xref: /openbmc/linux/drivers/mtd/nand/raw/nand_bbt.c (revision be709d48)
1 /*
2  *  Overview:
3  *   Bad block table support for the NAND driver
4  *
5  *  Copyright © 2004 Thomas Gleixner (tglx@linutronix.de)
6  *
7  * This program is free software; you can redistribute it and/or modify
8  * it under the terms of the GNU General Public License version 2 as
9  * published by the Free Software Foundation.
10  *
11  * Description:
12  *
13  * When nand_scan_bbt is called, then it tries to find the bad block table
14  * depending on the options in the BBT descriptor(s). If no flash based BBT
15  * (NAND_BBT_USE_FLASH) is specified then the device is scanned for factory
16  * marked good / bad blocks. This information is used to create a memory BBT.
17  * Once a new bad block is discovered then the "factory" information is updated
18  * on the device.
19  * If a flash based BBT is specified then the function first tries to find the
20  * BBT on flash. If a BBT is found then the contents are read and the memory
21  * based BBT is created. If a mirrored BBT is selected then the mirror is
22  * searched too and the versions are compared. If the mirror has a greater
23  * version number, then the mirror BBT is used to build the memory based BBT.
24  * If the tables are not versioned, then we "or" the bad block information.
25  * If one of the BBTs is out of date or does not exist it is (re)created.
26  * If no BBT exists at all then the device is scanned for factory marked
27  * good / bad blocks and the bad block tables are created.
28  *
29  * For manufacturer created BBTs like the one found on M-SYS DOC devices
30  * the BBT is searched and read but never created
31  *
32  * The auto generated bad block table is located in the last good blocks
33  * of the device. The table is mirrored, so it can be updated eventually.
34  * The table is marked in the OOB area with an ident pattern and a version
35  * number which indicates which of both tables is more up to date. If the NAND
36  * controller needs the complete OOB area for the ECC information then the
37  * option NAND_BBT_NO_OOB should be used (along with NAND_BBT_USE_FLASH, of
38  * course): it moves the ident pattern and the version byte into the data area
39  * and the OOB area will remain untouched.
40  *
41  * The table uses 2 bits per block
42  * 11b:		block is good
43  * 00b:		block is factory marked bad
44  * 01b, 10b:	block is marked bad due to wear
45  *
46  * The memory bad block table uses the following scheme:
47  * 00b:		block is good
48  * 01b:		block is marked bad due to wear
49  * 10b:		block is reserved (to protect the bbt area)
50  * 11b:		block is factory marked bad
51  *
52  * Multichip devices like DOC store the bad block info per floor.
53  *
54  * Following assumptions are made:
55  * - bbts start at a page boundary, if autolocated on a block boundary
56  * - the space necessary for a bbt in FLASH does not exceed a block boundary
57  *
58  */
59 
60 #include <linux/slab.h>
61 #include <linux/types.h>
62 #include <linux/mtd/mtd.h>
63 #include <linux/mtd/bbm.h>
64 #include <linux/bitops.h>
65 #include <linux/delay.h>
66 #include <linux/vmalloc.h>
67 #include <linux/export.h>
68 #include <linux/string.h>
69 
70 #include "internals.h"
71 
72 #define BBT_BLOCK_GOOD		0x00
73 #define BBT_BLOCK_WORN		0x01
74 #define BBT_BLOCK_RESERVED	0x02
75 #define BBT_BLOCK_FACTORY_BAD	0x03
76 
77 #define BBT_ENTRY_MASK		0x03
78 #define BBT_ENTRY_SHIFT		2
79 
80 static inline uint8_t bbt_get_entry(struct nand_chip *chip, int block)
81 {
82 	uint8_t entry = chip->bbt[block >> BBT_ENTRY_SHIFT];
83 	entry >>= (block & BBT_ENTRY_MASK) * 2;
84 	return entry & BBT_ENTRY_MASK;
85 }
86 
87 static inline void bbt_mark_entry(struct nand_chip *chip, int block,
88 		uint8_t mark)
89 {
90 	uint8_t msk = (mark & BBT_ENTRY_MASK) << ((block & BBT_ENTRY_MASK) * 2);
91 	chip->bbt[block >> BBT_ENTRY_SHIFT] |= msk;
92 }
93 
94 static int check_pattern_no_oob(uint8_t *buf, struct nand_bbt_descr *td)
95 {
96 	if (memcmp(buf, td->pattern, td->len))
97 		return -1;
98 	return 0;
99 }
100 
101 /**
102  * check_pattern - [GENERIC] check if a pattern is in the buffer
103  * @buf: the buffer to search
104  * @len: the length of buffer to search
105  * @paglen: the pagelength
106  * @td: search pattern descriptor
107  *
108  * Check for a pattern at the given place. Used to search bad block tables and
109  * good / bad block identifiers.
110  */
111 static int check_pattern(uint8_t *buf, int len, int paglen, struct nand_bbt_descr *td)
112 {
113 	if (td->options & NAND_BBT_NO_OOB)
114 		return check_pattern_no_oob(buf, td);
115 
116 	/* Compare the pattern */
117 	if (memcmp(buf + paglen + td->offs, td->pattern, td->len))
118 		return -1;
119 
120 	return 0;
121 }
122 
123 /**
124  * check_short_pattern - [GENERIC] check if a pattern is in the buffer
125  * @buf: the buffer to search
126  * @td:	search pattern descriptor
127  *
128  * Check for a pattern at the given place. Used to search bad block tables and
129  * good / bad block identifiers. Same as check_pattern, but no optional empty
130  * check.
131  */
132 static int check_short_pattern(uint8_t *buf, struct nand_bbt_descr *td)
133 {
134 	/* Compare the pattern */
135 	if (memcmp(buf + td->offs, td->pattern, td->len))
136 		return -1;
137 	return 0;
138 }
139 
140 /**
141  * add_marker_len - compute the length of the marker in data area
142  * @td: BBT descriptor used for computation
143  *
144  * The length will be 0 if the marker is located in OOB area.
145  */
146 static u32 add_marker_len(struct nand_bbt_descr *td)
147 {
148 	u32 len;
149 
150 	if (!(td->options & NAND_BBT_NO_OOB))
151 		return 0;
152 
153 	len = td->len;
154 	if (td->options & NAND_BBT_VERSION)
155 		len++;
156 	return len;
157 }
158 
159 /**
160  * read_bbt - [GENERIC] Read the bad block table starting from page
161  * @this: NAND chip object
162  * @buf: temporary buffer
163  * @page: the starting page
164  * @num: the number of bbt descriptors to read
165  * @td: the bbt describtion table
166  * @offs: block number offset in the table
167  *
168  * Read the bad block table starting from page.
