Move partition scanning from userspace to module.
[zfs.git] / lib / libefi / rdwr_efi.c
1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21
22 /*
23  * Copyright (c) 2002, 2010, Oracle and/or its affiliates. All rights reserved.
24  */
25
26 #include <stdio.h>
27 #include <stdlib.h>
28 #include <errno.h>
29 #include <strings.h>
30 #include <unistd.h>
31 #include <uuid/uuid.h>
32 #include <zlib.h>
33 #include <libintl.h>
34 #include <sys/types.h>
35 #include <sys/dkio.h>
36 #include <sys/vtoc.h>
37 #include <sys/mhd.h>
38 #include <sys/param.h>
39 #include <sys/dktp/fdisk.h>
40 #include <sys/efi_partition.h>
41 #include <sys/byteorder.h>
42 #if defined(__linux__)
43 #include <linux/fs.h>
44 #endif
45
46 static struct uuid_to_ptag {
47         struct uuid     uuid;
48 } conversion_array[] = {
49         { EFI_UNUSED },
50         { EFI_BOOT },
51         { EFI_ROOT },
52         { EFI_SWAP },
53         { EFI_USR },
54         { EFI_BACKUP },
55         { EFI_UNUSED },         /* STAND is never used */
56         { EFI_VAR },
57         { EFI_HOME },
58         { EFI_ALTSCTR },
59         { EFI_UNUSED },         /* CACHE (cachefs) is never used */
60         { EFI_RESERVED },
61         { EFI_SYSTEM },
62         { EFI_LEGACY_MBR },
63         { EFI_SYMC_PUB },
64         { EFI_SYMC_CDS },
65         { EFI_MSFT_RESV },
66         { EFI_DELL_BASIC },
67         { EFI_DELL_RAID },
68         { EFI_DELL_SWAP },
69         { EFI_DELL_LVM },
70         { EFI_DELL_RESV },
71         { EFI_AAPL_HFS },
72         { EFI_AAPL_UFS }
73 };
74
75 /*
76  * Default vtoc information for non-SVr4 partitions
77  */
78 struct dk_map2  default_vtoc_map[NDKMAP] = {
79         {       V_ROOT,         0       },              /* a - 0 */
80         {       V_SWAP,         V_UNMNT },              /* b - 1 */
81         {       V_BACKUP,       V_UNMNT },              /* c - 2 */
82         {       V_UNASSIGNED,   0       },              /* d - 3 */
83         {       V_UNASSIGNED,   0       },              /* e - 4 */
84         {       V_UNASSIGNED,   0       },              /* f - 5 */
85         {       V_USR,          0       },              /* g - 6 */
86         {       V_UNASSIGNED,   0       },              /* h - 7 */
87
88 #if defined(_SUNOS_VTOC_16)
89
90 #if defined(i386) || defined(__amd64) || defined(__arm) || defined(__powerpc)
91         {       V_BOOT,         V_UNMNT },              /* i - 8 */
92         {       V_ALTSCTR,      0       },              /* j - 9 */
93
94 #else
95 #error No VTOC format defined.
96 #endif                  /* defined(i386) */
97
98         {       V_UNASSIGNED,   0       },              /* k - 10 */
99         {       V_UNASSIGNED,   0       },              /* l - 11 */
100         {       V_UNASSIGNED,   0       },              /* m - 12 */
101         {       V_UNASSIGNED,   0       },              /* n - 13 */
102         {       V_UNASSIGNED,   0       },              /* o - 14 */
103         {       V_UNASSIGNED,   0       },              /* p - 15 */
104 #endif                  /* defined(_SUNOS_VTOC_16) */
105 };
106
107 #ifdef DEBUG
108 int efi_debug = 1;
109 #else
110 int efi_debug = 0;
111 #endif
112
113 static int efi_read(int, struct dk_gpt *);
114
115 /*
116  * Return a 32-bit CRC of the contents of the buffer.  Pre-and-post
117  * one's conditioning will be handled by crc32() internally.
118  */
119 static uint32_t
120 efi_crc32(const unsigned char *buf, unsigned int size)
121 {
122         uint32_t crc = crc32(0, Z_NULL, 0);
123
124         crc = crc32(crc, buf, size);
125
126         return (crc);
127 }
128
129 static int
130 read_disk_info(int fd, diskaddr_t *capacity, uint_t *lbsize)
131 {
132         int sector_size;
133         unsigned long long capacity_size;
134
135         if (ioctl(fd, BLKSSZGET, &sector_size) < 0)
136                 return (-1);
137
138         if (ioctl(fd, BLKGETSIZE64, &capacity_size) < 0)
139                 return (-1);
140
141         *lbsize = (uint_t)sector_size;
142         *capacity = (diskaddr_t)(capacity_size / sector_size);
143
144         return (0);
145 }
146
147 static int
148 efi_get_info(int fd, struct dk_cinfo *dki_info)
149 {
150 #if defined(__linux__)
151         char *path;
152         char *dev_path;
153         int rval = 0;
154
155         memset(dki_info, 0, sizeof(*dki_info));
156
157         path = calloc(PATH_MAX, 1);
158         if (path == NULL)
159                 goto error;
160
161         /*
162          * The simplest way to get the partition number under linux is
163          * to parse it out of the /dev/<disk><parition> block device name.
164          * The kernel creates this using the partition number when it
165          * populates /dev/ so it may be trusted.  The tricky bit here is
166          * that the naming convention is based on the block device type.
167          * So we need to take this in to account when parsing out the
168          * partition information.  Another issue is that the libefi API
169          * API only provides the open fd and not the file path.  To handle
170          * this realpath(3) is used to resolve the block device name from
171          * /proc/self/fd/<fd>.  Aside from the partition number we collect
172          * some additional device info.
