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rf_paritylogging.c revision 1.34.56.1
      1  1.34.56.1  christos /*	$NetBSD: rf_paritylogging.c,v 1.34.56.1 2019/06/10 22:07:31 christos 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
      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   parity logging configuration, dag selection, and mapping is implemented here
     32        1.1     oster  */
     33       1.12     lukem 
     34       1.12     lukem #include <sys/cdefs.h>
     35  1.34.56.1  christos __KERNEL_RCSID(0, "$NetBSD: rf_paritylogging.c,v 1.34.56.1 2019/06/10 22:07:31 christos Exp $");
     36        1.1     oster 
     37        1.1     oster #include "rf_archs.h"
     38        1.1     oster 
     39        1.1     oster #if RF_INCLUDE_PARITYLOGGING > 0
     40        1.1     oster 
     41       1.11     oster #include <dev/raidframe/raidframevar.h>
     42       1.11     oster 
     43        1.1     oster #include "rf_raid.h"
     44        1.1     oster #include "rf_dag.h"
     45        1.1     oster #include "rf_dagutils.h"
     46        1.1     oster #include "rf_dagfuncs.h"
     47        1.1     oster #include "rf_dagffrd.h"
     48        1.1     oster #include "rf_dagffwr.h"
     49        1.1     oster #include "rf_dagdegrd.h"
     50        1.1     oster #include "rf_dagdegwr.h"
     51        1.1     oster #include "rf_paritylog.h"
     52        1.1     oster #include "rf_paritylogDiskMgr.h"
     53        1.1     oster #include "rf_paritylogging.h"
     54        1.1     oster #include "rf_parityloggingdags.h"
     55        1.1     oster #include "rf_general.h"
     56        1.1     oster #include "rf_map.h"
     57        1.1     oster #include "rf_utils.h"
     58        1.1     oster #include "rf_shutdown.h"
     59        1.1     oster 
     60        1.1     oster typedef struct RF_ParityLoggingConfigInfo_s {
     61        1.3     oster 	RF_RowCol_t **stripeIdentifier;	/* filled in at config time & used by
     62        1.3     oster 					 * IdentifyStripe */
     63        1.3     oster }       RF_ParityLoggingConfigInfo_t;
     64        1.1     oster 
     65        1.3     oster static void FreeRegionInfo(RF_Raid_t * raidPtr, RF_RegionId_t regionID);
     66        1.1     oster static void rf_ShutdownParityLogging(RF_ThreadArg_t arg);
     67        1.1     oster static void rf_ShutdownParityLoggingRegionInfo(RF_ThreadArg_t arg);
     68        1.1     oster static void rf_ShutdownParityLoggingPool(RF_ThreadArg_t arg);
     69        1.1     oster static void rf_ShutdownParityLoggingRegionBufferPool(RF_ThreadArg_t arg);
     70        1.1     oster static void rf_ShutdownParityLoggingParityBufferPool(RF_ThreadArg_t arg);
     71        1.1     oster static void rf_ShutdownParityLoggingDiskQueue(RF_ThreadArg_t arg);
     72        1.1     oster 
     73       1.23     perry int
     74        1.3     oster rf_ConfigureParityLogging(
     75        1.3     oster     RF_ShutdownList_t ** listp,
     76        1.3     oster     RF_Raid_t * raidPtr,
     77       1.27  christos     RF_Config_t * cfgPtr)
     78        1.3     oster {
     79        1.3     oster 	int     i, j, startdisk, rc;
     80        1.3     oster 	RF_SectorCount_t totalLogCapacity, fragmentation, lastRegionCapacity;
     81        1.3     oster 	RF_SectorCount_t parityBufferCapacity, maxRegionParityRange;
     82        1.3     oster 	RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
     83        1.3     oster 	RF_ParityLoggingConfigInfo_t *info;
     84        1.3     oster 	RF_ParityLog_t *l = NULL, *next;
     85       1.28  christos 	void *lHeapPtr;
     86        1.3     oster 
     87        1.5     oster 	if (rf_numParityRegions <= 0)
     88        1.5     oster 		return(EINVAL);
     89        1.5     oster 
     90        1.3     oster 	/*
     91        1.3     oster          * We create multiple entries on the shutdown list here, since
     92        1.3     oster          * this configuration routine is fairly complicated in and of
     93        1.3     oster          * itself, and this makes backing out of a failed configuration
     94        1.3     oster          * much simpler.
     95        1.3     oster          */
     96        1.3     oster 
     97        1.3     oster 	raidPtr->numSectorsPerLog = RF_DEFAULT_NUM_SECTORS_PER_LOG;
     98        1.3     oster 
     99        1.3     oster 	/* create a parity logging configuration structure */
    100  1.34.56.1  christos 	info = RF_MallocAndAdd(sizeof(*info), raidPtr->cleanupList);
    101        1.3     oster 	if (info == NULL)
    102        1.3     oster 		return (ENOMEM);
    103        1.3     oster 	layoutPtr->layoutSpecificInfo = (void *) info;
    104        1.3     oster 
    105        1.3     oster 	/* the stripe identifier must identify the disks in each stripe, IN
    106        1.3     oster 	 * THE ORDER THAT THEY APPEAR IN THE STRIPE. */
    107       1.23     perry 	info->stripeIdentifier = rf_make_2d_array((raidPtr->numCol),
    108       1.23     perry 						  (raidPtr->numCol),
    109        1.8     oster 						  raidPtr->cleanupList);
    110        1.3     oster 	if (info->stripeIdentifier == NULL)
    111        1.3     oster 		return (ENOMEM);
    112        1.3     oster 
    113        1.3     oster 	startdisk = 0;
    114        1.3     oster 	for (i = 0; i < (raidPtr->numCol); i++) {
    115        1.3     oster 		for (j = 0; j < (raidPtr->numCol); j++) {
    116       1.23     perry 			info->stripeIdentifier[i][j] = (startdisk + j) %
    117        1.8     oster 				(raidPtr->numCol - 1);
    118        1.3     oster 		}
    119        1.3     oster 		if ((--startdisk) < 0)
    120        1.3     oster 			startdisk = raidPtr->numCol - 1 - 1;
    121        1.3     oster 	}
    122        1.3     oster 
    123        1.3     oster 	/* fill in the remaining layout parameters */
    124        1.3     oster 	layoutPtr->numStripe = layoutPtr->stripeUnitsPerDisk;
    125        1.3     oster 	layoutPtr->numParityCol = 1;
    126        1.3     oster 	layoutPtr->numParityLogCol = 1;
    127       1.23     perry 	layoutPtr->numDataCol = raidPtr->numCol - layoutPtr->numParityCol -
    128        1.8     oster 		layoutPtr->numParityLogCol;
    129       1.23     perry 	layoutPtr->dataSectorsPerStripe = layoutPtr->numDataCol *
    130        1.8     oster 		layoutPtr->sectorsPerStripeUnit;
    131        1.3     oster 	layoutPtr->dataStripeUnitsPerDisk = layoutPtr->stripeUnitsPerDisk;
    132       1.23     perry 	raidPtr->sectorsPerDisk = layoutPtr->stripeUnitsPerDisk *
    133        1.8     oster 		layoutPtr->sectorsPerStripeUnit;
    134        1.3     oster 
    135       1.23     perry 	raidPtr->totalSectors = layoutPtr->stripeUnitsPerDisk *
    136        1.8     oster 		layoutPtr->numDataCol * layoutPtr->sectorsPerStripeUnit;
    137        1.3     oster 
    138        1.3     oster 	/* configure parity log parameters
    139       1.23     perry 	 *
    140       1.23     perry 	 * parameter               comment/constraints
    141       1.23     perry 	 * -------------------------------------------
    142       1.23     perry 	 * numParityRegions*       all regions (except possibly last)
    143       1.23     perry 	 *                         of equal size
    144       1.23     perry 	 * totalInCoreLogCapacity* amount of memory in bytes available
    145       1.23     perry 	 *                         for in-core logs (default 1 MB)
    146       1.23     perry 	 * numSectorsPerLog#       capacity of an in-core log in sectors
    147        1.5     oster 	 *                         (1 * disk track)
    148        1.5     oster 	 * numParityLogs           total number of in-core logs,
    149       1.23     perry 	 *                         should be at least numParityRegions
    150       1.23     perry 	 * regionLogCapacity       size of a region log (except possibly
    151       1.23     perry 	 *                         last one) in sectors
    152        1.5     oster 	 * totalLogCapacity        total amount of log space in sectors
    153       1.23     perry 	 *
    154       1.23     perry 	 * where '*' denotes a user settable parameter.
