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I am encountering problems when comparing input integer from EditText. I cant find what is wrong with it. Please help me. Here is the code below.

    protected void onCreate(Bundle savedInstanceState) {
        // TODO Auto-generated method stub
        super.onCreate(savedInstanceState);
        setContentView(R.layout.problem2);
        textIn = (EditText) findViewById(R.id.probText);
        Button ans3 = (Button) findViewById(R.id.answer3);



        ans3.setOnClickListener(new View.OnClickListener() {

            public void onClick(View v) {
                // TODO Auto-generated method stub
                String probString = textIn.getText().toString();
                Integer probInt = Integer.parseInt(probString);
                Integer prob = 31;
                if (probInt.equals(prob)) {
                    Toast toast = Toast.makeText(answer3.this,"CORRECT!",Toast.LENGTH_SHORT);
                    toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
                    toast.show();
                    startActivity(new Intent("com.sample.androidsample.ANSWER4")    );

                } else {
                    Toast toast = Toast.makeText(answer3.this,"Wrong answer! Try again.",Toast.LENGTH_SHORT);
                    toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
                    toast.show();
                }
            }
        });
}
share|improve this question
    
Have you tried (probInt == prob) ? – Law Gimenez Aug 16 '12 at 0:48
    
can yo put Log.i("@@@", probString); after String probString = textIn.getText().toString(); and check what is the output in logcat? – Hesam Aug 16 '12 at 0:49
    
tried (probInt == prob) it always returns the else statements – marcc abaya Aug 16 '12 at 0:51
    
Always sanitize your input, using a Pattern to weed out bad inputs first, then knowing that the Pattern matched, then it can be safely parsed as an Integer. – t0mm13b Aug 16 '12 at 1:18
    
Try trimming it. String probString = textIn.getText().toString().trim(); – Law Gimenez Aug 16 '12 at 1:37

Try this:

Integer probInt = Integer.parseInt(probString);
            Integer prob = 31;
            //changed from equals() to ==
            if (probInt == prob)) {
                Toast toast = Toast.makeText(answer3.this,"CORRECT!",Toast.LENGTH_SHORT);
                toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
                toast.show();
                startActivity(new Intent("com.sample.androidsample.ANSWER4")    );

            } else {
                Toast toast = Toast.makeText(answer3.this,"Wrong answer! Try again.",Toast.LENGTH_SHORT);
                toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
                toast.show();
            }

From what I understand equals is for strings.

share|improve this answer

Instead of Integer probInt = Integer.parseInt(probString); you can use Integer probInt = Integer.valueOf(probString); but i'm not sure this is the problem. and also instead of probInt.equals(prob) you can use probInt.equalIgnoreCase(prob).

share|improve this answer
    
already tried it. still same problem. im wondering why is it not comparing right.. – marcc abaya Aug 16 '12 at 0:54
    
I think you need to see what is the content of probInt in logcat. – Hesam Aug 16 '12 at 0:56

I think this is the wrong line.

Integer prob = 31;

Here Integer is a class, so you will have to instantiate it like below.

Integer prob = new Integer(31);

or you could just use

int prob =31;
share|improve this answer

instead of

 Integer probInt = Integer.parseInt(probString);
 Integer prob = 31;
 if (probInt.equals(prob)) {
 } else {
 }

use

int probInt = (int) Integer.parseInt(probString);
int prob = 31;
if (probInt == prob) {
} else {
}
share|improve this answer

Here's an example of sanitizing the input. Exception handling omitted for brevity.

private Pattern patternNum = Pattern.compile("^(\\d{1,5})$", 
                               Pattern.CASE_INSENSITIVE | Pattern.UNICODE_CASE);

// Wrap it in a try/catch for PatternSyntaxException!
private boolean validateNum(String inputNum){
    return patternNum.matcher(inputNum);
}

Then assuming the validateNum routine returns true, meaning it matches at least 5 digits, then saying this:

if (validateNum(probString)){
   int probInt = Integer.parseInt(probString);
   if (probInt == prob){
      // Success
   }else{
      // Failure
   }
}else{
   // Whoops! Bad input caught!
}
share|improve this answer
    
already tried it. input is correct but mismatch comparison. always returns the failure – marcc abaya Aug 16 '12 at 1:46
    
@marcc abaya: failure in what? be more specific? – t0mm13b Aug 16 '12 at 12:24

Try this thing, It Will Work

Integer probInt = Integer.parseInt(probString);
        Integer prob = 31;
        //changed from equals() to ==
        if (probInt.intValue() == prob.intValue()) {
            Toast toast = Toast.makeText(answer3.this,"CORRECT!",Toast.LENGTH_SHORT);
            toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
            toast.show();
            startActivity(new Intent("com.sample.androidsample.ANSWER4")    );

        } else {
            Toast toast = Toast.makeText(answer3.this,"Wrong answer! Try again.",Toast.LENGTH_SHORT);
            toast.setGravity(Gravity.CENTER_VERTICAL, 0, 0);
            toast.show();
        }
share|improve this answer
1  
same result. return the wrong syntax – marcc abaya Aug 16 '12 at 1:47
    
if (probInt.intValue() == prob.intValue())) {... – Art Aug 16 '12 at 2:08
    
yeah now try it, i missed a ) – Art Aug 16 '12 at 2:19

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