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'm new to jQuery and would like to parse an xml document.

I'm able to parse regular XML with the default namespaces but with xml such as:

<xml xmlns:s="uuid:BDC6E3F0-6DA3-11d1-A2A3-00AA00C14882" xmlns:dt="uuid:C2F41010-65B3-11d1-A29F-00AA00C14882" xmlns:rs="urn:schemas-microsoft-com:rowset" xmlns:z="#RowsetSchema">
   <s:Schema id="RowsetSchema">
     <s:ElementType name="row" content="eltOnly" rs:CommandTimeout="30">
       <s:AttributeType name="ows_ID" rs:name="ID" rs:number="1">
        <s:datatype dt:type="i4" dt:maxLength="4" />
      </s:AttributeType>
       <s:AttributeType name="ows_DocIcon" rs:name="Type" rs:number="2">
        <s:datatype dt:type="string" dt:maxLength="512" />
      </s:AttributeType>
       <s:AttributeType name="ows_LinkTitle" rs:name="Title" rs:number="3">
        <s:datatype dt:type="string" dt:maxLength="512" />
      </s:AttributeType>
       <s:AttributeType name="ows_ServiceCategory" rs:name="Service Category" rs:number="4">
        <s:datatype dt:type="string" dt:maxLength="512" />
      </s:AttributeType>
    </s:ElementType>
  </s:Schema>
   <rs:data>
    <z:row ows_ID="2" ows_LinkTitle="Sample Data 1" />
    <z:row ows_ID="3" ows_LinkTitle="Sample Data 2" />
    <z:row ows_ID="4" ows_LinkTitle="Sample Data 3" />
  </rs:data>
</xml>

All I really want are the <z:row>'s.

So far, I've been doing:

$.get(xmlPath, {}, function(xml) {
    $("rs:data", xml).find("z:row").each(function(i) {
        alert("found zrow");
    });
}, "xml");

With really no luck. Any ideas? Thanks.

share|improve this question

16 Answers 16

up vote 94 down vote accepted

I got it.

Turns out that it requires \\ to escape the colon.

$.get(xmlPath, {}, function(xml) {
    $("rs\\:data", xml).find("z\\:row").each(function(i) {
        alert("found zrow");
    });
}, "xml");

As Rich pointed out:

The better solution does not require escaping and works on all "modern" browsers:

.find("[nodeName=z:row]")
share|improve this answer
    
Yup, it works! Thank you for uncovering this hidden gem. Very useful for parsing Google Product RSS feeds. –  line break Jun 30 '09 at 14:53
1  
$('[nodeName=rs:data]', xml).find('[nodeName=z:row]') - works with 1.3.2 under WebKit (where the escaped colon method apparently does not) –  gnarf Jan 6 '10 at 7:07
2  
this seems to have stopped working in jQuery version 1.4.4, which I think means jQuery has better XML namespace support. So to be safe, this works $('[nodeName=rs:data],data') –  Josh Pearce Jan 11 '11 at 15:29
10  
Now jQuery 1.7 is out and this last solution doesn't work anymore. What is the new way? –  Gapipro Nov 22 '11 at 9:59
1  
In jQuery 1.8.x it doesn't works anymore. It should accomplished with a custom pseudo class compatibility workaround, as explained here. –  Miere Sep 4 '12 at 23:23

Although the above answer seems to be correct, it does not work in webkit browsers (Safari, Chrome). A better solution I believe would be:

.find("[nodeName=z:myRow, myRow]")    
share|improve this answer
4  
this seems to have stopped working in jQuery version 1.4.4, which I think means jQuery has better XML namespace support. So to be safe, this works $('[nodeName=rs:data],data') –  Josh Pearce Jan 11 '11 at 15:29
    
Excellent, Josh. –  Rich Jan 14 '11 at 11:34

If you are using jquery 1.5 you will have to add quotes around the node selector attribute value to make it work:

.find('[nodeName="z:row"]')
share|improve this answer
    
This is the only one that worked for me using jquery-1.6.4 –  danjp Dec 27 '11 at 5:20

I have spent several hours on this reading about plugins and all sorts of solutions with no luck.

ArnisAndy posted a link to a jQuery discussion, where this answer is offered and I can confirm that this works for me in Chrome(v18.0), FireFox(v11.0), IE(v9.08) and Safari (v5.1.5) using jQuery (v1.7.2).

I am trying to scrape a WordPress feed where content is named <content:encoded> and this is what worked for me:

content: $this.find("content\\:encoded, encoded").text()
share|improve this answer
3  
This was the only one that reliably worked for me using the latest jQuery (same version) so thank you! –  DMan Jul 2 '12 at 20:07

The "\\" escaping isn't foolproof and the simple

.find('[nodeName="z:row"]')

Method seems to have been broken as of Jquery 1.7. I was able to find a solution for 1.7 , using a filter function, here: Improving Javascript XML Node Finding Performance

share|improve this answer

In case someone needs to do this without jQuery, just with normal Javascript, and for Google Chrome (webkit), this is the only way I found to get it to work after a lot of research and testing.

parentNode.getElementsByTagNameNS("*", "name");

That will work for retrieving the following node: <prefix:name>. As you can see the prefix or namespace is omitted, and it will match elements with different namespaces provided the tag name is name. But hopefully this won't be a problem for you.

