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I want do a search in a sql table using a drop down menu.

For exmple, the user can chose color and then it will show all the items with that color.

Here is my code - I tried to use sql command with color red (rouge in French) it works; then I tried to use $couleur, it does not work. can someone check my sql command please. thank you so much.

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
<meta http-equiv="Content-Type" content="text/html; charset=UTF-8" />
<title>Untitled Document</title>
</head>

<body>
<form name="" method="post" action="enquete.php">
<select name="couleur">
   <option ></option>
  <option value="rouge">rouge</option>
  <option value="pink">pink</option>



</select>




</select>
<input type="submit" value="submit" name="submit2" /> <br/>
</form>


</body>
</html>

<?php 

     //traitement pour decoulant couleur
    if (isset($_POST["couleur"]) && $_POST["couleur"]!="0"&& isset($_POST["submit"]) ){
        //connexion avec le serveur
        include_once("mesparametres.inc.php");
        //récupération données formulaire
        $couleur = $_POST["couleur"];
        $query = "SELECT * FROM `poisson` WHERE `couleur` LIKE 'rouge'";
        $query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '\"$couleur\"'";
       $result = mysql_query($query) or die('Query failed: ' . mysql_error());


        // Printing results in HTML

        echo "<table border='1' width='300'>\n";

         $count = 0;
            while ($line = mysql_fetch_array($result, MYSQL_ASSOC)) {
               echo "\t<tr>\n";
               foreach ($line as $col_value) {
                   echo "\t\t<td>$col_value</td>\n";
               }
               $count++;
               echo "\t</tr>\n";
            }

            echo "</table>\n";


        //fermeture connexion avec la BD
        mysql_close($idConnectDB); 
    }

 ?>
share|improve this question
    
is this a typo? isset($_POST["submit"]) ? When you use name="submit2" ? – Dan Soap Dec 23 '11 at 18:19
1  
Welcome to Stack Overflow! The code you show is vulnerable to SQL injection. Use the proper sanitation method of your library (like mysql_real_escape_string() for the classic mysql library), or switch to PDO and prepared statements. – Pekka 웃 Dec 23 '11 at 18:20
    
yes, it is a typo, thanks – tzu-hui chan Dec 23 '11 at 19:02
    
thanks, it works now, i used mysql_real_escape_string() – tzu-hui chan Dec 23 '11 at 19:03

I would change the offending line to:

$query = "SELECT * FROM poisson WHERE couleur LIKE '%" . mysql_real_escape_string($couleur) . "%'";

Note that LIKE is a text search... If you want to only pull results where the column is exactly what is in $couleur you should replace LIKE with = and remove the percent signs (wild-card matching.)

Also note that I wrapped the $couleur variable inside the mysql_real_escape_string() function to protect from SQL injection.

share|improve this answer
    
thank you very much, it works now :) – tzu-hui chan Dec 23 '11 at 19:01

You don't need extra quotes around $couleur.

Try this one:

$query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '$couleur'";
share|improve this answer
1  
cough-SQL injection-cough – Pekka 웃 Dec 23 '11 at 18:20
2  
Sorry, I am not a PHP guy, don't know how it's done there. Just spotted obvious mistake :-) – Sergio Tulentsev Dec 23 '11 at 18:22

I believe you need to change this line:

$query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '\"$couleur\"'";

to:

$query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '".$couleur."'";
share|improve this answer
    
cough-SQL injection-cough – Pekka 웃 Dec 23 '11 at 18:20
2  
@Pekka I'd say your comment on the question itself is enough. SQL injection is only one of many other basic design flaws in the script posted. Better get something for your cough! :) – Yuck Dec 23 '11 at 18:21

This line

$query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '\"$couleur\"'";

would actually search for the value "rouge", instead of the correct value rouge.

Change it to

$query = "SELECT * FROM `poisson` WHERE `couleur` LIKE '".$couleur."'";

However, this is prone to sql injection attacks. You should either switch to using prepared statements (see PHPs PDO for example) or at least use mysql_real_escape_string:

$query = "SELECT * FROM `poisson` ".
         "WHERE `couleur` LIKE '" . mysql_real_escape_string($couleur)."'";
share|improve this answer

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