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I'm trying to make a log in activity for my android app by connecting to the php server and matching the username password from database which is stored in the server. I retrieve statement 1 if the user is donor and 0 if the user is hospital. But in the following code the if statement always follow the else part even though the result is o.

here is my log in class

          login_hos.setOnClickListener(new OnClickListener() {

        public void onClick(View v) {

            String   mUsername = username.getText().toString();
            String  mPassword = password.getText().toString();

            tryLogin(mUsername, mPassword);
            try {
                if (!response.equals("Login Error !")&&(!response.equals("Connection Error !"))){
                    String arr[]=response.split(",");
                    String type=arr[1];
                    type.trim();
          // String usr="donor";


        if (type.equals("0")) {
                            Log.v("type", type);
                            Intent intent = new Intent(
                                    getApplicationContext(),
                                    HospitalHome.class);
                            intent.putExtra("user_name", arr[0]);
                            startActivity(intent);
                        }
                        else{
                            Log.v("type", type);
                            Intent intent = new Intent(getApplicationContext(),
                                    DonorHome.class);
                            intent.putExtra("user_name", arr[0]);
                            startActivity(intent);
                        }






                }
            } catch (Exception e) {
                // TODO Auto-generated catch block
                e.printStackTrace();
            }

        }
    });
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4  
when you debug the application what is the value of "type" (at the if???) –  David M Nov 8 '12 at 12:27
    
at log cat :- type = 0 –  Chinthyfy Nov 8 '12 at 12:35
    
you sure it's 0 (the number zero) vs "O" (the letter 'O')? (i'm just guessing here) –  David M Nov 8 '12 at 12:38
    
Show the code where response is assigned? –  Geobits Nov 8 '12 at 12:42
2  
String is immutable, you have type.trim(); where you should have type = type.trim(). perhaps you have some extra whitespace. –  David M Nov 8 '12 at 12:48
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1 Answer 1

Try logging your type BEFORE the if-statement. To actually see what the type is.

As in :

 Log.i("Type", type);
 if (type.equals("0")) {
                        Log.v("type", type);
                        Intent intent = new Intent(
                                getApplicationContext(),
                                HospitalHome.class);
                        intent.putExtra("user_name", arr[0]);
                        startActivity(intent);
                    }

Also when logging it's a good practice to create a final String TAG = "myActivity"; as a class attribute and then adding that TAG in this way : Log.i(TAG, "thingIwanttolog");

share|improve this answer
    
either the value of type=1 or 0 it always directs to the DonorHome.class ! that's the problem.. –  Chinthyfy Nov 8 '12 at 12:45
    
Check in logcat what Log.v("type", type); logs. Also make sure you (as David M said) set the result of type.trim() back in type. As in type = type.trim(); –  Arcshade Nov 8 '12 at 13:23
    
ya! it's now working with replacement of type=type.trim(); –  Chinthyfy Nov 8 '12 at 14:28
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