rf_map.c revision 1.24 1 1.24 oster /* $NetBSD: rf_map.c,v 1.24 2003/12/29 03:33:48 oster 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 * map.c -- main code for mapping RAID addresses to physical disk addresses
32 1.1 oster *
33 1.1 oster **************************************************************************/
34 1.9 lukem
35 1.9 lukem #include <sys/cdefs.h>
36 1.24 oster __KERNEL_RCSID(0, "$NetBSD: rf_map.c,v 1.24 2003/12/29 03:33:48 oster Exp $");
37 1.1 oster
38 1.7 oster #include <dev/raidframe/raidframevar.h>
39 1.7 oster
40 1.1 oster #include "rf_threadstuff.h"
41 1.1 oster #include "rf_raid.h"
42 1.1 oster #include "rf_general.h"
43 1.1 oster #include "rf_map.h"
44 1.1 oster #include "rf_shutdown.h"
45 1.1 oster
46 1.3 oster static void rf_FreePDAList(RF_PhysDiskAddr_t * start, RF_PhysDiskAddr_t * end, int count);
47 1.3 oster static void
48 1.3 oster rf_FreeASMList(RF_AccessStripeMap_t * start, RF_AccessStripeMap_t * end,
49 1.3 oster int count);
50 1.1 oster
51 1.21 oster /***************************************************************************
52 1.1 oster *
53 1.21 oster * MapAccess -- main 1st order mapping routine. Maps an access in the
54 1.21 oster * RAID address space to the corresponding set of physical disk
55 1.21 oster * addresses. The result is returned as a list of AccessStripeMap
56 1.21 oster * structures, one per stripe accessed. Each ASM structure contains a
57 1.21 oster * pointer to a list of PhysDiskAddr structures, which describe the
58 1.21 oster * physical locations touched by the user access. Note that this routine
59 1.21 oster * returns only static mapping information, i.e. the list of physical
60 1.21 oster * addresses returned does not necessarily identify the set of physical
61 1.21 oster * locations that will actually be read or written. The routine also
62 1.21 oster * maps the parity. The physical disk location returned always indicates
63 1.21 oster * the entire parity unit, even when only a subset of it is being
64 1.21 oster * accessed. This is because an access that is not stripe unit aligned
65 1.21 oster * but that spans a stripe unit boundary may require access two distinct
66 1.21 oster * portions of the parity unit, and we can't yet tell which portion(s)
67 1.21 oster * we'll actually need. We leave it up to the algorithm selection code
68 1.21 oster * to decide what subset of the parity unit to access. Note that
69 1.21 oster * addresses in the RAID address space must always be maintained as
70 1.1 oster * longs, instead of ints.
71 1.21 oster *
72 1.1 oster * This routine returns NULL if numBlocks is 0
73 1.1 oster *
74 1.21 oster ***************************************************************************/
75 1.1 oster
76 1.3 oster RF_AccessStripeMapHeader_t *
77 1.3 oster rf_MapAccess(raidPtr, raidAddress, numBlocks, buffer, remap)
78 1.3 oster RF_Raid_t *raidPtr;
79 1.3 oster RF_RaidAddr_t raidAddress; /* starting address in RAID address
80 1.3 oster * space */
81 1.3 oster RF_SectorCount_t numBlocks; /* number of blocks in RAID address
82 1.3 oster * space to access */
83 1.3 oster caddr_t buffer; /* buffer to supply/receive data */
84 1.3 oster int remap; /* 1 => remap addresses to spare space */
85 1.3 oster {
86 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
87 1.3 oster RF_AccessStripeMapHeader_t *asm_hdr = NULL;
88 1.3 oster RF_AccessStripeMap_t *asm_list = NULL, *asm_p = NULL;
89 1.3 oster int faultsTolerated = layoutPtr->map->faultsTolerated;
90 1.3 oster RF_RaidAddr_t startAddress = raidAddress; /* we'll change
91 1.3 oster * raidAddress along the
92 1.3 oster * way */
93 1.3 oster RF_RaidAddr_t endAddress = raidAddress + numBlocks;
94 1.23 oster RF_RaidDisk_t *disks = raidPtr->Disks;
95 1.3 oster
96 1.3 oster RF_PhysDiskAddr_t *pda_p, *pda_q;
97 1.3 oster RF_StripeCount_t numStripes = 0;
98 1.3 oster RF_RaidAddr_t stripeRealEndAddress, stripeEndAddress, nextStripeUnitAddress;
99 1.3 oster RF_RaidAddr_t startAddrWithinStripe, lastRaidAddr;
100 1.3 oster RF_StripeCount_t totStripes;
101 1.3 oster RF_StripeNum_t stripeID, lastSID, SUID, lastSUID;
102 1.3 oster RF_AccessStripeMap_t *asmList, *t_asm;
103 1.3 oster RF_PhysDiskAddr_t *pdaList, *t_pda;
104 1.3 oster
105 1.3 oster /* allocate all the ASMs and PDAs up front */
106 1.3 oster lastRaidAddr = raidAddress + numBlocks - 1;
107 1.3 oster stripeID = rf_RaidAddressToStripeID(layoutPtr, raidAddress);
108 1.3 oster lastSID = rf_RaidAddressToStripeID(layoutPtr, lastRaidAddr);
109 1.3 oster totStripes = lastSID - stripeID + 1;
110 1.3 oster SUID = rf_RaidAddressToStripeUnitID(layoutPtr, raidAddress);
111 1.3 oster lastSUID = rf_RaidAddressToStripeUnitID(layoutPtr, lastRaidAddr);
112 1.3 oster
