Home | History | Annotate | Line # | Download | only in raidframe
rf_engine.c revision 1.32
      1  1.32    oster /*	$NetBSD: rf_engine.c,v 1.32 2004/02/29 04:03:50 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: William V. Courtright II, Mark Holland, Rachad Youssef
      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  * engine.c -- code for DAG execution engine                                *
     32   1.1    oster  *                                                                          *
     33   1.1    oster  * Modified to work as follows (holland):                                   *
     34   1.1    oster  *   A user-thread calls into DispatchDAG, which fires off the nodes that   *
     35   1.1    oster  *   are direct successors to the header node.  DispatchDAG then returns,   *
     36   1.1    oster  *   and the rest of the I/O continues asynchronously.  As each node        *
     37   1.1    oster  *   completes, the node execution function calls FinishNode().  FinishNode *
     38   1.1    oster  *   scans the list of successors to the node and increments the antecedent *
     39   1.1    oster  *   counts.  Each node that becomes enabled is placed on a central node    *
     40   1.1    oster  *   queue.  A dedicated dag-execution thread grabs nodes off of this       *
     41   1.1    oster  *   queue and fires them.                                                  *
     42   1.1    oster  *                                                                          *
     43   1.1    oster  *   NULL nodes are never fired.                                            *
     44   1.1    oster  *                                                                          *
     45   1.1    oster  *   Terminator nodes are never fired, but rather cause the callback        *
     46   1.1    oster  *   associated with the DAG to be invoked.                                 *
     47   1.1    oster  *                                                                          *
     48   1.1    oster  *   If a node fails, the dag either rolls forward to the completion or     *
     49   1.1    oster  *   rolls back, undoing previously-completed nodes and fails atomically.   *
     50   1.1    oster  *   The direction of recovery is determined by the location of the failed  *
     51  1.11      wiz  *   node in the graph.  If the failure occurred before the commit node in   *
     52   1.1    oster  *   the graph, backward recovery is used.  Otherwise, forward recovery is  *
     53   1.1    oster  *   used.                                                                  *
     54   1.1    oster  *                                                                          *
     55   1.1    oster  ****************************************************************************/
     56  1.12    lukem 
     57  1.12    lukem #include <sys/cdefs.h>
     58  1.32    oster __KERNEL_RCSID(0, "$NetBSD: rf_engine.c,v 1.32 2004/02/29 04:03:50 oster Exp $");
     59   1.1    oster 
     60   1.1    oster #include <sys/errno.h>
     61   1.1    oster 
     62  1.25    oster #include "rf_threadstuff.h"
     63   1.1    oster #include "rf_dag.h"
     64   1.1    oster #include "rf_engine.h"
     65   1.1    oster #include "rf_etimer.h"
     66   1.1    oster #include "rf_general.h"
     67   1.1    oster #include "rf_dagutils.h"
     68   1.1    oster #include "rf_shutdown.h"
     69   1.1    oster #include "rf_raid.h"
     70   1.1    oster 
     71  1.25    oster static void rf_ShutdownEngine(void *);
     72   1.1    oster static void DAGExecutionThread(RF_ThreadArg_t arg);
     73  1.22    oster static void rf_RaidIOThread(RF_ThreadArg_t arg);
     74   1.1    oster 
     75   1.1    oster /* synchronization primitives for this file.  DO_WAIT should be enclosed in a while loop. */
     76   1.1    oster 
     77  1.10  thorpej #define DO_LOCK(_r_) \
     78  1.10  thorpej do { \
     79  1.10  thorpej 	ks = splbio(); \
     80  1.10  thorpej 	RF_LOCK_MUTEX((_r_)->node_queue_mutex); \
     81  1.10  thorpej } while (0)
     82  1.10  thorpej 
     83  1.10  thorpej #define DO_UNLOCK(_r_) \
     84  1.10  thorpej do { \
     85  1.10  thorpej 	RF_UNLOCK_MUTEX((_r_)->node_queue_mutex); \
     86  1.10  thorpej 	splx(ks); \
     87  1.10  thorpej } while (0)
     88  1.10  thorpej 
     89  1.10  thorpej #define	DO_WAIT(_r_) \
     90  1.10  thorpej 	RF_WAIT_COND((_r_)->node_queue, (_r_)->node_queue_mutex)
     91  1.10  thorpej 
     92  1.10  thorpej #define	DO_SIGNAL(_r_) \
     93  1.10  thorpej 	RF_BROADCAST_COND((_r_)->node_queue)	/* XXX RF_SIGNAL_COND? */
     94   1.1    oster 
     95   1.4    oster static void
     96  1.29    oster rf_ShutdownEngine(void *arg)
     97   1.4    oster {
     98   1.4    oster 	RF_Raid_t *raidPtr;
     99  1.22    oster 	int ks;
    100   1.4    oster 
    101   1.4    oster 	raidPtr = (RF_Raid_t *) arg;
    102  1.22    oster 
    103  1.22    oster 	/* Tell the rf_RaidIOThread to shutdown */
    104  1.22    oster 	simple_lock(&(raidPtr->iodone_lock));
    105  1.22    oster 
    106  1.22    oster 	raidPtr->shutdown_raidio = 1;
    107  1.22    oster 	wakeup(&(raidPtr->iodone));
    108  1.22    oster 
    109  1.22    oster 	/* ...and wait for it to tell us it has finished */
    110  1.22    oster 	while (raidPtr->shutdown_raidio)
    111  1.22    oster  		ltsleep(&(raidPtr->shutdown_raidio), PRIBIO, "raidshutdown", 0,
    112  1.22    oster 			&(raidPtr->iodone_lock));
    113  1.22    oster 
    114  1.22    oster 	simple_unlock(&(raidPtr->iodone_lock));
    115  1.22    oster 
    116  1.22    oster  	/* Now shut down the DAG execution engine. */
    117  1.22    oster  	DO_LOCK(raidPtr);
    118  1.22    oster   	raidPtr->shutdown_engine = 1;
    119  1.22    oster   	DO_SIGNAL(raidPtr);
    120  1.22    oster  	DO_UNLOCK(raidPtr);