    155       1.23     perry 	 * Note that logs are fixed to be the size of a disk track,
    156        1.5     oster 	 * value #defined in rf_paritylog.h
    157       1.23     perry 	 *
    158        1.3     oster 	 */
    159        1.3     oster 
    160        1.3     oster 	totalLogCapacity = layoutPtr->stripeUnitsPerDisk * layoutPtr->sectorsPerStripeUnit * layoutPtr->numParityLogCol;
    161        1.3     oster 	raidPtr->regionLogCapacity = totalLogCapacity / rf_numParityRegions;
    162        1.3     oster 	if (rf_parityLogDebug)
    163        1.3     oster 		printf("bytes per sector %d\n", raidPtr->bytesPerSector);
    164        1.3     oster 
    165        1.3     oster 	/* reduce fragmentation within a disk region by adjusting the number
    166        1.3     oster 	 * of regions in an attempt to allow an integral number of logs to fit
    167        1.3     oster 	 * into a disk region */
    168        1.3     oster 	fragmentation = raidPtr->regionLogCapacity % raidPtr->numSectorsPerLog;
    169        1.3     oster 	if (fragmentation > 0)
    170        1.3     oster 		for (i = 1; i < (raidPtr->numSectorsPerLog / 2); i++) {
    171       1.23     perry 			if (((totalLogCapacity / (rf_numParityRegions + i)) %
    172        1.8     oster 			     raidPtr->numSectorsPerLog) < fragmentation) {
    173        1.3     oster 				rf_numParityRegions++;
    174        1.8     oster 				raidPtr->regionLogCapacity = totalLogCapacity /
    175        1.8     oster 					rf_numParityRegions;
    176       1.23     perry 				fragmentation = raidPtr->regionLogCapacity %
    177        1.8     oster 					raidPtr->numSectorsPerLog;
    178        1.3     oster 			}
    179       1.23     perry 			if (((totalLogCapacity / (rf_numParityRegions - i)) %
    180        1.8     oster 			     raidPtr->numSectorsPerLog) < fragmentation) {
    181        1.3     oster 				rf_numParityRegions--;
    182        1.8     oster 				raidPtr->regionLogCapacity = totalLogCapacity /
    183        1.8     oster 					rf_numParityRegions;
    184       1.23     perry 				fragmentation = raidPtr->regionLogCapacity %
    185        1.8     oster 					raidPtr->numSectorsPerLog;
    186        1.3     oster 			}
    187        1.3     oster 		}
    188        1.3     oster 	/* ensure integral number of regions per log */
    189       1.23     perry 	raidPtr->regionLogCapacity = (raidPtr->regionLogCapacity /
    190       1.23     perry 				      raidPtr->numSectorsPerLog) *
    191        1.8     oster 		raidPtr->numSectorsPerLog;
    192        1.3     oster 
    193       1.23     perry 	raidPtr->numParityLogs = rf_totalInCoreLogCapacity /
    194        1.8     oster 		(raidPtr->bytesPerSector * raidPtr->numSectorsPerLog);
    195        1.3     oster 	/* to avoid deadlock, must ensure that enough logs exist for each
    196        1.3     oster 	 * region to have one simultaneously */
    197        1.3     oster 	if (raidPtr->numParityLogs < rf_numParityRegions)
    198        1.3     oster 		raidPtr->numParityLogs = rf_numParityRegions;
    199        1.3     oster 
    200        1.3     oster 	/* create region information structs */
    201        1.9     oster 	printf("Allocating %d bytes for in-core parity region info\n",
    202       1.10     oster 	       (int) (rf_numParityRegions * sizeof(RF_RegionInfo_t)));
    203  1.34.56.1  christos 	raidPtr->regionInfo = RF_Malloc(
    204  1.34.56.1  christos 	    rf_numParityRegions * sizeof(*raidPtr->regionInfo));
    205        1.3     oster 	if (raidPtr->regionInfo == NULL)
    206        1.3     oster 		return (ENOMEM);
    207        1.3     oster 
    208        1.3     oster 	/* last region may not be full capacity */
    209        1.3     oster 	lastRegionCapacity = raidPtr->regionLogCapacity;
    210       1.23     perry 	while ((rf_numParityRegions - 1) * raidPtr->regionLogCapacity +
    211        1.8     oster 	       lastRegionCapacity > totalLogCapacity)
    212       1.23     perry 		lastRegionCapacity = lastRegionCapacity -
    213        1.8     oster 			raidPtr->numSectorsPerLog;
    214        1.1     oster 
    215       1.23     perry 	raidPtr->regionParityRange = raidPtr->sectorsPerDisk /
    216        1.8     oster 		rf_numParityRegions;
    217        1.3     oster 	maxRegionParityRange = raidPtr->regionParityRange;
    218        1.1     oster 
    219        1.1     oster /* i can't remember why this line is in the code -wvcii 6/30/95 */
    220        1.1     oster /*  if (raidPtr->sectorsPerDisk % rf_numParityRegions > 0)
    221        1.1     oster     regionParityRange++; */
    222        1.1     oster 
    223        1.3     oster 	/* build pool of unused parity logs */
    224        1.9     oster 	printf("Allocating %d bytes for %d parity logs\n",
    225       1.23     perry 	       raidPtr->numParityLogs * raidPtr->numSectorsPerLog *
    226        1.9     oster 	       raidPtr->bytesPerSector,
    227        1.9     oster 	       raidPtr->numParityLogs);
    228  1.34.56.1  christos 	raidPtr->parityLogBufferHeap = RF_Malloc(raidPtr->numParityLogs
    229  1.34.56.1  christos 	    * raidPtr->numSectorsPerLog * raidPtr->bytesPerSector);
    230        1.3     oster 	if (raidPtr->parityLogBufferHeap == NULL)
    231        1.3     oster 		return (ENOMEM);
    232        1.3     oster 	lHeapPtr = raidPtr->parityLogBufferHeap;
    233       1.33       mrg 	rf_init_mutex2(raidPtr->parityLogPool.mutex, IPL_VM);
    234        1.3     oster 	for (i = 0; i < raidPtr->numParityLogs; i++) {
    235        1.3     oster 		if (i == 0) {
    236  1.34.56.1  christos 			raidPtr->parityLogPool.parityLogs =
    237  1.34.56.1  christos 			    RF_Malloc(
    238  1.34.56.1  christos 			    sizeof(*raidPtr->parityLogPool.parityLogs));
    239        1.3     oster 			if (raidPtr->parityLogPool.parityLogs == NULL) {
    240       1.23     perry 				RF_Free(raidPtr->parityLogBufferHeap,
    241       1.23     perry 					raidPtr->numParityLogs *
    242       1.23     perry 					raidPtr->numSectorsPerLog *
    243        1.8     oster 					raidPtr->bytesPerSector);
    244        1.3     oster 				return (ENOMEM);
    245        1.3     oster 			}
    246        1.3     oster 			l = raidPtr->parityLogPool.parityLogs;
    247        1.3     oster 		} else {
    248  1.34.56.1  christos 			l->next = RF_Malloc(sizeof(*l->next));
    249        1.3     oster 			if (l->next == NULL) {
    250       1.23     perry 				RF_Free(raidPtr->parityLogBufferHeap,
    251       1.23     perry 					raidPtr->numParityLogs *
    252       1.23     perry 					raidPtr->numSectorsPerLog *
    253        1.8     oster 					raidPtr->bytesPerSector);
    254       1.23     perry 				for (l = raidPtr->parityLogPool.parityLogs;
    255        1.8     oster 				     l;
    256        1.8     oster 				     l = next) {
    257        1.3     oster 					next = l->next;
    258        1.3     oster 					if (l->records)
    259        1.3     oster 						RF_Free(l->records, (raidPtr->numSectorsPerLog * sizeof(RF_ParityLogRecord_t)));
    260        1.3     oster 					RF_Free(l, sizeof(RF_ParityLog_t));
