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I have one drop down which is populated from database and on the same page I have a seconde drop down which will be populated from the value of the 1st one.

I want to use ajax for this so what should I do for this. And tutorial or a link from where I can solve my problem.

Updated: Here is the code which I used.

<script src="https://ajax.googleapis.com/ajax/libs/jquery/1.7.1/jquery.min.js" type="text/javascript"></script>
<script type="text/javascript">

    $('#cat').onChange(function(){
    alert("oncha");
        if($('#cat').val() == 'uprofile'){
            file = 'uprofile.html';
        }else if ($('#cat').val() == 'other'){

            file = 'city.html';
        }
        $('#city').change(function(){
            loadusers = $.ajax({
                    type: "GET",
                    url: file,
                    cache: false,
                    success: function (html) {
                        $("#city").html(html);
                    }
            });
        });
    });
</script>

<tr>
           <td class="label"><span id="required_span">* </span>Category</td>
           <td colspan="2" class="data"><select name="cat" id="cat">
           <option value="0">--Select Category--</option>

           <option value="O/O">O/O</option>
           <option value="company driver">company driver</option>
           <option value="other">other</option>

           </select></td>
      </tr>

 <tr>
           <td class="label"><span id="required_span">* </span>City</td>
           <td colspan="2" class="data"><select name="city" id="city">
           <option value="0">--Select city--</option>



           </select></td>
      </tr>

Here is the content of the city.html

<option>1</option>
<option>2</option>

But cannot work even the alert function. What I am missing in the code?

share|improve this question
1  
Hint: If you look at the "related" column on the right, you'll see a lot of duplicates to help you –  Damien Pirsy Feb 22 '12 at 12:59

2 Answers 2

up vote 1 down vote accepted

You can use something like this code:

    <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.7.1/jquery.min.js" type="text/javascript"></script>
<script type="text/javascript">

    $(function() {
        if($('select').val() == 'uprofile'){
            file = 'uprofile.html';
        }else if ($('select').val() == 'album'){

            file = 'album.html';
        }
        $('#dropdown').change(function(){
            loadusers = $.ajax({
                    type: "GET",
                    url: file,
                    cache: false,
                    success: function (html) {
                        $("#dropdown2").html(html);
                    }
            });
        });
    });
</script>
<body>
    <div id="edit-type-wrapper">
     <select id="dropdown">
       <option value="">Select one</option>
       <option value="albums">Album</option>
       <option value="uprofile">User Profile</option>
     </select>
     <select id="dropdown2">
     </select>
    </div>
</body>

Obviously you need to return the data from the other file/files. Hope this helps

share|improve this answer
    
If change the value in the first drop down list then the jquery function will be automatically call? –  Ahmad Feb 23 '12 at 6:36
    
right now no...but you can always send the value as a query string and then do the processing in the other php file example the url you can do it url: 'returnvalue.html?value='+$('select').val() that way you can eliminate the first part –  Claudio Carta Feb 24 '12 at 15:50
    
I have updated my question please look at it. –  Ahmad Mar 5 '12 at 8:24
    
the problem is with your javascript. first you did not include $(function(){}); so it could not bind it with the elements since they were not there. the change function cannot be on the city but on the cat only since that is where the ajax needs to fire up. In the next comment I added the javascript –  Claudio Carta Mar 5 '12 at 9:43
    
<code>$(function() { $('#cat').change(function(){ if($('#cat').val() == 'uprofile'){ file = 'uprofile.html'; }else if ($('#cat').val() == 'other'){ file = 'city.html'; } loadusers = $.ajax({ type: "GET", url: file, cache: false, success: function (html) { $("#city").html($("#city").html()+html); } }); }); });</code> –  Claudio Carta Mar 5 '12 at 9:43

First you need to listen for the dropdown to change so

$('#dropdown1').on('change',function(){});

in that function, you'll need to make your ajax call, and replace the options of the other dropdown, so

  value = $(this).find(':selected').val();
  url = //the url of the php handler
  $.post(url, {val: value},function(data){});

this takes care of the ajax request, in that function you want to populate your second drop down. what you actually do here will depend entirely on what you want to accomplish, and how you are returning the data. For this example I will return the data as a string of options.

  $('#dropdown2').html(data);

so the finished function looks like this,

  $('#dropdown1').on('change',function(){
    value = $(this).find(':selected').val();
    url = //the url of the php handler
    $.post(url, {val: value},function(data){
      $('#dropdown2').html(data);
    });
  });

Keep in mind that you will need to make changes to better fit what you have, but this should get you started in the right direction

share|improve this answer
    
I have updated my question please look at it. –  Ahmad Mar 5 '12 at 8:25

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