rf_decluster.c revision 1.24 1 1.24 christos /* $NetBSD: rf_decluster.c,v 1.24 2014/03/23 09:30:59 christos 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_decluster.c -- code related to the declustered layout
32 1.1 oster *
33 1.1 oster * Created 10-21-92 (MCH)
34 1.1 oster *
35 1.1 oster * Nov 93: adding support for distributed sparing. This code is a little
36 1.1 oster * complex: the basic layout used is as follows:
37 1.1 oster * let F = (v-1)/GCD(r,v-1). The spare space for each set of
38 1.1 oster * F consecutive fulltables is grouped together and placed after
39 1.1 oster * that set of tables.
40 1.1 oster * +------------------------------+
41 1.1 oster * | F fulltables |
42 1.1 oster * | Spare Space |
43 1.1 oster * | F fulltables |
44 1.1 oster * | Spare Space |
45 1.1 oster * | ... |
46 1.1 oster * +------------------------------+
47 1.1 oster *
48 1.1 oster *--------------------------------------------------------------------*/
49 1.8 lukem
50 1.8 lukem #include <sys/cdefs.h>
51 1.24 christos __KERNEL_RCSID(0, "$NetBSD: rf_decluster.c,v 1.24 2014/03/23 09:30:59 christos Exp $");
52 1.1 oster
53 1.7 oster #include <dev/raidframe/raidframevar.h>
54 1.7 oster
55 1.6 oster #include "rf_archs.h"
56 1.1 oster #include "rf_raid.h"
57 1.1 oster #include "rf_decluster.h"
58 1.1 oster #include "rf_debugMem.h"
59 1.1 oster #include "rf_utils.h"
60 1.1 oster #include "rf_alloclist.h"
61 1.1 oster #include "rf_general.h"
62 1.13 oster #include "rf_kintf.h"
63 1.1 oster #include "rf_shutdown.h"
64 1.19 oster #include "rf_copyback.h"
65 1.1 oster
66 1.6 oster #if (RF_INCLUDE_PARITY_DECLUSTERING > 0) || (RF_INCLUDE_PARITY_DECLUSTERING_PQ > 0)
67 1.6 oster
68 1.1 oster /* configuration code */
69 1.1 oster
70 1.17 perry int
71 1.21 christos rf_ConfigureDeclustered(RF_ShutdownList_t **listp, RF_Raid_t *raidPtr,
72 1.15 oster RF_Config_t *cfgPtr)
73 1.3 oster {
74 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
75 1.3 oster int b, v, k, r, lambda; /* block design params */
76 1.3 oster int i, j;
77 1.3 oster RF_RowCol_t *first_avail_slot;
78 1.3 oster RF_StripeCount_t complete_FT_count, numCompleteFullTablesPerDisk;
79 1.3 oster RF_DeclusteredConfigInfo_t *info;
80 1.3 oster RF_StripeCount_t PUsPerDisk, spareRegionDepthInPUs, numCompleteSpareRegionsPerDisk,
81 1.3 oster extraPUsPerDisk;
82 1.3 oster RF_StripeCount_t totSparePUsPerDisk;
83 1.3 oster RF_SectorNum_t diskOffsetOfLastFullTableInSUs;
84 1.3 oster RF_SectorCount_t SpareSpaceInSUs;
85 1.3 oster char *cfgBuf = (char *) (cfgPtr->layoutSpecific);
86 1.3 oster RF_StripeNum_t l, SUID;
87 1.3 oster
88 1.3 oster SUID = l = 0;
89 1.3 oster numCompleteSpareRegionsPerDisk = 0;
90 1.3 oster
91 1.3 oster /* 1. create layout specific structure */
92 1.3 oster RF_MallocAndAdd(info, sizeof(RF_DeclusteredConfigInfo_t), (RF_DeclusteredConfigInfo_t *), raidPtr->cleanupList);
93 1.3 oster if (info == NULL)
94 1.3 oster return (ENOMEM);
95 1.3 oster layoutPtr->layoutSpecificInfo = (void *) info;
96 1.3 oster info->SpareTable = NULL;
97 1.3 oster
98 1.3 oster /* 2. extract parameters from the config structure */
99 1.3 oster if (layoutPtr->map->flags & RF_DISTRIBUTE_SPARE) {
100 1.9 wiz (void)memcpy(info->sparemap_fname, cfgBuf, RF_SPAREMAP_NAME_LEN);
101 1.3 oster }
102 1.3 oster cfgBuf += RF_SPAREMAP_NAME_LEN;
103 1.3 oster
104 1.3 oster b = *((int *) cfgBuf);
105 1.3 oster cfgBuf += sizeof(int);
106 1.3 oster v = *((int *) cfgBuf);
107 1.3 oster cfgBuf += sizeof(int);
108 1.3 oster k = *((int *) cfgBuf);
109 1.3 oster cfgBuf += sizeof(int);
110 1.3 oster r = *((int *) cfgBuf);
111 1.3 oster cfgBuf += sizeof(int);
112 1.3 oster lambda = *((int *) cfgBuf);
113 1.3 oster cfgBuf += sizeof(int);
114 1.3 oster raidPtr->noRotate = *((int *) cfgBuf);
115 1.3 oster cfgBuf += sizeof(int);
116 1.3 oster
117 1.3 oster /* the sparemaps are generated assuming that parity is rotated, so we
118 1.3 oster * issue a warning if both distributed sparing and no-rotate are on at
119 1.3 oster * the same time */
120 1.3 oster if ((layoutPtr->map->flags & RF_DISTRIBUTE_SPARE) && raidPtr->noRotate) {
121 1.3 oster RF_ERRORMSG("Warning: distributed sparing specified without parity rotation.\n");
122 1.3 oster }
123 1.3 oster if (raidPtr->numCol != v) {
