rf_dagdegrd.c revision 1.20 1 1.20 oster /* $NetBSD: rf_dagdegrd.c,v 1.20 2004/03/18 16:40:05 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, Daniel Stodolsky, William V. Courtright II
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 * rf_dagdegrd.c
31 1.1 oster *
32 1.1 oster * code for creating degraded read DAGs
33 1.1 oster */
34 1.10 lukem
35 1.10 lukem #include <sys/cdefs.h>
36 1.20 oster __KERNEL_RCSID(0, "$NetBSD: rf_dagdegrd.c,v 1.20 2004/03/18 16:40:05 oster Exp $");
37 1.1 oster
38 1.9 oster #include <dev/raidframe/raidframevar.h>
39 1.9 oster
40 1.6 oster #include "rf_archs.h"
41 1.1 oster #include "rf_raid.h"
42 1.1 oster #include "rf_dag.h"
43 1.1 oster #include "rf_dagutils.h"
44 1.1 oster #include "rf_dagfuncs.h"
45 1.1 oster #include "rf_debugMem.h"
46 1.1 oster #include "rf_general.h"
47 1.1 oster #include "rf_dagdegrd.h"
48 1.1 oster
49 1.1 oster
50 1.1 oster /******************************************************************************
51 1.1 oster *
52 1.1 oster * General comments on DAG creation:
53 1.3 oster *
54 1.1 oster * All DAGs in this file use roll-away error recovery. Each DAG has a single
55 1.1 oster * commit node, usually called "Cmt." If an error occurs before the Cmt node
56 1.1 oster * is reached, the execution engine will halt forward execution and work
57 1.1 oster * backward through the graph, executing the undo functions. Assuming that
58 1.1 oster * each node in the graph prior to the Cmt node are undoable and atomic - or -
59 1.1 oster * does not make changes to permanent state, the graph will fail atomically.
60 1.1 oster * If an error occurs after the Cmt node executes, the engine will roll-forward
61 1.1 oster * through the graph, blindly executing nodes until it reaches the end.
62 1.1 oster * If a graph reaches the end, it is assumed to have completed successfully.
63 1.1 oster *
64 1.1 oster * A graph has only 1 Cmt node.
65 1.1 oster *
66 1.1 oster */
67 1.1 oster
68 1.1 oster
69 1.1 oster /******************************************************************************
70 1.1 oster *
71 1.1 oster * The following wrappers map the standard DAG creation interface to the
72 1.1 oster * DAG creation routines. Additionally, these wrappers enable experimentation
73 1.1 oster * with new DAG structures by providing an extra level of indirection, allowing
74 1.1 oster * the DAG creation routines to be replaced at this single point.
75 1.1 oster */
76 1.1 oster
77 1.3 oster void
78 1.16 oster rf_CreateRaidFiveDegradedReadDAG(RF_Raid_t *raidPtr,
79 1.16 oster RF_AccessStripeMap_t *asmap,
80 1.16 oster RF_DagHeader_t *dag_h,
81 1.16 oster void *bp,
82 1.16 oster RF_RaidAccessFlags_t flags,
83 1.16 oster RF_AllocListElem_t *allocList)
84 1.1 oster {
85 1.3 oster rf_CreateDegradedReadDAG(raidPtr, asmap, dag_h, bp, flags, allocList,
86 1.3 oster &rf_xorRecoveryFuncs);
87 1.1 oster }
88 1.1 oster
89 1.1 oster
90 1.1 oster /******************************************************************************
91 1.1 oster *
92 1.1 oster * DAG creation code begins here
93 1.1 oster */
94 1.1 oster
95 1.1 oster
96 1.1 oster /******************************************************************************
97 1.1 oster * Create a degraded read DAG for RAID level 1
98 1.1 oster *
99 1.1 oster * Hdr -> Nil -> R(p/s)d -> Commit -> Trm
100 1.1 oster *
101 1.1 oster * The "Rd" node reads data from the surviving disk in the mirror pair
102 1.1 oster * Rpd - read of primary copy
103 1.1 oster * Rsd - read of secondary copy
104 1.1 oster *
105 1.1 oster * Parameters: raidPtr - description of the physical array
106 1.1 oster * asmap - logical & physical addresses for this access
107 1.1 oster * bp - buffer ptr (for holding write data)
108 1.3 oster * flags - general flags (e.g. disk locking)
109 1.1 oster * allocList - list of memory allocated in DAG creation
110 1.1 oster *****************************************************************************/
111 1.1 oster
112 1.3 oster void
113 1.16 oster rf_CreateRaidOneDegradedReadDAG(RF_Raid_t *raidPtr,
114 1.16 oster RF_AccessStripeMap_t *asmap,
115 1.16 oster RF_DagHeader_t *dag_h,
116 1.16 oster void *bp,
117 1.16 oster RF_RaidAccessFlags_t flags,
118 1.16 oster RF_AllocListElem_t *allocList)
119 1.1 oster {
120 1.20 oster RF_DagNode_t *rdNode, *blockNode, *commitNode, *termNode;
121 1.3 oster RF_StripeNum_t parityStripeID;
122 1.3 oster RF_ReconUnitNum_t which_ru;
123 1.3 oster RF_PhysDiskAddr_t *pda;
124 1.20 oster int useMirror;
125 1.3 oster
126 1.3 oster useMirror = 0;
127 1.3 oster parityStripeID = rf_RaidAddressToParityStripeID(&(raidPtr->Layout),
128 1.3 oster asmap->raidAddress, &which_ru);
129 1.19 oster #if RF_DEBUG_DAG
130 1.3 oster if (rf_dagDebug) {
131 1.3 oster printf("[Creating RAID level 1 degraded read DAG]\n");
132 1.3 oster }
133 1.19 oster #endif
134 1.3 oster dag_h->creator = "RaidOneDegradedReadDAG";
135 1.3 oster /* alloc the Wnd nodes and the Wmir node */
136 1.3 oster if (asmap->numDataFailed == 0)
137 1.3 oster useMirror = RF_FALSE;
138 1.3 oster else
139 1.3 oster useMirror = RF_TRUE;
140 1.3 oster
141 1.3 oster /* total number of nodes = 1 + (block + commit + terminator) */
142 1.20 oster
143 1.20 oster rdNode = rf_AllocDAGNode();
144 1.20 oster rdNode->list_next = dag_h->nodes;
145 1.20 oster dag_h->nodes = rdNode;
146 1.20 oster
147 1.20 oster blockNode = rf_AllocDAGNode();
148 1.20 oster blockNode->list_next = dag_h->nodes;
149 1.20 oster dag_h->nodes = blockNode;
150 1.20 oster
151 1.20 oster commitNode = rf_AllocDAGNode();
152 1.20 oster commitNode->list_next = dag_h->nodes;
153 1.20 oster dag_h->nodes = commitNode;
154 1.20 oster
155 1.20 oster termNode = rf_AllocDAGNode();
156 1.20 oster termNode->list_next = dag_h->nodes;
157 1.20 oster dag_h->nodes = termNode;
158 1.3 oster
159 1.3 oster /* this dag can not commit until the commit node is reached. errors
160 1.3 oster * prior to the commit point imply the dag has failed and must be
161 1.3 oster * retried */
162 1.3 oster dag_h->numCommitNodes = 1;
163 1.3 oster dag_h->numCommits = 0;
164 1.3 oster dag_h->numSuccedents = 1;
165 1.3 oster
166 1.3 oster /* initialize the block, commit, and terminator nodes */
167 1.3 oster rf_InitNode(blockNode, rf_wait, RF_FALSE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
168 1.3 oster NULL, 1, 0, 0, 0, dag_h, "Nil", allocList);
169 1.3 oster rf_InitNode(commitNode, rf_wait, RF_TRUE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
170 1.3 oster NULL, 1, 1, 0, 0, dag_h, "Cmt", allocList);
171 1.3 oster rf_InitNode(termNode, rf_wait, RF_FALSE, rf_TerminateFunc, rf_TerminateUndoFunc,
172 1.3 oster NULL, 0, 1, 0, 0, dag_h, "Trm", allocList);
173 1.3 oster
174 1.3 oster pda = asmap->physInfo;
175 1.3 oster RF_ASSERT(pda != NULL);
176 1.3 oster /* parityInfo must describe entire parity unit */
177 1.3 oster RF_ASSERT(asmap->parityInfo->next == NULL);
178 1.3 oster
179 1.3 oster /* initialize the data node */
180 1.3 oster if (!useMirror) {
181 1.3 oster /* read primary copy of data */
182 1.3 oster rf_InitNode(rdNode, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc,
