rf_parityscan.c revision 1.6 1 1.6 oster /* $NetBSD: rf_parityscan.c,v 1.6 1999/08/10 22:19:27 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 * rf_parityscan.c -- misc utilities related to parity verification
32 1.1 oster *
33 1.1 oster *****************************************************************************/
34 1.1 oster
35 1.1 oster #include "rf_types.h"
36 1.1 oster #include "rf_raid.h"
37 1.1 oster #include "rf_dag.h"
38 1.1 oster #include "rf_dagfuncs.h"
39 1.1 oster #include "rf_dagutils.h"
40 1.1 oster #include "rf_mcpair.h"
41 1.1 oster #include "rf_general.h"
42 1.1 oster #include "rf_engine.h"
43 1.1 oster #include "rf_parityscan.h"
44 1.1 oster #include "rf_map.h"
45 1.1 oster #include "rf_sys.h"
46 1.1 oster
47 1.1 oster /*****************************************************************************************
48 1.1 oster *
49 1.1 oster * walk through the entire arry and write new parity.
50 1.1 oster * This works by creating two DAGs, one to read a stripe of data and one to
51 1.1 oster * write new parity. The first is executed, the data is xored together, and
52 1.1 oster * then the second is executed. To avoid constantly building and tearing down
53 1.1 oster * the DAGs, we create them a priori and fill them in with the mapping
54 1.1 oster * information as we go along.
55 1.1 oster *
56 1.1 oster * there should never be more than one thread running this.
57 1.1 oster *
58 1.1 oster ****************************************************************************************/
59 1.1 oster
60 1.3 oster int
61 1.3 oster rf_RewriteParity(raidPtr)
62 1.3 oster RF_Raid_t *raidPtr;
63 1.1 oster {
64 1.3 oster RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
65 1.3 oster RF_AccessStripeMapHeader_t *asm_h;
66 1.6 oster int ret_val;
67 1.4 oster int rc;
68 1.3 oster RF_PhysDiskAddr_t pda;
69 1.3 oster RF_SectorNum_t i;
70 1.5 oster
71 1.5 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
72 1.5 oster /* There isn't any parity. Call it "okay." */
73 1.5 oster return (RF_PARITY_OKAY);
74 1.5 oster }
75 1.5 oster if (raidPtr->status[0] != rf_rs_optimal) {
76 1.5 oster /*
77 1.5 oster * We're in degraded mode. Don't try to verify parity now!
78 1.5 oster * XXX: this should be a "we don't want to", not a
79 1.5 oster * "we can't" error.
80 1.5 oster */
81 1.5 oster return (RF_PARITY_COULD_NOT_VERIFY);
82 1.5 oster }
83 1.3 oster
84 1.6 oster ret_val = 0;
85 1.6 oster
86 1.3 oster pda.startSector = 0;
87 1.3 oster pda.numSector = raidPtr->Layout.sectorsPerStripeUnit;
88 1.6 oster rc = RF_PARITY_OKAY;
89 1.1 oster
90 1.6 oster for (i = 0; i < raidPtr->totalSectors &&
91 1.6 oster rc <= RF_PARITY_CORRECTED;
92 1.4 oster i += layoutPtr->dataSectorsPerStripe) {
93 1.4 oster asm_h = rf_MapAccess(raidPtr, i,
94 1.4 oster layoutPtr->dataSectorsPerStripe,
95 1.4 oster NULL, RF_DONT_REMAP);
96 1.4 oster
97 1.3 oster rc = rf_VerifyParity(raidPtr, asm_h->stripeMap, 1, 0);
98 1.4 oster
99 1.3 oster switch (rc) {
100 1.3 oster case RF_PARITY_OKAY:
101 1.3 oster case RF_PARITY_CORRECTED:
102 1.3 oster break;
103 1.3 oster case RF_PARITY_BAD:
104 1.3 oster printf("Parity bad during correction\n");
105 1.6 oster ret_val = 1;
106 1.3 oster break;
107 1.3 oster case RF_PARITY_COULD_NOT_CORRECT:
108 1.3 oster printf("Could not correct bad parity\n");
109 1.6 oster ret_val = 1;
110 1.3 oster break;
111 1.3 oster case RF_PARITY_COULD_NOT_VERIFY:
112 1.3 oster printf("Could not verify parity\n");
113 1.6 oster ret_val = 1;
114 1.3 oster break;
115 1.3 oster default:
116 1.3 oster printf("Bad rc=%d from VerifyParity in RewriteParity\n", rc);
117 1.6 oster ret_val = 1;
118 1.3 oster }
119 1.3 oster rf_FreeAccessStripeMap(asm_h);
120 1.3 oster }
121 1.6 oster return (ret_val);
122 1.1 oster }
123 1.1 oster /*****************************************************************************************
124 1.1 oster *
125 1.1 oster * verify that the parity in a particular stripe is correct.
