restate in logical indexing

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Amy
Amy el 1 de Feb. de 2017
Comentada: Jan el 1 de Feb. de 2017
Dear all,
How could I restate the following code using logical indexing?
for kk=1:rxnumber %columns
for ll=1:jj %rows
if A(ll,kk)>0
C(ll,A(ll,kk))=B(ll,kk);
end
end
end
What does this code do:
If I have matrices
A= [ 0 0 7; 0 5 0; 0 0 0; 0 0 0];
B= [ 0 0 0.2; 0 0.3 0; 0 0 0; 0 0 0];
Then I would like to produce the following matrix:
C= [0 0 0 0 0 0 0.2; 0 0 0 0 0.3 0 0; 0 0 0 0 0 0 0; 0 0 0 0 0 0 0];
Or:
C=zeros(4,7);
B(1,3)--> C(1,7).
B(2,2)--> C(2,5).
Why do I find it hard to figure out a logical indexing code myself: if the value in A is zero, then nothing should happen. I don't know how to write a code where the 0 values are ignored.
A solution that is not elegant would be:
C=zeros(4,max(max(A))+1).
A(A==0)=max(max(A))+1.
Followed by:
C(:,A(:,:))=B(:,:).
C(:,8)=[];
Which realizes:
C= zeros(4,8).
A= [ 8 8 7; 8 5 8; 8 8 8; 8 8 8];
C= [0 0 0 0 0 0 0.2; 0 0 0 0 0.3 0 0; 0 0 0 0 0 0 0; 0 0 0 0 0 0 0];
How can I make an elegant solution for this?
Thank you in advance!

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Respuesta aceptada

Stephen23
Stephen23 el 1 de Feb. de 2017
Editada: Stephen23 el 1 de Feb. de 2017
One way would be to use sub2ind, which generates linear indices (not logical indices):
>> A = [0,0,7; 0,5,0; 0,0,0; 0,0,0];
>> B = [0,0,0.2; 0,0.3,0; 0,0,0; 0,0,0];
>> X = A>0;
>> [R,~] = find(X);
>> C = zeros(size(B,1),max(A(X)));
>> C(sub2ind(size(C),R,A(X))) = B(X)
C =
0.00000 0.00000 0.00000 0.00000 0.00000 0.00000 0.20000
0.00000 0.00000 0.00000 0.00000 0.30000 0.00000 0.00000
0.00000 0.00000 0.00000 0.00000 0.00000 0.00000 0.00000
0.00000 0.00000 0.00000 0.00000 0.00000 0.00000 0.00000
If you really want to use logical indices, then you can use the same method to create a logical array:
L = false(size(B,1),max(A(X)));
L(sub2ind(size(L),R,A(X))) = true;
  2 comentarios
Amy
Amy el 1 de Feb. de 2017
Thank you very much!
Usually 'find' is not recommended for computational efficiency, if I recall correctly.
Because of your answer I thought of the possibility of using 'reshape' to compute the linear indices.
I am not sure which method would be most efficient computationally.
Jan
Jan el 1 de Feb. de 2017
@Amy: If you can solve a problem using logical indexing, find wastes time usually. But here find is used to obtain the row indices. You can try which version is faster for your data.

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