md/raid6 algorithms: xor_syndrome() for SSE2
[deliverable/linux.git] / drivers / md / raid5.h
CommitLineData
1da177e4
LT
1#ifndef _RAID5_H
2#define _RAID5_H
3
1da177e4 4#include <linux/raid/xor.h>
ad283ea4 5#include <linux/dmaengine.h>
1da177e4
LT
6
7/*
8 *
c4c1663b 9 * Each stripe contains one buffer per device. Each buffer can be in
1da177e4 10 * one of a number of states stored in "flags". Changes between
c4c1663b
N
11 * these states happen *almost* exclusively under the protection of the
12 * STRIPE_ACTIVE flag. Some very specific changes can happen in bi_end_io, and
13 * these are not protected by STRIPE_ACTIVE.
1da177e4
LT
14 *
15 * The flag bits that are used to represent these states are:
16 * R5_UPTODATE and R5_LOCKED
17 *
18 * State Empty == !UPTODATE, !LOCK
19 * We have no data, and there is no active request
20 * State Want == !UPTODATE, LOCK
21 * A read request is being submitted for this block
22 * State Dirty == UPTODATE, LOCK
23 * Some new data is in this buffer, and it is being written out
24 * State Clean == UPTODATE, !LOCK
25 * We have valid data which is the same as on disc
26 *
27 * The possible state transitions are:
28 *
29 * Empty -> Want - on read or write to get old data for parity calc
ede7ee8b 30 * Empty -> Dirty - on compute_parity to satisfy write/sync request.
1da177e4
LT
31 * Empty -> Clean - on compute_block when computing a block for failed drive
32 * Want -> Empty - on failed read
33 * Want -> Clean - on successful completion of read request
34 * Dirty -> Clean - on successful completion of write request
35 * Dirty -> Clean - on failed write
36 * Clean -> Dirty - on compute_parity to satisfy write/sync (RECONSTRUCT or RMW)
37 *
38 * The Want->Empty, Want->Clean, Dirty->Clean, transitions
39 * all happen in b_end_io at interrupt time.
40 * Each sets the Uptodate bit before releasing the Lock bit.
41 * This leaves one multi-stage transition:
42 * Want->Dirty->Clean
43 * This is safe because thinking that a Clean buffer is actually dirty
44 * will at worst delay some action, and the stripe will be scheduled
45 * for attention after the transition is complete.
46 *
47 * There is one possibility that is not covered by these states. That
48 * is if one drive has failed and there is a spare being rebuilt. We
49 * can't distinguish between a clean block that has been generated
50 * from parity calculations, and a clean block that has been
51 * successfully written to the spare ( or to parity when resyncing).
aa5e5dc2 52 * To distinguish these states we have a stripe bit STRIPE_INSYNC that
1da177e4
LT
53 * is set whenever a write is scheduled to the spare, or to the parity
54 * disc if there is no spare. A sync request clears this bit, and
55 * when we find it set with no buffers locked, we know the sync is
56 * complete.
57 *
58 * Buffers for the md device that arrive via make_request are attached
59 * to the appropriate stripe in one of two lists linked on b_reqnext.
60 * One list (bh_read) for read requests, one (bh_write) for write.
61 * There should never be more than one buffer on the two lists
62 * together, but we are not guaranteed of that so we allow for more.
63 *
64 * If a buffer is on the read list when the associated cache buffer is
65 * Uptodate, the data is copied into the read buffer and it's b_end_io
66 * routine is called. This may happen in the end_request routine only
67 * if the buffer has just successfully been read. end_request should
68 * remove the buffers from the list and then set the Uptodate bit on
69 * the buffer. Other threads may do this only if they first check
70 * that the Uptodate bit is set. Once they have checked that they may
71 * take buffers off the read queue.
72 *
73 * When a buffer on the write list is committed for write it is copied
74 * into the cache buffer, which is then marked dirty, and moved onto a
75 * third list, the written list (bh_written). Once both the parity
76 * block and the cached buffer are successfully written, any buffer on
77 * a written list can be returned with b_end_io.
78 *
c4c1663b
N
79 * The write list and read list both act as fifos. The read list,
80 * write list and written list are protected by the device_lock.
