Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise


        $("#thumbnails .thumb").find(".viewsCount").each(function(){
        var PostID = $(this).html();
        $.getJSON("http://tom.is-a-geek.org/tumblr/counters/thomee/go.php?c=yeeeboiii&i=" + PostID + "&justCount=y&format=json&jsoncallback=?",function(data){
             $.each(data.items, function(i,item){
                //$(this).html(item.views); 
                alert(item.views);
                alert("sigh");
            });         
        });
    });

({
    "items": [
     {
        "views": "20"
     }
    ]
})

live @ http://thomee.tumblr.com

any assistance would be appreciated. :-(

share|improve this question
1  
FWIW, that JSON is invalid. See my CW answer for details. – T.J. Crowder Apr 20 '11 at 8:48
up vote 4 down vote accepted

You can't do a cross-site getJSON due to security reasons. So either use local (I mean local as in "same domain") url in getJSON or try using a JSONP hack/workaround: http://code.google.com/p/jquery-jsonp/

share|improve this answer
    
oh my goddddd I read about json and jsonp on jquery.com and couldn't determine the differences =.= it's sad I'm still making the same error... I was up at 4 this morning... took me 2 hours to realise I was trying to XSS... make the same error all the time sigh thanks guys – Thomas Chapman Apr 20 '11 at 8:09
    
$.jsonp({ url: "http://tom.is-a-geek.org/tumblr/counters/thomee/go.php?c=yeeeboiii&i=" + PostID + "&justCount=y&format=json&callback=?" }, function(data){ alert("sigh"); }); has no effect i don't get the "sigh" alert either :/ – Thomas Chapman Apr 20 '11 at 8:41

As František says, cross-site ajax (getJSON is ajax under-the-covers) is restricted by the Same Origin Policy.

You have lots of options, though:

  • As František says, you can use JSON-P if the server in question supports it.
  • If the target server supports CORS and the browser your visitor is using supports it (recent versions), it will work (except that the versions of IE that support CORS — 8 and 9 — requires special handling rather than having it Just Work as it does in Firefox and Chrome).
  • You can use YQL as a proxy.

(This is a CW because it's really just a big adjunct to František's answer. Didn't feel comfortable adding all of this to that answer, although in theory of course that's what StackOverflow is all about, collaboratively answering questions.)


Separately, FYI, the JSON you quoted:

({
    "items": [
     {
        "views": "20"
     }
    ]
})

...is invalid, JSON has no parenthesis operator. That should be:

{
    "items": [
     {
        "views": "20"
     }
    ]
}

The reason you sometimes see parentheses near JSON text is that when evaluating JSON, sometimes people will use the JavaScript parser to parse JSON (since JSON is a subset of JavaScript's object literal notation):

var result = eval("(" + jsonString + ")");

They put the parentheses in to ensure that the contents of the jsonString are evaluated by the parser where an expression is expected. But the parentheses are not part of the JSON and a proper JSON parser will fail if you use the JSON you quoted. (Re this eval technique: Only use it if you know the source of the JSON is trustworthy [your own server, etc.]; otherwise, best to use an actual JSON parser to defend against script injection attacks, the parentheses are not remotely a projection against those. You can find three JSON parsers — one that relies on eval but does some checks first, and two that don't use eval at all — on the github page of Douglas Crockford, inventor of JSON.)

share|improve this answer
    
changes made... but now I have a new issue hehe: invalid label "item http://tom.is-a-geek.org/tumblr/counters/thomee/go.php?c=yeeeboiii&i=4604215109&‌​justCount=y&format=json&callback=_jqjsp&_1303291632850= Line 2 – Thomas Chapman Apr 20 '11 at 9:29

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.