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rf_reconstruct.c revision 1.80
      1  1.80     oster /*	$NetBSD: rf_reconstruct.c,v 1.80 2005/01/22 02:22:44 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   1.1     oster /************************************************************
     30   1.1     oster  *
     31   1.1     oster  * rf_reconstruct.c -- code to perform on-line reconstruction
     32   1.1     oster  *
     33   1.1     oster  ************************************************************/
     34  1.31     lukem 
     35  1.31     lukem #include <sys/cdefs.h>
     36  1.80     oster __KERNEL_RCSID(0, "$NetBSD: rf_reconstruct.c,v 1.80 2005/01/22 02:22:44 oster Exp $");
     37   1.1     oster 
     38   1.1     oster #include <sys/time.h>
     39   1.1     oster #include <sys/buf.h>
     40   1.1     oster #include <sys/errno.h>
     41   1.5     oster 
     42   1.5     oster #include <sys/param.h>
     43   1.5     oster #include <sys/systm.h>
     44   1.5     oster #include <sys/proc.h>
     45   1.5     oster #include <sys/ioctl.h>
     46   1.5     oster #include <sys/fcntl.h>
     47   1.5     oster #include <sys/vnode.h>
     48  1.30     oster #include <dev/raidframe/raidframevar.h>
     49   1.5     oster 
     50   1.1     oster #include "rf_raid.h"
     51   1.1     oster #include "rf_reconutil.h"
     52   1.1     oster #include "rf_revent.h"
     53   1.1     oster #include "rf_reconbuffer.h"
     54   1.1     oster #include "rf_acctrace.h"
     55   1.1     oster #include "rf_etimer.h"
     56   1.1     oster #include "rf_dag.h"
     57   1.1     oster #include "rf_desc.h"
     58  1.36     oster #include "rf_debugprint.h"
     59   1.1     oster #include "rf_general.h"
     60   1.1     oster #include "rf_driver.h"
     61   1.1     oster #include "rf_utils.h"
     62   1.1     oster #include "rf_shutdown.h"
     63   1.1     oster 
     64   1.1     oster #include "rf_kintf.h"
     65   1.1     oster 
     66   1.1     oster /* setting these to -1 causes them to be set to their default values if not set by debug options */
     67   1.1     oster 
     68  1.41     oster #if RF_DEBUG_RECON
     69   1.1     oster #define Dprintf(s)         if (rf_reconDebug) rf_debug_printf(s,NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL)
     70   1.1     oster #define Dprintf1(s,a)         if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),NULL,NULL,NULL,NULL,NULL,NULL,NULL)
     71   1.1     oster #define Dprintf2(s,a,b)       if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),NULL,NULL,NULL,NULL,NULL,NULL)
     72   1.1     oster #define Dprintf3(s,a,b,c)     if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),NULL,NULL,NULL,NULL,NULL)
     73   1.1     oster #define Dprintf4(s,a,b,c,d)   if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),NULL,NULL,NULL,NULL)
     74   1.1     oster #define Dprintf5(s,a,b,c,d,e) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),NULL,NULL,NULL)
     75   1.1     oster #define Dprintf6(s,a,b,c,d,e,f) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),(void *)((unsigned long)f),NULL,NULL)
     76   1.1     oster #define Dprintf7(s,a,b,c,d,e,f,g) if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),(void *)((unsigned long)c),(void *)((unsigned long)d),(void *)((unsigned long)e),(void *)((unsigned long)f),(void *)((unsigned long)g),NULL)
     77   1.1     oster 
     78   1.1     oster #define DDprintf1(s,a)         if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),NULL,NULL,NULL,NULL,NULL,NULL,NULL)
     79   1.1     oster #define DDprintf2(s,a,b)       if (rf_reconDebug) rf_debug_printf(s,(void *)((unsigned long)a),(void *)((unsigned long)b),NULL,NULL,NULL,NULL,NULL,NULL)
     80  1.33     oster 
     81  1.41     oster #else /* RF_DEBUG_RECON */
     82  1.33     oster 
     83  1.33     oster #define Dprintf(s) {}
     84  1.33     oster #define Dprintf1(s,a) {}
     85  1.33     oster #define Dprintf2(s,a,b) {}
     86  1.33     oster #define Dprintf3(s,a,b,c) {}
     87  1.33     oster #define Dprintf4(s,a,b,c,d) {}
     88  1.33     oster #define Dprintf5(s,a,b,c,d,e) {}
     89  1.33     oster #define Dprintf6(s,a,b,c,d,e,f) {}
     90  1.33     oster #define Dprintf7(s,a,b,c,d,e,f,g) {}
     91  1.33     oster 
     92  1.33     oster #define DDprintf1(s,a) {}
     93  1.33     oster #define DDprintf2(s,a,b) {}
     94  1.33     oster 
     95  1.41     oster #endif /* RF_DEBUG_RECON */
     96  1.33     oster 
     97   1.1     oster 
     98  1.73     oster #define RF_MAX_FREE_RECOND  10
     99  1.73     oster #define RF_MIN_FREE_RECOND  4
    100  1.73     oster 
    101  1.73     oster #define RF_MAX_FREE_RECONBUFFER 32
    102  1.73     oster #define RF_MIN_FREE_RECONBUFFER 16
    103   1.1     oster 
    104  1.69     oster static RF_RaidReconDesc_t *AllocRaidReconDesc(RF_Raid_t *, RF_RowCol_t,
    105  1.69     oster 					      RF_RaidDisk_t *, int, RF_RowCol_t);
    106  1.69     oster static void FreeReconDesc(RF_RaidReconDesc_t *);
    107  1.69     oster static int ProcessReconEvent(RF_Raid_t *, RF_ReconEvent_t *);
    108  1.69     oster static int IssueNextReadRequest(RF_Raid_t *, RF_RowCol_t);
    109  1.69     oster static int TryToRead(RF_Raid_t *, RF_RowCol_t);
    110  1.69     oster static int ComputePSDiskOffsets(RF_Raid_t *, RF_StripeNum_t, RF_RowCol_t,
    111  1.69     oster 				RF_SectorNum_t *, RF_SectorNum_t *, RF_RowCol_t *,
    112  1.69     oster 				RF_SectorNum_t *);
    113  1.69     oster static int IssueNextWriteRequest(RF_Raid_t *);
    114  1.69     oster static int ReconReadDoneProc(void *, int);
    115  1.69     oster static int ReconWriteDoneProc(void *, int);
    116  1.69     oster static void CheckForNewMinHeadSep(RF_Raid_t *, RF_HeadSepLimit_t);
    117  1.69     oster static int CheckHeadSeparation(RF_Raid_t *, RF_PerDiskReconCtrl_t *,
    118  1.69     oster 			       RF_RowCol_t, RF_HeadSepLimit_t,
    119  1.69     oster 			       RF_ReconUnitNum_t);
    120  1.69     oster static int CheckForcedOrBlockedReconstruction(RF_Raid_t *,
    121  1.69     oster 					      RF_ReconParityStripeStatus_t *,
    122  1.69     oster 					      RF_PerDiskReconCtrl_t *,
    123  1.69     oster 					      RF_RowCol_t, RF_StripeNum_t,
    124  1.69     oster 					      RF_ReconUnitNum_t);
    125  1.69     oster static void ForceReconReadDoneProc(void *, int);
    126   1.1     oster static void rf_ShutdownReconstruction(void *);
    127   1.1     oster 
    128   1.1     oster struct RF_ReconDoneProc_s {
    129   1.4     oster 	void    (*proc) (RF_Raid_t *, void *);
    130   1.4     oster 	void   *arg;
    131   1.4     oster 	RF_ReconDoneProc_t *next;
    132   1.1     oster };
    133   1.1     oster 
    134  1.13     oster /**************************************************************************
    135   1.1     oster  *
    136   1.1     oster  * sets up the parameters that will be used by the reconstruction process
    137   1.1     oster  * currently there are none, except for those that the layout-specific
    138   1.1     oster  * configuration (e.g. rf_ConfigureDeclustered) routine sets up.
    139   1.1     oster  *
    140   1.1     oster  * in the kernel, we fire off the recon thread.
    141   1.1     oster  *
    142  1.13     oster  **************************************************************************/
    143   1.4     oster static void
    144  1.60     oster rf_ShutdownReconstruction(void *ignored)
    145   1.4     oster {
    146  1.74     oster 	pool_destroy(&rf_pools.reconbuffer);
    147   1.4     oster }
    148   1.4     oster 
    149   1.4     oster int
    150  1.60     oster rf_ConfigureReconstruction(RF_ShutdownList_t **listp)
    151   1.4     oster {
    152   1.4     oster 
    153  1.74     oster 	rf_pool_init(&rf_pools.reconbuffer, sizeof(RF_ReconBuffer_t),
    154  1.74     oster 		     "rf_reconbuffer_pl", RF_MIN_FREE_RECONBUFFER, RF_MAX_FREE_RECONBUFFER);
    155  1.66     oster 	rf_ShutdownCreate(listp, rf_ShutdownReconstruction, NULL);
    156  1.66     oster 
    157   1.4     oster 	return (0);
    158   1.4     oster }
    159   1.4     oster 
    160   1.4     oster static RF_RaidReconDesc_t *
    161  1.60     oster AllocRaidReconDesc(RF_Raid_t *raidPtr, RF_RowCol_t col,
    162  1.60     oster 		   RF_RaidDisk_t *spareDiskPtr, int numDisksDone,
    163  1.60     oster 		   RF_RowCol_t scol)
    164   1.1     oster {
    165   1.1     oster 
    166   1.4     oster 	RF_RaidReconDesc_t *reconDesc;
    167   1.4     oster 
    168  1.80     oster 	RF_Malloc(reconDesc, sizeof(RF_RaidReconDesc_t),
    169  1.80     oster 		  (RF_RaidReconDesc_t *));
    170   1.4     oster 	reconDesc->raidPtr = raidPtr;
    171   1.4     oster 	reconDesc->col = col;
    172   1.4     oster 	reconDesc->spareDiskPtr = spareDiskPtr;
    173   1.4     oster 	reconDesc->numDisksDone = numDisksDone;
    174   1.4     oster 	reconDesc->scol = scol;
    175   1.4     oster 	reconDesc->next = NULL;
    176   1.1     oster 
    177   1.4     oster 	return (reconDesc);
    178   1.1     oster }
    179   1.1     oster 
    180   1.4     oster static void
    181  1.60     oster FreeReconDesc(RF_RaidReconDesc_t *reconDesc)
    182   1.1     oster {
    183   1.1     oster #if RF_RECON_STATS > 0
    184  1.50     oster 	printf("raid%d: %lu recon event waits, %lu recon delays\n",
    185  1.50     oster 	       reconDesc->raidPtr->raidid,
    186  1.50     oster 	       (long) reconDesc->numReconEventWaits,
    187  1.50     oster 	       (long) reconDesc->numReconExecDelays);
    188   1.4     oster #endif				/* RF_RECON_STATS > 0 */
    189  1.50     oster 	printf("raid%d: %lu max exec ticks\n",
    190  1.50     oster 	       reconDesc->raidPtr->raidid,
    191  1.50     oster 	       (long) reconDesc->maxReconExecTicks);
    192   1.1     oster #if (RF_RECON_STATS > 0) || defined(KERNEL)
    193   1.4     oster 	printf("\n");
    194   1.4     oster #endif				/* (RF_RECON_STATS > 0) || KERNEL */
    195  1.80     oster 	RF_Free(reconDesc, sizeof(RF_RaidReconDesc_t));
    196   1.1     oster }
    197   1.1     oster 
    198   1.1     oster 
    199  1.13     oster /*****************************************************************************
    200   1.1     oster  *
    201   1.1     oster  * primary routine to reconstruct a failed disk.  This should be called from
    202   1.1     oster  * within its own thread.  It won't return until reconstruction completes,
    203   1.1     oster  * fails, or is aborted.
    204  1.13     oster  *****************************************************************************/
    205   1.4     oster int
    206  1.60     oster rf_ReconstructFailedDisk(RF_Raid_t *raidPtr, RF_RowCol_t col)
    207   1.4     oster {
    208  1.52  jdolecek 	const RF_LayoutSW_t *lp;
    209   1.4     oster 	int     rc;
    210   1.4     oster 
    211   1.4     oster 	lp = raidPtr->Layout.map;
    212   1.4     oster 	if (lp->SubmitReconBuffer) {
    213   1.4     oster 		/*
    214   1.4     oster 	         * The current infrastructure only supports reconstructing one
    215   1.4     oster 	         * disk at a time for each array.
