item_func.cc 70.1 KB
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/* Copyright (C) 2000-2003 MySQL AB
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   This program is free software; you can redistribute it and/or modify
   it under the terms of the GNU General Public License as published by
   the Free Software Foundation; either version 2 of the License, or
   (at your option) any later version.

   This program is distributed in the hope that it will be useful,
   but WITHOUT ANY WARRANTY; without even the implied warranty of
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
   GNU General Public License for more details.

   You should have received a copy of the GNU General Public License
   along with this program; if not, write to the Free Software
   Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA */


/* This file defines all numerical functions */

#ifdef __GNUC__
#pragma implementation				// gcc: Class implementation
#endif

#include "mysql_priv.h"
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#include "slave.h"				// for wait_for_master_pos
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#include <m_ctype.h>
#include <hash.h>
#include <time.h>
#include <ft_global.h>

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static void my_coll_agg_error(DTCollation &c1, DTCollation &c2,
			      const char *fname)
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{
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  my_error(ER_CANT_AGGREGATE_2COLLATIONS,MYF(0),
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	   c1.collation->name,c1.derivation_name(),
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	   c2.collation->name,c2.derivation_name(),
	   fname);
}

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static void my_coll_agg_error(DTCollation &c1,
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			       DTCollation &c2,
			       DTCollation &c3,
			       const char *fname)
{
  my_error(ER_CANT_AGGREGATE_3COLLATIONS,MYF(0),
  	   c1.collation->name,c1.derivation_name(),
	   c2.collation->name,c2.derivation_name(),
	   c3.collation->name,c3.derivation_name(),
	   fname);
}

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static void my_coll_agg_error(Item** args, uint count, const char *fname)
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{
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  if (count == 2)
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    my_coll_agg_error(args[0]->collation, args[1]->collation, fname);
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  else if (count == 3)
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    my_coll_agg_error(args[0]->collation,
		      args[1]->collation,
		      args[2]->collation,
		      fname);
  else
    my_error(ER_CANT_AGGREGATE_NCOLLATIONS,MYF(0),fname);
}

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bool Item_func::agg_arg_collations(DTCollation &c, Item **av, uint count)
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{
  uint i;
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  c.set(av[0]->collation);
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  for (i= 1; i < count; i++)
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  {
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    if (c.aggregate(av[i]->collation))
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    {
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      my_coll_agg_error(av, count, func_name());
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      return TRUE;
    }
  }
  return FALSE;
}

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bool Item_func::agg_arg_collations_for_comparison(DTCollation &c,
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						  Item **av, uint count)
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{
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  if (agg_arg_collations(c, av, count))
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    return TRUE;
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  if (c.derivation == DERIVATION_NONE)
  {
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    my_coll_agg_error(av, count, func_name());
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    return TRUE;
  }
  return FALSE;
}


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/* return TRUE if item is a constant */

bool
eval_const_cond(COND *cond)
{
  return ((Item_func*) cond)->val_int() ? TRUE : FALSE;
}

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void Item_func::set_arguments(List<Item> &list)
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{
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  allowed_arg_cols= 1;
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  arg_count=list.elements;
  if ((args=(Item**) sql_alloc(sizeof(Item*)*arg_count)))
  {
    uint i=0;
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    List_iterator_fast<Item> li(list);
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    Item *item;

    while ((item=li++))
    {
      args[i++]= item;
      with_sum_func|=item->with_sum_func;
    }
  }
  list.empty();					// Fields are used
}

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Item_func::Item_func(List<Item> &list)
  :allowed_arg_cols(1)
{
  set_arguments(list);
}

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Item_func::Item_func(THD *thd, Item_func &item)
  :Item_result_field(thd, item),
   allowed_arg_cols(item.allowed_arg_cols),
   arg_count(item.arg_count),
   used_tables_cache(item.used_tables_cache),
   not_null_tables_cache(item.not_null_tables_cache),
   const_item_cache(item.const_item_cache)
{
  if (arg_count)
  {
    if (arg_count <=2)
      args= tmp_arg;
    else
    {
      if (!(args=(Item**) thd->alloc(sizeof(Item*)*arg_count)))
	return;
    }
    memcpy((char*) args, (char*) item.args, sizeof(Item*)*arg_count);
  }
}

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/*
  Resolve references to table column for a function and it's argument

  SYNOPSIS:
  fix_fields()
  thd		Thread object
  tables	List of all open tables involved in the query
  ref		Pointer to where this object is used.  This reference
		is used if we want to replace this object with another
		one (for example in the summary functions).

  DESCRIPTION
    Call fix_fields() for all arguments to the function.  The main intention
    is to allow all Item_field() objects to setup pointers to the table fields.

    Sets as a side effect the following class variables:
      maybe_null	Set if any argument may return NULL
      with_sum_func	Set if any of the arguments contains a sum function
      used_table_cache  Set to union of the arguments used table

      str_value.charset If this is a string function, set this to the
			character set for the first argument.
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			If any argument is binary, this is set to binary
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   If for any item any of the defaults are wrong, then this can
   be fixed in the fix_length_and_dec() function that is called
   after this one or by writing a specialized fix_fields() for the
   item.

  RETURN VALUES
  0	ok
  1	Got error.  Stored with my_error().
*/

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bool
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Item_func::fix_fields(THD *thd, TABLE_LIST *tables, Item **ref)
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{
  Item **arg,**arg_end;
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#ifndef EMBEDDED_LIBRARY			// Avoid compiler warning
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  char buff[STACK_BUFF_ALLOC];			// Max argument in function
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#endif
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  used_tables_cache= not_null_tables_cache= 0;
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  const_item_cache=1;

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  if (check_stack_overrun(thd, buff))
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    return 1;					// Fatal error if flag is set!
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  if (arg_count)
  {						// Print purify happy
    for (arg=args, arg_end=args+arg_count; arg != arg_end ; arg++)
    {
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      Item *item;
      /* We can't yet set item to *arg as fix_fields may change *arg */
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      if ((*arg)->fix_fields(thd, tables, arg) ||
	  (*arg)->check_cols(allowed_arg_cols))
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	return 1;				/* purecov: inspected */
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      item= *arg;
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      if (item->maybe_null)
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	maybe_null=1;
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      with_sum_func= with_sum_func || item->with_sum_func;
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      used_tables_cache|=     item->used_tables();
      not_null_tables_cache|= item->not_null_tables();
      const_item_cache&=      item->const_item();
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    }
  }
  fix_length_and_dec();
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  if (thd->net.last_errno) // An error inside fix_length_and_dec occured
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    return 1;
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  fixed= 1;
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  return 0;
}

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bool Item_func::walk (Item_processor processor, byte *argument)
{
  if (arg_count)
  {
    Item **arg,**arg_end;
    for (arg= args, arg_end= args+arg_count; arg != arg_end; arg++)
    {
      if ((*arg)->walk(processor, argument))
	return 1;
    }
  }
  return (this->*processor)(argument);
}
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void Item_func::split_sum_func(Item **ref_pointer_array, List<Item> &fields)
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{
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  Item **arg, **arg_end;
  for (arg= args, arg_end= args+arg_count; arg != arg_end ; arg++)
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  {
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    Item *item=* arg;
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    if (item->with_sum_func && item->type() != SUM_FUNC_ITEM)
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      item->split_sum_func(ref_pointer_array, fields);
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    else if (item->used_tables() || item->type() == SUM_FUNC_ITEM)
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    {
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      uint el= fields.elements;
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      fields.push_front(item);
      ref_pointer_array[el]= item;
      *arg= new Item_ref(ref_pointer_array + el, 0, item->name);
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    }
  }
}


void Item_func::update_used_tables()
{
  used_tables_cache=0;
  const_item_cache=1;
  for (uint i=0 ; i < arg_count ; i++)
  {
    args[i]->update_used_tables();
    used_tables_cache|=args[i]->used_tables();
    const_item_cache&=args[i]->const_item();
  }
}


table_map Item_func::used_tables() const
{
  return used_tables_cache;
}

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table_map Item_func::not_null_tables() const
{
  return not_null_tables_cache;
}


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void Item_func::print(String *str)
{
  str->append(func_name());
  str->append('(');
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  print_args(str, 0);
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  str->append(')');
}


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void Item_func::print_args(String *str, uint from)
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{
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  for (uint i=from ; i < arg_count ; i++)
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  {
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    if (i != from)
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      str->append(',');
    args[i]->print(str);
  }
}


void Item_func::print_op(String *str)
{
  str->append('(');
  for (uint i=0 ; i < arg_count-1 ; i++)
  {
    args[i]->print(str);
    str->append(' ');
    str->append(func_name());
    str->append(' ');
  }
  args[arg_count-1]->print(str);
  str->append(')');
}

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bool Item_func::eq(const Item *item, bool binary_cmp) const
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{
  /* Assume we don't have rtti */
  if (this == item)
    return 1;
  if (item->type() != FUNC_ITEM)
    return 0;
  Item_func *item_func=(Item_func*) item;
  if (arg_count != item_func->arg_count ||
      func_name() != item_func->func_name())
    return 0;
  for (uint i=0; i < arg_count ; i++)
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    if (!args[i]->eq(item_func->args[i], binary_cmp))
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      return 0;
  return 1;
}

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Field *Item_func::tmp_table_field(TABLE *t_arg)
{
  Field *res;
  LINT_INIT(res);

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  switch (result_type()) {
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  case INT_RESULT:
    if (max_length > 11)
      res= new Field_longlong(max_length, maybe_null, name, t_arg,
			      unsigned_flag);
    else
      res= new Field_long(max_length, maybe_null, name, t_arg,
			  unsigned_flag);
    break;
  case REAL_RESULT:
    res= new Field_double(max_length, maybe_null, name, t_arg, decimals);
    break;
  case STRING_RESULT:
    if (max_length > 255)
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      res= new Field_blob(max_length, maybe_null, name, t_arg, collation.collation);
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    else
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      res= new Field_string(max_length, maybe_null, name, t_arg, collation.collation);
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    break;
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  case ROW_RESULT:
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  default:
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    // This case should never be choosen
    DBUG_ASSERT(0);
    break;
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  }
  return res;
}


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String *Item_real_func::val_str(String *str)
{
  double nr=val();
  if (null_value)
    return 0; /* purecov: inspected */
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  str->set(nr,decimals, &my_charset_bin);
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  return str;
}


String *Item_num_func::val_str(String *str)
{
  if (hybrid_type == INT_RESULT)
  {
    longlong nr=val_int();
    if (null_value)
      return 0; /* purecov: inspected */
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    if (!unsigned_flag)
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      str->set(nr,&my_charset_bin);
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    else
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      str->set((ulonglong) nr,&my_charset_bin);
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  }
  else
  {
    double nr=val();
    if (null_value)
      return 0; /* purecov: inspected */
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    str->set(nr,decimals,&my_charset_bin);
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  }
  return str;
}


void Item_func::fix_num_length_and_dec()
{
  decimals=0;
  for (uint i=0 ; i < arg_count ; i++)
    set_if_bigger(decimals,args[i]->decimals);
  max_length=float_length(decimals);
}

