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Im trying to find if a given number is a sum of a given set, for example: the number 12 is a sum of the set s{3,2}, because:

3+3+3+3=12
or
2+2+2+2+2+2=12

but 14 is not a sum of s{8,10} because you can't create the number 14 with sums of s. I'm trying to write the code in java using only recursion, and without loops. here is the code:

   public static boolean isSumOf(int[]s,int n)
   {
     return isSumOf(s,n,0,0,0);
   }


   private static boolean isSumOf(int[]s,int n,int i,int sum,int m)
   {
       boolean with=false;
       boolean without=false;

       if(i==s.length)
        return false;

       if(sum==n)   
        return true;

       if(m<=n)
        {
            with=isSumOf(s,n,i,sum+s[i]*m,m++);
            without=isSumOf(s,n,i,sum,m++);            
        }
       else
        {
            i=i++;
            m=0;
            isSumOf(s,n,i,sum,m);
        }

       return (with||without); 

   }

The code is compiled ok, but I get a stackOverFlowError when i run a test on it. here is the code for the test:

  public static void main(String[]args)
  {  
      int[]a={18,10,6};
      int x=18+10+6;
      System.out.println(Ex14.isSumOf(a,x));
  }

please help!!!

share|improve this question
1  
Just Curious.. Why downvotes on this question? I think it is clearly specified what OP wants. And also has the code that he tried? –  Rohit Jain Nov 30 '12 at 9:01
    
A stack overflow suggests your code is not terminating. Have you stepped through using a debugger, with a simple example, to see why your return statements are not executing? –  Duncan Nov 30 '12 at 9:02
    
I would suggest you rename the variables in your methods. It's hard to determine what n, i and m refer to. It may help you spot your error too. –  Duncan Nov 30 '12 at 9:08

2 Answers 2

up vote 2 down vote accepted

this looks bad:

with=isSumOf(s,n,i,sum+s[i]*m,m++);
without=isSumOf(s,n,i,sum,m++);

use

with=isSumOf(s,n,i,sum+s[i]*m,++m);
without=isSumOf(s,n,i,sum,++m);

if you want to have m one higher in the called method.

Other than that, I have no clue what the code does due to poor variable naming.

Also this line:

i=i++;

has no effect, replace it with one of the following if you want to increment i:

i++;
i += 1;
i = i + 1;
i = ++i;

And if you don't use the result of the call

isSumOf(s,n,i,sum,m); 

there is no point in calling it.

share|improve this answer

This seems to work - and I don't see any indication that you don't want a ready-made answer (which I am sure you would state if this was homework) so here goes:

public class IsSumOf {
  // set - The numbers allowed.
  // total - The number I want to achieve.
  // i - Where we are in the set.
  // sum - List of numbers used so far.
  // n - The number we just subtracted (or 0 if none).
  // Note that sum and n are only used for the printing of the route.
  private static boolean isSumOf(int[] set, int total, int i, LinkedList<Integer> sum, int n) {
    // Found the set if we are now at 0.
    boolean is = (total == 0);
    // Look no further if no more to try.
    if ( total > 0 ) {
      // Look no further if we've exhausted the array.
      if ( i < set.length ) {
        // Try or consume this number in the set (or not) and try again.
        is = isSumOf(set, total - set[i], i, sum, set[i] ) 
                || isSumOf(set, total - set[i], i+1, sum, set[i] ) 
                || isSumOf(set, total, i+1, sum, 0 ) ;
      }
    }
    // Keep track of the route.
    if ( is && sum != null && n != 0) {
      // Add backwards so we get the order right when printed.
      sum.addFirst(n);
    }
    return is;
  }

  // Jump-off point.
  public static boolean isSumOf(int[] set, int total, LinkedList<Integer> sum) {
    // Empty the list.
    sum.clear();
    // Start at 0 in the array.
    return isSumOf(set, total, 0, sum, 0);
  }

  public static void main(String[] args) {
    LinkedList<Integer> sum = new LinkedList<Integer>();
    int[] a = {18, 10, 6};
    int x = 18 + 10 + 6;
    System.out.println(Arrays.toString(a)+" ("+x+") = "+(isSumOf(a, x, sum)?Arrays.toString(sum.toArray()):"-"));
    x += 1;
    System.out.println(Arrays.toString(a)+" ("+x+") = "+(isSumOf(a, x, sum)?Arrays.toString(sum.toArray()):"-"));
    int[] b = {3,2};
    x = 12;
    System.out.println(Arrays.toString(b)+" ("+x+") = "+(isSumOf(b, x, sum)?Arrays.toString(sum.toArray()):"-"));
    x += 1;
    System.out.println(Arrays.toString(b)+" ("+x+") = "+(isSumOf(b, x, sum)?Arrays.toString(sum.toArray()):"-"));
    int[] c = {2,3};
    x = 12;
    System.out.println(Arrays.toString(c)+" ("+x+") = "+(isSumOf(c, x, sum)?Arrays.toString(sum.toArray()):"-"));
    x += 1;
    System.out.println(Arrays.toString(c)+" ("+x+") = "+(isSumOf(c, x, sum)?Arrays.toString(sum.toArray()):"-"));
  }
}

Edited to print the route taken.

Prints:

[18, 10, 6] (34) = [18, 10, 6]
[18, 10, 6] (35) = -
[3, 2] (12) = [3, 3, 3, 3]
[3, 2] (13) = [3, 3, 3, 2, 2]
[2, 3] (12) = [2, 2, 2, 2, 2, 2]
[2, 3] (13) = [2, 2, 2, 2, 2, 3]
share|improve this answer
    
actually, its hw... –  Martin R Levinson Dec 7 '12 at 13:32
    
In that case @Martin please be sure to learn from my techniques and try not to copy my code. You will understand a great deal more by doing it yourself. In future, if you are posting questions involving homework it may be better for you to make that clear and ask that complete solutions are not posted. I hope I have not harmed your chances of getting a good grade for this piece. Please remember that your teachers also have access to SO. –  OldCurmudgeon Dec 7 '12 at 14:45

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