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v4.6
   1/**
 
   2 * ldm - Support for Windows Logical Disk Manager (Dynamic Disks)
   3 *
   4 * Copyright (C) 2001,2002 Richard Russon <ldm@flatcap.org>
   5 * Copyright (c) 2001-2012 Anton Altaparmakov
   6 * Copyright (C) 2001,2002 Jakob Kemi <jakob.kemi@telia.com>
   7 *
   8 * Documentation is available at http://www.linux-ntfs.org/doku.php?id=downloads 
   9 *
  10 * This program is free software; you can redistribute it and/or modify it under
  11 * the terms of the GNU General Public License as published by the Free Software
  12 * Foundation; either version 2 of the License, or (at your option) any later
  13 * version.
  14 *
  15 * This program is distributed in the hope that it will be useful, but WITHOUT
  16 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS
  17 * FOR A PARTICULAR PURPOSE.  See the GNU General Public License for more
  18 * details.
  19 *
  20 * You should have received a copy of the GNU General Public License along with
  21 * this program (in the main directory of the source in the file COPYING); if
  22 * not, write to the Free Software Foundation, Inc., 59 Temple Place, Suite 330,
  23 * Boston, MA  02111-1307  USA
  24 */
  25
  26#include <linux/slab.h>
  27#include <linux/pagemap.h>
  28#include <linux/stringify.h>
  29#include <linux/kernel.h>
 
 
 
  30#include "ldm.h"
  31#include "check.h"
  32#include "msdos.h"
  33
  34/**
  35 * ldm_debug/info/error/crit - Output an error message
  36 * @f:    A printf format string containing the message
  37 * @...:  Variables to substitute into @f
  38 *
  39 * ldm_debug() writes a DEBUG level message to the syslog but only if the
  40 * driver was compiled with debug enabled. Otherwise, the call turns into a NOP.
  41 */
  42#ifndef CONFIG_LDM_DEBUG
  43#define ldm_debug(...)	do {} while (0)
  44#else
  45#define ldm_debug(f, a...) _ldm_printk (KERN_DEBUG, __func__, f, ##a)
  46#endif
  47
  48#define ldm_crit(f, a...)  _ldm_printk (KERN_CRIT,  __func__, f, ##a)
  49#define ldm_error(f, a...) _ldm_printk (KERN_ERR,   __func__, f, ##a)
  50#define ldm_info(f, a...)  _ldm_printk (KERN_INFO,  __func__, f, ##a)
  51
  52static __printf(3, 4)
  53void _ldm_printk(const char *level, const char *function, const char *fmt, ...)
  54{
  55	struct va_format vaf;
  56	va_list args;
  57
  58	va_start (args, fmt);
  59
  60	vaf.fmt = fmt;
  61	vaf.va = &args;
  62
  63	printk("%s%s(): %pV\n", level, function, &vaf);
  64
  65	va_end(args);
  66}
  67
  68/**
  69 * ldm_parse_hexbyte - Convert a ASCII hex number to a byte
  70 * @src:  Pointer to at least 2 characters to convert.
  71 *
  72 * Convert a two character ASCII hex string to a number.
  73 *
  74 * Return:  0-255  Success, the byte was parsed correctly
  75 *          -1     Error, an invalid character was supplied
  76 */
  77static int ldm_parse_hexbyte (const u8 *src)
  78{
  79	unsigned int x;		/* For correct wrapping */
  80	int h;
  81
  82	/* high part */
  83	x = h = hex_to_bin(src[0]);
  84	if (h < 0)
  85		return -1;
  86
  87	/* low part */
  88	h = hex_to_bin(src[1]);
  89	if (h < 0)
  90		return -1;
  91
  92	return (x << 4) + h;
  93}
  94
  95/**
  96 * ldm_parse_guid - Convert GUID from ASCII to binary
  97 * @src:   36 char string of the form fa50ff2b-f2e8-45de-83fa-65417f2f49ba
  98 * @dest:  Memory block to hold binary GUID (16 bytes)
  99 *
 100 * N.B. The GUID need not be NULL terminated.
 101 *
 102 * Return:  'true'   @dest contains binary GUID
 103 *          'false'  @dest contents are undefined
 104 */
 105static bool ldm_parse_guid (const u8 *src, u8 *dest)
 106{
 107	static const int size[] = { 4, 2, 2, 2, 6 };
 108	int i, j, v;
 109
 110	if (src[8]  != '-' || src[13] != '-' ||
 111	    src[18] != '-' || src[23] != '-')
 112		return false;
 113
 114	for (j = 0; j < 5; j++, src++)
 115		for (i = 0; i < size[j]; i++, src+=2, *dest++ = v)
 116			if ((v = ldm_parse_hexbyte (src)) < 0)
 117				return false;
 118
 119	return true;
 120}
 121
 122/**
 123 * ldm_parse_privhead - Read the LDM Database PRIVHEAD structure
 124 * @data:  Raw database PRIVHEAD structure loaded from the device
 125 * @ph:    In-memory privhead structure in which to return parsed information
 126 *
 127 * This parses the LDM database PRIVHEAD structure supplied in @data and
 128 * sets up the in-memory privhead structure @ph with the obtained information.
 129 *
 130 * Return:  'true'   @ph contains the PRIVHEAD data
 131 *          'false'  @ph contents are undefined
 132 */
 133static bool ldm_parse_privhead(const u8 *data, struct privhead *ph)
 134{
 135	bool is_vista = false;
 136
 137	BUG_ON(!data || !ph);
 138	if (MAGIC_PRIVHEAD != get_unaligned_be64(data)) {
 139		ldm_error("Cannot find PRIVHEAD structure. LDM database is"
 140			" corrupt. Aborting.");
 141		return false;
 142	}
 143	ph->ver_major = get_unaligned_be16(data + 0x000C);
 144	ph->ver_minor = get_unaligned_be16(data + 0x000E);
 145	ph->logical_disk_start = get_unaligned_be64(data + 0x011B);
 146	ph->logical_disk_size = get_unaligned_be64(data + 0x0123);
 147	ph->config_start = get_unaligned_be64(data + 0x012B);
 148	ph->config_size = get_unaligned_be64(data + 0x0133);
 149	/* Version 2.11 is Win2k/XP and version 2.12 is Vista. */
 150	if (ph->ver_major == 2 && ph->ver_minor == 12)
 151		is_vista = true;
 152	if (!is_vista && (ph->ver_major != 2 || ph->ver_minor != 11)) {
 153		ldm_error("Expected PRIVHEAD version 2.11 or 2.12, got %d.%d."
 154			" Aborting.", ph->ver_major, ph->ver_minor);
 155		return false;
 156	}
 157	ldm_debug("PRIVHEAD version %d.%d (Windows %s).", ph->ver_major,
 158			ph->ver_minor, is_vista ? "Vista" : "2000/XP");
 159	if (ph->config_size != LDM_DB_SIZE) {	/* 1 MiB in sectors. */
 160		/* Warn the user and continue, carefully. */
 161		ldm_info("Database is normally %u bytes, it claims to "
 162			"be %llu bytes.", LDM_DB_SIZE,
 163			(unsigned long long)ph->config_size);
 164	}
 165	if ((ph->logical_disk_size == 0) || (ph->logical_disk_start +
 166			ph->logical_disk_size > ph->config_start)) {
 167		ldm_error("PRIVHEAD disk size doesn't match real disk size");
 168		return false;
 169	}
 170	if (!ldm_parse_guid(data + 0x0030, ph->disk_id)) {
 171		ldm_error("PRIVHEAD contains an invalid GUID.");
 172		return false;
 173	}
 174	ldm_debug("Parsed PRIVHEAD successfully.");
 175	return true;
 176}
 177
 178/**
 179 * ldm_parse_tocblock - Read the LDM Database TOCBLOCK structure
 180 * @data:  Raw database TOCBLOCK structure loaded from the device
 181 * @toc:   In-memory toc structure in which to return parsed information
 182 *
 183 * This parses the LDM Database TOCBLOCK (table of contents) structure supplied
 184 * in @data and sets up the in-memory tocblock structure @toc with the obtained
 185 * information.
 186 *
 187 * N.B.  The *_start and *_size values returned in @toc are not range-checked.
 188 *
 189 * Return:  'true'   @toc contains the TOCBLOCK data
 190 *          'false'  @toc contents are undefined
 191 */
 192static bool ldm_parse_tocblock (const u8 *data, struct tocblock *toc)
 193{
 194	BUG_ON (!data || !toc);
 195
 196	if (MAGIC_TOCBLOCK != get_unaligned_be64(data)) {
 197		ldm_crit ("Cannot find TOCBLOCK, database may be corrupt.");
 198		return false;
 199	}
 200	strncpy (toc->bitmap1_name, data + 0x24, sizeof (toc->bitmap1_name));
 201	toc->bitmap1_name[sizeof (toc->bitmap1_name) - 1] = 0;
 202	toc->bitmap1_start = get_unaligned_be64(data + 0x2E);
 203	toc->bitmap1_size  = get_unaligned_be64(data + 0x36);
 204
 205	if (strncmp (toc->bitmap1_name, TOC_BITMAP1,
 206			sizeof (toc->bitmap1_name)) != 0) {
 207		ldm_crit ("TOCBLOCK's first bitmap is '%s', should be '%s'.",
 208				TOC_BITMAP1, toc->bitmap1_name);
 209		return false;
 210	}
 211	strncpy (toc->bitmap2_name, data + 0x46, sizeof (toc->bitmap2_name));
 212	toc->bitmap2_name[sizeof (toc->bitmap2_name) - 1] = 0;
 213	toc->bitmap2_start = get_unaligned_be64(data + 0x50);
 214	toc->bitmap2_size  = get_unaligned_be64(data + 0x58);
 215	if (strncmp (toc->bitmap2_name, TOC_BITMAP2,
 216			sizeof (toc->bitmap2_name)) != 0) {
 217		ldm_crit ("TOCBLOCK's second bitmap is '%s', should be '%s'.",
 218				TOC_BITMAP2, toc->bitmap2_name);
 219		return false;
 220	}
 221	ldm_debug ("Parsed TOCBLOCK successfully.");
 222	return true;
 223}
 224
 225/**
 226 * ldm_parse_vmdb - Read the LDM Database VMDB structure
 227 * @data:  Raw database VMDB structure loaded from the device
 228 * @vm:    In-memory vmdb structure in which to return parsed information
 229 *
 230 * This parses the LDM Database VMDB structure supplied in @data and sets up
 231 * the in-memory vmdb structure @vm with the obtained information.
 232 *
 233 * N.B.  The *_start, *_size and *_seq values will be range-checked later.
 234 *
 235 * Return:  'true'   @vm contains VMDB info
 236 *          'false'  @vm contents are undefined
 237 */
 238static bool ldm_parse_vmdb (const u8 *data, struct vmdb *vm)
 239{
 240	BUG_ON (!data || !vm);
 241
 242	if (MAGIC_VMDB != get_unaligned_be32(data)) {
 243		ldm_crit ("Cannot find the VMDB, database may be corrupt.");
 244		return false;
 245	}
 246
 247	vm->ver_major = get_unaligned_be16(data + 0x12);
 248	vm->ver_minor = get_unaligned_be16(data + 0x14);
 249	if ((vm->ver_major != 4) || (vm->ver_minor != 10)) {
 250		ldm_error ("Expected VMDB version %d.%d, got %d.%d. "
 251			"Aborting.", 4, 10, vm->ver_major, vm->ver_minor);
 252		return false;
 253	}
 254
 255	vm->vblk_size     = get_unaligned_be32(data + 0x08);
 256	if (vm->vblk_size == 0) {
 257		ldm_error ("Illegal VBLK size");
 258		return false;
 259	}
 260
 261	vm->vblk_offset   = get_unaligned_be32(data + 0x0C);
 262	vm->last_vblk_seq = get_unaligned_be32(data + 0x04);
 263
 264	ldm_debug ("Parsed VMDB successfully.");
 265	return true;
 266}
 267
 268/**
 269 * ldm_compare_privheads - Compare two privhead objects
 270 * @ph1:  First privhead
 271 * @ph2:  Second privhead
 272 *
 273 * This compares the two privhead structures @ph1 and @ph2.
 274 *
 275 * Return:  'true'   Identical
 276 *          'false'  Different
 277 */
 278static bool ldm_compare_privheads (const struct privhead *ph1,
 279				   const struct privhead *ph2)
 280{
 281	BUG_ON (!ph1 || !ph2);
 282
 283	return ((ph1->ver_major          == ph2->ver_major)		&&
 284		(ph1->ver_minor          == ph2->ver_minor)		&&
 285		(ph1->logical_disk_start == ph2->logical_disk_start)	&&
 286		(ph1->logical_disk_size  == ph2->logical_disk_size)	&&
 287		(ph1->config_start       == ph2->config_start)		&&
 288		(ph1->config_size        == ph2->config_size)		&&
 289		!memcmp (ph1->disk_id, ph2->disk_id, GUID_SIZE));
 290}
 291
 292/**
 293 * ldm_compare_tocblocks - Compare two tocblock objects
 294 * @toc1:  First toc
 295 * @toc2:  Second toc
 296 *
 297 * This compares the two tocblock structures @toc1 and @toc2.
 298 *
 299 * Return:  'true'   Identical
 300 *          'false'  Different
 301 */
 302static bool ldm_compare_tocblocks (const struct tocblock *toc1,
 303				   const struct tocblock *toc2)
 304{
 305	BUG_ON (!toc1 || !toc2);
 306
 307	return ((toc1->bitmap1_start == toc2->bitmap1_start)	&&
 308		(toc1->bitmap1_size  == toc2->bitmap1_size)	&&
 309		(toc1->bitmap2_start == toc2->bitmap2_start)	&&
 310		(toc1->bitmap2_size  == toc2->bitmap2_size)	&&
 311		!strncmp (toc1->bitmap1_name, toc2->bitmap1_name,
 312			sizeof (toc1->bitmap1_name))		&&
 313		!strncmp (toc1->bitmap2_name, toc2->bitmap2_name,
 314			sizeof (toc1->bitmap2_name)));
 315}
 316
 317/**
 318 * ldm_validate_privheads - Compare the primary privhead with its backups
 319 * @state: Partition check state including device holding the LDM Database
 320 * @ph1:   Memory struct to fill with ph contents
 321 *
 322 * Read and compare all three privheads from disk.
 323 *
 324 * The privheads on disk show the size and location of the main disk area and
 325 * the configuration area (the database).  The values are range-checked against
 326 * @hd, which contains the real size of the disk.
