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Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001/*
2 * Copyright (c) International Business Machines Corp., 2006
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License as published by
6 * the Free Software Foundation; either version 2 of the License, or
7 * (at your option) any later version.
8 *
9 * This program is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
12 * the GNU General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public License
15 * along with this program; if not, write to the Free Software
16 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
17 *
18 * Authors: Artem Bityutskiy (Битюцкий Артём), Thomas Gleixner
19 */
20
21/*
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030022 * UBI wear-leveling sub-system.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040023 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030024 * This sub-system is responsible for wear-leveling. It works in terms of
25 * physical* eraseblocks and erase counters and knows nothing about logical
26 * eraseblocks, volumes, etc. From this sub-system's perspective all physical
27 * eraseblocks are of two types - used and free. Used physical eraseblocks are
28 * those that were "get" by the 'ubi_wl_get_peb()' function, and free physical
29 * eraseblocks are those that were put by the 'ubi_wl_put_peb()' function.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040030 *
31 * Physical eraseblocks returned by 'ubi_wl_get_peb()' have only erase counter
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030032 * header. The rest of the physical eraseblock contains only %0xFF bytes.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040033 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030034 * When physical eraseblocks are returned to the WL sub-system by means of the
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040035 * 'ubi_wl_put_peb()' function, they are scheduled for erasure. The erasure is
36 * done asynchronously in context of the per-UBI device background thread,
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030037 * which is also managed by the WL sub-system.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040038 *
39 * The wear-leveling is ensured by means of moving the contents of used
40 * physical eraseblocks with low erase counter to free physical eraseblocks
41 * with high erase counter.
42 *
43 * The 'ubi_wl_get_peb()' function accepts data type hints which help to pick
44 * an "optimal" physical eraseblock. For example, when it is known that the
45 * physical eraseblock will be "put" soon because it contains short-term data,
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030046 * the WL sub-system may pick a free physical eraseblock with low erase
47 * counter, and so forth.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040048 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030049 * If the WL sub-system fails to erase a physical eraseblock, it marks it as
50 * bad.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040051 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030052 * This sub-system is also responsible for scrubbing. If a bit-flip is detected
53 * in a physical eraseblock, it has to be moved. Technically this is the same
54 * as moving it for wear-leveling reasons.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040055 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030056 * As it was said, for the UBI sub-system all physical eraseblocks are either
57 * "free" or "used". Free eraseblock are kept in the @wl->free RB-tree, while
58 * used eraseblocks are kept in a set of different RB-trees: @wl->used,
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040059 * @wl->prot.pnum, @wl->prot.aec, and @wl->scrub.
60 *
61 * Note, in this implementation, we keep a small in-RAM object for each physical
62 * eraseblock. This is surely not a scalable solution. But it appears to be good
63 * enough for moderately large flashes and it is simple. In future, one may
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030064 * re-work this sub-system and make it more scalable.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040065 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030066 * At the moment this sub-system does not utilize the sequence number, which
67 * was introduced relatively recently. But it would be wise to do this because
68 * the sequence number of a logical eraseblock characterizes how old is it. For
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040069 * example, when we move a PEB with low erase counter, and we need to pick the
70 * target PEB, we pick a PEB with the highest EC if our PEB is "old" and we
71 * pick target PEB with an average EC if our PEB is not very "old". This is a
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030072 * room for future re-works of the WL sub-system.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040073 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030074 * Note: the stuff with protection trees looks too complex and is difficult to
75 * understand. Should be fixed.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +040076 */
77
78#include <linux/slab.h>
79#include <linux/crc32.h>
80#include <linux/freezer.h>
81#include <linux/kthread.h>
82#include "ubi.h"
83
84/* Number of physical eraseblocks reserved for wear-leveling purposes */
85#define WL_RESERVED_PEBS 1
86
87/*
88 * How many erase cycles are short term, unknown, and long term physical
89 * eraseblocks protected.
90 */
91#define ST_PROTECTION 16
92#define U_PROTECTION 10
93#define LT_PROTECTION 4
94
95/*
96 * Maximum difference between two erase counters. If this threshold is
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +030097 * exceeded, the WL sub-system starts moving data from used physical
98 * eraseblocks with low erase counter to free physical eraseblocks with high
99 * erase counter.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400100 */
101#define UBI_WL_THRESHOLD CONFIG_MTD_UBI_WL_THRESHOLD
102
103/*
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +0300104 * When a physical eraseblock is moved, the WL sub-system has to pick the target
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400105 * physical eraseblock to move to. The simplest way would be just to pick the
106 * one with the highest erase counter. But in certain workloads this could lead
107 * to an unlimited wear of one or few physical eraseblock. Indeed, imagine a
108 * situation when the picked physical eraseblock is constantly erased after the
109 * data is written to it. So, we have a constant which limits the highest erase
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +0300110 * counter of the free physical eraseblock to pick. Namely, the WL sub-system
111 * does not pick eraseblocks with erase counter greater then the lowest erase
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400112 * counter plus %WL_FREE_MAX_DIFF.
113 */
114#define WL_FREE_MAX_DIFF (2*UBI_WL_THRESHOLD)
115
116/*
117 * Maximum number of consecutive background thread failures which is enough to
118 * switch to read-only mode.
119 */
120#define WL_MAX_FAILURES 32
121
122/**
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400123 * struct ubi_wl_prot_entry - PEB protection entry.
124 * @rb_pnum: link in the @wl->prot.pnum RB-tree
125 * @rb_aec: link in the @wl->prot.aec RB-tree
126 * @abs_ec: the absolute erase counter value when the protection ends
127 * @e: the wear-leveling entry of the physical eraseblock under protection
128 *
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +0300129 * When the WL sub-system returns a physical eraseblock, the physical
130 * eraseblock is protected from being moved for some "time". For this reason,
131 * the physical eraseblock is not directly moved from the @wl->free tree to the
132 * @wl->used tree. There is one more tree in between where this physical
133 * eraseblock is temporarily stored (@wl->prot).
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400134 *
135 * All this protection stuff is needed because:
136 * o we don't want to move physical eraseblocks just after we have given them
137 * to the user; instead, we first want to let users fill them up with data;
138 *
139 * o there is a chance that the user will put the physical eraseblock very
140 * soon, so it makes sense not to move it for some time, but wait; this is
141 * especially important in case of "short term" physical eraseblocks.
142 *
143 * Physical eraseblocks stay protected only for limited time. But the "time" is
144 * measured in erase cycles in this case. This is implemented with help of the
145 * absolute erase counter (@wl->abs_ec). When it reaches certain value, the
146 * physical eraseblocks are moved from the protection trees (@wl->prot.*) to
147 * the @wl->used tree.
148 *
149 * Protected physical eraseblocks are searched by physical eraseblock number
150 * (when they are put) and by the absolute erase counter (to check if it is
151 * time to move them to the @wl->used tree). So there are actually 2 RB-trees
152 * storing the protected physical eraseblocks: @wl->prot.pnum and
153 * @wl->prot.aec. They are referred to as the "protection" trees. The
154 * first one is indexed by the physical eraseblock number. The second one is
155 * indexed by the absolute erase counter. Both trees store
156 * &struct ubi_wl_prot_entry objects.
157 *
158 * Each physical eraseblock has 2 main states: free and used. The former state
159 * corresponds to the @wl->free tree. The latter state is split up on several
160 * sub-states:
161 * o the WL movement is allowed (@wl->used tree);
162 * o the WL movement is temporarily prohibited (@wl->prot.pnum and
163 * @wl->prot.aec trees);
164 * o scrubbing is needed (@wl->scrub tree).
165 *
166 * Depending on the sub-state, wear-leveling entries of the used physical
167 * eraseblocks may be kept in one of those trees.
168 */
169struct ubi_wl_prot_entry {
170 struct rb_node rb_pnum;
171 struct rb_node rb_aec;
172 unsigned long long abs_ec;
173 struct ubi_wl_entry *e;
174};
175
176/**
177 * struct ubi_work - UBI work description data structure.
178 * @list: a link in the list of pending works
179 * @func: worker function
180 * @priv: private data of the worker function
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400181 * @e: physical eraseblock to erase
182 * @torture: if the physical eraseblock has to be tortured
183 *
184 * The @func pointer points to the worker function. If the @cancel argument is
185 * not zero, the worker has to free the resources and exit immediately. The
186 * worker has to return zero in case of success and a negative error code in
187 * case of failure.