    261        1.3     oster 				}
    262        1.3     oster 				return (ENOMEM);
    263        1.3     oster 			}
    264        1.3     oster 			l = l->next;
    265        1.3     oster 		}
    266        1.3     oster 		l->bufPtr = lHeapPtr;
    267       1.28  christos 		lHeapPtr = (char *)lHeapPtr + raidPtr->numSectorsPerLog *
    268        1.8     oster 			raidPtr->bytesPerSector;
    269  1.34.56.1  christos 		l->records = RF_Malloc(raidPtr->numSectorsPerLog *
    270  1.34.56.1  christos 		    sizeof(*l->records));
    271        1.3     oster 		if (l->records == NULL) {
    272       1.23     perry 			RF_Free(raidPtr->parityLogBufferHeap,
    273       1.23     perry 				raidPtr->numParityLogs *
    274       1.23     perry 				raidPtr->numSectorsPerLog *
    275        1.8     oster 				raidPtr->bytesPerSector);
    276       1.23     perry 			for (l = raidPtr->parityLogPool.parityLogs;
    277       1.23     perry 			     l;
    278        1.8     oster 			     l = next) {
    279        1.3     oster 				next = l->next;
    280        1.3     oster 				if (l->records)
    281       1.23     perry 					RF_Free(l->records,
    282       1.23     perry 						(raidPtr->numSectorsPerLog *
    283        1.8     oster 						 sizeof(RF_ParityLogRecord_t)));
    284        1.3     oster 				RF_Free(l, sizeof(RF_ParityLog_t));
    285        1.3     oster 			}
    286        1.3     oster 			return (ENOMEM);
    287        1.3     oster 		}
    288        1.3     oster 	}
    289       1.22     oster 	rf_ShutdownCreate(listp, rf_ShutdownParityLoggingPool, raidPtr);
    290        1.3     oster 	/* build pool of region buffers */
    291       1.34       mrg 	rf_init_mutex2(raidPtr->regionBufferPool.mutex, IPL_VM);
    292       1.34       mrg 	rf_init_cond2(raidPtr->regionBufferPool.cond, "rfrbpl");
    293       1.23     perry 	raidPtr->regionBufferPool.bufferSize = raidPtr->regionLogCapacity *
    294        1.8     oster 		raidPtr->bytesPerSector;
    295       1.23     perry 	printf("regionBufferPool.bufferSize %d\n",
    296        1.8     oster 	       raidPtr->regionBufferPool.bufferSize);
    297        1.8     oster 
    298        1.8     oster 	/* for now, only one region at a time may be reintegrated */
    299       1.23     perry 	raidPtr->regionBufferPool.totalBuffers = 1;
    300        1.8     oster 
    301       1.23     perry 	raidPtr->regionBufferPool.availableBuffers =
    302        1.8     oster 		raidPtr->regionBufferPool.totalBuffers;
    303        1.3     oster 	raidPtr->regionBufferPool.availBuffersIndex = 0;
    304        1.3     oster 	raidPtr->regionBufferPool.emptyBuffersIndex = 0;
    305        1.9     oster 	printf("Allocating %d bytes for regionBufferPool\n",
    306       1.23     perry 	       (int) (raidPtr->regionBufferPool.totalBuffers *
    307       1.28  christos 		      sizeof(void *)));
    308  1.34.56.1  christos 	raidPtr->regionBufferPool.buffers =  RF_Malloc(
    309  1.34.56.1  christos 	    raidPtr->regionBufferPool.totalBuffers *
    310  1.34.56.1  christos 	    sizeof(*raidPtr->regionBufferPool.buffers));
    311        1.3     oster 	if (raidPtr->regionBufferPool.buffers == NULL) {
    312        1.3     oster 		return (ENOMEM);
    313        1.3     oster 	}
    314        1.3     oster 	for (i = 0; i < raidPtr->regionBufferPool.totalBuffers; i++) {
    315        1.9     oster 		printf("Allocating %d bytes for regionBufferPool#%d\n",
    316       1.23     perry 		       (int) (raidPtr->regionBufferPool.bufferSize *
    317       1.10     oster 			      sizeof(char)), i);
    318  1.34.56.1  christos 		raidPtr->regionBufferPool.buffers[i] =
    319  1.34.56.1  christos 		    RF_Malloc(raidPtr->regionBufferPool.bufferSize);
    320        1.7     oster 		if (raidPtr->regionBufferPool.buffers[i] == NULL) {
    321        1.3     oster 			for (j = 0; j < i; j++) {
    322       1.23     perry 				RF_Free(raidPtr->regionBufferPool.buffers[i],
    323        1.8     oster 					raidPtr->regionBufferPool.bufferSize *
    324        1.8     oster 					sizeof(char));
    325        1.3     oster 			}
    326       1.23     perry 			RF_Free(raidPtr->regionBufferPool.buffers,
    327       1.23     perry 				raidPtr->regionBufferPool.totalBuffers *
    328       1.28  christos 				sizeof(void *));
    329        1.3     oster 			return (ENOMEM);
    330        1.3     oster 		}
    331        1.3     oster 		printf("raidPtr->regionBufferPool.buffers[%d] = %lx\n", i,
    332        1.3     oster 		    (long) raidPtr->regionBufferPool.buffers[i]);
    333        1.3     oster 	}
    334       1.23     perry 	rf_ShutdownCreate(listp,
    335       1.22     oster 			  rf_ShutdownParityLoggingRegionBufferPool,
    336       1.22     oster 			  raidPtr);
    337        1.3     oster 	/* build pool of parity buffers */
    338        1.3     oster 	parityBufferCapacity = maxRegionParityRange;
    339       1.34       mrg 	rf_init_mutex2(raidPtr->parityBufferPool.mutex, IPL_VM);
    340       1.34       mrg 	rf_init_cond2(raidPtr->parityBufferPool.cond, "rfpbpl");
    341       1.23     perry 	raidPtr->parityBufferPool.bufferSize = parityBufferCapacity *
    342        1.8     oster 		raidPtr->bytesPerSector;
    343       1.23     perry 	printf("parityBufferPool.bufferSize %d\n",
    344        1.8     oster 	       raidPtr->parityBufferPool.bufferSize);
    345        1.8     oster 
    346        1.8     oster 	/* for now, only one region at a time may be reintegrated */
    347       1.23     perry 	raidPtr->parityBufferPool.totalBuffers = 1;
    348        1.8     oster 
    349       1.23     perry 	raidPtr->parityBufferPool.availableBuffers =
    350        1.8     oster 		raidPtr->parityBufferPool.totalBuffers;
    351        1.3     oster 	raidPtr->parityBufferPool.availBuffersIndex = 0;
    352        1.3     oster 	raidPtr->parityBufferPool.emptyBuffersIndex = 0;
    353        1.9     oster 	printf("Allocating %d bytes for parityBufferPool of %d units\n",
    354       1.23     perry 	       (int) (raidPtr->parityBufferPool.totalBuffers *
    355       1.28  christos 		      sizeof(void *)),
    356        1.9     oster 	       raidPtr->parityBufferPool.totalBuffers );
    357  1.34.56.1  christos 	raidPtr->parityBufferPool.buffers = RF_Malloc(
    358  1.34.56.1  christos 	    raidPtr->parityBufferPool.totalBuffers *
    359  1.34.56.1  christos 	    sizeof(*raidPtr->parityBufferPool.buffers));
    360        1.3     oster 	if (raidPtr->parityBufferPool.buffers == NULL) {
    361        1.3     oster 		return (ENOMEM);
    362        1.3     oster 	}
    363        1.3     oster 	for (i = 0; i < raidPtr->parityBufferPool.totalBuffers; i++) {
    364        1.9     oster 		printf("Allocating %d bytes for parityBufferPool#%d\n",
    365       1.23     perry 		       (int) (raidPtr->parityBufferPool.bufferSize *
    366       1.10     oster 			      sizeof(char)),i);
    367  1.34.56.1  christos 		raidPtr->parityBufferPool.buffers[i] = RF_Malloc(
    368  1.34.56.1  christos 		    raidPtr->parityBufferPool.bufferSize);
