Change unexec implementations to match prototype.
[bpt/emacs.git] / src / unexmacosx.c
CommitLineData
e0f712ba 1/* Dump Emacs in Mach-O format for use on Mac OS X.
73b0cd50 2 Copyright (C) 2001-2011 Free Software Foundation, Inc.
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3
4This file is part of GNU Emacs.
5
9ec0b715 6GNU Emacs is free software: you can redistribute it and/or modify
e0f712ba 7it under the terms of the GNU General Public License as published by
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8the Free Software Foundation, either version 3 of the License, or
9(at your option) any later version.
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10
11GNU Emacs is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
9ec0b715 17along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
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18
19/* Contributed by Andrew Choi (akochoi@mac.com). */
20
21/* Documentation note.
22
23 Consult the following documents/files for a description of the
24 Mach-O format: the file loader.h, man pages for Mach-O and ld, old
25 NEXTSTEP documents of the Mach-O format. The tool otool dumps the
26 mach header (-h option) and the load commands (-l option) in a
27 Mach-O file. The tool nm on Mac OS X displays the symbol table in
28 a Mach-O file. For examples of unexec for the Mach-O format, see
29 the file unexnext.c in the GNU Emacs distribution, the file
30 unexdyld.c in the Darwin port of GNU Emacs 20.7, and unexdyld.c in
31 the Darwin port of XEmacs 21.1. Also the Darwin Libc source
32 contains the source code for malloc_freezedry and malloc_jumpstart.
33 Read that to see what they do. This file was written completely
34 from scratch, making use of information from the above sources. */
35
36/* The Mac OS X implementation of unexec makes use of Darwin's `zone'
37 memory allocator. All calls to malloc, realloc, and free in Emacs
38 are redirected to unexec_malloc, unexec_realloc, and unexec_free in
39 this file. When temacs is run, all memory requests are handled in
40 the zone EmacsZone. The Darwin memory allocator library calls
41 maintain the data structures to manage this zone. Dumping writes
42 its contents to data segments of the executable file. When emacs
43 is run, the loader recreates the contents of the zone in memory.
44 However since the initialization routine of the zone memory
45 allocator is run again, this `zone' can no longer be used as a
46 heap. That is why emacs uses the ordinary malloc system call to
47 allocate memory. Also, when a block of memory needs to be
48 reallocated and the new size is larger than the old one, a new
49 block must be obtained by malloc and the old contents copied to
50 it. */
51
52/* Peculiarity of the Mach-O files generated by ld in Mac OS X
53 (possible causes of future bugs if changed).
54
55 The file offset of the start of the __TEXT segment is zero. Since
56 the Mach header and load commands are located at the beginning of a
57 Mach-O file, copying the contents of the __TEXT segment from the
58 input file overwrites them in the output file. Despite this,
59 unexec works fine as written below because the segment load command
60 for __TEXT appears, and is therefore processed, before all other
61 load commands except the segment load command for __PAGEZERO, which
62 remains unchanged.
63
64 Although the file offset of the start of the __TEXT segment is
65 zero, none of the sections it contains actually start there. In
66 fact, the earliest one starts a few hundred bytes beyond the end of
67 the last load command. The linker option -headerpad controls the
68 minimum size of this padding. Its setting can be changed in
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69 s/darwin.h. A value of 0x690, e.g., leaves room for 30 additional
70 load commands for the newly created __DATA segments (at 56 bytes
71 each). Unexec fails if there is not enough room for these new
72 segments.
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73
74 The __TEXT segment contains the sections __text, __cstring,
75 __picsymbol_stub, and __const and the __DATA segment contains the
76 sections __data, __la_symbol_ptr, __nl_symbol_ptr, __dyld, __bss,
77 and __common. The other segments do not contain any sections.
78 These sections are copied from the input file to the output file,
79 except for __data, __bss, and __common, which are dumped from
80 memory. The types of the sections __bss and __common are changed
81 from S_ZEROFILL to S_REGULAR. Note that the number of sections and
82 their relative order in the input and output files remain
83 unchanged. Otherwise all n_sect fields in the nlist records in the
84 symbol table (specified by the LC_SYMTAB load command) will have to
85 be changed accordingly.
86*/
87
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88/* config.h #define:s malloc/realloc/free and then includes stdlib.h.
89 We want the undefined versions, but if config.h includes stdlib.h
90 with the #define:s in place, the prototypes will be wrong and we get
91 warnings. To prevent that, include stdlib.h before config.h. */
92
e0f712ba 93#include <stdlib.h>
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94#include <config.h>
95#undef malloc
96#undef realloc
97#undef free
ce701a33
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98
99#include "unexec.h"
100
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101#include <stdio.h>
102#include <fcntl.h>
103#include <stdarg.h>
104#include <sys/types.h>
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105#include <unistd.h>
106#include <mach/mach.h>
107#include <mach-o/loader.h>
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108#include <mach-o/reloc.h>
109#if defined (__ppc__)
110#include <mach-o/ppc/reloc.h>
111#endif
7f900522 112#ifdef HAVE_MALLOC_MALLOC_H
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113#include <malloc/malloc.h>
114#else
e0f712ba 115#include <objc/malloc.h>
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116#endif
117
40ef0695
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118#include <assert.h>
119
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120#ifdef _LP64
121#define mach_header mach_header_64
122#define segment_command segment_command_64
123#undef VM_REGION_BASIC_INFO_COUNT
124#define VM_REGION_BASIC_INFO_COUNT VM_REGION_BASIC_INFO_COUNT_64
125#undef VM_REGION_BASIC_INFO
126#define VM_REGION_BASIC_INFO VM_REGION_BASIC_INFO_64
127#undef LC_SEGMENT
128#define LC_SEGMENT LC_SEGMENT_64
129#define vm_region vm_region_64
130#define section section_64
131#undef MH_MAGIC
132#define MH_MAGIC MH_MAGIC_64
133#endif
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134
135#define VERBOSE 1
136
137/* Size of buffer used to copy data from the input file to the output
138 file in function unexec_copy. */
139#define UNEXEC_COPY_BUFSZ 1024
140
141/* Regions with memory addresses above this value are assumed to be
142 mapped to dynamically loaded libraries and will not be dumped. */
143#define VM_DATA_TOP (20 * 1024 * 1024)
144
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145/* Type of an element on the list of regions to be dumped. */
146struct region_t {
147 vm_address_t address;
148 vm_size_t size;
149 vm_prot_t protection;
150 vm_prot_t max_protection;
151
152 struct region_t *next;
153};
154
155/* Head and tail of the list of regions to be dumped. */
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156static struct region_t *region_list_head = 0;
157static struct region_t *region_list_tail = 0;
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158
159/* Pointer to array of load commands. */
c57038f8 160static struct load_command **lca;
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161
162/* Number of load commands. */
c57038f8 163static int nlc;
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164
165/* The highest VM address of segments loaded by the input file.
