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installer: Pass choosen filesystem to hw_make_destination
[ipfire-2.x.git] / src / installer / hw.c
CommitLineData
f0fa1795
MT
1/*#############################################################################
2# #
3# IPFire - An Open Source Firewall Distribution #
e404dab5 4# Copyright (C) 2007-2022 IPFire Team <info@ipfire.org> #
f0fa1795
MT
5# #
6# This program is free software: you can redistribute it and/or modify #
7# it under the terms of the GNU General Public License as published by #
8# the Free Software Foundation, either version 3 of the License, or #
9# (at your option) any later version. #
10# #
11# This program is distributed in the hope that it will be useful, #
12# but WITHOUT ANY WARRANTY; without even the implied warranty of #
13# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the #
14# GNU General Public License for more details. #
15# #
16# You should have received a copy of the GNU General Public License #
17# along with this program. If not, see <http://www.gnu.org/licenses/>. #
18# #
19#############################################################################*/
20
25fcce25
MT
21#ifndef _GNU_SOURCE
22#define _GNU_SOURCE
23#endif
24
f0fa1795 25#include <assert.h>
d7dd283b 26#include <blkid/blkid.h>
ade96ba8 27#include <errno.h>
d7dd283b 28#include <fcntl.h>
f0fa1795 29#include <libudev.h>
c0511f3a 30#include <linux/loop.h>
d7dd283b 31#include <math.h>
f0fa1795
MT
32#include <stdio.h>
33#include <stdlib.h>
34#include <string.h>
d7dd283b 35#include <sys/ioctl.h>
f0fa1795 36#include <sys/mount.h>
c0511f3a 37#include <sys/stat.h>
25fcce25 38#include <sys/swap.h>
5be66d81 39#include <sys/sysinfo.h>
92e78233 40#include <sys/utsname.h>
f0fa1795
MT
41#include <unistd.h>
42
5315fae6
MT
43#include <libsmooth.h>
44
f0fa1795 45#include "hw.h"
25fcce25 46
8e3b022a
SS
47extern FILE* flog;
48
46b56e20 49static int system_chroot(const char* output, const char* path, const char* cmd) {
f5007e9c
MT
50 char chroot_cmd[STRING_SIZE];
51
52 snprintf(chroot_cmd, sizeof(chroot_cmd), "/usr/sbin/chroot %s %s", path, cmd);
53
46b56e20 54 return mysystem(output, chroot_cmd);
f5007e9c
MT
55}
56
f0fa1795 57struct hw* hw_init() {
5fb499f1 58 struct hw* hw = calloc(1, sizeof(*hw));
f0fa1795
MT
59 assert(hw);
60
61 // Initialize libudev
62 hw->udev = udev_new();
63 if (!hw->udev) {
64 fprintf(stderr, "Could not create udev instance\n");
65 exit(1);
66 }
67
92e78233
MT
68 // What architecture are we running on?
69 struct utsname uname_data;
70 int ret = uname(&uname_data);
71 if (ret == 0)
72 snprintf(hw->arch, sizeof(hw->arch), "%s", uname_data.machine);
73
8fbadfc7 74 // Should we install in EFI mode?
7dc7880d
MT
75 if ((strcmp(hw->arch, "x86_64") == 0) || (strcmp(hw->arch, "aarch64") == 0))
76 hw->efi = 1;
5fb499f1 77
f0fa1795
MT
78 return hw;
79}
80
81void hw_free(struct hw* hw) {
82 if (hw->udev)
83 udev_unref(hw->udev);
84
85 free(hw);
86}
87
88static int strstartswith(const char* a, const char* b) {
89 return (strncmp(a, b, strlen(b)) == 0);
90}
91
c0511f3a
MT
92static char loop_device[STRING_SIZE];
93
94static int setup_loop_device(const char* source, const char* device) {
95 int file_fd = open(source, O_RDWR);
96 if (file_fd < 0)
97 goto ERROR;
98
99 int device_fd = -1;
100 if ((device_fd = open(device, O_RDWR)) < 0)
101 goto ERROR;
102
103 if (ioctl(device_fd, LOOP_SET_FD, file_fd) < 0)
104 goto ERROR;
105
106 close(file_fd);
107 close(device_fd);
108
109 return 0;
110
111ERROR:
112 if (file_fd >= 0)
113 close(file_fd);
114
115 if (device_fd >= 0) {
116 ioctl(device_fd, LOOP_CLR_FD, 0);
117 close(device_fd);
118 }
119
120 return -1;
121}
122
25fcce25 123int hw_mount(const char* source, const char* target, const char* fs, int flags) {
c0511f3a
MT
124 const char* loop_device = "/dev/loop0";
125
85f2892b
MT
126 // Create target if it does not exist
127 if (access(target, X_OK) != 0)
128 mkdir(target, S_IRWXU|S_IRWXG|S_IRWXO);
129
c0511f3a
MT
130 struct stat st;
131 stat(source, &st);
132
133 if (S_ISREG(st.st_mode)) {
134 int r = setup_loop_device(source, loop_device);
135 if (r == 0) {
136 source = loop_device;
137 } else {
138 return -1;
139 }
140 }
141
366b40c7 142 return mount(source, target, fs, flags, NULL);
f0fa1795
MT
143}
144
ced15fdf
MT
145static int hw_bind_mount(const char* source, const char* prefix) {
146 if (!source || !prefix) {
147 errno = EINVAL;
148 return 1;
149 }
150
151 char target[PATH_MAX];
152 int r;
153
154 // Format target
155 r = snprintf(target, sizeof(target) - 1, "%s/%s", prefix, source);
156 if (r < 0)
157 return 1;
158
159 // Ensure target exists
160 mkdir(target, S_IRWXU|S_IRWXG|S_IRWXO);
ade96ba8 161
ced15fdf
MT
162 return hw_mount(source, target, NULL, MS_BIND);
163}
164
165int hw_umount(const char* source, const char* prefix) {
166 char target[PATH_MAX];
167 int r;
ade96ba8 168
ced15fdf
MT
169 if (prefix)
170 r = snprintf(target, sizeof(target) - 1, "%s/%s", prefix, source);
171 else
172 r = snprintf(target, sizeof(target) - 1, "%s", source);
173 if (r < 0)
174 return r;
175
176 // Perform umount
177 r = umount2(target, 0);
178 if (r) {
179 switch (errno) {
180 // Try again with force if umount wasn't successful
181 case EBUSY:
182 sleep(1);
183
184 r = umount2(target, MNT_FORCE);
185 break;
186
187 // target wasn't a mountpoint. Ignore.