183 1.3 oster rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, "Rpd", allocList);
184 1.3 oster rdNode->params[0].p = pda;
185 1.3 oster rdNode->params[1].p = pda->bufPtr;
186 1.3 oster rdNode->params[2].v = parityStripeID;
187 1.18 oster rdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY,
188 1.18 oster which_ru);
189 1.3 oster } else {
190 1.3 oster /* read secondary copy of data */
191 1.3 oster rf_InitNode(rdNode, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc,
192 1.3 oster rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, "Rsd", allocList);
193 1.3 oster rdNode->params[0].p = asmap->parityInfo;
194 1.3 oster rdNode->params[1].p = pda->bufPtr;
195 1.3 oster rdNode->params[2].v = parityStripeID;
196 1.18 oster rdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY,
197 1.18 oster which_ru);
198 1.3 oster }
199 1.3 oster
200 1.3 oster /* connect header to block node */
201 1.3 oster RF_ASSERT(dag_h->numSuccedents == 1);
202 1.3 oster RF_ASSERT(blockNode->numAntecedents == 0);
203 1.3 oster dag_h->succedents[0] = blockNode;
204 1.3 oster
205 1.3 oster /* connect block node to rdnode */
206 1.3 oster RF_ASSERT(blockNode->numSuccedents == 1);
207 1.3 oster RF_ASSERT(rdNode->numAntecedents == 1);
208 1.3 oster blockNode->succedents[0] = rdNode;
209 1.3 oster rdNode->antecedents[0] = blockNode;
210 1.3 oster rdNode->antType[0] = rf_control;
211 1.3 oster
212 1.3 oster /* connect rdnode to commit node */
213 1.3 oster RF_ASSERT(rdNode->numSuccedents == 1);
214 1.3 oster RF_ASSERT(commitNode->numAntecedents == 1);
215 1.3 oster rdNode->succedents[0] = commitNode;
216 1.3 oster commitNode->antecedents[0] = rdNode;
217 1.3 oster commitNode->antType[0] = rf_control;
218 1.3 oster
219 1.3 oster /* connect commit node to terminator */
220 1.3 oster RF_ASSERT(commitNode->numSuccedents == 1);
221 1.3 oster RF_ASSERT(termNode->numAntecedents == 1);
222 1.3 oster RF_ASSERT(termNode->numSuccedents == 0);
223 1.3 oster commitNode->succedents[0] = termNode;
224 1.3 oster termNode->antecedents[0] = commitNode;
225 1.3 oster termNode->antType[0] = rf_control;
226 1.1 oster }
227 1.1 oster
228 1.1 oster
229 1.1 oster
230 1.1 oster /******************************************************************************
231 1.1 oster *
232 1.1 oster * creates a DAG to perform a degraded-mode read of data within one stripe.
233 1.1 oster * This DAG is as follows:
234 1.1 oster *
235 1.1 oster * Hdr -> Block -> Rud -> Xor -> Cmt -> T
236 1.1 oster * -> Rrd ->
237 1.1 oster * -> Rp -->
238 1.1 oster *
239 1.1 oster * Each R node is a successor of the L node
240 1.1 oster * One successor arc from each R node goes to C, and the other to X
241 1.1 oster * There is one Rud for each chunk of surviving user data requested by the
242 1.1 oster * user, and one Rrd for each chunk of surviving user data _not_ being read by
243 1.1 oster * the user
244 1.1 oster * R = read, ud = user data, rd = recovery (surviving) data, p = parity
245 1.1 oster * X = XOR, C = Commit, T = terminate
246 1.1 oster *
247 1.1 oster * The block node guarantees a single source node.
248 1.1 oster *
249 1.1 oster * Note: The target buffer for the XOR node is set to the actual user buffer
250 1.1 oster * where the failed data is supposed to end up. This buffer is zero'd by the
251 1.1 oster * code here. Thus, if you create a degraded read dag, use it, and then
252 1.1 oster * re-use, you have to be sure to zero the target buffer prior to the re-use.
253 1.1 oster *
254 1.1 oster * The recfunc argument at the end specifies the name and function used for
255 1.1 oster * the redundancy
256 1.3 oster * recovery function.
257 1.1 oster *
258 1.1 oster *****************************************************************************/
259 1.1 oster
260 1.3 oster void
261 1.16 oster rf_CreateDegradedReadDAG(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
262 1.16 oster RF_DagHeader_t *dag_h, void *bp,
263 1.16 oster RF_RaidAccessFlags_t flags,
264 1.16 oster RF_AllocListElem_t *allocList,
265 1.16 oster const RF_RedFuncs_t *recFunc)
266 1.1 oster {
267 1.20 oster RF_DagNode_t *rudNodes, *rrdNodes, *xorNode, *blockNode;
268 1.3 oster RF_DagNode_t *commitNode, *rpNode, *termNode;
269 1.20 oster RF_DagNode_t *tmpNode, *tmprudNode, *tmprrdNode;
270 1.3 oster int nNodes, nRrdNodes, nRudNodes, nXorBufs, i;
271 1.3 oster int j, paramNum;
272 1.3 oster RF_SectorCount_t sectorsPerSU;
273 1.3 oster RF_ReconUnitNum_t which_ru;
274 1.3 oster char *overlappingPDAs;/* a temporary array of flags */
275 1.3 oster RF_AccessStripeMapHeader_t *new_asm_h[2];
276 1.3 oster RF_PhysDiskAddr_t *pda, *parityPDA;
277 1.3 oster RF_StripeNum_t parityStripeID;
278 1.3 oster RF_PhysDiskAddr_t *failedPDA;
279 1.3 oster RF_RaidLayout_t *layoutPtr;
280 1.3 oster char *rpBuf;
281 1.3 oster
282 1.3 oster layoutPtr = &(raidPtr->Layout);
283 1.3 oster /* failedPDA points to the pda within the asm that targets the failed
284 1.3 oster * disk */
285 1.3 oster failedPDA = asmap->failedPDAs[0];
286 1.3 oster parityStripeID = rf_RaidAddressToParityStripeID(layoutPtr,
287 1.3 oster asmap->raidAddress, &which_ru);
288 1.3 oster sectorsPerSU = layoutPtr->sectorsPerStripeUnit;
289 1.3 oster
290 1.19 oster #if RF_DEBUG_DAG
291 1.3 oster if (rf_dagDebug) {
292 1.3 oster printf("[Creating degraded read DAG]\n");
293 1.3 oster }
294 1.19 oster #endif
295 1.3 oster RF_ASSERT(asmap->numDataFailed == 1);
296 1.3 oster dag_h->creator = "DegradedReadDAG";
297 1.3 oster
298 1.3 oster /*
299 1.3 oster * generate two ASMs identifying the surviving data we need
300 1.3 oster * in order to recover the lost data
301 1.3 oster */
302 1.3 oster
303 1.3 oster /* overlappingPDAs array must be zero'd */
304 1.15 oster RF_Malloc(overlappingPDAs, asmap->numStripeUnitsAccessed * sizeof(char), (char *));
305 1.3 oster rf_GenerateFailedAccessASMs(raidPtr, asmap, failedPDA, dag_h, new_asm_h, &nXorBufs,
306 1.3 oster &rpBuf, overlappingPDAs, allocList);
307 1.3 oster
308 1.3 oster /*
309 1.3 oster * create all the nodes at once
310 1.3 oster *
311 1.3 oster * -1 because no access is generated for the failed pda
312 1.3 oster */
313 1.3 oster nRudNodes = asmap->numStripeUnitsAccessed - 1;
314 1.3 oster nRrdNodes = ((new_asm_h[0]) ? new_asm_h[0]->stripeMap->numStripeUnitsAccessed : 0) +
315 1.3 oster ((new_asm_h[1]) ? new_asm_h[1]->stripeMap->numStripeUnitsAccessed : 0);
316 1.3 oster nNodes = 5 + nRudNodes + nRrdNodes; /* lock, unlock, xor, Rp, Rud,
317 1.3 oster * Rrd */
318 1.20 oster
319 1.20 oster blockNode = rf_AllocDAGNode();
320 1.20 oster blockNode->list_next = dag_h->nodes;
321 1.20 oster dag_h->nodes = blockNode;
322 1.20 oster
323 1.20 oster commitNode = rf_AllocDAGNode();
324 1.20 oster commitNode->list_next = dag_h->nodes;
325 1.20 oster dag_h->nodes = commitNode;
326 1.20 oster
327 1.20 oster xorNode = rf_AllocDAGNode();
328 1.20 oster xorNode->list_next = dag_h->nodes;
329 1.20 oster dag_h->nodes = xorNode;
330 1.20 oster
331 1.20 oster rpNode = rf_AllocDAGNode();
332 1.20 oster rpNode->list_next = dag_h->nodes;
333 1.20 oster dag_h->nodes = rpNode;
334 1.20 oster
