storing multiple matrices from a loop
Mostra commenti meno recenti
I have a 5x5 matrix and what the program is supposed to do is to run through the columns(i) and whenever it finds a row in the ith column that is zero. It makes the whole row zero [0 0 0 0 0]. And store the different matrices for every(i) column in a matrix DBIBC(i). So far the loop only runs for the DBIBC(1) and stores only that in the array.
rw finds the rows in the column that are zero.
Please help me.
BIBC = [1 1 1 1 1;0 1 1 1 1;0 0 1 1 0;0 0 0 1 0;0 0 0 0 1] ;
DBIBC = BIBC;
N=length(BIBC);
for i=1:N
rw = find(DBIBC(:,i)==0)
DBIBC(rw,:)= 0
DBIBC(i)
B{i} = DBIBC;
end
2 Commenti
KSSV
il 2 Giu 2020
Can you show us the epxected output for the above?
Luqmann Mahama
il 2 Giu 2020
Risposta accettata
Daniel Abajo
il 2 Giu 2020
0 voti
Hi,
You need to re-inizialize the temporary matrix DBIBC for each iteration, if not the first iteration makes 2-5 rows 0 and thats all....
BIBC = [1 1 1 1 1;0 1 1 1 1;0 0 1 1 0;0 0 0 1 0;0 0 0 0 1] ;
N=length(BIBC);
for i=1:N
DBIBC = BIBC;
rw = find(DBIBC(:,i)==0)
DBIBC(rw,:)= 0
DBIBC(i)
B{i} = DBIBC;
end
1 Commento
Luqmann Mahama
il 2 Giu 2020
Più risposte (1)
Daniel Abajo
il 2 Giu 2020
0 voti
Actually is shorter, faster and smart the following code, see that the isequal returns true...
BIBC = [1 1 1 1 1;0 1 1 1 1;0 0 1 1 0;0 0 0 1 0;0 0 0 0 1] ;
DBIBC=repmat(BIBC,1,1,size(BIBC,2));
DBIBC2=permute(repmat(BIBC,1,1,size(BIBC,2)),[1,3,2]);
DBIBC(find(DBIBC2==0))=0;
N=length(BIBC);
for i=1:N
DBIBC = BIBC;
rw = find(DBIBC(:,i)==0)
DBIBC(rw,:)= 0
DBIBC(i)
B{i} = DBIBC;
end
isequal(reshape(cell2mat(B),size(BIBC,1),size(BIBC,2),[]),DBIBC)
Categorie
Scopri di più su Loops and Conditional Statements in Centro assistenza e File Exchange
il 2 Giu 2020
il 2 Giu 2020
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
