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rf_evenodd_dagfuncs.c revision 1.2
      1  1.2  oster /*	$NetBSD: rf_evenodd_dagfuncs.c,v 1.2 1999/02/05 00:06:11 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: ChangMing Wu
      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  * Code for RAID-EVENODD  architecture.
     31  1.1  oster  */
     32  1.1  oster 
     33  1.1  oster #include "rf_types.h"
     34  1.1  oster #include "rf_raid.h"
     35  1.1  oster #include "rf_dag.h"
     36  1.1  oster #include "rf_dagffrd.h"
     37  1.1  oster #include "rf_dagffwr.h"
     38  1.1  oster #include "rf_dagdegrd.h"
     39  1.1  oster #include "rf_dagdegwr.h"
     40  1.1  oster #include "rf_dagutils.h"
     41  1.1  oster #include "rf_dagfuncs.h"
     42  1.1  oster #include "rf_threadid.h"
     43  1.1  oster #include "rf_etimer.h"
     44  1.1  oster #include "rf_general.h"
     45  1.1  oster #include "rf_configure.h"
     46  1.1  oster #include "rf_parityscan.h"
     47  1.1  oster #include "rf_sys.h"
     48  1.1  oster #include "rf_evenodd.h"
     49  1.1  oster #include "rf_evenodd_dagfuncs.h"
     50  1.1  oster 
     51  1.1  oster /* These redundant functions are for small write */
     52  1.2  oster RF_RedFuncs_t rf_EOSmallWritePFuncs = {rf_RegularXorFunc, "Regular Old-New P", rf_SimpleXorFunc, "Simple Old-New P"};
     53  1.2  oster RF_RedFuncs_t rf_EOSmallWriteEFuncs = {rf_RegularONEFunc, "Regular Old-New E", rf_SimpleONEFunc, "Regular Old-New E"};
     54  1.1  oster /* These redundant functions are for degraded read */
     55  1.2  oster RF_RedFuncs_t rf_eoPRecoveryFuncs = {rf_RecoveryXorFunc, "Recovery Xr", rf_RecoveryXorFunc, "Recovery Xr"};
     56  1.2  oster RF_RedFuncs_t rf_eoERecoveryFuncs = {rf_RecoveryEFunc, "Recovery E Func", rf_RecoveryEFunc, "Recovery E Func"};
     57  1.1  oster /**********************************************************************************************
     58  1.2  oster  *   the following encoding node functions is used in  EO_000_CreateLargeWriteDAG
     59  1.1  oster  **********************************************************************************************/
     60  1.2  oster int
     61  1.2  oster rf_RegularPEFunc(node)
     62  1.2  oster 	RF_DagNode_t *node;
     63  1.1  oster {
     64  1.2  oster 	rf_RegularESubroutine(node, node->results[1]);
     65  1.2  oster 	rf_RegularXorFunc(node);/* does the wakeup here! */
     66  1.1  oster #if 1
     67  1.2  oster 	return (0);		/* XXX This was missing... GO */
     68  1.1  oster #endif
     69  1.1  oster }
     70  1.1  oster 
     71  1.1  oster 
     72  1.1  oster /************************************************************************************************
     73  1.1  oster  *  For EO_001_CreateSmallWriteDAG, there are (i)RegularONEFunc() and (ii)SimpleONEFunc() to
     74  1.1  oster  *  be used. The previous case is when write access at least sectors of full stripe unit.
     75  1.1  oster  *  The later function is used when the write access two stripe units but with total sectors
     76  1.1  oster  *  less than sectors per SU. In this case, the access of parity and 'E' are shown as disconnected
     77  1.1  oster  *  areas in their stripe unit and  parity write and 'E' write are both devided into two distinct
     78  1.1  oster  *  writes( totally four). This simple old-new write and regular old-new write happen as in RAID-5
     79  1.1  oster  ************************************************************************************************/
     80  1.1  oster 
     81  1.2  oster /* Algorithm:
     82  1.1  oster      1. Store the difference of old data and new data in the Rod buffer.
     83  1.2  oster      2. then encode this buffer into the buffer which already have old 'E' information inside it,
     84  1.1  oster 	the result can be shown to be the new 'E' information.
     85  1.1  oster      3. xor the Wnd buffer into the difference buffer to recover the  original old data.
     86  1.2  oster    Here we have another alternative: to allocate a temporary buffer for storing the difference of
     87  1.2  oster    old data and new data, then encode temp buf into old 'E' buf to form new 'E', but this approach
     88  1.1  oster    take the same speed as the previous, and need more memory.
     89  1.1  oster */
     90  1.2  oster int
     91  1.2  oster rf_RegularONEFunc(node)
     92  1.2  oster 	RF_DagNode_t *node;
     93  1.2  oster {
     94  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[node->numParams - 1].p;
     95  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & raidPtr->Layout;
     96  1.2  oster 	int     EpdaIndex = (node->numParams - 1) / 2 - 1;	/* the parameter of node
     97  1.2  oster 								 * where you can find
     98  1.2  oster 								 * e-pda */
     99  1.2  oster 	int     i, k, retcode = 0;
    100  1.2  oster 	int     suoffset, length;
    101  1.2  oster 	RF_RowCol_t scol;
    102  1.2  oster 	char   *srcbuf, *destbuf;
    103  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    104  1.2  oster 	RF_Etimer_t timer;
    105  1.2  oster 	RF_PhysDiskAddr_t *pda, *EPDA = (RF_PhysDiskAddr_t *) node->params[EpdaIndex].p;
    106  1.2  oster 	int     ESUOffset = rf_StripeUnitOffset(layoutPtr, EPDA->startSector);	/* generally zero  */
    107  1.2  oster 
    108  1.2  oster 	RF_ASSERT(EPDA->type == RF_PDA_TYPE_Q);
    109  1.2  oster 	RF_ASSERT(ESUOffset == 0);
    110  1.2  oster 
    111  1.2  oster 	RF_ETIMER_START(timer);
    112  1.2  oster 
    113  1.2  oster 	/* Xor the Wnd buffer into Rod buffer, the difference of old data and
    114  1.2  oster 	 * new data is stored in Rod buffer */
    115  1.2  oster 	for (k = 0; k < EpdaIndex; k += 2) {
    116  1.2  oster 		length = rf_RaidAddressToByte(raidPtr, ((RF_PhysDiskAddr_t *) node->params[k].p)->numSector);
    117  1.2  oster 		retcode = rf_bxor(node->params[k + EpdaIndex + 3].p, node->params[k + 1].p, length, node->dagHdr->bp);
    118  1.2  oster 	}
    119  1.2  oster 	/* Start to encoding the buffer storing the difference of old data and
    120  1.2  oster 	 * new data into 'E' buffer  */
    121  1.2  oster 	for (i = 0; i < EpdaIndex; i += 2)
    122  1.2  oster 		if (node->params[i + 1].p != node->results[0]) {	/* results[0] is buf ptr
    123  1.2  oster 									 * of E */
    124  1.2  oster 			pda = (RF_PhysDiskAddr_t *) node->params[i].p;
    125  1.2  oster 			srcbuf = (char *) node->params[i + 1].p;
    126  1.2  oster 			scol = rf_EUCol(layoutPtr, pda->raidAddress);
    127  1.2  oster 			suoffset = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    128  1.2  oster 			destbuf = ((char *) node->results[0]) + rf_RaidAddressToByte(raidPtr, suoffset);
    129  1.2  oster 			rf_e_encToBuf(raidPtr, scol, srcbuf, RF_EO_MATRIX_DIM - 2, destbuf, pda->numSector);
    130  1.2  oster 		}
    131  1.2  oster 	/* Recover the original old data to be used by parity encoding
    132  1.2  oster 	 * function in XorNode */
    133  1.2  oster 	for (k = 0; k < EpdaIndex; k += 2) {
    134  1.2  oster 		length = rf_RaidAddressToByte(raidPtr, ((RF_PhysDiskAddr_t *) node->params[k].p)->numSector);
    135  1.2  oster 		retcode = rf_bxor(node->params[k + EpdaIndex + 3].p, node->params[k + 1].p, length, node->dagHdr->bp);
    136  1.2  oster 	}
    137  1.2  oster 	RF_ETIMER_STOP(timer);
    138  1.2  oster 	RF_ETIMER_EVAL(timer);
    139  1.2  oster 	tracerec->q_us += RF_ETIMER_VAL_US(timer);
    140  1.2  oster 	rf_GenericWakeupFunc(node, 0);
    141  1.1  oster #if 1
    142  1.2  oster 	return (0);		/* XXX this was missing.. GO */
    143  1.1  oster #endif
    144  1.1  oster }
    145  1.1  oster 
    146  1.2  oster int
    147  1.2  oster rf_SimpleONEFunc(node)
    148  1.2  oster 	RF_DagNode_t *node;
    149  1.2  oster {