166 Regions with addresses beyond this are assumed to be allocated
167 dynamically and thus require dumping. */
c57038f8 168static vm_address_t infile_lc_highest_addr = 0;
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169
170/* The lowest file offset used by the all sections in the __TEXT
171 segments. This leaves room at the beginning of the file to store
172 the Mach-O header. Check this value against header size to ensure
173 the added load commands for the new __DATA segments did not
174 overwrite any of the sections in the __TEXT segment. */
c57038f8 175static unsigned long text_seg_lowest_offset = 0x10000000;
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176
177/* Mach header. */
c57038f8 178static struct mach_header mh;
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179
180/* Offset at which the next load command should be written. */
c57038f8 181static unsigned long curr_header_offset = sizeof (struct mach_header);
e0f712ba 182
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183/* Offset at which the next segment should be written. */
184static unsigned long curr_file_offset = 0;
185
186static unsigned long pagesize;
187#define ROUNDUP_TO_PAGE_BOUNDARY(x) (((x) + pagesize - 1) & ~(pagesize - 1))
e0f712ba 188
c57038f8 189static int infd, outfd;
e0f712ba 190
c57038f8 191static int in_dumped_exec = 0;
e0f712ba 192
c57038f8 193static malloc_zone_t *emacs_zone;
e0f712ba 194
043131c4 195/* file offset of input file's data segment */
c57038f8 196static off_t data_segment_old_fileoff = 0;
043131c4 197
c57038f8 198static struct segment_command *data_segment_scp;
043131c4 199
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200static void unexec_error (const char *format, ...) NO_RETURN;
201
433456d7 202/* Read N bytes from infd into memory starting at address DEST.
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203 Return true if successful, false otherwise. */
204static int
205unexec_read (void *dest, size_t n)
206{
207 return n == read (infd, dest, n);
208}
209
433456d7
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210/* Write COUNT bytes from memory starting at address SRC to outfd
211 starting at offset DEST. Return true if successful, false
212 otherwise. */
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213static int
214unexec_write (off_t dest, const void *src, size_t count)
215{
216 if (lseek (outfd, dest, SEEK_SET) != dest)
217 return 0;
218
219 return write (outfd, src, count) == count;
220}
221
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222/* Write COUNT bytes of zeros to outfd starting at offset DEST.
223 Return true if successful, false otherwise. */
224static int
225unexec_write_zero (off_t dest, size_t count)
226{
227 char buf[UNEXEC_COPY_BUFSZ];
228 ssize_t bytes;
229
72af86bd 230 memset (buf, 0, UNEXEC_COPY_BUFSZ);
433456d7
YM
231 if (lseek (outfd, dest, SEEK_SET) != dest)
232 return 0;
233
234 while (count > 0)
235 {
236 bytes = count > UNEXEC_COPY_BUFSZ ? UNEXEC_COPY_BUFSZ : count;
237 if (write (outfd, buf, bytes) != bytes)
238 return 0;
239 count -= bytes;
240 }
241
242 return 1;
243}
244
245/* Copy COUNT bytes from starting offset SRC in infd to starting
246 offset DEST in outfd. Return true if successful, false
247 otherwise. */
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248static int
249unexec_copy (off_t dest, off_t src, ssize_t count)
250{
251 ssize_t bytes_read;
911c78b4 252 ssize_t bytes_to_read;
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253
254 char buf[UNEXEC_COPY_BUFSZ];
255
256 if (lseek (infd, src, SEEK_SET) != src)
257 return 0;
258
259 if (lseek (outfd, dest, SEEK_SET) != dest)
260 return 0;
261
262 while (count > 0)
263 {
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ST
264 bytes_to_read = count > UNEXEC_COPY_BUFSZ ? UNEXEC_COPY_BUFSZ : count;
265 bytes_read = read (infd, buf, bytes_to_read);
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266 if (bytes_read <= 0)
267 return 0;
268 if (write (outfd, buf, bytes_read) != bytes_read)
269 return 0;
270 count -= bytes_read;
271 }
272
273 return 1;
274}
275
276/* Debugging and informational messages routines. */
277
278static void
7aee76f4 279unexec_error (const char *format, ...)
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280{
281 va_list ap;
282
283 va_start (ap, format);
284 fprintf (stderr, "unexec: ");
285 vfprintf (stderr, format, ap);
286 fprintf (stderr, "\n");
287 va_end (ap);
288 exit (1);
289}
290
291static void
292print_prot (vm_prot_t prot)
293{
294 if (prot == VM_PROT_NONE)
295 printf ("none");
296 else
297 {
298 putchar (prot & VM_PROT_READ ? 'r' : ' ');
299 putchar (prot & VM_PROT_WRITE ? 'w' : ' ');
300 putchar (prot & VM_PROT_EXECUTE ? 'x' : ' ');
301 putchar (' ');
302 }
303}
304
305static void
306print_region (vm_address_t address, vm_size_t size, vm_prot_t prot,
307 vm_prot_t max_prot)
308{
73da71f9 309 printf ("%#10lx %#8lx ", (long) address, (long) size);
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310 print_prot (prot);
311 putchar (' ');
312 print_prot (max_prot);
313 putchar ('\n');
314}
315
316static void
3d608a86 317print_region_list (void)
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318{
319 struct region_t *r;
320
321 printf (" address size prot maxp\n");
322
323 for (r = region_list_head; r; r = r->next)
324 print_region (r->address, r->size, r->protection, r->max_protection);
325}
326
c57038f8 327static void
3d608a86 328print_regions (void)
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329{
330 task_t target_task = mach_task_self ();
331 vm_address_t address = (vm_address_t) 0;
332 vm_size_t size;
333 struct vm_region_basic_info info;
334 mach_msg_type_number_t info_count = VM_REGION_BASIC_INFO_COUNT;
335 mach_port_t object_name;
336
337 printf (" address size prot maxp\n");
338
339 while (vm_region (target_task, &address, &size, VM_REGION_BASIC_INFO,
340 (vm_region_info_t) &info, &info_count, &object_name)
341 == KERN_SUCCESS && info_count == VM_REGION_BASIC_INFO_COUNT)
342 {
343 print_region (address, size, info.protection, info.max_protection);
344
345 if (object_name != MACH_PORT_NULL)
346 mach_port_deallocate (target_task, object_name);
177c0ea7 347