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Item *Item_func::get_tmp_table_item(THD *thd)
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{
  if (!with_sum_func && !const_item())
    return new Item_field(result_field);
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  return copy_or_same(thd);
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}

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String *Item_int_func::val_str(String *str)
{
  longlong nr=val_int();
  if (null_value)
    return 0;
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  if (!unsigned_flag)
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    str->set(nr,&my_charset_bin);
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  else
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    str->set((ulonglong) nr,&my_charset_bin);
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  return str;
}

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/*
  Change from REAL_RESULT (default) to INT_RESULT if both arguments are
  integers
*/
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void Item_num_op::find_num_type(void)
{
  if (args[0]->result_type() == INT_RESULT &&
      args[1]->result_type() == INT_RESULT)
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  {
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    hybrid_type=INT_RESULT;
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    unsigned_flag=args[0]->unsigned_flag | args[1]->unsigned_flag;
  }
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}

String *Item_num_op::val_str(String *str)
{
  if (hybrid_type == INT_RESULT)
  {
    longlong nr=val_int();
    if (null_value)
      return 0; /* purecov: inspected */
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    if (!unsigned_flag)
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      str->set(nr,&my_charset_bin);
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    else
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      str->set((ulonglong) nr,&my_charset_bin);
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  }
  else
  {
    double nr=val();
    if (null_value)
      return 0; /* purecov: inspected */
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    str->set(nr,decimals,&my_charset_bin);
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  }
  return str;
}


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void Item_func_signed::print(String *str)
{
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  str->append("cast(", 5);
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  args[0]->print(str);
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  str->append(" as signed)", 11);
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}


void Item_func_unsigned::print(String *str)
{
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  str->append("cast(", 5);
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  args[0]->print(str);
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  str->append(" as unsigned)", 13);
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}


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double Item_func_plus::val()
{
  double value=args[0]->val()+args[1]->val();
  if ((null_value=args[0]->null_value || args[1]->null_value))
    return 0.0;
  return value;
}

longlong Item_func_plus::val_int()
{
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  if (hybrid_type == INT_RESULT)
  {
    longlong value=args[0]->val_int()+args[1]->val_int();
    if ((null_value=args[0]->null_value || args[1]->null_value))
      return 0;
    return value;
  }
  return (longlong) Item_func_plus::val();
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}

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/*
  The following function is here to allow the user to force
  subtraction of UNSIGNED BIGINT to return negative values.
*/

void Item_func_minus::fix_length_and_dec()
{
  Item_num_op::fix_length_and_dec();
  if (unsigned_flag &&
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      (current_thd->variables.sql_mode & MODE_NO_UNSIGNED_SUBTRACTION))
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    unsigned_flag=0;
}


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double Item_func_minus::val()
{
  double value=args[0]->val() - args[1]->val();
  if ((null_value=args[0]->null_value || args[1]->null_value))
    return 0.0;
  return value;
}

longlong Item_func_minus::val_int()
{
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  if (hybrid_type == INT_RESULT)
  {
    longlong value=args[0]->val_int() - args[1]->val_int();
    if ((null_value=args[0]->null_value || args[1]->null_value))
      return 0;
    return value;
  }
  return (longlong) Item_func_minus::val();
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}

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double Item_func_mul::val()
{
  double value=args[0]->val()*args[1]->val();
  if ((null_value=args[0]->null_value || args[1]->null_value))
    return 0.0; /* purecov: inspected */
  return value;
}

longlong Item_func_mul::val_int()
{
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  if (hybrid_type == INT_RESULT)
  {
    longlong value=args[0]->val_int()*args[1]->val_int();
    if ((null_value=args[0]->null_value || args[1]->null_value))
      return 0; /* purecov: inspected */
    return value;
  }
  return (longlong) Item_func_mul::val();
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}


double Item_func_div::val()
{
  double value=args[0]->val();
  double val2=args[1]->val();
  if ((null_value= val2 == 0.0 || args[0]->null_value || args[1]->null_value))
    return 0.0;
  return value/val2;
}

longlong Item_func_div::val_int()
{
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  if (hybrid_type == INT_RESULT)
  {
    longlong value=args[0]->val_int();
    longlong val2=args[1]->val_int();
    if ((null_value= val2 == 0 || args[0]->null_value || args[1]->null_value))
      return 0;
    return value/val2;
  }
  return (longlong) Item_func_div::val();
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}

void Item_func_div::fix_length_and_dec()
{
  decimals=max(args[0]->decimals,args[1]->decimals)+2;
  max_length=args[0]->max_length - args[0]->decimals + decimals;
  uint tmp=float_length(decimals);
  set_if_smaller(max_length,tmp);
  maybe_null=1;
}

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/* Integer division */
longlong Item_func_int_div::val_int()
{
  longlong value=args[0]->val_int();
  longlong val2=args[1]->val_int();
  if ((null_value= val2 == 0 || args[0]->null_value || args[1]->null_value))
    return 0;
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  return (unsigned_flag ?
	  (ulonglong) value / (ulonglong) val2 :
	  value / val2);
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}


void Item_func_int_div::fix_length_and_dec()
{
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  find_num_type();
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  max_length=args[0]->max_length - args[0]->decimals;
  maybe_null=1;
}


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double Item_func_mod::val()
{
  double value= floor(args[0]->val()+0.5);
  double val2=floor(args[1]->val()+0.5);
  if ((null_value=val2 == 0.0 || args[0]->null_value || args[1]->null_value))
    return 0.0; /* purecov: inspected */
  return fmod(value,val2);
}

longlong Item_func_mod::val_int()
{
  longlong value=  args[0]->val_int();
  longlong val2= args[1]->val_int();
  if ((null_value=val2 == 0 || args[0]->null_value || args[1]->null_value))
    return 0; /* purecov: inspected */
  return value % val2;
}

void Item_func_mod::fix_length_and_dec()
{
  max_length=args[1]->max_length;
  decimals=0;
  maybe_null=1;
  find_num_type();
}


double Item_func_neg::val()
{
  double value=args[0]->val();
  null_value=args[0]->null_value;
  return -value;
}

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longlong Item_func_neg::val_int()
{
  longlong value=args[0]->val_int();
  null_value=args[0]->null_value;
  return -value;
}

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void Item_func_neg::fix_length_and_dec()
{
  decimals=args[0]->decimals;
  max_length=args[0]->max_length;
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  hybrid_type= REAL_RESULT;
  if (args[0]->result_type() == INT_RESULT)
  {
    /*
      If this is in integer context keep the context as integer
      (This is how multiplication and other integer functions works)

      We must however do a special case in the case where the argument
      is a unsigned bigint constant as in this case the only safe
      number to convert in integer context is 9223372036854775808.
      (This is needed because the lex parser doesn't anymore handle
      signed integers)
    */
    if (args[0]->type() != INT_ITEM ||
	((ulonglong) ((Item_uint*) args[0])->value <=
	 (ulonglong) LONGLONG_MIN))
      hybrid_type= INT_RESULT;
  }
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}

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double Item_func_abs::val()
{
  double value=args[0]->val();
  null_value=args[0]->null_value;
  return fabs(value);
}

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longlong Item_func_abs::val_int()
{
  longlong value=args[0]->val_int();
  null_value=args[0]->null_value;
  return value >= 0 ? value : -value;
}

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void Item_func_abs::fix_length_and_dec()
{
  decimals=args[0]->decimals;
  max_length=args[0]->max_length;
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  hybrid_type= REAL_RESULT;
  if (args[0]->result_type() == INT_RESULT)
  {
    hybrid_type= INT_RESULT;
    unsigned_flag= 1;
  }
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}

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/* Gateway to natural LOG function */
double Item_func_ln::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || value <= 0.0)))
    return 0.0;
  return log(value);
}

/* 
 Extended but so slower LOG function
 We have to check if all values are > zero and first one is not one
 as these are the cases then result is not a number.
*/ 
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double Item_func_log::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || value <= 0.0)))
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    return 0.0;
  if (arg_count == 2)
  {
    double value2= args[1]->val();
    if ((null_value=(args[1]->null_value || value2 <= 0.0 || value == 1.0)))
      return 0.0;
    return log(value2) / log(value);
  }
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  return log(value);
}

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double Item_func_log2::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || value <= 0.0)))
    return 0.0;
  return log(value) / log(2.0);
}

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double Item_func_log10::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || value <= 0.0)))
    return 0.0; /* purecov: inspected */
  return log10(value);
}

double Item_func_exp::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0.0; /* purecov: inspected */
  return exp(value);
}

double Item_func_sqrt::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || value < 0)))
    return 0.0; /* purecov: inspected */
  return sqrt(value);
}

double Item_func_pow::val()
{
  double value=args[0]->val();
  double val2=args[1]->val();
  if ((null_value=(args[0]->null_value || args[1]->null_value)))
    return 0.0; /* purecov: inspected */
  return pow(value,val2);
}

// Trigonometric functions

double Item_func_acos::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || (value < -1.0 || value > 1.0))))
    return 0.0;
  return fix_result(acos(value));
}

double Item_func_asin::val()
{
  double value=args[0]->val();
  if ((null_value=(args[0]->null_value || (value < -1.0 || value > 1.0))))
    return 0.0;
  return fix_result(asin(value));
}

double Item_func_atan::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0.0;
  if (arg_count == 2)
  {
    double val2= args[1]->val();
    if ((null_value=args[1]->null_value))
      return 0.0;
    return fix_result(atan2(value,val2));
  }
  return fix_result(atan(value));
}

double Item_func_cos::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0.0;
  return fix_result(cos(value));
}

double Item_func_sin::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0.0;
  return fix_result(sin(value));
}

double Item_func_tan::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0.0;
  return fix_result(tan(value));
}


// Shift-functions, same as << and >> in C/C++


longlong Item_func_shift_left::val_int()
{
  uint shift;
  ulonglong res= ((ulonglong) args[0]->val_int() <<
		  (shift=(uint) args[1]->val_int()));
  if (args[0]->null_value || args[1]->null_value)
  {
    null_value=1;
    return 0;
  }
  null_value=0;
  return (shift < sizeof(longlong)*8 ? (longlong) res : LL(0));
}

longlong Item_func_shift_right::val_int()
{
  uint shift;
  ulonglong res= (ulonglong) args[0]->val_int() >>
    (shift=(uint) args[1]->val_int());
  if (args[0]->null_value || args[1]->null_value)
  {
    null_value=1;
    return 0;
  }
  null_value=0;
  return (shift < sizeof(longlong)*8 ? (longlong) res : LL(0));
}


longlong Item_func_bit_neg::val_int()
{
  ulonglong res= (ulonglong) args[0]->val_int();
  if ((null_value=args[0]->null_value))
    return 0;
  return ~res;
}