81 * The device_lock is only for list manipulations and will only be
82 * held for a very short time. It can be claimed from interrupts.
1da177e4
LT
83 *
84 *
85 * Stripes in the stripe cache can be on one of two lists (or on
86 * neither). The "inactive_list" contains stripes which are not
87 * currently being used for any request. They can freely be reused
88 * for another stripe. The "handle_list" contains stripes that need
89 * to be handled in some way. Both of these are fifo queues. Each
90 * stripe is also (potentially) linked to a hash bucket in the hash
91 * table so that it can be found by sector number. Stripes that are
92 * not hashed must be on the inactive_list, and will normally be at
93 * the front. All stripes start life this way.
94 *
95 * The inactive_list, handle_list and hash bucket lists are all protected by the
96 * device_lock.
1da177e4
LT
97 * - stripes have a reference counter. If count==0, they are on a list.
98 * - If a stripe might need handling, STRIPE_HANDLE is set.
99 * - When refcount reaches zero, then if STRIPE_HANDLE it is put on
100 * handle_list else inactive_list
101 *
102 * This, combined with the fact that STRIPE_HANDLE is only ever
103 * cleared while a stripe has a non-zero count means that if the
104 * refcount is 0 and STRIPE_HANDLE is set, then it is on the
105 * handle_list and if recount is 0 and STRIPE_HANDLE is not set, then
106 * the stripe is on inactive_list.
107 *
108 * The possible transitions are:
109 * activate an unhashed/inactive stripe (get_active_stripe())
110 * lockdev check-hash unlink-stripe cnt++ clean-stripe hash-stripe unlockdev
111 * activate a hashed, possibly active stripe (get_active_stripe())
112 * lockdev check-hash if(!cnt++)unlink-stripe unlockdev
113 * attach a request to an active stripe (add_stripe_bh())
114 * lockdev attach-buffer unlockdev
115 * handle a stripe (handle_stripe())
c4c1663b 116 * setSTRIPE_ACTIVE, clrSTRIPE_HANDLE ...
91c00924
DW
117 * (lockdev check-buffers unlockdev) ..
118 * change-state ..
c4c1663b 119 * record io/ops needed clearSTRIPE_ACTIVE schedule io/ops
1da177e4
LT
120 * release an active stripe (release_stripe())
121 * lockdev if (!--cnt) { if STRIPE_HANDLE, add to handle_list else add to inactive-list } unlockdev
122 *
123 * The refcount counts each thread that have activated the stripe,
124 * plus raid5d if it is handling it, plus one for each active request
91c00924
DW
125 * on a cached buffer, and plus one if the stripe is undergoing stripe
126 * operations.
127 *
c4c1663b 128 * The stripe operations are:
91c00924
DW
129 * -copying data between the stripe cache and user application buffers
130 * -computing blocks to save a disk access, or to recover a missing block
131 * -updating the parity on a write operation (reconstruct write and
132 * read-modify-write)
133 * -checking parity correctness
134 * -running i/o to disk
135 * These operations are carried out by raid5_run_ops which uses the async_tx
136 * api to (optionally) offload operations to dedicated hardware engines.
137 * When requesting an operation handle_stripe sets the pending bit for the
138 * operation and increments the count. raid5_run_ops is then run whenever
139 * the count is non-zero.
140 * There are some critical dependencies between the operations that prevent some
141 * from being requested while another is in flight.
142 * 1/ Parity check operations destroy the in cache version of the parity block,
143 * so we prevent parity dependent operations like writes and compute_blocks
144 * from starting while a check is in progress. Some dma engines can perform
145 * the check without damaging the parity block, in these cases the parity
146 * block is re-marked up to date (assuming the check was successful) and is
147 * not re-read from disk.
148 * 2/ When a write operation is requested we immediately lock the affected
149 * blocks, and mark them as not up to date. This causes new read requests
150 * to be held off, as well as parity checks and compute block operations.
151 * 3/ Once a compute block operation has been requested handle_stripe treats
152 * that block as if it is up to date. raid5_run_ops guaruntees that any
153 * operation that is dependent on the compute block result is initiated after
154 * the compute block completes.
