Coverage Report

Created: 2026-01-17 06:53

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/elfutils/libelf/elf_begin.c
Line
Count
Source
1
/* Create descriptor for processing file.
2
   Copyright (C) 1998-2010, 2012, 2014, 2015, 2016 Red Hat, Inc.
3
   Copyright (C) 2021, 2022 Mark J. Wielaard <mark@klomp.org>
4
   This file is part of elfutils.
5
   Written by Ulrich Drepper <drepper@redhat.com>, 1998.
6
7
   This file is free software; you can redistribute it and/or modify
8
   it under the terms of either
9
10
     * the GNU Lesser General Public License as published by the Free
11
       Software Foundation; either version 3 of the License, or (at
12
       your option) any later version
13
14
   or
15
16
     * the GNU General Public License as published by the Free
17
       Software Foundation; either version 2 of the License, or (at
18
       your option) any later version
19
20
   or both in parallel, as here.
21
22
   elfutils is distributed in the hope that it will be useful, but
23
   WITHOUT ANY WARRANTY; without even the implied warranty of
24
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
25
   General Public License for more details.
26
27
   You should have received copies of the GNU General Public License and
28
   the GNU Lesser General Public License along with this program.  If
29
   not, see <http://www.gnu.org/licenses/>.  */
30
31
#ifdef HAVE_CONFIG_H
32
# include <config.h>
33
#endif
34
35
#include <assert.h>
36
#include <ctype.h>
37
#include <errno.h>
38
#include <fcntl.h>
39
#include <stdbool.h>
40
#include <stddef.h>
41
#include <stdint.h>
42
#include <string.h>
43
#include <sys/stat.h>
44
45
#include "libelfP.h"
46
#include "common.h"
47
48
49
/* Create descriptor for archive in memory.  */
50
static inline Elf *
51
file_read_ar (int fildes, void *map_address, off_t offset, size_t maxsize,
52
        Elf_Cmd cmd, Elf *parent)
53
4
{
54
4
  Elf *elf;
55
56
  /* Create a descriptor.  */
57
4
  elf = allocate_elf (fildes, map_address, offset, maxsize, cmd, parent,
58
4
                      ELF_K_AR, 0);
59
4
  if (elf != NULL)
60
4
    {
61
      /* We don't read all the symbol tables in advance.  All this will
62
   happen on demand.  */
63
4
      elf->state.ar.offset = offset + SARMAG;
64
65
4
      elf->state.ar.cur_ar_hdr.ar_rawname = elf->state.ar.raw_name;
66
4
    }
67
68
4
  return elf;
69
4
}
70
71
72
static size_t
73
get_shnum (void *map_address, unsigned char *e_ident, int fildes,
74
     int64_t offset, size_t maxsize)
75
23.3k
{
76
23.3k
  size_t result;
77
23.3k
  union
78
23.3k
  {
79
23.3k
    Elf32_Ehdr *e32;
80
23.3k
    Elf64_Ehdr *e64;
81
23.3k
    void *p;
82
23.3k
  } ehdr;
83
23.3k
  union
84
23.3k
  {
85
23.3k
    Elf32_Ehdr e32;
86
23.3k
    Elf64_Ehdr e64;
87
23.3k
  } ehdr_mem;
88
23.3k
  bool is32 = e_ident[EI_CLASS] == ELFCLASS32;
89
90
23.3k
  if ((is32 && maxsize < sizeof (Elf32_Ehdr))
91
23.3k
      || (!is32 && maxsize < sizeof (Elf64_Ehdr)))
92
22
    {
93
22
       __libelf_seterrno (ELF_E_INVALID_ELF);
94
22
      return (size_t) -1l;
95
22
    }
96
97
  /* Make the ELF header available.  */
98
23.3k
  if (e_ident[EI_DATA] == MY_ELFDATA
99
11.1k
      && (ALLOW_UNALIGNED
100
0
    || (((size_t) e_ident
101
0
         & ((is32 ? __alignof__ (Elf32_Ehdr) : __alignof__ (Elf64_Ehdr))
102
0
      - 1)) == 0)))
103
11.1k
    ehdr.p = e_ident;
104
12.1k
  else
105
12.1k
    {
106
      /* We already read the ELF header.  We have to copy the header
107
   since we possibly modify the data here and the caller
108
   expects the memory it passes in to be preserved.  */
109
12.1k
      ehdr.p = &ehdr_mem;
110
111
12.1k
      if (is32)
112
9.76k
  {
113
9.76k
    if (ALLOW_UNALIGNED)
114
9.76k
      {
115
9.76k
        ehdr_mem.e32.e_shnum = ((Elf32_Ehdr *) e_ident)->e_shnum;
116
9.76k
        ehdr_mem.e32.e_shoff = ((Elf32_Ehdr *) e_ident)->e_shoff;
117
9.76k
      }
118
0
    else
119
0
      memcpy (&ehdr_mem, e_ident, sizeof (Elf32_Ehdr));
120
121
9.76k
    if (e_ident[EI_DATA] != MY_ELFDATA)
122
9.76k
      {
123
9.76k
        CONVERT (ehdr_mem.e32.e_shnum);
124
9.76k
        CONVERT (ehdr_mem.e32.e_shoff);
125
9.76k
      }
126
9.76k
  }
127
2.37k
      else
128
2.37k
  {
129
2.37k
    if (ALLOW_UNALIGNED)
130
2.37k
      {
131
2.37k
        ehdr_mem.e64.e_shnum = ((Elf64_Ehdr *) e_ident)->e_shnum;
132
2.37k
        ehdr_mem.e64.e_shoff = ((Elf64_Ehdr *) e_ident)->e_shoff;
133
2.37k
      }
134
0
    else
135
0
      memcpy (&ehdr_mem, e_ident, sizeof (Elf64_Ehdr));
136
137
2.37k
    if (e_ident[EI_DATA] != MY_ELFDATA)
138
2.37k
      {
139
2.37k
        CONVERT (ehdr_mem.e64.e_shnum);
140
2.37k
        CONVERT (ehdr_mem.e64.e_shoff);
141
2.37k
      }
142
2.37k
  }
143
12.1k
    }
144
145
23.3k
  if (is32)
146
17.8k
    {
147
      /* Get the number of sections from the ELF header.  */
148
17.8k
      result = ehdr.e32->e_shnum;
149
150
17.8k
      if (unlikely (result == 0) && ehdr.e32->e_shoff != 0)
151
948
  {
152
948
    if (unlikely (ehdr.e32->e_shoff >= maxsize)
153
748
        || unlikely (maxsize - ehdr.e32->e_shoff < sizeof (Elf32_Shdr)))
154
      /* Cannot read the first section header.  */
155
236
      return 0;
156
157
712
    if (likely (map_address != NULL) && e_ident[EI_DATA] == MY_ELFDATA
158
0
        && (ALLOW_UNALIGNED
159
0
      || (((size_t) ((char *) (map_address + ehdr.e32->e_shoff
160
0
             + offset)))
161
0
          & (__alignof__ (Elf32_Shdr) - 1)) == 0))
162
      /* We can directly access the memory.  */
163
157
      result = ((Elf32_Shdr *) ((char *) map_address + ehdr.e32->e_shoff
164
157
              + offset))->sh_size;
165
555
    else
166
555
      {
167
555
        Elf32_Word size;
168
555
        ssize_t r;
169
170
555
        if (likely (map_address != NULL))
171
    /* gcc will optimize the memcpy to a simple memory
172
       access while taking care of alignment issues.  */
173
21
    memcpy (&size, ((char *) map_address
174
21
           + ehdr.e32->e_shoff
175
21
           + offset
176
21