173          */
174         (void) sprintf(path, "/proc/self/fd/%d", fd);
175         dev_path = realpath(path, NULL);
176         free(path);
177
178         if (dev_path == NULL)
179                 goto error;
180
181         if ((strncmp(dev_path, "/dev/sd", 7) == 0)) {
182                 strcpy(dki_info->dki_cname, "sd");
183                 dki_info->dki_ctype = DKC_SCSI_CCS;
184                 rval = sscanf(dev_path, "/dev/%[a-zA-Z]%hu",
185                               dki_info->dki_dname,
186                               &dki_info->dki_partition);
187         } else if ((strncmp(dev_path, "/dev/hd", 7) == 0)) {
188                 strcpy(dki_info->dki_cname, "hd");
189                 dki_info->dki_ctype = DKC_DIRECT;
190                 rval = sscanf(dev_path, "/dev/%[a-zA-Z]%hu",
191                               dki_info->dki_dname,
192                               &dki_info->dki_partition);
193         } else if ((strncmp(dev_path, "/dev/md", 7) == 0)) {
194                 strcpy(dki_info->dki_cname, "pseudo");
195                 dki_info->dki_ctype = DKC_MD;
196                 rval = sscanf(dev_path, "/dev/%[a-zA-Z0-9]p%hu",
197                               dki_info->dki_dname,
198                               &dki_info->dki_partition);
199         } else if ((strncmp(dev_path, "/dev/vd", 7) == 0)) {
200                 strcpy(dki_info->dki_cname, "vd");
201                 dki_info->dki_ctype = DKC_MD;
202                 rval = sscanf(dev_path, "/dev/%[a-zA-Z]%hu",
203                               dki_info->dki_dname,
204                               &dki_info->dki_partition);
205         } else if ((strncmp(dev_path, "/dev/dm-", 8) == 0)) {
206                 strcpy(dki_info->dki_cname, "pseudo");
207                 dki_info->dki_ctype = DKC_VBD;
208                 rval = sscanf(dev_path, "/dev/%[a-zA-Z0-9-]p%hu",
209                               dki_info->dki_dname,
210                               &dki_info->dki_partition);
211         } else if ((strncmp(dev_path, "/dev/ram", 8) == 0)) {
212                 strcpy(dki_info->dki_cname, "pseudo");
213                 dki_info->dki_ctype = DKC_PCMCIA_MEM;
214                 rval = sscanf(dev_path, "/dev/%[a-zA-Z0-9]p%hu",
215                               dki_info->dki_dname,
216                               &dki_info->dki_partition);
217         } else if ((strncmp(dev_path, "/dev/loop", 9) == 0)) {
218                 strcpy(dki_info->dki_cname, "pseudo");
219                 dki_info->dki_ctype = DKC_VBD;
220                 rval = sscanf(dev_path, "/dev/%[a-zA-Z0-9]p%hu",
221                               dki_info->dki_dname,
222                               &dki_info->dki_partition);
223         } else {
224                 strcpy(dki_info->dki_dname, "unknown");
225                 strcpy(dki_info->dki_cname, "unknown");
226                 dki_info->dki_ctype = DKC_UNKNOWN;
227         }
228
229         switch (rval) {
230         case 0:
231                 errno = EINVAL;
232                 goto error;
233         case 1:
234                 dki_info->dki_partition = 0;
235         }
236
237         free(dev_path);
238 #else
239         if (ioctl(fd, DKIOCINFO, (caddr_t)dki_info) == -1)
240                 goto error;
241 #endif
242         return (0);
243 error:
244         if (efi_debug)
245                 (void) fprintf(stderr, "DKIOCINFO errno 0x%x\n", errno);
246
247         switch (errno) {
248         case EIO:
249                 return (VT_EIO);
250         case EINVAL:
251                 return (VT_EINVAL);
252         default:
253                 return (VT_ERROR);
254         }
255 }
256
257 /*
258  * the number of blocks the EFI label takes up (round up to nearest
259  * block)
260  */
261 #define NBLOCKS(p, l)   (1 + ((((p) * (int)sizeof (efi_gpe_t))  + \
262                                 ((l) - 1)) / (l)))
263 /* number of partitions -- limited by what we can malloc */
264 #define MAX_PARTS       ((4294967295UL - sizeof (struct dk_gpt)) / \
265                             sizeof (struct dk_part))
266
267 int
268 efi_alloc_and_init(int fd, uint32_t nparts, struct dk_gpt **vtoc)
269 {
270         diskaddr_t      capacity = 0;
271         uint_t          lbsize = 0;
272         uint_t          nblocks;
273         size_t          length;
274         struct dk_gpt   *vptr;
275         struct uuid     uuid;
276         struct dk_cinfo dki_info;
277
278         if (read_disk_info(fd, &capacity, &lbsize) != 0)
279                 return (-1);
280
281 #if defined(__linux__)
282         if (efi_get_info(fd, &dki_info) != 0)
283                 return (-1);
284
285         if (dki_info.dki_partition != 0)
286                 return (-1);
287
288         if ((dki_info.dki_ctype == DKC_PCMCIA_MEM) ||
289             (dki_info.dki_ctype == DKC_VBD) ||
290             (dki_info.dki_ctype == DKC_UNKNOWN))
291                 return (-1);
292 #endif
293
294         nblocks = NBLOCKS(nparts, lbsize);
295         if ((nblocks * lbsize) < EFI_MIN_ARRAY_SIZE + lbsize) {
296                 /* 16K plus one block for the GPT */
297                 nblocks = EFI_MIN_ARRAY_SIZE / lbsize + 1;
298         }
299
300         if (nparts > MAX_PARTS) {
301                 if (efi_debug) {
302                         (void) fprintf(stderr,
303                         "the maximum number of partitions supported is %lu\n",
304                             MAX_PARTS);
305                 }
306                 return (-1);
307         }
308
309         length = sizeof (struct dk_gpt) +
310             sizeof (struct dk_part) * (nparts - 1);
311
312         if ((*vtoc = calloc(length, 1)) == NULL)
313                 return (-1);
314
315         vptr = *vtoc;
316
317         vptr->efi_version = EFI_VERSION_CURRENT;
318         vptr->efi_lbasize = lbsize;
319         vptr->efi_nparts = nparts;
320         /*
321          * add one block here for the PMBR; on disks with a 512 byte
322          * block size and 128 or fewer partitions, efi_first_u_lba
323          * should work out to "34"
324          */
325         vptr->efi_first_u_lba = nblocks + 1;
326         vptr->efi_last_lba = capacity - 1;
327         vptr->efi_altern_lba = capacity -1;
328         vptr->efi_last_u_lba = vptr->efi_last_lba - nblocks;
329
330         (void) uuid_generate((uchar_t *)&uuid);
331         UUID_LE_CONVERT(vptr->efi_disk_uguid, uuid);
332         return (0);
333 }
334
335 /*
336  * Read EFI - return partition number upon success.
337  */
338 int
339 efi_alloc_and_read(int fd, struct dk_gpt **vtoc)
340 {
341         int                     rval;
342         uint32_t                nparts;
343         int                     length;
344
345         /* figure out the number of entries that would fit into 16K */
346         nparts = EFI_MIN_ARRAY_SIZE / sizeof (efi_gpe_t);
347         length = (int) sizeof (struct dk_gpt) +
348             (int) sizeof (struct dk_part) * (nparts - 1);
349         if ((*vtoc = calloc(length, 1)) == NULL)
350                 return (VT_ERROR);
351
352         (*vtoc)->efi_nparts = nparts;
353         rval = efi_read(fd, *vtoc);
354
355         if ((rval == VT_EINVAL) && (*vtoc)->efi_nparts > nparts) {
356                 void *tmp;
357                 length = (int) sizeof (struct dk_gpt) +
358                     (int) sizeof (struct dk_part) *
359                     ((*vtoc)->efi_nparts - 1);
360                 nparts = (*vtoc)->efi_nparts;
361                 if ((tmp = realloc(*vtoc, length)) == NULL) {
362                         free (*vtoc);
363                         *vtoc = NULL;
364                         return (VT_ERROR);
365                 } else {
366                         *vtoc = tmp;
367                         rval = efi_read(fd, *vtoc);
368                 }
369         }
370
371         if (rval < 0) {
372                 if (efi_debug) {
373                         (void) fprintf(stderr,
374                             "read of EFI table failed, rval=%d\n", rval);
375                 }
376                 free (*vtoc);
377                 *vtoc = NULL;
378         }
379
380         return (rval);
381 }
382
383 static int
384 efi_ioctl(int fd, int cmd, dk_efi_t *dk_ioc)
385 {
386         void *data = dk_ioc->dki_data;
387         int error;
388 #if defined(__linux__)
389         diskaddr_t capacity;
390         uint_t lbsize;
391
392         /*
393          * When the IO is not being performed in kernel as an ioctl we need
394          * to know the sector size so we can seek to the proper byte offset.