// Conversion functions

void Item_func_integer::fix_length_and_dec()
{
  max_length=args[0]->max_length - args[0]->decimals+1;
  uint tmp=float_length(decimals);
  set_if_smaller(max_length,tmp);
  decimals=0;
}

longlong Item_func_ceiling::val_int()
{
  double value=args[0]->val();
  null_value=args[0]->null_value;
  return (longlong) ceil(value);
}

longlong Item_func_floor::val_int()
{
  double value=args[0]->val();
  null_value=args[0]->null_value;
  return (longlong) floor(value);
}

void Item_func_round::fix_length_and_dec()
{
  max_length=args[0]->max_length;
  decimals=args[0]->decimals;
  if (args[1]->const_item())
  {
    int tmp=(int) args[1]->val_int();
    if (tmp < 0)
      decimals=0;
    else
      decimals=tmp;
  }
}

double Item_func_round::val()
{
  double value=args[0]->val();
  int dec=(int) args[1]->val_int();
  uint abs_dec=abs(dec);
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  double tmp;
  /*
    tmp2 is here to avoid return the value with 80 bit precision
    This will fix that the test round(0.1,1) = round(0.1,1) is true
  */
  volatile double tmp2;
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  if ((null_value=args[0]->null_value || args[1]->null_value))
    return 0.0;
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  tmp=(abs_dec < array_elements(log_10) ?
       log_10[abs_dec] : pow(10.0,(double) abs_dec));
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  if (truncate)
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  {
    if (value >= 0)
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      tmp2= dec < 0 ? floor(value/tmp)*tmp : floor(value*tmp)/tmp;
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    else
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      tmp2= dec < 0 ? ceil(value/tmp)*tmp : ceil(value*tmp)/tmp;
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  }
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  else
    tmp2=dec < 0 ? rint(value/tmp)*tmp : rint(value*tmp)/tmp;
  return tmp2;
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}


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void Item_func_rand::fix_length_and_dec()
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{
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  decimals=NOT_FIXED_DEC; 
  max_length=float_length(decimals);
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  if (arg_count)
  {					// Only use argument once in query
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    uint32 tmp= (uint32) (args[0]->val_int());
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    if ((rand= (struct rand_struct*) sql_alloc(sizeof(*rand))))
      randominit(rand,(uint32) (tmp*0x10001L+55555555L),
		 (uint32) (tmp*0x10000001L));
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  }
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  else
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  {
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    THD *thd= current_thd;
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    /*
      No need to send a Rand log event if seed was given eg: RAND(seed),
      as it will be replicated in the query as such.
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      Save the seed only the first time RAND() is used in the query
      Once events are forwarded rather than recreated,
      the following can be skipped if inside the slave thread
    */
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    thd->rand_used=1;
    thd->rand_saved_seed1=thd->rand.seed1;
    thd->rand_saved_seed2=thd->rand.seed2;
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    rand= &thd->rand;
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  }
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}


double Item_func_rand::val()
{
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  return my_rnd(rand);
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}

longlong Item_func_sign::val_int()
{
  double value=args[0]->val();
  null_value=args[0]->null_value;
  return value < 0.0 ? -1 : (value > 0 ? 1 : 0);
}


double Item_func_units::val()
{
  double value=args[0]->val();
  if ((null_value=args[0]->null_value))
    return 0;
  return value*mul+add;
}


void Item_func_min_max::fix_length_and_dec()
{
  decimals=0;
  max_length=0;
  maybe_null=1;
  cmp_type=args[0]->result_type();
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  for (uint i=0 ; i < arg_count ; i++)
  {
    if (max_length < args[i]->max_length)
      max_length=args[i]->max_length;
    if (decimals < args[i]->decimals)
      decimals=args[i]->decimals;
    if (!args[i]->maybe_null)
      maybe_null=0;
    cmp_type=item_cmp_type(cmp_type,args[i]->result_type());
  }
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  if (cmp_type == STRING_RESULT)
    agg_arg_collations_for_comparison(collation, args, arg_count);
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}


String *Item_func_min_max::val_str(String *str)
{
  switch (cmp_type) {
  case INT_RESULT:
  {
    longlong nr=val_int();
    if (null_value)
      return 0;
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    if (!unsigned_flag)
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      str->set(nr,&my_charset_bin);
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    else
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      str->set((ulonglong) nr,&my_charset_bin);
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    return str;
  }
  case REAL_RESULT:
  {
    double nr=val();
    if (null_value)
      return 0; /* purecov: inspected */
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    str->set(nr,decimals,&my_charset_bin);
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    return str;
  }
  case STRING_RESULT:
  {
    String *res;
    LINT_INIT(res);
    null_value=1;
    for (uint i=0; i < arg_count ; i++)
    {
      if (null_value)
      {
	res=args[i]->val_str(str);
	null_value=args[i]->null_value;
      }
      else
      {
	String *res2;
	res2= args[i]->val_str(res == str ? &tmp_value : str);
	if (res2)
	{
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	  int cmp= sortcmp(res,res2,collation.collation);
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	  if ((cmp_sign < 0 ? cmp : -cmp) < 0)
	    res=res2;
	}
      }
    }
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    res->set_charset(collation.collation);
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    return res;
  }
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  case ROW_RESULT:
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  default:
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    // This case should never be choosen
    DBUG_ASSERT(0);
    return 0;

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  }
  return 0;					// Keep compiler happy
}


double Item_func_min_max::val()
{
  double value=0.0;
  null_value=1;
  for (uint i=0; i < arg_count ; i++)
  {
    if (null_value)
    {
      value=args[i]->val();
      null_value=args[i]->null_value;
    }
    else
    {
      double tmp=args[i]->val();
      if (!args[i]->null_value && (tmp < value ? cmp_sign : -cmp_sign) > 0)
	value=tmp;
    }
  }
  return value;
}


longlong Item_func_min_max::val_int()
{
  longlong value=0;
  null_value=1;
  for (uint i=0; i < arg_count ; i++)
  {
    if (null_value)
    {
      value=args[i]->val_int();
      null_value=args[i]->null_value;
    }
    else
    {
      longlong tmp=args[i]->val_int();
      if (!args[i]->null_value && (tmp < value ? cmp_sign : -cmp_sign) > 0)
	value=tmp;
    }
  }
  return value;
}

longlong Item_func_length::val_int()
{
  String *res=args[0]->val_str(&value);
  if (!res)
  {
    null_value=1;
    return 0; /* purecov: inspected */
  }
  null_value=0;
  return (longlong) res->length();
}

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longlong Item_func_char_length::val_int()
{
  String *res=args[0]->val_str(&value);
  if (!res)
  {
    null_value=1;
    return 0; /* purecov: inspected */
  }
  null_value=0;
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  return (longlong) res->numchars();
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}

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longlong Item_func_coercibility::val_int()
{
  if (args[0]->null_value)
  {
    null_value= 1;
    return 0;
  }
  null_value= 0;
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  return (longlong) args[0]->collation.derivation;
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}
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void Item_func_locate::fix_length_and_dec()
{
  maybe_null=0; max_length=11;
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  agg_arg_collations_for_comparison(cmp_collation, args, 2);
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}

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longlong Item_func_locate::val_int()
{
  String *a=args[0]->val_str(&value1);
  String *b=args[1]->val_str(&value2);
  if (!a || !b)
  {
    null_value=1;
    return 0; /* purecov: inspected */
  }
  null_value=0;
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  uint start=0;
  uint start0=0;
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  my_match_t match;
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  if (arg_count == 3)
  {
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    start0= start =(uint) args[2]->val_int()-1;
    start=a->charpos(start);
    
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    if (start > a->length() || start+b->length() > a->length())
      return 0;
  }
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  if (!b->length())				// Found empty string at start
    return (longlong) (start+1);
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  if (!cmp_collation.collation->coll->instr(cmp_collation.collation,
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                                            a->ptr()+start, a->length()-start,
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                                            b->ptr(), b->length(),
                                            &match, 1))
    return 0;
  return (longlong) match.mblen + start0 + 1;
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}


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void Item_func_locate::print(String *str)
{
  str->append("locate(", 7);
  args[1]->print(str);
  str->append(',');
  args[0]->print(str);
  if (arg_count == 3)
  {
    str->append(',');
    args[2]->print(str);
  }
  str->append(')');
}


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longlong Item_func_field::val_int()
{
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  if (cmp_type == STRING_RESULT)
  {
    String *field;
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    if (!(field=args[0]->val_str(&value)))
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      return 0;					// -1 if null ?
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    for (uint i=1 ; i < arg_count ; i++)
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    {
      String *tmp_value=args[i]->val_str(&tmp);
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      if (tmp_value && !sortcmp(field,tmp_value,cmp_collation.collation))
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        return (longlong) (i);
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    }
  }
  else if (cmp_type == INT_RESULT)
  {
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    longlong val= args[0]->val_int();
    for (uint i=1; i < arg_count ; i++)
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    {
      if (val == args[i]->val_int())
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 	return (longlong) (i);
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    }
  }
  else
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  {
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    double val= args[0]->val();
    for (uint i=1; i < arg_count ; i++)
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    {
      if (val == args[i]->val())
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 	return (longlong) (i);
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    }
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  }
  return 0;
}

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void Item_func_field::fix_length_and_dec()
{
  maybe_null=0; max_length=3;
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  cmp_type= args[0]->result_type();
  for (uint i=1; i < arg_count ; i++)
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    cmp_type= item_cmp_type(cmp_type, args[i]->result_type());
  if (cmp_type == STRING_RESULT)
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    agg_arg_collations_for_comparison(cmp_collation, args, arg_count);
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}
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longlong Item_func_ascii::val_int()
{
  String *res=args[0]->val_str(&value);
  if (!res)
  {
    null_value=1;
    return 0;
  }
  null_value=0;
  return (longlong) (res->length() ? (uchar) (*res)[0] : (uchar) 0);
}

longlong Item_func_ord::val_int()
{
  String *res=args[0]->val_str(&value);
  if (!res)
  {
    null_value=1;
    return 0;
  }
  null_value=0;
  if (!res->length()) return 0;
#ifdef USE_MB
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  if (use_mb(res->charset()))
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  {
    register const char *str=res->ptr();
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    register uint32 n=0, l=my_ismbchar(res->charset(),str,str+res->length());
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    if (!l)
      return (longlong)((uchar) *str);
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    while (l--)
      n=(n<<8)|(uint32)((uchar) *str++);
    return (longlong) n;
  }
#endif
  return (longlong) ((uchar) (*res)[0]);
}