 327 *
 328 * Return:  'true'   Success
 329 *          'false'  Error
 330 */
 331static bool ldm_validate_privheads(struct parsed_partitions *state,
 332				   struct privhead *ph1)
 333{
 334	static const int off[3] = { OFF_PRIV1, OFF_PRIV2, OFF_PRIV3 };
 335	struct privhead *ph[3] = { ph1 };
 336	Sector sect;
 337	u8 *data;
 338	bool result = false;
 339	long num_sects;
 340	int i;
 341
 342	BUG_ON (!state || !ph1);
 343
 344	ph[1] = kmalloc (sizeof (*ph[1]), GFP_KERNEL);
 345	ph[2] = kmalloc (sizeof (*ph[2]), GFP_KERNEL);
 346	if (!ph[1] || !ph[2]) {
 347		ldm_crit ("Out of memory.");
 348		goto out;
 349	}
 350
 351	/* off[1 & 2] are relative to ph[0]->config_start */
 352	ph[0]->config_start = 0;
 353
 354	/* Read and parse privheads */
 355	for (i = 0; i < 3; i++) {
 356		data = read_part_sector(state, ph[0]->config_start + off[i],
 357					&sect);
 358		if (!data) {
 359			ldm_crit ("Disk read failed.");
 360			goto out;
 361		}
 362		result = ldm_parse_privhead (data, ph[i]);
 363		put_dev_sector (sect);
 364		if (!result) {
 365			ldm_error ("Cannot find PRIVHEAD %d.", i+1); /* Log again */
 366			if (i < 2)
 367				goto out;	/* Already logged */
 368			else
 369				break;	/* FIXME ignore for now, 3rd PH can fail on odd-sized disks */
 370		}
 371	}
 372
 373	num_sects = state->bdev->bd_inode->i_size >> 9;
 374
 375	if ((ph[0]->config_start > num_sects) ||
 376	   ((ph[0]->config_start + ph[0]->config_size) > num_sects)) {
 377		ldm_crit ("Database extends beyond the end of the disk.");
 378		goto out;
 379	}
 380
 381	if ((ph[0]->logical_disk_start > ph[0]->config_start) ||
 382	   ((ph[0]->logical_disk_start + ph[0]->logical_disk_size)
 383		    > ph[0]->config_start)) {
 384		ldm_crit ("Disk and database overlap.");
 385		goto out;
 386	}
 387
 388	if (!ldm_compare_privheads (ph[0], ph[1])) {
 389		ldm_crit ("Primary and backup PRIVHEADs don't match.");
 390		goto out;
 391	}
 392	/* FIXME ignore this for now
 393	if (!ldm_compare_privheads (ph[0], ph[2])) {
 394		ldm_crit ("Primary and backup PRIVHEADs don't match.");
 395		goto out;
 396	}*/
 397	ldm_debug ("Validated PRIVHEADs successfully.");
 398	result = true;
 399out:
 400	kfree (ph[1]);
 401	kfree (ph[2]);
 402	return result;
 403}
 404
 405/**
 406 * ldm_validate_tocblocks - Validate the table of contents and its backups
 407 * @state: Partition check state including device holding the LDM Database
 408 * @base:  Offset, into @state->bdev, of the database
 409 * @ldb:   Cache of the database structures
 410 *
 411 * Find and compare the four tables of contents of the LDM Database stored on
 412 * @state->bdev and return the parsed information into @toc1.
 413 *
 414 * The offsets and sizes of the configs are range-checked against a privhead.
 415 *
 416 * Return:  'true'   @toc1 contains validated TOCBLOCK info
 417 *          'false'  @toc1 contents are undefined
 418 */
 419static bool ldm_validate_tocblocks(struct parsed_partitions *state,
 420				   unsigned long base, struct ldmdb *ldb)
 421{
 422	static const int off[4] = { OFF_TOCB1, OFF_TOCB2, OFF_TOCB3, OFF_TOCB4};
 423	struct tocblock *tb[4];
 424	struct privhead *ph;
 425	Sector sect;
 426	u8 *data;
 427	int i, nr_tbs;
 428	bool result = false;
 429
 430	BUG_ON(!state || !ldb);
 431	ph = &ldb->ph;
 432	tb[0] = &ldb->toc;
 433	tb[1] = kmalloc(sizeof(*tb[1]) * 3, GFP_KERNEL);
 434	if (!tb[1]) {
 435		ldm_crit("Out of memory.");
 436		goto err;
 437	}
 438	tb[2] = (struct tocblock*)((u8*)tb[1] + sizeof(*tb[1]));
 439	tb[3] = (struct tocblock*)((u8*)tb[2] + sizeof(*tb[2]));
 440	/*
 441	 * Try to read and parse all four TOCBLOCKs.
 442	 *
 443	 * Windows Vista LDM v2.12 does not always have all four TOCBLOCKs so
 444	 * skip any that fail as long as we get at least one valid TOCBLOCK.
 445	 */
 446	for (nr_tbs = i = 0; i < 4; i++) {
 447		data = read_part_sector(state, base + off[i], &sect);
 448		if (!data) {
 449			ldm_error("Disk read failed for TOCBLOCK %d.", i);
 450			continue;
 451		}
 452		if (ldm_parse_tocblock(data, tb[nr_tbs]))
 453			nr_tbs++;
 454		put_dev_sector(sect);
 455	}
 456	if (!nr_tbs) {
 457		ldm_crit("Failed to find a valid TOCBLOCK.");
 458		goto err;
 459	}
 460	/* Range check the TOCBLOCK against a privhead. */
 461	if (((tb[0]->bitmap1_start + tb[0]->bitmap1_size) > ph->config_size) ||
 462			((tb[0]->bitmap2_start + tb[0]->bitmap2_size) >
 463			ph->config_size)) {
 464		ldm_crit("The bitmaps are out of range.  Giving up.");
 465		goto err;
 466	}
 467	/* Compare all loaded TOCBLOCKs. */
 468	for (i = 1; i < nr_tbs; i++) {
 469		if (!ldm_compare_tocblocks(tb[0], tb[i])) {
 470			ldm_crit("TOCBLOCKs 0 and %d do not match.", i);
 471			goto err;
 472		}
 473	}
 474	ldm_debug("Validated %d TOCBLOCKs successfully.", nr_tbs);
 475	result = true;
 476err:
 477	kfree(tb[1]);
 478	return result;
 479}
 480
 481/**
 482 * ldm_validate_vmdb - Read the VMDB and validate it
 483 * @state: Partition check state including device holding the LDM Database
 484 * @base:  Offset, into @bdev, of the database
 485 * @ldb:   Cache of the database structures
 486 *
 487 * Find the vmdb of the LDM Database stored on @bdev and return the parsed
 488 * information in @ldb.
 489 *
 490 * Return:  'true'   @ldb contains validated VBDB info
 491 *          'false'  @ldb contents are undefined
 492 */
 493static bool ldm_validate_vmdb(struct parsed_partitions *state,
 494			      unsigned long base, struct ldmdb *ldb)
 495{
 496	Sector sect;
 497	u8 *data;
 498	bool result = false;
 499	struct vmdb *vm;
 500	struct tocblock *toc;
 501
 502	BUG_ON (!state || !ldb);
 503
 504	vm  = &ldb->vm;
 505	toc = &ldb->toc;
 506
 507	data = read_part_sector(state, base + OFF_VMDB, &sect);
 508	if (!data) {
 509		ldm_crit ("Disk read failed.");
 510		return false;
 511	}
 512
 513	if (!ldm_parse_vmdb (data, vm))
 514		goto out;				/* Already logged */
 515
 516	/* Are there uncommitted transactions? */
 517	if (get_unaligned_be16(data + 0x10) != 0x01) {
 518		ldm_crit ("Database is not in a consistent state.  Aborting.");
 519		goto out;
 520	}
 521
 522	if (vm->vblk_offset != 512)
 523		ldm_info ("VBLKs start at offset 0x%04x.", vm->vblk_offset);
 524
 525	/*
 526	 * The last_vblkd_seq can be before the end of the vmdb, just make sure
 527	 * it is not out of bounds.
 528	 */
 529	if ((vm->vblk_size * vm->last_vblk_seq) > (toc->bitmap1_size << 9)) {
 530		ldm_crit ("VMDB exceeds allowed size specified by TOCBLOCK.  "
 531				"Database is corrupt.  Aborting.");
 532		goto out;
 533	}
 534
 535	result = true;
 536out:
 537	put_dev_sector (sect);
 538	return result;
 539}
 540
 541
 542/**
 543 * ldm_validate_partition_table - Determine whether bdev might be a dynamic disk
 544 * @state: Partition check state including device holding the LDM Database
 545 *
 546 * This function provides a weak test to decide whether the device is a dynamic
 547 * disk or not.  It looks for an MS-DOS-style partition table containing at
 548 * least one partition of type 0x42 (formerly SFS, now used by Windows for
 549 * dynamic disks).
 550 *
 551 * N.B.  The only possible error can come from the read_part_sector and that is
 552 *       only likely to happen if the underlying device is strange.  If that IS
 553 *       the case we should return zero to let someone else try.
 554 *
 555 * Return:  'true'   @state->bdev is a dynamic disk
 556 *          'false'  @state->bdev is not a dynamic disk, or an error occurred
 557 */
 558static bool ldm_validate_partition_table(struct parsed_partitions *state)
 559{
 560	Sector sect;
 561	u8 *data;
 562	struct partition *p;
 563	int i;
 564	bool result = false;
 565
 566	BUG_ON(!state);
 567
 568	data = read_part_sector(state, 0, &sect);
 569	if (!data) {
 570		ldm_info ("Disk read failed.");
 571		return false;
 572	}
 573
 574	if (*(__le16*) (data + 0x01FE) != cpu_to_le16 (MSDOS_LABEL_MAGIC))
 575		goto out;
 576
 577	p = (struct partition*)(data + 0x01BE);
 578	for (i = 0; i < 4; i++, p++)
 579		if (SYS_IND (p) == LDM_PARTITION) {
 580			result = true;
 581			break;
 582		}
 583
 584	if (result)
 585		ldm_debug ("Found W2K dynamic disk partition type.");
 586
 587out:
 588	put_dev_sector (sect);
 589	return result;
 590}
 591
 592/**
 593 * ldm_get_disk_objid - Search a linked list of vblk's for a given Disk Id
 594 * @ldb:  Cache of the database structures
 595 *
 596 * The LDM Database contains a list of all partitions on all dynamic disks.
 597 * The primary PRIVHEAD, at the beginning of the physical disk, tells us
 598 * the GUID of this disk.  This function searches for the GUID in a linked
 599 * list of vblk's.
 600 *
 601 * Return:  Pointer, A matching vblk was found
 602 *          NULL,    No match, or an error
 603 */
 604static struct vblk * ldm_get_disk_objid (const struct ldmdb *ldb)
 605{
 606	struct list_head *item;
 607
 608	BUG_ON (!ldb);
 609
 610	list_for_each (item, &ldb->v_disk) {
 611		struct vblk *v = list_entry (item, struct vblk, list);
 612		if (!memcmp (v->vblk.disk.disk_id, ldb->ph.disk_id, GUID_SIZE))
 613			return v;
 614	}
 615
 616	return NULL;
 617}
 618
 619/**
 620 * ldm_create_data_partitions - Create data partitions for this device
 621 * @pp:   List of the partitions parsed so far
 622 * @ldb:  Cache of the database structures
 623 *
 624 * The database contains ALL the partitions for ALL disk groups, so we need to
 625 * filter out this specific disk. Using the disk's object id, we can find all
 626 * the partitions in the database that belong to this disk.
 627 *
 628 * Add each partition in our database, to the parsed_partitions structure.
 629 *
 630 * N.B.  This function creates the partitions in the order it finds partition
 631 *       objects in the linked list.
 632 *
 633 * Return:  'true'   Partition created
 634 *          'false'  Error, probably a range checking problem
 635 */
 636static bool ldm_create_data_partitions (struct parsed_partitions *pp,
 637					const struct ldmdb *ldb)
 638{
 639	struct list_head *item;
 640	struct vblk *vb;
 641	struct vblk *disk;
 642	struct vblk_part *part;
 643	int part_num = 1;
 644
 645	BUG_ON (!pp || !ldb);
 646
 647	disk = ldm_get_disk_objid (ldb);
 648	if (!disk) {
 649		ldm_crit ("Can't find the ID of this disk in the database.");
 650		return false;
 651	}
 652
 653	strlcat(pp->pp_buf, " [LDM]", PAGE_SIZE);
 654
 655	/* Create the data partitions */
 656	list_for_each (item, &ldb->v_part) {
 657		vb = list_entry (item, struct vblk, list);
 658		part = &vb->vblk.part;
 659
 660		if (part->disk_id != disk->obj_id)
 661			continue;
 662
 663		put_partition (pp, part_num, ldb->ph.logical_disk_start +
 664				part->start, part->size);
 665		part_num++;
 666	}
 667
 668	strlcat(pp->pp_buf, "\n", PAGE_SIZE);
 669	return true;
 670}
 671
 672
 673/**
 674 * ldm_relative - Calculate the next relative offset
 675 * @buffer:  Block of data being worked on
 676 * @buflen:  Size of the block of data
 677 * @base:    Size of the previous fixed width fields
 678 * @offset:  Cumulative size of the previous variable-width fields
 679 *
 680 * Because many of the VBLK fields are variable-width, it's necessary
 681 * to calculate each offset based on the previous one and the length
 682 * of the field it pointed to.
 683 *
 684 * Return:  -1 Error, the calculated offset exceeded the size of the buffer
 685 *           n OK, a range-checked offset into buffer
 686 */
 687static int ldm_relative(const u8 *buffer, int buflen, int base, int offset)
 688{
 689
 690	base += offset;
 691	if (!buffer || offset < 0 || base > buflen) {
 692		if (!buffer)
 693			ldm_error("!buffer");
 694		if (offset < 0)
 695			ldm_error("offset (%d) < 0", offset);
 696		if (base > buflen)
 697			ldm_error("base (%d) > buflen (%d)", base, buflen);
 698		return -1;
 699	}
 700	if (base + buffer[base] >= buflen) {
 701		ldm_error("base (%d) + buffer[base] (%d) >= buflen (%d)", base,
 702				buffer[base], buflen);
 703		return -1;
 704	}
 705	return buffer[base] + offset + 1;
 706}
 707
 708/**
 709 * ldm_get_vnum - Convert a variable-width, big endian number, into cpu order
 710 * @block:  Pointer to the variable-width number to convert
 711 *
 712 * Large numbers in the LDM Database are often stored in a packed format.  Each
 713 * number is prefixed by a one byte width marker.  All numbers in the database
 714 * are stored in big-endian byte order.  This function reads one of these
 715 * numbers and returns the result
 716 *
 717 * N.B.  This function DOES NOT perform any range checking, though the most
 718 *       it will read is eight bytes.
 719 *
 720 * Return:  n A number
 721 *          0 Zero, or an error occurred
 722 */
 723static u64 ldm_get_vnum (const u8 *block)
 724{
 725	u64 tmp = 0;
 726	u8 length;
 727
 728	BUG_ON (!block);
 729
 730	length = *block++;
 731
 732	if (length && length <= 8)
 733		while (length--)
 734			tmp = (tmp << 8) | *block++;
 735	else
 736		ldm_error ("Illegal length %d.", length);
 737
 738	return tmp;
 739}
 740
 741/**
 742 * ldm_get_vstr - Read a length-prefixed string into a buffer
 743 * @block:   Pointer to the length marker
 744 * @buffer:  Location to copy string to
 745 * @buflen:  Size of the output buffer
 746 *
 747 * Many of the strings in the LDM Database are not NULL terminated.  Instead
 748 * they are prefixed by a one byte length marker.  This function copies one of
 749 * these strings into a buffer.
 750 *
 751 * N.B.  This function DOES NOT perform any range checking on the input.
 752 *       If the buffer is too small, the output will be truncated.
 753 *
 754 * Return:  0, Error and @buffer contents are undefined
 755 *          n, String length in characters (excluding NULL)
 756 *          buflen-1, String was truncated.