    150  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[node->numParams - 1].p;
    151  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & raidPtr->Layout;
    152  1.2  oster 	RF_PhysDiskAddr_t *pda = (RF_PhysDiskAddr_t *) node->params[0].p;
    153  1.2  oster 	int     retcode = 0;
    154  1.2  oster 	char   *srcbuf, *destbuf;
    155  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    156  1.2  oster 	int     length;
    157  1.2  oster 	RF_RowCol_t scol;
    158  1.2  oster 	RF_Etimer_t timer;
    159  1.2  oster 
    160  1.2  oster 	RF_ASSERT(((RF_PhysDiskAddr_t *) node->params[2].p)->type == RF_PDA_TYPE_Q);
    161  1.2  oster 	if (node->dagHdr->status == rf_enable) {
    162  1.2  oster 		RF_ETIMER_START(timer);
    163  1.2  oster 		length = rf_RaidAddressToByte(raidPtr, ((RF_PhysDiskAddr_t *) node->params[4].p)->numSector);	/* this is a pda of
    164  1.2  oster 														 * writeDataNodes */
    165  1.2  oster 		/* bxor to buffer of readDataNodes */
    166  1.2  oster 		retcode = rf_bxor(node->params[5].p, node->params[1].p, length, node->dagHdr->bp);
    167  1.2  oster 		/* find out the corresponding colume in encoding matrix for
    168  1.2  oster 		 * write colume to be encoded into redundant disk 'E' */
    169  1.2  oster 		scol = rf_EUCol(layoutPtr, pda->raidAddress);
    170  1.2  oster 		srcbuf = node->params[1].p;
    171  1.2  oster 		destbuf = node->params[3].p;
    172  1.2  oster 		/* Start encoding process */
    173  1.2  oster 		rf_e_encToBuf(raidPtr, scol, srcbuf, RF_EO_MATRIX_DIM - 2, destbuf, pda->numSector);
    174  1.2  oster 		rf_bxor(node->params[5].p, node->params[1].p, length, node->dagHdr->bp);
    175  1.2  oster 		RF_ETIMER_STOP(timer);
    176  1.2  oster 		RF_ETIMER_EVAL(timer);
    177  1.2  oster 		tracerec->q_us += RF_ETIMER_VAL_US(timer);
    178  1.2  oster 
    179  1.2  oster 	}
    180  1.2  oster 	return (rf_GenericWakeupFunc(node, retcode));	/* call wake func
    181  1.2  oster 							 * explicitly since no
    182  1.2  oster 							 * I/O in this node */
    183  1.1  oster }
    184  1.1  oster 
    185  1.1  oster 
    186  1.1  oster /****** called by rf_RegularPEFunc(node) and rf_RegularEFunc(node) in f.f. large write  ********/
    187  1.2  oster void
    188  1.2  oster rf_RegularESubroutine(node, ebuf)
    189  1.2  oster 	RF_DagNode_t *node;
    190  1.2  oster 	char   *ebuf;
    191  1.2  oster {
    192  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[node->numParams - 1].p;
    193  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & raidPtr->Layout;
    194  1.2  oster 	RF_PhysDiskAddr_t *pda;
    195  1.2  oster 	int     i, suoffset;
    196  1.2  oster 	RF_RowCol_t scol;
    197  1.2  oster 	char   *srcbuf, *destbuf;
    198  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    199  1.2  oster 	RF_Etimer_t timer;
    200  1.2  oster 
    201  1.2  oster 	RF_ETIMER_START(timer);
    202  1.2  oster 	for (i = 0; i < node->numParams - 2; i += 2) {
    203  1.2  oster 		RF_ASSERT(node->params[i + 1].p != ebuf);
    204  1.2  oster 		pda = (RF_PhysDiskAddr_t *) node->params[i].p;
    205  1.2  oster 		suoffset = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    206  1.2  oster 		scol = rf_EUCol(layoutPtr, pda->raidAddress);
    207  1.2  oster 		srcbuf = (char *) node->params[i + 1].p;
    208  1.2  oster 		destbuf = ebuf + rf_RaidAddressToByte(raidPtr, suoffset);
    209  1.2  oster 		rf_e_encToBuf(raidPtr, scol, srcbuf, RF_EO_MATRIX_DIM - 2, destbuf, pda->numSector);
    210  1.2  oster 	}
    211  1.2  oster 	RF_ETIMER_STOP(timer);
    212  1.2  oster 	RF_ETIMER_EVAL(timer);
    213  1.2  oster 	tracerec->xor_us += RF_ETIMER_VAL_US(timer);
    214  1.1  oster }
    215  1.1  oster 
    216  1.1  oster 
    217  1.1  oster /*******************************************************************************************
    218  1.2  oster  *			 Used in  EO_001_CreateLargeWriteDAG
    219  1.1  oster  ******************************************************************************************/
    220  1.2  oster int
    221  1.2  oster rf_RegularEFunc(node)
    222  1.2  oster 	RF_DagNode_t *node;
    223  1.1  oster {
    224  1.2  oster 	rf_RegularESubroutine(node, node->results[0]);
    225  1.2  oster 	rf_GenericWakeupFunc(node, 0);
    226  1.1  oster #if 1
    227  1.2  oster 	return (0);		/* XXX this was missing?.. GO */
    228  1.1  oster #endif
    229  1.1  oster }
    230  1.1  oster /*******************************************************************************************
    231  1.2  oster  * This degraded function allow only two case:
    232  1.2  oster  *  1. when write access the full failed stripe unit, then the access can be more than
    233  1.1  oster  *     one tripe units.
    234  1.2  oster  *  2. when write access only part of the failed SU, we assume accesses of more than
    235  1.2  oster  *     one stripe unit is not allowed so that the write can be dealt with like a
    236  1.2  oster  *     large write.
    237  1.2  oster  *  The following function is based on these assumptions. So except in the second case,
    238  1.1  oster  *  it looks the same as a large write encodeing function. But this is not exactly the
    239  1.2  oster  *  normal way for doing a degraded write, since raidframe have to break cases of access
    240  1.2  oster  *  other than the above two into smaller accesses. We may have to change
    241  1.2  oster  *  DegrESubroutin in the future.
    242  1.1  oster  *******************************************************************************************/
    243  1.2  oster void
    244  1.2  oster rf_DegrESubroutine(node, ebuf)
    245  1.2  oster 	RF_DagNode_t *node;
    246  1.2  oster 	char   *ebuf;
    247  1.2  oster {
    248  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[node->numParams - 1].p;
    249  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & raidPtr->Layout;
    250  1.2  oster 	RF_PhysDiskAddr_t *failedPDA = (RF_PhysDiskAddr_t *) node->params[node->numParams - 2].p;
    251  1.2  oster 	RF_PhysDiskAddr_t *pda;
    252  1.2  oster 	int     i, suoffset, failedSUOffset = rf_StripeUnitOffset(layoutPtr, failedPDA->startSector);
    253  1.2  oster 	RF_RowCol_t scol;
    254  1.2  oster 	char   *srcbuf, *destbuf;
    255  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    256  1.2  oster 	RF_Etimer_t timer;
    257  1.2  oster 
    258  1.2  oster 	RF_ETIMER_START(timer);
    259  1.2  oster 	for (i = 0; i < node->numParams - 2; i += 2) {
    260  1.2  oster 		RF_ASSERT(node->params[i + 1].p != ebuf);
    261  1.2  oster 		pda = (RF_PhysDiskAddr_t *) node->params[i].p;
    262  1.2  oster 		suoffset = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    263  1.2  oster 		scol = rf_EUCol(layoutPtr, pda->raidAddress);
    264  1.2  oster 		srcbuf = (char *) node->params[i + 1].p;
    265  1.2  oster 		destbuf = ebuf + rf_RaidAddressToByte(raidPtr, suoffset - failedSUOffset);
    266  1.2  oster 		rf_e_encToBuf(raidPtr, scol, srcbuf, RF_EO_MATRIX_DIM - 2, destbuf, pda->numSector);
    267  1.2  oster 	}
    268  1.2  oster 
    269  1.2  oster 	RF_ETIMER_STOP(timer);
    270  1.2  oster 	RF_ETIMER_EVAL(timer);
    271  1.2  oster 	tracerec->q_us += RF_ETIMER_VAL_US(timer);
    272  1.1  oster }
    273  1.1  oster 
    274  1.1  oster 
    275  1.1  oster /**************************************************************************************
    276  1.2  oster  * This function is used in case where one data disk failed and both redundant disks
    277  1.1  oster  * alive. It is used in the EO_100_CreateWriteDAG. Note: if there is another disk
    278  1.1  oster  * failed in the stripe but not accessed at this time, then we should, instead, use
    279  1.1  oster  * the rf_EOWriteDoubleRecoveryFunc().
