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I'm searching for an algorithm for Digit summing. Let me outline the basic principle:

Say you have a number: 18268.

1 + 8 + 2 + 6 + 8 = 25

2 + 5 = 7

And 7 is our final number. It's basically adding each number of the whole number until we get down to a single (also known as a 'core') digit. It's often used by numerologists.

I'm searching for an algorithm (doesn't have to be language in-specific) for this. I have searched Google for the last hour with terms such as digit sum algorithm and whatnot but got no suitable results.

Any help would be great, thanks.

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homework? what have you thought of so far? –  Anycorn Apr 21 '10 at 22:09
    
    
No, not homework. Although I can see how you would mistake it. The hardest thing we do in college to do with programming is file handling. :P –  Joe Apr 21 '10 at 22:11
    
And this one: stackoverflow.com/questions/2115731/… –  ire_and_curses Apr 21 '10 at 22:14
1  
Your "core" is aka "digital root" en.wikipedia.org/wiki/Digital_root –  polygenelubricants Apr 21 '10 at 22:38

6 Answers 6

up vote 22 down vote accepted

Because 10-1=9, a little number theory will tell you that the final answer is just n mod 9. Here's code:

ans = n%9;
if(ans==0 && n>0) ans=9; 
return ans;

Example: 18268%9 is 7. (Also see: Casting out nines.)

share|improve this answer
    
need to loop it –  Timmy Apr 21 '10 at 22:17
2  
No, you can work that out. –  Larry Apr 21 '10 at 22:17
2  
@Timmy: No, you don't need to loop. Get pen and paper, and work it out for yourself. (It works because the sum of digits is an invariant modulo 9.) –  ShreevatsaR Apr 21 '10 at 22:18
1  
The "obvious" solution took most of the people here less than 5 minutes, and the running time isn't too high, so perhaps you could've done that anyhow! ;P –  Larry Apr 21 '10 at 22:37
1  
I think it's important to analyze algorithms itself -- sure the brute force algorithm is slower, but how much of a factor? f(10^x-1) = 9*(x-1). So even if you have a number with a million digits it will take fractions of a second. Now, of course the numbers changes with Stack Overflow (and Google), where you can just ask someone and get it in 5 minutes, but I don't know if I would've came up with it in 5 minutes without a nudge in what I should do -- I happened to know it as trivia from experience. (A long way of saying, don't prematurely optimize if you don't have to!) –  Larry Apr 21 '10 at 22:48

I would try this:

int number = 18268;
int core = number;
int total = 0;

while(core > 10)
{
   total = 0;
   number = core;
   while(number > 0)
   {
      total += number % 10;
      number /= 10;
   }

   core = total;
}
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you'll want to do this over and over until abs(total) is less than 10 and then you'll have your core number. –  Chad Apr 21 '10 at 22:11
    
that does not seemed right. you are doing only one summation. you need another loop or recursion –  Anycorn Apr 21 '10 at 22:11

Googling for 'numerology digit sum algorithm' gives this:

http://wiki.answers.com/Q/Algorithm_to_find_the_sum_of_digits_of_a_given_number

Put a loop around it to sum the result if greater than a single digit, and you're done.

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Doesn't work with negative numbers, but I don't know how you would handle it anyhow. You can also change f(x) to be iterative:

sum( x ) =
    while ( ( x = f( x ) ) >= 10 );
    return x;

f( x ) = 
    if ( x >= 10 ) return f( x / 10 ) + x % 10
    return x

You can also take advantage of number theory, giving you this f(x):

f( x ) =
    if ( x == 0 ) return 0
    return x % 9
share|improve this answer
  1. Mod the whole number by 10.
  2. Add the number to an array.
  3. Add the whole array.
share|improve this answer
1  
+1 for providing a good starting point but not doing the OP's homework. –  Bob Kaufman Apr 21 '10 at 22:10
    
It's not homework, Bob. :) And thank you for the starting point, I can work out in the head where it's going ;) –  Joe Apr 21 '10 at 22:12
int number = 18268;
int total = 0;

while(number > 0)
{
   total += number % 10;
   total = total%10;
   number /= 10;
}
share|improve this answer

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