126 1.1 oster * we validate only the range of parity defined by parityPDA, since
127 1.1 oster * this is all we have locked. The way we do this is to create an asm
128 1.1 oster * that maps the whole stripe and then range-restrict it to the parity
129 1.1 oster * region defined by the parityPDA.
130 1.1 oster *
131 1.1 oster ****************************************************************************************/
132 1.3 oster int
133 1.3 oster rf_VerifyParity(raidPtr, aasm, correct_it, flags)
134 1.3 oster RF_Raid_t *raidPtr;
135 1.3 oster RF_AccessStripeMap_t *aasm;
136 1.3 oster int correct_it;
137 1.3 oster RF_RaidAccessFlags_t flags;
138 1.1 oster {
139 1.3 oster RF_PhysDiskAddr_t *parityPDA;
140 1.3 oster RF_AccessStripeMap_t *doasm;
141 1.3 oster RF_LayoutSW_t *lp;
142 1.3 oster int lrc, rc;
143 1.3 oster
144 1.3 oster lp = raidPtr->Layout.map;
145 1.3 oster if (lp->faultsTolerated == 0) {
146 1.3 oster /*
147 1.3 oster * There isn't any parity. Call it "okay."
148 1.3 oster */
149 1.3 oster return (RF_PARITY_OKAY);
150 1.3 oster }
151 1.3 oster rc = RF_PARITY_OKAY;
152 1.3 oster if (lp->VerifyParity) {
153 1.3 oster for (doasm = aasm; doasm; doasm = doasm->next) {
154 1.4 oster for (parityPDA = doasm->parityInfo; parityPDA;
155 1.4 oster parityPDA = parityPDA->next) {
156 1.4 oster lrc = lp->VerifyParity(raidPtr,
157 1.4 oster doasm->raidAddress,
158 1.4 oster parityPDA,
159 1.4 oster correct_it, flags);
160 1.3 oster if (lrc > rc) {
161 1.3 oster /* see rf_parityscan.h for why this
162 1.3 oster * works */
163 1.3 oster rc = lrc;
164 1.3 oster }
165 1.3 oster }
166 1.3 oster }
167 1.3 oster } else {
168 1.3 oster rc = RF_PARITY_COULD_NOT_VERIFY;
169 1.3 oster }
170 1.3 oster return (rc);
171 1.1 oster }
172 1.1 oster
173 1.3 oster int
174 1.3 oster rf_VerifyParityBasic(raidPtr, raidAddr, parityPDA, correct_it, flags)
175 1.3 oster RF_Raid_t *raidPtr;
176 1.3 oster RF_RaidAddr_t raidAddr;
177 1.3 oster RF_PhysDiskAddr_t *parityPDA;
178 1.3 oster int correct_it;
179 1.3 oster RF_RaidAccessFlags_t flags;
180 1.1 oster {
181 1.3 oster RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
182 1.4 oster RF_RaidAddr_t startAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr,
183 1.4 oster raidAddr);
184 1.3 oster RF_SectorCount_t numsector = parityPDA->numSector;
185 1.3 oster int numbytes = rf_RaidAddressToByte(raidPtr, numsector);
186 1.3 oster int bytesPerStripe = numbytes * layoutPtr->numDataCol;
187 1.3 oster RF_DagHeader_t *rd_dag_h, *wr_dag_h; /* read, write dag */
188 1.3 oster RF_DagNode_t *blockNode, *unblockNode, *wrBlock, *wrUnblock;
189 1.3 oster RF_AccessStripeMapHeader_t *asm_h;
190 1.3 oster RF_AccessStripeMap_t *asmap;
191 1.3 oster RF_AllocListElem_t *alloclist;
192 1.3 oster RF_PhysDiskAddr_t *pda;
193 1.3 oster char *pbuf, *buf, *end_p, *p;
194 1.3 oster int i, retcode;
195 1.3 oster RF_ReconUnitNum_t which_ru;
196 1.4 oster RF_StripeNum_t psID = rf_RaidAddressToParityStripeID(layoutPtr,
197 1.4 oster raidAddr,
198 1.4 oster &which_ru);
