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I am having trouble with the following task: Suppose a 3x6 matrix:

A =

0.2787    0.2948    0.4635    0.8388    0.0627    0.0435
0.6917    0.1185    0.3660    0.1867    0.2383    0.7577
0.6179    0.7425    0.0448    0.4009    0.9377    0.4821

What I would like to do is to divide the matrix into blocks, like this:

A =

0.2787    0.2948  |  0.4635    0.8388  |  0.0627    0.0435
0.6917    0.1185  |  0.3660    0.1867  |  0.2383    0.7577
0.6179    0.7425  |  0.0448    0.4009  |  0.9377    0.4821

and vertically concatenate these blocks to get the final result:

0.2787    0.2948 
0.6917    0.1185  
0.6179    0.7425  
0.4635    0.8388
0.3660    0.1867
0.0448    0.4009
0.0627    0.0435
0.2383    0.7577
0.9377    0.4821

I think if I can get help with this, then I can perhaps do it for arbitrary matrices A. I can solve the above problem using for-loops, but I am looking for a vectorised solution.

Thanks in advance! N.

share|improve this question
    
Look up reshape. –  kevlar1818 Jun 5 '12 at 20:46
    
I think it takes more than reshape. I mean reshape combined with some other operation... –  user1438310 Jun 5 '12 at 20:47
    
for those interested, here is a related question: split long 2D matrix into the third dimension –  Amro Jun 5 '12 at 21:13
    
@user1438310 Yes, I know. I was mentioning a tool you might not have known about. I would not have mentioned it if you had maybe included something about what you have tried. –  kevlar1818 Jun 6 '12 at 13:03

4 Answers 4

Consider the following:

A = rand(3,6);
blkSz = 2;

C = mat2cell(A, size(A,1), blkSz*ones(1,size(A,2)/blkSz));
C = cat(1,C{:})

This assumes that size(A,2) is evenly divisible by blkSz

share|improve this answer
    
Thanks, for the reply, it will take me a while to apply your solution to my code, but I will get back to you.. –  user1438310 Jun 5 '12 at 21:07
    
SO didn't referesh until until after I posted my answer too. :) –  Chris A. Jun 5 '12 at 21:16
    
@ChrisA.: can't tell you how many times it happened to me too.. –  Amro Jun 5 '12 at 21:24
    
@Amro I'm obligated to upvote yours, and I don't feel bad about being scooped by you. –  Chris A. Jun 5 '12 at 21:26
    
@ChrisA.: thanks, now I have to return the favor :) –  Amro Jun 5 '12 at 21:41

How about this:

width = 2; 
m = length(A(:))/width;
fn = @(i) reshape(A(:, i:width:end), m, 1);
B = cell2mat(arrayfun(fn, 1:width, 'UniformOutput', false));

Just specify how many columns you want at a time in the width variable.

share|improve this answer

This works where your matrix is A and what you want is D

C = mat2cell(A,[3],[2 2 2])
D = cat(1,C{:})
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Thanks, very much, it works great and saves me quite some time.. –  user1438310 Jun 6 '12 at 10:23

By concatenating vertically, matrix width divisible by 3 assumed:

B = [ A(:,1:(size(A,2)/3)); A(:,size(A,2)/3+1:size(A,2)/3*2); A(:,size(A,2)/3*2+1:end) ];
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