rf_reconstruct.c revision 1.95.16.2 1 1.95.16.2 skrll /* $NetBSD: rf_reconstruct.c,v 1.95.16.2 2008/06/03 20:47:33 skrll Exp $ */
2 1.1 oster /*
3 1.1 oster * Copyright (c) 1995 Carnegie-Mellon University.
4 1.1 oster * All rights reserved.
5 1.1 oster *
6 1.1 oster * Author: Mark Holland
7 1.1 oster *
8 1.1 oster * Permission to use, copy, modify and distribute this software and
9 1.1 oster * its documentation is hereby granted, provided that both the copyright
10 1.1 oster * notice and this permission notice appear in all copies of the
11 1.1 oster * software, derivative works or modified versions, and any portions
12 1.1 oster * thereof, and that both notices appear in supporting documentation.
13 1.1 oster *
14 1.1 oster * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
15 1.1 oster * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
16 1.1 oster * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
17 1.1 oster *
18 1.1 oster * Carnegie Mellon requests users of this software to return to
19 1.1 oster *
20 1.1 oster * Software Distribution Coordinator or Software.Distribution (at) CS.CMU.EDU
21 1.1 oster * School of Computer Science
22 1.1 oster * Carnegie Mellon University
23 1.1 oster * Pittsburgh PA 15213-3890
24 1.1 oster *
25 1.1 oster * any improvements or extensions that they make and grant Carnegie the
26 1.1 oster * rights to redistribute these changes.
27 1.1 oster */
28 1.1 oster
29 1.1 oster /************************************************************
30 1.1 oster *
31 1.1 oster * rf_reconstruct.c -- code to perform on-line reconstruction
32 1.1 oster *
33 1.1 oster ************************************************************/
34 1.31 lukem
35 1.31 lukem #include <sys/cdefs.h>
36 1.95.16.2 skrll __KERNEL_RCSID(0, "$NetBSD: rf_reconstruct.c,v 1.95.16.2 2008/06/03 20:47:33 skrll Exp $");
37 1.1 oster
38 1.1 oster #include <sys/time.h>
39 1.1 oster #include <sys/buf.h>
40 1.1 oster #include <sys/errno.h>
41 1.5 oster
42 1.5 oster #include <sys/param.h>
43 1.5 oster #include <sys/systm.h>
44 1.5 oster #include <sys/proc.h>
45 1.5 oster #include <sys/ioctl.h>
46 1.5 oster #include <sys/fcntl.h>
47 1.5 oster #include <sys/vnode.h>
48 1.30 oster #include <dev/raidframe/raidframevar.h>
49 1.5 oster
50 1.1 oster #include "rf_raid.h"
51 1.1 oster #include "rf_reconutil.h"
52 1.1 oster #include "rf_revent.h"
53 1.1 oster #include "rf_reconbuffer.h"
54 1.1 oster #include "rf_acctrace.h"
55 1.1 oster #include "rf_etimer.h"
56 1.1 oster #include "rf_dag.h"
57 1.1 oster #include "rf_desc.h"
58 1.36 oster #include "rf_debugprint.h"
59 1.1 oster #include "rf_general.h"
60 1.1 oster #include "rf_driver.h"
61 1.1 oster #include "rf_utils.h"
62 1.1 oster #include "rf_shutdown.h"
63 1.1 oster
64 1.1 oster #include "rf_kintf.h"
65 1.1 oster
66 1.1 oster /* setting these to -1 causes them to be set to their default values if not set by debug options */
67 1.1 oster
68 1.41 oster #if RF_DEBUG_RECON
69 1.1 oster #define Dprintf(s) if (rf_reconDebug) rf_debug_printf(s,NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL)
70 1.1 oster #define Dprintf1(s,a) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),NULL,NULL,NULL,NULL,NULL,NULL,NULL)
71 1.1 oster #define Dprintf2(s,a,b) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),NULL,NULL,NULL,NULL,NULL,NULL)
72 1.1 oster #define Dprintf3(s,a,b,c) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),NULL,NULL,NULL,NULL,NULL)
73 1.1 oster #define Dprintf4(s,a,b,c,d) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),NULL,NULL,NULL,NULL)
74 1.1 oster #define Dprintf5(s,a,b,c,d,e) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),NULL,NULL,NULL)
75 1.1 oster #define Dprintf6(s,a,b,c,d,e,f) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),(void *)((unsigned long)f),NULL,NULL)
76 1.1 oster #define Dprintf7(s,a,b,c,d,e,f,g) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),(void *)((unsigned long)f),(void *)((unsigned long)g),NULL)
77 1.1 oster
78 1.1 oster #define DDprintf1(s,a) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),NULL,NULL,NULL,NULL,NULL,NULL,NULL)
79 1.1 oster #define DDprintf2(s,a,b) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),NULL,NULL,NULL,NULL,NULL,NULL)
80 1.33 oster
81 1.41 oster #else /* RF_DEBUG_RECON */
82 1.33 oster
83 1.33 oster #define Dprintf(s) {}
84 1.33 oster #define Dprintf1(s,a) {}
85 1.33 oster #define Dprintf2(s,a,b) {}
86 1.33 oster #define Dprintf3(s,a,b,c) {}
87 1.33 oster #define Dprintf4(s,a,b,c,d) {}
88 1.33 oster #define Dprintf5(s,a,b,c,d,e) {}
89 1.33 oster #define Dprintf6(s,a,b,c,d,e,f) {}
90 1.33 oster #define Dprintf7(s,a,b,c,d,e,f,g) {}
91 1.33 oster
92 1.33 oster #define DDprintf1(s,a) {}
93 1.33 oster #define DDprintf2(s,a,b) {}
94 1.33 oster
95 1.41 oster #endif /* RF_DEBUG_RECON */
96 1.33 oster
97 1.82 oster #define RF_RECON_DONE_READS 1
98 1.82 oster #define RF_RECON_READ_ERROR 2
99 1.82 oster #define RF_RECON_WRITE_ERROR 3
100 1.82 oster #define RF_RECON_READ_STOPPED 4
101 1.95.16.2 skrll #define RF_RECON_WRITE_DONE 5
102 1.82 oster
103 1.73 oster #define RF_MAX_FREE_RECONBUFFER 32
104 1.73 oster #define RF_MIN_FREE_RECONBUFFER 16
105 1.1 oster
106 1.69 oster static RF_RaidReconDesc_t *AllocRaidReconDesc(RF_Raid_t *, RF_RowCol_t,
107 1.69 oster RF_RaidDisk_t *, int, RF_RowCol_t);
108 1.69 oster static void FreeReconDesc(RF_RaidReconDesc_t *);
109 1.69 oster static int ProcessReconEvent(RF_Raid_t *, RF_ReconEvent_t *);
110 1.69 oster static int IssueNextReadRequest(RF_Raid_t *, RF_RowCol_t);
111 1.69 oster static int TryToRead(RF_Raid_t *, RF_RowCol_t);
112 1.87 perry static int ComputePSDiskOffsets(RF_Raid_t *, RF_StripeNum_t, RF_RowCol_t,
113 1.69 oster RF_SectorNum_t *, RF_SectorNum_t *, RF_RowCol_t *,
114 1.69 oster RF_SectorNum_t *);
115 1.69 oster static int IssueNextWriteRequest(RF_Raid_t *);
116 1.69 oster static int ReconReadDoneProc(void *, int);
117 1.69 oster static int ReconWriteDoneProc(void *, int);
118 1.69 oster static void CheckForNewMinHeadSep(RF_Raid_t *, RF_HeadSepLimit_t);
119 1.69 oster static int CheckHeadSeparation(RF_Raid_t *, RF_PerDiskReconCtrl_t *,
120 1.69 oster RF_RowCol_t, RF_HeadSepLimit_t,
121 1.69 oster RF_ReconUnitNum_t);
122 1.69 oster static int CheckForcedOrBlockedReconstruction(RF_Raid_t *,
123 1.69 oster RF_ReconParityStripeStatus_t *,
124 1.69 oster RF_PerDiskReconCtrl_t *,
125 1.69 oster RF_RowCol_t, RF_StripeNum_t,
126 1.69 oster RF_ReconUnitNum_t);
127 1.69 oster static void ForceReconReadDoneProc(void *, int);
128 1.1 oster static void rf_ShutdownReconstruction(void *);
129 1.1 oster
130 1.1 oster struct RF_ReconDoneProc_s {
131 1.4 oster void (*proc) (RF_Raid_t *, void *);
132 1.4 oster void *arg;
133 1.4 oster RF_ReconDoneProc_t *next;
134 1.1 oster };
135 1.1 oster
136 1.13 oster /**************************************************************************
137 1.1 oster *
138 1.1 oster * sets up the parameters that will be used by the reconstruction process
139 1.1 oster * currently there are none, except for those that the layout-specific
140 1.1 oster * configuration (e.g. rf_ConfigureDeclustered) routine sets up.
141 1.1 oster *
142 1.1 oster * in the kernel, we fire off the recon thread.
143 1.1 oster *
144 1.13 oster **************************************************************************/
145 1.87 perry static void
146 1.95 christos rf_ShutdownReconstruction(void *ignored)
147 1.4 oster {
148 1.74 oster pool_destroy(&rf_pools.reconbuffer);
149 1.4 oster }
150 1.4 oster
151 1.87 perry int
152 1.60 oster rf_ConfigureReconstruction(RF_ShutdownList_t **listp)
153 1.4 oster {
154 1.4 oster
155 1.74 oster rf_pool_init(&rf_pools.reconbuffer, sizeof(RF_ReconBuffer_t),
156 1.74 oster "rf_reconbuffer_pl", RF_MIN_FREE_RECONBUFFER, RF_MAX_FREE_RECONBUFFER);
157 1.66 oster rf_ShutdownCreate(listp, rf_ShutdownReconstruction, NULL);
158 1.66 oster
159 1.4 oster return (0);
160 1.4 oster }
161 1.4 oster
162 1.4 oster static RF_RaidReconDesc_t *
163 1.87 perry AllocRaidReconDesc(RF_Raid_t *raidPtr, RF_RowCol_t col,
164 1.60 oster RF_RaidDisk_t *spareDiskPtr, int numDisksDone,
165 1.60 oster RF_RowCol_t scol)
166 1.1 oster {
167 1.1 oster
168 1.4 oster RF_RaidReconDesc_t *reconDesc;
169 1.4 oster
170 1.80 oster RF_Malloc(reconDesc, sizeof(RF_RaidReconDesc_t),
171 1.80 oster (RF_RaidReconDesc_t *));
172 1.4 oster reconDesc->raidPtr = raidPtr;
173 1.4 oster reconDesc->col = col;
174 1.4 oster reconDesc->spareDiskPtr = spareDiskPtr;
175 1.4 oster reconDesc->numDisksDone = numDisksDone;
176 1.4 oster reconDesc->scol = scol;
177 1.4 oster reconDesc->next = NULL;
178 1.1 oster
179 1.4 oster return (reconDesc);
180 1.1 oster }
181 1.1 oster
182 1.87 perry static void
183 1.60 oster FreeReconDesc(RF_RaidReconDesc_t *reconDesc)
184 1.1 oster {
185 1.1 oster #if RF_RECON_STATS > 0
186 1.50 oster printf("raid%d: %lu recon event waits, %lu recon delays\n",
187 1.50 oster reconDesc->raidPtr->raidid,
188 1.87 perry (long) reconDesc->numReconEventWaits,
189 1.50 oster (long) reconDesc->numReconExecDelays);
190 1.4 oster #endif /* RF_RECON_STATS > 0 */
191 1.50 oster printf("raid%d: %lu max exec ticks\n",
192 1.50 oster reconDesc->raidPtr->raidid,
193 1.50 oster (long) reconDesc->maxReconExecTicks);
194 1.1 oster #if (RF_RECON_STATS > 0) || defined(KERNEL)
195 1.4 oster printf("\n");
196 1.4 oster #endif /* (RF_RECON_STATS > 0) || KERNEL */
197 1.80 oster RF_Free(reconDesc, sizeof(RF_RaidReconDesc_t));
198 1.1 oster }
199 1.1 oster
200 1.1 oster
201 1.13 oster /*****************************************************************************
202 1.1 oster *
203 1.1 oster * primary routine to reconstruct a failed disk. This should be called from
204 1.1 oster * within its own thread. It won't return until reconstruction completes,
205 1.1 oster * fails, or is aborted.
206 1.13 oster *****************************************************************************/
207 1.87 perry int
208 1.60 oster rf_ReconstructFailedDisk(RF_Raid_t *raidPtr, RF_RowCol_t col)
209 1.4 oster {
210 1.52 jdolecek const RF_LayoutSW_t *lp;
211 1.4 oster int rc;
212 1.4 oster
213 1.4 oster lp = raidPtr->Layout.map;
214 1.4 oster if (lp->SubmitReconBuffer) {
215 1.4 oster /*
216 1.4 oster * The current infrastructure only supports reconstructing one
217 1.4 oster * disk at a time for each array.
