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The following snippet tries to connect to a url. The url also sends a parameter named FileNames. But when I run this snippet, I always get a HTTP Version Not Supported reply. What could be the reason for it ?

            try {
              URL url = new URL(AddressInformation.clientAddressToSendFileNames + URLEncoder.encode(list.toString(), "UTF-8")); // STATEMENT-1
              HttpURLConnection connection = (HttpURLConnection) url.openConnection();

              if(connection.getResponseCode() == 200) {
                // File names sent to the client that requested it
                System.out.println("File names sent");
              } else {
                 // Error : While trying to send the file names
                 System.out.println("Unable to send file names");
                 System.out.println("RESPONSE CODE ------->>>>" + connection.getResponseMessage());
               }
            } catch(Exception exc) {
               exc.printStackTrace();
              }

In the STATEMENT-1, AddressInformation.clientAddressToSendFileNames corresponds to

http://localhost:8084/D Nappster/ReceiveFileNames?FileNames=.

I am running Tomcat 7.

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What is the full response sent by the other end? –  fge Jan 12 '13 at 9:41
    
@fge I didn't understand you –  saplingPro Jan 12 '13 at 9:41
2  
URL could be the problem.Try encoding all.You notice the space between D and Nappster in the URL –  Suhail Gupta Jan 12 '13 at 9:43
    
Try encoding the space to %20 –  Jan Dvorak Jan 12 '13 at 9:47
    
try http://localhost:8084/D%20Nappster/ReceiveFileNames?FileNames= –  sadaf2605 Jan 12 '13 at 9:51

1 Answer 1

up vote 1 down vote accepted

It appears your URL is invalid (it contains a space in it), but the URL constructor does not detect that.

You can, instead, use the constructor for URI which will correctly encode things for you without you having to worry and then turn it into a URL:

URI uri = new URI("http", null, "thehost", theport, "thepath", "thequery", null);
URL url = uri.toURL();

Of course, that would require changing your AddressInformation.

See the Javadoc for more details.

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Is this URI correct : URI uri = new URI("http",null,"localhost",8084,AddressInformation.clientAddressToSendFileNames‌​,"FileNames="+list.toString(),null) ? –  saplingPro Jan 12 '13 at 10:28
    
where FileNames=foo is a query string –  saplingPro Jan 12 '13 at 10:29
    
and the string AddressInformation.clientAddressToSendFileNames‌​ corresponds to D Nappster/ReceiveFileNames –  saplingPro Jan 12 '13 at 10:31
    
If your list is actually a List, this will not do it since .toString() will not output the format expected in a query string. You need to have a utility function which builds the correct query string for you (with no need to escape anything since, again, URI does that for you. Also, you need to prepend a / before AddressInformation.clientAddressToSendFileNames. –  fge Jan 12 '13 at 10:34
1  
@saplingPro Everything you presented in the snapshot seems to be correct except the space between D and Nappster ! I noticed in the above comments that even D%20Nappster returns you Not Found code. And the automatic encoding as suggested by this answer will put %20 between D and Nappster. Run this application in your browser. How does the browser display the URL ? And try that URL –  Suhail Gupta Jan 12 '13 at 11:10

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