represent exponential function in app designer

2 visualizaciones (últimos 30 días)
Alvaro Mª Zumalacarregui Delgado
Alvaro Mª Zumalacarregui Delgado el 22 de Feb. de 2021
Respondida: Abhishek Chakram el 11 de Oct. de 2023
How can I put the initial condition to the functions y1 and y2? Because the interface doesn't draw in the axes the function that I want and maybe it is due to the fact that my code doesn't have the initial condition, this is my code:
P = app.P.Value;
Q = app.Q.Value;
Xo = app.Xo.Value;
Yo =app.Yo.Value;
a = app.a.Value;
b = app.b.Value;
Ky = Yo-P/a;
Kx = Xo-Q/a;
C2 = (Ky.*sqrt(a/b)+Kx)/(2.*sqrt(a/b));
C1 = Ky-C2;
x = 0:0.2:100;
y1 = (- C1*sqrt(a/b)*exp(sqrt(a*b)*x) + C2*sqrt(a/b)*exp(-sqrt(a*b)*x)) + Q/b;
plot (app.Axes,x,y1,'k')
y2 = (C1*exp(sqrt(a*b)*x) + C2*exp(-sqrt(a*b)*x)) + P/a;
hold (app.Axes, 'on');
plot (app.Axes,x,y2,'g')
hold (app.Axes,'off')
thanks!

Iniciar sesión para responder a esta pregunta.

Respuestas (1)

Abhishek Chakram
Abhishek Chakram el 11 de Oct. de 2023
Hi Alvaro Mª Zumalacarregui Delgado,
It is my understanding that you want to add initial conditions to the functions y1 and y2. Here is an example for the same:
x = 1:10;
y1_initial = 0; % Intial y1 value
y2_initial = 4; % Intial y2 value
y1 = [y1_initial,cos(x)]; % Assigning intial y1 value
y2 = [y2_initial,sin(x)]; % Assigning intial y2 value
plot(y1,y2,'*');
In this example, “y1_initial” and “y2_initial” are the initial conditions for the functions “y1” and “y2”.
Best Regards,
Abhishek Chakram

Categorías

Más información sobre Language Fundamentals en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

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

Start Hunting!

Translated by