Effacer les filtres
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How can I make a for loop with two diferent indexes

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Nuno
Nuno le 6 Déc 2012
%My problem:
syms w;
for i=1:20
lam=i;
xi = fsolve(@(w) -tan(w/2) + w/2-(4./(lam))*(w/2).^3,[pi()-0.1 3*pi()-0.1]);
X(i) = xi(2)/pi()
end
%This is fine, but now I want to break the intervals in smaller ones:
syms w;
for i=1:0.2:20
lam=i;
xi = fsolve(@(w) -tan(w/2) + w/2-(4./(lam))*(w/2).^3,[pi()-0.1 3*pi()-0.1]);
X(i) = xi(2)/pi()
end
%And I want the values of xi(2)/pi() to be saved in a vector, but it want let me. I understand why, but I can't resolve it.
%Thank you very much to you all.
  2 commentaires
Nasser M. Abbasi
Nasser M. Abbasi le 6 Déc 2012
Modifié(e) : Nasser M. Abbasi le 6 Déc 2012
You are mixing syms with numerics. Decide what you want to do. Either use numerics or symbolic. Very confusing code. Why calling fsolve() with syms?
But in order to make a symbolic vector, do
range=1:0.2:20;
X = sym(zeros(1, length(range)));
Nuno
Nuno le 8 Déc 2012
Thanks. I forgot to take out the syms part, indeed it isn't necessary.

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Matt Fig
Matt Fig le 6 Déc 2012
Modifié(e) : Matt Fig le 6 Déc 2012
syms w;
cnt = 1:.2:20;
for ii=1:length(cnt)
xi = fsolve(@(w) -tan(w/2) + w/2-4/ii*(w/2).^3,[1 3]*pi-.1);
X(ii) = xi(2)/pi;
end
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Matt Fig
Matt Fig le 6 Déc 2012
Nuno, did you run the code? It does exactly what you describe. You want to solve the equation for every value of lam in 1:.2:20 and store the second solution in a vector X. That is what the code does....
Nasser, True enough! I just copied Nuno's code and made the minimal changes.
Nuno
Nuno le 8 Déc 2012
Thank you for the answer Matt Fig.

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