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How would I, using $.post() in a function, force the return on the post callback?

Example:

function myFunction(){
   $.post(postURL,mydata,function(data){
      return data; 
   });
}

I have tried playing around with it using .done() and .queue() however neither has worked for me. I understand there is a fundamental flaw in my example; with that said, how can I achieve my desired functionality?

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Why do you want to do it this way? You need to use a callback function that will process the returned data. –  Rocket Hazmat Jul 29 '11 at 18:21
    
and after said data is processed i need certain values to be passed back. –  rlemon Jul 29 '11 at 18:31
1  
You may need to refactor your code, because there is no good way to do this. –  Rocket Hazmat Jul 29 '11 at 18:42
    
@Rocket, Thankyou. That answers my question :) –  rlemon Jul 29 '11 at 18:48
    
possible duplicate of How to return the response from an Ajax call? –  rlemon Jun 20 '14 at 17:41

3 Answers 3

up vote 6 down vote accepted

This is impossible. $.Ajax calls will always return immediately. You need to deal with the return when it is called through a callback (possibly several seconds later). Javascript never blocks for a given call. It may help to think of your code like this:

 //This entirely unrelated function will get called when the Ajax request completes
 var whenItsDone = function(data) {
   console.log("Got data " + data); //use the data to manipulate the page or other variables
   return data; //the return here won't be utilized
 }

 function myFunction(){
   $.post(postURL, mydata, whenItsDone);
 }

If you're interested more on the benefits (and drawbacks) of Javascript's no-blocking, only callbacks: this Node.js presentation discusses its merits in excruciating detail.

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function myFunction(){
   var deferred = new $.Deferred();

   var request = $.ajax({
      url: postURL,
      data: mydata
   });

   // These can simply be chained to the previous line: $.ajax().done().fail()
   request.done(function(data){ deferred.resolve(data) });
   request.fail(function(){ deferred.reject.apply(deferred, arguments) });

   // Return a Promise which we'll resolve after we get the async AJAX response.
   return deferred.promise();
}
share|improve this answer

Instead of using $.post(), you can use $.ajax() and set the async option to false. This should block the call until it returns.

$.post() is just a simpler wrapper for $.ajax() and the former calls the latter under the hood. Using the latter is the same thing, it just exposes more options for you.

More information here.

Note that this may not really be what you want to do. AJAX calls are really supposed to be asynchronous. So make sure you understand the implications of a blocking call in the UI.

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1  
It would seem to be preferable to use a callback to avoid the necessity of a blocking call. Is there a good reason to be synchronous in this case? –  George Cummins Jul 29 '11 at 18:27
    
The problem is that when you use async: false the page will lock up until the call is done. –  Rocket Hazmat Jul 29 '11 at 18:40
    
@Rocket, That wouldn't be a problem. however I am taking your initial advice and just structuring things a little differently. –  rlemon Jul 29 '11 at 18:50
    
Agreed, asynchronous is the way to go here. I currently have an application where I use async: false and it meets the need without any terrible UX drawbacks, but that's a very specific case. It can get the job done, but it should be understood and used with caution rather than as a band-aid when control flow should be re-factored instead. –  David Jul 29 '11 at 18:57

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