188 */
189struct ubi_work {
190 struct list_head list;
191 int (*func)(struct ubi_device *ubi, struct ubi_work *wrk, int cancel);
192 /* The below fields are only relevant to erasure works */
193 struct ubi_wl_entry *e;
194 int torture;
195};
196
197#ifdef CONFIG_MTD_UBI_DEBUG_PARANOID
Artem Bityutskiye88d6e102007-08-29 14:51:52 +0300198static int paranoid_check_ec(struct ubi_device *ubi, int pnum, int ec);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400199static int paranoid_check_in_wl_tree(struct ubi_wl_entry *e,
200 struct rb_root *root);
201#else
202#define paranoid_check_ec(ubi, pnum, ec) 0
203#define paranoid_check_in_wl_tree(e, root)
204#endif
205
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400206/**
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400207 * wl_tree_add - add a wear-leveling entry to a WL RB-tree.
208 * @e: the wear-leveling entry to add
209 * @root: the root of the tree
210 *
211 * Note, we use (erase counter, physical eraseblock number) pairs as keys in
212 * the @ubi->used and @ubi->free RB-trees.
213 */
214static void wl_tree_add(struct ubi_wl_entry *e, struct rb_root *root)
215{
216 struct rb_node **p, *parent = NULL;
217
218 p = &root->rb_node;
219 while (*p) {
220 struct ubi_wl_entry *e1;
221
222 parent = *p;
223 e1 = rb_entry(parent, struct ubi_wl_entry, rb);
224
225 if (e->ec < e1->ec)
226 p = &(*p)->rb_left;
227 else if (e->ec > e1->ec)
228 p = &(*p)->rb_right;
229 else {
230 ubi_assert(e->pnum != e1->pnum);
231 if (e->pnum < e1->pnum)
232 p = &(*p)->rb_left;
233 else
234 p = &(*p)->rb_right;
235 }
236 }
237
238 rb_link_node(&e->rb, parent, p);
239 rb_insert_color(&e->rb, root);
240}
241
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400242/**
243 * do_work - do one pending work.
244 * @ubi: UBI device description object
245 *
246 * This function returns zero in case of success and a negative error code in
247 * case of failure.
248 */
249static int do_work(struct ubi_device *ubi)
250{
251 int err;
252 struct ubi_work *wrk;
253
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200254 cond_resched();
255
Artem Bityutskiy593dd332007-12-18 15:54:35 +0200256 /*
257 * @ubi->work_sem is used to synchronize with the workers. Workers take
258 * it in read mode, so many of them may be doing works at a time. But
259 * the queue flush code has to be sure the whole queue of works is
260 * done, and it takes the mutex in write mode.
261 */
262 down_read(&ubi->work_sem);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400263 spin_lock(&ubi->wl_lock);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400264 if (list_empty(&ubi->works)) {
265 spin_unlock(&ubi->wl_lock);
Artem Bityutskiy593dd332007-12-18 15:54:35 +0200266 up_read(&ubi->work_sem);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400267 return 0;
268 }
269
270 wrk = list_entry(ubi->works.next, struct ubi_work, list);
271 list_del(&wrk->list);
Artem Bityutskiy16f557e2007-12-19 16:03:17 +0200272 ubi->works_count -= 1;
273 ubi_assert(ubi->works_count >= 0);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400274 spin_unlock(&ubi->wl_lock);
275
276 /*
277 * Call the worker function. Do not touch the work structure
278 * after this call as it will have been freed or reused by that
279 * time by the worker function.
280 */
281 err = wrk->func(ubi, wrk, 0);
282 if (err)
283 ubi_err("work failed with error code %d", err);
Artem Bityutskiy593dd332007-12-18 15:54:35 +0200284 up_read(&ubi->work_sem);
Artem Bityutskiy16f557e2007-12-19 16:03:17 +0200285
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400286 return err;
287}
288
289/**
290 * produce_free_peb - produce a free physical eraseblock.
291 * @ubi: UBI device description object
292 *
293 * This function tries to make a free PEB by means of synchronous execution of
294 * pending works. This may be needed if, for example the background thread is
295 * disabled. Returns zero in case of success and a negative error code in case
296 * of failure.
297 */
298static int produce_free_peb(struct ubi_device *ubi)
299{
300 int err;
301
302 spin_lock(&ubi->wl_lock);
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300303 while (!ubi->free.rb_node) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400304 spin_unlock(&ubi->wl_lock);
305
306 dbg_wl("do one work synchronously");
307 err = do_work(ubi);
308 if (err)
309 return err;
310
311 spin_lock(&ubi->wl_lock);
312 }
313 spin_unlock(&ubi->wl_lock);
314
315 return 0;
316}
317
318/**
319 * in_wl_tree - check if wear-leveling entry is present in a WL RB-tree.
320 * @e: the wear-leveling entry to check
321 * @root: the root of the tree
322 *
323 * This function returns non-zero if @e is in the @root RB-tree and zero if it
324 * is not.
325 */
326static int in_wl_tree(struct ubi_wl_entry *e, struct rb_root *root)
327{
328 struct rb_node *p;
329
330 p = root->rb_node;
331 while (p) {
332 struct ubi_wl_entry *e1;
333
334 e1 = rb_entry(p, struct ubi_wl_entry, rb);
335
336 if (e->pnum == e1->pnum) {
337 ubi_assert(e == e1);
338 return 1;
339 }
340
341 if (e->ec < e1->ec)
342 p = p->rb_left;
343 else if (e->ec > e1->ec)
344 p = p->rb_right;
345 else {
346 ubi_assert(e->pnum != e1->pnum);
347 if (e->pnum < e1->pnum)
348 p = p->rb_left;
349 else
350 p = p->rb_right;
351 }
352 }
353
354 return 0;
355}
356
357/**
358 * prot_tree_add - add physical eraseblock to protection trees.
359 * @ubi: UBI device description object
360 * @e: the physical eraseblock to add
361 * @pe: protection entry object to use
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200362 * @ec: for how many erase operations this PEB should be protected
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400363 *
364 * @wl->lock has to be locked.
365 */
366static void prot_tree_add(struct ubi_device *ubi, struct ubi_wl_entry *e,
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200367 struct ubi_wl_prot_entry *pe, int ec)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400368{
369 struct rb_node **p, *parent = NULL;
370 struct ubi_wl_prot_entry *pe1;
371
372 pe->e = e;
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200373 pe->abs_ec = ubi->abs_ec + ec;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400374
375 p = &ubi->prot.pnum.rb_node;
376 while (*p) {
377 parent = *p;
378 pe1 = rb_entry(parent, struct ubi_wl_prot_entry, rb_pnum);
379
380 if (e->pnum < pe1->e->pnum)
381 p = &(*p)->rb_left;
382 else
383 p = &(*p)->rb_right;
384 }
385 rb_link_node(&pe->rb_pnum, parent, p);
386 rb_insert_color(&pe->rb_pnum, &ubi->prot.pnum);
387
388 p = &ubi->prot.aec.rb_node;
389 parent = NULL;
390 while (*p) {
391 parent = *p;
392 pe1 = rb_entry(parent, struct ubi_wl_prot_entry, rb_aec);
393
394 if (pe->abs_ec < pe1->abs_ec)
395 p = &(*p)->rb_left;
396 else
397 p = &(*p)->rb_right;
398 }
399 rb_link_node(&pe->rb_aec, parent, p);
400 rb_insert_color(&pe->rb_aec, &ubi->prot.aec);
401}
402
403/**
404 * find_wl_entry - find wear-leveling entry closest to certain erase counter.
405 * @root: the RB-tree where to look for
406 * @max: highest possible erase counter
407 *
408 * This function looks for a wear leveling entry with erase counter closest to
409 * @max and less then @max.
