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The lower case spellings are C and C++ standard and are used in most parts of the PostgreSQL sources. The upper case spellings are only used in some files/modules. So standardize on the standard spellings. The APIs for ICU, Perl, and Windows define their own TRUE and FALSE, so those are left as is when using those APIs. In code comments, we use the lower-case spelling for the C concepts and keep the upper-case spelling for the SQL concepts. Reviewed-by: Michael Paquier <michael.paquier@gmail.com>
294 lines
7.7 KiB
C
294 lines
7.7 KiB
C
/*-------------------------------------------------------------------------
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*
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* ginbulk.c
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* routines for fast build of inverted index
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*
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*
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* Portions Copyright (c) 1996-2017, PostgreSQL Global Development Group
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* Portions Copyright (c) 1994, Regents of the University of California
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*
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* IDENTIFICATION
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* src/backend/access/gin/ginbulk.c
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*-------------------------------------------------------------------------
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*/
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#include "postgres.h"
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#include <limits.h>
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#include "access/gin_private.h"
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#include "utils/datum.h"
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#include "utils/memutils.h"
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#define DEF_NENTRY 2048 /* GinEntryAccumulator allocation quantum */
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#define DEF_NPTR 5 /* ItemPointer initial allocation quantum */
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/* Combiner function for rbtree.c */
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static void
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ginCombineData(RBNode *existing, const RBNode *newdata, void *arg)
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{
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GinEntryAccumulator *eo = (GinEntryAccumulator *) existing;
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const GinEntryAccumulator *en = (const GinEntryAccumulator *) newdata;
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BuildAccumulator *accum = (BuildAccumulator *) arg;
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/*
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* Note this code assumes that newdata contains only one itempointer.
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*/
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if (eo->count >= eo->maxcount)
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{
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if (eo->maxcount > INT_MAX)
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ereport(ERROR,
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(errcode(ERRCODE_PROGRAM_LIMIT_EXCEEDED),
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errmsg("posting list is too long"),
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errhint("Reduce maintenance_work_mem.")));
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accum->allocatedMemory -= GetMemoryChunkSpace(eo->list);
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eo->maxcount *= 2;
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eo->list = (ItemPointerData *)
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repalloc_huge(eo->list, sizeof(ItemPointerData) * eo->maxcount);
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accum->allocatedMemory += GetMemoryChunkSpace(eo->list);
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}
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/* If item pointers are not ordered, they will need to be sorted later */
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if (eo->shouldSort == false)
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{
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int res;
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res = ginCompareItemPointers(eo->list + eo->count - 1, en->list);
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Assert(res != 0);
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if (res > 0)
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eo->shouldSort = true;
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}
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eo->list[eo->count] = en->list[0];
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eo->count++;
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}
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/* Comparator function for rbtree.c */
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static int
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cmpEntryAccumulator(const RBNode *a, const RBNode *b, void *arg)
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{
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const GinEntryAccumulator *ea = (const GinEntryAccumulator *) a;
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const GinEntryAccumulator *eb = (const GinEntryAccumulator *) b;
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BuildAccumulator *accum = (BuildAccumulator *) arg;
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return ginCompareAttEntries(accum->ginstate,
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ea->attnum, ea->key, ea->category,
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eb->attnum, eb->key, eb->category);
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}
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/* Allocator function for rbtree.c */
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static RBNode *
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ginAllocEntryAccumulator(void *arg)
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{
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BuildAccumulator *accum = (BuildAccumulator *) arg;
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GinEntryAccumulator *ea;
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/*
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* Allocate memory by rather big chunks to decrease overhead. We have no
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* need to reclaim RBNodes individually, so this costs nothing.
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*/
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if (accum->entryallocator == NULL || accum->eas_used >= DEF_NENTRY)
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{
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accum->entryallocator = palloc(sizeof(GinEntryAccumulator) * DEF_NENTRY);
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accum->allocatedMemory += GetMemoryChunkSpace(accum->entryallocator);
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accum->eas_used = 0;
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}
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/* Allocate new RBNode from current chunk */
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ea = accum->entryallocator + accum->eas_used;
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accum->eas_used++;
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return (RBNode *) ea;
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}
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void
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ginInitBA(BuildAccumulator *accum)
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{
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/* accum->ginstate is intentionally not set here */
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accum->allocatedMemory = 0;
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accum->entryallocator = NULL;
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accum->eas_used = 0;
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accum->tree = rb_create(sizeof(GinEntryAccumulator),
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cmpEntryAccumulator,
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ginCombineData,
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ginAllocEntryAccumulator,
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NULL, /* no freefunc needed */
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(void *) accum);
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}
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/*
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* This is basically the same as datumCopy(), but extended to count
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* palloc'd space in accum->allocatedMemory.