    280  1.1  oster  **************************************************************************************/
    281  1.2  oster int
    282  1.2  oster rf_Degraded_100_EOFunc(node)
    283  1.2  oster 	RF_DagNode_t *node;
    284  1.1  oster {
    285  1.2  oster 	rf_DegrESubroutine(node, node->results[1]);
    286  1.2  oster 	rf_RecoveryXorFunc(node);	/* does the wakeup here! */
    287  1.1  oster #if 1
    288  1.2  oster 	return (0);		/* XXX this was missing... SHould these be
    289  1.2  oster 				 * void functions??? GO */
    290  1.1  oster #endif
    291  1.1  oster }
    292  1.1  oster /**************************************************************************************
    293  1.1  oster  * This function is to encode one sector in one of the data disks to the E disk.
    294  1.2  oster  * However, in evenodd this function can also be used as decoding function to recover
    295  1.1  oster  * data from dead disk in the case of parity failure and a single data failure.
    296  1.1  oster  **************************************************************************************/
    297  1.2  oster void
    298  1.2  oster rf_e_EncOneSect(
    299  1.2  oster     RF_RowCol_t srcLogicCol,
    300  1.2  oster     char *srcSecbuf,
    301  1.2  oster     RF_RowCol_t destLogicCol,
    302  1.2  oster     char *destSecbuf,
    303  1.2  oster     int bytesPerSector)
    304  1.1  oster {
    305  1.2  oster 	int     S_index;	/* index of the EU in the src col which need
    306  1.2  oster 				 * be Xored into all EUs in a dest sector */
    307  1.2  oster 	int     numRowInEncMatix = (RF_EO_MATRIX_DIM) - 1;
    308  1.2  oster 	RF_RowCol_t j, indexInDest,	/* row index of an encoding unit in
    309  1.2  oster 					 * the destination colume of encoding
    310  1.2  oster 					 * matrix */
    311  1.2  oster 	        indexInSrc;	/* row index of an encoding unit in the source
    312  1.2  oster 				 * colume used for recovery */
    313  1.2  oster 	int     bytesPerEU = bytesPerSector / numRowInEncMatix;
    314  1.1  oster 
    315  1.1  oster #if RF_EO_MATRIX_DIM > 17
    316  1.2  oster 	int     shortsPerEU = bytesPerEU / sizeof(short);
    317  1.2  oster 	short  *destShortBuf, *srcShortBuf1, *srcShortBuf2;
    318  1.2  oster 	register short temp1;
    319  1.1  oster #elif RF_EO_MATRIX_DIM == 17
    320  1.2  oster 	int     longsPerEU = bytesPerEU / sizeof(long);
    321  1.2  oster 	long   *destLongBuf, *srcLongBuf1, *srcLongBuf2;
    322  1.2  oster 	register long temp1;
    323  1.1  oster #endif
    324  1.1  oster 
    325  1.1  oster #if RF_EO_MATRIX_DIM > 17
    326  1.2  oster 	RF_ASSERT(sizeof(short) == 2 || sizeof(short) == 1);
    327  1.2  oster 	RF_ASSERT(bytesPerEU % sizeof(short) == 0);
    328  1.1  oster #elif RF_EO_MATRIX_DIM == 17
    329  1.2  oster 	RF_ASSERT(sizeof(long) == 8 || sizeof(long) == 4);
    330  1.2  oster 	RF_ASSERT(bytesPerEU % sizeof(long) == 0);
    331  1.1  oster #endif
    332  1.1  oster 
    333  1.2  oster 	S_index = rf_EO_Mod((RF_EO_MATRIX_DIM - 1 + destLogicCol - srcLogicCol), RF_EO_MATRIX_DIM);
    334  1.1  oster #if RF_EO_MATRIX_DIM > 17
    335  1.2  oster 	srcShortBuf1 = (short *) (srcSecbuf + S_index * bytesPerEU);
    336  1.1  oster #elif RF_EO_MATRIX_DIM == 17
    337  1.2  oster 	srcLongBuf1 = (long *) (srcSecbuf + S_index * bytesPerEU);
    338  1.1  oster #endif
    339  1.1  oster 
    340  1.2  oster 	for (indexInDest = 0; indexInDest < numRowInEncMatix; indexInDest++) {
    341  1.2  oster 		indexInSrc = rf_EO_Mod((indexInDest + destLogicCol - srcLogicCol), RF_EO_MATRIX_DIM);
    342  1.1  oster 
    343  1.1  oster #if RF_EO_MATRIX_DIM > 17
    344  1.2  oster 		destShortBuf = (short *) (destSecbuf + indexInDest * bytesPerEU);
    345  1.2  oster 		srcShortBuf2 = (short *) (srcSecbuf + indexInSrc * bytesPerEU);
    346  1.2  oster 		for (j = 0; j < shortsPerEU; j++) {
    347  1.2  oster 			temp1 = destShortBuf[j] ^ srcShortBuf1[j];
    348  1.2  oster 			/* note: S_index won't be at the end row for any src
    349  1.2  oster 			 * col! */
    350  1.2  oster 			if (indexInSrc != RF_EO_MATRIX_DIM - 1)
    351  1.2  oster 				destShortBuf[j] = (srcShortBuf2[j]) ^ temp1;
    352  1.2  oster 			/* if indexInSrc is at the end row, ie.