 757 */
 758static int ldm_get_vstr (const u8 *block, u8 *buffer, int buflen)
 759{
 760	int length;
 761
 762	BUG_ON (!block || !buffer);
 763
 764	length = block[0];
 765	if (length >= buflen) {
 766		ldm_error ("Truncating string %d -> %d.", length, buflen);
 767		length = buflen - 1;
 768	}
 769	memcpy (buffer, block + 1, length);
 770	buffer[length] = 0;
 771	return length;
 772}
 773
 774
 775/**
 776 * ldm_parse_cmp3 - Read a raw VBLK Component object into a vblk structure
 777 * @buffer:  Block of data being worked on
 778 * @buflen:  Size of the block of data
 779 * @vb:      In-memory vblk in which to return information
 780 *
 781 * Read a raw VBLK Component object (version 3) into a vblk structure.
 782 *
 783 * Return:  'true'   @vb contains a Component VBLK
 784 *          'false'  @vb contents are not defined
 785 */
 786static bool ldm_parse_cmp3 (const u8 *buffer, int buflen, struct vblk *vb)
 787{
 788	int r_objid, r_name, r_vstate, r_child, r_parent, r_stripe, r_cols, len;
 789	struct vblk_comp *comp;
 790
 791	BUG_ON (!buffer || !vb);
 792
 793	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 794	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 795	r_vstate = ldm_relative (buffer, buflen, 0x18, r_name);
 796	r_child  = ldm_relative (buffer, buflen, 0x1D, r_vstate);
 797	r_parent = ldm_relative (buffer, buflen, 0x2D, r_child);
 798
 799	if (buffer[0x12] & VBLK_FLAG_COMP_STRIPE) {
 800		r_stripe = ldm_relative (buffer, buflen, 0x2E, r_parent);
 801		r_cols   = ldm_relative (buffer, buflen, 0x2E, r_stripe);
 802		len = r_cols;
 803	} else {
 804		r_stripe = 0;
 805		r_cols   = 0;
 806		len = r_parent;
 807	}
 808	if (len < 0)
 809		return false;
 810
 811	len += VBLK_SIZE_CMP3;
 812	if (len != get_unaligned_be32(buffer + 0x14))
 813		return false;
 814
 815	comp = &vb->vblk.comp;
 816	ldm_get_vstr (buffer + 0x18 + r_name, comp->state,
 817		sizeof (comp->state));
 818	comp->type      = buffer[0x18 + r_vstate];
 819	comp->children  = ldm_get_vnum (buffer + 0x1D + r_vstate);
 820	comp->parent_id = ldm_get_vnum (buffer + 0x2D + r_child);
 821	comp->chunksize = r_stripe ? ldm_get_vnum (buffer+r_parent+0x2E) : 0;
 822
 823	return true;
 824}
 825
 826/**
 827 * ldm_parse_dgr3 - Read a raw VBLK Disk Group object into a vblk structure
 828 * @buffer:  Block of data being worked on
 829 * @buflen:  Size of the block of data
 830 * @vb:      In-memory vblk in which to return information
 831 *
 832 * Read a raw VBLK Disk Group object (version 3) into a vblk structure.
 833 *
 834 * Return:  'true'   @vb contains a Disk Group VBLK
 835 *          'false'  @vb contents are not defined
 836 */
 837static int ldm_parse_dgr3 (const u8 *buffer, int buflen, struct vblk *vb)
 838{
 839	int r_objid, r_name, r_diskid, r_id1, r_id2, len;
 840	struct vblk_dgrp *dgrp;
 841
 842	BUG_ON (!buffer || !vb);
 843
 844	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 845	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 846	r_diskid = ldm_relative (buffer, buflen, 0x18, r_name);
 847
 848	if (buffer[0x12] & VBLK_FLAG_DGR3_IDS) {
 849		r_id1 = ldm_relative (buffer, buflen, 0x24, r_diskid);
 850		r_id2 = ldm_relative (buffer, buflen, 0x24, r_id1);
 851		len = r_id2;
 852	} else {
 853		r_id1 = 0;
 854		r_id2 = 0;
 855		len = r_diskid;
 856	}
 857	if (len < 0)
 858		return false;
 859
 860	len += VBLK_SIZE_DGR3;
 861	if (len != get_unaligned_be32(buffer + 0x14))
 862		return false;
 863
 864	dgrp = &vb->vblk.dgrp;
 865	ldm_get_vstr (buffer + 0x18 + r_name, dgrp->disk_id,
 866		sizeof (dgrp->disk_id));
 867	return true;
 868}
 869
 870/**
 871 * ldm_parse_dgr4 - Read a raw VBLK Disk Group object into a vblk structure
 872 * @buffer:  Block of data being worked on
 873 * @buflen:  Size of the block of data
 874 * @vb:      In-memory vblk in which to return information
 875 *
 876 * Read a raw VBLK Disk Group object (version 4) into a vblk structure.
 877 *
 878 * Return:  'true'   @vb contains a Disk Group VBLK
 879 *          'false'  @vb contents are not defined
 880 */
 881static bool ldm_parse_dgr4 (const u8 *buffer, int buflen, struct vblk *vb)
 882{
 883	char buf[64];
 884	int r_objid, r_name, r_id1, r_id2, len;
 885	struct vblk_dgrp *dgrp;
 886
 887	BUG_ON (!buffer || !vb);
 888
 889	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 890	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 891
 892	if (buffer[0x12] & VBLK_FLAG_DGR4_IDS) {
 893		r_id1 = ldm_relative (buffer, buflen, 0x44, r_name);
 894		r_id2 = ldm_relative (buffer, buflen, 0x44, r_id1);
 895		len = r_id2;
 896	} else {
 897		r_id1 = 0;
 898		r_id2 = 0;
 899		len = r_name;
 900	}
 901	if (len < 0)
 902		return false;
 903
 904	len += VBLK_SIZE_DGR4;
 905	if (len != get_unaligned_be32(buffer + 0x14))
 906		return false;
 907
 908	dgrp = &vb->vblk.dgrp;
 909
 910	ldm_get_vstr (buffer + 0x18 + r_objid, buf, sizeof (buf));
 911	return true;
 912}
 913
 914/**
 915 * ldm_parse_dsk3 - Read a raw VBLK Disk object into a vblk structure
 916 * @buffer:  Block of data being worked on
 917 * @buflen:  Size of the block of data
 918 * @vb:      In-memory vblk in which to return information
 919 *
 920 * Read a raw VBLK Disk object (version 3) into a vblk structure.
 921 *
 922 * Return:  'true'   @vb contains a Disk VBLK
 923 *          'false'  @vb contents are not defined
 924 */
 925static bool ldm_parse_dsk3 (const u8 *buffer, int buflen, struct vblk *vb)
 926{
 927	int r_objid, r_name, r_diskid, r_altname, len;
 928	struct vblk_disk *disk;
 929
 930	BUG_ON (!buffer || !vb);
 931
 932	r_objid   = ldm_relative (buffer, buflen, 0x18, 0);
 933	r_name    = ldm_relative (buffer, buflen, 0x18, r_objid);
 934	r_diskid  = ldm_relative (buffer, buflen, 0x18, r_name);
 935	r_altname = ldm_relative (buffer, buflen, 0x18, r_diskid);
 936	len = r_altname;
 937	if (len < 0)
 938		return false;
 939
 940	len += VBLK_SIZE_DSK3;
 941	if (len != get_unaligned_be32(buffer + 0x14))
 942		return false;
 943
 944	disk = &vb->vblk.disk;
 945	ldm_get_vstr (buffer + 0x18 + r_diskid, disk->alt_name,
 946		sizeof (disk->alt_name));
 947	if (!ldm_parse_guid (buffer + 0x19 + r_name, disk->disk_id))
 948		return false;
 949
 950	return true;
 951}
 952
 953/**
 954 * ldm_parse_dsk4 - Read a raw VBLK Disk object into a vblk structure
 955 * @buffer:  Block of data being worked on
 956 * @buflen:  Size of the block of data
 957 * @vb:      In-memory vblk in which to return information
 958 *
 959 * Read a raw VBLK Disk object (version 4) into a vblk structure.
 960 *
 961 * Return:  'true'   @vb contains a Disk VBLK
 962 *          'false'  @vb contents are not defined
 963 */
 964static bool ldm_parse_dsk4 (const u8 *buffer, int buflen, struct vblk *vb)
 965{
 966	int r_objid, r_name, len;
 967	struct vblk_disk *disk;
 968
 969	BUG_ON (!buffer || !vb);
 970
 971	r_objid = ldm_relative (buffer, buflen, 0x18, 0);
 972	r_name  = ldm_relative (buffer, buflen, 0x18, r_objid);
 973	len     = r_name;
 974	if (len < 0)
 975		return false;
 976
 977	len += VBLK_SIZE_DSK4;
 978	if (len != get_unaligned_be32(buffer + 0x14))
 979		return false;
 980
 981	disk = &vb->vblk.disk;
 982	memcpy (disk->disk_id, buffer + 0x18 + r_name, GUID_SIZE);
 983	return true;
 984}
 985
 986/**
 987 * ldm_parse_prt3 - Read a raw VBLK Partition object into a vblk structure
 988 * @buffer:  Block of data being worked on
 989 * @buflen:  Size of the block of data
 990 * @vb:      In-memory vblk in which to return information
 991 *
 992 * Read a raw VBLK Partition object (version 3) into a vblk structure.
 993 *
 994 * Return:  'true'   @vb contains a Partition VBLK
 995 *          'false'  @vb contents are not defined
 996 */
 997static bool ldm_parse_prt3(const u8 *buffer, int buflen, struct vblk *vb)
 998{
 999	int r_objid, r_name, r_size, r_parent, r_diskid, r_index, len;
1000	struct vblk_part *part;
1001
1002	BUG_ON(!buffer || !vb);
1003	r_objid = ldm_relative(buffer, buflen, 0x18, 0);
1004	if (r_objid < 0) {
1005		ldm_error("r_objid %d < 0", r_objid);
1006		return false;
1007	}
1008	r_name = ldm_relative(buffer, buflen, 0x18, r_objid);
1009	if (r_name < 0) {
1010		ldm_error("r_name %d < 0", r_name);
1011		return false;
1012	}
1013	r_size = ldm_relative(buffer, buflen, 0x34, r_name);
1014	if (r_size < 0) {
1015		ldm_error("r_size %d < 0", r_size);
1016		return false;
1017	}
1018	r_parent = ldm_relative(buffer, buflen, 0x34, r_size);
1019	if (r_parent < 0) {
1020		ldm_error("r_parent %d < 0", r_parent);
1021		return false;
1022	}
1023	r_diskid = ldm_relative(buffer, buflen, 0x34, r_parent);
1024	if (r_diskid < 0) {
1025		ldm_error("r_diskid %d < 0", r_diskid);
1026		return false;
1027	}
1028	if (buffer[0x12] & VBLK_FLAG_PART_INDEX) {
1029		r_index = ldm_relative(buffer, buflen, 0x34, r_diskid);
1030		if (r_index < 0) {
1031			ldm_error("r_index %d < 0", r_index);
1032			return false;
1033		}
1034		len = r_index;
1035	} else {
1036		r_index = 0;
1037		len = r_diskid;
1038	}
1039	if (len < 0) {
1040		ldm_error("len %d < 0", len);
1041		return false;
1042	}
1043	len += VBLK_SIZE_PRT3;
1044	if (len > get_unaligned_be32(buffer + 0x14)) {
1045		ldm_error("len %d > BE32(buffer + 0x14) %d", len,
1046				get_unaligned_be32(buffer + 0x14));
1047		return false;
1048	}
1049	part = &vb->vblk.part;
1050	part->start = get_unaligned_be64(buffer + 0x24 + r_name);
1051	part->volume_offset = get_unaligned_be64(buffer + 0x2C + r_name);
1052	part->size = ldm_get_vnum(buffer + 0x34 + r_name);
1053	part->parent_id = ldm_get_vnum(buffer + 0x34 + r_size);
1054	part->disk_id = ldm_get_vnum(buffer + 0x34 + r_parent);
1055	if (vb->flags & VBLK_FLAG_PART_INDEX)
1056		part->partnum = buffer[0x35 + r_diskid];
1057	else
1058		part->partnum = 0;
1059	return true;
1060}
1061
1062/**
1063 * ldm_parse_vol5 - Read a raw VBLK Volume object into a vblk structure
1064 * @buffer:  Block of data being worked on
1065 * @buflen:  Size of the block of data
1066 * @vb:      In-memory vblk in which to return information
1067 *
1068 * Read a raw VBLK Volume object (version 5) into a vblk structure.
1069 *
1070 * Return:  'true'   @vb contains a Volume VBLK
1071 *          'false'  @vb contents are not defined
1072 */
1073static bool ldm_parse_vol5(const u8 *buffer, int buflen, struct vblk *vb)
1074{
1075	int r_objid, r_name, r_vtype, r_disable_drive_letter, r_child, r_size;
1076	int r_id1, r_id2, r_size2, r_drive, len;
1077	struct vblk_volu *volu;
1078
1079	BUG_ON(!buffer || !vb);
1080	r_objid = ldm_relative(buffer, buflen, 0x18, 0);
1081	if (r_objid < 0) {
1082		ldm_error("r_objid %d < 0", r_objid);
1083		return false;
1084	}
1085	r_name = ldm_relative(buffer, buflen, 0x18, r_objid);
1086	if (r_name < 0) {
1087		ldm_error("r_name %d < 0", r_name);
1088		return false;
1089	}
1090	r_vtype = ldm_relative(buffer, buflen, 0x18, r_name);
1091	if (r_vtype < 0) {
1092		ldm_error("r_vtype %d < 0", r_vtype);
1093		return false;
1094	}
1095	r_disable_drive_letter = ldm_relative(buffer, buflen, 0x18, r_vtype);
1096	if (r_disable_drive_letter < 0) {
1097		ldm_error("r_disable_drive_letter %d < 0",
1098				r_disable_drive_letter);
1099		return false;
1100	}
1101	r_child = ldm_relative(buffer, buflen, 0x2D, r_disable_drive_letter);
1102	if (r_child < 0) {
1103		ldm_error("r_child %d < 0", r_child);
1104		return false;
1105	}
1106	r_size = ldm_relative(buffer, buflen, 0x3D, r_child);
1107	if (r_size < 0) {
1108		ldm_error("r_size %d < 0", r_size);
1109		return false;
1110	}
1111	if (buffer[0x12] & VBLK_FLAG_VOLU_ID1) {
1112		r_id1 = ldm_relative(buffer, buflen, 0x52, r_size);
1113		if (r_id1 < 0) {
1114			ldm_error("r_id1 %d < 0", r_id1);
1115			return false;
1116		}
1117	} else
1118		r_id1 = r_size;
1119	if (buffer[0x12] & VBLK_FLAG_VOLU_ID2) {
1120		r_id2 = ldm_relative(buffer, buflen, 0x52, r_id1);
1121		if (r_id2 < 0) {
1122			ldm_error("r_id2 %d < 0", r_id2);
1123			return false;
1124		}
1125	} else
1126		r_id2 = r_id1;
1127	if (buffer[0x12] & VBLK_FLAG_VOLU_SIZE) {
1128		r_size2 = ldm_relative(buffer, buflen, 0x52, r_id2);
1129		if (r_size2 < 0) {
1130			ldm_error("r_size2 %d < 0", r_size2);
1131			return false;
1132		}
1133	} else
1134		r_size2 = r_id2;
1135	if (buffer[0x12] & VBLK_FLAG_VOLU_DRIVE) {
1136		r_drive = ldm_relative(buffer, buflen, 0x52, r_size2);
1137		if (r_drive < 0) {
1138			ldm_error("r_drive %d < 0", r_drive);
1139			return false;
1140		}
1141	} else
1142		r_drive = r_size2;
1143	len = r_drive;
1144	if (len < 0) {
1145		ldm_error("len %d < 0", len);
1146		return false;
1147	}
1148	len += VBLK_SIZE_VOL5;
1149	if (len > get_unaligned_be32(buffer + 0x14)) {
1150		ldm_error("len %d > BE32(buffer + 0x14) %d", len,
1151				get_unaligned_be32(buffer + 0x14));
1152		return false;
1153	}
1154	volu = &vb->vblk.volu;
1155	ldm_get_vstr(buffer + 0x18 + r_name, volu->volume_type,
1156			sizeof(volu->volume_type));
1157	memcpy(volu->volume_state, buffer + 0x18 + r_disable_drive_letter,
1158			sizeof(volu->volume_state));
1159	volu->size = ldm_get_vnum(buffer + 0x3D + r_child);
1160	volu->partition_type = buffer[0x41 + r_size];
1161	memcpy(volu->guid, buffer + 0x42 + r_size, sizeof(volu->guid));
1162	if (buffer[0x12] & VBLK_FLAG_VOLU_DRIVE) {
1163		ldm_get_vstr(buffer + 0x52 + r_size, volu->drive_hint,
1164				sizeof(volu->drive_hint));
1165	}
1166	return true;
1167}
1168
1169/**
1170 * ldm_parse_vblk - Read a raw VBLK object into a vblk structure
1171 * @buf:  Block of data being worked on
1172 * @len:  Size of the block of data
1173 * @vb:   In-memory vblk in which to return information
1174 *
1175 * Read a raw VBLK object into a vblk structure.  This function just reads the
1176 * information common to all VBLK types, then delegates the rest of the work to
1177 * helper functions: ldm_parse_*.
