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My question is: How can I get elements directly under a specific parent element when there are other elements with the same name as a "grandchild" of the parent element.

I'm using the Java DOM library to parse XML Elements and I'm running into trouble. Here's some (a small portion) of the xml I'm using:

<notifications>
  <notification>
    <groups>
      <group name="zip-group.zip" zip="true">
        <file location="C:\valid\directory\" />
        <file location="C:\another\valid\file.doc" />
        <file location="C:\valid\file\here.txt" />
      </group>
    </groups>
    <file location="C:\valid\file.txt" />
    <file location="C:\valid\file.xml" />
    <file location="C:\valid\file.doc" />
  </notification>
</notifications>

As you can see, there are two places you can place the <file> element. Either in groups or outside groups. I really want it structured this way because it's more user-friendly.

Now, whenever I call notificationElement.getElementsByTagName("file"); it gives me all the <file> elements, including those under the <group> element. I handle each of these kinds of files differently, so this functionality is not desirable.

I've thought of two solutions:

  1. Get the parent element of the file element and deal with it accordingly (depending on whether it's <notification> or <group>.
  2. Rename the second <file> element to avoid confusion.

Neither of those solutions are as desirable as just leaving things the way they are and getting only the <file> elements which are direct children of <notification> elements.

I'm open to IMPO comments and answers about the "best" way to do this, but I'm really interested in DOM solutions because that's what the rest of this project is using. Thanks.

share|improve this question
    
Why don't you use XPath to get both list of nodes and treat them differently ? //groups/group/file and //notification/file would suffice to have them. Or dou you want only one XPath to get them all ? –  Alex May 21 '12 at 17:40
    
Why not create this collection by you own looping throught direct childs, like hits:"NodeList nodes = element.getChildNodes(); for (int i = 0; i < nodes.getLength(); i++) { //if element path check - add it to the collection }"? –  Dmitry May 21 '12 at 17:43
    
@Alex org.w3c.dom doesn't support XPath; he'd want to use a different library, such as org.jdom.xpath, for that... though I fully agree that it's the more elegant approach. –  Charles Duffy May 21 '12 at 17:44
    
javax.xml.xpath is Java Standard, so I think he can pretty much use it, no need to get JDom just for this simple task. –  Alex May 21 '12 at 17:46
    
I should mention that this is only a small part of a much bigger xml file :) Wanted to make it readable. –  kentcdodds May 21 '12 at 17:50
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6 Answers 6

I realise you found something of a solution to this in May @kentcdodds but I just had a fairly similar problem which I've now found, I think (perhaps in my usecase, but not in yours), a solution to.

a very simplistic example of my XML format is shown below:-

<?xml version="1.0" encoding="utf-8"?>
<rels>
    <relationship num="1">
        <relationship num="2">
            <relationship num="2.1"/>
            <relationship num="2.2"/>
        </relationship>
    </relationship>
    <relationship num="1.1"/>
    <relationship num="1.2"/>

</rels>

As you can hopefully see from this snippet, the format I want can have N-levels of nesting for [relationship] nodes, so obviously the problem I had with Node.getChildNodes() was that I was getting all nodes from all levels of the hierarchy, and without any sort of hint as to Node depth.

Looking at the API for a while , I noticed there are actually two other methods that might be of some use:-

Together, these two methods seemed to offer everything that was required to get all of the immediate descendant elements of a Node. The following jsp code should give a fairly basic idea of how to implement this. Sorry for the JSP. I'm rolling this into a bean now but didn't have time to create a fully working version from picked apart code.

<%@page import="javax.xml.parsers.DocumentBuilderFactory,
                javax.xml.parsers.DocumentBuilder,
                org.w3c.dom.Document,
                org.w3c.dom.NodeList,
                org.w3c.dom.Node,
                org.w3c.dom.Element,
                java.io.File" %><% 
try {

    File fXmlFile = new File(application.getRealPath("/") + "/utils/forms-testbench/dom-test/test.xml");
    DocumentBuilderFactory dbFactory = DocumentBuilderFactory.newInstance();
    DocumentBuilder dBuilder = dbFactory.newDocumentBuilder();
    Document doc = dBuilder.parse(fXmlFile);
    doc.getDocumentElement().normalize();

    Element docEl = doc.getDocumentElement();       
    Node childNode = docEl.getFirstChild();     
    while( childNode.getNextSibling()!=null ){          
        childNode = childNode.getNextSibling();         
        if (childNode.getNodeType() == Node.ELEMENT_NODE) {         
            Element childElement = (Element) childNode;             
            out.println("NODE num:-" + childElement.getAttribute("num") + "<br/>\n" );          
        }       
    }

} catch (Exception e) {
    out.println("ERROR:- " + e.toString() + "<br/>\n");
}

%>

This code would give the following output, showing only direct child elements of the initial root node.