    121  1.22    oster 
    122   1.1    oster }
    123   1.1    oster 
    124   1.4    oster int
    125  1.29    oster rf_ConfigureEngine(RF_ShutdownList_t **listp, RF_Raid_t *raidPtr,
    126  1.29    oster 		   RF_Config_t *cfgPtr)
    127   1.4    oster {
    128   1.4    oster 
    129  1.27    oster 	rf_mutex_init(&raidPtr->node_queue_mutex);
    130   1.4    oster 	raidPtr->node_queue = NULL;
    131   1.4    oster 	raidPtr->dags_in_flight = 0;
    132   1.4    oster 
    133   1.4    oster 	/* we create the execution thread only once per system boot. no need
    134   1.4    oster 	 * to check return code b/c the kernel panics if it can't create the
    135   1.4    oster 	 * thread. */
    136   1.4    oster 	if (rf_engineDebug) {
    137   1.9    oster 		printf("raid%d: Creating engine thread\n", raidPtr->raidid);
    138   1.4    oster 	}
    139  1.23    oster 	if (RF_CREATE_ENGINE_THREAD(raidPtr->engine_thread,
    140  1.23    oster 				    DAGExecutionThread, raidPtr,
    141  1.23    oster 				    "raid%d", raidPtr->raidid)) {
    142  1.25    oster 		printf("raid%d: Unable to create engine thread\n",
    143  1.25    oster 		       raidPtr->raidid);
    144   1.4    oster 		return (ENOMEM);
    145   1.4    oster 	}
    146  1.22    oster 	if (RF_CREATE_ENGINE_THREAD(raidPtr->engine_helper_thread,
    147  1.22    oster 				    rf_RaidIOThread, raidPtr,
    148  1.22    oster 				    "raidio%d", raidPtr->raidid)) {
    149  1.22    oster 		printf("raid%d: Unable to create raidio thread\n",
    150  1.22    oster 		       raidPtr->raidid);
    151  1.22    oster 		return (ENOMEM);
    152  1.22    oster 	}
    153   1.4    oster 	if (rf_engineDebug) {
    154   1.9    oster 		printf("raid%d: Created engine thread\n", raidPtr->raidid);
    155   1.4    oster 	}
    156  1.28    oster 
    157   1.4    oster 	/* engine thread is now running and waiting for work */
    158   1.4    oster 	if (rf_engineDebug) {
    159   1.9    oster 		printf("raid%d: Engine thread running and waiting for events\n", raidPtr->raidid);
    160   1.4    oster 	}
    161  1.32    oster 	rf_ShutdownCreate(listp, rf_ShutdownEngine, raidPtr);
    162  1.32    oster 
    163  1.32    oster 	return (0);
    164   1.4    oster }
    165   1.4    oster 
    166   1.4    oster static int
    167  1.29    oster BranchDone(RF_DagNode_t *node)
    168   1.4    oster {
    169   1.4    oster 	int     i;
    170   1.4    oster 
    171   1.4    oster 	/* return true if forward execution is completed for a node and it's
    172   1.4    oster 	 * succedents */
    173   1.4    oster 	switch (node->status) {
    174   1.4    oster 	case rf_wait:
    175   1.4    oster 		/* should never be called in this state */
    176   1.4    oster 		RF_PANIC();
    177   1.4    oster 		break;
    178   1.4    oster 	case rf_fired:
    179   1.4    oster 		/* node is currently executing, so we're not done */
    180   1.4    oster 		return (RF_FALSE);
    181   1.4    oster 	case rf_good:
    182  1.23    oster 		/* for each succedent recursively check branch */
    183  1.23    oster 		for (i = 0; i < node->numSuccedents; i++)
    184  1.23    oster 			if (!BranchDone(node->succedents[i]))
    185   1.4    oster 				return RF_FALSE;
    186   1.4    oster 		return RF_TRUE;	/* node and all succedent branches aren't in
    187   1.4    oster 				 * fired state */
    188   1.4    oster 	case rf_bad:
    189   1.4    oster 		/* succedents can't fire */
    190   1.4    oster 		return (RF_TRUE);
    191   1.4    oster 	case rf_recover:
    192   1.4    oster 		/* should never be called in this state */
    193   1.4    oster 		RF_PANIC();
    194   1.4    oster 		break;
    195   1.4    oster 	case rf_undone:
    196   1.4    oster 	case rf_panic:
    197   1.4    oster 		/* XXX need to fix this case */
    198   1.4    oster 		/* for now, assume that we're done */
    199   1.4    oster 		return (RF_TRUE);
    200   1.4    oster 	default:
    201   1.4    oster 		/* illegal node status */
    202   1.4    oster 		RF_PANIC();
    203   1.4    oster 		break;
    204   1.4    oster 	}
    205   1.4    oster }
    206   1.4    oster 
    207   1.4    oster static int
    208  1.29    oster NodeReady(RF_DagNode_t *node)
    209   1.4    oster {
    210   1.4    oster 	int     ready;
    211   1.4    oster 
    212   1.4    oster 	switch (node->dagHdr->status) {
    213   1.4    oster 	case rf_enable:
    214   1.4    oster 	case rf_rollForward:
    215  1.23    oster 		if ((node->status == rf_wait) &&
    216  1.23    oster 		    (node->numAntecedents == node->numAntDone))
    217   1.4    oster 			ready = RF_TRUE;
    218   1.4    oster 		else
    219   1.4    oster 			ready = RF_FALSE;
    220   1.4    oster 		break;
    221   1.4    oster 	case rf_rollBackward:
    222   1.4    oster 		RF_ASSERT(node->numSuccDone <= node->numSuccedents);
    223   1.4    oster 		RF_ASSERT(node->numSuccFired <= node->numSuccedents);
    224   1.4    oster 		RF_ASSERT(node->numSuccFired <= node->numSuccDone);
    225  1.23    oster 		if ((node->status == rf_good) &&
    226  1.23    oster 		    (node->numSuccDone == node->numSuccedents))
    227   1.4    oster 			ready = RF_TRUE;
    228   1.4    oster 		else
    229   1.4    oster 			ready = RF_FALSE;
    230   1.4    oster 		break;
    231   1.4    oster 	default:
    232   1.4    oster 		printf("Execution engine found illegal DAG status in NodeReady\n");
    233   1.4    oster 		RF_PANIC();
    234   1.4    oster 		break;
    235   1.4    oster 	}
    236   1.1    oster 
    237   1.4    oster 	return (ready);
    238   1.1    oster }
    239   1.1    oster 
    240   1.1    oster 
    241   1.1    oster 
    242  1.23    oster /* user context and dag-exec-thread context: Fire a node.  The node's
    243  1.23    oster  * status field determines which function, do or undo, to be fired.