1178 *
1179 * Return:  'true'   @vb contains a VBLK
1180 *          'false'  @vb contents are not defined
1181 */
1182static bool ldm_parse_vblk (const u8 *buf, int len, struct vblk *vb)
1183{
1184	bool result = false;
1185	int r_objid;
1186
1187	BUG_ON (!buf || !vb);
1188
1189	r_objid = ldm_relative (buf, len, 0x18, 0);
1190	if (r_objid < 0) {
1191		ldm_error ("VBLK header is corrupt.");
1192		return false;
1193	}
1194
1195	vb->flags  = buf[0x12];
1196	vb->type   = buf[0x13];
1197	vb->obj_id = ldm_get_vnum (buf + 0x18);
1198	ldm_get_vstr (buf+0x18+r_objid, vb->name, sizeof (vb->name));
1199
1200	switch (vb->type) {
1201		case VBLK_CMP3:  result = ldm_parse_cmp3 (buf, len, vb); break;
1202		case VBLK_DSK3:  result = ldm_parse_dsk3 (buf, len, vb); break;
1203		case VBLK_DSK4:  result = ldm_parse_dsk4 (buf, len, vb); break;
1204		case VBLK_DGR3:  result = ldm_parse_dgr3 (buf, len, vb); break;
1205		case VBLK_DGR4:  result = ldm_parse_dgr4 (buf, len, vb); break;
1206		case VBLK_PRT3:  result = ldm_parse_prt3 (buf, len, vb); break;
1207		case VBLK_VOL5:  result = ldm_parse_vol5 (buf, len, vb); break;
1208	}
1209
1210	if (result)
1211		ldm_debug ("Parsed VBLK 0x%llx (type: 0x%02x) ok.",
1212			 (unsigned long long) vb->obj_id, vb->type);
1213	else
1214		ldm_error ("Failed to parse VBLK 0x%llx (type: 0x%02x).",
1215			(unsigned long long) vb->obj_id, vb->type);
1216
1217	return result;
1218}
1219
1220
1221/**
1222 * ldm_ldmdb_add - Adds a raw VBLK entry to the ldmdb database
1223 * @data:  Raw VBLK to add to the database
1224 * @len:   Size of the raw VBLK
1225 * @ldb:   Cache of the database structures
1226 *
1227 * The VBLKs are sorted into categories.  Partitions are also sorted by offset.
1228 *
1229 * N.B.  This function does not check the validity of the VBLKs.
1230 *
1231 * Return:  'true'   The VBLK was added
1232 *          'false'  An error occurred
1233 */
1234static bool ldm_ldmdb_add (u8 *data, int len, struct ldmdb *ldb)
1235{
1236	struct vblk *vb;
1237	struct list_head *item;
1238
1239	BUG_ON (!data || !ldb);
1240
1241	vb = kmalloc (sizeof (*vb), GFP_KERNEL);
1242	if (!vb) {
1243		ldm_crit ("Out of memory.");
1244		return false;
1245	}
1246
1247	if (!ldm_parse_vblk (data, len, vb)) {
1248		kfree(vb);
1249		return false;			/* Already logged */
1250	}
1251
1252	/* Put vblk into the correct list. */
1253	switch (vb->type) {
1254	case VBLK_DGR3:
1255	case VBLK_DGR4:
1256		list_add (&vb->list, &ldb->v_dgrp);
1257		break;
1258	case VBLK_DSK3:
1259	case VBLK_DSK4:
1260		list_add (&vb->list, &ldb->v_disk);
1261		break;
1262	case VBLK_VOL5:
1263		list_add (&vb->list, &ldb->v_volu);
1264		break;
1265	case VBLK_CMP3:
1266		list_add (&vb->list, &ldb->v_comp);
1267		break;
1268	case VBLK_PRT3:
1269		/* Sort by the partition's start sector. */
1270		list_for_each (item, &ldb->v_part) {
1271			struct vblk *v = list_entry (item, struct vblk, list);
1272			if ((v->vblk.part.disk_id == vb->vblk.part.disk_id) &&
1273			    (v->vblk.part.start > vb->vblk.part.start)) {
1274				list_add_tail (&vb->list, &v->list);
1275				return true;
1276			}
1277		}
1278		list_add_tail (&vb->list, &ldb->v_part);
1279		break;
1280	}
1281	return true;
1282}
1283
1284/**
1285 * ldm_frag_add - Add a VBLK fragment to a list
1286 * @data:   Raw fragment to be added to the list
1287 * @size:   Size of the raw fragment
1288 * @frags:  Linked list of VBLK fragments
1289 *
1290 * Fragmented VBLKs may not be consecutive in the database, so they are placed
1291 * in a list so they can be pieced together later.
1292 *
1293 * Return:  'true'   Success, the VBLK was added to the list
1294 *          'false'  Error, a problem occurred
1295 */
1296static bool ldm_frag_add (const u8 *data, int size, struct list_head *frags)
1297{
1298	struct frag *f;
1299	struct list_head *item;
1300	int rec, num, group;
1301
1302	BUG_ON (!data || !frags);
1303
1304	if (size < 2 * VBLK_SIZE_HEAD) {
1305		ldm_error("Value of size is to small.");
1306		return false;
1307	}
1308
1309	group = get_unaligned_be32(data + 0x08);
1310	rec   = get_unaligned_be16(data + 0x0C);
1311	num   = get_unaligned_be16(data + 0x0E);
1312	if ((num < 1) || (num > 4)) {
1313		ldm_error ("A VBLK claims to have %d parts.", num);
1314		return false;
1315	}
1316	if (rec >= num) {
1317		ldm_error("REC value (%d) exceeds NUM value (%d)", rec, num);
1318		return false;
1319	}
1320
1321	list_for_each (item, frags) {
1322		f = list_entry (item, struct frag, list);
1323		if (f->group == group)
1324			goto found;
1325	}
1326
1327	f = kmalloc (sizeof (*f) + size*num, GFP_KERNEL);
1328	if (!f) {
1329		ldm_crit ("Out of memory.");
1330		return false;
1331	}
1332
1333	f->group = group;
1334	f->num   = num;
1335	f->rec   = rec;
1336	f->map   = 0xFF << num;
1337
1338	list_add_tail (&f->list, frags);
1339found:
1340	if (rec >= f->num) {
1341		ldm_error("REC value (%d) exceeds NUM value (%d)", rec, f->num);
1342		return false;
1343	}
1344	if (f->map & (1 << rec)) {
1345		ldm_error ("Duplicate VBLK, part %d.", rec);
1346		f->map &= 0x7F;			/* Mark the group as broken */
1347		return false;
1348	}
1349	f->map |= (1 << rec);
1350	if (!rec)
1351		memcpy(f->data, data, VBLK_SIZE_HEAD);
1352	data += VBLK_SIZE_HEAD;
1353	size -= VBLK_SIZE_HEAD;
1354	memcpy(f->data + VBLK_SIZE_HEAD + rec * size, data, size);
1355	return true;
1356}
1357
1358/**
1359 * ldm_frag_free - Free a linked list of VBLK fragments
1360 * @list:  Linked list of fragments
1361 *
1362 * Free a linked list of VBLK fragments
1363 *
1364 * Return:  none
1365 */
1366static void ldm_frag_free (struct list_head *list)
1367{
1368	struct list_head *item, *tmp;
1369
1370	BUG_ON (!list);
1371
1372	list_for_each_safe (item, tmp, list)
1373		kfree (list_entry (item, struct frag, list));
1374}
1375
1376/**
1377 * ldm_frag_commit - Validate fragmented VBLKs and add them to the database
1378 * @frags:  Linked list of VBLK fragments
1379 * @ldb:    Cache of the database structures
1380 *
1381 * Now that all the fragmented VBLKs have been collected, they must be added to
1382 * the database for later use.
1383 *
1384 * Return:  'true'   All the fragments we added successfully
1385 *          'false'  One or more of the fragments we invalid
1386 */
1387static bool ldm_frag_commit (struct list_head *frags, struct ldmdb *ldb)
1388{
1389	struct frag *f;
1390	struct list_head *item;
1391
1392	BUG_ON (!frags || !ldb);
1393
1394	list_for_each (item, frags) {
1395		f = list_entry (item, struct frag, list);
1396
1397		if (f->map != 0xFF) {
1398			ldm_error ("VBLK group %d is incomplete (0x%02x).",
1399				f->group, f->map);
1400			return false;
1401		}
1402
1403		if (!ldm_ldmdb_add (f->data, f->num*ldb->vm.vblk_size, ldb))
1404			return false;		/* Already logged */
1405	}
1406	return true;
1407}
1408
1409/**
1410 * ldm_get_vblks - Read the on-disk database of VBLKs into memory
1411 * @state: Partition check state including device holding the LDM Database
1412 * @base:  Offset, into @state->bdev, of the database
1413 * @ldb:   Cache of the database structures
1414 *
1415 * To use the information from the VBLKs, they need to be read from the disk,
1416 * unpacked and validated.  We cache them in @ldb according to their type.
1417 *
1418 * Return:  'true'   All the VBLKs were read successfully
1419 *          'false'  An error occurred
1420 */
1421static bool ldm_get_vblks(struct parsed_partitions *state, unsigned long base,
1422			  struct ldmdb *ldb)
1423{
1424	int size, perbuf, skip, finish, s, v, recs;
1425	u8 *data = NULL;
1426	Sector sect;
1427	bool result = false;
1428	LIST_HEAD (frags);
1429
1430	BUG_ON(!state || !ldb);
1431
1432	size   = ldb->vm.vblk_size;
1433	perbuf = 512 / size;
1434	skip   = ldb->vm.vblk_offset >> 9;		/* Bytes to sectors */
1435	finish = (size * ldb->vm.last_vblk_seq) >> 9;
1436
1437	for (s = skip; s < finish; s++) {		/* For each sector */
1438		data = read_part_sector(state, base + OFF_VMDB + s, &sect);
1439		if (!data) {
1440			ldm_crit ("Disk read failed.");
1441			goto out;
1442		}
1443
1444		for (v = 0; v < perbuf; v++, data+=size) {  /* For each vblk */
1445			if (MAGIC_VBLK != get_unaligned_be32(data)) {
1446				ldm_error ("Expected to find a VBLK.");
1447				goto out;
1448			}
1449
1450			recs = get_unaligned_be16(data + 0x0E);	/* Number of records */
1451			if (recs == 1) {
1452				if (!ldm_ldmdb_add (data, size, ldb))
1453					goto out;	/* Already logged */
1454			} else if (recs > 1) {
1455				if (!ldm_frag_add (data, size, &frags))
1456					goto out;	/* Already logged */
1457			}
1458			/* else Record is not in use, ignore it. */
1459		}
1460		put_dev_sector (sect);
1461		data = NULL;
1462	}
1463
1464	result = ldm_frag_commit (&frags, ldb);	/* Failures, already logged */
1465out:
1466	if (data)
1467		put_dev_sector (sect);
1468	ldm_frag_free (&frags);
1469
1470	return result;
1471}
1472
1473/**
1474 * ldm_free_vblks - Free a linked list of vblk's
1475 * @lh:  Head of a linked list of struct vblk
1476 *
1477 * Free a list of vblk's and free the memory used to maintain the list.
1478 *
1479 * Return:  none
1480 */
1481static void ldm_free_vblks (struct list_head *lh)
1482{
1483	struct list_head *item, *tmp;
1484
1485	BUG_ON (!lh);
1486
1487	list_for_each_safe (item, tmp, lh)
1488		kfree (list_entry (item, struct vblk, list));
1489}
1490
1491
1492/**
1493 * ldm_partition - Find out whether a device is a dynamic disk and handle it
1494 * @state: Partition check state including device holding the LDM Database
1495 *
1496 * This determines whether the device @bdev is a dynamic disk and if so creates
1497 * the partitions necessary in the gendisk structure pointed to by @hd.
1498 *
1499 * We create a dummy device 1, which contains the LDM database, and then create
1500 * each partition described by the LDM database in sequence as devices 2+. For
1501 * example, if the device is hda, we would have: hda1: LDM database, hda2, hda3,
1502 * and so on: the actual data containing partitions.
