mirror of
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900 lines
26 KiB
C++
900 lines
26 KiB
C++
/* Copyright (c) 2000, 2010, Oracle and/or its affiliates. All rights reserved.
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Copyright (c) 2018, MariaDB
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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 St, Fifth Floor, Boston, MA 02110-1301 USA */
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/* Functions to handle keys and fields in forms */
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#include "mariadb.h"
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#include "sql_priv.h"
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#include "key.h" // key_rec_cmp
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#include "field.h" // Field
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/*
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Search after a key that starts with 'field'
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SYNOPSIS
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find_ref_key()
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key First key to check
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key_count How many keys to check
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record Start of record
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field Field to search after
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key_length On partial match, contains length of fields before
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field
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keypart key part # of a field
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NOTES
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Used when calculating key for NEXT_NUMBER
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IMPLEMENTATION
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If no key starts with field test if field is part of some key. If we find
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one, then return first key and set key_length to the number of bytes
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preceding 'field'.
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RETURN
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-1 field is not part of the key
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# Key part for key matching key.
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key_length is set to length of key before (not including) field
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*/
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int find_ref_key(KEY *key, uint key_count, uchar *record, Field *field,
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uint *key_length, uint *keypart)
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{
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int i;
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KEY *key_info;
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uint fieldpos;
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fieldpos= field->offset(record);
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/* Test if some key starts as fieldpos */
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for (i= 0, key_info= key ;
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i < (int) key_count ;
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i++, key_info++)
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{
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if (key_info->key_part[0].offset == fieldpos &&
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key_info->key_part[0].field->type() != MYSQL_TYPE_BIT)
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{ /* Found key. Calc keylength */
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*key_length= *keypart= 0;
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return i; /* Use this key */
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}
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}
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/* Test if some key contains fieldpos */
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for (i= 0, key_info= key;
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i < (int) key_count ;
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i++, key_info++)
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{
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uint j;
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KEY_PART_INFO *key_part;
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*key_length=0;
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for (j=0, key_part=key_info->key_part ;
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j < key_info->user_defined_key_parts ;
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j++, key_part++)
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{
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if (key_part->offset == fieldpos &&
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key_part->field->type() != MYSQL_TYPE_BIT)
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{
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*keypart= j;
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return i; /* Use this key */
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}
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*key_length+= key_part->store_length;
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}
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}
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return(-1); /* No key is ok */
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}
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/**
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Copy part of a record that forms a key or key prefix to a buffer.
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The function takes a complete table record (as e.g. retrieved by
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handler::index_read()), and a description of an index on the same table,
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and extracts the first key_length bytes of the record which are part of a
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key into to_key. If length == 0 then copy all bytes from the record that
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form a key.
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@param to_key buffer that will be used as a key
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@param from_record full record to be copied from
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@param key_info descriptor of the index
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@param key_length specifies length of all keyparts that will be copied
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@param with_zerofill skipped bytes in the key buffer to be filled with 0
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*/
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void key_copy(uchar *to_key, const uchar *from_record, KEY *key_info,
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uint key_length, bool with_zerofill)
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{
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uint length;
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KEY_PART_INFO *key_part;
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if (key_length == 0)
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key_length= key_info->key_length;
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for (key_part= key_info->key_part;
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(int) key_length > 0;
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key_part++, to_key+= length, key_length-= length)
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{
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if (key_part->null_bit)
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{
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*to_key++= MY_TEST(from_record[key_part->null_offset] &
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key_part->null_bit);
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key_length--;
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if (to_key[-1])
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{
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/*
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Don't copy data for null values
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The -1 below is to subtract the null byte which is already handled
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*/
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length= MY_MIN(key_length, uint(key_part->store_length)-1);
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if (with_zerofill)
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bzero((char*) to_key, length);
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continue;
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}
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}
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if (key_part->key_part_flag & HA_BLOB_PART ||
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key_part->key_part_flag & HA_VAR_LENGTH_PART)
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{
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key_length-= HA_KEY_BLOB_LENGTH;
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length= MY_MIN(key_length, key_part->length);
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uint bytes= key_part->field->get_key_image(to_key, length, Field::itRAW);
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if (with_zerofill && bytes < length)
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bzero((char*) to_key + bytes, length - bytes);
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to_key+= HA_KEY_BLOB_LENGTH;
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}
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else
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{
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length= MY_MIN(key_length, key_part->length);
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Field *field= key_part->field;
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CHARSET_INFO *cs= field->charset();
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uint bytes= field->get_key_image(to_key, length, Field::itRAW);
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if (bytes < length)
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cs->cset->fill(cs, (char*) to_key + bytes, length - bytes, ' ');
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}
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}
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}
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/**
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Restore a key from some buffer to record.