335 1.20 oster termNode = rf_AllocDAGNode();
336 1.20 oster termNode->list_next = dag_h->nodes;
337 1.20 oster dag_h->nodes = termNode;
338 1.20 oster
339 1.20 oster for (i = 0; i < nRudNodes; i++) {
340 1.20 oster tmpNode = rf_AllocDAGNode();
341 1.20 oster tmpNode->list_next = dag_h->nodes;
342 1.20 oster dag_h->nodes = tmpNode;
343 1.20 oster }
344 1.20 oster rudNodes = dag_h->nodes;
345 1.20 oster
346 1.20 oster for (i = 0; i < nRrdNodes; i++) {
347 1.20 oster tmpNode = rf_AllocDAGNode();
348 1.20 oster tmpNode->list_next = dag_h->nodes;
349 1.20 oster dag_h->nodes = tmpNode;
350 1.20 oster }
351 1.20 oster rrdNodes = dag_h->nodes;
352 1.3 oster
353 1.3 oster /* initialize nodes */
354 1.3 oster dag_h->numCommitNodes = 1;
355 1.3 oster dag_h->numCommits = 0;
356 1.3 oster /* this dag can not commit until the commit node is reached errors
357 1.3 oster * prior to the commit point imply the dag has failed */
358 1.3 oster dag_h->numSuccedents = 1;
359 1.3 oster
360 1.3 oster rf_InitNode(blockNode, rf_wait, RF_FALSE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
361 1.3 oster NULL, nRudNodes + nRrdNodes + 1, 0, 0, 0, dag_h, "Nil", allocList);
362 1.3 oster rf_InitNode(commitNode, rf_wait, RF_TRUE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
363 1.3 oster NULL, 1, 1, 0, 0, dag_h, "Cmt", allocList);
364 1.3 oster rf_InitNode(termNode, rf_wait, RF_FALSE, rf_TerminateFunc, rf_TerminateUndoFunc,
365 1.3 oster NULL, 0, 1, 0, 0, dag_h, "Trm", allocList);
366 1.3 oster rf_InitNode(xorNode, rf_wait, RF_FALSE, recFunc->simple, rf_NullNodeUndoFunc,
367 1.3 oster NULL, 1, nRudNodes + nRrdNodes + 1, 2 * nXorBufs + 2, 1, dag_h,
368 1.3 oster recFunc->SimpleName, allocList);
369 1.3 oster
370 1.3 oster /* fill in the Rud nodes */
371 1.20 oster tmprudNode = rudNodes;
372 1.3 oster for (pda = asmap->physInfo, i = 0; i < nRudNodes; i++, pda = pda->next) {
373 1.3 oster if (pda == failedPDA) {
374 1.3 oster i--;
375 1.3 oster continue;
376 1.3 oster }
377 1.20 oster rf_InitNode(tmprudNode, rf_wait, RF_FALSE, rf_DiskReadFunc,
378 1.3 oster rf_DiskReadUndoFunc, rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h,
379 1.3 oster "Rud", allocList);
380 1.3 oster RF_ASSERT(pda);
381 1.20 oster tmprudNode->params[0].p = pda;
382 1.20 oster tmprudNode->params[1].p = pda->bufPtr;
383 1.20 oster tmprudNode->params[2].v = parityStripeID;
384 1.20 oster tmprudNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
385 1.20 oster tmprudNode = tmprudNode->list_next;
386 1.3 oster }
387 1.3 oster
388 1.3 oster /* fill in the Rrd nodes */
389 1.3 oster i = 0;
390 1.20 oster tmprrdNode = rrdNodes;
391 1.3 oster if (new_asm_h[0]) {
392 1.3 oster for (pda = new_asm_h[0]->stripeMap->physInfo;
393 1.3 oster i < new_asm_h[0]->stripeMap->numStripeUnitsAccessed;
394 1.3 oster i++, pda = pda->next) {
395 1.20 oster rf_InitNode(tmprrdNode, rf_wait, RF_FALSE, rf_DiskReadFunc,
396 1.3 oster rf_DiskReadUndoFunc, rf_GenericWakeupFunc, 1, 1, 4, 0,
397 1.3 oster dag_h, "Rrd", allocList);
398 1.3 oster RF_ASSERT(pda);
399 1.20 oster tmprrdNode->params[0].p = pda;
400 1.20 oster tmprrdNode->params[1].p = pda->bufPtr;
401 1.20 oster tmprrdNode->params[2].v = parityStripeID;
402 1.20 oster tmprrdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
403 1.20 oster tmprrdNode = tmprrdNode->list_next;
404 1.3 oster }
405 1.3 oster }
406 1.3 oster if (new_asm_h[1]) {
407 1.20 oster /* tmprrdNode = rrdNodes; */ /* don't set this here -- old code was using i+j, which means
408 1.20 oster we need to just continue using tmprrdNode for the next 'j' elements. */
409 1.3 oster for (j = 0, pda = new_asm_h[1]->stripeMap->physInfo;
410 1.3 oster j < new_asm_h[1]->stripeMap->numStripeUnitsAccessed;
411 1.3 oster j++, pda = pda->next) {
412 1.20 oster rf_InitNode(tmprrdNode, rf_wait, RF_FALSE, rf_DiskReadFunc,
413 1.3 oster rf_DiskReadUndoFunc, rf_GenericWakeupFunc, 1, 1, 4, 0,
414 1.3 oster dag_h, "Rrd", allocList);
415 1.3 oster RF_ASSERT(pda);
416 1.20 oster tmprrdNode->params[0].p = pda;
417 1.20 oster tmprrdNode->params[1].p = pda->bufPtr;
418 1.20 oster tmprrdNode->params[2].v = parityStripeID;
419 1.20 oster tmprrdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
420 1.20 oster tmprrdNode = tmprrdNode->list_next;
421 1.3 oster }
422 1.3 oster }
423 1.3 oster /* make a PDA for the parity unit */
424 1.3 oster RF_MallocAndAdd(parityPDA, sizeof(RF_PhysDiskAddr_t), (RF_PhysDiskAddr_t *), allocList);
425 1.3 oster parityPDA->col = asmap->parityInfo->col;
426 1.3 oster parityPDA->startSector = ((asmap->parityInfo->startSector / sectorsPerSU)
427 1.3 oster * sectorsPerSU) + (failedPDA->startSector % sectorsPerSU);
428 1.3 oster parityPDA->numSector = failedPDA->numSector;
429 1.3 oster
430 1.3 oster /* initialize the Rp node */
431 1.3 oster rf_InitNode(rpNode, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc,
432 1.3 oster rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, "Rp ", allocList);
433 1.3 oster rpNode->params[0].p = parityPDA;
434 1.3 oster rpNode->params[1].p = rpBuf;
435 1.3 oster rpNode->params[2].v = parityStripeID;
436 1.18 oster rpNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
437 1.3 oster
438 1.3 oster /*
439 1.3 oster * the last and nastiest step is to assign all
440 1.3 oster * the parameters of the Xor node
441 1.3 oster */
442 1.3 oster paramNum = 0;
443 1.20 oster tmprrdNode = rrdNodes;
444 1.3 oster for (i = 0; i < nRrdNodes; i++) {
445 1.3 oster /* all the Rrd nodes need to be xored together */
446 1.20 oster xorNode->params[paramNum++] = tmprrdNode->params[0];
447 1.20 oster xorNode->params[paramNum++] = tmprrdNode->params[1];
448 1.20 oster tmprrdNode = tmprrdNode->list_next;
449 1.3 oster }
450 1.20 oster tmprudNode = rudNodes;
451 1.3 oster for (i = 0; i < nRudNodes; i++) {
452 1.3 oster /* any Rud nodes that overlap the failed access need to be
453 1.3 oster * xored in */
454 1.3 oster if (overlappingPDAs[i]) {
455 1.3 oster RF_MallocAndAdd(pda, sizeof(RF_PhysDiskAddr_t), (RF_PhysDiskAddr_t *), allocList);
456 1.20 oster memcpy((char *) pda, (char *) tmprudNode->params[0].p, sizeof(RF_PhysDiskAddr_t));
457 1.3 oster rf_RangeRestrictPDA(raidPtr, failedPDA, pda, RF_RESTRICT_DOBUFFER, 0);
458 1.3 oster xorNode->params[paramNum++].p = pda;
459 1.3 oster xorNode->params[paramNum++].p = pda->bufPtr;
460 1.3 oster }
461 1.20 oster tmprudNode = tmprudNode->list_next;
462 1.3 oster }
463 1.3 oster RF_Free(overlappingPDAs, asmap->numStripeUnitsAccessed * sizeof(char));
464 1.3 oster
465 1.3 oster /* install parity pda as last set of params to be xor'd */
466 1.3 oster xorNode->params[paramNum++].p = parityPDA;
467 1.3 oster xorNode->params[paramNum++].p = rpBuf;
468 1.3 oster
469 1.3 oster /*
470 1.3 oster * the last 2 params to the recovery xor node are
471 1.3 oster * the failed PDA and the raidPtr
472 1.3 oster */
473 1.3 oster xorNode->params[paramNum++].p = failedPDA;
474 1.3 oster xorNode->params[paramNum++].p = raidPtr;
475 1.3 oster RF_ASSERT(paramNum == 2 * nXorBufs + 2);
476 1.3 oster
477 1.3 oster /*
478 1.3 oster * The xor node uses results[0] as the target buffer.