    244  1.23    oster  * This routine assumes that the node's status field has alread been
    245  1.23    oster  * set to "fired" or "recover" to indicate the direction of execution.
    246   1.1    oster  */
    247   1.4    oster static void
    248  1.29    oster FireNode(RF_DagNode_t *node)
    249   1.1    oster {
    250   1.4    oster 	switch (node->status) {
    251   1.4    oster 	case rf_fired:
    252   1.4    oster 		/* fire the do function of a node */
    253   1.4    oster 		if (rf_engineDebug) {
    254   1.9    oster 			printf("raid%d: Firing node 0x%lx (%s)\n",
    255   1.9    oster 			       node->dagHdr->raidPtr->raidid,
    256   1.9    oster 			       (unsigned long) node, node->name);
    257   1.4    oster 		}
    258   1.4    oster 		if (node->flags & RF_DAGNODE_FLAG_YIELD) {
    259   1.1    oster #if defined(__NetBSD__) && defined(_KERNEL)
    260   1.4    oster 			/* thread_block(); */
    261   1.4    oster 			/* printf("Need to block the thread here...\n");  */
    262   1.4    oster 			/* XXX thread_block is actually mentioned in
    263   1.4    oster 			 * /usr/include/vm/vm_extern.h */
    264   1.1    oster #else
    265   1.4    oster 			thread_block();
    266   1.1    oster #endif
    267   1.4    oster 		}
    268   1.4    oster 		(*(node->doFunc)) (node);
    269   1.4    oster 		break;
    270   1.4    oster 	case rf_recover:
    271   1.4    oster 		/* fire the undo function of a node */
    272   1.9    oster 		if (rf_engineDebug) {
    273   1.9    oster 			printf("raid%d: Firing (undo) node 0x%lx (%s)\n",
    274   1.9    oster 			       node->dagHdr->raidPtr->raidid,
    275   1.9    oster 			       (unsigned long) node, node->name);
    276   1.4    oster 		}
    277   1.4    oster 		if (node->flags & RF_DAGNODE_FLAG_YIELD)
    278   1.1    oster #if defined(__NetBSD__) && defined(_KERNEL)
    279   1.4    oster 			/* thread_block(); */
    280   1.4    oster 			/* printf("Need to block the thread here...\n"); */
    281   1.4    oster 			/* XXX thread_block is actually mentioned in
    282   1.4    oster 			 * /usr/include/vm/vm_extern.h */
    283   1.1    oster #else
    284   1.4    oster 			thread_block();
    285   1.1    oster #endif
    286   1.4    oster 		(*(node->undoFunc)) (node);
    287   1.4    oster 		break;
    288   1.4    oster 	default:
    289   1.4    oster 		RF_PANIC();
    290   1.4    oster 		break;
    291   1.4    oster 	}
    292   1.1    oster }
    293   1.1    oster 
    294   1.1    oster 
    295   1.1    oster 
    296   1.1    oster /* user context:
    297   1.1    oster  * Attempt to fire each node in a linear array.
    298   1.1    oster  * The entire list is fired atomically.
    299   1.1    oster  */
    300   1.4    oster static void
    301  1.29    oster FireNodeArray(int numNodes, RF_DagNode_t **nodeList)
    302   1.4    oster {
    303   1.4    oster 	RF_DagStatus_t dstat;
    304   1.4    oster 	RF_DagNode_t *node;
    305   1.4    oster 	int     i, j;
    306   1.4    oster 
    307   1.4    oster 	/* first, mark all nodes which are ready to be fired */
    308   1.4    oster 	for (i = 0; i < numNodes; i++) {
    309   1.4    oster 		node = nodeList[i];
    310   1.4    oster 		dstat = node->dagHdr->status;
    311  1.23    oster 		RF_ASSERT((node->status == rf_wait) ||
    312  1.23    oster 			  (node->status == rf_good));
    313   1.4    oster 		if (NodeReady(node)) {
    314  1.23    oster 			if ((dstat == rf_enable) ||
    315  1.23    oster 			    (dstat == rf_rollForward)) {
    316   1.4    oster 				RF_ASSERT(node->status == rf_wait);
    317   1.4    oster 				if (node->commitNode)
    318   1.4    oster 					node->dagHdr->numCommits++;
    319   1.4    oster 				node->status = rf_fired;
    320   1.4    oster 				for (j = 0; j < node->numAntecedents; j++)
    321   1.4    oster 					node->antecedents[j]->numSuccFired++;
    322   1.4    oster 			} else {
    323   1.4    oster 				RF_ASSERT(dstat == rf_rollBackward);
    324   1.4    oster 				RF_ASSERT(node->status == rf_good);
    325  1.23    oster 				/* only one commit node per graph */
    326  1.23    oster 				RF_ASSERT(node->commitNode == RF_FALSE);
    327   1.4    oster 				node->status = rf_recover;
    328   1.4    oster 			}
    329   1.4    oster 		}
    330   1.4    oster 	}
    331   1.4    oster 	/* now, fire the nodes */
    332   1.4    oster 	for (i = 0; i < numNodes; i++) {
    333  1.23    oster 		if ((nodeList[i]->status == rf_fired) ||
    334  1.23    oster 		    (nodeList[i]->status == rf_recover))
    335   1.4    oster 			FireNode(nodeList[i]);
    336   1.4    oster 	}
    337   1.1    oster }
    338   1.1    oster 
    339   1.1    oster 
    340   1.1    oster /* user context:
    341   1.1    oster  * Attempt to fire each node in a linked list.