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This function converts a key into record format. It can be used in cases
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when we want to return a key as a result row.
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@param to_record record buffer where the key will be restored to
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@param from_key buffer that contains a key
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@param key_info descriptor of the index
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@param key_length specifies length of all keyparts that will be restored
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*/
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void key_restore(uchar *to_record, const uchar *from_key, KEY *key_info,
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uint key_length)
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{
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uint length;
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KEY_PART_INFO *key_part;
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if (key_length == 0)
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{
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key_length= key_info->key_length;
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}
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for (key_part= key_info->key_part ;
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(int) key_length > 0 ;
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key_part++, from_key+= length, key_length-= length)
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{
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uchar used_uneven_bits= 0;
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if (key_part->null_bit)
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{
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bool null_value;
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if ((null_value= *from_key++))
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to_record[key_part->null_offset]|= key_part->null_bit;
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else
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to_record[key_part->null_offset]&= ~key_part->null_bit;
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key_length--;
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if (null_value)
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{
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/*
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Don't copy data for null bytes
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The -1 below is to subtract the null byte which is already handled
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*/
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length= MY_MIN(key_length, uint(key_part->store_length)-1);
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continue;
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}
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}
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if (key_part->type == HA_KEYTYPE_BIT)
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{
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Field_bit *field= (Field_bit *) (key_part->field);
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if (field->bit_len)
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{
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uchar bits= *(from_key + key_part->length -
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field->pack_length_in_rec() - 1);
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set_rec_bits(bits, to_record + key_part->null_offset +
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(key_part->null_bit == 128),
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field->bit_ofs, field->bit_len);
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/* we have now used the byte with 'uneven' bits */
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used_uneven_bits= 1;
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}
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}
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if (key_part->key_part_flag & HA_BLOB_PART)
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{
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/*
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This in fact never happens, as we have only partial BLOB
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keys yet anyway, so it's difficult to find any sence to
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restore the part of a record.
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Maybe this branch is to be removed, but now we
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have to ignore GCov compaining.
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*/
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uint blob_length= uint2korr(from_key);
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Field_blob *field= (Field_blob*) key_part->field;
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from_key+= HA_KEY_BLOB_LENGTH;
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key_length-= HA_KEY_BLOB_LENGTH;
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field->set_ptr_offset(to_record - field->table->record[0],
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(ulong) blob_length, from_key);
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length= key_part->length;
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}
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else if (key_part->key_part_flag & HA_VAR_LENGTH_PART)
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{
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Field *field= key_part->field;
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my_bitmap_map *old_map;
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my_ptrdiff_t ptrdiff= to_record - field->table->record[0];
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field->move_field_offset(ptrdiff);
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key_length-= HA_KEY_BLOB_LENGTH;
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length= MY_MIN(key_length, key_part->length);
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old_map= dbug_tmp_use_all_columns(field->table, field->table->write_set);
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field->set_key_image(from_key, length);
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dbug_tmp_restore_column_map(field->table->write_set, old_map);
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from_key+= HA_KEY_BLOB_LENGTH;
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field->move_field_offset(-ptrdiff);
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}
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else
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{
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length= MY_MIN(key_length, key_part->length);
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/* skip the byte with 'uneven' bits, if used */
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memcpy(to_record + key_part->offset, from_key + used_uneven_bits
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, (size_t) length - used_uneven_bits);
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}
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}
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}
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/**
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Compare if a key has changed.
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@param table TABLE
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@param key key to compare to row
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@param idx Index used
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@param key_length Length of key
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@note
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In theory we could just call field->cmp() for all field types,
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but as we are only interested if a key has changed (not if the key is
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larger or smaller than the previous value) we can do things a bit
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faster by using memcmp() instead.