1da177e4
LT
155 */
156
ecc65c9b 157/*
f72ffdd6 158 * Operations state - intermediate states that are visible outside of
c4c1663b 159 * STRIPE_ACTIVE.
ecc65c9b
DW
160 * In general _idle indicates nothing is running, _run indicates a data
161 * processing operation is active, and _result means the data processing result
162 * is stable and can be acted upon. For simple operations like biofill and
163 * compute that only have an _idle and _run state they are indicated with
164 * sh->state flags (STRIPE_BIOFILL_RUN and STRIPE_COMPUTE_RUN)
165 */
166/**
167 * enum check_states - handles syncing / repairing a stripe
168 * @check_state_idle - check operations are quiesced
169 * @check_state_run - check operation is running
170 * @check_state_result - set outside lock when check result is valid
171 * @check_state_compute_run - check failed and we are repairing
172 * @check_state_compute_result - set outside lock when compute result is valid
173 */
174enum check_states {
175 check_state_idle = 0,
ac6b53b6
DW
176 check_state_run, /* xor parity check */
177 check_state_run_q, /* q-parity check */
178 check_state_run_pq, /* pq dual parity check */
ecc65c9b
DW
179 check_state_check_result,
180 check_state_compute_run, /* parity repair */
181 check_state_compute_result,
182};
183
184/**
185 * enum reconstruct_states - handles writing or expanding a stripe
186 */
187enum reconstruct_states {
188 reconstruct_state_idle = 0,
d8ee0728 189 reconstruct_state_prexor_drain_run, /* prexor-write */
ecc65c9b
DW
190 reconstruct_state_drain_run, /* write */
191 reconstruct_state_run, /* expand */
d8ee0728 192 reconstruct_state_prexor_drain_result,
ecc65c9b
DW
193 reconstruct_state_drain_result,
194 reconstruct_state_result,
195};
196
1da177e4 197struct stripe_head {
fccddba0 198 struct hlist_node hash;
d0dabf7e 199 struct list_head lru; /* inactive_list or handle_list */
773ca82f 200 struct llist_node release_list;
d1688a6d 201 struct r5conf *raid_conf;
86b42c71
N
202 short generation; /* increments with every
203 * reshape */
d0dabf7e
N
204 sector_t sector; /* sector of this row */
205 short pd_idx; /* parity disk index */
206 short qd_idx; /* 'Q' disk index for raid6 */
67cc2b81 207 short ddf_layout;/* use DDF ordering to calculate Q */
566c09c5 208 short hash_lock_index;
d0dabf7e
N
209 unsigned long state; /* state flags */
210 atomic_t count; /* nr of active thread/requests */
72626685 211 int bm_seq; /* sequence number for bitmap flushes */
d0dabf7e 212 int disks; /* disks in stripe */
7a87f434 213 int overwrite_disks; /* total overwrite disks in stripe,
214 * this is only checked when stripe
215 * has STRIPE_BATCH_READY
216 */
ecc65c9b 217 enum check_states check_state;
600aa109 218 enum reconstruct_states reconstruct_state;
b17459c0 219 spinlock_t stripe_lock;
851c30c9 220 int cpu;
bfc90cb0 221 struct r5worker_group *group;
59fc630b 222
223 struct stripe_head *batch_head; /* protected by stripe lock */
224 spinlock_t batch_lock; /* only header's lock is useful */
225 struct list_head batch_list; /* protected by head's batch lock*/
417b8d4a
DW
226 /**
227 * struct stripe_operations
91c00924 228 * @target - STRIPE_OP_COMPUTE_BLK target
417b8d4a
DW
229 * @target2 - 2nd compute target in the raid6 case
230 * @zero_sum_result - P and Q verification flags
231 * @request - async service request flags for raid_run_ops
91c00924
DW
232 */
233 struct stripe_operations {
ac6b53b6 234 int target, target2;
ad283ea4 235 enum sum_check_flags zero_sum_result;
91c00924 236 } ops;
1da177e4 237 struct r5dev {
671488cc
N
238 /* rreq and rvec are used for the replacement device when
239 * writing data to both devices.