479 1.3 oster * Set pointer and zero the buffer. In the kernel, this
480 1.3 oster * may be a user buffer in which case we have to remap it.
481 1.3 oster */
482 1.3 oster xorNode->results[0] = failedPDA->bufPtr;
483 1.17 oster memset(failedPDA->bufPtr, 0, rf_RaidAddressToByte(raidPtr,
484 1.3 oster failedPDA->numSector));
485 1.3 oster
486 1.3 oster /* connect nodes to form graph */
487 1.3 oster /* connect the header to the block node */
488 1.3 oster RF_ASSERT(dag_h->numSuccedents == 1);
489 1.3 oster RF_ASSERT(blockNode->numAntecedents == 0);
490 1.3 oster dag_h->succedents[0] = blockNode;
491 1.3 oster
492 1.3 oster /* connect the block node to the read nodes */
493 1.3 oster RF_ASSERT(blockNode->numSuccedents == (1 + nRrdNodes + nRudNodes));
494 1.3 oster RF_ASSERT(rpNode->numAntecedents == 1);
495 1.3 oster blockNode->succedents[0] = rpNode;
496 1.3 oster rpNode->antecedents[0] = blockNode;
497 1.3 oster rpNode->antType[0] = rf_control;
498 1.20 oster tmprrdNode = rrdNodes;
499 1.3 oster for (i = 0; i < nRrdNodes; i++) {
500 1.20 oster RF_ASSERT(tmprrdNode->numSuccedents == 1);
501 1.20 oster blockNode->succedents[1 + i] = tmprrdNode;
502 1.20 oster tmprrdNode->antecedents[0] = blockNode;
503 1.20 oster tmprrdNode->antType[0] = rf_control;
504 1.20 oster tmprrdNode = tmprrdNode->list_next;
505 1.3 oster }
506 1.20 oster tmprudNode = rudNodes;
507 1.3 oster for (i = 0; i < nRudNodes; i++) {
508 1.20 oster RF_ASSERT(tmprudNode->numSuccedents == 1);
509 1.20 oster blockNode->succedents[1 + nRrdNodes + i] = tmprudNode;
510 1.20 oster tmprudNode->antecedents[0] = blockNode;
511 1.20 oster tmprudNode->antType[0] = rf_control;
512 1.20 oster tmprudNode = tmprudNode->list_next;
513 1.3 oster }
514 1.3 oster
515 1.3 oster /* connect the read nodes to the xor node */
516 1.3 oster RF_ASSERT(xorNode->numAntecedents == (1 + nRrdNodes + nRudNodes));
517 1.3 oster RF_ASSERT(rpNode->numSuccedents == 1);
518 1.3 oster rpNode->succedents[0] = xorNode;
519 1.3 oster xorNode->antecedents[0] = rpNode;
520 1.3 oster xorNode->antType[0] = rf_trueData;
521 1.20 oster tmprrdNode = rrdNodes;
522 1.3 oster for (i = 0; i < nRrdNodes; i++) {
523 1.20 oster RF_ASSERT(rrdNode->numSuccedents == 1);
524 1.20 oster tmprrdNode->succedents[0] = xorNode;
525 1.20 oster xorNode->antecedents[1 + i] = tmprrdNode;
526 1.3 oster xorNode->antType[1 + i] = rf_trueData;
527 1.20 oster tmprrdNode = tmprrdNode->list_next;
528 1.3 oster }
529 1.20 oster tmprudNode = rudNodes;
530 1.3 oster for (i = 0; i < nRudNodes; i++) {
531 1.20 oster RF_ASSERT(tmprudNode->numSuccedents == 1);
532 1.20 oster tmprudNode->succedents[0] = xorNode;
533 1.20 oster xorNode->antecedents[1 + nRrdNodes + i] = tmprudNode;
534 1.3 oster xorNode->antType[1 + nRrdNodes + i] = rf_trueData;
535 1.20 oster tmprudNode = tmprudNode->list_next;
536 1.3 oster }
537 1.3 oster
538 1.3 oster /* connect the xor node to the commit node */
539 1.3 oster RF_ASSERT(xorNode->numSuccedents == 1);
540 1.3 oster RF_ASSERT(commitNode->numAntecedents == 1);
541 1.3 oster xorNode->succedents[0] = commitNode;
542 1.3 oster commitNode->antecedents[0] = xorNode;
543 1.3 oster commitNode->antType[0] = rf_control;
544 1.3 oster
545 1.3 oster /* connect the termNode to the commit node */
546 1.3 oster RF_ASSERT(commitNode->numSuccedents == 1);
547 1.3 oster RF_ASSERT(termNode->numAntecedents == 1);
548 1.3 oster RF_ASSERT(termNode->numSuccedents == 0);
549 1.3 oster commitNode->succedents[0] = termNode;
550 1.3 oster termNode->antType[0] = rf_control;
551 1.3 oster termNode->antecedents[0] = commitNode;
552 1.1 oster }
553 1.1 oster
554 1.6 oster #if (RF_INCLUDE_CHAINDECLUSTER > 0)
555 1.1 oster /******************************************************************************
556 1.1 oster * Create a degraded read DAG for Chained Declustering
557 1.1 oster *
558 1.1 oster * Hdr -> Nil -> R(p/s)d -> Cmt -> Trm
559 1.1 oster *
560 1.1 oster * The "Rd" node reads data from the surviving disk in the mirror pair
561 1.1 oster * Rpd - read of primary copy
562 1.1 oster * Rsd - read of secondary copy
563 1.1 oster *
564 1.1 oster * Parameters: raidPtr - description of the physical array
565 1.1 oster * asmap - logical & physical addresses for this access
566 1.1 oster * bp - buffer ptr (for holding write data)
567 1.3 oster * flags - general flags (e.g. disk locking)
568 1.1 oster * allocList - list of memory allocated in DAG creation
569 1.1 oster *****************************************************************************/
570 1.1 oster
571 1.3 oster void
572 1.16 oster rf_CreateRaidCDegradedReadDAG(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
573 1.16 oster RF_DagHeader_t *dag_h, void *bp,
574 1.16 oster RF_RaidAccessFlags_t flags,
575 1.16 oster RF_AllocListElem_t *allocList)
576 1.1 oster {
577 1.3 oster RF_DagNode_t *nodes, *rdNode, *blockNode, *commitNode, *termNode;
578 1.3 oster RF_StripeNum_t parityStripeID;
579 1.3 oster int useMirror, i, shiftable;
580 1.3 oster RF_ReconUnitNum_t which_ru;
581 1.3 oster RF_PhysDiskAddr_t *pda;
582 1.3 oster
583 1.3 oster if ((asmap->numDataFailed + asmap->numParityFailed) == 0) {
584 1.3 oster shiftable = RF_TRUE;
585 1.3 oster } else {
586 1.3 oster shiftable = RF_FALSE;
587 1.3 oster }
588 1.3 oster useMirror = 0;
589 1.3 oster parityStripeID = rf_RaidAddressToParityStripeID(&(raidPtr->Layout),
590 1.3 oster asmap->raidAddress, &which_ru);
591 1.3 oster
592 1.19 oster #if RF_DEBUG_DAG
593 1.3 oster if (rf_dagDebug) {
594 1.3 oster printf("[Creating RAID C degraded read DAG]\n");
595 1.3 oster }
596 1.19 oster #endif
597 1.3 oster dag_h->creator = "RaidCDegradedReadDAG";
598 1.3 oster /* alloc the Wnd nodes and the Wmir node */
599 1.3 oster if (asmap->numDataFailed == 0)
600 1.3 oster useMirror = RF_FALSE;
601 1.3 oster else
602 1.3 oster useMirror = RF_TRUE;
603 1.3 oster
604 1.3 oster /* total number of nodes = 1 + (block + commit + terminator) */
605 1.15 oster RF_MallocAndAdd(nodes, 4 * sizeof(RF_DagNode_t), (RF_DagNode_t *), allocList);
606 1.3 oster i = 0;
607 1.3 oster rdNode = &nodes[i];
608 1.3 oster i++;
609 1.3 oster blockNode = &nodes[i];
610 1.3 oster i++;
611 1.3 oster commitNode = &nodes[i];
612 1.3 oster i++;
613 1.3 oster termNode = &nodes[i];
614 1.3 oster i++;
615 1.3 oster
616 1.3 oster /*
617 1.3 oster * This dag can not commit until the commit node is reached.
