Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I need code or pointer for performing digit-wise addition. For example:

59 + 11 = 60
55 + 11 = 66
99 + 11 = 00

Basically, I want to ignore carry when 9 + 1. So 9 + 1 should return 0 and not 10, and for any other digit it should return actual sum (i.e 5 + 1 = 6).

share|improve this question
1  
can you be a bit more precise about the rule? –  PengOne Oct 21 '11 at 3:29
1  
I think he wants to rotate each digit individually through sequence [0-9]. –  Amadan Oct 21 '11 at 3:32
    
21+11 = 32, 22+11 = 33, 29+11 = 30, 99+11=00 .... I will be always adding with 11, and largest number can be 99. –  Arjun Patel Oct 21 '11 at 3:36
3  
If this is homework, please add the homework tag. –  ObscureRobot Oct 21 '11 at 3:37
    
It would be helpful if you told us the language. I don't want to code in Golfscript or Brainf***, and then realize you want it in Whitespace. –  Mateen Ulhaq Oct 21 '11 at 4:24

6 Answers 6

up vote 2 down vote accepted

If you want to increment the digits individually

f(x) = (x/10 + 1) % 10 * 10 + (x % 10 + 1) % 10

(Where % is the mod operator - it returns the remainder after division)

share|improve this answer
    
Hello, ObscureRobot, not it not typo. This is what I want. f(59) = 60 f(55) = 66 f(99) = 00 –  Arjun Patel Oct 21 '11 at 3:38
    
only works for 2 digit numbers –  PengOne Oct 21 '11 at 3:54
    
@PengOne yes, but it isn't clear that the asker needs more than two digits. –  ObscureRobot Oct 21 '11 at 4:05
    
so much is unclear in that question! good solution for the 2 digit case –  PengOne Oct 21 '11 at 4:14

Use int digits = log10(x) to get the number of digits, then extract each digit x, replace with x + 1 % 10 and then put them back together, something like this:

int number = N;         // STARTS AS THE ORIGINAL NUMBER
int answer = 0;         // WILL BE THE NEXT NUMBER
int power = 1;          // KEEPS TRACK OF POSITION
int digits = log10(x);  // TOTAL NUMBER OF DIGITS

for (int d=0; d<digits; ++d) {
    int x = (number + 1) % 10; // GET NEXT DIGIT, INCREMENT IT
    answer += x*power;         // ADD TO ANSWER IN CORRECT POSITION
    number = (number-x)/10;    // REMOVE DIGIT FROM NUMBER
    power *= 10;               // INCREMENT POSITION
}
share|improve this answer

To do this you need to extract the tens digit and ones digit seperately, add them seperately, then put them back together.

Here's an example: note that it isn't going to help you prevent the carries for the hundreds. For that you'd have to adapt the algorithm to handle it specifically, or split up the numbers by digits and add them that way.

int crazyAdd(int a, int b) {
    int aTens = a % 10;
    int bTens = b % 10;
    int tens = aTens + bTens;
    int ones = (a + b) % 10;
    return tens + ones;

}

Here's one that's more flexible

int crazyAdd(int a, int b) {
    int[] aDigits = extractDigits(a); // let there exist a function that
    int[] bDigits = extractDigits(b); // puts the digits into an array

    int size = aDigits.length;
    if(size < bDigits.length) size = bDigits.length;

    int digits = new int[size];
    for(int i = 0; i < digits.length; i++) {
        int aDigit = i >= aDigits.length ? 0 : aDigits[i];
        int bDigit = i >= bDigits.length ? 0 : bDigits[i];
        digits[i] = (aDigit + bDigit) % 10;
    }
    int result = 0;
    for(int digit : digits) {
        result = result * 10 + digit;
    }
    return result;
}
share|improve this answer

I'm pretty sure it would be a pain in the ass mathematically, so the easiest would be to iterate through digits and rotate them. In Ruby:

def rotate_digits(n)
  result = 0
  exp = 1
  while n > 0
    digit = n % 10
    n /= 10
    digit = (digit + 1) % 10
    result += exp * digit
    exp *= 10
  end
  result
end

puts rotate_digits(59)
puts rotate_digits(55)
puts rotate_digits(99)

This gives you a number, so the last one gives you 0. If you really want "00", it's easier to work with strings:

def rotate_digits_as_string(n)
  n.to_s.each_char.map { |c| ((c.to_i + 1) % 10).to_s }.join
end

puts rotate_digits_as_string(59)
puts rotate_digits_as_string(55)
puts rotate_digits_as_string(99)
share|improve this answer

If you're only talking about two-digit numbers, you can use a rather simple form:

def nextNum (num):
    val = int(num)
    if num == "99":
        return "00"
    if val > 89:
        return "0" + str(val - 89)
    if val % 10 == 9:
        return str (val + 1)
    return str (val + 11)

Here's a little Python program showing that in action:

def nextNum (num):
    if num == "99":
        return "00"
    val = int(num)
    if val > 89:
        return "0%d"%(val - 89)
    if val % 10 == 9:
        return "%02d"%(val + 1)
    return "%02d"%(val + 11)

for i in range (0,100):
    s = "%02d"%(i)
    print "%s -> %s"%(s,nextNum(s))
share|improve this answer

We need to do this for each character in the string input.

We have a function which will do this one character at a time.

char inc(char ch)
{
    ch = (ch + 1) % '0'; // ANSI.
    return(ch);
}

Now we need a function that will do this to every character in the string:

string szinc(string input)
{
    for(i = 0; i < input.size(); i = i + 1)
    {
        input[i] = inc(input[i]);
    }

    return(input);
}
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.