I am creating a batch program that reads an external input file that contains

credit card numbers and then sums the digits(from right to left), starting at the

last digit and skipping every other digit. I have to treat the input as a String and not

numeric. My code looks like:

          int oddSum = 0, digit = 0;
            for(int odd = (cardNumber.length() - 1); odd >= 0; odd = odd - 2)
            {
                digit = Integer.parseInt(cardNumber);
                oddSum += digit;
            }

But String cardNumber is the whole String, while I just need the single digit. Say:

            cardNumber = "4388576018402626";

How can I get, let's say "6", turned into an integer?

You don't even need to parse anything if you only need to treat one digit at a time :

String cardNumber = "4388576018402626";
int d = cardNumber.charAt(0) - '0';  // = 4

But if you insist on using Integer.parseInt(), use the String.substring(begin, end) method :

int d = Integer.parseInt(cardNumber.substring(0, 1));  // = 4

** UPDATE **

Or perhaps this even better solution :

char[] chars = cardNumber.toCharArray();
int oddSum = 0, digit = 0, len = chars.length - 1;
for(int odd = len; odd >= 0; odd -= 2)
{
    if (Character.isDigit(chars[odd])) {
       digit = Character.getNumericValue(chars[odd]);
       oddSum += digit;
    } //else {
      // do something... throw an exception, whatever here 
    //}
}
  • 1
    There is some value to sticking with parseInt. If cardNumber happens to contain something besides decimal digits, parseInt will throw an exception, while the above character encoding hack will just silently produce junk. – rlibby Mar 5 '11 at 3:45
  • 1
    @rlibby, I'm not too fund of using try..catch blocks in simple validation if possible. For example, using charAt(i) - '0' should produce a value between 0 and 9; any other value should be considered as an invalid input character. No need to throw an exception for that. Plus, the charAt() method is faster than using substring() and parseInt() ... or worst! using pasreInt(Stirng.valueOf(char)) !! – Yanick Rochon Mar 5 '11 at 3:47
  • @Yanick Rochon, the exception parseInt throws in unchecked (java.lang.NumberFormatException), and, yes, there is a speed-safety trade off. – rlibby Mar 5 '11 at 3:53
  • @rlibby, I still don't see any benefit in Integer.parseInt() (see update) – Yanick Rochon Mar 5 '11 at 3:59
  • @Yanick Rochon, your update still just fails silently. If cardNumber is "juicy mangoes" then your update yields 0 for oddSum. This is fine if you have already validated the input, but obviously bogus if not. On the other hand you could just let parseInt do the validating. – rlibby Mar 5 '11 at 4:05

How can I get, let's say "6", turned into an integer?

Integer.parseInt("6");

But String cardNumber is the whole String, while I just need the single digit.

So then just get a single digit:

String cardNumber = "4388576018402626";
String digit = cardNumber.substring(i, i + 1);

You should iterate through the string as if it were an array of individual characters; use cardNumber.toCharArray().

int oddSum = 0, digit = 0;
char[] cardNumberDigits = cardNumber.toCharArray();
for(int odd = cardNumberDigits.length - 1; odd >= 0; odd = odd - 2) {
    digit = Integer.parseInt(String.valueOf(cardNumberDigits[odd]));
    oddSum += digit;
}
  • But then how do I get the char from the array turned into an integer? – tscudder16 Mar 5 '11 at 3:41
  • Use String.valueOf or Character.toString to convert the char to a String and then use Integer.parseInt. The key is to make your code read cleanly. – ide Mar 5 '11 at 3:45

The charAt() accessor method allows you to get a single character at an index.

You need to grab a substring of cardNumber

String cardNumber = "4388576018402626";
int start = cardNumber.length()-2;
int end = cardNumber.length()-1;
String subString = cardNumber.substring(start, end);
int numberSix = Integer.parseInt(subString);

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