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rf_diskqueue.c revision 1.27
      1  1.27     oster /*	$NetBSD: rf_diskqueue.c,v 1.27 2003/12/30 21:59:03 oster Exp $	*/
      2   1.1     oster /*
      3   1.1     oster  * Copyright (c) 1995 Carnegie-Mellon University.
      4   1.1     oster  * All rights reserved.
      5   1.1     oster  *
      6   1.1     oster  * Author: Mark Holland
      7   1.1     oster  *
      8   1.1     oster  * Permission to use, copy, modify and distribute this software and
      9   1.1     oster  * its documentation is hereby granted, provided that both the copyright
     10   1.1     oster  * notice and this permission notice appear in all copies of the
     11   1.1     oster  * software, derivative works or modified versions, and any portions
     12   1.1     oster  * thereof, and that both notices appear in supporting documentation.
     13   1.1     oster  *
     14   1.1     oster  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     15   1.1     oster  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     16   1.1     oster  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     17   1.1     oster  *
     18   1.1     oster  * Carnegie Mellon requests users of this software to return to
     19   1.1     oster  *
     20   1.1     oster  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     21   1.1     oster  *  School of Computer Science
     22   1.1     oster  *  Carnegie Mellon University
     23   1.1     oster  *  Pittsburgh PA 15213-3890
     24   1.1     oster  *
     25   1.1     oster  * any improvements or extensions that they make and grant Carnegie the
     26   1.1     oster  * rights to redistribute these changes.
     27   1.1     oster  */
     28   1.1     oster 
     29  1.13     oster /****************************************************************************
     30   1.1     oster  *
     31   1.1     oster  * rf_diskqueue.c -- higher-level disk queue code
     32   1.1     oster  *
     33   1.1     oster  * the routines here are a generic wrapper around the actual queueing
     34   1.6     oster  * routines.  The code here implements thread scheduling, synchronization,
     35   1.1     oster  * and locking ops (see below) on top of the lower-level queueing code.
     36   1.1     oster  *
     37  1.13     oster  * to support atomic RMW, we implement "locking operations".  When a
     38  1.13     oster  * locking op is dispatched to the lower levels of the driver, the
     39  1.13     oster  * queue is locked, and no further I/Os are dispatched until the queue
     40  1.13     oster  * receives & completes a corresponding "unlocking operation".  This
     41  1.13     oster  * code relies on the higher layers to guarantee that a locking op
     42  1.13     oster  * will always be eventually followed by an unlocking op.  The model
     43  1.13     oster  * is that the higher layers are structured so locking and unlocking
     44  1.13     oster  * ops occur in pairs, i.e.  an unlocking op cannot be generated until
     45  1.13     oster  * after a locking op reports completion.  There is no good way to
     46  1.13     oster  * check to see that an unlocking op "corresponds" to the op that
     47  1.13     oster  * currently has the queue locked, so we make no such attempt.  Since
     48  1.13     oster  * by definition there can be only one locking op outstanding on a
     49  1.13     oster  * disk, this should not be a problem.
     50  1.13     oster  *
     51  1.13     oster  * In the kernel, we allow multiple I/Os to be concurrently dispatched
     52  1.13     oster  * to the disk driver.  In order to support locking ops in this
     53  1.13     oster  * environment, when we decide to do a locking op, we stop dispatching
     54  1.13     oster  * new I/Os and wait until all dispatched I/Os have completed before
     55  1.13     oster  * dispatching the locking op.
     56  1.13     oster  *
     57  1.13     oster  * Unfortunately, the code is different in the 3 different operating
     58  1.13     oster  * states (user level, kernel, simulator).  In the kernel, I/O is
     59  1.13     oster  * non-blocking, and we have no disk threads to dispatch for us.
     60  1.13     oster  * Therefore, we have to dispatch new I/Os to the scsi driver at the
     61  1.13     oster  * time of enqueue, and also at the time of completion.  At user
     62  1.13     oster  * level, I/O is blocking, and so only the disk threads may dispatch
     63  1.13     oster  * I/Os.  Thus at user level, all we can do at enqueue time is enqueue
     64  1.13     oster  * and wake up the disk thread to do the dispatch.
