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			461 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			461 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /*-
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|  * See the file LICENSE for redistribution information.
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|  *
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|  * Copyright (c) 1996-2002
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|  *	Sleepycat Software.  All rights reserved.
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|  */
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| /*
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|  * Copyright (c) 1990, 1993, 1994, 1995, 1996
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|  *	Keith Bostic.  All rights reserved.
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|  */
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| /*
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|  * Copyright (c) 1990, 1993, 1994, 1995
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|  *	The Regents of the University of California.  All rights reserved.
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|  *
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|  * This code is derived from software contributed to Berkeley by
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|  * Mike Olson.
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|  *
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|  * Redistribution and use in source and binary forms, with or without
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|  * modification, are permitted provided that the following conditions
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|  * are met:
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|  * 1. Redistributions of source code must retain the above copyright
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|  *    notice, this list of conditions and the following disclaimer.
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|  * 2. Redistributions in binary form must reproduce the above copyright
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|  *    notice, this list of conditions and the following disclaimer in the
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|  *    documentation and/or other materials provided with the distribution.
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|  * 3. Neither the name of the University nor the names of its contributors
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|  *    may be used to endorse or promote products derived from this software
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|  *    without specific prior written permission.
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|  *
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|  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
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|  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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|  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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|  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
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|  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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|  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
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|  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
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|  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
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|  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
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|  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
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|  * SUCH DAMAGE.
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|  */
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| 
 | |
| #include "db_config.h"
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| 
 | |
| #ifndef lint
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| static const char revid[] = "$Id: bt_delete.c,v 11.44 2002/07/03 19:03:49 bostic Exp $";
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| #endif /* not lint */
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| 
 | |
| #ifndef NO_SYSTEM_INCLUDES
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| #include <sys/types.h>
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| 
 | |
| #include <string.h>
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| #endif
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| 
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| #include "db_int.h"
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| #include "dbinc/db_page.h"
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| #include "dbinc/db_shash.h"
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| #include "dbinc/btree.h"
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| #include "dbinc/lock.h"
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| 
 | |
| /*
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|  * __bam_ditem --
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|  *	Delete one or more entries from a page.
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|  *
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|  * PUBLIC: int __bam_ditem __P((DBC *, PAGE *, u_int32_t));
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|  */
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| int
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| __bam_ditem(dbc, h, indx)
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| 	DBC *dbc;
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| 	PAGE *h;
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| 	u_int32_t indx;
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| {
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| 	BINTERNAL *bi;
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| 	BKEYDATA *bk;
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| 	DB *dbp;
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| 	DB_MPOOLFILE *mpf;
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| 	u_int32_t nbytes;
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| 	int ret;
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| 	db_indx_t *inp;
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| 
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| 	dbp = dbc->dbp;
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| 	mpf = dbp->mpf;
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| 	inp = P_INP(dbp, h);
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| 
 | |
| 	switch (TYPE(h)) {
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| 	case P_IBTREE:
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| 		bi = GET_BINTERNAL(dbp, h, indx);
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| 		switch (B_TYPE(bi->type)) {
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| 		case B_DUPLICATE:
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| 		case B_KEYDATA:
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| 			nbytes = BINTERNAL_SIZE(bi->len);
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| 			break;
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| 		case B_OVERFLOW:
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| 			nbytes = BINTERNAL_SIZE(bi->len);
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| 			if ((ret =
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| 			    __db_doff(dbc, ((BOVERFLOW *)bi->data)->pgno)) != 0)
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| 				return (ret);
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| 			break;
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| 		default:
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| 			return (__db_pgfmt(dbp->dbenv, PGNO(h)));
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| 		}
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| 		break;
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| 	case P_IRECNO:
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| 		nbytes = RINTERNAL_SIZE;
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| 		break;
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| 	case P_LBTREE:
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| 		/*
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| 		 * If it's a duplicate key, discard the index and don't touch
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| 		 * the actual page item.
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| 		 *
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| 		 * !!!
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| 		 * This works because no data item can have an index matching
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| 		 * any other index so even if the data item is in a key "slot",
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| 		 * it won't match any other index.
