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 know there are a LOT of threads on this.. but I suck bad at ajax and cannot for the life of me interpret the answers.

var loadUrl = "lib/php/ajax.php";

$.ajaxSetup ({ cache: false });

$.get(loadUrl +  href, function(data)
{
    var obj = $.parseJSON(data);
    console.log(obj.commentCount, obj.fileName);            
});  console.log(obj.commentCount, obj.fileName); // this one doesn't work.

How do I get those variables outside of the function =/ i know i need to use some kind of callback function .. or something

share|improve this question
add comment

4 Answers

up vote 0 down vote accepted

The callback gets executed after the ajax call has finished. Your last console.log() statement is going to be called first, because the ajax request happens asynchronously. The other problem is that obj belongs to the scope of the callback, which makes it unavailable on the outside. If you declare it outside of the callback, it'll be available but still unusable because of the first problem. It is going to be empty, until the ajax call has finished. What is the problem with doing the work in the callback?

share|improve this answer
    
this makes sense. and thats what i ended up doing. i did the work in the callback –  ionfish May 20 '11 at 10:37
add comment

Declare var obj first before, outside the function, then you can set it = to the data inside, and reference it outside after.

var loadUrl = "lib/php/ajax.php";
var obj = "";

$.ajaxSetup ({ cache: false });

$.get(loadUrl +  href, function(data)
{
    obj = $.parseJSON(data);
    console.log(obj.commentCount, obj.fileName);            
});
console.log(obj.commentCount, obj.fileName);
share|improve this answer
    
this still executes the second console.log before the $.get function is called =/ –  ionfish May 20 '11 at 8:46
    
This won't work as the 2nd 'console.log(obj.commentCount, obj.fileName);' will be run before the ajax response is returned so obj won't have been set. –  Richard Dalton May 20 '11 at 8:47
    
Why call console.log outside and inside on the same data? What's the purpose? Maybe I could help more with more explanation of intended purpose of calling the same data twice. –  spanky May 20 '11 at 8:57
add comment

You can't for two reasons:

  1. The code after the $.get is run instantly. The code inside the function is only run after the ajax response returns
  2. The var obj is created inside the scope of the inner function so is not accessible outside.

The only way you can get this to work is to declare obj outside of the ajax request, assign the value inside the function and also set the ajax request to not be asyncronous (See jquery Ajax) Although this kinda defeats the point of using ajax and will block the site until the result comes back.

share|improve this answer
    
I've turned async to false works just fine but im guessing i shouldnt get in the habit of doing that? not 100% what the difference between that value being true or false is.. –  ionfish May 20 '11 at 8:53
    
If it's false, nothing else on the page will happen until the ajax response is returned. If this takes a long time the browser might appear to freeze. The best thing is to make good use of the callback function to run the code that relies on the ajax result. –  Richard Dalton May 20 '11 at 9:14
    
This should have been the accepted answer... +1! –  elusive May 20 '11 at 9:39
add comment
var loadUrl = "lib/php/ajax.php";

function processAjaxResponse(obj)
{
  console.log(obj.commentCount, obj.fileName);
};

$.ajaxSetup ({ cache: false });

$.ajax({
    type: 'GET',
    dataType: 'JSON',
    url: loadUrl +  href,
    success: function(data) {
       processAjaxResponse(data);
   }
});
share|improve this answer
    
This won't work as the 2nd 'console.log(obj.commentCount, obj.fileName);' will be run before the ajax response is returned so obj won't have been set. –  Richard Dalton May 20 '11 at 8:46
    
this example still calls the second console.log before the first =( –  ionfish May 20 '11 at 8:48
    
Whoops, not thinking straight today. Updated the code :) –  Gary Hole May 20 '11 at 8:52
    
i see what you did there.. thats interesting. you push it out to a different function. pretty funky. –  ionfish May 20 '11 at 9:08
1  
This is still pretty much exactly the same as it was before, only it's calling a named function instead of an anonymous one. The external obj variable still has no value. –  Richard Dalton May 20 '11 at 9:32
show 1 more comment

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.