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348 address += size;
349 }
350}
351
352/* Build the list of regions that need to be dumped. Regions with
353 addresses above VM_DATA_TOP are omitted. Adjacent regions with
354 identical protection are merged. Note that non-writable regions
355 cannot be omitted because they some regions created at run time are
356 read-only. */
357static void
3d608a86 358build_region_list (void)
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359{
360 task_t target_task = mach_task_self ();
361 vm_address_t address = (vm_address_t) 0;
362 vm_size_t size;
363 struct vm_region_basic_info info;
364 mach_msg_type_number_t info_count = VM_REGION_BASIC_INFO_COUNT;
365 mach_port_t object_name;
366 struct region_t *r;
367
368#if VERBOSE
369 printf ("--- List of All Regions ---\n");
370 printf (" address size prot maxp\n");
371#endif
372
373 while (vm_region (target_task, &address, &size, VM_REGION_BASIC_INFO,
374 (vm_region_info_t) &info, &info_count, &object_name)
375 == KERN_SUCCESS && info_count == VM_REGION_BASIC_INFO_COUNT)
376 {
377 /* Done when we reach addresses of shared libraries, which are
378 loaded in high memory. */
379 if (address >= VM_DATA_TOP)
380 break;
381
382#if VERBOSE
383 print_region (address, size, info.protection, info.max_protection);
384#endif
385
386 /* If a region immediately follows the previous one (the one
387 most recently added to the list) and has identical
388 protection, merge it with the latter. Otherwise create a
389 new list element for it. */
390 if (region_list_tail
391 && info.protection == region_list_tail->protection
392 && info.max_protection == region_list_tail->max_protection
393 && region_list_tail->address + region_list_tail->size == address)
394 {
395 region_list_tail->size += size;
396 }
397 else
398 {
399 r = (struct region_t *) malloc (sizeof (struct region_t));
177c0ea7 400
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401 if (!r)
402 unexec_error ("cannot allocate region structure");
177c0ea7 403
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404 r->address = address;
405 r->size = size;
406 r->protection = info.protection;
407 r->max_protection = info.max_protection;
177c0ea7 408
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409 r->next = 0;
410 if (region_list_head == 0)
411 {
412 region_list_head = r;
413 region_list_tail = r;
414 }
415 else
416 {
417 region_list_tail->next = r;
418 region_list_tail = r;
419 }
177c0ea7 420
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421 /* Deallocate (unused) object name returned by
422 vm_region. */
423 if (object_name != MACH_PORT_NULL)
424 mach_port_deallocate (target_task, object_name);
425 }
177c0ea7 426
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427 address += size;
428 }
429
430 printf ("--- List of Regions to be Dumped ---\n");
431 print_region_list ();
432}
433
434
73da71f9 435#define MAX_UNEXEC_REGIONS 400
e0f712ba 436
c57038f8
YM
437static int num_unexec_regions;
438typedef struct {
439 vm_range_t range;
440 vm_size_t filesize;
441} unexec_region_info;
442static unexec_region_info unexec_regions[MAX_UNEXEC_REGIONS];
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443
444static void
445unexec_regions_recorder (task_t task, void *rr, unsigned type,
446 vm_range_t *ranges, unsigned num)
447{
c57038f8
YM
448 vm_address_t p;
449 vm_size_t filesize;
450
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451 while (num && num_unexec_regions < MAX_UNEXEC_REGIONS)
452 {
ae7c60a9 453 /* Subtract the size of trailing null bytes from filesize. It
c57038f8 454 can be smaller than vmsize in segment commands. In such a
ae7c60a9
YM
455 case, trailing bytes are initialized with zeros. */
456 for (p = ranges->address + ranges->size; p > ranges->address; p--)
457 if (*(((char *) p)-1))
458 break;
459 filesize = p - ranges->address;
c57038f8
YM
460
461 unexec_regions[num_unexec_regions].filesize = filesize;
462 unexec_regions[num_unexec_regions++].range = *ranges;
463 printf ("%#10lx (sz: %#8lx/%#8lx)\n", (long) (ranges->address),
464 (long) filesize, (long) (ranges->size));
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465 ranges++; num--;
466 }
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467}
468
469static kern_return_t
470unexec_reader (task_t task, vm_address_t address, vm_size_t size, void **ptr)
471{
472 *ptr = (void *) address;
473 return KERN_SUCCESS;
474}
475
c57038f8 476static void
3d608a86 477find_emacs_zone_regions (void)
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AC
478{
479 num_unexec_regions = 0;
480
481 emacs_zone->introspect->enumerator (mach_task_self(), 0,
482 MALLOC_PTR_REGION_RANGE_TYPE
483 | MALLOC_ADMIN_REGION_RANGE_TYPE,
484 (vm_address_t) emacs_zone,
485 unexec_reader,
486 unexec_regions_recorder);
73da71f9
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487
488 if (num_unexec_regions == MAX_UNEXEC_REGIONS)
489 unexec_error ("find_emacs_zone_regions: too many regions");
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490}
491
1dd7ccf2
AC
492static int
493unexec_regions_sort_compare (const void *a, const void *b)
494{
c57038f8
YM
495 vm_address_t aa = ((unexec_region_info *) a)->range.address;
496 vm_address_t bb = ((unexec_region_info *) b)->range.address;
1dd7ccf2
AC
497
498 if (aa < bb)
499 return -1;
500 else if (aa > bb)
501 return 1;
502 else
503 return 0;
504}
505
506static void
3d608a86 507unexec_regions_merge (void)
1dd7ccf2
AC
508{
509 int i, n;
c57038f8 510 unexec_region_info r;
ae7c60a9 511 vm_size_t padsize;
1dd7ccf2
AC
512
513 qsort (unexec_regions, num_unexec_regions, sizeof (unexec_regions[0]),
514 &unexec_regions_sort_compare);
515 n = 0;
516 r = unexec_regions[0];
ae7c60a9
YM
517 padsize = r.range.address & (pagesize - 1);
518 if (padsize)
519 {
520 r.range.address -= padsize;
521 r.range.size += padsize;
522 r.filesize += padsize;
523 }
1dd7ccf2
AC
524 for (i = 1; i < num_unexec_regions; i++)
525 {
c57038f8
YM
526 if (r.range.address + r.range.size == unexec_regions[i].range.address
527 && r.range.size - r.filesize < 2 * pagesize)
1dd7ccf2 528 {
c57038f8
YM
529 r.filesize = r.range.size + unexec_regions[i].filesize;
530 r.range.size += unexec_regions[i].range.size;
1dd7ccf2
AC
531 }
532 else
533 {
534 unexec_regions[n++] = r;
