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I'm trying to make an ajax call from jquery to a rest service. The rest service used is right from a tutorial of mkyong's blog, this one: http://www.mkyong.com/webservices/jax-rs/integrate-jackson-with-resteasy/

The service works, but when i try to make a call from jQuery, in Firebug there is a 200 status code, but in the response section, nothing.

Here is the html page with the ajax call:

<html>
<head>
    <script type="text/javascript" src="jquery-1.6.2.min.js"></script>
</head>

<body>  

<button id="ajax">ajax call</button>
<button id="json">json</button>

<script type="text/javascript">
    $('#json').click(function(){ 
        alert('json');
         $.getJSON("http://localhost:8080/restws/json/product/get",
         function(data) {
            alert(data);         
          });   
    });

    $('#ajax').click(function(){ 
        alert('ajax');
         $.ajax({ 
             type: "GET",
             dataType: "json",
             url: "http://localhost:8080/restws/json/product/get",
             success: function(data){        
                alert(data);
             }
         });
    });

</script>



</body>

</html>

I can't figure it out where I went wrong, could you please tell me what i am doing wrong?

Thanks!

share|improve this question
1  
Is your site running on http://localhost:8080 as well? If it's not (http://localhost/ is not the same), you'll have to make your API output JSONP. –  Rocket Hazmat Aug 18 '11 at 19:02
    
no, it's just a simple html, it's running on double click :D –  DaJackal Aug 18 '11 at 19:05
    
I meant, what is the URL that points to this page? –  Rocket Hazmat Aug 18 '11 at 19:06
1  
You are getting blocked by the same origin policy, you'll need to use JSONP. –  Rocket Hazmat Aug 18 '11 at 19:08
    
... or server your html from an HTTP server –  Jeremy Heiler Aug 18 '11 at 19:09

3 Answers 3

up vote 55 down vote accepted

You are running your HTML from a different host than the host you are requesting. Because of this, you are getting blocked by the same origin policy.

One way around this is to use JSONP. This allows cross-site requests.

In JSON, you are returned:

{a: 5, b: 6}

In JSONP, the JSON is wrapped in a function call, so it becomes a script, and not an object.

callback({a: 5, b: 6})

You need to edit your REST service to accept a parameter called callback, and then to use the value of that parameter as the function name. You should also change the content-type to application/javascript.

For example: http://localhost:8080/restws/json/product/get?callback=process should output:

process({a: 5, b: 6})

In your JavaScript, you will need to tell jQuery to use JSONP. To do this, you need to append ?callback=? to the URL.

$.getJSON("http://localhost:8080/restws/json/product/get?callback=?",
   function(data) {
     alert(data);         
   });

If you use $.ajax, it will auto append the ?callback=? if you tell it to use jsonp.

$.ajax({ 
   type: "GET",
   dataType: "jsonp",
   url: "http://localhost:8080/restws/json/product/get",
   success: function(data){        
     alert(data);
   }
});
share|improve this answer
    
it's perfecty working now, and i think i understood. thanks –  DaJackal Aug 18 '11 at 19:19
    
You're welcome. JSONP is kind of a 'hack' to get data from other URLs, it's pretty cool. –  Rocket Hazmat Aug 18 '11 at 19:19
    
i get a response now in firebug, but it doesn't enter in function(data). do you know why? –  DaJackal Aug 18 '11 at 19:21
    
@DaJackal: Did you remember to have the webservice wrap the JSON in a function call? –  Rocket Hazmat Aug 18 '11 at 19:22
1  
I did it after all, after understanding how query param in rest service works, thank you very much! –  DaJackal Aug 18 '11 at 20:48

From the use of 8080 i'm assuming you are using a tomcat servlet container to serve your rest api. If this is the case you can also consider to have your webserver proxy the requests to the servlet container.

With apache you would typically use mod_jk (although there are other alternatives) to serve the api trough the web server behind port 80 instead of 8080 which would solve the cross domain issue.

This is common practice, have the 'static' content in the webserver and dynamic content in the container, but both served from behind the same domain.

The url for the rest api would be http://localhost/restws/json/product/get

Here a description on how to use mod_jk to connect apache to tomcat: http://tomcat.apache.org/connectors-doc/webserver_howto/apache.html

share|improve this answer

I think there is no need to specify

'http://localhost:8080`" 

in the URI part.. because. if you specify it, You'll have to change it manually for every environment.

Only

"/restws/json/product/get" also works
share|improve this answer

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