           + offsetof (Elf32_Shdr, sh_size)),
177
21
      sizeof (Elf32_Word));
178
534
        else
179
534
    if (unlikely ((r = pread_retry (fildes, &size,
180
534
            sizeof (Elf32_Word),
181
534
            offset + ehdr.e32->e_shoff
182
534
            + offsetof (Elf32_Shdr,
183
534
                  sh_size)))
184
534
            != sizeof (Elf32_Word)))
185
0
      {
186
0
        if (r < 0)
187
0
          __libelf_seterrno (ELF_E_INVALID_FILE);
188
0
        else
189
0
          __libelf_seterrno (ELF_E_INVALID_ELF);
190
0
        return (size_t) -1l;
191
0
      }
192
193
555
        if (e_ident[EI_DATA] != MY_ELFDATA)
194
84
    CONVERT (size);
195
196
555
        result = size;
197
555
      }
198
712
  }
199
200
      /* If the section headers were truncated, pretend none were there.  */
201
17.6k
      if (ehdr.e32->e_shoff > maxsize
202
17.4k
    || maxsize - ehdr.e32->e_shoff < sizeof (Elf32_Shdr) * result)
203
344
  result = 0;
204
17.6k
    }
205
5.46k
  else
206
5.46k
    {
207
      /* Get the number of sections from the ELF header.  */
208
5.46k
      result = ehdr.e64->e_shnum;
209
210
5.46k
      if (unlikely (result == 0) && ehdr.e64->e_shoff != 0)
211
1.03k
  {
212
1.03k
    if (unlikely (ehdr.e64->e_shoff >= maxsize)
213
492
        || unlikely (ehdr.e64->e_shoff + sizeof (Elf64_Shdr) > maxsize))
214
      /* Cannot read the first section header.  */
215
584
      return 0;
216
217
452
    Elf64_Xword size;
218
452
    if (likely (map_address != NULL) && e_ident[EI_DATA] == MY_ELFDATA
219
0
        && (ALLOW_UNALIGNED
220
0
      || (((size_t) ((char *) (map_address + ehdr.e64->e_shoff
221
0
             + offset)))
222
0
          & (__alignof__ (Elf64_Shdr) - 1)) == 0))
223
      /* We can directly access the memory.  */
224
32
      size = ((Elf64_Shdr *) ((char *) map_address + ehdr.e64->e_shoff
225
32
            + offset))->sh_size;
226
420
    else
227
420
      {
228
420
        ssize_t r;
229
420
        if (likely (map_address != NULL))
230
    /* gcc will optimize the memcpy to a simple memory
231
       access while taking care of alignment issues.  */
232
81
    memcpy (&size, ((char *) map_address
233
81
           + ehdr.e64->e_shoff
234
81
           + offset
235
81
           + offsetof (Elf64_Shdr, sh_size)),
236
81
      sizeof (Elf64_Xword));
237
339
        else
238
339
    if (unlikely ((r = pread_retry (fildes, &size,
239
339
            sizeof (Elf64_Xword),
240
339
            offset + ehdr.e64->e_shoff
241
339
            + offsetof (Elf64_Shdr,
242
339
                  sh_size)))
243
339
            != sizeof (Elf64_Xword)))
244
0
      {
245
0
        if (r < 0)
246
0
          __libelf_seterrno (ELF_E_INVALID_FILE);
247
0
        else
248
0
          __libelf_seterrno (ELF_E_INVALID_ELF);
249
0
        return (size_t) -1l;
250
0
      }
251
252
420
        if (e_ident[EI_DATA] != MY_ELFDATA)
253
324
    CONVERT (size);
254
420
      }
255
256
    /* Although sh_size is an Elf64_Xword and can contain a 64bit
257
       value, we only expect an 32bit value max.  GElf_Word is
258
       32bit unsigned.  */
259
452
    if (size > ~((GElf_Word) 0))
260
252
      {
261
        /* Invalid value, it is too large.  */
262
252
        __libelf_seterrno (ELF_E_INVALID_ELF);
263
252
        return (size_t) -1l;
264
252
      }
265
266
200
    result = size;
267
200
  }
268
269
      /* If the section headers were truncated, pretend none were there.  */
270
4.62k
      if (ehdr.e64->e_shoff > maxsize
271
4.25k
    || maxsize - ehdr.e64->e_shoff < sizeof (Elf64_Shdr) * result)
272
656
  result = 0;
273
4.62k
    }
274
275
22.2k
  return result;
276
23.3k
}
277
278
279
/* Create descriptor for ELF file in memory.  */
280
static Elf *
281
file_read_elf (int fildes, void *map_address, unsigned char *e_ident,
282
         int64_t offset, size_t maxsize, Elf_Cmd cmd, Elf *parent)
283
23.3k
{
284
  /* Verify the binary is of the class we can handle.  */
285
23.3k
  if (unlikely ((e_ident[EI_CLASS] != ELFCLASS32
286
23.3k
     && e_ident[EI_CLASS] != ELFCLASS64)
287
    /* We also can only handle two encodings.  */
288
23.3k
    || (e_ident[EI_DATA] != ELFDATA2LSB
289
23.3k
        && e_ident[EI_DATA] != ELFDATA2MSB)))
290
0
    {
291
      /* Cannot handle this.  */
292
0
      __libelf_seterrno (ELF_E_INVALID_ELF);
293
0
      return NULL;
294
0
    }
295
296
  /* Determine the number of sections.  Returns -1 and sets libelf errno
297
     if the file handle or elf file is invalid.  Returns zero if there
298
     are no section headers (or they cannot be read).  */
299
23.3k
  size_t scncnt = get_shnum (map_address, e_ident, fildes, offset, maxsize);
300
23.3k
  if (scncnt == (size_t) -1l)
301
    /* Could not determine the number of sections.  */
302
274
    return NULL;
303
304
  /* Check for too many sections.  */
305
23.0k
  if (e_ident[EI_CLASS] == ELFCLASS32)
306
17.8k
    {
307
17.8k
      if (scncnt > SIZE_MAX / (sizeof (Elf_Scn) + sizeof (Elf32_Shdr)))
308
0
  {
309
0
    __libelf_seterrno (ELF_E_INVALID_ELF);
310
0
    return NULL;
311
0
  }
312
17.8k
    }
313
5.21k
  else if (scncnt > SIZE_MAX / (sizeof (Elf_Scn) + sizeof (Elf64_Shdr)))
314
0
    {
315
0
      __libelf_seterrno (ELF_E_INVALID_ELF);
316
0
      return NULL;
317
0
    }
318
319
  /* We can now allocate the memory.  Even if there are no section headers,
320
     we allocate space for a zeroth section in case we need it later.  */
321
23.0k
  const size_t scnmax = (scncnt ?: (cmd == ELF_C_RDWR || cmd == ELF_C_RDWR_MMAP)
322
1.94k
       ? 1 : 0);
323
23.0k
  Elf *elf = allocate_elf (fildes, map_address, offset, maxsize, cmd, parent,
324
23.0k
         ELF_K_ELF, scnmax * sizeof (Elf_Scn));
325
23.0k
  if (elf == NULL)
326
    /* Not enough memory.  allocate_elf will have set libelf errno.  */
327
0
    return NULL;
328
329
23.0k
  assert ((unsigned int) scncnt == scncnt);
330
23.0k
  assert (offsetof (struct Elf, state.elf32.scns)
331
23.0k
    == offsetof (struct Elf, state.elf64.scns));
332
23.0k
  elf->state.elf32.scns.cnt = scncnt;
