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I am trying to login to a webside which needs 3 parameters in the post command. Token, usr_name and usr_password.

The token always has the following value "545616f1e29bc538843ec7aa908122b1e". I am getting this value by doing a HttpGet on the loginpage and store it as a string.

If i do a login through the url as follows https://www.xxxxx.com/xxxx/restricted/form/formelement=0123?usr_name=myuser&usr_password=mypass&token=545616f1e29bc538843ec7aa908122b1e the login succeeds.

How do i get a.m link build together and know afterwards that i successfully logged in? Thanks for any tips and helping me out.

My code:

try {
            String webPage = "https://xxxxxxxx.com/xx/Authenticationserv";
            String name = username; // user input through editbox
            String password1 = password; // user input through editbox

            String authString = name + ":" + password1 + ":" + token + "=" + value;
            System.out.println("auth string: " + authString);
            byte[] authEncBytes = Base64.encodeBytesToBytes(authString.getBytes());
            String authStringEnc = new String(authEncBytes);
            System.out.println("Base64 encoded auth string: " + authStringEnc);

            URL url = new URL(webPage);
            URLConnection urlConnection = url.openConnection();
            urlConnection.setRequestProperty("Authorization", "Basic " + authStringEnc);
            InputStream is = urlConnection.getInputStream();
            InputStreamReader isr = new InputStreamReader(is);

            int numCharsRead;
            char[] charArray = new char[1024];
            StringBuffer sb1 = new StringBuffer();
            while ((numCharsRead = isr.read(charArray)) > 0) {
                sb1.append(charArray, 0, numCharsRead);
            }
            String result = sb1.toString();

            System.out.println("/// BEGIN ///");
            System.out.println(result);
            System.out.println("/// END ///");
        } catch (MalformedURLException e) {
            e.printStackTrace();
        } catch (IOException e) {
            e.printStackTrace();
share|improve this question

Actually I think you need to use POST method to log in in your website.I had the same problem a few weeks ago and I've did this :

    HttpClient httpclient;
    HttpPost httppost;
    ArrayList<NameValuePair> postParameters;
    httpclient = new DefaultHttpClient();
    httppost = new HttpPost("your login link");


    postParameters = new ArrayList<NameValuePair>();
    postParameters.add(new BasicNameValuePair("username_hash", "fcd86e8cc9fc7596f102de7b2b922e80c6e6fac9"));
    postParameters.add(new BasicNameValuePair("password_hash", "b66936348bd0bd44fa44f5ca7dcceb909545e47f"));

    httppost.setEntity(new UrlEncodedFormEntity(postParameters));

    HttpResponse response = httpclient.execute(httppost);
    Log.w("Response ","Status line : "+ response.toString());

So you are setting up your post params with an ArrayList and you can get the responce from the server if you logged in via HttpResponse.And another thing : I'm setting up the username and password in the code,because it is just to how you the idea.If you have any questions feel free to ask.

Hope it helps!

share|improve this answer
    
Hi Android-Droid, Thank you for the answer but if do the login with your code, and pass incorrect username i still get response 200. So something is wrong. PS: i added a the 3rd parameter to the postparameter. – Lars Sep 25 '11 at 19:48
    
Sorry actually that's the status of response, that's why you are getting 200 as result. See my edited answer. – Android-Droid Sep 25 '11 at 20:00
    
Hi, No worries but somehow something is msissing in the headers. Through FireBug i can see that the requested headers are: - Host access.xxxx.com - User-Agent Mozilla/5.0 (Windows NT 6.1; rv:6.0.2) Gecko/20100101 Firefox/6.0.2 - Accept text/html,application/xhtml+xml,application/xml;q=0.9,/;q=0.8 - Accept-Language nl,en-us;q=0.7,en;q=0.3 - Accept-Encoding gzip, deflate - Accept-Charset ISO-8859-1,utf-8;q=0.7,*;q=0.7 - Connection keep-alive - Referer xxxx.com/prive/mysession/login.htm Any suggestions? I think i am getting close. Thx again for helping me. – Lars Sep 25 '11 at 20:32
    
Be sure that you use the right link for log in and sending the right log in params,or just update your code so I can help you more. – Android-Droid Sep 26 '11 at 6:03
    
Hi Android-Droid, I need your help, as i am getting no where, i am totally confused, is it possible to communicate via email? Thx – Lars Sep 28 '11 at 12:21

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