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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
up vote 3 down vote accepted

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

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

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

It's possible to do it without cell2mat, (only with reshapes and permute) and thus a lot faster!

You need to use the "3rd dimension". It's similar to what is described in split long 2D matrix into the third dimension.

Here is the solution for the above matrix:

A1 = reshape(A, 3, 2, []);  % 3rd dimension is numel(A)/2/3
A2 = permute(A1, [2 1 3]);  % transpose 1st and 2nd dimension
Ans= reshape(A2, 2, [])' ;  % note the transpose

For a matrix of this size, the difference in running time is negligible. However, for a large matrix, the difference is more than an order of magnitude:

A=rand(3, 2*10000);

%% good method

tic
A1 = reshape(A, 3, 2, []); %3rd dimension is numel(A)/2/3
A2 = permute(A1, [2 1 3]);
A3 = reshape(A2, 2, [])' ; %note the transpose'
toc

%% mat2cell method

tic
blkSz = 2;
C = mat2cell(A, size(A,1), blkSz*ones(1,size(A,2)/blkSz));
B3 = cat(1,C{:});
toc

%% make sure the answer is the same:
assert(max(A3(:)-B3(:))==0)

output:

>> Elapsed time is 0.001202 seconds.
>> Elapsed time is 0.043115 seconds.
share|improve this answer

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

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) ];
share|improve this answer

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