Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to do a search based on

<select multiple=multiple name="chkUnr[]">

I'm getting out the values from select by running code:

 for($i=0;$i<count($_POST["chkUnr"]);$i++)
                    {
                    if($_POST["chkUnr"][$i] != "")
                    {
                        $search_country = $_POST["chkUnr"][$i];                     
                    }

            $query = "";
            $query .= "SELECT users.* FROM users";
            if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
              $query .= " LEFT JOIN online ON online.user_id = users.id";
            }
            $query .= " WHERE";
            if (isset($_POST['vip']) ? $_POST['vip'] : 0 == 1) {
             $query .= " users.vip = 1 AND";
            }
            if (isset($_POST['profile_image']) ? $_POST['profile_image'] : 0 == 2) {
              $query .= " users.profile_image = '2' AND";
            }
            if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
              $query .= " online.is_online = 1 AND";
            }
            $query .= " (id NOT IN (SELECT user_id FROM users_blocked WHERE blocked_id = '$user_id')) AND";

            $query .= " (users.user_age >= '$age_from' AND users.user_age <= '$age_to') AND";

            $query .= " (users.gender = '$gender_search') AND";

            $query .= " users.country IN ('$search_country')";

            $search_query = mysql_query($query);


            }

And i can print out the values but the problem comes when i do the SQL search. It only pick up the first value in this case im using countries: So when i select Sweden, Germany, Usa i can print them all out but when trying to do a SQL query only Sweden is being picked up.

I've tried with this code but still same result.

share|improve this question
    
What does a var_dump($_POST) look like? –  SwiftOtter Studios Dec 11 '12 at 13:36
    
I'm sorry, don't know what it is and where it should be. –  Mensur Dec 11 '12 at 13:44

2 Answers 2

up vote 1 down vote accepted

The problem here (and with the other answer) is that the in clause was surrounded by quotes, so that will not yield the result that we want. We need to effectively pass in an array to the query. Also your code is vulnerable to sql injection. I would strongly suggest moving to PDO/prepared statements. I added a slight protection to the countries, but that is not foolproof by any means.

function prepareForSql($value, $key) {
    return addslashes($value);
}

array_walk($_POST["chkUnr"], "prepareForSql");
$search_country = "'" . implode("','", $_POST["chkUnr"]) . "'";

$query = "";
$query .= "SELECT users.* FROM users";
if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
    $query .= " LEFT JOIN online ON online.user_id = users.id";
}
$query .= " WHERE";
if (isset($_POST['vip']) ? $_POST['vip'] : 0 == 1) {
    $query .= " users.vip = 1 AND";
}
if (isset($_POST['profile_image']) ? $_POST['profile_image'] : 0 == 2) {
    $query .= " users.profile_image = '2' AND";
}
if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
    $query .= " online.is_online = 1 AND";
}
$query .= " (id NOT IN (SELECT user_id FROM users_blocked WHERE blocked_id = '$user_id')) AND";

$query .= " (users.user_age >= '$age_from' AND users.user_age <= '$age_to') AND";
$query .= " (users.gender = '$gender_search') AND";

$query .= " users.country IN ($search_country)";

$search_query = mysql_query($query);
share|improve this answer
    
This solution worked but this code needed to be modified: $search_country needed to be modified first to: $search_country = "" . implode("','", $_POST["chkUnr"]) . ""; –  Mensur Dec 12 '12 at 8:57

Try

            $search_country = implode(',',array_unique($_POST["chkUnr"]));

        $query = "";
        $query .= "SELECT users.* FROM users";
        if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
          $query .= " LEFT JOIN online ON online.user_id = users.id";
        }
        $query .= " WHERE";
        if (isset($_POST['vip']) ? $_POST['vip'] : 0 == 1) {
         $query .= " users.vip = 1 AND";
        }
        if (isset($_POST['profile_image']) ? $_POST['profile_image'] : 0 == 2) {
          $query .= " users.profile_image = '2' AND";
        }
        if (isset($_POST['singles_online']) ? $_POST['singles_online'] : 0 == 1) {
          $query .= " online.is_online = 1 AND";
        }
        $query .= " (id NOT IN (SELECT user_id FROM users_blocked WHERE blocked_id = '$user_id')) AND";

        $query .= " (users.user_age >= '$age_from' AND users.user_age <= '$age_to') AND";

        $query .= " (users.gender = '$gender_search') AND";

        $query .= " users.country IN ('$search_country')";

        $search_query = mysql_query($query);
share|improve this answer
    
$search_country = implode(',',array_unique($_POST["chkUnr"])); If i select sweden and croatia the output is: croatia,swedencroatia,sweden Search results: 0 people found –  Mensur Dec 11 '12 at 13:43
    
if you look closely, i didn't use a for()... it isn't needed –  Udan Dec 12 '12 at 6:50
    
Ahh yes better now. But i get results now if i select one country. But when selecting more then one country 0 results found. Any idea why? –  Mensur Dec 12 '12 at 8:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.