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rf_states.c revision 1.52
      1  1.52     oster /*	$NetBSD: rf_states.c,v 1.52 2021/07/23 00:54:45 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, William V. Courtright II, Robby Findler
      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  1.16     lukem 
     29  1.16     lukem #include <sys/cdefs.h>
     30  1.52     oster __KERNEL_RCSID(0, "$NetBSD: rf_states.c,v 1.52 2021/07/23 00:54:45 oster Exp $");
     31   1.1     oster 
     32   1.1     oster #include <sys/errno.h>
     33   1.1     oster 
     34   1.1     oster #include "rf_archs.h"
     35   1.1     oster #include "rf_threadstuff.h"
     36   1.1     oster #include "rf_raid.h"
     37   1.1     oster #include "rf_dag.h"
     38   1.1     oster #include "rf_desc.h"
     39   1.1     oster #include "rf_aselect.h"
     40   1.1     oster #include "rf_general.h"
     41   1.1     oster #include "rf_states.h"
     42   1.1     oster #include "rf_dagutils.h"
     43   1.1     oster #include "rf_driver.h"
     44   1.1     oster #include "rf_engine.h"
     45   1.1     oster #include "rf_map.h"
     46   1.1     oster #include "rf_etimer.h"
     47  1.10     oster #include "rf_kintf.h"
     48  1.44       jld #include "rf_paritymap.h"
     49   1.1     oster 
     50  1.19     oster #ifndef RF_DEBUG_STATES
     51  1.19     oster #define RF_DEBUG_STATES 0
     52  1.19     oster #endif
     53  1.19     oster 
     54   1.1     oster /* prototypes for some of the available states.
     55   1.1     oster 
     56   1.1     oster    States must:
     57   1.1     oster 
     58   1.1     oster      - not block.
     59   1.1     oster 
     60   1.1     oster      - either schedule rf_ContinueRaidAccess as a callback and return
     61   1.1     oster        RF_TRUE, or complete all of their work and return RF_FALSE.
     62   1.1     oster 
     63   1.1     oster      - increment desc->state when they have finished their work.
     64   1.1     oster */
     65   1.1     oster 
     66  1.19     oster #if RF_DEBUG_STATES
     67   1.6     oster static char *
     68   1.6     oster StateName(RF_AccessState_t state)
     69   1.1     oster {
     70   1.6     oster 	switch (state) {
     71   1.6     oster 		case rf_QuiesceState:return "QuiesceState";
     72   1.6     oster 	case rf_MapState:
     73   1.6     oster 		return "MapState";
     74   1.6     oster 	case rf_LockState:
     75   1.6     oster 		return "LockState";
     76   1.6     oster 	case rf_CreateDAGState:
     77   1.6     oster 		return "CreateDAGState";
     78   1.6     oster 	case rf_ExecuteDAGState:
     79   1.6     oster 		return "ExecuteDAGState";
     80   1.6     oster 	case rf_ProcessDAGState:
     81   1.6     oster 		return "ProcessDAGState";
     82   1.6     oster 	case rf_CleanupState:
     83   1.6     oster 		return "CleanupState";
     84   1.6     oster 	case rf_LastState:
     85   1.6     oster 		return "LastState";
     86   1.6     oster 	case rf_IncrAccessesCountState:
     87   1.6     oster 		return "IncrAccessesCountState";
     88   1.6     oster 	case rf_DecrAccessesCountState:
     89   1.6     oster 		return "DecrAccessesCountState";
     90   1.6     oster 	default:
     91   1.6     oster 		return "!!! UnnamedState !!!";
     92   1.6     oster 	}
     93   1.6     oster }
     94  1.19     oster #endif
     95   1.6     oster 
     96  1.38     perry void
     97  1.51  christos rf_ContinueRaidAccess(void *v)
     98   1.6     oster {
     99  1.51  christos 	RF_RaidAccessDesc_t *desc = v;
    100   1.6     oster 	int     suspended = RF_FALSE;
    101   1.6     oster 	int     current_state_index = desc->state;
    102   1.6     oster 	RF_AccessState_t current_state = desc->states[current_state_index];
    103  1.19     oster #if RF_DEBUG_STATES
    104  1.12     oster 	int     unit = desc->raidPtr->raidid;
    105  1.19     oster #endif
    106   1.6     oster 
    107   1.6     oster 	do {
    108   1.6     oster 
    109   1.6     oster 		current_state_index = desc->state;
    110   1.6     oster 		current_state = desc->states[current_state_index];
    111   1.6     oster 
    112   1.6     oster 		switch (current_state) {
    113   1.6     oster 
    114   1.6     oster 		case rf_QuiesceState:
    115   1.6     oster 			suspended = rf_State_Quiesce(desc);
    116   1.6     oster 			break;
    117   1.6     oster 		case rf_IncrAccessesCountState:
    118   1.6     oster 			suspended = rf_State_IncrAccessCount(desc);
    119   1.6     oster 			break;
    120   1.6     oster 		case rf_MapState:
    121   1.6     oster 			suspended = rf_State_Map(desc);
    122   1.6     oster 			break;
    123   1.6     oster 		case rf_LockState:
    124   1.6     oster 			suspended = rf_State_Lock(desc);