1503 *
1504 * Return:  1 Success, @state->bdev is a dynamic disk and we handled it
1505 *          0 Success, @state->bdev is not a dynamic disk
1506 *         -1 An error occurred before enough information had been read
1507 *            Or @state->bdev is a dynamic disk, but it may be corrupted
1508 */
1509int ldm_partition(struct parsed_partitions *state)
1510{
1511	struct ldmdb  *ldb;
1512	unsigned long base;
1513	int result = -1;
1514
1515	BUG_ON(!state);
1516
1517	/* Look for signs of a Dynamic Disk */
1518	if (!ldm_validate_partition_table(state))
1519		return 0;
1520
1521	ldb = kmalloc (sizeof (*ldb), GFP_KERNEL);
1522	if (!ldb) {
1523		ldm_crit ("Out of memory.");
1524		goto out;
1525	}
1526
1527	/* Parse and check privheads. */
1528	if (!ldm_validate_privheads(state, &ldb->ph))
1529		goto out;		/* Already logged */
1530
1531	/* All further references are relative to base (database start). */
1532	base = ldb->ph.config_start;
1533
1534	/* Parse and check tocs and vmdb. */
1535	if (!ldm_validate_tocblocks(state, base, ldb) ||
1536	    !ldm_validate_vmdb(state, base, ldb))
1537	    	goto out;		/* Already logged */
1538
1539	/* Initialize vblk lists in ldmdb struct */
1540	INIT_LIST_HEAD (&ldb->v_dgrp);
1541	INIT_LIST_HEAD (&ldb->v_disk);
1542	INIT_LIST_HEAD (&ldb->v_volu);
1543	INIT_LIST_HEAD (&ldb->v_comp);
1544	INIT_LIST_HEAD (&ldb->v_part);
1545
1546	if (!ldm_get_vblks(state, base, ldb)) {
1547		ldm_crit ("Failed to read the VBLKs from the database.");
1548		goto cleanup;
1549	}
1550
1551	/* Finally, create the data partition devices. */
1552	if (ldm_create_data_partitions(state, ldb)) {
1553		ldm_debug ("Parsed LDM database successfully.");
1554		result = 1;
1555	}
1556	/* else Already logged */
1557
1558cleanup:
1559	ldm_free_vblks (&ldb->v_dgrp);
1560	ldm_free_vblks (&ldb->v_disk);
1561	ldm_free_vblks (&ldb->v_volu);
1562	ldm_free_vblks (&ldb->v_comp);
1563	ldm_free_vblks (&ldb->v_part);
1564out:
1565	kfree (ldb);
1566	return result;
1567}
v6.8
   1// SPDX-License-Identifier: GPL-2.0-or-later
   2/*
   3 * ldm - Support for Windows Logical Disk Manager (Dynamic Disks)
   4 *
   5 * Copyright (C) 2001,2002 Richard Russon <ldm@flatcap.org>
   6 * Copyright (c) 2001-2012 Anton Altaparmakov
   7 * Copyright (C) 2001,2002 Jakob Kemi <jakob.kemi@telia.com>
   8 *
   9 * Documentation is available at http://www.linux-ntfs.org/doku.php?id=downloads 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
  10 */
  11
  12#include <linux/slab.h>
  13#include <linux/pagemap.h>
  14#include <linux/stringify.h>
  15#include <linux/kernel.h>
  16#include <linux/uuid.h>
  17#include <linux/msdos_partition.h>
  18
  19#include "ldm.h"
  20#include "check.h"
 
  21
  22/*
  23 * ldm_debug/info/error/crit - Output an error message
  24 * @f:    A printf format string containing the message
  25 * @...:  Variables to substitute into @f
  26 *
  27 * ldm_debug() writes a DEBUG level message to the syslog but only if the
  28 * driver was compiled with debug enabled. Otherwise, the call turns into a NOP.
  29 */
  30#ifndef CONFIG_LDM_DEBUG
  31#define ldm_debug(...)	do {} while (0)
  32#else
  33#define ldm_debug(f, a...) _ldm_printk (KERN_DEBUG, __func__, f, ##a)
  34#endif
  35
  36#define ldm_crit(f, a...)  _ldm_printk (KERN_CRIT,  __func__, f, ##a)
  37#define ldm_error(f, a...) _ldm_printk (KERN_ERR,   __func__, f, ##a)
  38#define ldm_info(f, a...)  _ldm_printk (KERN_INFO,  __func__, f, ##a)
  39
  40static __printf(3, 4)
  41void _ldm_printk(const char *level, const char *function, const char *fmt, ...)
  42{
  43	struct va_format vaf;
  44	va_list args;
  45
  46	va_start (args, fmt);
  47
  48	vaf.fmt = fmt;
  49	vaf.va = &args;
  50
  51	printk("%s%s(): %pV\n", level, function, &vaf);
  52
  53	va_end(args);
  54}
  55
  56/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
  57 * ldm_parse_privhead - Read the LDM Database PRIVHEAD structure
  58 * @data:  Raw database PRIVHEAD structure loaded from the device
  59 * @ph:    In-memory privhead structure in which to return parsed information
  60 *
  61 * This parses the LDM database PRIVHEAD structure supplied in @data and
  62 * sets up the in-memory privhead structure @ph with the obtained information.
  63 *
  64 * Return:  'true'   @ph contains the PRIVHEAD data
  65 *          'false'  @ph contents are undefined
  66 */
  67static bool ldm_parse_privhead(const u8 *data, struct privhead *ph)
  68{
  69	bool is_vista = false;
  70
  71	BUG_ON(!data || !ph);
  72	if (MAGIC_PRIVHEAD != get_unaligned_be64(data)) {
  73		ldm_error("Cannot find PRIVHEAD structure. LDM database is"
  74			" corrupt. Aborting.");
  75		return false;
  76	}
  77	ph->ver_major = get_unaligned_be16(data + 0x000C);
  78	ph->ver_minor = get_unaligned_be16(data + 0x000E);
  79	ph->logical_disk_start = get_unaligned_be64(data + 0x011B);
  80	ph->logical_disk_size = get_unaligned_be64(data + 0x0123);
  81	ph->config_start = get_unaligned_be64(data + 0x012B);
  82	ph->config_size = get_unaligned_be64(data + 0x0133);
  83	/* Version 2.11 is Win2k/XP and version 2.12 is Vista. */
  84	if (ph->ver_major == 2 && ph->ver_minor == 12)
  85		is_vista = true;
  86	if (!is_vista && (ph->ver_major != 2 || ph->ver_minor != 11)) {
  87		ldm_error("Expected PRIVHEAD version 2.11 or 2.12, got %d.%d."
  88			" Aborting.", ph->ver_major, ph->ver_minor);
  89		return false;
  90	}
  91	ldm_debug("PRIVHEAD version %d.%d (Windows %s).", ph->ver_major,
  92			ph->ver_minor, is_vista ? "Vista" : "2000/XP");
  93	if (ph->config_size != LDM_DB_SIZE) {	/* 1 MiB in sectors. */
  94		/* Warn the user and continue, carefully. */
  95		ldm_info("Database is normally %u bytes, it claims to "
  96			"be %llu bytes.", LDM_DB_SIZE,
  97			(unsigned long long)ph->config_size);
  98	}
  99	if ((ph->logical_disk_size == 0) || (ph->logical_disk_start +
 100			ph->logical_disk_size > ph->config_start)) {
 101		ldm_error("PRIVHEAD disk size doesn't match real disk size");
 102		return false;
 103	}
 104	if (uuid_parse(data + 0x0030, &ph->disk_id)) {
 105		ldm_error("PRIVHEAD contains an invalid GUID.");
 106		return false;
 107	}
 108	ldm_debug("Parsed PRIVHEAD successfully.");
 109	return true;
 110}
 111
 112/**
 113 * ldm_parse_tocblock - Read the LDM Database TOCBLOCK structure
 114 * @data:  Raw database TOCBLOCK structure loaded from the device
 115 * @toc:   In-memory toc structure in which to return parsed information
 116 *
 117 * This parses the LDM Database TOCBLOCK (table of contents) structure supplied
 118 * in @data and sets up the in-memory tocblock structure @toc with the obtained
 119 * information.
 120 *
 121 * N.B.  The *_start and *_size values returned in @toc are not range-checked.
 122 *
 123 * Return:  'true'   @toc contains the TOCBLOCK data
 124 *          'false'  @toc contents are undefined
 125 */
 126static bool ldm_parse_tocblock (const u8 *data, struct tocblock *toc)
 127{
 128	BUG_ON (!data || !toc);
 129
 130	if (MAGIC_TOCBLOCK != get_unaligned_be64(data)) {
 131		ldm_crit ("Cannot find TOCBLOCK, database may be corrupt.");
 132		return false;
 133	}
 134	strncpy (toc->bitmap1_name, data + 0x24, sizeof (toc->bitmap1_name));
 135	toc->bitmap1_name[sizeof (toc->bitmap1_name) - 1] = 0;
 136	toc->bitmap1_start = get_unaligned_be64(data + 0x2E);
 137	toc->bitmap1_size  = get_unaligned_be64(data + 0x36);
 138
 139	if (strncmp (toc->bitmap1_name, TOC_BITMAP1,
 140			sizeof (toc->bitmap1_name)) != 0) {
 141		ldm_crit ("TOCBLOCK's first bitmap is '%s', should be '%s'.",
 142				TOC_BITMAP1, toc->bitmap1_name);
 143		return false;
 144	}
 145	strncpy (toc->bitmap2_name, data + 0x46, sizeof (toc->bitmap2_name));
 146	toc->bitmap2_name[sizeof (toc->bitmap2_name) - 1] = 0;
 147	toc->bitmap2_start = get_unaligned_be64(data + 0x50);
 148	toc->bitmap2_size  = get_unaligned_be64(data + 0x58);
 149	if (strncmp (toc->bitmap2_name, TOC_BITMAP2,
 150			sizeof (toc->bitmap2_name)) != 0) {
 151		ldm_crit ("TOCBLOCK's second bitmap is '%s', should be '%s'.",
 152				TOC_BITMAP2, toc->bitmap2_name);
 153		return false;
 154	}
 155	ldm_debug ("Parsed TOCBLOCK successfully.");
 156	return true;
 157}
 158
 159/**
 160 * ldm_parse_vmdb - Read the LDM Database VMDB structure
 161 * @data:  Raw database VMDB structure loaded from the device
 162 * @vm:    In-memory vmdb structure in which to return parsed information
 163 *
 164 * This parses the LDM Database VMDB structure supplied in @data and sets up
 165 * the in-memory vmdb structure @vm with the obtained information.
 166 *
 167 * N.B.  The *_start, *_size and *_seq values will be range-checked later.
 168 *
 169 * Return:  'true'   @vm contains VMDB info
 170 *          'false'  @vm contents are undefined
 171 */
 172static bool ldm_parse_vmdb (const u8 *data, struct vmdb *vm)
 173{
 174	BUG_ON (!data || !vm);
 175
 176	if (MAGIC_VMDB != get_unaligned_be32(data)) {
 177		ldm_crit ("Cannot find the VMDB, database may be corrupt.");
 178		return false;
 179	}
 180
 181	vm->ver_major = get_unaligned_be16(data + 0x12);
 182	vm->ver_minor = get_unaligned_be16(data + 0x14);
 183	if ((vm->ver_major != 4) || (vm->ver_minor != 10)) {
 184		ldm_error ("Expected VMDB version %d.%d, got %d.%d. "
 185			"Aborting.", 4, 10, vm->ver_major, vm->ver_minor);
 186		return false;
 187	}
 188
 189	vm->vblk_size     = get_unaligned_be32(data + 0x08);
 190	if (vm->vblk_size == 0) {
 191		ldm_error ("Illegal VBLK size");
 192		return false;
 193	}
 194
 195	vm->vblk_offset   = get_unaligned_be32(data + 0x0C);
 196	vm->last_vblk_seq = get_unaligned_be32(data + 0x04);
 197
 198	ldm_debug ("Parsed VMDB successfully.");
 199	return true;
 200}
 201
 202/**
 203 * ldm_compare_privheads - Compare two privhead objects
 204 * @ph1:  First privhead
 205 * @ph2:  Second privhead
 206 *
 207 * This compares the two privhead structures @ph1 and @ph2.
 208 *
 209 * Return:  'true'   Identical
 210 *          'false'  Different
 211 */
 212static bool ldm_compare_privheads (const struct privhead *ph1,
 213				   const struct privhead *ph2)
 214{
 215	BUG_ON (!ph1 || !ph2);
 216
 217	return ((ph1->ver_major          == ph2->ver_major)		&&
 218		(ph1->ver_minor          == ph2->ver_minor)		&&
 219		(ph1->logical_disk_start == ph2->logical_disk_start)	&&
 220		(ph1->logical_disk_size  == ph2->logical_disk_size)	&&
 221		(ph1->config_start       == ph2->config_start)		&&
 222		(ph1->config_size        == ph2->config_size)		&&
 223		uuid_equal(&ph1->disk_id, &ph2->disk_id));
 224}
 225
 226/**
 227 * ldm_compare_tocblocks - Compare two tocblock objects
 228 * @toc1:  First toc
 229 * @toc2:  Second toc
 230 *
 231 * This compares the two tocblock structures @toc1 and @toc2.
 232 *
 233 * Return:  'true'   Identical
 234 *          'false'  Different
 235 */
 236static bool ldm_compare_tocblocks (const struct tocblock *toc1,
 237				   const struct tocblock *toc2)
 238{
 239	BUG_ON (!toc1 || !toc2);
 240
 241	return ((toc1->bitmap1_start == toc2->bitmap1_start)	&&
 242		(toc1->bitmap1_size  == toc2->bitmap1_size)	&&
 243		(toc1->bitmap2_start == toc2->bitmap2_start)	&&
 244		(toc1->bitmap2_size  == toc2->bitmap2_size)	&&
 245		!strncmp (toc1->bitmap1_name, toc2->bitmap1_name,
 246			sizeof (toc1->bitmap1_name))		&&
 247		!strncmp (toc1->bitmap2_name, toc2->bitmap2_name,
 248			sizeof (toc1->bitmap2_name)));
 249}
 250
 251/**
 252 * ldm_validate_privheads - Compare the primary privhead with its backups
 253 * @state: Partition check state including device holding the LDM Database
 254 * @ph1:   Memory struct to fill with ph contents
 255 *
 256 * Read and compare all three privheads from disk.
 257 *
 258 * The privheads on disk show the size and location of the main disk area and
 259 * the configuration area (the database).  The values are range-checked against
 260 * @hd, which contains the real size of the disk.
 261 *
 262 * Return:  'true'   Success
 263 *          'false'  Error
 264 */
 265static bool ldm_validate_privheads(struct parsed_partitions *state,
 266				   struct privhead *ph1)
 267{
 268	static const int off[3] = { OFF_PRIV1, OFF_PRIV2, OFF_PRIV3 };
 269	struct privhead *ph[3] = { ph1 };
 270	Sector sect;
 271	u8 *data;
 272	bool result = false;
 273	long num_sects;
 274	int i;
 275
 276	BUG_ON (!state || !ph1);
 277
 278	ph[1] = kmalloc (sizeof (*ph[1]), GFP_KERNEL);
 279	ph[2] = kmalloc (sizeof (*ph[2]), GFP_KERNEL);
 280	if (!ph[1] || !ph[2]) {
 281		ldm_crit ("Out of memory.");
 282		goto out;
 283	}
 284
 285	/* off[1 & 2] are relative to ph[0]->config_start */
 286	ph[0]->config_start = 0;
 287
 288	/* Read and parse privheads */
 289	for (i = 0; i < 3; i++) {
 290		data = read_part_sector(state, ph[0]->config_start + off[i],
 291					&sect);
 292		if (!data) {
 293			ldm_crit ("Disk read failed.");
 294			goto out;
 295		}
 296		result = ldm_parse_privhead (data, ph[i]);
 297		put_dev_sector (sect);
 298		if (!result) {
 299			ldm_error ("Cannot find PRIVHEAD %d.", i+1); /* Log again */
 300			if (i < 2)
 301				goto out;	/* Already logged */
 302			else
 303				break;	/* FIXME ignore for now, 3rd PH can fail on odd-sized disks */
 304		}
 305	}
 306
 307	num_sects = get_capacity(state->disk);
 308
 309	if ((ph[0]->config_start > num_sects) ||
 310	   ((ph[0]->config_start + ph[0]->config_size) > num_sects)) {
 311		ldm_crit ("Database extends beyond the end of the disk.");
 312		goto out;
 313	}
 314
 315	if ((ph[0]->logical_disk_start > ph[0]->config_start) ||
 316	   ((ph[0]->logical_disk_start + ph[0]->logical_disk_size)
 317		    > ph[0]->config_start)) {
 318		ldm_crit ("Disk and database overlap.");
 319		goto out;
 320	}
 321
 322	if (!ldm_compare_privheads (ph[0], ph[1])) {
 323		ldm_crit ("Primary and backup PRIVHEADs don't match.");
 324		goto out;
 325	}
 326	/* FIXME ignore this for now
 327	if (!ldm_compare_privheads (ph[0], ph[2])) {
 328		ldm_crit ("Primary and backup PRIVHEADs don't match.");
 329		goto out;
 330	}*/
 331	ldm_debug ("Validated PRIVHEADs successfully.");
 332	result = true;
 333out:
 334	kfree (ph[1]);
 335	kfree (ph[2]);
 336	return result;
 337}
 338
 339/**
 340 * ldm_validate_tocblocks - Validate the table of contents and its backups
 341 * @state: Partition check state including device holding the LDM Database
 342 * @base:  Offset, into @state->disk, of the database
 343 * @ldb:   Cache of the database structures
 344 *
 345 * Find and compare the four tables of contents of the LDM Database stored on
 346 * @state->disk and return the parsed information into @toc1.
