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Here's the example (counting black ones):

input:

enter image description here

output:

5 4 // 5 groups (4 squares each)
1 1 // 1 group containing 1 square

For Now, I can't think of anything better than a painfull for iteration. Would it be possible to get these groups in a recursion way? Thanks

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i can't see the input! –  elyashiv Oct 15 '12 at 18:53
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What counts as a "group"? Rectangles? Continuous black areas? –  phimuemue Oct 15 '12 at 18:54
    
well, the pic is a 2d array input, group of black areas are blocks of black squares lying next to each other (diagonally lyin doesnt count) –  Patryk Oct 15 '12 at 18:56
    
Your goal is not well-defined... do these have to be squares? what happen if squares overlap? –  Bitwise Oct 15 '12 at 18:59
    
How you represent this grid ? do you use array ? –  Radi Oct 15 '12 at 19:07
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3 Answers

up vote 2 down vote accepted

Set all black squares as nodes. Connection between black squares (if the squares are next to each other) will be an edge.

This gives you a graph.

A DFS in the graph will get you all the groups. Note that DFS is recursive by nature.

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At the beginning, each cell be "unvisited".

I would iterate through the cells until you meet an "unvisited" black cell. Each white cell you hit up to that point

Once you hit a black cell, you "expand" it to all directions if possible (similar to "floodfilling"). You expand as long as you can and mark all the visited cells as "visited". After you did that, you count how many black cells you infected, and you know how big the group was. After detecting the group, you go on to the next "unvisited" black cell.

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You can use algorithm for connected component labeling with 4-connectivity

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