188 case EINVAL:
189 r = 0;
190 break;
91588cb4
MT
191
192 // target doesn't exist
193 case ENOENT:
194 r = 0;
195 break;
ced15fdf 196 }
ade96ba8
MT
197 }
198
199 return r;
f0fa1795
MT
200}
201
202static int hw_test_source_medium(const char* path) {
25fcce25 203 int ret = hw_mount(path, SOURCE_MOUNT_PATH, "iso9660", MS_RDONLY);
f0fa1795 204
68a50dd1
AF
205 if (ret != 0) {
206 // 2nd try, ntfs for a rufus converted usb key
207 ret = hw_mount(path, SOURCE_MOUNT_PATH, "ntfs3", MS_RDONLY);
208 }
209 if (ret != 0) {
210 // 3rd try, vfat for a rufus converted usb key
211 ret = hw_mount(path, SOURCE_MOUNT_PATH, "vfat", MS_RDONLY);
212 }
213
f0fa1795
MT
214 // If the source could not be mounted we
215 // cannot proceed.
5315fae6 216 if (ret != 0)
f0fa1795
MT
217 return ret;
218
219 // Check if the test file exists.
5315fae6 220 ret = access(SOURCE_TEST_FILE, R_OK);
f0fa1795
MT
221
222 // Umount the test device.
ced15fdf 223 hw_umount(SOURCE_MOUNT_PATH, NULL);
f0fa1795 224
fb76fc51 225 return ret;
f0fa1795
MT
226}
227
228char* hw_find_source_medium(struct hw* hw) {
229 char* ret = NULL;
230
231 struct udev_enumerate* enumerate = udev_enumerate_new(hw->udev);
232
233 udev_enumerate_add_match_subsystem(enumerate, "block");
234 udev_enumerate_scan_devices(enumerate);
235
236 struct udev_list_entry* devices = udev_enumerate_get_list_entry(enumerate);
237
238 struct udev_list_entry* dev_list_entry;
239 udev_list_entry_foreach(dev_list_entry, devices) {
240 const char* path = udev_list_entry_get_name(dev_list_entry);
241 struct udev_device* dev = udev_device_new_from_syspath(hw->udev, path);
242
243 const char* dev_path = udev_device_get_devnode(dev);
244
245 // Skip everything what we cannot work with
246 if (strstartswith(dev_path, "/dev/loop") || strstartswith(dev_path, "/dev/fd") ||
4a0d9bef 247 strstartswith(dev_path, "/dev/ram") || strstartswith(dev_path, "/dev/md"))
f0fa1795
MT
248 continue;
249
5315fae6 250 if (hw_test_source_medium(dev_path) == 0) {
f0fa1795
MT
251 ret = strdup(dev_path);
252 }
253
254 udev_device_unref(dev);
255
256 // If a suitable device was found the search will end.
257 if (ret)
258 break;
259 }
260
261 udev_enumerate_unref(enumerate);
262
263 return ret;
264}
d7dd283b
MT
265
266static struct hw_disk** hw_create_disks() {
267 struct hw_disk** ret = malloc(sizeof(*ret) * (HW_MAX_DISKS + 1));
268
269 return ret;
270}
271
272static unsigned long long hw_block_device_get_size(const char* dev) {
273 int fd = open(dev, O_RDONLY);
274 if (fd < 0)
275 return 0;
276
277 unsigned long long size = blkid_get_dev_size(fd);
278 close(fd);
279
280 return size;
281}
282
ee00d203 283struct hw_disk** hw_find_disks(struct hw* hw, const char* sourcedrive) {
d7dd283b
MT
284 struct hw_disk** ret = hw_create_disks();
285 struct hw_disk** disks = ret;
286
68a50dd1
AF
287 // Determine the disk device of source if it is a partition
288 char* sourcedisk = NULL;
289 char syssource[PATH_MAX];
290 (void)snprintf(syssource, sizeof(syssource) - 1, "/sys/class/block/%s", sourcedrive + 5);
291 struct udev_device* s_dev = udev_device_new_from_syspath(hw->udev, syssource);
292 const char* s_devtype = udev_device_get_property_value(s_dev, "DEVTYPE");
293 if (s_devtype && (strcmp(s_devtype, "partition") == 0)) {
294 struct udev_device* p_dev = udev_device_get_parent_with_subsystem_devtype(s_dev,"block","disk");
295 if (p_dev) {
296 sourcedisk = udev_device_get_devnode(p_dev);
297 }
298 }
299 if (!sourcedisk) sourcedisk = sourcedrive;
300
d7dd283b
MT
301 struct udev_enumerate* enumerate = udev_enumerate_new(hw->udev);
302
303 udev_enumerate_add_match_subsystem(enumerate, "block");
304 udev_enumerate_scan_devices(enumerate);
305
306 struct udev_list_entry* devices = udev_enumerate_get_list_entry(enumerate);
307
308 struct udev_list_entry* dev_list_entry;
309 unsigned int i = HW_MAX_DISKS;
310 udev_list_entry_foreach(dev_list_entry, devices) {
311 const char* path = udev_list_entry_get_name(dev_list_entry);
312 struct udev_device* dev = udev_device_new_from_syspath(hw->udev, path);
313
314 const char* dev_path = udev_device_get_devnode(dev);
315
316 // Skip everything what we cannot work with
317 if (strstartswith(dev_path, "/dev/loop") || strstartswith(dev_path, "/dev/fd") ||
4a0d9bef
MT
318 strstartswith(dev_path, "/dev/ram") || strstartswith(dev_path, "/dev/sr") ||
319 strstartswith(dev_path, "/dev/md")) {
d7dd283b
MT
320 udev_device_unref(dev);
321 continue;
322 }
323
68a50dd1
AF
324 // Skip sourcedisk if we need to
325 if (sourcedisk && (strcmp(dev_path, sourcedisk) == 0)) {
d7dd283b
MT
326 udev_device_unref(dev);
327 continue;
328 }
329
ee00d203
MT
330 // DEVTYPE must be disk (otherwise we will see all sorts of partitions here)
331 const char* devtype = udev_device_get_property_value(dev, "DEVTYPE");
332 if (devtype && (strcmp(devtype, "disk") != 0)) {
d7dd283b
MT
333 udev_device_unref(dev);
334 continue;
335 }
336
337 // Skip devices with a size of zero
338 unsigned long long size = hw_block_device_get_size(dev_path);
339 if (size == 0) {
340 udev_device_unref(dev);
341 continue;
342 }
343
344 struct hw_disk* disk = malloc(sizeof(*disk));
345 if (disk == NULL)
346 return NULL;
347
348 disk->ref = 1;
349
350 strncpy(disk->path, dev_path, sizeof(disk->path));
0c8b2d99 351 const char* p = disk->path + 5;
d7dd283b
MT
352
353 disk->size = size;
354
355 // Vendor
356 const char* vendor = udev_device_get_property_value(dev, "ID_VENDOR");
357 if (!vendor)
358 vendor = udev_device_get_sysattr_value(dev, "vendor");
359 if (!vendor)
360 vendor = udev_device_get_sysattr_value(dev, "manufacturer");