169  */
170 static int read_bbt(struct nand_chip *this, uint8_t *buf, int page, int num,
171 		    struct nand_bbt_descr *td, int offs)
172 {
173 	struct mtd_info *mtd = nand_to_mtd(this);
174 	int res, ret = 0, i, j, act = 0;
175 	size_t retlen, len, totlen;
176 	loff_t from;
177 	int bits = td->options & NAND_BBT_NRBITS_MSK;
178 	uint8_t msk = (uint8_t)((1 << bits) - 1);
179 	u32 marker_len;
180 	int reserved_block_code = td->reserved_block_code;
181 
182 	totlen = (num * bits) >> 3;
183 	marker_len = add_marker_len(td);
184 	from = ((loff_t)page) << this->page_shift;
185 
186 	while (totlen) {
187 		len = min(totlen, (size_t)(1 << this->bbt_erase_shift));
188 		if (marker_len) {
189 			/*
190 			 * In case the BBT marker is not in the OOB area it
191 			 * will be just in the first page.
192 			 */
193 			len -= marker_len;
194 			from += marker_len;
195 			marker_len = 0;
196 		}
197 		res = mtd_read(mtd, from, len, &retlen, buf);
198 		if (res < 0) {
199 			if (mtd_is_eccerr(res)) {
200 				pr_info("nand_bbt: ECC error in BBT at 0x%012llx\n",
201 					from & ~mtd->writesize);
202 				return res;
203 			} else if (mtd_is_bitflip(res)) {
204 				pr_info("nand_bbt: corrected error in BBT at 0x%012llx\n",
205 					from & ~mtd->writesize);
206 				ret = res;
207 			} else {
208 				pr_info("nand_bbt: error reading BBT\n");
209 				return res;
210 			}
211 		}
212 
213 		/* Analyse data */
214 		for (i = 0; i < len; i++) {
215 			uint8_t dat = buf[i];
216 			for (j = 0; j < 8; j += bits, act++) {
217 				uint8_t tmp = (dat >> j) & msk;
218 				if (tmp == msk)
219 					continue;
220 				if (reserved_block_code && (tmp == reserved_block_code)) {
221 					pr_info("nand_read_bbt: reserved block at 0x%012llx\n",
222 						 (loff_t)(offs + act) <<
223 						 this->bbt_erase_shift);
224 					bbt_mark_entry(this, offs + act,
225 							BBT_BLOCK_RESERVED);
226 					mtd->ecc_stats.bbtblocks++;
227 					continue;
228 				}
229 				/*
230 				 * Leave it for now, if it's matured we can
231 				 * move this message to pr_debug.
232 				 */
233 				pr_info("nand_read_bbt: bad block at 0x%012llx\n",
234 					 (loff_t)(offs + act) <<
235 					 this->bbt_erase_shift);
236 				/* Factory marked bad or worn out? */
237 				if (tmp == 0)
238 					bbt_mark_entry(this, offs + act,
239 							BBT_BLOCK_FACTORY_BAD);
240 				else
241 					bbt_mark_entry(this, offs + act,
242 							BBT_BLOCK_WORN);
243 				mtd->ecc_stats.badblocks++;
244 			}
245 		}
246 		totlen -= len;
247 		from += len;
248 	}
249 	return ret;
250 }
251 
252 /**
253  * read_abs_bbt - [GENERIC] Read the bad block table starting at a given page
254  * @this: NAND chip object
255  * @buf: temporary buffer
256  * @td: descriptor for the bad block table
257  * @chip: read the table for a specific chip, -1 read all chips; applies only if
258  *        NAND_BBT_PERCHIP option is set
259  *
260  * Read the bad block table for all chips starting at a given page. We assume
261  * that the bbt bits are in consecutive order.
262  */
263 static int read_abs_bbt(struct nand_chip *this, uint8_t *buf,
264 			struct nand_bbt_descr *td, int chip)
265 {
266 	struct mtd_info *mtd = nand_to_mtd(this);
267 	int res = 0, i;
268 
269 	if (td->options & NAND_BBT_PERCHIP) {
270 		int offs = 0;
271 		for (i = 0; i < this->numchips; i++) {
272 			if (chip == -1 || chip == i)
273 				res = read_bbt(this, buf, td->pages[i],
274 					this->chipsize >> this->bbt_erase_shift,
275 					td, offs);
276 			if (res)
277 				return res;
278 			offs += this->chipsize >> this->bbt_erase_shift;
279 		}
280 	} else {
281 		res = read_bbt(this, buf, td->pages[0],
282 				mtd->size >> this->bbt_erase_shift, td, 0);
283 		if (res)
284 			return res;
285 	}
286 	return 0;
287 }
288 
289 /* BBT marker is in the first page, no OOB */
290 static int scan_read_data(struct nand_chip *this, uint8_t *buf, loff_t offs,
291 			  struct nand_bbt_descr *td)
292 {
293 	struct mtd_info *mtd = nand_to_mtd(this);
294 	size_t retlen;
295 	size_t len;
296 
297 	len = td->len;
298 	if (td->options & NAND_BBT_VERSION)
299 		len++;
300 
301 	return mtd_read(mtd, offs, len, &retlen, buf);
302 }
303 
304 /**
305  * scan_read_oob - [GENERIC] Scan data+OOB region to buffer
306  * @this: NAND chip object
307  * @buf: temporary buffer
308  * @offs: offset at which to scan
309  * @len: length of data region to read
310  *
311  * Scan read data from data+OOB. May traverse multiple pages, interleaving
312  * page,OOB,page,OOB,... in buf. Completes transfer and returns the "strongest"
313  * ECC condition (error or bitflip). May quit on the first (non-ECC) error.
314  */
315 static int scan_read_oob(struct nand_chip *this, uint8_t *buf, loff_t offs,
316 			 size_t len)
317 {
318 	struct mtd_info *mtd = nand_to_mtd(this);
319 	struct mtd_oob_ops ops;
320 	int res, ret = 0;
321 
322 	ops.mode = MTD_OPS_PLACE_OOB;
323 	ops.ooboffs = 0;
324 	ops.ooblen = mtd->oobsize;
325 
326 	while (len > 0) {
327 		ops.datbuf = buf;
328 		ops.len = min(len, (size_t)mtd->writesize);
329 		ops.oobbuf = buf + ops.len;
330 
331 		res = mtd_read_oob(mtd, offs, &ops);
332 		if (res) {
333 			if (!mtd_is_bitflip_or_eccerr(res))
334 				return res;
335 			else if (mtd_is_eccerr(res) || !ret)
336 				ret = res;
337 		}
338 
339 		buf += mtd->oobsize + mtd->writesize;
340 		len -= mtd->writesize;
341 		offs += mtd->writesize;
342 	}
343 	return ret;
344 }
345 
346 static int scan_read(struct nand_chip *this, uint8_t *buf, loff_t offs,
347 		     size_t len, struct nand_bbt_descr *td)
348 {
349 	if (td->options & NAND_BBT_NO_OOB)
350 		return scan_read_data(this, buf, offs, td);
351 	else
352 		return scan_read_oob(this, buf, offs, len);
353 }
354 
355 /* Scan write data with oob to flash */
356 static int scan_write_bbt(struct nand_chip *this, loff_t offs, size_t len,
357 			  uint8_t *buf, uint8_t *oob)
358 {
359 	struct mtd_info *mtd = nand_to_mtd(this);
360 	struct mtd_oob_ops ops;
361 
362 	ops.mode = MTD_OPS_PLACE_OOB;
363 	ops.ooboffs = 0;
364 	ops.ooblen = mtd->oobsize;
365 	ops.datbuf = buf;
366 	ops.oobbuf = oob;
367 	ops.len = len;
368 
369 	return mtd_write_oob(mtd, offs, &ops);
370 }
371 
372 static u32 bbt_get_ver_offs(struct nand_chip *this, struct nand_bbt_descr *td)
373 {
374 	struct mtd_info *mtd = nand_to_mtd(this);
375 	u32 ver_offs = td->veroffs;
376 
377 	if (!(td->options & NAND_BBT_NO_OOB))
378 		ver_offs += mtd->writesize;
379 	return ver_offs;
380 }
381 
382 /**
383  * read_abs_bbts - [GENERIC] Read the bad block table(s) for all chips starting at a given page
384  * @this: NAND chip object
385  * @buf: temporary buffer
386  * @td: descriptor for the bad block table
387  * @md:	descriptor for the bad block table mirror
388  *
389  * Read the bad block table(s) for all chips starting at a given page. We
390  * assume that the bbt bits are in consecutive order.
