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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