218 1.4 oster */
219 1.4 oster RF_LOCK_MUTEX(raidPtr->mutex);
220 1.4 oster while (raidPtr->reconInProgress) {
221 1.4 oster RF_WAIT_COND(raidPtr->waitForReconCond, raidPtr->mutex);
222 1.4 oster }
223 1.4 oster raidPtr->reconInProgress++;
224 1.4 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
225 1.57 oster rc = rf_ReconstructFailedDiskBasic(raidPtr, col);
226 1.6 oster RF_LOCK_MUTEX(raidPtr->mutex);
227 1.6 oster raidPtr->reconInProgress--;
228 1.6 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
229 1.4 oster } else {
230 1.4 oster RF_ERRORMSG1("RECON: no way to reconstruct failed disk for arch %c\n",
231 1.4 oster lp->parityConfig);
232 1.4 oster rc = EIO;
233 1.4 oster }
234 1.4 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
235 1.4 oster return (rc);
236 1.4 oster }
237 1.4 oster
238 1.87 perry int
239 1.60 oster rf_ReconstructFailedDiskBasic(RF_Raid_t *raidPtr, RF_RowCol_t col)
240 1.4 oster {
241 1.5 oster RF_ComponentLabel_t c_label;
242 1.4 oster RF_RaidDisk_t *spareDiskPtr = NULL;
243 1.4 oster RF_RaidReconDesc_t *reconDesc;
244 1.57 oster RF_RowCol_t scol;
245 1.4 oster int numDisksDone = 0, rc;
246 1.4 oster
247 1.4 oster /* first look for a spare drive onto which to reconstruct the data */
248 1.4 oster /* spare disk descriptors are stored in row 0. This may have to
249 1.4 oster * change eventually */
250 1.4 oster
251 1.4 oster RF_LOCK_MUTEX(raidPtr->mutex);
252 1.57 oster RF_ASSERT(raidPtr->Disks[col].status == rf_ds_failed);
253 1.72 oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
254 1.4 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
255 1.57 oster if (raidPtr->status != rf_rs_degraded) {
256 1.57 oster RF_ERRORMSG1("Unable to reconstruct disk at col %d because status not degraded\n", col);
257 1.4 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
258 1.4 oster return (EINVAL);
259 1.4 oster }
260 1.4 oster scol = (-1);
261 1.4 oster } else {
262 1.72 oster #endif
263 1.4 oster for (scol = raidPtr->numCol; scol < raidPtr->numCol + raidPtr->numSpare; scol++) {
264 1.57 oster if (raidPtr->Disks[scol].status == rf_ds_spare) {
265 1.57 oster spareDiskPtr = &raidPtr->Disks[scol];
266 1.4 oster spareDiskPtr->status = rf_ds_used_spare;
267 1.4 oster break;
268 1.4 oster }
269 1.4 oster }
270 1.4 oster if (!spareDiskPtr) {
271 1.57 oster RF_ERRORMSG1("Unable to reconstruct disk at col %d because no spares are available\n", col);
272 1.4 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
273 1.4 oster return (ENOSPC);
274 1.4 oster }
275 1.57 oster printf("RECON: initiating reconstruction on col %d -> spare at col %d\n", col, scol);
276 1.72 oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
277 1.4 oster }
278 1.72 oster #endif
279 1.4 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
280 1.1 oster
281 1.57 oster reconDesc = AllocRaidReconDesc((void *) raidPtr, col, spareDiskPtr, numDisksDone, scol);
282 1.4 oster raidPtr->reconDesc = (void *) reconDesc;
283 1.1 oster #if RF_RECON_STATS > 0
284 1.4 oster reconDesc->hsStallCount = 0;
285 1.4 oster reconDesc->numReconExecDelays = 0;
286 1.4 oster reconDesc->numReconEventWaits = 0;
287 1.4 oster #endif /* RF_RECON_STATS > 0 */
288 1.4 oster reconDesc->reconExecTimerRunning = 0;
289 1.4 oster reconDesc->reconExecTicks = 0;
290 1.4 oster reconDesc->maxReconExecTicks = 0;
291 1.4 oster rc = rf_ContinueReconstructFailedDisk(reconDesc);
292 1.5 oster
293 1.5 oster if (!rc) {
294 1.5 oster /* fix up the component label */
295 1.5 oster /* Don't actually need the read here.. */
296 1.5 oster raidread_component_label(
297 1.57 oster raidPtr->raid_cinfo[scol].ci_dev,
298 1.57 oster raidPtr->raid_cinfo[scol].ci_vp,
299 1.5 oster &c_label);
300 1.87 perry
301 1.15 oster raid_init_component_label( raidPtr, &c_label);
302 1.57 oster c_label.row = 0;
303 1.5 oster c_label.column = col;
304 1.5 oster c_label.clean = RF_RAID_DIRTY;
305 1.5 oster c_label.status = rf_ds_optimal;
306 1.57 oster c_label.partitionSize = raidPtr->Disks[scol].partitionSize;
307 1.15 oster
308 1.28 oster /* We've just done a rebuild based on all the other
309 1.28 oster disks, so at this point the parity is known to be
310 1.28 oster clean, even if it wasn't before. */
311 1.28 oster
312 1.28 oster /* XXX doesn't hold for RAID 6!!*/
313 1.28 oster
314 1.48 oster RF_LOCK_MUTEX(raidPtr->mutex);
315 1.28 oster raidPtr->parity_good = RF_RAID_CLEAN;
316 1.48 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
317 1.28 oster
318 1.15 oster /* XXXX MORE NEEDED HERE */
319 1.87 perry
320 1.5 oster raidwrite_component_label(
321 1.57 oster raidPtr->raid_cinfo[scol].ci_dev,
322 1.57 oster raidPtr->raid_cinfo[scol].ci_vp,
323 1.5 oster &c_label);
324 1.49 oster
325 1.82 oster } else {
326 1.82 oster /* Reconstruct failed. */
327 1.82 oster
328 1.82 oster RF_LOCK_MUTEX(raidPtr->mutex);
329 1.82 oster /* Failed disk goes back to "failed" status */
330 1.82 oster raidPtr->Disks[col].status = rf_ds_failed;
331 1.82 oster
332 1.82 oster /* Spare disk goes back to "spare" status. */
333 1.82 oster spareDiskPtr->status = rf_ds_spare;
334 1.82 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
335 1.84 oster
336 1.5 oster }
337 1.84 oster rf_update_component_labels(raidPtr, RF_NORMAL_COMPONENT_UPDATE);
338 1.5 oster return (rc);
339 1.5 oster }
340 1.5 oster
341 1.87 perry /*
342 1.5 oster
343 1.5 oster Allow reconstructing a disk in-place -- i.e. component /dev/sd2e goes AWOL,
344 1.87 perry and you don't get a spare until the next Monday. With this function
345 1.87 perry (and hot-swappable drives) you can now put your new disk containing
346 1.5 oster /dev/sd2e on the bus, scsictl it alive, and then use raidctl(8) to
347 1.5 oster rebuild the data "on the spot".
348 1.5 oster
349 1.5 oster */
350 1.5 oster
351 1.5 oster int
352 1.60 oster rf_ReconstructInPlace(RF_Raid_t *raidPtr, RF_RowCol_t col)
353 1.5 oster {
354 1.5 oster RF_RaidDisk_t *spareDiskPtr = NULL;
355 1.5 oster RF_RaidReconDesc_t *reconDesc;
356 1.52 jdolecek const RF_LayoutSW_t *lp;
357 1.5 oster RF_ComponentLabel_t c_label;
358 1.5 oster int numDisksDone = 0, rc;
359 1.5 oster struct partinfo dpart;
360 1.5 oster struct vnode *vp;
361 1.5 oster struct vattr va;
362 1.90 christos struct lwp *lwp;
363 1.5 oster int retcode;
364 1.21 oster int ac;
365 1.5 oster
366 1.5 oster lp = raidPtr->Layout.map;
367 1.61 oster if (!lp->SubmitReconBuffer) {
368 1.61 oster RF_ERRORMSG1("RECON: no way to reconstruct failed disk for arch %c\n",
369 1.61 oster lp->parityConfig);
370 1.61 oster /* wakeup anyone who might be waiting to do a reconstruct */
371 1.61 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
372 1.61 oster return(EIO);
373 1.62 oster }
374 1.5 oster
375 1.62 oster /*
376 1.62 oster * The current infrastructure only supports reconstructing one
377 1.62 oster * disk at a time for each array.
378 1.62 oster */
379 1.62 oster RF_LOCK_MUTEX(raidPtr->mutex);
380 1.5 oster
381 1.62 oster if (raidPtr->Disks[col].status != rf_ds_failed) {
382 1.62 oster /* "It's gone..." */
383 1.62 oster raidPtr->numFailures++;
384 1.62 oster raidPtr->Disks[col].status = rf_ds_failed;
385 1.62 oster raidPtr->status = rf_rs_degraded;
386 1.62 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
387 1.62 oster rf_update_component_labels(raidPtr,
388 1.62 oster RF_NORMAL_COMPONENT_UPDATE);
389 1.62 oster RF_LOCK_MUTEX(raidPtr->mutex);
390 1.62 oster }
391 1.87 perry
392 1.62 oster while (raidPtr->reconInProgress) {
393 1.62 oster RF_WAIT_COND(raidPtr->waitForReconCond, raidPtr->mutex);
394 1.62 oster }
395 1.87 perry
396 1.62 oster raidPtr->reconInProgress++;
397 1.87 perry
398 1.62 oster /* first look for a spare drive onto which to reconstruct the
399 1.62 oster data. spare disk descriptors are stored in row 0. This
400 1.62 oster may have to change eventually */
401 1.87 perry
402 1.62 oster /* Actually, we don't care if it's failed or not... On a RAID
403 1.62 oster set with correct parity, this function should be callable
404 1.62 oster on any component without ill affects. */
405 1.62 oster /* RF_ASSERT(raidPtr->Disks[col].status == rf_ds_failed); */
406 1.87 perry
407 1.72 oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
408 1.62 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
409 1.62 oster RF_ERRORMSG1("Unable to reconstruct to disk at col %d: operation not supported for RF_DISTRIBUTE_SPARE\n", col);
410 1.87 perry
411 1.62 oster raidPtr->reconInProgress--;
412 1.62 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
413 1.64 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
414 1.62 oster return (EINVAL);
415 1.87 perry }
416 1.72 oster #endif
417 1.90 christos lwp = LIST_FIRST(&raidPtr->engine_thread->p_lwps);
418 1.87 perry
419 1.87 perry /* This device may have been opened successfully the
420 1.62 oster first time. Close it before trying to open it again.. */
421 1.87 perry
422 1.62 oster if (raidPtr->raid_cinfo[col].ci_vp != NULL) {
423 1.37 oster #if 0
424 1.62 oster printf("Closed the open device: %s\n",
425 1.62 oster raidPtr->Disks[col].devname);
426 1.37 oster #endif
427 1.62 oster vp = raidPtr->raid_cinfo[col].ci_vp;
428 1.62 oster ac = raidPtr->Disks[col].auto_configured;
429 1.62 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
430 1.62 oster rf_close_component(raidPtr, vp, ac);
431 1.62 oster RF_LOCK_MUTEX(raidPtr->mutex);
432 1.62 oster raidPtr->raid_cinfo[col].ci_vp = NULL;
433 1.62 oster }
434 1.62 oster /* note that this disk was *not* auto_configured (any longer)*/
435 1.62 oster raidPtr->Disks[col].auto_configured = 0;
436 1.87 perry
437 1.37 oster #if 0
438 1.62 oster printf("About to (re-)open the device for rebuilding: %s\n",
439 1.62 oster raidPtr->Disks[col].devname);
440 1.37 oster #endif
441 1.62 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
442 1.95.16.1 wrstuden retcode = dk_lookup(raidPtr->Disks[col].devname, lwp, &vp, UIO_SYSSPACE);
443 1.87 perry
444 1.62 oster if (retcode) {
445 1.93 christos printf("raid%d: rebuilding: dk_lookup on device: %s failed: %d!\n",raidPtr->raidid,
446 1.62 oster raidPtr->Disks[col].devname, retcode);
447 1.87 perry
448 1.87 perry /* the component isn't responding properly...
449 1.62 oster must be still dead :-( */
450 1.62 oster RF_LOCK_MUTEX(raidPtr->mutex);
451 1.62 oster raidPtr->reconInProgress--;
452 1.48 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
453 1.64 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
454 1.62 oster return(retcode);
455 1.63 oster }
456 1.63 oster
457 1.87 perry /* Ok, so we can at least do a lookup...