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@retval
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0 If key is equal
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@retval
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1 Key has changed
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*/
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bool key_cmp_if_same(TABLE *table,const uchar *key,uint idx,uint key_length)
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{
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uint store_length;
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KEY_PART_INFO *key_part;
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const uchar *key_end= key + key_length;;
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for (key_part=table->key_info[idx].key_part;
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key < key_end ;
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key_part++, key+= store_length)
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{
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uint length;
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store_length= key_part->store_length;
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if (key_part->null_bit)
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{
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if (*key != MY_TEST(table->record[0][key_part->null_offset] &
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key_part->null_bit))
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return 1;
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if (*key)
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continue;
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key++;
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store_length--;
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}
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if (!(key_part->key_part_flag & HA_CAN_MEMCMP))
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{
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if (key_part->field->key_cmp(key, key_part->length))
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return 1;
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continue;
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}
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length= MY_MIN((uint) (key_end-key), store_length);
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if (!(key_part->key_type & (FIELDFLAG_NUMBER+FIELDFLAG_BINARY+
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FIELDFLAG_PACK)))
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{
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CHARSET_INFO *cs= key_part->field->charset();
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size_t char_length= key_part->length / cs->mbmaxlen;
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const uchar *pos= table->record[0] + key_part->offset;
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if (length > char_length)
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{
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char_length= my_charpos(cs, pos, pos + length, char_length);
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set_if_smaller(char_length, length);
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}
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if (cs->coll->strnncollsp(cs,
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(const uchar*) key, length,
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(const uchar*) pos, char_length))
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return 1;
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continue;
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}
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if (memcmp(key,table->record[0]+key_part->offset,length))
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return 1;
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}
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return 0;
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}
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/**
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Unpack a field and append it.
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@param[inout] to String to append the field contents to.
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@param field Field to unpack.
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@param rec Record which contains the field data.
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@param max_length Maximum length of field to unpack
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or 0 for unlimited.
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@param prefix_key The field is used as a prefix key.
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*/
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void field_unpack(String *to, Field *field, const uchar *rec, uint max_length,
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bool prefix_key)
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{
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String tmp;
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DBUG_ENTER("field_unpack");
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if (!max_length)
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max_length= field->pack_length();
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if (field)
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{
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if (field->is_null())
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{
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to->append(STRING_WITH_LEN("NULL"));
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DBUG_VOID_RETURN;
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}
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CHARSET_INFO *cs= field->charset();
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field->val_str(&tmp);
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/*
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For BINARY(N) strip trailing zeroes to make
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the error message nice-looking
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*/
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if (field->binary() && field->type() == MYSQL_TYPE_STRING && tmp.length())
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{
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const char *tmp_end= tmp.ptr() + tmp.length();
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while (tmp_end > tmp.ptr() && !*--tmp_end) ;
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tmp.length((uint32)(tmp_end - tmp.ptr() + 1));
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}
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if (cs->mbmaxlen > 1 && prefix_key)
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{
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/*
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Prefix key, multi-byte charset.
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For the columns of type CHAR(N), the above val_str()
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call will return exactly "key_part->length" bytes,
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which can break a multi-byte characters in the middle.
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Align, returning not more than "char_length" characters.
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*/
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size_t charpos, char_length= max_length / cs->mbmaxlen;
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if ((charpos= my_charpos(cs, tmp.ptr(),
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tmp.ptr() + tmp.length(),
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char_length)) < tmp.length())
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tmp.length(charpos);
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}
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if (max_length < field->pack_length())
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tmp.length(MY_MIN(tmp.length(),max_length));
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ErrConvString err(&tmp);
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to->append(err.ptr());
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}
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else
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to->append(STRING_WITH_LEN("???"));
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DBUG_VOID_RETURN;
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}
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/*
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unpack key-fields from record to some buffer.
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This is used mainly to get a good error message. We temporary
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change the column bitmap so that all columns are readable.