    369        1.3     oster 		if (raidPtr->parityBufferPool.buffers == NULL) {
    370        1.3     oster 			for (j = 0; j < i; j++) {
    371       1.23     perry 				RF_Free(raidPtr->parityBufferPool.buffers[i],
    372       1.23     perry 					raidPtr->regionBufferPool.bufferSize *
    373        1.8     oster 					sizeof(char));
    374        1.3     oster 			}
    375       1.23     perry 			RF_Free(raidPtr->parityBufferPool.buffers,
    376       1.23     perry 				raidPtr->regionBufferPool.totalBuffers *
    377       1.28  christos 				sizeof(void *));
    378        1.3     oster 			return (ENOMEM);
    379        1.3     oster 		}
    380        1.3     oster 		printf("parityBufferPool.buffers[%d] = %lx\n", i,
    381        1.3     oster 		    (long) raidPtr->parityBufferPool.buffers[i]);
    382        1.3     oster 	}
    383       1.23     perry 	rf_ShutdownCreate(listp,
    384       1.23     perry 			  rf_ShutdownParityLoggingParityBufferPool,
    385       1.22     oster 			  raidPtr);
    386        1.3     oster 	/* initialize parityLogDiskQueue */
    387       1.30       mrg 	rf_init_mutex2(raidPtr->parityLogDiskQueue.mutex, IPL_VM);
    388       1.34       mrg 	rf_init_cond2(raidPtr->parityLogDiskQueue.cond, "rfpldq");
    389        1.3     oster 	raidPtr->parityLogDiskQueue.flushQueue = NULL;
    390        1.3     oster 	raidPtr->parityLogDiskQueue.reintQueue = NULL;
    391        1.3     oster 	raidPtr->parityLogDiskQueue.bufHead = NULL;
    392        1.3     oster 	raidPtr->parityLogDiskQueue.bufTail = NULL;
    393        1.3     oster 	raidPtr->parityLogDiskQueue.reintHead = NULL;
    394        1.3     oster 	raidPtr->parityLogDiskQueue.reintTail = NULL;
    395        1.3     oster 	raidPtr->parityLogDiskQueue.logBlockHead = NULL;
    396        1.3     oster 	raidPtr->parityLogDiskQueue.logBlockTail = NULL;
    397        1.3     oster 	raidPtr->parityLogDiskQueue.reintBlockHead = NULL;
    398        1.3     oster 	raidPtr->parityLogDiskQueue.reintBlockTail = NULL;
    399        1.3     oster 	raidPtr->parityLogDiskQueue.freeDataList = NULL;
    400        1.3     oster 	raidPtr->parityLogDiskQueue.freeCommonList = NULL;
    401        1.3     oster 
    402       1.23     perry 	rf_ShutdownCreate(listp,
    403       1.23     perry 			  rf_ShutdownParityLoggingDiskQueue,
    404       1.22     oster 			  raidPtr);
    405        1.3     oster 	for (i = 0; i < rf_numParityRegions; i++) {
    406       1.32       mrg 		rf_init_mutex2(raidPtr->regionInfo[i].mutex, IPL_VM);
    407       1.31       mrg 		rf_init_mutex2(raidPtr->regionInfo[i].reintMutex, IPL_VM);
    408        1.3     oster 		raidPtr->regionInfo[i].reintInProgress = RF_FALSE;
    409       1.23     perry 		raidPtr->regionInfo[i].regionStartAddr =
    410        1.8     oster 			raidPtr->regionLogCapacity * i;
    411       1.23     perry 		raidPtr->regionInfo[i].parityStartAddr =
    412        1.8     oster 			raidPtr->regionParityRange * i;
    413        1.3     oster 		if (i < rf_numParityRegions - 1) {
    414       1.23     perry 			raidPtr->regionInfo[i].capacity =
    415        1.8     oster 				raidPtr->regionLogCapacity;
    416       1.23     perry 			raidPtr->regionInfo[i].numSectorsParity =
    417        1.8     oster 				raidPtr->regionParityRange;
    418        1.3     oster 		} else {
    419       1.23     perry 			raidPtr->regionInfo[i].capacity =
    420        1.8     oster 				lastRegionCapacity;
    421       1.23     perry 			raidPtr->regionInfo[i].numSectorsParity =
    422       1.23     perry 				raidPtr->sectorsPerDisk -
    423        1.8     oster 				raidPtr->regionParityRange * i;
    424       1.23     perry 			if (raidPtr->regionInfo[i].numSectorsParity >
    425        1.8     oster 			    maxRegionParityRange)
    426       1.23     perry 				maxRegionParityRange =
    427        1.8     oster 					raidPtr->regionInfo[i].numSectorsParity;
    428        1.3     oster 		}
    429        1.3     oster 		raidPtr->regionInfo[i].diskCount = 0;
    430       1.23     perry 		RF_ASSERT(raidPtr->regionInfo[i].capacity +
    431       1.23     perry 			  raidPtr->regionInfo[i].regionStartAddr <=
    432        1.8     oster 			  totalLogCapacity);
    433       1.23     perry 		RF_ASSERT(raidPtr->regionInfo[i].parityStartAddr +
    434       1.23     perry 			  raidPtr->regionInfo[i].numSectorsParity <=
    435        1.8     oster 			  raidPtr->sectorsPerDisk);
    436        1.9     oster 		printf("Allocating %d bytes for region %d\n",
    437        1.9     oster 		       (int) (raidPtr->regionInfo[i].capacity *
    438        1.9     oster 			   sizeof(RF_DiskMap_t)), i);
    439  1.34.56.1  christos 		raidPtr->regionInfo[i].diskMap = RF_Malloc(
    440  1.34.56.1  christos 		    raidPtr->regionInfo[i].capacity *
    441  1.34.56.1  christos 		    sizeof(*raidPtr->regionInfo[i].diskMap));
    442        1.3     oster 		if (raidPtr->regionInfo[i].diskMap == NULL) {
    443        1.3     oster 			for (j = 0; j < i; j++)
    444        1.3     oster 				FreeRegionInfo(raidPtr, j);
    445       1.23     perry 			RF_Free(raidPtr->regionInfo,
    446       1.23     perry 				(rf_numParityRegions *
    447        1.8     oster 				 sizeof(RF_RegionInfo_t)));
    448        1.3     oster 			return (ENOMEM);
    449        1.3     oster 		}
    450        1.3     oster 		raidPtr->regionInfo[i].loggingEnabled = RF_FALSE;
    451        1.3     oster 		raidPtr->regionInfo[i].coreLog = NULL;
    452        1.3     oster 	}
    453       1.22     oster 	rf_ShutdownCreate(listp,
    454       1.23     perry 			  rf_ShutdownParityLoggingRegionInfo,
    455       1.22     oster 			  raidPtr);
    456        1.3     oster 	RF_ASSERT(raidPtr->parityLogDiskQueue.threadState == 0);
    457        1.3     oster 	raidPtr->parityLogDiskQueue.threadState = RF_PLOG_CREATED;
    458       1.23     perry 	rc = RF_CREATE_THREAD(raidPtr->pLogDiskThreadHandle,
    459        1.8     oster 			      rf_ParityLoggingDiskManager, raidPtr,"rf_log");
    460        1.3     oster 	if (rc) {
    461        1.3     oster 		raidPtr->parityLogDiskQueue.threadState = 0;
    462        1.3     oster 		RF_ERRORMSG3("Unable to create parity logging disk thread file %s line %d rc=%d\n",
    463        1.3     oster 		    __FILE__, __LINE__, rc);
    464        1.3     oster 		return (ENOMEM);
    465        1.3     oster 	}
    466        1.3     oster 	/* wait for thread to start */
    467       1.30       mrg 	rf_lock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    468        1.3     oster 	while (!(raidPtr->parityLogDiskQueue.threadState & RF_PLOG_RUNNING)) {
    469       1.30       mrg 		rf_wait_cond2(raidPtr->parityLogDiskQueue.cond,
    470       1.30       mrg 			      raidPtr->parityLogDiskQueue.mutex);
    471        1.3     oster 	}
    472       1.30       mrg 	rf_unlock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    473        1.3     oster 
    474       1.22     oster 	rf_ShutdownCreate(listp, rf_ShutdownParityLogging, raidPtr);
