1 /* 2 * NFTL mount code with extensive checks 3 * 4 * Author: Fabrice Bellard (fabrice.bellard@netgem.com) 5 * Copyright © 2000 Netgem S.A. 6 * Copyright © 1999-2010 David Woodhouse <dwmw2@infradead.org> 7 * 8 * This program is free software; you can redistribute it and/or modify 9 * it under the terms of the GNU General Public License as published by 10 * the Free Software Foundation; either version 2 of the License, or 11 * (at your option) any later version. 12 * 13 * This program is distributed in the hope that it will be useful, 14 * but WITHOUT ANY WARRANTY; without even the implied warranty of 15 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 16 * GNU General Public License for more details. 17 * 18 * You should have received a copy of the GNU General Public License 19 * along with this program; if not, write to the Free Software 20 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA 21 */ 22 23 #include <linux/kernel.h> 24 #include <asm/errno.h> 25 #include <linux/delay.h> 26 #include <linux/slab.h> 27 #include <linux/mtd/mtd.h> 28 #include <linux/mtd/rawnand.h> 29 #include <linux/mtd/nftl.h> 30 31 #define SECTORSIZE 512 32 33 /* find_boot_record: Find the NFTL Media Header and its Spare copy which contains the 34 * various device information of the NFTL partition and Bad Unit Table. Update 35 * the ReplUnitTable[] table according to the Bad Unit Table. ReplUnitTable[] 36 * is used for management of Erase Unit in other routines in nftl.c and nftlmount.c 37 */ 38 static int find_boot_record(struct NFTLrecord *nftl) 39 { 40 struct nftl_uci1 h1; 41 unsigned int block, boot_record_count = 0; 42 size_t retlen; 43 u8 buf[SECTORSIZE]; 44 struct NFTLMediaHeader *mh = &nftl->MediaHdr; 45 struct mtd_info *mtd = nftl->mbd.mtd; 46 unsigned int i; 47 48 /* Assume logical EraseSize == physical erasesize for starting the scan. 49 We'll sort it out later if we find a MediaHeader which says otherwise */ 50 /* Actually, we won't. The new DiskOnChip driver has already scanned 51 the MediaHeader and adjusted the virtual erasesize it presents in 52 the mtd device accordingly. We could even get rid of 53 nftl->EraseSize if there were any point in doing so. */ 54 nftl->EraseSize = nftl->mbd.mtd->erasesize; 55 nftl->nb_blocks = (u32)nftl->mbd.mtd->size / nftl->EraseSize; 56 57 nftl->MediaUnit = BLOCK_NIL; 58 nftl->SpareMediaUnit = BLOCK_NIL; 59 60 /* search for a valid boot record */ 61 for (block = 0; block < nftl->nb_blocks; block++) { 62 int ret; 63 64 /* Check for ANAND header first. Then can whinge if it's found but later 65 checks fail */ 66 ret = mtd_read(mtd, block * nftl->EraseSize, SECTORSIZE, 67 &retlen, buf); 68 /* We ignore ret in case the ECC of the MediaHeader is invalid 69 (which is apparently acceptable) */ 70 if (retlen != SECTORSIZE) { 71 static int warncount = 5; 72 73 if (warncount) { 74 printk(KERN_WARNING "Block read at 0x%x of mtd%d failed: %d\n", 75 block * nftl->EraseSize, nftl->mbd.mtd->index, ret); 76 if (!