333
23.0k
  elf->state.elf32.scns.max = scnmax;
334
335
  /* Some more or less arbitrary value.  */
336
23.0k
  elf->state.elf.scnincr = 10;
337
338
  /* Make the class easily available.  */
339
23.0k
  elf->class = e_ident[EI_CLASS];
340
341
23.0k
  if (e_ident[EI_CLASS] == ELFCLASS32)
342
17.8k
    {
343
      /* This pointer might not be directly usable if the alignment is
344
   not sufficient for the architecture.  */
345
17.8k
      uintptr_t ehdr = (uintptr_t) map_address + offset;
346
347
      /* This is a 32-bit binary.  */
348
17.8k
      if (map_address != NULL && e_ident[EI_DATA] == MY_ELFDATA
349
0
    && (ALLOW_UNALIGNED
350
0
        || (ehdr & (__alignof__ (Elf32_Ehdr) - 1)) == 0))
351
2.02k
  {
352
    /* We can use the mmapped memory.  */
353
2.02k
    elf->state.elf32.ehdr = (Elf32_Ehdr *) ehdr;
354
2.02k
  }
355
15.8k
      else
356
15.8k
  {
357
    /* Copy the ELF header.  */
358
15.8k
    elf->state.elf32.ehdr = memcpy (&elf->state.elf32.ehdr_mem, e_ident,
359
15.8k
            sizeof (Elf32_Ehdr));
360
361
15.8k
    if (e_ident[EI_DATA] != MY_ELFDATA)
362
9.76k
      {
363
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_type);
364
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_machine);
365
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_version);
366
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_entry);
367
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_phoff);
368
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_shoff);
369
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_flags);
370
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_ehsize);
371
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_phentsize);
372
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_phnum);
373
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_shentsize);
374
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_shnum);
375
9.76k
        CONVERT (elf->state.elf32.ehdr_mem.e_shstrndx);
376
9.76k
      }
377
15.8k
  }
378
379
      /* Don't precache the phdr pointer here.
380
   elf32_getphdr will validate it against the size when asked.  */
381
382
17.8k
      Elf32_Off e_shoff = elf->state.elf32.ehdr->e_shoff;
383
17.8k
      if (map_address != NULL && e_ident[EI_DATA] == MY_ELFDATA
384
2.02k
    && cmd != ELF_C_READ_MMAP /* We need a copy to be able to write.  */
385
0
    && (ALLOW_UNALIGNED
386
0
        || (((ehdr + e_shoff) & (__alignof__ (Elf32_Shdr) - 1)) == 0)))
387
0
  {
388
0
    if (unlikely (scncnt > 0 && e_shoff >= maxsize)
389
0
        || unlikely (maxsize - e_shoff
390
0
         < scncnt * sizeof (Elf32_Shdr)))
391
0
      {
392
0
      free_and_out:
393
0
        free (elf);
394
0
        __libelf_seterrno (ELF_E_INVALID_ELF);
395
0
        return NULL;
396
0
      }
397
398
0
    if (scncnt > 0)
399
0
      elf->state.elf32.shdr = (Elf32_Shdr *) (ehdr + e_shoff);
400
401
0
    for (size_t cnt = 0; cnt < scncnt; ++cnt)
402
0
      {
403
0
        elf->state.elf32.scns.data[cnt].index = cnt;
404
0
        elf->state.elf32.scns.data[cnt].elf = elf;
405
0
        elf->state.elf32.scns.data[cnt].shdr.e32 =
406
0
    &elf->state.elf32.shdr[cnt];
407
0
        if (likely (elf->state.elf32.shdr[cnt].sh_offset < maxsize)
408
0
      && likely (elf->state.elf32.shdr[cnt].sh_size
409
0
           <= maxsize - elf->state.elf32.shdr[cnt].sh_offset))
410
0
    elf->state.elf32.scns.data[cnt].rawdata_base =
411
0
      elf->state.elf32.scns.data[cnt].data_base =
412
0
      ((char *) map_address + offset
413
0
       + elf->state.elf32.shdr[cnt].sh_offset);
414
0
        elf->state.elf32.scns.data[cnt].list = &elf->state.elf32.scns;
415
0
      }
416
0
  }
417
17.8k
      else
418
17.8k
  {
419
4.85M
    for (size_t cnt = 0; cnt < scncnt; ++cnt)
420
4.83M
      {
421
4.83M
        elf->state.elf32.scns.data[cnt].index = cnt;
422
4.83M
        elf->state.elf32.scns.data[cnt].elf = elf;
423
4.83M
        elf->state.elf32.scns.data[cnt].list = &elf->state.elf32.scns;
424
4.83M
      }
425
17.8k
  }
426
427
      /* So far only one block with sections.  */
428
17.8k
      elf->state.elf32.scns_last = &elf->state.elf32.scns;
429
17.8k
      eu_search_tree_init (&elf->state.elf32.rawchunk_tree);
430
17.8k
    }
431
5.21k
  else
432
5.21k
    {
433
      /* This pointer might not be directly usable if the alignment is
434
   not sufficient for the architecture.  */
435
5.21k
      uintptr_t ehdr = (uintptr_t) map_address + offset;
436
437
      /* This is a 64-bit binary.  */
438
5.21k
      if (map_address != NULL && e_ident[EI_DATA] == MY_ELFDATA
439
0
    && (ALLOW_UNALIGNED
440
0
        || (ehdr & (__alignof__ (Elf64_Ehdr) - 1)) == 0))
441
758
  {
442
    /* We can use the mmapped memory.  */
443
758
    elf->state.elf64.ehdr = (Elf64_Ehdr *) ehdr;
444
758
  }
445
4.45k
      else
446
4.45k
  {
447
    /* Copy the ELF header.  */
448
4.45k
    elf->state.elf64.ehdr = memcpy (&elf->state.elf64.ehdr_mem, e_ident,
449
4.45k
            sizeof (Elf64_Ehdr));
450
451
4.45k
    if (e_ident[EI_DATA] != MY_ELFDATA)
452
2.18k
      {
453
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_type);
454
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_machine);
455
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_version);
456
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_entry);
457
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_phoff);
458
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_shoff);
459
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_flags);
460
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_ehsize);
461
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_phentsize);
462
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_phnum);
463
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_shentsize);
464
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_shnum);
465
2.18k
        CONVERT (elf->state.elf64.ehdr_mem.e_shstrndx);
466
2.18k
      }
467
4.45k
  }
468
469
      /* Don't precache the phdr pointer here.