113 1.3 oster asmList = rf_AllocASMList(totStripes);
114 1.3 oster pdaList = rf_AllocPDAList(lastSUID - SUID + 1 + faultsTolerated * totStripes); /* may also need pda(s)
115 1.3 oster * per stripe for parity */
116 1.3 oster
117 1.3 oster if (raidAddress + numBlocks > raidPtr->totalSectors) {
118 1.3 oster RF_ERRORMSG1("Unable to map access because offset (%d) was invalid\n",
119 1.3 oster (int) raidAddress);
120 1.3 oster return (NULL);
121 1.3 oster }
122 1.15 oster #if RF_DEBUG_MAP
123 1.3 oster if (rf_mapDebug)
124 1.3 oster rf_PrintRaidAddressInfo(raidPtr, raidAddress, numBlocks);
125 1.15 oster #endif
126 1.3 oster for (; raidAddress < endAddress;) {
127 1.3 oster /* make the next stripe structure */
128 1.3 oster RF_ASSERT(asmList);
129 1.3 oster t_asm = asmList;
130 1.3 oster asmList = asmList->next;
131 1.6 thorpej memset((char *) t_asm, 0, sizeof(RF_AccessStripeMap_t));
132 1.3 oster if (!asm_p)
133 1.3 oster asm_list = asm_p = t_asm;
134 1.3 oster else {
135 1.3 oster asm_p->next = t_asm;
136 1.3 oster asm_p = asm_p->next;
137 1.3 oster }
138 1.3 oster numStripes++;
139 1.3 oster
140 1.3 oster /* map SUs from current location to the end of the stripe */
141 1.3 oster asm_p->stripeID = /* rf_RaidAddressToStripeID(layoutPtr,
142 1.3 oster raidAddress) */ stripeID++;
143 1.3 oster stripeRealEndAddress = rf_RaidAddressOfNextStripeBoundary(layoutPtr, raidAddress);
144 1.3 oster stripeEndAddress = RF_MIN(endAddress, stripeRealEndAddress);
145 1.3 oster asm_p->raidAddress = raidAddress;
146 1.3 oster asm_p->endRaidAddress = stripeEndAddress;
147 1.3 oster
148 1.3 oster /* map each stripe unit in the stripe */
149 1.3 oster pda_p = NULL;
150 1.3 oster startAddrWithinStripe = raidAddress; /* Raid addr of start of
151 1.3 oster * portion of access
152 1.3 oster * that is within this
153 1.3 oster * stripe */
154 1.3 oster for (; raidAddress < stripeEndAddress;) {
155 1.3 oster RF_ASSERT(pdaList);
156 1.3 oster t_pda = pdaList;
157 1.3 oster pdaList = pdaList->next;
158 1.6 thorpej memset((char *) t_pda, 0, sizeof(RF_PhysDiskAddr_t));
159 1.3 oster if (!pda_p)
160 1.3 oster asm_p->physInfo = pda_p = t_pda;
161 1.3 oster else {
162 1.3 oster pda_p->next = t_pda;
163 1.3 oster pda_p = pda_p->next;
164 1.3 oster }
165 1.3 oster
166 1.3 oster pda_p->type = RF_PDA_TYPE_DATA;
167 1.23 oster (layoutPtr->map->MapSector) (raidPtr, raidAddress, &(pda_p->col), &(pda_p->startSector), remap);
168 1.3 oster
169 1.3 oster /* mark any failures we find. failedPDA is don't-care
170 1.3 oster * if there is more than one failure */
171 1.3 oster pda_p->raidAddress = raidAddress; /* the RAID address
172 1.3 oster * corresponding to this
173 1.3 oster * physical disk address */
174 1.3 oster nextStripeUnitAddress = rf_RaidAddressOfNextStripeUnitBoundary(layoutPtr, raidAddress);
175 1.3 oster pda_p->numSector = RF_MIN(endAddress, nextStripeUnitAddress) - raidAddress;
176 1.3 oster RF_ASSERT(pda_p->numSector != 0);
177 1.3 oster rf_ASMCheckStatus(raidPtr, pda_p, asm_p, disks, 0);
178 1.3 oster pda_p->bufPtr = buffer + rf_RaidAddressToByte(raidPtr, (raidAddress - startAddress));
179 1.3 oster asm_p->totalSectorsAccessed += pda_p->numSector;
180 1.3 oster asm_p->numStripeUnitsAccessed++;
181 1.3 oster
182 1.3 oster raidAddress = RF_MIN(endAddress, nextStripeUnitAddress);
183 1.3 oster }
184 1.3 oster
185 1.3 oster /* Map the parity. At this stage, the startSector and
186 1.3 oster * numSector fields for the parity unit are always set to
187 1.3 oster * indicate the entire parity unit. We may modify this after
188 1.3 oster * mapping the data portion. */
189 1.3 oster switch (faultsTolerated) {
190 1.3 oster case 0:
191 1.3 oster break;
192 1.3 oster case 1: /* single fault tolerant */
193 1.3 oster RF_ASSERT(pdaList);
194 1.3 oster t_pda = pdaList;
195 1.3 oster pdaList = pdaList->next;
196 1.6 thorpej memset((char *) t_pda, 0, sizeof(RF_PhysDiskAddr_t));
197 1.3 oster pda_p = asm_p->parityInfo = t_pda;
198 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
199 1.3 oster (layoutPtr->map->MapParity) (raidPtr, rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe),
200 1.23 oster &(pda_p->col), &(pda_p->startSector), remap);
201 1.3 oster pda_p->numSector = layoutPtr->sectorsPerStripeUnit;
202 1.3 oster /* raidAddr may be needed to find unit to redirect to */
203 1.3 oster pda_p->raidAddress = rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe);
204 1.3 oster rf_ASMCheckStatus(raidPtr, pda_p, asm_p, disks, 1);
205 1.3 oster rf_ASMParityAdjust(asm_p->parityInfo, startAddrWithinStripe, endAddress, layoutPtr, asm_p);
206 1.3 oster
207 1.3 oster break;
208 1.3 oster case 2: /* two fault tolerant */
209 1.3 oster RF_ASSERT(pdaList && pdaList->next);
