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I am trying to figure out how to mark a dropdown option as selected by checking it's value, but the value is coming from another query.

I get the $FK_TopicID from the query called $quickedit. The dropdown list is generated by a different query called $topresult. I have an IF/ELSE statement that is supposed to print SELECTED inside of the option like <option value="the Topic ID" SELECTED> when the $FK_TopicID is equal to $row['TopicID'].

I am just not sure how to check the $FK_TopicID within the while loop for $topresult. Any ideas?

    <?php

       $NewsID = $_GET["n"];
       $quickedit = mysql_query("SELECT * FROM News LEFT JOIN Topics on Topics.TopicID = News.FK_TopicID WHERE NewsID = $NewsID ORDER BY TopicName ASC, NewsTitle");
       $row = mysql_fetch_array($quickedit);

    echo "<p>" . $FK_TopicID . "</p>";

    /* additional php... */

    $topresult = mysql_query("SELECT * FROM Topics WHERE FK_UserID=$_SESSION[user_id] ORDER BY TopicSort, TopicName");

    while($row = mysql_fetch_array($topresult)) {
                if ( $row['TopicID'] == $FK_TopicID){ /* $FK_TopicID not printing value here */
                   $selected = " SELECTED";
                } else {
                   $selected = "";
                }
                echo '<option value=\"' . $row['TopicID'] . '" ' . $selected . '>' . $row['TopicName'] . '</option>';
        }

    ?>
share|improve this question
    
Why would you expect $FK_TopicID to print there? You have not called any print or echo on it. By the way, please do $NewsID = mysql_real_escape_string($_GET['n']); Your script is open to tampering via SQL injection as it is now. – Michael Berkowski Dec 6 '11 at 2:13
    
You are vulnerable to SQL injection, please either sanitize (e.g. intval()) or escape (e.g. mysql_real_escape_string()) anything your get from the _GET – Shad Dec 6 '11 at 2:13
    
Can you update your question with how you got $FK_TopicID? You say it comes from the $quickedit query but don't actually show how you set it. – MattCan Dec 6 '11 at 2:22
    
Michael: I guess that is part of my question. Can I print or echo a variable from another query within a WHILE clause? I would think PHP would look for this variable from the $topresult query since that is what the WHILE clause is referring to, e.g. while($row = mysql_fetch_array($topresult)). How can I let PHP know that the variable is from another query? – webdude77 Dec 6 '11 at 2:43
    
MattCan: I did show the $quickedit query above. Maybe I misunderstood your post. I print some variables in a form, e.g. <input value="<?php echo $row['NewsTitle']?>" type="text" name="NewsTitle" /> – webdude77 Dec 6 '11 at 2:43

I have no clue about the structures of the database, but I'll give it a shot

Does this output something you want?

<?php
$NewsID = $_GET['n'];
$quickedit = mysql_query("SELECT * FROM News LEFT JOIN Topics on Topics.TopicID = News.FK_TopicID WHERE NewsID = $NewsID ORDER BY TopicName ASC, NewsTitle");
$topresult = mysql_query("SELECT * FROM Topics WHERE FK_UserID=$_SESSION[user_id] ORDER BY TopicSort, TopicName");

echo "<p>" . $FK_TopicID . "</p>";

while($row = mysql_fetch_array($quickedit)) {
    while($row2 = mysql_fetch_array($topresult)) {
        if ( $row2['TopicID'] == $row['FK_TopicID']){
           $selected = " SELECTED";
        } else {
           $selected = "";
        }
        echo '<option value=\"' . $row2['TopicID'] . '" ' . $selected . '>' . $row['TopicName'] . '</option>';
    }
}

?>

This code loops through both queries and if the TopicID from $topresult is equal to the FK_TopicID from $quickedit, it will be selected.

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