470
   elf64_getphdr will validate it against the size when asked.  */
471
472
5.21k
      Elf64_Off e_shoff = elf->state.elf64.ehdr->e_shoff;
473
5.21k
      if (map_address != NULL && e_ident[EI_DATA] == MY_ELFDATA
474
758
    && cmd != ELF_C_READ_MMAP /* We need a copy to be able to write.  */
475
0
    && (ALLOW_UNALIGNED
476
0
        || (((ehdr + e_shoff) & (__alignof__ (Elf64_Shdr) - 1)) == 0)))
477
0
  {
478
0
    if (unlikely (scncnt > 0 && e_shoff >= maxsize)
479
0
        || unlikely (maxsize - e_shoff
480
0
         < scncnt * sizeof (Elf64_Shdr)))
481
0
      goto free_and_out;
482
483
0
    if (scncnt > 0)
484
0
      elf->state.elf64.shdr = (Elf64_Shdr *) (ehdr + (ptrdiff_t) e_shoff);
485
486
0
    for (size_t cnt = 0; cnt < scncnt; ++cnt)
487
0
      {
488
0
        elf->state.elf64.scns.data[cnt].index = cnt;
489
0
        elf->state.elf64.scns.data[cnt].elf = elf;
490
0
        elf->state.elf64.scns.data[cnt].shdr.e64 =
491
0
    &elf->state.elf64.shdr[cnt];
492
0
        if (likely (elf->state.elf64.shdr[cnt].sh_offset < maxsize)
493
0
      && likely (elf->state.elf64.shdr[cnt].sh_size
494
0
           <= maxsize - elf->state.elf64.shdr[cnt].sh_offset))
495
0
    elf->state.elf64.scns.data[cnt].rawdata_base =
496
0
      elf->state.elf64.scns.data[cnt].data_base =
497
0
      ((char *) map_address + offset
498
0
       + elf->state.elf64.shdr[cnt].sh_offset);
499
0
        elf->state.elf64.scns.data[cnt].list = &elf->state.elf64.scns;
500
0
      }
501
0
  }
502
5.21k
      else
503
5.21k
  {
504
908k
    for (size_t cnt = 0; cnt < scncnt; ++cnt)
505
903k
      {
506
903k
        elf->state.elf64.scns.data[cnt].index = cnt;
507
903k
        elf->state.elf64.scns.data[cnt].elf = elf;
508
903k
        elf->state.elf64.scns.data[cnt].list = &elf->state.elf64.scns;
509
903k
      }
510
5.21k
  }
511
512
      /* So far only one block with sections.  */
513
5.21k
      elf->state.elf64.scns_last = &elf->state.elf64.scns;
514
5.21k
      eu_search_tree_init (&elf->state.elf64.rawchunk_tree);
515
5.21k
    }
516
517
23.0k
  return elf;
518
23.0k
}
519
520
521
Elf *
522
internal_function
523
__libelf_read_mmaped_file (int fildes, void *map_address,  int64_t offset,
524
         size_t maxsize, Elf_Cmd cmd, Elf *parent)
525
5.97k
{
526
  /* We have to find out what kind of file this is.  We handle ELF
527
     files and archives.  To find out what we have we must look at the
528
     header.  The header for an ELF file is EI_NIDENT bytes in size,
529
     the header for an archive file SARMAG bytes long.  */
530
5.97k
  unsigned char *e_ident = (unsigned char *) map_address + offset;
531
532
  /* See what kind of object we have here.  */
533
5.97k
  Elf_Kind kind = determine_kind (e_ident, maxsize);
534
535
5.97k
  switch (kind)
536
5.97k
    {
537
5.85k
    case ELF_K_ELF:
538
5.85k
      return file_read_elf (fildes, map_address, e_ident, offset, maxsize,
539
5.85k
          cmd, parent);
540
541
1
    case ELF_K_AR:
542
1
      return file_read_ar (fildes, map_address, offset, maxsize, cmd, parent);
543
544
126
    default:
545
126
      break;
546
5.97k
    }
547
548
  /* This case is easy.  Since we cannot do anything with this file
549
     create a dummy descriptor.  */
550
126
  return allocate_elf (fildes, map_address, offset, maxsize, cmd, parent,
551
126
           ELF_K_NONE, 0);
552
5.97k
}
553
554
555
static Elf *
556
read_unmmaped_file (int fildes, int64_t offset, size_t maxsize, Elf_Cmd cmd,
557
        Elf *parent)
558
29.8k
{
559
  /* We have to find out what kind of file this is.  We handle ELF
560
     files and archives.  To find out what we have we must read the
561
     header.  The identification header for an ELF file is EI_NIDENT
562
     bytes in size, but we read the whole ELF header since we will
563
     need it anyway later.  For archives the header in SARMAG bytes
564
     long.  Read the maximum of these numbers.
565
566
     XXX We have to change this for the extended `ar' format some day.
567
568
     Use a union to ensure alignment.  We might later access the
569
     memory as a ElfXX_Ehdr.  */
570
29.8k
  union
571
29.8k
  {
572
29.8k
    Elf64_Ehdr ehdr;
573
29.8k
    unsigned char header[MAX (sizeof (Elf64_Ehdr), SARMAG)];
574
29.8k
  } mem;
575
576
  /* Read the head of the file.  */
577
29.8k
  ssize_t nread = pread_retry (fildes, mem.header,
578
29.8k
             MIN (MAX (sizeof (Elf64_Ehdr), SARMAG),
579
29.8k
            maxsize),
580
29.8k
             offset);
581
29.8k
  if (unlikely (nread == -1))
582
11.9k
    {
583
      /* We cannot even read the head of the file.  Maybe FILDES is associated
584
   with an unseekable device.  This is nothing we can handle.  */
585
11.9k
      __libelf_seterrno (ELF_E_INVALID_FILE);
586
11.9k
      return NULL;
587
11.9k
    }
588
589
  /* See what kind of object we have here.  */
590
17.9k
  Elf_Kind kind = determine_kind (mem.header, nread);
591
592
17.9k
  switch (kind)
593
17.9k
    {
594
3
    case ELF_K_AR:
595
3
      return file_read_ar (fildes, NULL, offset, maxsize, cmd, parent);
596
597
17.5k
    case ELF_K_ELF:
598
      /* Make sure at least the ELF header is contained in the file.  */
599
17.5k
      if ((size_t) nread >= (mem.header[EI_CLASS] == ELFCLASS32
600
17.5k
           ? sizeof (Elf32_Ehdr) : sizeof (Elf64_Ehdr)))
601
17.4k
  return file_read_elf (fildes, NULL, mem.header, offset, maxsize, cmd,
602
17.4k
            parent);
603
66
      FALLTHROUGH;
604
605
444
    default:
606
444
      break;
607
17.9k
    }
608
609
  /* This case is easy.  Since we cannot do anything with this file
610
     create a dummy descriptor.  */
611
444
  return allocate_elf (fildes, NULL, offset, maxsize, cmd, parent,
612
444
           ELF_K_NONE, 0);
613
17.9k
}
614
615
616
/* Open a file for reading.  If possible we will try to mmap() the file.  */
617
static struct Elf *
618
read_file (int fildes, int64_t offset, size_t maxsize,
619
     Elf_Cmd cmd, Elf *parent)
620
35.8k
{
621
35.8k
  void *map_address = NULL;
622
35.8k
  int use_mmap = (cmd == ELF_C_READ_MMAP || cmd == ELF_C_RDWR_MMAP
623
23.9k
      || cmd == ELF_C_WRITE_MMAP
624
23.9k
      || cmd == ELF_C_READ_MMAP_PRIVATE);
625
626
35.8k
  if (parent == NULL)
627
35.8k
    {
628
35.8k
      if (maxsize == ~((size_t) 0))
629
35.8k
  {
630
    /* We don't know in the moment how large the file is.