210 1.3 oster t_pda = pdaList;
211 1.3 oster pdaList = pdaList->next;
212 1.6 thorpej memset((char *) t_pda, 0, sizeof(RF_PhysDiskAddr_t));
213 1.3 oster pda_p = asm_p->parityInfo = t_pda;
214 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
215 1.3 oster t_pda = pdaList;
216 1.3 oster pdaList = pdaList->next;
217 1.6 thorpej memset((char *) t_pda, 0, sizeof(RF_PhysDiskAddr_t));
218 1.3 oster pda_q = asm_p->qInfo = t_pda;
219 1.3 oster pda_q->type = RF_PDA_TYPE_Q;
220 1.3 oster (layoutPtr->map->MapParity) (raidPtr, rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe),
221 1.23 oster &(pda_p->col), &(pda_p->startSector), remap);
222 1.3 oster (layoutPtr->map->MapQ) (raidPtr, rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe),
223 1.23 oster &(pda_q->col), &(pda_q->startSector), remap);
224 1.3 oster pda_q->numSector = pda_p->numSector = layoutPtr->sectorsPerStripeUnit;
225 1.3 oster /* raidAddr may be needed to find unit to redirect to */
226 1.3 oster pda_p->raidAddress = rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe);
227 1.3 oster pda_q->raidAddress = rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, startAddrWithinStripe);
228 1.3 oster /* failure mode stuff */
229 1.3 oster rf_ASMCheckStatus(raidPtr, pda_p, asm_p, disks, 1);
230 1.3 oster rf_ASMCheckStatus(raidPtr, pda_q, asm_p, disks, 1);
231 1.3 oster rf_ASMParityAdjust(asm_p->parityInfo, startAddrWithinStripe, endAddress, layoutPtr, asm_p);
232 1.3 oster rf_ASMParityAdjust(asm_p->qInfo, startAddrWithinStripe, endAddress, layoutPtr, asm_p);
233 1.3 oster break;
234 1.3 oster }
235 1.3 oster }
236 1.3 oster RF_ASSERT(asmList == NULL && pdaList == NULL);
237 1.3 oster /* make the header structure */
238 1.3 oster asm_hdr = rf_AllocAccessStripeMapHeader();
239 1.3 oster RF_ASSERT(numStripes == totStripes);
240 1.3 oster asm_hdr->numStripes = numStripes;
241 1.3 oster asm_hdr->stripeMap = asm_list;
242 1.3 oster
243 1.15 oster #if RF_DEBUG_MAP
244 1.3 oster if (rf_mapDebug)
245 1.3 oster rf_PrintAccessStripeMap(asm_hdr);
246 1.15 oster #endif
247 1.3 oster return (asm_hdr);
248 1.1 oster }
249 1.21 oster
250 1.21 oster /***************************************************************************
251 1.21 oster * This routine walks through an ASM list and marks the PDAs that have
252 1.21 oster * failed. It's called only when a disk failure causes an in-flight
253 1.21 oster * DAG to fail. The parity may consist of two components, but we want
254 1.21 oster * to use only one failedPDA pointer. Thus we set failedPDA to point
255 1.21 oster * to the first parity component, and rely on the rest of the code to
256 1.21 oster * do the right thing with this.
257 1.21 oster ***************************************************************************/
258 1.1 oster
259 1.3 oster void
260 1.3 oster rf_MarkFailuresInASMList(raidPtr, asm_h)
261 1.3 oster RF_Raid_t *raidPtr;
262 1.3 oster RF_AccessStripeMapHeader_t *asm_h;
263 1.3 oster {
264 1.23 oster RF_RaidDisk_t *disks = raidPtr->Disks;
265 1.3 oster RF_AccessStripeMap_t *asmap;
266 1.3 oster RF_PhysDiskAddr_t *pda;
267 1.3 oster
268 1.3 oster for (asmap = asm_h->stripeMap; asmap; asmap = asmap->next) {
269 1.3 oster asmap->numDataFailed = asmap->numParityFailed = asmap->numQFailed = 0;
270 1.3 oster asmap->numFailedPDAs = 0;
271 1.6 thorpej memset((char *) asmap->failedPDAs, 0,
272 1.3 oster RF_MAX_FAILED_PDA * sizeof(RF_PhysDiskAddr_t *));
273 1.3 oster for (pda = asmap->physInfo; pda; pda = pda->next) {
274 1.23 oster if (RF_DEAD_DISK(disks[pda->col].status)) {
275 1.3 oster asmap->numDataFailed++;
276 1.3 oster asmap->failedPDAs[asmap->numFailedPDAs] = pda;
277 1.3 oster asmap->numFailedPDAs++;
278 1.3 oster }
279 1.3 oster }
280 1.3 oster pda = asmap->parityInfo;
281 1.23 oster if (pda && RF_DEAD_DISK(disks[pda->col].status)) {
282 1.3 oster asmap->numParityFailed++;
283 1.3 oster asmap->failedPDAs[asmap->numFailedPDAs] = pda;
284 1.3 oster asmap->numFailedPDAs++;
285 1.3 oster }
286 1.3 oster pda = asmap->qInfo;
287 1.23 oster if (pda && RF_DEAD_DISK(disks[pda->col].status)) {
288 1.3 oster asmap->numQFailed++;
289 1.3 oster asmap->failedPDAs[asmap->numFailedPDAs] = pda;
290 1.3 oster asmap->numFailedPDAs++;
291 1.3 oster }
292 1.3 oster }
293 1.1 oster }
294 1.3 oster
295 1.21 oster /***************************************************************************
296 1.1 oster *
297 1.21 oster * routines to allocate and free list elements. All allocation
298 1.21 oster * routines zero the structure before returning it.
299 1.1 oster *
300 1.21 oster * FreePhysDiskAddr is static. It should never be called directly,
301 1.21 oster * because FreeAccessStripeMap takes care of freeing the PhysDiskAddr
302 1.21 oster * list.
