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$.ajax({
        url: 'https:' + '//ajax.googleapis.com/ajax/services/feed/load?v=1.0&num=-1&output=xml&callback=?&q=' + encodeURIComponent(url),
        dataType: 'mixed',
        success: function(data) {
            if(data.responseStatus != 200) {
                alert('Error data loading, feed: ' + url);
                return;
            }

            //var imgSrc = $($.parseXML(data.responseData.xmlString)).find("image").find("url").text();
            callback(data.responseData.feed);
        }
    });

I have a code, which pass RSS feed (https://www.free-lance.ru/rss/) to googleapis (to convert XML-JSON).

If i open feed in browser, there is a node like:

 <generator>Free-Lance.ru RSS Generator</generator> 
  <image>
    <url>https://www.free-lance.ru/images/free-lance_logo.jpg</url>
    <title><![CDATA[Проекты на Free-lance.ru (Фри-ланс)]]></title>
    <link>https://www.free-lance.ru</link> 
    <width>113</width>
    <height>18</height>
  </image>
  <managingEditor>info@free-lance.ru</managingEditor>

image! I'd like to take image->url node, but when googleapis return me JSON data, there isn't this node in object!

Other words, googleapis miss this node in object, so, what's the problem of that? I don't want to parse XML with Javascript (make request to feed and then parse) or write convertor XML->JSON on client side.

Why service miss node and could i get it?

Thx u.

P.S. I'm writing Google Chrome extension.

share|improve this question
    
There is No help? :( –  user1612334 Feb 26 '13 at 8:29
    
if you look at that RSS closely, you have to pull data that is coming from each <item> block, when you are using google api via ajax. –  blackhawk Aug 23 '13 at 20:03
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