    475        1.3     oster 	if (rf_parityLogDebug) {
    476        1.3     oster 		printf("                            size of disk log in sectors: %d\n",
    477        1.3     oster 		    (int) totalLogCapacity);
    478        1.3     oster 		printf("                            total number of parity regions is %d\n", (int) rf_numParityRegions);
    479        1.3     oster 		printf("                            nominal sectors of log per parity region is %d\n", (int) raidPtr->regionLogCapacity);
    480        1.3     oster 		printf("                            nominal region fragmentation is %d sectors\n", (int) fragmentation);
    481        1.3     oster 		printf("                            total number of parity logs is %d\n", raidPtr->numParityLogs);
    482        1.3     oster 		printf("                            parity log size is %d sectors\n", raidPtr->numSectorsPerLog);
    483        1.3     oster 		printf("                            total in-core log space is %d bytes\n", (int) rf_totalInCoreLogCapacity);
    484        1.3     oster 	}
    485        1.3     oster 	rf_EnableParityLogging(raidPtr);
    486        1.3     oster 
    487        1.3     oster 	return (0);
    488        1.1     oster }
    489        1.1     oster 
    490       1.23     perry static void
    491        1.3     oster FreeRegionInfo(
    492        1.3     oster     RF_Raid_t * raidPtr,
    493        1.3     oster     RF_RegionId_t regionID)
    494        1.3     oster {
    495       1.23     perry 	RF_Free(raidPtr->regionInfo[regionID].diskMap,
    496       1.23     perry 		(raidPtr->regionInfo[regionID].capacity *
    497        1.8     oster 		 sizeof(RF_DiskMap_t)));
    498        1.3     oster 	if (!rf_forceParityLogReint && raidPtr->regionInfo[regionID].coreLog) {
    499       1.23     perry 		rf_ReleaseParityLogs(raidPtr,
    500        1.8     oster 				     raidPtr->regionInfo[regionID].coreLog);
    501        1.3     oster 		raidPtr->regionInfo[regionID].coreLog = NULL;
    502        1.3     oster 	} else {
    503        1.3     oster 		RF_ASSERT(raidPtr->regionInfo[regionID].coreLog == NULL);
    504        1.3     oster 		RF_ASSERT(raidPtr->regionInfo[regionID].diskCount == 0);
    505        1.3     oster 	}
    506       1.31       mrg 	rf_destroy_mutex2(raidPtr->regionInfo[regionID].reintMutex);
    507       1.32       mrg 	rf_destroy_mutex2(raidPtr->regionInfo[regionID].mutex);
    508        1.3     oster }
    509        1.3     oster 
    510        1.3     oster 
    511       1.23     perry static void
    512       1.33       mrg FreeParityLogQueue(RF_Raid_t * raidPtr)
    513        1.3     oster {
    514        1.3     oster 	RF_ParityLog_t *l1, *l2;
    515        1.3     oster 
    516       1.33       mrg 	l1 = raidPtr->parityLogPool.parityLogs;
    517        1.3     oster 	while (l1) {
    518        1.3     oster 		l2 = l1;
    519        1.3     oster 		l1 = l2->next;
    520       1.23     perry 		RF_Free(l2->records, (raidPtr->numSectorsPerLog *
    521        1.8     oster 				      sizeof(RF_ParityLogRecord_t)));
    522        1.3     oster 		RF_Free(l2, sizeof(RF_ParityLog_t));
    523        1.3     oster 	}
    524       1.33       mrg 	rf_destroy_mutex2(raidPtr->parityLogPool.mutex);
    525        1.3     oster }
    526        1.3     oster 
    527        1.3     oster 
    528       1.23     perry static void
    529        1.3     oster FreeRegionBufferQueue(RF_RegionBufferQueue_t * queue)
    530        1.1     oster {
    531        1.3     oster 	int     i;
    532        1.3     oster 
    533        1.3     oster 	if (queue->availableBuffers != queue->totalBuffers) {
    534        1.3     oster 		printf("Attempt to free region queue which is still in use!\n");
    535        1.3     oster 		RF_ASSERT(0);
    536        1.3     oster 	}
    537        1.3     oster 	for (i = 0; i < queue->totalBuffers; i++)
    538        1.3     oster 		RF_Free(queue->buffers[i], queue->bufferSize);
    539       1.28  christos 	RF_Free(queue->buffers, queue->totalBuffers * sizeof(void *));
    540       1.34       mrg 	rf_destroy_mutex2(queue->mutex);
    541       1.34       mrg 	rf_destroy_cond2(queue->cond);
    542        1.3     oster }
    543        1.3     oster 
    544       1.23     perry static void
    545        1.3     oster rf_ShutdownParityLoggingRegionInfo(RF_ThreadArg_t arg)
    546        1.3     oster {
    547        1.3     oster 	RF_Raid_t *raidPtr;
    548        1.3     oster 	RF_RegionId_t i;
    549        1.3     oster 
    550        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    551        1.3     oster 	if (rf_parityLogDebug) {
    552       1.23     perry 		printf("raid%d: ShutdownParityLoggingRegionInfo\n",
    553        1.6     oster 		       raidPtr->raidid);
    554        1.3     oster 	}
    555        1.3     oster 	/* free region information structs */
    556        1.3     oster 	for (i = 0; i < rf_numParityRegions; i++)
    557        1.3     oster 		FreeRegionInfo(raidPtr, i);
    558       1.23     perry 	RF_Free(raidPtr->regionInfo, (rf_numParityRegions *
    559        1.8     oster 				      sizeof(raidPtr->regionInfo)));
    560        1.3     oster 	raidPtr->regionInfo = NULL;
    561        1.3     oster }
    562        1.3     oster 
    563       1.23     perry static void
    564        1.3     oster rf_ShutdownParityLoggingPool(RF_ThreadArg_t arg)
    565        1.3     oster {
    566        1.3     oster 	RF_Raid_t *raidPtr;
    567        1.3     oster 
    568        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    569        1.3     oster 	if (rf_parityLogDebug) {
    570        1.6     oster 		printf("raid%d: ShutdownParityLoggingPool\n", raidPtr->raidid);
    571        1.3     oster 	}
    572        1.3     oster 	/* free contents of parityLogPool */
    573       1.33       mrg 	FreeParityLogQueue(raidPtr);
    574       1.23     perry 	RF_Free(raidPtr->parityLogBufferHeap, raidPtr->numParityLogs *
    575        1.8     oster 		raidPtr->numSectorsPerLog * raidPtr->bytesPerSector);
    576        1.1     oster }
    577        1.1     oster 
    578       1.23     perry static void
    579        1.3     oster rf_ShutdownParityLoggingRegionBufferPool(RF_ThreadArg_t arg)
    580        1.1     oster {
    581        1.3     oster 	RF_Raid_t *raidPtr;
    582        1.3     oster 
    583        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    584        1.3     oster 	if (rf_parityLogDebug) {
    585       1.23     perry 		printf("raid%d: ShutdownParityLoggingRegionBufferPool\n",
    586        1.6     oster 		       raidPtr->raidid);
    587        1.3     oster 	}
    588        1.3     oster 	FreeRegionBufferQueue(&raidPtr->regionBufferPool);
    589        1.1     oster }
    590        1.1     oster 
    591       1.23     perry static void
    592        1.3     oster rf_ShutdownParityLoggingParityBufferPool(RF_ThreadArg_t arg)
    593        1.3     oster {
    594        1.3     oster 	RF_Raid_t *raidPtr;
    595        1.3     oster 