124 1.3 oster RF_ERRORMSG2("RAID: config error: table element count (%d) not equal to no. of cols (%d)\n", v, raidPtr->numCol);
125 1.3 oster return (EINVAL);
126 1.3 oster }
127 1.3 oster /* 3. set up the values used in the mapping code */
128 1.3 oster info->BlocksPerTable = b;
129 1.3 oster info->Lambda = lambda;
130 1.3 oster info->NumParityReps = info->groupSize = k;
131 1.3 oster info->SUsPerTable = b * (k - 1) * layoutPtr->SUsPerPU; /* b blks, k-1 SUs each */
132 1.3 oster info->SUsPerFullTable = k * info->SUsPerTable; /* rot k times */
133 1.3 oster info->PUsPerBlock = k - 1;
134 1.3 oster info->SUsPerBlock = info->PUsPerBlock * layoutPtr->SUsPerPU;
135 1.3 oster info->TableDepthInPUs = (b * k) / v;
136 1.3 oster info->FullTableDepthInPUs = info->TableDepthInPUs * k; /* k repetitions */
137 1.3 oster
138 1.3 oster /* used only in distributed sparing case */
139 1.3 oster info->FullTablesPerSpareRegion = (v - 1) / rf_gcd(r, v - 1); /* (v-1)/gcd fulltables */
140 1.3 oster info->TablesPerSpareRegion = k * info->FullTablesPerSpareRegion;
141 1.3 oster info->SpareSpaceDepthPerRegionInSUs = (r * info->TablesPerSpareRegion / (v - 1)) * layoutPtr->SUsPerPU;
142 1.3 oster
143 1.3 oster /* check to make sure the block design is sufficiently small */
144 1.3 oster if ((raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE)) {
145 1.3 oster if (info->FullTableDepthInPUs * layoutPtr->SUsPerPU + info->SpareSpaceDepthPerRegionInSUs > layoutPtr->stripeUnitsPerDisk) {
146 1.3 oster RF_ERRORMSG3("RAID: config error: Full Table depth (%d) + Spare Space (%d) larger than disk size (%d) (BD too big)\n",
147 1.3 oster (int) info->FullTableDepthInPUs,
148 1.3 oster (int) info->SpareSpaceDepthPerRegionInSUs,
149 1.3 oster (int) layoutPtr->stripeUnitsPerDisk);
150 1.3 oster return (EINVAL);
151 1.3 oster }
152 1.3 oster } else {
153 1.3 oster if (info->TableDepthInPUs * layoutPtr->SUsPerPU > layoutPtr->stripeUnitsPerDisk) {
154 1.3 oster RF_ERRORMSG2("RAID: config error: Table depth (%d) larger than disk size (%d) (BD too big)\n",
155 1.3 oster (int) (info->TableDepthInPUs * layoutPtr->SUsPerPU), \
156 1.3 oster (int) layoutPtr->stripeUnitsPerDisk);
157 1.3 oster return (EINVAL);
158 1.3 oster }
159 1.3 oster }
160 1.3 oster
161 1.3 oster
162 1.3 oster /* compute the size of each disk, and the number of tables in the last
163 1.3 oster * fulltable (which need not be complete) */
164 1.3 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
165 1.3 oster
166 1.3 oster PUsPerDisk = layoutPtr->stripeUnitsPerDisk / layoutPtr->SUsPerPU;
167 1.3 oster spareRegionDepthInPUs = (info->TablesPerSpareRegion * info->TableDepthInPUs +
168 1.3 oster (info->TablesPerSpareRegion * info->TableDepthInPUs) / (v - 1));
169 1.3 oster info->SpareRegionDepthInSUs = spareRegionDepthInPUs * layoutPtr->SUsPerPU;
170 1.3 oster
171 1.3 oster numCompleteSpareRegionsPerDisk = PUsPerDisk / spareRegionDepthInPUs;
172 1.3 oster info->NumCompleteSRs = numCompleteSpareRegionsPerDisk;
173 1.3 oster extraPUsPerDisk = PUsPerDisk % spareRegionDepthInPUs;
174 1.3 oster
175 1.3 oster /* assume conservatively that we need the full amount of spare
176 1.3 oster * space in one region in order to provide spares for the
177 1.3 oster * partial spare region at the end of the array. We set "i"
178 1.3 oster * to the number of tables in the partial spare region. This
179 1.3 oster * may actually include some fulltables. */
180 1.3 oster extraPUsPerDisk -= (info->SpareSpaceDepthPerRegionInSUs / layoutPtr->SUsPerPU);
181 1.3 oster if (extraPUsPerDisk <= 0)
182 1.3 oster i = 0;
183 1.3 oster else
184 1.3 oster i = extraPUsPerDisk / info->TableDepthInPUs;
185 1.3 oster
186 1.19 oster complete_FT_count = (numCompleteSpareRegionsPerDisk * (info->TablesPerSpareRegion / k) + i / k);
187 1.3 oster info->FullTableLimitSUID = complete_FT_count * info->SUsPerFullTable;
188 1.3 oster info->ExtraTablesPerDisk = i % k;
189 1.3 oster
190 1.3 oster /* note that in the last spare region, the spare space is
191 1.3 oster * complete even though data/parity space is not */
192 1.3 oster totSparePUsPerDisk = (numCompleteSpareRegionsPerDisk + 1) * (info->SpareSpaceDepthPerRegionInSUs / layoutPtr->SUsPerPU);
