Why are the results of the iterative calculations different?

2 vues (au cours des 30 derniers jours)
xin
xin le 1 Sep 2024
Modifié(e) : Walter Roberson le 1 Sep 2024
Consider the solution for capacitive current,,running different codes gives different results.
%%%%%%%%%%%%%%%
clear
clc
T=1e-3;
t=0:T:1;
u=sin(2*pi*50*t);
y=fcn(u);
plot(t,y)
function y=fcn(u)
T=1e-3;
C=100e-3;
persistent u1
persistent u0
persistent y0
if isempty(u1) u1=0;
end
if isempty(u0) u0=0;
end
if isempty(y0) y0=0;
end
u0=u;
y0=C/T*(u0-u1);
u1=u0;
y=y0;
end
%%%%%%%%%%%%%%%
deltat=1e-3; %calculation step
C=100e-3; %capacitance
t=0:deltat:1;
k=2/(deltat);
i_a(1)=0;
i_b(1)=0;
u=sin(2*pi*50*t);
for n=1:1000
i_b(n+1)=C/deltat*(u(n+1)-u(n));
end
plot(t,i_b)
%%%%%%%%%%%%%%%
Here's another piece of code that gives a different result.

Connectez-vous pour répondre à cette question.

Réponse acceptée

VBBV
VBBV le 1 Sep 2024
Ran in:
%%%%%%%%%%%%%%%
clear
clc
T=1e-3;
t=0:T:1;
u=sin(2*pi*50*t);
hold on
for k = 1: numel(u)
y(k)=fcn(u(k));
end
plot(t,y)
function y=fcn(u)
T=1e-3;
C=100e-3;
persistent u1
persistent u0
persistent y0
if isempty(u1) u1=0;
end
if isempty(u0) u0=0;
end
if isempty(y0) y0=0;
end
u0=u;
y0=C/T*(u0-u1);
u1=u0;
y=y0;
end
  2 commentaires
VBBV
VBBV le 1 Sep 2024
Ran in:
@xin in the first case, you need to pass the input value as scalar to the function fcn , When you do, both codes produce same results
deltat=1e-3; %calculation step
C=100e-3; %capacitance
t=0:deltat:1;
k=2/(deltat);
i_a(1)=0;
i_b(1)=0;
u=sin(2*pi*50*t);
for n=1:1000
i_b(n+1)=C/deltat*(u(n+1)-u(n));
end
plot(t,i_b)
xin
xin le 1 Sep 2024
Thanks,it's very helpful.

Connectez-vous pour commenter.

Plus de réponses (0)

Catégories

En savoir plus sur Programming dans Help Center et File Exchange

Tags

Produits

Community Treasure Hunt

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

Start Hunting!

Translated by