Assign a Sub Array to Array Knowing the Number of Dimensions at Run Time

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Royi Avital
Royi Avital el 10 de Feb. de 2022
Comentada: Royi Avital el 11 de Feb. de 2022
Assume we have tA and tB with the same number of dimesions. We also have all(size(tB) <= size(tA)) == true.
The task is to embed tB in tA. Something like: tA(1:size(tB, 1), 1:size(tB, 2), ..., 1:size(tB, n)) = tB. Yet since we know the number of dimensions only at runtime, it can't be written explicitly like that.
The question, is there an efficient way to do so without eval or explicitly computer the cartesian product and use sub2ind()?

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Royi Avital
Royi Avital el 10 de Feb. de 2022
Editada: Royi Avital el 11 de Feb. de 2022
OK, It turns out it can be done using Cell Arrays:
vSizeB = size(tB);
numDims = length(vSizeB); %<! Equals to ndims(tB)
cIdx = cell(numDims, 1);
for ii = 1:numDims
cIdx{ii} = 1:vSizeB(ii);
end
tA(cIDx{:}) = tB;
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Stephen23
Stephen23 el 11 de Feb. de 2022
Editada: Stephen23 el 11 de Feb. de 2022
Ran in:
"Your code won't work as you need the 1:vSizeB(ii) vector and not only a single number"
Lets try it:
tA = nan(5,4,3);
tB = randi(9,4,3,2);
tmp = arrayfun(@(n)1:n,size(tB),'uni',0);
tA(tmp{:}) = tB
tA =
tA(:,:,1) = 4 9 5 NaN 2 1 5 NaN 2 2 2 NaN 7 5 4 NaN NaN NaN NaN NaN tA(:,:,2) = 6 1 8 NaN 9 4 5 NaN 5 4 4 NaN 4 3 3 NaN NaN NaN NaN NaN tA(:,:,3) = NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN NaN
Royi Avital
Royi Avital el 11 de Feb. de 2022
@Stephen, Well you edited the comment. It was, at first, only num2cell().

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Rik
Rik el 10 de Feb. de 2022
There is probably a better way, but you can fill a cell array with the index vectors (simple loop with ndims), and then use this:
tA(inds{:}) = tB;

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