    353  1.2  oster 			 * RF_EO_MATRIX_DIM -1, then all elements are zero! */
    354  1.2  oster 			else
    355  1.2  oster 				destShortBuf[j] = temp1;
    356  1.2  oster 		}
    357  1.1  oster 
    358  1.1  oster #elif RF_EO_MATRIX_DIM == 17
    359  1.2  oster 		destLongBuf = (long *) (destSecbuf + indexInDest * bytesPerEU);
    360  1.2  oster 		srcLongBuf2 = (long *) (srcSecbuf + indexInSrc * bytesPerEU);
    361  1.2  oster 		for (j = 0; j < longsPerEU; j++) {
    362  1.2  oster 			temp1 = destLongBuf[j] ^ srcLongBuf1[j];
    363  1.2  oster 			if (indexInSrc != RF_EO_MATRIX_DIM - 1)
    364  1.2  oster 				destLongBuf[j] = (srcLongBuf2[j]) ^ temp1;
    365  1.2  oster 			else
    366  1.2  oster 				destLongBuf[j] = temp1;
    367  1.2  oster 		}
    368  1.1  oster #endif
    369  1.2  oster 	}
    370  1.1  oster }
    371  1.1  oster 
    372  1.2  oster void
    373  1.2  oster rf_e_encToBuf(
    374  1.2  oster     RF_Raid_t * raidPtr,
    375  1.2  oster     RF_RowCol_t srcLogicCol,
    376  1.2  oster     char *srcbuf,
    377  1.2  oster     RF_RowCol_t destLogicCol,
    378  1.2  oster     char *destbuf,
    379  1.2  oster     int numSector)
    380  1.1  oster {
    381  1.2  oster 	int     i, bytesPerSector = rf_RaidAddressToByte(raidPtr, 1);
    382  1.1  oster 
    383  1.2  oster 	for (i = 0; i < numSector; i++) {
    384  1.2  oster 		rf_e_EncOneSect(srcLogicCol, srcbuf, destLogicCol, destbuf, bytesPerSector);
    385  1.2  oster 		srcbuf += bytesPerSector;
    386  1.2  oster 		destbuf += bytesPerSector;
    387  1.2  oster 	}
    388  1.1  oster }
    389  1.2  oster /**************************************************************************************
    390  1.2  oster  * when parity die and one data die, We use second redundant information, 'E',
    391  1.2  oster  * to recover the data in dead disk. This function is used in the recovery node of
    392  1.2  oster  * for EO_110_CreateReadDAG
    393  1.1  oster  **************************************************************************************/
    394  1.2  oster int
    395  1.2  oster rf_RecoveryEFunc(node)
    396  1.2  oster 	RF_DagNode_t *node;
    397  1.2  oster {
    398  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[node->numParams - 1].p;
    399  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & raidPtr->Layout;
    400  1.2  oster 	RF_PhysDiskAddr_t *failedPDA = (RF_PhysDiskAddr_t *) node->params[node->numParams - 2].p;
    401  1.2  oster 	RF_RowCol_t scol,	/* source logical column */
    402  1.2  oster 	        fcol = rf_EUCol(layoutPtr, failedPDA->raidAddress);	/* logical column of
    403  1.2  oster 									 * failed SU */
    404  1.2  oster 	int     i;
    405  1.2  oster 	RF_PhysDiskAddr_t *pda;
    406  1.2  oster 	int     suoffset, failedSUOffset = rf_StripeUnitOffset(layoutPtr, failedPDA->startSector);
    407  1.2  oster 	char   *srcbuf, *destbuf;
    408  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    409  1.2  oster 	RF_Etimer_t timer;
    410  1.2  oster 
    411  1.2  oster 	bzero((char *) node->results[0], rf_RaidAddressToByte(raidPtr, failedPDA->numSector));
    412  1.2  oster 	if (node->dagHdr->status == rf_enable) {
    413  1.2  oster 		RF_ETIMER_START(timer);
    414  1.2  oster 		for (i = 0; i < node->numParams - 2; i += 2)
    415  1.2  oster 			if (node->params[i + 1].p != node->results[0]) {
    416  1.2  oster 				pda = (RF_PhysDiskAddr_t *) node->params[i].p;
    417  1.2  oster 				if (i == node->numParams - 4)
    418  1.2  oster 					scol = RF_EO_MATRIX_DIM - 2;	/* the colume of
    419  1.2  oster 									 * redundant E */
    420  1.2  oster 				else
    421  1.2  oster 					scol = rf_EUCol(layoutPtr, pda->raidAddress);
    422  1.2  oster 				srcbuf = (char *) node->params[i + 1].p;
    423  1.2  oster 				suoffset = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    424  1.2  oster 				destbuf = ((char *) node->results[0]) + rf_RaidAddressToByte(raidPtr, suoffset - failedSUOffset);
    425  1.2  oster 				rf_e_encToBuf(raidPtr, scol, srcbuf, fcol, destbuf, pda->numSector);
    426  1.2  oster 			}
    427  1.2  oster 		RF_ETIMER_STOP(timer);
    428  1.2  oster 		RF_ETIMER_EVAL(timer);
    429  1.2  oster 		tracerec->xor_us += RF_ETIMER_VAL_US(timer);
    430  1.2  oster 	}
    431  1.2  oster 	return (rf_GenericWakeupFunc(node, 0));	/* node execute successfully */
    432  1.1  oster }
    433  1.1  oster /**************************************************************************************
    434  1.1  oster  * This function is used in the case where one data and the parity have filed.
    435  1.1  oster  * (in EO_110_CreateWriteDAG )
    436  1.1  oster  **************************************************************************************/
    437  1.2  oster int
    438  1.2  oster rf_EO_DegradedWriteEFunc(RF_DagNode_t * node)
    439  1.1  oster {
    440  1.2  oster 	rf_DegrESubroutine(node, node->results[0]);
    441  1.2  oster 	rf_GenericWakeupFunc(node, 0);
    442  1.1  oster #if 1
    443  1.2  oster 	return (0);		/* XXX Yet another one!! GO */
    444  1.1  oster #endif
    445  1.1  oster }
    446  1.1  oster 
    447  1.1  oster 
    448  1.2  oster 
    449  1.1  oster /**************************************************************************************
    450  1.1  oster  *  		THE FUNCTION IS FOR DOUBLE DEGRADED READ AND WRITE CASES
    451  1.1  oster  **************************************************************************************/
    452  1.1  oster 
    453  1.2  oster void
    454  1.2  oster rf_doubleEOdecode(
    455  1.2  oster     RF_Raid_t * raidPtr,
    456  1.2  oster     char **rrdbuf,
    457  1.2  oster     char **dest,
    458  1.2  oster     RF_RowCol_t * fcol,
    459  1.2  oster     char *pbuf,
    460  1.2  oster     char *ebuf)
    461  1.2  oster {
    462  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & (raidPtr->Layout);
    463  1.2  oster 	int     i, j, k, f1, f2, row;
    464  1.2  oster 	int     rrdrow, erow, count = 0;
    465  1.2  oster 	int     bytesPerSector = rf_RaidAddressToByte(raidPtr, 1);
    466  1.2  oster 	int     numRowInEncMatix = (RF_EO_MATRIX_DIM) - 1;
    467  1.1  oster #if 0
    468  1.2  oster 	int     pcol = (RF_EO_MATRIX_DIM) - 1;
    469  1.1  oster #endif
    470  1.2  oster 	int     ecol = (RF_EO_MATRIX_DIM) - 2;
    471  1.2  oster 	int     bytesPerEU = bytesPerSector / numRowInEncMatix;
    472  1.2  oster 	int     numDataCol = layoutPtr->numDataCol;
    473  1.2  oster #if RF_EO_MATRIX_DIM > 17
    474  1.2  oster 	int     shortsPerEU = bytesPerEU / sizeof(short);
    475  1.2  oster 	short  *rrdbuf_current, *pbuf_current, *ebuf_current;
    476  1.2  oster 	short  *dest_smaller, *dest_smaller_current, *dest_larger, *dest_larger_current;
    477  1.2  oster 	register short *temp;
    478  1.2  oster 	short  *P;
    479  1.2  oster 
    480  1.2  oster 	RF_ASSERT(bytesPerEU % sizeof(short) == 0);
    481  1.2  oster 	RF_Malloc(P, bytesPerEU, (short *));
    482  1.2  oster 	RF_Malloc(temp, bytesPerEU, (short *));