240 */
241 struct bio req, rreq;
242 struct bio_vec vec, rvec;
d592a996 243 struct page *page, *orig_page;
91c00924 244 struct bio *toread, *read, *towrite, *written;
1da177e4
LT
245 sector_t sector; /* sector of this page */
246 unsigned long flags;
247 } dev[1]; /* allocated with extra space depending of RAID geometry */
248};
a4456856
DW
249
250/* stripe_head_state - collects and tracks the dynamic state of a stripe_head
c4c1663b 251 * for handle_stripe.
a4456856
DW
252 */
253struct stripe_head_state {
9a3e1101
N
254 /* 'syncing' means that we need to read all devices, either
255 * to check/correct parity, or to reconstruct a missing device.
256 * 'replacing' means we are replacing one or more drives and
257 * the source is valid at this point so we don't need to
258 * read all devices, just the replacement targets.
259 */
260 int syncing, expanding, expanded, replacing;
a4456856 261 int locked, uptodate, to_read, to_write, failed, written;
b5e98d65 262 int to_fill, compute, req_compute, non_overwrite;
f2b3b44d 263 int failed_num[2];
f2b3b44d 264 int p_failed, q_failed;
c5709ef6
N
265 int dec_preread_active;
266 unsigned long ops_request;
267
268 struct bio *return_bi;
3cb03002 269 struct md_rdev *blocked_rdev;
bc2607f3 270 int handle_bad_blocks;
a4456856
DW
271};
272
671488cc
N
273/* Flags for struct r5dev.flags */
274enum r5dev_flags {
275 R5_UPTODATE, /* page contains current data */
276 R5_LOCKED, /* IO has been submitted on "req" */
977df362 277 R5_DOUBLE_LOCKED,/* Cannot clear R5_LOCKED until 2 writes complete */
671488cc 278 R5_OVERWRITE, /* towrite covers whole page */
1da177e4 279/* and some that are internal to handle_stripe */
671488cc
N
280 R5_Insync, /* rdev && rdev->in_sync at start */
281 R5_Wantread, /* want to schedule a read */
282 R5_Wantwrite,
283 R5_Overlap, /* There is a pending overlapping request
284 * on this block */
3f9e7c14 285 R5_ReadNoMerge, /* prevent bio from merging in block-layer */
671488cc
N
286 R5_ReadError, /* seen a read error here recently */
287 R5_ReWrite, /* have tried to over-write the readerror */
1da177e4 288
671488cc
N
289 R5_Expanded, /* This block now has post-expand data */
290 R5_Wantcompute, /* compute_block in progress treat as
291 * uptodate
292 */
293 R5_Wantfill, /* dev->toread contains a bio that needs
294 * filling
295 */
296 R5_Wantdrain, /* dev->towrite needs to be drained */
297 R5_WantFUA, /* Write should be FUA */
bc0934f0 298 R5_SyncIO, /* The IO is sync */
671488cc
N
299 R5_WriteError, /* got a write error - need to record it */
300 R5_MadeGood, /* A bad block has been fixed by writing to it */
301 R5_ReadRepl, /* Will/did read from replacement rather than orig */
302 R5_MadeGoodRepl,/* A bad block on the replacement device has been
303 * fixed by writing to it */
9a3e1101
N
304 R5_NeedReplace, /* This device has a replacement which is not
305 * up-to-date at this stripe. */
306 R5_WantReplace, /* We need to update the replacement, we have read
307 * data in, and now is a good time to write it out.
