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Possible Duplicate:
How can I return a value from an AJAX request?

I wrote function for taking username from .php file

function pobierzLogin()
{
  var myVar= "0";
  $.post("logowanie.php", { "logowanie" : 3 }, function(odp)
  {
    myVar = odp;
  });
  return myVar;
}

myVar will return 0, but alert(odp); shows good result.

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marked as duplicate by Quentin, lanzz, raina77ow, Dr.Molle, I Hate Lazy Oct 6 '12 at 20:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I'm guessing the function is returning myVar before it gets assigned to odp. You can use $.ajax and complete.api.jquery.com/jQuery.ajax –  elclanrs Oct 6 '12 at 20:10

4 Answers 4

This should work just fine.

function pobierzLogin()
{
    var myVar= "0";
    return $.post("logowanie.php", { "logowanie" : 3 }, function(odp)
    {
        return odp;
    });
}

I have used this from time to time and had it work successfully every time.

UPDATE

With help of @user1689607 this should be

function pobierzLogin()
{
    return $.ajax({
        url : "logowanie.php",
        type : "post",
        dataType: "json", 
        data: {
            "logowanie": 3
        }
    })
}

pobierzLogin().done(function(odp){
   //... do stuff
});
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What do you expect will be returned from pobierzLogin()? –  I Hate Lazy Oct 6 '12 at 20:20
    
odp... that was returned from the $.post callback. –  brenjt Oct 6 '12 at 20:21
    
That's incorrect. $.post is asynchronous, and will never return the return value of its callback. –  I Hate Lazy Oct 6 '12 at 20:22
    
If you expect that the value given to the callback will be returned from pobierzLogin(), then my explanation is that you've never had it work. It could be made to work, but only by taking advantage of the fact that $.post returns a Deferred object. –  I Hate Lazy Oct 6 '12 at 20:26
1  
Perfect, Well you always learn something new. Thank you! –  brenjt Oct 6 '12 at 20:42

Ajax is ASYNCHRONOUS. So your function returns variable before assigning value to it. Do it like:

function pobierzLogin(callback)
{
  var myVar= "0";
  $.post("logowanie.php", { "logowanie" : 3 }, function(odp)
  {
    callback(odp);
  });
}

Then use it like this:

pobierzLogin(function(odp){
      //do smthing with odp
});

Edit:

You can set async: false in ajax parameters, in this case ajax call will be synchronous:

return $.ajax({
    url : "logowanie.php",
    type : "post",
    dataType: "json", 
    async: false,
    data: {
        "logowanie": 3
    }
})
share|improve this answer
    
Thank you very much! –  ThisGuy Oct 6 '12 at 20:24
    
You are welcome :) –  karaxuna Oct 7 '12 at 11:02

It's because your request happens asynchronously, so the value doesn't get set till after pobierzLogin method completes, since the request takes time to go out to the internets and return.

Instead of doing what you are doing, define some other method that you want to fire when the request returns, and execute that in your callback to $.post.

var whenRequestReturns = function(args){ ...  }

$.post("logowanie.php", { "logowanie" : 3 }, function(odp)
  {
    whenRequestReturns(); // invoke here
  });

or just do something like

$.post("logowanie.php", { "logowanie" : 3 }, whenRequestReturns)

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Your alert(odp); must be inside callback of post as $.post is asynchronous.

Modified code:

function pobierzLogin(cb)
{
  var myVar= "0";
  $.post("logowanie.php", { "logowanie" : 3 }, function(odp)
  {
     myVar = odp;
      cb(odp):
   });
   return myVar;
 }
 pobierzLogin(function(myVar ){
   alert(myVar );
});
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