	/* Search after a string in a string of strings separated by ',' */
	/* Returns number of found type >= 1 or 0 if not found */
	/* This optimizes searching in enums to bit testing! */

void Item_func_find_in_set::fix_length_and_dec()
{
  decimals=0;
  max_length=3;					// 1-999
  if (args[0]->const_item() && args[1]->type() == FIELD_ITEM)
  {
    Field *field= ((Item_field*) args[1])->field;
    if (field->real_type() == FIELD_TYPE_SET)
    {
      String *find=args[0]->val_str(&value);
      if (find)
      {
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	enum_value= find_type(((Field_enum*) field)->typelib,find->ptr(),
			      find->length(), 0);
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	enum_bit=0;
	if (enum_value)
	  enum_bit=LL(1) << (enum_value-1);
      }
    }
  }
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  agg_arg_collations_for_comparison(cmp_collation, args, 2);
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}

static const char separator=',';

longlong Item_func_find_in_set::val_int()
{
  if (enum_value)
  {
    ulonglong tmp=(ulonglong) args[1]->val_int();
    if (!(null_value=args[1]->null_value || args[0]->null_value))
    {
      if (tmp & enum_bit)
	return enum_value;
    }
    return 0L;
  }

  String *find=args[0]->val_str(&value);
  String *buffer=args[1]->val_str(&value2);
  if (!find || !buffer)
  {
    null_value=1;
    return 0; /* purecov: inspected */
  }
  null_value=0;

  int diff;
  if ((diff=buffer->length() - find->length()) >= 0)
  {
    const char *f_pos=find->ptr();
    const char *f_end=f_pos+find->length();
    const char *str=buffer->ptr();
    const char *end=str+diff+1;
    const char *real_end=str+buffer->length();
    uint position=1;
    do
    {
      const char *pos= f_pos;
      while (pos != f_end)
      {
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	if (my_toupper(cmp_collation.collation,*str) != 
	    my_toupper(cmp_collation.collation,*pos))
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	  goto not_found;
	str++;
	pos++;
      }
      if (str == real_end || str[0] == separator)
	return (longlong) position;
  not_found:
      while (str < end && str[0] != separator)
	str++;
      position++;
    } while (++str <= end);
  }
  return 0;
}

longlong Item_func_bit_count::val_int()
{
  ulonglong value= (ulonglong) args[0]->val_int();
  if (args[0]->null_value)
  {
    null_value=1; /* purecov: inspected */
    return 0; /* purecov: inspected */
  }
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  return (longlong) my_count_bits(value);
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}


/****************************************************************************
** Functions to handle dynamic loadable functions
** Original source by: Alexis Mikhailov <root@medinf.chuvashia.su>
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** Rewritten by monty.
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****************************************************************************/

#ifdef HAVE_DLOPEN

udf_handler::~udf_handler()
{
  if (initialized)
  {
    if (u_d->func_deinit != NULL)
    {
      void (*deinit)(UDF_INIT *) = (void (*)(UDF_INIT*))
	u_d->func_deinit;
      (*deinit)(&initid);
    }
    free_udf(u_d);
  }
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  if (buffers)					// Because of bug in ecc
    delete [] buffers;
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}


bool
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udf_handler::fix_fields(THD *thd, TABLE_LIST *tables, Item_result_field *func,
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			uint arg_count, Item **arguments)
{
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#ifndef EMBEDDED_LIBRARY			// Avoid compiler warning
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  char buff[STACK_BUFF_ALLOC];			// Max argument in function
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#endif
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  DBUG_ENTER("Item_udf_func::fix_fields");

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  if (check_stack_overrun(thd, buff))
    DBUG_RETURN(1);				// Fatal error flag is set!

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  udf_func *tmp_udf=find_udf(u_d->name.str,(uint) u_d->name.length,1);
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  if (!tmp_udf)
  {
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    my_printf_error(ER_CANT_FIND_UDF,ER(ER_CANT_FIND_UDF),MYF(0),u_d->name.str,
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		    errno);
    DBUG_RETURN(1);
  }
  u_d=tmp_udf;
  args=arguments;

  /* Fix all arguments */
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  func->maybe_null=0;
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  used_tables_cache=0;
  const_item_cache=1;

  if ((f_args.arg_count=arg_count))
  {
    if (!(f_args.arg_type= (Item_result*)
	  sql_alloc(f_args.arg_count*sizeof(Item_result))))

    {
      free_udf(u_d);
      DBUG_RETURN(1);
    }
    uint i;
    Item **arg,**arg_end;
    for (i=0, arg=arguments, arg_end=arguments+arg_count;
	 arg != arg_end ;
	 arg++,i++)
    {
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      Item *item= *arg;
      if (item->fix_fields(thd, tables, arg) || item->check_cols(1))
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	return 1;
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      /*
	TODO: We should think about this. It is not always
	right way just to set an UDF result to return my_charset_bin
	if one argument has binary sorting order.
	The result collation should be calculated according to arguments
	derivations in some cases and should not in other cases.
	Moreover, some arguments can represent a numeric input
	which doesn't effect the result character set and collation.
	There is no a general rule for UDF. Everything depends on
	the particular user definted function.
      */
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      if (item->collation.collation->state & MY_CS_BINSORT)
	func->collation.set(&my_charset_bin);
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      if (item->maybe_null)
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	func->maybe_null=1;
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      func->with_sum_func= func->with_sum_func || item->with_sum_func;
      used_tables_cache|=item->used_tables();
      const_item_cache&=item->const_item();
      f_args.arg_type[i]=item->result_type();
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    }
    if (!(buffers=new String[arg_count]) ||
	!(f_args.args= (char**) sql_alloc(arg_count * sizeof(char *))) ||
	!(f_args.lengths=(ulong*) sql_alloc(arg_count * sizeof(long))) ||
	!(f_args.maybe_null=(char*) sql_alloc(arg_count * sizeof(char))) ||
	!(num_buffer= (char*) sql_alloc(ALIGN_SIZE(sizeof(double))*arg_count)))
    {
      free_udf(u_d);
      DBUG_RETURN(1);
    }
  }
  func->fix_length_and_dec();
  initid.max_length=func->max_length;
  initid.maybe_null=func->maybe_null;
  initid.const_item=const_item_cache;
  initid.decimals=func->decimals;
  initid.ptr=0;

  if (u_d->func_init)
  {
    char *to=num_buffer;
    for (uint i=0; i < arg_count; i++)
    {
      f_args.args[i]=0;
      f_args.lengths[i]=arguments[i]->max_length;
      f_args.maybe_null[i]=(char) arguments[i]->maybe_null;

      switch(arguments[i]->type()) {
      case Item::STRING_ITEM:			// Constant string !
      {
	String *res=arguments[i]->val_str((String *) 0);
	if (arguments[i]->null_value)
	  continue;
	f_args.args[i]=    (char*) res->ptr();
	break;
      }
      case Item::INT_ITEM:
	*((longlong*) to) = arguments[i]->val_int();
	if (!arguments[i]->null_value)
	{
	  f_args.args[i]=to;
	  to+= ALIGN_SIZE(sizeof(longlong));
	}
	break;
      case Item::REAL_ITEM:
	*((double*) to) = arguments[i]->val();
	if (!arguments[i]->null_value)
	{
	  f_args.args[i]=to;
	  to+= ALIGN_SIZE(sizeof(double));
	}
	break;
      default:					// Skip these
	break;
      }
    }
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    thd->net.last_error[0]=0;
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    my_bool (*init)(UDF_INIT *, UDF_ARGS *, char *)=
      (my_bool (*)(UDF_INIT *, UDF_ARGS *,  char *))
      u_d->func_init;
    if ((error=(uchar) init(&initid, &f_args, thd->net.last_error)))
    {
      my_printf_error(ER_CANT_INITIALIZE_UDF,ER(ER_CANT_INITIALIZE_UDF),MYF(0),
		      u_d->name,thd->net.last_error);
      free_udf(u_d);
      DBUG_RETURN(1);
    }
    func->max_length=min(initid.max_length,MAX_BLOB_WIDTH);
    func->maybe_null=initid.maybe_null;
    const_item_cache=initid.const_item;
    func->decimals=min(initid.decimals,31);
  }
  initialized=1;
  if (error)
  {
    my_printf_error(ER_CANT_INITIALIZE_UDF,ER(ER_CANT_INITIALIZE_UDF),MYF(0),
		    u_d->name, ER(ER_UNKNOWN_ERROR));
    DBUG_RETURN(1);
  }
  DBUG_RETURN(0);
}


bool udf_handler::get_arguments()
{
  if (error)
    return 1;					// Got an error earlier
  char *to= num_buffer;
  uint str_count=0;
  for (uint i=0; i < f_args.arg_count; i++)
  {
    f_args.args[i]=0;
    switch (f_args.arg_type[i]) {
    case STRING_RESULT:
      {
	String *res=args[i]->val_str(&buffers[str_count++]);
	if (!(args[i]->null_value))
	{
	  f_args.args[i]=    (char*) res->ptr();
	  f_args.lengths[i]= res->length();
	  break;
	}
      }
    case INT_RESULT:
      *((longlong*) to) = args[i]->val_int();
      if (!args[i]->null_value)
      {
	f_args.args[i]=to;
	to+= ALIGN_SIZE(sizeof(longlong));
      }
      break;
    case REAL_RESULT:
      *((double*) to) = args[i]->val();
      if (!args[i]->null_value)
      {
	f_args.args[i]=to;
	to+= ALIGN_SIZE(sizeof(double));
      }
      break;
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    case ROW_RESULT:
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    default:
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      // This case should never be choosen
      DBUG_ASSERT(0);
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      break;
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    }
  }
  return 0;
}

/* This returns (String*) 0 in case of NULL values */

String *udf_handler::val_str(String *str,String *save_str)
{
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  uchar is_null_tmp=0;
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  ulong res_length;

  if (get_arguments())
    return 0;
  char * (*func)(UDF_INIT *, UDF_ARGS *, char *, ulong *, uchar *, uchar *)=
    (char* (*)(UDF_INIT *, UDF_ARGS *, char *, ulong *, uchar *, uchar *))
    u_d->func;

  if ((res_length=str->alloced_length()) < MAX_FIELD_WIDTH)
  {						// This happens VERY seldom
    if (str->alloc(MAX_FIELD_WIDTH))
    {
      error=1;
      return 0;
    }
  }
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  char *res=func(&initid, &f_args, (char*) str->ptr(), &res_length,
		 &is_null_tmp, &error);
  if (is_null_tmp || !res || error)		// The !res is for safety
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  {
    return 0;
  }
  if (res == str->ptr())
  {
    str->length(res_length);
    return str;
  }
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  save_str->set(res, res_length, str->charset());
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  return save_str;
}



double Item_func_udf_float::val()
{
  DBUG_ENTER("Item_func_udf_float::val");
  DBUG_PRINT("info",("result_type: %d  arg_count: %d",
		     args[0]->result_type(), arg_count));
  DBUG_RETURN(udf.val(&null_value));
}


