disks.c revision 1.60 1 /* $NetBSD: disks.c,v 1.60 2020/01/16 16:47:19 martin Exp $ */
2
3 /*
4 * Copyright 1997 Piermont Information Systems Inc.
5 * All rights reserved.
6 *
7 * Written by Philip A. Nelson for Piermont Information Systems Inc.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. The name of Piermont Information Systems Inc. may not be used to endorse
18 * or promote products derived from this software without specific prior
19 * written permission.
20 *
21 * THIS SOFTWARE IS PROVIDED BY PIERMONT INFORMATION SYSTEMS INC. ``AS IS''
22 * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 * ARE DISCLAIMED. IN NO EVENT SHALL PIERMONT INFORMATION SYSTEMS INC. BE
25 * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
26 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
27 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
28 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
29 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
31 * THE POSSIBILITY OF SUCH DAMAGE.
32 *
33 */
34
35 /* disks.c -- routines to deal with finding disks and labeling disks. */
36
37
38 #include <assert.h>
39 #include <errno.h>
40 #include <inttypes.h>
41 #include <stdio.h>
42 #include <stdlib.h>
43 #include <unistd.h>
44 #include <fcntl.h>
45 #include <fnmatch.h>
46 #include <util.h>
47 #include <uuid.h>
48 #include <paths.h>
49 #include <fstab.h>
50
51 #include <sys/param.h>
52 #include <sys/sysctl.h>
53 #include <sys/swap.h>
54 #include <sys/disklabel_gpt.h>
55 #include <ufs/ufs/dinode.h>
56 #include <ufs/ffs/fs.h>
57
58 #include <dev/scsipi/scsipi_all.h>
59 #include <sys/scsiio.h>
60
61 #include <dev/ata/atareg.h>
62 #include <sys/ataio.h>
63
64 #include "defs.h"
65 #include "md.h"
66 #include "msg_defs.h"
67 #include "menu_defs.h"
68 #include "txtwalk.h"
69
70 /* #define DEBUG_VERBOSE 1 */
71
72 /* Disk descriptions */
73 struct disk_desc {
74 char dd_name[SSTRSIZE];
75 char dd_descr[256];
76 bool dd_no_mbr, dd_no_part;
77 uint dd_cyl;
78 uint dd_head;
79 uint dd_sec;
80 uint dd_secsize;
81 daddr_t dd_totsec;
82 };
83
84 #define NAME_PREFIX "NAME="
85 static const char name_prefix[] = NAME_PREFIX;
86
87 /* things we could have as /sbin/newfs_* and /sbin/fsck_* */
88 static const char *extern_fs_with_chk[] = {
89 "ext2fs", "lfs", "msdos", "v7fs"
90 };
91
92 /* things we could have as /sbin/newfs_* but not /sbin/fsck_* */
93 static const char *extern_fs_newfs_only[] = {
94 "sysvbfs", "udf"
95 };
96
97 /* Local prototypes */
98 static int found_fs(struct data *, size_t, const struct lookfor*);
99 static int found_fs_nocheck(struct data *, size_t, const struct lookfor*);
100 static int fsck_preen(const char *, const char *, bool silent);
101 static void fixsb(const char *, const char *);
102
103
104 static bool tmpfs_on_var_shm(void);
105
106 const char *
107 getfslabelname(uint f, uint f_version)
108 {
109 if (f == FS_TMPFS)
110 return "tmpfs";
111 else if (f == FS_MFS)
112 return "mfs";
113 else if (f == FS_BSDFFS && f_version > 0)
114 return f_version == 2 ?
115 msg_string(MSG_fs_type_ffsv2) : msg_string(MSG_fs_type_ffs);
116 else if (f == FS_EX2FS && f_version == 1)
117 return msg_string(MSG_fs_type_ext2old);
118 else if (f >= __arraycount(fstypenames) || fstypenames[f] == NULL)
119 return "invalid";
120 return fstypenames[f];
121 }
122
123 /*
124 * Decide wether we want to mount a tmpfs on /var/shm: we do this always
125 * when the machine has more than 16 MB of user memory. On smaller machines,
126 * shm_open() and friends will not perform well anyway.
127 */
128 static bool
129 tmpfs_on_var_shm()
130 {
131 uint64_t ram;
132 size_t len;
133
134 len = sizeof(ram);
135 if (sysctlbyname("hw.usermem64", &ram, &len, NULL, 0))
136 return false;
137
138 return ram > 16 * MEG;
139 }
140
141 /* from src/sbin/atactl/atactl.c
142 * extract_string: copy a block of bytes out of ataparams and make
143 * a proper string out of it, truncating trailing spaces and preserving
144 * strict typing. And also, not doing unaligned accesses.
145 */
146 static void
147 ata_extract_string(char *buf, size_t bufmax,
148 uint8_t *bytes, unsigned numbytes,
149 int needswap)
150 {
151 unsigned i;
152 size_t j;
153 unsigned char ch1, ch2;
154
155 for (i = 0, j = 0; i < numbytes; i += 2) {
156 ch1 = bytes[i];
157 ch2 = bytes[i+1];
158 if (needswap && j < bufmax-1) {
159 buf[j++] = ch2;
160 }
161 if (j < bufmax-1) {
162 buf[j++] = ch1;
163 }
164 if (!needswap && j < bufmax-1) {
165 buf[j++] = ch2;
166 }
167 }
168 while (j > 0 && buf[j-1] == ' ') {
169 j--;
170 }
171 buf[j] = '\0';
172 }
173
174 /*
175 * from src/sbin/scsictl/scsi_subr.c
176 */
177 #define STRVIS_ISWHITE(x) ((x) == ' ' || (x) == '\0' || (x) == (u_char)'\377')
178
179 static void
180 scsi_strvis(char *sdst, size_t dlen, const char *ssrc, size_t slen)
181 {
182 u_char *dst = (u_char *)sdst;
183 const u_char *src = (const u_char *)ssrc;
184
185 /* Trim leading and trailing blanks and NULs. */
186 while (slen > 0 && STRVIS_ISWHITE(src[0]))
187 ++src, --slen;
188 while (slen > 0 && STRVIS_ISWHITE(src[slen - 1]))
189 --slen;
190
191 while (slen > 0) {
192 if (*src < 0x20 || *src >= 0x80) {
193 /* non-printable characters */
194 dlen -= 4;
195 if (dlen < 1)
196 break;
197 *dst++ = '\\';
198 *dst++ = ((*src & 0300) >> 6) + '0';
199 *dst++ = ((*src & 0070) >> 3) + '0';
200 *dst++ = ((*src & 0007) >> 0) + '0';
201 } else if (*src == '\\') {
202 /* quote characters */
203 dlen -= 2;
204 if (dlen < 1)
205 break;
206 *dst++ = '\\';
207 *dst++ = '\\';
208 } else {
209 /* normal characters */
210 if (--dlen < 1)
211 break;
212 *dst++ = *src;
213 }
214 ++src, --slen;
215 }
216
217 *dst++ = 0;
218 }
219
220
221 static int
222 get_descr_scsi(struct disk_desc *dd)
223 {
224 struct scsipi_inquiry_data inqbuf;
225 struct scsipi_inquiry cmd;
226 scsireq_t req;
227 /* x4 in case every character is escaped, +1 for NUL. */
228 char vendor[(sizeof(inqbuf.vendor) * 4) + 1],
229 product[(sizeof(inqbuf.product) * 4) + 1],
230 revision[(sizeof(inqbuf.revision) * 4) + 1];
231 char size[5];
232
233 memset(&inqbuf, 0, sizeof(inqbuf));
234 memset(&cmd, 0, sizeof(cmd));
235 memset(&req, 0, sizeof(req));
236
237 cmd.opcode = INQUIRY;
238 cmd.length = sizeof(inqbuf);
239 memcpy(req.cmd, &cmd, sizeof(cmd));
240 req.cmdlen = sizeof(cmd);
241 req.databuf = &inqbuf;
242 req.datalen = sizeof(inqbuf);
243 req.timeout = 10000;
244 req.flags = SCCMD_READ;
245 req.senselen = SENSEBUFLEN;
246
247 if (!disk_ioctl(dd->dd_name, SCIOCCOMMAND, &req)
248 || req.retsts != SCCMD_OK)
249 return 0;
250
251 scsi_strvis(vendor, sizeof(vendor), inqbuf.vendor,
252 sizeof(inqbuf.vendor));
253 scsi_strvis(product, sizeof(product), inqbuf.product,
254 sizeof(inqbuf.product));
255 scsi_strvis(revision, sizeof(revision), inqbuf.revision,
256 sizeof(inqbuf.revision));
257
258 humanize_number(size, sizeof(size),
259 (uint64_t)dd->dd_secsize * (uint64_t)dd->dd_totsec,
260 "", HN_AUTOSCALE, HN_B | HN_NOSPACE | HN_DECIMAL);
261
262 snprintf(dd->dd_descr, sizeof(dd->dd_descr),
263 "%s (%s, %s %s)",
264 dd->dd_name, size, vendor, product);
265
266 return 1;
267 }
268
269 static int
270 get_descr_ata(struct disk_desc *dd)
271 {
272 struct atareq req;
273 static union {
274 unsigned char inbuf[DEV_BSIZE];
275 struct ataparams inqbuf;
276 } inbuf;
277 struct ataparams *inqbuf = &inbuf.inqbuf;
278 char model[sizeof(inqbuf->atap_model)+1];
279 char size[5];
280 int needswap = 0;
281
282 memset(&inbuf, 0, sizeof(inbuf));
283 memset(&req, 0, sizeof(req));
284
285 req.flags = ATACMD_READ;
286 req.command = WDCC_IDENTIFY;
287 req.databuf = (void *)&inbuf;
288 req.datalen = sizeof(inbuf);
289 req.timeout = 1000;
290
291 if (!disk_ioctl(dd->dd_name, ATAIOCCOMMAND, &req)
292 || req.retsts != ATACMD_OK)
293 return 0;
294
295 #if BYTE_ORDER == LITTLE_ENDIAN
296 /*
297 * On little endian machines, we need to shuffle the string
298 * byte order. However, we don't have to do this for NEC or
299 * Mitsumi ATAPI devices
300 */
301
302 if (!(inqbuf->atap_config != WDC_CFG_CFA_MAGIC &&
303 (inqbuf->atap_config & WDC_CFG_ATAPI) &&
304 ((inqbuf->atap_model[0] == 'N' &&
305 inqbuf->atap_model[1] == 'E') ||
306 (inqbuf->atap_model[0] == 'F' &&
307 inqbuf->atap_model[1] == 'X')))) {
308 needswap = 1;
309 }
310 #endif
311
312 ata_extract_string(model, sizeof(model),
313 inqbuf->atap_model, sizeof(inqbuf->atap_model), needswap);
314 humanize_number(size, sizeof(size),
315 (uint64_t)dd->dd_secsize * (uint64_t)dd->dd_totsec,
316 "", HN_AUTOSCALE, HN_B | HN_NOSPACE | HN_DECIMAL);
317
318 snprintf(dd->dd_descr, sizeof(dd->dd_descr), "%s (%s, %s)",
319 dd->dd_name, size, model);
320
321 return 1;
322 }
323
324 static void
325 get_descr(struct disk_desc *dd)
326 {
327 char size[5];
328 dd->dd_descr[0] = '\0';
329
330 /* try ATA */
331 if (get_descr_ata(dd))
332 goto done;
333 /* try SCSI */
334 if (get_descr_scsi(dd))
335 goto done;
336
337 /* XXX: identify for ld @ NVME or microSD */
338
339 /* XXX: get description from raid, cgd, vnd... */
340 done:
341 /* punt, just give some generic info */
342 humanize_number(size, sizeof(size),
343 (uint64_t)dd->dd_secsize * (uint64_t)dd->dd_totsec,
344 "", HN_AUTOSCALE, HN_B | HN_NOSPACE | HN_DECIMAL);
345
346 snprintf(dd->dd_descr, sizeof(dd->dd_descr),
347 "%s (%s)", dd->dd_name, size);
348 }
349
350 /*
351 * State for helper callback for get_default_cdrom
352 */
353 struct default_cdrom_data {
354 char *device;
355 size_t max_len;
356 bool found;
357 };
358
359 /*
360 * Helper function for get_default_cdrom, gets passed a device
361 * name and a void pointer to default_cdrom_data.
