Preserving the shape of the indices vector when indexing into another vector.
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Suppose i have a vector of values A
A = [5 10 15 20 25];
And a vector of indeces that may have any number of singleton leading dimensions, e.g.
idx = zeros(1,1,3);
idx(:) = 1:3
idx(:,:,1) =
1
idx(:,:,2) =
2
idx(:,:,3) =
I want to get the elements of A specified by the subscripts in idx, and I want the output B to have the same dimensions as idx. In this example, what I want to get is
B(:,:,1) =
5
B(:,:,2) =
10
B(:,:,3) =
15
Instead of the default indexing behaviour which would get me:
B = A(idx)
B =
5 10 15
I know that i could obtain this by first initializing B to have the same size of idx, i.e.
B = zeros(size(idx));
B(:) = A(idx);
However, in my application, I am developing a toolbox that must be able to work with user-created functions. I can act on idx, which will be fed as an input to the user-created function, but the rest is up to the user and I cannot expect him to write these two lines of code.
Is there any way to achieve this?
4 Commenti
Bruno Luong
il 16 Ott 2020
Yeah but not a word about "generalized" vector as with Federico's example. And documented on a blog is kind of light evidence.
Risposte (1)
Ameer Hamza
il 16 Ott 2020
Modificato: Ameer Hamza
il 16 Ott 2020
This can be one of the way
B = reshape(A(idx), size(idx));
Although, I wonder is why MATLAB does not follow normal behavior for indexing A(idx). Maybe there is a good reason, or maybe this is an oversight.
4 Commenti
Ameer Hamza
il 22 Ott 2020
Modificato: Ameer Hamza
il 22 Ott 2020
I don't think that overloading subsindex will help here. subsindex only returns the indexes, but as we already saw, the shape of indexes have no effect on the output of indexing when idx is 1x1x3.
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