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I have a 3D vectors v.

A = rand(2, 2, 2);
v = sum(A, 2);

Now I simply did:

B = diag(v);
Error using diag
First input must be 2D. 

With loop, I did the following:

for i = 1:2
   B{i} = diag(v(:, :, i));
end

I would like to get a 3D matrices from my 3D vectors. Suppose I have the following vector:

v(:, :, 1)=[1 2 3]';
v(:, :, 2)=[1 2 4]';
%I would like to get, using some command and without loop (if possible), a 3D matrix B
B(:, :, 1)=[1 0 0; 
            0 2 0; 
            0 0 3];
B(:, :, 2)=[1 0 0;
            0 2 0;  
            0 0 4];
  • 2
    Could you explain your desired outcome? To avoid the error using diag, you can try diag(squeeze(v)) – Joe Serrano Jun 24 '14 at 15:41
  • Look at he squeeze function – Dan Jun 24 '14 at 15:42
  • Do you want to create a 3D diagonal that slices through the cube with out the for loop? – kkuilla Jun 24 '14 at 15:43
  • @kkuilla yes that's right. – Ribz Jun 24 '14 at 15:44
2

I am just assuming from your your final lines in the question that you have v and you are looking to get B without loops. For the same, I think this would work for you -

%// Input
v(:, :, 1)=[1 2 3]';
v(:, :, 2)=[1 2 4]';

[M,~,P] = size(v)
B = zeros(size(v,1),size(v,1),size(v,3));
B(bsxfun(@plus,[1:M+1:M*M]',[0:P-1]*M*M)) = v %//'

Output -

B(:,:,1) =
     1     0     0
     0     2     0
     0     0     3
B(:,:,2) =
     1     0     0
     0     2     0
     0     0     4
  • +1 Congrats on 10k! Now you have superpowers! – Luis Mendo Jun 24 '14 at 23:55
  • Thanks! I am gonna save the world now! ;) – Divakar Jun 25 '14 at 4:11
2

Another possibility:

result = arrayfun(@(k) diag(v(:,:,k)), 1:size(v,3), 'UniformOutput', false);
result = cat(3, result{:});

Or, if you want it in one line, use cell2mat and reshape instead of cat:

result = reshape(cell2mat(arrayfun(@(k) diag(v(:,:,k)), 1:size(v,3), 'UniformOutput', false)), size(v,1), size(v,1), size(v,3));

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