     65   1.1     oster  *
     66  1.13     oster  ****************************************************************************/
     67  1.15     lukem 
     68  1.15     lukem #include <sys/cdefs.h>
     69  1.27     oster __KERNEL_RCSID(0, "$NetBSD: rf_diskqueue.c,v 1.27 2003/12/30 21:59:03 oster Exp $");
     70   1.1     oster 
     71  1.14     oster #include <dev/raidframe/raidframevar.h>
     72  1.14     oster 
     73   1.1     oster #include "rf_threadstuff.h"
     74   1.1     oster #include "rf_raid.h"
     75   1.1     oster #include "rf_diskqueue.h"
     76   1.1     oster #include "rf_alloclist.h"
     77   1.1     oster #include "rf_acctrace.h"
     78   1.1     oster #include "rf_etimer.h"
     79   1.1     oster #include "rf_general.h"
     80   1.1     oster #include "rf_debugprint.h"
     81   1.1     oster #include "rf_shutdown.h"
     82   1.1     oster #include "rf_cvscan.h"
     83   1.1     oster #include "rf_sstf.h"
     84   1.1     oster #include "rf_fifo.h"
     85  1.11     oster #include "rf_kintf.h"
     86   1.1     oster 
     87   1.1     oster static int init_dqd(RF_DiskQueueData_t *);
     88   1.1     oster static void clean_dqd(RF_DiskQueueData_t *);
     89   1.1     oster static void rf_ShutdownDiskQueueSystem(void *);
     90   1.1     oster 
     91  1.21     oster #ifndef RF_DEBUG_DISKQUEUE
     92  1.21     oster #define RF_DEBUG_DISKQUEUE 0
     93  1.21     oster #endif
     94  1.21     oster 
     95  1.21     oster #if RF_DEBUG_DISKQUEUE
     96   1.1     oster #define Dprintf1(s,a)         if (rf_queueDebug) rf_debug_printf(s,(void *)((unsigned long)a),NULL,NULL,NULL,NULL,NULL,NULL,NULL)
     97   1.1     oster #define Dprintf2(s,a,b)       if (rf_queueDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),NULL,NULL,NULL,NULL,NULL,NULL)
     98   1.1     oster #define Dprintf3(s,a,b,c)     if (rf_queueDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),NULL,NULL,NULL,NULL,NULL)
     99  1.21     oster #else
    100  1.21     oster #define Dprintf1(s,a)
    101  1.21     oster #define Dprintf2(s,a,b)
    102  1.21     oster #define Dprintf3(s,a,b,c)
    103  1.21     oster #endif
    104   1.1     oster 
    105  1.13     oster /*****************************************************************************
    106   1.1     oster  *
    107  1.13     oster  * the disk queue switch defines all the functions used in the
    108  1.13     oster  * different queueing disciplines queue ID, init routine, enqueue
    109  1.13     oster  * routine, dequeue routine
    110   1.1     oster  *
    111  1.13     oster  ****************************************************************************/
    112   1.1     oster 
    113  1.22  jdolecek static const RF_DiskQueueSW_t diskqueuesw[] = {
    114   1.6     oster 	{"fifo",		/* FIFO */
    115   1.6     oster 		rf_FifoCreate,
    116   1.6     oster 		rf_FifoEnqueue,
    117   1.6     oster 		rf_FifoDequeue,
    118   1.6     oster 		rf_FifoPeek,
    119   1.1     oster 	rf_FifoPromote},
    120   1.1     oster 
    121   1.6     oster 	{"cvscan",		/* cvscan */
    122   1.6     oster 		rf_CvscanCreate,
    123   1.6     oster 		rf_CvscanEnqueue,