308 */
620125f2 309 R5_Discard, /* Discard the stripe */
d592a996 310 R5_SkipCopy, /* Don't copy data from bio to stripe cache */
671488cc 311};
1da177e4
LT
312
313/*
314 * Stripe state
315 */
83206d66 316enum {
c4c1663b 317 STRIPE_ACTIVE,
83206d66
N
318 STRIPE_HANDLE,
319 STRIPE_SYNC_REQUESTED,
320 STRIPE_SYNCING,
321 STRIPE_INSYNC,
f94c0b66 322 STRIPE_REPLACED,
83206d66
N
323 STRIPE_PREREAD_ACTIVE,
324 STRIPE_DELAYED,
325 STRIPE_DEGRADED,
326 STRIPE_BIT_DELAY,
327 STRIPE_EXPANDING,
328 STRIPE_EXPAND_SOURCE,
329 STRIPE_EXPAND_READY,
330 STRIPE_IO_STARTED, /* do not count towards 'bypass_count' */
331 STRIPE_FULL_WRITE, /* all blocks are set to be overwritten */
332 STRIPE_BIOFILL_RUN,
333 STRIPE_COMPUTE_RUN,
334 STRIPE_OPS_REQ_PENDING,
8811b596 335 STRIPE_ON_UNPLUG_LIST,
f8dfcffd 336 STRIPE_DISCARD,
773ca82f 337 STRIPE_ON_RELEASE_LIST,
da41ba65 338 STRIPE_BATCH_READY,
72ac7330 339 STRIPE_BATCH_ERR,
83206d66 340};
417b8d4a 341
dabc4ec6 342#define STRIPE_EXPAND_SYNC_FLAG \
343 ((1 << STRIPE_EXPAND_SOURCE) |\
344 (1 << STRIPE_EXPAND_READY) |\
345 (1 << STRIPE_EXPANDING) |\
346 (1 << STRIPE_SYNC_REQUESTED))
91c00924 347/*
ecc65c9b 348 * Operation request flags
91c00924 349 */
ede7ee8b
N
350enum {
351 STRIPE_OP_BIOFILL,
352 STRIPE_OP_COMPUTE_BLK,
353 STRIPE_OP_PREXOR,
354 STRIPE_OP_BIODRAIN,
355 STRIPE_OP_RECONSTRUCT,
356 STRIPE_OP_CHECK,
357};
1da177e4
LT
358/*
359 * Plugging:
360 *
361 * To improve write throughput, we need to delay the handling of some
362 * stripes until there has been a chance that several write requests
363 * for the one stripe have all been collected.
364 * In particular, any write request that would require pre-reading
365 * is put on a "delayed" queue until there are no stripes currently
366 * in a pre-read phase. Further, if the "delayed" queue is empty when
367 * a stripe is put on it then we "plug" the queue and do not process it
368 * until an unplug call is made. (the unplug_io_fn() is called).
369 *
370 * When preread is initiated on a stripe, we set PREREAD_ACTIVE and add
371 * it to the count of prereading stripes.
372 * When write is initiated, or the stripe refcnt == 0 (just in case) we
373 * clear the PREREAD_ACTIVE flag and decrement the count
b5c124af
N
374 * Whenever the 'handle' queue is empty and the device is not plugged, we
375 * move any strips from delayed to handle and clear the DELAYED flag and set
376 * PREREAD_ACTIVE.
1da177e4
LT
377 * In stripe_handle, if we find pre-reading is necessary, we do it if
378 * PREREAD_ACTIVE is set, else we set DELAYED which will send it to the delayed queue.
c4c1663b 379 * HANDLE gets cleared if stripe_handle leaves nothing locked.
1da177e4 380 */
ef740c37 381
1da177e4 382struct disk_info {
671488cc 383 struct md_rdev *rdev, *replacement;
1da177e4
LT
384};
385
566c09c5
SL
386/* NOTE NR_STRIPE_HASH_LOCKS must remain below 64.
387 * This is because we sometimes take all the spinlocks
388 * and creating that much locking depth can cause
389 * problems.
390 */
391#define NR_STRIPE_HASH_LOCKS 8
392#define STRIPE_HASH_LOCKS_MASK (NR_STRIPE_HASH_LOCKS - 1)
393
851c30c9
SL
394struct r5worker {
395 struct work_struct work;
396 struct r5worker_group *group;
566c09c5 397 struct list_head temp_inactive_list[NR_STRIPE_HASH_LOCKS];
bfc90cb0 398 bool working;
851c30c9
SL
399};
400
401struct r5worker_group {
402 struct list_head handle_list;
403 struct r5conf *conf;
404 struct r5worker *workers;
bfc90cb0 405 int stripes_cnt;
851c30c9
SL
406};
407
d1688a6d 408struct r5conf {
fccddba0 409 struct hlist_head *stripe_hashtbl;
566c09c5
SL
410 /* only protect corresponding hash list and inactive_list */
411 spinlock_t hash_locks[NR_STRIPE_HASH_LOCKS];
fd01b88c 412 struct mddev *mddev;
09c9e5fa
AN
413 int chunk_sectors;
414 int level, algorithm;
16a53ecc 415 int max_degraded;
02c2de8c 416 int raid_disks;
1da177e4
LT
417 int max_nr_stripes;
418
fef9c61f
N
419 /* reshape_progress is the leading edge of a 'reshape'
420 * It has value MaxSector when no reshape is happening
421 * If delta_disks < 0, it is the last sector we started work on,
422 * else is it the next sector to work on.
