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Today I'm creating a Javascript function called "sendData".

This is used for ease, instead of writing out a whole ajax statement.

Anyway I know it's asynchronous, I was wondering how I could wait and get the value returned instead of returning nothing. Here is what I have.

   function returnData(data)
{
    alert(data + " ddd");
    return data;
}

function sendData(data,file) {
    var a = ""
    $.ajax({
        url: file,
        data: data,
        type: "POST",
        success: function(newData)
        {
            a = newData;

        }
    })
    returnData(a);
}

I thought this would work, but it doesn't. Does anyone know how I can wait for it to return or something?

Final Code

function sendData(data,file) {
    var a = ""
    $.ajax({
        url: file,
        data: data,
        type: "POST",
        async:false,
        success: function(newData)
        {
            a = newData;
        }
    })
    return a;
}
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marked as duplicate by Felix Kling, Andrew Whitaker, Mike Samuel, madth3, Anand Apr 23 '13 at 4:11

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.

    
My bad, I tried googling and nothing came up. –  Zyneak Apr 22 '13 at 22:50
3  
No reason to feel bad, duplicates are a part of the site. If it gets marked as one, it will just help point future searchers to another question/answer combination that is incredibly detailed. ^^ (Nice answer on that Duplicate though @FelixKling =]) –  Jon Apr 22 '13 at 22:51
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4 Answers

up vote 3 down vote accepted

Well, if you want to keep it asynchronous, call your function within your success, ie:

function returnData(data)
{
    alert(data + " ddd");
    return data;
}

function sendData(data,file) {
    var a = ""
    $.ajax({
        url: file,
        data: data,
        type: "POST",
        success: function(newData)
        {
            returnData(newData);
        }
    })
}

This way your function won't be called until you have something to send to it. Otherwise, set it so that it waits for a response before continuing with async:false, in your parameters.

share|improve this answer
    
This doesn't work. Data returns as undefined. –  Zyneak Apr 22 '13 at 22:38
2  
Ahh, you must be expecting a return from sendData then, which is why it would return undefined. If you want that function to have a return, you'd need to set async:false in the settings so the entire function will wait for the return. Otherwise, you can call your returnData function and it can continue where you left off when you called sendData –  Jon Apr 22 '13 at 22:41
    
Yea, I got it. Thanks :D –  Zyneak Apr 22 '13 at 22:43
    
No problem. ^^ Happy to help. –  Jon Apr 22 '13 at 22:46
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If you set the option async:false it will wait for the callback to return.

$.ajax({
    ...
    async:false,
    ...
})
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Works perfectly! Thanks so much! –  Zyneak Apr 22 '13 at 22:34
    
You're welcome :-) –  Bart Apr 22 '13 at 22:38
    
keep in mind that it'll delay execution of all javascript code that occurs after sendData(...) call until the AJAX (SJAX in this case) call has completed. –  Ejay Apr 22 '13 at 22:42
2  
This has the disadvantage of locking the browser while the synchronous call is being executed, and it's usually a big no-no and should be avoided like the plague. You will be better of by simply waiting for the call to finish before trying to use the returned data. –  adeneo Apr 22 '13 at 22:44
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You can also do:

function sendData(data,file) {
    var a = ""
    $.ajax({
        url: file,
        data: data,
        type: "POST",
        success: function(newData)
        {
            returnData(newData);

        }
    })
}

This is the typical way callbacks are used. The success function is the code that should be executed upon success.

You might also want to look into promises: http://api.jquery.com/promise/

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Yea the above doesn't work. –  Zyneak Apr 22 '13 at 22:37
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might just use?

         function sendData(data,file) {
           var a = ""
           $.ajax({
              url: file,
              data: data,
              type: "POST",
              success: function (newData) {
                 a = newData;
                 returnData(a);

              }
           })
           return;
        }
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