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| 		 */
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| 		if ((indx % 2) == 0) {
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| 			/*
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| 			 * Check for a duplicate after us on the page.  NOTE:
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| 			 * we have to delete the key item before deleting the
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| 			 * data item, otherwise the "indx + P_INDX" calculation
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| 			 * won't work!
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| 			 */
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| 			if (indx + P_INDX < (u_int32_t)NUM_ENT(h) &&
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| 			    inp[indx] == inp[indx + P_INDX])
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| 				return (__bam_adjindx(dbc,
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| 				    h, indx, indx + O_INDX, 0));
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| 			/*
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| 			 * Check for a duplicate before us on the page.  It
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| 			 * doesn't matter if we delete the key item before or
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| 			 * after the data item for the purposes of this one.
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| 			 */
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| 			if (indx > 0 && inp[indx] == inp[indx - P_INDX])
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| 				return (__bam_adjindx(dbc,
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| 				    h, indx, indx - P_INDX, 0));
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| 		}
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| 		/* FALLTHROUGH */
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| 	case P_LDUP:
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| 	case P_LRECNO:
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| 		bk = GET_BKEYDATA(dbp, h, indx);
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| 		switch (B_TYPE(bk->type)) {
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| 		case B_DUPLICATE:
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| 			nbytes = BOVERFLOW_SIZE;
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| 			break;
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| 		case B_OVERFLOW:
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| 			nbytes = BOVERFLOW_SIZE;
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| 			if ((ret = __db_doff(
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| 			    dbc, (GET_BOVERFLOW(dbp, h, indx))->pgno)) != 0)
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| 				return (ret);
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| 			break;
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| 		case B_KEYDATA:
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| 			nbytes = BKEYDATA_SIZE(bk->len);
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| 			break;
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| 		default:
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| 			return (__db_pgfmt(dbp->dbenv, PGNO(h)));
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| 		}
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| 		break;
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| 	default:
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| 		return (__db_pgfmt(dbp->dbenv, PGNO(h)));
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| 	}
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| 
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| 	/* Delete the item and mark the page dirty. */
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| 	if ((ret = __db_ditem(dbc, h, indx, nbytes)) != 0)
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| 		return (ret);
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| 	if ((ret = mpf->set(mpf, h, DB_MPOOL_DIRTY)) != 0)
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| 		return (ret);
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| 
 | |
| 	return (0);
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| }
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| 
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| /*
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|  * __bam_adjindx --
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|  *	Adjust an index on the page.
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|  *
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|  * PUBLIC: int __bam_adjindx __P((DBC *, PAGE *, u_int32_t, u_int32_t, int));
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|  */
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| int
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| __bam_adjindx(dbc, h, indx, indx_copy, is_insert)
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| 	DBC *dbc;
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| 	PAGE *h;
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| 	u_int32_t indx, indx_copy;
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| 	int is_insert;
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| {
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| 	DB *dbp;
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| 	DB_MPOOLFILE *mpf;
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| 	db_indx_t copy, *inp;
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| 	int ret;
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| 
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| 	dbp = dbc->dbp;
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| 	mpf = dbp->mpf;
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| 	inp = P_INP(dbp, h);
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| 
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| 	/* Log the change. */
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| 	if (DBC_LOGGING(dbc)) {
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| 	    if ((ret = __bam_adj_log(dbp, dbc->txn, &LSN(h), 0,
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| 		PGNO(h), &LSN(h), indx, indx_copy, (u_int32_t)is_insert)) != 0)
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| 			return (ret);
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| 	} else
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| 		LSN_NOT_LOGGED(LSN(h));
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| 
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| 	/* Shuffle the indices and mark the page dirty. */
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| 	if (is_insert) {
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| 		copy = inp[indx_copy];
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| 		if (indx != NUM_ENT(h))
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| 			memmove(&inp[indx + O_INDX], &inp[indx],
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| 			    sizeof(db_indx_t) * (NUM_ENT(h) - indx));
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| 		inp[indx] = copy;
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| 		++NUM_ENT(h);
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| 	} else {
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| 		--NUM_ENT(h);
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| 		if (indx != NUM_ENT(h))
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| 			memmove(&inp[indx], &inp[indx + O_INDX],
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| 			    sizeof(db_indx_t) * (NUM_ENT(h) - indx));
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| 	}
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| 	if ((ret = mpf->set(mpf, h, DB_MPOOL_DIRTY)) != 0)
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| 		return (ret);
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| 
 | |
| 	return (0);
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| }
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| 
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| /*
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|  * __bam_dpages --
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|  *	Delete a set of locked pages.
