1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * Core registration and callback routines for MTD
4 * drivers and users.
5 *
6 * Copyright © 1999-2010 David Woodhouse <dwmw2@infradead.org>
7 * Copyright © 2006 Red Hat UK Limited
8 */
9
10 #include <linux/module.h>
11 #include <linux/kernel.h>
12 #include <linux/ptrace.h>
13 #include <linux/seq_file.h>
14 #include <linux/string.h>
15 #include <linux/timer.h>
16 #include <linux/major.h>
17 #include <linux/fs.h>
18 #include <linux/err.h>
19 #include <linux/ioctl.h>
20 #include <linux/init.h>
21 #include <linux/of.h>
22 #include <linux/proc_fs.h>
23 #include <linux/idr.h>
24 #include <linux/backing-dev.h>
25 #include <linux/gfp.h>
26 #include <linux/random.h>
27 #include <linux/slab.h>
28 #include <linux/reboot.h>
29 #include <linux/leds.h>
30 #include <linux/debugfs.h>
31 #include <linux/nvmem-provider.h>
32 #include <linux/root_dev.h>
33 #include <linux/error-injection.h>
34
35 #include <linux/mtd/mtd.h>
36 #include <linux/mtd/partitions.h>
37 #include <linux/mtd/concat.h>
38
39 #include "mtdcore.h"
40
41 struct backing_dev_info *mtd_bdi;
42
43 #ifdef CONFIG_PM_SLEEP
44
mtd_cls_suspend(struct device * dev)45 static int mtd_cls_suspend(struct device *dev)
46 {
47 struct mtd_info *mtd = dev_get_drvdata(dev);
48
49 return mtd ? mtd_suspend(mtd) : 0;
50 }
51
mtd_cls_resume(struct device * dev)52 static int mtd_cls_resume(struct device *dev)
53 {
54 struct mtd_info *mtd = dev_get_drvdata(dev);
55
56 if (mtd)
57 mtd_resume(mtd);
58 return 0;
59 }
60
61 static SIMPLE_DEV_PM_OPS(mtd_cls_pm_ops, mtd_cls_suspend, mtd_cls_resume);
62 #define MTD_CLS_PM_OPS (&mtd_cls_pm_ops)
63 #else
64 #define MTD_CLS_PM_OPS NULL
65 #endif
66
67 static struct class mtd_class = {
68 .name = "mtd",
69 .pm = MTD_CLS_PM_OPS,
70 };
71
72 static DEFINE_IDR(mtd_idr);
73
74 /* These are exported solely for the purpose of mtd_blkdevs.c. You
75 should not use them for _anything_ else */
76 DEFINE_MUTEX(mtd_table_mutex);
77 EXPORT_SYMBOL_GPL(mtd_table_mutex);
78
__mtd_next_device(int i)79 struct mtd_info *__mtd_next_device(int i)
80 {
81 return idr_get_next(&mtd_idr, &i);
82 }
83 EXPORT_SYMBOL_GPL(__mtd_next_device);
84
85 static LIST_HEAD(mtd_notifiers);
86
87
88 #define MTD_DEVT(index) MKDEV(MTD_CHAR_MAJOR, (index)*2)
89
90 /* REVISIT once MTD uses the driver model better, whoever allocates
91 * the mtd_info will probably want to use the release() hook...
92 */
mtd_release(struct device * dev)93 static void mtd_release(struct device *dev)
94 {
95 struct mtd_info *mtd = dev_get_drvdata(dev);
96 dev_t index = MTD_DEVT(mtd->index);
97
98 idr_remove(&mtd_idr, mtd->index);
99 of_node_put(mtd_get_of_node(mtd));
100
101 if (mtd_is_partition(mtd))
102 release_mtd_partition(mtd);
103
104 /* remove /dev/mtdXro node */
105 device_destroy(&mtd_class, index + 1);
106 }
107
108 /*
109 * No-op device release used in add_mtd_device() error paths.
110 * Prevents mtd_release() from being called via device_release(),
111 * which would free the mtd_info that the caller still manages.
112 */
mtd_dev_release_nop(struct device * dev)113 static void mtd_dev_release_nop(struct device *dev)
114 {
115 }
116
mtd_device_release(struct kref * kref)117 static void mtd_device_release(struct kref *kref)
118 {
119 struct mtd_info *mtd = container_of(kref, struct mtd_info, refcnt);
120 bool is_partition = mtd_is_partition(mtd);
121
122 debugfs_remove_recursive(mtd->dbg.dfs_dir);
123
124 /* Try to remove the NVMEM provider */
125 nvmem_unregister(mtd->nvmem);
126
127 device_unregister(&mtd->dev);
128
129 /*
130 * Clear dev so mtd can be safely re-registered later if desired.
131 * Should not be done for partition,
132 * as it was already destroyed in device_unregister().
133 */
134 if (!is_partition)
135 memset(&mtd->dev, 0, sizeof(mtd->dev));
136
137 module_put(THIS_MODULE);
138 }
139
140 #define MTD_DEVICE_ATTR_RO(name) \
141 static DEVICE_ATTR(name, 0444, mtd_##name##_show, NULL)
142
143 #define MTD_DEVICE_ATTR_RW(name) \
144 static DEVICE_ATTR(name, 0644, mtd_##name##_show, mtd_##name##_store)
145
mtd_type_show(struct device * dev,struct device_attribute * attr,char * buf)146 static ssize_t mtd_type_show(struct device *dev,
147 struct device_attribute *attr, char *buf)
148 {
149 struct mtd_info *mtd = dev_get_drvdata(dev);
150 char *type;
151
152 switch (mtd->type) {
153 case MTD_ABSENT:
154 type = "absent";
155 break;
156 case MTD_RAM:
157 type = "ram";
158 break;
159 case MTD_ROM:
160 type = "rom";
161 break;
162 case MTD_NORFLASH:
163 type = "nor";
164 break;
165 case MTD_NANDFLASH:
166 type = "nand";
167 break;
168 case MTD_DATAFLASH:
169 type = "dataflash";
170 break;
171 case MTD_UBIVOLUME:
172 type = "ubi";
173 break;
174 case MTD_MLCNANDFLASH:
175 type = "mlc-nand";
176 break;
177 default:
178 type = "unknown";
179 }
180
181 return sysfs_emit(buf, "%s\n", type);
182 }
183 MTD_DEVICE_ATTR_RO(type);
184
mtd_flags_show(struct device * dev,struct device_attribute * attr,char * buf)185 static ssize_t mtd_flags_show(struct device *dev,
186 struct device_attribute *attr, char *buf)
187 {
188 struct mtd_info *mtd = dev_get_drvdata(dev);
189
190 return sysfs_emit(buf, "0x%lx\n", (unsigned long)mtd->flags);
191 }
192 MTD_DEVICE_ATTR_RO(flags);
193
mtd_size_show(struct device * dev,struct device_attribute * attr,char * buf)194 static ssize_t mtd_size_show(struct device *dev,
195 struct device_attribute *attr, char *buf)
196 {
197 struct mtd_info *mtd = dev_get_drvdata(dev);
198
199 return sysfs_emit(buf, "%llu\n", (unsigned long long)mtd->size);
200 }
201 MTD_DEVICE_ATTR_RO(size);
202
mtd_erasesize_show(struct device * dev,struct device_attribute * attr,char * buf)203 static ssize_t mtd_erasesize_show(struct device *dev,
204 struct device_attribute *attr, char *buf)
205 {
206 struct mtd_info *mtd = dev_get_drvdata(dev);
207
208 return sysfs_emit(buf, "%lu\n", (unsigned long)mtd->erasesize);
209 }
210 MTD_DEVICE_ATTR_RO(erasesize);
211
mtd_writesize_show(struct device * dev,struct device_attribute * attr,char * buf)212 static ssize_t mtd_writesize_show(struct device *dev,
213 struct device_attribute *attr, char *buf)
214 {
215 struct mtd_info *mtd = dev_get_drvdata(dev);
216
217 return sysfs_emit(buf, "%lu\n", (unsigned long)mtd->writesize);
218 }
219 MTD_DEVICE_ATTR_RO(writesize);
220
mtd_subpagesize_show(struct device * dev,struct device_attribute * attr,char * buf)221 static ssize_t mtd_subpagesize_show(struct device *dev,
222 struct device_attribute *attr, char *buf)
223 {
224 struct mtd_info *mtd = dev_get_drvdata(dev);
225 unsigned int subpagesize = mtd->writesize >> mtd->subpage_sft;
226
227 return sysfs_emit(buf, "%u\n", subpagesize);
228 }
229 MTD_DEVICE_ATTR_RO(subpagesize);
230
mtd_oobsize_show(struct device * dev,struct device_attribute * attr,char * buf)231 static ssize_t mtd_oobsize_show(struct device *dev,
232 struct device_attribute *attr, char *buf)
233 {
234 struct mtd_info *mtd = dev_get_drvdata(dev);
235
236 return sysfs_emit(buf, "%lu\n", (unsigned long)mtd->oobsize);
237 }
238 MTD_DEVICE_ATTR_RO(oobsize);
239
mtd_oobavail_show(struct device * dev,struct device_attribute * attr,char * buf)240 static ssize_t mtd_oobavail_show(struct device *dev,
241 struct device_attribute *attr, char *buf)
242 {
243 struct mtd_info *mtd = dev_get_drvdata(dev);
244
245 return sysfs_emit(buf, "%u\n", mtd->oobavail);
246 }
247 MTD_DEVICE_ATTR_RO(oobavail);
248
mtd_numeraseregions_show(struct device * dev,struct device_attribute * attr,char * buf)249 static ssize_t mtd_numeraseregions_show(struct device *dev,
250 struct device_attribute *attr, char *buf)
251 {
252 struct mtd_info *mtd = dev_get_drvdata(dev);
253
254 return sysfs_emit(buf, "%u\n", mtd->numeraseregions);
255 }
256 MTD_DEVICE_ATTR_RO(numeraseregions);
257
mtd_name_show(struct device * dev,struct device_attribute * attr,char * buf)258 static ssize_t mtd_name_show(struct device *dev,
259 struct device_attribute *attr, char *buf)
260 {
261 struct mtd_info *mtd = dev_get_drvdata(dev);
262
263 return sysfs_emit(buf, "%s\n", mtd->name);
264 }
265 MTD_DEVICE_ATTR_RO(name);
266
mtd_ecc_strength_show(struct device * dev,struct device_attribute * attr,char * buf)267 static ssize_t mtd_ecc_strength_show(struct device *dev,
268 struct device_attribute *attr, char *buf)
269 {
270 struct mtd_info *mtd = dev_get_drvdata(dev);
271
272 return sysfs_emit(buf, "%u\n", mtd->ecc_strength);
273 }
274 MTD_DEVICE_ATTR_RO(ecc_strength);
275
mtd_bitflip_threshold_show(struct device * dev,struct device_attribute * attr,char * buf)276 static ssize_t mtd_bitflip_threshold_show(struct device *dev,
277 struct device_attribute *attr,
278 char *buf)
279 {
280 struct mtd_info *mtd = dev_get_drvdata(dev);
281
282 return sysfs_emit(buf, "%u\n", mtd->bitflip_threshold);
283 }
284
mtd_bitflip_threshold_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)285 static ssize_t mtd_bitflip_threshold_store(struct device *dev,
286 struct device_attribute *attr,
287 const char *buf, size_t count)
288 {
289 struct mtd_info *mtd = dev_get_drvdata(dev);
290 unsigned int bitflip_threshold;
291 int retval;
292
293 retval = kstrtouint(buf, 0, &bitflip_threshold);
294 if (retval)
295 return retval;
296
297 mtd->bitflip_threshold = bitflip_threshold;
298 return count;
299 }
300 MTD_DEVICE_ATTR_RW(bitflip_threshold);
301
mtd_ecc_step_size_show(struct device * dev,struct device_attribute * attr,char * buf)302 static ssize_t mtd_ecc_step_size_show(struct device *dev,
303 struct device_attribute *attr, char *buf)
304 {
305 struct mtd_info *mtd = dev_get_drvdata(dev);
306
307 return sysfs_emit(buf, "%u\n", mtd->ecc_step_size);
308
309 }
310 MTD_DEVICE_ATTR_RO(ecc_step_size);
311
mtd_corrected_bits_show(struct device * dev,struct device_attribute * attr,char * buf)312 static ssize_t mtd_corrected_bits_show(struct device *dev,
313 struct device_attribute *attr, char *buf)
314 {
315 struct mtd_info *mtd = dev_get_drvdata(dev);
316 struct mtd_ecc_stats *ecc_stats = &mtd->ecc_stats;
317
318 return sysfs_emit(buf, "%u\n", ecc_stats->corrected);
319 }
320 MTD_DEVICE_ATTR_RO(corrected_bits); /* ecc stats corrected */
321
mtd_ecc_failures_show(struct device * dev,struct device_attribute * attr,char * buf)322 static ssize_t mtd_ecc_failures_show(struct device *dev,
323 struct device_attribute *attr, char *buf)
324 {
325 struct mtd_info *mtd = dev_get_drvdata(dev);
326 struct mtd_ecc_stats *ecc_stats = &mtd->ecc_stats;
327
328 return sysfs_emit(buf, "%u\n", ecc_stats->failed);
329 }
330 MTD_DEVICE_ATTR_RO(ecc_failures); /* ecc stats errors */
331
mtd_bad_blocks_show(struct device * dev,struct device_attribute * attr,char * buf)332 static ssize_t mtd_bad_blocks_show(struct device *dev,
333 struct device_attribute *attr, char *buf)
334 {
335 struct mtd_info *mtd = dev_get_drvdata(dev);
336 struct mtd_ecc_stats *ecc_stats = &mtd->ecc_stats;
337
338 return sysfs_emit(buf, "%u\n", ecc_stats->badblocks);
339 }
340 MTD_DEVICE_ATTR_RO(bad_blocks);
341
mtd_bbt_blocks_show(struct device * dev,struct device_attribute * attr,char * buf)342 static ssize_t mtd_bbt_blocks_show(struct device *dev,
343 struct device_attribute *attr, char *buf)
344 {
345 struct mtd_info *mtd = dev_get_drvdata(dev);
346 struct mtd_ecc_stats *ecc_stats = &mtd->ecc_stats;
347
348 return sysfs_emit(buf, "%u\n", ecc_stats->bbtblocks);
349 }
