disklabel.c revision 1.31 1 1.31 martin /* $NetBSD: disklabel.c,v 1.31 2020/01/20 21:26:35 martin Exp $ */
2 1.1 martin
3 1.1 martin /*
4 1.1 martin * Copyright 2018 The NetBSD Foundation, Inc.
5 1.1 martin * All rights reserved.
6 1.1 martin *
7 1.1 martin * Redistribution and use in source and binary forms, with or without
8 1.1 martin * modification, are permitted provided that the following conditions
9 1.1 martin * are met:
10 1.1 martin * 1. Redistributions of source code must retain the above copyright
11 1.1 martin * notice, this list of conditions and the following disclaimer.
12 1.1 martin * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 martin * notice, this list of conditions and the following disclaimer in the
14 1.1 martin * documentation and/or other materials provided with the distribution.
15 1.1 martin *
16 1.1 martin * THIS SOFTWARE IS PROVIDED BY PIERMONT INFORMATION SYSTEMS INC. ``AS IS''
17 1.1 martin * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 1.1 martin * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 1.1 martin * ARE DISCLAIMED. IN NO EVENT SHALL PIERMONT INFORMATION SYSTEMS INC. BE
20 1.1 martin * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
21 1.1 martin * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
22 1.1 martin * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
23 1.1 martin * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
24 1.1 martin * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
25 1.1 martin * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
26 1.1 martin * THE POSSIBILITY OF SUCH DAMAGE.
27 1.1 martin *
28 1.1 martin */
29 1.1 martin
30 1.1 martin #include "defs.h"
31 1.1 martin #include "md.h"
32 1.1 martin #include <assert.h>
33 1.1 martin #include <util.h>
34 1.1 martin #include <paths.h>
35 1.1 martin #include <sys/ioctl.h>
36 1.1 martin #include <sys/param.h>
37 1.1 martin
38 1.1 martin const struct disk_partitioning_scheme disklabel_parts;
39 1.1 martin
40 1.1 martin /*************** disklabel ******************************************/
41 1.1 martin /* a disklabel based disk_partitions interface */
42 1.1 martin struct disklabel_disk_partitions {
43 1.1 martin struct disk_partitions dp;
44 1.1 martin struct disklabel l;
45 1.1 martin daddr_t ptn_alignment;
46 1.1 martin char last_mounted[MAXPARTITIONS][MOUNTLEN];
47 1.1 martin uint fs_sub_type[MAXPARTITIONS];
48 1.1 martin };
49 1.1 martin
50 1.1 martin /*
51 1.1 martin * Maximum number of disklabel partitions the current kernel supports
52 1.1 martin */
53 1.1 martin size_t dl_maxpart;
54 1.1 martin
55 1.1 martin /* index into this arrray is the type code */
56 1.1 martin static struct part_type_desc dl_types[__arraycount(fstypenames)-1];
57 1.1 martin
58 1.1 martin struct dl_custom_ptype {
59 1.1 martin unsigned int type;
60 1.1 martin char short_desc[6], description[30];
61 1.1 martin struct part_type_desc desc;
62 1.1 martin };
63 1.1 martin struct dl_custom_ptype * dl_custom_ptypes;
64 1.1 martin size_t dl_custom_ptype_count;
65 1.1 martin
66 1.1 martin static uint8_t dl_part_type_from_generic(const struct part_type_desc*);
67 1.1 martin
68 1.1 martin static void
69 1.1 martin disklabel_init_default_alignment(struct disklabel_disk_partitions *parts,
70 1.1 martin uint track)
71 1.1 martin {
72 1.1 martin if (track == 0)
73 1.1 martin track = MEG / 512;
74 1.1 martin
75 1.1 martin if (dl_maxpart == 0)
76 1.1 martin dl_maxpart = getmaxpartitions();
77 1.1 martin
78 1.4 martin #ifdef MD_DISKLABEL_SET_ALIGN_PRE
79 1.4 martin if (MD_DISKLABEL_SET_ALIGN_PRE(parts->ptn_alignment, track))
80 1.4 martin return;
81 1.4 martin #endif
82 1.1 martin /* Use 1MB alignemnt for large (>128GB) disks */
83 1.1 martin if (parts->dp.disk_size > HUGE_DISK_SIZE) {
84 1.1 martin parts->ptn_alignment = 2048;
85 1.1 martin } else if (parts->dp.disk_size > TINY_DISK_SIZE) {
86 1.1 martin parts->ptn_alignment = 64;
87 1.1 martin } else {
88 1.1 martin parts->ptn_alignment = 1;
89 1.1 martin }
90 1.4 martin #ifdef MD_DISKLABEL_SET_ALIGN_POST
91 1.4 martin MD_DISKLABEL_SET_ALIGN_POST(parts->ptn_alignment, track);
92 1.1 martin #endif
93 1.1 martin }
94 1.1 martin
95 1.1 martin static bool
96 1.1 martin disklabel_change_geom(struct disk_partitions *arg, int ncyl, int nhead,
97 1.1 martin int nsec)
98 1.1 martin {
99 1.1 martin struct disklabel_disk_partitions *parts =
100 1.1 martin (struct disklabel_disk_partitions*)arg;
101 1.1 martin
102 1.9 martin assert(parts->l.d_secsize != 0);
103 1.9 martin assert(parts->l.d_nsectors != 0);
104 1.9 martin assert(parts->l.d_ntracks != 0);
105 1.9 martin assert(parts->l.d_ncylinders != 0);
106 1.9 martin assert(parts->l.d_secpercyl != 0);
107 1.9 martin
108 1.1 martin disklabel_init_default_alignment(parts, nhead * nsec);
109 1.1 martin if (ncyl*nhead*nsec <= TINY_DISK_SIZE)
110 1.1 martin set_default_sizemult(1);
111 1.1 martin else
112 1.1 martin set_default_sizemult(MEG/512);
113 1.9 martin
114 1.1 martin return true;
115 1.1 martin }
116 1.1 martin
117 1.30 martin static size_t
118 1.30 martin disklabel_cylinder_size(const struct disk_partitions *arg)
119 1.30 martin {
120 1.30 martin const struct disklabel_disk_partitions *parts =
121 1.30 martin (const struct disklabel_disk_partitions*)arg;
122 1.30 martin
123 1.30 martin return parts->l.d_secpercyl;
124 1.30 martin }
125 1.30 martin
126 1.31 martin static bool
127 1.31 martin disklabel_non_bootable(const char *disk)
128 1.31 martin {
129 1.31 martin
130 1.31 martin return false;
131 1.31 martin }
132 1.31 martin
133 1.1 martin static struct disk_partitions *
134 1.1 martin disklabel_parts_new(const char *dev, daddr_t start, daddr_t len,
135 1.28 martin daddr_t total_size, bool is_boot_drive, struct disk_partitions *parent)
136 1.1 martin {
137 1.1 martin struct disklabel_disk_partitions *parts;
138 1.1 martin struct disk_geom geo;
139 1.1 martin
140 1.1 martin if (!get_disk_geom(dev, &geo))
141 1.1 martin return NULL;
142 1.1 martin
143 1.1 martin parts = calloc(1, sizeof(*parts));
144 1.1 martin if (parts == NULL)
145 1.1 martin return NULL;
146 1.1 martin
147 1.1 martin if (len > disklabel_parts.size_limit)
148 1.1 martin len = disklabel_parts.size_limit;
149 1.1 martin if (total_size > disklabel_parts.size_limit)
150 1.1 martin total_size = disklabel_parts.size_limit;
151 1.1 martin
152 1.1 martin parts->l.d_ncylinders = geo.dg_ncylinders;
153 1.1 martin parts->l.d_ntracks = geo.dg_ntracks;
154 1.1 martin parts->l.d_nsectors = geo.dg_nsectors;
155 1.1 martin parts->l.d_secsize = geo.dg_secsize;
156 1.1 martin parts->l.d_secpercyl = geo.dg_nsectors * geo.dg_ntracks;
157 1.1 martin
158 1.1 martin parts->dp.pscheme = &disklabel_parts;
159 1.15 martin parts->dp.disk = strdup(dev);
160 1.1 martin parts->dp.disk_start = start;
161 1.1 martin parts->dp.disk_size = parts->dp.free_space = len;
162 1.1 martin disklabel_init_default_alignment(parts, parts->l.d_secpercyl);
163 1.28 martin parts->dp.parent = parent;
164 1.1 martin
165 1.1 martin strncpy(parts->l.d_packname, "fictious", sizeof parts->l.d_packname);
166 1.1 martin
167 1.1 martin #if RAW_PART > 2
168 1.28 martin if (parts->dp.parent != NULL) {
169 1.28 martin parts->l.d_partitions[RAW_PART-1].p_fstype = FS_UNUSED;
170 1.28 martin parts->l.d_partitions[RAW_PART-1].p_offset = start;
171 1.28 martin parts->l.d_partitions[RAW_PART-1].p_size = len;
172 1.28 martin parts->dp.num_part++;
173 1.28 martin }
174 1.1 martin #endif
175 1.1 martin parts->l.d_partitions[RAW_PART].p_fstype = FS_UNUSED;
176 1.1 martin parts->l.d_partitions[RAW_PART].p_offset = 0;
177 1.1 martin parts->l.d_partitions[RAW_PART].p_size = total_size;
178 1.1 martin parts->dp.num_part++;
179 1.1 martin
180 1.1 martin parts->l.d_npartitions = RAW_PART+1;
181 1.1 martin
182 1.1 martin return &parts->dp;
183 1.1 martin }
184 1.1 martin
185 1.1 martin static struct disk_partitions *
186 1.12 martin disklabel_parts_read(const char *disk, daddr_t start, daddr_t len,
187 1.12 martin const struct disk_partitioning_scheme *scheme)
188 1.1 martin {
189 1.1 martin int fd;
190 1.1 martin char diskpath[MAXPATHLEN];
191 1.1 martin uint flags;
192 1.20 martin #ifndef DISKLABEL_NO_ONDISK_VERIFY
193 1.19 martin bool have_raw_label = false;
194 1.1 martin
195 1.19 martin /*
196 1.19 martin * Verify we really have a disklabel.