303 1.1 oster *
304 1.21 oster ***************************************************************************/
305 1.1 oster
306 1.24 oster static struct pool rf_asmhdr_pool;
307 1.1 oster #define RF_MAX_FREE_ASMHDR 128
308 1.1 oster #define RF_ASMHDR_INC 16
309 1.1 oster #define RF_ASMHDR_INITIAL 32
310 1.1 oster
311 1.24 oster static struct pool rf_asm_pool;
312 1.1 oster #define RF_MAX_FREE_ASM 192
313 1.1 oster #define RF_ASM_INC 24
314 1.1 oster #define RF_ASM_INITIAL 64
315 1.1 oster
316 1.24 oster static struct pool rf_pda_pool; /* may need to be visible for
317 1.24 oster rf_dagdegrd.c and rf_dagdegwr.c,
318 1.24 oster if they can be convinced to free
319 1.24 oster the space easily */
320 1.1 oster #define RF_MAX_FREE_PDA 192
321 1.1 oster #define RF_PDA_INC 24
322 1.1 oster #define RF_PDA_INITIAL 64
323 1.1 oster
324 1.1 oster /* called at shutdown time. So far, all that is necessary is to release all the free lists */
325 1.1 oster static void rf_ShutdownMapModule(void *);
326 1.3 oster static void
327 1.3 oster rf_ShutdownMapModule(ignored)
328 1.3 oster void *ignored;
329 1.1 oster {
330 1.24 oster pool_destroy(&rf_asmhdr_pool);
331 1.24 oster pool_destroy(&rf_asm_pool);
332 1.24 oster pool_destroy(&rf_pda_pool);
333 1.1 oster }
334 1.1 oster
335 1.3 oster int
336 1.3 oster rf_ConfigureMapModule(listp)
337 1.3 oster RF_ShutdownList_t **listp;
338 1.1 oster {
339 1.3 oster int rc;
340 1.1 oster
341 1.24 oster pool_init(&rf_asmhdr_pool, sizeof(RF_AccessStripeMapHeader_t),
342 1.24 oster 0, 0, 0, "rf_asmhdr_pl", NULL);
343 1.24 oster pool_sethiwat(&rf_asmhdr_pool, RF_MAX_FREE_ASMHDR);
344 1.24 oster pool_prime(&rf_asmhdr_pool, RF_ASMHDR_INITIAL);
345 1.24 oster
346 1.24 oster pool_init(&rf_asm_pool, sizeof(RF_AccessStripeMap_t),
347 1.24 oster 0, 0, 0, "rf_asm_pl", NULL);
348 1.24 oster pool_sethiwat(&rf_asm_pool, RF_MAX_FREE_ASM);
349 1.24 oster pool_prime(&rf_asm_pool, RF_ASM_INITIAL);
350 1.24 oster
351 1.24 oster pool_init(&rf_pda_pool, sizeof(RF_PhysDiskAddr_t),
352 1.24 oster 0, 0, 0, "rf_pda_pl", NULL);
353 1.24 oster pool_sethiwat(&rf_pda_pool, RF_MAX_FREE_PDA);
354 1.24 oster pool_prime(&rf_pda_pool, RF_PDA_INITIAL);
355 1.24 oster
356 1.1 oster rc = rf_ShutdownCreate(listp, rf_ShutdownMapModule, NULL);
357 1.1 oster if (rc) {
358 1.14 oster rf_print_unable_to_add_shutdown(__FILE__, __LINE__, rc);
359 1.1 oster rf_ShutdownMapModule(NULL);
360 1.3 oster return (rc);
361 1.1 oster }
362 1.3 oster return (0);
363 1.1 oster }
364 1.1 oster
365 1.3 oster RF_AccessStripeMapHeader_t *
366 1.3 oster rf_AllocAccessStripeMapHeader()
367 1.1 oster {
368 1.1 oster RF_AccessStripeMapHeader_t *p;
369 1.1 oster
370 1.24 oster p = pool_get(&rf_asmhdr_pool, PR_WAITOK);
371 1.6 thorpej memset((char *) p, 0, sizeof(RF_AccessStripeMapHeader_t));
372 1.1 oster
373 1.3 oster return (p);
374 1.1 oster }
375 1.1 oster
376 1.3 oster void
377 1.3 oster rf_FreeAccessStripeMapHeader(p)
378 1.3 oster RF_AccessStripeMapHeader_t *p;
379 1.1 oster {
380 1.24 oster pool_put(&rf_asmhdr_pool, p);
381 1.1 oster }
382 1.1 oster
383 1.3 oster RF_PhysDiskAddr_t *
384 1.3 oster rf_AllocPhysDiskAddr()
385 1.1 oster {
386 1.1 oster RF_PhysDiskAddr_t *p;
387 1.1 oster
388 1.24 oster p = pool_get(&rf_pda_pool, PR_WAITOK);
389 1.6 thorpej memset((char *) p, 0, sizeof(RF_PhysDiskAddr_t));
390 1.1 oster
391 1.3 oster return (p);
392 1.1 oster }
393 1.1 oster /* allocates a list of PDAs, locking the free list only once
394 1.1 oster * when we have to call calloc, we do it one component at a time to simplify
395 1.1 oster * the process of freeing the list at program shutdown. This should not be
396 1.1 oster * much of a performance hit, because it should be very infrequently executed.