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@param
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to Store value here in an easy to read form
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@param
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table Table to use
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@param
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key Key
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*/
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void key_unpack(String *to, TABLE *table, KEY *key)
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{
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my_bitmap_map *old_map= dbug_tmp_use_all_columns(table, table->read_set);
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DBUG_ENTER("key_unpack");
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to->length(0);
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KEY_PART_INFO *key_part_end= key->key_part + key->user_defined_key_parts;
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for (KEY_PART_INFO *key_part= key->key_part;
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key_part < key_part_end;
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key_part++)
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{
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if (key_part->field->invisible > INVISIBLE_USER)
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continue;
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if (to->length())
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to->append('-');
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if (key_part->null_bit)
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{
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if (table->record[0][key_part->null_offset] & key_part->null_bit)
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{
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to->append(STRING_WITH_LEN("NULL"));
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continue;
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}
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}
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field_unpack(to, key_part->field, table->record[0], key_part->length,
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MY_TEST(key_part->key_part_flag & HA_PART_KEY_SEG));
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}
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dbug_tmp_restore_column_map(table->read_set, old_map);
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DBUG_VOID_RETURN;
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}
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/*
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Check if key uses field that is marked in passed field bitmap.
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SYNOPSIS
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is_key_used()
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table TABLE object with which keys and fields are associated.
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idx Key to be checked.
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fields Bitmap of fields to be checked.
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NOTE
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This function uses TABLE::tmp_set bitmap so the caller should care
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about saving/restoring its state if it also uses this bitmap.
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RETURN VALUE
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TRUE Key uses field from bitmap
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FALSE Otherwise
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*/
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bool is_key_used(TABLE *table, uint idx, const MY_BITMAP *fields)
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{
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table->mark_columns_used_by_index(idx, &table->tmp_set);
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return bitmap_is_overlapping(&table->tmp_set, fields);
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}
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/**
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Compare key in row to a given key.
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@param key_part Key part handler
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@param key Key to compare to value in table->record[0]
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@param key_length length of 'key'
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@return
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The return value is SIGN(key_in_row - range_key):
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- 0 Key is equal to range or 'range' == 0 (no range)
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- -1 Key is less than range
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- 1 Key is larger than range
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*/
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int key_cmp(KEY_PART_INFO *key_part, const uchar *key, uint key_length)
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{
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uint store_length;
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for (const uchar *end=key + key_length;
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key < end;
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key+= store_length, key_part++)
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{
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int cmp;
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store_length= key_part->store_length;
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if (key_part->null_bit)
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{
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/* This key part allows null values; NULL is lower than everything */
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bool field_is_null= key_part->field->is_null();
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if (*key) // If range key is null
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{
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/* the range is expecting a null value */
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if (!field_is_null)
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return 1; // Found key is > range
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/* null -- exact match, go to next key part */
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continue;
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}
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else if (field_is_null)
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return -1; // NULL is less than any value
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key++; // Skip null byte
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store_length--;
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}
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if ((cmp=key_part->field->key_cmp(key, key_part->length)) < 0)
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return -1;
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if (cmp > 0)
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return 1;
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}
|
|
return 0; // Keys are equal
|
|
}
|
|
|
|
|
|
/**
|
|
Compare two records in index order.
|
|
|
|
This method is set-up such that it can be called directly from the
|
|
priority queue and it is attempted to be optimised as much as possible
|
|
since this will be called O(N * log N) times while performing a merge
|
|
sort in various places in the code.
|
|
|
|
We retrieve the pointer to table->record[0] using the fact that key_parts
|
|
have an offset making it possible to calculate the start of the record.
|
|
We need to get the diff to the compared record since none of the records
|
|
being compared are stored in table->record[0].
|
|
|
|
We first check for NULL values, if there are no NULL values we use
|
|
a compare method that gets two field pointers and a max length
|
|
and return the result of the comparison.
|
|
|
|
key is a null terminated array, since in some cases (clustered
|
|
primary key) it must compare more than one index.