458 1.63 oster How about actually getting a vp for it? */
459 1.87 perry
460 1.92 ad if ((retcode = VOP_GETATTR(vp, &va, lwp->l_cred, lwp)) != 0) {
461 1.63 oster RF_LOCK_MUTEX(raidPtr->mutex);
462 1.63 oster raidPtr->reconInProgress--;
463 1.63 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
464 1.64 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
465 1.63 oster return(retcode);
466 1.63 oster }
467 1.63 oster
468 1.92 ad retcode = VOP_IOCTL(vp, DIOCGPART, &dpart, FREAD, lwp->l_cred, lwp);
469 1.63 oster if (retcode) {
470 1.62 oster RF_LOCK_MUTEX(raidPtr->mutex);
471 1.63 oster raidPtr->reconInProgress--;
472 1.62 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
473 1.64 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
474 1.63 oster return(retcode);
475 1.62 oster }
476 1.63 oster RF_LOCK_MUTEX(raidPtr->mutex);
477 1.63 oster raidPtr->Disks[col].blockSize = dpart.disklab->d_secsize;
478 1.87 perry
479 1.64 oster raidPtr->Disks[col].numBlocks = dpart.part->p_size -
480 1.63 oster rf_protectedSectors;
481 1.87 perry
482 1.63 oster raidPtr->raid_cinfo[col].ci_vp = vp;
483 1.63 oster raidPtr->raid_cinfo[col].ci_dev = va.va_rdev;
484 1.87 perry
485 1.63 oster raidPtr->Disks[col].dev = va.va_rdev;
486 1.87 perry
487 1.63 oster /* we allow the user to specify that only a fraction
488 1.63 oster of the disks should be used this is just for debug:
489 1.63 oster it speeds up * the parity scan */
490 1.63 oster raidPtr->Disks[col].numBlocks = raidPtr->Disks[col].numBlocks *
491 1.63 oster rf_sizePercentage / 100;
492 1.63 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
493 1.87 perry
494 1.62 oster spareDiskPtr = &raidPtr->Disks[col];
495 1.62 oster spareDiskPtr->status = rf_ds_used_spare;
496 1.87 perry
497 1.87 perry printf("raid%d: initiating in-place reconstruction on column %d\n",
498 1.62 oster raidPtr->raidid, col);
499 1.5 oster
500 1.87 perry reconDesc = AllocRaidReconDesc((void *) raidPtr, col, spareDiskPtr,
501 1.62 oster numDisksDone, col);
502 1.62 oster raidPtr->reconDesc = (void *) reconDesc;
503 1.5 oster #if RF_RECON_STATS > 0
504 1.62 oster reconDesc->hsStallCount = 0;
505 1.62 oster reconDesc->numReconExecDelays = 0;
506 1.62 oster reconDesc->numReconEventWaits = 0;
507 1.5 oster #endif /* RF_RECON_STATS > 0 */
508 1.62 oster reconDesc->reconExecTimerRunning = 0;
509 1.62 oster reconDesc->reconExecTicks = 0;
510 1.62 oster reconDesc->maxReconExecTicks = 0;
511 1.62 oster rc = rf_ContinueReconstructFailedDisk(reconDesc);
512 1.87 perry
513 1.5 oster if (!rc) {
514 1.48 oster RF_LOCK_MUTEX(raidPtr->mutex);
515 1.5 oster /* Need to set these here, as at this point it'll be claiming
516 1.5 oster that the disk is in rf_ds_spared! But we know better :-) */
517 1.87 perry
518 1.57 oster raidPtr->Disks[col].status = rf_ds_optimal;
519 1.57 oster raidPtr->status = rf_rs_optimal;
520 1.48 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
521 1.87 perry
522 1.5 oster /* fix up the component label */
523 1.5 oster /* Don't actually need the read here.. */
524 1.57 oster raidread_component_label(raidPtr->raid_cinfo[col].ci_dev,
525 1.57 oster raidPtr->raid_cinfo[col].ci_vp,
526 1.5 oster &c_label);
527 1.16 oster
528 1.48 oster RF_LOCK_MUTEX(raidPtr->mutex);
529 1.16 oster raid_init_component_label(raidPtr, &c_label);
530 1.16 oster
531 1.57 oster c_label.row = 0;
532 1.5 oster c_label.column = col;
533 1.28 oster
534 1.28 oster /* We've just done a rebuild based on all the other
535 1.28 oster disks, so at this point the parity is known to be
536 1.28 oster clean, even if it wasn't before. */
537 1.28 oster
538 1.28 oster /* XXX doesn't hold for RAID 6!!*/
539 1.28 oster
540 1.28 oster raidPtr->parity_good = RF_RAID_CLEAN;
541 1.48 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
542 1.87 perry
543 1.57 oster raidwrite_component_label(raidPtr->raid_cinfo[col].ci_dev,
544 1.57 oster raidPtr->raid_cinfo[col].ci_vp,
545 1.5 oster &c_label);
546 1.49 oster
547 1.82 oster } else {
548 1.82 oster /* Reconstruct-in-place failed. Disk goes back to
549 1.82 oster "failed" status, regardless of what it was before. */
550 1.82 oster RF_LOCK_MUTEX(raidPtr->mutex);
551 1.82 oster raidPtr->Disks[col].status = rf_ds_failed;
552 1.82 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
553 1.82 oster }
554 1.5 oster
555 1.84 oster rf_update_component_labels(raidPtr, RF_NORMAL_COMPONENT_UPDATE);
556 1.84 oster
557 1.82 oster RF_LOCK_MUTEX(raidPtr->mutex);
558 1.82 oster raidPtr->reconInProgress--;
559 1.82 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
560 1.87 perry
561 1.5 oster RF_SIGNAL_COND(raidPtr->waitForReconCond);
562 1.4 oster return (rc);
563 1.4 oster }
564 1.4 oster
565 1.4 oster
566 1.87 perry int
567 1.60 oster rf_ContinueReconstructFailedDisk(RF_RaidReconDesc_t *reconDesc)
568 1.4 oster {
569 1.4 oster RF_Raid_t *raidPtr = reconDesc->raidPtr;
570 1.4 oster RF_RowCol_t col = reconDesc->col;
571 1.4 oster RF_RowCol_t scol = reconDesc->scol;
572 1.4 oster RF_ReconMap_t *mapPtr;
573 1.46 oster RF_ReconCtrl_t *tmp_reconctrl;
574 1.4 oster RF_ReconEvent_t *event;
575 1.95.16.2 skrll RF_StripeCount_t incPSID,lastPSID,num_writes,pending_writes,prev;
576 1.95.16.2 skrll RF_ReconUnitCount_t RUsPerPU;
577 1.4 oster struct timeval etime, elpsd;
578 1.4 oster unsigned long xor_s, xor_resid_us;
579 1.54 simonb int i, ds;
580 1.95.16.2 skrll int status, done;
581 1.82 oster int recon_error, write_error;
582 1.4 oster
583 1.78 oster raidPtr->accumXorTimeUs = 0;
584 1.67 oster #if RF_ACC_TRACE > 0
585 1.78 oster /* create one trace record per physical disk */
586 1.78 oster RF_Malloc(raidPtr->recon_tracerecs, raidPtr->numCol * sizeof(RF_AccTraceEntry_t), (RF_AccTraceEntry_t *));
587 1.67 oster #endif
588 1.87 perry
589 1.78 oster /* quiesce the array prior to starting recon. this is needed
590 1.78 oster * to assure no nasty interactions with pending user writes.
591 1.78 oster * We need to do this before we change the disk or row status. */
592 1.87 perry
593 1.78 oster Dprintf("RECON: begin request suspend\n");
594 1.78 oster rf_SuspendNewRequestsAndWait(raidPtr);
595 1.78 oster Dprintf("RECON: end request suspend\n");
596 1.87 perry
597 1.78 oster /* allocate our RF_ReconCTRL_t before we protect raidPtr->reconControl[row] */
598 1.78 oster tmp_reconctrl = rf_MakeReconControl(reconDesc, col, scol);
599 1.87 perry
600 1.78 oster RF_LOCK_MUTEX(raidPtr->mutex);
601 1.87 perry
602 1.78 oster /* create the reconstruction control pointer and install it in
603 1.78 oster * the right slot */
604 1.78 oster raidPtr->reconControl = tmp_reconctrl;
605 1.78 oster mapPtr = raidPtr->reconControl->reconMap;
606 1.88 oster raidPtr->reconControl->numRUsTotal = mapPtr->totalRUs;
607 1.88 oster raidPtr->reconControl->numRUsComplete = 0;
608 1.78 oster raidPtr->status = rf_rs_reconstructing;
609 1.78 oster raidPtr->Disks[col].status = rf_ds_reconstructing;
610 1.78 oster raidPtr->Disks[col].spareCol = scol;
611 1.87 perry
612 1.78 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
613 1.87 perry
614 1.78 oster RF_GETTIME(raidPtr->reconControl->starttime);
615 1.87 perry
616 1.78 oster Dprintf("RECON: resume requests\n");
617 1.78 oster rf_ResumeNewRequests(raidPtr);
618 1.87 perry
619 1.4 oster
620 1.78 oster mapPtr = raidPtr->reconControl->reconMap;
621 1.95.16.2 skrll
622 1.95.16.2 skrll incPSID = RF_RECONMAP_SIZE;
623 1.95.16.2 skrll lastPSID = raidPtr->Layout.numStripe / raidPtr->Layout.SUsPerPU;
624 1.95.16.2 skrll RUsPerPU = raidPtr->Layout.SUsPerPU / raidPtr->Layout.SUsPerRU;
625 1.82 oster recon_error = 0;
626 1.82 oster write_error = 0;
627 1.95.16.2 skrll pending_writes = incPSID;
628 1.95.16.2 skrll raidPtr->reconControl->lastPSID = incPSID;
629 1.82 oster
630 1.95.16.2 skrll /* start the actual reconstruction */
631 1.87 perry
632 1.95.16.2 skrll done = 0;
633 1.95.16.2 skrll while (!done) {
634 1.95.16.2 skrll
635 1.95.16.2 skrll num_writes = 0;
636 1.95.16.2 skrll
637 1.95.16.2 skrll /* issue a read for each surviving disk */
638 1.95.16.2 skrll
639 1.95.16.2 skrll reconDesc->numDisksDone = 0;
640 1.95.16.2 skrll for (i = 0; i < raidPtr->numCol; i++) {
641 1.95.16.2 skrll if (i != col) {
642 1.95.16.2 skrll /* find and issue the next I/O on the
643 1.95.16.2 skrll * indicated disk */
644 1.95.16.2 skrll if (IssueNextReadRequest(raidPtr, i)) {
645 1.95.16.2 skrll Dprintf1("RECON: done issuing for c%d\n", i);
646 1.95.16.2 skrll reconDesc->numDisksDone++;
647 1.95.16.2 skrll }
648 1.95.16.2 skrll }
649 1.95.16.2 skrll }
650 1.82 oster
651 1.95.16.2 skrll /* process reconstruction events until all disks report that
652 1.95.16.2 skrll * they've completed all work */
653 1.82 oster
654 1.95.16.2 skrll while (reconDesc->numDisksDone < raidPtr->numCol - 1) {
655 1.95.16.2 skrll
656 1.95.16.2 skrll event = rf_GetNextReconEvent(reconDesc);
657 1.95.16.2 skrll status = ProcessReconEvent(raidPtr, event);
658 1.95.16.2 skrll
659 1.95.16.2 skrll /* the normal case is that a read completes, and all is well. */
660 1.95.16.2 skrll if (status == RF_RECON_DONE_READS) {
661 1.95.16.2 skrll reconDesc->numDisksDone++;
662 1.95.16.2 skrll } else if ((status == RF_RECON_READ_ERROR) ||
663 1.95.16.2 skrll (status == RF_RECON_WRITE_ERROR)) {
664 1.95.16.2 skrll /* an error was encountered while reconstructing...
665 1.95.16.2 skrll Pretend we've finished this disk.
666 1.95.16.2 skrll */
667 1.95.16.2 skrll recon_error = 1;
668 1.95.16.2 skrll raidPtr->reconControl->error = 1;
669 1.95.16.2 skrll
670 1.95.16.2 skrll /* bump the numDisksDone count for reads,
671 1.95.16.2 skrll but not for writes */
672 1.95.16.2 skrll if (status == RF_RECON_READ_ERROR)
673 1.95.16.2 skrll reconDesc->numDisksDone++;
674 1.95.16.2 skrll
675 1.95.16.2 skrll /* write errors are special -- when we are
676 1.95.16.2 skrll done dealing with the reads that are
677 1.95.16.2 skrll finished, we don't want to wait for any
678 1.95.16.2 skrll writes */
679 1.95.16.2 skrll if (status == RF_RECON_WRITE_ERROR)
680 1.95.16.2 skrll write_error = 1;
681 1.95.16.2 skrll
682 1.95.16.2 skrll } else if (status == RF_RECON_READ_STOPPED) {
683 1.95.16.2 skrll /* count this component as being "done" */
684 1.82 oster reconDesc->numDisksDone++;
685 1.95.16.2 skrll } else if (status == RF_RECON_WRITE_DONE) {
686 1.95.16.2 skrll num_writes++;
687 1.95.16.2 skrll }
688 1.95.16.2 skrll
689 1.95.16.2 skrll if (recon_error) {
690 1.95.16.2 skrll /* make sure any stragglers are woken up so that
691 1.95.16.2 skrll their theads will complete, and we can get out
692 1.95.16.2 skrll of here with all IO processed */
693 1.82 oster
694 1.95.16.2 skrll rf_WakeupHeadSepCBWaiters(raidPtr);
695 1.82 oster }
696 1.82 oster
697 1.95.16.2 skrll raidPtr->reconControl->numRUsTotal =
698 1.95.16.2 skrll mapPtr->totalRUs;
699 1.95.16.2 skrll raidPtr->reconControl->numRUsComplete =
700 1.95.16.2 skrll mapPtr->totalRUs -
701 1.95.16.2 skrll rf_UnitsLeftToReconstruct(mapPtr);
702 1.82 oster
703 1.65 oster #if RF_DEBUG_RECON
704 1.95.16.2 skrll raidPtr->reconControl->percentComplete =
705 1.95.16.2 skrll (raidPtr->reconControl->numRUsComplete * 100 / raidPtr->reconControl->numRUsTotal);
706 1.95.16.2 skrll if (rf_prReconSched) {
707 1.95.16.2 skrll rf_PrintReconSchedule(raidPtr->reconControl->reconMap, &(raidPtr->reconControl->starttime));
708 1.95.16.2 skrll }
709 1.41 oster #endif
710 1.95.16.2 skrll }
711 1.95.16.2 skrll
712 1.95.16.2 skrll /* reads done, wakup any waiters, and then wait for writes */
713 1.95.16.2 skrll
714 1.95.16.2 skrll rf_WakeupHeadSepCBWaiters(raidPtr);
715 1.95.16.2 skrll
716 1.95.16.2 skrll while (!recon_error && (num_writes < pending_writes)) {
717 1.95.16.2 skrll event = rf_GetNextReconEvent(reconDesc);
718 1.95.16.2 skrll status = ProcessReconEvent(raidPtr, event);
719 1.95.16.2 skrll
720 1.95.16.2 skrll if (status == RF_RECON_WRITE_ERROR) {
721 1.95.16.2 skrll recon_error = 1;
722 1.95.16.2 skrll raidPtr->reconControl->error = 1;
723 1.95.16.2 skrll /* an error was encountered at the very end... bail */
724 1.95.16.2 skrll } else if (status == RF_RECON_WRITE_DONE) {
725 1.95.16.2 skrll num_writes++;
726 1.95.16.2 skrll }
727 1.95.16.2 skrll }
728 1.95.16.2 skrll if (recon_error ||
729 1.95.16.2 skrll (raidPtr->reconControl->lastPSID == lastPSID)) {
730 1.95.16.2 skrll done = 1;
731 1.95.16.2 skrll break;
732 1.95.16.2 skrll }
733 1.95.16.2 skrll
734 1.95.16.2 skrll prev = raidPtr->reconControl->lastPSID;
735 1.95.16.2 skrll raidPtr->reconControl->lastPSID += incPSID;
736 1.95.16.2 skrll
737 1.95.16.2 skrll if (raidPtr->reconControl->lastPSID > lastPSID) {
738 1.95.16.2 skrll pending_writes = lastPSID - prev;
739 1.95.16.2 skrll raidPtr->reconControl->lastPSID = lastPSID;
740 1.95.16.2 skrll }
741 1.95.16.2 skrll
742 1.95.16.2 skrll /* back down curPSID to get ready for the next round... */
743 1.95.16.2 skrll for (i = 0; i < raidPtr->numCol; i++) {
744 1.95.16.2 skrll if (i != col) {
745 1.95.16.2 skrll raidPtr->reconControl->perDiskInfo[i].curPSID--;
746 1.95.16.2 skrll raidPtr->reconControl->perDiskInfo[i].ru_count = RUsPerPU - 1;
747 1.95.16.2 skrll }
748 1.95.16.2 skrll }
749 1.78 oster }
750 1.87 perry
751 1.78 oster mapPtr = raidPtr->reconControl->reconMap;
752 1.78 oster if (rf_reconDebug) {
753 1.78 oster printf("RECON: all reads completed\n");
754 1.78 oster }
755 1.78 oster /* at this point all the reads have completed. We now wait
756 1.78 oster * for any pending writes to complete, and then we're done */
757 1.82 oster
758 1.82 oster while (!recon_error && rf_UnitsLeftToReconstruct(raidPtr->reconControl->reconMap) > 0) {
759 1.87 perry
760 1.78 oster event = rf_GetNextReconEvent(reconDesc);
761 1.83 oster status = ProcessReconEvent(raidPtr, event);
762 1.82 oster
763 1.82 oster if (status == RF_RECON_WRITE_ERROR) {
764 1.82 oster recon_error = 1;
765 1.87 perry raidPtr->reconControl->error = 1;
766 1.82 oster /* an error was encountered at the very end... bail */
767 1.82 oster } else {
768 1.82 oster #if RF_DEBUG_RECON
769 1.82 oster raidPtr->reconControl->percentComplete = 100 - (rf_UnitsLeftToReconstruct(mapPtr) * 100 / mapPtr->totalRUs);
770 1.82 oster if (rf_prReconSched) {
771 1.82 oster rf_PrintReconSchedule(raidPtr->reconControl->reconMap, &(raidPtr->reconControl->starttime));
772 1.82 oster }
773 1.82 oster #endif
774 1.82 oster }
775 1.82 oster }
776 1.82 oster
777 1.82 oster if (recon_error) {
778 1.82 oster /* we've encountered an error in reconstructing. */
779 1.82 oster printf("raid%d: reconstruction failed.\n", raidPtr->raidid);
780 1.87 perry
781 1.82 oster /* we start by blocking IO to the RAID set. */
782 1.82 oster rf_SuspendNewRequestsAndWait(raidPtr);
783 1.87 perry
784 1.82 oster RF_LOCK_MUTEX(raidPtr->mutex);
785 1.82 oster /* mark set as being degraded, rather than
786 1.82 oster rf_rs_reconstructing as we were before the problem.