197 1.19 martin */
198 1.19 martin if (run_program(RUN_SILENT | RUN_ERROR_OK,
199 1.19 martin "disklabel -r %s", disk) == 0)
200 1.19 martin have_raw_label = true;
201 1.18 martin #endif
202 1.1 martin
203 1.1 martin /* read partitions */
204 1.1 martin
205 1.1 martin struct disklabel_disk_partitions *parts = calloc(1, sizeof(*parts));
206 1.1 martin if (parts == NULL)
207 1.1 martin return NULL;
208 1.1 martin
209 1.1 martin fd = opendisk(disk, O_RDONLY, diskpath, sizeof(diskpath), 0);
210 1.1 martin if (fd == -1) {
211 1.1 martin free(parts);
212 1.1 martin return NULL;
213 1.1 martin }
214 1.1 martin
215 1.1 martin /*
216 1.1 martin * We should actually try to read the label inside the start/len
217 1.1 martin * boundary, but for simplicity just rely on the kernel and
218 1.1 martin * instead verify a FS_UNUSED partition at RAW_PART-1 (if
219 1.1 martin * RAW_PART > 'c') is within the given limits.
220 1.1 martin */
221 1.1 martin if (ioctl(fd, DIOCGDINFO, &parts->l) < 0) {
222 1.1 martin free(parts);
223 1.1 martin close(fd);
224 1.1 martin return NULL;
225 1.1 martin }
226 1.1 martin #if RAW_PART > 2
227 1.1 martin if (parts->l.d_partitions[RAW_PART-1].p_fstype == FS_UNUSED) {
228 1.1 martin daddr_t dlstart = parts->l.d_partitions[RAW_PART-1].p_offset;
229 1.1 martin daddr_t dlend = start +
230 1.1 martin parts->l.d_partitions[RAW_PART-1].p_size;
231 1.1 martin
232 1.1 martin if (dlstart < start && dlend > (start+len)) {
233 1.1 martin assert(false);
234 1.1 martin free(parts);
235 1.1 martin close(fd);
236 1.1 martin return NULL;
237 1.1 martin }
238 1.1 martin }
239 1.1 martin #endif
240 1.1 martin
241 1.1 martin if (len > disklabel_parts.size_limit)
242 1.1 martin len = disklabel_parts.size_limit;
243 1.12 martin parts->dp.pscheme = scheme;
244 1.15 martin parts->dp.disk = strdup(disk);
245 1.1 martin parts->dp.disk_start = start;
246 1.1 martin parts->dp.disk_size = parts->dp.free_space = len;
247 1.25 martin disklabel_init_default_alignment(parts, parts->l.d_secpercyl);
248 1.1 martin
249 1.1 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
250 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED
251 1.1 martin && parts->l.d_partitions[part].p_size == 0)
252 1.1 martin continue;
253 1.1 martin
254 1.1 martin parts->dp.num_part++;
255 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED)
256 1.1 martin continue;
257 1.1 martin
258 1.1 martin flags = 0;
259 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_MSDOS)
260 1.1 martin flags = GLM_MAYBE_FAT32;
261 1.1 martin else if (parts->l.d_partitions[part].p_fstype == FS_BSDFFS)
262 1.1 martin flags = GLM_LIKELY_FFS;
263 1.1 martin if (flags != 0) {
264 1.1 martin uint fs_type, fs_sub_type;
265 1.1 martin const char *lm = get_last_mounted(fd,
266 1.1 martin parts->l.d_partitions[part].p_offset,
267 1.1 martin &fs_type, &fs_sub_type, flags);
268 1.1 martin if (lm != NULL && *lm != 0) {
269 1.1 martin strlcpy(parts->last_mounted[part], lm,
270 1.1 martin sizeof(parts->last_mounted[part]));
271 1.1 martin if (parts->l.d_partitions[part].p_fstype ==
272 1.1 martin fs_type)
273 1.1 martin parts->fs_sub_type[part] = fs_sub_type;
274 1.10 martin canonicalize_last_mounted(
275 1.10 martin parts->last_mounted[part]);
276 1.1 martin }
277 1.1 martin }
278 1.1 martin
279 1.1 martin if (parts->l.d_partitions[part].p_size > parts->dp.free_space)
280 1.1 martin parts->dp.free_space = 0;
281 1.1 martin else
282 1.1 martin parts->dp.free_space -=
283 1.1 martin parts->l.d_partitions[part].p_size;
284 1.1 martin }
285 1.1 martin close(fd);
286 1.1 martin
287 1.20 martin #ifndef DISKLABEL_NO_ONDISK_VERIFY
288 1.26 martin if (!have_raw_label) {
289 1.19 martin bool found_real_part = false;
290 1.19 martin
291 1.24 martin if (parts->l.d_npartitions <= RAW_PART ||
292 1.24 martin parts->l.d_partitions[RAW_PART].p_size == 0)
293 1.24 martin goto no_valid_label;
294 1.24 martin
295 1.19 martin /*
296 1.19 martin * Check if kernel translation gave us "something" besides
297 1.19 martin * the raw or the whole-disk partition.
298 1.19 martin * If not: report missing disklabel.
299 1.19 martin */
300 1.19 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
301 1.19 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED)
302 1.19 martin continue;
303 1.22 martin if (part == 0 &&
304 1.22 martin parts->l.d_partitions[part].p_offset ==
305 1.22 martin parts->l.d_partitions[RAW_PART].p_offset &&
306 1.22 martin parts->l.d_partitions[part].p_size ==
307 1.22 martin parts->l.d_partitions[RAW_PART].p_size)
308 1.22 martin continue;
309 1.19 martin if (part == RAW_PART)
310 1.19 martin continue;
311 1.19 martin found_real_part = true;
312 1.19 martin break;
313 1.19 martin }
314 1.19 martin if (!found_real_part) {
315 1.19 martin /* no partion there yet */
316 1.24 martin no_valid_label:
317 1.19 martin free(parts);
318 1.19 martin return NULL;
319 1.19 martin }
320 1.19 martin }
321 1.20 martin #endif
322 1.19 martin
323 1.1 martin return &parts->dp;
324 1.1 martin }
325 1.1 martin
326 1.17 martin /*
327 1.17 martin * Escape a string for usage as a tag name in a capfile(5),
328 1.17 martin * we really know there is enough space in the destination buffer...