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|  *
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|  * PUBLIC: int __bam_dpages __P((DBC *, EPG *));
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|  */
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| int
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| __bam_dpages(dbc, stack_epg)
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| 	DBC *dbc;
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| 	EPG *stack_epg;
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| {
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| 	BTREE_CURSOR *cp;
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| 	BINTERNAL *bi;
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| 	DB *dbp;
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| 	DBT a, b;
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| 	DB_LOCK c_lock, p_lock;
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| 	DB_MPOOLFILE *mpf;
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| 	EPG *epg;
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| 	PAGE *child, *parent;
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| 	db_indx_t nitems;
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| 	db_pgno_t pgno, root_pgno;
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| 	db_recno_t rcnt;
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| 	int done, ret, t_ret;
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| 
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| 	dbp = dbc->dbp;
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| 	mpf = dbp->mpf;
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| 	cp = (BTREE_CURSOR *)dbc->internal;
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| 
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| 	/*
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| 	 * We have the entire stack of deletable pages locked.
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| 	 *
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| 	 * Btree calls us with a pointer to the beginning of a stack, where
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| 	 * the first page in the stack is to have a single item deleted, and
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| 	 * the rest of the pages are to be removed.
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| 	 *
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| 	 * Recno calls us with a pointer into the middle of the stack, where
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| 	 * the referenced page is to have a single item deleted, and pages
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| 	 * after the stack reference are to be removed.
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| 	 *
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| 	 * First, discard any pages that we don't care about.
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| 	 */
 | |
| 	ret = 0;
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| 	for (epg = cp->sp; epg < stack_epg; ++epg) {
 | |
| 		if ((t_ret = mpf->put(mpf, epg->page, 0)) != 0 && ret == 0)
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| 			ret = t_ret;
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| 		(void)__TLPUT(dbc, epg->lock);
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| 	}
 | |
| 	if (ret != 0)
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| 		goto err;
 | |
| 
 | |
| 	/*
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| 	 * !!!
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| 	 * There is an interesting deadlock situation here.  We have to relink
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| 	 * the leaf page chain around the leaf page being deleted.  Consider
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| 	 * a cursor walking through the leaf pages, that has the previous page
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| 	 * read-locked and is waiting on a lock for the page we're deleting.
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| 	 * It will deadlock here.  Before we unlink the subtree, we relink the
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| 	 * leaf page chain.
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| 	 */
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| 	if ((ret = __db_relink(dbc, DB_REM_PAGE, cp->csp->page, NULL, 1)) != 0)
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| 		goto err;
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| 
 | |
| 	/*
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| 	 * Delete the last item that references the underlying pages that are
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| 	 * to be deleted, and adjust cursors that reference that page.  Then,
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| 	 * save that page's page number and item count and release it.  If
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| 	 * the application isn't retaining locks because it's running without
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| 	 * transactions, this lets the rest of the tree get back to business
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| 	 * immediately.
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| 	 */
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| 	if ((ret = __bam_ditem(dbc, epg->page, epg->indx)) != 0)
 | |
| 		goto err;
 | |
| 	if ((ret = __bam_ca_di(dbc, PGNO(epg->page), epg->indx, -1)) != 0)
 | |
| 		goto err;
 | |
| 
 | |
| 	pgno = PGNO(epg->page);
 | |
| 	nitems = NUM_ENT(epg->page);
 | |
| 
 | |
| 	if ((ret = mpf->put(mpf, epg->page, 0)) != 0)
 | |
| 		goto err_inc;
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| 	(void)__TLPUT(dbc, epg->lock);
 | |
| 
 | |
| 	/* Free the rest of the pages in the stack. */
 | |
| 	while (++epg <= cp->csp) {
 | |
| 		/*
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| 		 * Delete page entries so they will be restored as part of
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| 		 * recovery.  We don't need to do cursor adjustment here as
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| 		 * the pages are being emptied by definition and so cannot
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| 		 * be referenced by a cursor.
