Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm developing an online form in which user-entered Medicare numbers will need to be validated.

(My specific problem concerns Australian Medicare numbers, but I'm happy for answers regarding American ones too. This question is about Medicare numbers in general.)

So how should I do it?

(It would be good to have the answer in Javascript or a regex.)

share|improve this question
up vote 11 down vote accepted

The regex supplied by Jeffrey Kemp (March 11) would help to validate the allowed characters, but the check algorithm below should be enough to validate that the number conforms to Medicare's rules.

The Medicare card number comprises:

  • Eight digits;
  • A check digit (one digit); and
  • An issue number (one digit).

Note: the first digit of the Medicare card number should be in the range 2 to 6.

Medicare card number check digit calculation

  1. Calculate the sum of: ((digit 1) + (digit 2 * 3) + (digit 3 * 7) + (digit 4 * 9) + (digit 5) + (digit 6 * 3) + (digit 7 * 7) + (digit 8 * 9))

where digit 1 is the highest place value digit of the Medicare card number and digit 8 is the lowest place value digit of the Medicare card number.

Example: for Medicare card number '2123 45670 1', digit 1 is 2 and digit 8 is 7.

  1. Divide the calculated sum by 10.
  2. The check digit is the remainder.

Example: For Medicare card number 2123 4567.

  1. (2) + (1 * 3) + (2 * 7) + (3 * 9) + (4) + (5 * 3) + (6 * 7) + (7 * 9) = 170
  2. Divide 170 by 10. The remainder is 0.
  3. The check digit for this Medicare number is 0.

Source: "Use of Healthcare Identifiers in Health Software Systems - Software Conformance Requirements, Version 1.4", NEHTA, 3/05/2011

share|improve this answer
    
+1 very nice - I'm going to try this out myself. – Jeffrey Kemp Apr 5 '13 at 5:19
    
I've just run this on 88 records in my database. Of these, most passed. 5 failed the "first digit" test, and a further 7 failed the check digit test. Not a bad result IMO :) – Jeffrey Kemp Apr 5 '13 at 5:37
1  
Another good resource describing the Medicare number format: clearwater.com.au/code/medicare with some Javascript too. – Prembo Jan 25 '14 at 6:05

My Australian Medicare number is 11 numeric digits and includes no letters or other characters.

It is formatted in groups, and the last digit varies according to the member of my family, e.g.:

  • Me: 5101 20591 8-1
  • My wife: 5101 20591 8-2
  • My first child: 5101 20591 8-3

I've seen medicare numbers formatted without the spaces and the dash, but the meaning is the same, so I'd expect to accept 51012059181 as a valid Medicare number as well.

I've also seen context where the last digit is not required or not supposed to be entered; e.g. 5101205918, I guess where they're only interested in the family as a whole.

Therefore, I think this may be appropriate:

^\d{4}[ ]?\d{5}[ ]?\d{1}[- ]?\d?$

EDIT

Based on the logic in user2247167's answer, I've used the following PL/SQL function in my Apex application to give a user-friendly warning to the user:

FUNCTION validate_medicare_no (i_medicare_no IN VARCHAR2)
  RETURN VARCHAR2 IS
  v_digit1 CHAR(1);
  v_digit2 CHAR(1);
  v_digit3 CHAR(1);
  v_digit4 CHAR(1);
  v_digit5 CHAR(1);
  v_digit6 CHAR(1);
  v_digit7 CHAR(1);
  v_digit8 CHAR(1);
  v_check  CHAR(1);
  v_result NUMBER;
BEGIN
  IF NOT REGEXP_LIKE(i_medicare_no, '^\d{10}\d?{2}$') THEN
    RETURN 'Must be 10-12 digits, no spaces or other characters';
  ELSE
    v_digit1 := SUBSTR(i_medicare_no, 1, 1);
    IF v_digit1 NOT IN ('2','3','4','5','6') THEN
      RETURN 'Not a valid Medicare number - please check and re-enter';
    ELSE
      v_digit2 := SUBSTR(i_medicare_no, 2, 1);
      v_digit3 := SUBSTR(i_medicare_no, 3, 1);
      v_digit4 := SUBSTR(i_medicare_no, 4, 1);
      v_digit5 := SUBSTR(i_medicare_no, 5, 1);
      v_digit6 := SUBSTR(i_medicare_no, 6, 1);
      v_digit7 := SUBSTR(i_medicare_no, 7, 1);
      v_digit8 := SUBSTR(i_medicare_no, 8, 1);
      v_check  := SUBSTR(i_medicare_no, 9, 1);
      v_result := mod(   to_number(v_digit1)
                      + (to_number(v_digit2) * 3)
                      + (to_number(v_digit3) * 7)
                      + (to_number(v_digit4) * 9)
                      +  to_number(v_digit5)
                      + (to_number(v_digit6) * 3)
                      + (to_number(v_digit7) * 7)
                      + (to_number(v_digit8) * 9)
                     ,10);
      IF TO_NUMBER(v_check) != v_result THEN
        RETURN 'Not a valid Medicare number - please check and re-enter';
      END IF;
    END IF;
  END IF;
  -- no error
  RETURN NULL;
END validate_medicare_no;
share|improve this answer
1  
You could further refine the regex to handle the 1st digit check with the regex: ^[2-6]\d{3}[ ]?\d{5}[ ]?\d{1}[- ]?\d?$ – Prembo Jan 25 '14 at 6:11