d7dd283b 361
4c812463
MT
362 if (vendor)
363 strncpy(disk->vendor, vendor, sizeof(disk->vendor));
364 else
365 *disk->vendor = '\0';
d7dd283b
MT
366
367 // Model
368 const char* model = udev_device_get_property_value(dev, "ID_MODEL");
369 if (!model)
370 model = udev_device_get_sysattr_value(dev, "model");
371 if (!model)
372 model = udev_device_get_sysattr_value(dev, "product");
d7dd283b 373
4c812463
MT
374 if (model)
375 strncpy(disk->model, model, sizeof(disk->model));
376 else
377 *disk->model = '\0';
378
379 // Format description
380 char size_str[STRING_SIZE];
381 snprintf(size_str, sizeof(size_str), "%4.1fGB", (double)disk->size / pow(1024, 3));
d7dd283b 382
4c812463
MT
383 if (*disk->vendor && *disk->model) {
384 snprintf(disk->description, sizeof(disk->description),
0c8b2d99 385 "%s - %s - %s - %s", size_str, p, disk->vendor, disk->model);
4c812463
MT
386
387 } else if (*disk->vendor || *disk->model) {
388 snprintf(disk->description, sizeof(disk->description),
0c8b2d99 389 "%s - %s - %s", size_str, p, (*disk->vendor) ? disk->vendor : disk->model);
4c812463
MT
390
391 } else {
392 snprintf(disk->description, sizeof(disk->description),
0c8b2d99 393 "%s - %s", size_str, p);
4c812463 394 }
d7dd283b 395
29afd408
MT
396 // Cut off the description string after 40 characters
397 disk->description[41] = '\0';
398
d7dd283b
MT
399 *disks++ = disk;
400
401 if (--i == 0)
402 break;
403
404 udev_device_unref(dev);
405 }
406
407 udev_enumerate_unref(enumerate);
408
409 *disks = NULL;
410
411 return ret;
412}
413
414void hw_free_disks(struct hw_disk** disks) {
415 struct hw_disk** disk = disks;
416
417 while (*disk != NULL) {
418 if (--(*disk)->ref == 0)
419 free(*disk);
420
421 disk++;
422 }
423
424 free(disks);
425}
426
335c5bd1 427unsigned int hw_count_disks(const struct hw_disk** disks) {
d7dd283b
MT
428 unsigned int ret = 0;
429
430 while (*disks++)
431 ret++;
432
433 return ret;
434}
435
436struct hw_disk** hw_select_disks(struct hw_disk** disks, int* selection) {
437 struct hw_disk** ret = hw_create_disks();
438 struct hw_disk** selected_disks = ret;
439
335c5bd1 440 unsigned int num_disks = hw_count_disks((const struct hw_disk**)disks);
d7dd283b
MT
441
442 for (unsigned int i = 0; i < num_disks; i++) {
ee43f517 443 if (!selection || selection[i]) {
d7dd283b
MT
444 struct hw_disk *selected_disk = disks[i];
445 selected_disk->ref++;
446
447 *selected_disks++ = selected_disk;
448 }
449 }
450
451 // Set sentinel
452 *selected_disks = NULL;
453
454 return ret;
455}
456
a3e135c8
MT
457struct hw_disk** hw_select_first_disk(const struct hw_disk** disks) {
458 struct hw_disk** ret = hw_create_disks();
459 struct hw_disk** selected_disks = ret;
460
461 unsigned int num_disks = hw_count_disks(disks);
462 assert(num_disks > 0);
463
464 for (unsigned int i = 0; i < num_disks; i++) {
465 struct hw_disk *disk = disks[i];
466 disk->ref++;
467
468 *selected_disks++ = disk;
469 break;
470 }
471
472 // Set sentinel
473 *selected_disks = NULL;
474
475 return ret;
476}
477
25fcce25
MT
478static unsigned long long hw_swap_size(struct hw_destination* dest) {
479 unsigned long long memory = hw_memory();
480
481 unsigned long long swap_size = memory / 4;
482
483 // Min. swap size is 128MB
484 if (swap_size < MB2BYTES(128))
485 swap_size = MB2BYTES(128);
486
487 // Cap swap size to 1GB
488 else if (swap_size > MB2BYTES(1024))
489 swap_size = MB2BYTES(1024);
490
491 return swap_size;
492}
493
25fcce25 494static unsigned long long hw_boot_size(struct hw_destination* dest) {
ffdc6fbb 495 return MB2BYTES(512);
25fcce25
MT
496}
497
a691d4b3
MT
498static int hw_device_has_p_suffix(const struct hw_destination* dest) {
499 // All RAID devices have the p suffix.
500 if (dest->is_raid)
501 return 1;
502
503 // Devices with a number at the end have the p suffix, too.
504 // e.g. mmcblk0, cciss0
126d3570 505 unsigned int last_char = strlen(dest->path) - 1;
a691d4b3
MT
506 if ((dest->path[last_char] >= '0') && (dest->path[last_char] <= '9'))
507 return 1;
508
509 return 0;
510}
511
92e78233 512static int hw_calculate_partition_table(struct hw* hw, struct hw_destination* dest, int disable_swap) {
48d6a112
MT
513 char path[DEV_SIZE];
514 int part_idx = 1;
515
a691d4b3
MT
516 snprintf(path, sizeof(path), "%s%s", dest->path,
517 hw_device_has_p_suffix(dest) ? "p" : "");
48d6a112
MT
518 dest->part_boot_idx = 0;
519
25fcce25
MT
520 // Determine the size of the target block device
521 if (dest->is_raid) {
522 dest->size = (dest->disk1->size >= dest->disk2->size) ?
5315fae6 523 dest->disk2->size : dest->disk1->size;
22581f51
MT
524
525 // The RAID will install some metadata at the end of the disk
526 // and we will save up some space for that.
527 dest->size -= MB2BYTES(2);
25fcce25
MT
528 } else {
529 dest->size = dest->disk1->size;
530 }
531
802a123b
MT
532 // As we add some extra space before the beginning of the first
533 // partition, we need to substract that here.
534 dest->size -= MB2BYTES(1);
535
536 // Add some more space for partition tables, etc.
537 dest->size -= MB2BYTES(1);
538
c577571e
MT
539 // The disk has to have at least 2GB
540 if (dest->size <= MB2BYTES(2048))
541 return -1;
542
48d6a112
MT
543 // Determine partition table
544 dest->part_table = HW_PART_TABLE_MSDOS;
545
546 // Disks over 2TB need to use GPT
547 if (dest->size >= MB2BYTES(2047 * 1024))
548 dest->part_table = HW_PART_TABLE_GPT;
549
550 // We also use GPT on raid disks by default
551 else if (dest->is_raid)
552 dest->part_table = HW_PART_TABLE_GPT;
553
554 // When using GPT, GRUB2 needs a little bit of space to put
555 // itself in.