    483  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    484  1.2  oster 	int     longsPerEU = bytesPerEU / sizeof(long);
    485  1.2  oster 	long   *rrdbuf_current, *pbuf_current, *ebuf_current;
    486  1.2  oster 	long   *dest_smaller, *dest_smaller_current, *dest_larger, *dest_larger_current;
    487  1.2  oster 	register long *temp;
    488  1.2  oster 	long   *P;
    489  1.2  oster 
    490  1.2  oster 	RF_ASSERT(bytesPerEU % sizeof(long) == 0);
    491  1.2  oster 	RF_Malloc(P, bytesPerEU, (long *));
    492  1.2  oster 	RF_Malloc(temp, bytesPerEU, (long *));
    493  1.2  oster #endif
    494  1.2  oster 	RF_ASSERT(*((long *) dest[0]) == 0);
    495  1.2  oster 	RF_ASSERT(*((long *) dest[1]) == 0);
    496  1.2  oster 	bzero((char *) P, bytesPerEU);
    497  1.2  oster 	bzero((char *) temp, bytesPerEU);
    498  1.2  oster 	RF_ASSERT(*P == 0);
    499  1.2  oster 	/* calculate the 'P' parameter, which, not parity, is the Xor of all
    500  1.2  oster 	 * elements in the last two column, ie. 'E' and 'parity' colume, see
    501  1.2  oster 	 * the Ref. paper by Blaum, et al 1993  */
    502  1.2  oster 	for (i = 0; i < numRowInEncMatix; i++)
    503  1.2  oster 		for (k = 0; k < longsPerEU; k++) {
    504  1.2  oster #if RF_EO_MATRIX_DIM > 17
    505  1.2  oster 			ebuf_current = ((short *) ebuf) + i * shortsPerEU + k;
    506  1.2  oster 			pbuf_current = ((short *) pbuf) + i * shortsPerEU + k;
    507  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    508  1.2  oster 			ebuf_current = ((long *) ebuf) + i * longsPerEU + k;
    509  1.2  oster 			pbuf_current = ((long *) pbuf) + i * longsPerEU + k;
    510  1.2  oster #endif
    511  1.2  oster 			P[k] ^= *ebuf_current;
    512  1.2  oster 			P[k] ^= *pbuf_current;
    513  1.2  oster 		}
    514  1.2  oster 	RF_ASSERT(fcol[0] != fcol[1]);
    515  1.2  oster 	if (fcol[0] < fcol[1]) {
    516  1.2  oster #if RF_EO_MATRIX_DIM > 17
    517  1.2  oster 		dest_smaller = (short *) (dest[0]);
    518  1.2  oster 		dest_larger = (short *) (dest[1]);
    519  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    520  1.2  oster 		dest_smaller = (long *) (dest[0]);
    521  1.2  oster 		dest_larger = (long *) (dest[1]);
    522  1.2  oster #endif
    523  1.2  oster 		f1 = fcol[0];
    524  1.2  oster 		f2 = fcol[1];
    525  1.2  oster 	} else {
    526  1.2  oster #if RF_EO_MATRIX_DIM > 17
    527  1.2  oster 		dest_smaller = (short *) (dest[1]);
    528  1.2  oster 		dest_larger = (short *) (dest[0]);
    529  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    530  1.2  oster 		dest_smaller = (long *) (dest[1]);
    531  1.2  oster 		dest_larger = (long *) (dest[0]);
    532  1.2  oster #endif
    533  1.2  oster 		f1 = fcol[1];
    534  1.2  oster 		f2 = fcol[0];
    535  1.2  oster 	}
    536  1.2  oster 	row = (RF_EO_MATRIX_DIM) - 1;
    537  1.2  oster 	while ((row = rf_EO_Mod((row + f1 - f2), RF_EO_MATRIX_DIM)) != ((RF_EO_MATRIX_DIM) - 1)) {
    538  1.2  oster #if RF_EO_MATRIX_DIM > 17
    539  1.2  oster 		dest_larger_current = dest_larger + row * shortsPerEU;
    540  1.2  oster 		dest_smaller_current = dest_smaller + row * shortsPerEU;
    541  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    542  1.2  oster 		dest_larger_current = dest_larger + row * longsPerEU;
    543  1.2  oster 		dest_smaller_current = dest_smaller + row * longsPerEU;
    544  1.2  oster #endif
    545  1.2  oster 		/**    Do the diagonal recovery. Initially, temp[k] = (failed 1),
    546  1.2  oster 		       which is the failed data in the colume which has smaller col index. **/
    547  1.2  oster 		/* step 1:  ^(SUM of nonfailed in-diagonal A(rrdrow,0..m-3))         */
    548  1.2  oster 		for (j = 0; j < numDataCol; j++) {
    549  1.2  oster 			if (j == f1 || j == f2)
    550  1.2  oster 				continue;
    551  1.2  oster 			rrdrow = rf_EO_Mod((row + f2 - j), RF_EO_MATRIX_DIM);
    552  1.2  oster 			if (rrdrow != (RF_EO_MATRIX_DIM) - 1) {
    553  1.2  oster #if RF_EO_MATRIX_DIM > 17
    554  1.2  oster 				rrdbuf_current = (short *) (rrdbuf[j]) + rrdrow * shortsPerEU;
    555  1.2  oster 				for (k = 0; k < shortsPerEU; k++)
    556  1.2  oster 					temp[k] ^= *(rrdbuf_current + k);
    557  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    558  1.2  oster 				rrdbuf_current = (long *) (rrdbuf[j]) + rrdrow * longsPerEU;
    559  1.2  oster 				for (k = 0; k < longsPerEU; k++)
    560  1.2  oster 					temp[k] ^= *(rrdbuf_current + k);
    561  1.2  oster #endif
    562  1.2  oster 			}
    563  1.2  oster 		}
    564  1.2  oster 		/* step 2:  ^E(erow,m-2), If erow is at the buttom row, don't
    565  1.2  oster 		 * Xor into it  E(erow,m-2) = (principle diagonal) ^ (failed
    566  1.2  oster 		 * 1) ^ (failed 2) ^ ( SUM of nonfailed in-diagonal
    567  1.2  oster 		 * A(rrdrow,0..m-3) ) After this step, temp[k] = (principle
    568  1.2  oster 		 * diagonal) ^ (failed 2)       */
    569  1.2  oster 
    570  1.2  oster 		erow = rf_EO_Mod((row + f2 - ecol), (RF_EO_MATRIX_DIM));
    571  1.2  oster 		if (erow != (RF_EO_MATRIX_DIM) - 1) {
    572  1.2  oster #if RF_EO_MATRIX_DIM > 17
    573  1.2  oster 			ebuf_current = (short *) ebuf + shortsPerEU * erow;
    574  1.2  oster 			for (k = 0; k < shortsPerEU; k++)
    575  1.2  oster 				temp[k] ^= *(ebuf_current + k);
    576  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    577  1.2  oster 			ebuf_current = (long *) ebuf + longsPerEU * erow;
    578  1.2  oster 			for (k = 0; k < longsPerEU; k++)
    579  1.2  oster 				temp[k] ^= *(ebuf_current + k);
    580  1.2  oster #endif
    581  1.2  oster 		}
    582  1.2  oster 		/* step 3: ^P to obtain the failed data (failed 2).  P can be
    583  1.2  oster 		 * proved to be actually  (principle diagonal)  After this
    584  1.2  oster 		 * step, temp[k] = (failed 2), the failed data to be recovered */
    585  1.2  oster #if RF_EO_MATRIX_DIM > 17
    586  1.2  oster 		for (k = 0; k < shortsPerEU; k++)
    587  1.2  oster 			temp[k] ^= P[k];
    588  1.2  oster 		/* Put the data to the destination buffer                              */
    589  1.2  oster 		for (k = 0; k < shortsPerEU; k++)
    590  1.2  oster 			dest_larger_current[k] = temp[k];
    591  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    592  1.2  oster 		for (k = 0; k < longsPerEU; k++)
    593  1.2  oster 			temp[k] ^= P[k];
    594  1.2  oster 		/* Put the data to the destination buffer                              */
    595  1.2  oster 		for (k = 0; k < longsPerEU; k++)
    596  1.2  oster 			dest_larger_current[k] = temp[k];
    597  1.2  oster #endif
    598  1.2  oster 
    599  1.2  oster 		/**          THE FOLLOWING DO THE HORIZONTAL XOR                **/
    600  1.2  oster 		/* step 1:  ^(SUM of A(row,0..m-3)), ie. all nonfailed data
    601  1.2  oster 		 * columes    */
    602  1.2  oster 		for (j = 0; j < numDataCol; j++) {
    603  1.2  oster 			if (j == f1 || j == f2)
    604  1.2  oster 				continue;
    605  1.2  oster #if RF_EO_MATRIX_DIM > 17