362 */
363 static bool
364 get_default_cdrom_helper(void *state, const char *dev)
365 {
366 struct default_cdrom_data *data = state;
367
368 if (!is_cdrom_device(dev, false))
369 return true;
370
371 strlcpy(data->device, dev, data->max_len);
372 strlcat(data->device, "a", data->max_len); /* default to partition a */
373 data->found = true;
374
375 return false; /* one is enough, stop iteration */
376 }
377
378 /*
379 * Set the argument to the name of the first CD devices actually
380 * available, leave it unmodified otherwise.
381 * Return true if a device has been found.
382 */
383 bool
384 get_default_cdrom(char *cd, size_t max_len)
385 {
386 struct default_cdrom_data state;
387
388 state.device = cd;
389 state.max_len = max_len;
390 state.found = false;
391
392 if (enumerate_disks(&state, get_default_cdrom_helper))
393 return state.found;
394
395 return false;
396 }
397
398 static bool
399 get_wedge_descr(struct disk_desc *dd)
400 {
401 struct dkwedge_info dkw;
402
403 if (!get_wedge_info(dd->dd_name, &dkw))
404 return false;
405
406 snprintf(dd->dd_descr, sizeof(dd->dd_descr), "%s (%s@%s)",
407 dkw.dkw_wname, dkw.dkw_devname, dkw.dkw_parent);
408 return true;
409 }
410
411 static bool
412 get_name_and_parent(const char *dev, char *name, char *parent)
413 {
414 struct dkwedge_info dkw;
415
416 if (!get_wedge_info(dev, &dkw))
417 return false;
418 strcpy(name, (const char *)dkw.dkw_wname);
419 strcpy(parent, dkw.dkw_parent);
420 return true;
421 }
422
423 static bool
424 find_swap_part_on(const char *dev, char *swap_name)
425 {
426 struct dkwedge_list dkwl;
427 struct dkwedge_info *dkw;
428 u_int i;
429 bool res = false;
430
431 if (!get_wedge_list(dev, &dkwl))
432 return false;
433
434 dkw = dkwl.dkwl_buf;
435 for (i = 0; i < dkwl.dkwl_nwedges; i++) {
436 res = strcmp(dkw[i].dkw_ptype, DKW_PTYPE_SWAP) == 0;
437 if (res) {
438 strcpy(swap_name, (const char*)dkw[i].dkw_wname);
439 break;
440 }
441 }
442 free(dkwl.dkwl_buf);
443
444 return res;
445 }
446
447 static bool
448 is_ffs_wedge(const char *dev)
449 {
450 struct dkwedge_info dkw;
451
452 if (!get_wedge_info(dev, &dkw))
453 return false;
454
455 return strcmp(dkw.dkw_ptype, DKW_PTYPE_FFS) == 0;
456 }
457
458 /*
459 * Does this device match an entry in our default CDROM device list?
460 * If looking for install targets, we also flag floopy devices.
461 */
462 bool
463 is_cdrom_device(const char *dev, bool as_target)
464 {
465 static const char *target_devices[] = {
466 #ifdef CD_NAMES
467 CD_NAMES
468 #endif
469 #if defined(CD_NAMES) && defined(FLOPPY_NAMES)
470 ,
471 #endif
472 #ifdef FLOPPY_NAMES
473 FLOPPY_NAMES
474 #endif
475 #if defined(CD_NAMES) || defined(FLOPPY_NAMES)
476 ,
477 #endif
478 0
479 };
480 static const char *src_devices[] = {
481 #ifdef CD_NAMES
482 CD_NAMES ,
483 #endif
484 0
485 };
486
487 for (const char **dev_pat = as_target ? target_devices : src_devices;
488 *dev_pat; dev_pat++)
489 if (fnmatch(*dev_pat, dev, 0) == 0)
490 return true;
491
492 return false;
493 }
494
495 /* does this device match any entry in the driver list? */
496 static bool
497 dev_in_list(const char *dev, const char **list)
498 {
499
500 for ( ; *list; list++) {
501
502 size_t len = strlen(*list);
503
504 /* start of name matches? */
505 if (strncmp(dev, *list, len) == 0) {
506 char *endp;
507 int e;
508
509 /* remainder of name is a decimal number? */
510 strtou(dev+len, &endp, 10, 0, INT_MAX, &e);
511 if (endp && *endp == 0 && e == 0)
512 return true;
513 }
514 }
515
516 return false;
517 }
518
519 bool
520 is_bootable_device(const char *dev)
521 {
522 static const char *non_bootable_devs[] = {
523 "raid", /* bootcode lives outside of raid */
524 "xbd", /* xen virtual device, can not boot from that */
525 NULL
526 };
527
528 return !dev_in_list(dev, non_bootable_devs);
529 }
530
531 bool
532 is_partitionable_device(const char *dev)
533 {
534 static const char *non_partitionable_devs[] = {
535 "dk", /* this is already a partitioned slice */
536 NULL
537 };
538
539 return !dev_in_list(dev, non_partitionable_devs);
540 }
541
542 /*
543 * Multi-purpose helper function:
544 * iterate all known disks, invoke a callback for each.
545 * Stop iteration when the callback returns false.
546 * Return true when iteration actually happend, false on error.
547 */
548 bool
549 enumerate_disks(void *state, bool (*func)(void *state, const char *dev))
550 {
551 static const int mib[] = { CTL_HW, HW_DISKNAMES };
552 static const unsigned int miblen = __arraycount(mib);
553 const char *xd;
554 char *disk_names;
555 size_t len;
556
557 if (sysctl(mib, miblen, NULL, &len, NULL, 0) == -1)
558 return false;
559
560 disk_names = malloc(len);
561 if (disk_names == NULL)
562 return false;
563
564 if (sysctl(mib, miblen, disk_names, &len, NULL, 0) == -1) {
565 free(disk_names);
566 return false;
567 }
568
569 for (xd = strtok(disk_names, " "); xd != NULL; xd = strtok(NULL, " ")) {
570 if (!(*func)(state, xd))
571 break;
572 }
573 free(disk_names);
574
575 return true;
576 }
577
578 /*
579 * Helper state for get_disks
580 */
581 struct get_disks_state {
582 int numdisks;
583 struct disk_desc *dd;
584 bool with_non_partitionable;
585 };
586
587 /*
588 * Helper function for get_disks enumartion
589 */
590 static bool
591 get_disks_helper(void *arg, const char *dev)
592 {
593 struct get_disks_state *state = arg;
594 struct disk_geom geo;
595
596 /* is this a CD device? */
597 if (is_cdrom_device(dev, true))
598 return true;
599
600 memset(state->dd, 0, sizeof(*state->dd));
601 strlcpy(state->dd->dd_name, dev, sizeof state->dd->dd_name - 2);
602 state->dd->dd_no_mbr = !is_bootable_device(dev);
603 state->dd->dd_no_part = !is_partitionable_device(dev);
604
605 if (state->dd->dd_no_part && !state->with_non_partitionable)
606 return true;
607
608 if (!get_disk_geom(state->dd->dd_name, &geo)) {
609 if (errno == ENOENT)
610 return true;
611 if (errno != ENOTTY || !state->dd->dd_no_part)
612 /*
613 * Allow plain partitions,
614 * like already existing wedges
615 * (like dk0) if marked as
616 * non-partitioning device.
617 * For all other cases, continue
618 * with the next disk.
619 */
620 return true;
621 if (!is_ffs_wedge(state->dd->dd_name))
622 return true;
623 }
624
625 /*
626 * Exclude a disk mounted as root partition,
627 * in case of install-image on a USB memstick.
628 */
629 if (is_active_rootpart(state->dd->dd_name,
630 state->dd->dd_no_part ? -1 : 0))
631 return true;
632
633 state->dd->dd_cyl = geo.dg_ncylinders;
634 state->dd->dd_head = geo.dg_ntracks;
635 state->dd->dd_sec = geo.dg_nsectors;
636 state->dd->dd_secsize = geo.dg_secsize;
637 state->dd->dd_totsec = geo.dg_secperunit;
638
639 if (!state->dd->dd_no_part || !get_wedge_descr(state->dd))
640 get_descr(state->dd);
641 state->dd++;
642 state->numdisks++;
643 if (state->numdisks == MAX_DISKS)
644 return false;
645
646 return true;
647 }
648
649 /*
650 * Get all disk devices that are not CDs.
651 * Optionally leave out those that can not be partitioned further.
