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Tom Rini83d290c2018-05-06 17:58:06 -04001// SPDX-License-Identifier: GPL-2.0+
Kyungmin Parke29c22f2008-11-19 16:20:36 +01002/*
3 * Core registration and callback routines for MTD
4 * drivers and users.
5 *
Heiko Schocherff94bc42014-06-24 10:10:04 +02006 * Copyright © 1999-2010 David Woodhouse <dwmw2@infradead.org>
7 * Copyright © 2006 Red Hat UK Limited
8 *
Kyungmin Parke29c22f2008-11-19 16:20:36 +01009 */
10
Heiko Schocherff94bc42014-06-24 10:10:04 +020011#ifndef __UBOOT__
Simon Glass61b29b82020-02-03 07:36:15 -070012#include <dm/devres.h>
Heiko Schocherff94bc42014-06-24 10:10:04 +020013#include <linux/module.h>
14#include <linux/kernel.h>
15#include <linux/ptrace.h>
16#include <linux/seq_file.h>
17#include <linux/string.h>
18#include <linux/timer.h>
19#include <linux/major.h>
20#include <linux/fs.h>
21#include <linux/err.h>
22#include <linux/ioctl.h>
23#include <linux/init.h>
24#include <linux/proc_fs.h>
25#include <linux/idr.h>
26#include <linux/backing-dev.h>
27#include <linux/gfp.h>
28#include <linux/slab.h>
29#else
Heiko Schocherff94bc42014-06-24 10:10:04 +020030#include <linux/err.h>
Kyungmin Parke29c22f2008-11-19 16:20:36 +010031#include <ubi_uboot.h>
Heiko Schocherff94bc42014-06-24 10:10:04 +020032#endif
Kyungmin Parke29c22f2008-11-19 16:20:36 +010033
Fabio Estevamf8fdb812015-11-05 12:43:39 -020034#include <linux/log2.h>
Heiko Schocherff94bc42014-06-24 10:10:04 +020035#include <linux/mtd/mtd.h>
36#include <linux/mtd/partitions.h>
37
38#include "mtdcore.h"
39
40#ifndef __UBOOT__
41/*
42 * backing device capabilities for non-mappable devices (such as NAND flash)
43 * - permits private mappings, copies are taken of the data
44 */
45static struct backing_dev_info mtd_bdi_unmappable = {
46 .capabilities = BDI_CAP_MAP_COPY,
47};
48
49/*
50 * backing device capabilities for R/O mappable devices (such as ROM)
51 * - permits private mappings, copies are taken of the data
52 * - permits non-writable shared mappings
53 */
54static struct backing_dev_info mtd_bdi_ro_mappable = {
55 .capabilities = (BDI_CAP_MAP_COPY | BDI_CAP_MAP_DIRECT |
56 BDI_CAP_EXEC_MAP | BDI_CAP_READ_MAP),
57};
58
59/*
60 * backing device capabilities for writable mappable devices (such as RAM)
61 * - permits private mappings, copies are taken of the data
62 * - permits non-writable shared mappings
63 */
64static struct backing_dev_info mtd_bdi_rw_mappable = {
65 .capabilities = (BDI_CAP_MAP_COPY | BDI_CAP_MAP_DIRECT |
66 BDI_CAP_EXEC_MAP | BDI_CAP_READ_MAP |
67 BDI_CAP_WRITE_MAP),
68};
69
70static int mtd_cls_suspend(struct device *dev, pm_message_t state);
71static int mtd_cls_resume(struct device *dev);
72
73static struct class mtd_class = {
74 .name = "mtd",
75 .owner = THIS_MODULE,
76 .suspend = mtd_cls_suspend,
77 .resume = mtd_cls_resume,
78};
79#else
Heiko Schocherff94bc42014-06-24 10:10:04 +020080#define MAX_IDR_ID 64
81
82struct idr_layer {
83 int used;
84 void *ptr;
85};
86
87struct idr {
88 struct idr_layer id[MAX_IDR_ID];
Boris Brezillon4c47fd02018-12-02 10:54:22 +010089 bool updated;
Heiko Schocherff94bc42014-06-24 10:10:04 +020090};
91
92#define DEFINE_IDR(name) struct idr name;
93
94void idr_remove(struct idr *idp, int id)
95{
Boris Brezillon4c47fd02018-12-02 10:54:22 +010096 if (idp->id[id].used) {
Heiko Schocherff94bc42014-06-24 10:10:04 +020097 idp->id[id].used = 0;
Boris Brezillon4c47fd02018-12-02 10:54:22 +010098 idp->updated = true;
99 }
Heiko Schocherff94bc42014-06-24 10:10:04 +0200100
101 return;
102}
103void *idr_find(struct idr *idp, int id)
104{
105 if (idp->id[id].used)
106 return idp->id[id].ptr;
107
108 return NULL;
109}
110
111void *idr_get_next(struct idr *idp, int *next)
112{
113 void *ret;
114 int id = *next;
115
116 ret = idr_find(idp, id);
117 if (ret) {
118 id ++;
119 if (!idp->id[id].used)
120 id = 0;
121 *next = id;
122 } else {
123 *next = 0;
124 }
125
126 return ret;
127}
128
129int idr_alloc(struct idr *idp, void *ptr, int start, int end, gfp_t gfp_mask)
130{
131 struct idr_layer *idl;
132 int i = 0;
133
134 while (i < MAX_IDR_ID) {
135 idl = &idp->id[i];
136 if (idl->used == 0) {
137 idl->used = 1;
138 idl->ptr = ptr;
Boris Brezillon4c47fd02018-12-02 10:54:22 +0100139 idp->updated = true;
Heiko Schocherff94bc42014-06-24 10:10:04 +0200140 return i;
141 }
142 i++;
143 }
144 return -ENOSPC;
145}
146#endif
147
148static DEFINE_IDR(mtd_idr);
149
150/* These are exported solely for the purpose of mtd_blkdevs.c. You
151 should not use them for _anything_ else */
152DEFINE_MUTEX(mtd_table_mutex);
153EXPORT_SYMBOL_GPL(mtd_table_mutex);
154
155struct mtd_info *__mtd_next_device(int i)
156{
157 return idr_get_next(&mtd_idr, &i);
158}
159EXPORT_SYMBOL_GPL(__mtd_next_device);
160
Boris Brezillon4c47fd02018-12-02 10:54:22 +0100161bool mtd_dev_list_updated(void)
162{
163 if (mtd_idr.updated) {
164 mtd_idr.updated = false;
165 return true;
166 }
167
168 return false;
169}
170
Heiko Schocherff94bc42014-06-24 10:10:04 +0200171#ifndef __UBOOT__
172static LIST_HEAD(mtd_notifiers);
173
174
175#define MTD_DEVT(index) MKDEV(MTD_CHAR_MAJOR, (index)*2)
176
177/* REVISIT once MTD uses the driver model better, whoever allocates
178 * the mtd_info will probably want to use the release() hook...