    124   1.6     oster 		rf_CvscanDequeue,
    125   1.6     oster 		rf_CvscanPeek,
    126   1.6     oster 	rf_CvscanPromote},
    127   1.6     oster 
    128   1.6     oster 	{"sstf",		/* shortest seek time first */
    129   1.6     oster 		rf_SstfCreate,
    130   1.6     oster 		rf_SstfEnqueue,
    131   1.6     oster 		rf_SstfDequeue,
    132   1.6     oster 		rf_SstfPeek,
    133   1.1     oster 	rf_SstfPromote},
    134   1.1     oster 
    135   1.6     oster 	{"scan",		/* SCAN (two-way elevator) */
    136   1.6     oster 		rf_ScanCreate,
    137   1.6     oster 		rf_SstfEnqueue,
    138   1.6     oster 		rf_ScanDequeue,
    139   1.6     oster 		rf_ScanPeek,
    140   1.1     oster 	rf_SstfPromote},
    141   1.1     oster 
    142   1.6     oster 	{"cscan",		/* CSCAN (one-way elevator) */
    143   1.6     oster 		rf_CscanCreate,
    144   1.6     oster 		rf_SstfEnqueue,
    145   1.6     oster 		rf_CscanDequeue,
    146   1.6     oster 		rf_CscanPeek,
    147   1.1     oster 	rf_SstfPromote},
    148   1.1     oster 
    149   1.1     oster };
    150   1.1     oster #define NUM_DISK_QUEUE_TYPES (sizeof(diskqueuesw)/sizeof(RF_DiskQueueSW_t))
    151   1.1     oster 
    152  1.24     oster static struct pool rf_dqd_pool;
    153   1.1     oster #define RF_MAX_FREE_DQD 256
    154   1.1     oster #define RF_DQD_INC       16
    155   1.1     oster #define RF_DQD_INITIAL   64
    156   1.1     oster 
    157   1.1     oster #include <sys/buf.h>
    158   1.1     oster 
    159   1.6     oster static int
    160  1.27     oster init_dqd(RF_DiskQueueData_t *dqd)
    161   1.6     oster {
    162  1.13     oster 
    163   1.9     oster 	dqd->bp = (struct buf *) malloc(sizeof(struct buf),
    164   1.9     oster 					M_RAIDFRAME, M_NOWAIT);
    165   1.1     oster 	if (dqd->bp == NULL) {
    166   1.6     oster 		return (ENOMEM);
    167   1.1     oster 	}
    168   1.6     oster 	memset(dqd->bp, 0, sizeof(struct buf));	/* if you don't do it, nobody
    169   1.6     oster 						 * else will.. */
    170   1.6     oster 	return (0);
    171   1.1     oster }
    172   1.1     oster 
    173   1.6     oster static void
    174  1.27     oster clean_dqd(RF_DiskQueueData_t *dqd)
    175   1.1     oster {
    176   1.6     oster 	free(dqd->bp, M_RAIDFRAME);
    177   1.6     oster }
    178   1.6     oster /* configures a single disk queue */
    179   1.9     oster 
    180   1.7     oster int
    181  1.27     oster rf_ConfigureDiskQueue(RF_Raid_t *raidPtr, RF_DiskQueue_t *diskqueue,
    182  1.27     oster 		      RF_RowCol_t c, const RF_DiskQueueSW_t *p,
    183  1.27     oster 		      RF_SectorCount_t sectPerDisk, dev_t dev,
    184  1.27     oster 		      int maxOutstanding, RF_ShutdownList_t **listp,
    185  1.27     oster 		      RF_AllocListElem_t *clList)
    186   1.6     oster {
    187   1.6     oster 	diskqueue->col = c;
    188   1.6     oster 	diskqueue->qPtr = p;
    189   1.6     oster 	diskqueue->qHdr = (p->Create) (sectPerDisk, clList, listp);
    190   1.6     oster 	diskqueue->dev = dev;
    191   1.6     oster 	diskqueue->numOutstanding = 0;
    192   1.6     oster 	diskqueue->queueLength = 0;
    193   1.6     oster 	diskqueue->maxOutstanding = maxOutstanding;