329 1.17 martin */
330 1.17 martin static void
331 1.17 martin escape_capfile(char *dest, const char *src, size_t len)
332 1.17 martin {
333 1.17 martin while (*src && len > 0) {
334 1.17 martin if (*src == ':')
335 1.17 martin *dest++ = ' ';
336 1.17 martin else
337 1.17 martin *dest++ = *src;
338 1.17 martin src++;
339 1.17 martin len--;
340 1.17 martin }
341 1.17 martin *dest = 0;
342 1.17 martin }
343 1.17 martin
344 1.1 martin static bool
345 1.1 martin disklabel_write_to_disk(struct disk_partitions *arg)
346 1.1 martin {
347 1.1 martin struct disklabel_disk_partitions *parts =
348 1.1 martin (struct disklabel_disk_partitions*)arg;
349 1.1 martin FILE *f;
350 1.17 martin char fname[PATH_MAX], packname[sizeof(parts->l.d_packname)+1],
351 1.17 martin disktype[sizeof(parts->l.d_typename)+1];
352 1.2 martin int i, rv = 0;
353 1.1 martin const char *disk = parts->dp.disk, *s;
354 1.1 martin const struct partition *lp;
355 1.1 martin char *d;
356 1.1 martin size_t n;
357 1.1 martin
358 1.5 martin assert(parts->l.d_secsize != 0);
359 1.9 martin assert(parts->l.d_nsectors != 0);
360 1.9 martin assert(parts->l.d_ntracks != 0);
361 1.9 martin assert(parts->l.d_ncylinders != 0);
362 1.9 martin assert(parts->l.d_secpercyl != 0);
363 1.5 martin
364 1.1 martin /* make sure we have a 0 terminated packname */
365 1.1 martin strlcpy(packname, parts->l.d_packname, sizeof packname);
366 1.16 martin if (packname[0] == 0)
367 1.16 martin strcpy(packname, "fictious");
368 1.1 martin
369 1.1 martin /* fill typename with disk name prefix, if not already set */
370 1.1 martin if (strlen(parts->l.d_typename) == 0) {
371 1.1 martin for (n = 0, d = parts->l.d_typename, s = disk;
372 1.1 martin *s && n < sizeof(parts->l.d_typename); d++, s++, n++) {
373 1.1 martin if (isdigit((unsigned char)*s))
374 1.1 martin break;
375 1.1 martin *d = *s;
376 1.1 martin }
377 1.1 martin }
378 1.1 martin
379 1.1 martin /* we need a valid disk type name, so enforce an arbitrary if
380 1.1 martin * above did not yield a usable one */
381 1.1 martin if (strlen(parts->l.d_typename) == 0)
382 1.1 martin strncpy(parts->l.d_typename, "SCSI",
383 1.1 martin sizeof(parts->l.d_typename));
384 1.17 martin escape_capfile(disktype, parts->l.d_typename,
385 1.17 martin sizeof(parts->l.d_typename));
386 1.1 martin
387 1.16 martin sprintf(fname, "/tmp/disklabel.%u", getpid());
388 1.16 martin f = fopen(fname, "w");
389 1.16 martin if (f == NULL)
390 1.16 martin return false;
391 1.16 martin
392 1.1 martin lp = parts->l.d_partitions;
393 1.8 martin scripting_fprintf(NULL, "cat <<EOF >%s\n", fname);
394 1.8 martin scripting_fprintf(f, "%s|NetBSD installation generated:\\\n",
395 1.17 martin disktype);
396 1.8 martin scripting_fprintf(f, "\t:nc#%d:nt#%d:ns#%d:\\\n",
397 1.1 martin parts->l.d_ncylinders, parts->l.d_ntracks, parts->l.d_nsectors);
398 1.8 martin scripting_fprintf(f, "\t:sc#%d:su#%" PRIu32 ":\\\n",
399 1.1 martin parts->l.d_secpercyl, lp[RAW_PART].p_offset+lp[RAW_PART].p_size);
400 1.8 martin scripting_fprintf(f, "\t:se#%d:\\\n", parts->l.d_secsize);
401 1.1 martin
402 1.1 martin for (i = 0; i < parts->l.d_npartitions; i++) {
403 1.8 martin scripting_fprintf(f, "\t:p%c#%" PRIu32 ":o%c#%" PRIu32
404 1.1 martin ":t%c=%s:", 'a'+i, (uint32_t)lp[i].p_size,
405 1.1 martin 'a'+i, (uint32_t)lp[i].p_offset, 'a'+i,
406 1.1 martin getfslabelname(lp[i].p_fstype, 0));
407 1.1 martin if (lp[i].p_fstype == FS_BSDLFS ||
408 1.1 martin lp[i].p_fstype == FS_BSDFFS)
409 1.8 martin scripting_fprintf (f, "b%c#%" PRIu32 ":f%c#%" PRIu32
410 1.1 martin ":", 'a'+i,
411 1.1 martin (uint32_t)(lp[i].p_fsize *
412 1.1 martin lp[i].p_frag),
413 1.1 martin 'a'+i, (uint32_t)lp[i].p_fsize);
414 1.1 martin
415 1.1 martin if (i < parts->l.d_npartitions - 1)
416 1.8 martin scripting_fprintf(f, "\\\n");
417 1.1 martin else
418 1.8 martin scripting_fprintf(f, "\n");
419 1.1 martin }
420 1.8 martin scripting_fprintf(NULL, "EOF\n");
421 1.1 martin
422 1.1 martin fclose(f);
423 1.1 martin
424 1.1 martin /*
425 1.1 martin * Label a disk using an MD-specific string DISKLABEL_CMD for
426 1.1 martin * to invoke disklabel.
427 1.1 martin * if MD code does not define DISKLABEL_CMD, this is a no-op.
428 1.1 martin *
429 1.1 martin * i386 port uses "/sbin/disklabel -w -r", just like i386
430 1.1 martin * miniroot scripts, though this may leave a bogus incore label.
431 1.1 martin *
432 1.1 martin * Sun ports should use DISKLABEL_CMD "/sbin/disklabel -w"
433 1.1 martin * to get incore to ondisk inode translation for the Sun proms.
