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I'm trying to put 3 IF statements in an query instead of adding some php code. The error that is shown is FUNCTION admin_demo.in_array does not exist

if($pr_aantal[$i] > 0)
{
    // voer query uit
    $sql = "INSERT INTO planning_producten
        (
            planning_id,
            product_id,
            aantal,
            datum_snijden,
            datum_zetten,
            datum_uitbesteed,
            user_id
        )
        VALUES
        (
            '".$planning_id."',
            '".$pr_id[$i]."',
            '".$pr_aantal[$i]."',
            IF(in_array('1', '".$pr_bewerking_id[$i]."'), STR_TO_DATE('".$datum_snijden."','%d-%m-%Y'), '0000-00-00'),
            IF(in_array('2', '".$pr_bewerking_id[$i]."'), STR_TO_DATE('".$datum_zetten."','%d-%m-%Y'), '0000-00-00'),
            IF(in_array('3', '".$pr_bewerking_id[$i]."'), STR_TO_DATE('".$datum_uitbesteden."','%d-%m-%Y'), '0000-00-00'),
            '".$_SESSION['user_id']."'
        )
    ";

    // resultaat van query
    if(!$res = mysql_query($sql,$con))
    {
        include('includes/errors/database_error.php');
    }
}

$pr_bewerking_id[$i] is created with:

while ($row_i = mysql_fetch_array($res_i))
{
    $i++;

    // maak select name
    $name_bewerking_id = 'name_bewerking_id'.$i;
    ?>

    <tr valign="top">
        <td>
        <select name="<?php echo $name_bewerking_id ?>[]" multiple="multiple" size="2">
        <?php
            $sql_bew = "SELECT id, bewerking FROM bewerkingen ORDER BY orderby ASC";
            $res_bew = mysql_query($sql_bew,$con);
            while ($row_bew = mysql_fetch_assoc($res_bew))
            { ?>
                <option value="<?php echo $row_bew['id']; ?>"><?php echo $row_bew['bewerking']; ?></option>
        <?php } ?>
        </select>
        </td>
    </tr>
<?php }

And send thru

$pr_bewerking_id[$i] = array();

for ($i = 0; $i <= $pr_aantal_regels; $i++)
{
    $pr_bewerking_id[$i] = $_POST['name_bewerking_id'.$i];
}

Any suggestions?

share|improve this question
    
What are you trying to do with the if? cause of course it wont work there. –  Loko Sep 4 '13 at 8:25

1 Answer 1

I think you want to change this:

IF(in_array('1', '".$pr_bewerking_id[$i]."'),

To this:

IF(FIND_IN_SET('1', '" . $csv_string . "'),

You also have SQL injection vulnerabilities in your code. Use mysql_real_escape_string or parameterized queries.

share|improve this answer
    
That works but now it always puts '0000-00-00' in the database. If I add mysql_real_escape_string it destroys my array. –  Muiter Nov 12 '11 at 11:20
    
@Muiter: Use implode with comma to convert your array to a string. –  Mark Byers Nov 12 '11 at 11:26
    
Trying to use implode -> Invalid arguments passed and when echod the emploded variable it shows $pr_bewerking_id_imploded[$i] instead of it's contents. –  Muiter Nov 13 '11 at 15:55

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