Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm new to javascript, I can't seem to figure out what I am missing. I was experimenting with the ajax functions from jquery. I got stuck on this piece of code. The idea is that when a checkbox is checked, it executes a php script and outputs the status of that script to the "Status" div.

I've spent the last hour looking over my code and I can't see that I missed anything. Of course it probably doesn't help that my javascript skills are pretty low.

function playback(){
  $.ajax({
    url:"ChangePlayback.php",
    type: "GET",
    if((document).getElementById('LoopPlayback').checked)
    {
      data: "playback=1",
    }
    else
    {
      data: "playback=0",
    }
    success:function(result){
      $("#Status").html(result);
    }
  });
}

I get the following error with firebug:

missing : after property id
[Break On This Error] if((document).getElementById('LoopPlayback').checked) 

Thanks!

share|improve this question
    
You can't have the if statement mixed in with the ajax options. –  j08691 Sep 13 '12 at 15:12

6 Answers 6

up vote 3 down vote accepted

You need to refacor a bit; The if needs to be in the assignment, not like a CASE statement in SQL:

...
'data': 'playback=' + (document.getElementById('LoopPlayback').checked ? '1' : '0'),
...

This is an inline ternary statement. Alternatively, if you wanted to keep the structure, you can store the prefs then .extend() them:

var ajaxConfig = {
  'url': 'CHangePlayback.php',
  'type': 'GET',
  'data': 'playback=0',
  'success': function(result){
    $('#status').html(result);
  }
};
if (document.getElementById('LoopPlayback').checked){
  ajaxConfig = $.extend(ajaxConfig,{ 'data': 'playback=1' });
}

$.ajax(ajaxConfig);

And of course the simpler method to this is just making a data variable and placing it within the configuration after:

var data = 'playback=0';
if (document.getElementById('LoopPlayback')){
  data = 'playback=1';
}

$.ajax({
  ...
  'data': data,
  ...
});
share|improve this answer
    
And this is why I love stackoverflow. I doubt I would have figured that out. This works exactly like I was hoping. –  pr- Sep 13 '12 at 15:15

You can change it to this so it does the 'if' inline:

function playback(){
  $.ajax({
    url:"ChangePlayback.php",
    type: "GET",
    data: "playback=" + (document.getElementById('LoopPlayback').checked ? "1" : "0"),    
    success:function(result){
      $("#Status").html(result);
    }
  });
}
share|improve this answer

This should work:

function playback(){
  $.ajax({
    url:"ChangePlayback.php",
    type: "GET",
    data: $('LoopPlayback').val() ? "playback=1" : "playback=0",
    success:function(result){
      $("#Status").html(result);
    }
  });
}

This is object and you can not write code between fields:

{
    url:...,
    type:...,
    data:...,
    success:...
 }
share|improve this answer
    
+1, good use of native .val (even though it loads a heaver jQuery object. ;-p) –  Brad Christie Sep 13 '12 at 15:18

You can't put an if statement in the middle of an object literal. Move it out of the ajax options literal:

function playback(){
    var data;

    if(document.getElementById('LoopPlayback').checked) {
        data = "playback=1";
    } else {
        data = "playback=0";
    }

    $.ajax({
        url:"ChangePlayback.php",
        type: "GET",
        data: data,
        success:function(result){
            $("#Status").html(result);
        }
    });
}
share|improve this answer

or use jquery to do that

 if ($('#LoopPlayback').is(':checked'))
  //your stuff
share|improve this answer

A bit cleaner using more of jQuery's awesomeness:

$.ajax({
    url:"ChangePlayback.php",
    type: "GET",
    data: "playback=" + ($("#LoopPlayback").is(":checked") ? "1" : "0"),
    success:function(result){
        $("#Status").html(result);
    }
});
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.