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This is a question from homework, that I got stuck with, and I'll be happy if someone could direct me.

A legal path is defined, by statring at the first cell (row 0 collumn 0), and countinue to the next step by adding the first and the second digits of the number in the cell, untill reaching the last cell (row n collumn n).

For example: If in cell [2][3] there is the number 15, then the next move can be: +1 in rows and +5 in collumns to [3][8] or +5 in row and +1 in collumns to [7][4]

The method should return how many legal paths are there.

I'm trying to use a backtracing recursive method for this problem, and I can't use any loops or any other method but overloading methods.

Here is the code I came up with so far:

public static int countPaths (int[][] mat)
{
    return countPaths(mat,0,0);
}

private static int countPaths(int[][] mat, int col, int row)
{


    if ((col==mat.length-1 && row==mat[0].length-1 )  {
        return 1;
    }    
    return countPaths(mat,mat[col][row]/10+col,mat[col][row]%10+row) + countPaths(mat,mat[col][row]%10-col,mat[col][row]/10-row);

} 

Thanks for any help !

share|improve this question
    
And what is the problem/question? –  Simon André Forsberg May 24 '13 at 16:30
2  
@SimonAndréForsberg the problem is that OP got stuck with this and needs help. It is a valid question. –  Luiggi Mendoza May 24 '13 at 16:31
2  
@LuiggiMendoza I just don't see where he is stuck. Would be a whole lot easier to answer the question if I knew more. Is there something that is not working as expected? What is the result of the code today? What is missing? –  Simon André Forsberg May 24 '13 at 16:33
    
@SimonAndréForsberg Read the problem statement. Then, read the code provided by OP. If you understand both, then you could note that the current design of the recursive method doesn't handle a backtracking solution (which is a tag in the question). –  Luiggi Mendoza May 24 '13 at 16:35
    
Not to be off topic, but this problem should not be solved using recursion in the first place. You should tell your teacher to get a better example. –  Tom Fobear May 24 '13 at 16:40

4 Answers 4

up vote 1 down vote accepted

If I understood the problem correctly, this is a solution.

public class MatrixPathCounter { private static int[][] mat = {{10,11,0},{10,11,10},{10,10,0}};

public static void main(String[] args)
{
    System.out.println(countPath(mat,0,0));
}

private static int countPath(int[][] mat, int x, int y)
{
    int n = mat.length -1;

    if (x==n && y==n)
        return 1;

    if(x>n || y>n)
        return 0;

    if(mat[x][y]==0)
        return 0;

    if(x+mat[x][y]/10 == x+mat[x][y]%10 && x+mat[x][y]%10 == x+mat[x][y]/10)
        return countPath(mat,x+mat[x][y]/10,y+mat[x][y]%10);
    else
        return countPath(mat,x+mat[x][y]/10,y+mat[x][y]%10) + countPath(mat,x+mat[x][y]%10,y+mat[x][y]/10 ); 
}

}

share|improve this answer
    
You're assuming a square matrix. –  Edward Falk May 24 '13 at 18:36
    
p.s. for homework assignments, you shouldn't be giving a completed answer; just hints. (Just my opinion, but I'm always right.) –  Edward Falk May 24 '13 at 18:37
    
@EdwardFalk I assumed this because he said : ...untill reaching the last cell (row n collumn n) –  Petros Tsialiamanis May 24 '13 at 18:53
    
Ahh, ok. Probably a reasonable assumption then. –  Edward Falk May 24 '13 at 19:14

As it is a homework , so just some hints from me

  1. Instead of only returning 1 also return a failure state. for example if the column or row is larger than the length then return 0. ( or you can use true/false)

  2. you are adding two recursive function. instead of doing this try doing one by one. For example at first check using (row+1,com+5) if it retunrs failure then try (row+5,col+1).

share|improve this answer
    
Hey, thanks for your answer. If i do the functions one by one, then how should i returns how many legal paths are there, I need to count the paths. –  Itay4 May 24 '13 at 17:10
    
oh i missed that.. ok you can use a counter variable. it will increase 1 at each recursion .. if recursion returns true then the couter will be your path length . if false then decrease by 1. NOt a fullproof idea as I am not coding right now.. you can try thinking this –  StinePike May 24 '13 at 17:15
    return countPaths(mat,mat[col][row]/10+col,mat[col][row]%10+row) + countPaths(mat,mat[col][row]%10-col,mat[col][row]/10-row);

"A legal path is defined, by statring at the first cell (row 0 collumn 0), and countinue to the next step by adding the first and the second digits of the number in the cell, untill reaching the last cell (row n collumn n).

For example: If in cell [2][3] there is the number 15, then the next move can be: +1 in rows and +5 in collumns to [3][8] or +5 in row and +1 in collumns to [7][4]"

It sounds to me like like your logic in determining row and col is off by some degree. You should be getting the same two digits regardless, just switching them around. My recommendation is to store your digit values inside of a variable to make your code more legible. I see how to solve the problem, but you won't learn anything if I solve it for you.

I would also, as another user has pointed out, make sure to close "dead end" paths by checking if they are still valid. At that point, return 0.

share|improve this answer

You are almost there, a few things:

  • There seems to be an error in your calculation of the possible next steps to try
  • You should check bounds before accessing the array / making the recursive call, to avoid ArrayOutOfBoundsException
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