350 MTD_DEVICE_ATTR_RO(bbt_blocks);
351
352 static struct attribute *mtd_attrs[] = {
353 &dev_attr_type.attr,
354 &dev_attr_flags.attr,
355 &dev_attr_size.attr,
356 &dev_attr_erasesize.attr,
357 &dev_attr_writesize.attr,
358 &dev_attr_subpagesize.attr,
359 &dev_attr_oobsize.attr,
360 &dev_attr_oobavail.attr,
361 &dev_attr_numeraseregions.attr,
362 &dev_attr_name.attr,
363 &dev_attr_ecc_strength.attr,
364 &dev_attr_ecc_step_size.attr,
365 &dev_attr_corrected_bits.attr,
366 &dev_attr_ecc_failures.attr,
367 &dev_attr_bad_blocks.attr,
368 &dev_attr_bbt_blocks.attr,
369 &dev_attr_bitflip_threshold.attr,
370 NULL,
371 };
372 ATTRIBUTE_GROUPS(mtd);
373
374 static const struct device_type mtd_devtype = {
375 .name = "mtd",
376 .groups = mtd_groups,
377 .release = mtd_release,
378 };
379
380 static bool mtd_expert_analysis_mode;
381
382 #ifdef CONFIG_DEBUG_FS
mtd_check_expert_analysis_mode(void)383 bool mtd_check_expert_analysis_mode(void)
384 {
385 const char *mtd_expert_analysis_warning =
386 "Bad block checks have been entirely disabled.\n"
387 "This is only reserved for post-mortem forensics and debug purposes.\n"
388 "Never enable this mode if you do not know what you are doing!\n";
389
390 return WARN_ONCE(mtd_expert_analysis_mode, mtd_expert_analysis_warning);
391 }
392 EXPORT_SYMBOL_GPL(mtd_check_expert_analysis_mode);
393 #endif
394
395 static struct dentry *dfs_dir_mtd;
396
mtd_ooblayout_show(struct seq_file * s,void * p,int (* iter)(struct mtd_info *,int section,struct mtd_oob_region * region))397 static int mtd_ooblayout_show(struct seq_file *s, void *p,
398 int (*iter)(struct mtd_info *, int section,
399 struct mtd_oob_region *region))
400 {
401 struct mtd_info *mtd = s->private;
402 int section;
403
404 for (section = 0;; section++) {
405 struct mtd_oob_region region;
406 int err;
407
408 err = iter(mtd, section, ®ion);
409 if (err) {
410 if (err == -ERANGE)
411 break;
412
413 return err;
414 }
415
416 seq_printf(s, "%-3d %4u %4u\n", section, region.offset,
417 region.length);
418 }
419
420 return 0;
421 }
422
mtd_ooblayout_ecc_show(struct seq_file * s,void * p)423 static int mtd_ooblayout_ecc_show(struct seq_file *s, void *p)
424 {
425 return mtd_ooblayout_show(s, p, mtd_ooblayout_ecc);
426 }
427 DEFINE_SHOW_ATTRIBUTE(mtd_ooblayout_ecc);
428
mtd_ooblayout_free_show(struct seq_file * s,void * p)429 static int mtd_ooblayout_free_show(struct seq_file *s, void *p)
430 {
431 return mtd_ooblayout_show(s, p, mtd_ooblayout_free);
432 }
433 DEFINE_SHOW_ATTRIBUTE(mtd_ooblayout_free);
434
mtd_debugfs_populate(struct mtd_info * mtd)435 static void mtd_debugfs_populate(struct mtd_info *mtd)
436 {
437 struct device *dev = &mtd->dev;
438 struct mtd_oob_region region;
439
440 if (IS_ERR_OR_NULL(dfs_dir_mtd))
441 return;
442
443 mtd->dbg.dfs_dir = debugfs_create_dir(dev_name(dev), dfs_dir_mtd);
444 if (IS_ERR_OR_NULL(mtd->dbg.dfs_dir))
445 return;
446
447 /* Create ooblayout files only if at least one region is present. */
448 if (mtd_ooblayout_ecc(mtd, 0, ®ion) == 0)
449 debugfs_create_file("ooblayout_ecc", 0444, mtd->dbg.dfs_dir,
450 mtd, &mtd_ooblayout_ecc_fops);
451
452 if (mtd_ooblayout_free(mtd, 0, ®ion) == 0)
453 debugfs_create_file("ooblayout_free", 0444, mtd->dbg.dfs_dir,
454 mtd, &mtd_ooblayout_free_fops);
455 }
456
457 #ifndef CONFIG_MMU
mtd_mmap_capabilities(struct mtd_info * mtd)458 unsigned mtd_mmap_capabilities(struct mtd_info *mtd)
459 {
460 switch (mtd->type) {
461 case MTD_RAM:
462 return NOMMU_MAP_COPY | NOMMU_MAP_DIRECT | NOMMU_MAP_EXEC |
463 NOMMU_MAP_READ | NOMMU_MAP_WRITE;
464 case MTD_ROM:
465 return NOMMU_MAP_COPY | NOMMU_MAP_DIRECT | NOMMU_MAP_EXEC |
466 NOMMU_MAP_READ;
467 default:
468 return NOMMU_MAP_COPY;
469 }
470 }
471 EXPORT_SYMBOL_GPL(mtd_mmap_capabilities);
472 #endif
473
mtd_reboot_notifier(struct notifier_block * n,unsigned long state,void * cmd)474 static int mtd_reboot_notifier(struct notifier_block *n, unsigned long state,
475 void *cmd)
476 {
477 struct mtd_info *mtd;
478
479 mtd = container_of(n, struct mtd_info, reboot_notifier);
480 mtd->_reboot(mtd);
481
482 return NOTIFY_DONE;
483 }
484
485 /**
486 * mtd_wunit_to_pairing_info - get pairing information of a wunit
487 * @mtd: pointer to new MTD device info structure
488 * @wunit: write unit we are interested in
489 * @info: returned pairing information
490 *
491 * Retrieve pairing information associated to the wunit.
492 * This is mainly useful when dealing with MLC/TLC NANDs where pages can be
493 * paired together, and where programming a page may influence the page it is
494 * paired with.
495 * The notion of page is replaced by the term wunit (write-unit) to stay
496 * consistent with the ->writesize field.
497 *
498 * The @wunit argument can be extracted from an absolute offset using
499 * mtd_offset_to_wunit(). @info is filled with the pairing information attached
500 * to @wunit.
501 *
502 * From the pairing info the MTD user can find all the wunits paired with
503 * @wunit using the following loop:
504 *
505 * for (i = 0; i < mtd_pairing_groups(mtd); i++) {
506 * info.pair = i;
507 * mtd_pairing_info_to_wunit(mtd, &info);
508 * ...
509 * }
510 */
mtd_wunit_to_pairing_info(struct mtd_info * mtd,int wunit,struct mtd_pairing_info * info)511 int mtd_wunit_to_pairing_info(struct mtd_info *mtd, int wunit,
512 struct mtd_pairing_info *info)
513 {
514 struct mtd_info *master = mtd_get_master(mtd);
515 int npairs = mtd_wunit_per_eb(master) / mtd_pairing_groups(master);
516
517 if (wunit < 0 || wunit >= npairs)
518 return -EINVAL;
519
520 if (master->pairing && master->pairing->get_info)
521 return master->pairing->get_info(master, wunit, info);
522
523 info->group = 0;
524 info->pair = wunit;
525
526 return 0;
527 }
528 EXPORT_SYMBOL_GPL(mtd_wunit_to_pairing_info);
529
530 /**
531 * mtd_pairing_info_to_wunit - get wunit from pairing information
532 * @mtd: pointer to new MTD device info structure
533 * @info: pairing information struct
534 *
535 * Returns a positive number representing the wunit associated to the info
536 * struct, or a negative error code.
537 *
538 * This is the reverse of mtd_wunit_to_pairing_info(), and can help one to
539 * iterate over all wunits of a given pair (see mtd_wunit_to_pairing_info()
540 * doc).
541 *
542 * It can also be used to only program the first page of each pair (i.e.
543 * page attached to group 0), which allows one to use an MLC NAND in
544 * software-emulated SLC mode:
545 *
546 * info.group = 0;
547 * npairs = mtd_wunit_per_eb(mtd) / mtd_pairing_groups(mtd);
548 * for (info.pair = 0; info.pair < npairs; info.pair++) {
549 * wunit = mtd_pairing_info_to_wunit(mtd, &info);
550 * mtd_write(mtd, mtd_wunit_to_offset(mtd, blkoffs, wunit),
551 * mtd->writesize, &retlen, buf + (i * mtd->writesize));
552 * }
553 */
mtd_pairing_info_to_wunit(struct mtd_info * mtd,const struct mtd_pairing_info * info)554 int mtd_pairing_info_to_wunit(struct mtd_info *mtd,
555 const struct mtd_pairing_info *info)
556 {
557 struct mtd_info *master = mtd_get_master(mtd);
558 int ngroups = mtd_pairing_groups(master);
559 int npairs = mtd_wunit_per_eb(master) / ngroups;
560
561 if (!info || info->pair < 0 || info->pair >= npairs ||
562 info->group < 0 || info->group >= ngroups)
563 return -EINVAL;
564
565 if (master->pairing && master->pairing->get_wunit)
566 return mtd->pairing->get_wunit(master, info);
567
568 return info->pair;
569 }
570 EXPORT_SYMBOL_GPL(mtd_pairing_info_to_wunit);
571
572 /**
573 * mtd_pairing_groups - get the number of pairing groups
574 * @mtd: pointer to new MTD device info structure
575 *
576 * Returns the number of pairing groups.
577 *
578 * This number is usually equal to the number of bits exposed by a single
579 * cell, and can be used in conjunction with mtd_pairing_info_to_wunit()
580 * to iterate over all pages of a given pair.
581 */
mtd_pairing_groups(struct mtd_info * mtd)582 int mtd_pairing_groups(struct mtd_info *mtd)
583 {
584 struct mtd_info *master = mtd_get_master(mtd);
585
586 if (!master->pairing || !master->pairing->ngroups)
587 return 1;
588
589 return master->pairing->ngroups;
590 }
591 EXPORT_SYMBOL_GPL(mtd_pairing_groups);
592
mtd_nvmem_reg_read(void * priv,unsigned int offset,void * val,size_t bytes)593 static int mtd_nvmem_reg_read(void *priv, unsigned int offset,
594 void *val, size_t bytes)
595 {
596 struct mtd_info *mtd = priv;
597 size_t retlen;
598 int err;
599
600 err = mtd_read(mtd, offset, bytes, &retlen, val);
601 if (err && err != -EUCLEAN)
602 return err;
603
604 return retlen == bytes ? 0 : -EIO;
605 }
606
mtd_nvmem_add(struct mtd_info * mtd)607 static int mtd_nvmem_add(struct mtd_info *mtd)
608 {
609 struct device_node *node = mtd_get_of_node(mtd);
610 struct nvmem_config config = {};
611
612 config.id = NVMEM_DEVID_NONE;
613 config.dev = &mtd->dev;
614 config.name = dev_name(&mtd->dev);
615 config.owner = THIS_MODULE;
616 config.add_legacy_fixed_of_cells = of_device_is_compatible(node, "nvmem-cells");
617 config.reg_read = mtd_nvmem_reg_read;
618 config.size = mtd->size;
619 config.word_size = 1;
620 config.stride = 1;
621 config.read_only = true;
622 config.root_only = true;
623 config.ignore_wp = true;
624 config.priv = mtd;
625
626 mtd->nvmem = nvmem_register(&config);
627 if (IS_ERR(mtd->nvmem)) {
628 /* Just ignore if there is no NVMEM support in the kernel */
629 if (PTR_ERR(mtd->nvmem) == -EOPNOTSUPP)
630 mtd->nvmem = NULL;
631 else
632 return dev_err_probe(&mtd->dev, PTR_ERR(mtd->nvmem),
633 "Failed to register NVMEM device\n");
634 }
635
636 return 0;
637 }
638
mtd_check_of_node(struct mtd_info * mtd)639 static void mtd_check_of_node(struct mtd_info *mtd)
640 {
641 struct device_node *partitions, *parent_dn, *mtd_dn = NULL;
642 const char *pname, *prefix = "partition-";
643 int plen, mtd_name_len, offset, prefix_len;
644
645 /* Check if MTD already has a device node */
646 if (mtd_get_of_node(mtd))
647 return;
648
649 if (!mtd_is_partition(mtd))
650 return;
651
652 parent_dn = of_node_get(mtd_get_of_node(mtd->parent));
653 if (!parent_dn)
654 return;
655
656 if (mtd_is_partition(mtd->parent))
657 partitions = of_node_get(parent_dn);
658 else
659 partitions = of_get_child_by_name(parent_dn, "partitions");
660 if (!partitions)
661 goto exit_parent;
662
663 prefix_len = strlen(prefix);
664 mtd_name_len = strlen(mtd->name);
665
666 /* Search if a partition is defined with the same name */
667 for_each_child_of_node(partitions, mtd_dn) {
668 /* Skip partition with no/wrong prefix */
669 if (!of_node_name_prefix(mtd_dn, prefix))
670 continue;
671
672 /* Label have priority. Check that first */
673 if (!of_property_read_string(mtd_dn, "label", &pname)) {
674 offset = 0;
675 } else {
676 pname = mtd_dn->name;
677 offset = prefix_len;
678 }
679
680 plen = strlen(pname) - offset;
681 if (plen == mtd_name_len &&
682 !strncmp(mtd->name, pname + offset, plen)) {
683 mtd_set_of_node(mtd, mtd_dn);
684 of_node_put(mtd_dn);
685 break;
686 }
687 }
688
689 of_node_put(partitions);
690 exit_parent:
691 of_node_put(parent_dn);
692 }
693
694 /**
695 * add_mtd_device - register an MTD device
696 * @mtd: pointer to new MTD device info structure
697 *
698 * Add a device to the list of MTD devices present in the system, and
699 * notify each currently active MTD 'user' of its arrival. Returns
700 * zero on success or non-zero on failure.