410 */
411static struct ubi_wl_entry *find_wl_entry(struct rb_root *root, int max)
412{
413 struct rb_node *p;
414 struct ubi_wl_entry *e;
415
416 e = rb_entry(rb_first(root), struct ubi_wl_entry, rb);
417 max += e->ec;
418
419 p = root->rb_node;
420 while (p) {
421 struct ubi_wl_entry *e1;
422
423 e1 = rb_entry(p, struct ubi_wl_entry, rb);
424 if (e1->ec >= max)
425 p = p->rb_left;
426 else {
427 p = p->rb_right;
428 e = e1;
429 }
430 }
431
432 return e;
433}
434
435/**
436 * ubi_wl_get_peb - get a physical eraseblock.
437 * @ubi: UBI device description object
438 * @dtype: type of data which will be stored in this physical eraseblock
439 *
440 * This function returns a physical eraseblock in case of success and a
441 * negative error code in case of failure. Might sleep.
442 */
443int ubi_wl_get_peb(struct ubi_device *ubi, int dtype)
444{
445 int err, protect, medium_ec;
446 struct ubi_wl_entry *e, *first, *last;
447 struct ubi_wl_prot_entry *pe;
448
449 ubi_assert(dtype == UBI_LONGTERM || dtype == UBI_SHORTTERM ||
450 dtype == UBI_UNKNOWN);
451
Artem Bityutskiy33818bb2007-08-28 21:29:32 +0300452 pe = kmalloc(sizeof(struct ubi_wl_prot_entry), GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400453 if (!pe)
454 return -ENOMEM;
455
456retry:
457 spin_lock(&ubi->wl_lock);
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300458 if (!ubi->free.rb_node) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400459 if (ubi->works_count == 0) {
460 ubi_assert(list_empty(&ubi->works));
461 ubi_err("no free eraseblocks");
462 spin_unlock(&ubi->wl_lock);
463 kfree(pe);
464 return -ENOSPC;
465 }
466 spin_unlock(&ubi->wl_lock);
467
468 err = produce_free_peb(ubi);
469 if (err < 0) {
470 kfree(pe);
471 return err;
472 }
473 goto retry;
474 }
475
476 switch (dtype) {
Artem Bityutskiy9c9ec142008-07-18 13:19:52 +0300477 case UBI_LONGTERM:
478 /*
479 * For long term data we pick a physical eraseblock with high
480 * erase counter. But the highest erase counter we can pick is
481 * bounded by the the lowest erase counter plus
482 * %WL_FREE_MAX_DIFF.
483 */
484 e = find_wl_entry(&ubi->free, WL_FREE_MAX_DIFF);
485 protect = LT_PROTECTION;
486 break;
487 case UBI_UNKNOWN:
488 /*
489 * For unknown data we pick a physical eraseblock with medium
490 * erase counter. But we by no means can pick a physical
491 * eraseblock with erase counter greater or equivalent than the
492 * lowest erase counter plus %WL_FREE_MAX_DIFF.
493 */
494 first = rb_entry(rb_first(&ubi->free), struct ubi_wl_entry, rb);
495 last = rb_entry(rb_last(&ubi->free), struct ubi_wl_entry, rb);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400496
Artem Bityutskiy9c9ec142008-07-18 13:19:52 +0300497 if (last->ec - first->ec < WL_FREE_MAX_DIFF)
498 e = rb_entry(ubi->free.rb_node,
499 struct ubi_wl_entry, rb);
500 else {
501 medium_ec = (first->ec + WL_FREE_MAX_DIFF)/2;
502 e = find_wl_entry(&ubi->free, medium_ec);
503 }
504 protect = U_PROTECTION;
505 break;
506 case UBI_SHORTTERM:
507 /*
508 * For short term data we pick a physical eraseblock with the
509 * lowest erase counter as we expect it will be erased soon.
510 */
511 e = rb_entry(rb_first(&ubi->free), struct ubi_wl_entry, rb);
512 protect = ST_PROTECTION;
513 break;
514 default:
515 protect = 0;
516 e = NULL;
517 BUG();
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400518 }
519
520 /*
521 * Move the physical eraseblock to the protection trees where it will
522 * be protected from being moved for some time.
523 */
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300524 paranoid_check_in_wl_tree(e, &ubi->free);
525 rb_erase(&e->rb, &ubi->free);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400526 prot_tree_add(ubi, e, pe, protect);
527
528 dbg_wl("PEB %d EC %d, protection %d", e->pnum, e->ec, protect);
529 spin_unlock(&ubi->wl_lock);
530
531 return e->pnum;
532}
533
534/**
535 * prot_tree_del - remove a physical eraseblock from the protection trees
536 * @ubi: UBI device description object
537 * @pnum: the physical eraseblock to remove
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200538 *
539 * This function returns PEB @pnum from the protection trees and returns zero
540 * in case of success and %-ENODEV if the PEB was not found in the protection
541 * trees.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400542 */
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200543static int prot_tree_del(struct ubi_device *ubi, int pnum)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400544{
545 struct rb_node *p;
546 struct ubi_wl_prot_entry *pe = NULL;
547
548 p = ubi->prot.pnum.rb_node;
549 while (p) {
550
551 pe = rb_entry(p, struct ubi_wl_prot_entry, rb_pnum);
552
553 if (pnum == pe->e->pnum)
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200554 goto found;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400555
556 if (pnum < pe->e->pnum)
557 p = p->rb_left;
558 else
559 p = p->rb_right;
560 }
561
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200562 return -ENODEV;
563
564found:
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400565 ubi_assert(pe->e->pnum == pnum);
566 rb_erase(&pe->rb_aec, &ubi->prot.aec);
567 rb_erase(&pe->rb_pnum, &ubi->prot.pnum);
568 kfree(pe);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200569 return 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400570}
571
572/**
573 * sync_erase - synchronously erase a physical eraseblock.
574 * @ubi: UBI device description object
575 * @e: the the physical eraseblock to erase
576 * @torture: if the physical eraseblock has to be tortured
577 *
578 * This function returns zero in case of success and a negative error code in
579 * case of failure.
580 */
Artem Bityutskiy9c9ec142008-07-18 13:19:52 +0300581static int sync_erase(struct ubi_device *ubi, struct ubi_wl_entry *e,
582 int torture)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400583{
584 int err;
585 struct ubi_ec_hdr *ec_hdr;
586 unsigned long long ec = e->ec;
587
588 dbg_wl("erase PEB %d, old EC %llu", e->pnum, ec);
589
590 err = paranoid_check_ec(ubi, e->pnum, e->ec);
591 if (err > 0)
592 return -EINVAL;
593
Artem Bityutskiy33818bb2007-08-28 21:29:32 +0300594 ec_hdr = kzalloc(ubi->ec_hdr_alsize, GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400595 if (!ec_hdr)
596 return -ENOMEM;
597
598 err = ubi_io_sync_erase(ubi, e->pnum, torture);
599 if (err < 0)
600 goto out_free;
601
602 ec += err;
603 if (ec > UBI_MAX_ERASECOUNTER) {
604 /*
605 * Erase counter overflow. Upgrade UBI and use 64-bit
606 * erase counters internally.
607 */
608 ubi_err("erase counter overflow at PEB %d, EC %llu",
609 e->pnum, ec);
610 err = -EINVAL;
611 goto out_free;
612 }
613
614 dbg_wl("erased PEB %d, new EC %llu", e->pnum, ec);
615
Christoph Hellwig3261ebd2007-05-21 17:41:46 +0300616 ec_hdr->ec = cpu_to_be64(ec);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400617
618 err = ubi_io_write_ec_hdr(ubi, e->pnum, ec_hdr);
619 if (err)
620 goto out_free;
621
622 e->ec = ec;
623 spin_lock(&ubi->wl_lock);
624 if (e->ec > ubi->max_ec)
625 ubi->max_ec = e->ec;
626 spin_unlock(&ubi->wl_lock);
627
628out_free:
629 kfree(ec_hdr);
630 return err;
631}
632
633/**
Artem Bityutskiyebaaf1a2008-07-18 13:34:32 +0300634 * check_protection_over - check if it is time to stop protecting some PEBs.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400635 * @ubi: UBI device description object
636 *
637 * This function is called after each erase operation, when the absolute erase
638 * counter is incremented, to check if some physical eraseblock have not to be
639 * protected any longer. These physical eraseblocks are moved from the
640 * protection trees to the used tree.
641 */
642static void check_protection_over(struct ubi_device *ubi)
643{
644 struct ubi_wl_prot_entry *pe;
645
646 /*
647 * There may be several protected physical eraseblock to remove,
648 * process them all.
