Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

var query1 = urlencode($('input[name="searchTerm1"]').val()); //user1
var query2 = urlencode($('input[name="searchTerm2"]').val()); //user1
var rpp = 20; //number of tweets to retrieve out
var c=0;
var f1=new Array();
var f2=new Array();
var common=new Array();
$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query1 + '&callback=?', 
    	function(data) {
                                 f1=data;

            $('#content').append('p'+f1[0]+'p');//this one is coming
        	});
$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query2 + '&callback=?', 
    	function(data1) {
                                  f2=data1;
                });
$('#content').append('p'+f1[0]+'p');//this one is not coming...its showing Undefined
})

In this code if u see clearly i have identified using // two append statements

one of them is working and outputting the number in the array

but the other one is outputting Undefined

i have defined the arrays so it should take the values but wat actually happens is that the array become inaccessible outside the $.getJSON function.

Any help will be appreciated.

Thank You

share|improve this question
add comment

3 Answers

up vote 1 down vote accepted

@anand, $.getJSON() retrieves JSON data in an asynchronous manner. The purpose of you callback functions is to perform work once the JSON has been received from the asynchronous request. I'll simplify your example some:

var query1 = urlencode($('input[name="searchTerm1"]').val()); //user1
var query2 = urlencode($('input[name="searchTerm2"]').val()); //user1
var rpp = 20; //number of tweets to retrieve out
var c=0;
var f1=new Array();
var f2=new Array();
var common=new Array();

$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query1 + '&callback=?', 
    // 1st callback
    function(data) {
        f1=data;

        // We know that f1 has been assigned, so unless the Twitter API
        // returns an empty Array, f1[0] will not be Undefined.
        $('#content').append('p'+f1[0]+'p');//this one is coming
});
$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query2 + '&callback=?', 
    // 2nd callback
    function(data1) {
        f2=data1;
});

// This statement may be executed before 1st callback and therefore
// f1 may still be an empty Array causing f1[0] to return Undefined.
$('#content').append('p'+f1[0]+'p');//this one is not coming...its showing Undefined

Please check out the comments regarding your calls to append(). Hope this helps!

share|improve this answer
    
so wat il do is after both callback il set a time frame after which the 2nd append will be executed which gives $.getJSON ample time to get all the data from url.. –  anand Jul 7 '09 at 14:37
2  
@anand, I wouldn't set a timeout. You're just asking for problems that way. You can never guarantee the response time for an asynchronous call. Instead you could nest the second $.getJSON call in the 1st callback. If doing so isn't clear, let me know. –  Phil Klein Jul 7 '09 at 14:45
    
You need to use a callback. If you simply do a delay, the delay won't even start until this JavaScript routine exits anyway (JavaScript is single-threaded). You could do it as the callback in a timeout, but if you're going to do that, why not just use th callback facility of $getJSON? –  Nosredna Jul 7 '09 at 15:00
    
k il nest it and see what happens.... –  anand Jul 7 '09 at 15:50
add comment

You need to append your values within the callback function. Right now, your the line of code after the two $.getJSON calls is firing before the JSON is finished downloading. That's why the first append is working. You have a timing issue.

To illustrate the timing, use alert messages like this...

$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query1 + '&callback=?', function(data) {
    f1=data;
    alert('Two');
    $('#content').append('p'+f1[0]+'p');//this one is coming                
});

$.getJSON('http://twitter.com/followers/ids.json?screen_name='+ query2 + '&callback=?', function(data1) {
    f2=data1;
    alert('Three');
});

alert('One');
$('#content').append('p'+f1[0]+'p');//this one is not coming...its showing Undefined
share|improve this answer
    
oh so i have to give time to both $.getJSON functions before i can append them. so how do i do tht? –  anand Jul 7 '09 at 14:18
    
You have to utilize the callback structure of jQuery. –  Josh Stodola Jul 7 '09 at 14:38
add comment

You never reference f2, so you may have a copy/paste bug. Did you mean to reference f1 again?

By the way, it's better to initialize the arrays like this

var f1=[];
var f2=[];
var common=[];

rather than using "new Array".

Also, as Josh pointed out, Ajax calls are asynchronous. You don't want to rely on the data coming in until it comes in.

BOTH of your $getJSON calls are going to come back immediately, so your program flow is not what you seem to expect.

jQuery's $getJSON takes a callback function as its third parameter. You want to set one up to do any processing after the call.

When you program with Ajax, you don't have one big piece of JavaScript, you have a bunch of event-driven pieces of code.

share|improve this answer
    
That is how he's initializing. I think you meant [] –  Josh Stodola Jul 7 '09 at 14:13
    
Yeah. I meant to edit that to []. –  Nosredna Jul 7 '09 at 14:17
    
u dint understand the question. the first append is working because it is inside the $.getJSON but the other append is not since it is outside the $.getJSON function. why is that happening and i meant to reference f1 again cause its jus a testing code. –  anand Jul 7 '09 at 14:17
    
so il initialize with new array[]; –  anand Jul 7 '09 at 14:21
    
It's happening because Ajax calls are asynchronous. –  Nosredna Jul 7 '09 at 14:22
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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