701 */
702
add_mtd_device(struct mtd_info * mtd)703 int add_mtd_device(struct mtd_info *mtd)
704 {
705 struct device_node *np = mtd_get_of_node(mtd);
706 struct mtd_info *master = mtd_get_master(mtd);
707 struct mtd_notifier *not;
708 int i, error, ofidx;
709
710 /*
711 * May occur, for instance, on buggy drivers which call
712 * mtd_device_parse_register() multiple times on the same master MTD,
713 * especially with CONFIG_MTD_PARTITIONED_MASTER=y.
714 */
715 if (WARN_ONCE(mtd->dev.type, "MTD already registered\n"))
716 return -EEXIST;
717
718 BUG_ON(mtd->writesize == 0);
719
720 /*
721 * MTD drivers should implement ->_{write,read}() or
722 * ->_{write,read}_oob(), but not both.
723 */
724 if (WARN_ON((mtd->_write && mtd->_write_oob) ||
725 (mtd->_read && mtd->_read_oob)))
726 return -EINVAL;
727
728 if (WARN_ON((!mtd->erasesize || !master->_erase) &&
729 !(mtd->flags & MTD_NO_ERASE)))
730 return -EINVAL;
731
732 /*
733 * MTD_SLC_ON_MLC_EMULATION can only be set on partitions, when the
734 * master is an MLC NAND and has a proper pairing scheme defined.
735 * We also reject masters that implement ->_writev() for now, because
736 * NAND controller drivers don't implement this hook, and adding the
737 * SLC -> MLC address/length conversion to this path is useless if we
738 * don't have a user.
739 */
740 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION &&
741 (!mtd_is_partition(mtd) || master->type != MTD_MLCNANDFLASH ||
742 !master->pairing || master->_writev))
743 return -EINVAL;
744
745 mutex_lock(&mtd_table_mutex);
746
747 ofidx = -1;
748 if (np)
749 ofidx = of_alias_get_id(np, "mtd");
750 if (ofidx >= 0)
751 i = idr_alloc(&mtd_idr, mtd, ofidx, ofidx + 1, GFP_KERNEL);
752 else
753 i = idr_alloc(&mtd_idr, mtd, 0, 0, GFP_KERNEL);
754 if (i < 0) {
755 error = i;
756 goto fail_locked;
757 }
758
759 mtd->index = i;
760 kref_init(&mtd->refcnt);
761
762 /* default value if not set by driver */
763 if (mtd->bitflip_threshold == 0)
764 mtd->bitflip_threshold = mtd->ecc_strength;
765
766 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
767 int ngroups = mtd_pairing_groups(master);
768
769 mtd->erasesize /= ngroups;
770 mtd->size = (u64)mtd_div_by_eb(mtd->size, master) *
771 mtd->erasesize;
772 }
773
774 if (is_power_of_2(mtd->erasesize))
775 mtd->erasesize_shift = ffs(mtd->erasesize) - 1;
776 else
777 mtd->erasesize_shift = 0;
778
779 if (is_power_of_2(mtd->writesize))
780 mtd->writesize_shift = ffs(mtd->writesize) - 1;
781 else
782 mtd->writesize_shift = 0;
783
784 mtd->erasesize_mask = (1 << mtd->erasesize_shift) - 1;
785 mtd->writesize_mask = (1 << mtd->writesize_shift) - 1;
786
787 /* Some chips always power up locked. Unlock them now */
788 if ((mtd->flags & MTD_WRITEABLE) && (mtd->flags & MTD_POWERUP_LOCK)) {
789 error = mtd_unlock(mtd, 0, mtd->size);
790 if (error && error != -EOPNOTSUPP)
791 printk(KERN_WARNING
792 "%s: unlock failed, writes may not work\n",
793 mtd->name);
794 /* Ignore unlock failures? */
795 error = 0;
796 }
797
798 /* Caller should have set dev.parent to match the
799 * physical device, if appropriate.
800 */
801 mtd->dev.type = &mtd_devtype;
802 mtd->dev.class = &mtd_class;
803 mtd->dev.devt = MTD_DEVT(i);
804 error = dev_set_name(&mtd->dev, "mtd%d", i);
805 if (error)
806 goto fail_devname;
807 dev_set_drvdata(&mtd->dev, mtd);
808 mtd_check_of_node(mtd);
809 of_node_get(mtd_get_of_node(mtd));
810 error = device_register(&mtd->dev);
811 if (error)
812 goto fail_added;
813
814 /* Add the nvmem provider */
815 error = mtd_nvmem_add(mtd);
816 if (error)
817 goto fail_nvmem_add;
818
819 mtd_debugfs_populate(mtd);
820
821 device_create(&mtd_class, mtd->dev.parent, MTD_DEVT(i) + 1, NULL,
822 "mtd%dro", i);
823
824 pr_debug("mtd: Giving out device %d to %s\n", i, mtd->name);
825 /* No need to get a refcount on the module containing
826 the notifier, since we hold the mtd_table_mutex */
827 list_for_each_entry(not, &mtd_notifiers, list)
828 not->add(mtd);
829
830 mutex_unlock(&mtd_table_mutex);
831
832 if (of_property_read_bool(mtd_get_of_node(mtd), "linux,rootfs")) {
833 if (IS_BUILTIN(CONFIG_MTD)) {
834 pr_info("mtd: setting mtd%d (%s) as root device\n", mtd->index, mtd->name);
835 ROOT_DEV = MKDEV(MTD_BLOCK_MAJOR, mtd->index);
836 } else {
837 pr_warn("mtd: can't set mtd%d (%s) as root device - mtd must be builtin\n",
838 mtd->index, mtd->name);
839 }
840 }
841
842 /* We _know_ we aren't being removed, because
843 our caller is still holding us here. So none
844 of this try_ nonsense, and no bitching about it
845 either. :) */
846 __module_get(THIS_MODULE);
847 return 0;
848
849 fail_nvmem_add:
850 device_del(&mtd->dev);
851 fail_added:
852 /*
853 * Clear type and set nop release to prevent mtd_release() ->
854 * release_mtd_partition() -> free_partition() from freeing mtd.
855 * The caller handles cleanup on failure.
856 */
857 mtd->dev.type = NULL;
858 mtd->dev.release = mtd_dev_release_nop;
859 put_device(&mtd->dev);
860 of_node_put(mtd_get_of_node(mtd));
861 fail_devname:
862 idr_remove(&mtd_idr, i);
863 fail_locked:
864 mutex_unlock(&mtd_table_mutex);
865 return error;
866 }
867
868 /**
869 * del_mtd_device - unregister an MTD device
870 * @mtd: pointer to MTD device info structure
871 *
872 * Remove a device from the list of MTD devices present in the system,
873 * and notify each currently active MTD 'user' of its departure.
874 * Returns zero on success or 1 on failure, which currently will happen
875 * if the requested device does not appear to be present in the list.
876 */
877
del_mtd_device(struct mtd_info * mtd)878 int del_mtd_device(struct mtd_info *mtd)
879 {
880 int ret;
881 struct mtd_notifier *not;
882
883 mutex_lock(&mtd_table_mutex);
884
885 if (idr_find(&mtd_idr, mtd->index) != mtd) {
886 ret = -ENODEV;
887 goto out_error;
888 }
889
890 /* No need to get a refcount on the module containing
891 the notifier, since we hold the mtd_table_mutex */
892 list_for_each_entry(not, &mtd_notifiers, list)
893 not->remove(mtd);
894
895 kref_put(&mtd->refcnt, mtd_device_release);
896 ret = 0;
897
898 out_error:
899 mutex_unlock(&mtd_table_mutex);
900 return ret;
901 }
902
903 /*
904 * Set a few defaults based on the parent devices, if not provided by the
905 * driver
906 */
mtd_set_dev_defaults(struct mtd_info * mtd)907 static void mtd_set_dev_defaults(struct mtd_info *mtd)
908 {
909 if (mtd->dev.parent) {
910 if (!mtd->owner && mtd->dev.parent->driver)
911 mtd->owner = mtd->dev.parent->driver->owner;
912 if (!mtd->name)
913 mtd->name = dev_name(mtd->dev.parent);
914 } else {
915 pr_debug("mtd device won't show a device symlink in sysfs\n");
916 }
917
918 INIT_LIST_HEAD(&mtd->partitions);
919 mutex_init(&mtd->master.partitions_lock);
920 mutex_init(&mtd->master.chrdev_lock);
921 }
922
mtd_otp_size(struct mtd_info * mtd,bool is_user)923 static ssize_t mtd_otp_size(struct mtd_info *mtd, bool is_user)
924 {
925 struct otp_info *info;
926 ssize_t size = 0;
927 unsigned int i;
928 size_t retlen;
929 int ret;
930
931 info = kmalloc(PAGE_SIZE, GFP_KERNEL);
932 if (!info)
933 return -ENOMEM;
934
935 if (is_user)
936 ret = mtd_get_user_prot_info(mtd, PAGE_SIZE, &retlen, info);
937 else
938 ret = mtd_get_fact_prot_info(mtd, PAGE_SIZE, &retlen, info);
939 if (ret)
940 goto err;
941
942 for (i = 0; i < retlen / sizeof(*info); i++)
943 size += info[i].length;
944
945 kfree(info);
946 return size;
947
948 err:
949 kfree(info);
950
951 /* ENODATA means there is no OTP region. */
952 return ret == -ENODATA ? 0 : ret;
953 }
954
mtd_otp_nvmem_register(struct mtd_info * mtd,const char * compatible,int size,nvmem_reg_read_t reg_read)955 static struct nvmem_device *mtd_otp_nvmem_register(struct mtd_info *mtd,
956 const char *compatible,
957 int size,
958 nvmem_reg_read_t reg_read)
959 {
960 struct nvmem_device *nvmem = NULL;
961 struct nvmem_config config = {};
962 struct device_node *np;
963
964 /* DT binding is optional */
965 np = of_get_compatible_child(mtd->dev.of_node, compatible);
966
967 /* OTP nvmem will be registered on the physical device */
968 config.dev = mtd->dev.parent;
969 config.name = compatible;
970 config.id = NVMEM_DEVID_AUTO;
971 config.owner = THIS_MODULE;
972 config.add_legacy_fixed_of_cells = !mtd_type_is_nand(mtd);
973 config.type = NVMEM_TYPE_OTP;
974 config.root_only = true;
975 config.ignore_wp = true;
976 config.reg_read = reg_read;
977 config.size = size;
978 config.of_node = np;
979 config.priv = mtd;
980
981 nvmem = nvmem_register(&config);
982 /* Just ignore if there is no NVMEM support in the kernel */
983 if (IS_ERR(nvmem) && PTR_ERR(nvmem) == -EOPNOTSUPP)
984 nvmem = NULL;
985
986 of_node_put(np);
987
988 return nvmem;
989 }
990
mtd_nvmem_user_otp_reg_read(void * priv,unsigned int offset,void * val,size_t bytes)991 static int mtd_nvmem_user_otp_reg_read(void *priv, unsigned int offset,
992 void *val, size_t bytes)
993 {
994 struct mtd_info *mtd = priv;
995 size_t retlen;
996 int ret;
997
998 ret = mtd_read_user_prot_reg(mtd, offset, bytes, &retlen, val);
999 if (ret)
1000 return ret;
1001
1002 return retlen == bytes ? 0 : -EIO;
1003 }
1004
mtd_nvmem_fact_otp_reg_read(void * priv,unsigned int offset,void * val,size_t bytes)1005 static int mtd_nvmem_fact_otp_reg_read(void *priv, unsigned int offset,
1006 void *val, size_t bytes)
1007 {
1008 struct mtd_info *mtd = priv;
1009 size_t retlen;
1010 int ret;
1011
1012 ret = mtd_read_fact_prot_reg(mtd, offset, bytes, &retlen, val);
1013 if (ret)
1014 return ret;
1015
1016 return retlen == bytes ? 0 : -EIO;
1017 }
1018
mtd_otp_nvmem_add(struct mtd_info * mtd)1019 static int mtd_otp_nvmem_add(struct mtd_info *mtd)
1020 {
1021 struct device *dev = mtd->dev.parent;
1022 struct nvmem_device *nvmem;
1023 ssize_t size;
1024 int err;
1025
1026 if (mtd->_get_user_prot_info && mtd->_read_user_prot_reg) {
1027 size = mtd_otp_size(mtd, true);
1028 if (size < 0) {
1029 err = size;
1030 goto err;
1031 }
1032
1033 if (size > 0) {
1034 nvmem = mtd_otp_nvmem_register(mtd, "user-otp", size,
1035 mtd_nvmem_user_otp_reg_read);
1036 if (IS_ERR(nvmem)) {
1037 err = PTR_ERR(nvmem);
1038 goto err;
1039 }
1040 mtd->otp_user_nvmem = nvmem;
1041 }
1042 }
1043
1044 if (mtd->_get_fact_prot_info && mtd->_read_fact_prot_reg) {
1045 size = mtd_otp_size(mtd, false);
1046 if (size < 0) {
1047 err = size;
1048 goto err;
1049 }
1050
1051 if (size > 0) {
1052 /*
1053 * The factory OTP contains thing such as a unique serial
1054 * number and is small, so let's read it out and put it
1055 * into the entropy pool.