193 1.3 oster info->TotSparePUsPerDisk = totSparePUsPerDisk;
194 1.3 oster
195 1.3 oster layoutPtr->stripeUnitsPerDisk =
196 1.19 oster ((complete_FT_count) * info->FullTableDepthInPUs + /* data & parity space */
197 1.3 oster info->ExtraTablesPerDisk * info->TableDepthInPUs +
198 1.3 oster totSparePUsPerDisk /* spare space */
199 1.3 oster ) * layoutPtr->SUsPerPU;
200 1.3 oster layoutPtr->dataStripeUnitsPerDisk =
201 1.3 oster (complete_FT_count * info->FullTableDepthInPUs + info->ExtraTablesPerDisk * info->TableDepthInPUs)
202 1.3 oster * layoutPtr->SUsPerPU * (k - 1) / k;
203 1.3 oster
204 1.3 oster } else {
205 1.3 oster /* non-dist spare case: force each disk to contain an
206 1.3 oster * integral number of tables */
207 1.3 oster layoutPtr->stripeUnitsPerDisk /= (info->TableDepthInPUs * layoutPtr->SUsPerPU);
208 1.3 oster layoutPtr->stripeUnitsPerDisk *= (info->TableDepthInPUs * layoutPtr->SUsPerPU);
209 1.3 oster
210 1.3 oster /* compute the number of tables in the last fulltable, which
211 1.3 oster * need not be complete */
212 1.3 oster complete_FT_count =
213 1.19 oster ((layoutPtr->stripeUnitsPerDisk / layoutPtr->SUsPerPU) / info->FullTableDepthInPUs);
214 1.3 oster
215 1.3 oster info->FullTableLimitSUID = complete_FT_count * info->SUsPerFullTable;
216 1.3 oster info->ExtraTablesPerDisk =
217 1.3 oster ((layoutPtr->stripeUnitsPerDisk / layoutPtr->SUsPerPU) / info->TableDepthInPUs) % k;
218 1.3 oster }
219 1.3 oster
220 1.3 oster raidPtr->sectorsPerDisk = layoutPtr->stripeUnitsPerDisk * layoutPtr->sectorsPerStripeUnit;
221 1.3 oster
222 1.3 oster /* find the disk offset of the stripe unit where the last fulltable
223 1.3 oster * starts */
224 1.19 oster numCompleteFullTablesPerDisk = complete_FT_count;
225 1.3 oster diskOffsetOfLastFullTableInSUs = numCompleteFullTablesPerDisk * info->FullTableDepthInPUs * layoutPtr->SUsPerPU;
226 1.3 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
227 1.3 oster SpareSpaceInSUs = numCompleteSpareRegionsPerDisk * info->SpareSpaceDepthPerRegionInSUs;
228 1.3 oster diskOffsetOfLastFullTableInSUs += SpareSpaceInSUs;
229 1.3 oster info->DiskOffsetOfLastSpareSpaceChunkInSUs =
230 1.3 oster diskOffsetOfLastFullTableInSUs + info->ExtraTablesPerDisk * info->TableDepthInPUs * layoutPtr->SUsPerPU;
231 1.3 oster }
232 1.3 oster info->DiskOffsetOfLastFullTableInSUs = diskOffsetOfLastFullTableInSUs;
233 1.3 oster info->numCompleteFullTablesPerDisk = numCompleteFullTablesPerDisk;
234 1.3 oster
235 1.3 oster /* 4. create and initialize the lookup tables */
236 1.3 oster info->LayoutTable = rf_make_2d_array(b, k, raidPtr->cleanupList);
237 1.3 oster if (info->LayoutTable == NULL)
238 1.3 oster return (ENOMEM);
239 1.3 oster info->OffsetTable = rf_make_2d_array(b, k, raidPtr->cleanupList);
240 1.3 oster if (info->OffsetTable == NULL)
241 1.3 oster return (ENOMEM);
242 1.3 oster info->BlockTable = rf_make_2d_array(info->TableDepthInPUs * layoutPtr->SUsPerPU, raidPtr->numCol, raidPtr->cleanupList);
243 1.3 oster if (info->BlockTable == NULL)
244 1.3 oster return (ENOMEM);
245 1.3 oster
246 1.3 oster first_avail_slot = rf_make_1d_array(v, NULL);
247 1.3 oster if (first_avail_slot == NULL)
248 1.3 oster return (ENOMEM);
249 1.3 oster
250 1.3 oster for (i = 0; i < b; i++)
251 1.3 oster for (j = 0; j < k; j++)
252 1.3 oster info->LayoutTable[i][j] = *cfgBuf++;
253 1.3 oster
254 1.3 oster /* initialize offset table */
255 1.3 oster for (i = 0; i < b; i++)
256 1.3 oster for (j = 0; j < k; j++) {
257 1.3 oster info->OffsetTable[i][j] = first_avail_slot[info->LayoutTable[i][j]];
258 1.3 oster first_avail_slot[info->LayoutTable[i][j]]++;
259 1.3 oster }
260 1.3 oster
261 1.3 oster /* initialize block table */
262 1.3 oster for (SUID = l = 0; l < layoutPtr->SUsPerPU; l++) {
263 1.3 oster for (i = 0; i < b; i++) {
264 1.3 oster for (j = 0; j < k; j++) {
265 1.3 oster info->BlockTable[(info->OffsetTable[i][j] * layoutPtr->SUsPerPU) + l]
266 1.3 oster [info->LayoutTable[i][j]] = SUID;
267 1.3 oster }
268 1.3 oster SUID++;
269 1.3 oster }
270 1.3 oster }
271 1.1 oster
272 1.3 oster rf_free_1d_array(first_avail_slot, v);
273 1.3 oster
274 1.3 oster /* 5. set up the remaining redundant-but-useful parameters */
275 1.3 oster
