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i have an xml element

   <base baseAtt1="aaa" baseAtt2="tt">
        <innerElement att1="one" att2="two" att3="bazinga"/>
   </base>

and i would like to get the list of attributes. for both the base element and the inner element.

i dont know the name of the innerElement it can have many different names.

 NodeList baseElmntLst_gold  = goldAnalysis.getElementsByTagName("base");
 Element baseElmnt_gold = (Element) baseElmntLst_gold.item(0);

the goal is to get a kind of dictionary as output,

for example for the xml above the output will be a dictionary with those valuse.

baseAtt1 = "aaa"
baseAtt2 = "tt"
att1 = "one"
att2 = "two"
att3 = "bazinga"

i am using jre 1.5

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3 Answers 3

up vote 3 down vote accepted

Here is plain DOM based solution (however there is nothing wrong to combine XPath with DOM in Java):

NodeList baseElmntLst_gold  = goldAnalysis.getElementsByTagName("base");
Element baseElmnt_gold = (Element) baseElmntLst_gold.item(0);

NamedNodeMap baseElmnt_gold_attr = baseElmnt_gold.getAttributes();
for (int i = 0; i < baseElmnt_gold_attr.getLength(); ++i)
{
    Node attr = baseElmnt_gold_attr.item(i);
    System.out.println(attr.getNodeName() + " = \"" + attr.getNodeValue() + "\"");
}

NodeList innerElmntLst_gold = baseElmnt_gold.getChildNodes();
Element innerElement_gold = null;
for (int i = 0; i < innerElmntLst_gold.getLength(); ++i)
{
    if (innerElmntLst_gold.item(i) instanceof Element)
    {
        innerElement_gold = (Element) innerElmntLst_gold.item(i);
        break; // just get first child
    }
}

NamedNodeMap innerElmnt_gold_attr = innerElement_gold.getAttributes();
for (int i = 0; i < innerElmnt_gold_attr.getLength(); ++i)
{
    Node attr = innerElmnt_gold_attr.item(i);
    System.out.println(attr.getNodeName() + " = \"" + attr.getNodeValue() + "\"");
}

Result:

baseAtt1 = "aaa"
baseAtt2 = "tt"
att1 = "one"
att2 = "two"
att3 = "bazinga"
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You can use this XPath to retrieve all attributes of 1st element node:

base/element[1]/@*

To get all attributes of all nodes in your XML yo can use this expression:

//@*
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is that a java source code ? –  yossi Jul 21 '11 at 8:54
1  
@yossi, XPath is cross-platform technology. Java supports XPath, but I don't know syntax and Java's classes to evaluate this expression. –  Kirill Polishchuk Jul 21 '11 at 8:58
1  
@yossi, May be this link is helpful: ibm.com/developerworks/library/x-javaxpathapi/index.html –  Kirill Polishchuk Jul 21 '11 at 9:02

If you use XPath you will have less code, but for a dom base solution I have a suggestion here:

public void printElementsAndAttributes() throws Exception {
    DocumentBuilder db = DocumentBuilderFactory.newInstance().newDocumentBuilder();
    org.w3c.dom.Document doc = db.parse(new File("test.xml"));
    NodeList base = doc.getElementsByTagName("base");
    Node basenode = base.item(0);
    System.out.println(basenode.getNodeName() + getAttributesAsString(basenode.getAttributes()));
    NodeList children = basenode.getChildNodes();
    for (int i = 0; i < children.getLength(); i++) {
        Node item = children.item(i);
        if (item.getNodeType() == Node.ELEMENT_NODE) {
            System.out.println(item.getNodeName() + getAttributesAsString(item.getAttributes()));

        }
    }


}

private String getAttributesAsString(NamedNodeMap attributes) {
    StringBuilder sb = new StringBuilder("\n");
    for (int j = 0; j < attributes.getLength(); j++) {
        sb.append("\t- ").append(attributes.item(j).getNodeName()).append(": ").append(attributes.item(j).getNodeValue()).append("\n");
    }
    return sb.toString();

}
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