631
       Determine it now.  */
632
35.8k
    struct stat st;
633
634
35.8k
    if (fstat (fildes, &st) == 0
635
35.8k
        && (sizeof (size_t) >= sizeof (st.st_size)
636
0
      || st.st_size <= ~((size_t) 0)))
637
35.8k
      maxsize = (size_t) st.st_size;
638
35.8k
  }
639
35.8k
    }
640
0
  else
641
0
    {
642
      /* The parent is already loaded.  Use it.  */
643
0
      assert (maxsize != ~((size_t) 0));
644
0
    }
645
646
35.8k
  if (use_mmap)
647
11.9k
    {
648
11.9k
      if (parent == NULL)
649
11.9k
  {
650
    /* We try to map the file ourself.  */
651
11.9k
    map_address = mmap (NULL, maxsize, (cmd == ELF_C_READ_MMAP
652
11.9k
                ? PROT_READ
653
11.9k
                : PROT_READ|PROT_WRITE),
654
11.9k
            cmd == ELF_C_READ_MMAP_PRIVATE
655
11.9k
            || cmd == ELF_C_READ_MMAP
656
11.9k
            ? MAP_PRIVATE : MAP_SHARED,
657
11.9k
            fildes, offset);
658
659
11.9k
    if (map_address == MAP_FAILED)
660
5.97k
      map_address = NULL;
661
11.9k
  }
662
0
      else
663
0
  {
664
0
    map_address = parent->map_address;
665
0
  }
666
11.9k
    }
667
668
  /* If we have the file in memory optimize the access.  */
669
35.8k
  if (map_address != NULL)
670
5.97k
    {
671
5.97k
      assert (map_address != MAP_FAILED);
672
673
5.97k
      struct Elf *result = __libelf_read_mmaped_file (fildes, map_address,
674
5.97k
                  offset, maxsize, cmd,
675
5.97k
                  parent);
676
677
      /* If something went wrong during the initialization unmap the
678
   memory if we mmaped here.  */
679
5.97k
      if (result == NULL
680
85
    && (parent == NULL
681
0
        || parent->map_address != map_address))
682
85
  munmap (map_address, maxsize);
683
5.89k
      else if (parent == NULL)
684
  /* Remember that we mmap()ed the memory.  */
685
5.89k
  result->flags |= ELF_F_MMAPPED;
686
687
5.97k
      return result;
688
5.97k
    }
689
690
  /* Otherwise we have to do it the hard way.  We read as much as necessary
691
     from the file whenever we need information which is not available.  */
692
29.8k
  return read_unmmaped_file (fildes, offset, maxsize, cmd, parent);
693
35.8k
}
694
695
696
/* Find the entry with the long names for the content of this archive.  */
697
static const char *
698
read_long_names (Elf *elf)
699
0
{
700
0
  off_t offset = SARMAG; /* This is the first entry.  */
701
0
  struct ar_hdr hdrm;
702
0
  struct ar_hdr *hdr;
703
0
  char *newp;
704
0
  size_t len;
705
706
0
  while (1)
707
0
    {
708
0
      if (elf->map_address != NULL)
709
0
  {
710
0
    if ((size_t) offset > elf->maximum_size
711
0
        || elf->maximum_size - offset < sizeof (struct ar_hdr))
712
0
      return NULL;
713
714
    /* The data is mapped.  */
715
0
    hdr = (struct ar_hdr *) (elf->map_address + offset);
716
0
  }
717
0
      else
718
0
  {
719
    /* Read the header from the file.  */
720
0
    if (unlikely (pread_retry (elf->fildes, &hdrm, sizeof (hdrm),
721
0
             elf->start_offset + offset)
722
0
      != sizeof (hdrm)))
723
0
      return NULL;
724
725
0
    hdr = &hdrm;
726
0
  }
727
728
      /* The ar_size is given as a fixed size decimal string, right
729
   padded with spaces.  Make sure we read it properly even if
730
   there is no terminating space.  */
731
0
      char buf[sizeof (hdr->ar_size) + 1];
732
0
      const char *string = hdr->ar_size;
733
0
      if (hdr->ar_size[sizeof (hdr->ar_size) - 1] != ' ')
734
0
  {
735
0
    *((char *) mempcpy (buf, hdr->ar_size, sizeof (hdr->ar_size))) = '\0';
736
0
    string = buf;
737
0
  }
738
739
      /* atol expects to see at least one digit.
740
   It also cannot be negative (-).  */
741
0
      if (!isdigit(string[0]))
742
0
  return NULL;
743
0
      len = atol (string);
744
745
0
      if (memcmp (hdr->ar_name, "//              ", 16) == 0)
746
0
  break;
747
748
0
      offset += sizeof (struct ar_hdr) + ((len + 1) & ~1l);
749
0
    }
750
751
  /* Sanity check len early if we can.  */
752
0
  if (elf->map_address != NULL)
753
0
    {
754
0
      if (len > elf->maximum_size - offset - sizeof (struct ar_hdr))
755
0
  return NULL;
756
0
    }
757
758
  /* Due to the stupid format of the long name table entry (which are not
759
     NUL terminted) we have to provide an appropriate representation anyhow.