String *Item_func_udf_float::val_str(String *str)
{
  double nr=val();
  if (null_value)
    return 0;					/* purecov: inspected */
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  str->set(nr,decimals,&my_charset_bin);
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  return str;
}


longlong Item_func_udf_int::val_int()
{
  DBUG_ENTER("Item_func_udf_int::val_int");
  DBUG_PRINT("info",("result_type: %d  arg_count: %d",
		     args[0]->result_type(), arg_count));

  DBUG_RETURN(udf.val_int(&null_value));
}


String *Item_func_udf_int::val_str(String *str)
{
  longlong nr=val_int();
  if (null_value)
    return 0;
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  if (!unsigned_flag)
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    str->set(nr,&my_charset_bin);
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  else
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    str->set((ulonglong) nr,&my_charset_bin);
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  return str;
}

/* Default max_length is max argument length */

void Item_func_udf_str::fix_length_and_dec()
{
  DBUG_ENTER("Item_func_udf_str::fix_length_and_dec");
  max_length=0;
  for (uint i = 0; i < arg_count; i++)
    set_if_bigger(max_length,args[i]->max_length);
  DBUG_VOID_RETURN;
}

String *Item_func_udf_str::val_str(String *str)
{
  String *res=udf.val_str(str,&str_value);
  null_value = !res;
  return res;
}

#else
bool udf_handler::get_arguments() { return 0; }
#endif /* HAVE_DLOPEN */

/*
** User level locks
*/

pthread_mutex_t LOCK_user_locks;
static HASH hash_user_locks;

class ULL
{
  char *key;
  uint key_length;

public:
  int count;
  bool locked;
  pthread_cond_t cond;
  pthread_t thread;
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  ulong thread_id;
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  ULL(const char *key_arg,uint length, ulong id) 
    :key_length(length),count(1),locked(1), thread_id(id)
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  {
    key=(char*) my_memdup((byte*) key_arg,length,MYF(0));
    pthread_cond_init(&cond,NULL);
    if (key)
    {
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      if (my_hash_insert(&hash_user_locks,(byte*) this))
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      {
	my_free((gptr) key,MYF(0));
	key=0;
      }
    }
  }
  ~ULL()
  {
    if (key)
    {
      hash_delete(&hash_user_locks,(byte*) this);
      my_free((gptr) key,MYF(0));
    }
    pthread_cond_destroy(&cond);
  }
  inline bool initialized() { return key != 0; }
  friend void item_user_lock_release(ULL *ull);
  friend char *ull_get_key(const ULL *ull,uint *length,my_bool not_used);
};

char *ull_get_key(const ULL *ull,uint *length,
		  my_bool not_used __attribute__((unused)))
{
  *length=(uint) ull->key_length;
  return (char*) ull->key;
}

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static bool item_user_lock_inited= 0;

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void item_user_lock_init(void)
{
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  pthread_mutex_init(&LOCK_user_locks,MY_MUTEX_INIT_SLOW);
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  hash_init(&hash_user_locks,system_charset_info,
	    16,0,0,(hash_get_key) ull_get_key,NULL,0);
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  item_user_lock_inited= 1;
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}

void item_user_lock_free(void)
{
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  if (item_user_lock_inited)
  {
    item_user_lock_inited= 0;
    hash_free(&hash_user_locks);
    pthread_mutex_destroy(&LOCK_user_locks);
  }
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}

void item_user_lock_release(ULL *ull)
{
  ull->locked=0;
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  if (mysql_bin_log.is_open())
  {
    char buf[256];
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    const char *command="DO RELEASE_LOCK(\"";
    String tmp(buf,sizeof(buf), system_charset_info);
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    tmp.copy(command, strlen(command), tmp.charset());
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    tmp.append(ull->key,ull->key_length);
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    tmp.append("\")", 2);
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    Query_log_event qev(current_thd, tmp.ptr(), tmp.length(),1);
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    qev.error_code=0; // this query is always safe to run on slave
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    mysql_bin_log.write(&qev);
  }
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  if (--ull->count)
    pthread_cond_signal(&ull->cond);
  else
    delete ull;
}

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/*
   Wait until we are at or past the given position in the master binlog
   on the slave
 */

longlong Item_master_pos_wait::val_int()
{
  THD* thd = current_thd;
  String *log_name = args[0]->val_str(&value);
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  int event_count= 0;
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  null_value=0;
  if (thd->slave_thread || !log_name || !log_name->length())
  {
    null_value = 1;
    return 0;
  }
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  longlong pos = (ulong)args[1]->val_int();
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  longlong timeout = (arg_count==3) ? args[2]->val_int() : 0 ;
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#ifdef HAVE_REPLICATION
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  LOCK_ACTIVE_MI;
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   if ((event_count = active_mi->rli.wait_for_pos(thd, log_name, pos, timeout)) == -2)
   {
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    null_value = 1;
    event_count=0;
  }
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  UNLOCK_ACTIVE_MI;
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#endif
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  return event_count;
}

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#ifdef EXTRA_DEBUG
void debug_sync_point(const char* lock_name, uint lock_timeout)
{
  THD* thd=current_thd;
  ULL* ull;
  struct timespec abstime;
  int lock_name_len,error=0;
  lock_name_len=strlen(lock_name);
  pthread_mutex_lock(&LOCK_user_locks);

  if (thd->ull)
  {
    item_user_lock_release(thd->ull);
    thd->ull=0;
  }

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  /*
    If the lock has not been aquired by some client, we do not want to
    create an entry for it, since we immediately release the lock. In
    this case, we will not be waiting, but rather, just waste CPU and
    memory on the whole deal
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  */
  if (!(ull= ((ULL*) hash_search(&hash_user_locks,lock_name,
				 lock_name_len))))
  {
    pthread_mutex_unlock(&LOCK_user_locks);
    return;
  }
  ull->count++;

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  /*
    Structure is now initialized.  Try to get the lock.
    Set up control struct to allow others to abort locks
  */
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  thd->proc_info="User lock";
  thd->mysys_var->current_mutex= &LOCK_user_locks;
  thd->mysys_var->current_cond=  &ull->cond;

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  set_timespec(abstime,lock_timeout);
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  while (!thd->killed &&
	 (error=pthread_cond_timedwait(&ull->cond,&LOCK_user_locks,&abstime))
	 != ETIME && error != ETIMEDOUT && ull->locked) ;
  if (ull->locked)
  {
    if (!--ull->count)
      delete ull;				// Should never happen
  }
  else
  {
    ull->locked=1;
    ull->thread=thd->real_id;
    thd->ull=ull;
  }
  pthread_mutex_unlock(&LOCK_user_locks);
  pthread_mutex_lock(&thd->mysys_var->mutex);
  thd->proc_info=0;
  thd->mysys_var->current_mutex= 0;
  thd->mysys_var->current_cond=  0;
  pthread_mutex_unlock(&thd->mysys_var->mutex);
  pthread_mutex_lock(&LOCK_user_locks);
  if (thd->ull)
  {
    item_user_lock_release(thd->ull);
    thd->ull=0;
  }
  pthread_mutex_unlock(&LOCK_user_locks);
}

#endif

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/*
  Get a user level lock. If the thread has an old lock this is first released.
  Returns 1:  Got lock
  Returns 0:  Timeout
  Returns NULL: Error
*/

longlong Item_func_get_lock::val_int()
{
  String *res=args[0]->val_str(&value);
  longlong timeout=args[1]->val_int();
  struct timespec abstime;
  THD *thd=current_thd;
  ULL *ull;
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  int error=0;
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  pthread_mutex_lock(&LOCK_user_locks);

  if (!res || !res->length())
  {
    pthread_mutex_unlock(&LOCK_user_locks);
    null_value=1;
    return 0;
  }
  null_value=0;

  if (thd->ull)
  {
    item_user_lock_release(thd->ull);
    thd->ull=0;
  }

  if (!(ull= ((ULL*) hash_search(&hash_user_locks,(byte*) res->ptr(),
				 res->length()))))
  {
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    ull=new ULL(res->ptr(),res->length(), thd->thread_id);
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    if (!ull || !ull->initialized())
    {
      delete ull;
      pthread_mutex_unlock(&LOCK_user_locks);
      null_value=1;				// Probably out of memory
      return 0;
    }
    ull->thread=thd->real_id;
    thd->ull=ull;
    pthread_mutex_unlock(&LOCK_user_locks);
    return 1;					// Got new lock
  }
  ull->count++;

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  /*
    Structure is now initialized.  Try to get the lock.
    Set up control struct to allow others to abort locks.
  */
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  thd->proc_info="User lock";
  thd->mysys_var->current_mutex= &LOCK_user_locks;
  thd->mysys_var->current_cond=  &ull->cond;

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  set_timespec(abstime,timeout);
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  while (!thd->killed &&
	 (error=pthread_cond_timedwait(&ull->cond,&LOCK_user_locks,&abstime))
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	 != ETIME && error != ETIMEDOUT && error != EINVAL && ull->locked) ;
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  if (thd->killed)
    error=EINTR;				// Return NULL
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  if (ull->locked)
  {
    if (!--ull->count)
      delete ull;				// Should never happen
    if (error != ETIME && error != ETIMEDOUT)
    {
      error=1;
      null_value=1;				// Return NULL
    }
  }
  else
  {
    ull->locked=1;
    ull->thread=thd->real_id;
    thd->ull=ull;
    error=0;
  }
  pthread_mutex_unlock(&LOCK_user_locks);

  pthread_mutex_lock(&thd->mysys_var->mutex);
  thd->proc_info=0;
  thd->mysys_var->current_mutex= 0;
  thd->mysys_var->current_cond=  0;
  pthread_mutex_unlock(&thd->mysys_var->mutex);

  return !error ? 1 : 0;
}


/*
2012 2013 2014 2015 2016
  Release a user level lock.
  Return:
    1 if lock released
    0 if lock wasn't held
    (SQL) NULL if no such lock
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*/

longlong Item_func_release_lock::val_int()
{
  String *res=args[0]->val_str(&value);
  ULL *ull;
  longlong result;
  if (!res || !res->length())
  {
    null_value=1;
    return 0;
  }
  null_value=0;

  result=0;
  pthread_mutex_lock(&LOCK_user_locks);
  if (!(ull= ((ULL*) hash_search(&hash_user_locks,(const byte*) res->ptr(),
				 res->length()))))
  {
    null_value=1;
  }
  else
  {
    if (ull->locked && pthread_equal(pthread_self(),ull->thread))
    {
      result=1;					// Release is ok
      item_user_lock_release(ull);
      current_thd->ull=0;
    }
  }
  pthread_mutex_unlock(&LOCK_user_locks);
  return result;
}


longlong Item_func_set_last_insert_id::val_int()
{
  longlong value=args[0]->val_int();
  current_thd->insert_id(value);
  null_value=args[0]->null_value;
  return value;
}

