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			16 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			550 lines
		
	
	
	
		
			16 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/* Copyright (C) 2006 MySQL AB & Alexey Botchkov & MySQL Finland AB
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   & TCX DataKonsult AB
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   This program is free software; you can redistribute it and/or modify
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   it under the terms of the GNU General Public License as published by
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   the Free Software Foundation; version 2 of the License.
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   This program is distributed in the hope that it will be useful,
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   but WITHOUT ANY WARRANTY; without even the implied warranty of
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   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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   GNU General Public License for more details.
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   You should have received a copy of the GNU General Public License
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   along with this program; if not, write to the Free Software
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   Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1335 USA */
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#include "maria_def.h"
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#include "trnman.h"
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#include "ma_key_recover.h"
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#ifdef HAVE_RTREE_KEYS
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#include "ma_rt_index.h"
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#include "ma_rt_key.h"
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#include "ma_rt_mbr.h"
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typedef struct
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{
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  double square;
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  int n_node;
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  const uchar *key;
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  double *coords;
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} SplitStruct;
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inline static double *reserve_coords(double **d_buffer, int n_dim)
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{
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  double *coords= *d_buffer;
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  (*d_buffer)+= n_dim * 2;
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  return coords;
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}
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static void mbr_join(double *a, const double *b, int n_dim)
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{
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  double *end= a + n_dim * 2;
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  do
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  {
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    if (a[0] > b[0])
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      a[0]= b[0];
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    if (a[1] < b[1])
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      a[1]= b[1];
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    a+= 2;
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    b+= 2;
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  } while (a != end);
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}
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/*
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Counts the square of mbr which is a join of a and b
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*/
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static double mbr_join_square(const double *a, const double *b, int n_dim)
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{
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  const double *end= a + n_dim * 2;
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  double square= 1.0;
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  do
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  {
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    square *=
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      ((a[1] < b[1]) ? b[1] : a[1]) - ((a[0] > b[0]) ? b[0] : a[0]);
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    a+= 2;
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    b+= 2;
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  } while (a != end);
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  return square;
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}
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static double count_square(const double *a, int n_dim)
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{
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  const double *end= a + n_dim * 2;
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  double square= 1.0;
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  do
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  {
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    square *= a[1] - a[0];
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    a+= 2;
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  } while (a != end);
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  return square;
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}
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inline static void copy_coords(double *dst, const double *src, int n_dim)
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{
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  memcpy(dst, src, sizeof(double) * (n_dim * 2));
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}
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/**
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  Select two nodes to collect group upon.
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  Note that such function uses 'double' arithmetic so may behave differently
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  on different platforms/builds. There are others in this file.
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*/
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static void pick_seeds(SplitStruct *node, int n_entries,
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     SplitStruct **seed_a, SplitStruct **seed_b, int n_dim)
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{
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  SplitStruct *cur1;
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  SplitStruct *lim1= node + (n_entries - 1);
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  SplitStruct *cur2;
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  SplitStruct *lim2= node + n_entries;
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  double max_d= -DBL_MAX;
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  double d;
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  for (cur1= node; cur1 < lim1; cur1++)
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  {
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    for (cur2=cur1 + 1; cur2 < lim2; cur2++)
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    {
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      d= mbr_join_square(cur1->coords, cur2->coords, n_dim) - cur1->square -
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          cur2->square;
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      if (d > max_d)
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      {
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        max_d= d;
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        *seed_a= cur1;
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        *seed_b= cur2;
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      }
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    }
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  }
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}
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/*
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Select next node and group where to add
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*/
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static void pick_next(SplitStruct *node, int n_entries, double *g1, double *g2,
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    SplitStruct **choice, int *n_group, int n_dim)
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{
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  SplitStruct *cur= node;
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  SplitStruct *end= node + n_entries;
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  double max_diff= -DBL_MAX;
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  for (; cur < end; cur++)
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  {
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    double diff;
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    double abs_diff;
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    if (cur->n_node)
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    {
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      continue;
