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I have following 5x5 matrix:

11 21 31 41 51
12 22 32 42 52
13 23 33 43 53
14 24 34 44 54
15 25 35 45 55

Now I want to reflect that matrix and get following result:

55 54 53 52 51
45 44 43 42 41
35 34 33 32 31
25 24 23 22 21
15 14 13 12 11

The original matrix is represented by an 2D-array matrix[ row ][ column ]. So the idea is to swap the values.

My strategy is:

(1,1) with (5,5)
(1,2) with (4,5)
(1,3) with (3,5)
(1,4) with (2,5)

and

(2,1) with (5,4)
(2,2) with (4,4)
(2,3) with (3,4)
(2,4) with (2,4)

...

Here is my code:

            for(int i = 0; i < 5; i++){
                for(int k = 0; k < 4; k++){
                    int f = matrix[i][k];
                    int s = matrix[4-k][4-i];
                    matrix[i][k] = s;
                    matrix[4-k][4-i] = f;

                }
            }

The code doesn't work. Any ideas?

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3  
Do you have a specific question? –  Jeremy Heiler Nov 11 '10 at 15:35
    
At a first glance, I think you should iterate k=0; k<i; k++... –  Jens Nov 11 '10 at 15:49

3 Answers 3

up vote 3 down vote accepted

You are swapping the elements twice. You need swap only the upper(or lower) diagonal elements. You can do:

int size = arr.length;
for(int i=0;i<size;i++){
        for(int j=0;j<size-i;j++){
                int tmp = arr[i][j];
                arr[i][j] = arr[size-j-1][size-i-1];
                arr[size-j-1][size-i-1] = tmp;
        }                                                      
}

Code In Action

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what's the point in duplicating my answer? –  fortran Nov 11 '10 at 16:08

You can use a copy of the same matrix, to be able to store the values in the new matrix2.
(martix != matrix2) is true.
Now I use this code to reverse your matrix:


for(int i=0; i<5; i++) {
  for(int j=0; j<5; j++) {
    matrix[i][j] = matrix2[4-j][4-i];
  }
}
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I decided I'd like to see this as a foreach loop so I did the following:

int bound = matrix.size - 1;

for (int[] row : matrix) {
    for (int theint : row) {
        //get current position; price of foreach
        cury = matrix.indexOf(row);
        curx = row.indexOf(theint);

        //verify that we're above swap line
        if (cury + curx < bound) {
            //calculate reflected position
            def newx = bound - curx;
            def newy = bound - cury;

            //do swap
            def tmp = matrix[newx][newy];
            matrix[newx][newy] = matrix[cury][curx];
            matrix[cury][curx] = tmp;
        }
    }    
}

Don't know why but I felt like it was a little clearer than the ones using i, j, k, etc… I believe @codaddict's answer works, though.

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