    216   1.4     oster 	         */
    217   1.4     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    218   1.4     oster 		while (raidPtr->reconInProgress) {
    219   1.4     oster 			RF_WAIT_COND(raidPtr->waitForReconCond, raidPtr->mutex);
    220   1.4     oster 		}
    221   1.4     oster 		raidPtr->reconInProgress++;
    222   1.4     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    223  1.57     oster 		rc = rf_ReconstructFailedDiskBasic(raidPtr, col);
    224   1.6     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    225   1.6     oster 		raidPtr->reconInProgress--;
    226   1.6     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    227   1.4     oster 	} else {
    228   1.4     oster 		RF_ERRORMSG1("RECON: no way to reconstruct failed disk for arch %c\n",
    229   1.4     oster 		    lp->parityConfig);
    230   1.4     oster 		rc = EIO;
    231   1.4     oster 	}
    232   1.4     oster 	RF_SIGNAL_COND(raidPtr->waitForReconCond);
    233   1.4     oster 	return (rc);
    234   1.4     oster }
    235   1.4     oster 
    236   1.4     oster int
    237  1.60     oster rf_ReconstructFailedDiskBasic(RF_Raid_t *raidPtr, RF_RowCol_t col)
    238   1.4     oster {
    239   1.5     oster 	RF_ComponentLabel_t c_label;
    240   1.4     oster 	RF_RaidDisk_t *spareDiskPtr = NULL;
    241   1.4     oster 	RF_RaidReconDesc_t *reconDesc;
    242  1.57     oster 	RF_RowCol_t scol;
    243   1.4     oster 	int     numDisksDone = 0, rc;
    244   1.4     oster 
    245   1.4     oster 	/* first look for a spare drive onto which to reconstruct the data */
    246   1.4     oster 	/* spare disk descriptors are stored in row 0.  This may have to
    247   1.4     oster 	 * change eventually */
    248   1.4     oster 
    249   1.4     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    250  1.57     oster 	RF_ASSERT(raidPtr->Disks[col].status == rf_ds_failed);
    251  1.72     oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
    252   1.4     oster 	if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
    253  1.57     oster 		if (raidPtr->status != rf_rs_degraded) {
    254  1.57     oster 			RF_ERRORMSG1("Unable to reconstruct disk at col %d because status not degraded\n", col);
    255   1.4     oster 			RF_UNLOCK_MUTEX(raidPtr->mutex);
    256   1.4     oster 			return (EINVAL);
    257   1.4     oster 		}
    258   1.4     oster 		scol = (-1);
    259   1.4     oster 	} else {
    260  1.72     oster #endif
    261   1.4     oster 		for (scol = raidPtr->numCol; scol < raidPtr->numCol + raidPtr->numSpare; scol++) {
    262  1.57     oster 			if (raidPtr->Disks[scol].status == rf_ds_spare) {
    263  1.57     oster 				spareDiskPtr = &raidPtr->Disks[scol];
    264   1.4     oster 				spareDiskPtr->status = rf_ds_used_spare;
    265   1.4     oster 				break;
    266   1.4     oster 			}
    267   1.4     oster 		}
    268   1.4     oster 		if (!spareDiskPtr) {
    269  1.57     oster 			RF_ERRORMSG1("Unable to reconstruct disk at col %d because no spares are available\n", col);
    270   1.4     oster 			RF_UNLOCK_MUTEX(raidPtr->mutex);
    271   1.4     oster 			return (ENOSPC);
    272   1.4     oster 		}
    273  1.57     oster 		printf("RECON: initiating reconstruction on col %d -> spare at col %d\n", col, scol);
    274  1.72     oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
    275   1.4     oster 	}
    276  1.72     oster #endif
    277   1.4     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    278   1.1     oster 
    279  1.57     oster 	reconDesc = AllocRaidReconDesc((void *) raidPtr, col, spareDiskPtr, numDisksDone, scol);
    280   1.4     oster 	raidPtr->reconDesc = (void *) reconDesc;
    281   1.1     oster #if RF_RECON_STATS > 0
    282   1.4     oster 	reconDesc->hsStallCount = 0;
    283   1.4     oster 	reconDesc->numReconExecDelays = 0;
    284   1.4     oster 	reconDesc->numReconEventWaits = 0;
    285   1.4     oster #endif				/* RF_RECON_STATS > 0 */
    286   1.4     oster 	reconDesc->reconExecTimerRunning = 0;
    287   1.4     oster 	reconDesc->reconExecTicks = 0;
    288   1.4     oster 	reconDesc->maxReconExecTicks = 0;
    289   1.4     oster 	rc = rf_ContinueReconstructFailedDisk(reconDesc);
    290   1.5     oster 
    291   1.5     oster 	if (!rc) {
    292   1.5     oster 		/* fix up the component label */
    293   1.5     oster 		/* Don't actually need the read here.. */
    294   1.5     oster 		raidread_component_label(
    295  1.57     oster                         raidPtr->raid_cinfo[scol].ci_dev,
    296  1.57     oster 			raidPtr->raid_cinfo[scol].ci_vp,
    297   1.5     oster 			&c_label);
    298   1.5     oster 
    299  1.15     oster 		raid_init_component_label( raidPtr, &c_label);
    300  1.57     oster 		c_label.row = 0;
    301   1.5     oster 		c_label.column = col;
    302   1.5     oster 		c_label.clean = RF_RAID_DIRTY;
    303   1.5     oster 		c_label.status = rf_ds_optimal;
    304  1.57     oster 		c_label.partitionSize = raidPtr->Disks[scol].partitionSize;
    305  1.15     oster 
    306  1.28     oster 		/* We've just done a rebuild based on all the other
    307  1.28     oster 		   disks, so at this point the parity is known to be
    308  1.28     oster 		   clean, even if it wasn't before. */
    309  1.28     oster 
    310  1.28     oster 		/* XXX doesn't hold for RAID 6!!*/
    311  1.28     oster 
    312  1.48     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    313  1.28     oster 		raidPtr->parity_good = RF_RAID_CLEAN;
    314  1.48     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    315  1.28     oster 
    316  1.15     oster 		/* XXXX MORE NEEDED HERE */
    317   1.5     oster 
    318   1.5     oster 		raidwrite_component_label(
    319  1.57     oster                         raidPtr->raid_cinfo[scol].ci_dev,
    320  1.57     oster 			raidPtr->raid_cinfo[scol].ci_vp,
    321   1.5     oster 			&c_label);
    322   1.5     oster 
    323  1.49     oster 
    324  1.49     oster 		rf_update_component_labels(raidPtr,
    325  1.49     oster 					   RF_NORMAL_COMPONENT_UPDATE);
    326  1.49     oster 
    327   1.5     oster 	}
    328   1.5     oster 	return (rc);
    329   1.5     oster }
    330   1.5     oster 
    331   1.5     oster /*
    332   1.5     oster 
    333   1.5     oster    Allow reconstructing a disk in-place -- i.e. component /dev/sd2e goes AWOL,
    334   1.5     oster    and you don't get a spare until the next Monday.  With this function
    335   1.5     oster    (and hot-swappable drives) you can now put your new disk containing
    336   1.5     oster    /dev/sd2e on the bus, scsictl it alive, and then use raidctl(8) to
    337   1.5     oster    rebuild the data "on the spot".
    338   1.5     oster 
    339   1.5     oster */
    340   1.5     oster 
    341   1.5     oster int
    342  1.60     oster rf_ReconstructInPlace(RF_Raid_t *raidPtr, RF_RowCol_t col)
    343   1.5     oster {
    344   1.5     oster 	RF_RaidDisk_t *spareDiskPtr = NULL;
    345   1.5     oster 	RF_RaidReconDesc_t *reconDesc;
    346  1.52  jdolecek 	const RF_LayoutSW_t *lp;
    347   1.5     oster 	RF_ComponentLabel_t c_label;
    348   1.5     oster 	int     numDisksDone = 0, rc;
    349   1.5     oster 	struct partinfo dpart;
    350   1.5     oster 	struct vnode *vp;
    351   1.5     oster 	struct vattr va;
    352  1.56      fvdl 	struct proc *proc;
    353   1.5     oster 	int retcode;
    354  1.21     oster 	int ac;
    355   1.5     oster 
    356   1.5     oster 	lp = raidPtr->Layout.map;
    357  1.61     oster 	if (!lp->SubmitReconBuffer) {
    358  1.61     oster 		RF_ERRORMSG1("RECON: no way to reconstruct failed disk for arch %c\n",
    359  1.61     oster 			     lp->parityConfig);
    360  1.61     oster 		/* wakeup anyone who might be waiting to do a reconstruct */
    361  1.61     oster 		RF_SIGNAL_COND(raidPtr->waitForReconCond);
    362  1.61     oster 		return(EIO);
    363  1.62     oster 	}
    364   1.5     oster 
    365  1.62     oster 	/*
    366  1.62     oster 	 * The current infrastructure only supports reconstructing one
    367  1.62     oster 	 * disk at a time for each array.
    368  1.62     oster 	 */
    369  1.62     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    370   1.5     oster 
    371  1.62     oster 	if (raidPtr->Disks[col].status != rf_ds_failed) {
    372  1.62     oster 		/* "It's gone..." */
    373  1.62     oster 		raidPtr->numFailures++;
    374  1.62     oster 		raidPtr->Disks[col].status = rf_ds_failed;
    375  1.62     oster 		raidPtr->status = rf_rs_degraded;
    376  1.62     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    377  1.62     oster 		rf_update_component_labels(raidPtr,
    378  1.62     oster 					   RF_NORMAL_COMPONENT_UPDATE);
    379  1.62     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    380  1.62     oster 	}
    381  1.62     oster 
    382  1.62     oster 	while (raidPtr->reconInProgress) {
    383  1.62     oster 		RF_WAIT_COND(raidPtr->waitForReconCond, raidPtr->mutex);
    384  1.62     oster 	}
    385  1.62     oster 
    386  1.62     oster 	raidPtr->reconInProgress++;
    387  1.64     oster 
    388  1.62     oster 	/* first look for a spare drive onto which to reconstruct the
    389  1.62     oster 	   data.  spare disk descriptors are stored in row 0.  This
    390  1.62     oster 	   may have to change eventually */
    391  1.62     oster 
    392  1.62     oster 	/* Actually, we don't care if it's failed or not...  On a RAID
    393  1.62     oster 	   set with correct parity, this function should be callable
    394  1.62     oster 	   on any component without ill affects. */
    395  1.62     oster 	/* RF_ASSERT(raidPtr->Disks[col].status == rf_ds_failed); */
    396  1.62     oster 
    397  1.72     oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
    398  1.62     oster 	if (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE) {
    399  1.62     oster 		RF_ERRORMSG1("Unable to reconstruct to disk at col %d: operation not supported for RF_DISTRIBUTE_SPARE\n", col);
    400  1.62     oster 
    401  1.62     oster 		raidPtr->reconInProgress--;
    402  1.62     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    403  1.64     oster 		RF_SIGNAL_COND(raidPtr->waitForReconCond);
    404  1.62     oster 		return (EINVAL);
    405  1.62     oster 	}
    406  1.72     oster #endif
    407  1.62     oster 	proc = raidPtr->engine_thread;
    408  1.62     oster 
    409  1.62     oster 	/* This device may have been opened successfully the
    410  1.62     oster 	   first time. Close it before trying to open it again.. */
    411  1.62     oster 
    412  1.62     oster 	if (raidPtr->raid_cinfo[col].ci_vp != NULL) {
    413  1.37     oster #if 0
    414  1.62     oster 		printf("Closed the open device: %s\n",
    415  1.62     oster 		       raidPtr->Disks[col].devname);
    416  1.37     oster #endif
    417  1.62     oster 		vp = raidPtr->raid_cinfo[col].ci_vp;
    418  1.62     oster 		ac = raidPtr->Disks[col].auto_configured;
    419  1.62     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    420  1.62     oster 		rf_close_component(raidPtr, vp, ac);
    421  1.62     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    422  1.62     oster 		raidPtr->raid_cinfo[col].ci_vp = NULL;
    423  1.62     oster 	}
    424  1.62     oster 	/* note that this disk was *not* auto_configured (any longer)*/
    425  1.62     oster 	raidPtr->Disks[col].auto_configured = 0;
    426  1.62     oster 
    427  1.37     oster #if 0
    428  1.62     oster 	printf("About to (re-)open the device for rebuilding: %s\n",
    429  1.62     oster 	       raidPtr->Disks[col].devname);
    430  1.37     oster #endif
    431  1.62     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    432  1.62     oster 	retcode = raidlookup(raidPtr->Disks[col].devname, proc, &vp);
    433  1.62     oster 
    434  1.62     oster 	if (retcode) {
    435  1.62     oster 		printf("raid%d: rebuilding: raidlookup on device: %s failed: %d!\n",raidPtr->raidid,
    436  1.62     oster 		       raidPtr->Disks[col].devname, retcode);
    437  1.62     oster 
    438  1.62     oster 		/* the component isn't responding properly...
    439  1.62     oster 		   must be still dead :-( */
    440  1.62     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    441  1.62     oster 		raidPtr->reconInProgress--;
    442  1.48     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    443  1.64     oster 		RF_SIGNAL_COND(raidPtr->waitForReconCond);
    444  1.62     oster 		return(retcode);
    445  1.63     oster 	}
    446  1.63     oster 
    447  1.63     oster 	/* Ok, so we can at least do a lookup...