760
     Therefore we always make a copy which has the appropriate form.  */
761
0
  newp = malloc (len);
762
0
  if (newp != NULL)
763
0
    {
764
0
      char *runp;
765
766
0
      if (elf->map_address != NULL)
767
0
  {
768
    /* Simply copy it over.  */
769
0
    elf->state.ar.long_names = (char *) memcpy (newp,
770
0
                  elf->map_address + offset
771
0
                  + sizeof (struct ar_hdr),
772
0
                  len);
773
0
  }
774
0
      else
775
0
  {
776
0
    if (unlikely ((size_t) pread_retry (elf->fildes, newp, len,
777
0
                elf->start_offset + offset
778
0
                + sizeof (struct ar_hdr))
779
0
      != len))
780
0
      {
781
        /* We were not able to read all data.  */
782
0
        free (newp);
783
0
        elf->state.ar.long_names = NULL;
784
0
        return NULL;
785
0
      }
786
0
    elf->state.ar.long_names = newp;
787
0
  }
788
789
0
      elf->state.ar.long_names_len = len;
790
791
      /* Now NUL-terminate the strings.  */
792
0
      runp = newp;
793
0
      while (1)
794
0
        {
795
0
    char *startp = runp;
796
0
    runp = (char *) memchr (runp, '/', newp + len - runp);
797
0
    if (runp == NULL)
798
0
      {
799
        /* This was the last entry.  Clear any left overs.  */
800
0
        memset (startp, '\0', newp + len - startp);
801
0
        break;
802
0
      }
803
804
    /* NUL-terminate the string.  */
805
0
    *runp++ = '\0';
806
807
    /* A sanity check.  Somebody might have generated invalid
808
       archive.  */
809
0
    if (runp >= newp + len)
810
0
      break;
811
0
  }
812
0
    }
813
814
0
  return newp;
815
0
}
816
817
818
/* Copy archive header from parent archive ref to member descriptor elf.  */
819
static int
820
copy_arhdr (Elf_Arhdr *dest, Elf *ref)
821
0
{
822
0
  Elf_Arhdr *hdr;
823
824
0
  hdr = &ref->state.ar.cur_ar_hdr;
825
826
0
  char *ar_name = hdr->ar_name;
827
0
  char *ar_rawname = hdr->ar_rawname;
828
0
  if (ar_name == NULL || ar_rawname == NULL)
829
0
    {
830
      /* ref doesn't have an Elf_Arhdr or it was marked as unusable.  */
831
0
      return 0;
832
0
    }
833
834
  /* Allocate copies of ar_name and ar_rawname.  */
835
0
  size_t name_len = strlen (ar_name) + 1;
836
0
  char *name_copy = malloc (MAX (name_len, 16));
837
0
  if (name_copy == NULL)
838
0
    {
839
0
      __libelf_seterrno (ELF_E_NOMEM);
840
0
      return -1;
841
0
    }
842
0
  memcpy (name_copy, ar_name, name_len);
843
844
0
  size_t rawname_len = strlen (ar_rawname) + 1;
845
0
  char *rawname_copy = malloc (MAX (rawname_len, 17));
846
0
  if (rawname_copy == NULL)
847
0
    {
848
0
      free (name_copy);
849
0
      __libelf_seterrno (ELF_E_NOMEM);
850
0
      return -1;
851
0
    }
852
0
  memcpy (rawname_copy, ar_rawname, rawname_len);
853
854
0
  *dest = *hdr;
855
0
  dest->ar_name = name_copy;
856
0
  dest->ar_rawname = rawname_copy;
857
858
0
  return 0;
859
0
}
860
861
862
/* Read the next archive header.  */
863
int
864
internal_function
865
__libelf_next_arhdr_wrlock (Elf *elf)
866
0
{
867
0
  struct ar_hdr *ar_hdr;
868
0
  Elf_Arhdr *elf_ar_hdr;
869
870
0
  if (elf->map_address != NULL)
871
0
    {
872
      /* See whether this entry is in the file.  */
873
0
      if (unlikely ((size_t) elf->state.ar.offset
874
0
        > elf->start_offset + elf->maximum_size
875
0
        || (elf->start_offset + elf->maximum_size
876
0
      - elf->state.ar.offset) < sizeof (struct ar_hdr)))
877
0
  {
878
    /* This record is not anymore in the file.  */
879
0
    __libelf_seterrno (ELF_E_RANGE);
880
0
    return -1;
881
0
  }
882
0
      ar_hdr = (struct ar_hdr *) (elf->map_address + elf->state.ar.offset);
883
0
    }
884
0
  else
885
0
    {
886
0
      ar_hdr = &elf->state.ar.ar_hdr;
887
888
0
      if (unlikely (pread_retry (elf->fildes, ar_hdr, sizeof (struct ar_hdr),
889
0
         elf->state.ar.offset)
890
0
        != sizeof (struct ar_hdr)))
891
0
  {
892
    /* Something went wrong while reading the file.  */
893
0
    __libelf_seterrno (ELF_E_RANGE);
894
0
    return -1;
895
0
  }
896
0
    }
897
898
  /* One little consistency check.  */
899
0
  if (unlikely (memcmp (ar_hdr->ar_fmag, ARFMAG, 2) != 0))
900
0
    {
901
      /* This is no valid archive.  */
902
0
      __libelf_seterrno (ELF_E_ARCHIVE_FMAG);
903
0
      return -1;
904
0
    }
905
906
  /* Copy the raw name over to a NUL terminated buffer.  */
907
0
  *((char *) mempcpy (elf->state.ar.raw_name, ar_hdr->ar_name, 16)) = '\0';
908
909
0
  elf_ar_hdr = &elf->state.ar.cur_ar_hdr;
910
911
  /* Now convert the `struct ar_hdr' into `Elf_Arhdr'.
912
     Determine whether this is a special entry.  */
913
0
  if (ar_hdr->ar_name[0] == '/')
914
0
    {
915
0
      if (ar_hdr->ar_name[1] == ' '
916
0
    && memcmp (ar_hdr->ar_name, "/               ", 16) == 0)
917
  /* This is the index.  */
918
0
  elf_ar_hdr->ar_name = memcpy (elf->state.ar.ar_name, "/", 2);
919
0
      else if (ar_hdr->ar_name[1] == 'S'
920
0
         && memcmp (ar_hdr->ar_name, "/SYM64/         ", 16) == 0)
921
  /* 64-bit index.  */
922
0
  elf_ar_hdr->ar_name = memcpy (elf->state.ar.ar_name, "/SYM64/", 8);
923
0
      else if (ar_hdr->ar_name[1] == '/'
924
0
         && memcmp (ar_hdr->ar_name, "//              ", 16) == 0)
925
  /* This is the array with the long names.  */
926
0
  elf_ar_hdr->ar_name = memcpy (elf->state.ar.ar_name, "//", 3);
927
0
      else if (likely  (isdigit (ar_hdr->ar_name[1])))
928
0
  {
929
0
    size_t offset;
930
931
    /* This is a long name.  First we have to read the long name
932
       table, if this hasn't happened already.  */
933
0
    if (unlikely (elf->state.ar.long_names == NULL
934
0
      && read_long_names (elf) == NULL))
935
0
      {
936
        /* No long name table although it is reference.  The archive is
937
     broken.  */
938
0
        __libelf_seterrno (ELF_E_INVALID_ARCHIVE);
939
0
        return -1;
940
0
      }
941
942
0
    offset = atol (ar_hdr->ar_name + 1);
943
0
    if (unlikely (offset >= elf->state.ar.long_names_len))
944
0
      {
945
        /* The index in the long name table is larger than the table.  */
946
0
        __libelf_seterrno (ELF_E_INVALID_ARCHIVE);
947
0
        return -1;
948
0
      }
949
0
    elf_ar_hdr->ar_name = elf->state.ar.long_names + offset;
950
0
  }
951
0
      else
952
0
  {
953
    /* This is none of the known special entries.  */
954
0
    __libelf_seterrno (ELF_E_INVALID_ARCHIVE);
955
0
    return -1;
956
0
  }
957
0
    }
958
0
  else
959
0
    {
960
0
      char *endp;
961
962
      /* It is a normal entry.  Copy over the name.  */
963
0
      endp = (char *) memccpy (elf->state.ar.ar_name, ar_hdr->ar_name,
964
0
             '/', 16);
965
0
      if (endp != NULL)
966
0
  endp[-1] = '\0';
967
0
      else
968
0
  {
969
    /* In the old BSD style of archive, there is no / terminator.