/* This function is just used to test speed of different functions */

longlong Item_func_benchmark::val_int()
{
  char buff[MAX_FIELD_WIDTH];
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  String tmp(buff,sizeof(buff), &my_charset_bin);
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  THD *thd=current_thd;

  for (ulong loop=0 ; loop < loop_count && !thd->killed; loop++)
  {
    switch (args[0]->result_type()) {
    case REAL_RESULT:
      (void) args[0]->val();
      break;
    case INT_RESULT:
      (void) args[0]->val_int();
      break;
    case STRING_RESULT:
      (void) args[0]->val_str(&tmp);
      break;
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    case ROW_RESULT:
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    default:
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      // This case should never be choosen
      DBUG_ASSERT(0);
      return 0;
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    }
  }
  return 0;
}

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void Item_func_benchmark::print(String *str)
{
  str->append("benchmark(", 10);
  char buffer[20];
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  // my_charset_bin is good enough for numbers
  String st(buffer, sizeof(buffer), &my_charset_bin);
  st.set((ulonglong)loop_count, &my_charset_bin);
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  str->append(st);
  str->append(',');
  args[0]->print(str);
  str->append(')');
}

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#define extra_size sizeof(double)

static user_var_entry *get_variable(HASH *hash, LEX_STRING &name,
				    bool create_if_not_exists)
{
  user_var_entry *entry;

  if (!(entry = (user_var_entry*) hash_search(hash, (byte*) name.str,
					      name.length)) &&
      create_if_not_exists)
  {
    uint size=ALIGN_SIZE(sizeof(user_var_entry))+name.length+1+extra_size;
    if (!hash_inited(hash))
      return 0;
    if (!(entry = (user_var_entry*) my_malloc(size,MYF(MY_WME))))
      return 0;
    entry->name.str=(char*) entry+ ALIGN_SIZE(sizeof(user_var_entry))+
      extra_size;
    entry->name.length=name.length;
    entry->value=0;
    entry->length=0;
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    entry->update_query_id=0;
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    /*
      If we are here, we were called from a SET or a query which sets a
      variable. Imagine it is this:
      INSERT INTO t SELECT @a:=10, @a:=@a+1.
      Then when we have a Item_func_get_user_var (because of the @a+1) so we
      think we have to write the value of @a to the binlog. But before that,
      we have a Item_func_set_user_var to create @a (@a:=10), in this we mark
      the variable as "already logged" (line below) so that it won't be logged
      by Item_func_get_user_var (because that's not necessary).
    */
2136
    entry->used_query_id=current_thd->query_id;
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    entry->type=STRING_RESULT;
    memcpy(entry->name.str, name.str, name.length+1);
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    if (my_hash_insert(hash,(byte*) entry))
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    {
      my_free((char*) entry,MYF(0));
      return 0;
    }
  }
  return entry;
}

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/*
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  When a user variable is updated (in a SET command or a query like
  SELECT @a:= ).
2151
*/
2152

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bool Item_func_set_user_var::fix_fields(THD *thd, TABLE_LIST *tables,
					Item **ref)
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{
2156
  /* fix_fields will call Item_func_set_user_var::fix_length_and_dec */
2157
  if (Item_func::fix_fields(thd, tables, ref) ||
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      !(entry= get_variable(&thd->user_vars, name, 1)))
    return 1;
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  /* 
     Remember the last query which updated it, this way a query can later know
     if this variable is a constant item in the query (it is if update_query_id
     is different from query_id).
  */
2165
  entry->update_query_id= thd->query_id;
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  entry->collation.set(args[0]->collation);
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  cached_result_type= args[0]->result_type();
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  return 0;
}


void
Item_func_set_user_var::fix_length_and_dec()
{
  maybe_null=args[0]->maybe_null;
  max_length=args[0]->max_length;
  decimals=args[0]->decimals;
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  collation.set(args[0]->collation);
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}

2181

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bool Item_func_set_user_var::update_hash(void *ptr, uint length,
2183
					 Item_result type,
2184
					 CHARSET_INFO *cs,
2185
					 Derivation dv)
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{
  if ((null_value=args[0]->null_value))
  {
    char *pos= (char*) entry+ ALIGN_SIZE(sizeof(user_var_entry));
    if (entry->value && entry->value != pos)
      my_free(entry->value,MYF(0));
    entry->value=0;
    entry->length=0;
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    entry->collation.set(cs, dv);
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  }
  else
  {
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    if (type == STRING_RESULT)
      length++;					// Store strings with end \0
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    if (length <= extra_size)
    {
      /* Save value in value struct */
      char *pos= (char*) entry+ ALIGN_SIZE(sizeof(user_var_entry));
      if (entry->value != pos)
      {
	if (entry->value)
	  my_free(entry->value,MYF(0));
	entry->value=pos;
      }
    }
    else
    {
      /* Allocate variable */
      if (entry->length != length)
      {
	char *pos= (char*) entry+ ALIGN_SIZE(sizeof(user_var_entry));
	if (entry->value == pos)
	  entry->value=0;
	if (!(entry->value=(char*) my_realloc(entry->value, length,
					      MYF(MY_ALLOW_ZERO_PTR))))
	  goto err;
      }
    }
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    if (type == STRING_RESULT)
    {
      length--;					// Fix length change above
      entry->value[length]= 0;			// Store end \0
    }
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    memcpy(entry->value,ptr,length);
    entry->length= length;
    entry->type=type;
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    entry->collation.set(cs, dv);
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  }
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  return 0;
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 err:
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  current_thd->fatal_error();			// Probably end of memory
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  null_value= 1;
  return 1;
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}


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/* Get the value of a variable as a double */

double user_var_entry::val(my_bool *null_value)
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{
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  if ((*null_value= (value == 0)))
    return 0.0;

  switch (type) {
  case REAL_RESULT:
    return *(double*) value;
  case INT_RESULT:
    return (double) *(longlong*) value;
  case STRING_RESULT:
    return atof(value);				// This is null terminated
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  case ROW_RESULT:
    DBUG_ASSERT(1);				// Impossible
    break;
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  }
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  return 0.0;					// Impossible
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}


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/* Get the value of a variable as an integer */

longlong user_var_entry::val_int(my_bool *null_value)
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{
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  if ((*null_value= (value == 0)))
    return LL(0);

  switch (type) {
  case REAL_RESULT:
    return (longlong) *(double*) value;
  case INT_RESULT:
    return *(longlong*) value;
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  case STRING_RESULT:
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    return strtoull(value,NULL,10);		// String is null terminated
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  case ROW_RESULT:
    DBUG_ASSERT(1);				// Impossible
    break;
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  }
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  return LL(0);					// Impossible
}


/* Get the value of a variable as a string */

String *user_var_entry::val_str(my_bool *null_value, String *str,
				uint decimals)
{
  if ((*null_value= (value == 0)))
    return (String*) 0;

  switch (type) {
  case REAL_RESULT:
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    str->set(*(double*) value, decimals, &my_charset_bin);
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    break;
  case INT_RESULT:
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    str->set(*(longlong*) value, &my_charset_bin);
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    break;
  case STRING_RESULT:
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    if (str->copy(value, length, collation.collation))
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      str= 0;					// EOM error
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  case ROW_RESULT:
    DBUG_ASSERT(1);				// Impossible
    break;
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  }
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  return(str);
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}

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/*
  This functions is invoked on SET @variable or @variable:= expression.
  Evaluete (and check expression), store results.

  SYNOPSYS
    Item_func_set_user_var::check()

  NOTES
    For now it always return OK. All problem with value evalueting
    will be catched by thd->net.report_error check in sql_set_variables().

  RETURN
    0 - OK.
*/

bool
Item_func_set_user_var::check()
{
  DBUG_ENTER("Item_func_set_user_var::check");

  switch (cached_result_type) {
  case REAL_RESULT:
  {
    save_result.vreal= args[0]->val();
    break;
  }
  case INT_RESULT:
  {
    save_result.vint= args[0]->val_int();
    break;
  }
  break;
  case STRING_RESULT:
  {
    save_result.vstr= args[0]->val_str(&value);
    break;
  }
  case ROW_RESULT:
  default:
    // This case should never be choosen
    DBUG_ASSERT(0);
    break;
  }
  DBUG_RETURN(0);
}

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/*
  This functions is invoked on SET @variable or @variable:= expression.

  SYNOPSIS
    Item_func_set_user_var::update()

  NOTES
    We have to store the expression as such in the variable, independent of
    the value method used by the user

  RETURN
    0	Ok
    1	EOM Error

*/

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bool
Item_func_set_user_var::update()
{
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  bool res;
  DBUG_ENTER("Item_func_set_user_var::update");
  LINT_INIT(res);

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  switch (cached_result_type) {
  case REAL_RESULT:
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  {
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    res= update_hash((void*) &save_result.vreal,sizeof(save_result.vreal),
		     REAL_RESULT, &my_charset_bin, DERIVATION_NONE);
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    break;
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  }
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  case INT_RESULT:
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  {
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    res= update_hash((void*) &save_result.vint, sizeof(save_result.vint),
		     INT_RESULT, &my_charset_bin, DERIVATION_NONE);
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    break;
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  }
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2395
  break;
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2396
  case STRING_RESULT:
2397
  {
2398
    if (!save_result.vstr)					// Null value
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2399 2400
      res= update_hash((void*) 0, 0, STRING_RESULT, &my_charset_bin,
		       DERIVATION_NONE);
2401
    else
2402 2403 2404 2405
      res= update_hash((void*) save_result.vstr->ptr(),
		       save_result.vstr->length(), STRING_RESULT,
		       save_result.vstr->charset(),
		       args[0]->collation.derivation);
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2406 2407
    break;
  }
2408
  case ROW_RESULT:
2409
  default:
2410 2411 2412 2413
    // This case should never be choosen
    DBUG_ASSERT(0);
    break;
  }
2414
  DBUG_RETURN(res);
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2415 2416 2417
}


2418
double Item_func_set_user_var::val()
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2419
{
2420
  check();
2421 2422
  update();					// Store expression
  return entry->val(&null_value);
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2423 2424
}

2425
longlong Item_func_set_user_var::val_int()
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2426
{
2427
  check();
2428 2429
  update();					// Store expression
  return entry->val_int(&null_value);
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2430 2431
}