199 1.3 oster int stripeWidth = layoutPtr->numDataCol + layoutPtr->numParityCol;
200 1.3 oster RF_AccTraceEntry_t tracerec;
201 1.3 oster RF_MCPair_t *mcpair;
202 1.3 oster
203 1.3 oster retcode = RF_PARITY_OKAY;
204 1.3 oster
205 1.3 oster mcpair = rf_AllocMCPair();
206 1.3 oster rf_MakeAllocList(alloclist);
207 1.3 oster RF_MallocAndAdd(buf, numbytes * (layoutPtr->numDataCol + layoutPtr->numParityCol), (char *), alloclist);
208 1.3 oster RF_CallocAndAdd(pbuf, 1, numbytes, (char *), alloclist); /* use calloc to make
209 1.3 oster * sure buffer is zeroed */
210 1.3 oster end_p = buf + bytesPerStripe;
211 1.3 oster
212 1.3 oster rd_dag_h = rf_MakeSimpleDAG(raidPtr, stripeWidth, numbytes, buf, rf_DiskReadFunc, rf_DiskReadUndoFunc,
213 1.3 oster "Rod", alloclist, flags, RF_IO_NORMAL_PRIORITY);
214 1.3 oster blockNode = rd_dag_h->succedents[0];
215 1.3 oster unblockNode = blockNode->succedents[0]->succedents[0];
216 1.3 oster
217 1.3 oster /* map the stripe and fill in the PDAs in the dag */
218 1.3 oster asm_h = rf_MapAccess(raidPtr, startAddr, layoutPtr->dataSectorsPerStripe, buf, RF_DONT_REMAP);
219 1.3 oster asmap = asm_h->stripeMap;
220 1.3 oster
221 1.3 oster for (pda = asmap->physInfo, i = 0; i < layoutPtr->numDataCol; i++, pda = pda->next) {
222 1.3 oster RF_ASSERT(pda);
223 1.3 oster rf_RangeRestrictPDA(raidPtr, parityPDA, pda, 0, 1);
224 1.3 oster RF_ASSERT(pda->numSector != 0);
225 1.3 oster if (rf_TryToRedirectPDA(raidPtr, pda, 0))
226 1.3 oster goto out; /* no way to verify parity if disk is
227 1.3 oster * dead. return w/ good status */
228 1.3 oster blockNode->succedents[i]->params[0].p = pda;
229 1.3 oster blockNode->succedents[i]->params[2].v = psID;
230 1.3 oster blockNode->succedents[i]->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, 0, 0, which_ru);
231 1.3 oster }
232 1.3 oster
233 1.3 oster RF_ASSERT(!asmap->parityInfo->next);
234 1.3 oster rf_RangeRestrictPDA(raidPtr, parityPDA, asmap->parityInfo, 0, 1);
235 1.3 oster RF_ASSERT(asmap->parityInfo->numSector != 0);
236 1.3 oster if (rf_TryToRedirectPDA(raidPtr, asmap->parityInfo, 1))
237 1.3 oster goto out;
238 1.3 oster blockNode->succedents[layoutPtr->numDataCol]->params[0].p = asmap->parityInfo;
239 1.3 oster
240 1.3 oster /* fire off the DAG */
241 1.3 oster bzero((char *) &tracerec, sizeof(tracerec));
242 1.3 oster rd_dag_h->tracerec = &tracerec;
243 1.3 oster
244 1.3 oster if (rf_verifyParityDebug) {
245 1.3 oster printf("Parity verify read dag:\n");
246 1.3 oster rf_PrintDAGList(rd_dag_h);
247 1.3 oster }
248 1.3 oster RF_LOCK_MUTEX(mcpair->mutex);
249 1.3 oster mcpair->flag = 0;
250 1.3 oster rf_DispatchDAG(rd_dag_h, (void (*) (void *)) rf_MCPairWakeupFunc,
251 1.3 oster (void *) mcpair);
252 1.3 oster while (!mcpair->flag)
253 1.3 oster RF_WAIT_COND(mcpair->cond, mcpair->mutex);
254 1.3 oster RF_UNLOCK_MUTEX(mcpair->mutex);
255 1.3 oster if (rd_dag_h->status != rf_enable) {
256 1.3 oster RF_ERRORMSG("Unable to verify parity: can't read the stripe\n");
257 1.3 oster retcode = RF_PARITY_COULD_NOT_VERIFY;