    125   1.6     oster 			break;
    126   1.6     oster 		case rf_CreateDAGState:
    127   1.6     oster 			suspended = rf_State_CreateDAG(desc);
    128   1.6     oster 			break;
    129   1.6     oster 		case rf_ExecuteDAGState:
    130   1.6     oster 			suspended = rf_State_ExecuteDAG(desc);
    131   1.6     oster 			break;
    132   1.6     oster 		case rf_ProcessDAGState:
    133   1.6     oster 			suspended = rf_State_ProcessDAG(desc);
    134   1.6     oster 			break;
    135   1.6     oster 		case rf_CleanupState:
    136   1.6     oster 			suspended = rf_State_Cleanup(desc);
    137   1.6     oster 			break;
    138   1.6     oster 		case rf_DecrAccessesCountState:
    139   1.6     oster 			suspended = rf_State_DecrAccessCount(desc);
    140   1.6     oster 			break;
    141   1.6     oster 		case rf_LastState:
    142   1.6     oster 			suspended = rf_State_LastState(desc);
    143   1.6     oster 			break;
    144   1.6     oster 		}
    145   1.6     oster 
    146  1.23     oster 		/* after this point, we cannot dereference desc since
    147  1.23     oster 		 * desc may have been freed. desc is only freed in
    148  1.23     oster 		 * LastState, so if we renter this function or loop
    149  1.23     oster 		 * back up, desc should be valid. */
    150   1.6     oster 
    151  1.19     oster #if RF_DEBUG_STATES
    152   1.6     oster 		if (rf_printStatesDebug) {
    153  1.12     oster 			printf("raid%d: State: %-24s StateIndex: %3i desc: 0x%ld %s\n",
    154  1.38     perry 			       unit, StateName(current_state),
    155  1.12     oster 			       current_state_index, (long) desc,
    156  1.12     oster 			       suspended ? "callback scheduled" : "looping");
    157   1.6     oster 		}
    158  1.19     oster #endif
    159   1.6     oster 	} while (!suspended && current_state != rf_LastState);
    160   1.6     oster 
    161   1.6     oster 	return;
    162   1.6     oster }
    163   1.6     oster 
    164   1.6     oster 
    165  1.38     perry void
    166  1.22     oster rf_ContinueDagAccess(RF_DagList_t *dagList)
    167   1.6     oster {
    168  1.27     oster #if RF_ACC_TRACE > 0
    169   1.6     oster 	RF_AccTraceEntry_t *tracerec = &(dagList->desc->tracerec);
    170  1.28     oster 	RF_Etimer_t timer;
    171  1.27     oster #endif
    172   1.6     oster 	RF_RaidAccessDesc_t *desc;
    173   1.6     oster 	RF_DagHeader_t *dag_h;
    174   1.6     oster 	int     i;
    175   1.6     oster 
    176   1.6     oster 	desc = dagList->desc;
    177   1.6     oster 
    178  1.27     oster #if RF_ACC_TRACE > 0
    179   1.6     oster 	timer = tracerec->timer;
    180   1.6     oster 	RF_ETIMER_STOP(timer);
    181   1.6     oster 	RF_ETIMER_EVAL(timer);
    182   1.6     oster 	tracerec->specific.user.exec_us = RF_ETIMER_VAL_US(timer);
    183   1.6     oster 	RF_ETIMER_START(tracerec->timer);
    184  1.27     oster #endif
    185   1.6     oster 
    186   1.6     oster 	/* skip to dag which just finished */
    187   1.6     oster 	dag_h = dagList->dags;
    188   1.6     oster 	for (i = 0; i < dagList->numDagsDone; i++) {
    189   1.6     oster 		dag_h = dag_h->next;
    190   1.6     oster 	}
    191   1.6     oster 
    192   1.6     oster 	/* check to see if retry is required */
    193   1.6     oster 	if (dag_h->status == rf_rollBackward) {
    194  1.23     oster 		/* when a dag fails, mark desc status as bad and allow
    195  1.23     oster 		 * all other dags in the desc to execute to
    196  1.23     oster 		 * completion.  then, free all dags and start over */
    197   1.6     oster 		desc->status = 1;	/* bad status */
    198  1.25     oster #if 0
    199  1.25     oster 		printf("raid%d: DAG failure: %c addr 0x%lx "
    200  1.25     oster 		       "(%ld) nblk 0x%x (%d) buf 0x%lx state %d\n",
    201  1.38     perry 		       desc->raidPtr->raidid, desc->type,
    202  1.23     oster 		       (long) desc->raidAddress,
    203  1.23     oster 		       (long) desc->raidAddress, (int) desc->numBlocks,
    204  1.38     perry 		       (int) desc->numBlocks,
    205  1.25     oster 		       (unsigned long) (desc->bufPtr), desc->state);
    206  1.25     oster #endif
    207   1.6     oster 	}
    208   1.6     oster 	dagList->numDagsDone++;
    209   1.6     oster 	rf_ContinueRaidAccess(desc);
    210   1.6     oster }
    211   1.6     oster 
    212  1.38     perry int
    213  1.22     oster rf_State_LastState(RF_RaidAccessDesc_t *desc)
    214   1.1     oster {
    215  1.51  christos 	void    (*callbackFunc) (void *) = desc->callbackFunc;
    216  1.51  christos 	void * callbackArg = desc->callbackArg;
    217  1.38     perry 
    218   1.8     oster 	/*
    219  1.48       mrg 	 * We don't support non-async IO.