    606  1.2  oster 			rrdbuf_current = (short *) (rrdbuf[j]) + row * shortsPerEU;
    607  1.2  oster 			for (k = 0; k < shortsPerEU; k++)
    608  1.2  oster 				temp[k] ^= *(rrdbuf_current + k);
    609  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    610  1.2  oster 			rrdbuf_current = (long *) (rrdbuf[j]) + row * longsPerEU;
    611  1.2  oster 			for (k = 0; k < longsPerEU; k++)
    612  1.2  oster 				temp[k] ^= *(rrdbuf_current + k);
    613  1.2  oster #endif
    614  1.2  oster 		}
    615  1.2  oster 		/* step 2: ^A(row,m-1) */
    616  1.2  oster 		/* step 3: Put the data to the destination buffer                             	 */
    617  1.2  oster #if RF_EO_MATRIX_DIM > 17
    618  1.2  oster 		pbuf_current = (short *) pbuf + shortsPerEU * row;
    619  1.2  oster 		for (k = 0; k < shortsPerEU; k++)
    620  1.2  oster 			temp[k] ^= *(pbuf_current + k);
    621  1.2  oster 		for (k = 0; k < shortsPerEU; k++)
    622  1.2  oster 			dest_smaller_current[k] = temp[k];
    623  1.2  oster #elif RF_EO_MATRIX_DIM == 17
    624  1.2  oster 		pbuf_current = (long *) pbuf + longsPerEU * row;
    625  1.2  oster 		for (k = 0; k < longsPerEU; k++)
    626  1.2  oster 			temp[k] ^= *(pbuf_current + k);
    627  1.2  oster 		for (k = 0; k < longsPerEU; k++)
    628  1.2  oster 			dest_smaller_current[k] = temp[k];
    629  1.2  oster #endif
    630  1.2  oster 		count++;
    631  1.2  oster 	}
    632  1.2  oster 	/* Check if all Encoding Unit in the data buffer have been decoded,
    633  1.2  oster 	 * according EvenOdd theory, if "RF_EO_MATRIX_DIM" is a prime number,
    634  1.2  oster 	 * this algorithm will covered all buffer 				 */
    635  1.2  oster 	RF_ASSERT(count == numRowInEncMatix);
    636  1.2  oster 	RF_Free((char *) P, bytesPerEU);
    637  1.2  oster 	RF_Free((char *) temp, bytesPerEU);
    638  1.1  oster }
    639  1.2  oster 
    640  1.1  oster 
    641  1.1  oster /***************************************************************************************
    642  1.1  oster * 	This function is called by double degragded read
    643  1.2  oster * 	EO_200_CreateReadDAG
    644  1.1  oster *
    645  1.1  oster ***************************************************************************************/
    646  1.2  oster int
    647  1.2  oster rf_EvenOddDoubleRecoveryFunc(node)
    648  1.2  oster 	RF_DagNode_t *node;
    649  1.2  oster {
    650  1.2  oster 	int     ndataParam = 0;
    651  1.2  oster 	int     np = node->numParams;
    652  1.2  oster 	RF_AccessStripeMap_t *asmap = (RF_AccessStripeMap_t *) node->params[np - 1].p;
    653  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[np - 2].p;
    654  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & (raidPtr->Layout);
    655  1.2  oster 	int     i, prm, sector, nresults = node->numResults;
    656  1.2  oster 	RF_SectorCount_t secPerSU = layoutPtr->sectorsPerStripeUnit;
    657  1.2  oster 	unsigned sosAddr;
    658  1.2  oster 	int     two = 0, mallc_one = 0, mallc_two = 0;	/* flags to indicate if
    659  1.2  oster 							 * memory is allocated */
    660  1.2  oster 	int     bytesPerSector = rf_RaidAddressToByte(raidPtr, 1);
    661  1.2  oster 	RF_PhysDiskAddr_t *ppda, *ppda2, *epda, *epda2, *pda, *pda0, *pda1,
    662  1.2  oster 	        npda;
    663  1.2  oster 	RF_RowCol_t fcol[2], fsuoff[2], fsuend[2], numDataCol = layoutPtr->numDataCol;
    664  1.2  oster 	char  **buf, *ebuf, *pbuf, *dest[2];
    665  1.2  oster 	long   *suoff = NULL, *suend = NULL, *prmToCol = NULL, psuoff, esuoff;
    666  1.2  oster 	RF_SectorNum_t startSector, endSector;
    667  1.2  oster 	RF_Etimer_t timer;
    668  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    669  1.2  oster 
    670  1.2  oster 	RF_ETIMER_START(timer);
    671  1.2  oster 
    672  1.2  oster 	/* Find out the number of parameters which are pdas for data
    673  1.2  oster 	 * information */
    674  1.2  oster 	for (i = 0; i <= np; i++)
    675  1.2  oster 		if (((RF_PhysDiskAddr_t *) node->params[i].p)->type != RF_PDA_TYPE_DATA) {
    676  1.2  oster 			ndataParam = i;
    677  1.2  oster 			break;
    678  1.2  oster 		}
    679  1.2  oster 	RF_Malloc(buf, numDataCol * sizeof(char *), (char **));
    680  1.2  oster 	if (ndataParam != 0) {
    681  1.2  oster 		RF_Malloc(suoff, ndataParam * sizeof(long), (long *));
    682  1.2  oster 		RF_Malloc(suend, ndataParam * sizeof(long), (long *));
    683  1.2  oster 		RF_Malloc(prmToCol, ndataParam * sizeof(long), (long *));
    684  1.2  oster 	}
    685  1.2  oster 	if (asmap->failedPDAs[1] &&
    686  1.2  oster 	    (asmap->failedPDAs[1]->numSector + asmap->failedPDAs[0]->numSector < secPerSU)) {
    687  1.2  oster 		RF_ASSERT(0);	/* currently, no support for this situation */
    688  1.2  oster 		ppda = node->params[np - 6].p;
    689  1.2  oster 		ppda2 = node->params[np - 5].p;
    690  1.2  oster 		RF_ASSERT(ppda2->type == RF_PDA_TYPE_PARITY);
    691  1.2  oster 		epda = node->params[np - 4].p;
    692  1.2  oster 		epda2 = node->params[np - 3].p;
    693  1.2  oster 		RF_ASSERT(epda2->type == RF_PDA_TYPE_Q);
    694  1.2  oster 		two = 1;
    695  1.2  oster 	} else {
    696  1.2  oster 		ppda = node->params[np - 4].p;
    697  1.2  oster 		epda = node->params[np - 3].p;
    698  1.2  oster 		psuoff = rf_StripeUnitOffset(layoutPtr, ppda->startSector);
    699  1.2  oster 		esuoff = rf_StripeUnitOffset(layoutPtr, epda->startSector);
    700  1.2  oster 		RF_ASSERT(psuoff == esuoff);
    701  1.2  oster 	}
    702  1.2  oster 	/*
    703  1.2  oster             the followings have three goals:
    704  1.2  oster             1. determine the startSector to begin decoding and endSector to end decoding.
    705  1.2  oster             2. determine the colume numbers of the two failed disks.
    706  1.2  oster             3. determine the offset and end offset of the access within each failed stripe unit.
    707  1.2  oster          */
    708  1.2  oster 	if (nresults == 1) {
    709  1.2  oster 		/* find the startSector to begin decoding */
    710  1.2  oster 		pda = node->results[0];
    711  1.2  oster 		bzero(pda->bufPtr, bytesPerSector * pda->numSector);
    712  1.2  oster 		fsuoff[0] = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    713  1.2  oster 		fsuend[0] = fsuoff[0] + pda->numSector;
    714  1.2  oster 		startSector = fsuoff[0];
    715  1.2  oster 		endSector = fsuend[0];
    716  1.2  oster 
    717  1.2  oster 		/* find out the the column of failed disk being accessed */
    718  1.2  oster 		fcol[0] = rf_EUCol(layoutPtr, pda->raidAddress);
    719  1.2  oster 
    720  1.2  oster 		/* find out the other failed colume not accessed */
    721  1.2  oster 		sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, asmap->raidAddress);
    722  1.2  oster 		for (i = 0; i < numDataCol; i++) {
    723  1.2  oster 			npda.raidAddress = sosAddr + (i * secPerSU);
    724  1.2  oster 			(raidPtr->Layout.map->MapSector) (raidPtr, npda.raidAddress, &(npda.row), &(npda.col), &(npda.startSector), 0);