787 1.82 oster After this is done we can update status of the
788 1.82 oster component disks without worrying about someone
789 1.82 oster trying to read from a failed component.
790 1.82 oster */
791 1.82 oster raidPtr->status = rf_rs_degraded;
792 1.82 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
793 1.87 perry
794 1.82 oster /* resume IO */
795 1.87 perry rf_ResumeNewRequests(raidPtr);
796 1.87 perry
797 1.82 oster /* At this point there are two cases:
798 1.82 oster 1) If we've experienced a read error, then we've
799 1.82 oster already waited for all the reads we're going to get,
800 1.82 oster and we just need to wait for the writes.
801 1.82 oster
802 1.82 oster 2) If we've experienced a write error, we've also
803 1.82 oster already waited for all the reads to complete,
804 1.82 oster but there is little point in waiting for the writes --
805 1.82 oster when they do complete, they will just be ignored.
806 1.82 oster
807 1.87 perry So we just wait for writes to complete if we didn't have a
808 1.82 oster write error.
809 1.82 oster */
810 1.82 oster
811 1.82 oster if (!write_error) {
812 1.82 oster /* wait for writes to complete */
813 1.82 oster while (raidPtr->reconControl->pending_writes > 0) {
814 1.83 oster
815 1.82 oster event = rf_GetNextReconEvent(reconDesc);
816 1.82 oster status = ProcessReconEvent(raidPtr, event);
817 1.82 oster
818 1.82 oster if (status == RF_RECON_WRITE_ERROR) {
819 1.87 perry raidPtr->reconControl->error = 1;
820 1.82 oster /* an error was encountered at the very end... bail.
821 1.82 oster This will be very bad news for the user, since
822 1.82 oster at this point there will have been a read error
823 1.82 oster on one component, and a write error on another!
824 1.82 oster */
825 1.82 oster break;
826 1.82 oster }
827 1.82 oster }
828 1.4 oster }
829 1.82 oster
830 1.87 perry
831 1.82 oster /* cleanup */
832 1.82 oster
833 1.82 oster /* drain the event queue - after waiting for the writes above,
834 1.82 oster there shouldn't be much (if anything!) left in the queue. */
835 1.82 oster
836 1.82 oster rf_DrainReconEventQueue(reconDesc);
837 1.87 perry
838 1.82 oster /* XXX As much as we'd like to free the recon control structure
839 1.82 oster and the reconDesc, we have no way of knowing if/when those will
840 1.82 oster be touched by IO that has yet to occur. It is rather poor to be
841 1.82 oster basically causing a 'memory leak' here, but there doesn't seem to be
842 1.82 oster a cleaner alternative at this time. Perhaps when the reconstruct code
843 1.82 oster gets a makeover this problem will go away.
844 1.82 oster */
845 1.82 oster #if 0
846 1.82 oster rf_FreeReconControl(raidPtr);
847 1.82 oster #endif
848 1.82 oster
849 1.82 oster #if RF_ACC_TRACE > 0
850 1.82 oster RF_Free(raidPtr->recon_tracerecs, raidPtr->numCol * sizeof(RF_AccTraceEntry_t));
851 1.41 oster #endif
852 1.82 oster /* XXX see comment above */
853 1.82 oster #if 0
854 1.82 oster FreeReconDesc(reconDesc);
855 1.82 oster #endif
856 1.82 oster
857 1.82 oster return (1);
858 1.78 oster }
859 1.14 oster
860 1.78 oster /* Success: mark the dead disk as reconstructed. We quiesce
861 1.78 oster * the array here to assure no nasty interactions with pending
862 1.78 oster * user accesses when we free up the psstatus structure as
863 1.78 oster * part of FreeReconControl() */
864 1.87 perry
865 1.78 oster rf_SuspendNewRequestsAndWait(raidPtr);
866 1.87 perry
867 1.78 oster RF_LOCK_MUTEX(raidPtr->mutex);
868 1.78 oster raidPtr->numFailures--;
869 1.78 oster ds = (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE);
870 1.78 oster raidPtr->Disks[col].status = (ds) ? rf_ds_dist_spared : rf_ds_spared;
871 1.78 oster raidPtr->status = (ds) ? rf_rs_reconfigured : rf_rs_optimal;
872 1.78 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
873 1.78 oster RF_GETTIME(etime);
874 1.78 oster RF_TIMEVAL_DIFF(&(raidPtr->reconControl->starttime), &etime, &elpsd);
875 1.87 perry
876 1.78 oster rf_ResumeNewRequests(raidPtr);
877 1.87 perry
878 1.87 perry printf("raid%d: Reconstruction of disk at col %d completed\n",
879 1.78 oster raidPtr->raidid, col);
880 1.78 oster xor_s = raidPtr->accumXorTimeUs / 1000000;
881 1.78 oster xor_resid_us = raidPtr->accumXorTimeUs % 1000000;
882 1.78 oster printf("raid%d: Recon time was %d.%06d seconds, accumulated XOR time was %ld us (%ld.%06ld)\n",
883 1.87 perry raidPtr->raidid,
884 1.87 perry (int) elpsd.tv_sec, (int) elpsd.tv_usec,
885 1.78 oster raidPtr->accumXorTimeUs, xor_s, xor_resid_us);
886 1.78 oster printf("raid%d: (start time %d sec %d usec, end time %d sec %d usec)\n",
887 1.78 oster raidPtr->raidid,
888 1.78 oster (int) raidPtr->reconControl->starttime.tv_sec,
889 1.78 oster (int) raidPtr->reconControl->starttime.tv_usec,
890 1.78 oster (int) etime.tv_sec, (int) etime.tv_usec);
891 1.1 oster #if RF_RECON_STATS > 0
892 1.78 oster printf("raid%d: Total head-sep stall count was %d\n",
893 1.78 oster raidPtr->raidid, (int) reconDesc->hsStallCount);
894 1.4 oster #endif /* RF_RECON_STATS > 0 */
895 1.78 oster rf_FreeReconControl(raidPtr);
896 1.67 oster #if RF_ACC_TRACE > 0
897 1.78 oster RF_Free(raidPtr->recon_tracerecs, raidPtr->numCol * sizeof(RF_AccTraceEntry_t));
898 1.67 oster #endif
899 1.78 oster FreeReconDesc(reconDesc);
900 1.87 perry
901 1.4 oster return (0);
902 1.82 oster
903 1.1 oster }
904 1.13 oster /*****************************************************************************
905 1.1 oster * do the right thing upon each reconstruction event.
906 1.13 oster *****************************************************************************/
907 1.87 perry static int
908 1.60 oster ProcessReconEvent(RF_Raid_t *raidPtr, RF_ReconEvent_t *event)
909 1.4 oster {
910 1.4 oster int retcode = 0, submitblocked;
911 1.4 oster RF_ReconBuffer_t *rbuf;
912 1.4 oster RF_SectorCount_t sectorsPerRU;
913 1.4 oster
914 1.82 oster retcode = RF_RECON_READ_STOPPED;
915 1.82 oster
916 1.4 oster Dprintf1("RECON: ProcessReconEvent type %d\n", event->type);
917 1.95.16.2 skrll
918 1.4 oster switch (event->type) {
919 1.4 oster
920 1.4 oster /* a read I/O has completed */
921 1.4 oster case RF_REVENT_READDONE:
922 1.57 oster rbuf = raidPtr->reconControl->perDiskInfo[event->col].rbuf;
923 1.57 oster Dprintf2("RECON: READDONE EVENT: col %d psid %ld\n",
924 1.57 oster event->col, rbuf->parityStripeID);
925 1.4 oster Dprintf7("RECON: done read psid %ld buf %lx %02x %02x %02x %02x %02x\n",
926 1.4 oster rbuf->parityStripeID, rbuf->buffer, rbuf->buffer[0] & 0xff, rbuf->buffer[1] & 0xff,
927 1.4 oster rbuf->buffer[2] & 0xff, rbuf->buffer[3] & 0xff, rbuf->buffer[4] & 0xff);
928 1.4 oster rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
929 1.82 oster if (!raidPtr->reconControl->error) {
930 1.82 oster submitblocked = rf_SubmitReconBuffer(rbuf, 0, 0);
931 1.82 oster Dprintf1("RECON: submitblocked=%d\n", submitblocked);
932 1.82 oster if (!submitblocked)
933 1.82 oster retcode = IssueNextReadRequest(raidPtr, event->col);
934 1.89 oster else
935 1.89 oster retcode = 0;
936 1.82 oster }
937 1.4 oster break;
938 1.4 oster
939 1.4 oster /* a write I/O has completed */
940 1.4 oster case RF_REVENT_WRITEDONE:
941 1.40 oster #if RF_DEBUG_RECON
942 1.4 oster if (rf_floatingRbufDebug) {
943 1.4 oster rf_CheckFloatingRbufCount(raidPtr, 1);
944 1.4 oster }
945 1.38 oster #endif
946 1.4 oster sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU;
947 1.4 oster rbuf = (RF_ReconBuffer_t *) event->arg;
948 1.4 oster rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
949 1.4 oster Dprintf3("RECON: WRITEDONE EVENT: psid %d ru %d (%d %% complete)\n",
950 1.57 oster rbuf->parityStripeID, rbuf->which_ru, raidPtr->reconControl->percentComplete);
951 1.57 oster rf_ReconMapUpdate(raidPtr, raidPtr->reconControl->reconMap,
952 1.4 oster rbuf->failedDiskSectorOffset, rbuf->failedDiskSectorOffset + sectorsPerRU - 1);
953 1.57 oster rf_RemoveFromActiveReconTable(raidPtr, rbuf->parityStripeID, rbuf->which_ru);
954 1.4 oster
955 1.82 oster RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
956 1.82 oster raidPtr->reconControl->pending_writes--;
957 1.82 oster RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
958 1.82 oster
959 1.4 oster if (rbuf->type == RF_RBUF_TYPE_FLOATING) {
960 1.57 oster RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
961 1.76 oster while(raidPtr->reconControl->rb_lock) {
962 1.87 perry ltsleep(&raidPtr->reconControl->rb_lock, PRIBIO, "reconctrlpre1", 0,
963 1.76 oster &raidPtr->reconControl->rb_mutex);
964 1.76 oster }
965 1.76 oster raidPtr->reconControl->rb_lock = 1;
966 1.76 oster RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
967 1.76 oster
968 1.4 oster raidPtr->numFullReconBuffers--;
969 1.57 oster rf_ReleaseFloatingReconBuffer(raidPtr, rbuf);
970 1.76 oster
971 1.76 oster RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
972 1.76 oster raidPtr->reconControl->rb_lock = 0;
973 1.76 oster wakeup(&raidPtr->reconControl->rb_lock);
974 1.57 oster RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
975 1.4 oster } else
976 1.4 oster if (rbuf->type == RF_RBUF_TYPE_FORCED)
977 1.4 oster rf_FreeReconBuffer(rbuf);
978 1.4 oster else
979 1.4 oster RF_ASSERT(0);
980 1.95.16.2 skrll retcode = RF_RECON_WRITE_DONE;
981 1.4 oster break;
982 1.4 oster
983 1.4 oster case RF_REVENT_BUFCLEAR: /* A buffer-stall condition has been
984 1.4 oster * cleared */
985 1.57 oster Dprintf1("RECON: BUFCLEAR EVENT: col %d\n", event->col);
986 1.82 oster if (!raidPtr->reconControl->error) {
987 1.87 perry submitblocked = rf_SubmitReconBuffer(raidPtr->reconControl->perDiskInfo[event->col].rbuf,
988 1.82 oster 0, (int) (long) event->arg);
989 1.82 oster RF_ASSERT(!submitblocked); /* we wouldn't have gotten the
990 1.82 oster * BUFCLEAR event if we
991 1.82 oster * couldn't submit */
992 1.82 oster retcode = IssueNextReadRequest(raidPtr, event->col);
993 1.82 oster }
994 1.4 oster break;
995 1.4 oster
996 1.4 oster case RF_REVENT_BLOCKCLEAR: /* A user-write reconstruction
997 1.4 oster * blockage has been cleared */
998 1.57 oster DDprintf1("RECON: BLOCKCLEAR EVENT: col %d\n", event->col);
999 1.82 oster if (!raidPtr->reconControl->error) {
1000 1.82 oster retcode = TryToRead(raidPtr, event->col);
1001 1.82 oster }
1002 1.4 oster break;
1003 1.4 oster
1004 1.4 oster case RF_REVENT_HEADSEPCLEAR: /* A max-head-separation
1005 1.4 oster * reconstruction blockage has been
1006 1.4 oster * cleared */
1007 1.57 oster Dprintf1("RECON: HEADSEPCLEAR EVENT: col %d\n", event->col);
1008 1.82 oster if (!raidPtr->reconControl->error) {
1009 1.82 oster retcode = TryToRead(raidPtr, event->col);
1010 1.82 oster }
1011 1.4 oster break;
1012 1.4 oster
1013 1.4 oster /* a buffer has become ready to write */
1014 1.4 oster case RF_REVENT_BUFREADY:
1015 1.57 oster Dprintf1("RECON: BUFREADY EVENT: col %d\n", event->col);
1016 1.82 oster if (!raidPtr->reconControl->error) {
1017 1.82 oster retcode = IssueNextWriteRequest(raidPtr);
1018 1.40 oster #if RF_DEBUG_RECON
1019 1.82 oster if (rf_floatingRbufDebug) {
1020 1.82 oster rf_CheckFloatingRbufCount(raidPtr, 1);
1021 1.82 oster }
1022 1.82 oster #endif
1023 1.4 oster }
1024 1.4 oster break;
1025 1.4 oster
1026 1.4 oster /* we need to skip the current RU entirely because it got
1027 1.4 oster * recon'd while we were waiting for something else to happen */
1028 1.4 oster case RF_REVENT_SKIP:
1029 1.57 oster DDprintf1("RECON: SKIP EVENT: col %d\n", event->col);
1030 1.87 perry if (!raidPtr->reconControl->error) {
1031 1.82 oster retcode = IssueNextReadRequest(raidPtr, event->col);
1032 1.82 oster }
1033 1.4 oster break;
1034 1.4 oster
1035 1.4 oster /* a forced-reconstruction read access has completed. Just
1036 1.4 oster * submit the buffer */
1037 1.4 oster case RF_REVENT_FORCEDREADDONE:
1038 1.4 oster rbuf = (RF_ReconBuffer_t *) event->arg;
1039 1.4 oster rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
1040 1.57 oster DDprintf1("RECON: FORCEDREADDONE EVENT: col %d\n", event->col);
1041 1.82 oster if (!raidPtr->reconControl->error) {
1042 1.82 oster submitblocked = rf_SubmitReconBuffer(rbuf, 1, 0);
1043 1.82 oster RF_ASSERT(!submitblocked);
1044 1.95.16.2 skrll retcode = 0;
1045 1.82 oster }
1046 1.4 oster break;
1047 1.4 oster
1048 1.70 oster /* A read I/O failed to complete */
1049 1.70 oster case RF_REVENT_READ_FAILED:
1050 1.82 oster retcode = RF_RECON_READ_ERROR;
1051 1.82 oster break;
1052 1.70 oster
1053 1.70 oster /* A write I/O failed to complete */
1054 1.70 oster case RF_REVENT_WRITE_FAILED:
1055 1.82 oster retcode = RF_RECON_WRITE_ERROR;
1056 1.82 oster
1057 1.82 oster rbuf = (RF_ReconBuffer_t *) event->arg;
1058 1.82 oster
1059 1.82 oster /* cleanup the disk queue data */
1060 1.82 oster rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
1061 1.82 oster
1062 1.82 oster /* At this point we're erroring out, badly, and floatingRbufs
1063 1.82 oster may not even be valid. Rather than putting this back onto
1064 1.82 oster the floatingRbufs list, just arrange for its immediate
1065 1.82 oster destruction.