395          */
396         if (read_disk_info(fd, &capacity, &lbsize) == -1) {
397                 if (efi_debug)
398                         fprintf(stderr,"unable to read disk info: %d",errno);
399
400                 errno = EIO;
401                 return -1;
402         }
403
404         switch (cmd) {
405         case DKIOCGETEFI:
406                 if (lbsize == 0) {
407                         if (efi_debug)
408                                 (void) fprintf(stderr, "DKIOCGETEFI assuming "
409                                                "LBA %d bytes\n", DEV_BSIZE);
410
411                         lbsize = DEV_BSIZE;
412                 }
413
414                 error = lseek(fd, dk_ioc->dki_lba * lbsize, SEEK_SET);
415                 if (error == -1) {
416                         if (efi_debug)
417                                 (void) fprintf(stderr, "DKIOCGETEFI lseek "
418                                                "error: %d\n", errno);
419                         return error;
420                 }
421
422                 error = read(fd, data, dk_ioc->dki_length);
423                 if (error == -1) {
424                         if (efi_debug)
425                                 (void) fprintf(stderr, "DKIOCGETEFI read "
426                                                "error: %d\n", errno);
427                         return error;
428                 }
429
430                 if (error != dk_ioc->dki_length) {
431                         if (efi_debug)
432                                 (void) fprintf(stderr, "DKIOCGETEFI short "
433                                                "read of %d bytes\n", error);
434                         errno = EIO;
435                         return -1;
436                 }
437                 error = 0;
438                 break;
439
440         case DKIOCSETEFI:
441                 if (lbsize == 0) {
442                         if (efi_debug)
443                                 (void) fprintf(stderr, "DKIOCSETEFI unknown "
444                                                "LBA size\n");
445                         errno = EIO;
446                         return -1;
447                 }
448
449                 error = lseek(fd, dk_ioc->dki_lba * lbsize, SEEK_SET);
450                 if (error == -1) {
451                         if (efi_debug)
452                                 (void) fprintf(stderr, "DKIOCSETEFI lseek "
453                                                "error: %d\n", errno);
454                         return error;
455                 }
456
457                 error = write(fd, data, dk_ioc->dki_length);
458                 if (error == -1) {
459                         if (efi_debug)
460                                 (void) fprintf(stderr, "DKIOCSETEFI write "
461                                                "error: %d\n", errno);
462                         return error;
463                 }
464
465                 if (error != dk_ioc->dki_length) {
466                         if (efi_debug)
467                                 (void) fprintf(stderr, "DKIOCSETEFI short "
468                                                "write of %d bytes\n", error);
469                         errno = EIO;
470                         return -1;
471                 }
472
473                 /* Sync the new EFI table to disk */
474                 error = fsync(fd);
475                 if (error == -1)
476                         return error;
477
478                 /* Ensure any local disk cache is also flushed */
479                 if (ioctl(fd, BLKFLSBUF, 0) == -1)
480                         return error;
481
482                 error = 0;
483                 break;
484
485         default:
486                 if (efi_debug)
487                         (void) fprintf(stderr, "unsupported ioctl()\n");
488
489                 errno = EIO;
490                 return -1;
491         }
492 #else
493         dk_ioc->dki_data_64 = (uint64_t)(uintptr_t)data;
494         error = ioctl(fd, cmd, (void *)dk_ioc);
495         dk_ioc->dki_data = data;
496 #endif
497         return (error);
498 }
499
500 int efi_rescan(int fd)
501 {
502 #if defined(__linux__)
503         int retry = 5;
504         int error;
505
506         /* Notify the kernel a devices partition table has been updated */
507         while ((error = ioctl(fd, BLKRRPART)) != 0) {
508                 if (--retry == 0) {
509                         (void) fprintf(stderr, "the kernel failed to rescan "
510                                        "the partition table: %d\n", errno);
511                         return (-1);
512                 }
513         }
514 #endif
515
516         return (0);
517 }
518
519 static int
520 check_label(int fd, dk_efi_t *dk_ioc)
521 {
522         efi_gpt_t               *efi;
523         uint_t                  crc;
524
525         if (efi_ioctl(fd, DKIOCGETEFI, dk_ioc) == -1) {
526                 switch (errno) {
527                 case EIO:
528                         return (VT_EIO);
529                 default:
530                         return (VT_ERROR);
531                 }
532         }
533         efi = dk_ioc->dki_data;
534         if (efi->efi_gpt_Signature != LE_64(EFI_SIGNATURE)) {
535                 if (efi_debug)
536                         (void) fprintf(stderr,
537                             "Bad EFI signature: 0x%llx != 0x%llx\n",
538                             (long long)efi->efi_gpt_Signature,
539                             (long long)LE_64(EFI_SIGNATURE));
540                 return (VT_EINVAL);
541         }
542
543         /*
544          * check CRC of the header; the size of the header should
545          * never be larger than one block
546          */
547         crc = efi->efi_gpt_HeaderCRC32;
548         efi->efi_gpt_HeaderCRC32 = 0;
549         len_t headerSize = (len_t)LE_32(efi->efi_gpt_HeaderSize);
550
551         if(headerSize < EFI_MIN_LABEL_SIZE || headerSize > EFI_LABEL_SIZE) {
552                 if (efi_debug)
553                         (void) fprintf(stderr,
554                                 "Invalid EFI HeaderSize %llu.  Assuming %d.\n",
555                                 headerSize, EFI_MIN_LABEL_SIZE);
556         }
557
558         if ((headerSize > dk_ioc->dki_length) ||
559             crc != LE_32(efi_crc32((unsigned char *)efi, headerSize))) {
560                 if (efi_debug)
561                         (void) fprintf(stderr,
562                             "Bad EFI CRC: 0x%x != 0x%x\n",
563                             crc, LE_32(efi_crc32((unsigned char *)efi,
564                             headerSize)));
565                 return (VT_EINVAL);
566         }
567
568         return (0);
569 }
570
571 static int
572 efi_read(int fd, struct dk_gpt *vtoc)
573 {
574         int                     i, j;
575         int                     label_len;
576         int                     rval = 0;
577         int                     md_flag = 0;
578         int                     vdc_flag = 0;
579         diskaddr_t              capacity = 0;
580         uint_t                  lbsize = 0;
581         struct dk_minfo         disk_info;
582         dk_efi_t                dk_ioc;
583         efi_gpt_t               *efi;
584         efi_gpe_t               *efi_parts;
585         struct dk_cinfo         dki_info;
586         uint32_t                user_length;
587         boolean_t               legacy_label = B_FALSE;
588
589         /*
590          * get the partition number for this file descriptor.
591          */
592         if ((rval = efi_get_info(fd, &dki_info)) != 0)
593                 return rval;
594
595         if ((strncmp(dki_info.dki_cname, "pseudo", 7) == 0) &&
596             (strncmp(dki_info.dki_dname, "md", 3) == 0)) {
597                 md_flag++;
598         } else if ((strncmp(dki_info.dki_cname, "vdc", 4) == 0) &&
599             (strncmp(dki_info.dki_dname, "vdc", 4) == 0)) {
600                 /*
601                  * The controller and drive name "vdc" (virtual disk client)
602                  * indicates a LDoms virtual disk.
603                  */
604                 vdc_flag++;
605         }
606
607         /* get the LBA size */
608         if (read_disk_info(fd, &capacity, &lbsize) == -1) {
609                 if (efi_debug) {
610                         (void) fprintf(stderr,
611                                        "unable to read disk info: %d",
612                                        errno);
613                 }
614                 return (VT_EINVAL);
615         }
616
617         disk_info.dki_lbsize = lbsize;
618         disk_info.dki_capacity = capacity;
619
620         if (disk_info.dki_lbsize == 0) {
621                 if (efi_debug) {
622                         (void) fprintf(stderr,
623                             "efi_read: assuming LBA 512 bytes\n");
624                 }
625                 disk_info.dki_lbsize = DEV_BSIZE;
626         }
627         /*
628          * Read the EFI GPT to figure out how many partitions we need
629          * to deal with.