391  */
392 static void read_abs_bbts(struct nand_chip *this, uint8_t *buf,
393 			  struct nand_bbt_descr *td, struct nand_bbt_descr *md)
394 {
395 	struct mtd_info *mtd = nand_to_mtd(this);
396 
397 	/* Read the primary version, if available */
398 	if (td->options & NAND_BBT_VERSION) {
399 		scan_read(this, buf, (loff_t)td->pages[0] << this->page_shift,
400 			  mtd->writesize, td);
401 		td->version[0] = buf[bbt_get_ver_offs(this, td)];
402 		pr_info("Bad block table at page %d, version 0x%02X\n",
403 			 td->pages[0], td->version[0]);
404 	}
405 
406 	/* Read the mirror version, if available */
407 	if (md && (md->options & NAND_BBT_VERSION)) {
408 		scan_read(this, buf, (loff_t)md->pages[0] << this->page_shift,
409 			  mtd->writesize, md);
410 		md->version[0] = buf[bbt_get_ver_offs(this, md)];
411 		pr_info("Bad block table at page %d, version 0x%02X\n",
412 			 md->pages[0], md->version[0]);
413 	}
414 }
415 
416 /* Scan a given block partially */
417 static int scan_block_fast(struct nand_chip *this, struct nand_bbt_descr *bd,
418 			   loff_t offs, uint8_t *buf, int numpages)
419 {
420 	struct mtd_info *mtd = nand_to_mtd(this);
421 	struct mtd_oob_ops ops;
422 	int j, ret;
423 
424 	ops.ooblen = mtd->oobsize;
425 	ops.oobbuf = buf;
426 	ops.ooboffs = 0;
427 	ops.datbuf = NULL;
428 	ops.mode = MTD_OPS_PLACE_OOB;
429 
430 	for (j = 0; j < numpages; j++) {
431 		/*
432 		 * Read the full oob until read_oob is fixed to handle single
433 		 * byte reads for 16 bit buswidth.
434 		 */
435 		ret = mtd_read_oob(mtd, offs, &ops);
436 		/* Ignore ECC errors when checking for BBM */
437 		if (ret && !mtd_is_bitflip_or_eccerr(ret))
438 			return ret;
439 
440 		if (check_short_pattern(buf, bd))
441 			return 1;
442 
443 		offs += mtd->writesize;
444 	}
445 	return 0;
446 }
447 
448 /**
449  * create_bbt - [GENERIC] Create a bad block table by scanning the device
450  * @this: NAND chip object
451  * @buf: temporary buffer
452  * @bd: descriptor for the good/bad block search pattern
453  * @chip: create the table for a specific chip, -1 read all chips; applies only
454  *        if NAND_BBT_PERCHIP option is set
455  *
456  * Create a bad block table by scanning the device for the given good/bad block
457  * identify pattern.
458  */
459 static int create_bbt(struct nand_chip *this, uint8_t *buf,
460 		      struct nand_bbt_descr *bd, int chip)
461 {
462 	struct mtd_info *mtd = nand_to_mtd(this);
463 	int i, numblocks, numpages;
464 	int startblock;
465 	loff_t from;
466 
467 	pr_info("Scanning device for bad blocks\n");
468 
469 	if (bd->options & NAND_BBT_SCAN2NDPAGE)
470 		numpages = 2;
471 	else
472 		numpages = 1;
473 
474 	if (chip == -1) {
475 		numblocks = mtd->size >> this->bbt_erase_shift;
476 		startblock = 0;
477 		from = 0;
478 	} else {
479 		if (chip >= this->numchips) {
480 			pr_warn("create_bbt(): chipnr (%d) > available chips (%d)\n",
481 			       chip + 1, this->numchips);
482 			return -EINVAL;
483 		}
484 		numblocks = this->chipsize >> this->bbt_erase_shift;
485 		startblock = chip * numblocks;
486 		numblocks += startblock;
487 		from = (loff_t)startblock << this->bbt_erase_shift;
488 	}
489 
490 	if (this->bbt_options & NAND_BBT_SCANLASTPAGE)
491 		from += mtd->erasesize - (mtd->writesize * numpages);
492 
493 	for (i = startblock; i < numblocks; i++) {
494 		int ret;
495 
496 		BUG_ON(bd->options & NAND_BBT_NO_OOB);
497 
498 		ret = scan_block_fast(this, bd, from, buf, numpages);
499 		if (ret < 0)
500 			return ret;
501 
502 		if (ret) {
503 			bbt_mark_entry(this, i, BBT_BLOCK_FACTORY_BAD);
504 			pr_warn("Bad eraseblock %d at 0x%012llx\n",
505 				i, (unsigned long long)from);
506 			mtd->ecc_stats.badblocks++;
507 		}
508 
509 		from += (1 << this->bbt_erase_shift);
510 	}
511 	return 0;
512 }
513 
514 /**
515  * search_bbt - [GENERIC] scan the device for a specific bad block table
516  * @this: NAND chip object
517  * @buf: temporary buffer
518  * @td: descriptor for the bad block table
519  *
520  * Read the bad block table by searching for a given ident pattern. Search is
521  * preformed either from the beginning up or from the end of the device
522  * downwards. The search starts always at the start of a block. If the option
523  * NAND_BBT_PERCHIP is given, each chip is searched for a bbt, which contains
524  * the bad block information of this chip. This is necessary to provide support
525  * for certain DOC devices.
526  *
527  * The bbt ident pattern resides in the oob area of the first page in a block.
