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Can't make this query work

if (isset($_GET['id'])){
  $id = $_GET['id'];

  if(isset($_POST['submit'])) {

    $id = (int)$id;
    $caption = mysql_real_escape_string($_POST['caption']);

    mysql_query(" UPDATE  `photo_gallery`.`photograph` SET  `caption` ='{$caption}' WHERE  `photograph`.`id` ='{$id}' ");

but when I change it manually to this, it works

mysql_query("UPDATE  `photo_gallery`.`photograph` SET  `caption` =  'bruv' WHERE  `photograph`.`id` =3");
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Put this in your code $sql=" UPDATE photo_gallery.photograph SET caption ='{$caption}' WHERE photograph.id ='{$id}' "; and then an echo $sql; and tell me what you see. –  Fluffeh Jul 18 '12 at 9:30
1  
echo the evaluated string and look for the problem. –  Ali Jul 18 '12 at 9:33
    
try to check the result: if(!mysql_query('your query')) echo mysql_errno().': '.mysql_error(); –  Christian Giupponi Jul 18 '12 at 9:34
    
'code' UPDATE photo_gallery.photograph SET caption ='' WHERE photograph.id = –  cryptex_vinci Jul 18 '12 at 10:28

4 Answers 4

You have single quotes around {$id}. If your id's are hints in the database, then it shouldn't be quoted.

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Is there a reason for the curly braces in your SQL command? try this instead:

mysql_query(" UPDATE  `photo_gallery`.`photograph` SET  `caption` ='$caption' WHERE  `photograph`.`id` ='$id' ");
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Try this:

mysql_query(" UPDATE  `photo_gallery`.`photograph` SET  `caption` ='".$caption."' WHERE  `photograph`.`id` = '".$id."' ");

Also use intval to parse int instread.

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the problem could be from mysql_real_escape_string. In the new version, the escaping is done by mysql and not by php anymore so .... for me it worked like this.

$caption = $_POST['caption'];

mysql_query(" UPDATE  `photo_gallery`.`photograph` SET  `caption` ='".mysql_real_escape_string($caption)."' WHERE  `photograph`.`id` ='".$id."' ");
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