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I have a problem with my function db_modif();. Everytime, if the value are correct and exist, the message is the first one (the if condition).

echo "Il n'y a aucun compte au nom de: ".$username." au site: ".$site." dans la base de données";

So, there is no modification in my Database Here is my code form the manipulation :

<?php
  $username = $_POST["user_search"];
  $site = $_POST["adr_search"];
  $fonction = $_POST["fonction"];
  $modif = $_POST["modif_value"];

  $prep ="";

  if(!$username)
    echo 'Nom d\'utilisateur manquant..';
  elseif(!$site)
    echo 'Site manquante..';
  else{
    require("db_action.php");   //Require in the database connection.
    $bd = db_open();                // Open DATABASE

    if($fonction == "usernameOp")
      $prep = "username";
    if($fonction == "adresseOp")
      $prep = "adresse";
    if($fonction == "passwdOp")
      $prep = "password";
    if($fonction == "siteOp")
      $prep = "siteWeb";
    if($fonction == "fonctionOp")
      $prep = "fonction";

    db_modif($prep, $username, $site, $modif);
    db_close($bd);
  }//ELSE

And from the function db_modif();:

function db_modif($prep, $username, $site, $modif){

  error_reporting(-1);  //Activer le rapport de toutes les genres d'erreurs

  $querycon = "UPDATE info_compte SET $prep = '$modif' WHERE username = '$username' AND siteWeb = '$site'";
  if($response = mysql_query($querycon) or trigger_error(mysql_error())){
    echo "<pre>";
    echo "Il n'y a aucun compte au nom de: <b>".$username."</b> au site: <b>".$site."</b> dans la base de données";
    echo "</pre>";
  }
  else{
    mysql_query($querycon);
    echo "<pre>\n";
    echo "Le compte <b>".$username."</b> du site : <b>".$site."</b> a été supprimé avec succès\n";
    echo "</pre>";
  }//ELSE
}//db_modif
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1 Answer

up vote 3 down vote accepted

Change AND WHERE to just AND on this line:

$querycon = "UPDATE info_compte SET $prep = '$modif'
             WHERE username = '$username'
             AND WHERE siteWeb = '$site'";

I'd suggest that you use mysql_error() to help debugging this sort of problem in future.

$response = mysql_query($querycon) or trigger_error(mysql_error());

You may also have an SQL injection vulnerability if any of those variables can contain quotes. Consider using mysql_real_escape_string or PDO with prepared statements.

share|improve this answer
    
i use your $response = mysql_query($querycon) or trigger_error(mysql_error()); but it's still the same –  HulkThor Feb 25 '11 at 23:25
    
@HulkThor: You changed it wrong. You haven't fixed the error I mentioned. And you should be checking the value of mysql_affected_rows, not the value of $response. –  Mark Byers Feb 25 '11 at 23:30
    
How should I use it? And sorry i modify it on my script and not on my answer.. i edit it –  HulkThor Feb 25 '11 at 23:34
    
it's still the same question --> Why do the first of (if condition) is appearing –  HulkThor Feb 25 '11 at 23:49
    
You should be checking the value of mysql_affected_rows, not the value of $response. –  Mark Byers Feb 25 '11 at 23:55
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