1066 1.82 oster */
1067 1.82 oster rf_FreeReconBuffer(rbuf);
1068 1.82 oster break;
1069 1.70 oster
1070 1.70 oster /* a forced read I/O failed to complete */
1071 1.70 oster case RF_REVENT_FORCEDREAD_FAILED:
1072 1.82 oster retcode = RF_RECON_READ_ERROR;
1073 1.82 oster break;
1074 1.70 oster
1075 1.4 oster default:
1076 1.4 oster RF_PANIC();
1077 1.4 oster }
1078 1.4 oster rf_FreeReconEventDesc(event);
1079 1.4 oster return (retcode);
1080 1.1 oster }
1081 1.13 oster /*****************************************************************************
1082 1.1 oster *
1083 1.13 oster * find the next thing that's needed on the indicated disk, and issue
1084 1.13 oster * a read request for it. We assume that the reconstruction buffer
1085 1.13 oster * associated with this process is free to receive the data. If
1086 1.13 oster * reconstruction is blocked on the indicated RU, we issue a
1087 1.13 oster * blockage-release request instead of a physical disk read request.
1088 1.13 oster * If the current disk gets too far ahead of the others, we issue a
1089 1.13 oster * head-separation wait request and return.
1090 1.13 oster *
1091 1.13 oster * ctrl->{ru_count, curPSID, diskOffset} and
1092 1.22 soren * rbuf->failedDiskSectorOffset are maintained to point to the unit
1093 1.13 oster * we're currently accessing. Note that this deviates from the
1094 1.13 oster * standard C idiom of having counters point to the next thing to be
1095 1.13 oster * accessed. This allows us to easily retry when we're blocked by
1096 1.13 oster * head separation or reconstruction-blockage events.
1097 1.1 oster *
1098 1.13 oster *****************************************************************************/
1099 1.87 perry static int
1100 1.60 oster IssueNextReadRequest(RF_Raid_t *raidPtr, RF_RowCol_t col)
1101 1.4 oster {
1102 1.57 oster RF_PerDiskReconCtrl_t *ctrl = &raidPtr->reconControl->perDiskInfo[col];
1103 1.4 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
1104 1.4 oster RF_ReconBuffer_t *rbuf = ctrl->rbuf;
1105 1.4 oster RF_ReconUnitCount_t RUsPerPU = layoutPtr->SUsPerPU / layoutPtr->SUsPerRU;
1106 1.4 oster RF_SectorCount_t sectorsPerRU = layoutPtr->sectorsPerStripeUnit * layoutPtr->SUsPerRU;
1107 1.4 oster int do_new_check = 0, retcode = 0, status;
1108 1.4 oster
1109 1.4 oster /* if we are currently the slowest disk, mark that we have to do a new
1110 1.4 oster * check */
1111 1.57 oster if (ctrl->headSepCounter <= raidPtr->reconControl->minHeadSepCounter)
1112 1.4 oster do_new_check = 1;
1113 1.4 oster
1114 1.4 oster while (1) {
1115 1.4 oster
1116 1.4 oster ctrl->ru_count++;
1117 1.4 oster if (ctrl->ru_count < RUsPerPU) {
1118 1.4 oster ctrl->diskOffset += sectorsPerRU;
1119 1.4 oster rbuf->failedDiskSectorOffset += sectorsPerRU;
1120 1.4 oster } else {
1121 1.4 oster ctrl->curPSID++;
1122 1.4 oster ctrl->ru_count = 0;
1123 1.4 oster /* code left over from when head-sep was based on
1124 1.4 oster * parity stripe id */
1125 1.57 oster if (ctrl->curPSID >= raidPtr->reconControl->lastPSID) {
1126 1.57 oster CheckForNewMinHeadSep(raidPtr, ++(ctrl->headSepCounter));
1127 1.82 oster return (RF_RECON_DONE_READS); /* finito! */
1128 1.4 oster }
1129 1.4 oster /* find the disk offsets of the start of the parity
1130 1.4 oster * stripe on both the current disk and the failed
1131 1.4 oster * disk. skip this entire parity stripe if either disk
1132 1.4 oster * does not appear in the indicated PS */
1133 1.57 oster status = ComputePSDiskOffsets(raidPtr, ctrl->curPSID, col, &ctrl->diskOffset, &rbuf->failedDiskSectorOffset,
1134 1.57 oster &rbuf->spCol, &rbuf->spOffset);
1135 1.4 oster if (status) {
1136 1.4 oster ctrl->ru_count = RUsPerPU - 1;
1137 1.4 oster continue;
1138 1.4 oster }
1139 1.4 oster }
1140 1.4 oster rbuf->which_ru = ctrl->ru_count;
1141 1.4 oster
1142 1.4 oster /* skip this RU if it's already been reconstructed */
1143 1.57 oster if (rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, rbuf->failedDiskSectorOffset)) {
1144 1.4 oster Dprintf2("Skipping psid %ld ru %d: already reconstructed\n", ctrl->curPSID, ctrl->ru_count);
1145 1.4 oster continue;
1146 1.4 oster }
1147 1.4 oster break;
1148 1.4 oster }
1149 1.4 oster ctrl->headSepCounter++;
1150 1.4 oster if (do_new_check)
1151 1.57 oster CheckForNewMinHeadSep(raidPtr, ctrl->headSepCounter); /* update min if needed */
1152 1.4 oster
1153 1.4 oster
1154 1.4 oster /* at this point, we have definitely decided what to do, and we have
1155 1.4 oster * only to see if we can actually do it now */
1156 1.4 oster rbuf->parityStripeID = ctrl->curPSID;
1157 1.4 oster rbuf->which_ru = ctrl->ru_count;
1158 1.67 oster #if RF_ACC_TRACE > 0
1159 1.29 thorpej memset((char *) &raidPtr->recon_tracerecs[col], 0,
1160 1.29 thorpej sizeof(raidPtr->recon_tracerecs[col]));
1161 1.4 oster raidPtr->recon_tracerecs[col].reconacc = 1;
1162 1.4 oster RF_ETIMER_START(raidPtr->recon_tracerecs[col].recon_timer);
1163 1.67 oster #endif
1164 1.57 oster retcode = TryToRead(raidPtr, col);
1165 1.4 oster return (retcode);
1166 1.1 oster }
1167 1.13 oster
1168 1.13 oster /*
1169 1.13 oster * tries to issue the next read on the indicated disk. We may be
1170 1.13 oster * blocked by (a) the heads being too far apart, or (b) recon on the
1171 1.13 oster * indicated RU being blocked due to a write by a user thread. In
1172 1.13 oster * this case, we issue a head-sep or blockage wait request, which will
1173 1.13 oster * cause this same routine to be invoked again later when the blockage
1174 1.87 perry * has cleared.
1175 1.1 oster */
1176 1.13 oster
1177 1.87 perry static int
1178 1.60 oster TryToRead(RF_Raid_t *raidPtr, RF_RowCol_t col)
1179 1.4 oster {
1180 1.57 oster RF_PerDiskReconCtrl_t *ctrl = &raidPtr->reconControl->perDiskInfo[col];
1181 1.4 oster RF_SectorCount_t sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU;
1182 1.4 oster RF_StripeNum_t psid = ctrl->curPSID;
1183 1.4 oster RF_ReconUnitNum_t which_ru = ctrl->ru_count;
1184 1.4 oster RF_DiskQueueData_t *req;
1185 1.68 oster int status;
1186 1.68 oster RF_ReconParityStripeStatus_t *pssPtr, *newpssPtr;
1187 1.4 oster
1188 1.4 oster /* if the current disk is too far ahead of the others, issue a
1189 1.4 oster * head-separation wait and return */
1190 1.57 oster if (CheckHeadSeparation(raidPtr, ctrl, col, ctrl->headSepCounter, which_ru))
1191 1.4 oster return (0);
1192 1.68 oster
1193 1.68 oster /* allocate a new PSS in case we need it */
1194 1.68 oster newpssPtr = rf_AllocPSStatus(raidPtr);
1195 1.68 oster
1196 1.57 oster RF_LOCK_PSS_MUTEX(raidPtr, psid);
1197 1.68 oster pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_CREATE, newpssPtr);
1198 1.68 oster
1199 1.68 oster if (pssPtr != newpssPtr) {
1200 1.68 oster rf_FreePSStatus(raidPtr, newpssPtr);
1201 1.68 oster }
1202 1.4 oster
1203 1.4 oster /* if recon is blocked on the indicated parity stripe, issue a
1204 1.4 oster * block-wait request and return. this also must mark the indicated RU
1205 1.4 oster * in the stripe as under reconstruction if not blocked. */
1206 1.57 oster status = CheckForcedOrBlockedReconstruction(raidPtr, pssPtr, ctrl, col, psid, which_ru);
1207 1.4 oster if (status == RF_PSS_RECON_BLOCKED) {
1208 1.4 oster Dprintf2("RECON: Stalling psid %ld ru %d: recon blocked\n", psid, which_ru);
1209 1.4 oster goto out;
1210 1.4 oster } else
1211 1.4 oster if (status == RF_PSS_FORCED_ON_WRITE) {
1212 1.57 oster rf_CauseReconEvent(raidPtr, col, NULL, RF_REVENT_SKIP);
1213 1.4 oster goto out;
1214 1.4 oster }
1215 1.4 oster /* make one last check to be sure that the indicated RU didn't get
1216 1.4 oster * reconstructed while we were waiting for something else to happen.