649 */
650 while (1) {
651 spin_lock(&ubi->wl_lock);
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300652 if (!ubi->prot.aec.rb_node) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400653 spin_unlock(&ubi->wl_lock);
654 break;
655 }
656
657 pe = rb_entry(rb_first(&ubi->prot.aec),
658 struct ubi_wl_prot_entry, rb_aec);
659
660 if (pe->abs_ec > ubi->abs_ec) {
661 spin_unlock(&ubi->wl_lock);
662 break;
663 }
664
665 dbg_wl("PEB %d protection over, abs_ec %llu, PEB abs_ec %llu",
666 pe->e->pnum, ubi->abs_ec, pe->abs_ec);
667 rb_erase(&pe->rb_aec, &ubi->prot.aec);
668 rb_erase(&pe->rb_pnum, &ubi->prot.pnum);
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300669 wl_tree_add(pe->e, &ubi->used);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400670 spin_unlock(&ubi->wl_lock);
671
672 kfree(pe);
673 cond_resched();
674 }
675}
676
677/**
678 * schedule_ubi_work - schedule a work.
679 * @ubi: UBI device description object
680 * @wrk: the work to schedule
681 *
682 * This function enqueues a work defined by @wrk to the tail of the pending
683 * works list.
684 */
685static void schedule_ubi_work(struct ubi_device *ubi, struct ubi_work *wrk)
686{
687 spin_lock(&ubi->wl_lock);
688 list_add_tail(&wrk->list, &ubi->works);
689 ubi_assert(ubi->works_count >= 0);
690 ubi->works_count += 1;
691 if (ubi->thread_enabled)
692 wake_up_process(ubi->bgt_thread);
693 spin_unlock(&ubi->wl_lock);
694}
695
696static int erase_worker(struct ubi_device *ubi, struct ubi_work *wl_wrk,
697 int cancel);
698
699/**
700 * schedule_erase - schedule an erase work.
701 * @ubi: UBI device description object
702 * @e: the WL entry of the physical eraseblock to erase
703 * @torture: if the physical eraseblock has to be tortured
704 *
705 * This function returns zero in case of success and a %-ENOMEM in case of
706 * failure.
707 */
708static int schedule_erase(struct ubi_device *ubi, struct ubi_wl_entry *e,
709 int torture)
710{
711 struct ubi_work *wl_wrk;
712
713 dbg_wl("schedule erasure of PEB %d, EC %d, torture %d",
714 e->pnum, e->ec, torture);
715
Artem Bityutskiy33818bb2007-08-28 21:29:32 +0300716 wl_wrk = kmalloc(sizeof(struct ubi_work), GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400717 if (!wl_wrk)
718 return -ENOMEM;
719
720 wl_wrk->func = &erase_worker;
721 wl_wrk->e = e;
722 wl_wrk->torture = torture;
723
724 schedule_ubi_work(ubi, wl_wrk);
725 return 0;
726}
727
728/**
729 * wear_leveling_worker - wear-leveling worker function.
730 * @ubi: UBI device description object
731 * @wrk: the work object
732 * @cancel: non-zero if the worker has to free memory and exit
733 *
734 * This function copies a more worn out physical eraseblock to a less worn out
735 * one. Returns zero in case of success and a negative error code in case of
736 * failure.
737 */
738static int wear_leveling_worker(struct ubi_device *ubi, struct ubi_work *wrk,
739 int cancel)
740{
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200741 int err, scrubbing = 0;
Artem Bityutskiyc18a8412008-01-24 11:19:14 +0200742 struct ubi_wl_prot_entry *uninitialized_var(pe);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400743 struct ubi_wl_entry *e1, *e2;
744 struct ubi_vid_hdr *vid_hdr;
745
746 kfree(wrk);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400747 if (cancel)
748 return 0;
749
Artem Bityutskiy33818bb2007-08-28 21:29:32 +0300750 vid_hdr = ubi_zalloc_vid_hdr(ubi, GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400751 if (!vid_hdr)
752 return -ENOMEM;
753
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200754 mutex_lock(&ubi->move_mutex);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400755 spin_lock(&ubi->wl_lock);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200756 ubi_assert(!ubi->move_from && !ubi->move_to);
757 ubi_assert(!ubi->move_to_put);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400758
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200759 if (!ubi->free.rb_node ||
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300760 (!ubi->used.rb_node && !ubi->scrub.rb_node)) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400761 /*
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200762 * No free physical eraseblocks? Well, they must be waiting in
763 * the queue to be erased. Cancel movement - it will be
764 * triggered again when a free physical eraseblock appears.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400765 *
766 * No used physical eraseblocks? They must be temporarily
767 * protected from being moved. They will be moved to the
768 * @ubi->used tree later and the wear-leveling will be
769 * triggered again.
770 */
771 dbg_wl("cancel WL, a list is empty: free %d, used %d",
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300772 !ubi->free.rb_node, !ubi->used.rb_node);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200773 goto out_cancel;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400774 }
775
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300776 if (!ubi->scrub.rb_node) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400777 /*
778 * Now pick the least worn-out used physical eraseblock and a
779 * highly worn-out free physical eraseblock. If the erase
780 * counters differ much enough, start wear-leveling.
781 */
782 e1 = rb_entry(rb_first(&ubi->used), struct ubi_wl_entry, rb);
783 e2 = find_wl_entry(&ubi->free, WL_FREE_MAX_DIFF);
784
785 if (!(e2->ec - e1->ec >= UBI_WL_THRESHOLD)) {
786 dbg_wl("no WL needed: min used EC %d, max free EC %d",
787 e1->ec, e2->ec);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200788 goto out_cancel;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400789 }
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300790 paranoid_check_in_wl_tree(e1, &ubi->used);
791 rb_erase(&e1->rb, &ubi->used);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400792 dbg_wl("move PEB %d EC %d to PEB %d EC %d",
793 e1->pnum, e1->ec, e2->pnum, e2->ec);
794 } else {
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200795 /* Perform scrubbing */
796 scrubbing = 1;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400797 e1 = rb_entry(rb_first(&ubi->scrub), struct ubi_wl_entry, rb);
798 e2 = find_wl_entry(&ubi->free, WL_FREE_MAX_DIFF);
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300799 paranoid_check_in_wl_tree(e1, &ubi->scrub);
Artem Bityutskiyd2c46852007-12-18 13:17:24 +0200800 rb_erase(&e1->rb, &ubi->scrub);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400801 dbg_wl("scrub PEB %d to PEB %d", e1->pnum, e2->pnum);
802 }
803
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300804 paranoid_check_in_wl_tree(e2, &ubi->free);
805 rb_erase(&e2->rb, &ubi->free);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400806 ubi->move_from = e1;
807 ubi->move_to = e2;
808 spin_unlock(&ubi->wl_lock);
809
810 /*
811 * Now we are going to copy physical eraseblock @e1->pnum to @e2->pnum.
812 * We so far do not know which logical eraseblock our physical
813 * eraseblock (@e1) belongs to. We have to read the volume identifier
814 * header first.
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200815 *
816 * Note, we are protected from this PEB being unmapped and erased. The
817 * 'ubi_wl_put_peb()' would wait for moving to be finished if the PEB
818 * which is being moved was unmapped.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400819 */
820
821 err = ubi_io_read_vid_hdr(ubi, e1->pnum, vid_hdr, 0);
822 if (err && err != UBI_IO_BITFLIPS) {
823 if (err == UBI_IO_PEB_FREE) {
824 /*
825 * We are trying to move PEB without a VID header. UBI
826 * always write VID headers shortly after the PEB was
827 * given, so we have a situation when it did not have
828 * chance to write it down because it was preempted.
829 * Just re-schedule the work, so that next time it will
830 * likely have the VID header in place.
831 */
832 dbg_wl("PEB %d has no VID header", e1->pnum);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200833 goto out_not_moved;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400834 }
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200835
836 ubi_err("error %d while reading VID header from PEB %d",
837 err, e1->pnum);
838 if (err > 0)
839 err = -EIO;
840 goto out_error;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400841 }
842
843 err = ubi_eba_copy_leb(ubi, e1->pnum, e2->pnum, vid_hdr);
844 if (err) {
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200845
846 if (err < 0)
847 goto out_error;
848 if (err == 1)
849 goto out_not_moved;
850
851 /*
852 * For some reason the LEB was not moved - it might be because
853 * the volume is being deleted. We should prevent this PEB from
854 * being selected for wear-levelling movement for some "time",
855 * so put it to the protection tree.