--warncount) 77 printk(KERN_WARNING "Further failures for this block will not be printed\n"); 78 } 79 continue; 80 } 81 82 if (retlen < 6 || memcmp(buf, "ANAND", 6)) { 83 /* ANAND\0 not found. Continue */ 84 #if 0 85 printk(KERN_DEBUG "ANAND header not found at 0x%x in mtd%d\n", 86 block * nftl->EraseSize, nftl->mbd.mtd->index); 87 #endif 88 continue; 89 } 90 91 /* To be safer with BIOS, also use erase mark as discriminant */ 92 ret = nftl_read_oob(mtd, block * nftl->EraseSize + 93 SECTORSIZE + 8, 8, &retlen, 94 (char *)&h1); 95 if (ret < 0) { 96 printk(KERN_WARNING "ANAND header found at 0x%x in mtd%d, but OOB data read failed (err %d)\n", 97 block * nftl->EraseSize, nftl->mbd.mtd->index, ret); 98 continue; 99 } 100 101 #if 0 /* Some people seem to have devices without ECC or erase marks 102 on the Media Header blocks. There are enough other sanity 103 checks in here that we can probably do without it. 104 */ 105 if (le16_to_cpu(h1.EraseMark | h1.EraseMark1) != ERASE_MARK) { 106 printk(KERN_NOTICE "ANAND header found at 0x%x in mtd%d, but erase mark not present (0x%04x,0x%04x instead)\n", 107 block * nftl->EraseSize, nftl->mbd.mtd->index, 108 le16_to_cpu(h1.EraseMark), le16_to_cpu(h1.EraseMark1)); 109 continue; 110 } 111 112 /* Finally reread to check ECC */ 113 ret = mtd->read(mtd, block * nftl->EraseSize, SECTORSIZE, 114 &retlen, buf); 115 if (ret < 0) { 116 printk(KERN_NOTICE "ANAND header found at 0x%x in mtd%d, but ECC read failed (err %d)\n", 117 block * nftl->EraseSize, nftl->mbd.mtd->index, ret); 118 continue; 119 } 120 121 /* Paranoia. Check the ANAND header is still there after the ECC read */ 122 if (memcmp(buf, "ANAND", 6)) { 123 printk(KERN_NOTICE "ANAND header found at 0x%x in mtd%d, but went away on reread!\n", 124 block * nftl->EraseSize, nftl->mbd.mtd->index); 125 printk(KERN_NOTICE "New data are: %6ph\n", buf); 126 continue; 127 } 128 #endif 129 /* OK, we like it. */ 130 131 if (boot_record_count) { 132 /* We've already processed one. So we just check if 133 this one is the same as the first one we found */ 134 if (memcmp(mh, buf, sizeof(struct NFTLMediaHeader))) { 135 printk(KERN_NOTICE "NFTL Media Headers at 0x%x and 0x%x disagree.\n", 136 nftl->MediaUnit * nftl->EraseSize, block * nftl->EraseSize); 137 /* if (debug) Print both side by side */ 138 if (boot_record_count < 2) { 139 /* We haven't yet seen two real ones */ 140 return -1; 141 } 142 continue; 143 } 144 if (boot_record_count == 1) 145 nftl->SpareMediaUnit = block; 146 147 /* Mark this boot record (NFTL MediaHeader) block as reserved */ 148 nftl->ReplUnitTable[block] = BLOCK_RESERVED; 149 150 151 boot_record_count++; 152 continue; 153 } 154 155 /* This is the first we've seen. Copy the media header structure into place */ 156 memcpy(mh, buf, sizeof(struct NFTLMediaHeader)); 157 158 /* Do some sanity checks on it */ 159 #if 0 160 The new DiskOnChip driver scans the MediaHeader itself, and presents a virtual 161 erasesize based on UnitSizeFactor. So the erasesize we read from the mtd 162 device is already correct. 163 if (mh->UnitSizeFactor == 0) { 164 printk(KERN_NOTICE "NFTL: UnitSizeFactor 0x00 detected. This violates the spec but we think we know what it means...\n"); 165 } else if (mh->UnitSizeFactor < 0xfc) { 166 printk(KERN_NOTICE "Sorry, we don't support UnitSizeFactor 0x%02x\n", 167 mh->UnitSizeFactor); 168 return -1; 169 } else if (mh->UnitSizeFactor != 0xff) { 170 printk(KERN_NOTICE "WARNING: Support for NFTL with UnitSizeFactor 0x%02x is experimental\n", 171 mh->UnitSizeFactor); 172 nftl->EraseSize = nftl->mbd.mtd->erasesize << (0xff - mh->UnitSizeFactor); 173 nftl->nb_blocks = (u32)nftl->mbd.mtd->size / nftl->EraseSize; 174 } 175 #endif 176 nftl->nb_boot_blocks = le16_to_cpu(mh->FirstPhysicalEUN); 177 if ((nftl->nb_boot_blocks + 2) >= nftl->nb_blocks) { 