    596        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    597        1.3     oster 	if (rf_parityLogDebug) {
    598        1.6     oster 		printf("raid%d: ShutdownParityLoggingParityBufferPool\n",
    599        1.6     oster 		       raidPtr->raidid);
    600        1.3     oster 	}
    601        1.3     oster 	FreeRegionBufferQueue(&raidPtr->parityBufferPool);
    602        1.3     oster }
    603        1.3     oster 
    604       1.23     perry static void
    605        1.3     oster rf_ShutdownParityLoggingDiskQueue(RF_ThreadArg_t arg)
    606        1.3     oster {
    607        1.3     oster 	RF_ParityLogData_t *d;
    608        1.3     oster 	RF_CommonLogData_t *c;
    609        1.3     oster 	RF_Raid_t *raidPtr;
    610        1.3     oster 
    611        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    612        1.3     oster 	if (rf_parityLogDebug) {
    613        1.6     oster 		printf("raid%d: ShutdownParityLoggingDiskQueue\n",
    614        1.6     oster 		       raidPtr->raidid);
    615        1.3     oster 	}
    616        1.3     oster 	/* free disk manager stuff */
    617        1.3     oster 	RF_ASSERT(raidPtr->parityLogDiskQueue.bufHead == NULL);
    618        1.3     oster 	RF_ASSERT(raidPtr->parityLogDiskQueue.bufTail == NULL);
    619        1.3     oster 	RF_ASSERT(raidPtr->parityLogDiskQueue.reintHead == NULL);
    620        1.3     oster 	RF_ASSERT(raidPtr->parityLogDiskQueue.reintTail == NULL);
    621        1.3     oster 	while (raidPtr->parityLogDiskQueue.freeDataList) {
    622        1.3     oster 		d = raidPtr->parityLogDiskQueue.freeDataList;
    623       1.23     perry 		raidPtr->parityLogDiskQueue.freeDataList =
    624        1.8     oster 			raidPtr->parityLogDiskQueue.freeDataList->next;
    625        1.3     oster 		RF_Free(d, sizeof(RF_ParityLogData_t));
    626        1.3     oster 	}
    627        1.3     oster 	while (raidPtr->parityLogDiskQueue.freeCommonList) {
    628        1.3     oster 		c = raidPtr->parityLogDiskQueue.freeCommonList;
    629       1.29       mrg 		raidPtr->parityLogDiskQueue.freeCommonList = c->next;
    630       1.29       mrg 		/* init is in rf_paritylog.c */
    631       1.29       mrg 		rf_destroy_mutex2(c->mutex);
    632        1.3     oster 		RF_Free(c, sizeof(RF_CommonLogData_t));
    633        1.3     oster 	}
    634       1.30       mrg 
    635       1.30       mrg 	rf_destroy_mutex2(raidPtr->parityLogDiskQueue.mutex);
    636       1.30       mrg 	rf_destroy_cond2(raidPtr->parityLogDiskQueue.cond);
    637        1.3     oster }
    638        1.3     oster 
    639       1.23     perry static void
    640        1.3     oster rf_ShutdownParityLogging(RF_ThreadArg_t arg)
    641        1.3     oster {
    642        1.3     oster 	RF_Raid_t *raidPtr;
    643        1.3     oster 
    644        1.3     oster 	raidPtr = (RF_Raid_t *) arg;
    645        1.3     oster 	if (rf_parityLogDebug) {
    646        1.6     oster 		printf("raid%d: ShutdownParityLogging\n", raidPtr->raidid);
    647        1.3     oster 	}
    648        1.3     oster 	/* shutdown disk thread */
    649        1.3     oster 	/* This has the desirable side-effect of forcing all regions to be
    650        1.3     oster 	 * reintegrated.  This is necessary since all parity log maps are
    651        1.3     oster 	 * currently held in volatile memory. */
    652        1.3     oster 
    653       1.30       mrg 	rf_lock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    654        1.3     oster 	raidPtr->parityLogDiskQueue.threadState |= RF_PLOG_TERMINATE;
    655       1.30       mrg 	rf_signal_cond2(raidPtr->parityLogDiskQueue.cond);
    656       1.30       mrg 	rf_unlock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    657        1.3     oster 	/*
    658        1.3     oster          * pLogDiskThread will now terminate when queues are cleared
    659        1.3     oster          * now wait for it to be done
    660        1.3     oster          */
    661       1.30       mrg 	rf_lock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    662        1.3     oster 	while (!(raidPtr->parityLogDiskQueue.threadState & RF_PLOG_SHUTDOWN)) {
    663       1.30       mrg 		rf_wait_cond2(raidPtr->parityLogDiskQueue.cond,
    664       1.30       mrg 			      raidPtr->parityLogDiskQueue.mutex);
    665        1.3     oster 	}
    666       1.30       mrg 	rf_unlock_mutex2(raidPtr->parityLogDiskQueue.mutex);
    667        1.3     oster 	if (rf_parityLogDebug) {
    668        1.6     oster 		printf("raid%d: ShutdownParityLogging done (thread completed)\n", raidPtr->raidid);
    669        1.3     oster 	}
    670        1.3     oster }
    671        1.3     oster 
    672       1.23     perry int
    673       1.27  christos rf_GetDefaultNumFloatingReconBuffersParityLogging(RF_Raid_t * raidPtr)
    674        1.3     oster {
    675        1.3     oster 	return (20);
    676        1.3     oster }
    677        1.3     oster 
    678       1.23     perry RF_HeadSepLimit_t
    679       1.27  christos rf_GetDefaultHeadSepLimitParityLogging(RF_Raid_t * raidPtr)
    680        1.3     oster {
    681        1.3     oster 	return (10);
    682        1.3     oster }
    683        1.1     oster /* return the region ID for a given RAID address */
    684       1.23     perry RF_RegionId_t
    685        1.3     oster rf_MapRegionIDParityLogging(
    686        1.3     oster     RF_Raid_t * raidPtr,
    687        1.3     oster     RF_SectorNum_t address)
    688        1.1     oster {
    689        1.3     oster 	RF_RegionId_t regionID;
    690        1.1     oster 
    691        1.1     oster /*  regionID = address / (raidPtr->regionParityRange * raidPtr->Layout.numDataCol); */
    692        1.3     oster 	regionID = address / raidPtr->regionParityRange;
    693        1.3     oster 	if (regionID == rf_numParityRegions) {
    694        1.3     oster 		/* last region may be larger than other regions */
    695        1.3     oster 		regionID--;
    696        1.3     oster 	}
    697        1.3     oster 	RF_ASSERT(address >= raidPtr->regionInfo[regionID].parityStartAddr);
    698       1.23     perry 	RF_ASSERT(address < raidPtr->regionInfo[regionID].parityStartAddr +
    699        1.8     oster 		  raidPtr->regionInfo[regionID].numSectorsParity);
    700        1.3     oster 	RF_ASSERT(regionID < rf_numParityRegions);
    701        1.3     oster 	return (regionID);
    702        1.1     oster }
    703        1.1     oster 
    704        1.1     oster 
    705        1.1     oster /* given a logical RAID sector, determine physical disk address of data */
    706       1.23     perry void
    707        1.3     oster rf_MapSectorParityLogging(
    708        1.3     oster     RF_Raid_t * raidPtr,
    709        1.3     oster     RF_RaidAddr_t raidSector,
    710        1.3     oster     RF_RowCol_t * col,
    711        1.3     oster     RF_SectorNum_t * diskSector,
    712       1.27  christos     int remap)
    713        1.3     oster {
    714       1.23     perry 	RF_StripeNum_t SUID = raidSector /
