ctf_id_t type;
1028 int opened_this_time = 0;
1029 int err;
1030
1031 /* We have two nested iterators in here: ctn_next tracks archives, while
1032 within it ctn_next_inner tracks enumerators within an archive. We
1033 keep track of the dict by simply reusing the passed-in arg: if it's
1034 changed by the caller, the caller will get an ECTF_WRONGFP error,
1035 so this is quite safe and means we don't have to track the arc and fp
1036 simultaneously in the ctf_next_t. */
1037
1038 if (!i)
1039 {
1040 if ((i = ctf_next_create ()) == NULL)
1041 {
1042 err = ENOMEM;
1043 goto err;
1044 }
1045 i->ctn_iter_fun = (void (*) (void)) ctf_arc_lookup_enumerator_next;
1046 i->cu.ctn_arc = arc;
1047 *it = i;
1048 }
1049
1050 if ((void (*) (void)) ctf_arc_lookup_enumerator_next != i->ctn_iter_fun)
1051 {
1052 err = ECTF_NEXT_WRONGFUN;
1053 goto err;
1054 }
1055
1056 if (arc != i->cu.ctn_arc)
1057 {
1058 err = ECTF_NEXT_WRONGFP;
1059 goto err;
1060 }
1061
1062 /* Prevent any earlier end-of-iteration on this dict from confusing the
1063 test below. */
1064 if (i->ctn_next != NULL)
1065 ctf_set_errno (*dict, 0);
1066
1067 do
1068 {
1069 /* At end of one dict, or not started any iterations yet?
1070 Traverse to next dict. If we never returned this dict to the
1071 caller, close it ourselves: the caller will never see it and cannot
1072 do so. */
1073
1074 if (i->ctn_next == NULL || ctf_errno (*dict) == ECTF_NEXT_END)
1075 {
1076 if (opened_this_time)
1077 {
1078 ctf_dict_close (*dict);
1079 *dict = NULL;
1080 opened_this_time = 0;
1081 }
1082
1083 *dict = ctf_archive_next (arc, &i->ctn_next, NULL, 0, &err);
1084 if (!*dict)
1085 goto err;
1086 opened_this_time = 1;
1087 }
1088
1089 type = ctf_lookup_enumerator_next (*dict, name, &i->ctn_next_inner,
1090 enum_value);
1091 }
1092 while (type == CTF_ERR && ctf_errno (*dict) == ECTF_NEXT_END);
1093
1094 if (type == CTF_ERR)
1095 {
1096 err = ctf_errno (*dict);
1097 goto err;
1098 }
1099
1100 /* If this dict is being reused from the previous iteration, bump its
1101 refcnt: the caller is going to close it and has no idea that we didn't
1102 open it this time round. */
1103 if (!opened_this_time)
1104 ctf_ref (*dict);
1105
1106 return type;
1107
1108 err: /* Also ECTF_NEXT_END. */
1109 if (opened_this_time)
1110 {
1111 ctf_dict_close (*dict);
1112 *dict = NULL;
1113 }
1114
1115 ctf_next_destroy (i);
1116 *it = NULL;
1117 if (errp)
1118 *errp = err;
1119 return CTF_ERR;
1120 }
1121
1122 /* Raw iteration over all CTF files in an archive. We pass the raw data for all
1123 CTF files in turn to the specified callback function. */
1124 static int
1125 ctf_archive_raw_iter_internal (const struct ctf_archive *arc,
1126 ctf_archive_raw_member_f *func, void *data)
1127 {
1128 int rc;
1129 size_t i;
1130 struct ctf_archive_modent *modent;
1131 const char *nametbl;
1132
1133 modent = (ctf_archive_modent_t *) ((char *) arc
1134 + sizeof (struct ctf_archive));
1135 nametbl = (((const char *) arc) + le64toh (arc->ctfa_names));
1136
1137 for (i = 0; i < le64toh (arc->ctfa_ndicts); i++)
1138 {
1139 const char *name;
1140 char *fp;
1141
1142 name = &nametbl[le64toh (modent[i].name_offset)];
1143 fp = ((char *) arc + le64toh (arc->ctfa_ctfs)
1144 + le64toh (modent[i].ctf_offset));
1145
1146 if ((rc = func (name, (void *) (fp + sizeof (uint64_t)),
1147 le64toh (*((uint64_t *) fp)), data)) != 0)
1148 return rc;
1149 }
1150 return 0;
1151 }
1152
1153 /* Raw iteration over all CTF files in an archive: public entry point.