    220   1.8     oster 	 */
    221  1.48       mrg 	KASSERT(desc->async_flag);
    222  1.15     oster 
    223  1.15     oster 	/*
    224  1.44       jld 	 * The parity_map hook has to go here, because the iodone
    225  1.44       jld 	 * callback goes straight into the kintf layer.
    226  1.44       jld 	 */
    227  1.44       jld 	if (desc->raidPtr->parity_map != NULL &&
    228  1.44       jld 	    desc->type == RF_IO_TYPE_WRITE)
    229  1.44       jld 		rf_paritymap_end(desc->raidPtr->parity_map,
    230  1.44       jld 		    desc->raidAddress, desc->numBlocks);
    231  1.44       jld 
    232  1.50   mlelstv 	/* printf("Calling raiddone on 0x%x\n",desc->bp); */
    233  1.50   mlelstv 	raiddone(desc->raidPtr, desc->bp); /* access came through ioctl */
    234   1.3  explorer 
    235   1.6     oster 	if (callbackFunc)
    236   1.6     oster 		callbackFunc(callbackArg);
    237   1.6     oster 	rf_FreeRaidAccDesc(desc);
    238   1.6     oster 
    239   1.6     oster 	return RF_FALSE;
    240   1.6     oster }
    241   1.6     oster 
    242  1.38     perry int
    243  1.22     oster rf_State_IncrAccessCount(RF_RaidAccessDesc_t *desc)
    244   1.6     oster {
    245   1.6     oster 	RF_Raid_t *raidPtr;
    246   1.6     oster 
    247   1.6     oster 	raidPtr = desc->raidPtr;
    248   1.6     oster 	/* Bummer. We have to do this to be 100% safe w.r.t. the increment
    249   1.6     oster 	 * below */
    250  1.47       mrg 	rf_lock_mutex2(raidPtr->access_suspend_mutex);
    251   1.6     oster 	raidPtr->accs_in_flight++;	/* used to detect quiescence */
    252  1.47       mrg 	rf_unlock_mutex2(raidPtr->access_suspend_mutex);
    253   1.6     oster 
    254   1.6     oster 	desc->state++;
    255   1.6     oster 	return RF_FALSE;
    256   1.6     oster }
    257   1.6     oster 
    258  1.38     perry int
    259  1.22     oster rf_State_DecrAccessCount(RF_RaidAccessDesc_t *desc)
    260   1.6     oster {
    261   1.6     oster 	RF_Raid_t *raidPtr;
    262   1.6     oster 
    263   1.6     oster 	raidPtr = desc->raidPtr;
    264   1.6     oster 
    265  1.47       mrg 	rf_lock_mutex2(raidPtr->access_suspend_mutex);
    266   1.6     oster 	raidPtr->accs_in_flight--;
    267   1.6     oster 	if (raidPtr->accesses_suspended && raidPtr->accs_in_flight == 0) {
    268  1.20     oster 		rf_SignalQuiescenceLock(raidPtr);
    269   1.6     oster 	}
    270  1.47       mrg 	rf_unlock_mutex2(raidPtr->access_suspend_mutex);
    271   1.6     oster 
    272   1.6     oster 	desc->state++;
    273   1.6     oster 	return RF_FALSE;
    274   1.6     oster }
    275   1.6     oster 
    276  1.38     perry int
    277  1.22     oster rf_State_Quiesce(RF_RaidAccessDesc_t *desc)
    278   1.6     oster {
    279  1.27     oster #if RF_ACC_TRACE > 0
    280   1.6     oster 	RF_AccTraceEntry_t *tracerec = &desc->tracerec;
    281   1.6     oster 	RF_Etimer_t timer;
    282  1.27     oster #endif
    283  1.51  christos 	RF_CallbackFuncDesc_t *cb;
    284  1.31     oster 	RF_Raid_t *raidPtr;
    285   1.6     oster 	int     suspended = RF_FALSE;
    286  1.31     oster 	int need_cb, used_cb;
    287   1.6     oster 
    288   1.6     oster 	raidPtr = desc->raidPtr;
    289   1.6     oster 
    290  1.27     oster #if RF_ACC_TRACE > 0
    291   1.6     oster 	RF_ETIMER_START(timer);
    292   1.6     oster 	RF_ETIMER_START(desc->timer);
    293  1.27     oster #endif
    294   1.6     oster 
    295  1.31     oster 	need_cb = 0;
    296  1.31     oster 	used_cb = 0;
    297  1.31     oster 	cb = NULL;
    298  1.31     oster 
    299  1.47       mrg 	rf_lock_mutex2(raidPtr->access_suspend_mutex);
    300  1.31     oster 	/* Do an initial check to see if we might need a callback structure */
    301   1.6     oster 	if (raidPtr->accesses_suspended) {
    302  1.31     oster 		need_cb = 1;
    303  1.31     oster 	}
    304  1.47       mrg 	rf_unlock_mutex2(raidPtr->access_suspend_mutex);
    305  1.31     oster 
    306  1.31     oster 	if (need_cb) {
    307  1.31     oster 		/* create a callback if we might need it...