397 1.1 oster */
398 1.3 oster RF_PhysDiskAddr_t *
399 1.3 oster rf_AllocPDAList(count)
400 1.3 oster int count;
401 1.1 oster {
402 1.24 oster RF_PhysDiskAddr_t *p, *prev;
403 1.24 oster int i;
404 1.24 oster
405 1.24 oster p = NULL;
406 1.24 oster prev = NULL;
407 1.24 oster for (i = 0; i < count; i++) {
408 1.24 oster p = pool_get(&rf_pda_pool, PR_WAITOK);
409 1.24 oster p->next = prev;
410 1.24 oster prev = p;
411 1.24 oster }
412 1.1 oster
413 1.3 oster return (p);
414 1.1 oster }
415 1.1 oster
416 1.18 oster #if RF_INCLUDE_PARITYLOGGING > 0
417 1.3 oster void
418 1.3 oster rf_FreePhysDiskAddr(p)
419 1.3 oster RF_PhysDiskAddr_t *p;
420 1.1 oster {
421 1.24 oster pool_put(&rf_pda_pool, p);
422 1.1 oster }
423 1.18 oster #endif
424 1.1 oster
425 1.3 oster static void
426 1.3 oster rf_FreePDAList(l_start, l_end, count)
427 1.3 oster RF_PhysDiskAddr_t *l_start, *l_end; /* pointers to start and end
428 1.3 oster * of list */
429 1.3 oster int count; /* number of elements in list */
430 1.1 oster {
431 1.24 oster RF_PhysDiskAddr_t *p, *tmp;
432 1.24 oster
433 1.24 oster p=l_start;
434 1.24 oster while (p) {
435 1.24 oster tmp = p->next;
436 1.24 oster pool_put(&rf_pda_pool, p);
437 1.24 oster p = tmp;
438 1.24 oster }
439 1.1 oster }
440 1.1 oster
441 1.1 oster /* this is essentially identical to AllocPDAList. I should combine the two.
442 1.1 oster * when we have to call calloc, we do it one component at a time to simplify
443 1.1 oster * the process of freeing the list at program shutdown. This should not be
444 1.1 oster * much of a performance hit, because it should be very infrequently executed.
445 1.1 oster */
446 1.3 oster RF_AccessStripeMap_t *
447 1.3 oster rf_AllocASMList(count)
448 1.3 oster int count;
449 1.1 oster {
450 1.24 oster RF_AccessStripeMap_t *p, *prev;
451 1.24 oster int i;
452 1.1 oster
453 1.24 oster p = NULL;
454 1.24 oster prev = NULL;
455 1.24 oster for (i = 0; i < count; i++) {
456 1.24 oster p = pool_get(&rf_asm_pool, PR_WAITOK);
457 1.24 oster p->next = prev;
458 1.24 oster prev = p;
459 1.24 oster }
460 1.3 oster return (p);
461 1.1 oster }
462 1.1 oster
463 1.3 oster static void
464 1.3 oster rf_FreeASMList(l_start, l_end, count)
465 1.3 oster RF_AccessStripeMap_t *l_start, *l_end;
466 1.3 oster int count;
467 1.3 oster {
468 1.24 oster RF_AccessStripeMap_t *p, *tmp;
469 1.24 oster
470 1.24 oster p=l_start;
471 1.24 oster while (p) {
472 1.24 oster tmp = p->next;
473 1.24 oster pool_put(&rf_asm_pool, p);
474 1.24 oster p = tmp;
475 1.24 oster }
476 1.3 oster }
477 1.3 oster
478 1.3 oster void
479 1.3 oster rf_FreeAccessStripeMap(hdr)
480 1.3 oster RF_AccessStripeMapHeader_t *hdr;
481 1.3 oster {
482 1.3 oster RF_AccessStripeMap_t *p, *pt = NULL;
483 1.3 oster RF_PhysDiskAddr_t *pdp, *trailer, *pdaList = NULL, *pdaEnd = NULL;
484 1.3 oster int count = 0, t, asm_count = 0;
485 1.3 oster
486 1.3 oster for (p = hdr->stripeMap; p; p = p->next) {
487 1.3 oster
488 1.3 oster /* link the 3 pda lists into the accumulating pda list */
489 1.3 oster
490 1.3 oster if (!pdaList)
491 1.3 oster pdaList = p->qInfo;
492 1.3 oster else
493 1.3 oster pdaEnd->next = p->qInfo;
494 1.3 oster for (trailer = NULL, pdp = p->qInfo; pdp;) {
495 1.3 oster trailer = pdp;
496 1.3 oster pdp = pdp->next;
497 1.3 oster count++;
498 1.3 oster }
499 1.3 oster if (trailer)
500 1.3 oster pdaEnd = trailer;
501 1.3 oster
502 1.3 oster if (!pdaList)
503 1.3 oster pdaList = p->parityInfo;
504 1.3 oster else
505 1.3 oster pdaEnd->next = p->parityInfo;
506 1.3 oster for (trailer = NULL, pdp = p->parityInfo; pdp;) {
507 1.3 oster trailer = pdp;
508 1.3 oster pdp = pdp->next;
509 1.3 oster count++;
510 1.3 oster }
511 1.3 oster if (trailer)
512 1.3 oster pdaEnd = trailer;
513 1.3 oster
514 1.3 oster if (!pdaList)
515 1.3 oster pdaList = p->physInfo;
516 1.3 oster else
517 1.3 oster pdaEnd->next = p->physInfo;
518 1.3 oster for (trailer = NULL, pdp = p->physInfo; pdp;) {
519 1.3 oster trailer = pdp;
520 1.3 oster pdp = pdp->next;
521 1.3 oster count++;
522 1.3 oster }
523 1.3 oster if (trailer)
524 1.3 oster pdaEnd = trailer;
525 1.3 oster
526 1.3 oster pt = p;
527 1.3 oster asm_count++;
528 1.3 oster }
529 1.3 oster
530 1.3 oster /* debug only */
531 1.3 oster for (t = 0, pdp = pdaList; pdp; pdp = pdp->next)
532 1.3 oster t++;
533 1.3 oster RF_ASSERT(t == count);
534 1.3 oster
535 1.3 oster if (pdaList)
536 1.3 oster rf_FreePDAList(pdaList, pdaEnd, count);
537 1.3 oster rf_FreeASMList(hdr->stripeMap, pt, asm_count);
538 1.3 oster rf_FreeAccessStripeMapHeader(hdr);
539 1.1 oster }
540 1.21 oster /* We can't use the large write optimization if there are any failures
541 1.21 oster * in the stripe. In the declustered layout, there is no way to
542 1.21 oster * immediately determine what disks constitute a stripe, so we
543 1.21 oster * actually have to hunt through the stripe looking for failures. The
544 1.21 oster * reason we map the parity instead of just using asm->parityInfo->col
545 1.21 oster * is because the latter may have been already redirected to a spare
546 1.21 oster * drive, which would mess up the computation of the stripe offset.