179 */
180static void mtd_release(struct device *dev)
181{
182 struct mtd_info __maybe_unused *mtd = dev_get_drvdata(dev);
183 dev_t index = MTD_DEVT(mtd->index);
184
185 /* remove /dev/mtdXro node if needed */
186 if (index)
187 device_destroy(&mtd_class, index + 1);
188}
189
190static int mtd_cls_suspend(struct device *dev, pm_message_t state)
191{
192 struct mtd_info *mtd = dev_get_drvdata(dev);
193
194 return mtd ? mtd_suspend(mtd) : 0;
195}
196
197static int mtd_cls_resume(struct device *dev)
198{
199 struct mtd_info *mtd = dev_get_drvdata(dev);
200
201 if (mtd)
202 mtd_resume(mtd);
203 return 0;
204}
205
206static ssize_t mtd_type_show(struct device *dev,
207 struct device_attribute *attr, char *buf)
208{
209 struct mtd_info *mtd = dev_get_drvdata(dev);
210 char *type;
211
212 switch (mtd->type) {
213 case MTD_ABSENT:
214 type = "absent";
215 break;
216 case MTD_RAM:
217 type = "ram";
218 break;
219 case MTD_ROM:
220 type = "rom";
221 break;
222 case MTD_NORFLASH:
223 type = "nor";
224 break;
225 case MTD_NANDFLASH:
226 type = "nand";
227 break;
228 case MTD_DATAFLASH:
229 type = "dataflash";
230 break;
231 case MTD_UBIVOLUME:
232 type = "ubi";
233 break;
234 case MTD_MLCNANDFLASH:
235 type = "mlc-nand";
236 break;
237 default:
238 type = "unknown";
239 }
240
241 return snprintf(buf, PAGE_SIZE, "%s\n", type);
242}
243static DEVICE_ATTR(type, S_IRUGO, mtd_type_show, NULL);
244
245static ssize_t mtd_flags_show(struct device *dev,
246 struct device_attribute *attr, char *buf)
247{
248 struct mtd_info *mtd = dev_get_drvdata(dev);
249
250 return snprintf(buf, PAGE_SIZE, "0x%lx\n", (unsigned long)mtd->flags);
251
252}
253static DEVICE_ATTR(flags, S_IRUGO, mtd_flags_show, NULL);
254
255static ssize_t mtd_size_show(struct device *dev,
256 struct device_attribute *attr, char *buf)
257{
258 struct mtd_info *mtd = dev_get_drvdata(dev);
259
260 return snprintf(buf, PAGE_SIZE, "%llu\n",
261 (unsigned long long)mtd->size);
262
263}
264static DEVICE_ATTR(size, S_IRUGO, mtd_size_show, NULL);
265
266static ssize_t mtd_erasesize_show(struct device *dev,
267 struct device_attribute *attr, char *buf)
268{
269 struct mtd_info *mtd = dev_get_drvdata(dev);
270
271 return snprintf(buf, PAGE_SIZE, "%lu\n", (unsigned long)mtd->erasesize);
272
273}
274static DEVICE_ATTR(erasesize, S_IRUGO, mtd_erasesize_show, NULL);
275
276static ssize_t mtd_writesize_show(struct device *dev,
277 struct device_attribute *attr, char *buf)
278{
279 struct mtd_info *mtd = dev_get_drvdata(dev);
280
281 return snprintf(buf, PAGE_SIZE, "%lu\n", (unsigned long)mtd->writesize);
282
283}
284static DEVICE_ATTR(writesize, S_IRUGO, mtd_writesize_show, NULL);
285
286static ssize_t mtd_subpagesize_show(struct device *dev,
287 struct device_attribute *attr, char *buf)
288{
289 struct mtd_info *mtd = dev_get_drvdata(dev);
290 unsigned int subpagesize = mtd->writesize >> mtd->subpage_sft;
291
292 return snprintf(buf, PAGE_SIZE, "%u\n", subpagesize);
293
294}
295static DEVICE_ATTR(subpagesize, S_IRUGO, mtd_subpagesize_show, NULL);
296
297static ssize_t mtd_oobsize_show(struct device *dev,
298 struct device_attribute *attr, char *buf)
299{
300 struct mtd_info *mtd = dev_get_drvdata(dev);
301
302 return snprintf(buf, PAGE_SIZE, "%lu\n", (unsigned long)mtd->oobsize);
303
304}
305static DEVICE_ATTR(oobsize, S_IRUGO, mtd_oobsize_show, NULL);
306
307static ssize_t mtd_numeraseregions_show(struct device *dev,
308 struct device_attribute *attr, char *buf)
309{
310 struct mtd_info *mtd = dev_get_drvdata(dev);
311
312 return snprintf(buf, PAGE_SIZE, "%u\n", mtd->numeraseregions);
313
314}
315static DEVICE_ATTR(numeraseregions, S_IRUGO, mtd_numeraseregions_show,
316 NULL);
317
318static ssize_t mtd_name_show(struct device *dev,
319 struct device_attribute *attr, char *buf)
320{
321 struct mtd_info *mtd = dev_get_drvdata(dev);
322
323 return snprintf(buf, PAGE_SIZE, "%s\n", mtd->name);
324
325}
326static DEVICE_ATTR(name, S_IRUGO, mtd_name_show, NULL);
327
328static ssize_t mtd_ecc_strength_show(struct device *dev,
329 struct device_attribute *attr, char *buf)
330{
331 struct mtd_info *mtd = dev_get_drvdata(dev);
332
333 return snprintf(buf, PAGE_SIZE, "%u\n", mtd->ecc_strength);
334}
335static DEVICE_ATTR(ecc_strength, S_IRUGO, mtd_ecc_strength_show, NULL);
336
337static ssize_t mtd_bitflip_threshold_show(struct device *dev,
338 struct device_attribute *attr,
339 char *buf)
340{
341 struct mtd_info *mtd = dev_get_drvdata(dev);
342
343 return snprintf(buf, PAGE_SIZE, "%u\n", mtd->bitflip_threshold);
344}
345
346static ssize_t mtd_bitflip_threshold_store(struct device *dev,
347 struct device_attribute *attr,
348 const char *buf, size_t count)
349{
350 struct mtd_info *mtd = dev_get_drvdata(dev);
351 unsigned int bitflip_threshold;
352 int retval;
353
354 retval = kstrtouint(buf, 0, &bitflip_threshold);
355 if (retval)
356 return retval;
357
358 mtd->bitflip_threshold = bitflip_threshold;
359 return count;
360}
361static DEVICE_ATTR(bitflip_threshold, S_IRUGO | S_IWUSR,
362 mtd_bitflip_threshold_show,
363 mtd_bitflip_threshold_store);
364
365static ssize_t mtd_ecc_step_size_show(struct device *dev,
366 struct device_attribute *attr, char *buf)
367{
368 struct mtd_info *mtd = dev_get_drvdata(dev);
369
370 return snprintf(buf, PAGE_SIZE, "%u\n", mtd->ecc_step_size);
371
372}
373static DEVICE_ATTR(ecc_step_size, S_IRUGO, mtd_ecc_step_size_show, NULL);
374
375static struct attribute *mtd_attrs[] = {
376 &dev_attr_type.attr,
377 &dev_attr_flags.attr,
378 &dev_attr_size.attr,
379 &dev_attr_erasesize.attr,
380 &dev_attr_writesize.attr,
381 &dev_attr_subpagesize.attr,
382 &dev_attr_oobsize.attr,
383 &dev_attr_numeraseregions.attr,
384 &dev_attr_name.attr,
385 &dev_attr_ecc_strength.attr,
386 &dev_attr_ecc_step_size.attr,
387 &dev_attr_bitflip_threshold.attr,
388 NULL,
389};
390ATTRIBUTE_GROUPS(mtd);
391
392static struct device_type mtd_devtype = {
393 .name = "mtd",
394 .groups = mtd_groups,
395 .release = mtd_release,
396};
397#endif
398
399/**
400 * add_mtd_device - register an MTD device
401 * @mtd: pointer to new MTD device info structure
402 *
403 * Add a device to the list of MTD devices present in the system, and
404 * notify each currently active MTD 'user' of its arrival. Returns
405 * zero on success or 1 on failure, which currently will only happen
406 * if there is insufficient memory or a sysfs error.
407 */
408
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100409int add_mtd_device(struct mtd_info *mtd)
410{
Heiko Schocherff94bc42014-06-24 10:10:04 +0200411#ifndef __UBOOT__
412 struct mtd_notifier *not;
413#endif
414 int i, error;
415
416#ifndef __UBOOT__
417 if (!mtd->backing_dev_info) {
418 switch (mtd->type) {
419 case MTD_RAM:
420 mtd->backing_dev_info = &mtd_bdi_rw_mappable;
421 break;
422 case MTD_ROM:
423 mtd->backing_dev_info = &mtd_bdi_ro_mappable;
424 break;
425 default:
426 mtd->backing_dev_info = &mtd_bdi_unmappable;
427 break;
428 }
429 }
430#endif
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100431
432 BUG_ON(mtd->writesize == 0);
Heiko Schocherff94bc42014-06-24 10:10:04 +0200433 mutex_lock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100434
Heiko Schocherff94bc42014-06-24 10:10:04 +0200435 i = idr_alloc(&mtd_idr, mtd, 0, 0, GFP_KERNEL);
436 if (i < 0)
437 goto fail_locked;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100438
Heiko Schocherff94bc42014-06-24 10:10:04 +0200439 mtd->index = i;
440 mtd->usecount = 0;
Sergey Lapindfe64e22013-01-14 03:46:50 +0000441
Miquel Raynal2a749302018-09-29 12:58:27 +0200442 INIT_LIST_HEAD(&mtd->partitions);
443
Heiko Schocherff94bc42014-06-24 10:10:04 +0200444 /* default value if not set by driver */
445 if (mtd->bitflip_threshold == 0)
446 mtd->bitflip_threshold = mtd->ecc_strength;
Sergey Lapindfe64e22013-01-14 03:46:50 +0000447
Heiko Schocherff94bc42014-06-24 10:10:04 +0200448 if (is_power_of_2(mtd->erasesize))
449 mtd->erasesize_shift = ffs(mtd->erasesize) - 1;
450 else
451 mtd->erasesize_shift = 0;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100452
Heiko Schocherff94bc42014-06-24 10:10:04 +0200453 if (is_power_of_2(mtd->writesize))
454 mtd->writesize_shift = ffs(mtd->writesize) - 1;
455 else
456 mtd->writesize_shift = 0;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100457
Heiko Schocherff94bc42014-06-24 10:10:04 +0200458 mtd->erasesize_mask = (1 << mtd->erasesize_shift) - 1;
459 mtd->writesize_mask = (1 << mtd->writesize_shift) - 1;
460
461 /* Some chips always power up locked. Unlock them now */
462 if ((mtd->flags & MTD_WRITEABLE) && (mtd->flags & MTD_POWERUP_LOCK)) {
463 error = mtd_unlock(mtd, 0, mtd->size);
464 if (error && error != -EOPNOTSUPP)
465 printk(KERN_WARNING
466 "%s: unlock failed, writes may not work\n",
467 mtd->name);
468 }
469
470#ifndef __UBOOT__
471 /* Caller should have set dev.parent to match the
472 * physical device.