276 1.19 oster raidPtr->totalSectors = (k * complete_FT_count + info->ExtraTablesPerDisk) *
277 1.3 oster info->SUsPerTable * layoutPtr->sectorsPerStripeUnit;
278 1.3 oster layoutPtr->numStripe = (raidPtr->totalSectors / layoutPtr->sectorsPerStripeUnit) / (k - 1);
279 1.3 oster
280 1.3 oster /* strange evaluation order below to try and minimize overflow
281 1.3 oster * problems */
282 1.3 oster
283 1.3 oster layoutPtr->dataSectorsPerStripe = (k - 1) * layoutPtr->sectorsPerStripeUnit;
284 1.3 oster layoutPtr->numDataCol = k - 1;
285 1.3 oster layoutPtr->numParityCol = 1;
286 1.3 oster
287 1.3 oster return (0);
288 1.1 oster }
289 1.1 oster /* declustering with distributed sparing */
290 1.1 oster static void rf_ShutdownDeclusteredDS(RF_ThreadArg_t);
291 1.17 perry static void
292 1.15 oster rf_ShutdownDeclusteredDS(RF_ThreadArg_t arg)
293 1.3 oster {
294 1.3 oster RF_DeclusteredConfigInfo_t *info;
295 1.3 oster RF_Raid_t *raidPtr;
296 1.3 oster
297 1.3 oster raidPtr = (RF_Raid_t *) arg;
298 1.3 oster info = (RF_DeclusteredConfigInfo_t *) raidPtr->Layout.layoutSpecificInfo;
299 1.3 oster if (info->SpareTable)
300 1.3 oster rf_FreeSpareTable(raidPtr);
301 1.3 oster }
302 1.3 oster
303 1.17 perry int
304 1.15 oster rf_ConfigureDeclusteredDS(RF_ShutdownList_t **listp, RF_Raid_t *raidPtr,
305 1.15 oster RF_Config_t *cfgPtr)
306 1.3 oster {
307 1.3 oster int rc;
308 1.3 oster
309 1.3 oster rc = rf_ConfigureDeclustered(listp, raidPtr, cfgPtr);
310 1.3 oster if (rc)
311 1.3 oster return (rc);
312 1.16 oster rf_ShutdownCreate(listp, rf_ShutdownDeclusteredDS, raidPtr);
313 1.16 oster
314 1.3 oster return (0);
315 1.3 oster }
316 1.3 oster
317 1.17 perry void
318 1.15 oster rf_MapSectorDeclustered(RF_Raid_t *raidPtr, RF_RaidAddr_t raidSector,
319 1.19 oster RF_RowCol_t *col,
320 1.15 oster RF_SectorNum_t *diskSector, int remap)
321 1.3 oster {
322 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
323 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
324 1.3 oster RF_StripeNum_t SUID = raidSector / layoutPtr->sectorsPerStripeUnit;
325 1.3 oster RF_StripeNum_t FullTableID, FullTableOffset, TableID, TableOffset;
326 1.3 oster RF_StripeNum_t BlockID, BlockOffset, RepIndex;
327 1.3 oster RF_StripeCount_t sus_per_fulltable = info->SUsPerFullTable;
328 1.3 oster RF_StripeCount_t fulltable_depth = info->FullTableDepthInPUs * layoutPtr->SUsPerPU;
329 1.3 oster RF_StripeNum_t base_suid = 0, outSU, SpareRegion = 0, SpareSpace = 0;
330 1.3 oster
331 1.3 oster rf_decluster_adjust_params(layoutPtr, &SUID, &sus_per_fulltable, &fulltable_depth, &base_suid);
332 1.3 oster
333 1.3 oster FullTableID = SUID / sus_per_fulltable; /* fulltable ID within array
334 1.3 oster * (across rows) */
335 1.19 oster
336 1.3 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
337 1.3 oster SpareRegion = FullTableID / info->FullTablesPerSpareRegion;
338 1.3 oster SpareSpace = SpareRegion * info->SpareSpaceDepthPerRegionInSUs;
339 1.3 oster }
340 1.3 oster FullTableOffset = SUID % sus_per_fulltable;
341 1.3 oster TableID = FullTableOffset / info->SUsPerTable;
342 1.3 oster TableOffset = FullTableOffset - TableID * info->SUsPerTable;
343 1.3 oster BlockID = TableOffset / info->PUsPerBlock;
344 1.3 oster BlockOffset = TableOffset - BlockID * info->PUsPerBlock;
345 1.3 oster BlockID %= info->BlocksPerTable;
346 1.3 oster RepIndex = info->PUsPerBlock - TableID;
347 1.3 oster if (!raidPtr->noRotate)
348 1.3 oster BlockOffset += ((BlockOffset >= RepIndex) ? 1 : 0);
349 1.3 oster *col = info->LayoutTable[BlockID][BlockOffset];
350 1.3 oster
351 1.3 oster /* remap to distributed spare space if indicated */
352 1.3 oster if (remap) {
353 1.19 oster RF_ASSERT(raidPtr->Disks[*col].status == rf_ds_reconstructing || raidPtr->Disks[*col].status == rf_ds_dist_spared ||
354 1.19 oster (rf_copyback_in_progress && raidPtr->Disks[*col].status == rf_ds_optimal));
355 1.19 oster rf_remap_to_spare_space(layoutPtr, info, FullTableID, TableID, BlockID, (base_suid) ? 1 : 0, SpareRegion, col, &outSU);
356 1.3 oster } else {
357 1.3 oster
358 1.3 oster outSU = base_suid;
359 1.3 oster outSU += FullTableID * fulltable_depth; /* offs to strt of FT */
360 1.3 oster outSU += SpareSpace; /* skip rsvd spare space */
