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What I have to do here is to count the number of adjacent white blocks (in 2's) on a square board which is made up of random black(0's) and white(1's) blocks. The white blocks have to be at i+1,j || i-1,j || i,j+1 || i,j-1. Technically diagonals are not counted. I have provided an example below:

 [1 0 1]
 [1 1 0]
 [0 1 0]

Here count == 3 (0,0)(1,0) and (1,0)(1,1) and (1,1)(2,1)

Here is my code:

public int count = 0;
    boolean count(int x, int y, int[][] mat)
    {
        if(x<0 || y<0)
            return false;
        if(mat[x][y] == 0)
            return false;

        for(int i = x; i<mat.length; i++)
        {
            for(int j = y; j<mat[0].length; j++)
            {
                if(mat[i][j] == 1)
                {
                    mat[i][j] = 0;
                    if(count(i-1,j,mat))
                        count++;
                    if(count(i,j-1,mat))
                        count++;
                    if(count(i+1,j,mat))
                        count++;
                    if(count(i,j+1,mat))
                        count++;
                }
            }
        }
        return true;
    }

Short explanation of what I am trying to do here: I am going about finding 1's on the board and when I find one I change it to a 0 and check its up,down,left,right for a 1. This goes on till I find no adjacent 1's. What is the thing I am missing here? I kind of have a feeling I am looping unnecessarily.

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1  
Is this for homework? –  Travis J Apr 3 '12 at 0:49
1  
do you have to use recursion? –  twain249 Apr 3 '12 at 0:50
    
This is not homework, nor do I have to use recursion. I just thought of it. If there is a better solution, I'd love to know. –  noMAD Apr 3 '12 at 0:52
    
I would recommend using a loop. at each cell with a 1 check the cell below and to the right of it for a 1. Don't check the cells above or to the left to avoid counting matches you already have. –  twain249 Apr 3 '12 at 0:55
    
Also you should be using mat[i].length in the inner loop not mat[0].length so you are checking the current row. –  twain249 Apr 3 '12 at 0:56

2 Answers 2

up vote 2 down vote accepted

here's a solution without recursion

for(int i = 0; i < mat.length; i++) {
    for(int j = 0; j < mat[i].length; j++) {
       if(mat[i][j] == 1) {
          if(i < mat.length - 1 && mat[i+1][j] == 1) {
              count++;
          }
          if(j < mat[i].length - 1 && mat[i][j+1] == 1) {
              count++;
          }
    }
}
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I don't think recursion is the right answer as you should only being going one step deep (to find the adjacent value). Instead just loop through the elements looking to the right and down. Don't look up or left as twain mentioned so that you don't double count matches. Then is it simply:

for (i=0; i<max; i++)
  for (j=0; j<max; j++)
    if (array[i][j] == 1){
         if (i<max-1 && array[i+1][j] == 1) count++;
         if (j<max-1 && array[i][j+1] == 1) count++;
    }
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