    342   1.1    oster  * The entire list is fired atomically.
    343   1.1    oster  */
    344   1.4    oster static void
    345  1.29    oster FireNodeList(RF_DagNode_t *nodeList)
    346   1.1    oster {
    347   1.4    oster 	RF_DagNode_t *node, *next;
    348   1.4    oster 	RF_DagStatus_t dstat;
    349   1.4    oster 	int     j;
    350   1.4    oster 
    351   1.4    oster 	if (nodeList) {
    352   1.4    oster 		/* first, mark all nodes which are ready to be fired */
    353   1.4    oster 		for (node = nodeList; node; node = next) {
    354   1.4    oster 			next = node->next;
    355   1.4    oster 			dstat = node->dagHdr->status;
    356  1.23    oster 			RF_ASSERT((node->status == rf_wait) ||
    357  1.23    oster 				  (node->status == rf_good));
    358   1.4    oster 			if (NodeReady(node)) {
    359  1.23    oster 				if ((dstat == rf_enable) ||
    360  1.23    oster 				    (dstat == rf_rollForward)) {
    361   1.4    oster 					RF_ASSERT(node->status == rf_wait);
    362   1.4    oster 					if (node->commitNode)
    363   1.4    oster 						node->dagHdr->numCommits++;
    364   1.4    oster 					node->status = rf_fired;
    365   1.4    oster 					for (j = 0; j < node->numAntecedents; j++)
    366   1.4    oster 						node->antecedents[j]->numSuccFired++;
    367   1.4    oster 				} else {
    368   1.4    oster 					RF_ASSERT(dstat == rf_rollBackward);
    369   1.4    oster 					RF_ASSERT(node->status == rf_good);
    370  1.23    oster 					/* only one commit node per graph */
    371  1.23    oster 					RF_ASSERT(node->commitNode == RF_FALSE);
    372   1.4    oster 					node->status = rf_recover;
    373   1.4    oster 				}
    374   1.4    oster 			}
    375   1.4    oster 		}
    376   1.4    oster 		/* now, fire the nodes */
    377   1.4    oster 		for (node = nodeList; node; node = next) {
    378   1.4    oster 			next = node->next;
    379  1.23    oster 			if ((node->status == rf_fired) ||
    380  1.23    oster 			    (node->status == rf_recover))
    381   1.4    oster 				FireNode(node);
    382   1.4    oster 		}
    383   1.4    oster 	}
    384   1.1    oster }
    385   1.1    oster /* interrupt context:
    386   1.1    oster  * for each succedent
    387   1.1    oster  *    propagate required results from node to succedent
    388   1.1    oster  *    increment succedent's numAntDone
    389   1.1    oster  *    place newly-enable nodes on node queue for firing
    390   1.1    oster  *
    391   1.1    oster  * To save context switches, we don't place NIL nodes on the node queue,
    392   1.1    oster  * but rather just process them as if they had fired.  Note that NIL nodes
    393   1.1    oster  * that are the direct successors of the header will actually get fired by
    394   1.1    oster  * DispatchDAG, which is fine because no context switches are involved.
    395   1.1    oster  *
    396   1.1    oster  * Important:  when running at user level, this can be called by any
    397   1.1    oster  * disk thread, and so the increment and check of the antecedent count
    398   1.1    oster  * must be locked.  I used the node queue mutex and locked down the
    399   1.1    oster  * entire function, but this is certainly overkill.
    400   1.1    oster  */
    401   1.4    oster static void
    402  1.29    oster PropagateResults(RF_DagNode_t *node, int context)
    403   1.4    oster {
    404   1.4    oster 	RF_DagNode_t *s, *a;
    405   1.4    oster 	RF_Raid_t *raidPtr;
    406   1.9    oster 	int     i, ks;
    407   1.4    oster 	RF_DagNode_t *finishlist = NULL;	/* a list of NIL nodes to be
    408   1.4    oster 						 * finished */
    409   1.4    oster 	RF_DagNode_t *skiplist = NULL;	/* list of nodes with failed truedata
    410   1.4    oster 					 * antecedents */
    411   1.4    oster 	RF_DagNode_t *firelist = NULL;	/* a list of nodes to be fired */
    412   1.4    oster 	RF_DagNode_t *q = NULL, *qh = NULL, *next;
    413   1.4    oster 	int     j, skipNode;
    414   1.4    oster 
    415   1.4    oster 	raidPtr = node->dagHdr->raidPtr;
    416   1.4    oster 
    417   1.4    oster 	DO_LOCK(raidPtr);
    418   1.4    oster 
    419   1.4    oster 	/* debug - validate fire counts */
    420   1.4    oster 	for (i = 0; i < node->numAntecedents; i++) {
    421   1.4    oster 		a = *(node->antecedents + i);
    422   1.4    oster 		RF_ASSERT(a->numSuccFired >= a->numSuccDone);
    423   1.4    oster 		RF_ASSERT(a->numSuccFired <= a->numSuccedents);
    424   1.4    oster 		a->numSuccDone++;
    425   1.4    oster 	}
    426   1.4    oster 
    427   1.4    oster 	switch (node->dagHdr->status) {
    428   1.4    oster 	case rf_enable:
    429   1.4    oster 	case rf_rollForward:
    430   1.4    oster 		for (i = 0; i < node->numSuccedents; i++) {
    431   1.4    oster 			s = *(node->succedents + i);
    432   1.4    oster 			RF_ASSERT(s->status == rf_wait);
    433   1.4    oster 			(s->numAntDone)++;
    434   1.4    oster 			if (s->numAntDone == s->numAntecedents) {
    435   1.4    oster 				/* look for NIL nodes */
    436   1.4    oster 				if (s->doFunc == rf_NullNodeFunc) {
    437   1.4    oster 					/* don't fire NIL nodes, just process
    438   1.4    oster 					 * them */
    439   1.4    oster 					s->next = finishlist;
    440   1.4    oster 					finishlist = s;
    441   1.4    oster 				} else {
    442   1.4    oster 					/* look to see if the node is to be
