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We have a code in a class that goes like this:

int SubsetSum(int arr[], int idx, int n, int S)
{
    if (S == 0)
        return 1; // This is stopping condition #1.

    if (S < 0 || n == 0)
        return 0; // This is stopping condition #2.

    return SubsetSum(arr, idx + 1, n - 1, S - arr[idx])
        || SubsetSum(arr, idx + 1, n - 1, S);
}

This code returns 1 if the array can be divided into two subarrays with equal sum (which is the sum of the array/2). I want to expand this function so that it will return two arrays with the numbers.

For input of 1,2,2,3,0 it should return: arr1: 2,2 arr2: 3,1

How can I do that? I can't use loops, only recursive functions.

share|improve this question
    
You don't mention the two conditions, but are the arrays zero-terminated? I. e., can there be nonzero values only in the array? –  user529758 Dec 21 '12 at 16:28
    
yea you can assume the numbers to be entered to the original array are 0 or bigger –  Tom Urkin Dec 21 '12 at 16:29
1  
I am not interested in if they can be nonnegative. I'd like to know of they can be 0. –  user529758 Dec 21 '12 at 16:30
    
yes they can be zero –  Tom Urkin Dec 21 '12 at 16:31
    
thanks for the info. –  user529758 Dec 21 '12 at 16:32

1 Answer 1

Your precondition is not correct: You wrote

This code returns 1 if the array can be divided into two subarrays with equal sum.

This is not true. Test with

int main() {
   int a[5];
   a[0] = 1; a[1] = 0; a[2] = 0; a[3] = 0; a[4] = 0;

   int const r1 = SubsetSum(a, 0, 5, 1);
   printf("%d\n", r1);

   return 0;
}

This returns '1' - even if it cannot be divided into subarrays with equal sum.

Please think about your code and describe exactly what you want.

share|improve this answer
    
yes you are right. u can assune the sum of the array can be divided by 2. i check it on the main function –  Tom Urkin Dec 21 '12 at 22:09

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