434 1.1 martin */
435 1.1 martin #ifdef DISKLABEL_CMD
436 1.1 martin /* disklabel the disk */
437 1.27 martin rv = run_program(0, "%s -f %s %s '%s' '%s'",
438 1.17 martin DISKLABEL_CMD, fname, disk, disktype, packname);
439 1.1 martin #endif
440 1.1 martin
441 1.1 martin unlink(fname);
442 1.1 martin
443 1.1 martin return rv == 0;
444 1.1 martin }
445 1.1 martin
446 1.1 martin static bool
447 1.1 martin disklabel_delete_all(struct disk_partitions *arg)
448 1.1 martin {
449 1.1 martin struct disklabel_disk_partitions *parts =
450 1.1 martin (struct disklabel_disk_partitions*)arg;
451 1.1 martin daddr_t total_size = parts->l.d_partitions[RAW_PART].p_size;
452 1.1 martin
453 1.6 martin memset(&parts->l.d_partitions, 0, sizeof(parts->l.d_partitions));
454 1.1 martin parts->dp.num_part = 0;
455 1.1 martin
456 1.1 martin #if RAW_PART > 2
457 1.28 martin if (parts->dp.parent != NULL) {
458 1.28 martin parts->l.d_partitions[RAW_PART-1].p_fstype = FS_UNUSED;
459 1.28 martin parts->l.d_partitions[RAW_PART-1].p_offset =
460 1.28 martin parts->dp.disk_start;
461 1.28 martin parts->l.d_partitions[RAW_PART-1].p_size = parts->dp.disk_size;
462 1.28 martin parts->dp.num_part++;
463 1.28 martin }
464 1.1 martin #endif
465 1.1 martin parts->l.d_partitions[RAW_PART].p_fstype = FS_UNUSED;
466 1.1 martin parts->l.d_partitions[RAW_PART].p_offset = 0;
467 1.1 martin parts->l.d_partitions[RAW_PART].p_size = total_size;
468 1.1 martin parts->dp.num_part++;
469 1.1 martin
470 1.1 martin parts->l.d_npartitions = RAW_PART+1;
471 1.1 martin return true;
472 1.1 martin }
473 1.1 martin
474 1.1 martin static bool
475 1.1 martin disklabel_delete(struct disk_partitions *arg, part_id id,
476 1.1 martin const char **err_msg)
477 1.1 martin {
478 1.1 martin struct disklabel_disk_partitions *parts =
479 1.1 martin (struct disklabel_disk_partitions*)arg;
480 1.1 martin part_id ndx;
481 1.1 martin
482 1.1 martin ndx = 0;
483 1.1 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
484 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED
485 1.1 martin && parts->l.d_partitions[part].p_size == 0)
486 1.1 martin continue;
487 1.1 martin
488 1.1 martin if (ndx == id) {
489 1.1 martin if (part == RAW_PART
490 1.1 martin #if RAW_PART > 2
491 1.28 martin || (part == RAW_PART-1 &&
492 1.28 martin parts->dp.parent != NULL)
493 1.1 martin #endif
494 1.1 martin ) {
495 1.1 martin if (err_msg)
496 1.1 martin *err_msg = msg_string(
497 1.1 martin MSG_part_not_deletable);
498 1.1 martin return false;
499 1.1 martin }
500 1.1 martin parts->l.d_partitions[part].p_size = 0;
501 1.1 martin parts->l.d_partitions[part].p_offset = 0;
502 1.1 martin parts->l.d_partitions[part].p_fstype = FS_UNUSED;
503 1.1 martin parts->dp.num_part--;
504 1.1 martin return true;
505 1.1 martin }
506 1.1 martin ndx++;
507 1.1 martin }
508 1.1 martin
509 1.1 martin if (err_msg)
510 1.1 martin *err_msg = INTERNAL_ERROR;
511 1.1 martin return false;
512 1.1 martin }
513 1.1 martin
514 1.1 martin static bool
515 1.1 martin disklabel_delete_range(struct disk_partitions *arg, daddr_t r_start,
516 1.1 martin daddr_t r_size)
517 1.1 martin {
518 1.1 martin struct disklabel_disk_partitions *parts =
519 1.1 martin (struct disklabel_disk_partitions*)arg;
520 1.1 martin
521 1.1 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
522 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED
523 1.1 martin && parts->l.d_partitions[part].p_size == 0)
524 1.1 martin continue;
525 1.1 martin
526 1.1 martin if (part == RAW_PART)
527 1.1 martin continue;
528 1.1 martin
529 1.1 martin daddr_t start = parts->l.d_partitions[part].p_offset;
530 1.1 martin daddr_t end = start + parts->l.d_partitions[part].p_size;
531 1.1 martin
532 1.1 martin #if RAW_PART > 2
533 1.28 martin if (parts->dp.parent != NULL &&
534 1.28 martin part == RAW_PART - 1 && start == r_start &&
535 1.1 martin r_start + r_size == end)
536 1.1 martin continue;
537 1.1 martin #endif
538 1.1 martin
539 1.1 martin if ((start >= r_start && start <= r_start+r_size) ||
540 1.1 martin (end >= r_start && end <= r_start+r_size)) {
541 1.1 martin if (parts->dp.num_part > 1)
542 1.1 martin parts->dp.num_part--;
543 1.1 martin parts->dp.free_space +=
544 1.1 martin parts->l.d_partitions[part].p_size;
545 1.1 martin parts->l.d_partitions[part].p_fstype = FS_UNUSED;
546 1.1 martin parts->l.d_partitions[part].p_size = 0;
547 1.1 martin }
548 1.1 martin }
549 1.1 martin
550 1.1 martin return true;
551 1.1 martin }
552 1.1 martin
553 1.1 martin static void
554 1.1 martin dl_init_types(void)
555 1.1 martin {
556 1.1 martin for (size_t i = 0; i < __arraycount(dl_types); i++) {
557 1.1 martin if (fstypenames[i] == NULL)
558 1.1 martin break;
559 1.1 martin dl_types[i].short_desc =
560 1.1 martin dl_types[i].description = getfslabelname(i, 0);
561 1.1 martin enum part_type pt;
562 1.1 martin switch (i) {
563 1.1 martin case FS_UNUSED: pt = PT_undef; break;
564 1.28 martin case FS_BSDFFS:
565 1.28 martin case FS_RAID:
566 1.28 martin case FS_BSDLFS:
567 1.28 martin case FS_CGD:
568 1.28 martin pt = PT_root; break;
569 1.1 martin case FS_SWAP: pt = PT_swap; break;
570 1.1 martin case FS_MSDOS: pt = PT_FAT; break;
571 1.1 martin default: pt = PT_unknown; break;
572 1.1 martin }
573 1.1 martin dl_types[i].generic_ptype = pt;
574 1.1 martin }
575 1.1 martin }
576 1.1 martin
577 1.1 martin static uint8_t
578 1.1 martin dl_part_type_from_generic(const struct part_type_desc *gent)
579 1.1 martin {
580 1.1 martin
581 1.1 martin if (dl_types[0].description == NULL)
582 1.1 martin dl_init_types();
583 1.1 martin for (size_t i = 0; i < __arraycount(dl_types); i++)
584 1.1 martin if (gent == &dl_types[i])
585 1.1 martin return (uint8_t)i;
586 1.1 martin
587 1.1 martin for (size_t i = 0; i < dl_custom_ptype_count; i++)
588 1.1 martin if (gent == &dl_custom_ptypes[i].desc)
589 1.1 martin return dl_custom_ptypes[i].type;
590 1.1 martin
591 1.1 martin return 0;
592 1.1 martin }
593 1.1 martin
594 1.1 martin static size_t
595 1.1 martin disklabel_type_count(void)
596 1.1 martin {
597 1.1 martin return __arraycount(dl_types) + dl_custom_ptype_count;
598 1.1 martin }
599 1.1 martin
600 1.1 martin static const struct part_type_desc *
601 1.1 martin disklabel_get_type(size_t ndx)
602 1.1 martin {
603 1.1 martin if (dl_types[0].description == NULL)
604 1.1 martin dl_init_types();
605 1.1 martin
606 1.1 martin if (ndx < __arraycount(dl_types))
607 1.1 martin return &dl_types[ndx];
608 1.1 martin
609 1.1 martin ndx -= __arraycount(dl_types);
610 1.1 martin if (ndx >= dl_custom_ptype_count)
611 1.1 martin return NULL;
612 1.1 martin
613 1.1 martin return &dl_custom_ptypes[ndx].desc;
614 1.1 martin }
615 1.1 martin
616 1.1 martin static const struct part_type_desc *
617 1.1 martin disklabel_find_type(uint type, bool create_if_unknown)
618 1.1 martin {
619 1.1 martin if (dl_types[0].description == NULL)
620 1.1 martin dl_init_types();
621 1.1 martin
622 1.1 martin if (type < __arraycount(dl_types))
623 1.1 martin return &dl_types[type];
624 1.1 martin