618 1.3 oster * Errors prior to the commit point imply the dag has failed
619 1.3 oster * and must be retried.
620 1.3 oster */
621 1.3 oster dag_h->numCommitNodes = 1;
622 1.3 oster dag_h->numCommits = 0;
623 1.3 oster dag_h->numSuccedents = 1;
624 1.3 oster
625 1.3 oster /* initialize the block, commit, and terminator nodes */
626 1.3 oster rf_InitNode(blockNode, rf_wait, RF_FALSE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
627 1.3 oster NULL, 1, 0, 0, 0, dag_h, "Nil", allocList);
628 1.3 oster rf_InitNode(commitNode, rf_wait, RF_TRUE, rf_NullNodeFunc, rf_NullNodeUndoFunc,
629 1.3 oster NULL, 1, 1, 0, 0, dag_h, "Cmt", allocList);
630 1.3 oster rf_InitNode(termNode, rf_wait, RF_FALSE, rf_TerminateFunc, rf_TerminateUndoFunc,
631 1.3 oster NULL, 0, 1, 0, 0, dag_h, "Trm", allocList);
632 1.3 oster
633 1.3 oster pda = asmap->physInfo;
634 1.3 oster RF_ASSERT(pda != NULL);
635 1.3 oster /* parityInfo must describe entire parity unit */
636 1.3 oster RF_ASSERT(asmap->parityInfo->next == NULL);
637 1.3 oster
638 1.3 oster /* initialize the data node */
639 1.3 oster if (!useMirror) {
640 1.3 oster rf_InitNode(rdNode, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc,
641 1.3 oster rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, "Rpd", allocList);
642 1.3 oster if (shiftable && rf_compute_workload_shift(raidPtr, pda)) {
643 1.3 oster /* shift this read to the next disk in line */
644 1.3 oster rdNode->params[0].p = asmap->parityInfo;
645 1.3 oster rdNode->params[1].p = pda->bufPtr;
646 1.3 oster rdNode->params[2].v = parityStripeID;
647 1.18 oster rdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
648 1.3 oster } else {
649 1.3 oster /* read primary copy */
650 1.3 oster rdNode->params[0].p = pda;
651 1.3 oster rdNode->params[1].p = pda->bufPtr;
652 1.3 oster rdNode->params[2].v = parityStripeID;
653 1.18 oster rdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
654 1.3 oster }
655 1.3 oster } else {
656 1.3 oster /* read secondary copy of data */
657 1.3 oster rf_InitNode(rdNode, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc,
658 1.3 oster rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, "Rsd", allocList);
659 1.3 oster rdNode->params[0].p = asmap->parityInfo;
660 1.3 oster rdNode->params[1].p = pda->bufPtr;
661 1.3 oster rdNode->params[2].v = parityStripeID;
662 1.18 oster rdNode->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru);
663 1.3 oster }
664 1.3 oster
665 1.3 oster /* connect header to block node */
666 1.3 oster RF_ASSERT(dag_h->numSuccedents == 1);
667 1.3 oster RF_ASSERT(blockNode->numAntecedents == 0);
668 1.3 oster dag_h->succedents[0] = blockNode;
669 1.3 oster
670 1.3 oster /* connect block node to rdnode */
671 1.3 oster RF_ASSERT(blockNode->numSuccedents == 1);
672 1.3 oster RF_ASSERT(rdNode->numAntecedents == 1);
673 1.3 oster blockNode->succedents[0] = rdNode;
674 1.3 oster rdNode->antecedents[0] = blockNode;
675 1.3 oster rdNode->antType[0] = rf_control;
676 1.3 oster
677 1.3 oster /* connect rdnode to commit node */
678 1.3 oster RF_ASSERT(rdNode->numSuccedents == 1);
679 1.3 oster RF_ASSERT(commitNode->numAntecedents == 1);
680 1.3 oster rdNode->succedents[0] = commitNode;
681 1.3 oster commitNode->antecedents[0] = rdNode;
682 1.3 oster commitNode->antType[0] = rf_control;
683 1.3 oster
684 1.3 oster /* connect commit node to terminator */
685 1.3 oster RF_ASSERT(commitNode->numSuccedents == 1);
686 1.3 oster RF_ASSERT(termNode->numAntecedents == 1);
687 1.3 oster RF_ASSERT(termNode->numSuccedents == 0);
688 1.3 oster commitNode->succedents[0] = termNode;
689 1.3 oster termNode->antecedents[0] = commitNode;
690 1.3 oster termNode->antType[0] = rf_control;
691 1.1 oster }
692 1.8 mrg #endif /* (RF_INCLUDE_CHAINDECLUSTER > 0) */
693 1.6 oster
694 1.7 oster #if (RF_INCLUDE_DECL_PQ > 0) || (RF_INCLUDE_RAID6 > 0) || (RF_INCLUDE_EVENODD > 0)
695 1.1 oster /*
696 1.1 oster * XXX move this elsewhere?