856 */
857
858 dbg_wl("cancelled moving PEB %d", e1->pnum);
859 pe = kmalloc(sizeof(struct ubi_wl_prot_entry), GFP_NOFS);
860 if (!pe) {
861 err = -ENOMEM;
862 goto out_error;
863 }
864
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200865 ubi_free_vid_hdr(ubi, vid_hdr);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200866 vid_hdr = NULL;
867
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200868 spin_lock(&ubi->wl_lock);
869 prot_tree_add(ubi, e1, pe, U_PROTECTION);
870 ubi_assert(!ubi->move_to_put);
871 ubi->move_from = ubi->move_to = NULL;
872 ubi->wl_scheduled = 0;
873 spin_unlock(&ubi->wl_lock);
874
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200875 e1 = NULL;
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200876 err = schedule_erase(ubi, e2, 0);
877 if (err)
878 goto out_error;
879 mutex_unlock(&ubi->move_mutex);
880 return 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400881 }
882
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200883 /* The PEB has been successfully moved */
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400884 ubi_free_vid_hdr(ubi, vid_hdr);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200885 vid_hdr = NULL;
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200886 if (scrubbing)
Artem Bityutskiy8c1e6ee2008-07-18 12:20:23 +0300887 ubi_msg("scrubbed PEB %d, data moved to PEB %d",
888 e1->pnum, e2->pnum);
889
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400890 spin_lock(&ubi->wl_lock);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200891 if (!ubi->move_to_put) {
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300892 wl_tree_add(e2, &ubi->used);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200893 e2 = NULL;
894 }
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400895 ubi->move_from = ubi->move_to = NULL;
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200896 ubi->move_to_put = ubi->wl_scheduled = 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400897 spin_unlock(&ubi->wl_lock);
898
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200899 err = schedule_erase(ubi, e1, 0);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200900 if (err) {
901 e1 = NULL;
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200902 goto out_error;
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200903 }
Artem Bityutskiy6a8f4832008-12-05 12:23:48 +0200904
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200905 if (e2) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400906 /*
907 * Well, the target PEB was put meanwhile, schedule it for
908 * erasure.
909 */
910 dbg_wl("PEB %d was put meanwhile, erase", e2->pnum);
911 err = schedule_erase(ubi, e2, 0);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200912 if (err)
913 goto out_error;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400914 }
915
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400916 dbg_wl("done");
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200917 mutex_unlock(&ubi->move_mutex);
918 return 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400919
920 /*
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200921 * For some reasons the LEB was not moved, might be an error, might be
922 * something else. @e1 was not changed, so return it back. @e2 might
923 * be changed, schedule it for erasure.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400924 */
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200925out_not_moved:
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400926 ubi_free_vid_hdr(ubi, vid_hdr);
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200927 vid_hdr = NULL;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400928 spin_lock(&ubi->wl_lock);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200929 if (scrubbing)
930 wl_tree_add(e1, &ubi->scrub);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400931 else
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300932 wl_tree_add(e1, &ubi->used);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400933 ubi->move_from = ubi->move_to = NULL;
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200934 ubi->move_to_put = ubi->wl_scheduled = 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400935 spin_unlock(&ubi->wl_lock);
936
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200937 e1 = NULL;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400938 err = schedule_erase(ubi, e2, 0);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200939 if (err)
940 goto out_error;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400941
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200942 mutex_unlock(&ubi->move_mutex);
943 return 0;
944
945out_error:
946 ubi_err("error %d while moving PEB %d to PEB %d",
947 err, e1->pnum, e2->pnum);
948
949 ubi_free_vid_hdr(ubi, vid_hdr);
950 spin_lock(&ubi->wl_lock);
951 ubi->move_from = ubi->move_to = NULL;
952 ubi->move_to_put = ubi->wl_scheduled = 0;
953 spin_unlock(&ubi->wl_lock);
954
Artem Bityutskiy3c98b0a2008-12-05 12:42:45 +0200955 if (e1)
956 kmem_cache_free(ubi_wl_entry_slab, e1);
957 if (e2)
958 kmem_cache_free(ubi_wl_entry_slab, e2);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200959 ubi_ro_mode(ubi);
960
961 mutex_unlock(&ubi->move_mutex);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400962 return err;
Artem Bityutskiy43f9b252007-12-18 15:06:55 +0200963
964out_cancel:
965 ubi->wl_scheduled = 0;
966 spin_unlock(&ubi->wl_lock);
967 mutex_unlock(&ubi->move_mutex);
968 ubi_free_vid_hdr(ubi, vid_hdr);
969 return 0;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400970}
971
972/**
973 * ensure_wear_leveling - schedule wear-leveling if it is needed.
974 * @ubi: UBI device description object
975 *
976 * This function checks if it is time to start wear-leveling and schedules it
977 * if yes. This function returns zero in case of success and a negative error
978 * code in case of failure.
979 */
980static int ensure_wear_leveling(struct ubi_device *ubi)
981{
982 int err = 0;
983 struct ubi_wl_entry *e1;
984 struct ubi_wl_entry *e2;
985 struct ubi_work *wrk;
986
987 spin_lock(&ubi->wl_lock);
988 if (ubi->wl_scheduled)
989 /* Wear-leveling is already in the work queue */
990 goto out_unlock;
991
992 /*
993 * If the ubi->scrub tree is not empty, scrubbing is needed, and the
994 * the WL worker has to be scheduled anyway.
995 */
Artem Bityutskiy5abde382007-09-13 14:48:20 +0300996 if (!ubi->scrub.rb_node) {
997 if (!ubi->used.rb_node || !ubi->free.rb_node)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +0400998 /* No physical eraseblocks - no deal */
999 goto out_unlock;
1000
1001 /*
1002 * We schedule wear-leveling only if the difference between the
1003 * lowest erase counter of used physical eraseblocks and a high
1004 * erase counter of free physical eraseblocks is greater then
1005 * %UBI_WL_THRESHOLD.
1006 */
1007 e1 = rb_entry(rb_first(&ubi->used), struct ubi_wl_entry, rb);
1008 e2 = find_wl_entry(&ubi->free, WL_FREE_MAX_DIFF);
1009
1010 if (!(e2->ec - e1->ec >= UBI_WL_THRESHOLD))
1011 goto out_unlock;
1012 dbg_wl("schedule wear-leveling");
1013 } else
1014 dbg_wl("schedule scrubbing");
1015
1016 ubi->wl_scheduled = 1;
1017 spin_unlock(&ubi->wl_lock);
1018
Artem Bityutskiy33818bb2007-08-28 21:29:32 +03001019 wrk = kmalloc(sizeof(struct ubi_work), GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001020 if (!wrk) {
1021 err = -ENOMEM;
1022 goto out_cancel;
1023 }
1024
1025 wrk->func = &wear_leveling_worker;
1026 schedule_ubi_work(ubi, wrk);
1027 return err;
1028
1029out_cancel:
1030 spin_lock(&ubi->wl_lock);
1031 ubi->wl_scheduled = 0;
1032out_unlock:
1033 spin_unlock(&ubi->wl_lock);
1034 return err;
1035}
1036
1037/**
1038 * erase_worker - physical eraseblock erase worker function.
1039 * @ubi: UBI device description object
1040 * @wl_wrk: the work object
1041 * @cancel: non-zero if the worker has to free memory and exit
1042 *
1043 * This function erases a physical eraseblock and perform torture testing if
1044 * needed. It also takes care about marking the physical eraseblock bad if
1045 * needed. Returns zero in case of success and a negative error code in case of
1046 * failure.
