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I am going crazy trying to figure out how to display a table in a div tag after a user selects a select option.

JQuery/AJAX

$('#months').change(function() {

                  var month_sent = $('#months option:selected').text();

                  $.ajax ({
                      type: "GET",
                      dataType: 'text',
                      url: "db_connect.php",
                      data: "dept_sent=" + dept_sent + "&month_sent=" + month_sent + "&year_sent=" + year_sent,
                      success: function(data) {
                          $('#incident_table').html(data);
                      },
                      error: function() {
                        alert("Error!");
                      }

                  });
              });

PHP

  if ($dept && year && $month) {
      $query = "SELECT date,dept,area_name,ticket,description,resolution FROM incidents WHERE (dept = '$dept') AND (YEAR(date) = '$year') AND (MONTH(date) = '$month')";
      $query_image = "SELECT image_content FROM images WHERE dept_name = '$dept' AND year = '$year' AND month = '$month'";

      $result = mysql_query($query);
      $result_image = mysql_query($query_image);

      while ($row = mysql_fetch_assoc($result)) {
         // foreach ($row as $value) {
              $incident .= '<tr><td>'.$row['date'].'</td><td>'.$row['dept'].'</td><td>'.$row['area_name'].'</td><td>'.$row['ticket'].'</td><td>'.$row['description'].'</td><td>'.$row['resolution'].'</td></tr>';
          //}
      }
      echo $incident;
  }

All i need to do is be able to display the table inside of the "incidents" div tag

Edit:

<div style="border: 1px solid black; width:310px; height: 310px;" name="incidents" id="incidents">
      <table id="incident_table">
      </table>
  </div>

Please help! :(

share|improve this question
1  
Does the PHP side return the expected output? –  MrCode Apr 26 '12 at 16:48
    
What's your question? –  Madbreaks Apr 26 '12 at 16:51
    
echo '<table>'.$incident.'</table>'; –  Luis Siquot Apr 26 '12 at 16:57
    
be shure you are not alowing SQL injection using not escaped variables –  Luis Siquot Apr 26 '12 at 17:00

3 Answers 3

try change your php to this:

    if ($dept && year && $month) {
      print_r(1);exit;
      $query = "SELECT date,dept,area_name,ticket,description,resolution FROM incidents WHERE (dept = '$dept') AND (YEAR(date) = '$year') AND (MONTH(date) = '$month')";
      $query_image = "SELECT image_content FROM images WHERE dept_name = '$dept' AND year = '$year' AND month = '$month'";

      $result = mysql_query($query);
      $result_image = mysql_query($query_image);

      while ($row = mysql_fetch_assoc($result)) {
         // foreach ($row as $value) {
              $incident .= '<tr><td>'.$row['date'].'</td><td>'.$row['dept'].'</td><td>'.$row['area_name'].'</td><td>'.$row['ticket'].'</td><td>'.$row['description'].'</td><td>'.$row['resolution'].'</td></tr>';
          //}
      }
      echo $incident;
  } else print_r(0);exit;

then move print_r(1); command down until you catch the row with the problem

share|improve this answer

insert the dynamic content into the div and not into the empty/incomplete table structure

 success: function(dataHTML) {
      $('#incidents').html(dataHTML);
 },

and in php

echo '<table id="incident_table">'.$incident.'</table>';

also read other comments about SQL injection and the missing $ on year

share|improve this answer
    
Thank you for your feedback. I did try the above, but it still does not return the desired table inside of the div tag. The PHP now seems to be in order. Unsure on what is wrong –  jmg0880 Apr 26 '12 at 17:18
    
are you checking what is realy happening with firebug??? also is better to use data: {dept_sent: dept_sent, month_sent:month_sent, year_sent: year_sent} but anyway I do not see how year_sent and dept_sent are asigned a value??? –  Luis Siquot Apr 26 '12 at 17:52

You're missing a $ before year in the first line in PHP

change this line:
if ($dept && year && $month) {

to this:
if ($dept && $year && $month) {

Try to run the PHP file alone first to check it is working properly.

share|improve this answer
    
in this case year evaluate as true –  Luis Siquot Apr 26 '12 at 16:55
    
Oppps didn't see that. Thank you for the catch! However, it still seems to not return the correct values back to the JQuery –  jmg0880 Apr 26 '12 at 16:58
    
This is kind of embarrassing. $query_image = "SELECT image_content FROM images WHERE dept_name = '$dept' AND year = '$year' AND month = '$month'"; I had to change the above to: $query_image = "SELECT image_content FROM images WHERE dept_name = '$dept' AND year = '$year' AND MONTHNAME(date) = '$month'"; So my SQL was to blame here –  jmg0880 Apr 26 '12 at 19:42
    
You need to change the query to the following: $query_image = "SELECT image_content FROM images WHERE dept_name = '".$dept."' AND year = '".$year."' AND MONTHNAME(date) = '".$month."'"; –  Oras Apr 27 '12 at 13:59

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