625 1.1 martin for (size_t i = 0; i < dl_custom_ptype_count; i++)
626 1.1 martin if (dl_custom_ptypes[i].type == type)
627 1.1 martin return &dl_custom_ptypes[i].desc;
628 1.1 martin
629 1.1 martin if (create_if_unknown) {
630 1.1 martin struct dl_custom_ptype *nt;
631 1.1 martin
632 1.1 martin nt = realloc(dl_custom_ptypes, dl_custom_ptype_count+1);
633 1.1 martin if (nt == NULL)
634 1.1 martin return NULL;
635 1.1 martin dl_custom_ptypes = nt;
636 1.1 martin nt = dl_custom_ptypes + dl_custom_ptype_count;
637 1.1 martin dl_custom_ptype_count++;
638 1.1 martin memset(nt, 0, sizeof(*nt));
639 1.1 martin nt->type = type;
640 1.1 martin snprintf(nt->short_desc, sizeof(nt->short_desc), "%u", type);
641 1.1 martin nt->short_desc[sizeof(nt->short_desc)-1] = 0;
642 1.1 martin snprintf(nt->description, sizeof(nt->description),
643 1.1 martin "%s (%u)", msg_string(MSG_custom_type), type);
644 1.1 martin nt->description[sizeof(nt->description)-1] = 0;
645 1.1 martin nt->desc.generic_ptype = PT_unknown;
646 1.1 martin nt->desc.short_desc = nt->short_desc;
647 1.1 martin nt->desc.description = nt->description;
648 1.1 martin return &nt->desc;
649 1.1 martin }
650 1.1 martin
651 1.1 martin return NULL;
652 1.1 martin }
653 1.1 martin
654 1.1 martin static const struct part_type_desc *
655 1.1 martin disklabel_create_custom_part_type(const char *custom, const char **err_msg)
656 1.1 martin {
657 1.1 martin char *endp;
658 1.1 martin unsigned long fstype;
659 1.1 martin
660 1.1 martin fstype = strtoul(custom, &endp, 10);
661 1.1 martin if (*endp != 0) {
662 1.1 martin if (err_msg)
663 1.1 martin *err_msg = msg_string(MSG_dl_type_invalid);
664 1.1 martin return NULL;
665 1.1 martin }
666 1.1 martin
667 1.1 martin return disklabel_find_type(fstype, true);
668 1.1 martin }
669 1.1 martin
670 1.1 martin static const struct part_type_desc *
671 1.23 martin disklabel_get_fs_part_type(enum part_type pt, unsigned fstype, unsigned subtype)
672 1.1 martin {
673 1.1 martin return disklabel_find_type(fstype, false);
674 1.1 martin }
675 1.1 martin
676 1.1 martin static const struct part_type_desc *
677 1.15 martin disklabel_create_unknown_part_type(void)
678 1.15 martin {
679 1.15 martin return disklabel_find_type(FS_OTHER, false);
680 1.15 martin }
681 1.15 martin
682 1.15 martin static const struct part_type_desc *
683 1.1 martin disklabel_get_generic_type(enum part_type pt)
684 1.1 martin {
685 1.1 martin size_t nt;
686 1.1 martin
687 1.1 martin if (dl_types[0].description == NULL)
688 1.1 martin dl_init_types();
689 1.1 martin
690 1.1 martin switch (pt) {
691 1.1 martin case PT_root: nt = FS_BSDFFS; break;
692 1.1 martin case PT_swap: nt = FS_SWAP; break;
693 1.1 martin case PT_FAT:
694 1.1 martin case PT_EFI_SYSTEM:
695 1.1 martin nt = FS_MSDOS; break;
696 1.1 martin default: nt = FS_UNUSED; break;
697 1.1 martin }
698 1.1 martin
699 1.1 martin return disklabel_get_type(nt);
700 1.1 martin }
701 1.1 martin
702 1.1 martin static bool
703 1.28 martin disklabel_get_default_fstype(const struct part_type_desc *nat_type,
704 1.28 martin unsigned *fstype, unsigned *fs_sub_type)
705 1.28 martin {
706 1.28 martin
707 1.28 martin *fstype = dl_part_type_from_generic(nat_type);
708 1.28 martin #ifdef DEFAULT_UFS2
709 1.28 martin if (*fstype == FS_BSDFFS)
710 1.28 martin *fs_sub_type = 2;
711 1.28 martin else
712 1.28 martin #endif
713 1.28 martin *fs_sub_type = 0;
714 1.28 martin return true;
715 1.28 martin }
716 1.28 martin
717 1.28 martin static bool
718 1.1 martin disklabel_get_part_info(const struct disk_partitions *arg, part_id id,
719 1.1 martin struct disk_part_info *info)
720 1.1 martin {
721 1.1 martin const struct disklabel_disk_partitions *parts =
722 1.1 martin (const struct disklabel_disk_partitions*)arg;
723 1.1 martin part_id ndx;
724 1.1 martin
725 1.1 martin if (dl_types[0].description == NULL)
726 1.1 martin dl_init_types();
727 1.1 martin
728 1.1 martin ndx = 0;
729 1.1 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
730 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED
731 1.1 martin && parts->l.d_partitions[part].p_size == 0)
732 1.1 martin continue;
733 1.1 martin
734 1.1 martin if (ndx == id) {
735 1.1 martin memset(info, 0, sizeof(*info));
736 1.1 martin info->start = parts->l.d_partitions[part].p_offset;
737 1.1 martin info->size = parts->l.d_partitions[part].p_size;
738 1.1 martin info->nat_type = disklabel_find_type(
739 1.1 martin parts->l.d_partitions[part].p_fstype, true);
740 1.1 martin if (parts->last_mounted[part][0] != 0)
741 1.1 martin info->last_mounted = parts->last_mounted[part];
742 1.1 martin info->fs_type = parts->l.d_partitions[part].p_fstype;
743 1.1 martin info->fs_sub_type = parts->fs_sub_type[part];
744 1.1 martin if (part == RAW_PART &&
745 1.1 martin parts->l.d_partitions[part].p_fstype == FS_UNUSED)
746 1.1 martin info->flags |=
747 1.1 martin PTI_PSCHEME_INTERNAL|PTI_RAW_PART;
748 1.1 martin #if RAW_PART > 2
749 1.28 martin if (part == (RAW_PART-1) && parts->dp.parent != NULL &&
750 1.1 martin parts->l.d_partitions[part].p_fstype == FS_UNUSED)
751 1.1 martin info->flags |=
752 1.1 martin PTI_PSCHEME_INTERNAL|PTI_WHOLE_DISK;
753 1.1 martin #endif
754 1.1 martin return true;
755 1.1 martin }
756 1.1 martin
757 1.1 martin ndx++;
758 1.1 martin if (ndx > parts->dp.num_part || ndx > id)
759 1.1 martin break;
760 1.1 martin }
761 1.1 martin
762 1.1 martin return false;
763 1.1 martin }
764 1.1 martin
765 1.1 martin static bool
766 1.1 martin disklabel_set_part_info(struct disk_partitions *arg, part_id id,
767 1.1 martin const struct disk_part_info *info, const char **err_msg)
768 1.1 martin {
769 1.1 martin struct disklabel_disk_partitions *parts =
770 1.1 martin (struct disklabel_disk_partitions*)arg;
771 1.1 martin part_id ndx;
772 1.1 martin
773 1.1 martin if (dl_types[0].description == NULL)
774 1.1 martin dl_init_types();
775 1.1 martin
776 1.1 martin ndx = 0;
777 1.1 martin for (int part = 0; part < parts->l.d_npartitions; part++) {
778 1.1 martin if (parts->l.d_partitions[part].p_fstype == FS_UNUSED
779 1.1 martin && parts->l.d_partitions[part].p_size == 0)
780 1.1 martin continue;
781 1.1 martin
782 1.1 martin if (ndx == id) {
783 1.1 martin parts->l.d_partitions[part].p_offset = info->start;
784 1.1 martin parts->l.d_partitions[part].p_size = info->size;
785 1.1 martin parts->l.d_partitions[part].p_fstype =
786 1.1 martin dl_part_type_from_generic(info->nat_type);
787 1.1 martin if (info->last_mounted != NULL &&
788 1.1 martin info->last_mounted != parts->last_mounted[part])
789 1.1 martin strlcpy(parts->last_mounted[part],
790 1.1 martin info->last_mounted,
791 1.1 martin sizeof(parts->last_mounted[part]));
792 1.1 martin assert(info->fs_type == 0 || info->fs_type ==
793 1.1 martin parts->l.d_partitions[part].p_fstype);
794 1.1 martin if (info->fs_sub_type != 0)
795 1.1 martin parts->fs_sub_type[part] = info->fs_sub_type;
796 1.1 martin return true;
797 1.1 martin }
798 1.1 martin
799 1.1 martin ndx++;
800 1.1 martin if (ndx > parts->dp.num_part || ndx > id)
801 1.1 martin break;
