How to use interp1 command?

3 visualizaciones (últimos 30 días)
Mohammed Alharbi
Mohammed Alharbi el 26 de Sept. de 2021
Editada: Mohammed Alharbi el 4 de Oct. de 2021
I have the code to draw each of these 6 figures as follows:
ph1 = 1;
ph2 = 2;
ph3 = 3;
ph4 = 4;
ph5 = 5;
ph6 = 6;
Vi=30;
Vo=0:0.1:30;
d= Vo./Vi ;
m1= d*ph1;
m2= d*ph2;
m3= d*ph3;
m4= d*ph4;
m5= d*ph5;
m6= d*ph6;
floor1= floor(m1);
floor2= floor(m2);
floor3= floor(m3);
floor4= floor(m4);
floor5= floor(m5);
floor6= floor(m6);
Kcm1 = (1-(floor1./(ph1*d))).*(1+floor1-ph1*d)
Kcm2 = (1-(floor2./(ph2*d))).*(1+floor2-ph2*d)
Kcm3 = (1-(floor3./(ph3*d))).*(1+floor3-ph3*d)
Kcm4 = (1-(floor4./(ph4*d))).*(1+floor4-ph4*d)
Kcm5 = (1-(floor5./(ph5*d))).*(1+floor5-ph5*d)
Kcm6 = (1-(floor6./(ph6*d))).*(1+floor6-ph6*d)
figure (1)
hold on
title('for the output current ripple')
xlabel('Duty Cycle')
ylabel('Kcm')
plot(d,Kcm1)
plot(d,Kcm2)
plot(d,Kcm3)
plot(d,Kcm4)
plot(d,Kcm5)
plot(d,Kcm6)
legend('Phase1','Phase2','Phase3','Phase4','Phase5','Phase6');
grid on
hold off
What I want to do is that based on an input value (which is going to be a value on the X-axis), I want the output to choose the figures out of these 6 figures that give the minimum Y-axis value.
For example,
If I put the input value to be 0.5, which is a duty cycle value on the X-axis, then the output should display and recommend (phase-2, phase-4 and figure 6) as they give the minimum value of Y-axis (exactly 0) at this specific input value of 0.5
Another example,
If the input value is 0.25, then the recommend figure to be displayed is (phase-4 the yellow one) as this also gives the minimum value on the Y-axis, and so on.
I was told that I could use the "interp1" command for each curve and pick the minimum but I don't know how to use it.
Please help me out?

Iniciar sesión para responder a esta pregunta.

Respuesta aceptada

Stephen23
Stephen23 el 27 de Sept. de 2021
Editada: Stephen23 el 27 de Sept. de 2021
Ran in:
Numbering your variables like that is a red-herring that makes this task more complex.
MATLAB is designed to work efficiently with arrays. Using arrays makes your code much simpler:
ph = 1:6;
Vi = 30;
Vo = 0:0.1:30;
d = Vo./Vi;
m = d(:).*ph; % note the orientation!
Kcm = (1-(floor(m)./m)).*(1+floor(m)-m);
figure (1)
title('for the output current ripple')
xlabel('Duty Cycle')
ylabel('Kcm')
plot(d,Kcm)
legend(sprintfc('Phase%d',ph));
grid on
Using arrays also makes your task much simpler:
inp = 0.5;
tmp = interp1(d,Kcm,inp);
idx = find(tmp==min(tmp))
idx = 1×3
2 4 6
inp = 0.75;
tmp = interp1(d,Kcm,inp);
idx = find(tmp==min(tmp))
idx = 4
Note that the orientation of the data in m is significant, because INTERP1 treats each column as its own dataset.
  12 comentarios
Mostrar 10 comentarios más antiguos
Mohammed Alharbi
Mohammed Alharbi el 4 de Oct. de 2021
Hi Stephen,
Thanks for your response.
I already did but still waiting for a help and the thought of asking you here. This is the link for the new post:
https://uk.mathworks.com/matlabcentral/answers/1465904-matlab-function-simulink-simulink-does-not-have-enough-information-to-determine-output-sizes-for-th?s_tid=srchtitle
Thanks a lot!
Mohammed Alharbi
Mohammed Alharbi el 4 de Oct. de 2021
Editada: Mohammed Alharbi el 4 de Oct. de 2021
Hi Stephen,
I sloved the previous issue by putting
m = d'*ph;
instead of:
m = d(:).*ph;
But now I have another issue with using the "find" command in Simulink function block as it always returns a variable-length vector. Please have a look at this thread if you have time, I am sure you will be the one who can hlep me out with this
Thannks in advance!
Mohammed

Iniciar sesión para comentar.

Más respuestas (0)

Categorías

Más información sobre MATLAB en Help Center y File Exchange.

Etiquetas

Productos


Versión

R2018b

Community Treasure Hunt

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

Start Hunting!

Translated by