I substracted two 3D matrix and get a 2D matrix instead of 3D matrix, why?

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I have a 3264x4912x3 matrix p, I subtracted p by the following code:
X=4912; Y=3264;d=1; dp=minus(p(1:Y,1:X-d),p(1:Y,1+d:X));
Then I get 3264x4911 matrix dp. Could anyone tell me why can't I get a 3d matrix (3264x4911x3) by subtracting two 3D matrix? Many thanks.

Answers (2)

Bruno Luong
Bruno Luong on 5 Sep 2024
Edited: Bruno Luong on 5 Sep 2024
You need to put 3 indexes in 3d array. If you put 2 it reshape your array to 2D.
The correct command is probably
dp=minus(p(1:Y,1:X-d,:),p(1:Y,1+d:X,:))
  1 Comment
Bruno Luong
Bruno Luong on 5 Sep 2024
Edited: Bruno Luong on 6 Sep 2024
To facilitate the understanding of indexing behavior with number of index less than the dimension of original matrix, in other word how MATLAB reshape implicitly, try this examples
A = rand(2,3,5);
size(A)
ans = 1x3
2 3 5
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size(A(:,:,:))
ans = 1x3
2 3 5
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size(A(:,:))
ans = 1x2
2 15
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size(A(:))
ans = 1x2
30 1
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size(A(:,:,:,:))
ans = 1x3
2 3 5
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size(A(:,:,:,:,:)) % yes all trailing dimensions are 1s but not displayed
ans = 1x3
2 3 5
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Vinay
Vinay on 5 Sep 2024
Hii Wang,
The original matrix p has dimensions 3264x4912x3. When using p(1:Y, 1:X-d) and p(1:Y, 1+d:X), you are slicing the first two dimensions and ignoring the third dimension.
Therefore the result of the subtraction is a 2D matrix of size 3264x4911
ans = p(1:Y, 1:X-d)- p(1:Y, 1+d:X)
The result can be obtained as 3D matrix by using the below code.
result = zeros(Y, X-d, 3);
result = p(1:Y, 1:X-d, :) - p(1:Y, 1+d:X, :);
  2 Comments
Stephen23
Stephen23 on 5 Sep 2024
Edited: Stephen23 on 5 Sep 2024
"you are slicing the first two dimensions and ignoring the third dimension."
No, that is incorrect.
In fact all trailing dimensions collapse into the last subscript index. As Loren Shure wrote: "Indexing with fewer indices than dimensions If the final dimension i<N, the right-hand dimensions collapse into the final dimension."
If you think about it, linear indexing is really just a side-effect of this. Other discussions on this topic:
DGM
DGM on 6 Sep 2024
Similarly, this helps explain why size() behaves the way it does when using an underspecified set of scalar outputs:
A = rand(2,3,5);
sz1 = size(A(:,:,:))
sz1 = 1x3
2 3 5
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[d1,d2,d3] = size(A)
d1 = 2
d2 = 3
d3 = 5
sz2 = size(A(:,:)) % the input to size() is reshaped first
sz2 = 1x2
2 15
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[d1,d2] = size(A) % the input to size() is not reshaped
d1 = 2
d2 = 15

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