473 */
474 mtd->dev.type = &mtd_devtype;
475 mtd->dev.class = &mtd_class;
476 mtd->dev.devt = MTD_DEVT(i);
477 dev_set_name(&mtd->dev, "mtd%d", i);
478 dev_set_drvdata(&mtd->dev, mtd);
479 if (device_register(&mtd->dev) != 0)
480 goto fail_added;
481
482 if (MTD_DEVT(i))
483 device_create(&mtd_class, mtd->dev.parent,
484 MTD_DEVT(i) + 1,
485 NULL, "mtd%dro", i);
486
487 pr_debug("mtd: Giving out device %d to %s\n", i, mtd->name);
488 /* No need to get a refcount on the module containing
489 the notifier, since we hold the mtd_table_mutex */
490 list_for_each_entry(not, &mtd_notifiers, list)
491 not->add(mtd);
Heiko Schocherddf7bcf2014-07-15 16:08:42 +0200492#else
493 pr_debug("mtd: Giving out device %d to %s\n", i, mtd->name);
Heiko Schocherff94bc42014-06-24 10:10:04 +0200494#endif
495
496 mutex_unlock(&mtd_table_mutex);
497 /* We _know_ we aren't being removed, because
498 our caller is still holding us here. So none
499 of this try_ nonsense, and no bitching about it
500 either. :) */
501 __module_get(THIS_MODULE);
502 return 0;
503
504#ifndef __UBOOT__
505fail_added:
506 idr_remove(&mtd_idr, i);
507#endif
508fail_locked:
509 mutex_unlock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100510 return 1;
511}
512
513/**
Heiko Schocherff94bc42014-06-24 10:10:04 +0200514 * del_mtd_device - unregister an MTD device
515 * @mtd: pointer to MTD device info structure
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100516 *
Heiko Schocherff94bc42014-06-24 10:10:04 +0200517 * Remove a device from the list of MTD devices present in the system,
518 * and notify each currently active MTD 'user' of its departure.
519 * Returns zero on success or 1 on failure, which currently will happen
520 * if the requested device does not appear to be present in the list.
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100521 */
Heiko Schocherff94bc42014-06-24 10:10:04 +0200522
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100523int del_mtd_device(struct mtd_info *mtd)
524{
525 int ret;
Heiko Schocherff94bc42014-06-24 10:10:04 +0200526#ifndef __UBOOT__
527 struct mtd_notifier *not;
528#endif
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100529
Boris Brezillona02820f2018-12-02 10:54:24 +0100530 ret = del_mtd_partitions(mtd);
531 if (ret) {
532 debug("Failed to delete MTD partitions attached to %s (err %d)\n",
533 mtd->name, ret);
534 return ret;
535 }
536
Heiko Schocherff94bc42014-06-24 10:10:04 +0200537 mutex_lock(&mtd_table_mutex);
538
539 if (idr_find(&mtd_idr, mtd->index) != mtd) {
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100540 ret = -ENODEV;
Heiko Schocherff94bc42014-06-24 10:10:04 +0200541 goto out_error;
542 }
543
544#ifndef __UBOOT__
545 /* No need to get a refcount on the module containing
546 the notifier, since we hold the mtd_table_mutex */
547 list_for_each_entry(not, &mtd_notifiers, list)
548 not->remove(mtd);
549#endif
550
551 if (mtd->usecount) {
552 printk(KERN_NOTICE "Removing MTD device #%d (%s) with use count %d\n",
553 mtd->index, mtd->name, mtd->usecount);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100554 ret = -EBUSY;
555 } else {
Heiko Schocherff94bc42014-06-24 10:10:04 +0200556#ifndef __UBOOT__
557 device_unregister(&mtd->dev);
558#endif
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100559
Heiko Schocherff94bc42014-06-24 10:10:04 +0200560 idr_remove(&mtd_idr, mtd->index);
561
562 module_put(THIS_MODULE);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100563 ret = 0;
564 }
565
Heiko Schocherff94bc42014-06-24 10:10:04 +0200566out_error:
567 mutex_unlock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100568 return ret;
569}
570
Heiko Schocherff94bc42014-06-24 10:10:04 +0200571#ifndef __UBOOT__
572/**
573 * mtd_device_parse_register - parse partitions and register an MTD device.
574 *
575 * @mtd: the MTD device to register
576 * @types: the list of MTD partition probes to try, see
577 * 'parse_mtd_partitions()' for more information
578 * @parser_data: MTD partition parser-specific data
579 * @parts: fallback partition information to register, if parsing fails;
580 * only valid if %nr_parts > %0
581 * @nr_parts: the number of partitions in parts, if zero then the full
582 * MTD device is registered if no partition info is found
583 *
584 * This function aggregates MTD partitions parsing (done by
585 * 'parse_mtd_partitions()') and MTD device and partitions registering. It
586 * basically follows the most common pattern found in many MTD drivers:
587 *
588 * * It first tries to probe partitions on MTD device @mtd using parsers
589 * specified in @types (if @types is %NULL, then the default list of parsers
590 * is used, see 'parse_mtd_partitions()' for more information). If none are
591 * found this functions tries to fallback to information specified in
592 * @parts/@nr_parts.
593 * * If any partitioning info was found, this function registers the found
594 * partitions.
595 * * If no partitions were found this function just registers the MTD device
596 * @mtd and exits.
597 *
598 * Returns zero in case of success and a negative error code in case of failure.
599 */
600int mtd_device_parse_register(struct mtd_info *mtd, const char * const *types,
601 struct mtd_part_parser_data *parser_data,
602 const struct mtd_partition *parts,
603 int nr_parts)
604{
605 int err;
606 struct mtd_partition *real_parts;
607
608 err = parse_mtd_partitions(mtd, types, &real_parts, parser_data);
609 if (err <= 0 && nr_parts && parts) {
610 real_parts = kmemdup(parts, sizeof(*parts) * nr_parts,
611 GFP_KERNEL);
612 if (!real_parts)
613 err = -ENOMEM;
614 else
615 err = nr_parts;
616 }
617
618 if (err > 0) {
619 err = add_mtd_partitions(mtd, real_parts, err);
620 kfree(real_parts);
621 } else if (err == 0) {
622 err = add_mtd_device(mtd);
623 if (err == 1)
624 err = -ENODEV;
625 }
626
627 return err;
628}
629EXPORT_SYMBOL_GPL(mtd_device_parse_register);
630
631/**
632 * mtd_device_unregister - unregister an existing MTD device.
633 *
634 * @master: the MTD device to unregister. This will unregister both the master
635 * and any partitions if registered.
636 */
637int mtd_device_unregister(struct mtd_info *master)
638{
639 int err;
640
641 err = del_mtd_partitions(master);
642 if (err)
643 return err;
644
645 if (!device_is_registered(&master->dev))
646 return 0;
647
648 return del_mtd_device(master);
649}
650EXPORT_SYMBOL_GPL(mtd_device_unregister);
651
652/**
653 * register_mtd_user - register a 'user' of MTD devices.
654 * @new: pointer to notifier info structure
655 *
656 * Registers a pair of callbacks function to be called upon addition
657 * or removal of MTD devices. Causes the 'add' callback to be immediately
658 * invoked for each MTD device currently present in the system.
659 */
660void register_mtd_user (struct mtd_notifier *new)
661{
662 struct mtd_info *mtd;
663
664 mutex_lock(&mtd_table_mutex);
665
666 list_add(&new->list, &mtd_notifiers);
667
668 __module_get(THIS_MODULE);
669
670 mtd_for_each_device(mtd)
671 new->add(mtd);
672
673 mutex_unlock(&mtd_table_mutex);
674}
675EXPORT_SYMBOL_GPL(register_mtd_user);
676
677/**
678 * unregister_mtd_user - unregister a 'user' of MTD devices.
679 * @old: pointer to notifier info structure
680 *
681 * Removes a callback function pair from the list of 'users' to be
682 * notified upon addition or removal of MTD devices. Causes the
683 * 'remove' callback to be immediately invoked for each MTD device
684 * currently present in the system.
685 */
686int unregister_mtd_user (struct mtd_notifier *old)
687{
688 struct mtd_info *mtd;
689
690 mutex_lock(&mtd_table_mutex);
691
692 module_put(THIS_MODULE);
693
694 mtd_for_each_device(mtd)
695 old->remove(mtd);
696
697 list_del(&old->list);
698 mutex_unlock(&mtd_table_mutex);
699 return 0;
700}
701EXPORT_SYMBOL_GPL(unregister_mtd_user);
702#endif
703
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100704/**
705 * get_mtd_device - obtain a validated handle for an MTD device
706 * @mtd: last known address of the required MTD device
707 * @num: internal device number of the required MTD device
708 *
709 * Given a number and NULL address, return the num'th entry in the device
Heiko Schocherff94bc42014-06-24 10:10:04 +0200710 * table, if any. Given an address and num == -1, search the device table
711 * for a device with that address and return if it's still present. Given
712 * both, return the num'th driver only if its address matches. Return
713 * error code if not.
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100714 */
715struct mtd_info *get_mtd_device(struct mtd_info *mtd, int num)
716{
Heiko Schocherff94bc42014-06-24 10:10:04 +0200717 struct mtd_info *ret = NULL, *other;
718 int err = -ENODEV;
719
720 mutex_lock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100721
722 if (num == -1) {
Heiko Schocherff94bc42014-06-24 10:10:04 +0200723 mtd_for_each_device(other) {
724 if (other == mtd) {
725 ret = mtd;
726 break;
727 }
728 }
729 } else if (num >= 0) {
730 ret = idr_find(&mtd_idr, num);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100731 if (mtd && mtd != ret)
732 ret = NULL;
733 }
734
Heiko Schocherff94bc42014-06-24 10:10:04 +0200735 if (!ret) {
736 ret = ERR_PTR(err);
737 goto out;
738 }
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100739
Heiko Schocherff94bc42014-06-24 10:10:04 +0200740 err = __get_mtd_device(ret);
741 if (err)
742 ret = ERR_PTR(err);
743out:
744 mutex_unlock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100745 return ret;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100746}
Heiko Schocherff94bc42014-06-24 10:10:04 +0200747EXPORT_SYMBOL_GPL(get_mtd_device);
748
749
750int __get_mtd_device(struct mtd_info *mtd)
751{
752 int err;
753
754 if (!try_module_get(mtd->owner))
755 return -ENODEV;
756
757 if (mtd->_get_device) {
758 err = mtd->_get_device(mtd);
759
760 if (err) {
761 module_put(mtd->owner);
762 return err;
763 }
764 }
765 mtd->usecount++;
766 return 0;
767}
768EXPORT_SYMBOL_GPL(__get_mtd_device);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100769
770/**
Heiko Schocherff94bc42014-06-24 10:10:04 +0200771 * get_mtd_device_nm - obtain a validated handle for an MTD device by
772 * device name
773 * @name: MTD device name to open
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100774 *
Heiko Schocherff94bc42014-06-24 10:10:04 +0200775 * This function returns MTD device description structure in case of
776 * success and an error code in case of failure.