970
       Instead, there is space padding at the end of the name.  */
971
0
    size_t i = 15;
972
0
    do
973
0
      elf->state.ar.ar_name[i] = '\0';
974
0
    while (i > 0 && elf->state.ar.ar_name[--i] == ' ');
975
0
  }
976
977
0
      elf_ar_hdr->ar_name = elf->state.ar.ar_name;
978
0
    }
979
980
0
  if (unlikely (ar_hdr->ar_size[0] == ' '))
981
    /* Something is really wrong.  We cannot live without a size for
982
       the member since it will not be possible to find the next
983
       archive member.  */
984
0
    {
985
0
      __libelf_seterrno (ELF_E_INVALID_ARCHIVE);
986
0
      return -1;
987
0
    }
988
989
  /* Since there are no specialized functions to convert ASCII to
990
     time_t, uid_t, gid_t, mode_t, and off_t we use either atol or
991
     atoll depending on the size of the types.  We are also prepared
992
     for the case where the whole field in the `struct ar_hdr' is
993
     filled in which case we cannot simply use atol/l but instead have
994
     to create a temporary copy.  Note that all fields use decimal
995
     encoding, except ar_mode which uses octal.  */
996
997
0
#define INT_FIELD(FIELD)                  \
998
0
  do                        \
999
0
    {                       \
1000
0
      char buf[sizeof (ar_hdr->FIELD) + 1];             \
1001
0
      const char *string = ar_hdr->FIELD;             \
1002
0
      if (ar_hdr->FIELD[sizeof (ar_hdr->FIELD) - 1] != ' ')         \
1003
0
  {                     \
1004
0
    *((char *) mempcpy (buf, ar_hdr->FIELD, sizeof (ar_hdr->FIELD)))  \
1005
0
      = '\0';                   \
1006
0
    string = buf;                   \
1007
0
  }                      \
1008
0
      if (sizeof (elf_ar_hdr->FIELD) <= sizeof (long int))         \
1009
0
  elf_ar_hdr->FIELD = (__typeof (elf_ar_hdr->FIELD)) atol (string);     \
1010
0
      else                      \
1011
0
  elf_ar_hdr->FIELD = (__typeof (elf_ar_hdr->FIELD)) atoll (string);    \
1012
0
    }                       \
1013
0
  while (0)
1014
1015
0
#define OCT_FIELD(FIELD)                  \
1016
0
  do                        \
1017
0
    {                       \
1018
0
      char buf[sizeof (ar_hdr->FIELD) + 1];             \
1019
0
      const char *string = ar_hdr->FIELD;             \
1020
0
      if (ar_hdr->FIELD[sizeof (ar_hdr->FIELD) - 1] != ' ')         \
1021
0
  {                     \
1022
0
    *((char *) mempcpy (buf, ar_hdr->FIELD, sizeof (ar_hdr->FIELD)))  \
1023
0
      = '\0';                   \
1024
0
    string = buf;                   \
1025
0
  }                      \
1026
0
      if (sizeof (elf_ar_hdr->FIELD) <= sizeof (long int))         \
1027
0
  elf_ar_hdr->FIELD                 \
1028
0
    = (__typeof (elf_ar_hdr->FIELD)) strtol (string, NULL, 8);       \
1029
0
      else                      \
1030
0
  elf_ar_hdr->FIELD                 \
1031
0
    = (__typeof (elf_ar_hdr->FIELD)) strtoll (string, NULL, 8);       \
1032
0
    }                       \
1033
0
  while (0)
1034
1035
0
  INT_FIELD (ar_date);
1036
0
  INT_FIELD (ar_uid);
1037
0
  INT_FIELD (ar_gid);
1038
0
  OCT_FIELD (ar_mode);
1039
0
  INT_FIELD (ar_size);
1040
1041
0
  if (elf_ar_hdr->ar_size < 0)
1042
0
    {
1043
0
      __libelf_seterrno (ELF_E_INVALID_ARCHIVE);
1044
0
      return -1;
1045
0
    }
1046
1047
  /* Truncated file?  */
1048
0
  size_t maxsize;
1049
0
  maxsize = (elf->start_offset + elf->maximum_size
1050
0
       - elf->state.ar.offset - sizeof (struct ar_hdr));
1051
0
  if ((size_t) elf_ar_hdr->ar_size > maxsize)
1052
0
    elf_ar_hdr->ar_size = maxsize;
1053
1054
0
  return 0;
1055
0
}
1056
1057
1058
/* We were asked to return a clone of an existing descriptor.  This
1059
   function must be called with the lock on the parent descriptor
1060
   being held. */
1061
static Elf *
1062
dup_elf (int fildes, Elf_Cmd cmd, Elf *ref)
1063
0
{
1064
0
  struct Elf *result;
1065
1066
0
  if (fildes == -1)
1067
    /* Allow the user to pass -1 as the file descriptor for the new file.  */
1068
0
    fildes = ref->fildes;
1069
  /* The file descriptor better should be the same.  If it was disconnected
1070
     already (using `elf_cntl') we do not test it.  */
1071
0
  else if (unlikely (ref->fildes != -1 && fildes != ref->fildes))
1072
0
    {
1073
0
      __libelf_seterrno (ELF_E_FD_MISMATCH);
1074
0
      return NULL;
1075
0
    }
1076
1077
  /* The mode must allow reading.  I.e., a descriptor creating with a
1078
     command different then ELF_C_READ, ELF_C_WRITE and ELF_C_RDWR is
1079
     not allowed.  */
1080
0
  if (unlikely (ref->cmd != ELF_C_READ && ref->cmd != ELF_C_READ_MMAP
1081
0
    && ref->cmd != ELF_C_WRITE && ref->cmd != ELF_C_WRITE_MMAP
1082
0
    && ref->cmd != ELF_C_RDWR && ref->cmd != ELF_C_RDWR_MMAP
1083
0
    && ref->cmd != ELF_C_READ_MMAP_PRIVATE))
1084
0
    {
1085
0
      __libelf_seterrno (ELF_E_INVALID_OP);
1086
0
      return NULL;
1087
0
    }
1088
1089
  /* Now it is time to distinguish between reading normal files and
1090
     archives.  Normal files can easily be handled be incrementing the
1091
     reference counter and return the same descriptor.  */
1092
0
  if (ref->kind != ELF_K_AR)
1093
0
    {
1094
0
      ++ref->ref_count;
1095
0
      return ref;
1096
0
    }
1097
1098
  /* This is an archive.  We must create a descriptor for the archive
1099
     member the internal pointer of the archive file descriptor is
1100
     pointing to.  First read the header of the next member if this
1101
     has not happened already.  */
1102
0
  if (ref->state.ar.cur_ar_hdr.ar_name == NULL
1103
0
      && __libelf_next_arhdr_wrlock (ref) != 0)
1104
    /* Something went wrong.  Maybe there is no member left.  */
1105
0
    return NULL;
1106
1107
  /* We have all the information we need about the next archive member.