    725  1.2  oster 			/* skip over dead disks */
    726  1.2  oster 			if (RF_DEAD_DISK(raidPtr->Disks[npda.row][npda.col].status))
    727  1.2  oster 				if (i != fcol[0])
    728  1.2  oster 					break;
    729  1.2  oster 		}
    730  1.2  oster 		RF_ASSERT(i < numDataCol);
    731  1.2  oster 		fcol[1] = i;
    732  1.2  oster 	} else {
    733  1.2  oster 		RF_ASSERT(nresults == 2);
    734  1.2  oster 		pda0 = node->results[0];
    735  1.2  oster 		bzero(pda0->bufPtr, bytesPerSector * pda0->numSector);
    736  1.2  oster 		pda1 = node->results[1];
    737  1.2  oster 		bzero(pda1->bufPtr, bytesPerSector * pda1->numSector);
    738  1.2  oster 		/* determine the failed colume numbers of the two failed
    739  1.2  oster 		 * disks. */
    740  1.2  oster 		fcol[0] = rf_EUCol(layoutPtr, pda0->raidAddress);
    741  1.2  oster 		fcol[1] = rf_EUCol(layoutPtr, pda1->raidAddress);
    742  1.2  oster 		/* determine the offset and end offset of the access within
    743  1.2  oster 		 * each failed stripe unit. */
    744  1.2  oster 		fsuoff[0] = rf_StripeUnitOffset(layoutPtr, pda0->startSector);
    745  1.2  oster 		fsuend[0] = fsuoff[0] + pda0->numSector;
    746  1.2  oster 		fsuoff[1] = rf_StripeUnitOffset(layoutPtr, pda1->startSector);
    747  1.2  oster 		fsuend[1] = fsuoff[1] + pda1->numSector;
    748  1.2  oster 		/* determine the startSector to begin decoding */
    749  1.2  oster 		startSector = RF_MIN(pda0->startSector, pda1->startSector);
    750  1.2  oster 		/* determine the endSector to end decoding */
    751  1.2  oster 		endSector = RF_MAX(fsuend[0], fsuend[1]);
    752  1.2  oster 	}
    753  1.2  oster 	/*
    754  1.2  oster 	      assign the beginning sector and the end sector for each parameter
    755  1.2  oster 	      find out the corresponding colume # for each parameter
    756  1.2  oster         */
    757  1.2  oster 	for (prm = 0; prm < ndataParam; prm++) {
    758  1.2  oster 		pda = node->params[prm].p;
    759  1.2  oster 		suoff[prm] = rf_StripeUnitOffset(layoutPtr, pda->startSector);
    760  1.2  oster 		suend[prm] = suoff[prm] + pda->numSector;
    761  1.2  oster 		prmToCol[prm] = rf_EUCol(layoutPtr, pda->raidAddress);
    762  1.2  oster 	}
    763  1.2  oster 	/* 'sector' is the sector for the current decoding algorithm. For each
    764  1.2  oster 	 * sector in the failed SU, find out the corresponding parameters that
    765  1.2  oster 	 * cover the current sector and that are needed for decoding of this
    766  1.2  oster 	 * sector in failed SU. 2.  Find out if sector is in the shadow of any
    767  1.2  oster 	 * accessed failed SU. If not, malloc a temporary space of a sector in
    768  1.2  oster 	 * size. */
    769  1.2  oster 	for (sector = startSector; sector < endSector; sector++) {
    770  1.2  oster 		if (nresults == 2)
    771  1.2  oster 			if (!(fsuoff[0] <= sector && sector < fsuend[0]) && !(fsuoff[1] <= sector && sector < fsuend[1]))
    772  1.2  oster 				continue;
    773  1.2  oster 		for (prm = 0; prm < ndataParam; prm++)
    774  1.2  oster 			if (suoff[prm] <= sector && sector < suend[prm])
    775  1.2  oster 				buf[(prmToCol[prm])] = ((RF_PhysDiskAddr_t *) node->params[prm].p)->bufPtr +
    776  1.2  oster 				    rf_RaidAddressToByte(raidPtr, sector - suoff[prm]);
    777  1.2  oster 		/* find out if sector is in the shadow of any accessed failed
    778  1.2  oster 		 * SU. If yes, assign dest[0], dest[1] to point at suitable
    779  1.2  oster 		 * position of the buffer corresponding to failed SUs. if no,
    780  1.2  oster 		 * malloc a temporary space of a sector in size for
    781  1.2  oster 		 * destination of decoding. */
    782  1.2  oster 		RF_ASSERT(nresults == 1 || nresults == 2);
    783  1.2  oster 		if (nresults == 1) {
    784  1.2  oster 			dest[0] = ((RF_PhysDiskAddr_t *) node->results[0])->bufPtr + rf_RaidAddressToByte(raidPtr, sector - fsuoff[0]);
    785  1.2  oster 			/* Always malloc temp buffer to dest[1]  */
    786  1.2  oster 			RF_Malloc(dest[1], bytesPerSector, (char *));
    787  1.2  oster 			bzero(dest[1], bytesPerSector);
    788  1.2  oster 			mallc_two = 1;
    789  1.2  oster 		} else {
    790  1.2  oster 			if (fsuoff[0] <= sector && sector < fsuend[0])
    791  1.2  oster 				dest[0] = ((RF_PhysDiskAddr_t *) node->results[0])->bufPtr + rf_RaidAddressToByte(raidPtr, sector - fsuoff[0]);
    792  1.2  oster 			else {
    793  1.2  oster 				RF_Malloc(dest[0], bytesPerSector, (char *));
    794  1.2  oster 				bzero(dest[0], bytesPerSector);
    795  1.2  oster 				mallc_one = 1;
    796  1.2  oster 			}
    797  1.2  oster 			if (fsuoff[1] <= sector && sector < fsuend[1])
    798  1.2  oster 				dest[1] = ((RF_PhysDiskAddr_t *) node->results[1])->bufPtr + rf_RaidAddressToByte(raidPtr, sector - fsuoff[1]);
    799  1.2  oster 			else {
    800  1.2  oster 				RF_Malloc(dest[1], bytesPerSector, (char *));
    801  1.2  oster 				bzero(dest[1], bytesPerSector);
    802  1.2  oster 				mallc_two = 1;
    803  1.2  oster 			}
    804  1.2  oster 			RF_ASSERT(mallc_one == 0 || mallc_two == 0);
    805  1.2  oster 		}
    806  1.2  oster 		pbuf = ppda->bufPtr + rf_RaidAddressToByte(raidPtr, sector - psuoff);
    807  1.2  oster 		ebuf = epda->bufPtr + rf_RaidAddressToByte(raidPtr, sector - esuoff);
    808  1.2  oster 		/*
    809  1.2  oster 	         * After finish finding all needed sectors, call doubleEOdecode function for decoding
    810  1.2  oster 	         * one sector to destination.
    811  1.2  oster 	         */
    812  1.2  oster 		rf_doubleEOdecode(raidPtr, buf, dest, fcol, pbuf, ebuf);
    813  1.2  oster 		/* free all allocated memory, and mark flag to indicate no
    814  1.2  oster 		 * memory is being allocated */
    815  1.2  oster 		if (mallc_one == 1)
    816  1.2  oster 			RF_Free(dest[0], bytesPerSector);
    817  1.2  oster 		if (mallc_two == 1)
    818  1.2  oster 			RF_Free(dest[1], bytesPerSector);
    819  1.2  oster 		mallc_one = mallc_two = 0;
    820  1.2  oster 	}
    821  1.2  oster 	RF_Free(buf, numDataCol * sizeof(char *));
    822  1.2  oster 	if (ndataParam != 0) {
    823  1.2  oster 		RF_Free(suoff, ndataParam * sizeof(long));
    824  1.2  oster 		RF_Free(suend, ndataParam * sizeof(long));
    825  1.2  oster 		RF_Free(prmToCol, ndataParam * sizeof(long));
    826  1.2  oster 	}
    827  1.2  oster 	RF_ETIMER_STOP(timer);
    828  1.2  oster 	RF_ETIMER_EVAL(timer);
    829  1.2  oster 	if (tracerec) {
    830  1.2  oster 		tracerec->q_us += RF_ETIMER_VAL_US(timer);
    831  1.2  oster 	}
    832  1.2  oster 	rf_GenericWakeupFunc(node, 0);
    833  1.1  oster #if 1
    834  1.2  oster 	return (0);		/* XXX is this even close!!?!?!!? GO */
    835  1.1  oster #endif
    836  1.1  oster }
    837  1.1  oster 
    838  1.1  oster 
    839  1.2  oster /* currently, only access of one of the two failed SU is allowed in this function.
    840  1.2  oster  * also, asmap->numStripeUnitsAccessed is limited to be one, the RaidFrame will break large access into
    841  1.1  oster  * many accesses of single stripe unit.