    448  1.63     oster 	   How about actually getting a vp for it? */
    449  1.63     oster 
    450  1.63     oster 	if ((retcode = VOP_GETATTR(vp, &va, proc->p_ucred, proc)) != 0) {
    451  1.63     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    452  1.63     oster 		raidPtr->reconInProgress--;
    453  1.63     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    454  1.64     oster 		RF_SIGNAL_COND(raidPtr->waitForReconCond);
    455  1.63     oster 		return(retcode);
    456  1.63     oster 	}
    457  1.63     oster 
    458  1.64     oster 	retcode = VOP_IOCTL(vp, DIOCGPART, &dpart, FREAD, proc->p_ucred, proc);
    459  1.63     oster 	if (retcode) {
    460  1.62     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    461  1.63     oster 		raidPtr->reconInProgress--;
    462  1.62     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    463  1.64     oster 		RF_SIGNAL_COND(raidPtr->waitForReconCond);
    464  1.63     oster 		return(retcode);
    465  1.62     oster 	}
    466  1.63     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    467  1.63     oster 	raidPtr->Disks[col].blockSize =	dpart.disklab->d_secsize;
    468  1.62     oster 
    469  1.64     oster 	raidPtr->Disks[col].numBlocks = dpart.part->p_size -
    470  1.63     oster 		rf_protectedSectors;
    471  1.62     oster 
    472  1.63     oster 	raidPtr->raid_cinfo[col].ci_vp = vp;
    473  1.63     oster 	raidPtr->raid_cinfo[col].ci_dev = va.va_rdev;
    474  1.63     oster 
    475  1.63     oster 	raidPtr->Disks[col].dev = va.va_rdev;
    476  1.63     oster 
    477  1.63     oster 	/* we allow the user to specify that only a fraction
    478  1.63     oster 	   of the disks should be used this is just for debug:
    479  1.63     oster 	   it speeds up * the parity scan */
    480  1.63     oster 	raidPtr->Disks[col].numBlocks = raidPtr->Disks[col].numBlocks *
    481  1.63     oster 		rf_sizePercentage / 100;
    482  1.63     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    483  1.62     oster 
    484  1.62     oster 	spareDiskPtr = &raidPtr->Disks[col];
    485  1.62     oster 	spareDiskPtr->status = rf_ds_used_spare;
    486  1.62     oster 
    487  1.62     oster 	printf("raid%d: initiating in-place reconstruction on column %d\n",
    488  1.62     oster 	       raidPtr->raidid, col);
    489   1.5     oster 
    490  1.62     oster 	reconDesc = AllocRaidReconDesc((void *) raidPtr, col, spareDiskPtr,
    491  1.62     oster 				       numDisksDone, col);
    492  1.62     oster 	raidPtr->reconDesc = (void *) reconDesc;
    493   1.5     oster #if RF_RECON_STATS > 0
    494  1.62     oster 	reconDesc->hsStallCount = 0;
    495  1.62     oster 	reconDesc->numReconExecDelays = 0;
    496  1.62     oster 	reconDesc->numReconEventWaits = 0;
    497   1.5     oster #endif				/* RF_RECON_STATS > 0 */
    498  1.62     oster 	reconDesc->reconExecTimerRunning = 0;
    499  1.62     oster 	reconDesc->reconExecTicks = 0;
    500  1.62     oster 	reconDesc->maxReconExecTicks = 0;
    501  1.62     oster 	rc = rf_ContinueReconstructFailedDisk(reconDesc);
    502  1.62     oster 
    503  1.62     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    504  1.62     oster 	raidPtr->reconInProgress--;
    505  1.62     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    506   1.5     oster 
    507   1.5     oster 	if (!rc) {
    508  1.48     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    509   1.5     oster 		/* Need to set these here, as at this point it'll be claiming
    510   1.5     oster 		   that the disk is in rf_ds_spared!  But we know better :-) */
    511   1.5     oster 
    512  1.57     oster 		raidPtr->Disks[col].status = rf_ds_optimal;
    513  1.57     oster 		raidPtr->status = rf_rs_optimal;
    514  1.48     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    515   1.5     oster 
    516   1.5     oster 		/* fix up the component label */
    517   1.5     oster 		/* Don't actually need the read here.. */
    518  1.57     oster 		raidread_component_label(raidPtr->raid_cinfo[col].ci_dev,
    519  1.57     oster 					 raidPtr->raid_cinfo[col].ci_vp,
    520   1.5     oster 					 &c_label);
    521  1.16     oster 
    522  1.48     oster 		RF_LOCK_MUTEX(raidPtr->mutex);
    523  1.16     oster 		raid_init_component_label(raidPtr, &c_label);
    524  1.16     oster 
    525  1.57     oster 		c_label.row = 0;
    526   1.5     oster 		c_label.column = col;
    527  1.28     oster 
    528  1.28     oster 		/* We've just done a rebuild based on all the other
    529  1.28     oster 		   disks, so at this point the parity is known to be
    530  1.28     oster 		   clean, even if it wasn't before. */
    531  1.28     oster 
    532  1.28     oster 		/* XXX doesn't hold for RAID 6!!*/
    533  1.28     oster 
    534  1.28     oster 		raidPtr->parity_good = RF_RAID_CLEAN;
    535  1.48     oster 		RF_UNLOCK_MUTEX(raidPtr->mutex);
    536  1.28     oster 
    537  1.57     oster 		raidwrite_component_label(raidPtr->raid_cinfo[col].ci_dev,
    538  1.57     oster 					  raidPtr->raid_cinfo[col].ci_vp,
    539   1.5     oster 					  &c_label);
    540  1.49     oster 
    541  1.49     oster 		rf_update_component_labels(raidPtr,
    542  1.49     oster 					   RF_NORMAL_COMPONENT_UPDATE);
    543   1.5     oster 
    544   1.5     oster 	}
    545   1.5     oster 	RF_SIGNAL_COND(raidPtr->waitForReconCond);
    546   1.4     oster 	return (rc);
    547   1.4     oster }
    548   1.4     oster 
    549   1.4     oster 
    550   1.4     oster int
    551  1.60     oster rf_ContinueReconstructFailedDisk(RF_RaidReconDesc_t *reconDesc)
    552   1.4     oster {
    553   1.4     oster 	RF_Raid_t *raidPtr = reconDesc->raidPtr;
    554   1.4     oster 	RF_RowCol_t col = reconDesc->col;
    555   1.4     oster 	RF_RowCol_t scol = reconDesc->scol;
    556   1.4     oster 	RF_ReconMap_t *mapPtr;
    557  1.46     oster 	RF_ReconCtrl_t *tmp_reconctrl;
    558   1.4     oster 	RF_ReconEvent_t *event;
    559   1.4     oster 	struct timeval etime, elpsd;
    560   1.4     oster 	unsigned long xor_s, xor_resid_us;
    561  1.54    simonb 	int     i, ds;
    562   1.4     oster 
    563  1.78     oster 	raidPtr->accumXorTimeUs = 0;
    564  1.67     oster #if RF_ACC_TRACE > 0
    565  1.78     oster 	/* create one trace record per physical disk */
    566  1.78     oster 	RF_Malloc(raidPtr->recon_tracerecs, raidPtr->numCol * sizeof(RF_AccTraceEntry_t), (RF_AccTraceEntry_t *));
    567  1.67     oster #endif
    568  1.78     oster 
    569  1.78     oster 	/* quiesce the array prior to starting recon.  this is needed
    570  1.78     oster 	 * to assure no nasty interactions with pending user writes.
    571  1.78     oster 	 * We need to do this before we change the disk or row status. */
    572  1.78     oster 
    573  1.78     oster 	Dprintf("RECON: begin request suspend\n");
    574  1.78     oster 	rf_SuspendNewRequestsAndWait(raidPtr);
    575  1.78     oster 	Dprintf("RECON: end request suspend\n");
    576  1.78     oster 
    577  1.78     oster 	/* allocate our RF_ReconCTRL_t before we protect raidPtr->reconControl[row] */
    578  1.78     oster 	tmp_reconctrl = rf_MakeReconControl(reconDesc, col, scol);
    579  1.78     oster 
    580  1.78     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    581  1.78     oster 
    582  1.78     oster 	/* create the reconstruction control pointer and install it in
    583  1.78     oster 	 * the right slot */
    584  1.78     oster 	raidPtr->reconControl = tmp_reconctrl;
    585  1.78     oster 	mapPtr = raidPtr->reconControl->reconMap;
    586  1.78     oster 	raidPtr->status = rf_rs_reconstructing;
    587  1.78     oster 	raidPtr->Disks[col].status = rf_ds_reconstructing;
    588  1.78     oster 	raidPtr->Disks[col].spareCol = scol;
    589  1.78     oster 
    590  1.78     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    591  1.78     oster 
    592  1.78     oster 	RF_GETTIME(raidPtr->reconControl->starttime);
    593  1.78     oster 
    594  1.78     oster 	/* now start up the actual reconstruction: issue a read for
    595  1.78     oster 	 * each surviving disk */
    596  1.78     oster 
    597  1.78     oster 	reconDesc->numDisksDone = 0;
    598  1.78     oster 	for (i = 0; i < raidPtr->numCol; i++) {
    599  1.78     oster 		if (i != col) {
    600  1.78     oster 			/* find and issue the next I/O on the
    601  1.78     oster 			 * indicated disk */
    602  1.78     oster 			if (IssueNextReadRequest(raidPtr, i)) {
    603  1.78     oster 				Dprintf1("RECON: done issuing for c%d\n", i);
    604  1.78     oster 				reconDesc->numDisksDone++;
    605   1.4     oster 			}
    606   1.4     oster 		}
    607  1.78     oster 	}
    608   1.4     oster 
    609  1.78     oster 	Dprintf("RECON: resume requests\n");
    610  1.78     oster 	rf_ResumeNewRequests(raidPtr);
    611  1.78     oster 
    612  1.78     oster 	/* process reconstruction events until all disks report that
    613  1.78     oster 	 * they've completed all work */
    614   1.4     oster 
    615  1.78     oster 	mapPtr = raidPtr->reconControl->reconMap;
    616  1.78     oster 
    617  1.78     oster 	while (reconDesc->numDisksDone < raidPtr->numCol - 1) {
    618  1.78     oster 
    619  1.78     oster 		event = rf_GetNextReconEvent(reconDesc);
    620  1.78     oster 		RF_ASSERT(event);
    621  1.78     oster 
    622  1.78     oster 		if (ProcessReconEvent(raidPtr, event))
    623  1.78     oster 			reconDesc->numDisksDone++;
    624  1.78     oster 		raidPtr->reconControl->numRUsTotal =
    625  1.78     oster 			mapPtr->totalRUs;
    626  1.78     oster 		raidPtr->reconControl->numRUsComplete =
    627  1.78     oster 			mapPtr->totalRUs -
    628  1.78     oster 			rf_UnitsLeftToReconstruct(mapPtr);
    629  1.65     oster #if RF_DEBUG_RECON
    630  1.78     oster 		raidPtr->reconControl->percentComplete =
    631  1.78     oster 			(raidPtr->reconControl->numRUsComplete * 100 / raidPtr->reconControl->numRUsTotal);
    632  1.78     oster 		if (rf_prReconSched) {
    633  1.78     oster 			rf_PrintReconSchedule(raidPtr->reconControl->reconMap, &(raidPtr->reconControl->starttime));
    634  1.78     oster 		}
    635  1.41     oster #endif
    636  1.78     oster 	}
    637  1.78     oster 
    638  1.78     oster 	mapPtr = raidPtr->reconControl->reconMap;
    639  1.78     oster 	if (rf_reconDebug) {
    640  1.78     oster 		printf("RECON: all reads completed\n");
    641  1.78     oster 	}
    642  1.78     oster 	/* at this point all the reads have completed.  We now wait
    643  1.78     oster 	 * for any pending writes to complete, and then we're done */
    644  1.78     oster 
    645  1.78     oster 	while (rf_UnitsLeftToReconstruct(raidPtr->reconControl->reconMap) > 0) {
    646  1.78     oster 
    647  1.78     oster 		event = rf_GetNextReconEvent(reconDesc);
    648  1.78     oster 		RF_ASSERT(event);
    649  1.78     oster 
    650  1.78     oster 		(void) ProcessReconEvent(raidPtr, event);	/* ignore return code */
    651  1.78     oster #if RF_DEBUG_RECON
    652  1.78     oster 		raidPtr->reconControl->percentComplete = 100 - (rf_UnitsLeftToReconstruct(mapPtr) * 100 / mapPtr->totalRUs);
    653  1.78     oster 		if (rf_prReconSched) {
    654  1.78     oster 			rf_PrintReconSchedule(raidPtr->reconControl->reconMap, &(raidPtr->reconControl->starttime));
    655   1.4     oster 		}
    656  1.41     oster #endif
    657  1.78     oster 	}
    658  1.14     oster 
    659  1.78     oster 	/* Success:  mark the dead disk as reconstructed.  We quiesce
    660  1.78     oster 	 * the array here to assure no nasty interactions with pending
    661  1.78     oster 	 * user accesses when we free up the psstatus structure as
    662  1.78     oster 	 * part of FreeReconControl() */
    663  1.78     oster 
    664  1.78     oster 	rf_SuspendNewRequestsAndWait(raidPtr);
    665  1.78     oster 
    666  1.78     oster 	RF_LOCK_MUTEX(raidPtr->mutex);
    667  1.78     oster 	raidPtr->numFailures--;
    668  1.78     oster 	ds = (raidPtr->Layout.map->flags & RF_DISTRIBUTE_SPARE);
    669  1.78     oster 	raidPtr->Disks[col].status = (ds) ? rf_ds_dist_spared : rf_ds_spared;
    670  1.78     oster 	raidPtr->status = (ds) ? rf_rs_reconfigured : rf_rs_optimal;
    671  1.78     oster 	RF_UNLOCK_MUTEX(raidPtr->mutex);
    672  1.78     oster 	RF_GETTIME(etime);
    673  1.78     oster 	RF_TIMEVAL_DIFF(&(raidPtr->reconControl->starttime), &etime, &elpsd);
    674  1.78     oster 
    675  1.78     oster 	rf_ResumeNewRequests(raidPtr);
    676  1.78     oster 
    677  1.78     oster 	printf("raid%d: Reconstruction of disk at col %d completed\n",
    678  1.78     oster 	       raidPtr->raidid, col);
    679  1.78     oster 	xor_s = raidPtr->accumXorTimeUs / 1000000;
    680  1.78     oster 	xor_resid_us = raidPtr->accumXorTimeUs % 1000000;
    681  1.78     oster 	printf("raid%d: Recon time was %d.%06d seconds, accumulated XOR time was %ld us (%ld.%06ld)\n",
    682  1.78     oster 	       raidPtr->raidid,
    683  1.78     oster 	       (int) elpsd.tv_sec, (int) elpsd.tv_usec,
    684  1.78     oster 	       raidPtr->accumXorTimeUs, xor_s, xor_resid_us);
    685  1.78     oster 	printf("raid%d:  (start time %d sec %d usec, end time %d sec %d usec)\n",
    686  1.78     oster 	       raidPtr->raidid,
    687  1.78     oster 	       (int) raidPtr->reconControl->starttime.tv_sec,
    688  1.78     oster 	       (int) raidPtr->reconControl->starttime.tv_usec,
    689  1.78     oster 	       (int) etime.tv_sec, (int) etime.tv_usec);
    690  1.78     oster 
    691   1.1     oster #if RF_RECON_STATS > 0
    692  1.78     oster 	printf("raid%d: Total head-sep stall count was %d\n",
    693  1.78     oster 	       raidPtr->raidid, (int) reconDesc->hsStallCount);
    694   1.4     oster #endif				/* RF_RECON_STATS > 0 */
    695  1.78     oster 	rf_FreeReconControl(raidPtr);
    696  1.67     oster #if RF_ACC_TRACE > 0
    697  1.78     oster 	RF_Free(raidPtr->recon_tracerecs, raidPtr->numCol * sizeof(RF_AccTraceEntry_t));
    698  1.67     oster #endif
    699  1.78     oster 	FreeReconDesc(reconDesc);
    700  1.78     oster 
    701   1.4     oster 	return (0);
    702   1.1     oster }
    703  1.13     oster /*****************************************************************************
    704   1.1     oster  * do the right thing upon each reconstruction event.