361 1.3 oster outSU += TableID * info->TableDepthInPUs * layoutPtr->SUsPerPU; /* offs to strt of tble */
362 1.3 oster outSU += info->OffsetTable[BlockID][BlockOffset] * layoutPtr->SUsPerPU; /* offs to the PU */
363 1.3 oster }
364 1.3 oster outSU += TableOffset / (info->BlocksPerTable * info->PUsPerBlock); /* offs to the SU within
365 1.3 oster * a PU */
366 1.1 oster
367 1.3 oster /* convert SUs to sectors, and, if not aligned to SU boundary, add in
368 1.3 oster * offset to sector. */
369 1.3 oster *diskSector = outSU * layoutPtr->sectorsPerStripeUnit + (raidSector % layoutPtr->sectorsPerStripeUnit);
370 1.1 oster
371 1.3 oster RF_ASSERT(*col != -1);
372 1.1 oster }
373 1.1 oster
374 1.1 oster
375 1.1 oster /* prototyping this inexplicably causes the compile of the layout table (rf_layout.c) to fail */
376 1.17 perry void
377 1.15 oster rf_MapParityDeclustered(RF_Raid_t *raidPtr, RF_RaidAddr_t raidSector,
378 1.19 oster RF_RowCol_t *col,
379 1.15 oster RF_SectorNum_t *diskSector, int remap)
380 1.3 oster {
381 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
382 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
383 1.3 oster RF_StripeNum_t SUID = raidSector / layoutPtr->sectorsPerStripeUnit;
384 1.3 oster RF_StripeNum_t FullTableID, FullTableOffset, TableID, TableOffset;
385 1.24 christos RF_StripeNum_t BlockID, RepIndex;
386 1.3 oster RF_StripeCount_t sus_per_fulltable = info->SUsPerFullTable;
387 1.3 oster RF_StripeCount_t fulltable_depth = info->FullTableDepthInPUs * layoutPtr->SUsPerPU;
388 1.3 oster RF_StripeNum_t base_suid = 0, outSU, SpareRegion = 0, SpareSpace = 0;
389 1.3 oster
390 1.3 oster rf_decluster_adjust_params(layoutPtr, &SUID, &sus_per_fulltable, &fulltable_depth, &base_suid);
391 1.3 oster
392 1.3 oster /* compute row & (possibly) spare space exactly as before */
393 1.3 oster FullTableID = SUID / sus_per_fulltable;
394 1.19 oster
395 1.3 oster if ((raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE)) {
396 1.3 oster SpareRegion = FullTableID / info->FullTablesPerSpareRegion;
397 1.3 oster SpareSpace = SpareRegion * info->SpareSpaceDepthPerRegionInSUs;
398 1.3 oster }
399 1.3 oster /* compute BlockID and RepIndex exactly as before */
400 1.3 oster FullTableOffset = SUID % sus_per_fulltable;
401 1.3 oster TableID = FullTableOffset / info->SUsPerTable;
402 1.3 oster TableOffset = FullTableOffset - TableID * info->SUsPerTable;
403 1.3 oster /* TableOffset = FullTableOffset % info->SUsPerTable; */
404 1.3 oster /* BlockID = (TableOffset / info->PUsPerBlock) %
405 1.3 oster * info->BlocksPerTable; */
406 1.3 oster BlockID = TableOffset / info->PUsPerBlock;
407 1.3 oster BlockID %= info->BlocksPerTable;
408 1.3 oster
409 1.3 oster /* the parity block is in the position indicated by RepIndex */
410 1.3 oster RepIndex = (raidPtr->noRotate) ? info->PUsPerBlock : info->PUsPerBlock - TableID;
411 1.3 oster *col = info->LayoutTable[BlockID][RepIndex];
412 1.3 oster
413 1.3 oster if (remap) {
414 1.19 oster RF_ASSERT(raidPtr->Disks[*col].status == rf_ds_reconstructing || raidPtr->Disks[*col].status == rf_ds_dist_spared ||
415 1.19 oster (rf_copyback_in_progress && raidPtr->Disks[*col].status == rf_ds_optimal));
416 1.19 oster rf_remap_to_spare_space(layoutPtr, info, FullTableID, TableID, BlockID, (base_suid) ? 1 : 0, SpareRegion, col, &outSU);
417 1.3 oster } else {
418 1.3 oster
419 1.3 oster /* compute sector as before, except use RepIndex instead of
420 1.3 oster * BlockOffset */
421 1.3 oster outSU = base_suid;
422 1.3 oster outSU += FullTableID * fulltable_depth;
423 1.3 oster outSU += SpareSpace; /* skip rsvd spare space */
424 1.3 oster outSU += TableID * info->TableDepthInPUs * layoutPtr->SUsPerPU;
425 1.3 oster outSU += info->OffsetTable[BlockID][RepIndex] * layoutPtr->SUsPerPU;
426 1.3 oster }
427 1.3 oster
428 1.3 oster outSU += TableOffset / (info->BlocksPerTable * info->PUsPerBlock);
429 1.3 oster *diskSector = outSU * layoutPtr->sectorsPerStripeUnit + (raidSector % layoutPtr->sectorsPerStripeUnit);
430 1.3 oster
431 1.3 oster RF_ASSERT(*col != -1);
432 1.1 oster }
433 1.1 oster /* returns an array of ints identifying the disks that comprise the stripe containing the indicated address.
434 1.1 oster * the caller must _never_ attempt to modify this array.