    194   1.6     oster 	diskqueue->curPriority = RF_IO_NORMAL_PRIORITY;
    195   1.6     oster 	diskqueue->nextLockingOp = NULL;
    196   1.6     oster 	diskqueue->numWaiting = 0;
    197   1.6     oster 	diskqueue->flags = 0;
    198   1.6     oster 	diskqueue->raidPtr = raidPtr;
    199  1.23     oster 	diskqueue->rf_cinfo = &raidPtr->raid_cinfo[c];
    200  1.25     oster 	rf_mutex_init(&diskqueue->mutex);
    201  1.26     oster 	diskqueue->cond = 0;
    202   1.6     oster 	return (0);
    203   1.1     oster }
    204   1.1     oster 
    205   1.6     oster static void
    206  1.27     oster rf_ShutdownDiskQueueSystem(void *ignored)
    207   1.6     oster {
    208  1.24     oster 	pool_destroy(&rf_dqd_pool);
    209   1.1     oster }
    210   1.1     oster 
    211   1.6     oster int
    212  1.27     oster rf_ConfigureDiskQueueSystem(RF_ShutdownList_t **listp)
    213   1.6     oster {
    214   1.6     oster 	int     rc;
    215   1.6     oster 
    216  1.24     oster 	pool_init(&rf_dqd_pool, sizeof(RF_DiskQueueData_t), 0, 0, 0,
    217  1.24     oster 		  "rf_dqd_pl", NULL);
    218  1.24     oster 	pool_sethiwat(&rf_dqd_pool, RF_MAX_FREE_DQD);
    219  1.24     oster 	pool_prime(&rf_dqd_pool, RF_DQD_INITIAL);
    220  1.24     oster 
    221   1.6     oster 	rc = rf_ShutdownCreate(listp, rf_ShutdownDiskQueueSystem, NULL);
    222   1.6     oster 	if (rc) {
    223  1.18     oster 		rf_print_unable_to_add_shutdown( __FILE__, __LINE__, rc);
    224   1.6     oster 		rf_ShutdownDiskQueueSystem(NULL);
    225   1.6     oster 		return (rc);
    226   1.6     oster 	}
    227  1.24     oster 
    228   1.6     oster 	return (0);
    229   1.6     oster }
    230   1.6     oster 
    231   1.6     oster int
    232  1.27     oster rf_ConfigureDiskQueues(RF_ShutdownList_t **listp, RF_Raid_t *raidPtr,
    233  1.27     oster 		       RF_Config_t *cfgPtr)
    234   1.6     oster {
    235  1.23     oster 	RF_DiskQueue_t *diskQueues, *spareQueues;
    236  1.22  jdolecek 	const RF_DiskQueueSW_t *p;
    237  1.23     oster 	RF_RowCol_t r,c;
    238   1.6     oster 	int     rc, i;
    239   1.6     oster 
    240   1.6     oster 	raidPtr->maxQueueDepth = cfgPtr->maxOutstandingDiskReqs;
    241   1.6     oster 
    242   1.6     oster 	for (p = NULL, i = 0; i < NUM_DISK_QUEUE_TYPES; i++) {
    243   1.6     oster 		if (!strcmp(diskqueuesw[i].queueType, cfgPtr->diskQueueType)) {
    244   1.6     oster 			p = &diskqueuesw[i];
    245   1.6     oster 			break;
    246   1.6     oster 		}
    247   1.6     oster 	}
    248   1.6     oster 	if (p == NULL) {
    249   1.6     oster 		RF_ERRORMSG2("Unknown queue type \"%s\".  Using %s\n", cfgPtr->diskQueueType, diskqueuesw[0].queueType);
    250   1.6     oster 		p = &diskqueuesw[0];
    251   1.6     oster 	}
    252  1.10     oster 	raidPtr->qType = p;
    253  1.23     oster 
    254  1.24     oster 	RF_MallocAndAdd(diskQueues,
    255  1.24     oster 			(raidPtr->numCol + RF_MAXSPARE) *
    256  1.23     oster 			sizeof(RF_DiskQueue_t), (RF_DiskQueue_t *),
    257  1.23     oster 			raidPtr->cleanupList);
    258  1.23     oster 	if (diskQueues == NULL)
