index must be a positive integer or logical.

11 Mar 2014
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Réponse acceptée
Mise à jour 12 Mar 2014
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c1=3.29;
c2=9.90;
c3=0.77;
c4=0.20;
Ln=zeros(1,length(t));
for n=1:1:100;
for t=0:-0.1:-1;
Ln(t)=-(c1+c2*log(n)*log(-t))-(c3+c4*log(n));
semilogx(n,Ln(t));
end
end
I really want t to count negative, what am I supposed to do??

3 commentaires
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Chandrasekhar
Chandrasekhar le 11 Mar 2014
t cannot take negative values as it is acting as index
Marta Salas
Marta Salas le 11 Mar 2014
Modifié(e) : Marta Salas le 11 Mar 2014
You're going to define an index that it's not related with t but with the size of t. However I don't understand what you are trying to plot there. Which is the result you are expecting from that code? what do you want to plot on semilogx?
sharif
sharif le 11 Mar 2014
It is an approximate model of flat edge in communication systems where I must have 10 different lines running from n=1 to n=100

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 Réponse acceptée

Chris C
Chris C le 11 Mar 2014

0 votes

I'm still not reall clear on what you're looking for, but try this version of Marta's code...
c1=3.29;
c2=9.90;
c3=0.77;
c4=0.20;
t = linspace(0,-1,10); %definition of t vector
n = linspace(1,100);
Ln=zeros(length(t),length(n));
for i=1:length(t)
for j = 1:length(n);
Ln(i,j)= -(c1+c2*log(n(j))*log(-t(i)))-(c3+c4*log(n(j)));
end
semilogx(n,Ln(i,:))
hold on
end

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sharif
sharif le 11 Mar 2014
yes I think this method is correct, although the graph is wrong, I have to check why it's wrong, thanks
Chris C
Chris C le 12 Mar 2014
Modifié(e) : Chris C le 12 Mar 2014
What's wrong about the graph? If it's because the lines are all blue all you have to do is populate the data first within the for loops and then graph it all at once after the loops instead of plotting a line after each iteration around i.

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Plus de réponses (2)

dpb
dpb le 11 Mar 2014

0 votes

Keep the time as associated independent vector of same length as the solution vector but numbered from 1:N instead of trying to use it as an index.
Marta Salas
Marta Salas le 11 Mar 2014

0 votes

A solution is this:
c1=3.29;
c2=9.90;
c3=0.77;
c4=0.20;
Ln=zeros(1,length(t));
t= 0:-0.1:-1; %definition of t vector
for n=1:1:100;
for i=1:length(t);
Ln(i)= -(c1+c2*log(n)*log(-t(i)))-(c3+c4*log(n));
semilogx(n,Ln(i));
end
end
Take into account semilogx(n,Ln(i)) is plotting a point. is this the right solution?

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sharif
sharif le 11 Mar 2014
I wanted to plot for each n all values of t, i.e. when n=1, t=-0.1,-0.2,-0.3 till -1.0, couldn't achieve it with this solution :(
dpb
dpb le 11 Mar 2014
Modifié(e) : dpb le 11 Mar 2014
plot for each n all values of t...
t= 0:-0.1:-1; %definition of t vector
for n=1:100
LN=log(n);
Ln= -(c1+c2*LN.*log(-t))-(c3+c4*LN);
semilogx(t,Ln);
if n==1,hold on,end
end
You can also get rid of the loop on n entirely as well...
doc meshgrid % for example
sharif
sharif le 11 Mar 2014
I will check it now thanks
dpb
dpb le 11 Mar 2014
BTW, log(0) --> -inf so you'll probably want to restrict t>0
I meant to point it out above but forgot to go back and do it after finished the other modifications...
sharif
sharif le 11 Mar 2014
This is resulting 100 lines I want only 10 lines 10 lines containing the 100 values, anyway thanks for trying to help.
Marta Salas
Marta Salas le 11 Mar 2014
Sorry, I don't really understand what you mean about 10 lines.
dpb
dpb le 11 Mar 2014
Well, read and do a little thinking on your own...fix the upper limit on the for loop to be 1:length(n)

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