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echo 'Qname : <select id ="selector">';
$s = mysql_query('SELECT qid,qname FROM q_table ORDER BY qname');
while($row = mysql_fetch_array($s))
{
  $filter = $row['qname'];
  $filterid = $row['qid']; 
  echo '<option value='.$filterid.'>'.$filter.'</option>';

echo '</select>';

echo '<div id='.$filterid.' class="colors" style="display:none;">';
echo '<table>
            <tr><th>USERID</th>
                <th>QNAME</th>
            </tr>';
$publishedqnames = mysql_query('SELECT qid, qname, quserid FROM pub_q'); 
while($row = mysql_fetch_array($publishedqnames))
{
   $qid = $row['qid'];
   $qname = $row['qname'];
   $quserid = $row['quserid'];
   echo '<tr>
            <td>'.$quserid.'</td>
            <td>'.qname.'</td> 
         </tr>';
}
echo '</table></div>';
}

when I select qname, the div of that selected filter(filter and qname are same) needs to get displayed JQUERY FILE

   $(function() 
{
    $('#selector').change(function(){
        $('.colors').hide();
        $('#' + $(this).val()).show();
    });
});

Rightnow Iamn't able to display the correct qid with correct div

share|improve this question
3  
Please, don't use mysql_* functions for new code. They are no longer maintained and the community has begun the deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide, this article will help to choose. If you care to learn, here is a good PDO tutorial. –  PeeHaa Aug 12 '12 at 15:26
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1 Answer 1

up vote -1 down vote accepted

Try this

echo 'Qname : <select id ="selector">';
$s = mysql_query('SELECT qid,qname FROM q_table ORDER BY qname');
while($row = mysql_fetch_array($s))
{
    $filter = $row['qname'];
    $filterid = $row['qid']; 
    echo '<option value='.$filterid.'>'.$filter.'</option>';
}
echo '</select>';
?>
<script>
 $(function() 
{
    $('#selector').change(function(){
        $('.colors').hide();
        $('#' + $(this).val()).show();
    });
});

</script>
<?php

echo '<table>
            <tr><th>USERID</th>
                <th>QNAME</th>
            </tr>';
$publishedqnames = mysql_query('SELECT qid, qname, quserid FROM pub_q'); 
while($row = mysql_fetch_array($publishedqnames))
{
   $qid = $row['qid'];
   $qname = $row['qname'];
   $quserid = $row['quserid'];
   echo '<div id='.$filterid.' class="colors" style="display:none;">';
   echo '<tr>
            <td>'.$quserid.'</td>
            <td>'.qname.'</td> 
         </tr>';
   echo '</div>';
}
echo '</table>';

please let me know if not working

share|improve this answer
    
"Try this:" is a subpar answer decoration. Instead please add a slim explanation of what your code does / changed, why you'd recommend it, or how you came to the conclusion. –  mario Aug 12 '12 at 15:51
    
Abid Hussain@Thank You for your answer, the code wasn't working. When I select the option, it shows nothing and I want to let you know Iam using a different js file and linking up in the file –  thersa Aug 12 '12 at 16:02
    
i have improve my answer please take a look and try again –  Abid Hussain Aug 12 '12 at 16:13
    
i have little bit change in code. –  Abid Hussain Aug 12 '12 at 16:14
    
Ya when I select the last qname, it is displaying all the qname at a time but not happening for previous qname –  thersa Aug 12 '12 at 16:23
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