    259   1.6     oster 		return (ENOMEM);
    260   1.6     oster 	raidPtr->Queues = diskQueues;
    261  1.23     oster 
    262  1.23     oster 	for (c = 0; c < raidPtr->numCol; c++) {
    263  1.23     oster 		rc = rf_ConfigureDiskQueue(raidPtr, &diskQueues[c],
    264  1.23     oster 					   c, p,
    265  1.23     oster 					   raidPtr->sectorsPerDisk,
    266  1.23     oster 					   raidPtr->Disks[c].dev,
    267  1.23     oster 					   cfgPtr->maxOutstandingDiskReqs,
    268  1.23     oster 					   listp, raidPtr->cleanupList);
    269  1.23     oster 		if (rc)
    270  1.23     oster 			return (rc);
    271   1.6     oster 	}
    272   1.6     oster 
    273  1.23     oster 	spareQueues = &raidPtr->Queues[raidPtr->numCol];
    274   1.6     oster 	for (r = 0; r < raidPtr->numSpare; r++) {
    275   1.9     oster 		rc = rf_ConfigureDiskQueue(raidPtr, &spareQueues[r],
    276  1.23     oster 					   raidPtr->numCol + r, p,
    277  1.23     oster 					   raidPtr->sectorsPerDisk,
    278  1.23     oster 					   raidPtr->Disks[raidPtr->numCol + r].dev,
    279  1.23     oster 					   cfgPtr->maxOutstandingDiskReqs, listp,
    280  1.23     oster 					   raidPtr->cleanupList);
    281   1.6     oster 		if (rc)
    282   1.6     oster 			return (rc);
    283   1.6     oster 	}
    284   1.6     oster 	return (0);
    285   1.6     oster }
    286   1.1     oster /* Enqueue a disk I/O
    287   1.1     oster  *
    288   1.1     oster  * Unfortunately, we have to do things differently in the different
    289   1.1     oster  * environments (simulator, user-level, kernel).
    290   1.1     oster  * At user level, all I/O is blocking, so we have 1 or more threads/disk
    291   1.1     oster  * and the thread that enqueues is different from the thread that dequeues.
    292   1.1     oster  * In the kernel, I/O is non-blocking and so we'd like to have multiple
    293   1.1     oster  * I/Os outstanding on the physical disks when possible.
    294   1.1     oster  *
    295   1.1     oster  * when any request arrives at a queue, we have two choices:
    296   1.1     oster  *    dispatch it to the lower levels
    297   1.1     oster  *    queue it up
    298   1.1     oster  *
    299   1.1     oster  * kernel rules for when to do what:
    300   1.1     oster  *    locking request:  queue empty => dispatch and lock queue,
    301   1.1     oster  *                      else queue it
    302   1.1     oster  *    unlocking req  :  always dispatch it
    303   1.1     oster  *    normal req     :  queue empty => dispatch it & set priority
    304   1.1     oster  *                      queue not full & priority is ok => dispatch it
    305   1.1     oster  *                      else queue it
    306   1.1     oster  *
    307   1.1     oster  * user-level rules:
    308   1.1     oster  *    always enqueue.  In the special case of an unlocking op, enqueue
    309   1.1     oster  *    in a special way that will cause the unlocking op to be the next
    310   1.1     oster  *    thing dequeued.
    311   1.1     oster  *
    312   1.1     oster  * simulator rules:
    313   1.1     oster  *    Do the same as at user level, with the sleeps and wakeups suppressed.
