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I have a function with jquery getJSON and i need the return the result value back (to Use it somewhere else)

Here is the code:

function getval(){
jQuery.getJSON('http://data.mtgox.com/api/1/BTCUSD/ticker?callback=?', function(data) {
    // We can't use .return because return is a JavaScript keyword.
    return data['return'].avg.value;
});
}

$(function () {
    $(document).ready(function() {
    alert (getval());
    });

});

This is doesn't work :(

i know i can call external function from inside the getJSON function with the value like:

    jQuery.getJSON('http://data.mtgox.com/api/1/BTCUSD/ticker?callback=?', function(data) {
        // We can't use return because return is a JavaScript keyword.
       mysecondfunction(data['return'].avg.value);
    });
function mysecondfunction(value){
//use the value
}

But i have to call the json function from another function because json return a dynamic value and i need to use it.

I hope it clear...

Thank you very much!!

share|improve this question
    
ajax is asynchronous, anything that needs the result needs to be ran in a callback that gets called after the ajax call completes. –  Kevin B Apr 15 '13 at 17:18
    
possible duplicate of How to return a value from a function that calls $.getJSON? –  meagar Apr 15 '13 at 17:21
    
possible duplicate of How to return the response from an AJAX call? –  Bergi Apr 30 at 21:22
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4 Answers

Ajax calls are asynchronous, so you can't have the getVal() function return something. Whatever you need to do with the result, you have to do it in inside the callback function.

function getval() {
    jQuery.getJSON('http://data.mtgox.com/api/1/BTCUSD/ticker?callback=?', function(data) {
        // You have to use "data" here
        alert(data['return'].avg.value);
    });
}

$(function () {
    $(document).ready(function() {
        getval();
    });
});
share|improve this answer
    
You right, but what if i need to refresh (get) the json call again and again? (json array values changing dynamically!) thank you! –  EranLevi Apr 15 '13 at 17:17
    
@EranLevi Then send the request again. –  Kevin B Apr 15 '13 at 17:18
    
first.. Thanks! now, i can't send the request beause im calling from function No.1 to Function No.2, now here i cant call Function No.1 again (because it will call Func.No.2... :)... ) i really need to use the return value somehow in function No.2.. –  EranLevi Apr 15 '13 at 17:34
    
@EranLevi - You will have to move some of the code from the the one function to the other so it is inside the ajax callback function. I'd have to see the functions to comment further. –  John S Apr 15 '13 at 17:48
add comment

You might try using a callback function:

function getval( callback ){
    jQuery.getJSON('http://data.mtgox.com/api/1/BTCUSD/ticker?callback=?', function(data) {
        // We can't use .return because return is a JavaScript keyword.
        callback(data['return'].avg.value);
    });
}

$(function () {
        $(document).ready(function() {
        getval( function ( value ) { alert( 'Do something with ' + value + ' here!' ) } );
    });

});
share|improve this answer
    
wow! looks great! testing . . . –  EranLevi Apr 15 '13 at 17:18
    
Hi! just a small question.. when i use: "alert (getval( function ( value ) { alert( 'Do something here!' ) } ));" i get "undefined" can you see why?? Thank you very much! –  EranLevi Apr 15 '13 at 17:28
    
@EranLevi - I think Kevin didn't mean for that first "alert" to be there. The line should be more like this: getVal(function(value) { alert('value is: ' + value); }. –  John S Apr 15 '13 at 17:45
    
Thank you! you probably meant to write: getVal(function(value) { alert('value is: ' + value); }); but the page is blank now :( can you see anything else?? Thanks man! –  EranLevi Apr 15 '13 at 17:54
    
@JohnS Good catch ... Answer updated. –  Kevin Boucher Apr 15 '13 at 18:17
show 3 more comments

Here is the final solution:

function getval( callback ){
    jQuery.getJSON('http://data.mtgox.com/api/1/BTCUSD/ticker', function(data) {
        // We can't use .return because return is a JavaScript keyword.
        callback(data['return'].avg.value);
    });
}

$(function () {
        $(document).ready(function() {
        getval( function ( value ) { 
            alert( 'Do something with ' + value + ' here!' );
        } );
    });

});

Thanks everyone for your help!!

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Hi getJSON asynchronous call so its return undefind

so you need to fire ajax call pass with this args asnyc:false

Ex:

    function getCountrycodeJson(obj) {
     var code="";
        $.ajax({
         async: false,
          dataType : 'json',
         url: "url",
         type : 'GET',
         success: function(data) {
         for(var i in data){ 
//here do your logic and assign value for code varable   

          }
           }
      }});

        return code;
    }

this is working for me.....

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