547 1.1 oster *
548 1.21 oster * ASSUMES AT MOST ONE FAILURE IN THE STRIPE. */
549 1.3 oster int
550 1.3 oster rf_CheckStripeForFailures(raidPtr, asmap)
551 1.3 oster RF_Raid_t *raidPtr;
552 1.3 oster RF_AccessStripeMap_t *asmap;
553 1.3 oster {
554 1.23 oster RF_RowCol_t tcol, pcol, *diskids, i;
555 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
556 1.3 oster RF_StripeCount_t stripeOffset;
557 1.3 oster int numFailures;
558 1.3 oster RF_RaidAddr_t sosAddr;
559 1.3 oster RF_SectorNum_t diskOffset, poffset;
560 1.3 oster
561 1.3 oster /* quick out in the fault-free case. */
562 1.3 oster RF_LOCK_MUTEX(raidPtr->mutex);
563 1.3 oster numFailures = raidPtr->numFailures;
564 1.3 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
565 1.3 oster if (numFailures == 0)
566 1.3 oster return (0);
567 1.3 oster
568 1.3 oster sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, asmap->raidAddress);
569 1.23 oster (layoutPtr->map->IdentifyStripe) (raidPtr, asmap->raidAddress, &diskids);
570 1.23 oster (layoutPtr->map->MapParity) (raidPtr, asmap->raidAddress, &pcol, &poffset, 0); /* get pcol */
571 1.3 oster
572 1.3 oster /* this need not be true if we've redirected the access to a spare in
573 1.3 oster * another row RF_ASSERT(row == testrow); */
574 1.3 oster stripeOffset = 0;
575 1.3 oster for (i = 0; i < layoutPtr->numDataCol + layoutPtr->numParityCol; i++) {
576 1.3 oster if (diskids[i] != pcol) {
577 1.23 oster if (RF_DEAD_DISK(raidPtr->Disks[diskids[i]].status)) {
578 1.23 oster if (raidPtr->status != rf_rs_reconstructing)
579 1.3 oster return (1);
580 1.23 oster RF_ASSERT(raidPtr->reconControl->fcol == diskids[i]);
581 1.3 oster layoutPtr->map->MapSector(raidPtr,
582 1.3 oster sosAddr + stripeOffset * layoutPtr->sectorsPerStripeUnit,
583 1.23 oster &tcol, &diskOffset, 0);
584 1.23 oster RF_ASSERT(tcol == diskids[i]);
585 1.23 oster if (!rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, diskOffset))
586 1.3 oster return (1);
587 1.3 oster asmap->flags |= RF_ASM_REDIR_LARGE_WRITE;
588 1.3 oster return (0);
589 1.3 oster }
590 1.3 oster stripeOffset++;
591 1.3 oster }
592 1.3 oster }
593 1.3 oster return (0);
594 1.1 oster }
595 1.18 oster #if (RF_INCLUDE_DECL_PQ > 0) || (RF_INCLUDE_RAID6 > 0) || (RF_INCLUDE_EVENODD >0)
596 1.1 oster /*
597 1.1 oster return the number of failed data units in the stripe.
598 1.1 oster */
599 1.1 oster
600 1.3 oster int
601 1.3 oster rf_NumFailedDataUnitsInStripe(raidPtr, asmap)
602 1.3 oster RF_Raid_t *raidPtr;
603 1.3 oster RF_AccessStripeMap_t *asmap;
604 1.3 oster {
605 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
606 1.23 oster RF_RowCol_t tcol, i;
607 1.3 oster RF_SectorNum_t diskOffset;
608 1.3 oster RF_RaidAddr_t sosAddr;
609 1.3 oster int numFailures;
610 1.3 oster
611 1.3 oster /* quick out in the fault-free case. */
612 1.3 oster RF_LOCK_MUTEX(raidPtr->mutex);
613 1.3 oster numFailures = raidPtr->numFailures;
614 1.3 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
615 1.3 oster if (numFailures == 0)
616 1.3 oster return (0);
617 1.3 oster numFailures = 0;
618 1.3 oster
619 1.3 oster sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, asmap->raidAddress);
620 1.3 oster for (i = 0; i < layoutPtr->numDataCol; i++) {
621 1.3 oster (layoutPtr->map->MapSector) (raidPtr, sosAddr + i * layoutPtr->sectorsPerStripeUnit,
622 1.3 oster &trow, &tcol, &diskOffset, 0);
623 1.23 oster if (RF_DEAD_DISK(raidPtr->Disks[tcol].status))
624 1.3 oster numFailures++;
625 1.3 oster }
626 1.1 oster
627 1.3 oster return numFailures;
628 1.1 oster }
629 1.18 oster #endif
630 1.1 oster
631 1.1 oster /*****************************************************************************************
632 1.1 oster *
633 1.1 oster * debug routines
634 1.1 oster *
635 1.1 oster ****************************************************************************************/
636 1.18 oster #if RF_DEBUG_MAP
637 1.3 oster void
638 1.3 oster rf_PrintAccessStripeMap(asm_h)
639 1.3 oster RF_AccessStripeMapHeader_t *asm_h;
640 1.1 oster {
641 1.3 oster rf_PrintFullAccessStripeMap(asm_h, 0);
642 1.1 oster }
643 1.18 oster #endif
644 1.1 oster
645 1.3 oster void
646 1.3 oster rf_PrintFullAccessStripeMap(asm_h, prbuf)
647 1.3 oster RF_AccessStripeMapHeader_t *asm_h;
648 1.3 oster int prbuf; /* flag to print buffer pointers */
649 1.3 oster {
650 1.3 oster int i;