1047 */
1048static int erase_worker(struct ubi_device *ubi, struct ubi_work *wl_wrk,
1049 int cancel)
1050{
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001051 struct ubi_wl_entry *e = wl_wrk->e;
Artem Bityutskiy784c1452007-07-18 13:42:10 +03001052 int pnum = e->pnum, err, need;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001053
1054 if (cancel) {
1055 dbg_wl("cancel erasure of PEB %d EC %d", pnum, e->ec);
1056 kfree(wl_wrk);
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001057 kmem_cache_free(ubi_wl_entry_slab, e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001058 return 0;
1059 }
1060
1061 dbg_wl("erase PEB %d EC %d", pnum, e->ec);
1062
1063 err = sync_erase(ubi, e, wl_wrk->torture);
1064 if (!err) {
1065 /* Fine, we've erased it successfully */
1066 kfree(wl_wrk);
1067
1068 spin_lock(&ubi->wl_lock);
1069 ubi->abs_ec += 1;
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001070 wl_tree_add(e, &ubi->free);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001071 spin_unlock(&ubi->wl_lock);
1072
1073 /*
Artem Bityutskiy9c9ec142008-07-18 13:19:52 +03001074 * One more erase operation has happened, take care about
1075 * protected physical eraseblocks.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001076 */
1077 check_protection_over(ubi);
1078
1079 /* And take care about wear-leveling */
1080 err = ensure_wear_leveling(ubi);
1081 return err;
1082 }
1083
Artem Bityutskiy8d2d4012007-07-22 22:32:51 +03001084 ubi_err("failed to erase PEB %d, error %d", pnum, err);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001085 kfree(wl_wrk);
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001086 kmem_cache_free(ubi_wl_entry_slab, e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001087
Artem Bityutskiy784c1452007-07-18 13:42:10 +03001088 if (err == -EINTR || err == -ENOMEM || err == -EAGAIN ||
1089 err == -EBUSY) {
1090 int err1;
1091
1092 /* Re-schedule the LEB for erasure */
1093 err1 = schedule_erase(ubi, e, 0);
1094 if (err1) {
1095 err = err1;
1096 goto out_ro;
1097 }
1098 return err;
1099 } else if (err != -EIO) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001100 /*
1101 * If this is not %-EIO, we have no idea what to do. Scheduling
1102 * this physical eraseblock for erasure again would cause
1103 * errors again and again. Well, lets switch to RO mode.
1104 */
Artem Bityutskiy784c1452007-07-18 13:42:10 +03001105 goto out_ro;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001106 }
1107
1108 /* It is %-EIO, the PEB went bad */
1109
1110 if (!ubi->bad_allowed) {
1111 ubi_err("bad physical eraseblock %d detected", pnum);
Artem Bityutskiy784c1452007-07-18 13:42:10 +03001112 goto out_ro;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001113 }
1114
Artem Bityutskiy784c1452007-07-18 13:42:10 +03001115 spin_lock(&ubi->volumes_lock);
1116 need = ubi->beb_rsvd_level - ubi->beb_rsvd_pebs + 1;
1117 if (need > 0) {
1118 need = ubi->avail_pebs >= need ? need : ubi->avail_pebs;
1119 ubi->avail_pebs -= need;
1120 ubi->rsvd_pebs += need;
1121 ubi->beb_rsvd_pebs += need;
1122 if (need > 0)
1123 ubi_msg("reserve more %d PEBs", need);
1124 }
1125
1126 if (ubi->beb_rsvd_pebs == 0) {
1127 spin_unlock(&ubi->volumes_lock);
1128 ubi_err("no reserved physical eraseblocks");
1129 goto out_ro;
1130 }
1131
1132 spin_unlock(&ubi->volumes_lock);
1133 ubi_msg("mark PEB %d as bad", pnum);
1134
1135 err = ubi_io_mark_bad(ubi, pnum);
1136 if (err)
1137 goto out_ro;
1138
1139 spin_lock(&ubi->volumes_lock);
1140 ubi->beb_rsvd_pebs -= 1;
1141 ubi->bad_peb_count += 1;
1142 ubi->good_peb_count -= 1;
1143 ubi_calculate_reserved(ubi);
1144 if (ubi->beb_rsvd_pebs == 0)
1145 ubi_warn("last PEB from the reserved pool was used");
1146 spin_unlock(&ubi->volumes_lock);
1147
1148 return err;
1149
1150out_ro:
1151 ubi_ro_mode(ubi);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001152 return err;
1153}
1154
1155/**
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +03001156 * ubi_wl_put_peb - return a PEB to the wear-leveling sub-system.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001157 * @ubi: UBI device description object
1158 * @pnum: physical eraseblock to return
1159 * @torture: if this physical eraseblock has to be tortured
1160 *
1161 * This function is called to return physical eraseblock @pnum to the pool of
1162 * free physical eraseblocks. The @torture flag has to be set if an I/O error
1163 * occurred to this @pnum and it has to be tested. This function returns zero
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001164 * in case of success, and a negative error code in case of failure.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001165 */
1166int ubi_wl_put_peb(struct ubi_device *ubi, int pnum, int torture)
1167{
1168 int err;
1169 struct ubi_wl_entry *e;
1170
1171 dbg_wl("PEB %d", pnum);
1172 ubi_assert(pnum >= 0);
1173 ubi_assert(pnum < ubi->peb_count);
1174
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001175retry:
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001176 spin_lock(&ubi->wl_lock);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001177 e = ubi->lookuptbl[pnum];
1178 if (e == ubi->move_from) {
1179 /*
1180 * User is putting the physical eraseblock which was selected to
1181 * be moved. It will be scheduled for erasure in the
1182 * wear-leveling worker.
1183 */
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001184 dbg_wl("PEB %d is being moved, wait", pnum);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001185 spin_unlock(&ubi->wl_lock);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001186
1187 /* Wait for the WL worker by taking the @ubi->move_mutex */
1188 mutex_lock(&ubi->move_mutex);
1189 mutex_unlock(&ubi->move_mutex);
1190 goto retry;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001191 } else if (e == ubi->move_to) {
1192 /*
1193 * User is putting the physical eraseblock which was selected
1194 * as the target the data is moved to. It may happen if the EBA
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +03001195 * sub-system already re-mapped the LEB in 'ubi_eba_copy_leb()'
1196 * but the WL sub-system has not put the PEB to the "used" tree
1197 * yet, but it is about to do this. So we just set a flag which
1198 * will tell the WL worker that the PEB is not needed anymore
1199 * and should be scheduled for erasure.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001200 */
1201 dbg_wl("PEB %d is the target of data moving", pnum);
1202 ubi_assert(!ubi->move_to_put);
1203 ubi->move_to_put = 1;
1204 spin_unlock(&ubi->wl_lock);
1205 return 0;
1206 } else {
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001207 if (in_wl_tree(e, &ubi->used)) {
1208 paranoid_check_in_wl_tree(e, &ubi->used);
1209 rb_erase(&e->rb, &ubi->used);
1210 } else if (in_wl_tree(e, &ubi->scrub)) {
1211 paranoid_check_in_wl_tree(e, &ubi->scrub);
1212 rb_erase(&e->rb, &ubi->scrub);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001213 } else {
1214 err = prot_tree_del(ubi, e->pnum);
1215 if (err) {
1216 ubi_err("PEB %d not found", pnum);
1217 ubi_ro_mode(ubi);
1218 spin_unlock(&ubi->wl_lock);
1219 return err;
1220 }
1221 }
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001222 }
1223 spin_unlock(&ubi->wl_lock);
1224
1225 err = schedule_erase(ubi, e, torture);
1226 if (err) {
1227 spin_lock(&ubi->wl_lock);
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001228 wl_tree_add(e, &ubi->used);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001229 spin_unlock(&ubi->wl_lock);
1230 }
1231
1232 return err;
1233}
1234
1235/**
1236 * ubi_wl_scrub_peb - schedule a physical eraseblock for scrubbing.
1237 * @ubi: UBI device description object
1238 * @pnum: the physical eraseblock to schedule
1239 *
1240 * If a bit-flip in a physical eraseblock is detected, this physical eraseblock
1241 * needs scrubbing. This function schedules a physical eraseblock for
1242 * scrubbing which is done in background. This function returns zero in case of
1243 * success and a negative error code in case of failure.