|
|
|
|
@param key Null terminated array of index information
|
|
@param first_rec Pointer to record compare with
|
|
@param second_rec Pointer to record compare against first_rec
|
|
|
|
@return Return value is SIGN(first_rec - second_rec)
|
|
@retval 0 Keys are equal
|
|
@retval -1 second_rec is greater than first_rec
|
|
@retval +1 first_rec is greater than second_rec
|
|
*/
|
|
|
|
int key_rec_cmp(void *key_p, uchar *first_rec, uchar *second_rec)
|
|
{
|
|
KEY **key= (KEY**) key_p;
|
|
KEY *key_info= *(key++); // Start with first key
|
|
uint key_parts, key_part_num;
|
|
KEY_PART_INFO *key_part= key_info->key_part;
|
|
uchar *rec0= key_part->field->ptr - key_part->offset;
|
|
my_ptrdiff_t first_diff= first_rec - rec0, sec_diff= second_rec - rec0;
|
|
int result= 0;
|
|
Field *field;
|
|
DBUG_ENTER("key_rec_cmp");
|
|
|
|
/* loop over all given keys */
|
|
do
|
|
{
|
|
key_parts= key_info->user_defined_key_parts;
|
|
key_part= key_info->key_part;
|
|
key_part_num= 0;
|
|
|
|
/* loop over every key part */
|
|
do
|
|
{
|
|
field= key_part->field;
|
|
|
|
if (key_part->null_bit)
|
|
{
|
|
/* The key_part can contain NULL values */
|
|
bool first_is_null= field->is_real_null(first_diff);
|
|
bool sec_is_null= field->is_real_null(sec_diff);
|
|
/*
|
|
NULL is smaller then everything so if first is NULL and the other
|
|
not then we know that we should return -1 and for the opposite
|
|
we should return +1. If both are NULL then we call it equality
|
|
although it is a strange form of equality, we have equally little
|
|
information of the real value.
|
|
*/
|
|
if (!first_is_null)
|
|
{
|
|
if (!sec_is_null)
|
|
; /* Fall through, no NULL fields */
|
|
else
|
|
{
|
|
DBUG_RETURN(+1);
|
|
}
|
|
}
|
|
else if (!sec_is_null)
|
|
{
|
|
DBUG_RETURN(-1);
|
|
}
|
|
else
|
|
goto next_loop; /* Both were NULL */
|
|
}
|
|
/*
|
|
No null values in the fields
|
|
We use the virtual method cmp_max with a max length parameter.
|
|
For most field types this translates into a cmp without
|
|
max length. The exceptions are the BLOB and VARCHAR field types
|
|
that take the max length into account.
|
|
*/
|
|
if ((result= field->cmp_max(field->ptr+first_diff, field->ptr+sec_diff,
|
|
key_part->length)))
|
|
DBUG_RETURN(result);
|
|
next_loop:
|
|
key_part++;
|
|
key_part_num++;
|
|
} while (key_part_num < key_parts); /* this key is done */
|
|
|
|
key_info= *(key++);
|
|
} while (key_info); /* no more keys to test */
|
|
DBUG_RETURN(0);
|
|
}
|
|
|
|
|
|
/*
|
|
Compare two key tuples.
|
|
|
|
@brief
|
|
Compare two key tuples, i.e. two key values in KeyTupleFormat.
|
|
|
|
@param part KEY_PART_INFO with key description
|
|
@param key1 First key to compare
|
|
@param key2 Second key to compare
|
|
@param tuple_length Length of key1 (and key2, they are the same) in bytes.
|
|
|
|
@return
|
|
@retval 0 key1 == key2
|
|
@retval -1 key1 < key2
|
|
@retval +1 key1 > key2
|
|
*/
|
|
|
|
int key_tuple_cmp(KEY_PART_INFO *part, uchar *key1, uchar *key2,
|
|
uint tuple_length)
|
|
{
|
|
uchar *key1_end= key1 + tuple_length;
|
|
int UNINIT_VAR(len);
|
|
int res;
|
|
for (;key1 < key1_end; key1 += len, key2 += len, part++)
|
|
{
|
|
len= part->store_length;
|
|
if (part->null_bit)
|
|
{
|
|
if (*key1) // key1 == NULL
|
|
{
|
|
if (!*key2) // key1(NULL) < key2(notNULL)
|
|
return -1;
|
|
continue;
|
|
}
|
|
else if (*key2) // key1(notNULL) > key2 (NULL)
|
|
return 1;
|
|
/* Step over the NULL bytes for key_cmp() call */
|
|
key1++;
|
|
key2++;
|
|
len--;
|
|
}
|
|
if ((res= part->field->key_cmp(key1, key2)))
|
|
return res;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
|
|
/**
|
|
Get hash value for the key from a key buffer
|
|
|
|
@param key_info the key descriptor
|
|
@param used_key_part number of key parts used for the key
|
|
@param key pointer to the buffer with the key value
|
|
|
|
@datails
|
|
When hashing we should take special care only of:
|
|
1. NULLs (and keyparts which can be null so one byte reserved for it);
|
|
2. Strings for which we have to take into account their collations
|
|
and the values of their lengths in the prefixes.
