complicated for loop with 2 requirements or constraints

7 vues (au cours des 30 derniers jours)
Grace
Grace le 4 Juin 2014
Commenté : Grace le 4 Juin 2014
Hi,I have
a=[1 2; 3 4; 5 6;7 8];
Suppose I want my result to have two sets of number, which set 1 is [1 2; 3 4; 5 6] and set 2=[3 4; 5 6;7 8].
result=cell(2,1);
for m=1:2
for i=0:1
k=1:3;
result{m}=a(k+i,:);
end
end
This output shows 2 similar set of numbers. What can I do? Do I make myself clear?

Connectez-vous pour répondre à cette question.

Réponse acceptée

Roger Wohlwend
Roger Wohlwend le 4 Juin 2014
Then do the following:
if m > 4
UT{m} = id(m-4:m-1,:)
end
  1 commentaire
Grace
Grace le 4 Juin 2014
Hi Roger, now I'm trying to modify my original id by sorting its column to get 2 new id as follows:
id = [ 1 3; 2 6; 3 2; 4 5; 5 1; 6 4; 7 7];
[r c]=size(id);
new_id=cell(c,1);
UT=cell(r*c,1);
for col=1:c
new_id{col}=sortrows(id,col);
for m=1:7
if m>4
UT{m} = new_id(m-4:m-1,:);
else
j=1:m-1;
a=new_id(j,:);
i=m:4;
b=new_id(i+3,:);
UT{m}=cat(1,a,b);
end
end
end
Then from that two new id, i want to run the if else statement to get UT, but now I have 2 new id, means that I will get 14 UTs. But if i run the code above, there is an error, I can't get what I wanted.
Can you help? Thank you.

Connectez-vous pour commenter.

Plus de réponses (1)

Roger Wohlwend
Roger Wohlwend le 4 Juin 2014
In the second loop you first (when i = 0) save a matrix in result{m} and then you override it when (i = 1). So the inner loop has no effect.
I do not understand why you use loops at all. You could simply write:
result{1} = a(1:3,:);
result{2} = a(2:4,:);
Or if you want a loop:
for m = 1 : 2
result{m} = a(m:m+2,:);
end

Catégories

En savoir plus sur Loops and Conditional Statements dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by