    314   1.1     oster  */
    315   1.6     oster void
    316  1.27     oster rf_DiskIOEnqueue(RF_DiskQueue_t *queue, RF_DiskQueueData_t *req, int pri)
    317   1.6     oster {
    318   1.6     oster 	RF_ETIMER_START(req->qtime);
    319   1.6     oster 	RF_ASSERT(req->type == RF_IO_TYPE_NOP || req->numSector);
    320   1.6     oster 	req->priority = pri;
    321   1.6     oster 
    322  1.21     oster #if RF_DEBUG_DISKQUEUE
    323   1.6     oster 	if (rf_queueDebug && (req->numSector == 0)) {
    324   1.6     oster 		printf("Warning: Enqueueing zero-sector access\n");
    325   1.6     oster 	}
    326  1.21     oster #endif
    327   1.6     oster 	/*
    328   1.6     oster          * kernel
    329   1.6     oster          */
    330   1.6     oster 	RF_LOCK_QUEUE_MUTEX(queue, "DiskIOEnqueue");
    331   1.6     oster 	/* locking request */
    332   1.6     oster 	if (RF_LOCKING_REQ(req)) {
    333   1.6     oster 		if (RF_QUEUE_EMPTY(queue)) {
    334  1.23     oster 			Dprintf2("Dispatching pri %d locking op to c %d (queue empty)\n", pri, queue->col);
    335   1.6     oster 			RF_LOCK_QUEUE(queue);
    336   1.6     oster 			rf_DispatchKernelIO(queue, req);
    337   1.6     oster 		} else {
    338   1.6     oster 			queue->queueLength++;	/* increment count of number
    339   1.6     oster 						 * of requests waiting in this
    340   1.6     oster 						 * queue */
    341  1.23     oster 			Dprintf2("Enqueueing pri %d locking op to c %d (queue not empty)\n", pri, queue->col);
    342   1.6     oster 			req->queue = (void *) queue;
    343   1.6     oster 			(queue->qPtr->Enqueue) (queue->qHdr, req, pri);
    344   1.6     oster 		}
    345   1.6     oster 	}
    346   1.6     oster 	/* unlocking request */
    347   1.6     oster 	else
    348   1.6     oster 		if (RF_UNLOCKING_REQ(req)) {	/* we'll do the actual unlock
    349   1.6     oster 						 * when this I/O completes */
    350  1.23     oster 			Dprintf2("Dispatching pri %d unlocking op to c %d\n", pri, queue->col);
    351   1.6     oster 			RF_ASSERT(RF_QUEUE_LOCKED(queue));
    352   1.6     oster 			rf_DispatchKernelIO(queue, req);
    353   1.6     oster 		}
    354   1.6     oster 	/* normal request */
    355   1.6     oster 		else
    356   1.6     oster 			if (RF_OK_TO_DISPATCH(queue, req)) {
    357  1.23     oster 				Dprintf2("Dispatching pri %d regular op to c %d (ok to dispatch)\n", pri, queue->col);
    358   1.6     oster 				rf_DispatchKernelIO(queue, req);
    359   1.6     oster 			} else {
    360   1.6     oster 				queue->queueLength++;	/* increment count of
    361   1.6     oster 							 * number of requests
    362   1.6     oster 							 * waiting in this queue */
    363  1.23     oster 				Dprintf2("Enqueueing pri %d regular op to c %d (not ok to dispatch)\n", pri, queue->col);
    364   1.6     oster 				req->queue = (void *) queue;
    365   1.6     oster 				(queue->qPtr->Enqueue) (queue->qHdr, req, pri);
    366   1.6     oster 			}
    367   1.6     oster 	RF_UNLOCK_QUEUE_MUTEX(queue, "DiskIOEnqueue");
    368   1.1     oster }
    369   1.6     oster 
    370   1.1     oster 
    371   1.1     oster /* get the next set of I/Os started, kernel version only */
    372   1.6     oster void
    373  1.27     oster rf_DiskIOComplete(RF_DiskQueue_t *queue, RF_DiskQueueData_t *req, int status)
    374   1.6     oster {
    375   1.6     oster 	int     done = 0;
    376   1.6     oster 
    377   1.6     oster 	RF_LOCK_QUEUE_MUTEX(queue, "DiskIOComplete");
    378   1.6     oster 
    379   1.6     oster 	/* unlock the queue: (1) after an unlocking req completes (2) after a
    380   1.6     oster 	 * locking req fails */
    381   1.6     oster 	if (RF_UNLOCKING_REQ(req) || (RF_LOCKING_REQ(req) && status)) {
    382  1.23     oster 		Dprintf1("DiskIOComplete: unlocking queue at c %d\n", queue->col);
    383  1.20     oster 		RF_ASSERT(RF_QUEUE_LOCKED(queue));
    384   1.6     oster 		RF_UNLOCK_QUEUE(queue);
    385   1.6     oster 	}
    386   1.6     oster 	queue->numOutstanding--;
    387   1.6     oster 	RF_ASSERT(queue->numOutstanding >= 0);
    388   1.6     oster 
    389   1.6     oster 	/* dispatch requests to the disk until we find one that we can't. */
    390   1.6     oster 	/* no reason to continue once we've filled up the queue */