178 printk(KERN_NOTICE "NFTL Media Header sanity check failed:\n"); 179 printk(KERN_NOTICE "nb_boot_blocks (%d) + 2 > nb_blocks (%d)\n", 180 nftl->nb_boot_blocks, nftl->nb_blocks); 181 return -1; 182 } 183 184 nftl->numvunits = le32_to_cpu(mh->FormattedSize) / nftl->EraseSize; 185 if (nftl->numvunits > (nftl->nb_blocks - nftl->nb_boot_blocks - 2)) { 186 printk(KERN_NOTICE "NFTL Media Header sanity check failed:\n"); 187 printk(KERN_NOTICE "numvunits (%d) > nb_blocks (%d) - nb_boot_blocks(%d) - 2\n", 188 nftl->numvunits, nftl->nb_blocks, nftl->nb_boot_blocks); 189 return -1; 190 } 191 192 nftl->mbd.size = nftl->numvunits * (nftl->EraseSize / SECTORSIZE); 193 194 /* If we're not using the last sectors in the device for some reason, 195 reduce nb_blocks accordingly so we forget they're there */ 196 nftl->nb_blocks = le16_to_cpu(mh->NumEraseUnits) + le16_to_cpu(mh->FirstPhysicalEUN); 197 198 /* XXX: will be suppressed */ 199 nftl->lastEUN = nftl->nb_blocks - 1; 200 201 /* memory alloc */ 202 nftl->EUNtable = kmalloc(nftl->nb_blocks * sizeof(u16), GFP_KERNEL); 203 if (!nftl->EUNtable) { 204 printk(KERN_NOTICE "NFTL: allocation of EUNtable failed\n"); 205 return -ENOMEM; 206 } 207 208 nftl->ReplUnitTable = kmalloc(nftl->nb_blocks * sizeof(u16), GFP_KERNEL); 209 if (!nftl->ReplUnitTable) { 210 kfree(nftl->EUNtable); 211 printk(KERN_NOTICE "NFTL: allocation of ReplUnitTable failed\n"); 212 return -ENOMEM; 213 } 214 215 /* mark the bios blocks (blocks before NFTL MediaHeader) as reserved */ 216 for (i = 0; i < nftl->nb_boot_blocks; i++) 217 nftl->ReplUnitTable[i] = BLOCK_RESERVED; 218 /* mark all remaining blocks as potentially containing data */ 219 for (; i < nftl->nb_blocks; i++) { 220 nftl->ReplUnitTable[i] = BLOCK_NOTEXPLORED; 221 } 222 223 /* Mark this boot record (NFTL MediaHeader) block as reserved */ 224 nftl->ReplUnitTable[block] = BLOCK_RESERVED; 225 226 /* read the Bad Erase Unit Table and modify ReplUnitTable[] accordingly */ 227 for (i = 0; i < nftl->nb_blocks; i++) { 228 #if 0 229 The new DiskOnChip driver already scanned the bad block table. Just query it. 230 if ((i & (SECTORSIZE - 1)) == 0) { 231 /* read one sector for every SECTORSIZE of blocks */ 232 ret = mtd->read(nftl->mbd.mtd, 233 block * nftl->EraseSize + i + 234 SECTORSIZE, SECTORSIZE, 235 &retlen, buf); 236 if (ret < 0) { 237 printk(KERN_NOTICE "Read of bad sector table failed (err %d)\n", 238 ret); 239 kfree(nftl->ReplUnitTable); 240 kfree(nftl->EUNtable); 241 return -1; 242 } 243 } 244 /* mark the Bad Erase Unit as RESERVED in ReplUnitTable */ 245 if (buf[i & (SECTORSIZE - 1)] != 0xff) 246 nftl->ReplUnitTable[i] = BLOCK_RESERVED; 247 #endif 248 if (mtd_block_isbad(nftl->mbd.mtd, 249 i * nftl->EraseSize)) 250 nftl->ReplUnitTable[i] = BLOCK_RESERVED; 251 } 252 253 nftl->MediaUnit = block; 254 boot_record_count++; 255 256 } /* foreach (block) */ 257 258 return boot_record_count?0:-1; 259 } 260 261 static int memcmpb(void *a, int c, int n) 262 { 263 int i; 264 for (i = 0; i < n; i++) { 265 if (c != ((unsigned char *)a)[i]) 266 return 1; 267 } 268 return 0; 269 } 270 271 /* check_free_sector: check if a free sector is actually FREE, i.e. All 0xff in data and oob area */ 272 static int check_free_sectors(struct NFTLrecord *nftl, unsigned int address, int len, 273 int check_oob) 274 { 275 struct mtd_info *mtd = nftl->mbd.mtd; 276 size_t retlen; 277 int i, ret; 278 u8 *buf; 279 280 buf = kmalloc(SECTORSIZE + mtd->oobsize, GFP_KERNEL); 281 if (!buf) 282 return -1; 283 284 ret = -1; 285 for (i = 0; i < len; i += SECTORSIZE) { 286 if (mtd_read(mtd, address, SECTORSIZE, &retlen, buf)) 287 goto out; 288 if (memcmpb(buf, 0xff, SECTORSIZE) != 0) 289 goto out; 290 291 if (check_oob) { 292 if(nftl_read_oob(mtd, address, mtd->oobsize, 293 &retlen, &buf[SECTORSIZE]) < 0) 294 goto out; 295 if (memcmpb(buf + SECTORSIZE, 0xff, mtd->oobsize) != 0) 296 goto out; 297 } 298 address += SECTORSIZE; 299 } 300 301 ret = 0; 302 303 out: 304 kfree(buf); 305 return ret; 306 } 307 308 /* NFTL_format: format a Erase Unit by erasing ALL Erase Zones in the Erase Unit and 309 * Update NFTL metadata. Each erase operation is checked with check_free_sectors 310 * 311 * Return: 0 when succeed, -1 on error. 312 * 313 * ToDo: 1. Is it necessary to check_free_sector after erasing ?? 314 */ 315 int NFTL_formatblock(struct NFTLrecord *nftl, int block) 316 { 317 size_t retlen; 318 unsigned int nb_erases, erase_mark; 319 struct nftl_uci1 uci; 320 struct erase_info *instr = &nftl->instr; 321 struct mtd_info *mtd = nftl->mbd.mtd; 322 323 /* Read the Unit Control Information #1 for Wear-Leveling */ 324 if (nftl_read_oob(mtd, block * nftl->EraseSize + SECTORSIZE + 8, 325 8, &retlen, (char *)&uci) < 0) 326 goto default_uci1; 327 328 erase_mark = le16_to_cpu ((uci.EraseMark | uci.EraseMark1)); 329 if (erase_mark != ERASE_MARK) { 330 default_uci1: 331 uci.EraseMark = cpu_to_le16(ERASE_MARK); 332 uci.EraseMark1 = cpu_to_le16(ERASE_MARK); 333 uci.WearInfo = cpu_to_le32(0); 334 } 335 336 memset(instr, 0, sizeof(struct erase_info)); 337 338 /* XXX: use async erase interface, XXX: test return code */ 339 instr->addr = block * nftl->EraseSize; 340 instr->len = nftl->EraseSize; 341 if (mtd_erase(mtd, instr)) { 342 printk("Error while formatting block %d\n", block); 343 goto fail; 344 } 345 346 /* increase and write Wear-Leveling info */ 347 nb_erases = le32_to_cpu(uci.WearInfo); 348 nb_erases++; 349 350 /* wrap (almost impossible with current flash) or free block */ 351 if (nb_erases == 0) 352 nb_erases = 1; 353 354 /* check the "freeness" of Erase Unit before updating metadata 355 * FixMe: is this check really necessary ? since we have check the 356 * return code after the erase operation. */ 357 if (check_free_sectors(nftl, instr->addr, nftl->EraseSize, 1) != 0) 358 goto fail; 359 360 uci.WearInfo = le32_to_cpu(nb_erases); 361 if (nftl_write_oob(mtd, block * nftl->EraseSize + SECTORSIZE + 362 8, 8, &retlen, (char *)&uci) < 0) 363 goto fail; 364 return 0; 365 fail: 366 /* could not format, update the bad block table (caller is responsible 367 for setting the ReplUnitTable to BLOCK_RESERVED on failure) */ 368 mtd_block_markbad(nftl->mbd.mtd, instr->addr); 369 return -1; 370 } 371 372 /* check_sectors_in_chain: Check that each sector of a Virtual Unit Chain is correct. 373 * Mark as 'IGNORE' each incorrect sector. This check is only done if the chain 374 * was being folded when NFTL was interrupted. 