697 1.1 oster */
698 1.3 oster void
699 1.16 oster rf_DD_GenerateFailedAccessASMs(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
700 1.16 oster RF_PhysDiskAddr_t **pdap, int *nNodep,
701 1.16 oster RF_PhysDiskAddr_t **pqpdap, int *nPQNodep,
702 1.16 oster RF_AllocListElem_t *allocList)
703 1.1 oster {
704 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
705 1.3 oster int PDAPerDisk, i;
706 1.3 oster RF_SectorCount_t secPerSU = layoutPtr->sectorsPerStripeUnit;
707 1.3 oster int numDataCol = layoutPtr->numDataCol;
708 1.3 oster int state;
709 1.3 oster RF_SectorNum_t suoff, suend;
710 1.3 oster unsigned firstDataCol, napdas, count;
711 1.3 oster RF_SectorNum_t fone_start, fone_end, ftwo_start = 0, ftwo_end = 0;
712 1.3 oster RF_PhysDiskAddr_t *fone = asmap->failedPDAs[0], *ftwo = asmap->failedPDAs[1];
713 1.3 oster RF_PhysDiskAddr_t *pda_p;
714 1.3 oster RF_PhysDiskAddr_t *phys_p;
715 1.3 oster RF_RaidAddr_t sosAddr;
716 1.3 oster
717 1.3 oster /* determine how many pda's we will have to generate per unaccess
718 1.3 oster * stripe. If there is only one failed data unit, it is one; if two,
719 1.3 oster * possibly two, depending wether they overlap. */
720 1.1 oster
721 1.3 oster fone_start = rf_StripeUnitOffset(layoutPtr, fone->startSector);
722 1.3 oster fone_end = fone_start + fone->numSector;
723 1.1 oster
724 1.1 oster #define CONS_PDA(if,start,num) \
725 1.14 oster pda_p->col = asmap->if->col; \
726 1.1 oster pda_p->startSector = ((asmap->if->startSector / secPerSU) * secPerSU) + start; \
727 1.1 oster pda_p->numSector = num; \
728 1.1 oster pda_p->next = NULL; \
729 1.1 oster RF_MallocAndAdd(pda_p->bufPtr,rf_RaidAddressToByte(raidPtr,num),(char *), allocList)
730 1.1 oster
731 1.3 oster if (asmap->numDataFailed == 1) {
732 1.3 oster PDAPerDisk = 1;
733 1.3 oster state = 1;
734 1.3 oster RF_MallocAndAdd(*pqpdap, 2 * sizeof(RF_PhysDiskAddr_t), (RF_PhysDiskAddr_t *), allocList);
735 1.3 oster pda_p = *pqpdap;
736 1.3 oster /* build p */
737 1.3 oster CONS_PDA(parityInfo, fone_start, fone->numSector);
738 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
739 1.1 oster pda_p++;
740 1.3 oster /* build q */
741 1.3 oster CONS_PDA(qInfo, fone_start, fone->numSector);
742 1.3 oster pda_p->type = RF_PDA_TYPE_Q;
743 1.3 oster } else {
744 1.3 oster ftwo_start = rf_StripeUnitOffset(layoutPtr, ftwo->startSector);
745 1.3 oster ftwo_end = ftwo_start + ftwo->numSector;
746 1.3 oster if (fone->numSector + ftwo->numSector > secPerSU) {
747 1.3 oster PDAPerDisk = 1;
748 1.3 oster state = 2;
749 1.3 oster RF_MallocAndAdd(*pqpdap, 2 * sizeof(RF_PhysDiskAddr_t), (RF_PhysDiskAddr_t *), allocList);
750 1.3 oster pda_p = *pqpdap;
751 1.3 oster CONS_PDA(parityInfo, 0, secPerSU);
752 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
753 1.3 oster pda_p++;
754 1.3 oster CONS_PDA(qInfo, 0, secPerSU);
755 1.3 oster pda_p->type = RF_PDA_TYPE_Q;
756 1.3 oster } else {
757 1.3 oster PDAPerDisk = 2;
758 1.3 oster state = 3;
759 1.3 oster /* four of them, fone, then ftwo */
760 1.3 oster RF_MallocAndAdd(*pqpdap, 4 * sizeof(RF_PhysDiskAddr_t), (RF_PhysDiskAddr_t *), allocList);
761 1.3 oster pda_p = *pqpdap;
762 1.3 oster CONS_PDA(parityInfo, fone_start, fone->numSector);
763 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
764 1.3 oster pda_p++;
765 1.3 oster CONS_PDA(qInfo, fone_start, fone->numSector);
766 1.3 oster pda_p->type = RF_PDA_TYPE_Q;
767 1.3 oster pda_p++;
768 1.3 oster CONS_PDA(parityInfo, ftwo_start, ftwo->numSector);
769 1.3 oster pda_p->type = RF_PDA_TYPE_PARITY;
770 1.3 oster pda_p++;
771 1.3 oster CONS_PDA(qInfo, ftwo_start, ftwo->numSector);
772 1.3 oster pda_p->type = RF_PDA_TYPE_Q;
773 1.1 oster }
774 1.3 oster }
775 1.3 oster /* figure out number of nonaccessed pda */
776 1.3 oster napdas = PDAPerDisk * (numDataCol - asmap->numStripeUnitsAccessed - (ftwo == NULL ? 1 : 0));
777 1.3 oster *nPQNodep = PDAPerDisk;
778 1.3 oster
779 1.3 oster /* sweep over the over accessed pda's, figuring out the number of
780 1.3 oster * additional pda's to generate. Of course, skip the failed ones */
781 1.3 oster
782 1.3 oster count = 0;
783 1.3 oster for (pda_p = asmap->physInfo; pda_p; pda_p = pda_p->next) {
784 1.3 oster if ((pda_p == fone) || (pda_p == ftwo))
785 1.3 oster continue;
786 1.3 oster suoff = rf_StripeUnitOffset(layoutPtr, pda_p->startSector);
787 1.3 oster suend = suoff + pda_p->numSector;
788 1.3 oster switch (state) {
789 1.3 oster case 1: /* one failed PDA to overlap */
790 1.3 oster /* if a PDA doesn't contain the failed unit, it can
791 1.3 oster * only miss the start or end, not both */
792 1.3 oster if ((suoff > fone_start) || (suend < fone_end))
793 1.3 oster count++;
794 1.3 oster break;
795 1.3 oster case 2: /* whole stripe */
796 1.3 oster if (suoff) /* leak at begining */
797 1.3 oster count++;
798 1.3 oster if (suend < numDataCol) /* leak at end */
799 1.3 oster count++;
800 1.3 oster break;
801 1.3 oster case 3: /* two disjoint units */
802 1.3 oster if ((suoff > fone_start) || (suend < fone_end))
803 1.3 oster count++;
804 1.3 oster if ((suoff > ftwo_start) || (suend < ftwo_end))
805 1.3 oster count++;
806 1.3 oster break;
807 1.3 oster default:
808 1.3 oster RF_PANIC();
809 1.1 oster }
810 1.3 oster }
811 1.3 oster
812 1.3 oster napdas += count;
813 1.3 oster *nNodep = napdas;
814 1.3 oster if (napdas == 0)
815 1.3 oster return; /* short circuit */
816 1.3 oster
817 1.3 oster /* allocate up our list of pda's */
818 1.3 oster
819 1.15 oster RF_MallocAndAdd(pda_p, napdas * sizeof(RF_PhysDiskAddr_t),
820 1.15 oster (RF_PhysDiskAddr_t *), allocList);
821 1.3 oster *pdap = pda_p;
822 1.3 oster
823 1.3 oster /* linkem together */
824 1.3 oster for (i = 0; i < (napdas - 1); i++)
825 1.3 oster pda_p[i].next = pda_p + (i + 1);
826 1.3 oster
827 1.3 oster /* march through the one's up to the first accessed disk */
828 1.3 oster firstDataCol = rf_RaidAddressToStripeUnitID(&(raidPtr->Layout), asmap->physInfo->raidAddress) % numDataCol;
829 1.3 oster sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, asmap->raidAddress);
830 1.3 oster for (i = 0; i < firstDataCol; i++) {
831 1.3 oster if ((pda_p - (*pdap)) == napdas)
832 1.3 oster continue;
833 1.3 oster pda_p->type = RF_PDA_TYPE_DATA;
834 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU);
835 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
836 1.3 oster /* skip over dead disks */
837 1.14 oster if (RF_DEAD_DISK(raidPtr->Disks[pda_p->col].status))
838 1.3 oster continue;
839 1.3 oster switch (state) {
840 1.3 oster case 1: /* fone */
841 1.3 oster pda_p->numSector = fone->numSector;
842 1.3 oster pda_p->raidAddress += fone_start;
843 1.3 oster pda_p->startSector += fone_start;
844 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
845 1.3 oster break;
846 1.3 oster case 2: /* full stripe */
847 1.3 oster pda_p->numSector = secPerSU;
848 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, secPerSU), (char *), allocList);
849 1.3 oster break;
850 1.3 oster case 3: /* two slabs */
851 1.3 oster pda_p->numSector = fone->numSector;
852 1.3 oster pda_p->raidAddress += fone_start;
853 1.3 oster pda_p->startSector += fone_start;
854 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