528  */
529 static int search_bbt(struct nand_chip *this, uint8_t *buf,
530 		      struct nand_bbt_descr *td)
531 {
532 	struct mtd_info *mtd = nand_to_mtd(this);
533 	int i, chips;
534 	int startblock, block, dir;
535 	int scanlen = mtd->writesize + mtd->oobsize;
536 	int bbtblocks;
537 	int blocktopage = this->bbt_erase_shift - this->page_shift;
538 
539 	/* Search direction top -> down? */
540 	if (td->options & NAND_BBT_LASTBLOCK) {
541 		startblock = (mtd->size >> this->bbt_erase_shift) - 1;
542 		dir = -1;
543 	} else {
544 		startblock = 0;
545 		dir = 1;
546 	}
547 
548 	/* Do we have a bbt per chip? */
549 	if (td->options & NAND_BBT_PERCHIP) {
550 		chips = this->numchips;
551 		bbtblocks = this->chipsize >> this->bbt_erase_shift;
552 		startblock &= bbtblocks - 1;
553 	} else {
554 		chips = 1;
555 		bbtblocks = mtd->size >> this->bbt_erase_shift;
556 	}
557 
558 	for (i = 0; i < chips; i++) {
559 		/* Reset version information */
560 		td->version[i] = 0;
561 		td->pages[i] = -1;
562 		/* Scan the maximum number of blocks */
563 		for (block = 0; block < td->maxblocks; block++) {
564 
565 			int actblock = startblock + dir * block;
566 			loff_t offs = (loff_t)actblock << this->bbt_erase_shift;
567 
568 			/* Read first page */
569 			scan_read(this, buf, offs, mtd->writesize, td);
570 			if (!check_pattern(buf, scanlen, mtd->writesize, td)) {
571 				td->pages[i] = actblock << blocktopage;
572 				if (td->options & NAND_BBT_VERSION) {
573 					offs = bbt_get_ver_offs(this, td);
574 					td->version[i] = buf[offs];
575 				}
576 				break;
577 			}
578 		}
579 		startblock += this->chipsize >> this->bbt_erase_shift;
580 	}
581 	/* Check, if we found a bbt for each requested chip */
582 	for (i = 0; i < chips; i++) {
583 		if (td->pages[i] == -1)
584 			pr_warn("Bad block table not found for chip %d\n", i);
585 		else
586 			pr_info("Bad block table found at page %d, version 0x%02X\n",
587 				td->pages[i], td->version[i]);
588 	}
589 	return 0;
590 }
591 
592 /**
593  * search_read_bbts - [GENERIC] scan the device for bad block table(s)
594  * @this: NAND chip object
595  * @buf: temporary buffer
596  * @td: descriptor for the bad block table
597  * @md: descriptor for the bad block table mirror
598  *
599  * Search and read the bad block table(s).
600  */
601 static void search_read_bbts(struct nand_chip *this, uint8_t *buf,
602 			     struct nand_bbt_descr *td,
603 			     struct nand_bbt_descr *md)
604 {
605 	/* Search the primary table */
606 	search_bbt(this, buf, td);
607 
608 	/* Search the mirror table */
609 	if (md)
610 		search_bbt(this, buf, md);
611 }
612 
613 /**
614  * get_bbt_block - Get the first valid eraseblock suitable to store a BBT
615  * @this: the NAND device
616  * @td: the BBT description
617  * @md: the mirror BBT descriptor
618  * @chip: the CHIP selector
619  *
620  * This functions returns a positive block number pointing a valid eraseblock
621  * suitable to store a BBT (i.e. in the range reserved for BBT), or -ENOSPC if
622  * all blocks are already used of marked bad. If td->pages[chip] was already
623  * pointing to a valid block we re-use it, otherwise we search for the next
624  * valid one.
625  */
626 static int get_bbt_block(struct nand_chip *this, struct nand_bbt_descr *td,
627 			 struct nand_bbt_descr *md, int chip)
628 {
629 	int startblock, dir, page, numblocks, i;
630 
631 	/*
632 	 * There was already a version of the table, reuse the page. This
633 	 * applies for absolute placement too, as we have the page number in
634 	 * td->pages.
635 	 */
636 	if (td->pages[chip] != -1)
637 		return td->pages[chip] >>
638 				(this->bbt_erase_shift - this->page_shift);
639 
640 	numblocks = (int)(this->chipsize >> this->bbt_erase_shift);
641 	if (!(td->options & NAND_BBT_PERCHIP))
642 		numblocks *= this->numchips;
643 
644 	/*
645 	 * Automatic placement of the bad block table. Search direction
646 	 * top -> down?
647 	 */
648 	if (td->options & NAND_BBT_LASTBLOCK) {
649 		startblock = numblocks * (chip + 1) - 1;
650 		dir = -1;
651 	} else {
652 		startblock = chip * numblocks;
653 		dir = 1;
654 	}
655 
656 	for (i = 0; i < td->maxblocks; i++) {
657 		int block = startblock + dir * i;
658 
659 		/* Check, if the block is bad */
660 		switch (bbt_get_entry(this, block)) {
661 		case BBT_BLOCK_WORN:
662 		case BBT_BLOCK_FACTORY_BAD:
663 			continue;
664 		}
665 
666 		page = block << (this->bbt_erase_shift - this->page_shift);
667 
668 		/* Check, if the block is used by the mirror table */
669 		if (!md || md->pages[chip] != page)
670 			return block;
671 	}
672 
673 	return -ENOSPC;
674 }
675 
676 /**
677  * mark_bbt_block_bad - Mark one of the block reserved for BBT bad
678  * @this: the NAND device
679  * @td: the BBT description
680  * @chip: the CHIP selector
681  * @block: the BBT block to mark
682  *
683  * Blocks reserved for BBT can become bad. This functions is an helper to mark
684  * such blocks as bad. It takes care of updating the in-memory BBT, marking the
685  * block as bad using a bad block marker and invalidating the associated
686  * td->pages[] entry.
687  */
688 static void mark_bbt_block_bad(struct nand_chip *this,
689 			       struct nand_bbt_descr *td,
690 			       int chip, int block)
691 {
692 	loff_t to;
693 	int res;
694 
695 	bbt_mark_entry(this, block, BBT_BLOCK_WORN);
696 
697 	to = (loff_t)block << this->bbt_erase_shift;
698 	res = nand_markbad_bbm(this, to);
699 	if (res)
700 		pr_warn("nand_bbt: error %d while marking block %d bad\n",
701 			res, block);
702 
703 	td->pages[chip] = -1;
704 }
705 
706 /**
707  * write_bbt - [GENERIC] (Re)write the bad block table
708  * @this: NAND chip object
709  * @buf: temporary buffer
710  * @td: descriptor for the bad block table
711  * @md: descriptor for the bad block table mirror
712  * @chipsel: selector for a specific chip, -1 for all
713  *
714  * (Re)write the bad block table.