1056 */
1057 void *otp;
1058
1059 otp = kmalloc(size, GFP_KERNEL);
1060 if (!otp) {
1061 err = -ENOMEM;
1062 goto err;
1063 }
1064 err = mtd_nvmem_fact_otp_reg_read(mtd, 0, otp, size);
1065 if (err < 0) {
1066 kfree(otp);
1067 goto err;
1068 }
1069 add_device_randomness(otp, err);
1070 kfree(otp);
1071
1072 nvmem = mtd_otp_nvmem_register(mtd, "factory-otp", size,
1073 mtd_nvmem_fact_otp_reg_read);
1074 if (IS_ERR(nvmem)) {
1075 err = PTR_ERR(nvmem);
1076 goto err;
1077 }
1078 mtd->otp_factory_nvmem = nvmem;
1079 }
1080 }
1081
1082 return 0;
1083
1084 err:
1085 nvmem_unregister(mtd->otp_user_nvmem);
1086 /* Don't report error if OTP is not supported. */
1087 if (err == -EOPNOTSUPP)
1088 return 0;
1089 return dev_err_probe(dev, err, "Failed to register OTP NVMEM device\n");
1090 }
1091
1092 /**
1093 * mtd_device_parse_register - parse partitions and register an MTD device.
1094 *
1095 * @mtd: the MTD device to register
1096 * @types: the list of MTD partition probes to try, see
1097 * 'parse_mtd_partitions()' for more information
1098 * @parser_data: MTD partition parser-specific data
1099 * @parts: fallback partition information to register, if parsing fails;
1100 * only valid if %nr_parts > %0
1101 * @nr_parts: the number of partitions in parts, if zero then the full
1102 * MTD device is registered if no partition info is found
1103 *
1104 * This function aggregates MTD partitions parsing (done by
1105 * 'parse_mtd_partitions()') and MTD device and partitions registering. It
1106 * basically follows the most common pattern found in many MTD drivers:
1107 *
1108 * * If the MTD_PARTITIONED_MASTER option is set, then the device as a whole is
1109 * registered first.
1110 * * Then It tries to probe partitions on MTD device @mtd using parsers
1111 * specified in @types (if @types is %NULL, then the default list of parsers
1112 * is used, see 'parse_mtd_partitions()' for more information). If none are
1113 * found this functions tries to fallback to information specified in
1114 * @parts/@nr_parts.
1115 * * If no partitions were found this function just registers the MTD device
1116 * @mtd and exits.
1117 *
1118 * Returns zero in case of success and a negative error code in case of failure.
1119 */
mtd_device_parse_register(struct mtd_info * mtd,const char * const * types,struct mtd_part_parser_data * parser_data,const struct mtd_partition * parts,int nr_parts)1120 int mtd_device_parse_register(struct mtd_info *mtd, const char * const *types,
1121 struct mtd_part_parser_data *parser_data,
1122 const struct mtd_partition *parts,
1123 int nr_parts)
1124 {
1125 int ret, err;
1126
1127 mtd_set_dev_defaults(mtd);
1128
1129 ret = mtd_otp_nvmem_add(mtd);
1130 if (ret)
1131 goto out;
1132
1133 if (IS_ENABLED(CONFIG_MTD_PARTITIONED_MASTER)) {
1134 ret = add_mtd_device(mtd);
1135 if (ret)
1136 goto out;
1137 }
1138
1139 if (IS_REACHABLE(CONFIG_MTD_VIRT_CONCAT)) {
1140 ret = mtd_virt_concat_node_create();
1141 if (ret < 0)
1142 goto out;
1143 }
1144
1145 /* Prefer parsed partitions over driver-provided fallback */
1146 ret = parse_mtd_partitions(mtd, types, parser_data);
1147 if (ret == -EPROBE_DEFER)
1148 goto out;
1149
1150 if (ret > 0)
1151 ret = 0;
1152 else if (nr_parts)
1153 ret = add_mtd_partitions(mtd, parts, nr_parts);
1154 else if (!device_is_registered(&mtd->dev))
1155 ret = add_mtd_device(mtd);
1156 else
1157 ret = 0;
1158
1159 if (ret)
1160 goto out;
1161
1162 if (IS_REACHABLE(CONFIG_MTD_VIRT_CONCAT)) {
1163 ret = mtd_virt_concat_create_join();
1164 if (ret < 0)
1165 goto out;
1166 }
1167 /*
1168 * FIXME: some drivers unfortunately call this function more than once.
1169 * So we have to check if we've already assigned the reboot notifier.
1170 *
1171 * Generally, we can make multiple calls work for most cases, but it
1172 * does cause problems with parse_mtd_partitions() above (e.g.,
1173 * cmdlineparts will register partitions more than once).
1174 */
1175 WARN_ONCE(mtd->_reboot && mtd->reboot_notifier.notifier_call,
1176 "MTD already registered\n");
1177 if (mtd->_reboot && !mtd->reboot_notifier.notifier_call) {
1178 mtd->reboot_notifier.notifier_call = mtd_reboot_notifier;
1179 register_reboot_notifier(&mtd->reboot_notifier);
1180 }
1181
1182 out:
1183 if (ret) {
1184 nvmem_unregister(mtd->otp_user_nvmem);
1185 nvmem_unregister(mtd->otp_factory_nvmem);
1186 }
1187
1188 if (ret && device_is_registered(&mtd->dev)) {
1189 err = del_mtd_device(mtd);
1190 if (err)
1191 pr_err("Error when deleting MTD device (%d)\n", err);
1192 }
1193
1194 return ret;
1195 }
1196 EXPORT_SYMBOL_GPL(mtd_device_parse_register);
1197
1198 /**
1199 * mtd_device_unregister - unregister an existing MTD device.
1200 *
1201 * @master: the MTD device to unregister. This will unregister both the master
1202 * and any partitions if registered.
1203 */
mtd_device_unregister(struct mtd_info * master)1204 int mtd_device_unregister(struct mtd_info *master)
1205 {
1206 int err;
1207
1208 if (master->_reboot) {
1209 unregister_reboot_notifier(&master->reboot_notifier);
1210 memset(&master->reboot_notifier, 0, sizeof(master->reboot_notifier));
1211 }
1212
1213 nvmem_unregister(master->otp_user_nvmem);
1214 nvmem_unregister(master->otp_factory_nvmem);
1215
1216 if (IS_REACHABLE(CONFIG_MTD_VIRT_CONCAT)) {
1217 err = mtd_virt_concat_destroy(master);
1218 if (err)
1219 return err;
1220 }
1221 err = del_mtd_partitions(master);
1222 if (err)
1223 return err;
1224
1225 if (!device_is_registered(&master->dev))
1226 return 0;
1227
1228 return del_mtd_device(master);
1229 }
1230 EXPORT_SYMBOL_GPL(mtd_device_unregister);
1231
1232 /**
1233 * register_mtd_user - register a 'user' of MTD devices.
1234 * @new: pointer to notifier info structure
1235 *
1236 * Registers a pair of callbacks function to be called upon addition
1237 * or removal of MTD devices. Causes the 'add' callback to be immediately
1238 * invoked for each MTD device currently present in the system.
1239 */
register_mtd_user(struct mtd_notifier * new)1240 void register_mtd_user (struct mtd_notifier *new)
1241 {
1242 struct mtd_info *mtd;
1243
1244 mutex_lock(&mtd_table_mutex);
1245
1246 list_add(&new->list, &mtd_notifiers);
1247
1248 __module_get(THIS_MODULE);
1249
1250 mtd_for_each_device(mtd)
1251 new->add(mtd);
1252
1253 mutex_unlock(&mtd_table_mutex);
1254 }
1255 EXPORT_SYMBOL_GPL(register_mtd_user);
1256
1257 /**
1258 * unregister_mtd_user - unregister a 'user' of MTD devices.
1259 * @old: pointer to notifier info structure
1260 *
1261 * Removes a callback function pair from the list of 'users' to be
1262 * notified upon addition or removal of MTD devices. Causes the
1263 * 'remove' callback to be immediately invoked for each MTD device
1264 * currently present in the system.
1265 */
unregister_mtd_user(struct mtd_notifier * old)1266 int unregister_mtd_user (struct mtd_notifier *old)
1267 {
1268 struct mtd_info *mtd;
1269
1270 mutex_lock(&mtd_table_mutex);
1271
1272 module_put(THIS_MODULE);
1273
1274 mtd_for_each_device(mtd)
1275 old->remove(mtd);
1276
1277 list_del(&old->list);
1278 mutex_unlock(&mtd_table_mutex);
1279 return 0;
1280 }
1281 EXPORT_SYMBOL_GPL(unregister_mtd_user);
1282
1283 /**
1284 * get_mtd_device - obtain a validated handle for an MTD device
1285 * @mtd: last known address of the required MTD device
1286 * @num: internal device number of the required MTD device
1287 *
1288 * Given a number and NULL address, return the num'th entry in the device
1289 * table, if any. Given an address and num == -1, search the device table
1290 * for a device with that address and return if it's still present. Given
1291 * both, return the num'th driver only if its address matches. Return
1292 * error code if not.
1293 */
get_mtd_device(struct mtd_info * mtd,int num)1294 struct mtd_info *get_mtd_device(struct mtd_info *mtd, int num)
1295 {
1296 struct mtd_info *ret = NULL, *other;
1297 int err = -ENODEV;
1298
1299 mutex_lock(&mtd_table_mutex);
1300
1301 if (num == -1) {
1302 mtd_for_each_device(other) {
1303 if (other == mtd) {
1304 ret = mtd;
1305 break;
1306 }
1307 }
1308 } else if (num >= 0) {
1309 ret = idr_find(&mtd_idr, num);
1310 if (mtd && mtd != ret)
1311 ret = NULL;
1312 }
1313
1314 if (!ret) {
1315 ret = ERR_PTR(err);
1316 goto out;
1317 }
1318
1319 err = __get_mtd_device(ret);
1320 if (err)
1321 ret = ERR_PTR(err);
1322 out:
1323 mutex_unlock(&mtd_table_mutex);
1324 return ret;
1325 }
1326 EXPORT_SYMBOL_GPL(get_mtd_device);
1327
1328
__get_mtd_device(struct mtd_info * mtd)1329 int __get_mtd_device(struct mtd_info *mtd)
1330 {
1331 struct mtd_info *master = mtd_get_master(mtd);
1332 int err;
1333
1334 if (master->_get_device) {
1335 err = master->_get_device(mtd);
1336 if (err)
1337 return err;
1338 }
1339
1340 if (!try_module_get(master->owner)) {
1341 if (master->_put_device)
1342 master->_put_device(master);
1343 return -ENODEV;
1344 }
1345
1346 while (mtd) {
1347 if (mtd != master)
1348 kref_get(&mtd->refcnt);
1349 mtd = mtd->parent;
1350 }
1351
1352 if (IS_ENABLED(CONFIG_MTD_PARTITIONED_MASTER))
1353 kref_get(&master->refcnt);
1354
1355 return 0;
1356 }
1357 EXPORT_SYMBOL_GPL(__get_mtd_device);
1358
1359 /**
1360 * of_get_mtd_device_by_node - obtain an MTD device associated with a given node
1361 *
1362 * @np: device tree node
1363 */
of_get_mtd_device_by_node(struct device_node * np)1364 struct mtd_info *of_get_mtd_device_by_node(struct device_node *np)
1365 {
1366 struct mtd_info *mtd = NULL;
1367 struct mtd_info *tmp;
1368 int err;
1369
1370 mutex_lock(&mtd_table_mutex);
1371
1372 err = -EPROBE_DEFER;
1373 mtd_for_each_device(tmp) {
1374 if (mtd_get_of_node(tmp) == np) {
1375 mtd = tmp;
1376 err = __get_mtd_device(mtd);
1377 break;
1378 }
1379 }
1380
1381 mutex_unlock(&mtd_table_mutex);
1382
1383 return err ? ERR_PTR(err) : mtd;
1384 }
1385 EXPORT_SYMBOL_GPL(of_get_mtd_device_by_node);
1386
1387 /**
1388 * get_mtd_device_nm - obtain a validated handle for an MTD device by
1389 * device name
1390 * @name: MTD device name to open
1391 *
1392 * This function returns MTD device description structure in case of
1393 * success and an error code in case of failure.