    443   1.4    oster 					 * skipped */
    444   1.4    oster 					skipNode = RF_FALSE;
    445   1.4    oster 					for (j = 0; j < s->numAntecedents; j++)
    446   1.4    oster 						if ((s->antType[j] == rf_trueData) && (s->antecedents[j]->status == rf_bad))
    447   1.4    oster 							skipNode = RF_TRUE;
    448   1.4    oster 					if (skipNode) {
    449   1.4    oster 						/* this node has one or more
    450   1.4    oster 						 * failed true data
    451   1.4    oster 						 * dependencies, so skip it */
    452   1.4    oster 						s->next = skiplist;
    453   1.4    oster 						skiplist = s;
    454   1.4    oster 					} else
    455   1.4    oster 						/* add s to list of nodes (q)
    456   1.4    oster 						 * to execute */
    457   1.4    oster 						if (context != RF_INTR_CONTEXT) {
    458   1.4    oster 							/* we only have to
    459   1.4    oster 							 * enqueue if we're at
    460   1.4    oster 							 * intr context */
    461  1.25    oster 							/* put node on
    462  1.25    oster                                                            a list to
    463  1.25    oster                                                            be fired
    464  1.25    oster                                                            after we
    465  1.25    oster                                                            unlock */
    466  1.25    oster 							s->next = firelist;
    467   1.4    oster 							firelist = s;
    468  1.25    oster 						} else {
    469  1.25    oster 							/* enqueue the
    470  1.25    oster 							   node for
    471  1.25    oster 							   the dag
    472  1.25    oster 							   exec thread
    473  1.25    oster 							   to fire */
    474   1.4    oster 							RF_ASSERT(NodeReady(s));
    475   1.4    oster 							if (q) {
    476   1.4    oster 								q->next = s;
    477   1.4    oster 								q = s;
    478   1.4    oster 							} else {
    479   1.4    oster 								qh = q = s;
    480   1.4    oster 								qh->next = NULL;
    481   1.4    oster 							}
    482   1.4    oster 						}
    483   1.4    oster 				}
    484   1.4    oster 			}
    485   1.4    oster 		}
    486   1.4    oster 
    487   1.4    oster 		if (q) {
    488   1.4    oster 			/* xfer our local list of nodes to the node queue */
    489   1.4    oster 			q->next = raidPtr->node_queue;
    490   1.4    oster 			raidPtr->node_queue = qh;
    491   1.4    oster 			DO_SIGNAL(raidPtr);
    492   1.4    oster 		}
    493   1.4    oster 		DO_UNLOCK(raidPtr);
    494   1.4    oster 
    495   1.4    oster 		for (; skiplist; skiplist = next) {
    496   1.4    oster 			next = skiplist->next;
    497   1.4    oster 			skiplist->status = rf_skipped;
    498   1.4    oster 			for (i = 0; i < skiplist->numAntecedents; i++) {
    499   1.4    oster 				skiplist->antecedents[i]->numSuccFired++;
    500   1.4    oster 			}
    501   1.4    oster 			if (skiplist->commitNode) {
    502   1.4    oster 				skiplist->dagHdr->numCommits++;
    503   1.4    oster 			}
    504   1.4    oster 			rf_FinishNode(skiplist, context);
    505   1.4    oster 		}
    506   1.4    oster 		for (; finishlist; finishlist = next) {
    507   1.4    oster 			/* NIL nodes: no need to fire them */
    508   1.4    oster 			next = finishlist->next;
    509   1.4    oster 			finishlist->status = rf_good;
    510   1.4    oster 			for (i = 0; i < finishlist->numAntecedents; i++) {
    511   1.4    oster 				finishlist->antecedents[i]->numSuccFired++;
    512   1.4    oster 			}
    513   1.4    oster 			if (finishlist->commitNode)
    514   1.4    oster 				finishlist->dagHdr->numCommits++;
    515   1.4    oster 			/*
    516  1.23    oster 		         * Okay, here we're calling rf_FinishNode() on
    517  1.23    oster 		         * nodes that have the null function as their
    518  1.23    oster 		         * work proc. Such a node could be the
    519  1.23    oster 		         * terminal node in a DAG. If so, it will
    520  1.23    oster 		         * cause the DAG to complete, which will in
    521  1.23    oster 		         * turn free memory used by the DAG, which
    522  1.23    oster 		         * includes the node in question. Thus, we
    523  1.23    oster 		         * must avoid referencing the node at all
    524  1.23    oster 		         * after calling rf_FinishNode() on it.  */
    525   1.4    oster 			rf_FinishNode(finishlist, context);	/* recursive call */
    526   1.4    oster 		}
    527   1.4    oster 		/* fire all nodes in firelist */
    528   1.4    oster 		FireNodeList(firelist);
    529   1.4    oster 		break;
    530   1.4    oster 
    531   1.4    oster 	case rf_rollBackward:
    532   1.4    oster 		for (i = 0; i < node->numAntecedents; i++) {
    533   1.4    oster 			a = *(node->antecedents + i);
    534   1.4    oster 			RF_ASSERT(a->status == rf_good);
    535   1.4    oster 			RF_ASSERT(a->numSuccDone <= a->numSuccedents);
    536   1.4    oster 			RF_ASSERT(a->numSuccDone <= a->numSuccFired);
    537   1.4    oster 
    538   1.4    oster 			if (a->numSuccDone == a->numSuccFired) {
    539   1.4    oster 				if (a->undoFunc == rf_NullNodeFunc) {
    540   1.4    oster 					/* don't fire NIL nodes, just process
    541   1.4    oster 					 * them */
    542   1.4    oster 					a->next = finishlist;
    543   1.4    oster 					finishlist = a;