258 1.3 oster goto out;
259 1.3 oster }
260 1.3 oster for (p = buf; p < end_p; p += numbytes) {
261 1.3 oster rf_bxor(p, pbuf, numbytes, NULL);
262 1.3 oster }
263 1.3 oster for (i = 0; i < numbytes; i++) {
264 1.1 oster #if 0
265 1.3 oster if (pbuf[i] != 0 || buf[bytesPerStripe + i] != 0) {
266 1.3 oster printf("Bytes: %d %d %d\n", i, pbuf[i], buf[bytesPerStripe + i]);
267 1.3 oster }
268 1.1 oster #endif
269 1.3 oster if (pbuf[i] != buf[bytesPerStripe + i]) {
270 1.3 oster if (!correct_it)
271 1.3 oster RF_ERRORMSG3("Parity verify error: byte %d of parity is 0x%x should be 0x%x\n",
272 1.3 oster i, (u_char) buf[bytesPerStripe + i], (u_char) pbuf[i]);
273 1.3 oster retcode = RF_PARITY_BAD;
274 1.3 oster break;
275 1.3 oster }
276 1.3 oster }
277 1.1 oster
278 1.3 oster if (retcode && correct_it) {
279 1.3 oster wr_dag_h = rf_MakeSimpleDAG(raidPtr, 1, numbytes, pbuf, rf_DiskWriteFunc, rf_DiskWriteUndoFunc,
280 1.3 oster "Wnp", alloclist, flags, RF_IO_NORMAL_PRIORITY);
281 1.3 oster wrBlock = wr_dag_h->succedents[0];
282 1.3 oster wrUnblock = wrBlock->succedents[0]->succedents[0];
283 1.3 oster wrBlock->succedents[0]->params[0].p = asmap->parityInfo;
284 1.3 oster wrBlock->succedents[0]->params[2].v = psID;
285 1.3 oster wrBlock->succedents[0]->params[3].v = RF_CREATE_PARAM3(RF_IO_NORMAL_PRIORITY, 0, 0, which_ru);
286 1.3 oster bzero((char *) &tracerec, sizeof(tracerec));
287 1.3 oster wr_dag_h->tracerec = &tracerec;
288 1.3 oster if (rf_verifyParityDebug) {
289 1.3 oster printf("Parity verify write dag:\n");
290 1.3 oster rf_PrintDAGList(wr_dag_h);
291 1.3 oster }
292 1.3 oster RF_LOCK_MUTEX(mcpair->mutex);
293 1.3 oster mcpair->flag = 0;
294 1.3 oster rf_DispatchDAG(wr_dag_h, (void (*) (void *)) rf_MCPairWakeupFunc,
295 1.3 oster (void *) mcpair);
296 1.3 oster while (!mcpair->flag)
297 1.3 oster RF_WAIT_COND(mcpair->cond, mcpair->mutex);
298 1.3 oster RF_UNLOCK_MUTEX(mcpair->mutex);
299 1.3 oster if (wr_dag_h->status != rf_enable) {
300 1.3 oster RF_ERRORMSG("Unable to correct parity in VerifyParity: can't write the stripe\n");
301 1.3 oster retcode = RF_PARITY_COULD_NOT_CORRECT;
302 1.3 oster }
303 1.3 oster rf_FreeDAG(wr_dag_h);
304 1.3 oster if (retcode == RF_PARITY_BAD)
305 1.3 oster retcode = RF_PARITY_CORRECTED;
306 1.3 oster }
307 1.1 oster out:
308 1.3 oster rf_FreeAccessStripeMap(asm_h);
309 1.3 oster rf_FreeAllocList(alloclist);
310 1.3 oster rf_FreeDAG(rd_dag_h);
311 1.3 oster rf_FreeMCPair(mcpair);
312 1.3 oster return (retcode);
313 1.1 oster }
314 1.1 oster
315 1.3 oster int
316 1.3 oster rf_TryToRedirectPDA(raidPtr, pda, parity)
317 1.3 oster RF_Raid_t *raidPtr;
318 1.3 oster RF_PhysDiskAddr_t *pda;
319 1.3 oster int parity;
320 1.1 oster {
321 1.3 oster if (raidPtr->Disks[pda->row][pda->col].status == rf_ds_reconstructing) {
322 1.3 oster if (rf_CheckRUReconstructed(raidPtr->reconControl[pda->row]->reconMap, pda->startSector)) {
323 1.3 oster if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
324 1.3 oster RF_RowCol_t or = pda->row, oc = pda->col;