    705  1.13     oster  * returns nonzero if and only if there is nothing left unread on the
    706  1.13     oster  * indicated disk
    707  1.13     oster  *****************************************************************************/
    708   1.4     oster static int
    709  1.60     oster ProcessReconEvent(RF_Raid_t *raidPtr, RF_ReconEvent_t *event)
    710   1.4     oster {
    711   1.4     oster 	int     retcode = 0, submitblocked;
    712   1.4     oster 	RF_ReconBuffer_t *rbuf;
    713   1.4     oster 	RF_SectorCount_t sectorsPerRU;
    714   1.4     oster 
    715   1.4     oster 	Dprintf1("RECON: ProcessReconEvent type %d\n", event->type);
    716   1.4     oster 	switch (event->type) {
    717   1.4     oster 
    718   1.4     oster 		/* a read I/O has completed */
    719   1.4     oster 	case RF_REVENT_READDONE:
    720  1.57     oster 		rbuf = raidPtr->reconControl->perDiskInfo[event->col].rbuf;
    721  1.57     oster 		Dprintf2("RECON: READDONE EVENT: col %d psid %ld\n",
    722  1.57     oster 		    event->col, rbuf->parityStripeID);
    723   1.4     oster 		Dprintf7("RECON: done read  psid %ld buf %lx  %02x %02x %02x %02x %02x\n",
    724   1.4     oster 		    rbuf->parityStripeID, rbuf->buffer, rbuf->buffer[0] & 0xff, rbuf->buffer[1] & 0xff,
    725   1.4     oster 		    rbuf->buffer[2] & 0xff, rbuf->buffer[3] & 0xff, rbuf->buffer[4] & 0xff);
    726   1.4     oster 		rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
    727   1.4     oster 		submitblocked = rf_SubmitReconBuffer(rbuf, 0, 0);
    728   1.4     oster 		Dprintf1("RECON: submitblocked=%d\n", submitblocked);
    729   1.4     oster 		if (!submitblocked)
    730  1.57     oster 			retcode = IssueNextReadRequest(raidPtr, event->col);
    731   1.4     oster 		break;
    732   1.4     oster 
    733   1.4     oster 		/* a write I/O has completed */
    734   1.4     oster 	case RF_REVENT_WRITEDONE:
    735  1.40     oster #if RF_DEBUG_RECON
    736   1.4     oster 		if (rf_floatingRbufDebug) {
    737   1.4     oster 			rf_CheckFloatingRbufCount(raidPtr, 1);
    738   1.4     oster 		}
    739  1.38     oster #endif
    740   1.4     oster 		sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU;
    741   1.4     oster 		rbuf = (RF_ReconBuffer_t *) event->arg;
    742   1.4     oster 		rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
    743   1.4     oster 		Dprintf3("RECON: WRITEDONE EVENT: psid %d ru %d (%d %% complete)\n",
    744  1.57     oster 		    rbuf->parityStripeID, rbuf->which_ru, raidPtr->reconControl->percentComplete);
    745  1.57     oster 		rf_ReconMapUpdate(raidPtr, raidPtr->reconControl->reconMap,
    746   1.4     oster 		    rbuf->failedDiskSectorOffset, rbuf->failedDiskSectorOffset + sectorsPerRU - 1);
    747  1.57     oster 		rf_RemoveFromActiveReconTable(raidPtr, rbuf->parityStripeID, rbuf->which_ru);
    748   1.4     oster 
    749   1.4     oster 		if (rbuf->type == RF_RBUF_TYPE_FLOATING) {
    750  1.57     oster 			RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
    751  1.76     oster 			while(raidPtr->reconControl->rb_lock) {
    752  1.76     oster 				ltsleep(&raidPtr->reconControl->rb_lock, PRIBIO, "reconctrlpre1", 0,
    753  1.76     oster 					&raidPtr->reconControl->rb_mutex);
    754  1.76     oster 			}
    755  1.76     oster 			raidPtr->reconControl->rb_lock = 1;
    756  1.76     oster 			RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
    757  1.76     oster 
    758   1.4     oster 			raidPtr->numFullReconBuffers--;
    759  1.57     oster 			rf_ReleaseFloatingReconBuffer(raidPtr, rbuf);
    760  1.76     oster 
    761  1.76     oster 			RF_LOCK_MUTEX(raidPtr->reconControl->rb_mutex);
    762  1.76     oster 			raidPtr->reconControl->rb_lock = 0;
    763  1.76     oster 			wakeup(&raidPtr->reconControl->rb_lock);
    764  1.57     oster 			RF_UNLOCK_MUTEX(raidPtr->reconControl->rb_mutex);
    765   1.4     oster 		} else
    766   1.4     oster 			if (rbuf->type == RF_RBUF_TYPE_FORCED)
    767   1.4     oster 				rf_FreeReconBuffer(rbuf);
    768   1.4     oster 			else
    769   1.4     oster 				RF_ASSERT(0);
    770   1.4     oster 		break;
    771   1.4     oster 
    772   1.4     oster 	case RF_REVENT_BUFCLEAR:	/* A buffer-stall condition has been
    773   1.4     oster 					 * cleared */
    774  1.57     oster 		Dprintf1("RECON: BUFCLEAR EVENT: col %d\n", event->col);
    775  1.57     oster 		submitblocked = rf_SubmitReconBuffer(raidPtr->reconControl->perDiskInfo[event->col].rbuf, 0, (int) (long) event->arg);
    776   1.4     oster 		RF_ASSERT(!submitblocked);	/* we wouldn't have gotten the
    777   1.4     oster 						 * BUFCLEAR event if we
    778   1.4     oster 						 * couldn't submit */
    779  1.57     oster 		retcode = IssueNextReadRequest(raidPtr, event->col);
    780   1.4     oster 		break;
    781   1.4     oster 
    782   1.4     oster 	case RF_REVENT_BLOCKCLEAR:	/* A user-write reconstruction
    783   1.4     oster 					 * blockage has been cleared */
    784  1.57     oster 		DDprintf1("RECON: BLOCKCLEAR EVENT: col %d\n", event->col);
    785  1.57     oster 		retcode = TryToRead(raidPtr, event->col);
    786   1.4     oster 		break;
    787   1.4     oster 
    788   1.4     oster 	case RF_REVENT_HEADSEPCLEAR:	/* A max-head-separation
    789   1.4     oster 					 * reconstruction blockage has been
    790   1.4     oster 					 * cleared */
    791  1.57     oster 		Dprintf1("RECON: HEADSEPCLEAR EVENT: col %d\n", event->col);
    792  1.57     oster 		retcode = TryToRead(raidPtr, event->col);
    793   1.4     oster 		break;
    794   1.4     oster 
    795   1.4     oster 		/* a buffer has become ready to write */
    796   1.4     oster 	case RF_REVENT_BUFREADY:
    797  1.57     oster 		Dprintf1("RECON: BUFREADY EVENT: col %d\n", event->col);
    798  1.57     oster 		retcode = IssueNextWriteRequest(raidPtr);
    799  1.40     oster #if RF_DEBUG_RECON
    800   1.4     oster 		if (rf_floatingRbufDebug) {
    801   1.4     oster 			rf_CheckFloatingRbufCount(raidPtr, 1);
    802   1.4     oster 		}
    803  1.38     oster #endif
    804   1.4     oster 		break;
    805   1.4     oster 
    806   1.4     oster 		/* we need to skip the current RU entirely because it got
    807   1.4     oster 		 * recon'd while we were waiting for something else to happen */
    808   1.4     oster 	case RF_REVENT_SKIP:
    809  1.57     oster 		DDprintf1("RECON: SKIP EVENT: col %d\n", event->col);
    810  1.57     oster 		retcode = IssueNextReadRequest(raidPtr, event->col);
    811   1.4     oster 		break;
    812   1.4     oster 
    813   1.4     oster 		/* a forced-reconstruction read access has completed.  Just
    814   1.4     oster 		 * submit the buffer */
    815   1.4     oster 	case RF_REVENT_FORCEDREADDONE:
    816   1.4     oster 		rbuf = (RF_ReconBuffer_t *) event->arg;
    817   1.4     oster 		rf_FreeDiskQueueData((RF_DiskQueueData_t *) rbuf->arg);
    818  1.57     oster 		DDprintf1("RECON: FORCEDREADDONE EVENT: col %d\n", event->col);
    819   1.4     oster 		submitblocked = rf_SubmitReconBuffer(rbuf, 1, 0);
    820   1.4     oster 		RF_ASSERT(!submitblocked);
    821   1.4     oster 		break;
    822   1.4     oster 
    823  1.70     oster 		/* A read I/O failed to complete */
    824  1.70     oster 	case RF_REVENT_READ_FAILED:
    825  1.70     oster 		/* fallthru to panic... */
    826  1.70     oster 
    827  1.70     oster 		/* A write I/O failed to complete */
    828  1.70     oster 	case RF_REVENT_WRITE_FAILED:
    829  1.70     oster 		/* fallthru to panic... */
    830  1.70     oster 
    831  1.70     oster 		/* a forced read I/O failed to complete */
    832  1.70     oster 	case RF_REVENT_FORCEDREAD_FAILED:
    833  1.70     oster 		/* fallthru to panic... */
    834  1.70     oster 
    835   1.4     oster 	default:
    836   1.4     oster 		RF_PANIC();
    837   1.4     oster 	}
    838   1.4     oster 	rf_FreeReconEventDesc(event);
    839   1.4     oster 	return (retcode);
    840   1.1     oster }
    841  1.13     oster /*****************************************************************************
    842   1.1     oster  *
    843  1.13     oster  * find the next thing that's needed on the indicated disk, and issue
    844  1.13     oster  * a read request for it.  We assume that the reconstruction buffer
    845  1.13     oster  * associated with this process is free to receive the data.  If
    846  1.13     oster  * reconstruction is blocked on the indicated RU, we issue a
    847  1.13     oster  * blockage-release request instead of a physical disk read request.
    848  1.13     oster  * If the current disk gets too far ahead of the others, we issue a
    849  1.13     oster  * head-separation wait request and return.
    850  1.13     oster  *
    851  1.13     oster  * ctrl->{ru_count, curPSID, diskOffset} and
    852  1.22     soren  * rbuf->failedDiskSectorOffset are maintained to point to the unit
    853  1.13     oster  * we're currently accessing.  Note that this deviates from the
    854  1.13     oster  * standard C idiom of having counters point to the next thing to be
    855  1.13     oster  * accessed.  This allows us to easily retry when we're blocked by
    856  1.13     oster  * head separation or reconstruction-blockage events.