NODE num:-1
NODE num:-1.1
NODE num:-1.2

Hope this helps someone anyway. Cheers for the initial post.

share|improve this answer
    
+1 for providing another totally acceptable answer to the question. :) –  kentcdodds Jun 20 '12 at 13:40
    
Cheers @kentcdodds Quite an interesting problem to tackle and find another solution to actually. fairly glad I can continue to use the org.w3c.dom without having to port existing code. Thanks for the question! –  BizNuge Jun 20 '12 at 13:45
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You can use XPath for this, using two path to get them and process them differently.

To get the <file> nodes direct children of <notification> use //notification/file and for the ones in <group> use //groups/group/file.

This is a simple sample:

public class SO10689900 {
    public static void main(String[] args) throws Exception {
        DocumentBuilder db = DocumentBuilderFactory.newInstance().newDocumentBuilder();
        Document doc = db.parse(new InputSource(new StringReader("<notifications>\n" + 
                "  <notification>\n" + 
                "    <groups>\n" + 
                "      <group name=\"zip-group.zip\" zip=\"true\">\n" + 
                "        <file location=\"C:\\valid\\directory\\\" />\n" + 
                "        <file location=\"C:\\this\\file\\doesn't\\exist.grr\" />\n" + 
                "        <file location=\"C:\\valid\\file\\here.txt\" />\n" + 
                "      </group>\n" + 
                "    </groups>\n" + 
                "    <file location=\"C:\\valid\\file.txt\" />\n" + 
                "    <file location=\"C:\\valid\\file.xml\" />\n" + 
                "    <file location=\"C:\\valid\\file.doc\" />\n" + 
                "  </notification>\n" + 
                "</notifications>")));
        XPath xpath = XPathFactory.newInstance().newXPath();
        XPathExpression expr1 = xpath.compile("//notification/file");
        NodeList nodes = (NodeList)expr1.evaluate(doc, XPathConstants.NODESET);
        System.out.println("Files in //notification");
        printFiles(nodes);

        XPathExpression expr2 = xpath.compile("//groups/group/file");
        NodeList nodes2 = (NodeList)expr2.evaluate(doc, XPathConstants.NODESET);
        System.out.println("Files in //groups/group");
        printFiles(nodes2);
    }

    public static void printFiles(NodeList nodes) {
        for (int i = 0; i < nodes.getLength(); ++i) {
            Node file = nodes.item(i);
            System.out.println(file.getAttributes().getNamedItem("location"));
        }
    }
}

It should output:

Files in //notification
location="C:\valid\file.txt"
location="C:\valid\file.xml"
location="C:\valid\file.doc"
Files in //groups/group
location="C:\valid\directory\"
location="C:\this\file\doesn't\exist.grr"
location="C:\valid\file\here.txt"
share|improve this answer
    
Looks like a good answer, and in the future I may move from DOM to XPath. But for this project this is the last thing I need to do and I want to stick with DOM. However, unless I get another answer for DOM, I'll accept yours because it's a good answer. Either way, you get a +1 for such a thorough answer. –  kentcdodds May 21 '12 at 18:06
    
If you need to stick with DOM, then you will need to iterate over the NodeList using ((Node)notificationElement).getChildNodes() and keep only the one whose names are file. Ideally you will have to find all notification tags to do that. The same needs to be done for group tags. –  Alex May 21 '12 at 18:17
    
I found a better solution. The reason that wont work is because there are a lot of childNodes in the notification element. I answered the question though. Thanks for your good answer. I really will look into XPath in the future. –  kentcdodds May 21 '12 at 18:26
    
I'm looking for a way to search for an element by path root/etc/foo and eventually create it, or it's parent nodes if these don't exist. Can I use something better than a for loop in children nodes? I only care about the first occurence. –  Tomáš Zato Jan 20 at 23:15
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up vote 5 down vote accepted

Well, the DOM solution to this question is actually pretty simple, even if it's not too elegant When I iterate through the filesNodeList which is returned when I call notificationElement.getElementsByTagName("file"); I just check whether the parent node's name is "notification." If it isn't then I ignore it because that will be handled by the <group> element. Here's my code solution:

for (int j = 0; j < filesNodeList.getLength(); j++) {
  Element fileElement = (Element) filesNodeList.item(j);
  if (!fileElement.getParentNode().getNodeName().equals("notification")) {
    continue;
  }
  ...
}
share|improve this answer
    