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100777 */
778struct mtd_info *get_mtd_device_nm(const char *name)
779{
Heiko Schocherff94bc42014-06-24 10:10:04 +0200780 int err = -ENODEV;
781 struct mtd_info *mtd = NULL, *other;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100782
Heiko Schocherff94bc42014-06-24 10:10:04 +0200783 mutex_lock(&mtd_table_mutex);
784
785 mtd_for_each_device(other) {
786 if (!strcmp(name, other->name)) {
787 mtd = other;
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100788 break;
789 }
790 }
791
792 if (!mtd)
793 goto out_unlock;
794
Heiko Schocherff94bc42014-06-24 10:10:04 +0200795 err = __get_mtd_device(mtd);
796 if (err)
797 goto out_unlock;
798
799 mutex_unlock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100800 return mtd;
801
802out_unlock:
Heiko Schocherff94bc42014-06-24 10:10:04 +0200803 mutex_unlock(&mtd_table_mutex);
Kyungmin Parke29c22f2008-11-19 16:20:36 +0100804 return ERR_PTR(err);
805}
Heiko Schocherff94bc42014-06-24 10:10:04 +0200806EXPORT_SYMBOL_GPL(get_mtd_device_nm);
Ben Gardiner4ba692f2010-08-31 17:48:01 -0400807
808#if defined(CONFIG_CMD_MTDPARTS_SPREAD)
809/**
810 * mtd_get_len_incl_bad
811 *
812 * Check if length including bad blocks fits into device.
813 *
814 * @param mtd an MTD device
815 * @param offset offset in flash
816 * @param length image length
817 * @return image length including bad blocks in *len_incl_bad and whether or not
818 * the length returned was truncated in *truncated
819 */
820void mtd_get_len_incl_bad(struct mtd_info *mtd, uint64_t offset,
821 const uint64_t length, uint64_t *len_incl_bad,
822 int *truncated)
823{
824 *truncated = 0;
825 *len_incl_bad = 0;
826
maxin.john@enea.com5da163d2014-09-08 19:04:16 +0200827 if (!mtd->_block_isbad) {
Ben Gardiner4ba692f2010-08-31 17:48:01 -0400828 *len_incl_bad = length;
829 return;
830 }
831
832 uint64_t len_excl_bad = 0;
833 uint64_t block_len;
834
835 while (len_excl_bad < length) {
Scott Wood36650ca2010-09-09 15:40:03 -0500836 if (offset >= mtd->size) {
837 *truncated = 1;
838 return;
839 }
840
Ben Gardiner4ba692f2010-08-31 17:48:01 -0400841 block_len = mtd->erasesize - (offset & (mtd->erasesize - 1));
842
maxin.john@enea.com5da163d2014-09-08 19:04:16 +0200843 if (!mtd->_block_isbad(mtd, offset & ~(mtd->erasesize - 1)))
Ben Gardiner4ba692f2010-08-31 17:48:01 -0400844 len_excl_bad += block_len;
845
846 *len_incl_bad += block_len;
847 offset += block_len;
Ben Gardiner4ba692f2010-08-31 17:48:01 -0400848 }
849}
850#endif /* defined(CONFIG_CMD_MTDPARTS_SPREAD) */
Sergey Lapindfe64e22013-01-14 03:46:50 +0000851
Heiko Schocherff94bc42014-06-24 10:10:04 +0200852void put_mtd_device(struct mtd_info *mtd)
853{
854 mutex_lock(&mtd_table_mutex);
855 __put_mtd_device(mtd);
856 mutex_unlock(&mtd_table_mutex);
857
858}
859EXPORT_SYMBOL_GPL(put_mtd_device);
860
861void __put_mtd_device(struct mtd_info *mtd)
862{
863 --mtd->usecount;
864 BUG_ON(mtd->usecount < 0);
865
866 if (mtd->_put_device)
867 mtd->_put_device(mtd);
868
869 module_put(mtd->owner);
870}
871EXPORT_SYMBOL_GPL(__put_mtd_device);
872
873/*
Sergey Lapindfe64e22013-01-14 03:46:50 +0000874 * Erase is an asynchronous operation. Device drivers are supposed
875 * to call instr->callback() whenever the operation completes, even
876 * if it completes with a failure.
877 * Callers are supposed to pass a callback function and wait for it
878 * to be called before writing to the block.
879 */
880int mtd_erase(struct mtd_info *mtd, struct erase_info *instr)
881{
882 if (instr->addr > mtd->size || instr->len > mtd->size - instr->addr)
883 return -EINVAL;
884 if (!(mtd->flags & MTD_WRITEABLE))
885 return -EROFS;
886 instr->fail_addr = MTD_FAIL_ADDR_UNKNOWN;
887 if (!instr->len) {
888 instr->state = MTD_ERASE_DONE;
889 mtd_erase_callback(instr);
890 return 0;
891 }
892 return mtd->_erase(mtd, instr);
893}
Heiko Schocherff94bc42014-06-24 10:10:04 +0200894EXPORT_SYMBOL_GPL(mtd_erase);
895
896#ifndef __UBOOT__
897/*
898 * This stuff for eXecute-In-Place. phys is optional and may be set to NULL.
899 */
900int mtd_point(struct mtd_info *mtd, loff_t from, size_t len, size_t *retlen,
901 void **virt, resource_size_t *phys)
902{
903 *retlen = 0;
904 *virt = NULL;
905 if (phys)
906 *phys = 0;
907 if (!mtd->_point)
908 return -EOPNOTSUPP;
909 if (from < 0 || from > mtd->size || len > mtd->size - from)
910 return -EINVAL;
911 if (!len)
912 return 0;
913 return mtd->_point(mtd, from, len, retlen, virt, phys);
914}
915EXPORT_SYMBOL_GPL(mtd_point);
916
917/* We probably shouldn't allow XIP if the unpoint isn't a NULL */
918int mtd_unpoint(struct mtd_info *mtd, loff_t from, size_t len)
919{
920 if (!mtd->_point)
921 return -EOPNOTSUPP;
922 if (from < 0 || from > mtd->size || len > mtd->size - from)
923 return -EINVAL;
924 if (!len)
925 return 0;
926 return mtd->_unpoint(mtd, from, len);
927}
928EXPORT_SYMBOL_GPL(mtd_unpoint);
929#endif
930
931/*
932 * Allow NOMMU mmap() to directly map the device (if not NULL)
933 * - return the address to which the offset maps
934 * - return -ENOSYS to indicate refusal to do the mapping
935 */
936unsigned long mtd_get_unmapped_area(struct mtd_info *mtd, unsigned long len,
937 unsigned long offset, unsigned long flags)
938{
939 if (!mtd->_get_unmapped_area)
940 return -EOPNOTSUPP;
941 if (offset > mtd->size || len > mtd->size - offset)
942 return -EINVAL;
943 return mtd->_get_unmapped_area(mtd, len, offset, flags);
944}
945EXPORT_SYMBOL_GPL(mtd_get_unmapped_area);
Sergey Lapindfe64e22013-01-14 03:46:50 +0000946
947int mtd_read(struct mtd_info *mtd, loff_t from, size_t len, size_t *retlen,
948 u_char *buf)
949{
Paul Burton40462e52013-09-04 15:16:56 +0100950 int ret_code;
Heiko Schocherff94bc42014-06-24 10:10:04 +0200951 *retlen = 0;
Sergey Lapindfe64e22013-01-14 03:46:50 +0000952 if (from < 0 || from > mtd->size || len > mtd->size - from)
953 return -EINVAL;
954 if (!len)
955 return 0;
Paul Burton40462e52013-09-04 15:16:56 +0100956
957 /*
958 * In the absence of an error, drivers return a non-negative integer
959 * representing the maximum number of bitflips that were corrected on
960 * any one ecc region (if applicable; zero otherwise).
