what's wrong with the code
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for i=1:n
for j=1:n
if (5<i<15 & 8<j<12 & j=i) {d(i,j)=1};
else d(i,j)=0;
end
end
end
1 Commento
Youssef Khmou
il 25 Mar 2013
Identity matrix In?
Risposte (3)
Of course, the whole thing could be done much more simply and without loops,
z=zeros(1,n);
z(min(9:11,n))=1;
d=diag(z);
Azzi Abdelmalek
il 25 Mar 2013
n=40
for i=1:n
for j=1:n
if (5<i & i<15 & 8<j & j<12 & j==i) d(i,j)=1;
else d(i,j)=0;
end
end
end
Youssef Khmou
il 25 Mar 2013
Modificato: Youssef Khmou
il 25 Mar 2013
modify,
for i=1:n
for j=1:n
if (5<i<15 && 8<j<12 && j==i)
d(i,j)=1;
else d(i,j)=0;
end
end
end
1 Commento
Walter Roberson
il 25 Mar 2013
This has the same bug as the original. 5<i<15 means ((5<i)<15) which means "(true (1) or false (0)) < 15" which is always true.
Questa domanda è chiusa.
il 25 Mar 2013
Chiuso:
il 20 Ago 2021
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