Added Swift version

class func isMedicareValid(input : String, validateWithIrn : Bool) -> Bool {
    let multipliers = [1, 3, 7, 9, 1, 3, 7, 9]

    let pattern = "^(\\d{8})(\\d)"
    let medicareNumber = input.removeWhitespace()
    let length = validateWithIrn ? 11 : 10

    if medicareNumber.characters.count != length {return false}

    let expression = try! NSRegularExpression(pattern: pattern, options: NSRegularExpressionOptions.CaseInsensitive)

    let matches = expression.matchesInString(medicareNumber, options: NSMatchingOptions.ReportProgress, range: NSMakeRange(0, length))

    if (matches.count > 0 && matches[0].numberOfRanges > 2) {
        let base = medicareNumber.substringWithRange(medicareNumber.startIndex...medicareNumber.startIndex.advancedBy(matches[0].rangeAtIndex(1).length))
        let checkDigitStartIndex = medicareNumber.startIndex.advancedBy(matches[0].rangeAtIndex(2).location )
        let checkDigitEndIndex = checkDigitStartIndex.advancedBy(matches[0].rangeAtIndex(2).length)
        let checkDigit = medicareNumber.substringWithRange(checkDigitStartIndex..<checkDigitEndIndex)
        var total = 0

        for i in 0..<multipliers.count {
            total += Int(base.charAtIndex(i))! * multipliers[i]
        }

         return (total % 10) == Int(checkDigit)
    }
    return false
}

I use some String extensions as well to simplify some operations.

extension String {

func charAtIndex (index: Int) -> String{
    var character = ""
    if (index < self.characters.count){
        let locationStart = self.startIndex.advancedBy(index)
        let locationEnd = self.startIndex.advancedBy(index + 1 )
        character = self.substringWithRange(locationStart..<locationEnd)
    }
    return character
}

func replace(string:String, replacement:String) -> String {
    return self.stringByReplacingOccurrencesOfString(string, withString: replacement, options: NSStringCompareOptions.LiteralSearch, range: nil)
}

func removeWhitespace() -> String {
    return self.replace(" ", replacement: "")
}
}
share|improve this answer

Added Java Version

public static boolean isMedicareValid(String input, boolean validateWithIRN){
    int[] multipliers = new int[]{1, 3, 7, 9, 1, 3, 7, 9};
    String pattern = "^(\\d{8})(\\d)";
    String medicareNumber = input.replace(" " , "");
    int length = validateWithIRN ? 11 : 10;

    if (medicareNumber.length() != length) {return false;}

    Pattern medicatePattern = Pattern.compile(pattern);
    Matcher matcher = medicatePattern.matcher(medicareNumber);

    if (matcher.find()){

        String base = matcher.group(1);
        String checkDigit = matcher.group(2);

        int total = 0;
        for (int i = 0; i < multipliers.length; i++){
            total += base.charAt(i) * multipliers[i];
        }

        return ((total % 10) == Integer.parseInt(checkDigit));
    }

    return false;

}
share|improve this answer

I found a forum discussion on the topic:

http://regexadvice.com/forums/thread/57337.aspx

I'm going to try the one 'Aussie Susan' came up with:

^\d{9}B[ADGHJKLNPQRTWY1-9,]?$
share|improve this answer
1  
She may call herself "Aussie Susan", but that doesn't mean she's talking about Australian Medicare numbers. The regex here certainly doesn't match my Medicare number, and I'm an actual real Aussie :) – Jeffrey Kemp Mar 11 '13 at 13:11

Adapted to JavaScript:

var validator = function (input, validateWithIrn) {
    if (!input) {
        return false;
    }

    var medicareNumber;
    var pattern;
    var length;
    var matches;
    var base;
    var checkDigit;
    var total;
    var multipliers;
    var isValid;

    pattern = /^(\d{8})(\d)/;
    medicareNumber = input.toString().replace(/ /g, '');
    length = validateWithIrn ? 11 : 10;

    if (medicareNumber.length === length) {
        matches = pattern.exec(medicareNumber);
        if (matches) {
            base = matches[1];
            checkDigit = matches[2];
            total = 0;
            multipliers = [1, 3, 7, 9, 1, 3, 7, 9];

            for (var i = 0; i < multipliers.length; i++) {
                total += base[i] * multipliers[i];
            }

            isValid = (total % 10) === Number(checkDigit);
        } else {
            isValid = false;
        }
    } else {
        isValid = false;
    }

    return isValid;
};
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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