    308  1.31     oster 		   and we likely do. */
    309  1.52     oster 		cb = rf_AllocCallbackFuncDesc(raidPtr);
    310  1.31     oster 	}
    311  1.23     oster 
    312  1.47       mrg 	rf_lock_mutex2(raidPtr->access_suspend_mutex);
    313  1.31     oster 	if (raidPtr->accesses_suspended) {
    314  1.51  christos 		cb->callbackFunc = rf_ContinueRaidAccess;
    315  1.51  christos 		cb->callbackArg = desc;
    316   1.6     oster 		cb->next = raidPtr->quiesce_wait_list;
    317   1.6     oster 		raidPtr->quiesce_wait_list = cb;
    318   1.6     oster 		suspended = RF_TRUE;
    319  1.31     oster 		used_cb = 1;
    320   1.6     oster 	}
    321  1.47       mrg 	rf_unlock_mutex2(raidPtr->access_suspend_mutex);
    322   1.6     oster 
    323  1.31     oster 	if ((need_cb == 1) && (used_cb == 0)) {
    324  1.52     oster 		rf_FreeCallbackFuncDesc(raidPtr, cb);
    325  1.31     oster 	}
    326  1.31     oster 
    327  1.27     oster #if RF_ACC_TRACE > 0
    328   1.6     oster 	RF_ETIMER_STOP(timer);
    329   1.6     oster 	RF_ETIMER_EVAL(timer);
    330   1.6     oster 	tracerec->specific.user.suspend_ovhd_us += RF_ETIMER_VAL_US(timer);
    331  1.27     oster #endif
    332   1.6     oster 
    333  1.18     oster #if RF_DEBUG_QUIESCE
    334   1.6     oster 	if (suspended && rf_quiesceDebug)
    335   1.6     oster 		printf("Stalling access due to quiescence lock\n");
    336  1.18     oster #endif
    337   1.6     oster 	desc->state++;
    338   1.6     oster 	return suspended;
    339   1.6     oster }
    340   1.6     oster 
    341  1.38     perry int
    342  1.22     oster rf_State_Map(RF_RaidAccessDesc_t *desc)
    343   1.6     oster {
    344   1.6     oster 	RF_Raid_t *raidPtr = desc->raidPtr;
    345  1.27     oster #if RF_ACC_TRACE > 0
    346   1.6     oster 	RF_AccTraceEntry_t *tracerec = &desc->tracerec;
    347   1.6     oster 	RF_Etimer_t timer;
    348   1.6     oster 
    349   1.6     oster 	RF_ETIMER_START(timer);
    350  1.27     oster #endif
    351   1.6     oster 
    352   1.6     oster 	if (!(desc->asmap = rf_MapAccess(raidPtr, desc->raidAddress, desc->numBlocks,
    353   1.6     oster 		    desc->bufPtr, RF_DONT_REMAP)))
    354   1.6     oster 		RF_PANIC();
    355   1.6     oster 
    356  1.27     oster #if RF_ACC_TRACE > 0
    357   1.6     oster 	RF_ETIMER_STOP(timer);
    358   1.6     oster 	RF_ETIMER_EVAL(timer);
    359   1.6     oster 	tracerec->specific.user.map_us = RF_ETIMER_VAL_US(timer);
    360  1.27     oster #endif
    361   1.6     oster 
    362   1.6     oster 	desc->state++;
    363   1.6     oster 	return RF_FALSE;
    364   1.6     oster }
    365   1.6     oster 
    366  1.38     perry int
    367  1.22     oster rf_State_Lock(RF_RaidAccessDesc_t *desc)
    368   1.6     oster {
    369  1.27     oster #if RF_ACC_TRACE > 0
    370   1.6     oster 	RF_AccTraceEntry_t *tracerec = &desc->tracerec;
    371  1.28     oster 	RF_Etimer_t timer;
    372  1.27     oster #endif
    373   1.6     oster 	RF_Raid_t *raidPtr = desc->raidPtr;
    374   1.6     oster 	RF_AccessStripeMapHeader_t *asmh = desc->asmap;
    375   1.6     oster 	RF_AccessStripeMap_t *asm_p;
    376  1.32     oster 	RF_StripeNum_t lastStripeID = -1;
    377   1.6     oster 	int     suspended = RF_FALSE;
    378   1.6     oster 
    379  1.27     oster #if RF_ACC_TRACE > 0
    380   1.6     oster 	RF_ETIMER_START(timer);
    381  1.27     oster #endif
    382  1.38     perry 
    383  1.32     oster 	/* acquire each lock that we don't already hold */
    384  1.32     oster 	for (asm_p = asmh->stripeMap; asm_p; asm_p = asm_p->next) {
    385  1.32     oster 		RF_ASSERT(RF_IO_IS_R_OR_W(desc->type));
    386  1.32     oster 		if (!rf_suppressLocksAndLargeWrites &&
    387  1.32     oster 		    asm_p->parityInfo &&
    388  1.32     oster 		    !(desc->flags & RF_DAG_SUPPRESS_LOCKS) &&
    389  1.32     oster 		    !(asm_p->flags & RF_ASM_FLAGS_LOCK_TRIED)) {
    390  1.32     oster 			asm_p->flags |= RF_ASM_FLAGS_LOCK_TRIED;
    391  1.23     oster 				/* locks must be acquired hierarchically */
    392  1.32     oster 			RF_ASSERT(asm_p->stripeID > lastStripeID);
    393  1.32     oster 			lastStripeID = asm_p->stripeID;
    394  1.38     perry 
    395  1.32     oster 			RF_INIT_LOCK_REQ_DESC(asm_p->lockReqDesc, desc->type,
    396  1.51  christos 					      rf_ContinueRaidAccess, desc, asm_p,
    397  1.32     oster 					      raidPtr->Layout.dataSectorsPerStripe);
    398  1.52     oster 			if (rf_AcquireStripeLock(raidPtr, raidPtr->lockTable, asm_p->stripeID,
    399  1.32     oster 						 &asm_p->lockReqDesc)) {
    400  1.32     oster 				suspended = RF_TRUE;
    401  1.32     oster 				break;
    402  1.32     oster 			}
    403  1.32     oster 		}
    404  1.32     oster 		if (desc->type == RF_IO_TYPE_WRITE &&