652 */
653 static int
654 get_disks(struct disk_desc *dd, bool with_non_partitionable)
655 {
656 struct get_disks_state state;
657
658 /* initialize */
659 state.numdisks = 0;
660 state.dd = dd;
661 state.with_non_partitionable = with_non_partitionable;
662
663 if (enumerate_disks(&state, get_disks_helper))
664 return state.numdisks;
665
666 return 0;
667 }
668
669 #ifdef DEBUG_VERBOSE
670 static void
671 dump_parts(const struct disk_partitions *parts)
672 {
673 fprintf(stderr, "%s partitions on %s:\n",
674 MSG_XLAT(parts->pscheme->short_name), parts->disk);
675
676 for (size_t p = 0; p < parts->num_part; p++) {
677 struct disk_part_info info;
678
679 if (parts->pscheme->get_part_info(
680 parts, p, &info)) {
681 fprintf(stderr, " #%zu: start: %" PRIu64 " "
682 "size: %" PRIu64 ", flags: %x\n",
683 p, info.start, info.size,
684 info.flags);
685 if (info.nat_type)
686 fprintf(stderr, "\ttype: %s\n",
687 info.nat_type->description);
688 } else {
689 fprintf(stderr, "failed to get info "
690 "for partition #%zu\n", p);
691 }
692 }
693 fprintf(stderr, "%" PRIu64 " sectors free, disk size %" PRIu64
694 " sectors, %zu partitions used\n", parts->free_space,
695 parts->disk_size, parts->num_part);
696 }
697 #endif
698
699 static bool
700 delete_scheme(struct pm_devs *p)
701 {
702
703 if (!ask_noyes(MSG_removepartswarn))
704 return false;
705
706 p->parts->pscheme->free(p->parts);
707 p->parts = NULL;
708 return true;
709 }
710
711
712 static void
713 convert_copy(struct disk_partitions *old_parts,
714 struct disk_partitions *new_parts)
715 {
716 struct disk_part_info oinfo, ninfo;
717 part_id i;
718
719 for (i = 0; i < old_parts->num_part; i++) {
720 if (!old_parts->pscheme->get_part_info(old_parts, i, &oinfo))
721 continue;
722
723 if (oinfo.flags & PTI_PSCHEME_INTERNAL)
724 continue;
725
726 if (oinfo.flags & PTI_SEC_CONTAINER) {
727 if (old_parts->pscheme->secondary_partitions) {
728 struct disk_partitions *sec_part =
729 old_parts->pscheme->
730 secondary_partitions(
731 old_parts, oinfo.start, false);
732 if (sec_part)
733 convert_copy(sec_part, new_parts);
734 }
735 continue;
736 }
737
738 if (!new_parts->pscheme->adapt_foreign_part_info(new_parts,
739 &ninfo, old_parts->pscheme, &oinfo))
740 continue;
741 new_parts->pscheme->add_partition(new_parts, &ninfo, NULL);
742 }
743 }
744
745 bool
746 convert_scheme(struct pm_devs *p, bool is_boot_drive, const char **err_msg)
747 {
748 struct disk_partitions *old_parts, *new_parts;
749 const struct disk_partitioning_scheme *new_scheme;
750
751 *err_msg = NULL;
752
753 old_parts = p->parts;
754 new_scheme = select_part_scheme(p, old_parts->pscheme,
755 false, MSG_select_other_partscheme);
756
757 if (new_scheme == NULL)
758 return false;
759
760 new_parts = new_scheme->create_new_for_disk(p->diskdev,
761 0, p->dlsize, p->dlsize, is_boot_drive, NULL);
762 if (new_parts == NULL)
763 return false;
764
765 convert_copy(old_parts, new_parts);
766
767 if (new_parts->num_part == 0) {
768 /* need to cleanup */
769 new_parts->pscheme->free(new_parts);
770 return false;
771 }
772
773 old_parts->pscheme->free(old_parts);
774 p->parts = new_parts;
775 return true;
776 }
777
778 static struct pm_devs *
779 dummy_whole_system_pm(void)
780 {
781 static struct pm_devs whole_system = {
782 .diskdev = "/",
783 .no_mbr = true,
784 .no_part = true,
785 .cur_system = true,
786 };
787 static bool init = false;
788
789 if (!init) {
790 strlcpy(whole_system.diskdev_descr,
791 msg_string(MSG_running_system),
792 sizeof whole_system.diskdev_descr);
793 }
794
795 return &whole_system;
796 }
797
798 int
799 find_disks(const char *doingwhat, bool allow_cur_system)
800 {
801 struct disk_desc disks[MAX_DISKS];
802 /* need two more menu entries: current system + extended partitioning */
803 menu_ent dsk_menu[__arraycount(disks) + 2];
804 struct disk_desc *disk;
805 int i = 0, skipped = 0;
806 int already_found, numdisks, selected_disk = -1;
807 int menu_no;
808 struct pm_devs *pm_i, *pm_last = NULL;
809
810 memset(dsk_menu, 0, sizeof(dsk_menu));
811
812 /* Find disks. */
813 numdisks = get_disks(disks, partman_go <= 0);
814
815 /* need a redraw here, kernel messages hose everything */
816 touchwin(stdscr);
817 refresh();
818 /* Kill typeahead, it won't be what the user had in mind */
819 fpurge(stdin);
820
821 /*
822 * partman_go: <0 - we want to see menu with extended partitioning
823 * ==0 - we want to see simple select disk menu
824 * >0 - we do not want to see any menus, just detect
825 * all disks
826 */
827 if (partman_go <= 0) {
828 if (numdisks == 0 && !allow_cur_system) {
829 /* No disks found! */
830 hit_enter_to_continue(MSG_nodisk, NULL);
831 /*endwin();*/
832 return -1;
833 } else {
834 /* One or more disks found or current system allowed */
835 i = 0;
836 if (allow_cur_system) {
837 dsk_menu[i].opt_name = MSG_running_system;
838 dsk_menu[i].opt_flags = OPT_EXIT;
839 dsk_menu[i].opt_action = set_menu_select;
840 i++;
841 }
842 for (; i < numdisks+allow_cur_system; i++) {
843 dsk_menu[i].opt_name =
844 disks[i-allow_cur_system].dd_descr;
845 dsk_menu[i].opt_flags = OPT_EXIT;
846 dsk_menu[i].opt_action = set_menu_select;
847 }
848 if (partman_go < 0) {
849 dsk_menu[i].opt_name = MSG_partman;
850 dsk_menu[i].opt_flags = OPT_EXIT;
851 dsk_menu[i].opt_action = set_menu_select;
852 i++;
853 }
854 menu_no = new_menu(MSG_Available_disks,
855 dsk_menu, i, -1,
856 4, 0, 0, MC_SCROLL,
857 NULL, NULL, NULL, NULL, MSG_exit_menu_generic);
858 if (menu_no == -1)
859 return -1;
860 msg_fmt_display(MSG_ask_disk, "%s", doingwhat);
861 process_menu(menu_no, &selected_disk);
862 free_menu(menu_no);
863 if (allow_cur_system) {
864 if (selected_disk == 0) {
865 pm = dummy_whole_system_pm();
866 return 1;
867 } else {
868 selected_disk--;
869 }
870 }
871 }
872 if (partman_go < 0 && selected_disk == numdisks) {
873 partman_go = 1;
874 return -2;
875 } else
876 partman_go = 0;
877 if (selected_disk < 0 || selected_disk >= numdisks)
878 return -1;
879 }
880
881 /* Fill pm struct with device(s) info */
882 for (i = 0; i < numdisks; i++) {
883 if (! partman_go)
884 disk = disks + selected_disk;
885 else {
886 disk = disks + i;
887 already_found = 0;
888 SLIST_FOREACH(pm_i, &pm_head, l) {
889 pm_last = pm_i;
890 if (strcmp(pm_i->diskdev, disk->dd_name) == 0) {
891 already_found = 1;
892 break;
893 }
894 }
895 if (pm_i != NULL && already_found) {
896 /*
897 * We already added this device, but
898 * partitions might have changed
899 */
900 if (!pm_i->found) {
901 pm_i->found = true;
902 if (pm_i->parts == NULL) {
903 pm_i->parts =
904 partitions_read_disk(
905 pm_i->diskdev,
906 disk->dd_totsec,
907 disk->dd_no_mbr);
908 }
909 }
910 continue;
911 }
912 }
913 pm = pm_new;
914 pm->found = 1;
915 pm->ptstart = 0;
916 pm->ptsize = 0;
917 strlcpy(pm->diskdev, disk->dd_name, sizeof pm->diskdev);
918 strlcpy(pm->diskdev_descr, disk->dd_descr, sizeof pm->diskdev_descr);
919 /* Use as a default disk if the user has the sets on a local disk */
920 strlcpy(localfs_dev, disk->dd_name, sizeof localfs_dev);
921
922 /*
923 * Init disk size and geometry
924 */
925 pm->sectorsize = disk->dd_secsize;
926 pm->dlcyl = disk->dd_cyl;
927 pm->dlhead = disk->dd_head;
928 pm->dlsec = disk->dd_sec;
929 pm->dlsize = disk->dd_totsec;
930 if (pm->dlsize == 0)
931 pm->dlsize = disk->dd_cyl * disk->dd_head
932 * disk->dd_sec;
933
934 pm->parts = partitions_read_disk(pm->diskdev,
935 disk->dd_totsec, disk->dd_no_mbr);
936
937 again:
938
939 #ifdef DEBUG_VERBOSE
940 if (pm->parts) {
941 fputs("\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n", stderr);
942 dump_parts(pm->parts);
943
944 if (pm->parts->pscheme->secondary_partitions) {
945 const struct disk_partitions *sparts =
946 pm->parts->pscheme->secondary_partitions(
947 pm->parts, pm->ptstart, false);
948 if (sparts != NULL)
949 dump_parts(sparts);
950 }
951 }
952 #endif
953
954 pm->no_mbr = disk->dd_no_mbr;
955 pm->no_part = disk->dd_no_part;
956 if (!pm->no_part) {
957 pm->sectorsize = disk->dd_secsize;
958 pm->dlcyl = disk->dd_cyl;
959 pm->dlhead = disk->dd_head;
960 pm->dlsec = disk->dd_sec;
961 pm->dlsize = disk->dd_totsec;
962 if (pm->dlsize == 0)
963 pm->dlsize = disk->dd_cyl * disk->dd_head
964 * disk->dd_sec;
965
966 if (pm->parts && pm->parts->pscheme->size_limit != 0
967 && pm->dlsize > pm->parts->pscheme->size_limit
968 && ! partman_go) {
969
970 char size[5], limit[5];
971
972 humanize_number(size, sizeof(size),
973 (uint64_t)pm->dlsize * 512U,
974 "", HN_AUTOSCALE, HN_B | HN_NOSPACE
975 | HN_DECIMAL);
976
977 humanize_number(limit, sizeof(limit),
978 (uint64_t)pm->parts->pscheme->size_limit
979 * 512U,
980 "", HN_AUTOSCALE, HN_B | HN_NOSPACE
981 | HN_DECIMAL);
982
983 if (logfp)
984 fprintf(logfp,
985 "disk %s: is too big (%" PRIu64
986 " blocks, %s), will be truncated\n",
987 pm->diskdev, pm->dlsize,
988 size);
989
990 msg_display_subst(MSG_toobigdisklabel, 5,
991 pm->diskdev,
992 msg_string(pm->parts->pscheme->name),
993 msg_string(pm->parts->pscheme->short_name),