535 r = unexec_regions[i];
ae7c60a9
YM
536 padsize = r.range.address & (pagesize - 1);
537 if (padsize)
538 {
539 if ((unexec_regions[n-1].range.address
540 + unexec_regions[n-1].range.size) == r.range.address)
541 unexec_regions[n-1].range.size -= padsize;
542
543 r.range.address -= padsize;
544 r.range.size += padsize;
545 r.filesize += padsize;
546 }
1dd7ccf2
AC
547 }
548 }
549 unexec_regions[n++] = r;
550 num_unexec_regions = n;
551}
552
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553
554/* More informational messages routines. */
555
556static void
557print_load_command_name (int lc)
558{
559 switch (lc)
560 {
561 case LC_SEGMENT:
73da71f9 562#ifndef _LP64
e0f712ba 563 printf ("LC_SEGMENT ");
73da71f9
YM
564#else
565 printf ("LC_SEGMENT_64 ");
566#endif
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567 break;
568 case LC_LOAD_DYLINKER:
569 printf ("LC_LOAD_DYLINKER ");
570 break;
571 case LC_LOAD_DYLIB:
572 printf ("LC_LOAD_DYLIB ");
573 break;
574 case LC_SYMTAB:
575 printf ("LC_SYMTAB ");
576 break;
577 case LC_DYSYMTAB:
578 printf ("LC_DYSYMTAB ");
579 break;
580 case LC_UNIXTHREAD:
581 printf ("LC_UNIXTHREAD ");
582 break;
583 case LC_PREBOUND_DYLIB:
584 printf ("LC_PREBOUND_DYLIB");
585 break;
586 case LC_TWOLEVEL_HINTS:
587 printf ("LC_TWOLEVEL_HINTS");
588 break;
ae7c60a9
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589#ifdef LC_UUID
590 case LC_UUID:
591 printf ("LC_UUID ");
592 break;
6bcd6333
YM
593#endif
594#ifdef LC_DYLD_INFO
595 case LC_DYLD_INFO:
596 printf ("LC_DYLD_INFO ");
597 break;
598 case LC_DYLD_INFO_ONLY:
599 printf ("LC_DYLD_INFO_ONLY");
600 break;
ae7c60a9 601#endif
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602 default:
603 printf ("unknown ");
604 }
605}
606
607static void
608print_load_command (struct load_command *lc)
609{
610 print_load_command_name (lc->cmd);
611 printf ("%8d", lc->cmdsize);
612
613 if (lc->cmd == LC_SEGMENT)
614 {
615 struct segment_command *scp;
616 struct section *sectp;
617 int j;
618
619 scp = (struct segment_command *) lc;
73da71f9
YM
620 printf (" %-16.16s %#10lx %#8lx\n",
621 scp->segname, (long) (scp->vmaddr), (long) (scp->vmsize));
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622
623 sectp = (struct section *) (scp + 1);
624 for (j = 0; j < scp->nsects; j++)
625 {
73da71f9
YM
626 printf (" %-16.16s %#10lx %#8lx\n",
627 sectp->sectname, (long) (sectp->addr), (long) (sectp->size));
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AC
628 sectp++;
629 }
630 }
631 else
632 printf ("\n");
633}
634
635/* Read header and load commands from input file. Store the latter in
636 the global array lca. Store the total number of load commands in
637 global variable nlc. */
638static void
3d608a86 639read_load_commands (void)
e0f712ba 640{
7f900522 641 int i;
e0f712ba
AC
642
643 if (!unexec_read (&mh, sizeof (struct mach_header)))
644 unexec_error ("cannot read mach-o header");
645
646 if (mh.magic != MH_MAGIC)
647 unexec_error ("input file not in Mach-O format");
648
649 if (mh.filetype != MH_EXECUTE)
650 unexec_error ("input Mach-O file is not an executable object file");
651
652#if VERBOSE
653 printf ("--- Header Information ---\n");
654 printf ("Magic = 0x%08x\n", mh.magic);
655 printf ("CPUType = %d\n", mh.cputype);
656 printf ("CPUSubType = %d\n", mh.cpusubtype);
657 printf ("FileType = 0x%x\n", mh.filetype);
658 printf ("NCmds = %d\n", mh.ncmds);
659 printf ("SizeOfCmds = %d\n", mh.sizeofcmds);
660 printf ("Flags = 0x%08x\n", mh.flags);
661#endif
662
663 nlc = mh.ncmds;
664 lca = (struct load_command **) malloc (nlc * sizeof (struct load_command *));
177c0ea7 665
e0f712ba
AC
666 for (i = 0; i < nlc; i++)
667 {
668 struct load_command lc;
669 /* Load commands are variable-size: so read the command type and
670 size first and then read the rest. */
671 if (!unexec_read (&lc, sizeof (struct load_command)))
672 unexec_error ("cannot read load command");
673 lca[i] = (struct load_command *) malloc (lc.cmdsize);
674 memcpy (lca[i], &lc, sizeof (struct load_command));
675 if (!unexec_read (lca[i] + 1, lc.cmdsize - sizeof (struct load_command)))
676 unexec_error ("cannot read content of load command");
677 if (lc.cmd == LC_SEGMENT)
678 {
679 struct segment_command *scp = (struct segment_command *) lca[i];
177c0ea7 680
e0f712ba
AC
681 if (scp->vmaddr + scp->vmsize > infile_lc_highest_addr)
682 infile_lc_highest_addr = scp->vmaddr + scp->vmsize;
683
684 if (strncmp (scp->segname, SEG_TEXT, 16) == 0)
685 {
686 struct section *sectp = (struct section *) (scp + 1);
687 int j;
688
689 for (j = 0; j < scp->nsects; j++)
690 if (sectp->offset < text_seg_lowest_offset)
691 text_seg_lowest_offset = sectp->offset;
692 }
693 }
694 }
695
3d608a86
J
696 printf ("Highest address of load commands in input file: %#8lx\n",
697 (unsigned long)infile_lc_highest_addr);
e0f712ba 698
c57038f8 699 printf ("Lowest offset of all sections in __TEXT segment: %#8lx\n",
e0f712ba
AC
700 text_seg_lowest_offset);
701
702 printf ("--- List of Load Commands in Input File ---\n");
703 printf ("# cmd cmdsize name address size\n");
704
705 for (i = 0; i < nlc; i++)
706 {
707 printf ("%1d ", i);
708 print_load_command (lca[i]);
709 }
710}
711
712/* Copy a LC_SEGMENT load command other than the __DATA segment from
713 the input file to the output file, adjusting the file offset of the
714 segment and the file offsets of sections contained in it. */
715static void
716copy_segment (struct load_command *lc)
717{
718 struct segment_command *scp = (struct segment_command *) lc;
719 unsigned long old_fileoff = scp->fileoff;
720 struct section *sectp;
721 int j;
722
73da71f9 723 scp->fileoff = curr_file_offset;
e0f712ba
AC
724
725 sectp = (struct section *) (scp + 1);
726 for (j = 0; j < scp->nsects; j++)
727 {
73da71f9 728 sectp->offset += curr_file_offset - old_fileoff;
e0f712ba
AC
729 sectp++;
730 }
731
c57038f8
YM
732 printf ("Writing segment %-16.16s @ %#8lx (%#8lx/%#8lx @ %#10lx)\n",
733 scp->segname, (long) (scp->fileoff), (long) (scp->filesize),
734 (long) (scp->vmsize), (long) (scp->vmaddr));
e0f712ba
AC
735
736 if (!unexec_copy (scp->fileoff, old_fileoff, scp->filesize))
737 unexec_error ("cannot copy segment from input to output file");
73da71f9
YM