630          */
631         dk_ioc.dki_lba = 1;
632         if (NBLOCKS(vtoc->efi_nparts, disk_info.dki_lbsize) < 34) {
633                 label_len = EFI_MIN_ARRAY_SIZE + disk_info.dki_lbsize;
634         } else {
635                 label_len = vtoc->efi_nparts * (int) sizeof (efi_gpe_t) +
636                     disk_info.dki_lbsize;
637                 if (label_len % disk_info.dki_lbsize) {
638                         /* pad to physical sector size */
639                         label_len += disk_info.dki_lbsize;
640                         label_len &= ~(disk_info.dki_lbsize - 1);
641                 }
642         }
643
644         if (posix_memalign((void **)&dk_ioc.dki_data,
645                            disk_info.dki_lbsize, label_len))
646                 return (VT_ERROR);
647
648         memset(dk_ioc.dki_data, 0, label_len);
649         dk_ioc.dki_length = disk_info.dki_lbsize;
650         user_length = vtoc->efi_nparts;
651         efi = dk_ioc.dki_data;
652         if (md_flag) {
653                 dk_ioc.dki_length = label_len;
654                 if (efi_ioctl(fd, DKIOCGETEFI, &dk_ioc) == -1) {
655                         switch (errno) {
656                         case EIO:
657                                 return (VT_EIO);
658                         default:
659                                 return (VT_ERROR);
660                         }
661                 }
662         } else if ((rval = check_label(fd, &dk_ioc)) == VT_EINVAL) {
663                 /*
664                  * No valid label here; try the alternate. Note that here
665                  * we just read GPT header and save it into dk_ioc.data,
666                  * Later, we will read GUID partition entry array if we
667                  * can get valid GPT header.
668                  */
669
670                 /*
671                  * This is a workaround for legacy systems. In the past, the
672                  * last sector of SCSI disk was invisible on x86 platform. At
673                  * that time, backup label was saved on the next to the last
674                  * sector. It is possible for users to move a disk from previous
675                  * solaris system to present system. Here, we attempt to search
676                  * legacy backup EFI label first.
677                  */
678                 dk_ioc.dki_lba = disk_info.dki_capacity - 2;
679                 dk_ioc.dki_length = disk_info.dki_lbsize;
680                 rval = check_label(fd, &dk_ioc);
681                 if (rval == VT_EINVAL) {
682                         /*
683                          * we didn't find legacy backup EFI label, try to
684                          * search backup EFI label in the last block.
685                          */
686                         dk_ioc.dki_lba = disk_info.dki_capacity - 1;
687                         dk_ioc.dki_length = disk_info.dki_lbsize;
688                         rval = check_label(fd, &dk_ioc);
689                         if (rval == 0) {
690                                 legacy_label = B_TRUE;
691                                 if (efi_debug)
692                                         (void) fprintf(stderr,
693                                             "efi_read: primary label corrupt; "
694                                             "using EFI backup label located on"
695                                             " the last block\n");
696                         }
697                 } else {
698                         if ((efi_debug) && (rval == 0))
699                                 (void) fprintf(stderr, "efi_read: primary label"
700                                     " corrupt; using legacy EFI backup label "
701                                     " located on the next to last block\n");
702                 }
703
704                 if (rval == 0) {
705                         dk_ioc.dki_lba = LE_64(efi->efi_gpt_PartitionEntryLBA);
706                         vtoc->efi_flags |= EFI_GPT_PRIMARY_CORRUPT;
707                         vtoc->efi_nparts =
708                             LE_32(efi->efi_gpt_NumberOfPartitionEntries);
709                         /*
710                          * Partition tables are between backup GPT header
711                          * table and ParitionEntryLBA (the starting LBA of
712                          * the GUID partition entries array). Now that we
713                          * already got valid GPT header and saved it in
714                          * dk_ioc.dki_data, we try to get GUID partition
715                          * entry array here.
716                          */
717                         /* LINTED */
718                         dk_ioc.dki_data = (efi_gpt_t *)((char *)dk_ioc.dki_data
719                             + disk_info.dki_lbsize);
720                         if (legacy_label)
721                                 dk_ioc.dki_length = disk_info.dki_capacity - 1 -
722                                     dk_ioc.dki_lba;
723                         else
724                                 dk_ioc.dki_length = disk_info.dki_capacity - 2 -
725                                     dk_ioc.dki_lba;
726                         dk_ioc.dki_length *= disk_info.dki_lbsize;
727                         if (dk_ioc.dki_length >
728                             ((len_t)label_len - sizeof (*dk_ioc.dki_data))) {
729                                 rval = VT_EINVAL;
730                         } else {
731                                 /*
732                                  * read GUID partition entry array
733                                  */
734                                 rval = efi_ioctl(fd, DKIOCGETEFI, &dk_ioc);
735                         }
736                 }
737
738         } else if (rval == 0) {
739
740                 dk_ioc.dki_lba = LE_64(efi->efi_gpt_PartitionEntryLBA);
741                 /* LINTED */
742                 dk_ioc.dki_data = (efi_gpt_t *)((char *)dk_ioc.dki_data
743                     + disk_info.dki_lbsize);
744                 dk_ioc.dki_length = label_len - disk_info.dki_lbsize;
745                 rval = efi_ioctl(fd, DKIOCGETEFI, &dk_ioc);
746
747         } else if (vdc_flag && rval == VT_ERROR && errno == EINVAL) {
748                 /*
749                  * When the device is a LDoms virtual disk, the DKIOCGETEFI
750                  * ioctl can fail with EINVAL if the virtual disk backend
751                  * is a ZFS volume serviced by a domain running an old version
752                  * of Solaris. This is because the DKIOCGETEFI ioctl was
753                  * initially incorrectly implemented for a ZFS volume and it
754                  * expected the GPT and GPE to be retrieved with a single ioctl.
755                  * So we try to read the GPT and the GPE using that old style
756                  * ioctl.
757                  */
758                 dk_ioc.dki_lba = 1;
759                 dk_ioc.dki_length = label_len;
760                 rval = check_label(fd, &dk_ioc);
761         }
762
763         if (rval < 0) {
764                 free(efi);
765                 return (rval);
766         }
767
768         /* LINTED -- always longlong aligned */
769         efi_parts = (efi_gpe_t *)(((char *)efi) + disk_info.dki_lbsize);
770
771         /*
772          * Assemble this into a "dk_gpt" struct for easier
773          * digestibility by applications.