994 size, limit);
995
996 int sel = -1;
997 const char *err = NULL;
998 process_menu(MENU_convertscheme, &sel);
999 if (sel == 1) {
1000 if (!delete_scheme(pm)) {
1001 return -1;
1002 }
1003 goto again;
1004 } else if (sel == 2) {
1005 if (!convert_scheme(pm,
1006 partman_go < 0, &err)) {
1007 if (err != NULL)
1008 err_msg_win(err);
1009 return -1;
1010 }
1011 goto again;
1012 } else if (sel == 3) {
1013 return -1;
1014 }
1015 pm->dlsize = pm->parts->pscheme->size_limit;
1016 }
1017 } else {
1018 pm->sectorsize = 0;
1019 pm->dlcyl = 0;
1020 pm->dlhead = 0;
1021 pm->dlsec = 0;
1022 pm->dlsize = 0;
1023 pm->no_mbr = 1;
1024 }
1025 pm->dlcylsize = pm->dlhead * pm->dlsec;
1026
1027 if (partman_go) {
1028 pm_getrefdev(pm_new);
1029 if (SLIST_EMPTY(&pm_head) || pm_last == NULL)
1030 SLIST_INSERT_HEAD(&pm_head, pm_new, l);
1031 else
1032 SLIST_INSERT_AFTER(pm_last, pm_new, l);
1033 pm_new = malloc(sizeof (struct pm_devs));
1034 memset(pm_new, 0, sizeof *pm_new);
1035 } else
1036 /* We are not in partman and do not want to process
1037 * all devices, exit */
1038 break;
1039 }
1040
1041 return numdisks-skipped;
1042 }
1043
1044 static int
1045 sort_part_usage_by_mount(const void *a, const void *b)
1046 {
1047 const struct part_usage_info *pa = a, *pb = b;
1048
1049 /* sort all real partitions by mount point */
1050 if ((pa->instflags & PUIINST_MOUNT) &&
1051 (pb->instflags & PUIINST_MOUNT))
1052 return strcmp(pa->mount, pb->mount);
1053
1054 /* real partitions go first */
1055 if (pa->instflags & PUIINST_MOUNT)
1056 return -1;
1057 if (pb->instflags & PUIINST_MOUNT)
1058 return 1;
1059
1060 /* arbitrary order for all other partitions */
1061 if (pa->type == PT_swap)
1062 return -1;
1063 if (pb->type == PT_swap)
1064 return 1;
1065 if (pa->type < pb->type)
1066 return -1;
1067 if (pa->type > pb->type)
1068 return 1;
1069 if (pa->cur_part_id < pb->cur_part_id)
1070 return -1;
1071 if (pa->cur_part_id > pb->cur_part_id)
1072 return 1;
1073 return (uintptr_t)a < (uintptr_t)b ? -1 : 1;
1074 }
1075
1076 int
1077 make_filesystems(struct install_partition_desc *install)
1078 {
1079 int error = 0, partno = -1;
1080 char *newfs = NULL, devdev[PATH_MAX], rdev[PATH_MAX];
1081 size_t i;
1082 struct part_usage_info *ptn;
1083 struct disk_partitions *parts;
1084 const char *mnt_opts = NULL, *fsname = NULL;
1085
1086 if (pm->cur_system)
1087 return 1;
1088
1089 if (pm->no_part) {
1090 /* check if this target device already has a ffs */
1091 snprintf(rdev, sizeof rdev, _PATH_DEV "/r%s", pm->diskdev);
1092 error = fsck_preen(rdev, "ffs", true);
1093 if (error) {
1094 if (!ask_noyes(MSG_No_filesystem_newfs))
1095 return EINVAL;
1096 error = run_program(RUN_DISPLAY | RUN_PROGRESS,
1097 "/sbin/newfs -V2 -O2 %s", rdev);
1098 }
1099
1100 md_pre_mount(install, 0);
1101
1102 make_target_dir("/");
1103
1104 snprintf(devdev, sizeof devdev, _PATH_DEV "%s", pm->diskdev);
1105 error = target_mount_do("-o async", devdev, "/");
1106 if (error) {
1107 msg_display_subst(MSG_mountfail, 2, devdev, "/");
1108 hit_enter_to_continue(NULL, NULL);
1109 }
1110
1111 return error;
1112 }
1113
1114 /* Making new file systems and mounting them */
1115
1116 /* sort to ensure /usr/local is mounted after /usr (etc) */
1117 qsort(install->infos, install->num, sizeof(*install->infos),
1118 sort_part_usage_by_mount);
1119
1120 for (i = 0; i < install->num; i++) {
1121 /*
1122 * Newfs all file systems mareked as needing this.
1123 * Mount the ones that have a mountpoint in the target.
1124 */
1125 ptn = &install->infos[i];
1126 parts = ptn->parts;
1127 newfs = NULL;
1128 fsname = NULL;
1129
1130 if (ptn->size == 0 || parts == NULL|| ptn->type == PT_swap)
1131 continue;
1132
1133 if (parts->pscheme->get_part_device(parts, ptn->cur_part_id,
1134 devdev, sizeof devdev, &partno, parent_device_only, false,
1135 false) && is_active_rootpart(devdev, partno))
1136 continue;
1137
1138 parts->pscheme->get_part_device(parts, ptn->cur_part_id,
1139 devdev, sizeof devdev, &partno, plain_name, true, true);
1140
1141 parts->pscheme->get_part_device(parts, ptn->cur_part_id,
1142 rdev, sizeof rdev, &partno, raw_dev_name, true, true);
1143
1144 switch (ptn->fs_type) {
1145 case FS_APPLEUFS:
1146 asprintf(&newfs, "/sbin/newfs");
1147 mnt_opts = "-tffs -o async";
1148 fsname = "ffs";
1149 break;
1150 case FS_BSDFFS:
1151 asprintf(&newfs,
1152 "/sbin/newfs -V2 -O %d",
1153 ptn->fs_version == 2 ? 2 : 1);
1154 if (ptn->mountflags & PUIMNT_LOG)
1155 mnt_opts = "-tffs -o log";
1156 else
1157 mnt_opts = "-tffs -o async";
1158 fsname = "ffs";
1159 break;
1160 case FS_BSDLFS:
1161 asprintf(&newfs, "/sbin/newfs_lfs");
1162 mnt_opts = "-tlfs";
1163 fsname = "lfs";
1164 break;
1165 case FS_MSDOS:
1166 asprintf(&newfs, "/sbin/newfs_msdos");
1167 mnt_opts = "-tmsdos";
1168 fsname = "msdos";
1169 break;
1170 case FS_SYSVBFS:
1171 asprintf(&newfs, "/sbin/newfs_sysvbfs");
1172 mnt_opts = "-tsysvbfs";
1173 fsname = "sysvbfs";
1174 break;
1175 case FS_V7:
1176 asprintf(&newfs, "/sbin/newfs_v7fs");
1177 mnt_opts = "-tv7fs";
1178 fsname = "v7fs";
1179 break;
1180 case FS_EX2FS:
1181 asprintf(&newfs,
1182 ptn->fs_version == 1 ?
1183 "/sbin/newfs_ext2fs -O 0" :
1184 "/sbin/newfs_ext2fs");
1185 mnt_opts = "-text2fs";
1186 fsname = "ext2fs";
1187 break;
1188 }
1189 if ((ptn->instflags & PUIINST_NEWFS) && newfs != NULL) {
1190 if (ptn->fs_type == FS_MSDOS) {
1191 /* newfs only if mount fails */
1192 if (run_program(RUN_SILENT | RUN_ERROR_OK,
1193 "mount -rt msdos %s /mnt2", devdev) != 0)
1194 error = run_program(
1195 RUN_DISPLAY | RUN_PROGRESS,
1196 "%s %s",
1197 newfs, rdev);
1198 else {
1199 run_program(RUN_SILENT | RUN_ERROR_OK,
1200 "umount /mnt2");
1201 error = 0;
1202 }
1203 } else {
1204 error = run_program(RUN_DISPLAY | RUN_PROGRESS,
1205 "%s %s", newfs, rdev);
1206 }
1207 } else if ((ptn->instflags & (PUIINST_MOUNT|PUIINST_BOOT))
1208 && fsname != NULL) {
1209 /* We'd better check it isn't dirty */
1210 error = fsck_preen(devdev, fsname, false);
1211 }
1212 free(newfs);
1213 if (error != 0)
1214 return error;
1215
1216 ptn->instflags &= ~PUIINST_NEWFS;
1217 md_pre_mount(install, i);
1218
1219 if (partman_go == 0 && (ptn->instflags & PUIINST_MOUNT) &&
1220 mnt_opts != NULL) {
1221 make_target_dir(ptn->mount);
1222 error = target_mount_do(mnt_opts, devdev,
1223 ptn->mount);
1224 if (error) {
1225 msg_display_subst(MSG_mountfail, 2, devdev,
1226 ptn->mount);
1227 hit_enter_to_continue(NULL, NULL);
1228 return error;
1229 }
1230 }
1231 }
1232 return 0;
1233 }
1234
1235 int
1236 make_fstab(struct install_partition_desc *install)
1237 {
1238 FILE *f;
1239 const char *dump_dev = NULL;
1240 const char *dev;
1241 char dev_buf[PATH_MAX], swap_dev[PATH_MAX];
1242
1243 if (pm->cur_system)
1244 return 1;
1245
1246 swap_dev[0] = 0;
1247
1248 /* Create the fstab. */
1249 make_target_dir("/etc");
1250 f = target_fopen("/etc/fstab", "w");
1251 scripting_fprintf(NULL, "cat <<EOF >%s/etc/fstab\n", target_prefix());
1252
1253 if (logfp)
1254 (void)fprintf(logfp,
1255 "Making %s/etc/fstab (%s).\n", target_prefix(),
1256 pm->diskdev);
1257
1258 if (f == NULL) {
1259 msg_display(MSG_createfstab);
1260 if (logfp)
1261 (void)fprintf(logfp, "Failed to make /etc/fstab!\n");
1262 hit_enter_to_continue(NULL, NULL);
1263 #ifndef DEBUG
1264 return 1;
1265 #else
1266 f = stdout;
1267 #endif
1268 }
1269
1270 scripting_fprintf(f, "# NetBSD /etc/fstab\n# See /usr/share/examples/"
1271 "fstab/ for more examples.\n");
1272
1273 if (pm->no_part) {
1274 /* single dk? target */
1275 char buf[200], parent[200], swap[200], *prompt;
1276 int res;
1277
1278 if (!get_name_and_parent(pm->diskdev, buf, parent))
1279 goto done_with_disks;
1280 scripting_fprintf(f, NAME_PREFIX "%s\t/\tffs\trw\t\t1 1\n",
1281 buf);
1282 if (!find_swap_part_on(parent, swap))
1283 goto done_with_disks;
1284 const char *args[] = { parent, swap };
1285 prompt = str_arg_subst(msg_string(MSG_Auto_add_swap_part),
1286 __arraycount(args), args);
1287 res = ask_yesno(prompt);
1288 free(prompt);
1289 if (res)
1290 scripting_fprintf(f, NAME_PREFIX "%s\tnone"
1291 "\tswap\tsw,dp\t\t0 0\n", swap);
1292 goto done_with_disks;
1293 }
1294
1295 for (size_t i = 0; i < install->num; i++) {
1296
1297 const struct part_usage_info *ptn = &install->infos[i];
1298
1299 if (ptn->size == 0)
1300 continue;
1301
1302 bool is_tmpfs = ptn->type == PT_root &&
1303 ptn->fs_type == FS_TMPFS &&
1304 (ptn->flags & PUIFLG_JUST_MOUNTPOINT);
1305
1306 if (!is_tmpfs && ptn->type != PT_swap &&
1307 (ptn->instflags & PUIINST_MOUNT) == 0)
1308 continue;
1309
1310 const char *s = "";
1311 const char *mp = ptn->mount;
1312 const char *fstype = "ffs";
1313 int fsck_pass = 0, dump_freq = 0;
1314
1315 if (ptn->parts->pscheme->get_part_device(ptn->parts,
1316 ptn->cur_part_id, dev_buf, sizeof dev_buf, NULL,
1317 logical_name, true, false))
1318 dev = dev_buf;
1319 else
1320 dev = NULL;
1321
1322 if (!*mp) {
1323 /*
1324 * No mount point specified, comment out line and
1325 * use /mnt as a placeholder for the mount point.