5689fc72 556 if (dest->part_table == HW_PART_TABLE_GPT) {
48d6a112
MT
557 snprintf(dest->part_bootldr, sizeof(dest->part_bootldr),
558 "%s%d", path, part_idx);
559
560 dest->size_bootldr = MB2BYTES(4);
561
562 dest->part_boot_idx = part_idx++;
563 } else {
564 *dest->part_bootldr = '\0';
565 dest->size_bootldr = 0;
566 }
567
58a46f0b
SS
568 // Disable seperate boot partition for BTRFS installations.
569 if(dest->filesystem == HW_FS_BTRFS) {
570 dest->size_boot = 0;
571 } else {
572 dest->size_boot = hw_boot_size(dest);
573 }
c577571e 574
92e78233
MT
575 // Create an EFI partition when running in EFI mode
576 if (hw->efi)
577 dest->size_boot_efi = MB2BYTES(32);
578 else
579 dest->size_boot_efi = 0;
580
c577571e
MT
581 // Determine the size of the data partition.
582 unsigned long long space_left = dest->size - \
92e78233 583 (dest->size_bootldr + dest->size_boot + dest->size_boot_efi);
c577571e
MT
584
585 // If we have less than 2GB left, we disable swap
586 if (space_left <= MB2BYTES(2048))
587 disable_swap = 1;
25fcce25 588
a8fca245
MT
589 // Should we use swap?
590 if (disable_swap)
591 dest->size_swap = 0;
592 else
593 dest->size_swap = hw_swap_size(dest);
594
c577571e
MT
595 // Subtract swap
596 space_left -= dest->size_swap;
25fcce25 597
c577571e
MT
598 // Root is getting what ever is left
599 dest->size_root = space_left;
25fcce25
MT
600
601 // Set partition names
25fcce25 602 if (dest->size_boot > 0) {
48d6a112
MT
603 if (dest->part_boot_idx == 0)
604 dest->part_boot_idx = part_idx;
25fcce25
MT
605
606 snprintf(dest->part_boot, sizeof(dest->part_boot), "%s%d", path, part_idx++);
607 } else
608 *dest->part_boot = '\0';
609
92e78233
MT
610 if (dest->size_boot_efi > 0) {
611 dest->part_boot_efi_idx = part_idx;
612
613 snprintf(dest->part_boot_efi, sizeof(dest->part_boot_efi),
614 "%s%d", path, part_idx++);
58e840bd 615 } else {
92e78233 616 *dest->part_boot_efi = '\0';
58e840bd
MT
617 dest->part_boot_efi_idx = 0;
618 }
92e78233 619
25fcce25
MT
620 if (dest->size_swap > 0)
621 snprintf(dest->part_swap, sizeof(dest->part_swap), "%s%d", path, part_idx++);
622 else
623 *dest->part_swap = '\0';
624
625 // There is always a root partition
48d6a112 626 if (dest->part_boot_idx == 0)
25fcce25
MT
627 dest->part_boot_idx = part_idx;
628
629 snprintf(dest->part_root, sizeof(dest->part_root), "%s%d", path, part_idx++);
630
25fcce25
MT
631 return 0;
632}
633
ad73749d
SS
634struct hw_destination* hw_make_destination(struct hw* hw, int part_type, struct hw_disk** disks,
635 int disable_swap, int filesystem) {
d7dd283b
MT
636 struct hw_destination* dest = malloc(sizeof(*dest));
637
ad73749d
SS
638 // Assign filesystem
639 dest->filesystem = filesystem;
640
d7dd283b
MT
641 if (part_type == HW_PART_TYPE_NORMAL) {
642 dest->disk1 = *disks;
643 dest->disk2 = NULL;
644
645 strncpy(dest->path, dest->disk1->path, sizeof(dest->path));
646
647 } else if (part_type == HW_PART_TYPE_RAID1) {
648 dest->disk1 = *disks++;
649 dest->disk2 = *disks;
4a0d9bef 650 dest->raid_level = 1;
d7dd283b
MT
651
652 snprintf(dest->path, sizeof(dest->path), "/dev/md0");
653 }
654
655 // Is this a RAID device?
656 dest->is_raid = (part_type > HW_PART_TYPE_NORMAL);
657
92e78233 658 int r = hw_calculate_partition_table(hw, dest, disable_swap);
25fcce25
MT
659 if (r)
660 return NULL;
d7dd283b 661
d7dd283b
MT
662 return dest;
663}
c4e96674
MT
664
665unsigned long long hw_memory() {
5be66d81 666 struct sysinfo si;
c4e96674 667
5be66d81
MT
668 int r = sysinfo(&si);
669 if (r < 0)
670 return 0;
c4e96674 671
5be66d81 672 return si.totalram;
c4e96674 673}
25fcce25 674
d2f993a7
MT
675static int hw_zero_out_device(const char* path, int bytes) {
676 char block[512];
677 memset(block, 0, sizeof(block));
678
679 int blocks = bytes / sizeof(block);
680
681 int fd = open(path, O_WRONLY);
682 if (fd < 0)
683 return -1;
684
685 unsigned int bytes_written = 0;
686 while (blocks-- > 0) {
687 bytes_written += write(fd, block, sizeof(block));
688 }
689
690 fsync(fd);
691 close(fd);
692
693 return bytes_written;
694}
695
0e491487
MT
696static int try_open(const char* path) {
697 FILE* f = fopen(path, "r");
698 if (f) {
699 fclose(f);
700 return 0;
701 }
702
703 return -1;
704}
705
46b56e20 706int hw_create_partitions(struct hw_destination* dest, const char* output) {
d2f993a7
MT
707 // Before we write a new partition table to the disk, we will erase
708 // the first couple of megabytes at the beginning of the device to
709 // get rid of all left other things like bootloaders and partition tables.
710 // This solves some problems when changing from MBR to GPT partitions or
711 // the other way around.