715  */
716 static int write_bbt(struct nand_chip *this, uint8_t *buf,
717 		     struct nand_bbt_descr *td, struct nand_bbt_descr *md,
718 		     int chipsel)
719 {
720 	struct mtd_info *mtd = nand_to_mtd(this);
721 	struct erase_info einfo;
722 	int i, res, chip = 0;
723 	int bits, page, offs, numblocks, sft, sftmsk;
724 	int nrchips, pageoffs, ooboffs;
725 	uint8_t msk[4];
726 	uint8_t rcode = td->reserved_block_code;
727 	size_t retlen, len = 0;
728 	loff_t to;
729 	struct mtd_oob_ops ops;
730 
731 	ops.ooblen = mtd->oobsize;
732 	ops.ooboffs = 0;
733 	ops.datbuf = NULL;
734 	ops.mode = MTD_OPS_PLACE_OOB;
735 
736 	if (!rcode)
737 		rcode = 0xff;
738 	/* Write bad block table per chip rather than per device? */
739 	if (td->options & NAND_BBT_PERCHIP) {
740 		numblocks = (int)(this->chipsize >> this->bbt_erase_shift);
741 		/* Full device write or specific chip? */
742 		if (chipsel == -1) {
743 			nrchips = this->numchips;
744 		} else {
745 			nrchips = chipsel + 1;
746 			chip = chipsel;
747 		}
748 	} else {
749 		numblocks = (int)(mtd->size >> this->bbt_erase_shift);
750 		nrchips = 1;
751 	}
752 
753 	/* Loop through the chips */
754 	while (chip < nrchips) {
755 		int block;
756 
757 		block = get_bbt_block(this, td, md, chip);
758 		if (block < 0) {
759 			pr_err("No space left to write bad block table\n");
760 			res = block;
761 			goto outerr;
762 		}
763 
764 		/*
765 		 * get_bbt_block() returns a block number, shift the value to
766 		 * get a page number.
767 		 */
768 		page = block << (this->bbt_erase_shift - this->page_shift);
769 
770 		/* Set up shift count and masks for the flash table */
771 		bits = td->options & NAND_BBT_NRBITS_MSK;
772 		msk[2] = ~rcode;
773 		switch (bits) {
774 		case 1: sft = 3; sftmsk = 0x07; msk[0] = 0x00; msk[1] = 0x01;
775 			msk[3] = 0x01;
776 			break;
777 		case 2: sft = 2; sftmsk = 0x06; msk[0] = 0x00; msk[1] = 0x01;
778 			msk[3] = 0x03;
779 			break;
780 		case 4: sft = 1; sftmsk = 0x04; msk[0] = 0x00; msk[1] = 0x0C;
781 			msk[3] = 0x0f;
782 			break;
783 		case 8: sft = 0; sftmsk = 0x00; msk[0] = 0x00; msk[1] = 0x0F;
784 			msk[3] = 0xff;
785 			break;
786 		default: return -EINVAL;
787 		}
788 
789 		to = ((loff_t)page) << this->page_shift;
790 
791 		/* Must we save the block contents? */
792 		if (td->options & NAND_BBT_SAVECONTENT) {
793 			/* Make it block aligned */
794 			to &= ~(((loff_t)1 << this->bbt_erase_shift) - 1);
795 			len = 1 << this->bbt_erase_shift;
796 			res = mtd_read(mtd, to, len, &retlen, buf);
797 			if (res < 0) {
798 				if (retlen != len) {
799 					pr_info("nand_bbt: error reading block for writing the bad block table\n");
800 					return res;
801 				}
802 				pr_warn("nand_bbt: ECC error while reading block for writing bad block table\n");
803 			}
804 			/* Read oob data */
805 			ops.ooblen = (len >> this->page_shift) * mtd->oobsize;
806 			ops.oobbuf = &buf[len];
807 			res = mtd_read_oob(mtd, to + mtd->writesize, &ops);
808 			if (res < 0 || ops.oobretlen != ops.ooblen)
809 				goto outerr;
810 
811 			/* Calc the byte offset in the buffer */
812 			pageoffs = page - (int)(to >> this->page_shift);
813 			offs = pageoffs << this->page_shift;
814 			/* Preset the bbt area with 0xff */
815 			memset(&buf[offs], 0xff, (size_t)(numblocks >> sft));
816 			ooboffs = len + (pageoffs * mtd->oobsize);
817 
818 		} else if (td->options & NAND_BBT_NO_OOB) {
819 			ooboffs = 0;
820 			offs = td->len;
821 			/* The version byte */
822 			if (td->options & NAND_BBT_VERSION)
823 				offs++;
824 			/* Calc length */
825 			len = (size_t)(numblocks >> sft);
826 			len += offs;
827 			/* Make it page aligned! */
828 			len = ALIGN(len, mtd->writesize);
829 			/* Preset the buffer with 0xff */
830 			memset(buf, 0xff, len);
831 			/* Pattern is located at the begin of first page */
832 			memcpy(buf, td->pattern, td->len);
833 		} else {
834 			/* Calc length */
835 			len = (size_t)(numblocks >> sft);
836 			/* Make it page aligned! */
837 			len = ALIGN(len, mtd->writesize);
838 			/* Preset the buffer with 0xff */
839 			memset(buf, 0xff, len +
840 			       (len >> this->page_shift)* mtd->oobsize);
841 			offs = 0;
842 			ooboffs = len;
843 			/* Pattern is located in oob area of first page */
844 			memcpy(&buf[ooboffs + td->offs], td->pattern, td->len);
845 		}
846 
847 		if (td->options & NAND_BBT_VERSION)
848 			buf[ooboffs + td->veroffs] = td->version[chip];
849 
850 		/* Walk through the memory table */
851 		for (i = 0; i < numblocks; i++) {
852 			uint8_t dat;
853 			int sftcnt = (i << (3 - sft)) & sftmsk;
854 			dat = bbt_get_entry(this, chip * numblocks + i);
855 			/* Do not store the reserved bbt blocks! */
856 			buf[offs + (i >> sft)] &= ~(msk[dat] << sftcnt);
857 		}
858 
859 		memset(&einfo, 0, sizeof(einfo));
860 		einfo.addr = to;
861 		einfo.len = 1 << this->bbt_erase_shift;
862 		res = nand_erase_nand(this, &einfo, 1);
863 		if (res < 0) {
864 			pr_warn("nand_bbt: error while erasing BBT block %d\n",
865 				res);
866 			mark_bbt_block_bad(this, td, chip, block);
867 			continue;
868 		}
869 
870 		res = scan_write_bbt(this, to, len, buf,
871 				     td->options & NAND_BBT_NO_OOB ?
872 				     NULL : &buf[len]);
873 		if (res < 0) {
874 			pr_warn("nand_bbt: error while writing BBT block %d\n",
875 				res);
876 			mark_bbt_block_bad(this, td, chip, block);
877 			continue;
878 		}
879 
880 		pr_info("Bad block table written to 0x%012llx, version 0x%02X\n",
881 			 (unsigned long long)to, td->version[chip]);
882 
883 		/* Mark it as used */
884 		td->pages[chip++] = page;
885 	}
886 	return 0;
887 
888  outerr:
889 	pr_warn("nand_bbt: error while writing bad block table %d\n", res);
890 	return res;
891 }
892 
893 /**
894  * nand_memory_bbt - [GENERIC] create a memory based bad block table
895  * @this: NAND chip object
896  * @bd: descriptor for the good/bad block search pattern
897  *
898  * The function creates a memory based bbt by scanning the device for
899  * manufacturer / software marked good / bad blocks.
900  */
901 static inline int nand_memory_bbt(struct nand_chip *this,
902 				  struct nand_bbt_descr *bd)
903 {
904 	return create_bbt(this, this->data_buf, bd, -1);
905 }
906 
907 /**
908  * check_create - [GENERIC] create and write bbt(s) if necessary
909  * @this: the NAND device
910  * @buf: temporary buffer
911  * @bd: descriptor for the good/bad block search pattern
912  *
913  * The function checks the results of the previous call to read_bbt and creates
914  * / updates the bbt(s) if necessary. Creation is necessary if no bbt was found
915  * for the chip/device. Update is necessary if one of the tables is missing or
916  * the version nr. of one table is less than the other.