325 1.3 oster RF_SectorNum_t os = pda->startSector;
326 1.3 oster if (parity) {
327 1.3 oster (raidPtr->Layout.map->MapParity) (raidPtr, pda->raidAddress, &pda->row, &pda->col, &pda->startSector, RF_REMAP);
328 1.3 oster if (rf_verifyParityDebug)
329 1.3 oster printf("VerifyParity: Redir P r %d c %d sect %ld -> r %d c %d sect %ld\n",
330 1.3 oster or, oc, (long) os, pda->row, pda->col, (long) pda->startSector);
331 1.3 oster } else {
332 1.3 oster (raidPtr->Layout.map->MapSector) (raidPtr, pda->raidAddress, &pda->row, &pda->col, &pda->startSector, RF_REMAP);
333 1.3 oster if (rf_verifyParityDebug)
334 1.3 oster printf("VerifyParity: Redir D r %d c %d sect %ld -> r %d c %d sect %ld\n",
335 1.3 oster or, oc, (long) os, pda->row, pda->col, (long) pda->startSector);
336 1.3 oster }
337 1.3 oster } else {
338 1.3 oster RF_RowCol_t spRow = raidPtr->Disks[pda->row][pda->col].spareRow;
339 1.3 oster RF_RowCol_t spCol = raidPtr->Disks[pda->row][pda->col].spareCol;
340 1.3 oster pda->row = spRow;
341 1.3 oster pda->col = spCol;
342 1.3 oster }
343 1.3 oster }
344 1.3 oster }
345 1.3 oster if (RF_DEAD_DISK(raidPtr->Disks[pda->row][pda->col].status))
346 1.3 oster return (1);
347 1.3 oster return (0);
348 1.1 oster }
349 1.1 oster /*****************************************************************************************
350 1.1 oster *
351 1.1 oster * currently a stub.
352 1.1 oster *
353 1.1 oster * takes as input an ASM describing a write operation and containing one failure, and
354 1.1 oster * verifies that the parity was correctly updated to reflect the write.
355 1.1 oster *
356 1.1 oster * if it's a data unit that's failed, we read the other data units in the stripe and
357 1.1 oster * the parity unit, XOR them together, and verify that we get the data intended for
358 1.1 oster * the failed disk. Since it's easy, we also validate that the right data got written
359 1.1 oster * to the surviving data disks.
360 1.1 oster *
361 1.1 oster * If it's the parity that failed, there's really no validation we can do except the
362 1.1 oster * above verification that the right data got written to all disks. This is because
363 1.1 oster * the new data intended for the failed disk is supplied in the ASM, but this is of
364 1.1 oster * course not the case for the new parity.
365 1.1 oster *
366 1.1 oster ****************************************************************************************/
367 1.3 oster int
368 1.3 oster rf_VerifyDegrModeWrite(raidPtr, asmh)
369 1.3 oster RF_Raid_t *raidPtr;
370 1.3 oster RF_AccessStripeMapHeader_t *asmh;
371 1.1 oster {
372 1.3 oster return (0);
373 1.1 oster }
374 1.1 oster /* creates a simple DAG with a header, a block-recon node at level 1,
375 1.1 oster * nNodes nodes at level 2, an unblock-recon node at level 3, and
376 1.1 oster * a terminator node at level 4. The stripe address field in
377 1.1 oster * the block and unblock nodes are not touched, nor are the pda
378 1.1 oster * fields in the second-level nodes, so they must be filled in later.
