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Following on from my question yesterday, I now have the code below somewhat successfully working. It allows me to change the first form item and submits it to 'process.php' in the background and turns the field green. However the trigger only works on the first form item, in this case "cstate". It doesn't trigger when "clocation" is changed. If you change clocation and then cstate then both form submit fine so it's simply that the .change function isn't triggering when clocation is changed. I'm not good enough at JS (total JS noob) to know why it isn't working so I'd appreciate any help you can give me.

Thanks!

 $sql = "select * from `$table1`";
 $result = mysql_query ($sql) or die(mysql_error());
 while ($row = mysql_fetch_array($result)) 
 { 
   $carid = $row["car_id"]; 
   $carnum = $row["carnum"]; 
   $carlocation = $row["carlocation"];
   $carstate = $row["carstate"];


  $formname = "#form".$carid;

  print '<script type="text/javascript">';
  print "        var cnum;";
  print "        cnum = '$formname',";
  print "        

  $('form').change(function() 
  {
  console.log(cnum);
  $.ajax({ 
  type: 'post',
  url: 'process.php',
  data: $(this).serialize(),
  success: function() {
  }
   });
  return false;
   }); 
  </script>";

   echo "<table>";
   echo "<tr id='$carid'>";
   echo "<td>$carnum</td>";
   echo "<td><form action='' method='post' id='form$carid'>";
   echo "<select id='popup' name='cstate'>";
   echo "<option value='In-Service-Bay'>In Service Bay</option>";
   echo "<option value='Awaiting-Service'>Awaiting Service</option>";
   echo "<option value='Service-Complete'>Service Complete</option>";
   echo "</select></td>";
   echo "<select id='popup' name='clocation'>";
   echo "<option value='Carpark-1'>Carpark-1</option>";
   echo "<option value='Carpark-2'>Carpark-2</option>";
   echo "<option value='Carpark-3'>Carpark-3</option>";
   echo "</select></td>";
   echo "</form></tr>";
  }
  echo "</table>";
share|improve this question
    
your two selects have the same id. I guess it is what is causing your problem. –  jbl Mar 19 '13 at 9:27
    
Tried them with different ID's, still the same problem. –  Compy Mar 19 '13 at 9:37
    
and your html is not valid you are closing your form between td and tr ( should be in td ) –  jbl Mar 19 '13 at 9:41
    
@jbl may be code inside while loop causing it....right..? –  Dipesh Parmar Mar 19 '13 at 9:41
    
@DipeshParmar I would for example have written $('#form$carid').change ... and performed it on document.ready . Anyway not sure I grasp the logic (the js located outside the loop should have been better design anyway) –  jbl Mar 19 '13 at 9:50

2 Answers 2

Use .on() and wrap code inside document.ready.

$(document).ready(function(){
  $('form').on('submit',function() 
  {
     //code here
  });
});

also put this code outside the while loop. Also form does not have change event try using .submit()

share|improve this answer
    
Seems to work exactly the same as the above code. Still doesn't update when the second field is changed. –  Compy Mar 19 '13 at 9:37
    
@Adam ohhh man declare above code outside the while loop. –  Dipesh Parmar Mar 19 '13 at 9:40
    
If I declare it outside of the loop it doesn't work at all! –  Compy Mar 19 '13 at 9:46
    
@Adam i am wondering if form have change event...replace change to submit and see. –  Dipesh Parmar Mar 19 '13 at 9:48
up vote 0 down vote accepted

Solved it by using a separate form for each input selection. Works brilliantly now.

Thanks to all those that tried to help.

Adam

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