substituting a column into a 3D matrix
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I have a matrix R = zeros(4,5,3) and I want to make the last column of each matrix a different number. such that given C is a vector
for n = 1: end R(:,end, n) = C(n)
I managed a solution where I have a column vector A which if I could substitute into R(:, end, :), but it says mismatch dimensions.
essentially, I want to substitute a column vector into the columns of a 3D matrix R without using a for loop.
1 commentaire
Jan
le 21 Août 2011
"for n=1:end" is not valid. Better: "for n = 1:size(R, 3)".
Réponse acceptée
Fangjun Jiang
le 20 Août 2011
It's not clear when you mention "last column" for a 3-D matrix. Hope you mean one of the following two cases.
R=zeros(4,5,3);
A=1:20;
R(:,:,3)=reshape(A,size(R,1),size(R,2))
R=zeros(4,5,3);
A=1:12;
R(:,5,:)=reshape(A,size(R,1),size(R,3))
1 commentaire
ily
le 22 Août 2011
Plus de réponses (1)
Jan
le 21 Août 2011
R = zeros(4,5,3);
A = [1, 2, 3];
R(:, end, :) = reshape(repmat(A, 4, 1), [4, 1, 3]);
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le 20 Août 2011
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