1394 */
get_mtd_device_nm(const char * name)1395 struct mtd_info *get_mtd_device_nm(const char *name)
1396 {
1397 int err = -ENODEV;
1398 struct mtd_info *mtd = NULL, *other;
1399
1400 mutex_lock(&mtd_table_mutex);
1401
1402 mtd_for_each_device(other) {
1403 if (!strcmp(name, other->name)) {
1404 mtd = other;
1405 break;
1406 }
1407 }
1408
1409 if (!mtd)
1410 goto out_unlock;
1411
1412 err = __get_mtd_device(mtd);
1413 if (err)
1414 goto out_unlock;
1415
1416 mutex_unlock(&mtd_table_mutex);
1417 return mtd;
1418
1419 out_unlock:
1420 mutex_unlock(&mtd_table_mutex);
1421 return ERR_PTR(err);
1422 }
1423 EXPORT_SYMBOL_GPL(get_mtd_device_nm);
1424
put_mtd_device(struct mtd_info * mtd)1425 void put_mtd_device(struct mtd_info *mtd)
1426 {
1427 mutex_lock(&mtd_table_mutex);
1428 __put_mtd_device(mtd);
1429 mutex_unlock(&mtd_table_mutex);
1430
1431 }
1432 EXPORT_SYMBOL_GPL(put_mtd_device);
1433
__put_mtd_device(struct mtd_info * mtd)1434 void __put_mtd_device(struct mtd_info *mtd)
1435 {
1436 struct mtd_info *master = mtd_get_master(mtd);
1437
1438 while (mtd) {
1439 /* kref_put() can relese mtd, so keep a reference mtd->parent */
1440 struct mtd_info *parent = mtd->parent;
1441
1442 if (mtd != master)
1443 kref_put(&mtd->refcnt, mtd_device_release);
1444 mtd = parent;
1445 }
1446
1447 if (IS_ENABLED(CONFIG_MTD_PARTITIONED_MASTER))
1448 kref_put(&master->refcnt, mtd_device_release);
1449
1450 module_put(master->owner);
1451
1452 /* must be the last as master can be freed in the _put_device */
1453 if (master->_put_device)
1454 master->_put_device(master);
1455 }
1456 EXPORT_SYMBOL_GPL(__put_mtd_device);
1457
1458 /*
1459 * Erase is an synchronous operation. Device drivers are epected to return a
1460 * negative error code if the operation failed and update instr->fail_addr
1461 * to point the portion that was not properly erased.
1462 */
mtd_erase(struct mtd_info * mtd,struct erase_info * instr)1463 int mtd_erase(struct mtd_info *mtd, struct erase_info *instr)
1464 {
1465 struct mtd_info *master = mtd_get_master(mtd);
1466 u64 mst_ofs = mtd_get_master_ofs(mtd, 0);
1467 struct erase_info adjinstr;
1468 int ret;
1469
1470 instr->fail_addr = MTD_FAIL_ADDR_UNKNOWN;
1471 adjinstr = *instr;
1472
1473 if (!mtd->erasesize || !master->_erase)
1474 return -ENOTSUPP;
1475
1476 if (instr->addr >= mtd->size || instr->len > mtd->size - instr->addr)
1477 return -EINVAL;
1478 if (!(mtd->flags & MTD_WRITEABLE))
1479 return -EROFS;
1480
1481 if (!instr->len)
1482 return 0;
1483
1484 ledtrig_mtd_activity();
1485
1486 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
1487 adjinstr.addr = (loff_t)mtd_div_by_eb(instr->addr, mtd) *
1488 master->erasesize;
1489 adjinstr.len = ((u64)mtd_div_by_eb(instr->addr + instr->len, mtd) *
1490 master->erasesize) -
1491 adjinstr.addr;
1492 }
1493
1494 adjinstr.addr += mst_ofs;
1495
1496 ret = master->_erase(master, &adjinstr);
1497
1498 if (adjinstr.fail_addr != MTD_FAIL_ADDR_UNKNOWN) {
1499 instr->fail_addr = adjinstr.fail_addr - mst_ofs;
1500 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
1501 instr->fail_addr = mtd_div_by_eb(instr->fail_addr,
1502 master);
1503 instr->fail_addr *= mtd->erasesize;
1504 }
1505 }
1506
1507 return ret;
1508 }
1509 EXPORT_SYMBOL_GPL(mtd_erase);
1510 ALLOW_ERROR_INJECTION(mtd_erase, ERRNO);
1511
1512 /*
1513 * This stuff for eXecute-In-Place. phys is optional and may be set to NULL.
1514 */
mtd_point(struct mtd_info * mtd,loff_t from,size_t len,size_t * retlen,void ** virt,resource_size_t * phys)1515 int mtd_point(struct mtd_info *mtd, loff_t from, size_t len, size_t *retlen,
1516 void **virt, resource_size_t *phys)
1517 {
1518 struct mtd_info *master = mtd_get_master(mtd);
1519
1520 *retlen = 0;
1521 *virt = NULL;
1522 if (phys)
1523 *phys = 0;
1524 if (!master->_point)
1525 return -EOPNOTSUPP;
1526 if (from < 0 || from >= mtd->size || len > mtd->size - from)
1527 return -EINVAL;
1528 if (!len)
1529 return 0;
1530
1531 from = mtd_get_master_ofs(mtd, from);
1532 return master->_point(master, from, len, retlen, virt, phys);
1533 }
1534 EXPORT_SYMBOL_GPL(mtd_point);
1535
1536 /* We probably shouldn't allow XIP if the unpoint isn't a NULL */
mtd_unpoint(struct mtd_info * mtd,loff_t from,size_t len)1537 int mtd_unpoint(struct mtd_info *mtd, loff_t from, size_t len)
1538 {
1539 struct mtd_info *master = mtd_get_master(mtd);
1540
1541 if (!master->_unpoint)
1542 return -EOPNOTSUPP;
1543 if (from < 0 || from >= mtd->size || len > mtd->size - from)
1544 return -EINVAL;
1545 if (!len)
1546 return 0;
1547 return master->_unpoint(master, mtd_get_master_ofs(mtd, from), len);
1548 }
1549 EXPORT_SYMBOL_GPL(mtd_unpoint);
1550
1551 /*
1552 * Allow NOMMU mmap() to directly map the device (if not NULL)
1553 * - return the address to which the offset maps
1554 * - return -ENOSYS to indicate refusal to do the mapping
1555 */
mtd_get_unmapped_area(struct mtd_info * mtd,unsigned long len,unsigned long offset,unsigned long flags)1556 unsigned long mtd_get_unmapped_area(struct mtd_info *mtd, unsigned long len,
1557 unsigned long offset, unsigned long flags)
1558 {
1559 size_t retlen;
1560 void *virt;
1561 int ret;
1562
1563 ret = mtd_point(mtd, offset, len, &retlen, &virt, NULL);
1564 if (ret)
1565 return ret;
1566 if (retlen != len) {
1567 mtd_unpoint(mtd, offset, retlen);
1568 return -ENOSYS;
1569 }
1570 return (unsigned long)virt;
1571 }
1572 EXPORT_SYMBOL_GPL(mtd_get_unmapped_area);
1573
mtd_update_ecc_stats(struct mtd_info * mtd,struct mtd_info * master,const struct mtd_ecc_stats * old_stats)1574 static void mtd_update_ecc_stats(struct mtd_info *mtd, struct mtd_info *master,
1575 const struct mtd_ecc_stats *old_stats)
1576 {
1577 struct mtd_ecc_stats diff;
1578
1579 if (master == mtd)
1580 return;
1581
1582 diff = master->ecc_stats;
1583 diff.failed -= old_stats->failed;
1584 diff.corrected -= old_stats->corrected;
1585
1586 while (mtd->parent) {
1587 mtd->ecc_stats.failed += diff.failed;
1588 mtd->ecc_stats.corrected += diff.corrected;
1589 mtd = mtd->parent;
1590 }
1591 }
1592
mtd_read(struct mtd_info * mtd,loff_t from,size_t len,size_t * retlen,u_char * buf)1593 int mtd_read(struct mtd_info *mtd, loff_t from, size_t len, size_t *retlen,
1594 u_char *buf)
1595 {
1596 struct mtd_oob_ops ops = {
1597 .len = len,
1598 .datbuf = buf,
1599 };
1600 int ret;
1601
1602 ret = mtd_read_oob(mtd, from, &ops);
1603 *retlen = ops.retlen;
1604
1605 WARN_ON_ONCE(*retlen != len && mtd_is_bitflip_or_eccerr(ret));
1606
1607 return ret;
1608 }
1609 EXPORT_SYMBOL_GPL(mtd_read);
1610 ALLOW_ERROR_INJECTION(mtd_read, ERRNO);
1611
mtd_write(struct mtd_info * mtd,loff_t to,size_t len,size_t * retlen,const u_char * buf)1612 int mtd_write(struct mtd_info *mtd, loff_t to, size_t len, size_t *retlen,
1613 const u_char *buf)
1614 {
1615 struct mtd_oob_ops ops = {
1616 .len = len,
1617 .datbuf = (u8 *)buf,
1618 };
1619 int ret;
1620
1621 ret = mtd_write_oob(mtd, to, &ops);
1622 *retlen = ops.retlen;
1623
1624 return ret;
1625 }
1626 EXPORT_SYMBOL_GPL(mtd_write);
1627 ALLOW_ERROR_INJECTION(mtd_write, ERRNO);
1628
1629 /*
1630 * In blackbox flight recorder like scenarios we want to make successful writes
1631 * in interrupt context. panic_write() is only intended to be called when its
1632 * known the kernel is about to panic and we need the write to succeed. Since
1633 * the kernel is not going to be running for much longer, this function can
1634 * break locks and delay to ensure the write succeeds (but not sleep).
1635 */
mtd_panic_write(struct mtd_info * mtd,loff_t to,size_t len,size_t * retlen,const u_char * buf)1636 int mtd_panic_write(struct mtd_info *mtd, loff_t to, size_t len, size_t *retlen,
1637 const u_char *buf)
1638 {
1639 struct mtd_info *master = mtd_get_master(mtd);
1640
1641 *retlen = 0;
1642 if (!master->_panic_write)
1643 return -EOPNOTSUPP;
1644 if (to < 0 || to >= mtd->size || len > mtd->size - to)
1645 return -EINVAL;
1646 if (!(mtd->flags & MTD_WRITEABLE))
1647 return -EROFS;
1648 if (!len)
1649 return 0;
1650 if (!master->oops_panic_write)
1651 master->oops_panic_write = true;
1652
1653 return master->_panic_write(master, mtd_get_master_ofs(mtd, to), len,
1654 retlen, buf);
1655 }
1656 EXPORT_SYMBOL_GPL(mtd_panic_write);
1657
mtd_check_oob_ops(struct mtd_info * mtd,loff_t offs,struct mtd_oob_ops * ops)1658 static int mtd_check_oob_ops(struct mtd_info *mtd, loff_t offs,
1659 struct mtd_oob_ops *ops)
1660 {
1661 /*
1662 * Some users are setting ->datbuf or ->oobbuf to NULL, but are leaving
1663 * ->len or ->ooblen uninitialized. Force ->len and ->ooblen to 0 in
1664 * this case.