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*/
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static Datum
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getDatumCopy(BuildAccumulator *accum, OffsetNumber attnum, Datum value)
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{
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Form_pg_attribute att;
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Datum res;
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att = TupleDescAttr(accum->ginstate->origTupdesc, attnum - 1);
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if (att->attbyval)
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res = value;
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else
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{
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res = datumCopy(value, false, att->attlen);
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accum->allocatedMemory += GetMemoryChunkSpace(DatumGetPointer(res));
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}
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return res;
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}
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/*
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* Find/store one entry from indexed value.
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*/
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static void
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ginInsertBAEntry(BuildAccumulator *accum,
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ItemPointer heapptr, OffsetNumber attnum,
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Datum key, GinNullCategory category)
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{
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GinEntryAccumulator eatmp;
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GinEntryAccumulator *ea;
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bool isNew;
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/*
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* For the moment, fill only the fields of eatmp that will be looked at by
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* cmpEntryAccumulator or ginCombineData.
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*/
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eatmp.attnum = attnum;
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eatmp.key = key;
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eatmp.category = category;
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/* temporarily set up single-entry itempointer list */
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eatmp.list = heapptr;
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ea = (GinEntryAccumulator *) rb_insert(accum->tree, (RBNode *) &eatmp,
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&isNew);
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if (isNew)
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{
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/*
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* Finish initializing new tree entry, including making permanent
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* copies of the datum (if it's not null) and itempointer.
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*/
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if (category == GIN_CAT_NORM_KEY)
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ea->key = getDatumCopy(accum, attnum, key);
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ea->maxcount = DEF_NPTR;
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ea->count = 1;
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ea->shouldSort = false;
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ea->list =
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(ItemPointerData *) palloc(sizeof(ItemPointerData) * DEF_NPTR);
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ea->list[0] = *heapptr;
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accum->allocatedMemory += GetMemoryChunkSpace(ea->list);
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}
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else
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{
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/*
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* ginCombineData did everything needed.
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*/
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}
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}
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/*
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* Insert the entries for one heap pointer.
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*
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* Since the entries are being inserted into a balanced binary tree, you
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* might think that the order of insertion wouldn't be critical, but it turns
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* out that inserting the entries in sorted order results in a lot of
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* rebalancing operations and is slow. To prevent this, we attempt to insert
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* the nodes in an order that will produce a nearly-balanced tree if the input
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* is in fact sorted.
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*
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* We do this as follows. First, we imagine that we have an array whose size
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* is the smallest power of two greater than or equal to the actual array
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* size. Second, we insert the middle entry of our virtual array into the
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* tree; then, we insert the middles of each half of our virtual array, then
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* middles of quarters, etc.
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*/
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void
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ginInsertBAEntries(BuildAccumulator *accum,
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ItemPointer heapptr, OffsetNumber attnum,
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Datum *entries, GinNullCategory *categories,
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int32 nentries)
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{
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uint32 step = nentries;
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if (nentries <= 0)
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return;
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Assert(ItemPointerIsValid(heapptr) && attnum >= FirstOffsetNumber);
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/*
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* step will contain largest power of 2 and <= nentries
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*/
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step |= (step >> 1);
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step |= (step >> 2);
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step |= (step >> 4);
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step |= (step >> 8);
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step |= (step >> 16);
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step >>= 1;
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step++;
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while (step > 0)
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{
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int i;
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for (i = step - 1; i < nentries && i >= 0; i += step << 1 /* *2 */ )
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ginInsertBAEntry(accum, heapptr, attnum,
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entries[i], categories[i]);
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step >>= 1; /* /2 */
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}
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}
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static int
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qsortCompareItemPointers(const void *a, const void *b)
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{
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int res = ginCompareItemPointers((ItemPointer) a, (ItemPointer) b);
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/* Assert that there are no equal item pointers being sorted */
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Assert(res != 0);
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return res;
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}
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/* Prepare to read out the rbtree contents using ginGetBAEntry */
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void
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ginBeginBAScan(BuildAccumulator *accum)
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{
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rb_begin_iterate(accum->tree, LeftRightWalk, &accum->tree_walk);
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}
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/*
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* Get the next entry in sequence from the BuildAccumulator's rbtree.
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* This consists of a single key datum and a list (array) of one or more
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* heap TIDs in which that key is found. The list is guaranteed sorted.
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*/
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ItemPointerData *
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ginGetBAEntry(BuildAccumulator *accum,
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OffsetNumber *attnum, Datum *key, GinNullCategory *category,
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uint32 *n)
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{
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GinEntryAccumulator *entry;
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ItemPointerData *list;
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entry = (GinEntryAccumulator *) rb_iterate(&accum->tree_walk);
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if (entry == NULL)
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return NULL; /* no more entries */
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*attnum = entry->attnum;
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*key = entry->key;
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*category = entry->category;
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list = entry->list;
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*n = entry->count;
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Assert(list != NULL && entry->count > 0);
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if (entry->shouldSort && entry->count > 1)
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qsort(list, entry->count, sizeof(ItemPointerData),
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qsortCompareItemPointers);
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return list;
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}
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