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    }
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    diff= mbr_join_square(g1, cur->coords, n_dim) -
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      mbr_join_square(g2, cur->coords, n_dim);
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    abs_diff= fabs(diff);
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    if (abs_diff  > max_diff)
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    {
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      max_diff= abs_diff;
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      *n_group= 1 + (diff > 0);
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      *choice= cur;
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    }
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  }
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}
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/*
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Mark not-in-group entries as n_group
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*/
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static void mark_all_entries(SplitStruct *node, int n_entries, int n_group)
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{
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  SplitStruct *cur= node;
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  SplitStruct *end= node + n_entries;
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  for (; cur < end; cur++)
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  {
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    if (cur->n_node)
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    {
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      continue;
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    }
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    cur->n_node= n_group;
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  }
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}
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static int split_maria_rtree_node(SplitStruct *node, int n_entries,
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                                  int all_size, /* Total key's size */
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                                  int key_size,
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                                  int min_size, /* Minimal group size */
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                                  int size1, int size2 /* initial group sizes */,
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                                  double **d_buffer, int n_dim)
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{
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  SplitStruct *cur;
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  SplitStruct *UNINIT_VAR(a);
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  SplitStruct *UNINIT_VAR(b);
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  double *g1= reserve_coords(d_buffer, n_dim);
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  double *g2= reserve_coords(d_buffer, n_dim);
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  SplitStruct *UNINIT_VAR(next);
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  int UNINIT_VAR(next_node);
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  int i;
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  SplitStruct *end= node + n_entries;
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  if (all_size < min_size * 2)
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  {
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    return 1;
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  }
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  cur= node;
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  for (; cur < end; cur++)
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  {
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    cur->square= count_square(cur->coords, n_dim);
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    cur->n_node= 0;
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  }
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  pick_seeds(node, n_entries, &a, &b, n_dim);
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  a->n_node= 1;
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  b->n_node= 2;
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  copy_coords(g1, a->coords, n_dim);
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  size1+= key_size;
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  copy_coords(g2, b->coords, n_dim);
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  size2+= key_size;
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  for (i=n_entries - 2; i>0; --i)
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  {
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    if (all_size - (size2 + key_size) < min_size) /* Can't write into group 2 */
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    {
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      mark_all_entries(node, n_entries, 1);
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      break;
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    }
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    if (all_size - (size1 + key_size) < min_size) /* Can't write into group 1 */
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    {
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      mark_all_entries(node, n_entries, 2);
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      break;
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    }
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    pick_next(node, n_entries, g1, g2, &next, &next_node, n_dim);
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    if (next_node == 1)
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    {
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      size1+= key_size;
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      mbr_join(g1, next->coords, n_dim);
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    }
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    else
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    {
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      size2+= key_size;
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      mbr_join(g2, next->coords, n_dim);
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    }
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    next->n_node= next_node;
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  }
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  return 0;
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}
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/**
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  Logs key reorganization done in a split page (new page is logged elsewhere).
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  The effect of a split on the split page is three changes:
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  - some piece of the page move to different places inside this page (we are
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  not interested here in the pieces which move to the new page)
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  - the key is inserted into the page or not (could be in the new page)
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  - page is shrunk
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  All this is uniquely determined by a few parameters:
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  - the key (starting at 'key-nod_flag', for 'full_length' bytes
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  (maria_rtree_split_page() seems to depend on its parameters key&key_length
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  but in fact it reads more (to the left: nod_flag, and to the right:
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  full_length)
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  - the binary content of the page
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  - some variables in the share
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  - double arithmetic, which is unpredictable from machine to machine and
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  from build to build (see pick_seeds() above: it has a comparison between
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  double-s 'if (d > max_d)' so the comparison can go differently from machine
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  to machine or build to build, it has happened in real life).
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  If one day we use precision-math instead of double-math, in GIS, then the
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  last parameter would become constant accross machines and builds and we
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  could some cheap logging: just log the few parameters above.
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  Until then, we log the list of memcpy() operations (fortunately, we often do
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  not have to log the source bytes, as they can be found in the page before
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  applying the REDO; the only source bytes to log are the key), the key if it
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  was inserted into this page, and the shrinking.
