Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am parsing a xml from an url.The url is has mobile IMEI no and searchstring based on my application. i put my xml parsing code in android project it does not work. but if i run as separate java program it is working. please help me.

Log.e("rsport-", "function1");
 try{
  DocumentBuilderFactory factory = DocumentBuilderFactory.newInstance();
  factory.setIgnoringComments(true);
  factory.setCoalescing(true); // Convert CDATA to Text nodes
  factory.setNamespaceAware(false); // No namespaces: this is default
  factory.setValidating(false); // Don't validate DTD: also default
  DocumentBuilder parser = factory.newDocumentBuilder();
  Log.e("rsport-", "function2");
  Document document = parser.parse("http://demo.greatinnovus.com/restingspot/search?userid=xxxxxxxxxxxxxxxx&firstname=a&lastname=a");
  Log.e("rsport-","function3"); 
   NodeList sections = document.getElementsByTagName("Searchdata"); 
     int numSections = sections.getLength();
       for (int i = 0; i < numSections; i++) 
     {
       Element section = (Element) sections.item(i); 
       if(section.hasChildNodes()==true){
           NodeList section1=section.getChildNodes();
              for(int j=0;j<section1.getLength();j++){
                if(section1.item(j).hasChildNodes()==true) {
                    for(int k=0;k<section1.item(j).getChildNodes().getLength();k++)                     
                                 xmlvalue=String.valueOf(section1.item(j).getChildNodes().item(k).getNodeValue()).trim();

                                 arl.add(xmlvalue);
                  }
              }
          }
        }

     }
       } 
   catch(Exception e){}
        System.out.println("id"+id+"       searchdatacount"+searchdatacount);
        System.out.println("---------");
        ListIterator<String> litr = arl.listIterator();
        while (litr.hasNext()) {
            String element = litr.next();
            Log.e("rsport-", "elememt");
        }

after the Log.e("rsport-", "function2"); does not work.

share|improve this question
1  
Does it throw an exception? What is the logcat output? –  Jim Blackler Apr 25 '11 at 13:23
1  
tell me what error you had got in your Logcat and which tag in your xml you want to parse –  Sankar Ganesh Apr 25 '11 at 13:24
    
it shows exception is InputSource needs either stream or reader logcat 04-25 19:01:22.443: ERROR/rsport(2177): {chap=hjdasgdas} 04-25 19:01:22.453: ERROR/listview(2177): android.widget.ListView@43621388 04-25 19:01:22.563: ERROR/rsport-(2177): function1 04-25 19:01:22.563: ERROR/rsport-(2177): function2 04-25 19:01:22.583: ERROR/rsport---(2177): InputSource needs either stream or reader –  M.A.Murali Apr 25 '11 at 13:32

1 Answer 1

up vote 0 down vote accepted

Refer my blog, i had gave Detailed explanation, http://sankarganesh-info-exchange.blogspot.com/2011/04/parsing-data-from-internet-and-creating.html, and make sure , that you had add the Internet permission in your Manifest file.

If you had gone through Myblog, then you will able to notice that you did the following line as wrong

 Document document = parser.parse("http://demo.greatinnovus.com/restingspot/search?userid=xxxxxxxxxxxxxxxx&firstname=a&lastname=a");

use like this

URL url =new URL("http://demo.greatinnovus.com/restingspot/search?userid=xxxxxxxxxxxxxxxx&firstname=a&lastname=a");
 Document document= parser.parse(new InputSource(url.openStream()));
share|improve this answer
    
hi sangar ganesh i got the following in Logcat: it shows exception is InputSource needs either stream or reader logcat 04-25 19:01:22.443: ERROR/rsport(2177): {chap=hjdasgdas} 04-25 19:01:22.453: ERROR/listview(2177): android.widget.ListView@43621388 04-25 19:01:22.563: ERROR/rsport-(2177): function1 04-25 19:01:22.563: ERROR/rsport-(2177): function2 04-25 19:01:22.583: ERROR/rsport---(2177): InputSource needs either stream or reader –  M.A.Murali Apr 25 '11 at 13:35
    
thanks shangar it works –  M.A.Murali Apr 25 '11 at 13:51

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.