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i have a 1000 entry document whose format is something like

<Example>
     <Entry>
          <n1></n1>
          <n2></n2>
      </Entry>
      <Entry>
          <n1></n1>
          <n2></n2>
      </Entry>
      <!--and so on-->

There are more than 1000 Entry nodes here. I am writing a Java program which basically gets all the node one by one and do some analyzing on each node. But the problem is that the retrieval time of the nodes increases with its no. For example it takes 78 millisecond to retrieve the first node 100 ms to retrieve the second and it keeps on increasing. And to retrieve the 999 node it takes more than 5 second. This is extremely slow. We would be plugging this code to XML files which have even more than 1000 entries. Some like millions. The total time to parse the whole document is more than 5 minutes.

I am using this simple code to traverse it. Here nxp is my own class which has all the methods to get nodes from xpath.

nxp.fromXpathToNode("/Example/Entry" + "[" + i  + "]", doc);    

and doc is the document for the file. i is the no of node to retrieve.

Also when i try something like this

List<Node> nl = nxp.fromXpathToNodes("/Example/Entry",doc);  
      content = nl.get(i);    

I face the same problem.

Anyone has any solution on how to speed up the tretirival of the nodes, so it takes the same amount of time to get the 1st node as well as the 1000 node from the XML file.

Thank you


here is the code for xpathtonode.

public Node fromXpathToNode(String expression, Node context)  
{  
    try  
    {  
        return (Node)this.getCachedExpression(expression).evaluate(context, XPathConstants.NODE);  
    }  
    catch (Exception cause)  
    {  
        throw new RuntimeException(cause);  
    }  
}  

and here is the code for fromxpathtonodes.

public List<Node> fromXpathToNodes(String expression, Node context)  
{  
    List<Node> nodes = new ArrayList<Node>();  
    NodeList results = null;  

    try  
    {  
        results = (NodeList)this.getCachedExpression(expression).evaluate(context, XPathConstants.NODESET);  

        for (int index = 0; index < results.getLength(); index++)  
        {  
            nodes.add(results.item(index));  
        }  
    }  
    catch (Exception cause)  
    {  
        throw new RuntimeException(cause);  
    }  

    return nodes;  
}  

and here is the starting

public class NativeXpathEngine implements XpathEngine
{
private final XPathFactory factory;

private final XPath engine;  

/**
 * Cache for previously compiled XPath expressions. {@link XPathExpression#hashCode()}
 * is not reliable or consistent so use the textual representation instead.
 */  
private final Map<String, XPathExpression> cachedExpressions;  

public NativeXpathEngine()  
{
    super();  

    this.factory = XPathFactory.newInstance();  
    this.engine = factory.newXPath();  
    this.cachedExpressions = new HashMap<String, XPathExpression>();  
}  
share|improve this question
    
The code in fromXpathToNode and fromXpathToNodes would seem to be quite relevant here. Can you provide that code? –  Gerco Dries Mar 2 '10 at 17:32
    
need to see your code that loads the doc. –  No Refunds No Returns Mar 2 '10 at 17:33
    
just added the code –  jon Mar 2 '10 at 17:52
1  
If you're going to hit every entry, why use XPath? –  Nick Veys Mar 2 '10 at 18:08
    
what do you mean? What to use theN? –  jon Mar 2 '10 at 18:18

6 Answers 6

Try VTD-XML. It uses less memory than DOM. It is easier to use than SAX and supports XPath. Here is some sample code to help you get started. It applies an XPath to get the Entry elements and then prints out the n1 and n2 child elements.

final VTDGen vg = new VTDGen();
vg.parseFile("/path/to/file.xml", false);

final VTDNav vn = vg.getNav();
final AutoPilot ap = new AutoPilot(vn);
ap.selectXPath("/Example/Entry");
int count = 1;
while (ap.evalXPath() != -1) {
    System.out.println("Inside Entry: " + count);