738 curr_file_offset += ROUNDUP_TO_PAGE_BOUNDARY (scp->filesize);
739
e0f712ba
AC
740 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
741 unexec_error ("cannot write load command to header");
742
743 curr_header_offset += lc->cmdsize;
744}
745
746/* Copy a LC_SEGMENT load command for the __DATA segment in the input
747 file to the output file. We assume that only one such segment load
748 command exists in the input file and it contains the sections
749 __data, __bss, __common, __la_symbol_ptr, __nl_symbol_ptr, and
750 __dyld. The first three of these should be dumped from memory and
751 the rest should be copied from the input file. Note that the
752 sections __bss and __common contain no data in the input file
753 because their flag fields have the value S_ZEROFILL. Dumping these
754 from memory makes it necessary to adjust file offset fields in
755 subsequently dumped load commands. Then, create new __DATA segment
756 load commands for regions on the region list other than the one
757 corresponding to the __DATA segment in the input file. */
758static void
759copy_data_segment (struct load_command *lc)
760{
761 struct segment_command *scp = (struct segment_command *) lc;
762 struct section *sectp;
763 int j;
c57038f8
YM
764 unsigned long header_offset, old_file_offset;
765
766 /* The new filesize of the segment is set to its vmsize because data
767 blocks for segments must start at region boundaries. Note that
768 this may leave unused locations at the end of the segment data
769 block because the total of the sizes of all sections in the
770 segment is generally smaller than vmsize. */
771 scp->filesize = scp->vmsize;
e0f712ba 772
c57038f8
YM
773 printf ("Writing segment %-16.16s @ %#8lx (%#8lx/%#8lx @ %#10lx)\n",
774 scp->segname, curr_file_offset, (long)(scp->filesize),
775 (long)(scp->vmsize), (long) (scp->vmaddr));
e0f712ba
AC
776
777 /* Offsets in the output file for writing the next section structure
778 and segment data block, respectively. */
779 header_offset = curr_header_offset + sizeof (struct segment_command);
780
781 sectp = (struct section *) (scp + 1);
782 for (j = 0; j < scp->nsects; j++)
783 {
784 old_file_offset = sectp->offset;
73da71f9 785 sectp->offset = sectp->addr - scp->vmaddr + curr_file_offset;
e0f712ba
AC
786 /* The __data section is dumped from memory. The __bss and
787 __common sections are also dumped from memory but their flag
788 fields require changing (from S_ZEROFILL to S_REGULAR). The
789 other three kinds of sections are just copied from the input
790 file. */
791 if (strncmp (sectp->sectname, SECT_DATA, 16) == 0)
792 {
793 if (!unexec_write (sectp->offset, (void *) sectp->addr, sectp->size))
794 unexec_error ("cannot write section %s", SECT_DATA);
795 if (!unexec_write (header_offset, sectp, sizeof (struct section)))
796 unexec_error ("cannot write section %s's header", SECT_DATA);
797 }
433456d7 798 else if (strncmp (sectp->sectname, SECT_COMMON, 16) == 0)
e0f712ba
AC
799 {
800 sectp->flags = S_REGULAR;
801 if (!unexec_write (sectp->offset, (void *) sectp->addr, sectp->size))
433456d7 802 unexec_error ("cannot write section %s", sectp->sectname);
e0f712ba 803 if (!unexec_write (header_offset, sectp, sizeof (struct section)))
433456d7
YM
804 unexec_error ("cannot write section %s's header", sectp->sectname);
805 }
806 else if (strncmp (sectp->sectname, SECT_BSS, 16) == 0)
807 {
808 extern char *my_endbss_static;
809 unsigned long my_size;
810
811 sectp->flags = S_REGULAR;
812
813 /* Clear uninitialized local variables in statically linked
814 libraries. In particular, function pointers stored by
815 libSystemStub.a, which is introduced in Mac OS X 10.4 for
816 binary compatibility with respect to long double, are
817 cleared so that they will be reinitialized when the
818 dumped binary is executed on other versions of OS. */
819 my_size = (unsigned long)my_endbss_static - sectp->addr;
820 if (!(sectp->addr <= (unsigned long)my_endbss_static
821 && my_size <= sectp->size))
822 unexec_error ("my_endbss_static is not in section %s",
823 sectp->sectname);
824 if (!unexec_write (sectp->offset, (void *) sectp->addr, my_size))
825 unexec_error ("cannot write section %s", sectp->sectname);
826 if (!unexec_write_zero (sectp->offset + my_size,
827 sectp->size - my_size))
828 unexec_error ("cannot write section %s", sectp->sectname);
829 if (!unexec_write (header_offset, sectp, sizeof (struct section)))
830 unexec_error ("cannot write section %s's header", sectp->sectname);
e0f712ba
AC
831 }
832 else if (strncmp (sectp->sectname, "__la_symbol_ptr", 16) == 0
833 || strncmp (sectp->sectname, "__nl_symbol_ptr", 16) == 0
c47cbdfd 834 || strncmp (sectp->sectname, "__got", 16) == 0
427c5b1b 835 || strncmp (sectp->sectname, "__la_sym_ptr2", 16) == 0
e0f712ba 836 || strncmp (sectp->sectname, "__dyld", 16) == 0
7290a344 837 || strncmp (sectp->sectname, "__const", 16) == 0
b2411edf
YM
838 || strncmp (sectp->sectname, "__cfstring", 16) == 0
839 || strncmp (sectp->sectname, "__gcc_except_tab", 16) == 0
6bcd6333 840 || strncmp (sectp->sectname, "__program_vars", 16) == 0
b2411edf 841 || strncmp (sectp->sectname, "__objc_", 7) == 0)
e0f712ba
AC
842 {
843 if (!unexec_copy (sectp->offset, old_file_offset, sectp->size))
844 unexec_error ("cannot copy section %s", sectp->sectname);
845 if (!unexec_write (header_offset, sectp, sizeof (struct section)))
846 unexec_error ("cannot write section %s's header", sectp->sectname);
847 }
848 else
849 unexec_error ("unrecognized section name in __DATA segment");
177c0ea7 850
73da71f9
YM
851 printf (" section %-16.16s at %#8lx - %#8lx (sz: %#8lx)\n",
852 sectp->sectname, (long) (sectp->offset),
853 (long) (sectp->offset + sectp->size), (long) (sectp->size));
e0f712ba
AC
854
855 header_offset += sizeof (struct section);
856 sectp++;
857 }
858
c57038f8
YM
859 curr_file_offset += ROUNDUP_TO_PAGE_BOUNDARY (scp->filesize);
860
e0f712ba
AC
861 if (!unexec_write (curr_header_offset, scp, sizeof (struct segment_command)))
862 unexec_error ("cannot write header of __DATA segment");
863 curr_header_offset += lc->cmdsize;
864
865 /* Create new __DATA segment load commands for regions on the region
866 list that do not corresponding to any segment load commands in
867 the input file.