961 */
Boris Brezillon596cf082018-08-16 17:29:59 +0200962 if (mtd->_read) {
963 ret_code = mtd->_read(mtd, from, len, retlen, buf);
964 } else if (mtd->_read_oob) {
965 struct mtd_oob_ops ops = {
966 .len = len,
967 .datbuf = buf,
968 };
969
970 ret_code = mtd->_read_oob(mtd, from, &ops);
971 *retlen = ops.retlen;
972 } else {
973 return -ENOTSUPP;
974 }
975
Paul Burton40462e52013-09-04 15:16:56 +0100976 if (unlikely(ret_code < 0))
977 return ret_code;
978 if (mtd->ecc_strength == 0)
979 return 0; /* device lacks ecc */
980 return ret_code >= mtd->bitflip_threshold ? -EUCLEAN : 0;
Sergey Lapindfe64e22013-01-14 03:46:50 +0000981}
Heiko Schocherff94bc42014-06-24 10:10:04 +0200982EXPORT_SYMBOL_GPL(mtd_read);
Sergey Lapindfe64e22013-01-14 03:46:50 +0000983
984int mtd_write(struct mtd_info *mtd, loff_t to, size_t len, size_t *retlen,
985 const u_char *buf)
986{
987 *retlen = 0;
988 if (to < 0 || to > mtd->size || len > mtd->size - to)
989 return -EINVAL;
Boris Brezillon596cf082018-08-16 17:29:59 +0200990 if ((!mtd->_write && !mtd->_write_oob) ||
991 !(mtd->flags & MTD_WRITEABLE))
Sergey Lapindfe64e22013-01-14 03:46:50 +0000992 return -EROFS;
993 if (!len)
994 return 0;
Boris Brezillon596cf082018-08-16 17:29:59 +0200995
996 if (!mtd->_write) {
997 struct mtd_oob_ops ops = {
998 .len = len,
999 .datbuf = (u8 *)buf,
1000 };
1001 int ret;
1002
1003 ret = mtd->_write_oob(mtd, to, &ops);
1004 *retlen = ops.retlen;
1005 return ret;
1006 }
1007
Sergey Lapindfe64e22013-01-14 03:46:50 +00001008 return mtd->_write(mtd, to, len, retlen, buf);
1009}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001010EXPORT_SYMBOL_GPL(mtd_write);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001011
1012/*
1013 * In blackbox flight recorder like scenarios we want to make successful writes
1014 * in interrupt context. panic_write() is only intended to be called when its
1015 * known the kernel is about to panic and we need the write to succeed. Since
1016 * the kernel is not going to be running for much longer, this function can
1017 * break locks and delay to ensure the write succeeds (but not sleep).
1018 */
1019int mtd_panic_write(struct mtd_info *mtd, loff_t to, size_t len, size_t *retlen,
1020 const u_char *buf)
1021{
1022 *retlen = 0;
1023 if (!mtd->_panic_write)
1024 return -EOPNOTSUPP;
1025 if (to < 0 || to > mtd->size || len > mtd->size - to)
1026 return -EINVAL;
1027 if (!(mtd->flags & MTD_WRITEABLE))
1028 return -EROFS;
1029 if (!len)
1030 return 0;
1031 return mtd->_panic_write(mtd, to, len, retlen, buf);
1032}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001033EXPORT_SYMBOL_GPL(mtd_panic_write);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001034
Boris Brezillon8fad7692018-08-16 17:30:01 +02001035static int mtd_check_oob_ops(struct mtd_info *mtd, loff_t offs,
1036 struct mtd_oob_ops *ops)
1037{
1038 /*
1039 * Some users are setting ->datbuf or ->oobbuf to NULL, but are leaving
1040 * ->len or ->ooblen uninitialized. Force ->len and ->ooblen to 0 in
1041 * this case.
1042 */
1043 if (!ops->datbuf)
1044 ops->len = 0;
1045
1046 if (!ops->oobbuf)
1047 ops->ooblen = 0;
1048
1049 if (offs < 0 || offs + ops->len > mtd->size)
1050 return -EINVAL;
1051
1052 if (ops->ooblen) {
Miquel Raynal3f3aef42018-11-18 21:11:47 +01001053 size_t maxooblen;
Boris Brezillon8fad7692018-08-16 17:30:01 +02001054
1055 if (ops->ooboffs >= mtd_oobavail(mtd, ops))
1056 return -EINVAL;
1057
Miquel Raynal3f3aef42018-11-18 21:11:47 +01001058 maxooblen = ((size_t)(mtd_div_by_ws(mtd->size, mtd) -
1059 mtd_div_by_ws(offs, mtd)) *
Boris Brezillon8fad7692018-08-16 17:30:01 +02001060 mtd_oobavail(mtd, ops)) - ops->ooboffs;
1061 if (ops->ooblen > maxooblen)
1062 return -EINVAL;
1063 }
1064
1065 return 0;
1066}
1067
Sergey Lapindfe64e22013-01-14 03:46:50 +00001068int mtd_read_oob(struct mtd_info *mtd, loff_t from, struct mtd_oob_ops *ops)
1069{
Heiko Schocherff94bc42014-06-24 10:10:04 +02001070 int ret_code;
Sergey Lapindfe64e22013-01-14 03:46:50 +00001071 ops->retlen = ops->oobretlen = 0;
Boris Brezillon8fad7692018-08-16 17:30:01 +02001072
1073 ret_code = mtd_check_oob_ops(mtd, from, ops);
1074 if (ret_code)
1075 return ret_code;
1076
Miquel Raynalca040d82018-08-16 17:30:02 +02001077 /* Check the validity of a potential fallback on mtd->_read */
1078 if (!mtd->_read_oob && (!mtd->_read || ops->oobbuf))
1079 return -EOPNOTSUPP;
1080
1081 if (mtd->_read_oob)
1082 ret_code = mtd->_read_oob(mtd, from, ops);
1083 else
1084 ret_code = mtd->_read(mtd, from, ops->len, &ops->retlen,
1085 ops->datbuf);
1086
Heiko Schocherff94bc42014-06-24 10:10:04 +02001087 /*
1088 * In cases where ops->datbuf != NULL, mtd->_read_oob() has semantics
1089 * similar to mtd->_read(), returning a non-negative integer
1090 * representing max bitflips. In other cases, mtd->_read_oob() may
1091 * return -EUCLEAN. In all cases, perform similar logic to mtd_read().
1092 */
Heiko Schocherff94bc42014-06-24 10:10:04 +02001093 if (unlikely(ret_code < 0))
1094 return ret_code;
1095 if (mtd->ecc_strength == 0)
1096 return 0; /* device lacks ecc */
1097 return ret_code >= mtd->bitflip_threshold ? -EUCLEAN : 0;
Sergey Lapindfe64e22013-01-14 03:46:50 +00001098}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001099EXPORT_SYMBOL_GPL(mtd_read_oob);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001100
Ezequiel Garcia5f50d822018-08-16 17:30:00 +02001101int mtd_write_oob(struct mtd_info *mtd, loff_t to,
1102 struct mtd_oob_ops *ops)
1103{
Boris Brezillon8fad7692018-08-16 17:30:01 +02001104 int ret;
1105
Ezequiel Garcia5f50d822018-08-16 17:30:00 +02001106 ops->retlen = ops->oobretlen = 0;
Miquel Raynalca040d82018-08-16 17:30:02 +02001107
Ezequiel Garcia5f50d822018-08-16 17:30:00 +02001108 if (!(mtd->flags & MTD_WRITEABLE))
1109 return -EROFS;
Boris Brezillon8fad7692018-08-16 17:30:01 +02001110
1111 ret = mtd_check_oob_ops(mtd, to, ops);
1112 if (ret)
1113 return ret;
1114
Miquel Raynalca040d82018-08-16 17:30:02 +02001115 /* Check the validity of a potential fallback on mtd->_write */
1116 if (!mtd->_write_oob && (!mtd->_write || ops->oobbuf))
1117 return -EOPNOTSUPP;
1118
1119 if (mtd->_write_oob)
1120 return mtd->_write_oob(mtd, to, ops);
1121 else
1122 return mtd->_write(mtd, to, ops->len, &ops->retlen,
1123 ops->datbuf);
Ezequiel Garcia5f50d822018-08-16 17:30:00 +02001124}
1125EXPORT_SYMBOL_GPL(mtd_write_oob);
1126
Boris Brezillon13f3b042017-11-22 02:38:23 +09001127/**
1128 * mtd_ooblayout_ecc - Get the OOB region definition of a specific ECC section
1129 * @mtd: MTD device structure
1130 * @section: ECC section. Depending on the layout you may have all the ECC
1131 * bytes stored in a single contiguous section, or one section
1132 * per ECC chunk (and sometime several sections for a single ECC
1133 * ECC chunk)
1134 * @oobecc: OOB region struct filled with the appropriate ECC position
1135 * information
1136 *
1137 * This function returns ECC section information in the OOB area. If you want
1138 * to get all the ECC bytes information, then you should call
1139 * mtd_ooblayout_ecc(mtd, section++, oobecc) until it returns -ERANGE.
1140 *
1141 * Returns zero on success, a negative error code otherwise.
1142 */
1143int mtd_ooblayout_ecc(struct mtd_info *mtd, int section,
1144 struct mtd_oob_region *oobecc)
1145{
1146 memset(oobecc, 0, sizeof(*oobecc));
1147
1148 if (!mtd || section < 0)
1149 return -EINVAL;
1150
1151 if (!mtd->ooblayout || !mtd->ooblayout->ecc)
1152 return -ENOTSUPP;
1153
1154 return mtd->ooblayout->ecc(mtd, section, oobecc);
1155}
1156EXPORT_SYMBOL_GPL(mtd_ooblayout_ecc);
1157
1158/**
1159 * mtd_ooblayout_free - Get the OOB region definition of a specific free
1160 * section
1161 * @mtd: MTD device structure
1162 * @section: Free section you are interested in. Depending on the layout
1163 * you may have all the free bytes stored in a single contiguous
1164 * section, or one section per ECC chunk plus an extra section
1165 * for the remaining bytes (or other funky layout).