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  @param  info             table
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  @param  page             page's offset in the file
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  @param  buff             content of the page (post-split)
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  @param  key_with_nod_flag pointer to key-nod_flag
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  @param  full_length      length of (key + (nod_flag (if node) or rowid (if
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                           leaf)))
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  @param  log_internal_copy encoded list of mempcy() operations done on
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                           split page, having their source in the page
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  @param  log_internal_copy_length length of above list, in bytes
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  @param  log_key_copy     operation describing the key's copy, or NULL if the
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                           inserted key was not put into the page (was put in
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                           new page, so does not have to be logged here)
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  @param  length_diff      by how much the page has shrunk during split
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*/
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static my_bool _ma_log_rt_split(MARIA_PAGE *page,
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                                const uchar *key_with_nod_flag,
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                                uint full_length,
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                                const uchar *log_internal_copy,
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                                uint log_internal_copy_length,
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                                const uchar *log_key_copy,
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                                uint length_diff)
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{
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  MARIA_HA    *info=  page->info;
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  MARIA_SHARE *share= info->s;
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  LSN lsn;
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  uchar log_data[FILEID_STORE_SIZE + PAGE_STORE_SIZE + 1 + 2 + 1 + 2 + 2 + 7],
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    *log_pos;
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  LEX_CUSTRING log_array[TRANSLOG_INTERNAL_PARTS + 6];
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  uint translog_parts, extra_length= 0;
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  my_off_t page_pos;
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  DBUG_ENTER("_ma_log_rt_split");
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  DBUG_PRINT("enter", ("page: %p", page));
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  DBUG_ASSERT(share->now_transactional);
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  page_pos= page->pos / share->block_size;
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  page_store(log_data + FILEID_STORE_SIZE, page_pos);
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  log_pos= log_data+ FILEID_STORE_SIZE + PAGE_STORE_SIZE;
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  log_pos[0]= KEY_OP_DEL_SUFFIX;
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  log_pos++;
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  DBUG_ASSERT((int)length_diff > 0);
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  int2store(log_pos, length_diff);
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  log_pos+= 2;
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  log_pos[0]= KEY_OP_MULTI_COPY;
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  log_pos++;
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  int2store(log_pos, full_length);
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  log_pos+= 2;
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  int2store(log_pos, log_internal_copy_length);
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  log_pos+= 2;
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  log_array[TRANSLOG_INTERNAL_PARTS + 0].str=    log_data;
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  log_array[TRANSLOG_INTERNAL_PARTS + 0].length= sizeof(log_data) - 7;
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  log_array[TRANSLOG_INTERNAL_PARTS + 1].str=    log_internal_copy;
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  log_array[TRANSLOG_INTERNAL_PARTS + 1].length= log_internal_copy_length;
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  translog_parts= 2;
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  if (log_key_copy != NULL) /* need to store key into record */
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  {
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    log_array[TRANSLOG_INTERNAL_PARTS + 2].str=    log_key_copy;
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    log_array[TRANSLOG_INTERNAL_PARTS + 2].length= 1 + 2 + 1 + 2;
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    log_array[TRANSLOG_INTERNAL_PARTS + 3].str=    key_with_nod_flag;
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    log_array[TRANSLOG_INTERNAL_PARTS + 3].length= full_length;
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    extra_length= 1 + 2 + 1 + 2 + full_length;
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    translog_parts+= 2;
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  }
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  _ma_log_key_changes(page,
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                      log_array + TRANSLOG_INTERNAL_PARTS + translog_parts,
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                      log_pos, &extra_length, &translog_parts);
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  /* Remember new page length for future log entires for same page */
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  page->org_size= page->size;
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  if (translog_write_record(&lsn, LOGREC_REDO_INDEX,
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                            info->trn, info,
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                            (translog_size_t) ((log_pos - log_data) +
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                                               log_internal_copy_length +
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                                               extra_length),
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                            TRANSLOG_INTERNAL_PARTS + translog_parts,
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                            log_array, log_data, NULL))
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    DBUG_RETURN(1);
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  DBUG_RETURN(0);
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}
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/**
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   0 ok; the created page is put into page cache; the shortened one is not (up
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   to the caller to do it)
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   1 or -1: error.
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   If new_page_offs==NULL, won't create new page (for redo phase).