1665 */
1666 if (!ops->datbuf)
1667 ops->len = 0;
1668
1669 if (!ops->oobbuf)
1670 ops->ooblen = 0;
1671
1672 if (offs < 0 || offs + ops->len > mtd->size)
1673 return -EINVAL;
1674
1675 if (ops->ooblen) {
1676 size_t maxooblen;
1677
1678 if (ops->ooboffs >= mtd_oobavail(mtd, ops))
1679 return -EINVAL;
1680
1681 maxooblen = ((size_t)(mtd_div_by_ws(mtd->size, mtd) -
1682 mtd_div_by_ws(offs, mtd)) *
1683 mtd_oobavail(mtd, ops)) - ops->ooboffs;
1684 if (ops->ooblen > maxooblen)
1685 return -EINVAL;
1686 }
1687
1688 return 0;
1689 }
1690
mtd_read_oob_std(struct mtd_info * mtd,loff_t from,struct mtd_oob_ops * ops)1691 static int mtd_read_oob_std(struct mtd_info *mtd, loff_t from,
1692 struct mtd_oob_ops *ops)
1693 {
1694 struct mtd_info *master = mtd_get_master(mtd);
1695 int ret;
1696
1697 from = mtd_get_master_ofs(mtd, from);
1698 if (master->_read_oob)
1699 ret = master->_read_oob(master, from, ops);
1700 else
1701 ret = master->_read(master, from, ops->len, &ops->retlen,
1702 ops->datbuf);
1703
1704 return ret;
1705 }
1706
mtd_write_oob_std(struct mtd_info * mtd,loff_t to,struct mtd_oob_ops * ops)1707 static int mtd_write_oob_std(struct mtd_info *mtd, loff_t to,
1708 struct mtd_oob_ops *ops)
1709 {
1710 struct mtd_info *master = mtd_get_master(mtd);
1711 int ret;
1712
1713 to = mtd_get_master_ofs(mtd, to);
1714 if (master->_write_oob)
1715 ret = master->_write_oob(master, to, ops);
1716 else
1717 ret = master->_write(master, to, ops->len, &ops->retlen,
1718 ops->datbuf);
1719
1720 return ret;
1721 }
1722
mtd_io_emulated_slc(struct mtd_info * mtd,loff_t start,bool read,struct mtd_oob_ops * ops)1723 static int mtd_io_emulated_slc(struct mtd_info *mtd, loff_t start, bool read,
1724 struct mtd_oob_ops *ops)
1725 {
1726 struct mtd_info *master = mtd_get_master(mtd);
1727 int ngroups = mtd_pairing_groups(master);
1728 int npairs = mtd_wunit_per_eb(master) / ngroups;
1729 struct mtd_oob_ops adjops = *ops;
1730 unsigned int wunit, oobavail;
1731 struct mtd_pairing_info info;
1732 int max_bitflips = 0;
1733 u32 ebofs, pageofs;
1734 loff_t base, pos;
1735
1736 ebofs = mtd_mod_by_eb(start, mtd);
1737 base = (loff_t)mtd_div_by_eb(start, mtd) * master->erasesize;
1738 info.group = 0;
1739 info.pair = mtd_div_by_ws(ebofs, mtd);
1740 pageofs = mtd_mod_by_ws(ebofs, mtd);
1741 oobavail = mtd_oobavail(mtd, ops);
1742
1743 while (ops->retlen < ops->len || ops->oobretlen < ops->ooblen) {
1744 int ret;
1745
1746 if (info.pair >= npairs) {
1747 info.pair = 0;
1748 base += master->erasesize;
1749 }
1750
1751 wunit = mtd_pairing_info_to_wunit(master, &info);
1752 pos = mtd_wunit_to_offset(mtd, base, wunit);
1753
1754 adjops.len = ops->len - ops->retlen;
1755 if (adjops.len > mtd->writesize - pageofs)
1756 adjops.len = mtd->writesize - pageofs;
1757
1758 adjops.ooblen = ops->ooblen - ops->oobretlen;
1759 if (adjops.ooblen > oobavail - adjops.ooboffs)
1760 adjops.ooblen = oobavail - adjops.ooboffs;
1761
1762 if (read) {
1763 ret = mtd_read_oob_std(mtd, pos + pageofs, &adjops);
1764 if (ret > 0)
1765 max_bitflips = max(max_bitflips, ret);
1766 } else {
1767 ret = mtd_write_oob_std(mtd, pos + pageofs, &adjops);
1768 }
1769
1770 if (ret < 0)
1771 return ret;
1772
1773 max_bitflips = max(max_bitflips, ret);
1774 ops->retlen += adjops.retlen;
1775 ops->oobretlen += adjops.oobretlen;
1776 adjops.datbuf += adjops.retlen;
1777 adjops.oobbuf += adjops.oobretlen;
1778 adjops.ooboffs = 0;
1779 pageofs = 0;
1780 info.pair++;
1781 }
1782
1783 return max_bitflips;
1784 }
1785
mtd_read_oob(struct mtd_info * mtd,loff_t from,struct mtd_oob_ops * ops)1786 int mtd_read_oob(struct mtd_info *mtd, loff_t from, struct mtd_oob_ops *ops)
1787 {
1788 struct mtd_info *master = mtd_get_master(mtd);
1789 struct mtd_ecc_stats old_stats = master->ecc_stats;
1790 int ret_code;
1791
1792 ops->retlen = ops->oobretlen = 0;
1793
1794 ret_code = mtd_check_oob_ops(mtd, from, ops);
1795 if (ret_code)
1796 return ret_code;
1797
1798 ledtrig_mtd_activity();
1799
1800 /* Check the validity of a potential fallback on mtd->_read */
1801 if (!master->_read_oob && (!master->_read || ops->oobbuf))
1802 return -EOPNOTSUPP;
1803
1804 if (ops->stats)
1805 memset(ops->stats, 0, sizeof(*ops->stats));
1806
1807 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION)
1808 ret_code = mtd_io_emulated_slc(mtd, from, true, ops);
1809 else
1810 ret_code = mtd_read_oob_std(mtd, from, ops);
1811
1812 mtd_update_ecc_stats(mtd, master, &old_stats);
1813
1814 /*
1815 * In cases where ops->datbuf != NULL, mtd->_read_oob() has semantics
1816 * similar to mtd->_read(), returning a non-negative integer
1817 * representing max bitflips. In other cases, mtd->_read_oob() may
1818 * return -EUCLEAN. In all cases, perform similar logic to mtd_read().
1819 */
1820 if (unlikely(ret_code < 0))
1821 return ret_code;
1822 if (mtd->ecc_strength == 0)
1823 return 0; /* device lacks ecc */
1824 if (ops->stats)
1825 ops->stats->max_bitflips = ret_code;
1826 return ret_code >= mtd->bitflip_threshold ? -EUCLEAN : 0;
1827 }
1828 EXPORT_SYMBOL_GPL(mtd_read_oob);
1829
mtd_write_oob(struct mtd_info * mtd,loff_t to,struct mtd_oob_ops * ops)1830 int mtd_write_oob(struct mtd_info *mtd, loff_t to,
1831 struct mtd_oob_ops *ops)
1832 {
1833 struct mtd_info *master = mtd_get_master(mtd);
1834 int ret;
1835
1836 ops->retlen = ops->oobretlen = 0;
1837
1838 if (!(mtd->flags & MTD_WRITEABLE))
1839 return -EROFS;
1840
1841 ret = mtd_check_oob_ops(mtd, to, ops);
1842 if (ret)
1843 return ret;
1844
1845 ledtrig_mtd_activity();
1846
1847 /* Check the validity of a potential fallback on mtd->_write */
1848 if (!master->_write_oob && (!master->_write || ops->oobbuf))
1849 return -EOPNOTSUPP;
1850
1851 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION)
1852 return mtd_io_emulated_slc(mtd, to, false, ops);
1853
1854 return mtd_write_oob_std(mtd, to, ops);
1855 }
1856 EXPORT_SYMBOL_GPL(mtd_write_oob);
1857
1858 /**
1859 * mtd_ooblayout_ecc - Get the OOB region definition of a specific ECC section
1860 * @mtd: MTD device structure
1861 * @section: ECC section. Depending on the layout you may have all the ECC
1862 * bytes stored in a single contiguous section, or one section
1863 * per ECC chunk (and sometime several sections for a single ECC
1864 * ECC chunk)
1865 * @oobecc: OOB region struct filled with the appropriate ECC position
1866 * information
1867 *
1868 * This function returns ECC section information in the OOB area. If you want
1869 * to get all the ECC bytes information, then you should call
1870 * mtd_ooblayout_ecc(mtd, section++, oobecc) until it returns -ERANGE.
1871 *
1872 * Returns zero on success, a negative error code otherwise.
1873 */
mtd_ooblayout_ecc(struct mtd_info * mtd,int section,struct mtd_oob_region * oobecc)1874 int mtd_ooblayout_ecc(struct mtd_info *mtd, int section,
1875 struct mtd_oob_region *oobecc)
1876 {
1877 struct mtd_info *master = mtd_get_master(mtd);
1878
1879 memset(oobecc, 0, sizeof(*oobecc));
1880
1881 if (!master || section < 0)
1882 return -EINVAL;
1883
1884 if (!master->ooblayout || !master->ooblayout->ecc)
1885 return -ENOTSUPP;
1886
1887 return master->ooblayout->ecc(master, section, oobecc);
1888 }
1889 EXPORT_SYMBOL_GPL(mtd_ooblayout_ecc);
1890
1891 /**
1892 * mtd_ooblayout_free - Get the OOB region definition of a specific free
1893 * section
1894 * @mtd: MTD device structure
1895 * @section: Free section you are interested in. Depending on the layout
1896 * you may have all the free bytes stored in a single contiguous
1897 * section, or one section per ECC chunk plus an extra section
1898 * for the remaining bytes (or other funky layout).
1899 * @oobfree: OOB region struct filled with the appropriate free position
1900 * information
1901 *
1902 * This function returns free bytes position in the OOB area. If you want
1903 * to get all the free bytes information, then you should call
1904 * mtd_ooblayout_free(mtd, section++, oobfree) until it returns -ERANGE.
1905 *
1906 * Returns zero on success, a negative error code otherwise.
1907 */
mtd_ooblayout_free(struct mtd_info * mtd,int section,struct mtd_oob_region * oobfree)1908 int mtd_ooblayout_free(struct mtd_info *mtd, int section,
1909 struct mtd_oob_region *oobfree)
1910 {
1911 struct mtd_info *master = mtd_get_master(mtd);
1912
1913 memset(oobfree, 0, sizeof(*oobfree));
1914
1915 if (!master || section < 0)
1916 return -EINVAL;
1917
1918 if (!master->ooblayout || !master->ooblayout->free)
1919 return -ENOTSUPP;
1920
1921 return master->ooblayout->free(master, section, oobfree);
1922 }
1923 EXPORT_SYMBOL_GPL(mtd_ooblayout_free);
1924
1925 /**
1926 * mtd_ooblayout_find_region - Find the region attached to a specific byte
1927 * @mtd: mtd info structure
1928 * @byte: the byte we are searching for
1929 * @sectionp: pointer where the section id will be stored
1930 * @oobregion: used to retrieve the ECC position
1931 * @iter: iterator function. Should be either mtd_ooblayout_free or
1932 * mtd_ooblayout_ecc depending on the region type you're searching for
1933 *
1934 * This function returns the section id and oobregion information of a
1935 * specific byte. For example, say you want to know where the 4th ECC byte is
1936 * stored, you'll use:
1937 *
1938 * mtd_ooblayout_find_region(mtd, 3, §ion, &oobregion, mtd_ooblayout_ecc);
1939 *
1940 * Returns zero on success, a negative error code otherwise.
1941 */
mtd_ooblayout_find_region(struct mtd_info * mtd,int byte,int * sectionp,struct mtd_oob_region * oobregion,int (* iter)(struct mtd_info *,int section,struct mtd_oob_region * oobregion))1942 static int mtd_ooblayout_find_region(struct mtd_info *mtd, int byte,
1943 int *sectionp, struct mtd_oob_region *oobregion,
1944 int (*iter)(struct mtd_info *,
1945 int section,
1946 struct mtd_oob_region *oobregion))
1947 {
1948 int pos = 0, ret, section = 0;
1949
1950 memset(oobregion, 0, sizeof(*oobregion));
1951
1952 while (1) {
1953 ret = iter(mtd, section, oobregion);
1954 if (ret)
1955 return ret;
1956
1957 if (pos + oobregion->length > byte)
1958 break;
1959
1960 pos += oobregion->length;
1961 section++;
1962 }
1963
1964 /*
1965 * Adjust region info to make it start at the beginning at the
1966 * 'start' ECC byte.
1967 */
1968 oobregion->offset += byte - pos;
1969 oobregion->length -= byte - pos;
1970 *sectionp = section;
1971
1972 return 0;
1973 }
1974
1975 /**
1976 * mtd_ooblayout_find_eccregion - Find the ECC region attached to a specific
1977 * ECC byte
1978 * @mtd: mtd info structure
1979 * @eccbyte: the byte we are searching for
1980 * @section: pointer where the section id will be stored
1981 * @oobregion: OOB region information
1982 *
1983 * Works like mtd_ooblayout_find_region() except it searches for a specific ECC
1984 * byte.
1985 *
1986 * Returns zero on success, a negative error code otherwise.
1987 */
mtd_ooblayout_find_eccregion(struct mtd_info * mtd,int eccbyte,int * section,struct mtd_oob_region * oobregion)1988 int mtd_ooblayout_find_eccregion(struct mtd_info *mtd, int eccbyte,
1989 int *section,
1990 struct mtd_oob_region *oobregion)
1991 {
1992 return mtd_ooblayout_find_region(mtd, eccbyte, section, oobregion,
1993 mtd_ooblayout_ecc);
1994 }
1995 EXPORT_SYMBOL_GPL(mtd_ooblayout_find_eccregion);
1996
1997 /**
1998 * mtd_ooblayout_get_bytes - Extract OOB bytes from the oob buffer
1999 * @mtd: mtd info structure
2000 * @buf: destination buffer to store OOB bytes
2001 * @oobbuf: OOB buffer
2002 * @start: first byte to retrieve
2003 * @nbytes: number of bytes to retrieve
2004 * @iter: section iterator
2005 *
2006 * Extract bytes attached to a specific category (ECC or free)
2007 * from the OOB buffer and copy them into buf.
2008 *
2009 * Returns zero on success, a negative error code otherwise.
2010 */
mtd_ooblayout_get_bytes(struct mtd_info * mtd,u8 * buf,const u8 * oobbuf,int start,int nbytes,int (* iter)(struct mtd_info *,int section,struct mtd_oob_region * oobregion))2011 static int mtd_ooblayout_get_bytes(struct mtd_info *mtd, u8 *buf,
2012 const u8 *oobbuf, int start, int nbytes,
2013 int (*iter)(struct mtd_info *,
2014 int section,
2015 struct mtd_oob_region *oobregion))
2016 {
2017 struct mtd_oob_region oobregion;
2018 int section, ret;
2019
2020 ret = mtd_ooblayout_find_region(mtd, start, §ion,
2021 &oobregion, iter);
2022
2023 while (!ret) {
2024 int cnt;
2025
2026 cnt = min_t(int, nbytes, oobregion.length);
2027 memcpy(buf, oobbuf + oobregion.offset, cnt);
2028 buf += cnt;
2029 nbytes -= cnt;
2030
2031 if (!nbytes)
2032 break;
2033
2034 ret = iter(mtd, ++section, &oobregion);
2035 }
2036
2037 return ret;
2038 }
2039
2040 /**
2041 * mtd_ooblayout_set_bytes - put OOB bytes into the oob buffer
2042 * @mtd: mtd info structure
2043 * @buf: source buffer to get OOB bytes from
2044 * @oobbuf: OOB buffer
2045 * @start: first OOB byte to set
2046 * @nbytes: number of OOB bytes to set
2047 * @iter: section iterator
2048 *
2049 * Fill the OOB buffer with data provided in buf. The category (ECC or free)
2050 * is selected by passing the appropriate iterator.