1217 1.4 oster * This is unfortunate in that it causes us to make this check twice
1218 1.4 oster * in the normal case. Might want to make some attempt to re-work
1219 1.4 oster * this so that we only do this check if we've definitely blocked on
1220 1.4 oster * one of the above checks. When this condition is detected, we may
1221 1.4 oster * have just created a bogus status entry, which we need to delete. */
1222 1.57 oster if (rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, ctrl->rbuf->failedDiskSectorOffset)) {
1223 1.4 oster Dprintf2("RECON: Skipping psid %ld ru %d: prior recon after stall\n", psid, which_ru);
1224 1.68 oster if (pssPtr == newpssPtr)
1225 1.57 oster rf_PSStatusDelete(raidPtr, raidPtr->reconControl->pssTable, pssPtr);
1226 1.57 oster rf_CauseReconEvent(raidPtr, col, NULL, RF_REVENT_SKIP);
1227 1.4 oster goto out;
1228 1.4 oster }
1229 1.4 oster /* found something to read. issue the I/O */
1230 1.57 oster Dprintf4("RECON: Read for psid %ld on col %d offset %ld buf %lx\n",
1231 1.57 oster psid, col, ctrl->diskOffset, ctrl->rbuf->buffer);
1232 1.67 oster #if RF_ACC_TRACE > 0
1233 1.4 oster RF_ETIMER_STOP(raidPtr->recon_tracerecs[col].recon_timer);
1234 1.4 oster RF_ETIMER_EVAL(raidPtr->recon_tracerecs[col].recon_timer);
1235 1.4 oster raidPtr->recon_tracerecs[col].specific.recon.recon_start_to_fetch_us =
1236 1.4 oster RF_ETIMER_VAL_US(raidPtr->recon_tracerecs[col].recon_timer);
1237 1.4 oster RF_ETIMER_START(raidPtr->recon_tracerecs[col].recon_timer);
1238 1.67 oster #endif
1239 1.4 oster /* should be ok to use a NULL proc pointer here, all the bufs we use
1240 1.4 oster * should be in kernel space */
1241 1.4 oster req = rf_CreateDiskQueueData(RF_IO_TYPE_READ, ctrl->diskOffset, sectorsPerRU, ctrl->rbuf->buffer, psid, which_ru,
1242 1.86 oster ReconReadDoneProc, (void *) ctrl,
1243 1.67 oster #if RF_ACC_TRACE > 0
1244 1.67 oster &raidPtr->recon_tracerecs[col],
1245 1.67 oster #else
1246 1.67 oster NULL,
1247 1.67 oster #endif
1248 1.85 oster (void *) raidPtr, 0, NULL, PR_WAITOK);
1249 1.4 oster
1250 1.4 oster ctrl->rbuf->arg = (void *) req;
1251 1.57 oster rf_DiskIOEnqueue(&raidPtr->Queues[col], req, RF_IO_RECON_PRIORITY);
1252 1.4 oster pssPtr->issued[col] = 1;
1253 1.1 oster
1254 1.1 oster out:
1255 1.57 oster RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
1256 1.4 oster return (0);
1257 1.1 oster }
1258 1.1 oster
1259 1.1 oster
1260 1.13 oster /*
1261 1.13 oster * given a parity stripe ID, we want to find out whether both the
1262 1.13 oster * current disk and the failed disk exist in that parity stripe. If
1263 1.13 oster * not, we want to skip this whole PS. If so, we want to find the
1264 1.13 oster * disk offset of the start of the PS on both the current disk and the
1265 1.13 oster * failed disk.
1266 1.13 oster *
1267 1.13 oster * this works by getting a list of disks comprising the indicated
1268 1.13 oster * parity stripe, and searching the list for the current and failed
1269 1.13 oster * disks. Once we've decided they both exist in the parity stripe, we
1270 1.13 oster * need to decide whether each is data or parity, so that we'll know
1271 1.13 oster * which mapping function to call to get the corresponding disk
1272 1.1 oster * offsets.
1273 1.1 oster *
1274 1.13 oster * this is kind of unpleasant, but doing it this way allows the
1275 1.13 oster * reconstruction code to use parity stripe IDs rather than physical
1276 1.13 oster * disks address to march through the failed disk, which greatly
1277 1.13 oster * simplifies a lot of code, as well as eliminating the need for a
1278 1.13 oster * reverse-mapping function. I also think it will execute faster,
1279 1.13 oster * since the calls to the mapping module are kept to a minimum.
1280 1.1 oster *
1281 1.13 oster * ASSUMES THAT THE STRIPE IDENTIFIER IDENTIFIES THE DISKS COMPRISING
1282 1.87 perry * THE STRIPE IN THE CORRECT ORDER
1283 1.87 perry *
1284 1.60 oster * raidPtr - raid descriptor
1285 1.60 oster * psid - parity stripe identifier
1286 1.60 oster * col - column of disk to find the offsets for
1287 1.60 oster * spCol - out: col of spare unit for failed unit
1288 1.60 oster * spOffset - out: offset into disk containing spare unit
1289 1.60 oster *
1290 1.60 oster */
1291 1.13 oster
1292 1.13 oster
1293 1.87 perry static int
1294 1.60 oster ComputePSDiskOffsets(RF_Raid_t *raidPtr, RF_StripeNum_t psid,
1295 1.60 oster RF_RowCol_t col, RF_SectorNum_t *outDiskOffset,
1296 1.60 oster RF_SectorNum_t *outFailedDiskSectorOffset,
1297 1.60 oster RF_RowCol_t *spCol, RF_SectorNum_t *spOffset)
1298 1.60 oster {
1299 1.4 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
1300 1.57 oster RF_RowCol_t fcol = raidPtr->reconControl->fcol;
1301 1.4 oster RF_RaidAddr_t sosRaidAddress; /* start-of-stripe */
1302 1.4 oster RF_RowCol_t *diskids;
1303 1.4 oster u_int i, j, k, i_offset, j_offset;
1304 1.57 oster RF_RowCol_t pcol;
1305 1.57 oster int testcol;
1306 1.4 oster RF_SectorNum_t poffset;
1307 1.4 oster char i_is_parity = 0, j_is_parity = 0;
1308 1.4 oster RF_RowCol_t stripeWidth = layoutPtr->numDataCol + layoutPtr->numParityCol;
1309 1.4 oster
1310 1.4 oster /* get a listing of the disks comprising that stripe */
1311 1.4 oster sosRaidAddress = rf_ParityStripeIDToRaidAddress(layoutPtr, psid);
1312 1.57 oster (layoutPtr->map->IdentifyStripe) (raidPtr, sosRaidAddress, &diskids);
1313 1.4 oster RF_ASSERT(diskids);
1314 1.4 oster
1315 1.4 oster /* reject this entire parity stripe if it does not contain the
1316 1.4 oster * indicated disk or it does not contain the failed disk */
1317 1.57 oster
1318 1.4 oster for (i = 0; i < stripeWidth; i++) {
1319 1.4 oster if (col == diskids[i])
1320 1.4 oster break;
1321 1.4 oster }
1322 1.4 oster if (i == stripeWidth)
1323 1.4 oster goto skipit;
1324 1.4 oster for (j = 0; j < stripeWidth; j++) {
1325 1.4 oster if (fcol == diskids[j])
1326 1.4 oster break;
1327 1.4 oster }
1328 1.4 oster if (j == stripeWidth) {
1329 1.4 oster goto skipit;
1330 1.4 oster }
1331 1.4 oster /* find out which disk the parity is on */
1332 1.57 oster (layoutPtr->map->MapParity) (raidPtr, sosRaidAddress, &pcol, &poffset, RF_DONT_REMAP);
1333 1.4 oster
1334 1.4 oster /* find out if either the current RU or the failed RU is parity */
1335 1.4 oster /* also, if the parity occurs in this stripe prior to the data and/or
1336 1.4 oster * failed col, we need to decrement i and/or j */
1337 1.4 oster for (k = 0; k < stripeWidth; k++)
1338 1.4 oster if (diskids[k] == pcol)
1339 1.4 oster break;
1340 1.4 oster RF_ASSERT(k < stripeWidth);
1341 1.4 oster i_offset = i;
1342 1.4 oster j_offset = j;
1343 1.4 oster if (k < i)
1344 1.4 oster i_offset--;
1345 1.4 oster else
1346 1.4 oster if (k == i) {
1347 1.4 oster i_is_parity = 1;
1348 1.4 oster i_offset = 0;
1349 1.4 oster } /* set offsets to zero to disable multiply
1350 1.4 oster * below */
1351 1.4 oster if (k < j)
1352 1.4 oster j_offset--;
1353 1.4 oster else
1354 1.4 oster if (k == j) {
1355 1.4 oster j_is_parity = 1;
1356 1.4 oster j_offset = 0;
1357 1.4 oster }
1358 1.4 oster /* at this point, [ij]_is_parity tells us whether the [current,failed]
1359 1.4 oster * disk is parity at the start of this RU, and, if data, "[ij]_offset"
1360 1.4 oster * tells us how far into the stripe the [current,failed] disk is. */
1361 1.4 oster
1362 1.4 oster /* call the mapping routine to get the offset into the current disk,
1363 1.4 oster * repeat for failed disk. */
1364 1.4 oster if (i_is_parity)
1365 1.57 oster layoutPtr->map->MapParity(raidPtr, sosRaidAddress + i_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outDiskOffset, RF_DONT_REMAP);
1366 1.4 oster else
1367 1.57 oster layoutPtr->map->MapSector(raidPtr, sosRaidAddress + i_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outDiskOffset, RF_DONT_REMAP);
1368 1.4 oster
1369 1.57 oster RF_ASSERT(col == testcol);
1370 1.4 oster
1371 1.4 oster if (j_is_parity)
1372 1.57 oster layoutPtr->map->MapParity(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outFailedDiskSectorOffset, RF_DONT_REMAP);
1373 1.4 oster else
1374 1.57 oster layoutPtr->map->MapSector(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outFailedDiskSectorOffset, RF_DONT_REMAP);
1375 1.57 oster RF_ASSERT(fcol == testcol);
1376 1.4 oster
1377 1.4 oster /* now locate the spare unit for the failed unit */
1378 1.72 oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
1379 1.4 oster if (layoutPtr->map->flags & RF_DISTRIBUTE_SPARE) {
1380 1.4 oster if (j_is_parity)
1381 1.57 oster layoutPtr->map->MapParity(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, spCol, spOffset, RF_REMAP);
1382 1.4 oster else
1383 1.57 oster layoutPtr->map->MapSector(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, spCol, spOffset, RF_REMAP);
1384 1.4 oster } else {
1385 1.72 oster #endif
1386 1.57 oster *spCol = raidPtr->reconControl->spareCol;
1387 1.4 oster *spOffset = *outFailedDiskSectorOffset;
1388 1.72 oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
1389 1.4 oster }
1390 1.72 oster #endif
1391 1.4 oster return (0);
1392 1.1 oster
1393 1.1 oster skipit:
1394 1.57 oster Dprintf2("RECON: Skipping psid %ld: nothing needed from r%d c%d\n",
1395 1.57 oster psid, col);
1396 1.4 oster return (1);
1397 1.1 oster }
1398 1.4 oster /* this is called when a buffer has become ready to write to the replacement disk */
1399 1.87 perry static int
1400 1.60 oster IssueNextWriteRequest(RF_Raid_t *raidPtr)
1401 1.4 oster {
1402 1.4 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
1403 1.4 oster RF_SectorCount_t sectorsPerRU = layoutPtr->sectorsPerStripeUnit * layoutPtr->SUsPerRU;
1404 1.67 oster #if RF_ACC_TRACE > 0
1405 1.57 oster RF_RowCol_t fcol = raidPtr->reconControl->fcol;
1406 1.67 oster #endif
1407 1.4 oster RF_ReconBuffer_t *rbuf;
1408 1.4 oster RF_DiskQueueData_t *req;
1409 1.4 oster
1410 1.57 oster rbuf = rf_GetFullReconBuffer(raidPtr->reconControl);
1411 1.4 oster RF_ASSERT(rbuf); /* there must be one available, or we wouldn't
1412 1.4 oster * have gotten the event that sent us here */
1413 1.4 oster RF_ASSERT(rbuf->pssPtr);
1414 1.4 oster
1415 1.4 oster rbuf->pssPtr->writeRbuf = rbuf;
1416 1.4 oster rbuf->pssPtr = NULL;
1417 1.4 oster
1418 1.57 oster Dprintf6("RECON: New write (c %d offs %d) for psid %ld ru %d (failed disk offset %ld) buf %lx\n",
1419 1.57 oster rbuf->spCol, rbuf->spOffset, rbuf->parityStripeID,
1420 1.4 oster rbuf->which_ru, rbuf->failedDiskSectorOffset, rbuf->buffer);
1421 1.4 oster Dprintf6("RECON: new write psid %ld %02x %02x %02x %02x %02x\n",
1422 1.4 oster rbuf->parityStripeID, rbuf->buffer[0] & 0xff, rbuf->buffer[1] & 0xff,
1423 1.4 oster rbuf->buffer[2] & 0xff, rbuf->buffer[3] & 0xff, rbuf->buffer[4] & 0xff);
1424 1.4 oster
1425 1.4 oster /* should be ok to use a NULL b_proc here b/c all addrs should be in
1426 1.4 oster * kernel space */
1427 1.4 oster req = rf_CreateDiskQueueData(RF_IO_TYPE_WRITE, rbuf->spOffset,
1428 1.4 oster sectorsPerRU, rbuf->buffer,
1429 1.4 oster rbuf->parityStripeID, rbuf->which_ru,
1430 1.86 oster ReconWriteDoneProc, (void *) rbuf,
1431 1.67 oster #if RF_ACC_TRACE > 0
1432 1.4 oster &raidPtr->recon_tracerecs[fcol],
1433 1.67 oster #else
1434 1.87 perry NULL,
1435 1.67 oster #endif
1436 1.85 oster (void *) raidPtr, 0, NULL, PR_WAITOK);
1437 1.1 oster
1438 1.4 oster rbuf->arg = (void *) req;
1439 1.82 oster RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1440 1.82 oster raidPtr->reconControl->pending_writes++;
1441 1.82 oster RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1442 1.57 oster rf_DiskIOEnqueue(&raidPtr->Queues[rbuf->spCol], req, RF_IO_RECON_PRIORITY);
1443 1.1 oster
1444 1.4 oster return (0);
1445 1.1 oster }
1446 1.13 oster
1447 1.13 oster /*
1448 1.13 oster * this gets called upon the completion of a reconstruction read
1449 1.13 oster * operation the arg is a pointer to the per-disk reconstruction
1450 1.13 oster * control structure for the process that just finished a read.
1451 1.1 oster *
1452 1.13 oster * called at interrupt context in the kernel, so don't do anything
1453 1.87 perry * illegal here.