1166 * @oobfree: OOB region struct filled with the appropriate free position
1167 * information
1168 *
1169 * This function returns free bytes position in the OOB area. If you want
1170 * to get all the free bytes information, then you should call
1171 * mtd_ooblayout_free(mtd, section++, oobfree) until it returns -ERANGE.
1172 *
1173 * Returns zero on success, a negative error code otherwise.
1174 */
1175int mtd_ooblayout_free(struct mtd_info *mtd, int section,
1176 struct mtd_oob_region *oobfree)
1177{
1178 memset(oobfree, 0, sizeof(*oobfree));
1179
1180 if (!mtd || section < 0)
1181 return -EINVAL;
1182
Simon Glass8d38a842020-02-03 07:35:56 -07001183 if (!mtd->ooblayout || !mtd->ooblayout->rfree)
Boris Brezillon13f3b042017-11-22 02:38:23 +09001184 return -ENOTSUPP;
1185
Simon Glass8d38a842020-02-03 07:35:56 -07001186 return mtd->ooblayout->rfree(mtd, section, oobfree);
Boris Brezillon13f3b042017-11-22 02:38:23 +09001187}
1188EXPORT_SYMBOL_GPL(mtd_ooblayout_free);
1189
1190/**
1191 * mtd_ooblayout_find_region - Find the region attached to a specific byte
1192 * @mtd: mtd info structure
1193 * @byte: the byte we are searching for
1194 * @sectionp: pointer where the section id will be stored
1195 * @oobregion: used to retrieve the ECC position
1196 * @iter: iterator function. Should be either mtd_ooblayout_free or
1197 * mtd_ooblayout_ecc depending on the region type you're searching for
1198 *
1199 * This function returns the section id and oobregion information of a
1200 * specific byte. For example, say you want to know where the 4th ECC byte is
1201 * stored, you'll use:
1202 *
1203 * mtd_ooblayout_find_region(mtd, 3, &section, &oobregion, mtd_ooblayout_ecc);
1204 *
1205 * Returns zero on success, a negative error code otherwise.
1206 */
1207static int mtd_ooblayout_find_region(struct mtd_info *mtd, int byte,
1208 int *sectionp, struct mtd_oob_region *oobregion,
1209 int (*iter)(struct mtd_info *,
1210 int section,
1211 struct mtd_oob_region *oobregion))
1212{
1213 int pos = 0, ret, section = 0;
1214
1215 memset(oobregion, 0, sizeof(*oobregion));
1216
1217 while (1) {
1218 ret = iter(mtd, section, oobregion);
1219 if (ret)
1220 return ret;
1221
1222 if (pos + oobregion->length > byte)
1223 break;
1224
1225 pos += oobregion->length;
1226 section++;
1227 }
1228
1229 /*
1230 * Adjust region info to make it start at the beginning at the
1231 * 'start' ECC byte.
1232 */
1233 oobregion->offset += byte - pos;
1234 oobregion->length -= byte - pos;
1235 *sectionp = section;
1236
1237 return 0;
1238}
1239
1240/**
1241 * mtd_ooblayout_find_eccregion - Find the ECC region attached to a specific
1242 * ECC byte
1243 * @mtd: mtd info structure
1244 * @eccbyte: the byte we are searching for
1245 * @sectionp: pointer where the section id will be stored
1246 * @oobregion: OOB region information
1247 *
1248 * Works like mtd_ooblayout_find_region() except it searches for a specific ECC
1249 * byte.
1250 *
1251 * Returns zero on success, a negative error code otherwise.
1252 */
1253int mtd_ooblayout_find_eccregion(struct mtd_info *mtd, int eccbyte,
1254 int *section,
1255 struct mtd_oob_region *oobregion)
1256{
1257 return mtd_ooblayout_find_region(mtd, eccbyte, section, oobregion,
1258 mtd_ooblayout_ecc);
1259}
1260EXPORT_SYMBOL_GPL(mtd_ooblayout_find_eccregion);
1261
1262/**
1263 * mtd_ooblayout_get_bytes - Extract OOB bytes from the oob buffer
1264 * @mtd: mtd info structure
1265 * @buf: destination buffer to store OOB bytes
1266 * @oobbuf: OOB buffer
1267 * @start: first byte to retrieve
1268 * @nbytes: number of bytes to retrieve
1269 * @iter: section iterator
1270 *
1271 * Extract bytes attached to a specific category (ECC or free)
1272 * from the OOB buffer and copy them into buf.
1273 *
1274 * Returns zero on success, a negative error code otherwise.
1275 */
1276static int mtd_ooblayout_get_bytes(struct mtd_info *mtd, u8 *buf,
1277 const u8 *oobbuf, int start, int nbytes,
1278 int (*iter)(struct mtd_info *,
1279 int section,
1280 struct mtd_oob_region *oobregion))
1281{
1282 struct mtd_oob_region oobregion;
1283 int section, ret;
1284
1285 ret = mtd_ooblayout_find_region(mtd, start, &section,
1286 &oobregion, iter);
1287
1288 while (!ret) {
1289 int cnt;
1290
1291 cnt = min_t(int, nbytes, oobregion.length);
1292 memcpy(buf, oobbuf + oobregion.offset, cnt);
1293 buf += cnt;
1294 nbytes -= cnt;
1295
1296 if (!nbytes)
1297 break;
1298
1299 ret = iter(mtd, ++section, &oobregion);
1300 }
1301
1302 return ret;
1303}
1304
1305/**
1306 * mtd_ooblayout_set_bytes - put OOB bytes into the oob buffer
1307 * @mtd: mtd info structure
1308 * @buf: source buffer to get OOB bytes from
1309 * @oobbuf: OOB buffer
1310 * @start: first OOB byte to set
1311 * @nbytes: number of OOB bytes to set
1312 * @iter: section iterator
1313 *
1314 * Fill the OOB buffer with data provided in buf. The category (ECC or free)
1315 * is selected by passing the appropriate iterator.
1316 *
1317 * Returns zero on success, a negative error code otherwise.
1318 */
1319static int mtd_ooblayout_set_bytes(struct mtd_info *mtd, const u8 *buf,
1320 u8 *oobbuf, int start, int nbytes,
1321 int (*iter)(struct mtd_info *,
1322 int section,
1323 struct mtd_oob_region *oobregion))
1324{
1325 struct mtd_oob_region oobregion;
1326 int section, ret;
1327
1328 ret = mtd_ooblayout_find_region(mtd, start, &section,
1329 &oobregion, iter);
1330
1331 while (!ret) {
1332 int cnt;
1333
1334 cnt = min_t(int, nbytes, oobregion.length);
1335 memcpy(oobbuf + oobregion.offset, buf, cnt);
1336 buf += cnt;
1337 nbytes -= cnt;
1338
1339 if (!nbytes)
1340 break;
1341
1342 ret = iter(mtd, ++section, &oobregion);
1343 }
1344
1345 return ret;
1346}
1347
1348/**
1349 * mtd_ooblayout_count_bytes - count the number of bytes in a OOB category
1350 * @mtd: mtd info structure
1351 * @iter: category iterator
1352 *
1353 * Count the number of bytes in a given category.
1354 *
1355 * Returns a positive value on success, a negative error code otherwise.
1356 */
1357static int mtd_ooblayout_count_bytes(struct mtd_info *mtd,
1358 int (*iter)(struct mtd_info *,
1359 int section,
1360 struct mtd_oob_region *oobregion))
1361{
1362 struct mtd_oob_region oobregion;
1363 int section = 0, ret, nbytes = 0;
1364
1365 while (1) {
1366 ret = iter(mtd, section++, &oobregion);
1367 if (ret) {
1368 if (ret == -ERANGE)
1369 ret = nbytes;
1370 break;
1371 }
1372
1373 nbytes += oobregion.length;
1374 }
1375
1376 return ret;
1377}
1378
1379/**
1380 * mtd_ooblayout_get_eccbytes - extract ECC bytes from the oob buffer
1381 * @mtd: mtd info structure
1382 * @eccbuf: destination buffer to store ECC bytes
1383 * @oobbuf: OOB buffer
1384 * @start: first ECC byte to retrieve
1385 * @nbytes: number of ECC bytes to retrieve
1386 *
1387 * Works like mtd_ooblayout_get_bytes(), except it acts on ECC bytes.
1388 *
1389 * Returns zero on success, a negative error code otherwise.
1390 */
1391int mtd_ooblayout_get_eccbytes(struct mtd_info *mtd, u8 *eccbuf,
1392 const u8 *oobbuf, int start, int nbytes)
1393{
1394 return mtd_ooblayout_get_bytes(mtd, eccbuf, oobbuf, start, nbytes,
1395 mtd_ooblayout_ecc);
1396}
1397EXPORT_SYMBOL_GPL(mtd_ooblayout_get_eccbytes);
1398
1399/**
1400 * mtd_ooblayout_set_eccbytes - set ECC bytes into the oob buffer
1401 * @mtd: mtd info structure
1402 * @eccbuf: source buffer to get ECC bytes from
1403 * @oobbuf: OOB buffer
1404 * @start: first ECC byte to set
1405 * @nbytes: number of ECC bytes to set
1406 *
1407 * Works like mtd_ooblayout_set_bytes(), except it acts on ECC bytes.
1408 *
1409 * Returns zero on success, a negative error code otherwise.