1326 */
1327 s = "# ";
1328 mp = "/mnt";
1329 }
1330
1331 switch (ptn->fs_type) {
1332 case FS_UNUSED:
1333 continue;
1334 case FS_BSDLFS:
1335 /* If there is no LFS, just comment it out. */
1336 if (!check_lfs_progs())
1337 s = "# ";
1338 fstype = "lfs";
1339 /* FALLTHROUGH */
1340 case FS_BSDFFS:
1341 fsck_pass = (strcmp(mp, "/") == 0) ? 1 : 2;
1342 dump_freq = 1;
1343 break;
1344 case FS_MSDOS:
1345 fstype = "msdos";
1346 break;
1347 case FS_SWAP:
1348 if (swap_dev[0] == 0) {
1349 strncpy(swap_dev, dev, sizeof swap_dev);
1350 dump_dev = ",dp";
1351 } else {
1352 dump_dev = "";
1353 }
1354 scripting_fprintf(f, "%s\t\tnone\tswap\tsw%s\t\t 0 0\n",
1355 dev, dump_dev);
1356 continue;
1357 #ifdef HAVE_TMPFS
1358 case FS_TMPFS:
1359 if (ptn->size < 0)
1360 scripting_fprintf(f,
1361 "tmpfs\t\t/tmp\ttmpfs\trw,-m=1777,"
1362 "-s=ram%%%" PRIu64 "\n", -ptn->size);
1363 else
1364 scripting_fprintf(f,
1365 "tmpfs\t\t/tmp\ttmpfs\trw,-m=1777,"
1366 "-s=%" PRIu64 "M\n", ptn->size);
1367 continue;
1368 #else
1369 case FS_MFS:
1370 if (swap_dev[0] != 0)
1371 scripting_fprintf(f,
1372 "%s\t\t/tmp\tmfs\trw,-s=%"
1373 PRIu64 "\n", swap_dev, ptn->size);
1374 else
1375 scripting_fprintf(f,
1376 "swap\t\t/tmp\tmfs\trw,-s=%"
1377 PRIu64 "\n", ptn->size);
1378 continue;
1379 #endif
1380 case FS_SYSVBFS:
1381 fstype = "sysvbfs";
1382 make_target_dir("/stand");
1383 break;
1384 default:
1385 fstype = "???";
1386 s = "# ";
1387 break;
1388 }
1389 /* The code that remounts root rw doesn't check the partition */
1390 if (strcmp(mp, "/") == 0 &&
1391 (ptn->instflags & PUIINST_MOUNT) == 0)
1392 s = "# ";
1393
1394 scripting_fprintf(f,
1395 "%s%s\t\t%s\t%s\trw%s%s%s%s%s%s%s%s\t\t %d %d\n",
1396 s, dev, mp, fstype,
1397 ptn->mountflags & PUIMNT_LOG ? ",log" : "",
1398 ptn->mountflags & PUIMNT_NOAUTO ? ",noauto" : "",
1399 ptn->mountflags & PUIMNT_ASYNC ? ",async" : "",
1400 ptn->mountflags & PUIMNT_NOATIME ? ",noatime" : "",
1401 ptn->mountflags & PUIMNT_NODEV ? ",nodev" : "",
1402 ptn->mountflags & PUIMNT_NODEVMTIME ? ",nodevmtime" : "",
1403 ptn->mountflags & PUIMNT_NOEXEC ? ",noexec" : "",
1404 ptn->mountflags & PUIMNT_NOSUID ? ",nosuid" : "",
1405 dump_freq, fsck_pass);
1406 }
1407
1408 done_with_disks:
1409 if (cdrom_dev[0] == 0)
1410 get_default_cdrom(cdrom_dev, sizeof(cdrom_dev));
1411
1412 /* Add /kern, /proc and /dev/pts to fstab and make mountpoint. */
1413 scripting_fprintf(f, "kernfs\t\t/kern\tkernfs\trw\n");
1414 scripting_fprintf(f, "ptyfs\t\t/dev/pts\tptyfs\trw\n");
1415 scripting_fprintf(f, "procfs\t\t/proc\tprocfs\trw\n");
1416 scripting_fprintf(f, "/dev/%s\t\t/cdrom\tcd9660\tro,noauto\n",
1417 cdrom_dev);
1418 scripting_fprintf(f, "%stmpfs\t\t/var/shm\ttmpfs\trw,-m1777,-sram%%25\n",
1419 tmpfs_on_var_shm() ? "" : "#");
1420 make_target_dir("/kern");
1421 make_target_dir("/proc");
1422 make_target_dir("/dev/pts");
1423 make_target_dir("/cdrom");
1424 make_target_dir("/var/shm");
1425
1426 scripting_fprintf(NULL, "EOF\n");
1427
1428 fclose(f);
1429 fflush(NULL);
1430 return 0;
1431 }
1432
1433 static bool
1434 find_part_by_name(const char *name, struct disk_partitions **parts,
1435 part_id *pno)
1436 {
1437 struct pm_devs *i;
1438 struct disk_partitions *ps;
1439 part_id id;
1440 struct disk_desc disks[MAX_DISKS];
1441 int n, cnt;
1442
1443 if (SLIST_EMPTY(&pm_head)) {
1444 /*
1445 * List has not been filled, only "pm" is valid - check
1446 * that first.
1447 */
1448 if (pm->parts->pscheme->find_by_name != NULL) {
1449 id = pm->parts->pscheme->find_by_name(pm->parts, name);
1450 if (id != NO_PART) {
1451 *pno = id;
1452 *parts = pm->parts;
1453 return true;
1454 }
1455 }
1456 /*
1457 * Not that easy - check all other disks
1458 */
1459 cnt = get_disks(disks, false);
1460 for (n = 0; n < cnt; n++) {
1461 if (strcmp(disks[n].dd_name, pm->diskdev) == 0)
1462 continue;
1463 ps = partitions_read_disk(disks[n].dd_name,
1464 disks[n].dd_totsec, disks[n].dd_no_mbr);
1465 if (ps == NULL)
1466 continue;
1467 if (ps->pscheme->find_by_name == NULL)
1468 continue;
1469 id = ps->pscheme->find_by_name(ps, name);
1470 if (id != NO_PART) {
1471 *pno = id;
1472 *parts = ps;
1473 return true; /* XXX this leaks memory */
1474 }
1475 ps->pscheme->free(ps);
1476 }
1477 } else {
1478 SLIST_FOREACH(i, &pm_head, l) {
1479 if (i->parts == NULL)
1480 continue;
1481 if (i->parts->pscheme->find_by_name == NULL)
1482 continue;
1483 id = i->parts->pscheme->find_by_name(i->parts, name);
1484 if (id == NO_PART)
1485 continue;
1486 *pno = id;
1487 *parts = i->parts;
1488 return true;
1489 }
1490 }
1491
1492 *pno = NO_PART;
1493 *parts = NULL;
1494 return false;
1495 }
1496
1497 static int
1498 /*ARGSUSED*/
1499 process_found_fs(struct data *list, size_t num, const struct lookfor *item,
1500 bool with_fsck)
1501 {
1502 int error;
1503 char rdev[PATH_MAX], dev[PATH_MAX],
1504 options[STRSIZE], tmp[STRSIZE], *op, *last;
1505 const char *fsname = (const char*)item->var;
1506 part_id pno;
1507 struct disk_partitions *parts;
1508 size_t len;
1509 bool first, is_root;
1510
1511 if (num < 2 || strstr(list[2].u.s_val, "noauto") != NULL)
1512 return 0;
1513
1514 is_root = strcmp(list[1].u.s_val, "/") == 0;
1515 if (is_root && target_mounted())
1516 return 0;
1517
1518 if (strcmp(item->head, name_prefix) == 0) {
1519 /* this fstab entry uses NAME= syntax */
1520 if (!find_part_by_name(list[0].u.s_val,
1521 &parts, &pno) || parts == NULL || pno == NO_PART)
1522 return 0;
1523 parts->pscheme->get_part_device(parts, pno,
1524 dev, sizeof(dev), NULL, plain_name, true, true);
1525 parts->pscheme->get_part_device(parts, pno,
1526 rdev, sizeof(rdev), NULL, raw_dev_name, true, true);
1527 } else {
1528 /* this fstab entry uses the plain device name */
1529 if (is_root) {
1530 /*
1531 * PR 54480: we can not use the current device name
1532 * as it might be different from the real environment.
1533 * This is an abuse of the functionality, but it used
1534 * to work before (and still does work if only a single
1535 * target disk is involved).
1536 * Use the device name from the current "pm" instead.
1537 */
1538 strcpy(rdev, "/dev/r");
1539 strlcat(rdev, pm->diskdev, sizeof(rdev));
1540 strcpy(dev, "/dev/");
1541 strlcat(dev, pm->diskdev, sizeof(dev));
1542 /* copy over the partition letter, if any */
1543 len = strlen(list[0].u.s_val);
1544 if (list[0].u.s_val[len-1] >= 'a' &&
1545 list[0].u.s_val[len-1] <=
1546 ('a' + getmaxpartitions())) {
1547 strlcat(rdev, &list[0].u.s_val[len-1],
1548 sizeof(rdev));
1549 strlcat(dev, &list[0].u.s_val[len-1],
1550 sizeof(dev));
1551 }
1552 } else {
1553 strcpy(rdev, "/dev/r");
1554 strlcat(rdev, list[0].u.s_val, sizeof(rdev));
1555 strcpy(dev, "/dev/");
1556 strlcat(dev, list[0].u.s_val, sizeof(dev));
1557 }
1558 }
1559
1560 if (with_fsck) {
1561 /* need the raw device for fsck_preen */
1562 error = fsck_preen(rdev, fsname, false);
1563 if (error != 0)
1564 return error;
1565 }
1566
1567 /* add mount option for fs type */
1568 strcpy(options, "-t ");
1569 strlcat(options, fsname, sizeof(options));
1570
1571 /* extract mount options from fstab */
1572 strlcpy(tmp, list[2].u.s_val, sizeof(tmp));
1573 for (first = true, op = strtok_r(tmp, ",", &last); op != NULL;
1574 op = strtok_r(NULL, ",", &last)) {
1575 if (strcmp(op, FSTAB_RW) == 0 ||
1576 strcmp(op, FSTAB_RQ) == 0 ||
1577 strcmp(op, FSTAB_RO) == 0 ||
1578 strcmp(op, FSTAB_SW) == 0 ||
1579 strcmp(op, FSTAB_DP) == 0 ||
1580 strcmp(op, FSTAB_XX) == 0)
1581 continue;
1582 if (first) {
1583 first = false;
1584 strlcat(options, " -o ", sizeof(options));
1585 } else {
1586 strlcat(options, ",", sizeof(options));
1587 }
1588 strlcat(options, op, sizeof(options));
1589 }
1590
1591 error = target_mount(options, dev, list[1].u.s_val);
1592 if (error != 0) {
1593 msg_fmt_display(MSG_mount_failed, "%s", list[0].u.s_val);
1594 if (!ask_noyes(NULL))
1595 return error;
1596 }
1597 return 0;
1598 }
1599
1600 static int
1601 /*ARGSUSED*/
1602 found_fs(struct data *list, size_t num, const struct lookfor *item)
1603 {
1604 return process_found_fs(list, num, item, true);
1605 }
1606
1607 static int
1608 /*ARGSUSED*/
1609 found_fs_nocheck(struct data *list, size_t num, const struct lookfor *item)
1610 {
1611 return process_found_fs(list, num, item, false);
1612 }
1613
1614 /*
1615 * Do an fsck. On failure, inform the user by showing a warning
1616 * message and doing menu_ok() before proceeding.