1454 1.1 oster */
1455 1.87 perry static int
1456 1.60 oster ReconReadDoneProc(void *arg, int status)
1457 1.4 oster {
1458 1.4 oster RF_PerDiskReconCtrl_t *ctrl = (RF_PerDiskReconCtrl_t *) arg;
1459 1.82 oster RF_Raid_t *raidPtr;
1460 1.82 oster
1461 1.82 oster /* Detect that reconCtrl is no longer valid, and if that
1462 1.82 oster is the case, bail without calling rf_CauseReconEvent().
1463 1.82 oster There won't be anyone listening for this event anyway */
1464 1.82 oster
1465 1.82 oster if (ctrl->reconCtrl == NULL)
1466 1.82 oster return(0);
1467 1.82 oster
1468 1.82 oster raidPtr = ctrl->reconCtrl->reconDesc->raidPtr;
1469 1.4 oster
1470 1.4 oster if (status) {
1471 1.70 oster printf("raid%d: Recon read failed!\n", raidPtr->raidid);
1472 1.70 oster rf_CauseReconEvent(raidPtr, ctrl->col, NULL, RF_REVENT_READ_FAILED);
1473 1.70 oster return(0);
1474 1.4 oster }
1475 1.67 oster #if RF_ACC_TRACE > 0
1476 1.4 oster RF_ETIMER_STOP(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
1477 1.4 oster RF_ETIMER_EVAL(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
1478 1.4 oster raidPtr->recon_tracerecs[ctrl->col].specific.recon.recon_fetch_to_return_us =
1479 1.4 oster RF_ETIMER_VAL_US(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
1480 1.4 oster RF_ETIMER_START(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
1481 1.67 oster #endif
1482 1.57 oster rf_CauseReconEvent(raidPtr, ctrl->col, NULL, RF_REVENT_READDONE);
1483 1.4 oster return (0);
1484 1.1 oster }
1485 1.1 oster /* this gets called upon the completion of a reconstruction write operation.
1486 1.1 oster * the arg is a pointer to the rbuf that was just written
1487 1.1 oster *
1488 1.1 oster * called at interrupt context in the kernel, so don't do anything illegal here.
1489 1.1 oster */
1490 1.87 perry static int
1491 1.60 oster ReconWriteDoneProc(void *arg, int status)
1492 1.4 oster {
1493 1.4 oster RF_ReconBuffer_t *rbuf = (RF_ReconBuffer_t *) arg;
1494 1.4 oster
1495 1.82 oster /* Detect that reconControl is no longer valid, and if that
1496 1.82 oster is the case, bail without calling rf_CauseReconEvent().
1497 1.82 oster There won't be anyone listening for this event anyway */
1498 1.82 oster
1499 1.82 oster if (rbuf->raidPtr->reconControl == NULL)
1500 1.82 oster return(0);
1501 1.82 oster
1502 1.4 oster Dprintf2("Reconstruction completed on psid %ld ru %d\n", rbuf->parityStripeID, rbuf->which_ru);
1503 1.4 oster if (status) {
1504 1.70 oster printf("raid%d: Recon write failed!\n", rbuf->raidPtr->raidid);
1505 1.71 oster rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, arg, RF_REVENT_WRITE_FAILED);
1506 1.70 oster return(0);
1507 1.4 oster }
1508 1.71 oster rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, arg, RF_REVENT_WRITEDONE);
1509 1.4 oster return (0);
1510 1.1 oster }
1511 1.1 oster
1512 1.1 oster
1513 1.87 perry /*
1514 1.13 oster * computes a new minimum head sep, and wakes up anyone who needs to
1515 1.87 perry * be woken as a result
1516 1.13 oster */
1517 1.87 perry static void
1518 1.95 christos CheckForNewMinHeadSep(RF_Raid_t *raidPtr, RF_HeadSepLimit_t hsCtr)
1519 1.4 oster {
1520 1.57 oster RF_ReconCtrl_t *reconCtrlPtr = raidPtr->reconControl;
1521 1.4 oster RF_HeadSepLimit_t new_min;
1522 1.4 oster RF_RowCol_t i;
1523 1.4 oster RF_CallbackDesc_t *p;
1524 1.4 oster RF_ASSERT(hsCtr >= reconCtrlPtr->minHeadSepCounter); /* from the definition
1525 1.4 oster * of a minimum */
1526 1.4 oster
1527 1.4 oster
1528 1.4 oster RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
1529 1.76 oster while(reconCtrlPtr->rb_lock) {
1530 1.76 oster ltsleep(&reconCtrlPtr->rb_lock, PRIBIO, "reconctlcnmhs", 0, &reconCtrlPtr->rb_mutex);
1531 1.76 oster }
1532 1.76 oster reconCtrlPtr->rb_lock = 1;
1533 1.76 oster RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
1534 1.4 oster
1535 1.4 oster new_min = ~(1L << (8 * sizeof(long) - 1)); /* 0x7FFF....FFF */
1536 1.4 oster for (i = 0; i < raidPtr->numCol; i++)
1537 1.4 oster if (i != reconCtrlPtr->fcol) {
1538 1.4 oster if (reconCtrlPtr->perDiskInfo[i].headSepCounter < new_min)
1539 1.4 oster new_min = reconCtrlPtr->perDiskInfo[i].headSepCounter;
1540 1.4 oster }
1541 1.4 oster /* set the new minimum and wake up anyone who can now run again */
1542 1.4 oster if (new_min != reconCtrlPtr->minHeadSepCounter) {
1543 1.4 oster reconCtrlPtr->minHeadSepCounter = new_min;
1544 1.4 oster Dprintf1("RECON: new min head pos counter val is %ld\n", new_min);
1545 1.4 oster while (reconCtrlPtr->headSepCBList) {
1546 1.4 oster if (reconCtrlPtr->headSepCBList->callbackArg.v > new_min)
1547 1.4 oster break;
1548 1.4 oster p = reconCtrlPtr->headSepCBList;
1549 1.4 oster reconCtrlPtr->headSepCBList = p->next;
1550 1.4 oster p->next = NULL;
1551 1.57 oster rf_CauseReconEvent(raidPtr, p->col, NULL, RF_REVENT_HEADSEPCLEAR);
1552 1.4 oster rf_FreeCallbackDesc(p);
1553 1.4 oster }
1554 1.1 oster
1555 1.4 oster }
1556 1.76 oster RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
1557 1.76 oster reconCtrlPtr->rb_lock = 0;
1558 1.76 oster wakeup(&reconCtrlPtr->rb_lock);
1559 1.4 oster RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
1560 1.1 oster }
1561 1.13 oster
1562 1.13 oster /*
1563 1.13 oster * checks to see that the maximum head separation will not be violated
1564 1.13 oster * if we initiate a reconstruction I/O on the indicated disk.
1565 1.13 oster * Limiting the maximum head separation between two disks eliminates
1566 1.13 oster * the nasty buffer-stall conditions that occur when one disk races
1567 1.13 oster * ahead of the others and consumes all of the floating recon buffers.
1568 1.13 oster * This code is complex and unpleasant but it's necessary to avoid
1569 1.13 oster * some very nasty, albeit fairly rare, reconstruction behavior.
1570 1.1 oster *
1571 1.13 oster * returns non-zero if and only if we have to stop working on the
1572 1.87 perry * indicated disk due to a head-separation delay.
1573 1.1 oster */
1574 1.87 perry static int
1575 1.60 oster CheckHeadSeparation(RF_Raid_t *raidPtr, RF_PerDiskReconCtrl_t *ctrl,
1576 1.95 christos RF_RowCol_t col, RF_HeadSepLimit_t hsCtr,
1577 1.95 christos RF_ReconUnitNum_t which_ru)
1578 1.4 oster {
1579 1.57 oster RF_ReconCtrl_t *reconCtrlPtr = raidPtr->reconControl;
1580 1.4 oster RF_CallbackDesc_t *cb, *p, *pt;
1581 1.10 oster int retval = 0;
1582 1.4 oster
1583 1.4 oster /* if we're too far ahead of the slowest disk, stop working on this
1584 1.4 oster * disk until the slower ones catch up. We do this by scheduling a
1585 1.4 oster * wakeup callback for the time when the slowest disk has caught up.
1586 1.4 oster * We define "caught up" with 20% hysteresis, i.e. the head separation
1587 1.4 oster * must have fallen to at most 80% of the max allowable head
1588 1.4 oster * separation before we'll wake up.
1589 1.87 perry *
1590 1.4 oster */
1591 1.4 oster RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
1592 1.76 oster while(reconCtrlPtr->rb_lock) {
1593 1.76 oster ltsleep(&reconCtrlPtr->rb_lock, PRIBIO, "reconctlchs", 0, &reconCtrlPtr->rb_mutex);
1594 1.76 oster }
1595 1.76 oster reconCtrlPtr->rb_lock = 1;
1596 1.76 oster RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
1597 1.4 oster if ((raidPtr->headSepLimit >= 0) &&
1598 1.4 oster ((ctrl->headSepCounter - reconCtrlPtr->minHeadSepCounter) > raidPtr->headSepLimit)) {
1599 1.57 oster Dprintf5("raid%d: RECON: head sep stall: col %d hsCtr %ld minHSCtr %ld limit %ld\n",
1600 1.87 perry raidPtr->raidid, col, ctrl->headSepCounter,
1601 1.87 perry reconCtrlPtr->minHeadSepCounter,
1602 1.10 oster raidPtr->headSepLimit);
1603 1.4 oster cb = rf_AllocCallbackDesc();
1604 1.4 oster /* the minHeadSepCounter value we have to get to before we'll
1605 1.4 oster * wake up. build in 20% hysteresis. */
1606 1.4 oster cb->callbackArg.v = (ctrl->headSepCounter - raidPtr->headSepLimit + raidPtr->headSepLimit / 5);
1607 1.4 oster cb->col = col;
1608 1.4 oster cb->next = NULL;
1609 1.4 oster
1610 1.4 oster /* insert this callback descriptor into the sorted list of
1611 1.4 oster * pending head-sep callbacks */
1612 1.4 oster p = reconCtrlPtr->headSepCBList;
1613 1.4 oster if (!p)
1614 1.4 oster reconCtrlPtr->headSepCBList = cb;
1615 1.4 oster else
1616 1.4 oster if (cb->callbackArg.v < p->callbackArg.v) {
1617 1.4 oster cb->next = reconCtrlPtr->headSepCBList;
1618 1.4 oster reconCtrlPtr->headSepCBList = cb;
1619 1.4 oster } else {
1620 1.4 oster for (pt = p, p = p->next; p && (p->callbackArg.v < cb->callbackArg.v); pt = p, p = p->next);
1621 1.4 oster cb->next = p;
1622 1.4 oster pt->next = cb;
1623 1.4 oster }
1624 1.4 oster retval = 1;
1625 1.1 oster #if RF_RECON_STATS > 0
1626 1.4 oster ctrl->reconCtrl->reconDesc->hsStallCount++;
1627 1.4 oster #endif /* RF_RECON_STATS > 0 */
1628 1.4 oster }
1629 1.76 oster RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
1630 1.76 oster reconCtrlPtr->rb_lock = 0;
1631 1.76 oster wakeup(&reconCtrlPtr->rb_lock);
1632 1.4 oster RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
1633 1.1 oster
1634 1.4 oster return (retval);
1635 1.1 oster }
1636 1.87 perry /*
1637 1.13 oster * checks to see if reconstruction has been either forced or blocked
1638 1.13 oster * by a user operation. if forced, we skip this RU entirely. else if
1639 1.13 oster * blocked, put ourselves on the wait list. else return 0.
1640 1.1 oster *
1641 1.87 perry * ASSUMES THE PSS MUTEX IS LOCKED UPON ENTRY
1642 1.1 oster */
1643 1.87 perry static int
1644 1.95 christos CheckForcedOrBlockedReconstruction(RF_Raid_t *raidPtr,
1645 1.60 oster RF_ReconParityStripeStatus_t *pssPtr,
1646 1.95 christos RF_PerDiskReconCtrl_t *ctrl,
1647 1.94 christos RF_RowCol_t col,
1648 1.95 christos RF_StripeNum_t psid,
1649 1.95 christos RF_ReconUnitNum_t which_ru)
1650 1.4 oster {
1651 1.4 oster RF_CallbackDesc_t *cb;
1652 1.4 oster int retcode = 0;
1653 1.4 oster
1654 1.4 oster if ((pssPtr->flags & RF_PSS_FORCED_ON_READ) || (pssPtr->flags & RF_PSS_FORCED_ON_WRITE))
1655 1.4 oster retcode = RF_PSS_FORCED_ON_WRITE;
1656 1.4 oster else
1657 1.4 oster if (pssPtr->flags & RF_PSS_RECON_BLOCKED) {
1658 1.57 oster Dprintf3("RECON: col %d blocked at psid %ld ru %d\n", col, psid, which_ru);
1659 1.4 oster cb = rf_AllocCallbackDesc(); /* append ourselves to
1660 1.4 oster * the blockage-wait
1661 1.4 oster * list */
1662 1.4 oster cb->col = col;
1663 1.4 oster cb->next = pssPtr->blockWaitList;
1664 1.4 oster pssPtr->blockWaitList = cb;
1665 1.4 oster retcode = RF_PSS_RECON_BLOCKED;
1666 1.4 oster }
1667 1.4 oster if (!retcode)
1668 1.4 oster pssPtr->flags |= RF_PSS_UNDER_RECON; /* mark this RU as under
1669 1.4 oster * reconstruction */
1670 1.4 oster
1671 1.4 oster return (retcode);
1672 1.1 oster }
1673 1.13 oster /*
1674 1.13 oster * if reconstruction is currently ongoing for the indicated stripeID,
1675 1.13 oster * reconstruction is forced to completion and we return non-zero to
1676 1.13 oster * indicate that the caller must wait. If not, then reconstruction is
1677 1.13 oster * blocked on the indicated stripe and the routine returns zero. If
1678 1.13 oster * and only if we return non-zero, we'll cause the cbFunc to get
1679 1.87 perry * invoked with the cbArg when the reconstruction has completed.
