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I am getting a null node when I an trying to parse an XML file.

XPath xPath = XPathFactory.newInstance().newXPath();
    Node node = null;
    try {
        node = (Node) xPath.evaluate(
                "/mynode",
                doc,
                XPathConstants.NODE);

I am facing this issue only in case-
1. DocumentBuilderFactory- setNameSpaceAware is true
2. DocumentBuilderFactory- setValidating is true.

If these are set to false, then I am getting correct results. Can anyone help me on understanding what is the relation of setting these attributes to false? (I have checked this question, but it does not clear my doubt)

Here is the xml-

<?xml version="1.0" encoding="UTF-8"?>
<mynode xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns="http://www.example.com" xsi:schemaLocation="http://www.example.com example.xsd">
    <name>TargetName</name>
    <desc>desc goes here</desc>
    <pack>my.this</pack>
    <object>my.ExampleObject</object>
    <properties>
        <attrib>
            <name>id</name>
            <value>ZZZ</value>
        </attrib>
        <attrib>
            <name>ind</name>
            <value>X</value>
        </attrib>
    </properties>
    <children>
        <child>
            <name>childnodename</name>
            <desc>description goes here</desc>
            <invalues>
                <scope>ALL</scope>
            </invalues>
            <outvalues>
                <scope>ALL</scope>
            </outvalues>
            <akey>
                <aname>AAA</aname>
                <key></key>
            </akey>
            <msg>
                <success>code1</success>
                <failure>code2</failure>
            </msg>
        </child>
    </children>
</mynode>
share|improve this question
    
Obvious question: what does the XML look like? –  Jon Skeet Jul 20 '11 at 10:21
    
I am not able to share the XML here. But it's using a namespace. Please let me know what more information is required. –  Pramod Jul 20 '11 at 11:46
1  
You may not be able to share the actual XML, but I'm sure you could produce a complete sample XML file and a short but complete Java program which between them demonstrate the problem. That would get you to an answer rather more quickly... –  Jon Skeet Jul 20 '11 at 12:08
    
@Jon Skeet - Updated the question. Please find the xml structure –  Pramod Jul 22 '11 at 9:29
    
Thanks, that's very helpful. Basically you need to specify the "example.com"; namespace when looking for the element, as that's the namespace that the element is in. I don't have time to come up with code this instant, but I'll try later on. –  Jon Skeet Jul 22 '11 at 9:35
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2 Answers

up vote 1 down vote accepted

The quickest fix is to not do setNamespaceAware(true); :-) However, if you want a namespace aware XPath then you have stumbled across a classic problem - XPath: Is there a way to set a default namespace for queries?, in that XPath does not support the concept of a default namespace.

So your XPath must use a namespace prefix in order for the query to find any nodes. However, you can set a NamespaceContext on the XPath instance to resolve the namespace prefix or default namespace to a URI. One way to do this, for example:

import java.util.*;
import java.io.ByteArrayInputStream;
import javax.xml.namespace.NamespaceContext;
import javax.xml.parsers.*;
import javax.xml.xpath.*;
import org.w3c.dom.*;

public class XmlParse {
    public static void main(String[] args) throws Exception {

        String xml =
            "<?xml version=\"1.0\" encoding=\"UTF-8\"?>" +
            "<mynode xmlns:xsi=\"http://www.w3.org/2001/XMLSchema-instance\" xmlns=\"http://www.example.com\" xsi:schemaLocation=\"http://www.example.com example.xsd\">" +
            "<name>TargetName</name>" +
            "</mynode>";
        DocumentBuilderFactory dbf = DocumentBuilderFactory.newInstance();
        dbf.setNamespaceAware(true);
        DocumentBuilder builder = dbf.newDocumentBuilder();
        Document doc = builder.parse(new ByteArrayInputStream(xml.getBytes()));

        final String nonameNamespace = doc.getFirstChild().getNamespaceURI();

        NamespaceContext ctx = new NamespaceContext() {
            public String getNamespaceURI(String prefix) {
                String uri = null;
                if (prefix.equals("n")) {
                    uri = nonameNamespace;
                }
                return uri;
            }

            @Override
            public Iterator getPrefixes(String val) {
                throw new IllegalAccessError("Not implemented!");
            }

            @Override
            public String getPrefix(String uri) {
                throw new IllegalAccessError("Not implemented!");
            }
        };

        XPath xPath = XPathFactory.newInstance().newXPath();
        xPath.setNamespaceContext(ctx);


        Node node = null;
        try {
            node = (Node) xPath.evaluate("/n:mynode/n:name", doc, XPathConstants.NODE);
            System.out.println(node.getNodeName());
            System.out.println(node.getFirstChild().getNodeValue());
        } catch (Exception e) {

        }
    }
}

So this will resolve the default namespace (xmlns) to http://www.example.com when a node with n prefix is encountered.

share|improve this answer
    
I tried the suggested approach to set namespace context. However, still I am getting null from- xpath.evaluate. Anything more I need to try or check?However, I came across bugs.sun.com/bugdatabase/view_bug.do?bug_id=5101859 too. But it's a very old post and I can not assure if it's still a bug or resolved. –  Pramod Jul 22 '11 at 3:45
    
Please post the XML. I need to see all the ancestor nodes and namespace declarations of the service node. Please see @Jon Skeet's suggestion on the question about a sampl XML. There is not much else I can suggest without resorting to guessing. The code in my answer works when compiled and run with jdk1.6.0_24 for resolving either the default namespace or a prefixed namespace and I have never had a problem as described in the bug you linked. –  andyb Jul 22 '11 at 5:46
    
Updated the question. Please find the xml structure. –  Pramod Jul 22 '11 at 9:29
    
Thanks! I have updated my answer. –  andyb Jul 22 '11 at 10:19
    
Thanks a lot. This worked perfectly! –  Pramod Jul 22 '11 at 12:43
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XML is namespace-aware. Each XML element (and attribute) has an associated namespace; if not specified otherwise it's the empty (default) namespace.

In your case it is likely that the XML document you're trying to read uses namespaces, and your XPath query seems to only query the emtpy namespace. Therefore you don't get a result back. Make sure to use the proper namespace and it will work.

share|improve this answer
    
Yes. My XML file uses a namespace. But I did not get your second point. Sorry, but I am a novice in XPath related stuff. Could you please elaborate how can this be done?- "your XPath query seems to only query the emtpy namespace. Therefore you don't get a result back. Make sure to use the proper namespace and it will work" –  Pramod Jul 20 '11 at 10:48
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