712 int r = hw_zero_out_device(dest->path, MB2BYTES(10));
713 if (r <= 0)
714 return r;
25fcce25 715
d2f993a7 716 char* cmd = NULL;
25fcce25
MT
717 asprintf(&cmd, "/usr/sbin/parted -s %s -a optimal", dest->path);
718
719 // Set partition type
720 if (dest->part_table == HW_PART_TABLE_MSDOS)
721 asprintf(&cmd, "%s mklabel msdos", cmd);
722 else if (dest->part_table == HW_PART_TABLE_GPT)
723 asprintf(&cmd, "%s mklabel gpt", cmd);
724
802a123b 725 unsigned long long part_start = MB2BYTES(1);
25fcce25 726
48d6a112 727 if (*dest->part_bootldr) {
802a123b 728 asprintf(&cmd, "%s mkpart %s ext2 %lluB %lluB", cmd,
48d6a112 729 (dest->part_table == HW_PART_TABLE_GPT) ? "BOOTLDR" : "primary",
802a123b 730 part_start, part_start + dest->size_bootldr - 1);
48d6a112
MT
731
732 part_start += dest->size_bootldr;
733 }
734
25fcce25 735 if (*dest->part_boot) {
802a123b 736 asprintf(&cmd, "%s mkpart %s ext2 %lluB %lluB", cmd,
25fcce25 737 (dest->part_table == HW_PART_TABLE_GPT) ? "BOOT" : "primary",
802a123b 738 part_start, part_start + dest->size_boot - 1);
25fcce25
MT
739
740 part_start += dest->size_boot;
741 }
742
92e78233
MT
743 if (*dest->part_boot_efi) {
744 asprintf(&cmd, "%s mkpart %s fat32 %lluB %lluB", cmd,
745 (dest->part_table == HW_PART_TABLE_GPT) ? "ESP" : "primary",
746 part_start, part_start + dest->size_boot_efi - 1);
747
748 part_start += dest->size_boot_efi;
749 }
750
25fcce25 751 if (*dest->part_swap) {
802a123b 752 asprintf(&cmd, "%s mkpart %s linux-swap %lluB %lluB", cmd,
25fcce25 753 (dest->part_table == HW_PART_TABLE_GPT) ? "SWAP" : "primary",
802a123b 754 part_start, part_start + dest->size_swap - 1);
25fcce25
MT
755
756 part_start += dest->size_swap;
757 }
758
759 if (*dest->part_root) {
802a123b 760 asprintf(&cmd, "%s mkpart %s ext2 %lluB %lluB", cmd,
25fcce25 761 (dest->part_table == HW_PART_TABLE_GPT) ? "ROOT" : "primary",
802a123b 762 part_start, part_start + dest->size_root - 1);
25fcce25
MT
763
764 part_start += dest->size_root;
765 }
766
e9cf574d 767 if (dest->part_boot_idx > 0)
25fcce25
MT
768 asprintf(&cmd, "%s set %d boot on", cmd, dest->part_boot_idx);
769
92e78233
MT
770 if (dest->part_boot_efi_idx > 0)
771 asprintf(&cmd, "%s set %d esp on", cmd, dest->part_boot_efi_idx);
772
e9cf574d 773 if (dest->part_table == HW_PART_TABLE_GPT) {
48d6a112
MT
774 if (*dest->part_bootldr) {
775 asprintf(&cmd, "%s set %d bios_grub on", cmd, dest->part_boot_idx);
776 }
25fcce25
MT
777 }
778
46b56e20 779 r = mysystem(output, cmd);
25fcce25 780
268090a8
MT
781 // Wait until the system re-read the partition table
782 if (r == 0) {
783 unsigned int counter = 10;
784
785 while (counter-- > 0) {
786 sleep(1);
787
0e491487 788 if (*dest->part_bootldr && (try_open(dest->part_bootldr) != 0))
48d6a112
MT
789 continue;
790
0e491487 791 if (*dest->part_boot && (try_open(dest->part_boot) != 0))
268090a8
MT
792 continue;
793
92e78233
MT
794 if (*dest->part_boot_efi && (try_open(dest->part_boot_efi) != 0))
795 continue;
796
0e491487 797 if (*dest->part_swap && (try_open(dest->part_swap) != 0))
268090a8
MT
798 continue;
799
0e491487 800 if (*dest->part_root && (try_open(dest->part_root) != 0))
268090a8
MT
801 continue;
802
268090a8
MT
803 // All partitions do exist, exiting the loop.
804 break;
805 }
806 }
807
25fcce25
MT
808 if (cmd)
809 free(cmd);
810
811 return r;
812}
813
46b56e20 814static int hw_format_filesystem(const char* path, int fs, const char* output) {
25fcce25 815 char cmd[STRING_SIZE] = "\0";
0465449e 816 int r;
25fcce25
MT
817
818 // Swap
819 if (fs == HW_FS_SWAP) {
820 snprintf(cmd, sizeof(cmd), "/sbin/mkswap -v1 %s &>/dev/null", path);
25fcce25
MT
821
822 // EXT4
823 } else if (fs == HW_FS_EXT4) {
5208ceed 824 snprintf(cmd, sizeof(cmd), "/sbin/mke2fs -FF -T ext4 %s", path);
25fcce25
MT
825
826 // EXT4 w/o journal
827 } else if (fs == HW_FS_EXT4_WO_JOURNAL) {
5208ceed 828 snprintf(cmd, sizeof(cmd), "/sbin/mke2fs -FF -T ext4 -O ^has_journal %s", path);
70a44b52
MT
829
830 // XFS
831 } else if (fs == HW_FS_XFS) {
832 snprintf(cmd, sizeof(cmd), "/sbin/mkfs.xfs -f %s", path);
92e78233 833
130815d3
SS
834 // BTRFS
835 } else if (fs == HW_FS_BTRFS) {
0465449e
SS
836 r = hw_create_btrfs_layout(path, output);
837
838 return r;
130815d3 839
92e78233
MT
840 // FAT32
841 } else if (fs == HW_FS_FAT32) {
842 snprintf(cmd, sizeof(cmd), "/sbin/mkfs.vfat %s", path);
25fcce25
MT
843 }
844
845 assert(*cmd);
846
0465449e 847 r = mysystem(output, cmd);
25fcce25
MT
848
849 return r;
850}
851
46b56e20 852int hw_create_filesystems(struct hw_destination* dest, const char* output) {
25fcce25
MT
853 int r;
854
855 // boot
856 if (*dest->part_boot) {
46b56e20 857 r = hw_format_filesystem(dest->part_boot, dest->filesystem, output);
25fcce25
MT
858 if (r)
859 return r;
860 }
861
92e78233
MT
862 // ESP
863 if (*dest->part_boot_efi) {
864 r = hw_format_filesystem(dest->part_boot_efi, HW_FS_FAT32, output);
865 if (r)
866 return r;
867 }
868
25fcce25
MT
869 // swap
870 if (*dest->part_swap) {
46b56e20 871 r = hw_format_filesystem(dest->part_swap, HW_FS_SWAP, output);
25fcce25
MT
872 if (r)
873 return r;
874 }
875
876 // root
46b56e20 877 r = hw_format_filesystem(dest->part_root, dest->filesystem, output);
25fcce25
MT
878 if (r)
879 return r;
880
25fcce25
MT
881 return 0;
882}
883
0465449e
SS
884int hw_create_btrfs_layout(const char* path, const char* output) {
885 const struct btrfs_subvolumes* subvolume = NULL;
886 char cmd[STRING_SIZE];
887 char volume[STRING_SIZE];
888 int r;
889
890 r = snprintf(cmd, sizeof(cmd), "/usr/bin/mkfs.btrfs -f %s", path);
891 if (r < 0) {
892 return r;
893 }
894
895 // Create the main BTRFS file system.