|
|
|
|
@return hash value calculated for the key
|
|
*/
|
|
|
|
ulong key_hashnr(KEY *key_info, uint used_key_parts, const uchar *key)
|
|
{
|
|
ulong nr=1, nr2=4;
|
|
KEY_PART_INFO *key_part= key_info->key_part;
|
|
KEY_PART_INFO *end_key_part= key_part + used_key_parts;
|
|
|
|
for (; key_part < end_key_part; key_part++)
|
|
{
|
|
uchar *pos= (uchar*)key;
|
|
CHARSET_INFO *UNINIT_VAR(cs);
|
|
size_t UNINIT_VAR(length), UNINIT_VAR(pack_length);
|
|
bool is_string= TRUE;
|
|
|
|
key+= key_part->length;
|
|
if (key_part->null_bit)
|
|
{
|
|
key++; /* Skip null byte */
|
|
if (*pos) /* Found null */
|
|
{
|
|
nr^= (nr << 1) | 1;
|
|
/* Add key pack length to key for VARCHAR segments */
|
|
switch (key_part->type) {
|
|
case HA_KEYTYPE_VARTEXT1:
|
|
case HA_KEYTYPE_VARBINARY1:
|
|
case HA_KEYTYPE_VARTEXT2:
|
|
case HA_KEYTYPE_VARBINARY2:
|
|
key+= 2;
|
|
break;
|
|
default:
|
|
;
|
|
}
|
|
continue;
|
|
}
|
|
pos++; /* Skip null byte */
|
|
}
|
|
/* If it is string set parameters of the string */
|
|
switch (key_part->type) {
|
|
case HA_KEYTYPE_TEXT:
|
|
cs= key_part->field->charset();
|
|
length= key_part->length;
|
|
pack_length= 0;
|
|
break;
|
|
case HA_KEYTYPE_BINARY :
|
|
cs= &my_charset_bin;
|
|
length= key_part->length;
|
|
pack_length= 0;
|
|
break;
|
|
case HA_KEYTYPE_VARTEXT1:
|
|
case HA_KEYTYPE_VARTEXT2:
|
|
cs= key_part->field->charset();
|
|
length= uint2korr(pos);
|
|
pack_length= 2;
|
|
break;
|
|
case HA_KEYTYPE_VARBINARY1:
|
|
case HA_KEYTYPE_VARBINARY2:
|
|
cs= &my_charset_bin;
|
|
length= uint2korr(pos);
|
|
pack_length= 2;
|
|
break;
|
|
default:
|
|
is_string= FALSE;
|
|
}
|
|
|
|
if (is_string)
|
|
{
|
|
if (cs->mbmaxlen > 1)
|
|
{
|
|
size_t char_length= my_charpos(cs, pos + pack_length,
|
|
pos + pack_length + length,
|
|
length / cs->mbmaxlen);
|
|
set_if_smaller(length, char_length);
|
|
}
|
|
cs->coll->hash_sort(cs, pos+pack_length, length, &nr, &nr2);
|
|
key+= pack_length;
|
|
}
|
|
else
|
|
{
|
|
for (; pos < (uchar*)key ; pos++)
|
|
{
|
|
nr^=(ulong) ((((uint) nr & 63)+nr2)*((uint) *pos)) + (nr << 8);
|
|
nr2+=3;
|
|
}
|
|
}
|
|
}
|
|
DBUG_PRINT("exit", ("hash: %lx", nr));
|
|
return(nr);
|
|
}
|
|
|
|
|
|
/**
|
|
Check whether two keys in the key buffers are equal
|
|
|
|
@param key_info the key descriptor
|
|
@param used_key_part number of key parts used for the keys
|
|
@param key1 pointer to the buffer with the first key
|
|
@param key2 pointer to the buffer with the second key
|
|
|
|
@detail See details of key_hashnr().