379 1.1 oster *
380 1.1 oster * commit point is established at unblock node - this means that any
381 1.1 oster * failure during dag execution causes the dag to fail
382 1.1 oster */
383 1.3 oster RF_DagHeader_t *
384 1.3 oster rf_MakeSimpleDAG(raidPtr, nNodes, bytesPerSU, databuf, doFunc, undoFunc, name, alloclist, flags, priority)
385 1.3 oster RF_Raid_t *raidPtr;
386 1.3 oster int nNodes;
387 1.3 oster int bytesPerSU;
388 1.3 oster char *databuf;
389 1.3 oster int (*doFunc) (RF_DagNode_t * node);
390 1.3 oster int (*undoFunc) (RF_DagNode_t * node);
391 1.3 oster char *name; /* node names at the second level */
392 1.3 oster RF_AllocListElem_t *alloclist;
393 1.3 oster RF_RaidAccessFlags_t flags;
394 1.3 oster int priority;
395 1.1 oster {
396 1.3 oster RF_DagHeader_t *dag_h;
397 1.3 oster RF_DagNode_t *nodes, *termNode, *blockNode, *unblockNode;
398 1.3 oster int i;
399 1.3 oster
400 1.3 oster /* create the nodes, the block & unblock nodes, and the terminator
401 1.3 oster * node */
402 1.3 oster RF_CallocAndAdd(nodes, nNodes + 3, sizeof(RF_DagNode_t), (RF_DagNode_t *), alloclist);
403 1.3 oster blockNode = &nodes[nNodes];
404 1.3 oster unblockNode = blockNode + 1;
405 1.3 oster termNode = unblockNode + 1;
406 1.3 oster
407 1.3 oster dag_h = rf_AllocDAGHeader();
408 1.3 oster dag_h->raidPtr = (void *) raidPtr;
409 1.3 oster dag_h->allocList = NULL;/* we won't use this alloc list */
410 1.3 oster dag_h->status = rf_enable;
411 1.3 oster dag_h->numSuccedents = 1;
412 1.3 oster dag_h->creator = "SimpleDAG";
413 1.3 oster
414 1.3 oster /* this dag can not commit until the unblock node is reached errors
415 1.3 oster * prior to the commit point imply the dag has failed */
416 1.3 oster dag_h->numCommitNodes = 1;
417 1.3 oster dag_h->numCommits = 0;
418 1.3 oster
419 1.3 oster dag_h->succedents[0] = blockNode;
420 1.3 oster rf_InitNode(blockNode, rf_wait, RF_FALSE, rf_NullNodeFunc, rf_NullNodeUndoFunc, NULL, nNodes, 0, 0, 0, dag_h, "Nil", alloclist);
421 1.3 oster rf_InitNode(unblockNode, rf_wait, RF_TRUE, rf_NullNodeFunc, rf_NullNodeUndoFunc, NULL, 1, nNodes, 0, 0, dag_h, "Nil", alloclist);
422 1.3 oster unblockNode->succedents[0] = termNode;
423 1.3 oster for (i = 0; i < nNodes; i++) {
424 1.3 oster blockNode->succedents[i] = unblockNode->antecedents[i] = &nodes[i];
425 1.3 oster unblockNode->antType[i] = rf_control;
426 1.3 oster rf_InitNode(&nodes[i], rf_wait, RF_FALSE, doFunc, undoFunc, rf_GenericWakeupFunc, 1, 1, 4, 0, dag_h, name, alloclist);
427 1.3 oster nodes[i].succedents[0] = unblockNode;
428 1.3 oster nodes[i].antecedents[0] = blockNode;
429 1.3 oster nodes[i].antType[0] = rf_control;
430 1.3 oster nodes[i].params[1].p = (databuf + (i * bytesPerSU));
431 1.3 oster }
432 1.3 oster rf_InitNode(termNode, rf_wait, RF_FALSE, rf_TerminateFunc, rf_TerminateUndoFunc, NULL, 0, 1, 0, 0, dag_h, "Trm", alloclist);
433 1.3 oster termNode->antecedents[0] = unblockNode;
434 1.3 oster termNode->antType[0] = rf_control;
435 1.3 oster return (dag_h);
436 1.1 oster }
437