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I need to do the following problem using array offset. I have a matrix form of shape consists of N number of blocks. In each row, I can have any number of blocks and there are multiple rows. If I do grouping of blocks in 2, i will check if the resultant group is bad(defective) or good(not defective).

If both the blocks in a group are having "1" on it- it means its a good group, otherwise bad.

Problem: I always have to consider the blocks on the edges first both left and right side while doing grouping.

So, in the diagram attached, in row 3, I make a group of 2 blocks on the left side and then make a group of 2 on right side(edges). And then make a group again on left side. Now I am only left with one block and that block has to be ignored.

In row 7, one group is formed on left side and one group is on right side and middle block is ignored.

I don't know how to do it using array offset. Any body is having a solution to do it.

In the inputs, I have the x,y co-ordinate of each block and its good/bad information.

In the end, I need to find the total no. of good groups formed by grouping of 2. Using the x,y co-ordinate, I can make an array and then using array offset. Is that feasible?

The points for the diagram attached below:

Block on the edges need to be considered for making a group.

Always take block on the edges in the pair of 2 and amke a group of 2 blocks----> In row 3,we ignored one block at 5th position

1--> represents (Good Block) i.e Not defective and 0 ->Represents bad block i.e. Defective

When I make a group of 2, I check the numbers on the block and if both are '1'-->It means its a good block, otherwise bad block

In row 1, group1-> is defective(bad) and group 2 -> good(not defective)

enter image description here

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you just created a counter for it :) –  Karoly Horvath Jul 27 '11 at 18:12
    
Please try and type out your picture. Not everyone can see images, they are not translatable, they take up a lot of bandwidth, and they have a nasty habit of going missing after a month or two. –  Austin Hyde Jul 27 '11 at 18:16
    
Please just add it to the question. The comments are no place for this. –  pmr Jul 27 '11 at 18:25
    
I did it...please read the question now –  user847323 Jul 27 '11 at 18:29
    
@user847323 - is this homework? –  Perception Jul 27 '11 at 18:31
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