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*/
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int maria_rtree_split_page(const MARIA_KEY *key, MARIA_PAGE *page,
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                           my_off_t *new_page_offs)
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{
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  MARIA_HA   *info= page->info;
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  MARIA_SHARE *share= info->s;
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  const my_bool transactional= share->now_transactional;
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  int n1, n2; /* Number of items in groups */
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  SplitStruct *task;
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  SplitStruct *cur;
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  SplitStruct *stop;
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  double *coord_buf;
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  double *next_coord;
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  int n_dim;
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  uchar *source_cur, *cur1, *cur2;
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  uchar *new_page_buff= 0, *log_internal_copy, *log_internal_copy_ptr,
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    *log_key_copy= NULL;
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  int err_code= 0;
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  uint new_page_length;
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  uint nod_flag= page->node;
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  uint org_length= page->size;
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  uint full_length= key->data_length + (nod_flag ? nod_flag :
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                                        key->ref_length);
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  uint key_data_length= key->data_length;
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  int max_keys= ((org_length - share->keypage_header) / (full_length));
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  MARIA_PINNED_PAGE tmp_page_link, *page_link= &tmp_page_link;
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  MARIA_KEYDEF *keyinfo= key->keyinfo;
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  my_bool new_page_buff_alloced= 0, coord_buf_alloced= 0;
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  DBUG_ENTER("maria_rtree_split_page");
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  DBUG_PRINT("rtree", ("splitting block"));
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  n_dim= keyinfo->keysegs / 2;
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  alloc_on_stack(*info->stack_end_ptr, coord_buf, coord_buf_alloced,
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                 (n_dim * 2 * sizeof(double) * (max_keys + 1 + 4) +
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                  sizeof(SplitStruct) * (max_keys + 1)));
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  if (!coord_buf)
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    DBUG_RETURN(-1);
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  task= (SplitStruct *)(coord_buf + n_dim * 2 * (max_keys + 1 + 4));
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  next_coord= coord_buf;
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  stop= task + max_keys;
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  source_cur= rt_PAGE_FIRST_KEY(share, page->buff, nod_flag);
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  for (cur= task;
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       cur < stop;
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       cur++, source_cur= rt_PAGE_NEXT_KEY(share, source_cur, key_data_length,
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                                           nod_flag))
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  {
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    cur->coords= reserve_coords(&next_coord, n_dim);
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    cur->key= source_cur;
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    maria_rtree_d_mbr(keyinfo->seg, source_cur, key_data_length, cur->coords);
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						|
  }
 | 
						|
 | 
						|
  cur->coords= reserve_coords(&next_coord, n_dim);
 | 
						|
  maria_rtree_d_mbr(keyinfo->seg, key->data, key_data_length, cur->coords);
 | 
						|
  cur->key= key->data;
 | 
						|
 | 
						|
 | 
						|
  if (split_maria_rtree_node(task, max_keys + 1,
 | 
						|
                             page->size + full_length + 2,
 | 
						|
                             full_length,
 | 
						|
       rt_PAGE_MIN_SIZE(keyinfo->block_length),
 | 
						|
       2, 2, &next_coord, n_dim))
 | 
						|
  {
 | 
						|
    err_code= 1;
 | 
						|
    goto split_err;
 | 
						|
  }
 | 
						|
 | 
						|
