circshift() one number ,in each iteration?
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can I am do shifting the number A(2,1) of matrix (A) ,one times in each iteration,('iter=0' ,iter=iter+1)? how can do that?
A=[1 2 3;4 5 6;7 8 9]
% Shift A(2,1)
for k=1:size(A,2)-1
A(2,:)=circshift(A(2,:),[0 1])
end
2 Kommentare
Azzi Abdelmalek
am 6 Okt. 2013
That's what the code is doing
Image Analyst
am 6 Okt. 2013
It shifts the entire second row one element at each iteration of the loop. Is that not what you wanted? Did you want to shift only the (2,1) element and not all of the elements in the second row? Either way, why? Seems like a funny thing to do unless it's homework or something. But it can't be homework because you would have tagged it as homework, so why do you want to do this?
Akzeptierte Antwort
Azzi Abdelmalek
am 6 Okt. 2013
Maybe you want to save all the results
clear
A=[1 2 3;4 5 6;7 8 9]
% Shift A(2,1)
for k=1:size(A,2)-1
A(2,:)=circshift(A(2,:),[0 1])
out{k}=A
end
celldisp(out)
6 Kommentare
Azzi Abdelmalek
am 6 Okt. 2013
copy and paste the code, there is no error
Mary Jon
am 6 Okt. 2013
Bearbeitet: Azzi Abdelmalek
am 6 Okt. 2013
Image Analyst
am 6 Okt. 2013
E doesn't have a 20th dimension so size(E,20)-1 = 0-1 = -1 which means your loop never gets entered. So when it comes time to do celldisp(), there is no out at all to display.
Mary Jon
am 6 Okt. 2013
Image Analyst
am 6 Okt. 2013
Bearbeitet: Image Analyst
am 6 Okt. 2013
size(array, n) means the length of array in the nth dimension. It DOES NOT mean array(n) which is the value of the array at index n. They're totally different things. By the way, you never answered my question in the comment at the very top.
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am 6 Okt. 2013
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