    405  1.32     oster 		    raidPtr->status == rf_rs_reconstructing) {
    406  1.32     oster 			if (!(asm_p->flags & RF_ASM_FLAGS_FORCE_TRIED)) {
    407  1.32     oster 				int     val;
    408  1.38     perry 
    409  1.32     oster 				asm_p->flags |= RF_ASM_FLAGS_FORCE_TRIED;
    410  1.32     oster 				val = rf_ForceOrBlockRecon(raidPtr, asm_p,
    411  1.51  christos 							   rf_ContinueRaidAccess, desc);
    412  1.32     oster 				if (val == 0) {
    413  1.32     oster 					asm_p->flags |= RF_ASM_FLAGS_RECON_BLOCKED;
    414  1.32     oster 				} else {
    415   1.6     oster 					suspended = RF_TRUE;
    416   1.6     oster 					break;
    417   1.6     oster 				}
    418   1.6     oster 			} else {
    419  1.29     oster #if RF_DEBUG_PSS > 0
    420   1.6     oster 				if (rf_pssDebug) {
    421  1.32     oster 					printf("raid%d: skipping force/block because already done, psid %ld\n",
    422  1.38     perry 					       desc->raidPtr->raidid,
    423  1.13     oster 					       (long) asm_p->stripeID);
    424   1.6     oster 				}
    425  1.29     oster #endif
    426   1.6     oster 			}
    427  1.32     oster 		} else {
    428  1.32     oster #if RF_DEBUG_PSS > 0
    429  1.32     oster 			if (rf_pssDebug) {
    430  1.32     oster 				printf("raid%d: skipping force/block because not write or not under recon, psid %ld\n",
    431  1.38     perry 				       desc->raidPtr->raidid,
    432  1.32     oster 				       (long) asm_p->stripeID);
    433  1.32     oster 			}
    434  1.32     oster #endif
    435   1.6     oster 		}
    436  1.32     oster 	}
    437  1.27     oster #if RF_ACC_TRACE > 0
    438  1.32     oster 	RF_ETIMER_STOP(timer);
    439  1.32     oster 	RF_ETIMER_EVAL(timer);
    440  1.32     oster 	tracerec->specific.user.lock_us += RF_ETIMER_VAL_US(timer);
    441  1.27     oster #endif
    442  1.32     oster 	if (suspended)
    443  1.32     oster 		return (RF_TRUE);
    444  1.32     oster 
    445   1.6     oster 	desc->state++;
    446   1.6     oster 	return (RF_FALSE);
    447   1.1     oster }
    448   1.1     oster /*
    449   1.1     oster  * the following three states create, execute, and post-process dags
    450   1.1     oster  * the error recovery unit is a single dag.
    451   1.1     oster  * by default, SelectAlgorithm creates an array of dags, one per parity stripe
    452   1.1     oster  * in some tricky cases, multiple dags per stripe are created
    453   1.1     oster  *   - dags within a parity stripe are executed sequentially (arbitrary order)
    454   1.1     oster  *   - dags for distinct parity stripes are executed concurrently
    455   1.1     oster  *
    456   1.1     oster  * repeat until all dags complete successfully -or- dag selection fails
    457   1.1     oster  *
    458   1.1     oster  * while !done
    459   1.1     oster  *   create dag(s) (SelectAlgorithm)
    460   1.1     oster  *   if dag
    461   1.1     oster  *     execute dag (DispatchDAG)
    462   1.1     oster  *     if dag successful
    463   1.1     oster  *       done (SUCCESS)
    464   1.1     oster  *     else
    465   1.1     oster  *       !done (RETRY - start over with new dags)
    466   1.1     oster  *   else
    467   1.1     oster  *     done (FAIL)
    468   1.1     oster  */
    469  1.38     perry int
    470  1.22     oster rf_State_CreateDAG(RF_RaidAccessDesc_t *desc)
    471   1.1     oster {
    472  1.27     oster #if RF_ACC_TRACE > 0
    473   1.6     oster 	RF_AccTraceEntry_t *tracerec = &desc->tracerec;
    474   1.6     oster 	RF_Etimer_t timer;
    475  1.27     oster #endif
    476   1.6     oster 	RF_DagHeader_t *dag_h;
    477  1.26     oster 	RF_DagList_t *dagList;
    478  1.25     oster 	struct buf *bp;
    479   1.6     oster 	int     i, selectStatus;
    480   1.6     oster 
    481   1.6     oster 	/* generate a dag for the access, and fire it off.  When the dag
    482   1.6     oster 	 * completes, we'll get re-invoked in the next state. */
    483  1.27     oster #if RF_ACC_TRACE > 0
    484   1.6     oster 	RF_ETIMER_START(timer);
    485  1.27     oster #endif
    486   1.6     oster 	/* SelectAlgorithm returns one or more dags */
    487   1.6     oster 	selectStatus = rf_SelectAlgorithm(desc, desc->flags | RF_DAG_SUPPRESS_LOCKS);
    488  1.17     oster #if RF_DEBUG_VALIDATE_DAG
    489  1.26     oster 	if (rf_printDAGsDebug) {
    490  1.26     oster 		dagList = desc->dagList;
    491  1.26     oster 		for (i = 0; i < desc->numStripes; i++) {
    492  1.42     oster 			rf_PrintDAGList(dagList->dags);
    493  1.26     oster 			dagList = dagList->next;
    494  1.26     oster 		}
    495  1.26     oster 	}
    496  1.17     oster #endif /* RF_DEBUG_VALIDATE_DAG */
    497  1.27     oster #if RF_ACC_TRACE > 0
    498   1.6     oster 	RF_ETIMER_STOP(timer);