73da71f9 868 */
e0f712ba
AC
869 for (j = 0; j < num_unexec_regions; j++)
870 {
871 struct segment_command sc;
177c0ea7 872
e0f712ba
AC
873 sc.cmd = LC_SEGMENT;
874 sc.cmdsize = sizeof (struct segment_command);
875 strncpy (sc.segname, SEG_DATA, 16);
c57038f8
YM
876 sc.vmaddr = unexec_regions[j].range.address;
877 sc.vmsize = unexec_regions[j].range.size;
73da71f9 878 sc.fileoff = curr_file_offset;
c57038f8 879 sc.filesize = unexec_regions[j].filesize;
e0f712ba
AC
880 sc.maxprot = VM_PROT_READ | VM_PROT_WRITE;
881 sc.initprot = VM_PROT_READ | VM_PROT_WRITE;
882 sc.nsects = 0;
883 sc.flags = 0;
177c0ea7 884
c57038f8
YM
885 printf ("Writing segment %-16.16s @ %#8lx (%#8lx/%#8lx @ %#10lx)\n",
886 sc.segname, (long) (sc.fileoff), (long) (sc.filesize),
887 (long) (sc.vmsize), (long) (sc.vmaddr));
e0f712ba 888
c57038f8 889 if (!unexec_write (sc.fileoff, (void *) sc.vmaddr, sc.filesize))
e0f712ba 890 unexec_error ("cannot write new __DATA segment");
73da71f9 891 curr_file_offset += ROUNDUP_TO_PAGE_BOUNDARY (sc.filesize);
177c0ea7 892
e0f712ba
AC
893 if (!unexec_write (curr_header_offset, &sc, sc.cmdsize))
894 unexec_error ("cannot write new __DATA segment's header");
895 curr_header_offset += sc.cmdsize;
896 mh.ncmds++;
897 }
898}
899
900/* Copy a LC_SYMTAB load command from the input file to the output
901 file, adjusting the file offset fields. */
902static void
73da71f9 903copy_symtab (struct load_command *lc, long delta)
e0f712ba
AC
904{
905 struct symtab_command *stp = (struct symtab_command *) lc;
906
907 stp->symoff += delta;
908 stp->stroff += delta;
909
910 printf ("Writing LC_SYMTAB command\n");
911
912 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
913 unexec_error ("cannot write symtab command to header");
914
915 curr_header_offset += lc->cmdsize;
916}
917
043131c4
AC
918/* Fix up relocation entries. */
919static void
7aee2da7 920unrelocate (const char *name, off_t reloff, int nrel, vm_address_t base)
043131c4
AC
921{
922 int i, unreloc_count;
923 struct relocation_info reloc_info;
924 struct scattered_relocation_info *sc_reloc_info
925 = (struct scattered_relocation_info *) &reloc_info;
7aee2da7 926 vm_address_t location;
043131c4
AC
927
928 for (unreloc_count = 0, i = 0; i < nrel; i++)
929 {
930 if (lseek (infd, reloff, L_SET) != reloff)
931 unexec_error ("unrelocate: %s:%d cannot seek to reloc_info", name, i);
932 if (!unexec_read (&reloc_info, sizeof (reloc_info)))
933 unexec_error ("unrelocate: %s:%d cannot read reloc_info", name, i);
934 reloff += sizeof (reloc_info);
935
936 if (sc_reloc_info->r_scattered == 0)
937 switch (reloc_info.r_type)
938 {
939 case GENERIC_RELOC_VANILLA:
7aee2da7 940 location = base + reloc_info.r_address;
b2411edf
YM
941 if (location >= data_segment_scp->vmaddr
942 && location < (data_segment_scp->vmaddr
943 + data_segment_scp->vmsize))
043131c4
AC
944 {
945 off_t src_off = data_segment_old_fileoff
b2411edf 946 + (location - data_segment_scp->vmaddr);
043131c4 947 off_t dst_off = data_segment_scp->fileoff
b2411edf 948 + (location - data_segment_scp->vmaddr);
043131c4
AC
949
950 if (!unexec_copy (dst_off, src_off, 1 << reloc_info.r_length))
951 unexec_error ("unrelocate: %s:%d cannot copy original value",
952 name, i);
953 unreloc_count++;
954 }
955 break;
956 default:
957 unexec_error ("unrelocate: %s:%d cannot handle type = %d",
958 name, i, reloc_info.r_type);
959 }
960 else
961 switch (sc_reloc_info->r_type)
962 {
963#if defined (__ppc__)
964 case PPC_RELOC_PB_LA_PTR:
965 /* nothing to do for prebound lazy pointer */
966 break;
967#endif
968 default:
969 unexec_error ("unrelocate: %s:%d cannot handle scattered type = %d",
970 name, i, sc_reloc_info->r_type);
971 }
972 }
973
974 if (nrel > 0)
975 printf ("Fixed up %d/%d %s relocation entries in data segment.\n",
976 unreloc_count, nrel, name);
977}
978
7aee2da7
YM
979#if __ppc64__
980/* Rebase r_address in the relocation table. */
981static void
982rebase_reloc_address (off_t reloff, int nrel, long linkedit_delta, long diff)
983{
984 int i;
985 struct relocation_info reloc_info;
986 struct scattered_relocation_info *sc_reloc_info
987 = (struct scattered_relocation_info *) &reloc_info;
988
989 for (i = 0; i < nrel; i++, reloff += sizeof (reloc_info))
990 {
991 if (lseek (infd, reloff - linkedit_delta, L_SET)
992 != reloff - linkedit_delta)
993 unexec_error ("rebase_reloc_table: cannot seek to reloc_info");
994 if (!unexec_read (&reloc_info, sizeof (reloc_info)))
995 unexec_error ("rebase_reloc_table: cannot read reloc_info");
996
997 if (sc_reloc_info->r_scattered == 0
998 && reloc_info.r_type == GENERIC_RELOC_VANILLA)
999 {
1000 reloc_info.r_address -= diff;
1001 if (!unexec_write (reloff, &reloc_info, sizeof (reloc_info)))
1002 unexec_error ("rebase_reloc_table: cannot write reloc_info");
1003 }
1004 }
1005}
1006#endif
1007
e0f712ba
AC
1008/* Copy a LC_DYSYMTAB load command from the input file to the output
1009 file, adjusting the file offset fields. */
1010static void
73da71f9 1011copy_dysymtab (struct load_command *lc, long delta)
e0f712ba
AC
1012{