2051 *
2052 * Returns zero on success, a negative error code otherwise.
2053 */
mtd_ooblayout_set_bytes(struct mtd_info * mtd,const u8 * buf,u8 * oobbuf,int start,int nbytes,int (* iter)(struct mtd_info *,int section,struct mtd_oob_region * oobregion))2054 static int mtd_ooblayout_set_bytes(struct mtd_info *mtd, const u8 *buf,
2055 u8 *oobbuf, int start, int nbytes,
2056 int (*iter)(struct mtd_info *,
2057 int section,
2058 struct mtd_oob_region *oobregion))
2059 {
2060 struct mtd_oob_region oobregion;
2061 int section, ret;
2062
2063 ret = mtd_ooblayout_find_region(mtd, start, §ion,
2064 &oobregion, iter);
2065
2066 while (!ret) {
2067 int cnt;
2068
2069 cnt = min_t(int, nbytes, oobregion.length);
2070 memcpy(oobbuf + oobregion.offset, buf, cnt);
2071 buf += cnt;
2072 nbytes -= cnt;
2073
2074 if (!nbytes)
2075 break;
2076
2077 ret = iter(mtd, ++section, &oobregion);
2078 }
2079
2080 return ret;
2081 }
2082
2083 /**
2084 * mtd_ooblayout_count_bytes - count the number of bytes in a OOB category
2085 * @mtd: mtd info structure
2086 * @iter: category iterator
2087 *
2088 * Count the number of bytes in a given category.
2089 *
2090 * Returns a positive value on success, a negative error code otherwise.
2091 */
mtd_ooblayout_count_bytes(struct mtd_info * mtd,int (* iter)(struct mtd_info *,int section,struct mtd_oob_region * oobregion))2092 static int mtd_ooblayout_count_bytes(struct mtd_info *mtd,
2093 int (*iter)(struct mtd_info *,
2094 int section,
2095 struct mtd_oob_region *oobregion))
2096 {
2097 struct mtd_oob_region oobregion;
2098 int section = 0, ret, nbytes = 0;
2099
2100 while (1) {
2101 ret = iter(mtd, section++, &oobregion);
2102 if (ret) {
2103 if (ret == -ERANGE)
2104 ret = nbytes;
2105 break;
2106 }
2107
2108 nbytes += oobregion.length;
2109 }
2110
2111 return ret;
2112 }
2113
2114 /**
2115 * mtd_ooblayout_get_eccbytes - extract ECC bytes from the oob buffer
2116 * @mtd: mtd info structure
2117 * @eccbuf: destination buffer to store ECC bytes
2118 * @oobbuf: OOB buffer
2119 * @start: first ECC byte to retrieve
2120 * @nbytes: number of ECC bytes to retrieve
2121 *
2122 * Works like mtd_ooblayout_get_bytes(), except it acts on ECC bytes.
2123 *
2124 * Returns zero on success, a negative error code otherwise.
2125 */
mtd_ooblayout_get_eccbytes(struct mtd_info * mtd,u8 * eccbuf,const u8 * oobbuf,int start,int nbytes)2126 int mtd_ooblayout_get_eccbytes(struct mtd_info *mtd, u8 *eccbuf,
2127 const u8 *oobbuf, int start, int nbytes)
2128 {
2129 return mtd_ooblayout_get_bytes(mtd, eccbuf, oobbuf, start, nbytes,
2130 mtd_ooblayout_ecc);
2131 }
2132 EXPORT_SYMBOL_GPL(mtd_ooblayout_get_eccbytes);
2133
2134 /**
2135 * mtd_ooblayout_set_eccbytes - set ECC bytes into the oob buffer
2136 * @mtd: mtd info structure
2137 * @eccbuf: source buffer to get ECC bytes from
2138 * @oobbuf: OOB buffer
2139 * @start: first ECC byte to set
2140 * @nbytes: number of ECC bytes to set
2141 *
2142 * Works like mtd_ooblayout_set_bytes(), except it acts on ECC bytes.
2143 *
2144 * Returns zero on success, a negative error code otherwise.
2145 */
mtd_ooblayout_set_eccbytes(struct mtd_info * mtd,const u8 * eccbuf,u8 * oobbuf,int start,int nbytes)2146 int mtd_ooblayout_set_eccbytes(struct mtd_info *mtd, const u8 *eccbuf,
2147 u8 *oobbuf, int start, int nbytes)
2148 {
2149 return mtd_ooblayout_set_bytes(mtd, eccbuf, oobbuf, start, nbytes,
2150 mtd_ooblayout_ecc);
2151 }
2152 EXPORT_SYMBOL_GPL(mtd_ooblayout_set_eccbytes);
2153
2154 /**
2155 * mtd_ooblayout_get_databytes - extract data bytes from the oob buffer
2156 * @mtd: mtd info structure
2157 * @databuf: destination buffer to store ECC bytes
2158 * @oobbuf: OOB buffer
2159 * @start: first ECC byte to retrieve
2160 * @nbytes: number of ECC bytes to retrieve
2161 *
2162 * Works like mtd_ooblayout_get_bytes(), except it acts on free bytes.
2163 *
2164 * Returns zero on success, a negative error code otherwise.
2165 */
mtd_ooblayout_get_databytes(struct mtd_info * mtd,u8 * databuf,const u8 * oobbuf,int start,int nbytes)2166 int mtd_ooblayout_get_databytes(struct mtd_info *mtd, u8 *databuf,
2167 const u8 *oobbuf, int start, int nbytes)
2168 {
2169 return mtd_ooblayout_get_bytes(mtd, databuf, oobbuf, start, nbytes,
2170 mtd_ooblayout_free);
2171 }
2172 EXPORT_SYMBOL_GPL(mtd_ooblayout_get_databytes);
2173
2174 /**
2175 * mtd_ooblayout_set_databytes - set data bytes into the oob buffer
2176 * @mtd: mtd info structure
2177 * @databuf: source buffer to get data bytes from
2178 * @oobbuf: OOB buffer
2179 * @start: first ECC byte to set
2180 * @nbytes: number of ECC bytes to set
2181 *
2182 * Works like mtd_ooblayout_set_bytes(), except it acts on free bytes.
2183 *
2184 * Returns zero on success, a negative error code otherwise.
2185 */
mtd_ooblayout_set_databytes(struct mtd_info * mtd,const u8 * databuf,u8 * oobbuf,int start,int nbytes)2186 int mtd_ooblayout_set_databytes(struct mtd_info *mtd, const u8 *databuf,
2187 u8 *oobbuf, int start, int nbytes)
2188 {
2189 return mtd_ooblayout_set_bytes(mtd, databuf, oobbuf, start, nbytes,
2190 mtd_ooblayout_free);
2191 }
2192 EXPORT_SYMBOL_GPL(mtd_ooblayout_set_databytes);
2193
2194 /**
2195 * mtd_ooblayout_count_freebytes - count the number of free bytes in OOB
2196 * @mtd: mtd info structure
2197 *
2198 * Works like mtd_ooblayout_count_bytes(), except it count free bytes.
2199 *
2200 * Returns zero on success, a negative error code otherwise.
2201 */
mtd_ooblayout_count_freebytes(struct mtd_info * mtd)2202 int mtd_ooblayout_count_freebytes(struct mtd_info *mtd)
2203 {
2204 return mtd_ooblayout_count_bytes(mtd, mtd_ooblayout_free);
2205 }
2206 EXPORT_SYMBOL_GPL(mtd_ooblayout_count_freebytes);
2207
2208 /**
2209 * mtd_ooblayout_count_eccbytes - count the number of ECC bytes in OOB
2210 * @mtd: mtd info structure
2211 *
2212 * Works like mtd_ooblayout_count_bytes(), except it count ECC bytes.
2213 *
2214 * Returns zero on success, a negative error code otherwise.
2215 */
mtd_ooblayout_count_eccbytes(struct mtd_info * mtd)2216 int mtd_ooblayout_count_eccbytes(struct mtd_info *mtd)
2217 {
2218 return mtd_ooblayout_count_bytes(mtd, mtd_ooblayout_ecc);
2219 }
2220 EXPORT_SYMBOL_GPL(mtd_ooblayout_count_eccbytes);
2221
2222 /*
2223 * Method to access the protection register area, present in some flash
2224 * devices. The user data is one time programmable but the factory data is read
2225 * only.
2226 */
mtd_get_fact_prot_info(struct mtd_info * mtd,size_t len,size_t * retlen,struct otp_info * buf)2227 int mtd_get_fact_prot_info(struct mtd_info *mtd, size_t len, size_t *retlen,
2228 struct otp_info *buf)
2229 {
2230 struct mtd_info *master = mtd_get_master(mtd);
2231
2232 if (!master->_get_fact_prot_info)
2233 return -EOPNOTSUPP;
2234 if (!len)
2235 return 0;
2236 return master->_get_fact_prot_info(master, len, retlen, buf);
2237 }
2238 EXPORT_SYMBOL_GPL(mtd_get_fact_prot_info);
2239
mtd_read_fact_prot_reg(struct mtd_info * mtd,loff_t from,size_t len,size_t * retlen,u_char * buf)2240 int mtd_read_fact_prot_reg(struct mtd_info *mtd, loff_t from, size_t len,
2241 size_t *retlen, u_char *buf)
2242 {
2243 struct mtd_info *master = mtd_get_master(mtd);
2244
2245 *retlen = 0;
2246 if (!master->_read_fact_prot_reg)
2247 return -EOPNOTSUPP;
2248 if (!len)
2249 return 0;
2250 return master->_read_fact_prot_reg(master, from, len, retlen, buf);
2251 }
2252 EXPORT_SYMBOL_GPL(mtd_read_fact_prot_reg);
2253
mtd_get_user_prot_info(struct mtd_info * mtd,size_t len,size_t * retlen,struct otp_info * buf)2254 int mtd_get_user_prot_info(struct mtd_info *mtd, size_t len, size_t *retlen,
2255 struct otp_info *buf)
2256 {
2257 struct mtd_info *master = mtd_get_master(mtd);
2258
2259 if (!master->_get_user_prot_info)
2260 return -EOPNOTSUPP;
2261 if (!len)
2262 return 0;
2263 return master->_get_user_prot_info(master, len, retlen, buf);
2264 }
2265 EXPORT_SYMBOL_GPL(mtd_get_user_prot_info);
2266
mtd_read_user_prot_reg(struct mtd_info * mtd,loff_t from,size_t len,size_t * retlen,u_char * buf)2267 int mtd_read_user_prot_reg(struct mtd_info *mtd, loff_t from, size_t len,
2268 size_t *retlen, u_char *buf)
2269 {
2270 struct mtd_info *master = mtd_get_master(mtd);
2271
2272 *retlen = 0;
2273 if (!master->_read_user_prot_reg)
2274 return -EOPNOTSUPP;
2275 if (!len)
2276 return 0;
2277 return master->_read_user_prot_reg(master, from, len, retlen, buf);
2278 }
2279 EXPORT_SYMBOL_GPL(mtd_read_user_prot_reg);
2280
mtd_write_user_prot_reg(struct mtd_info * mtd,loff_t to,size_t len,size_t * retlen,const u_char * buf)2281 int mtd_write_user_prot_reg(struct mtd_info *mtd, loff_t to, size_t len,
2282 size_t *retlen, const u_char *buf)
2283 {
2284 struct mtd_info *master = mtd_get_master(mtd);
2285 int ret;
2286
2287 *retlen = 0;
2288 if (!master->_write_user_prot_reg)
2289 return -EOPNOTSUPP;
2290 if (!len)
2291 return 0;
2292 ret = master->_write_user_prot_reg(master, to, len, retlen, buf);
2293 if (ret)
2294 return ret;
2295
2296 /*
2297 * If no data could be written at all, we are out of memory and
2298 * must return -ENOSPC.