 347 *
 348 * The offsets and sizes of the configs are range-checked against a privhead.
 349 *
 350 * Return:  'true'   @toc1 contains validated TOCBLOCK info
 351 *          'false'  @toc1 contents are undefined
 352 */
 353static bool ldm_validate_tocblocks(struct parsed_partitions *state,
 354				   unsigned long base, struct ldmdb *ldb)
 355{
 356	static const int off[4] = { OFF_TOCB1, OFF_TOCB2, OFF_TOCB3, OFF_TOCB4};
 357	struct tocblock *tb[4];
 358	struct privhead *ph;
 359	Sector sect;
 360	u8 *data;
 361	int i, nr_tbs;
 362	bool result = false;
 363
 364	BUG_ON(!state || !ldb);
 365	ph = &ldb->ph;
 366	tb[0] = &ldb->toc;
 367	tb[1] = kmalloc_array(3, sizeof(*tb[1]), GFP_KERNEL);
 368	if (!tb[1]) {
 369		ldm_crit("Out of memory.");
 370		goto err;
 371	}
 372	tb[2] = (struct tocblock*)((u8*)tb[1] + sizeof(*tb[1]));
 373	tb[3] = (struct tocblock*)((u8*)tb[2] + sizeof(*tb[2]));
 374	/*
 375	 * Try to read and parse all four TOCBLOCKs.
 376	 *
 377	 * Windows Vista LDM v2.12 does not always have all four TOCBLOCKs so
 378	 * skip any that fail as long as we get at least one valid TOCBLOCK.
 379	 */
 380	for (nr_tbs = i = 0; i < 4; i++) {
 381		data = read_part_sector(state, base + off[i], &sect);
 382		if (!data) {
 383			ldm_error("Disk read failed for TOCBLOCK %d.", i);
 384			continue;
 385		}
 386		if (ldm_parse_tocblock(data, tb[nr_tbs]))
 387			nr_tbs++;
 388		put_dev_sector(sect);
 389	}
 390	if (!nr_tbs) {
 391		ldm_crit("Failed to find a valid TOCBLOCK.");
 392		goto err;
 393	}
 394	/* Range check the TOCBLOCK against a privhead. */
 395	if (((tb[0]->bitmap1_start + tb[0]->bitmap1_size) > ph->config_size) ||
 396			((tb[0]->bitmap2_start + tb[0]->bitmap2_size) >
 397			ph->config_size)) {
 398		ldm_crit("The bitmaps are out of range.  Giving up.");
 399		goto err;
 400	}
 401	/* Compare all loaded TOCBLOCKs. */
 402	for (i = 1; i < nr_tbs; i++) {
 403		if (!ldm_compare_tocblocks(tb[0], tb[i])) {
 404			ldm_crit("TOCBLOCKs 0 and %d do not match.", i);
 405			goto err;
 406		}
 407	}
 408	ldm_debug("Validated %d TOCBLOCKs successfully.", nr_tbs);
 409	result = true;
 410err:
 411	kfree(tb[1]);
 412	return result;
 413}
 414
 415/**
 416 * ldm_validate_vmdb - Read the VMDB and validate it
 417 * @state: Partition check state including device holding the LDM Database
 418 * @base:  Offset, into @bdev, of the database
 419 * @ldb:   Cache of the database structures
 420 *
 421 * Find the vmdb of the LDM Database stored on @bdev and return the parsed
 422 * information in @ldb.
 423 *
 424 * Return:  'true'   @ldb contains validated VBDB info
 425 *          'false'  @ldb contents are undefined
 426 */
 427static bool ldm_validate_vmdb(struct parsed_partitions *state,
 428			      unsigned long base, struct ldmdb *ldb)
 429{
 430	Sector sect;
 431	u8 *data;
 432	bool result = false;
 433	struct vmdb *vm;
 434	struct tocblock *toc;
 435
 436	BUG_ON (!state || !ldb);
 437
 438	vm  = &ldb->vm;
 439	toc = &ldb->toc;
 440
 441	data = read_part_sector(state, base + OFF_VMDB, &sect);
 442	if (!data) {
 443		ldm_crit ("Disk read failed.");
 444		return false;
 445	}
 446
 447	if (!ldm_parse_vmdb (data, vm))
 448		goto out;				/* Already logged */
 449
 450	/* Are there uncommitted transactions? */
 451	if (get_unaligned_be16(data + 0x10) != 0x01) {
 452		ldm_crit ("Database is not in a consistent state.  Aborting.");
 453		goto out;
 454	}
 455
 456	if (vm->vblk_offset != 512)
 457		ldm_info ("VBLKs start at offset 0x%04x.", vm->vblk_offset);
 458
 459	/*
 460	 * The last_vblkd_seq can be before the end of the vmdb, just make sure
 461	 * it is not out of bounds.
 462	 */
 463	if ((vm->vblk_size * vm->last_vblk_seq) > (toc->bitmap1_size << 9)) {
 464		ldm_crit ("VMDB exceeds allowed size specified by TOCBLOCK.  "
 465				"Database is corrupt.  Aborting.");
 466		goto out;
 467	}
 468
 469	result = true;
 470out:
 471	put_dev_sector (sect);
 472	return result;
 473}
 474
 475
 476/**
 477 * ldm_validate_partition_table - Determine whether bdev might be a dynamic disk
 478 * @state: Partition check state including device holding the LDM Database
 479 *
 480 * This function provides a weak test to decide whether the device is a dynamic
 481 * disk or not.  It looks for an MS-DOS-style partition table containing at
 482 * least one partition of type 0x42 (formerly SFS, now used by Windows for
 483 * dynamic disks).
 484 *
 485 * N.B.  The only possible error can come from the read_part_sector and that is
 486 *       only likely to happen if the underlying device is strange.  If that IS
 487 *       the case we should return zero to let someone else try.
 488 *
 489 * Return:  'true'   @state->disk is a dynamic disk
 490 *          'false'  @state->disk is not a dynamic disk, or an error occurred
 491 */
 492static bool ldm_validate_partition_table(struct parsed_partitions *state)
 493{
 494	Sector sect;
 495	u8 *data;
 496	struct msdos_partition *p;
 497	int i;
 498	bool result = false;
 499
 500	BUG_ON(!state);
 501
 502	data = read_part_sector(state, 0, &sect);
 503	if (!data) {
 504		ldm_info ("Disk read failed.");
 505		return false;
 506	}
 507
 508	if (*(__le16*) (data + 0x01FE) != cpu_to_le16 (MSDOS_LABEL_MAGIC))
 509		goto out;
 510
 511	p = (struct msdos_partition *)(data + 0x01BE);
 512	for (i = 0; i < 4; i++, p++)
 513		if (p->sys_ind == LDM_PARTITION) {
 514			result = true;
 515			break;
 516		}
 517
 518	if (result)
 519		ldm_debug ("Found W2K dynamic disk partition type.");
 520
 521out:
 522	put_dev_sector (sect);
 523	return result;
 524}
 525
 526/**
 527 * ldm_get_disk_objid - Search a linked list of vblk's for a given Disk Id
 528 * @ldb:  Cache of the database structures
 529 *
 530 * The LDM Database contains a list of all partitions on all dynamic disks.
 531 * The primary PRIVHEAD, at the beginning of the physical disk, tells us
 532 * the GUID of this disk.  This function searches for the GUID in a linked
 533 * list of vblk's.
 534 *
 535 * Return:  Pointer, A matching vblk was found
 536 *          NULL,    No match, or an error
 537 */
 538static struct vblk * ldm_get_disk_objid (const struct ldmdb *ldb)
 539{
 540	struct list_head *item;
 541
 542	BUG_ON (!ldb);
 543
 544	list_for_each (item, &ldb->v_disk) {
 545		struct vblk *v = list_entry (item, struct vblk, list);
 546		if (uuid_equal(&v->vblk.disk.disk_id, &ldb->ph.disk_id))
 547			return v;
 548	}
 549
 550	return NULL;
 551}
 552
 553/**
 554 * ldm_create_data_partitions - Create data partitions for this device
 555 * @pp:   List of the partitions parsed so far
 556 * @ldb:  Cache of the database structures
 557 *
 558 * The database contains ALL the partitions for ALL disk groups, so we need to
 559 * filter out this specific disk. Using the disk's object id, we can find all
 560 * the partitions in the database that belong to this disk.
 561 *
 562 * Add each partition in our database, to the parsed_partitions structure.
 563 *
 564 * N.B.  This function creates the partitions in the order it finds partition
 565 *       objects in the linked list.
 566 *
 567 * Return:  'true'   Partition created
 568 *          'false'  Error, probably a range checking problem
 569 */
 570static bool ldm_create_data_partitions (struct parsed_partitions *pp,
 571					const struct ldmdb *ldb)
 572{
 573	struct list_head *item;
 574	struct vblk *vb;
 575	struct vblk *disk;
 576	struct vblk_part *part;
 577	int part_num = 1;
 578
 579	BUG_ON (!pp || !ldb);
 580
 581	disk = ldm_get_disk_objid (ldb);
 582	if (!disk) {
 583		ldm_crit ("Can't find the ID of this disk in the database.");
 584		return false;
 585	}
 586
 587	strlcat(pp->pp_buf, " [LDM]", PAGE_SIZE);
 588
 589	/* Create the data partitions */
 590	list_for_each (item, &ldb->v_part) {
 591		vb = list_entry (item, struct vblk, list);
 592		part = &vb->vblk.part;
 593
 594		if (part->disk_id != disk->obj_id)
 595			continue;
 596
 597		put_partition (pp, part_num, ldb->ph.logical_disk_start +
 598				part->start, part->size);
 599		part_num++;
 600	}
 601
 602	strlcat(pp->pp_buf, "\n", PAGE_SIZE);
 603	return true;
 604}
 605
 606
 607/**
 608 * ldm_relative - Calculate the next relative offset
 609 * @buffer:  Block of data being worked on
 610 * @buflen:  Size of the block of data
 611 * @base:    Size of the previous fixed width fields
 612 * @offset:  Cumulative size of the previous variable-width fields
 613 *
 614 * Because many of the VBLK fields are variable-width, it's necessary
 615 * to calculate each offset based on the previous one and the length
 616 * of the field it pointed to.
 617 *
 618 * Return:  -1 Error, the calculated offset exceeded the size of the buffer
 619 *           n OK, a range-checked offset into buffer
 620 */
 621static int ldm_relative(const u8 *buffer, int buflen, int base, int offset)
 622{
 623
 624	base += offset;
 625	if (!buffer || offset < 0 || base > buflen) {
 626		if (!buffer)
 627			ldm_error("!buffer");
 628		if (offset < 0)
 629			ldm_error("offset (%d) < 0", offset);
 630		if (base > buflen)
 631			ldm_error("base (%d) > buflen (%d)", base, buflen);
 632		return -1;
 633	}
 634	if (base + buffer[base] >= buflen) {
 635		ldm_error("base (%d) + buffer[base] (%d) >= buflen (%d)", base,
 636				buffer[base], buflen);
 637		return -1;
 638	}
 639	return buffer[base] + offset + 1;
 640}
 641
 642/**
 643 * ldm_get_vnum - Convert a variable-width, big endian number, into cpu order
 644 * @block:  Pointer to the variable-width number to convert
 645 *
 646 * Large numbers in the LDM Database are often stored in a packed format.  Each
 647 * number is prefixed by a one byte width marker.  All numbers in the database
 648 * are stored in big-endian byte order.  This function reads one of these
 649 * numbers and returns the result
 650 *
 651 * N.B.  This function DOES NOT perform any range checking, though the most
 652 *       it will read is eight bytes.
 653 *
 654 * Return:  n A number
 655 *          0 Zero, or an error occurred
 656 */
 657static u64 ldm_get_vnum (const u8 *block)
 658{
 659	u64 tmp = 0;
 660	u8 length;
 661
 662	BUG_ON (!block);
 663
 664	length = *block++;
 665
 666	if (length && length <= 8)
 667		while (length--)
 668			tmp = (tmp << 8) | *block++;
 669	else
 670		ldm_error ("Illegal length %d.", length);
 671
 672	return tmp;
 673}
 674
 675/**
 676 * ldm_get_vstr - Read a length-prefixed string into a buffer
 677 * @block:   Pointer to the length marker
 678 * @buffer:  Location to copy string to
 679 * @buflen:  Size of the output buffer
 680 *
 681 * Many of the strings in the LDM Database are not NULL terminated.  Instead
 682 * they are prefixed by a one byte length marker.  This function copies one of
 683 * these strings into a buffer.
 684 *
 685 * N.B.  This function DOES NOT perform any range checking on the input.
 686 *       If the buffer is too small, the output will be truncated.
 687 *
 688 * Return:  0, Error and @buffer contents are undefined
 689 *          n, String length in characters (excluding NULL)
 690 *          buflen-1, String was truncated.
 691 */
 692static int ldm_get_vstr (const u8 *block, u8 *buffer, int buflen)
 693{
 694	int length;
 695
 696	BUG_ON (!block || !buffer);
 697
 698	length = block[0];
 699	if (length >= buflen) {
 700		ldm_error ("Truncating string %d -> %d.", length, buflen);
 701		length = buflen - 1;
 702	}
 703	memcpy (buffer, block + 1, length);
 704	buffer[length] = 0;
 705	return length;
 706}
 707
 708
 709/**
 710 * ldm_parse_cmp3 - Read a raw VBLK Component object into a vblk structure
 711 * @buffer:  Block of data being worked on
 712 * @buflen:  Size of the block of data
 713 * @vb:      In-memory vblk in which to return information
 714 *
 715 * Read a raw VBLK Component object (version 3) into a vblk structure.