    499   1.6     oster 	RF_ETIMER_EVAL(timer);
    500   1.6     oster 	/* update time to create all dags */
    501   1.6     oster 	tracerec->specific.user.dag_create_us = RF_ETIMER_VAL_US(timer);
    502  1.27     oster #endif
    503   1.6     oster 
    504   1.6     oster 	desc->status = 0;	/* good status */
    505   1.6     oster 
    506  1.36     oster 	if (selectStatus || (desc->numRetries > RF_RETRY_THRESHOLD)) {
    507   1.6     oster 		/* failed to create a dag */
    508   1.6     oster 		/* this happens when there are too many faults or incomplete
    509   1.6     oster 		 * dag libraries */
    510  1.36     oster 		if (selectStatus) {
    511  1.36     oster 			printf("raid%d: failed to create a dag. "
    512  1.38     perry 			       "Too many component failures.\n",
    513  1.36     oster 			       desc->raidPtr->raidid);
    514  1.36     oster 		} else {
    515  1.36     oster 			printf("raid%d: IO failed after %d retries.\n",
    516  1.36     oster 			       desc->raidPtr->raidid, RF_RETRY_THRESHOLD);
    517  1.36     oster 		}
    518  1.25     oster 
    519  1.38     perry 		desc->status = 1; /* bad status */
    520  1.25     oster 		/* skip straight to rf_State_Cleanup() */
    521  1.25     oster 		desc->state = rf_CleanupState;
    522  1.25     oster 		bp = (struct buf *)desc->bp;
    523  1.25     oster 		bp->b_error = EIO;
    524  1.43     oster 		bp->b_resid = bp->b_bcount;
    525   1.6     oster 	} else {
    526   1.6     oster 		/* bind dags to desc */
    527  1.26     oster 		dagList = desc->dagList;
    528   1.6     oster 		for (i = 0; i < desc->numStripes; i++) {
    529  1.26     oster 			dag_h = dagList->dags;
    530   1.6     oster 			while (dag_h) {
    531   1.6     oster 				dag_h->bp = (struct buf *) desc->bp;
    532  1.27     oster #if RF_ACC_TRACE > 0
    533   1.6     oster 				dag_h->tracerec = tracerec;
    534  1.27     oster #endif
    535   1.6     oster 				dag_h = dag_h->next;
    536   1.6     oster 			}
    537  1.26     oster 			dagList = dagList->next;
    538   1.6     oster 		}
    539   1.6     oster 		desc->flags |= RF_DAG_DISPATCH_RETURNED;
    540   1.6     oster 		desc->state++;	/* next state should be rf_State_ExecuteDAG */
    541   1.6     oster 	}
    542   1.6     oster 	return RF_FALSE;
    543   1.1     oster }
    544   1.1     oster 
    545   1.1     oster 
    546   1.1     oster 
    547  1.26     oster /* the access has an list of dagLists, one dagList per parity stripe.
    548   1.1     oster  * fire the first dag in each parity stripe (dagList).
    549   1.1     oster  * dags within a stripe (dagList) must be executed sequentially
    550   1.1     oster  *  - this preserves atomic parity update
    551   1.1     oster  * dags for independents parity groups (stripes) are fired concurrently */
    552   1.1     oster 
    553  1.38     perry int
    554  1.22     oster rf_State_ExecuteDAG(RF_RaidAccessDesc_t *desc)
    555   1.1     oster {
    556   1.6     oster 	int     i;
    557   1.6     oster 	RF_DagHeader_t *dag_h;
    558  1.26     oster 	RF_DagList_t *dagList;
    559   1.6     oster 
    560  1.23     oster 	/* next state is always rf_State_ProcessDAG important to do
    561  1.23     oster 	 * this before firing the first dag (it may finish before we
    562  1.23     oster 	 * leave this routine) */
    563   1.6     oster 	desc->state++;
    564   1.6     oster 
    565  1.23     oster 	/* sweep dag array, a stripe at a time, firing the first dag
    566  1.23     oster 	 * in each stripe */
    567  1.26     oster 	dagList = desc->dagList;
    568   1.6     oster 	for (i = 0; i < desc->numStripes; i++) {
    569  1.26     oster 		RF_ASSERT(dagList->numDags > 0);
    570  1.26     oster 		RF_ASSERT(dagList->numDagsDone == 0);
    571  1.26     oster 		RF_ASSERT(dagList->numDagsFired == 0);
    572  1.27     oster #if RF_ACC_TRACE > 0
    573  1.26     oster 		RF_ETIMER_START(dagList->tracerec.timer);
    574  1.27     oster #endif
    575   1.6     oster 		/* fire first dag in this stripe */
    576  1.26     oster 		dag_h = dagList->dags;
    577   1.6     oster 		RF_ASSERT(dag_h);
    578  1.26     oster 		dagList->numDagsFired++;
    579  1.26     oster 		rf_DispatchDAG(dag_h, (void (*) (void *)) rf_ContinueDagAccess, dagList);
    580  1.26     oster 		dagList = dagList->next;
    581   1.6     oster 	}
    582   1.6     oster 
    583   1.6     oster 	/* the DAG will always call the callback, even if there was no
    584   1.6     oster 	 * blocking, so we are always suspended in this state */
    585   1.6     oster 	return RF_TRUE;
    586   1.1     oster }
    587   1.1     oster 
    588   1.1     oster 
    589   1.1     oster 
    590   1.1     oster /* rf_State_ProcessDAG is entered when a dag completes.