802 1.1 martin }
803 1.1 martin
804 1.1 martin return false;
805 1.1 martin }
806 1.1 martin
807 1.1 martin static size_t
808 1.1 martin disklabel_get_free_spaces_internal(const struct
809 1.1 martin disklabel_disk_partitions *parts,
810 1.1 martin struct disk_part_free_space *result, size_t max_num_result,
811 1.1 martin daddr_t min_space_size, daddr_t align, daddr_t start, daddr_t ignore)
812 1.1 martin {
813 1.1 martin size_t cnt = 0, i;
814 1.1 martin daddr_t s, e, from, size, end_of_disk;
815 1.1 martin
816 1.29 martin if (start < parts->dp.disk_start)
817 1.29 martin start = parts->dp.disk_start;
818 1.1 martin if (min_space_size < 1)
819 1.1 martin min_space_size = 1;
820 1.3 martin if (align > 1 && (start % align) != 0)
821 1.1 martin start = max(roundup(start, align), align);
822 1.1 martin end_of_disk = parts->dp.disk_start + parts->dp.disk_size;
823 1.1 martin from = start;
824 1.1 martin while (from < end_of_disk && cnt < max_num_result) {
825 1.1 martin again:
826 1.1 martin size = parts->dp.disk_start + parts->dp.disk_size - from;
827 1.1 martin start = from;
828 1.1 martin for (i = 0; i < parts->l.d_npartitions; i++) {
829 1.1 martin if (i == RAW_PART)
830 1.1 martin continue;
831 1.1 martin if (parts->l.d_partitions[i].p_fstype == FS_UNUSED)
832 1.1 martin continue;
833 1.14 martin if (parts->l.d_partitions[i].p_size == 0)
834 1.14 martin continue;
835 1.1 martin
836 1.1 martin s = parts->l.d_partitions[i].p_offset;
837 1.1 martin e = parts->l.d_partitions[i].p_size + s;
838 1.1 martin if (s == ignore)
839 1.1 martin continue;
840 1.1 martin if (e < from)
841 1.1 martin continue;
842 1.1 martin if (s <= from && e > from) {
843 1.1 martin if (e - 1 >= end_of_disk)
844 1.1 martin return cnt;
845 1.1 martin
846 1.1 martin from = e + 1;
847 1.1 martin if (align > 1) {
848 1.1 martin from = max(roundup(from, align), align);
849 1.1 martin if (from >= end_of_disk) {
850 1.1 martin size = 0;
851 1.1 martin break;
852 1.1 martin }
853 1.1 martin }
854 1.1 martin goto again;
855 1.1 martin }
856 1.1 martin if (s > from && s - from < size) {
857 1.1 martin size = s - from;
858 1.1 martin }
859 1.1 martin }
860 1.1 martin if (size >= min_space_size) {
861 1.1 martin result->start = start;
862 1.1 martin result->size = size;
863 1.1 martin result++;
864 1.1 martin cnt++;
865 1.1 martin }
866 1.1 martin from += size + 1;
867 1.1 martin if (align > 1)
868 1.1 martin from = max(roundup(from, align), align);
869 1.1 martin }
870 1.1 martin
871 1.1 martin return cnt;
872 1.1 martin }
873 1.1 martin
874 1.1 martin static bool
875 1.1 martin disklabel_can_add_partition(const struct disk_partitions *arg)
876 1.1 martin {
877 1.1 martin const struct disklabel_disk_partitions *parts =
878 1.1 martin (const struct disklabel_disk_partitions*)arg;
879 1.1 martin struct disk_part_free_space space;
880 1.1 martin int i;
881 1.1 martin
882 1.1 martin if (dl_maxpart == 0)
883 1.1 martin dl_maxpart = getmaxpartitions();
884 1.1 martin if (parts->dp.free_space < parts->ptn_alignment)
885 1.1 martin return false;
886 1.1 martin if (parts->dp.num_part >= dl_maxpart)
887 1.1 martin return false;
888 1.1 martin if (disklabel_get_free_spaces_internal(parts, &space, 1,
889 1.1 martin parts->ptn_alignment, parts->ptn_alignment, 0, -1) < 1)
890 1.1 martin return false;
891 1.1 martin
892 1.1 martin for (i = 0; i < parts->l.d_npartitions; i++) {
893 1.1 martin if (i == RAW_PART)
894 1.1 martin continue;
895 1.1 martin #if RAW_PART > 2
896 1.28 martin if (i == RAW_PART-1 && parts->dp.parent != NULL)
897 1.1 martin continue;
898 1.1 martin #endif
899 1.1 martin if (parts->l.d_partitions[i].p_fstype == FS_UNUSED)
900 1.1 martin return true;
901 1.1 martin }
902 1.1 martin return false;
903 1.1 martin }
904 1.1 martin
905 1.1 martin static bool
906 1.1 martin disklabel_get_disk_pack_name(const struct disk_partitions *arg,
907 1.1 martin char *buf, size_t len)
908 1.1 martin {
909 1.1 martin const struct disklabel_disk_partitions *parts =
910 1.1 martin (const struct disklabel_disk_partitions*)arg;
911 1.1 martin
912 1.1 martin strlcpy(buf, parts->l.d_packname, min(len,
913 1.1 martin sizeof(parts->l.d_packname)+1));
914 1.1 martin return true;
915 1.1 martin }
916 1.1 martin
917 1.1 martin static bool
918 1.1 martin disklabel_set_disk_pack_name(struct disk_partitions *arg, const char *pack)
919 1.1 martin {
920 1.1 martin struct disklabel_disk_partitions *parts =
921 1.1 martin (struct disklabel_disk_partitions*)arg;
922 1.1 martin
923 1.1 martin strncpy(parts->l.d_packname, pack, sizeof(parts->l.d_packname));
924 1.1 martin return true;
925 1.1 martin }
926 1.1 martin
927 1.1 martin static bool
928 1.1 martin disklabel_get_part_device(const struct disk_partitions *arg,
929 1.1 martin part_id ptn, char *devname, size_t max_devname_len, int *part,
930 1.28 martin enum dev_name_usage which_name, bool with_path, bool life)
931 1.1 martin {
932 1.13 martin const struct disklabel_disk_partitions *parts =
933 1.13 martin (const struct disklabel_disk_partitions*)arg;
934 1.13 martin part_id id;
935 1.13 martin int part_index;
936 1.13 martin char pname;
937 1.13 martin
938 1.13 martin if (ptn >= parts->l.d_npartitions)
939 1.13 martin return false;
940 1.13 martin
941 1.14 martin for (id = part_index = 0; part_index < parts->l.d_npartitions;
942 1.14 martin part_index++) {
943 1.14 martin if (parts->l.d_partitions[part_index].p_fstype == FS_UNUSED &&
944 1.14 martin parts->l.d_partitions[part_index].p_size == 0)
945 1.14 martin continue;
946 1.14 martin if (id == ptn)
947 1.14 martin break;
948 1.14 martin id++;
949 1.14 martin if (id > ptn)
950 1.14 martin return false;
951 1.14 martin }
952 1.1 martin
953 1.1 martin if (part != 0)
954 1.13 martin *part = part_index;
955 1.13 martin
956 1.13 martin pname = 'a'+ part_index;
957 1.1 martin
958 1.1 martin switch (which_name) {
959 1.1 martin case parent_device_only:
960 1.1 martin strlcpy(devname, arg->disk, max_devname_len);
961 1.1 martin return true;
962 1.1 martin case logical_name:
963 1.1 martin case plain_name:
964 1.1 martin if (with_path)
965 1.1 martin snprintf(devname, max_devname_len, _PATH_DEV "%s%c",
966 1.13 martin arg->disk, pname);
967 1.1 martin else
968 1.1 martin snprintf(devname, max_devname_len, "%s%c",
969 1.13 martin arg->disk, pname);
970 1.1 martin return true;
971 1.1 martin case raw_dev_name:
972 1.1 martin if (with_path)
973 1.1 martin snprintf(devname, max_devname_len, _PATH_DEV "r%s%c",
974 1.13 martin arg->disk, pname);
975 1.1 martin else
976 1.1 martin snprintf(devname, max_devname_len, "r%s%c",
977 1.13 martin arg->disk, pname);
978 1.1 martin return true;
979 1.1 martin }
980 1.1 martin
981 1.1 martin return false;
982 1.1 martin }
983 1.1 martin
984 1.29 martin /*
985 1.29 martin * If the requested partition file system type internally skips
986 1.29 martin * the disk label sector, we can allow it to start at the beginning
987 1.29 martin * of the disk. In most cases though we have to move the partition
988 1.29 martin * to start past the label sector.