855 1.3 oster pda_p++;
856 1.3 oster pda_p->type = RF_PDA_TYPE_DATA;
857 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU);
858 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
859 1.3 oster pda_p->numSector = ftwo->numSector;
860 1.3 oster pda_p->raidAddress += ftwo_start;
861 1.3 oster pda_p->startSector += ftwo_start;
862 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
863 1.3 oster break;
864 1.3 oster default:
865 1.3 oster RF_PANIC();
866 1.1 oster }
867 1.3 oster pda_p++;
868 1.3 oster }
869 1.3 oster
870 1.3 oster /* march through the touched stripe units */
871 1.3 oster for (phys_p = asmap->physInfo; phys_p; phys_p = phys_p->next, i++) {
872 1.3 oster if ((phys_p == asmap->failedPDAs[0]) || (phys_p == asmap->failedPDAs[1]))
873 1.3 oster continue;
874 1.3 oster suoff = rf_StripeUnitOffset(layoutPtr, phys_p->startSector);
875 1.3 oster suend = suoff + phys_p->numSector;
876 1.3 oster switch (state) {
877 1.3 oster case 1: /* single buffer */
878 1.3 oster if (suoff > fone_start) {
879 1.3 oster RF_ASSERT(suend >= fone_end);
880 1.3 oster /* The data read starts after the mapped
881 1.3 oster * access, snip off the begining */
882 1.3 oster pda_p->numSector = suoff - fone_start;
883 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + fone_start;
884 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
885 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
886 1.3 oster pda_p++;
887 1.3 oster }
888 1.3 oster if (suend < fone_end) {
889 1.3 oster RF_ASSERT(suoff <= fone_start);
890 1.3 oster /* The data read stops before the end of the
891 1.3 oster * failed access, extend */
892 1.3 oster pda_p->numSector = fone_end - suend;
893 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + suend; /* off by one? */
894 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
895 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
896 1.3 oster pda_p++;
897 1.3 oster }
898 1.3 oster break;
899 1.3 oster case 2: /* whole stripe unit */
900 1.3 oster RF_ASSERT((suoff == 0) || (suend == secPerSU));
901 1.3 oster if (suend < secPerSU) { /* short read, snip from end
902 1.3 oster * on */
903 1.3 oster pda_p->numSector = secPerSU - suend;
904 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + suend; /* off by one? */
905 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
906 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
907 1.3 oster pda_p++;
908 1.3 oster } else
909 1.3 oster if (suoff > 0) { /* short at front */
910 1.3 oster pda_p->numSector = suoff;
911 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU);
912 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
913 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
914 1.3 oster pda_p++;
915 1.3 oster }
916 1.3 oster break;
917 1.3 oster case 3: /* two nonoverlapping failures */
918 1.3 oster if ((suoff > fone_start) || (suend < fone_end)) {
919 1.3 oster if (suoff > fone_start) {
920 1.3 oster RF_ASSERT(suend >= fone_end);
921 1.3 oster /* The data read starts after the
922 1.3 oster * mapped access, snip off the
923 1.3 oster * begining */
924 1.3 oster pda_p->numSector = suoff - fone_start;
925 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + fone_start;
926 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
927 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
928 1.3 oster pda_p++;
929 1.3 oster }
930 1.3 oster if (suend < fone_end) {
931 1.3 oster RF_ASSERT(suoff <= fone_start);
932 1.3 oster /* The data read stops before the end
933 1.3 oster * of the failed access, extend */
934 1.3 oster pda_p->numSector = fone_end - suend;
935 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + suend; /* off by one? */
936 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
937 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
938 1.3 oster pda_p++;
939 1.3 oster }
940 1.3 oster }
941 1.3 oster if ((suoff > ftwo_start) || (suend < ftwo_end)) {
942 1.3 oster if (suoff > ftwo_start) {
943 1.3 oster RF_ASSERT(suend >= ftwo_end);
944 1.3 oster /* The data read starts after the
945 1.3 oster * mapped access, snip off the
946 1.3 oster * begining */
947 1.3 oster pda_p->numSector = suoff - ftwo_start;
948 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + ftwo_start;
949 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
950 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
951 1.3 oster pda_p++;
952 1.3 oster }
953 1.3 oster if (suend < ftwo_end) {
954 1.3 oster RF_ASSERT(suoff <= ftwo_start);
955 1.3 oster /* The data read stops before the end
956 1.3 oster * of the failed access, extend */
957 1.3 oster pda_p->numSector = ftwo_end - suend;
958 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU) + suend; /* off by one? */
959 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
960 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
961 1.3 oster pda_p++;
962 1.3 oster }
963 1.3 oster }
964 1.3 oster break;
965 1.3 oster default:
966 1.3 oster RF_PANIC();
967 1.1 oster }
968 1.1 oster }
969 1.1 oster
970 1.3 oster /* after the last accessed disk */
971 1.3 oster for (; i < numDataCol; i++) {
972 1.3 oster if ((pda_p - (*pdap)) == napdas)
973 1.3 oster continue;
974 1.3 oster pda_p->type = RF_PDA_TYPE_DATA;
975 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU);
976 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
977 1.3 oster /* skip over dead disks */
978 1.14 oster if (RF_DEAD_DISK(raidPtr->Disks[pda_p->col].status))
979 1.3 oster continue;
980 1.3 oster switch (state) {
981 1.3 oster case 1: /* fone */
982 1.3 oster pda_p->numSector = fone->numSector;
983 1.3 oster pda_p->raidAddress += fone_start;
984 1.3 oster pda_p->startSector += fone_start;
985 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
986 1.3 oster break;
987 1.3 oster case 2: /* full stripe */
988 1.3 oster pda_p->numSector = secPerSU;
989 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, secPerSU), (char *), allocList);
990 1.3 oster break;
991 1.3 oster case 3: /* two slabs */
992 1.3 oster pda_p->numSector = fone->numSector;
993 1.3 oster pda_p->raidAddress += fone_start;
994 1.3 oster pda_p->startSector += fone_start;
995 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
996 1.3 oster pda_p++;
997 1.3 oster pda_p->type = RF_PDA_TYPE_DATA;
998 1.3 oster pda_p->raidAddress = sosAddr + (i * secPerSU);
999 1.14 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda_p->raidAddress, &(pda_p->col), &(pda_p->startSector), 0);
1000 1.3 oster pda_p->numSector = ftwo->numSector;
1001 1.3 oster pda_p->raidAddress += ftwo_start;
1002 1.3 oster pda_p->startSector += ftwo_start;
1003 1.3 oster RF_MallocAndAdd(pda_p->bufPtr, rf_RaidAddressToByte(raidPtr, pda_p->numSector), (char *), allocList);
1004 1.3 oster break;
1005 1.3 oster default:
1006 1.3 oster RF_PANIC();
1007 1.3 oster }
1008 1.3 oster pda_p++;
1009 1.3 oster }
1010 1.3 oster
1011 1.3 oster RF_ASSERT(pda_p - *pdap == napdas);
1012 1.3 oster return;
1013 1.1 oster }
1014 1.1 oster #define INIT_DISK_NODE(node,name) \
1015 1.1 oster rf_InitNode(node, rf_wait, RF_FALSE, rf_DiskReadFunc, rf_DiskReadUndoFunc, rf_GenericWakeupFunc, 2,1,4,0, dag_h, name, allocList); \
1016 1.1 oster (node)->succedents[0] = unblockNode; \