774          */
775         vtoc->efi_version = LE_32(efi->efi_gpt_Revision);
776         vtoc->efi_nparts = LE_32(efi->efi_gpt_NumberOfPartitionEntries);
777         vtoc->efi_part_size = LE_32(efi->efi_gpt_SizeOfPartitionEntry);
778         vtoc->efi_lbasize = disk_info.dki_lbsize;
779         vtoc->efi_last_lba = disk_info.dki_capacity - 1;
780         vtoc->efi_first_u_lba = LE_64(efi->efi_gpt_FirstUsableLBA);
781         vtoc->efi_last_u_lba = LE_64(efi->efi_gpt_LastUsableLBA);
782         vtoc->efi_altern_lba = LE_64(efi->efi_gpt_AlternateLBA);
783         UUID_LE_CONVERT(vtoc->efi_disk_uguid, efi->efi_gpt_DiskGUID);
784
785         /*
786          * If the array the user passed in is too small, set the length
787          * to what it needs to be and return
788          */
789         if (user_length < vtoc->efi_nparts) {
790                 return (VT_EINVAL);
791         }
792
793         for (i = 0; i < vtoc->efi_nparts; i++) {
794
795                 UUID_LE_CONVERT(vtoc->efi_parts[i].p_guid,
796                     efi_parts[i].efi_gpe_PartitionTypeGUID);
797
798                 for (j = 0;
799                     j < sizeof (conversion_array)
800                     / sizeof (struct uuid_to_ptag); j++) {
801
802                         if (bcmp(&vtoc->efi_parts[i].p_guid,
803                             &conversion_array[j].uuid,
804                             sizeof (struct uuid)) == 0) {
805                                 vtoc->efi_parts[i].p_tag = j;
806                                 break;
807                         }
808                 }
809                 if (vtoc->efi_parts[i].p_tag == V_UNASSIGNED)
810                         continue;
811                 vtoc->efi_parts[i].p_flag =
812                     LE_16(efi_parts[i].efi_gpe_Attributes.PartitionAttrs);
813                 vtoc->efi_parts[i].p_start =
814                     LE_64(efi_parts[i].efi_gpe_StartingLBA);
815                 vtoc->efi_parts[i].p_size =
816                     LE_64(efi_parts[i].efi_gpe_EndingLBA) -
817                     vtoc->efi_parts[i].p_start + 1;
818                 for (j = 0; j < EFI_PART_NAME_LEN; j++) {
819                         vtoc->efi_parts[i].p_name[j] =
820                             (uchar_t)LE_16(
821                             efi_parts[i].efi_gpe_PartitionName[j]);
822                 }
823
824                 UUID_LE_CONVERT(vtoc->efi_parts[i].p_uguid,
825                     efi_parts[i].efi_gpe_UniquePartitionGUID);
826         }
827         free(efi);
828
829         return (dki_info.dki_partition);
830 }
831
832 /* writes a "protective" MBR */
833 static int
834 write_pmbr(int fd, struct dk_gpt *vtoc)
835 {
836         dk_efi_t        dk_ioc;
837         struct mboot    mb;
838         uchar_t         *cp;
839         diskaddr_t      size_in_lba;
840         uchar_t         *buf;
841         int             len;
842
843         len = (vtoc->efi_lbasize == 0) ? sizeof (mb) : vtoc->efi_lbasize;
844         if (posix_memalign((void **)&buf, len, len))
845                 return (VT_ERROR);
846
847         /*
848          * Preserve any boot code and disk signature if the first block is
849          * already an MBR.
850          */
851         memset(buf, 0, len);
852         dk_ioc.dki_lba = 0;
853         dk_ioc.dki_length = len;
854         /* LINTED -- always longlong aligned */
855         dk_ioc.dki_data = (efi_gpt_t *)buf;
856         if (efi_ioctl(fd, DKIOCGETEFI, &dk_ioc) == -1) {
857                 (void *) memcpy(&mb, buf, sizeof (mb));
858                 bzero(&mb, sizeof (mb));
859                 mb.signature = LE_16(MBB_MAGIC);
860         } else {
861                 (void *) memcpy(&mb, buf, sizeof (mb));
862                 if (mb.signature != LE_16(MBB_MAGIC)) {
863                         bzero(&mb, sizeof (mb));
864                         mb.signature = LE_16(MBB_MAGIC);
865                 }
866         }
867
868         bzero(&mb.parts, sizeof (mb.parts));
869         cp = (uchar_t *)&mb.parts[0];
870         /* bootable or not */
871         *cp++ = 0;
872         /* beginning CHS; 0xffffff if not representable */
873         *cp++ = 0xff;
874         *cp++ = 0xff;
875         *cp++ = 0xff;
876         /* OS type */
877         *cp++ = EFI_PMBR;
878         /* ending CHS; 0xffffff if not representable */
879         *cp++ = 0xff;
880         *cp++ = 0xff;
881         *cp++ = 0xff;
882         /* starting LBA: 1 (little endian format) by EFI definition */
883         *cp++ = 0x01;
884         *cp++ = 0x00;
885         *cp++ = 0x00;
886         *cp++ = 0x00;
887         /* ending LBA: last block on the disk (little endian format) */
888         size_in_lba = vtoc->efi_last_lba;
889         if (size_in_lba < 0xffffffff) {
890                 *cp++ = (size_in_lba & 0x000000ff);
891                 *cp++ = (size_in_lba & 0x0000ff00) >> 8;
892                 *cp++ = (size_in_lba & 0x00ff0000) >> 16;
893                 *cp++ = (size_in_lba & 0xff000000) >> 24;
894         } else {
895                 *cp++ = 0xff;
896                 *cp++ = 0xff;
897                 *cp++ = 0xff;
898                 *cp++ = 0xff;
899         }
900
901         (void *) memcpy(buf, &mb, sizeof (mb));
902         /* LINTED -- always longlong aligned */
903         dk_ioc.dki_data = (efi_gpt_t *)buf;
904         dk_ioc.dki_lba = 0;
905         dk_ioc.dki_length = len;
906         if (efi_ioctl(fd, DKIOCSETEFI, &dk_ioc) == -1) {
907                 free(buf);
908                 switch (errno) {
909                 case EIO:
910                         return (VT_EIO);
911                 case EINVAL:
912                         return (VT_EINVAL);
913                 default:
914                         return (VT_ERROR);
915                 }
916         }
917         free(buf);
918         return (0);
919 }
920
921 /* make sure the user specified something reasonable */
922 static int
923 check_input(struct dk_gpt *vtoc)
924 {
925         int                     resv_part = -1;
926         int                     i, j;
927         diskaddr_t              istart, jstart, isize, jsize, endsect;
928
929         /*
930          * Sanity-check the input (make sure no partitions overlap)
931          */
932         for (i = 0; i < vtoc->efi_nparts; i++) {
933                 /* It can't be unassigned and have an actual size */
934                 if ((vtoc->efi_parts[i].p_tag == V_UNASSIGNED) &&
935                     (vtoc->efi_parts[i].p_size != 0)) {
936                         if (efi_debug) {
937                                 (void) fprintf(stderr, "partition %d is "
938                                     "\"unassigned\" but has a size of %llu",
939                                     i, vtoc->efi_parts[i].p_size);
940                         }
941                         return (VT_EINVAL);
942                 }
943                 if (vtoc->efi_parts[i].p_tag == V_UNASSIGNED) {
944                         if (uuid_is_null((uchar_t *)&vtoc->efi_parts[i].p_guid))
945                                 continue;
946                         /* we have encountered an unknown uuid */
947                         vtoc->efi_parts[i].p_tag = 0xff;
948                 }
949                 if (vtoc->efi_parts[i].p_tag == V_RESERVED) {
950                         if (resv_part != -1) {
951                                 if (efi_debug) {
952                                         (void) fprintf(stderr, "found "
953                                             "duplicate reserved partition "
954                                             "at %d\n", i);
955                                 }
956                                 return (VT_EINVAL);
957                         }
958                         resv_part = i;
959                 }
960                 if ((vtoc->efi_parts[i].p_start < vtoc->efi_first_u_lba) ||
961                     (vtoc->efi_parts[i].p_start > vtoc->efi_last_u_lba)) {
962                         if (efi_debug) {
963                                 (void) fprintf(stderr,