Bravo!!!!!!!!!! –  madhairsilence Jan 17 '13 at 11:36
    
is the cast safe? –  Janus Troelsen Jul 28 '13 at 13:56
    
@JanusTroelsen, if you're talking about the second line when I cast the item as an element, then it depends on the DOM you're parsing... If not, what do you mean? –  kentcdodds Jul 28 '13 at 19:54
    
yes, that's what I meant –  Janus Troelsen Jul 28 '13 at 20:48
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If you stick with the DOM API

    NodeList nodeList = doc.getElementsByTagName("notification")
        .item(0).getChildNodes();

    // get the immediate child (1st generation)
    for (int i = 0; i < nodeList.getLength(); i++)
    switch (nodeList.item(i).getNodeType()) {
    case Node.ELEMENT_NODE:

        Element element = (Element) nodeList.item(i);
        System.out
            .println("element name: " + element.getNodeName());
        // check the element name
        if (element.getNodeName().equalsIgnoreCase("file"))
        {

        // do something with you "file" element (child first generation)

        System.out.println("element name:"

            + element.getNodeName() + " attribute: "
            + element.getAttribute("location"));

        }
        break;

    }

our first get an element "Notification" (int this case the first -item (0)-) and all its children:

    NodeList nodeList = doc.getElementsByTagName("notification")
        .item(0).getChildNodes();

(later you can work with all elements using getting all the elements).

for every child of "Notification":

    for (int i = 0; i < nodeList.getLength(); i++)

you first get its type in order to see whether it is an element:

            switch (nodeList.item(i).getNodeType()) {
            case Node.ELEMENT_NODE:
    .......
break;  
     }

if it's the case.. then you got your children "FIle" , that are not grand children "Notification"

and your can check them out:

        if (element.getNodeName().equalsIgnoreCase("file"))
        {

        // do something with you "file" element (child first generation)

        System.out.println("element name:"

            + element.getNodeName() + " attribute: "
            + element.getAttribute("location"));

        }

and the ouptut is:

element name: file
element name:file attribute: C:\valid\file.txt
element name: file
element name:file attribute: C:\valid\file.xml
element name: file
element name:file attribute: C:\valid\file.doc
share|improve this answer
    
thanks for the solution. My solution is similar to this, but I don't iterate through all the children because there are a lot more children in that element which I didn't display in my question just to avoid information overload. Anyway, thanks again. +1 for a good answer. –  kentcdodds May 21 '12 at 18:29
    
@kentcdodds.I update my Answer.You see,working with XML without using "ID" leaves you basically with only "getElementsByTagName" and "getChildNodes" to play with. You don't have in my opinion other answers when working directly with the DOM.Sorry you have to stick with the DOM.Whatever the solution it will probably come down to how your access the children of a given Node(in this case "Notification").My solution checks the type Node in order to spare you unnecessary work.But you'll still have to iterate ALL the children.That's what happen when there no "ID" : you end up with a collection. –  arthur May 21 '12 at 18:47
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I wrote this function to get the node value by tagName, restrict to top level

public static String getValue(Element item, String tagToGet, String parentTagName) {
    NodeList n = item.getElementsByTagName(tagToGet);
    Node nodeToGet = null;
    for (int i = 0; i<n.getLength(); i++) {
        if (n.item(i).getParentNode().getNodeName().equalsIgnoreCase(parentTagName)) {
            nodeToGet = n.item(i);
        }
    }
    return getElementValue(nodeToGet);
}

public final static String getElementValue(Node elem) {
    Node child;
    if (elem != null) {
        if (elem.hasChildNodes()) {
            for (child = elem.getFirstChild(); child != null; child = child
                    .getNextSibling()) {
                if (child.getNodeType() == Node.TEXT_NODE) {
                    return child.getNodeValue();
                }
            }
        }
    }
    return "";
}
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I encountered a related problem where I needed to process just the immediate child nodes even though the treatment of all "file" nodes is similar. For my solution, I compare the Element's parent node with the node that is being processed in order to determine whether the Element is an immediate child.

NodeList fileNodes = parentNode.getElementsByTagName("file");
for(int i = 0; i < fileNodes.getLength(); i++){
            if(parentNode.equals(fileNodes.item(i).getParentNode())){
                if (fileNodes.item(i).getNodeType() == Node.ELEMENT_NODE) {

                    //process the child node...
                }
            }
        }
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