1410 */
1411int mtd_ooblayout_set_eccbytes(struct mtd_info *mtd, const u8 *eccbuf,
1412 u8 *oobbuf, int start, int nbytes)
1413{
1414 return mtd_ooblayout_set_bytes(mtd, eccbuf, oobbuf, start, nbytes,
1415 mtd_ooblayout_ecc);
1416}
1417EXPORT_SYMBOL_GPL(mtd_ooblayout_set_eccbytes);
1418
1419/**
1420 * mtd_ooblayout_get_databytes - extract data bytes from the oob buffer
1421 * @mtd: mtd info structure
1422 * @databuf: destination buffer to store ECC bytes
1423 * @oobbuf: OOB buffer
1424 * @start: first ECC byte to retrieve
1425 * @nbytes: number of ECC bytes to retrieve
1426 *
1427 * Works like mtd_ooblayout_get_bytes(), except it acts on free bytes.
1428 *
1429 * Returns zero on success, a negative error code otherwise.
1430 */
1431int mtd_ooblayout_get_databytes(struct mtd_info *mtd, u8 *databuf,
1432 const u8 *oobbuf, int start, int nbytes)
1433{
1434 return mtd_ooblayout_get_bytes(mtd, databuf, oobbuf, start, nbytes,
1435 mtd_ooblayout_free);
1436}
1437EXPORT_SYMBOL_GPL(mtd_ooblayout_get_databytes);
1438
1439/**
1440 * mtd_ooblayout_get_eccbytes - set data bytes into the oob buffer
1441 * @mtd: mtd info structure
1442 * @eccbuf: source buffer to get data bytes from
1443 * @oobbuf: OOB buffer
1444 * @start: first ECC byte to set
1445 * @nbytes: number of ECC bytes to set
1446 *
1447 * Works like mtd_ooblayout_get_bytes(), except it acts on free bytes.
1448 *
1449 * Returns zero on success, a negative error code otherwise.
1450 */
1451int mtd_ooblayout_set_databytes(struct mtd_info *mtd, const u8 *databuf,
1452 u8 *oobbuf, int start, int nbytes)
1453{
1454 return mtd_ooblayout_set_bytes(mtd, databuf, oobbuf, start, nbytes,
1455 mtd_ooblayout_free);
1456}
1457EXPORT_SYMBOL_GPL(mtd_ooblayout_set_databytes);
1458
1459/**
1460 * mtd_ooblayout_count_freebytes - count the number of free bytes in OOB
1461 * @mtd: mtd info structure
1462 *
1463 * Works like mtd_ooblayout_count_bytes(), except it count free bytes.
1464 *
1465 * Returns zero on success, a negative error code otherwise.
1466 */
1467int mtd_ooblayout_count_freebytes(struct mtd_info *mtd)
1468{
1469 return mtd_ooblayout_count_bytes(mtd, mtd_ooblayout_free);
1470}
1471EXPORT_SYMBOL_GPL(mtd_ooblayout_count_freebytes);
1472
1473/**
1474 * mtd_ooblayout_count_freebytes - count the number of ECC bytes in OOB
1475 * @mtd: mtd info structure
1476 *
1477 * Works like mtd_ooblayout_count_bytes(), except it count ECC bytes.
1478 *
1479 * Returns zero on success, a negative error code otherwise.
1480 */
1481int mtd_ooblayout_count_eccbytes(struct mtd_info *mtd)
1482{
1483 return mtd_ooblayout_count_bytes(mtd, mtd_ooblayout_ecc);
1484}
1485EXPORT_SYMBOL_GPL(mtd_ooblayout_count_eccbytes);
1486
Sergey Lapindfe64e22013-01-14 03:46:50 +00001487/*
1488 * Method to access the protection register area, present in some flash
1489 * devices. The user data is one time programmable but the factory data is read
1490 * only.
1491 */
Heiko Schocher4e67c572014-07-15 16:08:43 +02001492int mtd_get_fact_prot_info(struct mtd_info *mtd, size_t len, size_t *retlen,
1493 struct otp_info *buf)
Sergey Lapindfe64e22013-01-14 03:46:50 +00001494{
1495 if (!mtd->_get_fact_prot_info)
1496 return -EOPNOTSUPP;
1497 if (!len)
1498 return 0;
Heiko Schocher4e67c572014-07-15 16:08:43 +02001499 return mtd->_get_fact_prot_info(mtd, len, retlen, buf);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001500}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001501EXPORT_SYMBOL_GPL(mtd_get_fact_prot_info);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001502
1503int mtd_read_fact_prot_reg(struct mtd_info *mtd, loff_t from, size_t len,
1504 size_t *retlen, u_char *buf)
1505{
1506 *retlen = 0;
1507 if (!mtd->_read_fact_prot_reg)
1508 return -EOPNOTSUPP;
1509 if (!len)
1510 return 0;
1511 return mtd->_read_fact_prot_reg(mtd, from, len, retlen, buf);
1512}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001513EXPORT_SYMBOL_GPL(mtd_read_fact_prot_reg);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001514
Heiko Schocher4e67c572014-07-15 16:08:43 +02001515int mtd_get_user_prot_info(struct mtd_info *mtd, size_t len, size_t *retlen,
1516 struct otp_info *buf)
Sergey Lapindfe64e22013-01-14 03:46:50 +00001517{
1518 if (!mtd->_get_user_prot_info)
1519 return -EOPNOTSUPP;
1520 if (!len)
1521 return 0;
Heiko Schocher4e67c572014-07-15 16:08:43 +02001522 return mtd->_get_user_prot_info(mtd, len, retlen, buf);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001523}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001524EXPORT_SYMBOL_GPL(mtd_get_user_prot_info);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001525
1526int mtd_read_user_prot_reg(struct mtd_info *mtd, loff_t from, size_t len,
1527 size_t *retlen, u_char *buf)
1528{
1529 *retlen = 0;
1530 if (!mtd->_read_user_prot_reg)
1531 return -EOPNOTSUPP;
1532 if (!len)
1533 return 0;
1534 return mtd->_read_user_prot_reg(mtd, from, len, retlen, buf);
1535}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001536EXPORT_SYMBOL_GPL(mtd_read_user_prot_reg);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001537
1538int mtd_write_user_prot_reg(struct mtd_info *mtd, loff_t to, size_t len,
1539 size_t *retlen, u_char *buf)
1540{
Heiko Schocher4e67c572014-07-15 16:08:43 +02001541 int ret;
1542
Sergey Lapindfe64e22013-01-14 03:46:50 +00001543 *retlen = 0;
1544 if (!mtd->_write_user_prot_reg)
1545 return -EOPNOTSUPP;
1546 if (!len)
1547 return 0;
Heiko Schocher4e67c572014-07-15 16:08:43 +02001548 ret = mtd->_write_user_prot_reg(mtd, to, len, retlen, buf);
1549 if (ret)
1550 return ret;
1551
1552 /*
1553 * If no data could be written at all, we are out of memory and
1554 * must return -ENOSPC.
1555 */
1556 return (*retlen) ? 0 : -ENOSPC;
Sergey Lapindfe64e22013-01-14 03:46:50 +00001557}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001558EXPORT_SYMBOL_GPL(mtd_write_user_prot_reg);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001559
1560int mtd_lock_user_prot_reg(struct mtd_info *mtd, loff_t from, size_t len)
1561{
1562 if (!mtd->_lock_user_prot_reg)
1563 return -EOPNOTSUPP;
1564 if (!len)
1565 return 0;
1566 return mtd->_lock_user_prot_reg(mtd, from, len);
1567}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001568EXPORT_SYMBOL_GPL(mtd_lock_user_prot_reg);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001569
1570/* Chip-supported device locking */
1571int mtd_lock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
1572{
1573 if (!mtd->_lock)
1574 return -EOPNOTSUPP;
1575 if (ofs < 0 || ofs > mtd->size || len > mtd->size - ofs)
1576 return -EINVAL;
1577 if (!len)
1578 return 0;
1579 return mtd->_lock(mtd, ofs, len);
1580}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001581EXPORT_SYMBOL_GPL(mtd_lock);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001582
1583int mtd_unlock(struct mtd_info *mtd, loff_t ofs, uint64_t len)
1584{
1585 if (!mtd->_unlock)
1586 return -EOPNOTSUPP;
1587 if (ofs < 0 || ofs > mtd->size || len > mtd->size - ofs)
1588 return -EINVAL;
1589 if (!len)
1590 return 0;
1591 return mtd->_unlock(mtd, ofs, len);
1592}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001593EXPORT_SYMBOL_GPL(mtd_unlock);
1594
1595int mtd_is_locked(struct mtd_info *mtd, loff_t ofs, uint64_t len)
1596{
1597 if (!mtd->_is_locked)
1598 return -EOPNOTSUPP;
1599 if (ofs < 0 || ofs > mtd->size || len > mtd->size - ofs)
1600 return -EINVAL;
1601 if (!len)
1602 return 0;
1603 return mtd->_is_locked(mtd, ofs, len);
1604}
1605EXPORT_SYMBOL_GPL(mtd_is_locked);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001606
Ezequiel Garcia86a720a2014-05-21 19:06:12 -03001607int mtd_block_isreserved(struct mtd_info *mtd, loff_t ofs)
Sergey Lapindfe64e22013-01-14 03:46:50 +00001608{
Sergey Lapindfe64e22013-01-14 03:46:50 +00001609 if (ofs < 0 || ofs > mtd->size)
1610 return -EINVAL;
Ezequiel Garcia86a720a2014-05-21 19:06:12 -03001611 if (!mtd->_block_isreserved)
1612 return 0;
1613 return mtd->_block_isreserved(mtd, ofs);
1614}
1615EXPORT_SYMBOL_GPL(mtd_block_isreserved);
1616
1617int mtd_block_isbad(struct mtd_info *mtd, loff_t ofs)
1618{
1619 if (ofs < 0 || ofs > mtd->size)
1620 return -EINVAL;
1621 if (!mtd->_block_isbad)
1622 return 0;
Sergey Lapindfe64e22013-01-14 03:46:50 +00001623 return mtd->_block_isbad(mtd, ofs);
1624}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001625EXPORT_SYMBOL_GPL(mtd_block_isbad);
Sergey Lapindfe64e22013-01-14 03:46:50 +00001626
1627int mtd_block_markbad(struct mtd_info *mtd, loff_t ofs)
1628{
1629 if (!mtd->_block_markbad)
1630 return -EOPNOTSUPP;
1631 if (ofs < 0 || ofs > mtd->size)
1632 return -EINVAL;
1633 if (!(mtd->flags & MTD_WRITEABLE))
1634 return -EROFS;
1635 return mtd->_block_markbad(mtd, ofs);
1636}
Heiko Schocherff94bc42014-06-24 10:10:04 +02001637EXPORT_SYMBOL_GPL(mtd_block_markbad);
1638
1639#ifndef __UBOOT__
1640/*
1641 * default_mtd_writev - the default writev method
1642 * @mtd: mtd device description object pointer
1643 * @vecs: the vectors to write
1644 * @count: count of vectors in @vecs
1645 * @to: the MTD device offset to write to
1646 * @retlen: on exit contains the count of bytes written to the MTD device.
