1

I am making jquery calls to get and getJSON, but cannot access returned values outside of callback function. How can I access the returned data?

        var firstid;
        var nextid;

    $.get(callUrl, function(data) {  // call to add node
         var n = data.indexOf("id-");
         var m = data.indexOf("id-");
         firstid = data.substr(n+3,m - (n+3));
         nextid = data.substr(m+3);

             alert("firstid:" + firstid);  // returns correct value
    });

        alert("firstid:" + firstid);  // returns undefined for firstid

how can I get firstid outside the function?

6

ALL AJAX CALLS ARE ASYNCHRONOUS

SO you need to use callbacks. anything outside that will return undefined.

$.get(callUrl, function(data) {  // call to add node
     var n = data.indexOf("id-");
     var m = data.indexOf("id-");
     firstid = data.substr(n+3,m - (n+3));
     nextid = data.substr(m+3);

     doSomethingWithFirst(firstid);
});

function doSomethingWithFirst(f)   {
     //NOW do something
}
| improve this answer | |
  • -1 Technically not true. If he wrapped the second alert("firstid:" + firstid); in a timeout with a 5 second delay it would display the expected result outside that success function. – iambriansreed Jun 22 '12 at 13:20
  • @iambriansreed 5 second delay??? How do you know long the server will take to respond??? – Naftali aka Neal Jun 22 '12 at 13:35
  • I don't know for sure how long the server may take to respond, you are right, but the argument remains the same: anything outside that get callback aren't necessarily undefined. The OP was correct to define the variables outside the get callback scope and because of that it is updated and later calls to that variable do in fact give the expected results. Finally not all AJAX calls are asynchronous, you can in fact set the request to synchronous but it is not recommended. – iambriansreed Jun 22 '12 at 13:42
  • adding arbitrary variables to the global scope is also not recommended... so defining them and passing them would be prudent here (assuming they are not used somewhere else... this example is limited) – rlemon Jun 22 '12 at 13:53
  • 1
    @user840930 Do not do that it will slow down your web app and might even crash older browsers. – iambriansreed Jun 22 '12 at 16:36
1

The second alert("firstid:" + firstid); returns undefined because at the moment of execution it is in fact undefined.

The first alert("firstid:" + firstid); returns the expected result as it fires after the $.get is finished getting.

AJAX - Stands for Asynchronous JavaScript and XML. Asynchronous events are those occurring independently of the main program flow. While you can set the request to synchronous it is not recommended.

If you wrapped your second alert("firstid:" + firstid); in a timeout with a 5 second delay it would display the expected result.

setTimeout(function() { alert("firstid:" + firstid); }, 5000);

Or you could wrap your second alert("firstid:" + firstid); in an interval with a 1 second delay it would eventually display the expected result.

var callback_interval = setInterval(function() {
    if(typeof(firstid) == 'undefined') return;
    clearInterval(callback_interval);
    alert("firstid:" + firstid);
}, 1000);

But it's best to work with the variables directly in the $.get success callback or via function calls within that success callback.

| improve this answer | |
0

This is because it is done asynchronous (one of the basic principles of AJAX). You can set async to false or use some other callback construction to use your value returned from the get call.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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