    715        1.8     oster 		raidPtr->Layout.sectorsPerStripeUnit;
    716        1.3     oster 	/* *col = (SUID % (raidPtr->numCol -
    717        1.3     oster 	 * raidPtr->Layout.numParityLogCol)); */
    718        1.3     oster 	*col = SUID % raidPtr->Layout.numDataCol;
    719       1.23     perry 	*diskSector = (SUID / (raidPtr->Layout.numDataCol)) *
    720        1.8     oster 		raidPtr->Layout.sectorsPerStripeUnit +
    721        1.8     oster 		(raidSector % raidPtr->Layout.sectorsPerStripeUnit);
    722        1.1     oster }
    723        1.1     oster 
    724        1.1     oster 
    725        1.1     oster /* given a logical RAID sector, determine physical disk address of parity  */
    726       1.23     perry void
    727        1.3     oster rf_MapParityParityLogging(
    728        1.3     oster     RF_Raid_t * raidPtr,
    729        1.3     oster     RF_RaidAddr_t raidSector,
    730        1.3     oster     RF_RowCol_t * col,
    731        1.3     oster     RF_SectorNum_t * diskSector,
    732       1.27  christos     int remap)
    733        1.3     oster {
    734       1.23     perry 	RF_StripeNum_t SUID = raidSector /
    735        1.8     oster 		raidPtr->Layout.sectorsPerStripeUnit;
    736        1.3     oster 
    737        1.3     oster 	/* *col =
    738        1.3     oster 	 * raidPtr->Layout.numDataCol-(SUID/raidPtr->Layout.numDataCol)%(raidPt
    739        1.3     oster 	 * r->numCol - raidPtr->Layout.numParityLogCol); */
    740        1.3     oster 	*col = raidPtr->Layout.numDataCol;
    741       1.23     perry 	*diskSector = (SUID / (raidPtr->Layout.numDataCol)) *
    742        1.8     oster 		raidPtr->Layout.sectorsPerStripeUnit +
    743        1.8     oster 		(raidSector % raidPtr->Layout.sectorsPerStripeUnit);
    744        1.1     oster }
    745        1.1     oster 
    746        1.1     oster 
    747        1.1     oster /* given a regionID and sector offset, determine the physical disk address of the parity log */
    748       1.23     perry void
    749        1.3     oster rf_MapLogParityLogging(
    750        1.3     oster     RF_Raid_t * raidPtr,
    751        1.3     oster     RF_RegionId_t regionID,
    752        1.3     oster     RF_SectorNum_t regionOffset,
    753        1.3     oster     RF_RowCol_t * col,
    754        1.3     oster     RF_SectorNum_t * startSector)
    755        1.3     oster {
    756        1.3     oster 	*col = raidPtr->numCol - 1;
    757        1.3     oster 	*startSector = raidPtr->regionInfo[regionID].regionStartAddr + regionOffset;
    758        1.1     oster }
    759        1.1     oster 
    760        1.1     oster 
    761        1.8     oster /* given a regionID, determine the physical disk address of the logged
    762        1.8     oster    parity for that region */
    763       1.23     perry void
    764        1.3     oster rf_MapRegionParity(
    765        1.3     oster     RF_Raid_t * raidPtr,
    766        1.3     oster     RF_RegionId_t regionID,
    767        1.3     oster     RF_RowCol_t * col,
    768        1.3     oster     RF_SectorNum_t * startSector,
    769        1.3     oster     RF_SectorCount_t * numSector)
    770        1.3     oster {
    771        1.3     oster 	*col = raidPtr->numCol - 2;
    772        1.3     oster 	*startSector = raidPtr->regionInfo[regionID].parityStartAddr;
    773        1.3     oster 	*numSector = raidPtr->regionInfo[regionID].numSectorsParity;
    774        1.1     oster }
    775        1.1     oster 
    776        1.1     oster 
    777        1.8     oster /* given a logical RAID address, determine the participating disks in
    778        1.8     oster    the stripe */
    779       1.23     perry void
    780        1.3     oster rf_IdentifyStripeParityLogging(
    781        1.3     oster     RF_Raid_t * raidPtr,
    782        1.3     oster     RF_RaidAddr_t addr,
    783       1.16     oster     RF_RowCol_t ** diskids)
    784        1.3     oster {
    785       1.23     perry 	RF_StripeNum_t stripeID = rf_RaidAddressToStripeID(&raidPtr->Layout,
    786        1.8     oster 							   addr);
    787       1.23     perry 	RF_ParityLoggingConfigInfo_t *info = (RF_ParityLoggingConfigInfo_t *)
    788        1.8     oster 		raidPtr->Layout.layoutSpecificInfo;
    789        1.3     oster 	*diskids = info->stripeIdentifier[stripeID % raidPtr->numCol];
    790        1.1     oster }
    791        1.1     oster 
    792        1.1     oster 
    793       1.23     perry void
    794        1.3     oster rf_MapSIDToPSIDParityLogging(
    795       1.27  christos     RF_RaidLayout_t * layoutPtr,
    796        1.3     oster     RF_StripeNum_t stripeID,
    797        1.3     oster     RF_StripeNum_t * psID,
    798        1.3     oster     RF_ReconUnitNum_t * which_ru)
    799        1.1     oster {
    800        1.3     oster 	*which_ru = 0;
    801        1.3     oster 	*psID = stripeID;
    802        1.1     oster }
    803        1.1     oster 
    804        1.1     oster 
    805        1.1     oster /* select an algorithm for performing an access.  Returns two pointers,
    806        1.1     oster  * one to a function that will return information about the DAG, and
    807        1.1     oster  * another to a function that will create the dag.
    808        1.1     oster  */
    809       1.23     perry void
    810        1.3     oster rf_ParityLoggingDagSelect(
    811        1.3     oster     RF_Raid_t * raidPtr,
    812        1.3     oster     RF_IoType_t type,
    813        1.3     oster     RF_AccessStripeMap_t * asmp,
    814        1.3     oster     RF_VoidFuncPtr * createFunc)
    815        1.3     oster {
    816        1.3     oster 	RF_RaidLayout_t *layoutPtr = &(raidPtr->Layout);
    817        1.3     oster 	RF_PhysDiskAddr_t *failedPDA = NULL;
    818       1.16     oster 	RF_RowCol_t fcol;
    819        1.3     oster 	RF_RowStatus_t rstat;
    820        1.3     oster 	int     prior_recon;
    821        1.3     oster 
    822        1.3     oster 	RF_ASSERT(RF_IO_IS_R_OR_W(type));
    823        1.3     oster 
    824        1.3     oster 	if (asmp->numDataFailed + asmp->numParityFailed > 1) {
    825        1.3     oster 		RF_ERRORMSG("Multiple disks failed in a single group!  Aborting I/O operation.\n");
    826       1.15     oster 		*createFunc = NULL;
    827        1.3     oster 		return;
    828        1.3     oster 	} else
    829        1.3     oster 		if (asmp->numDataFailed + asmp->numParityFailed == 1) {
    830        1.3     oster 
    831        1.3     oster 			/* if under recon & already reconstructed, redirect
    832        1.3     oster 			 * the access to the spare drive and eliminate the
    833        1.3     oster 			 * failure indication */
    834        1.3     oster 			failedPDA = asmp->failedPDAs[0];
    835        1.3     oster 			fcol = failedPDA->col;
    836       1.16     oster 			rstat = raidPtr->status;
    837        1.3     oster 			prior_recon = (rstat == rf_rs_reconfigured) || (
    838        1.3     oster 			    (rstat == rf_rs_reconstructing) ?
