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I'm having some difficulties to correctly retrieve Twitter data using jsonp search.json.

When I fetch the data only once, it works perfectly with this piece of code :

function getTweets(){
    $.ajax({
       url: 'http://search.twitter.com/search.json',
       type: 'GET',
       dataType: 'jsonp',
       jsonpCallback: 'tw_callback',
       data: 'q=<?php echo urlencode($twitter_search); ?>+-RT&rpp=100'
    });
}

function tw_callback(jsonp){
    for( key in jsonp['results'] ) {    
        var tweet = jsonp['results'][key]['text'] ;
        var from = jsonp['results'][key]['from_user'];
        var avatar = jsonp['results'][key]['profile_image_url'];

        tw_container.push([tweet,from,avatar]);
    }
}

But when I try then to refresh this data every xx seconds, using setInterval:

setInterval(function () { getTweets(); }, 1000*interval_tourniquet);

It unfortunately doesn't work. I'm having this error:

NOT_FOUND_ERR: DOM Exception 8: An attempt was made to reference a Node in a context where it does not exist.

basically, I got this every time I try to call my getTweets() function inside another function... :(

Other solution I tried :

function getTweets(){
    $.ajax({
        url: 'http://search.twitter.com/search.json',
        type: 'GET',
        dataType: 'jsonp',
        data: 'callback=tw_callback&q=<?php echo urlencode($twitter_search); ?>+-RT&rpp=100'
    });
}

This way it works perfectly with my own jsonp api on another server, but Twitter returns me my callback twice:

tw_callback(tw_callback({results...

And the jsonp string is not interpreted..

Any clue on this, any hint?

Thanx a lot!

share|improve this question
    
I just tested in Chrome with no problem. The only change I made was to replace the contents of tw_callback with console.log(jsonp). What browser are you using and do you have the same problem in multiple browsers? This should have not impact but you can shorten setInterval to setInterval(getTweets, 1000*interval_tourniquet); –  abraham Mar 11 '11 at 3:29
    
Unfortunately it doesn't work on Chrome or Safari for me.. :( –  guillaumepotier Mar 11 '11 at 8:41

1 Answer 1

up vote 1 down vote accepted

Try to rewrite your function with the following, more simple, way.

function getTweets(){
    $.ajax({
       url: 'http://search.twitter.com/search.json?q=<?php echo urlencode($twitter_search); ?>&rpp=100&callback=?',
       dataType: 'jsonp',
       success: function(){ 

            for( key in jsonp['results'] ) {    
                var tweet = jsonp['results'][key]['text'] ;
                var from = jsonp['results'][key]['from_user'];
                var avatar = jsonp['results'][key]['profile_image_url'];

                tw_container.push([tweet,from,avatar]);
            }
        }
    });
}
share|improve this answer
    
Just out of curiosity, what does the &callback=? do? –  Alix Axel Jun 24 '11 at 13:46
1  
It is a placeholder for jQuery to supply a function name, which will receive the response. For example jQuery will generate a function callback123 and argument will look like &callback=callback123 and JSONP response will look like callback123({ your: response, data: ...}). Also, as request type is set to JSONP, it will not be requested with XMLHttpRequest, but with simple script tag which src is matching your URL. –  Olegas Jun 25 '11 at 9:06

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