423 */
424 sector_t reshape_progress;
425 /* reshape_safe is the trailing edge of a reshape. We know that
426 * before (or after) this address, all reshape has completed.
427 */
428 sector_t reshape_safe;
7ecaa1e6 429 int previous_raid_disks;
09c9e5fa
AN
430 int prev_chunk_sectors;
431 int prev_algo;
86b42c71 432 short generation; /* increments with every reshape */
c46501b2 433 seqcount_t gen_lock; /* lock against generation changes */
c8f517c4
N
434 unsigned long reshape_checkpoint; /* Time we last updated
435 * metadata */
b5254dd5
N
436 long long min_offset_diff; /* minimum difference between
437 * data_offset and
438 * new_data_offset across all
439 * devices. May be negative,
440 * but is closest to zero.
441 */
7ecaa1e6 442
1da177e4 443 struct list_head handle_list; /* stripes needing handling */
8b3e6cdc 444 struct list_head hold_list; /* preread ready stripes */
1da177e4 445 struct list_head delayed_list; /* stripes that have plugged requests */
72626685 446 struct list_head bitmap_list; /* stripes delaying awaiting bitmap update */
46031f9a
RBJ
447 struct bio *retry_read_aligned; /* currently retrying aligned bios */
448 struct bio *retry_read_aligned_list; /* aligned bios retry list */
1da177e4 449 atomic_t preread_active_stripes; /* stripes with scheduled io */
46031f9a 450 atomic_t active_aligned_reads;
8b3e6cdc
DW
451 atomic_t pending_full_writes; /* full write backlog */
452 int bypass_count; /* bypassed prereads */
453 int bypass_threshold; /* preread nice */
d592a996 454 int skip_copy; /* Don't copy data from bio to stripe cache */
8b3e6cdc 455 struct list_head *last_hold; /* detect hold_list promotions */
1da177e4 456
f6705578 457 atomic_t reshape_stripes; /* stripes with pending writes for reshape */
ad01c9e3
N
458 /* unfortunately we need two cache names as we temporarily have
459 * two caches.
460 */
461 int active_name;
f4be6b43 462 char cache_name[2][32];
e18b890b 463 struct kmem_cache *slab_cache; /* for allocating stripes */
72626685
N
464
465 int seq_flush, seq_write;
466 int quiesce;
467
468 int fullsync; /* set to 1 if a full sync is needed,
469 * (fresh device added).
470 * Cleared when a sync completes.
471 */
7f0da59b 472 int recovery_disabled;
36d1c647
DW
473 /* per cpu variables */
474 struct raid5_percpu {
475 struct page *spare_page; /* Used when checking P/Q in raid6 */
46d5b785 476 struct flex_array *scribble; /* space for constructing buffer
d6f38f31
DW
477 * lists and performing address
478 * conversions
479 */
a29d8b8e 480 } __percpu *percpu;
36d1c647
DW
481#ifdef CONFIG_HOTPLUG_CPU
482 struct notifier_block cpu_notify;
483#endif
ca65b73b 484
1da177e4
LT
485 /*
486 * Free stripes pool
487 */
488 atomic_t active_stripes;
566c09c5 489 struct list_head inactive_list[NR_STRIPE_HASH_LOCKS];
4bda556a 490 atomic_t empty_inactive_list_nr;
773ca82f 491 struct llist_head released_stripes;
1da177e4
LT
492 wait_queue_head_t wait_for_stripe;
493 wait_queue_head_t wait_for_overlap;
494 int inactive_blocked; /* release of inactive stripes blocked,
495 * waiting for 25% to be free
ad01c9e3
N
496 */
497 int pool_size; /* number of disks in stripeheads in pool */
1da177e4 498 spinlock_t device_lock;
b55e6bfc 499 struct disk_info *disks;
91adb564
N
500
501 /* When taking over an array from a different personality, we store
502 * the new thread here until we fully activate the array.