1617 * The device passed should be the full qualified path to raw disk
1618 * (e.g. /dev/rwd0a).
1619 * Returns 0 on success, or nonzero return code from fsck() on failure.
1620 */
1621 static int
1622 fsck_preen(const char *disk, const char *fsname, bool silent)
1623 {
1624 char *prog, err[12];
1625 int error;
1626
1627 if (fsname == NULL)
1628 return 0;
1629 /* first, check if fsck program exists, if not, assume ok */
1630 asprintf(&prog, "/sbin/fsck_%s", fsname);
1631 if (prog == NULL)
1632 return 0;
1633 if (access(prog, X_OK) != 0) {
1634 free(prog);
1635 return 0;
1636 }
1637 if (!strcmp(fsname,"ffs"))
1638 fixsb(prog, disk);
1639 error = run_program(silent? RUN_SILENT|RUN_ERROR_OK : 0, "%s -p -q %s", prog, disk);
1640 free(prog);
1641 if (error != 0 && !silent) {
1642 sprintf(err, "%d", error);
1643 msg_display_subst(msg_string(MSG_badfs), 3,
1644 disk, fsname, err);
1645 if (ask_noyes(NULL))
1646 error = 0;
1647 /* XXX at this point maybe we should run a full fsck? */
1648 }
1649 return error;
1650 }
1651
1652 /* This performs the same function as the etc/rc.d/fixsb script
1653 * which attempts to correct problems with ffs1 filesystems
1654 * which may have been introduced by booting a netbsd-current kernel
1655 * from between April of 2003 and January 2004. For more information
1656 * This script was developed as a response to NetBSD pr install/25138
1657 * Additional prs regarding the original issue include:
1658 * bin/17910 kern/21283 kern/21404 port-macppc/23925 port-macppc/23926
1659 */
1660 static void
1661 fixsb(const char *prog, const char *disk)
1662 {
1663 int fd;
1664 int rval;
1665 union {
1666 struct fs fs;
1667 char buf[SBLOCKSIZE];
1668 } sblk;
1669 struct fs *fs = &sblk.fs;
1670
1671 fd = open(disk, O_RDONLY);
1672 if (fd == -1)
1673 return;
1674
1675 /* Read ffsv1 main superblock */
1676 rval = pread(fd, sblk.buf, sizeof sblk.buf, SBLOCK_UFS1);
1677 close(fd);
1678 if (rval != sizeof sblk.buf)
1679 return;
1680
1681 if (fs->fs_magic != FS_UFS1_MAGIC &&
1682 fs->fs_magic != FS_UFS1_MAGIC_SWAPPED)
1683 /* Not FFSv1 */
1684 return;
1685 if (fs->fs_old_flags & FS_FLAGS_UPDATED)
1686 /* properly updated fslevel 4 */
1687 return;
1688 if (fs->fs_bsize != fs->fs_maxbsize)
1689 /* not messed up */
1690 return;
1691
1692 /*
1693 * OK we have a munged fs, first 'upgrade' to fslevel 4,
1694 * We specify -b16 in order to stop fsck bleating that the
1695 * sb doesn't match the first alternate.
1696 */
1697 run_program(RUN_DISPLAY | RUN_PROGRESS,
1698 "%s -p -b 16 -c 4 %s", prog, disk);
1699 /* Then downgrade to fslevel 3 */
1700 run_program(RUN_DISPLAY | RUN_PROGRESS,
1701 "%s -p -c 3 %s", prog, disk);
1702 }
1703
1704 /*
1705 * fsck and mount the root partition.
1706 * devdev is the fully qualified block device name.
1707 */
1708 static int
1709 mount_root(const char *devdev, bool first, bool writeable,
1710 struct install_partition_desc *install)
1711 {
1712 int error;
1713
1714 error = fsck_preen(devdev, "ffs", false);
1715 if (error != 0)
1716 return error;
1717
1718 if (first)
1719 md_pre_mount(install, 0);
1720
1721 /* Mount devdev on target's "".
1722 * If we pass "" as mount-on, Prefixing will DTRT.
1723 * for now, use no options.
1724 * XXX consider -o remount in case target root is
1725 * current root, still readonly from single-user?
1726 */
1727 return target_mount(writeable? "" : "-r", devdev, "");
1728 }
1729
1730 /* Get information on the file systems mounted from the root filesystem.
1731 * Offer to convert them into 4.4BSD inodes if they are not 4.4BSD
1732 * inodes. Fsck them. Mount them.
1733 */
1734
1735 int
1736 mount_disks(struct install_partition_desc *install)
1737 {
1738 char *fstab;
1739 int fstabsize;
1740 int error;
1741 char devdev[PATH_MAX];
1742 size_t i, num_fs_types, num_entries;
1743 struct lookfor *fstabbuf, *l;
1744
1745 if (install->cur_system)
1746 return 0;
1747
1748 /*
1749 * Check what file system tools are available and create parsers
1750 * for the corresponding fstab(5) entries - all others will be
1751 * ignored.
1752 */
1753 num_fs_types = 1; /* ffs is implicit */
1754 for (i = 0; i < __arraycount(extern_fs_with_chk); i++) {
1755 sprintf(devdev, "/sbin/newfs_%s", extern_fs_with_chk[i]);
1756 if (file_exists_p(devdev))
1757 num_fs_types++;
1758 }
1759 for (i = 0; i < __arraycount(extern_fs_newfs_only); i++) {
1760 sprintf(devdev, "/sbin/newfs_%s", extern_fs_newfs_only[i]);
1761 if (file_exists_p(devdev))
1762 num_fs_types++;
1763 }
1764 num_entries = 2 * num_fs_types + 1; /* +1 for "ufs" special case */
1765 fstabbuf = calloc(num_entries, sizeof(*fstabbuf));
1766 if (fstabbuf == NULL)
1767 return -1;
1768 l = fstabbuf;
1769 l->head = "/dev/";
1770 l->fmt = strdup("/dev/%s %s ffs %s");
1771 l->todo = "c";
1772 l->var = __UNCONST("ffs");
1773 l->func = found_fs;
1774 l++;
1775 l->head = "/dev/";
1776 l->fmt = strdup("/dev/%s %s ufs %s");
1777 l->todo = "c";
1778 l->var = __UNCONST("ffs");
1779 l->func = found_fs;
1780 l++;
1781 l->head = NAME_PREFIX;
1782 l->fmt = strdup(NAME_PREFIX "%s %s ffs %s");
1783 l->todo = "c";
1784 l->var = __UNCONST("ffs");
1785 l->func = found_fs;
1786 l++;
1787 for (i = 0; i < __arraycount(extern_fs_with_chk); i++) {
1788 sprintf(devdev, "/sbin/newfs_%s", extern_fs_with_chk[i]);
1789 if (!file_exists_p(devdev))
1790 continue;
1791 sprintf(devdev, "/dev/%%s %%s %s %%s", extern_fs_with_chk[i]);
1792 l->head = "/dev/";
1793 l->fmt = strdup(devdev);
1794 l->todo = "c";
1795 l->var = __UNCONST(extern_fs_with_chk[i]);
1796 l->func = found_fs;
1797 l++;
1798 sprintf(devdev, NAME_PREFIX "%%s %%s %s %%s",
1799 extern_fs_with_chk[i]);
1800 l->head = NAME_PREFIX;
1801 l->fmt = strdup(devdev);
1802 l->todo = "c";
1803 l->var = __UNCONST(extern_fs_with_chk[i]);
1804 l->func = found_fs;
1805 l++;
1806 }
1807 for (i = 0; i < __arraycount(extern_fs_newfs_only); i++) {
1808 sprintf(devdev, "/sbin/newfs_%s", extern_fs_newfs_only[i]);
1809 if (!file_exists_p(devdev))
1810 continue;
1811 sprintf(devdev, "/dev/%%s %%s %s %%s", extern_fs_newfs_only[i]);
1812 l->head = "/dev/";
1813 l->fmt = strdup(devdev);
1814 l->todo = "c";
1815 l->var = __UNCONST(extern_fs_newfs_only[i]);
1816 l->func = found_fs_nocheck;
1817 l++;
1818 sprintf(devdev, NAME_PREFIX "%%s %%s %s %%s",
1819 extern_fs_newfs_only[i]);
1820 l->head = NAME_PREFIX;
1821 l->fmt = strdup(devdev);
1822 l->todo = "c";
1823 l->var = __UNCONST(extern_fs_newfs_only[i]);
1824 l->func = found_fs_nocheck;
1825 l++;
1826 }
1827 assert((size_t)(l - fstabbuf) == num_entries);
1828
1829 /* First the root device. */
1830 if (target_already_root())
1831 /* avoid needing to call target_already_root() again */
1832 targetroot_mnt[0] = 0;
1833 else {
1834 for (i = 0; i < install->num; i++) {
1835 if (is_root_part_mount(install->infos[i].mount))
1836 break;
1837 }
1838
1839 if (i >= install->num) {
1840 hit_enter_to_continue(MSG_noroot, NULL);
1841 return -1;
1842 }
1843
1844 if (!install->infos[i].parts->pscheme->get_part_device(
1845 install->infos[i].parts, install->infos[i].cur_part_id,
1846 devdev, sizeof devdev, NULL, plain_name, true, true))
1847 return -1;
1848 error = mount_root(devdev, true, false, install);
1849 if (error != 0 && error != EBUSY)
1850 return -1;
1851 }
1852