1017 1.1 oster (node)->succedents[1] = recoveryNode; \
1018 1.1 oster (node)->antecedents[0] = blockNode; \
1019 1.1 oster (node)->antType[0] = rf_control
1020 1.1 oster
1021 1.1 oster #define DISK_NODE_PARAMS(_node_,_p_) \
1022 1.1 oster (_node_).params[0].p = _p_ ; \
1023 1.1 oster (_node_).params[1].p = (_p_)->bufPtr; \
1024 1.1 oster (_node_).params[2].v = parityStripeID; \
1025 1.18 oster (_node_).params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, which_ru)
1026 1.1 oster
1027 1.3 oster void
1028 1.16 oster rf_DoubleDegRead(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
1029 1.16 oster RF_DagHeader_t *dag_h, void *bp, RF_RaidAccessFlags_t flags,
1030 1.16 oster RF_AllocListElem_t *allocList,
1031 1.16 oster char *redundantReadNodeName, char *recoveryNodeName,
1032 1.16 oster int (*recovFunc) (RF_DagNode_t *))
1033 1.1 oster {
1034 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
1035 1.3 oster RF_DagNode_t *nodes, *rudNodes, *rrdNodes, *recoveryNode, *blockNode,
1036 1.3 oster *unblockNode, *rpNodes, *rqNodes, *termNode;
1037 1.3 oster RF_PhysDiskAddr_t *pda, *pqPDAs;
1038 1.3 oster RF_PhysDiskAddr_t *npdas;
1039 1.3 oster int nNodes, nRrdNodes, nRudNodes, i;
1040 1.3 oster RF_ReconUnitNum_t which_ru;
1041 1.3 oster int nReadNodes, nPQNodes;
1042 1.3 oster RF_PhysDiskAddr_t *failedPDA = asmap->failedPDAs[0];
1043 1.3 oster RF_PhysDiskAddr_t *failedPDAtwo = asmap->failedPDAs[1];
1044 1.3 oster RF_StripeNum_t parityStripeID = rf_RaidAddressToParityStripeID(layoutPtr, asmap->raidAddress, &which_ru);
1045 1.3 oster
1046 1.19 oster #if RF_DEBUG_DAG
1047 1.3 oster if (rf_dagDebug)
1048 1.3 oster printf("[Creating Double Degraded Read DAG]\n");
1049 1.19 oster #endif
1050 1.3 oster rf_DD_GenerateFailedAccessASMs(raidPtr, asmap, &npdas, &nRrdNodes, &pqPDAs, &nPQNodes, allocList);
1051 1.3 oster
1052 1.3 oster nRudNodes = asmap->numStripeUnitsAccessed - (asmap->numDataFailed);
1053 1.3 oster nReadNodes = nRrdNodes + nRudNodes + 2 * nPQNodes;
1054 1.3 oster nNodes = 4 /* block, unblock, recovery, term */ + nReadNodes;
1055 1.3 oster
1056 1.15 oster RF_MallocAndAdd(nodes, nNodes * sizeof(RF_DagNode_t), (RF_DagNode_t *), allocList);
1057 1.3 oster i = 0;
1058 1.3 oster blockNode = &nodes[i];
1059 1.3 oster i += 1;
1060 1.3 oster unblockNode = &nodes[i];
1061 1.3 oster i += 1;
1062 1.3 oster recoveryNode = &nodes[i];
1063 1.3 oster i += 1;
1064 1.3 oster termNode = &nodes[i];
1065 1.3 oster i += 1;
1066 1.3 oster rudNodes = &nodes[i];
1067 1.3 oster i += nRudNodes;
1068 1.3 oster rrdNodes = &nodes[i];
1069 1.3 oster i += nRrdNodes;
1070 1.3 oster rpNodes = &nodes[i];
1071 1.3 oster i += nPQNodes;
1072 1.3 oster rqNodes = &nodes[i];
1073 1.3 oster i += nPQNodes;
1074 1.3 oster RF_ASSERT(i == nNodes);
1075 1.3 oster
1076 1.3 oster dag_h->numSuccedents = 1;
1077 1.3 oster dag_h->succedents[0] = blockNode;
1078 1.3 oster dag_h->creator = "DoubleDegRead";
1079 1.3 oster dag_h->numCommits = 0;
1080 1.3 oster dag_h->numCommitNodes = 1; /* unblock */
1081 1.3 oster
1082 1.3 oster rf_InitNode(termNode, rf_wait, RF_FALSE, rf_TerminateFunc, rf_TerminateUndoFunc, NULL, 0, 2, 0, 0, dag_h, "Trm", allocList);
1083 1.3 oster termNode->antecedents[0] = unblockNode;
1084 1.3 oster termNode->antType[0] = rf_control;
1085 1.3 oster termNode->antecedents[1] = recoveryNode;
1086 1.3 oster termNode->antType[1] = rf_control;
1087 1.3 oster
1088 1.3 oster /* init the block and unblock nodes */
1089 1.3 oster /* The block node has all nodes except itself, unblock and recovery as
1090 1.3 oster * successors. Similarly for predecessors of the unblock. */
1091 1.3 oster rf_InitNode(blockNode, rf_wait, RF_FALSE, rf_NullNodeFunc, rf_NullNodeUndoFunc, NULL, nReadNodes, 0, 0, 0, dag_h, "Nil", allocList);
1092 1.3 oster rf_InitNode(unblockNode, rf_wait, RF_TRUE, rf_NullNodeFunc, rf_NullNodeUndoFunc, NULL, 1, nReadNodes, 0, 0, dag_h, "Nil", allocList);
1093 1.3 oster
1094 1.3 oster for (i = 0; i < nReadNodes; i++) {
1095 1.3 oster blockNode->succedents[i] = rudNodes + i;
1096 1.3 oster unblockNode->antecedents[i] = rudNodes + i;
1097 1.3 oster unblockNode->antType[i] = rf_control;
1098 1.3 oster }
1099 1.3 oster unblockNode->succedents[0] = termNode;
1100 1.3 oster
1101 1.3 oster /* The recovery node has all the reads as predecessors, and the term
1102 1.3 oster * node as successors. It gets a pda as a param from each of the read
1103 1.3 oster * nodes plus the raidPtr. For each failed unit is has a result pda. */
1104 1.3 oster rf_InitNode(recoveryNode, rf_wait, RF_FALSE, recovFunc, rf_NullNodeUndoFunc, NULL,
1105 1.3 oster 1, /* succesors */
1106 1.3 oster nReadNodes, /* preds */
1107 1.3 oster nReadNodes + 2, /* params */
1108 1.3 oster asmap->numDataFailed, /* results */
1109 1.3 oster dag_h, recoveryNodeName, allocList);
1110 1.3 oster
1111 1.3 oster recoveryNode->succedents[0] = termNode;
1112 1.3 oster for (i = 0; i < nReadNodes; i++) {
1113 1.3 oster recoveryNode->antecedents[i] = rudNodes + i;
1114 1.3 oster recoveryNode->antType[i] = rf_trueData;
1115 1.3 oster }
1116 1.3 oster
1117 1.3 oster /* build the read nodes, then come back and fill in recovery params
1118 1.3 oster * and results */
1119 1.3 oster pda = asmap->physInfo;
1120 1.3 oster for (i = 0; i < nRudNodes; pda = pda->next) {
1121 1.3 oster if ((pda == failedPDA) || (pda == failedPDAtwo))
1122 1.3 oster continue;
1123 1.3 oster INIT_DISK_NODE(rudNodes + i, "Rud");
1124 1.3 oster RF_ASSERT(pda);
1125 1.3 oster DISK_NODE_PARAMS(rudNodes[i], pda);
1126 1.3 oster i++;
1127 1.3 oster }
1128 1.3 oster
1129 1.3 oster pda = npdas;
1130 1.3 oster for (i = 0; i < nRrdNodes; i++, pda = pda->next) {
1131 1.3 oster INIT_DISK_NODE(rrdNodes + i, "Rrd");
1132 1.3 oster RF_ASSERT(pda);
1133 1.3 oster DISK_NODE_PARAMS(rrdNodes[i], pda);
1134 1.3 oster }
1135 1.3 oster
1136 1.3 oster /* redundancy pdas */
1137 1.3 oster pda = pqPDAs;
1138 1.3 oster INIT_DISK_NODE(rpNodes, "Rp");
1139 1.3 oster RF_ASSERT(pda);
1140 1.3 oster DISK_NODE_PARAMS(rpNodes[0], pda);
1141 1.3 oster pda++;
1142 1.3 oster INIT_DISK_NODE(rqNodes, redundantReadNodeName);
1143 1.3 oster RF_ASSERT(pda);
1144 1.3 oster DISK_NODE_PARAMS(rqNodes[0], pda);
1145 1.3 oster if (nPQNodes == 2) {
1146 1.3 oster pda++;
1147 1.3 oster INIT_DISK_NODE(rpNodes + 1, "Rp");
1148 1.3 oster RF_ASSERT(pda);
1149 1.3 oster DISK_NODE_PARAMS(rpNodes[1], pda);
1150 1.3 oster pda++;
1151 1.3 oster INIT_DISK_NODE(rqNodes + 1, redundantReadNodeName);
1152 1.3 oster RF_ASSERT(pda);
1153 1.3 oster DISK_NODE_PARAMS(rqNodes[1], pda);
1154 1.3 oster }
1155 1.3 oster /* fill in recovery node params */
1156 1.3 oster for (i = 0; i < nReadNodes; i++)
1157 1.3 oster recoveryNode->params[i] = rudNodes[i].params[0]; /* pda */
1158 1.3 oster recoveryNode->params[i++].p = (void *) raidPtr;
1159 1.3 oster recoveryNode->params[i++].p = (void *) asmap;
1160 1.3 oster recoveryNode->results[0] = failedPDA;
1161 1.3 oster if (asmap->numDataFailed == 2)
1162 1.3 oster recoveryNode->results[1] = failedPDAtwo;
1163 1.1 oster
1164 1.3 oster /* zero fill the target data buffers? */
1165 1.1 oster }
1166 1.6 oster
1167 1.7 oster #endif /* (RF_INCLUDE_DECL_PQ > 0) || (RF_INCLUDE_RAID6 > 0) || (RF_INCLUDE_EVENODD > 0) */
1168