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| 		 */
 | |
| 		if (NUM_ENT(epg->page) != 0) {
 | |
| 			DB_ASSERT(NUM_ENT(epg->page) == 1);
 | |
| 
 | |
| 			if ((ret = __bam_ditem(dbc, epg->page, epg->indx)) != 0)
 | |
| 				goto err;
 | |
| 		}
 | |
| 
 | |
| 		if ((ret = __db_free(dbc, epg->page)) != 0) {
 | |
| 			epg->page = NULL;
 | |
| 			goto err_inc;
 | |
| 		}
 | |
| 		(void)__TLPUT(dbc, epg->lock);
 | |
| 	}
 | |
| 
 | |
| 	if (0) {
 | |
| err_inc:	++epg;
 | |
| err:		for (; epg <= cp->csp; ++epg) {
 | |
| 			if (epg->page != NULL)
 | |
| 				(void)mpf->put(mpf, epg->page, 0);
 | |
| 			(void)__TLPUT(dbc, epg->lock);
 | |
| 		}
 | |
| 		BT_STK_CLR(cp);
 | |
| 		return (ret);
 | |
| 	}
 | |
| 	BT_STK_CLR(cp);
 | |
| 
 | |
| 	/*
 | |
| 	 * If we just deleted the next-to-last item from the root page, the
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| 	 * tree can collapse one or more levels.  While there remains only a
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| 	 * single item on the root page, write lock the last page referenced
 | |
| 	 * by the root page and copy it over the root page.
 | |
| 	 */
 | |
| 	root_pgno = cp->root;
 | |
| 	if (pgno != root_pgno || nitems != 1)
 | |
| 		return (0);
 | |
| 
 | |
| 	for (done = 0; !done;) {
 | |
| 		/* Initialize. */
 | |
| 		parent = child = NULL;
 | |
| 		LOCK_INIT(p_lock);
 | |
| 		LOCK_INIT(c_lock);
 | |
| 
 | |
| 		/* Lock the root. */
 | |
| 		pgno = root_pgno;
 | |
| 		if ((ret =
 | |
| 		    __db_lget(dbc, 0, pgno, DB_LOCK_WRITE, 0, &p_lock)) != 0)
 | |
| 			goto stop;
 | |
| 		if ((ret = mpf->get(mpf, &pgno, 0, &parent)) != 0)
 | |
| 			goto stop;
 | |
| 
 | |
| 		if (NUM_ENT(parent) != 1)
 | |
| 			goto stop;
 | |
| 
 | |
| 		switch (TYPE(parent)) {
 | |
| 		case P_IBTREE:
 | |
| 			/*
 | |
| 			 * If this is overflow, then try to delete it.
 | |
| 			 * The child may or may not still point at it.
