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hey, I need to rotate a 2d array in such way : 4X4-->

Input      Output
1 2 3 4   5 1 2 3 
5 6 7 8   1 2 6 4 
1 2 3 4   5 3 7 8
5 6 7 8   6 7 8 4

or for odd 5X5-->

Input            Output
1 2 3 4  5   6 1 2 3  4
6 7 8 9 10   1 2 7 8  5 
1 2 3 4  5   6 7 3 9 10
6 7 8 9 10   1 8 9 4  5
1 2 3 4  5   2 3 4 5 10

can someone help me? as you can see there are two different rings and are gettin rotated .

plz help

Im out of ideas and luck.

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1  
What ideas have you come up with that you decided won't work? What are the constraints on the problem? Are you using Java or C++? –  James McNellis Oct 23 '10 at 5:10
    
I'm using Java. language is not barrier. –  tanush Oct 23 '10 at 5:13
    
Im not able to see how this can be implemented –  tanush Oct 23 '10 at 5:13
1  
you need to be a little more expressive. Please share your idea, what did you think about the solution? Just posting a question won't get you an answer. Or else you will keep getting downvotes and the question will be closed. –  zengr Oct 23 '10 at 5:19
1  
How did you arrive at the expected output given each of the inputs? If you walk through that process, one step at a time, and write out each step on a piece of paper, you will probably see a pattern and you can use that to develop an algorithm. –  James McNellis Oct 23 '10 at 5:21

3 Answers 3

up vote 2 down vote accepted

You can divide the n x n array like this:

+-----------+
|\         /|
| \   1   / |
|  \     /  |
|   \   /   |
|    \ /    |
| 4   +   2 |
|    / \    |
|   /   \   |
|  /     \  |
| /   3   \ |
|/         \|
+-----------+

Then all pixels in region 1 move right one pixel, all pixels in region 2 move down one pixel, etc.

The regions can be defined mathematically. Assume the lower-left corner is (0,0), then the line dividing regions 1&4 from 2&3 is x = y, and the line dividing regions 1&2 from 3&4 is x = n - y. Then:

A pixel is in region 1 if x < y and x > n - y. (left of x=y, right of x=n-y)

A pixel is in region 2 if x > y and x > n - y. (right of x=y, right of x=n-y)

Similarly for regions 3 & 4.

You need to get the edge pixels right (some of those comparisons need an equal sign), and your code will depend on the odd-or-even-ness of the array size. But you should be able to go from there.

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thanks...this looks like its gonna work.. –  tanush Oct 23 '10 at 5:32
    
can u guide me how can i implement your concept in form of array? are these right ? –  tanush Oct 23 '10 at 7:45
    
//A pixel is in region 1 if x < y and x > n - y. (left of x=y, right of x=n-y) //A pixel is in region 2 if x > y and x > n - y. (right of x=y, right of x=n-y) //A pixel is in region 3 if x > y and x < n - y. (right of x=y, left of x=n-y) //A pixel is in region 4 if x < y and x < n - y. (left of x=y, left of x=n-y) –  tanush Oct 23 '10 at 7:46
    
ive successfully implemented your logic. and divided array in 4 parts in JAVA. will now try to rotate them. thanks –  tanush Oct 23 '10 at 8:49
int [][] size = new int[sx][sx];
int [][] rot = new int[sx][sx];
int x=0;
for(int i=0;i<sx;i++)
{
    for(int j=0;j<sx;j++)
    {
        size[i][j]=x++;
    }
}

for(int i=0;i<sx;i++)
{
    for(int j=0;j<sx;j++)
    {
        System.out.print(size[i][j]+"\t");
    }
     System.out.println();

}

int n=sx-1; for(int i=0;i<=n;i++) { for(int j=0;j<=n;j++) {

    if(i<j && i>=n-j)
        rot[i+1][j]=size[i][j];

    else if(i>=j && i > n-j)
        rot[i][j-1]=size[i][j];

    else if(i>j && i <= n-j)

        rot[i-1][j]=size[i][j];

    else if(i<=j && i < n-j)
        rot[i][j+1]=size[i][j];

    }

}
share|improve this answer

How about going like this:

FIND OUTER EDGES (Hint: 0,0 to max_x,0; max_x,0 to max_x,max_y; max_x,max_y to 0,max_y; 0,max_y to 0,0)
Create a new array (call it buffer). (buffer[x][y])
buffer[1][0]=arr[0][0];
buffer[1][0]=arr[0][0];
buffer[1][0]=arr[0][0];
...
buffer[max_x][0]=arr[max_x - 1][0];

Make the next inner an "outer edge", start at 1,1 to max_x-1,max_y-1, and repeat.

share|improve this answer
    
can u explain me a bit more.. –  tanush Oct 23 '10 at 6:09

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