2432
String *Item_func_set_user_var::val_str(String *str)
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2433
{
2434
  check();
2435 2436
  update();					// Store expression
  return entry->val_str(&null_value, str, decimals);
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2437 2438 2439
}


2440 2441
void Item_func_set_user_var::print(String *str)
{
2442 2443 2444
  str->append("(@", 2);
  str->append(name.str, name.length);
  str->append(":=", 2);
2445 2446 2447 2448 2449
  args[0]->print(str);
  str->append(')');
}


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2450 2451 2452
String *
Item_func_get_user_var::val_str(String *str)
{
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2453
  DBUG_ENTER("Item_func_get_user_var::val_str");
2454
  if (!var_entry)
2455
    DBUG_RETURN((String*) 0);			// No such variable
2456
  DBUG_RETURN(var_entry->val_str(&null_value, str, decimals));
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2457 2458 2459 2460 2461
}


double Item_func_get_user_var::val()
{
2462 2463 2464
  if (!var_entry)
    return 0.0;					// No such variable
  return (var_entry->val(&null_value));
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2465 2466 2467 2468 2469
}


longlong Item_func_get_user_var::val_int()
{
2470 2471 2472
  if (!var_entry)
    return LL(0);				// No such variable
  return (var_entry->val_int(&null_value));
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2473 2474 2475
}


2476 2477 2478 2479 2480 2481 2482
/*
  When a user variable is invoked from an update query (INSERT, UPDATE etc),
  stores this variable and its value in thd->user_var_events, so that it can be
  written to the binlog (will be written just before the query is written, see
  log.cc).
*/

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2483 2484
void Item_func_get_user_var::fix_length_and_dec()
{
2485
  THD *thd=current_thd;
2486
  BINLOG_USER_VAR_EVENT *user_var_event;
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2487 2488 2489
  maybe_null=1;
  decimals=NOT_FIXED_DEC;
  max_length=MAX_BLOB_WIDTH;
2490

2491 2492
  if (!(var_entry= get_variable(&thd->user_vars, name, 0)))
    null_value= 1;
2493 2494 2495
  else
    collation.set(var_entry->collation);
  
2496
  if (!(opt_bin_log && is_update_query(thd->lex->sql_command)))
2497 2498 2499
    return;

  if (!var_entry)
2500
  {
2501
    /*
2502 2503 2504 2505
      If the variable does not exist, it's NULL, but we want to create it so
      that it gets into the binlog (if it didn't, the slave could be
      influenced by a variable of the same name previously set by another
      thread).
2506 2507 2508 2509 2510
      We create it like if it had been explicitely set with SET before.
      The 'new' mimicks what sql_yacc.yy does when 'SET @a=10;'.
      sql_set_variables() is what is called from 'case SQLCOM_SET_OPTION'
      in dispatch_command()). Instead of building a one-element list to pass to
      sql_set_variables(), we could instead manually call check() and update();
2511 2512
      this would save memory and time; but calling sql_set_variables() makes
      one unique place to maintain (sql_set_variables()). 
2513 2514 2515 2516 2517
    */

    List<set_var_base> tmp_var_list;
    tmp_var_list.push_back(new set_var_user(new Item_func_set_user_var(name,
                                                                       new Item_null())));
2518 2519
    /* Create the variable */
    if (sql_set_variables(thd, &tmp_var_list))
2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553
      goto err;
    if (!(var_entry= get_variable(&thd->user_vars, name, 0)))
      goto err;
  }
  /* 
     If this variable was already stored in user_var_events by this query
     (because it's used in more than one place in the query), don't store
     it.
  */
  else if (var_entry->used_query_id == thd->query_id)
    return;

  uint size;
  /*
    First we need to store value of var_entry, when the next situation
    appers:
    > set @a:=1;
    > insert into t1 values (@a), (@a:=@a+1), (@a:=@a+1);
    We have to write to binlog value @a= 1;
  */
  size= ALIGN_SIZE(sizeof(BINLOG_USER_VAR_EVENT)) + var_entry->length;      
  if (!(user_var_event= (BINLOG_USER_VAR_EVENT *) thd->alloc(size)))
    goto err;
  
  user_var_event->value= (char*) user_var_event +
    ALIGN_SIZE(sizeof(BINLOG_USER_VAR_EVENT));
  user_var_event->user_var_event= var_entry;
  user_var_event->type= var_entry->type;
  user_var_event->charset_number= var_entry->collation.collation->number;
  if (!var_entry->value)
  {
    /* NULL value*/
    user_var_event->length= 0;
    user_var_event->value= 0;
2554
  }
2555 2556 2557 2558 2559 2560 2561 2562 2563 2564 2565
  else
  {
    user_var_event->length= var_entry->length;
    memcpy(user_var_event->value, var_entry->value,
           var_entry->length);
  }
  /* Mark that this variable has been used by this query */
  var_entry->used_query_id= thd->query_id;
  if (insert_dynamic(&thd->user_var_events, (gptr) &user_var_event))
    goto err;

2566
  return;
2567

2568
err:
2569
  thd->fatal_error();
2570
  return;
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2571 2572 2573
}


2574
bool Item_func_get_user_var::const_item() const
2575
{
2576
  return (!var_entry || current_thd->query_id != var_entry->update_query_id);
2577
}
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2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589


enum Item_result Item_func_get_user_var::result_type() const
{
  user_var_entry *entry;
  if (!(entry = (user_var_entry*) hash_search(&current_thd->user_vars,
					      (byte*) name.str,
					      name.length)))
    return STRING_RESULT;
  return entry->type;
}

2590 2591 2592

void Item_func_get_user_var::print(String *str)
{
2593
  str->append("(@", 2);
2594 2595 2596 2597
  str->append(name.str,name.length);
  str->append(')');
}

2598

2599
bool Item_func_get_user_var::eq(const Item *item, bool binary_cmp) const
2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613
{
  /* Assume we don't have rtti */
  if (this == item)
    return 1;					// Same item is same.
  /* Check if other type is also a get_user_var() object */
  if (item->type() != FUNC_ITEM ||
      ((Item_func*) item)->func_name() != func_name())
    return 0;
  Item_func_get_user_var *other=(Item_func_get_user_var*) item;
  return (name.length == other->name.length &&
	  !memcmp(name.str, other->name.str, name.length));
}


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2614 2615 2616 2617 2618 2619 2620
longlong Item_func_inet_aton::val_int()
{
  uint byte_result = 0;
  ulonglong result = 0;			// We are ready for 64 bit addresses
  const char *p,* end;
  char c = '.'; // we mark c to indicate invalid IP in case length is 0
  char buff[36];
2621
  int dot_count= 0;
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2622

2623
  String *s,tmp(buff,sizeof(buff),&my_charset_bin);
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2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639
  if (!(s = args[0]->val_str(&tmp)))		// If null value
    goto err;
  null_value=0;

  end= (p = s->ptr()) + s->length();
  while (p < end)
  {
    c = *p++;
    int digit = (int) (c - '0');		// Assume ascii
    if (digit >= 0 && digit <= 9)
    {
      if ((byte_result = byte_result * 10 + digit) > 255)
	goto err;				// Wrong address
    }
    else if (c == '.')
    {
2640
      dot_count++;
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2641 2642 2643 2644 2645 2646 2647
      result= (result << 8) + (ulonglong) byte_result;
      byte_result = 0;
    }
    else
      goto err;					// Invalid character
  }
  if (c != '.')					// IP number can't end on '.'
2648
  {
2649 2650 2651 2652 2653 2654 2655 2656 2657
    /*
      Handle short-forms addresses according to standard. Examples:
      127		-> 0.0.0.127
      127.1		-> 127.0.0.1
      127.2.1		-> 127.2.0.1
    */
    switch (dot_count) {
    case 1: result<<= 8; /* Fall through */
    case 2: result<<= 8; /* Fall through */
2658
    }
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2659
    return (result << 8) + (ulonglong) byte_result;
2660
  }
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2661 2662 2663 2664 2665 2666

err:
  null_value=1;
  return 0;
}

2667

2668
void Item_func_match::init_search(bool no_order)
2669
{
2670
  DBUG_ENTER("Item_func_match::init_search");
2671 2672

  /* Check if init_search() has been called before */
2673
  if (ft_handler)
2674
    DBUG_VOID_RETURN;
2675

2676
  if (key == NO_SUCH_KEY)
2677 2678 2679 2680
  {
    List<Item> fields;
    for (uint i=1; i < arg_count; i++)
      fields.push_back(args[i]);
2681
    concat=new Item_func_concat_ws(new Item_string(" ",1,
2682 2683
                                   cmp_collation.collation), fields);
  }
2684

2685 2686
  if (master)
  {
2687 2688
    join_key=master->join_key=join_key|master->join_key;
    master->init_search(no_order);
2689 2690
    ft_handler=master->ft_handler;
    join_key=master->join_key;
2691
    DBUG_VOID_RETURN;
2692 2693
  }

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monty@narttu.mysql.fi committed
2694
  String *ft_tmp= 0;
2695

2696
  // MATCH ... AGAINST (NULL) is meaningless, but possible
2697
  if (!(ft_tmp=key_item()->val_str(&value)))
2698
  {
2699 2700
    ft_tmp= &value;
    value.set("",0,cmp_collation.collation);
2701 2702
  }

2703 2704 2705 2706 2707
  if (ft_tmp->charset() != cmp_collation.collation)
  {
    search_value.copy(ft_tmp->ptr(), ft_tmp->length(), ft_tmp->charset(),
                      cmp_collation.collation);
    ft_tmp= &search_value;
2708 2709
  }

2710 2711
  if (join_key && !no_order)
    flags|=FT_SORTED;
2712
  ft_handler=table->file->ft_init_ext(flags, key,
2713
				      (byte*) ft_tmp->ptr(),
2714
				      ft_tmp->length());
2715 2716 2717

  if (join_key)
    table->file->ft_handler=ft_handler;
2718 2719

  DBUG_VOID_RETURN;
2720 2721
}

2722

2723
bool Item_func_match::fix_fields(THD *thd, TABLE_LIST *tlist, Item **ref)
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2724 2725
{
  Item *item;
2726
  LINT_INIT(item);				// Safe as arg_count is > 1
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2727

2728 2729 2730
  maybe_null=1;
  join_key=0;

2731 2732 2733 2734 2735
  /*
    const_item is assumed in quite a bit of places, so it would be difficult
    to remove;  If it would ever to be removed, this should include
    modifications to find_best and auto_close as complement to auto_init code
    above.
2736
   */
2737 2738
  if (Item_func::fix_fields(thd, tlist, ref) ||
      !args[0]->const_during_execution())
2739 2740
  {
    my_error(ER_WRONG_ARGUMENTS,MYF(0),"AGAINST");
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2741
    return 1;
2742
  }
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2743