  /* Allocate buffer for new page and piece of log record */
 | 
						|
  alloc_on_stack(*info->stack_end_ptr, new_page_buff, new_page_buff_alloced,
 | 
						|
                  (keyinfo->block_length +
 | 
						|
                    (transactional ? max_keys * (2 + 2) + 1 + 2 + 1 + 2 : 0)));
 | 
						|
  if (!new_page_buff)
 | 
						|
  {
 | 
						|
    err_code= -1;
 | 
						|
    goto split_err;
 | 
						|
  }
 | 
						|
 | 
						|
  log_internal_copy= log_internal_copy_ptr= new_page_buff +
 | 
						|
    keyinfo->block_length;
 | 
						|
  bzero(new_page_buff, share->block_size);
 | 
						|
 | 
						|
  stop= task + (max_keys + 1);
 | 
						|
  cur1= rt_PAGE_FIRST_KEY(share, page->buff, nod_flag);
 | 
						|
  cur2= rt_PAGE_FIRST_KEY(share, new_page_buff, nod_flag);
 | 
						|
 | 
						|
  n1= n2= 0;
 | 
						|
  for (cur= task; cur < stop; cur++)
 | 
						|
  {
 | 
						|
    uchar *to;
 | 
						|
    const uchar *cur_key= cur->key;
 | 
						|
    my_bool log_this_change;
 | 
						|
    DBUG_ASSERT(log_key_copy == NULL);
 | 
						|
    if (cur->n_node == 1)
 | 
						|
    {
 | 
						|
      to= cur1;
 | 
						|
      cur1= rt_PAGE_NEXT_KEY(share, cur1, key_data_length, nod_flag);
 | 
						|
      n1++;
 | 
						|
      log_this_change= transactional;
 | 
						|
    }
 | 
						|
    else
 | 
						|
    {
 | 
						|
      to= cur2;
 | 
						|
      cur2= rt_PAGE_NEXT_KEY(share, cur2, key_data_length, nod_flag);
 | 
						|
      n2++;
 | 
						|
      log_this_change= FALSE;
 | 
						|
    }
 | 
						|
    if (to != cur_key)
 | 
						|
    {
 | 
						|
      uchar *to_with_nod_flag= to - nod_flag;
 | 
						|
      const uchar *cur_key_with_nod_flag= cur_key - nod_flag;
 | 
						|
      memcpy(to_with_nod_flag, cur_key_with_nod_flag, full_length);
 | 
						|
      if (log_this_change)
 | 
						|
      {
 | 
						|
        size_t to_with_nod_flag_offs= to_with_nod_flag - page->buff;
 | 
						|
        if (likely(cur_key != key->data))
 | 
						|
        {
 | 
						|
          /* this memcpy() is internal to the page (source in the page) */
 | 
						|
          size_t cur_key_with_nod_flag_offs= cur_key_with_nod_flag - page->buff;
 | 
						|
          int2store(log_internal_copy_ptr, to_with_nod_flag_offs);
 | 
						|
          log_internal_copy_ptr+= 2;
 | 
						|
          int2store(log_internal_copy_ptr, cur_key_with_nod_flag_offs);
 | 
						|
          log_internal_copy_ptr+= 2;
 | 
						|
        }
 | 
						|
        else
 | 
						|
        {
 | 
						|
          /* last iteration, and this involves *key: source is external */
 | 
						|
          log_key_copy= log_internal_copy_ptr;
 | 
						|
          log_key_copy[0]= KEY_OP_OFFSET;
 | 
						|
          int2store(log_key_copy + 1, to_with_nod_flag_offs);
 | 
						|
          log_key_copy[3]= KEY_OP_CHANGE;
 | 
						|
          int2store(log_key_copy + 4, full_length);
 | 
						|
          /* _ma_log_rt_split() will store *key, right after */
 | 
						|
        }
 | 
						|
      }
 | 
						|
    }
 | 
						|
  }
 | 
						|
  { /* verify that above loop didn't touch header bytes */
 | 
						|
    uint i;
 | 
						|
    for (i= 0; i < share->keypage_header; i++)
 | 
						|
      DBUG_ASSERT(new_page_buff[i]==0);
 | 
						|
  }
 | 
						|
 | 
						|
  if (nod_flag)
 | 
						|
    _ma_store_keypage_flag(share, new_page_buff, KEYPAGE_FLAG_ISNOD);
 | 
						|
  _ma_store_keynr(share, new_page_buff, keyinfo->key_nr);
 | 
						|
  new_page_length= share->keypage_header + n2 * full_length;
 | 
						|
  _ma_store_page_used(share, new_page_buff, new_page_length);
 | 
						|
  page->size= share->keypage_header + n1 * full_length;
 | 
						|
  page_store_size(share, page);
 | 
						|
 | 
						|
  if ((*new_page_offs= _ma_new(info, DFLT_INIT_HITS, &page_link)) ==
 | 
						|
      HA_OFFSET_ERROR)
 | 
						|
    err_code= -1;
 | 
						|
  else
 | 
						|
  {
 | 
						|
    MARIA_PAGE new_page;
 | 
						|
    _ma_page_setup(&new_page, info, keyinfo, *new_page_offs, new_page_buff);
 | 
						|
 | 
						|
    if (transactional &&
 | 
						|
        ( /* log change to split page */
 | 
						|
         _ma_log_rt_split(page, key->data - nod_flag,
 | 
						|
                          full_length, log_internal_copy,
 | 
						|
                          (uint)(log_internal_copy_ptr - log_internal_copy),
 | 
						|
                          log_key_copy, (uint)(org_length - page->size)) ||
 | 
						|
         /* and to new page */
 | 
						|
         _ma_log_new(&new_page, 0)))
 | 
						|
      err_code= -1;
 | 
						|
 | 
						|
    if (_ma_write_keypage(&new_page, page_link->write_lock,
 | 
						|
                          DFLT_INIT_HITS))
 | 
						|
      err_code= -1;
 | 
						|
  }
 | 
						|
  DBUG_PRINT("rtree", ("split new block: %lu", (ulong) *new_page_offs));
 | 
						|
 | 
						|
split_err:
 | 
						|
  stack_alloc_free(new_page_buff, new_page_buff_alloced);
 | 
						|
  stack_alloc_free(coord_buf, coord_buf_alloced);
 | 
						|
  DBUG_RETURN(err_code);
 | 
						|
}
 | 
						|
 | 
						|
#endif /*HAVE_RTREE_KEYS*/
 |