651 1.3 oster RF_AccessStripeMap_t *asmap = asm_h->stripeMap;
652 1.3 oster RF_PhysDiskAddr_t *p;
653 1.3 oster printf("%d stripes total\n", (int) asm_h->numStripes);
654 1.3 oster for (; asmap; asmap = asmap->next) {
655 1.3 oster /* printf("Num failures: %d\n",asmap->numDataFailed); */
656 1.3 oster /* printf("Num sectors:
657 1.3 oster * %d\n",(int)asmap->totalSectorsAccessed); */
658 1.3 oster printf("Stripe %d (%d sectors), failures: %d data, %d parity: ",
659 1.3 oster (int) asmap->stripeID,
660 1.3 oster (int) asmap->totalSectorsAccessed,
661 1.3 oster (int) asmap->numDataFailed,
662 1.3 oster (int) asmap->numParityFailed);
663 1.3 oster if (asmap->parityInfo) {
664 1.23 oster printf("Parity [c%d s%d-%d", asmap->parityInfo->col,
665 1.3 oster (int) asmap->parityInfo->startSector,
666 1.3 oster (int) (asmap->parityInfo->startSector +
667 1.3 oster asmap->parityInfo->numSector - 1));
668 1.3 oster if (prbuf)
669 1.3 oster printf(" b0x%lx", (unsigned long) asmap->parityInfo->bufPtr);
670 1.3 oster if (asmap->parityInfo->next) {
671 1.23 oster printf(", c%d s%d-%d", asmap->parityInfo->next->col,
672 1.3 oster (int) asmap->parityInfo->next->startSector,
673 1.3 oster (int) (asmap->parityInfo->next->startSector +
674 1.3 oster asmap->parityInfo->next->numSector - 1));
675 1.3 oster if (prbuf)
676 1.3 oster printf(" b0x%lx", (unsigned long) asmap->parityInfo->next->bufPtr);
677 1.3 oster RF_ASSERT(asmap->parityInfo->next->next == NULL);
678 1.3 oster }
679 1.3 oster printf("]\n\t");
680 1.3 oster }
681 1.3 oster for (i = 0, p = asmap->physInfo; p; p = p->next, i++) {
682 1.23 oster printf("SU c%d s%d-%d ", p->col, (int) p->startSector,
683 1.3 oster (int) (p->startSector + p->numSector - 1));
684 1.3 oster if (prbuf)
685 1.3 oster printf("b0x%lx ", (unsigned long) p->bufPtr);
686 1.3 oster if (i && !(i & 1))
687 1.3 oster printf("\n\t");
688 1.3 oster }
689 1.3 oster printf("\n");
690 1.3 oster p = asm_h->stripeMap->failedPDAs[0];
691 1.3 oster if (asm_h->stripeMap->numDataFailed + asm_h->stripeMap->numParityFailed > 1)
692 1.3 oster printf("[multiple failures]\n");
693 1.3 oster else
694 1.3 oster if (asm_h->stripeMap->numDataFailed + asm_h->stripeMap->numParityFailed > 0)
695 1.23 oster printf("\t[Failed PDA: c%d s%d-%d]\n", p->col,
696 1.3 oster (int) p->startSector, (int) (p->startSector + p->numSector - 1));
697 1.3 oster }
698 1.1 oster }
699 1.1 oster
700 1.15 oster #if RF_MAP_DEBUG
701 1.3 oster void
702 1.3 oster rf_PrintRaidAddressInfo(raidPtr, raidAddr, numBlocks)
703 1.3 oster RF_Raid_t *raidPtr;
704 1.3 oster RF_RaidAddr_t raidAddr;
705 1.3 oster RF_SectorCount_t numBlocks;
706 1.3 oster {
707 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
708 1.3 oster RF_RaidAddr_t ra, sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, raidAddr);
709 1.3 oster
710 1.3 oster printf("Raid addrs of SU boundaries from start of stripe to end of access:\n\t");
711 1.3 oster for (ra = sosAddr; ra <= raidAddr + numBlocks; ra += layoutPtr->sectorsPerStripeUnit) {
712 1.3 oster printf("%d (0x%x), ", (int) ra, (int) ra);
713 1.3 oster }
714 1.3 oster printf("\n");
715 1.3 oster printf("Offset into stripe unit: %d (0x%x)\n",
716 1.3 oster (int) (raidAddr % layoutPtr->sectorsPerStripeUnit),
717 1.3 oster (int) (raidAddr % layoutPtr->sectorsPerStripeUnit));
718 1.3 oster }
719 1.15 oster #endif
720 1.1 oster /*
721 1.1 oster given a parity descriptor and the starting address within a stripe,
722 1.1 oster range restrict the parity descriptor to touch only the correct stuff.
723 1.1 oster */
724 1.3 oster void
725 1.3 oster rf_ASMParityAdjust(
726 1.3 oster RF_PhysDiskAddr_t * toAdjust,
727 1.3 oster RF_StripeNum_t startAddrWithinStripe,
728 1.3 oster RF_SectorNum_t endAddress,
729 1.3 oster RF_RaidLayout_t * layoutPtr,
730 1.3 oster RF_AccessStripeMap_t * asm_p)
731 1.3 oster {
732 1.3 oster RF_PhysDiskAddr_t *new_pda;
733 1.3 oster
734 1.3 oster /* when we're accessing only a portion of one stripe unit, we want the
735 1.3 oster * parity descriptor to identify only the chunk of parity associated
736 1.3 oster * with the data. When the access spans exactly one stripe unit
737 1.3 oster * boundary and is less than a stripe unit in size, it uses two
738 1.3 oster * disjoint regions of the parity unit. When an access spans more
739 1.3 oster * than one stripe unit boundary, it uses all of the parity unit.
