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I have an EditText where the user types an Hexadecimal number and I want to convert it into a decimal number and show it on a TextView, but I can't even show the hexadecimal number on the TextView because of an exception: "unable to parse 'String' as integer. I only can show numbers on the TextView. when I type characters it throws the exception.

Here is a piece of the code:

EditText edText1 = (EditText) findViewById(R.id.editText1);
TextView result = (TextView) findViewById(R.id.textView1);
result.setText(""+ Integer.parseInt(edText1.getText().toString(), 16));
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so what is the text that you are trying to parse? –  John3136 Jun 27 '13 at 3:43
    
content of edText1 may contain letters because hexadecimal can contain letter and you cant convert letters to integer –  user1525382 Jun 27 '13 at 3:56
    
the text is already set in the edText1 (keyboard input) and it contains numbers and characters from a to f –  tallito Jun 27 '13 at 19:08

1 Answer 1

It seems to me like you are getting an error because of the initial case of the edText1.getText(). When the textfield is empty it still stores a value - "". "" is still a String and still has contents, yet it is not an integer. So, when you're doing Integer.parseInt() on it it's doing somthing like below:

result.setText("" + Integer.parseInt("", 16));

"" is clearly not an integer or hexadecimal, yet it is still a String so it's having a problem formatting that, then throwing the error.

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Ok, I didn't say that when I put result.setText(""+ Integer.parseInt(edText1.getText().toString(), 16)); the edText1 already contains some text the user inputs, e.g. "10AE" When I put some string instead of edText1.getText().toString() the app works! For example, if I put: result.setText(""+ "10e", 16)); the result TextView shows '270' and it's ok. Help please! –  tallito Jun 27 '13 at 18:21

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