1108
     Now create a descriptor for it. Check parent size can contain member.  */
1109
0
  if (ref->state.ar.offset < ref->start_offset)
1110
0
    return NULL;
1111
0
  size_t max_size = ref->maximum_size;
1112
0
  size_t offset = (size_t) (ref->state.ar.offset - ref->start_offset);
1113
0
  size_t hdr_size = sizeof (struct ar_hdr);
1114
0
  size_t ar_size = (size_t) ref->state.ar.cur_ar_hdr.ar_size;
1115
0
  if (max_size < hdr_size || max_size - hdr_size < offset)
1116
0
    return NULL;
1117
1118
0
  Elf_Arhdr ar_hdr = {0};
1119
0
  if (copy_arhdr (&ar_hdr, ref) != 0)
1120
    /* Out of memory.  */
1121
0
    return NULL;
1122
1123
0
  result = read_file (fildes, ref->state.ar.offset + sizeof (struct ar_hdr),
1124
0
          MIN (max_size - hdr_size - offset, ar_size), cmd, ref);
1125
1126
0
  if (result != NULL)
1127
0
    {
1128
      /* Enlist this new descriptor in the list of children.  */
1129
0
      result->next = ref->state.ar.children;
1130
0
      ref->state.ar.children = result;
1131
1132
0
      result->elf_ar_hdr = ar_hdr;
1133
0
    }
1134
0
  else
1135
0
    {
1136
0
      free (ar_hdr.ar_name);
1137
0
      free (ar_hdr.ar_rawname);
1138
0
    }
1139
1140
0
  return result;
1141
0
}
1142
1143
1144
/* Return descriptor for empty file ready for writing.  */
1145
static struct Elf *
1146
write_file (int fd, Elf_Cmd cmd)
1147
0
{
1148
  /* We simply create an empty `Elf' structure.  */
1149
0
#define NSCNSALLOC  10
1150
0
  Elf *result = allocate_elf (fd, NULL, 0, 0, cmd, NULL, ELF_K_ELF,
1151
0
            NSCNSALLOC * sizeof (Elf_Scn));
1152
1153
0
  if (result != NULL)
1154
0
    {
1155
      /* We have to write to the file in any case.  */
1156
0
      result->flags = ELF_F_DIRTY;
1157
1158
      /* Some more or less arbitrary value.  */
1159
0
      result->state.elf.scnincr = NSCNSALLOC;
1160
1161
      /* We have allocated room for some sections.  */
1162
0
      assert (offsetof (struct Elf, state.elf32.scns)
1163
0
        == offsetof (struct Elf, state.elf64.scns));
1164
0
      result->state.elf.scns_last = &result->state.elf32.scns;
1165
0
      result->state.elf32.scns.max = NSCNSALLOC;
1166
0
    }
1167
1168
0
  return result;
1169
0
}
1170
1171
/* Lock if necessary before dup an archive.  */
1172
static inline Elf *
1173
lock_dup_elf (int fildes, Elf_Cmd cmd, Elf *ref)
1174
0
{
1175
  /* We need wrlock to dup an archive.  */
1176
0
  if (ref->kind == ELF_K_AR)
1177
0
    {
1178
0
      rwlock_unlock (ref->lock);
1179
0
      rwlock_wrlock (ref->lock);
1180
0
    }
1181
    /* Duplicate the descriptor.  */
1182
0
  return dup_elf (fildes, cmd, ref);
1183
0
}
1184
1185
/* Return a descriptor for the file belonging to FILDES.  */
1186
Elf *
1187
elf_begin (int fildes, Elf_Cmd cmd, Elf *ref)
1188
35.8k
{
1189
35.8k
  Elf *retval;
1190
1191
35.8k
  if (unlikely (__libelf_version != EV_CURRENT))
1192
0
    {
1193
      /* Version wasn't set so far.  */
1194
0
      __libelf_seterrno (ELF_E_NO_VERSION);
1195
0
      return NULL;
1196
0
    }
1197
1198
35.8k
  if (ref != NULL)
1199
    /* Make sure the descriptor is not suddenly going away.  */
1200
0
    rwlock_rdlock (ref->lock);
1201
35.8k
  else if (unlikely (fcntl (fildes, F_GETFD) == -1 && errno == EBADF))
1202
0
    {
1203
      /* We cannot do anything productive without a file descriptor.  */
1204
0
      __libelf_seterrno (ELF_E_INVALID_FILE);
1205
0
      return NULL;
1206
0
    }
1207
1208
35.8k
  switch (cmd)
1209
35.8k
    {
1210
0
    case ELF_C_NULL:
1211
      /* We simply return a NULL pointer.  */
1212
0
      retval = NULL;
1213
0
      break;
1214
1215
0
    case ELF_C_READ_MMAP_PRIVATE:
1216
      /* If we have a reference it must also be opened this way.  */
1217
0
      if (unlikely (ref != NULL && ref->cmd != ELF_C_READ_MMAP_PRIVATE))
1218
0
  {
1219
0
    __libelf_seterrno (ELF_E_INVALID_CMD);
1220
0
    retval = NULL;
1221
0
    break;
1222
0
  }
1223
0
      FALLTHROUGH;
1224
1225
17.9k
    case ELF_C_READ:
1226
23.9k
    case ELF_C_READ_MMAP:
1227
23.9k
      if (ref != NULL)
1228
0
  retval = lock_dup_elf (fildes, cmd, ref);
1229
23.9k
      else
1230
  /* Create descriptor for existing file.  */
1231
23.9k
  retval = read_file (fildes, 0, ~((size_t) 0), cmd, NULL);
1232
23.9k
      break;
1233
1234
5.97k
    case ELF_C_RDWR:
1235
11.9k
    case ELF_C_RDWR_MMAP:
1236
      /* If we have a REF object it must also be opened using this
1237
   command.  */
1238
11.9k
      if (ref != NULL)
1239
0
  {
1240
0
    if (unlikely (ref->cmd != ELF_C_RDWR && ref->cmd != ELF_C_RDWR_MMAP
1241
0
      && ref->cmd != ELF_C_WRITE
1242
0
      && ref->cmd != ELF_C_WRITE_MMAP))
1243
0
      {
1244
        /* This is not ok.  REF must also be opened for writing.  */
1245
0
        __libelf_seterrno (ELF_E_INVALID_CMD);
1246
0
        retval = NULL;
1247
0
      }
1248
0
    else
1249
0
      retval = lock_dup_elf (fildes, cmd, ref);
1250
0
  }
1251
11.9k
      else
1252
  /* Create descriptor for existing file.  */
1253
11.9k
  retval = read_file (fildes, 0, ~((size_t) 0), cmd, NULL);
1254
11.9k
      break;
1255
1256
0
    case ELF_C_WRITE:
1257
0
    case ELF_C_WRITE_MMAP:
1258
      /* We ignore REF and prepare a descriptor to write a new file.  */
1259
0
      retval = write_file (fildes, cmd);
1260
0
      break;
1261
1262
0
    default:
1263
0
      __libelf_seterrno (ELF_E_INVALID_CMD);
1264
0
      retval = NULL;
1265
0
      break;
1266
35.8k
    }
1267
1268
  /* Release the lock.  */
1269
35.8k
  if (ref != NULL)
1270
0
    rwlock_unlock (ref->lock);
1271
1272
35.8k
  return retval;
1273
35.8k
}
1274
INTDEF(elf_begin)