    544   1.4    oster 				} else {
    545   1.4    oster 					if (context != RF_INTR_CONTEXT) {
    546   1.4    oster 						/* we only have to enqueue if
    547   1.4    oster 						 * we're at intr context */
    548  1.23    oster 						/* put node on a list to be
    549  1.23    oster 						   fired after we unlock */
    550  1.23    oster 						a->next = firelist;
    551  1.23    oster 
    552   1.4    oster 						firelist = a;
    553  1.23    oster 					} else {
    554  1.23    oster 						/* enqueue the node for the
    555  1.23    oster 						   dag exec thread to fire */
    556   1.4    oster 						RF_ASSERT(NodeReady(a));
    557   1.4    oster 						if (q) {
    558   1.4    oster 							q->next = a;
    559   1.4    oster 							q = a;
    560   1.4    oster 						} else {
    561   1.4    oster 							qh = q = a;
    562   1.4    oster 							qh->next = NULL;
    563   1.4    oster 						}
    564   1.4    oster 					}
    565   1.4    oster 				}
    566   1.4    oster 			}
    567   1.4    oster 		}
    568   1.4    oster 		if (q) {
    569   1.4    oster 			/* xfer our local list of nodes to the node queue */
    570   1.4    oster 			q->next = raidPtr->node_queue;
    571   1.4    oster 			raidPtr->node_queue = qh;
    572   1.4    oster 			DO_SIGNAL(raidPtr);
    573   1.4    oster 		}
    574   1.4    oster 		DO_UNLOCK(raidPtr);
    575  1.23    oster 		for (; finishlist; finishlist = next) {
    576  1.23    oster 			/* NIL nodes: no need to fire them */
    577   1.4    oster 			next = finishlist->next;
    578   1.4    oster 			finishlist->status = rf_good;
    579   1.4    oster 			/*
    580  1.23    oster 		         * Okay, here we're calling rf_FinishNode() on
    581  1.23    oster 		         * nodes that have the null function as their
    582  1.23    oster 		         * work proc. Such a node could be the first
    583  1.23    oster 		         * node in a DAG. If so, it will cause the DAG
    584  1.23    oster 		         * to complete, which will in turn free memory
    585  1.23    oster 		         * used by the DAG, which includes the node in
    586  1.23    oster 		         * question. Thus, we must avoid referencing
    587  1.23    oster 		         * the node at all after calling
    588  1.23    oster 		         * rf_FinishNode() on it.  */
    589   1.4    oster 			rf_FinishNode(finishlist, context);	/* recursive call */
    590   1.4    oster 		}
    591   1.4    oster 		/* fire all nodes in firelist */
    592   1.4    oster 		FireNodeList(firelist);
    593   1.4    oster 
    594   1.4    oster 		break;
    595   1.4    oster 	default:
    596   1.4    oster 		printf("Engine found illegal DAG status in PropagateResults()\n");
    597   1.4    oster 		RF_PANIC();
    598   1.4    oster 		break;
    599   1.4    oster 	}
    600   1.1    oster }
    601   1.1    oster 
    602   1.1    oster 
    603   1.1    oster 
    604   1.1    oster /*
    605   1.1    oster  * Process a fired node which has completed
    606   1.1    oster  */
    607   1.4    oster static void
    608  1.29    oster ProcessNode(RF_DagNode_t *node, int context)
    609   1.4    oster {
    610   1.4    oster 	RF_Raid_t *raidPtr;
    611   1.4    oster 
    612   1.4    oster 	raidPtr = node->dagHdr->raidPtr;
    613   1.4    oster 
    614   1.4    oster 	switch (node->status) {
    615   1.4    oster 	case rf_good:
    616   1.4    oster 		/* normal case, don't need to do anything */
    617   1.4    oster 		break;
    618   1.4    oster 	case rf_bad:
    619  1.23    oster 		if ((node->dagHdr->numCommits > 0) ||
    620  1.23    oster 		    (node->dagHdr->numCommitNodes == 0)) {
    621  1.23    oster 			/* crossed commit barrier */
    622  1.23    oster 			node->dagHdr->status = rf_rollForward;
    623  1.31    oster 			if (rf_engineDebug) {
    624   1.9    oster 				printf("raid%d: node (%s) returned fail, rolling forward\n", raidPtr->raidid, node->name);
    625   1.4    oster 			}
    626   1.4    oster 		} else {
    627  1.23    oster 			/* never reached commit barrier */
    628  1.23    oster 			node->dagHdr->status = rf_rollBackward;
    629  1.31    oster 			if (rf_engineDebug) {
    630   1.9    oster 				printf("raid%d: node (%s) returned fail, rolling backward\n", raidPtr->raidid, node->name);
    631   1.4    oster 			}
    632   1.4    oster 		}
    633   1.4    oster 		break;
    634   1.4    oster 	case rf_undone:
    635   1.4    oster 		/* normal rollBackward case, don't need to do anything */
    636   1.4    oster 		break;
    637   1.4    oster 	case rf_panic:
    638   1.4    oster 		/* an undo node failed!!! */
    639   1.4    oster 		printf("UNDO of a node failed!!!/n");
    640   1.4    oster 		break;
    641   1.4    oster 	default:
    642   1.4    oster 		printf("node finished execution with an illegal status!!!\n");
    643   1.4    oster 		RF_PANIC();
    644   1.4    oster 		break;
    645   1.4    oster 	}
    646   1.1    oster 
    647   1.4    oster 	/* enqueue node's succedents (antecedents if rollBackward) for
    648   1.4    oster 	 * execution */
    649   1.4    oster 	PropagateResults(node, context);
    650   1.1    oster }
    651   1.1    oster 
    652   1.1    oster 
    653   1.1    oster 
    654   1.1    oster /* user context or dag-exec-thread context:
    655   1.1    oster  * This is the first step in post-processing a newly-completed node.
