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.

I am developing a Twitter web app for myself. I am retrieving the latest trending topics.

Here's how I'm doing it:

    $.ajax({
                      url: 'http://api.twitter.com/1/trends/1.json',
                      dataType: 'jsonp',
                       success: function(data){


                       $.each(data[0].trends, function(i){
                          $('div#trending').hide().append("<p><a href='"+data[0].trends[i].url+"'>"+data[0].trends[i].name+"</a></p>").fadeIn(1000);
                        //Cache into LocalStorage
                    localStorage["trending"+i] = data[0].trends[i].name; //Name
                    localStorage["trendurl"+i] = data[0].trends[i].url;//URL

                                });
                            }
});

But sometimes while I am developing it, the rate limit is exceeded.

How can I detect if the rate limit has been exceeded?

I cannot seem to detect if this error is being shown:

{"error":"Rate limit exceeded. Clients may not make more than 150 requests per hour.","request":"\/1\/trends\/1.json"}

I have tried it by:

success: function(data){
  if(data[0].error != 'undefined'){
    //load localstorage cache
  }
}

But that doesn't seem to work. Please help.

Thanks :)

share|improve this question

3 Answers 3

up vote 2 down vote accepted

The Twitter API sends a HTTP 400 status code when you are rate limited, so check for that:

$.ajax({
    // ...
    statusCode: {
        400: function() {
            alert( 'rate limited.' );
        }
    }
});

Also note that your comparison is a bit wrong. data[0].error != 'undefined' will always yield true when the error text is not 'undefined'. So even when you are rate limited, the error text won’t be 'undefined' and as such succeed. What you probably want to check is this:

if ( !data[0].error ) { // data[0].error is not null
    // ...
}
share|improve this answer
    
Thanks. I have just found the jquery-jsonp from google code. What should I use ajax or the jsonp call? Thanks :) –  hart1994 Nov 5 '11 at 15:35
    
Sorry, no idea, I don’t use JQuery much myself. But I would say that you could easily make it work with $.ajax as well, so there is no real need to have another plugin. –  poke Nov 5 '11 at 15:41
    
Thanks a lot for your help! This has worked great! –  hart1994 Nov 8 '11 at 8:56

try something like $.ajax({..}).fail(function(){});

i.e.

$.ajax({..})
.done(function() { alert("success"); })
.fail(function() { alert("error"); })
.always(function() { alert("complete"); });

and let me know how this works now.

cheers, /Marcin

share|improve this answer

If you're not making an OAuth call, you'll be rate limited to 150 calls per hour. But, there's a small work-around which has worked for me.

According to the Twitter page on Rate Limiting (http://dev.twitter.com/docs/rate-limiting), "Rate limits are applied to methods that request information with the HTTP GET command. Generally API methods that use HTTP POST to submit data to Twitter are not rate limited, however some methods are being rate limited now."

Since the default type of an AJAX call is 'GET', try explicitly changing your type to 'POST' like this:

$.ajax({
     url: 'http://api.twitter.com/1/trends/1.json',
     type: 'POST',
     dataType: 'jsonp',
     success: function(data){
              $.each(data[0].trends, function(i){
                   $('div#trending').hide().append("<p><a href='"+data[0].trends[i].url+"'>"+data[0].trends[i].name+"</a></p>").fadeIn(1000);
                    //Cache into LocalStorage
                   localStorage["trending"+i] = data[0].trends[i].name; //Name
                   localStorage["trendurl"+i] = data[0].trends[i].url;//URL

               });
      }

});

Hope this helps!

James

share|improve this answer

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.