1013 struct dysymtab_command *dstp = (struct dysymtab_command *) lc;
7aee2da7 1014 vm_address_t base;
e0f712ba 1015
7aee2da7
YM
1016#ifdef _LP64
1017#if __ppc64__
1018 {
1019 int i;
1020
1021 base = 0;
1022 for (i = 0; i < nlc; i++)
1023 if (lca[i]->cmd == LC_SEGMENT)
1024 {
1025 struct segment_command *scp = (struct segment_command *) lca[i];
1026
1027 if (scp->vmaddr + scp->vmsize > 0x100000000
1028 && (scp->initprot & VM_PROT_WRITE) != 0)
1029 {
1030 base = data_segment_scp->vmaddr;
1031 break;
1032 }
1033 }
1034 }
1035#else
1036 /* First writable segment address. */
1037 base = data_segment_scp->vmaddr;
1038#endif
1039#else
1040 /* First segment address in the file (unless MH_SPLIT_SEGS set). */
1041 base = 0;
1042#endif
1043
1044 unrelocate ("local", dstp->locreloff, dstp->nlocrel, base);
1045 unrelocate ("external", dstp->extreloff, dstp->nextrel, base);
e0f712ba
AC
1046
1047 if (dstp->nextrel > 0) {
1048 dstp->extreloff += delta;
1049 }
1050
1051 if (dstp->nlocrel > 0) {
1052 dstp->locreloff += delta;
1053 }
1054
1055 if (dstp->nindirectsyms > 0)
1056 dstp->indirectsymoff += delta;
1057
1058 printf ("Writing LC_DYSYMTAB command\n");
1059
1060 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
1061 unexec_error ("cannot write symtab command to header");
1062
1063 curr_header_offset += lc->cmdsize;
7aee2da7
YM
1064
1065#if __ppc64__
1066 /* Check if the relocation base needs to be changed. */
1067 if (base == 0)
1068 {
1069 vm_address_t newbase = 0;
1070 int i;
1071
1072 for (i = 0; i < num_unexec_regions; i++)
1073 if (unexec_regions[i].range.address + unexec_regions[i].range.size
1074 > 0x100000000)
1075 {
1076 newbase = data_segment_scp->vmaddr;
1077 break;
1078 }
1079
1080 if (newbase)
1081 {
1082 rebase_reloc_address (dstp->locreloff, dstp->nlocrel, delta, newbase);
1083 rebase_reloc_address (dstp->extreloff, dstp->nextrel, delta, newbase);
1084 }
1085 }
1086#endif
e0f712ba
AC
1087}
1088
40e6ff95
ST
1089/* Copy a LC_TWOLEVEL_HINTS load command from the input file to the output
1090 file, adjusting the file offset fields. */
1091static void
73da71f9 1092copy_twolevelhints (struct load_command *lc, long delta)
40e6ff95
ST
1093{
1094 struct twolevel_hints_command *tlhp = (struct twolevel_hints_command *) lc;
1095
1096 if (tlhp->nhints > 0) {
1097 tlhp->offset += delta;
1098 }
1099
1100 printf ("Writing LC_TWOLEVEL_HINTS command\n");
1101
1102 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
1103 unexec_error ("cannot write two level hint command to header");
1104
1105 curr_header_offset += lc->cmdsize;
1106}
1107
6bcd6333
YM
1108#ifdef LC_DYLD_INFO
1109/* Copy a LC_DYLD_INFO(_ONLY) load command from the input file to the output
1110 file, adjusting the file offset fields. */
1111static void
1112copy_dyld_info (struct load_command *lc, long delta)
1113{
1114 struct dyld_info_command *dip = (struct dyld_info_command *) lc;
1115
1116 if (dip->rebase_off > 0)
1117 dip->rebase_off += delta;
1118 if (dip->bind_off > 0)
1119 dip->bind_off += delta;
1120 if (dip->weak_bind_off > 0)
1121 dip->weak_bind_off += delta;
1122 if (dip->lazy_bind_off > 0)
1123 dip->lazy_bind_off += delta;
1124 if (dip->export_off > 0)
1125 dip->export_off += delta;
1126
1127 printf ("Writing ");
1128 print_load_command_name (lc->cmd);
1129 printf (" command\n");
1130
1131 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
1132 unexec_error ("cannot write dyld info command to header");
1133
1134 curr_header_offset += lc->cmdsize;
1135}
1136#endif
1137
e0f712ba
AC
1138/* Copy other kinds of load commands from the input file to the output
1139 file, ones that do not require adjustments of file offsets. */
1140static void
1141copy_other (struct load_command *lc)
1142{
1143 printf ("Writing ");
1144 print_load_command_name (lc->cmd);
1145 printf (" command\n");
1146
1147 if (!unexec_write (curr_header_offset, lc, lc->cmdsize))
1148 unexec_error ("cannot write symtab command to header");
1149
1150 curr_header_offset += lc->cmdsize;
1151}
1152
1153/* Loop through all load commands and dump them. Then write the Mach
1154 header. */
1155static void
3d608a86 1156dump_it (void)
e0f712ba
AC
1157{
1158 int i;
73da71f9 1159 long linkedit_delta = 0;
e0f712ba
AC
1160
1161 printf ("--- Load Commands written to Output File ---\n");
1162
1163 for (i = 0; i < nlc; i++)
1164 switch (lca[i]->cmd)
1165 {
1166 case LC_SEGMENT:
1167 {
1168 struct segment_command *scp = (struct segment_command *) lca[i];
1169 if (strncmp (scp->segname, SEG_DATA, 16) == 0)
1170 {
043131c4
AC
1171 /* save data segment file offset and segment_command for
1172 unrelocate */
73da71f9
YM
1173 if (data_segment_old_fileoff)
1174 unexec_error ("cannot handle multiple DATA segments"
1175 " in input file");
043131c4
AC
1176 data_segment_old_fileoff = scp->fileoff;
1177 data_segment_scp = scp;
1178
e0f712ba
AC
1179 copy_data_segment (lca[i]);
1180 }
1181 else
1182 {
73da71f9
YM
1183 if (strncmp (scp->segname, SEG_LINKEDIT, 16) == 0)
1184 {
1185 if (linkedit_delta)
1186 unexec_error ("cannot handle multiple LINKEDIT segments"
1187 " in input file");