    656   1.1    oster  * This routine is called by each node execution function to mark the node
    657   1.1    oster  * as complete and fire off any successors that have been enabled.
    658   1.1    oster  */
    659   1.4    oster int
    660  1.29    oster rf_FinishNode(RF_DagNode_t *node, int context)
    661   1.4    oster {
    662   1.4    oster 	int     retcode = RF_FALSE;
    663   1.4    oster 	node->dagHdr->numNodesCompleted++;
    664   1.4    oster 	ProcessNode(node, context);
    665   1.1    oster 
    666   1.4    oster 	return (retcode);
    667   1.1    oster }
    668   1.1    oster 
    669   1.1    oster 
    670  1.23    oster /* user context: submit dag for execution, return non-zero if we have
    671  1.23    oster  * to wait for completion.  if and only if we return non-zero, we'll
    672  1.23    oster  * cause cbFunc to get invoked with cbArg when the DAG has completed.
    673  1.23    oster  *
    674  1.23    oster  * for now we always return 1.  If the DAG does not cause any I/O,
    675  1.23    oster  * then the callback may get invoked before DispatchDAG returns.
    676  1.23    oster  * There's code in state 5 of ContinueRaidAccess to handle this.
    677   1.1    oster  *
    678  1.23    oster  * All we do here is fire the direct successors of the header node.
    679  1.23    oster  * The DAG execution thread does the rest of the dag processing.  */
    680   1.4    oster int
    681  1.29    oster rf_DispatchDAG(RF_DagHeader_t *dag, void (*cbFunc) (void *),
    682  1.29    oster 	       void *cbArg)
    683   1.4    oster {
    684   1.4    oster 	RF_Raid_t *raidPtr;
    685   1.4    oster 
    686   1.4    oster 	raidPtr = dag->raidPtr;
    687   1.4    oster 	if (dag->tracerec) {
    688   1.4    oster 		RF_ETIMER_START(dag->tracerec->timer);
    689   1.4    oster 	}
    690  1.13    oster #if DEBUG
    691  1.14    oster #if RF_DEBUG_VALIDATE_DAG
    692   1.4    oster 	if (rf_engineDebug || rf_validateDAGDebug) {
    693   1.4    oster 		if (rf_ValidateDAG(dag))
    694   1.4    oster 			RF_PANIC();
    695   1.4    oster 	}
    696  1.14    oster #endif
    697  1.13    oster #endif
    698   1.4    oster 	if (rf_engineDebug) {
    699   1.9    oster 		printf("raid%d: Entering DispatchDAG\n", raidPtr->raidid);
    700   1.4    oster 	}
    701   1.4    oster 	raidPtr->dags_in_flight++;	/* debug only:  blow off proper
    702   1.4    oster 					 * locking */
    703   1.4    oster 	dag->cbFunc = cbFunc;
    704   1.4    oster 	dag->cbArg = cbArg;
    705   1.4    oster 	dag->numNodesCompleted = 0;
    706   1.4    oster 	dag->status = rf_enable;
    707   1.4    oster 	FireNodeArray(dag->numSuccedents, dag->succedents);
    708   1.4    oster 	return (1);
    709   1.1    oster }
    710  1.23    oster /* dedicated kernel thread: the thread that handles all DAG node
    711  1.23    oster  * firing.  To minimize locking and unlocking, we grab a copy of the
    712  1.23    oster  * entire node queue and then set the node queue to NULL before doing
    713  1.23    oster  * any firing of nodes.  This way we only have to release the lock
    714  1.23    oster  * once.  Of course, it's probably rare that there's more than one
    715  1.23    oster  * node in the queue at any one time, but it sometimes happens.