375 * 376 * The check_free_sectors in this function is necessary. There is a possible 377 * situation that after writing the Data area, the Block Control Information is 378 * not updated according (due to power failure or something) which leaves the block 379 * in an inconsistent state. So we have to check if a block is really FREE in this 380 * case. */ 381 static void check_sectors_in_chain(struct NFTLrecord *nftl, unsigned int first_block) 382 { 383 struct mtd_info *mtd = nftl->mbd.mtd; 384 unsigned int block, i, status; 385 struct nftl_bci bci; 386 int sectors_per_block; 387 size_t retlen; 388 389 sectors_per_block = nftl->EraseSize / SECTORSIZE; 390 block = first_block; 391 for (;;) { 392 for (i = 0; i < sectors_per_block; i++) { 393 if (nftl_read_oob(mtd, 394 block * nftl->EraseSize + i * SECTORSIZE, 395 8, &retlen, (char *)&bci) < 0) 396 status = SECTOR_IGNORE; 397 else 398 status = bci.Status | bci.Status1; 399 400 switch(status) { 401 case SECTOR_FREE: 402 /* verify that the sector is really free. If not, mark 403 as ignore */ 404 if (memcmpb(&bci, 0xff, 8) != 0 || 405 check_free_sectors(nftl, block * nftl->EraseSize + i * SECTORSIZE, 406 SECTORSIZE, 0) != 0) { 407 printk("Incorrect free sector %d in block %d: " 408 "marking it as ignored\n", 409 i, block); 410 411 /* sector not free actually : mark it as SECTOR_IGNORE */ 412 bci.Status = SECTOR_IGNORE; 413 bci.Status1 = SECTOR_IGNORE; 414 nftl_write_oob(mtd, block * 415 nftl->EraseSize + 416 i * SECTORSIZE, 8, 417 &retlen, (char *)&bci); 418 } 419 break; 420 default: 421 break; 422 } 423 } 424 425 /* proceed to next Erase Unit on the chain */ 426 block = nftl->ReplUnitTable[block]; 427 if (!(block == BLOCK_NIL || block < nftl->nb_blocks)) 428 printk("incorrect ReplUnitTable[] : %d\n", block); 429 if (block == BLOCK_NIL || block >= nftl->nb_blocks) 430 break; 431 } 432 } 433 434 /* calc_chain_length: Walk through a Virtual Unit Chain and estimate chain length */ 435 static int calc_chain_length(struct NFTLrecord *nftl, unsigned int first_block) 436 { 437 unsigned int length = 0, block = first_block; 438 439 for (;;) { 440 length++; 441 /* avoid infinite loops, although this is guaranteed not to 442 happen because of the previous checks */ 443 if (length >= nftl->nb_blocks) { 444 printk("nftl: length too long %d !\n", length); 445 break; 446 } 447 448 block = nftl->ReplUnitTable[block]; 449 if (!(block == BLOCK_NIL || block < nftl->nb_blocks)) 450 printk("incorrect ReplUnitTable[] : %d\n", block); 451 if (block == BLOCK_NIL || block >= nftl->nb_blocks) 452 break; 453 } 454 return length; 455 } 456 457 /* format_chain: Format an invalid Virtual Unit chain. It frees all the Erase Units in a 458 * Virtual Unit Chain, i.e. all the units are disconnected. 459 * 460 * It is not strictly correct to begin from the first block of the chain because 461 * if we stop the code, we may see again a valid chain if there was a first_block 462 * flag in a block inside it. But is it really a problem ? 463 * 464 * FixMe: Figure out what the last statement means. What if power failure when we are 465 * in the for (;;) loop formatting blocks ?? 466 */ 467 static void format_chain(struct NFTLrecord *nftl, unsigned int first_block) 468 { 469 unsigned int block = first_block, block1; 470 471 printk("Formatting chain at block %d\n", first_block); 472 473 for (;;) { 474 block1 = nftl->ReplUnitTable[block]; 475 476 printk("Formatting block %d\n", block); 477 if (NFTL_formatblock(nftl, block) < 0) { 478 /* cannot format !!!! Mark it as Bad Unit */ 479 nftl->ReplUnitTable[block] = BLOCK_RESERVED; 480 } else { 481 nftl->ReplUnitTable[block] = BLOCK_FREE; 482 } 483 484 /* goto next block on the chain */ 485 block = block1; 486 487 if (!