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hi am trying tp parse the xml in blackberry that stores in server. But it comes out in inputstream line with different exceptions.mostly with Datagram Protocol and TcpInput exceptions.i have attached my code here kindly guide me.

try {
    Document doc;
    StreamConnection conn = null;
    InputStream is = null;
    conn = (StreamConnection) Connector.open("http://xyz.com/GetImageDetails.xml;deviceside=true;");

    DocumentBuilderFactory docBuilderFactory = DocumentBuilderFactory.newInstance();
    docBuilderFactory.setIgnoringElementContentWhitespace(true);
    docBuilderFactory.setCoalescing(true);

    DocumentBuilder docBuilder = docBuilderFactory.newDocumentBuilder();
    docBuilder.isValidating();
    is = conn.openInputStream();
    doc = docBuilder.parse(is);
    doc.getDocumentElement().normalize();

    NodeList list = doc.getElementsByTagName("IMG_URL");
    for (int i = 0; i < list.getLength(); i++) {
        Node textNode = list.item(i).getFirstChild();
        System.out.println(textNode);
    }
} catch (Exception e) {
    System.out.println(e.toString());
}
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try with this Connector.open("xyz.com/GetImageDetails.xml"+ ";deviceside=true" ) ; –  String Oct 4 '12 at 7:01
    
yep also tried with that, am getting out in InputStream line.and also checked with connection in simulator it is connected with WIFI.help me –  Pramodhini Oct 4 '12 at 7:09
    
@Pramodhini. As you are using HTTP try for more specialized connection type. Try for HttpConnection rather using StreamConnection –  Nilanchala Oct 4 '12 at 8:20
    
@Pramodhini The same code for Rss HTML file worked for me... –  String Oct 4 '12 at 8:36
    
@Nilachala is correct ...please try with HttpConnection and let us know the result .. –  Mario Oct 4 '12 at 8:55

2 Answers 2

up vote 1 down vote accepted
The XML parsing class is
/***/

package com.application.xmlParser;

import java.io.ByteArrayInputStream; import java.io.InputStream; import java.util.Hashtable; import java.util.Vector;

import org.xml.sax.Attributes; import org.xml.sax.InputSource; import org.xml.sax.SAXException; import org.xml.sax.XMLReader; import org.xml.sax.helpers.DefaultHandler; import org.xml.sax.helpers.XMLReaderFactory;

import com.application.log.Log;

public class CopyOfXMLParser extends DefaultHandler {

private String RecordElement;
private String xmlURL;
private Hashtable newObj = new Hashtable();
private Vector Records = new Vector();
private CallBack callBack ;
private String _localEndTag = "";

public void ParseInputStream(String stream,String rootElement, String recordElement , CallBack callBack) 
{
    RecordElement = recordElement;
    this.callBack = callBack;

    InputStream in = new ByteArrayInputStream(stream.getBytes());
    try 
    {
        XMLReader reader = XMLReaderFactory.createXMLReader();
        reader.setContentHandler(this);
        reader.parse(new InputSource(in));
    } 
    catch ( Exception e ) 
    {
        System.out.println("#### ##### Parse Exception : " + e + "#### #####" + xmlURL);
      /*  callbackAdapter.callback(Records);*/
    }
}


public void startElement(String Uri, String localName, String qName, Attributes attributes) throws SAXException 
{
}

public void characters(char [ ] ch, int start, int length) throws SAXException 
{
   String elementValue = new String(ch, start, length).trim();

    Log.d("End Tag", _localEndTag); 
    Log.d("Tag Value ", elementValue);  

    if(_localEndTag ==  null || _localEndTag.equalsIgnoreCase(""))
    {

    }
    else
    {
        newObj.put((String)_localEndTag, (String)elementValue);
    }
}

public void endElement(String Uri, String localName, String qName) throws SAXException 
{
    _localEndTag = localName;

    if ( localName.equalsIgnoreCase(RecordElement) ) 
    {
        Records.addElement(newObj);
        callBack.callBack(Records);
        System.out.println("###### ###### FINISH ###### ######" +RecordElement);
    }
}

}

/***/

/***/
How to Implement

take the (Http)InputStream response into String  and call the below method ..your problem is solved 

new CopyOfXMLParser().ParseInputStream(new String(baos.toByteArray()) ,"SOAP:Envelope", "SOAP:Envelope");

I am getting all the elements value , with this code /*/

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Boss i wanna read directly form url not in some stored place.pls guide me –  Pramodhini Oct 4 '12 at 11:35
    
@Pramodhini you are getting InputStream from your above mentioned code pass the InputStream refreance to this method new CopyOfXMLParser().ParseInputStream(InputStream is ,String rootElement, String recordElement, CallbackAdapter callbackAdapter) ..will give you parse result –  Mario Oct 4 '12 at 11:51
    
ya used this code also comes out in inputstream line. –  Pramodhini Oct 4 '12 at 14:23
    
i got response xml while parsing it throws exception like org.xml.sax.SAXParseException: Expecting an element.help me –  Pramodhini Oct 4 '12 at 14:49
    
can you let me know the xml url..? –  Mario Oct 8 '12 at 5:36

USe Sax parsing For XML Parsing. Refer this link

http://stackoverflow.com/questions/11901822/xml-parsing-using-sax-for-blackberry/11914662#11914662
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hi this code breaks in httpconnection.getresponsecode and throws Datagram protocol error.this also not works it freaks me out. –  Pramodhini Oct 5 '12 at 7:00

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