 716 *
 717 * Return:  'true'   @vb contains a Component VBLK
 718 *          'false'  @vb contents are not defined
 719 */
 720static bool ldm_parse_cmp3 (const u8 *buffer, int buflen, struct vblk *vb)
 721{
 722	int r_objid, r_name, r_vstate, r_child, r_parent, r_stripe, r_cols, len;
 723	struct vblk_comp *comp;
 724
 725	BUG_ON (!buffer || !vb);
 726
 727	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 728	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 729	r_vstate = ldm_relative (buffer, buflen, 0x18, r_name);
 730	r_child  = ldm_relative (buffer, buflen, 0x1D, r_vstate);
 731	r_parent = ldm_relative (buffer, buflen, 0x2D, r_child);
 732
 733	if (buffer[0x12] & VBLK_FLAG_COMP_STRIPE) {
 734		r_stripe = ldm_relative (buffer, buflen, 0x2E, r_parent);
 735		r_cols   = ldm_relative (buffer, buflen, 0x2E, r_stripe);
 736		len = r_cols;
 737	} else {
 738		r_stripe = 0;
 
 739		len = r_parent;
 740	}
 741	if (len < 0)
 742		return false;
 743
 744	len += VBLK_SIZE_CMP3;
 745	if (len != get_unaligned_be32(buffer + 0x14))
 746		return false;
 747
 748	comp = &vb->vblk.comp;
 749	ldm_get_vstr (buffer + 0x18 + r_name, comp->state,
 750		sizeof (comp->state));
 751	comp->type      = buffer[0x18 + r_vstate];
 752	comp->children  = ldm_get_vnum (buffer + 0x1D + r_vstate);
 753	comp->parent_id = ldm_get_vnum (buffer + 0x2D + r_child);
 754	comp->chunksize = r_stripe ? ldm_get_vnum (buffer+r_parent+0x2E) : 0;
 755
 756	return true;
 757}
 758
 759/**
 760 * ldm_parse_dgr3 - Read a raw VBLK Disk Group object into a vblk structure
 761 * @buffer:  Block of data being worked on
 762 * @buflen:  Size of the block of data
 763 * @vb:      In-memory vblk in which to return information
 764 *
 765 * Read a raw VBLK Disk Group object (version 3) into a vblk structure.
 766 *
 767 * Return:  'true'   @vb contains a Disk Group VBLK
 768 *          'false'  @vb contents are not defined
 769 */
 770static int ldm_parse_dgr3 (const u8 *buffer, int buflen, struct vblk *vb)
 771{
 772	int r_objid, r_name, r_diskid, r_id1, r_id2, len;
 773	struct vblk_dgrp *dgrp;
 774
 775	BUG_ON (!buffer || !vb);
 776
 777	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 778	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 779	r_diskid = ldm_relative (buffer, buflen, 0x18, r_name);
 780
 781	if (buffer[0x12] & VBLK_FLAG_DGR3_IDS) {
 782		r_id1 = ldm_relative (buffer, buflen, 0x24, r_diskid);
 783		r_id2 = ldm_relative (buffer, buflen, 0x24, r_id1);
 784		len = r_id2;
 785	} else
 
 
 786		len = r_diskid;
 
 787	if (len < 0)
 788		return false;
 789
 790	len += VBLK_SIZE_DGR3;
 791	if (len != get_unaligned_be32(buffer + 0x14))
 792		return false;
 793
 794	dgrp = &vb->vblk.dgrp;
 795	ldm_get_vstr (buffer + 0x18 + r_name, dgrp->disk_id,
 796		sizeof (dgrp->disk_id));
 797	return true;
 798}
 799
 800/**
 801 * ldm_parse_dgr4 - Read a raw VBLK Disk Group object into a vblk structure
 802 * @buffer:  Block of data being worked on
 803 * @buflen:  Size of the block of data
 804 * @vb:      In-memory vblk in which to return information
 805 *
 806 * Read a raw VBLK Disk Group object (version 4) into a vblk structure.
 807 *
 808 * Return:  'true'   @vb contains a Disk Group VBLK
 809 *          'false'  @vb contents are not defined
 810 */
 811static bool ldm_parse_dgr4 (const u8 *buffer, int buflen, struct vblk *vb)
 812{
 813	char buf[64];
 814	int r_objid, r_name, r_id1, r_id2, len;
 
 815
 816	BUG_ON (!buffer || !vb);
 817
 818	r_objid  = ldm_relative (buffer, buflen, 0x18, 0);
 819	r_name   = ldm_relative (buffer, buflen, 0x18, r_objid);
 820
 821	if (buffer[0x12] & VBLK_FLAG_DGR4_IDS) {
 822		r_id1 = ldm_relative (buffer, buflen, 0x44, r_name);
 823		r_id2 = ldm_relative (buffer, buflen, 0x44, r_id1);
 824		len = r_id2;
 825	} else
 
 
 826		len = r_name;
 
 827	if (len < 0)
 828		return false;
 829
 830	len += VBLK_SIZE_DGR4;
 831	if (len != get_unaligned_be32(buffer + 0x14))
 832		return false;
 833
 
 
 834	ldm_get_vstr (buffer + 0x18 + r_objid, buf, sizeof (buf));
 835	return true;
 836}
 837
 838/**
 839 * ldm_parse_dsk3 - Read a raw VBLK Disk object into a vblk structure
 840 * @buffer:  Block of data being worked on
 841 * @buflen:  Size of the block of data
 842 * @vb:      In-memory vblk in which to return information
 843 *
 844 * Read a raw VBLK Disk object (version 3) into a vblk structure.
 845 *
 846 * Return:  'true'   @vb contains a Disk VBLK
 847 *          'false'  @vb contents are not defined
 848 */
 849static bool ldm_parse_dsk3 (const u8 *buffer, int buflen, struct vblk *vb)
 850{
 851	int r_objid, r_name, r_diskid, r_altname, len;
 852	struct vblk_disk *disk;
 853
 854	BUG_ON (!buffer || !vb);
 855
 856	r_objid   = ldm_relative (buffer, buflen, 0x18, 0);
 857	r_name    = ldm_relative (buffer, buflen, 0x18, r_objid);
 858	r_diskid  = ldm_relative (buffer, buflen, 0x18, r_name);
 859	r_altname = ldm_relative (buffer, buflen, 0x18, r_diskid);
 860	len = r_altname;
 861	if (len < 0)
 862		return false;
 863
 864	len += VBLK_SIZE_DSK3;
 865	if (len != get_unaligned_be32(buffer + 0x14))
 866		return false;
 867
 868	disk = &vb->vblk.disk;
 869	ldm_get_vstr (buffer + 0x18 + r_diskid, disk->alt_name,
 870		sizeof (disk->alt_name));
 871	if (uuid_parse(buffer + 0x19 + r_name, &disk->disk_id))
 872		return false;
 873
 874	return true;
 875}
 876
 877/**
 878 * ldm_parse_dsk4 - Read a raw VBLK Disk object into a vblk structure
 879 * @buffer:  Block of data being worked on
 880 * @buflen:  Size of the block of data
 881 * @vb:      In-memory vblk in which to return information
 882 *
 883 * Read a raw VBLK Disk object (version 4) into a vblk structure.
 884 *
 885 * Return:  'true'   @vb contains a Disk VBLK
 886 *          'false'  @vb contents are not defined
 887 */
 888static bool ldm_parse_dsk4 (const u8 *buffer, int buflen, struct vblk *vb)
 889{
 890	int r_objid, r_name, len;
 891	struct vblk_disk *disk;
 892
 893	BUG_ON (!buffer || !vb);
 894
 895	r_objid = ldm_relative (buffer, buflen, 0x18, 0);
 896	r_name  = ldm_relative (buffer, buflen, 0x18, r_objid);
 897	len     = r_name;
 898	if (len < 0)
 899		return false;
 900
 901	len += VBLK_SIZE_DSK4;
 902	if (len != get_unaligned_be32(buffer + 0x14))
 903		return false;
 904
 905	disk = &vb->vblk.disk;
 906	import_uuid(&disk->disk_id, buffer + 0x18 + r_name);
 907	return true;
 908}
 909
 910/**
 911 * ldm_parse_prt3 - Read a raw VBLK Partition object into a vblk structure
 912 * @buffer:  Block of data being worked on
 913 * @buflen:  Size of the block of data
 914 * @vb:      In-memory vblk in which to return information
 915 *
 916 * Read a raw VBLK Partition object (version 3) into a vblk structure.
 917 *
 918 * Return:  'true'   @vb contains a Partition VBLK
 919 *          'false'  @vb contents are not defined
 920 */
 921static bool ldm_parse_prt3(const u8 *buffer, int buflen, struct vblk *vb)
 922{
 923	int r_objid, r_name, r_size, r_parent, r_diskid, r_index, len;
 924	struct vblk_part *part;
 925
 926	BUG_ON(!buffer || !vb);
 927	r_objid = ldm_relative(buffer, buflen, 0x18, 0);
 928	if (r_objid < 0) {
 929		ldm_error("r_objid %d < 0", r_objid);
 930		return false;
 931	}
 932	r_name = ldm_relative(buffer, buflen, 0x18, r_objid);
 933	if (r_name < 0) {
 934		ldm_error("r_name %d < 0", r_name);
 935		return false;
 936	}
 937	r_size = ldm_relative(buffer, buflen, 0x34, r_name);
 938	if (r_size < 0) {
 939		ldm_error("r_size %d < 0", r_size);
 940		return false;
 941	}
 942	r_parent = ldm_relative(buffer, buflen, 0x34, r_size);
 943	if (r_parent < 0) {
 944		ldm_error("r_parent %d < 0", r_parent);
 945		return false;
 946	}
 947	r_diskid = ldm_relative(buffer, buflen, 0x34, r_parent);
 948	if (r_diskid < 0) {
 949		ldm_error("r_diskid %d < 0", r_diskid);
 950		return false;
 951	}
 952	if (buffer[0x12] & VBLK_FLAG_PART_INDEX) {
 953		r_index = ldm_relative(buffer, buflen, 0x34, r_diskid);
 954		if (r_index < 0) {
 955			ldm_error("r_index %d < 0", r_index);
 956			return false;
 957		}
 958		len = r_index;
 959	} else
 
 960		len = r_diskid;
 
 961	if (len < 0) {
 962		ldm_error("len %d < 0", len);
 963		return false;
 964	}
 965	len += VBLK_SIZE_PRT3;
 966	if (len > get_unaligned_be32(buffer + 0x14)) {
 967		ldm_error("len %d > BE32(buffer + 0x14) %d", len,
 968				get_unaligned_be32(buffer + 0x14));
 969		return false;
 970	}
 971	part = &vb->vblk.part;
 972	part->start = get_unaligned_be64(buffer + 0x24 + r_name);
 973	part->volume_offset = get_unaligned_be64(buffer + 0x2C + r_name);
 974	part->size = ldm_get_vnum(buffer + 0x34 + r_name);
 975	part->parent_id = ldm_get_vnum(buffer + 0x34 + r_size);
 976	part->disk_id = ldm_get_vnum(buffer + 0x34 + r_parent);
 977	if (vb->flags & VBLK_FLAG_PART_INDEX)
 978		part->partnum = buffer[0x35 + r_diskid];
 979	else
 980		part->partnum = 0;
 981	return true;
 982}
 983
 984/**
 985 * ldm_parse_vol5 - Read a raw VBLK Volume object into a vblk structure
 986 * @buffer:  Block of data being worked on
 987 * @buflen:  Size of the block of data
 988 * @vb:      In-memory vblk in which to return information
 989 *
 990 * Read a raw VBLK Volume object (version 5) into a vblk structure.
 991 *
 992 * Return:  'true'   @vb contains a Volume VBLK
 993 *          'false'  @vb contents are not defined
 994 */
 995static bool ldm_parse_vol5(const u8 *buffer, int buflen, struct vblk *vb)
 996{
 997	int r_objid, r_name, r_vtype, r_disable_drive_letter, r_child, r_size;
 998	int r_id1, r_id2, r_size2, r_drive, len;
 999	struct vblk_volu *volu;
1000
1001	BUG_ON(!buffer || !vb);
1002	r_objid = ldm_relative(buffer, buflen, 0x18, 0);
1003	if (r_objid < 0) {
1004		ldm_error("r_objid %d < 0", r_objid);
1005		return false;
1006	}
1007	r_name = ldm_relative(buffer, buflen, 0x18, r_objid);
1008	if (r_name < 0) {
1009		ldm_error("r_name %d < 0", r_name);
1010		return false;
1011	}
1012	r_vtype = ldm_relative(buffer, buflen, 0x18, r_name);
1013	if (r_vtype < 0) {
1014		ldm_error("r_vtype %d < 0", r_vtype);
1015		return false;
1016	}
1017	r_disable_drive_letter = ldm_relative(buffer, buflen, 0x18, r_vtype);
1018	if (r_disable_drive_letter < 0) {
1019		ldm_error("r_disable_drive_letter %d < 0",
1020				r_disable_drive_letter);
1021		return false;
1022	}
1023	r_child = ldm_relative(buffer, buflen, 0x2D, r_disable_drive_letter);
1024	if (r_child < 0) {
1025		ldm_error("r_child %d < 0", r_child);
1026		return false;
1027	}
1028	r_size = ldm_relative(buffer, buflen, 0x3D, r_child);
1029	if (r_size < 0) {
1030		ldm_error("r_size %d < 0", r_size);
1031		return false;
1032	}
1033	if (buffer[0x12] & VBLK_FLAG_VOLU_ID1) {
1034		r_id1 = ldm_relative(buffer, buflen, 0x52, r_size);
1035		if (r_id1 < 0) {
1036			ldm_error("r_id1 %d < 0", r_id1);
1037			return false;
1038		}
1039	} else
1040		r_id1 = r_size;
1041	if (buffer[0x12] & VBLK_FLAG_VOLU_ID2) {
1042		r_id2 = ldm_relative(buffer, buflen, 0x52, r_id1);
1043		if (r_id2 < 0) {
1044			ldm_error("r_id2 %d < 0", r_id2);
1045			return false;
1046		}
1047	} else
1048		r_id2 = r_id1;
1049	if (buffer[0x12] & VBLK_FLAG_VOLU_SIZE) {
1050		r_size2 = ldm_relative(buffer, buflen, 0x52, r_id2);
1051		if (r_size2 < 0) {
1052			ldm_error("r_size2 %d < 0", r_size2);
1053			return false;
1054		}
1055	} else
1056		r_size2 = r_id2;
1057	if (buffer[0x12] & VBLK_FLAG_VOLU_DRIVE) {
1058		r_drive = ldm_relative(buffer, buflen, 0x52, r_size2);
1059		if (r_drive < 0) {
1060			ldm_error("r_drive %d < 0", r_drive);
1061			return false;
1062		}
1063	} else
1064		r_drive = r_size2;
1065	len = r_drive;
1066	if (len < 0) {
1067		ldm_error("len %d < 0", len);
1068		return false;
1069	}
1070	len += VBLK_SIZE_VOL5;
1071	if (len > get_unaligned_be32(buffer + 0x14)) {
1072		ldm_error("len %d > BE32(buffer + 0x14) %d", len,
1073				get_unaligned_be32(buffer + 0x14));
1074		return false;
1075	}
1076	volu = &vb->vblk.volu;
1077	ldm_get_vstr(buffer + 0x18 + r_name, volu->volume_type,
1078			sizeof(volu->volume_type));
1079	memcpy(volu->volume_state, buffer + 0x18 + r_disable_drive_letter,
1080			sizeof(volu->volume_state));
1081	volu->size = ldm_get_vnum(buffer + 0x3D + r_child);
1082	volu->partition_type = buffer[0x41 + r_size];
1083	memcpy(volu->guid, buffer + 0x42 + r_size, sizeof(volu->guid));
1084	if (buffer[0x12] & VBLK_FLAG_VOLU_DRIVE) {
1085		ldm_get_vstr(buffer + 0x52 + r_size, volu->drive_hint,
1086				sizeof(volu->drive_hint));
1087	}
1088	return true;
1089}
1090
1091/**
1092 * ldm_parse_vblk - Read a raw VBLK object into a vblk structure
1093 * @buf:  Block of data being worked on
1094 * @len:  Size of the block of data
1095 * @vb:   In-memory vblk in which to return information
1096 *
1097 * Read a raw VBLK object into a vblk structure.  This function just reads the
1098 * information common to all VBLK types, then delegates the rest of the work to
1099 * helper functions: ldm_parse_*.