(block == BLOCK_NIL || block < nftl->nb_blocks)) 488 printk("incorrect ReplUnitTable[] : %d\n", block); 489 if (block == BLOCK_NIL || block >= nftl->nb_blocks) 490 break; 491 } 492 } 493 494 /* check_and_mark_free_block: Verify that a block is free in the NFTL sense (valid erase mark) or 495 * totally free (only 0xff). 496 * 497 * Definition: Free Erase Unit -- A properly erased/formatted Free Erase Unit should have meet the 498 * following criteria: 499 * 1. */ 500 static int check_and_mark_free_block(struct NFTLrecord *nftl, int block) 501 { 502 struct mtd_info *mtd = nftl->mbd.mtd; 503 struct nftl_uci1 h1; 504 unsigned int erase_mark; 505 size_t retlen; 506 507 /* check erase mark. */ 508 if (nftl_read_oob(mtd, block * nftl->EraseSize + SECTORSIZE + 8, 8, 509 &retlen, (char *)&h1) < 0) 510 return -1; 511 512 erase_mark = le16_to_cpu ((h1.EraseMark | h1.EraseMark1)); 513 if (erase_mark != ERASE_MARK) { 514 /* if no erase mark, the block must be totally free. This is 515 possible in two cases : empty filesystem or interrupted erase (very unlikely) */ 516 if (check_free_sectors (nftl, block * nftl->EraseSize, nftl->EraseSize, 1) != 0) 517 return -1; 518 519 /* free block : write erase mark */ 520 h1.EraseMark = cpu_to_le16(ERASE_MARK); 521 h1.EraseMark1 = cpu_to_le16(ERASE_MARK); 522 h1.WearInfo = cpu_to_le32(0); 523 if (nftl_write_oob(mtd, 524 block * nftl->EraseSize + SECTORSIZE + 8, 8, 525 &retlen, (char *)&h1) < 0) 526 return -1; 527 } else { 528 #if 0 529 /* if erase mark present, need to skip it when doing check */ 530 for (i = 0; i < nftl->EraseSize; i += SECTORSIZE) { 531 /* check free sector */ 532 if (check_free_sectors (nftl, block * nftl->EraseSize + i, 533 SECTORSIZE, 0) != 0) 534 return -1; 535 536 if (nftl_read_oob(mtd, block * nftl->EraseSize + i, 537 16, &retlen, buf) < 0) 538 return -1; 539 if (i == SECTORSIZE) { 540 /* skip erase mark */ 541 if (memcmpb(buf, 0xff, 8)) 542 return -1; 543 } else { 544 if (memcmpb(buf, 0xff, 16)) 545 return -1; 546 } 547 } 548 #endif 549 } 550 551 return 0; 552 } 553 554 /* get_fold_mark: Read fold mark from Unit Control Information #2, we use FOLD_MARK_IN_PROGRESS 555 * to indicate that we are in the progression of a Virtual Unit Chain folding. If the UCI #2 556 * is FOLD_MARK_IN_PROGRESS when mounting the NFTL, the (previous) folding process is interrupted 557 * for some reason. A clean up/check of the VUC is necessary in this case. 558 * 559 * WARNING: return 0 if read error 560 */ 561 static int get_fold_mark(struct NFTLrecord *nftl, unsigned int block) 562 { 563 struct mtd_info *mtd = nftl->mbd.mtd; 564 struct nftl_uci2 uci; 565 size_t retlen; 566 567 if (nftl_read_oob(mtd, block * nftl->EraseSize + 2 * SECTORSIZE + 8, 568 8, &retlen, (char *)&uci) < 0) 569 return 0; 570 571 return le16_to_cpu((uci.FoldMark | uci.FoldMark1)); 572 } 573 574 int NFTL_mount(struct NFTLrecord *s) 575 { 576 int i; 577 unsigned int first_logical_block, logical_block, rep_block, nb_erases, erase_mark; 578 unsigned int block, first_block, is_first_block; 579 int chain_length, do_format_chain; 580 struct nftl_uci0 h0; 581 struct nftl_uci1 h1; 582 struct mtd_info *mtd = s->mbd.mtd; 583 size_t retlen; 584 585 /* search for NFTL MediaHeader and Spare NFTL Media Header */ 586 if (find_boot_record(s) < 0) { 587 printk("Could not find valid boot record\n"); 588 return -1; 589 } 590 591 /* init the logical to physical table */ 592 for (i = 0; i < s->nb_blocks; i++) { 593 s->EUNtable[i] = BLOCK_NIL; 594 } 595 596 /* first pass : explore each block chain */ 597 first_logical_block = 0; 598 for (first_block = 0; first_block < s->nb_blocks; first_block++) { 599 /* if the block was not already explored, we can look at it */ 600 if (s->ReplUnitTable[first_block] == BLOCK_NOTEXPLORED) { 601 block = first_block; 602 chain_length = 0; 603 do_format_chain = 0; 604 605 for (;;) { 606 /* read the block header. If error, we format the chain */ 607 if (nftl_read_oob(mtd, 608 block * s->EraseSize + 8, 8, 609 &retlen, (char *)&h0) < 0 || 610 nftl_read_oob(mtd, 611 block * s->EraseSize + 612 SECTORSIZE + 8, 8, 613 &retlen, (char *)&h1) < 0) { 614 s->ReplUnitTable[block] = BLOCK_NIL; 615 do_format_chain = 1; 616 break; 617 } 618 619 logical_block = le16_to_cpu ((h0.VirtUnitNum | h0.SpareVirtUnitNum)); 620 rep_block = le16_to_cpu ((h0.ReplUnitNum | h0.SpareReplUnitNum)); 621 nb_erases = le32_to_cpu (h1.WearInfo); 622 erase_mark = le16_to_cpu ((h1.EraseMark | h1.EraseMark1)); 623 624 is_first_block = !(logical_block >> 15); 625 logical_block = logical_block & 0x7fff; 626 627 /* invalid/free block test */ 628 if (erase_mark != ERASE_MARK || logical_block >= s->nb_blocks) { 629 if (chain_length == 0) { 630 /* if not currently in a chain, we can handle it safely */ 631 if (check_and_mark_free_block(s, block) < 0) { 632 /* not really free: format it */ 633 printk("Formatting block %d\n", block); 634 if (NFTL_formatblock(s, block) < 0) { 635 /* could not format: reserve the block */ 636 s->ReplUnitTable[block] = BLOCK_RESERVED; 637 } else { 638 s->ReplUnitTable[block] = BLOCK_FREE; 639 } 640 } else { 641 /* free block: mark it */ 642 s->ReplUnitTable[block] = BLOCK_FREE; 643 } 644 /* directly examine the next block. */ 645 goto examine_ReplUnitTable; 646 } else { 647 /* the block was in a chain : this is bad. We 648 must format all the chain */ 649 printk("Block %d: free but referenced in chain %d\n", 650 block, first_block); 651 s->ReplUnitTable[block] = BLOCK_NIL; 652 do_format_chain = 1; 653 break; 654 } 655 } 656 657 /* we accept only first blocks here */ 658 if (chain_length == 0) { 659 /* this block is not the first block in chain : 660 ignore it, it will be included in a chain 661 later, or marked as not explored */ 662 if (!is_first_block) 663 goto examine_ReplUnitTable; 664 first_logical_block = logical_block; 665 } else { 666 if (logical_block != first_logical_block) { 667 printk("Block %d: incorrect logical block: %d expected: %d\n", 668 block, logical_block, first_logical_block); 669 /* the chain is incorrect : we must format it, 670 but we need to read it completely */ 671 do_format_chain = 1; 672 } 673 if (is_first_block) { 674 /* we accept that a block is marked as first 675 block while being last block in a chain 676 only if the chain is being folded */ 677 if (get_fold_mark(s, block) != FOLD_MARK_IN_PROGRESS || 678 rep_block != 0xffff) { 679 printk("Block %d: incorrectly marked as first block in chain\n", 680 block); 681 /* the chain is incorrect : we must format it, 682 but we need to read it completely */ 683 do_format_chain = 1; 684 } else { 685 printk("Block %d: folding in progress - ignoring first block flag\n", 686 block); 687 } 688 } 689 } 690 chain_length++; 691 if (rep_block == 0xffff) { 692 /* no more blocks after */ 693 s->ReplUnitTable[block] = BLOCK_NIL; 694 break; 695 } else if (rep_block >= s->nb_blocks) { 696 printk("Block %d: referencing invalid block %d\n", 697 block, rep_block); 698 do_format_chain = 1; 699 s->ReplUnitTable[block] = BLOCK_NIL; 700 break; 701 } else if (s->ReplUnitTable[rep_block] != BLOCK_NOTEXPLORED) { 702 /* same problem as previous 'is_first_block' test: 703 we accept that the last block of a chain has 704 the first_block flag set if folding is in 705 progress. We handle here the case where the 706 last block appeared first */ 707 if (s->ReplUnitTable[rep_block] == BLOCK_NIL && 708 s->EUNtable[first_logical_block] == rep_block && 709 get_fold_mark(s, first_block) == FOLD_MARK_IN_PROGRESS) { 710 /* EUNtable[] will be set after */ 711 printk("Block %d: folding in progress - ignoring first block flag\n", 712 rep_block); 713 s->ReplUnitTable[block] = rep_block; 714 s->EUNtable[first_logical_block] = BLOCK_NIL; 715 } else { 716 printk("Block %d: referencing block %d already in another chain\n", 717 block, rep_block); 718 /* XXX: should handle correctly fold in progress chains */ 719 do_format_chain = 1; 720 s->ReplUnitTable[block] = BLOCK_NIL; 721 } 722 break; 723 } else { 724 /* this is OK */ 725 s->ReplUnitTable[block] = rep_block; 726 block = rep_block; 727 } 728 } 729 730 /* the chain was completely explored. Now we can decide 731 what to do with it */ 732 if (do_format_chain) { 733 /* invalid chain : format it */ 734 format_chain(s, first_block); 735 } else { 736 unsigned int first_block1, chain_to_format, chain_length1; 737 int fold_mark; 738 739 /* valid chain : get foldmark */ 740 fold_mark = get_fold_mark(s, first_block); 741 if (fold_mark == 0) { 742 /* cannot get foldmark : format the chain */ 743 printk("Could read foldmark at block %d\n", first_block); 744 format_chain(s, first_block); 745 } else { 746 if (fold_mark == FOLD_MARK_IN_PROGRESS) 747 check_sectors_in_chain(s, first_block); 748 749 /* now handle the case where we find two chains at the 750 same virtual address : we select the longer one, 751 because the shorter one is the one which was being 752 folded if the folding was not done in place */ 753 first_block1 = s->EUNtable[first_logical_block]; 754 if (first_block1 != BLOCK_NIL) { 755 /* XXX: what to do if same length ? */ 756 chain_length1 = calc_chain_length(s, first_block1); 757 printk("Two chains at blocks %d (len=%d) and %d (len=%d)\n", 758 first_block1, chain_length1, first_block, chain_length); 759 760 if (chain_length >= chain_length1) { 761 chain_to_format = first_block1; 762 s->EUNtable[first_logical_block] = first_block; 763 } else { 764 chain_to_format = first_block; 765 } 766 format_chain(s, chain_to_format); 767 } else { 768 s->EUNtable[first_logical_block] = first_block; 769 } 770 } 771 } 772 } 773 examine_ReplUnitTable:; 774 } 775 776 /* second pass to format unreferenced blocks and init free block count */ 777 s->numfreeEUNs = 0; 778 s->LastFreeEUN = le16_to_cpu(s->MediaHdr.FirstPhysicalEUN); 779 780 for (block = 0; block < s->nb_blocks; block++) { 781 if (s->ReplUnitTable[block] == BLOCK_NOTEXPLORED) { 782 printk("Unreferenced block %d, formatting it\n", block); 783 if (NFTL_formatblock(s, block) < 0) 784 s->ReplUnitTable[block] = BLOCK_RESERVED; 785 else 786 s->ReplUnitTable[block] = BLOCK_FREE; 787 } 788 if (s->ReplUnitTable[block] == BLOCK_FREE) { 789 s->numfreeEUNs++; 790 s->LastFreeEUN = block; 791 } 792 } 793 794 return 0; 795 } 796