    716   1.1    oster  */
    717   1.1    oster 
    718   1.4    oster static void
    719   1.4    oster DAGExecutionThread(RF_ThreadArg_t arg)
    720   1.1    oster {
    721   1.4    oster 	RF_DagNode_t *nd, *local_nq, *term_nq, *fire_nq;
    722   1.4    oster 	RF_Raid_t *raidPtr;
    723   1.9    oster 	int     ks;
    724   1.4    oster 	int     s;
    725   1.4    oster 
    726   1.4    oster 	raidPtr = (RF_Raid_t *) arg;
    727   1.4    oster 
    728   1.4    oster 	if (rf_engineDebug) {
    729   1.9    oster 		printf("raid%d: Engine thread is running\n", raidPtr->raidid);
    730   1.4    oster 	}
    731   1.1    oster 
    732   1.4    oster 	s = splbio();
    733   1.1    oster 
    734   1.4    oster 	DO_LOCK(raidPtr);
    735   1.4    oster 	while (!raidPtr->shutdown_engine) {
    736   1.1    oster 
    737   1.4    oster 		while (raidPtr->node_queue != NULL) {
    738   1.4    oster 			local_nq = raidPtr->node_queue;
    739   1.4    oster 			fire_nq = NULL;
    740   1.4    oster 			term_nq = NULL;
    741   1.4    oster 			raidPtr->node_queue = NULL;
    742   1.4    oster 			DO_UNLOCK(raidPtr);
    743   1.4    oster 
    744   1.4    oster 			/* first, strip out the terminal nodes */
    745   1.4    oster 			while (local_nq) {
    746   1.4    oster 				nd = local_nq;
    747   1.4    oster 				local_nq = local_nq->next;
    748   1.4    oster 				switch (nd->dagHdr->status) {
    749   1.4    oster 				case rf_enable:
    750   1.4    oster 				case rf_rollForward:
    751   1.4    oster 					if (nd->numSuccedents == 0) {
    752   1.4    oster 						/* end of the dag, add to
    753   1.4    oster 						 * callback list */
    754   1.4    oster 						nd->next = term_nq;
    755   1.4    oster 						term_nq = nd;
    756   1.4    oster 					} else {
    757   1.4    oster 						/* not the end, add to the
    758   1.4    oster 						 * fire queue */
    759   1.4    oster 						nd->next = fire_nq;
    760   1.4    oster 						fire_nq = nd;
    761   1.4    oster 					}
    762   1.4    oster 					break;
    763   1.4    oster 				case rf_rollBackward:
    764   1.4    oster 					if (nd->numAntecedents == 0) {
    765   1.4    oster 						/* end of the dag, add to the
    766   1.4    oster 						 * callback list */
    767   1.4    oster 						nd->next = term_nq;
    768   1.4    oster 						term_nq = nd;
    769   1.4    oster 					} else {
    770   1.4    oster 						/* not the end, add to the
    771   1.4    oster 						 * fire queue */
    772   1.4    oster 						nd->next = fire_nq;
    773   1.4    oster 						fire_nq = nd;
    774   1.4    oster 					}
    775   1.4    oster 					break;
    776   1.4    oster 				default:
    777   1.4    oster 					RF_PANIC();
    778   1.4    oster 					break;
    779   1.4    oster 				}
    780   1.4    oster 			}
    781   1.4    oster 
    782   1.4    oster 			/* execute callback of dags which have reached the
    783   1.4    oster 			 * terminal node */
    784   1.4    oster 			while (term_nq) {
    785   1.4    oster 				nd = term_nq;
    786   1.4    oster 				term_nq = term_nq->next;
    787   1.4    oster 				nd->next = NULL;
    788   1.4    oster 				(nd->dagHdr->cbFunc) (nd->dagHdr->cbArg);
    789   1.4    oster 				raidPtr->dags_in_flight--;	/* debug only */
    790   1.4    oster 			}
    791   1.4    oster 
    792   1.4    oster 			/* fire remaining nodes */
    793   1.4    oster 			FireNodeList(fire_nq);
    794   1.4    oster 
    795   1.4    oster 			DO_LOCK(raidPtr);
    796   1.4    oster 		}
    797  1.17    oster 		while (!raidPtr->shutdown_engine &&
    798  1.17    oster 		       raidPtr->node_queue == NULL) {
    799  1.24    oster 			DO_WAIT(raidPtr);
    800  1.17    oster 		}
    801   1.4    oster 	}
    802   1.4    oster 	DO_UNLOCK(raidPtr);
    803   1.1    oster 
    804   1.4    oster 	splx(s);
    805  1.22    oster 	kthread_exit(0);
    806  1.22    oster }
    807  1.22    oster 
    808  1.22    oster /*
    809  1.23    oster  * rf_RaidIOThread() -- When I/O to a component completes,
    810  1.23    oster  * KernelWakeupFunc() puts the completed request onto raidPtr->iodone
    811  1.23    oster  * TAILQ.  This function looks after requests on that queue by calling
    812  1.23    oster  * rf_DiskIOComplete() for the request, and by calling any required
    813  1.23    oster  * CompleteFunc for the request.
    814  1.23    oster  */
    815  1.22    oster 
    816  1.22    oster static void
    817  1.22    oster rf_RaidIOThread(RF_ThreadArg_t arg)
    818  1.22    oster {
    819  1.22    oster 	RF_Raid_t *raidPtr;
    820  1.22    oster 	RF_DiskQueueData_t *req;
    821  1.22    oster 	int s;
    822  1.22    oster 
    823  1.22    oster 	raidPtr = (RF_Raid_t *) arg;
    824  1.22    oster 
    825  1.22    oster 	s = splbio();
    826  1.22    oster 	simple_lock(&(raidPtr->iodone_lock));
    827  1.22    oster 
    828  1.22    oster 	while (!raidPtr->shutdown_raidio) {
    829  1.22    oster 		/* if there is nothing to do, then snooze. */
    830  1.22    oster 		if (TAILQ_EMPTY(&(raidPtr->iodone))) {
    831  1.22    oster 			ltsleep(&(raidPtr->iodone), PRIBIO, "raidiow", 0,
    832  1.22    oster 				&(raidPtr->iodone_lock));
    833  1.22    oster 		}
    834  1.22    oster 
    835  1.22    oster 		/* See what I/Os, if any, have arrived */
    836  1.22    oster 		while ((req = TAILQ_FIRST(&(raidPtr->iodone))) != NULL) {
    837  1.22    oster 			TAILQ_REMOVE(&(raidPtr->iodone), req, iodone_entries);
    838  1.22    oster 			simple_unlock(&(raidPtr->iodone_lock));
    839  1.22    oster 			rf_DiskIOComplete(req->queue, req, req->error);
    840  1.22    oster 			(req->CompleteFunc) (req->argument, req->error);
    841  1.22    oster 			simple_lock(&(raidPtr->iodone_lock));
    842  1.22    oster 		}
    843  1.22    oster 	}
    844  1.22    oster 
    845  1.22    oster 	/* Let rf_ShutdownEngine know that we're done... */
    846  1.22    oster 	raidPtr->shutdown_raidio = 0;
    847  1.22    oster 	wakeup(&(raidPtr->shutdown_raidio));
    848  1.22    oster 
    849  1.22    oster 	simple_unlock(&(raidPtr->iodone_lock));
    850  1.22    oster 	splx(s);
    851  1.22    oster 
    852   1.4    oster 	kthread_exit(0);
    853   1.1    oster }
    854