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I have an XML like this:

<documentslist>
  <document>
    <docnumber>1</docnumber>
    <docname>Declaration of Human Rights</docname>
    <aoo>lib</aoo>
  </document>
  <document>
    <docnumber>2</docnumber>
    <docname>Fair trade</docname>
    <aoo>lib</aoo>
  </document>
  <document>
    <docnumber>3</docnumber>
    <docname>The wars for water</docname>
    <aoo>lib</aoo>
  </document>
  <!-- etc. -->
</documentslist>

I have this code:

//XML parsing
Document docsDoc = null;
try {
    DocumentBuilder db = dbf.newDocumentBuilder();
    docsDoc = db.parse(new InputSource(new StringReader(xmlWithDocs)));
}
catch(ParserConfigurationException e) {e.printStackTrace();}
catch(SAXException e) {e.printStackTrace();}
catch(IOException e) {e.printStackTrace();}
//retrieve document elements
NodeList docs = docsDoc.getElementsByTagName("document");

if (docs.getLength() > 0){
    //print a row for each document
    for (int i=0; i<docs.getLength(); i++){
        //get current document
        Node doc = docs.item(i);
        //print a cell for some document children
        for (int j=0; j<columns.length; j++){
            Node cell;
            //print docname
            cell = doc.getElementsByTagName("docname").item(0); //doesn't work
            System.out.print(cell.getTextContent() + "\t");
            //print aoo
            cell = doc.getElementsByTagName("aoo").item(0); //doesn't work
            System.out.print(cell.getTextContent() + "\t");
        }
        System.out.println();
    }
}

But, as you know Node hasn't got getElementsByTagName method... Only Document has it. But I can't do docsDoc.getElementsByTagName("aoo"), because it will return me all <aoo> nodes, not only the one existing in the <document> node I'm inspecting.

How could I do it? Thanks!

share|improve this question
    
Google or Wikipedia: recursion. –  Martijn Courteaux Apr 6 '11 at 14:47

4 Answers 4

up vote 18 down vote accepted

If the Node is not just any node, but actually an Element (it could also be e.g. an attribute or a text node), you can cast it to Element and use getElementsByTagName.

share|improve this answer
    
This is not entirely true. Element actually extends Node and not the other way around. I wouldn't rely on Node always being an Element, make sure to cast after checking the type of Node using instanceof like Yeameen suggested. Reference: docs.oracle.com/javase/6/docs/api/org/w3c/dom/Element.html –  siyb Oct 23 '13 at 14:57
    
@siyb You didn't read this answer correctly. –  JLRishe Dec 30 '14 at 19:03

Check if the Node is a Dom Element, cast, and call getElementsByTagName()

Node doc = docs.item(i);
if(doc instanceof Element) {
    Element docElement = (Element)doc;
    ...
    cell = doc.getElementsByTagName("aoo").item(0);
}
share|improve this answer
1  
if ( node.getNodeType() == Node.ELEMENT_NODE ) –  djangofan Apr 8 '13 at 22:49

You should read it recursively, some time ago I had the same question and solve with this code:

public void proccessMenuNodeList(NodeList nl, JMenuBar menubar) {
    for (int i = 0; i < nl.getLength(); i++) {
        proccessMenuNode(nl.item(i), menubar);
    }
}

public void proccessMenuNode(Node n, Container parent) {
    if(!n.getNodeName().equals("menu"))
        return;
    Element element = (Element) n;
    String type = element.getAttribute("type");
    String name = element.getAttribute("name");
    if (type.equals("menu")) {
        NodeList nl = element.getChildNodes();
        JMenu menu = new JMenu(name);

        for (int i = 0; i < nl.getLength(); i++)
            proccessMenuNode(nl.item(i), menu);

        parent.add(menu);
    } else if (type.equals("item")) {
        JMenuItem item = new JMenuItem(name);
        parent.add(item);
    }
}

Probably you can adapt it for your case.

share|improve this answer
//xn=list of parent nodes......                
foreach (XmlNode xn in xnList)
{                                           
    foreach (XmlNode child in xn.ChildNodes) 
    {
        if (child.Name.Equals("name")) 
        {
            name = child.InnerText; 
        }
        if (child.Name.Equals("age"))
        {
            age = child.InnerText; 
        }
    }
}
share|improve this answer
2  
Please comment about the highlight of your code that will help to solve the issue. That will help to make it more easily understandable. –  RinoTom Mar 6 '13 at 8:59

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