1100 *
1101 * Return:  'true'   @vb contains a VBLK
1102 *          'false'  @vb contents are not defined
1103 */
1104static bool ldm_parse_vblk (const u8 *buf, int len, struct vblk *vb)
1105{
1106	bool result = false;
1107	int r_objid;
1108
1109	BUG_ON (!buf || !vb);
1110
1111	r_objid = ldm_relative (buf, len, 0x18, 0);
1112	if (r_objid < 0) {
1113		ldm_error ("VBLK header is corrupt.");
1114		return false;
1115	}
1116
1117	vb->flags  = buf[0x12];
1118	vb->type   = buf[0x13];
1119	vb->obj_id = ldm_get_vnum (buf + 0x18);
1120	ldm_get_vstr (buf+0x18+r_objid, vb->name, sizeof (vb->name));
1121
1122	switch (vb->type) {
1123		case VBLK_CMP3:  result = ldm_parse_cmp3 (buf, len, vb); break;
1124		case VBLK_DSK3:  result = ldm_parse_dsk3 (buf, len, vb); break;
1125		case VBLK_DSK4:  result = ldm_parse_dsk4 (buf, len, vb); break;
1126		case VBLK_DGR3:  result = ldm_parse_dgr3 (buf, len, vb); break;
1127		case VBLK_DGR4:  result = ldm_parse_dgr4 (buf, len, vb); break;
1128		case VBLK_PRT3:  result = ldm_parse_prt3 (buf, len, vb); break;
1129		case VBLK_VOL5:  result = ldm_parse_vol5 (buf, len, vb); break;
1130	}
1131
1132	if (result)
1133		ldm_debug ("Parsed VBLK 0x%llx (type: 0x%02x) ok.",
1134			 (unsigned long long) vb->obj_id, vb->type);
1135	else
1136		ldm_error ("Failed to parse VBLK 0x%llx (type: 0x%02x).",
1137			(unsigned long long) vb->obj_id, vb->type);
1138
1139	return result;
1140}
1141
1142
1143/**
1144 * ldm_ldmdb_add - Adds a raw VBLK entry to the ldmdb database
1145 * @data:  Raw VBLK to add to the database
1146 * @len:   Size of the raw VBLK
1147 * @ldb:   Cache of the database structures
1148 *
1149 * The VBLKs are sorted into categories.  Partitions are also sorted by offset.
1150 *
1151 * N.B.  This function does not check the validity of the VBLKs.
1152 *
1153 * Return:  'true'   The VBLK was added
1154 *          'false'  An error occurred
1155 */
1156static bool ldm_ldmdb_add (u8 *data, int len, struct ldmdb *ldb)
1157{
1158	struct vblk *vb;
1159	struct list_head *item;
1160
1161	BUG_ON (!data || !ldb);
1162
1163	vb = kmalloc (sizeof (*vb), GFP_KERNEL);
1164	if (!vb) {
1165		ldm_crit ("Out of memory.");
1166		return false;
1167	}
1168
1169	if (!ldm_parse_vblk (data, len, vb)) {
1170		kfree(vb);
1171		return false;			/* Already logged */
1172	}
1173
1174	/* Put vblk into the correct list. */
1175	switch (vb->type) {
1176	case VBLK_DGR3:
1177	case VBLK_DGR4:
1178		list_add (&vb->list, &ldb->v_dgrp);
1179		break;
1180	case VBLK_DSK3:
1181	case VBLK_DSK4:
1182		list_add (&vb->list, &ldb->v_disk);
1183		break;
1184	case VBLK_VOL5:
1185		list_add (&vb->list, &ldb->v_volu);
1186		break;
1187	case VBLK_CMP3:
1188		list_add (&vb->list, &ldb->v_comp);
1189		break;
1190	case VBLK_PRT3:
1191		/* Sort by the partition's start sector. */
1192		list_for_each (item, &ldb->v_part) {
1193			struct vblk *v = list_entry (item, struct vblk, list);
1194			if ((v->vblk.part.disk_id == vb->vblk.part.disk_id) &&
1195			    (v->vblk.part.start > vb->vblk.part.start)) {
1196				list_add_tail (&vb->list, &v->list);
1197				return true;
1198			}
1199		}
1200		list_add_tail (&vb->list, &ldb->v_part);
1201		break;
1202	}
1203	return true;
1204}
1205
1206/**
1207 * ldm_frag_add - Add a VBLK fragment to a list
1208 * @data:   Raw fragment to be added to the list
1209 * @size:   Size of the raw fragment
1210 * @frags:  Linked list of VBLK fragments
1211 *
1212 * Fragmented VBLKs may not be consecutive in the database, so they are placed
1213 * in a list so they can be pieced together later.
1214 *
1215 * Return:  'true'   Success, the VBLK was added to the list
1216 *          'false'  Error, a problem occurred
1217 */
1218static bool ldm_frag_add (const u8 *data, int size, struct list_head *frags)
1219{
1220	struct frag *f;
1221	struct list_head *item;
1222	int rec, num, group;
1223
1224	BUG_ON (!data || !frags);
1225
1226	if (size < 2 * VBLK_SIZE_HEAD) {
1227		ldm_error("Value of size is too small.");
1228		return false;
1229	}
1230
1231	group = get_unaligned_be32(data + 0x08);
1232	rec   = get_unaligned_be16(data + 0x0C);
1233	num   = get_unaligned_be16(data + 0x0E);
1234	if ((num < 1) || (num > 4)) {
1235		ldm_error ("A VBLK claims to have %d parts.", num);
1236		return false;
1237	}
1238	if (rec >= num) {
1239		ldm_error("REC value (%d) exceeds NUM value (%d)", rec, num);
1240		return false;
1241	}
1242
1243	list_for_each (item, frags) {
1244		f = list_entry (item, struct frag, list);
1245		if (f->group == group)
1246			goto found;
1247	}
1248
1249	f = kmalloc (sizeof (*f) + size*num, GFP_KERNEL);
1250	if (!f) {
1251		ldm_crit ("Out of memory.");
1252		return false;
1253	}
1254
1255	f->group = group;
1256	f->num   = num;
1257	f->rec   = rec;
1258	f->map   = 0xFF << num;
1259
1260	list_add_tail (&f->list, frags);
1261found:
1262	if (rec >= f->num) {
1263		ldm_error("REC value (%d) exceeds NUM value (%d)", rec, f->num);
1264		return false;
1265	}
1266	if (f->map & (1 << rec)) {
1267		ldm_error ("Duplicate VBLK, part %d.", rec);
1268		f->map &= 0x7F;			/* Mark the group as broken */
1269		return false;
1270	}
1271	f->map |= (1 << rec);
1272	if (!rec)
1273		memcpy(f->data, data, VBLK_SIZE_HEAD);
1274	data += VBLK_SIZE_HEAD;
1275	size -= VBLK_SIZE_HEAD;
1276	memcpy(f->data + VBLK_SIZE_HEAD + rec * size, data, size);
1277	return true;
1278}
1279
1280/**
1281 * ldm_frag_free - Free a linked list of VBLK fragments
1282 * @list:  Linked list of fragments
1283 *
1284 * Free a linked list of VBLK fragments
1285 *
1286 * Return:  none
1287 */
1288static void ldm_frag_free (struct list_head *list)
1289{
1290	struct list_head *item, *tmp;
1291
1292	BUG_ON (!list);
1293
1294	list_for_each_safe (item, tmp, list)
1295		kfree (list_entry (item, struct frag, list));
1296}
1297
1298/**
1299 * ldm_frag_commit - Validate fragmented VBLKs and add them to the database
1300 * @frags:  Linked list of VBLK fragments
1301 * @ldb:    Cache of the database structures
1302 *
1303 * Now that all the fragmented VBLKs have been collected, they must be added to
1304 * the database for later use.
1305 *
1306 * Return:  'true'   All the fragments we added successfully
1307 *          'false'  One or more of the fragments we invalid
1308 */
1309static bool ldm_frag_commit (struct list_head *frags, struct ldmdb *ldb)
1310{
1311	struct frag *f;
1312	struct list_head *item;
1313
1314	BUG_ON (!frags || !ldb);
1315
1316	list_for_each (item, frags) {
1317		f = list_entry (item, struct frag, list);
1318
1319		if (f->map != 0xFF) {
1320			ldm_error ("VBLK group %d is incomplete (0x%02x).",
1321				f->group, f->map);
1322			return false;
1323		}
1324
1325		if (!ldm_ldmdb_add (f->data, f->num*ldb->vm.vblk_size, ldb))
1326			return false;		/* Already logged */
1327	}
1328	return true;
1329}
1330
1331/**
1332 * ldm_get_vblks - Read the on-disk database of VBLKs into memory
1333 * @state: Partition check state including device holding the LDM Database
1334 * @base:  Offset, into @state->disk, of the database
1335 * @ldb:   Cache of the database structures
1336 *
1337 * To use the information from the VBLKs, they need to be read from the disk,
1338 * unpacked and validated.  We cache them in @ldb according to their type.
1339 *
1340 * Return:  'true'   All the VBLKs were read successfully
1341 *          'false'  An error occurred
1342 */
1343static bool ldm_get_vblks(struct parsed_partitions *state, unsigned long base,
1344			  struct ldmdb *ldb)
1345{
1346	int size, perbuf, skip, finish, s, v, recs;
1347	u8 *data = NULL;
1348	Sector sect;
1349	bool result = false;
1350	LIST_HEAD (frags);
1351
1352	BUG_ON(!state || !ldb);
1353
1354	size   = ldb->vm.vblk_size;
1355	perbuf = 512 / size;
1356	skip   = ldb->vm.vblk_offset >> 9;		/* Bytes to sectors */
1357	finish = (size * ldb->vm.last_vblk_seq) >> 9;
1358
1359	for (s = skip; s < finish; s++) {		/* For each sector */
1360		data = read_part_sector(state, base + OFF_VMDB + s, &sect);
1361		if (!data) {
1362			ldm_crit ("Disk read failed.");
1363			goto out;
1364		}
1365
1366		for (v = 0; v < perbuf; v++, data+=size) {  /* For each vblk */
1367			if (MAGIC_VBLK != get_unaligned_be32(data)) {
1368				ldm_error ("Expected to find a VBLK.");
1369				goto out;
1370			}
1371
1372			recs = get_unaligned_be16(data + 0x0E);	/* Number of records */
1373			if (recs == 1) {
1374				if (!ldm_ldmdb_add (data, size, ldb))
1375					goto out;	/* Already logged */
1376			} else if (recs > 1) {
1377				if (!ldm_frag_add (data, size, &frags))
1378					goto out;	/* Already logged */
1379			}
1380			/* else Record is not in use, ignore it. */
1381		}
1382		put_dev_sector (sect);
1383		data = NULL;
1384	}
1385
1386	result = ldm_frag_commit (&frags, ldb);	/* Failures, already logged */
1387out:
1388	if (data)
1389		put_dev_sector (sect);
1390	ldm_frag_free (&frags);
1391
1392	return result;
1393}
1394
1395/**
1396 * ldm_free_vblks - Free a linked list of vblk's
1397 * @lh:  Head of a linked list of struct vblk
1398 *
1399 * Free a list of vblk's and free the memory used to maintain the list.
1400 *
1401 * Return:  none
1402 */
1403static void ldm_free_vblks (struct list_head *lh)
1404{
1405	struct list_head *item, *tmp;
1406
1407	BUG_ON (!lh);
1408
1409	list_for_each_safe (item, tmp, lh)
1410		kfree (list_entry (item, struct vblk, list));
1411}
1412
1413
1414/**
1415 * ldm_partition - Find out whether a device is a dynamic disk and handle it
1416 * @state: Partition check state including device holding the LDM Database
1417 *
1418 * This determines whether the device @bdev is a dynamic disk and if so creates
1419 * the partitions necessary in the gendisk structure pointed to by @hd.
1420 *
1421 * We create a dummy device 1, which contains the LDM database, and then create
1422 * each partition described by the LDM database in sequence as devices 2+. For
1423 * example, if the device is hda, we would have: hda1: LDM database, hda2, hda3,
1424 * and so on: the actual data containing partitions.
1425 *
1426 * Return:  1 Success, @state->disk is a dynamic disk and we handled it
1427 *          0 Success, @state->disk is not a dynamic disk
1428 *         -1 An error occurred before enough information had been read
1429 *            Or @state->disk is a dynamic disk, but it may be corrupted
1430 */
1431int ldm_partition(struct parsed_partitions *state)
1432{
1433	struct ldmdb  *ldb;
1434	unsigned long base;
1435	int result = -1;
1436
1437	BUG_ON(!state);
1438
1439	/* Look for signs of a Dynamic Disk */
1440	if (!ldm_validate_partition_table(state))
1441		return 0;
1442
1443	ldb = kmalloc (sizeof (*ldb), GFP_KERNEL);
1444	if (!ldb) {
1445		ldm_crit ("Out of memory.");
1446		goto out;
1447	}
1448
1449	/* Parse and check privheads. */
1450	if (!ldm_validate_privheads(state, &ldb->ph))
1451		goto out;		/* Already logged */
1452
1453	/* All further references are relative to base (database start). */
1454	base = ldb->ph.config_start;
1455
1456	/* Parse and check tocs and vmdb. */
1457	if (!ldm_validate_tocblocks(state, base, ldb) ||
1458	    !ldm_validate_vmdb(state, base, ldb))
1459	    	goto out;		/* Already logged */
1460
1461	/* Initialize vblk lists in ldmdb struct */
1462	INIT_LIST_HEAD (&ldb->v_dgrp);
1463	INIT_LIST_HEAD (&ldb->v_disk);
1464	INIT_LIST_HEAD (&ldb->v_volu);
1465	INIT_LIST_HEAD (&ldb->v_comp);
1466	INIT_LIST_HEAD (&ldb->v_part);
1467
1468	if (!ldm_get_vblks(state, base, ldb)) {
1469		ldm_crit ("Failed to read the VBLKs from the database.");
1470		goto cleanup;
1471	}
1472
1473	/* Finally, create the data partition devices. */
1474	if (ldm_create_data_partitions(state, ldb)) {
1475		ldm_debug ("Parsed LDM database successfully.");
1476		result = 1;
1477	}
1478	/* else Already logged */
1479
1480cleanup:
1481	ldm_free_vblks (&ldb->v_dgrp);
1482	ldm_free_vblks (&ldb->v_disk);
1483	ldm_free_vblks (&ldb->v_volu);
1484	ldm_free_vblks (&ldb->v_comp);
1485	ldm_free_vblks (&ldb->v_part);
1486out:
1487	kfree (ldb);
1488	return result;
1489}