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I need to be able to copy all the rows that have no userid into the same table with a userid that equals 1. this is the code that I have:(it doesnt work when I run it), it does display the items field and widget id field using echo. but it doesnt insert the data. any suggestions

    $sql=("SELECT * from options WHERE userid='' ");
    $resultat= mysql_query($sql);

    while($row = mysql_fetch_array($resultat))
  {
     $userid="1";
    echo $items.$widgetid."<br>";
      $widgetid = $row['widgetid'];
      $items = $row['items'];
       $stats = $row['stats'];
      $upd=("INSERT INTO options (userid, widgetid, items,stats)
VALUES ('$userid', '$widgetid','$items', '$stats')");
mysql_query($upd);
      }
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If an insert fails, there's usually an error message associated with it. Without knowing what's really going on, my guess is userid is the PRIMARY KEY and can thus not occur twice. –  rodneyrehm Mar 1 '12 at 10:49
    
PRIMARY PRIMARY 23 id widgetid UNIQUE 23 widgetid. id is primary not userid. it doesnt return an error if it did I would fix it –  fogsy Mar 1 '12 at 11:25

4 Answers 4

INSERT INTO options 
SELECT '1' AS userid, widgetid, items, stats 
FROM options
WHERE userid = ''

assuming this is the order of colums declared in your table.

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create table newTable like oldTable;

insert into newTable
select * from oldTable
where userid = '';

But maybe you really just need to update like Naveen said?

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hey tombom, it needs to be a copy on the SAME table with different ids. not a new table so no create table. I figured it needs to be through a loop. –  fogsy Mar 1 '12 at 10:51

I think you only need to update the rows where userid=''

update options 
set userid=1 
where userid='';


$upd=("INSERT INTO options (userid, widgetid, items,stats)
 select 1, widgetid, stats from options
 where userid='' ");
share|improve this answer
    
no I need copies of those. I am not trying to update the fields I need multiple ones so copies.I am very familiar with UPDATE and thats not what I am looking for. –  fogsy Mar 1 '12 at 10:45
    
Then try this query insert into options(fields,userid) select fields,1 from options where userid=''; –  Naveen Kumar Mar 1 '12 at 11:06
    
@fogsy did my query work for you. –  Naveen Kumar Mar 1 '12 at 11:29
    
I am not familiar with that syntax,its a loop and it contains variables as shown on the code above. –  fogsy Mar 1 '12 at 11:33
1  
try this $upd=("INSERT INTO options (userid, widgetid, items,stats) VALUES (1, '$widgetid','$items', '$stats')"); –  Naveen Kumar Mar 1 '12 at 11:35

Use below snippets in PHP

$upd= (
       "INSERT INTO 
        options (userid, widgetid, items,stats) 
        VALUES (1, '". $widgetid ."' , '". $items ."' , '". $stats ."')
       "
      );
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