Find the elements of a ND matrix given the index of the elements

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Asif Newaz
Asif Newaz el 29 de Abr. de 2020
Comentada: Asif Newaz el 29 de Abr. de 2020
[b,idx]=min(a,[],2) -- gives the value as well as the index of the min value of each row of matrix a.
Now the ques is - how to get b if i've 'a' & 'idx'.
For 2D,i can use a for loop to do it.
But how to do it for ND scenarios?
For example,
a=[0.8147 0.9134 0.2785
0.9058 0.6324 0.5469
0.1270 0.0975 0.9575]
b=[0.2785
0.5469
0.0975]
idx=[3
3
2]
for i=1:length(idx)
b(i)=a(i,idx(i));
end
-- it'll do for 2D.
  2 comentarios
darova
darova el 29 de Abr. de 2020
Can you show you calculate idx for 3d dimension?
Asif Newaz
Asif Newaz el 29 de Abr. de 2020
sorry.i dont understand ur question.
For a 3D matrix a,
[b,idx]=min(a,[],2) -will generate a 3D array of idx.

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Stephen23
Stephen23 el 29 de Abr. de 2020
Editada: Stephen23 el 29 de Abr. de 2020
Surprisingly there is no trivial way to do this, but one general solution is to generate linear indices, e.g.:
% input data (any ND array and the corresponding output index from MIN or MAX):
a = [0.8147,0.9134,0.2785;0.9058,0.6324,0.5469;0.1270,0.0975,0.9575]; % ND array.
idx = [3;3;2] % indices, must be the same orientation as returned by MIN or MAX.
% sizes of input data:
idx = double(idx);
sza = size(a);
szn = size(idx);
szn(end+1:numel(sza)) = 1;
idd = szn~=sza;
% linear indices:
tmp = arrayfun(@(n)1:n,szn,'uni',0);
[tmp{:}] = ndgrid(tmp{:});
tmp{idd} = idx;
ndx = sub2ind(sza,tmp{:});
You can use the linear indices very simply:
>> a(ndx)
ans =
0.2785
0.5469
0.0975

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