989 1.29 martin */
990 1.29 martin static bool
991 1.29 martin need_to_skip_past_label(const struct disk_part_info *info)
992 1.29 martin {
993 1.29 martin switch (info->fs_type) {
994 1.29 martin case FS_BSDFFS:
995 1.29 martin case FS_RAID:
996 1.29 martin return false;
997 1.29 martin }
998 1.29 martin
999 1.29 martin return true;
1000 1.29 martin }
1001 1.29 martin
1002 1.1 martin static part_id
1003 1.1 martin disklabel_add_partition(struct disk_partitions *arg,
1004 1.1 martin const struct disk_part_info *info, const char **err_msg)
1005 1.1 martin {
1006 1.1 martin struct disklabel_disk_partitions *parts =
1007 1.1 martin (struct disklabel_disk_partitions*)arg;
1008 1.1 martin int i, part = -1;
1009 1.1 martin part_id new_id;
1010 1.1 martin struct disk_part_free_space space;
1011 1.1 martin struct disk_part_info data = *info;
1012 1.1 martin
1013 1.1 martin if (disklabel_get_free_spaces_internal(parts, &space, 1, 1, 1,
1014 1.1 martin info->start, -1) < 1) {
1015 1.1 martin if (err_msg)
1016 1.1 martin *err_msg = msg_string(MSG_No_free_space);
1017 1.1 martin return NO_PART;
1018 1.1 martin }
1019 1.29 martin if (space.start <= (parts->dp.disk_start + LABELSECTOR) &&
1020 1.29 martin need_to_skip_past_label(info)) {
1021 1.29 martin daddr_t new_start = roundup(parts->dp.disk_start + LABELSECTOR,
1022 1.29 martin parts->ptn_alignment);
1023 1.29 martin daddr_t off = new_start - space.start;
1024 1.29 martin space.start += off;
1025 1.29 martin space.size -= off;
1026 1.29 martin }
1027 1.1 martin if (data.size > space.size)
1028 1.1 martin data.size = space.size;
1029 1.1 martin daddr_t dend = data.start+data.size;
1030 1.1 martin if (space.start > data.start)
1031 1.1 martin data.start = space.start;
1032 1.1 martin if (space.start + space.size < dend)
1033 1.1 martin data.size = space.start+space.size-data.start;
1034 1.1 martin
1035 1.1 martin if (dl_maxpart == 0)
1036 1.1 martin dl_maxpart = getmaxpartitions();
1037 1.1 martin
1038 1.1 martin for (new_id = 0, i = 0; i < parts->l.d_npartitions; i++) {
1039 1.1 martin if (parts->l.d_partitions[i].p_size > 0)
1040 1.1 martin new_id++;
1041 1.1 martin if (info->nat_type->generic_ptype != PT_root &&
1042 1.1 martin info->nat_type->generic_ptype != PT_swap && i < RAW_PART)
1043 1.1 martin continue;
1044 1.1 martin if (i == 0 && info->nat_type->generic_ptype != PT_root)
1045 1.1 martin continue;
1046 1.1 martin if (i == 1 && info->nat_type->generic_ptype != PT_swap)
1047 1.1 martin continue;
1048 1.1 martin if (i == RAW_PART)
1049 1.1 martin continue;
1050 1.1 martin #if RAW_PART > 2
1051 1.28 martin if (i == RAW_PART-1 && parts->dp.parent != NULL)
1052 1.1 martin continue;
1053 1.1 martin #endif
1054 1.1 martin if (parts->l.d_partitions[i].p_size > 0)
1055 1.1 martin continue;
1056 1.1 martin part = i;
1057 1.1 martin break;
1058 1.1 martin }
1059 1.1 martin
1060 1.1 martin if (part < 0) {
1061 1.1 martin if (parts->l.d_npartitions >= dl_maxpart) {
1062 1.1 martin if (err_msg)
1063 1.1 martin *err_msg =
1064 1.1 martin msg_string(MSG_err_too_many_partitions);
1065 1.1 martin return NO_PART;
1066 1.1 martin }
1067 1.1 martin
1068 1.1 martin part = parts->l.d_npartitions++;
1069 1.1 martin }
1070 1.1 martin parts->l.d_partitions[part].p_offset = data.start;
1071 1.1 martin parts->l.d_partitions[part].p_size = data.size;
1072 1.1 martin parts->l.d_partitions[part].p_fstype =
1073 1.1 martin dl_part_type_from_generic(info->nat_type);
1074 1.1 martin if (info->last_mounted && info->last_mounted[0])
1075 1.1 martin strlcpy(parts->last_mounted[part], info->last_mounted,
1076 1.1 martin sizeof(parts->last_mounted[part]));
1077 1.1 martin else
1078 1.1 martin parts->last_mounted[part][0] = 0;
1079 1.1 martin parts->fs_sub_type[part] = info->fs_sub_type;
1080 1.1 martin parts->dp.num_part++;
1081 1.1 martin if (data.size <= parts->dp.free_space)
1082 1.1 martin parts->dp.free_space -= data.size;
1083 1.1 martin else
1084 1.1 martin parts->dp.free_space = 0;
1085 1.1 martin
1086 1.1 martin return new_id;
1087 1.1 martin }
1088 1.1 martin
1089 1.7 martin static part_id
1090 1.7 martin disklabel_add_outer_partition(struct disk_partitions *arg,
1091 1.7 martin const struct disk_part_info *info, const char **err_msg)
1092 1.7 martin {
1093 1.7 martin struct disklabel_disk_partitions *parts =
1094 1.7 martin (struct disklabel_disk_partitions*)arg;
1095 1.7 martin int i, part = -1;
1096 1.7 martin part_id new_id;
1097 1.7 martin
1098 1.7 martin if (dl_maxpart == 0)
1099 1.7 martin dl_maxpart = getmaxpartitions();
1100 1.7 martin
1101 1.7 martin for (new_id = 0, i = 0; i < parts->l.d_npartitions; i++) {
1102 1.7 martin if (parts->l.d_partitions[i].p_size > 0)
1103 1.7 martin new_id++;
1104 1.7 martin if (info->nat_type->generic_ptype != PT_root &&
1105 1.7 martin info->nat_type->generic_ptype != PT_swap && i < RAW_PART)
1106 1.7 martin continue;
1107 1.7 martin if (i == 0 && info->nat_type->generic_ptype != PT_root)
1108 1.7 martin continue;
1109 1.7 martin if (i == 1 && info->nat_type->generic_ptype != PT_swap)
1110 1.7 martin continue;
1111 1.7 martin if (i == RAW_PART)
1112 1.7 martin continue;
1113 1.7 martin #if RAW_PART > 2
1114 1.28 martin if (i == RAW_PART-1 && parts->dp.parent != NULL)
1115 1.7 martin continue;
1116 1.7 martin #endif
1117 1.7 martin if (parts->l.d_partitions[i].p_size > 0)
1118 1.7 martin continue;
1119 1.7 martin part = i;
1120 1.7 martin break;
1121 1.7 martin }
1122 1.7 martin
1123 1.7 martin if (part < 0) {
1124 1.7 martin if (parts->l.d_npartitions >= dl_maxpart) {
1125 1.7 martin if (err_msg)
1126 1.7 martin *err_msg =
1127 1.7 martin msg_string(MSG_err_too_many_partitions);
1128 1.7 martin return NO_PART;
1129 1.7 martin }
1130 1.7 martin
1131 1.7 martin part = parts->l.d_npartitions++;
1132 1.7 martin }
1133 1.7 martin parts->l.d_partitions[part].p_offset = info->start;