1154
1155 Returns -EINVAL if not supported for this sort of archive. */
1156 int
1157 ctf_archive_raw_iter (const ctf_archive_t *arc,
1158 ctf_archive_raw_member_f * func, void *data)
1159 {
1160 if (arc->ctfi_is_archive)
1161 return ctf_archive_raw_iter_internal (arc->ctfi_archive, func, data);
1162
1163 return -EINVAL; /* Not supported. */
1164 }
1165
1166 /* Iterate over all CTF files in an archive: public entry point. We pass all
1167 CTF files in turn to the specified callback function. */
1168 int
1169 ctf_archive_iter (const ctf_archive_t *arc, ctf_archive_member_f *func,
1170 void *data)
1171 {
1172 ctf_next_t *i = NULL;
1173 ctf_dict_t *fp;
1174 const char *name;
1175 int err = 0;
1176
1177 while ((fp = ctf_archive_next (arc, &i, &name, 0, &err)) != NULL)
1178 {
1179 int rc;
1180
1181 if ((rc = func (fp, name, data)) != 0)
1182 {
1183 ctf_dict_close (fp);
1184 ctf_next_destroy (i);
1185 return rc;
1186 }
1187 ctf_dict_close (fp);
1188 }
1189 if (err != ECTF_NEXT_END && err != 0)
1190 {
1191 ctf_next_destroy (i);
1192 return -1;
1193 }
1194 return 0;
1195 }
1196
1197 /* Iterate over all CTF files in an archive, returning each dict in turn as a
1198 ctf_dict_t, and NULL on error or end of iteration. It is the caller's
1199 responsibility to close it. Parent dicts may be skipped.
1200
1201 The archive member is cached for rapid return on future calls.
1202
1203 We identify parents by name rather than by flag value: for now, with the
1204 linker only emitting parents named _CTF_SECTION, this works well enough. */
1205
1206 ctf_dict_t *
1207 ctf_archive_next (const ctf_archive_t *wrapper, ctf_next_t **it, const char **name,
1208 int skip_parent, int *errp)
1209 {
1210 ctf_dict_t *f;
1211 ctf_next_t *i = *it;
1212 struct ctf_archive *arc;
1213 struct ctf_archive_modent *modent;
1214 const char *nametbl;
1215 const char *name_;
1216
1217 if (!i)
1218 {
1219 if ((i = ctf_next_create()) == NULL)
1220 {
1221 if (errp)
1222 *errp = ENOMEM;
1223 return NULL;
1224 }
1225 i->cu.ctn_arc = wrapper;
1226 i->ctn_iter_fun = (void (*) (void)) ctf_archive_next;
1227 *it = i;
1228 }
1229
1230 if ((void (*) (void)) ctf_archive_next != i->ctn_iter_fun)
1231 {
1232 if (errp)
1233 *errp = ECTF_NEXT_WRONGFUN;
1234 return NULL;
1235 }
1236
1237 if (wrapper != i->cu.ctn_arc)
1238 {
1239 if (errp)
1240 *errp = ECTF_NEXT_WRONGFP;
1241 return NULL;
1242 }
1243
1244 /* Iteration is made a bit more complex by the need to handle ctf_dict_t's
1245 transparently wrapped in a single-member archive. These are parents: if
1246 skip_parent is on, they are skipped and the iterator terminates
1247 immediately. */
1248
1249 if (!wrapper->ctfi_is_archive && i->ctn_n == 0)
1250 {
1251 i->ctn_n++;
1252 if (!skip_parent)
1253 {
1254 wrapper->ctfi_dict->ctf_refcnt++;
1255 if (name)
1256 *name = _CTF_SECTION;
1257 return wrapper->ctfi_dict;
1258 }
1259 }
1260
1261 arc = wrapper->ctfi_archive;
1262
1263 /* The loop keeps going when skip_parent is on as long as the member we find
1264 is the parent (i.e. at most two iterations, but possibly an early return if
1265 *all* we have is a parent). */
1266
1267 do
1268 {
1269 if ((!wrapper->ctfi_is_archive) || (i->ctn_n >= le64toh (arc->ctfa_ndicts)))
1270 {
1271 ctf_next_destroy (i);
1272 *it = NULL;
1273 if (errp)
1274 *errp = ECTF_NEXT_END;
1275 return NULL;
1276 }
1277
1278 modent = (ctf_archive_modent_t *) ((char *) arc
1279 + sizeof (struct ctf_archive));
