How do I define an output vector as real and positive

7 vues (au cours des 30 derniers jours)
Christos
Christos le 21 Sep 2014
Modifié(e) : Roger Wohlwend le 22 Sep 2014
Hi all
I am currently running this script to fit a complex function on my data using lsqcurvefit.
clear all;
hold off E1=importdata('E1.mat'); %E1 and DR1 are the names of my arrays
DR=importdata('DR1.mat');
hold on plot(E1,DR)
%x(1)=C
%x(2)=f
%x(3)=Eg
%x(4)=G
x0= [1 0 1 0.02 ];
F=@(x,E1)x(1)*exp(1i*x(2))./((E1-x(3)-1i*x(4))^2);
[x,resnorm,~,exitflag,output] = lsqcurvefit(F,x0,E1,DR);
plot(E1,F(x,E1),'--r')
hold off
It is working perfectly except for the part where all the fitted parameters are returned as complex numbers when they should be real and positive. Is there some way to fix this?
Thanks in advance
  1 commentaire
Star Strider
Star Strider le 21 Sep 2014
I don’t know what you are doing, but (from the Euler identities), exp(1i*x(2)) will be evaluated essentially as cos(x(2)) + i*sin(x(2)), and you are also multiplying x(4)^2 by 1i. If you do not want complex parameters, you will likely have to re-write your model. I would go to the literature to see what others have done in similar situations.

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Roger Wohlwend
Roger Wohlwend le 22 Sep 2014
Modifié(e) : Roger Wohlwend le 22 Sep 2014
The same question occured recently on Matlab answers: Link to the question.

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