917  */
918 static int check_create(struct nand_chip *this, uint8_t *buf,
919 			struct nand_bbt_descr *bd)
920 {
921 	int i, chips, writeops, create, chipsel, res, res2;
922 	struct nand_bbt_descr *td = this->bbt_td;
923 	struct nand_bbt_descr *md = this->bbt_md;
924 	struct nand_bbt_descr *rd, *rd2;
925 
926 	/* Do we have a bbt per chip? */
927 	if (td->options & NAND_BBT_PERCHIP)
928 		chips = this->numchips;
929 	else
930 		chips = 1;
931 
932 	for (i = 0; i < chips; i++) {
933 		writeops = 0;
934 		create = 0;
935 		rd = NULL;
936 		rd2 = NULL;
937 		res = res2 = 0;
938 		/* Per chip or per device? */
939 		chipsel = (td->options & NAND_BBT_PERCHIP) ? i : -1;
940 		/* Mirrored table available? */
941 		if (md) {
942 			if (td->pages[i] == -1 && md->pages[i] == -1) {
943 				create = 1;
944 				writeops = 0x03;
945 			} else if (td->pages[i] == -1) {
946 				rd = md;
947 				writeops = 0x01;
948 			} else if (md->pages[i] == -1) {
949 				rd = td;
950 				writeops = 0x02;
951 			} else if (td->version[i] == md->version[i]) {
952 				rd = td;
953 				if (!(td->options & NAND_BBT_VERSION))
954 					rd2 = md;
955 			} else if (((int8_t)(td->version[i] - md->version[i])) > 0) {
956 				rd = td;
957 				writeops = 0x02;
958 			} else {
959 				rd = md;
960 				writeops = 0x01;
961 			}
962 		} else {
963 			if (td->pages[i] == -1) {
964 				create = 1;
965 				writeops = 0x01;
966 			} else {
967 				rd = td;
968 			}
969 		}
970 
971 		if (create) {
972 			/* Create the bad block table by scanning the device? */
973 			if (!(td->options & NAND_BBT_CREATE))
974 				continue;
975 
976 			/* Create the table in memory by scanning the chip(s) */
977 			if (!(this->bbt_options & NAND_BBT_CREATE_EMPTY))
978 				create_bbt(this, buf, bd, chipsel);
979 
980 			td->version[i] = 1;
981 			if (md)
982 				md->version[i] = 1;
983 		}
984 
985 		/* Read back first? */
986 		if (rd) {
987 			res = read_abs_bbt(this, buf, rd, chipsel);
988 			if (mtd_is_eccerr(res)) {
989 				/* Mark table as invalid */
990 				rd->pages[i] = -1;
991 				rd->version[i] = 0;
992 				i--;
993 				continue;
994 			}
995 		}
996 		/* If they weren't versioned, read both */
997 		if (rd2) {
998 			res2 = read_abs_bbt(this, buf, rd2, chipsel);
999 			if (mtd_is_eccerr(res2)) {
1000 				/* Mark table as invalid */
1001 				rd2->pages[i] = -1;
1002 				rd2->version[i] = 0;
1003 				i--;
1004 				continue;
1005 			}
1006 		}
1007 
1008 		/* Scrub the flash table(s)? */
1009 		if (mtd_is_bitflip(res) || mtd_is_bitflip(res2))
1010 			writeops = 0x03;
1011 
1012 		/* Update version numbers before writing */
1013 		if (md) {
1014 			td->version[i] = max(td->version[i], md->version[i]);
1015 			md->version[i] = td->version[i];
1016 		}
1017 
1018 		/* Write the bad block table to the device? */
1019 		if ((writeops & 0x01) && (td->options & NAND_BBT_WRITE)) {
1020 			res = write_bbt(this, buf, td, md, chipsel);
1021 			if (res < 0)
1022 				return res;
1023 		}
1024 
1025 		/* Write the mirror bad block table to the device? */
1026 		if ((writeops & 0x02) && md && (md->options & NAND_BBT_WRITE)) {
1027 			res = write_bbt(this, buf, md, td, chipsel);
1028 			if (res < 0)
1029 				return res;
1030 		}
1031 	}
1032 	return 0;
1033 }
1034 
1035 /**
1036  * nand_update_bbt - update bad block table(s)
1037  * @this: the NAND device
1038  * @offs: the offset of the newly marked block
1039  *
1040  * The function updates the bad block table(s).
1041  */
1042 static int nand_update_bbt(struct nand_chip *this, loff_t offs)
1043 {
1044 	struct mtd_info *mtd = nand_to_mtd(this);
1045 	int len, res = 0;
1046 	int chip, chipsel;
1047 	uint8_t *buf;
1048 	struct nand_bbt_descr *td = this->bbt_td;
1049 	struct nand_bbt_descr *md = this->bbt_md;
1050 
1051 	if (!this->bbt || !td)
1052 		return -EINVAL;
1053 
1054 	/* Allocate a temporary buffer for one eraseblock incl. oob */
1055 	len = (1 << this->bbt_erase_shift);
1056 	len += (len >> this->page_shift) * mtd->oobsize;
1057 	buf = kmalloc(len, GFP_KERNEL);
1058 	if (!buf)
1059 		return -ENOMEM;
1060 
1061 	/* Do we have a bbt per chip? */
1062 	if (td->options & NAND_BBT_PERCHIP) {
1063 		chip = (int)(offs >> this->chip_shift);
1064 		chipsel = chip;
1065 	} else {
1066 		chip = 0;
1067 		chipsel = -1;
1068 	}
1069 
1070 	td->version[chip]++;
1071 	if (md)
1072 		md->version[chip]++;
1073 
1074 	/* Write the bad block table to the device? */
1075 	if (td->options & NAND_BBT_WRITE) {
1076 		res = write_bbt(this, buf, td, md, chipsel);
1077 		if (res < 0)
1078 			goto out;
1079 	}
1080 	/* Write the mirror bad block table to the device? */
1081 	if (md && (md->options & NAND_BBT_WRITE)) {
1082 		res = write_bbt(this, buf, md, td, chipsel);
1083 	}
1084 
1085  out:
1086 	kfree(buf);
1087 	return res;
1088 }
1089 
1090 /**
1091  * mark_bbt_regions - [GENERIC] mark the bad block table regions
1092  * @this: the NAND device
1093  * @td: bad block table descriptor
1094  *
1095  * The bad block table regions are marked as "bad" to prevent accidental
1096  * erasures / writes. The regions are identified by the mark 0x02.