    839       1.16     oster 			    rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, failedPDA->startSector) : 0
    840        1.3     oster 			    );
    841        1.3     oster 			if (prior_recon) {
    842       1.16     oster 				RF_RowCol_t oc = failedPDA->col;
    843        1.3     oster 				RF_SectorNum_t oo = failedPDA->startSector;
    844       1.23     perry 				if (layoutPtr->map->flags &
    845       1.23     perry 				    RF_DISTRIBUTE_SPARE) {
    846        1.8     oster 					/* redirect to dist spare space */
    847        1.3     oster 
    848        1.3     oster 					if (failedPDA == asmp->parityInfo) {
    849        1.3     oster 
    850        1.3     oster 						/* parity has failed */
    851       1.16     oster 						(layoutPtr->map->MapParity) (raidPtr, failedPDA->raidAddress,
    852        1.3     oster 						    &failedPDA->col, &failedPDA->startSector, RF_REMAP);
    853        1.3     oster 
    854        1.3     oster 						if (asmp->parityInfo->next) {	/* redir 2nd component,
    855        1.3     oster 										 * if any */
    856        1.3     oster 							RF_PhysDiskAddr_t *p = asmp->parityInfo->next;
    857        1.3     oster 							RF_SectorNum_t SUoffs = p->startSector % layoutPtr->sectorsPerStripeUnit;
    858        1.3     oster 							p->col = failedPDA->col;
    859        1.3     oster 							p->startSector = rf_RaidAddressOfPrevStripeUnitBoundary(layoutPtr, failedPDA->startSector) +
    860        1.3     oster 							    SUoffs;	/* cheating:
    861        1.3     oster 									 * startSector is not
    862        1.3     oster 									 * really a RAID address */
    863        1.3     oster 						}
    864        1.3     oster 					} else
    865        1.3     oster 						if (asmp->parityInfo->next && failedPDA == asmp->parityInfo->next) {
    866        1.3     oster 							RF_ASSERT(0);	/* should not ever
    867        1.3     oster 									 * happen */
    868        1.3     oster 						} else {
    869        1.3     oster 
    870        1.3     oster 							/* data has failed */
    871       1.16     oster 							(layoutPtr->map->MapSector) (raidPtr, failedPDA->raidAddress,
    872        1.3     oster 							    &failedPDA->col, &failedPDA->startSector, RF_REMAP);
    873        1.3     oster 
    874        1.3     oster 						}
    875        1.3     oster 
    876       1.23     perry 				} else {
    877        1.8     oster 					/* redirect to dedicated spare space */
    878        1.3     oster 
    879       1.16     oster 					failedPDA->col = raidPtr->Disks[fcol].spareCol;
    880        1.3     oster 
    881        1.3     oster 					/* the parity may have two distinct
    882        1.3     oster 					 * components, both of which may need
    883        1.3     oster 					 * to be redirected */
    884        1.3     oster 					if (asmp->parityInfo->next) {
    885        1.3     oster 						if (failedPDA == asmp->parityInfo) {
    886        1.3     oster 							failedPDA->next->col = failedPDA->col;
    887        1.3     oster 						} else
    888        1.8     oster 							if (failedPDA == asmp->parityInfo->next) {	/* paranoid:  should never occur */
    889        1.3     oster 								asmp->parityInfo->col = failedPDA->col;
    890        1.3     oster 							}
    891        1.3     oster 					}
    892        1.3     oster 				}
    893        1.3     oster 
    894        1.3     oster 				RF_ASSERT(failedPDA->col != -1);
    895        1.3     oster 
    896        1.3     oster 				if (rf_dagDebug || rf_mapDebug) {
    897       1.16     oster 					printf("raid%d: Redirected type '%c' c %d o %ld -> c %d o %ld\n",
    898       1.16     oster 					    raidPtr->raidid, type, oc, (long) oo, failedPDA->col, (long) failedPDA->startSector);
    899        1.3     oster 				}
    900        1.3     oster 				asmp->numDataFailed = asmp->numParityFailed = 0;
    901        1.3     oster 			}
    902        1.3     oster 		}
    903        1.3     oster 	if (type == RF_IO_TYPE_READ) {
    904        1.3     oster 
    905        1.3     oster 		if (asmp->numDataFailed == 0)
    906        1.3     oster 			*createFunc = (RF_VoidFuncPtr) rf_CreateFaultFreeReadDAG;
    907        1.3     oster 		else
    908        1.3     oster 			*createFunc = (RF_VoidFuncPtr) rf_CreateRaidFiveDegradedReadDAG;
    909        1.3     oster 
    910        1.3     oster 	} else {
    911        1.3     oster 
    912        1.3     oster 
    913        1.3     oster 		/* if mirroring, always use large writes.  If the access
    914        1.3     oster 		 * requires two distinct parity updates, always do a small
    915        1.3     oster 		 * write.  If the stripe contains a failure but the access
    916        1.3     oster 		 * does not, do a small write. The first conditional
    917        1.3     oster 		 * (numStripeUnitsAccessed <= numDataCol/2) uses a
    918        1.3     oster 		 * less-than-or-equal rather than just a less-than because
    919        1.3     oster 		 * when G is 3 or 4, numDataCol/2 is 1, and I want
    920        1.3     oster 		 * single-stripe-unit updates to use just one disk. */
    921        1.3     oster 		if ((asmp->numDataFailed + asmp->numParityFailed) == 0) {
    922       1.23     perry 			if (((asmp->numStripeUnitsAccessed <=
    923       1.23     perry 			      (layoutPtr->numDataCol / 2)) &&
    924        1.8     oster 			     (layoutPtr->numDataCol != 1)) ||
    925       1.23     perry 			    (asmp->parityInfo->next != NULL) ||
    926        1.8     oster 			    rf_CheckStripeForFailures(raidPtr, asmp)) {
    927        1.3     oster 				*createFunc = (RF_VoidFuncPtr) rf_CreateParityLoggingSmallWriteDAG;
    928        1.3     oster 			} else
    929        1.3     oster 				*createFunc = (RF_VoidFuncPtr) rf_CreateParityLoggingLargeWriteDAG;
    930        1.3     oster 		} else
    931        1.3     oster 			if (asmp->numParityFailed == 1)
    932        1.3     oster 				*createFunc = (RF_VoidFuncPtr) rf_CreateNonRedundantWriteDAG;
    933        1.3     oster 			else
    934        1.3     oster 				if (asmp->numStripeUnitsAccessed != 1 && failedPDA->numSector != layoutPtr->sectorsPerStripeUnit)
    935        1.3     oster 					*createFunc = NULL;
    936        1.3     oster 				else
    937        1.3     oster 					*createFunc = (RF_VoidFuncPtr) rf_CreateDegradedWriteDAG;
    938        1.3     oster 	}
    939        1.1     oster }
    940        1.3     oster #endif				/* RF_INCLUDE_PARITYLOGGING > 0 */
    941