740 1.3 oster *
741 1.3 oster * To better handle the case where stripe units are small, we may
742 1.3 oster * eventually want to change the 2nd case so that if the SU size is
743 1.3 oster * below some threshold, we just read/write the whole thing instead of
744 1.3 oster * breaking it up into two accesses. */
745 1.3 oster if (asm_p->numStripeUnitsAccessed == 1) {
746 1.3 oster int x = (startAddrWithinStripe % layoutPtr->sectorsPerStripeUnit);
747 1.3 oster toAdjust->startSector += x;
748 1.3 oster toAdjust->raidAddress += x;
749 1.3 oster toAdjust->numSector = asm_p->physInfo->numSector;
750 1.3 oster RF_ASSERT(toAdjust->numSector != 0);
751 1.3 oster } else
752 1.3 oster if (asm_p->numStripeUnitsAccessed == 2 && asm_p->totalSectorsAccessed < layoutPtr->sectorsPerStripeUnit) {
753 1.3 oster int x = (startAddrWithinStripe % layoutPtr->sectorsPerStripeUnit);
754 1.3 oster
755 1.3 oster /* create a second pda and copy the parity map info
756 1.3 oster * into it */
757 1.3 oster RF_ASSERT(toAdjust->next == NULL);
758 1.3 oster new_pda = toAdjust->next = rf_AllocPhysDiskAddr();
759 1.3 oster *new_pda = *toAdjust; /* structure assignment */
760 1.3 oster new_pda->next = NULL;
761 1.3 oster
762 1.3 oster /* adjust the start sector & number of blocks for the
763 1.3 oster * first parity pda */
764 1.3 oster toAdjust->startSector += x;
765 1.3 oster toAdjust->raidAddress += x;
766 1.3 oster toAdjust->numSector = rf_RaidAddressOfNextStripeUnitBoundary(layoutPtr, startAddrWithinStripe) - startAddrWithinStripe;
767 1.3 oster RF_ASSERT(toAdjust->numSector != 0);
768 1.3 oster
769 1.3 oster /* adjust the second pda */
770 1.3 oster new_pda->numSector = endAddress - rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, endAddress);
771 1.3 oster /* new_pda->raidAddress =
772 1.3 oster * rf_RaidAddressOfNextStripeUnitBoundary(layoutPtr,
773 1.3 oster * toAdjust->raidAddress); */
774 1.3 oster RF_ASSERT(new_pda->numSector != 0);
775 1.3 oster }
776 1.1 oster }
777 1.11 oster
778 1.1 oster /*
779 1.1 oster Check if a disk has been spared or failed. If spared,
780 1.3 oster redirect the I/O.
781 1.1 oster If it has been failed, record it in the asm pointer.
782 1.1 oster Fourth arg is whether data or parity.
783 1.1 oster */
784 1.3 oster void
785 1.3 oster rf_ASMCheckStatus(
786 1.3 oster RF_Raid_t * raidPtr,
787 1.3 oster RF_PhysDiskAddr_t * pda_p,
788 1.3 oster RF_AccessStripeMap_t * asm_p,
789 1.23 oster RF_RaidDisk_t * disks,
790 1.3 oster int parity)
791 1.3 oster {
792 1.3 oster RF_DiskStatus_t dstatus;
793 1.23 oster RF_RowCol_t fcol;
794 1.3 oster
795 1.23 oster dstatus = disks[pda_p->col].status;
796 1.3 oster
797 1.3 oster if (dstatus == rf_ds_spared) {
798 1.3 oster /* if the disk has been spared, redirect access to the spare */
799 1.3 oster fcol = pda_p->col;
800 1.23 oster pda_p->col = disks[fcol].spareCol;
801 1.3 oster } else
802 1.3 oster if (dstatus == rf_ds_dist_spared) {
803 1.3 oster /* ditto if disk has been spared to dist spare space */
804 1.15 oster #if RF_DEBUG_MAP
805 1.23 oster RF_RowCol_t oc = pda_p->col;
806 1.3 oster RF_SectorNum_t oo = pda_p->startSector;
807 1.15 oster #endif
808 1.3 oster if (pda_p->type == RF_PDA_TYPE_DATA)
809 1.23 oster raidPtr->Layout.map->MapSector(raidPtr, pda_p->raidAddress, &pda_p->col, &pda_p->startSector, RF_REMAP);
810 1.3 oster else
811 1.23 oster raidPtr->Layout.map->MapParity(raidPtr, pda_p->raidAddress, &pda_p->col, &pda_p->startSector, RF_REMAP);
812 1.3 oster
813 1.15 oster #if RF_DEBUG_MAP
814 1.3 oster if (rf_mapDebug) {
815 1.23 oster printf("Redirected c %d o %d -> c %d o %d\n", oc, (int) oo,
816 1.23 oster pda_p->col, (int) pda_p->startSector);
817 1.3 oster }
818 1.15 oster #endif
819 1.3 oster } else
820 1.3 oster if (RF_DEAD_DISK(dstatus)) {
821 1.3 oster /* if the disk is inaccessible, mark the
822 1.3 oster * failure */
823 1.3 oster if (parity)
824 1.3 oster asm_p->numParityFailed++;
825 1.3 oster else {
826 1.3 oster asm_p->numDataFailed++;
827 1.3 oster }
828 1.3 oster asm_p->failedPDAs[asm_p->numFailedPDAs] = pda_p;
829 1.3 oster asm_p->numFailedPDAs++;
830 1.1 oster #if 0
831 1.3 oster switch (asm_p->numParityFailed + asm_p->numDataFailed) {
832 1.3 oster case 1:
833 1.3 oster asm_p->failedPDAs[0] = pda_p;
834 1.3 oster break;
835 1.3 oster case 2:
836 1.3 oster asm_p->failedPDAs[1] = pda_p;
837 1.3 oster default:
838 1.3 oster break;
839 1.3 oster }
840 1.1 oster #endif
841 1.3 oster }
842 1.3 oster /* the redirected access should never span a stripe unit boundary */
843 1.3 oster RF_ASSERT(rf_RaidAddressToStripeUnitID(&raidPtr->Layout, pda_p->raidAddress) ==
844 1.3 oster rf_RaidAddressToStripeUnitID(&raidPtr->Layout, pda_p->raidAddress + pda_p->numSector - 1));
845 1.3 oster RF_ASSERT(pda_p->col != -1);
846 1.1 oster }
847