1188 linkedit_delta = curr_file_offset - scp->fileoff;
1189 }
1190
e0f712ba
AC
1191 copy_segment (lca[i]);
1192 }
1193 }
1194 break;
1195 case LC_SYMTAB:
73da71f9 1196 copy_symtab (lca[i], linkedit_delta);
e0f712ba
AC
1197 break;
1198 case LC_DYSYMTAB:
73da71f9 1199 copy_dysymtab (lca[i], linkedit_delta);
e0f712ba 1200 break;
40e6ff95 1201 case LC_TWOLEVEL_HINTS:
73da71f9 1202 copy_twolevelhints (lca[i], linkedit_delta);
40e6ff95 1203 break;
6bcd6333
YM
1204#ifdef LC_DYLD_INFO
1205 case LC_DYLD_INFO:
1206 case LC_DYLD_INFO_ONLY:
1207 copy_dyld_info (lca[i], linkedit_delta);
1208 break;
1209#endif
e0f712ba
AC
1210 default:
1211 copy_other (lca[i]);
1212 break;
1213 }
1214
1215 if (curr_header_offset > text_seg_lowest_offset)
1216 unexec_error ("not enough room for load commands for new __DATA segments");
1217
c57038f8 1218 printf ("%ld unused bytes follow Mach-O header\n",
e0f712ba
AC
1219 text_seg_lowest_offset - curr_header_offset);
1220
1221 mh.sizeofcmds = curr_header_offset - sizeof (struct mach_header);
1222 if (!unexec_write (0, &mh, sizeof (struct mach_header)))
1223 unexec_error ("cannot write final header contents");
1224}
1225
1226/* Take a snapshot of Emacs and make a Mach-O format executable file
1227 from it. The file names of the output and input files are outfile
1228 and infile, respectively. The three other parameters are
1229 ignored. */
381259ef 1230void
dd5ecd6b 1231unexec (const char *outfile, const char *infile)
e0f712ba 1232{
6dc5c8a7
YM
1233 if (in_dumped_exec)
1234 unexec_error ("Unexec from a dumped executable is not supported.");
1235
73da71f9 1236 pagesize = getpagesize ();
e0f712ba
AC
1237 infd = open (infile, O_RDONLY, 0);
1238 if (infd < 0)
1239 {
1240 unexec_error ("cannot open input file `%s'", infile);
1241 }
177c0ea7 1242
e0f712ba
AC
1243 outfd = open (outfile, O_WRONLY | O_TRUNC | O_CREAT, 0755);
1244 if (outfd < 0)
1245 {
1246 close (infd);
1247 unexec_error ("cannot open output file `%s'", outfile);
1248 }
1249
1250 build_region_list ();
1251 read_load_commands ();
1252
1253 find_emacs_zone_regions ();
1dd7ccf2 1254 unexec_regions_merge ();
e0f712ba
AC
1255
1256 in_dumped_exec = 1;
1257
1258 dump_it ();
1259
1260 close (outfd);
1261}
1262
1263
1264void
3d608a86 1265unexec_init_emacs_zone (void)
e0f712ba
AC
1266{
1267 emacs_zone = malloc_create_zone (0, 0);
1268 malloc_set_zone_name (emacs_zone, "EmacsZone");
1269}
1270
40ef0695
YM
1271#ifndef MACOSX_MALLOC_MULT16
1272#define MACOSX_MALLOC_MULT16 1
1273#endif
1274
1275typedef struct unexec_malloc_header {
1276 union {
1277 char c[8];
1278 size_t size;
1279 } u;
1280} unexec_malloc_header_t;
1281
1282#if MACOSX_MALLOC_MULT16
1283
1284#define ptr_in_unexec_regions(p) ((((vm_address_t) (p)) & 8) != 0)
1285
1286#else
1287
e0f712ba
AC
1288int
1289ptr_in_unexec_regions (void *ptr)
1290{
1291 int i;
1292
1293 for (i = 0; i < num_unexec_regions; i++)
c57038f8
YM
1294 if ((vm_address_t) ptr - unexec_regions[i].range.address
1295 < unexec_regions[i].range.size)
e0f712ba
AC
1296 return 1;
1297
1298 return 0;
1299}
1300
40ef0695
YM
1301#endif
1302
e0f712ba
AC
1303void *
1304unexec_malloc (size_t size)
1305{
1306 if (in_dumped_exec)
40ef0695
YM
1307 {
1308 void *p;
1309
1310 p = malloc (size);
1311#if MACOSX_MALLOC_MULT16
1312 assert (((vm_address_t) p % 16) == 0);
1313#endif
1314 return p;
1315 }
e0f712ba 1316 else
40ef0695
YM
1317 {
1318 unexec_malloc_header_t *ptr;
1319
1320 ptr = (unexec_malloc_header_t *)
1321 malloc_zone_malloc (emacs_zone, size + sizeof (unexec_malloc_header_t));
1322 ptr->u.size = size;
1323 ptr++;
1324#if MACOSX_MALLOC_MULT16
1325 assert (((vm_address_t) ptr % 16) == 8);
1326#endif
1327 return (void *) ptr;
1328 }
e0f712ba
AC
1329}
1330
1331void *
1332unexec_realloc (void *old_ptr, size_t new_size)
1333{
1334 if (in_dumped_exec)
40ef0695
YM
1335 {
1336 void *p;
1337
1338 if (ptr_in_unexec_regions (old_ptr))
1339 {
40ef0695
YM
1340 size_t old_size = ((unexec_malloc_header_t *) old_ptr)[-1].u.size;
1341 size_t size = new_size > old_size ? old_size : new_size;
1342
0da46b6e 1343 p = (size_t *) malloc (new_size);
40ef0695
YM
1344 if (size)
1345 memcpy (p, old_ptr, size);
1346 }
1347 else
1348 {
1349 p = realloc (old_ptr, new_size);
1350 }
1351#if MACOSX_MALLOC_MULT16
1352 assert (((vm_address_t) p % 16) == 0);
1353#endif
1354 return p;
1355 }
e0f712ba 1356 else
40ef0695
YM
1357 {
1358 unexec_malloc_header_t *ptr;
1359
1360 ptr = (unexec_malloc_header_t *)
1361 malloc_zone_realloc (emacs_zone, (unexec_malloc_header_t *) old_ptr - 1,
1362 new_size + sizeof (unexec_malloc_header_t));
1363 ptr->u.size = new_size;
1364 ptr++;
1365#if MACOSX_MALLOC_MULT16
1366 assert (((vm_address_t) ptr % 16) == 8);
1367#endif
1368 return (void *) ptr;
1369 }
e0f712ba
AC
1370}
1371
1372void
1373unexec_free (void *ptr)
1374{
9c5e177e
JM
1375 if (ptr == NULL)
1376 return;
e0f712ba
AC
1377 if (in_dumped_exec)
1378 {
1379 if (!ptr_in_unexec_regions (ptr))
1380 free (ptr);
1381 }
1382 else
40ef0695 1383 malloc_zone_free (emacs_zone, (unexec_malloc_header_t *) ptr - 1);
e0f712ba 1384}