    857   1.1     oster  *
    858  1.13     oster  * returns nonzero if and only if there is nothing left unread on the
    859  1.13     oster  * indicated disk
    860  1.13     oster  *
    861  1.13     oster  *****************************************************************************/
    862   1.4     oster static int
    863  1.60     oster IssueNextReadRequest(RF_Raid_t *raidPtr, RF_RowCol_t col)
    864   1.4     oster {
    865  1.57     oster 	RF_PerDiskReconCtrl_t *ctrl = &raidPtr->reconControl->perDiskInfo[col];
    866   1.4     oster 	RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
    867   1.4     oster 	RF_ReconBuffer_t *rbuf = ctrl->rbuf;
    868   1.4     oster 	RF_ReconUnitCount_t RUsPerPU = layoutPtr->SUsPerPU / layoutPtr->SUsPerRU;
    869   1.4     oster 	RF_SectorCount_t sectorsPerRU = layoutPtr->sectorsPerStripeUnit * layoutPtr->SUsPerRU;
    870   1.4     oster 	int     do_new_check = 0, retcode = 0, status;
    871   1.4     oster 
    872   1.4     oster 	/* if we are currently the slowest disk, mark that we have to do a new
    873   1.4     oster 	 * check */
    874  1.57     oster 	if (ctrl->headSepCounter <= raidPtr->reconControl->minHeadSepCounter)
    875   1.4     oster 		do_new_check = 1;
    876   1.4     oster 
    877   1.4     oster 	while (1) {
    878   1.4     oster 
    879   1.4     oster 		ctrl->ru_count++;
    880   1.4     oster 		if (ctrl->ru_count < RUsPerPU) {
    881   1.4     oster 			ctrl->diskOffset += sectorsPerRU;
    882   1.4     oster 			rbuf->failedDiskSectorOffset += sectorsPerRU;
    883   1.4     oster 		} else {
    884   1.4     oster 			ctrl->curPSID++;
    885   1.4     oster 			ctrl->ru_count = 0;
    886   1.4     oster 			/* code left over from when head-sep was based on
    887   1.4     oster 			 * parity stripe id */
    888  1.57     oster 			if (ctrl->curPSID >= raidPtr->reconControl->lastPSID) {
    889  1.57     oster 				CheckForNewMinHeadSep(raidPtr, ++(ctrl->headSepCounter));
    890   1.4     oster 				return (1);	/* finito! */
    891   1.4     oster 			}
    892   1.4     oster 			/* find the disk offsets of the start of the parity
    893   1.4     oster 			 * stripe on both the current disk and the failed
    894   1.4     oster 			 * disk. skip this entire parity stripe if either disk
    895   1.4     oster 			 * does not appear in the indicated PS */
    896  1.57     oster 			status = ComputePSDiskOffsets(raidPtr, ctrl->curPSID, col, &ctrl->diskOffset, &rbuf->failedDiskSectorOffset,
    897  1.57     oster 			    &rbuf->spCol, &rbuf->spOffset);
    898   1.4     oster 			if (status) {
    899   1.4     oster 				ctrl->ru_count = RUsPerPU - 1;
    900   1.4     oster 				continue;
    901   1.4     oster 			}
    902   1.4     oster 		}
    903   1.4     oster 		rbuf->which_ru = ctrl->ru_count;
    904   1.4     oster 
    905   1.4     oster 		/* skip this RU if it's already been reconstructed */
    906  1.57     oster 		if (rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, rbuf->failedDiskSectorOffset)) {
    907   1.4     oster 			Dprintf2("Skipping psid %ld ru %d: already reconstructed\n", ctrl->curPSID, ctrl->ru_count);
    908   1.4     oster 			continue;
    909   1.4     oster 		}
    910   1.4     oster 		break;
    911   1.4     oster 	}
    912   1.4     oster 	ctrl->headSepCounter++;
    913   1.4     oster 	if (do_new_check)
    914  1.57     oster 		CheckForNewMinHeadSep(raidPtr, ctrl->headSepCounter);	/* update min if needed */
    915   1.4     oster 
    916   1.4     oster 
    917   1.4     oster 	/* at this point, we have definitely decided what to do, and we have
    918   1.4     oster 	 * only to see if we can actually do it now */
    919   1.4     oster 	rbuf->parityStripeID = ctrl->curPSID;
    920   1.4     oster 	rbuf->which_ru = ctrl->ru_count;
    921  1.67     oster #if RF_ACC_TRACE > 0
    922  1.29   thorpej 	memset((char *) &raidPtr->recon_tracerecs[col], 0,
    923  1.29   thorpej 	    sizeof(raidPtr->recon_tracerecs[col]));
    924   1.4     oster 	raidPtr->recon_tracerecs[col].reconacc = 1;
    925   1.4     oster 	RF_ETIMER_START(raidPtr->recon_tracerecs[col].recon_timer);
    926  1.67     oster #endif
    927  1.57     oster 	retcode = TryToRead(raidPtr, col);
    928   1.4     oster 	return (retcode);
    929   1.1     oster }
    930  1.13     oster 
    931  1.13     oster /*
    932  1.13     oster  * tries to issue the next read on the indicated disk.  We may be
    933  1.13     oster  * blocked by (a) the heads being too far apart, or (b) recon on the
    934  1.13     oster  * indicated RU being blocked due to a write by a user thread.  In
    935  1.13     oster  * this case, we issue a head-sep or blockage wait request, which will
    936  1.13     oster  * cause this same routine to be invoked again later when the blockage
    937  1.13     oster  * has cleared.
    938   1.1     oster  */
    939  1.13     oster 
    940   1.4     oster static int
    941  1.60     oster TryToRead(RF_Raid_t *raidPtr, RF_RowCol_t col)
    942   1.4     oster {
    943  1.57     oster 	RF_PerDiskReconCtrl_t *ctrl = &raidPtr->reconControl->perDiskInfo[col];
    944   1.4     oster 	RF_SectorCount_t sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU;
    945   1.4     oster 	RF_StripeNum_t psid = ctrl->curPSID;
    946   1.4     oster 	RF_ReconUnitNum_t which_ru = ctrl->ru_count;
    947   1.4     oster 	RF_DiskQueueData_t *req;
    948  1.68     oster 	int     status;
    949  1.68     oster 	RF_ReconParityStripeStatus_t *pssPtr, *newpssPtr;
    950   1.4     oster 
    951   1.4     oster 	/* if the current disk is too far ahead of the others, issue a
    952   1.4     oster 	 * head-separation wait and return */
    953  1.57     oster 	if (CheckHeadSeparation(raidPtr, ctrl, col, ctrl->headSepCounter, which_ru))
    954   1.4     oster 		return (0);
    955  1.68     oster 
    956  1.68     oster 	/* allocate a new PSS in case we need it */
    957  1.68     oster 	newpssPtr = rf_AllocPSStatus(raidPtr);
    958  1.68     oster 
    959  1.57     oster 	RF_LOCK_PSS_MUTEX(raidPtr, psid);
    960  1.68     oster 	pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_CREATE, newpssPtr);
    961  1.68     oster 
    962  1.68     oster 	if (pssPtr != newpssPtr) {
    963  1.68     oster 		rf_FreePSStatus(raidPtr, newpssPtr);
    964  1.68     oster 	}
    965   1.4     oster 
    966   1.4     oster 	/* if recon is blocked on the indicated parity stripe, issue a
    967   1.4     oster 	 * block-wait request and return. this also must mark the indicated RU
    968   1.4     oster 	 * in the stripe as under reconstruction if not blocked. */
    969  1.57     oster 	status = CheckForcedOrBlockedReconstruction(raidPtr, pssPtr, ctrl, col, psid, which_ru);
    970   1.4     oster 	if (status == RF_PSS_RECON_BLOCKED) {
    971   1.4     oster 		Dprintf2("RECON: Stalling psid %ld ru %d: recon blocked\n", psid, which_ru);
    972   1.4     oster 		goto out;
    973   1.4     oster 	} else
    974   1.4     oster 		if (status == RF_PSS_FORCED_ON_WRITE) {
    975  1.57     oster 			rf_CauseReconEvent(raidPtr, col, NULL, RF_REVENT_SKIP);
    976   1.4     oster 			goto out;
    977   1.4     oster 		}
    978   1.4     oster 	/* make one last check to be sure that the indicated RU didn't get
    979   1.4     oster 	 * reconstructed while we were waiting for something else to happen.
    980   1.4     oster 	 * This is unfortunate in that it causes us to make this check twice
    981   1.4     oster 	 * in the normal case.  Might want to make some attempt to re-work
    982   1.4     oster 	 * this so that we only do this check if we've definitely blocked on
    983   1.4     oster 	 * one of the above checks.  When this condition is detected, we may
    984   1.4     oster 	 * have just created a bogus status entry, which we need to delete. */
    985  1.57     oster 	if (rf_CheckRUReconstructed(raidPtr->reconControl->reconMap, ctrl->rbuf->failedDiskSectorOffset)) {
    986   1.4     oster 		Dprintf2("RECON: Skipping psid %ld ru %d: prior recon after stall\n", psid, which_ru);
    987  1.68     oster 		if (pssPtr == newpssPtr)
    988  1.57     oster 			rf_PSStatusDelete(raidPtr, raidPtr->reconControl->pssTable, pssPtr);
    989  1.57     oster 		rf_CauseReconEvent(raidPtr, col, NULL, RF_REVENT_SKIP);
    990   1.4     oster 		goto out;
    991   1.4     oster 	}
    992   1.4     oster 	/* found something to read.  issue the I/O */
    993  1.57     oster 	Dprintf4("RECON: Read for psid %ld on col %d offset %ld buf %lx\n",
    994  1.57     oster 	    psid, col, ctrl->diskOffset, ctrl->rbuf->buffer);
    995  1.67     oster #if RF_ACC_TRACE > 0
    996   1.4     oster 	RF_ETIMER_STOP(raidPtr->recon_tracerecs[col].recon_timer);
    997   1.4     oster 	RF_ETIMER_EVAL(raidPtr->recon_tracerecs[col].recon_timer);
    998   1.4     oster 	raidPtr->recon_tracerecs[col].specific.recon.recon_start_to_fetch_us =
    999   1.4     oster 	    RF_ETIMER_VAL_US(raidPtr->recon_tracerecs[col].recon_timer);
   1000   1.4     oster 	RF_ETIMER_START(raidPtr->recon_tracerecs[col].recon_timer);
   1001  1.67     oster #endif
   1002   1.4     oster 	/* should be ok to use a NULL proc pointer here, all the bufs we use
   1003   1.4     oster 	 * should be in kernel space */
   1004   1.4     oster 	req = rf_CreateDiskQueueData(RF_IO_TYPE_READ, ctrl->diskOffset, sectorsPerRU, ctrl->rbuf->buffer, psid, which_ru,
   1005  1.67     oster 	    ReconReadDoneProc, (void *) ctrl, NULL,
   1006  1.67     oster #if RF_ACC_TRACE > 0
   1007  1.67     oster 				     &raidPtr->recon_tracerecs[col],
   1008  1.67     oster #else
   1009  1.67     oster 				     NULL,
   1010  1.67     oster #endif
   1011  1.67     oster 				     (void *) raidPtr, 0, NULL);
   1012   1.4     oster 
   1013   1.4     oster 	RF_ASSERT(req);		/* XXX -- fix this -- XXX */
   1014   1.4     oster 
   1015   1.4     oster 	ctrl->rbuf->arg = (void *) req;
   1016  1.57     oster 	rf_DiskIOEnqueue(&raidPtr->Queues[col], req, RF_IO_RECON_PRIORITY);
   1017   1.4     oster 	pssPtr->issued[col] = 1;
   1018   1.1     oster 
   1019   1.1     oster out:
   1020  1.57     oster 	RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
   1021   1.4     oster 	return (0);
   1022   1.1     oster }
   1023   1.1     oster 
   1024   1.1     oster 
   1025  1.13     oster /*
   1026  1.13     oster  * given a parity stripe ID, we want to find out whether both the
   1027  1.13     oster  * current disk and the failed disk exist in that parity stripe.  If
   1028  1.13     oster  * not, we want to skip this whole PS.  If so, we want to find the
   1029  1.13     oster  * disk offset of the start of the PS on both the current disk and the
   1030  1.13     oster  * failed disk.
   1031  1.13     oster  *
   1032  1.13     oster  * this works by getting a list of disks comprising the indicated
   1033  1.13     oster  * parity stripe, and searching the list for the current and failed
   1034  1.13     oster  * disks.  Once we've decided they both exist in the parity stripe, we
   1035  1.13     oster  * need to decide whether each is data or parity, so that we'll know
   1036  1.13     oster  * which mapping function to call to get the corresponding disk
   1037   1.1     oster  * offsets.
   1038   1.1     oster  *
   1039  1.13     oster  * this is kind of unpleasant, but doing it this way allows the
   1040  1.13     oster  * reconstruction code to use parity stripe IDs rather than physical
   1041  1.13     oster  * disks address to march through the failed disk, which greatly
   1042  1.13     oster  * simplifies a lot of code, as well as eliminating the need for a
   1043  1.13     oster  * reverse-mapping function.  I also think it will execute faster,
   1044  1.13     oster  * since the calls to the mapping module are kept to a minimum.