2299 */
2300 return (*retlen) ? 0 : -ENOSPC;
2301 }
2302 EXPORT_SYMBOL_GPL(mtd_write_user_prot_reg);
2303
mtd_lock_user_prot_reg(struct mtd_info * mtd,loff_t from,size_t len)2304 int mtd_lock_user_prot_reg(struct mtd_info *mtd, loff_t from, size_t len)
2305 {
2306 struct mtd_info *master = mtd_get_master(mtd);
2307
2308 if (!master->_lock_user_prot_reg)
2309 return -EOPNOTSUPP;
2310 if (!len)
2311 return 0;
2312 return master->_lock_user_prot_reg(master, from, len);
2313 }
2314 EXPORT_SYMBOL_GPL(mtd_lock_user_prot_reg);
2315
mtd_erase_user_prot_reg(struct mtd_info * mtd,loff_t from,size_t len)2316 int mtd_erase_user_prot_reg(struct mtd_info *mtd, loff_t from, size_t len)
2317 {
2318 struct mtd_info *master = mtd_get_master(mtd);
2319
2320 if (!master->_erase_user_prot_reg)
2321 return -EOPNOTSUPP;
2322 if (!len)
2323 return 0;
2324 return master->_erase_user_prot_reg(master, from, len);
2325 }
2326 EXPORT_SYMBOL_GPL(mtd_erase_user_prot_reg);
2327
2328 /* Chip-supported device locking */
mtd_lock(struct mtd_info * mtd,loff_t ofs,uint64_t len)2329 int mtd_lock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
2330 {
2331 struct mtd_info *master = mtd_get_master(mtd);
2332
2333 if (!master->_lock)
2334 return -EOPNOTSUPP;
2335 if (ofs < 0 || ofs >= mtd->size || len > mtd->size - ofs)
2336 return -EINVAL;
2337 if (!len)
2338 return 0;
2339
2340 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
2341 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2342 len = (u64)mtd_div_by_eb(len, mtd) * master->erasesize;
2343 }
2344
2345 return master->_lock(master, mtd_get_master_ofs(mtd, ofs), len);
2346 }
2347 EXPORT_SYMBOL_GPL(mtd_lock);
2348
mtd_unlock(struct mtd_info * mtd,loff_t ofs,uint64_t len)2349 int mtd_unlock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
2350 {
2351 struct mtd_info *master = mtd_get_master(mtd);
2352
2353 if (!master->_unlock)
2354 return -EOPNOTSUPP;
2355 if (ofs < 0 || ofs >= mtd->size || len > mtd->size - ofs)
2356 return -EINVAL;
2357 if (!len)
2358 return 0;
2359
2360 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
2361 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2362 len = (u64)mtd_div_by_eb(len, mtd) * master->erasesize;
2363 }
2364
2365 return master->_unlock(master, mtd_get_master_ofs(mtd, ofs), len);
2366 }
2367 EXPORT_SYMBOL_GPL(mtd_unlock);
2368
mtd_is_locked(struct mtd_info * mtd,loff_t ofs,uint64_t len)2369 int mtd_is_locked(struct mtd_info *mtd, loff_t ofs, uint64_t len)
2370 {
2371 struct mtd_info *master = mtd_get_master(mtd);
2372
2373 if (!master->_is_locked)
2374 return -EOPNOTSUPP;
2375 if (ofs < 0 || ofs >= mtd->size || len > mtd->size - ofs)
2376 return -EINVAL;
2377 if (!len)
2378 return 0;
2379
2380 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION) {
2381 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2382 len = (u64)mtd_div_by_eb(len, mtd) * master->erasesize;
2383 }
2384
2385 return master->_is_locked(master, mtd_get_master_ofs(mtd, ofs), len);
2386 }
2387 EXPORT_SYMBOL_GPL(mtd_is_locked);
2388
mtd_block_isreserved(struct mtd_info * mtd,loff_t ofs)2389 int mtd_block_isreserved(struct mtd_info *mtd, loff_t ofs)
2390 {
2391 struct mtd_info *master = mtd_get_master(mtd);
2392
2393 if (ofs < 0 || ofs >= mtd->size)
2394 return -EINVAL;
2395 if (!master->_block_isreserved)
2396 return 0;
2397
2398 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION)
2399 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2400
2401 return master->_block_isreserved(master, mtd_get_master_ofs(mtd, ofs));
2402 }
2403 EXPORT_SYMBOL_GPL(mtd_block_isreserved);
2404
mtd_block_isbad(struct mtd_info * mtd,loff_t ofs)2405 int mtd_block_isbad(struct mtd_info *mtd, loff_t ofs)
2406 {
2407 struct mtd_info *master = mtd_get_master(mtd);
2408
2409 if (ofs < 0 || ofs >= mtd->size)
2410 return -EINVAL;
2411 if (!master->_block_isbad)
2412 return 0;
2413
2414 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION)
2415 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2416
2417 return master->_block_isbad(master, mtd_get_master_ofs(mtd, ofs));
2418 }
2419 EXPORT_SYMBOL_GPL(mtd_block_isbad);
2420
mtd_block_markbad(struct mtd_info * mtd,loff_t ofs)2421 int mtd_block_markbad(struct mtd_info *mtd, loff_t ofs)
2422 {
2423 struct mtd_info *master = mtd_get_master(mtd);
2424 loff_t moffs;
2425 int ret;
2426
2427 if (!master->_block_markbad)
2428 return -EOPNOTSUPP;
2429 if (ofs < 0 || ofs >= mtd->size)
2430 return -EINVAL;
2431 if (!(mtd->flags & MTD_WRITEABLE))
2432 return -EROFS;
2433
2434 if (mtd->flags & MTD_SLC_ON_MLC_EMULATION)
2435 ofs = (loff_t)mtd_div_by_eb(ofs, mtd) * master->erasesize;
2436
2437 moffs = mtd_get_master_ofs(mtd, ofs);
2438
2439 if (master->_block_isbad) {
2440 ret = master->_block_isbad(master, moffs);
2441 if (ret > 0)
2442 return 0;
2443 }
2444
2445 ret = master->_block_markbad(master, moffs);
2446 if (ret)
2447 return ret;
2448
2449 while (mtd->parent) {
2450 mtd->ecc_stats.badblocks++;
2451 mtd = mtd->parent;
2452 }
2453
2454 return 0;
2455 }
2456 EXPORT_SYMBOL_GPL(mtd_block_markbad);
2457 ALLOW_ERROR_INJECTION(mtd_block_markbad, ERRNO);
2458
2459 /*
2460 * default_mtd_writev - the default writev method
2461 * @mtd: mtd device description object pointer
2462 * @vecs: the vectors to write
2463 * @count: count of vectors in @vecs
2464 * @to: the MTD device offset to write to
2465 * @retlen: on exit contains the count of bytes written to the MTD device.
2466 *
2467 * This function returns zero in case of success and a negative error code in
2468 * case of failure.
2469 */
default_mtd_writev(struct mtd_info * mtd,const struct kvec * vecs,unsigned long count,loff_t to,size_t * retlen)2470 static int default_mtd_writev(struct mtd_info *mtd, const struct kvec *vecs,
2471 unsigned long count, loff_t to, size_t *retlen)
2472 {
2473 unsigned long i;
2474 size_t totlen = 0, thislen;
2475 int ret = 0;
2476
2477 for (i = 0; i < count; i++) {
2478 if (!vecs[i].iov_len)
2479 continue;
2480 ret = mtd_write(mtd, to, vecs[i].iov_len, &thislen,
2481 vecs[i].iov_base);
2482 totlen += thislen;
2483 if (ret || thislen != vecs[i].iov_len)
2484 break;
2485 to += vecs[i].iov_len;
2486 }
2487 *retlen = totlen;
2488 return ret;
2489 }
2490
2491 /*
2492 * mtd_writev - the vector-based MTD write method
2493 * @mtd: mtd device description object pointer
2494 * @vecs: the vectors to write
2495 * @count: count of vectors in @vecs
2496 * @to: the MTD device offset to write to
2497 * @retlen: on exit contains the count of bytes written to the MTD device.
2498 *
2499 * This function returns zero in case of success and a negative error code in
2500 * case of failure.
2501 */
mtd_writev(struct mtd_info * mtd,const struct kvec * vecs,unsigned long count,loff_t to,size_t * retlen)2502 int mtd_writev(struct mtd_info *mtd, const struct kvec *vecs,
2503 unsigned long count, loff_t to, size_t *retlen)
2504 {
2505 struct mtd_info *master = mtd_get_master(mtd);
2506
2507 *retlen = 0;
2508 if (!(mtd->flags & MTD_WRITEABLE))
2509 return -EROFS;
2510
2511 if (!master->_writev)
2512 return default_mtd_writev(mtd, vecs, count, to, retlen);
2513
2514 return master->_writev(master, vecs, count,
2515 mtd_get_master_ofs(mtd, to), retlen);
2516 }
2517 EXPORT_SYMBOL_GPL(mtd_writev);
2518
2519 /**
2520 * mtd_kmalloc_up_to - allocate a contiguous buffer up to the specified size
2521 * @mtd: mtd device description object pointer
2522 * @size: a pointer to the ideal or maximum size of the allocation, points
2523 * to the actual allocation size on success.
2524 *
2525 * This routine attempts to allocate a contiguous kernel buffer up to
2526 * the specified size, backing off the size of the request exponentially
2527 * until the request succeeds or until the allocation size falls below
2528 * the system page size. This attempts to make sure it does not adversely
2529 * impact system performance, so when allocating more than one page, we
2530 * ask the memory allocator to avoid re-trying, swapping, writing back
2531 * or performing I/O.
2532 *
2533 * Note, this function also makes sure that the allocated buffer is aligned to
2534 * the MTD device's min. I/O unit, i.e. the "mtd->writesize" value.
2535 *
2536 * This is called, for example by mtd_{read,write} and jffs2_scan_medium,
2537 * to handle smaller (i.e. degraded) buffer allocations under low- or
2538 * fragmented-memory situations where such reduced allocations, from a
2539 * requested ideal, are allowed.
2540 *
2541 * Returns a pointer to the allocated buffer on success; otherwise, NULL.
2542 */
mtd_kmalloc_up_to(const struct mtd_info * mtd,size_t * size)2543 void *mtd_kmalloc_up_to(const struct mtd_info *mtd, size_t *size)
2544 {
2545 gfp_t flags = __GFP_NOWARN | __GFP_DIRECT_RECLAIM | __GFP_NORETRY;
2546 size_t min_alloc = max_t(size_t, mtd->writesize, PAGE_SIZE);
2547 void *kbuf;
2548
2549 *size = min_t(size_t, *size, KMALLOC_MAX_SIZE);
2550
2551 while (*size > min_alloc) {
2552 kbuf = kmalloc(*size, flags);
2553 if (kbuf)
2554 return kbuf;
2555
2556 *size >>= 1;
2557 *size = ALIGN(*size, mtd->writesize);
2558 }
2559
2560 /*
2561 * For the last resort allocation allow 'kmalloc()' to do all sorts of
2562 * things (write-back, dropping caches, etc) by using GFP_KERNEL.
2563 */
2564 return kmalloc(*size, GFP_KERNEL);
2565 }
2566 EXPORT_SYMBOL_GPL(mtd_kmalloc_up_to);
2567
2568 #ifdef CONFIG_PROC_FS
2569
2570 /*====================================================================*/
2571 /* Support for /proc/mtd */
2572
mtd_proc_show(struct seq_file * m,void * v)2573 static int mtd_proc_show(struct seq_file *m, void *v)
2574 {
2575 struct mtd_info *mtd;
2576
2577 seq_puts(m, "dev: size erasesize name\n");
2578 mutex_lock(&mtd_table_mutex);
2579 mtd_for_each_device(mtd) {
2580 seq_printf(m, "mtd%d: %8.8llx %8.8x \"%s\"\n",
2581 mtd->index, (unsigned long long)mtd->size,
2582 mtd->erasesize, mtd->name);
2583 }
2584 mutex_unlock(&mtd_table_mutex);
2585 return 0;
2586 }
2587 #endif /* CONFIG_PROC_FS */
2588
2589 /*====================================================================*/
2590 /* Init code */
2591
mtd_bdi_init(const char * name)2592 static struct backing_dev_info * __init mtd_bdi_init(const char *name)
2593 {
2594 struct backing_dev_info *bdi;
2595 int ret;
2596
2597 bdi = bdi_alloc(NUMA_NO_NODE);
2598 if (!bdi)
2599 return ERR_PTR(-ENOMEM);
2600 bdi->ra_pages = 0;
2601 bdi->io_pages = 0;
2602
2603 /*
2604 * We put '-0' suffix to the name to get the same name format as we
2605 * used to get. Since this is called only once, we get a unique name.
2606 */
2607 ret = bdi_register(bdi, "%.28s-0", name);
2608 if (ret)
2609 bdi_put(bdi);
2610
2611 return ret ? ERR_PTR(ret) : bdi;
2612 }
2613
2614 static struct proc_dir_entry *proc_mtd;
2615
init_mtd(void)2616 static int __init init_mtd(void)
2617 {
2618 int ret;
2619
2620 ret = class_register(&mtd_class);
2621 if (ret)
2622 goto err_reg;
2623
2624 mtd_bdi = mtd_bdi_init("mtd");
2625 if (IS_ERR(mtd_bdi)) {
2626 ret = PTR_ERR(mtd_bdi);
2627 goto err_bdi;
2628 }
2629
2630 proc_mtd = proc_create_single("mtd", 0, NULL, mtd_proc_show);
2631
2632 ret = init_mtdchar();
2633 if (ret)
2634 goto out_procfs;
2635
2636 dfs_dir_mtd = debugfs_create_dir("mtd", NULL);
2637 debugfs_create_bool("expert_analysis_mode", 0600, dfs_dir_mtd,
2638 &mtd_expert_analysis_mode);
2639
2640 return 0;
2641
2642 out_procfs:
2643 if (proc_mtd)
2644 remove_proc_entry("mtd", NULL);
2645 bdi_unregister(mtd_bdi);
2646 bdi_put(mtd_bdi);
2647 err_bdi:
2648 class_unregister(&mtd_class);
2649 err_reg:
2650 pr_err("Error registering mtd class or bdi: %d\n", ret);
2651 return ret;
2652 }
2653
cleanup_mtd(void)2654 static void __exit cleanup_mtd(void)
2655 {
2656 if (IS_REACHABLE(CONFIG_MTD_VIRT_CONCAT)) {
2657 mtd_virt_concat_destroy_joins();
2658 mtd_virt_concat_destroy_items();
2659 }
2660 debugfs_remove_recursive(dfs_dir_mtd);
2661 cleanup_mtdchar();
2662 if (proc_mtd)
2663 remove_proc_entry("mtd", NULL);
2664 class_unregister(&mtd_class);
2665 bdi_unregister(mtd_bdi);
2666 bdi_put(mtd_bdi);
2667 idr_destroy(&mtd_idr);
2668 }
2669
2670 module_init(init_mtd);
2671 module_exit(cleanup_mtd);
2672
2673 MODULE_LICENSE("GPL");
2674 MODULE_AUTHOR("David Woodhouse <dwmw2@infradead.org>");
2675 MODULE_DESCRIPTION("Core MTD registration and access routines");
2676