2744 2745
  const_item_cache=0;
  for (uint i=1 ; i < arg_count ; i++)
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2746
  {
2747
    item=args[i];
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2748
    if (item->type() == Item::REF_ITEM)
2749 2750
      args[i]= item= *((Item_ref *)item)->ref;
    if (item->type() != Item::FIELD_ITEM)
2751
      key=NO_SUCH_KEY;
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2752
  }
2753 2754 2755 2756 2757 2758
  /*
    Check that all columns come from the same table.
    We've already checked that columns in MATCH are fields so 
    PARAM_TABLE_BIT can only appear from AGAINST argument.
  */
  if ((used_tables_cache & ~PARAM_TABLE_BIT) != item->used_tables())
2759
    key=NO_SUCH_KEY;
2760
  
2761
  if (key == NO_SUCH_KEY && !(flags & FT_BOOL))
2762 2763
  {
    my_error(ER_WRONG_ARGUMENTS,MYF(0),"MATCH");
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2764
    return 1;
2765
  }
2766 2767 2768
  table=((Item_field *)item)->field->table;
  table->fulltext_searched=1;
  return agg_arg_collations_for_comparison(cmp_collation, args+1, arg_count-1);
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2769
}
2770

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2771 2772 2773
bool Item_func_match::fix_index()
{
  Item_field *item;
2774
  uint ft_to_key[MAX_KEY], ft_cnt[MAX_KEY], fts=0, keynr;
2775
  uint max_cnt=0, mkeys=0, i;
2776

2777
  if (key == NO_SUCH_KEY)
2778
    return 0;
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2779

2780
  for (keynr=0 ; keynr < table->keys ; keynr++)
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2781
  {
2782
    if ((table->key_info[keynr].flags & HA_FULLTEXT) &&
2783
        (table->keys_in_use_for_query.is_set(keynr)))
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2784
    {
2785
      ft_to_key[fts]=keynr;
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2786 2787 2788 2789 2790 2791
      ft_cnt[fts]=0;
      fts++;
    }
  }

  if (!fts)
2792
    goto err;
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2793

2794
  for (i=1; i < arg_count; i++)
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2795
  {
2796
    item=(Item_field*)args[i];
2797
    for (keynr=0 ; keynr < fts ; keynr++)
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2798
    {
2799
      KEY *ft_key=&table->key_info[ft_to_key[keynr]];
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2800 2801 2802 2803 2804
      uint key_parts=ft_key->key_parts;

      for (uint part=0 ; part < key_parts ; part++)
      {
	if (item->field->eq(ft_key->key_part[part].field))
2805
	  ft_cnt[keynr]++;
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      }
    }
  }

2810
  for (keynr=0 ; keynr < fts ; keynr++)
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2811
  {
2812
    if (ft_cnt[keynr] > max_cnt)
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2813
    {
2814
      mkeys=0;
2815 2816
      max_cnt=ft_cnt[mkeys]=ft_cnt[keynr];
      ft_to_key[mkeys]=ft_to_key[keynr];
2817 2818
      continue;
    }
2819
    if (max_cnt && ft_cnt[keynr] == max_cnt)
2820 2821
    {
      mkeys++;
2822 2823
      ft_cnt[mkeys]=ft_cnt[keynr];
      ft_to_key[mkeys]=ft_to_key[keynr];
2824
      continue;
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2825 2826 2827
    }
  }

2828
  for (keynr=0 ; keynr <= mkeys ; keynr++)
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2829
  {
2830 2831
    // partial keys doesn't work
    if (max_cnt < arg_count-1 ||
2832
        max_cnt < table->key_info[ft_to_key[keynr]].key_parts)
2833
      continue;
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2834

2835
    key=ft_to_key[keynr];
2836

2837 2838 2839
    return 0;
  }

2840
err:
2841
  if (flags & FT_BOOL)
2842
  {
2843
    key=NO_SUCH_KEY;
2844 2845
    return 0;
  }
2846
  my_error(ER_FT_MATCHING_KEY_NOT_FOUND,MYF(0));
2847
  return 1;
2848 2849
}

2850

2851
bool Item_func_match::eq(const Item *item, bool binary_cmp) const
2852
{
2853 2854
  if (item->type() != FUNC_ITEM || ((Item_func*)item)->functype() != FT_FUNC ||
      flags != ((Item_func_match*)item)->flags)
2855 2856 2857 2858 2859
    return 0;

  Item_func_match *ifm=(Item_func_match*) item;

  if (key == ifm->key && table == ifm->table &&
2860
      key_item()->eq(ifm->key_item(), binary_cmp))
2861
    return 1;
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2862 2863 2864 2865

  return 0;
}

2866

2867 2868
double Item_func_match::val()
{
2869
  DBUG_ENTER("Item_func_match::val");
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2870
  if (ft_handler == NULL)
2871
    DBUG_RETURN(-1.0);
2872

2873 2874 2875
  if (table->null_row) /* NULL row from an outer join */
    return 0.0;

2876 2877 2878
  if (join_key)
  {
    if (table->file->ft_handler)
2879
      DBUG_RETURN(ft_handler->please->get_relevance(ft_handler));
2880 2881 2882
    join_key=0;
  }

2883
  if (key == NO_SUCH_KEY)
2884
  {
2885 2886
    String *a= concat->val_str(&value);
    if ((null_value= (a == 0)))
2887 2888 2889
      DBUG_RETURN(0);
    DBUG_RETURN(ft_handler->please->find_relevance(ft_handler,
				      (byte *)a->ptr(), a->length()));
2890 2891
  }
  else
2892 2893
    DBUG_RETURN(ft_handler->please->find_relevance(ft_handler,
                                                   table->record[0], 0));
2894 2895
}

2896 2897
void Item_func_match::print(String *str)
{
2898
  str->append("(match ", 7);
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2899
  print_args(str, 1);
2900
  str->append(" against (", 10);
2901
  args[0]->print(str);
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2902
  if (flags & FT_BOOL)
2903
    str->append(" in boolean mode", 16);
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2904 2905
  else if (flags & FT_EXPAND)
    str->append(" with query expansion", 21);
2906
  str->append("))", 2);
2907
}
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2908

2909 2910 2911 2912
longlong Item_func_bit_xor::val_int()
{
  ulonglong arg1= (ulonglong) args[0]->val_int();
  ulonglong arg2= (ulonglong) args[1]->val_int();
2913
  if ((null_value= (args[0]->null_value || args[1]->null_value)))
2914 2915 2916 2917
    return 0;
  return (longlong) (arg1 ^ arg2);
}

2918

2919 2920 2921 2922
/***************************************************************************
  System variables
****************************************************************************/

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/*
  Return value of an system variable base[.name] as a constant item

  SYNOPSIS
    get_system_var()
    thd			Thread handler
    var_type		global / session
    name		Name of base or system variable
    component		Component.

  NOTES
    If component.str = 0 then the variable name is in 'name'

  RETURN
    0	error
    #	constant item
*/
  

Item *get_system_var(THD *thd, enum_var_type var_type, LEX_STRING name,
		     LEX_STRING component)
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{
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  if (component.str == 0 &&
      !my_strcasecmp(system_charset_info, name.str, "VERSION"))
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    return new Item_string("@@VERSION", server_version,
			   (uint) strlen(server_version),
			   system_charset_info);
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  Item *item;
  sys_var *var;
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  char buff[MAX_SYS_VAR_LENGTH*2+4+8], *pos;
  LEX_STRING *base_name, *component_name;

  if (component.str)
  {
    base_name= &component;
    component_name= &name;
  }
  else
  {
    base_name= &name;
    component_name= &component;			// Empty string
  }
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  if (!(var= find_sys_var(base_name->str, base_name->length)))
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    return 0;
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  if (component.str)
  {
    if (!var->is_struct())
    {
      net_printf(thd, ER_VARIABLE_IS_NOT_STRUCT, base_name->str);
      return 0;
    }
  }
  if (!(item=var->item(thd, var_type, component_name)))
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    return 0;					// Impossible
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  thd->lex->uncacheable(UNCACHEABLE_SIDEEFFECT);
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  buff[0]='@';
  buff[1]='@';
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  pos=buff+2;
  if (var_type == OPT_SESSION)
    pos=strmov(pos,"session.");
  else if (var_type == OPT_GLOBAL)
    pos=strmov(pos,"global.");
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  set_if_smaller(component_name->length, MAX_SYS_VAR_LENGTH);
  set_if_smaller(base_name->length, MAX_SYS_VAR_LENGTH);

  if (component_name->str)
  {
    memcpy(pos, component_name->str, component_name->length);
    pos+= component_name->length;
    *pos++= '.';
  }
  memcpy(pos, base_name->str, base_name->length);
  pos+= base_name->length;

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  // set_name() will allocate the name
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  item->set_name(buff,(uint) (pos-buff), system_charset_info);
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  return item;
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}
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Item *get_system_var(THD *thd, enum_var_type var_type, const char *var_name,
		     uint length, const char *item_name)
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{
  Item *item;
  sys_var *var;
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  LEX_STRING null_lex_string;

  null_lex_string.str= 0;
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  var= find_sys_var(var_name, length);
  DBUG_ASSERT(var != 0);
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  if (!(item=var->item(thd, var_type, &null_lex_string)))
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    return 0;						// Impossible
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  thd->lex->uncacheable(UNCACHEABLE_SIDEEFFECT);
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  item->set_name(item_name, 0, system_charset_info);	// Will use original name
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  return item;
}


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/*
  Check a user level lock.
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  SYNOPSIS:
    val_int()

  RETURN VALUES
    1		Available
    0		Already taken
    NULL	Error
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*/

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longlong Item_func_is_free_lock::val_int()
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{
  String *res=args[0]->val_str(&value);
  THD *thd=current_thd;
  ULL *ull;

  null_value=0;
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  if (!res || !res->length())
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  {
    null_value=1;
    return 0;
  }
  
  pthread_mutex_lock(&LOCK_user_locks);
  ull= (ULL*) hash_search(&hash_user_locks,(byte*) res->ptr(),
			  res->length());
  pthread_mutex_unlock(&LOCK_user_locks);
  if (!ull || !ull->locked)
    return 1;
  return 0;
}
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longlong Item_func_is_used_lock::val_int()
{
  String *res=args[0]->val_str(&value);
  THD *thd=current_thd;
  ULL *ull;

  null_value=1;
  if (!res || !res->length())
    return 0;
  
  pthread_mutex_lock(&LOCK_user_locks);
  ull= (ULL*) hash_search(&hash_user_locks,(byte*) res->ptr(),
			  res->length());
  pthread_mutex_unlock(&LOCK_user_locks);
  if (!ull || !ull->locked)
    return 0;

  null_value=0;
  return ull->thread_id;
}