503 */
2b8bf345 504 struct md_thread *thread;
566c09c5 505 struct list_head temp_inactive_list[NR_STRIPE_HASH_LOCKS];
851c30c9
SL
506 struct r5worker_group *worker_groups;
507 int group_cnt;
508 int worker_cnt_per_group;
1da177e4
LT
509};
510
1da177e4
LT
511/*
512 * Our supported algorithms
513 */
99c0fb5f
N
514#define ALGORITHM_LEFT_ASYMMETRIC 0 /* Rotating Parity N with Data Restart */
515#define ALGORITHM_RIGHT_ASYMMETRIC 1 /* Rotating Parity 0 with Data Restart */
516#define ALGORITHM_LEFT_SYMMETRIC 2 /* Rotating Parity N with Data Continuation */
517#define ALGORITHM_RIGHT_SYMMETRIC 3 /* Rotating Parity 0 with Data Continuation */
1da177e4 518
99c0fb5f
N
519/* Define non-rotating (raid4) algorithms. These allow
520 * conversion of raid4 to raid5.
521 */
522#define ALGORITHM_PARITY_0 4 /* P or P,Q are initial devices */
523#define ALGORITHM_PARITY_N 5 /* P or P,Q are final devices. */
524
525/* DDF RAID6 layouts differ from md/raid6 layouts in two ways.
526 * Firstly, the exact positioning of the parity block is slightly
527 * different between the 'LEFT_*' modes of md and the "_N_*" modes
528 * of DDF.
529 * Secondly, or order of datablocks over which the Q syndrome is computed
530 * is different.
531 * Consequently we have different layouts for DDF/raid6 than md/raid6.
532 * These layouts are from the DDFv1.2 spec.
533 * Interestingly DDFv1.2-Errata-A does not specify N_CONTINUE but
534 * leaves RLQ=3 as 'Vendor Specific'
535 */
536
537#define ALGORITHM_ROTATING_ZERO_RESTART 8 /* DDF PRL=6 RLQ=1 */
538#define ALGORITHM_ROTATING_N_RESTART 9 /* DDF PRL=6 RLQ=2 */
539#define ALGORITHM_ROTATING_N_CONTINUE 10 /*DDF PRL=6 RLQ=3 */
540
99c0fb5f
N
541/* For every RAID5 algorithm we define a RAID6 algorithm
542 * with exactly the same layout for data and parity, and
543 * with the Q block always on the last device (N-1).
544 * This allows trivial conversion from RAID5 to RAID6
545 */
546#define ALGORITHM_LEFT_ASYMMETRIC_6 16
547#define ALGORITHM_RIGHT_ASYMMETRIC_6 17
548#define ALGORITHM_LEFT_SYMMETRIC_6 18
549#define ALGORITHM_RIGHT_SYMMETRIC_6 19
550#define ALGORITHM_PARITY_0_6 20
551#define ALGORITHM_PARITY_N_6 ALGORITHM_PARITY_N
552
553static inline int algorithm_valid_raid5(int layout)
554{
555 return (layout >= 0) &&
556 (layout <= 5);
557}
558static inline int algorithm_valid_raid6(int layout)
559{
560 return (layout >= 0 && layout <= 5)
561 ||
e4424fee 562 (layout >= 8 && layout <= 10)
99c0fb5f
N
563 ||
564 (layout >= 16 && layout <= 20);
565}
566
567static inline int algorithm_is_DDF(int layout)
568{
569 return layout >= 8 && layout <= 10;
570}
11d8a6e3 571
d1688a6d 572extern void md_raid5_kick_device(struct r5conf *conf);
fd01b88c 573extern int raid5_set_cache_size(struct mddev *mddev, int size);
1da177e4 574#endif
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