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I've tried this snippet, but it doesn't work

try 
    {
    Integer.parseInt(enteredID.getText().toString());
    Log.i("enteredID value", "enterdID is numeric!!!!!!!!!!!^^^");
    flag=1;
} catch (NumberFormatException e) {
    flag=-1;
    Log.i("enteredID value", "enterdID isn't numeric!!!!!!!!!!!^^^");
}

take care that it can accept either username or id to check the value, I don't want it to accept only numbers!!

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5 Answers 5

Use this expression for validate number only

String regexStr = "^[0-9]*$";

if(et_number.getText().toString().trim().matches(regexStr))
{
    //write code here for success
}
else{
    // write code for failure
}
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Works excellent.Thanks. –  Sash_KP Feb 1 '14 at 20:37

set EditText proprerty inputType = number it will always take numbers as input

android:inputType="number"
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thnx,but i wrote a note that i want the user to enter both number and characters,for each different piece of code to be executed –  jaradat Jul 25 '13 at 9:03

Try with regular expression :

if (enteredID.getText().toString().matches("-?\\d+(\\.\\d+)?"))  {
     Log.i("enteredID value", "enterdID is numeric!!!!!!!!!!!^^^");
     flag=1;
 } else {
     flag=-1;
     Log.i("enteredID value", "enterdID isn't numeric!!!!!!!!!!!^^^");
 }
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You should never use an exception in this way really. When you expect an exception to be thrown like this you should find an alternative way of handling it.

Try using: http://developer.android.com/reference/android/widget/TextView.html#setRawInputType%28int%29

Something like this should do it:

editText.setInputType(InputType.TYPE_CLASS_NUMBER | InputType.TYPE_NUMBER_FLAG_DECIMAL | InputType.TYPE_NUMBER_FLAG_SIGNED);
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Perhaps something like this:

    String text = enteredID.getText().toString();

    if(text.matches("\\w+")){
      //--words--
    }else if (text.matches("\\d+")){
      //--numeric--
    }else {
      //-- something else --
    }

You can change the regex to match complex formats.

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