2

I need my code to return true if the parameter is the String representation of an integer between 0 and 255 (including 0 and 255), false otherwise.

For example: Strings "0", "1", "2" .... "254", "255" are valid.

Padded Strings (such as "00000000153") are also valid.

isDigit apparently would also work but i was wondering if this would be more beneficial and/or this would even work with Padded Strings?

public static boolean isValidElement(String token) {
    int foo = Integer.parseInt("token");
    if(foo >= 0 && foo <= 255)
        return true;
    else 
        return false;
    }
2
  • Your code is not working ?
    – passion
    Sep 7, 2016 at 1:55
  • 2
    JavaScript and Java are two completely different languages. Sep 7, 2016 at 1:55

4 Answers 4

3

isDigit would not work, because it takes a character as input, and returns true if it is a digit from 0 to 9. [Reference : isDigit javadoc]

Since in your case you need to test string representations of all numbers from 0 to 255 hence you must use parseInt.

Additionally also check if the token passed is a valid number by catching NumberFormatException and returning false in case it is not a valid integer.

public static boolean isValidElement(String token) {
    try{
        int foo = Integer.parseInt(token);
        if(foo >= 0 && foo <= 255)
            return true;
        else 
            return false;
    } catch (NumberFormatException ex) {
        return false;
    }
}
2
  • What does the catch and ex mean in "catch (NumberFormatException ex)" ? and why do you open with try ?
    – S.Strachan
    Sep 7, 2016 at 7:43
  • try and catch are Java keywords. parseInt will throw NumberFormatException if it is supplied with input that cannot be parsed as an integer (for example Integer.parseInt("randomText")). try-catch is a syntax to catch that exception and do the correct thing, i.e., return false since input is not valid element (not representation of number between 0 to 255). You can read more about try-catch in java official tutorial Sep 7, 2016 at 7:51
0

You could use regex:

return token.matches("1?\\d{1,2}|2[0-4]\\d|25[0-5]");
0

So Integer.parseInt will throw a NumberFormatException if the string is not a valid number, just something to keep in mind.

I would use NumberUtils.isDigit() from commons-math3 library to check, then use Integer.valueOf which is an efficient number parser.

if (NumberUtils.isDigit(token)) {
    int foo = Integer.valueOf(token);
    return (foo >=0 && foo <=255);
}
0

Integer.parseInt throws a NumberFormatException if the conversion is not possible. Having that in mind you can use this code snippet. No additional dependencies are needed.

public static boolean isValidElement(String token) {
    try {
        int value = Integer.parseInt(token);
        return value >= 0 && value <= 255;
    } catch(NumberFormatException e) {
        return false;
    }
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.