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I have this small piece of code which basically makes the request, and throws the results in console.log (I omitted my key and sig).

The problem is that it never seems to make the request.

Thanks for the help, I am a newbie and I'm still learning.

//alert('you clicked on the discgolf button');
$('#zipsubmit').click(function(){
    dgZipSearch();     // call this function perform DGCR search and 
                          populate the page with results
});

function dgZipSearch(){

    alert('foo1');

    $.ajax({
        url:'http://www.dgcr-api.com/?key=xxxxx&mode=findzip&zip=' + $('#zipcode').val() + '&rad=10&sig=yyyyyyy',
        dataType: 'jsonp',
        success: function(zip_results){
            console.log(zip_results);
        }
    });
    alert('foo2');
};
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Are you sure that's really JSONP? What do you see in the console? –  SLaks Oct 10 '12 at 2:08
1  
Have you tried adding the error callback to your code? Perhaps it would give you a bit of a clue on why this isn't working. Also, remember of checking the http code with statusCode if you are in fact getting an error. –  MilkyWayJoe Oct 10 '12 at 2:20
    
do you have included the jquery in the head? –  doniyor Oct 10 '12 at 4:50
    
Most browsers have developer tools available if you press F12. In them you can see how AJAX requests are made in real time. –  powerbuoy Oct 10 '12 at 4:58

2 Answers 2

you can also try by removing the "/" in the url. The changed url might look as below

http://www.dgcr-api.com?key=xxxxx&mode=findzip&.....

try with above url(observer the "/" i removed after www.dgcr-api.com)

also one more thing is, ajax calls are having restrictions like cross domain calls. so please check the "crossDomain" property in below link.

http://api.jquery.com/jQuery.ajax/

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ugh...... sometimes I don't see the little things... / ugh.. –  Joel Johnson Oct 10 '12 at 14:45
    
@JoelJohnson accept the answer if it worked for you. –  Rohini Kumar Oct 11 '12 at 6:00

As per the document, the API simply responses with the JSON format unless you explicitly specify the out parameter to XML.

Therefore no need to specify the dataType property for the ajax request, jQuery will intelligently guess the correct datatype by the response MIME type.

Change the request like

$.ajax({
    url:'http://www.dgcr-api.com/?key=xxxxx&mode=findzip&zip=' + $('#zipcode').val() + '&rad=10&sig=yyyyyyy',
    success: function(zip_results){
        console.log(zip_results);
    }
});

and try.

For error checking you need to implement the error callback function. Additionally the API provides specific response codes for convenient error handling.

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