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I'm trying to dynamically add options to a box using PHP, jQuery and AJAX.

First, a call to AJAX when the first control (taglist) is changed:

$('#taglist').change(function(){
    $.post('../includes/ajax.php', {   
      taglist:$(this).find("option:selected").attr('value')}, function(data) {
      $("#catlist").html(data.catlist);
    });
});

A PHP function fillselecteditmultiple() I've written populates a sting of the following format:

$options = '<option value="1">Option 1</option><option value="2">Option 2</option><option value="3">Option 3</option>';

which I return it to the page using json_encode like this:

if(isset($_POST['taglist'])){
    $catresult = mysql_query("select catid from category_tags where id='".$_POST['taglist']."'");
    $rowcat = mysql_fetch_array($catresult);

    $catlist = '<select name="cat_id[]" size="5" multiple id="cat_id[]">';
    $catlist .= fillselecteditmultiple(1, 0, $rowcat['catid']);
    $catlist .= '</select>';
    echo json_encode(array("status"=>"success", "catlist" => $catlist));
}

I need to return that string ($catlist) inside of a <select id="mylist"></select> accordingly so that the final output is this:

<select id="mylist">
  <option value="1">Option 1</option>
  <option value="2">Option 2</option>
  <option value="3">Option 3</option>
</select>

In Firebug I see the response correctly but nothing shown in the page.

How should I do this? Please ask for any clarifications if you feel thet my question is incomplete.

share|improve this question
1  
Show your js part –  FAngel Dec 5 '12 at 15:22
1  
If you're returning a string from your AJAX call, just append() it, or set the html(). –  Rory McCrossan Dec 5 '12 at 15:22
    
Can you show the code you've tried so far please? What exactly "doesn't work"? I don't see any attempt on your part at solving this, or at least explianing what the problem is by posting your failed code. –  Wesley Murch Dec 5 '12 at 15:25
1  
downvote seems unnecessary since the question is clear and the OP is willing to post more relevant code. –  Tim Joyce Dec 5 '12 at 15:28
1  
I agree. However I prefer to keep the code simple when I post a question on SO so that readers dont bother with other matters apart from the one that i'm actually asking about. Enough said. As far as your "too localized" comment, you claim this post a sign of effort and research? stackoverflow.com/questions/2094136/… Dont be too quick in judging mate, nobody's flawless, especially those who believe to be. –  bikey77 Dec 5 '12 at 16:01

3 Answers 3

Use .append to insert contents inside an element. See below,

$('#mylist').append($options);
share|improve this answer
    
Is this given that the response is simply echoed out in the ajax call or returned with json_encode? –  bikey77 Dec 5 '12 at 15:27
    
This works if you simply echo the string out in your server side page. However, the variable of $options is probably not available in your javascript code. This answer is merging php and js languages together. –  Tim Joyce Dec 5 '12 at 15:30
    
Unless $options is your js variable. –  Tim Joyce Dec 5 '12 at 15:36
    
I'm not mixing the variables, but if I return it via json_encode nothing appears whereas, if I output some dummytext to a div (for testing/debugging purposes) it works. –  bikey77 Dec 5 '12 at 15:39

If you have jquery lib running do something like this:

$.ajax({
  url: 'your_script_url.php',
  success: function(data) {
    $('#mylist').html(data);
  }
});

alternatively you could append the data if you wanted to add extra options

share|improve this answer
$.ajax({
  url: 'ajax/test.html',
  success: function(data) {
   //Relevant code
    $('#mylist').html(data);
  }
});
share|improve this answer

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