1647 *
1648 * This function returns zero in case of success and a negative error code in
1649 * case of failure.
1650 */
1651static int default_mtd_writev(struct mtd_info *mtd, const struct kvec *vecs,
1652 unsigned long count, loff_t to, size_t *retlen)
1653{
1654 unsigned long i;
1655 size_t totlen = 0, thislen;
1656 int ret = 0;
1657
1658 for (i = 0; i < count; i++) {
1659 if (!vecs[i].iov_len)
1660 continue;
1661 ret = mtd_write(mtd, to, vecs[i].iov_len, &thislen,
1662 vecs[i].iov_base);
1663 totlen += thislen;
1664 if (ret || thislen != vecs[i].iov_len)
1665 break;
1666 to += vecs[i].iov_len;
1667 }
1668 *retlen = totlen;
1669 return ret;
1670}
1671
1672/*
1673 * mtd_writev - the vector-based MTD write method
1674 * @mtd: mtd device description object pointer
1675 * @vecs: the vectors to write
1676 * @count: count of vectors in @vecs
1677 * @to: the MTD device offset to write to
1678 * @retlen: on exit contains the count of bytes written to the MTD device.
1679 *
1680 * This function returns zero in case of success and a negative error code in
1681 * case of failure.
1682 */
1683int mtd_writev(struct mtd_info *mtd, const struct kvec *vecs,
1684 unsigned long count, loff_t to, size_t *retlen)
1685{
1686 *retlen = 0;
1687 if (!(mtd->flags & MTD_WRITEABLE))
1688 return -EROFS;
1689 if (!mtd->_writev)
1690 return default_mtd_writev(mtd, vecs, count, to, retlen);
1691 return mtd->_writev(mtd, vecs, count, to, retlen);
1692}
1693EXPORT_SYMBOL_GPL(mtd_writev);
1694
1695/**
1696 * mtd_kmalloc_up_to - allocate a contiguous buffer up to the specified size
1697 * @mtd: mtd device description object pointer
1698 * @size: a pointer to the ideal or maximum size of the allocation, points
1699 * to the actual allocation size on success.
1700 *
1701 * This routine attempts to allocate a contiguous kernel buffer up to
1702 * the specified size, backing off the size of the request exponentially
1703 * until the request succeeds or until the allocation size falls below
1704 * the system page size. This attempts to make sure it does not adversely
1705 * impact system performance, so when allocating more than one page, we
1706 * ask the memory allocator to avoid re-trying, swapping, writing back
1707 * or performing I/O.
1708 *
1709 * Note, this function also makes sure that the allocated buffer is aligned to
1710 * the MTD device's min. I/O unit, i.e. the "mtd->writesize" value.
1711 *
1712 * This is called, for example by mtd_{read,write} and jffs2_scan_medium,
1713 * to handle smaller (i.e. degraded) buffer allocations under low- or
1714 * fragmented-memory situations where such reduced allocations, from a
1715 * requested ideal, are allowed.
1716 *
1717 * Returns a pointer to the allocated buffer on success; otherwise, NULL.
1718 */
1719void *mtd_kmalloc_up_to(const struct mtd_info *mtd, size_t *size)
1720{
1721 gfp_t flags = __GFP_NOWARN | __GFP_WAIT |
1722 __GFP_NORETRY | __GFP_NO_KSWAPD;
1723 size_t min_alloc = max_t(size_t, mtd->writesize, PAGE_SIZE);
1724 void *kbuf;
1725
1726 *size = min_t(size_t, *size, KMALLOC_MAX_SIZE);
1727
1728 while (*size > min_alloc) {
1729 kbuf = kmalloc(*size, flags);
1730 if (kbuf)
1731 return kbuf;
1732
1733 *size >>= 1;
1734 *size = ALIGN(*size, mtd->writesize);
1735 }
1736
1737 /*
1738 * For the last resort allocation allow 'kmalloc()' to do all sorts of
1739 * things (write-back, dropping caches, etc) by using GFP_KERNEL.
1740 */
1741 return kmalloc(*size, GFP_KERNEL);
1742}
1743EXPORT_SYMBOL_GPL(mtd_kmalloc_up_to);
1744#endif
1745
1746#ifdef CONFIG_PROC_FS
1747
1748/*====================================================================*/
1749/* Support for /proc/mtd */
1750
1751static int mtd_proc_show(struct seq_file *m, void *v)
1752{
1753 struct mtd_info *mtd;
1754
1755 seq_puts(m, "dev: size erasesize name\n");
1756 mutex_lock(&mtd_table_mutex);
1757 mtd_for_each_device(mtd) {
1758 seq_printf(m, "mtd%d: %8.8llx %8.8x \"%s\"\n",
1759 mtd->index, (unsigned long long)mtd->size,
1760 mtd->erasesize, mtd->name);
1761 }
1762 mutex_unlock(&mtd_table_mutex);
1763 return 0;
1764}
1765
1766static int mtd_proc_open(struct inode *inode, struct file *file)
1767{
1768 return single_open(file, mtd_proc_show, NULL);
1769}
1770
1771static const struct file_operations mtd_proc_ops = {
1772 .open = mtd_proc_open,
1773 .read = seq_read,
1774 .llseek = seq_lseek,
1775 .release = single_release,
1776};
1777#endif /* CONFIG_PROC_FS */
1778
1779/*====================================================================*/
1780/* Init code */
1781
1782#ifndef __UBOOT__
1783static int __init mtd_bdi_init(struct backing_dev_info *bdi, const char *name)
1784{
1785 int ret;
1786
1787 ret = bdi_init(bdi);
1788 if (!ret)
1789 ret = bdi_register(bdi, NULL, "%s", name);
1790
1791 if (ret)
1792 bdi_destroy(bdi);
1793
1794 return ret;
1795}
1796
1797static struct proc_dir_entry *proc_mtd;
1798
1799static int __init init_mtd(void)
1800{
1801 int ret;
1802
1803 ret = class_register(&mtd_class);
1804 if (ret)
1805 goto err_reg;
1806
1807 ret = mtd_bdi_init(&mtd_bdi_unmappable, "mtd-unmap");
1808 if (ret)
1809 goto err_bdi1;
1810
1811 ret = mtd_bdi_init(&mtd_bdi_ro_mappable, "mtd-romap");
1812 if (ret)
1813 goto err_bdi2;
1814
1815 ret = mtd_bdi_init(&mtd_bdi_rw_mappable, "mtd-rwmap");
1816 if (ret)
1817 goto err_bdi3;
1818
1819 proc_mtd = proc_create("mtd", 0, NULL, &mtd_proc_ops);
1820
1821 ret = init_mtdchar();
1822 if (ret)
1823 goto out_procfs;
1824
1825 return 0;
1826
1827out_procfs:
1828 if (proc_mtd)
1829 remove_proc_entry("mtd", NULL);
1830err_bdi3:
1831 bdi_destroy(&mtd_bdi_ro_mappable);
1832err_bdi2:
1833 bdi_destroy(&mtd_bdi_unmappable);
1834err_bdi1:
1835 class_unregister(&mtd_class);
1836err_reg:
1837 pr_err("Error registering mtd class or bdi: %d\n", ret);
1838 return ret;
1839}
1840
1841static void __exit cleanup_mtd(void)
1842{
1843 cleanup_mtdchar();
1844 if (proc_mtd)
1845 remove_proc_entry("mtd", NULL);
1846 class_unregister(&mtd_class);
1847 bdi_destroy(&mtd_bdi_unmappable);
1848 bdi_destroy(&mtd_bdi_ro_mappable);
1849 bdi_destroy(&mtd_bdi_rw_mappable);
1850}
1851
1852module_init(init_mtd);
1853module_exit(cleanup_mtd);
1854#endif
1855
1856MODULE_LICENSE("GPL");
1857MODULE_AUTHOR("David Woodhouse <dwmw2@infradead.org>");
1858MODULE_DESCRIPTION("Core MTD registration and access routines");