896 r = mysystem(output, cmd);
897
898 if (r) {
899 return r;
900 }
901
902
903 // We need to mount the FS in order to create any subvolumes.
904 r = hw_mount(path, DESTINATION_MOUNT_PATH, "btrfs", 0);
905
906 if (r) {
907 return r;
908 }
909
910 // Loop through the list of subvolumes to create.
911 for ( subvolume = btrfs_subvolumes; subvolume->name; subvolume++ ) {
912 r = snprintf(volume, sizeof(volume), "%s", subvolume->name);
913
914 // Abort if snprintf fails.
915 if (r < 0) {
916 return r;
917 }
918
919 // Call function to create the subvolume
920 r = hw_create_btrfs_subvolume(output, volume);
921
922 if (r) {
923 return r;
924 }
925 }
926
927 // Umount the main BTRFS after subvolume creation.
928 r = hw_umount(DESTINATION_MOUNT_PATH, 0);
929
930 if (r) {
931 return r;
932 }
933
934 return 0;
935}
936
25fcce25
MT
937int hw_mount_filesystems(struct hw_destination* dest, const char* prefix) {
938 char target[STRING_SIZE];
e7740eaf 939 int r;
25fcce25
MT
940
941 assert(*prefix == '/');
942
943 const char* filesystem;
944 switch (dest->filesystem) {
25fcce25
MT
945 case HW_FS_EXT4:
946 case HW_FS_EXT4_WO_JOURNAL:
947 filesystem = "ext4";
948 break;
949
70a44b52
MT
950 case HW_FS_XFS:
951 filesystem = "xfs";
952 break;
953
130815d3
SS
954 case HW_FS_BTRFS:
955 filesystem = "btrfs";
956 break;
957
92e78233
MT
958 case HW_FS_FAT32:
959 filesystem = "vfat";
960 break;
961
25fcce25
MT
962 default:
963 assert(0);
964 }
965
966 // root
e7740eaf
SS
967 if (dest->filesystem == HW_FS_BTRFS) {
968 r = hw_mount_btrfs_subvolumes(dest->part_root);
969
970 if (r)
971 return r;
972 } else {
973 r = hw_mount(dest->part_root, prefix, filesystem, 0);
974
975 if (r)
976 return r;
977 }
25fcce25
MT
978
979 // boot
fbeac096
SS
980 snprintf(target, sizeof(target), "%s%s", prefix, HW_PATH_BOOT);
981 r = mkdir(target, S_IRWXU|S_IRWXG|S_IRWXO);
982
983 if (r) {
984 hw_umount_filesystems(dest, prefix);
25fcce25 985
fbeac096
SS
986 return r;
987 }
988
989 if (*dest->part_boot) {
25fcce25
MT
990 r = hw_mount(dest->part_boot, target, filesystem, 0);
991 if (r) {
992 hw_umount_filesystems(dest, prefix);
993
994 return r;
995 }
996 }
997
92e78233
MT
998 // ESP
999 if (*dest->part_boot_efi) {
1000 snprintf(target, sizeof(target), "%s%s", prefix, HW_PATH_BOOT_EFI);
1001 mkdir(target, S_IRWXU|S_IRWXG|S_IRWXO);
1002
1003 r = hw_mount(dest->part_boot_efi, target, "vfat", 0);
1004 if (r) {
1005 hw_umount_filesystems(dest, prefix);
1006
1007 return r;
1008 }
1009 }
1010
25fcce25
MT
1011 // swap
1012 if (*dest->part_swap) {
1013 r = swapon(dest->part_swap, 0);
1014 if (r) {
1015 hw_umount_filesystems(dest, prefix);
1016
1017 return r;
1018 }
1019 }
1020
1021 // bind-mount misc filesystems
ced15fdf
MT
1022 r = hw_bind_mount("/dev", prefix);
1023 if (r)
1024 return r;
25fcce25 1025
ced15fdf
MT
1026 r = hw_bind_mount("/proc", prefix);
1027 if (r)
1028 return r;
25fcce25 1029
ced15fdf
MT
1030 r = hw_bind_mount("/sys", prefix);
1031 if (r)
1032 return r;
25fcce25 1033
ced15fdf
MT
1034 r = hw_bind_mount("/sys/firmware/efi/efivars", prefix);
1035 if (r && errno != ENOENT)
1036 return r;
25fcce25
MT
1037
1038 return 0;
1039}
1040
e7740eaf
SS
1041int hw_mount_btrfs_subvolumes(const char* source) {
1042 const struct btrfs_subvolumes* subvolume = NULL;
1043 char path[STRING_SIZE];
1044 char options[STRING_SIZE];
1045 int r;
1046
1047 // Loop through the list of known subvolumes.
1048 for ( subvolume = btrfs_subvolumes; subvolume->name; subvolume++ ) {
1049 // Assign subvolume path.
1050 r = snprintf(path, sizeof(path), "%s%s", DESTINATION_MOUNT_PATH, subvolume->mount_path);
1051
1052 if (r < 0) {
1053 return r;
1054 }
1055
1056 // Assign subvolume name.
a9963bf0 1057 r = snprintf(options, sizeof(options), "subvol=%s,%s", subvolume->name, BTRFS_MOUNT_OPTIONS);
e7740eaf
SS
1058 if (r < 0) {
1059 return r;
1060 }
1061
1062 // Create the directory.
1063 r = hw_mkdir(path, S_IRWXU|S_IRWXG|S_IRWXO);
1064
1065 // Abort if the directory could not be created.
1066 if(r != 0 && errno != EEXIST)
1067 return r;
1068
1069 // Print log message
1070 fprintf(flog, "Mounting subvolume %s to %s\n", subvolume->name, subvolume->mount_path);
1071
1072 // Try to mount the subvolume.
