Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm getting the net.rim.device.api.io.ConnectionClosedException from my java code for Blackberry. Highlighted in below code is the line where Exception is raised.

hc = (HttpConnection) Connector.open(url);  

        hc.setRequestProperty("Content-Type", "multipart/form-data; boundary=" + getBoundaryString());

        hc.setRequestMethod(HttpConnection.POST);           

        hc.setRequestProperty(HttpProtocolConstants.HEADER_ACCEPT_CHARSET,
                "ISO-8859-1,utf-8;q=0.7,*;q=0.7");

        hc.setRequestProperty(HttpProtocolConstants.HEADER_CONTENT_LENGTH ,Integer.toString(fileBytes.length));

        OutputStream dout = hc.openOutputStream();

        dout.write(boundaryMessage.getBytes());
        dout.write(this.postBytes);
        dout.write(endBoundary.getBytes());             

        dout.close();

        int ch;     

        **is = hc.openInputStream();** //exception raised here

        if(hc.getResponseCode()== HttpConnection.HTTP_OK)
        {                       
            while ((ch = is.read()) != -1)
            {
                bos.write(ch);
            }
            res = bos.toByteArray();
            System.out.println("res loaded..");             
        }
        else {              
            System.out.println("Unexpected response code: " + hc.getResponseCode());            
            hc.close();
            return null;
        }             
    }
    catch(IOException e)
    {           
        System.out.println("====IOException : "+e.getMessage()+" Class: "+e.getClass());                
    }
    catch(Exception e1)
        {
            //e1.printStackTrace();                 
            System.out.println("====Exception : "+e1.getMessage()+" Class: "+e1.getClass());    
        }
    finally
    {
        try
        {
            if(bos != null)
                bos.close();

            if(is != null)
                is.close();

            if(hc != null)
                hc.close();
        }
        catch(Exception e2)
        {
            e2.printStackTrace();               
            System.out.println("====Exception : "+e2.getMessage()); 
        }
    }

What should I do to correct this? Can anybody help? Thanks in advance.

share|improve this question
    
do not call dout.close(); neither close any connections until you have done all things with this connection. If you want to flush your stream, invoke dout.flush(), but do not close it. –  Rafael Osipov Jan 22 '13 at 13:18
    
dout.close() does not close the connection, only the output stream. The flush() call could be useful. Another thing to try (I'm comparing it to my code) is getting the HTTP response code before opening the input stream. If it doesn't work, then it probably depends on something else. I see you are using a multipart request, are you sure the boundary strings are all Ok? –  G B Jan 22 '13 at 13:24
    
Thanks G B for you response. Yes,my boundary strings are OK. –  nikita sharma Jan 23 '13 at 5:25
    
Just to tell you,what I feel annoying about is that I have run this code several times when I had to upload other audio/text files. So this code should also work, but its not working here. The only thing I changed is dout.write(boundaryMessage.getBytes()); dout.write(this.postBytes); dout.write(endBoundary.getBytes()); When I had only one dout.write(postbytes) previously, where <postbytes> was the whole chunk of bytes I had to write. Because of memory issues with ByteArrayOutputStream I had to edit my code. Can this be the problem..Writing 3 times on dout ? –  nikita sharma Jan 23 '13 at 5:25
    
I tried to put hc.OpenInputStream() after hc.getResponseCode() but it still doesn't work. Can you help me again please? –  nikita sharma Jan 23 '13 at 6:04
add comment

Know someone who can answer? Share a link to this question via email, Google+, Twitter, or Facebook.

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.