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If I have a position or row/column for both A and B positions, check to see if B is diagonal to A?

 1 2 3
 4 5 6
 7 8 9

How do I check if for example if 5 is diagonal to 7?

Also if I check to see if 4 is diagonal 3, it shouldn't get a true return also?

Answer from below integrated in my situation.

My call on it from another function

!isDiagonal(goodguyposition, positionadd1)

public static boolean isDiagonal(int a, int b) 
    {
        // x = number of columns
        // y = number of rows
        // s = index start (1)
        // a = index of a
        // b = index of b

        int x = 11;
        //int y = 11;
        int s = 0;
        int ax = (s - a) % x, ay = (s - a) / x, bx = (s - b) % x, by = (s - b) / x;

        if ((ax == bx - 1 || ax == bx + 1) && (ay == by - 1 || ay == by + 1))
        {
            return true;
        }
        else
        {
            return false;
        }

    }
share|improve this question
    
ive updated my answer with concrete implementation ... – Matej Špilár Mar 18 '14 at 23:57
    
Is there way to vote for two answers. Both of your answers are great! Just answer them in two different ways. Probably going to use both. – MAXGEN Mar 19 '14 at 0:52
up vote 1 down vote accepted

Response cleaned for readability:

public static boolean isAdjacentDiagonal(int x, int s, int a, int b) {
    // x = number of columns
    // s = index start
    // a = index of a
    // b = index of b
    int ax = (a - s) % x, ay = (a - s) / x, bx = (b - s) % x, by = (b - s) / x;
    return (bx == ax - 1 || bx == ax + 1) && (by == ay - 1 || by == ay + 1);
}

With Math.abs and only if your index starts at 0:

public static boolean isAdjacentDiagonal(int x, int a, int b) {
    int ax = a % x, ay = a / x, bx = b % x, by = b / x;
    return Math.abs(ax - bx) == 1 && Math.abs(ay - by) == 1;
}

public static boolean isOneOfDiagonals(int x, int a, int b) {
    int ax = a % x, ay = a / x, bx = b % x, by = b / x;
    return a != b && Math.abs(ax - bx) == Math.abs(ay - by);
}
share|improve this answer
    
So I only need the number of columns(x) and not the number of rows(Y) for the formula? This is great. – MAXGEN Mar 19 '14 at 0:47
    
What would the if condition look like in Java for this? Check my code above, is there better way of doing it? – MAXGEN Mar 19 '14 at 0:49
    
I tested this works in most cases but it doesn't stop the case where if the diagonal if more then one diagonal. For example if A is 11 and B is 3 then that considers diagonal. – MAXGEN Mar 19 '14 at 1:00
    
s = index start (1) What do you mean by index start? If the index starts from 0,1,2 or 1,2,3, or 2,3,4 is that what you mean? – MAXGEN Mar 19 '14 at 1:15
    
yes it is! in general, index starts at 0 but in your case, starts at 1 – alex Mar 19 '14 at 1:18

it's diagonal and adjacent if Math.abs( Ax - Bx ) ==1 && Math.abs( Ay - By ) == 1 where Ax and Bx is the column value of A and B respectively and Ay and By is the row value of A and B respectively

checking for a difference of exactly +-1 in both directions limits it to the adjacent squares that are not in the same row/col.. which are the adjacent diagonals

if you want any diagonal , then use Math.abs(Ax-Bx)==Math.abs(Ay-By)

if you don't want to include the case where A=B, you have to check for that separately

share|improve this answer
    
you're absolutely right, thank you for the other formulas – alex Mar 19 '14 at 1:26

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