    591   1.1     oster  * first, check to all dags in the access have completed
    592   1.1     oster  * if not, fire as many dags as possible */
    593   1.1     oster 
    594  1.38     perry int
    595  1.22     oster rf_State_ProcessDAG(RF_RaidAccessDesc_t *desc)
    596   1.1     oster {
    597   1.6     oster 	RF_AccessStripeMapHeader_t *asmh = desc->asmap;
    598   1.6     oster 	RF_Raid_t *raidPtr = desc->raidPtr;
    599   1.6     oster 	RF_DagHeader_t *dag_h;
    600   1.6     oster 	int     i, j, done = RF_TRUE;
    601  1.26     oster 	RF_DagList_t *dagList, *temp;
    602   1.6     oster 
    603   1.6     oster 	/* check to see if this is the last dag */
    604  1.26     oster 	dagList = desc->dagList;
    605  1.26     oster 	for (i = 0; i < desc->numStripes; i++) {
    606  1.26     oster 		if (dagList->numDags != dagList->numDagsDone)
    607   1.6     oster 			done = RF_FALSE;
    608  1.26     oster 		dagList = dagList->next;
    609  1.26     oster 	}
    610   1.6     oster 
    611   1.6     oster 	if (done) {
    612   1.6     oster 		if (desc->status) {
    613   1.6     oster 			/* a dag failed, retry */
    614   1.6     oster 			/* free all dags */
    615  1.26     oster 			dagList = desc->dagList;
    616   1.6     oster 			for (i = 0; i < desc->numStripes; i++) {
    617  1.26     oster 				rf_FreeDAG(dagList->dags);
    618  1.26     oster 				temp = dagList;
    619  1.35     oster 				dagList = dagList->next;
    620  1.52     oster 				rf_FreeDAGList(raidPtr, temp);
    621   1.6     oster 			}
    622  1.37     oster 			desc->dagList = NULL;
    623  1.37     oster 
    624   1.6     oster 			rf_MarkFailuresInASMList(raidPtr, asmh);
    625  1.36     oster 
    626  1.36     oster 			/* note the retry so that we'll bail in
    627  1.36     oster 			   rf_State_CreateDAG() once we've retired
    628  1.36     oster 			   the IO RF_RETRY_THRESHOLD times */
    629  1.36     oster 
    630  1.36     oster 			desc->numRetries++;
    631  1.36     oster 
    632   1.6     oster 			/* back up to rf_State_CreateDAG */
    633   1.6     oster 			desc->state = desc->state - 2;
    634   1.6     oster 			return RF_FALSE;
    635   1.6     oster 		} else {
    636   1.6     oster 			/* move on to rf_State_Cleanup */
    637   1.6     oster 			desc->state++;
    638   1.6     oster 		}
    639   1.6     oster 		return RF_FALSE;
    640   1.6     oster 	} else {
    641   1.6     oster 		/* more dags to execute */
    642   1.6     oster 		/* see if any are ready to be fired.  if so, fire them */
    643   1.6     oster 		/* don't fire the initial dag in a list, it's fired in
    644   1.6     oster 		 * rf_State_ExecuteDAG */
    645  1.26     oster 		dagList = desc->dagList;
    646   1.6     oster 		for (i = 0; i < desc->numStripes; i++) {
    647  1.26     oster 			if ((dagList->numDagsDone < dagList->numDags)
    648  1.26     oster 			    && (dagList->numDagsDone == dagList->numDagsFired)
    649  1.26     oster 			    && (dagList->numDagsFired > 0)) {
    650  1.27     oster #if RF_ACC_TRACE > 0
    651  1.26     oster 				RF_ETIMER_START(dagList->tracerec.timer);
    652  1.27     oster #endif
    653   1.6     oster 				/* fire next dag in this stripe */
    654   1.6     oster 				/* first, skip to next dag awaiting execution */
    655  1.26     oster 				dag_h = dagList->dags;
    656  1.26     oster 				for (j = 0; j < dagList->numDagsDone; j++)
    657   1.6     oster 					dag_h = dag_h->next;
    658  1.26     oster 				dagList->numDagsFired++;
    659   1.6     oster 				rf_DispatchDAG(dag_h, (void (*) (void *)) rf_ContinueDagAccess,
    660  1.26     oster 				    dagList);
    661   1.6     oster 			}
    662  1.26     oster 			dagList = dagList->next;
    663   1.6     oster 		}
    664   1.6     oster 		return RF_TRUE;
    665   1.6     oster 	}
    666   1.1     oster }
    667   1.1     oster /* only make it this far if all dags complete successfully */