435 1.1 oster */
436 1.17 perry void
437 1.15 oster rf_IdentifyStripeDeclustered(RF_Raid_t *raidPtr, RF_RaidAddr_t addr,
438 1.19 oster RF_RowCol_t **diskids)
439 1.3 oster {
440 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
441 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
442 1.3 oster RF_StripeCount_t sus_per_fulltable = info->SUsPerFullTable;
443 1.3 oster RF_StripeCount_t fulltable_depth = info->FullTableDepthInPUs * layoutPtr->SUsPerPU;
444 1.3 oster RF_StripeNum_t base_suid = 0;
445 1.3 oster RF_StripeNum_t SUID = rf_RaidAddressToStripeUnitID(layoutPtr, addr);
446 1.24 christos RF_StripeNum_t stripeID;
447 1.3 oster int tableOffset;
448 1.3 oster
449 1.3 oster rf_decluster_adjust_params(layoutPtr, &SUID, &sus_per_fulltable, &fulltable_depth, &base_suid);
450 1.3 oster stripeID = rf_StripeUnitIDToStripeID(layoutPtr, SUID); /* find stripe offset
451 1.3 oster * into array */
452 1.3 oster tableOffset = (stripeID % info->BlocksPerTable); /* find offset into
453 1.3 oster * block design table */
454 1.3 oster *diskids = info->LayoutTable[tableOffset];
455 1.1 oster }
456 1.1 oster /* This returns the default head-separation limit, which is measured
457 1.1 oster * in "required units for reconstruction". Each time a disk fetches
458 1.1 oster * a unit, it bumps a counter. The head-sep code prohibits any disk
459 1.3 oster * from getting more than headSepLimit counter values ahead of any
460 1.1 oster * other.
461 1.1 oster *
462 1.1 oster * We assume here that the number of floating recon buffers is already
463 1.1 oster * set. There are r stripes to be reconstructed in each table, and so
464 1.1 oster * if we have a total of B buffers, we can have at most B/r tables
465 1.1 oster * under recon at any one time. In each table, lambda units are required
466 1.1 oster * from each disk, so given B buffers, the head sep limit has to be
467 1.1 oster * (lambda*B)/r units. We subtract one to avoid weird boundary cases.
468 1.3 oster *
469 1.1 oster * for example, suppose were given 50 buffers, r=19, and lambda=4 as in
470 1.1 oster * the 20.5 design. There are 19 stripes/table to be reconstructed, so
471 1.1 oster * we can have 50/19 tables concurrently under reconstruction, which means
472 1.1 oster * we can allow the fastest disk to get 50/19 tables ahead of the slower
473 1.1 oster * disk. There are lambda "required units" for each disk, so the fastest
474 1.1 oster * disk can get 4*50/19 = 10 counter values ahead of the slowest.
475 1.1 oster *
476 1.1 oster * If numBufsToAccumulate is not 1, we need to limit the head sep further
477 1.1 oster * because multiple bufs will be required for each stripe under recon.
478 1.1 oster */
479 1.17 perry RF_HeadSepLimit_t
480 1.15 oster rf_GetDefaultHeadSepLimitDeclustered(RF_Raid_t *raidPtr)
481 1.1 oster {
482 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) raidPtr->Layout.layoutSpecificInfo;
483 1.1 oster
484 1.3 oster return (info->Lambda * raidPtr->numFloatingReconBufs / info->TableDepthInPUs / rf_numBufsToAccumulate);
485 1.1 oster }
486 1.1 oster /* returns the default number of recon buffers to use. The value
487 1.1 oster * is somewhat arbitrary...it's intended to be large enough to allow
488 1.1 oster * for a reasonably large head-sep limit, but small enough that you
489 1.1 oster * don't use up all your system memory with buffers.
490 1.1 oster */
491 1.17 perry int
492 1.21 christos rf_GetDefaultNumFloatingReconBuffersDeclustered(RF_Raid_t * raidPtr)
493 1.1 oster {
494 1.3 oster return (100 * rf_numBufsToAccumulate);
495 1.1 oster }
496 1.1 oster /* sectors in the last fulltable of the array need to be handled
497 1.1 oster * specially since this fulltable can be incomplete. this function
498 1.1 oster * changes the values of certain params to handle this.
499 1.1 oster *
500 1.1 oster * the idea here is that MapSector et. al. figure out which disk the
501 1.1 oster * addressed unit lives on by computing the modulos of the unit number
502 1.1 oster * with the number of units per fulltable, table, etc. In the last
503 1.1 oster * fulltable, there are fewer units per fulltable, so we need to adjust
504 1.1 oster * the number of user data units per fulltable to reflect this.
505 1.1 oster *
506 1.1 oster * so, we (1) convert the fulltable size and depth parameters to
507 1.1 oster * the size of the partial fulltable at the end, (2) compute the
508 1.1 oster * disk sector offset where this fulltable starts, and (3) convert
509 1.1 oster * the users stripe unit number from an offset into the array to
510 1.1 oster * an offset into the last fulltable.