1853 /* Check the target /etc/fstab exists before trying to parse it. */
1854 if (target_dir_exists_p("/etc") == 0 ||
1855 target_file_exists_p("/etc/fstab") == 0) {
1856 msg_fmt_display(MSG_noetcfstab, "%s", pm->diskdev);
1857 hit_enter_to_continue(NULL, NULL);
1858 return -1;
1859 }
1860
1861
1862 /* Get fstab entries from the target-root /etc/fstab. */
1863 fstabsize = target_collect_file(T_FILE, &fstab, "/etc/fstab");
1864 if (fstabsize < 0) {
1865 /* error ! */
1866 msg_fmt_display(MSG_badetcfstab, "%s", pm->diskdev);
1867 hit_enter_to_continue(NULL, NULL);
1868 umount_root();
1869 return -2;
1870 }
1871 /*
1872 * We unmount the read-only root again, so we can mount it
1873 * with proper options from /etc/fstab
1874 */
1875 umount_root();
1876
1877 /*
1878 * Now do all entries in /etc/fstab and mount them if required
1879 */
1880 error = walk(fstab, (size_t)fstabsize, fstabbuf, num_entries);
1881 free(fstab);
1882 for (i = 0; i < num_entries; i++)
1883 free(__UNCONST(fstabbuf[i].fmt));
1884 free(fstabbuf);
1885
1886 return error;
1887 }
1888
1889 int
1890 set_swap_if_low_ram(struct install_partition_desc *install)
1891 {
1892 if (get_ramsize() <= 32)
1893 return set_swap(install);
1894 return 0;
1895 }
1896
1897 int
1898 set_swap(struct install_partition_desc *install)
1899 {
1900 size_t i;
1901 char dev_buf[PATH_MAX];
1902 int rval;
1903
1904 for (i = 0; i < install->num; i++) {
1905 if (install->infos[i].type == PT_swap)
1906 break;
1907 }
1908 if (i >= install->num)
1909 return 0;
1910
1911 if (!install->infos[i].parts->pscheme->get_part_device(
1912 install->infos[i].parts, install->infos[i].cur_part_id, dev_buf,
1913 sizeof dev_buf, NULL, plain_name, true, true))
1914 return -1;
1915
1916 rval = swapctl(SWAP_ON, dev_buf, 0);
1917 if (rval != 0)
1918 return -1;
1919
1920 return 0;
1921 }
1922
1923 int
1924 check_swap(const char *disk, int remove_swap)
1925 {
1926 struct swapent *swap;
1927 char *cp;
1928 int nswap;
1929 int l;
1930 int rval = 0;
1931
1932 nswap = swapctl(SWAP_NSWAP, 0, 0);
1933 if (nswap <= 0)
1934 return 0;
1935
1936 swap = malloc(nswap * sizeof *swap);
1937 if (swap == NULL)
1938 return -1;
1939
1940 nswap = swapctl(SWAP_STATS, swap, nswap);
1941 if (nswap < 0)
1942 goto bad_swap;
1943
1944 l = strlen(disk);
1945 while (--nswap >= 0) {
1946 /* Should we check the se_dev or se_path? */
1947 cp = swap[nswap].se_path;
1948 if (memcmp(cp, "/dev/", 5) != 0)
1949 continue;
1950 if (memcmp(cp + 5, disk, l) != 0)
1951 continue;
1952 if (!isalpha(*(unsigned char *)(cp + 5 + l)))
1953 continue;
1954 if (cp[5 + l + 1] != 0)
1955 continue;
1956 /* ok path looks like it is for this device */
1957 if (!remove_swap) {
1958 /* count active swap areas */
1959 rval++;
1960 continue;
1961 }
1962 if (swapctl(SWAP_OFF, cp, 0) == -1)
1963 rval = -1;
1964 }
1965
1966 done:
1967 free(swap);
1968 return rval;
1969
1970 bad_swap:
1971 rval = -1;
1972 goto done;
1973 }
1974
1975 #ifdef HAVE_BOOTXX_xFS
1976 char *
1977 bootxx_name(struct install_partition_desc *install)
1978 {
1979 size_t i;
1980 int fstype = -1;
1981 const char *bootxxname;
1982 char *bootxx;
1983
1984 /* find a partition to be mounted as / */
1985 for (i = 0; i < install->num; i++) {
1986 if ((install->infos[i].instflags & PUIINST_MOUNT)
1987 && strcmp(install->infos[i].mount, "/") == 0) {
1988 fstype = install->infos[i].fs_type;
1989 break;
1990 }
1991 }
1992 if (fstype < 0) {
1993 /* not found? take first root type partition instead */
1994 for (i = 0; i < install->num; i++) {
1995 if (install->infos[i].type == PT_root) {
1996 fstype = install->infos[i].fs_type;
1997 break;
1998 }
1999 }
2000 }
2001
2002 /* check we have boot code for the root partition type */
2003 switch (fstype) {
2004 #if defined(BOOTXX_FFSV1) || defined(BOOTXX_FFSV2)
2005 case FS_BSDFFS:
2006 if (install->infos[0].fs_version == 2) {
2007 #ifdef BOOTXX_FFSV2
2008 bootxxname = BOOTXX_FFSV2;
2009 #else
2010 bootxxname = NULL;
2011 #endif
2012 } else {
2013 #ifdef BOOTXX_FFSV1
2014 bootxxname = BOOTXX_FFSV1;
2015 #else
2016 bootxxname = NULL;
2017 #endif
2018 }
2019 break;
2020 #endif
2021 #ifdef BOOTXX_LFSV2
2022 case FS_BSDLFS:
2023 bootxxname = BOOTXX_LFSV2;
2024 break;
2025 #endif
2026 default:
2027 bootxxname = NULL;
2028 break;
2029 }
2030
2031 if (bootxxname == NULL)
2032 return NULL;
2033
2034 asprintf(&bootxx, "%s/%s", BOOTXXDIR, bootxxname);
2035 return bootxx;
2036 }
2037 #endif
2038
2039 /* from dkctl.c */
2040 static int
2041 get_dkwedges_sort(const void *a, const void *b)
2042 {
2043 const struct dkwedge_info *dkwa = a, *dkwb = b;
2044 const daddr_t oa = dkwa->dkw_offset, ob = dkwb->dkw_offset;
2045 return (oa < ob) ? -1 : (oa > ob) ? 1 : 0;
2046 }
2047
2048 int
2049 get_dkwedges(struct dkwedge_info **dkw, const char *diskdev)
2050 {
2051 struct dkwedge_list dkwl;
2052
2053 *dkw = NULL;
2054 if (!get_wedge_list(diskdev, &dkwl))
2055 return -1;
2056
2057 if (dkwl.dkwl_nwedges > 0 && *dkw != NULL) {
2058 qsort(*dkw, dkwl.dkwl_nwedges, sizeof(**dkw),
2059 get_dkwedges_sort);
2060 }
2061
2062 return dkwl.dkwl_nwedges;
2063 }
2064
2065 #ifndef NO_CLONES
2066 /*
2067 * Helper structures used in the partition select menu
2068 */
2069 struct single_partition {
2070 struct disk_partitions *parts;
2071 part_id id;
2072 };
2073
2074 struct sel_menu_data {
2075 struct single_partition *partitions;
2076 struct selected_partition result;
2077 };
2078
2079 static int
2080 select_single_part(menudesc *m, void *arg)
2081 {
2082 struct sel_menu_data *data = arg;
2083
2084 data->result.parts = data->partitions[m->cursel].parts;
2085 data->result.id = data->partitions[m->cursel].id;
2086
2087 return 1;
2088 }
2089
2090 static void
2091 display_single_part(menudesc *m, int opt, void *arg)
2092 {
2093 const struct sel_menu_data *data = arg;
2094 struct disk_part_info info;
2095 struct disk_partitions *parts = data->partitions[opt].parts;
2096 part_id id = data->partitions[opt].id;
2097 int l;
2098 const char *desc = NULL;
2099 char line[MENUSTRSIZE*2];
2100
2101 if (!parts->pscheme->get_part_info(parts, id, &info))
2102 return;
2103
2104 if (parts->pscheme->other_partition_identifier != NULL)
2105 desc = parts->pscheme->other_partition_identifier(
2106 parts, id);
2107
2108 daddr_t start = info.start / sizemult;
2109 daddr_t size = info.size / sizemult;
2110 snprintf(line, sizeof line, "%s [%" PRIu64 " @ %" PRIu64 "]",
2111 parts->disk, size, start);
2112
2113 if (info.nat_type != NULL) {
2114 strlcat(line, " ", sizeof line);
2115 strlcat(line, info.nat_type->description, sizeof line);
2116 }
2117
2118 if (desc != NULL) {
2119 strlcat(line, ": ", sizeof line);
2120 strlcat(line, desc, sizeof line);
2121 }
2122
2123 l = strlen(line);
2124 if (l >= (m->w))
2125 strcpy(line + (m->w-3), "...");
2126 wprintw(m->mw, "%s", line);
2127 }
2128
2129 /*
2130 * is the given "test" partitions set used in the selected set?
2131 */
2132 static bool
2133 selection_has_parts(struct selected_partitions *sel,
2134 const struct disk_partitions *test)
2135 {
2136 size_t i;
2137
2138 for (i = 0; i < sel->num_sel; i++) {
2139 if (sel->selection[i].parts == test)
2140 return true;
2141 }
2142 return false;
2143 }
2144
2145 /*
2146 * is the given "test" partition in the selected set?