1134 1.7 martin parts->l.d_partitions[part].p_size = info->size;
1135 1.7 martin parts->l.d_partitions[part].p_fstype =
1136 1.7 martin dl_part_type_from_generic(info->nat_type);
1137 1.7 martin if (info->last_mounted && info->last_mounted[0])
1138 1.7 martin strlcpy(parts->last_mounted[part], info->last_mounted,
1139 1.7 martin sizeof(parts->last_mounted[part]));
1140 1.7 martin else
1141 1.7 martin parts->last_mounted[part][0] = 0;
1142 1.7 martin parts->fs_sub_type[part] = info->fs_sub_type;
1143 1.7 martin parts->dp.num_part++;
1144 1.7 martin
1145 1.7 martin return new_id;
1146 1.7 martin }
1147 1.7 martin
1148 1.1 martin static size_t
1149 1.1 martin disklabel_get_free_spaces(const struct disk_partitions *arg,
1150 1.1 martin struct disk_part_free_space *result, size_t max_num_result,
1151 1.1 martin daddr_t min_space_size, daddr_t align, daddr_t start, daddr_t ignore)
1152 1.1 martin {
1153 1.1 martin const struct disklabel_disk_partitions *parts =
1154 1.1 martin (const struct disklabel_disk_partitions*)arg;
1155 1.1 martin
1156 1.1 martin return disklabel_get_free_spaces_internal(parts, result,
1157 1.1 martin max_num_result, min_space_size, align, start, ignore);
1158 1.1 martin }
1159 1.1 martin
1160 1.1 martin static daddr_t
1161 1.1 martin disklabel_max_free_space_at(const struct disk_partitions *arg, daddr_t start)
1162 1.1 martin {
1163 1.1 martin const struct disklabel_disk_partitions *parts =
1164 1.1 martin (const struct disklabel_disk_partitions*)arg;
1165 1.1 martin struct disk_part_free_space space;
1166 1.1 martin
1167 1.1 martin if (disklabel_get_free_spaces_internal(parts, &space, 1, 1, 0,
1168 1.1 martin start, start) == 1)
1169 1.1 martin return space.size;
1170 1.1 martin
1171 1.1 martin return 0;
1172 1.1 martin }
1173 1.1 martin
1174 1.1 martin static daddr_t
1175 1.1 martin disklabel_get_alignment(const struct disk_partitions *arg)
1176 1.1 martin {
1177 1.1 martin const struct disklabel_disk_partitions *parts =
1178 1.1 martin (const struct disklabel_disk_partitions*)arg;
1179 1.1 martin
1180 1.1 martin return parts->ptn_alignment;
1181 1.1 martin }
1182 1.1 martin
1183 1.11 martin static part_id
1184 1.11 martin disklabel_find_by_name(struct disk_partitions *arg, const char *name)
1185 1.11 martin {
1186 1.11 martin const struct disklabel_disk_partitions *parts =
1187 1.11 martin (const struct disklabel_disk_partitions*)arg;
1188 1.11 martin char *sl, part;
1189 1.11 martin ptrdiff_t n;
1190 1.13 martin part_id pno, id, i;
1191 1.11 martin
1192 1.11 martin sl = strrchr(name, '/');
1193 1.11 martin if (sl == NULL)
1194 1.11 martin return NO_PART;
1195 1.11 martin n = sl - name;
1196 1.11 martin if (strncmp(name, parts->l.d_packname, n) != 0)
1197 1.11 martin return NO_PART;
1198 1.11 martin part = name[n+1];
1199 1.11 martin if (part < 'a')
1200 1.11 martin return NO_PART;
1201 1.11 martin pno = part - 'a';
1202 1.11 martin if (pno >= parts->l.d_npartitions)
1203 1.11 martin return NO_PART;
1204 1.11 martin if (parts->l.d_partitions[pno].p_fstype == FS_UNUSED)
1205 1.11 martin return NO_PART;
1206 1.13 martin for (id = 0, i = 0; i < pno; i++)
1207 1.13 martin if (parts->l.d_partitions[i].p_fstype != FS_UNUSED ||
1208 1.13 martin parts->l.d_partitions[i].p_size != 0)
1209 1.13 martin id++;
1210 1.13 martin return id;
1211 1.11 martin }
1212 1.11 martin
1213 1.1 martin static void
1214 1.1 martin disklabel_free(struct disk_partitions *arg)
1215 1.1 martin {
1216 1.1 martin
1217 1.1 martin assert(arg != NULL);
1218 1.15 martin free(__UNCONST(arg->disk));
1219 1.1 martin free(arg);
1220 1.1 martin }
1221 1.1 martin
1222 1.1 martin const struct disk_partitioning_scheme
1223 1.1 martin disklabel_parts = {
1224 1.1 martin .name = MSG_parttype_disklabel,
1225 1.1 martin .short_name = MSG_parttype_disklabel_short,
1226 1.1 martin .new_type_prompt = MSG_dl_get_custom_fstype,
1227 1.1 martin .size_limit = (daddr_t)UINT32_MAX,
1228 1.1 martin .write_to_disk = disklabel_write_to_disk,
1229 1.1 martin .read_from_disk = disklabel_parts_read,
1230 1.1 martin .create_new_for_disk = disklabel_parts_new,
1231 1.31 martin #ifdef NO_DISKLABEL_BOOT
1232 1.31 martin .have_boot_support = disklabel_non_bootable,
1233 1.31 martin #endif
1234 1.1 martin .change_disk_geom = disklabel_change_geom,
1235 1.30 martin .get_cylinder_size = disklabel_cylinder_size,
1236 1.11 martin .find_by_name = disklabel_find_by_name,
1237 1.1 martin .get_disk_pack_name = disklabel_get_disk_pack_name,
1238 1.1 martin .set_disk_pack_name = disklabel_set_disk_pack_name,
1239 1.1 martin .delete_all_partitions = disklabel_delete_all,
1240 1.1 martin .delete_partitions_in_range = disklabel_delete_range,
1241 1.1 martin .delete_partition = disklabel_delete,
1242 1.1 martin .get_part_types_count = disklabel_type_count,
1243 1.1 martin .get_part_type = disklabel_get_type,
1244 1.1 martin .get_generic_part_type = disklabel_get_generic_type,
1245 1.1 martin .get_fs_part_type = disklabel_get_fs_part_type,
1246 1.28 martin .get_default_fstype = disklabel_get_default_fstype,
1247 1.1 martin .create_custom_part_type = disklabel_create_custom_part_type,
1248 1.15 martin .create_unknown_part_type = disklabel_create_unknown_part_type,
1249 1.1 martin .get_part_alignment = disklabel_get_alignment,
1250 1.15 martin .adapt_foreign_part_info = generic_adapt_foreign_part_info,
1251 1.1 martin .get_part_info = disklabel_get_part_info,
1252 1.1 martin .can_add_partition = disklabel_can_add_partition,
1253 1.1 martin .set_part_info = disklabel_set_part_info,
1254 1.1 martin .add_partition = disklabel_add_partition,
1255 1.7 martin .add_outer_partition = disklabel_add_outer_partition,
1256 1.1 martin .max_free_space_at = disklabel_max_free_space_at,
1257 1.1 martin .get_free_spaces = disklabel_get_free_spaces,
1258 1.1 martin .get_part_device = disklabel_get_part_device,
1259 1.1 martin .free = disklabel_free,
1260 1.1 martin };
1261