   1045   1.1     oster  *
   1046  1.13     oster  * ASSUMES THAT THE STRIPE IDENTIFIER IDENTIFIES THE DISKS COMPRISING
   1047  1.60     oster  * THE STRIPE IN THE CORRECT ORDER
   1048  1.60     oster  *
   1049  1.60     oster  * raidPtr          - raid descriptor
   1050  1.60     oster  * psid             - parity stripe identifier
   1051  1.60     oster  * col              - column of disk to find the offsets for
   1052  1.60     oster  * spCol            - out: col of spare unit for failed unit
   1053  1.60     oster  * spOffset         - out: offset into disk containing spare unit
   1054  1.60     oster  *
   1055  1.60     oster  */
   1056  1.13     oster 
   1057  1.13     oster 
   1058   1.4     oster static int
   1059  1.60     oster ComputePSDiskOffsets(RF_Raid_t *raidPtr, RF_StripeNum_t psid,
   1060  1.60     oster 		     RF_RowCol_t col, RF_SectorNum_t *outDiskOffset,
   1061  1.60     oster 		     RF_SectorNum_t *outFailedDiskSectorOffset,
   1062  1.60     oster 		     RF_RowCol_t *spCol, RF_SectorNum_t *spOffset)
   1063  1.60     oster {
   1064   1.4     oster 	RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
   1065  1.57     oster 	RF_RowCol_t fcol = raidPtr->reconControl->fcol;
   1066   1.4     oster 	RF_RaidAddr_t sosRaidAddress;	/* start-of-stripe */
   1067   1.4     oster 	RF_RowCol_t *diskids;
   1068   1.4     oster 	u_int   i, j, k, i_offset, j_offset;
   1069  1.57     oster 	RF_RowCol_t pcol;
   1070  1.57     oster 	int     testcol;
   1071   1.4     oster 	RF_SectorNum_t poffset;
   1072   1.4     oster 	char    i_is_parity = 0, j_is_parity = 0;
   1073   1.4     oster 	RF_RowCol_t stripeWidth = layoutPtr->numDataCol + layoutPtr->numParityCol;
   1074   1.4     oster 
   1075   1.4     oster 	/* get a listing of the disks comprising that stripe */
   1076   1.4     oster 	sosRaidAddress = rf_ParityStripeIDToRaidAddress(layoutPtr, psid);
   1077  1.57     oster 	(layoutPtr->map->IdentifyStripe) (raidPtr, sosRaidAddress, &diskids);
   1078   1.4     oster 	RF_ASSERT(diskids);
   1079   1.4     oster 
   1080   1.4     oster 	/* reject this entire parity stripe if it does not contain the
   1081   1.4     oster 	 * indicated disk or it does not contain the failed disk */
   1082  1.57     oster 
   1083   1.4     oster 	for (i = 0; i < stripeWidth; i++) {
   1084   1.4     oster 		if (col == diskids[i])
   1085   1.4     oster 			break;
   1086   1.4     oster 	}
   1087   1.4     oster 	if (i == stripeWidth)
   1088   1.4     oster 		goto skipit;
   1089   1.4     oster 	for (j = 0; j < stripeWidth; j++) {
   1090   1.4     oster 		if (fcol == diskids[j])
   1091   1.4     oster 			break;
   1092   1.4     oster 	}
   1093   1.4     oster 	if (j == stripeWidth) {
   1094   1.4     oster 		goto skipit;
   1095   1.4     oster 	}
   1096   1.4     oster 	/* find out which disk the parity is on */
   1097  1.57     oster 	(layoutPtr->map->MapParity) (raidPtr, sosRaidAddress, &pcol, &poffset, RF_DONT_REMAP);
   1098   1.4     oster 
   1099   1.4     oster 	/* find out if either the current RU or the failed RU is parity */
   1100   1.4     oster 	/* also, if the parity occurs in this stripe prior to the data and/or
   1101   1.4     oster 	 * failed col, we need to decrement i and/or j */
   1102   1.4     oster 	for (k = 0; k < stripeWidth; k++)
   1103   1.4     oster 		if (diskids[k] == pcol)
   1104   1.4     oster 			break;
   1105   1.4     oster 	RF_ASSERT(k < stripeWidth);
   1106   1.4     oster 	i_offset = i;
   1107   1.4     oster 	j_offset = j;
   1108   1.4     oster 	if (k < i)
   1109   1.4     oster 		i_offset--;
   1110   1.4     oster 	else
   1111   1.4     oster 		if (k == i) {
   1112   1.4     oster 			i_is_parity = 1;
   1113   1.4     oster 			i_offset = 0;
   1114   1.4     oster 		}		/* set offsets to zero to disable multiply
   1115   1.4     oster 				 * below */
   1116   1.4     oster 	if (k < j)
   1117   1.4     oster 		j_offset--;
   1118   1.4     oster 	else
   1119   1.4     oster 		if (k == j) {
   1120   1.4     oster 			j_is_parity = 1;
   1121   1.4     oster 			j_offset = 0;
   1122   1.4     oster 		}
   1123   1.4     oster 	/* at this point, [ij]_is_parity tells us whether the [current,failed]
   1124   1.4     oster 	 * disk is parity at the start of this RU, and, if data, "[ij]_offset"
   1125   1.4     oster 	 * tells us how far into the stripe the [current,failed] disk is. */
   1126   1.4     oster 
   1127   1.4     oster 	/* call the mapping routine to get the offset into the current disk,
   1128   1.4     oster 	 * repeat for failed disk. */
   1129   1.4     oster 	if (i_is_parity)
   1130  1.57     oster 		layoutPtr->map->MapParity(raidPtr, sosRaidAddress + i_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outDiskOffset, RF_DONT_REMAP);
   1131   1.4     oster 	else
   1132  1.57     oster 		layoutPtr->map->MapSector(raidPtr, sosRaidAddress + i_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outDiskOffset, RF_DONT_REMAP);
   1133   1.4     oster 
   1134  1.57     oster 	RF_ASSERT(col == testcol);
   1135   1.4     oster 
   1136   1.4     oster 	if (j_is_parity)
   1137  1.57     oster 		layoutPtr->map->MapParity(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outFailedDiskSectorOffset, RF_DONT_REMAP);
   1138   1.4     oster 	else
   1139  1.57     oster 		layoutPtr->map->MapSector(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, &testcol, outFailedDiskSectorOffset, RF_DONT_REMAP);
   1140  1.57     oster 	RF_ASSERT(fcol == testcol);
   1141   1.4     oster 
   1142   1.4     oster 	/* now locate the spare unit for the failed unit */
   1143  1.72     oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
   1144   1.4     oster 	if (layoutPtr->map->flags & RF_DISTRIBUTE_SPARE) {
   1145   1.4     oster 		if (j_is_parity)
   1146  1.57     oster 			layoutPtr->map->MapParity(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, spCol, spOffset, RF_REMAP);
   1147   1.4     oster 		else
   1148  1.57     oster 			layoutPtr->map->MapSector(raidPtr, sosRaidAddress + j_offset * layoutPtr->sectorsPerStripeUnit, spCol, spOffset, RF_REMAP);
   1149   1.4     oster 	} else {
   1150  1.72     oster #endif
   1151  1.57     oster 		*spCol = raidPtr->reconControl->spareCol;
   1152   1.4     oster 		*spOffset = *outFailedDiskSectorOffset;
   1153  1.72     oster #if RF_INCLUDE_PARITY_DECLUSTERING_DS > 0
   1154   1.4     oster 	}
   1155  1.72     oster #endif
   1156   1.4     oster 	return (0);
   1157   1.1     oster 
   1158   1.1     oster skipit:
   1159  1.57     oster 	Dprintf2("RECON: Skipping psid %ld: nothing needed from r%d c%d\n",
   1160  1.57     oster 	    psid, col);
   1161   1.4     oster 	return (1);
   1162   1.1     oster }
   1163   1.4     oster /* this is called when a buffer has become ready to write to the replacement disk */
   1164   1.4     oster static int
   1165  1.60     oster IssueNextWriteRequest(RF_Raid_t *raidPtr)
   1166   1.4     oster {
   1167   1.4     oster 	RF_RaidLayout_t *layoutPtr = &raidPtr->Layout;
   1168   1.4     oster 	RF_SectorCount_t sectorsPerRU = layoutPtr->sectorsPerStripeUnit * layoutPtr->SUsPerRU;
   1169  1.67     oster #if RF_ACC_TRACE > 0
   1170  1.57     oster 	RF_RowCol_t fcol = raidPtr->reconControl->fcol;
   1171  1.67     oster #endif
   1172   1.4     oster 	RF_ReconBuffer_t *rbuf;
   1173   1.4     oster 	RF_DiskQueueData_t *req;
   1174   1.4     oster 
   1175  1.57     oster 	rbuf = rf_GetFullReconBuffer(raidPtr->reconControl);
   1176   1.4     oster 	RF_ASSERT(rbuf);	/* there must be one available, or we wouldn't
   1177   1.4     oster 				 * have gotten the event that sent us here */
   1178   1.4     oster 	RF_ASSERT(rbuf->pssPtr);
   1179   1.4     oster 
   1180   1.4     oster 	rbuf->pssPtr->writeRbuf = rbuf;
   1181   1.4     oster 	rbuf->pssPtr = NULL;
   1182   1.4     oster 
   1183  1.57     oster 	Dprintf6("RECON: New write (c %d offs %d) for psid %ld ru %d (failed disk offset %ld) buf %lx\n",
   1184  1.57     oster 	    rbuf->spCol, rbuf->spOffset, rbuf->parityStripeID,
   1185   1.4     oster 	    rbuf->which_ru, rbuf->failedDiskSectorOffset, rbuf->buffer);
   1186   1.4     oster 	Dprintf6("RECON: new write psid %ld   %02x %02x %02x %02x %02x\n",
   1187   1.4     oster 	    rbuf->parityStripeID, rbuf->buffer[0] & 0xff, rbuf->buffer[1] & 0xff,
   1188   1.4     oster 	    rbuf->buffer[2] & 0xff, rbuf->buffer[3] & 0xff, rbuf->buffer[4] & 0xff);
   1189   1.4     oster 
   1190   1.4     oster 	/* should be ok to use a NULL b_proc here b/c all addrs should be in
   1191   1.4     oster 	 * kernel space */
   1192   1.4     oster 	req = rf_CreateDiskQueueData(RF_IO_TYPE_WRITE, rbuf->spOffset,
   1193   1.4     oster 	    sectorsPerRU, rbuf->buffer,
   1194   1.4     oster 	    rbuf->parityStripeID, rbuf->which_ru,
   1195   1.4     oster 	    ReconWriteDoneProc, (void *) rbuf, NULL,
   1196  1.67     oster #if RF_ACC_TRACE > 0
   1197   1.4     oster 	    &raidPtr->recon_tracerecs[fcol],
   1198  1.67     oster #else
   1199  1.67     oster 				     NULL,
   1200  1.67     oster #endif
   1201   1.4     oster 	    (void *) raidPtr, 0, NULL);
   1202   1.4     oster 
   1203   1.4     oster 	RF_ASSERT(req);		/* XXX -- fix this -- XXX */
   1204   1.1     oster 
   1205   1.4     oster 	rbuf->arg = (void *) req;
   1206  1.57     oster 	rf_DiskIOEnqueue(&raidPtr->Queues[rbuf->spCol], req, RF_IO_RECON_PRIORITY);
   1207   1.1     oster 
   1208   1.4     oster 	return (0);
   1209   1.1     oster }
   1210  1.13     oster 
   1211  1.13     oster /*
   1212  1.13     oster  * this gets called upon the completion of a reconstruction read
   1213  1.13     oster  * operation the arg is a pointer to the per-disk reconstruction
   1214  1.13     oster  * control structure for the process that just finished a read.
   1215   1.1     oster  *
   1216  1.13     oster  * called at interrupt context in the kernel, so don't do anything
   1217  1.13     oster  * illegal here.
   1218   1.1     oster  */
   1219   1.4     oster static int
   1220  1.60     oster ReconReadDoneProc(void *arg, int status)
   1221   1.4     oster {
   1222   1.4     oster 	RF_PerDiskReconCtrl_t *ctrl = (RF_PerDiskReconCtrl_t *) arg;
   1223   1.4     oster 	RF_Raid_t *raidPtr = ctrl->reconCtrl->reconDesc->raidPtr;
   1224   1.4     oster 
   1225   1.4     oster 	if (status) {
   1226  1.70     oster 		printf("raid%d: Recon read failed!\n", raidPtr->raidid);
   1227  1.70     oster 		rf_CauseReconEvent(raidPtr, ctrl->col, NULL, RF_REVENT_READ_FAILED);
   1228  1.70     oster 		return(0);
   1229   1.4     oster 	}
   1230  1.67     oster #if RF_ACC_TRACE > 0
   1231   1.4     oster 	RF_ETIMER_STOP(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
   1232   1.4     oster 	RF_ETIMER_EVAL(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
   1233   1.4     oster 	raidPtr->recon_tracerecs[ctrl->col].specific.recon.recon_fetch_to_return_us =
   1234   1.4     oster 	    RF_ETIMER_VAL_US(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
   1235   1.4     oster 	RF_ETIMER_START(raidPtr->recon_tracerecs[ctrl->col].recon_timer);
   1236  1.67     oster #endif
   1237  1.57     oster 	rf_CauseReconEvent(raidPtr, ctrl->col, NULL, RF_REVENT_READDONE);
   1238   1.4     oster 	return (0);
   1239   1.1     oster }
   1240   1.1     oster /* this gets called upon the completion of a reconstruction write operation.
   1241   1.1     oster  * the arg is a pointer to the rbuf that was just written
   1242   1.1     oster  *
   1243   1.1     oster  * called at interrupt context in the kernel, so don't do anything illegal here.