    391   1.6     oster 	/* no reason to even start if the queue is locked */
    392   1.6     oster 
    393   1.6     oster 	while (!done && !RF_QUEUE_FULL(queue) && !RF_QUEUE_LOCKED(queue)) {
    394   1.6     oster 		if (queue->nextLockingOp) {
    395   1.6     oster 			req = queue->nextLockingOp;
    396   1.6     oster 			queue->nextLockingOp = NULL;
    397  1.23     oster 			Dprintf2("DiskIOComplete: a pri %d locking req was pending at c %d\n", req->priority, queue->col);
    398   1.6     oster 		} else {
    399   1.6     oster 			req = (queue->qPtr->Dequeue) (queue->qHdr);
    400   1.6     oster 			if (req != NULL) {
    401  1.23     oster 				Dprintf2("DiskIOComplete: extracting pri %d req from queue at c %d\n", req->priority, queue->col);
    402   1.6     oster 			} else {
    403   1.6     oster 				Dprintf1("DiskIOComplete: no more requests to extract.\n", "");
    404   1.6     oster 			}
    405   1.6     oster 		}
    406   1.6     oster 		if (req) {
    407   1.6     oster 			queue->queueLength--;	/* decrement count of number
    408   1.6     oster 						 * of requests waiting in this
    409   1.6     oster 						 * queue */
    410   1.6     oster 			RF_ASSERT(queue->queueLength >= 0);
    411   1.6     oster 		}
    412   1.6     oster 		if (!req)
    413   1.6     oster 			done = 1;
    414   1.6     oster 		else
    415   1.6     oster 			if (RF_LOCKING_REQ(req)) {
    416   1.6     oster 				if (RF_QUEUE_EMPTY(queue)) {	/* dispatch it */
    417  1.23     oster 					Dprintf2("DiskIOComplete: dispatching pri %d locking req to c %d (queue empty)\n", req->priority, queue->col);
    418   1.6     oster 					RF_LOCK_QUEUE(queue);
    419   1.6     oster 					rf_DispatchKernelIO(queue, req);
    420   1.6     oster 					done = 1;
    421   1.6     oster 				} else {	/* put it aside to wait for
    422   1.6     oster 						 * the queue to drain */
    423  1.23     oster 					Dprintf2("DiskIOComplete: postponing pri %d locking req to c %d\n", req->priority, queue->col);
    424   1.6     oster 					RF_ASSERT(queue->nextLockingOp == NULL);
    425   1.6     oster 					queue->nextLockingOp = req;
    426   1.6     oster 					done = 1;
    427   1.6     oster 				}
    428   1.6     oster 			} else
    429   1.6     oster 				if (RF_UNLOCKING_REQ(req)) {	/* should not happen:
    430   1.6     oster 								 * unlocking ops should
    431   1.6     oster 								 * not get queued */
    432   1.6     oster 					RF_ASSERT(RF_QUEUE_LOCKED(queue));	/* support it anyway for
    433   1.6     oster 										 * the future */
    434  1.23     oster 					Dprintf2("DiskIOComplete: dispatching pri %d unl req to c %d (SHOULD NOT SEE THIS)\n", req->priority, queue->col);
    435   1.6     oster 					rf_DispatchKernelIO(queue, req);
    436   1.6     oster 					done = 1;
    437   1.6     oster 				} else
    438   1.6     oster 					if (RF_OK_TO_DISPATCH(queue, req)) {
    439  1.23     oster 						Dprintf2("DiskIOComplete: dispatching pri %d regular req to c %d (ok to dispatch)\n", req->priority, queue->col);
    440   1.6     oster 						rf_DispatchKernelIO(queue, req);
    441   1.6     oster 					} else {	/* we can't dispatch it,
    442   1.6     oster 							 * so just re-enqueue
    443   1.6     oster 							 * it.  */
    444   1.6     oster 						/* potential trouble here if
    445   1.6     oster 						 * disk queues batch reqs */
    446  1.23     oster 						Dprintf2("DiskIOComplete: re-enqueueing pri %d regular req to c %d\n", req->priority, queue->col);
    447   1.6     oster 						queue->queueLength++;
    448   1.6     oster 						(queue->qPtr->Enqueue) (queue->qHdr, req, req->priority);
    449   1.6     oster 						done = 1;
    450   1.6     oster 					}
    451   1.6     oster 	}
    452   1.6     oster 
    453   1.6     oster 	RF_UNLOCK_QUEUE_MUTEX(queue, "DiskIOComplete");
    454   1.1     oster }
    455   1.1     oster /* promotes accesses tagged with the given parityStripeID from low priority
    456   1.1     oster  * to normal priority.  This promotion is optional, meaning that a queue
    457   1.1     oster  * need not implement it.  If there is no promotion routine associated with
    458   1.1     oster  * a queue, this routine does nothing and returns -1.