1244 */
1245int ubi_wl_scrub_peb(struct ubi_device *ubi, int pnum)
1246{
1247 struct ubi_wl_entry *e;
1248
Artem Bityutskiy8c1e6ee2008-07-18 12:20:23 +03001249 dbg_msg("schedule PEB %d for scrubbing", pnum);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001250
1251retry:
1252 spin_lock(&ubi->wl_lock);
1253 e = ubi->lookuptbl[pnum];
1254 if (e == ubi->move_from || in_wl_tree(e, &ubi->scrub)) {
1255 spin_unlock(&ubi->wl_lock);
1256 return 0;
1257 }
1258
1259 if (e == ubi->move_to) {
1260 /*
1261 * This physical eraseblock was used to move data to. The data
1262 * was moved but the PEB was not yet inserted to the proper
1263 * tree. We should just wait a little and let the WL worker
1264 * proceed.
1265 */
1266 spin_unlock(&ubi->wl_lock);
1267 dbg_wl("the PEB %d is not in proper tree, retry", pnum);
1268 yield();
1269 goto retry;
1270 }
1271
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001272 if (in_wl_tree(e, &ubi->used)) {
1273 paranoid_check_in_wl_tree(e, &ubi->used);
1274 rb_erase(&e->rb, &ubi->used);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001275 } else {
1276 int err;
1277
1278 err = prot_tree_del(ubi, e->pnum);
1279 if (err) {
1280 ubi_err("PEB %d not found", pnum);
1281 ubi_ro_mode(ubi);
1282 spin_unlock(&ubi->wl_lock);
1283 return err;
1284 }
1285 }
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001286
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001287 wl_tree_add(e, &ubi->scrub);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001288 spin_unlock(&ubi->wl_lock);
1289
1290 /*
1291 * Technically scrubbing is the same as wear-leveling, so it is done
1292 * by the WL worker.
1293 */
1294 return ensure_wear_leveling(ubi);
1295}
1296
1297/**
1298 * ubi_wl_flush - flush all pending works.
1299 * @ubi: UBI device description object
1300 *
1301 * This function returns zero in case of success and a negative error code in
1302 * case of failure.
1303 */
1304int ubi_wl_flush(struct ubi_device *ubi)
1305{
Artem Bityutskiy593dd332007-12-18 15:54:35 +02001306 int err;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001307
1308 /*
1309 * Erase while the pending works queue is not empty, but not more then
1310 * the number of currently pending works.
1311 */
Artem Bityutskiy593dd332007-12-18 15:54:35 +02001312 dbg_wl("flush (%d pending works)", ubi->works_count);
1313 while (ubi->works_count) {
1314 err = do_work(ubi);
1315 if (err)
1316 return err;
1317 }
1318
1319 /*
1320 * Make sure all the works which have been done in parallel are
1321 * finished.
1322 */
1323 down_write(&ubi->work_sem);
1324 up_write(&ubi->work_sem);
1325
1326 /*
1327 * And in case last was the WL worker and it cancelled the LEB
1328 * movement, flush again.
1329 */
1330 while (ubi->works_count) {
1331 dbg_wl("flush more (%d pending works)", ubi->works_count);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001332 err = do_work(ubi);
1333 if (err)
1334 return err;
1335 }
1336
1337 return 0;
1338}
1339
1340/**
1341 * tree_destroy - destroy an RB-tree.
1342 * @root: the root of the tree to destroy
1343 */
1344static void tree_destroy(struct rb_root *root)
1345{
1346 struct rb_node *rb;
1347 struct ubi_wl_entry *e;
1348
1349 rb = root->rb_node;
1350 while (rb) {
1351 if (rb->rb_left)
1352 rb = rb->rb_left;
1353 else if (rb->rb_right)
1354 rb = rb->rb_right;
1355 else {
1356 e = rb_entry(rb, struct ubi_wl_entry, rb);
1357
1358 rb = rb_parent(rb);
1359 if (rb) {
1360 if (rb->rb_left == &e->rb)
1361 rb->rb_left = NULL;
1362 else
1363 rb->rb_right = NULL;
1364 }
1365
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001366 kmem_cache_free(ubi_wl_entry_slab, e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001367 }
1368 }
1369}
1370
1371/**
1372 * ubi_thread - UBI background thread.
1373 * @u: the UBI device description object pointer
1374 */
Artem Bityutskiycdfa7882007-12-17 20:33:20 +02001375int ubi_thread(void *u)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001376{
1377 int failures = 0;
1378 struct ubi_device *ubi = u;
1379
1380 ubi_msg("background thread \"%s\" started, PID %d",
Pavel Emelyanovba25f9d2007-10-18 23:40:40 -07001381 ubi->bgt_name, task_pid_nr(current));
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001382
Rafael J. Wysocki83144182007-07-17 04:03:35 -07001383 set_freezable();
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001384 for (;;) {
1385 int err;
1386
1387 if (kthread_should_stop())
Kyungmin Parkcadb40c2008-05-22 10:32:18 +09001388 break;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001389
1390 if (try_to_freeze())
1391 continue;
1392
1393 spin_lock(&ubi->wl_lock);
1394 if (list_empty(&ubi->works) || ubi->ro_mode ||
1395 !ubi->thread_enabled) {
1396 set_current_state(TASK_INTERRUPTIBLE);
1397 spin_unlock(&ubi->wl_lock);
1398 schedule();
1399 continue;
1400 }
1401 spin_unlock(&ubi->wl_lock);
1402
1403 err = do_work(ubi);
1404 if (err) {
1405 ubi_err("%s: work failed with error code %d",
1406 ubi->bgt_name, err);
1407 if (failures++ > WL_MAX_FAILURES) {
1408 /*
1409 * Too many failures, disable the thread and
1410 * switch to read-only mode.
1411 */
1412 ubi_msg("%s: %d consecutive failures",
1413 ubi->bgt_name, WL_MAX_FAILURES);
1414 ubi_ro_mode(ubi);
Vitaliy Gusev2ad49882008-11-05 18:27:18 +03001415 ubi->thread_enabled = 0;
1416 continue;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001417 }
1418 } else
1419 failures = 0;
1420
1421 cond_resched();
1422 }
1423
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001424 dbg_wl("background thread \"%s\" is killed", ubi->bgt_name);
1425 return 0;
1426}
1427
1428/**
1429 * cancel_pending - cancel all pending works.
1430 * @ubi: UBI device description object
1431 */
1432static void cancel_pending(struct ubi_device *ubi)
1433{
1434 while (!list_empty(&ubi->works)) {
1435 struct ubi_work *wrk;
1436
1437 wrk = list_entry(ubi->works.next, struct ubi_work, list);
1438 list_del(&wrk->list);
1439 wrk->func(ubi, wrk, 1);
1440 ubi->works_count -= 1;
1441 ubi_assert(ubi->works_count >= 0);
1442 }
1443}
1444
1445/**
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +03001446 * ubi_wl_init_scan - initialize the WL sub-system using scanning information.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001447 * @ubi: UBI device description object
1448 * @si: scanning information
1449 *
1450 * This function returns zero in case of success, and a negative error code in
1451 * case of failure.