1073 r = mount(source, path, "btrfs", NULL, options);
1074
1075 if (r) {
1076 return r;
1077 }
1078 }
1079
1080 return 0;
1081}
1082
25fcce25 1083int hw_umount_filesystems(struct hw_destination* dest, const char* prefix) {
ade96ba8
MT
1084 int r;
1085 char target[STRING_SIZE];
1086
ddd32a5c
MT
1087 // Write all buffers to disk before umounting
1088 hw_sync();
1089
92e78233
MT
1090 // ESP
1091 if (*dest->part_boot_efi) {
ced15fdf 1092 r = hw_umount(HW_PATH_BOOT_EFI, prefix);
92e78233
MT
1093 if (r)
1094 return -1;
1095 }
1096
25fcce25
MT
1097 // boot
1098 if (*dest->part_boot) {
ced15fdf 1099 r = hw_umount(HW_PATH_BOOT, prefix);
ade96ba8
MT
1100 if (r)
1101 return -1;
25fcce25
MT
1102 }
1103
25fcce25
MT
1104 // swap
1105 if (*dest->part_swap) {
1106 swapoff(dest->part_swap);
1107 }
1108
1109 // misc filesystems
ced15fdf
MT
1110 r = hw_umount("/sys/firmware/efi/efivars", prefix);
1111 if (r)
1112 return -1;
1113
1114 r = hw_umount("/sys", prefix);
1115 if (r)
1116 return -1;
1117
1118 r = hw_umount("/proc", prefix);
1119 if (r)
1120 return -1;
1121
1122 r = hw_umount("/dev", prefix);
1123 if (r)
1124 return -1;
25fcce25 1125
ade96ba8 1126 // root
2a981396
SS
1127 if(dest->filesystem == HW_FS_BTRFS) {
1128 r = hw_umount_btrfs_layout();
1129 } else {
1130 r = hw_umount(prefix, NULL);
1131 }
1132
ade96ba8
MT
1133 if (r)
1134 return -1;
1135
25fcce25
MT
1136 return 0;
1137}
4a0d9bef 1138
2a981396
SS
1139int hw_umount_btrfs_layout() {
1140 const struct btrfs_subvolumes* subvolume = NULL;
1141 char path[STRING_SIZE];
1142 int counter = 0;
1143 int retry = 1;
1144 int r;
1145
1146 do {
1147 // Reset the retry marker
1148 retry = 0;
1149
1150 // Loop through the list of subvolumes
1151 for (subvolume = btrfs_subvolumes; subvolume->name; subvolume++) {
1152 // Abort if the subvolume path could not be assigned.
1153 r = snprintf(path, sizeof(path), "%s%s", DESTINATION_MOUNT_PATH, subvolume->mount_path);
1154
1155 if (r < 0) {
1156 return r;
1157 }
1158
1159 // Try to umount the subvolume.
1160 r = umount2(path, 0);
1161
1162 // Handle return codes.
1163 if (r) {
1164 switch(errno) {
1165 case EBUSY:
1166 // Set marker to retry the umount.
1167 retry = 1;
1168
1169 // Ignore if the subvolume could not be unmounted yet,
1170 // because it is still used.
1171 continue;
1172
1173 case EINVAL:
1174 // Ignore if the subvolume already has been unmounted
1175 continue;
1176 case ENOENT:
1177 // Ignore if the directory does not longer exist.
1178 continue;
1179 default:
1180 fprintf(flog, "Could not umount %s from %s - Error: %d\n", subvolume->name, path, r);
1181 return r;
1182 }
1183 }
1184
1185 // Print log message
1186 fprintf(flog, "Umounted %s from %s\n", subvolume->name, path);
1187 }
1188
1189 // Abort loop if all mountpoins got umounted
1190 if (retry == 0) {
1191 return 0;
1192 }
1193
1194 // Abort after five failed umount attempts
1195 if (counter == 5) {
1196 return -1;
1197 }
1198
1199 // Increment counter.
1200 counter++;
1201 } while (1);
1202}
1203
d78fffa0 1204int hw_destroy_raid_superblocks(const struct hw_destination* dest, const char* output) {
d2fafe03
MT
1205 char cmd[STRING_SIZE];
1206
46b56e20
MT
1207 hw_stop_all_raid_arrays(output);
1208 hw_stop_all_raid_arrays(output);
d2fafe03
MT
1209
1210 if (dest->disk1) {
46b56e20
MT
1211 snprintf(cmd, sizeof(cmd), "/sbin/mdadm --zero-superblock %s", dest->disk1->path);
1212 mysystem(output, cmd);
d2fafe03
MT
1213 }
1214
1215 if (dest->disk2) {
46b56e20
MT
1216 snprintf(cmd, sizeof(cmd), "/sbin/mdadm --zero-superblock %s", dest->disk2->path);
1217 mysystem(output, cmd);
d2fafe03
MT
1218 }
1219
1220 return 0;
1221}
1222
46b56e20 1223int hw_setup_raid(struct hw_destination* dest, const char* output) {
4a0d9bef 1224 char* cmd = NULL;
7b4790d3 1225 int r;
4a0d9bef
MT
1226
1227 assert(dest->is_raid);
1228
d2fafe03
MT
1229 // Stop all RAID arrays that might be around (again).
1230 // It seems that there is some sort of race-condition with udev re-enabling
1231 // the raid arrays and therefore locking the disks.
46b56e20 1232 r = hw_destroy_raid_superblocks(dest, output);
d2fafe03 1233
7b4790d3
MT
1234 asprintf(&cmd, "echo \"y\" | /sbin/mdadm --create --verbose --metadata=%s --auto=mdp %s",
1235 RAID_METADATA, dest->path);
4a0d9bef
MT
1236
1237 switch (dest->raid_level) {
1238 case 1:
1239 asprintf(&cmd, "%s --level=1 --raid-devices=2", cmd);
1240 break;
1241
1242 default:
1243 assert(0);
1244 }
1245
1246 if (dest->disk1) {
1247 asprintf(&cmd, "%s %s", cmd, dest->disk1->path);
d2f993a7
MT
1248
1249 // Clear all data at the beginning
1250 r = hw_zero_out_device(dest->disk1->path, MB2BYTES(10));
1251 if (r <= 0)
1252 return r;
4a0d9bef
MT
1253 }
1254
1255 if (dest->disk2) {
1256 asprintf(&cmd, "%s %s", cmd, dest->disk2->path);
d2f993a7
MT
1257
1258 // Clear all data at the beginning
1259 r = hw_zero_out_device(dest->disk2->path, MB2BYTES(10));
1260 if (r <= 0)
1261 return r;
4a0d9bef
MT
1262 }
1263
46b56e20 1264 r = mysystem(output, cmd);
4a0d9bef
MT
1265 free(cmd);
1266
1267 // Wait a moment until the device has been properly brought up
1268 if (r == 0) {
1269 unsigned int counter = 10;
1270 while (counter-- > 0) {
1271 sleep(1);
1272
fde37387
MT
1273 // If the raid device has not yet been properly brought up,
1274 // opening it will fail with the message: Device or resource busy
1275 // Hence we will wait a bit until it becomes usable.