1097  */
1098 static void mark_bbt_region(struct nand_chip *this, struct nand_bbt_descr *td)
1099 {
1100 	struct mtd_info *mtd = nand_to_mtd(this);
1101 	int i, j, chips, block, nrblocks, update;
1102 	uint8_t oldval;
1103 
1104 	/* Do we have a bbt per chip? */
1105 	if (td->options & NAND_BBT_PERCHIP) {
1106 		chips = this->numchips;
1107 		nrblocks = (int)(this->chipsize >> this->bbt_erase_shift);
1108 	} else {
1109 		chips = 1;
1110 		nrblocks = (int)(mtd->size >> this->bbt_erase_shift);
1111 	}
1112 
1113 	for (i = 0; i < chips; i++) {
1114 		if ((td->options & NAND_BBT_ABSPAGE) ||
1115 		    !(td->options & NAND_BBT_WRITE)) {
1116 			if (td->pages[i] == -1)
1117 				continue;
1118 			block = td->pages[i] >> (this->bbt_erase_shift - this->page_shift);
1119 			oldval = bbt_get_entry(this, block);
1120 			bbt_mark_entry(this, block, BBT_BLOCK_RESERVED);
1121 			if ((oldval != BBT_BLOCK_RESERVED) &&
1122 					td->reserved_block_code)
1123 				nand_update_bbt(this, (loff_t)block <<
1124 						this->bbt_erase_shift);
1125 			continue;
1126 		}
1127 		update = 0;
1128 		if (td->options & NAND_BBT_LASTBLOCK)
1129 			block = ((i + 1) * nrblocks) - td->maxblocks;
1130 		else
1131 			block = i * nrblocks;
1132 		for (j = 0; j < td->maxblocks; j++) {
1133 			oldval = bbt_get_entry(this, block);
1134 			bbt_mark_entry(this, block, BBT_BLOCK_RESERVED);
1135 			if (oldval != BBT_BLOCK_RESERVED)
1136 				update = 1;
1137 			block++;
1138 		}
1139 		/*
1140 		 * If we want reserved blocks to be recorded to flash, and some
1141 		 * new ones have been marked, then we need to update the stored
1142 		 * bbts.  This should only happen once.
1143 		 */
1144 		if (update && td->reserved_block_code)
1145 			nand_update_bbt(this, (loff_t)(block - 1) <<
1146 					this->bbt_erase_shift);
1147 	}
1148 }
1149 
1150 /**
1151  * verify_bbt_descr - verify the bad block description
1152  * @this: the NAND device
1153  * @bd: the table to verify
1154  *
1155  * This functions performs a few sanity checks on the bad block description
1156  * table.
1157  */
1158 static void verify_bbt_descr(struct nand_chip *this, struct nand_bbt_descr *bd)
1159 {
1160 	struct mtd_info *mtd = nand_to_mtd(this);
1161 	u32 pattern_len;
1162 	u32 bits;
1163 	u32 table_size;
1164 
1165 	if (!bd)
1166 		return;
1167 
1168 	pattern_len = bd->len;
1169 	bits = bd->options & NAND_BBT_NRBITS_MSK;
1170 
1171 	BUG_ON((this->bbt_options & NAND_BBT_NO_OOB) &&
1172 			!(this->bbt_options & NAND_BBT_USE_FLASH));
1173 	BUG_ON(!bits);
1174 
1175 	if (bd->options & NAND_BBT_VERSION)
1176 		pattern_len++;
1177 
1178 	if (bd->options & NAND_BBT_NO_OOB) {
1179 		BUG_ON(!(this->bbt_options & NAND_BBT_USE_FLASH));
1180 		BUG_ON(!(this->bbt_options & NAND_BBT_NO_OOB));
1181 		BUG_ON(bd->offs);
1182 		if (bd->options & NAND_BBT_VERSION)
1183 			BUG_ON(bd->veroffs != bd->len);
1184 		BUG_ON(bd->options & NAND_BBT_SAVECONTENT);
1185 	}
1186 
1187 	if (bd->options & NAND_BBT_PERCHIP)
1188 		table_size = this->chipsize >> this->bbt_erase_shift;
1189 	else
1190 		table_size = mtd->size >> this->bbt_erase_shift;
1191 	table_size >>= 3;
1192 	table_size *= bits;
1193 	if (bd->options & NAND_BBT_NO_OOB)
1194 		table_size += pattern_len;
1195 	BUG_ON(table_size > (1 << this->bbt_erase_shift));
1196 }
1197 
1198 /**
1199  * nand_scan_bbt - [NAND Interface] scan, find, read and maybe create bad block table(s)
1200  * @this: the NAND device
1201  * @bd: descriptor for the good/bad block search pattern
1202  *
1203  * The function checks, if a bad block table(s) is/are already available. If
1204  * not it scans the device for manufacturer marked good / bad blocks and writes
1205  * the bad block table(s) to the selected place.
1206  *
1207  * The bad block table memory is allocated here. It must be freed by calling
1208  * the nand_free_bbt function.
1209  */
1210 static int nand_scan_bbt(struct nand_chip *this, struct nand_bbt_descr *bd)
1211 {
1212 	struct mtd_info *mtd = nand_to_mtd(this);
1213 	int len, res;
1214 	uint8_t *buf;
1215 	struct nand_bbt_descr *td = this->bbt_td;
1216 	struct nand_bbt_descr *md = this->bbt_md;
1217 
1218 	len = (mtd->size >> (this->bbt_erase_shift + 2)) ? : 1;
1219 	/*
1220 	 * Allocate memory (2bit per block) and clear the memory bad block
1221 	 * table.
1222 	 */
1223 	this->bbt = kzalloc(len, GFP_KERNEL);
1224 	if (!this->bbt)
1225 		return -ENOMEM;
1226 
1227 	/*
1228 	 * If no primary table decriptor is given, scan the device to build a
1229 	 * memory based bad block table.
1230 	 */
1231 	if (!td) {
1232 		if ((res = nand_memory_bbt(this, bd))) {
1233 			pr_err("nand_bbt: can't scan flash and build the RAM-based BBT\n");
1234 			goto err;
1235 		}
1236 		return 0;
1237 	}
1238 	verify_bbt_descr(this, td);
1239 	verify_bbt_descr(this, md);
1240 
1241 	/* Allocate a temporary buffer for one eraseblock incl. oob */
1242 	len = (1 << this->bbt_erase_shift);
1243 	len += (len >> this->page_shift) * mtd->oobsize;
1244 	buf = vmalloc(len);
1245 	if (!buf) {
1246 		res = -ENOMEM;
1247 		goto err;
1248 	}
1249 
1250 	/* Is the bbt at a given page? */
1251 	if (td->options & NAND_BBT_ABSPAGE) {
1252 		read_abs_bbts(this, buf, td, md);
1253 	} else {
1254 		/* Search the bad block table using a pattern in oob */
1255 		search_read_bbts(this, buf, td, md);
1256 	}
1257 
1258 	res = check_create(this, buf, bd);
1259 	if (res)
1260 		goto err;
1261 
1262 	/* Prevent the bbt regions from erasing / writing */
1263 	mark_bbt_region(this, td);
1264 	if (md)
1265 		mark_bbt_region(this, md);
1266 
1267 	vfree(buf);
1268 	return 0;
1269 
1270 err:
1271 	kfree(this->bbt);
1272 	this->bbt = NULL;
1273 	return res;
1274 }
1275 
1276 /*
1277  * Define some generic bad / good block scan pattern which are used
1278  * while scanning a device for factory marked good / bad blocks.