    668  1.38     perry int
    669  1.22     oster rf_State_Cleanup(RF_RaidAccessDesc_t *desc)
    670   1.1     oster {
    671  1.27     oster #if RF_ACC_TRACE > 0
    672   1.6     oster 	RF_AccTraceEntry_t *tracerec = &desc->tracerec;
    673  1.28     oster 	RF_Etimer_t timer;
    674  1.27     oster #endif
    675   1.6     oster 	RF_AccessStripeMapHeader_t *asmh = desc->asmap;
    676   1.6     oster 	RF_Raid_t *raidPtr = desc->raidPtr;
    677   1.6     oster 	RF_AccessStripeMap_t *asm_p;
    678  1.26     oster 	RF_DagList_t *dagList;
    679  1.11     oster 	int i;
    680   1.6     oster 
    681   1.6     oster 	desc->state++;
    682   1.6     oster 
    683  1.27     oster #if RF_ACC_TRACE > 0
    684   1.6     oster 	timer = tracerec->timer;
    685   1.6     oster 	RF_ETIMER_STOP(timer);
    686   1.6     oster 	RF_ETIMER_EVAL(timer);
    687   1.6     oster 	tracerec->specific.user.dag_retry_us = RF_ETIMER_VAL_US(timer);
    688   1.6     oster 
    689   1.6     oster 	/* the RAID I/O is complete.  Clean up. */
    690   1.6     oster 	tracerec->specific.user.dag_retry_us = 0;
    691   1.6     oster 
    692   1.6     oster 	RF_ETIMER_START(timer);
    693  1.27     oster #endif
    694  1.24     oster 	/* free all dags */
    695  1.26     oster 	dagList = desc->dagList;
    696  1.24     oster 	for (i = 0; i < desc->numStripes; i++) {
    697  1.26     oster 		rf_FreeDAG(dagList->dags);
    698  1.26     oster 		dagList = dagList->next;
    699   1.6     oster 	}
    700  1.27     oster #if RF_ACC_TRACE > 0
    701   1.6     oster 	RF_ETIMER_STOP(timer);
    702   1.6     oster 	RF_ETIMER_EVAL(timer);
    703   1.6     oster 	tracerec->specific.user.cleanup_us = RF_ETIMER_VAL_US(timer);
    704   1.6     oster 
    705   1.6     oster 	RF_ETIMER_START(timer);
    706  1.27     oster #endif
    707  1.32     oster 	for (asm_p = asmh->stripeMap; asm_p; asm_p = asm_p->next) {
    708  1.32     oster 		if (!rf_suppressLocksAndLargeWrites &&
    709  1.32     oster 		    asm_p->parityInfo &&
    710  1.32     oster 		    !(desc->flags & RF_DAG_SUPPRESS_LOCKS)) {
    711  1.32     oster 			RF_ASSERT_VALID_LOCKREQ(&asm_p->lockReqDesc);
    712  1.52     oster 			rf_ReleaseStripeLock(raidPtr,
    713  1.52     oster 					     raidPtr->lockTable,
    714  1.32     oster 					     asm_p->stripeID,
    715  1.32     oster 					     &asm_p->lockReqDesc);
    716  1.32     oster 		}
    717  1.32     oster 		if (asm_p->flags & RF_ASM_FLAGS_RECON_BLOCKED) {
    718  1.32     oster 			rf_UnblockRecon(raidPtr, asm_p);
    719   1.6     oster 		}
    720   1.6     oster 	}
    721  1.27     oster #if RF_ACC_TRACE > 0
    722   1.6     oster 	RF_ETIMER_STOP(timer);
    723   1.6     oster 	RF_ETIMER_EVAL(timer);
    724   1.6     oster 	tracerec->specific.user.lock_us += RF_ETIMER_VAL_US(timer);
    725   1.6     oster 
    726   1.6     oster 	RF_ETIMER_START(timer);
    727  1.27     oster #endif
    728  1.52     oster 	rf_FreeAccessStripeMap(raidPtr, asmh);
    729  1.27     oster #if RF_ACC_TRACE > 0
    730   1.6     oster 	RF_ETIMER_STOP(timer);
    731   1.6     oster 	RF_ETIMER_EVAL(timer);
    732   1.6     oster 	tracerec->specific.user.cleanup_us += RF_ETIMER_VAL_US(timer);
    733   1.6     oster 
    734   1.6     oster 	RF_ETIMER_STOP(desc->timer);
    735   1.6     oster 	RF_ETIMER_EVAL(desc->timer);
    736   1.6     oster 
    737   1.6     oster 	timer = desc->tracerec.tot_timer;
    738   1.6     oster 	RF_ETIMER_STOP(timer);
    739   1.6     oster 	RF_ETIMER_EVAL(timer);
    740   1.6     oster 	desc->tracerec.total_us = RF_ETIMER_VAL_US(timer);
    741   1.1     oster 
    742   1.6     oster 	rf_LogTraceRec(raidPtr, tracerec);
    743  1.27     oster #endif
    744   1.6     oster 	desc->flags |= RF_DAG_ACCESS_COMPLETE;
    745   1.1     oster 
    746   1.6     oster 	return RF_FALSE;
    747   1.1     oster }
    748