|
|
|
|
@retval TRUE keys in the buffers are NOT equal
|
|
@retval FALSE keys in the buffers are equal
|
|
*/
|
|
|
|
bool key_buf_cmp(KEY *key_info, uint used_key_parts,
|
|
const uchar *key1, const uchar *key2)
|
|
{
|
|
KEY_PART_INFO *key_part= key_info->key_part;
|
|
KEY_PART_INFO *end_key_part= key_part + used_key_parts;
|
|
|
|
for (; key_part < end_key_part; key_part++)
|
|
{
|
|
uchar *pos1= (uchar*)key1;
|
|
uchar *pos2= (uchar*)key2;
|
|
CHARSET_INFO *UNINIT_VAR(cs);
|
|
size_t UNINIT_VAR(length1), UNINIT_VAR(length2), UNINIT_VAR(pack_length);
|
|
bool is_string= TRUE;
|
|
|
|
key1+= key_part->length;
|
|
key2+= key_part->length;
|
|
if (key_part->null_bit)
|
|
{
|
|
key1++; key2++; /* Skip null byte */
|
|
if (*pos1 && *pos2) /* Both are null */
|
|
{
|
|
/* Add key pack length to key for VARCHAR segments */
|
|
switch (key_part->type) {
|
|
case HA_KEYTYPE_VARTEXT1:
|
|
case HA_KEYTYPE_VARBINARY1:
|
|
case HA_KEYTYPE_VARTEXT2:
|
|
case HA_KEYTYPE_VARBINARY2:
|
|
key1+= 2; key2+= 2;
|
|
break;
|
|
default:
|
|
;
|
|
}
|
|
continue;
|
|
}
|
|
if (*pos1 != *pos2)
|
|
return TRUE;
|
|
pos1++; pos2++;
|
|
}
|
|
|
|
/* If it is string set parameters of the string */
|
|
switch (key_part->type) {
|
|
case HA_KEYTYPE_TEXT:
|
|
cs= key_part->field->charset();
|
|
length1= length2= key_part->length;
|
|
pack_length= 0;
|
|
break;
|
|
case HA_KEYTYPE_BINARY :
|
|
cs= &my_charset_bin;
|
|
length1= length2= key_part->length;
|
|
pack_length= 0;
|
|
break;
|
|
case HA_KEYTYPE_VARTEXT1:
|
|
case HA_KEYTYPE_VARTEXT2:
|
|
cs= key_part->field->charset();
|
|
length1= uint2korr(pos1);
|
|
length2= uint2korr(pos2);
|
|
pack_length= 2;
|
|
break;
|
|
case HA_KEYTYPE_VARBINARY1:
|
|
case HA_KEYTYPE_VARBINARY2:
|
|
cs= &my_charset_bin;
|
|
length1= uint2korr(pos1);
|
|
length2= uint2korr(pos2);
|
|
pack_length= 2;
|
|
break;
|
|
default:
|
|
is_string= FALSE;
|
|
}
|
|
|
|
if (is_string)
|
|
{
|
|
/*
|
|
Compare the strings taking into account length in characters
|
|
and collation
|
|
*/
|
|
size_t byte_len1= length1, byte_len2= length2;
|
|
if (cs->mbmaxlen > 1)
|
|
{
|
|
size_t char_length1= my_charpos(cs, pos1 + pack_length,
|
|
pos1 + pack_length + length1,
|
|
length1 / cs->mbmaxlen);
|
|
size_t char_length2= my_charpos(cs, pos2 + pack_length,
|
|
pos2 + pack_length + length2,
|
|
length2 / cs->mbmaxlen);
|
|
set_if_smaller(length1, char_length1);
|
|
set_if_smaller(length2, char_length2);
|
|
}
|
|
if (length1 != length2 ||
|
|
cs->coll->strnncollsp(cs,
|
|
pos1 + pack_length, byte_len1,
|
|
pos2 + pack_length, byte_len2))
|
|
return TRUE;
|
|
key1+= pack_length; key2+= pack_length;
|
|
}
|
|
else
|
|
{
|
|
/* it is OK to compare non-string byte per byte */
|
|
for (; pos1 < (uchar*)key1 ; pos1++, pos2++)
|
|
{
|
|
if (pos1[0] != pos2[0])
|
|
return TRUE;
|
|
}
|
|
}
|
|
}
|
|
return FALSE;
|
|
}
|