1279  */
1280 static uint8_t scan_ff_pattern[] = { 0xff, 0xff };
1281 
1282 /* Generic flash bbt descriptors */
1283 static uint8_t bbt_pattern[] = {'B', 'b', 't', '0' };
1284 static uint8_t mirror_pattern[] = {'1', 't', 'b', 'B' };
1285 
1286 static struct nand_bbt_descr bbt_main_descr = {
1287 	.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
1288 		| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP,
1289 	.offs =	8,
1290 	.len = 4,
1291 	.veroffs = 12,
1292 	.maxblocks = NAND_BBT_SCAN_MAXBLOCKS,
1293 	.pattern = bbt_pattern
1294 };
1295 
1296 static struct nand_bbt_descr bbt_mirror_descr = {
1297 	.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
1298 		| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP,
1299 	.offs =	8,
1300 	.len = 4,
1301 	.veroffs = 12,
1302 	.maxblocks = NAND_BBT_SCAN_MAXBLOCKS,
1303 	.pattern = mirror_pattern
1304 };
1305 
1306 static struct nand_bbt_descr bbt_main_no_oob_descr = {
1307 	.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
1308 		| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP
1309 		| NAND_BBT_NO_OOB,
1310 	.len = 4,
1311 	.veroffs = 4,
1312 	.maxblocks = NAND_BBT_SCAN_MAXBLOCKS,
1313 	.pattern = bbt_pattern
1314 };
1315 
1316 static struct nand_bbt_descr bbt_mirror_no_oob_descr = {
1317 	.options = NAND_BBT_LASTBLOCK | NAND_BBT_CREATE | NAND_BBT_WRITE
1318 		| NAND_BBT_2BIT | NAND_BBT_VERSION | NAND_BBT_PERCHIP
1319 		| NAND_BBT_NO_OOB,
1320 	.len = 4,
1321 	.veroffs = 4,
1322 	.maxblocks = NAND_BBT_SCAN_MAXBLOCKS,
1323 	.pattern = mirror_pattern
1324 };
1325 
1326 #define BADBLOCK_SCAN_MASK (~NAND_BBT_NO_OOB)
1327 /**
1328  * nand_create_badblock_pattern - [INTERN] Creates a BBT descriptor structure
1329  * @this: NAND chip to create descriptor for
1330  *
1331  * This function allocates and initializes a nand_bbt_descr for BBM detection
1332  * based on the properties of @this. The new descriptor is stored in
1333  * this->badblock_pattern. Thus, this->badblock_pattern should be NULL when
1334  * passed to this function.
1335  */
1336 static int nand_create_badblock_pattern(struct nand_chip *this)
1337 {
1338 	struct nand_bbt_descr *bd;
1339 	if (this->badblock_pattern) {
1340 		pr_warn("Bad block pattern already allocated; not replacing\n");
1341 		return -EINVAL;
1342 	}
1343 	bd = kzalloc(sizeof(*bd), GFP_KERNEL);
1344 	if (!bd)
1345 		return -ENOMEM;
1346 	bd->options = this->bbt_options & BADBLOCK_SCAN_MASK;
1347 	bd->offs = this->badblockpos;
1348 	bd->len = (this->options & NAND_BUSWIDTH_16) ? 2 : 1;
1349 	bd->pattern = scan_ff_pattern;
1350 	bd->options |= NAND_BBT_DYNAMICSTRUCT;
1351 	this->badblock_pattern = bd;
1352 	return 0;
1353 }
1354 
1355 /**
1356  * nand_create_bbt - [NAND Interface] Select a default bad block table for the device
1357  * @this: NAND chip object
1358  *
1359  * This function selects the default bad block table support for the device and
1360  * calls the nand_scan_bbt function.
1361  */
1362 int nand_create_bbt(struct nand_chip *this)
1363 {
1364 	int ret;
1365 
1366 	/* Is a flash based bad block table requested? */
1367 	if (this->bbt_options & NAND_BBT_USE_FLASH) {
1368 		/* Use the default pattern descriptors */
1369 		if (!this->bbt_td) {
1370 			if (this->bbt_options & NAND_BBT_NO_OOB) {
1371 				this->bbt_td = &bbt_main_no_oob_descr;
1372 				this->bbt_md = &bbt_mirror_no_oob_descr;
1373 			} else {
1374 				this->bbt_td = &bbt_main_descr;
1375 				this->bbt_md = &bbt_mirror_descr;
1376 			}
1377 		}
1378 	} else {
1379 		this->bbt_td = NULL;
1380 		this->bbt_md = NULL;
1381 	}
1382 
1383 	if (!this->badblock_pattern) {
1384 		ret = nand_create_badblock_pattern(this);
1385 		if (ret)
1386 			return ret;
1387 	}
1388 
1389 	return nand_scan_bbt(this, this->badblock_pattern);
1390 }
1391 EXPORT_SYMBOL(nand_create_bbt);
1392 
1393 /**
1394  * nand_isreserved_bbt - [NAND Interface] Check if a block is reserved
1395  * @this: NAND chip object
1396  * @offs: offset in the device
1397  */
1398 int nand_isreserved_bbt(struct nand_chip *this, loff_t offs)
1399 {
1400 	int block;
1401 
1402 	block = (int)(offs >> this->bbt_erase_shift);
1403 	return bbt_get_entry(this, block) == BBT_BLOCK_RESERVED;
1404 }
1405 
1406 /**
1407  * nand_isbad_bbt - [NAND Interface] Check if a block is bad
1408  * @this: NAND chip object
1409  * @offs: offset in the device
1410  * @allowbbt: allow access to bad block table region
1411  */
1412 int nand_isbad_bbt(struct nand_chip *this, loff_t offs, int allowbbt)
1413 {
1414 	int block, res;
1415 
1416 	block = (int)(offs >> this->bbt_erase_shift);
1417 	res = bbt_get_entry(this, block);
1418 
1419 	pr_debug("nand_isbad_bbt(): bbt info for offs 0x%08x: (block %d) 0x%02x\n",
1420 		 (unsigned int)offs, block, res);
1421 
1422 	switch (res) {
1423 	case BBT_BLOCK_GOOD:
1424 		return 0;
1425 	case BBT_BLOCK_WORN:
1426 		return 1;
1427 	case BBT_BLOCK_RESERVED:
1428 		return allowbbt ? 0 : 1;
1429 	}
1430 	return 1;
1431 }
1432 
1433 /**
1434  * nand_markbad_bbt - [NAND Interface] Mark a block bad in the BBT
1435  * @this: NAND chip object
1436  * @offs: offset of the bad block
1437  */
1438 int nand_markbad_bbt(struct nand_chip *this, loff_t offs)
1439 {
1440 	int block, ret = 0;
1441 
1442 	block = (int)(offs >> this->bbt_erase_shift);
1443 
1444 	/* Mark bad block in memory */
1445 	bbt_mark_entry(this, block, BBT_BLOCK_WORN);
1446 
1447 	/* Update flash-based bad block table */
1448 	if (this->bbt_options & NAND_BBT_USE_FLASH)
1449 		ret = nand_update_bbt(this, offs);
1450 
1451 	return ret;
1452 }
1453