   1244   1.1     oster  */
   1245   1.4     oster static int
   1246  1.60     oster ReconWriteDoneProc(void *arg, int status)
   1247   1.4     oster {
   1248   1.4     oster 	RF_ReconBuffer_t *rbuf = (RF_ReconBuffer_t *) arg;
   1249   1.4     oster 
   1250   1.4     oster 	Dprintf2("Reconstruction completed on psid %ld ru %d\n", rbuf->parityStripeID, rbuf->which_ru);
   1251   1.4     oster 	if (status) {
   1252  1.70     oster 		printf("raid%d: Recon write failed!\n", rbuf->raidPtr->raidid);
   1253  1.71     oster 		rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, arg, RF_REVENT_WRITE_FAILED);
   1254  1.70     oster 		return(0);
   1255   1.4     oster 	}
   1256  1.71     oster 	rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, arg, RF_REVENT_WRITEDONE);
   1257   1.4     oster 	return (0);
   1258   1.1     oster }
   1259   1.1     oster 
   1260   1.1     oster 
   1261  1.13     oster /*
   1262  1.13     oster  * computes a new minimum head sep, and wakes up anyone who needs to
   1263  1.13     oster  * be woken as a result
   1264  1.13     oster  */
   1265   1.4     oster static void
   1266  1.60     oster CheckForNewMinHeadSep(RF_Raid_t *raidPtr, RF_HeadSepLimit_t hsCtr)
   1267   1.4     oster {
   1268  1.57     oster 	RF_ReconCtrl_t *reconCtrlPtr = raidPtr->reconControl;
   1269   1.4     oster 	RF_HeadSepLimit_t new_min;
   1270   1.4     oster 	RF_RowCol_t i;
   1271   1.4     oster 	RF_CallbackDesc_t *p;
   1272   1.4     oster 	RF_ASSERT(hsCtr >= reconCtrlPtr->minHeadSepCounter);	/* from the definition
   1273   1.4     oster 								 * of a minimum */
   1274   1.4     oster 
   1275   1.4     oster 
   1276   1.4     oster 	RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1277  1.76     oster 	while(reconCtrlPtr->rb_lock) {
   1278  1.76     oster 		ltsleep(&reconCtrlPtr->rb_lock, PRIBIO, "reconctlcnmhs", 0, &reconCtrlPtr->rb_mutex);
   1279  1.76     oster 	}
   1280  1.76     oster 	reconCtrlPtr->rb_lock = 1;
   1281  1.76     oster 	RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1282   1.4     oster 
   1283   1.4     oster 	new_min = ~(1L << (8 * sizeof(long) - 1));	/* 0x7FFF....FFF */
   1284   1.4     oster 	for (i = 0; i < raidPtr->numCol; i++)
   1285   1.4     oster 		if (i != reconCtrlPtr->fcol) {
   1286   1.4     oster 			if (reconCtrlPtr->perDiskInfo[i].headSepCounter < new_min)
   1287   1.4     oster 				new_min = reconCtrlPtr->perDiskInfo[i].headSepCounter;
   1288   1.4     oster 		}
   1289   1.4     oster 	/* set the new minimum and wake up anyone who can now run again */
   1290   1.4     oster 	if (new_min != reconCtrlPtr->minHeadSepCounter) {
   1291   1.4     oster 		reconCtrlPtr->minHeadSepCounter = new_min;
   1292   1.4     oster 		Dprintf1("RECON:  new min head pos counter val is %ld\n", new_min);
   1293   1.4     oster 		while (reconCtrlPtr->headSepCBList) {
   1294   1.4     oster 			if (reconCtrlPtr->headSepCBList->callbackArg.v > new_min)
   1295   1.4     oster 				break;
   1296   1.4     oster 			p = reconCtrlPtr->headSepCBList;
   1297   1.4     oster 			reconCtrlPtr->headSepCBList = p->next;
   1298   1.4     oster 			p->next = NULL;
   1299  1.57     oster 			rf_CauseReconEvent(raidPtr, p->col, NULL, RF_REVENT_HEADSEPCLEAR);
   1300   1.4     oster 			rf_FreeCallbackDesc(p);
   1301   1.4     oster 		}
   1302   1.1     oster 
   1303   1.4     oster 	}
   1304  1.76     oster 	RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1305  1.76     oster 	reconCtrlPtr->rb_lock = 0;
   1306  1.76     oster 	wakeup(&reconCtrlPtr->rb_lock);
   1307   1.4     oster 	RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1308   1.1     oster }
   1309  1.13     oster 
   1310  1.13     oster /*
   1311  1.13     oster  * checks to see that the maximum head separation will not be violated
   1312  1.13     oster  * if we initiate a reconstruction I/O on the indicated disk.
   1313  1.13     oster  * Limiting the maximum head separation between two disks eliminates
   1314  1.13     oster  * the nasty buffer-stall conditions that occur when one disk races
   1315  1.13     oster  * ahead of the others and consumes all of the floating recon buffers.
   1316  1.13     oster  * This code is complex and unpleasant but it's necessary to avoid
   1317  1.13     oster  * some very nasty, albeit fairly rare, reconstruction behavior.
   1318   1.1     oster  *
   1319  1.13     oster  * returns non-zero if and only if we have to stop working on the
   1320  1.13     oster  * indicated disk due to a head-separation delay.
   1321   1.1     oster  */
   1322   1.4     oster static int
   1323  1.60     oster CheckHeadSeparation(RF_Raid_t *raidPtr, RF_PerDiskReconCtrl_t *ctrl,
   1324  1.60     oster 		    RF_RowCol_t col, RF_HeadSepLimit_t hsCtr,
   1325  1.60     oster 		    RF_ReconUnitNum_t which_ru)
   1326   1.4     oster {
   1327  1.57     oster 	RF_ReconCtrl_t *reconCtrlPtr = raidPtr->reconControl;
   1328   1.4     oster 	RF_CallbackDesc_t *cb, *p, *pt;
   1329  1.10     oster 	int     retval = 0;
   1330   1.4     oster 
   1331   1.4     oster 	/* if we're too far ahead of the slowest disk, stop working on this
   1332   1.4     oster 	 * disk until the slower ones catch up.  We do this by scheduling a
   1333   1.4     oster 	 * wakeup callback for the time when the slowest disk has caught up.
   1334   1.4     oster 	 * We define "caught up" with 20% hysteresis, i.e. the head separation
   1335   1.4     oster 	 * must have fallen to at most 80% of the max allowable head
   1336   1.4     oster 	 * separation before we'll wake up.
   1337   1.4     oster 	 *
   1338   1.4     oster 	 */
   1339   1.4     oster 	RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1340  1.76     oster 	while(reconCtrlPtr->rb_lock) {
   1341  1.76     oster 		ltsleep(&reconCtrlPtr->rb_lock, PRIBIO, "reconctlchs", 0, &reconCtrlPtr->rb_mutex);
   1342  1.76     oster 	}
   1343  1.76     oster 	reconCtrlPtr->rb_lock = 1;
   1344  1.76     oster 	RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1345   1.4     oster 	if ((raidPtr->headSepLimit >= 0) &&
   1346   1.4     oster 	    ((ctrl->headSepCounter - reconCtrlPtr->minHeadSepCounter) > raidPtr->headSepLimit)) {
   1347  1.57     oster 		Dprintf5("raid%d: RECON: head sep stall: col %d hsCtr %ld minHSCtr %ld limit %ld\n",
   1348  1.57     oster 			 raidPtr->raidid, col, ctrl->headSepCounter,
   1349  1.10     oster 			 reconCtrlPtr->minHeadSepCounter,
   1350  1.10     oster 			 raidPtr->headSepLimit);
   1351   1.4     oster 		cb = rf_AllocCallbackDesc();
   1352   1.4     oster 		/* the minHeadSepCounter value we have to get to before we'll
   1353   1.4     oster 		 * wake up.  build in 20% hysteresis. */
   1354   1.4     oster 		cb->callbackArg.v = (ctrl->headSepCounter - raidPtr->headSepLimit + raidPtr->headSepLimit / 5);
   1355   1.4     oster 		cb->col = col;
   1356   1.4     oster 		cb->next = NULL;
   1357   1.4     oster 
   1358   1.4     oster 		/* insert this callback descriptor into the sorted list of
   1359   1.4     oster 		 * pending head-sep callbacks */
   1360   1.4     oster 		p = reconCtrlPtr->headSepCBList;
   1361   1.4     oster 		if (!p)
   1362   1.4     oster 			reconCtrlPtr->headSepCBList = cb;
   1363   1.4     oster 		else
   1364   1.4     oster 			if (cb->callbackArg.v < p->callbackArg.v) {
   1365   1.4     oster 				cb->next = reconCtrlPtr->headSepCBList;
   1366   1.4     oster 				reconCtrlPtr->headSepCBList = cb;
   1367   1.4     oster 			} else {
   1368   1.4     oster 				for (pt = p, p = p->next; p && (p->callbackArg.v < cb->callbackArg.v); pt = p, p = p->next);
   1369   1.4     oster 				cb->next = p;
   1370   1.4     oster 				pt->next = cb;
   1371   1.4     oster 			}
   1372   1.4     oster 		retval = 1;
   1373   1.1     oster #if RF_RECON_STATS > 0
   1374   1.4     oster 		ctrl->reconCtrl->reconDesc->hsStallCount++;
   1375   1.4     oster #endif				/* RF_RECON_STATS > 0 */
   1376   1.4     oster 	}
   1377  1.76     oster 	RF_LOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1378  1.76     oster 	reconCtrlPtr->rb_lock = 0;
   1379  1.76     oster 	wakeup(&reconCtrlPtr->rb_lock);
   1380   1.4     oster 	RF_UNLOCK_MUTEX(reconCtrlPtr->rb_mutex);
   1381   1.1     oster 
   1382   1.4     oster 	return (retval);
   1383   1.1     oster }
   1384  1.13     oster /*
   1385  1.13     oster  * checks to see if reconstruction has been either forced or blocked
   1386  1.13     oster  * by a user operation.  if forced, we skip this RU entirely.  else if
   1387  1.13     oster  * blocked, put ourselves on the wait list.  else return 0.
   1388   1.1     oster  *
   1389  1.13     oster  * ASSUMES THE PSS MUTEX IS LOCKED UPON ENTRY
   1390   1.1     oster  */
   1391   1.4     oster static int
   1392  1.60     oster CheckForcedOrBlockedReconstruction(RF_Raid_t *raidPtr,
   1393  1.60     oster 				   RF_ReconParityStripeStatus_t *pssPtr,
   1394  1.60     oster 				   RF_PerDiskReconCtrl_t *ctrl,
   1395  1.60     oster 				   RF_RowCol_t col, RF_StripeNum_t psid,
   1396  1.60     oster 				   RF_ReconUnitNum_t which_ru)
   1397   1.4     oster {
   1398   1.4     oster 	RF_CallbackDesc_t *cb;
   1399   1.4     oster 	int     retcode = 0;
   1400   1.4     oster 
   1401   1.4     oster 	if ((pssPtr->flags & RF_PSS_FORCED_ON_READ) || (pssPtr->flags & RF_PSS_FORCED_ON_WRITE))
   1402   1.4     oster 		retcode = RF_PSS_FORCED_ON_WRITE;
   1403   1.4     oster 	else
   1404   1.4     oster 		if (pssPtr->flags & RF_PSS_RECON_BLOCKED) {
   1405  1.57     oster 			Dprintf3("RECON: col %d blocked at psid %ld ru %d\n", col, psid, which_ru);
   1406   1.4     oster 			cb = rf_AllocCallbackDesc();	/* append ourselves to
   1407   1.4     oster 							 * the blockage-wait
   1408   1.4     oster 							 * list */
   1409   1.4     oster 			cb->col = col;
   1410   1.4     oster 			cb->next = pssPtr->blockWaitList;
   1411   1.4     oster 			pssPtr->blockWaitList = cb;
   1412   1.4     oster 			retcode = RF_PSS_RECON_BLOCKED;
   1413   1.4     oster 		}
   1414   1.4     oster 	if (!retcode)
   1415   1.4     oster 		pssPtr->flags |= RF_PSS_UNDER_RECON;	/* mark this RU as under
   1416   1.4     oster 							 * reconstruction */
   1417   1.4     oster 
   1418   1.4     oster 	return (retcode);
   1419   1.1     oster }
   1420  1.13     oster /*
   1421  1.13     oster  * if reconstruction is currently ongoing for the indicated stripeID,
   1422  1.13     oster  * reconstruction is forced to completion and we return non-zero to
   1423  1.13     oster  * indicate that the caller must wait.  If not, then reconstruction is
   1424  1.13     oster  * blocked on the indicated stripe and the routine returns zero.  If
   1425  1.13     oster  * and only if we return non-zero, we'll cause the cbFunc to get
   1426  1.13     oster  * invoked with the cbArg when the reconstruction has completed.