 | |
| 			 */
 | |
| 			bi = GET_BINTERNAL(dbp, parent, 0);
 | |
| 			if (B_TYPE(bi->type) == B_OVERFLOW)
 | |
| 				if ((ret = __db_doff(dbc,
 | |
| 				    ((BOVERFLOW *)bi->data)->pgno)) != 0)
 | |
| 					goto stop;
 | |
| 			pgno = bi->pgno;
 | |
| 			break;
 | |
| 		case P_IRECNO:
 | |
| 			pgno = GET_RINTERNAL(dbp, parent, 0)->pgno;
 | |
| 			break;
 | |
| 		default:
 | |
| 			goto stop;
 | |
| 		}
 | |
| 
 | |
| 		/* Lock the child page. */
 | |
| 		if ((ret =
 | |
| 		    __db_lget(dbc, 0, pgno, DB_LOCK_WRITE, 0, &c_lock)) != 0)
 | |
| 			goto stop;
 | |
| 		if ((ret = mpf->get(mpf, &pgno, 0, &child)) != 0)
 | |
| 			goto stop;
 | |
| 
 | |
| 		/* Log the change. */
 | |
| 		if (DBC_LOGGING(dbc)) {
 | |
| 			memset(&a, 0, sizeof(a));
 | |
| 			a.data = child;
 | |
| 			a.size = dbp->pgsize;
 | |
| 			memset(&b, 0, sizeof(b));
 | |
| 			b.data = P_ENTRY(dbp, parent, 0);
 | |
| 			b.size = TYPE(parent) == P_IRECNO ? RINTERNAL_SIZE :
 | |
| 			    BINTERNAL_SIZE(((BINTERNAL *)b.data)->len);
 | |
| 			if ((ret = __bam_rsplit_log(dbp, dbc->txn,
 | |
| 			    &child->lsn, 0, PGNO(child), &a, PGNO(parent),
 | |
| 			    RE_NREC(parent), &b, &parent->lsn)) != 0)
 | |
| 				goto stop;
 | |
| 		} else
 | |
| 			LSN_NOT_LOGGED(child->lsn);
 | |
| 
 | |
| 		/*
 | |
| 		 * Make the switch.
 | |
| 		 *
 | |
| 		 * One fixup -- internal pages below the top level do not store
 | |
| 		 * a record count, so we have to preserve it if we're not
 | |
| 		 * converting to a leaf page.  Note also that we are about to
 | |
| 		 * overwrite the parent page, including its LSN.  This is OK
 | |
| 		 * because the log message we wrote describing this update
 | |
| 		 * stores its LSN on the child page.  When the child is copied
 | |
| 		 * onto the parent, the correct LSN is copied into place.
 | |
| 		 */
 | |
| 		COMPQUIET(rcnt, 0);
 | |
| 		if (F_ISSET(cp, C_RECNUM) && LEVEL(child) > LEAFLEVEL)
 | |
| 			rcnt = RE_NREC(parent);
 | |
| 		memcpy(parent, child, dbp->pgsize);
 | |
| 		PGNO(parent) = root_pgno;
 | |
| 		if (F_ISSET(cp, C_RECNUM) && LEVEL(child) > LEAFLEVEL)
 | |
| 			RE_NREC_SET(parent, rcnt);
 | |
| 
 | |
| 		/* Mark the pages dirty. */
 | |
| 		if ((ret = mpf->set(mpf, parent, DB_MPOOL_DIRTY)) != 0)
 | |
| 			goto stop;
 | |
| 		if ((ret = mpf->set(mpf, child, DB_MPOOL_DIRTY)) != 0)
 | |
| 			goto stop;
 | |
| 
 | |
| 		/* Adjust the cursors. */
 | |
| 		if ((ret = __bam_ca_rsplit(dbc, PGNO(child), root_pgno)) != 0)
 | |
| 			goto stop;
 | |
| 
 | |
| 		/*
 | |
| 		 * Free the page copied onto the root page and discard its
 | |
| 		 * lock.  (The call to __db_free() discards our reference
 | |
| 		 * to the page.)
 | |
| 		 */
 | |
| 		if ((ret = __db_free(dbc, child)) != 0) {
 | |
| 			child = NULL;
 | |
| 			goto stop;
 | |
| 		}
 | |
| 		child = NULL;
 | |
| 
 | |
| 		if (0) {
 | |
| stop:			done = 1;
 | |
| 		}
 | |
| 		(void)__TLPUT(dbc, p_lock);
 | |
| 		if (parent != NULL &&
 | |
| 		    (t_ret = mpf->put(mpf, parent, 0)) != 0 && ret == 0)
 | |
| 			ret = t_ret;
 | |
| 		(void)__TLPUT(dbc, c_lock);
 | |
| 		if (child != NULL &&
 | |
| 		    (t_ret = mpf->put(mpf, child, 0)) != 0 && ret == 0)
 | |
| 			ret = t_ret;
 | |
| 	}
 | |
| 
 | |
| 	return (ret);
 | |
| }
 | 