511 1.1 oster */
512 1.17 perry void
513 1.15 oster rf_decluster_adjust_params(RF_RaidLayout_t *layoutPtr,
514 1.15 oster RF_StripeNum_t *SUID,
515 1.15 oster RF_StripeCount_t *sus_per_fulltable,
516 1.15 oster RF_StripeCount_t *fulltable_depth,
517 1.15 oster RF_StripeNum_t *base_suid)
518 1.1 oster {
519 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
520 1.1 oster
521 1.3 oster if (*SUID >= info->FullTableLimitSUID) {
522 1.3 oster /* new full table size is size of last full table on disk */
523 1.3 oster *sus_per_fulltable = info->ExtraTablesPerDisk * info->SUsPerTable;
524 1.3 oster
525 1.3 oster /* new full table depth is corresponding depth */
526 1.3 oster *fulltable_depth = info->ExtraTablesPerDisk * info->TableDepthInPUs * layoutPtr->SUsPerPU;
527 1.3 oster
528 1.3 oster /* set up the new base offset */
529 1.3 oster *base_suid = info->DiskOffsetOfLastFullTableInSUs;
530 1.3 oster
531 1.3 oster /* convert users array address to an offset into the last
532 1.3 oster * fulltable */
533 1.3 oster *SUID -= info->FullTableLimitSUID;
534 1.3 oster }
535 1.1 oster }
536 1.1 oster /*
537 1.1 oster * map a stripe ID to a parity stripe ID.
538 1.1 oster * See comment above RaidAddressToParityStripeID in layout.c.
539 1.1 oster */
540 1.17 perry void
541 1.15 oster rf_MapSIDToPSIDDeclustered(RF_RaidLayout_t *layoutPtr,
542 1.15 oster RF_StripeNum_t stripeID,
543 1.15 oster RF_StripeNum_t *psID,
544 1.15 oster RF_ReconUnitNum_t *which_ru)
545 1.3 oster {
546 1.3 oster RF_DeclusteredConfigInfo_t *info;
547 1.3 oster
548 1.3 oster info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
549 1.3 oster
550 1.3 oster *psID = (stripeID / (layoutPtr->SUsPerPU * info->BlocksPerTable))
551 1.3 oster * info->BlocksPerTable + (stripeID % info->BlocksPerTable);
552 1.3 oster *which_ru = (stripeID % (info->BlocksPerTable * layoutPtr->SUsPerPU))
553 1.3 oster / info->BlocksPerTable;
554 1.3 oster RF_ASSERT((*which_ru) < layoutPtr->SUsPerPU / layoutPtr->SUsPerRU);
555 1.1 oster }
556 1.1 oster /*
557 1.1 oster * Called from MapSector and MapParity to retarget an access at the spare unit.
558 1.1 oster * Modifies the "col" and "outSU" parameters only.
559 1.1 oster */
560 1.17 perry void
561 1.15 oster rf_remap_to_spare_space(RF_RaidLayout_t *layoutPtr,
562 1.15 oster RF_DeclusteredConfigInfo_t *info,
563 1.15 oster RF_StripeNum_t FullTableID,
564 1.15 oster RF_StripeNum_t TableID,
565 1.15 oster RF_SectorNum_t BlockID,
566 1.15 oster RF_StripeNum_t base_suid,
567 1.15 oster RF_StripeNum_t SpareRegion,
568 1.15 oster RF_RowCol_t *outCol,
569 1.15 oster RF_StripeNum_t *outSU)
570 1.3 oster {
571 1.3 oster RF_StripeNum_t ftID, spareTableStartSU, TableInSpareRegion, lastSROffset,
572 1.3 oster which_ft;
573 1.3 oster
574 1.3 oster /*
575 1.3 oster * note that FullTableID and hence SpareRegion may have gotten
576 1.3 oster * tweaked by rf_decluster_adjust_params. We detect this by
577 1.3 oster * noticing that base_suid is not 0.
578 1.3 oster */
579 1.3 oster if (base_suid == 0) {
580 1.3 oster ftID = FullTableID;
581 1.3 oster } else {
582 1.3 oster /*
583 1.3 oster * There may be > 1.0 full tables in the last (i.e. partial)
584 1.3 oster * spare region. find out which of these we're in.
585 1.3 oster */
586 1.3 oster lastSROffset = info->NumCompleteSRs * info->SpareRegionDepthInSUs;
587 1.3 oster which_ft = (info->DiskOffsetOfLastFullTableInSUs - lastSROffset) / (info->FullTableDepthInPUs * layoutPtr->SUsPerPU);
588 1.3 oster
589 1.3 oster /* compute the actual full table ID */
590 1.3 oster ftID = info->DiskOffsetOfLastFullTableInSUs / (info->FullTableDepthInPUs * layoutPtr->SUsPerPU) + which_ft;
591 1.3 oster SpareRegion = info->NumCompleteSRs;
592 1.3 oster }
593 1.3 oster TableInSpareRegion = (ftID * info->NumParityReps + TableID) % info->TablesPerSpareRegion;
594 1.3 oster
595 1.3 oster *outCol = info->SpareTable[TableInSpareRegion][BlockID].spareDisk;
596 1.3 oster RF_ASSERT(*outCol != -1);
597 1.3 oster
598 1.3 oster spareTableStartSU = (SpareRegion == info->NumCompleteSRs) ?
