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 have Google'd this thing to death, lots of people are having the same problem but the common fix isn't working for me..

My data which is returned from my home server:

{
  "errors": 1.15,
  "allErrors": null,
  "threads": 10.83,
  "sale": 131.36,
  "delivery": 1.68,
  "failed": 60,
  "webErrors": 432,
  "webErrorsByMin": 0
}

I have tried:

            $.ajax({
                type: "GET",
                url: "http://srv3.localhost:8080/monitor/Totals?callback=?",
                dataType: "jsonp",
                success: function(data) {
                    var items = [];
                    $.each(data, function(key, val) {
                        items.push('<li id="' + key + '">' + val + '</li>');
                    }); 
                    }
            }, "jsonp");

I have also tried:

$.getJSON("http://srv3.localhost:8080/monitor/Totals?callback=?",
                    function(data){

                        var result = eval( "(" + data + ")" );
                });

It keeps trying to set the first key as a label..

Firefox error:

invalid label
"address": 1.8, 

I have tried so many different things but always it comes back as a label.. After my google searches, the common fix was to encapsulate the return using:

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

But its not working in my case.. :(

Anyone know why this isn't working for me? Using jquery 1.4.2

Thanks!

share|improve this question
    
That's not JSONP. You need to make the server-side return a valid statement. –  SLaks Dec 5 '11 at 18:12
    
I tried using "json" with no luck as well.. –  Dennis Dec 5 '11 at 18:29
    
You must use JSONP to make a cross-domain request. You need to learn what JSONP is. –  SLaks Dec 5 '11 at 18:31

4 Answers 4

For Tomcat servlet side, you need a filter to tranforme the response. How to program a filter, you can find in Tomcat side examples. A good starting point is:

http://www.java2s.com/Tutorial/Java/0400__Servlet/Filterthatusesaresponsewrappertoconvertalloutputtouppercase.htm

share|improve this answer

I believe the results get obfuscated to data.d.

You can verify this by taking a look at the JSON return using Firebug and doing a net capture of the request and response.

share|improve this answer
    
data.d is when the json requested is coming from a windows server? I'm using Apache-Coyote/1.1. I did check the net and response in firebug, looks exactly like the above data example and the net json tab is just the keys, values (exactly how I want to use them! lol) –  Dennis Dec 5 '11 at 18:29

did you try this ?

for (var key in data){
  items.push('<li id="' + key + '">' + data[key] + '</li>');
}
share|improve this answer
    
Yup.. got invalid label.. Tried using your code, got the same.. odd.. –  Dennis Dec 5 '11 at 18:27

You are returning JSON from your server and assuming you are doing a cross-domain call and that's why you need a JSONP request.

You need to wrap your JSON data into a function that you passed through parameter callback.

Your JavaScript code seems to be quite fine but your server code needs to be doing something like this:

HandleRequest()
BEGIN
   callbackFunction = REQUEST.PARAMETER["callback"]
   RESPONSE.WRITE callbackFunction + "(" + jsonSerializedData + ")"
END

PS: You don't need to do JSONP request if you are requesting on the same server.

share|improve this answer
    
the server side is a tomcat server which I have no access to the code.. –  Dennis Dec 6 '11 at 14:35
    
That's cross-domain access policy. You server must provide function definition to work against JSONP –  Abdul Munim Dec 6 '11 at 14:47

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.