1280 nametbl = (((const char *) arc) + le64toh (arc->ctfa_names));
1281
1282 name_ = &nametbl[le64toh (modent[i->ctn_n].name_offset)];
1283 i->ctn_n++;
1284 }
1285 while (skip_parent && strcmp (name_, _CTF_SECTION) == 0);
1286
1287 if (name)
1288 *name = name_;
1289
1290 f = ctf_dict_open_cached ((ctf_archive_t *) wrapper, name_, errp);
1291 return f;
1292 }
1293
1294 #ifdef HAVE_MMAP
1295 /* Map the header in. Only used on new, empty files. */
1296 static void *arc_mmap_header (int fd, size_t headersz)
1297 {
1298 void *hdr;
1299 if ((hdr = mmap (NULL, headersz, PROT_READ | PROT_WRITE, MAP_SHARED, fd,
1300 0)) == MAP_FAILED)
1301 return NULL;
1302 return hdr;
1303 }
1304
1305 /* mmap() the whole file, for reading only. (Map it writably, but privately: we
1306 need to modify the region, but don't need anyone else to see the
1307 modifications.) */
1308 static void *arc_mmap_file (int fd, size_t size)
1309 {
1310 void *arc;
1311 if ((arc = mmap (NULL, size, PROT_READ | PROT_WRITE, MAP_PRIVATE,
1312 fd, 0)) == MAP_FAILED)
1313 return NULL;
1314 return arc;
1315 }
1316
1317 /* Persist the header to disk. */
1318 static int arc_mmap_writeout (int fd _libctf_unused_, void *header,
1319 size_t headersz, const char **errmsg)
1320 {
1321 if (msync (header, headersz, MS_ASYNC) < 0)
1322 {
1323 if (errmsg)
1324 *errmsg = N_("arc_mmap_writeout(): cannot sync after writing "
1325 "to %s: %s");
1326 return -1;
1327 }
1328 return 0;
1329 }
1330
1331 /* Unmap the region. */
1332 static int arc_mmap_unmap (void *header, size_t headersz, const char **errmsg)
1333 {
1334 if (munmap (header, headersz) < 0)
1335 {
1336 if (errmsg)
1337 *errmsg = N_("arc_mmap_munmap(): cannot unmap after writing "
1338 "to %s: %s");
1339 return -1;
1340 }
1341 return 0;
1342 }
1343 #else
1344 /* Map the header in. Only used on new, empty files. */
1345 static void *arc_mmap_header (int fd _libctf_unused_, size_t headersz)
1346 {
1347 void *hdr;
1348 if ((hdr = malloc (headersz)) == NULL)
1349 return NULL;
1350 return hdr;
1351 }
1352
1353 /* Pull in the whole file, for reading only. We assume the current file
1354 position is at the start of the file. */
1355 static void *arc_mmap_file (int fd, size_t size)
1356 {
1357 char *data;
1358
1359 if ((data = malloc (size)) == NULL)
1360 return NULL;
1361
1362 if (ctf_pread (fd, data, size, 0) < 0)
1363 {
1364 free (data);
1365 return NULL;
1366 }
1367 return data;
1368 }
1369
1370 /* Persist the header to disk. */
1371 static int arc_mmap_writeout (int fd, void *header, size_t headersz,
1372 const char **errmsg)
1373 {
1374 ssize_t len;
1375 char *data = (char *) header;
1376 ssize_t count = headersz;
1377
1378 if ((lseek (fd, 0, SEEK_SET)) < 0)
1379 {
1380 if (errmsg)
1381 *errmsg = N_("arc_mmap_writeout(): cannot seek while writing header to "
1382 "%s: %s");
1383 return -1;
1384 }
1385
1386 while (headersz > 0)
1387 {
1388 if ((len = write (fd, data, count)) < 0)
1389 {
1390 if (errmsg)
1391 *errmsg = N_("arc_mmap_writeout(): cannot write header to %s: %s");
1392 return len;
1393 }
1394 if (len == EINTR)
1395 continue;
1396
1397 if (len == 0) /* EOF. */
1398 break;
1399
1400 count -= len;
1401 data += len;
1402 }
1403 return 0;
1404 }
1405
1406 /* Unmap the region. */
1407 static int arc_mmap_unmap (void *header, size_t headersz _libctf_unused_,
1408 const char **errmsg _libctf_unused_)
1409 {
1410 free (header);
1411 return 0;
1412 }
1413 #endif