0e491487 1276 if (try_open(dest->path) == 0)
4a0d9bef
MT
1277 break;
1278 }
1279 }
1280
1281 return r;
1282}
1283
46b56e20
MT
1284int hw_stop_all_raid_arrays(const char* output) {
1285 return mysystem(output, "/sbin/mdadm --stop --scan --verbose");
4a0d9bef 1286}
f5007e9c 1287
92e78233 1288int hw_install_bootloader(struct hw* hw, struct hw_destination* dest, const char* output) {
f5007e9c 1289 char cmd[STRING_SIZE];
f5007e9c 1290
12034118
MT
1291 snprintf(cmd, sizeof(cmd), "/usr/bin/install-bootloader %s", dest->path);
1292 int r = system_chroot(output, DESTINATION_MOUNT_PATH, cmd);
92e78233
MT
1293 if (r)
1294 return r;
1295
ade96ba8
MT
1296 hw_sync();
1297
92e78233 1298 return 0;
f5007e9c 1299}
7f69d8a4
MT
1300
1301static char* hw_get_uuid(const char* dev) {
1302 blkid_probe p = blkid_new_probe_from_filename(dev);
1303 const char* buffer = NULL;
1304 char* uuid = NULL;
1305
1306 if (!p)
1307 return NULL;
1308
1309 blkid_do_probe(p);
1310 blkid_probe_lookup_value(p, "UUID", &buffer, NULL);
1311
1312 if (buffer)
1313 uuid = strdup(buffer);
1314
1315 blkid_free_probe(p);
1316
1317 return uuid;
1318}
1319
335c5bd1
MT
1320#define FSTAB_FMT "UUID=%s %-8s %-4s %-10s %d %d\n"
1321
7f69d8a4 1322int hw_write_fstab(struct hw_destination* dest) {
15be1e1b 1323 const struct btrfs_subvolumes* subvolume = NULL;
7f69d8a4
MT
1324 FILE* f = fopen(DESTINATION_MOUNT_PATH "/etc/fstab", "w");
1325 if (!f)
1326 return -1;
1327
7f69d8a4 1328 char* uuid = NULL;
15be1e1b 1329 char mount_options[STRING_SIZE];
7f69d8a4
MT
1330
1331 // boot
1332 if (*dest->part_boot) {
1333 uuid = hw_get_uuid(dest->part_boot);
1334
1335 if (uuid) {
e404dab5 1336 fprintf(f, FSTAB_FMT, uuid, "/boot", "auto", "defaults,nodev,noexec,nosuid", 1, 2);
7f69d8a4
MT
1337 free(uuid);
1338 }
1339 }
1340
92e78233
MT
1341 // ESP
1342 if (*dest->part_boot_efi) {
1343 uuid = hw_get_uuid(dest->part_boot_efi);
1344
1345 if (uuid) {
1346 fprintf(f, FSTAB_FMT, uuid, "/boot/efi", "auto", "defaults", 1, 2);
1347 free(uuid);
1348 }
1349 }
1350
1351
7f69d8a4
MT
1352 // swap
1353 if (*dest->part_swap) {
1354 uuid = hw_get_uuid(dest->part_swap);
1355
1356 if (uuid) {
335c5bd1 1357 fprintf(f, FSTAB_FMT, uuid, "swap", "swap", "defaults,pri=1", 0, 0);
7f69d8a4
MT
1358 free(uuid);
1359 }
1360 }
1361
1362 // root
1363 uuid = hw_get_uuid(dest->part_root);
1364 if (uuid) {
15be1e1b
SS
1365 if(dest->filesystem == HW_FS_BTRFS) {
1366 // Loop through the list of subvolumes
1367 for (subvolume = btrfs_subvolumes; subvolume->name; subvolume++) {
1368 // Abort if the mount options could not be assigned
1369 int r = snprintf(mount_options, sizeof(mount_options), "defaults,%s,subvol=%s", BTRFS_MOUNT_OPTIONS, subvolume->name);
1370 if (r < 0) {
1371 return r;
1372 }
1373
1374 // Write the entry to the file
1375 fprintf(f, FSTAB_FMT, uuid, subvolume->mount_path, "btrfs", mount_options, 1, 1);
1376 }
1377 } else {
1378 fprintf(f, FSTAB_FMT, uuid, "/", "auto", "defaults", 1, 1);
1379 }
1380
7f69d8a4
MT
1381 free(uuid);
1382 }
1383
7f69d8a4
MT
1384 fclose(f);
1385
1386 return 0;
1387}
282ec35e
MT
1388
1389void hw_sync() {
1390 sync();
1391 sync();
1392 sync();
1393}
7d114284
MT
1394
1395int hw_start_networking(const char* output) {
1396 return mysystem(output, "/usr/bin/start-networking.sh");
1397}
38c6822d
MT
1398
1399char* hw_find_backup_file(const char* output, const char* search_path) {
1400 char path[STRING_SIZE];
1401
1402 snprintf(path, sizeof(path), "%s/backup.ipf", search_path);
1403 int r = access(path, R_OK);
1404
1405 if (r == 0)
1406 return strdup(path);
1407
1408 return NULL;
1409}
1410
1411int hw_restore_backup(const char* output, const char* backup_path, const char* destination) {
1412 char command[STRING_SIZE];
1413
3f8e70f6
MT
1414 snprintf(command, sizeof(command), "/bin/tar xzpf %s -C %s "
1415 "--exclude-from=%s/var/ipfire/backup/exclude --exclude-from=%s/var/ipfire/backup/exclude.user",
1416 backup_path, destination, destination, destination);
38c6822d
MT
1417 int rc = mysystem(output, command);
1418
1419 if (rc)
1420 return -1;
1421
1422 return 0;
1423}
0465449e 1424
e0a7cdd8
SS
1425int hw_mkdir(const char *dir) {
1426 char tmp[STRING_SIZE];
1427 char *p = NULL;
1428 size_t len;
1429 int r;
1430
1431 snprintf(tmp, sizeof(tmp),"%s",dir);
1432 len = strlen(tmp);
1433
1434 if (tmp[len - 1] == '/') {
1435 tmp[len - 1] = 0;
1436 }
1437
1438 for (p = tmp + 1; *p; p++) {
1439 if (*p == '/') {
1440 *p = 0;
1441
1442 // Create target if it does not exist
1443 if (access(tmp, X_OK) != 0) {
1444 r = mkdir(tmp, S_IRWXU|S_IRWXG|S_IRWXO);
1445
1446 if (r) {
1447 return r;
1448 }
1449 }
1450
1451 *p = '/';
1452 }
1453 }
1454
1455 // Create target if it does not exist
1456 if (access(tmp, X_OK) != 0) {
1457 r = mkdir(tmp, S_IRWXU|S_IRWXG|S_IRWXO);
1458
1459 if (r) {
1460 return r;
1461 }
1462 }
1463
1464 return 0;
1465}
1466
1467
0465449e
SS
1468int hw_create_btrfs_subvolume(const char* output, const char* subvolume) {
1469 char command [STRING_SIZE];
1470 int r;
1471
1472 // Abort if the command could not be assigned.
1473 r = snprintf(command, sizeof(command), "/usr/bin/btrfs subvolume create %s/%s", DESTINATION_MOUNT_PATH, subvolume);
1474 if (r < 0) {
1475 return r;
1476 }
1477
1478 // Create the subvolume
1479 r = mysystem(output, command);
1480
1481 if (r) {
1482 return r;
1483 }
1484
1485 return 0;
1486}