964                                     "Partition %d starts at %llu.  ",
965                                     i,
966                                     vtoc->efi_parts[i].p_start);
967                                 (void) fprintf(stderr,
968                                     "It must be between %llu and %llu.\n",
969                                     vtoc->efi_first_u_lba,
970                                     vtoc->efi_last_u_lba);
971                         }
972                         return (VT_EINVAL);
973                 }
974                 if ((vtoc->efi_parts[i].p_start +
975                     vtoc->efi_parts[i].p_size <
976                     vtoc->efi_first_u_lba) ||
977                     (vtoc->efi_parts[i].p_start +
978                     vtoc->efi_parts[i].p_size >
979                     vtoc->efi_last_u_lba + 1)) {
980                         if (efi_debug) {
981                                 (void) fprintf(stderr,
982                                     "Partition %d ends at %llu.  ",
983                                     i,
984                                     vtoc->efi_parts[i].p_start +
985                                     vtoc->efi_parts[i].p_size);
986                                 (void) fprintf(stderr,
987                                     "It must be between %llu and %llu.\n",
988                                     vtoc->efi_first_u_lba,
989                                     vtoc->efi_last_u_lba);
990                         }
991                         return (VT_EINVAL);
992                 }
993
994                 for (j = 0; j < vtoc->efi_nparts; j++) {
995                         isize = vtoc->efi_parts[i].p_size;
996                         jsize = vtoc->efi_parts[j].p_size;
997                         istart = vtoc->efi_parts[i].p_start;
998                         jstart = vtoc->efi_parts[j].p_start;
999                         if ((i != j) && (isize != 0) && (jsize != 0)) {
1000                                 endsect = jstart + jsize -1;
1001                                 if ((jstart <= istart) &&
1002                                     (istart <= endsect)) {
1003                                         if (efi_debug) {
1004                                                 (void) fprintf(stderr,
1005                                                     "Partition %d overlaps "
1006                                                     "partition %d.", i, j);
1007                                         }
1008                                         return (VT_EINVAL);
1009                                 }
1010                         }
1011                 }
1012         }
1013         /* just a warning for now */
1014         if ((resv_part == -1) && efi_debug) {
1015                 (void) fprintf(stderr,
1016                     "no reserved partition found\n");
1017         }
1018         return (0);
1019 }
1020
1021 /*
1022  * add all the unallocated space to the current label
1023  */
1024 int
1025 efi_use_whole_disk(int fd)
1026 {
1027         struct dk_gpt           *efi_label;
1028         int                     rval;
1029         int                     i;
1030         uint_t                  resv_index = 0, data_index = 0;
1031         diskaddr_t              resv_start = 0, data_start = 0;
1032         diskaddr_t              difference;
1033
1034         rval = efi_alloc_and_read(fd, &efi_label);
1035         if (rval < 0) {
1036                 return (rval);
1037         }
1038
1039         /*
1040          * If alter_lba is 1, we are using the backup label.
1041          * Since we can locate the backup label by disk capacity,
1042          * there must be no unallocated space.
1043          */
1044         if ((efi_label->efi_altern_lba == 1) || (efi_label->efi_altern_lba
1045             >= efi_label->efi_last_lba)) {
1046                 if (efi_debug) {
1047                         (void) fprintf(stderr,
1048                             "efi_use_whole_disk: requested space not found\n");
1049                 }
1050                 efi_free(efi_label);
1051                 return (VT_ENOSPC);
1052         }
1053
1054         difference = efi_label->efi_last_lba - efi_label->efi_altern_lba;
1055
1056         /*
1057          * Find the last physically non-zero partition.
1058          * This is the reserved partition.
1059          */
1060         for (i = 0; i < efi_label->efi_nparts; i ++) {
1061                 if (resv_start < efi_label->efi_parts[i].p_start) {
1062                         resv_start = efi_label->efi_parts[i].p_start;
1063                         resv_index = i;
1064                 }
1065         }
1066
1067         /*
1068          * Find the last physically non-zero partition before that.
1069          * This is the data partition.
1070          */
1071         for (i = 0; i < resv_index; i ++) {
1072                 if (data_start < efi_label->efi_parts[i].p_start) {
1073                         data_start = efi_label->efi_parts[i].p_start;
1074                         data_index = i;
1075                 }
1076         }
1077
1078         /*
1079          * Move the reserved partition. There is currently no data in
1080          * here except fabricated devids (which get generated via
1081          * efi_write()). So there is no need to copy data.
1082          */
1083         efi_label->efi_parts[data_index].p_size += difference;
1084         efi_label->efi_parts[resv_index].p_start += difference;
1085         efi_label->efi_last_u_lba += difference;
1086
1087         rval = efi_write(fd, efi_label);
1088         if (rval < 0) {
1089                 if (efi_debug) {
1090                         (void) fprintf(stderr,
1091                             "efi_use_whole_disk:fail to write label, rval=%d\n",
1092                             rval);
1093                 }
1094                 efi_free(efi_label);
1095                 return (rval);
1096         }
1097
1098         efi_free(efi_label);
1099         return (0);
1100 }
1101
1102
1103 /*
1104  * write EFI label and backup label
1105  */
1106 int
1107 efi_write(int fd, struct dk_gpt *vtoc)
1108 {
1109         dk_efi_t                dk_ioc;
1110         efi_gpt_t               *efi;
1111         efi_gpe_t               *efi_parts;
1112         int                     i, j;
1113         struct dk_cinfo         dki_info;
1114         int                     rval;
1115         int                     md_flag = 0;
1116         int                     nblocks;
1117         diskaddr_t              lba_backup_gpt_hdr;
1118
1119         if ((rval = efi_get_info(fd, &dki_info)) != 0)
1120                 return rval;
1121
1122         /* check if we are dealing wih a metadevice */
1123         if ((strncmp(dki_info.dki_cname, "pseudo", 7) == 0) &&
1124             (strncmp(dki_info.dki_dname, "md", 3) == 0)) {
1125                 md_flag = 1;
1126         }
1127
1128         if (check_input(vtoc)) {
1129                 /*
1130                  * not valid; if it's a metadevice just pass it down
1131                  * because SVM will do its own checking
1132                  */
1133                 if (md_flag == 0) {
1134                         return (VT_EINVAL);
1135                 }
1136         }
1137
1138         dk_ioc.dki_lba = 1;
1139         if (NBLOCKS(vtoc->efi_nparts, vtoc->efi_lbasize) < 34) {
1140                 dk_ioc.dki_length = EFI_MIN_ARRAY_SIZE + vtoc->efi_lbasize;
1141         } else {
1142                 dk_ioc.dki_length = NBLOCKS(vtoc->efi_nparts,
1143                     vtoc->efi_lbasize) *
1144                     vtoc->efi_lbasize;
1145         }
1146
1147         /*
1148          * the number of blocks occupied by GUID partition entry array
1149          */
1150         nblocks = dk_ioc.dki_length / vtoc->efi_lbasize - 1;
1151
1152         /*
1153          * Backup GPT header is located on the block after GUID
1154          * partition entry array. Here, we calculate the address
1155          * for backup GPT header.
