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I am trying to compare a string from EditText fields to strings in shared preferences. If the strings match a new activity starts. The string in Sharedpreferenced is encoded with Base64. I am trying to compare the edit text string to the sharedpreferences string after it has been decoded but am unable to get the coding correct. how can I code this properly. examples are appreciated. my comparator is on line 77 and 78

 44. public void onClick(View arg0) {
 45.    
 46.   sp=this.getSharedPreferences("AccessApp", MODE_WORLD_READABLE);
 47.  
 48.   
 49.   
 50.   
 51.   byte[] key = { 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 0, 1, 2, 3, 4, 5 };
 52.   
 53.   
 54.   try {
 55.    user = sp.getString("USERNAME_KEY", null);
 56.        String decryptedUser = decrypt(user, key);  
 57.        
 58.         
 59.   }
 60.  catch (Exception e) {
 61.   // TODO Auto-generated catch block
 62.   e.printStackTrace();
 63.  }   
 64.  try {
 65.       pass = sp.getString("PASSWORD_KEY", null);
 66.       String decryptedPass = decrypt(pass, key);  
 67.       
 68.        
 69.
 70. } catch (Exception e) {
 71.   // TODO Auto-generated catch block
 72.   e.printStackTrace();
 73. }
 74.  
 75.  if(lBttn.equals(arg0)){
 76.    
 77.     if((uname.getText().toString().equals(decryptedUser))  && 
 78.       (pword.getText().toString().equals(decryptedPass)))
 79.      
 80.           {
 81.         Toast.makeText(this, "You are Logged In", 20000).show();
 82.                
 83.              Intent intent;
 84.               intent=new Intent(this,details.class);
 85.               startActivity(intent);
 86.             flag=1;
 87.           }
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What about spicing your code with some Log.d() displaying where you are and what your strings actually are? Usuallz this helps ti understand what's going on –  Konstantin Pribluda Nov 29 '12 at 15:38
    
What is this statement "if(lBttn.equals(arg0))"? And what's the problem in your result? I think if condition is ok. Does it resturn false results? –  MysticMagic Nov 30 '12 at 6:00
    
refers to OnClick method. –  user1165694 Dec 3 '12 at 13:22
    
As well as anything else, please sort out your exception handling. Just dumping a stack trace and then continuing as if everything is fine is almost never the right thing to do. –  Jon Skeet Dec 4 '12 at 13:39

1 Answer 1

up vote 8 down vote accepted
+50

There are 2 copies of decryptedUser and decryptedPass each. One pair inside the try blocks and another pair as members. They are always empty at line 77 because you assign the decrypted values to different variables(lines 56 and 66) that u never use. Move the whole code into a single try block.

public void onClick(View arg0) {
    ...
    ...
    String decryptedUser;
    String decryptedPass;
    try {
        user = sp.getString("USERNAME_KEY", null);
        decryptedUser = decrypt(user, key);  
        pass = sp.getString("PASSWORD_KEY", null);
        decryptedPass = decrypt(pass, key);
        /* Your if statements follow from here */
        ...
    } catch (Exception e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    }   

}
share|improve this answer
    
Thanks for pointing that out. cant believe I overlooked that. simply amazing. –  user1165694 Dec 3 '12 at 16:20

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