2147 */
2148 static bool
2149 selection_has_partition(struct selected_partitions *sel,
2150 const struct disk_partitions *test, part_id test_id)
2151 {
2152 size_t i;
2153
2154 for (i = 0; i < sel->num_sel; i++) {
2155 if (sel->selection[i].parts == test &&
2156 sel->selection[i].id == test_id)
2157 return true;
2158 }
2159 return false;
2160 }
2161
2162 /*
2163 * let the user select a partition, optionally skipping all partitions
2164 * on the "ignore" device
2165 */
2166 static bool
2167 add_select_partition(struct selected_partitions *res,
2168 struct disk_partitions **all_parts, size_t all_cnt)
2169 {
2170 struct disk_partitions *ps;
2171 struct disk_part_info info;
2172 part_id id;
2173 struct single_partition *partitions, *pp;
2174 struct menu_ent *part_menu_opts, *menup;
2175 size_t n, part_cnt;
2176 int sel_menu;
2177
2178 /*
2179 * count how many items our menu will have
2180 */
2181 part_cnt = 0;
2182 for (n = 0; n < all_cnt; n++) {
2183 ps = all_parts[n];
2184 for (id = 0; id < ps->num_part; id++) {
2185 if (selection_has_partition(res, ps, id))
2186 continue;
2187 if (!ps->pscheme->get_part_info(ps, id, &info))
2188 continue;
2189 if (info.flags & (PTI_SEC_CONTAINER|PTI_WHOLE_DISK|
2190 PTI_PSCHEME_INTERNAL|PTI_RAW_PART))
2191 continue;
2192 part_cnt++;
2193 }
2194 }
2195
2196 /*
2197 * create a menu from this and let the user
2198 * select one partition
2199 */
2200 part_menu_opts = NULL;
2201 partitions = calloc(part_cnt, sizeof *partitions);
2202 if (partitions == NULL)
2203 goto done;
2204 part_menu_opts = calloc(part_cnt, sizeof *part_menu_opts);
2205 if (part_menu_opts == NULL)
2206 goto done;
2207 pp = partitions;
2208 menup = part_menu_opts;
2209 for (n = 0; n < all_cnt; n++) {
2210 ps = all_parts[n];
2211 for (id = 0; id < ps->num_part; id++) {
2212 if (selection_has_partition(res, ps, id))
2213 continue;
2214 if (!ps->pscheme->get_part_info(ps, id, &info))
2215 continue;
2216 if (info.flags & (PTI_SEC_CONTAINER|PTI_WHOLE_DISK|
2217 PTI_PSCHEME_INTERNAL|PTI_RAW_PART))
2218 continue;
2219 pp->parts = ps;
2220 pp->id = id;
2221 pp++;
2222 menup->opt_action = select_single_part;
2223 menup++;
2224 }
2225 }
2226 sel_menu = new_menu(MSG_select_foreign_part, part_menu_opts, part_cnt,
2227 3, 3, 0, 60,
2228 MC_SUBMENU | MC_SCROLL | MC_NOCLEAR,
2229 NULL, display_single_part, NULL,
2230 NULL, MSG_exit_menu_generic);
2231 if (sel_menu != -1) {
2232 struct selected_partition *newsels;
2233 struct sel_menu_data data;
2234
2235 memset(&data, 0, sizeof data);
2236 data.partitions = partitions;
2237 process_menu(sel_menu, &data);
2238 free_menu(sel_menu);
2239
2240 if (data.result.parts != NULL) {
2241 newsels = realloc(res->selection,
2242 sizeof(*res->selection)*(res->num_sel+1));
2243 if (newsels != NULL) {
2244 res->selection = newsels;
2245 newsels += res->num_sel++;
2246 newsels->parts = data.result.parts;
2247 newsels->id = data.result.id;
2248 }
2249 }
2250 }
2251
2252 /*
2253 * Final cleanup
2254 */
2255 done:
2256 free(part_menu_opts);
2257 free(partitions);
2258
2259 return res->num_sel > 0;
2260 }
2261
2262 struct part_selection_and_all_parts {
2263 struct selected_partitions *selection;
2264 struct disk_partitions **all_parts;
2265 size_t all_cnt;
2266 char *title;
2267 bool cancelled;
2268 };
2269
2270 static int
2271 toggle_clone_data(struct menudesc *m, void *arg)
2272 {
2273 struct part_selection_and_all_parts *sel = arg;
2274
2275 sel->selection->with_data = !sel->selection->with_data;
2276 return 0;
2277 }
2278
2279 static int
2280 add_another(struct menudesc *m, void *arg)
2281 {
2282 struct part_selection_and_all_parts *sel = arg;
2283
2284 add_select_partition(sel->selection, sel->all_parts, sel->all_cnt);
2285 return 0;
2286 }
2287
2288 static int
2289 cancel_clone(struct menudesc *m, void *arg)
2290 {
2291 struct part_selection_and_all_parts *sel = arg;
2292
2293 sel->cancelled = true;
2294 return 1;
2295 }
2296
2297 static void
2298 update_sel_part_title(struct part_selection_and_all_parts *sel)
2299 {
2300 struct disk_part_info info;
2301 char *buf, line[MENUSTRSIZE];
2302 size_t buf_len, i;
2303
2304 buf_len = MENUSTRSIZE * (1+sel->selection->num_sel);
2305 buf = malloc(buf_len);
2306 if (buf == NULL)
2307 return;
2308
2309 strcpy(buf, msg_string(MSG_select_source_hdr));
2310 for (i = 0; i < sel->selection->num_sel; i++) {
2311 struct selected_partition *s =
2312 &sel->selection->selection[i];
2313 if (!s->parts->pscheme->get_part_info(s->parts, s->id, &info))
2314 continue;
2315 daddr_t start = info.start / sizemult;
2316 daddr_t size = info.size / sizemult;
2317 sprintf(line, "\n %s [%" PRIu64 " @ %" PRIu64 "] ",
2318 s->parts->disk, size, start);
2319 if (info.nat_type != NULL)
2320 strlcat(line, info.nat_type->description, sizeof(line));
2321 strlcat(buf, line, buf_len);
2322 }
2323 free(sel->title);
2324 sel->title = buf;
2325 }
2326
2327 static void
2328 post_sel_part(struct menudesc *m, void *arg)
2329 {
2330 struct part_selection_and_all_parts *sel = arg;
2331
2332 if (m->mw == NULL)
2333 return;
2334 update_sel_part_title(sel);
2335 m->title = sel->title;
2336 m->h = 0;
2337 resize_menu_height(m);
2338 }
2339
2340 static void
2341 fmt_sel_part_line(struct menudesc *m, int i, void *arg)
2342 {
2343 struct part_selection_and_all_parts *sel = arg;
2344
2345 wprintw(m->mw, "%s: %s", msg_string(MSG_clone_with_data),
2346 sel->selection->with_data ?
2347 msg_string(MSG_Yes) :
2348 msg_string(MSG_No));
2349 }
2350
2351 bool
2352 select_partitions(struct selected_partitions *res,
2353 const struct disk_partitions *ignore)
2354 {
2355 struct disk_desc disks[MAX_DISKS];
2356 struct disk_partitions *ps;
2357 struct part_selection_and_all_parts data;
2358 struct pm_devs *i;
2359 size_t j;
2360 int cnt, n, m;
2361 static menu_ent men[] = {
2362 { .opt_name = MSG_select_source_add,
2363 .opt_action = add_another },
2364 { .opt_action = toggle_clone_data },
2365 { .opt_name = MSG_cancel, .opt_action = cancel_clone },
2366 };
2367
2368 memset(res, 0, sizeof *res);
2369 memset(&data, 0, sizeof data);
2370 data.selection = res;
2371
2372 /*
2373 * collect all available partition sets
2374 */
2375 data.all_cnt = 0;
2376 if (SLIST_EMPTY(&pm_head)) {
2377 cnt = get_disks(disks, false);
2378 if (cnt <= 0)
2379 return false;
2380
2381 /*
2382 * allocate two slots for each disk (primary/secondary)
2383 */
2384 data.all_parts = calloc(2*cnt, sizeof *data.all_parts);
2385 if (data.all_parts == NULL)
2386 return false;
2387
2388 for (n = 0; n < cnt; n++) {
2389 if (ignore != NULL &&
2390 strcmp(disks[n].dd_name, ignore->disk) == 0)
2391 continue;
2392
2393 ps = partitions_read_disk(disks[n].dd_name,
2394 disks[n].dd_totsec, disks[n].dd_no_mbr);
2395 if (ps == NULL)
2396 continue;
2397 data.all_parts[data.all_cnt++] = ps;
2398 ps = get_inner_parts(ps);
2399 if (ps == NULL)
2400 continue;
2401 data.all_parts[data.all_cnt++] = ps;
2402 }
2403 if (data.all_cnt > 0)
2404 res->free_parts = true;
2405 } else {
2406 cnt = 0;
2407 SLIST_FOREACH(i, &pm_head, l)
2408 cnt++;
2409
2410 data.all_parts = calloc(cnt, sizeof *data.all_parts);
2411 if (data.all_parts == NULL)
2412 return false;
2413
2414 SLIST_FOREACH(i, &pm_head, l) {
2415 if (i->parts == NULL)
2416 continue;
2417 if (i->parts == ignore)
2418 continue;
2419 data.all_parts[data.all_cnt++] = i->parts;
2420 }
2421 }
2422
2423 if (!add_select_partition(res, data.all_parts, data.all_cnt))
2424 goto fail;
2425
2426 /* loop with menu */
2427 update_sel_part_title(&data);
2428 m = new_menu(data.title, men, __arraycount(men), 3, 2, 0, 65, MC_SCROLL,
2429 post_sel_part, fmt_sel_part_line, NULL, NULL, MSG_clone_src_done);
2430 process_menu(m, &data);
2431 free(data.title);
2432 if (res->num_sel == 0)
2433 goto fail;
2434
2435 /* cleanup */
2436 if (res->free_parts) {
2437 for (j = 0; j < data.all_cnt; j++) {
2438 if (selection_has_parts(res, data.all_parts[j]))
2439 continue;
2440 if (data.all_parts[j]->parent != NULL)
2441 continue;
2442 data.all_parts[j]->pscheme->free(data.all_parts[j]);
2443 }
2444 }
2445 free(data.all_parts);
2446 return true;
2447
2448 fail:
2449 if (res->free_parts) {
2450 for (j = 0; j < data.all_cnt; j++) {
2451 if (data.all_parts[j]->parent != NULL)
2452 continue;
2453 data.all_parts[j]->pscheme->free(data.all_parts[j]);
2454 }
2455 }
2456 free(data.all_parts);
2457 return false;
2458 }
2459
2460 void
2461 free_selected_partitions(struct selected_partitions *selected)
2462 {
2463 size_t i;
2464 struct disk_partitions *parts;
2465
2466 if (!selected->free_parts)
2467 return;
2468
2469 for (i = 0; i < selected->num_sel; i++) {
2470 parts = selected->selection[i].parts;
2471
2472 /* remove from list before testing for other instances */
2473 selected->selection[i].parts = NULL;
2474
2475 /* if this is the secondary partion set, the parent owns it */
2476 if (parts->parent != NULL)
2477 continue;
2478
2479 /* only free once (we use the last one) */
2480 if (selection_has_parts(selected, parts))
2481 continue;
2482 parts->pscheme->free(parts);
2483 }
2484 free(selected->selection);
2485 }
2486
2487 daddr_t
2488 selected_parts_size(struct selected_partitions *selected)
2489 {
2490 struct disk_part_info info;
2491 size_t i;
2492 daddr_t s = 0;
2493
2494 for (i = 0; i < selected->num_sel; i++) {
2495 if (!selected->selection[i].parts->pscheme->get_part_info(
2496 selected->selection[i].parts,
2497 selected->selection[i].id, &info))
2498 continue;
2499 s += info.size;
2500 }
2501
2502 return s;
2503 }
2504
2505 int
2506 clone_target_select(menudesc *m, void *arg)
2507 {
2508 struct clone_target_menu_data *data = arg;
2509
2510 data->res = m->cursel;
2511 return 1;
2512 }
2513
2514 bool
2515 clone_partition_data(struct disk_partitions *dest_parts, part_id did,
2516 struct disk_partitions *src_parts, part_id sid)
2517 {
2518 char src_dev[MAXPATHLEN], target_dev[MAXPATHLEN];
2519
2520 if (!src_parts->pscheme->get_part_device(
2521 src_parts, sid, src_dev, sizeof src_dev, NULL,
2522 raw_dev_name, true, true))
2523 return false;
2524 if (!dest_parts->pscheme->get_part_device(
2525 dest_parts, did, target_dev, sizeof target_dev, NULL,
2526 raw_dev_name, true, true))
2527 return false;
2528
2529 return run_program(RUN_DISPLAY | RUN_PROGRESS,
2530 "progress -f %s -b 1m dd bs=1m of=%s",
2531 src_dev, target_dev) == 0;
2532 }
2533 #endif
2534
2535