1156          */
1157         lba_backup_gpt_hdr = vtoc->efi_last_u_lba + 1 + nblocks;
1158         if (posix_memalign((void **)&dk_ioc.dki_data,
1159                            vtoc->efi_lbasize, dk_ioc.dki_length))
1160                 return (VT_ERROR);
1161
1162         memset(dk_ioc.dki_data, 0, dk_ioc.dki_length);
1163         efi = dk_ioc.dki_data;
1164
1165         /* stuff user's input into EFI struct */
1166         efi->efi_gpt_Signature = LE_64(EFI_SIGNATURE);
1167         efi->efi_gpt_Revision = LE_32(vtoc->efi_version); /* 0x02000100 */
1168         efi->efi_gpt_HeaderSize = LE_32(sizeof (struct efi_gpt) - LEN_EFI_PAD);
1169         efi->efi_gpt_Reserved1 = 0;
1170         efi->efi_gpt_MyLBA = LE_64(1ULL);
1171         efi->efi_gpt_AlternateLBA = LE_64(lba_backup_gpt_hdr);
1172         efi->efi_gpt_FirstUsableLBA = LE_64(vtoc->efi_first_u_lba);
1173         efi->efi_gpt_LastUsableLBA = LE_64(vtoc->efi_last_u_lba);
1174         efi->efi_gpt_PartitionEntryLBA = LE_64(2ULL);
1175         efi->efi_gpt_NumberOfPartitionEntries = LE_32(vtoc->efi_nparts);
1176         efi->efi_gpt_SizeOfPartitionEntry = LE_32(sizeof (struct efi_gpe));
1177         UUID_LE_CONVERT(efi->efi_gpt_DiskGUID, vtoc->efi_disk_uguid);
1178
1179         /* LINTED -- always longlong aligned */
1180         efi_parts = (efi_gpe_t *)((char *)dk_ioc.dki_data + vtoc->efi_lbasize);
1181
1182         for (i = 0; i < vtoc->efi_nparts; i++) {
1183                 for (j = 0;
1184                     j < sizeof (conversion_array) /
1185                     sizeof (struct uuid_to_ptag); j++) {
1186
1187                         if (vtoc->efi_parts[i].p_tag == j) {
1188                                 UUID_LE_CONVERT(
1189                                     efi_parts[i].efi_gpe_PartitionTypeGUID,
1190                                     conversion_array[j].uuid);
1191                                 break;
1192                         }
1193                 }
1194
1195                 if (j == sizeof (conversion_array) /
1196                     sizeof (struct uuid_to_ptag)) {
1197                         /*
1198                          * If we didn't have a matching uuid match, bail here.
1199                          * Don't write a label with unknown uuid.
1200                          */
1201                         if (efi_debug) {
1202                                 (void) fprintf(stderr,
1203                                     "Unknown uuid for p_tag %d\n",
1204                                     vtoc->efi_parts[i].p_tag);
1205                         }
1206                         return (VT_EINVAL);
1207                 }
1208
1209                 /* Zero's should be written for empty partitions */
1210                 if (vtoc->efi_parts[i].p_tag == V_UNASSIGNED)
1211                         continue;
1212
1213                 efi_parts[i].efi_gpe_StartingLBA =
1214                     LE_64(vtoc->efi_parts[i].p_start);
1215                 efi_parts[i].efi_gpe_EndingLBA =
1216                     LE_64(vtoc->efi_parts[i].p_start +
1217                     vtoc->efi_parts[i].p_size - 1);
1218                 efi_parts[i].efi_gpe_Attributes.PartitionAttrs =
1219                     LE_16(vtoc->efi_parts[i].p_flag);
1220                 for (j = 0; j < EFI_PART_NAME_LEN; j++) {
1221                         efi_parts[i].efi_gpe_PartitionName[j] =
1222                             LE_16((ushort_t)vtoc->efi_parts[i].p_name[j]);
1223                 }
1224                 if ((vtoc->efi_parts[i].p_tag != V_UNASSIGNED) &&
1225                     uuid_is_null((uchar_t *)&vtoc->efi_parts[i].p_uguid)) {
1226                         (void) uuid_generate((uchar_t *)
1227                             &vtoc->efi_parts[i].p_uguid);
1228                 }
1229                 bcopy(&vtoc->efi_parts[i].p_uguid,
1230                     &efi_parts[i].efi_gpe_UniquePartitionGUID,
1231                     sizeof (uuid_t));
1232         }
1233         efi->efi_gpt_PartitionEntryArrayCRC32 =
1234             LE_32(efi_crc32((unsigned char *)efi_parts,
1235             vtoc->efi_nparts * (int)sizeof (struct efi_gpe)));
1236         efi->efi_gpt_HeaderCRC32 =
1237             LE_32(efi_crc32((unsigned char *)efi,
1238             LE_32(efi->efi_gpt_HeaderSize)));
1239
1240         if (efi_ioctl(fd, DKIOCSETEFI, &dk_ioc) == -1) {
1241                 free(dk_ioc.dki_data);
1242                 switch (errno) {
1243                 case EIO:
1244                         return (VT_EIO);
1245                 case EINVAL:
1246                         return (VT_EINVAL);
1247                 default:
1248                         return (VT_ERROR);
1249                 }
1250         }
1251         /* if it's a metadevice we're done */
1252         if (md_flag) {
1253                 free(dk_ioc.dki_data);
1254                 return (0);
1255         }
1256
1257         /* write backup partition array */
1258         dk_ioc.dki_lba = vtoc->efi_last_u_lba + 1;
1259         dk_ioc.dki_length -= vtoc->efi_lbasize;
1260         /* LINTED */
1261         dk_ioc.dki_data = (efi_gpt_t *)((char *)dk_ioc.dki_data +
1262             vtoc->efi_lbasize);
1263
1264         if (efi_ioctl(fd, DKIOCSETEFI, &dk_ioc) == -1) {
1265                 /*
1266                  * we wrote the primary label okay, so don't fail
1267                  */
1268                 if (efi_debug) {
1269                         (void) fprintf(stderr,
1270                             "write of backup partitions to block %llu "
1271                             "failed, errno %d\n",
1272                             vtoc->efi_last_u_lba + 1,
1273                             errno);
1274                 }
1275         }
1276         /*
1277          * now swap MyLBA and AlternateLBA fields and write backup
1278          * partition table header
1279          */
1280         dk_ioc.dki_lba = lba_backup_gpt_hdr;
1281         dk_ioc.dki_length = vtoc->efi_lbasize;
1282         /* LINTED */
1283         dk_ioc.dki_data = (efi_gpt_t *)((char *)dk_ioc.dki_data -
1284             vtoc->efi_lbasize);
1285         efi->efi_gpt_AlternateLBA = LE_64(1ULL);
1286         efi->efi_gpt_MyLBA = LE_64(lba_backup_gpt_hdr);
1287         efi->efi_gpt_PartitionEntryLBA = LE_64(vtoc->efi_last_u_lba + 1);
1288         efi->efi_gpt_HeaderCRC32 = 0;
1289         efi->efi_gpt_HeaderCRC32 =
1290             LE_32(efi_crc32((unsigned char *)dk_ioc.dki_data,
1291             LE_32(efi->efi_gpt_HeaderSize)));
1292
1293         if (efi_ioctl(fd, DKIOCSETEFI, &dk_ioc) == -1) {
1294                 if (efi_debug) {
1295                         (void) fprintf(stderr,
1296                             "write of backup header to block %llu failed, "
1297                             "errno %d\n",
1298                             lba_backup_gpt_hdr,
1299                             errno);
1300                 }
1301         }
1302         /* write the PMBR */
1303         (void) write_pmbr(fd, vtoc);
1304         free(dk_ioc.dki_data);
1305
1306         return (0);
1307 }
1308
1309 void
1310 efi_free(struct dk_gpt *ptr)
1311 {
1312         free(ptr);
1313 }
1314
1315 /*
1316  * Input: File descriptor
1317  * Output: 1 if disk has an EFI label, or > 2TB with no VTOC or legacy MBR.