1452 */
1453int ubi_wl_init_scan(struct ubi_device *ubi, struct ubi_scan_info *si)
1454{
1455 int err;
1456 struct rb_node *rb1, *rb2;
1457 struct ubi_scan_volume *sv;
1458 struct ubi_scan_leb *seb, *tmp;
1459 struct ubi_wl_entry *e;
1460
1461
1462 ubi->used = ubi->free = ubi->scrub = RB_ROOT;
1463 ubi->prot.pnum = ubi->prot.aec = RB_ROOT;
1464 spin_lock_init(&ubi->wl_lock);
Artem Bityutskiy43f9b252007-12-18 15:06:55 +02001465 mutex_init(&ubi->move_mutex);
Artem Bityutskiy593dd332007-12-18 15:54:35 +02001466 init_rwsem(&ubi->work_sem);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001467 ubi->max_ec = si->max_ec;
1468 INIT_LIST_HEAD(&ubi->works);
1469
1470 sprintf(ubi->bgt_name, UBI_BGT_NAME_PATTERN, ubi->ubi_num);
1471
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001472 err = -ENOMEM;
1473 ubi->lookuptbl = kzalloc(ubi->peb_count * sizeof(void *), GFP_KERNEL);
1474 if (!ubi->lookuptbl)
Artem Bityutskiycdfa7882007-12-17 20:33:20 +02001475 return err;
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001476
1477 list_for_each_entry_safe(seb, tmp, &si->erase, u.list) {
1478 cond_resched();
1479
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001480 e = kmem_cache_alloc(ubi_wl_entry_slab, GFP_KERNEL);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001481 if (!e)
1482 goto out_free;
1483
1484 e->pnum = seb->pnum;
1485 e->ec = seb->ec;
1486 ubi->lookuptbl[e->pnum] = e;
1487 if (schedule_erase(ubi, e, 0)) {
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001488 kmem_cache_free(ubi_wl_entry_slab, e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001489 goto out_free;
1490 }
1491 }
1492
1493 list_for_each_entry(seb, &si->free, u.list) {
1494 cond_resched();
1495
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001496 e = kmem_cache_alloc(ubi_wl_entry_slab, GFP_KERNEL);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001497 if (!e)
1498 goto out_free;
1499
1500 e->pnum = seb->pnum;
1501 e->ec = seb->ec;
1502 ubi_assert(e->ec >= 0);
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001503 wl_tree_add(e, &ubi->free);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001504 ubi->lookuptbl[e->pnum] = e;
1505 }
1506
1507 list_for_each_entry(seb, &si->corr, u.list) {
1508 cond_resched();
1509
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001510 e = kmem_cache_alloc(ubi_wl_entry_slab, GFP_KERNEL);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001511 if (!e)
1512 goto out_free;
1513
1514 e->pnum = seb->pnum;
1515 e->ec = seb->ec;
1516 ubi->lookuptbl[e->pnum] = e;
1517 if (schedule_erase(ubi, e, 0)) {
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001518 kmem_cache_free(ubi_wl_entry_slab, e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001519 goto out_free;
1520 }
1521 }
1522
1523 ubi_rb_for_each_entry(rb1, sv, &si->volumes, rb) {
1524 ubi_rb_for_each_entry(rb2, seb, &sv->root, u.rb) {
1525 cond_resched();
1526
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001527 e = kmem_cache_alloc(ubi_wl_entry_slab, GFP_KERNEL);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001528 if (!e)
1529 goto out_free;
1530
1531 e->pnum = seb->pnum;
1532 e->ec = seb->ec;
1533 ubi->lookuptbl[e->pnum] = e;
1534 if (!seb->scrub) {
1535 dbg_wl("add PEB %d EC %d to the used tree",
1536 e->pnum, e->ec);
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001537 wl_tree_add(e, &ubi->used);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001538 } else {
1539 dbg_wl("add PEB %d EC %d to the scrub tree",
1540 e->pnum, e->ec);
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001541 wl_tree_add(e, &ubi->scrub);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001542 }
1543 }
1544 }
1545
Artem Bityutskiy5abde382007-09-13 14:48:20 +03001546 if (ubi->avail_pebs < WL_RESERVED_PEBS) {
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001547 ubi_err("no enough physical eraseblocks (%d, need %d)",
1548 ubi->avail_pebs, WL_RESERVED_PEBS);
1549 goto out_free;
1550 }
1551 ubi->avail_pebs -= WL_RESERVED_PEBS;
1552 ubi->rsvd_pebs += WL_RESERVED_PEBS;
1553
1554 /* Schedule wear-leveling if needed */
1555 err = ensure_wear_leveling(ubi);
1556 if (err)
1557 goto out_free;
1558
1559 return 0;
1560
1561out_free:
1562 cancel_pending(ubi);
1563 tree_destroy(&ubi->used);
1564 tree_destroy(&ubi->free);
1565 tree_destroy(&ubi->scrub);
1566 kfree(ubi->lookuptbl);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001567 return err;
1568}
1569
1570/**
1571 * protection_trees_destroy - destroy the protection RB-trees.
1572 * @ubi: UBI device description object
1573 */
1574static void protection_trees_destroy(struct ubi_device *ubi)
1575{
1576 struct rb_node *rb;
1577 struct ubi_wl_prot_entry *pe;
1578
1579 rb = ubi->prot.aec.rb_node;
1580 while (rb) {
1581 if (rb->rb_left)
1582 rb = rb->rb_left;
1583 else if (rb->rb_right)
1584 rb = rb->rb_right;
1585 else {
1586 pe = rb_entry(rb, struct ubi_wl_prot_entry, rb_aec);
1587
1588 rb = rb_parent(rb);
1589 if (rb) {
1590 if (rb->rb_left == &pe->rb_aec)
1591 rb->rb_left = NULL;
1592 else
1593 rb->rb_right = NULL;
1594 }
1595
Artem Bityutskiy06b68ba2007-12-16 12:49:01 +02001596 kmem_cache_free(ubi_wl_entry_slab, pe->e);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001597 kfree(pe);
1598 }
1599 }
1600}
1601
1602/**
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +03001603 * ubi_wl_close - close the wear-leveling sub-system.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001604 * @ubi: UBI device description object
1605 */
1606void ubi_wl_close(struct ubi_device *ubi)
1607{
Artem Bityutskiy85c6e6e2008-07-16 10:25:56 +03001608 dbg_wl("close the WL sub-system");
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001609 cancel_pending(ubi);
1610 protection_trees_destroy(ubi);
1611 tree_destroy(&ubi->used);
1612 tree_destroy(&ubi->free);
1613 tree_destroy(&ubi->scrub);
1614 kfree(ubi->lookuptbl);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001615}
1616
1617#ifdef CONFIG_MTD_UBI_DEBUG_PARANOID
1618
1619/**
Artem Bityutskiyebaaf1a2008-07-18 13:34:32 +03001620 * paranoid_check_ec - make sure that the erase counter of a PEB is correct.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001621 * @ubi: UBI device description object
1622 * @pnum: the physical eraseblock number to check
1623 * @ec: the erase counter to check
1624 *
1625 * This function returns zero if the erase counter of physical eraseblock @pnum
1626 * is equivalent to @ec, %1 if not, and a negative error code if an error
1627 * occurred.
1628 */
Artem Bityutskiye88d6e102007-08-29 14:51:52 +03001629static int paranoid_check_ec(struct ubi_device *ubi, int pnum, int ec)
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001630{
1631 int err;
1632 long long read_ec;
1633 struct ubi_ec_hdr *ec_hdr;
1634
Artem Bityutskiy33818bb2007-08-28 21:29:32 +03001635 ec_hdr = kzalloc(ubi->ec_hdr_alsize, GFP_NOFS);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001636 if (!ec_hdr)
1637 return -ENOMEM;
1638
1639 err = ubi_io_read_ec_hdr(ubi, pnum, ec_hdr, 0);
1640 if (err && err != UBI_IO_BITFLIPS) {
1641 /* The header does not have to exist */
1642 err = 0;
1643 goto out_free;
1644 }
1645
Christoph Hellwig3261ebd2007-05-21 17:41:46 +03001646 read_ec = be64_to_cpu(ec_hdr->ec);
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001647 if (ec != read_ec) {
1648 ubi_err("paranoid check failed for PEB %d", pnum);
1649 ubi_err("read EC is %lld, should be %d", read_ec, ec);
1650 ubi_dbg_dump_stack();
1651 err = 1;
1652 } else
1653 err = 0;
1654
1655out_free:
1656 kfree(ec_hdr);
1657 return err;
1658}
1659
1660/**
Artem Bityutskiyebaaf1a2008-07-18 13:34:32 +03001661 * paranoid_check_in_wl_tree - check that wear-leveling entry is in WL RB-tree.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001662 * @e: the wear-leveling entry to check
1663 * @root: the root of the tree
1664 *
Artem Bityutskiyebaaf1a2008-07-18 13:34:32 +03001665 * This function returns zero if @e is in the @root RB-tree and %1 if it is
1666 * not.
Artem B. Bityutskiy801c1352006-06-27 12:22:22 +04001667 */
1668static int paranoid_check_in_wl_tree(struct ubi_wl_entry *e,
1669 struct rb_root *root)
1670{
1671 if (in_wl_tree(e, root))
1672 return 0;
1673
1674 ubi_err("paranoid check failed for PEB %d, EC %d, RB-tree %p ",
1675 e->pnum, e->ec, root);
1676 ubi_dbg_dump_stack();
1677 return 1;
1678}
1679
1680#endif /* CONFIG_MTD_UBI_DEBUG_PARANOID */