   1427   1.1     oster  */
   1428   1.4     oster int
   1429  1.60     oster rf_ForceOrBlockRecon(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap,
   1430  1.60     oster 		     void (*cbFunc)(RF_Raid_t *, void *), void *cbArg)
   1431   1.4     oster {
   1432   1.4     oster 	RF_StripeNum_t stripeID = asmap->stripeID;	/* the stripe ID we're
   1433   1.4     oster 							 * forcing recon on */
   1434   1.4     oster 	RF_SectorCount_t sectorsPerRU = raidPtr->Layout.sectorsPerStripeUnit * raidPtr->Layout.SUsPerRU;	/* num sects in one RU */
   1435  1.68     oster 	RF_ReconParityStripeStatus_t *pssPtr, *newpssPtr;	/* a pointer to the parity
   1436   1.4     oster 						 * stripe status structure */
   1437   1.4     oster 	RF_StripeNum_t psid;	/* parity stripe id */
   1438   1.4     oster 	RF_SectorNum_t offset, fd_offset;	/* disk offset, failed-disk
   1439   1.4     oster 						 * offset */
   1440   1.4     oster 	RF_RowCol_t *diskids;
   1441   1.4     oster 	RF_ReconUnitNum_t which_ru;	/* RU within parity stripe */
   1442   1.4     oster 	RF_RowCol_t fcol, diskno, i;
   1443   1.4     oster 	RF_ReconBuffer_t *new_rbuf;	/* ptr to newly allocated rbufs */
   1444   1.4     oster 	RF_DiskQueueData_t *req;/* disk I/O req to be enqueued */
   1445   1.4     oster 	RF_CallbackDesc_t *cb;
   1446  1.68     oster 	int     nPromoted;
   1447   1.4     oster 
   1448   1.4     oster 	psid = rf_MapStripeIDToParityStripeID(&raidPtr->Layout, stripeID, &which_ru);
   1449   1.4     oster 
   1450  1.68     oster 	/* allocate a new PSS in case we need it */
   1451  1.68     oster         newpssPtr = rf_AllocPSStatus(raidPtr);
   1452  1.68     oster 
   1453  1.57     oster 	RF_LOCK_PSS_MUTEX(raidPtr, psid);
   1454   1.4     oster 
   1455  1.68     oster 	pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_CREATE | RF_PSS_RECON_BLOCKED, newpssPtr);
   1456  1.68     oster 
   1457  1.68     oster         if (pssPtr != newpssPtr) {
   1458  1.68     oster                 rf_FreePSStatus(raidPtr, newpssPtr);
   1459  1.68     oster         }
   1460   1.4     oster 
   1461   1.4     oster 	/* if recon is not ongoing on this PS, just return */
   1462   1.4     oster 	if (!(pssPtr->flags & RF_PSS_UNDER_RECON)) {
   1463  1.57     oster 		RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
   1464   1.4     oster 		return (0);
   1465   1.4     oster 	}
   1466   1.4     oster 	/* otherwise, we have to wait for reconstruction to complete on this
   1467   1.4     oster 	 * RU. */
   1468   1.4     oster 	/* In order to avoid waiting for a potentially large number of
   1469   1.4     oster 	 * low-priority accesses to complete, we force a normal-priority (i.e.
   1470   1.4     oster 	 * not low-priority) reconstruction on this RU. */
   1471   1.4     oster 	if (!(pssPtr->flags & RF_PSS_FORCED_ON_WRITE) && !(pssPtr->flags & RF_PSS_FORCED_ON_READ)) {
   1472   1.4     oster 		DDprintf1("Forcing recon on psid %ld\n", psid);
   1473   1.4     oster 		pssPtr->flags |= RF_PSS_FORCED_ON_WRITE;	/* mark this RU as under
   1474   1.4     oster 								 * forced recon */
   1475   1.4     oster 		pssPtr->flags &= ~RF_PSS_RECON_BLOCKED;	/* clear the blockage
   1476   1.4     oster 							 * that we just set */
   1477  1.57     oster 		fcol = raidPtr->reconControl->fcol;
   1478   1.4     oster 
   1479   1.4     oster 		/* get a listing of the disks comprising the indicated stripe */
   1480  1.57     oster 		(raidPtr->Layout.map->IdentifyStripe) (raidPtr, asmap->raidAddress, &diskids);
   1481   1.4     oster 
   1482   1.4     oster 		/* For previously issued reads, elevate them to normal
   1483   1.4     oster 		 * priority.  If the I/O has already completed, it won't be
   1484   1.4     oster 		 * found in the queue, and hence this will be a no-op. For
   1485   1.4     oster 		 * unissued reads, allocate buffers and issue new reads.  The
   1486   1.4     oster 		 * fact that we've set the FORCED bit means that the regular
   1487   1.4     oster 		 * recon procs will not re-issue these reqs */
   1488   1.4     oster 		for (i = 0; i < raidPtr->Layout.numDataCol + raidPtr->Layout.numParityCol; i++)
   1489   1.4     oster 			if ((diskno = diskids[i]) != fcol) {
   1490   1.4     oster 				if (pssPtr->issued[diskno]) {
   1491  1.57     oster 					nPromoted = rf_DiskIOPromote(&raidPtr->Queues[diskno], psid, which_ru);
   1492   1.4     oster 					if (rf_reconDebug && nPromoted)
   1493  1.57     oster 						printf("raid%d: promoted read from col %d\n", raidPtr->raidid, diskno);
   1494   1.4     oster 				} else {
   1495  1.57     oster 					new_rbuf = rf_MakeReconBuffer(raidPtr, diskno, RF_RBUF_TYPE_FORCED);	/* create new buf */
   1496  1.57     oster 					ComputePSDiskOffsets(raidPtr, psid, diskno, &offset, &fd_offset,
   1497  1.57     oster 					    &new_rbuf->spCol, &new_rbuf->spOffset);	/* find offsets & spare
   1498   1.4     oster 													 * location */
   1499   1.4     oster 					new_rbuf->parityStripeID = psid;	/* fill in the buffer */
   1500   1.4     oster 					new_rbuf->which_ru = which_ru;
   1501   1.4     oster 					new_rbuf->failedDiskSectorOffset = fd_offset;
   1502   1.4     oster 					new_rbuf->priority = RF_IO_NORMAL_PRIORITY;
   1503   1.4     oster 
   1504   1.4     oster 					/* use NULL b_proc b/c all addrs
   1505   1.4     oster 					 * should be in kernel space */
   1506   1.4     oster 					req = rf_CreateDiskQueueData(RF_IO_TYPE_READ, offset + which_ru * sectorsPerRU, sectorsPerRU, new_rbuf->buffer,
   1507   1.4     oster 					    psid, which_ru, (int (*) (void *, int)) ForceReconReadDoneProc, (void *) new_rbuf, NULL,
   1508   1.4     oster 					    NULL, (void *) raidPtr, 0, NULL);
   1509   1.4     oster 
   1510   1.4     oster 					RF_ASSERT(req);	/* XXX -- fix this --
   1511   1.4     oster 							 * XXX */
   1512   1.4     oster 
   1513   1.4     oster 					new_rbuf->arg = req;
   1514  1.57     oster 					rf_DiskIOEnqueue(&raidPtr->Queues[diskno], req, RF_IO_NORMAL_PRIORITY);	/* enqueue the I/O */
   1515  1.57     oster 					Dprintf2("raid%d: Issued new read req on col %d\n", raidPtr->raidid, diskno);
   1516   1.4     oster 				}
   1517   1.4     oster 			}
   1518   1.4     oster 		/* if the write is sitting in the disk queue, elevate its
   1519   1.4     oster 		 * priority */
   1520  1.57     oster 		if (rf_DiskIOPromote(&raidPtr->Queues[fcol], psid, which_ru))
   1521  1.57     oster 			printf("raid%d: promoted write to col %d\n",
   1522  1.57     oster 			       raidPtr->raidid, fcol);
   1523   1.4     oster 	}
   1524   1.4     oster 	/* install a callback descriptor to be invoked when recon completes on
   1525   1.4     oster 	 * this parity stripe. */
   1526   1.4     oster 	cb = rf_AllocCallbackDesc();
   1527   1.4     oster 	/* XXX the following is bogus.. These functions don't really match!!
   1528   1.4     oster 	 * GO */
   1529   1.4     oster 	cb->callbackFunc = (void (*) (RF_CBParam_t)) cbFunc;
   1530   1.4     oster 	cb->callbackArg.p = (void *) cbArg;
   1531   1.4     oster 	cb->next = pssPtr->procWaitList;
   1532   1.4     oster 	pssPtr->procWaitList = cb;
   1533  1.10     oster 	DDprintf2("raid%d: Waiting for forced recon on psid %ld\n",
   1534  1.10     oster 		  raidPtr->raidid, psid);
   1535   1.4     oster 
   1536  1.57     oster 	RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
   1537   1.4     oster 	return (1);
   1538   1.1     oster }
   1539   1.1     oster /* called upon the completion of a forced reconstruction read.
   1540   1.1     oster  * all we do is schedule the FORCEDREADONE event.
   1541   1.1     oster  * called at interrupt context in the kernel, so don't do anything illegal here.
   1542   1.1     oster  */
   1543   1.4     oster static void
   1544  1.60     oster ForceReconReadDoneProc(void *arg, int status)
   1545   1.4     oster {
   1546   1.4     oster 	RF_ReconBuffer_t *rbuf = arg;
   1547   1.4     oster 
   1548   1.4     oster 	if (status) {
   1549  1.70     oster 		printf("raid%d: Forced recon read failed!\n", rbuf->raidPtr->raidid);
   1550  1.71     oster 		rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, (void *) rbuf, RF_REVENT_FORCEDREAD_FAILED);
   1551  1.79     oster 		return;
   1552   1.4     oster 	}
   1553  1.71     oster 	rf_CauseReconEvent(rbuf->raidPtr, rbuf->col, (void *) rbuf, RF_REVENT_FORCEDREADDONE);
   1554   1.1     oster }
   1555   1.1     oster /* releases a block on the reconstruction of the indicated stripe */
   1556   1.4     oster int
   1557  1.60     oster rf_UnblockRecon(RF_Raid_t *raidPtr, RF_AccessStripeMap_t *asmap)
   1558   1.4     oster {
   1559   1.4     oster 	RF_StripeNum_t stripeID = asmap->stripeID;
   1560   1.4     oster 	RF_ReconParityStripeStatus_t *pssPtr;
   1561   1.4     oster 	RF_ReconUnitNum_t which_ru;
   1562   1.4     oster 	RF_StripeNum_t psid;
   1563   1.4     oster 	RF_CallbackDesc_t *cb;
   1564   1.4     oster 
   1565   1.4     oster 	psid = rf_MapStripeIDToParityStripeID(&raidPtr->Layout, stripeID, &which_ru);
   1566  1.57     oster 	RF_LOCK_PSS_MUTEX(raidPtr, psid);
   1567  1.68     oster 	pssPtr = rf_LookupRUStatus(raidPtr, raidPtr->reconControl->pssTable, psid, which_ru, RF_PSS_NONE, NULL);
   1568   1.4     oster 
   1569   1.4     oster 	/* When recon is forced, the pss desc can get deleted before we get
   1570   1.4     oster 	 * back to unblock recon. But, this can _only_ happen when recon is
   1571   1.4     oster 	 * forced. It would be good to put some kind of sanity check here, but
   1572   1.4     oster 	 * how to decide if recon was just forced or not? */
   1573   1.4     oster 	if (!pssPtr) {
   1574   1.4     oster 		/* printf("Warning: no pss descriptor upon unblock on psid %ld
   1575   1.4     oster 		 * RU %d\n",psid,which_ru); */
   1576  1.43     oster #if (RF_DEBUG_RECON > 0) || (RF_DEBUG_PSS > 0)
   1577   1.4     oster 		if (rf_reconDebug || rf_pssDebug)
   1578   1.4     oster 			printf("Warning: no pss descriptor upon unblock on psid %ld RU %d\n", (long) psid, which_ru);
   1579  1.43     oster #endif
   1580   1.4     oster 		goto out;
   1581   1.4     oster 	}
   1582   1.4     oster 	pssPtr->blockCount--;
   1583  1.10     oster 	Dprintf3("raid%d: unblocking recon on psid %ld: blockcount is %d\n",
   1584  1.10     oster 		 raidPtr->raidid, psid, pssPtr->blockCount);
   1585   1.4     oster 	if (pssPtr->blockCount == 0) {	/* if recon blockage has been released */
   1586   1.4     oster 
   1587   1.4     oster 		/* unblock recon before calling CauseReconEvent in case
   1588   1.4     oster 		 * CauseReconEvent causes us to try to issue a new read before
   1589   1.4     oster 		 * returning here. */
   1590   1.4     oster 		pssPtr->flags &= ~RF_PSS_RECON_BLOCKED;
   1591   1.4     oster 
   1592   1.4     oster 
   1593  1.13     oster 		while (pssPtr->blockWaitList) {
   1594  1.13     oster 			/* spin through the block-wait list and
   1595  1.13     oster 			   release all the waiters */
   1596   1.4     oster 			cb = pssPtr->blockWaitList;
   1597   1.4     oster 			pssPtr->blockWaitList = cb->next;
   1598   1.4     oster 			cb->next = NULL;
   1599  1.57     oster 			rf_CauseReconEvent(raidPtr, cb->col, NULL, RF_REVENT_BLOCKCLEAR);
   1600   1.4     oster 			rf_FreeCallbackDesc(cb);
   1601   1.4     oster 		}
   1602  1.13     oster 		if (!(pssPtr->flags & RF_PSS_UNDER_RECON)) {
   1603  1.13     oster 			/* if no recon was requested while recon was blocked */
   1604  1.57     oster 			rf_PSStatusDelete(raidPtr, raidPtr->reconControl->pssTable, pssPtr);
   1605   1.4     oster 		}
   1606   1.4     oster 	}
   1607   1.1     oster out:
   1608  1.57     oster 	RF_UNLOCK_PSS_MUTEX(raidPtr, psid);
   1609   1.4     oster 	return (0);
   1610   1.1     oster }
   1611