    842  1.1  oster  */
    843  1.1  oster 
    844  1.2  oster int
    845  1.2  oster rf_EOWriteDoubleRecoveryFunc(node)
    846  1.2  oster 	RF_DagNode_t *node;
    847  1.2  oster {
    848  1.2  oster 	int     np = node->numParams;
    849  1.2  oster 	RF_AccessStripeMap_t *asmap = (RF_AccessStripeMap_t *) node->params[np - 1].p;
    850  1.2  oster 	RF_Raid_t *raidPtr = (RF_Raid_t *) node->params[np - 2].p;
    851  1.2  oster 	RF_RaidLayout_t *layoutPtr = (RF_RaidLayout_t *) & (raidPtr->Layout);
    852  1.2  oster 	RF_SectorNum_t sector;
    853  1.2  oster 	RF_RowCol_t col, scol;
    854  1.2  oster 	int     prm, i, j;
    855  1.2  oster 	RF_SectorCount_t secPerSU = layoutPtr->sectorsPerStripeUnit;
    856  1.2  oster 	unsigned sosAddr;
    857  1.2  oster 	unsigned bytesPerSector = rf_RaidAddressToByte(raidPtr, 1);
    858  1.2  oster 	RF_int64 numbytes;
    859  1.2  oster 	RF_SectorNum_t startSector, endSector;
    860  1.2  oster 	RF_PhysDiskAddr_t *ppda, *epda, *pda, *fpda, npda;
    861  1.2  oster 	RF_RowCol_t fcol[2], numDataCol = layoutPtr->numDataCol;
    862  1.2  oster 	char  **buf;		/* buf[0], buf[1], buf[2], ...etc. point to
    863  1.2  oster 				 * buffer storing data read from col0, col1,
    864  1.2  oster 				 * col2 */
    865  1.2  oster 	char   *ebuf, *pbuf, *dest[2], *olddata[2];
    866  1.2  oster 	RF_Etimer_t timer;
    867  1.2  oster 	RF_AccTraceEntry_t *tracerec = node->dagHdr->tracerec;
    868  1.2  oster 
    869  1.2  oster 	RF_ASSERT(asmap->numDataFailed == 1);	/* currently only support this
    870  1.2  oster 						 * case, the other failed SU
    871  1.2  oster 						 * is not being accessed */
    872  1.2  oster 	RF_ETIMER_START(timer);
    873  1.2  oster 	RF_Malloc(buf, numDataCol * sizeof(char *), (char **));
    874  1.2  oster 
    875  1.2  oster 	ppda = node->results[0];/* Instead of being buffers, node->results[0]
    876  1.2  oster 				 * and [1] are Ppda and Epda  */
    877  1.2  oster 	epda = node->results[1];
    878  1.2  oster 	fpda = asmap->failedPDAs[0];
    879  1.2  oster 
    880  1.2  oster 	/* First, recovery the failed old SU using EvenOdd double decoding      */
    881  1.2  oster 	/* determine the startSector and endSector for decoding */
    882  1.2  oster 	startSector = rf_StripeUnitOffset(layoutPtr, fpda->startSector);
    883  1.2  oster 	endSector = startSector + fpda->numSector;
    884  1.2  oster 	/* Assign buf[col] pointers to point to each non-failed colume  and
    885  1.2  oster 	 * initialize the pbuf and ebuf to point at the beginning of each
    886  1.2  oster 	 * source buffers and destination buffers */
    887  1.2  oster 	for (prm = 0; prm < numDataCol - 2; prm++) {
    888  1.2  oster 		pda = (RF_PhysDiskAddr_t *) node->params[prm].p;
    889  1.2  oster 		col = rf_EUCol(layoutPtr, pda->raidAddress);
    890  1.2  oster 		buf[col] = pda->bufPtr;
    891  1.2  oster 	}
    892  1.2  oster 	/* pbuf and ebuf:  they will change values as double recovery decoding
    893  1.2  oster 	 * goes on */
    894  1.2  oster 	pbuf = ppda->bufPtr;
    895  1.2  oster 	ebuf = epda->bufPtr;
    896  1.2  oster 	/* find out the logical colume numbers in the encoding matrix of the
    897  1.2  oster 	 * two failed columes */
    898  1.2  oster 	fcol[0] = rf_EUCol(layoutPtr, fpda->raidAddress);
    899  1.2  oster 
    900  1.2  oster 	/* find out the other failed colume not accessed this time */
    901  1.2  oster 	sosAddr = rf_RaidAddressOfPrevStripeBoundary(layoutPtr, asmap->raidAddress);
    902  1.2  oster 	for (i = 0; i < numDataCol; i++) {
    903  1.2  oster 		npda.raidAddress = sosAddr + (i * secPerSU);
    904  1.2  oster 		(raidPtr->Layout.map->MapSector) (raidPtr, npda.raidAddress, &(npda.row), &(npda.col), &(npda.startSector), 0);
    905  1.2  oster 		/* skip over dead disks */
    906  1.2  oster 		if (RF_DEAD_DISK(raidPtr->Disks[npda.row][npda.col].status))
    907  1.2  oster 			if (i != fcol[0])
    908  1.2  oster 				break;
    909  1.2  oster 	}
    910  1.2  oster 	RF_ASSERT(i < numDataCol);
    911  1.2  oster 	fcol[1] = i;
    912  1.2  oster 	/* assign temporary space to put recovered failed SU */
    913  1.2  oster 	numbytes = fpda->numSector * bytesPerSector;
    914  1.2  oster 	RF_Malloc(olddata[0], numbytes, (char *));
    915  1.2  oster 	RF_Malloc(olddata[1], numbytes, (char *));
    916  1.2  oster 	dest[0] = olddata[0];
    917  1.2  oster 	dest[1] = olddata[1];
    918  1.2  oster 	bzero(olddata[0], numbytes);
    919  1.2  oster 	bzero(olddata[1], numbytes);
    920  1.2  oster 	/* Begin the recovery decoding, initially buf[j],  ebuf, pbuf, dest[j]
    921  1.2  oster 	 * have already pointed at the beginning of each source buffers and
    922  1.2  oster 	 * destination buffers */
    923  1.2  oster 	for (sector = startSector, i = 0; sector < endSector; sector++, i++) {
    924  1.2  oster 		rf_doubleEOdecode(raidPtr, buf, dest, fcol, pbuf, ebuf);
    925  1.2  oster 		for (j = 0; j < numDataCol; j++)
    926  1.2  oster 			if ((j != fcol[0]) && (j != fcol[1]))
    927  1.2  oster 				buf[j] += bytesPerSector;
    928  1.2  oster 		dest[0] += bytesPerSector;
    929  1.2  oster 		dest[1] += bytesPerSector;
    930  1.2  oster 		ebuf += bytesPerSector;
    931  1.2  oster 		pbuf += bytesPerSector;
    932  1.2  oster 	}
    933  1.2  oster 	/* after recovery, the buffer pointed by olddata[0] is the old failed
    934  1.2  oster 	 * data. With new writing data and this old data, use small write to
    935  1.2  oster 	 * calculate the new redundant informations */
    936  1.2  oster 	/* node->params[ 0, ... PDAPerDisk * (numDataCol - 2)-1 ] are Pdas of
    937  1.2  oster 	 * Rrd; params[ PDAPerDisk*(numDataCol - 2), ... PDAPerDisk*numDataCol
    938  1.2  oster 	 * -1 ] are Pdas of Rp, ( Rp2 ), Re, ( Re2 ) ; params[
    939  1.2  oster 	 * PDAPerDisk*numDataCol, ... PDAPerDisk*numDataCol
    940  1.2  oster 	 * +asmap->numStripeUnitsAccessed -asmap->numDataFailed-1] are Pdas of
    941  1.2  oster 	 * wudNodes; For current implementation, we assume the simplest case:
    942  1.2  oster 	 * asmap->numStripeUnitsAccessed == 1 and asmap->numDataFailed == 1
    943  1.2  oster 	 * ie. PDAPerDisk = 1 then node->params[numDataCol] must be the new
    944  1.2  oster 	 * data to be writen to the failed disk. We first bxor the new data
    945  1.2  oster 	 * into the old recovered data, then do the same things as small
    946  1.2  oster 	 * write. */
    947  1.2  oster 
    948  1.2  oster 	rf_bxor(((RF_PhysDiskAddr_t *) node->params[numDataCol].p)->bufPtr, olddata[0], numbytes, node->dagHdr->bp);
    949  1.2  oster 	/* do new 'E' calculation  */
    950  1.2  oster 	/* find out the corresponding colume in encoding matrix for write
    951  1.2  oster 	 * colume to be encoded into redundant disk 'E' */
    952  1.2  oster 	scol = rf_EUCol(layoutPtr, fpda->raidAddress);
    953  1.2  oster 	/* olddata[0] now is source buffer pointer; epda->bufPtr is the dest
    954  1.2  oster 	 * buffer pointer               */
    955  1.2  oster 	rf_e_encToBuf(raidPtr, scol, olddata[0], RF_EO_MATRIX_DIM - 2, epda->bufPtr, fpda->numSector);
    956  1.2  oster 
    957  1.2  oster 	/* do new 'P' calculation  */
    958  1.2  oster 	rf_bxor(olddata[0], ppda->bufPtr, numbytes, node->dagHdr->bp);
    959  1.2  oster 	/* Free the allocated buffer  */
    960  1.2  oster 	RF_Free(olddata[0], numbytes);
    961  1.2  oster 	RF_Free(olddata[1], numbytes);
    962  1.2  oster 	RF_Free(buf, numDataCol * sizeof(char *));
    963  1.2  oster 
    964  1.2  oster 	RF_ETIMER_STOP(timer);
    965  1.2  oster 	RF_ETIMER_EVAL(timer);
    966  1.2  oster 	if (tracerec) {
    967  1.2  oster 		tracerec->q_us += RF_ETIMER_VAL_US(timer);
    968  1.2  oster 	}
    969  1.2  oster 	rf_GenericWakeupFunc(node, 0);
    970  1.2  oster 	return (0);
    971  1.1  oster }
    972