1318  * Otherwise 0.
1319  */
1320 int
1321 efi_type(int fd)
1322 {
1323 #if 0
1324         struct vtoc vtoc;
1325         struct extvtoc extvtoc;
1326
1327         if (ioctl(fd, DKIOCGEXTVTOC, &extvtoc) == -1) {
1328                 if (errno == ENOTSUP)
1329                         return (1);
1330                 else if (errno == ENOTTY) {
1331                         if (ioctl(fd, DKIOCGVTOC, &vtoc) == -1)
1332                                 if (errno == ENOTSUP)
1333                                         return (1);
1334                 }
1335         }
1336         return (0);
1337 #else
1338         return (ENOSYS);
1339 #endif
1340 }
1341
1342 void
1343 efi_err_check(struct dk_gpt *vtoc)
1344 {
1345         int                     resv_part = -1;
1346         int                     i, j;
1347         diskaddr_t              istart, jstart, isize, jsize, endsect;
1348         int                     overlap = 0;
1349
1350         /*
1351          * make sure no partitions overlap
1352          */
1353         for (i = 0; i < vtoc->efi_nparts; i++) {
1354                 /* It can't be unassigned and have an actual size */
1355                 if ((vtoc->efi_parts[i].p_tag == V_UNASSIGNED) &&
1356                     (vtoc->efi_parts[i].p_size != 0)) {
1357                         (void) fprintf(stderr,
1358                             "partition %d is \"unassigned\" but has a size "
1359                             "of %llu\n", i, vtoc->efi_parts[i].p_size);
1360                 }
1361                 if (vtoc->efi_parts[i].p_tag == V_UNASSIGNED) {
1362                         continue;
1363                 }
1364                 if (vtoc->efi_parts[i].p_tag == V_RESERVED) {
1365                         if (resv_part != -1) {
1366                                 (void) fprintf(stderr,
1367                                     "found duplicate reserved partition at "
1368                                     "%d\n", i);
1369                         }
1370                         resv_part = i;
1371                         if (vtoc->efi_parts[i].p_size != EFI_MIN_RESV_SIZE)
1372                                 (void) fprintf(stderr,
1373                                     "Warning: reserved partition size must "
1374                                     "be %d sectors\n", EFI_MIN_RESV_SIZE);
1375                 }
1376                 if ((vtoc->efi_parts[i].p_start < vtoc->efi_first_u_lba) ||
1377                     (vtoc->efi_parts[i].p_start > vtoc->efi_last_u_lba)) {
1378                         (void) fprintf(stderr,
1379                             "Partition %d starts at %llu\n",
1380                             i,
1381                             vtoc->efi_parts[i].p_start);
1382                         (void) fprintf(stderr,
1383                             "It must be between %llu and %llu.\n",
1384                             vtoc->efi_first_u_lba,
1385                             vtoc->efi_last_u_lba);
1386                 }
1387                 if ((vtoc->efi_parts[i].p_start +
1388                     vtoc->efi_parts[i].p_size <
1389                     vtoc->efi_first_u_lba) ||
1390                     (vtoc->efi_parts[i].p_start +
1391                     vtoc->efi_parts[i].p_size >
1392                     vtoc->efi_last_u_lba + 1)) {
1393                         (void) fprintf(stderr,
1394                             "Partition %d ends at %llu\n",
1395                             i,
1396                             vtoc->efi_parts[i].p_start +
1397                             vtoc->efi_parts[i].p_size);
1398                         (void) fprintf(stderr,
1399                             "It must be between %llu and %llu.\n",
1400                             vtoc->efi_first_u_lba,
1401                             vtoc->efi_last_u_lba);
1402                 }
1403
1404                 for (j = 0; j < vtoc->efi_nparts; j++) {
1405                         isize = vtoc->efi_parts[i].p_size;
1406                         jsize = vtoc->efi_parts[j].p_size;
1407                         istart = vtoc->efi_parts[i].p_start;
1408                         jstart = vtoc->efi_parts[j].p_start;
1409                         if ((i != j) && (isize != 0) && (jsize != 0)) {
1410                                 endsect = jstart + jsize -1;
1411                                 if ((jstart <= istart) &&
1412                                     (istart <= endsect)) {
1413                                         if (!overlap) {
1414                                         (void) fprintf(stderr,
1415                                             "label error: EFI Labels do not "
1416                                             "support overlapping partitions\n");
1417                                         }
1418                                         (void) fprintf(stderr,
1419                                             "Partition %d overlaps partition "
1420                                             "%d.\n", i, j);
1421                                         overlap = 1;
1422                                 }
1423                         }
1424                 }
1425         }
1426         /* make sure there is a reserved partition */
1427         if (resv_part == -1) {
1428                 (void) fprintf(stderr,
1429                     "no reserved partition found\n");
1430         }
1431 }
1432
1433 /*
1434  * We need to get information necessary to construct a *new* efi
1435  * label type
1436  */
1437 int
1438 efi_auto_sense(int fd, struct dk_gpt **vtoc)
1439 {
1440
1441         int     i;
1442
1443         /*
1444          * Now build the default partition table
1445          */
1446         if (efi_alloc_and_init(fd, EFI_NUMPAR, vtoc) != 0) {
1447                 if (efi_debug) {
1448                         (void) fprintf(stderr, "efi_alloc_and_init failed.\n");
1449                 }
1450                 return (-1);
1451         }
1452
1453         for (i = 0; i < MIN((*vtoc)->efi_nparts, V_NUMPAR); i++) {
1454                 (*vtoc)->efi_parts[i].p_tag = default_vtoc_map[i].p_tag;
1455                 (*vtoc)->efi_parts[i].p_flag = default_vtoc_map[i].p_flag;
1456                 (*vtoc)->efi_parts[i].p_start = 0;
1457                 (*vtoc)->efi_parts[i].p_size = 0;
1458         }
1459         /*
1460          * Make constants first
1461          * and variable partitions later
1462          */
1463
1464         /* root partition - s0 128 MB */
1465         (*vtoc)->efi_parts[0].p_start = 34;
1466         (*vtoc)->efi_parts[0].p_size = 262144;
1467
1468         /* partition - s1  128 MB */
1469         (*vtoc)->efi_parts[1].p_start = 262178;
1470         (*vtoc)->efi_parts[1].p_size = 262144;
1471
1472         /* partition -s2 is NOT the Backup disk */
1473         (*vtoc)->efi_parts[2].p_tag = V_UNASSIGNED;
1474
1475         /* partition -s6 /usr partition - HOG */
1476         (*vtoc)->efi_parts[6].p_start = 524322;
1477         (*vtoc)->efi_parts[6].p_size = (*vtoc)->efi_last_u_lba - 524322
1478             - (1024 * 16);
1479
1480         /* efi reserved partition - s9 16K */
1481         (*vtoc)->efi_parts[8].p_start = (*vtoc)->efi_last_u_lba - (1024 * 16);
1482         (*vtoc)->efi_parts[8].p_size = (1024 * 16);
1483         (*vtoc)->efi_parts[8].p_tag = V_RESERVED;
1484         return (0);
1485 }