1680 1.1 oster */
1681 1.87 perry int
1682 1.60 oster rf_ForceOrBlockRecon(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
1683 1.60 oster void (*cbFunc)(RF_Raid_t *, void *), void *cbArg)
1684 1.4 oster {
1685 1.4 oster RF_StripeNum_t stripeID = asmap->stripeID; /* the stripe ID we're
1686 1.4 oster * forcing recon on */
1687 1.4 oster RF_SectorCount_t sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU; /* num sects in one RU */
1688 1.68 oster RF_ReconParityStripeStatus_t *pssPtr, *newpssPtr; /* a pointer to the parity
1689 1.4 oster * stripe status structure */
1690 1.4 oster RF_StripeNum_t psid; /* parity stripe id */
1691 1.4 oster RF_SectorNum_t offset, fd_offset; /* disk offset, failed-disk
1692 1.4 oster * offset */
1693 1.4 oster RF_RowCol_t *diskids;
1694 1.4 oster RF_ReconUnitNum_t which_ru; /* RU within parity stripe */
1695 1.4 oster RF_RowCol_t fcol, diskno, i;
1696 1.4 oster RF_ReconBuffer_t *new_rbuf; /* ptr to newly allocated rbufs */
1697 1.4 oster RF_DiskQueueData_t *req;/* disk I/O req to be enqueued */
1698 1.4 oster RF_CallbackDesc_t *cb;
1699 1.68 oster int nPromoted;
1700 1.4 oster
1701 1.4 oster psid = rf_MapStripeIDToParityStripeID(&raidPtr->Layout, stripeID, &which_ru);
1702 1.4 oster
1703 1.68 oster /* allocate a new PSS in case we need it */
1704 1.68 oster newpssPtr = rf_AllocPSStatus(raidPtr);
1705 1.68 oster
1706 1.57 oster RF_LOCK_PSS_MUTEX(raidPtr, psid);
1707 1.4 oster
1708 1.68 oster pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_CREATE | RF_PSS_RECON_BLOCKED, newpssPtr);
1709 1.68 oster
1710 1.68 oster if (pssPtr != newpssPtr) {
1711 1.68 oster rf_FreePSStatus(raidPtr, newpssPtr);
1712 1.68 oster }
1713 1.4 oster
1714 1.4 oster /* if recon is not ongoing on this PS, just return */
1715 1.4 oster if (!(pssPtr->flags & RF_PSS_UNDER_RECON)) {
1716 1.57 oster RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
1717 1.4 oster return (0);
1718 1.4 oster }
1719 1.4 oster /* otherwise, we have to wait for reconstruction to complete on this
1720 1.4 oster * RU. */
1721 1.4 oster /* In order to avoid waiting for a potentially large number of
1722 1.4 oster * low-priority accesses to complete, we force a normal-priority (i.e.
1723 1.4 oster * not low-priority) reconstruction on this RU. */
1724 1.4 oster if (!(pssPtr->flags & RF_PSS_FORCED_ON_WRITE) && !(pssPtr->flags & RF_PSS_FORCED_ON_READ)) {
1725 1.4 oster DDprintf1("Forcing recon on psid %ld\n", psid);
1726 1.4 oster pssPtr->flags |= RF_PSS_FORCED_ON_WRITE; /* mark this RU as under
1727 1.4 oster * forced recon */
1728 1.4 oster pssPtr->flags &= ~RF_PSS_RECON_BLOCKED; /* clear the blockage
1729 1.4 oster * that we just set */
1730 1.57 oster fcol = raidPtr->reconControl->fcol;
1731 1.4 oster
1732 1.4 oster /* get a listing of the disks comprising the indicated stripe */
1733 1.57 oster (raidPtr->Layout.map->IdentifyStripe) (raidPtr, asmap->raidAddress, &diskids);
1734 1.4 oster
1735 1.4 oster /* For previously issued reads, elevate them to normal
1736 1.4 oster * priority. If the I/O has already completed, it won't be
1737 1.4 oster * found in the queue, and hence this will be a no-op. For
1738 1.4 oster * unissued reads, allocate buffers and issue new reads. The
1739 1.4 oster * fact that we've set the FORCED bit means that the regular
1740 1.4 oster * recon procs will not re-issue these reqs */
1741 1.4 oster for (i = 0; i < raidPtr->Layout.numDataCol + raidPtr->Layout.numParityCol; i++)
1742 1.4 oster if ((diskno = diskids[i]) != fcol) {
1743 1.4 oster if (pssPtr->issued[diskno]) {
1744 1.57 oster nPromoted = rf_DiskIOPromote(&raidPtr->Queues[diskno], psid, which_ru);
1745 1.4 oster if (rf_reconDebug && nPromoted)
1746 1.57 oster printf("raid%d: promoted read from col %d\n", raidPtr->raidid, diskno);
1747 1.4 oster } else {
1748 1.57 oster new_rbuf = rf_MakeReconBuffer(raidPtr, diskno, RF_RBUF_TYPE_FORCED); /* create new buf */
1749 1.57 oster ComputePSDiskOffsets(raidPtr, psid, diskno, &offset, &fd_offset,
1750 1.57 oster &new_rbuf->spCol, &new_rbuf->spOffset); /* find offsets & spare
1751 1.4 oster * location */
1752 1.4 oster new_rbuf->parityStripeID = psid; /* fill in the buffer */
1753 1.4 oster new_rbuf->which_ru = which_ru;
1754 1.4 oster new_rbuf->failedDiskSectorOffset = fd_offset;
1755 1.4 oster new_rbuf->priority = RF_IO_NORMAL_PRIORITY;
1756 1.4 oster
1757 1.4 oster /* use NULL b_proc b/c all addrs
1758 1.4 oster * should be in kernel space */
1759 1.4 oster req = rf_CreateDiskQueueData(RF_IO_TYPE_READ, offset + which_ru * sectorsPerRU, sectorsPerRU, new_rbuf->buffer,
1760 1.86 oster psid, which_ru, (int (*) (void *, int)) ForceReconReadDoneProc, (void *) new_rbuf,
1761 1.85 oster NULL, (void *) raidPtr, 0, NULL, PR_WAITOK);
1762 1.4 oster
1763 1.4 oster new_rbuf->arg = req;
1764 1.57 oster rf_DiskIOEnqueue(&raidPtr->Queues[diskno], req, RF_IO_NORMAL_PRIORITY); /* enqueue the I/O */
1765 1.57 oster Dprintf2("raid%d: Issued new read req on col %d\n", raidPtr->raidid, diskno);
1766 1.4 oster }
1767 1.4 oster }
1768 1.4 oster /* if the write is sitting in the disk queue, elevate its
1769 1.4 oster * priority */
1770 1.57 oster if (rf_DiskIOPromote(&raidPtr->Queues[fcol], psid, which_ru))
1771 1.87 perry printf("raid%d: promoted write to col %d\n",
1772 1.57 oster raidPtr->raidid, fcol);
1773 1.4 oster }
1774 1.4 oster /* install a callback descriptor to be invoked when recon completes on
1775 1.4 oster * this parity stripe. */
1776 1.4 oster cb = rf_AllocCallbackDesc();
1777 1.4 oster /* XXX the following is bogus.. These functions don't really match!!
1778 1.4 oster * GO */
1779 1.4 oster cb->callbackFunc = (void (*) (RF_CBParam_t)) cbFunc;
1780 1.4 oster cb->callbackArg.p = (void *) cbArg;
1781 1.4 oster cb->next = pssPtr->procWaitList;
1782 1.4 oster pssPtr->procWaitList = cb;
1783 1.87 perry DDprintf2("raid%d: Waiting for forced recon on psid %ld\n",
1784 1.10 oster raidPtr->raidid, psid);
1785 1.4 oster
1786 1.57 oster RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
1787 1.4 oster return (1);
1788 1.1 oster }
1789 1.1 oster /* called upon the completion of a forced reconstruction read.
1790 1.1 oster * all we do is schedule the FORCEDREADONE event.
1791 1.1 oster * called at interrupt context in the kernel, so don't do anything illegal here.
1792 1.1 oster */
1793 1.87 perry static void
1794 1.60 oster ForceReconReadDoneProc(void *arg, int status)
1795 1.4 oster {
1796 1.4 oster RF_ReconBuffer_t *rbuf = arg;
1797 1.4 oster
1798 1.82 oster /* Detect that reconControl is no longer valid, and if that
1799 1.82 oster is the case, bail without calling rf_CauseReconEvent().
1800 1.82 oster There won't be anyone listening for this event anyway */
1801 1.82 oster
1802 1.82 oster if (rbuf->raidPtr->reconControl == NULL)
1803 1.82 oster return;
1804 1.82 oster
1805 1.4 oster if (status) {
1806 1.70 oster printf("raid%d: Forced recon read failed!\n", rbuf->raidPtr->raidid);
1807 1.71 oster rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, (void *) rbuf, RF_REVENT_FORCEDREAD_FAILED);
1808 1.79 oster return;
1809 1.4 oster }
1810 1.71 oster rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, (void *) rbuf, RF_REVENT_FORCEDREADDONE);
1811 1.1 oster }
1812 1.1 oster /* releases a block on the reconstruction of the indicated stripe */
1813 1.87 perry int
1814 1.60 oster rf_UnblockRecon(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap)
1815 1.4 oster {
1816 1.4 oster RF_StripeNum_t stripeID = asmap->stripeID;
1817 1.4 oster RF_ReconParityStripeStatus_t *pssPtr;
1818 1.4 oster RF_ReconUnitNum_t which_ru;
1819 1.4 oster RF_StripeNum_t psid;
1820 1.4 oster RF_CallbackDesc_t *cb;
1821 1.4 oster
1822 1.4 oster psid = rf_MapStripeIDToParityStripeID(&raidPtr->Layout, stripeID, &which_ru);
1823 1.57 oster RF_LOCK_PSS_MUTEX(raidPtr, psid);
1824 1.68 oster pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_NONE, NULL);
1825 1.4 oster
1826 1.4 oster /* When recon is forced, the pss desc can get deleted before we get
1827 1.4 oster * back to unblock recon. But, this can _only_ happen when recon is
1828 1.4 oster * forced. It would be good to put some kind of sanity check here, but
1829 1.4 oster * how to decide if recon was just forced or not? */
1830 1.4 oster if (!pssPtr) {
1831 1.4 oster /* printf("Warning: no pss descriptor upon unblock on psid %ld
1832 1.4 oster * RU %d\n",psid,which_ru); */
1833 1.43 oster #if (RF_DEBUG_RECON > 0) || (RF_DEBUG_PSS > 0)
1834 1.4 oster if (rf_reconDebug || rf_pssDebug)
1835 1.4 oster printf("Warning: no pss descriptor upon unblock on psid %ld RU %d\n", (long) psid, which_ru);
1836 1.43 oster #endif
1837 1.4 oster goto out;
1838 1.4 oster }
1839 1.4 oster pssPtr->blockCount--;
1840 1.10 oster Dprintf3("raid%d: unblocking recon on psid %ld: blockcount is %d\n",
1841 1.10 oster raidPtr->raidid, psid, pssPtr->blockCount);
1842 1.4 oster if (pssPtr->blockCount == 0) { /* if recon blockage has been released */
1843 1.4 oster
1844 1.4 oster /* unblock recon before calling CauseReconEvent in case
1845 1.4 oster * CauseReconEvent causes us to try to issue a new read before
1846 1.4 oster * returning here. */
1847 1.4 oster pssPtr->flags &= ~RF_PSS_RECON_BLOCKED;
1848 1.4 oster
1849 1.4 oster
1850 1.87 perry while (pssPtr->blockWaitList) {
1851 1.13 oster /* spin through the block-wait list and
1852 1.13 oster release all the waiters */
1853 1.4 oster cb = pssPtr->blockWaitList;
1854 1.4 oster pssPtr->blockWaitList = cb->next;
1855 1.4 oster cb->next = NULL;
1856 1.57 oster rf_CauseReconEvent(raidPtr, cb->col, NULL, RF_REVENT_BLOCKCLEAR);
1857 1.4 oster rf_FreeCallbackDesc(cb);
1858 1.4 oster }
1859 1.13 oster if (!(pssPtr->flags & RF_PSS_UNDER_RECON)) {
1860 1.13 oster /* if no recon was requested while recon was blocked */
1861 1.57 oster rf_PSStatusDelete(raidPtr, raidPtr->reconControl->pssTable, pssPtr);
1862 1.4 oster }
1863 1.4 oster }
1864 1.1 oster out:
1865 1.57 oster RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
1866 1.4 oster return (0);
1867 1.1 oster }
1868 1.95.16.2 skrll
1869 1.95.16.2 skrll void
1870 1.95.16.2 skrll rf_WakeupHeadSepCBWaiters(RF_Raid_t *raidPtr)
1871 1.95.16.2 skrll {
1872 1.95.16.2 skrll RF_CallbackDesc_t *p;
1873 1.95.16.2 skrll
1874 1.95.16.2 skrll RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1875 1.95.16.2 skrll while(raidPtr->reconControl->rb_lock) {
1876 1.95.16.2 skrll ltsleep(&raidPtr->reconControl->rb_lock, PRIBIO,
1877 1.95.16.2 skrll "rf_wakeuphscbw", 0, &raidPtr->reconControl->rb_mutex);
1878 1.95.16.2 skrll }
1879 1.95.16.2 skrll
1880 1.95.16.2 skrll raidPtr->reconControl->rb_lock = 1;
1881 1.95.16.2 skrll RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1882 1.95.16.2 skrll
1883 1.95.16.2 skrll while (raidPtr->reconControl->headSepCBList) {
1884 1.95.16.2 skrll p = raidPtr->reconControl->headSepCBList;
1885 1.95.16.2 skrll raidPtr->reconControl->headSepCBList = p->next;
1886 1.95.16.2 skrll p->next = NULL;
1887 1.95.16.2 skrll rf_CauseReconEvent(raidPtr, p->col, NULL, RF_REVENT_HEADSEPCLEAR);
1888 1.95.16.2 skrll rf_FreeCallbackDesc(p);
1889 1.95.16.2 skrll }
1890 1.95.16.2 skrll RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1891 1.95.16.2 skrll raidPtr->reconControl->rb_lock = 0;
1892 1.95.16.2 skrll wakeup(&raidPtr->reconControl->rb_lock);
1893 1.95.16.2 skrll RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
1894 1.95.16.2 skrll
1895 1.95.16.2 skrll }
1896 1.95.16.2 skrll
1897