    459   1.1     oster  */
    460   1.6     oster int
    461  1.27     oster rf_DiskIOPromote(RF_DiskQueue_t *queue, RF_StripeNum_t parityStripeID,
    462  1.27     oster 		 RF_ReconUnitNum_t which_ru)
    463   1.6     oster {
    464   1.6     oster 	int     retval;
    465   1.6     oster 
    466   1.6     oster 	if (!queue->qPtr->Promote)
    467   1.6     oster 		return (-1);
    468   1.6     oster 	RF_LOCK_QUEUE_MUTEX(queue, "DiskIOPromote");
    469   1.6     oster 	retval = (queue->qPtr->Promote) (queue->qHdr, parityStripeID, which_ru);
    470   1.6     oster 	RF_UNLOCK_QUEUE_MUTEX(queue, "DiskIOPromote");
    471   1.6     oster 	return (retval);
    472   1.6     oster }
    473   1.6     oster 
    474   1.6     oster RF_DiskQueueData_t *
    475  1.27     oster rf_CreateDiskQueueData(RF_IoType_t typ, RF_SectorNum_t ssect,
    476  1.27     oster 		       RF_SectorCount_t nsect, caddr_t buf,
    477  1.27     oster 		       RF_StripeNum_t parityStripeID,
    478  1.27     oster 		       RF_ReconUnitNum_t which_ru,
    479  1.27     oster 		       int (*wakeF) (void *, int), void *arg,
    480  1.27     oster 		       RF_DiskQueueData_t *next,
    481  1.27     oster 		       RF_AccTraceEntry_t *tracerec, void *raidPtr,
    482  1.27     oster 		       RF_DiskQueueDataFlags_t flags, void *kb_proc)
    483   1.6     oster {
    484   1.6     oster 	RF_DiskQueueData_t *p;
    485   1.6     oster 
    486  1.24     oster 	p = pool_get(&rf_dqd_pool, PR_WAITOK);
    487  1.24     oster 	if (init_dqd(p)) {
    488  1.24     oster 		/* no memory for the buffer!?!? */
    489  1.24     oster 		pool_put(&rf_dqd_pool, p);
    490  1.24     oster 		return(NULL);
    491  1.24     oster 	}
    492   1.6     oster 
    493   1.6     oster 	p->sectorOffset = ssect + rf_protectedSectors;
    494   1.6     oster 	p->numSector = nsect;
    495   1.6     oster 	p->type = typ;
    496   1.6     oster 	p->buf = buf;
    497   1.6     oster 	p->parityStripeID = parityStripeID;
    498   1.6     oster 	p->which_ru = which_ru;
    499   1.6     oster 	p->CompleteFunc = wakeF;
    500   1.6     oster 	p->argument = arg;
    501   1.6     oster 	p->next = next;
    502   1.6     oster 	p->tracerec = tracerec;
    503   1.6     oster 	p->priority = RF_IO_NORMAL_PRIORITY;
    504   1.6     oster 	p->raidPtr = raidPtr;
    505   1.6     oster 	p->flags = flags;
    506   1.6     oster 	p->b_proc = kb_proc;
    507   1.6     oster 	return (p);
    508   1.6     oster }
    509   1.6     oster 
    510   1.6     oster void
    511  1.27     oster rf_FreeDiskQueueData(RF_DiskQueueData_t *p)
    512   1.1     oster {
    513  1.24     oster 	clean_dqd(p);
    514  1.24     oster 	pool_put(&rf_dqd_pool, p);
    515   1.1     oster }
    516