None of this worked for me (I am developping a Google Chrome extension):

getElementsByTagNameNS("prefix", "name")

getElementsByTagName("prefix:name")

getElementsByTagName("prefix\\:name")

getElementsByTagName("name")

Edit: after some sleep, I found a working workaround :) This function returns the first node matching a full nodeName such as <prefix:name>:

// Helper function for nodes names that include a prefix and a colon, such as "<yt:rating>"
function getElementByNodeName(parentNode, nodeName)
{   
    var colonIndex = nodeName.indexOf(":");
    var tag = nodeName.substr(colonIndex + 1);
    var nodes = parentNode.getElementsByTagNameNS("*", tag);
    for (var i = 0; i < nodes.length; i++)
    {
        if (nodes[i].nodeName == nodeName) return nodes[i]
    }
    return undefined;
}

It can easily be modified in case you need to return all the matching elements. Hope it helps!

share|improve this answer

It's worth noting that as of jQuery 1.7 there were issues with some of the work-arounds for finding namespaced elements. See these links for more information:

share|improve this answer
    
If the performance is important, then the best solution is to select the tags without jQuery. For a comparison, see: jsperf.com/node-vs-double-select/13 –  Mytskine Sep 24 '12 at 17:33

None of the solutions above work that well. I found this and has been improved for speed. just add this, worked like a charm:

$.fn.filterNode = function(name) {
    return this.find('*').filter(function() {
       return this.nodeName === name;
    });
};

usage:

var ineedthatelementwiththepsuedo = $('someparentelement').filterNode('dc:creator');

source: http://www.steveworkman.com/html5-2/javascript/2011/improving-javascript-xml-node-finding-performance-by-2000/

share|improve this answer

jQuery 1.7 doesn't work with the following:

$(xml).find("[nodeName=a:IndexField2]")

One solution which I did get to work in Chrome, Firefox, and IE is to use selectors which work in IE AND selectors which work in Chrome, based on the fact that one way works in IE and the other in Chrome:

$(xml).find('a\\\\:IndexField2, IndexField2')

In IE, this returns nodes using the namespace (Firefox and IE require the namespace), and in Chrome, the selector returns nodes based on the non-namespace selector. I have not tested this in Safari, but it should work because it's working in Chrome.

share|improve this answer

My solution (because I use a Php proxy) is to replace : namespace by _ ... so no more namespace issues ;-)

Keep it simple !

share|improve this answer

As mentioned above, there are problems with the above solution with current browsers/versions of jQuery - the suggested plug-in doesn't completely work either because of case issues (nodeName, as a property, is sometimes in all upper case). So, I wrote the following quick function:

$.findNS = function (o, nodeName)
{
    return o.children().filter(function ()
    {
        if (this.nodeName)
            return this.nodeName.toUpperCase() == nodeName.toUpperCase();
        else
            return false;
    });
};

Example usage:

$.findNS($(xml), 'x:row');
share|improve this answer
    
given the jQuery version issues, this is clearly the best solution –  MatteoSp May 28 '13 at 16:12

I have not seen any documentation on using JQuery to parse XML. JQuery typically uses the Browser dom to browse an HTML document, I don't believe it reads the html itself.

You should probably look at the built in XML handling in JavaScript itself.

http://www.webreference.com/programming/javascript/definitive2/

share|improve this answer
2  
Completely disagree. jQuery makes handling response XML easy, the only complication you will encounter is using xml namespaces. –  Richard Clayton Sep 22 '09 at 0:53
1  
@Richard: When using Ajax, jQuery does use the responseXML property of the built-in XMLHttpRequest object, which is indeed an XML document. However, jQuery (until 1.5, when parseXML was introduced) had no way of parsing XML, so Chris was right. –  Tim Down Jun 21 '11 at 9:49

Original Answer : jQuery XML parsing how to get element attribute

Here is an example for how to successfully get the value in Chrome..

 item.description = jQuery(this).find("[nodeName=itunes\\:summary]").eq(0).text();
share|improve this answer

just replaced the namespace by empty string. Works fine for me. Tested solution across browsers: Firefox, IE, Chrome

My task was to read and parse an EXCEL-file via Sharepoint EXCEL REST API. The XML-response contains tags with "x:" namespace.

I decided to replace the namespace in the XML by an empty string. Works this way: 1. Get the node of interest out of the XML-response 2. Convert the selected node XML-Response (Document) to String 2. Replace namespace by empty string 3. Convert string back to XML-Document

See code outline here -->

function processXMLResponse)(xData)
{
  var xml = TOOLS.convertXMLToString("", "",$(xData).find("entry content")[0]);
  xml = xml.replace(/x:/g, "");            // replace all occurences of namespace
  xData =  TOOLS.createXMLDocument(xml);   // convert string back to XML
}

For XML-to-String conversion find a solution here: http://www.sencha.com/forum/showthread.php?34553-Convert-DOM-XML-Document-to-string

share|improve this answer

For Webkit browsers, you can just leave off the colon. So to find <media:content> in an RSS feed for example, you can do this:

$(this).find("content");
share|improve this answer

content: $this.find("content\\:encoded, encoded").text()

is the perfect solution...

share|improve this answer
    
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. –  Tomasz Kowalczyk Apr 23 at 10:22

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.