599 1.1 oster info->DiskOffsetOfLastFullTableInSUs + info->ExtraTablesPerDisk * info->TableDepthInPUs * layoutPtr->SUsPerPU :
600 1.3 oster (SpareRegion + 1) * info->SpareRegionDepthInSUs - info->SpareSpaceDepthPerRegionInSUs;
601 1.3 oster *outSU = spareTableStartSU + info->SpareTable[TableInSpareRegion][BlockID].spareBlockOffsetInSUs;
602 1.3 oster if (*outSU >= layoutPtr->stripeUnitsPerDisk) {
603 1.3 oster printf("rf_remap_to_spare_space: invalid remapped disk SU offset %ld\n", (long) *outSU);
604 1.3 oster }
605 1.1 oster }
606 1.1 oster
607 1.6 oster #endif /* (RF_INCLUDE_PARITY_DECLUSTERING > 0) || (RF_INCLUDE_PARITY_DECLUSTERING_PQ > 0) */
608 1.6 oster
609 1.14 oster #if (RF_INCLUDE_PARITY_DECLUSTERING_DS > 0)
610 1.17 perry int
611 1.21 christos rf_InstallSpareTable(RF_Raid_t *raidPtr, RF_RowCol_t frow,
612 1.20 christos RF_RowCol_t fcol)
613 1.3 oster {
614 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) raidPtr->Layout.layoutSpecificInfo;
615 1.3 oster RF_SparetWait_t *req;
616 1.3 oster int retcode;
617 1.3 oster
618 1.3 oster RF_Malloc(req, sizeof(*req), (RF_SparetWait_t *));
619 1.3 oster req->C = raidPtr->numCol;
620 1.3 oster req->G = raidPtr->Layout.numDataCol + raidPtr->Layout.numParityCol;
621 1.3 oster req->fcol = fcol;
622 1.3 oster req->SUsPerPU = raidPtr->Layout.SUsPerPU;
623 1.3 oster req->TablesPerSpareRegion = info->TablesPerSpareRegion;
624 1.3 oster req->BlocksPerTable = info->BlocksPerTable;
625 1.3 oster req->TableDepthInPUs = info->TableDepthInPUs;
626 1.3 oster req->SpareSpaceDepthPerRegionInSUs = info->SpareSpaceDepthPerRegionInSUs;
627 1.3 oster
628 1.3 oster retcode = rf_GetSpareTableFromDaemon(req);
629 1.3 oster RF_ASSERT(!retcode); /* XXX -- fix this to recover gracefully --
630 1.3 oster * XXX */
631 1.3 oster return (retcode);
632 1.3 oster }
633 1.14 oster #endif
634 1.10 oster #if (RF_INCLUDE_PARITY_DECLUSTERING > 0) || (RF_INCLUDE_PARITY_DECLUSTERING_PQ > 0)
635 1.1 oster /*
636 1.1 oster * Invoked via ioctl to install a spare table in the kernel.
637 1.1 oster */
638 1.17 perry int
639 1.15 oster rf_SetSpareTable(RF_Raid_t *raidPtr, void *data)
640 1.3 oster {
641 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) raidPtr->Layout.layoutSpecificInfo;
642 1.3 oster RF_SpareTableEntry_t **ptrs;
643 1.3 oster int i, retcode;
644 1.3 oster
645 1.3 oster /* what we need to copyin is a 2-d array, so first copyin the user
646 1.3 oster * pointers to the rows in the table */
647 1.3 oster RF_Malloc(ptrs, info->TablesPerSpareRegion * sizeof(RF_SpareTableEntry_t *), (RF_SpareTableEntry_t **));
648 1.22 christos retcode = copyin((void *) data, (void *) ptrs, info->TablesPerSpareRegion * sizeof(RF_SpareTableEntry_t *));
649 1.3 oster
650 1.3 oster if (retcode)
651 1.3 oster return (retcode);
652 1.3 oster
653 1.3 oster /* now allocate kernel space for the row pointers */
654 1.3 oster RF_Malloc(info->SpareTable, info->TablesPerSpareRegion * sizeof(RF_SpareTableEntry_t *), (RF_SpareTableEntry_t **));
655 1.3 oster
656 1.3 oster /* now allocate kernel space for each row in the table, and copy it in
657 1.3 oster * from user space */
658 1.3 oster for (i = 0; i < info->TablesPerSpareRegion; i++) {
659 1.3 oster RF_Malloc(info->SpareTable[i], info->BlocksPerTable * sizeof(RF_SpareTableEntry_t), (RF_SpareTableEntry_t *));
660 1.3 oster retcode = copyin(ptrs[i], info->SpareTable[i], info->BlocksPerTable * sizeof(RF_SpareTableEntry_t));
661 1.3 oster if (retcode) {
662 1.3 oster info->SpareTable = NULL; /* blow off the memory
663 1.3 oster * we've allocated */
664 1.3 oster return (retcode);
665 1.3 oster }
666 1.3 oster }
667 1.1 oster
668 1.3 oster /* free up the temporary array we used */
669 1.3 oster RF_Free(ptrs, info->TablesPerSpareRegion * sizeof(RF_SpareTableEntry_t *));
670 1.1 oster
671 1.3 oster return (0);
672 1.1 oster }
673 1.1 oster
674 1.17 perry RF_ReconUnitCount_t
675 1.15 oster rf_GetNumSpareRUsDeclustered(RF_Raid_t *raidPtr)
676 1.1 oster {
677 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
678 1.1 oster
679 1.3 oster return (((RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo)->TotSparePUsPerDisk);
680 1.1 oster }
681 1.10 oster #endif /* (RF_INCLUDE_PARITY_DECLUSTERING > 0) || (RF_INCLUDE_PARITY_DECLUSTERING_PQ > 0) */
682 1.1 oster
683 1.17 perry void
684 1.15 oster rf_FreeSpareTable(RF_Raid_t *raidPtr)
685 1.1 oster {
686 1.3 oster long i;
687 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
688 1.3 oster RF_DeclusteredConfigInfo_t *info = (RF_DeclusteredConfigInfo_t *) layoutPtr->layoutSpecificInfo;
689 1.3 oster RF_SpareTableEntry_t **table = info->SpareTable;
690 1.1 oster
691 1.3 oster for (i = 0; i < info->TablesPerSpareRegion; i++) {
692 1.3 oster RF_Free(table[i], info->BlocksPerTable * sizeof(RF_SpareTableEntry_t));
693 1.3 oster }
694 1.3 oster RF_Free(table, info->TablesPerSpareRegion * sizeof(RF_SpareTableEntry_t *));
695 1.23 plunky info->SpareTable = NULL;
696 1.1 oster }
697