    //move to n1 child
    vn.toElement(VTDNav.FIRST_CHILD, "n1");
    System.out.println("\tn1: " + vn.toNormalizedString(vn.getText()));

    //move to n2 child
    vn.toElement(VTDNav.NEXT_SIBLING, "n2");
    System.out.println("\tn2: " + vn.toNormalizedString(vn.getText()));

    //move back to parent
    vn.toElement(VTDNav.PARENT);
    count++;
}
share|improve this answer
2  
+1 for mentioning this awesome lib. I faced a similar problem by parsing some xPathExpressions which took near by 1min to complete. VTD-XML does the same job in 2seks. –  onigunn Nov 11 '10 at 8:52

I had similar issue with the Xpath Evaluation , I tried using CachedXPathAPI’s which is faster by 100X than the XPathApi’s which was used earlier. more information about this Api is provided here : http://xml.apache.org/xalan-j/apidocs/org/apache/xpath/CachedXPathAPI.html

Hope it helps. Cheers, Madhusudhan

share|improve this answer
    
Indeed. Thanks for sharing the info. –  pingu Feb 17 at 22:13

What kind of parser are you using?

DOM pulls the whole document in memory - once you pull the whole document in memory then your operations can be fast but doing so in a web app or a for loop can have an impact.

SAX parser does on demand parsing and loads nodes as and when you request.

So try to use a parser implementation that suits your need.

share|improve this answer
    
If he's planning to use this on a document with millions of entries, SAX is probably the better way to go. IMHO. –  Reed Debaets Mar 2 '10 at 17:36
    
i am using a dom parser. –  jon Mar 2 '10 at 17:37
    
but why is it so slow. It should be fast for all the entry tags –  jon Mar 2 '10 at 17:37
    
basically i am using JAXP –  jon Mar 2 '10 at 17:38

If you need to parse huge but flat documents, SAX is a good alternative. It allows you to handle the XML as a stream instead of building a huge DOM. Your example could be parsed using a ContentHandler like this:

import org.xml.sax.Attributes;
import org.xml.sax.SAXException;
import org.xml.sax.ext.DefaultHandler2;

public class ExampleHandler extends DefaultHandler2 {

    private StringBuffer chars = new StringBuffer(1000);

    private MyEntry currentEntry;
    private MyEntryHandler myEntryHandler;

    ExampleHandler(MyEntryHandler myEntryHandler) {
        this.myEntryHandler = myEntryHandler;
    }

    @Override
    public void characters(char[] ch, int start, int length)
            throws SAXException {
        chars.append(ch);
    }

    @Override
    public void endElement(String uri, String localName, String qName)
            throws SAXException {
        if ("Entry".equals(localName)) {
            myEntryHandler.handle(currentEntry);
            currentEntry = null;
        }
        else if ("n1".equals(localName)) {
            currentEntry.setN1(chars.toString());
        }
        else if ("n2".equals(localName)) {
            currentEntry.setN2(chars.toString());
        }
    }


    @Override
    public void startElement(String uri, String localName, String qName,
            Attributes atts) throws SAXException {
        chars.setLength(0);
        if ("Entry".equals(localName)) {
            currentEntry = new MyEntry();
        }
    }
}

If the document has a deeper and more complex structure, you're going to need to use Stacks to keep track of the current path in the document. Then you should consider writing a general purpose ContentHandler to do the dirty work and use with your document type dependent handlers.

share|improve this answer
1  
Use VTD-XML, it is the solution :) –  vtd-xml-author Mar 3 '10 at 4:13

The correct solution is to detach the node right after you call item(i), like so:

Node node = results.item(index)
node.getParentNode().removeChild(node)
nodes.add(node)

See XPath.evaluate performance slows down (absurdly) over multiple calls

share|improve this answer

Use the JAXEN library for xpaths: http://jaxen.codehaus.org/

share|improve this answer

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